xref: /linux/fs/dcache.c (revision 056a5087d87ead77dedbe9cf5bde53b7cd4b4651)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * fs/dcache.c
4  *
5  * Complete reimplementation
6  * (C) 1997 Thomas Schoebel-Theuer,
7  * with heavy changes by Linus Torvalds
8  */
9 
10 /*
11  * Notes on the allocation strategy:
12  *
13  * The dcache is a master of the icache - whenever a dcache entry
14  * exists, the inode will always exist. "iput()" is done either when
15  * the dcache entry is deleted or garbage collected.
16  */
17 
18 #include <linux/ratelimit.h>
19 #include <linux/string.h>
20 #include <linux/mm.h>
21 #include <linux/fs.h>
22 #include <linux/fscrypt.h>
23 #include <linux/fsnotify.h>
24 #include <linux/slab.h>
25 #include <linux/init.h>
26 #include <linux/hash.h>
27 #include <linux/cache.h>
28 #include <linux/export.h>
29 #include <linux/security.h>
30 #include <linux/seqlock.h>
31 #include <linux/memblock.h>
32 #include <linux/bit_spinlock.h>
33 #include <linux/rculist_bl.h>
34 #include <linux/list_lru.h>
35 #include "internal.h"
36 #include "mount.h"
37 
38 #include <asm/runtime-const.h>
39 
40 /*
41  * Usage:
42  * dcache->d_inode->i_lock protects:
43  *   - i_dentry, d_alias, d_inode of aliases
44  * dcache_hash_bucket lock protects:
45  *   - the dcache hash table
46  * s_roots_lock protects:
47  *   - the s_roots list (see __d_move()/dentry_unlist()/d_obtain_root())
48  * dentry->d_sb->s_dentry_lru_lock protects:
49  *   - the dcache lru lists and counters
50  * d_lock protects:
51  *   - d_flags
52  *   - d_name
53  *   - d_lru
54  *   - d_count
55  *   - d_unhashed()
56  *   - d_parent and d_chilren
57  *   - childrens' d_sib and d_parent
58  *   - d_alias, d_inode
59  *
60  * Ordering:
61  * dentry->d_inode->i_lock
62  *   dentry->d_lock
63  *     dentry->d_sb->s_dentry_lru_lock
64  *     dcache_hash_bucket lock
65  *     s_roots lock
66  *
67  * If there is an ancestor relationship:
68  * dentry->d_parent->...->d_parent->d_lock
69  *   ...
70  *     dentry->d_parent->d_lock
71  *       dentry->d_lock
72  *
73  * If no ancestor relationship:
74  * arbitrary, since it's serialized on rename_lock
75  */
76 static int sysctl_vfs_cache_pressure __read_mostly = 100;
77 static int sysctl_vfs_cache_pressure_denom __read_mostly = 100;
78 
79 unsigned long vfs_pressure_ratio(unsigned long val)
80 {
81 	return mult_frac(val, sysctl_vfs_cache_pressure, sysctl_vfs_cache_pressure_denom);
82 }
83 EXPORT_SYMBOL_GPL(vfs_pressure_ratio);
84 
85 __cacheline_aligned_in_smp DEFINE_SEQLOCK(rename_lock);
86 
87 EXPORT_SYMBOL(rename_lock);
88 
89 static struct kmem_cache *__dentry_cache __ro_after_init;
90 #define dentry_cache runtime_const_ptr(__dentry_cache)
91 
92 const struct qstr empty_name = QSTR_INIT("", 0);
93 EXPORT_SYMBOL(empty_name);
94 const struct qstr slash_name = QSTR_INIT("/", 1);
95 EXPORT_SYMBOL(slash_name);
96 const struct qstr dotdot_name = QSTR_INIT("..", 2);
97 EXPORT_SYMBOL(dotdot_name);
98 
99 /*
100  * This is the single most critical data structure when it comes
101  * to the dcache: the hashtable for lookups. Somebody should try
102  * to make this good - I've just made it work.
103  *
104  * This hash-function tries to avoid losing too many bits of hash
105  * information, yet avoid using a prime hash-size or similar.
106  *
107  * Marking the variables "used" ensures that the compiler doesn't
108  * optimize them away completely on architectures with runtime
109  * constant infrastructure, this allows debuggers to see their
110  * values. But updating these values has no effect on those arches.
111  */
112 
113 static unsigned int d_hash_shift __ro_after_init __used;
114 
115 static struct hlist_bl_head *dentry_hashtable __ro_after_init __used;
116 
117 static inline struct hlist_bl_head *d_hash(unsigned long hashlen)
118 {
119 	return runtime_const_ptr(dentry_hashtable) +
120 		runtime_const_shift_right_32(hashlen, d_hash_shift);
121 }
122 
123 #define IN_LOOKUP_SHIFT 10
124 static struct hlist_bl_head in_lookup_hashtable[1 << IN_LOOKUP_SHIFT];
125 
126 static inline struct hlist_bl_head *in_lookup_hash(const struct dentry *parent,
127 					unsigned int hash)
128 {
129 	hash += (unsigned long) parent / L1_CACHE_BYTES;
130 	return in_lookup_hashtable + hash_32(hash, IN_LOOKUP_SHIFT);
131 }
132 
133 struct dentry_stat_t {
134 	long nr_dentry;
135 	long nr_unused;
136 	long age_limit;		/* age in seconds */
137 	long want_pages;	/* pages requested by system */
138 	long nr_negative;	/* # of unused negative dentries */
139 	long dummy;		/* Reserved for future use */
140 };
141 
142 static DEFINE_PER_CPU(long, nr_dentry);
143 static DEFINE_PER_CPU(long, nr_dentry_unused);
144 static DEFINE_PER_CPU(long, nr_dentry_negative);
145 static int dentry_negative_policy;
146 
147 #if defined(CONFIG_SYSCTL) && defined(CONFIG_PROC_FS)
148 /* Statistics gathering. */
149 static struct dentry_stat_t dentry_stat = {
150 	.age_limit = 45,
151 };
152 
153 /*
154  * Here we resort to our own counters instead of using generic per-cpu counters
155  * for consistency with what the vfs inode code does. We are expected to harvest
156  * better code and performance by having our own specialized counters.
157  *
158  * Please note that the loop is done over all possible CPUs, not over all online
159  * CPUs. The reason for this is that we don't want to play games with CPUs going
160  * on and off. If one of them goes off, we will just keep their counters.
161  *
162  * glommer: See cffbc8a for details, and if you ever intend to change this,
163  * please update all vfs counters to match.
164  */
165 static long get_nr_dentry(void)
166 {
167 	int i;
168 	long sum = 0;
169 	for_each_possible_cpu(i)
170 		sum += per_cpu(nr_dentry, i);
171 	return sum < 0 ? 0 : sum;
172 }
173 
174 static long get_nr_dentry_unused(void)
175 {
176 	int i;
177 	long sum = 0;
178 	for_each_possible_cpu(i)
179 		sum += per_cpu(nr_dentry_unused, i);
180 	return sum < 0 ? 0 : sum;
181 }
182 
183 static long get_nr_dentry_negative(void)
184 {
185 	int i;
186 	long sum = 0;
187 
188 	for_each_possible_cpu(i)
189 		sum += per_cpu(nr_dentry_negative, i);
190 	return sum < 0 ? 0 : sum;
191 }
192 
193 static int proc_nr_dentry(const struct ctl_table *table, int write, void *buffer,
194 			  size_t *lenp, loff_t *ppos)
195 {
196 	dentry_stat.nr_dentry = get_nr_dentry();
197 	dentry_stat.nr_unused = get_nr_dentry_unused();
198 	dentry_stat.nr_negative = get_nr_dentry_negative();
199 	return proc_doulongvec_minmax(table, write, buffer, lenp, ppos);
200 }
201 
202 static const struct ctl_table fs_dcache_sysctls[] = {
203 	{
204 		.procname	= "dentry-state",
205 		.data		= &dentry_stat,
206 		.maxlen		= 6*sizeof(long),
207 		.mode		= 0444,
208 		.proc_handler	= proc_nr_dentry,
209 	},
210 	{
211 		.procname	= "dentry-negative",
212 		.data		= &dentry_negative_policy,
213 		.maxlen		= sizeof(dentry_negative_policy),
214 		.mode		= 0644,
215 		.proc_handler	= proc_dointvec_minmax,
216 		.extra1		= SYSCTL_ZERO,
217 		.extra2		= SYSCTL_ONE,
218 	},
219 };
220 
221 static const struct ctl_table vm_dcache_sysctls[] = {
222 	{
223 		.procname	= "vfs_cache_pressure",
224 		.data		= &sysctl_vfs_cache_pressure,
225 		.maxlen		= sizeof(sysctl_vfs_cache_pressure),
226 		.mode		= 0644,
227 		.proc_handler	= proc_dointvec_minmax,
228 		.extra1		= SYSCTL_ZERO,
229 	},
230 	{
231 		.procname	= "vfs_cache_pressure_denom",
232 		.data		= &sysctl_vfs_cache_pressure_denom,
233 		.maxlen		= sizeof(sysctl_vfs_cache_pressure_denom),
234 		.mode		= 0644,
235 		.proc_handler	= proc_dointvec_minmax,
236 		.extra1		= SYSCTL_ONE_HUNDRED,
237 	},
238 };
239 
240 static int __init init_fs_dcache_sysctls(void)
241 {
242 	register_sysctl_init("vm", vm_dcache_sysctls);
243 	register_sysctl_init("fs", fs_dcache_sysctls);
244 	return 0;
245 }
246 fs_initcall(init_fs_dcache_sysctls);
247 #endif
248 
249 /*
250  * Compare 2 name strings, return 0 if they match, otherwise non-zero.
251  * The strings are both count bytes long, and count is non-zero.
252  */
253 #ifdef CONFIG_DCACHE_WORD_ACCESS
254 
255 #include <asm/word-at-a-time.h>
256 /*
257  * NOTE! 'cs' and 'scount' come from a dentry, so it has a
258  * aligned allocation for this particular component. We don't
259  * strictly need the load_unaligned_zeropad() safety, but it
260  * doesn't hurt either.
261  *
262  * In contrast, 'ct' and 'tcount' can be from a pathname, and do
263  * need the careful unaligned handling.
264  */
265 static inline int dentry_string_cmp(const unsigned char *cs, const unsigned char *ct, unsigned tcount)
266 {
267 	unsigned long a,b,mask;
268 
269 	for (;;) {
270 		a = read_word_at_a_time(cs);
271 		b = load_unaligned_zeropad(ct);
272 		if (tcount < sizeof(unsigned long))
273 			break;
274 		if (unlikely(a != b))
275 			return 1;
276 		cs += sizeof(unsigned long);
277 		ct += sizeof(unsigned long);
278 		tcount -= sizeof(unsigned long);
279 		if (!tcount)
280 			return 0;
281 	}
282 	mask = bytemask_from_count(tcount);
283 	return unlikely(!!((a ^ b) & mask));
284 }
285 
286 #else
287 
288 static inline int dentry_string_cmp(const unsigned char *cs, const unsigned char *ct, unsigned tcount)
289 {
290 	do {
291 		if (*cs != *ct)
292 			return 1;
293 		cs++;
294 		ct++;
295 		tcount--;
296 	} while (tcount);
297 	return 0;
298 }
299 
300 #endif
301 
302 static inline int dentry_cmp(const struct dentry *dentry, const unsigned char *ct, unsigned tcount)
303 {
304 	/*
305 	 * Be careful about RCU walk racing with rename:
306 	 * use 'READ_ONCE' to fetch the name pointer.
307 	 *
308 	 * NOTE! Even if a rename will mean that the length
309 	 * was not loaded atomically, we don't care. The
310 	 * RCU walk will check the sequence count eventually,
311 	 * and catch it. And we won't overrun the buffer,
312 	 * because we're reading the name pointer atomically,
313 	 * and a dentry name is guaranteed to be properly
314 	 * terminated with a NUL byte.
315 	 *
316 	 * End result: even if 'len' is wrong, we'll exit
317 	 * early because the data cannot match (there can
318 	 * be no NUL in the ct/tcount data)
319 	 */
320 	const unsigned char *cs = READ_ONCE(dentry->d_name.name);
321 
322 	return dentry_string_cmp(cs, ct, tcount);
323 }
324 
325 /*
326  * long names are allocated separately from dentry and never modified.
327  * Refcounted, freeing is RCU-delayed.  See take_dentry_name_snapshot()
328  * for the reason why ->count and ->head can't be combined into a union.
329  * dentry_string_cmp() relies upon ->name[] being word-aligned.
330  */
331 struct external_name {
332 	atomic_t count;
333 	struct rcu_head head;
334 	unsigned char name[] __aligned(sizeof(unsigned long));
335 };
336 
337 static inline struct external_name *external_name(struct dentry *dentry)
338 {
339 	return container_of(dentry->d_name.name, struct external_name, name[0]);
340 }
341 
342 static void __d_free(struct rcu_head *head)
343 {
344 	struct dentry *dentry = container_of(head, struct dentry, d_rcu);
345 
346 	kmem_cache_free(dentry_cache, dentry);
347 }
348 
349 static void __d_free_external(struct rcu_head *head)
350 {
351 	struct dentry *dentry = container_of(head, struct dentry, d_rcu);
352 	kfree(external_name(dentry));
353 	kmem_cache_free(dentry_cache, dentry);
354 }
355 
356 static inline int dname_external(const struct dentry *dentry)
357 {
358 	return dentry->d_name.name != dentry->d_shortname.string;
359 }
360 
361 void take_dentry_name_snapshot(struct name_snapshot *name, struct dentry *dentry)
362 {
363 	unsigned seq;
364 	const unsigned char *s;
365 
366 	rcu_read_lock();
367 retry:
368 	seq = read_seqcount_begin(&dentry->d_seq);
369 	s = READ_ONCE(dentry->d_name.name);
370 	name->name.hash_len = dentry->d_name.hash_len;
371 	name->name.name = name->inline_name.string;
372 	if (likely(s == dentry->d_shortname.string)) {
373 		name->inline_name = dentry->d_shortname;
374 	} else {
375 		struct external_name *p;
376 		p = container_of(s, struct external_name, name[0]);
377 		// get a valid reference
378 		if (unlikely(!atomic_inc_not_zero(&p->count)))
379 			goto retry;
380 		name->name.name = s;
381 	}
382 	if (read_seqcount_retry(&dentry->d_seq, seq)) {
383 		release_dentry_name_snapshot(name);
384 		goto retry;
385 	}
386 	rcu_read_unlock();
387 }
388 EXPORT_SYMBOL(take_dentry_name_snapshot);
389 
390 void release_dentry_name_snapshot(struct name_snapshot *name)
391 {
392 	if (unlikely(name->name.name != name->inline_name.string)) {
393 		struct external_name *p;
394 		p = container_of(name->name.name, struct external_name, name[0]);
395 		if (unlikely(atomic_dec_and_test(&p->count)))
396 			kfree_rcu(p, head);
397 	}
398 }
399 EXPORT_SYMBOL(release_dentry_name_snapshot);
400 
401 static inline void __d_set_inode_and_type(struct dentry *dentry,
402 					  struct inode *inode,
403 					  unsigned type_flags)
404 {
405 	unsigned flags;
406 
407 	dentry->d_inode = inode;
408 	flags = READ_ONCE(dentry->d_flags);
409 	flags &= ~DCACHE_ENTRY_TYPE;
410 	flags |= type_flags;
411 	smp_store_release(&dentry->d_flags, flags);
412 }
413 
414 static inline void __d_clear_type_and_inode(struct dentry *dentry)
415 {
416 	unsigned flags = READ_ONCE(dentry->d_flags);
417 
418 	flags &= ~DCACHE_ENTRY_TYPE;
419 	WRITE_ONCE(dentry->d_flags, flags);
420 	dentry->d_inode = NULL;
421 	/*
422 	 * The negative counter only tracks dentries on the LRU. Don't inc if
423 	 * d_lru is on another list.
424 	 */
425 	if ((flags & (DCACHE_LRU_LIST|DCACHE_SHRINK_LIST)) == DCACHE_LRU_LIST)
426 		this_cpu_inc(nr_dentry_negative);
427 }
428 
429 #define DENTRY_WARN_ONCE(condition, dentry) \
430 	WARN_ONCE((condition), "dentry=%p d_flags=0x%x\n", (dentry), (dentry)->d_flags)
431 #define D_FLAG_VERIFY(dentry, x) \
432 	DENTRY_WARN_ONCE(((dentry)->d_flags & (DCACHE_LRU_LIST | DCACHE_SHRINK_LIST)) != (x), (dentry))
433 
434 static void dentry_free(struct dentry *dentry)
435 {
436 	DENTRY_WARN_ONCE(d_really_is_positive(dentry), dentry);
437 	DENTRY_WARN_ONCE(dentry->d_lockref.count >= 0, dentry);
438 	D_FLAG_VERIFY(dentry, 0);
439 	if (unlikely(dname_external(dentry))) {
440 		struct external_name *p = external_name(dentry);
441 		if (likely(atomic_dec_and_test(&p->count))) {
442 			call_rcu(&dentry->d_rcu, __d_free_external);
443 			return;
444 		}
445 	}
446 	/* if dentry was never visible to RCU, immediate free is OK */
447 	if (dentry->d_flags & DCACHE_NORCU)
448 		__d_free(&dentry->d_rcu);
449 	else
450 		call_rcu(&dentry->d_rcu, __d_free);
451 }
452 
453 /*
454  * Release the dentry's inode, using the filesystem
455  * d_iput() operation if defined.
456  */
457 static void dentry_unlink_inode(struct dentry * dentry)
458 	__releases(dentry->d_lock)
459 	__releases(dentry->d_inode->i_lock)
460 {
461 	struct inode *inode = dentry->d_inode;
462 
463 	raw_write_seqcount_begin(&dentry->d_seq);
464 	__d_clear_type_and_inode(dentry);
465 	__hlist_del(&dentry->d_alias);
466 	/*
467 	 * dentry becomes negative, so the space occupied by ->d_alias
468 	 * belongs to ->waiters now.
469 	 */
470 	dentry->waiters = NULL;
471 	raw_write_seqcount_end(&dentry->d_seq);
472 	spin_unlock(&dentry->d_lock);
473 	spin_unlock(&inode->i_lock);
474 	if (!inode->i_nlink)
475 		fsnotify_inoderemove(inode);
476 	if (dentry->d_op && dentry->d_op->d_iput)
477 		dentry->d_op->d_iput(dentry, inode);
478 	else
479 		iput(inode);
480 }
481 
482 /*
483  * The DCACHE_LRU_LIST bit is set whenever the 'd_lru' entry
484  * is in use - which includes both the "real" per-superblock
485  * LRU list _and_ the DCACHE_SHRINK_LIST use.
486  *
487  * The DCACHE_SHRINK_LIST bit is set whenever the dentry is
488  * on the shrink list (ie not on the superblock LRU list).
489  *
490  * The per-cpu "nr_dentry_unused" counters are updated with
491  * the DCACHE_LRU_LIST bit.
492  *
493  * The per-cpu "nr_dentry_negative" counters are only updated
494  * when deleted from or added to the per-superblock LRU list, not
495  * from/to the shrink list. That is to avoid an unneeded dec/inc
496  * pair when moving from LRU to shrink list in select_collect().
497  *
498  * These helper functions make sure we always follow the
499  * rules. d_lock must be held by the caller.
500  */
501 static void d_lru_add(struct dentry *dentry)
502 {
503 	D_FLAG_VERIFY(dentry, 0);
504 	dentry->d_flags |= DCACHE_LRU_LIST;
505 	this_cpu_inc(nr_dentry_unused);
506 	if (d_is_negative(dentry))
507 		this_cpu_inc(nr_dentry_negative);
508 	WARN_ON_ONCE(!list_lru_add_obj(
509 			&dentry->d_sb->s_dentry_lru, &dentry->d_lru));
510 }
511 
512 static void d_lru_del(struct dentry *dentry)
513 {
514 	D_FLAG_VERIFY(dentry, DCACHE_LRU_LIST);
515 	dentry->d_flags &= ~DCACHE_LRU_LIST;
516 	this_cpu_dec(nr_dentry_unused);
517 	if (d_is_negative(dentry))
518 		this_cpu_dec(nr_dentry_negative);
519 	WARN_ON_ONCE(!list_lru_del_obj(
520 			&dentry->d_sb->s_dentry_lru, &dentry->d_lru));
521 }
522 
523 static void d_shrink_del(struct dentry *dentry)
524 {
525 	D_FLAG_VERIFY(dentry, DCACHE_SHRINK_LIST | DCACHE_LRU_LIST);
526 	list_del_init(&dentry->d_lru);
527 	dentry->d_flags &= ~(DCACHE_SHRINK_LIST | DCACHE_LRU_LIST);
528 	this_cpu_dec(nr_dentry_unused);
529 }
530 
531 static void d_shrink_add(struct dentry *dentry, struct list_head *list)
532 {
533 	D_FLAG_VERIFY(dentry, 0);
534 	list_add(&dentry->d_lru, list);
535 	dentry->d_flags |= DCACHE_SHRINK_LIST | DCACHE_LRU_LIST;
536 	this_cpu_inc(nr_dentry_unused);
537 }
538 
539 /*
540  * These can only be called under the global LRU lock, ie during the
541  * callback for freeing the LRU list. "isolate" removes it from the
542  * LRU lists entirely, while shrink_move moves it to the indicated
543  * private list.
544  */
545 static void d_lru_isolate(struct list_lru_one *lru, struct dentry *dentry)
546 {
547 	D_FLAG_VERIFY(dentry, DCACHE_LRU_LIST);
548 	dentry->d_flags &= ~DCACHE_LRU_LIST;
549 	this_cpu_dec(nr_dentry_unused);
550 	if (d_is_negative(dentry))
551 		this_cpu_dec(nr_dentry_negative);
552 	list_lru_isolate(lru, &dentry->d_lru);
553 }
554 
555 static void d_lru_shrink_move(struct list_lru_one *lru, struct dentry *dentry,
556 			      struct list_head *list)
557 {
558 	D_FLAG_VERIFY(dentry, DCACHE_LRU_LIST);
559 	dentry->d_flags |= DCACHE_SHRINK_LIST;
560 	if (d_is_negative(dentry))
561 		this_cpu_dec(nr_dentry_negative);
562 	list_lru_isolate_move(lru, &dentry->d_lru, list);
563 }
564 
565 static void ___d_drop(struct dentry *dentry)
566 {
567 	struct hlist_bl_head *b = d_hash(dentry->d_name.hash);
568 
569 	hlist_bl_lock(b);
570 	__hlist_bl_del(&dentry->d_hash);
571 	hlist_bl_unlock(b);
572 }
573 
574 void __d_drop(struct dentry *dentry)
575 {
576 	if (!d_unhashed(dentry)) {
577 		___d_drop(dentry);
578 		dentry->d_hash.pprev = NULL;
579 		write_seqcount_invalidate(&dentry->d_seq);
580 	}
581 }
582 EXPORT_SYMBOL(__d_drop);
583 
584 /**
585  * d_drop - drop a dentry
586  * @dentry: dentry to drop
587  *
588  * d_drop() unhashes the entry from the parent dentry hashes, so that it won't
589  * be found through a VFS lookup any more. Note that this is different from
590  * deleting the dentry - d_delete will try to mark the dentry negative if
591  * possible, giving a successful _negative_ lookup, while d_drop will
592  * just make the cache lookup fail.
593  *
594  * d_drop() is used mainly for stuff that wants to invalidate a dentry for some
595  * reason (NFS timeouts or autofs deletes).
596  *
597  * __d_drop requires dentry->d_lock
598  *
599  * ___d_drop doesn't mark dentry as "unhashed"
600  * (dentry->d_hash.pprev will be LIST_POISON2, not NULL).
601  */
602 void d_drop(struct dentry *dentry)
603 {
604 	spin_lock(&dentry->d_lock);
605 	__d_drop(dentry);
606 	spin_unlock(&dentry->d_lock);
607 }
608 EXPORT_SYMBOL(d_drop);
609 
610 struct completion_list {
611 	struct completion_list *next;
612 	struct completion completion;
613 };
614 
615 /*
616  *  shrink_dcache_tree() needs to be notified when dentry in process of
617  *  being evicted finally gets unlisted.  Such dentries are
618  *	already with negative ->d_count
619  *	already negative
620  *	already not in in-lookup hash
621  *	reachable only via ->d_sib.
622  *
623  *  Use ->waiters for a single-linked list of struct completion_list of
624  *  waiters.
625  */
626 static inline bool d_add_waiter(struct dentry *dentry, struct completion_list *p)
627 {
628 	if (unlikely(dentry->d_flags & DCACHE_DENTRY_KILLED))
629 		return false;
630 	init_completion(&p->completion);
631 	p->next = dentry->waiters;
632 	dentry->waiters = p;
633 	return true;
634 }
635 
636 static inline void d_complete_waiters(struct dentry *dentry)
637 {
638 	struct completion_list *v = dentry->waiters;
639 	if (unlikely(v)) {
640 		/* some shrink_dcache_tree() instances are waiting */
641 		dentry->waiters = NULL;
642 		while (v) {
643 			struct completion *r = &v->completion;
644 			v = v->next;
645 			complete(r);
646 		}
647 	}
648 }
649 
650 static void unlink_secondary_root(struct dentry *dentry)
651 {
652 	spin_lock(&dentry->d_sb->s_roots_lock);
653 	hlist_del_init(&dentry->d_sib);
654 	spin_unlock(&dentry->d_sb->s_roots_lock);
655 }
656 
657 static inline void dentry_unlist(struct dentry *dentry)
658 {
659 	struct dentry *next;
660 	/*
661 	 * Inform d_walk() and shrink_dentry_list() that we are no longer
662 	 * attached to the dentry tree
663 	 */
664 	dentry->d_flags |= DCACHE_DENTRY_KILLED;
665 	d_complete_waiters(dentry);
666 	if (unlikely(hlist_unhashed(&dentry->d_sib)))
667 		return;
668 	if (unlikely(IS_ROOT(dentry))) {
669 		unlink_secondary_root(dentry); // secondary root goes away
670 		return;
671 	}
672 	__hlist_del(&dentry->d_sib);
673 	/*
674 	 * Cursors can move around the list of children.  While we'd been
675 	 * a normal list member, it didn't matter - ->d_sib.next would've
676 	 * been updated.  However, from now on it won't be and for the
677 	 * things like d_walk() it might end up with a nasty surprise.
678 	 * Normally d_walk() doesn't care about cursors moving around -
679 	 * ->d_lock on parent prevents that and since a cursor has no children
680 	 * of its own, we get through it without ever unlocking the parent.
681 	 * There is one exception, though - if we ascend from a child that
682 	 * gets killed as soon as we unlock it, the next sibling is found
683 	 * using the value left in its ->d_sib.next.  And if _that_
684 	 * pointed to a cursor, and cursor got moved (e.g. by lseek())
685 	 * before d_walk() regains parent->d_lock, we'll end up skipping
686 	 * everything the cursor had been moved past.
687 	 *
688 	 * Solution: make sure that the pointer left behind in ->d_sib.next
689 	 * points to something that won't be moving around.  I.e. skip the
690 	 * cursors.
691 	 */
692 	while (dentry->d_sib.next) {
693 		next = hlist_entry(dentry->d_sib.next, struct dentry, d_sib);
694 		if (likely(!(next->d_flags & DCACHE_DENTRY_CURSOR)))
695 			break;
696 		dentry->d_sib.next = next->d_sib.next;
697 	}
698 }
699 
700 /*
701  * Prepare locking environment for killing a dentry.
702  * Called under dentry->d_lock.  To proceed with eviction of a positive dentry
703  * we need to get ->i_lock of the inode of that dentry as well.
704  * However, ->i_lock nests outside of ->d_lock, so if trylock fails we might
705  * have to drop and regain the latter.  Dentry state can change while its
706  * ->d_lock is not held - it might end up getting killed, becoming busy,
707  * negative, etc., so we need to be careful.
708  *
709  * For NORCU dentries memory safety relies upon having only one call of
710  * lock_for_kill() in the entire lifetime of dentry and dentry_free() being
711  * called only by the caller of lock_for_kill().  That this is NORCU-specific;
712  * the crucial part is that refcounts of NORCU dentries never grow once having
713  * dropped to zero.
714  *
715  * For normal dentries we can not assume that there won't be concurrent calls
716  * of dentry_free() - dentry might end up being evicted by another thread
717  * while we are dropping/retaking locks on the slow path.  Memory safety is
718  * provided by keeping the RCU read-side critical area contiguous with
719  * an explicit rcu_read_lock() scope bridging over the break in spinlock scopes.
720  *
721  * If dentry is busy (or busy dying, or already dead), unlock dentry
722  * and return false.  Otherwise, return true and have that dentry's
723  * inode (if any) locked in addition to dentry itself.
724  */
725 static bool lock_for_kill(struct dentry *dentry)
726 {
727 	struct inode *inode = dentry->d_inode;
728 
729 	if (unlikely(dentry->d_lockref.count)) {
730 		spin_unlock(&dentry->d_lock);
731 		return false;
732 	}
733 
734 	if (!inode || likely(spin_trylock(&inode->i_lock)))
735 		return true;
736 
737 	// Too bad - we need to drop ->d_lock and take locks in correct order.
738 	// To avoid breaking RCU read-side critical area when we drop ->d_lock,
739 	// take an explicit rcu_read_lock() while we are switching locks.
740 	rcu_read_lock();
741 	do {
742 		spin_unlock(&dentry->d_lock);
743 		spin_lock(&inode->i_lock);
744 		spin_lock(&dentry->d_lock);
745 		// make sure we'd locked the right inode - ->d_inode might've
746 		// changed while we were not holding ->d_lock
747 		if (likely(inode == dentry->d_inode))
748 			break;
749 		spin_unlock(&inode->i_lock);
750 		inode = dentry->d_inode;
751 	} while (inode);
752 	rcu_read_unlock();
753 	if (likely(!dentry->d_lockref.count))
754 		return true;
755 	if (inode)
756 		spin_unlock(&inode->i_lock);
757 	spin_unlock(&dentry->d_lock);
758 	return false;
759 }
760 
761 /**
762  * dentry_kill - evict a dentry
763  * @dentry:	dentry to be evicted
764  *
765  * All dentry evictions are done by this function.  The reference we are
766  * passed does not contribute to the refcount; the caller had either
767  * already decremented the refcount or it had never held one in the
768  * first place.  @dentry->d_lock is held by the caller and dropped
769  * by dentry_kill(@dentry).
770  *
771  * We are guaranteed that nobody had called dentry_free(@dentry)
772  * prior to the beginning of RCU read-side critical area we are in.
773  *
774  * Caller must not access @dentry after the call.
775  *
776  * If eviction of @dentry drops the last reference to its parent,
777  * the reference to parent is returned to caller.  In that case
778  * it is guaranteed to satisfy the requirements for dentry_kill()
779  * argument - its ->d_lock is held and we are guaranteed that nobody
780  * had passed it to dentry_free() prior to acquisition of its ->d_lock.
781  * Otherwise %NULL is returned.
782  *
783  * If @dentry is idle and remains such after we assemble the full
784  * locking environment for eviction (see lock_for_kill() for details)
785  * we mark it doomed (->d_lockref.count < 0) and proceed to detaching
786  * it from any filesystem objects.  Otherwise we drop ->d_lock and
787  * return %NULL.
788  *
789  * Once @dentry is detached from the filesystem objects, we complete
790  * detaching it from dentry tree. The parent, if any, gets locked
791  * and its refcount is decremented; dentry is carefully removed from
792  * the tree (see dentry_unlist() for details) and marked killed
793  * (%DCACHE_DENTRY_KILLED set in ->d_flags).  At that point it's just
794  * an inert chunk of memory, accessible only via RCU references
795  * and possibly via a shrink list.  If it is not on any shrink lists,
796  * we call dentry_free(), which schedules actual freeing of memory.
797  * Othewise freeing is left to the owner of the shrink list in question.
798  */
799 static struct dentry *dentry_kill(struct dentry *dentry)
800 {
801 	struct dentry *parent = NULL;
802 	bool can_free = true;
803 
804 	if (unlikely(!lock_for_kill(dentry)))
805 		return NULL;
806 
807 	/*
808 	 * The dentry is now unrecoverably dead to the world.
809 	 */
810 	lockref_mark_dead(&dentry->d_lockref);
811 
812 	/*
813 	 * inform the fs via d_prune that this dentry is about to be
814 	 * unhashed and destroyed.
815 	 */
816 	if (dentry->d_flags & DCACHE_OP_PRUNE)
817 		dentry->d_op->d_prune(dentry);
818 
819 	if (dentry->d_flags & DCACHE_LRU_LIST) {
820 		if (!(dentry->d_flags & DCACHE_SHRINK_LIST))
821 			d_lru_del(dentry);
822 	}
823 	/* if it was on the hash then remove it */
824 	__d_drop(dentry);
825 	if (dentry->d_inode)
826 		dentry_unlink_inode(dentry);
827 	else
828 		spin_unlock(&dentry->d_lock);
829 	this_cpu_dec(nr_dentry);
830 	if (dentry->d_op && dentry->d_op->d_release)
831 		dentry->d_op->d_release(dentry);
832 
833 	cond_resched();
834 	/* now that it's negative, ->d_parent is stable */
835 	if (!IS_ROOT(dentry)) {
836 		parent = dentry->d_parent;
837 		spin_lock(&parent->d_lock);
838 	}
839 	spin_lock_nested(&dentry->d_lock, DENTRY_D_LOCK_NESTED);
840 	dentry_unlist(dentry);
841 	if (dentry->d_flags & DCACHE_SHRINK_LIST)
842 		can_free = false;
843 	spin_unlock(&dentry->d_lock);
844 	if (likely(can_free))
845 		dentry_free(dentry);
846 	if (parent && --parent->d_lockref.count) {
847 		spin_unlock(&parent->d_lock);
848 		return NULL;
849 	}
850 	return parent;
851 }
852 
853 /*
854  * Decide if dentry is worth retaining.  Usually this is called with dentry
855  * locked; if not locked, we are more limited and might not be able to tell
856  * without a lock.  False in this case means "punt to locked path and recheck".
857  *
858  * In case we aren't locked, these predicates are not "stable". However, it is
859  * sufficient that at some point after we dropped the reference the dentry was
860  * hashed and the flags had the proper value. Other dentry users may have
861  * re-gotten a reference to the dentry and change that, but our work is done -
862  * we can leave the dentry around with a zero refcount.
863  */
864 static inline bool retain_dentry(struct dentry *dentry, bool locked)
865 {
866 	unsigned int d_flags;
867 
868 	smp_rmb();
869 	d_flags = READ_ONCE(dentry->d_flags);
870 
871 	// Unreachable? Nobody would be able to look it up, no point retaining
872 	if (unlikely(d_unhashed(dentry)))
873 		return false;
874 
875 	// Same if it's disconnected
876 	if (unlikely(d_flags & DCACHE_DISCONNECTED))
877 		return false;
878 
879 	// ->d_delete() might tell us not to bother, but that requires
880 	// ->d_lock; can't decide without it
881 	if (unlikely(d_flags & DCACHE_OP_DELETE)) {
882 		if (!locked || dentry->d_op->d_delete(dentry))
883 			return false;
884 	}
885 
886 	// Explicitly told not to bother
887 	if (unlikely(d_flags & DCACHE_DONTCACHE))
888 		return false;
889 
890 	// At this point it looks like we ought to keep it.  We also might
891 	// need to do something - put it on LRU if it wasn't there already
892 	// and mark it referenced if it was on LRU, but not marked yet.
893 	// Unfortunately, both actions require ->d_lock, so in lockless
894 	// case we'd have to punt rather than doing those.
895 	if (unlikely(!(d_flags & DCACHE_LRU_LIST))) {
896 		if (!locked)
897 			return false;
898 		d_lru_add(dentry);
899 	} else if (unlikely(!(d_flags & DCACHE_REFERENCED))) {
900 		if (!locked)
901 			return false;
902 		dentry->d_flags |= DCACHE_REFERENCED;
903 	}
904 	return true;
905 }
906 
907 void d_mark_dontcache(struct inode *inode)
908 {
909 	struct dentry *de;
910 
911 	spin_lock(&inode->i_lock);
912 	for_each_alias(de, inode) {
913 		spin_lock(&de->d_lock);
914 		de->d_flags |= DCACHE_DONTCACHE;
915 		spin_unlock(&de->d_lock);
916 	}
917 	inode_state_set(inode, I_DONTCACHE);
918 	spin_unlock(&inode->i_lock);
919 }
920 EXPORT_SYMBOL(d_mark_dontcache);
921 
922 /*
923  * Try to do a lockless dput(), and return whether that was successful.
924  *
925  * If unsuccessful, we return false, having already taken the dentry lock.
926  * In that case refcount is guaranteed to be zero and we have already
927  * decided that it's not worth keeping around.
928  */
929 static inline bool fast_dput(struct dentry *dentry)
930 {
931 	int ret;
932 
933 	/*
934 	 * Try to decrement the lockref optimistically.
935 	 * RCU read lock held so that dentry is guaranteed to stay around
936 	 * even if the refcount goes down to zero.
937 	 */
938 	rcu_read_lock();
939 	ret = lockref_put_return(&dentry->d_lockref);
940 
941 	/*
942 	 * If the lockref_put_return() failed due to the lock being held
943 	 * by somebody else, the fast path has failed. We will need to
944 	 * get the lock, and then check the count again.
945 	 */
946 	if (unlikely(ret < 0)) {
947 		spin_lock(&dentry->d_lock);
948 		rcu_read_unlock();
949 		if (WARN_ON_ONCE(dentry->d_lockref.count <= 0)) {
950 			spin_unlock(&dentry->d_lock);
951 			return true;
952 		}
953 		dentry->d_lockref.count--;
954 		goto locked;
955 	}
956 
957 	/*
958 	 * If we weren't the last ref, we're done.
959 	 */
960 	if (ret) {
961 		rcu_read_unlock();
962 		return true;
963 	}
964 
965 	/*
966 	 * Can we decide that decrement of refcount is all we needed without
967 	 * taking the lock?  There's a very common case when it's all we need -
968 	 * dentry looks like it ought to be retained and there's nothing else
969 	 * to do.
970 	 */
971 	if (retain_dentry(dentry, false)) {
972 		rcu_read_unlock();
973 		return true;
974 	}
975 
976 	/*
977 	 * Either not worth retaining or we can't tell without the lock.
978 	 * Get the lock, then.  We've already decremented the refcount to 0,
979 	 * but we'll need to re-check the situation after getting the lock.
980 	 */
981 	spin_lock(&dentry->d_lock);
982 	rcu_read_unlock();
983 
984 	/*
985 	 * Did somebody else grab a reference to it in the meantime, and
986 	 * we're no longer the last user after all? Alternatively, somebody
987 	 * else could have killed it and marked it dead. Either way, we
988 	 * don't need to do anything else.
989 	 */
990 locked:
991 	if (dentry->d_lockref.count || retain_dentry(dentry, true)) {
992 		spin_unlock(&dentry->d_lock);
993 		return true;
994 	}
995 	return false;
996 }
997 
998 static void finish_dput(struct dentry *dentry)
999 	__releases(dentry->d_lock)
1000 {
1001 	while ((dentry = dentry_kill(dentry)) != NULL) {
1002 		if (retain_dentry(dentry, true)) {
1003 			spin_unlock(&dentry->d_lock);
1004 			return;
1005 		}
1006 	}
1007 }
1008 
1009 /*
1010  * This is dput
1011  *
1012  * This is complicated by the fact that we do not want to put
1013  * dentries that are no longer on any hash chain on the unused
1014  * list: we'd much rather just get rid of them immediately.
1015  *
1016  * However, that implies that we have to traverse the dentry
1017  * tree upwards to the parents which might _also_ now be
1018  * scheduled for deletion (it may have been only waiting for
1019  * its last child to go away).
1020  *
1021  * This tail recursion is done by hand as we don't want to depend
1022  * on the compiler to always get this right (gcc generally doesn't).
1023  * Real recursion would eat up our stack space.
1024  */
1025 
1026 /*
1027  * dput - release a dentry
1028  * @dentry: dentry to release
1029  *
1030  * Release a dentry. This will drop the usage count and if appropriate
1031  * call the dentry unlink method as well as removing it from the queues and
1032  * releasing its resources. If the parent dentries were scheduled for release
1033  * they too may now get deleted.
1034  */
1035 void dput(struct dentry *dentry)
1036 {
1037 	if (!dentry)
1038 		return;
1039 	might_sleep();
1040 	if (likely(fast_dput(dentry)))
1041 		return;
1042 	finish_dput(dentry);
1043 }
1044 EXPORT_SYMBOL(dput);
1045 
1046 void d_make_discardable(struct dentry *dentry)
1047 {
1048 	spin_lock(&dentry->d_lock);
1049 	WARN_ON(!(dentry->d_flags & DCACHE_PERSISTENT));
1050 	dentry->d_flags &= ~DCACHE_PERSISTENT;
1051 	dentry->d_lockref.count--;
1052 	finish_dput(dentry);
1053 }
1054 EXPORT_SYMBOL(d_make_discardable);
1055 
1056 /**
1057  * __move_to_shrink_list - try to place a dentry into a shrink list
1058  * @dentry:	dentry to try putting into shrink list
1059  * @list:	the list to put @dentry into.
1060  * Returns:	true @dentry had been placed into @list, false otherwise
1061  *
1062  * If @dentry is idle and not already include into a shrink list, move
1063  * it into @list and return %true; otherwise do nothing and return %false.
1064  *
1065  * Caller must be holding @dentry->d_lock.  There must have been no calls of
1066  * dentry_free(@dentry) prior to the beginning of the RCU read-side critical
1067  * area in which __move_to_shrink_list(@dentry, @list) is called.
1068  *
1069  * @list should be thread-private and eventually emptied by passing it to
1070  * shrink_dentry_list().
1071  */
1072 
1073 bool __move_to_shrink_list(struct dentry *dentry, struct list_head *list)
1074 __must_hold(&dentry->d_lock)
1075 {
1076 	if (likely(!dentry->d_lockref.count &&
1077 	    !(dentry->d_flags & DCACHE_SHRINK_LIST))) {
1078 		if (dentry->d_flags & DCACHE_LRU_LIST)
1079 			d_lru_del(dentry);
1080 		d_shrink_add(dentry, list);
1081 		return true;
1082 	}
1083 	return false;
1084 }
1085 EXPORT_SYMBOL(__move_to_shrink_list);
1086 
1087 void dput_to_list(struct dentry *dentry, struct list_head *list)
1088 {
1089 	if (likely(fast_dput(dentry)))
1090 		return;
1091 	__move_to_shrink_list(dentry, list);
1092 	spin_unlock(&dentry->d_lock);
1093 }
1094 
1095 struct dentry *dget_parent(struct dentry *dentry)
1096 {
1097 	int gotref;
1098 	struct dentry *ret;
1099 	unsigned seq;
1100 
1101 	/*
1102 	 * Do optimistic parent lookup without any
1103 	 * locking.
1104 	 */
1105 	rcu_read_lock();
1106 	seq = raw_seqcount_begin(&dentry->d_seq);
1107 	ret = READ_ONCE(dentry->d_parent);
1108 	gotref = lockref_get_not_zero(&ret->d_lockref);
1109 	rcu_read_unlock();
1110 	if (likely(gotref)) {
1111 		if (!read_seqcount_retry(&dentry->d_seq, seq))
1112 			return ret;
1113 		dput(ret);
1114 	}
1115 
1116 repeat:
1117 	/*
1118 	 * Don't need rcu_dereference because we re-check it was correct under
1119 	 * the lock.
1120 	 */
1121 	rcu_read_lock();
1122 	ret = dentry->d_parent;
1123 	spin_lock(&ret->d_lock);
1124 	if (unlikely(ret != dentry->d_parent)) {
1125 		spin_unlock(&ret->d_lock);
1126 		rcu_read_unlock();
1127 		goto repeat;
1128 	}
1129 	rcu_read_unlock();
1130 	BUG_ON(!ret->d_lockref.count);
1131 	ret->d_lockref.count++;
1132 	spin_unlock(&ret->d_lock);
1133 	return ret;
1134 }
1135 EXPORT_SYMBOL(dget_parent);
1136 
1137 /*
1138  * inode is a directory, inode->i_lock is held by the caller
1139  */
1140 static struct dentry * __d_find_dir_alias(struct inode *inode)
1141 {
1142 	struct dentry *alias;
1143 
1144 	if (hlist_empty(&inode->i_dentry))
1145 		return NULL;
1146 	alias = hlist_entry(inode->i_dentry.first, struct dentry, d_alias);
1147 	lockref_get(&alias->d_lockref);
1148 	return alias;
1149 }
1150 
1151 static struct dentry * __d_find_any_alias(struct inode *inode)
1152 {
1153 	struct dentry *alias;
1154 
1155 	if (hlist_empty(&inode->i_dentry))
1156 		return NULL;
1157 	for_each_alias(alias, inode)
1158 		if (dget_alias_ilocked(alias))
1159 			return alias;
1160 	return NULL;
1161 }
1162 
1163 /**
1164  * d_find_any_alias - find any alias for a given inode
1165  * @inode: inode to find an alias for
1166  *
1167  * If any aliases exist for the given inode, take and return a
1168  * reference for one of them.  If no aliases exist, return %NULL.
1169  */
1170 struct dentry *d_find_any_alias(struct inode *inode)
1171 {
1172 	struct dentry *de;
1173 
1174 	spin_lock(&inode->i_lock);
1175 	de = __d_find_any_alias(inode);
1176 	spin_unlock(&inode->i_lock);
1177 	return de;
1178 }
1179 EXPORT_SYMBOL(d_find_any_alias);
1180 
1181 static struct dentry *__d_find_alias(struct inode *inode)
1182 {
1183 	struct dentry *alias;
1184 
1185 	if (S_ISDIR(inode->i_mode))
1186 		return __d_find_dir_alias(inode);
1187 
1188 	for_each_alias(alias, inode) {
1189 		spin_lock(&alias->d_lock);
1190  		if (!d_unhashed(alias)) {
1191 			dget_dlock(alias);
1192 			spin_unlock(&alias->d_lock);
1193 			return alias;
1194 		}
1195 		spin_unlock(&alias->d_lock);
1196 	}
1197 	return NULL;
1198 }
1199 
1200 /**
1201  * d_find_alias - grab a hashed alias of inode
1202  * @inode: inode in question
1203  *
1204  * If inode has a hashed alias, or is a directory and has any alias,
1205  * acquire the reference to alias and return it. Otherwise return NULL.
1206  * Notice that if inode is a directory there can be only one alias and
1207  * it can be unhashed only if it has no children, or if it is the root
1208  * of a filesystem, or if the directory was renamed and d_revalidate
1209  * was the first vfs operation to notice.
1210  *
1211  * If the inode has an IS_ROOT, DCACHE_DISCONNECTED alias, then prefer
1212  * any other hashed alias over that one.
1213  */
1214 struct dentry *d_find_alias(struct inode *inode)
1215 {
1216 	struct dentry *de = NULL;
1217 
1218 	if (!hlist_empty(&inode->i_dentry)) {
1219 		spin_lock(&inode->i_lock);
1220 		de = __d_find_alias(inode);
1221 		spin_unlock(&inode->i_lock);
1222 	}
1223 	return de;
1224 }
1225 EXPORT_SYMBOL(d_find_alias);
1226 
1227 /*
1228  *  Caller MUST be holding rcu_read_lock() and be guaranteed
1229  *  that inode won't get freed until rcu_read_unlock().
1230  */
1231 struct dentry *d_find_alias_rcu(struct inode *inode)
1232 {
1233 	struct hlist_head *l = &inode->i_dentry;
1234 	struct dentry *de = NULL;
1235 
1236 	spin_lock(&inode->i_lock);
1237 	// ->i_dentry and ->i_rcu are colocated, but the latter won't be
1238 	// used without having I_FREEING set, which means no aliases left
1239 	if (likely(!(inode_state_read(inode) & I_FREEING) && !hlist_empty(l))) {
1240 		if (S_ISDIR(inode->i_mode)) {
1241 			de = hlist_entry(l->first, struct dentry, d_alias);
1242 		} else {
1243 			hlist_for_each_entry(de, l, d_alias)
1244 				if (!d_unhashed(de))
1245 					break;
1246 		}
1247 	}
1248 	spin_unlock(&inode->i_lock);
1249 	return de;
1250 }
1251 
1252 /*
1253  *	Try to kill dentries associated with this inode.
1254  * WARNING: you must own a reference to inode.
1255  */
1256 void d_prune_aliases(struct inode *inode)
1257 {
1258 	LIST_HEAD(dispose);
1259 	struct dentry *dentry;
1260 
1261 	spin_lock(&inode->i_lock);
1262 	for_each_alias(dentry, inode) {
1263 		spin_lock(&dentry->d_lock);
1264 		if (likely(!(dentry->d_flags & DCACHE_NORCU)))
1265 			__move_to_shrink_list(dentry, &dispose);
1266 		spin_unlock(&dentry->d_lock);
1267 	}
1268 	spin_unlock(&inode->i_lock);
1269 	shrink_dentry_list(&dispose);
1270 }
1271 EXPORT_SYMBOL(d_prune_aliases);
1272 
1273 static inline void shrink_kill(struct dentry *victim)
1274 {
1275 	while ((victim = dentry_kill(victim)) != NULL)
1276 		;
1277 }
1278 
1279 void shrink_dentry_list(struct list_head *list)
1280 {
1281 	while (!list_empty(list)) {
1282 		struct dentry *dentry;
1283 
1284 		dentry = list_entry(list->prev, struct dentry, d_lru);
1285 		spin_lock(&dentry->d_lock);
1286 		d_shrink_del(dentry);
1287 		if (unlikely(dentry->d_flags & DCACHE_DENTRY_KILLED)) {
1288 			spin_unlock(&dentry->d_lock);
1289 			dentry_free(dentry);
1290 			continue;
1291 		}
1292 		shrink_kill(dentry);
1293 	}
1294 }
1295 EXPORT_SYMBOL(shrink_dentry_list);
1296 
1297 static enum lru_status dentry_lru_isolate(struct list_head *item,
1298 		struct list_lru_one *lru, void *arg)
1299 {
1300 	struct list_head *freeable = arg;
1301 	struct dentry	*dentry = container_of(item, struct dentry, d_lru);
1302 
1303 
1304 	/*
1305 	 * we are inverting the lru lock/dentry->d_lock here,
1306 	 * so use a trylock. If we fail to get the lock, just skip
1307 	 * it
1308 	 */
1309 	if (!spin_trylock(&dentry->d_lock))
1310 		return LRU_SKIP;
1311 
1312 	/*
1313 	 * Referenced dentries are still in use. If they have active
1314 	 * counts, just remove them from the LRU. Otherwise give them
1315 	 * another pass through the LRU.
1316 	 */
1317 	if (dentry->d_lockref.count) {
1318 		d_lru_isolate(lru, dentry);
1319 		spin_unlock(&dentry->d_lock);
1320 		return LRU_REMOVED;
1321 	}
1322 
1323 	if (dentry->d_flags & DCACHE_REFERENCED) {
1324 		dentry->d_flags &= ~DCACHE_REFERENCED;
1325 		spin_unlock(&dentry->d_lock);
1326 
1327 		/*
1328 		 * The list move itself will be made by the common LRU code. At
1329 		 * this point, we've dropped the dentry->d_lock but keep the
1330 		 * lru lock. This is safe to do, since every list movement is
1331 		 * protected by the lru lock even if both locks are held.
1332 		 *
1333 		 * This is guaranteed by the fact that all LRU management
1334 		 * functions are intermediated by the LRU API calls like
1335 		 * list_lru_add_obj and list_lru_del_obj. List movement in this file
1336 		 * only ever occur through this functions or through callbacks
1337 		 * like this one, that are called from the LRU API.
1338 		 *
1339 		 * The only exceptions to this are functions like
1340 		 * shrink_dentry_list, and code that first checks for the
1341 		 * DCACHE_SHRINK_LIST flag.  Those are guaranteed to be
1342 		 * operating only with stack provided lists after they are
1343 		 * properly isolated from the main list.  It is thus, always a
1344 		 * local access.
1345 		 */
1346 		return LRU_ROTATE;
1347 	}
1348 
1349 	d_lru_shrink_move(lru, dentry, freeable);
1350 	spin_unlock(&dentry->d_lock);
1351 
1352 	return LRU_REMOVED;
1353 }
1354 
1355 /**
1356  * prune_dcache_sb - shrink the dcache
1357  * @sb: superblock
1358  * @sc: shrink control, passed to list_lru_shrink_walk()
1359  *
1360  * Attempt to shrink the superblock dcache LRU by @sc->nr_to_scan entries. This
1361  * is done when we need more memory and called from the superblock shrinker
1362  * function.
1363  *
1364  * This function may fail to free any resources if all the dentries are in
1365  * use.
1366  */
1367 long prune_dcache_sb(struct super_block *sb, struct shrink_control *sc)
1368 {
1369 	LIST_HEAD(dispose);
1370 	long freed;
1371 
1372 	freed = list_lru_shrink_walk(&sb->s_dentry_lru, sc,
1373 				     dentry_lru_isolate, &dispose);
1374 	shrink_dentry_list(&dispose);
1375 	return freed;
1376 }
1377 
1378 static enum lru_status dentry_lru_isolate_shrink(struct list_head *item,
1379 		struct list_lru_one *lru, void *arg)
1380 {
1381 	struct list_head *freeable = arg;
1382 	struct dentry	*dentry = container_of(item, struct dentry, d_lru);
1383 
1384 	/*
1385 	 * we are inverting the lru lock/dentry->d_lock here,
1386 	 * so use a trylock. If we fail to get the lock, just skip
1387 	 * it
1388 	 */
1389 	if (!spin_trylock(&dentry->d_lock))
1390 		return LRU_SKIP;
1391 
1392 	d_lru_shrink_move(lru, dentry, freeable);
1393 	spin_unlock(&dentry->d_lock);
1394 
1395 	return LRU_REMOVED;
1396 }
1397 
1398 
1399 /**
1400  * shrink_dcache_sb - shrink dcache for a superblock
1401  * @sb: superblock
1402  *
1403  * Shrink the dcache for the specified super block. This is used to free
1404  * the dcache before unmounting a file system.
1405  */
1406 void shrink_dcache_sb(struct super_block *sb)
1407 {
1408 	do {
1409 		LIST_HEAD(dispose);
1410 
1411 		list_lru_walk(&sb->s_dentry_lru,
1412 			dentry_lru_isolate_shrink, &dispose, 1024);
1413 		shrink_dentry_list(&dispose);
1414 	} while (list_lru_count(&sb->s_dentry_lru) > 0);
1415 }
1416 EXPORT_SYMBOL(shrink_dcache_sb);
1417 
1418 /**
1419  * enum d_walk_ret - action to take during tree walk
1420  * @D_WALK_CONTINUE:	continue walk
1421  * @D_WALK_QUIT:	quit walk
1422  * @D_WALK_NORETRY:	quit when retry is needed
1423  * @D_WALK_SKIP:	skip this dentry and its children
1424  */
1425 enum d_walk_ret {
1426 	D_WALK_CONTINUE,
1427 	D_WALK_QUIT,
1428 	D_WALK_NORETRY,
1429 	D_WALK_SKIP,
1430 };
1431 
1432 /**
1433  * d_walk - walk the dentry tree
1434  * @parent:	start of walk
1435  * @data:	data passed to @enter() and @finish()
1436  * @enter:	callback when first entering the dentry
1437  *
1438  * The @enter() callbacks are called with d_lock held.
1439  */
1440 static void d_walk(struct dentry *parent, void *data,
1441 		   enum d_walk_ret (*enter)(void *, struct dentry *))
1442 {
1443 	struct dentry *this_parent, *dentry;
1444 	unsigned seq = 0;
1445 	enum d_walk_ret ret;
1446 	bool retry = true;
1447 
1448 again:
1449 	read_seqbegin_or_lock(&rename_lock, &seq);
1450 	this_parent = parent;
1451 	spin_lock(&this_parent->d_lock);
1452 	if (unlikely(this_parent->d_flags & DCACHE_DENTRY_CURSOR))
1453 		goto out_unlock;
1454 
1455 	ret = enter(data, this_parent);
1456 	switch (ret) {
1457 	case D_WALK_CONTINUE:
1458 		break;
1459 	case D_WALK_QUIT:
1460 	case D_WALK_SKIP:
1461 		goto out_unlock;
1462 	case D_WALK_NORETRY:
1463 		retry = false;
1464 		break;
1465 	}
1466 repeat:
1467 	dentry = d_first_child(this_parent);
1468 resume:
1469 	hlist_for_each_entry_from(dentry, d_sib) {
1470 		if (unlikely(dentry->d_flags & DCACHE_DENTRY_CURSOR))
1471 			continue;
1472 
1473 		spin_lock_nested(&dentry->d_lock, DENTRY_D_LOCK_NESTED);
1474 
1475 		ret = enter(data, dentry);
1476 		switch (ret) {
1477 		case D_WALK_CONTINUE:
1478 			break;
1479 		case D_WALK_QUIT:
1480 			spin_unlock(&dentry->d_lock);
1481 			goto out_unlock;
1482 		case D_WALK_NORETRY:
1483 			retry = false;
1484 			break;
1485 		case D_WALK_SKIP:
1486 			spin_unlock(&dentry->d_lock);
1487 			continue;
1488 		}
1489 
1490 		if (!hlist_empty(&dentry->d_children)) {
1491 			spin_unlock(&this_parent->d_lock);
1492 			spin_release(&dentry->d_lock.dep_map, _RET_IP_);
1493 			this_parent = dentry;
1494 			spin_acquire(&this_parent->d_lock.dep_map, 0, 1, _RET_IP_);
1495 			goto repeat;
1496 		}
1497 		spin_unlock(&dentry->d_lock);
1498 	}
1499 	/*
1500 	 * All done at this level ... ascend and resume the search.
1501 	 */
1502 ascend:
1503 	if (this_parent != parent) {
1504 		dentry = this_parent;
1505 		this_parent = dentry->d_parent;
1506 
1507 		rcu_read_lock();
1508 		spin_unlock(&dentry->d_lock);
1509 		spin_lock(&this_parent->d_lock);
1510 		rcu_read_unlock();
1511 
1512 		/* might go back up the wrong parent if we have had a rename. */
1513 		if (need_seqretry(&rename_lock, seq))
1514 			goto rename_retry;
1515 		/* go into the first sibling still alive */
1516 		hlist_for_each_entry_continue(dentry, d_sib) {
1517 			if (likely(!(dentry->d_flags & DCACHE_DENTRY_KILLED))) {
1518 				goto resume;
1519 			}
1520 		}
1521 		goto ascend;
1522 	}
1523 	if (need_seqretry(&rename_lock, seq))
1524 		goto rename_retry;
1525 
1526 out_unlock:
1527 	spin_unlock(&this_parent->d_lock);
1528 	done_seqretry(&rename_lock, seq);
1529 	return;
1530 
1531 rename_retry:
1532 	spin_unlock(&this_parent->d_lock);
1533 	BUG_ON(seq & 1);
1534 	if (!retry)
1535 		return;
1536 	seq = 1;
1537 	goto again;
1538 }
1539 
1540 struct check_mount {
1541 	struct vfsmount *mnt;
1542 	unsigned int mounted;
1543 };
1544 
1545 /* locks: mount_locked_reader && dentry->d_lock */
1546 static enum d_walk_ret path_check_mount(void *data, struct dentry *dentry)
1547 {
1548 	struct check_mount *info = data;
1549 	struct path path = { .mnt = info->mnt, .dentry = dentry };
1550 
1551 	if (likely(!d_mountpoint(dentry)))
1552 		return D_WALK_CONTINUE;
1553 	if (__path_is_mountpoint(&path)) {
1554 		info->mounted = 1;
1555 		return D_WALK_QUIT;
1556 	}
1557 	return D_WALK_CONTINUE;
1558 }
1559 
1560 /**
1561  * path_has_submounts - check for mounts over a dentry in the
1562  *                      current namespace.
1563  * @parent: path to check.
1564  *
1565  * Return true if the parent or its subdirectories contain
1566  * a mount point in the current namespace.
1567  */
1568 int path_has_submounts(const struct path *parent)
1569 {
1570 	struct check_mount data = { .mnt = parent->mnt, .mounted = 0 };
1571 
1572 	guard(mount_locked_reader)();
1573 	d_walk(parent->dentry, &data, path_check_mount);
1574 
1575 	return data.mounted;
1576 }
1577 EXPORT_SYMBOL(path_has_submounts);
1578 
1579 /*
1580  * Called by mount code to set a mountpoint and check if the mountpoint is
1581  * reachable (e.g. NFS can unhash a directory dentry and then the complete
1582  * subtree can become unreachable).
1583  *
1584  * Only one of d_invalidate() and d_set_mounted() must succeed.  For
1585  * this reason take rename_lock and d_lock on dentry and ancestors.
1586  */
1587 int d_set_mounted(struct dentry *dentry)
1588 {
1589 	struct dentry *p;
1590 	int ret = -ENOENT;
1591 	read_seqlock_excl(&rename_lock);
1592 	for (p = dentry->d_parent; !IS_ROOT(p); p = p->d_parent) {
1593 		/* Need exclusion wrt. d_invalidate() */
1594 		spin_lock(&p->d_lock);
1595 		if (unlikely(d_unhashed(p))) {
1596 			spin_unlock(&p->d_lock);
1597 			goto out;
1598 		}
1599 		spin_unlock(&p->d_lock);
1600 	}
1601 	spin_lock(&dentry->d_lock);
1602 	if (!d_unlinked(dentry)) {
1603 		ret = -EBUSY;
1604 		if (!d_mountpoint(dentry)) {
1605 			dentry->d_flags |= DCACHE_MOUNTED;
1606 			ret = 0;
1607 		}
1608 	}
1609  	spin_unlock(&dentry->d_lock);
1610 out:
1611 	read_sequnlock_excl(&rename_lock);
1612 	return ret;
1613 }
1614 
1615 /*
1616  * Search the dentry child list of the specified parent,
1617  * and move any unused dentries to the end of the unused
1618  * list for prune_dcache(). We descend to the next level
1619  * whenever the d_children list is non-empty and continue
1620  * searching.
1621  *
1622  * It returns zero iff there are no unused children,
1623  * otherwise  it returns the number of children moved to
1624  * the end of the unused list. This may not be the total
1625  * number of unused children, because select_parent can
1626  * drop the lock and return early due to latency
1627  * constraints.
1628  */
1629 
1630 struct select_data {
1631 	struct dentry *start;
1632 	union {
1633 		long found;
1634 		struct dentry *victim;
1635 	};
1636 	struct list_head dispose;
1637 };
1638 
1639 static enum d_walk_ret select_collect(void *_data, struct dentry *dentry)
1640 {
1641 	struct select_data *data = _data;
1642 	enum d_walk_ret ret = D_WALK_CONTINUE;
1643 
1644 	if (data->start == dentry)
1645 		goto out;
1646 
1647 	if (dentry->d_lockref.count <= 0) {
1648 		__move_to_shrink_list(dentry, &data->dispose);
1649 		data->found++;
1650 	}
1651 	/*
1652 	 * We can return to the caller if we have found some (this
1653 	 * ensures forward progress). We'll be coming back to find
1654 	 * the rest.
1655 	 */
1656 	if (!list_empty(&data->dispose))
1657 		ret = need_resched() ? D_WALK_QUIT : D_WALK_NORETRY;
1658 out:
1659 	return ret;
1660 }
1661 
1662 static enum d_walk_ret select_collect_umount(void *_data, struct dentry *dentry)
1663 {
1664 	if (dentry->d_flags & DCACHE_PERSISTENT) {
1665 		dentry->d_flags &= ~DCACHE_PERSISTENT;
1666 		dentry->d_lockref.count--;
1667 	}
1668 	return select_collect(_data, dentry);
1669 }
1670 
1671 static enum d_walk_ret select_collect2(void *_data, struct dentry *dentry)
1672 {
1673 	struct select_data *data = _data;
1674 	enum d_walk_ret ret = D_WALK_CONTINUE;
1675 
1676 	if (data->start == dentry)
1677 		goto out;
1678 
1679 	if (dentry->d_lockref.count <= 0) {
1680 		if (!__move_to_shrink_list(dentry, &data->dispose)) {
1681 			/*
1682 			 * We need an enter RCU read-side critical area that
1683 			 * would extend past the return from d_walk() and
1684 			 * we are in the scope of ->d_lock that will terminate
1685 			 * before that, so we use rcu_read_lock() to bridge
1686 			 * over to the scope of ->d_lock in d_walk() caller.
1687 			 * The scope of rcu_read_lock() spans from here to
1688 			 * paired rcu_read_unlock() in shrink_dcache_tree().
1689 			 */
1690 			rcu_read_lock();
1691 			data->victim = dentry;
1692 			return D_WALK_QUIT;
1693 		}
1694 	}
1695 	/*
1696 	 * We can return to the caller if we have found some (this
1697 	 * ensures forward progress). We'll be coming back to find
1698 	 * the rest.
1699 	 */
1700 	if (!list_empty(&data->dispose))
1701 		ret = need_resched() ? D_WALK_QUIT : D_WALK_NORETRY;
1702 out:
1703 	return ret;
1704 }
1705 
1706 /**
1707  * shrink_dcache_tree - prune dcache
1708  * @parent: parent of entries to prune
1709  * @for_umount: true if we want to unpin the persistent ones
1710  *
1711  * Prune the dcache to remove unused children of the parent dentry.
1712  */
1713 static void shrink_dcache_tree(struct dentry *parent, bool for_umount)
1714 {
1715 	for (;;) {
1716 		struct completion_list wait;
1717 		bool need_wait = false;
1718 		struct select_data data = { .start = parent };
1719 
1720 		INIT_LIST_HEAD(&data.dispose);
1721 		d_walk(parent, &data,
1722 			for_umount ? select_collect_umount : select_collect);
1723 
1724 		if (!list_empty(&data.dispose)) {
1725 			shrink_dentry_list(&data.dispose);
1726 			continue;
1727 		}
1728 
1729 		cond_resched();
1730 		if (!data.found)
1731 			break;
1732 		data.victim = NULL;
1733 		d_walk(parent, &data, select_collect2);
1734 		if (data.victim) {
1735 			struct dentry *v = data.victim;
1736 			/*
1737 			 * select_collect2() has picked a dentry that was
1738 			 * either dying or on a shrink list and arranged
1739 			 * for it to be returned to us.  We are still in
1740 			 * the RCU read-side critical area started there
1741 			 * (rcu_read_lock() scope opened in select_collect2()),
1742 			 * so dentry couldn't have been freed yet, but its
1743 			 * state might've changed since we dropped ->d_lock
1744 			 * on the way out.  Switch over to ->d_lock scope
1745 			 * and recheck the dentry state.
1746 			 */
1747 			spin_lock(&v->d_lock);
1748 			rcu_read_unlock();
1749 
1750 			if (unlikely(v->d_lockref.count < 0)) {
1751 				// It's doomed; if it isn't dead yet, notify us
1752 				// once it becomes invisible to d_walk().
1753 				need_wait = d_add_waiter(v, &wait);
1754 				spin_unlock(&v->d_lock);
1755 			} else {
1756 				shrink_kill(v);
1757 			}
1758 		}
1759 		shrink_dentry_list(&data.dispose);
1760 		if (unlikely(need_wait))
1761 			wait_for_completion(&wait.completion);
1762 	}
1763 }
1764 
1765 void shrink_dcache_parent(struct dentry *parent)
1766 {
1767 	shrink_dcache_tree(parent, false);
1768 }
1769 EXPORT_SYMBOL(shrink_dcache_parent);
1770 
1771 static enum d_walk_ret umount_check(void *_data, struct dentry *dentry)
1772 {
1773 	/* it has busy descendents; complain about those instead */
1774 	if (!hlist_empty(&dentry->d_children))
1775 		return D_WALK_CONTINUE;
1776 
1777 	/* root with refcount 1 is fine */
1778 	if (dentry == _data && dentry->d_lockref.count == 1)
1779 		return D_WALK_CONTINUE;
1780 
1781 	WARN(1, "BUG: Dentry %p{i=%llx,n=%pd} "
1782 			" still in use (%d) [unmount of %s %s]\n",
1783 		       dentry,
1784 		       dentry->d_inode ?
1785 		       dentry->d_inode->i_ino : (u64)0,
1786 		       dentry,
1787 		       dentry->d_lockref.count,
1788 		       dentry->d_sb->s_type->name,
1789 		       dentry->d_sb->s_id);
1790 	return D_WALK_CONTINUE;
1791 }
1792 
1793 static void do_one_tree(struct dentry *dentry)
1794 {
1795 	shrink_dcache_tree(dentry, true);
1796 	d_walk(dentry, dentry, umount_check);
1797 	d_drop(dentry);
1798 	dput(dentry);
1799 }
1800 
1801 /*
1802  * destroy the dentries attached to a superblock on unmounting
1803  */
1804 void shrink_dcache_for_umount(struct super_block *sb)
1805 {
1806 	struct dentry *dentry;
1807 
1808 	rwsem_assert_held_write(&sb->s_umount);
1809 
1810 	dentry = sb->s_root;
1811 	sb->s_root = NULL;
1812 	do_one_tree(dentry);
1813 
1814 	for (;;) {
1815 		spin_lock(&sb->s_roots_lock);
1816 		dentry = hlist_entry_safe(sb->s_roots.first,
1817 					  struct dentry, d_sib);
1818 		if (!dentry) {
1819 			spin_unlock(&sb->s_roots_lock);
1820 			break;
1821 		}
1822 		rcu_read_lock();
1823 		spin_unlock(&sb->s_roots_lock);
1824 		spin_lock(&dentry->d_lock);
1825 		rcu_read_unlock();
1826 		if (unlikely(dentry->d_lockref.count < 0)) {
1827 			struct completion_list wait;
1828 			bool need_wait = d_add_waiter(dentry, &wait);
1829 
1830 			spin_unlock(&dentry->d_lock);
1831 			if (need_wait)
1832 				wait_for_completion(&wait.completion);
1833 		} else {
1834 			dget_dlock(dentry);
1835 			spin_unlock(&dentry->d_lock);
1836 			do_one_tree(dentry);
1837 		}
1838 	}
1839 }
1840 
1841 static enum d_walk_ret find_submount(void *_data, struct dentry *dentry)
1842 {
1843 	struct dentry **victim = _data;
1844 	if (d_mountpoint(dentry)) {
1845 		*victim = dget_dlock(dentry);
1846 		return D_WALK_QUIT;
1847 	}
1848 	return D_WALK_CONTINUE;
1849 }
1850 
1851 /**
1852  * d_invalidate - detach submounts, prune dcache, and drop
1853  * @dentry: dentry to invalidate (aka detach, prune and drop)
1854  */
1855 void d_invalidate(struct dentry *dentry)
1856 {
1857 	bool had_submounts = false;
1858 	spin_lock(&dentry->d_lock);
1859 	if (d_unhashed(dentry)) {
1860 		spin_unlock(&dentry->d_lock);
1861 		return;
1862 	}
1863 	__d_drop(dentry);
1864 	spin_unlock(&dentry->d_lock);
1865 
1866 	/* Negative dentries can be dropped without further checks */
1867 	if (!dentry->d_inode)
1868 		return;
1869 
1870 	shrink_dcache_parent(dentry);
1871 	for (;;) {
1872 		struct dentry *victim = NULL;
1873 		d_walk(dentry, &victim, find_submount);
1874 		if (!victim) {
1875 			if (had_submounts)
1876 				shrink_dcache_parent(dentry);
1877 			return;
1878 		}
1879 		had_submounts = true;
1880 		detach_mounts(victim);
1881 		dput(victim);
1882 	}
1883 }
1884 EXPORT_SYMBOL(d_invalidate);
1885 
1886 /**
1887  * __d_alloc - allocate a dcache entry
1888  * @sb: filesystem it will belong to
1889  * @name: qstr of the name
1890  *
1891  * Allocates a dentry. It returns %NULL if there is insufficient memory
1892  * available. On a success the dentry is returned. The name passed in is
1893  * copied and the copy passed in may be reused after this call.
1894  */
1895 
1896 static struct dentry *__d_alloc(struct super_block *sb, const struct qstr *name)
1897 {
1898 	struct dentry *dentry;
1899 	char *dname;
1900 	int err;
1901 
1902 	dentry = kmem_cache_alloc_lru(dentry_cache, &sb->s_dentry_lru,
1903 				      GFP_KERNEL);
1904 	if (!dentry)
1905 		return NULL;
1906 
1907 	/*
1908 	 * We guarantee that the inline name is always NUL-terminated.
1909 	 * This way the memcpy() done by the name switching in rename
1910 	 * will still always have a NUL at the end, even if we might
1911 	 * be overwriting an internal NUL character
1912 	 */
1913 	dentry->d_shortname.string[DNAME_INLINE_LEN-1] = 0;
1914 	if (unlikely(!name)) {
1915 		name = &slash_name;
1916 		dname = dentry->d_shortname.string;
1917 	} else if (name->len > DNAME_INLINE_LEN-1) {
1918 		struct external_name *p;
1919 
1920 		p = kmalloc_flex(*p, name, name->len + 1,
1921 				 GFP_KERNEL_ACCOUNT | __GFP_RECLAIMABLE);
1922 		if (!p) {
1923 			kmem_cache_free(dentry_cache, dentry);
1924 			return NULL;
1925 		}
1926 		atomic_set(&p->count, 1);
1927 		dname = p->name;
1928 	} else  {
1929 		dname = dentry->d_shortname.string;
1930 	}
1931 
1932 	dentry->__d_name.len = name->len;
1933 	dentry->__d_name.hash = name->hash;
1934 	memcpy(dname, name->name, name->len);
1935 	dname[name->len] = 0;
1936 
1937 	/* Make sure we always see the terminating NUL character */
1938 	smp_store_release(&dentry->__d_name.name, dname); /* ^^^ */
1939 
1940 	dentry->d_flags = 0;
1941 	lockref_init(&dentry->d_lockref);
1942 	seqcount_spinlock_init(&dentry->d_seq, &dentry->d_lock);
1943 	dentry->d_inode = NULL;
1944 	dentry->d_parent = dentry;
1945 	dentry->d_sb = sb;
1946 	dentry->d_op = sb->__s_d_op;
1947 	dentry->d_flags = sb->s_d_flags;
1948 	dentry->d_fsdata = NULL;
1949 	INIT_HLIST_BL_NODE(&dentry->d_hash);
1950 	INIT_LIST_HEAD(&dentry->d_lru);
1951 	INIT_HLIST_HEAD(&dentry->d_children);
1952 	dentry->waiters = NULL;
1953 	INIT_HLIST_NODE(&dentry->d_sib);
1954 
1955 	if (dentry->d_op && dentry->d_op->d_init) {
1956 		err = dentry->d_op->d_init(dentry);
1957 		if (err) {
1958 			if (dname_external(dentry))
1959 				kfree(external_name(dentry));
1960 			kmem_cache_free(dentry_cache, dentry);
1961 			return NULL;
1962 		}
1963 	}
1964 
1965 	this_cpu_inc(nr_dentry);
1966 
1967 	return dentry;
1968 }
1969 
1970 /**
1971  * d_alloc - allocate a dcache entry
1972  * @parent: parent of entry to allocate
1973  * @name: qstr of the name
1974  *
1975  * Allocates a dentry. It returns %NULL if there is insufficient memory
1976  * available. On a success the dentry is returned. The name passed in is
1977  * copied and the copy passed in may be reused after this call.
1978  */
1979 struct dentry *d_alloc(struct dentry * parent, const struct qstr *name)
1980 {
1981 	struct dentry *dentry = __d_alloc(parent->d_sb, name);
1982 	if (!dentry)
1983 		return NULL;
1984 	spin_lock(&parent->d_lock);
1985 	/*
1986 	 * don't need child lock because it is not subject
1987 	 * to concurrency here
1988 	 */
1989 	dentry->d_parent = dget_dlock(parent);
1990 	hlist_add_head(&dentry->d_sib, &parent->d_children);
1991 	spin_unlock(&parent->d_lock);
1992 
1993 	return dentry;
1994 }
1995 EXPORT_SYMBOL(d_alloc);
1996 
1997 struct dentry *d_alloc_anon(struct super_block *sb)
1998 {
1999 	return __d_alloc(sb, NULL);
2000 }
2001 EXPORT_SYMBOL(d_alloc_anon);
2002 
2003 struct dentry *d_alloc_cursor(struct dentry * parent)
2004 {
2005 	struct dentry *dentry = d_alloc_anon(parent->d_sb);
2006 	if (dentry) {
2007 		dentry->d_flags |= DCACHE_DENTRY_CURSOR | DCACHE_NORCU;
2008 		dentry->d_parent = dget(parent);
2009 	}
2010 	return dentry;
2011 }
2012 
2013 /**
2014  * d_alloc_pseudo - allocate a dentry (for lookup-less filesystems)
2015  * @sb: the superblock
2016  * @name: qstr of the name
2017  *
2018  * For a filesystem that just pins its dentries in memory and never
2019  * performs lookups at all, return an unhashed IS_ROOT dentry.
2020  * This is used for pipes, sockets et.al. - the stuff that should
2021  * never be anyone's children or parents.  Unlike all other
2022  * dentries, these will not have RCU delay between dropping the
2023  * last reference and freeing them.
2024  *
2025  * The only user is alloc_file_pseudo() and that's what should
2026  * be considered a public interface.  Don't use directly.
2027  */
2028 struct dentry *d_alloc_pseudo(struct super_block *sb, const struct qstr *name)
2029 {
2030 	static const struct dentry_operations anon_ops = {
2031 		.d_dname = simple_dname
2032 	};
2033 	struct dentry *dentry = __d_alloc(sb, name);
2034 	if (likely(dentry)) {
2035 		dentry->d_flags |= DCACHE_NORCU;
2036 		/* d_op_flags(&anon_ops) is 0 */
2037 		if (!dentry->d_op)
2038 			dentry->d_op = &anon_ops;
2039 	}
2040 	return dentry;
2041 }
2042 
2043 struct dentry *d_alloc_name(struct dentry *parent, const char *name)
2044 {
2045 	struct qstr q;
2046 
2047 	q.name = name;
2048 	q.hash_len = hashlen_string(parent, name);
2049 	return d_alloc(parent, &q);
2050 }
2051 EXPORT_SYMBOL(d_alloc_name);
2052 
2053 #define DCACHE_OP_FLAGS \
2054 	(DCACHE_OP_HASH | DCACHE_OP_COMPARE | DCACHE_OP_REVALIDATE | \
2055 	 DCACHE_OP_WEAK_REVALIDATE | DCACHE_OP_DELETE | DCACHE_OP_PRUNE | \
2056 	 DCACHE_OP_REAL)
2057 
2058 static unsigned int d_op_flags(const struct dentry_operations *op)
2059 {
2060 	unsigned int flags = 0;
2061 	if (op) {
2062 		if (op->d_hash)
2063 			flags |= DCACHE_OP_HASH;
2064 		if (op->d_compare)
2065 			flags |= DCACHE_OP_COMPARE;
2066 		if (op->d_revalidate)
2067 			flags |= DCACHE_OP_REVALIDATE;
2068 		if (op->d_weak_revalidate)
2069 			flags |= DCACHE_OP_WEAK_REVALIDATE;
2070 		if (op->d_delete)
2071 			flags |= DCACHE_OP_DELETE;
2072 		if (op->d_prune)
2073 			flags |= DCACHE_OP_PRUNE;
2074 		if (op->d_real)
2075 			flags |= DCACHE_OP_REAL;
2076 	}
2077 	return flags;
2078 }
2079 
2080 static void d_set_d_op(struct dentry *dentry, const struct dentry_operations *op)
2081 {
2082 	unsigned int flags = d_op_flags(op);
2083 	WARN_ON_ONCE(dentry->d_op);
2084 	WARN_ON_ONCE(dentry->d_flags & DCACHE_OP_FLAGS);
2085 	dentry->d_op = op;
2086 	if (flags)
2087 		dentry->d_flags |= flags;
2088 }
2089 
2090 void set_default_d_op(struct super_block *s, const struct dentry_operations *ops)
2091 {
2092 	unsigned int flags = d_op_flags(ops);
2093 	s->__s_d_op = ops;
2094 	s->s_d_flags = (s->s_d_flags & ~DCACHE_OP_FLAGS) | flags;
2095 }
2096 EXPORT_SYMBOL(set_default_d_op);
2097 
2098 static unsigned d_flags_for_inode(struct inode *inode)
2099 {
2100 	unsigned add_flags = DCACHE_REGULAR_TYPE;
2101 
2102 	if (!inode)
2103 		return DCACHE_MISS_TYPE;
2104 
2105 	if (S_ISDIR(inode->i_mode)) {
2106 		add_flags = DCACHE_DIRECTORY_TYPE;
2107 		if (unlikely(!(inode->i_opflags & IOP_LOOKUP))) {
2108 			if (unlikely(!inode->i_op->lookup))
2109 				add_flags = DCACHE_AUTODIR_TYPE;
2110 			else
2111 				inode->i_opflags |= IOP_LOOKUP;
2112 		}
2113 		goto type_determined;
2114 	}
2115 
2116 	if (unlikely(!(inode->i_opflags & IOP_NOFOLLOW))) {
2117 		if (unlikely(inode->i_op->get_link)) {
2118 			add_flags = DCACHE_SYMLINK_TYPE;
2119 			goto type_determined;
2120 		}
2121 		inode->i_opflags |= IOP_NOFOLLOW;
2122 	}
2123 
2124 	if (unlikely(!S_ISREG(inode->i_mode)))
2125 		add_flags = DCACHE_SPECIAL_TYPE;
2126 
2127 type_determined:
2128 	if (unlikely(IS_AUTOMOUNT(inode)))
2129 		add_flags |= DCACHE_NEED_AUTOMOUNT;
2130 	return add_flags;
2131 }
2132 
2133 static void __d_instantiate(struct dentry *dentry, struct inode *inode)
2134 {
2135 	unsigned add_flags = d_flags_for_inode(inode);
2136 	WARN_ON(d_in_lookup(dentry));
2137 
2138 	/*
2139 	 * The negative counter only tracks dentries on the LRU. Don't dec if
2140 	 * d_lru is on another list.
2141 	 */
2142 	if ((dentry->d_flags &
2143 	     (DCACHE_LRU_LIST|DCACHE_SHRINK_LIST)) == DCACHE_LRU_LIST)
2144 		this_cpu_dec(nr_dentry_negative);
2145 	hlist_add_head(&dentry->d_alias, &inode->i_dentry);
2146 	raw_write_seqcount_begin(&dentry->d_seq);
2147 	__d_set_inode_and_type(dentry, inode, add_flags);
2148 	raw_write_seqcount_end(&dentry->d_seq);
2149 	fsnotify_update_flags(dentry);
2150 }
2151 
2152 /**
2153  * d_instantiate - fill in inode information for a dentry
2154  * @entry: dentry to complete
2155  * @inode: inode to attach to this dentry
2156  *
2157  * Fill in inode information in the entry.
2158  *
2159  * This turns negative dentries into productive full members
2160  * of society.
2161  *
2162  * NOTE! This assumes that the inode count has been incremented
2163  * (or otherwise set) by the caller to indicate that it is now
2164  * in use by the dcache.
2165  */
2166 
2167 void d_instantiate(struct dentry *entry, struct inode * inode)
2168 {
2169 	BUG_ON(d_really_is_positive(entry));
2170 	if (inode) {
2171 		security_d_instantiate(entry, inode);
2172 		spin_lock(&inode->i_lock);
2173 		spin_lock(&entry->d_lock);
2174 		__d_instantiate(entry, inode);
2175 		spin_unlock(&entry->d_lock);
2176 		spin_unlock(&inode->i_lock);
2177 	}
2178 }
2179 EXPORT_SYMBOL(d_instantiate);
2180 
2181 /*
2182  * This should be equivalent to d_instantiate() + unlock_new_inode(),
2183  * with lockdep-related part of unlock_new_inode() done before
2184  * anything else.  Use that instead of open-coding d_instantiate()/
2185  * unlock_new_inode() combinations.
2186  */
2187 void d_instantiate_new(struct dentry *entry, struct inode *inode)
2188 {
2189 	BUG_ON(d_really_is_positive(entry));
2190 	BUG_ON(!inode);
2191 	lockdep_annotate_inode_mutex_key(inode);
2192 	security_d_instantiate(entry, inode);
2193 	spin_lock(&inode->i_lock);
2194 	spin_lock(&entry->d_lock);
2195 	__d_instantiate(entry, inode);
2196 	spin_unlock(&entry->d_lock);
2197 	WARN_ON(!(inode_state_read(inode) & I_NEW));
2198 	/*
2199 	 * Paired with igrab_from_hash()
2200 	 */
2201 	smp_wmb();
2202 	inode_state_clear(inode, I_NEW | I_CREATING);
2203 	inode_wake_up_bit(inode, __I_NEW);
2204 	spin_unlock(&inode->i_lock);
2205 }
2206 EXPORT_SYMBOL(d_instantiate_new);
2207 
2208 struct dentry *d_make_root(struct inode *root_inode)
2209 {
2210 	struct dentry *res = NULL;
2211 
2212 	if (root_inode) {
2213 		res = d_alloc_anon(root_inode->i_sb);
2214 		if (res)
2215 			d_instantiate(res, root_inode);
2216 		else
2217 			iput(root_inode);
2218 	}
2219 	return res;
2220 }
2221 EXPORT_SYMBOL(d_make_root);
2222 
2223 static struct dentry *__d_obtain_alias(struct inode *inode, bool disconnected)
2224 {
2225 	struct super_block *sb;
2226 	struct dentry *new, *res;
2227 
2228 	if (!inode)
2229 		return ERR_PTR(-ESTALE);
2230 	if (IS_ERR(inode))
2231 		return ERR_CAST(inode);
2232 
2233 	sb = inode->i_sb;
2234 
2235 	res = d_find_any_alias(inode); /* existing alias? */
2236 	if (res)
2237 		goto out;
2238 
2239 	new = d_alloc_anon(sb);
2240 	if (!new) {
2241 		res = ERR_PTR(-ENOMEM);
2242 		goto out;
2243 	}
2244 
2245 	security_d_instantiate(new, inode);
2246 	spin_lock(&inode->i_lock);
2247 	res = __d_find_any_alias(inode); /* recheck under lock */
2248 	if (likely(!res)) { /* still no alias, attach a disconnected dentry */
2249 		unsigned add_flags = d_flags_for_inode(inode);
2250 
2251 		if (disconnected)
2252 			add_flags |= DCACHE_DISCONNECTED;
2253 
2254 		spin_lock(&new->d_lock);
2255 		__d_set_inode_and_type(new, inode, add_flags);
2256 		hlist_add_head(&new->d_alias, &inode->i_dentry);
2257 		if (!disconnected) {
2258 			spin_lock(&sb->s_roots_lock);
2259 			hlist_add_head(&new->d_sib, &sb->s_roots);
2260 			spin_unlock(&sb->s_roots_lock);
2261 		}
2262 		spin_unlock(&new->d_lock);
2263 		spin_unlock(&inode->i_lock);
2264 		inode = NULL; /* consumed by new->d_inode */
2265 		res = new;
2266 	} else {
2267 		spin_unlock(&inode->i_lock);
2268 		dput(new);
2269 	}
2270 
2271  out:
2272 	iput(inode);
2273 	return res;
2274 }
2275 
2276 /**
2277  * d_obtain_alias - find or allocate a DISCONNECTED dentry for a given inode
2278  * @inode: inode to allocate the dentry for
2279  *
2280  * Obtain a dentry for an inode resulting from NFS filehandle conversion or
2281  * similar open by handle operations.  The returned dentry may be anonymous,
2282  * or may have a full name (if the inode was already in the cache).
2283  *
2284  * When called on a directory inode, we must ensure that the inode only ever
2285  * has one dentry.  If a dentry is found, that is returned instead of
2286  * allocating a new one.
2287  *
2288  * On successful return, the reference to the inode has been transferred
2289  * to the dentry.  In case of an error the reference on the inode is released.
2290  * To make it easier to use in export operations a %NULL or IS_ERR inode may
2291  * be passed in and the error will be propagated to the return value,
2292  * with a %NULL @inode replaced by ERR_PTR(-ESTALE).
2293  */
2294 struct dentry *d_obtain_alias(struct inode *inode)
2295 {
2296 	return __d_obtain_alias(inode, true);
2297 }
2298 EXPORT_SYMBOL(d_obtain_alias);
2299 
2300 /**
2301  * d_obtain_root - find or allocate a dentry for a given inode
2302  * @inode: inode to allocate the dentry for
2303  *
2304  * Obtain an IS_ROOT dentry for the root of a filesystem.
2305  *
2306  * We must ensure that directory inodes only ever have one dentry.  If a
2307  * dentry is found, that is returned instead of allocating a new one.
2308  *
2309  * On successful return, the reference to the inode has been transferred
2310  * to the dentry.  In case of an error the reference on the inode is
2311  * released.  A %NULL or IS_ERR inode may be passed in and will be the
2312  * error will be propagate to the return value, with a %NULL @inode
2313  * replaced by ERR_PTR(-ESTALE).
2314  */
2315 struct dentry *d_obtain_root(struct inode *inode)
2316 {
2317 	return __d_obtain_alias(inode, false);
2318 }
2319 EXPORT_SYMBOL(d_obtain_root);
2320 
2321 /**
2322  * d_add_ci - lookup or allocate new dentry with case-exact name
2323  * @dentry: the negative dentry that was passed to the parent's lookup func
2324  * @inode:  the inode case-insensitive lookup has found
2325  * @name:   the case-exact name to be associated with the returned dentry
2326  *
2327  * This is to avoid filling the dcache with case-insensitive names to the
2328  * same inode, only the actual correct case is stored in the dcache for
2329  * case-insensitive filesystems.
2330  *
2331  * For a case-insensitive lookup match and if the case-exact dentry
2332  * already exists in the dcache, use it and return it.
2333  *
2334  * If no entry exists with the exact case name, allocate new dentry with
2335  * the exact case, and return the spliced entry.
2336  */
2337 struct dentry *d_add_ci(struct dentry *dentry, struct inode *inode,
2338 			struct qstr *name)
2339 {
2340 	struct dentry *found, *res;
2341 
2342 	/*
2343 	 * First check if a dentry matching the name already exists,
2344 	 * if not go ahead and create it now.
2345 	 */
2346 	found = d_hash_and_lookup(dentry->d_parent, name);
2347 	if (found) {
2348 		iput(inode);
2349 		return found;
2350 	}
2351 	if (d_in_lookup(dentry)) {
2352 		found = d_alloc_parallel(dentry->d_parent, name);
2353 		if (IS_ERR(found) || !d_in_lookup(found)) {
2354 			iput(inode);
2355 			return found;
2356 		}
2357 	} else {
2358 		found = d_alloc(dentry->d_parent, name);
2359 		if (!found) {
2360 			iput(inode);
2361 			return ERR_PTR(-ENOMEM);
2362 		}
2363 	}
2364 	res = d_splice_alias(inode, found);
2365 	if (res) {
2366 		d_lookup_done(found);
2367 		dput(found);
2368 		return res;
2369 	}
2370 	return found;
2371 }
2372 EXPORT_SYMBOL(d_add_ci);
2373 
2374 /**
2375  * d_same_name - compare dentry name with case-exact name
2376  * @dentry: the negative dentry that was passed to the parent's lookup func
2377  * @parent: parent dentry
2378  * @name:   the case-exact name to be associated with the returned dentry
2379  *
2380  * Return: true if names are same, or false
2381  */
2382 bool d_same_name(const struct dentry *dentry, const struct dentry *parent,
2383 		 const struct qstr *name)
2384 {
2385 	if (likely(!(parent->d_flags & DCACHE_OP_COMPARE))) {
2386 		if (dentry->d_name.len != name->len)
2387 			return false;
2388 		return dentry_cmp(dentry, name->name, name->len) == 0;
2389 	}
2390 	return parent->d_op->d_compare(dentry,
2391 				       dentry->d_name.len, dentry->d_name.name,
2392 				       name) == 0;
2393 }
2394 EXPORT_SYMBOL_GPL(d_same_name);
2395 
2396 /*
2397  * This is __d_lookup_rcu() when the parent dentry has
2398  * DCACHE_OP_COMPARE, which makes things much nastier.
2399  */
2400 static noinline struct dentry *__d_lookup_rcu_op_compare(
2401 	const struct dentry *parent,
2402 	const struct qstr *name,
2403 	unsigned *seqp)
2404 {
2405 	u64 hashlen = name->hash_len;
2406 	struct hlist_bl_head *b = d_hash(hashlen);
2407 	struct hlist_bl_node *node;
2408 	struct dentry *dentry;
2409 
2410 	hlist_bl_for_each_entry_rcu(dentry, node, b, d_hash) {
2411 		int tlen;
2412 		const char *tname;
2413 		unsigned seq;
2414 
2415 seqretry:
2416 		seq = raw_seqcount_begin(&dentry->d_seq);
2417 		if (dentry->d_parent != parent)
2418 			continue;
2419 		if (d_unhashed(dentry))
2420 			continue;
2421 		if (dentry->d_name.hash != hashlen_hash(hashlen))
2422 			continue;
2423 		tlen = dentry->d_name.len;
2424 		tname = dentry->d_name.name;
2425 		/* we want a consistent (name,len) pair */
2426 		if (read_seqcount_retry(&dentry->d_seq, seq)) {
2427 			cpu_relax();
2428 			goto seqretry;
2429 		}
2430 		if (parent->d_op->d_compare(dentry, tlen, tname, name) != 0)
2431 			continue;
2432 		*seqp = seq;
2433 		return dentry;
2434 	}
2435 	return NULL;
2436 }
2437 
2438 /**
2439  * __d_lookup_rcu - search for a dentry (racy, store-free)
2440  * @parent: parent dentry
2441  * @name: qstr of name we wish to find
2442  * @seqp: returns d_seq value at the point where the dentry was found
2443  * Returns: dentry, or NULL
2444  *
2445  * __d_lookup_rcu is the dcache lookup function for rcu-walk name
2446  * resolution (store-free path walking) design described in
2447  * Documentation/filesystems/path-lookup.txt.
2448  *
2449  * This is not to be used outside core vfs.
2450  *
2451  * __d_lookup_rcu must only be used in rcu-walk mode, ie. with vfsmount lock
2452  * held, and rcu_read_lock held. The returned dentry must not be stored into
2453  * without taking d_lock and checking d_seq sequence count against @seq
2454  * returned here.
2455  *
2456  * Alternatively, __d_lookup_rcu may be called again to look up the child of
2457  * the returned dentry, so long as its parent's seqlock is checked after the
2458  * child is looked up. Thus, an interlocking stepping of sequence lock checks
2459  * is formed, giving integrity down the path walk.
2460  *
2461  * NOTE! The caller *has* to check the resulting dentry against the sequence
2462  * number we've returned before using any of the resulting dentry state!
2463  */
2464 struct dentry *__d_lookup_rcu(const struct dentry *parent,
2465 				const struct qstr *name,
2466 				unsigned *seqp)
2467 {
2468 	u64 hashlen = name->hash_len;
2469 	const unsigned char *str = name->name;
2470 	struct hlist_bl_head *b = d_hash(hashlen);
2471 	struct hlist_bl_node *node;
2472 	struct dentry *dentry;
2473 
2474 	/*
2475 	 * Note: There is significant duplication with __d_lookup_rcu which is
2476 	 * required to prevent single threaded performance regressions
2477 	 * especially on architectures where smp_rmb (in seqcounts) are costly.
2478 	 * Keep the two functions in sync.
2479 	 */
2480 
2481 	if (unlikely(parent->d_flags & DCACHE_OP_COMPARE))
2482 		return __d_lookup_rcu_op_compare(parent, name, seqp);
2483 
2484 	/*
2485 	 * The hash list is protected using RCU.
2486 	 *
2487 	 * Carefully use d_seq when comparing a candidate dentry, to avoid
2488 	 * races with d_move().
2489 	 *
2490 	 * It is possible that concurrent renames can mess up our list
2491 	 * walk here and result in missing our dentry, resulting in the
2492 	 * false-negative result. d_lookup() protects against concurrent
2493 	 * renames using rename_lock seqlock.
2494 	 *
2495 	 * See Documentation/filesystems/path-lookup.txt for more details.
2496 	 */
2497 	hlist_bl_for_each_entry_rcu(dentry, node, b, d_hash) {
2498 		unsigned seq;
2499 
2500 		/*
2501 		 * The dentry sequence count protects us from concurrent
2502 		 * renames, and thus protects parent and name fields.
2503 		 *
2504 		 * The caller must perform a seqcount check in order
2505 		 * to do anything useful with the returned dentry.
2506 		 *
2507 		 * NOTE! We do a "raw" seqcount_begin here. That means that
2508 		 * we don't wait for the sequence count to stabilize if it
2509 		 * is in the middle of a sequence change. If we do the slow
2510 		 * dentry compare, we will do seqretries until it is stable,
2511 		 * and if we end up with a successful lookup, we actually
2512 		 * want to exit RCU lookup anyway.
2513 		 *
2514 		 * Note that raw_seqcount_begin still *does* smp_rmb(), so
2515 		 * we are still guaranteed NUL-termination of ->d_name.name.
2516 		 */
2517 		seq = raw_seqcount_begin(&dentry->d_seq);
2518 		if (dentry->d_parent != parent)
2519 			continue;
2520 		if (dentry->d_name.hash_len != hashlen)
2521 			continue;
2522 		if (unlikely(dentry_cmp(dentry, str, hashlen_len(hashlen)) != 0))
2523 			continue;
2524 		/*
2525 		 * Check for the dentry being unhashed.
2526 		 *
2527 		 * As tempting as it is, we *can't* skip it because of a race window
2528 		 * between us finding the dentry before it gets unhashed and loading
2529 		 * the sequence counter after unhashing is finished.
2530 		 *
2531 		 * We can at least predict on it.
2532 		 */
2533 		if (unlikely(d_unhashed(dentry)))
2534 			continue;
2535 		*seqp = seq;
2536 		return dentry;
2537 	}
2538 	return NULL;
2539 }
2540 
2541 /**
2542  * d_lookup - search for a dentry
2543  * @parent: parent dentry
2544  * @name: qstr of name we wish to find
2545  * Returns: dentry, or NULL
2546  *
2547  * d_lookup searches the children of the parent dentry for the name in
2548  * question. If the dentry is found its reference count is incremented and the
2549  * dentry is returned. The caller must use dput to free the entry when it has
2550  * finished using it. %NULL is returned if the dentry does not exist.
2551  */
2552 struct dentry *d_lookup(const struct dentry *parent, const struct qstr *name)
2553 {
2554 	struct dentry *dentry;
2555 	unsigned seq;
2556 
2557 	do {
2558 		seq = read_seqbegin(&rename_lock);
2559 		dentry = __d_lookup(parent, name);
2560 		if (dentry)
2561 			break;
2562 	} while (read_seqretry(&rename_lock, seq));
2563 	return dentry;
2564 }
2565 EXPORT_SYMBOL(d_lookup);
2566 
2567 /**
2568  * __d_lookup - search for a dentry (racy)
2569  * @parent: parent dentry
2570  * @name: qstr of name we wish to find
2571  * Returns: dentry, or NULL
2572  *
2573  * __d_lookup is like d_lookup, however it may (rarely) return a
2574  * false-negative result due to unrelated rename activity.
2575  *
2576  * __d_lookup is slightly faster by avoiding rename_lock read seqlock,
2577  * however it must be used carefully, eg. with a following d_lookup in
2578  * the case of failure.
2579  *
2580  * __d_lookup callers must be commented.
2581  */
2582 struct dentry *__d_lookup(const struct dentry *parent, const struct qstr *name)
2583 {
2584 	unsigned int hash = name->hash;
2585 	struct hlist_bl_head *b = d_hash(hash);
2586 	struct hlist_bl_node *node;
2587 	struct dentry *found = NULL;
2588 	struct dentry *dentry;
2589 
2590 	/*
2591 	 * Note: There is significant duplication with __d_lookup_rcu which is
2592 	 * required to prevent single threaded performance regressions
2593 	 * especially on architectures where smp_rmb (in seqcounts) are costly.
2594 	 * Keep the two functions in sync.
2595 	 */
2596 
2597 	/*
2598 	 * The hash list is protected using RCU.
2599 	 *
2600 	 * Take d_lock when comparing a candidate dentry, to avoid races
2601 	 * with d_move().
2602 	 *
2603 	 * It is possible that concurrent renames can mess up our list
2604 	 * walk here and result in missing our dentry, resulting in the
2605 	 * false-negative result. d_lookup() protects against concurrent
2606 	 * renames using rename_lock seqlock.
2607 	 *
2608 	 * See Documentation/filesystems/path-lookup.txt for more details.
2609 	 */
2610 	rcu_read_lock();
2611 
2612 	hlist_bl_for_each_entry_rcu(dentry, node, b, d_hash) {
2613 
2614 		if (dentry->d_name.hash != hash)
2615 			continue;
2616 
2617 		spin_lock(&dentry->d_lock);
2618 		if (dentry->d_parent != parent)
2619 			goto next;
2620 		if (d_unhashed(dentry))
2621 			goto next;
2622 
2623 		if (!d_same_name(dentry, parent, name))
2624 			goto next;
2625 
2626 		dentry->d_lockref.count++;
2627 		found = dentry;
2628 		spin_unlock(&dentry->d_lock);
2629 		break;
2630 next:
2631 		spin_unlock(&dentry->d_lock);
2632  	}
2633  	rcu_read_unlock();
2634 
2635  	return found;
2636 }
2637 
2638 /**
2639  * d_hash_and_lookup - hash the qstr then search for a dentry
2640  * @dir: Directory to search in
2641  * @name: qstr of name we wish to find
2642  *
2643  * On lookup failure NULL is returned; on bad name - ERR_PTR(-error)
2644  */
2645 struct dentry *d_hash_and_lookup(struct dentry *dir, struct qstr *name)
2646 {
2647 	/*
2648 	 * Check for a fs-specific hash function. Note that we must
2649 	 * calculate the standard hash first, as the d_op->d_hash()
2650 	 * routine may choose to leave the hash value unchanged.
2651 	 */
2652 	name->hash = full_name_hash(dir, name->name, name->len);
2653 	if (dir->d_flags & DCACHE_OP_HASH) {
2654 		int err = dir->d_op->d_hash(dir, name);
2655 		if (unlikely(err < 0))
2656 			return ERR_PTR(err);
2657 	}
2658 	return d_lookup(dir, name);
2659 }
2660 
2661 /*
2662  * When a file is deleted, we have two options:
2663  * - turn this dentry into a negative dentry
2664  * - unhash this dentry and free it.
2665  *
2666  * Usually, we want to just turn this into
2667  * a negative dentry, but if anybody else is
2668  * currently using the dentry or the inode
2669  * we can't do that and we fall back on removing
2670  * it from the hash queues and waiting for
2671  * it to be deleted later when it has no users
2672  */
2673 
2674 /**
2675  * d_delete - delete a dentry
2676  * @dentry: The dentry to delete
2677  *
2678  * Turn the dentry into a negative dentry if possible, otherwise
2679  * remove it from the hash queues so it can be deleted later
2680  */
2681 
2682 void d_delete(struct dentry * dentry)
2683 {
2684 	struct inode *inode = dentry->d_inode;
2685 
2686 	spin_lock(&inode->i_lock);
2687 	spin_lock(&dentry->d_lock);
2688 	/*
2689 	 * Are we the only user?
2690 	 */
2691 	if (dentry->d_lockref.count == 1) {
2692 		if (dentry_negative_policy)
2693 			__d_drop(dentry);
2694 		dentry->d_flags &= ~DCACHE_CANT_MOUNT;
2695 		dentry_unlink_inode(dentry);
2696 	} else {
2697 		__d_drop(dentry);
2698 		spin_unlock(&dentry->d_lock);
2699 		spin_unlock(&inode->i_lock);
2700 	}
2701 }
2702 EXPORT_SYMBOL(d_delete);
2703 
2704 static void __d_rehash(struct dentry *entry)
2705 {
2706 	struct hlist_bl_head *b = d_hash(entry->d_name.hash);
2707 
2708 	hlist_bl_lock(b);
2709 	hlist_bl_add_head_rcu(&entry->d_hash, b);
2710 	hlist_bl_unlock(b);
2711 }
2712 
2713 /**
2714  * d_rehash - add an entry back to the hash
2715  * @entry: dentry to add to the hash
2716  *
2717  * Adds a dentry to the hash according to its name.
2718  */
2719 
2720 void d_rehash(struct dentry * entry)
2721 {
2722 	spin_lock(&entry->d_lock);
2723 	__d_rehash(entry);
2724 	spin_unlock(&entry->d_lock);
2725 }
2726 EXPORT_SYMBOL(d_rehash);
2727 
2728 static inline unsigned start_dir_add(struct inode *dir)
2729 {
2730 	preempt_disable_nested();
2731 	for (;;) {
2732 		unsigned n = READ_ONCE(dir->i_dir_seq);
2733 		if (!(n & 1) && try_cmpxchg(&dir->i_dir_seq, &n, n + 1))
2734 			return n;
2735 		cpu_relax();
2736 	}
2737 }
2738 
2739 static inline void end_dir_add(struct inode *dir, unsigned int n)
2740 {
2741 	smp_store_release(&dir->i_dir_seq, n + 2);
2742 	preempt_enable_nested();
2743 }
2744 
2745 static void d_wait_lookup(struct dentry *dentry)
2746 {
2747 	if (likely(d_in_lookup(dentry))) {
2748 		dentry->d_flags |= DCACHE_LOOKUP_WAITERS;
2749 		wait_var_event_spinlock(&dentry->d_flags,
2750 					!d_in_lookup(dentry),
2751 					&dentry->d_lock);
2752 	}
2753 }
2754 
2755 struct dentry *d_alloc_parallel(struct dentry *parent,
2756 				const struct qstr *name)
2757 {
2758 	unsigned int hash = name->hash;
2759 	struct hlist_bl_head *b = in_lookup_hash(parent, hash);
2760 	struct hlist_bl_node *node;
2761 	struct dentry *new = __d_alloc(parent->d_sb, name);
2762 	struct dentry *dentry;
2763 	unsigned seq, r_seq, d_seq;
2764 
2765 	if (unlikely(!new))
2766 		return ERR_PTR(-ENOMEM);
2767 
2768 	new->d_flags |= DCACHE_PAR_LOOKUP;
2769 	spin_lock(&parent->d_lock);
2770 	new->d_parent = dget_dlock(parent);
2771 	hlist_add_head(&new->d_sib, &parent->d_children);
2772 	if (parent->d_flags & DCACHE_DISCONNECTED)
2773 		new->d_flags |= DCACHE_DISCONNECTED;
2774 	spin_unlock(&parent->d_lock);
2775 
2776 retry:
2777 	seq = smp_load_acquire(&parent->d_inode->i_dir_seq);
2778 	r_seq = read_seqbegin(&rename_lock);
2779 	rcu_read_lock();
2780 	dentry = __d_lookup_rcu(parent, name, &d_seq);
2781 	if (unlikely(dentry)) {
2782 		if (!lockref_get_not_dead(&dentry->d_lockref)) {
2783 			rcu_read_unlock();
2784 			goto retry;
2785 		}
2786 		rcu_read_unlock();
2787 		if (read_seqcount_retry(&dentry->d_seq, d_seq)) {
2788 			dput(dentry);
2789 			goto retry;
2790 		}
2791 		dput(new);
2792 		return dentry;
2793 	}
2794 	rcu_read_unlock();
2795 	if (unlikely(read_seqretry(&rename_lock, r_seq)))
2796 		goto retry;
2797 
2798 	if (unlikely(seq & 1))
2799 		goto retry;
2800 
2801 	hlist_bl_lock(b);
2802 	if (unlikely(READ_ONCE(parent->d_inode->i_dir_seq) != seq)) {
2803 		hlist_bl_unlock(b);
2804 		goto retry;
2805 	}
2806 	/*
2807 	 * No changes for the parent since the beginning of d_lookup().
2808 	 * Since all removals from the chain happen with hlist_bl_lock(),
2809 	 * any potential in-lookup matches are going to stay here until
2810 	 * we unlock the chain.  All fields are stable in everything
2811 	 * we encounter.
2812 	 */
2813 	hlist_bl_for_each_entry(dentry, node, b, d_in_lookup_hash) {
2814 		if (dentry->d_name.hash != hash)
2815 			continue;
2816 		if (dentry->d_parent != parent)
2817 			continue;
2818 		if (!d_same_name(dentry, parent, name))
2819 			continue;
2820 		rcu_read_lock();
2821 		hlist_bl_unlock(b);
2822 		spin_lock(&dentry->d_lock);
2823 		rcu_read_unlock();
2824 		/* now we can try to grab a reference */
2825 		if (unlikely(dentry->d_lockref.count < 0)) {
2826 			spin_unlock(&dentry->d_lock);
2827 			goto retry;
2828 		}
2829 		/*
2830 		 * somebody is likely to be still doing lookup for it;
2831 		 * pin it and wait for them to finish
2832 		 */
2833 		dget_dlock(dentry);
2834 		d_wait_lookup(dentry);
2835 		/*
2836 		 * it's not in-lookup anymore; in principle we should repeat
2837 		 * everything from dcache lookup, but it's likely to be what
2838 		 * d_lookup() would've found anyway.  If it is, just return it;
2839 		 * otherwise we really have to repeat the whole thing.
2840 		 */
2841 		if (unlikely(dentry->d_name.hash != hash))
2842 			goto mismatch;
2843 		if (unlikely(dentry->d_parent != parent))
2844 			goto mismatch;
2845 		if (unlikely(d_unhashed(dentry)))
2846 			goto mismatch;
2847 		if (unlikely(!d_same_name(dentry, parent, name)))
2848 			goto mismatch;
2849 		/* OK, it *is* a hashed match; return it */
2850 		spin_unlock(&dentry->d_lock);
2851 		dput(new);
2852 		return dentry;
2853 	}
2854 	hlist_bl_add_head(&new->d_in_lookup_hash, b);
2855 	hlist_bl_unlock(b);
2856 	return new;
2857 mismatch:
2858 	spin_unlock(&dentry->d_lock);
2859 	dput(dentry);
2860 	goto retry;
2861 }
2862 EXPORT_SYMBOL(d_alloc_parallel);
2863 
2864 /*
2865  * Move dentry from in-lookup state to busy-negative one.
2866  *
2867  * From now on d_in_lookup(dentry) will return false and dentry is gone from
2868  * in-lookup hash.
2869  *
2870  * Anyone who had been waiting on it in d_alloc_parallel() is free to
2871  * proceed after that.  Note that waking such waiters up is left to
2872  * the callers; PREEMPT_RT kernels can't have that wakeup done while
2873  * in write-side critical area for ->i_dir_seq, so it's done by calling
2874  * __d_wake_in_lookup_waiters() once it's safe to do so.
2875  *
2876  * Both __d_lookup_unhash() and __d_wake_in_lookup_waiters() should
2877  * be called within the same ->d_lock scope.  PAR_LOOKUP is cleared
2878  * here, while LOOKUP_WAITERS (set by somebody finding dentry in
2879  * the in-lookup hash and setting down to wait) is checked and cleared
2880  * in __d_wake_in_lookup_waiters().  Both are gone by the end of
2881  * ->d_lock scope.
2882  */
2883 static void __d_lookup_unhash(struct dentry *dentry)
2884 {
2885 	struct hlist_bl_head *b;
2886 
2887 	lockdep_assert_held(&dentry->d_lock);
2888 
2889 	b = in_lookup_hash(dentry->d_parent, dentry->d_name.hash);
2890 	hlist_bl_lock(b);
2891 	dentry->d_flags &= ~DCACHE_PAR_LOOKUP;
2892 	__hlist_bl_del(&dentry->d_in_lookup_hash);
2893 	hlist_bl_unlock(b);
2894 	dentry->waiters = NULL;
2895 }
2896 
2897 static inline void __d_wake_in_lookup_waiters(struct dentry *dentry)
2898 {
2899 	if (dentry->d_flags & DCACHE_LOOKUP_WAITERS) {
2900 		wake_up_var_locked(&dentry->d_flags, &dentry->d_lock);
2901 		dentry->d_flags &= ~DCACHE_LOOKUP_WAITERS;
2902 	}
2903 }
2904 
2905 void __d_lookup_unhash_wake(struct dentry *dentry)
2906 {
2907 	spin_lock(&dentry->d_lock);
2908 	__d_lookup_unhash(dentry);
2909 	__d_wake_in_lookup_waiters(dentry);
2910 	spin_unlock(&dentry->d_lock);
2911 }
2912 EXPORT_SYMBOL(__d_lookup_unhash_wake);
2913 
2914 /* inode->i_lock held if inode is non-NULL */
2915 
2916 static inline void __d_add(struct dentry *dentry, struct inode *inode,
2917 			   const struct dentry_operations *ops)
2918 {
2919 	struct inode *dir = NULL;
2920 	unsigned n;
2921 	spin_lock(&dentry->d_lock);
2922 	if (unlikely(d_in_lookup(dentry))) {
2923 		dir = dentry->d_parent->d_inode;
2924 		n = start_dir_add(dir);
2925 		__d_lookup_unhash(dentry);
2926 	}
2927 	if (unlikely(ops))
2928 		d_set_d_op(dentry, ops);
2929 	if (inode) {
2930 		unsigned add_flags = d_flags_for_inode(inode);
2931 		hlist_add_head(&dentry->d_alias, &inode->i_dentry);
2932 		raw_write_seqcount_begin(&dentry->d_seq);
2933 		__d_set_inode_and_type(dentry, inode, add_flags);
2934 		raw_write_seqcount_end(&dentry->d_seq);
2935 		fsnotify_update_flags(dentry);
2936 	}
2937 	__d_rehash(dentry);
2938 	if (dir) {
2939 		end_dir_add(dir, n);
2940 		__d_wake_in_lookup_waiters(dentry);
2941 	}
2942 	spin_unlock(&dentry->d_lock);
2943 	if (inode)
2944 		spin_unlock(&inode->i_lock);
2945 }
2946 
2947 /**
2948  * d_add - add dentry to hash queues
2949  * @entry: dentry to add
2950  * @inode: The inode to attach to this dentry
2951  *
2952  * This adds the entry to the hash queues and initializes @inode.
2953  * The entry was actually filled in earlier during d_alloc().
2954  */
2955 
2956 void d_add(struct dentry *entry, struct inode *inode)
2957 {
2958 	if (inode) {
2959 		security_d_instantiate(entry, inode);
2960 		spin_lock(&inode->i_lock);
2961 	}
2962 	__d_add(entry, inode, NULL);
2963 }
2964 EXPORT_SYMBOL(d_add);
2965 
2966 struct dentry *d_make_persistent(struct dentry *dentry, struct inode *inode)
2967 {
2968 	WARN_ON(d_really_is_positive(dentry));
2969 	WARN_ON(!inode);
2970 	security_d_instantiate(dentry, inode);
2971 	spin_lock(&inode->i_lock);
2972 	spin_lock(&dentry->d_lock);
2973 	__d_instantiate(dentry, inode);
2974 	dentry->d_flags |= DCACHE_PERSISTENT;
2975 	dget_dlock(dentry);
2976 	if (d_unhashed(dentry))
2977 		__d_rehash(dentry);
2978 	spin_unlock(&dentry->d_lock);
2979 	spin_unlock(&inode->i_lock);
2980 	return dentry;
2981 }
2982 EXPORT_SYMBOL(d_make_persistent);
2983 
2984 static void swap_names(struct dentry *dentry, struct dentry *target)
2985 {
2986 	if (unlikely(dname_external(target))) {
2987 		if (unlikely(dname_external(dentry))) {
2988 			/*
2989 			 * Both external: swap the pointers
2990 			 */
2991 			swap(target->__d_name.name, dentry->__d_name.name);
2992 		} else {
2993 			/*
2994 			 * dentry:internal, target:external.  Steal target's
2995 			 * storage and make target internal.
2996 			 */
2997 			dentry->__d_name.name = target->__d_name.name;
2998 			target->d_shortname = dentry->d_shortname;
2999 			target->__d_name.name = target->d_shortname.string;
3000 		}
3001 	} else {
3002 		if (unlikely(dname_external(dentry))) {
3003 			/*
3004 			 * dentry:external, target:internal.  Give dentry's
3005 			 * storage to target and make dentry internal
3006 			 */
3007 			target->__d_name.name = dentry->__d_name.name;
3008 			dentry->d_shortname = target->d_shortname;
3009 			dentry->__d_name.name = dentry->d_shortname.string;
3010 		} else {
3011 			/*
3012 			 * Both are internal.
3013 			 */
3014 			for (int i = 0; i < DNAME_INLINE_WORDS; i++)
3015 				swap(dentry->d_shortname.words[i],
3016 				     target->d_shortname.words[i]);
3017 		}
3018 	}
3019 	swap(dentry->__d_name.hash_len, target->__d_name.hash_len);
3020 }
3021 
3022 static void copy_name(struct dentry *dentry, struct dentry *target)
3023 {
3024 	struct external_name *old_name = NULL;
3025 	if (unlikely(dname_external(dentry)))
3026 		old_name = external_name(dentry);
3027 	if (unlikely(dname_external(target))) {
3028 		atomic_inc(&external_name(target)->count);
3029 		dentry->__d_name = target->__d_name;
3030 	} else {
3031 		dentry->d_shortname = target->d_shortname;
3032 		dentry->__d_name.name = dentry->d_shortname.string;
3033 		dentry->__d_name.hash_len = target->__d_name.hash_len;
3034 	}
3035 	if (old_name && likely(atomic_dec_and_test(&old_name->count)))
3036 		kfree_rcu(old_name, head);
3037 }
3038 
3039 /*
3040  * __d_move - move a dentry
3041  * @dentry: entry to move
3042  * @target: new dentry
3043  * @exchange: exchange the two dentries
3044  *
3045  * Update the dcache to reflect the move of a file name. Negative dcache
3046  * entries should not be moved in this way. Caller must hold rename_lock, the
3047  * i_rwsem of the source and target directories (exclusively), and the sb->
3048  * s_vfs_rename_mutex if they differ. See lock_rename().
3049  */
3050 static void __d_move(struct dentry *dentry, struct dentry *target,
3051 		     bool exchange)
3052 {
3053 	struct dentry *old_parent, *p;
3054 	struct inode *dir = NULL;
3055 	unsigned n;
3056 
3057 	WARN_ON(!dentry->d_inode);
3058 	if (WARN_ON(dentry == target))
3059 		return;
3060 
3061 	BUG_ON(d_ancestor(target, dentry));
3062 	old_parent = dentry->d_parent;
3063 	p = d_ancestor(old_parent, target);
3064 	if (IS_ROOT(dentry)) {
3065 		BUG_ON(p);
3066 		spin_lock(&target->d_parent->d_lock);
3067 	} else if (!p) {
3068 		/* target is not a descendent of dentry->d_parent */
3069 		spin_lock(&target->d_parent->d_lock);
3070 		spin_lock_nested(&old_parent->d_lock, DENTRY_D_LOCK_NESTED);
3071 	} else {
3072 		BUG_ON(p == dentry);
3073 		spin_lock(&old_parent->d_lock);
3074 		if (p != target)
3075 			spin_lock_nested(&target->d_parent->d_lock,
3076 					DENTRY_D_LOCK_NESTED);
3077 	}
3078 	spin_lock_nested(&dentry->d_lock, 2);
3079 	spin_lock_nested(&target->d_lock, 3);
3080 
3081 	if (unlikely(d_in_lookup(target))) {
3082 		dir = target->d_parent->d_inode;
3083 		n = start_dir_add(dir);
3084 		__d_lookup_unhash(target);
3085 	}
3086 
3087 	write_seqcount_begin(&dentry->d_seq);
3088 	write_seqcount_begin_nested(&target->d_seq, DENTRY_D_LOCK_NESTED);
3089 
3090 	/* unhash both */
3091 	if (!d_unhashed(dentry))
3092 		___d_drop(dentry);
3093 	if (!d_unhashed(target))
3094 		___d_drop(target);
3095 
3096 	/* ... and switch them in the tree */
3097 	dentry->d_parent = target->d_parent;
3098 	if (!exchange) {
3099 		copy_name(dentry, target);
3100 		target->d_hash.pprev = NULL;
3101 		dentry->d_parent->d_lockref.count++;
3102 		if (dentry != old_parent) /* wasn't IS_ROOT */
3103 			WARN_ON(!--old_parent->d_lockref.count);
3104 	} else {
3105 		target->d_parent = old_parent;
3106 		swap_names(dentry, target);
3107 		if (!hlist_unhashed(&target->d_sib))
3108 			__hlist_del(&target->d_sib);
3109 		hlist_add_head(&target->d_sib, &target->d_parent->d_children);
3110 		__d_rehash(target);
3111 		fsnotify_update_flags(target);
3112 	}
3113 	if (!hlist_unhashed(&dentry->d_sib))
3114 		__hlist_del(&dentry->d_sib);
3115 	hlist_add_head(&dentry->d_sib, &dentry->d_parent->d_children);
3116 	__d_rehash(dentry);
3117 	fsnotify_update_flags(dentry);
3118 	fscrypt_handle_d_move(dentry);
3119 
3120 	write_seqcount_end(&target->d_seq);
3121 	write_seqcount_end(&dentry->d_seq);
3122 
3123 	if (dir) {
3124 		end_dir_add(dir, n);
3125 		__d_wake_in_lookup_waiters(target);
3126 	}
3127 	if (dentry->d_parent != old_parent)
3128 		spin_unlock(&dentry->d_parent->d_lock);
3129 	if (dentry != old_parent)
3130 		spin_unlock(&old_parent->d_lock);
3131 	spin_unlock(&target->d_lock);
3132 	spin_unlock(&dentry->d_lock);
3133 }
3134 
3135 /*
3136  * d_move - move a dentry
3137  * @dentry: entry to move
3138  * @target: new dentry
3139  *
3140  * Update the dcache to reflect the move of a file name. Negative
3141  * dcache entries should not be moved in this way. See the locking
3142  * requirements for __d_move.
3143  */
3144 void d_move(struct dentry *dentry, struct dentry *target)
3145 {
3146 	write_seqlock(&rename_lock);
3147 	__d_move(dentry, target, false);
3148 	write_sequnlock(&rename_lock);
3149 }
3150 EXPORT_SYMBOL(d_move);
3151 
3152 /*
3153  * d_exchange - exchange two dentries
3154  * @dentry1: first dentry
3155  * @dentry2: second dentry
3156  */
3157 void d_exchange(struct dentry *dentry1, struct dentry *dentry2)
3158 {
3159 	write_seqlock(&rename_lock);
3160 
3161 	WARN_ON(!dentry1->d_inode);
3162 	WARN_ON(!dentry2->d_inode);
3163 	WARN_ON(IS_ROOT(dentry1));
3164 	WARN_ON(IS_ROOT(dentry2));
3165 
3166 	__d_move(dentry1, dentry2, true);
3167 
3168 	write_sequnlock(&rename_lock);
3169 }
3170 EXPORT_SYMBOL(d_exchange);
3171 
3172 /**
3173  * d_ancestor - search for an ancestor
3174  * @p1: ancestor dentry
3175  * @p2: child dentry
3176  *
3177  * Returns the ancestor dentry of p2 which is a child of p1, if p1 is
3178  * an ancestor of p2, else NULL.
3179  */
3180 struct dentry *d_ancestor(struct dentry *p1, struct dentry *p2)
3181 {
3182 	struct dentry *p;
3183 
3184 	for (p = p2; !IS_ROOT(p); p = p->d_parent) {
3185 		if (p->d_parent == p1)
3186 			return p;
3187 	}
3188 	return NULL;
3189 }
3190 
3191 /*
3192  * This helper attempts to cope with remotely renamed directories
3193  *
3194  * It assumes that the caller is already holding
3195  * dentry->d_parent->d_inode->i_rwsem, and rename_lock
3196  *
3197  * Note: If ever the locking in lock_rename() changes, then please
3198  * remember to update this too...
3199  */
3200 static int __d_unalias(struct dentry *dentry, struct dentry *alias)
3201 {
3202 	struct mutex *m1 = NULL;
3203 	struct rw_semaphore *m2 = NULL;
3204 	int ret = -ESTALE;
3205 
3206 	/* If alias and dentry share a parent, then no extra locks required */
3207 	if (alias->d_parent == dentry->d_parent)
3208 		goto out_unalias;
3209 
3210 	/* See lock_rename() */
3211 	if (!mutex_trylock(&dentry->d_sb->s_vfs_rename_mutex))
3212 		goto out_err;
3213 	m1 = &dentry->d_sb->s_vfs_rename_mutex;
3214 	if (!inode_trylock_shared(alias->d_parent->d_inode))
3215 		goto out_err;
3216 	m2 = &alias->d_parent->d_inode->i_rwsem;
3217 out_unalias:
3218 	if (alias->d_op && alias->d_op->d_unalias_trylock &&
3219 	    !alias->d_op->d_unalias_trylock(alias))
3220 		goto out_err;
3221 	__d_move(alias, dentry, false);
3222 	if (alias->d_op && alias->d_op->d_unalias_unlock)
3223 		alias->d_op->d_unalias_unlock(alias);
3224 	ret = 0;
3225 out_err:
3226 	if (m2)
3227 		up_read(m2);
3228 	if (m1)
3229 		mutex_unlock(m1);
3230 	return ret;
3231 }
3232 
3233 struct dentry *d_splice_alias_ops(struct inode *inode, struct dentry *dentry,
3234 				  const struct dentry_operations *ops)
3235 {
3236 	if (IS_ERR(inode))
3237 		return ERR_CAST(inode);
3238 
3239 	BUG_ON(!d_unhashed(dentry));
3240 
3241 	if (!inode)
3242 		goto out;
3243 
3244 	security_d_instantiate(dentry, inode);
3245 	spin_lock(&inode->i_lock);
3246 	if (S_ISDIR(inode->i_mode)) {
3247 		struct dentry *new = __d_find_dir_alias(inode);
3248 		if (unlikely(new)) {
3249 			/* The reference to new ensures it remains an alias */
3250 			spin_unlock(&inode->i_lock);
3251 			write_seqlock(&rename_lock);
3252 			if (unlikely(d_ancestor(new, dentry))) {
3253 				write_sequnlock(&rename_lock);
3254 				dput(new);
3255 				new = ERR_PTR(-ELOOP);
3256 				pr_warn_ratelimited(
3257 					"VFS: Lookup of '%s' in %s %s"
3258 					" would have caused loop\n",
3259 					dentry->d_name.name,
3260 					inode->i_sb->s_type->name,
3261 					inode->i_sb->s_id);
3262 			} else if (!IS_ROOT(new)) {
3263 				struct dentry *old_parent = dget(new->d_parent);
3264 				int err = __d_unalias(dentry, new);
3265 				write_sequnlock(&rename_lock);
3266 				if (err) {
3267 					dput(new);
3268 					new = ERR_PTR(err);
3269 				}
3270 				dput(old_parent);
3271 			} else {
3272 				if (unlikely(!hlist_unhashed(&new->d_sib))) {
3273 					// secondary root getting spliced
3274 					spin_lock(&new->d_lock);
3275 					unlink_secondary_root(new);
3276 					spin_unlock(&new->d_lock);
3277 				}
3278 				__d_move(new, dentry, false);
3279 				write_sequnlock(&rename_lock);
3280 			}
3281 			iput(inode);
3282 			return new;
3283 		}
3284 	}
3285 out:
3286 	__d_add(dentry, inode, ops);
3287 	return NULL;
3288 }
3289 
3290 /**
3291  * d_splice_alias - splice a disconnected dentry into the tree if one exists
3292  * @inode:  the inode which may have a disconnected dentry
3293  * @dentry: a negative dentry which we want to point to the inode.
3294  *
3295  * If inode is a directory and has an IS_ROOT alias, then d_move that in
3296  * place of the given dentry and return it, else simply d_add the inode
3297  * to the dentry and return NULL.
3298  *
3299  * If a non-IS_ROOT directory is found, the filesystem is corrupt, and
3300  * we should error out: directories can't have multiple aliases.
3301  *
3302  * This is needed in the lookup routine of any filesystem that is exportable
3303  * (via knfsd) so that we can build dcache paths to directories effectively.
3304  *
3305  * If a dentry was found and moved, then it is returned.  Otherwise NULL
3306  * is returned.  This matches the expected return value of ->lookup.
3307  *
3308  * Cluster filesystems may call this function with a negative, hashed dentry.
3309  * In that case, we know that the inode will be a regular file, and also this
3310  * will only occur during atomic_open. So we need to check for the dentry
3311  * being already hashed only in the final case.
3312  */
3313 struct dentry *d_splice_alias(struct inode *inode, struct dentry *dentry)
3314 {
3315 	return d_splice_alias_ops(inode, dentry, NULL);
3316 }
3317 EXPORT_SYMBOL(d_splice_alias);
3318 
3319 /*
3320  * Test whether new_dentry is a subdirectory of old_dentry.
3321  *
3322  * Trivially implemented using the dcache structure
3323  */
3324 
3325 /**
3326  * is_subdir - is new dentry a subdirectory of old_dentry
3327  * @new_dentry: new dentry
3328  * @old_dentry: old dentry
3329  *
3330  * Returns true if new_dentry is a subdirectory of the parent (at any depth).
3331  * Returns false otherwise.
3332  * Caller must ensure that "new_dentry" is pinned before calling is_subdir()
3333  */
3334 
3335 bool is_subdir(struct dentry *new_dentry, struct dentry *old_dentry)
3336 {
3337 	bool subdir;
3338 	unsigned seq;
3339 
3340 	if (new_dentry == old_dentry)
3341 		return true;
3342 
3343 	/* Access d_parent under rcu as d_move() may change it. */
3344 	rcu_read_lock();
3345 	seq = read_seqbegin(&rename_lock);
3346 	subdir = d_ancestor(old_dentry, new_dentry);
3347 	 /* Try lockless once... */
3348 	if (read_seqretry(&rename_lock, seq)) {
3349 		/* ...else acquire lock for progress even on deep chains. */
3350 		read_seqlock_excl(&rename_lock);
3351 		subdir = d_ancestor(old_dentry, new_dentry);
3352 		read_sequnlock_excl(&rename_lock);
3353 	}
3354 	rcu_read_unlock();
3355 	return subdir;
3356 }
3357 EXPORT_SYMBOL(is_subdir);
3358 
3359 void d_mark_tmpfile(struct file *file, struct inode *inode)
3360 {
3361 	struct dentry *dentry = file->f_path.dentry;
3362 
3363 	BUG_ON(dname_external(dentry) ||
3364 		d_really_is_positive(dentry) ||
3365 		!d_unlinked(dentry));
3366 	spin_lock(&dentry->d_parent->d_lock);
3367 	spin_lock_nested(&dentry->d_lock, DENTRY_D_LOCK_NESTED);
3368 	dentry->__d_name.len = sprintf(dentry->d_shortname.string, "#%llu",
3369 				(unsigned long long)inode->i_ino);
3370 	spin_unlock(&dentry->d_lock);
3371 	spin_unlock(&dentry->d_parent->d_lock);
3372 }
3373 EXPORT_SYMBOL(d_mark_tmpfile);
3374 
3375 int d_mark_tmpfile_name(struct file *file, const struct qstr *name)
3376 {
3377 	struct dentry *dentry = file->f_path.dentry;
3378 	char *dname = dentry->d_shortname.string;
3379 
3380 	if (unlikely(dname_external(dentry) ||
3381 		     d_really_is_positive(dentry) ||
3382 		     !d_unlinked(dentry)))
3383 		return -EINVAL;
3384 	if (unlikely(name->len > DNAME_INLINE_LEN - 1))
3385 		return -ENAMETOOLONG;
3386 
3387 	spin_lock(&dentry->d_parent->d_lock);
3388 	spin_lock_nested(&dentry->d_lock, DENTRY_D_LOCK_NESTED);
3389 	dentry->__d_name.len = name->len;
3390 	memcpy(dname, name->name, name->len);
3391 	dname[name->len] = '\0';
3392 	spin_unlock(&dentry->d_lock);
3393 	spin_unlock(&dentry->d_parent->d_lock);
3394 	return 0;
3395 }
3396 EXPORT_SYMBOL(d_mark_tmpfile_name);
3397 
3398 void d_tmpfile(struct file *file, struct inode *inode)
3399 {
3400 	struct dentry *dentry = file->f_path.dentry;
3401 
3402 	inode_dec_link_count(inode);
3403 	d_mark_tmpfile(file, inode);
3404 	d_instantiate(dentry, inode);
3405 }
3406 EXPORT_SYMBOL(d_tmpfile);
3407 
3408 /*
3409  * Obtain inode number of the parent dentry.
3410  */
3411 ino_t d_parent_ino(struct dentry *dentry)
3412 {
3413 	struct dentry *parent;
3414 	struct inode *iparent;
3415 	unsigned seq;
3416 	ino_t ret;
3417 
3418 	scoped_guard(rcu) {
3419 		seq = raw_seqcount_begin(&dentry->d_seq);
3420 		parent = READ_ONCE(dentry->d_parent);
3421 		iparent = d_inode_rcu(parent);
3422 		if (likely(iparent)) {
3423 			ret = iparent->i_ino;
3424 			if (!read_seqcount_retry(&dentry->d_seq, seq))
3425 				return ret;
3426 		}
3427 	}
3428 
3429 	spin_lock(&dentry->d_lock);
3430 	ret = dentry->d_parent->d_inode->i_ino;
3431 	spin_unlock(&dentry->d_lock);
3432 	return ret;
3433 }
3434 EXPORT_SYMBOL(d_parent_ino);
3435 
3436 static __initdata unsigned long dhash_entries;
3437 static int __init set_dhash_entries(char *str)
3438 {
3439 	return kstrtoul(str, 0, &dhash_entries) == 0;
3440 }
3441 __setup("dhash_entries=", set_dhash_entries);
3442 
3443 static void __init dcache_init_early(void)
3444 {
3445 	/* If hashes are distributed across NUMA nodes, defer
3446 	 * hash allocation until vmalloc space is available.
3447 	 */
3448 	if (hashdist)
3449 		return;
3450 
3451 	dentry_hashtable =
3452 		alloc_large_system_hash("Dentry cache",
3453 					sizeof(struct hlist_bl_head),
3454 					dhash_entries,
3455 					13,
3456 					HASH_EARLY | HASH_ZERO,
3457 					&d_hash_shift,
3458 					NULL,
3459 					2,
3460 					0);
3461 	d_hash_shift = 32 - d_hash_shift;
3462 
3463 	runtime_const_init(shift, d_hash_shift);
3464 	runtime_const_init(ptr, dentry_hashtable);
3465 }
3466 
3467 static void __init dcache_init(void)
3468 {
3469 	/*
3470 	 * A constructor could be added for stable state like the lists,
3471 	 * but it is probably not worth it because of the cache nature
3472 	 * of the dcache.
3473 	 */
3474 	__dentry_cache = KMEM_CACHE_USERCOPY(dentry,
3475 		SLAB_RECLAIM_ACCOUNT|SLAB_PANIC|SLAB_ACCOUNT,
3476 		d_shortname.string);
3477 	runtime_const_init(ptr, __dentry_cache);
3478 
3479 	/* Hash may have been set up in dcache_init_early */
3480 	if (!hashdist)
3481 		return;
3482 
3483 	dentry_hashtable =
3484 		alloc_large_system_hash("Dentry cache",
3485 					sizeof(struct hlist_bl_head),
3486 					dhash_entries,
3487 					13,
3488 					HASH_ZERO,
3489 					&d_hash_shift,
3490 					NULL,
3491 					2,
3492 					0);
3493 	d_hash_shift = 32 - d_hash_shift;
3494 
3495 	runtime_const_init(shift, d_hash_shift);
3496 	runtime_const_init(ptr, dentry_hashtable);
3497 }
3498 
3499 void __init vfs_caches_init_early(void)
3500 {
3501 	int i;
3502 
3503 	for (i = 0; i < ARRAY_SIZE(in_lookup_hashtable); i++)
3504 		INIT_HLIST_BL_HEAD(&in_lookup_hashtable[i]);
3505 
3506 	dcache_init_early();
3507 	inode_init_early();
3508 }
3509 
3510 void __init vfs_caches_init(void)
3511 {
3512 	filename_init();
3513 	dcache_init();
3514 	inode_init();
3515 	files_init();
3516 	files_maxfiles_init();
3517 	mnt_init();
3518 	bdev_cache_init();
3519 	chrdev_init();
3520 }
3521