1 /* linux/net/ipv4/arp.c
3 * Copyright (C) 1994 by Florian La Roche
5 * This module implements the Address Resolution Protocol ARP (RFC 826),
6 * which is used to convert IP addresses (or in the future maybe other
7 * high-level addresses) into a low-level hardware address (like an Ethernet
10 * This program is free software; you can redistribute it and/or
11 * modify it under the terms of the GNU General Public License
12 * as published by the Free Software Foundation; either version
13 * 2 of the License, or (at your option) any later version.
16 * Alan Cox : Removed the Ethernet assumptions in
18 * Alan Cox : Fixed some small errors in the ARP
20 * Alan Cox : Allow >4K in /proc
21 * Alan Cox : Make ARP add its own protocol entry
22 * Ross Martin : Rewrote arp_rcv() and arp_get_info()
23 * Stephen Henson : Add AX25 support to arp_get_info()
24 * Alan Cox : Drop data when a device is downed.
25 * Alan Cox : Use init_timer().
26 * Alan Cox : Double lock fixes.
27 * Martin Seine : Move the arphdr structure
28 * to if_arp.h for compatibility.
29 * with BSD based programs.
30 * Andrew Tridgell : Added ARP netmask code and
31 * re-arranged proxy handling.
32 * Alan Cox : Changed to use notifiers.
33 * Niibe Yutaka : Reply for this device or proxies only.
34 * Alan Cox : Don't proxy across hardware types!
35 * Jonathan Naylor : Added support for NET/ROM.
36 * Mike Shaver : RFC1122 checks.
37 * Jonathan Naylor : Only lookup the hardware address for
38 * the correct hardware type.
39 * Germano Caronni : Assorted subtle races.
40 * Craig Schlenter : Don't modify permanent entry
42 * Russ Nelson : Tidied up a few bits.
43 * Alexey Kuznetsov: Major changes to caching and behaviour,
44 * eg intelligent arp probing and
46 * of host down events.
47 * Alan Cox : Missing unlock in device events.
48 * Eckes : ARP ioctl control errors.
49 * Alexey Kuznetsov: Arp free fix.
50 * Manuel Rodriguez: Gratuitous ARP.
51 * Jonathan Layes : Added arpd support through kerneld
52 * message queue (960314)
53 * Mike Shaver : /proc/sys/net/ipv4/arp_* support
54 * Mike McLagan : Routing by source
55 * Stuart Cheshire : Metricom and grat arp fixes
56 * *** FOR 2.1 clean this up ***
57 * Lawrence V. Stefani: (08/12/96) Added FDDI support.
58 * Alan Cox : Took the AP1000 nasty FDDI hack and
59 * folded into the mainstream FDDI code.
60 * Ack spit, Linus how did you allow that
62 * Jes Sorensen : Make FDDI work again in 2.1.x and
63 * clean up the APFDDI & gen. FDDI bits.
64 * Alexey Kuznetsov: new arp state machine;
65 * now it is in net/core/neighbour.c.
66 * Krzysztof Halasa: Added Frame Relay ARP support.
67 * Arnaldo C. Melo : convert /proc/net/arp to seq_file
68 * Shmulik Hen: Split arp_send to arp_create and
69 * arp_xmit so intermediate drivers like
70 * bonding can change the skb before
71 * sending (e.g. insert 8021q tag).
72 * Harald Welte : convert to make use of jenkins hash
73 * Jesper D. Brouer: Proxy ARP PVLAN RFC 3069 support.
76 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
78 #include <linux/module.h>
79 #include <linux/types.h>
80 #include <linux/string.h>
81 #include <linux/kernel.h>
82 #include <linux/capability.h>
83 #include <linux/socket.h>
84 #include <linux/sockios.h>
85 #include <linux/errno.h>
88 #include <linux/inet.h>
89 #include <linux/inetdevice.h>
90 #include <linux/netdevice.h>
91 #include <linux/etherdevice.h>
92 #include <linux/fddidevice.h>
93 #include <linux/if_arp.h>
94 #include <linux/skbuff.h>
95 #include <linux/proc_fs.h>
96 #include <linux/seq_file.h>
97 #include <linux/stat.h>
98 #include <linux/init.h>
99 #include <linux/net.h>
100 #include <linux/rcupdate.h>
101 #include <linux/slab.h>
103 #include <linux/sysctl.h>
106 #include <net/net_namespace.h>
108 #include <net/icmp.h>
109 #include <net/route.h>
110 #include <net/protocol.h>
112 #include <net/sock.h>
114 #include <net/ax25.h>
115 #include <net/netrom.h>
116 #include <net/dst_metadata.h>
117 #include <net/ip_tunnels.h>
119 #include <linux/uaccess.h>
121 #include <linux/netfilter_arp.h>
124 * Interface to generic neighbour cache.
126 static u32
arp_hash(const void *pkey
, const struct net_device
*dev
, __u32
*hash_rnd
);
127 static bool arp_key_eq(const struct neighbour
*n
, const void *pkey
);
128 static int arp_constructor(struct neighbour
*neigh
);
129 static void arp_solicit(struct neighbour
*neigh
, struct sk_buff
*skb
);
130 static void arp_error_report(struct neighbour
*neigh
, struct sk_buff
*skb
);
131 static void parp_redo(struct sk_buff
*skb
);
133 static const struct neigh_ops arp_generic_ops
= {
135 .solicit
= arp_solicit
,
136 .error_report
= arp_error_report
,
137 .output
= neigh_resolve_output
,
138 .connected_output
= neigh_connected_output
,
141 static const struct neigh_ops arp_hh_ops
= {
143 .solicit
= arp_solicit
,
144 .error_report
= arp_error_report
,
145 .output
= neigh_resolve_output
,
146 .connected_output
= neigh_resolve_output
,
149 static const struct neigh_ops arp_direct_ops
= {
151 .output
= neigh_direct_output
,
152 .connected_output
= neigh_direct_output
,
155 struct neigh_table arp_tbl
= {
158 .protocol
= cpu_to_be16(ETH_P_IP
),
160 .key_eq
= arp_key_eq
,
161 .constructor
= arp_constructor
,
162 .proxy_redo
= parp_redo
,
166 .reachable_time
= 30 * HZ
,
168 [NEIGH_VAR_MCAST_PROBES
] = 3,
169 [NEIGH_VAR_UCAST_PROBES
] = 3,
170 [NEIGH_VAR_RETRANS_TIME
] = 1 * HZ
,
171 [NEIGH_VAR_BASE_REACHABLE_TIME
] = 30 * HZ
,
172 [NEIGH_VAR_DELAY_PROBE_TIME
] = 5 * HZ
,
173 [NEIGH_VAR_GC_STALETIME
] = 60 * HZ
,
174 [NEIGH_VAR_QUEUE_LEN_BYTES
] = SK_WMEM_MAX
,
175 [NEIGH_VAR_PROXY_QLEN
] = 64,
176 [NEIGH_VAR_ANYCAST_DELAY
] = 1 * HZ
,
177 [NEIGH_VAR_PROXY_DELAY
] = (8 * HZ
) / 10,
178 [NEIGH_VAR_LOCKTIME
] = 1 * HZ
,
181 .gc_interval
= 30 * HZ
,
186 EXPORT_SYMBOL(arp_tbl
);
188 int arp_mc_map(__be32 addr
, u8
*haddr
, struct net_device
*dev
, int dir
)
194 ip_eth_mc_map(addr
, haddr
);
196 case ARPHRD_INFINIBAND
:
197 ip_ib_mc_map(addr
, dev
->broadcast
, haddr
);
200 ip_ipgre_mc_map(addr
, dev
->broadcast
, haddr
);
204 memcpy(haddr
, dev
->broadcast
, dev
->addr_len
);
212 static u32
arp_hash(const void *pkey
,
213 const struct net_device
*dev
,
216 return arp_hashfn(pkey
, dev
, hash_rnd
);
219 static bool arp_key_eq(const struct neighbour
*neigh
, const void *pkey
)
221 return neigh_key_eq32(neigh
, pkey
);
224 static int arp_constructor(struct neighbour
*neigh
)
227 struct net_device
*dev
= neigh
->dev
;
228 struct in_device
*in_dev
;
229 struct neigh_parms
*parms
;
230 u32 inaddr_any
= INADDR_ANY
;
232 if (dev
->flags
& (IFF_LOOPBACK
| IFF_POINTOPOINT
))
233 memcpy(neigh
->primary_key
, &inaddr_any
, arp_tbl
.key_len
);
235 addr
= *(__be32
*)neigh
->primary_key
;
237 in_dev
= __in_dev_get_rcu(dev
);
243 neigh
->type
= inet_addr_type_dev_table(dev_net(dev
), dev
, addr
);
245 parms
= in_dev
->arp_parms
;
246 __neigh_parms_put(neigh
->parms
);
247 neigh
->parms
= neigh_parms_clone(parms
);
250 if (!dev
->header_ops
) {
251 neigh
->nud_state
= NUD_NOARP
;
252 neigh
->ops
= &arp_direct_ops
;
253 neigh
->output
= neigh_direct_output
;
255 /* Good devices (checked by reading texts, but only Ethernet is
258 ARPHRD_ETHER: (ethernet, apfddi)
261 ARPHRD_METRICOM: (strip)
265 ARPHRD_IPDDP will also work, if author repairs it.
266 I did not it, because this driver does not work even
270 if (neigh
->type
== RTN_MULTICAST
) {
271 neigh
->nud_state
= NUD_NOARP
;
272 arp_mc_map(addr
, neigh
->ha
, dev
, 1);
273 } else if (dev
->flags
& (IFF_NOARP
| IFF_LOOPBACK
)) {
274 neigh
->nud_state
= NUD_NOARP
;
275 memcpy(neigh
->ha
, dev
->dev_addr
, dev
->addr_len
);
276 } else if (neigh
->type
== RTN_BROADCAST
||
277 (dev
->flags
& IFF_POINTOPOINT
)) {
278 neigh
->nud_state
= NUD_NOARP
;
279 memcpy(neigh
->ha
, dev
->broadcast
, dev
->addr_len
);
282 if (dev
->header_ops
->cache
)
283 neigh
->ops
= &arp_hh_ops
;
285 neigh
->ops
= &arp_generic_ops
;
287 if (neigh
->nud_state
& NUD_VALID
)
288 neigh
->output
= neigh
->ops
->connected_output
;
290 neigh
->output
= neigh
->ops
->output
;
295 static void arp_error_report(struct neighbour
*neigh
, struct sk_buff
*skb
)
297 dst_link_failure(skb
);
301 /* Create and send an arp packet. */
302 static void arp_send_dst(int type
, int ptype
, __be32 dest_ip
,
303 struct net_device
*dev
, __be32 src_ip
,
304 const unsigned char *dest_hw
,
305 const unsigned char *src_hw
,
306 const unsigned char *target_hw
,
307 struct dst_entry
*dst
)
311 /* arp on this interface. */
312 if (dev
->flags
& IFF_NOARP
)
315 skb
= arp_create(type
, ptype
, dest_ip
, dev
, src_ip
,
316 dest_hw
, src_hw
, target_hw
);
320 skb_dst_set(skb
, dst_clone(dst
));
324 void arp_send(int type
, int ptype
, __be32 dest_ip
,
325 struct net_device
*dev
, __be32 src_ip
,
326 const unsigned char *dest_hw
, const unsigned char *src_hw
,
327 const unsigned char *target_hw
)
329 arp_send_dst(type
, ptype
, dest_ip
, dev
, src_ip
, dest_hw
, src_hw
,
332 EXPORT_SYMBOL(arp_send
);
334 static void arp_solicit(struct neighbour
*neigh
, struct sk_buff
*skb
)
337 u8 dst_ha
[MAX_ADDR_LEN
], *dst_hw
= NULL
;
338 struct net_device
*dev
= neigh
->dev
;
339 __be32 target
= *(__be32
*)neigh
->primary_key
;
340 int probes
= atomic_read(&neigh
->probes
);
341 struct in_device
*in_dev
;
342 struct dst_entry
*dst
= NULL
;
345 in_dev
= __in_dev_get_rcu(dev
);
350 switch (IN_DEV_ARP_ANNOUNCE(in_dev
)) {
352 case 0: /* By default announce any local IP */
353 if (skb
&& inet_addr_type_dev_table(dev_net(dev
), dev
,
354 ip_hdr(skb
)->saddr
) == RTN_LOCAL
)
355 saddr
= ip_hdr(skb
)->saddr
;
357 case 1: /* Restrict announcements of saddr in same subnet */
360 saddr
= ip_hdr(skb
)->saddr
;
361 if (inet_addr_type_dev_table(dev_net(dev
), dev
,
362 saddr
) == RTN_LOCAL
) {
363 /* saddr should be known to target */
364 if (inet_addr_onlink(in_dev
, target
, saddr
))
369 case 2: /* Avoid secondary IPs, get a primary/preferred one */
375 saddr
= inet_select_addr(dev
, target
, RT_SCOPE_LINK
);
377 probes
-= NEIGH_VAR(neigh
->parms
, UCAST_PROBES
);
379 if (!(neigh
->nud_state
& NUD_VALID
))
380 pr_debug("trying to ucast probe in NUD_INVALID\n");
381 neigh_ha_snapshot(dst_ha
, neigh
, dev
);
384 probes
-= NEIGH_VAR(neigh
->parms
, APP_PROBES
);
391 if (skb
&& !(dev
->priv_flags
& IFF_XMIT_DST_RELEASE
))
393 arp_send_dst(ARPOP_REQUEST
, ETH_P_ARP
, target
, dev
, saddr
,
394 dst_hw
, dev
->dev_addr
, NULL
, dst
);
397 static int arp_ignore(struct in_device
*in_dev
, __be32 sip
, __be32 tip
)
399 struct net
*net
= dev_net(in_dev
->dev
);
402 switch (IN_DEV_ARP_IGNORE(in_dev
)) {
403 case 0: /* Reply, the tip is already validated */
405 case 1: /* Reply only if tip is configured on the incoming interface */
407 scope
= RT_SCOPE_HOST
;
410 * Reply only if tip is configured on the incoming interface
411 * and is in same subnet as sip
413 scope
= RT_SCOPE_HOST
;
415 case 3: /* Do not reply for scope host addresses */
417 scope
= RT_SCOPE_LINK
;
420 case 4: /* Reserved */
425 case 8: /* Do not reply */
430 return !inet_confirm_addr(net
, in_dev
, sip
, tip
, scope
);
433 static int arp_filter(__be32 sip
, __be32 tip
, struct net_device
*dev
)
437 /*unsigned long now; */
438 struct net
*net
= dev_net(dev
);
440 rt
= ip_route_output(net
, sip
, tip
, 0, 0);
443 if (rt
->dst
.dev
!= dev
) {
444 __NET_INC_STATS(net
, LINUX_MIB_ARPFILTER
);
452 * Check if we can use proxy ARP for this path
454 static inline int arp_fwd_proxy(struct in_device
*in_dev
,
455 struct net_device
*dev
, struct rtable
*rt
)
457 struct in_device
*out_dev
;
460 if (rt
->dst
.dev
== dev
)
463 if (!IN_DEV_PROXY_ARP(in_dev
))
465 imi
= IN_DEV_MEDIUM_ID(in_dev
);
471 /* place to check for proxy_arp for routes */
473 out_dev
= __in_dev_get_rcu(rt
->dst
.dev
);
475 omi
= IN_DEV_MEDIUM_ID(out_dev
);
477 return omi
!= imi
&& omi
!= -1;
481 * Check for RFC3069 proxy arp private VLAN (allow to send back to same dev)
483 * RFC3069 supports proxy arp replies back to the same interface. This
484 * is done to support (ethernet) switch features, like RFC 3069, where
485 * the individual ports are not allowed to communicate with each
486 * other, BUT they are allowed to talk to the upstream router. As
487 * described in RFC 3069, it is possible to allow these hosts to
488 * communicate through the upstream router, by proxy_arp'ing.
490 * RFC 3069: "VLAN Aggregation for Efficient IP Address Allocation"
492 * This technology is known by different names:
493 * In RFC 3069 it is called VLAN Aggregation.
494 * Cisco and Allied Telesyn call it Private VLAN.
495 * Hewlett-Packard call it Source-Port filtering or port-isolation.
496 * Ericsson call it MAC-Forced Forwarding (RFC Draft).
499 static inline int arp_fwd_pvlan(struct in_device
*in_dev
,
500 struct net_device
*dev
, struct rtable
*rt
,
501 __be32 sip
, __be32 tip
)
503 /* Private VLAN is only concerned about the same ethernet segment */
504 if (rt
->dst
.dev
!= dev
)
507 /* Don't reply on self probes (often done by windowz boxes)*/
511 if (IN_DEV_PROXY_ARP_PVLAN(in_dev
))
518 * Interface to link layer: send routine and receive handler.
522 * Create an arp packet. If dest_hw is not set, we create a broadcast
525 struct sk_buff
*arp_create(int type
, int ptype
, __be32 dest_ip
,
526 struct net_device
*dev
, __be32 src_ip
,
527 const unsigned char *dest_hw
,
528 const unsigned char *src_hw
,
529 const unsigned char *target_hw
)
533 unsigned char *arp_ptr
;
534 int hlen
= LL_RESERVED_SPACE(dev
);
535 int tlen
= dev
->needed_tailroom
;
541 skb
= alloc_skb(arp_hdr_len(dev
) + hlen
+ tlen
, GFP_ATOMIC
);
545 skb_reserve(skb
, hlen
);
546 skb_reset_network_header(skb
);
547 arp
= skb_put(skb
, arp_hdr_len(dev
));
549 skb
->protocol
= htons(ETH_P_ARP
);
551 src_hw
= dev
->dev_addr
;
553 dest_hw
= dev
->broadcast
;
556 * Fill the device header for the ARP frame
558 if (dev_hard_header(skb
, dev
, ptype
, dest_hw
, src_hw
, skb
->len
) < 0)
562 * Fill out the arp protocol part.
564 * The arp hardware type should match the device type, except for FDDI,
565 * which (according to RFC 1390) should always equal 1 (Ethernet).
568 * Exceptions everywhere. AX.25 uses the AX.25 PID value not the
569 * DIX code for the protocol. Make these device structure fields.
573 arp
->ar_hrd
= htons(dev
->type
);
574 arp
->ar_pro
= htons(ETH_P_IP
);
577 #if IS_ENABLED(CONFIG_AX25)
579 arp
->ar_hrd
= htons(ARPHRD_AX25
);
580 arp
->ar_pro
= htons(AX25_P_IP
);
583 #if IS_ENABLED(CONFIG_NETROM)
585 arp
->ar_hrd
= htons(ARPHRD_NETROM
);
586 arp
->ar_pro
= htons(AX25_P_IP
);
591 #if IS_ENABLED(CONFIG_FDDI)
593 arp
->ar_hrd
= htons(ARPHRD_ETHER
);
594 arp
->ar_pro
= htons(ETH_P_IP
);
599 arp
->ar_hln
= dev
->addr_len
;
601 arp
->ar_op
= htons(type
);
603 arp_ptr
= (unsigned char *)(arp
+ 1);
605 memcpy(arp_ptr
, src_hw
, dev
->addr_len
);
606 arp_ptr
+= dev
->addr_len
;
607 memcpy(arp_ptr
, &src_ip
, 4);
611 #if IS_ENABLED(CONFIG_FIREWIRE_NET)
612 case ARPHRD_IEEE1394
:
617 memcpy(arp_ptr
, target_hw
, dev
->addr_len
);
619 memset(arp_ptr
, 0, dev
->addr_len
);
620 arp_ptr
+= dev
->addr_len
;
622 memcpy(arp_ptr
, &dest_ip
, 4);
630 EXPORT_SYMBOL(arp_create
);
632 static int arp_xmit_finish(struct net
*net
, struct sock
*sk
, struct sk_buff
*skb
)
634 return dev_queue_xmit(skb
);
638 * Send an arp packet.
640 void arp_xmit(struct sk_buff
*skb
)
642 /* Send it off, maybe filter it using firewalling first. */
643 NF_HOOK(NFPROTO_ARP
, NF_ARP_OUT
,
644 dev_net(skb
->dev
), NULL
, skb
, NULL
, skb
->dev
,
647 EXPORT_SYMBOL(arp_xmit
);
649 static bool arp_is_garp(struct net
*net
, struct net_device
*dev
,
650 int *addr_type
, __be16 ar_op
,
651 __be32 sip
, __be32 tip
,
652 unsigned char *sha
, unsigned char *tha
)
654 bool is_garp
= tip
== sip
;
656 /* Gratuitous ARP _replies_ also require target hwaddr to be
657 * the same as source.
659 if (is_garp
&& ar_op
== htons(ARPOP_REPLY
))
661 /* IPv4 over IEEE 1394 doesn't provide target
662 * hardware address field in its ARP payload.
665 !memcmp(tha
, sha
, dev
->addr_len
);
668 *addr_type
= inet_addr_type_dev_table(net
, dev
, sip
);
669 if (*addr_type
!= RTN_UNICAST
)
676 * Process an arp request.
679 static int arp_process(struct net
*net
, struct sock
*sk
, struct sk_buff
*skb
)
681 struct net_device
*dev
= skb
->dev
;
682 struct in_device
*in_dev
= __in_dev_get_rcu(dev
);
684 unsigned char *arp_ptr
;
687 unsigned char *tha
= NULL
;
689 u16 dev_type
= dev
->type
;
692 struct dst_entry
*reply_dst
= NULL
;
693 bool is_garp
= false;
695 /* arp_rcv below verifies the ARP header and verifies the device
706 if (arp
->ar_pro
!= htons(ETH_P_IP
) ||
707 htons(dev_type
) != arp
->ar_hrd
)
714 * ETHERNET, and Fibre Channel (which are IEEE 802
715 * devices, according to RFC 2625) devices will accept ARP
716 * hardware types of either 1 (Ethernet) or 6 (IEEE 802.2).
717 * This is the case also of FDDI, where the RFC 1390 says that
718 * FDDI devices should accept ARP hardware of (1) Ethernet,
719 * however, to be more robust, we'll accept both 1 (Ethernet)
722 if ((arp
->ar_hrd
!= htons(ARPHRD_ETHER
) &&
723 arp
->ar_hrd
!= htons(ARPHRD_IEEE802
)) ||
724 arp
->ar_pro
!= htons(ETH_P_IP
))
728 if (arp
->ar_pro
!= htons(AX25_P_IP
) ||
729 arp
->ar_hrd
!= htons(ARPHRD_AX25
))
733 if (arp
->ar_pro
!= htons(AX25_P_IP
) ||
734 arp
->ar_hrd
!= htons(ARPHRD_NETROM
))
739 /* Understand only these message types */
741 if (arp
->ar_op
!= htons(ARPOP_REPLY
) &&
742 arp
->ar_op
!= htons(ARPOP_REQUEST
))
748 arp_ptr
= (unsigned char *)(arp
+ 1);
750 arp_ptr
+= dev
->addr_len
;
751 memcpy(&sip
, arp_ptr
, 4);
754 #if IS_ENABLED(CONFIG_FIREWIRE_NET)
755 case ARPHRD_IEEE1394
:
760 arp_ptr
+= dev
->addr_len
;
762 memcpy(&tip
, arp_ptr
, 4);
764 * Check for bad requests for 127.x.x.x and requests for multicast
765 * addresses. If this is one such, delete it.
767 if (ipv4_is_multicast(tip
) ||
768 (!IN_DEV_ROUTE_LOCALNET(in_dev
) && ipv4_is_loopback(tip
)))
772 * For some 802.11 wireless deployments (and possibly other networks),
773 * there will be an ARP proxy and gratuitous ARP frames are attacks
774 * and thus should not be accepted.
776 if (sip
== tip
&& IN_DEV_ORCONF(in_dev
, DROP_GRATUITOUS_ARP
))
780 * Special case: We must set Frame Relay source Q.922 address
782 if (dev_type
== ARPHRD_DLCI
)
783 sha
= dev
->broadcast
;
786 * Process entry. The idea here is we want to send a reply if it is a
787 * request for us or if it is a request for someone else that we hold
788 * a proxy for. We want to add an entry to our cache if it is a reply
789 * to us or if it is a request for our address.
790 * (The assumption for this last is that if someone is requesting our
791 * address, they are probably intending to talk to us, so it saves time
792 * if we cache their address. Their address is also probably not in
793 * our cache, since ours is not in their cache.)
795 * Putting this another way, we only care about replies if they are to
796 * us, in which case we add them to the cache. For requests, we care
797 * about those for us and those for our proxies. We reply to both,
798 * and in the case of requests for us we add the requester to the arp
802 if (arp
->ar_op
== htons(ARPOP_REQUEST
) && skb_metadata_dst(skb
))
803 reply_dst
= (struct dst_entry
*)
804 iptunnel_metadata_reply(skb_metadata_dst(skb
),
807 /* Special case: IPv4 duplicate address detection packet (RFC2131) */
809 if (arp
->ar_op
== htons(ARPOP_REQUEST
) &&
810 inet_addr_type_dev_table(net
, dev
, tip
) == RTN_LOCAL
&&
811 !arp_ignore(in_dev
, sip
, tip
))
812 arp_send_dst(ARPOP_REPLY
, ETH_P_ARP
, sip
, dev
, tip
,
813 sha
, dev
->dev_addr
, sha
, reply_dst
);
814 goto out_consume_skb
;
817 if (arp
->ar_op
== htons(ARPOP_REQUEST
) &&
818 ip_route_input_noref(skb
, tip
, sip
, 0, dev
) == 0) {
820 rt
= skb_rtable(skb
);
821 addr_type
= rt
->rt_type
;
823 if (addr_type
== RTN_LOCAL
) {
826 dont_send
= arp_ignore(in_dev
, sip
, tip
);
827 if (!dont_send
&& IN_DEV_ARPFILTER(in_dev
))
828 dont_send
= arp_filter(sip
, tip
, dev
);
830 n
= neigh_event_ns(&arp_tbl
, sha
, &sip
, dev
);
832 arp_send_dst(ARPOP_REPLY
, ETH_P_ARP
,
839 goto out_consume_skb
;
840 } else if (IN_DEV_FORWARD(in_dev
)) {
841 if (addr_type
== RTN_UNICAST
&&
842 (arp_fwd_proxy(in_dev
, dev
, rt
) ||
843 arp_fwd_pvlan(in_dev
, dev
, rt
, sip
, tip
) ||
844 (rt
->dst
.dev
!= dev
&&
845 pneigh_lookup(&arp_tbl
, net
, &tip
, dev
, 0)))) {
846 n
= neigh_event_ns(&arp_tbl
, sha
, &sip
, dev
);
850 if (NEIGH_CB(skb
)->flags
& LOCALLY_ENQUEUED
||
851 skb
->pkt_type
== PACKET_HOST
||
852 NEIGH_VAR(in_dev
->arp_parms
, PROXY_DELAY
) == 0) {
853 arp_send_dst(ARPOP_REPLY
, ETH_P_ARP
,
858 pneigh_enqueue(&arp_tbl
,
859 in_dev
->arp_parms
, skb
);
862 goto out_consume_skb
;
867 /* Update our ARP tables */
869 n
= __neigh_lookup(&arp_tbl
, &sip
, dev
, 0);
872 if (n
|| IN_DEV_ARP_ACCEPT(in_dev
)) {
873 is_garp
= arp_is_garp(net
, dev
, &addr_type
, arp
->ar_op
,
877 if (IN_DEV_ARP_ACCEPT(in_dev
)) {
878 /* Unsolicited ARP is not accepted by default.
879 It is possible, that this option should be enabled for some
880 devices (strip is candidate)
884 (arp
->ar_op
== htons(ARPOP_REPLY
) &&
885 (addr_type
== RTN_UNICAST
||
887 /* postpone calculation to as late as possible */
888 inet_addr_type_dev_table(net
, dev
, sip
) ==
890 n
= __neigh_lookup(&arp_tbl
, &sip
, dev
, 1);
894 int state
= NUD_REACHABLE
;
897 /* If several different ARP replies follows back-to-back,
898 use the FIRST one. It is possible, if several proxy
899 agents are active. Taking the first reply prevents
900 arp trashing and chooses the fastest router.
902 override
= time_after(jiffies
,
904 NEIGH_VAR(n
->parms
, LOCKTIME
)) ||
907 /* Broadcast replies and request packets
908 do not assert neighbour reachability.
910 if (arp
->ar_op
!= htons(ARPOP_REPLY
) ||
911 skb
->pkt_type
!= PACKET_HOST
)
913 neigh_update(n
, sha
, state
,
914 override
? NEIGH_UPDATE_F_OVERRIDE
: 0, 0);
922 dst_release(reply_dst
);
923 return NET_RX_SUCCESS
;
930 static void parp_redo(struct sk_buff
*skb
)
932 arp_process(dev_net(skb
->dev
), NULL
, skb
);
937 * Receive an arp request from the device layer.
940 static int arp_rcv(struct sk_buff
*skb
, struct net_device
*dev
,
941 struct packet_type
*pt
, struct net_device
*orig_dev
)
943 const struct arphdr
*arp
;
945 /* do not tweak dropwatch on an ARP we will ignore */
946 if (dev
->flags
& IFF_NOARP
||
947 skb
->pkt_type
== PACKET_OTHERHOST
||
948 skb
->pkt_type
== PACKET_LOOPBACK
)
951 skb
= skb_share_check(skb
, GFP_ATOMIC
);
955 /* ARP header, plus 2 device addresses, plus 2 IP addresses. */
956 if (!pskb_may_pull(skb
, arp_hdr_len(dev
)))
960 if (arp
->ar_hln
!= dev
->addr_len
|| arp
->ar_pln
!= 4)
963 memset(NEIGH_CB(skb
), 0, sizeof(struct neighbour_cb
));
965 return NF_HOOK(NFPROTO_ARP
, NF_ARP_IN
,
966 dev_net(dev
), NULL
, skb
, dev
, NULL
,
971 return NET_RX_SUCCESS
;
979 * User level interface (ioctl)
983 * Set (create) an ARP cache entry.
986 static int arp_req_set_proxy(struct net
*net
, struct net_device
*dev
, int on
)
989 IPV4_DEVCONF_ALL(net
, PROXY_ARP
) = on
;
992 if (__in_dev_get_rtnl(dev
)) {
993 IN_DEV_CONF_SET(__in_dev_get_rtnl(dev
), PROXY_ARP
, on
);
999 static int arp_req_set_public(struct net
*net
, struct arpreq
*r
,
1000 struct net_device
*dev
)
1002 __be32 ip
= ((struct sockaddr_in
*)&r
->arp_pa
)->sin_addr
.s_addr
;
1003 __be32 mask
= ((struct sockaddr_in
*)&r
->arp_netmask
)->sin_addr
.s_addr
;
1005 if (mask
&& mask
!= htonl(0xFFFFFFFF))
1007 if (!dev
&& (r
->arp_flags
& ATF_COM
)) {
1008 dev
= dev_getbyhwaddr_rcu(net
, r
->arp_ha
.sa_family
,
1014 if (!pneigh_lookup(&arp_tbl
, net
, &ip
, dev
, 1))
1019 return arp_req_set_proxy(net
, dev
, 1);
1022 static int arp_req_set(struct net
*net
, struct arpreq
*r
,
1023 struct net_device
*dev
)
1026 struct neighbour
*neigh
;
1029 if (r
->arp_flags
& ATF_PUBL
)
1030 return arp_req_set_public(net
, r
, dev
);
1032 ip
= ((struct sockaddr_in
*)&r
->arp_pa
)->sin_addr
.s_addr
;
1033 if (r
->arp_flags
& ATF_PERM
)
1034 r
->arp_flags
|= ATF_COM
;
1036 struct rtable
*rt
= ip_route_output(net
, ip
, 0, RTO_ONLINK
, 0);
1045 switch (dev
->type
) {
1046 #if IS_ENABLED(CONFIG_FDDI)
1049 * According to RFC 1390, FDDI devices should accept ARP
1050 * hardware types of 1 (Ethernet). However, to be more
1051 * robust, we'll accept hardware types of either 1 (Ethernet)
1052 * or 6 (IEEE 802.2).
1054 if (r
->arp_ha
.sa_family
!= ARPHRD_FDDI
&&
1055 r
->arp_ha
.sa_family
!= ARPHRD_ETHER
&&
1056 r
->arp_ha
.sa_family
!= ARPHRD_IEEE802
)
1061 if (r
->arp_ha
.sa_family
!= dev
->type
)
1066 neigh
= __neigh_lookup_errno(&arp_tbl
, &ip
, dev
);
1067 err
= PTR_ERR(neigh
);
1068 if (!IS_ERR(neigh
)) {
1069 unsigned int state
= NUD_STALE
;
1070 if (r
->arp_flags
& ATF_PERM
)
1071 state
= NUD_PERMANENT
;
1072 err
= neigh_update(neigh
, (r
->arp_flags
& ATF_COM
) ?
1073 r
->arp_ha
.sa_data
: NULL
, state
,
1074 NEIGH_UPDATE_F_OVERRIDE
|
1075 NEIGH_UPDATE_F_ADMIN
, 0);
1076 neigh_release(neigh
);
1081 static unsigned int arp_state_to_flags(struct neighbour
*neigh
)
1083 if (neigh
->nud_state
&NUD_PERMANENT
)
1084 return ATF_PERM
| ATF_COM
;
1085 else if (neigh
->nud_state
&NUD_VALID
)
1092 * Get an ARP cache entry.
1095 static int arp_req_get(struct arpreq
*r
, struct net_device
*dev
)
1097 __be32 ip
= ((struct sockaddr_in
*) &r
->arp_pa
)->sin_addr
.s_addr
;
1098 struct neighbour
*neigh
;
1101 neigh
= neigh_lookup(&arp_tbl
, &ip
, dev
);
1103 if (!(neigh
->nud_state
& NUD_NOARP
)) {
1104 read_lock_bh(&neigh
->lock
);
1105 memcpy(r
->arp_ha
.sa_data
, neigh
->ha
, dev
->addr_len
);
1106 r
->arp_flags
= arp_state_to_flags(neigh
);
1107 read_unlock_bh(&neigh
->lock
);
1108 r
->arp_ha
.sa_family
= dev
->type
;
1109 strlcpy(r
->arp_dev
, dev
->name
, sizeof(r
->arp_dev
));
1112 neigh_release(neigh
);
1117 static int arp_invalidate(struct net_device
*dev
, __be32 ip
)
1119 struct neighbour
*neigh
= neigh_lookup(&arp_tbl
, &ip
, dev
);
1121 struct neigh_table
*tbl
= &arp_tbl
;
1124 if (neigh
->nud_state
& ~NUD_NOARP
)
1125 err
= neigh_update(neigh
, NULL
, NUD_FAILED
,
1126 NEIGH_UPDATE_F_OVERRIDE
|
1127 NEIGH_UPDATE_F_ADMIN
, 0);
1128 write_lock_bh(&tbl
->lock
);
1129 neigh_release(neigh
);
1130 neigh_remove_one(neigh
, tbl
);
1131 write_unlock_bh(&tbl
->lock
);
1137 static int arp_req_delete_public(struct net
*net
, struct arpreq
*r
,
1138 struct net_device
*dev
)
1140 __be32 ip
= ((struct sockaddr_in
*) &r
->arp_pa
)->sin_addr
.s_addr
;
1141 __be32 mask
= ((struct sockaddr_in
*)&r
->arp_netmask
)->sin_addr
.s_addr
;
1143 if (mask
== htonl(0xFFFFFFFF))
1144 return pneigh_delete(&arp_tbl
, net
, &ip
, dev
);
1149 return arp_req_set_proxy(net
, dev
, 0);
1152 static int arp_req_delete(struct net
*net
, struct arpreq
*r
,
1153 struct net_device
*dev
)
1157 if (r
->arp_flags
& ATF_PUBL
)
1158 return arp_req_delete_public(net
, r
, dev
);
1160 ip
= ((struct sockaddr_in
*)&r
->arp_pa
)->sin_addr
.s_addr
;
1162 struct rtable
*rt
= ip_route_output(net
, ip
, 0, RTO_ONLINK
, 0);
1170 return arp_invalidate(dev
, ip
);
1174 * Handle an ARP layer I/O control request.
1177 int arp_ioctl(struct net
*net
, unsigned int cmd
, void __user
*arg
)
1181 struct net_device
*dev
= NULL
;
1186 if (!ns_capable(net
->user_ns
, CAP_NET_ADMIN
))
1190 err
= copy_from_user(&r
, arg
, sizeof(struct arpreq
));
1198 if (r
.arp_pa
.sa_family
!= AF_INET
)
1199 return -EPFNOSUPPORT
;
1201 if (!(r
.arp_flags
& ATF_PUBL
) &&
1202 (r
.arp_flags
& (ATF_NETMASK
| ATF_DONTPUB
)))
1204 if (!(r
.arp_flags
& ATF_NETMASK
))
1205 ((struct sockaddr_in
*)&r
.arp_netmask
)->sin_addr
.s_addr
=
1206 htonl(0xFFFFFFFFUL
);
1210 dev
= __dev_get_by_name(net
, r
.arp_dev
);
1214 /* Mmmm... It is wrong... ARPHRD_NETROM==0 */
1215 if (!r
.arp_ha
.sa_family
)
1216 r
.arp_ha
.sa_family
= dev
->type
;
1218 if ((r
.arp_flags
& ATF_COM
) && r
.arp_ha
.sa_family
!= dev
->type
)
1220 } else if (cmd
== SIOCGARP
) {
1227 err
= arp_req_delete(net
, &r
, dev
);
1230 err
= arp_req_set(net
, &r
, dev
);
1233 err
= arp_req_get(&r
, dev
);
1238 if (cmd
== SIOCGARP
&& !err
&& copy_to_user(arg
, &r
, sizeof(r
)))
1243 static int arp_netdev_event(struct notifier_block
*this, unsigned long event
,
1246 struct net_device
*dev
= netdev_notifier_info_to_dev(ptr
);
1247 struct netdev_notifier_change_info
*change_info
;
1250 case NETDEV_CHANGEADDR
:
1251 neigh_changeaddr(&arp_tbl
, dev
);
1252 rt_cache_flush(dev_net(dev
));
1256 if (change_info
->flags_changed
& IFF_NOARP
)
1257 neigh_changeaddr(&arp_tbl
, dev
);
1266 static struct notifier_block arp_netdev_notifier
= {
1267 .notifier_call
= arp_netdev_event
,
1270 /* Note, that it is not on notifier chain.
1271 It is necessary, that this routine was called after route cache will be
1274 void arp_ifdown(struct net_device
*dev
)
1276 neigh_ifdown(&arp_tbl
, dev
);
1281 * Called once on startup.
1284 static struct packet_type arp_packet_type __read_mostly
= {
1285 .type
= cpu_to_be16(ETH_P_ARP
),
1289 static int arp_proc_init(void);
1291 void __init
arp_init(void)
1293 neigh_table_init(NEIGH_ARP_TABLE
, &arp_tbl
);
1295 dev_add_pack(&arp_packet_type
);
1297 #ifdef CONFIG_SYSCTL
1298 neigh_sysctl_register(NULL
, &arp_tbl
.parms
, NULL
);
1300 register_netdevice_notifier(&arp_netdev_notifier
);
1303 #ifdef CONFIG_PROC_FS
1304 #if IS_ENABLED(CONFIG_AX25)
1306 /* ------------------------------------------------------------------------ */
1308 * ax25 -> ASCII conversion
1310 static void ax2asc2(ax25_address
*a
, char *buf
)
1315 for (n
= 0, s
= buf
; n
< 6; n
++) {
1316 c
= (a
->ax25_call
[n
] >> 1) & 0x7F;
1323 n
= (a
->ax25_call
[6] >> 1) & 0x0F;
1332 if (*buf
== '\0' || *buf
== '-') {
1337 #endif /* CONFIG_AX25 */
1339 #define HBUFFERLEN 30
1341 static void arp_format_neigh_entry(struct seq_file
*seq
,
1342 struct neighbour
*n
)
1344 char hbuffer
[HBUFFERLEN
];
1347 struct net_device
*dev
= n
->dev
;
1348 int hatype
= dev
->type
;
1350 read_lock(&n
->lock
);
1351 /* Convert hardware address to XX:XX:XX:XX ... form. */
1352 #if IS_ENABLED(CONFIG_AX25)
1353 if (hatype
== ARPHRD_AX25
|| hatype
== ARPHRD_NETROM
)
1354 ax2asc2((ax25_address
*)n
->ha
, hbuffer
);
1357 for (k
= 0, j
= 0; k
< HBUFFERLEN
- 3 && j
< dev
->addr_len
; j
++) {
1358 hbuffer
[k
++] = hex_asc_hi(n
->ha
[j
]);
1359 hbuffer
[k
++] = hex_asc_lo(n
->ha
[j
]);
1365 #if IS_ENABLED(CONFIG_AX25)
1368 sprintf(tbuf
, "%pI4", n
->primary_key
);
1369 seq_printf(seq
, "%-16s 0x%-10x0x%-10x%-17s * %s\n",
1370 tbuf
, hatype
, arp_state_to_flags(n
), hbuffer
, dev
->name
);
1371 read_unlock(&n
->lock
);
1374 static void arp_format_pneigh_entry(struct seq_file
*seq
,
1375 struct pneigh_entry
*n
)
1377 struct net_device
*dev
= n
->dev
;
1378 int hatype
= dev
? dev
->type
: 0;
1381 sprintf(tbuf
, "%pI4", n
->key
);
1382 seq_printf(seq
, "%-16s 0x%-10x0x%-10x%s * %s\n",
1383 tbuf
, hatype
, ATF_PUBL
| ATF_PERM
, "00:00:00:00:00:00",
1384 dev
? dev
->name
: "*");
1387 static int arp_seq_show(struct seq_file
*seq
, void *v
)
1389 if (v
== SEQ_START_TOKEN
) {
1390 seq_puts(seq
, "IP address HW type Flags "
1391 "HW address Mask Device\n");
1393 struct neigh_seq_state
*state
= seq
->private;
1395 if (state
->flags
& NEIGH_SEQ_IS_PNEIGH
)
1396 arp_format_pneigh_entry(seq
, v
);
1398 arp_format_neigh_entry(seq
, v
);
1404 static void *arp_seq_start(struct seq_file
*seq
, loff_t
*pos
)
1406 /* Don't want to confuse "arp -a" w/ magic entries,
1407 * so we tell the generic iterator to skip NUD_NOARP.
1409 return neigh_seq_start(seq
, pos
, &arp_tbl
, NEIGH_SEQ_SKIP_NOARP
);
1412 /* ------------------------------------------------------------------------ */
1414 static const struct seq_operations arp_seq_ops
= {
1415 .start
= arp_seq_start
,
1416 .next
= neigh_seq_next
,
1417 .stop
= neigh_seq_stop
,
1418 .show
= arp_seq_show
,
1421 static int arp_seq_open(struct inode
*inode
, struct file
*file
)
1423 return seq_open_net(inode
, file
, &arp_seq_ops
,
1424 sizeof(struct neigh_seq_state
));
1427 static const struct file_operations arp_seq_fops
= {
1428 .open
= arp_seq_open
,
1430 .llseek
= seq_lseek
,
1431 .release
= seq_release_net
,
1435 static int __net_init
arp_net_init(struct net
*net
)
1437 if (!proc_create("arp", S_IRUGO
, net
->proc_net
, &arp_seq_fops
))
1442 static void __net_exit
arp_net_exit(struct net
*net
)
1444 remove_proc_entry("arp", net
->proc_net
);
1447 static struct pernet_operations arp_net_ops
= {
1448 .init
= arp_net_init
,
1449 .exit
= arp_net_exit
,
1452 static int __init
arp_proc_init(void)
1454 return register_pernet_subsys(&arp_net_ops
);
1457 #else /* CONFIG_PROC_FS */
1459 static int __init
arp_proc_init(void)
1464 #endif /* CONFIG_PROC_FS */