2 * Generic address resolution entity
5 * Pedro Roque <roque@di.fc.ul.pt>
6 * Alexey Kuznetsov <kuznet@ms2.inr.ac.ru>
8 * This program is free software; you can redistribute it and/or
9 * modify it under the terms of the GNU General Public License
10 * as published by the Free Software Foundation; either version
11 * 2 of the License, or (at your option) any later version.
14 * Vitaly E. Lavrov releasing NULL neighbor in neigh_add.
15 * Harald Welte Add neighbour cache statistics like rtstat
18 #include <linux/slab.h>
19 #include <linux/types.h>
20 #include <linux/kernel.h>
21 #include <linux/module.h>
22 #include <linux/socket.h>
23 #include <linux/netdevice.h>
24 #include <linux/proc_fs.h>
26 #include <linux/sysctl.h>
28 #include <linux/times.h>
29 #include <net/net_namespace.h>
30 #include <net/neighbour.h>
33 #include <net/netevent.h>
34 #include <net/netlink.h>
35 #include <linux/rtnetlink.h>
36 #include <linux/random.h>
37 #include <linux/string.h>
38 #include <linux/log2.h>
42 #define NEIGH_PRINTK(x...) printk(x)
43 #define NEIGH_NOPRINTK(x...) do { ; } while(0)
44 #define NEIGH_PRINTK1 NEIGH_NOPRINTK
45 #define NEIGH_PRINTK2 NEIGH_NOPRINTK
49 #define NEIGH_PRINTK1 NEIGH_PRINTK
53 #define NEIGH_PRINTK2 NEIGH_PRINTK
56 #define PNEIGH_HASHMASK 0xF
58 static void neigh_timer_handler(unsigned long arg
);
59 static void __neigh_notify(struct neighbour
*n
, int type
, int flags
);
60 static void neigh_update_notify(struct neighbour
*neigh
);
61 static int pneigh_ifdown(struct neigh_table
*tbl
, struct net_device
*dev
);
63 static struct neigh_table
*neigh_tables
;
65 static const struct file_operations neigh_stat_seq_fops
;
69 Neighbour hash table buckets are protected with rwlock tbl->lock.
71 - All the scans/updates to hash buckets MUST be made under this lock.
72 - NOTHING clever should be made under this lock: no callbacks
73 to protocol backends, no attempts to send something to network.
74 It will result in deadlocks, if backend/driver wants to use neighbour
76 - If the entry requires some non-trivial actions, increase
77 its reference count and release table lock.
79 Neighbour entries are protected:
80 - with reference count.
81 - with rwlock neigh->lock
83 Reference count prevents destruction.
85 neigh->lock mainly serializes ll address data and its validity state.
86 However, the same lock is used to protect another entry fields:
90 Again, nothing clever shall be made under neigh->lock,
91 the most complicated procedure, which we allow is dev->hard_header.
92 It is supposed, that dev->hard_header is simplistic and does
93 not make callbacks to neighbour tables.
95 The last lock is neigh_tbl_lock. It is pure SMP lock, protecting
96 list of neighbour tables. This list is used only in process context,
99 static DEFINE_RWLOCK(neigh_tbl_lock
);
101 static int neigh_blackhole(struct neighbour
*neigh
, struct sk_buff
*skb
)
107 static void neigh_cleanup_and_release(struct neighbour
*neigh
)
109 if (neigh
->parms
->neigh_cleanup
)
110 neigh
->parms
->neigh_cleanup(neigh
);
112 __neigh_notify(neigh
, RTM_DELNEIGH
, 0);
113 neigh_release(neigh
);
117 * It is random distribution in the interval (1/2)*base...(3/2)*base.
118 * It corresponds to default IPv6 settings and is not overridable,
119 * because it is really reasonable choice.
122 unsigned long neigh_rand_reach_time(unsigned long base
)
124 return base
? (net_random() % base
) + (base
>> 1) : 0;
126 EXPORT_SYMBOL(neigh_rand_reach_time
);
129 static int neigh_forced_gc(struct neigh_table
*tbl
)
133 struct neigh_hash_table
*nht
;
135 NEIGH_CACHE_STAT_INC(tbl
, forced_gc_runs
);
137 write_lock_bh(&tbl
->lock
);
138 nht
= rcu_dereference_protected(tbl
->nht
,
139 lockdep_is_held(&tbl
->lock
));
140 for (i
= 0; i
< (1 << nht
->hash_shift
); i
++) {
142 struct neighbour __rcu
**np
;
144 np
= &nht
->hash_buckets
[i
];
145 while ((n
= rcu_dereference_protected(*np
,
146 lockdep_is_held(&tbl
->lock
))) != NULL
) {
147 /* Neighbour record may be discarded if:
148 * - nobody refers to it.
149 * - it is not permanent
151 write_lock(&n
->lock
);
152 if (atomic_read(&n
->refcnt
) == 1 &&
153 !(n
->nud_state
& NUD_PERMANENT
)) {
154 rcu_assign_pointer(*np
,
155 rcu_dereference_protected(n
->next
,
156 lockdep_is_held(&tbl
->lock
)));
159 write_unlock(&n
->lock
);
160 neigh_cleanup_and_release(n
);
163 write_unlock(&n
->lock
);
168 tbl
->last_flush
= jiffies
;
170 write_unlock_bh(&tbl
->lock
);
175 static void neigh_add_timer(struct neighbour
*n
, unsigned long when
)
178 if (unlikely(mod_timer(&n
->timer
, when
))) {
179 printk("NEIGH: BUG, double timer add, state is %x\n",
185 static int neigh_del_timer(struct neighbour
*n
)
187 if ((n
->nud_state
& NUD_IN_TIMER
) &&
188 del_timer(&n
->timer
)) {
195 static void pneigh_queue_purge(struct sk_buff_head
*list
)
199 while ((skb
= skb_dequeue(list
)) != NULL
) {
205 static void neigh_flush_dev(struct neigh_table
*tbl
, struct net_device
*dev
)
208 struct neigh_hash_table
*nht
;
210 nht
= rcu_dereference_protected(tbl
->nht
,
211 lockdep_is_held(&tbl
->lock
));
213 for (i
= 0; i
< (1 << nht
->hash_shift
); i
++) {
215 struct neighbour __rcu
**np
= &nht
->hash_buckets
[i
];
217 while ((n
= rcu_dereference_protected(*np
,
218 lockdep_is_held(&tbl
->lock
))) != NULL
) {
219 if (dev
&& n
->dev
!= dev
) {
223 rcu_assign_pointer(*np
,
224 rcu_dereference_protected(n
->next
,
225 lockdep_is_held(&tbl
->lock
)));
226 write_lock(&n
->lock
);
230 if (atomic_read(&n
->refcnt
) != 1) {
231 /* The most unpleasant situation.
232 We must destroy neighbour entry,
233 but someone still uses it.
235 The destroy will be delayed until
236 the last user releases us, but
237 we must kill timers etc. and move
240 skb_queue_purge(&n
->arp_queue
);
241 n
->output
= neigh_blackhole
;
242 if (n
->nud_state
& NUD_VALID
)
243 n
->nud_state
= NUD_NOARP
;
245 n
->nud_state
= NUD_NONE
;
246 NEIGH_PRINTK2("neigh %p is stray.\n", n
);
248 write_unlock(&n
->lock
);
249 neigh_cleanup_and_release(n
);
254 void neigh_changeaddr(struct neigh_table
*tbl
, struct net_device
*dev
)
256 write_lock_bh(&tbl
->lock
);
257 neigh_flush_dev(tbl
, dev
);
258 write_unlock_bh(&tbl
->lock
);
260 EXPORT_SYMBOL(neigh_changeaddr
);
262 int neigh_ifdown(struct neigh_table
*tbl
, struct net_device
*dev
)
264 write_lock_bh(&tbl
->lock
);
265 neigh_flush_dev(tbl
, dev
);
266 pneigh_ifdown(tbl
, dev
);
267 write_unlock_bh(&tbl
->lock
);
269 del_timer_sync(&tbl
->proxy_timer
);
270 pneigh_queue_purge(&tbl
->proxy_queue
);
273 EXPORT_SYMBOL(neigh_ifdown
);
275 static struct neighbour
*neigh_alloc(struct neigh_table
*tbl
)
277 struct neighbour
*n
= NULL
;
278 unsigned long now
= jiffies
;
281 entries
= atomic_inc_return(&tbl
->entries
) - 1;
282 if (entries
>= tbl
->gc_thresh3
||
283 (entries
>= tbl
->gc_thresh2
&&
284 time_after(now
, tbl
->last_flush
+ 5 * HZ
))) {
285 if (!neigh_forced_gc(tbl
) &&
286 entries
>= tbl
->gc_thresh3
)
290 n
= kmem_cache_zalloc(tbl
->kmem_cachep
, GFP_ATOMIC
);
294 skb_queue_head_init(&n
->arp_queue
);
295 rwlock_init(&n
->lock
);
296 seqlock_init(&n
->ha_lock
);
297 n
->updated
= n
->used
= now
;
298 n
->nud_state
= NUD_NONE
;
299 n
->output
= neigh_blackhole
;
300 seqlock_init(&n
->hh
.hh_lock
);
301 n
->parms
= neigh_parms_clone(&tbl
->parms
);
302 setup_timer(&n
->timer
, neigh_timer_handler
, (unsigned long)n
);
304 NEIGH_CACHE_STAT_INC(tbl
, allocs
);
306 atomic_set(&n
->refcnt
, 1);
312 atomic_dec(&tbl
->entries
);
316 static struct neigh_hash_table
*neigh_hash_alloc(unsigned int shift
)
318 size_t size
= (1 << shift
) * sizeof(struct neighbour
*);
319 struct neigh_hash_table
*ret
;
320 struct neighbour __rcu
**buckets
;
322 ret
= kmalloc(sizeof(*ret
), GFP_ATOMIC
);
325 if (size
<= PAGE_SIZE
)
326 buckets
= kzalloc(size
, GFP_ATOMIC
);
328 buckets
= (struct neighbour __rcu
**)
329 __get_free_pages(GFP_ATOMIC
| __GFP_ZERO
,
335 ret
->hash_buckets
= buckets
;
336 ret
->hash_shift
= shift
;
337 get_random_bytes(&ret
->hash_rnd
, sizeof(ret
->hash_rnd
));
342 static void neigh_hash_free_rcu(struct rcu_head
*head
)
344 struct neigh_hash_table
*nht
= container_of(head
,
345 struct neigh_hash_table
,
347 size_t size
= (1 << nht
->hash_shift
) * sizeof(struct neighbour
*);
348 struct neighbour __rcu
**buckets
= nht
->hash_buckets
;
350 if (size
<= PAGE_SIZE
)
353 free_pages((unsigned long)buckets
, get_order(size
));
357 static struct neigh_hash_table
*neigh_hash_grow(struct neigh_table
*tbl
,
358 unsigned long new_shift
)
360 unsigned int i
, hash
;
361 struct neigh_hash_table
*new_nht
, *old_nht
;
363 NEIGH_CACHE_STAT_INC(tbl
, hash_grows
);
365 old_nht
= rcu_dereference_protected(tbl
->nht
,
366 lockdep_is_held(&tbl
->lock
));
367 new_nht
= neigh_hash_alloc(new_shift
);
371 for (i
= 0; i
< (1 << old_nht
->hash_shift
); i
++) {
372 struct neighbour
*n
, *next
;
374 for (n
= rcu_dereference_protected(old_nht
->hash_buckets
[i
],
375 lockdep_is_held(&tbl
->lock
));
378 hash
= tbl
->hash(n
->primary_key
, n
->dev
,
381 hash
>>= (32 - new_nht
->hash_shift
);
382 next
= rcu_dereference_protected(n
->next
,
383 lockdep_is_held(&tbl
->lock
));
385 rcu_assign_pointer(n
->next
,
386 rcu_dereference_protected(
387 new_nht
->hash_buckets
[hash
],
388 lockdep_is_held(&tbl
->lock
)));
389 rcu_assign_pointer(new_nht
->hash_buckets
[hash
], n
);
393 rcu_assign_pointer(tbl
->nht
, new_nht
);
394 call_rcu(&old_nht
->rcu
, neigh_hash_free_rcu
);
398 struct neighbour
*neigh_lookup(struct neigh_table
*tbl
, const void *pkey
,
399 struct net_device
*dev
)
402 int key_len
= tbl
->key_len
;
404 struct neigh_hash_table
*nht
;
406 NEIGH_CACHE_STAT_INC(tbl
, lookups
);
409 nht
= rcu_dereference_bh(tbl
->nht
);
410 hash_val
= tbl
->hash(pkey
, dev
, nht
->hash_rnd
) >> (32 - nht
->hash_shift
);
412 for (n
= rcu_dereference_bh(nht
->hash_buckets
[hash_val
]);
414 n
= rcu_dereference_bh(n
->next
)) {
415 if (dev
== n
->dev
&& !memcmp(n
->primary_key
, pkey
, key_len
)) {
416 if (!atomic_inc_not_zero(&n
->refcnt
))
418 NEIGH_CACHE_STAT_INC(tbl
, hits
);
423 rcu_read_unlock_bh();
426 EXPORT_SYMBOL(neigh_lookup
);
428 struct neighbour
*neigh_lookup_nodev(struct neigh_table
*tbl
, struct net
*net
,
432 int key_len
= tbl
->key_len
;
434 struct neigh_hash_table
*nht
;
436 NEIGH_CACHE_STAT_INC(tbl
, lookups
);
439 nht
= rcu_dereference_bh(tbl
->nht
);
440 hash_val
= tbl
->hash(pkey
, NULL
, nht
->hash_rnd
) >> (32 - nht
->hash_shift
);
442 for (n
= rcu_dereference_bh(nht
->hash_buckets
[hash_val
]);
444 n
= rcu_dereference_bh(n
->next
)) {
445 if (!memcmp(n
->primary_key
, pkey
, key_len
) &&
446 net_eq(dev_net(n
->dev
), net
)) {
447 if (!atomic_inc_not_zero(&n
->refcnt
))
449 NEIGH_CACHE_STAT_INC(tbl
, hits
);
454 rcu_read_unlock_bh();
457 EXPORT_SYMBOL(neigh_lookup_nodev
);
459 struct neighbour
*neigh_create(struct neigh_table
*tbl
, const void *pkey
,
460 struct net_device
*dev
)
463 int key_len
= tbl
->key_len
;
465 struct neighbour
*n1
, *rc
, *n
= neigh_alloc(tbl
);
466 struct neigh_hash_table
*nht
;
469 rc
= ERR_PTR(-ENOBUFS
);
473 memcpy(n
->primary_key
, pkey
, key_len
);
477 /* Protocol specific setup. */
478 if (tbl
->constructor
&& (error
= tbl
->constructor(n
)) < 0) {
480 goto out_neigh_release
;
483 /* Device specific setup. */
484 if (n
->parms
->neigh_setup
&&
485 (error
= n
->parms
->neigh_setup(n
)) < 0) {
487 goto out_neigh_release
;
490 n
->confirmed
= jiffies
- (n
->parms
->base_reachable_time
<< 1);
492 write_lock_bh(&tbl
->lock
);
493 nht
= rcu_dereference_protected(tbl
->nht
,
494 lockdep_is_held(&tbl
->lock
));
496 if (atomic_read(&tbl
->entries
) > (1 << nht
->hash_shift
))
497 nht
= neigh_hash_grow(tbl
, nht
->hash_shift
+ 1);
499 hash_val
= tbl
->hash(pkey
, dev
, nht
->hash_rnd
) >> (32 - nht
->hash_shift
);
501 if (n
->parms
->dead
) {
502 rc
= ERR_PTR(-EINVAL
);
506 for (n1
= rcu_dereference_protected(nht
->hash_buckets
[hash_val
],
507 lockdep_is_held(&tbl
->lock
));
509 n1
= rcu_dereference_protected(n1
->next
,
510 lockdep_is_held(&tbl
->lock
))) {
511 if (dev
== n1
->dev
&& !memcmp(n1
->primary_key
, pkey
, key_len
)) {
520 rcu_assign_pointer(n
->next
,
521 rcu_dereference_protected(nht
->hash_buckets
[hash_val
],
522 lockdep_is_held(&tbl
->lock
)));
523 rcu_assign_pointer(nht
->hash_buckets
[hash_val
], n
);
524 write_unlock_bh(&tbl
->lock
);
525 NEIGH_PRINTK2("neigh %p is created.\n", n
);
530 write_unlock_bh(&tbl
->lock
);
535 EXPORT_SYMBOL(neigh_create
);
537 static u32
pneigh_hash(const void *pkey
, int key_len
)
539 u32 hash_val
= *(u32
*)(pkey
+ key_len
- 4);
540 hash_val
^= (hash_val
>> 16);
541 hash_val
^= hash_val
>> 8;
542 hash_val
^= hash_val
>> 4;
543 hash_val
&= PNEIGH_HASHMASK
;
547 static struct pneigh_entry
*__pneigh_lookup_1(struct pneigh_entry
*n
,
551 struct net_device
*dev
)
554 if (!memcmp(n
->key
, pkey
, key_len
) &&
555 net_eq(pneigh_net(n
), net
) &&
556 (n
->dev
== dev
|| !n
->dev
))
563 struct pneigh_entry
*__pneigh_lookup(struct neigh_table
*tbl
,
564 struct net
*net
, const void *pkey
, struct net_device
*dev
)
566 int key_len
= tbl
->key_len
;
567 u32 hash_val
= pneigh_hash(pkey
, key_len
);
569 return __pneigh_lookup_1(tbl
->phash_buckets
[hash_val
],
570 net
, pkey
, key_len
, dev
);
572 EXPORT_SYMBOL_GPL(__pneigh_lookup
);
574 struct pneigh_entry
* pneigh_lookup(struct neigh_table
*tbl
,
575 struct net
*net
, const void *pkey
,
576 struct net_device
*dev
, int creat
)
578 struct pneigh_entry
*n
;
579 int key_len
= tbl
->key_len
;
580 u32 hash_val
= pneigh_hash(pkey
, key_len
);
582 read_lock_bh(&tbl
->lock
);
583 n
= __pneigh_lookup_1(tbl
->phash_buckets
[hash_val
],
584 net
, pkey
, key_len
, dev
);
585 read_unlock_bh(&tbl
->lock
);
592 n
= kmalloc(sizeof(*n
) + key_len
, GFP_KERNEL
);
596 write_pnet(&n
->net
, hold_net(net
));
597 memcpy(n
->key
, pkey
, key_len
);
602 if (tbl
->pconstructor
&& tbl
->pconstructor(n
)) {
611 write_lock_bh(&tbl
->lock
);
612 n
->next
= tbl
->phash_buckets
[hash_val
];
613 tbl
->phash_buckets
[hash_val
] = n
;
614 write_unlock_bh(&tbl
->lock
);
618 EXPORT_SYMBOL(pneigh_lookup
);
621 int pneigh_delete(struct neigh_table
*tbl
, struct net
*net
, const void *pkey
,
622 struct net_device
*dev
)
624 struct pneigh_entry
*n
, **np
;
625 int key_len
= tbl
->key_len
;
626 u32 hash_val
= pneigh_hash(pkey
, key_len
);
628 write_lock_bh(&tbl
->lock
);
629 for (np
= &tbl
->phash_buckets
[hash_val
]; (n
= *np
) != NULL
;
631 if (!memcmp(n
->key
, pkey
, key_len
) && n
->dev
== dev
&&
632 net_eq(pneigh_net(n
), net
)) {
634 write_unlock_bh(&tbl
->lock
);
635 if (tbl
->pdestructor
)
639 release_net(pneigh_net(n
));
644 write_unlock_bh(&tbl
->lock
);
648 static int pneigh_ifdown(struct neigh_table
*tbl
, struct net_device
*dev
)
650 struct pneigh_entry
*n
, **np
;
653 for (h
= 0; h
<= PNEIGH_HASHMASK
; h
++) {
654 np
= &tbl
->phash_buckets
[h
];
655 while ((n
= *np
) != NULL
) {
656 if (!dev
|| n
->dev
== dev
) {
658 if (tbl
->pdestructor
)
662 release_net(pneigh_net(n
));
672 static void neigh_parms_destroy(struct neigh_parms
*parms
);
674 static inline void neigh_parms_put(struct neigh_parms
*parms
)
676 if (atomic_dec_and_test(&parms
->refcnt
))
677 neigh_parms_destroy(parms
);
680 static void neigh_destroy_rcu(struct rcu_head
*head
)
682 struct neighbour
*neigh
= container_of(head
, struct neighbour
, rcu
);
684 kmem_cache_free(neigh
->tbl
->kmem_cachep
, neigh
);
687 * neighbour must already be out of the table;
690 void neigh_destroy(struct neighbour
*neigh
)
692 NEIGH_CACHE_STAT_INC(neigh
->tbl
, destroys
);
696 "Destroying alive neighbour %p\n", neigh
);
701 if (neigh_del_timer(neigh
))
702 printk(KERN_WARNING
"Impossible event.\n");
704 skb_queue_purge(&neigh
->arp_queue
);
707 neigh_parms_put(neigh
->parms
);
709 NEIGH_PRINTK2("neigh %p is destroyed.\n", neigh
);
711 atomic_dec(&neigh
->tbl
->entries
);
712 call_rcu(&neigh
->rcu
, neigh_destroy_rcu
);
714 EXPORT_SYMBOL(neigh_destroy
);
716 /* Neighbour state is suspicious;
719 Called with write_locked neigh.
721 static void neigh_suspect(struct neighbour
*neigh
)
723 NEIGH_PRINTK2("neigh %p is suspected.\n", neigh
);
725 neigh
->output
= neigh
->ops
->output
;
728 /* Neighbour state is OK;
731 Called with write_locked neigh.
733 static void neigh_connect(struct neighbour
*neigh
)
735 NEIGH_PRINTK2("neigh %p is connected.\n", neigh
);
737 neigh
->output
= neigh
->ops
->connected_output
;
740 static void neigh_periodic_work(struct work_struct
*work
)
742 struct neigh_table
*tbl
= container_of(work
, struct neigh_table
, gc_work
.work
);
744 struct neighbour __rcu
**np
;
746 struct neigh_hash_table
*nht
;
748 NEIGH_CACHE_STAT_INC(tbl
, periodic_gc_runs
);
750 write_lock_bh(&tbl
->lock
);
751 nht
= rcu_dereference_protected(tbl
->nht
,
752 lockdep_is_held(&tbl
->lock
));
755 * periodically recompute ReachableTime from random function
758 if (time_after(jiffies
, tbl
->last_rand
+ 300 * HZ
)) {
759 struct neigh_parms
*p
;
760 tbl
->last_rand
= jiffies
;
761 for (p
= &tbl
->parms
; p
; p
= p
->next
)
763 neigh_rand_reach_time(p
->base_reachable_time
);
766 for (i
= 0 ; i
< (1 << nht
->hash_shift
); i
++) {
767 np
= &nht
->hash_buckets
[i
];
769 while ((n
= rcu_dereference_protected(*np
,
770 lockdep_is_held(&tbl
->lock
))) != NULL
) {
773 write_lock(&n
->lock
);
775 state
= n
->nud_state
;
776 if (state
& (NUD_PERMANENT
| NUD_IN_TIMER
)) {
777 write_unlock(&n
->lock
);
781 if (time_before(n
->used
, n
->confirmed
))
782 n
->used
= n
->confirmed
;
784 if (atomic_read(&n
->refcnt
) == 1 &&
785 (state
== NUD_FAILED
||
786 time_after(jiffies
, n
->used
+ n
->parms
->gc_staletime
))) {
789 write_unlock(&n
->lock
);
790 neigh_cleanup_and_release(n
);
793 write_unlock(&n
->lock
);
799 * It's fine to release lock here, even if hash table
800 * grows while we are preempted.
802 write_unlock_bh(&tbl
->lock
);
804 write_lock_bh(&tbl
->lock
);
806 /* Cycle through all hash buckets every base_reachable_time/2 ticks.
807 * ARP entry timeouts range from 1/2 base_reachable_time to 3/2
808 * base_reachable_time.
810 schedule_delayed_work(&tbl
->gc_work
,
811 tbl
->parms
.base_reachable_time
>> 1);
812 write_unlock_bh(&tbl
->lock
);
815 static __inline__
int neigh_max_probes(struct neighbour
*n
)
817 struct neigh_parms
*p
= n
->parms
;
818 return (n
->nud_state
& NUD_PROBE
) ?
820 p
->ucast_probes
+ p
->app_probes
+ p
->mcast_probes
;
823 static void neigh_invalidate(struct neighbour
*neigh
)
824 __releases(neigh
->lock
)
825 __acquires(neigh
->lock
)
829 NEIGH_CACHE_STAT_INC(neigh
->tbl
, res_failed
);
830 NEIGH_PRINTK2("neigh %p is failed.\n", neigh
);
831 neigh
->updated
= jiffies
;
833 /* It is very thin place. report_unreachable is very complicated
834 routine. Particularly, it can hit the same neighbour entry!
836 So that, we try to be accurate and avoid dead loop. --ANK
838 while (neigh
->nud_state
== NUD_FAILED
&&
839 (skb
= __skb_dequeue(&neigh
->arp_queue
)) != NULL
) {
840 write_unlock(&neigh
->lock
);
841 neigh
->ops
->error_report(neigh
, skb
);
842 write_lock(&neigh
->lock
);
844 skb_queue_purge(&neigh
->arp_queue
);
847 static void neigh_probe(struct neighbour
*neigh
)
848 __releases(neigh
->lock
)
850 struct sk_buff
*skb
= skb_peek(&neigh
->arp_queue
);
851 /* keep skb alive even if arp_queue overflows */
853 skb
= skb_copy(skb
, GFP_ATOMIC
);
854 write_unlock(&neigh
->lock
);
855 neigh
->ops
->solicit(neigh
, skb
);
856 atomic_inc(&neigh
->probes
);
860 /* Called when a timer expires for a neighbour entry. */
862 static void neigh_timer_handler(unsigned long arg
)
864 unsigned long now
, next
;
865 struct neighbour
*neigh
= (struct neighbour
*)arg
;
869 write_lock(&neigh
->lock
);
871 state
= neigh
->nud_state
;
875 if (!(state
& NUD_IN_TIMER
)) {
877 printk(KERN_WARNING
"neigh: timer & !nud_in_timer\n");
882 if (state
& NUD_REACHABLE
) {
883 if (time_before_eq(now
,
884 neigh
->confirmed
+ neigh
->parms
->reachable_time
)) {
885 NEIGH_PRINTK2("neigh %p is still alive.\n", neigh
);
886 next
= neigh
->confirmed
+ neigh
->parms
->reachable_time
;
887 } else if (time_before_eq(now
,
888 neigh
->used
+ neigh
->parms
->delay_probe_time
)) {
889 NEIGH_PRINTK2("neigh %p is delayed.\n", neigh
);
890 neigh
->nud_state
= NUD_DELAY
;
891 neigh
->updated
= jiffies
;
892 neigh_suspect(neigh
);
893 next
= now
+ neigh
->parms
->delay_probe_time
;
895 NEIGH_PRINTK2("neigh %p is suspected.\n", neigh
);
896 neigh
->nud_state
= NUD_STALE
;
897 neigh
->updated
= jiffies
;
898 neigh_suspect(neigh
);
901 } else if (state
& NUD_DELAY
) {
902 if (time_before_eq(now
,
903 neigh
->confirmed
+ neigh
->parms
->delay_probe_time
)) {
904 NEIGH_PRINTK2("neigh %p is now reachable.\n", neigh
);
905 neigh
->nud_state
= NUD_REACHABLE
;
906 neigh
->updated
= jiffies
;
907 neigh_connect(neigh
);
909 next
= neigh
->confirmed
+ neigh
->parms
->reachable_time
;
911 NEIGH_PRINTK2("neigh %p is probed.\n", neigh
);
912 neigh
->nud_state
= NUD_PROBE
;
913 neigh
->updated
= jiffies
;
914 atomic_set(&neigh
->probes
, 0);
915 next
= now
+ neigh
->parms
->retrans_time
;
918 /* NUD_PROBE|NUD_INCOMPLETE */
919 next
= now
+ neigh
->parms
->retrans_time
;
922 if ((neigh
->nud_state
& (NUD_INCOMPLETE
| NUD_PROBE
)) &&
923 atomic_read(&neigh
->probes
) >= neigh_max_probes(neigh
)) {
924 neigh
->nud_state
= NUD_FAILED
;
926 neigh_invalidate(neigh
);
929 if (neigh
->nud_state
& NUD_IN_TIMER
) {
930 if (time_before(next
, jiffies
+ HZ
/2))
931 next
= jiffies
+ HZ
/2;
932 if (!mod_timer(&neigh
->timer
, next
))
935 if (neigh
->nud_state
& (NUD_INCOMPLETE
| NUD_PROBE
)) {
939 write_unlock(&neigh
->lock
);
943 neigh_update_notify(neigh
);
945 neigh_release(neigh
);
948 int __neigh_event_send(struct neighbour
*neigh
, struct sk_buff
*skb
)
951 bool immediate_probe
= false;
953 write_lock_bh(&neigh
->lock
);
956 if (neigh
->nud_state
& (NUD_CONNECTED
| NUD_DELAY
| NUD_PROBE
))
959 if (!(neigh
->nud_state
& (NUD_STALE
| NUD_INCOMPLETE
))) {
960 if (neigh
->parms
->mcast_probes
+ neigh
->parms
->app_probes
) {
961 unsigned long next
, now
= jiffies
;
963 atomic_set(&neigh
->probes
, neigh
->parms
->ucast_probes
);
964 neigh
->nud_state
= NUD_INCOMPLETE
;
965 neigh
->updated
= now
;
966 next
= now
+ max(neigh
->parms
->retrans_time
, HZ
/2);
967 neigh_add_timer(neigh
, next
);
968 immediate_probe
= true;
970 neigh
->nud_state
= NUD_FAILED
;
971 neigh
->updated
= jiffies
;
972 write_unlock_bh(&neigh
->lock
);
977 } else if (neigh
->nud_state
& NUD_STALE
) {
978 NEIGH_PRINTK2("neigh %p is delayed.\n", neigh
);
979 neigh
->nud_state
= NUD_DELAY
;
980 neigh
->updated
= jiffies
;
981 neigh_add_timer(neigh
,
982 jiffies
+ neigh
->parms
->delay_probe_time
);
985 if (neigh
->nud_state
== NUD_INCOMPLETE
) {
987 if (skb_queue_len(&neigh
->arp_queue
) >=
988 neigh
->parms
->queue_len
) {
989 struct sk_buff
*buff
;
990 buff
= __skb_dequeue(&neigh
->arp_queue
);
992 NEIGH_CACHE_STAT_INC(neigh
->tbl
, unres_discards
);
995 __skb_queue_tail(&neigh
->arp_queue
, skb
);
1000 if (immediate_probe
)
1003 write_unlock(&neigh
->lock
);
1007 EXPORT_SYMBOL(__neigh_event_send
);
1009 static void neigh_update_hhs(struct neighbour
*neigh
)
1011 struct hh_cache
*hh
;
1012 void (*update
)(struct hh_cache
*, const struct net_device
*, const unsigned char *)
1015 if (neigh
->dev
->header_ops
)
1016 update
= neigh
->dev
->header_ops
->cache_update
;
1021 write_seqlock_bh(&hh
->hh_lock
);
1022 update(hh
, neigh
->dev
, neigh
->ha
);
1023 write_sequnlock_bh(&hh
->hh_lock
);
1030 /* Generic update routine.
1031 -- lladdr is new lladdr or NULL, if it is not supplied.
1032 -- new is new state.
1034 NEIGH_UPDATE_F_OVERRIDE allows to override existing lladdr,
1036 NEIGH_UPDATE_F_WEAK_OVERRIDE will suspect existing "connected"
1037 lladdr instead of overriding it
1039 It also allows to retain current state
1040 if lladdr is unchanged.
1041 NEIGH_UPDATE_F_ADMIN means that the change is administrative.
1043 NEIGH_UPDATE_F_OVERRIDE_ISROUTER allows to override existing
1045 NEIGH_UPDATE_F_ISROUTER indicates if the neighbour is known as
1048 Caller MUST hold reference count on the entry.
1051 int neigh_update(struct neighbour
*neigh
, const u8
*lladdr
, u8
new,
1057 struct net_device
*dev
;
1058 int update_isrouter
= 0;
1060 write_lock_bh(&neigh
->lock
);
1063 old
= neigh
->nud_state
;
1066 if (!(flags
& NEIGH_UPDATE_F_ADMIN
) &&
1067 (old
& (NUD_NOARP
| NUD_PERMANENT
)))
1070 if (!(new & NUD_VALID
)) {
1071 neigh_del_timer(neigh
);
1072 if (old
& NUD_CONNECTED
)
1073 neigh_suspect(neigh
);
1074 neigh
->nud_state
= new;
1076 notify
= old
& NUD_VALID
;
1077 if ((old
& (NUD_INCOMPLETE
| NUD_PROBE
)) &&
1078 (new & NUD_FAILED
)) {
1079 neigh_invalidate(neigh
);
1085 /* Compare new lladdr with cached one */
1086 if (!dev
->addr_len
) {
1087 /* First case: device needs no address. */
1089 } else if (lladdr
) {
1090 /* The second case: if something is already cached
1091 and a new address is proposed:
1093 - if they are different, check override flag
1095 if ((old
& NUD_VALID
) &&
1096 !memcmp(lladdr
, neigh
->ha
, dev
->addr_len
))
1099 /* No address is supplied; if we know something,
1100 use it, otherwise discard the request.
1103 if (!(old
& NUD_VALID
))
1108 if (new & NUD_CONNECTED
)
1109 neigh
->confirmed
= jiffies
;
1110 neigh
->updated
= jiffies
;
1112 /* If entry was valid and address is not changed,
1113 do not change entry state, if new one is STALE.
1116 update_isrouter
= flags
& NEIGH_UPDATE_F_OVERRIDE_ISROUTER
;
1117 if (old
& NUD_VALID
) {
1118 if (lladdr
!= neigh
->ha
&& !(flags
& NEIGH_UPDATE_F_OVERRIDE
)) {
1119 update_isrouter
= 0;
1120 if ((flags
& NEIGH_UPDATE_F_WEAK_OVERRIDE
) &&
1121 (old
& NUD_CONNECTED
)) {
1127 if (lladdr
== neigh
->ha
&& new == NUD_STALE
&&
1128 ((flags
& NEIGH_UPDATE_F_WEAK_OVERRIDE
) ||
1129 (old
& NUD_CONNECTED
))
1136 neigh_del_timer(neigh
);
1137 if (new & NUD_IN_TIMER
)
1138 neigh_add_timer(neigh
, (jiffies
+
1139 ((new & NUD_REACHABLE
) ?
1140 neigh
->parms
->reachable_time
:
1142 neigh
->nud_state
= new;
1145 if (lladdr
!= neigh
->ha
) {
1146 write_seqlock(&neigh
->ha_lock
);
1147 memcpy(&neigh
->ha
, lladdr
, dev
->addr_len
);
1148 write_sequnlock(&neigh
->ha_lock
);
1149 neigh_update_hhs(neigh
);
1150 if (!(new & NUD_CONNECTED
))
1151 neigh
->confirmed
= jiffies
-
1152 (neigh
->parms
->base_reachable_time
<< 1);
1157 if (new & NUD_CONNECTED
)
1158 neigh_connect(neigh
);
1160 neigh_suspect(neigh
);
1161 if (!(old
& NUD_VALID
)) {
1162 struct sk_buff
*skb
;
1164 /* Again: avoid dead loop if something went wrong */
1166 while (neigh
->nud_state
& NUD_VALID
&&
1167 (skb
= __skb_dequeue(&neigh
->arp_queue
)) != NULL
) {
1168 struct dst_entry
*dst
= skb_dst(skb
);
1169 struct neighbour
*n2
, *n1
= neigh
;
1170 write_unlock_bh(&neigh
->lock
);
1171 /* On shaper/eql skb->dst->neighbour != neigh :( */
1172 if (dst
&& (n2
= dst_get_neighbour(dst
)) != NULL
)
1174 n1
->output(n1
, skb
);
1175 write_lock_bh(&neigh
->lock
);
1177 skb_queue_purge(&neigh
->arp_queue
);
1180 if (update_isrouter
) {
1181 neigh
->flags
= (flags
& NEIGH_UPDATE_F_ISROUTER
) ?
1182 (neigh
->flags
| NTF_ROUTER
) :
1183 (neigh
->flags
& ~NTF_ROUTER
);
1185 write_unlock_bh(&neigh
->lock
);
1188 neigh_update_notify(neigh
);
1192 EXPORT_SYMBOL(neigh_update
);
1194 struct neighbour
*neigh_event_ns(struct neigh_table
*tbl
,
1195 u8
*lladdr
, void *saddr
,
1196 struct net_device
*dev
)
1198 struct neighbour
*neigh
= __neigh_lookup(tbl
, saddr
, dev
,
1199 lladdr
|| !dev
->addr_len
);
1201 neigh_update(neigh
, lladdr
, NUD_STALE
,
1202 NEIGH_UPDATE_F_OVERRIDE
);
1205 EXPORT_SYMBOL(neigh_event_ns
);
1207 /* called with read_lock_bh(&n->lock); */
1208 static void neigh_hh_init(struct neighbour
*n
, struct dst_entry
*dst
)
1210 struct net_device
*dev
= dst
->dev
;
1211 __be16 prot
= dst
->ops
->protocol
;
1212 struct hh_cache
*hh
= &n
->hh
;
1214 write_lock_bh(&n
->lock
);
1216 /* Only one thread can come in here and initialize the
1220 dev
->header_ops
->cache(n
, hh
, prot
);
1222 write_unlock_bh(&n
->lock
);
1225 /* This function can be used in contexts, where only old dev_queue_xmit
1226 * worked, f.e. if you want to override normal output path (eql, shaper),
1227 * but resolution is not made yet.
1230 int neigh_compat_output(struct neighbour
*neigh
, struct sk_buff
*skb
)
1232 struct net_device
*dev
= skb
->dev
;
1234 __skb_pull(skb
, skb_network_offset(skb
));
1236 if (dev_hard_header(skb
, dev
, ntohs(skb
->protocol
), NULL
, NULL
,
1238 dev
->header_ops
->rebuild(skb
))
1241 return dev_queue_xmit(skb
);
1243 EXPORT_SYMBOL(neigh_compat_output
);
1245 /* Slow and careful. */
1247 int neigh_resolve_output(struct neighbour
*neigh
, struct sk_buff
*skb
)
1249 struct dst_entry
*dst
= skb_dst(skb
);
1255 __skb_pull(skb
, skb_network_offset(skb
));
1257 if (!neigh_event_send(neigh
, skb
)) {
1259 struct net_device
*dev
= neigh
->dev
;
1262 if (dev
->header_ops
->cache
&& !neigh
->hh
.hh_len
)
1263 neigh_hh_init(neigh
, dst
);
1266 seq
= read_seqbegin(&neigh
->ha_lock
);
1267 err
= dev_hard_header(skb
, dev
, ntohs(skb
->protocol
),
1268 neigh
->ha
, NULL
, skb
->len
);
1269 } while (read_seqretry(&neigh
->ha_lock
, seq
));
1272 rc
= dev_queue_xmit(skb
);
1279 NEIGH_PRINTK1("neigh_resolve_output: dst=%p neigh=%p\n",
1286 EXPORT_SYMBOL(neigh_resolve_output
);
1288 /* As fast as possible without hh cache */
1290 int neigh_connected_output(struct neighbour
*neigh
, struct sk_buff
*skb
)
1292 struct net_device
*dev
= neigh
->dev
;
1296 __skb_pull(skb
, skb_network_offset(skb
));
1299 seq
= read_seqbegin(&neigh
->ha_lock
);
1300 err
= dev_hard_header(skb
, dev
, ntohs(skb
->protocol
),
1301 neigh
->ha
, NULL
, skb
->len
);
1302 } while (read_seqretry(&neigh
->ha_lock
, seq
));
1305 err
= dev_queue_xmit(skb
);
1312 EXPORT_SYMBOL(neigh_connected_output
);
1314 int neigh_direct_output(struct neighbour
*neigh
, struct sk_buff
*skb
)
1316 return dev_queue_xmit(skb
);
1318 EXPORT_SYMBOL(neigh_direct_output
);
1320 static void neigh_proxy_process(unsigned long arg
)
1322 struct neigh_table
*tbl
= (struct neigh_table
*)arg
;
1323 long sched_next
= 0;
1324 unsigned long now
= jiffies
;
1325 struct sk_buff
*skb
, *n
;
1327 spin_lock(&tbl
->proxy_queue
.lock
);
1329 skb_queue_walk_safe(&tbl
->proxy_queue
, skb
, n
) {
1330 long tdif
= NEIGH_CB(skb
)->sched_next
- now
;
1333 struct net_device
*dev
= skb
->dev
;
1334 __skb_unlink(skb
, &tbl
->proxy_queue
);
1335 if (tbl
->proxy_redo
&& netif_running(dev
))
1336 tbl
->proxy_redo(skb
);
1341 } else if (!sched_next
|| tdif
< sched_next
)
1344 del_timer(&tbl
->proxy_timer
);
1346 mod_timer(&tbl
->proxy_timer
, jiffies
+ sched_next
);
1347 spin_unlock(&tbl
->proxy_queue
.lock
);
1350 void pneigh_enqueue(struct neigh_table
*tbl
, struct neigh_parms
*p
,
1351 struct sk_buff
*skb
)
1353 unsigned long now
= jiffies
;
1354 unsigned long sched_next
= now
+ (net_random() % p
->proxy_delay
);
1356 if (tbl
->proxy_queue
.qlen
> p
->proxy_qlen
) {
1361 NEIGH_CB(skb
)->sched_next
= sched_next
;
1362 NEIGH_CB(skb
)->flags
|= LOCALLY_ENQUEUED
;
1364 spin_lock(&tbl
->proxy_queue
.lock
);
1365 if (del_timer(&tbl
->proxy_timer
)) {
1366 if (time_before(tbl
->proxy_timer
.expires
, sched_next
))
1367 sched_next
= tbl
->proxy_timer
.expires
;
1371 __skb_queue_tail(&tbl
->proxy_queue
, skb
);
1372 mod_timer(&tbl
->proxy_timer
, sched_next
);
1373 spin_unlock(&tbl
->proxy_queue
.lock
);
1375 EXPORT_SYMBOL(pneigh_enqueue
);
1377 static inline struct neigh_parms
*lookup_neigh_parms(struct neigh_table
*tbl
,
1378 struct net
*net
, int ifindex
)
1380 struct neigh_parms
*p
;
1382 for (p
= &tbl
->parms
; p
; p
= p
->next
) {
1383 if ((p
->dev
&& p
->dev
->ifindex
== ifindex
&& net_eq(neigh_parms_net(p
), net
)) ||
1384 (!p
->dev
&& !ifindex
))
1391 struct neigh_parms
*neigh_parms_alloc(struct net_device
*dev
,
1392 struct neigh_table
*tbl
)
1394 struct neigh_parms
*p
, *ref
;
1395 struct net
*net
= dev_net(dev
);
1396 const struct net_device_ops
*ops
= dev
->netdev_ops
;
1398 ref
= lookup_neigh_parms(tbl
, net
, 0);
1402 p
= kmemdup(ref
, sizeof(*p
), GFP_KERNEL
);
1405 atomic_set(&p
->refcnt
, 1);
1407 neigh_rand_reach_time(p
->base_reachable_time
);
1409 if (ops
->ndo_neigh_setup
&& ops
->ndo_neigh_setup(dev
, p
)) {
1416 write_pnet(&p
->net
, hold_net(net
));
1417 p
->sysctl_table
= NULL
;
1418 write_lock_bh(&tbl
->lock
);
1419 p
->next
= tbl
->parms
.next
;
1420 tbl
->parms
.next
= p
;
1421 write_unlock_bh(&tbl
->lock
);
1425 EXPORT_SYMBOL(neigh_parms_alloc
);
1427 static void neigh_rcu_free_parms(struct rcu_head
*head
)
1429 struct neigh_parms
*parms
=
1430 container_of(head
, struct neigh_parms
, rcu_head
);
1432 neigh_parms_put(parms
);
1435 void neigh_parms_release(struct neigh_table
*tbl
, struct neigh_parms
*parms
)
1437 struct neigh_parms
**p
;
1439 if (!parms
|| parms
== &tbl
->parms
)
1441 write_lock_bh(&tbl
->lock
);
1442 for (p
= &tbl
->parms
.next
; *p
; p
= &(*p
)->next
) {
1446 write_unlock_bh(&tbl
->lock
);
1448 dev_put(parms
->dev
);
1449 call_rcu(&parms
->rcu_head
, neigh_rcu_free_parms
);
1453 write_unlock_bh(&tbl
->lock
);
1454 NEIGH_PRINTK1("neigh_parms_release: not found\n");
1456 EXPORT_SYMBOL(neigh_parms_release
);
1458 static void neigh_parms_destroy(struct neigh_parms
*parms
)
1460 release_net(neigh_parms_net(parms
));
1464 static struct lock_class_key neigh_table_proxy_queue_class
;
1466 void neigh_table_init_no_netlink(struct neigh_table
*tbl
)
1468 unsigned long now
= jiffies
;
1469 unsigned long phsize
;
1471 write_pnet(&tbl
->parms
.net
, &init_net
);
1472 atomic_set(&tbl
->parms
.refcnt
, 1);
1473 tbl
->parms
.reachable_time
=
1474 neigh_rand_reach_time(tbl
->parms
.base_reachable_time
);
1476 if (!tbl
->kmem_cachep
)
1478 kmem_cache_create(tbl
->id
, tbl
->entry_size
, 0,
1479 SLAB_HWCACHE_ALIGN
|SLAB_PANIC
,
1481 tbl
->stats
= alloc_percpu(struct neigh_statistics
);
1483 panic("cannot create neighbour cache statistics");
1485 #ifdef CONFIG_PROC_FS
1486 if (!proc_create_data(tbl
->id
, 0, init_net
.proc_net_stat
,
1487 &neigh_stat_seq_fops
, tbl
))
1488 panic("cannot create neighbour proc dir entry");
1491 RCU_INIT_POINTER(tbl
->nht
, neigh_hash_alloc(3));
1493 phsize
= (PNEIGH_HASHMASK
+ 1) * sizeof(struct pneigh_entry
*);
1494 tbl
->phash_buckets
= kzalloc(phsize
, GFP_KERNEL
);
1496 if (!tbl
->nht
|| !tbl
->phash_buckets
)
1497 panic("cannot allocate neighbour cache hashes");
1499 rwlock_init(&tbl
->lock
);
1500 INIT_DELAYED_WORK_DEFERRABLE(&tbl
->gc_work
, neigh_periodic_work
);
1501 schedule_delayed_work(&tbl
->gc_work
, tbl
->parms
.reachable_time
);
1502 setup_timer(&tbl
->proxy_timer
, neigh_proxy_process
, (unsigned long)tbl
);
1503 skb_queue_head_init_class(&tbl
->proxy_queue
,
1504 &neigh_table_proxy_queue_class
);
1506 tbl
->last_flush
= now
;
1507 tbl
->last_rand
= now
+ tbl
->parms
.reachable_time
* 20;
1509 EXPORT_SYMBOL(neigh_table_init_no_netlink
);
1511 void neigh_table_init(struct neigh_table
*tbl
)
1513 struct neigh_table
*tmp
;
1515 neigh_table_init_no_netlink(tbl
);
1516 write_lock(&neigh_tbl_lock
);
1517 for (tmp
= neigh_tables
; tmp
; tmp
= tmp
->next
) {
1518 if (tmp
->family
== tbl
->family
)
1521 tbl
->next
= neigh_tables
;
1523 write_unlock(&neigh_tbl_lock
);
1525 if (unlikely(tmp
)) {
1526 printk(KERN_ERR
"NEIGH: Registering multiple tables for "
1527 "family %d\n", tbl
->family
);
1531 EXPORT_SYMBOL(neigh_table_init
);
1533 int neigh_table_clear(struct neigh_table
*tbl
)
1535 struct neigh_table
**tp
;
1537 /* It is not clean... Fix it to unload IPv6 module safely */
1538 cancel_delayed_work_sync(&tbl
->gc_work
);
1539 del_timer_sync(&tbl
->proxy_timer
);
1540 pneigh_queue_purge(&tbl
->proxy_queue
);
1541 neigh_ifdown(tbl
, NULL
);
1542 if (atomic_read(&tbl
->entries
))
1543 printk(KERN_CRIT
"neighbour leakage\n");
1544 write_lock(&neigh_tbl_lock
);
1545 for (tp
= &neigh_tables
; *tp
; tp
= &(*tp
)->next
) {
1551 write_unlock(&neigh_tbl_lock
);
1553 call_rcu(&rcu_dereference_protected(tbl
->nht
, 1)->rcu
,
1554 neigh_hash_free_rcu
);
1557 kfree(tbl
->phash_buckets
);
1558 tbl
->phash_buckets
= NULL
;
1560 remove_proc_entry(tbl
->id
, init_net
.proc_net_stat
);
1562 free_percpu(tbl
->stats
);
1565 kmem_cache_destroy(tbl
->kmem_cachep
);
1566 tbl
->kmem_cachep
= NULL
;
1570 EXPORT_SYMBOL(neigh_table_clear
);
1572 static int neigh_delete(struct sk_buff
*skb
, struct nlmsghdr
*nlh
, void *arg
)
1574 struct net
*net
= sock_net(skb
->sk
);
1576 struct nlattr
*dst_attr
;
1577 struct neigh_table
*tbl
;
1578 struct net_device
*dev
= NULL
;
1582 if (nlmsg_len(nlh
) < sizeof(*ndm
))
1585 dst_attr
= nlmsg_find_attr(nlh
, sizeof(*ndm
), NDA_DST
);
1586 if (dst_attr
== NULL
)
1589 ndm
= nlmsg_data(nlh
);
1590 if (ndm
->ndm_ifindex
) {
1591 dev
= __dev_get_by_index(net
, ndm
->ndm_ifindex
);
1598 read_lock(&neigh_tbl_lock
);
1599 for (tbl
= neigh_tables
; tbl
; tbl
= tbl
->next
) {
1600 struct neighbour
*neigh
;
1602 if (tbl
->family
!= ndm
->ndm_family
)
1604 read_unlock(&neigh_tbl_lock
);
1606 if (nla_len(dst_attr
) < tbl
->key_len
)
1609 if (ndm
->ndm_flags
& NTF_PROXY
) {
1610 err
= pneigh_delete(tbl
, net
, nla_data(dst_attr
), dev
);
1617 neigh
= neigh_lookup(tbl
, nla_data(dst_attr
), dev
);
1618 if (neigh
== NULL
) {
1623 err
= neigh_update(neigh
, NULL
, NUD_FAILED
,
1624 NEIGH_UPDATE_F_OVERRIDE
|
1625 NEIGH_UPDATE_F_ADMIN
);
1626 neigh_release(neigh
);
1629 read_unlock(&neigh_tbl_lock
);
1630 err
= -EAFNOSUPPORT
;
1636 static int neigh_add(struct sk_buff
*skb
, struct nlmsghdr
*nlh
, void *arg
)
1638 struct net
*net
= sock_net(skb
->sk
);
1640 struct nlattr
*tb
[NDA_MAX
+1];
1641 struct neigh_table
*tbl
;
1642 struct net_device
*dev
= NULL
;
1646 err
= nlmsg_parse(nlh
, sizeof(*ndm
), tb
, NDA_MAX
, NULL
);
1651 if (tb
[NDA_DST
] == NULL
)
1654 ndm
= nlmsg_data(nlh
);
1655 if (ndm
->ndm_ifindex
) {
1656 dev
= __dev_get_by_index(net
, ndm
->ndm_ifindex
);
1662 if (tb
[NDA_LLADDR
] && nla_len(tb
[NDA_LLADDR
]) < dev
->addr_len
)
1666 read_lock(&neigh_tbl_lock
);
1667 for (tbl
= neigh_tables
; tbl
; tbl
= tbl
->next
) {
1668 int flags
= NEIGH_UPDATE_F_ADMIN
| NEIGH_UPDATE_F_OVERRIDE
;
1669 struct neighbour
*neigh
;
1672 if (tbl
->family
!= ndm
->ndm_family
)
1674 read_unlock(&neigh_tbl_lock
);
1676 if (nla_len(tb
[NDA_DST
]) < tbl
->key_len
)
1678 dst
= nla_data(tb
[NDA_DST
]);
1679 lladdr
= tb
[NDA_LLADDR
] ? nla_data(tb
[NDA_LLADDR
]) : NULL
;
1681 if (ndm
->ndm_flags
& NTF_PROXY
) {
1682 struct pneigh_entry
*pn
;
1685 pn
= pneigh_lookup(tbl
, net
, dst
, dev
, 1);
1687 pn
->flags
= ndm
->ndm_flags
;
1696 neigh
= neigh_lookup(tbl
, dst
, dev
);
1697 if (neigh
== NULL
) {
1698 if (!(nlh
->nlmsg_flags
& NLM_F_CREATE
)) {
1703 neigh
= __neigh_lookup_errno(tbl
, dst
, dev
);
1704 if (IS_ERR(neigh
)) {
1705 err
= PTR_ERR(neigh
);
1709 if (nlh
->nlmsg_flags
& NLM_F_EXCL
) {
1711 neigh_release(neigh
);
1715 if (!(nlh
->nlmsg_flags
& NLM_F_REPLACE
))
1716 flags
&= ~NEIGH_UPDATE_F_OVERRIDE
;
1719 if (ndm
->ndm_flags
& NTF_USE
) {
1720 neigh_event_send(neigh
, NULL
);
1723 err
= neigh_update(neigh
, lladdr
, ndm
->ndm_state
, flags
);
1724 neigh_release(neigh
);
1728 read_unlock(&neigh_tbl_lock
);
1729 err
= -EAFNOSUPPORT
;
1734 static int neightbl_fill_parms(struct sk_buff
*skb
, struct neigh_parms
*parms
)
1736 struct nlattr
*nest
;
1738 nest
= nla_nest_start(skb
, NDTA_PARMS
);
1743 NLA_PUT_U32(skb
, NDTPA_IFINDEX
, parms
->dev
->ifindex
);
1745 NLA_PUT_U32(skb
, NDTPA_REFCNT
, atomic_read(&parms
->refcnt
));
1746 NLA_PUT_U32(skb
, NDTPA_QUEUE_LEN
, parms
->queue_len
);
1747 NLA_PUT_U32(skb
, NDTPA_PROXY_QLEN
, parms
->proxy_qlen
);
1748 NLA_PUT_U32(skb
, NDTPA_APP_PROBES
, parms
->app_probes
);
1749 NLA_PUT_U32(skb
, NDTPA_UCAST_PROBES
, parms
->ucast_probes
);
1750 NLA_PUT_U32(skb
, NDTPA_MCAST_PROBES
, parms
->mcast_probes
);
1751 NLA_PUT_MSECS(skb
, NDTPA_REACHABLE_TIME
, parms
->reachable_time
);
1752 NLA_PUT_MSECS(skb
, NDTPA_BASE_REACHABLE_TIME
,
1753 parms
->base_reachable_time
);
1754 NLA_PUT_MSECS(skb
, NDTPA_GC_STALETIME
, parms
->gc_staletime
);
1755 NLA_PUT_MSECS(skb
, NDTPA_DELAY_PROBE_TIME
, parms
->delay_probe_time
);
1756 NLA_PUT_MSECS(skb
, NDTPA_RETRANS_TIME
, parms
->retrans_time
);
1757 NLA_PUT_MSECS(skb
, NDTPA_ANYCAST_DELAY
, parms
->anycast_delay
);
1758 NLA_PUT_MSECS(skb
, NDTPA_PROXY_DELAY
, parms
->proxy_delay
);
1759 NLA_PUT_MSECS(skb
, NDTPA_LOCKTIME
, parms
->locktime
);
1761 return nla_nest_end(skb
, nest
);
1764 nla_nest_cancel(skb
, nest
);
1768 static int neightbl_fill_info(struct sk_buff
*skb
, struct neigh_table
*tbl
,
1769 u32 pid
, u32 seq
, int type
, int flags
)
1771 struct nlmsghdr
*nlh
;
1772 struct ndtmsg
*ndtmsg
;
1774 nlh
= nlmsg_put(skb
, pid
, seq
, type
, sizeof(*ndtmsg
), flags
);
1778 ndtmsg
= nlmsg_data(nlh
);
1780 read_lock_bh(&tbl
->lock
);
1781 ndtmsg
->ndtm_family
= tbl
->family
;
1782 ndtmsg
->ndtm_pad1
= 0;
1783 ndtmsg
->ndtm_pad2
= 0;
1785 NLA_PUT_STRING(skb
, NDTA_NAME
, tbl
->id
);
1786 NLA_PUT_MSECS(skb
, NDTA_GC_INTERVAL
, tbl
->gc_interval
);
1787 NLA_PUT_U32(skb
, NDTA_THRESH1
, tbl
->gc_thresh1
);
1788 NLA_PUT_U32(skb
, NDTA_THRESH2
, tbl
->gc_thresh2
);
1789 NLA_PUT_U32(skb
, NDTA_THRESH3
, tbl
->gc_thresh3
);
1792 unsigned long now
= jiffies
;
1793 unsigned int flush_delta
= now
- tbl
->last_flush
;
1794 unsigned int rand_delta
= now
- tbl
->last_rand
;
1795 struct neigh_hash_table
*nht
;
1796 struct ndt_config ndc
= {
1797 .ndtc_key_len
= tbl
->key_len
,
1798 .ndtc_entry_size
= tbl
->entry_size
,
1799 .ndtc_entries
= atomic_read(&tbl
->entries
),
1800 .ndtc_last_flush
= jiffies_to_msecs(flush_delta
),
1801 .ndtc_last_rand
= jiffies_to_msecs(rand_delta
),
1802 .ndtc_proxy_qlen
= tbl
->proxy_queue
.qlen
,
1806 nht
= rcu_dereference_bh(tbl
->nht
);
1807 ndc
.ndtc_hash_rnd
= nht
->hash_rnd
;
1808 ndc
.ndtc_hash_mask
= ((1 << nht
->hash_shift
) - 1);
1809 rcu_read_unlock_bh();
1811 NLA_PUT(skb
, NDTA_CONFIG
, sizeof(ndc
), &ndc
);
1816 struct ndt_stats ndst
;
1818 memset(&ndst
, 0, sizeof(ndst
));
1820 for_each_possible_cpu(cpu
) {
1821 struct neigh_statistics
*st
;
1823 st
= per_cpu_ptr(tbl
->stats
, cpu
);
1824 ndst
.ndts_allocs
+= st
->allocs
;
1825 ndst
.ndts_destroys
+= st
->destroys
;
1826 ndst
.ndts_hash_grows
+= st
->hash_grows
;
1827 ndst
.ndts_res_failed
+= st
->res_failed
;
1828 ndst
.ndts_lookups
+= st
->lookups
;
1829 ndst
.ndts_hits
+= st
->hits
;
1830 ndst
.ndts_rcv_probes_mcast
+= st
->rcv_probes_mcast
;
1831 ndst
.ndts_rcv_probes_ucast
+= st
->rcv_probes_ucast
;
1832 ndst
.ndts_periodic_gc_runs
+= st
->periodic_gc_runs
;
1833 ndst
.ndts_forced_gc_runs
+= st
->forced_gc_runs
;
1836 NLA_PUT(skb
, NDTA_STATS
, sizeof(ndst
), &ndst
);
1839 BUG_ON(tbl
->parms
.dev
);
1840 if (neightbl_fill_parms(skb
, &tbl
->parms
) < 0)
1841 goto nla_put_failure
;
1843 read_unlock_bh(&tbl
->lock
);
1844 return nlmsg_end(skb
, nlh
);
1847 read_unlock_bh(&tbl
->lock
);
1848 nlmsg_cancel(skb
, nlh
);
1852 static int neightbl_fill_param_info(struct sk_buff
*skb
,
1853 struct neigh_table
*tbl
,
1854 struct neigh_parms
*parms
,
1855 u32 pid
, u32 seq
, int type
,
1858 struct ndtmsg
*ndtmsg
;
1859 struct nlmsghdr
*nlh
;
1861 nlh
= nlmsg_put(skb
, pid
, seq
, type
, sizeof(*ndtmsg
), flags
);
1865 ndtmsg
= nlmsg_data(nlh
);
1867 read_lock_bh(&tbl
->lock
);
1868 ndtmsg
->ndtm_family
= tbl
->family
;
1869 ndtmsg
->ndtm_pad1
= 0;
1870 ndtmsg
->ndtm_pad2
= 0;
1872 if (nla_put_string(skb
, NDTA_NAME
, tbl
->id
) < 0 ||
1873 neightbl_fill_parms(skb
, parms
) < 0)
1876 read_unlock_bh(&tbl
->lock
);
1877 return nlmsg_end(skb
, nlh
);
1879 read_unlock_bh(&tbl
->lock
);
1880 nlmsg_cancel(skb
, nlh
);
1884 static const struct nla_policy nl_neightbl_policy
[NDTA_MAX
+1] = {
1885 [NDTA_NAME
] = { .type
= NLA_STRING
},
1886 [NDTA_THRESH1
] = { .type
= NLA_U32
},
1887 [NDTA_THRESH2
] = { .type
= NLA_U32
},
1888 [NDTA_THRESH3
] = { .type
= NLA_U32
},
1889 [NDTA_GC_INTERVAL
] = { .type
= NLA_U64
},
1890 [NDTA_PARMS
] = { .type
= NLA_NESTED
},
1893 static const struct nla_policy nl_ntbl_parm_policy
[NDTPA_MAX
+1] = {
1894 [NDTPA_IFINDEX
] = { .type
= NLA_U32
},
1895 [NDTPA_QUEUE_LEN
] = { .type
= NLA_U32
},
1896 [NDTPA_PROXY_QLEN
] = { .type
= NLA_U32
},
1897 [NDTPA_APP_PROBES
] = { .type
= NLA_U32
},
1898 [NDTPA_UCAST_PROBES
] = { .type
= NLA_U32
},
1899 [NDTPA_MCAST_PROBES
] = { .type
= NLA_U32
},
1900 [NDTPA_BASE_REACHABLE_TIME
] = { .type
= NLA_U64
},
1901 [NDTPA_GC_STALETIME
] = { .type
= NLA_U64
},
1902 [NDTPA_DELAY_PROBE_TIME
] = { .type
= NLA_U64
},
1903 [NDTPA_RETRANS_TIME
] = { .type
= NLA_U64
},
1904 [NDTPA_ANYCAST_DELAY
] = { .type
= NLA_U64
},
1905 [NDTPA_PROXY_DELAY
] = { .type
= NLA_U64
},
1906 [NDTPA_LOCKTIME
] = { .type
= NLA_U64
},
1909 static int neightbl_set(struct sk_buff
*skb
, struct nlmsghdr
*nlh
, void *arg
)
1911 struct net
*net
= sock_net(skb
->sk
);
1912 struct neigh_table
*tbl
;
1913 struct ndtmsg
*ndtmsg
;
1914 struct nlattr
*tb
[NDTA_MAX
+1];
1917 err
= nlmsg_parse(nlh
, sizeof(*ndtmsg
), tb
, NDTA_MAX
,
1918 nl_neightbl_policy
);
1922 if (tb
[NDTA_NAME
] == NULL
) {
1927 ndtmsg
= nlmsg_data(nlh
);
1928 read_lock(&neigh_tbl_lock
);
1929 for (tbl
= neigh_tables
; tbl
; tbl
= tbl
->next
) {
1930 if (ndtmsg
->ndtm_family
&& tbl
->family
!= ndtmsg
->ndtm_family
)
1933 if (nla_strcmp(tb
[NDTA_NAME
], tbl
->id
) == 0)
1943 * We acquire tbl->lock to be nice to the periodic timers and
1944 * make sure they always see a consistent set of values.
1946 write_lock_bh(&tbl
->lock
);
1948 if (tb
[NDTA_PARMS
]) {
1949 struct nlattr
*tbp
[NDTPA_MAX
+1];
1950 struct neigh_parms
*p
;
1953 err
= nla_parse_nested(tbp
, NDTPA_MAX
, tb
[NDTA_PARMS
],
1954 nl_ntbl_parm_policy
);
1956 goto errout_tbl_lock
;
1958 if (tbp
[NDTPA_IFINDEX
])
1959 ifindex
= nla_get_u32(tbp
[NDTPA_IFINDEX
]);
1961 p
= lookup_neigh_parms(tbl
, net
, ifindex
);
1964 goto errout_tbl_lock
;
1967 for (i
= 1; i
<= NDTPA_MAX
; i
++) {
1972 case NDTPA_QUEUE_LEN
:
1973 p
->queue_len
= nla_get_u32(tbp
[i
]);
1975 case NDTPA_PROXY_QLEN
:
1976 p
->proxy_qlen
= nla_get_u32(tbp
[i
]);
1978 case NDTPA_APP_PROBES
:
1979 p
->app_probes
= nla_get_u32(tbp
[i
]);
1981 case NDTPA_UCAST_PROBES
:
1982 p
->ucast_probes
= nla_get_u32(tbp
[i
]);
1984 case NDTPA_MCAST_PROBES
:
1985 p
->mcast_probes
= nla_get_u32(tbp
[i
]);
1987 case NDTPA_BASE_REACHABLE_TIME
:
1988 p
->base_reachable_time
= nla_get_msecs(tbp
[i
]);
1990 case NDTPA_GC_STALETIME
:
1991 p
->gc_staletime
= nla_get_msecs(tbp
[i
]);
1993 case NDTPA_DELAY_PROBE_TIME
:
1994 p
->delay_probe_time
= nla_get_msecs(tbp
[i
]);
1996 case NDTPA_RETRANS_TIME
:
1997 p
->retrans_time
= nla_get_msecs(tbp
[i
]);
1999 case NDTPA_ANYCAST_DELAY
:
2000 p
->anycast_delay
= nla_get_msecs(tbp
[i
]);
2002 case NDTPA_PROXY_DELAY
:
2003 p
->proxy_delay
= nla_get_msecs(tbp
[i
]);
2005 case NDTPA_LOCKTIME
:
2006 p
->locktime
= nla_get_msecs(tbp
[i
]);
2012 if (tb
[NDTA_THRESH1
])
2013 tbl
->gc_thresh1
= nla_get_u32(tb
[NDTA_THRESH1
]);
2015 if (tb
[NDTA_THRESH2
])
2016 tbl
->gc_thresh2
= nla_get_u32(tb
[NDTA_THRESH2
]);
2018 if (tb
[NDTA_THRESH3
])
2019 tbl
->gc_thresh3
= nla_get_u32(tb
[NDTA_THRESH3
]);
2021 if (tb
[NDTA_GC_INTERVAL
])
2022 tbl
->gc_interval
= nla_get_msecs(tb
[NDTA_GC_INTERVAL
]);
2027 write_unlock_bh(&tbl
->lock
);
2029 read_unlock(&neigh_tbl_lock
);
2034 static int neightbl_dump_info(struct sk_buff
*skb
, struct netlink_callback
*cb
)
2036 struct net
*net
= sock_net(skb
->sk
);
2037 int family
, tidx
, nidx
= 0;
2038 int tbl_skip
= cb
->args
[0];
2039 int neigh_skip
= cb
->args
[1];
2040 struct neigh_table
*tbl
;
2042 family
= ((struct rtgenmsg
*) nlmsg_data(cb
->nlh
))->rtgen_family
;
2044 read_lock(&neigh_tbl_lock
);
2045 for (tbl
= neigh_tables
, tidx
= 0; tbl
; tbl
= tbl
->next
, tidx
++) {
2046 struct neigh_parms
*p
;
2048 if (tidx
< tbl_skip
|| (family
&& tbl
->family
!= family
))
2051 if (neightbl_fill_info(skb
, tbl
, NETLINK_CB(cb
->skb
).pid
,
2052 cb
->nlh
->nlmsg_seq
, RTM_NEWNEIGHTBL
,
2056 for (nidx
= 0, p
= tbl
->parms
.next
; p
; p
= p
->next
) {
2057 if (!net_eq(neigh_parms_net(p
), net
))
2060 if (nidx
< neigh_skip
)
2063 if (neightbl_fill_param_info(skb
, tbl
, p
,
2064 NETLINK_CB(cb
->skb
).pid
,
2076 read_unlock(&neigh_tbl_lock
);
2083 static int neigh_fill_info(struct sk_buff
*skb
, struct neighbour
*neigh
,
2084 u32 pid
, u32 seq
, int type
, unsigned int flags
)
2086 unsigned long now
= jiffies
;
2087 struct nda_cacheinfo ci
;
2088 struct nlmsghdr
*nlh
;
2091 nlh
= nlmsg_put(skb
, pid
, seq
, type
, sizeof(*ndm
), flags
);
2095 ndm
= nlmsg_data(nlh
);
2096 ndm
->ndm_family
= neigh
->ops
->family
;
2099 ndm
->ndm_flags
= neigh
->flags
;
2100 ndm
->ndm_type
= neigh
->type
;
2101 ndm
->ndm_ifindex
= neigh
->dev
->ifindex
;
2103 NLA_PUT(skb
, NDA_DST
, neigh
->tbl
->key_len
, neigh
->primary_key
);
2105 read_lock_bh(&neigh
->lock
);
2106 ndm
->ndm_state
= neigh
->nud_state
;
2107 if (neigh
->nud_state
& NUD_VALID
) {
2108 char haddr
[MAX_ADDR_LEN
];
2110 neigh_ha_snapshot(haddr
, neigh
, neigh
->dev
);
2111 if (nla_put(skb
, NDA_LLADDR
, neigh
->dev
->addr_len
, haddr
) < 0) {
2112 read_unlock_bh(&neigh
->lock
);
2113 goto nla_put_failure
;
2117 ci
.ndm_used
= jiffies_to_clock_t(now
- neigh
->used
);
2118 ci
.ndm_confirmed
= jiffies_to_clock_t(now
- neigh
->confirmed
);
2119 ci
.ndm_updated
= jiffies_to_clock_t(now
- neigh
->updated
);
2120 ci
.ndm_refcnt
= atomic_read(&neigh
->refcnt
) - 1;
2121 read_unlock_bh(&neigh
->lock
);
2123 NLA_PUT_U32(skb
, NDA_PROBES
, atomic_read(&neigh
->probes
));
2124 NLA_PUT(skb
, NDA_CACHEINFO
, sizeof(ci
), &ci
);
2126 return nlmsg_end(skb
, nlh
);
2129 nlmsg_cancel(skb
, nlh
);
2133 static void neigh_update_notify(struct neighbour
*neigh
)
2135 call_netevent_notifiers(NETEVENT_NEIGH_UPDATE
, neigh
);
2136 __neigh_notify(neigh
, RTM_NEWNEIGH
, 0);
2139 static int neigh_dump_table(struct neigh_table
*tbl
, struct sk_buff
*skb
,
2140 struct netlink_callback
*cb
)
2142 struct net
*net
= sock_net(skb
->sk
);
2143 struct neighbour
*n
;
2144 int rc
, h
, s_h
= cb
->args
[1];
2145 int idx
, s_idx
= idx
= cb
->args
[2];
2146 struct neigh_hash_table
*nht
;
2149 nht
= rcu_dereference_bh(tbl
->nht
);
2151 for (h
= 0; h
< (1 << nht
->hash_shift
); h
++) {
2156 for (n
= rcu_dereference_bh(nht
->hash_buckets
[h
]), idx
= 0;
2158 n
= rcu_dereference_bh(n
->next
)) {
2159 if (!net_eq(dev_net(n
->dev
), net
))
2163 if (neigh_fill_info(skb
, n
, NETLINK_CB(cb
->skb
).pid
,
2166 NLM_F_MULTI
) <= 0) {
2176 rcu_read_unlock_bh();
2182 static int neigh_dump_info(struct sk_buff
*skb
, struct netlink_callback
*cb
)
2184 struct neigh_table
*tbl
;
2187 read_lock(&neigh_tbl_lock
);
2188 family
= ((struct rtgenmsg
*) nlmsg_data(cb
->nlh
))->rtgen_family
;
2191 for (tbl
= neigh_tables
, t
= 0; tbl
; tbl
= tbl
->next
, t
++) {
2192 if (t
< s_t
|| (family
&& tbl
->family
!= family
))
2195 memset(&cb
->args
[1], 0, sizeof(cb
->args
) -
2196 sizeof(cb
->args
[0]));
2197 if (neigh_dump_table(tbl
, skb
, cb
) < 0)
2200 read_unlock(&neigh_tbl_lock
);
2206 void neigh_for_each(struct neigh_table
*tbl
, void (*cb
)(struct neighbour
*, void *), void *cookie
)
2209 struct neigh_hash_table
*nht
;
2212 nht
= rcu_dereference_bh(tbl
->nht
);
2214 read_lock(&tbl
->lock
); /* avoid resizes */
2215 for (chain
= 0; chain
< (1 << nht
->hash_shift
); chain
++) {
2216 struct neighbour
*n
;
2218 for (n
= rcu_dereference_bh(nht
->hash_buckets
[chain
]);
2220 n
= rcu_dereference_bh(n
->next
))
2223 read_unlock(&tbl
->lock
);
2224 rcu_read_unlock_bh();
2226 EXPORT_SYMBOL(neigh_for_each
);
2228 /* The tbl->lock must be held as a writer and BH disabled. */
2229 void __neigh_for_each_release(struct neigh_table
*tbl
,
2230 int (*cb
)(struct neighbour
*))
2233 struct neigh_hash_table
*nht
;
2235 nht
= rcu_dereference_protected(tbl
->nht
,
2236 lockdep_is_held(&tbl
->lock
));
2237 for (chain
= 0; chain
< (1 << nht
->hash_shift
); chain
++) {
2238 struct neighbour
*n
;
2239 struct neighbour __rcu
**np
;
2241 np
= &nht
->hash_buckets
[chain
];
2242 while ((n
= rcu_dereference_protected(*np
,
2243 lockdep_is_held(&tbl
->lock
))) != NULL
) {
2246 write_lock(&n
->lock
);
2249 rcu_assign_pointer(*np
,
2250 rcu_dereference_protected(n
->next
,
2251 lockdep_is_held(&tbl
->lock
)));
2255 write_unlock(&n
->lock
);
2257 neigh_cleanup_and_release(n
);
2261 EXPORT_SYMBOL(__neigh_for_each_release
);
2263 #ifdef CONFIG_PROC_FS
2265 static struct neighbour
*neigh_get_first(struct seq_file
*seq
)
2267 struct neigh_seq_state
*state
= seq
->private;
2268 struct net
*net
= seq_file_net(seq
);
2269 struct neigh_hash_table
*nht
= state
->nht
;
2270 struct neighbour
*n
= NULL
;
2271 int bucket
= state
->bucket
;
2273 state
->flags
&= ~NEIGH_SEQ_IS_PNEIGH
;
2274 for (bucket
= 0; bucket
< (1 << nht
->hash_shift
); bucket
++) {
2275 n
= rcu_dereference_bh(nht
->hash_buckets
[bucket
]);
2278 if (!net_eq(dev_net(n
->dev
), net
))
2280 if (state
->neigh_sub_iter
) {
2284 v
= state
->neigh_sub_iter(state
, n
, &fakep
);
2288 if (!(state
->flags
& NEIGH_SEQ_SKIP_NOARP
))
2290 if (n
->nud_state
& ~NUD_NOARP
)
2293 n
= rcu_dereference_bh(n
->next
);
2299 state
->bucket
= bucket
;
2304 static struct neighbour
*neigh_get_next(struct seq_file
*seq
,
2305 struct neighbour
*n
,
2308 struct neigh_seq_state
*state
= seq
->private;
2309 struct net
*net
= seq_file_net(seq
);
2310 struct neigh_hash_table
*nht
= state
->nht
;
2312 if (state
->neigh_sub_iter
) {
2313 void *v
= state
->neigh_sub_iter(state
, n
, pos
);
2317 n
= rcu_dereference_bh(n
->next
);
2321 if (!net_eq(dev_net(n
->dev
), net
))
2323 if (state
->neigh_sub_iter
) {
2324 void *v
= state
->neigh_sub_iter(state
, n
, pos
);
2329 if (!(state
->flags
& NEIGH_SEQ_SKIP_NOARP
))
2332 if (n
->nud_state
& ~NUD_NOARP
)
2335 n
= rcu_dereference_bh(n
->next
);
2341 if (++state
->bucket
>= (1 << nht
->hash_shift
))
2344 n
= rcu_dereference_bh(nht
->hash_buckets
[state
->bucket
]);
2352 static struct neighbour
*neigh_get_idx(struct seq_file
*seq
, loff_t
*pos
)
2354 struct neighbour
*n
= neigh_get_first(seq
);
2359 n
= neigh_get_next(seq
, n
, pos
);
2364 return *pos
? NULL
: n
;
2367 static struct pneigh_entry
*pneigh_get_first(struct seq_file
*seq
)
2369 struct neigh_seq_state
*state
= seq
->private;
2370 struct net
*net
= seq_file_net(seq
);
2371 struct neigh_table
*tbl
= state
->tbl
;
2372 struct pneigh_entry
*pn
= NULL
;
2373 int bucket
= state
->bucket
;
2375 state
->flags
|= NEIGH_SEQ_IS_PNEIGH
;
2376 for (bucket
= 0; bucket
<= PNEIGH_HASHMASK
; bucket
++) {
2377 pn
= tbl
->phash_buckets
[bucket
];
2378 while (pn
&& !net_eq(pneigh_net(pn
), net
))
2383 state
->bucket
= bucket
;
2388 static struct pneigh_entry
*pneigh_get_next(struct seq_file
*seq
,
2389 struct pneigh_entry
*pn
,
2392 struct neigh_seq_state
*state
= seq
->private;
2393 struct net
*net
= seq_file_net(seq
);
2394 struct neigh_table
*tbl
= state
->tbl
;
2398 if (++state
->bucket
> PNEIGH_HASHMASK
)
2400 pn
= tbl
->phash_buckets
[state
->bucket
];
2401 while (pn
&& !net_eq(pneigh_net(pn
), net
))
2413 static struct pneigh_entry
*pneigh_get_idx(struct seq_file
*seq
, loff_t
*pos
)
2415 struct pneigh_entry
*pn
= pneigh_get_first(seq
);
2420 pn
= pneigh_get_next(seq
, pn
, pos
);
2425 return *pos
? NULL
: pn
;
2428 static void *neigh_get_idx_any(struct seq_file
*seq
, loff_t
*pos
)
2430 struct neigh_seq_state
*state
= seq
->private;
2432 loff_t idxpos
= *pos
;
2434 rc
= neigh_get_idx(seq
, &idxpos
);
2435 if (!rc
&& !(state
->flags
& NEIGH_SEQ_NEIGH_ONLY
))
2436 rc
= pneigh_get_idx(seq
, &idxpos
);
2441 void *neigh_seq_start(struct seq_file
*seq
, loff_t
*pos
, struct neigh_table
*tbl
, unsigned int neigh_seq_flags
)
2444 struct neigh_seq_state
*state
= seq
->private;
2448 state
->flags
= (neigh_seq_flags
& ~NEIGH_SEQ_IS_PNEIGH
);
2451 state
->nht
= rcu_dereference_bh(tbl
->nht
);
2453 return *pos
? neigh_get_idx_any(seq
, pos
) : SEQ_START_TOKEN
;
2455 EXPORT_SYMBOL(neigh_seq_start
);
2457 void *neigh_seq_next(struct seq_file
*seq
, void *v
, loff_t
*pos
)
2459 struct neigh_seq_state
*state
;
2462 if (v
== SEQ_START_TOKEN
) {
2463 rc
= neigh_get_first(seq
);
2467 state
= seq
->private;
2468 if (!(state
->flags
& NEIGH_SEQ_IS_PNEIGH
)) {
2469 rc
= neigh_get_next(seq
, v
, NULL
);
2472 if (!(state
->flags
& NEIGH_SEQ_NEIGH_ONLY
))
2473 rc
= pneigh_get_first(seq
);
2475 BUG_ON(state
->flags
& NEIGH_SEQ_NEIGH_ONLY
);
2476 rc
= pneigh_get_next(seq
, v
, NULL
);
2482 EXPORT_SYMBOL(neigh_seq_next
);
2484 void neigh_seq_stop(struct seq_file
*seq
, void *v
)
2487 rcu_read_unlock_bh();
2489 EXPORT_SYMBOL(neigh_seq_stop
);
2491 /* statistics via seq_file */
2493 static void *neigh_stat_seq_start(struct seq_file
*seq
, loff_t
*pos
)
2495 struct neigh_table
*tbl
= seq
->private;
2499 return SEQ_START_TOKEN
;
2501 for (cpu
= *pos
-1; cpu
< nr_cpu_ids
; ++cpu
) {
2502 if (!cpu_possible(cpu
))
2505 return per_cpu_ptr(tbl
->stats
, cpu
);
2510 static void *neigh_stat_seq_next(struct seq_file
*seq
, void *v
, loff_t
*pos
)
2512 struct neigh_table
*tbl
= seq
->private;
2515 for (cpu
= *pos
; cpu
< nr_cpu_ids
; ++cpu
) {
2516 if (!cpu_possible(cpu
))
2519 return per_cpu_ptr(tbl
->stats
, cpu
);
2524 static void neigh_stat_seq_stop(struct seq_file
*seq
, void *v
)
2529 static int neigh_stat_seq_show(struct seq_file
*seq
, void *v
)
2531 struct neigh_table
*tbl
= seq
->private;
2532 struct neigh_statistics
*st
= v
;
2534 if (v
== SEQ_START_TOKEN
) {
2535 seq_printf(seq
, "entries allocs destroys hash_grows lookups hits res_failed rcv_probes_mcast rcv_probes_ucast periodic_gc_runs forced_gc_runs unresolved_discards\n");
2539 seq_printf(seq
, "%08x %08lx %08lx %08lx %08lx %08lx %08lx "
2540 "%08lx %08lx %08lx %08lx %08lx\n",
2541 atomic_read(&tbl
->entries
),
2552 st
->rcv_probes_mcast
,
2553 st
->rcv_probes_ucast
,
2555 st
->periodic_gc_runs
,
2563 static const struct seq_operations neigh_stat_seq_ops
= {
2564 .start
= neigh_stat_seq_start
,
2565 .next
= neigh_stat_seq_next
,
2566 .stop
= neigh_stat_seq_stop
,
2567 .show
= neigh_stat_seq_show
,
2570 static int neigh_stat_seq_open(struct inode
*inode
, struct file
*file
)
2572 int ret
= seq_open(file
, &neigh_stat_seq_ops
);
2575 struct seq_file
*sf
= file
->private_data
;
2576 sf
->private = PDE(inode
)->data
;
2581 static const struct file_operations neigh_stat_seq_fops
= {
2582 .owner
= THIS_MODULE
,
2583 .open
= neigh_stat_seq_open
,
2585 .llseek
= seq_lseek
,
2586 .release
= seq_release
,
2589 #endif /* CONFIG_PROC_FS */
2591 static inline size_t neigh_nlmsg_size(void)
2593 return NLMSG_ALIGN(sizeof(struct ndmsg
))
2594 + nla_total_size(MAX_ADDR_LEN
) /* NDA_DST */
2595 + nla_total_size(MAX_ADDR_LEN
) /* NDA_LLADDR */
2596 + nla_total_size(sizeof(struct nda_cacheinfo
))
2597 + nla_total_size(4); /* NDA_PROBES */
2600 static void __neigh_notify(struct neighbour
*n
, int type
, int flags
)
2602 struct net
*net
= dev_net(n
->dev
);
2603 struct sk_buff
*skb
;
2606 skb
= nlmsg_new(neigh_nlmsg_size(), GFP_ATOMIC
);
2610 err
= neigh_fill_info(skb
, n
, 0, 0, type
, flags
);
2612 /* -EMSGSIZE implies BUG in neigh_nlmsg_size() */
2613 WARN_ON(err
== -EMSGSIZE
);
2617 rtnl_notify(skb
, net
, 0, RTNLGRP_NEIGH
, NULL
, GFP_ATOMIC
);
2621 rtnl_set_sk_err(net
, RTNLGRP_NEIGH
, err
);
2625 void neigh_app_ns(struct neighbour
*n
)
2627 __neigh_notify(n
, RTM_GETNEIGH
, NLM_F_REQUEST
);
2629 EXPORT_SYMBOL(neigh_app_ns
);
2630 #endif /* CONFIG_ARPD */
2632 #ifdef CONFIG_SYSCTL
2634 #define NEIGH_VARS_MAX 19
2636 static struct neigh_sysctl_table
{
2637 struct ctl_table_header
*sysctl_header
;
2638 struct ctl_table neigh_vars
[NEIGH_VARS_MAX
];
2640 } neigh_sysctl_template __read_mostly
= {
2643 .procname
= "mcast_solicit",
2644 .maxlen
= sizeof(int),
2646 .proc_handler
= proc_dointvec
,
2649 .procname
= "ucast_solicit",
2650 .maxlen
= sizeof(int),
2652 .proc_handler
= proc_dointvec
,
2655 .procname
= "app_solicit",
2656 .maxlen
= sizeof(int),
2658 .proc_handler
= proc_dointvec
,
2661 .procname
= "retrans_time",
2662 .maxlen
= sizeof(int),
2664 .proc_handler
= proc_dointvec_userhz_jiffies
,
2667 .procname
= "base_reachable_time",
2668 .maxlen
= sizeof(int),
2670 .proc_handler
= proc_dointvec_jiffies
,
2673 .procname
= "delay_first_probe_time",
2674 .maxlen
= sizeof(int),
2676 .proc_handler
= proc_dointvec_jiffies
,
2679 .procname
= "gc_stale_time",
2680 .maxlen
= sizeof(int),
2682 .proc_handler
= proc_dointvec_jiffies
,
2685 .procname
= "unres_qlen",
2686 .maxlen
= sizeof(int),
2688 .proc_handler
= proc_dointvec
,
2691 .procname
= "proxy_qlen",
2692 .maxlen
= sizeof(int),
2694 .proc_handler
= proc_dointvec
,
2697 .procname
= "anycast_delay",
2698 .maxlen
= sizeof(int),
2700 .proc_handler
= proc_dointvec_userhz_jiffies
,
2703 .procname
= "proxy_delay",
2704 .maxlen
= sizeof(int),
2706 .proc_handler
= proc_dointvec_userhz_jiffies
,
2709 .procname
= "locktime",
2710 .maxlen
= sizeof(int),
2712 .proc_handler
= proc_dointvec_userhz_jiffies
,
2715 .procname
= "retrans_time_ms",
2716 .maxlen
= sizeof(int),
2718 .proc_handler
= proc_dointvec_ms_jiffies
,
2721 .procname
= "base_reachable_time_ms",
2722 .maxlen
= sizeof(int),
2724 .proc_handler
= proc_dointvec_ms_jiffies
,
2727 .procname
= "gc_interval",
2728 .maxlen
= sizeof(int),
2730 .proc_handler
= proc_dointvec_jiffies
,
2733 .procname
= "gc_thresh1",
2734 .maxlen
= sizeof(int),
2736 .proc_handler
= proc_dointvec
,
2739 .procname
= "gc_thresh2",
2740 .maxlen
= sizeof(int),
2742 .proc_handler
= proc_dointvec
,
2745 .procname
= "gc_thresh3",
2746 .maxlen
= sizeof(int),
2748 .proc_handler
= proc_dointvec
,
2754 int neigh_sysctl_register(struct net_device
*dev
, struct neigh_parms
*p
,
2755 char *p_name
, proc_handler
*handler
)
2757 struct neigh_sysctl_table
*t
;
2758 const char *dev_name_source
= NULL
;
2760 #define NEIGH_CTL_PATH_ROOT 0
2761 #define NEIGH_CTL_PATH_PROTO 1
2762 #define NEIGH_CTL_PATH_NEIGH 2
2763 #define NEIGH_CTL_PATH_DEV 3
2765 struct ctl_path neigh_path
[] = {
2766 { .procname
= "net", },
2767 { .procname
= "proto", },
2768 { .procname
= "neigh", },
2769 { .procname
= "default", },
2773 t
= kmemdup(&neigh_sysctl_template
, sizeof(*t
), GFP_KERNEL
);
2777 t
->neigh_vars
[0].data
= &p
->mcast_probes
;
2778 t
->neigh_vars
[1].data
= &p
->ucast_probes
;
2779 t
->neigh_vars
[2].data
= &p
->app_probes
;
2780 t
->neigh_vars
[3].data
= &p
->retrans_time
;
2781 t
->neigh_vars
[4].data
= &p
->base_reachable_time
;
2782 t
->neigh_vars
[5].data
= &p
->delay_probe_time
;
2783 t
->neigh_vars
[6].data
= &p
->gc_staletime
;
2784 t
->neigh_vars
[7].data
= &p
->queue_len
;
2785 t
->neigh_vars
[8].data
= &p
->proxy_qlen
;
2786 t
->neigh_vars
[9].data
= &p
->anycast_delay
;
2787 t
->neigh_vars
[10].data
= &p
->proxy_delay
;
2788 t
->neigh_vars
[11].data
= &p
->locktime
;
2789 t
->neigh_vars
[12].data
= &p
->retrans_time
;
2790 t
->neigh_vars
[13].data
= &p
->base_reachable_time
;
2793 dev_name_source
= dev
->name
;
2794 /* Terminate the table early */
2795 memset(&t
->neigh_vars
[14], 0, sizeof(t
->neigh_vars
[14]));
2797 dev_name_source
= neigh_path
[NEIGH_CTL_PATH_DEV
].procname
;
2798 t
->neigh_vars
[14].data
= (int *)(p
+ 1);
2799 t
->neigh_vars
[15].data
= (int *)(p
+ 1) + 1;
2800 t
->neigh_vars
[16].data
= (int *)(p
+ 1) + 2;
2801 t
->neigh_vars
[17].data
= (int *)(p
+ 1) + 3;
2807 t
->neigh_vars
[3].proc_handler
= handler
;
2808 t
->neigh_vars
[3].extra1
= dev
;
2810 t
->neigh_vars
[4].proc_handler
= handler
;
2811 t
->neigh_vars
[4].extra1
= dev
;
2812 /* RetransTime (in milliseconds)*/
2813 t
->neigh_vars
[12].proc_handler
= handler
;
2814 t
->neigh_vars
[12].extra1
= dev
;
2815 /* ReachableTime (in milliseconds) */
2816 t
->neigh_vars
[13].proc_handler
= handler
;
2817 t
->neigh_vars
[13].extra1
= dev
;
2820 t
->dev_name
= kstrdup(dev_name_source
, GFP_KERNEL
);
2824 neigh_path
[NEIGH_CTL_PATH_DEV
].procname
= t
->dev_name
;
2825 neigh_path
[NEIGH_CTL_PATH_PROTO
].procname
= p_name
;
2828 register_net_sysctl_table(neigh_parms_net(p
), neigh_path
, t
->neigh_vars
);
2829 if (!t
->sysctl_header
)
2832 p
->sysctl_table
= t
;
2842 EXPORT_SYMBOL(neigh_sysctl_register
);
2844 void neigh_sysctl_unregister(struct neigh_parms
*p
)
2846 if (p
->sysctl_table
) {
2847 struct neigh_sysctl_table
*t
= p
->sysctl_table
;
2848 p
->sysctl_table
= NULL
;
2849 unregister_sysctl_table(t
->sysctl_header
);
2854 EXPORT_SYMBOL(neigh_sysctl_unregister
);
2856 #endif /* CONFIG_SYSCTL */
2858 static int __init
neigh_init(void)
2860 rtnl_register(PF_UNSPEC
, RTM_NEWNEIGH
, neigh_add
, NULL
, NULL
);
2861 rtnl_register(PF_UNSPEC
, RTM_DELNEIGH
, neigh_delete
, NULL
, NULL
);
2862 rtnl_register(PF_UNSPEC
, RTM_GETNEIGH
, NULL
, neigh_dump_info
, NULL
);
2864 rtnl_register(PF_UNSPEC
, RTM_GETNEIGHTBL
, NULL
, neightbl_dump_info
,
2866 rtnl_register(PF_UNSPEC
, RTM_SETNEIGHTBL
, neightbl_set
, NULL
, NULL
);
2871 subsys_initcall(neigh_init
);