zpool_vdev.c revision 330735
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) 2013, 2015 by Delphix. All rights reserved.
25 * Copyright 2016 Igor Kozhukhov <ikozhukhov@gmail.com>.
26 */
27
28/*
29 * Functions to convert between a list of vdevs and an nvlist representing the
30 * configuration.  Each entry in the list can be one of:
31 *
32 * 	Device vdevs
33 * 		disk=(path=..., devid=...)
34 * 		file=(path=...)
35 *
36 * 	Group vdevs
37 * 		raidz[1|2]=(...)
38 * 		mirror=(...)
39 *
40 * 	Hot spares
41 *
42 * While the underlying implementation supports it, group vdevs cannot contain
43 * other group vdevs.  All userland verification of devices is contained within
44 * this file.  If successful, the nvlist returned can be passed directly to the
45 * kernel; we've done as much verification as possible in userland.
46 *
47 * Hot spares are a special case, and passed down as an array of disk vdevs, at
48 * the same level as the root of the vdev tree.
49 *
50 * The only function exported by this file is 'make_root_vdev'.  The
51 * function performs several passes:
52 *
53 * 	1. Construct the vdev specification.  Performs syntax validation and
54 *         makes sure each device is valid.
55 * 	2. Check for devices in use.  Using libdiskmgt, makes sure that no
56 *         devices are also in use.  Some can be overridden using the 'force'
57 *         flag, others cannot.
58 * 	3. Check for replication errors if the 'force' flag is not specified.
59 *         validates that the replication level is consistent across the
60 *         entire pool.
61 * 	4. Call libzfs to label any whole disks with an EFI label.
62 */
63
64#include <assert.h>
65#include <devid.h>
66#include <errno.h>
67#include <fcntl.h>
68#include <libintl.h>
69#include <libnvpair.h>
70#include <limits.h>
71#include <stdio.h>
72#include <string.h>
73#include <unistd.h>
74#include <paths.h>
75#include <sys/stat.h>
76#include <sys/disk.h>
77#include <sys/mntent.h>
78#include <libgeom.h>
79
80#include "zpool_util.h"
81
82#define	BACKUP_SLICE	"s2"
83
84/*
85 * For any given vdev specification, we can have multiple errors.  The
86 * vdev_error() function keeps track of whether we have seen an error yet, and
87 * prints out a header if its the first error we've seen.
88 */
89boolean_t error_seen;
90boolean_t is_force;
91
92/*PRINTFLIKE1*/
93static void
94vdev_error(const char *fmt, ...)
95{
96	va_list ap;
97
98	if (!error_seen) {
99		(void) fprintf(stderr, gettext("invalid vdev specification\n"));
100		if (!is_force)
101			(void) fprintf(stderr, gettext("use '-f' to override "
102			    "the following errors:\n"));
103		else
104			(void) fprintf(stderr, gettext("the following errors "
105			    "must be manually repaired:\n"));
106		error_seen = B_TRUE;
107	}
108
109	va_start(ap, fmt);
110	(void) vfprintf(stderr, fmt, ap);
111	va_end(ap);
112}
113
114#ifdef illumos
115static void
116libdiskmgt_error(int error)
117{
118	/*
119	 * ENXIO/ENODEV is a valid error message if the device doesn't live in
120	 * /dev/dsk.  Don't bother printing an error message in this case.
121	 */
122	if (error == ENXIO || error == ENODEV)
123		return;
124
125	(void) fprintf(stderr, gettext("warning: device in use checking "
126	    "failed: %s\n"), strerror(error));
127}
128
129/*
130 * Validate a device, passing the bulk of the work off to libdiskmgt.
131 */
132static int
133check_slice(const char *path, int force, boolean_t wholedisk, boolean_t isspare)
134{
135	char *msg;
136	int error = 0;
137	dm_who_type_t who;
138
139	if (force)
140		who = DM_WHO_ZPOOL_FORCE;
141	else if (isspare)
142		who = DM_WHO_ZPOOL_SPARE;
143	else
144		who = DM_WHO_ZPOOL;
145
146	if (dm_inuse((char *)path, &msg, who, &error) || error) {
147		if (error != 0) {
148			libdiskmgt_error(error);
149			return (0);
150		} else {
151			vdev_error("%s", msg);
152			free(msg);
153			return (-1);
154		}
155	}
156
157	/*
158	 * If we're given a whole disk, ignore overlapping slices since we're
159	 * about to label it anyway.
160	 */
161	error = 0;
162	if (!wholedisk && !force &&
163	    (dm_isoverlapping((char *)path, &msg, &error) || error)) {
164		if (error == 0) {
165			/* dm_isoverlapping returned -1 */
166			vdev_error(gettext("%s overlaps with %s\n"), path, msg);
167			free(msg);
168			return (-1);
169		} else if (error != ENODEV) {
170			/* libdiskmgt's devcache only handles physical drives */
171			libdiskmgt_error(error);
172			return (0);
173		}
174	}
175
176	return (0);
177}
178
179
180/*
181 * Validate a whole disk.  Iterate over all slices on the disk and make sure
182 * that none is in use by calling check_slice().
183 */
184static int
185check_disk(const char *name, dm_descriptor_t disk, int force, int isspare)
186{
187	dm_descriptor_t *drive, *media, *slice;
188	int err = 0;
189	int i;
190	int ret;
191
192	/*
193	 * Get the drive associated with this disk.  This should never fail,
194	 * because we already have an alias handle open for the device.
195	 */
196	if ((drive = dm_get_associated_descriptors(disk, DM_DRIVE,
197	    &err)) == NULL || *drive == NULL) {
198		if (err)
199			libdiskmgt_error(err);
200		return (0);
201	}
202
203	if ((media = dm_get_associated_descriptors(*drive, DM_MEDIA,
204	    &err)) == NULL) {
205		dm_free_descriptors(drive);
206		if (err)
207			libdiskmgt_error(err);
208		return (0);
209	}
210
211	dm_free_descriptors(drive);
212
213	/*
214	 * It is possible that the user has specified a removable media drive,
215	 * and the media is not present.
216	 */
217	if (*media == NULL) {
218		dm_free_descriptors(media);
219		vdev_error(gettext("'%s' has no media in drive\n"), name);
220		return (-1);
221	}
222
223	if ((slice = dm_get_associated_descriptors(*media, DM_SLICE,
224	    &err)) == NULL) {
225		dm_free_descriptors(media);
226		if (err)
227			libdiskmgt_error(err);
228		return (0);
229	}
230
231	dm_free_descriptors(media);
232
233	ret = 0;
234
235	/*
236	 * Iterate over all slices and report any errors.  We don't care about
237	 * overlapping slices because we are using the whole disk.
238	 */
239	for (i = 0; slice[i] != NULL; i++) {
240		char *name = dm_get_name(slice[i], &err);
241
242		if (check_slice(name, force, B_TRUE, isspare) != 0)
243			ret = -1;
244
245		dm_free_name(name);
246	}
247
248	dm_free_descriptors(slice);
249	return (ret);
250}
251
252/*
253 * Validate a device.
254 */
255static int
256check_device(const char *path, boolean_t force, boolean_t isspare)
257{
258	dm_descriptor_t desc;
259	int err;
260	char *dev;
261
262	/*
263	 * For whole disks, libdiskmgt does not include the leading dev path.
264	 */
265	dev = strrchr(path, '/');
266	assert(dev != NULL);
267	dev++;
268	if ((desc = dm_get_descriptor_by_name(DM_ALIAS, dev, &err)) != NULL) {
269		err = check_disk(path, desc, force, isspare);
270		dm_free_descriptor(desc);
271		return (err);
272	}
273
274	return (check_slice(path, force, B_FALSE, isspare));
275}
276#endif	/* illumos */
277
278/*
279 * Check that a file is valid.  All we can do in this case is check that it's
280 * not in use by another pool, and not in use by swap.
281 */
282static int
283check_file(const char *file, boolean_t force, boolean_t isspare)
284{
285	char  *name;
286	int fd;
287	int ret = 0;
288	int err;
289	pool_state_t state;
290	boolean_t inuse;
291
292#ifdef illumos
293	if (dm_inuse_swap(file, &err)) {
294		if (err)
295			libdiskmgt_error(err);
296		else
297			vdev_error(gettext("%s is currently used by swap. "
298			    "Please see swap(1M).\n"), file);
299		return (-1);
300	}
301#endif
302
303	if ((fd = open(file, O_RDONLY)) < 0)
304		return (0);
305
306	if (zpool_in_use(g_zfs, fd, &state, &name, &inuse) == 0 && inuse) {
307		const char *desc;
308
309		switch (state) {
310		case POOL_STATE_ACTIVE:
311			desc = gettext("active");
312			break;
313
314		case POOL_STATE_EXPORTED:
315			desc = gettext("exported");
316			break;
317
318		case POOL_STATE_POTENTIALLY_ACTIVE:
319			desc = gettext("potentially active");
320			break;
321
322		default:
323			desc = gettext("unknown");
324			break;
325		}
326
327		/*
328		 * Allow hot spares to be shared between pools.
329		 */
330		if (state == POOL_STATE_SPARE && isspare)
331			return (0);
332
333		if (state == POOL_STATE_ACTIVE ||
334		    state == POOL_STATE_SPARE || !force) {
335			switch (state) {
336			case POOL_STATE_SPARE:
337				vdev_error(gettext("%s is reserved as a hot "
338				    "spare for pool %s\n"), file, name);
339				break;
340			default:
341				vdev_error(gettext("%s is part of %s pool "
342				    "'%s'\n"), file, desc, name);
343				break;
344			}
345			ret = -1;
346		}
347
348		free(name);
349	}
350
351	(void) close(fd);
352	return (ret);
353}
354
355static int
356check_device(const char *name, boolean_t force, boolean_t isspare)
357{
358	char path[MAXPATHLEN];
359
360	if (strncmp(name, _PATH_DEV, sizeof(_PATH_DEV) - 1) != 0)
361		snprintf(path, sizeof(path), "%s%s", _PATH_DEV, name);
362	else
363		strlcpy(path, name, sizeof(path));
364
365	return (check_file(path, force, isspare));
366}
367
368/*
369 * By "whole disk" we mean an entire physical disk (something we can
370 * label, toggle the write cache on, etc.) as opposed to the full
371 * capacity of a pseudo-device such as lofi or did.  We act as if we
372 * are labeling the disk, which should be a pretty good test of whether
373 * it's a viable device or not.  Returns B_TRUE if it is and B_FALSE if
374 * it isn't.
375 */
376static boolean_t
377is_whole_disk(const char *arg)
378{
379#ifdef illumos
380	struct dk_gpt *label;
381	int	fd;
382	char	path[MAXPATHLEN];
383
384	(void) snprintf(path, sizeof (path), "%s%s%s",
385	    ZFS_RDISK_ROOT, strrchr(arg, '/'), BACKUP_SLICE);
386	if ((fd = open(path, O_RDWR | O_NDELAY)) < 0)
387		return (B_FALSE);
388	if (efi_alloc_and_init(fd, EFI_NUMPAR, &label) != 0) {
389		(void) close(fd);
390		return (B_FALSE);
391	}
392	efi_free(label);
393	(void) close(fd);
394	return (B_TRUE);
395#else
396	int fd;
397
398	fd = g_open(arg, 0);
399	if (fd >= 0) {
400		g_close(fd);
401		return (B_TRUE);
402	}
403	return (B_FALSE);
404#endif
405}
406
407/*
408 * Create a leaf vdev.  Determine if this is a file or a device.  If it's a
409 * device, fill in the device id to make a complete nvlist.  Valid forms for a
410 * leaf vdev are:
411 *
412 * 	/dev/dsk/xxx	Complete disk path
413 * 	/xxx		Full path to file
414 * 	xxx		Shorthand for /dev/dsk/xxx
415 */
416static nvlist_t *
417make_leaf_vdev(const char *arg, uint64_t is_log)
418{
419	char path[MAXPATHLEN];
420	struct stat64 statbuf;
421	nvlist_t *vdev = NULL;
422	char *type = NULL;
423	boolean_t wholedisk = B_FALSE;
424
425	/*
426	 * Determine what type of vdev this is, and put the full path into
427	 * 'path'.  We detect whether this is a device of file afterwards by
428	 * checking the st_mode of the file.
429	 */
430	if (arg[0] == '/') {
431		/*
432		 * Complete device or file path.  Exact type is determined by
433		 * examining the file descriptor afterwards.
434		 */
435		wholedisk = is_whole_disk(arg);
436		if (!wholedisk && (stat64(arg, &statbuf) != 0)) {
437			(void) fprintf(stderr,
438			    gettext("cannot open '%s': %s\n"),
439			    arg, strerror(errno));
440			return (NULL);
441		}
442
443		(void) strlcpy(path, arg, sizeof (path));
444	} else {
445		/*
446		 * This may be a short path for a device, or it could be total
447		 * gibberish.  Check to see if it's a known device in
448		 * /dev/dsk/.  As part of this check, see if we've been given a
449		 * an entire disk (minus the slice number).
450		 */
451		if (strncmp(arg, _PATH_DEV, sizeof(_PATH_DEV) - 1) == 0)
452			strlcpy(path, arg, sizeof (path));
453		else
454			snprintf(path, sizeof (path), "%s%s", _PATH_DEV, arg);
455		wholedisk = is_whole_disk(path);
456		if (!wholedisk && (stat64(path, &statbuf) != 0)) {
457			/*
458			 * If we got ENOENT, then the user gave us
459			 * gibberish, so try to direct them with a
460			 * reasonable error message.  Otherwise,
461			 * regurgitate strerror() since it's the best we
462			 * can do.
463			 */
464			if (errno == ENOENT) {
465				(void) fprintf(stderr,
466				    gettext("cannot open '%s': no such "
467				    "GEOM provider\n"), arg);
468				(void) fprintf(stderr,
469				    gettext("must be a full path or "
470				    "shorthand device name\n"));
471				return (NULL);
472			} else {
473				(void) fprintf(stderr,
474				    gettext("cannot open '%s': %s\n"),
475				    path, strerror(errno));
476				return (NULL);
477			}
478		}
479	}
480
481#ifdef __FreeBSD__
482	if (S_ISCHR(statbuf.st_mode)) {
483		statbuf.st_mode &= ~S_IFCHR;
484		statbuf.st_mode |= S_IFBLK;
485		wholedisk = B_FALSE;
486	}
487#endif
488
489	/*
490	 * Determine whether this is a device or a file.
491	 */
492	if (wholedisk || S_ISBLK(statbuf.st_mode)) {
493		type = VDEV_TYPE_DISK;
494	} else if (S_ISREG(statbuf.st_mode)) {
495		type = VDEV_TYPE_FILE;
496	} else {
497		(void) fprintf(stderr, gettext("cannot use '%s': must be a "
498		    "GEOM provider or regular file\n"), path);
499		return (NULL);
500	}
501
502	/*
503	 * Finally, we have the complete device or file, and we know that it is
504	 * acceptable to use.  Construct the nvlist to describe this vdev.  All
505	 * vdevs have a 'path' element, and devices also have a 'devid' element.
506	 */
507	verify(nvlist_alloc(&vdev, NV_UNIQUE_NAME, 0) == 0);
508	verify(nvlist_add_string(vdev, ZPOOL_CONFIG_PATH, path) == 0);
509	verify(nvlist_add_string(vdev, ZPOOL_CONFIG_TYPE, type) == 0);
510	verify(nvlist_add_uint64(vdev, ZPOOL_CONFIG_IS_LOG, is_log) == 0);
511	if (strcmp(type, VDEV_TYPE_DISK) == 0)
512		verify(nvlist_add_uint64(vdev, ZPOOL_CONFIG_WHOLE_DISK,
513		    (uint64_t)wholedisk) == 0);
514
515#ifdef have_devid
516	/*
517	 * For a whole disk, defer getting its devid until after labeling it.
518	 */
519	if (S_ISBLK(statbuf.st_mode) && !wholedisk) {
520		/*
521		 * Get the devid for the device.
522		 */
523		int fd;
524		ddi_devid_t devid;
525		char *minor = NULL, *devid_str = NULL;
526
527		if ((fd = open(path, O_RDONLY)) < 0) {
528			(void) fprintf(stderr, gettext("cannot open '%s': "
529			    "%s\n"), path, strerror(errno));
530			nvlist_free(vdev);
531			return (NULL);
532		}
533
534		if (devid_get(fd, &devid) == 0) {
535			if (devid_get_minor_name(fd, &minor) == 0 &&
536			    (devid_str = devid_str_encode(devid, minor)) !=
537			    NULL) {
538				verify(nvlist_add_string(vdev,
539				    ZPOOL_CONFIG_DEVID, devid_str) == 0);
540			}
541			if (devid_str != NULL)
542				devid_str_free(devid_str);
543			if (minor != NULL)
544				devid_str_free(minor);
545			devid_free(devid);
546		}
547
548		(void) close(fd);
549	}
550#endif
551
552	return (vdev);
553}
554
555/*
556 * Go through and verify the replication level of the pool is consistent.
557 * Performs the following checks:
558 *
559 * 	For the new spec, verifies that devices in mirrors and raidz are the
560 * 	same size.
561 *
562 * 	If the current configuration already has inconsistent replication
563 * 	levels, ignore any other potential problems in the new spec.
564 *
565 * 	Otherwise, make sure that the current spec (if there is one) and the new
566 * 	spec have consistent replication levels.
567 */
568typedef struct replication_level {
569	char *zprl_type;
570	uint64_t zprl_children;
571	uint64_t zprl_parity;
572} replication_level_t;
573
574#define	ZPOOL_FUZZ	(16 * 1024 * 1024)
575
576/*
577 * Given a list of toplevel vdevs, return the current replication level.  If
578 * the config is inconsistent, then NULL is returned.  If 'fatal' is set, then
579 * an error message will be displayed for each self-inconsistent vdev.
580 */
581static replication_level_t *
582get_replication(nvlist_t *nvroot, boolean_t fatal)
583{
584	nvlist_t **top;
585	uint_t t, toplevels;
586	nvlist_t **child;
587	uint_t c, children;
588	nvlist_t *nv;
589	char *type;
590	replication_level_t lastrep = {0};
591	replication_level_t rep;
592	replication_level_t *ret;
593	boolean_t dontreport;
594
595	ret = safe_malloc(sizeof (replication_level_t));
596
597	verify(nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
598	    &top, &toplevels) == 0);
599
600	for (t = 0; t < toplevels; t++) {
601		uint64_t is_log = B_FALSE;
602
603		nv = top[t];
604
605		/*
606		 * For separate logs we ignore the top level vdev replication
607		 * constraints.
608		 */
609		(void) nvlist_lookup_uint64(nv, ZPOOL_CONFIG_IS_LOG, &is_log);
610		if (is_log)
611			continue;
612
613		verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE,
614		    &type) == 0);
615		if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
616		    &child, &children) != 0) {
617			/*
618			 * This is a 'file' or 'disk' vdev.
619			 */
620			rep.zprl_type = type;
621			rep.zprl_children = 1;
622			rep.zprl_parity = 0;
623		} else {
624			uint64_t vdev_size;
625
626			/*
627			 * This is a mirror or RAID-Z vdev.  Go through and make
628			 * sure the contents are all the same (files vs. disks),
629			 * keeping track of the number of elements in the
630			 * process.
631			 *
632			 * We also check that the size of each vdev (if it can
633			 * be determined) is the same.
634			 */
635			rep.zprl_type = type;
636			rep.zprl_children = 0;
637
638			if (strcmp(type, VDEV_TYPE_RAIDZ) == 0) {
639				verify(nvlist_lookup_uint64(nv,
640				    ZPOOL_CONFIG_NPARITY,
641				    &rep.zprl_parity) == 0);
642				assert(rep.zprl_parity != 0);
643			} else {
644				rep.zprl_parity = 0;
645			}
646
647			/*
648			 * The 'dontreport' variable indicates that we've
649			 * already reported an error for this spec, so don't
650			 * bother doing it again.
651			 */
652			type = NULL;
653			dontreport = 0;
654			vdev_size = -1ULL;
655			for (c = 0; c < children; c++) {
656				nvlist_t *cnv = child[c];
657				char *path;
658				struct stat64 statbuf;
659				uint64_t size = -1ULL;
660				char *childtype;
661				int fd, err;
662
663				rep.zprl_children++;
664
665				verify(nvlist_lookup_string(cnv,
666				    ZPOOL_CONFIG_TYPE, &childtype) == 0);
667
668				/*
669				 * If this is a replacing or spare vdev, then
670				 * get the real first child of the vdev.
671				 */
672				if (strcmp(childtype,
673				    VDEV_TYPE_REPLACING) == 0 ||
674				    strcmp(childtype, VDEV_TYPE_SPARE) == 0) {
675					nvlist_t **rchild;
676					uint_t rchildren;
677
678					verify(nvlist_lookup_nvlist_array(cnv,
679					    ZPOOL_CONFIG_CHILDREN, &rchild,
680					    &rchildren) == 0);
681					assert(rchildren == 2);
682					cnv = rchild[0];
683
684					verify(nvlist_lookup_string(cnv,
685					    ZPOOL_CONFIG_TYPE,
686					    &childtype) == 0);
687					if (strcmp(childtype,
688					    VDEV_TYPE_SPARE) == 0) {
689						/* We have a replacing vdev with
690						 * a spare child.  Get the first
691						 * real child of the spare
692						 */
693						verify(
694						    nvlist_lookup_nvlist_array(
695							cnv,
696							ZPOOL_CONFIG_CHILDREN,
697							&rchild,
698						    &rchildren) == 0);
699						assert(rchildren >= 2);
700						cnv = rchild[0];
701					}
702				}
703
704				verify(nvlist_lookup_string(cnv,
705				    ZPOOL_CONFIG_PATH, &path) == 0);
706
707				/*
708				 * If we have a raidz/mirror that combines disks
709				 * with files, report it as an error.
710				 */
711				if (!dontreport && type != NULL &&
712				    strcmp(type, childtype) != 0) {
713					if (ret != NULL)
714						free(ret);
715					ret = NULL;
716					if (fatal)
717						vdev_error(gettext(
718						    "mismatched replication "
719						    "level: %s contains both "
720						    "files and devices\n"),
721						    rep.zprl_type);
722					else
723						return (NULL);
724					dontreport = B_TRUE;
725				}
726
727				/*
728				 * According to stat(2), the value of 'st_size'
729				 * is undefined for block devices and character
730				 * devices.  But there is no effective way to
731				 * determine the real size in userland.
732				 *
733				 * Instead, we'll take advantage of an
734				 * implementation detail of spec_size().  If the
735				 * device is currently open, then we (should)
736				 * return a valid size.
737				 *
738				 * If we still don't get a valid size (indicated
739				 * by a size of 0 or MAXOFFSET_T), then ignore
740				 * this device altogether.
741				 */
742				if ((fd = open(path, O_RDONLY)) >= 0) {
743					err = fstat64(fd, &statbuf);
744					(void) close(fd);
745				} else {
746					err = stat64(path, &statbuf);
747				}
748
749				if (err != 0 ||
750				    statbuf.st_size == 0 ||
751				    statbuf.st_size == MAXOFFSET_T)
752					continue;
753
754				size = statbuf.st_size;
755
756				/*
757				 * Also make sure that devices and
758				 * slices have a consistent size.  If
759				 * they differ by a significant amount
760				 * (~16MB) then report an error.
761				 */
762				if (!dontreport &&
763				    (vdev_size != -1ULL &&
764				    (labs(size - vdev_size) >
765				    ZPOOL_FUZZ))) {
766					if (ret != NULL)
767						free(ret);
768					ret = NULL;
769					if (fatal)
770						vdev_error(gettext(
771						    "%s contains devices of "
772						    "different sizes\n"),
773						    rep.zprl_type);
774					else
775						return (NULL);
776					dontreport = B_TRUE;
777				}
778
779				type = childtype;
780				vdev_size = size;
781			}
782		}
783
784		/*
785		 * At this point, we have the replication of the last toplevel
786		 * vdev in 'rep'.  Compare it to 'lastrep' to see if its
787		 * different.
788		 */
789		if (lastrep.zprl_type != NULL) {
790			if (strcmp(lastrep.zprl_type, rep.zprl_type) != 0) {
791				if (ret != NULL)
792					free(ret);
793				ret = NULL;
794				if (fatal)
795					vdev_error(gettext(
796					    "mismatched replication level: "
797					    "both %s and %s vdevs are "
798					    "present\n"),
799					    lastrep.zprl_type, rep.zprl_type);
800				else
801					return (NULL);
802			} else if (lastrep.zprl_parity != rep.zprl_parity) {
803				if (ret)
804					free(ret);
805				ret = NULL;
806				if (fatal)
807					vdev_error(gettext(
808					    "mismatched replication level: "
809					    "both %llu and %llu device parity "
810					    "%s vdevs are present\n"),
811					    lastrep.zprl_parity,
812					    rep.zprl_parity,
813					    rep.zprl_type);
814				else
815					return (NULL);
816			} else if (lastrep.zprl_children != rep.zprl_children) {
817				if (ret)
818					free(ret);
819				ret = NULL;
820				if (fatal)
821					vdev_error(gettext(
822					    "mismatched replication level: "
823					    "both %llu-way and %llu-way %s "
824					    "vdevs are present\n"),
825					    lastrep.zprl_children,
826					    rep.zprl_children,
827					    rep.zprl_type);
828				else
829					return (NULL);
830			}
831		}
832		lastrep = rep;
833	}
834
835	if (ret != NULL)
836		*ret = rep;
837
838	return (ret);
839}
840
841/*
842 * Check the replication level of the vdev spec against the current pool.  Calls
843 * get_replication() to make sure the new spec is self-consistent.  If the pool
844 * has a consistent replication level, then we ignore any errors.  Otherwise,
845 * report any difference between the two.
846 */
847static int
848check_replication(nvlist_t *config, nvlist_t *newroot)
849{
850	nvlist_t **child;
851	uint_t	children;
852	replication_level_t *current = NULL, *new;
853	int ret;
854
855	/*
856	 * If we have a current pool configuration, check to see if it's
857	 * self-consistent.  If not, simply return success.
858	 */
859	if (config != NULL) {
860		nvlist_t *nvroot;
861
862		verify(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
863		    &nvroot) == 0);
864		if ((current = get_replication(nvroot, B_FALSE)) == NULL)
865			return (0);
866	}
867	/*
868	 * for spares there may be no children, and therefore no
869	 * replication level to check
870	 */
871	if ((nvlist_lookup_nvlist_array(newroot, ZPOOL_CONFIG_CHILDREN,
872	    &child, &children) != 0) || (children == 0)) {
873		free(current);
874		return (0);
875	}
876
877	/*
878	 * If all we have is logs then there's no replication level to check.
879	 */
880	if (num_logs(newroot) == children) {
881		free(current);
882		return (0);
883	}
884
885	/*
886	 * Get the replication level of the new vdev spec, reporting any
887	 * inconsistencies found.
888	 */
889	if ((new = get_replication(newroot, B_TRUE)) == NULL) {
890		free(current);
891		return (-1);
892	}
893
894	/*
895	 * Check to see if the new vdev spec matches the replication level of
896	 * the current pool.
897	 */
898	ret = 0;
899	if (current != NULL) {
900		if (strcmp(current->zprl_type, new->zprl_type) != 0) {
901			vdev_error(gettext(
902			    "mismatched replication level: pool uses %s "
903			    "and new vdev is %s\n"),
904			    current->zprl_type, new->zprl_type);
905			ret = -1;
906		} else if (current->zprl_parity != new->zprl_parity) {
907			vdev_error(gettext(
908			    "mismatched replication level: pool uses %llu "
909			    "device parity and new vdev uses %llu\n"),
910			    current->zprl_parity, new->zprl_parity);
911			ret = -1;
912		} else if (current->zprl_children != new->zprl_children) {
913			vdev_error(gettext(
914			    "mismatched replication level: pool uses %llu-way "
915			    "%s and new vdev uses %llu-way %s\n"),
916			    current->zprl_children, current->zprl_type,
917			    new->zprl_children, new->zprl_type);
918			ret = -1;
919		}
920	}
921
922	free(new);
923	if (current != NULL)
924		free(current);
925
926	return (ret);
927}
928
929#ifdef illumos
930/*
931 * Go through and find any whole disks in the vdev specification, labelling them
932 * as appropriate.  When constructing the vdev spec, we were unable to open this
933 * device in order to provide a devid.  Now that we have labelled the disk and
934 * know that slice 0 is valid, we can construct the devid now.
935 *
936 * If the disk was already labeled with an EFI label, we will have gotten the
937 * devid already (because we were able to open the whole disk).  Otherwise, we
938 * need to get the devid after we label the disk.
939 */
940static int
941make_disks(zpool_handle_t *zhp, nvlist_t *nv)
942{
943	nvlist_t **child;
944	uint_t c, children;
945	char *type, *path, *diskname;
946	char buf[MAXPATHLEN];
947	uint64_t wholedisk;
948	int fd;
949	int ret;
950	ddi_devid_t devid;
951	char *minor = NULL, *devid_str = NULL;
952
953	verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) == 0);
954
955	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
956	    &child, &children) != 0) {
957
958		if (strcmp(type, VDEV_TYPE_DISK) != 0)
959			return (0);
960
961		/*
962		 * We have a disk device.  Get the path to the device
963		 * and see if it's a whole disk by appending the backup
964		 * slice and stat()ing the device.
965		 */
966		verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &path) == 0);
967		if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK,
968		    &wholedisk) != 0 || !wholedisk)
969			return (0);
970
971		diskname = strrchr(path, '/');
972		assert(diskname != NULL);
973		diskname++;
974		if (zpool_label_disk(g_zfs, zhp, diskname) == -1)
975			return (-1);
976
977		/*
978		 * Fill in the devid, now that we've labeled the disk.
979		 */
980		(void) snprintf(buf, sizeof (buf), "%ss0", path);
981		if ((fd = open(buf, O_RDONLY)) < 0) {
982			(void) fprintf(stderr,
983			    gettext("cannot open '%s': %s\n"),
984			    buf, strerror(errno));
985			return (-1);
986		}
987
988		if (devid_get(fd, &devid) == 0) {
989			if (devid_get_minor_name(fd, &minor) == 0 &&
990			    (devid_str = devid_str_encode(devid, minor)) !=
991			    NULL) {
992				verify(nvlist_add_string(nv,
993				    ZPOOL_CONFIG_DEVID, devid_str) == 0);
994			}
995			if (devid_str != NULL)
996				devid_str_free(devid_str);
997			if (minor != NULL)
998				devid_str_free(minor);
999			devid_free(devid);
1000		}
1001
1002		/*
1003		 * Update the path to refer to the 's0' slice.  The presence of
1004		 * the 'whole_disk' field indicates to the CLI that we should
1005		 * chop off the slice number when displaying the device in
1006		 * future output.
1007		 */
1008		verify(nvlist_add_string(nv, ZPOOL_CONFIG_PATH, buf) == 0);
1009
1010		(void) close(fd);
1011
1012		return (0);
1013	}
1014
1015	for (c = 0; c < children; c++)
1016		if ((ret = make_disks(zhp, child[c])) != 0)
1017			return (ret);
1018
1019	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_SPARES,
1020	    &child, &children) == 0)
1021		for (c = 0; c < children; c++)
1022			if ((ret = make_disks(zhp, child[c])) != 0)
1023				return (ret);
1024
1025	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_L2CACHE,
1026	    &child, &children) == 0)
1027		for (c = 0; c < children; c++)
1028			if ((ret = make_disks(zhp, child[c])) != 0)
1029				return (ret);
1030
1031	return (0);
1032}
1033#endif	/* illumos */
1034
1035/*
1036 * Determine if the given path is a hot spare within the given configuration.
1037 */
1038static boolean_t
1039is_spare(nvlist_t *config, const char *path)
1040{
1041	int fd;
1042	pool_state_t state;
1043	char *name = NULL;
1044	nvlist_t *label;
1045	uint64_t guid, spareguid;
1046	nvlist_t *nvroot;
1047	nvlist_t **spares;
1048	uint_t i, nspares;
1049	boolean_t inuse;
1050
1051	if ((fd = open(path, O_RDONLY)) < 0)
1052		return (B_FALSE);
1053
1054	if (zpool_in_use(g_zfs, fd, &state, &name, &inuse) != 0 ||
1055	    !inuse ||
1056	    state != POOL_STATE_SPARE ||
1057	    zpool_read_label(fd, &label) != 0) {
1058		free(name);
1059		(void) close(fd);
1060		return (B_FALSE);
1061	}
1062	free(name);
1063	(void) close(fd);
1064
1065	verify(nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, &guid) == 0);
1066	nvlist_free(label);
1067
1068	verify(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
1069	    &nvroot) == 0);
1070	if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES,
1071	    &spares, &nspares) == 0) {
1072		for (i = 0; i < nspares; i++) {
1073			verify(nvlist_lookup_uint64(spares[i],
1074			    ZPOOL_CONFIG_GUID, &spareguid) == 0);
1075			if (spareguid == guid)
1076				return (B_TRUE);
1077		}
1078	}
1079
1080	return (B_FALSE);
1081}
1082
1083/*
1084 * Go through and find any devices that are in use.  We rely on libdiskmgt for
1085 * the majority of this task.
1086 */
1087static boolean_t
1088is_device_in_use(nvlist_t *config, nvlist_t *nv, boolean_t force,
1089    boolean_t replacing, boolean_t isspare)
1090{
1091	nvlist_t **child;
1092	uint_t c, children;
1093	char *type, *path;
1094	int ret = 0;
1095	char buf[MAXPATHLEN];
1096	uint64_t wholedisk;
1097	boolean_t anyinuse = B_FALSE;
1098
1099	verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) == 0);
1100
1101	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
1102	    &child, &children) != 0) {
1103
1104		verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &path) == 0);
1105
1106		/*
1107		 * As a generic check, we look to see if this is a replace of a
1108		 * hot spare within the same pool.  If so, we allow it
1109		 * regardless of what libdiskmgt or zpool_in_use() says.
1110		 */
1111		if (replacing) {
1112#ifdef illumos
1113			if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK,
1114			    &wholedisk) == 0 && wholedisk)
1115				(void) snprintf(buf, sizeof (buf), "%ss0",
1116				    path);
1117			else
1118#endif
1119				(void) strlcpy(buf, path, sizeof (buf));
1120
1121			if (is_spare(config, buf))
1122				return (B_FALSE);
1123		}
1124
1125		if (strcmp(type, VDEV_TYPE_DISK) == 0)
1126			ret = check_device(path, force, isspare);
1127		else if (strcmp(type, VDEV_TYPE_FILE) == 0)
1128			ret = check_file(path, force, isspare);
1129
1130		return (ret != 0);
1131	}
1132
1133	for (c = 0; c < children; c++)
1134		if (is_device_in_use(config, child[c], force, replacing,
1135		    B_FALSE))
1136			anyinuse = B_TRUE;
1137
1138	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_SPARES,
1139	    &child, &children) == 0)
1140		for (c = 0; c < children; c++)
1141			if (is_device_in_use(config, child[c], force, replacing,
1142			    B_TRUE))
1143				anyinuse = B_TRUE;
1144
1145	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_L2CACHE,
1146	    &child, &children) == 0)
1147		for (c = 0; c < children; c++)
1148			if (is_device_in_use(config, child[c], force, replacing,
1149			    B_FALSE))
1150				anyinuse = B_TRUE;
1151
1152	return (anyinuse);
1153}
1154
1155static const char *
1156is_grouping(const char *type, int *mindev, int *maxdev)
1157{
1158	if (strncmp(type, "raidz", 5) == 0) {
1159		const char *p = type + 5;
1160		char *end;
1161		long nparity;
1162
1163		if (*p == '\0') {
1164			nparity = 1;
1165		} else if (*p == '0') {
1166			return (NULL); /* no zero prefixes allowed */
1167		} else {
1168			errno = 0;
1169			nparity = strtol(p, &end, 10);
1170			if (errno != 0 || nparity < 1 || nparity >= 255 ||
1171			    *end != '\0')
1172				return (NULL);
1173		}
1174
1175		if (mindev != NULL)
1176			*mindev = nparity + 1;
1177		if (maxdev != NULL)
1178			*maxdev = 255;
1179		return (VDEV_TYPE_RAIDZ);
1180	}
1181
1182	if (maxdev != NULL)
1183		*maxdev = INT_MAX;
1184
1185	if (strcmp(type, "mirror") == 0) {
1186		if (mindev != NULL)
1187			*mindev = 2;
1188		return (VDEV_TYPE_MIRROR);
1189	}
1190
1191	if (strcmp(type, "spare") == 0) {
1192		if (mindev != NULL)
1193			*mindev = 1;
1194		return (VDEV_TYPE_SPARE);
1195	}
1196
1197	if (strcmp(type, "log") == 0) {
1198		if (mindev != NULL)
1199			*mindev = 1;
1200		return (VDEV_TYPE_LOG);
1201	}
1202
1203	if (strcmp(type, "cache") == 0) {
1204		if (mindev != NULL)
1205			*mindev = 1;
1206		return (VDEV_TYPE_L2CACHE);
1207	}
1208
1209	return (NULL);
1210}
1211
1212/*
1213 * Construct a syntactically valid vdev specification,
1214 * and ensure that all devices and files exist and can be opened.
1215 * Note: we don't bother freeing anything in the error paths
1216 * because the program is just going to exit anyway.
1217 */
1218nvlist_t *
1219construct_spec(int argc, char **argv)
1220{
1221	nvlist_t *nvroot, *nv, **top, **spares, **l2cache;
1222	int t, toplevels, mindev, maxdev, nspares, nlogs, nl2cache;
1223	const char *type;
1224	uint64_t is_log;
1225	boolean_t seen_logs;
1226
1227	top = NULL;
1228	toplevels = 0;
1229	spares = NULL;
1230	l2cache = NULL;
1231	nspares = 0;
1232	nlogs = 0;
1233	nl2cache = 0;
1234	is_log = B_FALSE;
1235	seen_logs = B_FALSE;
1236
1237	while (argc > 0) {
1238		nv = NULL;
1239
1240		/*
1241		 * If it's a mirror or raidz, the subsequent arguments are
1242		 * its leaves -- until we encounter the next mirror or raidz.
1243		 */
1244		if ((type = is_grouping(argv[0], &mindev, &maxdev)) != NULL) {
1245			nvlist_t **child = NULL;
1246			int c, children = 0;
1247
1248			if (strcmp(type, VDEV_TYPE_SPARE) == 0) {
1249				if (spares != NULL) {
1250					(void) fprintf(stderr,
1251					    gettext("invalid vdev "
1252					    "specification: 'spare' can be "
1253					    "specified only once\n"));
1254					return (NULL);
1255				}
1256				is_log = B_FALSE;
1257			}
1258
1259			if (strcmp(type, VDEV_TYPE_LOG) == 0) {
1260				if (seen_logs) {
1261					(void) fprintf(stderr,
1262					    gettext("invalid vdev "
1263					    "specification: 'log' can be "
1264					    "specified only once\n"));
1265					return (NULL);
1266				}
1267				seen_logs = B_TRUE;
1268				is_log = B_TRUE;
1269				argc--;
1270				argv++;
1271				/*
1272				 * A log is not a real grouping device.
1273				 * We just set is_log and continue.
1274				 */
1275				continue;
1276			}
1277
1278			if (strcmp(type, VDEV_TYPE_L2CACHE) == 0) {
1279				if (l2cache != NULL) {
1280					(void) fprintf(stderr,
1281					    gettext("invalid vdev "
1282					    "specification: 'cache' can be "
1283					    "specified only once\n"));
1284					return (NULL);
1285				}
1286				is_log = B_FALSE;
1287			}
1288
1289			if (is_log) {
1290				if (strcmp(type, VDEV_TYPE_MIRROR) != 0) {
1291					(void) fprintf(stderr,
1292					    gettext("invalid vdev "
1293					    "specification: unsupported 'log' "
1294					    "device: %s\n"), type);
1295					return (NULL);
1296				}
1297				nlogs++;
1298			}
1299
1300			for (c = 1; c < argc; c++) {
1301				if (is_grouping(argv[c], NULL, NULL) != NULL)
1302					break;
1303				children++;
1304				child = realloc(child,
1305				    children * sizeof (nvlist_t *));
1306				if (child == NULL)
1307					zpool_no_memory();
1308				if ((nv = make_leaf_vdev(argv[c], B_FALSE))
1309				    == NULL)
1310					return (NULL);
1311				child[children - 1] = nv;
1312			}
1313
1314			if (children < mindev) {
1315				(void) fprintf(stderr, gettext("invalid vdev "
1316				    "specification: %s requires at least %d "
1317				    "devices\n"), argv[0], mindev);
1318				return (NULL);
1319			}
1320
1321			if (children > maxdev) {
1322				(void) fprintf(stderr, gettext("invalid vdev "
1323				    "specification: %s supports no more than "
1324				    "%d devices\n"), argv[0], maxdev);
1325				return (NULL);
1326			}
1327
1328			argc -= c;
1329			argv += c;
1330
1331			if (strcmp(type, VDEV_TYPE_SPARE) == 0) {
1332				spares = child;
1333				nspares = children;
1334				continue;
1335			} else if (strcmp(type, VDEV_TYPE_L2CACHE) == 0) {
1336				l2cache = child;
1337				nl2cache = children;
1338				continue;
1339			} else {
1340				verify(nvlist_alloc(&nv, NV_UNIQUE_NAME,
1341				    0) == 0);
1342				verify(nvlist_add_string(nv, ZPOOL_CONFIG_TYPE,
1343				    type) == 0);
1344				verify(nvlist_add_uint64(nv,
1345				    ZPOOL_CONFIG_IS_LOG, is_log) == 0);
1346				if (strcmp(type, VDEV_TYPE_RAIDZ) == 0) {
1347					verify(nvlist_add_uint64(nv,
1348					    ZPOOL_CONFIG_NPARITY,
1349					    mindev - 1) == 0);
1350				}
1351				verify(nvlist_add_nvlist_array(nv,
1352				    ZPOOL_CONFIG_CHILDREN, child,
1353				    children) == 0);
1354
1355				for (c = 0; c < children; c++)
1356					nvlist_free(child[c]);
1357				free(child);
1358			}
1359		} else {
1360			/*
1361			 * We have a device.  Pass off to make_leaf_vdev() to
1362			 * construct the appropriate nvlist describing the vdev.
1363			 */
1364			if ((nv = make_leaf_vdev(argv[0], is_log)) == NULL)
1365				return (NULL);
1366			if (is_log)
1367				nlogs++;
1368			argc--;
1369			argv++;
1370		}
1371
1372		toplevels++;
1373		top = realloc(top, toplevels * sizeof (nvlist_t *));
1374		if (top == NULL)
1375			zpool_no_memory();
1376		top[toplevels - 1] = nv;
1377	}
1378
1379	if (toplevels == 0 && nspares == 0 && nl2cache == 0) {
1380		(void) fprintf(stderr, gettext("invalid vdev "
1381		    "specification: at least one toplevel vdev must be "
1382		    "specified\n"));
1383		return (NULL);
1384	}
1385
1386	if (seen_logs && nlogs == 0) {
1387		(void) fprintf(stderr, gettext("invalid vdev specification: "
1388		    "log requires at least 1 device\n"));
1389		return (NULL);
1390	}
1391
1392	/*
1393	 * Finally, create nvroot and add all top-level vdevs to it.
1394	 */
1395	verify(nvlist_alloc(&nvroot, NV_UNIQUE_NAME, 0) == 0);
1396	verify(nvlist_add_string(nvroot, ZPOOL_CONFIG_TYPE,
1397	    VDEV_TYPE_ROOT) == 0);
1398	verify(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
1399	    top, toplevels) == 0);
1400	if (nspares != 0)
1401		verify(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES,
1402		    spares, nspares) == 0);
1403	if (nl2cache != 0)
1404		verify(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_L2CACHE,
1405		    l2cache, nl2cache) == 0);
1406
1407	for (t = 0; t < toplevels; t++)
1408		nvlist_free(top[t]);
1409	for (t = 0; t < nspares; t++)
1410		nvlist_free(spares[t]);
1411	for (t = 0; t < nl2cache; t++)
1412		nvlist_free(l2cache[t]);
1413	if (spares)
1414		free(spares);
1415	if (l2cache)
1416		free(l2cache);
1417	free(top);
1418
1419	return (nvroot);
1420}
1421
1422nvlist_t *
1423split_mirror_vdev(zpool_handle_t *zhp, char *newname, nvlist_t *props,
1424    splitflags_t flags, int argc, char **argv)
1425{
1426	nvlist_t *newroot = NULL, **child;
1427	uint_t c, children;
1428
1429	if (argc > 0) {
1430		if ((newroot = construct_spec(argc, argv)) == NULL) {
1431			(void) fprintf(stderr, gettext("Unable to build a "
1432			    "pool from the specified devices\n"));
1433			return (NULL);
1434		}
1435
1436#ifdef illumos
1437		if (!flags.dryrun && make_disks(zhp, newroot) != 0) {
1438			nvlist_free(newroot);
1439			return (NULL);
1440		}
1441#endif
1442
1443		/* avoid any tricks in the spec */
1444		verify(nvlist_lookup_nvlist_array(newroot,
1445		    ZPOOL_CONFIG_CHILDREN, &child, &children) == 0);
1446		for (c = 0; c < children; c++) {
1447			char *path;
1448			const char *type;
1449			int min, max;
1450
1451			verify(nvlist_lookup_string(child[c],
1452			    ZPOOL_CONFIG_PATH, &path) == 0);
1453			if ((type = is_grouping(path, &min, &max)) != NULL) {
1454				(void) fprintf(stderr, gettext("Cannot use "
1455				    "'%s' as a device for splitting\n"), type);
1456				nvlist_free(newroot);
1457				return (NULL);
1458			}
1459		}
1460	}
1461
1462	if (zpool_vdev_split(zhp, newname, &newroot, props, flags) != 0) {
1463		nvlist_free(newroot);
1464		return (NULL);
1465	}
1466
1467	return (newroot);
1468}
1469
1470/*
1471 * Get and validate the contents of the given vdev specification.  This ensures
1472 * that the nvlist returned is well-formed, that all the devices exist, and that
1473 * they are not currently in use by any other known consumer.  The 'poolconfig'
1474 * parameter is the current configuration of the pool when adding devices
1475 * existing pool, and is used to perform additional checks, such as changing the
1476 * replication level of the pool.  It can be 'NULL' to indicate that this is a
1477 * new pool.  The 'force' flag controls whether devices should be forcefully
1478 * added, even if they appear in use.
1479 */
1480nvlist_t *
1481make_root_vdev(zpool_handle_t *zhp, int force, int check_rep,
1482    boolean_t replacing, boolean_t dryrun, int argc, char **argv)
1483{
1484	nvlist_t *newroot;
1485	nvlist_t *poolconfig = NULL;
1486	is_force = force;
1487
1488	/*
1489	 * Construct the vdev specification.  If this is successful, we know
1490	 * that we have a valid specification, and that all devices can be
1491	 * opened.
1492	 */
1493	if ((newroot = construct_spec(argc, argv)) == NULL)
1494		return (NULL);
1495
1496	if (zhp && ((poolconfig = zpool_get_config(zhp, NULL)) == NULL))
1497		return (NULL);
1498
1499	/*
1500	 * Validate each device to make sure that its not shared with another
1501	 * subsystem.  We do this even if 'force' is set, because there are some
1502	 * uses (such as a dedicated dump device) that even '-f' cannot
1503	 * override.
1504	 */
1505	if (is_device_in_use(poolconfig, newroot, force, replacing, B_FALSE)) {
1506		nvlist_free(newroot);
1507		return (NULL);
1508	}
1509
1510	/*
1511	 * Check the replication level of the given vdevs and report any errors
1512	 * found.  We include the existing pool spec, if any, as we need to
1513	 * catch changes against the existing replication level.
1514	 */
1515	if (check_rep && check_replication(poolconfig, newroot) != 0) {
1516		nvlist_free(newroot);
1517		return (NULL);
1518	}
1519
1520#ifdef illumos
1521	/*
1522	 * Run through the vdev specification and label any whole disks found.
1523	 */
1524	if (!dryrun && make_disks(zhp, newroot) != 0) {
1525		nvlist_free(newroot);
1526		return (NULL);
1527	}
1528#endif
1529
1530	return (newroot);
1531}
1532