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actions.c
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/*
* Copyright (c) 2007-2014 Nicira, Inc.
*
* This program is free software; you can redistribute it and/or
* modify it under the terms of version 2 of the GNU General Public
* License as published by the Free Software Foundation.
*
* This program is distributed in the hope that it will be useful, but
* WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
* General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
* 02110-1301, USA
*/
#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
#include <linux/skbuff.h>
#include <linux/in.h>
#include <linux/ip.h>
#include <linux/openvswitch.h>
#include <linux/sctp.h>
#include <linux/tcp.h>
#include <linux/udp.h>
#include <linux/in6.h>
#include <linux/if_arp.h>
#include <linux/if_vlan.h>
#include <net/ip.h>
#include <net/ipv6.h>
#include <net/checksum.h>
#include <net/dsfield.h>
#include <net/sctp/checksum.h>
#include "datapath.h"
#include "gso.h"
#include "mpls.h"
#include "vlan.h"
#include "vport.h"
static void flow_key_set_priority(struct sk_buff *skb, u32 priority)
{
OVS_CB(skb)->pkt_key->phy.priority = priority;
}
static void flow_key_set_skb_mark(struct sk_buff *skb, u32 skb_mark)
{
OVS_CB(skb)->pkt_key->phy.skb_mark = skb_mark;
}
static void flow_key_set_eth_src(struct sk_buff *skb, const u8 addr[])
{
ether_addr_copy(OVS_CB(skb)->pkt_key->eth.src, addr);
}
static void flow_key_set_eth_dst(struct sk_buff *skb, const u8 addr[])
{
ether_addr_copy(OVS_CB(skb)->pkt_key->eth.dst, addr);
}
static void flow_key_set_vlan_tci(struct sk_buff *skb, __be16 tci)
{
OVS_CB(skb)->pkt_key->eth.tci = tci;
}
static void flow_key_set_mpls_top_lse(struct sk_buff *skb, __be32 top_lse)
{
OVS_CB(skb)->pkt_key->mpls.top_lse = top_lse;
}
static void flow_key_set_ipv4_src(struct sk_buff *skb, __be32 addr)
{
OVS_CB(skb)->pkt_key->ipv4.addr.src = addr;
}
static void flow_key_set_ipv4_dst(struct sk_buff *skb, __be32 addr)
{
OVS_CB(skb)->pkt_key->ipv4.addr.src = addr;
}
static void flow_key_set_ip_tos(struct sk_buff *skb, u8 tos)
{
OVS_CB(skb)->pkt_key->ip.tos = tos;
}
static void flow_key_set_ip_ttl(struct sk_buff *skb, u8 ttl)
{
OVS_CB(skb)->pkt_key->ip.ttl = ttl;
}
static void flow_key_set_ipv6_src(struct sk_buff *skb,
const __be32 addr[4])
{
memcpy(&OVS_CB(skb)->pkt_key->ipv6.addr.src, addr, sizeof(__be32[4]));
}
static void flow_key_set_ipv6_dst(struct sk_buff *skb,
const __be32 addr[4])
{
memcpy(&OVS_CB(skb)->pkt_key->ipv6.addr.dst, addr, sizeof(__be32[4]));
}
static void flow_key_set_ipv6_fl(struct sk_buff *skb,
const struct ipv6hdr *nh)
{
OVS_CB(skb)->pkt_key->ipv6.label = *(__be32 *)nh &
htonl(IPV6_FLOWINFO_FLOWLABEL);
}
static void flow_key_set_tp_src(struct sk_buff *skb, __be16 port)
{
OVS_CB(skb)->pkt_key->tp.src = port;
}
static void flow_key_set_tp_dst(struct sk_buff *skb, __be16 port)
{
OVS_CB(skb)->pkt_key->tp.dst = port;
}
static void invalidate_skb_flow_key(struct sk_buff *skb)
{
OVS_CB(skb)->pkt_key->eth.type = htons(0);
}
static bool is_skb_flow_key_valid(struct sk_buff *skb)
{
return !!OVS_CB(skb)->pkt_key->eth.type;
}
static int do_execute_actions(struct datapath *dp, struct sk_buff *skb,
const struct nlattr *attr, int len);
static int make_writable(struct sk_buff *skb, int write_len)
{
if (!skb_cloned(skb) || skb_clone_writable(skb, write_len))
return 0;
return pskb_expand_head(skb, 0, 0, GFP_ATOMIC);
}
/* The end of the mac header.
*
* For non-MPLS skbs this will correspond to the network header.
* For MPLS skbs it will be before the network_header as the MPLS
* label stack lies between the end of the mac header and the network
* header. That is, for MPLS skbs the end of the mac header
* is the top of the MPLS label stack.
*/
static unsigned char *mac_header_end(const struct sk_buff *skb)
{
return skb_mac_header(skb) + skb->mac_len;
}
static int push_mpls(struct sk_buff *skb,
const struct ovs_action_push_mpls *mpls)
{
__be32 *new_mpls_lse;
struct ethhdr *hdr;
if (skb_cow_head(skb, MPLS_HLEN) < 0)
return -ENOMEM;
skb_push(skb, MPLS_HLEN);
memmove(skb_mac_header(skb) - MPLS_HLEN, skb_mac_header(skb),
skb->mac_len);
skb_reset_mac_header(skb);
new_mpls_lse = (__be32 *)mac_header_end(skb);
*new_mpls_lse = mpls->mpls_lse;
if (skb->ip_summed == CHECKSUM_COMPLETE)
skb->csum = csum_add(skb->csum, csum_partial(new_mpls_lse,
MPLS_HLEN, 0));
hdr = eth_hdr(skb);
hdr->h_proto = mpls->mpls_ethertype;
if (!ovs_skb_get_inner_protocol(skb))
ovs_skb_set_inner_protocol(skb, skb->protocol);
skb->protocol = mpls->mpls_ethertype;
invalidate_skb_flow_key(skb);
return 0;
}
static int pop_mpls(struct sk_buff *skb, const __be16 ethertype)
{
struct ethhdr *hdr;
int err;
err = make_writable(skb, skb->mac_len + MPLS_HLEN);
if (unlikely(err))
return err;
if (skb->ip_summed == CHECKSUM_COMPLETE)
skb->csum = csum_sub(skb->csum,
csum_partial(mac_header_end(skb),
MPLS_HLEN, 0));
memmove(skb_mac_header(skb) + MPLS_HLEN, skb_mac_header(skb),
skb->mac_len);
__skb_pull(skb, MPLS_HLEN);
skb_reset_mac_header(skb);
/* mac_header_end() is used to locate the ethertype
* field correctly in the presence of VLAN tags.
*/
hdr = (struct ethhdr *)(mac_header_end(skb) - ETH_HLEN);
hdr->h_proto = ethertype;
if (eth_p_mpls(skb->protocol))
skb->protocol = ethertype;
invalidate_skb_flow_key(skb);
return 0;
}
static int set_mpls(struct sk_buff *skb, const __be32 *mpls_lse)
{
__be32 *stack = (__be32 *)mac_header_end(skb);
int err;
err = make_writable(skb, skb->mac_len + MPLS_HLEN);
if (unlikely(err))
return err;
if (skb->ip_summed == CHECKSUM_COMPLETE) {
__be32 diff[] = { ~(*stack), *mpls_lse };
skb->csum = ~csum_partial((char *)diff, sizeof(diff),
~skb->csum);
}
*stack = *mpls_lse;
flow_key_set_mpls_top_lse(skb, *stack);
return 0;
}
/* remove VLAN header from packet and update csum accordingly. */
static int __pop_vlan_tci(struct sk_buff *skb, __be16 *current_tci)
{
struct vlan_hdr *vhdr;
int err;
err = make_writable(skb, VLAN_ETH_HLEN);
if (unlikely(err))
return err;
if (skb->ip_summed == CHECKSUM_COMPLETE)
skb->csum = csum_sub(skb->csum, csum_partial(skb->data
+ (2 * ETH_ALEN), VLAN_HLEN, 0));
vhdr = (struct vlan_hdr *)(skb->data + ETH_HLEN);
*current_tci = vhdr->h_vlan_TCI;
memmove(skb->data + VLAN_HLEN, skb->data, 2 * ETH_ALEN);
__skb_pull(skb, VLAN_HLEN);
vlan_set_encap_proto(skb, vhdr);
skb->mac_header += VLAN_HLEN;
/* Update mac_len for subsequent MPLS actions */
skb->mac_len -= VLAN_HLEN;
return 0;
}
static int pop_vlan(struct sk_buff *skb)
{
__be16 tci;
int err;
if (likely(vlan_tx_tag_present(skb))) {
vlan_set_tci(skb, 0);
} else {
if (unlikely(skb->protocol != htons(ETH_P_8021Q) ||
skb->len < VLAN_ETH_HLEN))
return 0;
err = __pop_vlan_tci(skb, &tci);
if (err)
return err;
}
/* move next vlan tag to hw accel tag */
if (likely(skb->protocol != htons(ETH_P_8021Q) ||
skb->len < VLAN_ETH_HLEN)) {
flow_key_set_vlan_tci(skb, 0);
return 0;
}
invalidate_skb_flow_key(skb);
err = __pop_vlan_tci(skb, &tci);
if (unlikely(err))
return err;
__vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), ntohs(tci));
return 0;
}
static int push_vlan(struct sk_buff *skb, const struct ovs_action_push_vlan *vlan)
{
if (unlikely(vlan_tx_tag_present(skb))) {
u16 current_tag;
/* push down current VLAN tag */
current_tag = vlan_tx_tag_get(skb);
if (!__vlan_put_tag(skb, skb->vlan_proto, current_tag))
return -ENOMEM;
/* Update mac_len for subsequent MPLS actions */
skb->mac_len += VLAN_HLEN;
if (skb->ip_summed == CHECKSUM_COMPLETE)
skb->csum = csum_add(skb->csum, csum_partial(skb->data
+ (2 * ETH_ALEN), VLAN_HLEN, 0));
invalidate_skb_flow_key(skb);
} else {
flow_key_set_vlan_tci(skb, vlan->vlan_tci);
}
__vlan_hwaccel_put_tag(skb, vlan->vlan_tpid, ntohs(vlan->vlan_tci) & ~VLAN_TAG_PRESENT);
return 0;
}
static int set_eth_addr(struct sk_buff *skb,
const struct ovs_key_ethernet *eth_key)
{
int err;
err = make_writable(skb, ETH_HLEN);
if (unlikely(err))
return err;
skb_postpull_rcsum(skb, eth_hdr(skb), ETH_ALEN * 2);
ether_addr_copy(eth_hdr(skb)->h_source, eth_key->eth_src);
ether_addr_copy(eth_hdr(skb)->h_dest, eth_key->eth_dst);
ovs_skb_postpush_rcsum(skb, eth_hdr(skb), ETH_ALEN * 2);
flow_key_set_eth_src(skb, eth_key->eth_src);
flow_key_set_eth_dst(skb, eth_key->eth_dst);
return 0;
}
static void set_ip_addr(struct sk_buff *skb, struct iphdr *nh,
__be32 *addr, __be32 new_addr)
{
int transport_len = skb->len - skb_transport_offset(skb);
if (nh->protocol == IPPROTO_TCP) {
if (likely(transport_len >= sizeof(struct tcphdr)))
inet_proto_csum_replace4(&tcp_hdr(skb)->check, skb,
*addr, new_addr, 1);
} else if (nh->protocol == IPPROTO_UDP) {
if (likely(transport_len >= sizeof(struct udphdr))) {
struct udphdr *uh = udp_hdr(skb);
if (uh->check || skb->ip_summed == CHECKSUM_PARTIAL) {
inet_proto_csum_replace4(&uh->check, skb,
*addr, new_addr, 1);
if (!uh->check)
uh->check = CSUM_MANGLED_0;
}
}
}
csum_replace4(&nh->check, *addr, new_addr);
skb_clear_hash(skb);
*addr = new_addr;
}
static void update_ipv6_checksum(struct sk_buff *skb, u8 l4_proto,
__be32 addr[4], const __be32 new_addr[4])
{
int transport_len = skb->len - skb_transport_offset(skb);
if (l4_proto == IPPROTO_TCP) {
if (likely(transport_len >= sizeof(struct tcphdr)))
inet_proto_csum_replace16(&tcp_hdr(skb)->check, skb,
addr, new_addr, 1);
} else if (l4_proto == IPPROTO_UDP) {
if (likely(transport_len >= sizeof(struct udphdr))) {
struct udphdr *uh = udp_hdr(skb);
if (uh->check || skb->ip_summed == CHECKSUM_PARTIAL) {
inet_proto_csum_replace16(&uh->check, skb,
addr, new_addr, 1);
if (!uh->check)
uh->check = CSUM_MANGLED_0;
}
}
}
}
static void set_ipv6_addr(struct sk_buff *skb, u8 l4_proto,
__be32 addr[4], const __be32 new_addr[4],
bool recalculate_csum)
{
if (recalculate_csum)
update_ipv6_checksum(skb, l4_proto, addr, new_addr);
skb_clear_hash(skb);
memcpy(addr, new_addr, sizeof(__be32[4]));
}
static void set_ipv6_tc(struct ipv6hdr *nh, u8 tc)
{
nh->priority = tc >> 4;
nh->flow_lbl[0] = (nh->flow_lbl[0] & 0x0F) | ((tc & 0x0F) << 4);
}
static void set_ipv6_fl(struct ipv6hdr *nh, u32 fl)
{
nh->flow_lbl[0] = (nh->flow_lbl[0] & 0xF0) | (fl & 0x000F0000) >> 16;
nh->flow_lbl[1] = (fl & 0x0000FF00) >> 8;
nh->flow_lbl[2] = fl & 0x000000FF;
}
static void set_ip_ttl(struct sk_buff *skb, struct iphdr *nh, u8 new_ttl)
{
csum_replace2(&nh->check, htons(nh->ttl << 8), htons(new_ttl << 8));
nh->ttl = new_ttl;
}
static int set_ipv4(struct sk_buff *skb, const struct ovs_key_ipv4 *ipv4_key)
{
struct iphdr *nh;
int err;
err = make_writable(skb, skb_network_offset(skb) +
sizeof(struct iphdr));
if (unlikely(err))
return err;
nh = ip_hdr(skb);
if (ipv4_key->ipv4_src != nh->saddr) {
set_ip_addr(skb, nh, &nh->saddr, ipv4_key->ipv4_src);
flow_key_set_ipv4_src(skb, ipv4_key->ipv4_src);
}
if (ipv4_key->ipv4_dst != nh->daddr) {
set_ip_addr(skb, nh, &nh->daddr, ipv4_key->ipv4_dst);
flow_key_set_ipv4_dst(skb, ipv4_key->ipv4_dst);
}
if (ipv4_key->ipv4_tos != nh->tos) {
ipv4_change_dsfield(nh, 0, ipv4_key->ipv4_tos);
flow_key_set_ip_tos(skb, nh->tos);
}
if (ipv4_key->ipv4_ttl != nh->ttl) {
set_ip_ttl(skb, nh, ipv4_key->ipv4_ttl);
flow_key_set_ip_ttl(skb, ipv4_key->ipv4_ttl);
}
return 0;
}
static int set_ipv6(struct sk_buff *skb, const struct ovs_key_ipv6 *ipv6_key)
{
struct ipv6hdr *nh;
int err;
__be32 *saddr;
__be32 *daddr;
err = make_writable(skb, skb_network_offset(skb) +
sizeof(struct ipv6hdr));
if (unlikely(err))
return err;
nh = ipv6_hdr(skb);
saddr = (__be32 *)&nh->saddr;
daddr = (__be32 *)&nh->daddr;
if (memcmp(ipv6_key->ipv6_src, saddr, sizeof(ipv6_key->ipv6_src))) {
set_ipv6_addr(skb, ipv6_key->ipv6_proto, saddr,
ipv6_key->ipv6_src, true);
flow_key_set_ipv6_src(skb, ipv6_key->ipv6_src);
}
if (memcmp(ipv6_key->ipv6_dst, daddr, sizeof(ipv6_key->ipv6_dst))) {
unsigned int offset = 0;
int flags = OVS_IP6T_FH_F_SKIP_RH;
bool recalc_csum = true;
if (ipv6_ext_hdr(nh->nexthdr))
recalc_csum = ipv6_find_hdr(skb, &offset,
NEXTHDR_ROUTING, NULL,
&flags) != NEXTHDR_ROUTING;
set_ipv6_addr(skb, ipv6_key->ipv6_proto, daddr,
ipv6_key->ipv6_dst, recalc_csum);
flow_key_set_ipv6_dst(skb, ipv6_key->ipv6_dst);
}
set_ipv6_tc(nh, ipv6_key->ipv6_tclass);
flow_key_set_ip_tos(skb, ipv6_get_dsfield(nh));
set_ipv6_fl(nh, ntohl(ipv6_key->ipv6_label));
flow_key_set_ipv6_fl(skb, nh);
nh->hop_limit = ipv6_key->ipv6_hlimit;
flow_key_set_ip_ttl(skb, ipv6_key->ipv6_hlimit);
return 0;
}
/* Must follow make_writable() since that can move the skb data. */
static void set_tp_port(struct sk_buff *skb, __be16 *port,
__be16 new_port, __sum16 *check)
{
inet_proto_csum_replace2(check, skb, *port, new_port, 0);
*port = new_port;
skb_clear_hash(skb);
}
static void set_udp_port(struct sk_buff *skb, __be16 *port, __be16 new_port)
{
struct udphdr *uh = udp_hdr(skb);
if (uh->check && skb->ip_summed != CHECKSUM_PARTIAL) {
set_tp_port(skb, port, new_port, &uh->check);
if (!uh->check)
uh->check = CSUM_MANGLED_0;
} else {
*port = new_port;
skb_clear_hash(skb);
}
}
static int set_udp(struct sk_buff *skb, const struct ovs_key_udp *udp_port_key)
{
struct udphdr *uh;
int err;
err = make_writable(skb, skb_transport_offset(skb) +
sizeof(struct udphdr));
if (unlikely(err))
return err;
uh = udp_hdr(skb);
if (udp_port_key->udp_src != uh->source) {
set_udp_port(skb, &uh->source, udp_port_key->udp_src);
flow_key_set_tp_src(skb, udp_port_key->udp_src);
}
if (udp_port_key->udp_dst != uh->dest) {
set_udp_port(skb, &uh->dest, udp_port_key->udp_dst);
flow_key_set_tp_dst(skb, udp_port_key->udp_dst);
}
return 0;
}
static int set_tcp(struct sk_buff *skb, const struct ovs_key_tcp *tcp_port_key)
{
struct tcphdr *th;
int err;
err = make_writable(skb, skb_transport_offset(skb) +
sizeof(struct tcphdr));
if (unlikely(err))
return err;
th = tcp_hdr(skb);
if (tcp_port_key->tcp_src != th->source) {
set_tp_port(skb, &th->source, tcp_port_key->tcp_src, &th->check);
flow_key_set_tp_src(skb, tcp_port_key->tcp_src);
}
if (tcp_port_key->tcp_dst != th->dest) {
set_tp_port(skb, &th->dest, tcp_port_key->tcp_dst, &th->check);
flow_key_set_tp_dst(skb, tcp_port_key->tcp_dst);
}
return 0;
}
static int set_sctp(struct sk_buff *skb,
const struct ovs_key_sctp *sctp_port_key)
{
struct sctphdr *sh;
int err;
unsigned int sctphoff = skb_transport_offset(skb);
err = make_writable(skb, sctphoff + sizeof(struct sctphdr));
if (unlikely(err))
return err;
sh = sctp_hdr(skb);
if (sctp_port_key->sctp_src != sh->source ||
sctp_port_key->sctp_dst != sh->dest) {
__le32 old_correct_csum, new_csum, old_csum;
old_csum = sh->checksum;
old_correct_csum = sctp_compute_cksum(skb, sctphoff);
sh->source = sctp_port_key->sctp_src;
sh->dest = sctp_port_key->sctp_dst;
new_csum = sctp_compute_cksum(skb, sctphoff);
/* Carry any checksum errors through. */
sh->checksum = old_csum ^ old_correct_csum ^ new_csum;
skb_clear_hash(skb);
flow_key_set_tp_src(skb, sctp_port_key->sctp_src);
flow_key_set_tp_dst(skb, sctp_port_key->sctp_dst);
}
return 0;
}
static void do_output(struct datapath *dp, struct sk_buff *skb, int out_port)
{
struct vport *vport = ovs_vport_rcu(dp, out_port);
if (likely(vport))
ovs_vport_send(vport, skb);
else
kfree_skb(skb);
}
static int output_userspace(struct datapath *dp, struct sk_buff *skb,
const struct nlattr *attr)
{
struct dp_upcall_info upcall;
const struct nlattr *a;
int rem;
upcall.cmd = OVS_PACKET_CMD_ACTION;
upcall.userdata = NULL;
upcall.portid = 0;
for (a = nla_data(attr), rem = nla_len(attr); rem > 0;
a = nla_next(a, &rem)) {
switch (nla_type(a)) {
case OVS_USERSPACE_ATTR_USERDATA:
upcall.userdata = a;
break;
case OVS_USERSPACE_ATTR_PID:
upcall.portid = nla_get_u32(a);
break;
}
}
return ovs_dp_upcall(dp, skb, &upcall);
}
static bool last_action(const struct nlattr *a, int rem)
{
return a->nla_len == rem;
}
static int sample(struct datapath *dp, struct sk_buff *skb,
const struct nlattr *attr)
{
struct sw_flow_key sample_key;
const struct nlattr *acts_list = NULL;
const struct nlattr *a;
struct sk_buff *sample_skb;
int rem;
for (a = nla_data(attr), rem = nla_len(attr); rem > 0;
a = nla_next(a, &rem)) {
switch (nla_type(a)) {
case OVS_SAMPLE_ATTR_PROBABILITY:
if (prandom_u32() >= nla_get_u32(a))
return 0;
break;
case OVS_SAMPLE_ATTR_ACTIONS:
acts_list = a;
break;
}
}
rem = nla_len(acts_list);
a = nla_data(acts_list);
/* Actions list is either empty or only contains a single user-space
* action, the latter being a special case as it is the only known
* usage of the sample action.
* In these special cases don't clone the skb as there are no
* side-effects in the nested actions.
* Otherwise, clone in case the nested actions have side effects. */
if (likely(rem == 0 ||
(nla_type(a) == OVS_ACTION_ATTR_USERSPACE &&
last_action(a, rem)))) {
sample_skb = skb;
skb_get(skb);
} else {
sample_skb = skb_clone(skb, GFP_ATOMIC);
if (!sample_skb)
/* Skip the sample action when out of memory. */
return 0;
sample_key = *OVS_CB(skb)->pkt_key;
OVS_CB(sample_skb)->pkt_key = &sample_key;
}
/* Note that do_execute_actions() never consumes skb.
* In the case where skb has been cloned above it is the clone that
* is consumed. Otherwise the skb_get(skb) call prevents
* consumption by do_execute_actions(). Thus, it is safe to simply
* return the error code and let the caller (also
* do_execute_actions()) free skb on error. */
return do_execute_actions(dp, sample_skb, a, rem);
}
static void execute_hash(struct sk_buff *skb, const struct nlattr *attr)
{
struct sw_flow_key *key = OVS_CB(skb)->pkt_key;
struct ovs_action_hash *hash_act = nla_data(attr);
u32 hash = 0;
/* OVS_HASH_ALG_L4 is the only possible hash algorithm. */
hash = skb_get_hash(skb);
hash = jhash_1word(hash, hash_act->hash_basis);
if (!hash)
hash = 0x1;
key->ovs_flow_hash = hash;
}
static int execute_set_action(struct sk_buff *skb,
const struct nlattr *nested_attr)
{
int err = 0;
switch (nla_type(nested_attr)) {
case OVS_KEY_ATTR_PRIORITY:
skb->priority = nla_get_u32(nested_attr);
flow_key_set_priority(skb, skb->priority);
break;
case OVS_KEY_ATTR_SKB_MARK:
skb->mark = nla_get_u32(nested_attr);
flow_key_set_skb_mark(skb, skb->mark);
break;
case OVS_KEY_ATTR_TUNNEL_INFO:
OVS_CB(skb)->egress_tun_info = nla_data(nested_attr);
break;
case OVS_KEY_ATTR_ETHERNET:
err = set_eth_addr(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_IPV4:
err = set_ipv4(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_IPV6:
err = set_ipv6(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_TCP:
err = set_tcp(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_UDP:
err = set_udp(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_SCTP:
err = set_sctp(skb, nla_data(nested_attr));
break;
case OVS_KEY_ATTR_MPLS:
err = set_mpls(skb, nla_data(nested_attr));
break;
}
return err;
}
static void flow_key_clone_recirc(struct sk_buff *skb, u32 recirc_id,
struct sw_flow_key *recirc_key)
{
*recirc_key = *OVS_CB(skb)->pkt_key;
recirc_key->recirc_id = recirc_id;
OVS_CB(skb)->pkt_key = recirc_key;
}
static void flow_key_set_recirc_id(struct sk_buff *skb, u32 recirc_id)
{
OVS_CB(skb)->pkt_key->recirc_id = recirc_id;
}
static int execute_recirc(struct datapath *dp, struct sk_buff *skb,
const struct nlattr *a, int rem)
{
struct sw_flow_key recirc_key;
int err;
if (!last_action(a, rem)) {
/* Recirc action is the not the last action
* of the action list. */
skb = skb_clone(skb, GFP_ATOMIC);
/* Skip the recirc action when out of memory, but
* continue on with the rest of the action list. */
if (!skb)
return 0;
}
if (is_skb_flow_key_valid(skb)) {
if (!last_action(a, rem))
flow_key_clone_recirc(skb, nla_get_u32(a), &recirc_key);
else
flow_key_set_recirc_id(skb, nla_get_u32(a));
} else {
struct sw_flow_key *pkt_key = OVS_CB(skb)->pkt_key;
err = ovs_flow_key_extract_recirc(nla_get_u32(a), pkt_key,
skb, &recirc_key);
if (err) {
kfree_skb(skb);
return err;
}
}
ovs_dp_process_packet(skb, true);
return 0;
}
/* Execute a list of actions against 'skb'. */
static int do_execute_actions(struct datapath *dp, struct sk_buff *skb,
const struct nlattr *attr, int len)
{
/* Every output action needs a separate clone of 'skb', but the common
* case is just a single output action, so that doing a clone and
* then freeing the original skbuff is wasteful. So the following code
* is slightly obscure just to avoid that. */
int prev_port = -1;
const struct nlattr *a;
int rem;
for (a = attr, rem = len; rem > 0;
a = nla_next(a, &rem)) {
int err = 0;
if (unlikely(prev_port != -1)) {
struct sk_buff *out_skb = skb_clone(skb, GFP_ATOMIC);
if (out_skb)
do_output(dp, out_skb, prev_port);
prev_port = -1;
}
switch (nla_type(a)) {
case OVS_ACTION_ATTR_OUTPUT:
prev_port = nla_get_u32(a);
break;
case OVS_ACTION_ATTR_USERSPACE:
output_userspace(dp, skb, a);
break;
case OVS_ACTION_ATTR_HASH:
execute_hash(skb, a);
break;
case OVS_ACTION_ATTR_PUSH_MPLS:
err = push_mpls(skb, nla_data(a));
break;
case OVS_ACTION_ATTR_POP_MPLS:
err = pop_mpls(skb, nla_get_be16(a));
break;
case OVS_ACTION_ATTR_PUSH_VLAN:
err = push_vlan(skb, nla_data(a));
if (unlikely(err)) /* skb already freed. */
return err;
break;
case OVS_ACTION_ATTR_POP_VLAN:
err = pop_vlan(skb);
break;
case OVS_ACTION_ATTR_RECIRC:
err = execute_recirc(dp, skb, a, rem);
break;
case OVS_ACTION_ATTR_SET:
err = execute_set_action(skb, nla_data(a));
break;
case OVS_ACTION_ATTR_SAMPLE:
err = sample(dp, skb, a);
break;
}
if (unlikely(err)) {
kfree_skb(skb);
return err;
}
}
if (prev_port != -1)
do_output(dp, skb, prev_port);
else
consume_skb(skb);
return 0;
}
/* We limit the number of times that we pass into execute_actions()
* to avoid blowing out the stack in the event that we have a loop.
*
* Each loop adds some (estimated) cost to the kernel stack.
* The loop terminates when the max cost is exceeded.
* */
#define RECIRC_STACK_COST 1
#define DEFAULT_STACK_COST 4
/* Allow up to 4 regular services, and up to 3 recirculations */
#define MAX_STACK_COST (DEFAULT_STACK_COST * 4 + RECIRC_STACK_COST * 3)
struct loop_counter {
u8 stack_cost; /* loop stack cost. */
bool looping; /* Loop detected? */
};
static DEFINE_PER_CPU(struct loop_counter, loop_counters);
static int loop_suppress(struct datapath *dp, struct sw_flow_actions *actions)
{
if (net_ratelimit())
pr_warn("%s: flow loop detected, dropping\n",
ovs_dp_name(dp));
actions->actions_len = 0;
return -ELOOP;
}
/* Execute a list of actions against 'skb'. */
int ovs_execute_actions(struct datapath *dp, struct sk_buff *skb, bool recirc)
{
struct sw_flow_actions *acts = rcu_dereference(OVS_CB(skb)->flow->sf_acts);
const u8 stack_cost = recirc ? RECIRC_STACK_COST : DEFAULT_STACK_COST;
struct loop_counter *loop;
int error;
/* Check whether we've looped too much. */
loop = &__get_cpu_var(loop_counters);
loop->stack_cost += stack_cost;
if (unlikely(loop->stack_cost > MAX_STACK_COST))
loop->looping = true;
if (unlikely(loop->looping)) {
error = loop_suppress(dp, acts);
kfree_skb(skb);
goto out_loop;
}
error = do_execute_actions(dp, skb, acts->actions, acts->actions_len);
/* Check whether sub-actions looped too much. */
if (unlikely(loop->looping))
error = loop_suppress(dp, acts);
out_loop:
/* Decrement loop stack cost. */
loop->stack_cost -= stack_cost;
if (!loop->stack_cost)
loop->looping = false;
return error;
}