1 /* 2 * linux/fs/namespace.c 3 * 4 * (C) Copyright Al Viro 2000, 2001 5 * Released under GPL v2. 6 * 7 * Based on code from fs/super.c, copyright Linus Torvalds and others. 8 * Heavily rewritten. 9 */ 10 11 #include <linux/syscalls.h> 12 #include <linux/export.h> 13 #include <linux/capability.h> 14 #include <linux/mnt_namespace.h> 15 #include <linux/user_namespace.h> 16 #include <linux/namei.h> 17 #include <linux/security.h> 18 #include <linux/cred.h> 19 #include <linux/idr.h> 20 #include <linux/init.h> /* init_rootfs */ 21 #include <linux/fs_struct.h> /* get_fs_root et.al. */ 22 #include <linux/fsnotify.h> /* fsnotify_vfsmount_delete */ 23 #include <linux/uaccess.h> 24 #include <linux/proc_ns.h> 25 #include <linux/magic.h> 26 #include <linux/bootmem.h> 27 #include <linux/task_work.h> 28 #include <linux/sched/task.h> 29 30 #include "pnode.h" 31 #include "internal.h" 32 33 /* Maximum number of mounts in a mount namespace */ 34 unsigned int sysctl_mount_max __read_mostly = 100000; 35 36 static unsigned int m_hash_mask __read_mostly; 37 static unsigned int m_hash_shift __read_mostly; 38 static unsigned int mp_hash_mask __read_mostly; 39 static unsigned int mp_hash_shift __read_mostly; 40 41 static __initdata unsigned long mhash_entries; 42 static int __init set_mhash_entries(char *str) 43 { 44 if (!str) 45 return 0; 46 mhash_entries = simple_strtoul(str, &str, 0); 47 return 1; 48 } 49 __setup("mhash_entries=", set_mhash_entries); 50 51 static __initdata unsigned long mphash_entries; 52 static int __init set_mphash_entries(char *str) 53 { 54 if (!str) 55 return 0; 56 mphash_entries = simple_strtoul(str, &str, 0); 57 return 1; 58 } 59 __setup("mphash_entries=", set_mphash_entries); 60 61 static u64 event; 62 static DEFINE_IDA(mnt_id_ida); 63 static DEFINE_IDA(mnt_group_ida); 64 65 static struct hlist_head *mount_hashtable __read_mostly; 66 static struct hlist_head *mountpoint_hashtable __read_mostly; 67 static struct kmem_cache *mnt_cache __read_mostly; 68 static DECLARE_RWSEM(namespace_sem); 69 70 /* /sys/fs */ 71 struct kobject *fs_kobj; 72 EXPORT_SYMBOL_GPL(fs_kobj); 73 74 /* 75 * vfsmount lock may be taken for read to prevent changes to the 76 * vfsmount hash, ie. during mountpoint lookups or walking back 77 * up the tree. 78 * 79 * It should be taken for write in all cases where the vfsmount 80 * tree or hash is modified or when a vfsmount structure is modified. 81 */ 82 __cacheline_aligned_in_smp DEFINE_SEQLOCK(mount_lock); 83 84 static inline struct hlist_head *m_hash(struct vfsmount *mnt, struct dentry *dentry) 85 { 86 unsigned long tmp = ((unsigned long)mnt / L1_CACHE_BYTES); 87 tmp += ((unsigned long)dentry / L1_CACHE_BYTES); 88 tmp = tmp + (tmp >> m_hash_shift); 89 return &mount_hashtable[tmp & m_hash_mask]; 90 } 91 92 static inline struct hlist_head *mp_hash(struct dentry *dentry) 93 { 94 unsigned long tmp = ((unsigned long)dentry / L1_CACHE_BYTES); 95 tmp = tmp + (tmp >> mp_hash_shift); 96 return &mountpoint_hashtable[tmp & mp_hash_mask]; 97 } 98 99 static int mnt_alloc_id(struct mount *mnt) 100 { 101 int res = ida_alloc(&mnt_id_ida, GFP_KERNEL); 102 103 if (res < 0) 104 return res; 105 mnt->mnt_id = res; 106 return 0; 107 } 108 109 static void mnt_free_id(struct mount *mnt) 110 { 111 ida_free(&mnt_id_ida, mnt->mnt_id); 112 } 113 114 /* 115 * Allocate a new peer group ID 116 */ 117 static int mnt_alloc_group_id(struct mount *mnt) 118 { 119 int res = ida_alloc_min(&mnt_group_ida, 1, GFP_KERNEL); 120 121 if (res < 0) 122 return res; 123 mnt->mnt_group_id = res; 124 return 0; 125 } 126 127 /* 128 * Release a peer group ID 129 */ 130 void mnt_release_group_id(struct mount *mnt) 131 { 132 ida_free(&mnt_group_ida, mnt->mnt_group_id); 133 mnt->mnt_group_id = 0; 134 } 135 136 /* 137 * vfsmount lock must be held for read 138 */ 139 static inline void mnt_add_count(struct mount *mnt, int n) 140 { 141 #ifdef CONFIG_SMP 142 this_cpu_add(mnt->mnt_pcp->mnt_count, n); 143 #else 144 preempt_disable(); 145 mnt->mnt_count += n; 146 preempt_enable(); 147 #endif 148 } 149 150 /* 151 * vfsmount lock must be held for write 152 */ 153 unsigned int mnt_get_count(struct mount *mnt) 154 { 155 #ifdef CONFIG_SMP 156 unsigned int count = 0; 157 int cpu; 158 159 for_each_possible_cpu(cpu) { 160 count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_count; 161 } 162 163 return count; 164 #else 165 return mnt->mnt_count; 166 #endif 167 } 168 169 static void drop_mountpoint(struct fs_pin *p) 170 { 171 struct mount *m = container_of(p, struct mount, mnt_umount); 172 dput(m->mnt_ex_mountpoint); 173 pin_remove(p); 174 mntput(&m->mnt); 175 } 176 177 static struct mount *alloc_vfsmnt(const char *name) 178 { 179 struct mount *mnt = kmem_cache_zalloc(mnt_cache, GFP_KERNEL); 180 if (mnt) { 181 int err; 182 183 err = mnt_alloc_id(mnt); 184 if (err) 185 goto out_free_cache; 186 187 if (name) { 188 mnt->mnt_devname = kstrdup_const(name, GFP_KERNEL); 189 if (!mnt->mnt_devname) 190 goto out_free_id; 191 } 192 193 #ifdef CONFIG_SMP 194 mnt->mnt_pcp = alloc_percpu(struct mnt_pcp); 195 if (!mnt->mnt_pcp) 196 goto out_free_devname; 197 198 this_cpu_add(mnt->mnt_pcp->mnt_count, 1); 199 #else 200 mnt->mnt_count = 1; 201 mnt->mnt_writers = 0; 202 #endif 203 204 INIT_HLIST_NODE(&mnt->mnt_hash); 205 INIT_LIST_HEAD(&mnt->mnt_child); 206 INIT_LIST_HEAD(&mnt->mnt_mounts); 207 INIT_LIST_HEAD(&mnt->mnt_list); 208 INIT_LIST_HEAD(&mnt->mnt_expire); 209 INIT_LIST_HEAD(&mnt->mnt_share); 210 INIT_LIST_HEAD(&mnt->mnt_slave_list); 211 INIT_LIST_HEAD(&mnt->mnt_slave); 212 INIT_HLIST_NODE(&mnt->mnt_mp_list); 213 INIT_LIST_HEAD(&mnt->mnt_umounting); 214 init_fs_pin(&mnt->mnt_umount, drop_mountpoint); 215 } 216 return mnt; 217 218 #ifdef CONFIG_SMP 219 out_free_devname: 220 kfree_const(mnt->mnt_devname); 221 #endif 222 out_free_id: 223 mnt_free_id(mnt); 224 out_free_cache: 225 kmem_cache_free(mnt_cache, mnt); 226 return NULL; 227 } 228 229 /* 230 * Most r/o checks on a fs are for operations that take 231 * discrete amounts of time, like a write() or unlink(). 232 * We must keep track of when those operations start 233 * (for permission checks) and when they end, so that 234 * we can determine when writes are able to occur to 235 * a filesystem. 236 */ 237 /* 238 * __mnt_is_readonly: check whether a mount is read-only 239 * @mnt: the mount to check for its write status 240 * 241 * This shouldn't be used directly ouside of the VFS. 242 * It does not guarantee that the filesystem will stay 243 * r/w, just that it is right *now*. This can not and 244 * should not be used in place of IS_RDONLY(inode). 245 * mnt_want/drop_write() will _keep_ the filesystem 246 * r/w. 247 */ 248 int __mnt_is_readonly(struct vfsmount *mnt) 249 { 250 if (mnt->mnt_flags & MNT_READONLY) 251 return 1; 252 if (sb_rdonly(mnt->mnt_sb)) 253 return 1; 254 return 0; 255 } 256 EXPORT_SYMBOL_GPL(__mnt_is_readonly); 257 258 static inline void mnt_inc_writers(struct mount *mnt) 259 { 260 #ifdef CONFIG_SMP 261 this_cpu_inc(mnt->mnt_pcp->mnt_writers); 262 #else 263 mnt->mnt_writers++; 264 #endif 265 } 266 267 static inline void mnt_dec_writers(struct mount *mnt) 268 { 269 #ifdef CONFIG_SMP 270 this_cpu_dec(mnt->mnt_pcp->mnt_writers); 271 #else 272 mnt->mnt_writers--; 273 #endif 274 } 275 276 static unsigned int mnt_get_writers(struct mount *mnt) 277 { 278 #ifdef CONFIG_SMP 279 unsigned int count = 0; 280 int cpu; 281 282 for_each_possible_cpu(cpu) { 283 count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_writers; 284 } 285 286 return count; 287 #else 288 return mnt->mnt_writers; 289 #endif 290 } 291 292 static int mnt_is_readonly(struct vfsmount *mnt) 293 { 294 if (mnt->mnt_sb->s_readonly_remount) 295 return 1; 296 /* Order wrt setting s_flags/s_readonly_remount in do_remount() */ 297 smp_rmb(); 298 return __mnt_is_readonly(mnt); 299 } 300 301 /* 302 * Most r/o & frozen checks on a fs are for operations that take discrete 303 * amounts of time, like a write() or unlink(). We must keep track of when 304 * those operations start (for permission checks) and when they end, so that we 305 * can determine when writes are able to occur to a filesystem. 306 */ 307 /** 308 * __mnt_want_write - get write access to a mount without freeze protection 309 * @m: the mount on which to take a write 310 * 311 * This tells the low-level filesystem that a write is about to be performed to 312 * it, and makes sure that writes are allowed (mnt it read-write) before 313 * returning success. This operation does not protect against filesystem being 314 * frozen. When the write operation is finished, __mnt_drop_write() must be 315 * called. This is effectively a refcount. 316 */ 317 int __mnt_want_write(struct vfsmount *m) 318 { 319 struct mount *mnt = real_mount(m); 320 int ret = 0; 321 322 preempt_disable(); 323 mnt_inc_writers(mnt); 324 /* 325 * The store to mnt_inc_writers must be visible before we pass 326 * MNT_WRITE_HOLD loop below, so that the slowpath can see our 327 * incremented count after it has set MNT_WRITE_HOLD. 328 */ 329 smp_mb(); 330 while (READ_ONCE(mnt->mnt.mnt_flags) & MNT_WRITE_HOLD) 331 cpu_relax(); 332 /* 333 * After the slowpath clears MNT_WRITE_HOLD, mnt_is_readonly will 334 * be set to match its requirements. So we must not load that until 335 * MNT_WRITE_HOLD is cleared. 336 */ 337 smp_rmb(); 338 if (mnt_is_readonly(m)) { 339 mnt_dec_writers(mnt); 340 ret = -EROFS; 341 } 342 preempt_enable(); 343 344 return ret; 345 } 346 347 /** 348 * mnt_want_write - get write access to a mount 349 * @m: the mount on which to take a write 350 * 351 * This tells the low-level filesystem that a write is about to be performed to 352 * it, and makes sure that writes are allowed (mount is read-write, filesystem 353 * is not frozen) before returning success. When the write operation is 354 * finished, mnt_drop_write() must be called. This is effectively a refcount. 355 */ 356 int mnt_want_write(struct vfsmount *m) 357 { 358 int ret; 359 360 sb_start_write(m->mnt_sb); 361 ret = __mnt_want_write(m); 362 if (ret) 363 sb_end_write(m->mnt_sb); 364 return ret; 365 } 366 EXPORT_SYMBOL_GPL(mnt_want_write); 367 368 /** 369 * mnt_clone_write - get write access to a mount 370 * @mnt: the mount on which to take a write 371 * 372 * This is effectively like mnt_want_write, except 373 * it must only be used to take an extra write reference 374 * on a mountpoint that we already know has a write reference 375 * on it. This allows some optimisation. 376 * 377 * After finished, mnt_drop_write must be called as usual to 378 * drop the reference. 379 */ 380 int mnt_clone_write(struct vfsmount *mnt) 381 { 382 /* superblock may be r/o */ 383 if (__mnt_is_readonly(mnt)) 384 return -EROFS; 385 preempt_disable(); 386 mnt_inc_writers(real_mount(mnt)); 387 preempt_enable(); 388 return 0; 389 } 390 EXPORT_SYMBOL_GPL(mnt_clone_write); 391 392 /** 393 * __mnt_want_write_file - get write access to a file's mount 394 * @file: the file who's mount on which to take a write 395 * 396 * This is like __mnt_want_write, but it takes a file and can 397 * do some optimisations if the file is open for write already 398 */ 399 int __mnt_want_write_file(struct file *file) 400 { 401 if (!(file->f_mode & FMODE_WRITER)) 402 return __mnt_want_write(file->f_path.mnt); 403 else 404 return mnt_clone_write(file->f_path.mnt); 405 } 406 407 /** 408 * mnt_want_write_file_path - get write access to a file's mount 409 * @file: the file who's mount on which to take a write 410 * 411 * This is like mnt_want_write, but it takes a file and can 412 * do some optimisations if the file is open for write already 413 * 414 * Called by the vfs for cases when we have an open file at hand, but will do an 415 * inode operation on it (important distinction for files opened on overlayfs, 416 * since the file operations will come from the real underlying file, while 417 * inode operations come from the overlay). 418 */ 419 int mnt_want_write_file_path(struct file *file) 420 { 421 int ret; 422 423 sb_start_write(file->f_path.mnt->mnt_sb); 424 ret = __mnt_want_write_file(file); 425 if (ret) 426 sb_end_write(file->f_path.mnt->mnt_sb); 427 return ret; 428 } 429 430 static inline int may_write_real(struct file *file) 431 { 432 struct dentry *dentry = file->f_path.dentry; 433 struct dentry *upperdentry; 434 435 /* Writable file? */ 436 if (file->f_mode & FMODE_WRITER) 437 return 0; 438 439 /* Not overlayfs? */ 440 if (likely(!(dentry->d_flags & DCACHE_OP_REAL))) 441 return 0; 442 443 /* File refers to upper, writable layer? */ 444 upperdentry = d_real(dentry, NULL, 0, D_REAL_UPPER); 445 if (upperdentry && 446 (file_inode(file) == d_inode(upperdentry) || 447 file_inode(file) == d_inode(dentry))) 448 return 0; 449 450 /* Lower layer: can't write to real file, sorry... */ 451 return -EPERM; 452 } 453 454 /** 455 * mnt_want_write_file - get write access to a file's mount 456 * @file: the file who's mount on which to take a write 457 * 458 * This is like mnt_want_write, but it takes a file and can 459 * do some optimisations if the file is open for write already 460 * 461 * Mostly called by filesystems from their ioctl operation before performing 462 * modification. On overlayfs this needs to check if the file is on a read-only 463 * lower layer and deny access in that case. 464 */ 465 int mnt_want_write_file(struct file *file) 466 { 467 int ret; 468 469 ret = may_write_real(file); 470 if (!ret) { 471 sb_start_write(file_inode(file)->i_sb); 472 ret = __mnt_want_write_file(file); 473 if (ret) 474 sb_end_write(file_inode(file)->i_sb); 475 } 476 return ret; 477 } 478 EXPORT_SYMBOL_GPL(mnt_want_write_file); 479 480 /** 481 * __mnt_drop_write - give up write access to a mount 482 * @mnt: the mount on which to give up write access 483 * 484 * Tells the low-level filesystem that we are done 485 * performing writes to it. Must be matched with 486 * __mnt_want_write() call above. 487 */ 488 void __mnt_drop_write(struct vfsmount *mnt) 489 { 490 preempt_disable(); 491 mnt_dec_writers(real_mount(mnt)); 492 preempt_enable(); 493 } 494 495 /** 496 * mnt_drop_write - give up write access to a mount 497 * @mnt: the mount on which to give up write access 498 * 499 * Tells the low-level filesystem that we are done performing writes to it and 500 * also allows filesystem to be frozen again. Must be matched with 501 * mnt_want_write() call above. 502 */ 503 void mnt_drop_write(struct vfsmount *mnt) 504 { 505 __mnt_drop_write(mnt); 506 sb_end_write(mnt->mnt_sb); 507 } 508 EXPORT_SYMBOL_GPL(mnt_drop_write); 509 510 void __mnt_drop_write_file(struct file *file) 511 { 512 __mnt_drop_write(file->f_path.mnt); 513 } 514 515 void mnt_drop_write_file_path(struct file *file) 516 { 517 mnt_drop_write(file->f_path.mnt); 518 } 519 520 void mnt_drop_write_file(struct file *file) 521 { 522 __mnt_drop_write(file->f_path.mnt); 523 sb_end_write(file_inode(file)->i_sb); 524 } 525 EXPORT_SYMBOL(mnt_drop_write_file); 526 527 static int mnt_make_readonly(struct mount *mnt) 528 { 529 int ret = 0; 530 531 lock_mount_hash(); 532 mnt->mnt.mnt_flags |= MNT_WRITE_HOLD; 533 /* 534 * After storing MNT_WRITE_HOLD, we'll read the counters. This store 535 * should be visible before we do. 536 */ 537 smp_mb(); 538 539 /* 540 * With writers on hold, if this value is zero, then there are 541 * definitely no active writers (although held writers may subsequently 542 * increment the count, they'll have to wait, and decrement it after 543 * seeing MNT_READONLY). 544 * 545 * It is OK to have counter incremented on one CPU and decremented on 546 * another: the sum will add up correctly. The danger would be when we 547 * sum up each counter, if we read a counter before it is incremented, 548 * but then read another CPU's count which it has been subsequently 549 * decremented from -- we would see more decrements than we should. 550 * MNT_WRITE_HOLD protects against this scenario, because 551 * mnt_want_write first increments count, then smp_mb, then spins on 552 * MNT_WRITE_HOLD, so it can't be decremented by another CPU while 553 * we're counting up here. 554 */ 555 if (mnt_get_writers(mnt) > 0) 556 ret = -EBUSY; 557 else 558 mnt->mnt.mnt_flags |= MNT_READONLY; 559 /* 560 * MNT_READONLY must become visible before ~MNT_WRITE_HOLD, so writers 561 * that become unheld will see MNT_READONLY. 562 */ 563 smp_wmb(); 564 mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD; 565 unlock_mount_hash(); 566 return ret; 567 } 568 569 static void __mnt_unmake_readonly(struct mount *mnt) 570 { 571 lock_mount_hash(); 572 mnt->mnt.mnt_flags &= ~MNT_READONLY; 573 unlock_mount_hash(); 574 } 575 576 int sb_prepare_remount_readonly(struct super_block *sb) 577 { 578 struct mount *mnt; 579 int err = 0; 580 581 /* Racy optimization. Recheck the counter under MNT_WRITE_HOLD */ 582 if (atomic_long_read(&sb->s_remove_count)) 583 return -EBUSY; 584 585 lock_mount_hash(); 586 list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) { 587 if (!(mnt->mnt.mnt_flags & MNT_READONLY)) { 588 mnt->mnt.mnt_flags |= MNT_WRITE_HOLD; 589 smp_mb(); 590 if (mnt_get_writers(mnt) > 0) { 591 err = -EBUSY; 592 break; 593 } 594 } 595 } 596 if (!err && atomic_long_read(&sb->s_remove_count)) 597 err = -EBUSY; 598 599 if (!err) { 600 sb->s_readonly_remount = 1; 601 smp_wmb(); 602 } 603 list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) { 604 if (mnt->mnt.mnt_flags & MNT_WRITE_HOLD) 605 mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD; 606 } 607 unlock_mount_hash(); 608 609 return err; 610 } 611 612 static void free_vfsmnt(struct mount *mnt) 613 { 614 kfree_const(mnt->mnt_devname); 615 #ifdef CONFIG_SMP 616 free_percpu(mnt->mnt_pcp); 617 #endif 618 kmem_cache_free(mnt_cache, mnt); 619 } 620 621 static void delayed_free_vfsmnt(struct rcu_head *head) 622 { 623 free_vfsmnt(container_of(head, struct mount, mnt_rcu)); 624 } 625 626 /* call under rcu_read_lock */ 627 int __legitimize_mnt(struct vfsmount *bastard, unsigned seq) 628 { 629 struct mount *mnt; 630 if (read_seqretry(&mount_lock, seq)) 631 return 1; 632 if (bastard == NULL) 633 return 0; 634 mnt = real_mount(bastard); 635 mnt_add_count(mnt, 1); 636 smp_mb(); // see mntput_no_expire() 637 if (likely(!read_seqretry(&mount_lock, seq))) 638 return 0; 639 if (bastard->mnt_flags & MNT_SYNC_UMOUNT) { 640 mnt_add_count(mnt, -1); 641 return 1; 642 } 643 lock_mount_hash(); 644 if (unlikely(bastard->mnt_flags & MNT_DOOMED)) { 645 mnt_add_count(mnt, -1); 646 unlock_mount_hash(); 647 return 1; 648 } 649 unlock_mount_hash(); 650 /* caller will mntput() */ 651 return -1; 652 } 653 654 /* call under rcu_read_lock */ 655 bool legitimize_mnt(struct vfsmount *bastard, unsigned seq) 656 { 657 int res = __legitimize_mnt(bastard, seq); 658 if (likely(!res)) 659 return true; 660 if (unlikely(res < 0)) { 661 rcu_read_unlock(); 662 mntput(bastard); 663 rcu_read_lock(); 664 } 665 return false; 666 } 667 668 /* 669 * find the first mount at @dentry on vfsmount @mnt. 670 * call under rcu_read_lock() 671 */ 672 struct mount *__lookup_mnt(struct vfsmount *mnt, struct dentry *dentry) 673 { 674 struct hlist_head *head = m_hash(mnt, dentry); 675 struct mount *p; 676 677 hlist_for_each_entry_rcu(p, head, mnt_hash) 678 if (&p->mnt_parent->mnt == mnt && p->mnt_mountpoint == dentry) 679 return p; 680 return NULL; 681 } 682 683 /* 684 * lookup_mnt - Return the first child mount mounted at path 685 * 686 * "First" means first mounted chronologically. If you create the 687 * following mounts: 688 * 689 * mount /dev/sda1 /mnt 690 * mount /dev/sda2 /mnt 691 * mount /dev/sda3 /mnt 692 * 693 * Then lookup_mnt() on the base /mnt dentry in the root mount will 694 * return successively the root dentry and vfsmount of /dev/sda1, then 695 * /dev/sda2, then /dev/sda3, then NULL. 696 * 697 * lookup_mnt takes a reference to the found vfsmount. 698 */ 699 struct vfsmount *lookup_mnt(const struct path *path) 700 { 701 struct mount *child_mnt; 702 struct vfsmount *m; 703 unsigned seq; 704 705 rcu_read_lock(); 706 do { 707 seq = read_seqbegin(&mount_lock); 708 child_mnt = __lookup_mnt(path->mnt, path->dentry); 709 m = child_mnt ? &child_mnt->mnt : NULL; 710 } while (!legitimize_mnt(m, seq)); 711 rcu_read_unlock(); 712 return m; 713 } 714 715 /* 716 * __is_local_mountpoint - Test to see if dentry is a mountpoint in the 717 * current mount namespace. 718 * 719 * The common case is dentries are not mountpoints at all and that 720 * test is handled inline. For the slow case when we are actually 721 * dealing with a mountpoint of some kind, walk through all of the 722 * mounts in the current mount namespace and test to see if the dentry 723 * is a mountpoint. 724 * 725 * The mount_hashtable is not usable in the context because we 726 * need to identify all mounts that may be in the current mount 727 * namespace not just a mount that happens to have some specified 728 * parent mount. 729 */ 730 bool __is_local_mountpoint(struct dentry *dentry) 731 { 732 struct mnt_namespace *ns = current->nsproxy->mnt_ns; 733 struct mount *mnt; 734 bool is_covered = false; 735 736 if (!d_mountpoint(dentry)) 737 goto out; 738 739 down_read(&namespace_sem); 740 list_for_each_entry(mnt, &ns->list, mnt_list) { 741 is_covered = (mnt->mnt_mountpoint == dentry); 742 if (is_covered) 743 break; 744 } 745 up_read(&namespace_sem); 746 out: 747 return is_covered; 748 } 749 750 static struct mountpoint *lookup_mountpoint(struct dentry *dentry) 751 { 752 struct hlist_head *chain = mp_hash(dentry); 753 struct mountpoint *mp; 754 755 hlist_for_each_entry(mp, chain, m_hash) { 756 if (mp->m_dentry == dentry) { 757 /* might be worth a WARN_ON() */ 758 if (d_unlinked(dentry)) 759 return ERR_PTR(-ENOENT); 760 mp->m_count++; 761 return mp; 762 } 763 } 764 return NULL; 765 } 766 767 static struct mountpoint *get_mountpoint(struct dentry *dentry) 768 { 769 struct mountpoint *mp, *new = NULL; 770 int ret; 771 772 if (d_mountpoint(dentry)) { 773 mountpoint: 774 read_seqlock_excl(&mount_lock); 775 mp = lookup_mountpoint(dentry); 776 read_sequnlock_excl(&mount_lock); 777 if (mp) 778 goto done; 779 } 780 781 if (!new) 782 new = kmalloc(sizeof(struct mountpoint), GFP_KERNEL); 783 if (!new) 784 return ERR_PTR(-ENOMEM); 785 786 787 /* Exactly one processes may set d_mounted */ 788 ret = d_set_mounted(dentry); 789 790 /* Someone else set d_mounted? */ 791 if (ret == -EBUSY) 792 goto mountpoint; 793 794 /* The dentry is not available as a mountpoint? */ 795 mp = ERR_PTR(ret); 796 if (ret) 797 goto done; 798 799 /* Add the new mountpoint to the hash table */ 800 read_seqlock_excl(&mount_lock); 801 new->m_dentry = dentry; 802 new->m_count = 1; 803 hlist_add_head(&new->m_hash, mp_hash(dentry)); 804 INIT_HLIST_HEAD(&new->m_list); 805 read_sequnlock_excl(&mount_lock); 806 807 mp = new; 808 new = NULL; 809 done: 810 kfree(new); 811 return mp; 812 } 813 814 static void put_mountpoint(struct mountpoint *mp) 815 { 816 if (!--mp->m_count) { 817 struct dentry *dentry = mp->m_dentry; 818 BUG_ON(!hlist_empty(&mp->m_list)); 819 spin_lock(&dentry->d_lock); 820 dentry->d_flags &= ~DCACHE_MOUNTED; 821 spin_unlock(&dentry->d_lock); 822 hlist_del(&mp->m_hash); 823 kfree(mp); 824 } 825 } 826 827 static inline int check_mnt(struct mount *mnt) 828 { 829 return mnt->mnt_ns == current->nsproxy->mnt_ns; 830 } 831 832 /* 833 * vfsmount lock must be held for write 834 */ 835 static void touch_mnt_namespace(struct mnt_namespace *ns) 836 { 837 if (ns) { 838 ns->event = ++event; 839 wake_up_interruptible(&ns->poll); 840 } 841 } 842 843 /* 844 * vfsmount lock must be held for write 845 */ 846 static void __touch_mnt_namespace(struct mnt_namespace *ns) 847 { 848 if (ns && ns->event != event) { 849 ns->event = event; 850 wake_up_interruptible(&ns->poll); 851 } 852 } 853 854 /* 855 * vfsmount lock must be held for write 856 */ 857 static void unhash_mnt(struct mount *mnt) 858 { 859 mnt->mnt_parent = mnt; 860 mnt->mnt_mountpoint = mnt->mnt.mnt_root; 861 list_del_init(&mnt->mnt_child); 862 hlist_del_init_rcu(&mnt->mnt_hash); 863 hlist_del_init(&mnt->mnt_mp_list); 864 put_mountpoint(mnt->mnt_mp); 865 mnt->mnt_mp = NULL; 866 } 867 868 /* 869 * vfsmount lock must be held for write 870 */ 871 static void detach_mnt(struct mount *mnt, struct path *old_path) 872 { 873 old_path->dentry = mnt->mnt_mountpoint; 874 old_path->mnt = &mnt->mnt_parent->mnt; 875 unhash_mnt(mnt); 876 } 877 878 /* 879 * vfsmount lock must be held for write 880 */ 881 static void umount_mnt(struct mount *mnt) 882 { 883 /* old mountpoint will be dropped when we can do that */ 884 mnt->mnt_ex_mountpoint = mnt->mnt_mountpoint; 885 unhash_mnt(mnt); 886 } 887 888 /* 889 * vfsmount lock must be held for write 890 */ 891 void mnt_set_mountpoint(struct mount *mnt, 892 struct mountpoint *mp, 893 struct mount *child_mnt) 894 { 895 mp->m_count++; 896 mnt_add_count(mnt, 1); /* essentially, that's mntget */ 897 child_mnt->mnt_mountpoint = dget(mp->m_dentry); 898 child_mnt->mnt_parent = mnt; 899 child_mnt->mnt_mp = mp; 900 hlist_add_head(&child_mnt->mnt_mp_list, &mp->m_list); 901 } 902 903 static void __attach_mnt(struct mount *mnt, struct mount *parent) 904 { 905 hlist_add_head_rcu(&mnt->mnt_hash, 906 m_hash(&parent->mnt, mnt->mnt_mountpoint)); 907 list_add_tail(&mnt->mnt_child, &parent->mnt_mounts); 908 } 909 910 /* 911 * vfsmount lock must be held for write 912 */ 913 static void attach_mnt(struct mount *mnt, 914 struct mount *parent, 915 struct mountpoint *mp) 916 { 917 mnt_set_mountpoint(parent, mp, mnt); 918 __attach_mnt(mnt, parent); 919 } 920 921 void mnt_change_mountpoint(struct mount *parent, struct mountpoint *mp, struct mount *mnt) 922 { 923 struct mountpoint *old_mp = mnt->mnt_mp; 924 struct dentry *old_mountpoint = mnt->mnt_mountpoint; 925 struct mount *old_parent = mnt->mnt_parent; 926 927 list_del_init(&mnt->mnt_child); 928 hlist_del_init(&mnt->mnt_mp_list); 929 hlist_del_init_rcu(&mnt->mnt_hash); 930 931 attach_mnt(mnt, parent, mp); 932 933 put_mountpoint(old_mp); 934 935 /* 936 * Safely avoid even the suggestion this code might sleep or 937 * lock the mount hash by taking advantage of the knowledge that 938 * mnt_change_mountpoint will not release the final reference 939 * to a mountpoint. 940 * 941 * During mounting, the mount passed in as the parent mount will 942 * continue to use the old mountpoint and during unmounting, the 943 * old mountpoint will continue to exist until namespace_unlock, 944 * which happens well after mnt_change_mountpoint. 945 */ 946 spin_lock(&old_mountpoint->d_lock); 947 old_mountpoint->d_lockref.count--; 948 spin_unlock(&old_mountpoint->d_lock); 949 950 mnt_add_count(old_parent, -1); 951 } 952 953 /* 954 * vfsmount lock must be held for write 955 */ 956 static void commit_tree(struct mount *mnt) 957 { 958 struct mount *parent = mnt->mnt_parent; 959 struct mount *m; 960 LIST_HEAD(head); 961 struct mnt_namespace *n = parent->mnt_ns; 962 963 BUG_ON(parent == mnt); 964 965 list_add_tail(&head, &mnt->mnt_list); 966 list_for_each_entry(m, &head, mnt_list) 967 m->mnt_ns = n; 968 969 list_splice(&head, n->list.prev); 970 971 n->mounts += n->pending_mounts; 972 n->pending_mounts = 0; 973 974 __attach_mnt(mnt, parent); 975 touch_mnt_namespace(n); 976 } 977 978 static struct mount *next_mnt(struct mount *p, struct mount *root) 979 { 980 struct list_head *next = p->mnt_mounts.next; 981 if (next == &p->mnt_mounts) { 982 while (1) { 983 if (p == root) 984 return NULL; 985 next = p->mnt_child.next; 986 if (next != &p->mnt_parent->mnt_mounts) 987 break; 988 p = p->mnt_parent; 989 } 990 } 991 return list_entry(next, struct mount, mnt_child); 992 } 993 994 static struct mount *skip_mnt_tree(struct mount *p) 995 { 996 struct list_head *prev = p->mnt_mounts.prev; 997 while (prev != &p->mnt_mounts) { 998 p = list_entry(prev, struct mount, mnt_child); 999 prev = p->mnt_mounts.prev; 1000 } 1001 return p; 1002 } 1003 1004 struct vfsmount * 1005 vfs_kern_mount(struct file_system_type *type, int flags, const char *name, void *data) 1006 { 1007 struct mount *mnt; 1008 struct dentry *root; 1009 1010 if (!type) 1011 return ERR_PTR(-ENODEV); 1012 1013 mnt = alloc_vfsmnt(name); 1014 if (!mnt) 1015 return ERR_PTR(-ENOMEM); 1016 1017 if (flags & SB_KERNMOUNT) 1018 mnt->mnt.mnt_flags = MNT_INTERNAL; 1019 1020 root = mount_fs(type, flags, name, data); 1021 if (IS_ERR(root)) { 1022 mnt_free_id(mnt); 1023 free_vfsmnt(mnt); 1024 return ERR_CAST(root); 1025 } 1026 1027 mnt->mnt.mnt_root = root; 1028 mnt->mnt.mnt_sb = root->d_sb; 1029 mnt->mnt_mountpoint = mnt->mnt.mnt_root; 1030 mnt->mnt_parent = mnt; 1031 lock_mount_hash(); 1032 list_add_tail(&mnt->mnt_instance, &root->d_sb->s_mounts); 1033 unlock_mount_hash(); 1034 return &mnt->mnt; 1035 } 1036 EXPORT_SYMBOL_GPL(vfs_kern_mount); 1037 1038 struct vfsmount * 1039 vfs_submount(const struct dentry *mountpoint, struct file_system_type *type, 1040 const char *name, void *data) 1041 { 1042 /* Until it is worked out how to pass the user namespace 1043 * through from the parent mount to the submount don't support 1044 * unprivileged mounts with submounts. 1045 */ 1046 if (mountpoint->d_sb->s_user_ns != &init_user_ns) 1047 return ERR_PTR(-EPERM); 1048 1049 return vfs_kern_mount(type, SB_SUBMOUNT, name, data); 1050 } 1051 EXPORT_SYMBOL_GPL(vfs_submount); 1052 1053 static struct mount *clone_mnt(struct mount *old, struct dentry *root, 1054 int flag) 1055 { 1056 struct super_block *sb = old->mnt.mnt_sb; 1057 struct mount *mnt; 1058 int err; 1059 1060 mnt = alloc_vfsmnt(old->mnt_devname); 1061 if (!mnt) 1062 return ERR_PTR(-ENOMEM); 1063 1064 if (flag & (CL_SLAVE | CL_PRIVATE | CL_SHARED_TO_SLAVE)) 1065 mnt->mnt_group_id = 0; /* not a peer of original */ 1066 else 1067 mnt->mnt_group_id = old->mnt_group_id; 1068 1069 if ((flag & CL_MAKE_SHARED) && !mnt->mnt_group_id) { 1070 err = mnt_alloc_group_id(mnt); 1071 if (err) 1072 goto out_free; 1073 } 1074 1075 mnt->mnt.mnt_flags = old->mnt.mnt_flags; 1076 mnt->mnt.mnt_flags &= ~(MNT_WRITE_HOLD|MNT_MARKED|MNT_INTERNAL); 1077 /* Don't allow unprivileged users to change mount flags */ 1078 if (flag & CL_UNPRIVILEGED) { 1079 mnt->mnt.mnt_flags |= MNT_LOCK_ATIME; 1080 1081 if (mnt->mnt.mnt_flags & MNT_READONLY) 1082 mnt->mnt.mnt_flags |= MNT_LOCK_READONLY; 1083 1084 if (mnt->mnt.mnt_flags & MNT_NODEV) 1085 mnt->mnt.mnt_flags |= MNT_LOCK_NODEV; 1086 1087 if (mnt->mnt.mnt_flags & MNT_NOSUID) 1088 mnt->mnt.mnt_flags |= MNT_LOCK_NOSUID; 1089 1090 if (mnt->mnt.mnt_flags & MNT_NOEXEC) 1091 mnt->mnt.mnt_flags |= MNT_LOCK_NOEXEC; 1092 } 1093 1094 /* Don't allow unprivileged users to reveal what is under a mount */ 1095 if ((flag & CL_UNPRIVILEGED) && 1096 (!(flag & CL_EXPIRE) || list_empty(&old->mnt_expire))) 1097 mnt->mnt.mnt_flags |= MNT_LOCKED; 1098 1099 atomic_inc(&sb->s_active); 1100 mnt->mnt.mnt_sb = sb; 1101 mnt->mnt.mnt_root = dget(root); 1102 mnt->mnt_mountpoint = mnt->mnt.mnt_root; 1103 mnt->mnt_parent = mnt; 1104 lock_mount_hash(); 1105 list_add_tail(&mnt->mnt_instance, &sb->s_mounts); 1106 unlock_mount_hash(); 1107 1108 if ((flag & CL_SLAVE) || 1109 ((flag & CL_SHARED_TO_SLAVE) && IS_MNT_SHARED(old))) { 1110 list_add(&mnt->mnt_slave, &old->mnt_slave_list); 1111 mnt->mnt_master = old; 1112 CLEAR_MNT_SHARED(mnt); 1113 } else if (!(flag & CL_PRIVATE)) { 1114 if ((flag & CL_MAKE_SHARED) || IS_MNT_SHARED(old)) 1115 list_add(&mnt->mnt_share, &old->mnt_share); 1116 if (IS_MNT_SLAVE(old)) 1117 list_add(&mnt->mnt_slave, &old->mnt_slave); 1118 mnt->mnt_master = old->mnt_master; 1119 } else { 1120 CLEAR_MNT_SHARED(mnt); 1121 } 1122 if (flag & CL_MAKE_SHARED) 1123 set_mnt_shared(mnt); 1124 1125 /* stick the duplicate mount on the same expiry list 1126 * as the original if that was on one */ 1127 if (flag & CL_EXPIRE) { 1128 if (!list_empty(&old->mnt_expire)) 1129 list_add(&mnt->mnt_expire, &old->mnt_expire); 1130 } 1131 1132 return mnt; 1133 1134 out_free: 1135 mnt_free_id(mnt); 1136 free_vfsmnt(mnt); 1137 return ERR_PTR(err); 1138 } 1139 1140 static void cleanup_mnt(struct mount *mnt) 1141 { 1142 /* 1143 * This probably indicates that somebody messed 1144 * up a mnt_want/drop_write() pair. If this 1145 * happens, the filesystem was probably unable 1146 * to make r/w->r/o transitions. 1147 */ 1148 /* 1149 * The locking used to deal with mnt_count decrement provides barriers, 1150 * so mnt_get_writers() below is safe. 1151 */ 1152 WARN_ON(mnt_get_writers(mnt)); 1153 if (unlikely(mnt->mnt_pins.first)) 1154 mnt_pin_kill(mnt); 1155 fsnotify_vfsmount_delete(&mnt->mnt); 1156 dput(mnt->mnt.mnt_root); 1157 deactivate_super(mnt->mnt.mnt_sb); 1158 mnt_free_id(mnt); 1159 call_rcu(&mnt->mnt_rcu, delayed_free_vfsmnt); 1160 } 1161 1162 static void __cleanup_mnt(struct rcu_head *head) 1163 { 1164 cleanup_mnt(container_of(head, struct mount, mnt_rcu)); 1165 } 1166 1167 static LLIST_HEAD(delayed_mntput_list); 1168 static void delayed_mntput(struct work_struct *unused) 1169 { 1170 struct llist_node *node = llist_del_all(&delayed_mntput_list); 1171 struct mount *m, *t; 1172 1173 llist_for_each_entry_safe(m, t, node, mnt_llist) 1174 cleanup_mnt(m); 1175 } 1176 static DECLARE_DELAYED_WORK(delayed_mntput_work, delayed_mntput); 1177 1178 static void mntput_no_expire(struct mount *mnt) 1179 { 1180 rcu_read_lock(); 1181 if (likely(READ_ONCE(mnt->mnt_ns))) { 1182 /* 1183 * Since we don't do lock_mount_hash() here, 1184 * ->mnt_ns can change under us. However, if it's 1185 * non-NULL, then there's a reference that won't 1186 * be dropped until after an RCU delay done after 1187 * turning ->mnt_ns NULL. So if we observe it 1188 * non-NULL under rcu_read_lock(), the reference 1189 * we are dropping is not the final one. 1190 */ 1191 mnt_add_count(mnt, -1); 1192 rcu_read_unlock(); 1193 return; 1194 } 1195 lock_mount_hash(); 1196 /* 1197 * make sure that if __legitimize_mnt() has not seen us grab 1198 * mount_lock, we'll see their refcount increment here. 1199 */ 1200 smp_mb(); 1201 mnt_add_count(mnt, -1); 1202 if (mnt_get_count(mnt)) { 1203 rcu_read_unlock(); 1204 unlock_mount_hash(); 1205 return; 1206 } 1207 if (unlikely(mnt->mnt.mnt_flags & MNT_DOOMED)) { 1208 rcu_read_unlock(); 1209 unlock_mount_hash(); 1210 return; 1211 } 1212 mnt->mnt.mnt_flags |= MNT_DOOMED; 1213 rcu_read_unlock(); 1214 1215 list_del(&mnt->mnt_instance); 1216 1217 if (unlikely(!list_empty(&mnt->mnt_mounts))) { 1218 struct mount *p, *tmp; 1219 list_for_each_entry_safe(p, tmp, &mnt->mnt_mounts, mnt_child) { 1220 umount_mnt(p); 1221 } 1222 } 1223 unlock_mount_hash(); 1224 1225 if (likely(!(mnt->mnt.mnt_flags & MNT_INTERNAL))) { 1226 struct task_struct *task = current; 1227 if (likely(!(task->flags & PF_KTHREAD))) { 1228 init_task_work(&mnt->mnt_rcu, __cleanup_mnt); 1229 if (!task_work_add(task, &mnt->mnt_rcu, true)) 1230 return; 1231 } 1232 if (llist_add(&mnt->mnt_llist, &delayed_mntput_list)) 1233 schedule_delayed_work(&delayed_mntput_work, 1); 1234 return; 1235 } 1236 cleanup_mnt(mnt); 1237 } 1238 1239 void mntput(struct vfsmount *mnt) 1240 { 1241 if (mnt) { 1242 struct mount *m = real_mount(mnt); 1243 /* avoid cacheline pingpong, hope gcc doesn't get "smart" */ 1244 if (unlikely(m->mnt_expiry_mark)) 1245 m->mnt_expiry_mark = 0; 1246 mntput_no_expire(m); 1247 } 1248 } 1249 EXPORT_SYMBOL(mntput); 1250 1251 struct vfsmount *mntget(struct vfsmount *mnt) 1252 { 1253 if (mnt) 1254 mnt_add_count(real_mount(mnt), 1); 1255 return mnt; 1256 } 1257 EXPORT_SYMBOL(mntget); 1258 1259 /* path_is_mountpoint() - Check if path is a mount in the current 1260 * namespace. 1261 * 1262 * d_mountpoint() can only be used reliably to establish if a dentry is 1263 * not mounted in any namespace and that common case is handled inline. 1264 * d_mountpoint() isn't aware of the possibility there may be multiple 1265 * mounts using a given dentry in a different namespace. This function 1266 * checks if the passed in path is a mountpoint rather than the dentry 1267 * alone. 1268 */ 1269 bool path_is_mountpoint(const struct path *path) 1270 { 1271 unsigned seq; 1272 bool res; 1273 1274 if (!d_mountpoint(path->dentry)) 1275 return false; 1276 1277 rcu_read_lock(); 1278 do { 1279 seq = read_seqbegin(&mount_lock); 1280 res = __path_is_mountpoint(path); 1281 } while (read_seqretry(&mount_lock, seq)); 1282 rcu_read_unlock(); 1283 1284 return res; 1285 } 1286 EXPORT_SYMBOL(path_is_mountpoint); 1287 1288 struct vfsmount *mnt_clone_internal(const struct path *path) 1289 { 1290 struct mount *p; 1291 p = clone_mnt(real_mount(path->mnt), path->dentry, CL_PRIVATE); 1292 if (IS_ERR(p)) 1293 return ERR_CAST(p); 1294 p->mnt.mnt_flags |= MNT_INTERNAL; 1295 return &p->mnt; 1296 } 1297 1298 #ifdef CONFIG_PROC_FS 1299 /* iterator; we want it to have access to namespace_sem, thus here... */ 1300 static void *m_start(struct seq_file *m, loff_t *pos) 1301 { 1302 struct proc_mounts *p = m->private; 1303 1304 down_read(&namespace_sem); 1305 if (p->cached_event == p->ns->event) { 1306 void *v = p->cached_mount; 1307 if (*pos == p->cached_index) 1308 return v; 1309 if (*pos == p->cached_index + 1) { 1310 v = seq_list_next(v, &p->ns->list, &p->cached_index); 1311 return p->cached_mount = v; 1312 } 1313 } 1314 1315 p->cached_event = p->ns->event; 1316 p->cached_mount = seq_list_start(&p->ns->list, *pos); 1317 p->cached_index = *pos; 1318 return p->cached_mount; 1319 } 1320 1321 static void *m_next(struct seq_file *m, void *v, loff_t *pos) 1322 { 1323 struct proc_mounts *p = m->private; 1324 1325 p->cached_mount = seq_list_next(v, &p->ns->list, pos); 1326 p->cached_index = *pos; 1327 return p->cached_mount; 1328 } 1329 1330 static void m_stop(struct seq_file *m, void *v) 1331 { 1332 up_read(&namespace_sem); 1333 } 1334 1335 static int m_show(struct seq_file *m, void *v) 1336 { 1337 struct proc_mounts *p = m->private; 1338 struct mount *r = list_entry(v, struct mount, mnt_list); 1339 return p->show(m, &r->mnt); 1340 } 1341 1342 const struct seq_operations mounts_op = { 1343 .start = m_start, 1344 .next = m_next, 1345 .stop = m_stop, 1346 .show = m_show, 1347 }; 1348 #endif /* CONFIG_PROC_FS */ 1349 1350 /** 1351 * may_umount_tree - check if a mount tree is busy 1352 * @mnt: root of mount tree 1353 * 1354 * This is called to check if a tree of mounts has any 1355 * open files, pwds, chroots or sub mounts that are 1356 * busy. 1357 */ 1358 int may_umount_tree(struct vfsmount *m) 1359 { 1360 struct mount *mnt = real_mount(m); 1361 int actual_refs = 0; 1362 int minimum_refs = 0; 1363 struct mount *p; 1364 BUG_ON(!m); 1365 1366 /* write lock needed for mnt_get_count */ 1367 lock_mount_hash(); 1368 for (p = mnt; p; p = next_mnt(p, mnt)) { 1369 actual_refs += mnt_get_count(p); 1370 minimum_refs += 2; 1371 } 1372 unlock_mount_hash(); 1373 1374 if (actual_refs > minimum_refs) 1375 return 0; 1376 1377 return 1; 1378 } 1379 1380 EXPORT_SYMBOL(may_umount_tree); 1381 1382 /** 1383 * may_umount - check if a mount point is busy 1384 * @mnt: root of mount 1385 * 1386 * This is called to check if a mount point has any 1387 * open files, pwds, chroots or sub mounts. If the 1388 * mount has sub mounts this will return busy 1389 * regardless of whether the sub mounts are busy. 1390 * 1391 * Doesn't take quota and stuff into account. IOW, in some cases it will 1392 * give false negatives. The main reason why it's here is that we need 1393 * a non-destructive way to look for easily umountable filesystems. 1394 */ 1395 int may_umount(struct vfsmount *mnt) 1396 { 1397 int ret = 1; 1398 down_read(&namespace_sem); 1399 lock_mount_hash(); 1400 if (propagate_mount_busy(real_mount(mnt), 2)) 1401 ret = 0; 1402 unlock_mount_hash(); 1403 up_read(&namespace_sem); 1404 return ret; 1405 } 1406 1407 EXPORT_SYMBOL(may_umount); 1408 1409 static HLIST_HEAD(unmounted); /* protected by namespace_sem */ 1410 1411 static void namespace_unlock(void) 1412 { 1413 struct hlist_head head; 1414 1415 hlist_move_list(&unmounted, &head); 1416 1417 up_write(&namespace_sem); 1418 1419 if (likely(hlist_empty(&head))) 1420 return; 1421 1422 synchronize_rcu(); 1423 1424 group_pin_kill(&head); 1425 } 1426 1427 static inline void namespace_lock(void) 1428 { 1429 down_write(&namespace_sem); 1430 } 1431 1432 enum umount_tree_flags { 1433 UMOUNT_SYNC = 1, 1434 UMOUNT_PROPAGATE = 2, 1435 UMOUNT_CONNECTED = 4, 1436 }; 1437 1438 static bool disconnect_mount(struct mount *mnt, enum umount_tree_flags how) 1439 { 1440 /* Leaving mounts connected is only valid for lazy umounts */ 1441 if (how & UMOUNT_SYNC) 1442 return true; 1443 1444 /* A mount without a parent has nothing to be connected to */ 1445 if (!mnt_has_parent(mnt)) 1446 return true; 1447 1448 /* Because the reference counting rules change when mounts are 1449 * unmounted and connected, umounted mounts may not be 1450 * connected to mounted mounts. 1451 */ 1452 if (!(mnt->mnt_parent->mnt.mnt_flags & MNT_UMOUNT)) 1453 return true; 1454 1455 /* Has it been requested that the mount remain connected? */ 1456 if (how & UMOUNT_CONNECTED) 1457 return false; 1458 1459 /* Is the mount locked such that it needs to remain connected? */ 1460 if (IS_MNT_LOCKED(mnt)) 1461 return false; 1462 1463 /* By default disconnect the mount */ 1464 return true; 1465 } 1466 1467 /* 1468 * mount_lock must be held 1469 * namespace_sem must be held for write 1470 */ 1471 static void umount_tree(struct mount *mnt, enum umount_tree_flags how) 1472 { 1473 LIST_HEAD(tmp_list); 1474 struct mount *p; 1475 1476 if (how & UMOUNT_PROPAGATE) 1477 propagate_mount_unlock(mnt); 1478 1479 /* Gather the mounts to umount */ 1480 for (p = mnt; p; p = next_mnt(p, mnt)) { 1481 p->mnt.mnt_flags |= MNT_UMOUNT; 1482 list_move(&p->mnt_list, &tmp_list); 1483 } 1484 1485 /* Hide the mounts from mnt_mounts */ 1486 list_for_each_entry(p, &tmp_list, mnt_list) { 1487 list_del_init(&p->mnt_child); 1488 } 1489 1490 /* Add propogated mounts to the tmp_list */ 1491 if (how & UMOUNT_PROPAGATE) 1492 propagate_umount(&tmp_list); 1493 1494 while (!list_empty(&tmp_list)) { 1495 struct mnt_namespace *ns; 1496 bool disconnect; 1497 p = list_first_entry(&tmp_list, struct mount, mnt_list); 1498 list_del_init(&p->mnt_expire); 1499 list_del_init(&p->mnt_list); 1500 ns = p->mnt_ns; 1501 if (ns) { 1502 ns->mounts--; 1503 __touch_mnt_namespace(ns); 1504 } 1505 p->mnt_ns = NULL; 1506 if (how & UMOUNT_SYNC) 1507 p->mnt.mnt_flags |= MNT_SYNC_UMOUNT; 1508 1509 disconnect = disconnect_mount(p, how); 1510 1511 pin_insert_group(&p->mnt_umount, &p->mnt_parent->mnt, 1512 disconnect ? &unmounted : NULL); 1513 if (mnt_has_parent(p)) { 1514 mnt_add_count(p->mnt_parent, -1); 1515 if (!disconnect) { 1516 /* Don't forget about p */ 1517 list_add_tail(&p->mnt_child, &p->mnt_parent->mnt_mounts); 1518 } else { 1519 umount_mnt(p); 1520 } 1521 } 1522 change_mnt_propagation(p, MS_PRIVATE); 1523 } 1524 } 1525 1526 static void shrink_submounts(struct mount *mnt); 1527 1528 static int do_umount(struct mount *mnt, int flags) 1529 { 1530 struct super_block *sb = mnt->mnt.mnt_sb; 1531 int retval; 1532 1533 retval = security_sb_umount(&mnt->mnt, flags); 1534 if (retval) 1535 return retval; 1536 1537 /* 1538 * Allow userspace to request a mountpoint be expired rather than 1539 * unmounting unconditionally. Unmount only happens if: 1540 * (1) the mark is already set (the mark is cleared by mntput()) 1541 * (2) the usage count == 1 [parent vfsmount] + 1 [sys_umount] 1542 */ 1543 if (flags & MNT_EXPIRE) { 1544 if (&mnt->mnt == current->fs->root.mnt || 1545 flags & (MNT_FORCE | MNT_DETACH)) 1546 return -EINVAL; 1547 1548 /* 1549 * probably don't strictly need the lock here if we examined 1550 * all race cases, but it's a slowpath. 1551 */ 1552 lock_mount_hash(); 1553 if (mnt_get_count(mnt) != 2) { 1554 unlock_mount_hash(); 1555 return -EBUSY; 1556 } 1557 unlock_mount_hash(); 1558 1559 if (!xchg(&mnt->mnt_expiry_mark, 1)) 1560 return -EAGAIN; 1561 } 1562 1563 /* 1564 * If we may have to abort operations to get out of this 1565 * mount, and they will themselves hold resources we must 1566 * allow the fs to do things. In the Unix tradition of 1567 * 'Gee thats tricky lets do it in userspace' the umount_begin 1568 * might fail to complete on the first run through as other tasks 1569 * must return, and the like. Thats for the mount program to worry 1570 * about for the moment. 1571 */ 1572 1573 if (flags & MNT_FORCE && sb->s_op->umount_begin) { 1574 sb->s_op->umount_begin(sb); 1575 } 1576 1577 /* 1578 * No sense to grab the lock for this test, but test itself looks 1579 * somewhat bogus. Suggestions for better replacement? 1580 * Ho-hum... In principle, we might treat that as umount + switch 1581 * to rootfs. GC would eventually take care of the old vfsmount. 1582 * Actually it makes sense, especially if rootfs would contain a 1583 * /reboot - static binary that would close all descriptors and 1584 * call reboot(9). Then init(8) could umount root and exec /reboot. 1585 */ 1586 if (&mnt->mnt == current->fs->root.mnt && !(flags & MNT_DETACH)) { 1587 /* 1588 * Special case for "unmounting" root ... 1589 * we just try to remount it readonly. 1590 */ 1591 if (!ns_capable(sb->s_user_ns, CAP_SYS_ADMIN)) 1592 return -EPERM; 1593 down_write(&sb->s_umount); 1594 if (!sb_rdonly(sb)) 1595 retval = do_remount_sb(sb, SB_RDONLY, NULL, 0); 1596 up_write(&sb->s_umount); 1597 return retval; 1598 } 1599 1600 namespace_lock(); 1601 lock_mount_hash(); 1602 event++; 1603 1604 if (flags & MNT_DETACH) { 1605 if (!list_empty(&mnt->mnt_list)) 1606 umount_tree(mnt, UMOUNT_PROPAGATE); 1607 retval = 0; 1608 } else { 1609 shrink_submounts(mnt); 1610 retval = -EBUSY; 1611 if (!propagate_mount_busy(mnt, 2)) { 1612 if (!list_empty(&mnt->mnt_list)) 1613 umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC); 1614 retval = 0; 1615 } 1616 } 1617 unlock_mount_hash(); 1618 namespace_unlock(); 1619 return retval; 1620 } 1621 1622 /* 1623 * __detach_mounts - lazily unmount all mounts on the specified dentry 1624 * 1625 * During unlink, rmdir, and d_drop it is possible to loose the path 1626 * to an existing mountpoint, and wind up leaking the mount. 1627 * detach_mounts allows lazily unmounting those mounts instead of 1628 * leaking them. 1629 * 1630 * The caller may hold dentry->d_inode->i_mutex. 1631 */ 1632 void __detach_mounts(struct dentry *dentry) 1633 { 1634 struct mountpoint *mp; 1635 struct mount *mnt; 1636 1637 namespace_lock(); 1638 lock_mount_hash(); 1639 mp = lookup_mountpoint(dentry); 1640 if (IS_ERR_OR_NULL(mp)) 1641 goto out_unlock; 1642 1643 event++; 1644 while (!hlist_empty(&mp->m_list)) { 1645 mnt = hlist_entry(mp->m_list.first, struct mount, mnt_mp_list); 1646 if (mnt->mnt.mnt_flags & MNT_UMOUNT) { 1647 hlist_add_head(&mnt->mnt_umount.s_list, &unmounted); 1648 umount_mnt(mnt); 1649 } 1650 else umount_tree(mnt, UMOUNT_CONNECTED); 1651 } 1652 put_mountpoint(mp); 1653 out_unlock: 1654 unlock_mount_hash(); 1655 namespace_unlock(); 1656 } 1657 1658 /* 1659 * Is the caller allowed to modify his namespace? 1660 */ 1661 static inline bool may_mount(void) 1662 { 1663 return ns_capable(current->nsproxy->mnt_ns->user_ns, CAP_SYS_ADMIN); 1664 } 1665 1666 static inline bool may_mandlock(void) 1667 { 1668 #ifndef CONFIG_MANDATORY_FILE_LOCKING 1669 return false; 1670 #endif 1671 return capable(CAP_SYS_ADMIN); 1672 } 1673 1674 /* 1675 * Now umount can handle mount points as well as block devices. 1676 * This is important for filesystems which use unnamed block devices. 1677 * 1678 * We now support a flag for forced unmount like the other 'big iron' 1679 * unixes. Our API is identical to OSF/1 to avoid making a mess of AMD 1680 */ 1681 1682 int ksys_umount(char __user *name, int flags) 1683 { 1684 struct path path; 1685 struct mount *mnt; 1686 int retval; 1687 int lookup_flags = 0; 1688 1689 if (flags & ~(MNT_FORCE | MNT_DETACH | MNT_EXPIRE | UMOUNT_NOFOLLOW)) 1690 return -EINVAL; 1691 1692 if (!may_mount()) 1693 return -EPERM; 1694 1695 if (!(flags & UMOUNT_NOFOLLOW)) 1696 lookup_flags |= LOOKUP_FOLLOW; 1697 1698 retval = user_path_mountpoint_at(AT_FDCWD, name, lookup_flags, &path); 1699 if (retval) 1700 goto out; 1701 mnt = real_mount(path.mnt); 1702 retval = -EINVAL; 1703 if (path.dentry != path.mnt->mnt_root) 1704 goto dput_and_out; 1705 if (!check_mnt(mnt)) 1706 goto dput_and_out; 1707 if (mnt->mnt.mnt_flags & MNT_LOCKED) 1708 goto dput_and_out; 1709 retval = -EPERM; 1710 if (flags & MNT_FORCE && !capable(CAP_SYS_ADMIN)) 1711 goto dput_and_out; 1712 1713 retval = do_umount(mnt, flags); 1714 dput_and_out: 1715 /* we mustn't call path_put() as that would clear mnt_expiry_mark */ 1716 dput(path.dentry); 1717 mntput_no_expire(mnt); 1718 out: 1719 return retval; 1720 } 1721 1722 SYSCALL_DEFINE2(umount, char __user *, name, int, flags) 1723 { 1724 return ksys_umount(name, flags); 1725 } 1726 1727 #ifdef __ARCH_WANT_SYS_OLDUMOUNT 1728 1729 /* 1730 * The 2.0 compatible umount. No flags. 1731 */ 1732 SYSCALL_DEFINE1(oldumount, char __user *, name) 1733 { 1734 return ksys_umount(name, 0); 1735 } 1736 1737 #endif 1738 1739 static bool is_mnt_ns_file(struct dentry *dentry) 1740 { 1741 /* Is this a proxy for a mount namespace? */ 1742 return dentry->d_op == &ns_dentry_operations && 1743 dentry->d_fsdata == &mntns_operations; 1744 } 1745 1746 struct mnt_namespace *to_mnt_ns(struct ns_common *ns) 1747 { 1748 return container_of(ns, struct mnt_namespace, ns); 1749 } 1750 1751 static bool mnt_ns_loop(struct dentry *dentry) 1752 { 1753 /* Could bind mounting the mount namespace inode cause a 1754 * mount namespace loop? 1755 */ 1756 struct mnt_namespace *mnt_ns; 1757 if (!is_mnt_ns_file(dentry)) 1758 return false; 1759 1760 mnt_ns = to_mnt_ns(get_proc_ns(dentry->d_inode)); 1761 return current->nsproxy->mnt_ns->seq >= mnt_ns->seq; 1762 } 1763 1764 struct mount *copy_tree(struct mount *mnt, struct dentry *dentry, 1765 int flag) 1766 { 1767 struct mount *res, *p, *q, *r, *parent; 1768 1769 if (!(flag & CL_COPY_UNBINDABLE) && IS_MNT_UNBINDABLE(mnt)) 1770 return ERR_PTR(-EINVAL); 1771 1772 if (!(flag & CL_COPY_MNT_NS_FILE) && is_mnt_ns_file(dentry)) 1773 return ERR_PTR(-EINVAL); 1774 1775 res = q = clone_mnt(mnt, dentry, flag); 1776 if (IS_ERR(q)) 1777 return q; 1778 1779 q->mnt_mountpoint = mnt->mnt_mountpoint; 1780 1781 p = mnt; 1782 list_for_each_entry(r, &mnt->mnt_mounts, mnt_child) { 1783 struct mount *s; 1784 if (!is_subdir(r->mnt_mountpoint, dentry)) 1785 continue; 1786 1787 for (s = r; s; s = next_mnt(s, r)) { 1788 if (!(flag & CL_COPY_UNBINDABLE) && 1789 IS_MNT_UNBINDABLE(s)) { 1790 s = skip_mnt_tree(s); 1791 continue; 1792 } 1793 if (!(flag & CL_COPY_MNT_NS_FILE) && 1794 is_mnt_ns_file(s->mnt.mnt_root)) { 1795 s = skip_mnt_tree(s); 1796 continue; 1797 } 1798 while (p != s->mnt_parent) { 1799 p = p->mnt_parent; 1800 q = q->mnt_parent; 1801 } 1802 p = s; 1803 parent = q; 1804 q = clone_mnt(p, p->mnt.mnt_root, flag); 1805 if (IS_ERR(q)) 1806 goto out; 1807 lock_mount_hash(); 1808 list_add_tail(&q->mnt_list, &res->mnt_list); 1809 attach_mnt(q, parent, p->mnt_mp); 1810 unlock_mount_hash(); 1811 } 1812 } 1813 return res; 1814 out: 1815 if (res) { 1816 lock_mount_hash(); 1817 umount_tree(res, UMOUNT_SYNC); 1818 unlock_mount_hash(); 1819 } 1820 return q; 1821 } 1822 1823 /* Caller should check returned pointer for errors */ 1824 1825 struct vfsmount *collect_mounts(const struct path *path) 1826 { 1827 struct mount *tree; 1828 namespace_lock(); 1829 if (!check_mnt(real_mount(path->mnt))) 1830 tree = ERR_PTR(-EINVAL); 1831 else 1832 tree = copy_tree(real_mount(path->mnt), path->dentry, 1833 CL_COPY_ALL | CL_PRIVATE); 1834 namespace_unlock(); 1835 if (IS_ERR(tree)) 1836 return ERR_CAST(tree); 1837 return &tree->mnt; 1838 } 1839 1840 void drop_collected_mounts(struct vfsmount *mnt) 1841 { 1842 namespace_lock(); 1843 lock_mount_hash(); 1844 umount_tree(real_mount(mnt), UMOUNT_SYNC); 1845 unlock_mount_hash(); 1846 namespace_unlock(); 1847 } 1848 1849 /** 1850 * clone_private_mount - create a private clone of a path 1851 * 1852 * This creates a new vfsmount, which will be the clone of @path. The new will 1853 * not be attached anywhere in the namespace and will be private (i.e. changes 1854 * to the originating mount won't be propagated into this). 1855 * 1856 * Release with mntput(). 1857 */ 1858 struct vfsmount *clone_private_mount(const struct path *path) 1859 { 1860 struct mount *old_mnt = real_mount(path->mnt); 1861 struct mount *new_mnt; 1862 1863 if (IS_MNT_UNBINDABLE(old_mnt)) 1864 return ERR_PTR(-EINVAL); 1865 1866 new_mnt = clone_mnt(old_mnt, path->dentry, CL_PRIVATE); 1867 if (IS_ERR(new_mnt)) 1868 return ERR_CAST(new_mnt); 1869 1870 return &new_mnt->mnt; 1871 } 1872 EXPORT_SYMBOL_GPL(clone_private_mount); 1873 1874 int iterate_mounts(int (*f)(struct vfsmount *, void *), void *arg, 1875 struct vfsmount *root) 1876 { 1877 struct mount *mnt; 1878 int res = f(root, arg); 1879 if (res) 1880 return res; 1881 list_for_each_entry(mnt, &real_mount(root)->mnt_list, mnt_list) { 1882 res = f(&mnt->mnt, arg); 1883 if (res) 1884 return res; 1885 } 1886 return 0; 1887 } 1888 1889 static void cleanup_group_ids(struct mount *mnt, struct mount *end) 1890 { 1891 struct mount *p; 1892 1893 for (p = mnt; p != end; p = next_mnt(p, mnt)) { 1894 if (p->mnt_group_id && !IS_MNT_SHARED(p)) 1895 mnt_release_group_id(p); 1896 } 1897 } 1898 1899 static int invent_group_ids(struct mount *mnt, bool recurse) 1900 { 1901 struct mount *p; 1902 1903 for (p = mnt; p; p = recurse ? next_mnt(p, mnt) : NULL) { 1904 if (!p->mnt_group_id && !IS_MNT_SHARED(p)) { 1905 int err = mnt_alloc_group_id(p); 1906 if (err) { 1907 cleanup_group_ids(mnt, p); 1908 return err; 1909 } 1910 } 1911 } 1912 1913 return 0; 1914 } 1915 1916 int count_mounts(struct mnt_namespace *ns, struct mount *mnt) 1917 { 1918 unsigned int max = READ_ONCE(sysctl_mount_max); 1919 unsigned int mounts = 0, old, pending, sum; 1920 struct mount *p; 1921 1922 for (p = mnt; p; p = next_mnt(p, mnt)) 1923 mounts++; 1924 1925 old = ns->mounts; 1926 pending = ns->pending_mounts; 1927 sum = old + pending; 1928 if ((old > sum) || 1929 (pending > sum) || 1930 (max < sum) || 1931 (mounts > (max - sum))) 1932 return -ENOSPC; 1933 1934 ns->pending_mounts = pending + mounts; 1935 return 0; 1936 } 1937 1938 /* 1939 * @source_mnt : mount tree to be attached 1940 * @nd : place the mount tree @source_mnt is attached 1941 * @parent_nd : if non-null, detach the source_mnt from its parent and 1942 * store the parent mount and mountpoint dentry. 1943 * (done when source_mnt is moved) 1944 * 1945 * NOTE: in the table below explains the semantics when a source mount 1946 * of a given type is attached to a destination mount of a given type. 1947 * --------------------------------------------------------------------------- 1948 * | BIND MOUNT OPERATION | 1949 * |************************************************************************** 1950 * | source-->| shared | private | slave | unbindable | 1951 * | dest | | | | | 1952 * | | | | | | | 1953 * | v | | | | | 1954 * |************************************************************************** 1955 * | shared | shared (++) | shared (+) | shared(+++)| invalid | 1956 * | | | | | | 1957 * |non-shared| shared (+) | private | slave (*) | invalid | 1958 * *************************************************************************** 1959 * A bind operation clones the source mount and mounts the clone on the 1960 * destination mount. 1961 * 1962 * (++) the cloned mount is propagated to all the mounts in the propagation 1963 * tree of the destination mount and the cloned mount is added to 1964 * the peer group of the source mount. 1965 * (+) the cloned mount is created under the destination mount and is marked 1966 * as shared. The cloned mount is added to the peer group of the source 1967 * mount. 1968 * (+++) the mount is propagated to all the mounts in the propagation tree 1969 * of the destination mount and the cloned mount is made slave 1970 * of the same master as that of the source mount. The cloned mount 1971 * is marked as 'shared and slave'. 1972 * (*) the cloned mount is made a slave of the same master as that of the 1973 * source mount. 1974 * 1975 * --------------------------------------------------------------------------- 1976 * | MOVE MOUNT OPERATION | 1977 * |************************************************************************** 1978 * | source-->| shared | private | slave | unbindable | 1979 * | dest | | | | | 1980 * | | | | | | | 1981 * | v | | | | | 1982 * |************************************************************************** 1983 * | shared | shared (+) | shared (+) | shared(+++) | invalid | 1984 * | | | | | | 1985 * |non-shared| shared (+*) | private | slave (*) | unbindable | 1986 * *************************************************************************** 1987 * 1988 * (+) the mount is moved to the destination. And is then propagated to 1989 * all the mounts in the propagation tree of the destination mount. 1990 * (+*) the mount is moved to the destination. 1991 * (+++) the mount is moved to the destination and is then propagated to 1992 * all the mounts belonging to the destination mount's propagation tree. 1993 * the mount is marked as 'shared and slave'. 1994 * (*) the mount continues to be a slave at the new location. 1995 * 1996 * if the source mount is a tree, the operations explained above is 1997 * applied to each mount in the tree. 1998 * Must be called without spinlocks held, since this function can sleep 1999 * in allocations. 2000 */ 2001 static int attach_recursive_mnt(struct mount *source_mnt, 2002 struct mount *dest_mnt, 2003 struct mountpoint *dest_mp, 2004 struct path *parent_path) 2005 { 2006 HLIST_HEAD(tree_list); 2007 struct mnt_namespace *ns = dest_mnt->mnt_ns; 2008 struct mountpoint *smp; 2009 struct mount *child, *p; 2010 struct hlist_node *n; 2011 int err; 2012 2013 /* Preallocate a mountpoint in case the new mounts need 2014 * to be tucked under other mounts. 2015 */ 2016 smp = get_mountpoint(source_mnt->mnt.mnt_root); 2017 if (IS_ERR(smp)) 2018 return PTR_ERR(smp); 2019 2020 /* Is there space to add these mounts to the mount namespace? */ 2021 if (!parent_path) { 2022 err = count_mounts(ns, source_mnt); 2023 if (err) 2024 goto out; 2025 } 2026 2027 if (IS_MNT_SHARED(dest_mnt)) { 2028 err = invent_group_ids(source_mnt, true); 2029 if (err) 2030 goto out; 2031 err = propagate_mnt(dest_mnt, dest_mp, source_mnt, &tree_list); 2032 lock_mount_hash(); 2033 if (err) 2034 goto out_cleanup_ids; 2035 for (p = source_mnt; p; p = next_mnt(p, source_mnt)) 2036 set_mnt_shared(p); 2037 } else { 2038 lock_mount_hash(); 2039 } 2040 if (parent_path) { 2041 detach_mnt(source_mnt, parent_path); 2042 attach_mnt(source_mnt, dest_mnt, dest_mp); 2043 touch_mnt_namespace(source_mnt->mnt_ns); 2044 } else { 2045 mnt_set_mountpoint(dest_mnt, dest_mp, source_mnt); 2046 commit_tree(source_mnt); 2047 } 2048 2049 hlist_for_each_entry_safe(child, n, &tree_list, mnt_hash) { 2050 struct mount *q; 2051 hlist_del_init(&child->mnt_hash); 2052 q = __lookup_mnt(&child->mnt_parent->mnt, 2053 child->mnt_mountpoint); 2054 if (q) 2055 mnt_change_mountpoint(child, smp, q); 2056 commit_tree(child); 2057 } 2058 put_mountpoint(smp); 2059 unlock_mount_hash(); 2060 2061 return 0; 2062 2063 out_cleanup_ids: 2064 while (!hlist_empty(&tree_list)) { 2065 child = hlist_entry(tree_list.first, struct mount, mnt_hash); 2066 child->mnt_parent->mnt_ns->pending_mounts = 0; 2067 umount_tree(child, UMOUNT_SYNC); 2068 } 2069 unlock_mount_hash(); 2070 cleanup_group_ids(source_mnt, NULL); 2071 out: 2072 ns->pending_mounts = 0; 2073 2074 read_seqlock_excl(&mount_lock); 2075 put_mountpoint(smp); 2076 read_sequnlock_excl(&mount_lock); 2077 2078 return err; 2079 } 2080 2081 static struct mountpoint *lock_mount(struct path *path) 2082 { 2083 struct vfsmount *mnt; 2084 struct dentry *dentry = path->dentry; 2085 retry: 2086 inode_lock(dentry->d_inode); 2087 if (unlikely(cant_mount(dentry))) { 2088 inode_unlock(dentry->d_inode); 2089 return ERR_PTR(-ENOENT); 2090 } 2091 namespace_lock(); 2092 mnt = lookup_mnt(path); 2093 if (likely(!mnt)) { 2094 struct mountpoint *mp = get_mountpoint(dentry); 2095 if (IS_ERR(mp)) { 2096 namespace_unlock(); 2097 inode_unlock(dentry->d_inode); 2098 return mp; 2099 } 2100 return mp; 2101 } 2102 namespace_unlock(); 2103 inode_unlock(path->dentry->d_inode); 2104 path_put(path); 2105 path->mnt = mnt; 2106 dentry = path->dentry = dget(mnt->mnt_root); 2107 goto retry; 2108 } 2109 2110 static void unlock_mount(struct mountpoint *where) 2111 { 2112 struct dentry *dentry = where->m_dentry; 2113 2114 read_seqlock_excl(&mount_lock); 2115 put_mountpoint(where); 2116 read_sequnlock_excl(&mount_lock); 2117 2118 namespace_unlock(); 2119 inode_unlock(dentry->d_inode); 2120 } 2121 2122 static int graft_tree(struct mount *mnt, struct mount *p, struct mountpoint *mp) 2123 { 2124 if (mnt->mnt.mnt_sb->s_flags & SB_NOUSER) 2125 return -EINVAL; 2126 2127 if (d_is_dir(mp->m_dentry) != 2128 d_is_dir(mnt->mnt.mnt_root)) 2129 return -ENOTDIR; 2130 2131 return attach_recursive_mnt(mnt, p, mp, NULL); 2132 } 2133 2134 /* 2135 * Sanity check the flags to change_mnt_propagation. 2136 */ 2137 2138 static int flags_to_propagation_type(int ms_flags) 2139 { 2140 int type = ms_flags & ~(MS_REC | MS_SILENT); 2141 2142 /* Fail if any non-propagation flags are set */ 2143 if (type & ~(MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE)) 2144 return 0; 2145 /* Only one propagation flag should be set */ 2146 if (!is_power_of_2(type)) 2147 return 0; 2148 return type; 2149 } 2150 2151 /* 2152 * recursively change the type of the mountpoint. 2153 */ 2154 static int do_change_type(struct path *path, int ms_flags) 2155 { 2156 struct mount *m; 2157 struct mount *mnt = real_mount(path->mnt); 2158 int recurse = ms_flags & MS_REC; 2159 int type; 2160 int err = 0; 2161 2162 if (path->dentry != path->mnt->mnt_root) 2163 return -EINVAL; 2164 2165 type = flags_to_propagation_type(ms_flags); 2166 if (!type) 2167 return -EINVAL; 2168 2169 namespace_lock(); 2170 if (type == MS_SHARED) { 2171 err = invent_group_ids(mnt, recurse); 2172 if (err) 2173 goto out_unlock; 2174 } 2175 2176 lock_mount_hash(); 2177 for (m = mnt; m; m = (recurse ? next_mnt(m, mnt) : NULL)) 2178 change_mnt_propagation(m, type); 2179 unlock_mount_hash(); 2180 2181 out_unlock: 2182 namespace_unlock(); 2183 return err; 2184 } 2185 2186 static bool has_locked_children(struct mount *mnt, struct dentry *dentry) 2187 { 2188 struct mount *child; 2189 list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) { 2190 if (!is_subdir(child->mnt_mountpoint, dentry)) 2191 continue; 2192 2193 if (child->mnt.mnt_flags & MNT_LOCKED) 2194 return true; 2195 } 2196 return false; 2197 } 2198 2199 /* 2200 * do loopback mount. 2201 */ 2202 static int do_loopback(struct path *path, const char *old_name, 2203 int recurse) 2204 { 2205 struct path old_path; 2206 struct mount *mnt = NULL, *old, *parent; 2207 struct mountpoint *mp; 2208 int err; 2209 if (!old_name || !*old_name) 2210 return -EINVAL; 2211 err = kern_path(old_name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &old_path); 2212 if (err) 2213 return err; 2214 2215 err = -EINVAL; 2216 if (mnt_ns_loop(old_path.dentry)) 2217 goto out; 2218 2219 mp = lock_mount(path); 2220 err = PTR_ERR(mp); 2221 if (IS_ERR(mp)) 2222 goto out; 2223 2224 old = real_mount(old_path.mnt); 2225 parent = real_mount(path->mnt); 2226 2227 err = -EINVAL; 2228 if (IS_MNT_UNBINDABLE(old)) 2229 goto out2; 2230 2231 if (!check_mnt(parent)) 2232 goto out2; 2233 2234 if (!check_mnt(old) && old_path.dentry->d_op != &ns_dentry_operations) 2235 goto out2; 2236 2237 if (!recurse && has_locked_children(old, old_path.dentry)) 2238 goto out2; 2239 2240 if (recurse) 2241 mnt = copy_tree(old, old_path.dentry, CL_COPY_MNT_NS_FILE); 2242 else 2243 mnt = clone_mnt(old, old_path.dentry, 0); 2244 2245 if (IS_ERR(mnt)) { 2246 err = PTR_ERR(mnt); 2247 goto out2; 2248 } 2249 2250 mnt->mnt.mnt_flags &= ~MNT_LOCKED; 2251 2252 err = graft_tree(mnt, parent, mp); 2253 if (err) { 2254 lock_mount_hash(); 2255 umount_tree(mnt, UMOUNT_SYNC); 2256 unlock_mount_hash(); 2257 } 2258 out2: 2259 unlock_mount(mp); 2260 out: 2261 path_put(&old_path); 2262 return err; 2263 } 2264 2265 static int change_mount_flags(struct vfsmount *mnt, int ms_flags) 2266 { 2267 int error = 0; 2268 int readonly_request = 0; 2269 2270 if (ms_flags & MS_RDONLY) 2271 readonly_request = 1; 2272 if (readonly_request == __mnt_is_readonly(mnt)) 2273 return 0; 2274 2275 if (readonly_request) 2276 error = mnt_make_readonly(real_mount(mnt)); 2277 else 2278 __mnt_unmake_readonly(real_mount(mnt)); 2279 return error; 2280 } 2281 2282 /* 2283 * change filesystem flags. dir should be a physical root of filesystem. 2284 * If you've mounted a non-root directory somewhere and want to do remount 2285 * on it - tough luck. 2286 */ 2287 static int do_remount(struct path *path, int ms_flags, int sb_flags, 2288 int mnt_flags, void *data) 2289 { 2290 int err; 2291 struct super_block *sb = path->mnt->mnt_sb; 2292 struct mount *mnt = real_mount(path->mnt); 2293 2294 if (!check_mnt(mnt)) 2295 return -EINVAL; 2296 2297 if (path->dentry != path->mnt->mnt_root) 2298 return -EINVAL; 2299 2300 /* Don't allow changing of locked mnt flags. 2301 * 2302 * No locks need to be held here while testing the various 2303 * MNT_LOCK flags because those flags can never be cleared 2304 * once they are set. 2305 */ 2306 if ((mnt->mnt.mnt_flags & MNT_LOCK_READONLY) && 2307 !(mnt_flags & MNT_READONLY)) { 2308 return -EPERM; 2309 } 2310 if ((mnt->mnt.mnt_flags & MNT_LOCK_NODEV) && 2311 !(mnt_flags & MNT_NODEV)) { 2312 return -EPERM; 2313 } 2314 if ((mnt->mnt.mnt_flags & MNT_LOCK_NOSUID) && 2315 !(mnt_flags & MNT_NOSUID)) { 2316 return -EPERM; 2317 } 2318 if ((mnt->mnt.mnt_flags & MNT_LOCK_NOEXEC) && 2319 !(mnt_flags & MNT_NOEXEC)) { 2320 return -EPERM; 2321 } 2322 if ((mnt->mnt.mnt_flags & MNT_LOCK_ATIME) && 2323 ((mnt->mnt.mnt_flags & MNT_ATIME_MASK) != (mnt_flags & MNT_ATIME_MASK))) { 2324 return -EPERM; 2325 } 2326 2327 err = security_sb_remount(sb, data); 2328 if (err) 2329 return err; 2330 2331 down_write(&sb->s_umount); 2332 if (ms_flags & MS_BIND) 2333 err = change_mount_flags(path->mnt, ms_flags); 2334 else if (!ns_capable(sb->s_user_ns, CAP_SYS_ADMIN)) 2335 err = -EPERM; 2336 else 2337 err = do_remount_sb(sb, sb_flags, data, 0); 2338 if (!err) { 2339 lock_mount_hash(); 2340 mnt_flags |= mnt->mnt.mnt_flags & ~MNT_USER_SETTABLE_MASK; 2341 mnt->mnt.mnt_flags = mnt_flags; 2342 touch_mnt_namespace(mnt->mnt_ns); 2343 unlock_mount_hash(); 2344 } 2345 up_write(&sb->s_umount); 2346 return err; 2347 } 2348 2349 static inline int tree_contains_unbindable(struct mount *mnt) 2350 { 2351 struct mount *p; 2352 for (p = mnt; p; p = next_mnt(p, mnt)) { 2353 if (IS_MNT_UNBINDABLE(p)) 2354 return 1; 2355 } 2356 return 0; 2357 } 2358 2359 static int do_move_mount(struct path *path, const char *old_name) 2360 { 2361 struct path old_path, parent_path; 2362 struct mount *p; 2363 struct mount *old; 2364 struct mountpoint *mp; 2365 int err; 2366 if (!old_name || !*old_name) 2367 return -EINVAL; 2368 err = kern_path(old_name, LOOKUP_FOLLOW, &old_path); 2369 if (err) 2370 return err; 2371 2372 mp = lock_mount(path); 2373 err = PTR_ERR(mp); 2374 if (IS_ERR(mp)) 2375 goto out; 2376 2377 old = real_mount(old_path.mnt); 2378 p = real_mount(path->mnt); 2379 2380 err = -EINVAL; 2381 if (!check_mnt(p) || !check_mnt(old)) 2382 goto out1; 2383 2384 if (old->mnt.mnt_flags & MNT_LOCKED) 2385 goto out1; 2386 2387 err = -EINVAL; 2388 if (old_path.dentry != old_path.mnt->mnt_root) 2389 goto out1; 2390 2391 if (!mnt_has_parent(old)) 2392 goto out1; 2393 2394 if (d_is_dir(path->dentry) != 2395 d_is_dir(old_path.dentry)) 2396 goto out1; 2397 /* 2398 * Don't move a mount residing in a shared parent. 2399 */ 2400 if (IS_MNT_SHARED(old->mnt_parent)) 2401 goto out1; 2402 /* 2403 * Don't move a mount tree containing unbindable mounts to a destination 2404 * mount which is shared. 2405 */ 2406 if (IS_MNT_SHARED(p) && tree_contains_unbindable(old)) 2407 goto out1; 2408 err = -ELOOP; 2409 for (; mnt_has_parent(p); p = p->mnt_parent) 2410 if (p == old) 2411 goto out1; 2412 2413 err = attach_recursive_mnt(old, real_mount(path->mnt), mp, &parent_path); 2414 if (err) 2415 goto out1; 2416 2417 /* if the mount is moved, it should no longer be expire 2418 * automatically */ 2419 list_del_init(&old->mnt_expire); 2420 out1: 2421 unlock_mount(mp); 2422 out: 2423 if (!err) 2424 path_put(&parent_path); 2425 path_put(&old_path); 2426 return err; 2427 } 2428 2429 static struct vfsmount *fs_set_subtype(struct vfsmount *mnt, const char *fstype) 2430 { 2431 int err; 2432 const char *subtype = strchr(fstype, '.'); 2433 if (subtype) { 2434 subtype++; 2435 err = -EINVAL; 2436 if (!subtype[0]) 2437 goto err; 2438 } else 2439 subtype = ""; 2440 2441 mnt->mnt_sb->s_subtype = kstrdup(subtype, GFP_KERNEL); 2442 err = -ENOMEM; 2443 if (!mnt->mnt_sb->s_subtype) 2444 goto err; 2445 return mnt; 2446 2447 err: 2448 mntput(mnt); 2449 return ERR_PTR(err); 2450 } 2451 2452 /* 2453 * add a mount into a namespace's mount tree 2454 */ 2455 static int do_add_mount(struct mount *newmnt, struct path *path, int mnt_flags) 2456 { 2457 struct mountpoint *mp; 2458 struct mount *parent; 2459 int err; 2460 2461 mnt_flags &= ~MNT_INTERNAL_FLAGS; 2462 2463 mp = lock_mount(path); 2464 if (IS_ERR(mp)) 2465 return PTR_ERR(mp); 2466 2467 parent = real_mount(path->mnt); 2468 err = -EINVAL; 2469 if (unlikely(!check_mnt(parent))) { 2470 /* that's acceptable only for automounts done in private ns */ 2471 if (!(mnt_flags & MNT_SHRINKABLE)) 2472 goto unlock; 2473 /* ... and for those we'd better have mountpoint still alive */ 2474 if (!parent->mnt_ns) 2475 goto unlock; 2476 } 2477 2478 /* Refuse the same filesystem on the same mount point */ 2479 err = -EBUSY; 2480 if (path->mnt->mnt_sb == newmnt->mnt.mnt_sb && 2481 path->mnt->mnt_root == path->dentry) 2482 goto unlock; 2483 2484 err = -EINVAL; 2485 if (d_is_symlink(newmnt->mnt.mnt_root)) 2486 goto unlock; 2487 2488 newmnt->mnt.mnt_flags = mnt_flags; 2489 err = graft_tree(newmnt, parent, mp); 2490 2491 unlock: 2492 unlock_mount(mp); 2493 return err; 2494 } 2495 2496 static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags); 2497 2498 /* 2499 * create a new mount for userspace and request it to be added into the 2500 * namespace's tree 2501 */ 2502 static int do_new_mount(struct path *path, const char *fstype, int sb_flags, 2503 int mnt_flags, const char *name, void *data) 2504 { 2505 struct file_system_type *type; 2506 struct vfsmount *mnt; 2507 int err; 2508 2509 if (!fstype) 2510 return -EINVAL; 2511 2512 type = get_fs_type(fstype); 2513 if (!type) 2514 return -ENODEV; 2515 2516 mnt = vfs_kern_mount(type, sb_flags, name, data); 2517 if (!IS_ERR(mnt) && (type->fs_flags & FS_HAS_SUBTYPE) && 2518 !mnt->mnt_sb->s_subtype) 2519 mnt = fs_set_subtype(mnt, fstype); 2520 2521 put_filesystem(type); 2522 if (IS_ERR(mnt)) 2523 return PTR_ERR(mnt); 2524 2525 if (mount_too_revealing(mnt, &mnt_flags)) { 2526 mntput(mnt); 2527 return -EPERM; 2528 } 2529 2530 err = do_add_mount(real_mount(mnt), path, mnt_flags); 2531 if (err) 2532 mntput(mnt); 2533 return err; 2534 } 2535 2536 int finish_automount(struct vfsmount *m, struct path *path) 2537 { 2538 struct mount *mnt = real_mount(m); 2539 int err; 2540 /* The new mount record should have at least 2 refs to prevent it being 2541 * expired before we get a chance to add it 2542 */ 2543 BUG_ON(mnt_get_count(mnt) < 2); 2544 2545 if (m->mnt_sb == path->mnt->mnt_sb && 2546 m->mnt_root == path->dentry) { 2547 err = -ELOOP; 2548 goto fail; 2549 } 2550 2551 err = do_add_mount(mnt, path, path->mnt->mnt_flags | MNT_SHRINKABLE); 2552 if (!err) 2553 return 0; 2554 fail: 2555 /* remove m from any expiration list it may be on */ 2556 if (!list_empty(&mnt->mnt_expire)) { 2557 namespace_lock(); 2558 list_del_init(&mnt->mnt_expire); 2559 namespace_unlock(); 2560 } 2561 mntput(m); 2562 mntput(m); 2563 return err; 2564 } 2565 2566 /** 2567 * mnt_set_expiry - Put a mount on an expiration list 2568 * @mnt: The mount to list. 2569 * @expiry_list: The list to add the mount to. 2570 */ 2571 void mnt_set_expiry(struct vfsmount *mnt, struct list_head *expiry_list) 2572 { 2573 namespace_lock(); 2574 2575 list_add_tail(&real_mount(mnt)->mnt_expire, expiry_list); 2576 2577 namespace_unlock(); 2578 } 2579 EXPORT_SYMBOL(mnt_set_expiry); 2580 2581 /* 2582 * process a list of expirable mountpoints with the intent of discarding any 2583 * mountpoints that aren't in use and haven't been touched since last we came 2584 * here 2585 */ 2586 void mark_mounts_for_expiry(struct list_head *mounts) 2587 { 2588 struct mount *mnt, *next; 2589 LIST_HEAD(graveyard); 2590 2591 if (list_empty(mounts)) 2592 return; 2593 2594 namespace_lock(); 2595 lock_mount_hash(); 2596 2597 /* extract from the expiration list every vfsmount that matches the 2598 * following criteria: 2599 * - only referenced by its parent vfsmount 2600 * - still marked for expiry (marked on the last call here; marks are 2601 * cleared by mntput()) 2602 */ 2603 list_for_each_entry_safe(mnt, next, mounts, mnt_expire) { 2604 if (!xchg(&mnt->mnt_expiry_mark, 1) || 2605 propagate_mount_busy(mnt, 1)) 2606 continue; 2607 list_move(&mnt->mnt_expire, &graveyard); 2608 } 2609 while (!list_empty(&graveyard)) { 2610 mnt = list_first_entry(&graveyard, struct mount, mnt_expire); 2611 touch_mnt_namespace(mnt->mnt_ns); 2612 umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC); 2613 } 2614 unlock_mount_hash(); 2615 namespace_unlock(); 2616 } 2617 2618 EXPORT_SYMBOL_GPL(mark_mounts_for_expiry); 2619 2620 /* 2621 * Ripoff of 'select_parent()' 2622 * 2623 * search the list of submounts for a given mountpoint, and move any 2624 * shrinkable submounts to the 'graveyard' list. 2625 */ 2626 static int select_submounts(struct mount *parent, struct list_head *graveyard) 2627 { 2628 struct mount *this_parent = parent; 2629 struct list_head *next; 2630 int found = 0; 2631 2632 repeat: 2633 next = this_parent->mnt_mounts.next; 2634 resume: 2635 while (next != &this_parent->mnt_mounts) { 2636 struct list_head *tmp = next; 2637 struct mount *mnt = list_entry(tmp, struct mount, mnt_child); 2638 2639 next = tmp->next; 2640 if (!(mnt->mnt.mnt_flags & MNT_SHRINKABLE)) 2641 continue; 2642 /* 2643 * Descend a level if the d_mounts list is non-empty. 2644 */ 2645 if (!list_empty(&mnt->mnt_mounts)) { 2646 this_parent = mnt; 2647 goto repeat; 2648 } 2649 2650 if (!propagate_mount_busy(mnt, 1)) { 2651 list_move_tail(&mnt->mnt_expire, graveyard); 2652 found++; 2653 } 2654 } 2655 /* 2656 * All done at this level ... ascend and resume the search 2657 */ 2658 if (this_parent != parent) { 2659 next = this_parent->mnt_child.next; 2660 this_parent = this_parent->mnt_parent; 2661 goto resume; 2662 } 2663 return found; 2664 } 2665 2666 /* 2667 * process a list of expirable mountpoints with the intent of discarding any 2668 * submounts of a specific parent mountpoint 2669 * 2670 * mount_lock must be held for write 2671 */ 2672 static void shrink_submounts(struct mount *mnt) 2673 { 2674 LIST_HEAD(graveyard); 2675 struct mount *m; 2676 2677 /* extract submounts of 'mountpoint' from the expiration list */ 2678 while (select_submounts(mnt, &graveyard)) { 2679 while (!list_empty(&graveyard)) { 2680 m = list_first_entry(&graveyard, struct mount, 2681 mnt_expire); 2682 touch_mnt_namespace(m->mnt_ns); 2683 umount_tree(m, UMOUNT_PROPAGATE|UMOUNT_SYNC); 2684 } 2685 } 2686 } 2687 2688 /* 2689 * Some copy_from_user() implementations do not return the exact number of 2690 * bytes remaining to copy on a fault. But copy_mount_options() requires that. 2691 * Note that this function differs from copy_from_user() in that it will oops 2692 * on bad values of `to', rather than returning a short copy. 2693 */ 2694 static long exact_copy_from_user(void *to, const void __user * from, 2695 unsigned long n) 2696 { 2697 char *t = to; 2698 const char __user *f = from; 2699 char c; 2700 2701 if (!access_ok(VERIFY_READ, from, n)) 2702 return n; 2703 2704 while (n) { 2705 if (__get_user(c, f)) { 2706 memset(t, 0, n); 2707 break; 2708 } 2709 *t++ = c; 2710 f++; 2711 n--; 2712 } 2713 return n; 2714 } 2715 2716 void *copy_mount_options(const void __user * data) 2717 { 2718 int i; 2719 unsigned long size; 2720 char *copy; 2721 2722 if (!data) 2723 return NULL; 2724 2725 copy = kmalloc(PAGE_SIZE, GFP_KERNEL); 2726 if (!copy) 2727 return ERR_PTR(-ENOMEM); 2728 2729 /* We only care that *some* data at the address the user 2730 * gave us is valid. Just in case, we'll zero 2731 * the remainder of the page. 2732 */ 2733 /* copy_from_user cannot cross TASK_SIZE ! */ 2734 size = TASK_SIZE - (unsigned long)data; 2735 if (size > PAGE_SIZE) 2736 size = PAGE_SIZE; 2737 2738 i = size - exact_copy_from_user(copy, data, size); 2739 if (!i) { 2740 kfree(copy); 2741 return ERR_PTR(-EFAULT); 2742 } 2743 if (i != PAGE_SIZE) 2744 memset(copy + i, 0, PAGE_SIZE - i); 2745 return copy; 2746 } 2747 2748 char *copy_mount_string(const void __user *data) 2749 { 2750 return data ? strndup_user(data, PAGE_SIZE) : NULL; 2751 } 2752 2753 /* 2754 * Flags is a 32-bit value that allows up to 31 non-fs dependent flags to 2755 * be given to the mount() call (ie: read-only, no-dev, no-suid etc). 2756 * 2757 * data is a (void *) that can point to any structure up to 2758 * PAGE_SIZE-1 bytes, which can contain arbitrary fs-dependent 2759 * information (or be NULL). 2760 * 2761 * Pre-0.97 versions of mount() didn't have a flags word. 2762 * When the flags word was introduced its top half was required 2763 * to have the magic value 0xC0ED, and this remained so until 2.4.0-test9. 2764 * Therefore, if this magic number is present, it carries no information 2765 * and must be discarded. 2766 */ 2767 long do_mount(const char *dev_name, const char __user *dir_name, 2768 const char *type_page, unsigned long flags, void *data_page) 2769 { 2770 struct path path; 2771 unsigned int mnt_flags = 0, sb_flags; 2772 int retval = 0; 2773 2774 /* Discard magic */ 2775 if ((flags & MS_MGC_MSK) == MS_MGC_VAL) 2776 flags &= ~MS_MGC_MSK; 2777 2778 /* Basic sanity checks */ 2779 if (data_page) 2780 ((char *)data_page)[PAGE_SIZE - 1] = 0; 2781 2782 if (flags & MS_NOUSER) 2783 return -EINVAL; 2784 2785 /* ... and get the mountpoint */ 2786 retval = user_path(dir_name, &path); 2787 if (retval) 2788 return retval; 2789 2790 retval = security_sb_mount(dev_name, &path, 2791 type_page, flags, data_page); 2792 if (!retval && !may_mount()) 2793 retval = -EPERM; 2794 if (!retval && (flags & SB_MANDLOCK) && !may_mandlock()) 2795 retval = -EPERM; 2796 if (retval) 2797 goto dput_out; 2798 2799 /* Default to relatime unless overriden */ 2800 if (!(flags & MS_NOATIME)) 2801 mnt_flags |= MNT_RELATIME; 2802 2803 /* Separate the per-mountpoint flags */ 2804 if (flags & MS_NOSUID) 2805 mnt_flags |= MNT_NOSUID; 2806 if (flags & MS_NODEV) 2807 mnt_flags |= MNT_NODEV; 2808 if (flags & MS_NOEXEC) 2809 mnt_flags |= MNT_NOEXEC; 2810 if (flags & MS_NOATIME) 2811 mnt_flags |= MNT_NOATIME; 2812 if (flags & MS_NODIRATIME) 2813 mnt_flags |= MNT_NODIRATIME; 2814 if (flags & MS_STRICTATIME) 2815 mnt_flags &= ~(MNT_RELATIME | MNT_NOATIME); 2816 if (flags & MS_RDONLY) 2817 mnt_flags |= MNT_READONLY; 2818 2819 /* The default atime for remount is preservation */ 2820 if ((flags & MS_REMOUNT) && 2821 ((flags & (MS_NOATIME | MS_NODIRATIME | MS_RELATIME | 2822 MS_STRICTATIME)) == 0)) { 2823 mnt_flags &= ~MNT_ATIME_MASK; 2824 mnt_flags |= path.mnt->mnt_flags & MNT_ATIME_MASK; 2825 } 2826 2827 sb_flags = flags & (SB_RDONLY | 2828 SB_SYNCHRONOUS | 2829 SB_MANDLOCK | 2830 SB_DIRSYNC | 2831 SB_SILENT | 2832 SB_POSIXACL | 2833 SB_LAZYTIME | 2834 SB_I_VERSION); 2835 2836 if (flags & MS_REMOUNT) 2837 retval = do_remount(&path, flags, sb_flags, mnt_flags, 2838 data_page); 2839 else if (flags & MS_BIND) 2840 retval = do_loopback(&path, dev_name, flags & MS_REC); 2841 else if (flags & (MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE)) 2842 retval = do_change_type(&path, flags); 2843 else if (flags & MS_MOVE) 2844 retval = do_move_mount(&path, dev_name); 2845 else 2846 retval = do_new_mount(&path, type_page, sb_flags, mnt_flags, 2847 dev_name, data_page); 2848 dput_out: 2849 path_put(&path); 2850 return retval; 2851 } 2852 2853 static struct ucounts *inc_mnt_namespaces(struct user_namespace *ns) 2854 { 2855 return inc_ucount(ns, current_euid(), UCOUNT_MNT_NAMESPACES); 2856 } 2857 2858 static void dec_mnt_namespaces(struct ucounts *ucounts) 2859 { 2860 dec_ucount(ucounts, UCOUNT_MNT_NAMESPACES); 2861 } 2862 2863 static void free_mnt_ns(struct mnt_namespace *ns) 2864 { 2865 ns_free_inum(&ns->ns); 2866 dec_mnt_namespaces(ns->ucounts); 2867 put_user_ns(ns->user_ns); 2868 kfree(ns); 2869 } 2870 2871 /* 2872 * Assign a sequence number so we can detect when we attempt to bind 2873 * mount a reference to an older mount namespace into the current 2874 * mount namespace, preventing reference counting loops. A 64bit 2875 * number incrementing at 10Ghz will take 12,427 years to wrap which 2876 * is effectively never, so we can ignore the possibility. 2877 */ 2878 static atomic64_t mnt_ns_seq = ATOMIC64_INIT(1); 2879 2880 static struct mnt_namespace *alloc_mnt_ns(struct user_namespace *user_ns) 2881 { 2882 struct mnt_namespace *new_ns; 2883 struct ucounts *ucounts; 2884 int ret; 2885 2886 ucounts = inc_mnt_namespaces(user_ns); 2887 if (!ucounts) 2888 return ERR_PTR(-ENOSPC); 2889 2890 new_ns = kmalloc(sizeof(struct mnt_namespace), GFP_KERNEL); 2891 if (!new_ns) { 2892 dec_mnt_namespaces(ucounts); 2893 return ERR_PTR(-ENOMEM); 2894 } 2895 ret = ns_alloc_inum(&new_ns->ns); 2896 if (ret) { 2897 kfree(new_ns); 2898 dec_mnt_namespaces(ucounts); 2899 return ERR_PTR(ret); 2900 } 2901 new_ns->ns.ops = &mntns_operations; 2902 new_ns->seq = atomic64_add_return(1, &mnt_ns_seq); 2903 atomic_set(&new_ns->count, 1); 2904 new_ns->root = NULL; 2905 INIT_LIST_HEAD(&new_ns->list); 2906 init_waitqueue_head(&new_ns->poll); 2907 new_ns->event = 0; 2908 new_ns->user_ns = get_user_ns(user_ns); 2909 new_ns->ucounts = ucounts; 2910 new_ns->mounts = 0; 2911 new_ns->pending_mounts = 0; 2912 return new_ns; 2913 } 2914 2915 __latent_entropy 2916 struct mnt_namespace *copy_mnt_ns(unsigned long flags, struct mnt_namespace *ns, 2917 struct user_namespace *user_ns, struct fs_struct *new_fs) 2918 { 2919 struct mnt_namespace *new_ns; 2920 struct vfsmount *rootmnt = NULL, *pwdmnt = NULL; 2921 struct mount *p, *q; 2922 struct mount *old; 2923 struct mount *new; 2924 int copy_flags; 2925 2926 BUG_ON(!ns); 2927 2928 if (likely(!(flags & CLONE_NEWNS))) { 2929 get_mnt_ns(ns); 2930 return ns; 2931 } 2932 2933 old = ns->root; 2934 2935 new_ns = alloc_mnt_ns(user_ns); 2936 if (IS_ERR(new_ns)) 2937 return new_ns; 2938 2939 namespace_lock(); 2940 /* First pass: copy the tree topology */ 2941 copy_flags = CL_COPY_UNBINDABLE | CL_EXPIRE; 2942 if (user_ns != ns->user_ns) 2943 copy_flags |= CL_SHARED_TO_SLAVE | CL_UNPRIVILEGED; 2944 new = copy_tree(old, old->mnt.mnt_root, copy_flags); 2945 if (IS_ERR(new)) { 2946 namespace_unlock(); 2947 free_mnt_ns(new_ns); 2948 return ERR_CAST(new); 2949 } 2950 new_ns->root = new; 2951 list_add_tail(&new_ns->list, &new->mnt_list); 2952 2953 /* 2954 * Second pass: switch the tsk->fs->* elements and mark new vfsmounts 2955 * as belonging to new namespace. We have already acquired a private 2956 * fs_struct, so tsk->fs->lock is not needed. 2957 */ 2958 p = old; 2959 q = new; 2960 while (p) { 2961 q->mnt_ns = new_ns; 2962 new_ns->mounts++; 2963 if (new_fs) { 2964 if (&p->mnt == new_fs->root.mnt) { 2965 new_fs->root.mnt = mntget(&q->mnt); 2966 rootmnt = &p->mnt; 2967 } 2968 if (&p->mnt == new_fs->pwd.mnt) { 2969 new_fs->pwd.mnt = mntget(&q->mnt); 2970 pwdmnt = &p->mnt; 2971 } 2972 } 2973 p = next_mnt(p, old); 2974 q = next_mnt(q, new); 2975 if (!q) 2976 break; 2977 while (p->mnt.mnt_root != q->mnt.mnt_root) 2978 p = next_mnt(p, old); 2979 } 2980 namespace_unlock(); 2981 2982 if (rootmnt) 2983 mntput(rootmnt); 2984 if (pwdmnt) 2985 mntput(pwdmnt); 2986 2987 return new_ns; 2988 } 2989 2990 /** 2991 * create_mnt_ns - creates a private namespace and adds a root filesystem 2992 * @mnt: pointer to the new root filesystem mountpoint 2993 */ 2994 static struct mnt_namespace *create_mnt_ns(struct vfsmount *m) 2995 { 2996 struct mnt_namespace *new_ns = alloc_mnt_ns(&init_user_ns); 2997 if (!IS_ERR(new_ns)) { 2998 struct mount *mnt = real_mount(m); 2999 mnt->mnt_ns = new_ns; 3000 new_ns->root = mnt; 3001 new_ns->mounts++; 3002 list_add(&mnt->mnt_list, &new_ns->list); 3003 } else { 3004 mntput(m); 3005 } 3006 return new_ns; 3007 } 3008 3009 struct dentry *mount_subtree(struct vfsmount *mnt, const char *name) 3010 { 3011 struct mnt_namespace *ns; 3012 struct super_block *s; 3013 struct path path; 3014 int err; 3015 3016 ns = create_mnt_ns(mnt); 3017 if (IS_ERR(ns)) 3018 return ERR_CAST(ns); 3019 3020 err = vfs_path_lookup(mnt->mnt_root, mnt, 3021 name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &path); 3022 3023 put_mnt_ns(ns); 3024 3025 if (err) 3026 return ERR_PTR(err); 3027 3028 /* trade a vfsmount reference for active sb one */ 3029 s = path.mnt->mnt_sb; 3030 atomic_inc(&s->s_active); 3031 mntput(path.mnt); 3032 /* lock the sucker */ 3033 down_write(&s->s_umount); 3034 /* ... and return the root of (sub)tree on it */ 3035 return path.dentry; 3036 } 3037 EXPORT_SYMBOL(mount_subtree); 3038 3039 int ksys_mount(char __user *dev_name, char __user *dir_name, char __user *type, 3040 unsigned long flags, void __user *data) 3041 { 3042 int ret; 3043 char *kernel_type; 3044 char *kernel_dev; 3045 void *options; 3046 3047 kernel_type = copy_mount_string(type); 3048 ret = PTR_ERR(kernel_type); 3049 if (IS_ERR(kernel_type)) 3050 goto out_type; 3051 3052 kernel_dev = copy_mount_string(dev_name); 3053 ret = PTR_ERR(kernel_dev); 3054 if (IS_ERR(kernel_dev)) 3055 goto out_dev; 3056 3057 options = copy_mount_options(data); 3058 ret = PTR_ERR(options); 3059 if (IS_ERR(options)) 3060 goto out_data; 3061 3062 ret = do_mount(kernel_dev, dir_name, kernel_type, flags, options); 3063 3064 kfree(options); 3065 out_data: 3066 kfree(kernel_dev); 3067 out_dev: 3068 kfree(kernel_type); 3069 out_type: 3070 return ret; 3071 } 3072 3073 SYSCALL_DEFINE5(mount, char __user *, dev_name, char __user *, dir_name, 3074 char __user *, type, unsigned long, flags, void __user *, data) 3075 { 3076 return ksys_mount(dev_name, dir_name, type, flags, data); 3077 } 3078 3079 /* 3080 * Return true if path is reachable from root 3081 * 3082 * namespace_sem or mount_lock is held 3083 */ 3084 bool is_path_reachable(struct mount *mnt, struct dentry *dentry, 3085 const struct path *root) 3086 { 3087 while (&mnt->mnt != root->mnt && mnt_has_parent(mnt)) { 3088 dentry = mnt->mnt_mountpoint; 3089 mnt = mnt->mnt_parent; 3090 } 3091 return &mnt->mnt == root->mnt && is_subdir(dentry, root->dentry); 3092 } 3093 3094 bool path_is_under(const struct path *path1, const struct path *path2) 3095 { 3096 bool res; 3097 read_seqlock_excl(&mount_lock); 3098 res = is_path_reachable(real_mount(path1->mnt), path1->dentry, path2); 3099 read_sequnlock_excl(&mount_lock); 3100 return res; 3101 } 3102 EXPORT_SYMBOL(path_is_under); 3103 3104 /* 3105 * pivot_root Semantics: 3106 * Moves the root file system of the current process to the directory put_old, 3107 * makes new_root as the new root file system of the current process, and sets 3108 * root/cwd of all processes which had them on the current root to new_root. 3109 * 3110 * Restrictions: 3111 * The new_root and put_old must be directories, and must not be on the 3112 * same file system as the current process root. The put_old must be 3113 * underneath new_root, i.e. adding a non-zero number of /.. to the string 3114 * pointed to by put_old must yield the same directory as new_root. No other 3115 * file system may be mounted on put_old. After all, new_root is a mountpoint. 3116 * 3117 * Also, the current root cannot be on the 'rootfs' (initial ramfs) filesystem. 3118 * See Documentation/filesystems/ramfs-rootfs-initramfs.txt for alternatives 3119 * in this situation. 3120 * 3121 * Notes: 3122 * - we don't move root/cwd if they are not at the root (reason: if something 3123 * cared enough to change them, it's probably wrong to force them elsewhere) 3124 * - it's okay to pick a root that isn't the root of a file system, e.g. 3125 * /nfs/my_root where /nfs is the mount point. It must be a mountpoint, 3126 * though, so you may need to say mount --bind /nfs/my_root /nfs/my_root 3127 * first. 3128 */ 3129 SYSCALL_DEFINE2(pivot_root, const char __user *, new_root, 3130 const char __user *, put_old) 3131 { 3132 struct path new, old, parent_path, root_parent, root; 3133 struct mount *new_mnt, *root_mnt, *old_mnt; 3134 struct mountpoint *old_mp, *root_mp; 3135 int error; 3136 3137 if (!may_mount()) 3138 return -EPERM; 3139 3140 error = user_path_dir(new_root, &new); 3141 if (error) 3142 goto out0; 3143 3144 error = user_path_dir(put_old, &old); 3145 if (error) 3146 goto out1; 3147 3148 error = security_sb_pivotroot(&old, &new); 3149 if (error) 3150 goto out2; 3151 3152 get_fs_root(current->fs, &root); 3153 old_mp = lock_mount(&old); 3154 error = PTR_ERR(old_mp); 3155 if (IS_ERR(old_mp)) 3156 goto out3; 3157 3158 error = -EINVAL; 3159 new_mnt = real_mount(new.mnt); 3160 root_mnt = real_mount(root.mnt); 3161 old_mnt = real_mount(old.mnt); 3162 if (IS_MNT_SHARED(old_mnt) || 3163 IS_MNT_SHARED(new_mnt->mnt_parent) || 3164 IS_MNT_SHARED(root_mnt->mnt_parent)) 3165 goto out4; 3166 if (!check_mnt(root_mnt) || !check_mnt(new_mnt)) 3167 goto out4; 3168 if (new_mnt->mnt.mnt_flags & MNT_LOCKED) 3169 goto out4; 3170 error = -ENOENT; 3171 if (d_unlinked(new.dentry)) 3172 goto out4; 3173 error = -EBUSY; 3174 if (new_mnt == root_mnt || old_mnt == root_mnt) 3175 goto out4; /* loop, on the same file system */ 3176 error = -EINVAL; 3177 if (root.mnt->mnt_root != root.dentry) 3178 goto out4; /* not a mountpoint */ 3179 if (!mnt_has_parent(root_mnt)) 3180 goto out4; /* not attached */ 3181 root_mp = root_mnt->mnt_mp; 3182 if (new.mnt->mnt_root != new.dentry) 3183 goto out4; /* not a mountpoint */ 3184 if (!mnt_has_parent(new_mnt)) 3185 goto out4; /* not attached */ 3186 /* make sure we can reach put_old from new_root */ 3187 if (!is_path_reachable(old_mnt, old.dentry, &new)) 3188 goto out4; 3189 /* make certain new is below the root */ 3190 if (!is_path_reachable(new_mnt, new.dentry, &root)) 3191 goto out4; 3192 root_mp->m_count++; /* pin it so it won't go away */ 3193 lock_mount_hash(); 3194 detach_mnt(new_mnt, &parent_path); 3195 detach_mnt(root_mnt, &root_parent); 3196 if (root_mnt->mnt.mnt_flags & MNT_LOCKED) { 3197 new_mnt->mnt.mnt_flags |= MNT_LOCKED; 3198 root_mnt->mnt.mnt_flags &= ~MNT_LOCKED; 3199 } 3200 /* mount old root on put_old */ 3201 attach_mnt(root_mnt, old_mnt, old_mp); 3202 /* mount new_root on / */ 3203 attach_mnt(new_mnt, real_mount(root_parent.mnt), root_mp); 3204 touch_mnt_namespace(current->nsproxy->mnt_ns); 3205 /* A moved mount should not expire automatically */ 3206 list_del_init(&new_mnt->mnt_expire); 3207 put_mountpoint(root_mp); 3208 unlock_mount_hash(); 3209 chroot_fs_refs(&root, &new); 3210 error = 0; 3211 out4: 3212 unlock_mount(old_mp); 3213 if (!error) { 3214 path_put(&root_parent); 3215 path_put(&parent_path); 3216 } 3217 out3: 3218 path_put(&root); 3219 out2: 3220 path_put(&old); 3221 out1: 3222 path_put(&new); 3223 out0: 3224 return error; 3225 } 3226 3227 static void __init init_mount_tree(void) 3228 { 3229 struct vfsmount *mnt; 3230 struct mnt_namespace *ns; 3231 struct path root; 3232 struct file_system_type *type; 3233 3234 type = get_fs_type("rootfs"); 3235 if (!type) 3236 panic("Can't find rootfs type"); 3237 mnt = vfs_kern_mount(type, 0, "rootfs", NULL); 3238 put_filesystem(type); 3239 if (IS_ERR(mnt)) 3240 panic("Can't create rootfs"); 3241 3242 ns = create_mnt_ns(mnt); 3243 if (IS_ERR(ns)) 3244 panic("Can't allocate initial namespace"); 3245 3246 init_task.nsproxy->mnt_ns = ns; 3247 get_mnt_ns(ns); 3248 3249 root.mnt = mnt; 3250 root.dentry = mnt->mnt_root; 3251 mnt->mnt_flags |= MNT_LOCKED; 3252 3253 set_fs_pwd(current->fs, &root); 3254 set_fs_root(current->fs, &root); 3255 } 3256 3257 void __init mnt_init(void) 3258 { 3259 int err; 3260 3261 mnt_cache = kmem_cache_create("mnt_cache", sizeof(struct mount), 3262 0, SLAB_HWCACHE_ALIGN | SLAB_PANIC, NULL); 3263 3264 mount_hashtable = alloc_large_system_hash("Mount-cache", 3265 sizeof(struct hlist_head), 3266 mhash_entries, 19, 3267 HASH_ZERO, 3268 &m_hash_shift, &m_hash_mask, 0, 0); 3269 mountpoint_hashtable = alloc_large_system_hash("Mountpoint-cache", 3270 sizeof(struct hlist_head), 3271 mphash_entries, 19, 3272 HASH_ZERO, 3273 &mp_hash_shift, &mp_hash_mask, 0, 0); 3274 3275 if (!mount_hashtable || !mountpoint_hashtable) 3276 panic("Failed to allocate mount hash table\n"); 3277 3278 kernfs_init(); 3279 3280 err = sysfs_init(); 3281 if (err) 3282 printk(KERN_WARNING "%s: sysfs_init error: %d\n", 3283 __func__, err); 3284 fs_kobj = kobject_create_and_add("fs", NULL); 3285 if (!fs_kobj) 3286 printk(KERN_WARNING "%s: kobj create error\n", __func__); 3287 init_rootfs(); 3288 init_mount_tree(); 3289 } 3290 3291 void put_mnt_ns(struct mnt_namespace *ns) 3292 { 3293 if (!atomic_dec_and_test(&ns->count)) 3294 return; 3295 drop_collected_mounts(&ns->root->mnt); 3296 free_mnt_ns(ns); 3297 } 3298 3299 struct vfsmount *kern_mount_data(struct file_system_type *type, void *data) 3300 { 3301 struct vfsmount *mnt; 3302 mnt = vfs_kern_mount(type, SB_KERNMOUNT, type->name, data); 3303 if (!IS_ERR(mnt)) { 3304 /* 3305 * it is a longterm mount, don't release mnt until 3306 * we unmount before file sys is unregistered 3307 */ 3308 real_mount(mnt)->mnt_ns = MNT_NS_INTERNAL; 3309 } 3310 return mnt; 3311 } 3312 EXPORT_SYMBOL_GPL(kern_mount_data); 3313 3314 void kern_unmount(struct vfsmount *mnt) 3315 { 3316 /* release long term mount so mount point can be released */ 3317 if (!IS_ERR_OR_NULL(mnt)) { 3318 real_mount(mnt)->mnt_ns = NULL; 3319 synchronize_rcu(); /* yecchhh... */ 3320 mntput(mnt); 3321 } 3322 } 3323 EXPORT_SYMBOL(kern_unmount); 3324 3325 bool our_mnt(struct vfsmount *mnt) 3326 { 3327 return check_mnt(real_mount(mnt)); 3328 } 3329 3330 bool current_chrooted(void) 3331 { 3332 /* Does the current process have a non-standard root */ 3333 struct path ns_root; 3334 struct path fs_root; 3335 bool chrooted; 3336 3337 /* Find the namespace root */ 3338 ns_root.mnt = ¤t->nsproxy->mnt_ns->root->mnt; 3339 ns_root.dentry = ns_root.mnt->mnt_root; 3340 path_get(&ns_root); 3341 while (d_mountpoint(ns_root.dentry) && follow_down_one(&ns_root)) 3342 ; 3343 3344 get_fs_root(current->fs, &fs_root); 3345 3346 chrooted = !path_equal(&fs_root, &ns_root); 3347 3348 path_put(&fs_root); 3349 path_put(&ns_root); 3350 3351 return chrooted; 3352 } 3353 3354 static bool mnt_already_visible(struct mnt_namespace *ns, struct vfsmount *new, 3355 int *new_mnt_flags) 3356 { 3357 int new_flags = *new_mnt_flags; 3358 struct mount *mnt; 3359 bool visible = false; 3360 3361 down_read(&namespace_sem); 3362 list_for_each_entry(mnt, &ns->list, mnt_list) { 3363 struct mount *child; 3364 int mnt_flags; 3365 3366 if (mnt->mnt.mnt_sb->s_type != new->mnt_sb->s_type) 3367 continue; 3368 3369 /* This mount is not fully visible if it's root directory 3370 * is not the root directory of the filesystem. 3371 */ 3372 if (mnt->mnt.mnt_root != mnt->mnt.mnt_sb->s_root) 3373 continue; 3374 3375 /* A local view of the mount flags */ 3376 mnt_flags = mnt->mnt.mnt_flags; 3377 3378 /* Don't miss readonly hidden in the superblock flags */ 3379 if (sb_rdonly(mnt->mnt.mnt_sb)) 3380 mnt_flags |= MNT_LOCK_READONLY; 3381 3382 /* Verify the mount flags are equal to or more permissive 3383 * than the proposed new mount. 3384 */ 3385 if ((mnt_flags & MNT_LOCK_READONLY) && 3386 !(new_flags & MNT_READONLY)) 3387 continue; 3388 if ((mnt_flags & MNT_LOCK_ATIME) && 3389 ((mnt_flags & MNT_ATIME_MASK) != (new_flags & MNT_ATIME_MASK))) 3390 continue; 3391 3392 /* This mount is not fully visible if there are any 3393 * locked child mounts that cover anything except for 3394 * empty directories. 3395 */ 3396 list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) { 3397 struct inode *inode = child->mnt_mountpoint->d_inode; 3398 /* Only worry about locked mounts */ 3399 if (!(child->mnt.mnt_flags & MNT_LOCKED)) 3400 continue; 3401 /* Is the directory permanetly empty? */ 3402 if (!is_empty_dir_inode(inode)) 3403 goto next; 3404 } 3405 /* Preserve the locked attributes */ 3406 *new_mnt_flags |= mnt_flags & (MNT_LOCK_READONLY | \ 3407 MNT_LOCK_ATIME); 3408 visible = true; 3409 goto found; 3410 next: ; 3411 } 3412 found: 3413 up_read(&namespace_sem); 3414 return visible; 3415 } 3416 3417 static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags) 3418 { 3419 const unsigned long required_iflags = SB_I_NOEXEC | SB_I_NODEV; 3420 struct mnt_namespace *ns = current->nsproxy->mnt_ns; 3421 unsigned long s_iflags; 3422 3423 if (ns->user_ns == &init_user_ns) 3424 return false; 3425 3426 /* Can this filesystem be too revealing? */ 3427 s_iflags = mnt->mnt_sb->s_iflags; 3428 if (!(s_iflags & SB_I_USERNS_VISIBLE)) 3429 return false; 3430 3431 if ((s_iflags & required_iflags) != required_iflags) { 3432 WARN_ONCE(1, "Expected s_iflags to contain 0x%lx\n", 3433 required_iflags); 3434 return true; 3435 } 3436 3437 return !mnt_already_visible(ns, mnt, new_mnt_flags); 3438 } 3439 3440 bool mnt_may_suid(struct vfsmount *mnt) 3441 { 3442 /* 3443 * Foreign mounts (accessed via fchdir or through /proc 3444 * symlinks) are always treated as if they are nosuid. This 3445 * prevents namespaces from trusting potentially unsafe 3446 * suid/sgid bits, file caps, or security labels that originate 3447 * in other namespaces. 3448 */ 3449 return !(mnt->mnt_flags & MNT_NOSUID) && check_mnt(real_mount(mnt)) && 3450 current_in_userns(mnt->mnt_sb->s_user_ns); 3451 } 3452 3453 static struct ns_common *mntns_get(struct task_struct *task) 3454 { 3455 struct ns_common *ns = NULL; 3456 struct nsproxy *nsproxy; 3457 3458 task_lock(task); 3459 nsproxy = task->nsproxy; 3460 if (nsproxy) { 3461 ns = &nsproxy->mnt_ns->ns; 3462 get_mnt_ns(to_mnt_ns(ns)); 3463 } 3464 task_unlock(task); 3465 3466 return ns; 3467 } 3468 3469 static void mntns_put(struct ns_common *ns) 3470 { 3471 put_mnt_ns(to_mnt_ns(ns)); 3472 } 3473 3474 static int mntns_install(struct nsproxy *nsproxy, struct ns_common *ns) 3475 { 3476 struct fs_struct *fs = current->fs; 3477 struct mnt_namespace *mnt_ns = to_mnt_ns(ns), *old_mnt_ns; 3478 struct path root; 3479 int err; 3480 3481 if (!ns_capable(mnt_ns->user_ns, CAP_SYS_ADMIN) || 3482 !ns_capable(current_user_ns(), CAP_SYS_CHROOT) || 3483 !ns_capable(current_user_ns(), CAP_SYS_ADMIN)) 3484 return -EPERM; 3485 3486 if (fs->users != 1) 3487 return -EINVAL; 3488 3489 get_mnt_ns(mnt_ns); 3490 old_mnt_ns = nsproxy->mnt_ns; 3491 nsproxy->mnt_ns = mnt_ns; 3492 3493 /* Find the root */ 3494 err = vfs_path_lookup(mnt_ns->root->mnt.mnt_root, &mnt_ns->root->mnt, 3495 "/", LOOKUP_DOWN, &root); 3496 if (err) { 3497 /* revert to old namespace */ 3498 nsproxy->mnt_ns = old_mnt_ns; 3499 put_mnt_ns(mnt_ns); 3500 return err; 3501 } 3502 3503 put_mnt_ns(old_mnt_ns); 3504 3505 /* Update the pwd and root */ 3506 set_fs_pwd(fs, &root); 3507 set_fs_root(fs, &root); 3508 3509 path_put(&root); 3510 return 0; 3511 } 3512 3513 static struct user_namespace *mntns_owner(struct ns_common *ns) 3514 { 3515 return to_mnt_ns(ns)->user_ns; 3516 } 3517 3518 const struct proc_ns_operations mntns_operations = { 3519 .name = "mnt", 3520 .type = CLONE_NEWNS, 3521 .get = mntns_get, 3522 .put = mntns_put, 3523 .install = mntns_install, 3524 .owner = mntns_owner, 3525 }; 3526