1fa9e4066Sahrens /* 2fa9e4066Sahrens * CDDL HEADER START 3fa9e4066Sahrens * 4fa9e4066Sahrens * The contents of this file are subject to the terms of the 5ea8dc4b6Seschrock * Common Development and Distribution License (the "License"). 6ea8dc4b6Seschrock * You may not use this file except in compliance with the License. 7fa9e4066Sahrens * 8fa9e4066Sahrens * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9fa9e4066Sahrens * or http://www.opensolaris.org/os/licensing. 10fa9e4066Sahrens * See the License for the specific language governing permissions 11fa9e4066Sahrens * and limitations under the License. 12fa9e4066Sahrens * 13fa9e4066Sahrens * When distributing Covered Code, include this CDDL HEADER in each 14fa9e4066Sahrens * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15fa9e4066Sahrens * If applicable, add the following below this CDDL HEADER, with the 16fa9e4066Sahrens * fields enclosed by brackets "[]" replaced with your own identifying 17fa9e4066Sahrens * information: Portions Copyright [yyyy] [name of copyright owner] 18fa9e4066Sahrens * 19fa9e4066Sahrens * CDDL HEADER END 20fa9e4066Sahrens */ 2199653d4eSeschrock 22fa9e4066Sahrens /* 2346657f8dSmmusante * Copyright 2007 Sun Microsystems, Inc. All rights reserved. 24fa9e4066Sahrens * Use is subject to license terms. 25fa9e4066Sahrens */ 26fa9e4066Sahrens 27fa9e4066Sahrens #pragma ident "%Z%%M% %I% %E% SMI" 28fa9e4066Sahrens 29fa9e4066Sahrens /* 30fa9e4066Sahrens * Functions to convert between a list of vdevs and an nvlist representing the 31fa9e4066Sahrens * configuration. Each entry in the list can be one of: 32fa9e4066Sahrens * 33fa9e4066Sahrens * Device vdevs 34fa9e4066Sahrens * disk=(path=..., devid=...) 35fa9e4066Sahrens * file=(path=...) 36fa9e4066Sahrens * 37fa9e4066Sahrens * Group vdevs 3899653d4eSeschrock * raidz[1|2]=(...) 39fa9e4066Sahrens * mirror=(...) 40fa9e4066Sahrens * 4199653d4eSeschrock * Hot spares 4299653d4eSeschrock * 43fa9e4066Sahrens * While the underlying implementation supports it, group vdevs cannot contain 44fa9e4066Sahrens * other group vdevs. All userland verification of devices is contained within 45fa9e4066Sahrens * this file. If successful, the nvlist returned can be passed directly to the 46fa9e4066Sahrens * kernel; we've done as much verification as possible in userland. 47fa9e4066Sahrens * 4899653d4eSeschrock * Hot spares are a special case, and passed down as an array of disk vdevs, at 4999653d4eSeschrock * the same level as the root of the vdev tree. 5099653d4eSeschrock * 51fa9e4066Sahrens * The only function exported by this file is 'get_vdev_spec'. The function 52fa9e4066Sahrens * performs several passes: 53fa9e4066Sahrens * 54fa9e4066Sahrens * 1. Construct the vdev specification. Performs syntax validation and 55fa9e4066Sahrens * makes sure each device is valid. 56fa9e4066Sahrens * 2. Check for devices in use. Using libdiskmgt, makes sure that no 57fa9e4066Sahrens * devices are also in use. Some can be overridden using the 'force' 58fa9e4066Sahrens * flag, others cannot. 59fa9e4066Sahrens * 3. Check for replication errors if the 'force' flag is not specified. 60fa9e4066Sahrens * validates that the replication level is consistent across the 61fa9e4066Sahrens * entire pool. 62fa9e4066Sahrens * 4. Label any whole disks with an EFI label. 63fa9e4066Sahrens */ 64fa9e4066Sahrens 65fa9e4066Sahrens #include <assert.h> 66fa9e4066Sahrens #include <devid.h> 67fa9e4066Sahrens #include <errno.h> 68fa9e4066Sahrens #include <fcntl.h> 69fa9e4066Sahrens #include <libdiskmgt.h> 70fa9e4066Sahrens #include <libintl.h> 71fa9e4066Sahrens #include <libnvpair.h> 72fa9e4066Sahrens #include <stdio.h> 73fa9e4066Sahrens #include <string.h> 74fa9e4066Sahrens #include <unistd.h> 75fa9e4066Sahrens #include <sys/efi_partition.h> 76fa9e4066Sahrens #include <sys/stat.h> 77fa9e4066Sahrens #include <sys/vtoc.h> 78fa9e4066Sahrens #include <sys/mntent.h> 79fa9e4066Sahrens 80fa9e4066Sahrens #include <libzfs.h> 81fa9e4066Sahrens 82fa9e4066Sahrens #include "zpool_util.h" 83fa9e4066Sahrens 84fa9e4066Sahrens #define DISK_ROOT "/dev/dsk" 85fa9e4066Sahrens #define RDISK_ROOT "/dev/rdsk" 86fa9e4066Sahrens #define BACKUP_SLICE "s2" 87fa9e4066Sahrens 88fa9e4066Sahrens /* 89fa9e4066Sahrens * For any given vdev specification, we can have multiple errors. The 90fa9e4066Sahrens * vdev_error() function keeps track of whether we have seen an error yet, and 91fa9e4066Sahrens * prints out a header if its the first error we've seen. 92fa9e4066Sahrens */ 9399653d4eSeschrock boolean_t error_seen; 9499653d4eSeschrock boolean_t is_force; 95fa9e4066Sahrens 9699653d4eSeschrock /*PRINTFLIKE1*/ 9799653d4eSeschrock static void 98fa9e4066Sahrens vdev_error(const char *fmt, ...) 99fa9e4066Sahrens { 100fa9e4066Sahrens va_list ap; 101fa9e4066Sahrens 102fa9e4066Sahrens if (!error_seen) { 103fa9e4066Sahrens (void) fprintf(stderr, gettext("invalid vdev specification\n")); 104fa9e4066Sahrens if (!is_force) 105fa9e4066Sahrens (void) fprintf(stderr, gettext("use '-f' to override " 106fa9e4066Sahrens "the following errors:\n")); 107fa9e4066Sahrens else 108fa9e4066Sahrens (void) fprintf(stderr, gettext("the following errors " 109fa9e4066Sahrens "must be manually repaired:\n")); 11099653d4eSeschrock error_seen = B_TRUE; 111fa9e4066Sahrens } 112fa9e4066Sahrens 113fa9e4066Sahrens va_start(ap, fmt); 114fa9e4066Sahrens (void) vfprintf(stderr, fmt, ap); 115fa9e4066Sahrens va_end(ap); 116fa9e4066Sahrens } 117fa9e4066Sahrens 11846a2abf2Seschrock static void 11946a2abf2Seschrock libdiskmgt_error(int error) 120fa9e4066Sahrens { 121ea8dc4b6Seschrock /* 12299653d4eSeschrock * ENXIO/ENODEV is a valid error message if the device doesn't live in 123ea8dc4b6Seschrock * /dev/dsk. Don't bother printing an error message in this case. 124ea8dc4b6Seschrock */ 12599653d4eSeschrock if (error == ENXIO || error == ENODEV) 126ea8dc4b6Seschrock return; 127ea8dc4b6Seschrock 12846a2abf2Seschrock (void) fprintf(stderr, gettext("warning: device in use checking " 12946a2abf2Seschrock "failed: %s\n"), strerror(error)); 130fa9e4066Sahrens } 131fa9e4066Sahrens 132fa9e4066Sahrens /* 13346a2abf2Seschrock * Validate a device, passing the bulk of the work off to libdiskmgt. 134fa9e4066Sahrens */ 135fa9e4066Sahrens int 13699653d4eSeschrock check_slice(const char *path, int force, boolean_t wholedisk, boolean_t isspare) 137fa9e4066Sahrens { 13846a2abf2Seschrock char *msg; 13946a2abf2Seschrock int error = 0; 140fa9e4066Sahrens 14146657f8dSmmusante if (dm_inuse((char *)path, &msg, isspare ? DM_WHO_ZPOOL_SPARE : 14246657f8dSmmusante (force ? DM_WHO_ZPOOL_FORCE : DM_WHO_ZPOOL), &error) || error) { 14346a2abf2Seschrock if (error != 0) { 14446a2abf2Seschrock libdiskmgt_error(error); 14546a2abf2Seschrock return (0); 14646657f8dSmmusante } else { 14746a2abf2Seschrock vdev_error("%s", msg); 14846a2abf2Seschrock free(msg); 149*181c2f42Smmusante return (-1); 15046a2abf2Seschrock } 151fa9e4066Sahrens } 152fa9e4066Sahrens 15346a2abf2Seschrock /* 15446a2abf2Seschrock * If we're given a whole disk, ignore overlapping slices since we're 15546a2abf2Seschrock * about to label it anyway. 15646a2abf2Seschrock */ 15746a2abf2Seschrock error = 0; 15846a2abf2Seschrock if (!wholedisk && !force && 15946a2abf2Seschrock (dm_isoverlapping((char *)path, &msg, &error) || error)) { 160*181c2f42Smmusante if (error == 0) { 161*181c2f42Smmusante /* dm_isoverlapping returned -1 */ 162*181c2f42Smmusante vdev_error(gettext("%s overlaps with %s\n"), path, msg); 163*181c2f42Smmusante free(msg); 164*181c2f42Smmusante return (-1); 165*181c2f42Smmusante } else if (error != ENODEV) { 166*181c2f42Smmusante /* libdiskmgt's devcache only handles physical drives */ 16746a2abf2Seschrock libdiskmgt_error(error); 16846a2abf2Seschrock return (0); 169*181c2f42Smmusante } 17046a2abf2Seschrock } 17146a2abf2Seschrock 172*181c2f42Smmusante return (0); 173fa9e4066Sahrens } 174fa9e4066Sahrens 175fa9e4066Sahrens /* 176fa9e4066Sahrens * Validate a whole disk. Iterate over all slices on the disk and make sure 177fa9e4066Sahrens * that none is in use by calling check_slice(). 178fa9e4066Sahrens */ 179fa9e4066Sahrens /* ARGSUSED */ 180fa9e4066Sahrens int 18199653d4eSeschrock check_disk(const char *name, dm_descriptor_t disk, int force, int isspare) 182fa9e4066Sahrens { 183fa9e4066Sahrens dm_descriptor_t *drive, *media, *slice; 184fa9e4066Sahrens int err = 0; 185fa9e4066Sahrens int i; 186fa9e4066Sahrens int ret; 187fa9e4066Sahrens 188fa9e4066Sahrens /* 189fa9e4066Sahrens * Get the drive associated with this disk. This should never fail, 190fa9e4066Sahrens * because we already have an alias handle open for the device. 191fa9e4066Sahrens */ 192fa9e4066Sahrens if ((drive = dm_get_associated_descriptors(disk, DM_DRIVE, 19346a2abf2Seschrock &err)) == NULL || *drive == NULL) { 19446a2abf2Seschrock if (err) 19546a2abf2Seschrock libdiskmgt_error(err); 19646a2abf2Seschrock return (0); 19746a2abf2Seschrock } 198fa9e4066Sahrens 199fa9e4066Sahrens if ((media = dm_get_associated_descriptors(*drive, DM_MEDIA, 20046a2abf2Seschrock &err)) == NULL) { 20146a2abf2Seschrock dm_free_descriptors(drive); 20246a2abf2Seschrock if (err) 20346a2abf2Seschrock libdiskmgt_error(err); 20446a2abf2Seschrock return (0); 20546a2abf2Seschrock } 206fa9e4066Sahrens 207fa9e4066Sahrens dm_free_descriptors(drive); 208fa9e4066Sahrens 209fa9e4066Sahrens /* 210fa9e4066Sahrens * It is possible that the user has specified a removable media drive, 211fa9e4066Sahrens * and the media is not present. 212fa9e4066Sahrens */ 213fa9e4066Sahrens if (*media == NULL) { 214fa9e4066Sahrens dm_free_descriptors(media); 21546a2abf2Seschrock vdev_error(gettext("'%s' has no media in drive\n"), name); 216fa9e4066Sahrens return (-1); 217fa9e4066Sahrens } 218fa9e4066Sahrens 219fa9e4066Sahrens if ((slice = dm_get_associated_descriptors(*media, DM_SLICE, 22046a2abf2Seschrock &err)) == NULL) { 22146a2abf2Seschrock dm_free_descriptors(media); 22246a2abf2Seschrock if (err) 22346a2abf2Seschrock libdiskmgt_error(err); 22446a2abf2Seschrock return (0); 22546a2abf2Seschrock } 226fa9e4066Sahrens 227fa9e4066Sahrens dm_free_descriptors(media); 228fa9e4066Sahrens 229fa9e4066Sahrens ret = 0; 230fa9e4066Sahrens 231fa9e4066Sahrens /* 232fa9e4066Sahrens * Iterate over all slices and report any errors. We don't care about 233fa9e4066Sahrens * overlapping slices because we are using the whole disk. 234fa9e4066Sahrens */ 235fa9e4066Sahrens for (i = 0; slice[i] != NULL; i++) { 23699653d4eSeschrock char *name = dm_get_name(slice[i], &err); 23799653d4eSeschrock 23899653d4eSeschrock if (check_slice(name, force, B_TRUE, isspare) != 0) 239fa9e4066Sahrens ret = -1; 24099653d4eSeschrock 24199653d4eSeschrock dm_free_name(name); 242fa9e4066Sahrens } 243fa9e4066Sahrens 244fa9e4066Sahrens dm_free_descriptors(slice); 245fa9e4066Sahrens return (ret); 246fa9e4066Sahrens } 247fa9e4066Sahrens 248fa9e4066Sahrens /* 24946a2abf2Seschrock * Validate a device. 250fa9e4066Sahrens */ 251fa9e4066Sahrens int 25299653d4eSeschrock check_device(const char *path, boolean_t force, boolean_t isspare) 253fa9e4066Sahrens { 254fa9e4066Sahrens dm_descriptor_t desc; 255fa9e4066Sahrens int err; 25646a2abf2Seschrock char *dev; 257fa9e4066Sahrens 258fa9e4066Sahrens /* 259fa9e4066Sahrens * For whole disks, libdiskmgt does not include the leading dev path. 260fa9e4066Sahrens */ 261fa9e4066Sahrens dev = strrchr(path, '/'); 262fa9e4066Sahrens assert(dev != NULL); 263fa9e4066Sahrens dev++; 26446a2abf2Seschrock if ((desc = dm_get_descriptor_by_name(DM_ALIAS, dev, &err)) != NULL) { 26599653d4eSeschrock err = check_disk(path, desc, force, isspare); 26646a2abf2Seschrock dm_free_descriptor(desc); 26746a2abf2Seschrock return (err); 268fa9e4066Sahrens } 269fa9e4066Sahrens 27099653d4eSeschrock return (check_slice(path, force, B_FALSE, isspare)); 271fa9e4066Sahrens } 272fa9e4066Sahrens 273fa9e4066Sahrens /* 274fa9e4066Sahrens * Check that a file is valid. All we can do in this case is check that it's 275*181c2f42Smmusante * not in use by another pool, and not in use by swap. 276fa9e4066Sahrens */ 277fa9e4066Sahrens int 27899653d4eSeschrock check_file(const char *file, boolean_t force, boolean_t isspare) 279fa9e4066Sahrens { 28046a2abf2Seschrock char *name; 281fa9e4066Sahrens int fd; 282fa9e4066Sahrens int ret = 0; 283*181c2f42Smmusante int err; 28446a2abf2Seschrock pool_state_t state; 28599653d4eSeschrock boolean_t inuse; 286fa9e4066Sahrens 287*181c2f42Smmusante if (dm_inuse_swap(file, &err)) { 288*181c2f42Smmusante if (err) 289*181c2f42Smmusante libdiskmgt_error(err); 290*181c2f42Smmusante else 291*181c2f42Smmusante vdev_error(gettext("%s is currently used by swap. " 292*181c2f42Smmusante "Please see swap(1M).\n"), file); 293*181c2f42Smmusante return (-1); 294*181c2f42Smmusante } 295*181c2f42Smmusante 296fa9e4066Sahrens if ((fd = open(file, O_RDONLY)) < 0) 297fa9e4066Sahrens return (0); 298fa9e4066Sahrens 29999653d4eSeschrock if (zpool_in_use(g_zfs, fd, &state, &name, &inuse) == 0 && inuse) { 30046a2abf2Seschrock const char *desc; 30146a2abf2Seschrock 30246a2abf2Seschrock switch (state) { 30346a2abf2Seschrock case POOL_STATE_ACTIVE: 30446a2abf2Seschrock desc = gettext("active"); 30546a2abf2Seschrock break; 30646a2abf2Seschrock 30746a2abf2Seschrock case POOL_STATE_EXPORTED: 30846a2abf2Seschrock desc = gettext("exported"); 30946a2abf2Seschrock break; 31046a2abf2Seschrock 31146a2abf2Seschrock case POOL_STATE_POTENTIALLY_ACTIVE: 31246a2abf2Seschrock desc = gettext("potentially active"); 31346a2abf2Seschrock break; 31446a2abf2Seschrock 31546a2abf2Seschrock default: 31646a2abf2Seschrock desc = gettext("unknown"); 31746a2abf2Seschrock break; 31846a2abf2Seschrock } 31946a2abf2Seschrock 32099653d4eSeschrock /* 32199653d4eSeschrock * Allow hot spares to be shared between pools. 32299653d4eSeschrock */ 32399653d4eSeschrock if (state == POOL_STATE_SPARE && isspare) 32499653d4eSeschrock return (0); 32599653d4eSeschrock 32699653d4eSeschrock if (state == POOL_STATE_ACTIVE || 32799653d4eSeschrock state == POOL_STATE_SPARE || !force) { 32899653d4eSeschrock switch (state) { 32999653d4eSeschrock case POOL_STATE_SPARE: 33099653d4eSeschrock vdev_error(gettext("%s is reserved as a hot " 33199653d4eSeschrock "spare for pool %s\n"), file, name); 33299653d4eSeschrock break; 33399653d4eSeschrock default: 33499653d4eSeschrock vdev_error(gettext("%s is part of %s pool " 33599653d4eSeschrock "'%s'\n"), file, desc, name); 33699653d4eSeschrock break; 33799653d4eSeschrock } 338fa9e4066Sahrens ret = -1; 339fa9e4066Sahrens } 340fa9e4066Sahrens 341fa9e4066Sahrens free(name); 342fa9e4066Sahrens } 343fa9e4066Sahrens 344fa9e4066Sahrens (void) close(fd); 345fa9e4066Sahrens return (ret); 346fa9e4066Sahrens } 347fa9e4066Sahrens 34899653d4eSeschrock static boolean_t 349fa9e4066Sahrens is_whole_disk(const char *arg, struct stat64 *statbuf) 350fa9e4066Sahrens { 351fa9e4066Sahrens char path[MAXPATHLEN]; 352fa9e4066Sahrens 353fa9e4066Sahrens (void) snprintf(path, sizeof (path), "%s%s", arg, BACKUP_SLICE); 354fa9e4066Sahrens if (stat64(path, statbuf) == 0) 35599653d4eSeschrock return (B_TRUE); 356fa9e4066Sahrens 35799653d4eSeschrock return (B_FALSE); 358fa9e4066Sahrens } 359fa9e4066Sahrens 360fa9e4066Sahrens /* 361fa9e4066Sahrens * Create a leaf vdev. Determine if this is a file or a device. If it's a 362fa9e4066Sahrens * device, fill in the device id to make a complete nvlist. Valid forms for a 363fa9e4066Sahrens * leaf vdev are: 364fa9e4066Sahrens * 365fa9e4066Sahrens * /dev/dsk/xxx Complete disk path 366fa9e4066Sahrens * /xxx Full path to file 367fa9e4066Sahrens * xxx Shorthand for /dev/dsk/xxx 368fa9e4066Sahrens */ 369fa9e4066Sahrens nvlist_t * 370fa9e4066Sahrens make_leaf_vdev(const char *arg) 371fa9e4066Sahrens { 372fa9e4066Sahrens char path[MAXPATHLEN]; 373fa9e4066Sahrens struct stat64 statbuf; 374fa9e4066Sahrens nvlist_t *vdev = NULL; 375fa9e4066Sahrens char *type = NULL; 37699653d4eSeschrock boolean_t wholedisk = B_FALSE; 377fa9e4066Sahrens 378fa9e4066Sahrens /* 379fa9e4066Sahrens * Determine what type of vdev this is, and put the full path into 380fa9e4066Sahrens * 'path'. We detect whether this is a device of file afterwards by 381fa9e4066Sahrens * checking the st_mode of the file. 382fa9e4066Sahrens */ 383fa9e4066Sahrens if (arg[0] == '/') { 384fa9e4066Sahrens /* 385fa9e4066Sahrens * Complete device or file path. Exact type is determined by 386fa9e4066Sahrens * examining the file descriptor afterwards. 387fa9e4066Sahrens */ 388fa9e4066Sahrens if (is_whole_disk(arg, &statbuf)) { 38999653d4eSeschrock wholedisk = B_TRUE; 390fa9e4066Sahrens } else if (stat64(arg, &statbuf) != 0) { 391fa9e4066Sahrens (void) fprintf(stderr, 392fa9e4066Sahrens gettext("cannot open '%s': %s\n"), 393fa9e4066Sahrens arg, strerror(errno)); 394fa9e4066Sahrens return (NULL); 395fa9e4066Sahrens } 396fa9e4066Sahrens 397fa9e4066Sahrens (void) strlcpy(path, arg, sizeof (path)); 398fa9e4066Sahrens } else { 399fa9e4066Sahrens /* 400fa9e4066Sahrens * This may be a short path for a device, or it could be total 401fa9e4066Sahrens * gibberish. Check to see if it's a known device in 402fa9e4066Sahrens * /dev/dsk/. As part of this check, see if we've been given a 403fa9e4066Sahrens * an entire disk (minus the slice number). 404fa9e4066Sahrens */ 405fa9e4066Sahrens (void) snprintf(path, sizeof (path), "%s/%s", DISK_ROOT, 406fa9e4066Sahrens arg); 407fa9e4066Sahrens if (is_whole_disk(path, &statbuf)) { 40899653d4eSeschrock wholedisk = B_TRUE; 409fa9e4066Sahrens } else if (stat64(path, &statbuf) != 0) { 410fa9e4066Sahrens /* 411fa9e4066Sahrens * If we got ENOENT, then the user gave us 412fa9e4066Sahrens * gibberish, so try to direct them with a 413fa9e4066Sahrens * reasonable error message. Otherwise, 414fa9e4066Sahrens * regurgitate strerror() since it's the best we 415fa9e4066Sahrens * can do. 416fa9e4066Sahrens */ 417fa9e4066Sahrens if (errno == ENOENT) { 418fa9e4066Sahrens (void) fprintf(stderr, 419fa9e4066Sahrens gettext("cannot open '%s': no such " 420fa9e4066Sahrens "device in %s\n"), arg, DISK_ROOT); 421fa9e4066Sahrens (void) fprintf(stderr, 422fa9e4066Sahrens gettext("must be a full path or " 423fa9e4066Sahrens "shorthand device name\n")); 424fa9e4066Sahrens return (NULL); 425fa9e4066Sahrens } else { 426fa9e4066Sahrens (void) fprintf(stderr, 427fa9e4066Sahrens gettext("cannot open '%s': %s\n"), 428fa9e4066Sahrens path, strerror(errno)); 429fa9e4066Sahrens return (NULL); 430fa9e4066Sahrens } 431fa9e4066Sahrens } 432fa9e4066Sahrens } 433fa9e4066Sahrens 434fa9e4066Sahrens /* 435fa9e4066Sahrens * Determine whether this is a device or a file. 436fa9e4066Sahrens */ 437fa9e4066Sahrens if (S_ISBLK(statbuf.st_mode)) { 438fa9e4066Sahrens type = VDEV_TYPE_DISK; 439fa9e4066Sahrens } else if (S_ISREG(statbuf.st_mode)) { 440fa9e4066Sahrens type = VDEV_TYPE_FILE; 441fa9e4066Sahrens } else { 442fa9e4066Sahrens (void) fprintf(stderr, gettext("cannot use '%s': must be a " 443fa9e4066Sahrens "block device or regular file\n"), path); 444fa9e4066Sahrens return (NULL); 445fa9e4066Sahrens } 446fa9e4066Sahrens 447fa9e4066Sahrens /* 448fa9e4066Sahrens * Finally, we have the complete device or file, and we know that it is 449fa9e4066Sahrens * acceptable to use. Construct the nvlist to describe this vdev. All 450fa9e4066Sahrens * vdevs have a 'path' element, and devices also have a 'devid' element. 451fa9e4066Sahrens */ 452fa9e4066Sahrens verify(nvlist_alloc(&vdev, NV_UNIQUE_NAME, 0) == 0); 453fa9e4066Sahrens verify(nvlist_add_string(vdev, ZPOOL_CONFIG_PATH, path) == 0); 454fa9e4066Sahrens verify(nvlist_add_string(vdev, ZPOOL_CONFIG_TYPE, type) == 0); 455afefbcddSeschrock if (strcmp(type, VDEV_TYPE_DISK) == 0) 456afefbcddSeschrock verify(nvlist_add_uint64(vdev, ZPOOL_CONFIG_WHOLE_DISK, 457afefbcddSeschrock (uint64_t)wholedisk) == 0); 458fa9e4066Sahrens 459fa9e4066Sahrens /* 460fa9e4066Sahrens * For a whole disk, defer getting its devid until after labeling it. 461fa9e4066Sahrens */ 462fa9e4066Sahrens if (S_ISBLK(statbuf.st_mode) && !wholedisk) { 463fa9e4066Sahrens /* 464fa9e4066Sahrens * Get the devid for the device. 465fa9e4066Sahrens */ 466fa9e4066Sahrens int fd; 467fa9e4066Sahrens ddi_devid_t devid; 468fa9e4066Sahrens char *minor = NULL, *devid_str = NULL; 469fa9e4066Sahrens 470fa9e4066Sahrens if ((fd = open(path, O_RDONLY)) < 0) { 471fa9e4066Sahrens (void) fprintf(stderr, gettext("cannot open '%s': " 472fa9e4066Sahrens "%s\n"), path, strerror(errno)); 473fa9e4066Sahrens nvlist_free(vdev); 474fa9e4066Sahrens return (NULL); 475fa9e4066Sahrens } 476fa9e4066Sahrens 477fa9e4066Sahrens if (devid_get(fd, &devid) == 0) { 478fa9e4066Sahrens if (devid_get_minor_name(fd, &minor) == 0 && 479fa9e4066Sahrens (devid_str = devid_str_encode(devid, minor)) != 480fa9e4066Sahrens NULL) { 481fa9e4066Sahrens verify(nvlist_add_string(vdev, 482fa9e4066Sahrens ZPOOL_CONFIG_DEVID, devid_str) == 0); 483fa9e4066Sahrens } 484fa9e4066Sahrens if (devid_str != NULL) 485fa9e4066Sahrens devid_str_free(devid_str); 486fa9e4066Sahrens if (minor != NULL) 487fa9e4066Sahrens devid_str_free(minor); 488fa9e4066Sahrens devid_free(devid); 489fa9e4066Sahrens } 490fa9e4066Sahrens 491fa9e4066Sahrens (void) close(fd); 492fa9e4066Sahrens } 493fa9e4066Sahrens 494fa9e4066Sahrens return (vdev); 495fa9e4066Sahrens } 496fa9e4066Sahrens 497fa9e4066Sahrens /* 498fa9e4066Sahrens * Go through and verify the replication level of the pool is consistent. 499fa9e4066Sahrens * Performs the following checks: 500fa9e4066Sahrens * 501fa9e4066Sahrens * For the new spec, verifies that devices in mirrors and raidz are the 502fa9e4066Sahrens * same size. 503fa9e4066Sahrens * 504fa9e4066Sahrens * If the current configuration already has inconsistent replication 505fa9e4066Sahrens * levels, ignore any other potential problems in the new spec. 506fa9e4066Sahrens * 507fa9e4066Sahrens * Otherwise, make sure that the current spec (if there is one) and the new 508fa9e4066Sahrens * spec have consistent replication levels. 509fa9e4066Sahrens */ 510fa9e4066Sahrens typedef struct replication_level { 51199653d4eSeschrock char *zprl_type; 51299653d4eSeschrock uint64_t zprl_children; 51399653d4eSeschrock uint64_t zprl_parity; 514fa9e4066Sahrens } replication_level_t; 515fa9e4066Sahrens 516fa9e4066Sahrens /* 517fa9e4066Sahrens * Given a list of toplevel vdevs, return the current replication level. If 518fa9e4066Sahrens * the config is inconsistent, then NULL is returned. If 'fatal' is set, then 519fa9e4066Sahrens * an error message will be displayed for each self-inconsistent vdev. 520fa9e4066Sahrens */ 521fa9e4066Sahrens replication_level_t * 52299653d4eSeschrock get_replication(nvlist_t *nvroot, boolean_t fatal) 523fa9e4066Sahrens { 524fa9e4066Sahrens nvlist_t **top; 525fa9e4066Sahrens uint_t t, toplevels; 526fa9e4066Sahrens nvlist_t **child; 527fa9e4066Sahrens uint_t c, children; 528fa9e4066Sahrens nvlist_t *nv; 529fa9e4066Sahrens char *type; 530fa9e4066Sahrens replication_level_t lastrep, rep, *ret; 53199653d4eSeschrock boolean_t dontreport; 532fa9e4066Sahrens 533fa9e4066Sahrens ret = safe_malloc(sizeof (replication_level_t)); 534fa9e4066Sahrens 535fa9e4066Sahrens verify(nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN, 536fa9e4066Sahrens &top, &toplevels) == 0); 537fa9e4066Sahrens 53899653d4eSeschrock lastrep.zprl_type = NULL; 539fa9e4066Sahrens for (t = 0; t < toplevels; t++) { 540fa9e4066Sahrens nv = top[t]; 541fa9e4066Sahrens 542fa9e4066Sahrens verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) == 0); 543fa9e4066Sahrens 544fa9e4066Sahrens if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN, 545fa9e4066Sahrens &child, &children) != 0) { 546fa9e4066Sahrens /* 547fa9e4066Sahrens * This is a 'file' or 'disk' vdev. 548fa9e4066Sahrens */ 54999653d4eSeschrock rep.zprl_type = type; 55099653d4eSeschrock rep.zprl_children = 1; 55199653d4eSeschrock rep.zprl_parity = 0; 552fa9e4066Sahrens } else { 553fa9e4066Sahrens uint64_t vdev_size; 554fa9e4066Sahrens 555fa9e4066Sahrens /* 556fa9e4066Sahrens * This is a mirror or RAID-Z vdev. Go through and make 557fa9e4066Sahrens * sure the contents are all the same (files vs. disks), 558fa9e4066Sahrens * keeping track of the number of elements in the 559fa9e4066Sahrens * process. 560fa9e4066Sahrens * 561fa9e4066Sahrens * We also check that the size of each vdev (if it can 562fa9e4066Sahrens * be determined) is the same. 563fa9e4066Sahrens */ 56499653d4eSeschrock rep.zprl_type = type; 56599653d4eSeschrock rep.zprl_children = 0; 56699653d4eSeschrock 56799653d4eSeschrock if (strcmp(type, VDEV_TYPE_RAIDZ) == 0) { 56899653d4eSeschrock verify(nvlist_lookup_uint64(nv, 56999653d4eSeschrock ZPOOL_CONFIG_NPARITY, 57099653d4eSeschrock &rep.zprl_parity) == 0); 57199653d4eSeschrock assert(rep.zprl_parity != 0); 57299653d4eSeschrock } else { 57399653d4eSeschrock rep.zprl_parity = 0; 57499653d4eSeschrock } 575fa9e4066Sahrens 576fa9e4066Sahrens /* 577fa9e4066Sahrens * The 'dontreport' variable indicatest that we've 578fa9e4066Sahrens * already reported an error for this spec, so don't 579fa9e4066Sahrens * bother doing it again. 580fa9e4066Sahrens */ 581fa9e4066Sahrens type = NULL; 582fa9e4066Sahrens dontreport = 0; 583fa9e4066Sahrens vdev_size = -1ULL; 584fa9e4066Sahrens for (c = 0; c < children; c++) { 585fa9e4066Sahrens nvlist_t *cnv = child[c]; 586fa9e4066Sahrens char *path; 587fa9e4066Sahrens struct stat64 statbuf; 588fa9e4066Sahrens uint64_t size = -1ULL; 589fa9e4066Sahrens char *childtype; 590fa9e4066Sahrens int fd, err; 591fa9e4066Sahrens 59299653d4eSeschrock rep.zprl_children++; 593fa9e4066Sahrens 594fa9e4066Sahrens verify(nvlist_lookup_string(cnv, 595fa9e4066Sahrens ZPOOL_CONFIG_TYPE, &childtype) == 0); 59694de1d4cSeschrock 59794de1d4cSeschrock /* 59894de1d4cSeschrock * If this is a a replacing or spare vdev, then 59994de1d4cSeschrock * get the real first child of the vdev. 60094de1d4cSeschrock */ 60194de1d4cSeschrock if (strcmp(childtype, 60294de1d4cSeschrock VDEV_TYPE_REPLACING) == 0 || 60394de1d4cSeschrock strcmp(childtype, VDEV_TYPE_SPARE) == 0) { 60494de1d4cSeschrock nvlist_t **rchild; 60594de1d4cSeschrock uint_t rchildren; 60694de1d4cSeschrock 60794de1d4cSeschrock verify(nvlist_lookup_nvlist_array(cnv, 60894de1d4cSeschrock ZPOOL_CONFIG_CHILDREN, &rchild, 60994de1d4cSeschrock &rchildren) == 0); 61094de1d4cSeschrock assert(rchildren == 2); 61194de1d4cSeschrock cnv = rchild[0]; 61294de1d4cSeschrock 61394de1d4cSeschrock verify(nvlist_lookup_string(cnv, 61494de1d4cSeschrock ZPOOL_CONFIG_TYPE, 61594de1d4cSeschrock &childtype) == 0); 61694de1d4cSeschrock } 61794de1d4cSeschrock 618fa9e4066Sahrens verify(nvlist_lookup_string(cnv, 619fa9e4066Sahrens ZPOOL_CONFIG_PATH, &path) == 0); 620fa9e4066Sahrens 621fa9e4066Sahrens /* 622fa9e4066Sahrens * If we have a raidz/mirror that combines disks 623fa9e4066Sahrens * with files, report it as an error. 624fa9e4066Sahrens */ 625fa9e4066Sahrens if (!dontreport && type != NULL && 626fa9e4066Sahrens strcmp(type, childtype) != 0) { 627fa9e4066Sahrens if (ret != NULL) 628fa9e4066Sahrens free(ret); 629fa9e4066Sahrens ret = NULL; 630fa9e4066Sahrens if (fatal) 631fa9e4066Sahrens vdev_error(gettext( 632fa9e4066Sahrens "mismatched replication " 633fa9e4066Sahrens "level: %s contains both " 634fa9e4066Sahrens "files and devices\n"), 63599653d4eSeschrock rep.zprl_type); 636fa9e4066Sahrens else 637fa9e4066Sahrens return (NULL); 63899653d4eSeschrock dontreport = B_TRUE; 639fa9e4066Sahrens } 640fa9e4066Sahrens 641fa9e4066Sahrens /* 642fa9e4066Sahrens * According to stat(2), the value of 'st_size' 643fa9e4066Sahrens * is undefined for block devices and character 644fa9e4066Sahrens * devices. But there is no effective way to 645fa9e4066Sahrens * determine the real size in userland. 646fa9e4066Sahrens * 647fa9e4066Sahrens * Instead, we'll take advantage of an 648fa9e4066Sahrens * implementation detail of spec_size(). If the 649fa9e4066Sahrens * device is currently open, then we (should) 650fa9e4066Sahrens * return a valid size. 651fa9e4066Sahrens * 652fa9e4066Sahrens * If we still don't get a valid size (indicated 653fa9e4066Sahrens * by a size of 0 or MAXOFFSET_T), then ignore 654fa9e4066Sahrens * this device altogether. 655fa9e4066Sahrens */ 656fa9e4066Sahrens if ((fd = open(path, O_RDONLY)) >= 0) { 657fa9e4066Sahrens err = fstat64(fd, &statbuf); 658fa9e4066Sahrens (void) close(fd); 659fa9e4066Sahrens } else { 660fa9e4066Sahrens err = stat64(path, &statbuf); 661fa9e4066Sahrens } 662fa9e4066Sahrens 663fa9e4066Sahrens if (err != 0 || 664fa9e4066Sahrens statbuf.st_size == 0 || 665fa9e4066Sahrens statbuf.st_size == MAXOFFSET_T) 666fa9e4066Sahrens continue; 667fa9e4066Sahrens 668fa9e4066Sahrens size = statbuf.st_size; 669fa9e4066Sahrens 670fa9e4066Sahrens /* 671fa9e4066Sahrens * Also check the size of each device. If they 672fa9e4066Sahrens * differ, then report an error. 673fa9e4066Sahrens */ 674fa9e4066Sahrens if (!dontreport && vdev_size != -1ULL && 675fa9e4066Sahrens size != vdev_size) { 676fa9e4066Sahrens if (ret != NULL) 677fa9e4066Sahrens free(ret); 678fa9e4066Sahrens ret = NULL; 679fa9e4066Sahrens if (fatal) 680fa9e4066Sahrens vdev_error(gettext( 681fa9e4066Sahrens "%s contains devices of " 682fa9e4066Sahrens "different sizes\n"), 68399653d4eSeschrock rep.zprl_type); 684fa9e4066Sahrens else 685fa9e4066Sahrens return (NULL); 68699653d4eSeschrock dontreport = B_TRUE; 687fa9e4066Sahrens } 688fa9e4066Sahrens 689fa9e4066Sahrens type = childtype; 690fa9e4066Sahrens vdev_size = size; 691fa9e4066Sahrens } 692fa9e4066Sahrens } 693fa9e4066Sahrens 694fa9e4066Sahrens /* 695fa9e4066Sahrens * At this point, we have the replication of the last toplevel 696fa9e4066Sahrens * vdev in 'rep'. Compare it to 'lastrep' to see if its 697fa9e4066Sahrens * different. 698fa9e4066Sahrens */ 69999653d4eSeschrock if (lastrep.zprl_type != NULL) { 70099653d4eSeschrock if (strcmp(lastrep.zprl_type, rep.zprl_type) != 0) { 701fa9e4066Sahrens if (ret != NULL) 702fa9e4066Sahrens free(ret); 703fa9e4066Sahrens ret = NULL; 704fa9e4066Sahrens if (fatal) 705fa9e4066Sahrens vdev_error(gettext( 70699653d4eSeschrock "mismatched replication level: " 70799653d4eSeschrock "both %s and %s vdevs are " 708fa9e4066Sahrens "present\n"), 70999653d4eSeschrock lastrep.zprl_type, rep.zprl_type); 710fa9e4066Sahrens else 711fa9e4066Sahrens return (NULL); 71299653d4eSeschrock } else if (lastrep.zprl_parity != rep.zprl_parity) { 713fa9e4066Sahrens if (ret) 714fa9e4066Sahrens free(ret); 715fa9e4066Sahrens ret = NULL; 716fa9e4066Sahrens if (fatal) 717fa9e4066Sahrens vdev_error(gettext( 71899653d4eSeschrock "mismatched replication level: " 71999653d4eSeschrock "both %llu and %llu device parity " 72099653d4eSeschrock "%s vdevs are present\n"), 72199653d4eSeschrock lastrep.zprl_parity, 72299653d4eSeschrock rep.zprl_parity, 72399653d4eSeschrock rep.zprl_type); 72499653d4eSeschrock else 72599653d4eSeschrock return (NULL); 72699653d4eSeschrock } else if (lastrep.zprl_children != rep.zprl_children) { 72799653d4eSeschrock if (ret) 72899653d4eSeschrock free(ret); 72999653d4eSeschrock ret = NULL; 73099653d4eSeschrock if (fatal) 73199653d4eSeschrock vdev_error(gettext( 73299653d4eSeschrock "mismatched replication level: " 73399653d4eSeschrock "both %llu-way and %llu-way %s " 734fa9e4066Sahrens "vdevs are present\n"), 73599653d4eSeschrock lastrep.zprl_children, 73699653d4eSeschrock rep.zprl_children, 73799653d4eSeschrock rep.zprl_type); 738fa9e4066Sahrens else 739fa9e4066Sahrens return (NULL); 740fa9e4066Sahrens } 741fa9e4066Sahrens } 742fa9e4066Sahrens lastrep = rep; 743fa9e4066Sahrens } 744fa9e4066Sahrens 74599653d4eSeschrock if (ret != NULL) 74699653d4eSeschrock *ret = rep; 747fa9e4066Sahrens 748fa9e4066Sahrens return (ret); 749fa9e4066Sahrens } 750fa9e4066Sahrens 751fa9e4066Sahrens /* 752fa9e4066Sahrens * Check the replication level of the vdev spec against the current pool. Calls 753fa9e4066Sahrens * get_replication() to make sure the new spec is self-consistent. If the pool 754fa9e4066Sahrens * has a consistent replication level, then we ignore any errors. Otherwise, 755fa9e4066Sahrens * report any difference between the two. 756fa9e4066Sahrens */ 757fa9e4066Sahrens int 758fa9e4066Sahrens check_replication(nvlist_t *config, nvlist_t *newroot) 759fa9e4066Sahrens { 760fa9e4066Sahrens replication_level_t *current = NULL, *new; 761fa9e4066Sahrens int ret; 762fa9e4066Sahrens 763fa9e4066Sahrens /* 764fa9e4066Sahrens * If we have a current pool configuration, check to see if it's 765fa9e4066Sahrens * self-consistent. If not, simply return success. 766fa9e4066Sahrens */ 767fa9e4066Sahrens if (config != NULL) { 768fa9e4066Sahrens nvlist_t *nvroot; 769fa9e4066Sahrens 770fa9e4066Sahrens verify(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, 771fa9e4066Sahrens &nvroot) == 0); 77299653d4eSeschrock if ((current = get_replication(nvroot, B_FALSE)) == NULL) 773fa9e4066Sahrens return (0); 774fa9e4066Sahrens } 775fa9e4066Sahrens 776fa9e4066Sahrens /* 777fa9e4066Sahrens * Get the replication level of the new vdev spec, reporting any 778fa9e4066Sahrens * inconsistencies found. 779fa9e4066Sahrens */ 78099653d4eSeschrock if ((new = get_replication(newroot, B_TRUE)) == NULL) { 781fa9e4066Sahrens free(current); 782fa9e4066Sahrens return (-1); 783fa9e4066Sahrens } 784fa9e4066Sahrens 785fa9e4066Sahrens /* 786fa9e4066Sahrens * Check to see if the new vdev spec matches the replication level of 787fa9e4066Sahrens * the current pool. 788fa9e4066Sahrens */ 789fa9e4066Sahrens ret = 0; 790fa9e4066Sahrens if (current != NULL) { 79199653d4eSeschrock if (strcmp(current->zprl_type, new->zprl_type) != 0) { 792fa9e4066Sahrens vdev_error(gettext( 79399653d4eSeschrock "mismatched replication level: pool uses %s " 79499653d4eSeschrock "and new vdev is %s\n"), 79599653d4eSeschrock current->zprl_type, new->zprl_type); 79699653d4eSeschrock ret = -1; 79799653d4eSeschrock } else if (current->zprl_parity != new->zprl_parity) { 79899653d4eSeschrock vdev_error(gettext( 79999653d4eSeschrock "mismatched replication level: pool uses %llu " 80099653d4eSeschrock "device parity and new vdev uses %llu\n"), 80199653d4eSeschrock current->zprl_parity, new->zprl_parity); 80299653d4eSeschrock ret = -1; 80399653d4eSeschrock } else if (current->zprl_children != new->zprl_children) { 80499653d4eSeschrock vdev_error(gettext( 80599653d4eSeschrock "mismatched replication level: pool uses %llu-way " 80699653d4eSeschrock "%s and new vdev uses %llu-way %s\n"), 80799653d4eSeschrock current->zprl_children, current->zprl_type, 80899653d4eSeschrock new->zprl_children, new->zprl_type); 809fa9e4066Sahrens ret = -1; 810fa9e4066Sahrens } 811fa9e4066Sahrens } 812fa9e4066Sahrens 813fa9e4066Sahrens free(new); 814fa9e4066Sahrens if (current != NULL) 815fa9e4066Sahrens free(current); 816fa9e4066Sahrens 817fa9e4066Sahrens return (ret); 818fa9e4066Sahrens } 819fa9e4066Sahrens 820fa9e4066Sahrens /* 821fa9e4066Sahrens * Label an individual disk. The name provided is the short name, stripped of 822fa9e4066Sahrens * any leading /dev path. 823fa9e4066Sahrens */ 824fa9e4066Sahrens int 825fa9e4066Sahrens label_disk(char *name) 826fa9e4066Sahrens { 827fa9e4066Sahrens char path[MAXPATHLEN]; 828fa9e4066Sahrens struct dk_gpt *vtoc; 829fa9e4066Sahrens int fd; 830fa9e4066Sahrens size_t resv = 16384; 831fa9e4066Sahrens 832fa9e4066Sahrens (void) snprintf(path, sizeof (path), "%s/%s%s", RDISK_ROOT, name, 833fa9e4066Sahrens BACKUP_SLICE); 834fa9e4066Sahrens 835fa9e4066Sahrens if ((fd = open(path, O_RDWR | O_NDELAY)) < 0) { 836fa9e4066Sahrens /* 837fa9e4066Sahrens * This shouldn't happen. We've long since verified that this 838fa9e4066Sahrens * is a valid device. 839fa9e4066Sahrens */ 840fa9e4066Sahrens (void) fprintf(stderr, gettext("cannot open '%s': %s\n"), 841fa9e4066Sahrens path, strerror(errno)); 842fa9e4066Sahrens return (-1); 843fa9e4066Sahrens } 844fa9e4066Sahrens 845fa9e4066Sahrens 846fa9e4066Sahrens if (efi_alloc_and_init(fd, 9, &vtoc) != 0) { 847fa9e4066Sahrens /* 848fa9e4066Sahrens * The only way this can fail is if we run out of memory, or we 849fa9e4066Sahrens * were unable to read the disk geometry. 850fa9e4066Sahrens */ 851fa9e4066Sahrens if (errno == ENOMEM) 8525ad82045Snd150628 zpool_no_memory(); 853fa9e4066Sahrens 854fa9e4066Sahrens (void) fprintf(stderr, gettext("cannot label '%s': unable to " 855fa9e4066Sahrens "read disk geometry\n"), name); 856fa9e4066Sahrens (void) close(fd); 857fa9e4066Sahrens return (-1); 858fa9e4066Sahrens } 859fa9e4066Sahrens 860fa9e4066Sahrens vtoc->efi_parts[0].p_start = vtoc->efi_first_u_lba; 861fa9e4066Sahrens vtoc->efi_parts[0].p_size = vtoc->efi_last_u_lba + 1 - 862fa9e4066Sahrens vtoc->efi_first_u_lba - resv; 863fa9e4066Sahrens 864fa9e4066Sahrens /* 865fa9e4066Sahrens * Why we use V_USR: V_BACKUP confuses users, and is considered 866fa9e4066Sahrens * disposable by some EFI utilities (since EFI doesn't have a backup 867fa9e4066Sahrens * slice). V_UNASSIGNED is supposed to be used only for zero size 868fa9e4066Sahrens * partitions, and efi_write() will fail if we use it. V_ROOT, V_BOOT, 869fa9e4066Sahrens * etc. were all pretty specific. V_USR is as close to reality as we 870fa9e4066Sahrens * can get, in the absence of V_OTHER. 871fa9e4066Sahrens */ 872fa9e4066Sahrens vtoc->efi_parts[0].p_tag = V_USR; 873fa9e4066Sahrens (void) strcpy(vtoc->efi_parts[0].p_name, "zfs"); 874fa9e4066Sahrens 875fa9e4066Sahrens vtoc->efi_parts[8].p_start = vtoc->efi_last_u_lba + 1 - resv; 876fa9e4066Sahrens vtoc->efi_parts[8].p_size = resv; 877fa9e4066Sahrens vtoc->efi_parts[8].p_tag = V_RESERVED; 878fa9e4066Sahrens 879fa9e4066Sahrens if (efi_write(fd, vtoc) != 0) { 880fa9e4066Sahrens /* 881fa9e4066Sahrens * Currently, EFI labels are not supported for IDE disks, and it 882fa9e4066Sahrens * is likely that they will not be supported on other drives for 883fa9e4066Sahrens * some time. Print out a helpful error message directing the 884fa9e4066Sahrens * user to manually label the disk and give a specific slice. 885fa9e4066Sahrens */ 886fa9e4066Sahrens (void) fprintf(stderr, gettext("cannot label '%s': failed to " 887fa9e4066Sahrens "write EFI label\n"), name); 888fa9e4066Sahrens (void) fprintf(stderr, gettext("use fdisk(1M) to partition " 889fa9e4066Sahrens "the disk, and provide a specific slice\n")); 890fa9e4066Sahrens (void) close(fd); 89199653d4eSeschrock efi_free(vtoc); 892fa9e4066Sahrens return (-1); 893fa9e4066Sahrens } 894fa9e4066Sahrens 895fa9e4066Sahrens (void) close(fd); 89699653d4eSeschrock efi_free(vtoc); 897fa9e4066Sahrens return (0); 898fa9e4066Sahrens } 899fa9e4066Sahrens 900fa9e4066Sahrens /* 901fa9e4066Sahrens * Go through and find any whole disks in the vdev specification, labelling them 902fa9e4066Sahrens * as appropriate. When constructing the vdev spec, we were unable to open this 903fa9e4066Sahrens * device in order to provide a devid. Now that we have labelled the disk and 904fa9e4066Sahrens * know that slice 0 is valid, we can construct the devid now. 905fa9e4066Sahrens * 906fa9e4066Sahrens * If the disk was already labelled with an EFI label, we will have gotten the 907fa9e4066Sahrens * devid already (because we were able to open the whole disk). Otherwise, we 908fa9e4066Sahrens * need to get the devid after we label the disk. 909fa9e4066Sahrens */ 910fa9e4066Sahrens int 911fa9e4066Sahrens make_disks(nvlist_t *nv) 912fa9e4066Sahrens { 913fa9e4066Sahrens nvlist_t **child; 914fa9e4066Sahrens uint_t c, children; 915fa9e4066Sahrens char *type, *path, *diskname; 916fa9e4066Sahrens char buf[MAXPATHLEN]; 917afefbcddSeschrock uint64_t wholedisk; 918fa9e4066Sahrens int fd; 919fa9e4066Sahrens int ret; 920fa9e4066Sahrens ddi_devid_t devid; 921fa9e4066Sahrens char *minor = NULL, *devid_str = NULL; 922fa9e4066Sahrens 923fa9e4066Sahrens verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) == 0); 924fa9e4066Sahrens 925fa9e4066Sahrens if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN, 926fa9e4066Sahrens &child, &children) != 0) { 927fa9e4066Sahrens 928fa9e4066Sahrens if (strcmp(type, VDEV_TYPE_DISK) != 0) 929fa9e4066Sahrens return (0); 930fa9e4066Sahrens 931fa9e4066Sahrens /* 932fa9e4066Sahrens * We have a disk device. Get the path to the device 933fa9e4066Sahrens * and see if its a whole disk by appending the backup 934fa9e4066Sahrens * slice and stat()ing the device. 935fa9e4066Sahrens */ 936fa9e4066Sahrens verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &path) == 0); 937fa9e4066Sahrens 938afefbcddSeschrock if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK, 939afefbcddSeschrock &wholedisk) != 0 || !wholedisk) 940fa9e4066Sahrens return (0); 941fa9e4066Sahrens 942fa9e4066Sahrens diskname = strrchr(path, '/'); 943fa9e4066Sahrens assert(diskname != NULL); 944fa9e4066Sahrens diskname++; 945fa9e4066Sahrens if (label_disk(diskname) != 0) 946fa9e4066Sahrens return (-1); 947fa9e4066Sahrens 948fa9e4066Sahrens /* 949fa9e4066Sahrens * Fill in the devid, now that we've labeled the disk. 950fa9e4066Sahrens */ 951fa9e4066Sahrens (void) snprintf(buf, sizeof (buf), "%ss0", path); 952fa9e4066Sahrens if ((fd = open(buf, O_RDONLY)) < 0) { 953fa9e4066Sahrens (void) fprintf(stderr, 954fa9e4066Sahrens gettext("cannot open '%s': %s\n"), 955fa9e4066Sahrens buf, strerror(errno)); 956fa9e4066Sahrens return (-1); 957fa9e4066Sahrens } 958fa9e4066Sahrens 959fa9e4066Sahrens if (devid_get(fd, &devid) == 0) { 960fa9e4066Sahrens if (devid_get_minor_name(fd, &minor) == 0 && 961fa9e4066Sahrens (devid_str = devid_str_encode(devid, minor)) != 962fa9e4066Sahrens NULL) { 963fa9e4066Sahrens verify(nvlist_add_string(nv, 964fa9e4066Sahrens ZPOOL_CONFIG_DEVID, devid_str) == 0); 965fa9e4066Sahrens } 966fa9e4066Sahrens if (devid_str != NULL) 967fa9e4066Sahrens devid_str_free(devid_str); 968fa9e4066Sahrens if (minor != NULL) 969fa9e4066Sahrens devid_str_free(minor); 970fa9e4066Sahrens devid_free(devid); 971fa9e4066Sahrens } 972fa9e4066Sahrens 973afefbcddSeschrock /* 974afefbcddSeschrock * Update the path to refer to the 's0' slice. The presence of 975afefbcddSeschrock * the 'whole_disk' field indicates to the CLI that we should 976afefbcddSeschrock * chop off the slice number when displaying the device in 977afefbcddSeschrock * future output. 978afefbcddSeschrock */ 979afefbcddSeschrock verify(nvlist_add_string(nv, ZPOOL_CONFIG_PATH, buf) == 0); 980afefbcddSeschrock 981fa9e4066Sahrens (void) close(fd); 982fa9e4066Sahrens 983fa9e4066Sahrens return (0); 984fa9e4066Sahrens } 985fa9e4066Sahrens 986fa9e4066Sahrens for (c = 0; c < children; c++) 987fa9e4066Sahrens if ((ret = make_disks(child[c])) != 0) 988fa9e4066Sahrens return (ret); 989fa9e4066Sahrens 99099653d4eSeschrock if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_SPARES, 99199653d4eSeschrock &child, &children) == 0) 99299653d4eSeschrock for (c = 0; c < children; c++) 99399653d4eSeschrock if ((ret = make_disks(child[c])) != 0) 99499653d4eSeschrock return (ret); 99599653d4eSeschrock 996fa9e4066Sahrens return (0); 997fa9e4066Sahrens } 998fa9e4066Sahrens 999fa9e4066Sahrens /* 100099653d4eSeschrock * Determine if the given path is a hot spare within the given configuration. 100199653d4eSeschrock */ 100299653d4eSeschrock static boolean_t 100399653d4eSeschrock is_spare(nvlist_t *config, const char *path) 100499653d4eSeschrock { 100599653d4eSeschrock int fd; 100699653d4eSeschrock pool_state_t state; 10073ccfa83cSahrens char *name = NULL; 100899653d4eSeschrock nvlist_t *label; 100999653d4eSeschrock uint64_t guid, spareguid; 101099653d4eSeschrock nvlist_t *nvroot; 101199653d4eSeschrock nvlist_t **spares; 101299653d4eSeschrock uint_t i, nspares; 101399653d4eSeschrock boolean_t inuse; 101499653d4eSeschrock 101599653d4eSeschrock if ((fd = open(path, O_RDONLY)) < 0) 101699653d4eSeschrock return (B_FALSE); 101799653d4eSeschrock 101899653d4eSeschrock if (zpool_in_use(g_zfs, fd, &state, &name, &inuse) != 0 || 101999653d4eSeschrock !inuse || 102099653d4eSeschrock state != POOL_STATE_SPARE || 102199653d4eSeschrock zpool_read_label(fd, &label) != 0) { 10223ccfa83cSahrens free(name); 102399653d4eSeschrock (void) close(fd); 102499653d4eSeschrock return (B_FALSE); 102599653d4eSeschrock } 10263ccfa83cSahrens free(name); 102799653d4eSeschrock 102899653d4eSeschrock (void) close(fd); 102999653d4eSeschrock verify(nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, &guid) == 0); 103099653d4eSeschrock nvlist_free(label); 103199653d4eSeschrock 103299653d4eSeschrock verify(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, 103399653d4eSeschrock &nvroot) == 0); 103499653d4eSeschrock if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES, 103599653d4eSeschrock &spares, &nspares) == 0) { 103699653d4eSeschrock for (i = 0; i < nspares; i++) { 103799653d4eSeschrock verify(nvlist_lookup_uint64(spares[i], 103899653d4eSeschrock ZPOOL_CONFIG_GUID, &spareguid) == 0); 103999653d4eSeschrock if (spareguid == guid) 104099653d4eSeschrock return (B_TRUE); 104199653d4eSeschrock } 104299653d4eSeschrock } 104399653d4eSeschrock 104499653d4eSeschrock return (B_FALSE); 104599653d4eSeschrock } 104699653d4eSeschrock 104799653d4eSeschrock /* 1048fa9e4066Sahrens * Go through and find any devices that are in use. We rely on libdiskmgt for 1049fa9e4066Sahrens * the majority of this task. 1050fa9e4066Sahrens */ 1051fa9e4066Sahrens int 105299653d4eSeschrock check_in_use(nvlist_t *config, nvlist_t *nv, int force, int isreplacing, 105399653d4eSeschrock int isspare) 1054fa9e4066Sahrens { 1055fa9e4066Sahrens nvlist_t **child; 1056fa9e4066Sahrens uint_t c, children; 1057fa9e4066Sahrens char *type, *path; 1058fa9e4066Sahrens int ret; 105999653d4eSeschrock char buf[MAXPATHLEN]; 106099653d4eSeschrock uint64_t wholedisk; 1061fa9e4066Sahrens 1062fa9e4066Sahrens verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_TYPE, &type) == 0); 1063fa9e4066Sahrens 1064fa9e4066Sahrens if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN, 1065fa9e4066Sahrens &child, &children) != 0) { 1066fa9e4066Sahrens 1067fa9e4066Sahrens verify(nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &path) == 0); 1068fa9e4066Sahrens 106999653d4eSeschrock /* 107099653d4eSeschrock * As a generic check, we look to see if this is a replace of a 107199653d4eSeschrock * hot spare within the same pool. If so, we allow it 107299653d4eSeschrock * regardless of what libdiskmgt or zpool_in_use() says. 107399653d4eSeschrock */ 107499653d4eSeschrock if (isreplacing) { 107599653d4eSeschrock if (nvlist_lookup_uint64(nv, ZPOOL_CONFIG_WHOLE_DISK, 107699653d4eSeschrock &wholedisk) == 0 && wholedisk) 107799653d4eSeschrock (void) snprintf(buf, sizeof (buf), "%ss0", 107899653d4eSeschrock path); 107999653d4eSeschrock else 108099653d4eSeschrock (void) strlcpy(buf, path, sizeof (buf)); 108199653d4eSeschrock if (is_spare(config, buf)) 108299653d4eSeschrock return (0); 108399653d4eSeschrock } 108499653d4eSeschrock 1085fa9e4066Sahrens if (strcmp(type, VDEV_TYPE_DISK) == 0) 108699653d4eSeschrock ret = check_device(path, force, isspare); 1087fa9e4066Sahrens 1088fa9e4066Sahrens if (strcmp(type, VDEV_TYPE_FILE) == 0) 108999653d4eSeschrock ret = check_file(path, force, isspare); 1090fa9e4066Sahrens 1091fa9e4066Sahrens return (ret); 1092fa9e4066Sahrens } 1093fa9e4066Sahrens 1094fa9e4066Sahrens for (c = 0; c < children; c++) 109599653d4eSeschrock if ((ret = check_in_use(config, child[c], force, 109699653d4eSeschrock isreplacing, B_FALSE)) != 0) 109799653d4eSeschrock return (ret); 109899653d4eSeschrock 109999653d4eSeschrock if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_SPARES, 110099653d4eSeschrock &child, &children) == 0) 110199653d4eSeschrock for (c = 0; c < children; c++) 110299653d4eSeschrock if ((ret = check_in_use(config, child[c], force, 110399653d4eSeschrock isreplacing, B_TRUE)) != 0) 1104fa9e4066Sahrens return (ret); 1105fa9e4066Sahrens 1106fa9e4066Sahrens return (0); 1107fa9e4066Sahrens } 1108fa9e4066Sahrens 110999653d4eSeschrock const char * 111099653d4eSeschrock is_grouping(const char *type, int *mindev) 111199653d4eSeschrock { 111299653d4eSeschrock if (strcmp(type, "raidz") == 0 || strcmp(type, "raidz1") == 0) { 111399653d4eSeschrock if (mindev != NULL) 111499653d4eSeschrock *mindev = 2; 111599653d4eSeschrock return (VDEV_TYPE_RAIDZ); 111699653d4eSeschrock } 111799653d4eSeschrock 111899653d4eSeschrock if (strcmp(type, "raidz2") == 0) { 111999653d4eSeschrock if (mindev != NULL) 112099653d4eSeschrock *mindev = 3; 112199653d4eSeschrock return (VDEV_TYPE_RAIDZ); 112299653d4eSeschrock } 112399653d4eSeschrock 112499653d4eSeschrock if (strcmp(type, "mirror") == 0) { 112599653d4eSeschrock if (mindev != NULL) 112699653d4eSeschrock *mindev = 2; 112799653d4eSeschrock return (VDEV_TYPE_MIRROR); 112899653d4eSeschrock } 112999653d4eSeschrock 113099653d4eSeschrock if (strcmp(type, "spare") == 0) { 113199653d4eSeschrock if (mindev != NULL) 113299653d4eSeschrock *mindev = 1; 113399653d4eSeschrock return (VDEV_TYPE_SPARE); 113499653d4eSeschrock } 113599653d4eSeschrock 113699653d4eSeschrock return (NULL); 113799653d4eSeschrock } 113899653d4eSeschrock 1139fa9e4066Sahrens /* 1140fa9e4066Sahrens * Construct a syntactically valid vdev specification, 1141fa9e4066Sahrens * and ensure that all devices and files exist and can be opened. 1142fa9e4066Sahrens * Note: we don't bother freeing anything in the error paths 1143fa9e4066Sahrens * because the program is just going to exit anyway. 1144fa9e4066Sahrens */ 1145fa9e4066Sahrens nvlist_t * 1146fa9e4066Sahrens construct_spec(int argc, char **argv) 1147fa9e4066Sahrens { 114899653d4eSeschrock nvlist_t *nvroot, *nv, **top, **spares; 114999653d4eSeschrock int t, toplevels, mindev, nspares; 115099653d4eSeschrock const char *type; 1151fa9e4066Sahrens 1152fa9e4066Sahrens top = NULL; 1153fa9e4066Sahrens toplevels = 0; 115499653d4eSeschrock spares = NULL; 115599653d4eSeschrock nspares = 0; 1156fa9e4066Sahrens 1157fa9e4066Sahrens while (argc > 0) { 1158fa9e4066Sahrens nv = NULL; 1159fa9e4066Sahrens 1160fa9e4066Sahrens /* 1161fa9e4066Sahrens * If it's a mirror or raidz, the subsequent arguments are 1162fa9e4066Sahrens * its leaves -- until we encounter the next mirror or raidz. 1163fa9e4066Sahrens */ 116499653d4eSeschrock if ((type = is_grouping(argv[0], &mindev)) != NULL) { 1165fa9e4066Sahrens nvlist_t **child = NULL; 116699653d4eSeschrock int c, children = 0; 116799653d4eSeschrock 116899653d4eSeschrock if (strcmp(type, VDEV_TYPE_SPARE) == 0 && 116999653d4eSeschrock spares != NULL) { 117099653d4eSeschrock (void) fprintf(stderr, gettext("invalid vdev " 117199653d4eSeschrock "specification: 'spare' can be " 117299653d4eSeschrock "specified only once\n")); 117399653d4eSeschrock return (NULL); 117499653d4eSeschrock } 1175fa9e4066Sahrens 1176fa9e4066Sahrens for (c = 1; c < argc; c++) { 117799653d4eSeschrock if (is_grouping(argv[c], NULL) != NULL) 1178fa9e4066Sahrens break; 1179fa9e4066Sahrens children++; 1180fa9e4066Sahrens child = realloc(child, 1181fa9e4066Sahrens children * sizeof (nvlist_t *)); 1182fa9e4066Sahrens if (child == NULL) 11835ad82045Snd150628 zpool_no_memory(); 1184fa9e4066Sahrens if ((nv = make_leaf_vdev(argv[c])) == NULL) 1185fa9e4066Sahrens return (NULL); 1186fa9e4066Sahrens child[children - 1] = nv; 1187fa9e4066Sahrens } 1188fa9e4066Sahrens 118999653d4eSeschrock if (children < mindev) { 119099653d4eSeschrock (void) fprintf(stderr, gettext("invalid vdev " 119199653d4eSeschrock "specification: %s requires at least %d " 119299653d4eSeschrock "devices\n"), argv[0], mindev); 1193fa9e4066Sahrens return (NULL); 1194fa9e4066Sahrens } 1195fa9e4066Sahrens 119699653d4eSeschrock argc -= c; 119799653d4eSeschrock argv += c; 119899653d4eSeschrock 119999653d4eSeschrock if (strcmp(type, VDEV_TYPE_SPARE) == 0) { 120099653d4eSeschrock spares = child; 120199653d4eSeschrock nspares = children; 120299653d4eSeschrock continue; 120399653d4eSeschrock } else { 120499653d4eSeschrock verify(nvlist_alloc(&nv, NV_UNIQUE_NAME, 120599653d4eSeschrock 0) == 0); 1206fa9e4066Sahrens verify(nvlist_add_string(nv, ZPOOL_CONFIG_TYPE, 1207fa9e4066Sahrens type) == 0); 120899653d4eSeschrock if (strcmp(type, VDEV_TYPE_RAIDZ) == 0) { 120999653d4eSeschrock verify(nvlist_add_uint64(nv, 121099653d4eSeschrock ZPOOL_CONFIG_NPARITY, 121199653d4eSeschrock mindev - 1) == 0); 121299653d4eSeschrock } 1213fa9e4066Sahrens verify(nvlist_add_nvlist_array(nv, 121499653d4eSeschrock ZPOOL_CONFIG_CHILDREN, child, 121599653d4eSeschrock children) == 0); 1216fa9e4066Sahrens 1217fa9e4066Sahrens for (c = 0; c < children; c++) 1218fa9e4066Sahrens nvlist_free(child[c]); 1219fa9e4066Sahrens free(child); 122099653d4eSeschrock } 1221fa9e4066Sahrens } else { 1222fa9e4066Sahrens /* 1223fa9e4066Sahrens * We have a device. Pass off to make_leaf_vdev() to 1224fa9e4066Sahrens * construct the appropriate nvlist describing the vdev. 1225fa9e4066Sahrens */ 1226fa9e4066Sahrens if ((nv = make_leaf_vdev(argv[0])) == NULL) 1227fa9e4066Sahrens return (NULL); 1228fa9e4066Sahrens argc--; 1229fa9e4066Sahrens argv++; 1230fa9e4066Sahrens } 1231fa9e4066Sahrens 1232fa9e4066Sahrens toplevels++; 1233fa9e4066Sahrens top = realloc(top, toplevels * sizeof (nvlist_t *)); 1234fa9e4066Sahrens if (top == NULL) 12355ad82045Snd150628 zpool_no_memory(); 1236fa9e4066Sahrens top[toplevels - 1] = nv; 1237fa9e4066Sahrens } 1238fa9e4066Sahrens 123999653d4eSeschrock if (toplevels == 0 && nspares == 0) { 124099653d4eSeschrock (void) fprintf(stderr, gettext("invalid vdev " 124199653d4eSeschrock "specification: at least one toplevel vdev must be " 124299653d4eSeschrock "specified\n")); 124399653d4eSeschrock return (NULL); 124499653d4eSeschrock } 124599653d4eSeschrock 1246fa9e4066Sahrens /* 1247fa9e4066Sahrens * Finally, create nvroot and add all top-level vdevs to it. 1248fa9e4066Sahrens */ 1249fa9e4066Sahrens verify(nvlist_alloc(&nvroot, NV_UNIQUE_NAME, 0) == 0); 1250fa9e4066Sahrens verify(nvlist_add_string(nvroot, ZPOOL_CONFIG_TYPE, 1251fa9e4066Sahrens VDEV_TYPE_ROOT) == 0); 1252fa9e4066Sahrens verify(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN, 1253fa9e4066Sahrens top, toplevels) == 0); 125499653d4eSeschrock if (nspares != 0) 125599653d4eSeschrock verify(nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES, 125699653d4eSeschrock spares, nspares) == 0); 1257fa9e4066Sahrens 1258fa9e4066Sahrens for (t = 0; t < toplevels; t++) 1259fa9e4066Sahrens nvlist_free(top[t]); 126099653d4eSeschrock for (t = 0; t < nspares; t++) 126199653d4eSeschrock nvlist_free(spares[t]); 126299653d4eSeschrock if (spares) 126399653d4eSeschrock free(spares); 1264fa9e4066Sahrens free(top); 1265fa9e4066Sahrens 1266fa9e4066Sahrens return (nvroot); 1267fa9e4066Sahrens } 1268fa9e4066Sahrens 1269fa9e4066Sahrens /* 1270fa9e4066Sahrens * Get and validate the contents of the given vdev specification. This ensures 1271fa9e4066Sahrens * that the nvlist returned is well-formed, that all the devices exist, and that 1272fa9e4066Sahrens * they are not currently in use by any other known consumer. The 'poolconfig' 1273fa9e4066Sahrens * parameter is the current configuration of the pool when adding devices 1274fa9e4066Sahrens * existing pool, and is used to perform additional checks, such as changing the 1275fa9e4066Sahrens * replication level of the pool. It can be 'NULL' to indicate that this is a 1276fa9e4066Sahrens * new pool. The 'force' flag controls whether devices should be forcefully 1277fa9e4066Sahrens * added, even if they appear in use. 1278fa9e4066Sahrens */ 1279fa9e4066Sahrens nvlist_t * 1280fa9e4066Sahrens make_root_vdev(nvlist_t *poolconfig, int force, int check_rep, 128199653d4eSeschrock boolean_t isreplacing, int argc, char **argv) 1282fa9e4066Sahrens { 1283fa9e4066Sahrens nvlist_t *newroot; 1284fa9e4066Sahrens 1285fa9e4066Sahrens is_force = force; 1286fa9e4066Sahrens 1287fa9e4066Sahrens /* 1288fa9e4066Sahrens * Construct the vdev specification. If this is successful, we know 1289fa9e4066Sahrens * that we have a valid specification, and that all devices can be 1290fa9e4066Sahrens * opened. 1291fa9e4066Sahrens */ 1292fa9e4066Sahrens if ((newroot = construct_spec(argc, argv)) == NULL) 1293fa9e4066Sahrens return (NULL); 1294fa9e4066Sahrens 1295fa9e4066Sahrens /* 1296fa9e4066Sahrens * Validate each device to make sure that its not shared with another 1297fa9e4066Sahrens * subsystem. We do this even if 'force' is set, because there are some 1298fa9e4066Sahrens * uses (such as a dedicated dump device) that even '-f' cannot 1299fa9e4066Sahrens * override. 1300fa9e4066Sahrens */ 130199653d4eSeschrock if (check_in_use(poolconfig, newroot, force, isreplacing, 130299653d4eSeschrock B_FALSE) != 0) { 1303fa9e4066Sahrens nvlist_free(newroot); 1304fa9e4066Sahrens return (NULL); 1305fa9e4066Sahrens } 1306fa9e4066Sahrens 1307fa9e4066Sahrens /* 1308fa9e4066Sahrens * Check the replication level of the given vdevs and report any errors 1309fa9e4066Sahrens * found. We include the existing pool spec, if any, as we need to 1310fa9e4066Sahrens * catch changes against the existing replication level. 1311fa9e4066Sahrens */ 1312fa9e4066Sahrens if (check_rep && check_replication(poolconfig, newroot) != 0) { 1313fa9e4066Sahrens nvlist_free(newroot); 1314fa9e4066Sahrens return (NULL); 1315fa9e4066Sahrens } 1316fa9e4066Sahrens 1317fa9e4066Sahrens /* 1318fa9e4066Sahrens * Run through the vdev specification and label any whole disks found. 1319fa9e4066Sahrens */ 1320fa9e4066Sahrens if (make_disks(newroot) != 0) { 1321fa9e4066Sahrens nvlist_free(newroot); 1322fa9e4066Sahrens return (NULL); 1323fa9e4066Sahrens } 1324fa9e4066Sahrens 1325fa9e4066Sahrens return (newroot); 1326fa9e4066Sahrens } 1327