xref: /linux/fs/configfs/dir.c (revision c297ed90fbba72d32b7759aae362b36d15b2db1f)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * dir.c - Operations for configfs directories.
4  *
5  * Based on sysfs:
6  * 	sysfs is Copyright (C) 2001, 2002, 2003 Patrick Mochel
7  *
8  * configfs Copyright (C) 2005 Oracle.  All rights reserved.
9  */
10 
11 #undef DEBUG
12 
13 #include <linux/fs.h>
14 #include <linux/fsnotify.h>
15 #include <linux/mount.h>
16 #include <linux/module.h>
17 #include <linux/slab.h>
18 #include <linux/err.h>
19 
20 #include <linux/configfs.h>
21 #include "configfs_internal.h"
22 
23 /*
24  * Protects mutations of configfs_dirent linkage together with proper i_mutex
25  * Also protects mutations of symlinks linkage to target configfs_dirent
26  * Mutators of configfs_dirent linkage must *both* have the proper inode locked
27  * and configfs_dirent_lock locked, in that order.
28  * This allows one to safely traverse configfs_dirent trees and symlinks without
29  * having to lock inodes.
30  *
31  * Protects setting of CONFIGFS_USET_DROPPING: checking the flag
32  * unlocked is not reliable unless in detach_groups() called from
33  * rmdir()/unregister() and from configfs_attach_group()
34  */
35 DEFINE_SPINLOCK(configfs_dirent_lock);
36 
37 /*
38  * All of link_obj/unlink_obj/link_group/unlink_group require that
39  * subsys->su_mutex is held.
40  * But parent configfs_subsystem is NULL when config_item is root.
41  * Use this mutex when config_item is root.
42  */
43 static DEFINE_MUTEX(configfs_subsystem_mutex);
44 
configfs_d_iput(struct dentry * dentry,struct inode * inode)45 static void configfs_d_iput(struct dentry * dentry,
46 			    struct inode * inode)
47 {
48 	struct configfs_dirent *sd = dentry->d_fsdata;
49 
50 	if (sd) {
51 		/* Coordinate with configfs_readdir */
52 		spin_lock(&configfs_dirent_lock);
53 		/*
54 		 * Set sd->s_dentry to null only when this dentry is the one
55 		 * that is going to be killed.  Otherwise configfs_d_iput may
56 		 * run just after configfs_lookup and set sd->s_dentry to
57 		 * NULL even it's still in use.
58 		 */
59 		if (sd->s_dentry == dentry)
60 			sd->s_dentry = NULL;
61 
62 		spin_unlock(&configfs_dirent_lock);
63 		configfs_put(sd);
64 	}
65 	iput(inode);
66 }
67 
68 const struct dentry_operations configfs_dentry_ops = {
69 	.d_iput		= configfs_d_iput,
70 };
71 
72 #ifdef CONFIG_LOCKDEP
73 
74 /*
75  * Helpers to make lockdep happy with our recursive locking of default groups'
76  * inodes (see configfs_attach_group() and configfs_detach_group()).
77  * We put default groups i_mutexes in separate classes according to their depth
78  * from the youngest non-default group ancestor.
79  *
80  * For a non-default group A having default groups A/B, A/C, and A/C/D, default
81  * groups A/B and A/C will have their inode's mutex in class
82  * default_group_class[0], and default group A/C/D will be in
83  * default_group_class[1].
84  *
85  * The lock classes are declared and assigned in inode.c, according to the
86  * s_depth value.
87  * The s_depth value is initialized to -1, adjusted to >= 0 when attaching
88  * default groups, and reset to -1 when all default groups are attached. During
89  * attachment, if configfs_create() sees s_depth > 0, the lock class of the new
90  * inode's mutex is set to default_group_class[s_depth - 1].
91  */
92 
configfs_init_dirent_depth(struct configfs_dirent * sd)93 static void configfs_init_dirent_depth(struct configfs_dirent *sd)
94 {
95 	sd->s_depth = -1;
96 }
97 
configfs_set_dir_dirent_depth(struct configfs_dirent * parent_sd,struct configfs_dirent * sd)98 static void configfs_set_dir_dirent_depth(struct configfs_dirent *parent_sd,
99 					  struct configfs_dirent *sd)
100 {
101 	int parent_depth = parent_sd->s_depth;
102 
103 	if (parent_depth >= 0)
104 		sd->s_depth = parent_depth + 1;
105 }
106 
107 static void
configfs_adjust_dir_dirent_depth_before_populate(struct configfs_dirent * sd)108 configfs_adjust_dir_dirent_depth_before_populate(struct configfs_dirent *sd)
109 {
110 	/*
111 	 * item's i_mutex class is already setup, so s_depth is now only
112 	 * used to set new sub-directories s_depth, which is always done
113 	 * with item's i_mutex locked.
114 	 */
115 	/*
116 	 *  sd->s_depth == -1 iff we are a non default group.
117 	 *  else (we are a default group) sd->s_depth > 0 (see
118 	 *  create_dir()).
119 	 */
120 	if (sd->s_depth == -1)
121 		/*
122 		 * We are a non default group and we are going to create
123 		 * default groups.
124 		 */
125 		sd->s_depth = 0;
126 }
127 
128 static void
configfs_adjust_dir_dirent_depth_after_populate(struct configfs_dirent * sd)129 configfs_adjust_dir_dirent_depth_after_populate(struct configfs_dirent *sd)
130 {
131 	/* We will not create default groups anymore. */
132 	sd->s_depth = -1;
133 }
134 
135 #else /* CONFIG_LOCKDEP */
136 
configfs_init_dirent_depth(struct configfs_dirent * sd)137 static void configfs_init_dirent_depth(struct configfs_dirent *sd)
138 {
139 }
140 
configfs_set_dir_dirent_depth(struct configfs_dirent * parent_sd,struct configfs_dirent * sd)141 static void configfs_set_dir_dirent_depth(struct configfs_dirent *parent_sd,
142 					  struct configfs_dirent *sd)
143 {
144 }
145 
146 static void
configfs_adjust_dir_dirent_depth_before_populate(struct configfs_dirent * sd)147 configfs_adjust_dir_dirent_depth_before_populate(struct configfs_dirent *sd)
148 {
149 }
150 
151 static void
configfs_adjust_dir_dirent_depth_after_populate(struct configfs_dirent * sd)152 configfs_adjust_dir_dirent_depth_after_populate(struct configfs_dirent *sd)
153 {
154 }
155 
156 #endif /* CONFIG_LOCKDEP */
157 
new_fragment(void)158 static struct configfs_fragment *new_fragment(void)
159 {
160 	struct configfs_fragment *p;
161 
162 	p = kmalloc_obj(struct configfs_fragment);
163 	if (p) {
164 		atomic_set(&p->frag_count, 1);
165 		init_rwsem(&p->frag_sem);
166 		p->frag_dead = false;
167 	}
168 	return p;
169 }
170 
put_fragment(struct configfs_fragment * frag)171 void put_fragment(struct configfs_fragment *frag)
172 {
173 	if (frag && atomic_dec_and_test(&frag->frag_count))
174 		kfree(frag);
175 }
176 
get_fragment(struct configfs_fragment * frag)177 struct configfs_fragment *get_fragment(struct configfs_fragment *frag)
178 {
179 	if (likely(frag))
180 		atomic_inc(&frag->frag_count);
181 	return frag;
182 }
183 
184 /*
185  * Allocates a new configfs_dirent and links it to the parent configfs_dirent
186  */
configfs_new_dirent(struct configfs_dirent * parent_sd,void * element,int type,struct configfs_fragment * frag)187 static struct configfs_dirent *configfs_new_dirent(struct configfs_dirent *parent_sd,
188 						   void *element, int type,
189 						   struct configfs_fragment *frag)
190 {
191 	struct configfs_dirent * sd;
192 
193 	sd = kmem_cache_zalloc(configfs_dir_cachep, GFP_KERNEL);
194 	if (!sd)
195 		return ERR_PTR(-ENOMEM);
196 
197 	atomic_set(&sd->s_count, 1);
198 	INIT_LIST_HEAD(&sd->s_children);
199 	sd->s_element = element;
200 	sd->s_type = type;
201 	configfs_init_dirent_depth(sd);
202 	spin_lock(&configfs_dirent_lock);
203 	if (parent_sd->s_type & CONFIGFS_USET_DROPPING) {
204 		spin_unlock(&configfs_dirent_lock);
205 		kmem_cache_free(configfs_dir_cachep, sd);
206 		return ERR_PTR(-ENOENT);
207 	}
208 	sd->s_frag = get_fragment(frag);
209 
210 	/*
211 	 * configfs_lookup scans only for unpinned items. s_children is
212 	 * partitioned so that configfs_lookup can bail out early.
213 	 * CONFIGFS_PINNED and CONFIGFS_NOT_PINNED are not symmetrical.  readdir
214 	 * cursors still need to be inserted at the front of the list.
215 	 */
216 	if (sd->s_type & CONFIGFS_PINNED)
217 		list_add_tail(&sd->s_sibling, &parent_sd->s_children);
218 	else
219 		list_add(&sd->s_sibling, &parent_sd->s_children);
220 	spin_unlock(&configfs_dirent_lock);
221 
222 	return sd;
223 }
224 
225 /*
226  *
227  * Return -EEXIST if there is already a configfs element with the same
228  * name for the same parent.
229  *
230  * called with parent inode's i_mutex held
231  */
configfs_dirent_exists(struct dentry * dentry)232 static int configfs_dirent_exists(struct dentry *dentry)
233 {
234 	struct configfs_dirent *parent_sd = dentry->d_parent->d_fsdata;
235 	const unsigned char *new = dentry->d_name.name;
236 	struct configfs_dirent *sd;
237 
238 	spin_lock(&configfs_dirent_lock);
239 	list_for_each_entry(sd, &parent_sd->s_children, s_sibling) {
240 		if (sd->s_element) {
241 			if (strcmp(configfs_get_name(sd), new) == 0) {
242 				spin_unlock(&configfs_dirent_lock);
243 				return -EEXIST;
244 			}
245 		}
246 	}
247 	spin_unlock(&configfs_dirent_lock);
248 
249 	return 0;
250 }
251 
252 
configfs_make_dirent(struct configfs_dirent * parent_sd,struct dentry * dentry,void * element,umode_t mode,int type,struct configfs_fragment * frag)253 int configfs_make_dirent(struct configfs_dirent * parent_sd,
254 			 struct dentry * dentry, void * element,
255 			 umode_t mode, int type, struct configfs_fragment *frag)
256 {
257 	struct configfs_dirent * sd;
258 
259 	sd = configfs_new_dirent(parent_sd, element, type, frag);
260 	if (IS_ERR(sd))
261 		return PTR_ERR(sd);
262 
263 	sd->s_mode = mode;
264 	sd->s_dentry = dentry;
265 	if (dentry)
266 		dentry->d_fsdata = configfs_get(sd);
267 
268 	return 0;
269 }
270 
configfs_remove_dirent(struct dentry * dentry)271 static void configfs_remove_dirent(struct dentry *dentry)
272 {
273 	struct configfs_dirent *sd = dentry->d_fsdata;
274 
275 	if (!sd)
276 		return;
277 	spin_lock(&configfs_dirent_lock);
278 	list_del_init(&sd->s_sibling);
279 	spin_unlock(&configfs_dirent_lock);
280 	configfs_put(sd);
281 }
282 
283 /**
284  *	configfs_create_dir - create a directory for an config_item.
285  *	@item:		config_itemwe're creating directory for.
286  *	@dentry:	config_item's dentry.
287  *	@frag:		config_item's fragment.
288  *
289  *	Note: user-created entries won't be allowed under this new directory
290  *	until it is validated by configfs_dir_set_ready()
291  */
292 
configfs_create_dir(struct config_item * item,struct dentry * dentry,struct configfs_fragment * frag)293 static int configfs_create_dir(struct config_item *item, struct dentry *dentry,
294 				struct configfs_fragment *frag)
295 {
296 	int error;
297 	umode_t mode = S_IFDIR| S_IRWXU | S_IRUGO | S_IXUGO;
298 	struct dentry *p = dentry->d_parent;
299 	struct inode *p_inode = d_inode(p);
300 	struct inode *inode;
301 
302 	BUG_ON(!item);
303 
304 	error = configfs_make_dirent(p->d_fsdata, dentry, item, mode,
305 				     CONFIGFS_DIR | CONFIGFS_USET_CREATING,
306 				     frag);
307 	if (unlikely(error))
308 		return error;
309 
310 	configfs_set_dir_dirent_depth(p->d_fsdata, dentry->d_fsdata);
311 	inode = configfs_create(dentry, mode);
312 	if (IS_ERR(inode))
313 		goto out_remove;
314 
315 	inode->i_op = &configfs_dir_inode_operations;
316 	inode->i_fop = &configfs_dir_operations;
317 	/* directory inodes start off with i_nlink == 2 (for "." entry) */
318 	inc_nlink(inode);
319 	d_make_persistent(dentry, inode);
320 	inc_nlink(p_inode);
321 	inode_set_mtime_to_ts(p_inode, inode_set_ctime_current(p_inode));
322 	item->ci_dentry = dentry;
323 	return 0;
324 
325 out_remove:
326 	configfs_put(dentry->d_fsdata);
327 	configfs_remove_dirent(dentry);
328 	return PTR_ERR(inode);
329 }
330 
331 /*
332  * Allow userspace to create new entries under a new directory created with
333  * configfs_create_dir(), and under all of its chidlren directories recursively.
334  * @sd		configfs_dirent of the new directory to validate
335  *
336  * Caller must hold configfs_dirent_lock.
337  */
configfs_dir_set_ready(struct configfs_dirent * sd)338 static void configfs_dir_set_ready(struct configfs_dirent *sd)
339 {
340 	struct configfs_dirent *child_sd;
341 
342 	sd->s_type &= ~CONFIGFS_USET_CREATING;
343 	list_for_each_entry(child_sd, &sd->s_children, s_sibling)
344 		if (child_sd->s_type & CONFIGFS_USET_CREATING)
345 			configfs_dir_set_ready(child_sd);
346 }
347 
348 /*
349  * Check that a directory does not belong to a directory hierarchy being
350  * attached and not validated yet.
351  * @sd		configfs_dirent of the directory to check
352  *
353  * @return	non-zero iff the directory was validated
354  *
355  * Note: takes configfs_dirent_lock, so the result may change from false to true
356  * in two consecutive calls, but never from true to false.
357  */
configfs_dirent_is_ready(struct configfs_dirent * sd)358 int configfs_dirent_is_ready(struct configfs_dirent *sd)
359 {
360 	int ret;
361 
362 	spin_lock(&configfs_dirent_lock);
363 	ret = !(sd->s_type & CONFIGFS_USET_CREATING);
364 	spin_unlock(&configfs_dirent_lock);
365 
366 	return ret;
367 }
368 
configfs_create_link(struct configfs_dirent * target,struct dentry * parent,struct dentry * dentry,char * body)369 int configfs_create_link(struct configfs_dirent *target, struct dentry *parent,
370 		struct dentry *dentry, char *body)
371 {
372 	int err = 0;
373 	umode_t mode = S_IFLNK | S_IRWXUGO;
374 	struct configfs_dirent *p = parent->d_fsdata;
375 	struct inode *p_inode = d_inode(parent);
376 	struct inode *inode;
377 
378 	err = configfs_make_dirent(p, dentry, target, mode, CONFIGFS_ITEM_LINK,
379 			p->s_frag);
380 	if (err)
381 		return err;
382 
383 	inode = configfs_create(dentry, mode);
384 	if (IS_ERR(inode))
385 		goto out_remove;
386 
387 	inode->i_link = body;
388 	inode->i_op = &configfs_symlink_inode_operations;
389 	d_make_persistent(dentry, inode);
390 	inode_set_mtime_to_ts(p_inode, inode_set_ctime_current(p_inode));
391 	return 0;
392 
393 out_remove:
394 	configfs_put(dentry->d_fsdata);
395 	configfs_remove_dirent(dentry);
396 	return PTR_ERR(inode);
397 }
398 
399 /**
400  * configfs_remove_dir - remove an config_item's directory.
401  * @d:	dentry we're removing.
402  *
403  * The only thing special about this is that we remove any files in
404  * the directory before we remove the directory, and we've inlined
405  * what used to be configfs_rmdir() below, instead of calling separately.
406  *
407  * Caller holds the mutex of the item's inode
408  */
409 
configfs_remove_dir(struct dentry * d)410 static void configfs_remove_dir(struct dentry *d)
411 {
412 	struct dentry * parent = dget(d->d_parent);
413 
414 	configfs_remove_dirent(d);
415 
416 	if (d_really_is_positive(d)) {
417 		if (unlikely(simple_rmdir(d_inode(parent), d)))
418 			pr_warn("remove_dir (%pd): attributes remain", d);
419 		else
420 			/*
421 			 * configfs_get_config_item() takes a hashed dentry as
422 			 * proof that ->s_element is still alive.  Our caller
423 			 * is about to drop the last reference to the item and
424 			 * the VFS will not unhash until after we return, so
425 			 * unhash it here.
426 			 */
427 			d_drop(d);
428 	}
429 
430 	pr_debug(" o %pd removing done (%d)\n", d, d_count(d));
431 
432 	dput(parent);
433 }
434 
configfs_lookup(struct inode * dir,struct dentry * dentry,unsigned int flags)435 static struct dentry * configfs_lookup(struct inode *dir,
436 				       struct dentry *dentry,
437 				       unsigned int flags)
438 {
439 	struct configfs_dirent * parent_sd = dentry->d_parent->d_fsdata;
440 	struct configfs_dirent * sd;
441 	struct inode *inode = NULL;
442 
443 	if (dentry->d_name.len > NAME_MAX)
444 		return ERR_PTR(-ENAMETOOLONG);
445 
446 	/*
447 	 * Fake invisibility if dir belongs to a group/default groups hierarchy
448 	 * being attached
449 	 *
450 	 * This forbids userspace to read/write attributes of items which may
451 	 * not complete their initialization, since the dentries of the
452 	 * attributes won't be instantiated.
453 	 */
454 	if (!configfs_dirent_is_ready(parent_sd))
455 		return ERR_PTR(-ENOENT);
456 
457 	spin_lock(&configfs_dirent_lock);
458 	list_for_each_entry(sd, &parent_sd->s_children, s_sibling) {
459 
460 		/*
461 		 * s_children is partitioned, see configfs_new_dirent. The first
462 		 * pinned item indicates we can stop scanning.
463 		 */
464 		if (sd->s_type & CONFIGFS_PINNED)
465 			break;
466 
467 		/*
468 		 * Note: CONFIGFS_PINNED and CONFIGFS_NOT_PINNED are asymmetric.
469 		 * there may be a readdir cursor in this list
470 		 */
471 		if ((sd->s_type & CONFIGFS_NOT_PINNED) &&
472 		    !strcmp(configfs_get_name(sd), dentry->d_name.name)) {
473 			struct configfs_attribute *attr = sd->s_element;
474 			umode_t mode = (attr->ca_mode & S_IALLUGO) | S_IFREG;
475 
476 			dentry->d_fsdata = configfs_get(sd);
477 			sd->s_dentry = dentry;
478 			spin_unlock(&configfs_dirent_lock);
479 
480 			inode = configfs_create(dentry, mode);
481 			if (IS_ERR(inode)) {
482 				spin_lock(&configfs_dirent_lock);
483 				sd->s_dentry = NULL;
484 				spin_unlock(&configfs_dirent_lock);
485 				configfs_put(sd);
486 				return ERR_CAST(inode);
487 			}
488 			if (sd->s_type & CONFIGFS_ITEM_BIN_ATTR) {
489 				inode->i_size = 0;
490 				inode->i_fop = &configfs_bin_file_operations;
491 			} else {
492 				inode->i_size = PAGE_SIZE;
493 				inode->i_fop = &configfs_file_operations;
494 			}
495 			goto done;
496 		}
497 	}
498 	spin_unlock(&configfs_dirent_lock);
499 done:
500 	return d_splice_alias(inode, dentry);
501 }
502 
503 /*
504  * Only subdirectories count here.  Files (CONFIGFS_NOT_PINNED) are
505  * attributes and are removed by rmdir().  We recurse, setting
506  * CONFIGFS_USET_DROPPING on all children that are candidates for
507  * default detach.
508  * If there is an error, the caller will reset the flags via
509  * configfs_detach_rollback().
510  */
configfs_detach_prep(struct configfs_dirent * parent_sd,struct dentry ** wait)511 static int configfs_detach_prep(struct configfs_dirent *parent_sd, struct dentry **wait)
512 {
513 	struct configfs_dirent *sd;
514 	int ret;
515 
516 	/* Mark that we're trying to drop the group */
517 	parent_sd->s_type |= CONFIGFS_USET_DROPPING;
518 
519 	ret = -EBUSY;
520 	if (parent_sd->s_links)
521 		goto out;
522 
523 	ret = 0;
524 	list_for_each_entry(sd, &parent_sd->s_children, s_sibling) {
525 		if (!sd->s_element ||
526 		    (sd->s_type & CONFIGFS_NOT_PINNED))
527 			continue;
528 		if (sd->s_type & CONFIGFS_USET_DEFAULT) {
529 			/* Abort if racing with mkdir() */
530 			if (sd->s_type & CONFIGFS_USET_IN_MKDIR) {
531 				if (wait)
532 					*wait= dget(sd->s_dentry);
533 				return -EAGAIN;
534 			}
535 
536 			/*
537 			 * Yup, recursive.  If there's a problem, blame
538 			 * deep nesting of default_groups
539 			 */
540 			ret = configfs_detach_prep(sd, wait);
541 			if (!ret)
542 				continue;
543 		} else
544 			ret = -ENOTEMPTY;
545 
546 		break;
547 	}
548 
549 out:
550 	return ret;
551 }
552 
553 /*
554  * Walk the tree, resetting CONFIGFS_USET_DROPPING wherever it was
555  * set.
556  */
configfs_detach_rollback(struct configfs_dirent * parent_sd)557 static void configfs_detach_rollback(struct configfs_dirent *parent_sd)
558 {
559 	struct configfs_dirent *sd;
560 
561 	parent_sd->s_type &= ~CONFIGFS_USET_DROPPING;
562 
563 	list_for_each_entry(sd, &parent_sd->s_children, s_sibling)
564 		if (sd->s_type & CONFIGFS_USET_DEFAULT)
565 			configfs_detach_rollback(sd);
566 }
567 
568 /*
569  * Find the next non-cursor.  configfs_dirent_lock held by caller.
570  */
next_dirent(struct configfs_dirent * parent,struct configfs_dirent * last)571 static struct configfs_dirent *next_dirent(struct configfs_dirent *parent,
572 					   struct configfs_dirent *last)
573 {
574 	struct configfs_dirent *s;
575 
576 	s = list_prepare_entry(last, &parent->s_children, s_sibling);
577 
578 	list_for_each_entry_continue(s, &parent->s_children, s_sibling) {
579 		if (s->s_element)
580 			return s;
581 	}
582 	return NULL;
583 }
584 
detach_attrs(struct dentry * dentry)585 static void detach_attrs(struct dentry *dentry)
586 {
587 	struct configfs_dirent *parent_sd;
588 	struct configfs_dirent *sd, *next;
589 
590 	pr_debug("configfs %pd: dropping attrs for  dir\n", dentry);
591 
592 	parent_sd = dentry->d_fsdata;
593 
594 	spin_lock(&configfs_dirent_lock);
595 	for (sd = next_dirent(parent_sd, NULL); sd; sd = next) {
596 		struct dentry *child;
597 
598 		next = next_dirent(parent_sd, sd);
599 		if (!(sd->s_type & CONFIGFS_NOT_PINNED))
600 			continue;
601 		list_del_init(&sd->s_sibling);
602 		child = sd->s_dentry;
603 		if (child) {
604 			spin_lock(&child->d_lock);
605 			if (simple_positive(child)) {
606 				dget_dlock(child);
607 				__d_drop(child);
608 				spin_unlock(&child->d_lock);
609 			} else {
610 				spin_unlock(&child->d_lock);
611 				child = NULL;
612 			}
613 		}
614 		spin_unlock(&configfs_dirent_lock);
615 		if (child) {
616 			struct inode *inode = child->d_inode;
617 
618 			inode_lock_nested(inode, I_MUTEX_NONDIR2);
619 			inode_set_ctime_current(inode);
620 			drop_nlink(inode);
621 			inode_unlock(inode);
622 			dput(child);
623 		}
624 		configfs_put(sd);
625 		spin_lock(&configfs_dirent_lock);
626 	}
627 	spin_unlock(&configfs_dirent_lock);
628 }
629 
populate_attrs(struct config_item * item)630 static int populate_attrs(struct config_item *item)
631 {
632 	const struct config_item_type *t = item->ci_type;
633 	const struct configfs_group_operations *ops;
634 	struct configfs_attribute *attr;
635 	struct configfs_bin_attribute *bin_attr;
636 	int error = 0;
637 	int i;
638 
639 	if (!t)
640 		return -EINVAL;
641 
642 	ops = t->ct_group_ops;
643 
644 	if (t->ct_attrs) {
645 		for (i = 0; (attr = t->ct_attrs[i]) != NULL; i++) {
646 			if (ops && ops->is_visible && !ops->is_visible(item, attr, i))
647 				continue;
648 
649 			error = configfs_create_file(item, attr);
650 			if (error)
651 				return error;
652 		}
653 	}
654 	if (t->ct_bin_attrs) {
655 		for (i = 0; (bin_attr = t->ct_bin_attrs[i]) != NULL; i++) {
656 			if (ops && ops->is_bin_visible && !ops->is_bin_visible(item, bin_attr, i))
657 				continue;
658 
659 			error = configfs_create_bin_file(item, bin_attr);
660 			if (error)
661 				return error;
662 		}
663 	}
664 
665 	return 0;
666 }
667 
668 static int configfs_attach_group(struct config_item *item,
669 				 struct dentry *dentry,
670 				 struct configfs_fragment *frag);
671 static void configfs_detach_group(struct dentry *dentry);
672 
detach_groups(struct dentry * dentry)673 static void detach_groups(struct dentry *dentry)
674 {
675 	struct dentry *child;
676 	struct configfs_dirent *parent_sd;
677 	struct configfs_dirent *sd, *next;
678 
679 	parent_sd = dentry->d_fsdata;
680 	spin_lock(&configfs_dirent_lock);
681 	for (sd = next_dirent(parent_sd, NULL); sd; sd = next) {
682 		next = next_dirent(parent_sd, sd);
683 		if (!(sd->s_type & CONFIGFS_USET_DEFAULT))
684 			continue;
685 
686 		child = dget(sd->s_dentry);
687 		spin_unlock(&configfs_dirent_lock);
688 
689 		inode_lock(d_inode(child));
690 
691 		configfs_detach_group(child);
692 		d_inode(child)->i_flags |= S_DEAD;
693 		dont_mount(child);
694 
695 		inode_unlock(d_inode(child));
696 
697 		d_delete(child);
698 		dput(child);
699 		spin_lock(&configfs_dirent_lock);
700 	}
701 	spin_unlock(&configfs_dirent_lock);
702 }
703 
704 /*
705  * This fakes mkdir(2) on a default_groups[] entry.  It
706  * creates a dentry, attachs it, and then does fixup
707  * on the sd->s_type.
708  *
709  * We could, perhaps, tweak our parent's ->mkdir for a minute and
710  * try using vfs_mkdir.  Just a thought.
711  */
create_default_group(struct dentry * parent,struct config_group * group,struct configfs_fragment * frag)712 static int create_default_group(struct dentry *parent,
713 				struct config_group *group,
714 				struct configfs_fragment *frag)
715 {
716 	int ret;
717 	struct configfs_dirent *sd;
718 	/* We trust the caller holds a reference to parent */
719 	struct dentry *child;
720 
721 	if (!group->cg_item.ci_name)
722 		group->cg_item.ci_name = group->cg_item.ci_namebuf;
723 
724 	ret = -ENOMEM;
725 	child = d_alloc_name(parent, group->cg_item.ci_name);
726 	if (child) {
727 		d_add(child, NULL);
728 
729 		ret = configfs_attach_group(&group->cg_item, child, frag);
730 		if (!ret) {
731 			sd = child->d_fsdata;
732 			sd->s_type |= CONFIGFS_USET_DEFAULT;
733 		} else {
734 			BUG_ON(d_inode(child));
735 			d_drop(child);
736 		}
737 		dput(child);
738 	}
739 
740 	return ret;
741 }
742 
populate_groups(struct config_group * group,struct configfs_fragment * frag)743 static int populate_groups(struct config_group *group,
744 			   struct configfs_fragment *frag)
745 {
746 	struct dentry *parent = group->cg_item.ci_dentry;
747 	struct config_group *new_group;
748 
749 	list_for_each_entry(new_group, &group->default_groups, group_entry) {
750 		int ret = create_default_group(parent, new_group, frag);
751 		if (ret)
752 			return ret;
753 	}
754 	return 0;
755 }
756 
configfs_remove_default_groups(struct config_group * group)757 void configfs_remove_default_groups(struct config_group *group)
758 {
759 	struct config_group *g, *n;
760 
761 	list_for_each_entry_safe(g, n, &group->default_groups, group_entry) {
762 		list_del(&g->group_entry);
763 		config_item_put(&g->cg_item);
764 	}
765 }
766 EXPORT_SYMBOL(configfs_remove_default_groups);
767 
768 /*
769  * All of link_obj/unlink_obj/link_group/unlink_group require that
770  * subsys->su_mutex is held.
771  */
772 
unlink_obj(struct config_item * item)773 static void unlink_obj(struct config_item *item)
774 {
775 	struct config_group *group;
776 
777 	group = item->ci_group;
778 	if (group) {
779 		list_del_init(&item->ci_entry);
780 
781 		item->ci_group = NULL;
782 		item->ci_parent = NULL;
783 
784 		/* Drop the reference for ci_entry */
785 		config_item_put(item);
786 
787 		/* Drop the reference for ci_parent */
788 		config_group_put(group);
789 	}
790 }
791 
link_obj(struct config_item * parent_item,struct config_item * item)792 static void link_obj(struct config_item *parent_item, struct config_item *item)
793 {
794 	/*
795 	 * Parent seems redundant with group, but it makes certain
796 	 * traversals much nicer.
797 	 */
798 	item->ci_parent = parent_item;
799 
800 	/*
801 	 * We hold a reference on the parent for the child's ci_parent
802 	 * link.
803 	 */
804 	item->ci_group = config_group_get(to_config_group(parent_item));
805 	list_add_tail(&item->ci_entry, &item->ci_group->cg_children);
806 
807 	/*
808 	 * We hold a reference on the child for ci_entry on the parent's
809 	 * cg_children
810 	 */
811 	config_item_get(item);
812 }
813 
unlink_group(struct config_group * group)814 static void unlink_group(struct config_group *group)
815 {
816 	struct config_group *new_group;
817 
818 	list_for_each_entry(new_group, &group->default_groups, group_entry)
819 		unlink_group(new_group);
820 
821 	group->cg_subsys = NULL;
822 	unlink_obj(&group->cg_item);
823 }
824 
link_group(struct config_group * parent_group,struct config_group * group)825 static void link_group(struct config_group *parent_group, struct config_group *group)
826 {
827 	struct config_group *new_group;
828 	struct configfs_subsystem *subsys = NULL; /* gcc is a turd */
829 
830 	link_obj(&parent_group->cg_item, &group->cg_item);
831 
832 	if (parent_group->cg_subsys)
833 		subsys = parent_group->cg_subsys;
834 	else if (configfs_is_root(&parent_group->cg_item))
835 		subsys = to_configfs_subsystem(group);
836 	else
837 		BUG();
838 	group->cg_subsys = subsys;
839 
840 	list_for_each_entry(new_group, &group->default_groups, group_entry)
841 		link_group(group, new_group);
842 }
843 
844 /* Caller holds the mutex of the item's inode */
configfs_detach_item(struct dentry * dentry)845 static void configfs_detach_item(struct dentry *dentry)
846 {
847 	detach_attrs(dentry);
848 	configfs_remove_dir(dentry);
849 }
850 
851 /*
852  * The goal is that configfs_attach_item() (and
853  * configfs_attach_group()) can be called from either the VFS or this
854  * module.  That is, they assume that the items have been created,
855  * the dentry allocated, and the dcache is all ready to go.
856  *
857  * If they fail, they must clean up after themselves as if they
858  * had never been called.  The caller (VFS or local function) will
859  * handle cleaning up the dcache bits.
860  *
861  * configfs_detach_group() and configfs_detach_item() behave similarly on
862  * the way out.  They assume that the proper semaphores are held, they
863  * clean up the configfs items, and they expect their callers will
864  * handle the dcache bits.
865  */
configfs_attach_item(struct config_item * item,struct dentry * dentry,struct configfs_fragment * frag)866 static int configfs_attach_item(struct config_item *item,
867 				struct dentry *dentry,
868 				struct configfs_fragment *frag)
869 {
870 	int ret;
871 
872 	ret = configfs_create_dir(item, dentry, frag);
873 	if (!ret) {
874 		ret = populate_attrs(item);
875 		if (ret) {
876 			/*
877 			 * We are going to remove an inode and its dentry but
878 			 * the VFS may already have hit and used them. Thus,
879 			 * we must lock them as rmdir() would.
880 			 */
881 			inode_lock(d_inode(dentry));
882 			configfs_detach_item(dentry);
883 			d_inode(dentry)->i_flags |= S_DEAD;
884 			dont_mount(dentry);
885 			inode_unlock(d_inode(dentry));
886 			d_delete(dentry);
887 		}
888 	}
889 
890 	return ret;
891 }
892 
893 /* Caller holds the mutex of the group's inode */
configfs_detach_group(struct dentry * dentry)894 static void configfs_detach_group(struct dentry *dentry)
895 {
896 	detach_groups(dentry);
897 	configfs_detach_item(dentry);
898 }
899 
configfs_attach_group(struct config_item * item,struct dentry * dentry,struct configfs_fragment * frag)900 static int configfs_attach_group(struct config_item *item,
901 				 struct dentry *dentry,
902 				 struct configfs_fragment *frag)
903 {
904 	int ret;
905 	struct configfs_dirent *sd;
906 
907 	ret = configfs_attach_item(item, dentry, frag);
908 	if (!ret) {
909 		sd = dentry->d_fsdata;
910 		sd->s_type |= CONFIGFS_USET_DIR;
911 
912 		/*
913 		 * FYI, we're faking mkdir in populate_groups()
914 		 * We must lock the group's inode to avoid races with the VFS
915 		 * which can already hit the inode and try to add/remove entries
916 		 * under it.
917 		 *
918 		 * We must also lock the inode to remove it safely in case of
919 		 * error, as rmdir() would.
920 		 */
921 		inode_lock_nested(d_inode(dentry), I_MUTEX_CHILD);
922 		configfs_adjust_dir_dirent_depth_before_populate(sd);
923 		ret = populate_groups(to_config_group(item), frag);
924 		if (ret) {
925 			configfs_detach_group(dentry);
926 			d_inode(dentry)->i_flags |= S_DEAD;
927 			dont_mount(dentry);
928 		}
929 		configfs_adjust_dir_dirent_depth_after_populate(sd);
930 		inode_unlock(d_inode(dentry));
931 		if (ret)
932 			d_delete(dentry);
933 	}
934 
935 	return ret;
936 }
937 
938 /*
939  * After the item has been detached from the filesystem view, we are
940  * ready to tear it out of the hierarchy.  Notify the client before
941  * we do that so they can perform any cleanup that requires
942  * navigating the hierarchy.  A client does not need to provide this
943  * callback.  The subsystem semaphore MUST be held by the caller, and
944  * references must be valid for both items.  It also assumes the
945  * caller has validated ci_type.
946  */
client_disconnect_notify(struct config_item * parent_item,struct config_item * item)947 static void client_disconnect_notify(struct config_item *parent_item,
948 				     struct config_item *item)
949 {
950 	const struct config_item_type *type;
951 
952 	type = parent_item->ci_type;
953 	BUG_ON(!type);
954 
955 	if (type->ct_group_ops && type->ct_group_ops->disconnect_notify)
956 		type->ct_group_ops->disconnect_notify(to_config_group(parent_item),
957 						      item);
958 }
959 
960 /*
961  * Drop the initial reference from make_item()/make_group()
962  * This function assumes that reference is held on item
963  * and that item holds a valid reference to the parent.  Also, it
964  * assumes the caller has validated ci_type.
965  */
client_drop_item(struct config_item * parent_item,struct config_item * item)966 static void client_drop_item(struct config_item *parent_item,
967 			     struct config_item *item)
968 {
969 	const struct config_item_type *type;
970 
971 	type = parent_item->ci_type;
972 	BUG_ON(!type);
973 
974 	/*
975 	 * If ->drop_item() exists, it is responsible for the
976 	 * config_item_put().
977 	 */
978 	if (type->ct_group_ops && type->ct_group_ops->drop_item)
979 		type->ct_group_ops->drop_item(to_config_group(parent_item),
980 					      item);
981 	else
982 		config_item_put(item);
983 }
984 
985 #ifdef DEBUG
configfs_dump_one(struct configfs_dirent * sd,int level)986 static void configfs_dump_one(struct configfs_dirent *sd, int level)
987 {
988 	pr_info("%*s\"%s\":\n", level, " ", configfs_get_name(sd));
989 
990 #define type_print(_type) if (sd->s_type & _type) pr_info("%*s %s\n", level, " ", #_type)
991 	type_print(CONFIGFS_ROOT);
992 	type_print(CONFIGFS_DIR);
993 	type_print(CONFIGFS_ITEM_ATTR);
994 	type_print(CONFIGFS_ITEM_LINK);
995 	type_print(CONFIGFS_USET_DIR);
996 	type_print(CONFIGFS_USET_DEFAULT);
997 	type_print(CONFIGFS_USET_DROPPING);
998 #undef type_print
999 }
1000 
configfs_dump(struct configfs_dirent * sd,int level)1001 static int configfs_dump(struct configfs_dirent *sd, int level)
1002 {
1003 	struct configfs_dirent *child_sd;
1004 	int ret = 0;
1005 
1006 	configfs_dump_one(sd, level);
1007 
1008 	if (!(sd->s_type & (CONFIGFS_DIR|CONFIGFS_ROOT)))
1009 		return 0;
1010 
1011 	list_for_each_entry(child_sd, &sd->s_children, s_sibling) {
1012 		ret = configfs_dump(child_sd, level + 2);
1013 		if (ret)
1014 			break;
1015 	}
1016 
1017 	return ret;
1018 }
1019 #endif
1020 
1021 
1022 /*
1023  * configfs_depend_item() and configfs_undepend_item()
1024  *
1025  * WARNING: Do not call these from a configfs callback!
1026  *
1027  * This describes these functions and their helpers.
1028  *
1029  * Allow another kernel system to depend on a config_item.  If this
1030  * happens, the item cannot go away until the dependent can live without
1031  * it.  The idea is to give client modules as simple an interface as
1032  * possible.  When a system asks them to depend on an item, they just
1033  * call configfs_depend_item().  If the item is live and the client
1034  * driver is in good shape, we'll happily do the work for them.
1035  *
1036  * Why is the locking complex?  Because configfs uses the VFS to handle
1037  * all locking, but this function is called outside the normal
1038  * VFS->configfs path.  So it must take VFS locks to prevent the
1039  * VFS->configfs stuff (configfs_mkdir(), configfs_rmdir(), etc).  This is
1040  * why you can't call these functions underneath configfs callbacks.
1041  *
1042  * Note, btw, that this can be called at *any* time, even when a configfs
1043  * subsystem isn't registered, or when configfs is loading or unloading.
1044  * Just like configfs_register_subsystem().  So we take the same
1045  * precautions.  We pin the filesystem.  We lock configfs_dirent_lock.
1046  * If we can find the target item in the
1047  * configfs tree, it must be part of the subsystem tree as well, so we
1048  * do not need the subsystem semaphore.  Holding configfs_dirent_lock helps
1049  * locking out mkdir() and rmdir(), who might be racing us.
1050  */
1051 
1052 /*
1053  * configfs_depend_prep()
1054  *
1055  * Only subdirectories count here.  Files (CONFIGFS_NOT_PINNED) are
1056  * attributes.  This is similar but not the same to configfs_detach_prep().
1057  * Note that configfs_detach_prep() expects the parent to be locked when it
1058  * is called, but we lock the parent *inside* configfs_depend_prep().  We
1059  * do that so we can unlock it if we find nothing.
1060  *
1061  * Here we do a depth-first search of the dentry hierarchy looking for
1062  * our object.
1063  * We deliberately ignore items tagged as dropping since they are virtually
1064  * dead, as well as items in the middle of attachment since they virtually
1065  * do not exist yet. This completes the locking out of racing mkdir() and
1066  * rmdir().
1067  * Note: subdirectories in the middle of attachment start with s_type =
1068  * CONFIGFS_DIR|CONFIGFS_USET_CREATING set by create_dir().  When
1069  * CONFIGFS_USET_CREATING is set, we ignore the item.  The actual set of
1070  * s_type is in configfs_new_dirent(), which has configfs_dirent_lock.
1071  *
1072  * If the target is not found, -ENOENT is bubbled up.
1073  *
1074  * This adds a requirement that all config_items be unique!
1075  *
1076  * This is recursive.  There isn't
1077  * much on the stack, though, so folks that need this function - be careful
1078  * about your stack!  Patches will be accepted to make it iterative.
1079  */
configfs_depend_prep(struct configfs_dirent * sd,struct config_item * target)1080 static int configfs_depend_prep(struct configfs_dirent *sd,
1081 				struct config_item *target)
1082 {
1083 	struct configfs_dirent *child_sd;
1084 	int ret = 0;
1085 
1086 	if (sd->s_element == target)  /* Boo-yah */
1087 		goto out;
1088 
1089 	list_for_each_entry(child_sd, &sd->s_children, s_sibling) {
1090 		if ((child_sd->s_type & CONFIGFS_DIR) &&
1091 		    !(child_sd->s_type & CONFIGFS_USET_DROPPING) &&
1092 		    !(child_sd->s_type & CONFIGFS_USET_CREATING)) {
1093 			ret = configfs_depend_prep(child_sd, target);
1094 			if (!ret)
1095 				goto out;  /* Child path boo-yah */
1096 		}
1097 	}
1098 
1099 	/* We looped all our children and didn't find target */
1100 	ret = -ENOENT;
1101 
1102 out:
1103 	return ret;
1104 }
1105 
configfs_do_depend_item(struct configfs_dirent * subsys_sd,struct config_item * target)1106 static int configfs_do_depend_item(struct configfs_dirent *subsys_sd,
1107 				   struct config_item *target)
1108 {
1109 	struct configfs_dirent *p;
1110 	int ret;
1111 
1112 	spin_lock(&configfs_dirent_lock);
1113 	/* Scan the tree, return 0 if found */
1114 	ret = configfs_depend_prep(subsys_sd, target);
1115 	if (ret)
1116 		goto out_unlock_dirent_lock;
1117 
1118 	/*
1119 	 * We are sure that the item is not about to be removed by rmdir(), and
1120 	 * not in the middle of attachment by mkdir().
1121 	 */
1122 	p = target->ci_dentry->d_fsdata;
1123 	p->s_dependent_count += 1;
1124 
1125 out_unlock_dirent_lock:
1126 	spin_unlock(&configfs_dirent_lock);
1127 
1128 	return ret;
1129 }
1130 
1131 static inline struct configfs_dirent *
configfs_find_subsys_dentry(struct configfs_dirent * root_sd,struct config_item * subsys_item)1132 configfs_find_subsys_dentry(struct configfs_dirent *root_sd,
1133 			    struct config_item *subsys_item)
1134 {
1135 	struct configfs_dirent *p;
1136 	struct configfs_dirent *ret = NULL;
1137 
1138 	spin_lock(&configfs_dirent_lock);
1139 	list_for_each_entry(p, &root_sd->s_children, s_sibling) {
1140 		if (p->s_type & CONFIGFS_DIR &&
1141 		    p->s_element == subsys_item) {
1142 			ret = p;
1143 			break;
1144 		}
1145 	}
1146 	spin_unlock(&configfs_dirent_lock);
1147 
1148 	return ret;
1149 }
1150 
1151 
configfs_depend_item(struct configfs_subsystem * subsys,struct config_item * target)1152 int configfs_depend_item(struct configfs_subsystem *subsys,
1153 			 struct config_item *target)
1154 {
1155 	int ret;
1156 	struct configfs_dirent *subsys_sd;
1157 	struct config_item *s_item = &subsys->su_group.cg_item;
1158 	struct dentry *root;
1159 
1160 	/*
1161 	 * Pin the configfs filesystem.  This means we can safely access
1162 	 * the root of the configfs filesystem.
1163 	 */
1164 	root = configfs_pin_fs();
1165 	if (IS_ERR(root))
1166 		return PTR_ERR(root);
1167 
1168 	/*
1169 	 * Next, lock the root directory.  We're going to check that the
1170 	 * subsystem is really registered, and so we need to lock out
1171 	 * configfs_[un]register_subsystem().
1172 	 */
1173 	inode_lock(d_inode(root));
1174 
1175 	subsys_sd = configfs_find_subsys_dentry(root->d_fsdata, s_item);
1176 	if (!subsys_sd) {
1177 		ret = -ENOENT;
1178 		goto out_unlock_fs;
1179 	}
1180 
1181 	/* Ok, now we can trust subsys/s_item */
1182 	ret = configfs_do_depend_item(subsys_sd, target);
1183 
1184 out_unlock_fs:
1185 	inode_unlock(d_inode(root));
1186 
1187 	/*
1188 	 * If we succeeded, the fs is pinned via other methods.  If not,
1189 	 * we're done with it anyway.  So release_fs() is always right.
1190 	 */
1191 	configfs_release_fs();
1192 
1193 	return ret;
1194 }
1195 EXPORT_SYMBOL(configfs_depend_item);
1196 
1197 /*
1198  * Release the dependent linkage.  This is much simpler than
1199  * configfs_depend_item() because we know that the client driver is
1200  * pinned, thus the subsystem is pinned, and therefore configfs is pinned.
1201  */
configfs_undepend_item(struct config_item * target)1202 void configfs_undepend_item(struct config_item *target)
1203 {
1204 	struct configfs_dirent *sd;
1205 
1206 	/*
1207 	 * Since we can trust everything is pinned, we just need
1208 	 * configfs_dirent_lock.
1209 	 */
1210 	spin_lock(&configfs_dirent_lock);
1211 
1212 	sd = target->ci_dentry->d_fsdata;
1213 	BUG_ON(sd->s_dependent_count < 1);
1214 
1215 	sd->s_dependent_count -= 1;
1216 
1217 	/*
1218 	 * After this unlock, we cannot trust the item to stay alive!
1219 	 * DO NOT REFERENCE item after this unlock.
1220 	 */
1221 	spin_unlock(&configfs_dirent_lock);
1222 }
1223 EXPORT_SYMBOL(configfs_undepend_item);
1224 
1225 /*
1226  * caller_subsys is a caller's subsystem not target's. This is used to
1227  * determine if we should lock root and check subsys or not. When we are
1228  * in the same subsystem as our target there is no need to do locking as
1229  * we know that subsys is valid and is not unregistered during this function
1230  * as we are called from callback of one of his children and VFS holds a lock
1231  * on some inode. Otherwise we have to lock our root to  ensure that target's
1232  * subsystem it is not unregistered during this function.
1233  */
configfs_depend_item_unlocked(struct configfs_subsystem * caller_subsys,struct config_item * target)1234 int configfs_depend_item_unlocked(struct configfs_subsystem *caller_subsys,
1235 				  struct config_item *target)
1236 {
1237 	struct configfs_subsystem *target_subsys;
1238 	struct config_group *root, *parent;
1239 	struct configfs_dirent *subsys_sd;
1240 	int ret = -ENOENT;
1241 
1242 	/* Disallow this function for configfs root */
1243 	if (configfs_is_root(target))
1244 		return -EINVAL;
1245 
1246 	parent = target->ci_group;
1247 	/*
1248 	 * This may happen when someone is trying to depend root
1249 	 * directory of some subsystem
1250 	 */
1251 	if (configfs_is_root(&parent->cg_item)) {
1252 		target_subsys = to_configfs_subsystem(to_config_group(target));
1253 		root = parent;
1254 	} else {
1255 		target_subsys = parent->cg_subsys;
1256 		/* Find a cofnigfs root as we may need it for locking */
1257 		for (root = parent; !configfs_is_root(&root->cg_item);
1258 		     root = root->cg_item.ci_group)
1259 			;
1260 	}
1261 
1262 	if (target_subsys != caller_subsys) {
1263 		/*
1264 		 * We are in other configfs subsystem, so we have to do
1265 		 * additional locking to prevent other subsystem from being
1266 		 * unregistered
1267 		 */
1268 		inode_lock(d_inode(root->cg_item.ci_dentry));
1269 
1270 		/*
1271 		 * As we are trying to depend item from other subsystem
1272 		 * we have to check if this subsystem is still registered
1273 		 */
1274 		subsys_sd = configfs_find_subsys_dentry(
1275 				root->cg_item.ci_dentry->d_fsdata,
1276 				&target_subsys->su_group.cg_item);
1277 		if (!subsys_sd)
1278 			goto out_root_unlock;
1279 	} else {
1280 		subsys_sd = target_subsys->su_group.cg_item.ci_dentry->d_fsdata;
1281 	}
1282 
1283 	/* Now we can execute core of depend item */
1284 	ret = configfs_do_depend_item(subsys_sd, target);
1285 
1286 	if (target_subsys != caller_subsys)
1287 out_root_unlock:
1288 		/*
1289 		 * We were called from subsystem other than our target so we
1290 		 * took some locks so now it's time to release them
1291 		 */
1292 		inode_unlock(d_inode(root->cg_item.ci_dentry));
1293 
1294 	return ret;
1295 }
1296 EXPORT_SYMBOL(configfs_depend_item_unlocked);
1297 
configfs_mkdir(struct mnt_idmap * idmap,struct inode * dir,struct dentry * dentry,umode_t mode)1298 static struct dentry *configfs_mkdir(struct mnt_idmap *idmap, struct inode *dir,
1299 				     struct dentry *dentry, umode_t mode)
1300 {
1301 	int ret = 0;
1302 	int module_got = 0;
1303 	struct config_group *group = NULL;
1304 	struct config_item *item = NULL;
1305 	struct config_item *parent_item;
1306 	struct configfs_subsystem *subsys;
1307 	struct configfs_dirent *sd;
1308 	const struct config_item_type *type;
1309 	struct module *subsys_owner = NULL, *new_item_owner = NULL;
1310 	struct configfs_fragment *frag;
1311 	struct name_snapshot n;
1312 	const char *name;
1313 
1314 	take_dentry_name_snapshot(&n, dentry);
1315 	name = n.name.name;
1316 
1317 	sd = dentry->d_parent->d_fsdata;
1318 
1319 	/*
1320 	 * Fake invisibility if dir belongs to a group/default groups hierarchy
1321 	 * being attached
1322 	 */
1323 	if (!configfs_dirent_is_ready(sd)) {
1324 		ret = -ENOENT;
1325 		goto out;
1326 	}
1327 
1328 	if (!(sd->s_type & CONFIGFS_USET_DIR)) {
1329 		ret = -EPERM;
1330 		goto out;
1331 	}
1332 
1333 	frag = new_fragment();
1334 	if (!frag) {
1335 		ret = -ENOMEM;
1336 		goto out;
1337 	}
1338 
1339 	/* Get a working ref for the duration of this function */
1340 	parent_item = configfs_get_config_item(dentry->d_parent);
1341 	type = parent_item->ci_type;
1342 	subsys = to_config_group(parent_item)->cg_subsys;
1343 	BUG_ON(!subsys);
1344 
1345 	if (!type || !type->ct_group_ops ||
1346 	    (!type->ct_group_ops->make_group &&
1347 	     !type->ct_group_ops->make_item)) {
1348 		ret = -EPERM;  /* Lack-of-mkdir returns -EPERM */
1349 		goto out_put;
1350 	}
1351 
1352 	/*
1353 	 * The subsystem may belong to a different module than the item
1354 	 * being created.  We don't want to safely pin the new item but
1355 	 * fail to pin the subsystem it sits under.
1356 	 */
1357 	if (!subsys->su_group.cg_item.ci_type) {
1358 		ret = -EINVAL;
1359 		goto out_put;
1360 	}
1361 	subsys_owner = subsys->su_group.cg_item.ci_type->ct_owner;
1362 	if (!try_module_get(subsys_owner)) {
1363 		ret = -EINVAL;
1364 		goto out_put;
1365 	}
1366 
1367 	mutex_lock(&subsys->su_mutex);
1368 	if (type->ct_group_ops->make_group) {
1369 		group = type->ct_group_ops->make_group(to_config_group(parent_item), name);
1370 		if (!group)
1371 			group = ERR_PTR(-ENOMEM);
1372 		if (!IS_ERR(group)) {
1373 			link_group(to_config_group(parent_item), group);
1374 			item = &group->cg_item;
1375 		} else
1376 			ret = PTR_ERR(group);
1377 	} else {
1378 		item = type->ct_group_ops->make_item(to_config_group(parent_item), name);
1379 		if (!item)
1380 			item = ERR_PTR(-ENOMEM);
1381 		if (!IS_ERR(item))
1382 			link_obj(parent_item, item);
1383 		else
1384 			ret = PTR_ERR(item);
1385 	}
1386 	mutex_unlock(&subsys->su_mutex);
1387 
1388 	if (ret) {
1389 		/*
1390 		 * If ret != 0, then link_obj() was never called.
1391 		 * There are no extra references to clean up.
1392 		 */
1393 		goto out_subsys_put;
1394 	}
1395 
1396 	/*
1397 	 * link_obj() has been called (via link_group() for groups).
1398 	 * From here on out, errors must clean that up.
1399 	 */
1400 
1401 	type = item->ci_type;
1402 	if (!type) {
1403 		ret = -EINVAL;
1404 		goto out_unlink;
1405 	}
1406 
1407 	new_item_owner = type->ct_owner;
1408 	if (!try_module_get(new_item_owner)) {
1409 		ret = -EINVAL;
1410 		goto out_unlink;
1411 	}
1412 
1413 	/*
1414 	 * I hate doing it this way, but if there is
1415 	 * an error,  module_put() probably should
1416 	 * happen after any cleanup.
1417 	 */
1418 	module_got = 1;
1419 
1420 	/*
1421 	 * Make racing rmdir() fail if it did not tag parent with
1422 	 * CONFIGFS_USET_DROPPING
1423 	 * Note: if CONFIGFS_USET_DROPPING is already set, attach_group() will
1424 	 * fail and let rmdir() terminate correctly
1425 	 */
1426 	spin_lock(&configfs_dirent_lock);
1427 	/* This will make configfs_detach_prep() fail */
1428 	sd->s_type |= CONFIGFS_USET_IN_MKDIR;
1429 	spin_unlock(&configfs_dirent_lock);
1430 
1431 	if (group)
1432 		ret = configfs_attach_group(item, dentry, frag);
1433 	else
1434 		ret = configfs_attach_item(item, dentry, frag);
1435 
1436 	spin_lock(&configfs_dirent_lock);
1437 	sd->s_type &= ~CONFIGFS_USET_IN_MKDIR;
1438 	if (!ret)
1439 		configfs_dir_set_ready(dentry->d_fsdata);
1440 	spin_unlock(&configfs_dirent_lock);
1441 
1442 out_unlink:
1443 	if (ret) {
1444 		/* Tear down everything we built up */
1445 		mutex_lock(&subsys->su_mutex);
1446 
1447 		client_disconnect_notify(parent_item, item);
1448 		if (group)
1449 			unlink_group(group);
1450 		else
1451 			unlink_obj(item);
1452 		client_drop_item(parent_item, item);
1453 
1454 		mutex_unlock(&subsys->su_mutex);
1455 
1456 		if (module_got)
1457 			module_put(new_item_owner);
1458 	}
1459 
1460 out_subsys_put:
1461 	if (ret)
1462 		module_put(subsys_owner);
1463 
1464 out_put:
1465 	/*
1466 	 * link_obj()/link_group() took a reference from child->parent,
1467 	 * so the parent is safely pinned.  We can drop our working
1468 	 * reference.
1469 	 */
1470 	config_item_put(parent_item);
1471 	put_fragment(frag);
1472 
1473 out:
1474 	release_dentry_name_snapshot(&n);
1475 	return ERR_PTR(ret);
1476 }
1477 
configfs_rmdir(struct inode * dir,struct dentry * dentry)1478 static int configfs_rmdir(struct inode *dir, struct dentry *dentry)
1479 {
1480 	struct config_item *parent_item;
1481 	struct config_item *item;
1482 	struct configfs_subsystem *subsys;
1483 	struct configfs_dirent *sd;
1484 	struct configfs_fragment *frag;
1485 	struct module *subsys_owner = NULL, *dead_item_owner = NULL;
1486 	int ret;
1487 
1488 	sd = dentry->d_fsdata;
1489 	if (sd->s_type & CONFIGFS_USET_DEFAULT)
1490 		return -EPERM;
1491 
1492 	/* Get a working ref until we have the child */
1493 	parent_item = configfs_get_config_item(dentry->d_parent);
1494 	subsys = to_config_group(parent_item)->cg_subsys;
1495 	BUG_ON(!subsys);
1496 
1497 	if (!parent_item->ci_type) {
1498 		config_item_put(parent_item);
1499 		return -EINVAL;
1500 	}
1501 
1502 	/* configfs_mkdir() shouldn't have allowed this */
1503 	BUG_ON(!subsys->su_group.cg_item.ci_type);
1504 	subsys_owner = subsys->su_group.cg_item.ci_type->ct_owner;
1505 
1506 	/*
1507 	 * Ensure that no racing symlink() will make detach_prep() fail while
1508 	 * the new link is temporarily attached
1509 	 */
1510 	do {
1511 		struct dentry *wait;
1512 
1513 		mutex_lock(&configfs_symlink_mutex);
1514 		spin_lock(&configfs_dirent_lock);
1515 		/*
1516 		 * Here's where we check for dependents.  We're protected by
1517 		 * configfs_dirent_lock.
1518 		 * If no dependent, atomically tag the item as dropping.
1519 		 */
1520 		ret = sd->s_dependent_count ? -EBUSY : 0;
1521 		if (!ret) {
1522 			ret = configfs_detach_prep(sd, &wait);
1523 			if (ret)
1524 				configfs_detach_rollback(sd);
1525 		}
1526 		spin_unlock(&configfs_dirent_lock);
1527 		mutex_unlock(&configfs_symlink_mutex);
1528 
1529 		if (ret) {
1530 			if (ret != -EAGAIN) {
1531 				config_item_put(parent_item);
1532 				return ret;
1533 			}
1534 
1535 			/* Wait until the racing operation terminates */
1536 			inode_lock(d_inode(wait));
1537 			inode_unlock(d_inode(wait));
1538 			dput(wait);
1539 		}
1540 	} while (ret == -EAGAIN);
1541 
1542 	frag = sd->s_frag;
1543 	if (down_write_killable(&frag->frag_sem)) {
1544 		spin_lock(&configfs_dirent_lock);
1545 		configfs_detach_rollback(sd);
1546 		spin_unlock(&configfs_dirent_lock);
1547 		config_item_put(parent_item);
1548 		return -EINTR;
1549 	}
1550 	frag->frag_dead = true;
1551 	up_write(&frag->frag_sem);
1552 
1553 	/* Get a working ref for the duration of this function */
1554 	item = configfs_get_config_item(dentry);
1555 
1556 	/* Drop reference from above, item already holds one. */
1557 	config_item_put(parent_item);
1558 
1559 	if (item->ci_type)
1560 		dead_item_owner = item->ci_type->ct_owner;
1561 
1562 	if (sd->s_type & CONFIGFS_USET_DIR) {
1563 		configfs_detach_group(dentry);
1564 
1565 		mutex_lock(&subsys->su_mutex);
1566 		client_disconnect_notify(parent_item, item);
1567 		unlink_group(to_config_group(item));
1568 	} else {
1569 		configfs_detach_item(dentry);
1570 
1571 		mutex_lock(&subsys->su_mutex);
1572 		client_disconnect_notify(parent_item, item);
1573 		unlink_obj(item);
1574 	}
1575 
1576 	client_drop_item(parent_item, item);
1577 	mutex_unlock(&subsys->su_mutex);
1578 
1579 	/* Drop our reference from above */
1580 	config_item_put(item);
1581 
1582 	module_put(dead_item_owner);
1583 	module_put(subsys_owner);
1584 
1585 	return 0;
1586 }
1587 
1588 const struct inode_operations configfs_dir_inode_operations = {
1589 	.mkdir		= configfs_mkdir,
1590 	.rmdir		= configfs_rmdir,
1591 	.symlink	= configfs_symlink,
1592 	.unlink		= configfs_unlink,
1593 	.lookup		= configfs_lookup,
1594 	.setattr	= configfs_setattr,
1595 };
1596 
1597 const struct inode_operations configfs_root_inode_operations = {
1598 	.lookup		= configfs_lookup,
1599 	.setattr	= configfs_setattr,
1600 };
1601 
configfs_dir_open(struct inode * inode,struct file * file)1602 static int configfs_dir_open(struct inode *inode, struct file *file)
1603 {
1604 	struct dentry * dentry = file->f_path.dentry;
1605 	struct configfs_dirent * parent_sd = dentry->d_fsdata;
1606 	int err;
1607 
1608 	inode_lock(d_inode(dentry));
1609 	/*
1610 	 * Fake invisibility if dir belongs to a group/default groups hierarchy
1611 	 * being attached
1612 	 */
1613 	err = -ENOENT;
1614 	if (configfs_dirent_is_ready(parent_sd)) {
1615 		file->private_data = configfs_new_dirent(parent_sd, NULL, 0, NULL);
1616 		err = PTR_ERR_OR_ZERO(file->private_data);
1617 	}
1618 	inode_unlock(d_inode(dentry));
1619 
1620 	return err;
1621 }
1622 
configfs_dir_close(struct inode * inode,struct file * file)1623 static int configfs_dir_close(struct inode *inode, struct file *file)
1624 {
1625 	struct dentry * dentry = file->f_path.dentry;
1626 	struct configfs_dirent * cursor = file->private_data;
1627 
1628 	inode_lock(d_inode(dentry));
1629 	spin_lock(&configfs_dirent_lock);
1630 	list_del_init(&cursor->s_sibling);
1631 	spin_unlock(&configfs_dirent_lock);
1632 	inode_unlock(d_inode(dentry));
1633 
1634 	release_configfs_dirent(cursor);
1635 
1636 	return 0;
1637 }
1638 
configfs_readdir(struct file * file,struct dir_context * ctx)1639 static int configfs_readdir(struct file *file, struct dir_context *ctx)
1640 {
1641 	struct dentry *dentry = file->f_path.dentry;
1642 	struct super_block *sb = dentry->d_sb;
1643 	struct configfs_dirent * parent_sd = dentry->d_fsdata;
1644 	struct configfs_dirent *cursor = file->private_data;
1645 	struct list_head *p, *q = &cursor->s_sibling;
1646 	ino_t ino = 0;
1647 
1648 	if (!dir_emit_dots(file, ctx))
1649 		return 0;
1650 	spin_lock(&configfs_dirent_lock);
1651 	if (ctx->pos == 2)
1652 		list_move(q, &parent_sd->s_children);
1653 	for (p = q->next; p != &parent_sd->s_children; p = p->next) {
1654 		struct configfs_dirent *next;
1655 		const char *name;
1656 		int len;
1657 		struct inode *inode = NULL;
1658 
1659 		next = list_entry(p, struct configfs_dirent, s_sibling);
1660 		if (!next->s_element)
1661 			continue;
1662 
1663 		/*
1664 		 * We'll have a dentry and an inode for
1665 		 * PINNED items and for open attribute
1666 		 * files.  We lock here to prevent a race
1667 		 * with configfs_d_iput() clearing
1668 		 * s_dentry before calling iput().
1669 		 *
1670 		 * Why do we go to the trouble?  If
1671 		 * someone has an attribute file open,
1672 		 * the inode number should match until
1673 		 * they close it.  Beyond that, we don't
1674 		 * care.
1675 		 */
1676 		dentry = next->s_dentry;
1677 		if (dentry)
1678 			inode = d_inode(dentry);
1679 		if (inode)
1680 			ino = inode->i_ino;
1681 		spin_unlock(&configfs_dirent_lock);
1682 		if (!inode)
1683 			ino = iunique(sb, 2);
1684 
1685 		name = configfs_get_name(next);
1686 		len = strlen(name);
1687 
1688 		if (!dir_emit(ctx, name, len, ino,
1689 			      fs_umode_to_dtype(next->s_mode)))
1690 			return 0;
1691 
1692 		spin_lock(&configfs_dirent_lock);
1693 		list_move(q, p);
1694 		p = q;
1695 		ctx->pos++;
1696 	}
1697 	spin_unlock(&configfs_dirent_lock);
1698 	return 0;
1699 }
1700 
configfs_dir_lseek(struct file * file,loff_t offset,int whence)1701 static loff_t configfs_dir_lseek(struct file *file, loff_t offset, int whence)
1702 {
1703 	struct dentry * dentry = file->f_path.dentry;
1704 
1705 	switch (whence) {
1706 		case 1:
1707 			offset += file->f_pos;
1708 			fallthrough;
1709 		case 0:
1710 			if (offset >= 0)
1711 				break;
1712 			fallthrough;
1713 		default:
1714 			return -EINVAL;
1715 	}
1716 	if (offset != file->f_pos) {
1717 		file->f_pos = offset;
1718 		if (file->f_pos >= 2) {
1719 			struct configfs_dirent *sd = dentry->d_fsdata;
1720 			struct configfs_dirent *cursor = file->private_data;
1721 			struct list_head *p;
1722 			loff_t n = file->f_pos - 2;
1723 
1724 			spin_lock(&configfs_dirent_lock);
1725 			list_del(&cursor->s_sibling);
1726 			p = sd->s_children.next;
1727 			while (n && p != &sd->s_children) {
1728 				struct configfs_dirent *next;
1729 				next = list_entry(p, struct configfs_dirent,
1730 						   s_sibling);
1731 				if (next->s_element)
1732 					n--;
1733 				p = p->next;
1734 			}
1735 			list_add_tail(&cursor->s_sibling, p);
1736 			spin_unlock(&configfs_dirent_lock);
1737 		}
1738 	}
1739 	return offset;
1740 }
1741 
1742 const struct file_operations configfs_dir_operations = {
1743 	.open		= configfs_dir_open,
1744 	.release	= configfs_dir_close,
1745 	.llseek		= configfs_dir_lseek,
1746 	.read		= generic_read_dir,
1747 	.iterate_shared	= configfs_readdir,
1748 };
1749 
1750 /**
1751  * configfs_register_group - creates a parent-child relation between two groups
1752  * @parent_group:	parent group
1753  * @group:		child group
1754  *
1755  * link groups, creates dentry for the child and attaches it to the
1756  * parent dentry.
1757  *
1758  * Return: 0 on success, negative errno code on error
1759  */
configfs_register_group(struct config_group * parent_group,struct config_group * group)1760 int configfs_register_group(struct config_group *parent_group,
1761 			    struct config_group *group)
1762 {
1763 	struct configfs_subsystem *subsys = parent_group->cg_subsys;
1764 	struct dentry *parent;
1765 	struct configfs_fragment *frag;
1766 	int ret;
1767 
1768 	frag = new_fragment();
1769 	if (!frag)
1770 		return -ENOMEM;
1771 
1772 	mutex_lock(&subsys->su_mutex);
1773 	link_group(parent_group, group);
1774 	mutex_unlock(&subsys->su_mutex);
1775 
1776 	parent = parent_group->cg_item.ci_dentry;
1777 
1778 	inode_lock_nested(d_inode(parent), I_MUTEX_PARENT);
1779 	ret = create_default_group(parent, group, frag);
1780 	if (ret)
1781 		goto err_out;
1782 
1783 	spin_lock(&configfs_dirent_lock);
1784 	configfs_dir_set_ready(group->cg_item.ci_dentry->d_fsdata);
1785 	spin_unlock(&configfs_dirent_lock);
1786 	inode_unlock(d_inode(parent));
1787 	put_fragment(frag);
1788 	return 0;
1789 err_out:
1790 	inode_unlock(d_inode(parent));
1791 	mutex_lock(&subsys->su_mutex);
1792 	unlink_group(group);
1793 	mutex_unlock(&subsys->su_mutex);
1794 	put_fragment(frag);
1795 	return ret;
1796 }
1797 EXPORT_SYMBOL(configfs_register_group);
1798 
1799 /**
1800  * configfs_unregister_group() - unregisters a child group from its parent
1801  * @group: parent group to be unregistered
1802  *
1803  * Undoes configfs_register_group()
1804  */
configfs_unregister_group(struct config_group * group)1805 void configfs_unregister_group(struct config_group *group)
1806 {
1807 	struct configfs_subsystem *subsys = group->cg_subsys;
1808 	struct dentry *dentry = dget(group->cg_item.ci_dentry);
1809 	struct dentry *parent = group->cg_item.ci_parent->ci_dentry;
1810 	struct configfs_dirent *sd = dentry->d_fsdata;
1811 	struct configfs_fragment *frag = sd->s_frag;
1812 
1813 	down_write(&frag->frag_sem);
1814 	frag->frag_dead = true;
1815 	up_write(&frag->frag_sem);
1816 
1817 	inode_lock_nested(d_inode(parent), I_MUTEX_PARENT);
1818 	spin_lock(&configfs_dirent_lock);
1819 	configfs_detach_prep(sd, NULL);
1820 	spin_unlock(&configfs_dirent_lock);
1821 
1822 	configfs_detach_group(dentry);
1823 	d_inode(dentry)->i_flags |= S_DEAD;
1824 	dont_mount(dentry);
1825 	d_drop(dentry);
1826 	fsnotify_rmdir(d_inode(parent), dentry);
1827 	inode_unlock(d_inode(parent));
1828 
1829 	dput(dentry);
1830 
1831 	mutex_lock(&subsys->su_mutex);
1832 	unlink_group(group);
1833 	mutex_unlock(&subsys->su_mutex);
1834 }
1835 EXPORT_SYMBOL(configfs_unregister_group);
1836 
1837 /**
1838  * configfs_register_default_group() - allocates and registers a child group
1839  * @parent_group:	parent group
1840  * @name:		child group name
1841  * @item_type:		child item type description
1842  *
1843  * boilerplate to allocate and register a child group with its parent. We need
1844  * kzalloc'ed memory because child's default_group is initially empty.
1845  *
1846  * Return: allocated config group or ERR_PTR() on error
1847  */
1848 struct config_group *
configfs_register_default_group(struct config_group * parent_group,const char * name,const struct config_item_type * item_type)1849 configfs_register_default_group(struct config_group *parent_group,
1850 				const char *name,
1851 				const struct config_item_type *item_type)
1852 {
1853 	int ret;
1854 	struct config_group *group;
1855 
1856 	group = kzalloc_obj(*group);
1857 	if (!group)
1858 		return ERR_PTR(-ENOMEM);
1859 	config_group_init_type_name(group, name, item_type);
1860 
1861 	ret = configfs_register_group(parent_group, group);
1862 	if (ret) {
1863 		kfree(group);
1864 		return ERR_PTR(ret);
1865 	}
1866 	return group;
1867 }
1868 EXPORT_SYMBOL(configfs_register_default_group);
1869 
1870 /**
1871  * configfs_unregister_default_group() - unregisters and frees a child group
1872  * @group:	the group to act on
1873  */
configfs_unregister_default_group(struct config_group * group)1874 void configfs_unregister_default_group(struct config_group *group)
1875 {
1876 	configfs_unregister_group(group);
1877 	kfree(group);
1878 }
1879 EXPORT_SYMBOL(configfs_unregister_default_group);
1880 
configfs_register_subsystem(struct configfs_subsystem * subsys)1881 int configfs_register_subsystem(struct configfs_subsystem *subsys)
1882 {
1883 	int err;
1884 	struct config_group *group = &subsys->su_group;
1885 	struct dentry *dentry;
1886 	struct dentry *root;
1887 	struct configfs_dirent *sd;
1888 	struct configfs_fragment *frag;
1889 
1890 	frag = new_fragment();
1891 	if (!frag)
1892 		return -ENOMEM;
1893 
1894 	root = configfs_pin_fs();
1895 	if (IS_ERR(root)) {
1896 		put_fragment(frag);
1897 		return PTR_ERR(root);
1898 	}
1899 
1900 	if (!group->cg_item.ci_name)
1901 		group->cg_item.ci_name = group->cg_item.ci_namebuf;
1902 
1903 	sd = root->d_fsdata;
1904 	mutex_lock(&configfs_subsystem_mutex);
1905 	link_group(to_config_group(sd->s_element), group);
1906 	mutex_unlock(&configfs_subsystem_mutex);
1907 
1908 	inode_lock_nested(d_inode(root), I_MUTEX_PARENT);
1909 
1910 	err = -ENOMEM;
1911 	dentry = d_alloc_name(root, group->cg_item.ci_name);
1912 	if (dentry) {
1913 		d_add(dentry, NULL);
1914 
1915 		err = configfs_dirent_exists(dentry);
1916 		if (!err)
1917 			err = configfs_attach_group(&group->cg_item,
1918 						    dentry, frag);
1919 		if (err) {
1920 			BUG_ON(d_inode(dentry));
1921 			d_drop(dentry);
1922 		} else {
1923 			spin_lock(&configfs_dirent_lock);
1924 			configfs_dir_set_ready(dentry->d_fsdata);
1925 			spin_unlock(&configfs_dirent_lock);
1926 		}
1927 		dput(dentry);
1928 	}
1929 
1930 	inode_unlock(d_inode(root));
1931 
1932 	if (err) {
1933 		mutex_lock(&configfs_subsystem_mutex);
1934 		unlink_group(group);
1935 		mutex_unlock(&configfs_subsystem_mutex);
1936 		configfs_release_fs();
1937 	}
1938 	put_fragment(frag);
1939 
1940 	return err;
1941 }
1942 
configfs_unregister_subsystem(struct configfs_subsystem * subsys)1943 void configfs_unregister_subsystem(struct configfs_subsystem *subsys)
1944 {
1945 	struct config_group *group = &subsys->su_group;
1946 	struct dentry *dentry = dget(group->cg_item.ci_dentry);
1947 	struct dentry *root = dentry->d_sb->s_root;
1948 	struct configfs_dirent *sd = dentry->d_fsdata;
1949 	struct configfs_fragment *frag = sd->s_frag;
1950 
1951 	if (dentry->d_parent != root) {
1952 		pr_err("Tried to unregister non-subsystem!\n");
1953 		return;
1954 	}
1955 
1956 	down_write(&frag->frag_sem);
1957 	frag->frag_dead = true;
1958 	up_write(&frag->frag_sem);
1959 
1960 	inode_lock_nested(d_inode(root),
1961 			  I_MUTEX_PARENT);
1962 	inode_lock_nested(d_inode(dentry), I_MUTEX_CHILD);
1963 	mutex_lock(&configfs_symlink_mutex);
1964 	spin_lock(&configfs_dirent_lock);
1965 	if (configfs_detach_prep(sd, NULL)) {
1966 		pr_err("Tried to unregister non-empty subsystem!\n");
1967 	}
1968 	spin_unlock(&configfs_dirent_lock);
1969 	mutex_unlock(&configfs_symlink_mutex);
1970 	configfs_detach_group(dentry);
1971 	d_inode(dentry)->i_flags |= S_DEAD;
1972 	dont_mount(dentry);
1973 	inode_unlock(d_inode(dentry));
1974 
1975 	d_drop(dentry);
1976 	fsnotify_rmdir(d_inode(root), dentry);
1977 
1978 	inode_unlock(d_inode(root));
1979 
1980 	dput(dentry);
1981 
1982 	mutex_lock(&configfs_subsystem_mutex);
1983 	unlink_group(group);
1984 	mutex_unlock(&configfs_subsystem_mutex);
1985 	configfs_release_fs();
1986 }
1987 
1988 EXPORT_SYMBOL(configfs_register_subsystem);
1989 EXPORT_SYMBOL(configfs_unregister_subsystem);
1990