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 2010 Sun Microsystems, Inc. All rights reserved. 24 * Use is subject to license terms. 25 */ 26 27 #include <ctype.h> 28 #include <errno.h> 29 #include <libintl.h> 30 #include <math.h> 31 #include <stdio.h> 32 #include <stdlib.h> 33 #include <strings.h> 34 #include <unistd.h> 35 #include <stddef.h> 36 #include <zone.h> 37 #include <fcntl.h> 38 #include <sys/mntent.h> 39 #include <sys/mount.h> 40 #include <priv.h> 41 #include <pwd.h> 42 #include <grp.h> 43 #include <stddef.h> 44 #include <ucred.h> 45 #include <idmap.h> 46 #include <aclutils.h> 47 #include <directory.h> 48 49 #include <sys/dnode.h> 50 #include <sys/spa.h> 51 #include <sys/zap.h> 52 #include <libzfs.h> 53 54 #include "zfs_namecheck.h" 55 #include "zfs_prop.h" 56 #include "libzfs_impl.h" 57 #include "zfs_deleg.h" 58 59 static int userquota_propname_decode(const char *propname, boolean_t zoned, 60 zfs_userquota_prop_t *typep, char *domain, int domainlen, uint64_t *ridp); 61 62 /* 63 * Given a single type (not a mask of types), return the type in a human 64 * readable form. 65 */ 66 const char * 67 zfs_type_to_name(zfs_type_t type) 68 { 69 switch (type) { 70 case ZFS_TYPE_FILESYSTEM: 71 return (dgettext(TEXT_DOMAIN, "filesystem")); 72 case ZFS_TYPE_SNAPSHOT: 73 return (dgettext(TEXT_DOMAIN, "snapshot")); 74 case ZFS_TYPE_VOLUME: 75 return (dgettext(TEXT_DOMAIN, "volume")); 76 } 77 78 return (NULL); 79 } 80 81 /* 82 * Given a path and mask of ZFS types, return a string describing this dataset. 83 * This is used when we fail to open a dataset and we cannot get an exact type. 84 * We guess what the type would have been based on the path and the mask of 85 * acceptable types. 86 */ 87 static const char * 88 path_to_str(const char *path, int types) 89 { 90 /* 91 * When given a single type, always report the exact type. 92 */ 93 if (types == ZFS_TYPE_SNAPSHOT) 94 return (dgettext(TEXT_DOMAIN, "snapshot")); 95 if (types == ZFS_TYPE_FILESYSTEM) 96 return (dgettext(TEXT_DOMAIN, "filesystem")); 97 if (types == ZFS_TYPE_VOLUME) 98 return (dgettext(TEXT_DOMAIN, "volume")); 99 100 /* 101 * The user is requesting more than one type of dataset. If this is the 102 * case, consult the path itself. If we're looking for a snapshot, and 103 * a '@' is found, then report it as "snapshot". Otherwise, remove the 104 * snapshot attribute and try again. 105 */ 106 if (types & ZFS_TYPE_SNAPSHOT) { 107 if (strchr(path, '@') != NULL) 108 return (dgettext(TEXT_DOMAIN, "snapshot")); 109 return (path_to_str(path, types & ~ZFS_TYPE_SNAPSHOT)); 110 } 111 112 /* 113 * The user has requested either filesystems or volumes. 114 * We have no way of knowing a priori what type this would be, so always 115 * report it as "filesystem" or "volume", our two primitive types. 116 */ 117 if (types & ZFS_TYPE_FILESYSTEM) 118 return (dgettext(TEXT_DOMAIN, "filesystem")); 119 120 assert(types & ZFS_TYPE_VOLUME); 121 return (dgettext(TEXT_DOMAIN, "volume")); 122 } 123 124 /* 125 * Validate a ZFS path. This is used even before trying to open the dataset, to 126 * provide a more meaningful error message. We call zfs_error_aux() to 127 * explain exactly why the name was not valid. 128 */ 129 static int 130 zfs_validate_name(libzfs_handle_t *hdl, const char *path, int type, 131 boolean_t modifying) 132 { 133 namecheck_err_t why; 134 char what; 135 136 if (dataset_namecheck(path, &why, &what) != 0) { 137 if (hdl != NULL) { 138 switch (why) { 139 case NAME_ERR_TOOLONG: 140 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 141 "name is too long")); 142 break; 143 144 case NAME_ERR_LEADING_SLASH: 145 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 146 "leading slash in name")); 147 break; 148 149 case NAME_ERR_EMPTY_COMPONENT: 150 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 151 "empty component in name")); 152 break; 153 154 case NAME_ERR_TRAILING_SLASH: 155 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 156 "trailing slash in name")); 157 break; 158 159 case NAME_ERR_INVALCHAR: 160 zfs_error_aux(hdl, 161 dgettext(TEXT_DOMAIN, "invalid character " 162 "'%c' in name"), what); 163 break; 164 165 case NAME_ERR_MULTIPLE_AT: 166 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 167 "multiple '@' delimiters in name")); 168 break; 169 170 case NAME_ERR_NOLETTER: 171 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 172 "pool doesn't begin with a letter")); 173 break; 174 175 case NAME_ERR_RESERVED: 176 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 177 "name is reserved")); 178 break; 179 180 case NAME_ERR_DISKLIKE: 181 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 182 "reserved disk name")); 183 break; 184 } 185 } 186 187 return (0); 188 } 189 190 if (!(type & ZFS_TYPE_SNAPSHOT) && strchr(path, '@') != NULL) { 191 if (hdl != NULL) 192 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 193 "snapshot delimiter '@' in filesystem name")); 194 return (0); 195 } 196 197 if (type == ZFS_TYPE_SNAPSHOT && strchr(path, '@') == NULL) { 198 if (hdl != NULL) 199 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 200 "missing '@' delimiter in snapshot name")); 201 return (0); 202 } 203 204 if (modifying && strchr(path, '%') != NULL) { 205 if (hdl != NULL) 206 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 207 "invalid character %c in name"), '%'); 208 return (0); 209 } 210 211 return (-1); 212 } 213 214 int 215 zfs_name_valid(const char *name, zfs_type_t type) 216 { 217 if (type == ZFS_TYPE_POOL) 218 return (zpool_name_valid(NULL, B_FALSE, name)); 219 return (zfs_validate_name(NULL, name, type, B_FALSE)); 220 } 221 222 /* 223 * This function takes the raw DSL properties, and filters out the user-defined 224 * properties into a separate nvlist. 225 */ 226 static nvlist_t * 227 process_user_props(zfs_handle_t *zhp, nvlist_t *props) 228 { 229 libzfs_handle_t *hdl = zhp->zfs_hdl; 230 nvpair_t *elem; 231 nvlist_t *propval; 232 nvlist_t *nvl; 233 234 if (nvlist_alloc(&nvl, NV_UNIQUE_NAME, 0) != 0) { 235 (void) no_memory(hdl); 236 return (NULL); 237 } 238 239 elem = NULL; 240 while ((elem = nvlist_next_nvpair(props, elem)) != NULL) { 241 if (!zfs_prop_user(nvpair_name(elem))) 242 continue; 243 244 verify(nvpair_value_nvlist(elem, &propval) == 0); 245 if (nvlist_add_nvlist(nvl, nvpair_name(elem), propval) != 0) { 246 nvlist_free(nvl); 247 (void) no_memory(hdl); 248 return (NULL); 249 } 250 } 251 252 return (nvl); 253 } 254 255 static zpool_handle_t * 256 zpool_add_handle(zfs_handle_t *zhp, const char *pool_name) 257 { 258 libzfs_handle_t *hdl = zhp->zfs_hdl; 259 zpool_handle_t *zph; 260 261 if ((zph = zpool_open_canfail(hdl, pool_name)) != NULL) { 262 if (hdl->libzfs_pool_handles != NULL) 263 zph->zpool_next = hdl->libzfs_pool_handles; 264 hdl->libzfs_pool_handles = zph; 265 } 266 return (zph); 267 } 268 269 static zpool_handle_t * 270 zpool_find_handle(zfs_handle_t *zhp, const char *pool_name, int len) 271 { 272 libzfs_handle_t *hdl = zhp->zfs_hdl; 273 zpool_handle_t *zph = hdl->libzfs_pool_handles; 274 275 while ((zph != NULL) && 276 (strncmp(pool_name, zpool_get_name(zph), len) != 0)) 277 zph = zph->zpool_next; 278 return (zph); 279 } 280 281 /* 282 * Returns a handle to the pool that contains the provided dataset. 283 * If a handle to that pool already exists then that handle is returned. 284 * Otherwise, a new handle is created and added to the list of handles. 285 */ 286 static zpool_handle_t * 287 zpool_handle(zfs_handle_t *zhp) 288 { 289 char *pool_name; 290 int len; 291 zpool_handle_t *zph; 292 293 len = strcspn(zhp->zfs_name, "/@") + 1; 294 pool_name = zfs_alloc(zhp->zfs_hdl, len); 295 (void) strlcpy(pool_name, zhp->zfs_name, len); 296 297 zph = zpool_find_handle(zhp, pool_name, len); 298 if (zph == NULL) 299 zph = zpool_add_handle(zhp, pool_name); 300 301 free(pool_name); 302 return (zph); 303 } 304 305 void 306 zpool_free_handles(libzfs_handle_t *hdl) 307 { 308 zpool_handle_t *next, *zph = hdl->libzfs_pool_handles; 309 310 while (zph != NULL) { 311 next = zph->zpool_next; 312 zpool_close(zph); 313 zph = next; 314 } 315 hdl->libzfs_pool_handles = NULL; 316 } 317 318 /* 319 * Utility function to gather stats (objset and zpl) for the given object. 320 */ 321 static int 322 get_stats_ioctl(zfs_handle_t *zhp, zfs_cmd_t *zc) 323 { 324 libzfs_handle_t *hdl = zhp->zfs_hdl; 325 326 (void) strlcpy(zc->zc_name, zhp->zfs_name, sizeof (zc->zc_name)); 327 328 while (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_STATS, zc) != 0) { 329 if (errno == ENOMEM) { 330 if (zcmd_expand_dst_nvlist(hdl, zc) != 0) { 331 return (-1); 332 } 333 } else { 334 return (-1); 335 } 336 } 337 return (0); 338 } 339 340 /* 341 * Utility function to get the received properties of the given object. 342 */ 343 static int 344 get_recvd_props_ioctl(zfs_handle_t *zhp) 345 { 346 libzfs_handle_t *hdl = zhp->zfs_hdl; 347 nvlist_t *recvdprops; 348 zfs_cmd_t zc = { 0 }; 349 int err; 350 351 if (zcmd_alloc_dst_nvlist(hdl, &zc, 0) != 0) 352 return (-1); 353 354 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 355 356 while (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_RECVD_PROPS, &zc) != 0) { 357 if (errno == ENOMEM) { 358 if (zcmd_expand_dst_nvlist(hdl, &zc) != 0) { 359 return (-1); 360 } 361 } else { 362 zcmd_free_nvlists(&zc); 363 return (-1); 364 } 365 } 366 367 err = zcmd_read_dst_nvlist(zhp->zfs_hdl, &zc, &recvdprops); 368 zcmd_free_nvlists(&zc); 369 if (err != 0) 370 return (-1); 371 372 nvlist_free(zhp->zfs_recvd_props); 373 zhp->zfs_recvd_props = recvdprops; 374 375 return (0); 376 } 377 378 static int 379 put_stats_zhdl(zfs_handle_t *zhp, zfs_cmd_t *zc) 380 { 381 nvlist_t *allprops, *userprops; 382 383 zhp->zfs_dmustats = zc->zc_objset_stats; /* structure assignment */ 384 385 if (zcmd_read_dst_nvlist(zhp->zfs_hdl, zc, &allprops) != 0) { 386 return (-1); 387 } 388 389 /* 390 * XXX Why do we store the user props separately, in addition to 391 * storing them in zfs_props? 392 */ 393 if ((userprops = process_user_props(zhp, allprops)) == NULL) { 394 nvlist_free(allprops); 395 return (-1); 396 } 397 398 nvlist_free(zhp->zfs_props); 399 nvlist_free(zhp->zfs_user_props); 400 401 zhp->zfs_props = allprops; 402 zhp->zfs_user_props = userprops; 403 404 return (0); 405 } 406 407 static int 408 get_stats(zfs_handle_t *zhp) 409 { 410 int rc = 0; 411 zfs_cmd_t zc = { 0 }; 412 413 if (zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0) 414 return (-1); 415 if (get_stats_ioctl(zhp, &zc) != 0) 416 rc = -1; 417 else if (put_stats_zhdl(zhp, &zc) != 0) 418 rc = -1; 419 zcmd_free_nvlists(&zc); 420 return (rc); 421 } 422 423 /* 424 * Refresh the properties currently stored in the handle. 425 */ 426 void 427 zfs_refresh_properties(zfs_handle_t *zhp) 428 { 429 (void) get_stats(zhp); 430 } 431 432 /* 433 * Makes a handle from the given dataset name. Used by zfs_open() and 434 * zfs_iter_* to create child handles on the fly. 435 */ 436 static int 437 make_dataset_handle_common(zfs_handle_t *zhp, zfs_cmd_t *zc) 438 { 439 if (put_stats_zhdl(zhp, zc) != 0) 440 return (-1); 441 442 /* 443 * We've managed to open the dataset and gather statistics. Determine 444 * the high-level type. 445 */ 446 if (zhp->zfs_dmustats.dds_type == DMU_OST_ZVOL) 447 zhp->zfs_head_type = ZFS_TYPE_VOLUME; 448 else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZFS) 449 zhp->zfs_head_type = ZFS_TYPE_FILESYSTEM; 450 else 451 abort(); 452 453 if (zhp->zfs_dmustats.dds_is_snapshot) 454 zhp->zfs_type = ZFS_TYPE_SNAPSHOT; 455 else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZVOL) 456 zhp->zfs_type = ZFS_TYPE_VOLUME; 457 else if (zhp->zfs_dmustats.dds_type == DMU_OST_ZFS) 458 zhp->zfs_type = ZFS_TYPE_FILESYSTEM; 459 else 460 abort(); /* we should never see any other types */ 461 462 zhp->zpool_hdl = zpool_handle(zhp); 463 return (0); 464 } 465 466 zfs_handle_t * 467 make_dataset_handle(libzfs_handle_t *hdl, const char *path) 468 { 469 zfs_cmd_t zc = { 0 }; 470 471 zfs_handle_t *zhp = calloc(sizeof (zfs_handle_t), 1); 472 473 if (zhp == NULL) 474 return (NULL); 475 476 zhp->zfs_hdl = hdl; 477 (void) strlcpy(zhp->zfs_name, path, sizeof (zhp->zfs_name)); 478 if (zcmd_alloc_dst_nvlist(hdl, &zc, 0) != 0) { 479 free(zhp); 480 return (NULL); 481 } 482 if (get_stats_ioctl(zhp, &zc) == -1) { 483 zcmd_free_nvlists(&zc); 484 free(zhp); 485 return (NULL); 486 } 487 if (make_dataset_handle_common(zhp, &zc) == -1) { 488 free(zhp); 489 zhp = NULL; 490 } 491 zcmd_free_nvlists(&zc); 492 return (zhp); 493 } 494 495 static zfs_handle_t * 496 make_dataset_handle_zc(libzfs_handle_t *hdl, zfs_cmd_t *zc) 497 { 498 zfs_handle_t *zhp = calloc(sizeof (zfs_handle_t), 1); 499 500 if (zhp == NULL) 501 return (NULL); 502 503 zhp->zfs_hdl = hdl; 504 (void) strlcpy(zhp->zfs_name, zc->zc_name, sizeof (zhp->zfs_name)); 505 if (make_dataset_handle_common(zhp, zc) == -1) { 506 free(zhp); 507 return (NULL); 508 } 509 return (zhp); 510 } 511 512 /* 513 * Opens the given snapshot, filesystem, or volume. The 'types' 514 * argument is a mask of acceptable types. The function will print an 515 * appropriate error message and return NULL if it can't be opened. 516 */ 517 zfs_handle_t * 518 zfs_open(libzfs_handle_t *hdl, const char *path, int types) 519 { 520 zfs_handle_t *zhp; 521 char errbuf[1024]; 522 523 (void) snprintf(errbuf, sizeof (errbuf), 524 dgettext(TEXT_DOMAIN, "cannot open '%s'"), path); 525 526 /* 527 * Validate the name before we even try to open it. 528 */ 529 if (!zfs_validate_name(hdl, path, ZFS_TYPE_DATASET, B_FALSE)) { 530 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 531 "invalid dataset name")); 532 (void) zfs_error(hdl, EZFS_INVALIDNAME, errbuf); 533 return (NULL); 534 } 535 536 /* 537 * Try to get stats for the dataset, which will tell us if it exists. 538 */ 539 errno = 0; 540 if ((zhp = make_dataset_handle(hdl, path)) == NULL) { 541 (void) zfs_standard_error(hdl, errno, errbuf); 542 return (NULL); 543 } 544 545 if (!(types & zhp->zfs_type)) { 546 (void) zfs_error(hdl, EZFS_BADTYPE, errbuf); 547 zfs_close(zhp); 548 return (NULL); 549 } 550 551 return (zhp); 552 } 553 554 /* 555 * Release a ZFS handle. Nothing to do but free the associated memory. 556 */ 557 void 558 zfs_close(zfs_handle_t *zhp) 559 { 560 if (zhp->zfs_mntopts) 561 free(zhp->zfs_mntopts); 562 nvlist_free(zhp->zfs_props); 563 nvlist_free(zhp->zfs_user_props); 564 nvlist_free(zhp->zfs_recvd_props); 565 free(zhp); 566 } 567 568 typedef struct mnttab_node { 569 struct mnttab mtn_mt; 570 avl_node_t mtn_node; 571 } mnttab_node_t; 572 573 static int 574 libzfs_mnttab_cache_compare(const void *arg1, const void *arg2) 575 { 576 const mnttab_node_t *mtn1 = arg1; 577 const mnttab_node_t *mtn2 = arg2; 578 int rv; 579 580 rv = strcmp(mtn1->mtn_mt.mnt_special, mtn2->mtn_mt.mnt_special); 581 582 if (rv == 0) 583 return (0); 584 return (rv > 0 ? 1 : -1); 585 } 586 587 void 588 libzfs_mnttab_init(libzfs_handle_t *hdl) 589 { 590 assert(avl_numnodes(&hdl->libzfs_mnttab_cache) == 0); 591 avl_create(&hdl->libzfs_mnttab_cache, libzfs_mnttab_cache_compare, 592 sizeof (mnttab_node_t), offsetof(mnttab_node_t, mtn_node)); 593 } 594 595 void 596 libzfs_mnttab_update(libzfs_handle_t *hdl) 597 { 598 struct mnttab entry; 599 600 rewind(hdl->libzfs_mnttab); 601 while (getmntent(hdl->libzfs_mnttab, &entry) == 0) { 602 mnttab_node_t *mtn; 603 604 if (strcmp(entry.mnt_fstype, MNTTYPE_ZFS) != 0) 605 continue; 606 mtn = zfs_alloc(hdl, sizeof (mnttab_node_t)); 607 mtn->mtn_mt.mnt_special = zfs_strdup(hdl, entry.mnt_special); 608 mtn->mtn_mt.mnt_mountp = zfs_strdup(hdl, entry.mnt_mountp); 609 mtn->mtn_mt.mnt_fstype = zfs_strdup(hdl, entry.mnt_fstype); 610 mtn->mtn_mt.mnt_mntopts = zfs_strdup(hdl, entry.mnt_mntopts); 611 avl_add(&hdl->libzfs_mnttab_cache, mtn); 612 } 613 } 614 615 void 616 libzfs_mnttab_fini(libzfs_handle_t *hdl) 617 { 618 void *cookie = NULL; 619 mnttab_node_t *mtn; 620 621 while (mtn = avl_destroy_nodes(&hdl->libzfs_mnttab_cache, &cookie)) { 622 free(mtn->mtn_mt.mnt_special); 623 free(mtn->mtn_mt.mnt_mountp); 624 free(mtn->mtn_mt.mnt_fstype); 625 free(mtn->mtn_mt.mnt_mntopts); 626 free(mtn); 627 } 628 avl_destroy(&hdl->libzfs_mnttab_cache); 629 } 630 631 void 632 libzfs_mnttab_cache(libzfs_handle_t *hdl, boolean_t enable) 633 { 634 hdl->libzfs_mnttab_enable = enable; 635 } 636 637 int 638 libzfs_mnttab_find(libzfs_handle_t *hdl, const char *fsname, 639 struct mnttab *entry) 640 { 641 mnttab_node_t find; 642 mnttab_node_t *mtn; 643 644 if (!hdl->libzfs_mnttab_enable) { 645 struct mnttab srch = { 0 }; 646 647 if (avl_numnodes(&hdl->libzfs_mnttab_cache)) 648 libzfs_mnttab_fini(hdl); 649 rewind(hdl->libzfs_mnttab); 650 srch.mnt_special = (char *)fsname; 651 srch.mnt_fstype = MNTTYPE_ZFS; 652 if (getmntany(hdl->libzfs_mnttab, entry, &srch) == 0) 653 return (0); 654 else 655 return (ENOENT); 656 } 657 658 if (avl_numnodes(&hdl->libzfs_mnttab_cache) == 0) 659 libzfs_mnttab_update(hdl); 660 661 find.mtn_mt.mnt_special = (char *)fsname; 662 mtn = avl_find(&hdl->libzfs_mnttab_cache, &find, NULL); 663 if (mtn) { 664 *entry = mtn->mtn_mt; 665 return (0); 666 } 667 return (ENOENT); 668 } 669 670 void 671 libzfs_mnttab_add(libzfs_handle_t *hdl, const char *special, 672 const char *mountp, const char *mntopts) 673 { 674 mnttab_node_t *mtn; 675 676 if (avl_numnodes(&hdl->libzfs_mnttab_cache) == 0) 677 return; 678 mtn = zfs_alloc(hdl, sizeof (mnttab_node_t)); 679 mtn->mtn_mt.mnt_special = zfs_strdup(hdl, special); 680 mtn->mtn_mt.mnt_mountp = zfs_strdup(hdl, mountp); 681 mtn->mtn_mt.mnt_fstype = zfs_strdup(hdl, MNTTYPE_ZFS); 682 mtn->mtn_mt.mnt_mntopts = zfs_strdup(hdl, mntopts); 683 avl_add(&hdl->libzfs_mnttab_cache, mtn); 684 } 685 686 void 687 libzfs_mnttab_remove(libzfs_handle_t *hdl, const char *fsname) 688 { 689 mnttab_node_t find; 690 mnttab_node_t *ret; 691 692 find.mtn_mt.mnt_special = (char *)fsname; 693 if (ret = avl_find(&hdl->libzfs_mnttab_cache, (void *)&find, NULL)) { 694 avl_remove(&hdl->libzfs_mnttab_cache, ret); 695 free(ret->mtn_mt.mnt_special); 696 free(ret->mtn_mt.mnt_mountp); 697 free(ret->mtn_mt.mnt_fstype); 698 free(ret->mtn_mt.mnt_mntopts); 699 free(ret); 700 } 701 } 702 703 int 704 zfs_spa_version(zfs_handle_t *zhp, int *spa_version) 705 { 706 zpool_handle_t *zpool_handle = zhp->zpool_hdl; 707 708 if (zpool_handle == NULL) 709 return (-1); 710 711 *spa_version = zpool_get_prop_int(zpool_handle, 712 ZPOOL_PROP_VERSION, NULL); 713 return (0); 714 } 715 716 /* 717 * The choice of reservation property depends on the SPA version. 718 */ 719 static int 720 zfs_which_resv_prop(zfs_handle_t *zhp, zfs_prop_t *resv_prop) 721 { 722 int spa_version; 723 724 if (zfs_spa_version(zhp, &spa_version) < 0) 725 return (-1); 726 727 if (spa_version >= SPA_VERSION_REFRESERVATION) 728 *resv_prop = ZFS_PROP_REFRESERVATION; 729 else 730 *resv_prop = ZFS_PROP_RESERVATION; 731 732 return (0); 733 } 734 735 /* 736 * Given an nvlist of properties to set, validates that they are correct, and 737 * parses any numeric properties (index, boolean, etc) if they are specified as 738 * strings. 739 */ 740 nvlist_t * 741 zfs_valid_proplist(libzfs_handle_t *hdl, zfs_type_t type, nvlist_t *nvl, 742 uint64_t zoned, zfs_handle_t *zhp, const char *errbuf) 743 { 744 nvpair_t *elem; 745 uint64_t intval; 746 char *strval; 747 zfs_prop_t prop; 748 nvlist_t *ret; 749 int chosen_normal = -1; 750 int chosen_utf = -1; 751 752 if (nvlist_alloc(&ret, NV_UNIQUE_NAME, 0) != 0) { 753 (void) no_memory(hdl); 754 return (NULL); 755 } 756 757 /* 758 * Make sure this property is valid and applies to this type. 759 */ 760 761 elem = NULL; 762 while ((elem = nvlist_next_nvpair(nvl, elem)) != NULL) { 763 const char *propname = nvpair_name(elem); 764 765 prop = zfs_name_to_prop(propname); 766 if (prop == ZPROP_INVAL && zfs_prop_user(propname)) { 767 /* 768 * This is a user property: make sure it's a 769 * string, and that it's less than ZAP_MAXNAMELEN. 770 */ 771 if (nvpair_type(elem) != DATA_TYPE_STRING) { 772 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 773 "'%s' must be a string"), propname); 774 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 775 goto error; 776 } 777 778 if (strlen(nvpair_name(elem)) >= ZAP_MAXNAMELEN) { 779 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 780 "property name '%s' is too long"), 781 propname); 782 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 783 goto error; 784 } 785 786 (void) nvpair_value_string(elem, &strval); 787 if (nvlist_add_string(ret, propname, strval) != 0) { 788 (void) no_memory(hdl); 789 goto error; 790 } 791 continue; 792 } 793 794 /* 795 * Currently, only user properties can be modified on 796 * snapshots. 797 */ 798 if (type == ZFS_TYPE_SNAPSHOT) { 799 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 800 "this property can not be modified for snapshots")); 801 (void) zfs_error(hdl, EZFS_PROPTYPE, errbuf); 802 goto error; 803 } 804 805 if (prop == ZPROP_INVAL && zfs_prop_userquota(propname)) { 806 zfs_userquota_prop_t uqtype; 807 char newpropname[128]; 808 char domain[128]; 809 uint64_t rid; 810 uint64_t valary[3]; 811 812 if (userquota_propname_decode(propname, zoned, 813 &uqtype, domain, sizeof (domain), &rid) != 0) { 814 zfs_error_aux(hdl, 815 dgettext(TEXT_DOMAIN, 816 "'%s' has an invalid user/group name"), 817 propname); 818 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 819 goto error; 820 } 821 822 if (uqtype != ZFS_PROP_USERQUOTA && 823 uqtype != ZFS_PROP_GROUPQUOTA) { 824 zfs_error_aux(hdl, 825 dgettext(TEXT_DOMAIN, "'%s' is readonly"), 826 propname); 827 (void) zfs_error(hdl, EZFS_PROPREADONLY, 828 errbuf); 829 goto error; 830 } 831 832 if (nvpair_type(elem) == DATA_TYPE_STRING) { 833 (void) nvpair_value_string(elem, &strval); 834 if (strcmp(strval, "none") == 0) { 835 intval = 0; 836 } else if (zfs_nicestrtonum(hdl, 837 strval, &intval) != 0) { 838 (void) zfs_error(hdl, 839 EZFS_BADPROP, errbuf); 840 goto error; 841 } 842 } else if (nvpair_type(elem) == 843 DATA_TYPE_UINT64) { 844 (void) nvpair_value_uint64(elem, &intval); 845 if (intval == 0) { 846 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 847 "use 'none' to disable " 848 "userquota/groupquota")); 849 goto error; 850 } 851 } else { 852 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 853 "'%s' must be a number"), propname); 854 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 855 goto error; 856 } 857 858 /* 859 * Encode the prop name as 860 * userquota@<hex-rid>-domain, to make it easy 861 * for the kernel to decode. 862 */ 863 (void) snprintf(newpropname, sizeof (newpropname), 864 "%s%llx-%s", zfs_userquota_prop_prefixes[uqtype], 865 (longlong_t)rid, domain); 866 valary[0] = uqtype; 867 valary[1] = rid; 868 valary[2] = intval; 869 if (nvlist_add_uint64_array(ret, newpropname, 870 valary, 3) != 0) { 871 (void) no_memory(hdl); 872 goto error; 873 } 874 continue; 875 } 876 877 if (prop == ZPROP_INVAL) { 878 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 879 "invalid property '%s'"), propname); 880 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 881 goto error; 882 } 883 884 if (!zfs_prop_valid_for_type(prop, type)) { 885 zfs_error_aux(hdl, 886 dgettext(TEXT_DOMAIN, "'%s' does not " 887 "apply to datasets of this type"), propname); 888 (void) zfs_error(hdl, EZFS_PROPTYPE, errbuf); 889 goto error; 890 } 891 892 if (zfs_prop_readonly(prop) && 893 (!zfs_prop_setonce(prop) || zhp != NULL)) { 894 zfs_error_aux(hdl, 895 dgettext(TEXT_DOMAIN, "'%s' is readonly"), 896 propname); 897 (void) zfs_error(hdl, EZFS_PROPREADONLY, errbuf); 898 goto error; 899 } 900 901 if (zprop_parse_value(hdl, elem, prop, type, ret, 902 &strval, &intval, errbuf) != 0) 903 goto error; 904 905 /* 906 * Perform some additional checks for specific properties. 907 */ 908 switch (prop) { 909 case ZFS_PROP_VERSION: 910 { 911 int version; 912 913 if (zhp == NULL) 914 break; 915 version = zfs_prop_get_int(zhp, ZFS_PROP_VERSION); 916 if (intval < version) { 917 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 918 "Can not downgrade; already at version %u"), 919 version); 920 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 921 goto error; 922 } 923 break; 924 } 925 926 case ZFS_PROP_RECORDSIZE: 927 case ZFS_PROP_VOLBLOCKSIZE: 928 /* must be power of two within SPA_{MIN,MAX}BLOCKSIZE */ 929 if (intval < SPA_MINBLOCKSIZE || 930 intval > SPA_MAXBLOCKSIZE || !ISP2(intval)) { 931 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 932 "'%s' must be power of 2 from %u " 933 "to %uk"), propname, 934 (uint_t)SPA_MINBLOCKSIZE, 935 (uint_t)SPA_MAXBLOCKSIZE >> 10); 936 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 937 goto error; 938 } 939 break; 940 941 case ZFS_PROP_SHAREISCSI: 942 if (strcmp(strval, "off") != 0 && 943 strcmp(strval, "on") != 0 && 944 strcmp(strval, "type=disk") != 0) { 945 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 946 "'%s' must be 'on', 'off', or 'type=disk'"), 947 propname); 948 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 949 goto error; 950 } 951 952 break; 953 954 case ZFS_PROP_MLSLABEL: 955 { 956 /* 957 * Verify the mlslabel string and convert to 958 * internal hex label string. 959 */ 960 961 m_label_t *new_sl; 962 char *hex = NULL; /* internal label string */ 963 964 /* Default value is already OK. */ 965 if (strcasecmp(strval, ZFS_MLSLABEL_DEFAULT) == 0) 966 break; 967 968 /* Verify the label can be converted to binary form */ 969 if (((new_sl = m_label_alloc(MAC_LABEL)) == NULL) || 970 (str_to_label(strval, &new_sl, MAC_LABEL, 971 L_NO_CORRECTION, NULL) == -1)) { 972 goto badlabel; 973 } 974 975 /* Now translate to hex internal label string */ 976 if (label_to_str(new_sl, &hex, M_INTERNAL, 977 DEF_NAMES) != 0) { 978 if (hex) 979 free(hex); 980 goto badlabel; 981 } 982 m_label_free(new_sl); 983 984 /* If string is already in internal form, we're done. */ 985 if (strcmp(strval, hex) == 0) { 986 free(hex); 987 break; 988 } 989 990 /* Replace the label string with the internal form. */ 991 (void) nvlist_remove(ret, zfs_prop_to_name(prop), 992 DATA_TYPE_STRING); 993 verify(nvlist_add_string(ret, zfs_prop_to_name(prop), 994 hex) == 0); 995 free(hex); 996 997 break; 998 999 badlabel: 1000 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1001 "invalid mlslabel '%s'"), strval); 1002 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 1003 m_label_free(new_sl); /* OK if null */ 1004 goto error; 1005 1006 } 1007 1008 case ZFS_PROP_MOUNTPOINT: 1009 { 1010 namecheck_err_t why; 1011 1012 if (strcmp(strval, ZFS_MOUNTPOINT_NONE) == 0 || 1013 strcmp(strval, ZFS_MOUNTPOINT_LEGACY) == 0) 1014 break; 1015 1016 if (mountpoint_namecheck(strval, &why)) { 1017 switch (why) { 1018 case NAME_ERR_LEADING_SLASH: 1019 zfs_error_aux(hdl, 1020 dgettext(TEXT_DOMAIN, 1021 "'%s' must be an absolute path, " 1022 "'none', or 'legacy'"), propname); 1023 break; 1024 case NAME_ERR_TOOLONG: 1025 zfs_error_aux(hdl, 1026 dgettext(TEXT_DOMAIN, 1027 "component of '%s' is too long"), 1028 propname); 1029 break; 1030 } 1031 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 1032 goto error; 1033 } 1034 } 1035 1036 /*FALLTHRU*/ 1037 1038 case ZFS_PROP_SHARESMB: 1039 case ZFS_PROP_SHARENFS: 1040 /* 1041 * For the mountpoint and sharenfs or sharesmb 1042 * properties, check if it can be set in a 1043 * global/non-global zone based on 1044 * the zoned property value: 1045 * 1046 * global zone non-global zone 1047 * -------------------------------------------------- 1048 * zoned=on mountpoint (no) mountpoint (yes) 1049 * sharenfs (no) sharenfs (no) 1050 * sharesmb (no) sharesmb (no) 1051 * 1052 * zoned=off mountpoint (yes) N/A 1053 * sharenfs (yes) 1054 * sharesmb (yes) 1055 */ 1056 if (zoned) { 1057 if (getzoneid() == GLOBAL_ZONEID) { 1058 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1059 "'%s' cannot be set on " 1060 "dataset in a non-global zone"), 1061 propname); 1062 (void) zfs_error(hdl, EZFS_ZONED, 1063 errbuf); 1064 goto error; 1065 } else if (prop == ZFS_PROP_SHARENFS || 1066 prop == ZFS_PROP_SHARESMB) { 1067 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1068 "'%s' cannot be set in " 1069 "a non-global zone"), propname); 1070 (void) zfs_error(hdl, EZFS_ZONED, 1071 errbuf); 1072 goto error; 1073 } 1074 } else if (getzoneid() != GLOBAL_ZONEID) { 1075 /* 1076 * If zoned property is 'off', this must be in 1077 * a global zone. If not, something is wrong. 1078 */ 1079 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1080 "'%s' cannot be set while dataset " 1081 "'zoned' property is set"), propname); 1082 (void) zfs_error(hdl, EZFS_ZONED, errbuf); 1083 goto error; 1084 } 1085 1086 /* 1087 * At this point, it is legitimate to set the 1088 * property. Now we want to make sure that the 1089 * property value is valid if it is sharenfs. 1090 */ 1091 if ((prop == ZFS_PROP_SHARENFS || 1092 prop == ZFS_PROP_SHARESMB) && 1093 strcmp(strval, "on") != 0 && 1094 strcmp(strval, "off") != 0) { 1095 zfs_share_proto_t proto; 1096 1097 if (prop == ZFS_PROP_SHARESMB) 1098 proto = PROTO_SMB; 1099 else 1100 proto = PROTO_NFS; 1101 1102 /* 1103 * Must be an valid sharing protocol 1104 * option string so init the libshare 1105 * in order to enable the parser and 1106 * then parse the options. We use the 1107 * control API since we don't care about 1108 * the current configuration and don't 1109 * want the overhead of loading it 1110 * until we actually do something. 1111 */ 1112 1113 if (zfs_init_libshare(hdl, 1114 SA_INIT_CONTROL_API) != SA_OK) { 1115 /* 1116 * An error occurred so we can't do 1117 * anything 1118 */ 1119 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1120 "'%s' cannot be set: problem " 1121 "in share initialization"), 1122 propname); 1123 (void) zfs_error(hdl, EZFS_BADPROP, 1124 errbuf); 1125 goto error; 1126 } 1127 1128 if (zfs_parse_options(strval, proto) != SA_OK) { 1129 /* 1130 * There was an error in parsing so 1131 * deal with it by issuing an error 1132 * message and leaving after 1133 * uninitializing the the libshare 1134 * interface. 1135 */ 1136 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1137 "'%s' cannot be set to invalid " 1138 "options"), propname); 1139 (void) zfs_error(hdl, EZFS_BADPROP, 1140 errbuf); 1141 zfs_uninit_libshare(hdl); 1142 goto error; 1143 } 1144 zfs_uninit_libshare(hdl); 1145 } 1146 1147 break; 1148 case ZFS_PROP_UTF8ONLY: 1149 chosen_utf = (int)intval; 1150 break; 1151 case ZFS_PROP_NORMALIZE: 1152 chosen_normal = (int)intval; 1153 break; 1154 } 1155 1156 /* 1157 * For changes to existing volumes, we have some additional 1158 * checks to enforce. 1159 */ 1160 if (type == ZFS_TYPE_VOLUME && zhp != NULL) { 1161 uint64_t volsize = zfs_prop_get_int(zhp, 1162 ZFS_PROP_VOLSIZE); 1163 uint64_t blocksize = zfs_prop_get_int(zhp, 1164 ZFS_PROP_VOLBLOCKSIZE); 1165 char buf[64]; 1166 1167 switch (prop) { 1168 case ZFS_PROP_RESERVATION: 1169 case ZFS_PROP_REFRESERVATION: 1170 if (intval > volsize) { 1171 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1172 "'%s' is greater than current " 1173 "volume size"), propname); 1174 (void) zfs_error(hdl, EZFS_BADPROP, 1175 errbuf); 1176 goto error; 1177 } 1178 break; 1179 1180 case ZFS_PROP_VOLSIZE: 1181 if (intval % blocksize != 0) { 1182 zfs_nicenum(blocksize, buf, 1183 sizeof (buf)); 1184 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1185 "'%s' must be a multiple of " 1186 "volume block size (%s)"), 1187 propname, buf); 1188 (void) zfs_error(hdl, EZFS_BADPROP, 1189 errbuf); 1190 goto error; 1191 } 1192 1193 if (intval == 0) { 1194 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1195 "'%s' cannot be zero"), 1196 propname); 1197 (void) zfs_error(hdl, EZFS_BADPROP, 1198 errbuf); 1199 goto error; 1200 } 1201 break; 1202 } 1203 } 1204 } 1205 1206 /* 1207 * If normalization was chosen, but no UTF8 choice was made, 1208 * enforce rejection of non-UTF8 names. 1209 * 1210 * If normalization was chosen, but rejecting non-UTF8 names 1211 * was explicitly not chosen, it is an error. 1212 */ 1213 if (chosen_normal > 0 && chosen_utf < 0) { 1214 if (nvlist_add_uint64(ret, 1215 zfs_prop_to_name(ZFS_PROP_UTF8ONLY), 1) != 0) { 1216 (void) no_memory(hdl); 1217 goto error; 1218 } 1219 } else if (chosen_normal > 0 && chosen_utf == 0) { 1220 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1221 "'%s' must be set 'on' if normalization chosen"), 1222 zfs_prop_to_name(ZFS_PROP_UTF8ONLY)); 1223 (void) zfs_error(hdl, EZFS_BADPROP, errbuf); 1224 goto error; 1225 } 1226 1227 /* 1228 * If this is an existing volume, and someone is setting the volsize, 1229 * make sure that it matches the reservation, or add it if necessary. 1230 */ 1231 if (zhp != NULL && type == ZFS_TYPE_VOLUME && 1232 nvlist_lookup_uint64(ret, zfs_prop_to_name(ZFS_PROP_VOLSIZE), 1233 &intval) == 0) { 1234 uint64_t old_volsize = zfs_prop_get_int(zhp, 1235 ZFS_PROP_VOLSIZE); 1236 uint64_t old_reservation; 1237 uint64_t new_reservation; 1238 zfs_prop_t resv_prop; 1239 1240 if (zfs_which_resv_prop(zhp, &resv_prop) < 0) 1241 goto error; 1242 old_reservation = zfs_prop_get_int(zhp, resv_prop); 1243 1244 if (old_volsize == old_reservation && 1245 nvlist_lookup_uint64(ret, zfs_prop_to_name(resv_prop), 1246 &new_reservation) != 0) { 1247 if (nvlist_add_uint64(ret, 1248 zfs_prop_to_name(resv_prop), intval) != 0) { 1249 (void) no_memory(hdl); 1250 goto error; 1251 } 1252 } 1253 } 1254 return (ret); 1255 1256 error: 1257 nvlist_free(ret); 1258 return (NULL); 1259 } 1260 1261 void 1262 zfs_setprop_error(libzfs_handle_t *hdl, zfs_prop_t prop, int err, 1263 char *errbuf) 1264 { 1265 switch (err) { 1266 1267 case ENOSPC: 1268 /* 1269 * For quotas and reservations, ENOSPC indicates 1270 * something different; setting a quota or reservation 1271 * doesn't use any disk space. 1272 */ 1273 switch (prop) { 1274 case ZFS_PROP_QUOTA: 1275 case ZFS_PROP_REFQUOTA: 1276 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1277 "size is less than current used or " 1278 "reserved space")); 1279 (void) zfs_error(hdl, EZFS_PROPSPACE, errbuf); 1280 break; 1281 1282 case ZFS_PROP_RESERVATION: 1283 case ZFS_PROP_REFRESERVATION: 1284 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1285 "size is greater than available space")); 1286 (void) zfs_error(hdl, EZFS_PROPSPACE, errbuf); 1287 break; 1288 1289 default: 1290 (void) zfs_standard_error(hdl, err, errbuf); 1291 break; 1292 } 1293 break; 1294 1295 case EBUSY: 1296 (void) zfs_standard_error(hdl, EBUSY, errbuf); 1297 break; 1298 1299 case EROFS: 1300 (void) zfs_error(hdl, EZFS_DSREADONLY, errbuf); 1301 break; 1302 1303 case ENOTSUP: 1304 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1305 "pool and or dataset must be upgraded to set this " 1306 "property or value")); 1307 (void) zfs_error(hdl, EZFS_BADVERSION, errbuf); 1308 break; 1309 1310 case ERANGE: 1311 if (prop == ZFS_PROP_COMPRESSION) { 1312 (void) zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1313 "property setting is not allowed on " 1314 "bootable datasets")); 1315 (void) zfs_error(hdl, EZFS_NOTSUP, errbuf); 1316 } else { 1317 (void) zfs_standard_error(hdl, err, errbuf); 1318 } 1319 break; 1320 1321 case EOVERFLOW: 1322 /* 1323 * This platform can't address a volume this big. 1324 */ 1325 #ifdef _ILP32 1326 if (prop == ZFS_PROP_VOLSIZE) { 1327 (void) zfs_error(hdl, EZFS_VOLTOOBIG, errbuf); 1328 break; 1329 } 1330 #endif 1331 /* FALLTHROUGH */ 1332 default: 1333 (void) zfs_standard_error(hdl, err, errbuf); 1334 } 1335 } 1336 1337 /* 1338 * Given a property name and value, set the property for the given dataset. 1339 */ 1340 int 1341 zfs_prop_set(zfs_handle_t *zhp, const char *propname, const char *propval) 1342 { 1343 zfs_cmd_t zc = { 0 }; 1344 int ret = -1; 1345 prop_changelist_t *cl = NULL; 1346 char errbuf[1024]; 1347 libzfs_handle_t *hdl = zhp->zfs_hdl; 1348 nvlist_t *nvl = NULL, *realprops; 1349 zfs_prop_t prop; 1350 boolean_t do_prefix; 1351 uint64_t idx; 1352 1353 (void) snprintf(errbuf, sizeof (errbuf), 1354 dgettext(TEXT_DOMAIN, "cannot set property for '%s'"), 1355 zhp->zfs_name); 1356 1357 if (nvlist_alloc(&nvl, NV_UNIQUE_NAME, 0) != 0 || 1358 nvlist_add_string(nvl, propname, propval) != 0) { 1359 (void) no_memory(hdl); 1360 goto error; 1361 } 1362 1363 if ((realprops = zfs_valid_proplist(hdl, zhp->zfs_type, nvl, 1364 zfs_prop_get_int(zhp, ZFS_PROP_ZONED), zhp, errbuf)) == NULL) 1365 goto error; 1366 1367 nvlist_free(nvl); 1368 nvl = realprops; 1369 1370 prop = zfs_name_to_prop(propname); 1371 1372 if ((cl = changelist_gather(zhp, prop, 0, 0)) == NULL) 1373 goto error; 1374 1375 if (prop == ZFS_PROP_MOUNTPOINT && changelist_haszonedchild(cl)) { 1376 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1377 "child dataset with inherited mountpoint is used " 1378 "in a non-global zone")); 1379 ret = zfs_error(hdl, EZFS_ZONED, errbuf); 1380 goto error; 1381 } 1382 1383 /* 1384 * If the dataset's canmount property is being set to noauto, 1385 * then we want to prevent unmounting & remounting it. 1386 */ 1387 do_prefix = !((prop == ZFS_PROP_CANMOUNT) && 1388 (zprop_string_to_index(prop, propval, &idx, 1389 ZFS_TYPE_DATASET) == 0) && (idx == ZFS_CANMOUNT_NOAUTO)); 1390 1391 if (do_prefix && (ret = changelist_prefix(cl)) != 0) 1392 goto error; 1393 1394 /* 1395 * Execute the corresponding ioctl() to set this property. 1396 */ 1397 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 1398 1399 if (zcmd_write_src_nvlist(hdl, &zc, nvl) != 0) 1400 goto error; 1401 1402 ret = zfs_ioctl(hdl, ZFS_IOC_SET_PROP, &zc); 1403 1404 if (ret != 0) { 1405 zfs_setprop_error(hdl, prop, errno, errbuf); 1406 } else { 1407 if (do_prefix) 1408 ret = changelist_postfix(cl); 1409 1410 /* 1411 * Refresh the statistics so the new property value 1412 * is reflected. 1413 */ 1414 if (ret == 0) 1415 (void) get_stats(zhp); 1416 } 1417 1418 error: 1419 nvlist_free(nvl); 1420 zcmd_free_nvlists(&zc); 1421 if (cl) 1422 changelist_free(cl); 1423 return (ret); 1424 } 1425 1426 /* 1427 * Given a property, inherit the value from the parent dataset, or if received 1428 * is TRUE, revert to the received value, if any. 1429 */ 1430 int 1431 zfs_prop_inherit(zfs_handle_t *zhp, const char *propname, boolean_t received) 1432 { 1433 zfs_cmd_t zc = { 0 }; 1434 int ret; 1435 prop_changelist_t *cl; 1436 libzfs_handle_t *hdl = zhp->zfs_hdl; 1437 char errbuf[1024]; 1438 zfs_prop_t prop; 1439 1440 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 1441 "cannot inherit %s for '%s'"), propname, zhp->zfs_name); 1442 1443 zc.zc_cookie = received; 1444 if ((prop = zfs_name_to_prop(propname)) == ZPROP_INVAL) { 1445 /* 1446 * For user properties, the amount of work we have to do is very 1447 * small, so just do it here. 1448 */ 1449 if (!zfs_prop_user(propname)) { 1450 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1451 "invalid property")); 1452 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 1453 } 1454 1455 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 1456 (void) strlcpy(zc.zc_value, propname, sizeof (zc.zc_value)); 1457 1458 if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_INHERIT_PROP, &zc) != 0) 1459 return (zfs_standard_error(hdl, errno, errbuf)); 1460 1461 return (0); 1462 } 1463 1464 /* 1465 * Verify that this property is inheritable. 1466 */ 1467 if (zfs_prop_readonly(prop)) 1468 return (zfs_error(hdl, EZFS_PROPREADONLY, errbuf)); 1469 1470 if (!zfs_prop_inheritable(prop) && !received) 1471 return (zfs_error(hdl, EZFS_PROPNONINHERIT, errbuf)); 1472 1473 /* 1474 * Check to see if the value applies to this type 1475 */ 1476 if (!zfs_prop_valid_for_type(prop, zhp->zfs_type)) 1477 return (zfs_error(hdl, EZFS_PROPTYPE, errbuf)); 1478 1479 /* 1480 * Normalize the name, to get rid of shorthand abbrevations. 1481 */ 1482 propname = zfs_prop_to_name(prop); 1483 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 1484 (void) strlcpy(zc.zc_value, propname, sizeof (zc.zc_value)); 1485 1486 if (prop == ZFS_PROP_MOUNTPOINT && getzoneid() == GLOBAL_ZONEID && 1487 zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) { 1488 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1489 "dataset is used in a non-global zone")); 1490 return (zfs_error(hdl, EZFS_ZONED, errbuf)); 1491 } 1492 1493 /* 1494 * Determine datasets which will be affected by this change, if any. 1495 */ 1496 if ((cl = changelist_gather(zhp, prop, 0, 0)) == NULL) 1497 return (-1); 1498 1499 if (prop == ZFS_PROP_MOUNTPOINT && changelist_haszonedchild(cl)) { 1500 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1501 "child dataset with inherited mountpoint is used " 1502 "in a non-global zone")); 1503 ret = zfs_error(hdl, EZFS_ZONED, errbuf); 1504 goto error; 1505 } 1506 1507 if ((ret = changelist_prefix(cl)) != 0) 1508 goto error; 1509 1510 if ((ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_INHERIT_PROP, &zc)) != 0) { 1511 return (zfs_standard_error(hdl, errno, errbuf)); 1512 } else { 1513 1514 if ((ret = changelist_postfix(cl)) != 0) 1515 goto error; 1516 1517 /* 1518 * Refresh the statistics so the new property is reflected. 1519 */ 1520 (void) get_stats(zhp); 1521 } 1522 1523 error: 1524 changelist_free(cl); 1525 return (ret); 1526 } 1527 1528 /* 1529 * True DSL properties are stored in an nvlist. The following two functions 1530 * extract them appropriately. 1531 */ 1532 static uint64_t 1533 getprop_uint64(zfs_handle_t *zhp, zfs_prop_t prop, char **source) 1534 { 1535 nvlist_t *nv; 1536 uint64_t value; 1537 1538 *source = NULL; 1539 if (nvlist_lookup_nvlist(zhp->zfs_props, 1540 zfs_prop_to_name(prop), &nv) == 0) { 1541 verify(nvlist_lookup_uint64(nv, ZPROP_VALUE, &value) == 0); 1542 (void) nvlist_lookup_string(nv, ZPROP_SOURCE, source); 1543 } else { 1544 verify(!zhp->zfs_props_table || 1545 zhp->zfs_props_table[prop] == B_TRUE); 1546 value = zfs_prop_default_numeric(prop); 1547 *source = ""; 1548 } 1549 1550 return (value); 1551 } 1552 1553 static char * 1554 getprop_string(zfs_handle_t *zhp, zfs_prop_t prop, char **source) 1555 { 1556 nvlist_t *nv; 1557 char *value; 1558 1559 *source = NULL; 1560 if (nvlist_lookup_nvlist(zhp->zfs_props, 1561 zfs_prop_to_name(prop), &nv) == 0) { 1562 verify(nvlist_lookup_string(nv, ZPROP_VALUE, &value) == 0); 1563 (void) nvlist_lookup_string(nv, ZPROP_SOURCE, source); 1564 } else { 1565 verify(!zhp->zfs_props_table || 1566 zhp->zfs_props_table[prop] == B_TRUE); 1567 if ((value = (char *)zfs_prop_default_string(prop)) == NULL) 1568 value = ""; 1569 *source = ""; 1570 } 1571 1572 return (value); 1573 } 1574 1575 static boolean_t 1576 zfs_is_recvd_props_mode(zfs_handle_t *zhp) 1577 { 1578 return (zhp->zfs_props == zhp->zfs_recvd_props); 1579 } 1580 1581 static void 1582 zfs_set_recvd_props_mode(zfs_handle_t *zhp, uint64_t *cookie) 1583 { 1584 *cookie = (uint64_t)(uintptr_t)zhp->zfs_props; 1585 zhp->zfs_props = zhp->zfs_recvd_props; 1586 } 1587 1588 static void 1589 zfs_unset_recvd_props_mode(zfs_handle_t *zhp, uint64_t *cookie) 1590 { 1591 zhp->zfs_props = (nvlist_t *)(uintptr_t)*cookie; 1592 *cookie = 0; 1593 } 1594 1595 /* 1596 * Internal function for getting a numeric property. Both zfs_prop_get() and 1597 * zfs_prop_get_int() are built using this interface. 1598 * 1599 * Certain properties can be overridden using 'mount -o'. In this case, scan 1600 * the contents of the /etc/mnttab entry, searching for the appropriate options. 1601 * If they differ from the on-disk values, report the current values and mark 1602 * the source "temporary". 1603 */ 1604 static int 1605 get_numeric_property(zfs_handle_t *zhp, zfs_prop_t prop, zprop_source_t *src, 1606 char **source, uint64_t *val) 1607 { 1608 zfs_cmd_t zc = { 0 }; 1609 nvlist_t *zplprops = NULL; 1610 struct mnttab mnt; 1611 char *mntopt_on = NULL; 1612 char *mntopt_off = NULL; 1613 boolean_t received = zfs_is_recvd_props_mode(zhp); 1614 1615 *source = NULL; 1616 1617 switch (prop) { 1618 case ZFS_PROP_ATIME: 1619 mntopt_on = MNTOPT_ATIME; 1620 mntopt_off = MNTOPT_NOATIME; 1621 break; 1622 1623 case ZFS_PROP_DEVICES: 1624 mntopt_on = MNTOPT_DEVICES; 1625 mntopt_off = MNTOPT_NODEVICES; 1626 break; 1627 1628 case ZFS_PROP_EXEC: 1629 mntopt_on = MNTOPT_EXEC; 1630 mntopt_off = MNTOPT_NOEXEC; 1631 break; 1632 1633 case ZFS_PROP_READONLY: 1634 mntopt_on = MNTOPT_RO; 1635 mntopt_off = MNTOPT_RW; 1636 break; 1637 1638 case ZFS_PROP_SETUID: 1639 mntopt_on = MNTOPT_SETUID; 1640 mntopt_off = MNTOPT_NOSETUID; 1641 break; 1642 1643 case ZFS_PROP_XATTR: 1644 mntopt_on = MNTOPT_XATTR; 1645 mntopt_off = MNTOPT_NOXATTR; 1646 break; 1647 1648 case ZFS_PROP_NBMAND: 1649 mntopt_on = MNTOPT_NBMAND; 1650 mntopt_off = MNTOPT_NONBMAND; 1651 break; 1652 } 1653 1654 /* 1655 * Because looking up the mount options is potentially expensive 1656 * (iterating over all of /etc/mnttab), we defer its calculation until 1657 * we're looking up a property which requires its presence. 1658 */ 1659 if (!zhp->zfs_mntcheck && 1660 (mntopt_on != NULL || prop == ZFS_PROP_MOUNTED)) { 1661 libzfs_handle_t *hdl = zhp->zfs_hdl; 1662 struct mnttab entry; 1663 1664 if (libzfs_mnttab_find(hdl, zhp->zfs_name, &entry) == 0) { 1665 zhp->zfs_mntopts = zfs_strdup(hdl, 1666 entry.mnt_mntopts); 1667 if (zhp->zfs_mntopts == NULL) 1668 return (-1); 1669 } 1670 1671 zhp->zfs_mntcheck = B_TRUE; 1672 } 1673 1674 if (zhp->zfs_mntopts == NULL) 1675 mnt.mnt_mntopts = ""; 1676 else 1677 mnt.mnt_mntopts = zhp->zfs_mntopts; 1678 1679 switch (prop) { 1680 case ZFS_PROP_ATIME: 1681 case ZFS_PROP_DEVICES: 1682 case ZFS_PROP_EXEC: 1683 case ZFS_PROP_READONLY: 1684 case ZFS_PROP_SETUID: 1685 case ZFS_PROP_XATTR: 1686 case ZFS_PROP_NBMAND: 1687 *val = getprop_uint64(zhp, prop, source); 1688 1689 if (received) 1690 break; 1691 1692 if (hasmntopt(&mnt, mntopt_on) && !*val) { 1693 *val = B_TRUE; 1694 if (src) 1695 *src = ZPROP_SRC_TEMPORARY; 1696 } else if (hasmntopt(&mnt, mntopt_off) && *val) { 1697 *val = B_FALSE; 1698 if (src) 1699 *src = ZPROP_SRC_TEMPORARY; 1700 } 1701 break; 1702 1703 case ZFS_PROP_CANMOUNT: 1704 case ZFS_PROP_QUOTA: 1705 case ZFS_PROP_REFQUOTA: 1706 case ZFS_PROP_RESERVATION: 1707 case ZFS_PROP_REFRESERVATION: 1708 *val = getprop_uint64(zhp, prop, source); 1709 1710 if (*source == NULL) { 1711 /* not default, must be local */ 1712 *source = zhp->zfs_name; 1713 } 1714 break; 1715 1716 case ZFS_PROP_MOUNTED: 1717 *val = (zhp->zfs_mntopts != NULL); 1718 break; 1719 1720 case ZFS_PROP_NUMCLONES: 1721 *val = zhp->zfs_dmustats.dds_num_clones; 1722 break; 1723 1724 case ZFS_PROP_VERSION: 1725 case ZFS_PROP_NORMALIZE: 1726 case ZFS_PROP_UTF8ONLY: 1727 case ZFS_PROP_CASE: 1728 if (!zfs_prop_valid_for_type(prop, zhp->zfs_head_type) || 1729 zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0) 1730 return (-1); 1731 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 1732 if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_OBJSET_ZPLPROPS, &zc)) { 1733 zcmd_free_nvlists(&zc); 1734 return (-1); 1735 } 1736 if (zcmd_read_dst_nvlist(zhp->zfs_hdl, &zc, &zplprops) != 0 || 1737 nvlist_lookup_uint64(zplprops, zfs_prop_to_name(prop), 1738 val) != 0) { 1739 zcmd_free_nvlists(&zc); 1740 return (-1); 1741 } 1742 if (zplprops) 1743 nvlist_free(zplprops); 1744 zcmd_free_nvlists(&zc); 1745 break; 1746 1747 default: 1748 switch (zfs_prop_get_type(prop)) { 1749 case PROP_TYPE_NUMBER: 1750 case PROP_TYPE_INDEX: 1751 *val = getprop_uint64(zhp, prop, source); 1752 /* 1753 * If we tried to use a default value for a 1754 * readonly property, it means that it was not 1755 * present. 1756 */ 1757 if (zfs_prop_readonly(prop) && 1758 *source != NULL && (*source)[0] == '\0') { 1759 *source = NULL; 1760 } 1761 break; 1762 1763 case PROP_TYPE_STRING: 1764 default: 1765 zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN, 1766 "cannot get non-numeric property")); 1767 return (zfs_error(zhp->zfs_hdl, EZFS_BADPROP, 1768 dgettext(TEXT_DOMAIN, "internal error"))); 1769 } 1770 } 1771 1772 return (0); 1773 } 1774 1775 /* 1776 * Calculate the source type, given the raw source string. 1777 */ 1778 static void 1779 get_source(zfs_handle_t *zhp, zprop_source_t *srctype, char *source, 1780 char *statbuf, size_t statlen) 1781 { 1782 if (statbuf == NULL || *srctype == ZPROP_SRC_TEMPORARY) 1783 return; 1784 1785 if (source == NULL) { 1786 *srctype = ZPROP_SRC_NONE; 1787 } else if (source[0] == '\0') { 1788 *srctype = ZPROP_SRC_DEFAULT; 1789 } else if (strstr(source, ZPROP_SOURCE_VAL_RECVD) != NULL) { 1790 *srctype = ZPROP_SRC_RECEIVED; 1791 } else { 1792 if (strcmp(source, zhp->zfs_name) == 0) { 1793 *srctype = ZPROP_SRC_LOCAL; 1794 } else { 1795 (void) strlcpy(statbuf, source, statlen); 1796 *srctype = ZPROP_SRC_INHERITED; 1797 } 1798 } 1799 1800 } 1801 1802 int 1803 zfs_prop_get_recvd(zfs_handle_t *zhp, const char *propname, char *propbuf, 1804 size_t proplen, boolean_t literal) 1805 { 1806 zfs_prop_t prop; 1807 int err = 0; 1808 1809 if (zhp->zfs_recvd_props == NULL) 1810 if (get_recvd_props_ioctl(zhp) != 0) 1811 return (-1); 1812 1813 prop = zfs_name_to_prop(propname); 1814 1815 if (prop != ZPROP_INVAL) { 1816 uint64_t cookie; 1817 if (!nvlist_exists(zhp->zfs_recvd_props, propname)) 1818 return (-1); 1819 zfs_set_recvd_props_mode(zhp, &cookie); 1820 err = zfs_prop_get(zhp, prop, propbuf, proplen, 1821 NULL, NULL, 0, literal); 1822 zfs_unset_recvd_props_mode(zhp, &cookie); 1823 } else if (zfs_prop_userquota(propname)) { 1824 return (-1); 1825 } else { 1826 nvlist_t *propval; 1827 char *recvdval; 1828 if (nvlist_lookup_nvlist(zhp->zfs_recvd_props, 1829 propname, &propval) != 0) 1830 return (-1); 1831 verify(nvlist_lookup_string(propval, ZPROP_VALUE, 1832 &recvdval) == 0); 1833 (void) strlcpy(propbuf, recvdval, proplen); 1834 } 1835 1836 return (err == 0 ? 0 : -1); 1837 } 1838 1839 /* 1840 * Retrieve a property from the given object. If 'literal' is specified, then 1841 * numbers are left as exact values. Otherwise, numbers are converted to a 1842 * human-readable form. 1843 * 1844 * Returns 0 on success, or -1 on error. 1845 */ 1846 int 1847 zfs_prop_get(zfs_handle_t *zhp, zfs_prop_t prop, char *propbuf, size_t proplen, 1848 zprop_source_t *src, char *statbuf, size_t statlen, boolean_t literal) 1849 { 1850 char *source = NULL; 1851 uint64_t val; 1852 char *str; 1853 const char *strval; 1854 boolean_t received = zfs_is_recvd_props_mode(zhp); 1855 1856 /* 1857 * Check to see if this property applies to our object 1858 */ 1859 if (!zfs_prop_valid_for_type(prop, zhp->zfs_type)) 1860 return (-1); 1861 1862 if (received && zfs_prop_readonly(prop)) 1863 return (-1); 1864 1865 if (src) 1866 *src = ZPROP_SRC_NONE; 1867 1868 switch (prop) { 1869 case ZFS_PROP_CREATION: 1870 /* 1871 * 'creation' is a time_t stored in the statistics. We convert 1872 * this into a string unless 'literal' is specified. 1873 */ 1874 { 1875 val = getprop_uint64(zhp, prop, &source); 1876 time_t time = (time_t)val; 1877 struct tm t; 1878 1879 if (literal || 1880 localtime_r(&time, &t) == NULL || 1881 strftime(propbuf, proplen, "%a %b %e %k:%M %Y", 1882 &t) == 0) 1883 (void) snprintf(propbuf, proplen, "%llu", val); 1884 } 1885 break; 1886 1887 case ZFS_PROP_MOUNTPOINT: 1888 /* 1889 * Getting the precise mountpoint can be tricky. 1890 * 1891 * - for 'none' or 'legacy', return those values. 1892 * - for inherited mountpoints, we want to take everything 1893 * after our ancestor and append it to the inherited value. 1894 * 1895 * If the pool has an alternate root, we want to prepend that 1896 * root to any values we return. 1897 */ 1898 1899 str = getprop_string(zhp, prop, &source); 1900 1901 if (str[0] == '/') { 1902 char buf[MAXPATHLEN]; 1903 char *root = buf; 1904 const char *relpath = zhp->zfs_name + strlen(source); 1905 1906 if (relpath[0] == '/') 1907 relpath++; 1908 1909 if ((zpool_get_prop(zhp->zpool_hdl, 1910 ZPOOL_PROP_ALTROOT, buf, MAXPATHLEN, NULL)) || 1911 (strcmp(root, "-") == 0)) 1912 root[0] = '\0'; 1913 /* 1914 * Special case an alternate root of '/'. This will 1915 * avoid having multiple leading slashes in the 1916 * mountpoint path. 1917 */ 1918 if (strcmp(root, "/") == 0) 1919 root++; 1920 1921 /* 1922 * If the mountpoint is '/' then skip over this 1923 * if we are obtaining either an alternate root or 1924 * an inherited mountpoint. 1925 */ 1926 if (str[1] == '\0' && (root[0] != '\0' || 1927 relpath[0] != '\0')) 1928 str++; 1929 1930 if (relpath[0] == '\0') 1931 (void) snprintf(propbuf, proplen, "%s%s", 1932 root, str); 1933 else 1934 (void) snprintf(propbuf, proplen, "%s%s%s%s", 1935 root, str, relpath[0] == '@' ? "" : "/", 1936 relpath); 1937 } else { 1938 /* 'legacy' or 'none' */ 1939 (void) strlcpy(propbuf, str, proplen); 1940 } 1941 1942 break; 1943 1944 case ZFS_PROP_ORIGIN: 1945 (void) strlcpy(propbuf, getprop_string(zhp, prop, &source), 1946 proplen); 1947 /* 1948 * If there is no parent at all, return failure to indicate that 1949 * it doesn't apply to this dataset. 1950 */ 1951 if (propbuf[0] == '\0') 1952 return (-1); 1953 break; 1954 1955 case ZFS_PROP_QUOTA: 1956 case ZFS_PROP_REFQUOTA: 1957 case ZFS_PROP_RESERVATION: 1958 case ZFS_PROP_REFRESERVATION: 1959 1960 if (get_numeric_property(zhp, prop, src, &source, &val) != 0) 1961 return (-1); 1962 1963 /* 1964 * If quota or reservation is 0, we translate this into 'none' 1965 * (unless literal is set), and indicate that it's the default 1966 * value. Otherwise, we print the number nicely and indicate 1967 * that its set locally. 1968 */ 1969 if (val == 0) { 1970 if (literal) 1971 (void) strlcpy(propbuf, "0", proplen); 1972 else 1973 (void) strlcpy(propbuf, "none", proplen); 1974 } else { 1975 if (literal) 1976 (void) snprintf(propbuf, proplen, "%llu", 1977 (u_longlong_t)val); 1978 else 1979 zfs_nicenum(val, propbuf, proplen); 1980 } 1981 break; 1982 1983 case ZFS_PROP_COMPRESSRATIO: 1984 if (get_numeric_property(zhp, prop, src, &source, &val) != 0) 1985 return (-1); 1986 (void) snprintf(propbuf, proplen, "%llu.%02llux", 1987 (u_longlong_t)(val / 100), 1988 (u_longlong_t)(val % 100)); 1989 break; 1990 1991 case ZFS_PROP_TYPE: 1992 switch (zhp->zfs_type) { 1993 case ZFS_TYPE_FILESYSTEM: 1994 str = "filesystem"; 1995 break; 1996 case ZFS_TYPE_VOLUME: 1997 str = "volume"; 1998 break; 1999 case ZFS_TYPE_SNAPSHOT: 2000 str = "snapshot"; 2001 break; 2002 default: 2003 abort(); 2004 } 2005 (void) snprintf(propbuf, proplen, "%s", str); 2006 break; 2007 2008 case ZFS_PROP_MOUNTED: 2009 /* 2010 * The 'mounted' property is a pseudo-property that described 2011 * whether the filesystem is currently mounted. Even though 2012 * it's a boolean value, the typical values of "on" and "off" 2013 * don't make sense, so we translate to "yes" and "no". 2014 */ 2015 if (get_numeric_property(zhp, ZFS_PROP_MOUNTED, 2016 src, &source, &val) != 0) 2017 return (-1); 2018 if (val) 2019 (void) strlcpy(propbuf, "yes", proplen); 2020 else 2021 (void) strlcpy(propbuf, "no", proplen); 2022 break; 2023 2024 case ZFS_PROP_NAME: 2025 /* 2026 * The 'name' property is a pseudo-property derived from the 2027 * dataset name. It is presented as a real property to simplify 2028 * consumers. 2029 */ 2030 (void) strlcpy(propbuf, zhp->zfs_name, proplen); 2031 break; 2032 2033 case ZFS_PROP_MLSLABEL: 2034 { 2035 m_label_t *new_sl = NULL; 2036 char *ascii = NULL; /* human readable label */ 2037 2038 (void) strlcpy(propbuf, 2039 getprop_string(zhp, prop, &source), proplen); 2040 2041 if (literal || (strcasecmp(propbuf, 2042 ZFS_MLSLABEL_DEFAULT) == 0)) 2043 break; 2044 2045 /* 2046 * Try to translate the internal hex string to 2047 * human-readable output. If there are any 2048 * problems just use the hex string. 2049 */ 2050 2051 if (str_to_label(propbuf, &new_sl, MAC_LABEL, 2052 L_NO_CORRECTION, NULL) == -1) { 2053 m_label_free(new_sl); 2054 break; 2055 } 2056 2057 if (label_to_str(new_sl, &ascii, M_LABEL, 2058 DEF_NAMES) != 0) { 2059 if (ascii) 2060 free(ascii); 2061 m_label_free(new_sl); 2062 break; 2063 } 2064 m_label_free(new_sl); 2065 2066 (void) strlcpy(propbuf, ascii, proplen); 2067 free(ascii); 2068 } 2069 break; 2070 2071 default: 2072 switch (zfs_prop_get_type(prop)) { 2073 case PROP_TYPE_NUMBER: 2074 if (get_numeric_property(zhp, prop, src, 2075 &source, &val) != 0) 2076 return (-1); 2077 if (literal) 2078 (void) snprintf(propbuf, proplen, "%llu", 2079 (u_longlong_t)val); 2080 else 2081 zfs_nicenum(val, propbuf, proplen); 2082 break; 2083 2084 case PROP_TYPE_STRING: 2085 (void) strlcpy(propbuf, 2086 getprop_string(zhp, prop, &source), proplen); 2087 break; 2088 2089 case PROP_TYPE_INDEX: 2090 if (get_numeric_property(zhp, prop, src, 2091 &source, &val) != 0) 2092 return (-1); 2093 if (zfs_prop_index_to_string(prop, val, &strval) != 0) 2094 return (-1); 2095 (void) strlcpy(propbuf, strval, proplen); 2096 break; 2097 2098 default: 2099 abort(); 2100 } 2101 } 2102 2103 get_source(zhp, src, source, statbuf, statlen); 2104 2105 return (0); 2106 } 2107 2108 /* 2109 * Utility function to get the given numeric property. Does no validation that 2110 * the given property is the appropriate type; should only be used with 2111 * hard-coded property types. 2112 */ 2113 uint64_t 2114 zfs_prop_get_int(zfs_handle_t *zhp, zfs_prop_t prop) 2115 { 2116 char *source; 2117 uint64_t val; 2118 2119 (void) get_numeric_property(zhp, prop, NULL, &source, &val); 2120 2121 return (val); 2122 } 2123 2124 int 2125 zfs_prop_set_int(zfs_handle_t *zhp, zfs_prop_t prop, uint64_t val) 2126 { 2127 char buf[64]; 2128 2129 (void) snprintf(buf, sizeof (buf), "%llu", (longlong_t)val); 2130 return (zfs_prop_set(zhp, zfs_prop_to_name(prop), buf)); 2131 } 2132 2133 /* 2134 * Similar to zfs_prop_get(), but returns the value as an integer. 2135 */ 2136 int 2137 zfs_prop_get_numeric(zfs_handle_t *zhp, zfs_prop_t prop, uint64_t *value, 2138 zprop_source_t *src, char *statbuf, size_t statlen) 2139 { 2140 char *source; 2141 2142 /* 2143 * Check to see if this property applies to our object 2144 */ 2145 if (!zfs_prop_valid_for_type(prop, zhp->zfs_type)) { 2146 return (zfs_error_fmt(zhp->zfs_hdl, EZFS_PROPTYPE, 2147 dgettext(TEXT_DOMAIN, "cannot get property '%s'"), 2148 zfs_prop_to_name(prop))); 2149 } 2150 2151 if (src) 2152 *src = ZPROP_SRC_NONE; 2153 2154 if (get_numeric_property(zhp, prop, src, &source, value) != 0) 2155 return (-1); 2156 2157 get_source(zhp, src, source, statbuf, statlen); 2158 2159 return (0); 2160 } 2161 2162 static int 2163 idmap_id_to_numeric_domain_rid(uid_t id, boolean_t isuser, 2164 char **domainp, idmap_rid_t *ridp) 2165 { 2166 idmap_handle_t *idmap_hdl = NULL; 2167 idmap_get_handle_t *get_hdl = NULL; 2168 idmap_stat status; 2169 int err = EINVAL; 2170 2171 if (idmap_init(&idmap_hdl) != IDMAP_SUCCESS) 2172 goto out; 2173 if (idmap_get_create(idmap_hdl, &get_hdl) != IDMAP_SUCCESS) 2174 goto out; 2175 2176 if (isuser) { 2177 err = idmap_get_sidbyuid(get_hdl, id, 2178 IDMAP_REQ_FLG_USE_CACHE, domainp, ridp, &status); 2179 } else { 2180 err = idmap_get_sidbygid(get_hdl, id, 2181 IDMAP_REQ_FLG_USE_CACHE, domainp, ridp, &status); 2182 } 2183 if (err == IDMAP_SUCCESS && 2184 idmap_get_mappings(get_hdl) == IDMAP_SUCCESS && 2185 status == IDMAP_SUCCESS) 2186 err = 0; 2187 else 2188 err = EINVAL; 2189 out: 2190 if (get_hdl) 2191 idmap_get_destroy(get_hdl); 2192 if (idmap_hdl) 2193 (void) idmap_fini(idmap_hdl); 2194 return (err); 2195 } 2196 2197 /* 2198 * convert the propname into parameters needed by kernel 2199 * Eg: userquota@ahrens -> ZFS_PROP_USERQUOTA, "", 126829 2200 * Eg: userused@matt@domain -> ZFS_PROP_USERUSED, "S-1-123-456", 789 2201 */ 2202 static int 2203 userquota_propname_decode(const char *propname, boolean_t zoned, 2204 zfs_userquota_prop_t *typep, char *domain, int domainlen, uint64_t *ridp) 2205 { 2206 zfs_userquota_prop_t type; 2207 char *cp, *end; 2208 char *numericsid = NULL; 2209 boolean_t isuser; 2210 2211 domain[0] = '\0'; 2212 2213 /* Figure out the property type ({user|group}{quota|space}) */ 2214 for (type = 0; type < ZFS_NUM_USERQUOTA_PROPS; type++) { 2215 if (strncmp(propname, zfs_userquota_prop_prefixes[type], 2216 strlen(zfs_userquota_prop_prefixes[type])) == 0) 2217 break; 2218 } 2219 if (type == ZFS_NUM_USERQUOTA_PROPS) 2220 return (EINVAL); 2221 *typep = type; 2222 2223 isuser = (type == ZFS_PROP_USERQUOTA || 2224 type == ZFS_PROP_USERUSED); 2225 2226 cp = strchr(propname, '@') + 1; 2227 2228 if (strchr(cp, '@')) { 2229 /* 2230 * It's a SID name (eg "user@domain") that needs to be 2231 * turned into S-1-domainID-RID. 2232 */ 2233 directory_error_t e; 2234 if (zoned && getzoneid() == GLOBAL_ZONEID) 2235 return (ENOENT); 2236 if (isuser) { 2237 e = directory_sid_from_user_name(NULL, 2238 cp, &numericsid); 2239 } else { 2240 e = directory_sid_from_group_name(NULL, 2241 cp, &numericsid); 2242 } 2243 if (e != NULL) { 2244 directory_error_free(e); 2245 return (ENOENT); 2246 } 2247 if (numericsid == NULL) 2248 return (ENOENT); 2249 cp = numericsid; 2250 /* will be further decoded below */ 2251 } 2252 2253 if (strncmp(cp, "S-1-", 4) == 0) { 2254 /* It's a numeric SID (eg "S-1-234-567-89") */ 2255 (void) strlcpy(domain, cp, domainlen); 2256 cp = strrchr(domain, '-'); 2257 *cp = '\0'; 2258 cp++; 2259 2260 errno = 0; 2261 *ridp = strtoull(cp, &end, 10); 2262 if (numericsid) { 2263 free(numericsid); 2264 numericsid = NULL; 2265 } 2266 if (errno != 0 || *end != '\0') 2267 return (EINVAL); 2268 } else if (!isdigit(*cp)) { 2269 /* 2270 * It's a user/group name (eg "user") that needs to be 2271 * turned into a uid/gid 2272 */ 2273 if (zoned && getzoneid() == GLOBAL_ZONEID) 2274 return (ENOENT); 2275 if (isuser) { 2276 struct passwd *pw; 2277 pw = getpwnam(cp); 2278 if (pw == NULL) 2279 return (ENOENT); 2280 *ridp = pw->pw_uid; 2281 } else { 2282 struct group *gr; 2283 gr = getgrnam(cp); 2284 if (gr == NULL) 2285 return (ENOENT); 2286 *ridp = gr->gr_gid; 2287 } 2288 } else { 2289 /* It's a user/group ID (eg "12345"). */ 2290 uid_t id = strtoul(cp, &end, 10); 2291 idmap_rid_t rid; 2292 char *mapdomain; 2293 2294 if (*end != '\0') 2295 return (EINVAL); 2296 if (id > MAXUID) { 2297 /* It's an ephemeral ID. */ 2298 if (idmap_id_to_numeric_domain_rid(id, isuser, 2299 &mapdomain, &rid) != 0) 2300 return (ENOENT); 2301 (void) strlcpy(domain, mapdomain, domainlen); 2302 *ridp = rid; 2303 } else { 2304 *ridp = id; 2305 } 2306 } 2307 2308 ASSERT3P(numericsid, ==, NULL); 2309 return (0); 2310 } 2311 2312 static int 2313 zfs_prop_get_userquota_common(zfs_handle_t *zhp, const char *propname, 2314 uint64_t *propvalue, zfs_userquota_prop_t *typep) 2315 { 2316 int err; 2317 zfs_cmd_t zc = { 0 }; 2318 2319 (void) strncpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 2320 2321 err = userquota_propname_decode(propname, 2322 zfs_prop_get_int(zhp, ZFS_PROP_ZONED), 2323 typep, zc.zc_value, sizeof (zc.zc_value), &zc.zc_guid); 2324 zc.zc_objset_type = *typep; 2325 if (err) 2326 return (err); 2327 2328 err = ioctl(zhp->zfs_hdl->libzfs_fd, ZFS_IOC_USERSPACE_ONE, &zc); 2329 if (err) 2330 return (err); 2331 2332 *propvalue = zc.zc_cookie; 2333 return (0); 2334 } 2335 2336 int 2337 zfs_prop_get_userquota_int(zfs_handle_t *zhp, const char *propname, 2338 uint64_t *propvalue) 2339 { 2340 zfs_userquota_prop_t type; 2341 2342 return (zfs_prop_get_userquota_common(zhp, propname, propvalue, 2343 &type)); 2344 } 2345 2346 int 2347 zfs_prop_get_userquota(zfs_handle_t *zhp, const char *propname, 2348 char *propbuf, int proplen, boolean_t literal) 2349 { 2350 int err; 2351 uint64_t propvalue; 2352 zfs_userquota_prop_t type; 2353 2354 err = zfs_prop_get_userquota_common(zhp, propname, &propvalue, 2355 &type); 2356 2357 if (err) 2358 return (err); 2359 2360 if (literal) { 2361 (void) snprintf(propbuf, proplen, "%llu", propvalue); 2362 } else if (propvalue == 0 && 2363 (type == ZFS_PROP_USERQUOTA || type == ZFS_PROP_GROUPQUOTA)) { 2364 (void) strlcpy(propbuf, "none", proplen); 2365 } else { 2366 zfs_nicenum(propvalue, propbuf, proplen); 2367 } 2368 return (0); 2369 } 2370 2371 /* 2372 * Returns the name of the given zfs handle. 2373 */ 2374 const char * 2375 zfs_get_name(const zfs_handle_t *zhp) 2376 { 2377 return (zhp->zfs_name); 2378 } 2379 2380 /* 2381 * Returns the type of the given zfs handle. 2382 */ 2383 zfs_type_t 2384 zfs_get_type(const zfs_handle_t *zhp) 2385 { 2386 return (zhp->zfs_type); 2387 } 2388 2389 static int 2390 zfs_do_list_ioctl(zfs_handle_t *zhp, int arg, zfs_cmd_t *zc) 2391 { 2392 int rc; 2393 uint64_t orig_cookie; 2394 2395 orig_cookie = zc->zc_cookie; 2396 top: 2397 (void) strlcpy(zc->zc_name, zhp->zfs_name, sizeof (zc->zc_name)); 2398 rc = ioctl(zhp->zfs_hdl->libzfs_fd, arg, zc); 2399 2400 if (rc == -1) { 2401 switch (errno) { 2402 case ENOMEM: 2403 /* expand nvlist memory and try again */ 2404 if (zcmd_expand_dst_nvlist(zhp->zfs_hdl, zc) != 0) { 2405 zcmd_free_nvlists(zc); 2406 return (-1); 2407 } 2408 zc->zc_cookie = orig_cookie; 2409 goto top; 2410 /* 2411 * An errno value of ESRCH indicates normal completion. 2412 * If ENOENT is returned, then the underlying dataset 2413 * has been removed since we obtained the handle. 2414 */ 2415 case ESRCH: 2416 case ENOENT: 2417 rc = 1; 2418 break; 2419 default: 2420 rc = zfs_standard_error(zhp->zfs_hdl, errno, 2421 dgettext(TEXT_DOMAIN, 2422 "cannot iterate filesystems")); 2423 break; 2424 } 2425 } 2426 return (rc); 2427 } 2428 2429 /* 2430 * Iterate over all child filesystems 2431 */ 2432 int 2433 zfs_iter_filesystems(zfs_handle_t *zhp, zfs_iter_f func, void *data) 2434 { 2435 zfs_cmd_t zc = { 0 }; 2436 zfs_handle_t *nzhp; 2437 int ret; 2438 2439 if (zhp->zfs_type != ZFS_TYPE_FILESYSTEM) 2440 return (0); 2441 2442 if (zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0) 2443 return (-1); 2444 2445 while ((ret = zfs_do_list_ioctl(zhp, ZFS_IOC_DATASET_LIST_NEXT, 2446 &zc)) == 0) { 2447 /* 2448 * Silently ignore errors, as the only plausible explanation is 2449 * that the pool has since been removed. 2450 */ 2451 if ((nzhp = make_dataset_handle_zc(zhp->zfs_hdl, 2452 &zc)) == NULL) { 2453 continue; 2454 } 2455 2456 if ((ret = func(nzhp, data)) != 0) { 2457 zcmd_free_nvlists(&zc); 2458 return (ret); 2459 } 2460 } 2461 zcmd_free_nvlists(&zc); 2462 return ((ret < 0) ? ret : 0); 2463 } 2464 2465 /* 2466 * Iterate over all snapshots 2467 */ 2468 int 2469 zfs_iter_snapshots(zfs_handle_t *zhp, zfs_iter_f func, void *data) 2470 { 2471 zfs_cmd_t zc = { 0 }; 2472 zfs_handle_t *nzhp; 2473 int ret; 2474 2475 if (zhp->zfs_type == ZFS_TYPE_SNAPSHOT) 2476 return (0); 2477 2478 if (zcmd_alloc_dst_nvlist(zhp->zfs_hdl, &zc, 0) != 0) 2479 return (-1); 2480 while ((ret = zfs_do_list_ioctl(zhp, ZFS_IOC_SNAPSHOT_LIST_NEXT, 2481 &zc)) == 0) { 2482 2483 if ((nzhp = make_dataset_handle_zc(zhp->zfs_hdl, 2484 &zc)) == NULL) { 2485 continue; 2486 } 2487 2488 if ((ret = func(nzhp, data)) != 0) { 2489 zcmd_free_nvlists(&zc); 2490 return (ret); 2491 } 2492 } 2493 zcmd_free_nvlists(&zc); 2494 return ((ret < 0) ? ret : 0); 2495 } 2496 2497 /* 2498 * Iterate over all children, snapshots and filesystems 2499 */ 2500 int 2501 zfs_iter_children(zfs_handle_t *zhp, zfs_iter_f func, void *data) 2502 { 2503 int ret; 2504 2505 if ((ret = zfs_iter_filesystems(zhp, func, data)) != 0) 2506 return (ret); 2507 2508 return (zfs_iter_snapshots(zhp, func, data)); 2509 } 2510 2511 /* 2512 * Given a complete name, return just the portion that refers to the parent. 2513 * Can return NULL if this is a pool. 2514 */ 2515 static int 2516 parent_name(const char *path, char *buf, size_t buflen) 2517 { 2518 char *loc; 2519 2520 if ((loc = strrchr(path, '/')) == NULL) 2521 return (-1); 2522 2523 (void) strncpy(buf, path, MIN(buflen, loc - path)); 2524 buf[loc - path] = '\0'; 2525 2526 return (0); 2527 } 2528 2529 /* 2530 * If accept_ancestor is false, then check to make sure that the given path has 2531 * a parent, and that it exists. If accept_ancestor is true, then find the 2532 * closest existing ancestor for the given path. In prefixlen return the 2533 * length of already existing prefix of the given path. We also fetch the 2534 * 'zoned' property, which is used to validate property settings when creating 2535 * new datasets. 2536 */ 2537 static int 2538 check_parents(libzfs_handle_t *hdl, const char *path, uint64_t *zoned, 2539 boolean_t accept_ancestor, int *prefixlen) 2540 { 2541 zfs_cmd_t zc = { 0 }; 2542 char parent[ZFS_MAXNAMELEN]; 2543 char *slash; 2544 zfs_handle_t *zhp; 2545 char errbuf[1024]; 2546 2547 (void) snprintf(errbuf, sizeof (errbuf), 2548 dgettext(TEXT_DOMAIN, "cannot create '%s'"), path); 2549 2550 /* get parent, and check to see if this is just a pool */ 2551 if (parent_name(path, parent, sizeof (parent)) != 0) { 2552 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2553 "missing dataset name")); 2554 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 2555 } 2556 2557 /* check to see if the pool exists */ 2558 if ((slash = strchr(parent, '/')) == NULL) 2559 slash = parent + strlen(parent); 2560 (void) strncpy(zc.zc_name, parent, slash - parent); 2561 zc.zc_name[slash - parent] = '\0'; 2562 if (ioctl(hdl->libzfs_fd, ZFS_IOC_OBJSET_STATS, &zc) != 0 && 2563 errno == ENOENT) { 2564 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2565 "no such pool '%s'"), zc.zc_name); 2566 return (zfs_error(hdl, EZFS_NOENT, errbuf)); 2567 } 2568 2569 /* check to see if the parent dataset exists */ 2570 while ((zhp = make_dataset_handle(hdl, parent)) == NULL) { 2571 if (errno == ENOENT && accept_ancestor) { 2572 /* 2573 * Go deeper to find an ancestor, give up on top level. 2574 */ 2575 if (parent_name(parent, parent, sizeof (parent)) != 0) { 2576 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2577 "no such pool '%s'"), zc.zc_name); 2578 return (zfs_error(hdl, EZFS_NOENT, errbuf)); 2579 } 2580 } else if (errno == ENOENT) { 2581 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2582 "parent does not exist")); 2583 return (zfs_error(hdl, EZFS_NOENT, errbuf)); 2584 } else 2585 return (zfs_standard_error(hdl, errno, errbuf)); 2586 } 2587 2588 *zoned = zfs_prop_get_int(zhp, ZFS_PROP_ZONED); 2589 /* we are in a non-global zone, but parent is in the global zone */ 2590 if (getzoneid() != GLOBAL_ZONEID && !(*zoned)) { 2591 (void) zfs_standard_error(hdl, EPERM, errbuf); 2592 zfs_close(zhp); 2593 return (-1); 2594 } 2595 2596 /* make sure parent is a filesystem */ 2597 if (zfs_get_type(zhp) != ZFS_TYPE_FILESYSTEM) { 2598 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2599 "parent is not a filesystem")); 2600 (void) zfs_error(hdl, EZFS_BADTYPE, errbuf); 2601 zfs_close(zhp); 2602 return (-1); 2603 } 2604 2605 zfs_close(zhp); 2606 if (prefixlen != NULL) 2607 *prefixlen = strlen(parent); 2608 return (0); 2609 } 2610 2611 /* 2612 * Finds whether the dataset of the given type(s) exists. 2613 */ 2614 boolean_t 2615 zfs_dataset_exists(libzfs_handle_t *hdl, const char *path, zfs_type_t types) 2616 { 2617 zfs_handle_t *zhp; 2618 2619 if (!zfs_validate_name(hdl, path, types, B_FALSE)) 2620 return (B_FALSE); 2621 2622 /* 2623 * Try to get stats for the dataset, which will tell us if it exists. 2624 */ 2625 if ((zhp = make_dataset_handle(hdl, path)) != NULL) { 2626 int ds_type = zhp->zfs_type; 2627 2628 zfs_close(zhp); 2629 if (types & ds_type) 2630 return (B_TRUE); 2631 } 2632 return (B_FALSE); 2633 } 2634 2635 /* 2636 * Given a path to 'target', create all the ancestors between 2637 * the prefixlen portion of the path, and the target itself. 2638 * Fail if the initial prefixlen-ancestor does not already exist. 2639 */ 2640 int 2641 create_parents(libzfs_handle_t *hdl, char *target, int prefixlen) 2642 { 2643 zfs_handle_t *h; 2644 char *cp; 2645 const char *opname; 2646 2647 /* make sure prefix exists */ 2648 cp = target + prefixlen; 2649 if (*cp != '/') { 2650 assert(strchr(cp, '/') == NULL); 2651 h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM); 2652 } else { 2653 *cp = '\0'; 2654 h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM); 2655 *cp = '/'; 2656 } 2657 if (h == NULL) 2658 return (-1); 2659 zfs_close(h); 2660 2661 /* 2662 * Attempt to create, mount, and share any ancestor filesystems, 2663 * up to the prefixlen-long one. 2664 */ 2665 for (cp = target + prefixlen + 1; 2666 cp = strchr(cp, '/'); *cp = '/', cp++) { 2667 char *logstr; 2668 2669 *cp = '\0'; 2670 2671 h = make_dataset_handle(hdl, target); 2672 if (h) { 2673 /* it already exists, nothing to do here */ 2674 zfs_close(h); 2675 continue; 2676 } 2677 2678 logstr = hdl->libzfs_log_str; 2679 hdl->libzfs_log_str = NULL; 2680 if (zfs_create(hdl, target, ZFS_TYPE_FILESYSTEM, 2681 NULL) != 0) { 2682 hdl->libzfs_log_str = logstr; 2683 opname = dgettext(TEXT_DOMAIN, "create"); 2684 goto ancestorerr; 2685 } 2686 2687 hdl->libzfs_log_str = logstr; 2688 h = zfs_open(hdl, target, ZFS_TYPE_FILESYSTEM); 2689 if (h == NULL) { 2690 opname = dgettext(TEXT_DOMAIN, "open"); 2691 goto ancestorerr; 2692 } 2693 2694 if (zfs_mount(h, NULL, 0) != 0) { 2695 opname = dgettext(TEXT_DOMAIN, "mount"); 2696 goto ancestorerr; 2697 } 2698 2699 if (zfs_share(h) != 0) { 2700 opname = dgettext(TEXT_DOMAIN, "share"); 2701 goto ancestorerr; 2702 } 2703 2704 zfs_close(h); 2705 } 2706 2707 return (0); 2708 2709 ancestorerr: 2710 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2711 "failed to %s ancestor '%s'"), opname, target); 2712 return (-1); 2713 } 2714 2715 /* 2716 * Creates non-existing ancestors of the given path. 2717 */ 2718 int 2719 zfs_create_ancestors(libzfs_handle_t *hdl, const char *path) 2720 { 2721 int prefix; 2722 uint64_t zoned; 2723 char *path_copy; 2724 int rc; 2725 2726 if (check_parents(hdl, path, &zoned, B_TRUE, &prefix) != 0) 2727 return (-1); 2728 2729 if ((path_copy = strdup(path)) != NULL) { 2730 rc = create_parents(hdl, path_copy, prefix); 2731 free(path_copy); 2732 } 2733 if (path_copy == NULL || rc != 0) 2734 return (-1); 2735 2736 return (0); 2737 } 2738 2739 /* 2740 * Create a new filesystem or volume. 2741 */ 2742 int 2743 zfs_create(libzfs_handle_t *hdl, const char *path, zfs_type_t type, 2744 nvlist_t *props) 2745 { 2746 zfs_cmd_t zc = { 0 }; 2747 int ret; 2748 uint64_t size = 0; 2749 uint64_t blocksize = zfs_prop_default_numeric(ZFS_PROP_VOLBLOCKSIZE); 2750 char errbuf[1024]; 2751 uint64_t zoned; 2752 2753 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 2754 "cannot create '%s'"), path); 2755 2756 /* validate the path, taking care to note the extended error message */ 2757 if (!zfs_validate_name(hdl, path, type, B_TRUE)) 2758 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 2759 2760 /* validate parents exist */ 2761 if (check_parents(hdl, path, &zoned, B_FALSE, NULL) != 0) 2762 return (-1); 2763 2764 /* 2765 * The failure modes when creating a dataset of a different type over 2766 * one that already exists is a little strange. In particular, if you 2767 * try to create a dataset on top of an existing dataset, the ioctl() 2768 * will return ENOENT, not EEXIST. To prevent this from happening, we 2769 * first try to see if the dataset exists. 2770 */ 2771 (void) strlcpy(zc.zc_name, path, sizeof (zc.zc_name)); 2772 if (zfs_dataset_exists(hdl, zc.zc_name, ZFS_TYPE_DATASET)) { 2773 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2774 "dataset already exists")); 2775 return (zfs_error(hdl, EZFS_EXISTS, errbuf)); 2776 } 2777 2778 if (type == ZFS_TYPE_VOLUME) 2779 zc.zc_objset_type = DMU_OST_ZVOL; 2780 else 2781 zc.zc_objset_type = DMU_OST_ZFS; 2782 2783 if (props && (props = zfs_valid_proplist(hdl, type, props, 2784 zoned, NULL, errbuf)) == 0) 2785 return (-1); 2786 2787 if (type == ZFS_TYPE_VOLUME) { 2788 /* 2789 * If we are creating a volume, the size and block size must 2790 * satisfy a few restraints. First, the blocksize must be a 2791 * valid block size between SPA_{MIN,MAX}BLOCKSIZE. Second, the 2792 * volsize must be a multiple of the block size, and cannot be 2793 * zero. 2794 */ 2795 if (props == NULL || nvlist_lookup_uint64(props, 2796 zfs_prop_to_name(ZFS_PROP_VOLSIZE), &size) != 0) { 2797 nvlist_free(props); 2798 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2799 "missing volume size")); 2800 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 2801 } 2802 2803 if ((ret = nvlist_lookup_uint64(props, 2804 zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE), 2805 &blocksize)) != 0) { 2806 if (ret == ENOENT) { 2807 blocksize = zfs_prop_default_numeric( 2808 ZFS_PROP_VOLBLOCKSIZE); 2809 } else { 2810 nvlist_free(props); 2811 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2812 "missing volume block size")); 2813 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 2814 } 2815 } 2816 2817 if (size == 0) { 2818 nvlist_free(props); 2819 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2820 "volume size cannot be zero")); 2821 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 2822 } 2823 2824 if (size % blocksize != 0) { 2825 nvlist_free(props); 2826 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2827 "volume size must be a multiple of volume block " 2828 "size")); 2829 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 2830 } 2831 } 2832 2833 if (props && zcmd_write_src_nvlist(hdl, &zc, props) != 0) 2834 return (-1); 2835 nvlist_free(props); 2836 2837 /* create the dataset */ 2838 ret = zfs_ioctl(hdl, ZFS_IOC_CREATE, &zc); 2839 2840 zcmd_free_nvlists(&zc); 2841 2842 /* check for failure */ 2843 if (ret != 0) { 2844 char parent[ZFS_MAXNAMELEN]; 2845 (void) parent_name(path, parent, sizeof (parent)); 2846 2847 switch (errno) { 2848 case ENOENT: 2849 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2850 "no such parent '%s'"), parent); 2851 return (zfs_error(hdl, EZFS_NOENT, errbuf)); 2852 2853 case EINVAL: 2854 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2855 "parent '%s' is not a filesystem"), parent); 2856 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 2857 2858 case EDOM: 2859 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2860 "volume block size must be power of 2 from " 2861 "%u to %uk"), 2862 (uint_t)SPA_MINBLOCKSIZE, 2863 (uint_t)SPA_MAXBLOCKSIZE >> 10); 2864 2865 return (zfs_error(hdl, EZFS_BADPROP, errbuf)); 2866 2867 case ENOTSUP: 2868 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 2869 "pool must be upgraded to set this " 2870 "property or value")); 2871 return (zfs_error(hdl, EZFS_BADVERSION, errbuf)); 2872 #ifdef _ILP32 2873 case EOVERFLOW: 2874 /* 2875 * This platform can't address a volume this big. 2876 */ 2877 if (type == ZFS_TYPE_VOLUME) 2878 return (zfs_error(hdl, EZFS_VOLTOOBIG, 2879 errbuf)); 2880 #endif 2881 /* FALLTHROUGH */ 2882 default: 2883 return (zfs_standard_error(hdl, errno, errbuf)); 2884 } 2885 } 2886 2887 return (0); 2888 } 2889 2890 /* 2891 * Destroys the given dataset. The caller must make sure that the filesystem 2892 * isn't mounted, and that there are no active dependents. 2893 */ 2894 int 2895 zfs_destroy(zfs_handle_t *zhp, boolean_t defer) 2896 { 2897 zfs_cmd_t zc = { 0 }; 2898 2899 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 2900 2901 if (ZFS_IS_VOLUME(zhp)) { 2902 /* 2903 * If user doesn't have permissions to unshare volume, then 2904 * abort the request. This would only happen for a 2905 * non-privileged user. 2906 */ 2907 if (zfs_unshare_iscsi(zhp) != 0) { 2908 return (-1); 2909 } 2910 2911 zc.zc_objset_type = DMU_OST_ZVOL; 2912 } else { 2913 zc.zc_objset_type = DMU_OST_ZFS; 2914 } 2915 2916 zc.zc_defer_destroy = defer; 2917 if (zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_DESTROY, &zc) != 0) { 2918 return (zfs_standard_error_fmt(zhp->zfs_hdl, errno, 2919 dgettext(TEXT_DOMAIN, "cannot destroy '%s'"), 2920 zhp->zfs_name)); 2921 } 2922 2923 remove_mountpoint(zhp); 2924 2925 return (0); 2926 } 2927 2928 struct destroydata { 2929 char *snapname; 2930 boolean_t gotone; 2931 boolean_t closezhp; 2932 }; 2933 2934 static int 2935 zfs_check_snap_cb(zfs_handle_t *zhp, void *arg) 2936 { 2937 struct destroydata *dd = arg; 2938 zfs_handle_t *szhp; 2939 char name[ZFS_MAXNAMELEN]; 2940 boolean_t closezhp = dd->closezhp; 2941 int rv = 0; 2942 2943 (void) strlcpy(name, zhp->zfs_name, sizeof (name)); 2944 (void) strlcat(name, "@", sizeof (name)); 2945 (void) strlcat(name, dd->snapname, sizeof (name)); 2946 2947 szhp = make_dataset_handle(zhp->zfs_hdl, name); 2948 if (szhp) { 2949 dd->gotone = B_TRUE; 2950 zfs_close(szhp); 2951 } 2952 2953 dd->closezhp = B_TRUE; 2954 if (!dd->gotone) 2955 rv = zfs_iter_filesystems(zhp, zfs_check_snap_cb, arg); 2956 if (closezhp) 2957 zfs_close(zhp); 2958 return (rv); 2959 } 2960 2961 /* 2962 * Destroys all snapshots with the given name in zhp & descendants. 2963 */ 2964 int 2965 zfs_destroy_snaps(zfs_handle_t *zhp, char *snapname, boolean_t defer) 2966 { 2967 zfs_cmd_t zc = { 0 }; 2968 int ret; 2969 struct destroydata dd = { 0 }; 2970 2971 dd.snapname = snapname; 2972 (void) zfs_check_snap_cb(zhp, &dd); 2973 2974 if (!dd.gotone) { 2975 return (zfs_standard_error_fmt(zhp->zfs_hdl, ENOENT, 2976 dgettext(TEXT_DOMAIN, "cannot destroy '%s@%s'"), 2977 zhp->zfs_name, snapname)); 2978 } 2979 2980 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 2981 (void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value)); 2982 zc.zc_defer_destroy = defer; 2983 2984 ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_DESTROY_SNAPS, &zc); 2985 if (ret != 0) { 2986 char errbuf[1024]; 2987 2988 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 2989 "cannot destroy '%s@%s'"), zc.zc_name, snapname); 2990 2991 switch (errno) { 2992 case EEXIST: 2993 zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN, 2994 "snapshot is cloned")); 2995 return (zfs_error(zhp->zfs_hdl, EZFS_EXISTS, errbuf)); 2996 2997 default: 2998 return (zfs_standard_error(zhp->zfs_hdl, errno, 2999 errbuf)); 3000 } 3001 } 3002 3003 return (0); 3004 } 3005 3006 /* 3007 * Clones the given dataset. The target must be of the same type as the source. 3008 */ 3009 int 3010 zfs_clone(zfs_handle_t *zhp, const char *target, nvlist_t *props) 3011 { 3012 zfs_cmd_t zc = { 0 }; 3013 char parent[ZFS_MAXNAMELEN]; 3014 int ret; 3015 char errbuf[1024]; 3016 libzfs_handle_t *hdl = zhp->zfs_hdl; 3017 zfs_type_t type; 3018 uint64_t zoned; 3019 3020 assert(zhp->zfs_type == ZFS_TYPE_SNAPSHOT); 3021 3022 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3023 "cannot create '%s'"), target); 3024 3025 /* validate the target name */ 3026 if (!zfs_validate_name(hdl, target, ZFS_TYPE_FILESYSTEM, B_TRUE)) 3027 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 3028 3029 /* validate parents exist */ 3030 if (check_parents(hdl, target, &zoned, B_FALSE, NULL) != 0) 3031 return (-1); 3032 3033 (void) parent_name(target, parent, sizeof (parent)); 3034 3035 /* do the clone */ 3036 if (ZFS_IS_VOLUME(zhp)) { 3037 zc.zc_objset_type = DMU_OST_ZVOL; 3038 type = ZFS_TYPE_VOLUME; 3039 } else { 3040 zc.zc_objset_type = DMU_OST_ZFS; 3041 type = ZFS_TYPE_FILESYSTEM; 3042 } 3043 3044 if (props) { 3045 if ((props = zfs_valid_proplist(hdl, type, props, zoned, 3046 zhp, errbuf)) == NULL) 3047 return (-1); 3048 3049 if (zcmd_write_src_nvlist(hdl, &zc, props) != 0) { 3050 nvlist_free(props); 3051 return (-1); 3052 } 3053 3054 nvlist_free(props); 3055 } 3056 3057 (void) strlcpy(zc.zc_name, target, sizeof (zc.zc_name)); 3058 (void) strlcpy(zc.zc_value, zhp->zfs_name, sizeof (zc.zc_value)); 3059 ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_CREATE, &zc); 3060 3061 zcmd_free_nvlists(&zc); 3062 3063 if (ret != 0) { 3064 switch (errno) { 3065 3066 case ENOENT: 3067 /* 3068 * The parent doesn't exist. We should have caught this 3069 * above, but there may a race condition that has since 3070 * destroyed the parent. 3071 * 3072 * At this point, we don't know whether it's the source 3073 * that doesn't exist anymore, or whether the target 3074 * dataset doesn't exist. 3075 */ 3076 zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN, 3077 "no such parent '%s'"), parent); 3078 return (zfs_error(zhp->zfs_hdl, EZFS_NOENT, errbuf)); 3079 3080 case EXDEV: 3081 zfs_error_aux(zhp->zfs_hdl, dgettext(TEXT_DOMAIN, 3082 "source and target pools differ")); 3083 return (zfs_error(zhp->zfs_hdl, EZFS_CROSSTARGET, 3084 errbuf)); 3085 3086 default: 3087 return (zfs_standard_error(zhp->zfs_hdl, errno, 3088 errbuf)); 3089 } 3090 } 3091 3092 return (ret); 3093 } 3094 3095 /* 3096 * Promotes the given clone fs to be the clone parent. 3097 */ 3098 int 3099 zfs_promote(zfs_handle_t *zhp) 3100 { 3101 libzfs_handle_t *hdl = zhp->zfs_hdl; 3102 zfs_cmd_t zc = { 0 }; 3103 char parent[MAXPATHLEN]; 3104 int ret; 3105 char errbuf[1024]; 3106 3107 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3108 "cannot promote '%s'"), zhp->zfs_name); 3109 3110 if (zhp->zfs_type == ZFS_TYPE_SNAPSHOT) { 3111 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3112 "snapshots can not be promoted")); 3113 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 3114 } 3115 3116 (void) strlcpy(parent, zhp->zfs_dmustats.dds_origin, sizeof (parent)); 3117 if (parent[0] == '\0') { 3118 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3119 "not a cloned filesystem")); 3120 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 3121 } 3122 3123 (void) strlcpy(zc.zc_value, zhp->zfs_dmustats.dds_origin, 3124 sizeof (zc.zc_value)); 3125 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3126 ret = zfs_ioctl(hdl, ZFS_IOC_PROMOTE, &zc); 3127 3128 if (ret != 0) { 3129 int save_errno = errno; 3130 3131 switch (save_errno) { 3132 case EEXIST: 3133 /* There is a conflicting snapshot name. */ 3134 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3135 "conflicting snapshot '%s' from parent '%s'"), 3136 zc.zc_string, parent); 3137 return (zfs_error(hdl, EZFS_EXISTS, errbuf)); 3138 3139 default: 3140 return (zfs_standard_error(hdl, save_errno, errbuf)); 3141 } 3142 } 3143 return (ret); 3144 } 3145 3146 /* 3147 * Takes a snapshot of the given dataset. 3148 */ 3149 int 3150 zfs_snapshot(libzfs_handle_t *hdl, const char *path, boolean_t recursive, 3151 nvlist_t *props) 3152 { 3153 const char *delim; 3154 char parent[ZFS_MAXNAMELEN]; 3155 zfs_handle_t *zhp; 3156 zfs_cmd_t zc = { 0 }; 3157 int ret; 3158 char errbuf[1024]; 3159 3160 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3161 "cannot snapshot '%s'"), path); 3162 3163 /* validate the target name */ 3164 if (!zfs_validate_name(hdl, path, ZFS_TYPE_SNAPSHOT, B_TRUE)) 3165 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 3166 3167 if (props) { 3168 if ((props = zfs_valid_proplist(hdl, ZFS_TYPE_SNAPSHOT, 3169 props, B_FALSE, NULL, errbuf)) == NULL) 3170 return (-1); 3171 3172 if (zcmd_write_src_nvlist(hdl, &zc, props) != 0) { 3173 nvlist_free(props); 3174 return (-1); 3175 } 3176 3177 nvlist_free(props); 3178 } 3179 3180 /* make sure the parent exists and is of the appropriate type */ 3181 delim = strchr(path, '@'); 3182 (void) strncpy(parent, path, delim - path); 3183 parent[delim - path] = '\0'; 3184 3185 if ((zhp = zfs_open(hdl, parent, ZFS_TYPE_FILESYSTEM | 3186 ZFS_TYPE_VOLUME)) == NULL) { 3187 zcmd_free_nvlists(&zc); 3188 return (-1); 3189 } 3190 3191 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3192 (void) strlcpy(zc.zc_value, delim+1, sizeof (zc.zc_value)); 3193 if (ZFS_IS_VOLUME(zhp)) 3194 zc.zc_objset_type = DMU_OST_ZVOL; 3195 else 3196 zc.zc_objset_type = DMU_OST_ZFS; 3197 zc.zc_cookie = recursive; 3198 ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_SNAPSHOT, &zc); 3199 3200 zcmd_free_nvlists(&zc); 3201 3202 /* 3203 * if it was recursive, the one that actually failed will be in 3204 * zc.zc_name. 3205 */ 3206 if (ret != 0) { 3207 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3208 "cannot create snapshot '%s@%s'"), zc.zc_name, zc.zc_value); 3209 (void) zfs_standard_error(hdl, errno, errbuf); 3210 } 3211 3212 zfs_close(zhp); 3213 3214 return (ret); 3215 } 3216 3217 /* 3218 * Destroy any more recent snapshots. We invoke this callback on any dependents 3219 * of the snapshot first. If the 'cb_dependent' member is non-zero, then this 3220 * is a dependent and we should just destroy it without checking the transaction 3221 * group. 3222 */ 3223 typedef struct rollback_data { 3224 const char *cb_target; /* the snapshot */ 3225 uint64_t cb_create; /* creation time reference */ 3226 boolean_t cb_error; 3227 boolean_t cb_dependent; 3228 boolean_t cb_force; 3229 } rollback_data_t; 3230 3231 static int 3232 rollback_destroy(zfs_handle_t *zhp, void *data) 3233 { 3234 rollback_data_t *cbp = data; 3235 3236 if (!cbp->cb_dependent) { 3237 if (strcmp(zhp->zfs_name, cbp->cb_target) != 0 && 3238 zfs_get_type(zhp) == ZFS_TYPE_SNAPSHOT && 3239 zfs_prop_get_int(zhp, ZFS_PROP_CREATETXG) > 3240 cbp->cb_create) { 3241 char *logstr; 3242 3243 cbp->cb_dependent = B_TRUE; 3244 cbp->cb_error |= zfs_iter_dependents(zhp, B_FALSE, 3245 rollback_destroy, cbp); 3246 cbp->cb_dependent = B_FALSE; 3247 3248 logstr = zhp->zfs_hdl->libzfs_log_str; 3249 zhp->zfs_hdl->libzfs_log_str = NULL; 3250 cbp->cb_error |= zfs_destroy(zhp, B_FALSE); 3251 zhp->zfs_hdl->libzfs_log_str = logstr; 3252 } 3253 } else { 3254 /* We must destroy this clone; first unmount it */ 3255 prop_changelist_t *clp; 3256 3257 clp = changelist_gather(zhp, ZFS_PROP_NAME, 0, 3258 cbp->cb_force ? MS_FORCE: 0); 3259 if (clp == NULL || changelist_prefix(clp) != 0) { 3260 cbp->cb_error = B_TRUE; 3261 zfs_close(zhp); 3262 return (0); 3263 } 3264 if (zfs_destroy(zhp, B_FALSE) != 0) 3265 cbp->cb_error = B_TRUE; 3266 else 3267 changelist_remove(clp, zhp->zfs_name); 3268 (void) changelist_postfix(clp); 3269 changelist_free(clp); 3270 } 3271 3272 zfs_close(zhp); 3273 return (0); 3274 } 3275 3276 /* 3277 * Given a dataset, rollback to a specific snapshot, discarding any 3278 * data changes since then and making it the active dataset. 3279 * 3280 * Any snapshots more recent than the target are destroyed, along with 3281 * their dependents. 3282 */ 3283 int 3284 zfs_rollback(zfs_handle_t *zhp, zfs_handle_t *snap, boolean_t force) 3285 { 3286 rollback_data_t cb = { 0 }; 3287 int err; 3288 zfs_cmd_t zc = { 0 }; 3289 boolean_t restore_resv = 0; 3290 uint64_t old_volsize, new_volsize; 3291 zfs_prop_t resv_prop; 3292 3293 assert(zhp->zfs_type == ZFS_TYPE_FILESYSTEM || 3294 zhp->zfs_type == ZFS_TYPE_VOLUME); 3295 3296 /* 3297 * Destroy all recent snapshots and its dependends. 3298 */ 3299 cb.cb_force = force; 3300 cb.cb_target = snap->zfs_name; 3301 cb.cb_create = zfs_prop_get_int(snap, ZFS_PROP_CREATETXG); 3302 (void) zfs_iter_children(zhp, rollback_destroy, &cb); 3303 3304 if (cb.cb_error) 3305 return (-1); 3306 3307 /* 3308 * Now that we have verified that the snapshot is the latest, 3309 * rollback to the given snapshot. 3310 */ 3311 3312 if (zhp->zfs_type == ZFS_TYPE_VOLUME) { 3313 if (zfs_which_resv_prop(zhp, &resv_prop) < 0) 3314 return (-1); 3315 old_volsize = zfs_prop_get_int(zhp, ZFS_PROP_VOLSIZE); 3316 restore_resv = 3317 (old_volsize == zfs_prop_get_int(zhp, resv_prop)); 3318 } 3319 3320 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3321 3322 if (ZFS_IS_VOLUME(zhp)) 3323 zc.zc_objset_type = DMU_OST_ZVOL; 3324 else 3325 zc.zc_objset_type = DMU_OST_ZFS; 3326 3327 /* 3328 * We rely on zfs_iter_children() to verify that there are no 3329 * newer snapshots for the given dataset. Therefore, we can 3330 * simply pass the name on to the ioctl() call. There is still 3331 * an unlikely race condition where the user has taken a 3332 * snapshot since we verified that this was the most recent. 3333 * 3334 */ 3335 if ((err = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_ROLLBACK, &zc)) != 0) { 3336 (void) zfs_standard_error_fmt(zhp->zfs_hdl, errno, 3337 dgettext(TEXT_DOMAIN, "cannot rollback '%s'"), 3338 zhp->zfs_name); 3339 return (err); 3340 } 3341 3342 /* 3343 * For volumes, if the pre-rollback volsize matched the pre- 3344 * rollback reservation and the volsize has changed then set 3345 * the reservation property to the post-rollback volsize. 3346 * Make a new handle since the rollback closed the dataset. 3347 */ 3348 if ((zhp->zfs_type == ZFS_TYPE_VOLUME) && 3349 (zhp = make_dataset_handle(zhp->zfs_hdl, zhp->zfs_name))) { 3350 if (restore_resv) { 3351 new_volsize = zfs_prop_get_int(zhp, ZFS_PROP_VOLSIZE); 3352 if (old_volsize != new_volsize) 3353 err = zfs_prop_set_int(zhp, resv_prop, 3354 new_volsize); 3355 } 3356 zfs_close(zhp); 3357 } 3358 return (err); 3359 } 3360 3361 /* 3362 * Iterate over all dependents for a given dataset. This includes both 3363 * hierarchical dependents (children) and data dependents (snapshots and 3364 * clones). The bulk of the processing occurs in get_dependents() in 3365 * libzfs_graph.c. 3366 */ 3367 int 3368 zfs_iter_dependents(zfs_handle_t *zhp, boolean_t allowrecursion, 3369 zfs_iter_f func, void *data) 3370 { 3371 char **dependents; 3372 size_t count; 3373 int i; 3374 zfs_handle_t *child; 3375 int ret = 0; 3376 3377 if (get_dependents(zhp->zfs_hdl, allowrecursion, zhp->zfs_name, 3378 &dependents, &count) != 0) 3379 return (-1); 3380 3381 for (i = 0; i < count; i++) { 3382 if ((child = make_dataset_handle(zhp->zfs_hdl, 3383 dependents[i])) == NULL) 3384 continue; 3385 3386 if ((ret = func(child, data)) != 0) 3387 break; 3388 } 3389 3390 for (i = 0; i < count; i++) 3391 free(dependents[i]); 3392 free(dependents); 3393 3394 return (ret); 3395 } 3396 3397 /* 3398 * Renames the given dataset. 3399 */ 3400 int 3401 zfs_rename(zfs_handle_t *zhp, const char *target, boolean_t recursive) 3402 { 3403 int ret; 3404 zfs_cmd_t zc = { 0 }; 3405 char *delim; 3406 prop_changelist_t *cl = NULL; 3407 zfs_handle_t *zhrp = NULL; 3408 char *parentname = NULL; 3409 char parent[ZFS_MAXNAMELEN]; 3410 libzfs_handle_t *hdl = zhp->zfs_hdl; 3411 char errbuf[1024]; 3412 3413 /* if we have the same exact name, just return success */ 3414 if (strcmp(zhp->zfs_name, target) == 0) 3415 return (0); 3416 3417 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3418 "cannot rename to '%s'"), target); 3419 3420 /* 3421 * Make sure the target name is valid 3422 */ 3423 if (zhp->zfs_type == ZFS_TYPE_SNAPSHOT) { 3424 if ((strchr(target, '@') == NULL) || 3425 *target == '@') { 3426 /* 3427 * Snapshot target name is abbreviated, 3428 * reconstruct full dataset name 3429 */ 3430 (void) strlcpy(parent, zhp->zfs_name, 3431 sizeof (parent)); 3432 delim = strchr(parent, '@'); 3433 if (strchr(target, '@') == NULL) 3434 *(++delim) = '\0'; 3435 else 3436 *delim = '\0'; 3437 (void) strlcat(parent, target, sizeof (parent)); 3438 target = parent; 3439 } else { 3440 /* 3441 * Make sure we're renaming within the same dataset. 3442 */ 3443 delim = strchr(target, '@'); 3444 if (strncmp(zhp->zfs_name, target, delim - target) 3445 != 0 || zhp->zfs_name[delim - target] != '@') { 3446 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3447 "snapshots must be part of same " 3448 "dataset")); 3449 return (zfs_error(hdl, EZFS_CROSSTARGET, 3450 errbuf)); 3451 } 3452 } 3453 if (!zfs_validate_name(hdl, target, zhp->zfs_type, B_TRUE)) 3454 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 3455 } else { 3456 if (recursive) { 3457 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3458 "recursive rename must be a snapshot")); 3459 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 3460 } 3461 3462 if (!zfs_validate_name(hdl, target, zhp->zfs_type, B_TRUE)) 3463 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 3464 uint64_t unused; 3465 3466 /* validate parents */ 3467 if (check_parents(hdl, target, &unused, B_FALSE, NULL) != 0) 3468 return (-1); 3469 3470 (void) parent_name(target, parent, sizeof (parent)); 3471 3472 /* make sure we're in the same pool */ 3473 verify((delim = strchr(target, '/')) != NULL); 3474 if (strncmp(zhp->zfs_name, target, delim - target) != 0 || 3475 zhp->zfs_name[delim - target] != '/') { 3476 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3477 "datasets must be within same pool")); 3478 return (zfs_error(hdl, EZFS_CROSSTARGET, errbuf)); 3479 } 3480 3481 /* new name cannot be a child of the current dataset name */ 3482 if (strncmp(parent, zhp->zfs_name, 3483 strlen(zhp->zfs_name)) == 0) { 3484 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3485 "New dataset name cannot be a descendent of " 3486 "current dataset name")); 3487 return (zfs_error(hdl, EZFS_INVALIDNAME, errbuf)); 3488 } 3489 } 3490 3491 (void) snprintf(errbuf, sizeof (errbuf), 3492 dgettext(TEXT_DOMAIN, "cannot rename '%s'"), zhp->zfs_name); 3493 3494 if (getzoneid() == GLOBAL_ZONEID && 3495 zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) { 3496 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3497 "dataset is used in a non-global zone")); 3498 return (zfs_error(hdl, EZFS_ZONED, errbuf)); 3499 } 3500 3501 if (recursive) { 3502 3503 parentname = zfs_strdup(zhp->zfs_hdl, zhp->zfs_name); 3504 if (parentname == NULL) { 3505 ret = -1; 3506 goto error; 3507 } 3508 delim = strchr(parentname, '@'); 3509 *delim = '\0'; 3510 zhrp = zfs_open(zhp->zfs_hdl, parentname, ZFS_TYPE_DATASET); 3511 if (zhrp == NULL) { 3512 ret = -1; 3513 goto error; 3514 } 3515 3516 } else { 3517 if ((cl = changelist_gather(zhp, ZFS_PROP_NAME, 0, 0)) == NULL) 3518 return (-1); 3519 3520 if (changelist_haszonedchild(cl)) { 3521 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3522 "child dataset with inherited mountpoint is used " 3523 "in a non-global zone")); 3524 (void) zfs_error(hdl, EZFS_ZONED, errbuf); 3525 goto error; 3526 } 3527 3528 if ((ret = changelist_prefix(cl)) != 0) 3529 goto error; 3530 } 3531 3532 if (ZFS_IS_VOLUME(zhp)) 3533 zc.zc_objset_type = DMU_OST_ZVOL; 3534 else 3535 zc.zc_objset_type = DMU_OST_ZFS; 3536 3537 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3538 (void) strlcpy(zc.zc_value, target, sizeof (zc.zc_value)); 3539 3540 zc.zc_cookie = recursive; 3541 3542 if ((ret = zfs_ioctl(zhp->zfs_hdl, ZFS_IOC_RENAME, &zc)) != 0) { 3543 /* 3544 * if it was recursive, the one that actually failed will 3545 * be in zc.zc_name 3546 */ 3547 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3548 "cannot rename '%s'"), zc.zc_name); 3549 3550 if (recursive && errno == EEXIST) { 3551 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3552 "a child dataset already has a snapshot " 3553 "with the new name")); 3554 (void) zfs_error(hdl, EZFS_EXISTS, errbuf); 3555 } else { 3556 (void) zfs_standard_error(zhp->zfs_hdl, errno, errbuf); 3557 } 3558 3559 /* 3560 * On failure, we still want to remount any filesystems that 3561 * were previously mounted, so we don't alter the system state. 3562 */ 3563 if (!recursive) 3564 (void) changelist_postfix(cl); 3565 } else { 3566 if (!recursive) { 3567 changelist_rename(cl, zfs_get_name(zhp), target); 3568 ret = changelist_postfix(cl); 3569 } 3570 } 3571 3572 error: 3573 if (parentname) { 3574 free(parentname); 3575 } 3576 if (zhrp) { 3577 zfs_close(zhrp); 3578 } 3579 if (cl) { 3580 changelist_free(cl); 3581 } 3582 return (ret); 3583 } 3584 3585 nvlist_t * 3586 zfs_get_user_props(zfs_handle_t *zhp) 3587 { 3588 return (zhp->zfs_user_props); 3589 } 3590 3591 nvlist_t * 3592 zfs_get_recvd_props(zfs_handle_t *zhp) 3593 { 3594 if (zhp->zfs_recvd_props == NULL) 3595 if (get_recvd_props_ioctl(zhp) != 0) 3596 return (NULL); 3597 return (zhp->zfs_recvd_props); 3598 } 3599 3600 /* 3601 * This function is used by 'zfs list' to determine the exact set of columns to 3602 * display, and their maximum widths. This does two main things: 3603 * 3604 * - If this is a list of all properties, then expand the list to include 3605 * all native properties, and set a flag so that for each dataset we look 3606 * for new unique user properties and add them to the list. 3607 * 3608 * - For non fixed-width properties, keep track of the maximum width seen 3609 * so that we can size the column appropriately. If the user has 3610 * requested received property values, we also need to compute the width 3611 * of the RECEIVED column. 3612 */ 3613 int 3614 zfs_expand_proplist(zfs_handle_t *zhp, zprop_list_t **plp, boolean_t received) 3615 { 3616 libzfs_handle_t *hdl = zhp->zfs_hdl; 3617 zprop_list_t *entry; 3618 zprop_list_t **last, **start; 3619 nvlist_t *userprops, *propval; 3620 nvpair_t *elem; 3621 char *strval; 3622 char buf[ZFS_MAXPROPLEN]; 3623 3624 if (zprop_expand_list(hdl, plp, ZFS_TYPE_DATASET) != 0) 3625 return (-1); 3626 3627 userprops = zfs_get_user_props(zhp); 3628 3629 entry = *plp; 3630 if (entry->pl_all && nvlist_next_nvpair(userprops, NULL) != NULL) { 3631 /* 3632 * Go through and add any user properties as necessary. We 3633 * start by incrementing our list pointer to the first 3634 * non-native property. 3635 */ 3636 start = plp; 3637 while (*start != NULL) { 3638 if ((*start)->pl_prop == ZPROP_INVAL) 3639 break; 3640 start = &(*start)->pl_next; 3641 } 3642 3643 elem = NULL; 3644 while ((elem = nvlist_next_nvpair(userprops, elem)) != NULL) { 3645 /* 3646 * See if we've already found this property in our list. 3647 */ 3648 for (last = start; *last != NULL; 3649 last = &(*last)->pl_next) { 3650 if (strcmp((*last)->pl_user_prop, 3651 nvpair_name(elem)) == 0) 3652 break; 3653 } 3654 3655 if (*last == NULL) { 3656 if ((entry = zfs_alloc(hdl, 3657 sizeof (zprop_list_t))) == NULL || 3658 ((entry->pl_user_prop = zfs_strdup(hdl, 3659 nvpair_name(elem)))) == NULL) { 3660 free(entry); 3661 return (-1); 3662 } 3663 3664 entry->pl_prop = ZPROP_INVAL; 3665 entry->pl_width = strlen(nvpair_name(elem)); 3666 entry->pl_all = B_TRUE; 3667 *last = entry; 3668 } 3669 } 3670 } 3671 3672 /* 3673 * Now go through and check the width of any non-fixed columns 3674 */ 3675 for (entry = *plp; entry != NULL; entry = entry->pl_next) { 3676 if (entry->pl_fixed) 3677 continue; 3678 3679 if (entry->pl_prop != ZPROP_INVAL) { 3680 if (zfs_prop_get(zhp, entry->pl_prop, 3681 buf, sizeof (buf), NULL, NULL, 0, B_FALSE) == 0) { 3682 if (strlen(buf) > entry->pl_width) 3683 entry->pl_width = strlen(buf); 3684 } 3685 if (received && zfs_prop_get_recvd(zhp, 3686 zfs_prop_to_name(entry->pl_prop), 3687 buf, sizeof (buf), B_FALSE) == 0) 3688 if (strlen(buf) > entry->pl_recvd_width) 3689 entry->pl_recvd_width = strlen(buf); 3690 } else { 3691 if (nvlist_lookup_nvlist(userprops, entry->pl_user_prop, 3692 &propval) == 0) { 3693 verify(nvlist_lookup_string(propval, 3694 ZPROP_VALUE, &strval) == 0); 3695 if (strlen(strval) > entry->pl_width) 3696 entry->pl_width = strlen(strval); 3697 } 3698 if (received && zfs_prop_get_recvd(zhp, 3699 entry->pl_user_prop, 3700 buf, sizeof (buf), B_FALSE) == 0) 3701 if (strlen(buf) > entry->pl_recvd_width) 3702 entry->pl_recvd_width = strlen(buf); 3703 } 3704 } 3705 3706 return (0); 3707 } 3708 3709 int 3710 zfs_iscsi_perm_check(libzfs_handle_t *hdl, char *dataset, ucred_t *cred) 3711 { 3712 zfs_cmd_t zc = { 0 }; 3713 nvlist_t *nvp; 3714 gid_t gid; 3715 uid_t uid; 3716 const gid_t *groups; 3717 int group_cnt; 3718 int error; 3719 3720 if (nvlist_alloc(&nvp, NV_UNIQUE_NAME, 0) != 0) 3721 return (no_memory(hdl)); 3722 3723 uid = ucred_geteuid(cred); 3724 gid = ucred_getegid(cred); 3725 group_cnt = ucred_getgroups(cred, &groups); 3726 3727 if (uid == (uid_t)-1 || gid == (uid_t)-1 || group_cnt == (uid_t)-1) 3728 return (1); 3729 3730 if (nvlist_add_uint32(nvp, ZFS_DELEG_PERM_UID, uid) != 0) { 3731 nvlist_free(nvp); 3732 return (1); 3733 } 3734 3735 if (nvlist_add_uint32(nvp, ZFS_DELEG_PERM_GID, gid) != 0) { 3736 nvlist_free(nvp); 3737 return (1); 3738 } 3739 3740 if (nvlist_add_uint32_array(nvp, 3741 ZFS_DELEG_PERM_GROUPS, (uint32_t *)groups, group_cnt) != 0) { 3742 nvlist_free(nvp); 3743 return (1); 3744 } 3745 (void) strlcpy(zc.zc_name, dataset, sizeof (zc.zc_name)); 3746 3747 if (zcmd_write_src_nvlist(hdl, &zc, nvp)) 3748 return (-1); 3749 3750 error = ioctl(hdl->libzfs_fd, ZFS_IOC_ISCSI_PERM_CHECK, &zc); 3751 nvlist_free(nvp); 3752 return (error); 3753 } 3754 3755 int 3756 zfs_deleg_share_nfs(libzfs_handle_t *hdl, char *dataset, char *path, 3757 char *resource, void *export, void *sharetab, 3758 int sharemax, zfs_share_op_t operation) 3759 { 3760 zfs_cmd_t zc = { 0 }; 3761 int error; 3762 3763 (void) strlcpy(zc.zc_name, dataset, sizeof (zc.zc_name)); 3764 (void) strlcpy(zc.zc_value, path, sizeof (zc.zc_value)); 3765 if (resource) 3766 (void) strlcpy(zc.zc_string, resource, sizeof (zc.zc_string)); 3767 zc.zc_share.z_sharedata = (uint64_t)(uintptr_t)sharetab; 3768 zc.zc_share.z_exportdata = (uint64_t)(uintptr_t)export; 3769 zc.zc_share.z_sharetype = operation; 3770 zc.zc_share.z_sharemax = sharemax; 3771 error = ioctl(hdl->libzfs_fd, ZFS_IOC_SHARE, &zc); 3772 return (error); 3773 } 3774 3775 void 3776 zfs_prune_proplist(zfs_handle_t *zhp, uint8_t *props) 3777 { 3778 nvpair_t *curr; 3779 3780 /* 3781 * Keep a reference to the props-table against which we prune the 3782 * properties. 3783 */ 3784 zhp->zfs_props_table = props; 3785 3786 curr = nvlist_next_nvpair(zhp->zfs_props, NULL); 3787 3788 while (curr) { 3789 zfs_prop_t zfs_prop = zfs_name_to_prop(nvpair_name(curr)); 3790 nvpair_t *next = nvlist_next_nvpair(zhp->zfs_props, curr); 3791 3792 /* 3793 * User properties will result in ZPROP_INVAL, and since we 3794 * only know how to prune standard ZFS properties, we always 3795 * leave these in the list. This can also happen if we 3796 * encounter an unknown DSL property (when running older 3797 * software, for example). 3798 */ 3799 if (zfs_prop != ZPROP_INVAL && props[zfs_prop] == B_FALSE) 3800 (void) nvlist_remove(zhp->zfs_props, 3801 nvpair_name(curr), nvpair_type(curr)); 3802 curr = next; 3803 } 3804 } 3805 3806 static int 3807 zfs_smb_acl_mgmt(libzfs_handle_t *hdl, char *dataset, char *path, 3808 zfs_smb_acl_op_t cmd, char *resource1, char *resource2) 3809 { 3810 zfs_cmd_t zc = { 0 }; 3811 nvlist_t *nvlist = NULL; 3812 int error; 3813 3814 (void) strlcpy(zc.zc_name, dataset, sizeof (zc.zc_name)); 3815 (void) strlcpy(zc.zc_value, path, sizeof (zc.zc_value)); 3816 zc.zc_cookie = (uint64_t)cmd; 3817 3818 if (cmd == ZFS_SMB_ACL_RENAME) { 3819 if (nvlist_alloc(&nvlist, NV_UNIQUE_NAME, 0) != 0) { 3820 (void) no_memory(hdl); 3821 return (NULL); 3822 } 3823 } 3824 3825 switch (cmd) { 3826 case ZFS_SMB_ACL_ADD: 3827 case ZFS_SMB_ACL_REMOVE: 3828 (void) strlcpy(zc.zc_string, resource1, sizeof (zc.zc_string)); 3829 break; 3830 case ZFS_SMB_ACL_RENAME: 3831 if (nvlist_add_string(nvlist, ZFS_SMB_ACL_SRC, 3832 resource1) != 0) { 3833 (void) no_memory(hdl); 3834 return (-1); 3835 } 3836 if (nvlist_add_string(nvlist, ZFS_SMB_ACL_TARGET, 3837 resource2) != 0) { 3838 (void) no_memory(hdl); 3839 return (-1); 3840 } 3841 if (zcmd_write_src_nvlist(hdl, &zc, nvlist) != 0) { 3842 nvlist_free(nvlist); 3843 return (-1); 3844 } 3845 break; 3846 case ZFS_SMB_ACL_PURGE: 3847 break; 3848 default: 3849 return (-1); 3850 } 3851 error = ioctl(hdl->libzfs_fd, ZFS_IOC_SMB_ACL, &zc); 3852 if (nvlist) 3853 nvlist_free(nvlist); 3854 return (error); 3855 } 3856 3857 int 3858 zfs_smb_acl_add(libzfs_handle_t *hdl, char *dataset, 3859 char *path, char *resource) 3860 { 3861 return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_ADD, 3862 resource, NULL)); 3863 } 3864 3865 int 3866 zfs_smb_acl_remove(libzfs_handle_t *hdl, char *dataset, 3867 char *path, char *resource) 3868 { 3869 return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_REMOVE, 3870 resource, NULL)); 3871 } 3872 3873 int 3874 zfs_smb_acl_purge(libzfs_handle_t *hdl, char *dataset, char *path) 3875 { 3876 return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_PURGE, 3877 NULL, NULL)); 3878 } 3879 3880 int 3881 zfs_smb_acl_rename(libzfs_handle_t *hdl, char *dataset, char *path, 3882 char *oldname, char *newname) 3883 { 3884 return (zfs_smb_acl_mgmt(hdl, dataset, path, ZFS_SMB_ACL_RENAME, 3885 oldname, newname)); 3886 } 3887 3888 int 3889 zfs_userspace(zfs_handle_t *zhp, zfs_userquota_prop_t type, 3890 zfs_userspace_cb_t func, void *arg) 3891 { 3892 zfs_cmd_t zc = { 0 }; 3893 int error; 3894 zfs_useracct_t buf[100]; 3895 3896 (void) strncpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3897 3898 zc.zc_objset_type = type; 3899 zc.zc_nvlist_dst = (uintptr_t)buf; 3900 3901 /* CONSTCOND */ 3902 while (1) { 3903 zfs_useracct_t *zua = buf; 3904 3905 zc.zc_nvlist_dst_size = sizeof (buf); 3906 error = ioctl(zhp->zfs_hdl->libzfs_fd, 3907 ZFS_IOC_USERSPACE_MANY, &zc); 3908 if (error || zc.zc_nvlist_dst_size == 0) 3909 break; 3910 3911 while (zc.zc_nvlist_dst_size > 0) { 3912 error = func(arg, zua->zu_domain, zua->zu_rid, 3913 zua->zu_space); 3914 if (error != 0) 3915 return (error); 3916 zua++; 3917 zc.zc_nvlist_dst_size -= sizeof (zfs_useracct_t); 3918 } 3919 } 3920 3921 return (error); 3922 } 3923 3924 int 3925 zfs_hold(zfs_handle_t *zhp, const char *snapname, const char *tag, 3926 boolean_t recursive, boolean_t temphold, boolean_t enoent_ok) 3927 { 3928 zfs_cmd_t zc = { 0 }; 3929 libzfs_handle_t *hdl = zhp->zfs_hdl; 3930 3931 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 3932 (void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value)); 3933 if (strlcpy(zc.zc_string, tag, sizeof (zc.zc_string)) 3934 >= sizeof (zc.zc_string)) 3935 return (zfs_error(hdl, EZFS_TAGTOOLONG, tag)); 3936 zc.zc_cookie = recursive; 3937 zc.zc_temphold = temphold; 3938 3939 if (zfs_ioctl(hdl, ZFS_IOC_HOLD, &zc) != 0) { 3940 char errbuf[ZFS_MAXNAMELEN+32]; 3941 3942 /* 3943 * if it was recursive, the one that actually failed will be in 3944 * zc.zc_name. 3945 */ 3946 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 3947 "cannot hold '%s@%s'"), zc.zc_name, snapname); 3948 switch (errno) { 3949 case E2BIG: 3950 /* 3951 * Temporary tags wind up having the ds object id 3952 * prepended. So even if we passed the length check 3953 * above, it's still possible for the tag to wind 3954 * up being slightly too long. 3955 */ 3956 return (zfs_error(hdl, EZFS_TAGTOOLONG, errbuf)); 3957 case ENOTSUP: 3958 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 3959 "pool must be upgraded")); 3960 return (zfs_error(hdl, EZFS_BADVERSION, errbuf)); 3961 case EINVAL: 3962 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 3963 case EEXIST: 3964 return (zfs_error(hdl, EZFS_REFTAG_HOLD, errbuf)); 3965 case ENOENT: 3966 if (enoent_ok) 3967 return (0); 3968 /* FALLTHROUGH */ 3969 default: 3970 return (zfs_standard_error_fmt(hdl, errno, errbuf)); 3971 } 3972 } 3973 3974 return (0); 3975 } 3976 3977 struct hold_range_arg { 3978 zfs_handle_t *origin; 3979 const char *fromsnap; 3980 const char *tosnap; 3981 char lastsnapheld[ZFS_MAXNAMELEN]; 3982 const char *tag; 3983 boolean_t temphold; 3984 boolean_t seento; 3985 boolean_t seenfrom; 3986 boolean_t holding; 3987 }; 3988 3989 static int 3990 zfs_hold_range_one(zfs_handle_t *zhp, void *arg) 3991 { 3992 struct hold_range_arg *hra = arg; 3993 const char *thissnap; 3994 int error; 3995 3996 thissnap = strchr(zfs_get_name(zhp), '@') + 1; 3997 3998 if (hra->fromsnap && !hra->seenfrom && 3999 strcmp(hra->fromsnap, thissnap) == 0) 4000 hra->seenfrom = B_TRUE; 4001 4002 /* snap is older or newer than the desired range, ignore it */ 4003 if (hra->seento || !hra->seenfrom) { 4004 zfs_close(zhp); 4005 return (0); 4006 } 4007 4008 if (hra->holding) { 4009 /* We could be racing with destroy, so ignore ENOENT. */ 4010 error = zfs_hold(hra->origin, thissnap, hra->tag, B_FALSE, 4011 hra->temphold, B_TRUE); 4012 if (error == 0) { 4013 (void) strlcpy(hra->lastsnapheld, zfs_get_name(zhp), 4014 sizeof (hra->lastsnapheld)); 4015 } 4016 } else { 4017 error = zfs_release(hra->origin, thissnap, hra->tag, B_FALSE); 4018 } 4019 4020 if (!hra->seento && strcmp(hra->tosnap, thissnap) == 0) 4021 hra->seento = B_TRUE; 4022 4023 zfs_close(zhp); 4024 return (error); 4025 } 4026 4027 /* 4028 * Add a user hold on the set of snapshots starting with fromsnap up to 4029 * and including tosnap. If we're unable to to acquire a particular hold, 4030 * undo any holds up to that point. 4031 */ 4032 int 4033 zfs_hold_range(zfs_handle_t *zhp, const char *fromsnap, const char *tosnap, 4034 const char *tag, boolean_t temphold) 4035 { 4036 struct hold_range_arg arg = { 0 }; 4037 int error; 4038 4039 arg.origin = zhp; 4040 arg.fromsnap = fromsnap; 4041 arg.tosnap = tosnap; 4042 arg.tag = tag; 4043 arg.temphold = temphold; 4044 arg.holding = B_TRUE; 4045 4046 error = zfs_iter_snapshots_sorted(zhp, zfs_hold_range_one, &arg); 4047 4048 /* 4049 * Make sure we either hold the entire range or none. 4050 */ 4051 if (error && arg.lastsnapheld[0] != '\0') { 4052 (void) zfs_release_range(zhp, fromsnap, 4053 (const char *)arg.lastsnapheld, tag); 4054 } 4055 return (error); 4056 } 4057 4058 int 4059 zfs_release(zfs_handle_t *zhp, const char *snapname, const char *tag, 4060 boolean_t recursive) 4061 { 4062 zfs_cmd_t zc = { 0 }; 4063 libzfs_handle_t *hdl = zhp->zfs_hdl; 4064 4065 (void) strlcpy(zc.zc_name, zhp->zfs_name, sizeof (zc.zc_name)); 4066 (void) strlcpy(zc.zc_value, snapname, sizeof (zc.zc_value)); 4067 if (strlcpy(zc.zc_string, tag, sizeof (zc.zc_string)) 4068 >= sizeof (zc.zc_string)) 4069 return (zfs_error(hdl, EZFS_TAGTOOLONG, tag)); 4070 zc.zc_cookie = recursive; 4071 4072 if (zfs_ioctl(hdl, ZFS_IOC_RELEASE, &zc) != 0) { 4073 char errbuf[ZFS_MAXNAMELEN+32]; 4074 4075 /* 4076 * if it was recursive, the one that actually failed will be in 4077 * zc.zc_name. 4078 */ 4079 (void) snprintf(errbuf, sizeof (errbuf), dgettext(TEXT_DOMAIN, 4080 "cannot release '%s@%s'"), zc.zc_name, snapname); 4081 switch (errno) { 4082 case ESRCH: 4083 return (zfs_error(hdl, EZFS_REFTAG_RELE, errbuf)); 4084 case ENOTSUP: 4085 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 4086 "pool must be upgraded")); 4087 return (zfs_error(hdl, EZFS_BADVERSION, errbuf)); 4088 case EINVAL: 4089 return (zfs_error(hdl, EZFS_BADTYPE, errbuf)); 4090 default: 4091 return (zfs_standard_error_fmt(hdl, errno, errbuf)); 4092 } 4093 } 4094 4095 return (0); 4096 } 4097 4098 /* 4099 * Release a user hold from the set of snapshots starting with fromsnap 4100 * up to and including tosnap. 4101 */ 4102 int 4103 zfs_release_range(zfs_handle_t *zhp, const char *fromsnap, const char *tosnap, 4104 const char *tag) 4105 { 4106 struct hold_range_arg arg = { 0 }; 4107 4108 arg.origin = zhp; 4109 arg.fromsnap = fromsnap; 4110 arg.tosnap = tosnap; 4111 arg.tag = tag; 4112 4113 return (zfs_iter_snapshots_sorted(zhp, zfs_hold_range_one, &arg)); 4114 } 4115 4116 uint64_t 4117 zvol_volsize_to_reservation(uint64_t volsize, nvlist_t *props) 4118 { 4119 uint64_t numdb; 4120 uint64_t nblocks, volblocksize; 4121 int ncopies; 4122 char *strval; 4123 4124 if (nvlist_lookup_string(props, 4125 zfs_prop_to_name(ZFS_PROP_COPIES), &strval) == 0) 4126 ncopies = atoi(strval); 4127 else 4128 ncopies = 1; 4129 if (nvlist_lookup_uint64(props, 4130 zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE), 4131 &volblocksize) != 0) 4132 volblocksize = ZVOL_DEFAULT_BLOCKSIZE; 4133 nblocks = volsize/volblocksize; 4134 /* start with metadnode L0-L6 */ 4135 numdb = 7; 4136 /* calculate number of indirects */ 4137 while (nblocks > 1) { 4138 nblocks += DNODES_PER_LEVEL - 1; 4139 nblocks /= DNODES_PER_LEVEL; 4140 numdb += nblocks; 4141 } 4142 numdb *= MIN(SPA_DVAS_PER_BP, ncopies + 1); 4143 volsize *= ncopies; 4144 /* 4145 * this is exactly DN_MAX_INDBLKSHIFT when metadata isn't 4146 * compressed, but in practice they compress down to about 4147 * 1100 bytes 4148 */ 4149 numdb *= 1ULL << DN_MAX_INDBLKSHIFT; 4150 volsize += numdb; 4151 return (volsize); 4152 } 4153