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https://github.com/openvswitch/ovs
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FreeBSD insists that <sys/types.h> be included before <netinet/in.h> and that <netinet/in.h> be included before <arpa/inet.h>. This adds guards to the "sparse" headers to yield a warning if this order is violated. This commit also adjusts the order of many #includes to suit this requirement. Signed-off-by: Ben Pfaff <blp@ovn.org> Acked-by: Justin Pettit <jpettit@ovn.org>
530 lines
17 KiB
C
530 lines
17 KiB
C
/*
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* Copyright (c) 2008, 2009, 2010, 2011, 2012, 2013, 2014, 2015 Nicira, Inc.
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at:
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <config.h>
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#include <sys/types.h>
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#include <netinet/in.h>
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#include <arpa/inet.h>
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#include <errno.h>
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#include <inttypes.h>
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#include <sys/socket.h>
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#include <net/if.h>
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#include <string.h>
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#include <stdlib.h>
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#include "classifier.h"
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#include "dhcp.h"
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#include "flow.h"
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#include "in-band.h"
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#include "netdev.h"
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#include "netlink.h"
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#include "odp-util.h"
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#include "ofproto.h"
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#include "ofproto-provider.h"
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#include "openflow/openflow.h"
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#include "openvswitch/ofp-actions.h"
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#include "openvswitch/ofpbuf.h"
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#include "openvswitch/vlog.h"
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#include "packets.h"
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#include "openvswitch/poll-loop.h"
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#include "timeval.h"
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VLOG_DEFINE_THIS_MODULE(in_band);
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/* Priorities used in classifier for in-band rules. These values are higher
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* than any that may be set with OpenFlow, and "18" kind of looks like "IB".
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* The ordering of priorities is not important because all of the rules set up
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* by in-band control have the same action. The only reason to use more than
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* one priority is to make the kind of flow easier to see during debugging. */
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enum {
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/* One set per bridge. */
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IBR_FROM_LOCAL_DHCP = 180000, /* (a) From local port, DHCP. */
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IBR_TO_LOCAL_ARP, /* (b) To local port, ARP. */
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IBR_FROM_LOCAL_ARP, /* (c) From local port, ARP. */
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/* One set per unique next-hop MAC. */
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IBR_TO_NEXT_HOP_ARP, /* (d) To remote MAC, ARP. */
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IBR_FROM_NEXT_HOP_ARP, /* (e) From remote MAC, ARP. */
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/* One set per unique remote IP address. */
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IBR_TO_REMOTE_ARP, /* (f) To remote IP, ARP. */
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IBR_FROM_REMOTE_ARP, /* (g) From remote IP, ARP. */
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/* One set per unique remote (IP,port) pair. */
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IBR_TO_REMOTE_TCP, /* (h) To remote IP, TCP port. */
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IBR_FROM_REMOTE_TCP /* (i) From remote IP, TCP port. */
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};
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/* Track one remote IP and next hop information. */
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struct in_band_remote {
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struct sockaddr_in remote_addr; /* IP address, in network byte order. */
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struct eth_addr remote_mac; /* Next-hop MAC, all-zeros if unknown. */
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struct eth_addr last_remote_mac; /* Previous nonzero next-hop MAC. */
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struct netdev *remote_netdev; /* Device to send to next-hop MAC. */
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};
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/* What to do to an in_band_rule. */
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enum in_band_op {
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ADD, /* Add the rule to ofproto's flow table. */
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DEL /* Delete the rule from ofproto's flow table. */
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};
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/* A rule to add to or delete from ofproto's flow table. */
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struct in_band_rule {
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struct hmap_node hmap_node; /* In struct in_band's "rules" hmap. */
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struct match match;
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int priority;
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enum in_band_op op;
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};
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struct in_band {
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struct ofproto *ofproto;
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int queue_id;
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/* Remote information. */
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time_t next_remote_refresh; /* Refresh timer. */
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struct in_band_remote *remotes;
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size_t n_remotes;
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/* Local information. */
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time_t next_local_refresh; /* Refresh timer. */
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struct eth_addr local_mac; /* Current MAC. */
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struct netdev *local_netdev; /* Local port's network device. */
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/* Flow tracking. */
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struct hmap rules; /* Contains "struct in_band_rule"s. */
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};
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static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(60, 60);
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static int
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refresh_remote(struct in_band *ib, struct in_band_remote *r)
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{
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struct in_addr next_hop_inaddr;
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char *next_hop_dev;
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int retval;
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/* Find the next-hop IP address. */
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r->remote_mac = eth_addr_zero;
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retval = netdev_get_next_hop(ib->local_netdev, &r->remote_addr.sin_addr,
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&next_hop_inaddr, &next_hop_dev);
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if (retval) {
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VLOG_WARN_RL(&rl, "%s: cannot find route for controller "
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"("IP_FMT"): %s",
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ib->ofproto->name,
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IP_ARGS(r->remote_addr.sin_addr.s_addr),
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ovs_strerror(retval));
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return 1;
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}
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if (!next_hop_inaddr.s_addr) {
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next_hop_inaddr = r->remote_addr.sin_addr;
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}
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/* Open the next-hop network device. */
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if (!r->remote_netdev
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|| strcmp(netdev_get_name(r->remote_netdev), next_hop_dev))
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{
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netdev_close(r->remote_netdev);
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retval = netdev_open(next_hop_dev, NULL, &r->remote_netdev);
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if (retval) {
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VLOG_WARN_RL(&rl, "%s: cannot open netdev %s (next hop "
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"to controller "IP_FMT"): %s",
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ib->ofproto->name, next_hop_dev,
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IP_ARGS(r->remote_addr.sin_addr.s_addr),
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ovs_strerror(retval));
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free(next_hop_dev);
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return 1;
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}
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}
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free(next_hop_dev);
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/* Look up the MAC address of the next-hop IP address. */
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retval = netdev_arp_lookup(r->remote_netdev, next_hop_inaddr.s_addr,
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&r->remote_mac);
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if (retval) {
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VLOG_DBG_RL(&rl, "%s: cannot look up remote MAC address ("IP_FMT"): %s",
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ib->ofproto->name, IP_ARGS(next_hop_inaddr.s_addr),
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ovs_strerror(retval));
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}
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/* If we don't have a MAC address, then refresh quickly, since we probably
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* will get a MAC address soon (via ARP). Otherwise, we can afford to wait
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* a little while. */
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return eth_addr_is_zero(r->remote_mac) ? 1 : 10;
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}
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static bool
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refresh_remotes(struct in_band *ib)
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{
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struct in_band_remote *r;
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bool any_changes;
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if (time_now() < ib->next_remote_refresh) {
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return false;
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}
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any_changes = false;
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ib->next_remote_refresh = TIME_MAX;
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for (r = ib->remotes; r < &ib->remotes[ib->n_remotes]; r++) {
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struct eth_addr old_remote_mac;
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time_t next_refresh;
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/* Save old MAC. */
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old_remote_mac = r->remote_mac;
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/* Refresh remote information. */
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next_refresh = refresh_remote(ib, r) + time_now();
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ib->next_remote_refresh = MIN(ib->next_remote_refresh, next_refresh);
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/* If the MAC changed, log the changes. */
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if (!eth_addr_equals(r->remote_mac, old_remote_mac)) {
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any_changes = true;
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if (!eth_addr_is_zero(r->remote_mac)
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&& !eth_addr_equals(r->last_remote_mac, r->remote_mac)) {
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VLOG_DBG("%s: remote MAC address changed from "ETH_ADDR_FMT
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" to "ETH_ADDR_FMT,
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ib->ofproto->name,
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ETH_ADDR_ARGS(r->last_remote_mac),
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ETH_ADDR_ARGS(r->remote_mac));
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r->last_remote_mac = r->remote_mac;
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}
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}
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}
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return any_changes;
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}
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/* Refreshes the MAC address of the local port into ib->local_mac, if it is due
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* for a refresh. Returns true if anything changed, otherwise false. */
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static bool
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refresh_local(struct in_band *ib)
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{
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struct eth_addr ea;
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time_t now;
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now = time_now();
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if (now < ib->next_local_refresh) {
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return false;
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}
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ib->next_local_refresh = now + 1;
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if (netdev_get_etheraddr(ib->local_netdev, &ea)
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|| eth_addr_equals(ea, ib->local_mac)) {
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return false;
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}
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ib->local_mac = ea;
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return true;
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}
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/* Returns true if packets in 'flow' should be directed to the local port.
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* (This keeps the flow table from preventing DHCP replies from being seen by
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* the local port.) */
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bool
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in_band_must_output_to_local_port(const struct flow *flow)
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{
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return (flow->dl_type == htons(ETH_TYPE_IP)
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&& flow->nw_proto == IPPROTO_UDP
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&& flow->tp_src == htons(DHCP_SERVER_PORT)
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&& flow->tp_dst == htons(DHCP_CLIENT_PORT));
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}
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/* Returns the number of in-band rules currently installed in the flow
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* table. */
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int
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in_band_count_rules(const struct in_band *ib)
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{
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return hmap_count(&ib->rules);
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}
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static void
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add_rule(struct in_band *ib, const struct match *match, int priority)
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{
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uint32_t hash = match_hash(match, 0);
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struct in_band_rule *rule;
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HMAP_FOR_EACH_WITH_HASH (rule, hmap_node, hash, &ib->rules) {
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if (match_equal(&rule->match, match)) {
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rule->op = ADD;
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return;
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}
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}
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rule = xmalloc(sizeof *rule);
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rule->match = *match;
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rule->priority = priority;
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rule->op = ADD;
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hmap_insert(&ib->rules, &rule->hmap_node, hash);
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}
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static void
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update_rules(struct in_band *ib)
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{
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struct in_band_rule *ib_rule;
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struct in_band_remote *r;
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struct match match;
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/* Mark all the existing rules for deletion. (Afterward we will re-add any
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* rules that are still valid.) */
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HMAP_FOR_EACH (ib_rule, hmap_node, &ib->rules) {
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ib_rule->op = DEL;
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}
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if (ib->n_remotes && !eth_addr_is_zero(ib->local_mac)) {
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/* (a) Allow DHCP requests sent from the local port. */
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match_init_catchall(&match);
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match_set_in_port(&match, OFPP_LOCAL);
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match_set_dl_type(&match, htons(ETH_TYPE_IP));
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match_set_dl_src(&match, ib->local_mac);
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match_set_nw_proto(&match, IPPROTO_UDP);
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match_set_tp_src(&match, htons(DHCP_CLIENT_PORT));
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match_set_tp_dst(&match, htons(DHCP_SERVER_PORT));
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add_rule(ib, &match, IBR_FROM_LOCAL_DHCP);
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/* (b) Allow ARP replies to the local port's MAC address. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_dl_dst(&match, ib->local_mac);
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match_set_nw_proto(&match, ARP_OP_REPLY);
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add_rule(ib, &match, IBR_TO_LOCAL_ARP);
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/* (c) Allow ARP requests from the local port's MAC address. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_dl_src(&match, ib->local_mac);
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match_set_nw_proto(&match, ARP_OP_REQUEST);
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add_rule(ib, &match, IBR_FROM_LOCAL_ARP);
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}
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for (r = ib->remotes; r < &ib->remotes[ib->n_remotes]; r++) {
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if (eth_addr_is_zero(r->remote_mac)) {
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continue;
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}
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/* (d) Allow ARP replies to the next hop's MAC address. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_dl_dst(&match, r->remote_mac);
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match_set_nw_proto(&match, ARP_OP_REPLY);
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add_rule(ib, &match, IBR_TO_NEXT_HOP_ARP);
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/* (e) Allow ARP requests from the next hop's MAC address. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_dl_src(&match, r->remote_mac);
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match_set_nw_proto(&match, ARP_OP_REQUEST);
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add_rule(ib, &match, IBR_FROM_NEXT_HOP_ARP);
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}
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for (r = ib->remotes; r < &ib->remotes[ib->n_remotes]; r++) {
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const struct sockaddr_in *a = &r->remote_addr;
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/* (f) Allow ARP replies containing the remote's IP address as a
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* target. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_nw_proto(&match, ARP_OP_REPLY);
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match_set_nw_dst(&match, a->sin_addr.s_addr);
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add_rule(ib, &match, IBR_TO_REMOTE_ARP);
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/* (g) Allow ARP requests containing the remote's IP address as a
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* source. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_ARP));
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match_set_nw_proto(&match, ARP_OP_REQUEST);
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match_set_nw_src(&match, a->sin_addr.s_addr);
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add_rule(ib, &match, IBR_FROM_REMOTE_ARP);
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/* (h) Allow TCP traffic to the remote's IP and port. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_IP));
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match_set_nw_proto(&match, IPPROTO_TCP);
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match_set_nw_dst(&match, a->sin_addr.s_addr);
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match_set_tp_dst(&match, a->sin_port);
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add_rule(ib, &match, IBR_TO_REMOTE_TCP);
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/* (i) Allow TCP traffic from the remote's IP and port. */
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match_init_catchall(&match);
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match_set_dl_type(&match, htons(ETH_TYPE_IP));
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match_set_nw_proto(&match, IPPROTO_TCP);
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match_set_nw_src(&match, a->sin_addr.s_addr);
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match_set_tp_src(&match, a->sin_port);
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add_rule(ib, &match, IBR_FROM_REMOTE_TCP);
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}
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}
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/* Updates the OpenFlow flow table for the current state of in-band control.
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* Returns true ordinarily. Returns false if no remotes are configured on 'ib'
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* and 'ib' doesn't have any rules left to remove from the OpenFlow flow
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* table. Thus, a false return value means that the caller can destroy 'ib'
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* without leaving extra flows hanging around in the flow table. */
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bool
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in_band_run(struct in_band *ib)
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{
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uint64_t ofpacts_stub[128 / 8];
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struct ofpbuf ofpacts;
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struct in_band_rule *rule, *next;
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ofpbuf_use_stub(&ofpacts, ofpacts_stub, sizeof ofpacts_stub);
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if (ib->queue_id >= 0) {
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ofpact_put_SET_QUEUE(&ofpacts)->queue_id = ib->queue_id;
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}
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ofpact_put_OUTPUT(&ofpacts)->port = OFPP_NORMAL;
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refresh_local(ib);
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refresh_remotes(ib);
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update_rules(ib);
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HMAP_FOR_EACH_SAFE (rule, next, hmap_node, &ib->rules) {
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switch (rule->op) {
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case ADD:
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ofproto_add_flow(ib->ofproto, &rule->match, rule->priority,
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ofpacts.data, ofpacts.size);
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break;
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case DEL:
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ovs_mutex_lock(&ofproto_mutex);
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ofproto_delete_flow(ib->ofproto, &rule->match, rule->priority);
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ovs_mutex_unlock(&ofproto_mutex);
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hmap_remove(&ib->rules, &rule->hmap_node);
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free(rule);
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break;
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}
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}
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ofpbuf_uninit(&ofpacts);
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return ib->n_remotes || !hmap_is_empty(&ib->rules);
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}
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void
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in_band_wait(struct in_band *in_band)
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{
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long long int wakeup
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= MIN(in_band->next_remote_refresh, in_band->next_local_refresh);
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poll_timer_wait_until(wakeup * 1000);
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}
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int
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in_band_create(struct ofproto *ofproto, const char *local_name,
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struct in_band **in_bandp)
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{
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struct in_band *in_band;
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struct netdev *local_netdev;
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int error;
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const char *type = ofproto_port_open_type(ofproto->type, "internal");
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*in_bandp = NULL;
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error = netdev_open(local_name, type, &local_netdev);
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if (error) {
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VLOG_ERR("%s: failed to initialize in-band control: cannot open "
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"datapath local port %s (%s)", ofproto->name,
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local_name, ovs_strerror(error));
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return error;
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}
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in_band = xzalloc(sizeof *in_band);
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in_band->ofproto = ofproto;
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in_band->queue_id = -1;
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in_band->next_remote_refresh = TIME_MIN;
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in_band->next_local_refresh = TIME_MIN;
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in_band->local_netdev = local_netdev;
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hmap_init(&in_band->rules);
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*in_bandp = in_band;
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return 0;
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}
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void
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in_band_destroy(struct in_band *ib)
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{
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if (ib) {
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struct in_band_rule *rule;
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HMAP_FOR_EACH_POP (rule, hmap_node, &ib->rules) {
|
|
free(rule);
|
|
}
|
|
hmap_destroy(&ib->rules);
|
|
in_band_set_remotes(ib, NULL, 0);
|
|
netdev_close(ib->local_netdev);
|
|
free(ib);
|
|
}
|
|
}
|
|
|
|
static bool
|
|
any_addresses_changed(struct in_band *ib,
|
|
const struct sockaddr_in *addresses, size_t n)
|
|
{
|
|
size_t i;
|
|
|
|
if (n != ib->n_remotes) {
|
|
return true;
|
|
}
|
|
|
|
for (i = 0; i < n; i++) {
|
|
const struct sockaddr_in *old = &ib->remotes[i].remote_addr;
|
|
const struct sockaddr_in *new = &addresses[i];
|
|
|
|
if (old->sin_addr.s_addr != new->sin_addr.s_addr ||
|
|
old->sin_port != new->sin_port) {
|
|
return true;
|
|
}
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
void
|
|
in_band_set_remotes(struct in_band *ib,
|
|
const struct sockaddr_in *addresses, size_t n)
|
|
{
|
|
size_t i;
|
|
|
|
if (!any_addresses_changed(ib, addresses, n)) {
|
|
return;
|
|
}
|
|
|
|
/* Clear old remotes. */
|
|
for (i = 0; i < ib->n_remotes; i++) {
|
|
netdev_close(ib->remotes[i].remote_netdev);
|
|
}
|
|
free(ib->remotes);
|
|
|
|
/* Set up new remotes. */
|
|
ib->remotes = n ? xzalloc(n * sizeof *ib->remotes) : NULL;
|
|
ib->n_remotes = n;
|
|
for (i = 0; i < n; i++) {
|
|
ib->remotes[i].remote_addr = addresses[i];
|
|
}
|
|
|
|
/* Force refresh in next call to in_band_run(). */
|
|
ib->next_remote_refresh = TIME_MIN;
|
|
}
|
|
|
|
/* Sets the OpenFlow queue used by flows set up by 'ib' to 'queue_id'. If
|
|
* 'queue_id' is negative, 'ib' will not set any queue (which is also the
|
|
* default). */
|
|
void
|
|
in_band_set_queue(struct in_band *ib, int queue_id)
|
|
{
|
|
ib->queue_id = queue_id;
|
|
}
|
|
|