1 /* 2 * CDDL HEADER START 3 * 4 * The contents of this file are subject to the terms of the 5 * Common Development and Distribution License (the "License"). 6 * You may not use this file except in compliance with the License. 7 * 8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9 * or http://www.opensolaris.org/os/licensing. 10 * See the License for the specific language governing permissions 11 * and limitations under the License. 12 * 13 * When distributing Covered Code, include this CDDL HEADER in each 14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15 * If applicable, add the following below this CDDL HEADER, with the 16 * fields enclosed by brackets "[]" replaced with your own identifying 17 * information: Portions Copyright [yyyy] [name of copyright owner] 18 * 19 * CDDL HEADER END 20 */ 21 22 /* 23 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved. 24 * Portions Copyright 2011 Martin Matuska 25 * Copyright 2015, OmniTI Computer Consulting, Inc. All rights reserved. 26 * Portions Copyright 2012 Pawel Jakub Dawidek <pawel@dawidek.net> 27 * Copyright (c) 2014, 2016 Joyent, Inc. All rights reserved. 28 * Copyright 2016 Nexenta Systems, Inc. All rights reserved. 29 * Copyright (c) 2014, Joyent, Inc. All rights reserved. 30 * Copyright (c) 2011, 2020 by Delphix. All rights reserved. 31 * Copyright (c) 2013 by Saso Kiselkov. All rights reserved. 32 * Copyright (c) 2013 Steven Hartland. All rights reserved. 33 * Copyright (c) 2014 Integros [integros.com] 34 * Copyright 2016 Toomas Soome <tsoome@me.com> 35 * Copyright (c) 2016 Actifio, Inc. All rights reserved. 36 * Copyright (c) 2018, loli10K <ezomori.nozomu@gmail.com>. All rights reserved. 37 * Copyright 2017 RackTop Systems. 38 * Copyright (c) 2017 Open-E, Inc. All Rights Reserved. 39 * Copyright (c) 2019 Datto Inc. 40 * Copyright (c) 2019, 2020 by Christian Schwarz. All rights reserved. 41 * Copyright (c) 2019, 2021, Klara Inc. 42 * Copyright (c) 2019, Allan Jude 43 */ 44 45 /* 46 * ZFS ioctls. 47 * 48 * This file handles the ioctls to /dev/zfs, used for configuring ZFS storage 49 * pools and filesystems, e.g. with /sbin/zfs and /sbin/zpool. 50 * 51 * There are two ways that we handle ioctls: the legacy way where almost 52 * all of the logic is in the ioctl callback, and the new way where most 53 * of the marshalling is handled in the common entry point, zfsdev_ioctl(). 54 * 55 * Non-legacy ioctls should be registered by calling 56 * zfs_ioctl_register() from zfs_ioctl_init(). The ioctl is invoked 57 * from userland by lzc_ioctl(). 58 * 59 * The registration arguments are as follows: 60 * 61 * const char *name 62 * The name of the ioctl. This is used for history logging. If the 63 * ioctl returns successfully (the callback returns 0), and allow_log 64 * is true, then a history log entry will be recorded with the input & 65 * output nvlists. The log entry can be printed with "zpool history -i". 66 * 67 * zfs_ioc_t ioc 68 * The ioctl request number, which userland will pass to ioctl(2). 69 * We want newer versions of libzfs and libzfs_core to run against 70 * existing zfs kernel modules (i.e. a deferred reboot after an update). 71 * Therefore the ioctl numbers cannot change from release to release. 72 * 73 * zfs_secpolicy_func_t *secpolicy 74 * This function will be called before the zfs_ioc_func_t, to 75 * determine if this operation is permitted. It should return EPERM 76 * on failure, and 0 on success. Checks include determining if the 77 * dataset is visible in this zone, and if the user has either all 78 * zfs privileges in the zone (SYS_MOUNT), or has been granted permission 79 * to do this operation on this dataset with "zfs allow". 80 * 81 * zfs_ioc_namecheck_t namecheck 82 * This specifies what to expect in the zfs_cmd_t:zc_name -- a pool 83 * name, a dataset name, or nothing. If the name is not well-formed, 84 * the ioctl will fail and the callback will not be called. 85 * Therefore, the callback can assume that the name is well-formed 86 * (e.g. is null-terminated, doesn't have more than one '@' character, 87 * doesn't have invalid characters). 88 * 89 * zfs_ioc_poolcheck_t pool_check 90 * This specifies requirements on the pool state. If the pool does 91 * not meet them (is suspended or is readonly), the ioctl will fail 92 * and the callback will not be called. If any checks are specified 93 * (i.e. it is not POOL_CHECK_NONE), namecheck must not be NO_NAME. 94 * Multiple checks can be or-ed together (e.g. POOL_CHECK_SUSPENDED | 95 * POOL_CHECK_READONLY). 96 * 97 * zfs_ioc_key_t *nvl_keys 98 * The list of expected/allowable innvl input keys. This list is used 99 * to validate the nvlist input to the ioctl. 100 * 101 * boolean_t smush_outnvlist 102 * If smush_outnvlist is true, then the output is presumed to be a 103 * list of errors, and it will be "smushed" down to fit into the 104 * caller's buffer, by removing some entries and replacing them with a 105 * single "N_MORE_ERRORS" entry indicating how many were removed. See 106 * nvlist_smush() for details. If smush_outnvlist is false, and the 107 * outnvlist does not fit into the userland-provided buffer, then the 108 * ioctl will fail with ENOMEM. 109 * 110 * zfs_ioc_func_t *func 111 * The callback function that will perform the operation. 112 * 113 * The callback should return 0 on success, or an error number on 114 * failure. If the function fails, the userland ioctl will return -1, 115 * and errno will be set to the callback's return value. The callback 116 * will be called with the following arguments: 117 * 118 * const char *name 119 * The name of the pool or dataset to operate on, from 120 * zfs_cmd_t:zc_name. The 'namecheck' argument specifies the 121 * expected type (pool, dataset, or none). 122 * 123 * nvlist_t *innvl 124 * The input nvlist, deserialized from zfs_cmd_t:zc_nvlist_src. Or 125 * NULL if no input nvlist was provided. Changes to this nvlist are 126 * ignored. If the input nvlist could not be deserialized, the 127 * ioctl will fail and the callback will not be called. 128 * 129 * nvlist_t *outnvl 130 * The output nvlist, initially empty. The callback can fill it in, 131 * and it will be returned to userland by serializing it into 132 * zfs_cmd_t:zc_nvlist_dst. If it is non-empty, and serialization 133 * fails (e.g. because the caller didn't supply a large enough 134 * buffer), then the overall ioctl will fail. See the 135 * 'smush_nvlist' argument above for additional behaviors. 136 * 137 * There are two typical uses of the output nvlist: 138 * - To return state, e.g. property values. In this case, 139 * smush_outnvlist should be false. If the buffer was not large 140 * enough, the caller will reallocate a larger buffer and try 141 * the ioctl again. 142 * 143 * - To return multiple errors from an ioctl which makes on-disk 144 * changes. In this case, smush_outnvlist should be true. 145 * Ioctls which make on-disk modifications should generally not 146 * use the outnvl if they succeed, because the caller can not 147 * distinguish between the operation failing, and 148 * deserialization failing. 149 * 150 * IOCTL Interface Errors 151 * 152 * The following ioctl input errors can be returned: 153 * ZFS_ERR_IOC_CMD_UNAVAIL the ioctl number is not supported by kernel 154 * ZFS_ERR_IOC_ARG_UNAVAIL an input argument is not supported by kernel 155 * ZFS_ERR_IOC_ARG_REQUIRED a required input argument is missing 156 * ZFS_ERR_IOC_ARG_BADTYPE an input argument has an invalid type 157 */ 158 159 #include <sys/types.h> 160 #include <sys/param.h> 161 #include <sys/errno.h> 162 #include <sys/uio_impl.h> 163 #include <sys/file.h> 164 #include <sys/kmem.h> 165 #include <sys/cmn_err.h> 166 #include <sys/stat.h> 167 #include <sys/zfs_ioctl.h> 168 #include <sys/zfs_quota.h> 169 #include <sys/zfs_vfsops.h> 170 #include <sys/zfs_znode.h> 171 #include <sys/zap.h> 172 #include <sys/spa.h> 173 #include <sys/spa_impl.h> 174 #include <sys/vdev.h> 175 #include <sys/vdev_impl.h> 176 #include <sys/dmu.h> 177 #include <sys/dsl_dir.h> 178 #include <sys/dsl_dataset.h> 179 #include <sys/dsl_prop.h> 180 #include <sys/dsl_deleg.h> 181 #include <sys/dmu_objset.h> 182 #include <sys/dmu_impl.h> 183 #include <sys/dmu_redact.h> 184 #include <sys/dmu_tx.h> 185 #include <sys/sunddi.h> 186 #include <sys/policy.h> 187 #include <sys/zone.h> 188 #include <sys/nvpair.h> 189 #include <sys/pathname.h> 190 #include <sys/fs/zfs.h> 191 #include <sys/zfs_ctldir.h> 192 #include <sys/zfs_dir.h> 193 #include <sys/zfs_onexit.h> 194 #include <sys/zvol.h> 195 #include <sys/dsl_scan.h> 196 #include <sys/fm/util.h> 197 #include <sys/dsl_crypt.h> 198 #include <sys/rrwlock.h> 199 #include <sys/zfs_file.h> 200 201 #include <sys/dmu_recv.h> 202 #include <sys/dmu_send.h> 203 #include <sys/dmu_recv.h> 204 #include <sys/dsl_destroy.h> 205 #include <sys/dsl_bookmark.h> 206 #include <sys/dsl_userhold.h> 207 #include <sys/zfeature.h> 208 #include <sys/zcp.h> 209 #include <sys/zio_checksum.h> 210 #include <sys/vdev_removal.h> 211 #include <sys/vdev_impl.h> 212 #include <sys/vdev_initialize.h> 213 #include <sys/vdev_trim.h> 214 215 #include "zfs_namecheck.h" 216 #include "zfs_prop.h" 217 #include "zfs_deleg.h" 218 #include "zfs_comutil.h" 219 220 #include <sys/lua/lua.h> 221 #include <sys/lua/lauxlib.h> 222 #include <sys/zfs_ioctl_impl.h> 223 224 kmutex_t zfsdev_state_lock; 225 static zfsdev_state_t *zfsdev_state_list; 226 227 /* 228 * Limit maximum nvlist size. We don't want users passing in insane values 229 * for zc->zc_nvlist_src_size, since we will need to allocate that much memory. 230 * Defaults to 0=auto which is handled by platform code. 231 */ 232 unsigned long zfs_max_nvlist_src_size = 0; 233 234 /* 235 * When logging the output nvlist of an ioctl in the on-disk history, limit 236 * the logged size to this many bytes. This must be less than DMU_MAX_ACCESS. 237 * This applies primarily to zfs_ioc_channel_program(). 238 */ 239 static unsigned long zfs_history_output_max = 1024 * 1024; 240 241 uint_t zfs_fsyncer_key; 242 uint_t zfs_allow_log_key; 243 244 /* DATA_TYPE_ANY is used when zkey_type can vary. */ 245 #define DATA_TYPE_ANY DATA_TYPE_UNKNOWN 246 247 typedef struct zfs_ioc_vec { 248 zfs_ioc_legacy_func_t *zvec_legacy_func; 249 zfs_ioc_func_t *zvec_func; 250 zfs_secpolicy_func_t *zvec_secpolicy; 251 zfs_ioc_namecheck_t zvec_namecheck; 252 boolean_t zvec_allow_log; 253 zfs_ioc_poolcheck_t zvec_pool_check; 254 boolean_t zvec_smush_outnvlist; 255 const char *zvec_name; 256 const zfs_ioc_key_t *zvec_nvl_keys; 257 size_t zvec_nvl_key_count; 258 } zfs_ioc_vec_t; 259 260 /* This array is indexed by zfs_userquota_prop_t */ 261 static const char *userquota_perms[] = { 262 ZFS_DELEG_PERM_USERUSED, 263 ZFS_DELEG_PERM_USERQUOTA, 264 ZFS_DELEG_PERM_GROUPUSED, 265 ZFS_DELEG_PERM_GROUPQUOTA, 266 ZFS_DELEG_PERM_USEROBJUSED, 267 ZFS_DELEG_PERM_USEROBJQUOTA, 268 ZFS_DELEG_PERM_GROUPOBJUSED, 269 ZFS_DELEG_PERM_GROUPOBJQUOTA, 270 ZFS_DELEG_PERM_PROJECTUSED, 271 ZFS_DELEG_PERM_PROJECTQUOTA, 272 ZFS_DELEG_PERM_PROJECTOBJUSED, 273 ZFS_DELEG_PERM_PROJECTOBJQUOTA, 274 }; 275 276 static int zfs_ioc_userspace_upgrade(zfs_cmd_t *zc); 277 static int zfs_ioc_id_quota_upgrade(zfs_cmd_t *zc); 278 static int zfs_check_settable(const char *name, nvpair_t *property, 279 cred_t *cr); 280 static int zfs_check_clearable(const char *dataset, nvlist_t *props, 281 nvlist_t **errors); 282 static int zfs_fill_zplprops_root(uint64_t, nvlist_t *, nvlist_t *, 283 boolean_t *); 284 int zfs_set_prop_nvlist(const char *, zprop_source_t, nvlist_t *, nvlist_t *); 285 static int get_nvlist(uint64_t nvl, uint64_t size, int iflag, nvlist_t **nvp); 286 287 static void 288 history_str_free(char *buf) 289 { 290 kmem_free(buf, HIS_MAX_RECORD_LEN); 291 } 292 293 static char * 294 history_str_get(zfs_cmd_t *zc) 295 { 296 char *buf; 297 298 if (zc->zc_history == 0) 299 return (NULL); 300 301 buf = kmem_alloc(HIS_MAX_RECORD_LEN, KM_SLEEP); 302 if (copyinstr((void *)(uintptr_t)zc->zc_history, 303 buf, HIS_MAX_RECORD_LEN, NULL) != 0) { 304 history_str_free(buf); 305 return (NULL); 306 } 307 308 buf[HIS_MAX_RECORD_LEN -1] = '\0'; 309 310 return (buf); 311 } 312 313 /* 314 * Return non-zero if the spa version is less than requested version. 315 */ 316 static int 317 zfs_earlier_version(const char *name, int version) 318 { 319 spa_t *spa; 320 321 if (spa_open(name, &spa, FTAG) == 0) { 322 if (spa_version(spa) < version) { 323 spa_close(spa, FTAG); 324 return (1); 325 } 326 spa_close(spa, FTAG); 327 } 328 return (0); 329 } 330 331 /* 332 * Return TRUE if the ZPL version is less than requested version. 333 */ 334 static boolean_t 335 zpl_earlier_version(const char *name, int version) 336 { 337 objset_t *os; 338 boolean_t rc = B_TRUE; 339 340 if (dmu_objset_hold(name, FTAG, &os) == 0) { 341 uint64_t zplversion; 342 343 if (dmu_objset_type(os) != DMU_OST_ZFS) { 344 dmu_objset_rele(os, FTAG); 345 return (B_TRUE); 346 } 347 /* XXX reading from non-owned objset */ 348 if (zfs_get_zplprop(os, ZFS_PROP_VERSION, &zplversion) == 0) 349 rc = zplversion < version; 350 dmu_objset_rele(os, FTAG); 351 } 352 return (rc); 353 } 354 355 static void 356 zfs_log_history(zfs_cmd_t *zc) 357 { 358 spa_t *spa; 359 char *buf; 360 361 if ((buf = history_str_get(zc)) == NULL) 362 return; 363 364 if (spa_open(zc->zc_name, &spa, FTAG) == 0) { 365 if (spa_version(spa) >= SPA_VERSION_ZPOOL_HISTORY) 366 (void) spa_history_log(spa, buf); 367 spa_close(spa, FTAG); 368 } 369 history_str_free(buf); 370 } 371 372 /* 373 * Policy for top-level read operations (list pools). Requires no privileges, 374 * and can be used in the local zone, as there is no associated dataset. 375 */ 376 static int 377 zfs_secpolicy_none(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 378 { 379 (void) zc, (void) innvl, (void) cr; 380 return (0); 381 } 382 383 /* 384 * Policy for dataset read operations (list children, get statistics). Requires 385 * no privileges, but must be visible in the local zone. 386 */ 387 static int 388 zfs_secpolicy_read(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 389 { 390 (void) innvl, (void) cr; 391 if (INGLOBALZONE(curproc) || 392 zone_dataset_visible(zc->zc_name, NULL)) 393 return (0); 394 395 return (SET_ERROR(ENOENT)); 396 } 397 398 static int 399 zfs_dozonecheck_impl(const char *dataset, uint64_t zoned, cred_t *cr) 400 { 401 int writable = 1; 402 403 /* 404 * The dataset must be visible by this zone -- check this first 405 * so they don't see EPERM on something they shouldn't know about. 406 */ 407 if (!INGLOBALZONE(curproc) && 408 !zone_dataset_visible(dataset, &writable)) 409 return (SET_ERROR(ENOENT)); 410 411 if (INGLOBALZONE(curproc)) { 412 /* 413 * If the fs is zoned, only root can access it from the 414 * global zone. 415 */ 416 if (secpolicy_zfs(cr) && zoned) 417 return (SET_ERROR(EPERM)); 418 } else { 419 /* 420 * If we are in a local zone, the 'zoned' property must be set. 421 */ 422 if (!zoned) 423 return (SET_ERROR(EPERM)); 424 425 /* must be writable by this zone */ 426 if (!writable) 427 return (SET_ERROR(EPERM)); 428 } 429 return (0); 430 } 431 432 static int 433 zfs_dozonecheck(const char *dataset, cred_t *cr) 434 { 435 uint64_t zoned; 436 437 if (dsl_prop_get_integer(dataset, zfs_prop_to_name(ZFS_PROP_ZONED), 438 &zoned, NULL)) 439 return (SET_ERROR(ENOENT)); 440 441 return (zfs_dozonecheck_impl(dataset, zoned, cr)); 442 } 443 444 static int 445 zfs_dozonecheck_ds(const char *dataset, dsl_dataset_t *ds, cred_t *cr) 446 { 447 uint64_t zoned; 448 449 if (dsl_prop_get_int_ds(ds, zfs_prop_to_name(ZFS_PROP_ZONED), &zoned)) 450 return (SET_ERROR(ENOENT)); 451 452 return (zfs_dozonecheck_impl(dataset, zoned, cr)); 453 } 454 455 static int 456 zfs_secpolicy_write_perms_ds(const char *name, dsl_dataset_t *ds, 457 const char *perm, cred_t *cr) 458 { 459 int error; 460 461 error = zfs_dozonecheck_ds(name, ds, cr); 462 if (error == 0) { 463 error = secpolicy_zfs(cr); 464 if (error != 0) 465 error = dsl_deleg_access_impl(ds, perm, cr); 466 } 467 return (error); 468 } 469 470 static int 471 zfs_secpolicy_write_perms(const char *name, const char *perm, cred_t *cr) 472 { 473 int error; 474 dsl_dataset_t *ds; 475 dsl_pool_t *dp; 476 477 /* 478 * First do a quick check for root in the global zone, which 479 * is allowed to do all write_perms. This ensures that zfs_ioc_* 480 * will get to handle nonexistent datasets. 481 */ 482 if (INGLOBALZONE(curproc) && secpolicy_zfs(cr) == 0) 483 return (0); 484 485 error = dsl_pool_hold(name, FTAG, &dp); 486 if (error != 0) 487 return (error); 488 489 error = dsl_dataset_hold(dp, name, FTAG, &ds); 490 if (error != 0) { 491 dsl_pool_rele(dp, FTAG); 492 return (error); 493 } 494 495 error = zfs_secpolicy_write_perms_ds(name, ds, perm, cr); 496 497 dsl_dataset_rele(ds, FTAG); 498 dsl_pool_rele(dp, FTAG); 499 return (error); 500 } 501 502 /* 503 * Policy for setting the security label property. 504 * 505 * Returns 0 for success, non-zero for access and other errors. 506 */ 507 static int 508 zfs_set_slabel_policy(const char *name, const char *strval, cred_t *cr) 509 { 510 #ifdef HAVE_MLSLABEL 511 char ds_hexsl[MAXNAMELEN]; 512 bslabel_t ds_sl, new_sl; 513 boolean_t new_default = FALSE; 514 uint64_t zoned; 515 int needed_priv = -1; 516 int error; 517 518 /* First get the existing dataset label. */ 519 error = dsl_prop_get(name, zfs_prop_to_name(ZFS_PROP_MLSLABEL), 520 1, sizeof (ds_hexsl), &ds_hexsl, NULL); 521 if (error != 0) 522 return (SET_ERROR(EPERM)); 523 524 if (strcasecmp(strval, ZFS_MLSLABEL_DEFAULT) == 0) 525 new_default = TRUE; 526 527 /* The label must be translatable */ 528 if (!new_default && (hexstr_to_label(strval, &new_sl) != 0)) 529 return (SET_ERROR(EINVAL)); 530 531 /* 532 * In a non-global zone, disallow attempts to set a label that 533 * doesn't match that of the zone; otherwise no other checks 534 * are needed. 535 */ 536 if (!INGLOBALZONE(curproc)) { 537 if (new_default || !blequal(&new_sl, CR_SL(CRED()))) 538 return (SET_ERROR(EPERM)); 539 return (0); 540 } 541 542 /* 543 * For global-zone datasets (i.e., those whose zoned property is 544 * "off", verify that the specified new label is valid for the 545 * global zone. 546 */ 547 if (dsl_prop_get_integer(name, 548 zfs_prop_to_name(ZFS_PROP_ZONED), &zoned, NULL)) 549 return (SET_ERROR(EPERM)); 550 if (!zoned) { 551 if (zfs_check_global_label(name, strval) != 0) 552 return (SET_ERROR(EPERM)); 553 } 554 555 /* 556 * If the existing dataset label is nondefault, check if the 557 * dataset is mounted (label cannot be changed while mounted). 558 * Get the zfsvfs_t; if there isn't one, then the dataset isn't 559 * mounted (or isn't a dataset, doesn't exist, ...). 560 */ 561 if (strcasecmp(ds_hexsl, ZFS_MLSLABEL_DEFAULT) != 0) { 562 objset_t *os; 563 static const char *setsl_tag = "setsl_tag"; 564 565 /* 566 * Try to own the dataset; abort if there is any error, 567 * (e.g., already mounted, in use, or other error). 568 */ 569 error = dmu_objset_own(name, DMU_OST_ZFS, B_TRUE, B_TRUE, 570 setsl_tag, &os); 571 if (error != 0) 572 return (SET_ERROR(EPERM)); 573 574 dmu_objset_disown(os, B_TRUE, setsl_tag); 575 576 if (new_default) { 577 needed_priv = PRIV_FILE_DOWNGRADE_SL; 578 goto out_check; 579 } 580 581 if (hexstr_to_label(strval, &new_sl) != 0) 582 return (SET_ERROR(EPERM)); 583 584 if (blstrictdom(&ds_sl, &new_sl)) 585 needed_priv = PRIV_FILE_DOWNGRADE_SL; 586 else if (blstrictdom(&new_sl, &ds_sl)) 587 needed_priv = PRIV_FILE_UPGRADE_SL; 588 } else { 589 /* dataset currently has a default label */ 590 if (!new_default) 591 needed_priv = PRIV_FILE_UPGRADE_SL; 592 } 593 594 out_check: 595 if (needed_priv != -1) 596 return (PRIV_POLICY(cr, needed_priv, B_FALSE, EPERM, NULL)); 597 return (0); 598 #else 599 return (SET_ERROR(ENOTSUP)); 600 #endif /* HAVE_MLSLABEL */ 601 } 602 603 static int 604 zfs_secpolicy_setprop(const char *dsname, zfs_prop_t prop, nvpair_t *propval, 605 cred_t *cr) 606 { 607 char *strval; 608 609 /* 610 * Check permissions for special properties. 611 */ 612 switch (prop) { 613 default: 614 break; 615 case ZFS_PROP_ZONED: 616 /* 617 * Disallow setting of 'zoned' from within a local zone. 618 */ 619 if (!INGLOBALZONE(curproc)) 620 return (SET_ERROR(EPERM)); 621 break; 622 623 case ZFS_PROP_QUOTA: 624 case ZFS_PROP_FILESYSTEM_LIMIT: 625 case ZFS_PROP_SNAPSHOT_LIMIT: 626 if (!INGLOBALZONE(curproc)) { 627 uint64_t zoned; 628 char setpoint[ZFS_MAX_DATASET_NAME_LEN]; 629 /* 630 * Unprivileged users are allowed to modify the 631 * limit on things *under* (ie. contained by) 632 * the thing they own. 633 */ 634 if (dsl_prop_get_integer(dsname, 635 zfs_prop_to_name(ZFS_PROP_ZONED), &zoned, setpoint)) 636 return (SET_ERROR(EPERM)); 637 if (!zoned || strlen(dsname) <= strlen(setpoint)) 638 return (SET_ERROR(EPERM)); 639 } 640 break; 641 642 case ZFS_PROP_MLSLABEL: 643 if (!is_system_labeled()) 644 return (SET_ERROR(EPERM)); 645 646 if (nvpair_value_string(propval, &strval) == 0) { 647 int err; 648 649 err = zfs_set_slabel_policy(dsname, strval, CRED()); 650 if (err != 0) 651 return (err); 652 } 653 break; 654 } 655 656 return (zfs_secpolicy_write_perms(dsname, zfs_prop_to_name(prop), cr)); 657 } 658 659 static int 660 zfs_secpolicy_set_fsacl(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 661 { 662 /* 663 * permission to set permissions will be evaluated later in 664 * dsl_deleg_can_allow() 665 */ 666 (void) innvl; 667 return (zfs_dozonecheck(zc->zc_name, cr)); 668 } 669 670 static int 671 zfs_secpolicy_rollback(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 672 { 673 (void) innvl; 674 return (zfs_secpolicy_write_perms(zc->zc_name, 675 ZFS_DELEG_PERM_ROLLBACK, cr)); 676 } 677 678 static int 679 zfs_secpolicy_send(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 680 { 681 (void) innvl; 682 dsl_pool_t *dp; 683 dsl_dataset_t *ds; 684 const char *cp; 685 int error; 686 687 /* 688 * Generate the current snapshot name from the given objsetid, then 689 * use that name for the secpolicy/zone checks. 690 */ 691 cp = strchr(zc->zc_name, '@'); 692 if (cp == NULL) 693 return (SET_ERROR(EINVAL)); 694 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 695 if (error != 0) 696 return (error); 697 698 error = dsl_dataset_hold_obj(dp, zc->zc_sendobj, FTAG, &ds); 699 if (error != 0) { 700 dsl_pool_rele(dp, FTAG); 701 return (error); 702 } 703 704 dsl_dataset_name(ds, zc->zc_name); 705 706 error = zfs_secpolicy_write_perms_ds(zc->zc_name, ds, 707 ZFS_DELEG_PERM_SEND, cr); 708 dsl_dataset_rele(ds, FTAG); 709 dsl_pool_rele(dp, FTAG); 710 711 return (error); 712 } 713 714 static int 715 zfs_secpolicy_send_new(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 716 { 717 (void) innvl; 718 return (zfs_secpolicy_write_perms(zc->zc_name, 719 ZFS_DELEG_PERM_SEND, cr)); 720 } 721 722 static int 723 zfs_secpolicy_share(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 724 { 725 (void) zc, (void) innvl, (void) cr; 726 return (SET_ERROR(ENOTSUP)); 727 } 728 729 static int 730 zfs_secpolicy_smb_acl(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 731 { 732 (void) zc, (void) innvl, (void) cr; 733 return (SET_ERROR(ENOTSUP)); 734 } 735 736 static int 737 zfs_get_parent(const char *datasetname, char *parent, int parentsize) 738 { 739 char *cp; 740 741 /* 742 * Remove the @bla or /bla from the end of the name to get the parent. 743 */ 744 (void) strncpy(parent, datasetname, parentsize); 745 cp = strrchr(parent, '@'); 746 if (cp != NULL) { 747 cp[0] = '\0'; 748 } else { 749 cp = strrchr(parent, '/'); 750 if (cp == NULL) 751 return (SET_ERROR(ENOENT)); 752 cp[0] = '\0'; 753 } 754 755 return (0); 756 } 757 758 int 759 zfs_secpolicy_destroy_perms(const char *name, cred_t *cr) 760 { 761 int error; 762 763 if ((error = zfs_secpolicy_write_perms(name, 764 ZFS_DELEG_PERM_MOUNT, cr)) != 0) 765 return (error); 766 767 return (zfs_secpolicy_write_perms(name, ZFS_DELEG_PERM_DESTROY, cr)); 768 } 769 770 static int 771 zfs_secpolicy_destroy(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 772 { 773 (void) innvl; 774 return (zfs_secpolicy_destroy_perms(zc->zc_name, cr)); 775 } 776 777 /* 778 * Destroying snapshots with delegated permissions requires 779 * descendant mount and destroy permissions. 780 */ 781 static int 782 zfs_secpolicy_destroy_snaps(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 783 { 784 (void) zc; 785 nvlist_t *snaps; 786 nvpair_t *pair, *nextpair; 787 int error = 0; 788 789 snaps = fnvlist_lookup_nvlist(innvl, "snaps"); 790 791 for (pair = nvlist_next_nvpair(snaps, NULL); pair != NULL; 792 pair = nextpair) { 793 nextpair = nvlist_next_nvpair(snaps, pair); 794 error = zfs_secpolicy_destroy_perms(nvpair_name(pair), cr); 795 if (error == ENOENT) { 796 /* 797 * Ignore any snapshots that don't exist (we consider 798 * them "already destroyed"). Remove the name from the 799 * nvl here in case the snapshot is created between 800 * now and when we try to destroy it (in which case 801 * we don't want to destroy it since we haven't 802 * checked for permission). 803 */ 804 fnvlist_remove_nvpair(snaps, pair); 805 error = 0; 806 } 807 if (error != 0) 808 break; 809 } 810 811 return (error); 812 } 813 814 int 815 zfs_secpolicy_rename_perms(const char *from, const char *to, cred_t *cr) 816 { 817 char parentname[ZFS_MAX_DATASET_NAME_LEN]; 818 int error; 819 820 if ((error = zfs_secpolicy_write_perms(from, 821 ZFS_DELEG_PERM_RENAME, cr)) != 0) 822 return (error); 823 824 if ((error = zfs_secpolicy_write_perms(from, 825 ZFS_DELEG_PERM_MOUNT, cr)) != 0) 826 return (error); 827 828 if ((error = zfs_get_parent(to, parentname, 829 sizeof (parentname))) != 0) 830 return (error); 831 832 if ((error = zfs_secpolicy_write_perms(parentname, 833 ZFS_DELEG_PERM_CREATE, cr)) != 0) 834 return (error); 835 836 if ((error = zfs_secpolicy_write_perms(parentname, 837 ZFS_DELEG_PERM_MOUNT, cr)) != 0) 838 return (error); 839 840 return (error); 841 } 842 843 static int 844 zfs_secpolicy_rename(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 845 { 846 (void) innvl; 847 return (zfs_secpolicy_rename_perms(zc->zc_name, zc->zc_value, cr)); 848 } 849 850 static int 851 zfs_secpolicy_promote(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 852 { 853 (void) innvl; 854 dsl_pool_t *dp; 855 dsl_dataset_t *clone; 856 int error; 857 858 error = zfs_secpolicy_write_perms(zc->zc_name, 859 ZFS_DELEG_PERM_PROMOTE, cr); 860 if (error != 0) 861 return (error); 862 863 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 864 if (error != 0) 865 return (error); 866 867 error = dsl_dataset_hold(dp, zc->zc_name, FTAG, &clone); 868 869 if (error == 0) { 870 char parentname[ZFS_MAX_DATASET_NAME_LEN]; 871 dsl_dataset_t *origin = NULL; 872 dsl_dir_t *dd; 873 dd = clone->ds_dir; 874 875 error = dsl_dataset_hold_obj(dd->dd_pool, 876 dsl_dir_phys(dd)->dd_origin_obj, FTAG, &origin); 877 if (error != 0) { 878 dsl_dataset_rele(clone, FTAG); 879 dsl_pool_rele(dp, FTAG); 880 return (error); 881 } 882 883 error = zfs_secpolicy_write_perms_ds(zc->zc_name, clone, 884 ZFS_DELEG_PERM_MOUNT, cr); 885 886 dsl_dataset_name(origin, parentname); 887 if (error == 0) { 888 error = zfs_secpolicy_write_perms_ds(parentname, origin, 889 ZFS_DELEG_PERM_PROMOTE, cr); 890 } 891 dsl_dataset_rele(clone, FTAG); 892 dsl_dataset_rele(origin, FTAG); 893 } 894 dsl_pool_rele(dp, FTAG); 895 return (error); 896 } 897 898 static int 899 zfs_secpolicy_recv(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 900 { 901 (void) innvl; 902 int error; 903 904 if ((error = zfs_secpolicy_write_perms(zc->zc_name, 905 ZFS_DELEG_PERM_RECEIVE, cr)) != 0) 906 return (error); 907 908 if ((error = zfs_secpolicy_write_perms(zc->zc_name, 909 ZFS_DELEG_PERM_MOUNT, cr)) != 0) 910 return (error); 911 912 return (zfs_secpolicy_write_perms(zc->zc_name, 913 ZFS_DELEG_PERM_CREATE, cr)); 914 } 915 916 int 917 zfs_secpolicy_snapshot_perms(const char *name, cred_t *cr) 918 { 919 return (zfs_secpolicy_write_perms(name, 920 ZFS_DELEG_PERM_SNAPSHOT, cr)); 921 } 922 923 /* 924 * Check for permission to create each snapshot in the nvlist. 925 */ 926 static int 927 zfs_secpolicy_snapshot(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 928 { 929 (void) zc; 930 nvlist_t *snaps; 931 int error = 0; 932 nvpair_t *pair; 933 934 snaps = fnvlist_lookup_nvlist(innvl, "snaps"); 935 936 for (pair = nvlist_next_nvpair(snaps, NULL); pair != NULL; 937 pair = nvlist_next_nvpair(snaps, pair)) { 938 char *name = nvpair_name(pair); 939 char *atp = strchr(name, '@'); 940 941 if (atp == NULL) { 942 error = SET_ERROR(EINVAL); 943 break; 944 } 945 *atp = '\0'; 946 error = zfs_secpolicy_snapshot_perms(name, cr); 947 *atp = '@'; 948 if (error != 0) 949 break; 950 } 951 return (error); 952 } 953 954 /* 955 * Check for permission to create each bookmark in the nvlist. 956 */ 957 static int 958 zfs_secpolicy_bookmark(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 959 { 960 (void) zc; 961 int error = 0; 962 963 for (nvpair_t *pair = nvlist_next_nvpair(innvl, NULL); 964 pair != NULL; pair = nvlist_next_nvpair(innvl, pair)) { 965 char *name = nvpair_name(pair); 966 char *hashp = strchr(name, '#'); 967 968 if (hashp == NULL) { 969 error = SET_ERROR(EINVAL); 970 break; 971 } 972 *hashp = '\0'; 973 error = zfs_secpolicy_write_perms(name, 974 ZFS_DELEG_PERM_BOOKMARK, cr); 975 *hashp = '#'; 976 if (error != 0) 977 break; 978 } 979 return (error); 980 } 981 982 static int 983 zfs_secpolicy_destroy_bookmarks(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 984 { 985 (void) zc; 986 nvpair_t *pair, *nextpair; 987 int error = 0; 988 989 for (pair = nvlist_next_nvpair(innvl, NULL); pair != NULL; 990 pair = nextpair) { 991 char *name = nvpair_name(pair); 992 char *hashp = strchr(name, '#'); 993 nextpair = nvlist_next_nvpair(innvl, pair); 994 995 if (hashp == NULL) { 996 error = SET_ERROR(EINVAL); 997 break; 998 } 999 1000 *hashp = '\0'; 1001 error = zfs_secpolicy_write_perms(name, 1002 ZFS_DELEG_PERM_DESTROY, cr); 1003 *hashp = '#'; 1004 if (error == ENOENT) { 1005 /* 1006 * Ignore any filesystems that don't exist (we consider 1007 * their bookmarks "already destroyed"). Remove 1008 * the name from the nvl here in case the filesystem 1009 * is created between now and when we try to destroy 1010 * the bookmark (in which case we don't want to 1011 * destroy it since we haven't checked for permission). 1012 */ 1013 fnvlist_remove_nvpair(innvl, pair); 1014 error = 0; 1015 } 1016 if (error != 0) 1017 break; 1018 } 1019 1020 return (error); 1021 } 1022 1023 static int 1024 zfs_secpolicy_log_history(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1025 { 1026 (void) zc, (void) innvl, (void) cr; 1027 /* 1028 * Even root must have a proper TSD so that we know what pool 1029 * to log to. 1030 */ 1031 if (tsd_get(zfs_allow_log_key) == NULL) 1032 return (SET_ERROR(EPERM)); 1033 return (0); 1034 } 1035 1036 static int 1037 zfs_secpolicy_create_clone(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1038 { 1039 char parentname[ZFS_MAX_DATASET_NAME_LEN]; 1040 int error; 1041 char *origin; 1042 1043 if ((error = zfs_get_parent(zc->zc_name, parentname, 1044 sizeof (parentname))) != 0) 1045 return (error); 1046 1047 if (nvlist_lookup_string(innvl, "origin", &origin) == 0 && 1048 (error = zfs_secpolicy_write_perms(origin, 1049 ZFS_DELEG_PERM_CLONE, cr)) != 0) 1050 return (error); 1051 1052 if ((error = zfs_secpolicy_write_perms(parentname, 1053 ZFS_DELEG_PERM_CREATE, cr)) != 0) 1054 return (error); 1055 1056 return (zfs_secpolicy_write_perms(parentname, 1057 ZFS_DELEG_PERM_MOUNT, cr)); 1058 } 1059 1060 /* 1061 * Policy for pool operations - create/destroy pools, add vdevs, etc. Requires 1062 * SYS_CONFIG privilege, which is not available in a local zone. 1063 */ 1064 int 1065 zfs_secpolicy_config(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1066 { 1067 (void) zc, (void) innvl; 1068 1069 if (secpolicy_sys_config(cr, B_FALSE) != 0) 1070 return (SET_ERROR(EPERM)); 1071 1072 return (0); 1073 } 1074 1075 /* 1076 * Policy for object to name lookups. 1077 */ 1078 static int 1079 zfs_secpolicy_diff(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1080 { 1081 (void) innvl; 1082 int error; 1083 1084 if ((error = secpolicy_sys_config(cr, B_FALSE)) == 0) 1085 return (0); 1086 1087 error = zfs_secpolicy_write_perms(zc->zc_name, ZFS_DELEG_PERM_DIFF, cr); 1088 return (error); 1089 } 1090 1091 /* 1092 * Policy for fault injection. Requires all privileges. 1093 */ 1094 static int 1095 zfs_secpolicy_inject(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1096 { 1097 (void) zc, (void) innvl; 1098 return (secpolicy_zinject(cr)); 1099 } 1100 1101 static int 1102 zfs_secpolicy_inherit_prop(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1103 { 1104 (void) innvl; 1105 zfs_prop_t prop = zfs_name_to_prop(zc->zc_value); 1106 1107 if (prop == ZPROP_USERPROP) { 1108 if (!zfs_prop_user(zc->zc_value)) 1109 return (SET_ERROR(EINVAL)); 1110 return (zfs_secpolicy_write_perms(zc->zc_name, 1111 ZFS_DELEG_PERM_USERPROP, cr)); 1112 } else { 1113 return (zfs_secpolicy_setprop(zc->zc_name, prop, 1114 NULL, cr)); 1115 } 1116 } 1117 1118 static int 1119 zfs_secpolicy_userspace_one(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1120 { 1121 int err = zfs_secpolicy_read(zc, innvl, cr); 1122 if (err) 1123 return (err); 1124 1125 if (zc->zc_objset_type >= ZFS_NUM_USERQUOTA_PROPS) 1126 return (SET_ERROR(EINVAL)); 1127 1128 if (zc->zc_value[0] == 0) { 1129 /* 1130 * They are asking about a posix uid/gid. If it's 1131 * themself, allow it. 1132 */ 1133 if (zc->zc_objset_type == ZFS_PROP_USERUSED || 1134 zc->zc_objset_type == ZFS_PROP_USERQUOTA || 1135 zc->zc_objset_type == ZFS_PROP_USEROBJUSED || 1136 zc->zc_objset_type == ZFS_PROP_USEROBJQUOTA) { 1137 if (zc->zc_guid == crgetuid(cr)) 1138 return (0); 1139 } else if (zc->zc_objset_type == ZFS_PROP_GROUPUSED || 1140 zc->zc_objset_type == ZFS_PROP_GROUPQUOTA || 1141 zc->zc_objset_type == ZFS_PROP_GROUPOBJUSED || 1142 zc->zc_objset_type == ZFS_PROP_GROUPOBJQUOTA) { 1143 if (groupmember(zc->zc_guid, cr)) 1144 return (0); 1145 } 1146 /* else is for project quota/used */ 1147 } 1148 1149 return (zfs_secpolicy_write_perms(zc->zc_name, 1150 userquota_perms[zc->zc_objset_type], cr)); 1151 } 1152 1153 static int 1154 zfs_secpolicy_userspace_many(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1155 { 1156 int err = zfs_secpolicy_read(zc, innvl, cr); 1157 if (err) 1158 return (err); 1159 1160 if (zc->zc_objset_type >= ZFS_NUM_USERQUOTA_PROPS) 1161 return (SET_ERROR(EINVAL)); 1162 1163 return (zfs_secpolicy_write_perms(zc->zc_name, 1164 userquota_perms[zc->zc_objset_type], cr)); 1165 } 1166 1167 static int 1168 zfs_secpolicy_userspace_upgrade(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1169 { 1170 (void) innvl; 1171 return (zfs_secpolicy_setprop(zc->zc_name, ZFS_PROP_VERSION, 1172 NULL, cr)); 1173 } 1174 1175 static int 1176 zfs_secpolicy_hold(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1177 { 1178 (void) zc; 1179 nvpair_t *pair; 1180 nvlist_t *holds; 1181 int error; 1182 1183 holds = fnvlist_lookup_nvlist(innvl, "holds"); 1184 1185 for (pair = nvlist_next_nvpair(holds, NULL); pair != NULL; 1186 pair = nvlist_next_nvpair(holds, pair)) { 1187 char fsname[ZFS_MAX_DATASET_NAME_LEN]; 1188 error = dmu_fsname(nvpair_name(pair), fsname); 1189 if (error != 0) 1190 return (error); 1191 error = zfs_secpolicy_write_perms(fsname, 1192 ZFS_DELEG_PERM_HOLD, cr); 1193 if (error != 0) 1194 return (error); 1195 } 1196 return (0); 1197 } 1198 1199 static int 1200 zfs_secpolicy_release(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1201 { 1202 (void) zc; 1203 nvpair_t *pair; 1204 int error; 1205 1206 for (pair = nvlist_next_nvpair(innvl, NULL); pair != NULL; 1207 pair = nvlist_next_nvpair(innvl, pair)) { 1208 char fsname[ZFS_MAX_DATASET_NAME_LEN]; 1209 error = dmu_fsname(nvpair_name(pair), fsname); 1210 if (error != 0) 1211 return (error); 1212 error = zfs_secpolicy_write_perms(fsname, 1213 ZFS_DELEG_PERM_RELEASE, cr); 1214 if (error != 0) 1215 return (error); 1216 } 1217 return (0); 1218 } 1219 1220 /* 1221 * Policy for allowing temporary snapshots to be taken or released 1222 */ 1223 static int 1224 zfs_secpolicy_tmp_snapshot(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1225 { 1226 /* 1227 * A temporary snapshot is the same as a snapshot, 1228 * hold, destroy and release all rolled into one. 1229 * Delegated diff alone is sufficient that we allow this. 1230 */ 1231 int error; 1232 1233 if ((error = zfs_secpolicy_write_perms(zc->zc_name, 1234 ZFS_DELEG_PERM_DIFF, cr)) == 0) 1235 return (0); 1236 1237 error = zfs_secpolicy_snapshot_perms(zc->zc_name, cr); 1238 1239 if (innvl != NULL) { 1240 if (error == 0) 1241 error = zfs_secpolicy_hold(zc, innvl, cr); 1242 if (error == 0) 1243 error = zfs_secpolicy_release(zc, innvl, cr); 1244 if (error == 0) 1245 error = zfs_secpolicy_destroy(zc, innvl, cr); 1246 } 1247 return (error); 1248 } 1249 1250 static int 1251 zfs_secpolicy_load_key(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1252 { 1253 return (zfs_secpolicy_write_perms(zc->zc_name, 1254 ZFS_DELEG_PERM_LOAD_KEY, cr)); 1255 } 1256 1257 static int 1258 zfs_secpolicy_change_key(zfs_cmd_t *zc, nvlist_t *innvl, cred_t *cr) 1259 { 1260 return (zfs_secpolicy_write_perms(zc->zc_name, 1261 ZFS_DELEG_PERM_CHANGE_KEY, cr)); 1262 } 1263 1264 /* 1265 * Returns the nvlist as specified by the user in the zfs_cmd_t. 1266 */ 1267 static int 1268 get_nvlist(uint64_t nvl, uint64_t size, int iflag, nvlist_t **nvp) 1269 { 1270 char *packed; 1271 int error; 1272 nvlist_t *list = NULL; 1273 1274 /* 1275 * Read in and unpack the user-supplied nvlist. 1276 */ 1277 if (size == 0) 1278 return (SET_ERROR(EINVAL)); 1279 1280 packed = vmem_alloc(size, KM_SLEEP); 1281 1282 if ((error = ddi_copyin((void *)(uintptr_t)nvl, packed, size, 1283 iflag)) != 0) { 1284 vmem_free(packed, size); 1285 return (SET_ERROR(EFAULT)); 1286 } 1287 1288 if ((error = nvlist_unpack(packed, size, &list, 0)) != 0) { 1289 vmem_free(packed, size); 1290 return (error); 1291 } 1292 1293 vmem_free(packed, size); 1294 1295 *nvp = list; 1296 return (0); 1297 } 1298 1299 /* 1300 * Reduce the size of this nvlist until it can be serialized in 'max' bytes. 1301 * Entries will be removed from the end of the nvlist, and one int32 entry 1302 * named "N_MORE_ERRORS" will be added indicating how many entries were 1303 * removed. 1304 */ 1305 static int 1306 nvlist_smush(nvlist_t *errors, size_t max) 1307 { 1308 size_t size; 1309 1310 size = fnvlist_size(errors); 1311 1312 if (size > max) { 1313 nvpair_t *more_errors; 1314 int n = 0; 1315 1316 if (max < 1024) 1317 return (SET_ERROR(ENOMEM)); 1318 1319 fnvlist_add_int32(errors, ZPROP_N_MORE_ERRORS, 0); 1320 more_errors = nvlist_prev_nvpair(errors, NULL); 1321 1322 do { 1323 nvpair_t *pair = nvlist_prev_nvpair(errors, 1324 more_errors); 1325 fnvlist_remove_nvpair(errors, pair); 1326 n++; 1327 size = fnvlist_size(errors); 1328 } while (size > max); 1329 1330 fnvlist_remove_nvpair(errors, more_errors); 1331 fnvlist_add_int32(errors, ZPROP_N_MORE_ERRORS, n); 1332 ASSERT3U(fnvlist_size(errors), <=, max); 1333 } 1334 1335 return (0); 1336 } 1337 1338 static int 1339 put_nvlist(zfs_cmd_t *zc, nvlist_t *nvl) 1340 { 1341 char *packed = NULL; 1342 int error = 0; 1343 size_t size; 1344 1345 size = fnvlist_size(nvl); 1346 1347 if (size > zc->zc_nvlist_dst_size) { 1348 error = SET_ERROR(ENOMEM); 1349 } else { 1350 packed = fnvlist_pack(nvl, &size); 1351 if (ddi_copyout(packed, (void *)(uintptr_t)zc->zc_nvlist_dst, 1352 size, zc->zc_iflags) != 0) 1353 error = SET_ERROR(EFAULT); 1354 fnvlist_pack_free(packed, size); 1355 } 1356 1357 zc->zc_nvlist_dst_size = size; 1358 zc->zc_nvlist_dst_filled = B_TRUE; 1359 return (error); 1360 } 1361 1362 int 1363 getzfsvfs_impl(objset_t *os, zfsvfs_t **zfvp) 1364 { 1365 int error = 0; 1366 if (dmu_objset_type(os) != DMU_OST_ZFS) { 1367 return (SET_ERROR(EINVAL)); 1368 } 1369 1370 mutex_enter(&os->os_user_ptr_lock); 1371 *zfvp = dmu_objset_get_user(os); 1372 /* bump s_active only when non-zero to prevent umount race */ 1373 error = zfs_vfs_ref(zfvp); 1374 mutex_exit(&os->os_user_ptr_lock); 1375 return (error); 1376 } 1377 1378 int 1379 getzfsvfs(const char *dsname, zfsvfs_t **zfvp) 1380 { 1381 objset_t *os; 1382 int error; 1383 1384 error = dmu_objset_hold(dsname, FTAG, &os); 1385 if (error != 0) 1386 return (error); 1387 1388 error = getzfsvfs_impl(os, zfvp); 1389 dmu_objset_rele(os, FTAG); 1390 return (error); 1391 } 1392 1393 /* 1394 * Find a zfsvfs_t for a mounted filesystem, or create our own, in which 1395 * case its z_sb will be NULL, and it will be opened as the owner. 1396 * If 'writer' is set, the z_teardown_lock will be held for RW_WRITER, 1397 * which prevents all inode ops from running. 1398 */ 1399 static int 1400 zfsvfs_hold(const char *name, const void *tag, zfsvfs_t **zfvp, 1401 boolean_t writer) 1402 { 1403 int error = 0; 1404 1405 if (getzfsvfs(name, zfvp) != 0) 1406 error = zfsvfs_create(name, B_FALSE, zfvp); 1407 if (error == 0) { 1408 if (writer) 1409 ZFS_TEARDOWN_ENTER_WRITE(*zfvp, tag); 1410 else 1411 ZFS_TEARDOWN_ENTER_READ(*zfvp, tag); 1412 if ((*zfvp)->z_unmounted) { 1413 /* 1414 * XXX we could probably try again, since the unmounting 1415 * thread should be just about to disassociate the 1416 * objset from the zfsvfs. 1417 */ 1418 ZFS_TEARDOWN_EXIT(*zfvp, tag); 1419 return (SET_ERROR(EBUSY)); 1420 } 1421 } 1422 return (error); 1423 } 1424 1425 static void 1426 zfsvfs_rele(zfsvfs_t *zfsvfs, const void *tag) 1427 { 1428 ZFS_TEARDOWN_EXIT(zfsvfs, tag); 1429 1430 if (zfs_vfs_held(zfsvfs)) { 1431 zfs_vfs_rele(zfsvfs); 1432 } else { 1433 dmu_objset_disown(zfsvfs->z_os, B_TRUE, zfsvfs); 1434 zfsvfs_free(zfsvfs); 1435 } 1436 } 1437 1438 static int 1439 zfs_ioc_pool_create(zfs_cmd_t *zc) 1440 { 1441 int error; 1442 nvlist_t *config, *props = NULL; 1443 nvlist_t *rootprops = NULL; 1444 nvlist_t *zplprops = NULL; 1445 dsl_crypto_params_t *dcp = NULL; 1446 const char *spa_name = zc->zc_name; 1447 boolean_t unload_wkey = B_TRUE; 1448 1449 if ((error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1450 zc->zc_iflags, &config))) 1451 return (error); 1452 1453 if (zc->zc_nvlist_src_size != 0 && (error = 1454 get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 1455 zc->zc_iflags, &props))) { 1456 nvlist_free(config); 1457 return (error); 1458 } 1459 1460 if (props) { 1461 nvlist_t *nvl = NULL; 1462 nvlist_t *hidden_args = NULL; 1463 uint64_t version = SPA_VERSION; 1464 char *tname; 1465 1466 (void) nvlist_lookup_uint64(props, 1467 zpool_prop_to_name(ZPOOL_PROP_VERSION), &version); 1468 if (!SPA_VERSION_IS_SUPPORTED(version)) { 1469 error = SET_ERROR(EINVAL); 1470 goto pool_props_bad; 1471 } 1472 (void) nvlist_lookup_nvlist(props, ZPOOL_ROOTFS_PROPS, &nvl); 1473 if (nvl) { 1474 error = nvlist_dup(nvl, &rootprops, KM_SLEEP); 1475 if (error != 0) 1476 goto pool_props_bad; 1477 (void) nvlist_remove_all(props, ZPOOL_ROOTFS_PROPS); 1478 } 1479 1480 (void) nvlist_lookup_nvlist(props, ZPOOL_HIDDEN_ARGS, 1481 &hidden_args); 1482 error = dsl_crypto_params_create_nvlist(DCP_CMD_NONE, 1483 rootprops, hidden_args, &dcp); 1484 if (error != 0) 1485 goto pool_props_bad; 1486 (void) nvlist_remove_all(props, ZPOOL_HIDDEN_ARGS); 1487 1488 VERIFY(nvlist_alloc(&zplprops, NV_UNIQUE_NAME, KM_SLEEP) == 0); 1489 error = zfs_fill_zplprops_root(version, rootprops, 1490 zplprops, NULL); 1491 if (error != 0) 1492 goto pool_props_bad; 1493 1494 if (nvlist_lookup_string(props, 1495 zpool_prop_to_name(ZPOOL_PROP_TNAME), &tname) == 0) 1496 spa_name = tname; 1497 } 1498 1499 error = spa_create(zc->zc_name, config, props, zplprops, dcp); 1500 1501 /* 1502 * Set the remaining root properties 1503 */ 1504 if (!error && (error = zfs_set_prop_nvlist(spa_name, 1505 ZPROP_SRC_LOCAL, rootprops, NULL)) != 0) { 1506 (void) spa_destroy(spa_name); 1507 unload_wkey = B_FALSE; /* spa_destroy() unloads wrapping keys */ 1508 } 1509 1510 pool_props_bad: 1511 nvlist_free(rootprops); 1512 nvlist_free(zplprops); 1513 nvlist_free(config); 1514 nvlist_free(props); 1515 dsl_crypto_params_free(dcp, unload_wkey && !!error); 1516 1517 return (error); 1518 } 1519 1520 static int 1521 zfs_ioc_pool_destroy(zfs_cmd_t *zc) 1522 { 1523 int error; 1524 zfs_log_history(zc); 1525 error = spa_destroy(zc->zc_name); 1526 1527 return (error); 1528 } 1529 1530 static int 1531 zfs_ioc_pool_import(zfs_cmd_t *zc) 1532 { 1533 nvlist_t *config, *props = NULL; 1534 uint64_t guid; 1535 int error; 1536 1537 if ((error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1538 zc->zc_iflags, &config)) != 0) 1539 return (error); 1540 1541 if (zc->zc_nvlist_src_size != 0 && (error = 1542 get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 1543 zc->zc_iflags, &props))) { 1544 nvlist_free(config); 1545 return (error); 1546 } 1547 1548 if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID, &guid) != 0 || 1549 guid != zc->zc_guid) 1550 error = SET_ERROR(EINVAL); 1551 else 1552 error = spa_import(zc->zc_name, config, props, zc->zc_cookie); 1553 1554 if (zc->zc_nvlist_dst != 0) { 1555 int err; 1556 1557 if ((err = put_nvlist(zc, config)) != 0) 1558 error = err; 1559 } 1560 1561 nvlist_free(config); 1562 nvlist_free(props); 1563 1564 return (error); 1565 } 1566 1567 static int 1568 zfs_ioc_pool_export(zfs_cmd_t *zc) 1569 { 1570 int error; 1571 boolean_t force = (boolean_t)zc->zc_cookie; 1572 boolean_t hardforce = (boolean_t)zc->zc_guid; 1573 1574 zfs_log_history(zc); 1575 error = spa_export(zc->zc_name, NULL, force, hardforce); 1576 1577 return (error); 1578 } 1579 1580 static int 1581 zfs_ioc_pool_configs(zfs_cmd_t *zc) 1582 { 1583 nvlist_t *configs; 1584 int error; 1585 1586 if ((configs = spa_all_configs(&zc->zc_cookie)) == NULL) 1587 return (SET_ERROR(EEXIST)); 1588 1589 error = put_nvlist(zc, configs); 1590 1591 nvlist_free(configs); 1592 1593 return (error); 1594 } 1595 1596 /* 1597 * inputs: 1598 * zc_name name of the pool 1599 * 1600 * outputs: 1601 * zc_cookie real errno 1602 * zc_nvlist_dst config nvlist 1603 * zc_nvlist_dst_size size of config nvlist 1604 */ 1605 static int 1606 zfs_ioc_pool_stats(zfs_cmd_t *zc) 1607 { 1608 nvlist_t *config; 1609 int error; 1610 int ret = 0; 1611 1612 error = spa_get_stats(zc->zc_name, &config, zc->zc_value, 1613 sizeof (zc->zc_value)); 1614 1615 if (config != NULL) { 1616 ret = put_nvlist(zc, config); 1617 nvlist_free(config); 1618 1619 /* 1620 * The config may be present even if 'error' is non-zero. 1621 * In this case we return success, and preserve the real errno 1622 * in 'zc_cookie'. 1623 */ 1624 zc->zc_cookie = error; 1625 } else { 1626 ret = error; 1627 } 1628 1629 return (ret); 1630 } 1631 1632 /* 1633 * Try to import the given pool, returning pool stats as appropriate so that 1634 * user land knows which devices are available and overall pool health. 1635 */ 1636 static int 1637 zfs_ioc_pool_tryimport(zfs_cmd_t *zc) 1638 { 1639 nvlist_t *tryconfig, *config = NULL; 1640 int error; 1641 1642 if ((error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1643 zc->zc_iflags, &tryconfig)) != 0) 1644 return (error); 1645 1646 config = spa_tryimport(tryconfig); 1647 1648 nvlist_free(tryconfig); 1649 1650 if (config == NULL) 1651 return (SET_ERROR(EINVAL)); 1652 1653 error = put_nvlist(zc, config); 1654 nvlist_free(config); 1655 1656 return (error); 1657 } 1658 1659 /* 1660 * inputs: 1661 * zc_name name of the pool 1662 * zc_cookie scan func (pool_scan_func_t) 1663 * zc_flags scrub pause/resume flag (pool_scrub_cmd_t) 1664 */ 1665 static int 1666 zfs_ioc_pool_scan(zfs_cmd_t *zc) 1667 { 1668 spa_t *spa; 1669 int error; 1670 1671 if (zc->zc_flags >= POOL_SCRUB_FLAGS_END) 1672 return (SET_ERROR(EINVAL)); 1673 1674 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1675 return (error); 1676 1677 if (zc->zc_flags == POOL_SCRUB_PAUSE) 1678 error = spa_scrub_pause_resume(spa, POOL_SCRUB_PAUSE); 1679 else if (zc->zc_cookie == POOL_SCAN_NONE) 1680 error = spa_scan_stop(spa); 1681 else 1682 error = spa_scan(spa, zc->zc_cookie); 1683 1684 spa_close(spa, FTAG); 1685 1686 return (error); 1687 } 1688 1689 static int 1690 zfs_ioc_pool_freeze(zfs_cmd_t *zc) 1691 { 1692 spa_t *spa; 1693 int error; 1694 1695 error = spa_open(zc->zc_name, &spa, FTAG); 1696 if (error == 0) { 1697 spa_freeze(spa); 1698 spa_close(spa, FTAG); 1699 } 1700 return (error); 1701 } 1702 1703 static int 1704 zfs_ioc_pool_upgrade(zfs_cmd_t *zc) 1705 { 1706 spa_t *spa; 1707 int error; 1708 1709 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1710 return (error); 1711 1712 if (zc->zc_cookie < spa_version(spa) || 1713 !SPA_VERSION_IS_SUPPORTED(zc->zc_cookie)) { 1714 spa_close(spa, FTAG); 1715 return (SET_ERROR(EINVAL)); 1716 } 1717 1718 spa_upgrade(spa, zc->zc_cookie); 1719 spa_close(spa, FTAG); 1720 1721 return (error); 1722 } 1723 1724 static int 1725 zfs_ioc_pool_get_history(zfs_cmd_t *zc) 1726 { 1727 spa_t *spa; 1728 char *hist_buf; 1729 uint64_t size; 1730 int error; 1731 1732 if ((size = zc->zc_history_len) == 0) 1733 return (SET_ERROR(EINVAL)); 1734 1735 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1736 return (error); 1737 1738 if (spa_version(spa) < SPA_VERSION_ZPOOL_HISTORY) { 1739 spa_close(spa, FTAG); 1740 return (SET_ERROR(ENOTSUP)); 1741 } 1742 1743 hist_buf = vmem_alloc(size, KM_SLEEP); 1744 if ((error = spa_history_get(spa, &zc->zc_history_offset, 1745 &zc->zc_history_len, hist_buf)) == 0) { 1746 error = ddi_copyout(hist_buf, 1747 (void *)(uintptr_t)zc->zc_history, 1748 zc->zc_history_len, zc->zc_iflags); 1749 } 1750 1751 spa_close(spa, FTAG); 1752 vmem_free(hist_buf, size); 1753 return (error); 1754 } 1755 1756 static int 1757 zfs_ioc_pool_reguid(zfs_cmd_t *zc) 1758 { 1759 spa_t *spa; 1760 int error; 1761 1762 error = spa_open(zc->zc_name, &spa, FTAG); 1763 if (error == 0) { 1764 error = spa_change_guid(spa); 1765 spa_close(spa, FTAG); 1766 } 1767 return (error); 1768 } 1769 1770 static int 1771 zfs_ioc_dsobj_to_dsname(zfs_cmd_t *zc) 1772 { 1773 return (dsl_dsobj_to_dsname(zc->zc_name, zc->zc_obj, zc->zc_value)); 1774 } 1775 1776 /* 1777 * inputs: 1778 * zc_name name of filesystem 1779 * zc_obj object to find 1780 * 1781 * outputs: 1782 * zc_value name of object 1783 */ 1784 static int 1785 zfs_ioc_obj_to_path(zfs_cmd_t *zc) 1786 { 1787 objset_t *os; 1788 int error; 1789 1790 /* XXX reading from objset not owned */ 1791 if ((error = dmu_objset_hold_flags(zc->zc_name, B_TRUE, 1792 FTAG, &os)) != 0) 1793 return (error); 1794 if (dmu_objset_type(os) != DMU_OST_ZFS) { 1795 dmu_objset_rele_flags(os, B_TRUE, FTAG); 1796 return (SET_ERROR(EINVAL)); 1797 } 1798 error = zfs_obj_to_path(os, zc->zc_obj, zc->zc_value, 1799 sizeof (zc->zc_value)); 1800 dmu_objset_rele_flags(os, B_TRUE, FTAG); 1801 1802 return (error); 1803 } 1804 1805 /* 1806 * inputs: 1807 * zc_name name of filesystem 1808 * zc_obj object to find 1809 * 1810 * outputs: 1811 * zc_stat stats on object 1812 * zc_value path to object 1813 */ 1814 static int 1815 zfs_ioc_obj_to_stats(zfs_cmd_t *zc) 1816 { 1817 objset_t *os; 1818 int error; 1819 1820 /* XXX reading from objset not owned */ 1821 if ((error = dmu_objset_hold_flags(zc->zc_name, B_TRUE, 1822 FTAG, &os)) != 0) 1823 return (error); 1824 if (dmu_objset_type(os) != DMU_OST_ZFS) { 1825 dmu_objset_rele_flags(os, B_TRUE, FTAG); 1826 return (SET_ERROR(EINVAL)); 1827 } 1828 error = zfs_obj_to_stats(os, zc->zc_obj, &zc->zc_stat, zc->zc_value, 1829 sizeof (zc->zc_value)); 1830 dmu_objset_rele_flags(os, B_TRUE, FTAG); 1831 1832 return (error); 1833 } 1834 1835 static int 1836 zfs_ioc_vdev_add(zfs_cmd_t *zc) 1837 { 1838 spa_t *spa; 1839 int error; 1840 nvlist_t *config; 1841 1842 error = spa_open(zc->zc_name, &spa, FTAG); 1843 if (error != 0) 1844 return (error); 1845 1846 error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1847 zc->zc_iflags, &config); 1848 if (error == 0) { 1849 error = spa_vdev_add(spa, config); 1850 nvlist_free(config); 1851 } 1852 spa_close(spa, FTAG); 1853 return (error); 1854 } 1855 1856 /* 1857 * inputs: 1858 * zc_name name of the pool 1859 * zc_guid guid of vdev to remove 1860 * zc_cookie cancel removal 1861 */ 1862 static int 1863 zfs_ioc_vdev_remove(zfs_cmd_t *zc) 1864 { 1865 spa_t *spa; 1866 int error; 1867 1868 error = spa_open(zc->zc_name, &spa, FTAG); 1869 if (error != 0) 1870 return (error); 1871 if (zc->zc_cookie != 0) { 1872 error = spa_vdev_remove_cancel(spa); 1873 } else { 1874 error = spa_vdev_remove(spa, zc->zc_guid, B_FALSE); 1875 } 1876 spa_close(spa, FTAG); 1877 return (error); 1878 } 1879 1880 static int 1881 zfs_ioc_vdev_set_state(zfs_cmd_t *zc) 1882 { 1883 spa_t *spa; 1884 int error; 1885 vdev_state_t newstate = VDEV_STATE_UNKNOWN; 1886 1887 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1888 return (error); 1889 switch (zc->zc_cookie) { 1890 case VDEV_STATE_ONLINE: 1891 error = vdev_online(spa, zc->zc_guid, zc->zc_obj, &newstate); 1892 break; 1893 1894 case VDEV_STATE_OFFLINE: 1895 error = vdev_offline(spa, zc->zc_guid, zc->zc_obj); 1896 break; 1897 1898 case VDEV_STATE_FAULTED: 1899 if (zc->zc_obj != VDEV_AUX_ERR_EXCEEDED && 1900 zc->zc_obj != VDEV_AUX_EXTERNAL && 1901 zc->zc_obj != VDEV_AUX_EXTERNAL_PERSIST) 1902 zc->zc_obj = VDEV_AUX_ERR_EXCEEDED; 1903 1904 error = vdev_fault(spa, zc->zc_guid, zc->zc_obj); 1905 break; 1906 1907 case VDEV_STATE_DEGRADED: 1908 if (zc->zc_obj != VDEV_AUX_ERR_EXCEEDED && 1909 zc->zc_obj != VDEV_AUX_EXTERNAL) 1910 zc->zc_obj = VDEV_AUX_ERR_EXCEEDED; 1911 1912 error = vdev_degrade(spa, zc->zc_guid, zc->zc_obj); 1913 break; 1914 1915 default: 1916 error = SET_ERROR(EINVAL); 1917 } 1918 zc->zc_cookie = newstate; 1919 spa_close(spa, FTAG); 1920 return (error); 1921 } 1922 1923 static int 1924 zfs_ioc_vdev_attach(zfs_cmd_t *zc) 1925 { 1926 spa_t *spa; 1927 nvlist_t *config; 1928 int replacing = zc->zc_cookie; 1929 int rebuild = zc->zc_simple; 1930 int error; 1931 1932 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1933 return (error); 1934 1935 if ((error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1936 zc->zc_iflags, &config)) == 0) { 1937 error = spa_vdev_attach(spa, zc->zc_guid, config, replacing, 1938 rebuild); 1939 nvlist_free(config); 1940 } 1941 1942 spa_close(spa, FTAG); 1943 return (error); 1944 } 1945 1946 static int 1947 zfs_ioc_vdev_detach(zfs_cmd_t *zc) 1948 { 1949 spa_t *spa; 1950 int error; 1951 1952 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1953 return (error); 1954 1955 error = spa_vdev_detach(spa, zc->zc_guid, 0, B_FALSE); 1956 1957 spa_close(spa, FTAG); 1958 return (error); 1959 } 1960 1961 static int 1962 zfs_ioc_vdev_split(zfs_cmd_t *zc) 1963 { 1964 spa_t *spa; 1965 nvlist_t *config, *props = NULL; 1966 int error; 1967 boolean_t exp = !!(zc->zc_cookie & ZPOOL_EXPORT_AFTER_SPLIT); 1968 1969 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 1970 return (error); 1971 1972 if ((error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 1973 zc->zc_iflags, &config))) { 1974 spa_close(spa, FTAG); 1975 return (error); 1976 } 1977 1978 if (zc->zc_nvlist_src_size != 0 && (error = 1979 get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 1980 zc->zc_iflags, &props))) { 1981 spa_close(spa, FTAG); 1982 nvlist_free(config); 1983 return (error); 1984 } 1985 1986 error = spa_vdev_split_mirror(spa, zc->zc_string, config, props, exp); 1987 1988 spa_close(spa, FTAG); 1989 1990 nvlist_free(config); 1991 nvlist_free(props); 1992 1993 return (error); 1994 } 1995 1996 static int 1997 zfs_ioc_vdev_setpath(zfs_cmd_t *zc) 1998 { 1999 spa_t *spa; 2000 const char *path = zc->zc_value; 2001 uint64_t guid = zc->zc_guid; 2002 int error; 2003 2004 error = spa_open(zc->zc_name, &spa, FTAG); 2005 if (error != 0) 2006 return (error); 2007 2008 error = spa_vdev_setpath(spa, guid, path); 2009 spa_close(spa, FTAG); 2010 return (error); 2011 } 2012 2013 static int 2014 zfs_ioc_vdev_setfru(zfs_cmd_t *zc) 2015 { 2016 spa_t *spa; 2017 const char *fru = zc->zc_value; 2018 uint64_t guid = zc->zc_guid; 2019 int error; 2020 2021 error = spa_open(zc->zc_name, &spa, FTAG); 2022 if (error != 0) 2023 return (error); 2024 2025 error = spa_vdev_setfru(spa, guid, fru); 2026 spa_close(spa, FTAG); 2027 return (error); 2028 } 2029 2030 static int 2031 zfs_ioc_objset_stats_impl(zfs_cmd_t *zc, objset_t *os) 2032 { 2033 int error = 0; 2034 nvlist_t *nv; 2035 2036 dmu_objset_fast_stat(os, &zc->zc_objset_stats); 2037 2038 if (zc->zc_nvlist_dst != 0 && 2039 (error = dsl_prop_get_all(os, &nv)) == 0) { 2040 dmu_objset_stats(os, nv); 2041 /* 2042 * NB: zvol_get_stats() will read the objset contents, 2043 * which we aren't supposed to do with a 2044 * DS_MODE_USER hold, because it could be 2045 * inconsistent. So this is a bit of a workaround... 2046 * XXX reading without owning 2047 */ 2048 if (!zc->zc_objset_stats.dds_inconsistent && 2049 dmu_objset_type(os) == DMU_OST_ZVOL) { 2050 error = zvol_get_stats(os, nv); 2051 if (error == EIO) { 2052 nvlist_free(nv); 2053 return (error); 2054 } 2055 VERIFY0(error); 2056 } 2057 if (error == 0) 2058 error = put_nvlist(zc, nv); 2059 nvlist_free(nv); 2060 } 2061 2062 return (error); 2063 } 2064 2065 /* 2066 * inputs: 2067 * zc_name name of filesystem 2068 * zc_nvlist_dst_size size of buffer for property nvlist 2069 * 2070 * outputs: 2071 * zc_objset_stats stats 2072 * zc_nvlist_dst property nvlist 2073 * zc_nvlist_dst_size size of property nvlist 2074 */ 2075 static int 2076 zfs_ioc_objset_stats(zfs_cmd_t *zc) 2077 { 2078 objset_t *os; 2079 int error; 2080 2081 error = dmu_objset_hold(zc->zc_name, FTAG, &os); 2082 if (error == 0) { 2083 error = zfs_ioc_objset_stats_impl(zc, os); 2084 dmu_objset_rele(os, FTAG); 2085 } 2086 2087 return (error); 2088 } 2089 2090 /* 2091 * inputs: 2092 * zc_name name of filesystem 2093 * zc_nvlist_dst_size size of buffer for property nvlist 2094 * 2095 * outputs: 2096 * zc_nvlist_dst received property nvlist 2097 * zc_nvlist_dst_size size of received property nvlist 2098 * 2099 * Gets received properties (distinct from local properties on or after 2100 * SPA_VERSION_RECVD_PROPS) for callers who want to differentiate received from 2101 * local property values. 2102 */ 2103 static int 2104 zfs_ioc_objset_recvd_props(zfs_cmd_t *zc) 2105 { 2106 int error = 0; 2107 nvlist_t *nv; 2108 2109 /* 2110 * Without this check, we would return local property values if the 2111 * caller has not already received properties on or after 2112 * SPA_VERSION_RECVD_PROPS. 2113 */ 2114 if (!dsl_prop_get_hasrecvd(zc->zc_name)) 2115 return (SET_ERROR(ENOTSUP)); 2116 2117 if (zc->zc_nvlist_dst != 0 && 2118 (error = dsl_prop_get_received(zc->zc_name, &nv)) == 0) { 2119 error = put_nvlist(zc, nv); 2120 nvlist_free(nv); 2121 } 2122 2123 return (error); 2124 } 2125 2126 static int 2127 nvl_add_zplprop(objset_t *os, nvlist_t *props, zfs_prop_t prop) 2128 { 2129 uint64_t value; 2130 int error; 2131 2132 /* 2133 * zfs_get_zplprop() will either find a value or give us 2134 * the default value (if there is one). 2135 */ 2136 if ((error = zfs_get_zplprop(os, prop, &value)) != 0) 2137 return (error); 2138 VERIFY(nvlist_add_uint64(props, zfs_prop_to_name(prop), value) == 0); 2139 return (0); 2140 } 2141 2142 /* 2143 * inputs: 2144 * zc_name name of filesystem 2145 * zc_nvlist_dst_size size of buffer for zpl property nvlist 2146 * 2147 * outputs: 2148 * zc_nvlist_dst zpl property nvlist 2149 * zc_nvlist_dst_size size of zpl property nvlist 2150 */ 2151 static int 2152 zfs_ioc_objset_zplprops(zfs_cmd_t *zc) 2153 { 2154 objset_t *os; 2155 int err; 2156 2157 /* XXX reading without owning */ 2158 if ((err = dmu_objset_hold(zc->zc_name, FTAG, &os))) 2159 return (err); 2160 2161 dmu_objset_fast_stat(os, &zc->zc_objset_stats); 2162 2163 /* 2164 * NB: nvl_add_zplprop() will read the objset contents, 2165 * which we aren't supposed to do with a DS_MODE_USER 2166 * hold, because it could be inconsistent. 2167 */ 2168 if (zc->zc_nvlist_dst != 0 && 2169 !zc->zc_objset_stats.dds_inconsistent && 2170 dmu_objset_type(os) == DMU_OST_ZFS) { 2171 nvlist_t *nv; 2172 2173 VERIFY(nvlist_alloc(&nv, NV_UNIQUE_NAME, KM_SLEEP) == 0); 2174 if ((err = nvl_add_zplprop(os, nv, ZFS_PROP_VERSION)) == 0 && 2175 (err = nvl_add_zplprop(os, nv, ZFS_PROP_NORMALIZE)) == 0 && 2176 (err = nvl_add_zplprop(os, nv, ZFS_PROP_UTF8ONLY)) == 0 && 2177 (err = nvl_add_zplprop(os, nv, ZFS_PROP_CASE)) == 0) 2178 err = put_nvlist(zc, nv); 2179 nvlist_free(nv); 2180 } else { 2181 err = SET_ERROR(ENOENT); 2182 } 2183 dmu_objset_rele(os, FTAG); 2184 return (err); 2185 } 2186 2187 /* 2188 * inputs: 2189 * zc_name name of filesystem 2190 * zc_cookie zap cursor 2191 * zc_nvlist_dst_size size of buffer for property nvlist 2192 * 2193 * outputs: 2194 * zc_name name of next filesystem 2195 * zc_cookie zap cursor 2196 * zc_objset_stats stats 2197 * zc_nvlist_dst property nvlist 2198 * zc_nvlist_dst_size size of property nvlist 2199 */ 2200 static int 2201 zfs_ioc_dataset_list_next(zfs_cmd_t *zc) 2202 { 2203 objset_t *os; 2204 int error; 2205 char *p; 2206 size_t orig_len = strlen(zc->zc_name); 2207 2208 top: 2209 if ((error = dmu_objset_hold(zc->zc_name, FTAG, &os))) { 2210 if (error == ENOENT) 2211 error = SET_ERROR(ESRCH); 2212 return (error); 2213 } 2214 2215 p = strrchr(zc->zc_name, '/'); 2216 if (p == NULL || p[1] != '\0') 2217 (void) strlcat(zc->zc_name, "/", sizeof (zc->zc_name)); 2218 p = zc->zc_name + strlen(zc->zc_name); 2219 2220 do { 2221 error = dmu_dir_list_next(os, 2222 sizeof (zc->zc_name) - (p - zc->zc_name), p, 2223 NULL, &zc->zc_cookie); 2224 if (error == ENOENT) 2225 error = SET_ERROR(ESRCH); 2226 } while (error == 0 && zfs_dataset_name_hidden(zc->zc_name)); 2227 dmu_objset_rele(os, FTAG); 2228 2229 /* 2230 * If it's an internal dataset (ie. with a '$' in its name), 2231 * don't try to get stats for it, otherwise we'll return ENOENT. 2232 */ 2233 if (error == 0 && strchr(zc->zc_name, '$') == NULL) { 2234 error = zfs_ioc_objset_stats(zc); /* fill in the stats */ 2235 if (error == ENOENT) { 2236 /* We lost a race with destroy, get the next one. */ 2237 zc->zc_name[orig_len] = '\0'; 2238 goto top; 2239 } 2240 } 2241 return (error); 2242 } 2243 2244 /* 2245 * inputs: 2246 * zc_name name of filesystem 2247 * zc_cookie zap cursor 2248 * zc_nvlist_src iteration range nvlist 2249 * zc_nvlist_src_size size of iteration range nvlist 2250 * 2251 * outputs: 2252 * zc_name name of next snapshot 2253 * zc_objset_stats stats 2254 * zc_nvlist_dst property nvlist 2255 * zc_nvlist_dst_size size of property nvlist 2256 */ 2257 static int 2258 zfs_ioc_snapshot_list_next(zfs_cmd_t *zc) 2259 { 2260 int error; 2261 objset_t *os, *ossnap; 2262 dsl_dataset_t *ds; 2263 uint64_t min_txg = 0, max_txg = 0; 2264 2265 if (zc->zc_nvlist_src_size != 0) { 2266 nvlist_t *props = NULL; 2267 error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 2268 zc->zc_iflags, &props); 2269 if (error != 0) 2270 return (error); 2271 (void) nvlist_lookup_uint64(props, SNAP_ITER_MIN_TXG, 2272 &min_txg); 2273 (void) nvlist_lookup_uint64(props, SNAP_ITER_MAX_TXG, 2274 &max_txg); 2275 nvlist_free(props); 2276 } 2277 2278 error = dmu_objset_hold(zc->zc_name, FTAG, &os); 2279 if (error != 0) { 2280 return (error == ENOENT ? SET_ERROR(ESRCH) : error); 2281 } 2282 2283 /* 2284 * A dataset name of maximum length cannot have any snapshots, 2285 * so exit immediately. 2286 */ 2287 if (strlcat(zc->zc_name, "@", sizeof (zc->zc_name)) >= 2288 ZFS_MAX_DATASET_NAME_LEN) { 2289 dmu_objset_rele(os, FTAG); 2290 return (SET_ERROR(ESRCH)); 2291 } 2292 2293 while (error == 0) { 2294 if (issig(JUSTLOOKING) && issig(FORREAL)) { 2295 error = SET_ERROR(EINTR); 2296 break; 2297 } 2298 2299 error = dmu_snapshot_list_next(os, 2300 sizeof (zc->zc_name) - strlen(zc->zc_name), 2301 zc->zc_name + strlen(zc->zc_name), &zc->zc_obj, 2302 &zc->zc_cookie, NULL); 2303 if (error == ENOENT) { 2304 error = SET_ERROR(ESRCH); 2305 break; 2306 } else if (error != 0) { 2307 break; 2308 } 2309 2310 error = dsl_dataset_hold_obj(dmu_objset_pool(os), zc->zc_obj, 2311 FTAG, &ds); 2312 if (error != 0) 2313 break; 2314 2315 if ((min_txg != 0 && dsl_get_creationtxg(ds) < min_txg) || 2316 (max_txg != 0 && dsl_get_creationtxg(ds) > max_txg)) { 2317 dsl_dataset_rele(ds, FTAG); 2318 /* undo snapshot name append */ 2319 *(strchr(zc->zc_name, '@') + 1) = '\0'; 2320 /* skip snapshot */ 2321 continue; 2322 } 2323 2324 if (zc->zc_simple) { 2325 dsl_dataset_rele(ds, FTAG); 2326 break; 2327 } 2328 2329 if ((error = dmu_objset_from_ds(ds, &ossnap)) != 0) { 2330 dsl_dataset_rele(ds, FTAG); 2331 break; 2332 } 2333 if ((error = zfs_ioc_objset_stats_impl(zc, ossnap)) != 0) { 2334 dsl_dataset_rele(ds, FTAG); 2335 break; 2336 } 2337 dsl_dataset_rele(ds, FTAG); 2338 break; 2339 } 2340 2341 dmu_objset_rele(os, FTAG); 2342 /* if we failed, undo the @ that we tacked on to zc_name */ 2343 if (error != 0) 2344 *strchr(zc->zc_name, '@') = '\0'; 2345 return (error); 2346 } 2347 2348 static int 2349 zfs_prop_set_userquota(const char *dsname, nvpair_t *pair) 2350 { 2351 const char *propname = nvpair_name(pair); 2352 uint64_t *valary; 2353 unsigned int vallen; 2354 const char *dash, *domain; 2355 zfs_userquota_prop_t type; 2356 uint64_t rid; 2357 uint64_t quota; 2358 zfsvfs_t *zfsvfs; 2359 int err; 2360 2361 if (nvpair_type(pair) == DATA_TYPE_NVLIST) { 2362 nvlist_t *attrs; 2363 VERIFY(nvpair_value_nvlist(pair, &attrs) == 0); 2364 if (nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 2365 &pair) != 0) 2366 return (SET_ERROR(EINVAL)); 2367 } 2368 2369 /* 2370 * A correctly constructed propname is encoded as 2371 * userquota@<rid>-<domain>. 2372 */ 2373 if ((dash = strchr(propname, '-')) == NULL || 2374 nvpair_value_uint64_array(pair, &valary, &vallen) != 0 || 2375 vallen != 3) 2376 return (SET_ERROR(EINVAL)); 2377 2378 domain = dash + 1; 2379 type = valary[0]; 2380 rid = valary[1]; 2381 quota = valary[2]; 2382 2383 err = zfsvfs_hold(dsname, FTAG, &zfsvfs, B_FALSE); 2384 if (err == 0) { 2385 err = zfs_set_userquota(zfsvfs, type, domain, rid, quota); 2386 zfsvfs_rele(zfsvfs, FTAG); 2387 } 2388 2389 return (err); 2390 } 2391 2392 /* 2393 * If the named property is one that has a special function to set its value, 2394 * return 0 on success and a positive error code on failure; otherwise if it is 2395 * not one of the special properties handled by this function, return -1. 2396 * 2397 * XXX: It would be better for callers of the property interface if we handled 2398 * these special cases in dsl_prop.c (in the dsl layer). 2399 */ 2400 static int 2401 zfs_prop_set_special(const char *dsname, zprop_source_t source, 2402 nvpair_t *pair) 2403 { 2404 const char *propname = nvpair_name(pair); 2405 zfs_prop_t prop = zfs_name_to_prop(propname); 2406 uint64_t intval = 0; 2407 const char *strval = NULL; 2408 int err = -1; 2409 2410 if (prop == ZPROP_USERPROP) { 2411 if (zfs_prop_userquota(propname)) 2412 return (zfs_prop_set_userquota(dsname, pair)); 2413 return (-1); 2414 } 2415 2416 if (nvpair_type(pair) == DATA_TYPE_NVLIST) { 2417 nvlist_t *attrs; 2418 VERIFY(nvpair_value_nvlist(pair, &attrs) == 0); 2419 VERIFY(nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 2420 &pair) == 0); 2421 } 2422 2423 /* all special properties are numeric except for keylocation */ 2424 if (zfs_prop_get_type(prop) == PROP_TYPE_STRING) { 2425 strval = fnvpair_value_string(pair); 2426 } else { 2427 intval = fnvpair_value_uint64(pair); 2428 } 2429 2430 switch (prop) { 2431 case ZFS_PROP_QUOTA: 2432 err = dsl_dir_set_quota(dsname, source, intval); 2433 break; 2434 case ZFS_PROP_REFQUOTA: 2435 err = dsl_dataset_set_refquota(dsname, source, intval); 2436 break; 2437 case ZFS_PROP_FILESYSTEM_LIMIT: 2438 case ZFS_PROP_SNAPSHOT_LIMIT: 2439 if (intval == UINT64_MAX) { 2440 /* clearing the limit, just do it */ 2441 err = 0; 2442 } else { 2443 err = dsl_dir_activate_fs_ss_limit(dsname); 2444 } 2445 /* 2446 * Set err to -1 to force the zfs_set_prop_nvlist code down the 2447 * default path to set the value in the nvlist. 2448 */ 2449 if (err == 0) 2450 err = -1; 2451 break; 2452 case ZFS_PROP_KEYLOCATION: 2453 err = dsl_crypto_can_set_keylocation(dsname, strval); 2454 2455 /* 2456 * Set err to -1 to force the zfs_set_prop_nvlist code down the 2457 * default path to set the value in the nvlist. 2458 */ 2459 if (err == 0) 2460 err = -1; 2461 break; 2462 case ZFS_PROP_RESERVATION: 2463 err = dsl_dir_set_reservation(dsname, source, intval); 2464 break; 2465 case ZFS_PROP_REFRESERVATION: 2466 err = dsl_dataset_set_refreservation(dsname, source, intval); 2467 break; 2468 case ZFS_PROP_COMPRESSION: 2469 err = dsl_dataset_set_compression(dsname, source, intval); 2470 /* 2471 * Set err to -1 to force the zfs_set_prop_nvlist code down the 2472 * default path to set the value in the nvlist. 2473 */ 2474 if (err == 0) 2475 err = -1; 2476 break; 2477 case ZFS_PROP_VOLSIZE: 2478 err = zvol_set_volsize(dsname, intval); 2479 break; 2480 case ZFS_PROP_SNAPDEV: 2481 err = zvol_set_snapdev(dsname, source, intval); 2482 break; 2483 case ZFS_PROP_VOLMODE: 2484 err = zvol_set_volmode(dsname, source, intval); 2485 break; 2486 case ZFS_PROP_VERSION: 2487 { 2488 zfsvfs_t *zfsvfs; 2489 2490 if ((err = zfsvfs_hold(dsname, FTAG, &zfsvfs, B_TRUE)) != 0) 2491 break; 2492 2493 err = zfs_set_version(zfsvfs, intval); 2494 zfsvfs_rele(zfsvfs, FTAG); 2495 2496 if (err == 0 && intval >= ZPL_VERSION_USERSPACE) { 2497 zfs_cmd_t *zc; 2498 2499 zc = kmem_zalloc(sizeof (zfs_cmd_t), KM_SLEEP); 2500 (void) strlcpy(zc->zc_name, dsname, 2501 sizeof (zc->zc_name)); 2502 (void) zfs_ioc_userspace_upgrade(zc); 2503 (void) zfs_ioc_id_quota_upgrade(zc); 2504 kmem_free(zc, sizeof (zfs_cmd_t)); 2505 } 2506 break; 2507 } 2508 default: 2509 err = -1; 2510 } 2511 2512 return (err); 2513 } 2514 2515 static boolean_t 2516 zfs_is_namespace_prop(zfs_prop_t prop) 2517 { 2518 switch (prop) { 2519 2520 case ZFS_PROP_ATIME: 2521 case ZFS_PROP_RELATIME: 2522 case ZFS_PROP_DEVICES: 2523 case ZFS_PROP_EXEC: 2524 case ZFS_PROP_SETUID: 2525 case ZFS_PROP_READONLY: 2526 case ZFS_PROP_XATTR: 2527 case ZFS_PROP_NBMAND: 2528 return (B_TRUE); 2529 2530 default: 2531 return (B_FALSE); 2532 } 2533 } 2534 2535 /* 2536 * This function is best effort. If it fails to set any of the given properties, 2537 * it continues to set as many as it can and returns the last error 2538 * encountered. If the caller provides a non-NULL errlist, it will be filled in 2539 * with the list of names of all the properties that failed along with the 2540 * corresponding error numbers. 2541 * 2542 * If every property is set successfully, zero is returned and errlist is not 2543 * modified. 2544 */ 2545 int 2546 zfs_set_prop_nvlist(const char *dsname, zprop_source_t source, nvlist_t *nvl, 2547 nvlist_t *errlist) 2548 { 2549 nvpair_t *pair; 2550 nvpair_t *propval; 2551 int rv = 0; 2552 int err; 2553 uint64_t intval; 2554 const char *strval; 2555 boolean_t should_update_mount_cache = B_FALSE; 2556 2557 nvlist_t *genericnvl = fnvlist_alloc(); 2558 nvlist_t *retrynvl = fnvlist_alloc(); 2559 retry: 2560 pair = NULL; 2561 while ((pair = nvlist_next_nvpair(nvl, pair)) != NULL) { 2562 const char *propname = nvpair_name(pair); 2563 zfs_prop_t prop = zfs_name_to_prop(propname); 2564 err = 0; 2565 2566 /* decode the property value */ 2567 propval = pair; 2568 if (nvpair_type(pair) == DATA_TYPE_NVLIST) { 2569 nvlist_t *attrs; 2570 attrs = fnvpair_value_nvlist(pair); 2571 if (nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 2572 &propval) != 0) 2573 err = SET_ERROR(EINVAL); 2574 } 2575 2576 /* Validate value type */ 2577 if (err == 0 && source == ZPROP_SRC_INHERITED) { 2578 /* inherited properties are expected to be booleans */ 2579 if (nvpair_type(propval) != DATA_TYPE_BOOLEAN) 2580 err = SET_ERROR(EINVAL); 2581 } else if (err == 0 && prop == ZPROP_USERPROP) { 2582 if (zfs_prop_user(propname)) { 2583 if (nvpair_type(propval) != DATA_TYPE_STRING) 2584 err = SET_ERROR(EINVAL); 2585 } else if (zfs_prop_userquota(propname)) { 2586 if (nvpair_type(propval) != 2587 DATA_TYPE_UINT64_ARRAY) 2588 err = SET_ERROR(EINVAL); 2589 } else { 2590 err = SET_ERROR(EINVAL); 2591 } 2592 } else if (err == 0) { 2593 if (nvpair_type(propval) == DATA_TYPE_STRING) { 2594 if (zfs_prop_get_type(prop) != PROP_TYPE_STRING) 2595 err = SET_ERROR(EINVAL); 2596 } else if (nvpair_type(propval) == DATA_TYPE_UINT64) { 2597 const char *unused; 2598 2599 intval = fnvpair_value_uint64(propval); 2600 2601 switch (zfs_prop_get_type(prop)) { 2602 case PROP_TYPE_NUMBER: 2603 break; 2604 case PROP_TYPE_STRING: 2605 err = SET_ERROR(EINVAL); 2606 break; 2607 case PROP_TYPE_INDEX: 2608 if (zfs_prop_index_to_string(prop, 2609 intval, &unused) != 0) 2610 err = 2611 SET_ERROR(ZFS_ERR_BADPROP); 2612 break; 2613 default: 2614 cmn_err(CE_PANIC, 2615 "unknown property type"); 2616 } 2617 } else { 2618 err = SET_ERROR(EINVAL); 2619 } 2620 } 2621 2622 /* Validate permissions */ 2623 if (err == 0) 2624 err = zfs_check_settable(dsname, pair, CRED()); 2625 2626 if (err == 0) { 2627 if (source == ZPROP_SRC_INHERITED) 2628 err = -1; /* does not need special handling */ 2629 else 2630 err = zfs_prop_set_special(dsname, source, 2631 pair); 2632 if (err == -1) { 2633 /* 2634 * For better performance we build up a list of 2635 * properties to set in a single transaction. 2636 */ 2637 err = nvlist_add_nvpair(genericnvl, pair); 2638 } else if (err != 0 && nvl != retrynvl) { 2639 /* 2640 * This may be a spurious error caused by 2641 * receiving quota and reservation out of order. 2642 * Try again in a second pass. 2643 */ 2644 err = nvlist_add_nvpair(retrynvl, pair); 2645 } 2646 } 2647 2648 if (err != 0) { 2649 if (errlist != NULL) 2650 fnvlist_add_int32(errlist, propname, err); 2651 rv = err; 2652 } 2653 2654 if (zfs_is_namespace_prop(prop)) 2655 should_update_mount_cache = B_TRUE; 2656 } 2657 2658 if (nvl != retrynvl && !nvlist_empty(retrynvl)) { 2659 nvl = retrynvl; 2660 goto retry; 2661 } 2662 2663 if (nvlist_empty(genericnvl)) 2664 goto out; 2665 2666 /* 2667 * Try to set them all in one batch. 2668 */ 2669 err = dsl_props_set(dsname, source, genericnvl); 2670 if (err == 0) 2671 goto out; 2672 2673 /* 2674 * If batching fails, we still want to set as many properties as we 2675 * can, so try setting them individually. 2676 */ 2677 pair = NULL; 2678 while ((pair = nvlist_next_nvpair(genericnvl, pair)) != NULL) { 2679 const char *propname = nvpair_name(pair); 2680 err = 0; 2681 2682 propval = pair; 2683 if (nvpair_type(pair) == DATA_TYPE_NVLIST) { 2684 nvlist_t *attrs; 2685 attrs = fnvpair_value_nvlist(pair); 2686 propval = fnvlist_lookup_nvpair(attrs, ZPROP_VALUE); 2687 } 2688 2689 if (nvpair_type(propval) == DATA_TYPE_STRING) { 2690 strval = fnvpair_value_string(propval); 2691 err = dsl_prop_set_string(dsname, propname, 2692 source, strval); 2693 } else if (nvpair_type(propval) == DATA_TYPE_BOOLEAN) { 2694 err = dsl_prop_inherit(dsname, propname, source); 2695 } else { 2696 intval = fnvpair_value_uint64(propval); 2697 err = dsl_prop_set_int(dsname, propname, source, 2698 intval); 2699 } 2700 2701 if (err != 0) { 2702 if (errlist != NULL) { 2703 fnvlist_add_int32(errlist, propname, err); 2704 } 2705 rv = err; 2706 } 2707 } 2708 2709 out: 2710 if (should_update_mount_cache) 2711 zfs_ioctl_update_mount_cache(dsname); 2712 2713 nvlist_free(genericnvl); 2714 nvlist_free(retrynvl); 2715 2716 return (rv); 2717 } 2718 2719 /* 2720 * Check that all the properties are valid user properties. 2721 */ 2722 static int 2723 zfs_check_userprops(nvlist_t *nvl) 2724 { 2725 nvpair_t *pair = NULL; 2726 2727 while ((pair = nvlist_next_nvpair(nvl, pair)) != NULL) { 2728 const char *propname = nvpair_name(pair); 2729 2730 if (!zfs_prop_user(propname) || 2731 nvpair_type(pair) != DATA_TYPE_STRING) 2732 return (SET_ERROR(EINVAL)); 2733 2734 if (strlen(propname) >= ZAP_MAXNAMELEN) 2735 return (SET_ERROR(ENAMETOOLONG)); 2736 2737 if (strlen(fnvpair_value_string(pair)) >= ZAP_MAXVALUELEN) 2738 return (SET_ERROR(E2BIG)); 2739 } 2740 return (0); 2741 } 2742 2743 static void 2744 props_skip(nvlist_t *props, nvlist_t *skipped, nvlist_t **newprops) 2745 { 2746 nvpair_t *pair; 2747 2748 VERIFY(nvlist_alloc(newprops, NV_UNIQUE_NAME, KM_SLEEP) == 0); 2749 2750 pair = NULL; 2751 while ((pair = nvlist_next_nvpair(props, pair)) != NULL) { 2752 if (nvlist_exists(skipped, nvpair_name(pair))) 2753 continue; 2754 2755 VERIFY(nvlist_add_nvpair(*newprops, pair) == 0); 2756 } 2757 } 2758 2759 static int 2760 clear_received_props(const char *dsname, nvlist_t *props, 2761 nvlist_t *skipped) 2762 { 2763 int err = 0; 2764 nvlist_t *cleared_props = NULL; 2765 props_skip(props, skipped, &cleared_props); 2766 if (!nvlist_empty(cleared_props)) { 2767 /* 2768 * Acts on local properties until the dataset has received 2769 * properties at least once on or after SPA_VERSION_RECVD_PROPS. 2770 */ 2771 zprop_source_t flags = (ZPROP_SRC_NONE | 2772 (dsl_prop_get_hasrecvd(dsname) ? ZPROP_SRC_RECEIVED : 0)); 2773 err = zfs_set_prop_nvlist(dsname, flags, cleared_props, NULL); 2774 } 2775 nvlist_free(cleared_props); 2776 return (err); 2777 } 2778 2779 /* 2780 * inputs: 2781 * zc_name name of filesystem 2782 * zc_value name of property to set 2783 * zc_nvlist_src{_size} nvlist of properties to apply 2784 * zc_cookie received properties flag 2785 * 2786 * outputs: 2787 * zc_nvlist_dst{_size} error for each unapplied received property 2788 */ 2789 static int 2790 zfs_ioc_set_prop(zfs_cmd_t *zc) 2791 { 2792 nvlist_t *nvl; 2793 boolean_t received = zc->zc_cookie; 2794 zprop_source_t source = (received ? ZPROP_SRC_RECEIVED : 2795 ZPROP_SRC_LOCAL); 2796 nvlist_t *errors; 2797 int error; 2798 2799 if ((error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 2800 zc->zc_iflags, &nvl)) != 0) 2801 return (error); 2802 2803 if (received) { 2804 nvlist_t *origprops; 2805 2806 if (dsl_prop_get_received(zc->zc_name, &origprops) == 0) { 2807 (void) clear_received_props(zc->zc_name, 2808 origprops, nvl); 2809 nvlist_free(origprops); 2810 } 2811 2812 error = dsl_prop_set_hasrecvd(zc->zc_name); 2813 } 2814 2815 errors = fnvlist_alloc(); 2816 if (error == 0) 2817 error = zfs_set_prop_nvlist(zc->zc_name, source, nvl, errors); 2818 2819 if (zc->zc_nvlist_dst != 0 && errors != NULL) { 2820 (void) put_nvlist(zc, errors); 2821 } 2822 2823 nvlist_free(errors); 2824 nvlist_free(nvl); 2825 return (error); 2826 } 2827 2828 /* 2829 * inputs: 2830 * zc_name name of filesystem 2831 * zc_value name of property to inherit 2832 * zc_cookie revert to received value if TRUE 2833 * 2834 * outputs: none 2835 */ 2836 static int 2837 zfs_ioc_inherit_prop(zfs_cmd_t *zc) 2838 { 2839 const char *propname = zc->zc_value; 2840 zfs_prop_t prop = zfs_name_to_prop(propname); 2841 boolean_t received = zc->zc_cookie; 2842 zprop_source_t source = (received 2843 ? ZPROP_SRC_NONE /* revert to received value, if any */ 2844 : ZPROP_SRC_INHERITED); /* explicitly inherit */ 2845 nvlist_t *dummy; 2846 nvpair_t *pair; 2847 zprop_type_t type; 2848 int err; 2849 2850 if (!received) { 2851 /* 2852 * Only check this in the non-received case. We want to allow 2853 * 'inherit -S' to revert non-inheritable properties like quota 2854 * and reservation to the received or default values even though 2855 * they are not considered inheritable. 2856 */ 2857 if (prop != ZPROP_USERPROP && !zfs_prop_inheritable(prop)) 2858 return (SET_ERROR(EINVAL)); 2859 } 2860 2861 if (prop == ZPROP_USERPROP) { 2862 if (!zfs_prop_user(propname)) 2863 return (SET_ERROR(EINVAL)); 2864 2865 type = PROP_TYPE_STRING; 2866 } else if (prop == ZFS_PROP_VOLSIZE || prop == ZFS_PROP_VERSION) { 2867 return (SET_ERROR(EINVAL)); 2868 } else { 2869 type = zfs_prop_get_type(prop); 2870 } 2871 2872 /* 2873 * zfs_prop_set_special() expects properties in the form of an 2874 * nvpair with type info. 2875 */ 2876 dummy = fnvlist_alloc(); 2877 2878 switch (type) { 2879 case PROP_TYPE_STRING: 2880 VERIFY(0 == nvlist_add_string(dummy, propname, "")); 2881 break; 2882 case PROP_TYPE_NUMBER: 2883 case PROP_TYPE_INDEX: 2884 VERIFY(0 == nvlist_add_uint64(dummy, propname, 0)); 2885 break; 2886 default: 2887 err = SET_ERROR(EINVAL); 2888 goto errout; 2889 } 2890 2891 pair = nvlist_next_nvpair(dummy, NULL); 2892 if (pair == NULL) { 2893 err = SET_ERROR(EINVAL); 2894 } else { 2895 err = zfs_prop_set_special(zc->zc_name, source, pair); 2896 if (err == -1) /* property is not "special", needs handling */ 2897 err = dsl_prop_inherit(zc->zc_name, zc->zc_value, 2898 source); 2899 } 2900 2901 errout: 2902 nvlist_free(dummy); 2903 return (err); 2904 } 2905 2906 static int 2907 zfs_ioc_pool_set_props(zfs_cmd_t *zc) 2908 { 2909 nvlist_t *props; 2910 spa_t *spa; 2911 int error; 2912 nvpair_t *pair; 2913 2914 if ((error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 2915 zc->zc_iflags, &props))) 2916 return (error); 2917 2918 /* 2919 * If the only property is the configfile, then just do a spa_lookup() 2920 * to handle the faulted case. 2921 */ 2922 pair = nvlist_next_nvpair(props, NULL); 2923 if (pair != NULL && strcmp(nvpair_name(pair), 2924 zpool_prop_to_name(ZPOOL_PROP_CACHEFILE)) == 0 && 2925 nvlist_next_nvpair(props, pair) == NULL) { 2926 mutex_enter(&spa_namespace_lock); 2927 if ((spa = spa_lookup(zc->zc_name)) != NULL) { 2928 spa_configfile_set(spa, props, B_FALSE); 2929 spa_write_cachefile(spa, B_FALSE, B_TRUE); 2930 } 2931 mutex_exit(&spa_namespace_lock); 2932 if (spa != NULL) { 2933 nvlist_free(props); 2934 return (0); 2935 } 2936 } 2937 2938 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) { 2939 nvlist_free(props); 2940 return (error); 2941 } 2942 2943 error = spa_prop_set(spa, props); 2944 2945 nvlist_free(props); 2946 spa_close(spa, FTAG); 2947 2948 return (error); 2949 } 2950 2951 static int 2952 zfs_ioc_pool_get_props(zfs_cmd_t *zc) 2953 { 2954 spa_t *spa; 2955 int error; 2956 nvlist_t *nvp = NULL; 2957 2958 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) { 2959 /* 2960 * If the pool is faulted, there may be properties we can still 2961 * get (such as altroot and cachefile), so attempt to get them 2962 * anyway. 2963 */ 2964 mutex_enter(&spa_namespace_lock); 2965 if ((spa = spa_lookup(zc->zc_name)) != NULL) 2966 error = spa_prop_get(spa, &nvp); 2967 mutex_exit(&spa_namespace_lock); 2968 } else { 2969 error = spa_prop_get(spa, &nvp); 2970 spa_close(spa, FTAG); 2971 } 2972 2973 if (error == 0 && zc->zc_nvlist_dst != 0) 2974 error = put_nvlist(zc, nvp); 2975 else 2976 error = SET_ERROR(EFAULT); 2977 2978 nvlist_free(nvp); 2979 return (error); 2980 } 2981 2982 /* 2983 * innvl: { 2984 * "vdevprops_set_vdev" -> guid 2985 * "vdevprops_set_props" -> { prop -> value } 2986 * } 2987 * 2988 * outnvl: propname -> error code (int32) 2989 */ 2990 static const zfs_ioc_key_t zfs_keys_vdev_set_props[] = { 2991 {ZPOOL_VDEV_PROPS_SET_VDEV, DATA_TYPE_UINT64, 0}, 2992 {ZPOOL_VDEV_PROPS_SET_PROPS, DATA_TYPE_NVLIST, 0} 2993 }; 2994 2995 static int 2996 zfs_ioc_vdev_set_props(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 2997 { 2998 spa_t *spa; 2999 int error; 3000 vdev_t *vd; 3001 uint64_t vdev_guid; 3002 3003 /* Early validation */ 3004 if (nvlist_lookup_uint64(innvl, ZPOOL_VDEV_PROPS_SET_VDEV, 3005 &vdev_guid) != 0) 3006 return (SET_ERROR(EINVAL)); 3007 3008 if (outnvl == NULL) 3009 return (SET_ERROR(EINVAL)); 3010 3011 if ((error = spa_open(poolname, &spa, FTAG)) != 0) 3012 return (error); 3013 3014 ASSERT(spa_writeable(spa)); 3015 3016 if ((vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE)) == NULL) { 3017 spa_close(spa, FTAG); 3018 return (SET_ERROR(ENOENT)); 3019 } 3020 3021 error = vdev_prop_set(vd, innvl, outnvl); 3022 3023 spa_close(spa, FTAG); 3024 3025 return (error); 3026 } 3027 3028 /* 3029 * innvl: { 3030 * "vdevprops_get_vdev" -> guid 3031 * (optional) "vdevprops_get_props" -> { propname -> propid } 3032 * } 3033 * 3034 * outnvl: propname -> value 3035 */ 3036 static const zfs_ioc_key_t zfs_keys_vdev_get_props[] = { 3037 {ZPOOL_VDEV_PROPS_GET_VDEV, DATA_TYPE_UINT64, 0}, 3038 {ZPOOL_VDEV_PROPS_GET_PROPS, DATA_TYPE_NVLIST, ZK_OPTIONAL} 3039 }; 3040 3041 static int 3042 zfs_ioc_vdev_get_props(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 3043 { 3044 spa_t *spa; 3045 int error; 3046 vdev_t *vd; 3047 uint64_t vdev_guid; 3048 3049 /* Early validation */ 3050 if (nvlist_lookup_uint64(innvl, ZPOOL_VDEV_PROPS_GET_VDEV, 3051 &vdev_guid) != 0) 3052 return (SET_ERROR(EINVAL)); 3053 3054 if (outnvl == NULL) 3055 return (SET_ERROR(EINVAL)); 3056 3057 if ((error = spa_open(poolname, &spa, FTAG)) != 0) 3058 return (error); 3059 3060 if ((vd = spa_lookup_by_guid(spa, vdev_guid, B_TRUE)) == NULL) { 3061 spa_close(spa, FTAG); 3062 return (SET_ERROR(ENOENT)); 3063 } 3064 3065 error = vdev_prop_get(vd, innvl, outnvl); 3066 3067 spa_close(spa, FTAG); 3068 3069 return (error); 3070 } 3071 3072 /* 3073 * inputs: 3074 * zc_name name of filesystem 3075 * zc_nvlist_src{_size} nvlist of delegated permissions 3076 * zc_perm_action allow/unallow flag 3077 * 3078 * outputs: none 3079 */ 3080 static int 3081 zfs_ioc_set_fsacl(zfs_cmd_t *zc) 3082 { 3083 int error; 3084 nvlist_t *fsaclnv = NULL; 3085 3086 if ((error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 3087 zc->zc_iflags, &fsaclnv)) != 0) 3088 return (error); 3089 3090 /* 3091 * Verify nvlist is constructed correctly 3092 */ 3093 if ((error = zfs_deleg_verify_nvlist(fsaclnv)) != 0) { 3094 nvlist_free(fsaclnv); 3095 return (SET_ERROR(EINVAL)); 3096 } 3097 3098 /* 3099 * If we don't have PRIV_SYS_MOUNT, then validate 3100 * that user is allowed to hand out each permission in 3101 * the nvlist(s) 3102 */ 3103 3104 error = secpolicy_zfs(CRED()); 3105 if (error != 0) { 3106 if (zc->zc_perm_action == B_FALSE) { 3107 error = dsl_deleg_can_allow(zc->zc_name, 3108 fsaclnv, CRED()); 3109 } else { 3110 error = dsl_deleg_can_unallow(zc->zc_name, 3111 fsaclnv, CRED()); 3112 } 3113 } 3114 3115 if (error == 0) 3116 error = dsl_deleg_set(zc->zc_name, fsaclnv, zc->zc_perm_action); 3117 3118 nvlist_free(fsaclnv); 3119 return (error); 3120 } 3121 3122 /* 3123 * inputs: 3124 * zc_name name of filesystem 3125 * 3126 * outputs: 3127 * zc_nvlist_src{_size} nvlist of delegated permissions 3128 */ 3129 static int 3130 zfs_ioc_get_fsacl(zfs_cmd_t *zc) 3131 { 3132 nvlist_t *nvp; 3133 int error; 3134 3135 if ((error = dsl_deleg_get(zc->zc_name, &nvp)) == 0) { 3136 error = put_nvlist(zc, nvp); 3137 nvlist_free(nvp); 3138 } 3139 3140 return (error); 3141 } 3142 3143 static void 3144 zfs_create_cb(objset_t *os, void *arg, cred_t *cr, dmu_tx_t *tx) 3145 { 3146 zfs_creat_t *zct = arg; 3147 3148 zfs_create_fs(os, cr, zct->zct_zplprops, tx); 3149 } 3150 3151 #define ZFS_PROP_UNDEFINED ((uint64_t)-1) 3152 3153 /* 3154 * inputs: 3155 * os parent objset pointer (NULL if root fs) 3156 * fuids_ok fuids allowed in this version of the spa? 3157 * sa_ok SAs allowed in this version of the spa? 3158 * createprops list of properties requested by creator 3159 * 3160 * outputs: 3161 * zplprops values for the zplprops we attach to the master node object 3162 * is_ci true if requested file system will be purely case-insensitive 3163 * 3164 * Determine the settings for utf8only, normalization and 3165 * casesensitivity. Specific values may have been requested by the 3166 * creator and/or we can inherit values from the parent dataset. If 3167 * the file system is of too early a vintage, a creator can not 3168 * request settings for these properties, even if the requested 3169 * setting is the default value. We don't actually want to create dsl 3170 * properties for these, so remove them from the source nvlist after 3171 * processing. 3172 */ 3173 static int 3174 zfs_fill_zplprops_impl(objset_t *os, uint64_t zplver, 3175 boolean_t fuids_ok, boolean_t sa_ok, nvlist_t *createprops, 3176 nvlist_t *zplprops, boolean_t *is_ci) 3177 { 3178 uint64_t sense = ZFS_PROP_UNDEFINED; 3179 uint64_t norm = ZFS_PROP_UNDEFINED; 3180 uint64_t u8 = ZFS_PROP_UNDEFINED; 3181 int error; 3182 3183 ASSERT(zplprops != NULL); 3184 3185 /* parent dataset must be a filesystem */ 3186 if (os != NULL && os->os_phys->os_type != DMU_OST_ZFS) 3187 return (SET_ERROR(ZFS_ERR_WRONG_PARENT)); 3188 3189 /* 3190 * Pull out creator prop choices, if any. 3191 */ 3192 if (createprops) { 3193 (void) nvlist_lookup_uint64(createprops, 3194 zfs_prop_to_name(ZFS_PROP_VERSION), &zplver); 3195 (void) nvlist_lookup_uint64(createprops, 3196 zfs_prop_to_name(ZFS_PROP_NORMALIZE), &norm); 3197 (void) nvlist_remove_all(createprops, 3198 zfs_prop_to_name(ZFS_PROP_NORMALIZE)); 3199 (void) nvlist_lookup_uint64(createprops, 3200 zfs_prop_to_name(ZFS_PROP_UTF8ONLY), &u8); 3201 (void) nvlist_remove_all(createprops, 3202 zfs_prop_to_name(ZFS_PROP_UTF8ONLY)); 3203 (void) nvlist_lookup_uint64(createprops, 3204 zfs_prop_to_name(ZFS_PROP_CASE), &sense); 3205 (void) nvlist_remove_all(createprops, 3206 zfs_prop_to_name(ZFS_PROP_CASE)); 3207 } 3208 3209 /* 3210 * If the zpl version requested is whacky or the file system 3211 * or pool is version is too "young" to support normalization 3212 * and the creator tried to set a value for one of the props, 3213 * error out. 3214 */ 3215 if ((zplver < ZPL_VERSION_INITIAL || zplver > ZPL_VERSION) || 3216 (zplver >= ZPL_VERSION_FUID && !fuids_ok) || 3217 (zplver >= ZPL_VERSION_SA && !sa_ok) || 3218 (zplver < ZPL_VERSION_NORMALIZATION && 3219 (norm != ZFS_PROP_UNDEFINED || u8 != ZFS_PROP_UNDEFINED || 3220 sense != ZFS_PROP_UNDEFINED))) 3221 return (SET_ERROR(ENOTSUP)); 3222 3223 /* 3224 * Put the version in the zplprops 3225 */ 3226 VERIFY(nvlist_add_uint64(zplprops, 3227 zfs_prop_to_name(ZFS_PROP_VERSION), zplver) == 0); 3228 3229 if (norm == ZFS_PROP_UNDEFINED && 3230 (error = zfs_get_zplprop(os, ZFS_PROP_NORMALIZE, &norm)) != 0) 3231 return (error); 3232 VERIFY(nvlist_add_uint64(zplprops, 3233 zfs_prop_to_name(ZFS_PROP_NORMALIZE), norm) == 0); 3234 3235 /* 3236 * If we're normalizing, names must always be valid UTF-8 strings. 3237 */ 3238 if (norm) 3239 u8 = 1; 3240 if (u8 == ZFS_PROP_UNDEFINED && 3241 (error = zfs_get_zplprop(os, ZFS_PROP_UTF8ONLY, &u8)) != 0) 3242 return (error); 3243 VERIFY(nvlist_add_uint64(zplprops, 3244 zfs_prop_to_name(ZFS_PROP_UTF8ONLY), u8) == 0); 3245 3246 if (sense == ZFS_PROP_UNDEFINED && 3247 (error = zfs_get_zplprop(os, ZFS_PROP_CASE, &sense)) != 0) 3248 return (error); 3249 VERIFY(nvlist_add_uint64(zplprops, 3250 zfs_prop_to_name(ZFS_PROP_CASE), sense) == 0); 3251 3252 if (is_ci) 3253 *is_ci = (sense == ZFS_CASE_INSENSITIVE); 3254 3255 return (0); 3256 } 3257 3258 static int 3259 zfs_fill_zplprops(const char *dataset, nvlist_t *createprops, 3260 nvlist_t *zplprops, boolean_t *is_ci) 3261 { 3262 boolean_t fuids_ok, sa_ok; 3263 uint64_t zplver = ZPL_VERSION; 3264 objset_t *os = NULL; 3265 char parentname[ZFS_MAX_DATASET_NAME_LEN]; 3266 spa_t *spa; 3267 uint64_t spa_vers; 3268 int error; 3269 3270 zfs_get_parent(dataset, parentname, sizeof (parentname)); 3271 3272 if ((error = spa_open(dataset, &spa, FTAG)) != 0) 3273 return (error); 3274 3275 spa_vers = spa_version(spa); 3276 spa_close(spa, FTAG); 3277 3278 zplver = zfs_zpl_version_map(spa_vers); 3279 fuids_ok = (zplver >= ZPL_VERSION_FUID); 3280 sa_ok = (zplver >= ZPL_VERSION_SA); 3281 3282 /* 3283 * Open parent object set so we can inherit zplprop values. 3284 */ 3285 if ((error = dmu_objset_hold(parentname, FTAG, &os)) != 0) 3286 return (error); 3287 3288 error = zfs_fill_zplprops_impl(os, zplver, fuids_ok, sa_ok, createprops, 3289 zplprops, is_ci); 3290 dmu_objset_rele(os, FTAG); 3291 return (error); 3292 } 3293 3294 static int 3295 zfs_fill_zplprops_root(uint64_t spa_vers, nvlist_t *createprops, 3296 nvlist_t *zplprops, boolean_t *is_ci) 3297 { 3298 boolean_t fuids_ok; 3299 boolean_t sa_ok; 3300 uint64_t zplver = ZPL_VERSION; 3301 int error; 3302 3303 zplver = zfs_zpl_version_map(spa_vers); 3304 fuids_ok = (zplver >= ZPL_VERSION_FUID); 3305 sa_ok = (zplver >= ZPL_VERSION_SA); 3306 3307 error = zfs_fill_zplprops_impl(NULL, zplver, fuids_ok, sa_ok, 3308 createprops, zplprops, is_ci); 3309 return (error); 3310 } 3311 3312 /* 3313 * innvl: { 3314 * "type" -> dmu_objset_type_t (int32) 3315 * (optional) "props" -> { prop -> value } 3316 * (optional) "hidden_args" -> { "wkeydata" -> value } 3317 * raw uint8_t array of encryption wrapping key data (32 bytes) 3318 * } 3319 * 3320 * outnvl: propname -> error code (int32) 3321 */ 3322 3323 static const zfs_ioc_key_t zfs_keys_create[] = { 3324 {"type", DATA_TYPE_INT32, 0}, 3325 {"props", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 3326 {"hidden_args", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 3327 }; 3328 3329 static int 3330 zfs_ioc_create(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 3331 { 3332 int error = 0; 3333 zfs_creat_t zct = { 0 }; 3334 nvlist_t *nvprops = NULL; 3335 nvlist_t *hidden_args = NULL; 3336 void (*cbfunc)(objset_t *os, void *arg, cred_t *cr, dmu_tx_t *tx); 3337 dmu_objset_type_t type; 3338 boolean_t is_insensitive = B_FALSE; 3339 dsl_crypto_params_t *dcp = NULL; 3340 3341 type = (dmu_objset_type_t)fnvlist_lookup_int32(innvl, "type"); 3342 (void) nvlist_lookup_nvlist(innvl, "props", &nvprops); 3343 (void) nvlist_lookup_nvlist(innvl, ZPOOL_HIDDEN_ARGS, &hidden_args); 3344 3345 switch (type) { 3346 case DMU_OST_ZFS: 3347 cbfunc = zfs_create_cb; 3348 break; 3349 3350 case DMU_OST_ZVOL: 3351 cbfunc = zvol_create_cb; 3352 break; 3353 3354 default: 3355 cbfunc = NULL; 3356 break; 3357 } 3358 if (strchr(fsname, '@') || 3359 strchr(fsname, '%')) 3360 return (SET_ERROR(EINVAL)); 3361 3362 zct.zct_props = nvprops; 3363 3364 if (cbfunc == NULL) 3365 return (SET_ERROR(EINVAL)); 3366 3367 if (type == DMU_OST_ZVOL) { 3368 uint64_t volsize, volblocksize; 3369 3370 if (nvprops == NULL) 3371 return (SET_ERROR(EINVAL)); 3372 if (nvlist_lookup_uint64(nvprops, 3373 zfs_prop_to_name(ZFS_PROP_VOLSIZE), &volsize) != 0) 3374 return (SET_ERROR(EINVAL)); 3375 3376 if ((error = nvlist_lookup_uint64(nvprops, 3377 zfs_prop_to_name(ZFS_PROP_VOLBLOCKSIZE), 3378 &volblocksize)) != 0 && error != ENOENT) 3379 return (SET_ERROR(EINVAL)); 3380 3381 if (error != 0) 3382 volblocksize = zfs_prop_default_numeric( 3383 ZFS_PROP_VOLBLOCKSIZE); 3384 3385 if ((error = zvol_check_volblocksize(fsname, 3386 volblocksize)) != 0 || 3387 (error = zvol_check_volsize(volsize, 3388 volblocksize)) != 0) 3389 return (error); 3390 } else if (type == DMU_OST_ZFS) { 3391 int error; 3392 3393 /* 3394 * We have to have normalization and 3395 * case-folding flags correct when we do the 3396 * file system creation, so go figure them out 3397 * now. 3398 */ 3399 VERIFY(nvlist_alloc(&zct.zct_zplprops, 3400 NV_UNIQUE_NAME, KM_SLEEP) == 0); 3401 error = zfs_fill_zplprops(fsname, nvprops, 3402 zct.zct_zplprops, &is_insensitive); 3403 if (error != 0) { 3404 nvlist_free(zct.zct_zplprops); 3405 return (error); 3406 } 3407 } 3408 3409 error = dsl_crypto_params_create_nvlist(DCP_CMD_NONE, nvprops, 3410 hidden_args, &dcp); 3411 if (error != 0) { 3412 nvlist_free(zct.zct_zplprops); 3413 return (error); 3414 } 3415 3416 error = dmu_objset_create(fsname, type, 3417 is_insensitive ? DS_FLAG_CI_DATASET : 0, dcp, cbfunc, &zct); 3418 3419 nvlist_free(zct.zct_zplprops); 3420 dsl_crypto_params_free(dcp, !!error); 3421 3422 /* 3423 * It would be nice to do this atomically. 3424 */ 3425 if (error == 0) { 3426 error = zfs_set_prop_nvlist(fsname, ZPROP_SRC_LOCAL, 3427 nvprops, outnvl); 3428 if (error != 0) { 3429 spa_t *spa; 3430 int error2; 3431 3432 /* 3433 * Volumes will return EBUSY and cannot be destroyed 3434 * until all asynchronous minor handling (e.g. from 3435 * setting the volmode property) has completed. Wait for 3436 * the spa_zvol_taskq to drain then retry. 3437 */ 3438 error2 = dsl_destroy_head(fsname); 3439 while ((error2 == EBUSY) && (type == DMU_OST_ZVOL)) { 3440 error2 = spa_open(fsname, &spa, FTAG); 3441 if (error2 == 0) { 3442 taskq_wait(spa->spa_zvol_taskq); 3443 spa_close(spa, FTAG); 3444 } 3445 error2 = dsl_destroy_head(fsname); 3446 } 3447 } 3448 } 3449 return (error); 3450 } 3451 3452 /* 3453 * innvl: { 3454 * "origin" -> name of origin snapshot 3455 * (optional) "props" -> { prop -> value } 3456 * (optional) "hidden_args" -> { "wkeydata" -> value } 3457 * raw uint8_t array of encryption wrapping key data (32 bytes) 3458 * } 3459 * 3460 * outputs: 3461 * outnvl: propname -> error code (int32) 3462 */ 3463 static const zfs_ioc_key_t zfs_keys_clone[] = { 3464 {"origin", DATA_TYPE_STRING, 0}, 3465 {"props", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 3466 {"hidden_args", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 3467 }; 3468 3469 static int 3470 zfs_ioc_clone(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 3471 { 3472 int error = 0; 3473 nvlist_t *nvprops = NULL; 3474 const char *origin_name; 3475 3476 origin_name = fnvlist_lookup_string(innvl, "origin"); 3477 (void) nvlist_lookup_nvlist(innvl, "props", &nvprops); 3478 3479 if (strchr(fsname, '@') || 3480 strchr(fsname, '%')) 3481 return (SET_ERROR(EINVAL)); 3482 3483 if (dataset_namecheck(origin_name, NULL, NULL) != 0) 3484 return (SET_ERROR(EINVAL)); 3485 3486 error = dmu_objset_clone(fsname, origin_name); 3487 3488 /* 3489 * It would be nice to do this atomically. 3490 */ 3491 if (error == 0) { 3492 error = zfs_set_prop_nvlist(fsname, ZPROP_SRC_LOCAL, 3493 nvprops, outnvl); 3494 if (error != 0) 3495 (void) dsl_destroy_head(fsname); 3496 } 3497 return (error); 3498 } 3499 3500 static const zfs_ioc_key_t zfs_keys_remap[] = { 3501 /* no nvl keys */ 3502 }; 3503 3504 static int 3505 zfs_ioc_remap(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 3506 { 3507 /* This IOCTL is no longer supported. */ 3508 (void) fsname, (void) innvl, (void) outnvl; 3509 return (0); 3510 } 3511 3512 /* 3513 * innvl: { 3514 * "snaps" -> { snapshot1, snapshot2 } 3515 * (optional) "props" -> { prop -> value (string) } 3516 * } 3517 * 3518 * outnvl: snapshot -> error code (int32) 3519 */ 3520 static const zfs_ioc_key_t zfs_keys_snapshot[] = { 3521 {"snaps", DATA_TYPE_NVLIST, 0}, 3522 {"props", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 3523 }; 3524 3525 static int 3526 zfs_ioc_snapshot(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 3527 { 3528 nvlist_t *snaps; 3529 nvlist_t *props = NULL; 3530 int error, poollen; 3531 nvpair_t *pair; 3532 3533 (void) nvlist_lookup_nvlist(innvl, "props", &props); 3534 if (!nvlist_empty(props) && 3535 zfs_earlier_version(poolname, SPA_VERSION_SNAP_PROPS)) 3536 return (SET_ERROR(ENOTSUP)); 3537 if ((error = zfs_check_userprops(props)) != 0) 3538 return (error); 3539 3540 snaps = fnvlist_lookup_nvlist(innvl, "snaps"); 3541 poollen = strlen(poolname); 3542 for (pair = nvlist_next_nvpair(snaps, NULL); pair != NULL; 3543 pair = nvlist_next_nvpair(snaps, pair)) { 3544 const char *name = nvpair_name(pair); 3545 char *cp = strchr(name, '@'); 3546 3547 /* 3548 * The snap name must contain an @, and the part after it must 3549 * contain only valid characters. 3550 */ 3551 if (cp == NULL || 3552 zfs_component_namecheck(cp + 1, NULL, NULL) != 0) 3553 return (SET_ERROR(EINVAL)); 3554 3555 /* 3556 * The snap must be in the specified pool. 3557 */ 3558 if (strncmp(name, poolname, poollen) != 0 || 3559 (name[poollen] != '/' && name[poollen] != '@')) 3560 return (SET_ERROR(EXDEV)); 3561 3562 /* 3563 * Check for permission to set the properties on the fs. 3564 */ 3565 if (!nvlist_empty(props)) { 3566 *cp = '\0'; 3567 error = zfs_secpolicy_write_perms(name, 3568 ZFS_DELEG_PERM_USERPROP, CRED()); 3569 *cp = '@'; 3570 if (error != 0) 3571 return (error); 3572 } 3573 3574 /* This must be the only snap of this fs. */ 3575 for (nvpair_t *pair2 = nvlist_next_nvpair(snaps, pair); 3576 pair2 != NULL; pair2 = nvlist_next_nvpair(snaps, pair2)) { 3577 if (strncmp(name, nvpair_name(pair2), cp - name + 1) 3578 == 0) { 3579 return (SET_ERROR(EXDEV)); 3580 } 3581 } 3582 } 3583 3584 error = dsl_dataset_snapshot(snaps, props, outnvl); 3585 3586 return (error); 3587 } 3588 3589 /* 3590 * innvl: "message" -> string 3591 */ 3592 static const zfs_ioc_key_t zfs_keys_log_history[] = { 3593 {"message", DATA_TYPE_STRING, 0}, 3594 }; 3595 3596 static int 3597 zfs_ioc_log_history(const char *unused, nvlist_t *innvl, nvlist_t *outnvl) 3598 { 3599 (void) unused, (void) outnvl; 3600 const char *message; 3601 char *poolname; 3602 spa_t *spa; 3603 int error; 3604 3605 /* 3606 * The poolname in the ioctl is not set, we get it from the TSD, 3607 * which was set at the end of the last successful ioctl that allows 3608 * logging. The secpolicy func already checked that it is set. 3609 * Only one log ioctl is allowed after each successful ioctl, so 3610 * we clear the TSD here. 3611 */ 3612 poolname = tsd_get(zfs_allow_log_key); 3613 if (poolname == NULL) 3614 return (SET_ERROR(EINVAL)); 3615 (void) tsd_set(zfs_allow_log_key, NULL); 3616 error = spa_open(poolname, &spa, FTAG); 3617 kmem_strfree(poolname); 3618 if (error != 0) 3619 return (error); 3620 3621 message = fnvlist_lookup_string(innvl, "message"); 3622 3623 if (spa_version(spa) < SPA_VERSION_ZPOOL_HISTORY) { 3624 spa_close(spa, FTAG); 3625 return (SET_ERROR(ENOTSUP)); 3626 } 3627 3628 error = spa_history_log(spa, message); 3629 spa_close(spa, FTAG); 3630 return (error); 3631 } 3632 3633 /* 3634 * This ioctl is used to set the bootenv configuration on the current 3635 * pool. This configuration is stored in the second padding area of the label, 3636 * and it is used by the bootloader(s) to store the bootloader and/or system 3637 * specific data. 3638 * The data is stored as nvlist data stream, and is protected by 3639 * an embedded checksum. 3640 * The version can have two possible values: 3641 * VB_RAW: nvlist should have key GRUB_ENVMAP, value DATA_TYPE_STRING. 3642 * VB_NVLIST: nvlist with arbitrary <key, value> pairs. 3643 */ 3644 static const zfs_ioc_key_t zfs_keys_set_bootenv[] = { 3645 {"version", DATA_TYPE_UINT64, 0}, 3646 {"<keys>", DATA_TYPE_ANY, ZK_OPTIONAL | ZK_WILDCARDLIST}, 3647 }; 3648 3649 static int 3650 zfs_ioc_set_bootenv(const char *name, nvlist_t *innvl, nvlist_t *outnvl) 3651 { 3652 int error; 3653 spa_t *spa; 3654 3655 if ((error = spa_open(name, &spa, FTAG)) != 0) 3656 return (error); 3657 spa_vdev_state_enter(spa, SCL_ALL); 3658 error = vdev_label_write_bootenv(spa->spa_root_vdev, innvl); 3659 (void) spa_vdev_state_exit(spa, NULL, 0); 3660 spa_close(spa, FTAG); 3661 return (error); 3662 } 3663 3664 static const zfs_ioc_key_t zfs_keys_get_bootenv[] = { 3665 /* no nvl keys */ 3666 }; 3667 3668 static int 3669 zfs_ioc_get_bootenv(const char *name, nvlist_t *innvl, nvlist_t *outnvl) 3670 { 3671 spa_t *spa; 3672 int error; 3673 3674 if ((error = spa_open(name, &spa, FTAG)) != 0) 3675 return (error); 3676 spa_vdev_state_enter(spa, SCL_ALL); 3677 error = vdev_label_read_bootenv(spa->spa_root_vdev, outnvl); 3678 (void) spa_vdev_state_exit(spa, NULL, 0); 3679 spa_close(spa, FTAG); 3680 return (error); 3681 } 3682 3683 /* 3684 * The dp_config_rwlock must not be held when calling this, because the 3685 * unmount may need to write out data. 3686 * 3687 * This function is best-effort. Callers must deal gracefully if it 3688 * remains mounted (or is remounted after this call). 3689 * 3690 * Returns 0 if the argument is not a snapshot, or it is not currently a 3691 * filesystem, or we were able to unmount it. Returns error code otherwise. 3692 */ 3693 void 3694 zfs_unmount_snap(const char *snapname) 3695 { 3696 if (strchr(snapname, '@') == NULL) 3697 return; 3698 3699 (void) zfsctl_snapshot_unmount(snapname, MNT_FORCE); 3700 } 3701 3702 static int 3703 zfs_unmount_snap_cb(const char *snapname, void *arg) 3704 { 3705 (void) arg; 3706 zfs_unmount_snap(snapname); 3707 return (0); 3708 } 3709 3710 /* 3711 * When a clone is destroyed, its origin may also need to be destroyed, 3712 * in which case it must be unmounted. This routine will do that unmount 3713 * if necessary. 3714 */ 3715 void 3716 zfs_destroy_unmount_origin(const char *fsname) 3717 { 3718 int error; 3719 objset_t *os; 3720 dsl_dataset_t *ds; 3721 3722 error = dmu_objset_hold(fsname, FTAG, &os); 3723 if (error != 0) 3724 return; 3725 ds = dmu_objset_ds(os); 3726 if (dsl_dir_is_clone(ds->ds_dir) && DS_IS_DEFER_DESTROY(ds->ds_prev)) { 3727 char originname[ZFS_MAX_DATASET_NAME_LEN]; 3728 dsl_dataset_name(ds->ds_prev, originname); 3729 dmu_objset_rele(os, FTAG); 3730 zfs_unmount_snap(originname); 3731 } else { 3732 dmu_objset_rele(os, FTAG); 3733 } 3734 } 3735 3736 /* 3737 * innvl: { 3738 * "snaps" -> { snapshot1, snapshot2 } 3739 * (optional boolean) "defer" 3740 * } 3741 * 3742 * outnvl: snapshot -> error code (int32) 3743 */ 3744 static const zfs_ioc_key_t zfs_keys_destroy_snaps[] = { 3745 {"snaps", DATA_TYPE_NVLIST, 0}, 3746 {"defer", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 3747 }; 3748 3749 static int 3750 zfs_ioc_destroy_snaps(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 3751 { 3752 int poollen; 3753 nvlist_t *snaps; 3754 nvpair_t *pair; 3755 boolean_t defer; 3756 spa_t *spa; 3757 3758 snaps = fnvlist_lookup_nvlist(innvl, "snaps"); 3759 defer = nvlist_exists(innvl, "defer"); 3760 3761 poollen = strlen(poolname); 3762 for (pair = nvlist_next_nvpair(snaps, NULL); pair != NULL; 3763 pair = nvlist_next_nvpair(snaps, pair)) { 3764 const char *name = nvpair_name(pair); 3765 3766 /* 3767 * The snap must be in the specified pool to prevent the 3768 * invalid removal of zvol minors below. 3769 */ 3770 if (strncmp(name, poolname, poollen) != 0 || 3771 (name[poollen] != '/' && name[poollen] != '@')) 3772 return (SET_ERROR(EXDEV)); 3773 3774 zfs_unmount_snap(nvpair_name(pair)); 3775 if (spa_open(name, &spa, FTAG) == 0) { 3776 zvol_remove_minors(spa, name, B_TRUE); 3777 spa_close(spa, FTAG); 3778 } 3779 } 3780 3781 return (dsl_destroy_snapshots_nvl(snaps, defer, outnvl)); 3782 } 3783 3784 /* 3785 * Create bookmarks. The bookmark names are of the form <fs>#<bmark>. 3786 * All bookmarks and snapshots must be in the same pool. 3787 * dsl_bookmark_create_nvl_validate describes the nvlist schema in more detail. 3788 * 3789 * innvl: { 3790 * new_bookmark1 -> existing_snapshot, 3791 * new_bookmark2 -> existing_bookmark, 3792 * } 3793 * 3794 * outnvl: bookmark -> error code (int32) 3795 * 3796 */ 3797 static const zfs_ioc_key_t zfs_keys_bookmark[] = { 3798 {"<bookmark>...", DATA_TYPE_STRING, ZK_WILDCARDLIST}, 3799 }; 3800 3801 static int 3802 zfs_ioc_bookmark(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 3803 { 3804 (void) poolname; 3805 return (dsl_bookmark_create(innvl, outnvl)); 3806 } 3807 3808 /* 3809 * innvl: { 3810 * property 1, property 2, ... 3811 * } 3812 * 3813 * outnvl: { 3814 * bookmark name 1 -> { property 1, property 2, ... }, 3815 * bookmark name 2 -> { property 1, property 2, ... } 3816 * } 3817 * 3818 */ 3819 static const zfs_ioc_key_t zfs_keys_get_bookmarks[] = { 3820 {"<property>...", DATA_TYPE_BOOLEAN, ZK_WILDCARDLIST | ZK_OPTIONAL}, 3821 }; 3822 3823 static int 3824 zfs_ioc_get_bookmarks(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 3825 { 3826 return (dsl_get_bookmarks(fsname, innvl, outnvl)); 3827 } 3828 3829 /* 3830 * innvl is not used. 3831 * 3832 * outnvl: { 3833 * property 1, property 2, ... 3834 * } 3835 * 3836 */ 3837 static const zfs_ioc_key_t zfs_keys_get_bookmark_props[] = { 3838 /* no nvl keys */ 3839 }; 3840 3841 static int 3842 zfs_ioc_get_bookmark_props(const char *bookmark, nvlist_t *innvl, 3843 nvlist_t *outnvl) 3844 { 3845 (void) innvl; 3846 char fsname[ZFS_MAX_DATASET_NAME_LEN]; 3847 char *bmname; 3848 3849 bmname = strchr(bookmark, '#'); 3850 if (bmname == NULL) 3851 return (SET_ERROR(EINVAL)); 3852 bmname++; 3853 3854 (void) strlcpy(fsname, bookmark, sizeof (fsname)); 3855 *(strchr(fsname, '#')) = '\0'; 3856 3857 return (dsl_get_bookmark_props(fsname, bmname, outnvl)); 3858 } 3859 3860 /* 3861 * innvl: { 3862 * bookmark name 1, bookmark name 2 3863 * } 3864 * 3865 * outnvl: bookmark -> error code (int32) 3866 * 3867 */ 3868 static const zfs_ioc_key_t zfs_keys_destroy_bookmarks[] = { 3869 {"<bookmark>...", DATA_TYPE_BOOLEAN, ZK_WILDCARDLIST}, 3870 }; 3871 3872 static int 3873 zfs_ioc_destroy_bookmarks(const char *poolname, nvlist_t *innvl, 3874 nvlist_t *outnvl) 3875 { 3876 int error, poollen; 3877 3878 poollen = strlen(poolname); 3879 for (nvpair_t *pair = nvlist_next_nvpair(innvl, NULL); 3880 pair != NULL; pair = nvlist_next_nvpair(innvl, pair)) { 3881 const char *name = nvpair_name(pair); 3882 const char *cp = strchr(name, '#'); 3883 3884 /* 3885 * The bookmark name must contain an #, and the part after it 3886 * must contain only valid characters. 3887 */ 3888 if (cp == NULL || 3889 zfs_component_namecheck(cp + 1, NULL, NULL) != 0) 3890 return (SET_ERROR(EINVAL)); 3891 3892 /* 3893 * The bookmark must be in the specified pool. 3894 */ 3895 if (strncmp(name, poolname, poollen) != 0 || 3896 (name[poollen] != '/' && name[poollen] != '#')) 3897 return (SET_ERROR(EXDEV)); 3898 } 3899 3900 error = dsl_bookmark_destroy(innvl, outnvl); 3901 return (error); 3902 } 3903 3904 static const zfs_ioc_key_t zfs_keys_channel_program[] = { 3905 {"program", DATA_TYPE_STRING, 0}, 3906 {"arg", DATA_TYPE_ANY, 0}, 3907 {"sync", DATA_TYPE_BOOLEAN_VALUE, ZK_OPTIONAL}, 3908 {"instrlimit", DATA_TYPE_UINT64, ZK_OPTIONAL}, 3909 {"memlimit", DATA_TYPE_UINT64, ZK_OPTIONAL}, 3910 }; 3911 3912 static int 3913 zfs_ioc_channel_program(const char *poolname, nvlist_t *innvl, 3914 nvlist_t *outnvl) 3915 { 3916 char *program; 3917 uint64_t instrlimit, memlimit; 3918 boolean_t sync_flag; 3919 nvpair_t *nvarg = NULL; 3920 3921 program = fnvlist_lookup_string(innvl, ZCP_ARG_PROGRAM); 3922 if (0 != nvlist_lookup_boolean_value(innvl, ZCP_ARG_SYNC, &sync_flag)) { 3923 sync_flag = B_TRUE; 3924 } 3925 if (0 != nvlist_lookup_uint64(innvl, ZCP_ARG_INSTRLIMIT, &instrlimit)) { 3926 instrlimit = ZCP_DEFAULT_INSTRLIMIT; 3927 } 3928 if (0 != nvlist_lookup_uint64(innvl, ZCP_ARG_MEMLIMIT, &memlimit)) { 3929 memlimit = ZCP_DEFAULT_MEMLIMIT; 3930 } 3931 nvarg = fnvlist_lookup_nvpair(innvl, ZCP_ARG_ARGLIST); 3932 3933 if (instrlimit == 0 || instrlimit > zfs_lua_max_instrlimit) 3934 return (SET_ERROR(EINVAL)); 3935 if (memlimit == 0 || memlimit > zfs_lua_max_memlimit) 3936 return (SET_ERROR(EINVAL)); 3937 3938 return (zcp_eval(poolname, program, sync_flag, instrlimit, memlimit, 3939 nvarg, outnvl)); 3940 } 3941 3942 /* 3943 * innvl: unused 3944 * outnvl: empty 3945 */ 3946 static const zfs_ioc_key_t zfs_keys_pool_checkpoint[] = { 3947 /* no nvl keys */ 3948 }; 3949 3950 static int 3951 zfs_ioc_pool_checkpoint(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 3952 { 3953 (void) innvl, (void) outnvl; 3954 return (spa_checkpoint(poolname)); 3955 } 3956 3957 /* 3958 * innvl: unused 3959 * outnvl: empty 3960 */ 3961 static const zfs_ioc_key_t zfs_keys_pool_discard_checkpoint[] = { 3962 /* no nvl keys */ 3963 }; 3964 3965 static int 3966 zfs_ioc_pool_discard_checkpoint(const char *poolname, nvlist_t *innvl, 3967 nvlist_t *outnvl) 3968 { 3969 (void) innvl, (void) outnvl; 3970 return (spa_checkpoint_discard(poolname)); 3971 } 3972 3973 /* 3974 * inputs: 3975 * zc_name name of dataset to destroy 3976 * zc_defer_destroy mark for deferred destroy 3977 * 3978 * outputs: none 3979 */ 3980 static int 3981 zfs_ioc_destroy(zfs_cmd_t *zc) 3982 { 3983 objset_t *os; 3984 dmu_objset_type_t ost; 3985 int err; 3986 3987 err = dmu_objset_hold(zc->zc_name, FTAG, &os); 3988 if (err != 0) 3989 return (err); 3990 ost = dmu_objset_type(os); 3991 dmu_objset_rele(os, FTAG); 3992 3993 if (ost == DMU_OST_ZFS) 3994 zfs_unmount_snap(zc->zc_name); 3995 3996 if (strchr(zc->zc_name, '@')) { 3997 err = dsl_destroy_snapshot(zc->zc_name, zc->zc_defer_destroy); 3998 } else { 3999 err = dsl_destroy_head(zc->zc_name); 4000 if (err == EEXIST) { 4001 /* 4002 * It is possible that the given DS may have 4003 * hidden child (%recv) datasets - "leftovers" 4004 * resulting from the previously interrupted 4005 * 'zfs receive'. 4006 * 4007 * 6 extra bytes for /%recv 4008 */ 4009 char namebuf[ZFS_MAX_DATASET_NAME_LEN + 6]; 4010 4011 if (snprintf(namebuf, sizeof (namebuf), "%s/%s", 4012 zc->zc_name, recv_clone_name) >= 4013 sizeof (namebuf)) 4014 return (SET_ERROR(EINVAL)); 4015 4016 /* 4017 * Try to remove the hidden child (%recv) and after 4018 * that try to remove the target dataset. 4019 * If the hidden child (%recv) does not exist 4020 * the original error (EEXIST) will be returned 4021 */ 4022 err = dsl_destroy_head(namebuf); 4023 if (err == 0) 4024 err = dsl_destroy_head(zc->zc_name); 4025 else if (err == ENOENT) 4026 err = SET_ERROR(EEXIST); 4027 } 4028 } 4029 4030 return (err); 4031 } 4032 4033 /* 4034 * innvl: { 4035 * "initialize_command" -> POOL_INITIALIZE_{CANCEL|START|SUSPEND} (uint64) 4036 * "initialize_vdevs": { -> guids to initialize (nvlist) 4037 * "vdev_path_1": vdev_guid_1, (uint64), 4038 * "vdev_path_2": vdev_guid_2, (uint64), 4039 * ... 4040 * }, 4041 * } 4042 * 4043 * outnvl: { 4044 * "initialize_vdevs": { -> initialization errors (nvlist) 4045 * "vdev_path_1": errno, see function body for possible errnos (uint64) 4046 * "vdev_path_2": errno, ... (uint64) 4047 * ... 4048 * } 4049 * } 4050 * 4051 * EINVAL is returned for an unknown commands or if any of the provided vdev 4052 * guids have be specified with a type other than uint64. 4053 */ 4054 static const zfs_ioc_key_t zfs_keys_pool_initialize[] = { 4055 {ZPOOL_INITIALIZE_COMMAND, DATA_TYPE_UINT64, 0}, 4056 {ZPOOL_INITIALIZE_VDEVS, DATA_TYPE_NVLIST, 0} 4057 }; 4058 4059 static int 4060 zfs_ioc_pool_initialize(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 4061 { 4062 uint64_t cmd_type; 4063 if (nvlist_lookup_uint64(innvl, ZPOOL_INITIALIZE_COMMAND, 4064 &cmd_type) != 0) { 4065 return (SET_ERROR(EINVAL)); 4066 } 4067 4068 if (!(cmd_type == POOL_INITIALIZE_CANCEL || 4069 cmd_type == POOL_INITIALIZE_START || 4070 cmd_type == POOL_INITIALIZE_SUSPEND)) { 4071 return (SET_ERROR(EINVAL)); 4072 } 4073 4074 nvlist_t *vdev_guids; 4075 if (nvlist_lookup_nvlist(innvl, ZPOOL_INITIALIZE_VDEVS, 4076 &vdev_guids) != 0) { 4077 return (SET_ERROR(EINVAL)); 4078 } 4079 4080 for (nvpair_t *pair = nvlist_next_nvpair(vdev_guids, NULL); 4081 pair != NULL; pair = nvlist_next_nvpair(vdev_guids, pair)) { 4082 uint64_t vdev_guid; 4083 if (nvpair_value_uint64(pair, &vdev_guid) != 0) { 4084 return (SET_ERROR(EINVAL)); 4085 } 4086 } 4087 4088 spa_t *spa; 4089 int error = spa_open(poolname, &spa, FTAG); 4090 if (error != 0) 4091 return (error); 4092 4093 nvlist_t *vdev_errlist = fnvlist_alloc(); 4094 int total_errors = spa_vdev_initialize(spa, vdev_guids, cmd_type, 4095 vdev_errlist); 4096 4097 if (fnvlist_size(vdev_errlist) > 0) { 4098 fnvlist_add_nvlist(outnvl, ZPOOL_INITIALIZE_VDEVS, 4099 vdev_errlist); 4100 } 4101 fnvlist_free(vdev_errlist); 4102 4103 spa_close(spa, FTAG); 4104 return (total_errors > 0 ? SET_ERROR(EINVAL) : 0); 4105 } 4106 4107 /* 4108 * innvl: { 4109 * "trim_command" -> POOL_TRIM_{CANCEL|START|SUSPEND} (uint64) 4110 * "trim_vdevs": { -> guids to TRIM (nvlist) 4111 * "vdev_path_1": vdev_guid_1, (uint64), 4112 * "vdev_path_2": vdev_guid_2, (uint64), 4113 * ... 4114 * }, 4115 * "trim_rate" -> Target TRIM rate in bytes/sec. 4116 * "trim_secure" -> Set to request a secure TRIM. 4117 * } 4118 * 4119 * outnvl: { 4120 * "trim_vdevs": { -> TRIM errors (nvlist) 4121 * "vdev_path_1": errno, see function body for possible errnos (uint64) 4122 * "vdev_path_2": errno, ... (uint64) 4123 * ... 4124 * } 4125 * } 4126 * 4127 * EINVAL is returned for an unknown commands or if any of the provided vdev 4128 * guids have be specified with a type other than uint64. 4129 */ 4130 static const zfs_ioc_key_t zfs_keys_pool_trim[] = { 4131 {ZPOOL_TRIM_COMMAND, DATA_TYPE_UINT64, 0}, 4132 {ZPOOL_TRIM_VDEVS, DATA_TYPE_NVLIST, 0}, 4133 {ZPOOL_TRIM_RATE, DATA_TYPE_UINT64, ZK_OPTIONAL}, 4134 {ZPOOL_TRIM_SECURE, DATA_TYPE_BOOLEAN_VALUE, ZK_OPTIONAL}, 4135 }; 4136 4137 static int 4138 zfs_ioc_pool_trim(const char *poolname, nvlist_t *innvl, nvlist_t *outnvl) 4139 { 4140 uint64_t cmd_type; 4141 if (nvlist_lookup_uint64(innvl, ZPOOL_TRIM_COMMAND, &cmd_type) != 0) 4142 return (SET_ERROR(EINVAL)); 4143 4144 if (!(cmd_type == POOL_TRIM_CANCEL || 4145 cmd_type == POOL_TRIM_START || 4146 cmd_type == POOL_TRIM_SUSPEND)) { 4147 return (SET_ERROR(EINVAL)); 4148 } 4149 4150 nvlist_t *vdev_guids; 4151 if (nvlist_lookup_nvlist(innvl, ZPOOL_TRIM_VDEVS, &vdev_guids) != 0) 4152 return (SET_ERROR(EINVAL)); 4153 4154 for (nvpair_t *pair = nvlist_next_nvpair(vdev_guids, NULL); 4155 pair != NULL; pair = nvlist_next_nvpair(vdev_guids, pair)) { 4156 uint64_t vdev_guid; 4157 if (nvpair_value_uint64(pair, &vdev_guid) != 0) { 4158 return (SET_ERROR(EINVAL)); 4159 } 4160 } 4161 4162 /* Optional, defaults to maximum rate when not provided */ 4163 uint64_t rate; 4164 if (nvlist_lookup_uint64(innvl, ZPOOL_TRIM_RATE, &rate) != 0) 4165 rate = 0; 4166 4167 /* Optional, defaults to standard TRIM when not provided */ 4168 boolean_t secure; 4169 if (nvlist_lookup_boolean_value(innvl, ZPOOL_TRIM_SECURE, 4170 &secure) != 0) { 4171 secure = B_FALSE; 4172 } 4173 4174 spa_t *spa; 4175 int error = spa_open(poolname, &spa, FTAG); 4176 if (error != 0) 4177 return (error); 4178 4179 nvlist_t *vdev_errlist = fnvlist_alloc(); 4180 int total_errors = spa_vdev_trim(spa, vdev_guids, cmd_type, 4181 rate, !!zfs_trim_metaslab_skip, secure, vdev_errlist); 4182 4183 if (fnvlist_size(vdev_errlist) > 0) 4184 fnvlist_add_nvlist(outnvl, ZPOOL_TRIM_VDEVS, vdev_errlist); 4185 4186 fnvlist_free(vdev_errlist); 4187 4188 spa_close(spa, FTAG); 4189 return (total_errors > 0 ? SET_ERROR(EINVAL) : 0); 4190 } 4191 4192 /* 4193 * This ioctl waits for activity of a particular type to complete. If there is 4194 * no activity of that type in progress, it returns immediately, and the 4195 * returned value "waited" is false. If there is activity in progress, and no 4196 * tag is passed in, the ioctl blocks until all activity of that type is 4197 * complete, and then returns with "waited" set to true. 4198 * 4199 * If a tag is provided, it identifies a particular instance of an activity to 4200 * wait for. Currently, this is only valid for use with 'initialize', because 4201 * that is the only activity for which there can be multiple instances running 4202 * concurrently. In the case of 'initialize', the tag corresponds to the guid of 4203 * the vdev on which to wait. 4204 * 4205 * If a thread waiting in the ioctl receives a signal, the call will return 4206 * immediately, and the return value will be EINTR. 4207 * 4208 * innvl: { 4209 * "wait_activity" -> int32_t 4210 * (optional) "wait_tag" -> uint64_t 4211 * } 4212 * 4213 * outnvl: "waited" -> boolean_t 4214 */ 4215 static const zfs_ioc_key_t zfs_keys_pool_wait[] = { 4216 {ZPOOL_WAIT_ACTIVITY, DATA_TYPE_INT32, 0}, 4217 {ZPOOL_WAIT_TAG, DATA_TYPE_UINT64, ZK_OPTIONAL}, 4218 }; 4219 4220 static int 4221 zfs_ioc_wait(const char *name, nvlist_t *innvl, nvlist_t *outnvl) 4222 { 4223 int32_t activity; 4224 uint64_t tag; 4225 boolean_t waited; 4226 int error; 4227 4228 if (nvlist_lookup_int32(innvl, ZPOOL_WAIT_ACTIVITY, &activity) != 0) 4229 return (EINVAL); 4230 4231 if (nvlist_lookup_uint64(innvl, ZPOOL_WAIT_TAG, &tag) == 0) 4232 error = spa_wait_tag(name, activity, tag, &waited); 4233 else 4234 error = spa_wait(name, activity, &waited); 4235 4236 if (error == 0) 4237 fnvlist_add_boolean_value(outnvl, ZPOOL_WAIT_WAITED, waited); 4238 4239 return (error); 4240 } 4241 4242 /* 4243 * This ioctl waits for activity of a particular type to complete. If there is 4244 * no activity of that type in progress, it returns immediately, and the 4245 * returned value "waited" is false. If there is activity in progress, and no 4246 * tag is passed in, the ioctl blocks until all activity of that type is 4247 * complete, and then returns with "waited" set to true. 4248 * 4249 * If a thread waiting in the ioctl receives a signal, the call will return 4250 * immediately, and the return value will be EINTR. 4251 * 4252 * innvl: { 4253 * "wait_activity" -> int32_t 4254 * } 4255 * 4256 * outnvl: "waited" -> boolean_t 4257 */ 4258 static const zfs_ioc_key_t zfs_keys_fs_wait[] = { 4259 {ZFS_WAIT_ACTIVITY, DATA_TYPE_INT32, 0}, 4260 }; 4261 4262 static int 4263 zfs_ioc_wait_fs(const char *name, nvlist_t *innvl, nvlist_t *outnvl) 4264 { 4265 int32_t activity; 4266 boolean_t waited = B_FALSE; 4267 int error; 4268 dsl_pool_t *dp; 4269 dsl_dir_t *dd; 4270 dsl_dataset_t *ds; 4271 4272 if (nvlist_lookup_int32(innvl, ZFS_WAIT_ACTIVITY, &activity) != 0) 4273 return (SET_ERROR(EINVAL)); 4274 4275 if (activity >= ZFS_WAIT_NUM_ACTIVITIES || activity < 0) 4276 return (SET_ERROR(EINVAL)); 4277 4278 if ((error = dsl_pool_hold(name, FTAG, &dp)) != 0) 4279 return (error); 4280 4281 if ((error = dsl_dataset_hold(dp, name, FTAG, &ds)) != 0) { 4282 dsl_pool_rele(dp, FTAG); 4283 return (error); 4284 } 4285 4286 dd = ds->ds_dir; 4287 mutex_enter(&dd->dd_activity_lock); 4288 dd->dd_activity_waiters++; 4289 4290 /* 4291 * We get a long-hold here so that the dsl_dataset_t and dsl_dir_t 4292 * aren't evicted while we're waiting. Normally this is prevented by 4293 * holding the pool, but we can't do that while we're waiting since 4294 * that would prevent TXGs from syncing out. Some of the functionality 4295 * of long-holds (e.g. preventing deletion) is unnecessary for this 4296 * case, since we would cancel the waiters before proceeding with a 4297 * deletion. An alternative mechanism for keeping the dataset around 4298 * could be developed but this is simpler. 4299 */ 4300 dsl_dataset_long_hold(ds, FTAG); 4301 dsl_pool_rele(dp, FTAG); 4302 4303 error = dsl_dir_wait(dd, ds, activity, &waited); 4304 4305 dsl_dataset_long_rele(ds, FTAG); 4306 dd->dd_activity_waiters--; 4307 if (dd->dd_activity_waiters == 0) 4308 cv_signal(&dd->dd_activity_cv); 4309 mutex_exit(&dd->dd_activity_lock); 4310 4311 dsl_dataset_rele(ds, FTAG); 4312 4313 if (error == 0) 4314 fnvlist_add_boolean_value(outnvl, ZFS_WAIT_WAITED, waited); 4315 4316 return (error); 4317 } 4318 4319 /* 4320 * fsname is name of dataset to rollback (to most recent snapshot) 4321 * 4322 * innvl may contain name of expected target snapshot 4323 * 4324 * outnvl: "target" -> name of most recent snapshot 4325 * } 4326 */ 4327 static const zfs_ioc_key_t zfs_keys_rollback[] = { 4328 {"target", DATA_TYPE_STRING, ZK_OPTIONAL}, 4329 }; 4330 4331 static int 4332 zfs_ioc_rollback(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 4333 { 4334 zfsvfs_t *zfsvfs; 4335 zvol_state_handle_t *zv; 4336 char *target = NULL; 4337 int error; 4338 4339 (void) nvlist_lookup_string(innvl, "target", &target); 4340 if (target != NULL) { 4341 const char *cp = strchr(target, '@'); 4342 4343 /* 4344 * The snap name must contain an @, and the part after it must 4345 * contain only valid characters. 4346 */ 4347 if (cp == NULL || 4348 zfs_component_namecheck(cp + 1, NULL, NULL) != 0) 4349 return (SET_ERROR(EINVAL)); 4350 } 4351 4352 if (getzfsvfs(fsname, &zfsvfs) == 0) { 4353 dsl_dataset_t *ds; 4354 4355 ds = dmu_objset_ds(zfsvfs->z_os); 4356 error = zfs_suspend_fs(zfsvfs); 4357 if (error == 0) { 4358 int resume_err; 4359 4360 error = dsl_dataset_rollback(fsname, target, zfsvfs, 4361 outnvl); 4362 resume_err = zfs_resume_fs(zfsvfs, ds); 4363 error = error ? error : resume_err; 4364 } 4365 zfs_vfs_rele(zfsvfs); 4366 } else if ((zv = zvol_suspend(fsname)) != NULL) { 4367 error = dsl_dataset_rollback(fsname, target, zvol_tag(zv), 4368 outnvl); 4369 zvol_resume(zv); 4370 } else { 4371 error = dsl_dataset_rollback(fsname, target, NULL, outnvl); 4372 } 4373 return (error); 4374 } 4375 4376 static int 4377 recursive_unmount(const char *fsname, void *arg) 4378 { 4379 const char *snapname = arg; 4380 char *fullname; 4381 4382 fullname = kmem_asprintf("%s@%s", fsname, snapname); 4383 zfs_unmount_snap(fullname); 4384 kmem_strfree(fullname); 4385 4386 return (0); 4387 } 4388 4389 /* 4390 * 4391 * snapname is the snapshot to redact. 4392 * innvl: { 4393 * "bookname" -> (string) 4394 * shortname of the redaction bookmark to generate 4395 * "snapnv" -> (nvlist, values ignored) 4396 * snapshots to redact snapname with respect to 4397 * } 4398 * 4399 * outnvl is unused 4400 */ 4401 4402 static const zfs_ioc_key_t zfs_keys_redact[] = { 4403 {"bookname", DATA_TYPE_STRING, 0}, 4404 {"snapnv", DATA_TYPE_NVLIST, 0}, 4405 }; 4406 4407 static int 4408 zfs_ioc_redact(const char *snapname, nvlist_t *innvl, nvlist_t *outnvl) 4409 { 4410 (void) outnvl; 4411 nvlist_t *redactnvl = NULL; 4412 char *redactbook = NULL; 4413 4414 if (nvlist_lookup_nvlist(innvl, "snapnv", &redactnvl) != 0) 4415 return (SET_ERROR(EINVAL)); 4416 if (fnvlist_num_pairs(redactnvl) == 0) 4417 return (SET_ERROR(ENXIO)); 4418 if (nvlist_lookup_string(innvl, "bookname", &redactbook) != 0) 4419 return (SET_ERROR(EINVAL)); 4420 4421 return (dmu_redact_snap(snapname, redactnvl, redactbook)); 4422 } 4423 4424 /* 4425 * inputs: 4426 * zc_name old name of dataset 4427 * zc_value new name of dataset 4428 * zc_cookie recursive flag (only valid for snapshots) 4429 * 4430 * outputs: none 4431 */ 4432 static int 4433 zfs_ioc_rename(zfs_cmd_t *zc) 4434 { 4435 objset_t *os; 4436 dmu_objset_type_t ost; 4437 boolean_t recursive = zc->zc_cookie & 1; 4438 boolean_t nounmount = !!(zc->zc_cookie & 2); 4439 char *at; 4440 int err; 4441 4442 /* "zfs rename" from and to ...%recv datasets should both fail */ 4443 zc->zc_name[sizeof (zc->zc_name) - 1] = '\0'; 4444 zc->zc_value[sizeof (zc->zc_value) - 1] = '\0'; 4445 if (dataset_namecheck(zc->zc_name, NULL, NULL) != 0 || 4446 dataset_namecheck(zc->zc_value, NULL, NULL) != 0 || 4447 strchr(zc->zc_name, '%') || strchr(zc->zc_value, '%')) 4448 return (SET_ERROR(EINVAL)); 4449 4450 err = dmu_objset_hold(zc->zc_name, FTAG, &os); 4451 if (err != 0) 4452 return (err); 4453 ost = dmu_objset_type(os); 4454 dmu_objset_rele(os, FTAG); 4455 4456 at = strchr(zc->zc_name, '@'); 4457 if (at != NULL) { 4458 /* snaps must be in same fs */ 4459 int error; 4460 4461 if (strncmp(zc->zc_name, zc->zc_value, at - zc->zc_name + 1)) 4462 return (SET_ERROR(EXDEV)); 4463 *at = '\0'; 4464 if (ost == DMU_OST_ZFS && !nounmount) { 4465 error = dmu_objset_find(zc->zc_name, 4466 recursive_unmount, at + 1, 4467 recursive ? DS_FIND_CHILDREN : 0); 4468 if (error != 0) { 4469 *at = '@'; 4470 return (error); 4471 } 4472 } 4473 error = dsl_dataset_rename_snapshot(zc->zc_name, 4474 at + 1, strchr(zc->zc_value, '@') + 1, recursive); 4475 *at = '@'; 4476 4477 return (error); 4478 } else { 4479 return (dsl_dir_rename(zc->zc_name, zc->zc_value)); 4480 } 4481 } 4482 4483 static int 4484 zfs_check_settable(const char *dsname, nvpair_t *pair, cred_t *cr) 4485 { 4486 const char *propname = nvpair_name(pair); 4487 boolean_t issnap = (strchr(dsname, '@') != NULL); 4488 zfs_prop_t prop = zfs_name_to_prop(propname); 4489 uint64_t intval, compval; 4490 int err; 4491 4492 if (prop == ZPROP_USERPROP) { 4493 if (zfs_prop_user(propname)) { 4494 if ((err = zfs_secpolicy_write_perms(dsname, 4495 ZFS_DELEG_PERM_USERPROP, cr))) 4496 return (err); 4497 return (0); 4498 } 4499 4500 if (!issnap && zfs_prop_userquota(propname)) { 4501 const char *perm = NULL; 4502 const char *uq_prefix = 4503 zfs_userquota_prop_prefixes[ZFS_PROP_USERQUOTA]; 4504 const char *gq_prefix = 4505 zfs_userquota_prop_prefixes[ZFS_PROP_GROUPQUOTA]; 4506 const char *uiq_prefix = 4507 zfs_userquota_prop_prefixes[ZFS_PROP_USEROBJQUOTA]; 4508 const char *giq_prefix = 4509 zfs_userquota_prop_prefixes[ZFS_PROP_GROUPOBJQUOTA]; 4510 const char *pq_prefix = 4511 zfs_userquota_prop_prefixes[ZFS_PROP_PROJECTQUOTA]; 4512 const char *piq_prefix = zfs_userquota_prop_prefixes[\ 4513 ZFS_PROP_PROJECTOBJQUOTA]; 4514 4515 if (strncmp(propname, uq_prefix, 4516 strlen(uq_prefix)) == 0) { 4517 perm = ZFS_DELEG_PERM_USERQUOTA; 4518 } else if (strncmp(propname, uiq_prefix, 4519 strlen(uiq_prefix)) == 0) { 4520 perm = ZFS_DELEG_PERM_USEROBJQUOTA; 4521 } else if (strncmp(propname, gq_prefix, 4522 strlen(gq_prefix)) == 0) { 4523 perm = ZFS_DELEG_PERM_GROUPQUOTA; 4524 } else if (strncmp(propname, giq_prefix, 4525 strlen(giq_prefix)) == 0) { 4526 perm = ZFS_DELEG_PERM_GROUPOBJQUOTA; 4527 } else if (strncmp(propname, pq_prefix, 4528 strlen(pq_prefix)) == 0) { 4529 perm = ZFS_DELEG_PERM_PROJECTQUOTA; 4530 } else if (strncmp(propname, piq_prefix, 4531 strlen(piq_prefix)) == 0) { 4532 perm = ZFS_DELEG_PERM_PROJECTOBJQUOTA; 4533 } else { 4534 /* {USER|GROUP|PROJECT}USED are read-only */ 4535 return (SET_ERROR(EINVAL)); 4536 } 4537 4538 if ((err = zfs_secpolicy_write_perms(dsname, perm, cr))) 4539 return (err); 4540 return (0); 4541 } 4542 4543 return (SET_ERROR(EINVAL)); 4544 } 4545 4546 if (issnap) 4547 return (SET_ERROR(EINVAL)); 4548 4549 if (nvpair_type(pair) == DATA_TYPE_NVLIST) { 4550 /* 4551 * dsl_prop_get_all_impl() returns properties in this 4552 * format. 4553 */ 4554 nvlist_t *attrs; 4555 VERIFY(nvpair_value_nvlist(pair, &attrs) == 0); 4556 VERIFY(nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 4557 &pair) == 0); 4558 } 4559 4560 /* 4561 * Check that this value is valid for this pool version 4562 */ 4563 switch (prop) { 4564 case ZFS_PROP_COMPRESSION: 4565 /* 4566 * If the user specified gzip compression, make sure 4567 * the SPA supports it. We ignore any errors here since 4568 * we'll catch them later. 4569 */ 4570 if (nvpair_value_uint64(pair, &intval) == 0) { 4571 compval = ZIO_COMPRESS_ALGO(intval); 4572 if (compval >= ZIO_COMPRESS_GZIP_1 && 4573 compval <= ZIO_COMPRESS_GZIP_9 && 4574 zfs_earlier_version(dsname, 4575 SPA_VERSION_GZIP_COMPRESSION)) { 4576 return (SET_ERROR(ENOTSUP)); 4577 } 4578 4579 if (compval == ZIO_COMPRESS_ZLE && 4580 zfs_earlier_version(dsname, 4581 SPA_VERSION_ZLE_COMPRESSION)) 4582 return (SET_ERROR(ENOTSUP)); 4583 4584 if (compval == ZIO_COMPRESS_LZ4) { 4585 spa_t *spa; 4586 4587 if ((err = spa_open(dsname, &spa, FTAG)) != 0) 4588 return (err); 4589 4590 if (!spa_feature_is_enabled(spa, 4591 SPA_FEATURE_LZ4_COMPRESS)) { 4592 spa_close(spa, FTAG); 4593 return (SET_ERROR(ENOTSUP)); 4594 } 4595 spa_close(spa, FTAG); 4596 } 4597 4598 if (compval == ZIO_COMPRESS_ZSTD) { 4599 spa_t *spa; 4600 4601 if ((err = spa_open(dsname, &spa, FTAG)) != 0) 4602 return (err); 4603 4604 if (!spa_feature_is_enabled(spa, 4605 SPA_FEATURE_ZSTD_COMPRESS)) { 4606 spa_close(spa, FTAG); 4607 return (SET_ERROR(ENOTSUP)); 4608 } 4609 spa_close(spa, FTAG); 4610 } 4611 } 4612 break; 4613 4614 case ZFS_PROP_COPIES: 4615 if (zfs_earlier_version(dsname, SPA_VERSION_DITTO_BLOCKS)) 4616 return (SET_ERROR(ENOTSUP)); 4617 break; 4618 4619 case ZFS_PROP_VOLBLOCKSIZE: 4620 case ZFS_PROP_RECORDSIZE: 4621 /* Record sizes above 128k need the feature to be enabled */ 4622 if (nvpair_value_uint64(pair, &intval) == 0 && 4623 intval > SPA_OLD_MAXBLOCKSIZE) { 4624 spa_t *spa; 4625 4626 /* 4627 * We don't allow setting the property above 1MB, 4628 * unless the tunable has been changed. 4629 */ 4630 if (intval > zfs_max_recordsize || 4631 intval > SPA_MAXBLOCKSIZE) 4632 return (SET_ERROR(ERANGE)); 4633 4634 if ((err = spa_open(dsname, &spa, FTAG)) != 0) 4635 return (err); 4636 4637 if (!spa_feature_is_enabled(spa, 4638 SPA_FEATURE_LARGE_BLOCKS)) { 4639 spa_close(spa, FTAG); 4640 return (SET_ERROR(ENOTSUP)); 4641 } 4642 spa_close(spa, FTAG); 4643 } 4644 break; 4645 4646 case ZFS_PROP_DNODESIZE: 4647 /* Dnode sizes above 512 need the feature to be enabled */ 4648 if (nvpair_value_uint64(pair, &intval) == 0 && 4649 intval != ZFS_DNSIZE_LEGACY) { 4650 spa_t *spa; 4651 4652 if ((err = spa_open(dsname, &spa, FTAG)) != 0) 4653 return (err); 4654 4655 if (!spa_feature_is_enabled(spa, 4656 SPA_FEATURE_LARGE_DNODE)) { 4657 spa_close(spa, FTAG); 4658 return (SET_ERROR(ENOTSUP)); 4659 } 4660 spa_close(spa, FTAG); 4661 } 4662 break; 4663 4664 case ZFS_PROP_SPECIAL_SMALL_BLOCKS: 4665 /* 4666 * This property could require the allocation classes 4667 * feature to be active for setting, however we allow 4668 * it so that tests of settable properties succeed. 4669 * The CLI will issue a warning in this case. 4670 */ 4671 break; 4672 4673 case ZFS_PROP_SHARESMB: 4674 if (zpl_earlier_version(dsname, ZPL_VERSION_FUID)) 4675 return (SET_ERROR(ENOTSUP)); 4676 break; 4677 4678 case ZFS_PROP_ACLINHERIT: 4679 if (nvpair_type(pair) == DATA_TYPE_UINT64 && 4680 nvpair_value_uint64(pair, &intval) == 0) { 4681 if (intval == ZFS_ACL_PASSTHROUGH_X && 4682 zfs_earlier_version(dsname, 4683 SPA_VERSION_PASSTHROUGH_X)) 4684 return (SET_ERROR(ENOTSUP)); 4685 } 4686 break; 4687 case ZFS_PROP_CHECKSUM: 4688 case ZFS_PROP_DEDUP: 4689 { 4690 spa_feature_t feature; 4691 spa_t *spa; 4692 int err; 4693 4694 /* dedup feature version checks */ 4695 if (prop == ZFS_PROP_DEDUP && 4696 zfs_earlier_version(dsname, SPA_VERSION_DEDUP)) 4697 return (SET_ERROR(ENOTSUP)); 4698 4699 if (nvpair_type(pair) == DATA_TYPE_UINT64 && 4700 nvpair_value_uint64(pair, &intval) == 0) { 4701 /* check prop value is enabled in features */ 4702 feature = zio_checksum_to_feature( 4703 intval & ZIO_CHECKSUM_MASK); 4704 if (feature == SPA_FEATURE_NONE) 4705 break; 4706 4707 if ((err = spa_open(dsname, &spa, FTAG)) != 0) 4708 return (err); 4709 4710 if (!spa_feature_is_enabled(spa, feature)) { 4711 spa_close(spa, FTAG); 4712 return (SET_ERROR(ENOTSUP)); 4713 } 4714 spa_close(spa, FTAG); 4715 } 4716 break; 4717 } 4718 4719 default: 4720 break; 4721 } 4722 4723 return (zfs_secpolicy_setprop(dsname, prop, pair, CRED())); 4724 } 4725 4726 /* 4727 * Removes properties from the given props list that fail permission checks 4728 * needed to clear them and to restore them in case of a receive error. For each 4729 * property, make sure we have both set and inherit permissions. 4730 * 4731 * Returns the first error encountered if any permission checks fail. If the 4732 * caller provides a non-NULL errlist, it also gives the complete list of names 4733 * of all the properties that failed a permission check along with the 4734 * corresponding error numbers. The caller is responsible for freeing the 4735 * returned errlist. 4736 * 4737 * If every property checks out successfully, zero is returned and the list 4738 * pointed at by errlist is NULL. 4739 */ 4740 static int 4741 zfs_check_clearable(const char *dataset, nvlist_t *props, nvlist_t **errlist) 4742 { 4743 zfs_cmd_t *zc; 4744 nvpair_t *pair, *next_pair; 4745 nvlist_t *errors; 4746 int err, rv = 0; 4747 4748 if (props == NULL) 4749 return (0); 4750 4751 VERIFY(nvlist_alloc(&errors, NV_UNIQUE_NAME, KM_SLEEP) == 0); 4752 4753 zc = kmem_alloc(sizeof (zfs_cmd_t), KM_SLEEP); 4754 (void) strlcpy(zc->zc_name, dataset, sizeof (zc->zc_name)); 4755 pair = nvlist_next_nvpair(props, NULL); 4756 while (pair != NULL) { 4757 next_pair = nvlist_next_nvpair(props, pair); 4758 4759 (void) strlcpy(zc->zc_value, nvpair_name(pair), 4760 sizeof (zc->zc_value)); 4761 if ((err = zfs_check_settable(dataset, pair, CRED())) != 0 || 4762 (err = zfs_secpolicy_inherit_prop(zc, NULL, CRED())) != 0) { 4763 VERIFY(nvlist_remove_nvpair(props, pair) == 0); 4764 VERIFY(nvlist_add_int32(errors, 4765 zc->zc_value, err) == 0); 4766 } 4767 pair = next_pair; 4768 } 4769 kmem_free(zc, sizeof (zfs_cmd_t)); 4770 4771 if ((pair = nvlist_next_nvpair(errors, NULL)) == NULL) { 4772 nvlist_free(errors); 4773 errors = NULL; 4774 } else { 4775 VERIFY(nvpair_value_int32(pair, &rv) == 0); 4776 } 4777 4778 if (errlist == NULL) 4779 nvlist_free(errors); 4780 else 4781 *errlist = errors; 4782 4783 return (rv); 4784 } 4785 4786 static boolean_t 4787 propval_equals(nvpair_t *p1, nvpair_t *p2) 4788 { 4789 if (nvpair_type(p1) == DATA_TYPE_NVLIST) { 4790 /* dsl_prop_get_all_impl() format */ 4791 nvlist_t *attrs; 4792 VERIFY(nvpair_value_nvlist(p1, &attrs) == 0); 4793 VERIFY(nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 4794 &p1) == 0); 4795 } 4796 4797 if (nvpair_type(p2) == DATA_TYPE_NVLIST) { 4798 nvlist_t *attrs; 4799 VERIFY(nvpair_value_nvlist(p2, &attrs) == 0); 4800 VERIFY(nvlist_lookup_nvpair(attrs, ZPROP_VALUE, 4801 &p2) == 0); 4802 } 4803 4804 if (nvpair_type(p1) != nvpair_type(p2)) 4805 return (B_FALSE); 4806 4807 if (nvpair_type(p1) == DATA_TYPE_STRING) { 4808 char *valstr1, *valstr2; 4809 4810 VERIFY(nvpair_value_string(p1, (char **)&valstr1) == 0); 4811 VERIFY(nvpair_value_string(p2, (char **)&valstr2) == 0); 4812 return (strcmp(valstr1, valstr2) == 0); 4813 } else { 4814 uint64_t intval1, intval2; 4815 4816 VERIFY(nvpair_value_uint64(p1, &intval1) == 0); 4817 VERIFY(nvpair_value_uint64(p2, &intval2) == 0); 4818 return (intval1 == intval2); 4819 } 4820 } 4821 4822 /* 4823 * Remove properties from props if they are not going to change (as determined 4824 * by comparison with origprops). Remove them from origprops as well, since we 4825 * do not need to clear or restore properties that won't change. 4826 */ 4827 static void 4828 props_reduce(nvlist_t *props, nvlist_t *origprops) 4829 { 4830 nvpair_t *pair, *next_pair; 4831 4832 if (origprops == NULL) 4833 return; /* all props need to be received */ 4834 4835 pair = nvlist_next_nvpair(props, NULL); 4836 while (pair != NULL) { 4837 const char *propname = nvpair_name(pair); 4838 nvpair_t *match; 4839 4840 next_pair = nvlist_next_nvpair(props, pair); 4841 4842 if ((nvlist_lookup_nvpair(origprops, propname, 4843 &match) != 0) || !propval_equals(pair, match)) 4844 goto next; /* need to set received value */ 4845 4846 /* don't clear the existing received value */ 4847 (void) nvlist_remove_nvpair(origprops, match); 4848 /* don't bother receiving the property */ 4849 (void) nvlist_remove_nvpair(props, pair); 4850 next: 4851 pair = next_pair; 4852 } 4853 } 4854 4855 /* 4856 * Extract properties that cannot be set PRIOR to the receipt of a dataset. 4857 * For example, refquota cannot be set until after the receipt of a dataset, 4858 * because in replication streams, an older/earlier snapshot may exceed the 4859 * refquota. We want to receive the older/earlier snapshot, but setting 4860 * refquota pre-receipt will set the dsl's ACTUAL quota, which will prevent 4861 * the older/earlier snapshot from being received (with EDQUOT). 4862 * 4863 * The ZFS test "zfs_receive_011_pos" demonstrates such a scenario. 4864 * 4865 * libzfs will need to be judicious handling errors encountered by props 4866 * extracted by this function. 4867 */ 4868 static nvlist_t * 4869 extract_delay_props(nvlist_t *props) 4870 { 4871 nvlist_t *delayprops; 4872 nvpair_t *nvp, *tmp; 4873 static const zfs_prop_t delayable[] = { 4874 ZFS_PROP_REFQUOTA, 4875 ZFS_PROP_KEYLOCATION, 4876 0 4877 }; 4878 int i; 4879 4880 VERIFY(nvlist_alloc(&delayprops, NV_UNIQUE_NAME, KM_SLEEP) == 0); 4881 4882 for (nvp = nvlist_next_nvpair(props, NULL); nvp != NULL; 4883 nvp = nvlist_next_nvpair(props, nvp)) { 4884 /* 4885 * strcmp() is safe because zfs_prop_to_name() always returns 4886 * a bounded string. 4887 */ 4888 for (i = 0; delayable[i] != 0; i++) { 4889 if (strcmp(zfs_prop_to_name(delayable[i]), 4890 nvpair_name(nvp)) == 0) { 4891 break; 4892 } 4893 } 4894 if (delayable[i] != 0) { 4895 tmp = nvlist_prev_nvpair(props, nvp); 4896 VERIFY(nvlist_add_nvpair(delayprops, nvp) == 0); 4897 VERIFY(nvlist_remove_nvpair(props, nvp) == 0); 4898 nvp = tmp; 4899 } 4900 } 4901 4902 if (nvlist_empty(delayprops)) { 4903 nvlist_free(delayprops); 4904 delayprops = NULL; 4905 } 4906 return (delayprops); 4907 } 4908 4909 static void 4910 zfs_allow_log_destroy(void *arg) 4911 { 4912 char *poolname = arg; 4913 4914 if (poolname != NULL) 4915 kmem_strfree(poolname); 4916 } 4917 4918 #ifdef ZFS_DEBUG 4919 static boolean_t zfs_ioc_recv_inject_err; 4920 #endif 4921 4922 /* 4923 * nvlist 'errors' is always allocated. It will contain descriptions of 4924 * encountered errors, if any. It's the callers responsibility to free. 4925 */ 4926 static int 4927 zfs_ioc_recv_impl(char *tofs, char *tosnap, char *origin, nvlist_t *recvprops, 4928 nvlist_t *localprops, nvlist_t *hidden_args, boolean_t force, 4929 boolean_t resumable, int input_fd, 4930 dmu_replay_record_t *begin_record, uint64_t *read_bytes, 4931 uint64_t *errflags, nvlist_t **errors) 4932 { 4933 dmu_recv_cookie_t drc; 4934 int error = 0; 4935 int props_error = 0; 4936 offset_t off, noff; 4937 nvlist_t *local_delayprops = NULL; 4938 nvlist_t *recv_delayprops = NULL; 4939 nvlist_t *origprops = NULL; /* existing properties */ 4940 nvlist_t *origrecvd = NULL; /* existing received properties */ 4941 boolean_t first_recvd_props = B_FALSE; 4942 boolean_t tofs_was_redacted; 4943 zfs_file_t *input_fp; 4944 4945 *read_bytes = 0; 4946 *errflags = 0; 4947 *errors = fnvlist_alloc(); 4948 off = 0; 4949 4950 if ((input_fp = zfs_file_get(input_fd)) == NULL) 4951 return (SET_ERROR(EBADF)); 4952 4953 noff = off = zfs_file_off(input_fp); 4954 error = dmu_recv_begin(tofs, tosnap, begin_record, force, 4955 resumable, localprops, hidden_args, origin, &drc, input_fp, 4956 &off); 4957 if (error != 0) 4958 goto out; 4959 tofs_was_redacted = dsl_get_redacted(drc.drc_ds); 4960 4961 /* 4962 * Set properties before we receive the stream so that they are applied 4963 * to the new data. Note that we must call dmu_recv_stream() if 4964 * dmu_recv_begin() succeeds. 4965 */ 4966 if (recvprops != NULL && !drc.drc_newfs) { 4967 if (spa_version(dsl_dataset_get_spa(drc.drc_ds)) >= 4968 SPA_VERSION_RECVD_PROPS && 4969 !dsl_prop_get_hasrecvd(tofs)) 4970 first_recvd_props = B_TRUE; 4971 4972 /* 4973 * If new received properties are supplied, they are to 4974 * completely replace the existing received properties, 4975 * so stash away the existing ones. 4976 */ 4977 if (dsl_prop_get_received(tofs, &origrecvd) == 0) { 4978 nvlist_t *errlist = NULL; 4979 /* 4980 * Don't bother writing a property if its value won't 4981 * change (and avoid the unnecessary security checks). 4982 * 4983 * The first receive after SPA_VERSION_RECVD_PROPS is a 4984 * special case where we blow away all local properties 4985 * regardless. 4986 */ 4987 if (!first_recvd_props) 4988 props_reduce(recvprops, origrecvd); 4989 if (zfs_check_clearable(tofs, origrecvd, &errlist) != 0) 4990 (void) nvlist_merge(*errors, errlist, 0); 4991 nvlist_free(errlist); 4992 4993 if (clear_received_props(tofs, origrecvd, 4994 first_recvd_props ? NULL : recvprops) != 0) 4995 *errflags |= ZPROP_ERR_NOCLEAR; 4996 } else { 4997 *errflags |= ZPROP_ERR_NOCLEAR; 4998 } 4999 } 5000 5001 /* 5002 * Stash away existing properties so we can restore them on error unless 5003 * we're doing the first receive after SPA_VERSION_RECVD_PROPS, in which 5004 * case "origrecvd" will take care of that. 5005 */ 5006 if (localprops != NULL && !drc.drc_newfs && !first_recvd_props) { 5007 objset_t *os; 5008 if (dmu_objset_hold(tofs, FTAG, &os) == 0) { 5009 if (dsl_prop_get_all(os, &origprops) != 0) { 5010 *errflags |= ZPROP_ERR_NOCLEAR; 5011 } 5012 dmu_objset_rele(os, FTAG); 5013 } else { 5014 *errflags |= ZPROP_ERR_NOCLEAR; 5015 } 5016 } 5017 5018 if (recvprops != NULL) { 5019 props_error = dsl_prop_set_hasrecvd(tofs); 5020 5021 if (props_error == 0) { 5022 recv_delayprops = extract_delay_props(recvprops); 5023 (void) zfs_set_prop_nvlist(tofs, ZPROP_SRC_RECEIVED, 5024 recvprops, *errors); 5025 } 5026 } 5027 5028 if (localprops != NULL) { 5029 nvlist_t *oprops = fnvlist_alloc(); 5030 nvlist_t *xprops = fnvlist_alloc(); 5031 nvpair_t *nvp = NULL; 5032 5033 while ((nvp = nvlist_next_nvpair(localprops, nvp)) != NULL) { 5034 if (nvpair_type(nvp) == DATA_TYPE_BOOLEAN) { 5035 /* -x property */ 5036 const char *name = nvpair_name(nvp); 5037 zfs_prop_t prop = zfs_name_to_prop(name); 5038 if (prop != ZPROP_USERPROP) { 5039 if (!zfs_prop_inheritable(prop)) 5040 continue; 5041 } else if (!zfs_prop_user(name)) 5042 continue; 5043 fnvlist_add_boolean(xprops, name); 5044 } else { 5045 /* -o property=value */ 5046 fnvlist_add_nvpair(oprops, nvp); 5047 } 5048 } 5049 5050 local_delayprops = extract_delay_props(oprops); 5051 (void) zfs_set_prop_nvlist(tofs, ZPROP_SRC_LOCAL, 5052 oprops, *errors); 5053 (void) zfs_set_prop_nvlist(tofs, ZPROP_SRC_INHERITED, 5054 xprops, *errors); 5055 5056 nvlist_free(oprops); 5057 nvlist_free(xprops); 5058 } 5059 5060 error = dmu_recv_stream(&drc, &off); 5061 5062 if (error == 0) { 5063 zfsvfs_t *zfsvfs = NULL; 5064 zvol_state_handle_t *zv = NULL; 5065 5066 if (getzfsvfs(tofs, &zfsvfs) == 0) { 5067 /* online recv */ 5068 dsl_dataset_t *ds; 5069 int end_err; 5070 boolean_t stream_is_redacted = DMU_GET_FEATUREFLAGS( 5071 begin_record->drr_u.drr_begin. 5072 drr_versioninfo) & DMU_BACKUP_FEATURE_REDACTED; 5073 5074 ds = dmu_objset_ds(zfsvfs->z_os); 5075 error = zfs_suspend_fs(zfsvfs); 5076 /* 5077 * If the suspend fails, then the recv_end will 5078 * likely also fail, and clean up after itself. 5079 */ 5080 end_err = dmu_recv_end(&drc, zfsvfs); 5081 /* 5082 * If the dataset was not redacted, but we received a 5083 * redacted stream onto it, we need to unmount the 5084 * dataset. Otherwise, resume the filesystem. 5085 */ 5086 if (error == 0 && !drc.drc_newfs && 5087 stream_is_redacted && !tofs_was_redacted) { 5088 error = zfs_end_fs(zfsvfs, ds); 5089 } else if (error == 0) { 5090 error = zfs_resume_fs(zfsvfs, ds); 5091 } 5092 error = error ? error : end_err; 5093 zfs_vfs_rele(zfsvfs); 5094 } else if ((zv = zvol_suspend(tofs)) != NULL) { 5095 error = dmu_recv_end(&drc, zvol_tag(zv)); 5096 zvol_resume(zv); 5097 } else { 5098 error = dmu_recv_end(&drc, NULL); 5099 } 5100 5101 /* Set delayed properties now, after we're done receiving. */ 5102 if (recv_delayprops != NULL && error == 0) { 5103 (void) zfs_set_prop_nvlist(tofs, ZPROP_SRC_RECEIVED, 5104 recv_delayprops, *errors); 5105 } 5106 if (local_delayprops != NULL && error == 0) { 5107 (void) zfs_set_prop_nvlist(tofs, ZPROP_SRC_LOCAL, 5108 local_delayprops, *errors); 5109 } 5110 } 5111 5112 /* 5113 * Merge delayed props back in with initial props, in case 5114 * we're DEBUG and zfs_ioc_recv_inject_err is set (which means 5115 * we have to make sure clear_received_props() includes 5116 * the delayed properties). 5117 * 5118 * Since zfs_ioc_recv_inject_err is only in DEBUG kernels, 5119 * using ASSERT() will be just like a VERIFY. 5120 */ 5121 if (recv_delayprops != NULL) { 5122 ASSERT(nvlist_merge(recvprops, recv_delayprops, 0) == 0); 5123 nvlist_free(recv_delayprops); 5124 } 5125 if (local_delayprops != NULL) { 5126 ASSERT(nvlist_merge(localprops, local_delayprops, 0) == 0); 5127 nvlist_free(local_delayprops); 5128 } 5129 *read_bytes = off - noff; 5130 5131 #ifdef ZFS_DEBUG 5132 if (zfs_ioc_recv_inject_err) { 5133 zfs_ioc_recv_inject_err = B_FALSE; 5134 error = 1; 5135 } 5136 #endif 5137 5138 /* 5139 * On error, restore the original props. 5140 */ 5141 if (error != 0 && recvprops != NULL && !drc.drc_newfs) { 5142 if (clear_received_props(tofs, recvprops, NULL) != 0) { 5143 /* 5144 * We failed to clear the received properties. 5145 * Since we may have left a $recvd value on the 5146 * system, we can't clear the $hasrecvd flag. 5147 */ 5148 *errflags |= ZPROP_ERR_NORESTORE; 5149 } else if (first_recvd_props) { 5150 dsl_prop_unset_hasrecvd(tofs); 5151 } 5152 5153 if (origrecvd == NULL && !drc.drc_newfs) { 5154 /* We failed to stash the original properties. */ 5155 *errflags |= ZPROP_ERR_NORESTORE; 5156 } 5157 5158 /* 5159 * dsl_props_set() will not convert RECEIVED to LOCAL on or 5160 * after SPA_VERSION_RECVD_PROPS, so we need to specify LOCAL 5161 * explicitly if we're restoring local properties cleared in the 5162 * first new-style receive. 5163 */ 5164 if (origrecvd != NULL && 5165 zfs_set_prop_nvlist(tofs, (first_recvd_props ? 5166 ZPROP_SRC_LOCAL : ZPROP_SRC_RECEIVED), 5167 origrecvd, NULL) != 0) { 5168 /* 5169 * We stashed the original properties but failed to 5170 * restore them. 5171 */ 5172 *errflags |= ZPROP_ERR_NORESTORE; 5173 } 5174 } 5175 if (error != 0 && localprops != NULL && !drc.drc_newfs && 5176 !first_recvd_props) { 5177 nvlist_t *setprops; 5178 nvlist_t *inheritprops; 5179 nvpair_t *nvp; 5180 5181 if (origprops == NULL) { 5182 /* We failed to stash the original properties. */ 5183 *errflags |= ZPROP_ERR_NORESTORE; 5184 goto out; 5185 } 5186 5187 /* Restore original props */ 5188 setprops = fnvlist_alloc(); 5189 inheritprops = fnvlist_alloc(); 5190 nvp = NULL; 5191 while ((nvp = nvlist_next_nvpair(localprops, nvp)) != NULL) { 5192 const char *name = nvpair_name(nvp); 5193 const char *source; 5194 nvlist_t *attrs; 5195 5196 if (!nvlist_exists(origprops, name)) { 5197 /* 5198 * Property was not present or was explicitly 5199 * inherited before the receive, restore this. 5200 */ 5201 fnvlist_add_boolean(inheritprops, name); 5202 continue; 5203 } 5204 attrs = fnvlist_lookup_nvlist(origprops, name); 5205 source = fnvlist_lookup_string(attrs, ZPROP_SOURCE); 5206 5207 /* Skip received properties */ 5208 if (strcmp(source, ZPROP_SOURCE_VAL_RECVD) == 0) 5209 continue; 5210 5211 if (strcmp(source, tofs) == 0) { 5212 /* Property was locally set */ 5213 fnvlist_add_nvlist(setprops, name, attrs); 5214 } else { 5215 /* Property was implicitly inherited */ 5216 fnvlist_add_boolean(inheritprops, name); 5217 } 5218 } 5219 5220 if (zfs_set_prop_nvlist(tofs, ZPROP_SRC_LOCAL, setprops, 5221 NULL) != 0) 5222 *errflags |= ZPROP_ERR_NORESTORE; 5223 if (zfs_set_prop_nvlist(tofs, ZPROP_SRC_INHERITED, inheritprops, 5224 NULL) != 0) 5225 *errflags |= ZPROP_ERR_NORESTORE; 5226 5227 nvlist_free(setprops); 5228 nvlist_free(inheritprops); 5229 } 5230 out: 5231 zfs_file_put(input_fp); 5232 nvlist_free(origrecvd); 5233 nvlist_free(origprops); 5234 5235 if (error == 0) 5236 error = props_error; 5237 5238 return (error); 5239 } 5240 5241 /* 5242 * inputs: 5243 * zc_name name of containing filesystem (unused) 5244 * zc_nvlist_src{_size} nvlist of properties to apply 5245 * zc_nvlist_conf{_size} nvlist of properties to exclude 5246 * (DATA_TYPE_BOOLEAN) and override (everything else) 5247 * zc_value name of snapshot to create 5248 * zc_string name of clone origin (if DRR_FLAG_CLONE) 5249 * zc_cookie file descriptor to recv from 5250 * zc_begin_record the BEGIN record of the stream (not byteswapped) 5251 * zc_guid force flag 5252 * 5253 * outputs: 5254 * zc_cookie number of bytes read 5255 * zc_obj zprop_errflags_t 5256 * zc_nvlist_dst{_size} error for each unapplied received property 5257 */ 5258 static int 5259 zfs_ioc_recv(zfs_cmd_t *zc) 5260 { 5261 dmu_replay_record_t begin_record; 5262 nvlist_t *errors = NULL; 5263 nvlist_t *recvdprops = NULL; 5264 nvlist_t *localprops = NULL; 5265 char *origin = NULL; 5266 char *tosnap; 5267 char tofs[ZFS_MAX_DATASET_NAME_LEN]; 5268 int error = 0; 5269 5270 if (dataset_namecheck(zc->zc_value, NULL, NULL) != 0 || 5271 strchr(zc->zc_value, '@') == NULL || 5272 strchr(zc->zc_value, '%')) 5273 return (SET_ERROR(EINVAL)); 5274 5275 (void) strlcpy(tofs, zc->zc_value, sizeof (tofs)); 5276 tosnap = strchr(tofs, '@'); 5277 *tosnap++ = '\0'; 5278 5279 if (zc->zc_nvlist_src != 0 && 5280 (error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 5281 zc->zc_iflags, &recvdprops)) != 0) 5282 return (error); 5283 5284 if (zc->zc_nvlist_conf != 0 && 5285 (error = get_nvlist(zc->zc_nvlist_conf, zc->zc_nvlist_conf_size, 5286 zc->zc_iflags, &localprops)) != 0) 5287 return (error); 5288 5289 if (zc->zc_string[0]) 5290 origin = zc->zc_string; 5291 5292 begin_record.drr_type = DRR_BEGIN; 5293 begin_record.drr_payloadlen = 0; 5294 begin_record.drr_u.drr_begin = zc->zc_begin_record; 5295 5296 error = zfs_ioc_recv_impl(tofs, tosnap, origin, recvdprops, localprops, 5297 NULL, zc->zc_guid, B_FALSE, zc->zc_cookie, &begin_record, 5298 &zc->zc_cookie, &zc->zc_obj, &errors); 5299 nvlist_free(recvdprops); 5300 nvlist_free(localprops); 5301 5302 /* 5303 * Now that all props, initial and delayed, are set, report the prop 5304 * errors to the caller. 5305 */ 5306 if (zc->zc_nvlist_dst_size != 0 && errors != NULL && 5307 (nvlist_smush(errors, zc->zc_nvlist_dst_size) != 0 || 5308 put_nvlist(zc, errors) != 0)) { 5309 /* 5310 * Caller made zc->zc_nvlist_dst less than the minimum expected 5311 * size or supplied an invalid address. 5312 */ 5313 error = SET_ERROR(EINVAL); 5314 } 5315 5316 nvlist_free(errors); 5317 5318 return (error); 5319 } 5320 5321 /* 5322 * innvl: { 5323 * "snapname" -> full name of the snapshot to create 5324 * (optional) "props" -> received properties to set (nvlist) 5325 * (optional) "localprops" -> override and exclude properties (nvlist) 5326 * (optional) "origin" -> name of clone origin (DRR_FLAG_CLONE) 5327 * "begin_record" -> non-byteswapped dmu_replay_record_t 5328 * "input_fd" -> file descriptor to read stream from (int32) 5329 * (optional) "force" -> force flag (value ignored) 5330 * (optional) "resumable" -> resumable flag (value ignored) 5331 * (optional) "cleanup_fd" -> unused 5332 * (optional) "action_handle" -> unused 5333 * (optional) "hidden_args" -> { "wkeydata" -> value } 5334 * } 5335 * 5336 * outnvl: { 5337 * "read_bytes" -> number of bytes read 5338 * "error_flags" -> zprop_errflags_t 5339 * "errors" -> error for each unapplied received property (nvlist) 5340 * } 5341 */ 5342 static const zfs_ioc_key_t zfs_keys_recv_new[] = { 5343 {"snapname", DATA_TYPE_STRING, 0}, 5344 {"props", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 5345 {"localprops", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 5346 {"origin", DATA_TYPE_STRING, ZK_OPTIONAL}, 5347 {"begin_record", DATA_TYPE_BYTE_ARRAY, 0}, 5348 {"input_fd", DATA_TYPE_INT32, 0}, 5349 {"force", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 5350 {"resumable", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 5351 {"cleanup_fd", DATA_TYPE_INT32, ZK_OPTIONAL}, 5352 {"action_handle", DATA_TYPE_UINT64, ZK_OPTIONAL}, 5353 {"hidden_args", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 5354 }; 5355 5356 static int 5357 zfs_ioc_recv_new(const char *fsname, nvlist_t *innvl, nvlist_t *outnvl) 5358 { 5359 dmu_replay_record_t *begin_record; 5360 uint_t begin_record_size; 5361 nvlist_t *errors = NULL; 5362 nvlist_t *recvprops = NULL; 5363 nvlist_t *localprops = NULL; 5364 nvlist_t *hidden_args = NULL; 5365 char *snapname; 5366 char *origin = NULL; 5367 char *tosnap; 5368 char tofs[ZFS_MAX_DATASET_NAME_LEN]; 5369 boolean_t force; 5370 boolean_t resumable; 5371 uint64_t read_bytes = 0; 5372 uint64_t errflags = 0; 5373 int input_fd = -1; 5374 int error; 5375 5376 snapname = fnvlist_lookup_string(innvl, "snapname"); 5377 5378 if (dataset_namecheck(snapname, NULL, NULL) != 0 || 5379 strchr(snapname, '@') == NULL || 5380 strchr(snapname, '%')) 5381 return (SET_ERROR(EINVAL)); 5382 5383 (void) strlcpy(tofs, snapname, sizeof (tofs)); 5384 tosnap = strchr(tofs, '@'); 5385 *tosnap++ = '\0'; 5386 5387 error = nvlist_lookup_string(innvl, "origin", &origin); 5388 if (error && error != ENOENT) 5389 return (error); 5390 5391 error = nvlist_lookup_byte_array(innvl, "begin_record", 5392 (uchar_t **)&begin_record, &begin_record_size); 5393 if (error != 0 || begin_record_size != sizeof (*begin_record)) 5394 return (SET_ERROR(EINVAL)); 5395 5396 input_fd = fnvlist_lookup_int32(innvl, "input_fd"); 5397 5398 force = nvlist_exists(innvl, "force"); 5399 resumable = nvlist_exists(innvl, "resumable"); 5400 5401 /* we still use "props" here for backwards compatibility */ 5402 error = nvlist_lookup_nvlist(innvl, "props", &recvprops); 5403 if (error && error != ENOENT) 5404 return (error); 5405 5406 error = nvlist_lookup_nvlist(innvl, "localprops", &localprops); 5407 if (error && error != ENOENT) 5408 return (error); 5409 5410 error = nvlist_lookup_nvlist(innvl, ZPOOL_HIDDEN_ARGS, &hidden_args); 5411 if (error && error != ENOENT) 5412 return (error); 5413 5414 error = zfs_ioc_recv_impl(tofs, tosnap, origin, recvprops, localprops, 5415 hidden_args, force, resumable, input_fd, begin_record, 5416 &read_bytes, &errflags, &errors); 5417 5418 fnvlist_add_uint64(outnvl, "read_bytes", read_bytes); 5419 fnvlist_add_uint64(outnvl, "error_flags", errflags); 5420 fnvlist_add_nvlist(outnvl, "errors", errors); 5421 5422 nvlist_free(errors); 5423 nvlist_free(recvprops); 5424 nvlist_free(localprops); 5425 5426 return (error); 5427 } 5428 5429 typedef struct dump_bytes_io { 5430 zfs_file_t *dbi_fp; 5431 caddr_t dbi_buf; 5432 int dbi_len; 5433 int dbi_err; 5434 } dump_bytes_io_t; 5435 5436 static void 5437 dump_bytes_cb(void *arg) 5438 { 5439 dump_bytes_io_t *dbi = (dump_bytes_io_t *)arg; 5440 zfs_file_t *fp; 5441 caddr_t buf; 5442 5443 fp = dbi->dbi_fp; 5444 buf = dbi->dbi_buf; 5445 5446 dbi->dbi_err = zfs_file_write(fp, buf, dbi->dbi_len, NULL); 5447 } 5448 5449 static int 5450 dump_bytes(objset_t *os, void *buf, int len, void *arg) 5451 { 5452 dump_bytes_io_t dbi; 5453 5454 dbi.dbi_fp = arg; 5455 dbi.dbi_buf = buf; 5456 dbi.dbi_len = len; 5457 5458 #if defined(HAVE_LARGE_STACKS) 5459 dump_bytes_cb(&dbi); 5460 #else 5461 /* 5462 * The vn_rdwr() call is performed in a taskq to ensure that there is 5463 * always enough stack space to write safely to the target filesystem. 5464 * The ZIO_TYPE_FREE threads are used because there can be a lot of 5465 * them and they are used in vdev_file.c for a similar purpose. 5466 */ 5467 spa_taskq_dispatch_sync(dmu_objset_spa(os), ZIO_TYPE_FREE, 5468 ZIO_TASKQ_ISSUE, dump_bytes_cb, &dbi, TQ_SLEEP); 5469 #endif /* HAVE_LARGE_STACKS */ 5470 5471 return (dbi.dbi_err); 5472 } 5473 5474 /* 5475 * inputs: 5476 * zc_name name of snapshot to send 5477 * zc_cookie file descriptor to send stream to 5478 * zc_obj fromorigin flag (mutually exclusive with zc_fromobj) 5479 * zc_sendobj objsetid of snapshot to send 5480 * zc_fromobj objsetid of incremental fromsnap (may be zero) 5481 * zc_guid if set, estimate size of stream only. zc_cookie is ignored. 5482 * output size in zc_objset_type. 5483 * zc_flags lzc_send_flags 5484 * 5485 * outputs: 5486 * zc_objset_type estimated size, if zc_guid is set 5487 * 5488 * NOTE: This is no longer the preferred interface, any new functionality 5489 * should be added to zfs_ioc_send_new() instead. 5490 */ 5491 static int 5492 zfs_ioc_send(zfs_cmd_t *zc) 5493 { 5494 int error; 5495 offset_t off; 5496 boolean_t estimate = (zc->zc_guid != 0); 5497 boolean_t embedok = (zc->zc_flags & 0x1); 5498 boolean_t large_block_ok = (zc->zc_flags & 0x2); 5499 boolean_t compressok = (zc->zc_flags & 0x4); 5500 boolean_t rawok = (zc->zc_flags & 0x8); 5501 boolean_t savedok = (zc->zc_flags & 0x10); 5502 5503 if (zc->zc_obj != 0) { 5504 dsl_pool_t *dp; 5505 dsl_dataset_t *tosnap; 5506 5507 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 5508 if (error != 0) 5509 return (error); 5510 5511 error = dsl_dataset_hold_obj(dp, zc->zc_sendobj, FTAG, &tosnap); 5512 if (error != 0) { 5513 dsl_pool_rele(dp, FTAG); 5514 return (error); 5515 } 5516 5517 if (dsl_dir_is_clone(tosnap->ds_dir)) 5518 zc->zc_fromobj = 5519 dsl_dir_phys(tosnap->ds_dir)->dd_origin_obj; 5520 dsl_dataset_rele(tosnap, FTAG); 5521 dsl_pool_rele(dp, FTAG); 5522 } 5523 5524 if (estimate) { 5525 dsl_pool_t *dp; 5526 dsl_dataset_t *tosnap; 5527 dsl_dataset_t *fromsnap = NULL; 5528 5529 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 5530 if (error != 0) 5531 return (error); 5532 5533 error = dsl_dataset_hold_obj(dp, zc->zc_sendobj, 5534 FTAG, &tosnap); 5535 if (error != 0) { 5536 dsl_pool_rele(dp, FTAG); 5537 return (error); 5538 } 5539 5540 if (zc->zc_fromobj != 0) { 5541 error = dsl_dataset_hold_obj(dp, zc->zc_fromobj, 5542 FTAG, &fromsnap); 5543 if (error != 0) { 5544 dsl_dataset_rele(tosnap, FTAG); 5545 dsl_pool_rele(dp, FTAG); 5546 return (error); 5547 } 5548 } 5549 5550 error = dmu_send_estimate_fast(tosnap, fromsnap, NULL, 5551 compressok || rawok, savedok, &zc->zc_objset_type); 5552 5553 if (fromsnap != NULL) 5554 dsl_dataset_rele(fromsnap, FTAG); 5555 dsl_dataset_rele(tosnap, FTAG); 5556 dsl_pool_rele(dp, FTAG); 5557 } else { 5558 zfs_file_t *fp; 5559 dmu_send_outparams_t out = {0}; 5560 5561 if ((fp = zfs_file_get(zc->zc_cookie)) == NULL) 5562 return (SET_ERROR(EBADF)); 5563 5564 off = zfs_file_off(fp); 5565 out.dso_outfunc = dump_bytes; 5566 out.dso_arg = fp; 5567 out.dso_dryrun = B_FALSE; 5568 error = dmu_send_obj(zc->zc_name, zc->zc_sendobj, 5569 zc->zc_fromobj, embedok, large_block_ok, compressok, 5570 rawok, savedok, zc->zc_cookie, &off, &out); 5571 5572 zfs_file_put(fp); 5573 } 5574 return (error); 5575 } 5576 5577 /* 5578 * inputs: 5579 * zc_name name of snapshot on which to report progress 5580 * zc_cookie file descriptor of send stream 5581 * 5582 * outputs: 5583 * zc_cookie number of bytes written in send stream thus far 5584 * zc_objset_type logical size of data traversed by send thus far 5585 */ 5586 static int 5587 zfs_ioc_send_progress(zfs_cmd_t *zc) 5588 { 5589 dsl_pool_t *dp; 5590 dsl_dataset_t *ds; 5591 dmu_sendstatus_t *dsp = NULL; 5592 int error; 5593 5594 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 5595 if (error != 0) 5596 return (error); 5597 5598 error = dsl_dataset_hold(dp, zc->zc_name, FTAG, &ds); 5599 if (error != 0) { 5600 dsl_pool_rele(dp, FTAG); 5601 return (error); 5602 } 5603 5604 mutex_enter(&ds->ds_sendstream_lock); 5605 5606 /* 5607 * Iterate over all the send streams currently active on this dataset. 5608 * If there's one which matches the specified file descriptor _and_ the 5609 * stream was started by the current process, return the progress of 5610 * that stream. 5611 */ 5612 5613 for (dsp = list_head(&ds->ds_sendstreams); dsp != NULL; 5614 dsp = list_next(&ds->ds_sendstreams, dsp)) { 5615 if (dsp->dss_outfd == zc->zc_cookie && 5616 zfs_proc_is_caller(dsp->dss_proc)) 5617 break; 5618 } 5619 5620 if (dsp != NULL) { 5621 zc->zc_cookie = atomic_cas_64((volatile uint64_t *)dsp->dss_off, 5622 0, 0); 5623 /* This is the closest thing we have to atomic_read_64. */ 5624 zc->zc_objset_type = atomic_cas_64(&dsp->dss_blocks, 0, 0); 5625 } else { 5626 error = SET_ERROR(ENOENT); 5627 } 5628 5629 mutex_exit(&ds->ds_sendstream_lock); 5630 dsl_dataset_rele(ds, FTAG); 5631 dsl_pool_rele(dp, FTAG); 5632 return (error); 5633 } 5634 5635 static int 5636 zfs_ioc_inject_fault(zfs_cmd_t *zc) 5637 { 5638 int id, error; 5639 5640 error = zio_inject_fault(zc->zc_name, (int)zc->zc_guid, &id, 5641 &zc->zc_inject_record); 5642 5643 if (error == 0) 5644 zc->zc_guid = (uint64_t)id; 5645 5646 return (error); 5647 } 5648 5649 static int 5650 zfs_ioc_clear_fault(zfs_cmd_t *zc) 5651 { 5652 return (zio_clear_fault((int)zc->zc_guid)); 5653 } 5654 5655 static int 5656 zfs_ioc_inject_list_next(zfs_cmd_t *zc) 5657 { 5658 int id = (int)zc->zc_guid; 5659 int error; 5660 5661 error = zio_inject_list_next(&id, zc->zc_name, sizeof (zc->zc_name), 5662 &zc->zc_inject_record); 5663 5664 zc->zc_guid = id; 5665 5666 return (error); 5667 } 5668 5669 static int 5670 zfs_ioc_error_log(zfs_cmd_t *zc) 5671 { 5672 spa_t *spa; 5673 int error; 5674 uint64_t count = zc->zc_nvlist_dst_size; 5675 5676 if ((error = spa_open(zc->zc_name, &spa, FTAG)) != 0) 5677 return (error); 5678 5679 error = spa_get_errlog(spa, (void *)(uintptr_t)zc->zc_nvlist_dst, 5680 &count); 5681 if (error == 0) 5682 zc->zc_nvlist_dst_size = count; 5683 else 5684 zc->zc_nvlist_dst_size = spa_get_errlog_size(spa); 5685 5686 spa_close(spa, FTAG); 5687 5688 return (error); 5689 } 5690 5691 static int 5692 zfs_ioc_clear(zfs_cmd_t *zc) 5693 { 5694 spa_t *spa; 5695 vdev_t *vd; 5696 int error; 5697 5698 /* 5699 * On zpool clear we also fix up missing slogs 5700 */ 5701 mutex_enter(&spa_namespace_lock); 5702 spa = spa_lookup(zc->zc_name); 5703 if (spa == NULL) { 5704 mutex_exit(&spa_namespace_lock); 5705 return (SET_ERROR(EIO)); 5706 } 5707 if (spa_get_log_state(spa) == SPA_LOG_MISSING) { 5708 /* we need to let spa_open/spa_load clear the chains */ 5709 spa_set_log_state(spa, SPA_LOG_CLEAR); 5710 } 5711 spa->spa_last_open_failed = 0; 5712 mutex_exit(&spa_namespace_lock); 5713 5714 if (zc->zc_cookie & ZPOOL_NO_REWIND) { 5715 error = spa_open(zc->zc_name, &spa, FTAG); 5716 } else { 5717 nvlist_t *policy; 5718 nvlist_t *config = NULL; 5719 5720 if (zc->zc_nvlist_src == 0) 5721 return (SET_ERROR(EINVAL)); 5722 5723 if ((error = get_nvlist(zc->zc_nvlist_src, 5724 zc->zc_nvlist_src_size, zc->zc_iflags, &policy)) == 0) { 5725 error = spa_open_rewind(zc->zc_name, &spa, FTAG, 5726 policy, &config); 5727 if (config != NULL) { 5728 int err; 5729 5730 if ((err = put_nvlist(zc, config)) != 0) 5731 error = err; 5732 nvlist_free(config); 5733 } 5734 nvlist_free(policy); 5735 } 5736 } 5737 5738 if (error != 0) 5739 return (error); 5740 5741 /* 5742 * If multihost is enabled, resuming I/O is unsafe as another 5743 * host may have imported the pool. 5744 */ 5745 if (spa_multihost(spa) && spa_suspended(spa)) 5746 return (SET_ERROR(EINVAL)); 5747 5748 spa_vdev_state_enter(spa, SCL_NONE); 5749 5750 if (zc->zc_guid == 0) { 5751 vd = NULL; 5752 } else { 5753 vd = spa_lookup_by_guid(spa, zc->zc_guid, B_TRUE); 5754 if (vd == NULL) { 5755 error = SET_ERROR(ENODEV); 5756 (void) spa_vdev_state_exit(spa, NULL, error); 5757 spa_close(spa, FTAG); 5758 return (error); 5759 } 5760 } 5761 5762 vdev_clear(spa, vd); 5763 5764 (void) spa_vdev_state_exit(spa, spa_suspended(spa) ? 5765 NULL : spa->spa_root_vdev, 0); 5766 5767 /* 5768 * Resume any suspended I/Os. 5769 */ 5770 if (zio_resume(spa) != 0) 5771 error = SET_ERROR(EIO); 5772 5773 spa_close(spa, FTAG); 5774 5775 return (error); 5776 } 5777 5778 /* 5779 * Reopen all the vdevs associated with the pool. 5780 * 5781 * innvl: { 5782 * "scrub_restart" -> when true and scrub is running, allow to restart 5783 * scrub as the side effect of the reopen (boolean). 5784 * } 5785 * 5786 * outnvl is unused 5787 */ 5788 static const zfs_ioc_key_t zfs_keys_pool_reopen[] = { 5789 {"scrub_restart", DATA_TYPE_BOOLEAN_VALUE, ZK_OPTIONAL}, 5790 }; 5791 5792 static int 5793 zfs_ioc_pool_reopen(const char *pool, nvlist_t *innvl, nvlist_t *outnvl) 5794 { 5795 (void) outnvl; 5796 spa_t *spa; 5797 int error; 5798 boolean_t rc, scrub_restart = B_TRUE; 5799 5800 if (innvl) { 5801 error = nvlist_lookup_boolean_value(innvl, 5802 "scrub_restart", &rc); 5803 if (error == 0) 5804 scrub_restart = rc; 5805 } 5806 5807 error = spa_open(pool, &spa, FTAG); 5808 if (error != 0) 5809 return (error); 5810 5811 spa_vdev_state_enter(spa, SCL_NONE); 5812 5813 /* 5814 * If the scrub_restart flag is B_FALSE and a scrub is already 5815 * in progress then set spa_scrub_reopen flag to B_TRUE so that 5816 * we don't restart the scrub as a side effect of the reopen. 5817 * Otherwise, let vdev_open() decided if a resilver is required. 5818 */ 5819 5820 spa->spa_scrub_reopen = (!scrub_restart && 5821 dsl_scan_scrubbing(spa->spa_dsl_pool)); 5822 vdev_reopen(spa->spa_root_vdev); 5823 spa->spa_scrub_reopen = B_FALSE; 5824 5825 (void) spa_vdev_state_exit(spa, NULL, 0); 5826 spa_close(spa, FTAG); 5827 return (0); 5828 } 5829 5830 /* 5831 * inputs: 5832 * zc_name name of filesystem 5833 * 5834 * outputs: 5835 * zc_string name of conflicting snapshot, if there is one 5836 */ 5837 static int 5838 zfs_ioc_promote(zfs_cmd_t *zc) 5839 { 5840 dsl_pool_t *dp; 5841 dsl_dataset_t *ds, *ods; 5842 char origin[ZFS_MAX_DATASET_NAME_LEN]; 5843 char *cp; 5844 int error; 5845 5846 zc->zc_name[sizeof (zc->zc_name) - 1] = '\0'; 5847 if (dataset_namecheck(zc->zc_name, NULL, NULL) != 0 || 5848 strchr(zc->zc_name, '%')) 5849 return (SET_ERROR(EINVAL)); 5850 5851 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 5852 if (error != 0) 5853 return (error); 5854 5855 error = dsl_dataset_hold(dp, zc->zc_name, FTAG, &ds); 5856 if (error != 0) { 5857 dsl_pool_rele(dp, FTAG); 5858 return (error); 5859 } 5860 5861 if (!dsl_dir_is_clone(ds->ds_dir)) { 5862 dsl_dataset_rele(ds, FTAG); 5863 dsl_pool_rele(dp, FTAG); 5864 return (SET_ERROR(EINVAL)); 5865 } 5866 5867 error = dsl_dataset_hold_obj(dp, 5868 dsl_dir_phys(ds->ds_dir)->dd_origin_obj, FTAG, &ods); 5869 if (error != 0) { 5870 dsl_dataset_rele(ds, FTAG); 5871 dsl_pool_rele(dp, FTAG); 5872 return (error); 5873 } 5874 5875 dsl_dataset_name(ods, origin); 5876 dsl_dataset_rele(ods, FTAG); 5877 dsl_dataset_rele(ds, FTAG); 5878 dsl_pool_rele(dp, FTAG); 5879 5880 /* 5881 * We don't need to unmount *all* the origin fs's snapshots, but 5882 * it's easier. 5883 */ 5884 cp = strchr(origin, '@'); 5885 if (cp) 5886 *cp = '\0'; 5887 (void) dmu_objset_find(origin, 5888 zfs_unmount_snap_cb, NULL, DS_FIND_SNAPSHOTS); 5889 return (dsl_dataset_promote(zc->zc_name, zc->zc_string)); 5890 } 5891 5892 /* 5893 * Retrieve a single {user|group|project}{used|quota}@... property. 5894 * 5895 * inputs: 5896 * zc_name name of filesystem 5897 * zc_objset_type zfs_userquota_prop_t 5898 * zc_value domain name (eg. "S-1-234-567-89") 5899 * zc_guid RID/UID/GID 5900 * 5901 * outputs: 5902 * zc_cookie property value 5903 */ 5904 static int 5905 zfs_ioc_userspace_one(zfs_cmd_t *zc) 5906 { 5907 zfsvfs_t *zfsvfs; 5908 int error; 5909 5910 if (zc->zc_objset_type >= ZFS_NUM_USERQUOTA_PROPS) 5911 return (SET_ERROR(EINVAL)); 5912 5913 error = zfsvfs_hold(zc->zc_name, FTAG, &zfsvfs, B_FALSE); 5914 if (error != 0) 5915 return (error); 5916 5917 error = zfs_userspace_one(zfsvfs, 5918 zc->zc_objset_type, zc->zc_value, zc->zc_guid, &zc->zc_cookie); 5919 zfsvfs_rele(zfsvfs, FTAG); 5920 5921 return (error); 5922 } 5923 5924 /* 5925 * inputs: 5926 * zc_name name of filesystem 5927 * zc_cookie zap cursor 5928 * zc_objset_type zfs_userquota_prop_t 5929 * zc_nvlist_dst[_size] buffer to fill (not really an nvlist) 5930 * 5931 * outputs: 5932 * zc_nvlist_dst[_size] data buffer (array of zfs_useracct_t) 5933 * zc_cookie zap cursor 5934 */ 5935 static int 5936 zfs_ioc_userspace_many(zfs_cmd_t *zc) 5937 { 5938 zfsvfs_t *zfsvfs; 5939 int bufsize = zc->zc_nvlist_dst_size; 5940 5941 if (bufsize <= 0) 5942 return (SET_ERROR(ENOMEM)); 5943 5944 int error = zfsvfs_hold(zc->zc_name, FTAG, &zfsvfs, B_FALSE); 5945 if (error != 0) 5946 return (error); 5947 5948 void *buf = vmem_alloc(bufsize, KM_SLEEP); 5949 5950 error = zfs_userspace_many(zfsvfs, zc->zc_objset_type, &zc->zc_cookie, 5951 buf, &zc->zc_nvlist_dst_size); 5952 5953 if (error == 0) { 5954 error = xcopyout(buf, 5955 (void *)(uintptr_t)zc->zc_nvlist_dst, 5956 zc->zc_nvlist_dst_size); 5957 } 5958 vmem_free(buf, bufsize); 5959 zfsvfs_rele(zfsvfs, FTAG); 5960 5961 return (error); 5962 } 5963 5964 /* 5965 * inputs: 5966 * zc_name name of filesystem 5967 * 5968 * outputs: 5969 * none 5970 */ 5971 static int 5972 zfs_ioc_userspace_upgrade(zfs_cmd_t *zc) 5973 { 5974 int error = 0; 5975 zfsvfs_t *zfsvfs; 5976 5977 if (getzfsvfs(zc->zc_name, &zfsvfs) == 0) { 5978 if (!dmu_objset_userused_enabled(zfsvfs->z_os)) { 5979 /* 5980 * If userused is not enabled, it may be because the 5981 * objset needs to be closed & reopened (to grow the 5982 * objset_phys_t). Suspend/resume the fs will do that. 5983 */ 5984 dsl_dataset_t *ds, *newds; 5985 5986 ds = dmu_objset_ds(zfsvfs->z_os); 5987 error = zfs_suspend_fs(zfsvfs); 5988 if (error == 0) { 5989 dmu_objset_refresh_ownership(ds, &newds, 5990 B_TRUE, zfsvfs); 5991 error = zfs_resume_fs(zfsvfs, newds); 5992 } 5993 } 5994 if (error == 0) { 5995 mutex_enter(&zfsvfs->z_os->os_upgrade_lock); 5996 if (zfsvfs->z_os->os_upgrade_id == 0) { 5997 /* clear potential error code and retry */ 5998 zfsvfs->z_os->os_upgrade_status = 0; 5999 mutex_exit(&zfsvfs->z_os->os_upgrade_lock); 6000 6001 dsl_pool_config_enter( 6002 dmu_objset_pool(zfsvfs->z_os), FTAG); 6003 dmu_objset_userspace_upgrade(zfsvfs->z_os); 6004 dsl_pool_config_exit( 6005 dmu_objset_pool(zfsvfs->z_os), FTAG); 6006 } else { 6007 mutex_exit(&zfsvfs->z_os->os_upgrade_lock); 6008 } 6009 6010 taskq_wait_id(zfsvfs->z_os->os_spa->spa_upgrade_taskq, 6011 zfsvfs->z_os->os_upgrade_id); 6012 error = zfsvfs->z_os->os_upgrade_status; 6013 } 6014 zfs_vfs_rele(zfsvfs); 6015 } else { 6016 objset_t *os; 6017 6018 /* XXX kind of reading contents without owning */ 6019 error = dmu_objset_hold_flags(zc->zc_name, B_TRUE, FTAG, &os); 6020 if (error != 0) 6021 return (error); 6022 6023 mutex_enter(&os->os_upgrade_lock); 6024 if (os->os_upgrade_id == 0) { 6025 /* clear potential error code and retry */ 6026 os->os_upgrade_status = 0; 6027 mutex_exit(&os->os_upgrade_lock); 6028 6029 dmu_objset_userspace_upgrade(os); 6030 } else { 6031 mutex_exit(&os->os_upgrade_lock); 6032 } 6033 6034 dsl_pool_rele(dmu_objset_pool(os), FTAG); 6035 6036 taskq_wait_id(os->os_spa->spa_upgrade_taskq, os->os_upgrade_id); 6037 error = os->os_upgrade_status; 6038 6039 dsl_dataset_rele_flags(dmu_objset_ds(os), DS_HOLD_FLAG_DECRYPT, 6040 FTAG); 6041 } 6042 return (error); 6043 } 6044 6045 /* 6046 * inputs: 6047 * zc_name name of filesystem 6048 * 6049 * outputs: 6050 * none 6051 */ 6052 static int 6053 zfs_ioc_id_quota_upgrade(zfs_cmd_t *zc) 6054 { 6055 objset_t *os; 6056 int error; 6057 6058 error = dmu_objset_hold_flags(zc->zc_name, B_TRUE, FTAG, &os); 6059 if (error != 0) 6060 return (error); 6061 6062 if (dmu_objset_userobjspace_upgradable(os) || 6063 dmu_objset_projectquota_upgradable(os)) { 6064 mutex_enter(&os->os_upgrade_lock); 6065 if (os->os_upgrade_id == 0) { 6066 /* clear potential error code and retry */ 6067 os->os_upgrade_status = 0; 6068 mutex_exit(&os->os_upgrade_lock); 6069 6070 dmu_objset_id_quota_upgrade(os); 6071 } else { 6072 mutex_exit(&os->os_upgrade_lock); 6073 } 6074 6075 dsl_pool_rele(dmu_objset_pool(os), FTAG); 6076 6077 taskq_wait_id(os->os_spa->spa_upgrade_taskq, os->os_upgrade_id); 6078 error = os->os_upgrade_status; 6079 } else { 6080 dsl_pool_rele(dmu_objset_pool(os), FTAG); 6081 } 6082 6083 dsl_dataset_rele_flags(dmu_objset_ds(os), DS_HOLD_FLAG_DECRYPT, FTAG); 6084 6085 return (error); 6086 } 6087 6088 static int 6089 zfs_ioc_share(zfs_cmd_t *zc) 6090 { 6091 return (SET_ERROR(ENOSYS)); 6092 } 6093 6094 /* 6095 * inputs: 6096 * zc_name name of containing filesystem 6097 * zc_obj object # beyond which we want next in-use object # 6098 * 6099 * outputs: 6100 * zc_obj next in-use object # 6101 */ 6102 static int 6103 zfs_ioc_next_obj(zfs_cmd_t *zc) 6104 { 6105 objset_t *os = NULL; 6106 int error; 6107 6108 error = dmu_objset_hold(zc->zc_name, FTAG, &os); 6109 if (error != 0) 6110 return (error); 6111 6112 error = dmu_object_next(os, &zc->zc_obj, B_FALSE, 0); 6113 6114 dmu_objset_rele(os, FTAG); 6115 return (error); 6116 } 6117 6118 /* 6119 * inputs: 6120 * zc_name name of filesystem 6121 * zc_value prefix name for snapshot 6122 * zc_cleanup_fd cleanup-on-exit file descriptor for calling process 6123 * 6124 * outputs: 6125 * zc_value short name of new snapshot 6126 */ 6127 static int 6128 zfs_ioc_tmp_snapshot(zfs_cmd_t *zc) 6129 { 6130 char *snap_name; 6131 char *hold_name; 6132 minor_t minor; 6133 6134 zfs_file_t *fp = zfs_onexit_fd_hold(zc->zc_cleanup_fd, &minor); 6135 if (fp == NULL) 6136 return (SET_ERROR(EBADF)); 6137 6138 snap_name = kmem_asprintf("%s-%016llx", zc->zc_value, 6139 (u_longlong_t)ddi_get_lbolt64()); 6140 hold_name = kmem_asprintf("%%%s", zc->zc_value); 6141 6142 int error = dsl_dataset_snapshot_tmp(zc->zc_name, snap_name, minor, 6143 hold_name); 6144 if (error == 0) 6145 (void) strlcpy(zc->zc_value, snap_name, 6146 sizeof (zc->zc_value)); 6147 kmem_strfree(snap_name); 6148 kmem_strfree(hold_name); 6149 zfs_onexit_fd_rele(fp); 6150 return (error); 6151 } 6152 6153 /* 6154 * inputs: 6155 * zc_name name of "to" snapshot 6156 * zc_value name of "from" snapshot 6157 * zc_cookie file descriptor to write diff data on 6158 * 6159 * outputs: 6160 * dmu_diff_record_t's to the file descriptor 6161 */ 6162 static int 6163 zfs_ioc_diff(zfs_cmd_t *zc) 6164 { 6165 zfs_file_t *fp; 6166 offset_t off; 6167 int error; 6168 6169 if ((fp = zfs_file_get(zc->zc_cookie)) == NULL) 6170 return (SET_ERROR(EBADF)); 6171 6172 off = zfs_file_off(fp); 6173 error = dmu_diff(zc->zc_name, zc->zc_value, fp, &off); 6174 6175 zfs_file_put(fp); 6176 6177 return (error); 6178 } 6179 6180 static int 6181 zfs_ioc_smb_acl(zfs_cmd_t *zc) 6182 { 6183 return (SET_ERROR(ENOTSUP)); 6184 } 6185 6186 /* 6187 * innvl: { 6188 * "holds" -> { snapname -> holdname (string), ... } 6189 * (optional) "cleanup_fd" -> fd (int32) 6190 * } 6191 * 6192 * outnvl: { 6193 * snapname -> error value (int32) 6194 * ... 6195 * } 6196 */ 6197 static const zfs_ioc_key_t zfs_keys_hold[] = { 6198 {"holds", DATA_TYPE_NVLIST, 0}, 6199 {"cleanup_fd", DATA_TYPE_INT32, ZK_OPTIONAL}, 6200 }; 6201 6202 static int 6203 zfs_ioc_hold(const char *pool, nvlist_t *args, nvlist_t *errlist) 6204 { 6205 (void) pool; 6206 nvpair_t *pair; 6207 nvlist_t *holds; 6208 int cleanup_fd = -1; 6209 int error; 6210 minor_t minor = 0; 6211 zfs_file_t *fp = NULL; 6212 6213 holds = fnvlist_lookup_nvlist(args, "holds"); 6214 6215 /* make sure the user didn't pass us any invalid (empty) tags */ 6216 for (pair = nvlist_next_nvpair(holds, NULL); pair != NULL; 6217 pair = nvlist_next_nvpair(holds, pair)) { 6218 char *htag; 6219 6220 error = nvpair_value_string(pair, &htag); 6221 if (error != 0) 6222 return (SET_ERROR(error)); 6223 6224 if (strlen(htag) == 0) 6225 return (SET_ERROR(EINVAL)); 6226 } 6227 6228 if (nvlist_lookup_int32(args, "cleanup_fd", &cleanup_fd) == 0) { 6229 fp = zfs_onexit_fd_hold(cleanup_fd, &minor); 6230 if (fp == NULL) 6231 return (SET_ERROR(EBADF)); 6232 } 6233 6234 error = dsl_dataset_user_hold(holds, minor, errlist); 6235 if (fp != NULL) { 6236 ASSERT3U(minor, !=, 0); 6237 zfs_onexit_fd_rele(fp); 6238 } 6239 return (SET_ERROR(error)); 6240 } 6241 6242 /* 6243 * innvl is not used. 6244 * 6245 * outnvl: { 6246 * holdname -> time added (uint64 seconds since epoch) 6247 * ... 6248 * } 6249 */ 6250 static const zfs_ioc_key_t zfs_keys_get_holds[] = { 6251 /* no nvl keys */ 6252 }; 6253 6254 static int 6255 zfs_ioc_get_holds(const char *snapname, nvlist_t *args, nvlist_t *outnvl) 6256 { 6257 (void) args; 6258 return (dsl_dataset_get_holds(snapname, outnvl)); 6259 } 6260 6261 /* 6262 * innvl: { 6263 * snapname -> { holdname, ... } 6264 * ... 6265 * } 6266 * 6267 * outnvl: { 6268 * snapname -> error value (int32) 6269 * ... 6270 * } 6271 */ 6272 static const zfs_ioc_key_t zfs_keys_release[] = { 6273 {"<snapname>...", DATA_TYPE_NVLIST, ZK_WILDCARDLIST}, 6274 }; 6275 6276 static int 6277 zfs_ioc_release(const char *pool, nvlist_t *holds, nvlist_t *errlist) 6278 { 6279 (void) pool; 6280 return (dsl_dataset_user_release(holds, errlist)); 6281 } 6282 6283 /* 6284 * inputs: 6285 * zc_guid flags (ZEVENT_NONBLOCK) 6286 * zc_cleanup_fd zevent file descriptor 6287 * 6288 * outputs: 6289 * zc_nvlist_dst next nvlist event 6290 * zc_cookie dropped events since last get 6291 */ 6292 static int 6293 zfs_ioc_events_next(zfs_cmd_t *zc) 6294 { 6295 zfs_zevent_t *ze; 6296 nvlist_t *event = NULL; 6297 minor_t minor; 6298 uint64_t dropped = 0; 6299 int error; 6300 6301 zfs_file_t *fp = zfs_zevent_fd_hold(zc->zc_cleanup_fd, &minor, &ze); 6302 if (fp == NULL) 6303 return (SET_ERROR(EBADF)); 6304 6305 do { 6306 error = zfs_zevent_next(ze, &event, 6307 &zc->zc_nvlist_dst_size, &dropped); 6308 if (event != NULL) { 6309 zc->zc_cookie = dropped; 6310 error = put_nvlist(zc, event); 6311 nvlist_free(event); 6312 } 6313 6314 if (zc->zc_guid & ZEVENT_NONBLOCK) 6315 break; 6316 6317 if ((error == 0) || (error != ENOENT)) 6318 break; 6319 6320 error = zfs_zevent_wait(ze); 6321 if (error != 0) 6322 break; 6323 } while (1); 6324 6325 zfs_zevent_fd_rele(fp); 6326 6327 return (error); 6328 } 6329 6330 /* 6331 * outputs: 6332 * zc_cookie cleared events count 6333 */ 6334 static int 6335 zfs_ioc_events_clear(zfs_cmd_t *zc) 6336 { 6337 int count; 6338 6339 zfs_zevent_drain_all(&count); 6340 zc->zc_cookie = count; 6341 6342 return (0); 6343 } 6344 6345 /* 6346 * inputs: 6347 * zc_guid eid | ZEVENT_SEEK_START | ZEVENT_SEEK_END 6348 * zc_cleanup zevent file descriptor 6349 */ 6350 static int 6351 zfs_ioc_events_seek(zfs_cmd_t *zc) 6352 { 6353 zfs_zevent_t *ze; 6354 minor_t minor; 6355 int error; 6356 6357 zfs_file_t *fp = zfs_zevent_fd_hold(zc->zc_cleanup_fd, &minor, &ze); 6358 if (fp == NULL) 6359 return (SET_ERROR(EBADF)); 6360 6361 error = zfs_zevent_seek(ze, zc->zc_guid); 6362 zfs_zevent_fd_rele(fp); 6363 6364 return (error); 6365 } 6366 6367 /* 6368 * inputs: 6369 * zc_name name of later filesystem or snapshot 6370 * zc_value full name of old snapshot or bookmark 6371 * 6372 * outputs: 6373 * zc_cookie space in bytes 6374 * zc_objset_type compressed space in bytes 6375 * zc_perm_action uncompressed space in bytes 6376 */ 6377 static int 6378 zfs_ioc_space_written(zfs_cmd_t *zc) 6379 { 6380 int error; 6381 dsl_pool_t *dp; 6382 dsl_dataset_t *new; 6383 6384 error = dsl_pool_hold(zc->zc_name, FTAG, &dp); 6385 if (error != 0) 6386 return (error); 6387 error = dsl_dataset_hold(dp, zc->zc_name, FTAG, &new); 6388 if (error != 0) { 6389 dsl_pool_rele(dp, FTAG); 6390 return (error); 6391 } 6392 if (strchr(zc->zc_value, '#') != NULL) { 6393 zfs_bookmark_phys_t bmp; 6394 error = dsl_bookmark_lookup(dp, zc->zc_value, 6395 new, &bmp); 6396 if (error == 0) { 6397 error = dsl_dataset_space_written_bookmark(&bmp, new, 6398 &zc->zc_cookie, 6399 &zc->zc_objset_type, &zc->zc_perm_action); 6400 } 6401 } else { 6402 dsl_dataset_t *old; 6403 error = dsl_dataset_hold(dp, zc->zc_value, FTAG, &old); 6404 6405 if (error == 0) { 6406 error = dsl_dataset_space_written(old, new, 6407 &zc->zc_cookie, 6408 &zc->zc_objset_type, &zc->zc_perm_action); 6409 dsl_dataset_rele(old, FTAG); 6410 } 6411 } 6412 dsl_dataset_rele(new, FTAG); 6413 dsl_pool_rele(dp, FTAG); 6414 return (error); 6415 } 6416 6417 /* 6418 * innvl: { 6419 * "firstsnap" -> snapshot name 6420 * } 6421 * 6422 * outnvl: { 6423 * "used" -> space in bytes 6424 * "compressed" -> compressed space in bytes 6425 * "uncompressed" -> uncompressed space in bytes 6426 * } 6427 */ 6428 static const zfs_ioc_key_t zfs_keys_space_snaps[] = { 6429 {"firstsnap", DATA_TYPE_STRING, 0}, 6430 }; 6431 6432 static int 6433 zfs_ioc_space_snaps(const char *lastsnap, nvlist_t *innvl, nvlist_t *outnvl) 6434 { 6435 int error; 6436 dsl_pool_t *dp; 6437 dsl_dataset_t *new, *old; 6438 char *firstsnap; 6439 uint64_t used, comp, uncomp; 6440 6441 firstsnap = fnvlist_lookup_string(innvl, "firstsnap"); 6442 6443 error = dsl_pool_hold(lastsnap, FTAG, &dp); 6444 if (error != 0) 6445 return (error); 6446 6447 error = dsl_dataset_hold(dp, lastsnap, FTAG, &new); 6448 if (error == 0 && !new->ds_is_snapshot) { 6449 dsl_dataset_rele(new, FTAG); 6450 error = SET_ERROR(EINVAL); 6451 } 6452 if (error != 0) { 6453 dsl_pool_rele(dp, FTAG); 6454 return (error); 6455 } 6456 error = dsl_dataset_hold(dp, firstsnap, FTAG, &old); 6457 if (error == 0 && !old->ds_is_snapshot) { 6458 dsl_dataset_rele(old, FTAG); 6459 error = SET_ERROR(EINVAL); 6460 } 6461 if (error != 0) { 6462 dsl_dataset_rele(new, FTAG); 6463 dsl_pool_rele(dp, FTAG); 6464 return (error); 6465 } 6466 6467 error = dsl_dataset_space_wouldfree(old, new, &used, &comp, &uncomp); 6468 dsl_dataset_rele(old, FTAG); 6469 dsl_dataset_rele(new, FTAG); 6470 dsl_pool_rele(dp, FTAG); 6471 fnvlist_add_uint64(outnvl, "used", used); 6472 fnvlist_add_uint64(outnvl, "compressed", comp); 6473 fnvlist_add_uint64(outnvl, "uncompressed", uncomp); 6474 return (error); 6475 } 6476 6477 /* 6478 * innvl: { 6479 * "fd" -> file descriptor to write stream to (int32) 6480 * (optional) "fromsnap" -> full snap name to send an incremental from 6481 * (optional) "largeblockok" -> (value ignored) 6482 * indicates that blocks > 128KB are permitted 6483 * (optional) "embedok" -> (value ignored) 6484 * presence indicates DRR_WRITE_EMBEDDED records are permitted 6485 * (optional) "compressok" -> (value ignored) 6486 * presence indicates compressed DRR_WRITE records are permitted 6487 * (optional) "rawok" -> (value ignored) 6488 * presence indicates raw encrypted records should be used. 6489 * (optional) "savedok" -> (value ignored) 6490 * presence indicates we should send a partially received snapshot 6491 * (optional) "resume_object" and "resume_offset" -> (uint64) 6492 * if present, resume send stream from specified object and offset. 6493 * (optional) "redactbook" -> (string) 6494 * if present, use this bookmark's redaction list to generate a redacted 6495 * send stream 6496 * } 6497 * 6498 * outnvl is unused 6499 */ 6500 static const zfs_ioc_key_t zfs_keys_send_new[] = { 6501 {"fd", DATA_TYPE_INT32, 0}, 6502 {"fromsnap", DATA_TYPE_STRING, ZK_OPTIONAL}, 6503 {"largeblockok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6504 {"embedok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6505 {"compressok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6506 {"rawok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6507 {"savedok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6508 {"resume_object", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6509 {"resume_offset", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6510 {"redactbook", DATA_TYPE_STRING, ZK_OPTIONAL}, 6511 }; 6512 6513 static int 6514 zfs_ioc_send_new(const char *snapname, nvlist_t *innvl, nvlist_t *outnvl) 6515 { 6516 (void) outnvl; 6517 int error; 6518 offset_t off; 6519 char *fromname = NULL; 6520 int fd; 6521 zfs_file_t *fp; 6522 boolean_t largeblockok; 6523 boolean_t embedok; 6524 boolean_t compressok; 6525 boolean_t rawok; 6526 boolean_t savedok; 6527 uint64_t resumeobj = 0; 6528 uint64_t resumeoff = 0; 6529 char *redactbook = NULL; 6530 6531 fd = fnvlist_lookup_int32(innvl, "fd"); 6532 6533 (void) nvlist_lookup_string(innvl, "fromsnap", &fromname); 6534 6535 largeblockok = nvlist_exists(innvl, "largeblockok"); 6536 embedok = nvlist_exists(innvl, "embedok"); 6537 compressok = nvlist_exists(innvl, "compressok"); 6538 rawok = nvlist_exists(innvl, "rawok"); 6539 savedok = nvlist_exists(innvl, "savedok"); 6540 6541 (void) nvlist_lookup_uint64(innvl, "resume_object", &resumeobj); 6542 (void) nvlist_lookup_uint64(innvl, "resume_offset", &resumeoff); 6543 6544 (void) nvlist_lookup_string(innvl, "redactbook", &redactbook); 6545 6546 if ((fp = zfs_file_get(fd)) == NULL) 6547 return (SET_ERROR(EBADF)); 6548 6549 off = zfs_file_off(fp); 6550 6551 dmu_send_outparams_t out = {0}; 6552 out.dso_outfunc = dump_bytes; 6553 out.dso_arg = fp; 6554 out.dso_dryrun = B_FALSE; 6555 error = dmu_send(snapname, fromname, embedok, largeblockok, 6556 compressok, rawok, savedok, resumeobj, resumeoff, 6557 redactbook, fd, &off, &out); 6558 6559 zfs_file_put(fp); 6560 return (error); 6561 } 6562 6563 static int 6564 send_space_sum(objset_t *os, void *buf, int len, void *arg) 6565 { 6566 (void) os, (void) buf; 6567 uint64_t *size = arg; 6568 6569 *size += len; 6570 return (0); 6571 } 6572 6573 /* 6574 * Determine approximately how large a zfs send stream will be -- the number 6575 * of bytes that will be written to the fd supplied to zfs_ioc_send_new(). 6576 * 6577 * innvl: { 6578 * (optional) "from" -> full snap or bookmark name to send an incremental 6579 * from 6580 * (optional) "largeblockok" -> (value ignored) 6581 * indicates that blocks > 128KB are permitted 6582 * (optional) "embedok" -> (value ignored) 6583 * presence indicates DRR_WRITE_EMBEDDED records are permitted 6584 * (optional) "compressok" -> (value ignored) 6585 * presence indicates compressed DRR_WRITE records are permitted 6586 * (optional) "rawok" -> (value ignored) 6587 * presence indicates raw encrypted records should be used. 6588 * (optional) "resume_object" and "resume_offset" -> (uint64) 6589 * if present, resume send stream from specified object and offset. 6590 * (optional) "fd" -> file descriptor to use as a cookie for progress 6591 * tracking (int32) 6592 * } 6593 * 6594 * outnvl: { 6595 * "space" -> bytes of space (uint64) 6596 * } 6597 */ 6598 static const zfs_ioc_key_t zfs_keys_send_space[] = { 6599 {"from", DATA_TYPE_STRING, ZK_OPTIONAL}, 6600 {"fromsnap", DATA_TYPE_STRING, ZK_OPTIONAL}, 6601 {"largeblockok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6602 {"embedok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6603 {"compressok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6604 {"rawok", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6605 {"fd", DATA_TYPE_INT32, ZK_OPTIONAL}, 6606 {"redactbook", DATA_TYPE_STRING, ZK_OPTIONAL}, 6607 {"resume_object", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6608 {"resume_offset", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6609 {"bytes", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6610 }; 6611 6612 static int 6613 zfs_ioc_send_space(const char *snapname, nvlist_t *innvl, nvlist_t *outnvl) 6614 { 6615 dsl_pool_t *dp; 6616 dsl_dataset_t *tosnap; 6617 dsl_dataset_t *fromsnap = NULL; 6618 int error; 6619 char *fromname = NULL; 6620 char *redactlist_book = NULL; 6621 boolean_t largeblockok; 6622 boolean_t embedok; 6623 boolean_t compressok; 6624 boolean_t rawok; 6625 boolean_t savedok; 6626 uint64_t space = 0; 6627 boolean_t full_estimate = B_FALSE; 6628 uint64_t resumeobj = 0; 6629 uint64_t resumeoff = 0; 6630 uint64_t resume_bytes = 0; 6631 int32_t fd = -1; 6632 zfs_bookmark_phys_t zbm = {0}; 6633 6634 error = dsl_pool_hold(snapname, FTAG, &dp); 6635 if (error != 0) 6636 return (error); 6637 6638 error = dsl_dataset_hold(dp, snapname, FTAG, &tosnap); 6639 if (error != 0) { 6640 dsl_pool_rele(dp, FTAG); 6641 return (error); 6642 } 6643 (void) nvlist_lookup_int32(innvl, "fd", &fd); 6644 6645 largeblockok = nvlist_exists(innvl, "largeblockok"); 6646 embedok = nvlist_exists(innvl, "embedok"); 6647 compressok = nvlist_exists(innvl, "compressok"); 6648 rawok = nvlist_exists(innvl, "rawok"); 6649 savedok = nvlist_exists(innvl, "savedok"); 6650 boolean_t from = (nvlist_lookup_string(innvl, "from", &fromname) == 0); 6651 boolean_t altbook = (nvlist_lookup_string(innvl, "redactbook", 6652 &redactlist_book) == 0); 6653 6654 (void) nvlist_lookup_uint64(innvl, "resume_object", &resumeobj); 6655 (void) nvlist_lookup_uint64(innvl, "resume_offset", &resumeoff); 6656 (void) nvlist_lookup_uint64(innvl, "bytes", &resume_bytes); 6657 6658 if (altbook) { 6659 full_estimate = B_TRUE; 6660 } else if (from) { 6661 if (strchr(fromname, '#')) { 6662 error = dsl_bookmark_lookup(dp, fromname, tosnap, &zbm); 6663 6664 /* 6665 * dsl_bookmark_lookup() will fail with EXDEV if 6666 * the from-bookmark and tosnap are at the same txg. 6667 * However, it's valid to do a send (and therefore, 6668 * a send estimate) from and to the same time point, 6669 * if the bookmark is redacted (the incremental send 6670 * can change what's redacted on the target). In 6671 * this case, dsl_bookmark_lookup() fills in zbm 6672 * but returns EXDEV. Ignore this error. 6673 */ 6674 if (error == EXDEV && zbm.zbm_redaction_obj != 0 && 6675 zbm.zbm_guid == 6676 dsl_dataset_phys(tosnap)->ds_guid) 6677 error = 0; 6678 6679 if (error != 0) { 6680 dsl_dataset_rele(tosnap, FTAG); 6681 dsl_pool_rele(dp, FTAG); 6682 return (error); 6683 } 6684 if (zbm.zbm_redaction_obj != 0 || !(zbm.zbm_flags & 6685 ZBM_FLAG_HAS_FBN)) { 6686 full_estimate = B_TRUE; 6687 } 6688 } else if (strchr(fromname, '@')) { 6689 error = dsl_dataset_hold(dp, fromname, FTAG, &fromsnap); 6690 if (error != 0) { 6691 dsl_dataset_rele(tosnap, FTAG); 6692 dsl_pool_rele(dp, FTAG); 6693 return (error); 6694 } 6695 6696 if (!dsl_dataset_is_before(tosnap, fromsnap, 0)) { 6697 full_estimate = B_TRUE; 6698 dsl_dataset_rele(fromsnap, FTAG); 6699 } 6700 } else { 6701 /* 6702 * from is not properly formatted as a snapshot or 6703 * bookmark 6704 */ 6705 dsl_dataset_rele(tosnap, FTAG); 6706 dsl_pool_rele(dp, FTAG); 6707 return (SET_ERROR(EINVAL)); 6708 } 6709 } 6710 6711 if (full_estimate) { 6712 dmu_send_outparams_t out = {0}; 6713 offset_t off = 0; 6714 out.dso_outfunc = send_space_sum; 6715 out.dso_arg = &space; 6716 out.dso_dryrun = B_TRUE; 6717 /* 6718 * We have to release these holds so dmu_send can take them. It 6719 * will do all the error checking we need. 6720 */ 6721 dsl_dataset_rele(tosnap, FTAG); 6722 dsl_pool_rele(dp, FTAG); 6723 error = dmu_send(snapname, fromname, embedok, largeblockok, 6724 compressok, rawok, savedok, resumeobj, resumeoff, 6725 redactlist_book, fd, &off, &out); 6726 } else { 6727 error = dmu_send_estimate_fast(tosnap, fromsnap, 6728 (from && strchr(fromname, '#') != NULL ? &zbm : NULL), 6729 compressok || rawok, savedok, &space); 6730 space -= resume_bytes; 6731 if (fromsnap != NULL) 6732 dsl_dataset_rele(fromsnap, FTAG); 6733 dsl_dataset_rele(tosnap, FTAG); 6734 dsl_pool_rele(dp, FTAG); 6735 } 6736 6737 fnvlist_add_uint64(outnvl, "space", space); 6738 6739 return (error); 6740 } 6741 6742 /* 6743 * Sync the currently open TXG to disk for the specified pool. 6744 * This is somewhat similar to 'zfs_sync()'. 6745 * For cases that do not result in error this ioctl will wait for 6746 * the currently open TXG to commit before returning back to the caller. 6747 * 6748 * innvl: { 6749 * "force" -> when true, force uberblock update even if there is no dirty data. 6750 * In addition this will cause the vdev configuration to be written 6751 * out including updating the zpool cache file. (boolean_t) 6752 * } 6753 * 6754 * onvl is unused 6755 */ 6756 static const zfs_ioc_key_t zfs_keys_pool_sync[] = { 6757 {"force", DATA_TYPE_BOOLEAN_VALUE, 0}, 6758 }; 6759 6760 static int 6761 zfs_ioc_pool_sync(const char *pool, nvlist_t *innvl, nvlist_t *onvl) 6762 { 6763 (void) onvl; 6764 int err; 6765 boolean_t rc, force = B_FALSE; 6766 spa_t *spa; 6767 6768 if ((err = spa_open(pool, &spa, FTAG)) != 0) 6769 return (err); 6770 6771 if (innvl) { 6772 err = nvlist_lookup_boolean_value(innvl, "force", &rc); 6773 if (err == 0) 6774 force = rc; 6775 } 6776 6777 if (force) { 6778 spa_config_enter(spa, SCL_CONFIG, FTAG, RW_WRITER); 6779 vdev_config_dirty(spa->spa_root_vdev); 6780 spa_config_exit(spa, SCL_CONFIG, FTAG); 6781 } 6782 txg_wait_synced(spa_get_dsl(spa), 0); 6783 6784 spa_close(spa, FTAG); 6785 6786 return (0); 6787 } 6788 6789 /* 6790 * Load a user's wrapping key into the kernel. 6791 * innvl: { 6792 * "hidden_args" -> { "wkeydata" -> value } 6793 * raw uint8_t array of encryption wrapping key data (32 bytes) 6794 * (optional) "noop" -> (value ignored) 6795 * presence indicated key should only be verified, not loaded 6796 * } 6797 */ 6798 static const zfs_ioc_key_t zfs_keys_load_key[] = { 6799 {"hidden_args", DATA_TYPE_NVLIST, 0}, 6800 {"noop", DATA_TYPE_BOOLEAN, ZK_OPTIONAL}, 6801 }; 6802 6803 static int 6804 zfs_ioc_load_key(const char *dsname, nvlist_t *innvl, nvlist_t *outnvl) 6805 { 6806 (void) outnvl; 6807 int ret; 6808 dsl_crypto_params_t *dcp = NULL; 6809 nvlist_t *hidden_args; 6810 boolean_t noop = nvlist_exists(innvl, "noop"); 6811 6812 if (strchr(dsname, '@') != NULL || strchr(dsname, '%') != NULL) { 6813 ret = SET_ERROR(EINVAL); 6814 goto error; 6815 } 6816 6817 hidden_args = fnvlist_lookup_nvlist(innvl, ZPOOL_HIDDEN_ARGS); 6818 6819 ret = dsl_crypto_params_create_nvlist(DCP_CMD_NONE, NULL, 6820 hidden_args, &dcp); 6821 if (ret != 0) 6822 goto error; 6823 6824 ret = spa_keystore_load_wkey(dsname, dcp, noop); 6825 if (ret != 0) 6826 goto error; 6827 6828 dsl_crypto_params_free(dcp, noop); 6829 6830 return (0); 6831 6832 error: 6833 dsl_crypto_params_free(dcp, B_TRUE); 6834 return (ret); 6835 } 6836 6837 /* 6838 * Unload a user's wrapping key from the kernel. 6839 * Both innvl and outnvl are unused. 6840 */ 6841 static const zfs_ioc_key_t zfs_keys_unload_key[] = { 6842 /* no nvl keys */ 6843 }; 6844 6845 static int 6846 zfs_ioc_unload_key(const char *dsname, nvlist_t *innvl, nvlist_t *outnvl) 6847 { 6848 (void) innvl, (void) outnvl; 6849 int ret = 0; 6850 6851 if (strchr(dsname, '@') != NULL || strchr(dsname, '%') != NULL) { 6852 ret = (SET_ERROR(EINVAL)); 6853 goto out; 6854 } 6855 6856 ret = spa_keystore_unload_wkey(dsname); 6857 if (ret != 0) 6858 goto out; 6859 6860 out: 6861 return (ret); 6862 } 6863 6864 /* 6865 * Changes a user's wrapping key used to decrypt a dataset. The keyformat, 6866 * keylocation, pbkdf2salt, and pbkdf2iters properties can also be specified 6867 * here to change how the key is derived in userspace. 6868 * 6869 * innvl: { 6870 * "hidden_args" (optional) -> { "wkeydata" -> value } 6871 * raw uint8_t array of new encryption wrapping key data (32 bytes) 6872 * "props" (optional) -> { prop -> value } 6873 * } 6874 * 6875 * outnvl is unused 6876 */ 6877 static const zfs_ioc_key_t zfs_keys_change_key[] = { 6878 {"crypt_cmd", DATA_TYPE_UINT64, ZK_OPTIONAL}, 6879 {"hidden_args", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 6880 {"props", DATA_TYPE_NVLIST, ZK_OPTIONAL}, 6881 }; 6882 6883 static int 6884 zfs_ioc_change_key(const char *dsname, nvlist_t *innvl, nvlist_t *outnvl) 6885 { 6886 (void) outnvl; 6887 int ret; 6888 uint64_t cmd = DCP_CMD_NONE; 6889 dsl_crypto_params_t *dcp = NULL; 6890 nvlist_t *args = NULL, *hidden_args = NULL; 6891 6892 if (strchr(dsname, '@') != NULL || strchr(dsname, '%') != NULL) { 6893 ret = (SET_ERROR(EINVAL)); 6894 goto error; 6895 } 6896 6897 (void) nvlist_lookup_uint64(innvl, "crypt_cmd", &cmd); 6898 (void) nvlist_lookup_nvlist(innvl, "props", &args); 6899 (void) nvlist_lookup_nvlist(innvl, ZPOOL_HIDDEN_ARGS, &hidden_args); 6900 6901 ret = dsl_crypto_params_create_nvlist(cmd, args, hidden_args, &dcp); 6902 if (ret != 0) 6903 goto error; 6904 6905 ret = spa_keystore_change_key(dsname, dcp); 6906 if (ret != 0) 6907 goto error; 6908 6909 dsl_crypto_params_free(dcp, B_FALSE); 6910 6911 return (0); 6912 6913 error: 6914 dsl_crypto_params_free(dcp, B_TRUE); 6915 return (ret); 6916 } 6917 6918 static zfs_ioc_vec_t zfs_ioc_vec[ZFS_IOC_LAST - ZFS_IOC_FIRST]; 6919 6920 static void 6921 zfs_ioctl_register_legacy(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func, 6922 zfs_secpolicy_func_t *secpolicy, zfs_ioc_namecheck_t namecheck, 6923 boolean_t log_history, zfs_ioc_poolcheck_t pool_check) 6924 { 6925 zfs_ioc_vec_t *vec = &zfs_ioc_vec[ioc - ZFS_IOC_FIRST]; 6926 6927 ASSERT3U(ioc, >=, ZFS_IOC_FIRST); 6928 ASSERT3U(ioc, <, ZFS_IOC_LAST); 6929 ASSERT3P(vec->zvec_legacy_func, ==, NULL); 6930 ASSERT3P(vec->zvec_func, ==, NULL); 6931 6932 vec->zvec_legacy_func = func; 6933 vec->zvec_secpolicy = secpolicy; 6934 vec->zvec_namecheck = namecheck; 6935 vec->zvec_allow_log = log_history; 6936 vec->zvec_pool_check = pool_check; 6937 } 6938 6939 /* 6940 * See the block comment at the beginning of this file for details on 6941 * each argument to this function. 6942 */ 6943 void 6944 zfs_ioctl_register(const char *name, zfs_ioc_t ioc, zfs_ioc_func_t *func, 6945 zfs_secpolicy_func_t *secpolicy, zfs_ioc_namecheck_t namecheck, 6946 zfs_ioc_poolcheck_t pool_check, boolean_t smush_outnvlist, 6947 boolean_t allow_log, const zfs_ioc_key_t *nvl_keys, size_t num_keys) 6948 { 6949 zfs_ioc_vec_t *vec = &zfs_ioc_vec[ioc - ZFS_IOC_FIRST]; 6950 6951 ASSERT3U(ioc, >=, ZFS_IOC_FIRST); 6952 ASSERT3U(ioc, <, ZFS_IOC_LAST); 6953 ASSERT3P(vec->zvec_legacy_func, ==, NULL); 6954 ASSERT3P(vec->zvec_func, ==, NULL); 6955 6956 /* if we are logging, the name must be valid */ 6957 ASSERT(!allow_log || namecheck != NO_NAME); 6958 6959 vec->zvec_name = name; 6960 vec->zvec_func = func; 6961 vec->zvec_secpolicy = secpolicy; 6962 vec->zvec_namecheck = namecheck; 6963 vec->zvec_pool_check = pool_check; 6964 vec->zvec_smush_outnvlist = smush_outnvlist; 6965 vec->zvec_allow_log = allow_log; 6966 vec->zvec_nvl_keys = nvl_keys; 6967 vec->zvec_nvl_key_count = num_keys; 6968 } 6969 6970 static void 6971 zfs_ioctl_register_pool(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func, 6972 zfs_secpolicy_func_t *secpolicy, boolean_t log_history, 6973 zfs_ioc_poolcheck_t pool_check) 6974 { 6975 zfs_ioctl_register_legacy(ioc, func, secpolicy, 6976 POOL_NAME, log_history, pool_check); 6977 } 6978 6979 void 6980 zfs_ioctl_register_dataset_nolog(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func, 6981 zfs_secpolicy_func_t *secpolicy, zfs_ioc_poolcheck_t pool_check) 6982 { 6983 zfs_ioctl_register_legacy(ioc, func, secpolicy, 6984 DATASET_NAME, B_FALSE, pool_check); 6985 } 6986 6987 static void 6988 zfs_ioctl_register_pool_modify(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func) 6989 { 6990 zfs_ioctl_register_legacy(ioc, func, zfs_secpolicy_config, 6991 POOL_NAME, B_TRUE, POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY); 6992 } 6993 6994 static void 6995 zfs_ioctl_register_pool_meta(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func, 6996 zfs_secpolicy_func_t *secpolicy) 6997 { 6998 zfs_ioctl_register_legacy(ioc, func, secpolicy, 6999 NO_NAME, B_FALSE, POOL_CHECK_NONE); 7000 } 7001 7002 static void 7003 zfs_ioctl_register_dataset_read_secpolicy(zfs_ioc_t ioc, 7004 zfs_ioc_legacy_func_t *func, zfs_secpolicy_func_t *secpolicy) 7005 { 7006 zfs_ioctl_register_legacy(ioc, func, secpolicy, 7007 DATASET_NAME, B_FALSE, POOL_CHECK_SUSPENDED); 7008 } 7009 7010 static void 7011 zfs_ioctl_register_dataset_read(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func) 7012 { 7013 zfs_ioctl_register_dataset_read_secpolicy(ioc, func, 7014 zfs_secpolicy_read); 7015 } 7016 7017 static void 7018 zfs_ioctl_register_dataset_modify(zfs_ioc_t ioc, zfs_ioc_legacy_func_t *func, 7019 zfs_secpolicy_func_t *secpolicy) 7020 { 7021 zfs_ioctl_register_legacy(ioc, func, secpolicy, 7022 DATASET_NAME, B_TRUE, POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY); 7023 } 7024 7025 static void 7026 zfs_ioctl_init(void) 7027 { 7028 zfs_ioctl_register("snapshot", ZFS_IOC_SNAPSHOT, 7029 zfs_ioc_snapshot, zfs_secpolicy_snapshot, POOL_NAME, 7030 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7031 zfs_keys_snapshot, ARRAY_SIZE(zfs_keys_snapshot)); 7032 7033 zfs_ioctl_register("log_history", ZFS_IOC_LOG_HISTORY, 7034 zfs_ioc_log_history, zfs_secpolicy_log_history, NO_NAME, 7035 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_FALSE, 7036 zfs_keys_log_history, ARRAY_SIZE(zfs_keys_log_history)); 7037 7038 zfs_ioctl_register("space_snaps", ZFS_IOC_SPACE_SNAPS, 7039 zfs_ioc_space_snaps, zfs_secpolicy_read, DATASET_NAME, 7040 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, 7041 zfs_keys_space_snaps, ARRAY_SIZE(zfs_keys_space_snaps)); 7042 7043 zfs_ioctl_register("send", ZFS_IOC_SEND_NEW, 7044 zfs_ioc_send_new, zfs_secpolicy_send_new, DATASET_NAME, 7045 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, 7046 zfs_keys_send_new, ARRAY_SIZE(zfs_keys_send_new)); 7047 7048 zfs_ioctl_register("send_space", ZFS_IOC_SEND_SPACE, 7049 zfs_ioc_send_space, zfs_secpolicy_read, DATASET_NAME, 7050 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, 7051 zfs_keys_send_space, ARRAY_SIZE(zfs_keys_send_space)); 7052 7053 zfs_ioctl_register("create", ZFS_IOC_CREATE, 7054 zfs_ioc_create, zfs_secpolicy_create_clone, DATASET_NAME, 7055 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7056 zfs_keys_create, ARRAY_SIZE(zfs_keys_create)); 7057 7058 zfs_ioctl_register("clone", ZFS_IOC_CLONE, 7059 zfs_ioc_clone, zfs_secpolicy_create_clone, DATASET_NAME, 7060 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7061 zfs_keys_clone, ARRAY_SIZE(zfs_keys_clone)); 7062 7063 zfs_ioctl_register("remap", ZFS_IOC_REMAP, 7064 zfs_ioc_remap, zfs_secpolicy_none, DATASET_NAME, 7065 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_TRUE, 7066 zfs_keys_remap, ARRAY_SIZE(zfs_keys_remap)); 7067 7068 zfs_ioctl_register("destroy_snaps", ZFS_IOC_DESTROY_SNAPS, 7069 zfs_ioc_destroy_snaps, zfs_secpolicy_destroy_snaps, POOL_NAME, 7070 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7071 zfs_keys_destroy_snaps, ARRAY_SIZE(zfs_keys_destroy_snaps)); 7072 7073 zfs_ioctl_register("hold", ZFS_IOC_HOLD, 7074 zfs_ioc_hold, zfs_secpolicy_hold, POOL_NAME, 7075 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7076 zfs_keys_hold, ARRAY_SIZE(zfs_keys_hold)); 7077 zfs_ioctl_register("release", ZFS_IOC_RELEASE, 7078 zfs_ioc_release, zfs_secpolicy_release, POOL_NAME, 7079 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7080 zfs_keys_release, ARRAY_SIZE(zfs_keys_release)); 7081 7082 zfs_ioctl_register("get_holds", ZFS_IOC_GET_HOLDS, 7083 zfs_ioc_get_holds, zfs_secpolicy_read, DATASET_NAME, 7084 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, 7085 zfs_keys_get_holds, ARRAY_SIZE(zfs_keys_get_holds)); 7086 7087 zfs_ioctl_register("rollback", ZFS_IOC_ROLLBACK, 7088 zfs_ioc_rollback, zfs_secpolicy_rollback, DATASET_NAME, 7089 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_TRUE, 7090 zfs_keys_rollback, ARRAY_SIZE(zfs_keys_rollback)); 7091 7092 zfs_ioctl_register("bookmark", ZFS_IOC_BOOKMARK, 7093 zfs_ioc_bookmark, zfs_secpolicy_bookmark, POOL_NAME, 7094 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7095 zfs_keys_bookmark, ARRAY_SIZE(zfs_keys_bookmark)); 7096 7097 zfs_ioctl_register("get_bookmarks", ZFS_IOC_GET_BOOKMARKS, 7098 zfs_ioc_get_bookmarks, zfs_secpolicy_read, DATASET_NAME, 7099 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, 7100 zfs_keys_get_bookmarks, ARRAY_SIZE(zfs_keys_get_bookmarks)); 7101 7102 zfs_ioctl_register("get_bookmark_props", ZFS_IOC_GET_BOOKMARK_PROPS, 7103 zfs_ioc_get_bookmark_props, zfs_secpolicy_read, ENTITY_NAME, 7104 POOL_CHECK_SUSPENDED, B_FALSE, B_FALSE, zfs_keys_get_bookmark_props, 7105 ARRAY_SIZE(zfs_keys_get_bookmark_props)); 7106 7107 zfs_ioctl_register("destroy_bookmarks", ZFS_IOC_DESTROY_BOOKMARKS, 7108 zfs_ioc_destroy_bookmarks, zfs_secpolicy_destroy_bookmarks, 7109 POOL_NAME, 7110 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7111 zfs_keys_destroy_bookmarks, 7112 ARRAY_SIZE(zfs_keys_destroy_bookmarks)); 7113 7114 zfs_ioctl_register("receive", ZFS_IOC_RECV_NEW, 7115 zfs_ioc_recv_new, zfs_secpolicy_recv, DATASET_NAME, 7116 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7117 zfs_keys_recv_new, ARRAY_SIZE(zfs_keys_recv_new)); 7118 zfs_ioctl_register("load-key", ZFS_IOC_LOAD_KEY, 7119 zfs_ioc_load_key, zfs_secpolicy_load_key, 7120 DATASET_NAME, POOL_CHECK_SUSPENDED, B_TRUE, B_TRUE, 7121 zfs_keys_load_key, ARRAY_SIZE(zfs_keys_load_key)); 7122 zfs_ioctl_register("unload-key", ZFS_IOC_UNLOAD_KEY, 7123 zfs_ioc_unload_key, zfs_secpolicy_load_key, 7124 DATASET_NAME, POOL_CHECK_SUSPENDED, B_TRUE, B_TRUE, 7125 zfs_keys_unload_key, ARRAY_SIZE(zfs_keys_unload_key)); 7126 zfs_ioctl_register("change-key", ZFS_IOC_CHANGE_KEY, 7127 zfs_ioc_change_key, zfs_secpolicy_change_key, 7128 DATASET_NAME, POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, 7129 B_TRUE, B_TRUE, zfs_keys_change_key, 7130 ARRAY_SIZE(zfs_keys_change_key)); 7131 7132 zfs_ioctl_register("sync", ZFS_IOC_POOL_SYNC, 7133 zfs_ioc_pool_sync, zfs_secpolicy_none, POOL_NAME, 7134 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_FALSE, 7135 zfs_keys_pool_sync, ARRAY_SIZE(zfs_keys_pool_sync)); 7136 zfs_ioctl_register("reopen", ZFS_IOC_POOL_REOPEN, zfs_ioc_pool_reopen, 7137 zfs_secpolicy_config, POOL_NAME, POOL_CHECK_SUSPENDED, B_TRUE, 7138 B_TRUE, zfs_keys_pool_reopen, ARRAY_SIZE(zfs_keys_pool_reopen)); 7139 7140 zfs_ioctl_register("channel_program", ZFS_IOC_CHANNEL_PROGRAM, 7141 zfs_ioc_channel_program, zfs_secpolicy_config, 7142 POOL_NAME, POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, 7143 B_TRUE, zfs_keys_channel_program, 7144 ARRAY_SIZE(zfs_keys_channel_program)); 7145 7146 zfs_ioctl_register("redact", ZFS_IOC_REDACT, 7147 zfs_ioc_redact, zfs_secpolicy_config, DATASET_NAME, 7148 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7149 zfs_keys_redact, ARRAY_SIZE(zfs_keys_redact)); 7150 7151 zfs_ioctl_register("zpool_checkpoint", ZFS_IOC_POOL_CHECKPOINT, 7152 zfs_ioc_pool_checkpoint, zfs_secpolicy_config, POOL_NAME, 7153 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7154 zfs_keys_pool_checkpoint, ARRAY_SIZE(zfs_keys_pool_checkpoint)); 7155 7156 zfs_ioctl_register("zpool_discard_checkpoint", 7157 ZFS_IOC_POOL_DISCARD_CHECKPOINT, zfs_ioc_pool_discard_checkpoint, 7158 zfs_secpolicy_config, POOL_NAME, 7159 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7160 zfs_keys_pool_discard_checkpoint, 7161 ARRAY_SIZE(zfs_keys_pool_discard_checkpoint)); 7162 7163 zfs_ioctl_register("initialize", ZFS_IOC_POOL_INITIALIZE, 7164 zfs_ioc_pool_initialize, zfs_secpolicy_config, POOL_NAME, 7165 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7166 zfs_keys_pool_initialize, ARRAY_SIZE(zfs_keys_pool_initialize)); 7167 7168 zfs_ioctl_register("trim", ZFS_IOC_POOL_TRIM, 7169 zfs_ioc_pool_trim, zfs_secpolicy_config, POOL_NAME, 7170 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_TRUE, B_TRUE, 7171 zfs_keys_pool_trim, ARRAY_SIZE(zfs_keys_pool_trim)); 7172 7173 zfs_ioctl_register("wait", ZFS_IOC_WAIT, 7174 zfs_ioc_wait, zfs_secpolicy_none, POOL_NAME, 7175 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_FALSE, 7176 zfs_keys_pool_wait, ARRAY_SIZE(zfs_keys_pool_wait)); 7177 7178 zfs_ioctl_register("wait_fs", ZFS_IOC_WAIT_FS, 7179 zfs_ioc_wait_fs, zfs_secpolicy_none, DATASET_NAME, 7180 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_FALSE, 7181 zfs_keys_fs_wait, ARRAY_SIZE(zfs_keys_fs_wait)); 7182 7183 zfs_ioctl_register("set_bootenv", ZFS_IOC_SET_BOOTENV, 7184 zfs_ioc_set_bootenv, zfs_secpolicy_config, POOL_NAME, 7185 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_TRUE, 7186 zfs_keys_set_bootenv, ARRAY_SIZE(zfs_keys_set_bootenv)); 7187 7188 zfs_ioctl_register("get_bootenv", ZFS_IOC_GET_BOOTENV, 7189 zfs_ioc_get_bootenv, zfs_secpolicy_none, POOL_NAME, 7190 POOL_CHECK_SUSPENDED, B_FALSE, B_TRUE, 7191 zfs_keys_get_bootenv, ARRAY_SIZE(zfs_keys_get_bootenv)); 7192 7193 zfs_ioctl_register("zpool_vdev_get_props", ZFS_IOC_VDEV_GET_PROPS, 7194 zfs_ioc_vdev_get_props, zfs_secpolicy_read, POOL_NAME, 7195 POOL_CHECK_NONE, B_FALSE, B_FALSE, zfs_keys_vdev_get_props, 7196 ARRAY_SIZE(zfs_keys_vdev_get_props)); 7197 7198 zfs_ioctl_register("zpool_vdev_set_props", ZFS_IOC_VDEV_SET_PROPS, 7199 zfs_ioc_vdev_set_props, zfs_secpolicy_config, POOL_NAME, 7200 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY, B_FALSE, B_FALSE, 7201 zfs_keys_vdev_set_props, ARRAY_SIZE(zfs_keys_vdev_set_props)); 7202 7203 /* IOCTLS that use the legacy function signature */ 7204 7205 zfs_ioctl_register_legacy(ZFS_IOC_POOL_FREEZE, zfs_ioc_pool_freeze, 7206 zfs_secpolicy_config, NO_NAME, B_FALSE, POOL_CHECK_READONLY); 7207 7208 zfs_ioctl_register_pool(ZFS_IOC_POOL_CREATE, zfs_ioc_pool_create, 7209 zfs_secpolicy_config, B_TRUE, POOL_CHECK_NONE); 7210 zfs_ioctl_register_pool_modify(ZFS_IOC_POOL_SCAN, 7211 zfs_ioc_pool_scan); 7212 zfs_ioctl_register_pool_modify(ZFS_IOC_POOL_UPGRADE, 7213 zfs_ioc_pool_upgrade); 7214 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_ADD, 7215 zfs_ioc_vdev_add); 7216 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_REMOVE, 7217 zfs_ioc_vdev_remove); 7218 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_SET_STATE, 7219 zfs_ioc_vdev_set_state); 7220 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_ATTACH, 7221 zfs_ioc_vdev_attach); 7222 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_DETACH, 7223 zfs_ioc_vdev_detach); 7224 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_SETPATH, 7225 zfs_ioc_vdev_setpath); 7226 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_SETFRU, 7227 zfs_ioc_vdev_setfru); 7228 zfs_ioctl_register_pool_modify(ZFS_IOC_POOL_SET_PROPS, 7229 zfs_ioc_pool_set_props); 7230 zfs_ioctl_register_pool_modify(ZFS_IOC_VDEV_SPLIT, 7231 zfs_ioc_vdev_split); 7232 zfs_ioctl_register_pool_modify(ZFS_IOC_POOL_REGUID, 7233 zfs_ioc_pool_reguid); 7234 7235 zfs_ioctl_register_pool_meta(ZFS_IOC_POOL_CONFIGS, 7236 zfs_ioc_pool_configs, zfs_secpolicy_none); 7237 zfs_ioctl_register_pool_meta(ZFS_IOC_POOL_TRYIMPORT, 7238 zfs_ioc_pool_tryimport, zfs_secpolicy_config); 7239 zfs_ioctl_register_pool_meta(ZFS_IOC_INJECT_FAULT, 7240 zfs_ioc_inject_fault, zfs_secpolicy_inject); 7241 zfs_ioctl_register_pool_meta(ZFS_IOC_CLEAR_FAULT, 7242 zfs_ioc_clear_fault, zfs_secpolicy_inject); 7243 zfs_ioctl_register_pool_meta(ZFS_IOC_INJECT_LIST_NEXT, 7244 zfs_ioc_inject_list_next, zfs_secpolicy_inject); 7245 7246 /* 7247 * pool destroy, and export don't log the history as part of 7248 * zfsdev_ioctl, but rather zfs_ioc_pool_export 7249 * does the logging of those commands. 7250 */ 7251 zfs_ioctl_register_pool(ZFS_IOC_POOL_DESTROY, zfs_ioc_pool_destroy, 7252 zfs_secpolicy_config, B_FALSE, POOL_CHECK_SUSPENDED); 7253 zfs_ioctl_register_pool(ZFS_IOC_POOL_EXPORT, zfs_ioc_pool_export, 7254 zfs_secpolicy_config, B_FALSE, POOL_CHECK_SUSPENDED); 7255 7256 zfs_ioctl_register_pool(ZFS_IOC_POOL_STATS, zfs_ioc_pool_stats, 7257 zfs_secpolicy_read, B_FALSE, POOL_CHECK_NONE); 7258 zfs_ioctl_register_pool(ZFS_IOC_POOL_GET_PROPS, zfs_ioc_pool_get_props, 7259 zfs_secpolicy_read, B_FALSE, POOL_CHECK_NONE); 7260 7261 zfs_ioctl_register_pool(ZFS_IOC_ERROR_LOG, zfs_ioc_error_log, 7262 zfs_secpolicy_inject, B_FALSE, POOL_CHECK_SUSPENDED); 7263 zfs_ioctl_register_pool(ZFS_IOC_DSOBJ_TO_DSNAME, 7264 zfs_ioc_dsobj_to_dsname, 7265 zfs_secpolicy_diff, B_FALSE, POOL_CHECK_SUSPENDED); 7266 zfs_ioctl_register_pool(ZFS_IOC_POOL_GET_HISTORY, 7267 zfs_ioc_pool_get_history, 7268 zfs_secpolicy_config, B_FALSE, POOL_CHECK_SUSPENDED); 7269 7270 zfs_ioctl_register_pool(ZFS_IOC_POOL_IMPORT, zfs_ioc_pool_import, 7271 zfs_secpolicy_config, B_TRUE, POOL_CHECK_NONE); 7272 7273 zfs_ioctl_register_pool(ZFS_IOC_CLEAR, zfs_ioc_clear, 7274 zfs_secpolicy_config, B_TRUE, POOL_CHECK_READONLY); 7275 7276 zfs_ioctl_register_dataset_read(ZFS_IOC_SPACE_WRITTEN, 7277 zfs_ioc_space_written); 7278 zfs_ioctl_register_dataset_read(ZFS_IOC_OBJSET_RECVD_PROPS, 7279 zfs_ioc_objset_recvd_props); 7280 zfs_ioctl_register_dataset_read(ZFS_IOC_NEXT_OBJ, 7281 zfs_ioc_next_obj); 7282 zfs_ioctl_register_dataset_read(ZFS_IOC_GET_FSACL, 7283 zfs_ioc_get_fsacl); 7284 zfs_ioctl_register_dataset_read(ZFS_IOC_OBJSET_STATS, 7285 zfs_ioc_objset_stats); 7286 zfs_ioctl_register_dataset_read(ZFS_IOC_OBJSET_ZPLPROPS, 7287 zfs_ioc_objset_zplprops); 7288 zfs_ioctl_register_dataset_read(ZFS_IOC_DATASET_LIST_NEXT, 7289 zfs_ioc_dataset_list_next); 7290 zfs_ioctl_register_dataset_read(ZFS_IOC_SNAPSHOT_LIST_NEXT, 7291 zfs_ioc_snapshot_list_next); 7292 zfs_ioctl_register_dataset_read(ZFS_IOC_SEND_PROGRESS, 7293 zfs_ioc_send_progress); 7294 7295 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_DIFF, 7296 zfs_ioc_diff, zfs_secpolicy_diff); 7297 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_OBJ_TO_STATS, 7298 zfs_ioc_obj_to_stats, zfs_secpolicy_diff); 7299 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_OBJ_TO_PATH, 7300 zfs_ioc_obj_to_path, zfs_secpolicy_diff); 7301 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_USERSPACE_ONE, 7302 zfs_ioc_userspace_one, zfs_secpolicy_userspace_one); 7303 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_USERSPACE_MANY, 7304 zfs_ioc_userspace_many, zfs_secpolicy_userspace_many); 7305 zfs_ioctl_register_dataset_read_secpolicy(ZFS_IOC_SEND, 7306 zfs_ioc_send, zfs_secpolicy_send); 7307 7308 zfs_ioctl_register_dataset_modify(ZFS_IOC_SET_PROP, zfs_ioc_set_prop, 7309 zfs_secpolicy_none); 7310 zfs_ioctl_register_dataset_modify(ZFS_IOC_DESTROY, zfs_ioc_destroy, 7311 zfs_secpolicy_destroy); 7312 zfs_ioctl_register_dataset_modify(ZFS_IOC_RENAME, zfs_ioc_rename, 7313 zfs_secpolicy_rename); 7314 zfs_ioctl_register_dataset_modify(ZFS_IOC_RECV, zfs_ioc_recv, 7315 zfs_secpolicy_recv); 7316 zfs_ioctl_register_dataset_modify(ZFS_IOC_PROMOTE, zfs_ioc_promote, 7317 zfs_secpolicy_promote); 7318 zfs_ioctl_register_dataset_modify(ZFS_IOC_INHERIT_PROP, 7319 zfs_ioc_inherit_prop, zfs_secpolicy_inherit_prop); 7320 zfs_ioctl_register_dataset_modify(ZFS_IOC_SET_FSACL, zfs_ioc_set_fsacl, 7321 zfs_secpolicy_set_fsacl); 7322 7323 zfs_ioctl_register_dataset_nolog(ZFS_IOC_SHARE, zfs_ioc_share, 7324 zfs_secpolicy_share, POOL_CHECK_NONE); 7325 zfs_ioctl_register_dataset_nolog(ZFS_IOC_SMB_ACL, zfs_ioc_smb_acl, 7326 zfs_secpolicy_smb_acl, POOL_CHECK_NONE); 7327 zfs_ioctl_register_dataset_nolog(ZFS_IOC_USERSPACE_UPGRADE, 7328 zfs_ioc_userspace_upgrade, zfs_secpolicy_userspace_upgrade, 7329 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY); 7330 zfs_ioctl_register_dataset_nolog(ZFS_IOC_TMP_SNAPSHOT, 7331 zfs_ioc_tmp_snapshot, zfs_secpolicy_tmp_snapshot, 7332 POOL_CHECK_SUSPENDED | POOL_CHECK_READONLY); 7333 7334 zfs_ioctl_register_legacy(ZFS_IOC_EVENTS_NEXT, zfs_ioc_events_next, 7335 zfs_secpolicy_config, NO_NAME, B_FALSE, POOL_CHECK_NONE); 7336 zfs_ioctl_register_legacy(ZFS_IOC_EVENTS_CLEAR, zfs_ioc_events_clear, 7337 zfs_secpolicy_config, NO_NAME, B_FALSE, POOL_CHECK_NONE); 7338 zfs_ioctl_register_legacy(ZFS_IOC_EVENTS_SEEK, zfs_ioc_events_seek, 7339 zfs_secpolicy_config, NO_NAME, B_FALSE, POOL_CHECK_NONE); 7340 7341 zfs_ioctl_init_os(); 7342 } 7343 7344 /* 7345 * Verify that for non-legacy ioctls the input nvlist 7346 * pairs match against the expected input. 7347 * 7348 * Possible errors are: 7349 * ZFS_ERR_IOC_ARG_UNAVAIL An unrecognized nvpair was encountered 7350 * ZFS_ERR_IOC_ARG_REQUIRED A required nvpair is missing 7351 * ZFS_ERR_IOC_ARG_BADTYPE Invalid type for nvpair 7352 */ 7353 static int 7354 zfs_check_input_nvpairs(nvlist_t *innvl, const zfs_ioc_vec_t *vec) 7355 { 7356 const zfs_ioc_key_t *nvl_keys = vec->zvec_nvl_keys; 7357 boolean_t required_keys_found = B_FALSE; 7358 7359 /* 7360 * examine each input pair 7361 */ 7362 for (nvpair_t *pair = nvlist_next_nvpair(innvl, NULL); 7363 pair != NULL; pair = nvlist_next_nvpair(innvl, pair)) { 7364 char *name = nvpair_name(pair); 7365 data_type_t type = nvpair_type(pair); 7366 boolean_t identified = B_FALSE; 7367 7368 /* 7369 * check pair against the documented names and type 7370 */ 7371 for (int k = 0; k < vec->zvec_nvl_key_count; k++) { 7372 /* if not a wild card name, check for an exact match */ 7373 if ((nvl_keys[k].zkey_flags & ZK_WILDCARDLIST) == 0 && 7374 strcmp(nvl_keys[k].zkey_name, name) != 0) 7375 continue; 7376 7377 identified = B_TRUE; 7378 7379 if (nvl_keys[k].zkey_type != DATA_TYPE_ANY && 7380 nvl_keys[k].zkey_type != type) { 7381 return (SET_ERROR(ZFS_ERR_IOC_ARG_BADTYPE)); 7382 } 7383 7384 if (nvl_keys[k].zkey_flags & ZK_OPTIONAL) 7385 continue; 7386 7387 required_keys_found = B_TRUE; 7388 break; 7389 } 7390 7391 /* allow an 'optional' key, everything else is invalid */ 7392 if (!identified && 7393 (strcmp(name, "optional") != 0 || 7394 type != DATA_TYPE_NVLIST)) { 7395 return (SET_ERROR(ZFS_ERR_IOC_ARG_UNAVAIL)); 7396 } 7397 } 7398 7399 /* verify that all required keys were found */ 7400 for (int k = 0; k < vec->zvec_nvl_key_count; k++) { 7401 if (nvl_keys[k].zkey_flags & ZK_OPTIONAL) 7402 continue; 7403 7404 if (nvl_keys[k].zkey_flags & ZK_WILDCARDLIST) { 7405 /* at least one non-optional key is expected here */ 7406 if (!required_keys_found) 7407 return (SET_ERROR(ZFS_ERR_IOC_ARG_REQUIRED)); 7408 continue; 7409 } 7410 7411 if (!nvlist_exists(innvl, nvl_keys[k].zkey_name)) 7412 return (SET_ERROR(ZFS_ERR_IOC_ARG_REQUIRED)); 7413 } 7414 7415 return (0); 7416 } 7417 7418 static int 7419 pool_status_check(const char *name, zfs_ioc_namecheck_t type, 7420 zfs_ioc_poolcheck_t check) 7421 { 7422 spa_t *spa; 7423 int error; 7424 7425 ASSERT(type == POOL_NAME || type == DATASET_NAME || 7426 type == ENTITY_NAME); 7427 7428 if (check & POOL_CHECK_NONE) 7429 return (0); 7430 7431 error = spa_open(name, &spa, FTAG); 7432 if (error == 0) { 7433 if ((check & POOL_CHECK_SUSPENDED) && spa_suspended(spa)) 7434 error = SET_ERROR(EAGAIN); 7435 else if ((check & POOL_CHECK_READONLY) && !spa_writeable(spa)) 7436 error = SET_ERROR(EROFS); 7437 spa_close(spa, FTAG); 7438 } 7439 return (error); 7440 } 7441 7442 int 7443 zfsdev_getminor(zfs_file_t *fp, minor_t *minorp) 7444 { 7445 zfsdev_state_t *zs, *fpd; 7446 7447 ASSERT(!MUTEX_HELD(&zfsdev_state_lock)); 7448 7449 fpd = zfs_file_private(fp); 7450 if (fpd == NULL) 7451 return (SET_ERROR(EBADF)); 7452 7453 mutex_enter(&zfsdev_state_lock); 7454 7455 for (zs = zfsdev_state_list; zs != NULL; zs = zs->zs_next) { 7456 7457 if (zs->zs_minor == -1) 7458 continue; 7459 7460 if (fpd == zs) { 7461 *minorp = fpd->zs_minor; 7462 mutex_exit(&zfsdev_state_lock); 7463 return (0); 7464 } 7465 } 7466 7467 mutex_exit(&zfsdev_state_lock); 7468 7469 return (SET_ERROR(EBADF)); 7470 } 7471 7472 void * 7473 zfsdev_get_state(minor_t minor, enum zfsdev_state_type which) 7474 { 7475 zfsdev_state_t *zs; 7476 7477 for (zs = zfsdev_state_list; zs != NULL; zs = zs->zs_next) { 7478 if (zs->zs_minor == minor) { 7479 smp_rmb(); 7480 switch (which) { 7481 case ZST_ONEXIT: 7482 return (zs->zs_onexit); 7483 case ZST_ZEVENT: 7484 return (zs->zs_zevent); 7485 case ZST_ALL: 7486 return (zs); 7487 } 7488 } 7489 } 7490 7491 return (NULL); 7492 } 7493 7494 /* 7495 * Find a free minor number. The zfsdev_state_list is expected to 7496 * be short since it is only a list of currently open file handles. 7497 */ 7498 static minor_t 7499 zfsdev_minor_alloc(void) 7500 { 7501 static minor_t last_minor = 0; 7502 minor_t m; 7503 7504 ASSERT(MUTEX_HELD(&zfsdev_state_lock)); 7505 7506 for (m = last_minor + 1; m != last_minor; m++) { 7507 if (m > ZFSDEV_MAX_MINOR) 7508 m = 1; 7509 if (zfsdev_get_state(m, ZST_ALL) == NULL) { 7510 last_minor = m; 7511 return (m); 7512 } 7513 } 7514 7515 return (0); 7516 } 7517 7518 int 7519 zfsdev_state_init(void *priv) 7520 { 7521 zfsdev_state_t *zs, *zsprev = NULL; 7522 minor_t minor; 7523 boolean_t newzs = B_FALSE; 7524 7525 ASSERT(MUTEX_HELD(&zfsdev_state_lock)); 7526 7527 minor = zfsdev_minor_alloc(); 7528 if (minor == 0) 7529 return (SET_ERROR(ENXIO)); 7530 7531 for (zs = zfsdev_state_list; zs != NULL; zs = zs->zs_next) { 7532 if (zs->zs_minor == -1) 7533 break; 7534 zsprev = zs; 7535 } 7536 7537 if (!zs) { 7538 zs = kmem_zalloc(sizeof (zfsdev_state_t), KM_SLEEP); 7539 newzs = B_TRUE; 7540 } 7541 7542 zfsdev_private_set_state(priv, zs); 7543 7544 zfs_onexit_init((zfs_onexit_t **)&zs->zs_onexit); 7545 zfs_zevent_init((zfs_zevent_t **)&zs->zs_zevent); 7546 7547 /* 7548 * In order to provide for lock-free concurrent read access 7549 * to the minor list in zfsdev_get_state(), new entries 7550 * must be completely written before linking them into the 7551 * list whereas existing entries are already linked; the last 7552 * operation must be updating zs_minor (from -1 to the new 7553 * value). 7554 */ 7555 if (newzs) { 7556 zs->zs_minor = minor; 7557 membar_producer(); 7558 zsprev->zs_next = zs; 7559 } else { 7560 membar_producer(); 7561 zs->zs_minor = minor; 7562 } 7563 7564 return (0); 7565 } 7566 7567 void 7568 zfsdev_state_destroy(void *priv) 7569 { 7570 zfsdev_state_t *zs = zfsdev_private_get_state(priv); 7571 7572 ASSERT(zs != NULL); 7573 ASSERT3S(zs->zs_minor, >, 0); 7574 7575 /* 7576 * The last reference to this zfsdev file descriptor is being dropped. 7577 * We don't have to worry about lookup grabbing this state object, and 7578 * zfsdev_state_init() will not try to reuse this object until it is 7579 * invalidated by setting zs_minor to -1. Invalidation must be done 7580 * last, with a memory barrier to ensure ordering. This lets us avoid 7581 * taking the global zfsdev state lock around destruction. 7582 */ 7583 zfs_onexit_destroy(zs->zs_onexit); 7584 zfs_zevent_destroy(zs->zs_zevent); 7585 zs->zs_onexit = NULL; 7586 zs->zs_zevent = NULL; 7587 membar_producer(); 7588 zs->zs_minor = -1; 7589 } 7590 7591 long 7592 zfsdev_ioctl_common(uint_t vecnum, zfs_cmd_t *zc, int flag) 7593 { 7594 int error, cmd; 7595 const zfs_ioc_vec_t *vec; 7596 char *saved_poolname = NULL; 7597 uint64_t max_nvlist_src_size; 7598 size_t saved_poolname_len = 0; 7599 nvlist_t *innvl = NULL; 7600 fstrans_cookie_t cookie; 7601 hrtime_t start_time = gethrtime(); 7602 7603 cmd = vecnum; 7604 error = 0; 7605 if (vecnum >= sizeof (zfs_ioc_vec) / sizeof (zfs_ioc_vec[0])) 7606 return (SET_ERROR(ZFS_ERR_IOC_CMD_UNAVAIL)); 7607 7608 vec = &zfs_ioc_vec[vecnum]; 7609 7610 /* 7611 * The registered ioctl list may be sparse, verify that either 7612 * a normal or legacy handler are registered. 7613 */ 7614 if (vec->zvec_func == NULL && vec->zvec_legacy_func == NULL) 7615 return (SET_ERROR(ZFS_ERR_IOC_CMD_UNAVAIL)); 7616 7617 zc->zc_iflags = flag & FKIOCTL; 7618 max_nvlist_src_size = zfs_max_nvlist_src_size_os(); 7619 if (zc->zc_nvlist_src_size > max_nvlist_src_size) { 7620 /* 7621 * Make sure the user doesn't pass in an insane value for 7622 * zc_nvlist_src_size. We have to check, since we will end 7623 * up allocating that much memory inside of get_nvlist(). This 7624 * prevents a nefarious user from allocating tons of kernel 7625 * memory. 7626 * 7627 * Also, we return EINVAL instead of ENOMEM here. The reason 7628 * being that returning ENOMEM from an ioctl() has a special 7629 * connotation; that the user's size value is too small and 7630 * needs to be expanded to hold the nvlist. See 7631 * zcmd_expand_dst_nvlist() for details. 7632 */ 7633 error = SET_ERROR(EINVAL); /* User's size too big */ 7634 7635 } else if (zc->zc_nvlist_src_size != 0) { 7636 error = get_nvlist(zc->zc_nvlist_src, zc->zc_nvlist_src_size, 7637 zc->zc_iflags, &innvl); 7638 if (error != 0) 7639 goto out; 7640 } 7641 7642 /* 7643 * Ensure that all pool/dataset names are valid before we pass down to 7644 * the lower layers. 7645 */ 7646 zc->zc_name[sizeof (zc->zc_name) - 1] = '\0'; 7647 switch (vec->zvec_namecheck) { 7648 case POOL_NAME: 7649 if (pool_namecheck(zc->zc_name, NULL, NULL) != 0) 7650 error = SET_ERROR(EINVAL); 7651 else 7652 error = pool_status_check(zc->zc_name, 7653 vec->zvec_namecheck, vec->zvec_pool_check); 7654 break; 7655 7656 case DATASET_NAME: 7657 if (dataset_namecheck(zc->zc_name, NULL, NULL) != 0) 7658 error = SET_ERROR(EINVAL); 7659 else 7660 error = pool_status_check(zc->zc_name, 7661 vec->zvec_namecheck, vec->zvec_pool_check); 7662 break; 7663 7664 case ENTITY_NAME: 7665 if (entity_namecheck(zc->zc_name, NULL, NULL) != 0) { 7666 error = SET_ERROR(EINVAL); 7667 } else { 7668 error = pool_status_check(zc->zc_name, 7669 vec->zvec_namecheck, vec->zvec_pool_check); 7670 } 7671 break; 7672 7673 case NO_NAME: 7674 break; 7675 } 7676 /* 7677 * Ensure that all input pairs are valid before we pass them down 7678 * to the lower layers. 7679 * 7680 * The vectored functions can use fnvlist_lookup_{type} for any 7681 * required pairs since zfs_check_input_nvpairs() confirmed that 7682 * they exist and are of the correct type. 7683 */ 7684 if (error == 0 && vec->zvec_func != NULL) { 7685 error = zfs_check_input_nvpairs(innvl, vec); 7686 if (error != 0) 7687 goto out; 7688 } 7689 7690 if (error == 0) { 7691 cookie = spl_fstrans_mark(); 7692 error = vec->zvec_secpolicy(zc, innvl, CRED()); 7693 spl_fstrans_unmark(cookie); 7694 } 7695 7696 if (error != 0) 7697 goto out; 7698 7699 /* legacy ioctls can modify zc_name */ 7700 /* 7701 * Can't use kmem_strdup() as we might truncate the string and 7702 * kmem_strfree() would then free with incorrect size. 7703 */ 7704 saved_poolname_len = strlen(zc->zc_name) + 1; 7705 saved_poolname = kmem_alloc(saved_poolname_len, KM_SLEEP); 7706 7707 strlcpy(saved_poolname, zc->zc_name, saved_poolname_len); 7708 saved_poolname[strcspn(saved_poolname, "/@#")] = '\0'; 7709 7710 if (vec->zvec_func != NULL) { 7711 nvlist_t *outnvl; 7712 int puterror = 0; 7713 spa_t *spa; 7714 nvlist_t *lognv = NULL; 7715 7716 ASSERT(vec->zvec_legacy_func == NULL); 7717 7718 /* 7719 * Add the innvl to the lognv before calling the func, 7720 * in case the func changes the innvl. 7721 */ 7722 if (vec->zvec_allow_log) { 7723 lognv = fnvlist_alloc(); 7724 fnvlist_add_string(lognv, ZPOOL_HIST_IOCTL, 7725 vec->zvec_name); 7726 if (!nvlist_empty(innvl)) { 7727 fnvlist_add_nvlist(lognv, ZPOOL_HIST_INPUT_NVL, 7728 innvl); 7729 } 7730 } 7731 7732 outnvl = fnvlist_alloc(); 7733 cookie = spl_fstrans_mark(); 7734 error = vec->zvec_func(zc->zc_name, innvl, outnvl); 7735 spl_fstrans_unmark(cookie); 7736 7737 /* 7738 * Some commands can partially execute, modify state, and still 7739 * return an error. In these cases, attempt to record what 7740 * was modified. 7741 */ 7742 if ((error == 0 || 7743 (cmd == ZFS_IOC_CHANNEL_PROGRAM && error != EINVAL)) && 7744 vec->zvec_allow_log && 7745 spa_open(zc->zc_name, &spa, FTAG) == 0) { 7746 if (!nvlist_empty(outnvl)) { 7747 size_t out_size = fnvlist_size(outnvl); 7748 if (out_size > zfs_history_output_max) { 7749 fnvlist_add_int64(lognv, 7750 ZPOOL_HIST_OUTPUT_SIZE, out_size); 7751 } else { 7752 fnvlist_add_nvlist(lognv, 7753 ZPOOL_HIST_OUTPUT_NVL, outnvl); 7754 } 7755 } 7756 if (error != 0) { 7757 fnvlist_add_int64(lognv, ZPOOL_HIST_ERRNO, 7758 error); 7759 } 7760 fnvlist_add_int64(lognv, ZPOOL_HIST_ELAPSED_NS, 7761 gethrtime() - start_time); 7762 (void) spa_history_log_nvl(spa, lognv); 7763 spa_close(spa, FTAG); 7764 } 7765 fnvlist_free(lognv); 7766 7767 if (!nvlist_empty(outnvl) || zc->zc_nvlist_dst_size != 0) { 7768 int smusherror = 0; 7769 if (vec->zvec_smush_outnvlist) { 7770 smusherror = nvlist_smush(outnvl, 7771 zc->zc_nvlist_dst_size); 7772 } 7773 if (smusherror == 0) 7774 puterror = put_nvlist(zc, outnvl); 7775 } 7776 7777 if (puterror != 0) 7778 error = puterror; 7779 7780 nvlist_free(outnvl); 7781 } else { 7782 cookie = spl_fstrans_mark(); 7783 error = vec->zvec_legacy_func(zc); 7784 spl_fstrans_unmark(cookie); 7785 } 7786 7787 out: 7788 nvlist_free(innvl); 7789 if (error == 0 && vec->zvec_allow_log) { 7790 char *s = tsd_get(zfs_allow_log_key); 7791 if (s != NULL) 7792 kmem_strfree(s); 7793 (void) tsd_set(zfs_allow_log_key, kmem_strdup(saved_poolname)); 7794 } 7795 if (saved_poolname != NULL) 7796 kmem_free(saved_poolname, saved_poolname_len); 7797 7798 return (error); 7799 } 7800 7801 int 7802 zfs_kmod_init(void) 7803 { 7804 int error; 7805 7806 if ((error = zvol_init()) != 0) 7807 return (error); 7808 7809 spa_init(SPA_MODE_READ | SPA_MODE_WRITE); 7810 zfs_init(); 7811 7812 zfs_ioctl_init(); 7813 7814 mutex_init(&zfsdev_state_lock, NULL, MUTEX_DEFAULT, NULL); 7815 zfsdev_state_list = kmem_zalloc(sizeof (zfsdev_state_t), KM_SLEEP); 7816 zfsdev_state_list->zs_minor = -1; 7817 7818 if ((error = zfsdev_attach()) != 0) 7819 goto out; 7820 7821 tsd_create(&zfs_fsyncer_key, NULL); 7822 tsd_create(&rrw_tsd_key, rrw_tsd_destroy); 7823 tsd_create(&zfs_allow_log_key, zfs_allow_log_destroy); 7824 7825 return (0); 7826 out: 7827 zfs_fini(); 7828 spa_fini(); 7829 zvol_fini(); 7830 7831 return (error); 7832 } 7833 7834 void 7835 zfs_kmod_fini(void) 7836 { 7837 zfsdev_state_t *zs, *zsnext = NULL; 7838 7839 zfsdev_detach(); 7840 7841 mutex_destroy(&zfsdev_state_lock); 7842 7843 for (zs = zfsdev_state_list; zs != NULL; zs = zsnext) { 7844 zsnext = zs->zs_next; 7845 if (zs->zs_onexit) 7846 zfs_onexit_destroy(zs->zs_onexit); 7847 if (zs->zs_zevent) 7848 zfs_zevent_destroy(zs->zs_zevent); 7849 kmem_free(zs, sizeof (zfsdev_state_t)); 7850 } 7851 7852 zfs_ereport_taskq_fini(); /* run before zfs_fini() on Linux */ 7853 zfs_fini(); 7854 spa_fini(); 7855 zvol_fini(); 7856 7857 tsd_destroy(&zfs_fsyncer_key); 7858 tsd_destroy(&rrw_tsd_key); 7859 tsd_destroy(&zfs_allow_log_key); 7860 } 7861 7862 ZFS_MODULE_PARAM(zfs, zfs_, max_nvlist_src_size, ULONG, ZMOD_RW, 7863 "Maximum size in bytes allowed for src nvlist passed with ZFS ioctls"); 7864 7865 ZFS_MODULE_PARAM(zfs, zfs_, history_output_max, ULONG, ZMOD_RW, 7866 "Maximum size in bytes of ZFS ioctl output that will be logged"); 7867