1 /* SPDX-License-Identifier: GPL-2.0-only */
2 /*
3  * kernfs.h - pseudo filesystem decoupled from vfs locking
4  */
5 
6 #ifndef __LINUX_KERNFS_H
7 #define __LINUX_KERNFS_H
8 
9 #include <linux/err.h>
10 #include <linux/list.h>
11 #include <linux/mutex.h>
12 #include <linux/idr.h>
13 #include <linux/lockdep.h>
14 #include <linux/rbtree.h>
15 #include <linux/atomic.h>
16 #include <linux/bug.h>
17 #include <linux/types.h>
18 #include <linux/uidgid.h>
19 #include <linux/wait.h>
20 #include <linux/rwsem.h>
21 #include <linux/cache.h>
22 #include <linux/android_kabi.h>
23 
24 struct file;
25 struct dentry;
26 struct iattr;
27 struct seq_file;
28 struct vm_area_struct;
29 struct vm_operations_struct;
30 struct super_block;
31 struct file_system_type;
32 struct poll_table_struct;
33 struct fs_context;
34 
35 struct kernfs_fs_context;
36 struct kernfs_open_node;
37 struct kernfs_iattrs;
38 
39 /*
40  * NR_KERNFS_LOCK_BITS determines size (NR_KERNFS_LOCKS) of hash
41  * table of locks.
42  * Having a small hash table would impact scalability, since
43  * more and more kernfs_node objects will end up using same lock
44  * and having a very large hash table would waste memory.
45  *
46  * At the moment size of hash table of locks is being set based on
47  * the number of CPUs as follows:
48  *
49  * NR_CPU      NR_KERNFS_LOCK_BITS      NR_KERNFS_LOCKS
50  *   1                  1                       2
51  *  2-3                 2                       4
52  *  4-7                 4                       16
53  *  8-15                6                       64
54  *  16-31               8                       256
55  *  32 and more         10                      1024
56  *
57  * The above relation between NR_CPU and number of locks is based
58  * on some internal experimentation which involved booting qemu
59  * with different values of smp, performing some sysfs operations
60  * on all CPUs and observing how increase in number of locks impacts
61  * completion time of these sysfs operations on each CPU.
62  */
63 #ifdef CONFIG_SMP
64 #define NR_KERNFS_LOCK_BITS (2 * (ilog2(NR_CPUS < 32 ? NR_CPUS : 32)))
65 #else
66 #define NR_KERNFS_LOCK_BITS     1
67 #endif
68 
69 #define NR_KERNFS_LOCKS     (1 << NR_KERNFS_LOCK_BITS)
70 
71 /*
72  * There's one kernfs_open_file for each open file and one kernfs_open_node
73  * for each kernfs_node with one or more open files.
74  *
75  * filp->private_data points to seq_file whose ->private points to
76  * kernfs_open_file.
77  *
78  * kernfs_open_files are chained at kernfs_open_node->files, which is
79  * protected by kernfs_global_locks.open_file_mutex[i].
80  *
81  * To reduce possible contention in sysfs access, arising due to single
82  * locks, use an array of locks (e.g. open_file_mutex) and use kernfs_node
83  * object address as hash keys to get the index of these locks.
84  *
85  * Hashed mutexes are safe to use here because operations using these don't
86  * rely on global exclusion.
87  *
88  * In future we intend to replace other global locks with hashed ones as well.
89  * kernfs_global_locks acts as a holder for all such hash tables.
90  */
91 struct kernfs_global_locks {
92 	struct mutex open_file_mutex[NR_KERNFS_LOCKS];
93 };
94 
95 enum kernfs_node_type {
96 	KERNFS_DIR		= 0x0001,
97 	KERNFS_FILE		= 0x0002,
98 	KERNFS_LINK		= 0x0004,
99 };
100 
101 #define KERNFS_TYPE_MASK		0x000f
102 #define KERNFS_FLAG_MASK		~KERNFS_TYPE_MASK
103 #define KERNFS_MAX_USER_XATTRS		128
104 #define KERNFS_USER_XATTR_SIZE_LIMIT	(128 << 10)
105 
106 enum kernfs_node_flag {
107 	KERNFS_ACTIVATED	= 0x0010,
108 	KERNFS_NS		= 0x0020,
109 	KERNFS_HAS_SEQ_SHOW	= 0x0040,
110 	KERNFS_HAS_MMAP		= 0x0080,
111 	KERNFS_LOCKDEP		= 0x0100,
112 	KERNFS_HIDDEN		= 0x0200,
113 	KERNFS_SUICIDAL		= 0x0400,
114 	KERNFS_SUICIDED		= 0x0800,
115 	KERNFS_EMPTY_DIR	= 0x1000,
116 	KERNFS_HAS_RELEASE	= 0x2000,
117 	KERNFS_REMOVING		= 0x4000,
118 };
119 
120 /* @flags for kernfs_create_root() */
121 enum kernfs_root_flag {
122 	/*
123 	 * kernfs_nodes are created in the deactivated state and invisible.
124 	 * They require explicit kernfs_activate() to become visible.  This
125 	 * can be used to make related nodes become visible atomically
126 	 * after all nodes are created successfully.
127 	 */
128 	KERNFS_ROOT_CREATE_DEACTIVATED		= 0x0001,
129 
130 	/*
131 	 * For regular files, if the opener has CAP_DAC_OVERRIDE, open(2)
132 	 * succeeds regardless of the RW permissions.  sysfs had an extra
133 	 * layer of enforcement where open(2) fails with -EACCES regardless
134 	 * of CAP_DAC_OVERRIDE if the permission doesn't have the
135 	 * respective read or write access at all (none of S_IRUGO or
136 	 * S_IWUGO) or the respective operation isn't implemented.  The
137 	 * following flag enables that behavior.
138 	 */
139 	KERNFS_ROOT_EXTRA_OPEN_PERM_CHECK	= 0x0002,
140 
141 	/*
142 	 * The filesystem supports exportfs operation, so userspace can use
143 	 * fhandle to access nodes of the fs.
144 	 */
145 	KERNFS_ROOT_SUPPORT_EXPORTOP		= 0x0004,
146 
147 	/*
148 	 * Support user xattrs to be written to nodes rooted at this root.
149 	 */
150 	KERNFS_ROOT_SUPPORT_USER_XATTR		= 0x0008,
151 };
152 
153 /* type-specific structures for kernfs_node union members */
154 struct kernfs_elem_dir {
155 	unsigned long		subdirs;
156 	/* children rbtree starts here and goes through kn->rb */
157 	struct rb_root		children;
158 
159 	/*
160 	 * The kernfs hierarchy this directory belongs to.  This fits
161 	 * better directly in kernfs_node but is here to save space.
162 	 */
163 	struct kernfs_root	*root;
164 	/*
165 	 * Monotonic revision counter, used to identify if a directory
166 	 * node has changed during negative dentry revalidation.
167 	 */
168 	unsigned long		rev;
169 };
170 
171 struct kernfs_elem_symlink {
172 	struct kernfs_node	*target_kn;
173 };
174 
175 struct kernfs_elem_attr {
176 	const struct kernfs_ops	*ops;
177 	struct kernfs_open_node __rcu	*open;
178 	loff_t			size;
179 	struct kernfs_node	*notify_next;	/* for kernfs_notify() */
180 };
181 
182 /*
183  * kernfs_node - the building block of kernfs hierarchy.  Each and every
184  * kernfs node is represented by single kernfs_node.  Most fields are
185  * private to kernfs and shouldn't be accessed directly by kernfs users.
186  *
187  * As long as count reference is held, the kernfs_node itself is
188  * accessible.  Dereferencing elem or any other outer entity requires
189  * active reference.
190  */
191 struct kernfs_node {
192 	atomic_t		count;
193 	atomic_t		active;
194 #ifdef CONFIG_DEBUG_LOCK_ALLOC
195 	struct lockdep_map	dep_map;
196 #endif
197 	/*
198 	 * Use kernfs_get_parent() and kernfs_name/path() instead of
199 	 * accessing the following two fields directly.  If the node is
200 	 * never moved to a different parent, it is safe to access the
201 	 * parent directly.
202 	 */
203 	struct kernfs_node	*parent;
204 	const char		*name;
205 
206 	struct rb_node		rb;
207 
208 	const void		*ns;	/* namespace tag */
209 	unsigned int		hash;	/* ns + name hash */
210 	unsigned short		flags;
211 	umode_t			mode;
212 
213 	union {
214 		struct kernfs_elem_dir		dir;
215 		struct kernfs_elem_symlink	symlink;
216 		struct kernfs_elem_attr		attr;
217 	};
218 
219 	/*
220 	 * 64bit unique ID.  On 64bit ino setups, id is the ino.  On 32bit,
221 	 * the low 32bits are ino and upper generation.
222 	 */
223 	u64			id;
224 
225 	void			*priv;
226 	struct kernfs_iattrs	*iattr;
227 
228 	struct rcu_head		rcu;
229 	ANDROID_KABI_RESERVE(1);
230 };
231 
232 /*
233  * kernfs_syscall_ops may be specified on kernfs_create_root() to support
234  * syscalls.  These optional callbacks are invoked on the matching syscalls
235  * and can perform any kernfs operations which don't necessarily have to be
236  * the exact operation requested.  An active reference is held for each
237  * kernfs_node parameter.
238  */
239 struct kernfs_syscall_ops {
240 	int (*show_options)(struct seq_file *sf, struct kernfs_root *root);
241 
242 	int (*mkdir)(struct kernfs_node *parent, const char *name,
243 		     umode_t mode);
244 	int (*rmdir)(struct kernfs_node *kn);
245 	int (*rename)(struct kernfs_node *kn, struct kernfs_node *new_parent,
246 		      const char *new_name);
247 	int (*show_path)(struct seq_file *sf, struct kernfs_node *kn,
248 			 struct kernfs_root *root);
249 
250 	ANDROID_KABI_RESERVE(1);
251 	ANDROID_KABI_RESERVE(2);
252 	ANDROID_KABI_RESERVE(3);
253 	ANDROID_KABI_RESERVE(4);
254 };
255 
256 struct kernfs_node *kernfs_root_to_node(struct kernfs_root *root);
257 
258 struct kernfs_open_file {
259 	/* published fields */
260 	struct kernfs_node	*kn;
261 	struct file		*file;
262 	struct seq_file		*seq_file;
263 	void			*priv;
264 
265 	/* private fields, do not use outside kernfs proper */
266 	struct mutex		mutex;
267 	struct mutex		prealloc_mutex;
268 	int			event;
269 	struct list_head	list;
270 	char			*prealloc_buf;
271 
272 	size_t			atomic_write_len;
273 	bool			mmapped:1;
274 	bool			released:1;
275 	const struct vm_operations_struct *vm_ops;
276 
277 	ANDROID_KABI_RESERVE(1);
278 };
279 
280 struct kernfs_ops {
281 	/*
282 	 * Optional open/release methods.  Both are called with
283 	 * @of->seq_file populated.
284 	 */
285 	int (*open)(struct kernfs_open_file *of);
286 	void (*release)(struct kernfs_open_file *of);
287 
288 	/*
289 	 * Read is handled by either seq_file or raw_read().
290 	 *
291 	 * If seq_show() is present, seq_file path is active.  Other seq
292 	 * operations are optional and if not implemented, the behavior is
293 	 * equivalent to single_open().  @sf->private points to the
294 	 * associated kernfs_open_file.
295 	 *
296 	 * read() is bounced through kernel buffer and a read larger than
297 	 * PAGE_SIZE results in partial operation of PAGE_SIZE.
298 	 */
299 	int (*seq_show)(struct seq_file *sf, void *v);
300 
301 	void *(*seq_start)(struct seq_file *sf, loff_t *ppos);
302 	void *(*seq_next)(struct seq_file *sf, void *v, loff_t *ppos);
303 	void (*seq_stop)(struct seq_file *sf, void *v);
304 
305 	ssize_t (*read)(struct kernfs_open_file *of, char *buf, size_t bytes,
306 			loff_t off);
307 
308 	/*
309 	 * write() is bounced through kernel buffer.  If atomic_write_len
310 	 * is not set, a write larger than PAGE_SIZE results in partial
311 	 * operations of PAGE_SIZE chunks.  If atomic_write_len is set,
312 	 * writes upto the specified size are executed atomically but
313 	 * larger ones are rejected with -E2BIG.
314 	 */
315 	size_t atomic_write_len;
316 	/*
317 	 * "prealloc" causes a buffer to be allocated at open for
318 	 * all read/write requests.  As ->seq_show uses seq_read()
319 	 * which does its own allocation, it is incompatible with
320 	 * ->prealloc.  Provide ->read and ->write with ->prealloc.
321 	 */
322 	bool prealloc;
323 	ssize_t (*write)(struct kernfs_open_file *of, char *buf, size_t bytes,
324 			 loff_t off);
325 
326 	__poll_t (*poll)(struct kernfs_open_file *of,
327 			 struct poll_table_struct *pt);
328 
329 	int (*mmap)(struct kernfs_open_file *of, struct vm_area_struct *vma);
330 	loff_t (*llseek)(struct kernfs_open_file *of, loff_t offset, int whence);
331 
332 	ANDROID_KABI_RESERVE(1);
333 	ANDROID_KABI_RESERVE(2);
334 };
335 
336 /*
337  * The kernfs superblock creation/mount parameter context.
338  */
339 struct kernfs_fs_context {
340 	struct kernfs_root	*root;		/* Root of the hierarchy being mounted */
341 	void			*ns_tag;	/* Namespace tag of the mount (or NULL) */
342 	unsigned long		magic;		/* File system specific magic number */
343 
344 	/* The following are set/used by kernfs_mount() */
345 	bool			new_sb_created;	/* Set to T if we allocated a new sb */
346 };
347 
348 #ifdef CONFIG_KERNFS
349 
kernfs_type(struct kernfs_node * kn)350 static inline enum kernfs_node_type kernfs_type(struct kernfs_node *kn)
351 {
352 	return kn->flags & KERNFS_TYPE_MASK;
353 }
354 
kernfs_id_ino(u64 id)355 static inline ino_t kernfs_id_ino(u64 id)
356 {
357 	/* id is ino if ino_t is 64bit; otherwise, low 32bits */
358 	if (sizeof(ino_t) >= sizeof(u64))
359 		return id;
360 	else
361 		return (u32)id;
362 }
363 
kernfs_id_gen(u64 id)364 static inline u32 kernfs_id_gen(u64 id)
365 {
366 	/* gen is fixed at 1 if ino_t is 64bit; otherwise, high 32bits */
367 	if (sizeof(ino_t) >= sizeof(u64))
368 		return 1;
369 	else
370 		return id >> 32;
371 }
372 
kernfs_ino(struct kernfs_node * kn)373 static inline ino_t kernfs_ino(struct kernfs_node *kn)
374 {
375 	return kernfs_id_ino(kn->id);
376 }
377 
kernfs_gen(struct kernfs_node * kn)378 static inline ino_t kernfs_gen(struct kernfs_node *kn)
379 {
380 	return kernfs_id_gen(kn->id);
381 }
382 
383 /**
384  * kernfs_enable_ns - enable namespace under a directory
385  * @kn: directory of interest, should be empty
386  *
387  * This is to be called right after @kn is created to enable namespace
388  * under it.  All children of @kn must have non-NULL namespace tags and
389  * only the ones which match the super_block's tag will be visible.
390  */
kernfs_enable_ns(struct kernfs_node * kn)391 static inline void kernfs_enable_ns(struct kernfs_node *kn)
392 {
393 	WARN_ON_ONCE(kernfs_type(kn) != KERNFS_DIR);
394 	WARN_ON_ONCE(!RB_EMPTY_ROOT(&kn->dir.children));
395 	kn->flags |= KERNFS_NS;
396 }
397 
398 /**
399  * kernfs_ns_enabled - test whether namespace is enabled
400  * @kn: the node to test
401  *
402  * Test whether namespace filtering is enabled for the children of @ns.
403  */
kernfs_ns_enabled(struct kernfs_node * kn)404 static inline bool kernfs_ns_enabled(struct kernfs_node *kn)
405 {
406 	return kn->flags & KERNFS_NS;
407 }
408 
409 int kernfs_name(struct kernfs_node *kn, char *buf, size_t buflen);
410 int kernfs_path_from_node(struct kernfs_node *root_kn, struct kernfs_node *kn,
411 			  char *buf, size_t buflen);
412 void pr_cont_kernfs_name(struct kernfs_node *kn);
413 void pr_cont_kernfs_path(struct kernfs_node *kn);
414 struct kernfs_node *kernfs_get_parent(struct kernfs_node *kn);
415 struct kernfs_node *kernfs_find_and_get_ns(struct kernfs_node *parent,
416 					   const char *name, const void *ns);
417 struct kernfs_node *kernfs_walk_and_get_ns(struct kernfs_node *parent,
418 					   const char *path, const void *ns);
419 void kernfs_get(struct kernfs_node *kn);
420 void kernfs_put(struct kernfs_node *kn);
421 
422 struct kernfs_node *kernfs_node_from_dentry(struct dentry *dentry);
423 struct kernfs_root *kernfs_root_from_sb(struct super_block *sb);
424 struct inode *kernfs_get_inode(struct super_block *sb, struct kernfs_node *kn);
425 
426 struct dentry *kernfs_node_dentry(struct kernfs_node *kn,
427 				  struct super_block *sb);
428 struct kernfs_root *kernfs_create_root(struct kernfs_syscall_ops *scops,
429 				       unsigned int flags, void *priv);
430 void kernfs_destroy_root(struct kernfs_root *root);
431 
432 struct kernfs_node *kernfs_create_dir_ns(struct kernfs_node *parent,
433 					 const char *name, umode_t mode,
434 					 kuid_t uid, kgid_t gid,
435 					 void *priv, const void *ns);
436 struct kernfs_node *kernfs_create_empty_dir(struct kernfs_node *parent,
437 					    const char *name);
438 struct kernfs_node *__kernfs_create_file(struct kernfs_node *parent,
439 					 const char *name, umode_t mode,
440 					 kuid_t uid, kgid_t gid,
441 					 loff_t size,
442 					 const struct kernfs_ops *ops,
443 					 void *priv, const void *ns,
444 					 struct lock_class_key *key);
445 struct kernfs_node *kernfs_create_link(struct kernfs_node *parent,
446 				       const char *name,
447 				       struct kernfs_node *target);
448 void kernfs_activate(struct kernfs_node *kn);
449 void kernfs_show(struct kernfs_node *kn, bool show);
450 void kernfs_remove(struct kernfs_node *kn);
451 void kernfs_break_active_protection(struct kernfs_node *kn);
452 void kernfs_unbreak_active_protection(struct kernfs_node *kn);
453 bool kernfs_remove_self(struct kernfs_node *kn);
454 int kernfs_remove_by_name_ns(struct kernfs_node *parent, const char *name,
455 			     const void *ns);
456 int kernfs_rename_ns(struct kernfs_node *kn, struct kernfs_node *new_parent,
457 		     const char *new_name, const void *new_ns);
458 int kernfs_setattr(struct kernfs_node *kn, const struct iattr *iattr);
459 __poll_t kernfs_generic_poll(struct kernfs_open_file *of,
460 			     struct poll_table_struct *pt);
461 void kernfs_notify(struct kernfs_node *kn);
462 
463 int kernfs_xattr_get(struct kernfs_node *kn, const char *name,
464 		     void *value, size_t size);
465 int kernfs_xattr_set(struct kernfs_node *kn, const char *name,
466 		     const void *value, size_t size, int flags);
467 
468 const void *kernfs_super_ns(struct super_block *sb);
469 int kernfs_get_tree(struct fs_context *fc);
470 void kernfs_free_fs_context(struct fs_context *fc);
471 void kernfs_kill_sb(struct super_block *sb);
472 
473 void kernfs_init(void);
474 
475 struct kernfs_node *kernfs_find_and_get_node_by_id(struct kernfs_root *root,
476 						   u64 id);
477 #else	/* CONFIG_KERNFS */
478 
kernfs_type(struct kernfs_node * kn)479 static inline enum kernfs_node_type kernfs_type(struct kernfs_node *kn)
480 { return 0; }	/* whatever */
481 
kernfs_enable_ns(struct kernfs_node * kn)482 static inline void kernfs_enable_ns(struct kernfs_node *kn) { }
483 
kernfs_ns_enabled(struct kernfs_node * kn)484 static inline bool kernfs_ns_enabled(struct kernfs_node *kn)
485 { return false; }
486 
kernfs_name(struct kernfs_node * kn,char * buf,size_t buflen)487 static inline int kernfs_name(struct kernfs_node *kn, char *buf, size_t buflen)
488 { return -ENOSYS; }
489 
kernfs_path_from_node(struct kernfs_node * root_kn,struct kernfs_node * kn,char * buf,size_t buflen)490 static inline int kernfs_path_from_node(struct kernfs_node *root_kn,
491 					struct kernfs_node *kn,
492 					char *buf, size_t buflen)
493 { return -ENOSYS; }
494 
pr_cont_kernfs_name(struct kernfs_node * kn)495 static inline void pr_cont_kernfs_name(struct kernfs_node *kn) { }
pr_cont_kernfs_path(struct kernfs_node * kn)496 static inline void pr_cont_kernfs_path(struct kernfs_node *kn) { }
497 
kernfs_get_parent(struct kernfs_node * kn)498 static inline struct kernfs_node *kernfs_get_parent(struct kernfs_node *kn)
499 { return NULL; }
500 
501 static inline struct kernfs_node *
kernfs_find_and_get_ns(struct kernfs_node * parent,const char * name,const void * ns)502 kernfs_find_and_get_ns(struct kernfs_node *parent, const char *name,
503 		       const void *ns)
504 { return NULL; }
505 static inline struct kernfs_node *
kernfs_walk_and_get_ns(struct kernfs_node * parent,const char * path,const void * ns)506 kernfs_walk_and_get_ns(struct kernfs_node *parent, const char *path,
507 		       const void *ns)
508 { return NULL; }
509 
kernfs_get(struct kernfs_node * kn)510 static inline void kernfs_get(struct kernfs_node *kn) { }
kernfs_put(struct kernfs_node * kn)511 static inline void kernfs_put(struct kernfs_node *kn) { }
512 
kernfs_node_from_dentry(struct dentry * dentry)513 static inline struct kernfs_node *kernfs_node_from_dentry(struct dentry *dentry)
514 { return NULL; }
515 
kernfs_root_from_sb(struct super_block * sb)516 static inline struct kernfs_root *kernfs_root_from_sb(struct super_block *sb)
517 { return NULL; }
518 
519 static inline struct inode *
kernfs_get_inode(struct super_block * sb,struct kernfs_node * kn)520 kernfs_get_inode(struct super_block *sb, struct kernfs_node *kn)
521 { return NULL; }
522 
523 static inline struct kernfs_root *
kernfs_create_root(struct kernfs_syscall_ops * scops,unsigned int flags,void * priv)524 kernfs_create_root(struct kernfs_syscall_ops *scops, unsigned int flags,
525 		   void *priv)
526 { return ERR_PTR(-ENOSYS); }
527 
kernfs_destroy_root(struct kernfs_root * root)528 static inline void kernfs_destroy_root(struct kernfs_root *root) { }
529 
530 static inline struct kernfs_node *
kernfs_create_dir_ns(struct kernfs_node * parent,const char * name,umode_t mode,kuid_t uid,kgid_t gid,void * priv,const void * ns)531 kernfs_create_dir_ns(struct kernfs_node *parent, const char *name,
532 		     umode_t mode, kuid_t uid, kgid_t gid,
533 		     void *priv, const void *ns)
534 { return ERR_PTR(-ENOSYS); }
535 
536 static inline struct kernfs_node *
__kernfs_create_file(struct kernfs_node * parent,const char * name,umode_t mode,kuid_t uid,kgid_t gid,loff_t size,const struct kernfs_ops * ops,void * priv,const void * ns,struct lock_class_key * key)537 __kernfs_create_file(struct kernfs_node *parent, const char *name,
538 		     umode_t mode, kuid_t uid, kgid_t gid,
539 		     loff_t size, const struct kernfs_ops *ops,
540 		     void *priv, const void *ns, struct lock_class_key *key)
541 { return ERR_PTR(-ENOSYS); }
542 
543 static inline struct kernfs_node *
kernfs_create_link(struct kernfs_node * parent,const char * name,struct kernfs_node * target)544 kernfs_create_link(struct kernfs_node *parent, const char *name,
545 		   struct kernfs_node *target)
546 { return ERR_PTR(-ENOSYS); }
547 
kernfs_activate(struct kernfs_node * kn)548 static inline void kernfs_activate(struct kernfs_node *kn) { }
549 
kernfs_remove(struct kernfs_node * kn)550 static inline void kernfs_remove(struct kernfs_node *kn) { }
551 
kernfs_remove_self(struct kernfs_node * kn)552 static inline bool kernfs_remove_self(struct kernfs_node *kn)
553 { return false; }
554 
kernfs_remove_by_name_ns(struct kernfs_node * kn,const char * name,const void * ns)555 static inline int kernfs_remove_by_name_ns(struct kernfs_node *kn,
556 					   const char *name, const void *ns)
557 { return -ENOSYS; }
558 
kernfs_rename_ns(struct kernfs_node * kn,struct kernfs_node * new_parent,const char * new_name,const void * new_ns)559 static inline int kernfs_rename_ns(struct kernfs_node *kn,
560 				   struct kernfs_node *new_parent,
561 				   const char *new_name, const void *new_ns)
562 { return -ENOSYS; }
563 
kernfs_setattr(struct kernfs_node * kn,const struct iattr * iattr)564 static inline int kernfs_setattr(struct kernfs_node *kn,
565 				 const struct iattr *iattr)
566 { return -ENOSYS; }
567 
kernfs_generic_poll(struct kernfs_open_file * of,struct poll_table_struct * pt)568 static inline __poll_t kernfs_generic_poll(struct kernfs_open_file *of,
569 					   struct poll_table_struct *pt)
570 { return -ENOSYS; }
571 
kernfs_notify(struct kernfs_node * kn)572 static inline void kernfs_notify(struct kernfs_node *kn) { }
573 
kernfs_xattr_get(struct kernfs_node * kn,const char * name,void * value,size_t size)574 static inline int kernfs_xattr_get(struct kernfs_node *kn, const char *name,
575 				   void *value, size_t size)
576 { return -ENOSYS; }
577 
kernfs_xattr_set(struct kernfs_node * kn,const char * name,const void * value,size_t size,int flags)578 static inline int kernfs_xattr_set(struct kernfs_node *kn, const char *name,
579 				   const void *value, size_t size, int flags)
580 { return -ENOSYS; }
581 
kernfs_super_ns(struct super_block * sb)582 static inline const void *kernfs_super_ns(struct super_block *sb)
583 { return NULL; }
584 
kernfs_get_tree(struct fs_context * fc)585 static inline int kernfs_get_tree(struct fs_context *fc)
586 { return -ENOSYS; }
587 
kernfs_free_fs_context(struct fs_context * fc)588 static inline void kernfs_free_fs_context(struct fs_context *fc) { }
589 
kernfs_kill_sb(struct super_block * sb)590 static inline void kernfs_kill_sb(struct super_block *sb) { }
591 
kernfs_init(void)592 static inline void kernfs_init(void) { }
593 
594 #endif	/* CONFIG_KERNFS */
595 
596 /**
597  * kernfs_path - build full path of a given node
598  * @kn: kernfs_node of interest
599  * @buf: buffer to copy @kn's name into
600  * @buflen: size of @buf
601  *
602  * If @kn is NULL result will be "(null)".
603  *
604  * Returns the length of the full path.  If the full length is equal to or
605  * greater than @buflen, @buf contains the truncated path with the trailing
606  * '\0'.  On error, -errno is returned.
607  */
kernfs_path(struct kernfs_node * kn,char * buf,size_t buflen)608 static inline int kernfs_path(struct kernfs_node *kn, char *buf, size_t buflen)
609 {
610 	return kernfs_path_from_node(kn, NULL, buf, buflen);
611 }
612 
613 static inline struct kernfs_node *
kernfs_find_and_get(struct kernfs_node * kn,const char * name)614 kernfs_find_and_get(struct kernfs_node *kn, const char *name)
615 {
616 	return kernfs_find_and_get_ns(kn, name, NULL);
617 }
618 
619 static inline struct kernfs_node *
kernfs_walk_and_get(struct kernfs_node * kn,const char * path)620 kernfs_walk_and_get(struct kernfs_node *kn, const char *path)
621 {
622 	return kernfs_walk_and_get_ns(kn, path, NULL);
623 }
624 
625 static inline struct kernfs_node *
kernfs_create_dir(struct kernfs_node * parent,const char * name,umode_t mode,void * priv)626 kernfs_create_dir(struct kernfs_node *parent, const char *name, umode_t mode,
627 		  void *priv)
628 {
629 	return kernfs_create_dir_ns(parent, name, mode,
630 				    GLOBAL_ROOT_UID, GLOBAL_ROOT_GID,
631 				    priv, NULL);
632 }
633 
kernfs_remove_by_name(struct kernfs_node * parent,const char * name)634 static inline int kernfs_remove_by_name(struct kernfs_node *parent,
635 					const char *name)
636 {
637 	return kernfs_remove_by_name_ns(parent, name, NULL);
638 }
639 
kernfs_rename(struct kernfs_node * kn,struct kernfs_node * new_parent,const char * new_name)640 static inline int kernfs_rename(struct kernfs_node *kn,
641 				struct kernfs_node *new_parent,
642 				const char *new_name)
643 {
644 	return kernfs_rename_ns(kn, new_parent, new_name, NULL);
645 }
646 
647 #endif	/* __LINUX_KERNFS_H */
648