3 * Linux ethernet bridge
6 * Lennert Buytenhek <buytenh@gnu.org>
7 * Bart De Schuymer <bdschuym@pandora.be>
9 * This program is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU General Public License
11 * as published by the Free Software Foundation; either version
12 * 2 of the License, or (at your option) any later version.
14 * Lennert dedicates this file to Kerstin Wurdinger.
17 #include <linux/module.h>
18 #include <linux/kernel.h>
19 #include <linux/slab.h>
21 #include <linux/netdevice.h>
22 #include <linux/skbuff.h>
23 #include <linux/if_arp.h>
24 #include <linux/if_ether.h>
25 #include <linux/if_vlan.h>
26 #include <linux/if_pppox.h>
27 #include <linux/ppp_defs.h>
28 #include <linux/netfilter_bridge.h>
29 #include <linux/netfilter_ipv4.h>
30 #include <linux/netfilter_ipv6.h>
31 #include <linux/netfilter_arp.h>
32 #include <linux/in_route.h>
33 #include <linux/inetdevice.h>
37 #include <net/route.h>
39 #include <asm/uaccess.h>
40 #include "br_private.h"
42 #include <linux/sysctl.h>
45 #define skb_origaddr(skb) (((struct bridge_skb_cb *) \
46 (skb->nf_bridge->data))->daddr.ipv4)
47 #define store_orig_dstaddr(skb) (skb_origaddr(skb) = ip_hdr(skb)->daddr)
48 #define dnat_took_place(skb) (skb_origaddr(skb) != ip_hdr(skb)->daddr)
51 static struct ctl_table_header
*brnf_sysctl_header
;
52 static int brnf_call_iptables __read_mostly
= 1;
53 static int brnf_call_ip6tables __read_mostly
= 1;
54 static int brnf_call_arptables __read_mostly
= 1;
55 static int brnf_filter_vlan_tagged __read_mostly
= 0;
56 static int brnf_filter_pppoe_tagged __read_mostly
= 0;
58 #define brnf_call_iptables 1
59 #define brnf_call_ip6tables 1
60 #define brnf_call_arptables 1
61 #define brnf_filter_vlan_tagged 0
62 #define brnf_filter_pppoe_tagged 0
65 static inline __be16
vlan_proto(const struct sk_buff
*skb
)
67 if (vlan_tx_tag_present(skb
))
69 else if (skb
->protocol
== htons(ETH_P_8021Q
))
70 return vlan_eth_hdr(skb
)->h_vlan_encapsulated_proto
;
75 #define IS_VLAN_IP(skb) \
76 (vlan_proto(skb) == htons(ETH_P_IP) && \
77 brnf_filter_vlan_tagged)
79 #define IS_VLAN_IPV6(skb) \
80 (vlan_proto(skb) == htons(ETH_P_IPV6) && \
81 brnf_filter_vlan_tagged)
83 #define IS_VLAN_ARP(skb) \
84 (vlan_proto(skb) == htons(ETH_P_ARP) && \
85 brnf_filter_vlan_tagged)
87 static inline __be16
pppoe_proto(const struct sk_buff
*skb
)
89 return *((__be16
*)(skb_mac_header(skb
) + ETH_HLEN
+
90 sizeof(struct pppoe_hdr
)));
93 #define IS_PPPOE_IP(skb) \
94 (skb->protocol == htons(ETH_P_PPP_SES) && \
95 pppoe_proto(skb) == htons(PPP_IP) && \
96 brnf_filter_pppoe_tagged)
98 #define IS_PPPOE_IPV6(skb) \
99 (skb->protocol == htons(ETH_P_PPP_SES) && \
100 pppoe_proto(skb) == htons(PPP_IPV6) && \
101 brnf_filter_pppoe_tagged)
103 static void fake_update_pmtu(struct dst_entry
*dst
, u32 mtu
)
107 static u32
*fake_cow_metrics(struct dst_entry
*dst
, unsigned long old
)
112 static struct neighbour
*fake_neigh_lookup(const struct dst_entry
*dst
, const void *daddr
)
117 static struct dst_ops fake_dst_ops
= {
119 .protocol
= cpu_to_be16(ETH_P_IP
),
120 .update_pmtu
= fake_update_pmtu
,
121 .cow_metrics
= fake_cow_metrics
,
122 .neigh_lookup
= fake_neigh_lookup
,
126 * Initialize bogus route table used to keep netfilter happy.
127 * Currently, we fill in the PMTU entry because netfilter
128 * refragmentation needs it, and the rt_flags entry because
129 * ipt_REJECT needs it. Future netfilter modules might
130 * require us to fill additional fields.
132 static const u32 br_dst_default_metrics
[RTAX_MAX
] = {
133 [RTAX_MTU
- 1] = 1500,
136 void br_netfilter_rtable_init(struct net_bridge
*br
)
138 struct rtable
*rt
= &br
->fake_rtable
;
140 atomic_set(&rt
->dst
.__refcnt
, 1);
141 rt
->dst
.dev
= br
->dev
;
142 rt
->dst
.path
= &rt
->dst
;
143 dst_init_metrics(&rt
->dst
, br_dst_default_metrics
, true);
144 rt
->dst
.flags
= DST_NOXFRM
;
145 rt
->dst
.ops
= &fake_dst_ops
;
148 static inline struct rtable
*bridge_parent_rtable(const struct net_device
*dev
)
150 struct net_bridge_port
*port
;
152 port
= br_port_get_rcu(dev
);
153 return port
? &port
->br
->fake_rtable
: NULL
;
156 static inline struct net_device
*bridge_parent(const struct net_device
*dev
)
158 struct net_bridge_port
*port
;
160 port
= br_port_get_rcu(dev
);
161 return port
? port
->br
->dev
: NULL
;
164 static inline struct nf_bridge_info
*nf_bridge_alloc(struct sk_buff
*skb
)
166 skb
->nf_bridge
= kzalloc(sizeof(struct nf_bridge_info
), GFP_ATOMIC
);
167 if (likely(skb
->nf_bridge
))
168 atomic_set(&(skb
->nf_bridge
->use
), 1);
170 return skb
->nf_bridge
;
173 static inline struct nf_bridge_info
*nf_bridge_unshare(struct sk_buff
*skb
)
175 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
177 if (atomic_read(&nf_bridge
->use
) > 1) {
178 struct nf_bridge_info
*tmp
= nf_bridge_alloc(skb
);
181 memcpy(tmp
, nf_bridge
, sizeof(struct nf_bridge_info
));
182 atomic_set(&tmp
->use
, 1);
184 nf_bridge_put(nf_bridge
);
190 static inline void nf_bridge_push_encap_header(struct sk_buff
*skb
)
192 unsigned int len
= nf_bridge_encap_header_len(skb
);
195 skb
->network_header
-= len
;
198 static inline void nf_bridge_pull_encap_header(struct sk_buff
*skb
)
200 unsigned int len
= nf_bridge_encap_header_len(skb
);
203 skb
->network_header
+= len
;
206 static inline void nf_bridge_pull_encap_header_rcsum(struct sk_buff
*skb
)
208 unsigned int len
= nf_bridge_encap_header_len(skb
);
210 skb_pull_rcsum(skb
, len
);
211 skb
->network_header
+= len
;
214 static inline void nf_bridge_save_header(struct sk_buff
*skb
)
216 int header_size
= ETH_HLEN
+ nf_bridge_encap_header_len(skb
);
218 skb_copy_from_linear_data_offset(skb
, -header_size
,
219 skb
->nf_bridge
->data
, header_size
);
222 static inline void nf_bridge_update_protocol(struct sk_buff
*skb
)
224 if (skb
->nf_bridge
->mask
& BRNF_8021Q
)
225 skb
->protocol
= htons(ETH_P_8021Q
);
226 else if (skb
->nf_bridge
->mask
& BRNF_PPPoE
)
227 skb
->protocol
= htons(ETH_P_PPP_SES
);
230 /* When handing a packet over to the IP layer
231 * check whether we have a skb that is in the
235 static int br_parse_ip_options(struct sk_buff
*skb
)
237 struct ip_options
*opt
;
238 const struct iphdr
*iph
;
239 struct net_device
*dev
= skb
->dev
;
243 opt
= &(IPCB(skb
)->opt
);
245 /* Basic sanity checks */
246 if (iph
->ihl
< 5 || iph
->version
!= 4)
249 if (!pskb_may_pull(skb
, iph
->ihl
*4))
253 if (unlikely(ip_fast_csum((u8
*)iph
, iph
->ihl
)))
256 len
= ntohs(iph
->tot_len
);
257 if (skb
->len
< len
) {
258 IP_INC_STATS_BH(dev_net(dev
), IPSTATS_MIB_INTRUNCATEDPKTS
);
260 } else if (len
< (iph
->ihl
*4))
263 if (pskb_trim_rcsum(skb
, len
)) {
264 IP_INC_STATS_BH(dev_net(dev
), IPSTATS_MIB_INDISCARDS
);
268 memset(IPCB(skb
), 0, sizeof(struct inet_skb_parm
));
272 opt
->optlen
= iph
->ihl
*4 - sizeof(struct iphdr
);
273 if (ip_options_compile(dev_net(dev
), opt
, skb
))
276 /* Check correct handling of SRR option */
277 if (unlikely(opt
->srr
)) {
278 struct in_device
*in_dev
= __in_dev_get_rcu(dev
);
279 if (in_dev
&& !IN_DEV_SOURCE_ROUTE(in_dev
))
282 if (ip_options_rcv_srr(skb
))
289 IP_INC_STATS_BH(dev_net(dev
), IPSTATS_MIB_INHDRERRORS
);
294 /* Fill in the header for fragmented IP packets handled by
295 * the IPv4 connection tracking code.
297 int nf_bridge_copy_header(struct sk_buff
*skb
)
300 unsigned int header_size
;
302 nf_bridge_update_protocol(skb
);
303 header_size
= ETH_HLEN
+ nf_bridge_encap_header_len(skb
);
304 err
= skb_cow_head(skb
, header_size
);
308 skb_copy_to_linear_data_offset(skb
, -header_size
,
309 skb
->nf_bridge
->data
, header_size
);
310 __skb_push(skb
, nf_bridge_encap_header_len(skb
));
314 /* PF_BRIDGE/PRE_ROUTING *********************************************/
315 /* Undo the changes made for ip6tables PREROUTING and continue the
316 * bridge PRE_ROUTING hook. */
317 static int br_nf_pre_routing_finish_ipv6(struct sk_buff
*skb
)
319 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
322 if (nf_bridge
->mask
& BRNF_PKT_TYPE
) {
323 skb
->pkt_type
= PACKET_OTHERHOST
;
324 nf_bridge
->mask
^= BRNF_PKT_TYPE
;
326 nf_bridge
->mask
^= BRNF_NF_BRIDGE_PREROUTING
;
328 rt
= bridge_parent_rtable(nf_bridge
->physindev
);
333 skb_dst_set_noref(skb
, &rt
->dst
);
335 skb
->dev
= nf_bridge
->physindev
;
336 nf_bridge_update_protocol(skb
);
337 nf_bridge_push_encap_header(skb
);
338 NF_HOOK_THRESH(NFPROTO_BRIDGE
, NF_BR_PRE_ROUTING
, skb
, skb
->dev
, NULL
,
339 br_handle_frame_finish
, 1);
344 /* Obtain the correct destination MAC address, while preserving the original
345 * source MAC address. If we already know this address, we just copy it. If we
346 * don't, we use the neighbour framework to find out. In both cases, we make
347 * sure that br_handle_frame_finish() is called afterwards.
349 static int br_nf_pre_routing_finish_bridge(struct sk_buff
*skb
)
351 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
352 struct neighbour
*neigh
;
353 struct dst_entry
*dst
;
355 skb
->dev
= bridge_parent(skb
->dev
);
359 neigh
= dst_get_neighbour(dst
);
360 if (neigh
->hh
.hh_len
) {
361 neigh_hh_bridge(&neigh
->hh
, skb
);
362 skb
->dev
= nf_bridge
->physindev
;
363 return br_handle_frame_finish(skb
);
365 /* the neighbour function below overwrites the complete
366 * MAC header, so we save the Ethernet source address and
367 * protocol number. */
368 skb_copy_from_linear_data_offset(skb
, -(ETH_HLEN
-ETH_ALEN
), skb
->nf_bridge
->data
, ETH_HLEN
-ETH_ALEN
);
369 /* tell br_dev_xmit to continue with forwarding */
370 nf_bridge
->mask
|= BRNF_BRIDGED_DNAT
;
371 return neigh
->output(neigh
, skb
);
378 /* This requires some explaining. If DNAT has taken place,
379 * we will need to fix up the destination Ethernet address.
381 * There are two cases to consider:
382 * 1. The packet was DNAT'ed to a device in the same bridge
383 * port group as it was received on. We can still bridge
385 * 2. The packet was DNAT'ed to a different device, either
386 * a non-bridged device or another bridge port group.
387 * The packet will need to be routed.
389 * The correct way of distinguishing between these two cases is to
390 * call ip_route_input() and to look at skb->dst->dev, which is
391 * changed to the destination device if ip_route_input() succeeds.
393 * Let's first consider the case that ip_route_input() succeeds:
395 * If the output device equals the logical bridge device the packet
396 * came in on, we can consider this bridging. The corresponding MAC
397 * address will be obtained in br_nf_pre_routing_finish_bridge.
398 * Otherwise, the packet is considered to be routed and we just
399 * change the destination MAC address so that the packet will
400 * later be passed up to the IP stack to be routed. For a redirected
401 * packet, ip_route_input() will give back the localhost as output device,
402 * which differs from the bridge device.
404 * Let's now consider the case that ip_route_input() fails:
406 * This can be because the destination address is martian, in which case
407 * the packet will be dropped.
408 * If IP forwarding is disabled, ip_route_input() will fail, while
409 * ip_route_output_key() can return success. The source
410 * address for ip_route_output_key() is set to zero, so ip_route_output_key()
411 * thinks we're handling a locally generated packet and won't care
412 * if IP forwarding is enabled. If the output device equals the logical bridge
413 * device, we proceed as if ip_route_input() succeeded. If it differs from the
414 * logical bridge port or if ip_route_output_key() fails we drop the packet.
416 static int br_nf_pre_routing_finish(struct sk_buff
*skb
)
418 struct net_device
*dev
= skb
->dev
;
419 struct iphdr
*iph
= ip_hdr(skb
);
420 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
424 if (nf_bridge
->mask
& BRNF_PKT_TYPE
) {
425 skb
->pkt_type
= PACKET_OTHERHOST
;
426 nf_bridge
->mask
^= BRNF_PKT_TYPE
;
428 nf_bridge
->mask
^= BRNF_NF_BRIDGE_PREROUTING
;
429 if (dnat_took_place(skb
)) {
430 if ((err
= ip_route_input(skb
, iph
->daddr
, iph
->saddr
, iph
->tos
, dev
))) {
431 struct in_device
*in_dev
= __in_dev_get_rcu(dev
);
433 /* If err equals -EHOSTUNREACH the error is due to a
434 * martian destination or due to the fact that
435 * forwarding is disabled. For most martian packets,
436 * ip_route_output_key() will fail. It won't fail for 2 types of
437 * martian destinations: loopback destinations and destination
438 * 0.0.0.0. In both cases the packet will be dropped because the
439 * destination is the loopback device and not the bridge. */
440 if (err
!= -EHOSTUNREACH
|| !in_dev
|| IN_DEV_FORWARD(in_dev
))
443 rt
= ip_route_output(dev_net(dev
), iph
->daddr
, 0,
444 RT_TOS(iph
->tos
), 0);
446 /* - Bridged-and-DNAT'ed traffic doesn't
447 * require ip_forwarding. */
448 if (rt
->dst
.dev
== dev
) {
449 skb_dst_set(skb
, &rt
->dst
);
458 if (skb_dst(skb
)->dev
== dev
) {
460 skb
->dev
= nf_bridge
->physindev
;
461 nf_bridge_update_protocol(skb
);
462 nf_bridge_push_encap_header(skb
);
463 NF_HOOK_THRESH(NFPROTO_BRIDGE
,
466 br_nf_pre_routing_finish_bridge
,
470 memcpy(eth_hdr(skb
)->h_dest
, dev
->dev_addr
, ETH_ALEN
);
471 skb
->pkt_type
= PACKET_HOST
;
474 rt
= bridge_parent_rtable(nf_bridge
->physindev
);
479 skb_dst_set_noref(skb
, &rt
->dst
);
482 skb
->dev
= nf_bridge
->physindev
;
483 nf_bridge_update_protocol(skb
);
484 nf_bridge_push_encap_header(skb
);
485 NF_HOOK_THRESH(NFPROTO_BRIDGE
, NF_BR_PRE_ROUTING
, skb
, skb
->dev
, NULL
,
486 br_handle_frame_finish
, 1);
491 /* Some common code for IPv4/IPv6 */
492 static struct net_device
*setup_pre_routing(struct sk_buff
*skb
)
494 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
496 if (skb
->pkt_type
== PACKET_OTHERHOST
) {
497 skb
->pkt_type
= PACKET_HOST
;
498 nf_bridge
->mask
|= BRNF_PKT_TYPE
;
501 nf_bridge
->mask
|= BRNF_NF_BRIDGE_PREROUTING
;
502 nf_bridge
->physindev
= skb
->dev
;
503 skb
->dev
= bridge_parent(skb
->dev
);
504 if (skb
->protocol
== htons(ETH_P_8021Q
))
505 nf_bridge
->mask
|= BRNF_8021Q
;
506 else if (skb
->protocol
== htons(ETH_P_PPP_SES
))
507 nf_bridge
->mask
|= BRNF_PPPoE
;
512 /* We only check the length. A bridge shouldn't do any hop-by-hop stuff anyway */
513 static int check_hbh_len(struct sk_buff
*skb
)
515 unsigned char *raw
= (u8
*)(ipv6_hdr(skb
) + 1);
517 const unsigned char *nh
= skb_network_header(skb
);
519 int len
= (raw
[1] + 1) << 3;
521 if ((raw
+ len
) - skb
->data
> skb_headlen(skb
))
528 int optlen
= nh
[off
+ 1] + 2;
539 if (nh
[off
+ 1] != 4 || (off
& 3) != 2)
541 pkt_len
= ntohl(*(__be32
*) (nh
+ off
+ 2));
542 if (pkt_len
<= IPV6_MAXPLEN
||
543 ipv6_hdr(skb
)->payload_len
)
545 if (pkt_len
> skb
->len
- sizeof(struct ipv6hdr
))
547 if (pskb_trim_rcsum(skb
,
548 pkt_len
+ sizeof(struct ipv6hdr
)))
550 nh
= skb_network_header(skb
);
567 /* Replicate the checks that IPv6 does on packet reception and pass the packet
568 * to ip6tables, which doesn't support NAT, so things are fairly simple. */
569 static unsigned int br_nf_pre_routing_ipv6(unsigned int hook
,
571 const struct net_device
*in
,
572 const struct net_device
*out
,
573 int (*okfn
)(struct sk_buff
*))
575 const struct ipv6hdr
*hdr
;
578 if (skb
->len
< sizeof(struct ipv6hdr
))
581 if (!pskb_may_pull(skb
, sizeof(struct ipv6hdr
)))
586 if (hdr
->version
!= 6)
589 pkt_len
= ntohs(hdr
->payload_len
);
591 if (pkt_len
|| hdr
->nexthdr
!= NEXTHDR_HOP
) {
592 if (pkt_len
+ sizeof(struct ipv6hdr
) > skb
->len
)
594 if (pskb_trim_rcsum(skb
, pkt_len
+ sizeof(struct ipv6hdr
)))
597 if (hdr
->nexthdr
== NEXTHDR_HOP
&& check_hbh_len(skb
))
600 nf_bridge_put(skb
->nf_bridge
);
601 if (!nf_bridge_alloc(skb
))
603 if (!setup_pre_routing(skb
))
606 skb
->protocol
= htons(ETH_P_IPV6
);
607 NF_HOOK(NFPROTO_IPV6
, NF_INET_PRE_ROUTING
, skb
, skb
->dev
, NULL
,
608 br_nf_pre_routing_finish_ipv6
);
613 /* Direct IPv6 traffic to br_nf_pre_routing_ipv6.
614 * Replicate the checks that IPv4 does on packet reception.
615 * Set skb->dev to the bridge device (i.e. parent of the
616 * receiving device) to make netfilter happy, the REDIRECT
617 * target in particular. Save the original destination IP
618 * address to be able to detect DNAT afterwards. */
619 static unsigned int br_nf_pre_routing(unsigned int hook
, struct sk_buff
*skb
,
620 const struct net_device
*in
,
621 const struct net_device
*out
,
622 int (*okfn
)(struct sk_buff
*))
624 struct net_bridge_port
*p
;
625 struct net_bridge
*br
;
626 __u32 len
= nf_bridge_encap_header_len(skb
);
628 if (unlikely(!pskb_may_pull(skb
, len
)))
631 p
= br_port_get_rcu(in
);
636 if (skb
->protocol
== htons(ETH_P_IPV6
) || IS_VLAN_IPV6(skb
) ||
637 IS_PPPOE_IPV6(skb
)) {
638 if (!brnf_call_ip6tables
&& !br
->nf_call_ip6tables
)
641 nf_bridge_pull_encap_header_rcsum(skb
);
642 return br_nf_pre_routing_ipv6(hook
, skb
, in
, out
, okfn
);
645 if (!brnf_call_iptables
&& !br
->nf_call_iptables
)
648 if (skb
->protocol
!= htons(ETH_P_IP
) && !IS_VLAN_IP(skb
) &&
652 nf_bridge_pull_encap_header_rcsum(skb
);
654 if (br_parse_ip_options(skb
))
657 nf_bridge_put(skb
->nf_bridge
);
658 if (!nf_bridge_alloc(skb
))
660 if (!setup_pre_routing(skb
))
662 store_orig_dstaddr(skb
);
663 skb
->protocol
= htons(ETH_P_IP
);
665 NF_HOOK(NFPROTO_IPV4
, NF_INET_PRE_ROUTING
, skb
, skb
->dev
, NULL
,
666 br_nf_pre_routing_finish
);
672 /* PF_BRIDGE/LOCAL_IN ************************************************/
673 /* The packet is locally destined, which requires a real
674 * dst_entry, so detach the fake one. On the way up, the
675 * packet would pass through PRE_ROUTING again (which already
676 * took place when the packet entered the bridge), but we
677 * register an IPv4 PRE_ROUTING 'sabotage' hook that will
678 * prevent this from happening. */
679 static unsigned int br_nf_local_in(unsigned int hook
, struct sk_buff
*skb
,
680 const struct net_device
*in
,
681 const struct net_device
*out
,
682 int (*okfn
)(struct sk_buff
*))
684 struct rtable
*rt
= skb_rtable(skb
);
686 if (rt
&& rt
== bridge_parent_rtable(in
))
692 /* PF_BRIDGE/FORWARD *************************************************/
693 static int br_nf_forward_finish(struct sk_buff
*skb
)
695 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
696 struct net_device
*in
;
698 if (skb
->protocol
!= htons(ETH_P_ARP
) && !IS_VLAN_ARP(skb
)) {
699 in
= nf_bridge
->physindev
;
700 if (nf_bridge
->mask
& BRNF_PKT_TYPE
) {
701 skb
->pkt_type
= PACKET_OTHERHOST
;
702 nf_bridge
->mask
^= BRNF_PKT_TYPE
;
704 nf_bridge_update_protocol(skb
);
706 in
= *((struct net_device
**)(skb
->cb
));
708 nf_bridge_push_encap_header(skb
);
710 NF_HOOK_THRESH(NFPROTO_BRIDGE
, NF_BR_FORWARD
, skb
, in
,
711 skb
->dev
, br_forward_finish
, 1);
715 /* This is the 'purely bridged' case. For IP, we pass the packet to
716 * netfilter with indev and outdev set to the bridge device,
717 * but we are still able to filter on the 'real' indev/outdev
718 * because of the physdev module. For ARP, indev and outdev are the
720 static unsigned int br_nf_forward_ip(unsigned int hook
, struct sk_buff
*skb
,
721 const struct net_device
*in
,
722 const struct net_device
*out
,
723 int (*okfn
)(struct sk_buff
*))
725 struct nf_bridge_info
*nf_bridge
;
726 struct net_device
*parent
;
732 /* Need exclusive nf_bridge_info since we might have multiple
733 * different physoutdevs. */
734 if (!nf_bridge_unshare(skb
))
737 parent
= bridge_parent(out
);
741 if (skb
->protocol
== htons(ETH_P_IP
) || IS_VLAN_IP(skb
) ||
744 else if (skb
->protocol
== htons(ETH_P_IPV6
) || IS_VLAN_IPV6(skb
) ||
750 nf_bridge_pull_encap_header(skb
);
752 nf_bridge
= skb
->nf_bridge
;
753 if (skb
->pkt_type
== PACKET_OTHERHOST
) {
754 skb
->pkt_type
= PACKET_HOST
;
755 nf_bridge
->mask
|= BRNF_PKT_TYPE
;
758 if (pf
== PF_INET
&& br_parse_ip_options(skb
))
761 /* The physdev module checks on this */
762 nf_bridge
->mask
|= BRNF_BRIDGED
;
763 nf_bridge
->physoutdev
= skb
->dev
;
765 skb
->protocol
= htons(ETH_P_IP
);
767 skb
->protocol
= htons(ETH_P_IPV6
);
769 NF_HOOK(pf
, NF_INET_FORWARD
, skb
, bridge_parent(in
), parent
,
770 br_nf_forward_finish
);
775 static unsigned int br_nf_forward_arp(unsigned int hook
, struct sk_buff
*skb
,
776 const struct net_device
*in
,
777 const struct net_device
*out
,
778 int (*okfn
)(struct sk_buff
*))
780 struct net_bridge_port
*p
;
781 struct net_bridge
*br
;
782 struct net_device
**d
= (struct net_device
**)(skb
->cb
);
784 p
= br_port_get_rcu(out
);
789 if (!brnf_call_arptables
&& !br
->nf_call_arptables
)
792 if (skb
->protocol
!= htons(ETH_P_ARP
)) {
793 if (!IS_VLAN_ARP(skb
))
795 nf_bridge_pull_encap_header(skb
);
798 if (arp_hdr(skb
)->ar_pln
!= 4) {
799 if (IS_VLAN_ARP(skb
))
800 nf_bridge_push_encap_header(skb
);
803 *d
= (struct net_device
*)in
;
804 NF_HOOK(NFPROTO_ARP
, NF_ARP_FORWARD
, skb
, (struct net_device
*)in
,
805 (struct net_device
*)out
, br_nf_forward_finish
);
810 #if defined(CONFIG_NF_CONNTRACK_IPV4) || defined(CONFIG_NF_CONNTRACK_IPV4_MODULE)
811 static int br_nf_dev_queue_xmit(struct sk_buff
*skb
)
815 if (skb
->nfct
!= NULL
&& skb
->protocol
== htons(ETH_P_IP
) &&
816 skb
->len
+ nf_bridge_mtu_reduction(skb
) > skb
->dev
->mtu
&&
818 if (br_parse_ip_options(skb
))
819 /* Drop invalid packet */
821 ret
= ip_fragment(skb
, br_dev_queue_push_xmit
);
823 ret
= br_dev_queue_push_xmit(skb
);
828 static int br_nf_dev_queue_xmit(struct sk_buff
*skb
)
830 return br_dev_queue_push_xmit(skb
);
834 /* PF_BRIDGE/POST_ROUTING ********************************************/
835 static unsigned int br_nf_post_routing(unsigned int hook
, struct sk_buff
*skb
,
836 const struct net_device
*in
,
837 const struct net_device
*out
,
838 int (*okfn
)(struct sk_buff
*))
840 struct nf_bridge_info
*nf_bridge
= skb
->nf_bridge
;
841 struct net_device
*realoutdev
= bridge_parent(skb
->dev
);
844 if (!nf_bridge
|| !(nf_bridge
->mask
& BRNF_BRIDGED
))
850 if (skb
->protocol
== htons(ETH_P_IP
) || IS_VLAN_IP(skb
) ||
853 else if (skb
->protocol
== htons(ETH_P_IPV6
) || IS_VLAN_IPV6(skb
) ||
859 /* We assume any code from br_dev_queue_push_xmit onwards doesn't care
860 * about the value of skb->pkt_type. */
861 if (skb
->pkt_type
== PACKET_OTHERHOST
) {
862 skb
->pkt_type
= PACKET_HOST
;
863 nf_bridge
->mask
|= BRNF_PKT_TYPE
;
866 nf_bridge_pull_encap_header(skb
);
867 nf_bridge_save_header(skb
);
869 skb
->protocol
= htons(ETH_P_IP
);
871 skb
->protocol
= htons(ETH_P_IPV6
);
873 NF_HOOK(pf
, NF_INET_POST_ROUTING
, skb
, NULL
, realoutdev
,
874 br_nf_dev_queue_xmit
);
879 /* IP/SABOTAGE *****************************************************/
880 /* Don't hand locally destined packets to PF_INET(6)/PRE_ROUTING
881 * for the second time. */
882 static unsigned int ip_sabotage_in(unsigned int hook
, struct sk_buff
*skb
,
883 const struct net_device
*in
,
884 const struct net_device
*out
,
885 int (*okfn
)(struct sk_buff
*))
887 if (skb
->nf_bridge
&&
888 !(skb
->nf_bridge
->mask
& BRNF_NF_BRIDGE_PREROUTING
)) {
895 /* For br_nf_post_routing, we need (prio = NF_BR_PRI_LAST), because
896 * br_dev_queue_push_xmit is called afterwards */
897 static struct nf_hook_ops br_nf_ops
[] __read_mostly
= {
899 .hook
= br_nf_pre_routing
,
900 .owner
= THIS_MODULE
,
902 .hooknum
= NF_BR_PRE_ROUTING
,
903 .priority
= NF_BR_PRI_BRNF
,
906 .hook
= br_nf_local_in
,
907 .owner
= THIS_MODULE
,
909 .hooknum
= NF_BR_LOCAL_IN
,
910 .priority
= NF_BR_PRI_BRNF
,
913 .hook
= br_nf_forward_ip
,
914 .owner
= THIS_MODULE
,
916 .hooknum
= NF_BR_FORWARD
,
917 .priority
= NF_BR_PRI_BRNF
- 1,
920 .hook
= br_nf_forward_arp
,
921 .owner
= THIS_MODULE
,
923 .hooknum
= NF_BR_FORWARD
,
924 .priority
= NF_BR_PRI_BRNF
,
927 .hook
= br_nf_post_routing
,
928 .owner
= THIS_MODULE
,
930 .hooknum
= NF_BR_POST_ROUTING
,
931 .priority
= NF_BR_PRI_LAST
,
934 .hook
= ip_sabotage_in
,
935 .owner
= THIS_MODULE
,
937 .hooknum
= NF_INET_PRE_ROUTING
,
938 .priority
= NF_IP_PRI_FIRST
,
941 .hook
= ip_sabotage_in
,
942 .owner
= THIS_MODULE
,
944 .hooknum
= NF_INET_PRE_ROUTING
,
945 .priority
= NF_IP6_PRI_FIRST
,
951 int brnf_sysctl_call_tables(ctl_table
* ctl
, int write
,
952 void __user
* buffer
, size_t * lenp
, loff_t
* ppos
)
956 ret
= proc_dointvec(ctl
, write
, buffer
, lenp
, ppos
);
958 if (write
&& *(int *)(ctl
->data
))
959 *(int *)(ctl
->data
) = 1;
963 static ctl_table brnf_table
[] = {
965 .procname
= "bridge-nf-call-arptables",
966 .data
= &brnf_call_arptables
,
967 .maxlen
= sizeof(int),
969 .proc_handler
= brnf_sysctl_call_tables
,
972 .procname
= "bridge-nf-call-iptables",
973 .data
= &brnf_call_iptables
,
974 .maxlen
= sizeof(int),
976 .proc_handler
= brnf_sysctl_call_tables
,
979 .procname
= "bridge-nf-call-ip6tables",
980 .data
= &brnf_call_ip6tables
,
981 .maxlen
= sizeof(int),
983 .proc_handler
= brnf_sysctl_call_tables
,
986 .procname
= "bridge-nf-filter-vlan-tagged",
987 .data
= &brnf_filter_vlan_tagged
,
988 .maxlen
= sizeof(int),
990 .proc_handler
= brnf_sysctl_call_tables
,
993 .procname
= "bridge-nf-filter-pppoe-tagged",
994 .data
= &brnf_filter_pppoe_tagged
,
995 .maxlen
= sizeof(int),
997 .proc_handler
= brnf_sysctl_call_tables
,
1002 static struct ctl_path brnf_path
[] = {
1003 { .procname
= "net", },
1004 { .procname
= "bridge", },
1009 int __init
br_netfilter_init(void)
1013 ret
= dst_entries_init(&fake_dst_ops
);
1017 ret
= nf_register_hooks(br_nf_ops
, ARRAY_SIZE(br_nf_ops
));
1019 dst_entries_destroy(&fake_dst_ops
);
1022 #ifdef CONFIG_SYSCTL
1023 brnf_sysctl_header
= register_sysctl_paths(brnf_path
, brnf_table
);
1024 if (brnf_sysctl_header
== NULL
) {
1026 "br_netfilter: can't register to sysctl.\n");
1027 nf_unregister_hooks(br_nf_ops
, ARRAY_SIZE(br_nf_ops
));
1028 dst_entries_destroy(&fake_dst_ops
);
1032 printk(KERN_NOTICE
"Bridge firewalling registered\n");
1036 void br_netfilter_fini(void)
1038 nf_unregister_hooks(br_nf_ops
, ARRAY_SIZE(br_nf_ops
));
1039 #ifdef CONFIG_SYSCTL
1040 unregister_sysctl_table(brnf_sysctl_header
);
1042 dst_entries_destroy(&fake_dst_ops
);