neighbour.c 77.1 KB
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/*
 *	Generic address resolution entity
 *
 *	Authors:
 *	Pedro Roque		<roque@di.fc.ul.pt>
 *	Alexey Kuznetsov	<kuznet@ms2.inr.ac.ru>
 *
 *	This program is free software; you can redistribute it and/or
 *      modify it under the terms of the GNU General Public License
 *      as published by the Free Software Foundation; either version
 *      2 of the License, or (at your option) any later version.
 *
 *	Fixes:
 *	Vitaly E. Lavrov	releasing NULL neighbor in neigh_add.
 *	Harald Welte		Add neighbour cache statistics like rtstat
 */

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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt

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#include <linux/slab.h>
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#include <linux/types.h>
#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/socket.h>
#include <linux/netdevice.h>
#include <linux/proc_fs.h>
#ifdef CONFIG_SYSCTL
#include <linux/sysctl.h>
#endif
#include <linux/times.h>
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#include <net/net_namespace.h>
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#include <net/neighbour.h>
#include <net/dst.h>
#include <net/sock.h>
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#include <net/netevent.h>
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#include <net/netlink.h>
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#include <linux/rtnetlink.h>
#include <linux/random.h>
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#include <linux/string.h>
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#include <linux/log2.h>
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#include <linux/inetdevice.h>
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#include <net/addrconf.h>
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#define DEBUG
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#define NEIGH_DEBUG 1
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#define neigh_dbg(level, fmt, ...)		\
do {						\
	if (level <= NEIGH_DEBUG)		\
		pr_debug(fmt, ##__VA_ARGS__);	\
} while (0)
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#define PNEIGH_HASHMASK		0xF

static void neigh_timer_handler(unsigned long arg);
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static void __neigh_notify(struct neighbour *n, int type, int flags);
static void neigh_update_notify(struct neighbour *neigh);
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static int pneigh_ifdown(struct neigh_table *tbl, struct net_device *dev);

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#ifdef CONFIG_PROC_FS
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static const struct file_operations neigh_stat_seq_fops;
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#endif
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/*
   Neighbour hash table buckets are protected with rwlock tbl->lock.

   - All the scans/updates to hash buckets MUST be made under this lock.
   - NOTHING clever should be made under this lock: no callbacks
     to protocol backends, no attempts to send something to network.
     It will result in deadlocks, if backend/driver wants to use neighbour
     cache.
   - If the entry requires some non-trivial actions, increase
     its reference count and release table lock.

   Neighbour entries are protected:
   - with reference count.
   - with rwlock neigh->lock

   Reference count prevents destruction.

   neigh->lock mainly serializes ll address data and its validity state.
   However, the same lock is used to protect another entry fields:
    - timer
    - resolution queue

   Again, nothing clever shall be made under neigh->lock,
   the most complicated procedure, which we allow is dev->hard_header.
   It is supposed, that dev->hard_header is simplistic and does
   not make callbacks to neighbour tables.
 */

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static int neigh_blackhole(struct neighbour *neigh, struct sk_buff *skb)
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{
	kfree_skb(skb);
	return -ENETDOWN;
}

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static void neigh_cleanup_and_release(struct neighbour *neigh)
{
	if (neigh->parms->neigh_cleanup)
		neigh->parms->neigh_cleanup(neigh);

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	__neigh_notify(neigh, RTM_DELNEIGH, 0);
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	neigh_release(neigh);
}

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/*
 * It is random distribution in the interval (1/2)*base...(3/2)*base.
 * It corresponds to default IPv6 settings and is not overridable,
 * because it is really reasonable choice.
 */

unsigned long neigh_rand_reach_time(unsigned long base)
{
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	return base ? (prandom_u32() % base) + (base >> 1) : 0;
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}
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EXPORT_SYMBOL(neigh_rand_reach_time);
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static int neigh_forced_gc(struct neigh_table *tbl)
{
	int shrunk = 0;
	int i;
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	struct neigh_hash_table *nht;
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	NEIGH_CACHE_STAT_INC(tbl, forced_gc_runs);

	write_lock_bh(&tbl->lock);
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	nht = rcu_dereference_protected(tbl->nht,
					lockdep_is_held(&tbl->lock));
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	for (i = 0; i < (1 << nht->hash_shift); i++) {
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		struct neighbour *n;
		struct neighbour __rcu **np;
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		np = &nht->hash_buckets[i];
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		while ((n = rcu_dereference_protected(*np,
					lockdep_is_held(&tbl->lock))) != NULL) {
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			/* Neighbour record may be discarded if:
			 * - nobody refers to it.
			 * - it is not permanent
			 */
			write_lock(&n->lock);
			if (atomic_read(&n->refcnt) == 1 &&
			    !(n->nud_state & NUD_PERMANENT)) {
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				rcu_assign_pointer(*np,
					rcu_dereference_protected(n->next,
						  lockdep_is_held(&tbl->lock)));
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				n->dead = 1;
				shrunk	= 1;
				write_unlock(&n->lock);
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				neigh_cleanup_and_release(n);
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				continue;
			}
			write_unlock(&n->lock);
			np = &n->next;
		}
	}

	tbl->last_flush = jiffies;

	write_unlock_bh(&tbl->lock);

	return shrunk;
}

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static void neigh_add_timer(struct neighbour *n, unsigned long when)
{
	neigh_hold(n);
	if (unlikely(mod_timer(&n->timer, when))) {
		printk("NEIGH: BUG, double timer add, state is %x\n",
		       n->nud_state);
		dump_stack();
	}
}

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static int neigh_del_timer(struct neighbour *n)
{
	if ((n->nud_state & NUD_IN_TIMER) &&
	    del_timer(&n->timer)) {
		neigh_release(n);
		return 1;
	}
	return 0;
}

static void pneigh_queue_purge(struct sk_buff_head *list)
{
	struct sk_buff *skb;

	while ((skb = skb_dequeue(list)) != NULL) {
		dev_put(skb->dev);
		kfree_skb(skb);
	}
}

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static void neigh_flush_dev(struct neigh_table *tbl, struct net_device *dev)
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{
	int i;
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	struct neigh_hash_table *nht;
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	nht = rcu_dereference_protected(tbl->nht,
					lockdep_is_held(&tbl->lock));

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	for (i = 0; i < (1 << nht->hash_shift); i++) {
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		struct neighbour *n;
		struct neighbour __rcu **np = &nht->hash_buckets[i];
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		while ((n = rcu_dereference_protected(*np,
					lockdep_is_held(&tbl->lock))) != NULL) {
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			if (dev && n->dev != dev) {
				np = &n->next;
				continue;
			}
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			rcu_assign_pointer(*np,
				   rcu_dereference_protected(n->next,
						lockdep_is_held(&tbl->lock)));
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			write_lock(&n->lock);
			neigh_del_timer(n);
			n->dead = 1;

			if (atomic_read(&n->refcnt) != 1) {
				/* The most unpleasant situation.
				   We must destroy neighbour entry,
				   but someone still uses it.

				   The destroy will be delayed until
				   the last user releases us, but
				   we must kill timers etc. and move
				   it to safe state.
				 */
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				__skb_queue_purge(&n->arp_queue);
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				n->arp_queue_len_bytes = 0;
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				n->output = neigh_blackhole;
				if (n->nud_state & NUD_VALID)
					n->nud_state = NUD_NOARP;
				else
					n->nud_state = NUD_NONE;
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				neigh_dbg(2, "neigh %p is stray\n", n);
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			}
			write_unlock(&n->lock);
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			neigh_cleanup_and_release(n);
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		}
	}
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}
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void neigh_changeaddr(struct neigh_table *tbl, struct net_device *dev)
{
	write_lock_bh(&tbl->lock);
	neigh_flush_dev(tbl, dev);
	write_unlock_bh(&tbl->lock);
}
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EXPORT_SYMBOL(neigh_changeaddr);
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int neigh_ifdown(struct neigh_table *tbl, struct net_device *dev)
{
	write_lock_bh(&tbl->lock);
	neigh_flush_dev(tbl, dev);
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	pneigh_ifdown(tbl, dev);
	write_unlock_bh(&tbl->lock);

	del_timer_sync(&tbl->proxy_timer);
	pneigh_queue_purge(&tbl->proxy_queue);
	return 0;
}
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EXPORT_SYMBOL(neigh_ifdown);
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static struct neighbour *neigh_alloc(struct neigh_table *tbl, struct net_device *dev)
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{
	struct neighbour *n = NULL;
	unsigned long now = jiffies;
	int entries;

	entries = atomic_inc_return(&tbl->entries) - 1;
	if (entries >= tbl->gc_thresh3 ||
	    (entries >= tbl->gc_thresh2 &&
	     time_after(now, tbl->last_flush + 5 * HZ))) {
		if (!neigh_forced_gc(tbl) &&
		    entries >= tbl->gc_thresh3)
			goto out_entries;
	}

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	n = kzalloc(tbl->entry_size + dev->neigh_priv_len, GFP_ATOMIC);
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	if (!n)
		goto out_entries;

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	__skb_queue_head_init(&n->arp_queue);
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	rwlock_init(&n->lock);
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	seqlock_init(&n->ha_lock);
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	n->updated	  = n->used = now;
	n->nud_state	  = NUD_NONE;
	n->output	  = neigh_blackhole;
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	seqlock_init(&n->hh.hh_lock);
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	n->parms	  = neigh_parms_clone(&tbl->parms);
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	setup_timer(&n->timer, neigh_timer_handler, (unsigned long)n);
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	NEIGH_CACHE_STAT_INC(tbl, allocs);
	n->tbl		  = tbl;
	atomic_set(&n->refcnt, 1);
	n->dead		  = 1;
out:
	return n;

out_entries:
	atomic_dec(&tbl->entries);
	goto out;
}

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static void neigh_get_hash_rnd(u32 *x)
{
	get_random_bytes(x, sizeof(*x));
	*x |= 1;
}

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static struct neigh_hash_table *neigh_hash_alloc(unsigned int shift)
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{
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	size_t size = (1 << shift) * sizeof(struct neighbour *);
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	struct neigh_hash_table *ret;
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	struct neighbour __rcu **buckets;
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	int i;
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	ret = kmalloc(sizeof(*ret), GFP_ATOMIC);
	if (!ret)
		return NULL;
	if (size <= PAGE_SIZE)
		buckets = kzalloc(size, GFP_ATOMIC);
	else
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		buckets = (struct neighbour __rcu **)
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			  __get_free_pages(GFP_ATOMIC | __GFP_ZERO,
					   get_order(size));
	if (!buckets) {
		kfree(ret);
		return NULL;
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	}
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	ret->hash_buckets = buckets;
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	ret->hash_shift = shift;
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	for (i = 0; i < NEIGH_NUM_HASH_RND; i++)
		neigh_get_hash_rnd(&ret->hash_rnd[i]);
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	return ret;
}

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static void neigh_hash_free_rcu(struct rcu_head *head)
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{
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	struct neigh_hash_table *nht = container_of(head,
						    struct neigh_hash_table,
						    rcu);
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	size_t size = (1 << nht->hash_shift) * sizeof(struct neighbour *);
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	struct neighbour __rcu **buckets = nht->hash_buckets;
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	if (size <= PAGE_SIZE)
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		kfree(buckets);
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	else
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		free_pages((unsigned long)buckets, get_order(size));
	kfree(nht);
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}

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static struct neigh_hash_table *neigh_hash_grow(struct neigh_table *tbl,
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						unsigned long new_shift)
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{
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	unsigned int i, hash;
	struct neigh_hash_table *new_nht, *old_nht;
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	NEIGH_CACHE_STAT_INC(tbl, hash_grows);

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	old_nht = rcu_dereference_protected(tbl->nht,
					    lockdep_is_held(&tbl->lock));
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	new_nht = neigh_hash_alloc(new_shift);
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	if (!new_nht)
		return old_nht;
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	for (i = 0; i < (1 << old_nht->hash_shift); i++) {
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		struct neighbour *n, *next;

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		for (n = rcu_dereference_protected(old_nht->hash_buckets[i],
						   lockdep_is_held(&tbl->lock));
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		     n != NULL;
		     n = next) {
			hash = tbl->hash(n->primary_key, n->dev,
					 new_nht->hash_rnd);
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			hash >>= (32 - new_nht->hash_shift);
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			next = rcu_dereference_protected(n->next,
						lockdep_is_held(&tbl->lock));

			rcu_assign_pointer(n->next,
					   rcu_dereference_protected(
						new_nht->hash_buckets[hash],
						lockdep_is_held(&tbl->lock)));
			rcu_assign_pointer(new_nht->hash_buckets[hash], n);
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		}
	}

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	rcu_assign_pointer(tbl->nht, new_nht);
	call_rcu(&old_nht->rcu, neigh_hash_free_rcu);
	return new_nht;
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}

struct neighbour *neigh_lookup(struct neigh_table *tbl, const void *pkey,
			       struct net_device *dev)
{
	struct neighbour *n;
	int key_len = tbl->key_len;
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	u32 hash_val;
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	struct neigh_hash_table *nht;
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	NEIGH_CACHE_STAT_INC(tbl, lookups);

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	rcu_read_lock_bh();
	nht = rcu_dereference_bh(tbl->nht);
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	hash_val = tbl->hash(pkey, dev, nht->hash_rnd) >> (32 - nht->hash_shift);
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	for (n = rcu_dereference_bh(nht->hash_buckets[hash_val]);
	     n != NULL;
	     n = rcu_dereference_bh(n->next)) {
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		if (dev == n->dev && !memcmp(n->primary_key, pkey, key_len)) {
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			if (!atomic_inc_not_zero(&n->refcnt))
				n = NULL;
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			NEIGH_CACHE_STAT_INC(tbl, hits);
			break;
		}
	}
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	rcu_read_unlock_bh();
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	return n;
}
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EXPORT_SYMBOL(neigh_lookup);
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struct neighbour *neigh_lookup_nodev(struct neigh_table *tbl, struct net *net,
				     const void *pkey)
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{
	struct neighbour *n;
	int key_len = tbl->key_len;
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	u32 hash_val;
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	struct neigh_hash_table *nht;
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	NEIGH_CACHE_STAT_INC(tbl, lookups);

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	rcu_read_lock_bh();
	nht = rcu_dereference_bh(tbl->nht);
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	hash_val = tbl->hash(pkey, NULL, nht->hash_rnd) >> (32 - nht->hash_shift);
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	for (n = rcu_dereference_bh(nht->hash_buckets[hash_val]);
	     n != NULL;
	     n = rcu_dereference_bh(n->next)) {
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		if (!memcmp(n->primary_key, pkey, key_len) &&
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		    net_eq(dev_net(n->dev), net)) {
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			if (!atomic_inc_not_zero(&n->refcnt))
				n = NULL;
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			NEIGH_CACHE_STAT_INC(tbl, hits);
			break;
		}
	}
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	rcu_read_unlock_bh();
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	return n;
}
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EXPORT_SYMBOL(neigh_lookup_nodev);
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struct neighbour *__neigh_create(struct neigh_table *tbl, const void *pkey,
				 struct net_device *dev, bool want_ref)
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{
	u32 hash_val;
	int key_len = tbl->key_len;
	int error;
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	struct neighbour *n1, *rc, *n = neigh_alloc(tbl, dev);
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	struct neigh_hash_table *nht;
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	if (!n) {
		rc = ERR_PTR(-ENOBUFS);
		goto out;
	}

	memcpy(n->primary_key, pkey, key_len);
	n->dev = dev;
	dev_hold(dev);

	/* Protocol specific setup. */
	if (tbl->constructor &&	(error = tbl->constructor(n)) < 0) {
		rc = ERR_PTR(error);
		goto out_neigh_release;
	}

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	if (dev->netdev_ops->ndo_neigh_construct) {
		error = dev->netdev_ops->ndo_neigh_construct(n);
		if (error < 0) {
			rc = ERR_PTR(error);
			goto out_neigh_release;
		}
	}

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	/* Device specific setup. */
	if (n->parms->neigh_setup &&
	    (error = n->parms->neigh_setup(n)) < 0) {
		rc = ERR_PTR(error);
		goto out_neigh_release;
	}

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	n->confirmed = jiffies - (NEIGH_VAR(n->parms, BASE_REACHABLE_TIME) << 1);
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	write_lock_bh(&tbl->lock);
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	nht = rcu_dereference_protected(tbl->nht,
					lockdep_is_held(&tbl->lock));
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	if (atomic_read(&tbl->entries) > (1 << nht->hash_shift))
		nht = neigh_hash_grow(tbl, nht->hash_shift + 1);
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	hash_val = tbl->hash(pkey, dev, nht->hash_rnd) >> (32 - nht->hash_shift);
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	if (n->parms->dead) {
		rc = ERR_PTR(-EINVAL);
		goto out_tbl_unlock;
	}

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	for (n1 = rcu_dereference_protected(nht->hash_buckets[hash_val],
					    lockdep_is_held(&tbl->lock));
	     n1 != NULL;
	     n1 = rcu_dereference_protected(n1->next,
			lockdep_is_held(&tbl->lock))) {
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		if (dev == n1->dev && !memcmp(n1->primary_key, pkey, key_len)) {
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			if (want_ref)
				neigh_hold(n1);
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			rc = n1;
			goto out_tbl_unlock;
		}
	}

	n->dead = 0;
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	if (want_ref)
		neigh_hold(n);
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	rcu_assign_pointer(n->next,
			   rcu_dereference_protected(nht->hash_buckets[hash_val],
						     lockdep_is_held(&tbl->lock)));
	rcu_assign_pointer(nht->hash_buckets[hash_val], n);
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	write_unlock_bh(&tbl->lock);
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	neigh_dbg(2, "neigh %p is created\n", n);
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	rc = n;
out:
	return rc;
out_tbl_unlock:
	write_unlock_bh(&tbl->lock);
out_neigh_release:
	neigh_release(n);
	goto out;
}
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EXPORT_SYMBOL(__neigh_create);
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static u32 pneigh_hash(const void *pkey, int key_len)
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{
	u32 hash_val = *(u32 *)(pkey + key_len - 4);
	hash_val ^= (hash_val >> 16);
	hash_val ^= hash_val >> 8;
	hash_val ^= hash_val >> 4;
	hash_val &= PNEIGH_HASHMASK;
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	return hash_val;
}
554

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static struct pneigh_entry *__pneigh_lookup_1(struct pneigh_entry *n,
					      struct net *net,
					      const void *pkey,
					      int key_len,
					      struct net_device *dev)
{
	while (n) {
562
		if (!memcmp(n->key, pkey, key_len) &&
563
		    net_eq(pneigh_net(n), net) &&
564
		    (n->dev == dev || !n->dev))
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			return n;
		n = n->next;
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	}
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	return NULL;
}
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struct pneigh_entry *__pneigh_lookup(struct neigh_table *tbl,
		struct net *net, const void *pkey, struct net_device *dev)
{
	int key_len = tbl->key_len;
	u32 hash_val = pneigh_hash(pkey, key_len);

	return __pneigh_lookup_1(tbl->phash_buckets[hash_val],
				 net, pkey, key_len, dev);
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}
580
EXPORT_SYMBOL_GPL(__pneigh_lookup);
581

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struct pneigh_entry * pneigh_lookup(struct neigh_table *tbl,
				    struct net *net, const void *pkey,
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				    struct net_device *dev, int creat)
{
	struct pneigh_entry *n;
	int key_len = tbl->key_len;
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	u32 hash_val = pneigh_hash(pkey, key_len);
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	read_lock_bh(&tbl->lock);
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	n = __pneigh_lookup_1(tbl->phash_buckets[hash_val],
			      net, pkey, key_len, dev);
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	read_unlock_bh(&tbl->lock);
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	if (n || !creat)
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		goto out;

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	ASSERT_RTNL();

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	n = kmalloc(sizeof(*n) + key_len, GFP_KERNEL);
	if (!n)
		goto out;

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	write_pnet(&n->net, hold_net(net));
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	memcpy(n->key, pkey, key_len);
	n->dev = dev;
	if (dev)
		dev_hold(dev);

	if (tbl->pconstructor && tbl->pconstructor(n)) {
		if (dev)
			dev_put(dev);
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		release_net(net);
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		kfree(n);
		n = NULL;
		goto out;
	}

	write_lock_bh(&tbl->lock);
	n->next = tbl->phash_buckets[hash_val];
	tbl->phash_buckets[hash_val] = n;
	write_unlock_bh(&tbl->lock);
out:
	return n;
}
626
EXPORT_SYMBOL(pneigh_lookup);
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int pneigh_delete(struct neigh_table *tbl, struct net *net, const void *pkey,
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		  struct net_device *dev)
{
	struct pneigh_entry *n, **np;
	int key_len = tbl->key_len;
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	u32 hash_val = pneigh_hash(pkey, key_len);
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	write_lock_bh(&tbl->lock);
	for (np = &tbl->phash_buckets[hash_val]; (n = *np) != NULL;
	     np = &n->next) {
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		if (!memcmp(n->key, pkey, key_len) && n->dev == dev &&
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		    net_eq(pneigh_net(n), net)) {
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			*np = n->next;
			write_unlock_bh(&tbl->lock);
			if (tbl->pdestructor)
				tbl->pdestructor(n);
			if (n->dev)
				dev_put(n->dev);
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			release_net(pneigh_net(n));
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			kfree(n);
			return 0;
		}
	}
	write_unlock_bh(&tbl->lock);
	return -ENOENT;
}

static int pneigh_ifdown(struct neigh_table *tbl, struct net_device *dev)
{
	struct pneigh_entry *n, **np;
	u32 h;

	for (h = 0; h <= PNEIGH_HASHMASK; h++) {
		np = &tbl->phash_buckets[h];
		while ((n = *np) != NULL) {
			if (!dev || n->dev == dev) {
				*np = n->next;
				if (tbl->pdestructor)
					tbl->pdestructor(n);
				if (n->dev)
					dev_put(n->dev);
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				release_net(pneigh_net(n));
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				kfree(n);
				continue;
			}
			np = &n->next;
		}
	}
	return -ENOENT;
}

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static void neigh_parms_destroy(struct neigh_parms *parms);

static inline void neigh_parms_put(struct neigh_parms *parms)
{
	if (atomic_dec_and_test(&parms->refcnt))
		neigh_parms_destroy(parms);
}
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/*
 *	neighbour must already be out of the table;
 *
 */
void neigh_destroy(struct neighbour *neigh)
{
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	struct net_device *dev = neigh->dev;

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	NEIGH_CACHE_STAT_INC(neigh->tbl, destroys);

	if (!neigh->dead) {
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		pr_warn("Destroying alive neighbour %p\n", neigh);
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		dump_stack();
		return;
	}

	if (neigh_del_timer(neigh))
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		pr_warn("Impossible event\n");
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	write_lock_bh(&neigh->lock);
	__skb_queue_purge(&neigh->arp_queue);
	write_unlock_bh(&neigh->lock);
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	neigh->arp_queue_len_bytes = 0;
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	if (dev->netdev_ops->ndo_neigh_destroy)
		dev->netdev_ops->ndo_neigh_destroy(neigh);

715
	dev_put(dev);
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	neigh_parms_put(neigh->parms);

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	neigh_dbg(2, "neigh %p is destroyed\n", neigh);
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	atomic_dec(&neigh->tbl->entries);
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	kfree_rcu(neigh, rcu);
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}
723
EXPORT_SYMBOL(neigh_destroy);
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/* Neighbour state is suspicious;
   disable fast path.

   Called with write_locked neigh.
 */
static void neigh_suspect(struct neighbour *neigh)
{
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	neigh_dbg(2, "neigh %p is suspected\n", neigh);
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	neigh->output = neigh->ops->output;
}

/* Neighbour state is OK;
   enable fast path.

   Called with write_locked neigh.
 */
static void neigh_connect(struct neighbour *neigh)
{
744
	neigh_dbg(2, "neigh %p is connected\n", neigh);
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	neigh->output = neigh->ops->connected_output;
}

749
static void neigh_periodic_work(struct work_struct *work)
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{
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	struct neigh_table *tbl = container_of(work, struct neigh_table, gc_work.work);
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	struct neighbour *n;
	struct neighbour __rcu **np;
754
	unsigned int i;
755
	struct neigh_hash_table *nht;
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	NEIGH_CACHE_STAT_INC(tbl, periodic_gc_runs);

759
	write_lock_bh(&tbl->lock);
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	nht = rcu_dereference_protected(tbl->nht,
					lockdep_is_held(&tbl->lock));
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	/*
	 *	periodically recompute ReachableTime from random function
	 */

767
	if (time_after(jiffies, tbl->last_rand + 300 * HZ)) {
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		struct neigh_parms *p;
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		tbl->last_rand = jiffies;
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		list_for_each_entry(p, &tbl->parms_list, list)
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			p->reachable_time =
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				neigh_rand_reach_time(NEIGH_VAR(p, BASE_REACHABLE_TIME));
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	}

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	if (atomic_read(&tbl->entries) < tbl->gc_thresh1)
		goto out;

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	for (i = 0 ; i < (1 << nht->hash_shift); i++) {
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		np = &nht->hash_buckets[i];
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		while ((n = rcu_dereference_protected(*np,
				lockdep_is_held(&tbl->lock))) != NULL) {
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			unsigned int state;
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			write_lock(&n->lock);
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			state = n->nud_state;
			if (state & (NUD_PERMANENT | NUD_IN_TIMER)) {
				write_unlock(&n->lock);
				goto next_elt;
			}
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			if (time_before(n->used, n->confirmed))
				n->used = n->confirmed;
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			if (atomic_read(&n->refcnt) == 1 &&
			    (state == NUD_FAILED ||
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			     time_after(jiffies, n->used + NEIGH_VAR(n->parms, GC_STALETIME)))) {
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				*np = n->next;
				n->dead = 1;
				write_unlock(&n->lock);
				neigh_cleanup_and_release(n);
				continue;
			}
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			write_unlock(&n->lock);

next_elt:
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			np = &n->next;
		}
		/*
		 * It's fine to release lock here, even if hash table
		 * grows while we are preempted.
		 */
		write_unlock_bh(&tbl->lock);
		cond_resched();
		write_lock_bh(&tbl->lock);
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		nht = rcu_dereference_protected(tbl->nht,
						lockdep_is_held(&tbl->lock));
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	}
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out:
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	/* Cycle through all hash buckets every BASE_REACHABLE_TIME/2 ticks.
	 * ARP entry timeouts range from 1/2 BASE_REACHABLE_TIME to 3/2
	 * BASE_REACHABLE_TIME.
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	 */
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	queue_delayed_work(system_power_efficient_wq, &tbl->gc_work,
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			      NEIGH_VAR(&tbl->parms, BASE_REACHABLE_TIME) >> 1);
827
	write_unlock_bh(&tbl->lock);
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}

static __inline__ int neigh_max_probes(struct neighbour *n)
{
	struct neigh_parms *p = n->parms;
833 834 835 836
	int max_probes = NEIGH_VAR(p, UCAST_PROBES) + NEIGH_VAR(p, APP_PROBES);
	if (!(n->nud_state & NUD_PROBE))
		max_probes += NEIGH_VAR(p, MCAST_PROBES);
	return max_probes;
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}

839
static void neigh_invalidate(struct neighbour *neigh)
840 841
	__releases(neigh->lock)
	__acquires(neigh->lock)
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{
	struct sk_buff *skb;

	NEIGH_CACHE_STAT_INC(neigh->tbl, res_failed);
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	neigh_dbg(2, "neigh %p is failed\n", neigh);
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	neigh->updated = jiffies;

	/* It is very thin place. report_unreachable is very complicated
	   routine. Particularly, it can hit the same neighbour entry!

	   So that, we try to be accurate and avoid dead loop. --ANK
	 */
	while (neigh->nud_state == NUD_FAILED &&
	       (skb = __skb_dequeue(&neigh->arp_queue)) != NULL) {
		write_unlock(&neigh->lock);
		neigh->ops->error_report(neigh, skb);
		write_lock(&neigh->lock);
	}
860
	__skb_queue_purge(&neigh->arp_queue);
861
	neigh->arp_queue_len_bytes = 0;
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}

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static void neigh_probe(struct neighbour *neigh)
	__releases(neigh->lock)
{
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	struct sk_buff *skb = skb_peek_tail(&neigh->arp_queue);
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	/* keep skb alive even if arp_queue overflows */
	if (skb)
		skb = skb_copy(skb, GFP_ATOMIC);
	write_unlock(&neigh->lock);
	neigh->ops->solicit(neigh, skb);
	atomic_inc(&neigh->probes);
	kfree_skb(skb);
}

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/* Called when a timer expires for a neighbour entry. */

static void neigh_timer_handler(unsigned long arg)
{
	unsigned long now, next;
	struct neighbour *neigh = (struct neighbour *)arg;
883
	unsigned int state;
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	int notify = 0;

	write_lock(&neigh->lock);

	state = neigh->nud_state;
	now = jiffies;
	next = now + HZ;

892
	if (!(state & NUD_IN_TIMER))
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		goto out;

	if (state & NUD_REACHABLE) {
896
		if (time_before_eq(now,
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				   neigh->confirmed + neigh->parms->reachable_time)) {
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			neigh_dbg(2, "neigh %p is still alive\n", neigh);
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			next = neigh->confirmed + neigh->parms->reachable_time;
		} else if (time_before_eq(now,
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					  neigh->used +
					  NEIGH_VAR(neigh->parms, DELAY_PROBE_TIME))) {
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			neigh_dbg(2, "neigh %p is delayed\n", neigh);
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			neigh->nud_state = NUD_DELAY;
905
			neigh->updated = jiffies;
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			neigh_suspect(neigh);
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			next = now + NEIGH_VAR(neigh->parms, DELAY_PROBE_TIME);
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		} else {
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			neigh_dbg(2, "neigh %p is suspected\n", neigh);
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			neigh->nud_state = NUD_STALE;
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			neigh->updated = jiffies;
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			neigh_suspect(neigh);
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			notify = 1;
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		}
	} else if (state & NUD_DELAY) {
916
		if (time_before_eq(now,
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				   neigh->confirmed +
				   NEIGH_VAR(neigh->parms, DELAY_PROBE_TIME))) {
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			neigh_dbg(2, "neigh %p is now reachable\n", neigh);
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			neigh->nud_state = NUD_REACHABLE;
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			neigh->updated = jiffies;
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			neigh_connect(neigh);
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			notify = 1;
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			next = neigh->confirmed + neigh->parms->reachable_time;
		} else {
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			neigh_dbg(2, "neigh %p is probed\n", neigh);
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			neigh->nud_state = NUD_PROBE;
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			neigh->updated = jiffies;
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			atomic_set(&neigh->probes, 0);
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			next = now + NEIGH_VAR(neigh->parms, RETRANS_TIME);
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		}
	} else {
		/* NUD_PROBE|NUD_INCOMPLETE */
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		next = now + NEIGH_VAR(neigh->parms, RETRANS_TIME);
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	}

	if ((neigh->nud_state & (NUD_INCOMPLETE | NUD_PROBE)) &&
	    atomic_read(&neigh->probes) >= neigh_max_probes(neigh)) {
		neigh->nud_state = NUD_FAILED;
		notify = 1;
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		neigh_invalidate(neigh);
942
		goto out;
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	}

	if (neigh->nud_state & NUD_IN_TIMER) {
		if (time_before(next, jiffies + HZ/2))
			next = jiffies + HZ/2;
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		if (!mod_timer(&neigh->timer, next))
			neigh_hold(neigh);
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	}
	if (neigh->nud_state & (NUD_INCOMPLETE | NUD_PROBE)) {
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		neigh_probe(neigh);
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	} else {
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out:
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		write_unlock(&neigh->lock);
	}
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	if (notify)
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		neigh_update_notify(neigh);
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	neigh_release(neigh);
}

int __neigh_event_send(struct neighbour *neigh, struct sk_buff *skb)
{
	int rc;
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	bool immediate_probe = false;
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	write_lock_bh(&neigh->lock);

	rc = 0;
	if (neigh->nud_state & (NUD_CONNECTED | NUD_DELAY | NUD_PROBE))
		goto out_unlock_bh;
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	if (neigh->dead)
		goto out_dead;
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	if (!(neigh->nud_state & (NUD_STALE | NUD_INCOMPLETE))) {
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		if (NEIGH_VAR(neigh->parms, MCAST_PROBES) +
		    NEIGH_VAR(neigh->parms, APP_PROBES)) {
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			unsigned long next, now = jiffies;

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			atomic_set(&neigh->probes,
				   NEIGH_VAR(neigh->parms, UCAST_PROBES));
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			neigh->nud_state     = NUD_INCOMPLETE;
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			neigh->updated = now;
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			next = now + max(NEIGH_VAR(neigh->parms, RETRANS_TIME),
					 HZ/2);
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			neigh_add_timer(neigh, next);
			immediate_probe = true;
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		} else {
			neigh->nud_state = NUD_FAILED;
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			neigh->updated = jiffies;
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			write_unlock_bh(&neigh->lock);

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			kfree_skb(skb);
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			return 1;
		}
	} else if (neigh->nud_state & NUD_STALE) {
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		neigh_dbg(2, "neigh %p is delayed\n", neigh);
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		neigh->nud_state = NUD_DELAY;
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		neigh->updated = jiffies;
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		neigh_add_timer(neigh, jiffies +
				NEIGH_VAR(neigh->parms, DELAY_PROBE_TIME));
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	}

	if (neigh->nud_state == NUD_INCOMPLETE) {
		if (skb) {
1008
			while (neigh->arp_queue_len_bytes + skb->truesize >
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			       NEIGH_VAR(neigh->parms, QUEUE_LEN_BYTES)) {
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				struct sk_buff *buff;
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				buff = __skb_dequeue(&neigh->arp_queue);
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				if (!buff)
					break;
				neigh->arp_queue_len_bytes -= buff->truesize;
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				kfree_skb(buff);
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				NEIGH_CACHE_STAT_INC(neigh->tbl, unres_discards);
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			}
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			skb_dst_force(skb);
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			__skb_queue_tail(&neigh->arp_queue, skb);
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			neigh->arp_queue_len_bytes += skb->truesize;
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		}
		rc = 1;
	}
out_unlock_bh:
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	if (immediate_probe)
		neigh_probe(neigh);
	else
		write_unlock(&neigh->lock);
	local_bh_enable();
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	return rc;
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out_dead:
	if (neigh->nud_state & NUD_STALE)
		goto out_unlock_bh;
	write_unlock_bh(&neigh->lock);
	kfree_skb(skb);
	return 1;
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}
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EXPORT_SYMBOL(__neigh_event_send);
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static void neigh_update_hhs(struct neighbour *neigh)
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{
	struct hh_cache *hh;
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	void (*update)(struct hh_cache*, const struct net_device*, const unsigned char *)
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		= NULL;

	if (neigh->dev->header_ops)
		update = neigh->dev->header_ops->cache_update;
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	if (update) {
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		hh = &neigh->hh;
		if (hh->hh_len) {
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			write_seqlock_bh(&hh->hh_lock);
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			update(hh, neigh->dev, neigh->ha);
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			write_sequnlock_bh(&hh->hh_lock);
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		}
	}
}



/* Generic update routine.
   -- lladdr is new lladdr or NULL, if it is not supplied.
   -- new    is new state.
   -- flags
	NEIGH_UPDATE_F_OVERRIDE allows to override existing lladdr,
				if it is different.
	NEIGH_UPDATE_F_WEAK_OVERRIDE will suspect existing "connected"
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				lladdr instead of overriding it
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				if it is different.
				It also allows to retain current state
				if lladdr is unchanged.
	NEIGH_UPDATE_F_ADMIN	means that the change is administrative.

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	NEIGH_UPDATE_F_OVERRIDE_ISROUTER allows to override existing
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				NTF_ROUTER flag.
	NEIGH_UPDATE_F_ISROUTER	indicates if the neighbour is known as
				a router.

   Caller MUST hold reference count on the entry.
 */

int neigh_update(struct neighbour *neigh, const u8 *lladdr, u8 new,
		 u32 flags)
{
	u8 old;
	int err;
	int notify = 0;
	struct net_device *dev;
	int update_isrouter = 0;

	write_lock_bh(&neigh->lock);

	dev    = neigh->dev;
	old    = neigh->nud_state;
	err    = -EPERM;

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	if (!(flags & NEIGH_UPDATE_F_ADMIN) &&
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	    (old & (NUD_NOARP | NUD_PERMANENT)))
		goto out;
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	if (neigh->dead)
		goto out;
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	if (!(new & NUD_VALID)) {
		neigh_del_timer(neigh);
		if (old & NUD_CONNECTED)
			neigh_suspect(neigh);
		neigh->nud_state = new;
		err = 0;
		notify = old & NUD_VALID;
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		if ((old & (NUD_INCOMPLETE | NUD_PROBE)) &&
		    (new & NUD_FAILED)) {
			neigh_invalidate(neigh);
			notify = 1;
		}
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		goto out;
	}

	/* Compare new lladdr with cached one */
	if (!dev->addr_len) {
		/* First case: device needs no address. */
		lladdr = neigh->ha;
	} else if (lladdr) {
		/* The second case: if something is already cached
		   and a new address is proposed:
		   - compare new & old
		   - if they are different, check override flag
		 */
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		if ((old & NUD_VALID) &&
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		    !memcmp(lladdr, neigh->ha, dev->addr_len))
			lladdr = neigh->ha;
	} else {
		/* No address is supplied; if we know something,
		   use it, otherwise discard the request.
		 */
		err = -EINVAL;
		if (!(old & NUD_VALID))
			goto out;
		lladdr = neigh->ha;
	}

	if (new & NUD_CONNECTED)
		neigh->confirmed = jiffies;
	neigh->updated = jiffies;

	/* If entry was valid and address is not changed,
	   do not change entry state, if new one is STALE.
	 */
	err = 0;
	update_isrouter = flags & NEIGH_UPDATE_F_OVERRIDE_ISROUTER;
	if (old & NUD_VALID) {
		if (lladdr != neigh->ha && !(flags & NEIGH_UPDATE_F_OVERRIDE)) {
			update_isrouter = 0;
			if ((flags & NEIGH_UPDATE_F_WEAK_OVERRIDE) &&
			    (old & NUD_CONNECTED)) {
				lladdr = neigh->ha;
				new = NUD_STALE;
			} else
				goto out;
		} else {
			if (lladdr == neigh->ha && new == NUD_STALE &&
			    ((flags & NEIGH_UPDATE_F_WEAK_OVERRIDE) ||
			     (old & NUD_CONNECTED))
			    )
				new = old;
		}
	}

	if (new != old) {
		neigh_del_timer(neigh);
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		if (new & NUD_IN_TIMER)
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			neigh_add_timer(neigh, (jiffies +
						((new & NUD_REACHABLE) ?
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						 neigh->parms->reachable_time :
						 0)));
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		neigh->nud_state = new;
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		notify = 1;
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	}

	if (lladdr != neigh->ha) {
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		write_seqlock(&neigh->ha_lock);
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		memcpy(&neigh->ha, lladdr, dev->addr_len);
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		write_sequnlock(&neigh->ha_lock);
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		neigh_update_hhs(neigh);
		if (!(new & NUD_CONNECTED))
			neigh->confirmed = jiffies -
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				      (NEIGH_VAR(neigh->parms, BASE_REACHABLE_TIME) << 1);
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		notify = 1;
	}
	if (new == old)
		goto out;
	if (new & NUD_CONNECTED)
		neigh_connect(neigh);
	else
		neigh_suspect(neigh);
	if (!(old & NUD_VALID)) {
		struct sk_buff *skb;

		/* Again: avoid dead loop if something went wrong */

		while (neigh->nud_state & NUD_VALID &&
		       (skb = __skb_dequeue(&neigh->arp_queue)) != NULL) {
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			struct dst_entry *dst = skb_dst(skb);
			struct neighbour *n2, *n1 = neigh;
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			write_unlock_bh(&neigh->lock);
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			rcu_read_lock();
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			/* Why not just use 'neigh' as-is?  The problem is that
			 * things such as shaper, eql, and sch_teql can end up
			 * using alternative, different, neigh objects to output
			 * the packet in the output path.  So what we need to do
			 * here is re-lookup the top-level neigh in the path so
			 * we can reinject the packet there.
			 */
			n2 = NULL;
			if (dst) {
				n2 = dst_neigh_lookup_skb(dst, skb);
				if (n2)
					n1 = n2;
			}
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			n1->output(n1, skb);
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			if (n2)
				neigh_release(n2);
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			rcu_read_unlock();

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			write_lock_bh(&neigh->lock);
		}
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		__skb_queue_purge(&neigh->arp_queue);
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		neigh->arp_queue_len_bytes = 0;
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	}
out:
	if (update_isrouter) {
		neigh->flags = (flags & NEIGH_UPDATE_F_ISROUTER) ?
			(neigh->flags | NTF_ROUTER) :
			(neigh->flags & ~NTF_ROUTER);
	}
	write_unlock_bh(&neigh->lock);
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	if (notify)
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		neigh_update_notify(neigh);

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	return err;
}
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EXPORT_SYMBOL(neigh_update);
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/* Update the neigh to listen temporarily for probe responses, even if it is
 * in a NUD_FAILED state. The caller has to hold neigh->lock for writing.
 */
void __neigh_set_probe_once(struct neighbour *neigh)
{
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	if (neigh->dead)
		return;
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	neigh->updated = jiffies;
	if (!(neigh->nud_state & NUD_FAILED))
		return;
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	neigh->nud_state = NUD_INCOMPLETE;
	atomic_set(&neigh->probes, neigh_max_probes(neigh));
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	neigh_add_timer(neigh,
			jiffies + NEIGH_VAR(neigh->parms, RETRANS_TIME));
}
EXPORT_SYMBOL(__neigh_set_probe_once);

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struct neighbour *neigh_event_ns(struct neigh_table *tbl,
				 u8 *lladdr, void *saddr,
				 struct net_device *dev)
{
	struct neighbour *neigh = __neigh_lookup(tbl, saddr, dev,
						 lladdr || !dev->addr_len);
	if (neigh)
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		neigh_update(neigh, lladdr, NUD_STALE,
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			     NEIGH_UPDATE_F_OVERRIDE);
	return neigh;
}
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EXPORT_SYMBOL(neigh_event_ns);
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/* called with read_lock_bh(&n->lock); */
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static void neigh_hh_init(struct neighbour *n, struct dst_entry *dst)
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{
	struct net_device *dev = dst->dev;
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	__be16 prot = dst->ops->protocol;
	struct hh_cache	*hh = &n->hh;
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	write_lock_bh(&n->lock);
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	/* Only one thread can come in here and initialize the
	 * hh_cache entry.
	 */
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	if (!hh->hh_len)
		dev->header_ops->cache(n, hh, prot);
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	write_unlock_bh(&n->lock);
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}

/* This function can be used in contexts, where only old dev_queue_xmit
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 * worked, f.e. if you want to override normal output path (eql, shaper),
 * but resolution is not made yet.
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 */

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int neigh_compat_output(struct neighbour *neigh, struct sk_buff *skb)
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{
	struct net_device *dev = skb->dev;

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	__skb_pull(skb, skb_network_offset(skb));
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	if (dev_hard_header(skb, dev, ntohs(skb->protocol), NULL, NULL,
			    skb->len) < 0 &&
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	    dev_rebuild_header(skb))
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		return 0;

	return dev_queue_xmit(skb);
}
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EXPORT_SYMBOL(neigh_compat_output);
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/* Slow and careful. */

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int neigh_resolve_output(struct neighbour *neigh, struct sk_buff *skb)
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{
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	struct dst_entry *dst = skb_dst(skb);
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	int rc = 0;

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	if (!dst)
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		goto discard;

	if (!neigh_event_send(neigh, skb)) {
		int err;
		struct net_device *dev = neigh->dev;
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		unsigned int seq;
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		if (dev->header_ops->cache && !neigh->hh.hh_len)
			neigh_hh_init(neigh, dst);
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		do {
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			__skb_pull(skb, skb_network_offset(skb));
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			seq = read_seqbegin(&neigh->ha_lock);
			err = dev_hard_header(skb, dev, ntohs(skb->protocol),
					      neigh->ha, NULL, skb->len);
		} while (read_seqretry(&neigh->ha_lock, seq));
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		if (err >= 0)
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			rc = dev_queue_xmit(skb);
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		else
			goto out_kfree_skb;
	}
out:
	return rc;
discard:
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	neigh_dbg(1, "%s: dst=%p neigh=%p\n", __func__, dst, neigh);
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out_kfree_skb:
	rc = -EINVAL;
	kfree_skb(skb);
	goto out;
}
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EXPORT_SYMBOL(neigh_resolve_output);
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/* As fast as possible without hh cache */

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int neigh_connected_output(struct neighbour *neigh, struct sk_buff *skb)
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{
	struct net_device *dev = neigh->dev;
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	unsigned int seq;
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	int err;
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	do {
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		__skb_pull(skb, skb_network_offset(skb));
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		seq = read_seqbegin(&neigh->ha_lock);
		err = dev_hard_header(skb, dev, ntohs(skb->protocol),
				      neigh->ha, NULL, skb->len);
	} while (read_seqretry(&neigh->ha_lock, seq));

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	if (err >= 0)
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		err = dev_queue_xmit(skb);
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	else {
		err = -EINVAL;
		kfree_skb(skb);
	}
	return err;
}
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EXPORT_SYMBOL(neigh_connected_output);
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int neigh_direct_output(struct neighbour *neigh, struct sk_buff *skb)
{
	return dev_queue_xmit(skb);
}
EXPORT_SYMBOL(neigh_direct_output);

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static void neigh_proxy_process(unsigned long arg)
{
	struct neigh_table *tbl = (struct neigh_table *)arg;
	long sched_next = 0;
	unsigned long now = jiffies;
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	struct sk_buff *skb, *n;
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	spin_lock(&tbl->proxy_queue.lock);

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	skb_queue_walk_safe(&tbl->proxy_queue, skb, n) {
		long tdif = NEIGH_CB(skb)->sched_next - now;
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		if (tdif <= 0) {
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			struct net_device *dev = skb->dev;
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			__skb_unlink(skb, &tbl->proxy_queue);
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			if (tbl->proxy_redo && netif_running(dev)) {
				rcu_read_lock();
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				tbl->proxy_redo(skb);
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				rcu_read_unlock();
			} else {
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				kfree_skb(skb);
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			}
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			dev_put(dev);
		} else if (!sched_next || tdif < sched_next)
			sched_next = tdif;
	}
	del_timer(&tbl->proxy_timer);
	if (sched_next)
		mod_timer(&tbl->proxy_timer, jiffies + sched_next);
	spin_unlock(&tbl->proxy_queue.lock);
}

void pneigh_enqueue(struct neigh_table *tbl, struct neigh_parms *p,
		    struct sk_buff *skb)
{
	unsigned long now = jiffies;
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	unsigned long sched_next = now + (prandom_u32() %
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					  NEIGH_VAR(p, PROXY_DELAY));
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	if (tbl->proxy_queue.qlen > NEIGH_VAR(p, PROXY_QLEN)) {
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		kfree_skb(skb);
		return;
	}
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	NEIGH_CB(skb)->sched_next = sched_next;
	NEIGH_CB(skb)->flags |= LOCALLY_ENQUEUED;
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	spin_lock(&tbl->proxy_queue.lock);
	if (del_timer(&tbl->proxy_timer)) {
		if (time_before(tbl->proxy_timer.expires, sched_next))
			sched_next = tbl->proxy_timer.expires;
	}
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	skb_dst_drop(skb);
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	dev_hold(skb->dev);
	__skb_queue_tail(&tbl->proxy_queue, skb);
	mod_timer(&tbl->proxy_timer, sched_next);
	spin_unlock(&tbl->proxy_queue.lock);
}
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EXPORT_SYMBOL(pneigh_enqueue);
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static inline struct neigh_parms *lookup_neigh_parms(struct neigh_table *tbl,
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						      struct net *net, int ifindex)
{
	struct neigh_parms *p;

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	list_for_each_entry(p, &tbl->parms_list, list) {
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		if ((p->dev && p->dev->ifindex == ifindex && net_eq(neigh_parms_net(p), net)) ||
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		    (!p->dev && !ifindex && net_eq(net, &init_net)))
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			return p;
	}

	return NULL;
}
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struct neigh_parms *neigh_parms_alloc(struct net_device *dev,
				      struct neigh_table *tbl)
{
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	struct neigh_parms *p;
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	struct net *net = dev_net(dev);
	const struct net_device_ops *ops = dev->netdev_ops;
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	p = kmemdup(&tbl->parms, sizeof(*p), GFP_KERNEL);
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	if (p) {
		p->tbl		  = tbl;
		atomic_set(&p->refcnt, 1);
		p->reachable_time =
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				neigh_rand_reach_time(NEIGH_VAR(p, BASE_REACHABLE_TIME));
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		dev_hold(dev);
		p->dev = dev;
		write_pnet(&p->net, hold_net(net));
		p->sysctl_table = NULL;
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		if (ops->ndo_neigh_setup && ops->ndo_neigh_setup(dev, p)) {
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			release_net(net);
			dev_put(dev);
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			kfree(p);
			return NULL;
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		}
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		write_lock_bh(&tbl->lock);
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		list_add(&p->list, &tbl->parms.list);
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		write_unlock_bh(&tbl->lock);
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		neigh_parms_data_state_cleanall(p);
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	}
	return p;
}
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EXPORT_SYMBOL(neigh_parms_alloc);
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static void neigh_rcu_free_parms(struct rcu_head *head)
{
	struct neigh_parms *parms =
		container_of(head, struct neigh_parms, rcu_head);

	neigh_parms_put(parms);
}

void neigh_parms_release(struct neigh_table *tbl, struct neigh_parms *parms)
{
	if (!parms || parms == &tbl->parms)
		return;
	write_lock_bh(&tbl->lock);
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	list_del(&parms->list);
	parms->dead = 1;
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	write_unlock_bh(&tbl->lock);
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	if (parms->dev)
		dev_put(parms->dev);
	call_rcu(&parms->rcu_head, neigh_rcu_free_parms);
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}
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EXPORT_SYMBOL(neigh_parms_release);
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static void neigh_parms_destroy(struct neigh_parms *parms)
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{
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	release_net(neigh_parms_net(parms));
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	kfree(parms);
}

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static struct lock_class_key neigh_table_proxy_queue_class;

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static struct neigh_table *neigh_tables[NEIGH_NR_TABLES] __read_mostly;

void neigh_table_init(int index, struct neigh_table *tbl)
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{
	unsigned long now = jiffies;
	unsigned long phsize;

1537 1538
	INIT_LIST_HEAD(&tbl->parms_list);
	list_add(&tbl->parms.list, &tbl->parms_list);
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1539
	write_pnet(&tbl->parms.net, &init_net);
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	atomic_set(&tbl->parms.refcnt, 1);
	tbl->parms.reachable_time =
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			  neigh_rand_reach_time(NEIGH_VAR(&tbl->parms, BASE_REACHABLE_TIME));
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	tbl->stats = alloc_percpu(struct neigh_statistics);
	if (!tbl->stats)
		panic("cannot create neighbour cache statistics");
1547

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1548
#ifdef CONFIG_PROC_FS
1549 1550
	if (!proc_create_data(tbl->id, 0, init_net.proc_net_stat,
			      &neigh_stat_seq_fops, tbl))
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		panic("cannot create neighbour proc dir entry");
#endif

1554
	RCU_INIT_POINTER(tbl->nht, neigh_hash_alloc(3));
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	phsize = (PNEIGH_HASHMASK + 1) * sizeof(struct pneigh_entry *);
1557
	tbl->phash_buckets = kzalloc(phsize, GFP_KERNEL);
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1558

1559
	if (!tbl->nht || !tbl->phash_buckets)
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		panic("cannot allocate neighbour cache hashes");

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	if (!tbl->entry_size)
		tbl->entry_size = ALIGN(offsetof(struct neighbour, primary_key) +
					tbl->key_len, NEIGH_PRIV_ALIGN);
	else
		WARN_ON(tbl->entry_size % NEIGH_PRIV_ALIGN);

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	rwlock_init(&tbl->lock);
1569
	INIT_DEFERRABLE_WORK(&tbl->gc_work, neigh_periodic_work);
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	queue_delayed_work(system_power_efficient_wq, &tbl->gc_work,
			tbl->parms.reachable_time);
1572
	setup_timer(&tbl->proxy_timer, neigh_proxy_process, (unsigned long)tbl);
1573 1574
	skb_queue_head_init_class(&tbl->proxy_queue,
			&neigh_table_proxy_queue_class);
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	tbl->last_flush = now;
	tbl->last_rand	= now + tbl->parms.reachable_time * 20;
1578

1579
	neigh_tables[index] = tbl;
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}
1581
EXPORT_SYMBOL(neigh_table_init);
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1582

1583
int neigh_table_clear(int index, struct neigh_table *tbl)
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{
1585
	neigh_tables[index] = NULL;
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	/* It is not clean... Fix it to unload IPv6 module safely */
1587
	cancel_delayed_work_sync(&tbl->gc_work);
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	del_timer_sync(&tbl->proxy_timer);
	pneigh_queue_purge(&tbl->proxy_queue);
	neigh_ifdown(tbl, NULL);
	if (atomic_read(&tbl->entries))
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1592
		pr_crit("neighbour leakage\n");
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1593

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	call_rcu(&rcu_dereference_protected(tbl->nht, 1)->rcu,
		 neigh_hash_free_rcu);
1596
	tbl->nht = NULL;
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	kfree(tbl->phash_buckets);
	tbl->phash_buckets = NULL;

1601 1602
	remove_proc_entry(tbl->id, init_net.proc_net_stat);

1603 1604 1605
	free_percpu(tbl->stats);
	tbl->stats = NULL;

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	return 0;
}
1608
EXPORT_SYMBOL(neigh_table_clear);
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1609

1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628
static struct neigh_table *neigh_find_table(int family)
{
	struct neigh_table *tbl = NULL;

	switch (family) {
	case AF_INET:
		tbl = neigh_tables[NEIGH_ARP_TABLE];
		break;
	case AF_INET6:
		tbl = neigh_tables[NEIGH_ND_TABLE];
		break;
	case AF_DECnet:
		tbl = neigh_tables[NEIGH_DN_TABLE];
		break;
	}

	return tbl;
}

1629
static int neigh_delete(struct sk_buff *skb, struct nlmsghdr *nlh)
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{
1631
	struct net *net = sock_net(skb->sk);
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	struct ndmsg *ndm;
	struct nlattr *dst_attr;
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	struct neigh_table *tbl;
1635
	struct neighbour *neigh;
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	struct net_device *dev = NULL;
1637
	int err = -EINVAL;
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1638

1639
	ASSERT_RTNL();
1640
	if (nlmsg_len(nlh) < sizeof(*ndm))
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		goto out;

1643 1644 1645 1646 1647 1648
	dst_attr = nlmsg_find_attr(nlh, sizeof(*ndm), NDA_DST);
	if (dst_attr == NULL)
		goto out;

	ndm = nlmsg_data(nlh);
	if (ndm->ndm_ifindex) {
1649
		dev = __dev_get_by_index(net, ndm->ndm_ifindex);
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		if (dev == NULL) {
			err = -ENODEV;
			goto out;
		}
	}

1656 1657 1658
	tbl = neigh_find_table(ndm->ndm_family);
	if (tbl == NULL)
		return -EAFNOSUPPORT;
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1660 1661
	if (nla_len(dst_attr) < tbl->key_len)
		goto out;
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1663 1664 1665 1666
	if (ndm->ndm_flags & NTF_PROXY) {
		err = pneigh_delete(tbl, net, nla_data(dst_attr), dev);
		goto out;
	}
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1668 1669
	if (dev == NULL)
		goto out;
1670

1671 1672 1673
	neigh = neigh_lookup(tbl, nla_data(dst_attr), dev);
	if (neigh == NULL) {
		err = -ENOENT;
1674
		goto out;
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	}
1676 1677 1678 1679 1680

	err = neigh_update(neigh, NULL, NUD_FAILED,
			   NEIGH_UPDATE_F_OVERRIDE |
			   NEIGH_UPDATE_F_ADMIN);
	neigh_release(neigh);
1681

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out:
	return err;
}

1686
static int neigh_add(struct sk_buff *skb, struct nlmsghdr *nlh)
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{
1688
	int flags = NEIGH_UPDATE_F_ADMIN | NEIGH_UPDATE_F_OVERRIDE;
1689
	struct net *net = sock_net(skb->sk);
1690 1691
	struct ndmsg *ndm;
	struct nlattr *tb[NDA_MAX+1];
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	struct neigh_table *tbl;
	struct net_device *dev = NULL;
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	struct neighbour *neigh;
	void *dst, *lladdr;
1696
	int err;
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1698
	ASSERT_RTNL();
1699 1700
	err = nlmsg_parse(nlh, sizeof(*ndm), tb, NDA_MAX, NULL);
	if (err < 0)
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		goto out;

1703 1704 1705 1706 1707 1708
	err = -EINVAL;
	if (tb[NDA_DST] == NULL)
		goto out;

	ndm = nlmsg_data(nlh);
	if (ndm->ndm_ifindex) {
1709
		dev = __dev_get_by_index(net, ndm->ndm_ifindex);
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		if (dev == NULL) {
			err = -ENODEV;
			goto out;
		}

		if (tb[NDA_LLADDR] && nla_len(tb[NDA_LLADDR]) < dev->addr_len)
1716
			goto out;
1717 1718
	}

1719 1720 1721
	tbl = neigh_find_table(ndm->ndm_family);
	if (tbl == NULL)
		return -EAFNOSUPPORT;
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1723 1724 1725 1726
	if (nla_len(tb[NDA_DST]) < tbl->key_len)
		goto out;
	dst = nla_data(tb[NDA_DST]);
	lladdr = tb[NDA_LLADDR] ? nla_data(tb[NDA_LLADDR]) : NULL;
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1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738
	if (ndm->ndm_flags & NTF_PROXY) {
		struct pneigh_entry *pn;

		err = -ENOBUFS;
		pn = pneigh_lookup(tbl, net, dst, dev, 1);
		if (pn) {
			pn->flags = ndm->ndm_flags;
			err = 0;
		}
		goto out;
	}
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1739

1740 1741
	if (dev == NULL)
		goto out;
1742

1743 1744 1745 1746
	neigh = neigh_lookup(tbl, dst, dev);
	if (neigh == NULL) {
		if (!(nlh->nlmsg_flags & NLM_F_CREATE)) {
			err = -ENOENT;
1747
			goto out;
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		}

1750 1751 1752 1753 1754 1755 1756 1757 1758
		neigh = __neigh_lookup_errno(tbl, dst, dev);
		if (IS_ERR(neigh)) {
			err = PTR_ERR(neigh);
			goto out;
		}
	} else {
		if (nlh->nlmsg_flags & NLM_F_EXCL) {
			err = -EEXIST;
			neigh_release(neigh);
1759
			goto out;
1760
		}
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1762 1763
		if (!(nlh->nlmsg_flags & NLM_F_REPLACE))
			flags &= ~NEIGH_UPDATE_F_OVERRIDE;
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	}

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	if (ndm->ndm_flags & NTF_USE) {
		neigh_event_send(neigh, NULL);
		err = 0;
	} else
		err = neigh_update(neigh, lladdr, ndm->ndm_state, flags);
	neigh_release(neigh);

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out:
	return err;
}

1777 1778
static int neightbl_fill_parms(struct sk_buff *skb, struct neigh_parms *parms)
{
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	struct nlattr *nest;

	nest = nla_nest_start(skb, NDTA_PARMS);
	if (nest == NULL)
		return -ENOBUFS;
1784

1785 1786 1787
	if ((parms->dev &&
	     nla_put_u32(skb, NDTPA_IFINDEX, parms->dev->ifindex)) ||
	    nla_put_u32(skb, NDTPA_REFCNT, atomic_read(&parms->refcnt)) ||
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	    nla_put_u32(skb, NDTPA_QUEUE_LENBYTES,
			NEIGH_VAR(parms, QUEUE_LEN_BYTES)) ||
1790 1791
	    /* approximative value for deprecated QUEUE_LEN (in packets) */
	    nla_put_u32(skb, NDTPA_QUEUE_LEN,
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			NEIGH_VAR(parms, QUEUE_LEN_BYTES) / SKB_TRUESIZE(ETH_FRAME_LEN)) ||
	    nla_put_u32(skb, NDTPA_PROXY_QLEN, NEIGH_VAR(parms, PROXY_QLEN)) ||
	    nla_put_u32(skb, NDTPA_APP_PROBES, NEIGH_VAR(parms, APP_PROBES)) ||
	    nla_put_u32(skb, NDTPA_UCAST_PROBES,
			NEIGH_VAR(parms, UCAST_PROBES)) ||
	    nla_put_u32(skb, NDTPA_MCAST_PROBES,
			NEIGH_VAR(parms, MCAST_PROBES)) ||
1799 1800
	    nla_put_msecs(skb, NDTPA_REACHABLE_TIME, parms->reachable_time) ||
	    nla_put_msecs(skb, NDTPA_BASE_REACHABLE_TIME,
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			  NEIGH_VAR(parms, BASE_REACHABLE_TIME)) ||
	    nla_put_msecs(skb, NDTPA_GC_STALETIME,
			  NEIGH_VAR(parms, GC_STALETIME)) ||
1804
	    nla_put_msecs(skb, NDTPA_DELAY_PROBE_TIME,
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			  NEIGH_VAR(parms, DELAY_PROBE_TIME)) ||
	    nla_put_msecs(skb, NDTPA_RETRANS_TIME,
			  NEIGH_VAR(parms, RETRANS_TIME)) ||
	    nla_put_msecs(skb, NDTPA_ANYCAST_DELAY,
			  NEIGH_VAR(parms, ANYCAST_DELAY)) ||
	    nla_put_msecs(skb, NDTPA_PROXY_DELAY,
			  NEIGH_VAR(parms, PROXY_DELAY)) ||
	    nla_put_msecs(skb, NDTPA_LOCKTIME,
			  NEIGH_VAR(parms, LOCKTIME)))
1814
		goto nla_put_failure;
1815
	return nla_nest_end(skb, nest);
1816

1817
nla_put_failure:
1818 1819
	nla_nest_cancel(skb, nest);
	return -EMSGSIZE;
1820 1821
}

1822 1823
static int neightbl_fill_info(struct sk_buff *skb, struct neigh_table *tbl,
			      u32 pid, u32 seq, int type, int flags)
1824 1825 1826 1827
{
	struct nlmsghdr *nlh;
	struct ndtmsg *ndtmsg;

1828 1829
	nlh = nlmsg_put(skb, pid, seq, type, sizeof(*ndtmsg), flags);
	if (nlh == NULL)
1830
		return -EMSGSIZE;
1831

1832
	ndtmsg = nlmsg_data(nlh);
1833 1834 1835

	read_lock_bh(&tbl->lock);
	ndtmsg->ndtm_family = tbl->family;
1836 1837
	ndtmsg->ndtm_pad1   = 0;
	ndtmsg->ndtm_pad2   = 0;
1838

1839 1840 1841 1842 1843 1844
	if (nla_put_string(skb, NDTA_NAME, tbl->id) ||
	    nla_put_msecs(skb, NDTA_GC_INTERVAL, tbl->gc_interval) ||
	    nla_put_u32(skb, NDTA_THRESH1, tbl->gc_thresh1) ||
	    nla_put_u32(skb, NDTA_THRESH2, tbl->gc_thresh2) ||
	    nla_put_u32(skb, NDTA_THRESH3, tbl->gc_thresh3))
		goto nla_put_failure;
1845 1846 1847 1848
	{
		unsigned long now = jiffies;
		unsigned int flush_delta = now - tbl->last_flush;
		unsigned int rand_delta = now - tbl->last_rand;
1849
		struct neigh_hash_table *nht;
1850 1851 1852 1853 1854 1855 1856 1857 1858
		struct ndt_config ndc = {
			.ndtc_key_len		= tbl->key_len,
			.ndtc_entry_size	= tbl->entry_size,
			.ndtc_entries		= atomic_read(&tbl->entries),
			.ndtc_last_flush	= jiffies_to_msecs(flush_delta),
			.ndtc_last_rand		= jiffies_to_msecs(rand_delta),
			.ndtc_proxy_qlen	= tbl->proxy_queue.qlen,
		};

1859 1860
		rcu_read_lock_bh();
		nht = rcu_dereference_bh(tbl->nht);
1861
		ndc.ndtc_hash_rnd = nht->hash_rnd[0];
1862
		ndc.ndtc_hash_mask = ((1 << nht->hash_shift) - 1);
1863 1864
		rcu_read_unlock_bh();

1865 1866
		if (nla_put(skb, NDTA_CONFIG, sizeof(ndc), &ndc))
			goto nla_put_failure;
1867 1868 1869 1870 1871 1872 1873 1874
	}

	{
		int cpu;
		struct ndt_stats ndst;

		memset(&ndst, 0, sizeof(ndst));

1875
		for_each_possible_cpu(cpu) {
1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890
			struct neigh_statistics	*st;

			st = per_cpu_ptr(tbl->stats, cpu);
			ndst.ndts_allocs		+= st->allocs;
			ndst.ndts_destroys		+= st->destroys;
			ndst.ndts_hash_grows		+= st->hash_grows;
			ndst.ndts_res_failed		+= st->res_failed;
			ndst.ndts_lookups		+= st->lookups;
			ndst.ndts_hits			+= st->hits;
			ndst.ndts_rcv_probes_mcast	+= st->rcv_probes_mcast;
			ndst.ndts_rcv_probes_ucast	+= st->rcv_probes_ucast;
			ndst.ndts_periodic_gc_runs	+= st->periodic_gc_runs;
			ndst.ndts_forced_gc_runs	+= st->forced_gc_runs;
		}

1891 1892
		if (nla_put(skb, NDTA_STATS, sizeof(ndst), &ndst))
			goto nla_put_failure;
1893 1894 1895 1896
	}

	BUG_ON(tbl->parms.dev);
	if (neightbl_fill_parms(skb, &tbl->parms) < 0)
1897
		goto nla_put_failure;
1898 1899

	read_unlock_bh(&tbl->lock);
1900
	return nlmsg_end(skb, nlh);
1901

1902
nla_put_failure:
1903
	read_unlock_bh(&tbl->lock);
1904 1905
	nlmsg_cancel(skb, nlh);
	return -EMSGSIZE;
1906 1907
}

1908 1909
static int neightbl_fill_param_info(struct sk_buff *skb,
				    struct neigh_table *tbl,
1910
				    struct neigh_parms *parms,
1911 1912
				    u32 pid, u32 seq, int type,
				    unsigned int flags)
1913 1914 1915 1916
{
	struct ndtmsg *ndtmsg;
	struct nlmsghdr *nlh;

1917 1918
	nlh = nlmsg_put(skb, pid, seq, type, sizeof(*ndtmsg), flags);
	if (nlh == NULL)
1919
		return -EMSGSIZE;
1920

1921
	ndtmsg = nlmsg_data(nlh);
1922 1923 1924

	read_lock_bh(&tbl->lock);
	ndtmsg->ndtm_family = tbl->family;
1925 1926
	ndtmsg->ndtm_pad1   = 0;
	ndtmsg->ndtm_pad2   = 0;
1927

1928 1929 1930
	if (nla_put_string(skb, NDTA_NAME, tbl->id) < 0 ||
	    neightbl_fill_parms(skb, parms) < 0)
		goto errout;
1931 1932

	read_unlock_bh(&tbl->lock);
1933 1934
	return nlmsg_end(skb, nlh);
errout:
1935
	read_unlock_bh(&tbl->lock);
1936 1937
	nlmsg_cancel(skb, nlh);
	return -EMSGSIZE;
1938
}
1939

1940
static const struct nla_policy nl_neightbl_policy[NDTA_MAX+1] = {
1941 1942 1943 1944 1945 1946 1947 1948
	[NDTA_NAME]		= { .type = NLA_STRING },
	[NDTA_THRESH1]		= { .type = NLA_U32 },
	[NDTA_THRESH2]		= { .type = NLA_U32 },
	[NDTA_THRESH3]		= { .type = NLA_U32 },
	[NDTA_GC_INTERVAL]	= { .type = NLA_U64 },
	[NDTA_PARMS]		= { .type = NLA_NESTED },
};

1949
static const struct nla_policy nl_ntbl_parm_policy[NDTPA_MAX+1] = {
1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964
	[NDTPA_IFINDEX]			= { .type = NLA_U32 },
	[NDTPA_QUEUE_LEN]		= { .type = NLA_U32 },
	[NDTPA_PROXY_QLEN]		= { .type = NLA_U32 },
	[NDTPA_APP_PROBES]		= { .type = NLA_U32 },
	[NDTPA_UCAST_PROBES]		= { .type = NLA_U32 },
	[NDTPA_MCAST_PROBES]		= { .type = NLA_U32 },
	[NDTPA_BASE_REACHABLE_TIME]	= { .type = NLA_U64 },
	[NDTPA_GC_STALETIME]		= { .type = NLA_U64 },
	[NDTPA_DELAY_PROBE_TIME]	= { .type = NLA_U64 },
	[NDTPA_RETRANS_TIME]		= { .type = NLA_U64 },
	[NDTPA_ANYCAST_DELAY]		= { .type = NLA_U64 },
	[NDTPA_PROXY_DELAY]		= { .type = NLA_U64 },
	[NDTPA_LOCKTIME]		= { .type = NLA_U64 },
};

1965
static int neightbl_set(struct sk_buff *skb, struct nlmsghdr *nlh)
1966
{
1967
	struct net *net = sock_net(skb->sk);
1968
	struct neigh_table *tbl;
1969 1970
	struct ndtmsg *ndtmsg;
	struct nlattr *tb[NDTA_MAX+1];
1971 1972
	bool found = false;
	int err, tidx;
1973

1974 1975 1976 1977
	err = nlmsg_parse(nlh, sizeof(*ndtmsg), tb, NDTA_MAX,
			  nl_neightbl_policy);
	if (err < 0)
		goto errout;
1978

1979 1980 1981 1982 1983 1984
	if (tb[NDTA_NAME] == NULL) {
		err = -EINVAL;
		goto errout;
	}

	ndtmsg = nlmsg_data(nlh);
1985 1986 1987 1988 1989

	for (tidx = 0; tidx < NEIGH_NR_TABLES; tidx++) {
		tbl = neigh_tables[tidx];
		if (!tbl)
			continue;
1990 1991
		if (ndtmsg->ndtm_family && tbl->family != ndtmsg->ndtm_family)
			continue;
1992 1993
		if (nla_strcmp(tb[NDTA_NAME], tbl->id) == 0) {
			found = true;
1994
			break;
1995
		}
1996 1997
	}

1998 1999
	if (!found)
		return -ENOENT;
2000

2001
	/*
2002 2003 2004 2005 2006
	 * We acquire tbl->lock to be nice to the periodic timers and
	 * make sure they always see a consistent set of values.
	 */
	write_lock_bh(&tbl->lock);

2007 2008
	if (tb[NDTA_PARMS]) {
		struct nlattr *tbp[NDTPA_MAX+1];
2009
		struct neigh_parms *p;
2010
		int i, ifindex = 0;
2011

2012 2013 2014 2015
		err = nla_parse_nested(tbp, NDTPA_MAX, tb[NDTA_PARMS],
				       nl_ntbl_parm_policy);
		if (err < 0)
			goto errout_tbl_lock;
2016

2017 2018
		if (tbp[NDTPA_IFINDEX])
			ifindex = nla_get_u32(tbp[NDTPA_IFINDEX]);
2019

2020
		p = lookup_neigh_parms(tbl, net, ifindex);
2021 2022
		if (p == NULL) {
			err = -ENOENT;
2023
			goto errout_tbl_lock;
2024 2025
		}

2026 2027 2028
		for (i = 1; i <= NDTPA_MAX; i++) {
			if (tbp[i] == NULL)
				continue;
2029

2030 2031
			switch (i) {
			case NDTPA_QUEUE_LEN:
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2032 2033 2034
				NEIGH_VAR_SET(p, QUEUE_LEN_BYTES,
					      nla_get_u32(tbp[i]) *
					      SKB_TRUESIZE(ETH_FRAME_LEN));
2035 2036
				break;
			case NDTPA_QUEUE_LENBYTES:
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				NEIGH_VAR_SET(p, QUEUE_LEN_BYTES,
					      nla_get_u32(tbp[i]));
2039 2040
				break;
			case NDTPA_PROXY_QLEN:
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				NEIGH_VAR_SET(p, PROXY_QLEN,
					      nla_get_u32(tbp[i]));
2043 2044
				break;
			case NDTPA_APP_PROBES:
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				NEIGH_VAR_SET(p, APP_PROBES,
					      nla_get_u32(tbp[i]));
2047 2048
				break;
			case NDTPA_UCAST_PROBES:
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				NEIGH_VAR_SET(p, UCAST_PROBES,
					      nla_get_u32(tbp[i]));
2051 2052
				break;
			case NDTPA_MCAST_PROBES:
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				NEIGH_VAR_SET(p, MCAST_PROBES,
					      nla_get_u32(tbp[i]));
2055 2056
				break;
			case NDTPA_BASE_REACHABLE_TIME:
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				NEIGH_VAR_SET(p, BASE_REACHABLE_TIME,
					      nla_get_msecs(tbp[i]));
2059 2060 2061 2062 2063 2064
				/* update reachable_time as well, otherwise, the change will
				 * only be effective after the next time neigh_periodic_work
				 * decides to recompute it (can be multiple minutes)
				 */
				p->reachable_time =
					neigh_rand_reach_time(NEIGH_VAR(p, BASE_REACHABLE_TIME));
2065 2066
				break;
			case NDTPA_GC_STALETIME:
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				NEIGH_VAR_SET(p, GC_STALETIME,
					      nla_get_msecs(tbp[i]));
2069 2070
				break;
			case NDTPA_DELAY_PROBE_TIME:
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				NEIGH_VAR_SET(p, DELAY_PROBE_TIME,
					      nla_get_msecs(tbp[i]));
2073 2074
				break;
			case NDTPA_RETRANS_TIME:
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				NEIGH_VAR_SET(p, RETRANS_TIME,
					      nla_get_msecs(tbp[i]));
2077 2078
				break;
			case NDTPA_ANYCAST_DELAY:
2079 2080
				NEIGH_VAR_SET(p, ANYCAST_DELAY,
					      nla_get_msecs(tbp[i]));
2081 2082
				break;
			case NDTPA_PROXY_DELAY:
2083 2084
				NEIGH_VAR_SET(p, PROXY_DELAY,
					      nla_get_msecs(tbp[i]));
2085 2086
				break;
			case NDTPA_LOCKTIME:
2087 2088
				NEIGH_VAR_SET(p, LOCKTIME,
					      nla_get_msecs(tbp[i]));
2089 2090 2091 2092
				break;
			}
		}
	}
2093

2094 2095 2096 2097 2098 2099
	err = -ENOENT;
	if ((tb[NDTA_THRESH1] || tb[NDTA_THRESH2] ||
	     tb[NDTA_THRESH3] || tb[NDTA_GC_INTERVAL]) &&
	    !net_eq(net, &init_net))
		goto errout_tbl_lock;

2100 2101
	if (tb[NDTA_THRESH1])
		tbl->gc_thresh1 = nla_get_u32(tb[NDTA_THRESH1]);
2102

2103 2104
	if (tb[NDTA_THRESH2])
		tbl->gc_thresh2 = nla_get_u32(tb[NDTA_THRESH2]);
2105

2106 2107
	if (tb[NDTA_THRESH3])
		tbl->gc_thresh3 = nla_get_u32(tb[NDTA_THRESH3]);
2108

2109 2110
	if (tb[NDTA_GC_INTERVAL])
		tbl->gc_interval = nla_get_msecs(tb[NDTA_GC_INTERVAL]);
2111 2112 2113

	err = 0;

2114
errout_tbl_lock:
2115
	write_unlock_bh(&tbl->lock);
2116
errout:
2117 2118 2119
	return err;
}

2120
static int neightbl_dump_info(struct sk_buff *skb, struct netlink_callback *cb)
2121
{
2122
	struct net *net = sock_net(skb->sk);
2123 2124 2125
	int family, tidx, nidx = 0;
	int tbl_skip = cb->args[0];
	int neigh_skip = cb->args[1];
2126 2127
	struct neigh_table *tbl;

2128
	family = ((struct rtgenmsg *) nlmsg_data(cb->nlh))->rtgen_family;
2129

2130
	for (tidx = 0; tidx < NEIGH_NR_TABLES; tidx++) {
2131 2132
		struct neigh_parms *p;

2133 2134 2135 2136
		tbl = neigh_tables[tidx];
		if (!tbl)
			continue;

2137
		if (tidx < tbl_skip || (family && tbl->family != family))
2138 2139
			continue;

2140
		if (neightbl_fill_info(skb, tbl, NETLINK_CB(cb->skb).portid,
2141 2142
				       cb->nlh->nlmsg_seq, RTM_NEWNEIGHTBL,
				       NLM_F_MULTI) <= 0)
2143 2144
			break;

2145 2146 2147
		nidx = 0;
		p = list_next_entry(&tbl->parms, list);
		list_for_each_entry_from(p, &tbl->parms_list, list) {
2148
			if (!net_eq(neigh_parms_net(p), net))
2149 2150
				continue;

2151 2152
			if (nidx < neigh_skip)
				goto next;
2153

2154
			if (neightbl_fill_param_info(skb, tbl, p,
2155
						     NETLINK_CB(cb->skb).portid,
2156 2157 2158
						     cb->nlh->nlmsg_seq,
						     RTM_NEWNEIGHTBL,
						     NLM_F_MULTI) <= 0)
2159
				goto out;
2160 2161
		next:
			nidx++;
2162 2163
		}

2164
		neigh_skip = 0;
2165 2166
	}
out:
2167 2168
	cb->args[0] = tidx;
	cb->args[1] = nidx;
2169 2170 2171

	return skb->len;
}
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2173 2174
static int neigh_fill_info(struct sk_buff *skb, struct neighbour *neigh,
			   u32 pid, u32 seq, int type, unsigned int flags)
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{
	unsigned long now = jiffies;
	struct nda_cacheinfo ci;
2178 2179 2180 2181 2182
	struct nlmsghdr *nlh;
	struct ndmsg *ndm;

	nlh = nlmsg_put(skb, pid, seq, type, sizeof(*ndm), flags);
	if (nlh == NULL)
2183
		return -EMSGSIZE;
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2184

2185 2186
	ndm = nlmsg_data(nlh);
	ndm->ndm_family	 = neigh->ops->family;
2187 2188
	ndm->ndm_pad1    = 0;
	ndm->ndm_pad2    = 0;
2189 2190 2191
	ndm->ndm_flags	 = neigh->flags;
	ndm->ndm_type	 = neigh->type;
	ndm->ndm_ifindex = neigh->dev->ifindex;
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2192

2193 2194
	if (nla_put(skb, NDA_DST, neigh->tbl->key_len, neigh->primary_key))
		goto nla_put_failure;
2195 2196 2197

	read_lock_bh(&neigh->lock);
	ndm->ndm_state	 = neigh->nud_state;
2198 2199 2200 2201 2202 2203 2204 2205
	if (neigh->nud_state & NUD_VALID) {
		char haddr[MAX_ADDR_LEN];

		neigh_ha_snapshot(haddr, neigh, neigh->dev);
		if (nla_put(skb, NDA_LLADDR, neigh->dev->addr_len, haddr) < 0) {
			read_unlock_bh(&neigh->lock);
			goto nla_put_failure;
		}
2206 2207
	}

2208 2209 2210
	ci.ndm_used	 = jiffies_to_clock_t(now - neigh->used);
	ci.ndm_confirmed = jiffies_to_clock_t(now - neigh->confirmed);
	ci.ndm_updated	 = jiffies_to_clock_t(now - neigh->updated);
2211 2212 2213
	ci.ndm_refcnt	 = atomic_read(&neigh->refcnt) - 1;
	read_unlock_bh(&neigh->lock);

2214 2215 2216
	if (nla_put_u32(skb, NDA_PROBES, atomic_read(&neigh->probes)) ||
	    nla_put(skb, NDA_CACHEINFO, sizeof(ci), &ci))
		goto nla_put_failure;
2217 2218 2219 2220

	return nlmsg_end(skb, nlh);

nla_put_failure:
2221 2222
	nlmsg_cancel(skb, nlh);
	return -EMSGSIZE;
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}

2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240
static int pneigh_fill_info(struct sk_buff *skb, struct pneigh_entry *pn,
			    u32 pid, u32 seq, int type, unsigned int flags,
			    struct neigh_table *tbl)
{
	struct nlmsghdr *nlh;
	struct ndmsg *ndm;

	nlh = nlmsg_put(skb, pid, seq, type, sizeof(*ndm), flags);
	if (nlh == NULL)
		return -EMSGSIZE;

	ndm = nlmsg_data(nlh);
	ndm->ndm_family	 = tbl->family;
	ndm->ndm_pad1    = 0;
	ndm->ndm_pad2    = 0;
	ndm->ndm_flags	 = pn->flags | NTF_PROXY;
2241
	ndm->ndm_type	 = RTN_UNICAST;
2242 2243 2244
	ndm->ndm_ifindex = pn->dev->ifindex;
	ndm->ndm_state	 = NUD_NONE;

2245 2246
	if (nla_put(skb, NDA_DST, tbl->key_len, pn->key))
		goto nla_put_failure;
2247 2248 2249 2250 2251 2252 2253 2254

	return nlmsg_end(skb, nlh);

nla_put_failure:
	nlmsg_cancel(skb, nlh);
	return -EMSGSIZE;
}

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2255 2256 2257 2258 2259
static void neigh_update_notify(struct neighbour *neigh)
{
	call_netevent_notifiers(NETEVENT_NEIGH_UPDATE, neigh);
	__neigh_notify(neigh, RTM_NEWNEIGH, 0);
}
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static int neigh_dump_table(struct neigh_table *tbl, struct sk_buff *skb,
			    struct netlink_callback *cb)
{
2264
	struct net *net = sock_net(skb->sk);
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	struct neighbour *n;
	int rc, h, s_h = cb->args[1];
	int idx, s_idx = idx = cb->args[2];
2268
	struct neigh_hash_table *nht;
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2270 2271 2272
	rcu_read_lock_bh();
	nht = rcu_dereference_bh(tbl->nht);

2273
	for (h = s_h; h < (1 << nht->hash_shift); h++) {
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		if (h > s_h)
			s_idx = 0;
2276 2277 2278
		for (n = rcu_dereference_bh(nht->hash_buckets[h]), idx = 0;
		     n != NULL;
		     n = rcu_dereference_bh(n->next)) {
2279
			if (!net_eq(dev_net(n->dev), net))
2280
				continue;
2281 2282
			if (idx < s_idx)
				goto next;
2283
			if (neigh_fill_info(skb, n, NETLINK_CB(cb->skb).portid,
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2284
					    cb->nlh->nlmsg_seq,
2285 2286
					    RTM_NEWNEIGH,
					    NLM_F_MULTI) <= 0) {
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				rc = -1;
				goto out;
			}
2290
next:
2291
			idx++;
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		}
	}
	rc = skb->len;
out:
2296
	rcu_read_unlock_bh();
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	cb->args[1] = h;
	cb->args[2] = idx;
	return rc;
}

2302 2303 2304 2305 2306 2307 2308 2309 2310 2311
static int pneigh_dump_table(struct neigh_table *tbl, struct sk_buff *skb,
			     struct netlink_callback *cb)
{
	struct pneigh_entry *n;
	struct net *net = sock_net(skb->sk);
	int rc, h, s_h = cb->args[3];
	int idx, s_idx = idx = cb->args[4];

	read_lock_bh(&tbl->lock);

2312
	for (h = s_h; h <= PNEIGH_HASHMASK; h++) {
2313 2314 2315 2316 2317 2318 2319
		if (h > s_h)
			s_idx = 0;
		for (n = tbl->phash_buckets[h], idx = 0; n; n = n->next) {
			if (dev_net(n->dev) != net)
				continue;
			if (idx < s_idx)
				goto next;
2320
			if (pneigh_fill_info(skb, n, NETLINK_CB(cb->skb).portid,
2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341
					    cb->nlh->nlmsg_seq,
					    RTM_NEWNEIGH,
					    NLM_F_MULTI, tbl) <= 0) {
				read_unlock_bh(&tbl->lock);
				rc = -1;
				goto out;
			}
		next:
			idx++;
		}
	}

	read_unlock_bh(&tbl->lock);
	rc = skb->len;
out:
	cb->args[3] = h;
	cb->args[4] = idx;
	return rc;

}

2342
static int neigh_dump_info(struct sk_buff *skb, struct netlink_callback *cb)
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2343 2344 2345
{
	struct neigh_table *tbl;
	int t, family, s_t;
2346
	int proxy = 0;
2347
	int err;
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2348

2349
	family = ((struct rtgenmsg *) nlmsg_data(cb->nlh))->rtgen_family;
2350 2351 2352 2353 2354 2355 2356 2357

	/* check for full ndmsg structure presence, family member is
	 * the same for both structures
	 */
	if (nlmsg_len(cb->nlh) >= sizeof(struct ndmsg) &&
	    ((struct ndmsg *) nlmsg_data(cb->nlh))->ndm_flags == NTF_PROXY)
		proxy = 1;

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	s_t = cb->args[0];

2360 2361 2362 2363 2364
	for (t = 0; t < NEIGH_NR_TABLES; t++) {
		tbl = neigh_tables[t];

		if (!tbl)
			continue;
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		if (t < s_t || (family && tbl->family != family))
			continue;
		if (t > s_t)
			memset(&cb->args[1], 0, sizeof(cb->args) -
						sizeof(cb->args[0]));
2370 2371 2372 2373
		if (proxy)
			err = pneigh_dump_table(tbl, skb, cb);
		else
			err = neigh_dump_table(tbl, skb, cb);
2374 2375
		if (err < 0)
			break;
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	}

	cb->args[0] = t;
	return skb->len;
}

void neigh_for_each(struct neigh_table *tbl, void (*cb)(struct neighbour *, void *), void *cookie)
{
	int chain;
2385
	struct neigh_hash_table *nht;
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2386

2387 2388 2389
	rcu_read_lock_bh();
	nht = rcu_dereference_bh(tbl->nht);

2390
	read_lock(&tbl->lock); /* avoid resizes */
2391
	for (chain = 0; chain < (1 << nht->hash_shift); chain++) {
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		struct neighbour *n;

2394 2395 2396
		for (n = rcu_dereference_bh(nht->hash_buckets[chain]);
		     n != NULL;
		     n = rcu_dereference_bh(n->next))
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			cb(n, cookie);
	}
2399 2400
	read_unlock(&tbl->lock);
	rcu_read_unlock_bh();
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}
EXPORT_SYMBOL(neigh_for_each);

/* The tbl->lock must be held as a writer and BH disabled. */
void __neigh_for_each_release(struct neigh_table *tbl,
			      int (*cb)(struct neighbour *))
{
	int chain;
2409
	struct neigh_hash_table *nht;
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2410

2411 2412
	nht = rcu_dereference_protected(tbl->nht,
					lockdep_is_held(&tbl->lock));
2413
	for (chain = 0; chain < (1 << nht->hash_shift); chain++) {
2414 2415
		struct neighbour *n;
		struct neighbour __rcu **np;
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2416

2417
		np = &nht->hash_buckets[chain];
2418 2419
		while ((n = rcu_dereference_protected(*np,
					lockdep_is_held(&tbl->lock))) != NULL) {
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			int release;

			write_lock(&n->lock);
			release = cb(n);
			if (release) {
2425 2426 2427
				rcu_assign_pointer(*np,
					rcu_dereference_protected(n->next,
						lockdep_is_held(&tbl->lock)));
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				n->dead = 1;
			} else
				np = &n->next;
			write_unlock(&n->lock);
2432 2433
			if (release)
				neigh_cleanup_and_release(n);
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		}
	}
}
EXPORT_SYMBOL(__neigh_for_each_release);

#ifdef CONFIG_PROC_FS

static struct neighbour *neigh_get_first(struct seq_file *seq)
{
	struct neigh_seq_state *state = seq->private;
2444
	struct net *net = seq_file_net(seq);
2445
	struct neigh_hash_table *nht = state->nht;
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	struct neighbour *n = NULL;
	int bucket = state->bucket;

	state->flags &= ~NEIGH_SEQ_IS_PNEIGH;
2450
	for (bucket = 0; bucket < (1 << nht->hash_shift); bucket++) {
2451
		n = rcu_dereference_bh(nht->hash_buckets[bucket]);
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		while (n) {
2454
			if (!net_eq(dev_net(n->dev), net))
2455
				goto next;
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			if (state->neigh_sub_iter) {
				loff_t fakep = 0;
				void *v;

				v = state->neigh_sub_iter(state, n, &fakep);
				if (!v)
					goto next;
			}
			if (!(state->flags & NEIGH_SEQ_SKIP_NOARP))
				break;
			if (n->nud_state & ~NUD_NOARP)
				break;
2468 2469
next:
			n = rcu_dereference_bh(n->next);
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		}

		if (n)
			break;
	}
	state->bucket = bucket;

	return n;
}

static struct neighbour *neigh_get_next(struct seq_file *seq,
					struct neighbour *n,
					loff_t *pos)
{
	struct neigh_seq_state *state = seq->private;
2485
	struct net *net = seq_file_net(seq);
2486
	struct neigh_hash_table *nht = state->nht;
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	if (state->neigh_sub_iter) {
		void *v = state->neigh_sub_iter(state, n, pos);
		if (v)
			return n;
	}
2493
	n = rcu_dereference_bh(n->next);
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	while (1) {
		while (n) {
2497
			if (!net_eq(dev_net(n->dev), net))
2498
				goto next;
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			if (state->neigh_sub_iter) {
				void *v = state->neigh_sub_iter(state, n, pos);
				if (v)
					return n;
				goto next;
			}
			if (!(state->flags & NEIGH_SEQ_SKIP_NOARP))
				break;

			if (n->nud_state & ~NUD_NOARP)
				break;
2510 2511
next:
			n = rcu_dereference_bh(n->next);
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		}

		if (n)
			break;

2517
		if (++state->bucket >= (1 << nht->hash_shift))
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			break;

2520
		n = rcu_dereference_bh(nht->hash_buckets[state->bucket]);
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	}

	if (n && pos)
		--(*pos);
	return n;
}

static struct neighbour *neigh_get_idx(struct seq_file *seq, loff_t *pos)
{
	struct neighbour *n = neigh_get_first(seq);

	if (n) {
2533
		--(*pos);
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		while (*pos) {
			n = neigh_get_next(seq, n, pos);
			if (!n)
				break;
		}
	}
	return *pos ? NULL : n;
}

static struct pneigh_entry *pneigh_get_first(struct seq_file *seq)
{
	struct neigh_seq_state *state = seq->private;
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	struct net *net = seq_file_net(seq);
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	struct neigh_table *tbl = state->tbl;
	struct pneigh_entry *pn = NULL;
	int bucket = state->bucket;

	state->flags |= NEIGH_SEQ_IS_PNEIGH;
	for (bucket = 0; bucket <= PNEIGH_HASHMASK; bucket++) {
		pn = tbl->phash_buckets[bucket];
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		while (pn && !net_eq(pneigh_net(pn), net))
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			pn = pn->next;
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		if (pn)
			break;
	}
	state->bucket = bucket;

	return pn;
}

static struct pneigh_entry *pneigh_get_next(struct seq_file *seq,
					    struct pneigh_entry *pn,
					    loff_t *pos)
{
	struct neigh_seq_state *state = seq->private;
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	struct net *net = seq_file_net(seq);
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	struct neigh_table *tbl = state->tbl;

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	do {
		pn = pn->next;
	} while (pn && !net_eq(pneigh_net(pn), net));

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	while (!pn) {
		if (++state->bucket > PNEIGH_HASHMASK)
			break;
		pn = tbl->phash_buckets[state->bucket];
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		while (pn && !net_eq(pneigh_net(pn), net))
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			pn = pn->next;
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		if (pn)
			break;
	}

	if (pn && pos)
		--(*pos);

	return pn;
}

static struct pneigh_entry *pneigh_get_idx(struct seq_file *seq, loff_t *pos)
{
	struct pneigh_entry *pn = pneigh_get_first(seq);

	if (pn) {
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		--(*pos);
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		while (*pos) {
			pn = pneigh_get_next(seq, pn, pos);
			if (!pn)
				break;
		}
	}
	return *pos ? NULL : pn;
}

static void *neigh_get_idx_any(struct seq_file *seq, loff_t *pos)
{
	struct neigh_seq_state *state = seq->private;
	void *rc;
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	loff_t idxpos = *pos;
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	rc = neigh_get_idx(seq, &idxpos);
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	if (!rc && !(state->flags & NEIGH_SEQ_NEIGH_ONLY))
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		rc = pneigh_get_idx(seq, &idxpos);
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	return rc;
}

void *neigh_seq_start(struct seq_file *seq, loff_t *pos, struct neigh_table *tbl, unsigned int neigh_seq_flags)
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	__acquires(rcu_bh)
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{
	struct neigh_seq_state *state = seq->private;

	state->tbl = tbl;
	state->bucket = 0;
	state->flags = (neigh_seq_flags & ~NEIGH_SEQ_IS_PNEIGH);

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	rcu_read_lock_bh();
	state->nht = rcu_dereference_bh(tbl->nht);
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	return *pos ? neigh_get_idx_any(seq, pos) : SEQ_START_TOKEN;
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}
EXPORT_SYMBOL(neigh_seq_start);

void *neigh_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
	struct neigh_seq_state *state;
	void *rc;

	if (v == SEQ_START_TOKEN) {
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		rc = neigh_get_first(seq);
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		goto out;
	}

	state = seq->private;
	if (!(state->flags & NEIGH_SEQ_IS_PNEIGH)) {
		rc = neigh_get_next(seq, v, NULL);
		if (rc)
			goto out;
		if (!(state->flags & NEIGH_SEQ_NEIGH_ONLY))
			rc = pneigh_get_first(seq);
	} else {
		BUG_ON(state->flags & NEIGH_SEQ_NEIGH_ONLY);
		rc = pneigh_get_next(seq, v, NULL);
	}
out:
	++(*pos);
	return rc;
}
EXPORT_SYMBOL(neigh_seq_next);

void neigh_seq_stop(struct seq_file *seq, void *v)
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	__releases(rcu_bh)
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{
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	rcu_read_unlock_bh();
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}
EXPORT_SYMBOL(neigh_seq_stop);

/* statistics via seq_file */

static void *neigh_stat_seq_start(struct seq_file *seq, loff_t *pos)
{
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	struct neigh_table *tbl = seq->private;
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	int cpu;

	if (*pos == 0)
		return SEQ_START_TOKEN;
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	for (cpu = *pos-1; cpu < nr_cpu_ids; ++cpu) {
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		if (!cpu_possible(cpu))
			continue;
		*pos = cpu+1;
		return per_cpu_ptr(tbl->stats, cpu);
	}
	return NULL;
}

static void *neigh_stat_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
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	struct neigh_table *tbl = seq->private;
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	int cpu;

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	for (cpu = *pos; cpu < nr_cpu_ids; ++cpu) {
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		if (!cpu_possible(cpu))
			continue;
		*pos = cpu+1;
		return per_cpu_ptr(tbl->stats, cpu);
	}
	return NULL;
}

static void neigh_stat_seq_stop(struct seq_file *seq, void *v)
{

}

static int neigh_stat_seq_show(struct seq_file *seq, void *v)
{
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	struct neigh_table *tbl = seq->private;
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	struct neigh_statistics *st = v;

	if (v == SEQ_START_TOKEN) {
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		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");
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		return 0;
	}

	seq_printf(seq, "%08x  %08lx %08lx %08lx  %08lx %08lx  %08lx  "
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			"%08lx %08lx  %08lx %08lx %08lx\n",
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		   atomic_read(&tbl->entries),

		   st->allocs,
		   st->destroys,
		   st->hash_grows,

		   st->lookups,
		   st->hits,

		   st->res_failed,

		   st->rcv_probes_mcast,
		   st->rcv_probes_ucast,

		   st->periodic_gc_runs,
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		   st->forced_gc_runs,
		   st->unres_discards
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		   );

	return 0;
}

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static const struct seq_operations neigh_stat_seq_ops = {
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	.start	= neigh_stat_seq_start,
	.next	= neigh_stat_seq_next,
	.stop	= neigh_stat_seq_stop,
	.show	= neigh_stat_seq_show,
};

static int neigh_stat_seq_open(struct inode *inode, struct file *file)
{
	int ret = seq_open(file, &neigh_stat_seq_ops);

	if (!ret) {
		struct seq_file *sf = file->private_data;
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		sf->private = PDE_DATA(inode);
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	}
	return ret;
};

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static const struct file_operations neigh_stat_seq_fops = {
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	.owner	 = THIS_MODULE,
	.open 	 = neigh_stat_seq_open,
	.read	 = seq_read,
	.llseek	 = seq_lseek,
	.release = seq_release,
};

#endif /* CONFIG_PROC_FS */

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static inline size_t neigh_nlmsg_size(void)
{
	return NLMSG_ALIGN(sizeof(struct ndmsg))
	       + nla_total_size(MAX_ADDR_LEN) /* NDA_DST */
	       + nla_total_size(MAX_ADDR_LEN) /* NDA_LLADDR */
	       + nla_total_size(sizeof(struct nda_cacheinfo))
	       + nla_total_size(4); /* NDA_PROBES */
}

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static void __neigh_notify(struct neighbour *n, int type, int flags)
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{
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	struct net *net = dev_net(n->dev);
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	struct sk_buff *skb;
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	int err = -ENOBUFS;
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	skb = nlmsg_new(neigh_nlmsg_size(), GFP_ATOMIC);
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	if (skb == NULL)
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		goto errout;
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	err = neigh_fill_info(skb, n, 0, 0, type, flags);
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	if (err < 0) {
		/* -EMSGSIZE implies BUG in neigh_nlmsg_size() */
		WARN_ON(err == -EMSGSIZE);
		kfree_skb(skb);
		goto errout;
	}
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	rtnl_notify(skb, net, 0, RTNLGRP_NEIGH, NULL, GFP_ATOMIC);
	return;
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errout:
	if (err < 0)
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		rtnl_set_sk_err(net, RTNLGRP_NEIGH, err);
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}

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void neigh_app_ns(struct neighbour *n)
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{
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	__neigh_notify(n, RTM_GETNEIGH, NLM_F_REQUEST);
}
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EXPORT_SYMBOL(neigh_app_ns);
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#ifdef CONFIG_SYSCTL
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static int zero;
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static int int_max = INT_MAX;
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static int unres_qlen_max = INT_MAX / SKB_TRUESIZE(ETH_FRAME_LEN);
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static int proc_unres_qlen(struct ctl_table *ctl, int write,
			   void __user *buffer, size_t *lenp, loff_t *ppos)
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{
	int size, ret;
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	struct ctl_table tmp = *ctl;
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	tmp.extra1 = &zero;
	tmp.extra2 = &unres_qlen_max;
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	tmp.data = &size;
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	size = *(int *)ctl->data / SKB_TRUESIZE(ETH_FRAME_LEN);
	ret = proc_dointvec_minmax(&tmp, write, buffer, lenp, ppos);

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	if (write && !ret)
		*(int *)ctl->data = size * SKB_TRUESIZE(ETH_FRAME_LEN);
	return ret;
}

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static struct neigh_parms *neigh_get_dev_parms_rcu(struct net_device *dev,
						   int family)
{
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	switch (family) {
	case AF_INET:
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		return __in_dev_arp_parms_get_rcu(dev);
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	case AF_INET6:
		return __in6_dev_nd_parms_get_rcu(dev);
	}
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	return NULL;
}

static void neigh_copy_dflt_parms(struct net *net, struct neigh_parms *p,
				  int index)
{
	struct net_device *dev;
	int family = neigh_parms_family(p);

	rcu_read_lock();
	for_each_netdev_rcu(net, dev) {
		struct neigh_parms *dst_p =
				neigh_get_dev_parms_rcu(dev, family);

		if (dst_p && !test_bit(index, dst_p->data_state))
			dst_p->data[index] = p->data[index];
	}
	rcu_read_unlock();
}

static void neigh_proc_update(struct ctl_table *ctl, int write)
{
	struct net_device *dev = ctl->extra1;
	struct neigh_parms *p = ctl->extra2;
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	struct net *net = neigh_parms_net(p);
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	int index = (int *) ctl->data - p->data;

	if (!write)
		return;

	set_bit(index, p->data_state);
	if (!dev) /* NULL dev means this is default value */
		neigh_copy_dflt_parms(net, p, index);
}

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static int neigh_proc_dointvec_zero_intmax(struct ctl_table *ctl, int write,
					   void __user *buffer,
					   size_t *lenp, loff_t *ppos)
{
	struct ctl_table tmp = *ctl;
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	int ret;
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	tmp.extra1 = &zero;
	tmp.extra2 = &int_max;

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	ret = proc_dointvec_minmax(&tmp, write, buffer, lenp, ppos);
	neigh_proc_update(ctl, write);
	return ret;
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}

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int neigh_proc_dointvec(struct ctl_table *ctl, int write,
			void __user *buffer, size_t *lenp, loff_t *ppos)
{
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	int ret = proc_dointvec(ctl, write, buffer, lenp, ppos);

	neigh_proc_update(ctl, write);
	return ret;
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}
EXPORT_SYMBOL(neigh_proc_dointvec);

int neigh_proc_dointvec_jiffies(struct ctl_table *ctl, int write,
				void __user *buffer,
				size_t *lenp, loff_t *ppos)
{
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	int ret = proc_dointvec_jiffies(ctl, write, buffer, lenp, ppos);

	neigh_proc_update(ctl, write);
	return ret;
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}
EXPORT_SYMBOL(neigh_proc_dointvec_jiffies);

static int neigh_proc_dointvec_userhz_jiffies(struct ctl_table *ctl, int write,
					      void __user *buffer,
					      size_t *lenp, loff_t *ppos)
{
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	int ret = proc_dointvec_userhz_jiffies(ctl, write, buffer, lenp, ppos);

	neigh_proc_update(ctl, write);
	return ret;
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}

int neigh_proc_dointvec_ms_jiffies(struct ctl_table *ctl, int write,
				   void __user *buffer,
				   size_t *lenp, loff_t *ppos)
{
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	int ret = proc_dointvec_ms_jiffies(ctl, write, buffer, lenp, ppos);

	neigh_proc_update(ctl, write);
	return ret;
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}
EXPORT_SYMBOL(neigh_proc_dointvec_ms_jiffies);

static int neigh_proc_dointvec_unres_qlen(struct ctl_table *ctl, int write,
					  void __user *buffer,
					  size_t *lenp, loff_t *ppos)
{
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	int ret = proc_unres_qlen(ctl, write, buffer, lenp, ppos);

	neigh_proc_update(ctl, write);
	return ret;
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}

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static int neigh_proc_base_reachable_time(struct ctl_table *ctl, int write,
					  void __user *buffer,
					  size_t *lenp, loff_t *ppos)
{
	struct neigh_parms *p = ctl->extra2;
	int ret;

	if (strcmp(ctl->procname, "base_reachable_time") == 0)
		ret = neigh_proc_dointvec_jiffies(ctl, write, buffer, lenp, ppos);
	else if (strcmp(ctl->procname, "base_reachable_time_ms") == 0)
		ret = neigh_proc_dointvec_ms_jiffies(ctl, write, buffer, lenp, ppos);
	else
		ret = -1;

	if (write && ret == 0) {
		/* update reachable_time as well, otherwise, the change will
		 * only be effective after the next time neigh_periodic_work
		 * decides to recompute it
		 */
		p->reachable_time =
			neigh_rand_reach_time(NEIGH_VAR(p, BASE_REACHABLE_TIME));
	}
	return ret;
}

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#define NEIGH_PARMS_DATA_OFFSET(index)	\
	(&((struct neigh_parms *) 0)->data[index])

#define NEIGH_SYSCTL_ENTRY(attr, data_attr, name, mval, proc) \
	[NEIGH_VAR_ ## attr] = { \
		.procname	= name, \
		.data		= NEIGH_PARMS_DATA_OFFSET(NEIGH_VAR_ ## data_attr), \
		.maxlen		= sizeof(int), \
		.mode		= mval, \
		.proc_handler	= proc, \
	}

#define NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(attr, name) \
	NEIGH_SYSCTL_ENTRY(attr, attr, name, 0644, neigh_proc_dointvec_zero_intmax)

#define NEIGH_SYSCTL_JIFFIES_ENTRY(attr, name) \
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	NEIGH_SYSCTL_ENTRY(attr, attr, name, 0644, neigh_proc_dointvec_jiffies)
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#define NEIGH_SYSCTL_USERHZ_JIFFIES_ENTRY(attr, name) \
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	NEIGH_SYSCTL_ENTRY(attr, attr, name, 0644, neigh_proc_dointvec_userhz_jiffies)
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#define NEIGH_SYSCTL_MS_JIFFIES_ENTRY(attr, name) \
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	NEIGH_SYSCTL_ENTRY(attr, attr, name, 0644, neigh_proc_dointvec_ms_jiffies)
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#define NEIGH_SYSCTL_MS_JIFFIES_REUSED_ENTRY(attr, data_attr, name) \
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	NEIGH_SYSCTL_ENTRY(attr, data_attr, name, 0644, neigh_proc_dointvec_ms_jiffies)
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#define NEIGH_SYSCTL_UNRES_QLEN_REUSED_ENTRY(attr, data_attr, name) \
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	NEIGH_SYSCTL_ENTRY(attr, data_attr, name, 0644, neigh_proc_dointvec_unres_qlen)
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static struct neigh_sysctl_table {
	struct ctl_table_header *sysctl_header;
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	struct ctl_table neigh_vars[NEIGH_VAR_MAX + 1];
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} neigh_sysctl_template __read_mostly = {
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	.neigh_vars = {
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		NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(MCAST_PROBES, "mcast_solicit"),
		NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(UCAST_PROBES, "ucast_solicit"),
		NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(APP_PROBES, "app_solicit"),
		NEIGH_SYSCTL_USERHZ_JIFFIES_ENTRY(RETRANS_TIME, "retrans_time"),
		NEIGH_SYSCTL_JIFFIES_ENTRY(BASE_REACHABLE_TIME, "base_reachable_time"),
		NEIGH_SYSCTL_JIFFIES_ENTRY(DELAY_PROBE_TIME, "delay_first_probe_time"),
		NEIGH_SYSCTL_JIFFIES_ENTRY(GC_STALETIME, "gc_stale_time"),
		NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(QUEUE_LEN_BYTES, "unres_qlen_bytes"),
		NEIGH_SYSCTL_ZERO_INTMAX_ENTRY(PROXY_QLEN, "proxy_qlen"),
		NEIGH_SYSCTL_USERHZ_JIFFIES_ENTRY(ANYCAST_DELAY, "anycast_delay"),
		NEIGH_SYSCTL_USERHZ_JIFFIES_ENTRY(PROXY_DELAY, "proxy_delay"),
		NEIGH_SYSCTL_USERHZ_JIFFIES_ENTRY(LOCKTIME, "locktime"),
		NEIGH_SYSCTL_UNRES_QLEN_REUSED_ENTRY(QUEUE_LEN, QUEUE_LEN_BYTES, "unres_qlen"),
		NEIGH_SYSCTL_MS_JIFFIES_REUSED_ENTRY(RETRANS_TIME_MS, RETRANS_TIME, "retrans_time_ms"),
		NEIGH_SYSCTL_MS_JIFFIES_REUSED_ENTRY(BASE_REACHABLE_TIME_MS, BASE_REACHABLE_TIME, "base_reachable_time_ms"),
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		[NEIGH_VAR_GC_INTERVAL] = {
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			.procname	= "gc_interval",
			.maxlen		= sizeof(int),
			.mode		= 0644,
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			.proc_handler	= proc_dointvec_jiffies,
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		},
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		[NEIGH_VAR_GC_THRESH1] = {
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			.procname	= "gc_thresh1",
			.maxlen		= sizeof(int),
			.mode		= 0644,
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			.extra1 	= &zero,
			.extra2		= &int_max,
			.proc_handler	= proc_dointvec_minmax,
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		},
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		[NEIGH_VAR_GC_THRESH2] = {
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			.procname	= "gc_thresh2",
			.maxlen		= sizeof(int),
			.mode		= 0644,
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			.extra1 	= &zero,
			.extra2		= &int_max,
			.proc_handler	= proc_dointvec_minmax,
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		},
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		[NEIGH_VAR_GC_THRESH3] = {
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			.procname	= "gc_thresh3",
			.maxlen		= sizeof(int),
			.mode		= 0644,
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			.extra1 	= &zero,
			.extra2		= &int_max,
			.proc_handler	= proc_dointvec_minmax,
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		},
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		{},
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	},
};

int neigh_sysctl_register(struct net_device *dev, struct neigh_parms *p,
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			  proc_handler *handler)
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{
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	int i;
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	struct neigh_sysctl_table *t;
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	const char *dev_name_source;
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	char neigh_path[ sizeof("net//neigh/") + IFNAMSIZ + IFNAMSIZ ];
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	char *p_name;
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	t = kmemdup(&neigh_sysctl_template, sizeof(*t), GFP_KERNEL);
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	if (!t)
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		goto err;

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	for (i = 0; i < NEIGH_VAR_GC_INTERVAL; i++) {
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		t->neigh_vars[i].data += (long) p;
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		t->neigh_vars[i].extra1 = dev;
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		t->neigh_vars[i].extra2 = p;
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	}
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	if (dev) {
		dev_name_source = dev->name;
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		/* Terminate the table early */
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		memset(&t->neigh_vars[NEIGH_VAR_GC_INTERVAL], 0,
		       sizeof(t->neigh_vars[NEIGH_VAR_GC_INTERVAL]));
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	} else {
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		struct neigh_table *tbl = p->tbl;
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		dev_name_source = "default";
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		t->neigh_vars[NEIGH_VAR_GC_INTERVAL].data = &tbl->gc_interval;
		t->neigh_vars[NEIGH_VAR_GC_THRESH1].data = &tbl->gc_thresh1;
		t->neigh_vars[NEIGH_VAR_GC_THRESH2].data = &tbl->gc_thresh2;
		t->neigh_vars[NEIGH_VAR_GC_THRESH3].data = &tbl->gc_thresh3;
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	}

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	if (handler) {
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		/* RetransTime */
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		t->neigh_vars[NEIGH_VAR_RETRANS_TIME].proc_handler = handler;
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		/* ReachableTime */
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		t->neigh_vars[NEIGH_VAR_BASE_REACHABLE_TIME].proc_handler = handler;
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		/* RetransTime (in milliseconds)*/
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		t->neigh_vars[NEIGH_VAR_RETRANS_TIME_MS].proc_handler = handler;
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		/* ReachableTime (in milliseconds) */
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		t->neigh_vars[NEIGH_VAR_BASE_REACHABLE_TIME_MS].proc_handler = handler;
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	} else {
		/* Those handlers will update p->reachable_time after
		 * base_reachable_time(_ms) is set to ensure the new timer starts being
		 * applied after the next neighbour update instead of waiting for
		 * neigh_periodic_work to update its value (can be multiple minutes)
		 * So any handler that replaces them should do this as well
		 */
		/* ReachableTime */
		t->neigh_vars[NEIGH_VAR_BASE_REACHABLE_TIME].proc_handler =
			neigh_proc_base_reachable_time;
		/* ReachableTime (in milliseconds) */
		t->neigh_vars[NEIGH_VAR_BASE_REACHABLE_TIME_MS].proc_handler =
			neigh_proc_base_reachable_time;
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	}

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	/* Don't export sysctls to unprivileged users */
	if (neigh_parms_net(p)->user_ns != &init_user_ns)
		t->neigh_vars[0].procname = NULL;

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	switch (neigh_parms_family(p)) {
	case AF_INET:
	      p_name = "ipv4";
	      break;
	case AF_INET6:
	      p_name = "ipv6";
	      break;
	default:
	      BUG();
	}

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	snprintf(neigh_path, sizeof(neigh_path), "net/%s/neigh/%s",
		p_name, dev_name_source);
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	t->sysctl_header =
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		register_net_sysctl(neigh_parms_net(p), neigh_path, t->neigh_vars);
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	if (!t->sysctl_header)
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		goto free;
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	p->sysctl_table = t;
	return 0;

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free:
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	kfree(t);
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err:
	return -ENOBUFS;
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}
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EXPORT_SYMBOL(neigh_sysctl_register);
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void neigh_sysctl_unregister(struct neigh_parms *p)
{
	if (p->sysctl_table) {
		struct neigh_sysctl_table *t = p->sysctl_table;
		p->sysctl_table = NULL;
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		unregister_net_sysctl_table(t->sysctl_header);
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		kfree(t);
	}
}
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EXPORT_SYMBOL(neigh_sysctl_unregister);
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#endif	/* CONFIG_SYSCTL */

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static int __init neigh_init(void)
{
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	rtnl_register(PF_UNSPEC, RTM_NEWNEIGH, neigh_add, NULL, NULL);
	rtnl_register(PF_UNSPEC, RTM_DELNEIGH, neigh_delete, NULL, NULL);
	rtnl_register(PF_UNSPEC, RTM_GETNEIGH, NULL, neigh_dump_info, NULL);
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	rtnl_register(PF_UNSPEC, RTM_GETNEIGHTBL, NULL, neightbl_dump_info,
		      NULL);
	rtnl_register(PF_UNSPEC, RTM_SETNEIGHTBL, neightbl_set, NULL, NULL);
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	return 0;
}

subsys_initcall(neigh_init);