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 2007 Sun Microsystems, Inc. All rights reserved. 24 * Use is subject to license terms. 25 */ 26 27 #pragma ident "%Z%%M% %I% %E% SMI" 28 29 /* 30 * Routines to manage ZFS mounts. We separate all the nasty routines that have 31 * to deal with the OS. The following functions are the main entry points -- 32 * they are used by mount and unmount and when changing a filesystem's 33 * mountpoint. 34 * 35 * zfs_is_mounted() 36 * zfs_mount() 37 * zfs_unmount() 38 * zfs_unmountall() 39 * 40 * This file also contains the functions used to manage sharing filesystems via 41 * NFS and iSCSI: 42 * 43 * zfs_is_shared() 44 * zfs_share() 45 * zfs_unshare() 46 * 47 * zfs_is_shared_nfs() 48 * zfs_is_shared_smb() 49 * zfs_is_shared_iscsi() 50 * zfs_share_proto() 51 * zfs_shareall(); 52 * zfs_share_iscsi() 53 * zfs_unshare_nfs() 54 * zfs_unshare_smb() 55 * zfs_unshareall_nfs() 56 * zfs_unshareall_smb() 57 * zfs_unshareall() 58 * zfs_unshareall_bypath() 59 * zfs_unshare_iscsi() 60 * 61 * The following functions are available for pool consumers, and will 62 * mount/unmount and share/unshare all datasets within pool: 63 * 64 * zpool_enable_datasets() 65 * zpool_disable_datasets() 66 */ 67 68 #include <dirent.h> 69 #include <dlfcn.h> 70 #include <errno.h> 71 #include <libgen.h> 72 #include <libintl.h> 73 #include <stdio.h> 74 #include <stdlib.h> 75 #include <strings.h> 76 #include <unistd.h> 77 #include <zone.h> 78 #include <sys/mntent.h> 79 #include <sys/mnttab.h> 80 #include <sys/mount.h> 81 #include <sys/stat.h> 82 83 #include <libzfs.h> 84 85 #include "libzfs_impl.h" 86 87 #include <libshare.h> 88 #include <sys/systeminfo.h> 89 #define MAXISALEN 257 /* based on sysinfo(2) man page */ 90 91 static int zfs_share_proto(zfs_handle_t *, zfs_share_proto_t *); 92 zfs_share_type_t zfs_is_shared_proto(zfs_handle_t *, char **, 93 zfs_share_proto_t); 94 95 static int (*iscsitgt_zfs_share)(const char *); 96 static int (*iscsitgt_zfs_unshare)(const char *); 97 static int (*iscsitgt_zfs_is_shared)(const char *); 98 static int (*iscsitgt_svc_online)(); 99 100 /* 101 * The share protocols table must be in the same order as the zfs_share_prot_t 102 * enum in libzfs_impl.h 103 */ 104 typedef struct { 105 zfs_prop_t p_prop; 106 char *p_name; 107 int p_share_err; 108 int p_unshare_err; 109 } proto_table_t; 110 111 proto_table_t proto_table[PROTO_END] = { 112 {ZFS_PROP_SHARENFS, "nfs", EZFS_SHARENFSFAILED, EZFS_UNSHARENFSFAILED}, 113 {ZFS_PROP_SHARESMB, "smb", EZFS_SHARESMBFAILED, EZFS_UNSHARESMBFAILED}, 114 }; 115 116 zfs_share_proto_t nfs_only[] = { 117 PROTO_NFS, 118 PROTO_END 119 }; 120 121 zfs_share_proto_t smb_only[] = { 122 PROTO_SMB, 123 PROTO_END 124 }; 125 zfs_share_proto_t share_all_proto[] = { 126 PROTO_NFS, 127 PROTO_SMB, 128 PROTO_END 129 }; 130 131 #pragma init(zfs_iscsi_init) 132 static void 133 zfs_iscsi_init(void) 134 { 135 void *libiscsitgt; 136 137 if ((libiscsitgt = dlopen("/lib/libiscsitgt.so.1", 138 RTLD_LAZY | RTLD_GLOBAL)) == NULL || 139 (iscsitgt_zfs_share = (int (*)(const char *))dlsym(libiscsitgt, 140 "iscsitgt_zfs_share")) == NULL || 141 (iscsitgt_zfs_unshare = (int (*)(const char *))dlsym(libiscsitgt, 142 "iscsitgt_zfs_unshare")) == NULL || 143 (iscsitgt_zfs_is_shared = (int (*)(const char *))dlsym(libiscsitgt, 144 "iscsitgt_zfs_is_shared")) == NULL || 145 (iscsitgt_svc_online = (int (*)(const char *))dlsym(libiscsitgt, 146 "iscsitgt_svc_online")) == NULL) { 147 iscsitgt_zfs_share = NULL; 148 iscsitgt_zfs_unshare = NULL; 149 iscsitgt_zfs_is_shared = NULL; 150 iscsitgt_svc_online = NULL; 151 } 152 } 153 154 /* 155 * Search the sharetab for the given mountpoint and protocol, returning 156 * a zfs_share_type_t value. 157 */ 158 static zfs_share_type_t 159 is_shared(libzfs_handle_t *hdl, const char *mountpoint, zfs_share_proto_t proto) 160 { 161 char buf[MAXPATHLEN], *tab; 162 char *ptr; 163 164 if (hdl->libzfs_sharetab == NULL) 165 return (SHARED_NOT_SHARED); 166 167 (void) fseek(hdl->libzfs_sharetab, 0, SEEK_SET); 168 169 while (fgets(buf, sizeof (buf), hdl->libzfs_sharetab) != NULL) { 170 171 /* the mountpoint is the first entry on each line */ 172 if ((tab = strchr(buf, '\t')) == NULL) 173 continue; 174 175 *tab = '\0'; 176 if (strcmp(buf, mountpoint) == 0) { 177 /* 178 * the protocol field is the third field 179 * skip over second field 180 */ 181 ptr = ++tab; 182 if ((tab = strchr(ptr, '\t')) == NULL) 183 continue; 184 ptr = ++tab; 185 if ((tab = strchr(ptr, '\t')) == NULL) 186 continue; 187 *tab = '\0'; 188 if (strcmp(ptr, 189 proto_table[proto].p_name) == 0) { 190 switch (proto) { 191 case PROTO_NFS: 192 return (SHARED_NFS); 193 case PROTO_SMB: 194 return (SHARED_SMB); 195 default: 196 return (0); 197 } 198 } 199 } 200 } 201 202 return (SHARED_NOT_SHARED); 203 } 204 205 /* 206 * Returns true if the specified directory is empty. If we can't open the 207 * directory at all, return true so that the mount can fail with a more 208 * informative error message. 209 */ 210 static boolean_t 211 dir_is_empty(const char *dirname) 212 { 213 DIR *dirp; 214 struct dirent64 *dp; 215 216 if ((dirp = opendir(dirname)) == NULL) 217 return (B_TRUE); 218 219 while ((dp = readdir64(dirp)) != NULL) { 220 221 if (strcmp(dp->d_name, ".") == 0 || 222 strcmp(dp->d_name, "..") == 0) 223 continue; 224 225 (void) closedir(dirp); 226 return (B_FALSE); 227 } 228 229 (void) closedir(dirp); 230 return (B_TRUE); 231 } 232 233 /* 234 * Checks to see if the mount is active. If the filesystem is mounted, we fill 235 * in 'where' with the current mountpoint, and return 1. Otherwise, we return 236 * 0. 237 */ 238 boolean_t 239 is_mounted(libzfs_handle_t *zfs_hdl, const char *special, char **where) 240 { 241 struct mnttab search = { 0 }, entry; 242 243 /* 244 * Search for the entry in /etc/mnttab. We don't bother getting the 245 * mountpoint, as we can just search for the special device. This will 246 * also let us find mounts when the mountpoint is 'legacy'. 247 */ 248 search.mnt_special = (char *)special; 249 search.mnt_fstype = MNTTYPE_ZFS; 250 251 rewind(zfs_hdl->libzfs_mnttab); 252 if (getmntany(zfs_hdl->libzfs_mnttab, &entry, &search) != 0) 253 return (B_FALSE); 254 255 if (where != NULL) 256 *where = zfs_strdup(zfs_hdl, entry.mnt_mountp); 257 258 return (B_TRUE); 259 } 260 261 boolean_t 262 zfs_is_mounted(zfs_handle_t *zhp, char **where) 263 { 264 return (is_mounted(zhp->zfs_hdl, zfs_get_name(zhp), where)); 265 } 266 267 /* 268 * Returns true if the given dataset is mountable, false otherwise. Returns the 269 * mountpoint in 'buf'. 270 */ 271 static boolean_t 272 zfs_is_mountable(zfs_handle_t *zhp, char *buf, size_t buflen, 273 zprop_source_t *source) 274 { 275 char sourceloc[ZFS_MAXNAMELEN]; 276 zprop_source_t sourcetype; 277 278 if (!zfs_prop_valid_for_type(ZFS_PROP_MOUNTPOINT, zhp->zfs_type)) 279 return (B_FALSE); 280 281 verify(zfs_prop_get(zhp, ZFS_PROP_MOUNTPOINT, buf, buflen, 282 &sourcetype, sourceloc, sizeof (sourceloc), B_FALSE) == 0); 283 284 if (strcmp(buf, ZFS_MOUNTPOINT_NONE) == 0 || 285 strcmp(buf, ZFS_MOUNTPOINT_LEGACY) == 0) 286 return (B_FALSE); 287 288 if (!zfs_prop_get_int(zhp, ZFS_PROP_CANMOUNT)) 289 return (B_FALSE); 290 291 if (zfs_prop_get_int(zhp, ZFS_PROP_ZONED) && 292 getzoneid() == GLOBAL_ZONEID) 293 return (B_FALSE); 294 295 if (source) 296 *source = sourcetype; 297 298 return (B_TRUE); 299 } 300 301 /* 302 * Mount the given filesystem. 303 */ 304 int 305 zfs_mount(zfs_handle_t *zhp, const char *options, int flags) 306 { 307 struct stat buf; 308 char mountpoint[ZFS_MAXPROPLEN]; 309 char mntopts[MNT_LINE_MAX]; 310 libzfs_handle_t *hdl = zhp->zfs_hdl; 311 312 if (options == NULL) 313 mntopts[0] = '\0'; 314 else 315 (void) strlcpy(mntopts, options, sizeof (mntopts)); 316 317 if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), NULL)) 318 return (0); 319 320 /* Create the directory if it doesn't already exist */ 321 if (lstat(mountpoint, &buf) != 0) { 322 if (mkdirp(mountpoint, 0755) != 0) { 323 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 324 "failed to create mountpoint")); 325 return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 326 dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 327 mountpoint)); 328 } 329 } 330 331 /* 332 * Determine if the mountpoint is empty. If so, refuse to perform the 333 * mount. We don't perform this check if MS_OVERLAY is specified, which 334 * would defeat the point. We also avoid this check if 'remount' is 335 * specified. 336 */ 337 if ((flags & MS_OVERLAY) == 0 && 338 strstr(mntopts, MNTOPT_REMOUNT) == NULL && 339 !dir_is_empty(mountpoint)) { 340 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 341 "directory is not empty")); 342 return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 343 dgettext(TEXT_DOMAIN, "cannot mount '%s'"), mountpoint)); 344 } 345 346 /* perform the mount */ 347 if (mount(zfs_get_name(zhp), mountpoint, MS_OPTIONSTR | flags, 348 MNTTYPE_ZFS, NULL, 0, mntopts, sizeof (mntopts)) != 0) { 349 /* 350 * Generic errors are nasty, but there are just way too many 351 * from mount(), and they're well-understood. We pick a few 352 * common ones to improve upon. 353 */ 354 if (errno == EBUSY) { 355 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 356 "mountpoint or dataset is busy")); 357 } else if (errno == EPERM) { 358 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 359 "Insufficient privileges")); 360 } else { 361 zfs_error_aux(hdl, strerror(errno)); 362 } 363 364 return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 365 dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 366 zhp->zfs_name)); 367 } 368 369 return (0); 370 } 371 372 /* 373 * Unmount a single filesystem. 374 */ 375 static int 376 unmount_one(libzfs_handle_t *hdl, const char *mountpoint, int flags) 377 { 378 if (umount2(mountpoint, flags) != 0) { 379 zfs_error_aux(hdl, strerror(errno)); 380 return (zfs_error_fmt(hdl, EZFS_UMOUNTFAILED, 381 dgettext(TEXT_DOMAIN, "cannot unmount '%s'"), 382 mountpoint)); 383 } 384 385 return (0); 386 } 387 388 /* 389 * Unmount the given filesystem. 390 */ 391 int 392 zfs_unmount(zfs_handle_t *zhp, const char *mountpoint, int flags) 393 { 394 struct mnttab search = { 0 }, entry; 395 char *mntpt = NULL; 396 397 /* check to see if need to unmount the filesystem */ 398 search.mnt_special = zhp->zfs_name; 399 search.mnt_fstype = MNTTYPE_ZFS; 400 rewind(zhp->zfs_hdl->libzfs_mnttab); 401 if (mountpoint != NULL || ((zfs_get_type(zhp) == ZFS_TYPE_FILESYSTEM) && 402 getmntany(zhp->zfs_hdl->libzfs_mnttab, &entry, &search) == 0)) { 403 404 /* 405 * mountpoint may have come from a call to 406 * getmnt/getmntany if it isn't NULL. If it is NULL, 407 * we know it comes from getmntany which can then get 408 * overwritten later. We strdup it to play it safe. 409 */ 410 if (mountpoint == NULL) 411 mntpt = zfs_strdup(zhp->zfs_hdl, entry.mnt_mountp); 412 else 413 mntpt = zfs_strdup(zhp->zfs_hdl, mountpoint); 414 415 /* 416 * Unshare and unmount the filesystem 417 */ 418 if (zfs_unshare_proto(zhp, mntpt, share_all_proto) != 0) 419 return (-1); 420 421 if (unmount_one(zhp->zfs_hdl, mntpt, flags) != 0) { 422 free(mntpt); 423 (void) zfs_shareall(zhp); 424 return (-1); 425 } 426 free(mntpt); 427 } 428 429 return (0); 430 } 431 432 /* 433 * Unmount this filesystem and any children inheriting the mountpoint property. 434 * To do this, just act like we're changing the mountpoint property, but don't 435 * remount the filesystems afterwards. 436 */ 437 int 438 zfs_unmountall(zfs_handle_t *zhp, int flags) 439 { 440 prop_changelist_t *clp; 441 int ret; 442 443 clp = changelist_gather(zhp, ZFS_PROP_MOUNTPOINT, flags); 444 if (clp == NULL) 445 return (-1); 446 447 ret = changelist_prefix(clp); 448 changelist_free(clp); 449 450 return (ret); 451 } 452 453 boolean_t 454 zfs_is_shared(zfs_handle_t *zhp) 455 { 456 zfs_share_type_t rc = 0; 457 zfs_share_proto_t *curr_proto; 458 459 if (ZFS_IS_VOLUME(zhp)) 460 return (zfs_is_shared_iscsi(zhp)); 461 462 for (curr_proto = share_all_proto; *curr_proto != PROTO_END; 463 curr_proto++) 464 rc |= zfs_is_shared_proto(zhp, NULL, *curr_proto); 465 466 return (rc ? B_TRUE : B_FALSE); 467 } 468 469 int 470 zfs_share(zfs_handle_t *zhp) 471 { 472 if (ZFS_IS_VOLUME(zhp)) 473 return (zfs_share_iscsi(zhp)); 474 475 return (zfs_share_proto(zhp, share_all_proto)); 476 } 477 478 int 479 zfs_unshare(zfs_handle_t *zhp) 480 { 481 if (ZFS_IS_VOLUME(zhp)) 482 return (zfs_unshare_iscsi(zhp)); 483 484 return (zfs_unshareall(zhp)); 485 } 486 487 /* 488 * Check to see if the filesystem is currently shared. 489 */ 490 zfs_share_type_t 491 zfs_is_shared_proto(zfs_handle_t *zhp, char **where, zfs_share_proto_t proto) 492 { 493 char *mountpoint; 494 zfs_share_type_t rc; 495 496 if (!zfs_is_mounted(zhp, &mountpoint)) 497 return (SHARED_NOT_SHARED); 498 499 if (rc = is_shared(zhp->zfs_hdl, mountpoint, proto)) { 500 if (where != NULL) 501 *where = mountpoint; 502 else 503 free(mountpoint); 504 return (rc); 505 } else { 506 free(mountpoint); 507 return (SHARED_NOT_SHARED); 508 } 509 } 510 511 boolean_t 512 zfs_is_shared_nfs(zfs_handle_t *zhp, char **where) 513 { 514 return (zfs_is_shared_proto(zhp, where, 515 PROTO_NFS) != SHARED_NOT_SHARED); 516 } 517 518 boolean_t 519 zfs_is_shared_smb(zfs_handle_t *zhp, char **where) 520 { 521 return (zfs_is_shared_proto(zhp, where, 522 PROTO_SMB) != SHARED_NOT_SHARED); 523 } 524 525 /* 526 * Make sure things will work if libshare isn't installed by using 527 * wrapper functions that check to see that the pointers to functions 528 * initialized in _zfs_init_libshare() are actually present. 529 */ 530 531 static sa_handle_t (*_sa_init)(int); 532 static void (*_sa_fini)(sa_handle_t); 533 static sa_share_t (*_sa_find_share)(sa_handle_t, char *); 534 static int (*_sa_enable_share)(sa_share_t, char *); 535 static int (*_sa_disable_share)(sa_share_t, char *); 536 static char *(*_sa_errorstr)(int); 537 static int (*_sa_parse_legacy_options)(sa_group_t, char *, char *); 538 539 /* 540 * _zfs_init_libshare() 541 * 542 * Find the libshare.so.1 entry points that we use here and save the 543 * values to be used later. This is triggered by the runtime loader. 544 * Make sure the correct ISA version is loaded. 545 */ 546 547 #pragma init(_zfs_init_libshare) 548 static void 549 _zfs_init_libshare(void) 550 { 551 void *libshare; 552 char path[MAXPATHLEN]; 553 char isa[MAXISALEN]; 554 555 #if defined(_LP64) 556 if (sysinfo(SI_ARCHITECTURE_64, isa, MAXISALEN) == -1) 557 isa[0] = '\0'; 558 #else 559 isa[0] = '\0'; 560 #endif 561 (void) snprintf(path, MAXPATHLEN, 562 "/usr/lib/%s/libshare.so.1", isa); 563 564 if ((libshare = dlopen(path, RTLD_LAZY | RTLD_GLOBAL)) != NULL) { 565 _sa_init = (sa_handle_t (*)(int))dlsym(libshare, "sa_init"); 566 _sa_fini = (void (*)(sa_handle_t))dlsym(libshare, "sa_fini"); 567 _sa_find_share = (sa_share_t (*)(sa_handle_t, char *)) 568 dlsym(libshare, "sa_find_share"); 569 _sa_enable_share = (int (*)(sa_share_t, char *))dlsym(libshare, 570 "sa_enable_share"); 571 _sa_disable_share = (int (*)(sa_share_t, char *))dlsym(libshare, 572 "sa_disable_share"); 573 _sa_errorstr = (char *(*)(int))dlsym(libshare, "sa_errorstr"); 574 _sa_parse_legacy_options = (int (*)(sa_group_t, char *, char *)) 575 dlsym(libshare, "sa_parse_legacy_options"); 576 if (_sa_init == NULL || _sa_fini == NULL || 577 _sa_find_share == NULL || _sa_enable_share == NULL || 578 _sa_disable_share == NULL || _sa_errorstr == NULL || 579 _sa_parse_legacy_options == NULL) { 580 _sa_init = NULL; 581 _sa_fini = NULL; 582 _sa_disable_share = NULL; 583 _sa_enable_share = NULL; 584 _sa_errorstr = NULL; 585 _sa_parse_legacy_options = NULL; 586 (void) dlclose(libshare); 587 } 588 } 589 } 590 591 /* 592 * zfs_init_libshare(zhandle, service) 593 * 594 * Initialize the libshare API if it hasn't already been initialized. 595 * In all cases it returns 0 if it succeeded and an error if not. The 596 * service value is which part(s) of the API to initialize and is a 597 * direct map to the libshare sa_init(service) interface. 598 */ 599 600 int 601 zfs_init_libshare(libzfs_handle_t *zhandle, int service) 602 { 603 int ret = SA_OK; 604 605 if (_sa_init == NULL) 606 ret = SA_CONFIG_ERR; 607 608 if (ret == SA_OK && zhandle && zhandle->libzfs_sharehdl == NULL) 609 zhandle->libzfs_sharehdl = _sa_init(service); 610 611 if (ret == SA_OK && zhandle->libzfs_sharehdl == NULL) 612 ret = SA_NO_MEMORY; 613 614 return (ret); 615 } 616 617 /* 618 * zfs_uninit_libshare(zhandle) 619 * 620 * Uninitialize the libshare API if it hasn't already been 621 * uninitialized. It is OK to call multiple times. 622 */ 623 624 void 625 zfs_uninit_libshare(libzfs_handle_t *zhandle) 626 { 627 628 if (zhandle != NULL && zhandle->libzfs_sharehdl != NULL) { 629 if (_sa_fini != NULL) 630 _sa_fini(zhandle->libzfs_sharehdl); 631 zhandle->libzfs_sharehdl = NULL; 632 } 633 } 634 635 /* 636 * zfs_parse_options(options, proto) 637 * 638 * Call the legacy parse interface to get the protocol specific 639 * options using the NULL arg to indicate that this is a "parse" only. 640 */ 641 642 int 643 zfs_parse_options(char *options, zfs_share_proto_t proto) 644 { 645 int ret; 646 647 if (_sa_parse_legacy_options != NULL) 648 ret = _sa_parse_legacy_options(NULL, options, 649 proto_table[proto].p_name); 650 else 651 ret = SA_CONFIG_ERR; 652 return (ret); 653 } 654 655 /* 656 * zfs_sa_find_share(handle, path) 657 * 658 * wrapper around sa_find_share to find a share path in the 659 * configuration. 660 */ 661 662 static sa_share_t 663 zfs_sa_find_share(sa_handle_t handle, char *path) 664 { 665 if (_sa_find_share != NULL) 666 return (_sa_find_share(handle, path)); 667 return (NULL); 668 } 669 670 /* 671 * zfs_sa_enable_share(share, proto) 672 * 673 * Wrapper for sa_enable_share which enables a share for a specified 674 * protocol. 675 */ 676 677 static int 678 zfs_sa_enable_share(sa_share_t share, char *proto) 679 { 680 if (_sa_enable_share != NULL) 681 return (_sa_enable_share(share, proto)); 682 return (SA_CONFIG_ERR); 683 } 684 685 /* 686 * zfs_sa_disable_share(share, proto) 687 * 688 * Wrapper for sa_enable_share which disables a share for a specified 689 * protocol. 690 */ 691 692 static int 693 zfs_sa_disable_share(sa_share_t share, char *proto) 694 { 695 if (_sa_disable_share != NULL) 696 return (_sa_disable_share(share, proto)); 697 return (SA_CONFIG_ERR); 698 } 699 700 /* 701 * Share the given filesystem according to the options in the specified 702 * protocol specific properties (sharenfs, sharesmb). We rely 703 * on "libshare" to the dirty work for us. 704 */ 705 706 static int 707 zfs_share_proto(zfs_handle_t *zhp, zfs_share_proto_t *proto) 708 { 709 char mountpoint[ZFS_MAXPROPLEN]; 710 char shareopts[ZFS_MAXPROPLEN]; 711 libzfs_handle_t *hdl = zhp->zfs_hdl; 712 sa_share_t share; 713 zfs_share_proto_t *curr_proto; 714 int ret; 715 716 if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), NULL)) 717 return (0); 718 719 if ((ret = zfs_init_libshare(hdl, SA_INIT_SHARE_API)) != SA_OK) { 720 (void) zfs_error_fmt(hdl, EZFS_SHARENFSFAILED, 721 dgettext(TEXT_DOMAIN, "cannot share '%s': %s"), 722 zfs_get_name(zhp), _sa_errorstr(ret)); 723 return (-1); 724 } 725 726 for (curr_proto = proto; *curr_proto != PROTO_END; curr_proto++) { 727 /* 728 * Return success if there are no share options. 729 */ 730 if (zfs_prop_get(zhp, proto_table[*curr_proto].p_prop, 731 shareopts, sizeof (shareopts), NULL, NULL, 732 0, B_FALSE) != 0 || strcmp(shareopts, "off") == 0) 733 continue; 734 735 /* 736 * If the 'zoned' property is set, then zfs_is_mountable() 737 * will have already bailed out if we are in the global zone. 738 * But local zones cannot be NFS servers, so we ignore it for 739 * local zones as well. 740 */ 741 if (zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) 742 continue; 743 744 share = zfs_sa_find_share(hdl->libzfs_sharehdl, mountpoint); 745 if (share != NULL) { 746 int err; 747 err = zfs_sa_enable_share(share, 748 proto_table[*curr_proto].p_name); 749 if (err != SA_OK) { 750 (void) zfs_error_fmt(hdl, 751 proto_table[*curr_proto].p_share_err, 752 dgettext(TEXT_DOMAIN, "cannot share '%s'"), 753 zfs_get_name(zhp)); 754 return (-1); 755 } 756 } else { 757 (void) zfs_error_fmt(hdl, 758 proto_table[*curr_proto].p_share_err, 759 dgettext(TEXT_DOMAIN, "cannot share '%s'"), 760 zfs_get_name(zhp)); 761 return (-1); 762 } 763 764 } 765 return (0); 766 } 767 768 769 int 770 zfs_share_nfs(zfs_handle_t *zhp) 771 { 772 return (zfs_share_proto(zhp, nfs_only)); 773 } 774 775 int 776 zfs_share_smb(zfs_handle_t *zhp) 777 { 778 return (zfs_share_proto(zhp, smb_only)); 779 } 780 781 int 782 zfs_shareall(zfs_handle_t *zhp) 783 { 784 return (zfs_share_proto(zhp, share_all_proto)); 785 } 786 787 /* 788 * Unshare a filesystem by mountpoint. 789 */ 790 static int 791 unshare_one(libzfs_handle_t *hdl, const char *name, const char *mountpoint, 792 zfs_share_proto_t proto) 793 { 794 sa_share_t share; 795 int err; 796 char *mntpt; 797 /* 798 * Mountpoint could get trashed if libshare calls getmntany 799 * which id does during API initialization, so strdup the 800 * value. 801 */ 802 mntpt = zfs_strdup(hdl, mountpoint); 803 804 /* make sure libshare initialized */ 805 if ((err = zfs_init_libshare(hdl, SA_INIT_SHARE_API)) != SA_OK) { 806 free(mntpt); /* don't need the copy anymore */ 807 return (zfs_error_fmt(hdl, EZFS_SHARENFSFAILED, 808 dgettext(TEXT_DOMAIN, "cannot unshare '%s': %s"), 809 name, _sa_errorstr(err))); 810 } 811 812 share = zfs_sa_find_share(hdl->libzfs_sharehdl, mntpt); 813 free(mntpt); /* don't need the copy anymore */ 814 815 if (share != NULL) { 816 err = zfs_sa_disable_share(share, proto_table[proto].p_name); 817 if (err != SA_OK) { 818 return (zfs_error_fmt(hdl, EZFS_UNSHARENFSFAILED, 819 dgettext(TEXT_DOMAIN, "cannot unshare '%s': %s"), 820 name, _sa_errorstr(err))); 821 } 822 } else { 823 return (zfs_error_fmt(hdl, EZFS_UNSHARENFSFAILED, 824 dgettext(TEXT_DOMAIN, "cannot unshare '%s': not found"), 825 name)); 826 } 827 return (0); 828 } 829 830 /* 831 * Unshare the given filesystem. 832 */ 833 int 834 zfs_unshare_proto(zfs_handle_t *zhp, const char *mountpoint, 835 zfs_share_proto_t *proto) 836 { 837 struct mnttab search = { 0 }, entry; 838 char *mntpt = NULL; 839 840 /* check to see if need to unmount the filesystem */ 841 search.mnt_special = (char *)zfs_get_name(zhp); 842 search.mnt_fstype = MNTTYPE_ZFS; 843 rewind(zhp->zfs_hdl->libzfs_mnttab); 844 if (mountpoint != NULL) 845 mntpt = zfs_strdup(zhp->zfs_hdl, mountpoint); 846 847 if (mountpoint != NULL || ((zfs_get_type(zhp) == ZFS_TYPE_FILESYSTEM) && 848 getmntany(zhp->zfs_hdl->libzfs_mnttab, &entry, &search) == 0)) { 849 zfs_share_proto_t *curr_proto; 850 851 if (mountpoint == NULL) 852 mntpt = zfs_strdup(zhp->zfs_hdl, entry.mnt_mountp); 853 854 for (curr_proto = proto; *curr_proto != PROTO_END; 855 curr_proto++) { 856 857 if (is_shared(zhp->zfs_hdl, mntpt, *curr_proto) && 858 unshare_one(zhp->zfs_hdl, zhp->zfs_name, 859 mntpt, *curr_proto) != 0) { 860 if (mntpt != NULL) 861 free(mntpt); 862 return (-1); 863 } 864 } 865 } 866 if (mntpt != NULL) 867 free(mntpt); 868 869 return (0); 870 } 871 872 int 873 zfs_unshare_nfs(zfs_handle_t *zhp, const char *mountpoint) 874 { 875 return (zfs_unshare_proto(zhp, mountpoint, nfs_only)); 876 } 877 878 int 879 zfs_unshare_smb(zfs_handle_t *zhp, const char *mountpoint) 880 { 881 return (zfs_unshare_proto(zhp, mountpoint, smb_only)); 882 } 883 884 /* 885 * Same as zfs_unmountall(), but for NFS and SMB unshares. 886 */ 887 int 888 zfs_unshareall_proto(zfs_handle_t *zhp, zfs_share_proto_t *proto) 889 { 890 prop_changelist_t *clp; 891 int ret; 892 893 clp = changelist_gather(zhp, ZFS_PROP_SHARENFS, 0); 894 if (clp == NULL) 895 return (-1); 896 897 ret = changelist_unshare(clp, proto); 898 changelist_free(clp); 899 900 return (ret); 901 } 902 903 int 904 zfs_unshareall_nfs(zfs_handle_t *zhp) 905 { 906 return (zfs_unshareall_proto(zhp, nfs_only)); 907 } 908 909 int 910 zfs_unshareall_smb(zfs_handle_t *zhp) 911 { 912 return (zfs_unshareall_proto(zhp, smb_only)); 913 } 914 915 int 916 zfs_unshareall(zfs_handle_t *zhp) 917 { 918 return (zfs_unshareall_proto(zhp, share_all_proto)); 919 } 920 921 int 922 zfs_unshareall_bypath(zfs_handle_t *zhp, const char *mountpoint) 923 { 924 return (zfs_unshare_proto(zhp, mountpoint, share_all_proto)); 925 } 926 927 /* 928 * Remove the mountpoint associated with the current dataset, if necessary. 929 * We only remove the underlying directory if: 930 * 931 * - The mountpoint is not 'none' or 'legacy' 932 * - The mountpoint is non-empty 933 * - The mountpoint is the default or inherited 934 * - The 'zoned' property is set, or we're in a local zone 935 * 936 * Any other directories we leave alone. 937 */ 938 void 939 remove_mountpoint(zfs_handle_t *zhp) 940 { 941 char mountpoint[ZFS_MAXPROPLEN]; 942 zprop_source_t source; 943 944 if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), 945 &source)) 946 return; 947 948 if (source == ZPROP_SRC_DEFAULT || 949 source == ZPROP_SRC_INHERITED) { 950 /* 951 * Try to remove the directory, silently ignoring any errors. 952 * The filesystem may have since been removed or moved around, 953 * and this error isn't really useful to the administrator in 954 * any way. 955 */ 956 (void) rmdir(mountpoint); 957 } 958 } 959 960 boolean_t 961 zfs_is_shared_iscsi(zfs_handle_t *zhp) 962 { 963 964 /* 965 * If iscsi deamon isn't running then we aren't shared 966 */ 967 if (iscsitgt_svc_online && iscsitgt_svc_online() == 1) 968 return (B_FALSE); 969 else 970 return (iscsitgt_zfs_is_shared != NULL && 971 iscsitgt_zfs_is_shared(zhp->zfs_name) != 0); 972 } 973 974 int 975 zfs_share_iscsi(zfs_handle_t *zhp) 976 { 977 char shareopts[ZFS_MAXPROPLEN]; 978 const char *dataset = zhp->zfs_name; 979 libzfs_handle_t *hdl = zhp->zfs_hdl; 980 981 /* 982 * Return success if there are no share options. 983 */ 984 if (zfs_prop_get(zhp, ZFS_PROP_SHAREISCSI, shareopts, 985 sizeof (shareopts), NULL, NULL, 0, B_FALSE) != 0 || 986 strcmp(shareopts, "off") == 0) 987 return (0); 988 989 if (iscsitgt_zfs_share == NULL || iscsitgt_zfs_share(dataset) != 0) { 990 int error = EZFS_SHAREISCSIFAILED; 991 992 /* 993 * If service isn't availabele and EPERM was 994 * returned then use special error. 995 */ 996 if (iscsitgt_svc_online && errno == EPERM && 997 (iscsitgt_svc_online() != 0)) 998 error = EZFS_ISCSISVCUNAVAIL; 999 1000 return (zfs_error_fmt(hdl, error, 1001 dgettext(TEXT_DOMAIN, "cannot share '%s'"), dataset)); 1002 } 1003 1004 return (0); 1005 } 1006 1007 int 1008 zfs_unshare_iscsi(zfs_handle_t *zhp) 1009 { 1010 const char *dataset = zfs_get_name(zhp); 1011 libzfs_handle_t *hdl = zhp->zfs_hdl; 1012 1013 /* 1014 * Return if the volume is not shared 1015 */ 1016 if (zfs_is_shared_iscsi(zhp) != SHARED_ISCSI) 1017 return (0); 1018 1019 /* 1020 * If this fails with ENODEV it indicates that zvol wasn't shared so 1021 * we should return success in that case. 1022 */ 1023 if (iscsitgt_zfs_unshare == NULL || 1024 (iscsitgt_zfs_unshare(dataset) != 0 && errno != ENODEV)) { 1025 if (errno == EPERM) 1026 zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 1027 "Insufficient privileges to unshare iscsi")); 1028 return (zfs_error_fmt(hdl, EZFS_UNSHAREISCSIFAILED, 1029 dgettext(TEXT_DOMAIN, "cannot unshare '%s'"), dataset)); 1030 } 1031 1032 return (0); 1033 } 1034 1035 typedef struct mount_cbdata { 1036 zfs_handle_t **cb_datasets; 1037 int cb_used; 1038 int cb_alloc; 1039 } mount_cbdata_t; 1040 1041 static int 1042 mount_cb(zfs_handle_t *zhp, void *data) 1043 { 1044 mount_cbdata_t *cbp = data; 1045 1046 if (!(zfs_get_type(zhp) & (ZFS_TYPE_FILESYSTEM | ZFS_TYPE_VOLUME))) { 1047 zfs_close(zhp); 1048 return (0); 1049 } 1050 1051 if (cbp->cb_alloc == cbp->cb_used) { 1052 void *ptr; 1053 1054 if ((ptr = zfs_realloc(zhp->zfs_hdl, 1055 cbp->cb_datasets, cbp->cb_alloc * sizeof (void *), 1056 cbp->cb_alloc * 2 * sizeof (void *))) == NULL) 1057 return (-1); 1058 cbp->cb_datasets = ptr; 1059 1060 cbp->cb_alloc *= 2; 1061 } 1062 1063 cbp->cb_datasets[cbp->cb_used++] = zhp; 1064 1065 return (zfs_iter_children(zhp, mount_cb, cbp)); 1066 } 1067 1068 static int 1069 dataset_cmp(const void *a, const void *b) 1070 { 1071 zfs_handle_t **za = (zfs_handle_t **)a; 1072 zfs_handle_t **zb = (zfs_handle_t **)b; 1073 char mounta[MAXPATHLEN]; 1074 char mountb[MAXPATHLEN]; 1075 boolean_t gota, gotb; 1076 1077 if ((gota = (zfs_get_type(*za) == ZFS_TYPE_FILESYSTEM)) != 0) 1078 verify(zfs_prop_get(*za, ZFS_PROP_MOUNTPOINT, mounta, 1079 sizeof (mounta), NULL, NULL, 0, B_FALSE) == 0); 1080 if ((gotb = (zfs_get_type(*zb) == ZFS_TYPE_FILESYSTEM)) != 0) 1081 verify(zfs_prop_get(*zb, ZFS_PROP_MOUNTPOINT, mountb, 1082 sizeof (mountb), NULL, NULL, 0, B_FALSE) == 0); 1083 1084 if (gota && gotb) 1085 return (strcmp(mounta, mountb)); 1086 1087 if (gota) 1088 return (-1); 1089 if (gotb) 1090 return (1); 1091 1092 return (strcmp(zfs_get_name(a), zfs_get_name(b))); 1093 } 1094 1095 /* 1096 * Mount and share all datasets within the given pool. This assumes that no 1097 * datasets within the pool are currently mounted. Because users can create 1098 * complicated nested hierarchies of mountpoints, we first gather all the 1099 * datasets and mountpoints within the pool, and sort them by mountpoint. Once 1100 * we have the list of all filesystems, we iterate over them in order and mount 1101 * and/or share each one. 1102 */ 1103 #pragma weak zpool_mount_datasets = zpool_enable_datasets 1104 int 1105 zpool_enable_datasets(zpool_handle_t *zhp, const char *mntopts, int flags) 1106 { 1107 mount_cbdata_t cb = { 0 }; 1108 libzfs_handle_t *hdl = zhp->zpool_hdl; 1109 zfs_handle_t *zfsp; 1110 int i, ret = -1; 1111 int *good; 1112 1113 /* 1114 * Gather all datasets within the pool. 1115 */ 1116 if ((cb.cb_datasets = zfs_alloc(hdl, 4 * sizeof (void *))) == NULL) 1117 return (-1); 1118 cb.cb_alloc = 4; 1119 1120 if ((zfsp = zfs_open(hdl, zhp->zpool_name, ZFS_TYPE_DATASET)) == NULL) 1121 goto out; 1122 1123 cb.cb_datasets[0] = zfsp; 1124 cb.cb_used = 1; 1125 1126 if (zfs_iter_children(zfsp, mount_cb, &cb) != 0) 1127 goto out; 1128 1129 /* 1130 * Sort the datasets by mountpoint. 1131 */ 1132 qsort(cb.cb_datasets, cb.cb_used, sizeof (void *), dataset_cmp); 1133 1134 /* 1135 * And mount all the datasets, keeping track of which ones 1136 * succeeded or failed. By using zfs_alloc(), the good pointer 1137 * will always be non-NULL. 1138 */ 1139 good = zfs_alloc(zhp->zpool_hdl, cb.cb_used * sizeof (int)); 1140 ret = 0; 1141 for (i = 0; i < cb.cb_used; i++) { 1142 if (zfs_mount(cb.cb_datasets[i], mntopts, flags) != 0) 1143 ret = -1; 1144 else 1145 good[i] = 1; 1146 } 1147 /* 1148 * Then share all the ones that need to be shared. This needs 1149 * to be a separate pass in order to avoid excessive reloading 1150 * of the configuration. Good should never be NULL since 1151 * zfs_alloc is supposed to exit if memory isn't available. 1152 */ 1153 zfs_uninit_libshare(hdl); 1154 for (i = 0; i < cb.cb_used; i++) { 1155 if (good[i] && zfs_share(cb.cb_datasets[i]) != 0) 1156 ret = -1; 1157 } 1158 1159 free(good); 1160 1161 out: 1162 for (i = 0; i < cb.cb_used; i++) 1163 zfs_close(cb.cb_datasets[i]); 1164 free(cb.cb_datasets); 1165 1166 return (ret); 1167 } 1168 1169 1170 static int 1171 zvol_cb(const char *dataset, void *data) 1172 { 1173 libzfs_handle_t *hdl = data; 1174 zfs_handle_t *zhp; 1175 1176 /* 1177 * Ignore snapshots and ignore failures from non-existant datasets. 1178 */ 1179 if (strchr(dataset, '@') != NULL || 1180 (zhp = zfs_open(hdl, dataset, ZFS_TYPE_VOLUME)) == NULL) 1181 return (0); 1182 1183 if (zfs_unshare_iscsi(zhp) != 0) 1184 return (-1); 1185 1186 zfs_close(zhp); 1187 1188 return (0); 1189 } 1190 1191 static int 1192 mountpoint_compare(const void *a, const void *b) 1193 { 1194 const char *mounta = *((char **)a); 1195 const char *mountb = *((char **)b); 1196 1197 return (strcmp(mountb, mounta)); 1198 } 1199 1200 /* 1201 * Unshare and unmount all datasets within the given pool. We don't want to 1202 * rely on traversing the DSL to discover the filesystems within the pool, 1203 * because this may be expensive (if not all of them are mounted), and can fail 1204 * arbitrarily (on I/O error, for example). Instead, we walk /etc/mnttab and 1205 * gather all the filesystems that are currently mounted. 1206 */ 1207 #pragma weak zpool_unmount_datasets = zpool_disable_datasets 1208 int 1209 zpool_disable_datasets(zpool_handle_t *zhp, boolean_t force) 1210 { 1211 int used, alloc; 1212 struct mnttab entry; 1213 size_t namelen; 1214 char **mountpoints = NULL; 1215 zfs_handle_t **datasets = NULL; 1216 libzfs_handle_t *hdl = zhp->zpool_hdl; 1217 int i; 1218 int ret = -1; 1219 int flags = (force ? MS_FORCE : 0); 1220 1221 /* 1222 * First unshare all zvols. 1223 */ 1224 if (zpool_iter_zvol(zhp, zvol_cb, hdl) != 0) 1225 return (-1); 1226 1227 namelen = strlen(zhp->zpool_name); 1228 1229 rewind(hdl->libzfs_mnttab); 1230 used = alloc = 0; 1231 while (getmntent(hdl->libzfs_mnttab, &entry) == 0) { 1232 /* 1233 * Ignore non-ZFS entries. 1234 */ 1235 if (entry.mnt_fstype == NULL || 1236 strcmp(entry.mnt_fstype, MNTTYPE_ZFS) != 0) 1237 continue; 1238 1239 /* 1240 * Ignore filesystems not within this pool. 1241 */ 1242 if (entry.mnt_mountp == NULL || 1243 strncmp(entry.mnt_special, zhp->zpool_name, namelen) != 0 || 1244 (entry.mnt_special[namelen] != '/' && 1245 entry.mnt_special[namelen] != '\0')) 1246 continue; 1247 1248 /* 1249 * At this point we've found a filesystem within our pool. Add 1250 * it to our growing list. 1251 */ 1252 if (used == alloc) { 1253 if (alloc == 0) { 1254 if ((mountpoints = zfs_alloc(hdl, 1255 8 * sizeof (void *))) == NULL) 1256 goto out; 1257 1258 if ((datasets = zfs_alloc(hdl, 1259 8 * sizeof (void *))) == NULL) 1260 goto out; 1261 1262 alloc = 8; 1263 } else { 1264 void *ptr; 1265 1266 if ((ptr = zfs_realloc(hdl, mountpoints, 1267 alloc * sizeof (void *), 1268 alloc * 2 * sizeof (void *))) == NULL) 1269 goto out; 1270 mountpoints = ptr; 1271 1272 if ((ptr = zfs_realloc(hdl, datasets, 1273 alloc * sizeof (void *), 1274 alloc * 2 * sizeof (void *))) == NULL) 1275 goto out; 1276 datasets = ptr; 1277 1278 alloc *= 2; 1279 } 1280 } 1281 1282 if ((mountpoints[used] = zfs_strdup(hdl, 1283 entry.mnt_mountp)) == NULL) 1284 goto out; 1285 1286 /* 1287 * This is allowed to fail, in case there is some I/O error. It 1288 * is only used to determine if we need to remove the underlying 1289 * mountpoint, so failure is not fatal. 1290 */ 1291 datasets[used] = make_dataset_handle(hdl, entry.mnt_special); 1292 1293 used++; 1294 } 1295 1296 /* 1297 * At this point, we have the entire list of filesystems, so sort it by 1298 * mountpoint. 1299 */ 1300 qsort(mountpoints, used, sizeof (char *), mountpoint_compare); 1301 1302 /* 1303 * Walk through and first unshare everything. 1304 */ 1305 for (i = 0; i < used; i++) { 1306 zfs_share_proto_t *curr_proto; 1307 for (curr_proto = share_all_proto; *curr_proto != PROTO_END; 1308 curr_proto++) { 1309 if (is_shared(hdl, mountpoints[i], *curr_proto) && 1310 unshare_one(hdl, mountpoints[i], 1311 mountpoints[i], *curr_proto) != 0) 1312 goto out; 1313 } 1314 } 1315 1316 /* 1317 * Now unmount everything, removing the underlying directories as 1318 * appropriate. 1319 */ 1320 for (i = 0; i < used; i++) { 1321 if (unmount_one(hdl, mountpoints[i], flags) != 0) 1322 goto out; 1323 } 1324 1325 for (i = 0; i < used; i++) { 1326 if (datasets[i]) 1327 remove_mountpoint(datasets[i]); 1328 } 1329 1330 ret = 0; 1331 out: 1332 for (i = 0; i < used; i++) { 1333 if (datasets[i]) 1334 zfs_close(datasets[i]); 1335 free(mountpoints[i]); 1336 } 1337 free(datasets); 1338 free(mountpoints); 1339 1340 return (ret); 1341 } 1342