2 * fs/kernfs/mount.c - kernfs mount implementation
4 * Copyright (c) 2001-3 Patrick Mochel
5 * Copyright (c) 2007 SUSE Linux Products GmbH
6 * Copyright (c) 2007, 2013 Tejun Heo <tj@kernel.org>
8 * This file is released under the GPLv2.
12 #include <linux/mount.h>
13 #include <linux/init.h>
14 #include <linux/magic.h>
15 #include <linux/slab.h>
16 #include <linux/pagemap.h>
17 #include <linux/namei.h>
19 #include "kernfs-internal.h"
21 struct kmem_cache
*kernfs_node_cache
;
23 static int kernfs_sop_remount_fs(struct super_block
*sb
, int *flags
, char *data
)
25 struct kernfs_root
*root
= kernfs_info(sb
)->root
;
26 struct kernfs_syscall_ops
*scops
= root
->syscall_ops
;
28 if (scops
&& scops
->remount_fs
)
29 return scops
->remount_fs(root
, flags
, data
);
33 static int kernfs_sop_show_options(struct seq_file
*sf
, struct dentry
*dentry
)
35 struct kernfs_root
*root
= kernfs_root(dentry
->d_fsdata
);
36 struct kernfs_syscall_ops
*scops
= root
->syscall_ops
;
38 if (scops
&& scops
->show_options
)
39 return scops
->show_options(sf
, root
);
43 const struct super_operations kernfs_sops
= {
44 .statfs
= simple_statfs
,
45 .drop_inode
= generic_delete_inode
,
46 .evict_inode
= kernfs_evict_inode
,
48 .remount_fs
= kernfs_sop_remount_fs
,
49 .show_options
= kernfs_sop_show_options
,
53 * kernfs_root_from_sb - determine kernfs_root associated with a super_block
54 * @sb: the super_block in question
56 * Return the kernfs_root associated with @sb. If @sb is not a kernfs one,
59 struct kernfs_root
*kernfs_root_from_sb(struct super_block
*sb
)
61 if (sb
->s_op
== &kernfs_sops
)
62 return kernfs_info(sb
)->root
;
67 * find the next ancestor in the path down to @child, where @parent was the
68 * ancestor whose descendant we want to find.
70 * Say the path is /a/b/c/d. @child is d, @parent is NULL. We return the root
71 * node. If @parent is b, then we return the node for c.
72 * Passing in d as @parent is not ok.
74 static struct kernfs_node
*find_next_ancestor(struct kernfs_node
*child
,
75 struct kernfs_node
*parent
)
77 if (child
== parent
) {
78 pr_crit_once("BUG in find_next_ancestor: called with parent == child");
82 while (child
->parent
!= parent
) {
85 child
= child
->parent
;
92 * kernfs_node_dentry - get a dentry for the given kernfs_node
93 * @kn: kernfs_node for which a dentry is needed
94 * @sb: the kernfs super_block
96 struct dentry
*kernfs_node_dentry(struct kernfs_node
*kn
,
97 struct super_block
*sb
)
99 struct dentry
*dentry
;
100 struct kernfs_node
*knparent
= NULL
;
102 BUG_ON(sb
->s_op
!= &kernfs_sops
);
104 dentry
= dget(sb
->s_root
);
106 /* Check if this is the root kernfs_node */
110 knparent
= find_next_ancestor(kn
, NULL
);
111 if (WARN_ON(!knparent
))
112 return ERR_PTR(-EINVAL
);
116 struct kernfs_node
*kntmp
;
120 kntmp
= find_next_ancestor(kn
, knparent
);
122 return ERR_PTR(-EINVAL
);
123 mutex_lock(&d_inode(dentry
)->i_mutex
);
124 dtmp
= lookup_one_len(kntmp
->name
, dentry
, strlen(kntmp
->name
));
125 mutex_unlock(&d_inode(dentry
)->i_mutex
);
134 static int kernfs_fill_super(struct super_block
*sb
, unsigned long magic
)
136 struct kernfs_super_info
*info
= kernfs_info(sb
);
141 sb
->s_blocksize
= PAGE_SIZE
;
142 sb
->s_blocksize_bits
= PAGE_SHIFT
;
144 sb
->s_op
= &kernfs_sops
;
147 /* get root inode, initialize and unlock it */
148 mutex_lock(&kernfs_mutex
);
149 inode
= kernfs_get_inode(sb
, info
->root
->kn
);
150 mutex_unlock(&kernfs_mutex
);
152 pr_debug("kernfs: could not get root inode\n");
156 /* instantiate and link root dentry */
157 root
= d_make_root(inode
);
159 pr_debug("%s: could not get root dentry!\n", __func__
);
162 kernfs_get(info
->root
->kn
);
163 root
->d_fsdata
= info
->root
->kn
;
165 sb
->s_d_op
= &kernfs_dops
;
169 static int kernfs_test_super(struct super_block
*sb
, void *data
)
171 struct kernfs_super_info
*sb_info
= kernfs_info(sb
);
172 struct kernfs_super_info
*info
= data
;
174 return sb_info
->root
== info
->root
&& sb_info
->ns
== info
->ns
;
177 static int kernfs_set_super(struct super_block
*sb
, void *data
)
180 error
= set_anon_super(sb
, data
);
182 sb
->s_fs_info
= data
;
187 * kernfs_super_ns - determine the namespace tag of a kernfs super_block
188 * @sb: super_block of interest
190 * Return the namespace tag associated with kernfs super_block @sb.
192 const void *kernfs_super_ns(struct super_block
*sb
)
194 struct kernfs_super_info
*info
= kernfs_info(sb
);
200 * kernfs_mount_ns - kernfs mount helper
201 * @fs_type: file_system_type of the fs being mounted
202 * @flags: mount flags specified for the mount
203 * @root: kernfs_root of the hierarchy being mounted
204 * @magic: file system specific magic number
205 * @new_sb_created: tell the caller if we allocated a new superblock
206 * @ns: optional namespace tag of the mount
208 * This is to be called from each kernfs user's file_system_type->mount()
209 * implementation, which should pass through the specified @fs_type and
210 * @flags, and specify the hierarchy and namespace tag to mount via @root
211 * and @ns, respectively.
213 * The return value can be passed to the vfs layer verbatim.
215 struct dentry
*kernfs_mount_ns(struct file_system_type
*fs_type
, int flags
,
216 struct kernfs_root
*root
, unsigned long magic
,
217 bool *new_sb_created
, const void *ns
)
219 struct super_block
*sb
;
220 struct kernfs_super_info
*info
;
223 info
= kzalloc(sizeof(*info
), GFP_KERNEL
);
225 return ERR_PTR(-ENOMEM
);
230 sb
= sget(fs_type
, kernfs_test_super
, kernfs_set_super
, flags
, info
);
231 if (IS_ERR(sb
) || sb
->s_fs_info
!= info
)
237 *new_sb_created
= !sb
->s_root
;
240 struct kernfs_super_info
*info
= kernfs_info(sb
);
242 error
= kernfs_fill_super(sb
, magic
);
244 deactivate_locked_super(sb
);
245 return ERR_PTR(error
);
247 sb
->s_flags
|= MS_ACTIVE
;
249 mutex_lock(&kernfs_mutex
);
250 list_add(&info
->node
, &root
->supers
);
251 mutex_unlock(&kernfs_mutex
);
254 return dget(sb
->s_root
);
258 * kernfs_kill_sb - kill_sb for kernfs
259 * @sb: super_block being killed
261 * This can be used directly for file_system_type->kill_sb(). If a kernfs
262 * user needs extra cleanup, it can implement its own kill_sb() and call
263 * this function at the end.
265 void kernfs_kill_sb(struct super_block
*sb
)
267 struct kernfs_super_info
*info
= kernfs_info(sb
);
268 struct kernfs_node
*root_kn
= sb
->s_root
->d_fsdata
;
270 mutex_lock(&kernfs_mutex
);
271 list_del(&info
->node
);
272 mutex_unlock(&kernfs_mutex
);
275 * Remove the superblock from fs_supers/s_instances
276 * so we can't find it, before freeing kernfs_super_info.
284 * kernfs_pin_sb: try to pin the superblock associated with a kernfs_root
285 * @kernfs_root: the kernfs_root in question
286 * @ns: the namespace tag
288 * Pin the superblock so the superblock won't be destroyed in subsequent
289 * operations. This can be used to block ->kill_sb() which may be useful
290 * for kernfs users which dynamically manage superblocks.
292 * Returns NULL if there's no superblock associated to this kernfs_root, or
293 * -EINVAL if the superblock is being freed.
295 struct super_block
*kernfs_pin_sb(struct kernfs_root
*root
, const void *ns
)
297 struct kernfs_super_info
*info
;
298 struct super_block
*sb
= NULL
;
300 mutex_lock(&kernfs_mutex
);
301 list_for_each_entry(info
, &root
->supers
, node
) {
302 if (info
->ns
== ns
) {
304 if (!atomic_inc_not_zero(&info
->sb
->s_active
))
305 sb
= ERR_PTR(-EINVAL
);
309 mutex_unlock(&kernfs_mutex
);
313 void __init
kernfs_init(void)
315 kernfs_node_cache
= kmem_cache_create("kernfs_node_cache",
316 sizeof(struct kernfs_node
),
317 0, SLAB_PANIC
, NULL
);