1eda14cbcSMatt Macy /* 2eda14cbcSMatt Macy * CDDL HEADER START 3eda14cbcSMatt Macy * 4eda14cbcSMatt Macy * The contents of this file are subject to the terms of the 5eda14cbcSMatt Macy * Common Development and Distribution License (the "License"). 6eda14cbcSMatt Macy * You may not use this file except in compliance with the License. 7eda14cbcSMatt Macy * 8eda14cbcSMatt Macy * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9271171e0SMartin Matuska * or https://opensource.org/licenses/CDDL-1.0. 10eda14cbcSMatt Macy * See the License for the specific language governing permissions 11eda14cbcSMatt Macy * and limitations under the License. 12eda14cbcSMatt Macy * 13eda14cbcSMatt Macy * When distributing Covered Code, include this CDDL HEADER in each 14eda14cbcSMatt Macy * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15eda14cbcSMatt Macy * If applicable, add the following below this CDDL HEADER, with the 16eda14cbcSMatt Macy * fields enclosed by brackets "[]" replaced with your own identifying 17eda14cbcSMatt Macy * information: Portions Copyright [yyyy] [name of copyright owner] 18eda14cbcSMatt Macy * 19eda14cbcSMatt Macy * CDDL HEADER END 20eda14cbcSMatt Macy */ 21eda14cbcSMatt Macy 22eda14cbcSMatt Macy /* 23eda14cbcSMatt Macy * Copyright 2015 Nexenta Systems, Inc. All rights reserved. 24eda14cbcSMatt Macy * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved. 25c7046f76SMartin Matuska * Copyright (c) 2014, 2022 by Delphix. All rights reserved. 26eda14cbcSMatt Macy * Copyright 2016 Igor Kozhukhov <ikozhukhov@gmail.com> 27eda14cbcSMatt Macy * Copyright 2017 RackTop Systems. 28eda14cbcSMatt Macy * Copyright (c) 2018 Datto Inc. 29eda14cbcSMatt Macy * Copyright 2018 OmniOS Community Edition (OmniOSce) Association. 30eda14cbcSMatt Macy */ 31eda14cbcSMatt Macy 32eda14cbcSMatt Macy /* 33eda14cbcSMatt Macy * Routines to manage ZFS mounts. We separate all the nasty routines that have 34eda14cbcSMatt Macy * to deal with the OS. The following functions are the main entry points -- 35eda14cbcSMatt Macy * they are used by mount and unmount and when changing a filesystem's 36eda14cbcSMatt Macy * mountpoint. 37eda14cbcSMatt Macy * 38eda14cbcSMatt Macy * zfs_is_mounted() 39eda14cbcSMatt Macy * zfs_mount() 40eda14cbcSMatt Macy * zfs_mount_at() 41eda14cbcSMatt Macy * zfs_unmount() 42eda14cbcSMatt Macy * zfs_unmountall() 43eda14cbcSMatt Macy * 44716fd348SMartin Matuska * This file also contains the functions used to manage sharing filesystems: 45eda14cbcSMatt Macy * 46eda14cbcSMatt Macy * zfs_is_shared() 47eda14cbcSMatt Macy * zfs_share() 48eda14cbcSMatt Macy * zfs_unshare() 49eda14cbcSMatt Macy * zfs_unshareall() 50716fd348SMartin Matuska * zfs_commit_shares() 51eda14cbcSMatt Macy * 52eda14cbcSMatt Macy * The following functions are available for pool consumers, and will 53eda14cbcSMatt Macy * mount/unmount and share/unshare all datasets within pool: 54eda14cbcSMatt Macy * 55eda14cbcSMatt Macy * zpool_enable_datasets() 56eda14cbcSMatt Macy * zpool_disable_datasets() 57eda14cbcSMatt Macy */ 58eda14cbcSMatt Macy 59eda14cbcSMatt Macy #include <dirent.h> 60eda14cbcSMatt Macy #include <dlfcn.h> 61eda14cbcSMatt Macy #include <errno.h> 62eda14cbcSMatt Macy #include <fcntl.h> 63eda14cbcSMatt Macy #include <libgen.h> 64eda14cbcSMatt Macy #include <libintl.h> 65eda14cbcSMatt Macy #include <stdio.h> 66eda14cbcSMatt Macy #include <stdlib.h> 67da5137abSMartin Matuska #include <string.h> 68eda14cbcSMatt Macy #include <unistd.h> 69eda14cbcSMatt Macy #include <zone.h> 70eda14cbcSMatt Macy #include <sys/mntent.h> 71eda14cbcSMatt Macy #include <sys/mount.h> 72eda14cbcSMatt Macy #include <sys/stat.h> 73eda14cbcSMatt Macy #include <sys/vfs.h> 74eda14cbcSMatt Macy #include <sys/dsl_crypt.h> 75eda14cbcSMatt Macy 76eda14cbcSMatt Macy #include <libzfs.h> 77eda14cbcSMatt Macy 78eda14cbcSMatt Macy #include "libzfs_impl.h" 79eda14cbcSMatt Macy #include <thread_pool.h> 80eda14cbcSMatt Macy 81eda14cbcSMatt Macy #include <libshare.h> 82eda14cbcSMatt Macy #include <sys/systeminfo.h> 83eda14cbcSMatt Macy #define MAXISALEN 257 /* based on sysinfo(2) man page */ 84eda14cbcSMatt Macy 85eda14cbcSMatt Macy static int mount_tp_nthr = 512; /* tpool threads for multi-threaded mounting */ 86eda14cbcSMatt Macy 87eda14cbcSMatt Macy static void zfs_mount_task(void *); 88eda14cbcSMatt Macy 89716fd348SMartin Matuska static const proto_table_t proto_table[SA_PROTOCOL_COUNT] = { 90716fd348SMartin Matuska [SA_PROTOCOL_NFS] = 91716fd348SMartin Matuska {ZFS_PROP_SHARENFS, EZFS_SHARENFSFAILED, EZFS_UNSHARENFSFAILED}, 92716fd348SMartin Matuska [SA_PROTOCOL_SMB] = 93716fd348SMartin Matuska {ZFS_PROP_SHARESMB, EZFS_SHARESMBFAILED, EZFS_UNSHARESMBFAILED}, 94eda14cbcSMatt Macy }; 95eda14cbcSMatt Macy 96716fd348SMartin Matuska static const enum sa_protocol share_all_proto[SA_PROTOCOL_COUNT + 1] = { 97716fd348SMartin Matuska SA_PROTOCOL_NFS, 98716fd348SMartin Matuska SA_PROTOCOL_SMB, 99716fd348SMartin Matuska SA_NO_PROTOCOL 100eda14cbcSMatt Macy }; 101eda14cbcSMatt Macy 102eda14cbcSMatt Macy 103eda14cbcSMatt Macy 104eda14cbcSMatt Macy static boolean_t 105eda14cbcSMatt Macy dir_is_empty_stat(const char *dirname) 106eda14cbcSMatt Macy { 107eda14cbcSMatt Macy struct stat st; 108eda14cbcSMatt Macy 109eda14cbcSMatt Macy /* 110eda14cbcSMatt Macy * We only want to return false if the given path is a non empty 111eda14cbcSMatt Macy * directory, all other errors are handled elsewhere. 112eda14cbcSMatt Macy */ 113eda14cbcSMatt Macy if (stat(dirname, &st) < 0 || !S_ISDIR(st.st_mode)) { 114eda14cbcSMatt Macy return (B_TRUE); 115eda14cbcSMatt Macy } 116eda14cbcSMatt Macy 117eda14cbcSMatt Macy /* 118eda14cbcSMatt Macy * An empty directory will still have two entries in it, one 119eda14cbcSMatt Macy * entry for each of "." and "..". 120eda14cbcSMatt Macy */ 121eda14cbcSMatt Macy if (st.st_size > 2) { 122eda14cbcSMatt Macy return (B_FALSE); 123eda14cbcSMatt Macy } 124eda14cbcSMatt Macy 125eda14cbcSMatt Macy return (B_TRUE); 126eda14cbcSMatt Macy } 127eda14cbcSMatt Macy 128eda14cbcSMatt Macy static boolean_t 129eda14cbcSMatt Macy dir_is_empty_readdir(const char *dirname) 130eda14cbcSMatt Macy { 131eda14cbcSMatt Macy DIR *dirp; 132eda14cbcSMatt Macy struct dirent64 *dp; 133eda14cbcSMatt Macy int dirfd; 134eda14cbcSMatt Macy 135eda14cbcSMatt Macy if ((dirfd = openat(AT_FDCWD, dirname, 136eda14cbcSMatt Macy O_RDONLY | O_NDELAY | O_LARGEFILE | O_CLOEXEC, 0)) < 0) { 137eda14cbcSMatt Macy return (B_TRUE); 138eda14cbcSMatt Macy } 139eda14cbcSMatt Macy 140eda14cbcSMatt Macy if ((dirp = fdopendir(dirfd)) == NULL) { 141eda14cbcSMatt Macy (void) close(dirfd); 142eda14cbcSMatt Macy return (B_TRUE); 143eda14cbcSMatt Macy } 144eda14cbcSMatt Macy 145eda14cbcSMatt Macy while ((dp = readdir64(dirp)) != NULL) { 146eda14cbcSMatt Macy 147eda14cbcSMatt Macy if (strcmp(dp->d_name, ".") == 0 || 148eda14cbcSMatt Macy strcmp(dp->d_name, "..") == 0) 149eda14cbcSMatt Macy continue; 150eda14cbcSMatt Macy 151eda14cbcSMatt Macy (void) closedir(dirp); 152eda14cbcSMatt Macy return (B_FALSE); 153eda14cbcSMatt Macy } 154eda14cbcSMatt Macy 155eda14cbcSMatt Macy (void) closedir(dirp); 156eda14cbcSMatt Macy return (B_TRUE); 157eda14cbcSMatt Macy } 158eda14cbcSMatt Macy 159eda14cbcSMatt Macy /* 160eda14cbcSMatt Macy * Returns true if the specified directory is empty. If we can't open the 161eda14cbcSMatt Macy * directory at all, return true so that the mount can fail with a more 162eda14cbcSMatt Macy * informative error message. 163eda14cbcSMatt Macy */ 164eda14cbcSMatt Macy static boolean_t 165eda14cbcSMatt Macy dir_is_empty(const char *dirname) 166eda14cbcSMatt Macy { 167eda14cbcSMatt Macy struct statfs64 st; 168eda14cbcSMatt Macy 169eda14cbcSMatt Macy /* 170eda14cbcSMatt Macy * If the statvfs call fails or the filesystem is not a ZFS 171eda14cbcSMatt Macy * filesystem, fall back to the slow path which uses readdir. 172eda14cbcSMatt Macy */ 173eda14cbcSMatt Macy if ((statfs64(dirname, &st) != 0) || 174eda14cbcSMatt Macy (st.f_type != ZFS_SUPER_MAGIC)) { 175eda14cbcSMatt Macy return (dir_is_empty_readdir(dirname)); 176eda14cbcSMatt Macy } 177eda14cbcSMatt Macy 178eda14cbcSMatt Macy /* 179eda14cbcSMatt Macy * At this point, we know the provided path is on a ZFS 180eda14cbcSMatt Macy * filesystem, so we can use stat instead of readdir to 181eda14cbcSMatt Macy * determine if the directory is empty or not. We try to avoid 182eda14cbcSMatt Macy * using readdir because that requires opening "dirname"; this 183eda14cbcSMatt Macy * open file descriptor can potentially end up in a child 184eda14cbcSMatt Macy * process if there's a concurrent fork, thus preventing the 185eda14cbcSMatt Macy * zfs_mount() from otherwise succeeding (the open file 186eda14cbcSMatt Macy * descriptor inherited by the child process will cause the 187eda14cbcSMatt Macy * parent's mount to fail with EBUSY). The performance 188eda14cbcSMatt Macy * implications of replacing the open, read, and close with a 189eda14cbcSMatt Macy * single stat is nice; but is not the main motivation for the 190eda14cbcSMatt Macy * added complexity. 191eda14cbcSMatt Macy */ 192eda14cbcSMatt Macy return (dir_is_empty_stat(dirname)); 193eda14cbcSMatt Macy } 194eda14cbcSMatt Macy 195eda14cbcSMatt Macy /* 196eda14cbcSMatt Macy * Checks to see if the mount is active. If the filesystem is mounted, we fill 197eda14cbcSMatt Macy * in 'where' with the current mountpoint, and return 1. Otherwise, we return 198eda14cbcSMatt Macy * 0. 199eda14cbcSMatt Macy */ 200eda14cbcSMatt Macy boolean_t 201eda14cbcSMatt Macy is_mounted(libzfs_handle_t *zfs_hdl, const char *special, char **where) 202eda14cbcSMatt Macy { 203eda14cbcSMatt Macy struct mnttab entry; 204eda14cbcSMatt Macy 205eda14cbcSMatt Macy if (libzfs_mnttab_find(zfs_hdl, special, &entry) != 0) 206eda14cbcSMatt Macy return (B_FALSE); 207eda14cbcSMatt Macy 208eda14cbcSMatt Macy if (where != NULL) 209eda14cbcSMatt Macy *where = zfs_strdup(zfs_hdl, entry.mnt_mountp); 210eda14cbcSMatt Macy 211eda14cbcSMatt Macy return (B_TRUE); 212eda14cbcSMatt Macy } 213eda14cbcSMatt Macy 214eda14cbcSMatt Macy boolean_t 215eda14cbcSMatt Macy zfs_is_mounted(zfs_handle_t *zhp, char **where) 216eda14cbcSMatt Macy { 217eda14cbcSMatt Macy return (is_mounted(zhp->zfs_hdl, zfs_get_name(zhp), where)); 218eda14cbcSMatt Macy } 219eda14cbcSMatt Macy 220eda14cbcSMatt Macy /* 221eda14cbcSMatt Macy * Checks any higher order concerns about whether the given dataset is 222eda14cbcSMatt Macy * mountable, false otherwise. zfs_is_mountable_internal specifically assumes 223eda14cbcSMatt Macy * that the caller has verified the sanity of mounting the dataset at 224e92ffd9bSMartin Matuska * its mountpoint to the extent the caller wants. 225eda14cbcSMatt Macy */ 226eda14cbcSMatt Macy static boolean_t 227e92ffd9bSMartin Matuska zfs_is_mountable_internal(zfs_handle_t *zhp) 228eda14cbcSMatt Macy { 229eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_ZONED) && 230eda14cbcSMatt Macy getzoneid() == GLOBAL_ZONEID) 231eda14cbcSMatt Macy return (B_FALSE); 232eda14cbcSMatt Macy 233eda14cbcSMatt Macy return (B_TRUE); 234eda14cbcSMatt Macy } 235eda14cbcSMatt Macy 236eda14cbcSMatt Macy /* 237eda14cbcSMatt Macy * Returns true if the given dataset is mountable, false otherwise. Returns the 238eda14cbcSMatt Macy * mountpoint in 'buf'. 239eda14cbcSMatt Macy */ 240716fd348SMartin Matuska static boolean_t 241eda14cbcSMatt Macy zfs_is_mountable(zfs_handle_t *zhp, char *buf, size_t buflen, 242eda14cbcSMatt Macy zprop_source_t *source, int flags) 243eda14cbcSMatt Macy { 244eda14cbcSMatt Macy char sourceloc[MAXNAMELEN]; 245eda14cbcSMatt Macy zprop_source_t sourcetype; 246eda14cbcSMatt Macy 247eda14cbcSMatt Macy if (!zfs_prop_valid_for_type(ZFS_PROP_MOUNTPOINT, zhp->zfs_type, 248eda14cbcSMatt Macy B_FALSE)) 249eda14cbcSMatt Macy return (B_FALSE); 250eda14cbcSMatt Macy 251eda14cbcSMatt Macy verify(zfs_prop_get(zhp, ZFS_PROP_MOUNTPOINT, buf, buflen, 252eda14cbcSMatt Macy &sourcetype, sourceloc, sizeof (sourceloc), B_FALSE) == 0); 253eda14cbcSMatt Macy 254eda14cbcSMatt Macy if (strcmp(buf, ZFS_MOUNTPOINT_NONE) == 0 || 255eda14cbcSMatt Macy strcmp(buf, ZFS_MOUNTPOINT_LEGACY) == 0) 256eda14cbcSMatt Macy return (B_FALSE); 257eda14cbcSMatt Macy 258eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_CANMOUNT) == ZFS_CANMOUNT_OFF) 259eda14cbcSMatt Macy return (B_FALSE); 260eda14cbcSMatt Macy 261e92ffd9bSMartin Matuska if (!zfs_is_mountable_internal(zhp)) 262eda14cbcSMatt Macy return (B_FALSE); 263eda14cbcSMatt Macy 264eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_REDACTED) && !(flags & MS_FORCE)) 265eda14cbcSMatt Macy return (B_FALSE); 266eda14cbcSMatt Macy 267eda14cbcSMatt Macy if (source) 268eda14cbcSMatt Macy *source = sourcetype; 269eda14cbcSMatt Macy 270eda14cbcSMatt Macy return (B_TRUE); 271eda14cbcSMatt Macy } 272eda14cbcSMatt Macy 273eda14cbcSMatt Macy /* 274eda14cbcSMatt Macy * The filesystem is mounted by invoking the system mount utility rather 275eda14cbcSMatt Macy * than by the system call mount(2). This ensures that the /etc/mtab 276eda14cbcSMatt Macy * file is correctly locked for the update. Performing our own locking 277eda14cbcSMatt Macy * and /etc/mtab update requires making an unsafe assumption about how 278eda14cbcSMatt Macy * the mount utility performs its locking. Unfortunately, this also means 279eda14cbcSMatt Macy * in the case of a mount failure we do not have the exact errno. We must 280eda14cbcSMatt Macy * make due with return value from the mount process. 281eda14cbcSMatt Macy * 282eda14cbcSMatt Macy * In the long term a shared library called libmount is under development 283eda14cbcSMatt Macy * which provides a common API to address the locking and errno issues. 284eda14cbcSMatt Macy * Once the standard mount utility has been updated to use this library 285eda14cbcSMatt Macy * we can add an autoconf check to conditionally use it. 286eda14cbcSMatt Macy * 287eda14cbcSMatt Macy * http://www.kernel.org/pub/linux/utils/util-linux/libmount-docs/index.html 288eda14cbcSMatt Macy */ 289eda14cbcSMatt Macy 290eda14cbcSMatt Macy static int 291eda14cbcSMatt Macy zfs_add_option(zfs_handle_t *zhp, char *options, int len, 292a0b956f5SMartin Matuska zfs_prop_t prop, const char *on, const char *off) 293eda14cbcSMatt Macy { 294*2a58b312SMartin Matuska const char *source; 295eda14cbcSMatt Macy uint64_t value; 296eda14cbcSMatt Macy 297eda14cbcSMatt Macy /* Skip adding duplicate default options */ 298eda14cbcSMatt Macy if ((strstr(options, on) != NULL) || (strstr(options, off) != NULL)) 299eda14cbcSMatt Macy return (0); 300eda14cbcSMatt Macy 301eda14cbcSMatt Macy /* 302eda14cbcSMatt Macy * zfs_prop_get_int() is not used to ensure our mount options 303eda14cbcSMatt Macy * are not influenced by the current /proc/self/mounts contents. 304eda14cbcSMatt Macy */ 305eda14cbcSMatt Macy value = getprop_uint64(zhp, prop, &source); 306eda14cbcSMatt Macy 307eda14cbcSMatt Macy (void) strlcat(options, ",", len); 308eda14cbcSMatt Macy (void) strlcat(options, value ? on : off, len); 309eda14cbcSMatt Macy 310eda14cbcSMatt Macy return (0); 311eda14cbcSMatt Macy } 312eda14cbcSMatt Macy 313eda14cbcSMatt Macy static int 314eda14cbcSMatt Macy zfs_add_options(zfs_handle_t *zhp, char *options, int len) 315eda14cbcSMatt Macy { 316eda14cbcSMatt Macy int error = 0; 317eda14cbcSMatt Macy 318eda14cbcSMatt Macy error = zfs_add_option(zhp, options, len, 319eda14cbcSMatt Macy ZFS_PROP_ATIME, MNTOPT_ATIME, MNTOPT_NOATIME); 320eda14cbcSMatt Macy /* 321eda14cbcSMatt Macy * don't add relatime/strictatime when atime=off, otherwise strictatime 322eda14cbcSMatt Macy * will force atime=on 323eda14cbcSMatt Macy */ 324eda14cbcSMatt Macy if (strstr(options, MNTOPT_NOATIME) == NULL) { 325eda14cbcSMatt Macy error = zfs_add_option(zhp, options, len, 326eda14cbcSMatt Macy ZFS_PROP_RELATIME, MNTOPT_RELATIME, MNTOPT_STRICTATIME); 327eda14cbcSMatt Macy } 328eda14cbcSMatt Macy error = error ? error : zfs_add_option(zhp, options, len, 329eda14cbcSMatt Macy ZFS_PROP_DEVICES, MNTOPT_DEVICES, MNTOPT_NODEVICES); 330eda14cbcSMatt Macy error = error ? error : zfs_add_option(zhp, options, len, 331eda14cbcSMatt Macy ZFS_PROP_EXEC, MNTOPT_EXEC, MNTOPT_NOEXEC); 332eda14cbcSMatt Macy error = error ? error : zfs_add_option(zhp, options, len, 333eda14cbcSMatt Macy ZFS_PROP_READONLY, MNTOPT_RO, MNTOPT_RW); 334eda14cbcSMatt Macy error = error ? error : zfs_add_option(zhp, options, len, 335eda14cbcSMatt Macy ZFS_PROP_SETUID, MNTOPT_SETUID, MNTOPT_NOSETUID); 336eda14cbcSMatt Macy error = error ? error : zfs_add_option(zhp, options, len, 337eda14cbcSMatt Macy ZFS_PROP_NBMAND, MNTOPT_NBMAND, MNTOPT_NONBMAND); 338eda14cbcSMatt Macy 339eda14cbcSMatt Macy return (error); 340eda14cbcSMatt Macy } 341eda14cbcSMatt Macy 342eda14cbcSMatt Macy int 343eda14cbcSMatt Macy zfs_mount(zfs_handle_t *zhp, const char *options, int flags) 344eda14cbcSMatt Macy { 345eda14cbcSMatt Macy char mountpoint[ZFS_MAXPROPLEN]; 346eda14cbcSMatt Macy 347eda14cbcSMatt Macy if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), NULL, 348eda14cbcSMatt Macy flags)) 349eda14cbcSMatt Macy return (0); 350eda14cbcSMatt Macy 351eda14cbcSMatt Macy return (zfs_mount_at(zhp, options, flags, mountpoint)); 352eda14cbcSMatt Macy } 353eda14cbcSMatt Macy 354eda14cbcSMatt Macy /* 355eda14cbcSMatt Macy * Mount the given filesystem. 356eda14cbcSMatt Macy */ 357eda14cbcSMatt Macy int 358eda14cbcSMatt Macy zfs_mount_at(zfs_handle_t *zhp, const char *options, int flags, 359eda14cbcSMatt Macy const char *mountpoint) 360eda14cbcSMatt Macy { 361eda14cbcSMatt Macy struct stat buf; 362eda14cbcSMatt Macy char mntopts[MNT_LINE_MAX]; 363eda14cbcSMatt Macy char overlay[ZFS_MAXPROPLEN]; 36416038816SMartin Matuska char prop_encroot[MAXNAMELEN]; 36516038816SMartin Matuska boolean_t is_encroot; 36616038816SMartin Matuska zfs_handle_t *encroot_hp = zhp; 367eda14cbcSMatt Macy libzfs_handle_t *hdl = zhp->zfs_hdl; 368eda14cbcSMatt Macy uint64_t keystatus; 369eda14cbcSMatt Macy int remount = 0, rc; 370eda14cbcSMatt Macy 371eda14cbcSMatt Macy if (options == NULL) { 372eda14cbcSMatt Macy (void) strlcpy(mntopts, MNTOPT_DEFAULTS, sizeof (mntopts)); 373eda14cbcSMatt Macy } else { 374eda14cbcSMatt Macy (void) strlcpy(mntopts, options, sizeof (mntopts)); 375eda14cbcSMatt Macy } 376eda14cbcSMatt Macy 377eda14cbcSMatt Macy if (strstr(mntopts, MNTOPT_REMOUNT) != NULL) 378eda14cbcSMatt Macy remount = 1; 379eda14cbcSMatt Macy 380eda14cbcSMatt Macy /* Potentially duplicates some checks if invoked by zfs_mount(). */ 381e92ffd9bSMartin Matuska if (!zfs_is_mountable_internal(zhp)) 382eda14cbcSMatt Macy return (0); 383eda14cbcSMatt Macy 384eda14cbcSMatt Macy /* 385eda14cbcSMatt Macy * If the pool is imported read-only then all mounts must be read-only 386eda14cbcSMatt Macy */ 387eda14cbcSMatt Macy if (zpool_get_prop_int(zhp->zpool_hdl, ZPOOL_PROP_READONLY, NULL)) 388eda14cbcSMatt Macy (void) strlcat(mntopts, "," MNTOPT_RO, sizeof (mntopts)); 389eda14cbcSMatt Macy 390eda14cbcSMatt Macy /* 391eda14cbcSMatt Macy * Append default mount options which apply to the mount point. 392eda14cbcSMatt Macy * This is done because under Linux (unlike Solaris) multiple mount 393eda14cbcSMatt Macy * points may reference a single super block. This means that just 394eda14cbcSMatt Macy * given a super block there is no back reference to update the per 395eda14cbcSMatt Macy * mount point options. 396eda14cbcSMatt Macy */ 397eda14cbcSMatt Macy rc = zfs_add_options(zhp, mntopts, sizeof (mntopts)); 398eda14cbcSMatt Macy if (rc) { 399eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 400eda14cbcSMatt Macy "default options unavailable")); 401eda14cbcSMatt Macy return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 402eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 403eda14cbcSMatt Macy mountpoint)); 404eda14cbcSMatt Macy } 405eda14cbcSMatt Macy 406eda14cbcSMatt Macy /* 407eda14cbcSMatt Macy * If the filesystem is encrypted the key must be loaded in order to 408eda14cbcSMatt Macy * mount. If the key isn't loaded, the MS_CRYPT flag decides whether 409eda14cbcSMatt Macy * or not we attempt to load the keys. Note: we must call 410eda14cbcSMatt Macy * zfs_refresh_properties() here since some callers of this function 411eda14cbcSMatt Macy * (most notably zpool_enable_datasets()) may implicitly load our key 412eda14cbcSMatt Macy * by loading the parent's key first. 413eda14cbcSMatt Macy */ 414eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_ENCRYPTION) != ZIO_CRYPT_OFF) { 415eda14cbcSMatt Macy zfs_refresh_properties(zhp); 416eda14cbcSMatt Macy keystatus = zfs_prop_get_int(zhp, ZFS_PROP_KEYSTATUS); 417eda14cbcSMatt Macy 418eda14cbcSMatt Macy /* 419eda14cbcSMatt Macy * If the key is unavailable and MS_CRYPT is set give the 420eda14cbcSMatt Macy * user a chance to enter the key. Otherwise just fail 421eda14cbcSMatt Macy * immediately. 422eda14cbcSMatt Macy */ 423eda14cbcSMatt Macy if (keystatus == ZFS_KEYSTATUS_UNAVAILABLE) { 424eda14cbcSMatt Macy if (flags & MS_CRYPT) { 42516038816SMartin Matuska rc = zfs_crypto_get_encryption_root(zhp, 42616038816SMartin Matuska &is_encroot, prop_encroot); 42716038816SMartin Matuska if (rc) { 42816038816SMartin Matuska zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 42916038816SMartin Matuska "Failed to get encryption root for " 43016038816SMartin Matuska "'%s'."), zfs_get_name(zhp)); 43116038816SMartin Matuska return (rc); 43216038816SMartin Matuska } 43316038816SMartin Matuska 43416038816SMartin Matuska if (!is_encroot) { 43516038816SMartin Matuska encroot_hp = zfs_open(hdl, prop_encroot, 43616038816SMartin Matuska ZFS_TYPE_DATASET); 43716038816SMartin Matuska if (encroot_hp == NULL) 43816038816SMartin Matuska return (hdl->libzfs_error); 43916038816SMartin Matuska } 44016038816SMartin Matuska 44116038816SMartin Matuska rc = zfs_crypto_load_key(encroot_hp, 44216038816SMartin Matuska B_FALSE, NULL); 44316038816SMartin Matuska 44416038816SMartin Matuska if (!is_encroot) 44516038816SMartin Matuska zfs_close(encroot_hp); 446eda14cbcSMatt Macy if (rc) 447eda14cbcSMatt Macy return (rc); 448eda14cbcSMatt Macy } else { 449eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 450eda14cbcSMatt Macy "encryption key not loaded")); 451eda14cbcSMatt Macy return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 452eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 453eda14cbcSMatt Macy mountpoint)); 454eda14cbcSMatt Macy } 455eda14cbcSMatt Macy } 456eda14cbcSMatt Macy 457eda14cbcSMatt Macy } 458eda14cbcSMatt Macy 459eda14cbcSMatt Macy /* 460eda14cbcSMatt Macy * Append zfsutil option so the mount helper allow the mount 461eda14cbcSMatt Macy */ 462eda14cbcSMatt Macy strlcat(mntopts, "," MNTOPT_ZFSUTIL, sizeof (mntopts)); 463eda14cbcSMatt Macy 464eda14cbcSMatt Macy /* Create the directory if it doesn't already exist */ 465eda14cbcSMatt Macy if (lstat(mountpoint, &buf) != 0) { 466eda14cbcSMatt Macy if (mkdirp(mountpoint, 0755) != 0) { 467eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 468eda14cbcSMatt Macy "failed to create mountpoint: %s"), 469eda14cbcSMatt Macy strerror(errno)); 470eda14cbcSMatt Macy return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 471eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 472eda14cbcSMatt Macy mountpoint)); 473eda14cbcSMatt Macy } 474eda14cbcSMatt Macy } 475eda14cbcSMatt Macy 476eda14cbcSMatt Macy /* 477eda14cbcSMatt Macy * Overlay mounts are enabled by default but may be disabled 478eda14cbcSMatt Macy * via the 'overlay' property. The -O flag remains for compatibility. 479eda14cbcSMatt Macy */ 480eda14cbcSMatt Macy if (!(flags & MS_OVERLAY)) { 481eda14cbcSMatt Macy if (zfs_prop_get(zhp, ZFS_PROP_OVERLAY, overlay, 482eda14cbcSMatt Macy sizeof (overlay), NULL, NULL, 0, B_FALSE) == 0) { 483eda14cbcSMatt Macy if (strcmp(overlay, "on") == 0) { 484eda14cbcSMatt Macy flags |= MS_OVERLAY; 485eda14cbcSMatt Macy } 486eda14cbcSMatt Macy } 487eda14cbcSMatt Macy } 488eda14cbcSMatt Macy 489eda14cbcSMatt Macy /* 490eda14cbcSMatt Macy * Determine if the mountpoint is empty. If so, refuse to perform the 491eda14cbcSMatt Macy * mount. We don't perform this check if 'remount' is 492eda14cbcSMatt Macy * specified or if overlay option (-O) is given 493eda14cbcSMatt Macy */ 494eda14cbcSMatt Macy if ((flags & MS_OVERLAY) == 0 && !remount && 495eda14cbcSMatt Macy !dir_is_empty(mountpoint)) { 496eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 497eda14cbcSMatt Macy "directory is not empty")); 498eda14cbcSMatt Macy return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 499eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot mount '%s'"), mountpoint)); 500eda14cbcSMatt Macy } 501eda14cbcSMatt Macy 502eda14cbcSMatt Macy /* perform the mount */ 503eda14cbcSMatt Macy rc = do_mount(zhp, mountpoint, mntopts, flags); 504eda14cbcSMatt Macy if (rc) { 505eda14cbcSMatt Macy /* 506eda14cbcSMatt Macy * Generic errors are nasty, but there are just way too many 507eda14cbcSMatt Macy * from mount(), and they're well-understood. We pick a few 508eda14cbcSMatt Macy * common ones to improve upon. 509eda14cbcSMatt Macy */ 510eda14cbcSMatt Macy if (rc == EBUSY) { 511eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 512eda14cbcSMatt Macy "mountpoint or dataset is busy")); 513eda14cbcSMatt Macy } else if (rc == EPERM) { 514eda14cbcSMatt Macy zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 515eda14cbcSMatt Macy "Insufficient privileges")); 516eda14cbcSMatt Macy } else if (rc == ENOTSUP) { 517eda14cbcSMatt Macy int spa_version; 518eda14cbcSMatt Macy 519eda14cbcSMatt Macy VERIFY(zfs_spa_version(zhp, &spa_version) == 0); 52016038816SMartin Matuska zfs_error_aux(hdl, dgettext(TEXT_DOMAIN, 52116038816SMartin Matuska "Can't mount a version %llu " 522eda14cbcSMatt Macy "file system on a version %d pool. Pool must be" 523eda14cbcSMatt Macy " upgraded to mount this file system."), 524eda14cbcSMatt Macy (u_longlong_t)zfs_prop_get_int(zhp, 525eda14cbcSMatt Macy ZFS_PROP_VERSION), spa_version); 526eda14cbcSMatt Macy } else { 52716038816SMartin Matuska zfs_error_aux(hdl, "%s", strerror(rc)); 528eda14cbcSMatt Macy } 529eda14cbcSMatt Macy return (zfs_error_fmt(hdl, EZFS_MOUNTFAILED, 530eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot mount '%s'"), 531eda14cbcSMatt Macy zhp->zfs_name)); 532eda14cbcSMatt Macy } 533eda14cbcSMatt Macy 534eda14cbcSMatt Macy /* remove the mounted entry before re-adding on remount */ 535eda14cbcSMatt Macy if (remount) 536eda14cbcSMatt Macy libzfs_mnttab_remove(hdl, zhp->zfs_name); 537eda14cbcSMatt Macy 538eda14cbcSMatt Macy /* add the mounted entry into our cache */ 539eda14cbcSMatt Macy libzfs_mnttab_add(hdl, zfs_get_name(zhp), mountpoint, mntopts); 540eda14cbcSMatt Macy return (0); 541eda14cbcSMatt Macy } 542eda14cbcSMatt Macy 543eda14cbcSMatt Macy /* 544eda14cbcSMatt Macy * Unmount a single filesystem. 545eda14cbcSMatt Macy */ 546eda14cbcSMatt Macy static int 5473f9d360cSMartin Matuska unmount_one(zfs_handle_t *zhp, const char *mountpoint, int flags) 548eda14cbcSMatt Macy { 549eda14cbcSMatt Macy int error; 550eda14cbcSMatt Macy 5513f9d360cSMartin Matuska error = do_unmount(zhp, mountpoint, flags); 552eda14cbcSMatt Macy if (error != 0) { 5539db44a8eSMartin Matuska int libzfs_err; 5549db44a8eSMartin Matuska 5559db44a8eSMartin Matuska switch (error) { 5569db44a8eSMartin Matuska case EBUSY: 5579db44a8eSMartin Matuska libzfs_err = EZFS_BUSY; 5589db44a8eSMartin Matuska break; 5599db44a8eSMartin Matuska case EIO: 5609db44a8eSMartin Matuska libzfs_err = EZFS_IO; 5619db44a8eSMartin Matuska break; 5629db44a8eSMartin Matuska case ENOENT: 5639db44a8eSMartin Matuska libzfs_err = EZFS_NOENT; 5649db44a8eSMartin Matuska break; 5659db44a8eSMartin Matuska case ENOMEM: 5669db44a8eSMartin Matuska libzfs_err = EZFS_NOMEM; 5679db44a8eSMartin Matuska break; 5689db44a8eSMartin Matuska case EPERM: 5699db44a8eSMartin Matuska libzfs_err = EZFS_PERM; 5709db44a8eSMartin Matuska break; 5719db44a8eSMartin Matuska default: 5729db44a8eSMartin Matuska libzfs_err = EZFS_UMOUNTFAILED; 5739db44a8eSMartin Matuska } 574681ce946SMartin Matuska if (zhp) { 5753f9d360cSMartin Matuska return (zfs_error_fmt(zhp->zfs_hdl, libzfs_err, 576eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot unmount '%s'"), 577eda14cbcSMatt Macy mountpoint)); 578681ce946SMartin Matuska } else { 579681ce946SMartin Matuska return (-1); 580681ce946SMartin Matuska } 581eda14cbcSMatt Macy } 582eda14cbcSMatt Macy 583eda14cbcSMatt Macy return (0); 584eda14cbcSMatt Macy } 585eda14cbcSMatt Macy 586eda14cbcSMatt Macy /* 587eda14cbcSMatt Macy * Unmount the given filesystem. 588eda14cbcSMatt Macy */ 589eda14cbcSMatt Macy int 590eda14cbcSMatt Macy zfs_unmount(zfs_handle_t *zhp, const char *mountpoint, int flags) 591eda14cbcSMatt Macy { 592eda14cbcSMatt Macy libzfs_handle_t *hdl = zhp->zfs_hdl; 593eda14cbcSMatt Macy struct mnttab entry; 594eda14cbcSMatt Macy char *mntpt = NULL; 595eda14cbcSMatt Macy boolean_t encroot, unmounted = B_FALSE; 596eda14cbcSMatt Macy 597eda14cbcSMatt Macy /* check to see if we need to unmount the filesystem */ 598eda14cbcSMatt Macy if (mountpoint != NULL || ((zfs_get_type(zhp) == ZFS_TYPE_FILESYSTEM) && 599eda14cbcSMatt Macy libzfs_mnttab_find(hdl, zhp->zfs_name, &entry) == 0)) { 600eda14cbcSMatt Macy /* 601eda14cbcSMatt Macy * mountpoint may have come from a call to 602eda14cbcSMatt Macy * getmnt/getmntany if it isn't NULL. If it is NULL, 603eda14cbcSMatt Macy * we know it comes from libzfs_mnttab_find which can 604eda14cbcSMatt Macy * then get freed later. We strdup it to play it safe. 605eda14cbcSMatt Macy */ 606eda14cbcSMatt Macy if (mountpoint == NULL) 607eda14cbcSMatt Macy mntpt = zfs_strdup(hdl, entry.mnt_mountp); 608eda14cbcSMatt Macy else 609eda14cbcSMatt Macy mntpt = zfs_strdup(hdl, mountpoint); 610eda14cbcSMatt Macy 611eda14cbcSMatt Macy /* 612eda14cbcSMatt Macy * Unshare and unmount the filesystem 613eda14cbcSMatt Macy */ 614716fd348SMartin Matuska if (zfs_unshare(zhp, mntpt, share_all_proto) != 0) { 615eda14cbcSMatt Macy free(mntpt); 616eda14cbcSMatt Macy return (-1); 617eda14cbcSMatt Macy } 618716fd348SMartin Matuska zfs_commit_shares(NULL); 619eda14cbcSMatt Macy 6203f9d360cSMartin Matuska if (unmount_one(zhp, mntpt, flags) != 0) { 621eda14cbcSMatt Macy free(mntpt); 622716fd348SMartin Matuska (void) zfs_share(zhp, NULL); 623716fd348SMartin Matuska zfs_commit_shares(NULL); 624eda14cbcSMatt Macy return (-1); 625eda14cbcSMatt Macy } 626eda14cbcSMatt Macy 627eda14cbcSMatt Macy libzfs_mnttab_remove(hdl, zhp->zfs_name); 628eda14cbcSMatt Macy free(mntpt); 629eda14cbcSMatt Macy unmounted = B_TRUE; 630eda14cbcSMatt Macy } 631eda14cbcSMatt Macy 632eda14cbcSMatt Macy /* 633eda14cbcSMatt Macy * If the MS_CRYPT flag is provided we must ensure we attempt to 634eda14cbcSMatt Macy * unload the dataset's key regardless of whether we did any work 635eda14cbcSMatt Macy * to unmount it. We only do this for encryption roots. 636eda14cbcSMatt Macy */ 637eda14cbcSMatt Macy if ((flags & MS_CRYPT) != 0 && 638eda14cbcSMatt Macy zfs_prop_get_int(zhp, ZFS_PROP_ENCRYPTION) != ZIO_CRYPT_OFF) { 639eda14cbcSMatt Macy zfs_refresh_properties(zhp); 640eda14cbcSMatt Macy 641eda14cbcSMatt Macy if (zfs_crypto_get_encryption_root(zhp, &encroot, NULL) != 0 && 642eda14cbcSMatt Macy unmounted) { 643eda14cbcSMatt Macy (void) zfs_mount(zhp, NULL, 0); 644eda14cbcSMatt Macy return (-1); 645eda14cbcSMatt Macy } 646eda14cbcSMatt Macy 647eda14cbcSMatt Macy if (encroot && zfs_prop_get_int(zhp, ZFS_PROP_KEYSTATUS) == 648eda14cbcSMatt Macy ZFS_KEYSTATUS_AVAILABLE && 649eda14cbcSMatt Macy zfs_crypto_unload_key(zhp) != 0) { 650eda14cbcSMatt Macy (void) zfs_mount(zhp, NULL, 0); 651eda14cbcSMatt Macy return (-1); 652eda14cbcSMatt Macy } 653eda14cbcSMatt Macy } 654eda14cbcSMatt Macy 65553b70c86SMartin Matuska zpool_disable_volume_os(zhp->zfs_name); 65653b70c86SMartin Matuska 657eda14cbcSMatt Macy return (0); 658eda14cbcSMatt Macy } 659eda14cbcSMatt Macy 660eda14cbcSMatt Macy /* 661eda14cbcSMatt Macy * Unmount this filesystem and any children inheriting the mountpoint property. 662eda14cbcSMatt Macy * To do this, just act like we're changing the mountpoint property, but don't 663eda14cbcSMatt Macy * remount the filesystems afterwards. 664eda14cbcSMatt Macy */ 665eda14cbcSMatt Macy int 666eda14cbcSMatt Macy zfs_unmountall(zfs_handle_t *zhp, int flags) 667eda14cbcSMatt Macy { 668eda14cbcSMatt Macy prop_changelist_t *clp; 669eda14cbcSMatt Macy int ret; 670eda14cbcSMatt Macy 671eda14cbcSMatt Macy clp = changelist_gather(zhp, ZFS_PROP_MOUNTPOINT, 672eda14cbcSMatt Macy CL_GATHER_ITER_MOUNTED, flags); 673eda14cbcSMatt Macy if (clp == NULL) 674eda14cbcSMatt Macy return (-1); 675eda14cbcSMatt Macy 676eda14cbcSMatt Macy ret = changelist_prefix(clp); 677eda14cbcSMatt Macy changelist_free(clp); 678eda14cbcSMatt Macy 679eda14cbcSMatt Macy return (ret); 680eda14cbcSMatt Macy } 681eda14cbcSMatt Macy 682eda14cbcSMatt Macy /* 683eda14cbcSMatt Macy * Unshare a filesystem by mountpoint. 684eda14cbcSMatt Macy */ 685716fd348SMartin Matuska static int 686eda14cbcSMatt Macy unshare_one(libzfs_handle_t *hdl, const char *name, const char *mountpoint, 687716fd348SMartin Matuska enum sa_protocol proto) 688eda14cbcSMatt Macy { 689716fd348SMartin Matuska int err = sa_disable_share(mountpoint, proto); 690716fd348SMartin Matuska if (err != SA_OK) 691eda14cbcSMatt Macy return (zfs_error_fmt(hdl, proto_table[proto].p_unshare_err, 692eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot unshare '%s': %s"), 693eda14cbcSMatt Macy name, sa_errorstr(err))); 694eda14cbcSMatt Macy 695716fd348SMartin Matuska return (0); 696eda14cbcSMatt Macy } 697eda14cbcSMatt Macy 698eda14cbcSMatt Macy /* 699eda14cbcSMatt Macy * Share the given filesystem according to the options in the specified 700eda14cbcSMatt Macy * protocol specific properties (sharenfs, sharesmb). We rely 701eda14cbcSMatt Macy * on "libshare" to do the dirty work for us. 702eda14cbcSMatt Macy */ 703eda14cbcSMatt Macy int 704716fd348SMartin Matuska zfs_share(zfs_handle_t *zhp, const enum sa_protocol *proto) 705eda14cbcSMatt Macy { 706eda14cbcSMatt Macy char mountpoint[ZFS_MAXPROPLEN]; 707eda14cbcSMatt Macy char shareopts[ZFS_MAXPROPLEN]; 708eda14cbcSMatt Macy char sourcestr[ZFS_MAXPROPLEN]; 709716fd348SMartin Matuska const enum sa_protocol *curr_proto; 710eda14cbcSMatt Macy zprop_source_t sourcetype; 711eda14cbcSMatt Macy int err = 0; 712eda14cbcSMatt Macy 713716fd348SMartin Matuska if (proto == NULL) 714716fd348SMartin Matuska proto = share_all_proto; 715716fd348SMartin Matuska 716eda14cbcSMatt Macy if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), NULL, 0)) 717eda14cbcSMatt Macy return (0); 718eda14cbcSMatt Macy 719716fd348SMartin Matuska for (curr_proto = proto; *curr_proto != SA_NO_PROTOCOL; curr_proto++) { 720eda14cbcSMatt Macy /* 721eda14cbcSMatt Macy * Return success if there are no share options. 722eda14cbcSMatt Macy */ 723eda14cbcSMatt Macy if (zfs_prop_get(zhp, proto_table[*curr_proto].p_prop, 724eda14cbcSMatt Macy shareopts, sizeof (shareopts), &sourcetype, sourcestr, 725eda14cbcSMatt Macy ZFS_MAXPROPLEN, B_FALSE) != 0 || 726eda14cbcSMatt Macy strcmp(shareopts, "off") == 0) 727eda14cbcSMatt Macy continue; 728eda14cbcSMatt Macy 729eda14cbcSMatt Macy /* 730eda14cbcSMatt Macy * If the 'zoned' property is set, then zfs_is_mountable() 731eda14cbcSMatt Macy * will have already bailed out if we are in the global zone. 732eda14cbcSMatt Macy * But local zones cannot be NFS servers, so we ignore it for 733eda14cbcSMatt Macy * local zones as well. 734eda14cbcSMatt Macy */ 735eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_ZONED)) 736eda14cbcSMatt Macy continue; 737eda14cbcSMatt Macy 738eda14cbcSMatt Macy err = sa_enable_share(zfs_get_name(zhp), mountpoint, shareopts, 739716fd348SMartin Matuska *curr_proto); 740eda14cbcSMatt Macy if (err != SA_OK) { 741eda14cbcSMatt Macy return (zfs_error_fmt(zhp->zfs_hdl, 742eda14cbcSMatt Macy proto_table[*curr_proto].p_share_err, 743eda14cbcSMatt Macy dgettext(TEXT_DOMAIN, "cannot share '%s: %s'"), 744eda14cbcSMatt Macy zfs_get_name(zhp), sa_errorstr(err))); 745eda14cbcSMatt Macy } 746eda14cbcSMatt Macy 747eda14cbcSMatt Macy } 748eda14cbcSMatt Macy return (0); 749eda14cbcSMatt Macy } 750eda14cbcSMatt Macy 751eda14cbcSMatt Macy /* 752eda14cbcSMatt Macy * Check to see if the filesystem is currently shared. 753eda14cbcSMatt Macy */ 754716fd348SMartin Matuska boolean_t 755716fd348SMartin Matuska zfs_is_shared(zfs_handle_t *zhp, char **where, 756716fd348SMartin Matuska const enum sa_protocol *proto) 757eda14cbcSMatt Macy { 758eda14cbcSMatt Macy char *mountpoint; 759716fd348SMartin Matuska if (proto == NULL) 760716fd348SMartin Matuska proto = share_all_proto; 761716fd348SMartin Matuska 762716fd348SMartin Matuska if (ZFS_IS_VOLUME(zhp)) 763716fd348SMartin Matuska return (B_FALSE); 764eda14cbcSMatt Macy 765eda14cbcSMatt Macy if (!zfs_is_mounted(zhp, &mountpoint)) 766716fd348SMartin Matuska return (B_FALSE); 767eda14cbcSMatt Macy 768716fd348SMartin Matuska for (const enum sa_protocol *p = proto; *p != SA_NO_PROTOCOL; ++p) 769716fd348SMartin Matuska if (sa_is_shared(mountpoint, *p)) { 770eda14cbcSMatt Macy if (where != NULL) 771eda14cbcSMatt Macy *where = mountpoint; 772eda14cbcSMatt Macy else 773eda14cbcSMatt Macy free(mountpoint); 774716fd348SMartin Matuska return (B_TRUE); 775716fd348SMartin Matuska } 776716fd348SMartin Matuska 777eda14cbcSMatt Macy free(mountpoint); 778716fd348SMartin Matuska return (B_FALSE); 779eda14cbcSMatt Macy } 780eda14cbcSMatt Macy 781eda14cbcSMatt Macy void 782716fd348SMartin Matuska zfs_commit_shares(const enum sa_protocol *proto) 783eda14cbcSMatt Macy { 784eda14cbcSMatt Macy if (proto == NULL) 785716fd348SMartin Matuska proto = share_all_proto; 786eda14cbcSMatt Macy 787716fd348SMartin Matuska for (const enum sa_protocol *p = proto; *p != SA_NO_PROTOCOL; ++p) 788716fd348SMartin Matuska sa_commit_shares(*p); 789eda14cbcSMatt Macy } 790eda14cbcSMatt Macy 791c7046f76SMartin Matuska void 792c7046f76SMartin Matuska zfs_truncate_shares(const enum sa_protocol *proto) 793c7046f76SMartin Matuska { 794c7046f76SMartin Matuska if (proto == NULL) 795c7046f76SMartin Matuska proto = share_all_proto; 796c7046f76SMartin Matuska 797c7046f76SMartin Matuska for (const enum sa_protocol *p = proto; *p != SA_NO_PROTOCOL; ++p) 798c7046f76SMartin Matuska sa_truncate_shares(*p); 799c7046f76SMartin Matuska } 800c7046f76SMartin Matuska 801eda14cbcSMatt Macy /* 802eda14cbcSMatt Macy * Unshare the given filesystem. 803eda14cbcSMatt Macy */ 804eda14cbcSMatt Macy int 805716fd348SMartin Matuska zfs_unshare(zfs_handle_t *zhp, const char *mountpoint, 806716fd348SMartin Matuska const enum sa_protocol *proto) 807eda14cbcSMatt Macy { 808eda14cbcSMatt Macy libzfs_handle_t *hdl = zhp->zfs_hdl; 809eda14cbcSMatt Macy struct mnttab entry; 810eda14cbcSMatt Macy 811716fd348SMartin Matuska if (proto == NULL) 812716fd348SMartin Matuska proto = share_all_proto; 813eda14cbcSMatt Macy 814eda14cbcSMatt Macy if (mountpoint != NULL || ((zfs_get_type(zhp) == ZFS_TYPE_FILESYSTEM) && 815eda14cbcSMatt Macy libzfs_mnttab_find(hdl, zfs_get_name(zhp), &entry) == 0)) { 816eda14cbcSMatt Macy 817716fd348SMartin Matuska /* check to see if need to unmount the filesystem */ 818716fd348SMartin Matuska const char *mntpt = mountpoint ?: entry.mnt_mountp; 819eda14cbcSMatt Macy 820716fd348SMartin Matuska for (const enum sa_protocol *curr_proto = proto; 821716fd348SMartin Matuska *curr_proto != SA_NO_PROTOCOL; curr_proto++) 822716fd348SMartin Matuska if (sa_is_shared(mntpt, *curr_proto) && 823716fd348SMartin Matuska unshare_one(hdl, zhp->zfs_name, 824716fd348SMartin Matuska mntpt, *curr_proto) != 0) 825eda14cbcSMatt Macy return (-1); 826eda14cbcSMatt Macy } 827eda14cbcSMatt Macy 828eda14cbcSMatt Macy return (0); 829eda14cbcSMatt Macy } 830eda14cbcSMatt Macy 831eda14cbcSMatt Macy /* 832eda14cbcSMatt Macy * Same as zfs_unmountall(), but for NFS and SMB unshares. 833eda14cbcSMatt Macy */ 834716fd348SMartin Matuska int 835716fd348SMartin Matuska zfs_unshareall(zfs_handle_t *zhp, const enum sa_protocol *proto) 836eda14cbcSMatt Macy { 837eda14cbcSMatt Macy prop_changelist_t *clp; 838eda14cbcSMatt Macy int ret; 839eda14cbcSMatt Macy 840716fd348SMartin Matuska if (proto == NULL) 841716fd348SMartin Matuska proto = share_all_proto; 842716fd348SMartin Matuska 843eda14cbcSMatt Macy clp = changelist_gather(zhp, ZFS_PROP_SHARENFS, 0, 0); 844eda14cbcSMatt Macy if (clp == NULL) 845eda14cbcSMatt Macy return (-1); 846eda14cbcSMatt Macy 847eda14cbcSMatt Macy ret = changelist_unshare(clp, proto); 848eda14cbcSMatt Macy changelist_free(clp); 849eda14cbcSMatt Macy 850eda14cbcSMatt Macy return (ret); 851eda14cbcSMatt Macy } 852eda14cbcSMatt Macy 853eda14cbcSMatt Macy /* 854eda14cbcSMatt Macy * Remove the mountpoint associated with the current dataset, if necessary. 855eda14cbcSMatt Macy * We only remove the underlying directory if: 856eda14cbcSMatt Macy * 857eda14cbcSMatt Macy * - The mountpoint is not 'none' or 'legacy' 858eda14cbcSMatt Macy * - The mountpoint is non-empty 859eda14cbcSMatt Macy * - The mountpoint is the default or inherited 860eda14cbcSMatt Macy * - The 'zoned' property is set, or we're in a local zone 861eda14cbcSMatt Macy * 862eda14cbcSMatt Macy * Any other directories we leave alone. 863eda14cbcSMatt Macy */ 864eda14cbcSMatt Macy void 865eda14cbcSMatt Macy remove_mountpoint(zfs_handle_t *zhp) 866eda14cbcSMatt Macy { 867eda14cbcSMatt Macy char mountpoint[ZFS_MAXPROPLEN]; 868eda14cbcSMatt Macy zprop_source_t source; 869eda14cbcSMatt Macy 870eda14cbcSMatt Macy if (!zfs_is_mountable(zhp, mountpoint, sizeof (mountpoint), 871eda14cbcSMatt Macy &source, 0)) 872eda14cbcSMatt Macy return; 873eda14cbcSMatt Macy 874eda14cbcSMatt Macy if (source == ZPROP_SRC_DEFAULT || 875eda14cbcSMatt Macy source == ZPROP_SRC_INHERITED) { 876eda14cbcSMatt Macy /* 877eda14cbcSMatt Macy * Try to remove the directory, silently ignoring any errors. 878eda14cbcSMatt Macy * The filesystem may have since been removed or moved around, 879eda14cbcSMatt Macy * and this error isn't really useful to the administrator in 880eda14cbcSMatt Macy * any way. 881eda14cbcSMatt Macy */ 882eda14cbcSMatt Macy (void) rmdir(mountpoint); 883eda14cbcSMatt Macy } 884eda14cbcSMatt Macy } 885eda14cbcSMatt Macy 886eda14cbcSMatt Macy /* 887eda14cbcSMatt Macy * Add the given zfs handle to the cb_handles array, dynamically reallocating 888eda14cbcSMatt Macy * the array if it is out of space. 889eda14cbcSMatt Macy */ 890eda14cbcSMatt Macy void 891eda14cbcSMatt Macy libzfs_add_handle(get_all_cb_t *cbp, zfs_handle_t *zhp) 892eda14cbcSMatt Macy { 893eda14cbcSMatt Macy if (cbp->cb_alloc == cbp->cb_used) { 894eda14cbcSMatt Macy size_t newsz; 895eda14cbcSMatt Macy zfs_handle_t **newhandles; 896eda14cbcSMatt Macy 897eda14cbcSMatt Macy newsz = cbp->cb_alloc != 0 ? cbp->cb_alloc * 2 : 64; 898eda14cbcSMatt Macy newhandles = zfs_realloc(zhp->zfs_hdl, 899eda14cbcSMatt Macy cbp->cb_handles, cbp->cb_alloc * sizeof (zfs_handle_t *), 900eda14cbcSMatt Macy newsz * sizeof (zfs_handle_t *)); 901eda14cbcSMatt Macy cbp->cb_handles = newhandles; 902eda14cbcSMatt Macy cbp->cb_alloc = newsz; 903eda14cbcSMatt Macy } 904eda14cbcSMatt Macy cbp->cb_handles[cbp->cb_used++] = zhp; 905eda14cbcSMatt Macy } 906eda14cbcSMatt Macy 907eda14cbcSMatt Macy /* 908eda14cbcSMatt Macy * Recursive helper function used during file system enumeration 909eda14cbcSMatt Macy */ 910eda14cbcSMatt Macy static int 911eda14cbcSMatt Macy zfs_iter_cb(zfs_handle_t *zhp, void *data) 912eda14cbcSMatt Macy { 913eda14cbcSMatt Macy get_all_cb_t *cbp = data; 914eda14cbcSMatt Macy 915eda14cbcSMatt Macy if (!(zfs_get_type(zhp) & ZFS_TYPE_FILESYSTEM)) { 916eda14cbcSMatt Macy zfs_close(zhp); 917eda14cbcSMatt Macy return (0); 918eda14cbcSMatt Macy } 919eda14cbcSMatt Macy 920eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_CANMOUNT) == ZFS_CANMOUNT_NOAUTO) { 921eda14cbcSMatt Macy zfs_close(zhp); 922eda14cbcSMatt Macy return (0); 923eda14cbcSMatt Macy } 924eda14cbcSMatt Macy 925eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_KEYSTATUS) == 926eda14cbcSMatt Macy ZFS_KEYSTATUS_UNAVAILABLE) { 927eda14cbcSMatt Macy zfs_close(zhp); 928eda14cbcSMatt Macy return (0); 929eda14cbcSMatt Macy } 930eda14cbcSMatt Macy 931eda14cbcSMatt Macy /* 932eda14cbcSMatt Macy * If this filesystem is inconsistent and has a receive resume 933eda14cbcSMatt Macy * token, we can not mount it. 934eda14cbcSMatt Macy */ 935eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_INCONSISTENT) && 936eda14cbcSMatt Macy zfs_prop_get(zhp, ZFS_PROP_RECEIVE_RESUME_TOKEN, 937eda14cbcSMatt Macy NULL, 0, NULL, NULL, 0, B_TRUE) == 0) { 938eda14cbcSMatt Macy zfs_close(zhp); 939eda14cbcSMatt Macy return (0); 940eda14cbcSMatt Macy } 941eda14cbcSMatt Macy 942eda14cbcSMatt Macy libzfs_add_handle(cbp, zhp); 94315f0b8c3SMartin Matuska if (zfs_iter_filesystems(zhp, 0, zfs_iter_cb, cbp) != 0) { 944eda14cbcSMatt Macy zfs_close(zhp); 945eda14cbcSMatt Macy return (-1); 946eda14cbcSMatt Macy } 947eda14cbcSMatt Macy return (0); 948eda14cbcSMatt Macy } 949eda14cbcSMatt Macy 950eda14cbcSMatt Macy /* 951eda14cbcSMatt Macy * Sort comparator that compares two mountpoint paths. We sort these paths so 952eda14cbcSMatt Macy * that subdirectories immediately follow their parents. This means that we 953eda14cbcSMatt Macy * effectively treat the '/' character as the lowest value non-nul char. 954eda14cbcSMatt Macy * Since filesystems from non-global zones can have the same mountpoint 955eda14cbcSMatt Macy * as other filesystems, the comparator sorts global zone filesystems to 956eda14cbcSMatt Macy * the top of the list. This means that the global zone will traverse the 957eda14cbcSMatt Macy * filesystem list in the correct order and can stop when it sees the 958eda14cbcSMatt Macy * first zoned filesystem. In a non-global zone, only the delegated 959eda14cbcSMatt Macy * filesystems are seen. 960eda14cbcSMatt Macy * 961eda14cbcSMatt Macy * An example sorted list using this comparator would look like: 962eda14cbcSMatt Macy * 963eda14cbcSMatt Macy * /foo 964eda14cbcSMatt Macy * /foo/bar 965eda14cbcSMatt Macy * /foo/bar/baz 966eda14cbcSMatt Macy * /foo/baz 967eda14cbcSMatt Macy * /foo.bar 968eda14cbcSMatt Macy * /foo (NGZ1) 969eda14cbcSMatt Macy * /foo (NGZ2) 970eda14cbcSMatt Macy * 971eda14cbcSMatt Macy * The mounting code depends on this ordering to deterministically iterate 972eda14cbcSMatt Macy * over filesystems in order to spawn parallel mount tasks. 973eda14cbcSMatt Macy */ 974eda14cbcSMatt Macy static int 975eda14cbcSMatt Macy mountpoint_cmp(const void *arga, const void *argb) 976eda14cbcSMatt Macy { 977eda14cbcSMatt Macy zfs_handle_t *const *zap = arga; 978eda14cbcSMatt Macy zfs_handle_t *za = *zap; 979eda14cbcSMatt Macy zfs_handle_t *const *zbp = argb; 980eda14cbcSMatt Macy zfs_handle_t *zb = *zbp; 981eda14cbcSMatt Macy char mounta[MAXPATHLEN]; 982eda14cbcSMatt Macy char mountb[MAXPATHLEN]; 983eda14cbcSMatt Macy const char *a = mounta; 984eda14cbcSMatt Macy const char *b = mountb; 985eda14cbcSMatt Macy boolean_t gota, gotb; 986eda14cbcSMatt Macy uint64_t zoneda, zonedb; 987eda14cbcSMatt Macy 988eda14cbcSMatt Macy zoneda = zfs_prop_get_int(za, ZFS_PROP_ZONED); 989eda14cbcSMatt Macy zonedb = zfs_prop_get_int(zb, ZFS_PROP_ZONED); 990eda14cbcSMatt Macy if (zoneda && !zonedb) 991eda14cbcSMatt Macy return (1); 992eda14cbcSMatt Macy if (!zoneda && zonedb) 993eda14cbcSMatt Macy return (-1); 994eda14cbcSMatt Macy 995eda14cbcSMatt Macy gota = (zfs_get_type(za) == ZFS_TYPE_FILESYSTEM); 996eda14cbcSMatt Macy if (gota) { 997eda14cbcSMatt Macy verify(zfs_prop_get(za, ZFS_PROP_MOUNTPOINT, mounta, 998eda14cbcSMatt Macy sizeof (mounta), NULL, NULL, 0, B_FALSE) == 0); 999eda14cbcSMatt Macy } 1000eda14cbcSMatt Macy gotb = (zfs_get_type(zb) == ZFS_TYPE_FILESYSTEM); 1001eda14cbcSMatt Macy if (gotb) { 1002eda14cbcSMatt Macy verify(zfs_prop_get(zb, ZFS_PROP_MOUNTPOINT, mountb, 1003eda14cbcSMatt Macy sizeof (mountb), NULL, NULL, 0, B_FALSE) == 0); 1004eda14cbcSMatt Macy } 1005eda14cbcSMatt Macy 1006eda14cbcSMatt Macy if (gota && gotb) { 1007eda14cbcSMatt Macy while (*a != '\0' && (*a == *b)) { 1008eda14cbcSMatt Macy a++; 1009eda14cbcSMatt Macy b++; 1010eda14cbcSMatt Macy } 1011eda14cbcSMatt Macy if (*a == *b) 1012eda14cbcSMatt Macy return (0); 1013eda14cbcSMatt Macy if (*a == '\0') 1014eda14cbcSMatt Macy return (-1); 1015eda14cbcSMatt Macy if (*b == '\0') 1016eda14cbcSMatt Macy return (1); 1017eda14cbcSMatt Macy if (*a == '/') 1018eda14cbcSMatt Macy return (-1); 1019eda14cbcSMatt Macy if (*b == '/') 1020eda14cbcSMatt Macy return (1); 1021eda14cbcSMatt Macy return (*a < *b ? -1 : *a > *b); 1022eda14cbcSMatt Macy } 1023eda14cbcSMatt Macy 1024eda14cbcSMatt Macy if (gota) 1025eda14cbcSMatt Macy return (-1); 1026eda14cbcSMatt Macy if (gotb) 1027eda14cbcSMatt Macy return (1); 1028eda14cbcSMatt Macy 1029eda14cbcSMatt Macy /* 1030eda14cbcSMatt Macy * If neither filesystem has a mountpoint, revert to sorting by 1031eda14cbcSMatt Macy * dataset name. 1032eda14cbcSMatt Macy */ 1033eda14cbcSMatt Macy return (strcmp(zfs_get_name(za), zfs_get_name(zb))); 1034eda14cbcSMatt Macy } 1035eda14cbcSMatt Macy 1036eda14cbcSMatt Macy /* 1037eda14cbcSMatt Macy * Return true if path2 is a child of path1 or path2 equals path1 or 1038eda14cbcSMatt Macy * path1 is "/" (path2 is always a child of "/"). 1039eda14cbcSMatt Macy */ 1040eda14cbcSMatt Macy static boolean_t 1041eda14cbcSMatt Macy libzfs_path_contains(const char *path1, const char *path2) 1042eda14cbcSMatt Macy { 1043eda14cbcSMatt Macy return (strcmp(path1, path2) == 0 || strcmp(path1, "/") == 0 || 1044eda14cbcSMatt Macy (strstr(path2, path1) == path2 && path2[strlen(path1)] == '/')); 1045eda14cbcSMatt Macy } 1046eda14cbcSMatt Macy 1047eda14cbcSMatt Macy /* 1048eda14cbcSMatt Macy * Given a mountpoint specified by idx in the handles array, find the first 1049eda14cbcSMatt Macy * non-descendent of that mountpoint and return its index. Descendant paths 1050eda14cbcSMatt Macy * start with the parent's path. This function relies on the ordering 1051eda14cbcSMatt Macy * enforced by mountpoint_cmp(). 1052eda14cbcSMatt Macy */ 1053eda14cbcSMatt Macy static int 1054eda14cbcSMatt Macy non_descendant_idx(zfs_handle_t **handles, size_t num_handles, int idx) 1055eda14cbcSMatt Macy { 1056eda14cbcSMatt Macy char parent[ZFS_MAXPROPLEN]; 1057eda14cbcSMatt Macy char child[ZFS_MAXPROPLEN]; 1058eda14cbcSMatt Macy int i; 1059eda14cbcSMatt Macy 1060eda14cbcSMatt Macy verify(zfs_prop_get(handles[idx], ZFS_PROP_MOUNTPOINT, parent, 1061eda14cbcSMatt Macy sizeof (parent), NULL, NULL, 0, B_FALSE) == 0); 1062eda14cbcSMatt Macy 1063eda14cbcSMatt Macy for (i = idx + 1; i < num_handles; i++) { 1064eda14cbcSMatt Macy verify(zfs_prop_get(handles[i], ZFS_PROP_MOUNTPOINT, child, 1065eda14cbcSMatt Macy sizeof (child), NULL, NULL, 0, B_FALSE) == 0); 1066eda14cbcSMatt Macy if (!libzfs_path_contains(parent, child)) 1067eda14cbcSMatt Macy break; 1068eda14cbcSMatt Macy } 1069eda14cbcSMatt Macy return (i); 1070eda14cbcSMatt Macy } 1071eda14cbcSMatt Macy 1072eda14cbcSMatt Macy typedef struct mnt_param { 1073eda14cbcSMatt Macy libzfs_handle_t *mnt_hdl; 1074eda14cbcSMatt Macy tpool_t *mnt_tp; 1075eda14cbcSMatt Macy zfs_handle_t **mnt_zhps; /* filesystems to mount */ 1076eda14cbcSMatt Macy size_t mnt_num_handles; 1077eda14cbcSMatt Macy int mnt_idx; /* Index of selected entry to mount */ 1078eda14cbcSMatt Macy zfs_iter_f mnt_func; 1079eda14cbcSMatt Macy void *mnt_data; 1080eda14cbcSMatt Macy } mnt_param_t; 1081eda14cbcSMatt Macy 1082eda14cbcSMatt Macy /* 1083eda14cbcSMatt Macy * Allocate and populate the parameter struct for mount function, and 1084eda14cbcSMatt Macy * schedule mounting of the entry selected by idx. 1085eda14cbcSMatt Macy */ 1086eda14cbcSMatt Macy static void 1087eda14cbcSMatt Macy zfs_dispatch_mount(libzfs_handle_t *hdl, zfs_handle_t **handles, 1088eda14cbcSMatt Macy size_t num_handles, int idx, zfs_iter_f func, void *data, tpool_t *tp) 1089eda14cbcSMatt Macy { 1090eda14cbcSMatt Macy mnt_param_t *mnt_param = zfs_alloc(hdl, sizeof (mnt_param_t)); 1091eda14cbcSMatt Macy 1092eda14cbcSMatt Macy mnt_param->mnt_hdl = hdl; 1093eda14cbcSMatt Macy mnt_param->mnt_tp = tp; 1094eda14cbcSMatt Macy mnt_param->mnt_zhps = handles; 1095eda14cbcSMatt Macy mnt_param->mnt_num_handles = num_handles; 1096eda14cbcSMatt Macy mnt_param->mnt_idx = idx; 1097eda14cbcSMatt Macy mnt_param->mnt_func = func; 1098eda14cbcSMatt Macy mnt_param->mnt_data = data; 1099eda14cbcSMatt Macy 1100eda14cbcSMatt Macy (void) tpool_dispatch(tp, zfs_mount_task, (void*)mnt_param); 1101eda14cbcSMatt Macy } 1102eda14cbcSMatt Macy 1103eda14cbcSMatt Macy /* 1104eda14cbcSMatt Macy * This is the structure used to keep state of mounting or sharing operations 1105eda14cbcSMatt Macy * during a call to zpool_enable_datasets(). 1106eda14cbcSMatt Macy */ 1107eda14cbcSMatt Macy typedef struct mount_state { 1108eda14cbcSMatt Macy /* 1109eda14cbcSMatt Macy * ms_mntstatus is set to -1 if any mount fails. While multiple threads 1110eda14cbcSMatt Macy * could update this variable concurrently, no synchronization is 1111eda14cbcSMatt Macy * needed as it's only ever set to -1. 1112eda14cbcSMatt Macy */ 1113eda14cbcSMatt Macy int ms_mntstatus; 1114eda14cbcSMatt Macy int ms_mntflags; 1115eda14cbcSMatt Macy const char *ms_mntopts; 1116eda14cbcSMatt Macy } mount_state_t; 1117eda14cbcSMatt Macy 1118eda14cbcSMatt Macy static int 1119eda14cbcSMatt Macy zfs_mount_one(zfs_handle_t *zhp, void *arg) 1120eda14cbcSMatt Macy { 1121eda14cbcSMatt Macy mount_state_t *ms = arg; 1122eda14cbcSMatt Macy int ret = 0; 1123eda14cbcSMatt Macy 1124eda14cbcSMatt Macy /* 1125eda14cbcSMatt Macy * don't attempt to mount encrypted datasets with 1126eda14cbcSMatt Macy * unloaded keys 1127eda14cbcSMatt Macy */ 1128eda14cbcSMatt Macy if (zfs_prop_get_int(zhp, ZFS_PROP_KEYSTATUS) == 1129eda14cbcSMatt Macy ZFS_KEYSTATUS_UNAVAILABLE) 1130eda14cbcSMatt Macy return (0); 1131eda14cbcSMatt Macy 1132eda14cbcSMatt Macy if (zfs_mount(zhp, ms->ms_mntopts, ms->ms_mntflags) != 0) 1133eda14cbcSMatt Macy ret = ms->ms_mntstatus = -1; 1134eda14cbcSMatt Macy return (ret); 1135eda14cbcSMatt Macy } 1136eda14cbcSMatt Macy 1137eda14cbcSMatt Macy static int 1138eda14cbcSMatt Macy zfs_share_one(zfs_handle_t *zhp, void *arg) 1139eda14cbcSMatt Macy { 1140eda14cbcSMatt Macy mount_state_t *ms = arg; 1141eda14cbcSMatt Macy int ret = 0; 1142eda14cbcSMatt Macy 1143716fd348SMartin Matuska if (zfs_share(zhp, NULL) != 0) 1144eda14cbcSMatt Macy ret = ms->ms_mntstatus = -1; 1145eda14cbcSMatt Macy return (ret); 1146eda14cbcSMatt Macy } 1147eda14cbcSMatt Macy 1148eda14cbcSMatt Macy /* 1149eda14cbcSMatt Macy * Thread pool function to mount one file system. On completion, it finds and 1150eda14cbcSMatt Macy * schedules its children to be mounted. This depends on the sorting done in 1151eda14cbcSMatt Macy * zfs_foreach_mountpoint(). Note that the degenerate case (chain of entries 1152eda14cbcSMatt Macy * each descending from the previous) will have no parallelism since we always 1153eda14cbcSMatt Macy * have to wait for the parent to finish mounting before we can schedule 1154eda14cbcSMatt Macy * its children. 1155eda14cbcSMatt Macy */ 1156eda14cbcSMatt Macy static void 1157eda14cbcSMatt Macy zfs_mount_task(void *arg) 1158eda14cbcSMatt Macy { 1159eda14cbcSMatt Macy mnt_param_t *mp = arg; 1160eda14cbcSMatt Macy int idx = mp->mnt_idx; 1161eda14cbcSMatt Macy zfs_handle_t **handles = mp->mnt_zhps; 1162eda14cbcSMatt Macy size_t num_handles = mp->mnt_num_handles; 1163eda14cbcSMatt Macy char mountpoint[ZFS_MAXPROPLEN]; 1164eda14cbcSMatt Macy 1165eda14cbcSMatt Macy verify(zfs_prop_get(handles[idx], ZFS_PROP_MOUNTPOINT, mountpoint, 1166eda14cbcSMatt Macy sizeof (mountpoint), NULL, NULL, 0, B_FALSE) == 0); 1167eda14cbcSMatt Macy 1168eda14cbcSMatt Macy if (mp->mnt_func(handles[idx], mp->mnt_data) != 0) 1169c03c5b1cSMartin Matuska goto out; 1170eda14cbcSMatt Macy 1171eda14cbcSMatt Macy /* 1172eda14cbcSMatt Macy * We dispatch tasks to mount filesystems with mountpoints underneath 1173eda14cbcSMatt Macy * this one. We do this by dispatching the next filesystem with a 1174eda14cbcSMatt Macy * descendant mountpoint of the one we just mounted, then skip all of 1175eda14cbcSMatt Macy * its descendants, dispatch the next descendant mountpoint, and so on. 1176eda14cbcSMatt Macy * The non_descendant_idx() function skips over filesystems that are 1177eda14cbcSMatt Macy * descendants of the filesystem we just dispatched. 1178eda14cbcSMatt Macy */ 1179eda14cbcSMatt Macy for (int i = idx + 1; i < num_handles; 1180eda14cbcSMatt Macy i = non_descendant_idx(handles, num_handles, i)) { 1181eda14cbcSMatt Macy char child[ZFS_MAXPROPLEN]; 1182eda14cbcSMatt Macy verify(zfs_prop_get(handles[i], ZFS_PROP_MOUNTPOINT, 1183eda14cbcSMatt Macy child, sizeof (child), NULL, NULL, 0, B_FALSE) == 0); 1184eda14cbcSMatt Macy 1185eda14cbcSMatt Macy if (!libzfs_path_contains(mountpoint, child)) 1186eda14cbcSMatt Macy break; /* not a descendant, return */ 1187eda14cbcSMatt Macy zfs_dispatch_mount(mp->mnt_hdl, handles, num_handles, i, 1188eda14cbcSMatt Macy mp->mnt_func, mp->mnt_data, mp->mnt_tp); 1189eda14cbcSMatt Macy } 1190c03c5b1cSMartin Matuska 1191c03c5b1cSMartin Matuska out: 1192eda14cbcSMatt Macy free(mp); 1193eda14cbcSMatt Macy } 1194eda14cbcSMatt Macy 1195eda14cbcSMatt Macy /* 1196eda14cbcSMatt Macy * Issue the func callback for each ZFS handle contained in the handles 1197eda14cbcSMatt Macy * array. This function is used to mount all datasets, and so this function 1198eda14cbcSMatt Macy * guarantees that filesystems for parent mountpoints are called before their 1199eda14cbcSMatt Macy * children. As such, before issuing any callbacks, we first sort the array 1200eda14cbcSMatt Macy * of handles by mountpoint. 1201eda14cbcSMatt Macy * 1202eda14cbcSMatt Macy * Callbacks are issued in one of two ways: 1203eda14cbcSMatt Macy * 1204eda14cbcSMatt Macy * 1. Sequentially: If the parallel argument is B_FALSE or the ZFS_SERIAL_MOUNT 1205eda14cbcSMatt Macy * environment variable is set, then we issue callbacks sequentially. 1206eda14cbcSMatt Macy * 1207eda14cbcSMatt Macy * 2. In parallel: If the parallel argument is B_TRUE and the ZFS_SERIAL_MOUNT 1208eda14cbcSMatt Macy * environment variable is not set, then we use a tpool to dispatch threads 1209eda14cbcSMatt Macy * to mount filesystems in parallel. This function dispatches tasks to mount 1210eda14cbcSMatt Macy * the filesystems at the top-level mountpoints, and these tasks in turn 1211eda14cbcSMatt Macy * are responsible for recursively mounting filesystems in their children 1212eda14cbcSMatt Macy * mountpoints. 1213eda14cbcSMatt Macy */ 1214eda14cbcSMatt Macy void 1215eda14cbcSMatt Macy zfs_foreach_mountpoint(libzfs_handle_t *hdl, zfs_handle_t **handles, 1216eda14cbcSMatt Macy size_t num_handles, zfs_iter_f func, void *data, boolean_t parallel) 1217eda14cbcSMatt Macy { 1218eda14cbcSMatt Macy zoneid_t zoneid = getzoneid(); 1219eda14cbcSMatt Macy 1220eda14cbcSMatt Macy /* 1221eda14cbcSMatt Macy * The ZFS_SERIAL_MOUNT environment variable is an undocumented 1222eda14cbcSMatt Macy * variable that can be used as a convenience to do a/b comparison 1223eda14cbcSMatt Macy * of serial vs. parallel mounting. 1224eda14cbcSMatt Macy */ 1225eda14cbcSMatt Macy boolean_t serial_mount = !parallel || 1226eda14cbcSMatt Macy (getenv("ZFS_SERIAL_MOUNT") != NULL); 1227eda14cbcSMatt Macy 1228eda14cbcSMatt Macy /* 1229eda14cbcSMatt Macy * Sort the datasets by mountpoint. See mountpoint_cmp for details 1230eda14cbcSMatt Macy * of how these are sorted. 1231eda14cbcSMatt Macy */ 1232eda14cbcSMatt Macy qsort(handles, num_handles, sizeof (zfs_handle_t *), mountpoint_cmp); 1233eda14cbcSMatt Macy 1234eda14cbcSMatt Macy if (serial_mount) { 1235eda14cbcSMatt Macy for (int i = 0; i < num_handles; i++) { 1236eda14cbcSMatt Macy func(handles[i], data); 1237eda14cbcSMatt Macy } 1238eda14cbcSMatt Macy return; 1239eda14cbcSMatt Macy } 1240eda14cbcSMatt Macy 1241eda14cbcSMatt Macy /* 1242eda14cbcSMatt Macy * Issue the callback function for each dataset using a parallel 1243eda14cbcSMatt Macy * algorithm that uses a thread pool to manage threads. 1244eda14cbcSMatt Macy */ 1245eda14cbcSMatt Macy tpool_t *tp = tpool_create(1, mount_tp_nthr, 0, NULL); 1246eda14cbcSMatt Macy 1247eda14cbcSMatt Macy /* 1248eda14cbcSMatt Macy * There may be multiple "top level" mountpoints outside of the pool's 1249eda14cbcSMatt Macy * root mountpoint, e.g.: /foo /bar. Dispatch a mount task for each of 1250eda14cbcSMatt Macy * these. 1251eda14cbcSMatt Macy */ 1252eda14cbcSMatt Macy for (int i = 0; i < num_handles; 1253eda14cbcSMatt Macy i = non_descendant_idx(handles, num_handles, i)) { 1254eda14cbcSMatt Macy /* 1255eda14cbcSMatt Macy * Since the mountpoints have been sorted so that the zoned 1256eda14cbcSMatt Macy * filesystems are at the end, a zoned filesystem seen from 1257eda14cbcSMatt Macy * the global zone means that we're done. 1258eda14cbcSMatt Macy */ 1259eda14cbcSMatt Macy if (zoneid == GLOBAL_ZONEID && 1260eda14cbcSMatt Macy zfs_prop_get_int(handles[i], ZFS_PROP_ZONED)) 1261eda14cbcSMatt Macy break; 1262eda14cbcSMatt Macy zfs_dispatch_mount(hdl, handles, num_handles, i, func, data, 1263eda14cbcSMatt Macy tp); 1264eda14cbcSMatt Macy } 1265eda14cbcSMatt Macy 1266eda14cbcSMatt Macy tpool_wait(tp); /* wait for all scheduled mounts to complete */ 1267eda14cbcSMatt Macy tpool_destroy(tp); 1268eda14cbcSMatt Macy } 1269eda14cbcSMatt Macy 1270eda14cbcSMatt Macy /* 1271eda14cbcSMatt Macy * Mount and share all datasets within the given pool. This assumes that no 1272eda14cbcSMatt Macy * datasets within the pool are currently mounted. 1273eda14cbcSMatt Macy */ 1274eda14cbcSMatt Macy int 1275eda14cbcSMatt Macy zpool_enable_datasets(zpool_handle_t *zhp, const char *mntopts, int flags) 1276eda14cbcSMatt Macy { 1277eda14cbcSMatt Macy get_all_cb_t cb = { 0 }; 1278eda14cbcSMatt Macy mount_state_t ms = { 0 }; 1279eda14cbcSMatt Macy zfs_handle_t *zfsp; 1280eda14cbcSMatt Macy int ret = 0; 1281eda14cbcSMatt Macy 1282eda14cbcSMatt Macy if ((zfsp = zfs_open(zhp->zpool_hdl, zhp->zpool_name, 1283eda14cbcSMatt Macy ZFS_TYPE_DATASET)) == NULL) 1284eda14cbcSMatt Macy goto out; 1285eda14cbcSMatt Macy 1286eda14cbcSMatt Macy /* 1287eda14cbcSMatt Macy * Gather all non-snapshot datasets within the pool. Start by adding 1288eda14cbcSMatt Macy * the root filesystem for this pool to the list, and then iterate 1289eda14cbcSMatt Macy * over all child filesystems. 1290eda14cbcSMatt Macy */ 1291eda14cbcSMatt Macy libzfs_add_handle(&cb, zfsp); 129215f0b8c3SMartin Matuska if (zfs_iter_filesystems(zfsp, 0, zfs_iter_cb, &cb) != 0) 1293eda14cbcSMatt Macy goto out; 1294eda14cbcSMatt Macy 1295eda14cbcSMatt Macy /* 1296eda14cbcSMatt Macy * Mount all filesystems 1297eda14cbcSMatt Macy */ 1298eda14cbcSMatt Macy ms.ms_mntopts = mntopts; 1299eda14cbcSMatt Macy ms.ms_mntflags = flags; 1300eda14cbcSMatt Macy zfs_foreach_mountpoint(zhp->zpool_hdl, cb.cb_handles, cb.cb_used, 1301eda14cbcSMatt Macy zfs_mount_one, &ms, B_TRUE); 1302eda14cbcSMatt Macy if (ms.ms_mntstatus != 0) 1303eda14cbcSMatt Macy ret = ms.ms_mntstatus; 1304eda14cbcSMatt Macy 1305eda14cbcSMatt Macy /* 1306eda14cbcSMatt Macy * Share all filesystems that need to be shared. This needs to be 1307eda14cbcSMatt Macy * a separate pass because libshare is not mt-safe, and so we need 1308eda14cbcSMatt Macy * to share serially. 1309eda14cbcSMatt Macy */ 1310eda14cbcSMatt Macy ms.ms_mntstatus = 0; 1311eda14cbcSMatt Macy zfs_foreach_mountpoint(zhp->zpool_hdl, cb.cb_handles, cb.cb_used, 1312eda14cbcSMatt Macy zfs_share_one, &ms, B_FALSE); 1313eda14cbcSMatt Macy if (ms.ms_mntstatus != 0) 1314eda14cbcSMatt Macy ret = ms.ms_mntstatus; 1315eda14cbcSMatt Macy else 1316716fd348SMartin Matuska zfs_commit_shares(NULL); 1317eda14cbcSMatt Macy 1318eda14cbcSMatt Macy out: 1319eda14cbcSMatt Macy for (int i = 0; i < cb.cb_used; i++) 1320eda14cbcSMatt Macy zfs_close(cb.cb_handles[i]); 1321eda14cbcSMatt Macy free(cb.cb_handles); 1322eda14cbcSMatt Macy 1323eda14cbcSMatt Macy return (ret); 1324eda14cbcSMatt Macy } 1325eda14cbcSMatt Macy 13263f9d360cSMartin Matuska struct sets_s { 13273f9d360cSMartin Matuska char *mountpoint; 13283f9d360cSMartin Matuska zfs_handle_t *dataset; 13293f9d360cSMartin Matuska }; 13303f9d360cSMartin Matuska 1331eda14cbcSMatt Macy static int 1332eda14cbcSMatt Macy mountpoint_compare(const void *a, const void *b) 1333eda14cbcSMatt Macy { 13343f9d360cSMartin Matuska const struct sets_s *mounta = (struct sets_s *)a; 13353f9d360cSMartin Matuska const struct sets_s *mountb = (struct sets_s *)b; 1336eda14cbcSMatt Macy 13373f9d360cSMartin Matuska return (strcmp(mountb->mountpoint, mounta->mountpoint)); 1338eda14cbcSMatt Macy } 1339eda14cbcSMatt Macy 1340eda14cbcSMatt Macy /* 1341eda14cbcSMatt Macy * Unshare and unmount all datasets within the given pool. We don't want to 1342eda14cbcSMatt Macy * rely on traversing the DSL to discover the filesystems within the pool, 1343eda14cbcSMatt Macy * because this may be expensive (if not all of them are mounted), and can fail 1344eda14cbcSMatt Macy * arbitrarily (on I/O error, for example). Instead, we walk /proc/self/mounts 1345eda14cbcSMatt Macy * and gather all the filesystems that are currently mounted. 1346eda14cbcSMatt Macy */ 1347eda14cbcSMatt Macy int 1348eda14cbcSMatt Macy zpool_disable_datasets(zpool_handle_t *zhp, boolean_t force) 1349eda14cbcSMatt Macy { 1350eda14cbcSMatt Macy int used, alloc; 135116038816SMartin Matuska FILE *mnttab; 1352eda14cbcSMatt Macy struct mnttab entry; 1353eda14cbcSMatt Macy size_t namelen; 13543f9d360cSMartin Matuska struct sets_s *sets = NULL; 1355eda14cbcSMatt Macy libzfs_handle_t *hdl = zhp->zpool_hdl; 1356eda14cbcSMatt Macy int i; 1357eda14cbcSMatt Macy int ret = -1; 1358eda14cbcSMatt Macy int flags = (force ? MS_FORCE : 0); 1359eda14cbcSMatt Macy 1360eda14cbcSMatt Macy namelen = strlen(zhp->zpool_name); 1361eda14cbcSMatt Macy 136216038816SMartin Matuska if ((mnttab = fopen(MNTTAB, "re")) == NULL) 1363eda14cbcSMatt Macy return (ENOENT); 1364eda14cbcSMatt Macy 1365eda14cbcSMatt Macy used = alloc = 0; 136616038816SMartin Matuska while (getmntent(mnttab, &entry) == 0) { 1367eda14cbcSMatt Macy /* 1368eda14cbcSMatt Macy * Ignore non-ZFS entries. 1369eda14cbcSMatt Macy */ 1370eda14cbcSMatt Macy if (entry.mnt_fstype == NULL || 1371eda14cbcSMatt Macy strcmp(entry.mnt_fstype, MNTTYPE_ZFS) != 0) 1372eda14cbcSMatt Macy continue; 1373eda14cbcSMatt Macy 1374eda14cbcSMatt Macy /* 1375eda14cbcSMatt Macy * Ignore filesystems not within this pool. 1376eda14cbcSMatt Macy */ 1377eda14cbcSMatt Macy if (entry.mnt_mountp == NULL || 1378eda14cbcSMatt Macy strncmp(entry.mnt_special, zhp->zpool_name, namelen) != 0 || 1379eda14cbcSMatt Macy (entry.mnt_special[namelen] != '/' && 1380eda14cbcSMatt Macy entry.mnt_special[namelen] != '\0')) 1381eda14cbcSMatt Macy continue; 1382eda14cbcSMatt Macy 1383eda14cbcSMatt Macy /* 1384eda14cbcSMatt Macy * At this point we've found a filesystem within our pool. Add 1385eda14cbcSMatt Macy * it to our growing list. 1386eda14cbcSMatt Macy */ 1387eda14cbcSMatt Macy if (used == alloc) { 1388eda14cbcSMatt Macy if (alloc == 0) { 1389716fd348SMartin Matuska sets = zfs_alloc(hdl, 1390716fd348SMartin Matuska 8 * sizeof (struct sets_s)); 1391eda14cbcSMatt Macy alloc = 8; 1392eda14cbcSMatt Macy } else { 1393716fd348SMartin Matuska sets = zfs_realloc(hdl, sets, 13943f9d360cSMartin Matuska alloc * sizeof (struct sets_s), 1395716fd348SMartin Matuska alloc * 2 * sizeof (struct sets_s)); 1396eda14cbcSMatt Macy 1397eda14cbcSMatt Macy alloc *= 2; 1398eda14cbcSMatt Macy } 1399eda14cbcSMatt Macy } 1400eda14cbcSMatt Macy 1401716fd348SMartin Matuska sets[used].mountpoint = zfs_strdup(hdl, entry.mnt_mountp); 1402eda14cbcSMatt Macy 1403eda14cbcSMatt Macy /* 1404eda14cbcSMatt Macy * This is allowed to fail, in case there is some I/O error. It 1405eda14cbcSMatt Macy * is only used to determine if we need to remove the underlying 1406eda14cbcSMatt Macy * mountpoint, so failure is not fatal. 1407eda14cbcSMatt Macy */ 14083f9d360cSMartin Matuska sets[used].dataset = make_dataset_handle(hdl, 14093f9d360cSMartin Matuska entry.mnt_special); 1410eda14cbcSMatt Macy 1411eda14cbcSMatt Macy used++; 1412eda14cbcSMatt Macy } 1413eda14cbcSMatt Macy 1414eda14cbcSMatt Macy /* 1415eda14cbcSMatt Macy * At this point, we have the entire list of filesystems, so sort it by 1416eda14cbcSMatt Macy * mountpoint. 1417eda14cbcSMatt Macy */ 1418c03c5b1cSMartin Matuska if (used != 0) 14193f9d360cSMartin Matuska qsort(sets, used, sizeof (struct sets_s), mountpoint_compare); 1420eda14cbcSMatt Macy 1421eda14cbcSMatt Macy /* 1422eda14cbcSMatt Macy * Walk through and first unshare everything. 1423eda14cbcSMatt Macy */ 1424eda14cbcSMatt Macy for (i = 0; i < used; i++) { 1425c9539b89SMartin Matuska for (enum sa_protocol p = 0; p < SA_PROTOCOL_COUNT; ++p) { 1426c9539b89SMartin Matuska if (sa_is_shared(sets[i].mountpoint, p) && 14273f9d360cSMartin Matuska unshare_one(hdl, sets[i].mountpoint, 1428c9539b89SMartin Matuska sets[i].mountpoint, p) != 0) 1429eda14cbcSMatt Macy goto out; 1430eda14cbcSMatt Macy } 1431eda14cbcSMatt Macy } 1432716fd348SMartin Matuska zfs_commit_shares(NULL); 1433eda14cbcSMatt Macy 1434eda14cbcSMatt Macy /* 1435eda14cbcSMatt Macy * Now unmount everything, removing the underlying directories as 1436eda14cbcSMatt Macy * appropriate. 1437eda14cbcSMatt Macy */ 1438eda14cbcSMatt Macy for (i = 0; i < used; i++) { 14393f9d360cSMartin Matuska if (unmount_one(sets[i].dataset, sets[i].mountpoint, 14403f9d360cSMartin Matuska flags) != 0) 1441eda14cbcSMatt Macy goto out; 1442eda14cbcSMatt Macy } 1443eda14cbcSMatt Macy 1444eda14cbcSMatt Macy for (i = 0; i < used; i++) { 14453f9d360cSMartin Matuska if (sets[i].dataset) 14463f9d360cSMartin Matuska remove_mountpoint(sets[i].dataset); 1447eda14cbcSMatt Macy } 1448eda14cbcSMatt Macy 144953b70c86SMartin Matuska zpool_disable_datasets_os(zhp, force); 145053b70c86SMartin Matuska 1451eda14cbcSMatt Macy ret = 0; 1452eda14cbcSMatt Macy out: 145316038816SMartin Matuska (void) fclose(mnttab); 1454eda14cbcSMatt Macy for (i = 0; i < used; i++) { 14553f9d360cSMartin Matuska if (sets[i].dataset) 14563f9d360cSMartin Matuska zfs_close(sets[i].dataset); 14573f9d360cSMartin Matuska free(sets[i].mountpoint); 1458eda14cbcSMatt Macy } 14593f9d360cSMartin Matuska free(sets); 1460eda14cbcSMatt Macy 1461eda14cbcSMatt Macy return (ret); 1462eda14cbcSMatt Macy } 1463