xref: /titanic_50/usr/src/lib/libzfs/common/libzfs_dataset.c (revision c61ea5668634a215fd1c9000beb7f6d2853b3468)
1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21 
22 /*
23  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Copyright (c) 2012 by Delphix. All rights reserved.
25  * Copyright (c) 2012 DEY Storage Systems, Inc.  All rights reserved.
26  * Copyright 2012 Nexenta Systems, Inc. All rights reserved.
27  */
28 
29 #include <ctype.h>
30 #include <errno.h>
31 #include <libintl.h>
32 #include <math.h>
33 #include <stdio.h>
34 #include <stdlib.h>
35 #include <strings.h>
36 #include <unistd.h>
37 #include <stddef.h>
38 #include <zone.h>
39 #include <fcntl.h>
40 #include <sys/mntent.h>
41 #include <sys/mount.h>
42 #include <priv.h>
43 #include <pwd.h>
44 #include <grp.h>
45 #include <stddef.h>
46 #include <ucred.h>
47 #include <idmap.h>
48 #include <aclutils.h>
49 #include <directory.h>
50 
51 #include <sys/dnode.h>
52 #include <sys/spa.h>
53 #include <sys/zap.h>
54 #include <libzfs.h>
55 
56 #include "zfs_namecheck.h"
57 #include "zfs_prop.h"
58 #include "libzfs_impl.h"
59 #include "zfs_deleg.h"
60 
61 static int userquota_propname_decode(const char *propname, boolean_t zoned,
62     zfs_userquota_prop_t *typep, char *domain, int domainlen, uint64_t *ridp);
63 
64 /*
65  * Given a single type (not a mask of types), return the type in a human
66  * readable form.
67  */
68 const char *
69 zfs_type_to_name(zfs_type_t type)
70 {
71 	switch (type) {
72 	case ZFS_TYPE_FILESYSTEM:
73 		return (dgettext(TEXT_DOMAIN, "filesystem"));
74 	case ZFS_TYPE_SNAPSHOT:
75 		return (dgettext(TEXT_DOMAIN, "snapshot"));
76 	case ZFS_TYPE_VOLUME:
77 		return (dgettext(TEXT_DOMAIN, "volume"));
78 	}
79 
80 	return (NULL);
81 }
82 
83 /*
84  * Given a path and mask of ZFS types, return a string describing this dataset.
85  * This is used when we fail to open a dataset and we cannot get an exact type.
86  * We guess what the type would have been based on the path and the mask of
87  * acceptable types.
88  */
89 static const char *
90 path_to_str(const char *path, int types)
91 {
92 	/*
93 	 * When given a single type, always report the exact type.
94 	 */
95 	if (types == ZFS_TYPE_SNAPSHOT)
96 		return (dgettext(TEXT_DOMAIN, "snapshot"));
97 	if (types == ZFS_TYPE_FILESYSTEM)
98 		return (dgettext(TEXT_DOMAIN, "filesystem"));
99 	if (types == ZFS_TYPE_VOLUME)
100 		return (dgettext(TEXT_DOMAIN, "volume"));
101 
102 	/*
103 	 * The user is requesting more than one type of dataset.  If this is the
104 	 * case, consult the path itself.  If we're looking for a snapshot, and
105 	 * a '@' is found, then report it as "snapshot".  Otherwise, remove the
106 	 * snapshot attribute and try again.
107 	 */
108 	if (types & ZFS_TYPE_SNAPSHOT) {
109 		if (strchr(path, '@') != NULL)
110 			return (dgettext(TEXT_DOMAIN, "snapshot"));
111 		return (path_to_str(path, types & ~ZFS_TYPE_SNAPSHOT));
112 	}
113 
114 	/*
115 	 * The user has requested either filesystems or volumes.
116 	 * We have no way of knowing a priori what type this would be, so always
117 	 * report it as "filesystem" or "volume", our two primitive types.
118 	 */
119 	if (types & ZFS_TYPE_FILESYSTEM)
120 		return (dgettext(TEXT_DOMAIN, "filesystem"));
121 
122 	assert(types & ZFS_TYPE_VOLUME);
123 	return (dgettext(TEXT_DOMAIN, "volume"));
124 }
125 
126 /*
127  * Validate a ZFS path.  This is used even before trying to open the dataset, to
128  * provide a more meaningful error message.  We call zfs_error_aux() to
129  * explain exactly why the name was not valid.
130  */
131 int
132 zfs_validate_name(libzfs_handle_t *hdl, const char *path, int type,
133     boolean_t modifying)
134 {
135 	namecheck_err_t why;
136 	char what;
137 
138 	(void) zfs_prop_get_table();
139 	if (dataset_namecheck(path, &why, &what) != 0) {
140 		if (hdl != NULL) {
141 			switch (why) {
142 			case NAME_ERR_TOOLONG:
143 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
144 				    "name is too long"));
145 				break;
146 
147 			case NAME_ERR_LEADING_SLASH:
148 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
149 				    "leading slash in name"));
150 				break;
151 
152 			case NAME_ERR_EMPTY_COMPONENT:
153 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
154 				    "empty component in name"));
155 				break;
156 
157 			case NAME_ERR_TRAILING_SLASH:
158 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
159 				    "trailing slash in name"));
160 				break;
161 
162 			case NAME_ERR_INVALCHAR:
163 				zfs_error_aux(hdl,
164 				    dgettext(TEXT_DOMAIN, "invalid character "
165 				    "'%c' in name"), what);
166 				break;
167 
168 			case NAME_ERR_MULTIPLE_AT:
169 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
170 				    "multiple '@' delimiters in name"));
171 				break;
172 
173 			case NAME_ERR_NOLETTER:
174 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
175 				    "pool doesn't begin with a letter"));
176 				break;
177 
178 			case NAME_ERR_RESERVED:
179 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
180 				    "name is reserved"));
181 				break;
182 
183 			case NAME_ERR_DISKLIKE:
184 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
185 				    "reserved disk name"));
186 				break;
187 			}
188 		}
189 
190 		return (0);
191 	}
192 
193 	if (!(type & ZFS_TYPE_SNAPSHOT) && strchr(path, '@') != NULL) {
194 		if (hdl != NULL)
195 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
196 			    "snapshot delimiter '@' in filesystem name"));
197 		return (0);
198 	}
199 
200 	if (type == ZFS_TYPE_SNAPSHOT && strchr(path, '@') == NULL) {
201 		if (hdl != NULL)
202 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
203 			    "missing '@' delimiter in snapshot name"));
204 		return (0);
205 	}
206 
207 	if (modifying && strchr(path, '%') != NULL) {
208 		if (hdl != NULL)
209 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
210 			    "invalid character %c in name"), '%');
211 		return (0);
212 	}
213 
214 	return (-1);
215 }
216 
217 int
218 zfs_name_valid(const char *name, zfs_type_t type)
219 {
220 	if (type == ZFS_TYPE_POOL)
221 		return (zpool_name_valid(NULL, B_FALSE, name));
222 	return (zfs_validate_name(NULL, name, type, B_FALSE));
223 }
224 
225 /*
226  * This function takes the raw DSL properties, and filters out the user-defined
227  * properties into a separate nvlist.
228  */
229 static nvlist_t *
230 process_user_props(zfs_handle_t *zhp, nvlist_t *props)
231 {
232 	libzfs_handle_t *hdl = zhp->zfs_hdl;
233 	nvpair_t *elem;
234 	nvlist_t *propval;
235 	nvlist_t *nvl;
236 
237 	if (nvlist_alloc(&nvl, NV_UNIQUE_NAME, 0) != 0) {
238 		(void) no_memory(hdl);
239 		return (NULL);
240 	}
241 
242 	elem = NULL;
243 	while ((elem = nvlist_next_nvpair(props, elem)) != NULL) {
244 		if (!zfs_prop_user(nvpair_name(elem)))
245 			continue;
246 
247 		verify(nvpair_value_nvlist(elem, &propval) == 0);
248 		if (nvlist_add_nvlist(nvl, nvpair_name(elem), propval) != 0) {
249 			nvlist_free(nvl);
250 			(void) no_memory(hdl);
251 			return (NULL);
252 		}
253 	}
254 
255 	return (nvl);
256 }
257 
258 static zpool_handle_t *
259 zpool_add_handle(zfs_handle_t *zhp, const char *pool_name)
260 {
261 	libzfs_handle_t *hdl = zhp->zfs_hdl;
262 	zpool_handle_t *zph;
263 
264 	if ((zph = zpool_open_canfail(hdl, pool_name)) != NULL) {
265 		if (hdl->libzfs_pool_handles != NULL)
266 			zph->zpool_next = hdl->libzfs_pool_handles;
267 		hdl->libzfs_pool_handles = zph;
268 	}
269 	return (zph);
270 }
271 
272 static zpool_handle_t *
273 zpool_find_handle(zfs_handle_t *zhp, const char *pool_name, int len)
274 {
275 	libzfs_handle_t *hdl = zhp->zfs_hdl;
276 	zpool_handle_t *zph = hdl->libzfs_pool_handles;
277 
278 	while ((zph != NULL) &&
279 	    (strncmp(pool_name, zpool_get_name(zph), len) != 0))
280 		zph = zph->zpool_next;
281 	return (zph);
282 }
283 
284 /*
285  * Returns a handle to the pool that contains the provided dataset.
286  * If a handle to that pool already exists then that handle is returned.
287  * Otherwise, a new handle is created and added to the list of handles.
288  */
289 static zpool_handle_t *
290 zpool_handle(zfs_handle_t *zhp)
291 {
292 	char *pool_name;
293 	int len;
294 	zpool_handle_t *zph;
295 
296 	len = strcspn(zhp->zfs_name, "/@") + 1;
297 	pool_name = zfs_alloc(zhp->zfs_hdl, len);
298 	(void) strlcpy(pool_name, zhp->zfs_name, len);
299 
300 	zph = zpool_find_handle(zhp, pool_name, len);
301 	if (zph == NULL)
302 		zph = zpool_add_handle(zhp, pool_name);
303 
304 	free(pool_name);
305 	return (zph);
306 }
307 
308 void
309 zpool_free_handles(libzfs_handle_t *hdl)
310 {
311 	zpool_handle_t *next, *zph = hdl->libzfs_pool_handles;
312 
313 	while (zph != NULL) {
314 		next = zph->zpool_next;
315 		zpool_close(zph);
316 		zph = next;
317 	}
318 	hdl->libzfs_pool_handles = NULL;
319 }
320 
321 /*
322  * Utility function to gather stats (objset and zpl) for the given object.
323  */
324 static int
325 get_stats_ioctl(zfs_handle_t *zhp, zfs_cmd_t *zc)
326 {
327 	libzfs_handle_t *hdl = zhp->zfs_hdl;
328 
329 	(void) strlcpy(zc->zc_name, zhp->zfs_name, sizeof (zc->zc_name));
330 
331 	while (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_STATS, zc) != 0) {
332 		if (errno == ENOMEM) {
333 			if (zcmd_expand_dst_nvlist(hdl, zc) != 0) {
334 				return (-1);
335 			}
336 		} else {
337 			return (-1);
338 		}
339 	}
340 	return (0);
341 }
342 
343 /*
344  * Utility function to get the received properties of the given object.
345  */
346 static int
347 get_recvd_props_ioctl(zfs_handle_t *zhp)
348 {
349 	libzfs_handle_t *hdl = zhp->zfs_hdl;
350 	nvlist_t *recvdprops;
351 	zfs_cmd_t zc = { 0 };
352 	int err;
353 
354 	if (zcmd_alloc_dst_nvlist(hdl, &zc, 0) != 0)
355 		return (-1);
356 
357 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
358 
359 	while (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_RECVD_PROPS, &zc) != 0) {
360 		if (errno == ENOMEM) {
361 			if (zcmd_expand_dst_nvlist(hdl, &zc) != 0) {
362 				return (-1);
363 			}
364 		} else {
365 			zcmd_free_nvlists(&zc);
366 			return (-1);
367 		}
368 	}
369 
370 	err = zcmd_read_dst_nvlist(zhp->zfs_hdl, &zc, &recvdprops);
371 	zcmd_free_nvlists(&zc);
372 	if (err != 0)
373 		return (-1);
374 
375 	nvlist_free(zhp->zfs_recvd_props);
376 	zhp->zfs_recvd_props = recvdprops;
377 
378 	return (0);
379 }
380 
381 static int
382 put_stats_zhdl(zfs_handle_t *zhp, zfs_cmd_t *zc)
383 {
384 	nvlist_t *allprops, *userprops;
385 
386 	zhp->zfs_dmustats = zc->zc_objset_stats; /* structure assignment */
387 
388 	if (zcmd_read_dst_nvlist(zhp->zfs_hdl, zc, &allprops) != 0) {
389 		return (-1);
390 	}
391 
392 	/*
393 	 * XXX Why do we store the user props separately, in addition to
394 	 * storing them in zfs_props?
395 	 */
396 	if ((userprops = process_user_props(zhp, allprops)) == NULL) {
397 		nvlist_free(allprops);
398 		return (-1);
399 	}
400 
401 	nvlist_free(zhp->zfs_props);
402 	nvlist_free(zhp->zfs_user_props);
403 
404 	zhp->zfs_props = allprops;
405 	zhp->zfs_user_props = userprops;
406 
407 	return (0);
408 }
409 
410 static int
411 get_stats(zfs_handle_t *zhp)
412 {
413 	int rc = 0;
414 	zfs_cmd_t zc = { 0 };
415 
416 	if (zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0)
417 		return (-1);
418 	if (get_stats_ioctl(zhp, &zc) != 0)
419 		rc = -1;
420 	else if (put_stats_zhdl(zhp, &zc) != 0)
421 		rc = -1;
422 	zcmd_free_nvlists(&zc);
423 	return (rc);
424 }
425 
426 /*
427  * Refresh the properties currently stored in the handle.
428  */
429 void
430 zfs_refresh_properties(zfs_handle_t *zhp)
431 {
432 	(void) get_stats(zhp);
433 }
434 
435 /*
436  * Makes a handle from the given dataset name.  Used by zfs_open() and
437  * zfs_iter_* to create child handles on the fly.
438  */
439 static int
440 make_dataset_handle_common(zfs_handle_t *zhp, zfs_cmd_t *zc)
441 {
442 	if (put_stats_zhdl(zhp, zc) != 0)
443 		return (-1);
444 
445 	/*
446 	 * We've managed to open the dataset and gather statistics.  Determine
447 	 * the high-level type.
448 	 */
449 	if (zhp->zfs_dmustats.dds_type == DMU_OST_ZVOL)
450 		zhp->zfs_head_type = ZFS_TYPE_VOLUME;
451 	else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZFS)
452 		zhp->zfs_head_type = ZFS_TYPE_FILESYSTEM;
453 	else
454 		abort();
455 
456 	if (zhp->zfs_dmustats.dds_is_snapshot)
457 		zhp->zfs_type = ZFS_TYPE_SNAPSHOT;
458 	else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZVOL)
459 		zhp->zfs_type = ZFS_TYPE_VOLUME;
460 	else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZFS)
461 		zhp->zfs_type = ZFS_TYPE_FILESYSTEM;
462 	else
463 		abort();	/* we should never see any other types */
464 
465 	if ((zhp->zpool_hdl = zpool_handle(zhp)) == NULL)
466 		return (-1);
467 
468 	return (0);
469 }
470 
471 zfs_handle_t *
472 make_dataset_handle(libzfs_handle_t *hdl, const char *path)
473 {
474 	zfs_cmd_t zc = { 0 };
475 
476 	zfs_handle_t *zhp = calloc(sizeof (zfs_handle_t), 1);
477 
478 	if (zhp == NULL)
479 		return (NULL);
480 
481 	zhp->zfs_hdl = hdl;
482 	(void) strlcpy(zhp->zfs_name, path, sizeof (zhp->zfs_name));
483 	if (zcmd_alloc_dst_nvlist(hdl, &zc, 0) != 0) {
484 		free(zhp);
485 		return (NULL);
486 	}
487 	if (get_stats_ioctl(zhp, &zc) == -1) {
488 		zcmd_free_nvlists(&zc);
489 		free(zhp);
490 		return (NULL);
491 	}
492 	if (make_dataset_handle_common(zhp, &zc) == -1) {
493 		free(zhp);
494 		zhp = NULL;
495 	}
496 	zcmd_free_nvlists(&zc);
497 	return (zhp);
498 }
499 
500 zfs_handle_t *
501 make_dataset_handle_zc(libzfs_handle_t *hdl, zfs_cmd_t *zc)
502 {
503 	zfs_handle_t *zhp = calloc(sizeof (zfs_handle_t), 1);
504 
505 	if (zhp == NULL)
506 		return (NULL);
507 
508 	zhp->zfs_hdl = hdl;
509 	(void) strlcpy(zhp->zfs_name, zc->zc_name, sizeof (zhp->zfs_name));
510 	if (make_dataset_handle_common(zhp, zc) == -1) {
511 		free(zhp);
512 		return (NULL);
513 	}
514 	return (zhp);
515 }
516 
517 zfs_handle_t *
518 zfs_handle_dup(zfs_handle_t *zhp_orig)
519 {
520 	zfs_handle_t *zhp = calloc(sizeof (zfs_handle_t), 1);
521 
522 	if (zhp == NULL)
523 		return (NULL);
524 
525 	zhp->zfs_hdl = zhp_orig->zfs_hdl;
526 	zhp->zpool_hdl = zhp_orig->zpool_hdl;
527 	(void) strlcpy(zhp->zfs_name, zhp_orig->zfs_name,
528 	    sizeof (zhp->zfs_name));
529 	zhp->zfs_type = zhp_orig->zfs_type;
530 	zhp->zfs_head_type = zhp_orig->zfs_head_type;
531 	zhp->zfs_dmustats = zhp_orig->zfs_dmustats;
532 	if (zhp_orig->zfs_props != NULL) {
533 		if (nvlist_dup(zhp_orig->zfs_props, &zhp->zfs_props, 0) != 0) {
534 			(void) no_memory(zhp->zfs_hdl);
535 			zfs_close(zhp);
536 			return (NULL);
537 		}
538 	}
539 	if (zhp_orig->zfs_user_props != NULL) {
540 		if (nvlist_dup(zhp_orig->zfs_user_props,
541 		    &zhp->zfs_user_props, 0) != 0) {
542 			(void) no_memory(zhp->zfs_hdl);
543 			zfs_close(zhp);
544 			return (NULL);
545 		}
546 	}
547 	if (zhp_orig->zfs_recvd_props != NULL) {
548 		if (nvlist_dup(zhp_orig->zfs_recvd_props,
549 		    &zhp->zfs_recvd_props, 0)) {
550 			(void) no_memory(zhp->zfs_hdl);
551 			zfs_close(zhp);
552 			return (NULL);
553 		}
554 	}
555 	zhp->zfs_mntcheck = zhp_orig->zfs_mntcheck;
556 	if (zhp_orig->zfs_mntopts != NULL) {
557 		zhp->zfs_mntopts = zfs_strdup(zhp_orig->zfs_hdl,
558 		    zhp_orig->zfs_mntopts);
559 	}
560 	zhp->zfs_props_table = zhp_orig->zfs_props_table;
561 	return (zhp);
562 }
563 
564 /*
565  * Opens the given snapshot, filesystem, or volume.   The 'types'
566  * argument is a mask of acceptable types.  The function will print an
567  * appropriate error message and return NULL if it can't be opened.
568  */
569 zfs_handle_t *
570 zfs_open(libzfs_handle_t *hdl, const char *path, int types)
571 {
572 	zfs_handle_t *zhp;
573 	char errbuf[1024];
574 
575 	(void) snprintf(errbuf, sizeof (errbuf),
576 	    dgettext(TEXT_DOMAIN, "cannot open '%s'"), path);
577 
578 	/*
579 	 * Validate the name before we even try to open it.
580 	 */
581 	if (!zfs_validate_name(hdl, path, ZFS_TYPE_DATASET, B_FALSE)) {
582 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
583 		    "invalid dataset name"));
584 		(void) zfs_error(hdl, EZFS_INVALIDNAME, errbuf);
585 		return (NULL);
586 	}
587 
588 	/*
589 	 * Try to get stats for the dataset, which will tell us if it exists.
590 	 */
591 	errno = 0;
592 	if ((zhp = make_dataset_handle(hdl, path)) == NULL) {
593 		(void) zfs_standard_error(hdl, errno, errbuf);
594 		return (NULL);
595 	}
596 
597 	if (!(types & zhp->zfs_type)) {
598 		(void) zfs_error(hdl, EZFS_BADTYPE, errbuf);
599 		zfs_close(zhp);
600 		return (NULL);
601 	}
602 
603 	return (zhp);
604 }
605 
606 /*
607  * Release a ZFS handle.  Nothing to do but free the associated memory.
608  */
609 void
610 zfs_close(zfs_handle_t *zhp)
611 {
612 	if (zhp->zfs_mntopts)
613 		free(zhp->zfs_mntopts);
614 	nvlist_free(zhp->zfs_props);
615 	nvlist_free(zhp->zfs_user_props);
616 	nvlist_free(zhp->zfs_recvd_props);
617 	free(zhp);
618 }
619 
620 typedef struct mnttab_node {
621 	struct mnttab mtn_mt;
622 	avl_node_t mtn_node;
623 } mnttab_node_t;
624 
625 static int
626 libzfs_mnttab_cache_compare(const void *arg1, const void *arg2)
627 {
628 	const mnttab_node_t *mtn1 = arg1;
629 	const mnttab_node_t *mtn2 = arg2;
630 	int rv;
631 
632 	rv = strcmp(mtn1->mtn_mt.mnt_special, mtn2->mtn_mt.mnt_special);
633 
634 	if (rv == 0)
635 		return (0);
636 	return (rv > 0 ? 1 : -1);
637 }
638 
639 void
640 libzfs_mnttab_init(libzfs_handle_t *hdl)
641 {
642 	assert(avl_numnodes(&hdl->libzfs_mnttab_cache) == 0);
643 	avl_create(&hdl->libzfs_mnttab_cache, libzfs_mnttab_cache_compare,
644 	    sizeof (mnttab_node_t), offsetof(mnttab_node_t, mtn_node));
645 }
646 
647 void
648 libzfs_mnttab_update(libzfs_handle_t *hdl)
649 {
650 	struct mnttab entry;
651 
652 	rewind(hdl->libzfs_mnttab);
653 	while (getmntent(hdl->libzfs_mnttab, &entry) == 0) {
654 		mnttab_node_t *mtn;
655 
656 		if (strcmp(entry.mnt_fstype, MNTTYPE_ZFS) != 0)
657 			continue;
658 		mtn = zfs_alloc(hdl, sizeof (mnttab_node_t));
659 		mtn->mtn_mt.mnt_special = zfs_strdup(hdl, entry.mnt_special);
660 		mtn->mtn_mt.mnt_mountp = zfs_strdup(hdl, entry.mnt_mountp);
661 		mtn->mtn_mt.mnt_fstype = zfs_strdup(hdl, entry.mnt_fstype);
662 		mtn->mtn_mt.mnt_mntopts = zfs_strdup(hdl, entry.mnt_mntopts);
663 		avl_add(&hdl->libzfs_mnttab_cache, mtn);
664 	}
665 }
666 
667 void
668 libzfs_mnttab_fini(libzfs_handle_t *hdl)
669 {
670 	void *cookie = NULL;
671 	mnttab_node_t *mtn;
672 
673 	while (mtn = avl_destroy_nodes(&hdl->libzfs_mnttab_cache, &cookie)) {
674 		free(mtn->mtn_mt.mnt_special);
675 		free(mtn->mtn_mt.mnt_mountp);
676 		free(mtn->mtn_mt.mnt_fstype);
677 		free(mtn->mtn_mt.mnt_mntopts);
678 		free(mtn);
679 	}
680 	avl_destroy(&hdl->libzfs_mnttab_cache);
681 }
682 
683 void
684 libzfs_mnttab_cache(libzfs_handle_t *hdl, boolean_t enable)
685 {
686 	hdl->libzfs_mnttab_enable = enable;
687 }
688 
689 int
690 libzfs_mnttab_find(libzfs_handle_t *hdl, const char *fsname,
691     struct mnttab *entry)
692 {
693 	mnttab_node_t find;
694 	mnttab_node_t *mtn;
695 
696 	if (!hdl->libzfs_mnttab_enable) {
697 		struct mnttab srch = { 0 };
698 
699 		if (avl_numnodes(&hdl->libzfs_mnttab_cache))
700 			libzfs_mnttab_fini(hdl);
701 		rewind(hdl->libzfs_mnttab);
702 		srch.mnt_special = (char *)fsname;
703 		srch.mnt_fstype = MNTTYPE_ZFS;
704 		if (getmntany(hdl->libzfs_mnttab, entry, &srch) == 0)
705 			return (0);
706 		else
707 			return (ENOENT);
708 	}
709 
710 	if (avl_numnodes(&hdl->libzfs_mnttab_cache) == 0)
711 		libzfs_mnttab_update(hdl);
712 
713 	find.mtn_mt.mnt_special = (char *)fsname;
714 	mtn = avl_find(&hdl->libzfs_mnttab_cache, &find, NULL);
715 	if (mtn) {
716 		*entry = mtn->mtn_mt;
717 		return (0);
718 	}
719 	return (ENOENT);
720 }
721 
722 void
723 libzfs_mnttab_add(libzfs_handle_t *hdl, const char *special,
724     const char *mountp, const char *mntopts)
725 {
726 	mnttab_node_t *mtn;
727 
728 	if (avl_numnodes(&hdl->libzfs_mnttab_cache) == 0)
729 		return;
730 	mtn = zfs_alloc(hdl, sizeof (mnttab_node_t));
731 	mtn->mtn_mt.mnt_special = zfs_strdup(hdl, special);
732 	mtn->mtn_mt.mnt_mountp = zfs_strdup(hdl, mountp);
733 	mtn->mtn_mt.mnt_fstype = zfs_strdup(hdl, MNTTYPE_ZFS);
734 	mtn->mtn_mt.mnt_mntopts = zfs_strdup(hdl, mntopts);
735 	avl_add(&hdl->libzfs_mnttab_cache, mtn);
736 }
737 
738 void
739 libzfs_mnttab_remove(libzfs_handle_t *hdl, const char *fsname)
740 {
741 	mnttab_node_t find;
742 	mnttab_node_t *ret;
743 
744 	find.mtn_mt.mnt_special = (char *)fsname;
745 	if (ret = avl_find(&hdl->libzfs_mnttab_cache, (void *)&find, NULL)) {
746 		avl_remove(&hdl->libzfs_mnttab_cache, ret);
747 		free(ret->mtn_mt.mnt_special);
748 		free(ret->mtn_mt.mnt_mountp);
749 		free(ret->mtn_mt.mnt_fstype);
750 		free(ret->mtn_mt.mnt_mntopts);
751 		free(ret);
752 	}
753 }
754 
755 int
756 zfs_spa_version(zfs_handle_t *zhp, int *spa_version)
757 {
758 	zpool_handle_t *zpool_handle = zhp->zpool_hdl;
759 
760 	if (zpool_handle == NULL)
761 		return (-1);
762 
763 	*spa_version = zpool_get_prop_int(zpool_handle,
764 	    ZPOOL_PROP_VERSION, NULL);
765 	return (0);
766 }
767 
768 /*
769  * The choice of reservation property depends on the SPA version.
770  */
771 static int
772 zfs_which_resv_prop(zfs_handle_t *zhp, zfs_prop_t *resv_prop)
773 {
774 	int spa_version;
775 
776 	if (zfs_spa_version(zhp, &spa_version) < 0)
777 		return (-1);
778 
779 	if (spa_version >= SPA_VERSION_REFRESERVATION)
780 		*resv_prop = ZFS_PROP_REFRESERVATION;
781 	else
782 		*resv_prop = ZFS_PROP_RESERVATION;
783 
784 	return (0);
785 }
786 
787 /*
788  * Given an nvlist of properties to set, validates that they are correct, and
789  * parses any numeric properties (index, boolean, etc) if they are specified as
790  * strings.
791  */
792 nvlist_t *
793 zfs_valid_proplist(libzfs_handle_t *hdl, zfs_type_t type, nvlist_t *nvl,
794     uint64_t zoned, zfs_handle_t *zhp, const char *errbuf)
795 {
796 	nvpair_t *elem;
797 	uint64_t intval;
798 	char *strval;
799 	zfs_prop_t prop;
800 	nvlist_t *ret;
801 	int chosen_normal = -1;
802 	int chosen_utf = -1;
803 
804 	if (nvlist_alloc(&ret, NV_UNIQUE_NAME, 0) != 0) {
805 		(void) no_memory(hdl);
806 		return (NULL);
807 	}
808 
809 	/*
810 	 * Make sure this property is valid and applies to this type.
811 	 */
812 
813 	elem = NULL;
814 	while ((elem = nvlist_next_nvpair(nvl, elem)) != NULL) {
815 		const char *propname = nvpair_name(elem);
816 
817 		prop = zfs_name_to_prop(propname);
818 		if (prop == ZPROP_INVAL && zfs_prop_user(propname)) {
819 			/*
820 			 * This is a user property: make sure it's a
821 			 * string, and that it's less than ZAP_MAXNAMELEN.
822 			 */
823 			if (nvpair_type(elem) != DATA_TYPE_STRING) {
824 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
825 				    "'%s' must be a string"), propname);
826 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
827 				goto error;
828 			}
829 
830 			if (strlen(nvpair_name(elem)) >= ZAP_MAXNAMELEN) {
831 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
832 				    "property name '%s' is too long"),
833 				    propname);
834 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
835 				goto error;
836 			}
837 
838 			(void) nvpair_value_string(elem, &strval);
839 			if (nvlist_add_string(ret, propname, strval) != 0) {
840 				(void) no_memory(hdl);
841 				goto error;
842 			}
843 			continue;
844 		}
845 
846 		/*
847 		 * Currently, only user properties can be modified on
848 		 * snapshots.
849 		 */
850 		if (type == ZFS_TYPE_SNAPSHOT) {
851 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
852 			    "this property can not be modified for snapshots"));
853 			(void) zfs_error(hdl, EZFS_PROPTYPE, errbuf);
854 			goto error;
855 		}
856 
857 		if (prop == ZPROP_INVAL && zfs_prop_userquota(propname)) {
858 			zfs_userquota_prop_t uqtype;
859 			char newpropname[128];
860 			char domain[128];
861 			uint64_t rid;
862 			uint64_t valary[3];
863 
864 			if (userquota_propname_decode(propname, zoned,
865 			    &uqtype, domain, sizeof (domain), &rid) != 0) {
866 				zfs_error_aux(hdl,
867 				    dgettext(TEXT_DOMAIN,
868 				    "'%s' has an invalid user/group name"),
869 				    propname);
870 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
871 				goto error;
872 			}
873 
874 			if (uqtype != ZFS_PROP_USERQUOTA &&
875 			    uqtype != ZFS_PROP_GROUPQUOTA) {
876 				zfs_error_aux(hdl,
877 				    dgettext(TEXT_DOMAIN, "'%s' is readonly"),
878 				    propname);
879 				(void) zfs_error(hdl, EZFS_PROPREADONLY,
880 				    errbuf);
881 				goto error;
882 			}
883 
884 			if (nvpair_type(elem) == DATA_TYPE_STRING) {
885 				(void) nvpair_value_string(elem, &strval);
886 				if (strcmp(strval, "none") == 0) {
887 					intval = 0;
888 				} else if (zfs_nicestrtonum(hdl,
889 				    strval, &intval) != 0) {
890 					(void) zfs_error(hdl,
891 					    EZFS_BADPROP, errbuf);
892 					goto error;
893 				}
894 			} else if (nvpair_type(elem) ==
895 			    DATA_TYPE_UINT64) {
896 				(void) nvpair_value_uint64(elem, &intval);
897 				if (intval == 0) {
898 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
899 					    "use 'none' to disable "
900 					    "userquota/groupquota"));
901 					goto error;
902 				}
903 			} else {
904 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
905 				    "'%s' must be a number"), propname);
906 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
907 				goto error;
908 			}
909 
910 			/*
911 			 * Encode the prop name as
912 			 * userquota@<hex-rid>-domain, to make it easy
913 			 * for the kernel to decode.
914 			 */
915 			(void) snprintf(newpropname, sizeof (newpropname),
916 			    "%s%llx-%s", zfs_userquota_prop_prefixes[uqtype],
917 			    (longlong_t)rid, domain);
918 			valary[0] = uqtype;
919 			valary[1] = rid;
920 			valary[2] = intval;
921 			if (nvlist_add_uint64_array(ret, newpropname,
922 			    valary, 3) != 0) {
923 				(void) no_memory(hdl);
924 				goto error;
925 			}
926 			continue;
927 		} else if (prop == ZPROP_INVAL && zfs_prop_written(propname)) {
928 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
929 			    "'%s' is readonly"),
930 			    propname);
931 			(void) zfs_error(hdl, EZFS_PROPREADONLY, errbuf);
932 			goto error;
933 		}
934 
935 		if (prop == ZPROP_INVAL) {
936 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
937 			    "invalid property '%s'"), propname);
938 			(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
939 			goto error;
940 		}
941 
942 		if (!zfs_prop_valid_for_type(prop, type)) {
943 			zfs_error_aux(hdl,
944 			    dgettext(TEXT_DOMAIN, "'%s' does not "
945 			    "apply to datasets of this type"), propname);
946 			(void) zfs_error(hdl, EZFS_PROPTYPE, errbuf);
947 			goto error;
948 		}
949 
950 		if (zfs_prop_readonly(prop) &&
951 		    (!zfs_prop_setonce(prop) || zhp != NULL)) {
952 			zfs_error_aux(hdl,
953 			    dgettext(TEXT_DOMAIN, "'%s' is readonly"),
954 			    propname);
955 			(void) zfs_error(hdl, EZFS_PROPREADONLY, errbuf);
956 			goto error;
957 		}
958 
959 		if (zprop_parse_value(hdl, elem, prop, type, ret,
960 		    &strval, &intval, errbuf) != 0)
961 			goto error;
962 
963 		/*
964 		 * Perform some additional checks for specific properties.
965 		 */
966 		switch (prop) {
967 		case ZFS_PROP_VERSION:
968 		{
969 			int version;
970 
971 			if (zhp == NULL)
972 				break;
973 			version = zfs_prop_get_int(zhp, ZFS_PROP_VERSION);
974 			if (intval < version) {
975 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
976 				    "Can not downgrade; already at version %u"),
977 				    version);
978 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
979 				goto error;
980 			}
981 			break;
982 		}
983 
984 		case ZFS_PROP_RECORDSIZE:
985 		case ZFS_PROP_VOLBLOCKSIZE:
986 			/* must be power of two within SPA_{MIN,MAX}BLOCKSIZE */
987 			if (intval < SPA_MINBLOCKSIZE ||
988 			    intval > SPA_MAXBLOCKSIZE || !ISP2(intval)) {
989 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
990 				    "'%s' must be power of 2 from %u "
991 				    "to %uk"), propname,
992 				    (uint_t)SPA_MINBLOCKSIZE,
993 				    (uint_t)SPA_MAXBLOCKSIZE >> 10);
994 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
995 				goto error;
996 			}
997 			break;
998 
999 		case ZFS_PROP_MLSLABEL:
1000 		{
1001 			/*
1002 			 * Verify the mlslabel string and convert to
1003 			 * internal hex label string.
1004 			 */
1005 
1006 			m_label_t *new_sl;
1007 			char *hex = NULL;	/* internal label string */
1008 
1009 			/* Default value is already OK. */
1010 			if (strcasecmp(strval, ZFS_MLSLABEL_DEFAULT) == 0)
1011 				break;
1012 
1013 			/* Verify the label can be converted to binary form */
1014 			if (((new_sl = m_label_alloc(MAC_LABEL)) == NULL) ||
1015 			    (str_to_label(strval, &new_sl, MAC_LABEL,
1016 			    L_NO_CORRECTION, NULL) == -1)) {
1017 				goto badlabel;
1018 			}
1019 
1020 			/* Now translate to hex internal label string */
1021 			if (label_to_str(new_sl, &hex, M_INTERNAL,
1022 			    DEF_NAMES) != 0) {
1023 				if (hex)
1024 					free(hex);
1025 				goto badlabel;
1026 			}
1027 			m_label_free(new_sl);
1028 
1029 			/* If string is already in internal form, we're done. */
1030 			if (strcmp(strval, hex) == 0) {
1031 				free(hex);
1032 				break;
1033 			}
1034 
1035 			/* Replace the label string with the internal form. */
1036 			(void) nvlist_remove(ret, zfs_prop_to_name(prop),
1037 			    DATA_TYPE_STRING);
1038 			verify(nvlist_add_string(ret, zfs_prop_to_name(prop),
1039 			    hex) == 0);
1040 			free(hex);
1041 
1042 			break;
1043 
1044 badlabel:
1045 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1046 			    "invalid mlslabel '%s'"), strval);
1047 			(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
1048 			m_label_free(new_sl);	/* OK if null */
1049 			goto error;
1050 
1051 		}
1052 
1053 		case ZFS_PROP_MOUNTPOINT:
1054 		{
1055 			namecheck_err_t why;
1056 
1057 			if (strcmp(strval, ZFS_MOUNTPOINT_NONE) == 0 ||
1058 			    strcmp(strval, ZFS_MOUNTPOINT_LEGACY) == 0)
1059 				break;
1060 
1061 			if (mountpoint_namecheck(strval, &why)) {
1062 				switch (why) {
1063 				case NAME_ERR_LEADING_SLASH:
1064 					zfs_error_aux(hdl,
1065 					    dgettext(TEXT_DOMAIN,
1066 					    "'%s' must be an absolute path, "
1067 					    "'none', or 'legacy'"), propname);
1068 					break;
1069 				case NAME_ERR_TOOLONG:
1070 					zfs_error_aux(hdl,
1071 					    dgettext(TEXT_DOMAIN,
1072 					    "component of '%s' is too long"),
1073 					    propname);
1074 					break;
1075 				}
1076 				(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
1077 				goto error;
1078 			}
1079 		}
1080 
1081 			/*FALLTHRU*/
1082 
1083 		case ZFS_PROP_SHARESMB:
1084 		case ZFS_PROP_SHARENFS:
1085 			/*
1086 			 * For the mountpoint and sharenfs or sharesmb
1087 			 * properties, check if it can be set in a
1088 			 * global/non-global zone based on
1089 			 * the zoned property value:
1090 			 *
1091 			 *		global zone	    non-global zone
1092 			 * --------------------------------------------------
1093 			 * zoned=on	mountpoint (no)	    mountpoint (yes)
1094 			 *		sharenfs (no)	    sharenfs (no)
1095 			 *		sharesmb (no)	    sharesmb (no)
1096 			 *
1097 			 * zoned=off	mountpoint (yes)	N/A
1098 			 *		sharenfs (yes)
1099 			 *		sharesmb (yes)
1100 			 */
1101 			if (zoned) {
1102 				if (getzoneid() == GLOBAL_ZONEID) {
1103 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1104 					    "'%s' cannot be set on "
1105 					    "dataset in a non-global zone"),
1106 					    propname);
1107 					(void) zfs_error(hdl, EZFS_ZONED,
1108 					    errbuf);
1109 					goto error;
1110 				} else if (prop == ZFS_PROP_SHARENFS ||
1111 				    prop == ZFS_PROP_SHARESMB) {
1112 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1113 					    "'%s' cannot be set in "
1114 					    "a non-global zone"), propname);
1115 					(void) zfs_error(hdl, EZFS_ZONED,
1116 					    errbuf);
1117 					goto error;
1118 				}
1119 			} else if (getzoneid() != GLOBAL_ZONEID) {
1120 				/*
1121 				 * If zoned property is 'off', this must be in
1122 				 * a global zone. If not, something is wrong.
1123 				 */
1124 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1125 				    "'%s' cannot be set while dataset "
1126 				    "'zoned' property is set"), propname);
1127 				(void) zfs_error(hdl, EZFS_ZONED, errbuf);
1128 				goto error;
1129 			}
1130 
1131 			/*
1132 			 * At this point, it is legitimate to set the
1133 			 * property. Now we want to make sure that the
1134 			 * property value is valid if it is sharenfs.
1135 			 */
1136 			if ((prop == ZFS_PROP_SHARENFS ||
1137 			    prop == ZFS_PROP_SHARESMB) &&
1138 			    strcmp(strval, "on") != 0 &&
1139 			    strcmp(strval, "off") != 0) {
1140 				zfs_share_proto_t proto;
1141 
1142 				if (prop == ZFS_PROP_SHARESMB)
1143 					proto = PROTO_SMB;
1144 				else
1145 					proto = PROTO_NFS;
1146 
1147 				/*
1148 				 * Must be an valid sharing protocol
1149 				 * option string so init the libshare
1150 				 * in order to enable the parser and
1151 				 * then parse the options. We use the
1152 				 * control API since we don't care about
1153 				 * the current configuration and don't
1154 				 * want the overhead of loading it
1155 				 * until we actually do something.
1156 				 */
1157 
1158 				if (zfs_init_libshare(hdl,
1159 				    SA_INIT_CONTROL_API) != SA_OK) {
1160 					/*
1161 					 * An error occurred so we can't do
1162 					 * anything
1163 					 */
1164 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1165 					    "'%s' cannot be set: problem "
1166 					    "in share initialization"),
1167 					    propname);
1168 					(void) zfs_error(hdl, EZFS_BADPROP,
1169 					    errbuf);
1170 					goto error;
1171 				}
1172 
1173 				if (zfs_parse_options(strval, proto) != SA_OK) {
1174 					/*
1175 					 * There was an error in parsing so
1176 					 * deal with it by issuing an error
1177 					 * message and leaving after
1178 					 * uninitializing the the libshare
1179 					 * interface.
1180 					 */
1181 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1182 					    "'%s' cannot be set to invalid "
1183 					    "options"), propname);
1184 					(void) zfs_error(hdl, EZFS_BADPROP,
1185 					    errbuf);
1186 					zfs_uninit_libshare(hdl);
1187 					goto error;
1188 				}
1189 				zfs_uninit_libshare(hdl);
1190 			}
1191 
1192 			break;
1193 		case ZFS_PROP_UTF8ONLY:
1194 			chosen_utf = (int)intval;
1195 			break;
1196 		case ZFS_PROP_NORMALIZE:
1197 			chosen_normal = (int)intval;
1198 			break;
1199 		}
1200 
1201 		/*
1202 		 * For changes to existing volumes, we have some additional
1203 		 * checks to enforce.
1204 		 */
1205 		if (type == ZFS_TYPE_VOLUME && zhp != NULL) {
1206 			uint64_t volsize = zfs_prop_get_int(zhp,
1207 			    ZFS_PROP_VOLSIZE);
1208 			uint64_t blocksize = zfs_prop_get_int(zhp,
1209 			    ZFS_PROP_VOLBLOCKSIZE);
1210 			char buf[64];
1211 
1212 			switch (prop) {
1213 			case ZFS_PROP_RESERVATION:
1214 			case ZFS_PROP_REFRESERVATION:
1215 				if (intval > volsize) {
1216 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1217 					    "'%s' is greater than current "
1218 					    "volume size"), propname);
1219 					(void) zfs_error(hdl, EZFS_BADPROP,
1220 					    errbuf);
1221 					goto error;
1222 				}
1223 				break;
1224 
1225 			case ZFS_PROP_VOLSIZE:
1226 				if (intval % blocksize != 0) {
1227 					zfs_nicenum(blocksize, buf,
1228 					    sizeof (buf));
1229 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1230 					    "'%s' must be a multiple of "
1231 					    "volume block size (%s)"),
1232 					    propname, buf);
1233 					(void) zfs_error(hdl, EZFS_BADPROP,
1234 					    errbuf);
1235 					goto error;
1236 				}
1237 
1238 				if (intval == 0) {
1239 					zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1240 					    "'%s' cannot be zero"),
1241 					    propname);
1242 					(void) zfs_error(hdl, EZFS_BADPROP,
1243 					    errbuf);
1244 					goto error;
1245 				}
1246 				break;
1247 			}
1248 		}
1249 	}
1250 
1251 	/*
1252 	 * If normalization was chosen, but no UTF8 choice was made,
1253 	 * enforce rejection of non-UTF8 names.
1254 	 *
1255 	 * If normalization was chosen, but rejecting non-UTF8 names
1256 	 * was explicitly not chosen, it is an error.
1257 	 */
1258 	if (chosen_normal > 0 && chosen_utf < 0) {
1259 		if (nvlist_add_uint64(ret,
1260 		    zfs_prop_to_name(ZFS_PROP_UTF8ONLY), 1) != 0) {
1261 			(void) no_memory(hdl);
1262 			goto error;
1263 		}
1264 	} else if (chosen_normal > 0 && chosen_utf == 0) {
1265 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1266 		    "'%s' must be set 'on' if normalization chosen"),
1267 		    zfs_prop_to_name(ZFS_PROP_UTF8ONLY));
1268 		(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
1269 		goto error;
1270 	}
1271 	return (ret);
1272 
1273 error:
1274 	nvlist_free(ret);
1275 	return (NULL);
1276 }
1277 
1278 int
1279 zfs_add_synthetic_resv(zfs_handle_t *zhp, nvlist_t *nvl)
1280 {
1281 	uint64_t old_volsize;
1282 	uint64_t new_volsize;
1283 	uint64_t old_reservation;
1284 	uint64_t new_reservation;
1285 	zfs_prop_t resv_prop;
1286 	nvlist_t *props;
1287 
1288 	/*
1289 	 * If this is an existing volume, and someone is setting the volsize,
1290 	 * make sure that it matches the reservation, or add it if necessary.
1291 	 */
1292 	old_volsize = zfs_prop_get_int(zhp, ZFS_PROP_VOLSIZE);
1293 	if (zfs_which_resv_prop(zhp, &resv_prop) < 0)
1294 		return (-1);
1295 	old_reservation = zfs_prop_get_int(zhp, resv_prop);
1296 
1297 	props = fnvlist_alloc();
1298 	fnvlist_add_uint64(props, zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE),
1299 	    zfs_prop_get_int(zhp, ZFS_PROP_VOLBLOCKSIZE));
1300 
1301 	if ((zvol_volsize_to_reservation(old_volsize, props) !=
1302 	    old_reservation) || nvlist_exists(nvl,
1303 	    zfs_prop_to_name(resv_prop))) {
1304 		fnvlist_free(props);
1305 		return (0);
1306 	}
1307 	if (nvlist_lookup_uint64(nvl, zfs_prop_to_name(ZFS_PROP_VOLSIZE),
1308 	    &new_volsize) != 0) {
1309 		fnvlist_free(props);
1310 		return (-1);
1311 	}
1312 	new_reservation = zvol_volsize_to_reservation(new_volsize, props);
1313 	fnvlist_free(props);
1314 
1315 	if (nvlist_add_uint64(nvl, zfs_prop_to_name(resv_prop),
1316 	    new_reservation) != 0) {
1317 		(void) no_memory(zhp->zfs_hdl);
1318 		return (-1);
1319 	}
1320 	return (1);
1321 }
1322 
1323 void
1324 zfs_setprop_error(libzfs_handle_t *hdl, zfs_prop_t prop, int err,
1325     char *errbuf)
1326 {
1327 	switch (err) {
1328 
1329 	case ENOSPC:
1330 		/*
1331 		 * For quotas and reservations, ENOSPC indicates
1332 		 * something different; setting a quota or reservation
1333 		 * doesn't use any disk space.
1334 		 */
1335 		switch (prop) {
1336 		case ZFS_PROP_QUOTA:
1337 		case ZFS_PROP_REFQUOTA:
1338 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1339 			    "size is less than current used or "
1340 			    "reserved space"));
1341 			(void) zfs_error(hdl, EZFS_PROPSPACE, errbuf);
1342 			break;
1343 
1344 		case ZFS_PROP_RESERVATION:
1345 		case ZFS_PROP_REFRESERVATION:
1346 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1347 			    "size is greater than available space"));
1348 			(void) zfs_error(hdl, EZFS_PROPSPACE, errbuf);
1349 			break;
1350 
1351 		default:
1352 			(void) zfs_standard_error(hdl, err, errbuf);
1353 			break;
1354 		}
1355 		break;
1356 
1357 	case EBUSY:
1358 		(void) zfs_standard_error(hdl, EBUSY, errbuf);
1359 		break;
1360 
1361 	case EROFS:
1362 		(void) zfs_error(hdl, EZFS_DSREADONLY, errbuf);
1363 		break;
1364 
1365 	case ENOTSUP:
1366 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1367 		    "pool and or dataset must be upgraded to set this "
1368 		    "property or value"));
1369 		(void) zfs_error(hdl, EZFS_BADVERSION, errbuf);
1370 		break;
1371 
1372 	case ERANGE:
1373 		if (prop == ZFS_PROP_COMPRESSION) {
1374 			(void) zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1375 			    "property setting is not allowed on "
1376 			    "bootable datasets"));
1377 			(void) zfs_error(hdl, EZFS_NOTSUP, errbuf);
1378 		} else {
1379 			(void) zfs_standard_error(hdl, err, errbuf);
1380 		}
1381 		break;
1382 
1383 	case EINVAL:
1384 		if (prop == ZPROP_INVAL) {
1385 			(void) zfs_error(hdl, EZFS_BADPROP, errbuf);
1386 		} else {
1387 			(void) zfs_standard_error(hdl, err, errbuf);
1388 		}
1389 		break;
1390 
1391 	case EOVERFLOW:
1392 		/*
1393 		 * This platform can't address a volume this big.
1394 		 */
1395 #ifdef _ILP32
1396 		if (prop == ZFS_PROP_VOLSIZE) {
1397 			(void) zfs_error(hdl, EZFS_VOLTOOBIG, errbuf);
1398 			break;
1399 		}
1400 #endif
1401 		/* FALLTHROUGH */
1402 	default:
1403 		(void) zfs_standard_error(hdl, err, errbuf);
1404 	}
1405 }
1406 
1407 /*
1408  * Given a property name and value, set the property for the given dataset.
1409  */
1410 int
1411 zfs_prop_set(zfs_handle_t *zhp, const char *propname, const char *propval)
1412 {
1413 	zfs_cmd_t zc = { 0 };
1414 	int ret = -1;
1415 	prop_changelist_t *cl = NULL;
1416 	char errbuf[1024];
1417 	libzfs_handle_t *hdl = zhp->zfs_hdl;
1418 	nvlist_t *nvl = NULL, *realprops;
1419 	zfs_prop_t prop;
1420 	boolean_t do_prefix = B_TRUE;
1421 	int added_resv;
1422 
1423 	(void) snprintf(errbuf, sizeof (errbuf),
1424 	    dgettext(TEXT_DOMAIN, "cannot set property for '%s'"),
1425 	    zhp->zfs_name);
1426 
1427 	if (nvlist_alloc(&nvl, NV_UNIQUE_NAME, 0) != 0 ||
1428 	    nvlist_add_string(nvl, propname, propval) != 0) {
1429 		(void) no_memory(hdl);
1430 		goto error;
1431 	}
1432 
1433 	if ((realprops = zfs_valid_proplist(hdl, zhp->zfs_type, nvl,
1434 	    zfs_prop_get_int(zhp, ZFS_PROP_ZONED), zhp, errbuf)) == NULL)
1435 		goto error;
1436 
1437 	nvlist_free(nvl);
1438 	nvl = realprops;
1439 
1440 	prop = zfs_name_to_prop(propname);
1441 
1442 	if (prop == ZFS_PROP_VOLSIZE) {
1443 		if ((added_resv = zfs_add_synthetic_resv(zhp, nvl)) == -1)
1444 			goto error;
1445 	}
1446 
1447 	if ((cl = changelist_gather(zhp, prop, 0, 0)) == NULL)
1448 		goto error;
1449 
1450 	if (prop == ZFS_PROP_MOUNTPOINT && changelist_haszonedchild(cl)) {
1451 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1452 		    "child dataset with inherited mountpoint is used "
1453 		    "in a non-global zone"));
1454 		ret = zfs_error(hdl, EZFS_ZONED, errbuf);
1455 		goto error;
1456 	}
1457 
1458 	/*
1459 	 * We don't want to unmount & remount the dataset when changing
1460 	 * its canmount property to 'on' or 'noauto'.  We only use
1461 	 * the changelist logic to unmount when setting canmount=off.
1462 	 */
1463 	if (prop == ZFS_PROP_CANMOUNT) {
1464 		uint64_t idx;
1465 		int err = zprop_string_to_index(prop, propval, &idx,
1466 		    ZFS_TYPE_DATASET);
1467 		if (err == 0 && idx != ZFS_CANMOUNT_OFF)
1468 			do_prefix = B_FALSE;
1469 	}
1470 
1471 	if (do_prefix && (ret = changelist_prefix(cl)) != 0)
1472 		goto error;
1473 
1474 	/*
1475 	 * Execute the corresponding ioctl() to set this property.
1476 	 */
1477 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
1478 
1479 	if (zcmd_write_src_nvlist(hdl, &zc, nvl) != 0)
1480 		goto error;
1481 
1482 	ret = zfs_ioctl(hdl, ZFS_IOC_SET_PROP, &zc);
1483 
1484 	if (ret != 0) {
1485 		zfs_setprop_error(hdl, prop, errno, errbuf);
1486 		if (added_resv && errno == ENOSPC) {
1487 			/* clean up the volsize property we tried to set */
1488 			uint64_t old_volsize = zfs_prop_get_int(zhp,
1489 			    ZFS_PROP_VOLSIZE);
1490 			nvlist_free(nvl);
1491 			zcmd_free_nvlists(&zc);
1492 			if (nvlist_alloc(&nvl, NV_UNIQUE_NAME, 0) != 0)
1493 				goto error;
1494 			if (nvlist_add_uint64(nvl,
1495 			    zfs_prop_to_name(ZFS_PROP_VOLSIZE),
1496 			    old_volsize) != 0)
1497 				goto error;
1498 			if (zcmd_write_src_nvlist(hdl, &zc, nvl) != 0)
1499 				goto error;
1500 			(void) zfs_ioctl(hdl, ZFS_IOC_SET_PROP, &zc);
1501 		}
1502 	} else {
1503 		if (do_prefix)
1504 			ret = changelist_postfix(cl);
1505 
1506 		/*
1507 		 * Refresh the statistics so the new property value
1508 		 * is reflected.
1509 		 */
1510 		if (ret == 0)
1511 			(void) get_stats(zhp);
1512 	}
1513 
1514 error:
1515 	nvlist_free(nvl);
1516 	zcmd_free_nvlists(&zc);
1517 	if (cl)
1518 		changelist_free(cl);
1519 	return (ret);
1520 }
1521 
1522 /*
1523  * Given a property, inherit the value from the parent dataset, or if received
1524  * is TRUE, revert to the received value, if any.
1525  */
1526 int
1527 zfs_prop_inherit(zfs_handle_t *zhp, const char *propname, boolean_t received)
1528 {
1529 	zfs_cmd_t zc = { 0 };
1530 	int ret;
1531 	prop_changelist_t *cl;
1532 	libzfs_handle_t *hdl = zhp->zfs_hdl;
1533 	char errbuf[1024];
1534 	zfs_prop_t prop;
1535 
1536 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
1537 	    "cannot inherit %s for '%s'"), propname, zhp->zfs_name);
1538 
1539 	zc.zc_cookie = received;
1540 	if ((prop = zfs_name_to_prop(propname)) == ZPROP_INVAL) {
1541 		/*
1542 		 * For user properties, the amount of work we have to do is very
1543 		 * small, so just do it here.
1544 		 */
1545 		if (!zfs_prop_user(propname)) {
1546 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1547 			    "invalid property"));
1548 			return (zfs_error(hdl, EZFS_BADPROP, errbuf));
1549 		}
1550 
1551 		(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
1552 		(void) strlcpy(zc.zc_value, propname, sizeof (zc.zc_value));
1553 
1554 		if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_INHERIT_PROP, &zc) != 0)
1555 			return (zfs_standard_error(hdl, errno, errbuf));
1556 
1557 		return (0);
1558 	}
1559 
1560 	/*
1561 	 * Verify that this property is inheritable.
1562 	 */
1563 	if (zfs_prop_readonly(prop))
1564 		return (zfs_error(hdl, EZFS_PROPREADONLY, errbuf));
1565 
1566 	if (!zfs_prop_inheritable(prop) && !received)
1567 		return (zfs_error(hdl, EZFS_PROPNONINHERIT, errbuf));
1568 
1569 	/*
1570 	 * Check to see if the value applies to this type
1571 	 */
1572 	if (!zfs_prop_valid_for_type(prop, zhp->zfs_type))
1573 		return (zfs_error(hdl, EZFS_PROPTYPE, errbuf));
1574 
1575 	/*
1576 	 * Normalize the name, to get rid of shorthand abbreviations.
1577 	 */
1578 	propname = zfs_prop_to_name(prop);
1579 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
1580 	(void) strlcpy(zc.zc_value, propname, sizeof (zc.zc_value));
1581 
1582 	if (prop == ZFS_PROP_MOUNTPOINT && getzoneid() == GLOBAL_ZONEID &&
1583 	    zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) {
1584 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1585 		    "dataset is used in a non-global zone"));
1586 		return (zfs_error(hdl, EZFS_ZONED, errbuf));
1587 	}
1588 
1589 	/*
1590 	 * Determine datasets which will be affected by this change, if any.
1591 	 */
1592 	if ((cl = changelist_gather(zhp, prop, 0, 0)) == NULL)
1593 		return (-1);
1594 
1595 	if (prop == ZFS_PROP_MOUNTPOINT && changelist_haszonedchild(cl)) {
1596 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
1597 		    "child dataset with inherited mountpoint is used "
1598 		    "in a non-global zone"));
1599 		ret = zfs_error(hdl, EZFS_ZONED, errbuf);
1600 		goto error;
1601 	}
1602 
1603 	if ((ret = changelist_prefix(cl)) != 0)
1604 		goto error;
1605 
1606 	if ((ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_INHERIT_PROP, &zc)) != 0) {
1607 		return (zfs_standard_error(hdl, errno, errbuf));
1608 	} else {
1609 
1610 		if ((ret = changelist_postfix(cl)) != 0)
1611 			goto error;
1612 
1613 		/*
1614 		 * Refresh the statistics so the new property is reflected.
1615 		 */
1616 		(void) get_stats(zhp);
1617 	}
1618 
1619 error:
1620 	changelist_free(cl);
1621 	return (ret);
1622 }
1623 
1624 /*
1625  * True DSL properties are stored in an nvlist.  The following two functions
1626  * extract them appropriately.
1627  */
1628 static uint64_t
1629 getprop_uint64(zfs_handle_t *zhp, zfs_prop_t prop, char **source)
1630 {
1631 	nvlist_t *nv;
1632 	uint64_t value;
1633 
1634 	*source = NULL;
1635 	if (nvlist_lookup_nvlist(zhp->zfs_props,
1636 	    zfs_prop_to_name(prop), &nv) == 0) {
1637 		verify(nvlist_lookup_uint64(nv, ZPROP_VALUE, &value) == 0);
1638 		(void) nvlist_lookup_string(nv, ZPROP_SOURCE, source);
1639 	} else {
1640 		verify(!zhp->zfs_props_table ||
1641 		    zhp->zfs_props_table[prop] == B_TRUE);
1642 		value = zfs_prop_default_numeric(prop);
1643 		*source = "";
1644 	}
1645 
1646 	return (value);
1647 }
1648 
1649 static char *
1650 getprop_string(zfs_handle_t *zhp, zfs_prop_t prop, char **source)
1651 {
1652 	nvlist_t *nv;
1653 	char *value;
1654 
1655 	*source = NULL;
1656 	if (nvlist_lookup_nvlist(zhp->zfs_props,
1657 	    zfs_prop_to_name(prop), &nv) == 0) {
1658 		verify(nvlist_lookup_string(nv, ZPROP_VALUE, &value) == 0);
1659 		(void) nvlist_lookup_string(nv, ZPROP_SOURCE, source);
1660 	} else {
1661 		verify(!zhp->zfs_props_table ||
1662 		    zhp->zfs_props_table[prop] == B_TRUE);
1663 		if ((value = (char *)zfs_prop_default_string(prop)) == NULL)
1664 			value = "";
1665 		*source = "";
1666 	}
1667 
1668 	return (value);
1669 }
1670 
1671 static boolean_t
1672 zfs_is_recvd_props_mode(zfs_handle_t *zhp)
1673 {
1674 	return (zhp->zfs_props == zhp->zfs_recvd_props);
1675 }
1676 
1677 static void
1678 zfs_set_recvd_props_mode(zfs_handle_t *zhp, uint64_t *cookie)
1679 {
1680 	*cookie = (uint64_t)(uintptr_t)zhp->zfs_props;
1681 	zhp->zfs_props = zhp->zfs_recvd_props;
1682 }
1683 
1684 static void
1685 zfs_unset_recvd_props_mode(zfs_handle_t *zhp, uint64_t *cookie)
1686 {
1687 	zhp->zfs_props = (nvlist_t *)(uintptr_t)*cookie;
1688 	*cookie = 0;
1689 }
1690 
1691 /*
1692  * Internal function for getting a numeric property.  Both zfs_prop_get() and
1693  * zfs_prop_get_int() are built using this interface.
1694  *
1695  * Certain properties can be overridden using 'mount -o'.  In this case, scan
1696  * the contents of the /etc/mnttab entry, searching for the appropriate options.
1697  * If they differ from the on-disk values, report the current values and mark
1698  * the source "temporary".
1699  */
1700 static int
1701 get_numeric_property(zfs_handle_t *zhp, zfs_prop_t prop, zprop_source_t *src,
1702     char **source, uint64_t *val)
1703 {
1704 	zfs_cmd_t zc = { 0 };
1705 	nvlist_t *zplprops = NULL;
1706 	struct mnttab mnt;
1707 	char *mntopt_on = NULL;
1708 	char *mntopt_off = NULL;
1709 	boolean_t received = zfs_is_recvd_props_mode(zhp);
1710 
1711 	*source = NULL;
1712 
1713 	switch (prop) {
1714 	case ZFS_PROP_ATIME:
1715 		mntopt_on = MNTOPT_ATIME;
1716 		mntopt_off = MNTOPT_NOATIME;
1717 		break;
1718 
1719 	case ZFS_PROP_DEVICES:
1720 		mntopt_on = MNTOPT_DEVICES;
1721 		mntopt_off = MNTOPT_NODEVICES;
1722 		break;
1723 
1724 	case ZFS_PROP_EXEC:
1725 		mntopt_on = MNTOPT_EXEC;
1726 		mntopt_off = MNTOPT_NOEXEC;
1727 		break;
1728 
1729 	case ZFS_PROP_READONLY:
1730 		mntopt_on = MNTOPT_RO;
1731 		mntopt_off = MNTOPT_RW;
1732 		break;
1733 
1734 	case ZFS_PROP_SETUID:
1735 		mntopt_on = MNTOPT_SETUID;
1736 		mntopt_off = MNTOPT_NOSETUID;
1737 		break;
1738 
1739 	case ZFS_PROP_XATTR:
1740 		mntopt_on = MNTOPT_XATTR;
1741 		mntopt_off = MNTOPT_NOXATTR;
1742 		break;
1743 
1744 	case ZFS_PROP_NBMAND:
1745 		mntopt_on = MNTOPT_NBMAND;
1746 		mntopt_off = MNTOPT_NONBMAND;
1747 		break;
1748 	}
1749 
1750 	/*
1751 	 * Because looking up the mount options is potentially expensive
1752 	 * (iterating over all of /etc/mnttab), we defer its calculation until
1753 	 * we're looking up a property which requires its presence.
1754 	 */
1755 	if (!zhp->zfs_mntcheck &&
1756 	    (mntopt_on != NULL || prop == ZFS_PROP_MOUNTED)) {
1757 		libzfs_handle_t *hdl = zhp->zfs_hdl;
1758 		struct mnttab entry;
1759 
1760 		if (libzfs_mnttab_find(hdl, zhp->zfs_name, &entry) == 0) {
1761 			zhp->zfs_mntopts = zfs_strdup(hdl,
1762 			    entry.mnt_mntopts);
1763 			if (zhp->zfs_mntopts == NULL)
1764 				return (-1);
1765 		}
1766 
1767 		zhp->zfs_mntcheck = B_TRUE;
1768 	}
1769 
1770 	if (zhp->zfs_mntopts == NULL)
1771 		mnt.mnt_mntopts = "";
1772 	else
1773 		mnt.mnt_mntopts = zhp->zfs_mntopts;
1774 
1775 	switch (prop) {
1776 	case ZFS_PROP_ATIME:
1777 	case ZFS_PROP_DEVICES:
1778 	case ZFS_PROP_EXEC:
1779 	case ZFS_PROP_READONLY:
1780 	case ZFS_PROP_SETUID:
1781 	case ZFS_PROP_XATTR:
1782 	case ZFS_PROP_NBMAND:
1783 		*val = getprop_uint64(zhp, prop, source);
1784 
1785 		if (received)
1786 			break;
1787 
1788 		if (hasmntopt(&mnt, mntopt_on) && !*val) {
1789 			*val = B_TRUE;
1790 			if (src)
1791 				*src = ZPROP_SRC_TEMPORARY;
1792 		} else if (hasmntopt(&mnt, mntopt_off) && *val) {
1793 			*val = B_FALSE;
1794 			if (src)
1795 				*src = ZPROP_SRC_TEMPORARY;
1796 		}
1797 		break;
1798 
1799 	case ZFS_PROP_CANMOUNT:
1800 	case ZFS_PROP_VOLSIZE:
1801 	case ZFS_PROP_QUOTA:
1802 	case ZFS_PROP_REFQUOTA:
1803 	case ZFS_PROP_RESERVATION:
1804 	case ZFS_PROP_REFRESERVATION:
1805 		*val = getprop_uint64(zhp, prop, source);
1806 
1807 		if (*source == NULL) {
1808 			/* not default, must be local */
1809 			*source = zhp->zfs_name;
1810 		}
1811 		break;
1812 
1813 	case ZFS_PROP_MOUNTED:
1814 		*val = (zhp->zfs_mntopts != NULL);
1815 		break;
1816 
1817 	case ZFS_PROP_NUMCLONES:
1818 		*val = zhp->zfs_dmustats.dds_num_clones;
1819 		break;
1820 
1821 	case ZFS_PROP_VERSION:
1822 	case ZFS_PROP_NORMALIZE:
1823 	case ZFS_PROP_UTF8ONLY:
1824 	case ZFS_PROP_CASE:
1825 		if (!zfs_prop_valid_for_type(prop, zhp->zfs_head_type) ||
1826 		    zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0)
1827 			return (-1);
1828 		(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
1829 		if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_OBJSET_ZPLPROPS, &zc)) {
1830 			zcmd_free_nvlists(&zc);
1831 			return (-1);
1832 		}
1833 		if (zcmd_read_dst_nvlist(zhp->zfs_hdl, &zc, &zplprops) != 0 ||
1834 		    nvlist_lookup_uint64(zplprops, zfs_prop_to_name(prop),
1835 		    val) != 0) {
1836 			zcmd_free_nvlists(&zc);
1837 			return (-1);
1838 		}
1839 		if (zplprops)
1840 			nvlist_free(zplprops);
1841 		zcmd_free_nvlists(&zc);
1842 		break;
1843 
1844 	default:
1845 		switch (zfs_prop_get_type(prop)) {
1846 		case PROP_TYPE_NUMBER:
1847 		case PROP_TYPE_INDEX:
1848 			*val = getprop_uint64(zhp, prop, source);
1849 			/*
1850 			 * If we tried to use a default value for a
1851 			 * readonly property, it means that it was not
1852 			 * present.
1853 			 */
1854 			if (zfs_prop_readonly(prop) &&
1855 			    *source != NULL && (*source)[0] == '\0') {
1856 				*source = NULL;
1857 			}
1858 			break;
1859 
1860 		case PROP_TYPE_STRING:
1861 		default:
1862 			zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN,
1863 			    "cannot get non-numeric property"));
1864 			return (zfs_error(zhp->zfs_hdl, EZFS_BADPROP,
1865 			    dgettext(TEXT_DOMAIN, "internal error")));
1866 		}
1867 	}
1868 
1869 	return (0);
1870 }
1871 
1872 /*
1873  * Calculate the source type, given the raw source string.
1874  */
1875 static void
1876 get_source(zfs_handle_t *zhp, zprop_source_t *srctype, char *source,
1877     char *statbuf, size_t statlen)
1878 {
1879 	if (statbuf == NULL || *srctype == ZPROP_SRC_TEMPORARY)
1880 		return;
1881 
1882 	if (source == NULL) {
1883 		*srctype = ZPROP_SRC_NONE;
1884 	} else if (source[0] == '\0') {
1885 		*srctype = ZPROP_SRC_DEFAULT;
1886 	} else if (strstr(source, ZPROP_SOURCE_VAL_RECVD) != NULL) {
1887 		*srctype = ZPROP_SRC_RECEIVED;
1888 	} else {
1889 		if (strcmp(source, zhp->zfs_name) == 0) {
1890 			*srctype = ZPROP_SRC_LOCAL;
1891 		} else {
1892 			(void) strlcpy(statbuf, source, statlen);
1893 			*srctype = ZPROP_SRC_INHERITED;
1894 		}
1895 	}
1896 
1897 }
1898 
1899 int
1900 zfs_prop_get_recvd(zfs_handle_t *zhp, const char *propname, char *propbuf,
1901     size_t proplen, boolean_t literal)
1902 {
1903 	zfs_prop_t prop;
1904 	int err = 0;
1905 
1906 	if (zhp->zfs_recvd_props == NULL)
1907 		if (get_recvd_props_ioctl(zhp) != 0)
1908 			return (-1);
1909 
1910 	prop = zfs_name_to_prop(propname);
1911 
1912 	if (prop != ZPROP_INVAL) {
1913 		uint64_t cookie;
1914 		if (!nvlist_exists(zhp->zfs_recvd_props, propname))
1915 			return (-1);
1916 		zfs_set_recvd_props_mode(zhp, &cookie);
1917 		err = zfs_prop_get(zhp, prop, propbuf, proplen,
1918 		    NULL, NULL, 0, literal);
1919 		zfs_unset_recvd_props_mode(zhp, &cookie);
1920 	} else {
1921 		nvlist_t *propval;
1922 		char *recvdval;
1923 		if (nvlist_lookup_nvlist(zhp->zfs_recvd_props,
1924 		    propname, &propval) != 0)
1925 			return (-1);
1926 		verify(nvlist_lookup_string(propval, ZPROP_VALUE,
1927 		    &recvdval) == 0);
1928 		(void) strlcpy(propbuf, recvdval, proplen);
1929 	}
1930 
1931 	return (err == 0 ? 0 : -1);
1932 }
1933 
1934 static int
1935 get_clones_string(zfs_handle_t *zhp, char *propbuf, size_t proplen)
1936 {
1937 	nvlist_t *value;
1938 	nvpair_t *pair;
1939 
1940 	value = zfs_get_clones_nvl(zhp);
1941 	if (value == NULL)
1942 		return (-1);
1943 
1944 	propbuf[0] = '\0';
1945 	for (pair = nvlist_next_nvpair(value, NULL); pair != NULL;
1946 	    pair = nvlist_next_nvpair(value, pair)) {
1947 		if (propbuf[0] != '\0')
1948 			(void) strlcat(propbuf, ",", proplen);
1949 		(void) strlcat(propbuf, nvpair_name(pair), proplen);
1950 	}
1951 
1952 	return (0);
1953 }
1954 
1955 struct get_clones_arg {
1956 	uint64_t numclones;
1957 	nvlist_t *value;
1958 	const char *origin;
1959 	char buf[ZFS_MAXNAMELEN];
1960 };
1961 
1962 int
1963 get_clones_cb(zfs_handle_t *zhp, void *arg)
1964 {
1965 	struct get_clones_arg *gca = arg;
1966 
1967 	if (gca->numclones == 0) {
1968 		zfs_close(zhp);
1969 		return (0);
1970 	}
1971 
1972 	if (zfs_prop_get(zhp, ZFS_PROP_ORIGIN, gca->buf, sizeof (gca->buf),
1973 	    NULL, NULL, 0, B_TRUE) != 0)
1974 		goto out;
1975 	if (strcmp(gca->buf, gca->origin) == 0) {
1976 		if (nvlist_add_boolean(gca->value, zfs_get_name(zhp)) != 0) {
1977 			zfs_close(zhp);
1978 			return (no_memory(zhp->zfs_hdl));
1979 		}
1980 		gca->numclones--;
1981 	}
1982 
1983 out:
1984 	(void) zfs_iter_children(zhp, get_clones_cb, gca);
1985 	zfs_close(zhp);
1986 	return (0);
1987 }
1988 
1989 nvlist_t *
1990 zfs_get_clones_nvl(zfs_handle_t *zhp)
1991 {
1992 	nvlist_t *nv, *value;
1993 
1994 	if (nvlist_lookup_nvlist(zhp->zfs_props,
1995 	    zfs_prop_to_name(ZFS_PROP_CLONES), &nv) != 0) {
1996 		struct get_clones_arg gca;
1997 
1998 		/*
1999 		 * if this is a snapshot, then the kernel wasn't able
2000 		 * to get the clones.  Do it by slowly iterating.
2001 		 */
2002 		if (zhp->zfs_type != ZFS_TYPE_SNAPSHOT)
2003 			return (NULL);
2004 		if (nvlist_alloc(&nv, NV_UNIQUE_NAME, 0) != 0)
2005 			return (NULL);
2006 		if (nvlist_alloc(&value, NV_UNIQUE_NAME, 0) != 0) {
2007 			nvlist_free(nv);
2008 			return (NULL);
2009 		}
2010 
2011 		gca.numclones = zfs_prop_get_int(zhp, ZFS_PROP_NUMCLONES);
2012 		gca.value = value;
2013 		gca.origin = zhp->zfs_name;
2014 
2015 		if (gca.numclones != 0) {
2016 			zfs_handle_t *root;
2017 			char pool[ZFS_MAXNAMELEN];
2018 			char *cp = pool;
2019 
2020 			/* get the pool name */
2021 			(void) strlcpy(pool, zhp->zfs_name, sizeof (pool));
2022 			(void) strsep(&cp, "/@");
2023 			root = zfs_open(zhp->zfs_hdl, pool,
2024 			    ZFS_TYPE_FILESYSTEM);
2025 
2026 			(void) get_clones_cb(root, &gca);
2027 		}
2028 
2029 		if (gca.numclones != 0 ||
2030 		    nvlist_add_nvlist(nv, ZPROP_VALUE, value) != 0 ||
2031 		    nvlist_add_nvlist(zhp->zfs_props,
2032 		    zfs_prop_to_name(ZFS_PROP_CLONES), nv) != 0) {
2033 			nvlist_free(nv);
2034 			nvlist_free(value);
2035 			return (NULL);
2036 		}
2037 		nvlist_free(nv);
2038 		nvlist_free(value);
2039 		verify(0 == nvlist_lookup_nvlist(zhp->zfs_props,
2040 		    zfs_prop_to_name(ZFS_PROP_CLONES), &nv));
2041 	}
2042 
2043 	verify(nvlist_lookup_nvlist(nv, ZPROP_VALUE, &value) == 0);
2044 
2045 	return (value);
2046 }
2047 
2048 /*
2049  * Retrieve a property from the given object.  If 'literal' is specified, then
2050  * numbers are left as exact values.  Otherwise, numbers are converted to a
2051  * human-readable form.
2052  *
2053  * Returns 0 on success, or -1 on error.
2054  */
2055 int
2056 zfs_prop_get(zfs_handle_t *zhp, zfs_prop_t prop, char *propbuf, size_t proplen,
2057     zprop_source_t *src, char *statbuf, size_t statlen, boolean_t literal)
2058 {
2059 	char *source = NULL;
2060 	uint64_t val;
2061 	char *str;
2062 	const char *strval;
2063 	boolean_t received = zfs_is_recvd_props_mode(zhp);
2064 
2065 	/*
2066 	 * Check to see if this property applies to our object
2067 	 */
2068 	if (!zfs_prop_valid_for_type(prop, zhp->zfs_type))
2069 		return (-1);
2070 
2071 	if (received && zfs_prop_readonly(prop))
2072 		return (-1);
2073 
2074 	if (src)
2075 		*src = ZPROP_SRC_NONE;
2076 
2077 	switch (prop) {
2078 	case ZFS_PROP_CREATION:
2079 		/*
2080 		 * 'creation' is a time_t stored in the statistics.  We convert
2081 		 * this into a string unless 'literal' is specified.
2082 		 */
2083 		{
2084 			val = getprop_uint64(zhp, prop, &source);
2085 			time_t time = (time_t)val;
2086 			struct tm t;
2087 
2088 			if (literal ||
2089 			    localtime_r(&time, &t) == NULL ||
2090 			    strftime(propbuf, proplen, "%a %b %e %k:%M %Y",
2091 			    &t) == 0)
2092 				(void) snprintf(propbuf, proplen, "%llu", val);
2093 		}
2094 		break;
2095 
2096 	case ZFS_PROP_MOUNTPOINT:
2097 		/*
2098 		 * Getting the precise mountpoint can be tricky.
2099 		 *
2100 		 *  - for 'none' or 'legacy', return those values.
2101 		 *  - for inherited mountpoints, we want to take everything
2102 		 *    after our ancestor and append it to the inherited value.
2103 		 *
2104 		 * If the pool has an alternate root, we want to prepend that
2105 		 * root to any values we return.
2106 		 */
2107 
2108 		str = getprop_string(zhp, prop, &source);
2109 
2110 		if (str[0] == '/') {
2111 			char buf[MAXPATHLEN];
2112 			char *root = buf;
2113 			const char *relpath;
2114 
2115 			/*
2116 			 * If we inherit the mountpoint, even from a dataset
2117 			 * with a received value, the source will be the path of
2118 			 * the dataset we inherit from. If source is
2119 			 * ZPROP_SOURCE_VAL_RECVD, the received value is not
2120 			 * inherited.
2121 			 */
2122 			if (strcmp(source, ZPROP_SOURCE_VAL_RECVD) == 0) {
2123 				relpath = "";
2124 			} else {
2125 				relpath = zhp->zfs_name + strlen(source);
2126 				if (relpath[0] == '/')
2127 					relpath++;
2128 			}
2129 
2130 			if ((zpool_get_prop(zhp->zpool_hdl,
2131 			    ZPOOL_PROP_ALTROOT, buf, MAXPATHLEN, NULL)) ||
2132 			    (strcmp(root, "-") == 0))
2133 				root[0] = '\0';
2134 			/*
2135 			 * Special case an alternate root of '/'. This will
2136 			 * avoid having multiple leading slashes in the
2137 			 * mountpoint path.
2138 			 */
2139 			if (strcmp(root, "/") == 0)
2140 				root++;
2141 
2142 			/*
2143 			 * If the mountpoint is '/' then skip over this
2144 			 * if we are obtaining either an alternate root or
2145 			 * an inherited mountpoint.
2146 			 */
2147 			if (str[1] == '\0' && (root[0] != '\0' ||
2148 			    relpath[0] != '\0'))
2149 				str++;
2150 
2151 			if (relpath[0] == '\0')
2152 				(void) snprintf(propbuf, proplen, "%s%s",
2153 				    root, str);
2154 			else
2155 				(void) snprintf(propbuf, proplen, "%s%s%s%s",
2156 				    root, str, relpath[0] == '@' ? "" : "/",
2157 				    relpath);
2158 		} else {
2159 			/* 'legacy' or 'none' */
2160 			(void) strlcpy(propbuf, str, proplen);
2161 		}
2162 
2163 		break;
2164 
2165 	case ZFS_PROP_ORIGIN:
2166 		(void) strlcpy(propbuf, getprop_string(zhp, prop, &source),
2167 		    proplen);
2168 		/*
2169 		 * If there is no parent at all, return failure to indicate that
2170 		 * it doesn't apply to this dataset.
2171 		 */
2172 		if (propbuf[0] == '\0')
2173 			return (-1);
2174 		break;
2175 
2176 	case ZFS_PROP_CLONES:
2177 		if (get_clones_string(zhp, propbuf, proplen) != 0)
2178 			return (-1);
2179 		break;
2180 
2181 	case ZFS_PROP_QUOTA:
2182 	case ZFS_PROP_REFQUOTA:
2183 	case ZFS_PROP_RESERVATION:
2184 	case ZFS_PROP_REFRESERVATION:
2185 
2186 		if (get_numeric_property(zhp, prop, src, &source, &val) != 0)
2187 			return (-1);
2188 
2189 		/*
2190 		 * If quota or reservation is 0, we translate this into 'none'
2191 		 * (unless literal is set), and indicate that it's the default
2192 		 * value.  Otherwise, we print the number nicely and indicate
2193 		 * that its set locally.
2194 		 */
2195 		if (val == 0) {
2196 			if (literal)
2197 				(void) strlcpy(propbuf, "0", proplen);
2198 			else
2199 				(void) strlcpy(propbuf, "none", proplen);
2200 		} else {
2201 			if (literal)
2202 				(void) snprintf(propbuf, proplen, "%llu",
2203 				    (u_longlong_t)val);
2204 			else
2205 				zfs_nicenum(val, propbuf, proplen);
2206 		}
2207 		break;
2208 
2209 	case ZFS_PROP_REFRATIO:
2210 	case ZFS_PROP_COMPRESSRATIO:
2211 		if (get_numeric_property(zhp, prop, src, &source, &val) != 0)
2212 			return (-1);
2213 		(void) snprintf(propbuf, proplen, "%llu.%02llux",
2214 		    (u_longlong_t)(val / 100),
2215 		    (u_longlong_t)(val % 100));
2216 		break;
2217 
2218 	case ZFS_PROP_TYPE:
2219 		switch (zhp->zfs_type) {
2220 		case ZFS_TYPE_FILESYSTEM:
2221 			str = "filesystem";
2222 			break;
2223 		case ZFS_TYPE_VOLUME:
2224 			str = "volume";
2225 			break;
2226 		case ZFS_TYPE_SNAPSHOT:
2227 			str = "snapshot";
2228 			break;
2229 		default:
2230 			abort();
2231 		}
2232 		(void) snprintf(propbuf, proplen, "%s", str);
2233 		break;
2234 
2235 	case ZFS_PROP_MOUNTED:
2236 		/*
2237 		 * The 'mounted' property is a pseudo-property that described
2238 		 * whether the filesystem is currently mounted.  Even though
2239 		 * it's a boolean value, the typical values of "on" and "off"
2240 		 * don't make sense, so we translate to "yes" and "no".
2241 		 */
2242 		if (get_numeric_property(zhp, ZFS_PROP_MOUNTED,
2243 		    src, &source, &val) != 0)
2244 			return (-1);
2245 		if (val)
2246 			(void) strlcpy(propbuf, "yes", proplen);
2247 		else
2248 			(void) strlcpy(propbuf, "no", proplen);
2249 		break;
2250 
2251 	case ZFS_PROP_NAME:
2252 		/*
2253 		 * The 'name' property is a pseudo-property derived from the
2254 		 * dataset name.  It is presented as a real property to simplify
2255 		 * consumers.
2256 		 */
2257 		(void) strlcpy(propbuf, zhp->zfs_name, proplen);
2258 		break;
2259 
2260 	case ZFS_PROP_MLSLABEL:
2261 		{
2262 			m_label_t *new_sl = NULL;
2263 			char *ascii = NULL;	/* human readable label */
2264 
2265 			(void) strlcpy(propbuf,
2266 			    getprop_string(zhp, prop, &source), proplen);
2267 
2268 			if (literal || (strcasecmp(propbuf,
2269 			    ZFS_MLSLABEL_DEFAULT) == 0))
2270 				break;
2271 
2272 			/*
2273 			 * Try to translate the internal hex string to
2274 			 * human-readable output.  If there are any
2275 			 * problems just use the hex string.
2276 			 */
2277 
2278 			if (str_to_label(propbuf, &new_sl, MAC_LABEL,
2279 			    L_NO_CORRECTION, NULL) == -1) {
2280 				m_label_free(new_sl);
2281 				break;
2282 			}
2283 
2284 			if (label_to_str(new_sl, &ascii, M_LABEL,
2285 			    DEF_NAMES) != 0) {
2286 				if (ascii)
2287 					free(ascii);
2288 				m_label_free(new_sl);
2289 				break;
2290 			}
2291 			m_label_free(new_sl);
2292 
2293 			(void) strlcpy(propbuf, ascii, proplen);
2294 			free(ascii);
2295 		}
2296 		break;
2297 
2298 	case ZFS_PROP_GUID:
2299 		/*
2300 		 * GUIDs are stored as numbers, but they are identifiers.
2301 		 * We don't want them to be pretty printed, because pretty
2302 		 * printing mangles the ID into a truncated and useless value.
2303 		 */
2304 		if (get_numeric_property(zhp, prop, src, &source, &val) != 0)
2305 			return (-1);
2306 		(void) snprintf(propbuf, proplen, "%llu", (u_longlong_t)val);
2307 		break;
2308 
2309 	default:
2310 		switch (zfs_prop_get_type(prop)) {
2311 		case PROP_TYPE_NUMBER:
2312 			if (get_numeric_property(zhp, prop, src,
2313 			    &source, &val) != 0)
2314 				return (-1);
2315 			if (literal)
2316 				(void) snprintf(propbuf, proplen, "%llu",
2317 				    (u_longlong_t)val);
2318 			else
2319 				zfs_nicenum(val, propbuf, proplen);
2320 			break;
2321 
2322 		case PROP_TYPE_STRING:
2323 			(void) strlcpy(propbuf,
2324 			    getprop_string(zhp, prop, &source), proplen);
2325 			break;
2326 
2327 		case PROP_TYPE_INDEX:
2328 			if (get_numeric_property(zhp, prop, src,
2329 			    &source, &val) != 0)
2330 				return (-1);
2331 			if (zfs_prop_index_to_string(prop, val, &strval) != 0)
2332 				return (-1);
2333 			(void) strlcpy(propbuf, strval, proplen);
2334 			break;
2335 
2336 		default:
2337 			abort();
2338 		}
2339 	}
2340 
2341 	get_source(zhp, src, source, statbuf, statlen);
2342 
2343 	return (0);
2344 }
2345 
2346 /*
2347  * Utility function to get the given numeric property.  Does no validation that
2348  * the given property is the appropriate type; should only be used with
2349  * hard-coded property types.
2350  */
2351 uint64_t
2352 zfs_prop_get_int(zfs_handle_t *zhp, zfs_prop_t prop)
2353 {
2354 	char *source;
2355 	uint64_t val;
2356 
2357 	(void) get_numeric_property(zhp, prop, NULL, &source, &val);
2358 
2359 	return (val);
2360 }
2361 
2362 int
2363 zfs_prop_set_int(zfs_handle_t *zhp, zfs_prop_t prop, uint64_t val)
2364 {
2365 	char buf[64];
2366 
2367 	(void) snprintf(buf, sizeof (buf), "%llu", (longlong_t)val);
2368 	return (zfs_prop_set(zhp, zfs_prop_to_name(prop), buf));
2369 }
2370 
2371 /*
2372  * Similar to zfs_prop_get(), but returns the value as an integer.
2373  */
2374 int
2375 zfs_prop_get_numeric(zfs_handle_t *zhp, zfs_prop_t prop, uint64_t *value,
2376     zprop_source_t *src, char *statbuf, size_t statlen)
2377 {
2378 	char *source;
2379 
2380 	/*
2381 	 * Check to see if this property applies to our object
2382 	 */
2383 	if (!zfs_prop_valid_for_type(prop, zhp->zfs_type)) {
2384 		return (zfs_error_fmt(zhp->zfs_hdl, EZFS_PROPTYPE,
2385 		    dgettext(TEXT_DOMAIN, "cannot get property '%s'"),
2386 		    zfs_prop_to_name(prop)));
2387 	}
2388 
2389 	if (src)
2390 		*src = ZPROP_SRC_NONE;
2391 
2392 	if (get_numeric_property(zhp, prop, src, &source, value) != 0)
2393 		return (-1);
2394 
2395 	get_source(zhp, src, source, statbuf, statlen);
2396 
2397 	return (0);
2398 }
2399 
2400 static int
2401 idmap_id_to_numeric_domain_rid(uid_t id, boolean_t isuser,
2402     char **domainp, idmap_rid_t *ridp)
2403 {
2404 	idmap_get_handle_t *get_hdl = NULL;
2405 	idmap_stat status;
2406 	int err = EINVAL;
2407 
2408 	if (idmap_get_create(&get_hdl) != IDMAP_SUCCESS)
2409 		goto out;
2410 
2411 	if (isuser) {
2412 		err = idmap_get_sidbyuid(get_hdl, id,
2413 		    IDMAP_REQ_FLG_USE_CACHE, domainp, ridp, &status);
2414 	} else {
2415 		err = idmap_get_sidbygid(get_hdl, id,
2416 		    IDMAP_REQ_FLG_USE_CACHE, domainp, ridp, &status);
2417 	}
2418 	if (err == IDMAP_SUCCESS &&
2419 	    idmap_get_mappings(get_hdl) == IDMAP_SUCCESS &&
2420 	    status == IDMAP_SUCCESS)
2421 		err = 0;
2422 	else
2423 		err = EINVAL;
2424 out:
2425 	if (get_hdl)
2426 		idmap_get_destroy(get_hdl);
2427 	return (err);
2428 }
2429 
2430 /*
2431  * convert the propname into parameters needed by kernel
2432  * Eg: userquota@ahrens -> ZFS_PROP_USERQUOTA, "", 126829
2433  * Eg: userused@matt@domain -> ZFS_PROP_USERUSED, "S-1-123-456", 789
2434  */
2435 static int
2436 userquota_propname_decode(const char *propname, boolean_t zoned,
2437     zfs_userquota_prop_t *typep, char *domain, int domainlen, uint64_t *ridp)
2438 {
2439 	zfs_userquota_prop_t type;
2440 	char *cp, *end;
2441 	char *numericsid = NULL;
2442 	boolean_t isuser;
2443 
2444 	domain[0] = '\0';
2445 
2446 	/* Figure out the property type ({user|group}{quota|space}) */
2447 	for (type = 0; type < ZFS_NUM_USERQUOTA_PROPS; type++) {
2448 		if (strncmp(propname, zfs_userquota_prop_prefixes[type],
2449 		    strlen(zfs_userquota_prop_prefixes[type])) == 0)
2450 			break;
2451 	}
2452 	if (type == ZFS_NUM_USERQUOTA_PROPS)
2453 		return (EINVAL);
2454 	*typep = type;
2455 
2456 	isuser = (type == ZFS_PROP_USERQUOTA ||
2457 	    type == ZFS_PROP_USERUSED);
2458 
2459 	cp = strchr(propname, '@') + 1;
2460 
2461 	if (strchr(cp, '@')) {
2462 		/*
2463 		 * It's a SID name (eg "user@domain") that needs to be
2464 		 * turned into S-1-domainID-RID.
2465 		 */
2466 		directory_error_t e;
2467 		if (zoned && getzoneid() == GLOBAL_ZONEID)
2468 			return (ENOENT);
2469 		if (isuser) {
2470 			e = directory_sid_from_user_name(NULL,
2471 			    cp, &numericsid);
2472 		} else {
2473 			e = directory_sid_from_group_name(NULL,
2474 			    cp, &numericsid);
2475 		}
2476 		if (e != NULL) {
2477 			directory_error_free(e);
2478 			return (ENOENT);
2479 		}
2480 		if (numericsid == NULL)
2481 			return (ENOENT);
2482 		cp = numericsid;
2483 		/* will be further decoded below */
2484 	}
2485 
2486 	if (strncmp(cp, "S-1-", 4) == 0) {
2487 		/* It's a numeric SID (eg "S-1-234-567-89") */
2488 		(void) strlcpy(domain, cp, domainlen);
2489 		cp = strrchr(domain, '-');
2490 		*cp = '\0';
2491 		cp++;
2492 
2493 		errno = 0;
2494 		*ridp = strtoull(cp, &end, 10);
2495 		if (numericsid) {
2496 			free(numericsid);
2497 			numericsid = NULL;
2498 		}
2499 		if (errno != 0 || *end != '\0')
2500 			return (EINVAL);
2501 	} else if (!isdigit(*cp)) {
2502 		/*
2503 		 * It's a user/group name (eg "user") that needs to be
2504 		 * turned into a uid/gid
2505 		 */
2506 		if (zoned && getzoneid() == GLOBAL_ZONEID)
2507 			return (ENOENT);
2508 		if (isuser) {
2509 			struct passwd *pw;
2510 			pw = getpwnam(cp);
2511 			if (pw == NULL)
2512 				return (ENOENT);
2513 			*ridp = pw->pw_uid;
2514 		} else {
2515 			struct group *gr;
2516 			gr = getgrnam(cp);
2517 			if (gr == NULL)
2518 				return (ENOENT);
2519 			*ridp = gr->gr_gid;
2520 		}
2521 	} else {
2522 		/* It's a user/group ID (eg "12345"). */
2523 		uid_t id = strtoul(cp, &end, 10);
2524 		idmap_rid_t rid;
2525 		char *mapdomain;
2526 
2527 		if (*end != '\0')
2528 			return (EINVAL);
2529 		if (id > MAXUID) {
2530 			/* It's an ephemeral ID. */
2531 			if (idmap_id_to_numeric_domain_rid(id, isuser,
2532 			    &mapdomain, &rid) != 0)
2533 				return (ENOENT);
2534 			(void) strlcpy(domain, mapdomain, domainlen);
2535 			*ridp = rid;
2536 		} else {
2537 			*ridp = id;
2538 		}
2539 	}
2540 
2541 	ASSERT3P(numericsid, ==, NULL);
2542 	return (0);
2543 }
2544 
2545 static int
2546 zfs_prop_get_userquota_common(zfs_handle_t *zhp, const char *propname,
2547     uint64_t *propvalue, zfs_userquota_prop_t *typep)
2548 {
2549 	int err;
2550 	zfs_cmd_t zc = { 0 };
2551 
2552 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
2553 
2554 	err = userquota_propname_decode(propname,
2555 	    zfs_prop_get_int(zhp, ZFS_PROP_ZONED),
2556 	    typep, zc.zc_value, sizeof (zc.zc_value), &zc.zc_guid);
2557 	zc.zc_objset_type = *typep;
2558 	if (err)
2559 		return (err);
2560 
2561 	err = ioctl(zhp->zfs_hdl->libzfs_fd, ZFS_IOC_USERSPACE_ONE, &zc);
2562 	if (err)
2563 		return (err);
2564 
2565 	*propvalue = zc.zc_cookie;
2566 	return (0);
2567 }
2568 
2569 int
2570 zfs_prop_get_userquota_int(zfs_handle_t *zhp, const char *propname,
2571     uint64_t *propvalue)
2572 {
2573 	zfs_userquota_prop_t type;
2574 
2575 	return (zfs_prop_get_userquota_common(zhp, propname, propvalue,
2576 	    &type));
2577 }
2578 
2579 int
2580 zfs_prop_get_userquota(zfs_handle_t *zhp, const char *propname,
2581     char *propbuf, int proplen, boolean_t literal)
2582 {
2583 	int err;
2584 	uint64_t propvalue;
2585 	zfs_userquota_prop_t type;
2586 
2587 	err = zfs_prop_get_userquota_common(zhp, propname, &propvalue,
2588 	    &type);
2589 
2590 	if (err)
2591 		return (err);
2592 
2593 	if (literal) {
2594 		(void) snprintf(propbuf, proplen, "%llu", propvalue);
2595 	} else if (propvalue == 0 &&
2596 	    (type == ZFS_PROP_USERQUOTA || type == ZFS_PROP_GROUPQUOTA)) {
2597 		(void) strlcpy(propbuf, "none", proplen);
2598 	} else {
2599 		zfs_nicenum(propvalue, propbuf, proplen);
2600 	}
2601 	return (0);
2602 }
2603 
2604 int
2605 zfs_prop_get_written_int(zfs_handle_t *zhp, const char *propname,
2606     uint64_t *propvalue)
2607 {
2608 	int err;
2609 	zfs_cmd_t zc = { 0 };
2610 	const char *snapname;
2611 
2612 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
2613 
2614 	snapname = strchr(propname, '@') + 1;
2615 	if (strchr(snapname, '@')) {
2616 		(void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value));
2617 	} else {
2618 		/* snapname is the short name, append it to zhp's fsname */
2619 		char *cp;
2620 
2621 		(void) strlcpy(zc.zc_value, zhp->zfs_name,
2622 		    sizeof (zc.zc_value));
2623 		cp = strchr(zc.zc_value, '@');
2624 		if (cp != NULL)
2625 			*cp = '\0';
2626 		(void) strlcat(zc.zc_value, "@", sizeof (zc.zc_value));
2627 		(void) strlcat(zc.zc_value, snapname, sizeof (zc.zc_value));
2628 	}
2629 
2630 	err = ioctl(zhp->zfs_hdl->libzfs_fd, ZFS_IOC_SPACE_WRITTEN, &zc);
2631 	if (err)
2632 		return (err);
2633 
2634 	*propvalue = zc.zc_cookie;
2635 	return (0);
2636 }
2637 
2638 int
2639 zfs_prop_get_written(zfs_handle_t *zhp, const char *propname,
2640     char *propbuf, int proplen, boolean_t literal)
2641 {
2642 	int err;
2643 	uint64_t propvalue;
2644 
2645 	err = zfs_prop_get_written_int(zhp, propname, &propvalue);
2646 
2647 	if (err)
2648 		return (err);
2649 
2650 	if (literal) {
2651 		(void) snprintf(propbuf, proplen, "%llu", propvalue);
2652 	} else {
2653 		zfs_nicenum(propvalue, propbuf, proplen);
2654 	}
2655 	return (0);
2656 }
2657 
2658 /*
2659  * Returns the name of the given zfs handle.
2660  */
2661 const char *
2662 zfs_get_name(const zfs_handle_t *zhp)
2663 {
2664 	return (zhp->zfs_name);
2665 }
2666 
2667 /*
2668  * Returns the type of the given zfs handle.
2669  */
2670 zfs_type_t
2671 zfs_get_type(const zfs_handle_t *zhp)
2672 {
2673 	return (zhp->zfs_type);
2674 }
2675 
2676 /*
2677  * Is one dataset name a child dataset of another?
2678  *
2679  * Needs to handle these cases:
2680  * Dataset 1	"a/foo"		"a/foo"		"a/foo"		"a/foo"
2681  * Dataset 2	"a/fo"		"a/foobar"	"a/bar/baz"	"a/foo/bar"
2682  * Descendant?	No.		No.		No.		Yes.
2683  */
2684 static boolean_t
2685 is_descendant(const char *ds1, const char *ds2)
2686 {
2687 	size_t d1len = strlen(ds1);
2688 
2689 	/* ds2 can't be a descendant if it's smaller */
2690 	if (strlen(ds2) < d1len)
2691 		return (B_FALSE);
2692 
2693 	/* otherwise, compare strings and verify that there's a '/' char */
2694 	return (ds2[d1len] == '/' && (strncmp(ds1, ds2, d1len) == 0));
2695 }
2696 
2697 /*
2698  * Given a complete name, return just the portion that refers to the parent.
2699  * Will return -1 if there is no parent (path is just the name of the
2700  * pool).
2701  */
2702 static int
2703 parent_name(const char *path, char *buf, size_t buflen)
2704 {
2705 	char *slashp;
2706 
2707 	(void) strlcpy(buf, path, buflen);
2708 
2709 	if ((slashp = strrchr(buf, '/')) == NULL)
2710 		return (-1);
2711 	*slashp = '\0';
2712 
2713 	return (0);
2714 }
2715 
2716 /*
2717  * If accept_ancestor is false, then check to make sure that the given path has
2718  * a parent, and that it exists.  If accept_ancestor is true, then find the
2719  * closest existing ancestor for the given path.  In prefixlen return the
2720  * length of already existing prefix of the given path.  We also fetch the
2721  * 'zoned' property, which is used to validate property settings when creating
2722  * new datasets.
2723  */
2724 static int
2725 check_parents(libzfs_handle_t *hdl, const char *path, uint64_t *zoned,
2726     boolean_t accept_ancestor, int *prefixlen)
2727 {
2728 	zfs_cmd_t zc = { 0 };
2729 	char parent[ZFS_MAXNAMELEN];
2730 	char *slash;
2731 	zfs_handle_t *zhp;
2732 	char errbuf[1024];
2733 	uint64_t is_zoned;
2734 
2735 	(void) snprintf(errbuf, sizeof (errbuf),
2736 	    dgettext(TEXT_DOMAIN, "cannot create '%s'"), path);
2737 
2738 	/* get parent, and check to see if this is just a pool */
2739 	if (parent_name(path, parent, sizeof (parent)) != 0) {
2740 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2741 		    "missing dataset name"));
2742 		return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
2743 	}
2744 
2745 	/* check to see if the pool exists */
2746 	if ((slash = strchr(parent, '/')) == NULL)
2747 		slash = parent + strlen(parent);
2748 	(void) strncpy(zc.zc_name, parent, slash - parent);
2749 	zc.zc_name[slash - parent] = '\0';
2750 	if (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_STATS, &zc) != 0 &&
2751 	    errno == ENOENT) {
2752 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2753 		    "no such pool '%s'"), zc.zc_name);
2754 		return (zfs_error(hdl, EZFS_NOENT, errbuf));
2755 	}
2756 
2757 	/* check to see if the parent dataset exists */
2758 	while ((zhp = make_dataset_handle(hdl, parent)) == NULL) {
2759 		if (errno == ENOENT && accept_ancestor) {
2760 			/*
2761 			 * Go deeper to find an ancestor, give up on top level.
2762 			 */
2763 			if (parent_name(parent, parent, sizeof (parent)) != 0) {
2764 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2765 				    "no such pool '%s'"), zc.zc_name);
2766 				return (zfs_error(hdl, EZFS_NOENT, errbuf));
2767 			}
2768 		} else if (errno == ENOENT) {
2769 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2770 			    "parent does not exist"));
2771 			return (zfs_error(hdl, EZFS_NOENT, errbuf));
2772 		} else
2773 			return (zfs_standard_error(hdl, errno, errbuf));
2774 	}
2775 
2776 	is_zoned = zfs_prop_get_int(zhp, ZFS_PROP_ZONED);
2777 	if (zoned != NULL)
2778 		*zoned = is_zoned;
2779 
2780 	/* we are in a non-global zone, but parent is in the global zone */
2781 	if (getzoneid() != GLOBAL_ZONEID && !is_zoned) {
2782 		(void) zfs_standard_error(hdl, EPERM, errbuf);
2783 		zfs_close(zhp);
2784 		return (-1);
2785 	}
2786 
2787 	/* make sure parent is a filesystem */
2788 	if (zfs_get_type(zhp) != ZFS_TYPE_FILESYSTEM) {
2789 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2790 		    "parent is not a filesystem"));
2791 		(void) zfs_error(hdl, EZFS_BADTYPE, errbuf);
2792 		zfs_close(zhp);
2793 		return (-1);
2794 	}
2795 
2796 	zfs_close(zhp);
2797 	if (prefixlen != NULL)
2798 		*prefixlen = strlen(parent);
2799 	return (0);
2800 }
2801 
2802 /*
2803  * Finds whether the dataset of the given type(s) exists.
2804  */
2805 boolean_t
2806 zfs_dataset_exists(libzfs_handle_t *hdl, const char *path, zfs_type_t types)
2807 {
2808 	zfs_handle_t *zhp;
2809 
2810 	if (!zfs_validate_name(hdl, path, types, B_FALSE))
2811 		return (B_FALSE);
2812 
2813 	/*
2814 	 * Try to get stats for the dataset, which will tell us if it exists.
2815 	 */
2816 	if ((zhp = make_dataset_handle(hdl, path)) != NULL) {
2817 		int ds_type = zhp->zfs_type;
2818 
2819 		zfs_close(zhp);
2820 		if (types & ds_type)
2821 			return (B_TRUE);
2822 	}
2823 	return (B_FALSE);
2824 }
2825 
2826 /*
2827  * Given a path to 'target', create all the ancestors between
2828  * the prefixlen portion of the path, and the target itself.
2829  * Fail if the initial prefixlen-ancestor does not already exist.
2830  */
2831 int
2832 create_parents(libzfs_handle_t *hdl, char *target, int prefixlen)
2833 {
2834 	zfs_handle_t *h;
2835 	char *cp;
2836 	const char *opname;
2837 
2838 	/* make sure prefix exists */
2839 	cp = target + prefixlen;
2840 	if (*cp != '/') {
2841 		assert(strchr(cp, '/') == NULL);
2842 		h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM);
2843 	} else {
2844 		*cp = '\0';
2845 		h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM);
2846 		*cp = '/';
2847 	}
2848 	if (h == NULL)
2849 		return (-1);
2850 	zfs_close(h);
2851 
2852 	/*
2853 	 * Attempt to create, mount, and share any ancestor filesystems,
2854 	 * up to the prefixlen-long one.
2855 	 */
2856 	for (cp = target + prefixlen + 1;
2857 	    cp = strchr(cp, '/'); *cp = '/', cp++) {
2858 
2859 		*cp = '\0';
2860 
2861 		h = make_dataset_handle(hdl, target);
2862 		if (h) {
2863 			/* it already exists, nothing to do here */
2864 			zfs_close(h);
2865 			continue;
2866 		}
2867 
2868 		if (zfs_create(hdl, target, ZFS_TYPE_FILESYSTEM,
2869 		    NULL) != 0) {
2870 			opname = dgettext(TEXT_DOMAIN, "create");
2871 			goto ancestorerr;
2872 		}
2873 
2874 		h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM);
2875 		if (h == NULL) {
2876 			opname = dgettext(TEXT_DOMAIN, "open");
2877 			goto ancestorerr;
2878 		}
2879 
2880 		if (zfs_mount(h, NULL, 0) != 0) {
2881 			opname = dgettext(TEXT_DOMAIN, "mount");
2882 			goto ancestorerr;
2883 		}
2884 
2885 		if (zfs_share(h) != 0) {
2886 			opname = dgettext(TEXT_DOMAIN, "share");
2887 			goto ancestorerr;
2888 		}
2889 
2890 		zfs_close(h);
2891 	}
2892 
2893 	return (0);
2894 
2895 ancestorerr:
2896 	zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2897 	    "failed to %s ancestor '%s'"), opname, target);
2898 	return (-1);
2899 }
2900 
2901 /*
2902  * Creates non-existing ancestors of the given path.
2903  */
2904 int
2905 zfs_create_ancestors(libzfs_handle_t *hdl, const char *path)
2906 {
2907 	int prefix;
2908 	char *path_copy;
2909 	int rc;
2910 
2911 	if (check_parents(hdl, path, NULL, B_TRUE, &prefix) != 0)
2912 		return (-1);
2913 
2914 	if ((path_copy = strdup(path)) != NULL) {
2915 		rc = create_parents(hdl, path_copy, prefix);
2916 		free(path_copy);
2917 	}
2918 	if (path_copy == NULL || rc != 0)
2919 		return (-1);
2920 
2921 	return (0);
2922 }
2923 
2924 /*
2925  * Create a new filesystem or volume.
2926  */
2927 int
2928 zfs_create(libzfs_handle_t *hdl, const char *path, zfs_type_t type,
2929     nvlist_t *props)
2930 {
2931 	int ret;
2932 	uint64_t size = 0;
2933 	uint64_t blocksize = zfs_prop_default_numeric(ZFS_PROP_VOLBLOCKSIZE);
2934 	char errbuf[1024];
2935 	uint64_t zoned;
2936 	dmu_objset_type_t ost;
2937 
2938 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
2939 	    "cannot create '%s'"), path);
2940 
2941 	/* validate the path, taking care to note the extended error message */
2942 	if (!zfs_validate_name(hdl, path, type, B_TRUE))
2943 		return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
2944 
2945 	/* validate parents exist */
2946 	if (check_parents(hdl, path, &zoned, B_FALSE, NULL) != 0)
2947 		return (-1);
2948 
2949 	/*
2950 	 * The failure modes when creating a dataset of a different type over
2951 	 * one that already exists is a little strange.  In particular, if you
2952 	 * try to create a dataset on top of an existing dataset, the ioctl()
2953 	 * will return ENOENT, not EEXIST.  To prevent this from happening, we
2954 	 * first try to see if the dataset exists.
2955 	 */
2956 	if (zfs_dataset_exists(hdl, path, ZFS_TYPE_DATASET)) {
2957 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2958 		    "dataset already exists"));
2959 		return (zfs_error(hdl, EZFS_EXISTS, errbuf));
2960 	}
2961 
2962 	if (type == ZFS_TYPE_VOLUME)
2963 		ost = DMU_OST_ZVOL;
2964 	else
2965 		ost = DMU_OST_ZFS;
2966 
2967 	if (props && (props = zfs_valid_proplist(hdl, type, props,
2968 	    zoned, NULL, errbuf)) == 0)
2969 		return (-1);
2970 
2971 	if (type == ZFS_TYPE_VOLUME) {
2972 		/*
2973 		 * If we are creating a volume, the size and block size must
2974 		 * satisfy a few restraints.  First, the blocksize must be a
2975 		 * valid block size between SPA_{MIN,MAX}BLOCKSIZE.  Second, the
2976 		 * volsize must be a multiple of the block size, and cannot be
2977 		 * zero.
2978 		 */
2979 		if (props == NULL || nvlist_lookup_uint64(props,
2980 		    zfs_prop_to_name(ZFS_PROP_VOLSIZE), &size) != 0) {
2981 			nvlist_free(props);
2982 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2983 			    "missing volume size"));
2984 			return (zfs_error(hdl, EZFS_BADPROP, errbuf));
2985 		}
2986 
2987 		if ((ret = nvlist_lookup_uint64(props,
2988 		    zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE),
2989 		    &blocksize)) != 0) {
2990 			if (ret == ENOENT) {
2991 				blocksize = zfs_prop_default_numeric(
2992 				    ZFS_PROP_VOLBLOCKSIZE);
2993 			} else {
2994 				nvlist_free(props);
2995 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
2996 				    "missing volume block size"));
2997 				return (zfs_error(hdl, EZFS_BADPROP, errbuf));
2998 			}
2999 		}
3000 
3001 		if (size == 0) {
3002 			nvlist_free(props);
3003 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3004 			    "volume size cannot be zero"));
3005 			return (zfs_error(hdl, EZFS_BADPROP, errbuf));
3006 		}
3007 
3008 		if (size % blocksize != 0) {
3009 			nvlist_free(props);
3010 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3011 			    "volume size must be a multiple of volume block "
3012 			    "size"));
3013 			return (zfs_error(hdl, EZFS_BADPROP, errbuf));
3014 		}
3015 	}
3016 
3017 	/* create the dataset */
3018 	ret = lzc_create(path, ost, props);
3019 	nvlist_free(props);
3020 
3021 	/* check for failure */
3022 	if (ret != 0) {
3023 		char parent[ZFS_MAXNAMELEN];
3024 		(void) parent_name(path, parent, sizeof (parent));
3025 
3026 		switch (errno) {
3027 		case ENOENT:
3028 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3029 			    "no such parent '%s'"), parent);
3030 			return (zfs_error(hdl, EZFS_NOENT, errbuf));
3031 
3032 		case EINVAL:
3033 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3034 			    "parent '%s' is not a filesystem"), parent);
3035 			return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
3036 
3037 		case EDOM:
3038 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3039 			    "volume block size must be power of 2 from "
3040 			    "%u to %uk"),
3041 			    (uint_t)SPA_MINBLOCKSIZE,
3042 			    (uint_t)SPA_MAXBLOCKSIZE >> 10);
3043 
3044 			return (zfs_error(hdl, EZFS_BADPROP, errbuf));
3045 
3046 		case ENOTSUP:
3047 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3048 			    "pool must be upgraded to set this "
3049 			    "property or value"));
3050 			return (zfs_error(hdl, EZFS_BADVERSION, errbuf));
3051 #ifdef _ILP32
3052 		case EOVERFLOW:
3053 			/*
3054 			 * This platform can't address a volume this big.
3055 			 */
3056 			if (type == ZFS_TYPE_VOLUME)
3057 				return (zfs_error(hdl, EZFS_VOLTOOBIG,
3058 				    errbuf));
3059 #endif
3060 			/* FALLTHROUGH */
3061 		default:
3062 			return (zfs_standard_error(hdl, errno, errbuf));
3063 		}
3064 	}
3065 
3066 	return (0);
3067 }
3068 
3069 /*
3070  * Destroys the given dataset.  The caller must make sure that the filesystem
3071  * isn't mounted, and that there are no active dependents. If the file system
3072  * does not exist this function does nothing.
3073  */
3074 int
3075 zfs_destroy(zfs_handle_t *zhp, boolean_t defer)
3076 {
3077 	zfs_cmd_t zc = { 0 };
3078 
3079 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
3080 
3081 	if (ZFS_IS_VOLUME(zhp)) {
3082 		zc.zc_objset_type = DMU_OST_ZVOL;
3083 	} else {
3084 		zc.zc_objset_type = DMU_OST_ZFS;
3085 	}
3086 
3087 	zc.zc_defer_destroy = defer;
3088 	if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_DESTROY, &zc) != 0 &&
3089 	    errno != ENOENT) {
3090 		return (zfs_standard_error_fmt(zhp->zfs_hdl, errno,
3091 		    dgettext(TEXT_DOMAIN, "cannot destroy '%s'"),
3092 		    zhp->zfs_name));
3093 	}
3094 
3095 	remove_mountpoint(zhp);
3096 
3097 	return (0);
3098 }
3099 
3100 struct destroydata {
3101 	nvlist_t *nvl;
3102 	const char *snapname;
3103 };
3104 
3105 static int
3106 zfs_check_snap_cb(zfs_handle_t *zhp, void *arg)
3107 {
3108 	struct destroydata *dd = arg;
3109 	zfs_handle_t *szhp;
3110 	char name[ZFS_MAXNAMELEN];
3111 	int rv = 0;
3112 
3113 	(void) snprintf(name, sizeof (name),
3114 	    "%s@%s", zhp->zfs_name, dd->snapname);
3115 
3116 	szhp = make_dataset_handle(zhp->zfs_hdl, name);
3117 	if (szhp) {
3118 		verify(nvlist_add_boolean(dd->nvl, name) == 0);
3119 		zfs_close(szhp);
3120 	}
3121 
3122 	rv = zfs_iter_filesystems(zhp, zfs_check_snap_cb, dd);
3123 	zfs_close(zhp);
3124 	return (rv);
3125 }
3126 
3127 /*
3128  * Destroys all snapshots with the given name in zhp & descendants.
3129  */
3130 int
3131 zfs_destroy_snaps(zfs_handle_t *zhp, char *snapname, boolean_t defer)
3132 {
3133 	int ret;
3134 	struct destroydata dd = { 0 };
3135 
3136 	dd.snapname = snapname;
3137 	verify(nvlist_alloc(&dd.nvl, NV_UNIQUE_NAME, 0) == 0);
3138 	(void) zfs_check_snap_cb(zfs_handle_dup(zhp), &dd);
3139 
3140 	if (nvlist_next_nvpair(dd.nvl, NULL) == NULL) {
3141 		ret = zfs_standard_error_fmt(zhp->zfs_hdl, ENOENT,
3142 		    dgettext(TEXT_DOMAIN, "cannot destroy '%s@%s'"),
3143 		    zhp->zfs_name, snapname);
3144 	} else {
3145 		ret = zfs_destroy_snaps_nvl(zhp, dd.nvl, defer);
3146 	}
3147 	nvlist_free(dd.nvl);
3148 	return (ret);
3149 }
3150 
3151 /*
3152  * Destroys all the snapshots named in the nvlist.  They must be underneath
3153  * the zhp (either snapshots of it, or snapshots of its descendants).
3154  */
3155 int
3156 zfs_destroy_snaps_nvl(zfs_handle_t *zhp, nvlist_t *snaps, boolean_t defer)
3157 {
3158 	int ret;
3159 	nvlist_t *errlist;
3160 
3161 	ret = lzc_destroy_snaps(snaps, defer, &errlist);
3162 
3163 	if (ret != 0) {
3164 		for (nvpair_t *pair = nvlist_next_nvpair(errlist, NULL);
3165 		    pair != NULL; pair = nvlist_next_nvpair(errlist, pair)) {
3166 			char errbuf[1024];
3167 			(void) snprintf(errbuf, sizeof (errbuf),
3168 			    dgettext(TEXT_DOMAIN, "cannot destroy snapshot %s"),
3169 			    nvpair_name(pair));
3170 
3171 			switch (fnvpair_value_int32(pair)) {
3172 			case EEXIST:
3173 				zfs_error_aux(zhp->zfs_hdl,
3174 				    dgettext(TEXT_DOMAIN,
3175 				    "snapshot is cloned"));
3176 				ret = zfs_error(zhp->zfs_hdl, EZFS_EXISTS,
3177 				    errbuf);
3178 				break;
3179 			default:
3180 				ret = zfs_standard_error(zhp->zfs_hdl, errno,
3181 				    errbuf);
3182 				break;
3183 			}
3184 		}
3185 	}
3186 
3187 	return (ret);
3188 }
3189 
3190 /*
3191  * Clones the given dataset.  The target must be of the same type as the source.
3192  */
3193 int
3194 zfs_clone(zfs_handle_t *zhp, const char *target, nvlist_t *props)
3195 {
3196 	char parent[ZFS_MAXNAMELEN];
3197 	int ret;
3198 	char errbuf[1024];
3199 	libzfs_handle_t *hdl = zhp->zfs_hdl;
3200 	uint64_t zoned;
3201 
3202 	assert(zhp->zfs_type == ZFS_TYPE_SNAPSHOT);
3203 
3204 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3205 	    "cannot create '%s'"), target);
3206 
3207 	/* validate the target/clone name */
3208 	if (!zfs_validate_name(hdl, target, ZFS_TYPE_FILESYSTEM, B_TRUE))
3209 		return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3210 
3211 	/* validate parents exist */
3212 	if (check_parents(hdl, target, &zoned, B_FALSE, NULL) != 0)
3213 		return (-1);
3214 
3215 	(void) parent_name(target, parent, sizeof (parent));
3216 
3217 	/* do the clone */
3218 
3219 	if (props) {
3220 		zfs_type_t type;
3221 		if (ZFS_IS_VOLUME(zhp)) {
3222 			type = ZFS_TYPE_VOLUME;
3223 		} else {
3224 			type = ZFS_TYPE_FILESYSTEM;
3225 		}
3226 		if ((props = zfs_valid_proplist(hdl, type, props, zoned,
3227 		    zhp, errbuf)) == NULL)
3228 			return (-1);
3229 	}
3230 
3231 	ret = lzc_clone(target, zhp->zfs_name, props);
3232 	nvlist_free(props);
3233 
3234 	if (ret != 0) {
3235 		switch (errno) {
3236 
3237 		case ENOENT:
3238 			/*
3239 			 * The parent doesn't exist.  We should have caught this
3240 			 * above, but there may a race condition that has since
3241 			 * destroyed the parent.
3242 			 *
3243 			 * At this point, we don't know whether it's the source
3244 			 * that doesn't exist anymore, or whether the target
3245 			 * dataset doesn't exist.
3246 			 */
3247 			zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN,
3248 			    "no such parent '%s'"), parent);
3249 			return (zfs_error(zhp->zfs_hdl, EZFS_NOENT, errbuf));
3250 
3251 		case EXDEV:
3252 			zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN,
3253 			    "source and target pools differ"));
3254 			return (zfs_error(zhp->zfs_hdl, EZFS_CROSSTARGET,
3255 			    errbuf));
3256 
3257 		default:
3258 			return (zfs_standard_error(zhp->zfs_hdl, errno,
3259 			    errbuf));
3260 		}
3261 	}
3262 
3263 	return (ret);
3264 }
3265 
3266 /*
3267  * Promotes the given clone fs to be the clone parent.
3268  */
3269 int
3270 zfs_promote(zfs_handle_t *zhp)
3271 {
3272 	libzfs_handle_t *hdl = zhp->zfs_hdl;
3273 	zfs_cmd_t zc = { 0 };
3274 	char parent[MAXPATHLEN];
3275 	int ret;
3276 	char errbuf[1024];
3277 
3278 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3279 	    "cannot promote '%s'"), zhp->zfs_name);
3280 
3281 	if (zhp->zfs_type == ZFS_TYPE_SNAPSHOT) {
3282 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3283 		    "snapshots can not be promoted"));
3284 		return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
3285 	}
3286 
3287 	(void) strlcpy(parent, zhp->zfs_dmustats.dds_origin, sizeof (parent));
3288 	if (parent[0] == '\0') {
3289 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3290 		    "not a cloned filesystem"));
3291 		return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
3292 	}
3293 
3294 	(void) strlcpy(zc.zc_value, zhp->zfs_dmustats.dds_origin,
3295 	    sizeof (zc.zc_value));
3296 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
3297 	ret = zfs_ioctl(hdl, ZFS_IOC_PROMOTE, &zc);
3298 
3299 	if (ret != 0) {
3300 		int save_errno = errno;
3301 
3302 		switch (save_errno) {
3303 		case EEXIST:
3304 			/* There is a conflicting snapshot name. */
3305 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3306 			    "conflicting snapshot '%s' from parent '%s'"),
3307 			    zc.zc_string, parent);
3308 			return (zfs_error(hdl, EZFS_EXISTS, errbuf));
3309 
3310 		default:
3311 			return (zfs_standard_error(hdl, save_errno, errbuf));
3312 		}
3313 	}
3314 	return (ret);
3315 }
3316 
3317 typedef struct snapdata {
3318 	nvlist_t *sd_nvl;
3319 	const char *sd_snapname;
3320 } snapdata_t;
3321 
3322 static int
3323 zfs_snapshot_cb(zfs_handle_t *zhp, void *arg)
3324 {
3325 	snapdata_t *sd = arg;
3326 	char name[ZFS_MAXNAMELEN];
3327 	int rv = 0;
3328 
3329 	(void) snprintf(name, sizeof (name),
3330 	    "%s@%s", zfs_get_name(zhp), sd->sd_snapname);
3331 
3332 	fnvlist_add_boolean(sd->sd_nvl, name);
3333 
3334 	rv = zfs_iter_filesystems(zhp, zfs_snapshot_cb, sd);
3335 	zfs_close(zhp);
3336 	return (rv);
3337 }
3338 
3339 /*
3340  * Creates snapshots.  The keys in the snaps nvlist are the snapshots to be
3341  * created.
3342  */
3343 int
3344 zfs_snapshot_nvl(libzfs_handle_t *hdl, nvlist_t *snaps, nvlist_t *props)
3345 {
3346 	int ret;
3347 	char errbuf[1024];
3348 	nvpair_t *elem;
3349 	nvlist_t *errors;
3350 
3351 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3352 	    "cannot create snapshots "));
3353 
3354 	elem = NULL;
3355 	while ((elem = nvlist_next_nvpair(snaps, elem)) != NULL) {
3356 		const char *snapname = nvpair_name(elem);
3357 
3358 		/* validate the target name */
3359 		if (!zfs_validate_name(hdl, snapname, ZFS_TYPE_SNAPSHOT,
3360 		    B_TRUE)) {
3361 			(void) snprintf(errbuf, sizeof (errbuf),
3362 			    dgettext(TEXT_DOMAIN,
3363 			    "cannot create snapshot '%s'"), snapname);
3364 			return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3365 		}
3366 	}
3367 
3368 	if (props != NULL &&
3369 	    (props = zfs_valid_proplist(hdl, ZFS_TYPE_SNAPSHOT,
3370 	    props, B_FALSE, NULL, errbuf)) == NULL) {
3371 		return (-1);
3372 	}
3373 
3374 	ret = lzc_snapshot(snaps, props, &errors);
3375 
3376 	if (ret != 0) {
3377 		boolean_t printed = B_FALSE;
3378 		for (elem = nvlist_next_nvpair(errors, NULL);
3379 		    elem != NULL;
3380 		    elem = nvlist_next_nvpair(errors, elem)) {
3381 			(void) snprintf(errbuf, sizeof (errbuf),
3382 			    dgettext(TEXT_DOMAIN,
3383 			    "cannot create snapshot '%s'"), nvpair_name(elem));
3384 			(void) zfs_standard_error(hdl,
3385 			    fnvpair_value_int32(elem), errbuf);
3386 			printed = B_TRUE;
3387 		}
3388 		if (!printed) {
3389 			switch (ret) {
3390 			case EXDEV:
3391 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3392 				    "multiple snapshots of same "
3393 				    "fs not allowed"));
3394 				(void) zfs_error(hdl, EZFS_EXISTS, errbuf);
3395 
3396 				break;
3397 			default:
3398 				(void) zfs_standard_error(hdl, ret, errbuf);
3399 			}
3400 		}
3401 	}
3402 
3403 	nvlist_free(props);
3404 	nvlist_free(errors);
3405 	return (ret);
3406 }
3407 
3408 int
3409 zfs_snapshot(libzfs_handle_t *hdl, const char *path, boolean_t recursive,
3410     nvlist_t *props)
3411 {
3412 	int ret;
3413 	snapdata_t sd = { 0 };
3414 	char fsname[ZFS_MAXNAMELEN];
3415 	char *cp;
3416 	zfs_handle_t *zhp;
3417 	char errbuf[1024];
3418 
3419 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3420 	    "cannot snapshot %s"), path);
3421 
3422 	if (!zfs_validate_name(hdl, path, ZFS_TYPE_SNAPSHOT, B_TRUE))
3423 		return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3424 
3425 	(void) strlcpy(fsname, path, sizeof (fsname));
3426 	cp = strchr(fsname, '@');
3427 	*cp = '\0';
3428 	sd.sd_snapname = cp + 1;
3429 
3430 	if ((zhp = zfs_open(hdl, fsname, ZFS_TYPE_FILESYSTEM |
3431 	    ZFS_TYPE_VOLUME)) == NULL) {
3432 		return (-1);
3433 	}
3434 
3435 	verify(nvlist_alloc(&sd.sd_nvl, NV_UNIQUE_NAME, 0) == 0);
3436 	if (recursive) {
3437 		(void) zfs_snapshot_cb(zfs_handle_dup(zhp), &sd);
3438 	} else {
3439 		fnvlist_add_boolean(sd.sd_nvl, path);
3440 	}
3441 
3442 	ret = zfs_snapshot_nvl(hdl, sd.sd_nvl, props);
3443 	nvlist_free(sd.sd_nvl);
3444 	zfs_close(zhp);
3445 	return (ret);
3446 }
3447 
3448 /*
3449  * Destroy any more recent snapshots.  We invoke this callback on any dependents
3450  * of the snapshot first.  If the 'cb_dependent' member is non-zero, then this
3451  * is a dependent and we should just destroy it without checking the transaction
3452  * group.
3453  */
3454 typedef struct rollback_data {
3455 	const char	*cb_target;		/* the snapshot */
3456 	uint64_t	cb_create;		/* creation time reference */
3457 	boolean_t	cb_error;
3458 	boolean_t	cb_dependent;
3459 	boolean_t	cb_force;
3460 } rollback_data_t;
3461 
3462 static int
3463 rollback_destroy(zfs_handle_t *zhp, void *data)
3464 {
3465 	rollback_data_t *cbp = data;
3466 
3467 	if (!cbp->cb_dependent) {
3468 		if (strcmp(zhp->zfs_name, cbp->cb_target) != 0 &&
3469 		    zfs_get_type(zhp) == ZFS_TYPE_SNAPSHOT &&
3470 		    zfs_prop_get_int(zhp, ZFS_PROP_CREATETXG) >
3471 		    cbp->cb_create) {
3472 
3473 			cbp->cb_dependent = B_TRUE;
3474 			cbp->cb_error |= zfs_iter_dependents(zhp, B_FALSE,
3475 			    rollback_destroy, cbp);
3476 			cbp->cb_dependent = B_FALSE;
3477 
3478 			cbp->cb_error |= zfs_destroy(zhp, B_FALSE);
3479 		}
3480 	} else {
3481 		/* We must destroy this clone; first unmount it */
3482 		prop_changelist_t *clp;
3483 
3484 		clp = changelist_gather(zhp, ZFS_PROP_NAME, 0,
3485 		    cbp->cb_force ? MS_FORCE: 0);
3486 		if (clp == NULL || changelist_prefix(clp) != 0) {
3487 			cbp->cb_error = B_TRUE;
3488 			zfs_close(zhp);
3489 			return (0);
3490 		}
3491 		if (zfs_destroy(zhp, B_FALSE) != 0)
3492 			cbp->cb_error = B_TRUE;
3493 		else
3494 			changelist_remove(clp, zhp->zfs_name);
3495 		(void) changelist_postfix(clp);
3496 		changelist_free(clp);
3497 	}
3498 
3499 	zfs_close(zhp);
3500 	return (0);
3501 }
3502 
3503 /*
3504  * Given a dataset, rollback to a specific snapshot, discarding any
3505  * data changes since then and making it the active dataset.
3506  *
3507  * Any snapshots more recent than the target are destroyed, along with
3508  * their dependents.
3509  */
3510 int
3511 zfs_rollback(zfs_handle_t *zhp, zfs_handle_t *snap, boolean_t force)
3512 {
3513 	rollback_data_t cb = { 0 };
3514 	int err;
3515 	zfs_cmd_t zc = { 0 };
3516 	boolean_t restore_resv = 0;
3517 	uint64_t old_volsize, new_volsize;
3518 	zfs_prop_t resv_prop;
3519 
3520 	assert(zhp->zfs_type == ZFS_TYPE_FILESYSTEM ||
3521 	    zhp->zfs_type == ZFS_TYPE_VOLUME);
3522 
3523 	/*
3524 	 * Destroy all recent snapshots and their dependents.
3525 	 */
3526 	cb.cb_force = force;
3527 	cb.cb_target = snap->zfs_name;
3528 	cb.cb_create = zfs_prop_get_int(snap, ZFS_PROP_CREATETXG);
3529 	(void) zfs_iter_children(zhp, rollback_destroy, &cb);
3530 
3531 	if (cb.cb_error)
3532 		return (-1);
3533 
3534 	/*
3535 	 * Now that we have verified that the snapshot is the latest,
3536 	 * rollback to the given snapshot.
3537 	 */
3538 
3539 	if (zhp->zfs_type == ZFS_TYPE_VOLUME) {
3540 		if (zfs_which_resv_prop(zhp, &resv_prop) < 0)
3541 			return (-1);
3542 		old_volsize = zfs_prop_get_int(zhp, ZFS_PROP_VOLSIZE);
3543 		restore_resv =
3544 		    (old_volsize == zfs_prop_get_int(zhp, resv_prop));
3545 	}
3546 
3547 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
3548 
3549 	if (ZFS_IS_VOLUME(zhp))
3550 		zc.zc_objset_type = DMU_OST_ZVOL;
3551 	else
3552 		zc.zc_objset_type = DMU_OST_ZFS;
3553 
3554 	/*
3555 	 * We rely on zfs_iter_children() to verify that there are no
3556 	 * newer snapshots for the given dataset.  Therefore, we can
3557 	 * simply pass the name on to the ioctl() call.  There is still
3558 	 * an unlikely race condition where the user has taken a
3559 	 * snapshot since we verified that this was the most recent.
3560 	 *
3561 	 */
3562 	if ((err = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_ROLLBACK, &zc)) != 0) {
3563 		(void) zfs_standard_error_fmt(zhp->zfs_hdl, errno,
3564 		    dgettext(TEXT_DOMAIN, "cannot rollback '%s'"),
3565 		    zhp->zfs_name);
3566 		return (err);
3567 	}
3568 
3569 	/*
3570 	 * For volumes, if the pre-rollback volsize matched the pre-
3571 	 * rollback reservation and the volsize has changed then set
3572 	 * the reservation property to the post-rollback volsize.
3573 	 * Make a new handle since the rollback closed the dataset.
3574 	 */
3575 	if ((zhp->zfs_type == ZFS_TYPE_VOLUME) &&
3576 	    (zhp = make_dataset_handle(zhp->zfs_hdl, zhp->zfs_name))) {
3577 		if (restore_resv) {
3578 			new_volsize = zfs_prop_get_int(zhp, ZFS_PROP_VOLSIZE);
3579 			if (old_volsize != new_volsize)
3580 				err = zfs_prop_set_int(zhp, resv_prop,
3581 				    new_volsize);
3582 		}
3583 		zfs_close(zhp);
3584 	}
3585 	return (err);
3586 }
3587 
3588 /*
3589  * Renames the given dataset.
3590  */
3591 int
3592 zfs_rename(zfs_handle_t *zhp, const char *target, boolean_t recursive,
3593     boolean_t force_unmount)
3594 {
3595 	int ret;
3596 	zfs_cmd_t zc = { 0 };
3597 	char *delim;
3598 	prop_changelist_t *cl = NULL;
3599 	zfs_handle_t *zhrp = NULL;
3600 	char *parentname = NULL;
3601 	char parent[ZFS_MAXNAMELEN];
3602 	libzfs_handle_t *hdl = zhp->zfs_hdl;
3603 	char errbuf[1024];
3604 
3605 	/* if we have the same exact name, just return success */
3606 	if (strcmp(zhp->zfs_name, target) == 0)
3607 		return (0);
3608 
3609 	(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3610 	    "cannot rename to '%s'"), target);
3611 
3612 	/*
3613 	 * Make sure the target name is valid
3614 	 */
3615 	if (zhp->zfs_type == ZFS_TYPE_SNAPSHOT) {
3616 		if ((strchr(target, '@') == NULL) ||
3617 		    *target == '@') {
3618 			/*
3619 			 * Snapshot target name is abbreviated,
3620 			 * reconstruct full dataset name
3621 			 */
3622 			(void) strlcpy(parent, zhp->zfs_name,
3623 			    sizeof (parent));
3624 			delim = strchr(parent, '@');
3625 			if (strchr(target, '@') == NULL)
3626 				*(++delim) = '\0';
3627 			else
3628 				*delim = '\0';
3629 			(void) strlcat(parent, target, sizeof (parent));
3630 			target = parent;
3631 		} else {
3632 			/*
3633 			 * Make sure we're renaming within the same dataset.
3634 			 */
3635 			delim = strchr(target, '@');
3636 			if (strncmp(zhp->zfs_name, target, delim - target)
3637 			    != 0 || zhp->zfs_name[delim - target] != '@') {
3638 				zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3639 				    "snapshots must be part of same "
3640 				    "dataset"));
3641 				return (zfs_error(hdl, EZFS_CROSSTARGET,
3642 				    errbuf));
3643 			}
3644 		}
3645 		if (!zfs_validate_name(hdl, target, zhp->zfs_type, B_TRUE))
3646 			return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3647 	} else {
3648 		if (recursive) {
3649 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3650 			    "recursive rename must be a snapshot"));
3651 			return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
3652 		}
3653 
3654 		if (!zfs_validate_name(hdl, target, zhp->zfs_type, B_TRUE))
3655 			return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3656 
3657 		/* validate parents */
3658 		if (check_parents(hdl, target, NULL, B_FALSE, NULL) != 0)
3659 			return (-1);
3660 
3661 		/* make sure we're in the same pool */
3662 		verify((delim = strchr(target, '/')) != NULL);
3663 		if (strncmp(zhp->zfs_name, target, delim - target) != 0 ||
3664 		    zhp->zfs_name[delim - target] != '/') {
3665 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3666 			    "datasets must be within same pool"));
3667 			return (zfs_error(hdl, EZFS_CROSSTARGET, errbuf));
3668 		}
3669 
3670 		/* new name cannot be a child of the current dataset name */
3671 		if (is_descendant(zhp->zfs_name, target)) {
3672 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3673 			    "New dataset name cannot be a descendant of "
3674 			    "current dataset name"));
3675 			return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf));
3676 		}
3677 	}
3678 
3679 	(void) snprintf(errbuf, sizeof (errbuf),
3680 	    dgettext(TEXT_DOMAIN, "cannot rename '%s'"), zhp->zfs_name);
3681 
3682 	if (getzoneid() == GLOBAL_ZONEID &&
3683 	    zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) {
3684 		zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3685 		    "dataset is used in a non-global zone"));
3686 		return (zfs_error(hdl, EZFS_ZONED, errbuf));
3687 	}
3688 
3689 	if (recursive) {
3690 
3691 		parentname = zfs_strdup(zhp->zfs_hdl, zhp->zfs_name);
3692 		if (parentname == NULL) {
3693 			ret = -1;
3694 			goto error;
3695 		}
3696 		delim = strchr(parentname, '@');
3697 		*delim = '\0';
3698 		zhrp = zfs_open(zhp->zfs_hdl, parentname, ZFS_TYPE_DATASET);
3699 		if (zhrp == NULL) {
3700 			ret = -1;
3701 			goto error;
3702 		}
3703 
3704 	} else {
3705 		if ((cl = changelist_gather(zhp, ZFS_PROP_NAME, 0,
3706 		    force_unmount ? MS_FORCE : 0)) == NULL)
3707 			return (-1);
3708 
3709 		if (changelist_haszonedchild(cl)) {
3710 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3711 			    "child dataset with inherited mountpoint is used "
3712 			    "in a non-global zone"));
3713 			(void) zfs_error(hdl, EZFS_ZONED, errbuf);
3714 			goto error;
3715 		}
3716 
3717 		if ((ret = changelist_prefix(cl)) != 0)
3718 			goto error;
3719 	}
3720 
3721 	if (ZFS_IS_VOLUME(zhp))
3722 		zc.zc_objset_type = DMU_OST_ZVOL;
3723 	else
3724 		zc.zc_objset_type = DMU_OST_ZFS;
3725 
3726 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
3727 	(void) strlcpy(zc.zc_value, target, sizeof (zc.zc_value));
3728 
3729 	zc.zc_cookie = recursive;
3730 
3731 	if ((ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_RENAME, &zc)) != 0) {
3732 		/*
3733 		 * if it was recursive, the one that actually failed will
3734 		 * be in zc.zc_name
3735 		 */
3736 		(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
3737 		    "cannot rename '%s'"), zc.zc_name);
3738 
3739 		if (recursive && errno == EEXIST) {
3740 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
3741 			    "a child dataset already has a snapshot "
3742 			    "with the new name"));
3743 			(void) zfs_error(hdl, EZFS_EXISTS, errbuf);
3744 		} else {
3745 			(void) zfs_standard_error(zhp->zfs_hdl, errno, errbuf);
3746 		}
3747 
3748 		/*
3749 		 * On failure, we still want to remount any filesystems that
3750 		 * were previously mounted, so we don't alter the system state.
3751 		 */
3752 		if (!recursive)
3753 			(void) changelist_postfix(cl);
3754 	} else {
3755 		if (!recursive) {
3756 			changelist_rename(cl, zfs_get_name(zhp), target);
3757 			ret = changelist_postfix(cl);
3758 		}
3759 	}
3760 
3761 error:
3762 	if (parentname) {
3763 		free(parentname);
3764 	}
3765 	if (zhrp) {
3766 		zfs_close(zhrp);
3767 	}
3768 	if (cl) {
3769 		changelist_free(cl);
3770 	}
3771 	return (ret);
3772 }
3773 
3774 nvlist_t *
3775 zfs_get_user_props(zfs_handle_t *zhp)
3776 {
3777 	return (zhp->zfs_user_props);
3778 }
3779 
3780 nvlist_t *
3781 zfs_get_recvd_props(zfs_handle_t *zhp)
3782 {
3783 	if (zhp->zfs_recvd_props == NULL)
3784 		if (get_recvd_props_ioctl(zhp) != 0)
3785 			return (NULL);
3786 	return (zhp->zfs_recvd_props);
3787 }
3788 
3789 /*
3790  * This function is used by 'zfs list' to determine the exact set of columns to
3791  * display, and their maximum widths.  This does two main things:
3792  *
3793  *      - If this is a list of all properties, then expand the list to include
3794  *        all native properties, and set a flag so that for each dataset we look
3795  *        for new unique user properties and add them to the list.
3796  *
3797  *      - For non fixed-width properties, keep track of the maximum width seen
3798  *        so that we can size the column appropriately. If the user has
3799  *        requested received property values, we also need to compute the width
3800  *        of the RECEIVED column.
3801  */
3802 int
3803 zfs_expand_proplist(zfs_handle_t *zhp, zprop_list_t **plp, boolean_t received)
3804 {
3805 	libzfs_handle_t *hdl = zhp->zfs_hdl;
3806 	zprop_list_t *entry;
3807 	zprop_list_t **last, **start;
3808 	nvlist_t *userprops, *propval;
3809 	nvpair_t *elem;
3810 	char *strval;
3811 	char buf[ZFS_MAXPROPLEN];
3812 
3813 	if (zprop_expand_list(hdl, plp, ZFS_TYPE_DATASET) != 0)
3814 		return (-1);
3815 
3816 	userprops = zfs_get_user_props(zhp);
3817 
3818 	entry = *plp;
3819 	if (entry->pl_all && nvlist_next_nvpair(userprops, NULL) != NULL) {
3820 		/*
3821 		 * Go through and add any user properties as necessary.  We
3822 		 * start by incrementing our list pointer to the first
3823 		 * non-native property.
3824 		 */
3825 		start = plp;
3826 		while (*start != NULL) {
3827 			if ((*start)->pl_prop == ZPROP_INVAL)
3828 				break;
3829 			start = &(*start)->pl_next;
3830 		}
3831 
3832 		elem = NULL;
3833 		while ((elem = nvlist_next_nvpair(userprops, elem)) != NULL) {
3834 			/*
3835 			 * See if we've already found this property in our list.
3836 			 */
3837 			for (last = start; *last != NULL;
3838 			    last = &(*last)->pl_next) {
3839 				if (strcmp((*last)->pl_user_prop,
3840 				    nvpair_name(elem)) == 0)
3841 					break;
3842 			}
3843 
3844 			if (*last == NULL) {
3845 				if ((entry = zfs_alloc(hdl,
3846 				    sizeof (zprop_list_t))) == NULL ||
3847 				    ((entry->pl_user_prop = zfs_strdup(hdl,
3848 				    nvpair_name(elem)))) == NULL) {
3849 					free(entry);
3850 					return (-1);
3851 				}
3852 
3853 				entry->pl_prop = ZPROP_INVAL;
3854 				entry->pl_width = strlen(nvpair_name(elem));
3855 				entry->pl_all = B_TRUE;
3856 				*last = entry;
3857 			}
3858 		}
3859 	}
3860 
3861 	/*
3862 	 * Now go through and check the width of any non-fixed columns
3863 	 */
3864 	for (entry = *plp; entry != NULL; entry = entry->pl_next) {
3865 		if (entry->pl_fixed)
3866 			continue;
3867 
3868 		if (entry->pl_prop != ZPROP_INVAL) {
3869 			if (zfs_prop_get(zhp, entry->pl_prop,
3870 			    buf, sizeof (buf), NULL, NULL, 0, B_FALSE) == 0) {
3871 				if (strlen(buf) > entry->pl_width)
3872 					entry->pl_width = strlen(buf);
3873 			}
3874 			if (received && zfs_prop_get_recvd(zhp,
3875 			    zfs_prop_to_name(entry->pl_prop),
3876 			    buf, sizeof (buf), B_FALSE) == 0)
3877 				if (strlen(buf) > entry->pl_recvd_width)
3878 					entry->pl_recvd_width = strlen(buf);
3879 		} else {
3880 			if (nvlist_lookup_nvlist(userprops, entry->pl_user_prop,
3881 			    &propval) == 0) {
3882 				verify(nvlist_lookup_string(propval,
3883 				    ZPROP_VALUE, &strval) == 0);
3884 				if (strlen(strval) > entry->pl_width)
3885 					entry->pl_width = strlen(strval);
3886 			}
3887 			if (received && zfs_prop_get_recvd(zhp,
3888 			    entry->pl_user_prop,
3889 			    buf, sizeof (buf), B_FALSE) == 0)
3890 				if (strlen(buf) > entry->pl_recvd_width)
3891 					entry->pl_recvd_width = strlen(buf);
3892 		}
3893 	}
3894 
3895 	return (0);
3896 }
3897 
3898 int
3899 zfs_deleg_share_nfs(libzfs_handle_t *hdl, char *dataset, char *path,
3900     char *resource, void *export, void *sharetab,
3901     int sharemax, zfs_share_op_t operation)
3902 {
3903 	zfs_cmd_t zc = { 0 };
3904 	int error;
3905 
3906 	(void) strlcpy(zc.zc_name, dataset, sizeof (zc.zc_name));
3907 	(void) strlcpy(zc.zc_value, path, sizeof (zc.zc_value));
3908 	if (resource)
3909 		(void) strlcpy(zc.zc_string, resource, sizeof (zc.zc_string));
3910 	zc.zc_share.z_sharedata = (uint64_t)(uintptr_t)sharetab;
3911 	zc.zc_share.z_exportdata = (uint64_t)(uintptr_t)export;
3912 	zc.zc_share.z_sharetype = operation;
3913 	zc.zc_share.z_sharemax = sharemax;
3914 	error = ioctl(hdl->libzfs_fd, ZFS_IOC_SHARE, &zc);
3915 	return (error);
3916 }
3917 
3918 void
3919 zfs_prune_proplist(zfs_handle_t *zhp, uint8_t *props)
3920 {
3921 	nvpair_t *curr;
3922 
3923 	/*
3924 	 * Keep a reference to the props-table against which we prune the
3925 	 * properties.
3926 	 */
3927 	zhp->zfs_props_table = props;
3928 
3929 	curr = nvlist_next_nvpair(zhp->zfs_props, NULL);
3930 
3931 	while (curr) {
3932 		zfs_prop_t zfs_prop = zfs_name_to_prop(nvpair_name(curr));
3933 		nvpair_t *next = nvlist_next_nvpair(zhp->zfs_props, curr);
3934 
3935 		/*
3936 		 * User properties will result in ZPROP_INVAL, and since we
3937 		 * only know how to prune standard ZFS properties, we always
3938 		 * leave these in the list.  This can also happen if we
3939 		 * encounter an unknown DSL property (when running older
3940 		 * software, for example).
3941 		 */
3942 		if (zfs_prop != ZPROP_INVAL && props[zfs_prop] == B_FALSE)
3943 			(void) nvlist_remove(zhp->zfs_props,
3944 			    nvpair_name(curr), nvpair_type(curr));
3945 		curr = next;
3946 	}
3947 }
3948 
3949 static int
3950 zfs_smb_acl_mgmt(libzfs_handle_t *hdl, char *dataset, char *path,
3951     zfs_smb_acl_op_t cmd, char *resource1, char *resource2)
3952 {
3953 	zfs_cmd_t zc = { 0 };
3954 	nvlist_t *nvlist = NULL;
3955 	int error;
3956 
3957 	(void) strlcpy(zc.zc_name, dataset, sizeof (zc.zc_name));
3958 	(void) strlcpy(zc.zc_value, path, sizeof (zc.zc_value));
3959 	zc.zc_cookie = (uint64_t)cmd;
3960 
3961 	if (cmd == ZFS_SMB_ACL_RENAME) {
3962 		if (nvlist_alloc(&nvlist, NV_UNIQUE_NAME, 0) != 0) {
3963 			(void) no_memory(hdl);
3964 			return (NULL);
3965 		}
3966 	}
3967 
3968 	switch (cmd) {
3969 	case ZFS_SMB_ACL_ADD:
3970 	case ZFS_SMB_ACL_REMOVE:
3971 		(void) strlcpy(zc.zc_string, resource1, sizeof (zc.zc_string));
3972 		break;
3973 	case ZFS_SMB_ACL_RENAME:
3974 		if (nvlist_add_string(nvlist, ZFS_SMB_ACL_SRC,
3975 		    resource1) != 0) {
3976 				(void) no_memory(hdl);
3977 				return (-1);
3978 		}
3979 		if (nvlist_add_string(nvlist, ZFS_SMB_ACL_TARGET,
3980 		    resource2) != 0) {
3981 				(void) no_memory(hdl);
3982 				return (-1);
3983 		}
3984 		if (zcmd_write_src_nvlist(hdl, &zc, nvlist) != 0) {
3985 			nvlist_free(nvlist);
3986 			return (-1);
3987 		}
3988 		break;
3989 	case ZFS_SMB_ACL_PURGE:
3990 		break;
3991 	default:
3992 		return (-1);
3993 	}
3994 	error = ioctl(hdl->libzfs_fd, ZFS_IOC_SMB_ACL, &zc);
3995 	if (nvlist)
3996 		nvlist_free(nvlist);
3997 	return (error);
3998 }
3999 
4000 int
4001 zfs_smb_acl_add(libzfs_handle_t *hdl, char *dataset,
4002     char *path, char *resource)
4003 {
4004 	return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_ADD,
4005 	    resource, NULL));
4006 }
4007 
4008 int
4009 zfs_smb_acl_remove(libzfs_handle_t *hdl, char *dataset,
4010     char *path, char *resource)
4011 {
4012 	return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_REMOVE,
4013 	    resource, NULL));
4014 }
4015 
4016 int
4017 zfs_smb_acl_purge(libzfs_handle_t *hdl, char *dataset, char *path)
4018 {
4019 	return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_PURGE,
4020 	    NULL, NULL));
4021 }
4022 
4023 int
4024 zfs_smb_acl_rename(libzfs_handle_t *hdl, char *dataset, char *path,
4025     char *oldname, char *newname)
4026 {
4027 	return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_RENAME,
4028 	    oldname, newname));
4029 }
4030 
4031 int
4032 zfs_userspace(zfs_handle_t *zhp, zfs_userquota_prop_t type,
4033     zfs_userspace_cb_t func, void *arg)
4034 {
4035 	zfs_cmd_t zc = { 0 };
4036 	zfs_useracct_t buf[100];
4037 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4038 	int ret;
4039 
4040 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
4041 
4042 	zc.zc_objset_type = type;
4043 	zc.zc_nvlist_dst = (uintptr_t)buf;
4044 
4045 	for (;;) {
4046 		zfs_useracct_t *zua = buf;
4047 
4048 		zc.zc_nvlist_dst_size = sizeof (buf);
4049 		if (zfs_ioctl(hdl, ZFS_IOC_USERSPACE_MANY, &zc) != 0) {
4050 			char errbuf[ZFS_MAXNAMELEN + 32];
4051 
4052 			(void) snprintf(errbuf, sizeof (errbuf),
4053 			    dgettext(TEXT_DOMAIN,
4054 			    "cannot get used/quota for %s"), zc.zc_name);
4055 			return (zfs_standard_error_fmt(hdl, errno, errbuf));
4056 		}
4057 		if (zc.zc_nvlist_dst_size == 0)
4058 			break;
4059 
4060 		while (zc.zc_nvlist_dst_size > 0) {
4061 			if ((ret = func(arg, zua->zu_domain, zua->zu_rid,
4062 			    zua->zu_space)) != 0)
4063 				return (ret);
4064 			zua++;
4065 			zc.zc_nvlist_dst_size -= sizeof (zfs_useracct_t);
4066 		}
4067 	}
4068 
4069 	return (0);
4070 }
4071 
4072 int
4073 zfs_hold(zfs_handle_t *zhp, const char *snapname, const char *tag,
4074     boolean_t recursive, boolean_t temphold, boolean_t enoent_ok,
4075     int cleanup_fd, uint64_t dsobj, uint64_t createtxg)
4076 {
4077 	zfs_cmd_t zc = { 0 };
4078 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4079 
4080 	ASSERT(!recursive || dsobj == 0);
4081 
4082 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
4083 	(void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value));
4084 	if (strlcpy(zc.zc_string, tag, sizeof (zc.zc_string))
4085 	    >= sizeof (zc.zc_string))
4086 		return (zfs_error(hdl, EZFS_TAGTOOLONG, tag));
4087 	zc.zc_cookie = recursive;
4088 	zc.zc_temphold = temphold;
4089 	zc.zc_cleanup_fd = cleanup_fd;
4090 	zc.zc_sendobj = dsobj;
4091 	zc.zc_createtxg = createtxg;
4092 
4093 	if (zfs_ioctl(hdl, ZFS_IOC_HOLD, &zc) != 0) {
4094 		char errbuf[ZFS_MAXNAMELEN+32];
4095 
4096 		/*
4097 		 * if it was recursive, the one that actually failed will be in
4098 		 * zc.zc_name.
4099 		 */
4100 		(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
4101 		    "cannot hold '%s@%s'"), zc.zc_name, snapname);
4102 		switch (errno) {
4103 		case E2BIG:
4104 			/*
4105 			 * Temporary tags wind up having the ds object id
4106 			 * prepended. So even if we passed the length check
4107 			 * above, it's still possible for the tag to wind
4108 			 * up being slightly too long.
4109 			 */
4110 			return (zfs_error(hdl, EZFS_TAGTOOLONG, errbuf));
4111 		case ENOTSUP:
4112 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
4113 			    "pool must be upgraded"));
4114 			return (zfs_error(hdl, EZFS_BADVERSION, errbuf));
4115 		case EINVAL:
4116 			return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
4117 		case EEXIST:
4118 			return (zfs_error(hdl, EZFS_REFTAG_HOLD, errbuf));
4119 		case ENOENT:
4120 			if (enoent_ok)
4121 				return (ENOENT);
4122 			/* FALLTHROUGH */
4123 		default:
4124 			return (zfs_standard_error_fmt(hdl, errno, errbuf));
4125 		}
4126 	}
4127 
4128 	return (0);
4129 }
4130 
4131 int
4132 zfs_release(zfs_handle_t *zhp, const char *snapname, const char *tag,
4133     boolean_t recursive)
4134 {
4135 	zfs_cmd_t zc = { 0 };
4136 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4137 
4138 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
4139 	(void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value));
4140 	if (strlcpy(zc.zc_string, tag, sizeof (zc.zc_string))
4141 	    >= sizeof (zc.zc_string))
4142 		return (zfs_error(hdl, EZFS_TAGTOOLONG, tag));
4143 	zc.zc_cookie = recursive;
4144 
4145 	if (zfs_ioctl(hdl, ZFS_IOC_RELEASE, &zc) != 0) {
4146 		char errbuf[ZFS_MAXNAMELEN+32];
4147 
4148 		/*
4149 		 * if it was recursive, the one that actually failed will be in
4150 		 * zc.zc_name.
4151 		 */
4152 		(void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN,
4153 		    "cannot release '%s' from '%s@%s'"), tag, zc.zc_name,
4154 		    snapname);
4155 		switch (errno) {
4156 		case ESRCH:
4157 			return (zfs_error(hdl, EZFS_REFTAG_RELE, errbuf));
4158 		case ENOTSUP:
4159 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
4160 			    "pool must be upgraded"));
4161 			return (zfs_error(hdl, EZFS_BADVERSION, errbuf));
4162 		case EINVAL:
4163 			return (zfs_error(hdl, EZFS_BADTYPE, errbuf));
4164 		default:
4165 			return (zfs_standard_error_fmt(hdl, errno, errbuf));
4166 		}
4167 	}
4168 
4169 	return (0);
4170 }
4171 
4172 int
4173 zfs_get_fsacl(zfs_handle_t *zhp, nvlist_t **nvl)
4174 {
4175 	zfs_cmd_t zc = { 0 };
4176 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4177 	int nvsz = 2048;
4178 	void *nvbuf;
4179 	int err = 0;
4180 	char errbuf[ZFS_MAXNAMELEN+32];
4181 
4182 	assert(zhp->zfs_type == ZFS_TYPE_VOLUME ||
4183 	    zhp->zfs_type == ZFS_TYPE_FILESYSTEM);
4184 
4185 tryagain:
4186 
4187 	nvbuf = malloc(nvsz);
4188 	if (nvbuf == NULL) {
4189 		err = (zfs_error(hdl, EZFS_NOMEM, strerror(errno)));
4190 		goto out;
4191 	}
4192 
4193 	zc.zc_nvlist_dst_size = nvsz;
4194 	zc.zc_nvlist_dst = (uintptr_t)nvbuf;
4195 
4196 	(void) strlcpy(zc.zc_name, zhp->zfs_name, ZFS_MAXNAMELEN);
4197 
4198 	if (ioctl(hdl->libzfs_fd, ZFS_IOC_GET_FSACL, &zc) != 0) {
4199 		(void) snprintf(errbuf, sizeof (errbuf),
4200 		    dgettext(TEXT_DOMAIN, "cannot get permissions on '%s'"),
4201 		    zc.zc_name);
4202 		switch (errno) {
4203 		case ENOMEM:
4204 			free(nvbuf);
4205 			nvsz = zc.zc_nvlist_dst_size;
4206 			goto tryagain;
4207 
4208 		case ENOTSUP:
4209 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
4210 			    "pool must be upgraded"));
4211 			err = zfs_error(hdl, EZFS_BADVERSION, errbuf);
4212 			break;
4213 		case EINVAL:
4214 			err = zfs_error(hdl, EZFS_BADTYPE, errbuf);
4215 			break;
4216 		case ENOENT:
4217 			err = zfs_error(hdl, EZFS_NOENT, errbuf);
4218 			break;
4219 		default:
4220 			err = zfs_standard_error_fmt(hdl, errno, errbuf);
4221 			break;
4222 		}
4223 	} else {
4224 		/* success */
4225 		int rc = nvlist_unpack(nvbuf, zc.zc_nvlist_dst_size, nvl, 0);
4226 		if (rc) {
4227 			(void) snprintf(errbuf, sizeof (errbuf), dgettext(
4228 			    TEXT_DOMAIN, "cannot get permissions on '%s'"),
4229 			    zc.zc_name);
4230 			err = zfs_standard_error_fmt(hdl, rc, errbuf);
4231 		}
4232 	}
4233 
4234 	free(nvbuf);
4235 out:
4236 	return (err);
4237 }
4238 
4239 int
4240 zfs_set_fsacl(zfs_handle_t *zhp, boolean_t un, nvlist_t *nvl)
4241 {
4242 	zfs_cmd_t zc = { 0 };
4243 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4244 	char *nvbuf;
4245 	char errbuf[ZFS_MAXNAMELEN+32];
4246 	size_t nvsz;
4247 	int err;
4248 
4249 	assert(zhp->zfs_type == ZFS_TYPE_VOLUME ||
4250 	    zhp->zfs_type == ZFS_TYPE_FILESYSTEM);
4251 
4252 	err = nvlist_size(nvl, &nvsz, NV_ENCODE_NATIVE);
4253 	assert(err == 0);
4254 
4255 	nvbuf = malloc(nvsz);
4256 
4257 	err = nvlist_pack(nvl, &nvbuf, &nvsz, NV_ENCODE_NATIVE, 0);
4258 	assert(err == 0);
4259 
4260 	zc.zc_nvlist_src_size = nvsz;
4261 	zc.zc_nvlist_src = (uintptr_t)nvbuf;
4262 	zc.zc_perm_action = un;
4263 
4264 	(void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name));
4265 
4266 	if (zfs_ioctl(hdl, ZFS_IOC_SET_FSACL, &zc) != 0) {
4267 		(void) snprintf(errbuf, sizeof (errbuf),
4268 		    dgettext(TEXT_DOMAIN, "cannot set permissions on '%s'"),
4269 		    zc.zc_name);
4270 		switch (errno) {
4271 		case ENOTSUP:
4272 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
4273 			    "pool must be upgraded"));
4274 			err = zfs_error(hdl, EZFS_BADVERSION, errbuf);
4275 			break;
4276 		case EINVAL:
4277 			err = zfs_error(hdl, EZFS_BADTYPE, errbuf);
4278 			break;
4279 		case ENOENT:
4280 			err = zfs_error(hdl, EZFS_NOENT, errbuf);
4281 			break;
4282 		default:
4283 			err = zfs_standard_error_fmt(hdl, errno, errbuf);
4284 			break;
4285 		}
4286 	}
4287 
4288 	free(nvbuf);
4289 
4290 	return (err);
4291 }
4292 
4293 int
4294 zfs_get_holds(zfs_handle_t *zhp, nvlist_t **nvl)
4295 {
4296 	zfs_cmd_t zc = { 0 };
4297 	libzfs_handle_t *hdl = zhp->zfs_hdl;
4298 	int nvsz = 2048;
4299 	void *nvbuf;
4300 	int err = 0;
4301 	char errbuf[ZFS_MAXNAMELEN+32];
4302 
4303 	assert(zhp->zfs_type == ZFS_TYPE_SNAPSHOT);
4304 
4305 tryagain:
4306 
4307 	nvbuf = malloc(nvsz);
4308 	if (nvbuf == NULL) {
4309 		err = (zfs_error(hdl, EZFS_NOMEM, strerror(errno)));
4310 		goto out;
4311 	}
4312 
4313 	zc.zc_nvlist_dst_size = nvsz;
4314 	zc.zc_nvlist_dst = (uintptr_t)nvbuf;
4315 
4316 	(void) strlcpy(zc.zc_name, zhp->zfs_name, ZFS_MAXNAMELEN);
4317 
4318 	if (zfs_ioctl(hdl, ZFS_IOC_GET_HOLDS, &zc) != 0) {
4319 		(void) snprintf(errbuf, sizeof (errbuf),
4320 		    dgettext(TEXT_DOMAIN, "cannot get holds for '%s'"),
4321 		    zc.zc_name);
4322 		switch (errno) {
4323 		case ENOMEM:
4324 			free(nvbuf);
4325 			nvsz = zc.zc_nvlist_dst_size;
4326 			goto tryagain;
4327 
4328 		case ENOTSUP:
4329 			zfs_error_aux(hdl, dgettext(TEXT_DOMAIN,
4330 			    "pool must be upgraded"));
4331 			err = zfs_error(hdl, EZFS_BADVERSION, errbuf);
4332 			break;
4333 		case EINVAL:
4334 			err = zfs_error(hdl, EZFS_BADTYPE, errbuf);
4335 			break;
4336 		case ENOENT:
4337 			err = zfs_error(hdl, EZFS_NOENT, errbuf);
4338 			break;
4339 		default:
4340 			err = zfs_standard_error_fmt(hdl, errno, errbuf);
4341 			break;
4342 		}
4343 	} else {
4344 		/* success */
4345 		int rc = nvlist_unpack(nvbuf, zc.zc_nvlist_dst_size, nvl, 0);
4346 		if (rc) {
4347 			(void) snprintf(errbuf, sizeof (errbuf),
4348 			    dgettext(TEXT_DOMAIN, "cannot get holds for '%s'"),
4349 			    zc.zc_name);
4350 			err = zfs_standard_error_fmt(hdl, rc, errbuf);
4351 		}
4352 	}
4353 
4354 	free(nvbuf);
4355 out:
4356 	return (err);
4357 }
4358 
4359 uint64_t
4360 zvol_volsize_to_reservation(uint64_t volsize, nvlist_t *props)
4361 {
4362 	uint64_t numdb;
4363 	uint64_t nblocks, volblocksize;
4364 	int ncopies;
4365 	char *strval;
4366 
4367 	if (nvlist_lookup_string(props,
4368 	    zfs_prop_to_name(ZFS_PROP_COPIES), &strval) == 0)
4369 		ncopies = atoi(strval);
4370 	else
4371 		ncopies = 1;
4372 	if (nvlist_lookup_uint64(props,
4373 	    zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE),
4374 	    &volblocksize) != 0)
4375 		volblocksize = ZVOL_DEFAULT_BLOCKSIZE;
4376 	nblocks = volsize/volblocksize;
4377 	/* start with metadnode L0-L6 */
4378 	numdb = 7;
4379 	/* calculate number of indirects */
4380 	while (nblocks > 1) {
4381 		nblocks += DNODES_PER_LEVEL - 1;
4382 		nblocks /= DNODES_PER_LEVEL;
4383 		numdb += nblocks;
4384 	}
4385 	numdb *= MIN(SPA_DVAS_PER_BP, ncopies + 1);
4386 	volsize *= ncopies;
4387 	/*
4388 	 * this is exactly DN_MAX_INDBLKSHIFT when metadata isn't
4389 	 * compressed, but in practice they compress down to about
4390 	 * 1100 bytes
4391 	 */
4392 	numdb *= 1ULL << DN_MAX_INDBLKSHIFT;
4393 	volsize += numdb;
4394 	return (volsize);
4395 }
4396