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connmgr.c
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connmgr.c
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/*
* Copyright (c) 2009, 2010, 2011, 2012, 2013, 2014, 2015 Nicira, Inc.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at:
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#include <config.h>
#include "connmgr.h"
#include <errno.h>
#include <stdlib.h>
#include "coverage.h"
#include "dynamic-string.h"
#include "fail-open.h"
#include "in-band.h"
#include "odp-util.h"
#include "ofp-actions.h"
#include "ofp-msgs.h"
#include "ofp-util.h"
#include "ofpbuf.h"
#include "ofproto-provider.h"
#include "pinsched.h"
#include "poll-loop.h"
#include "pktbuf.h"
#include "rconn.h"
#include "shash.h"
#include "simap.h"
#include "stream.h"
#include "timeval.h"
#include "openvswitch/vconn.h"
#include "openvswitch/vlog.h"
#include "bundles.h"
VLOG_DEFINE_THIS_MODULE(connmgr);
static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
/* An OpenFlow connection.
*
*
* Thread-safety
* =============
*
* 'ofproto_mutex' must be held whenever an ofconn is created or destroyed or,
* more or less equivalently, whenever an ofconn is added to or removed from a
* connmgr. 'ofproto_mutex' doesn't protect the data inside the ofconn, except
* as specifically noted below. */
struct ofconn {
/* Configuration that persists from one connection to the next. */
struct ovs_list node; /* In struct connmgr's "all_conns" list. */
struct hmap_node hmap_node; /* In struct connmgr's "controllers" map. */
struct connmgr *connmgr; /* Connection's manager. */
struct rconn *rconn; /* OpenFlow connection. */
enum ofconn_type type; /* Type. */
enum ofproto_band band; /* In-band or out-of-band? */
bool enable_async_msgs; /* Initially enable async messages? */
/* State that should be cleared from one connection to the next. */
/* OpenFlow state. */
enum ofp12_controller_role role; /* Role. */
enum ofputil_protocol protocol; /* Current protocol variant. */
enum nx_packet_in_format packet_in_format; /* OFPT_PACKET_IN format. */
/* OFPT_PACKET_IN related data. */
struct rconn_packet_counter *packet_in_counter; /* # queued on 'rconn'. */
#define N_SCHEDULERS 2
struct pinsched *schedulers[N_SCHEDULERS];
struct pktbuf *pktbuf; /* OpenFlow packet buffers. */
int miss_send_len; /* Bytes to send of buffered packets. */
uint16_t controller_id; /* Connection controller ID. */
/* Number of OpenFlow messages queued on 'rconn' as replies to OpenFlow
* requests, and the maximum number before we stop reading OpenFlow
* requests. */
#define OFCONN_REPLY_MAX 100
struct rconn_packet_counter *reply_counter;
/* Asynchronous message configuration in each possible roles.
*
* A 1-bit enables sending an asynchronous message for one possible reason
* that the message might be generated, a 0-bit disables it. */
uint32_t master_async_config[OAM_N_TYPES]; /* master, other */
uint32_t slave_async_config[OAM_N_TYPES]; /* slave */
/* Flow table operation logging. */
int n_add, n_delete, n_modify; /* Number of unreported ops of each kind. */
long long int first_op, last_op; /* Range of times for unreported ops. */
long long int next_op_report; /* Time to report ops, or LLONG_MAX. */
long long int op_backoff; /* Earliest time to report ops again. */
/* Flow monitors (e.g. NXST_FLOW_MONITOR). */
/* Configuration. Contains "struct ofmonitor"s. */
struct hmap monitors OVS_GUARDED_BY(ofproto_mutex);
/* Flow control.
*
* When too many flow monitor notifications back up in the transmit buffer,
* we pause the transmission of further notifications. These members track
* the flow control state.
*
* When notifications are flowing, 'monitor_paused' is 0. When
* notifications are paused, 'monitor_paused' is the value of
* 'monitor_seqno' at the point we paused.
*
* 'monitor_counter' counts the OpenFlow messages and bytes currently in
* flight. This value growing too large triggers pausing. */
uint64_t monitor_paused OVS_GUARDED_BY(ofproto_mutex);
struct rconn_packet_counter *monitor_counter OVS_GUARDED_BY(ofproto_mutex);
/* State of monitors for a single ongoing flow_mod.
*
* 'updates' is a list of "struct ofpbuf"s that contain
* NXST_FLOW_MONITOR_REPLY messages representing the changes made by the
* current flow_mod.
*
* When 'updates' is nonempty, 'sent_abbrev_update' is true if 'updates'
* contains an update event of type NXFME_ABBREV and false otherwise.. */
struct ovs_list updates OVS_GUARDED_BY(ofproto_mutex);
bool sent_abbrev_update OVS_GUARDED_BY(ofproto_mutex);
/* Active bundles. Contains "struct ofp_bundle"s. */
struct hmap bundles;
};
static struct ofconn *ofconn_create(struct connmgr *, struct rconn *,
enum ofconn_type, bool enable_async_msgs)
OVS_REQUIRES(ofproto_mutex);
static void ofconn_destroy(struct ofconn *) OVS_REQUIRES(ofproto_mutex);
static void ofconn_flush(struct ofconn *) OVS_REQUIRES(ofproto_mutex);
static void ofconn_reconfigure(struct ofconn *,
const struct ofproto_controller *);
static void ofconn_run(struct ofconn *,
void (*handle_openflow)(struct ofconn *,
const struct ofpbuf *ofp_msg));
static void ofconn_wait(struct ofconn *);
static void ofconn_log_flow_mods(struct ofconn *);
static const char *ofconn_get_target(const struct ofconn *);
static char *ofconn_make_name(const struct connmgr *, const char *target);
static void ofconn_set_rate_limit(struct ofconn *, int rate, int burst);
static void ofconn_send(const struct ofconn *, struct ofpbuf *,
struct rconn_packet_counter *);
static void do_send_packet_ins(struct ofconn *, struct ovs_list *txq);
/* A listener for incoming OpenFlow "service" connections. */
struct ofservice {
struct hmap_node node; /* In struct connmgr's "services" hmap. */
struct pvconn *pvconn; /* OpenFlow connection listener. */
/* These are not used by ofservice directly. They are settings for
* accepted "struct ofconn"s from the pvconn. */
int probe_interval; /* Max idle time before probing, in seconds. */
int rate_limit; /* Max packet-in rate in packets per second. */
int burst_limit; /* Limit on accumulating packet credits. */
bool enable_async_msgs; /* Initially enable async messages? */
uint8_t dscp; /* DSCP Value for controller connection */
uint32_t allowed_versions; /* OpenFlow protocol versions that may
* be negotiated for a session. */
};
static void ofservice_reconfigure(struct ofservice *,
const struct ofproto_controller *);
static int ofservice_create(struct connmgr *mgr, const char *target,
uint32_t allowed_versions, uint8_t dscp);
static void ofservice_destroy(struct connmgr *, struct ofservice *);
static struct ofservice *ofservice_lookup(struct connmgr *,
const char *target);
/* Connection manager for an OpenFlow switch. */
struct connmgr {
struct ofproto *ofproto;
char *name;
char *local_port_name;
/* OpenFlow connections. */
struct hmap controllers; /* All OFCONN_PRIMARY controllers. */
struct ovs_list all_conns; /* All controllers. */
uint64_t master_election_id; /* monotonically increasing sequence number
* for master election */
bool master_election_id_defined;
/* OpenFlow listeners. */
struct hmap services; /* Contains "struct ofservice"s. */
struct pvconn **snoops;
size_t n_snoops;
/* Fail open. */
struct fail_open *fail_open;
enum ofproto_fail_mode fail_mode;
/* In-band control. */
struct in_band *in_band;
struct sockaddr_in *extra_in_band_remotes;
size_t n_extra_remotes;
int in_band_queue;
};
static void update_in_band_remotes(struct connmgr *);
static void add_snooper(struct connmgr *, struct vconn *);
static void ofmonitor_run(struct connmgr *);
static void ofmonitor_wait(struct connmgr *);
/* Creates and returns a new connection manager owned by 'ofproto'. 'name' is
* a name for the ofproto suitable for using in log messages.
* 'local_port_name' is the name of the local port (OFPP_LOCAL) within
* 'ofproto'. */
struct connmgr *
connmgr_create(struct ofproto *ofproto,
const char *name, const char *local_port_name)
{
struct connmgr *mgr;
mgr = xmalloc(sizeof *mgr);
mgr->ofproto = ofproto;
mgr->name = xstrdup(name);
mgr->local_port_name = xstrdup(local_port_name);
hmap_init(&mgr->controllers);
list_init(&mgr->all_conns);
mgr->master_election_id = 0;
mgr->master_election_id_defined = false;
hmap_init(&mgr->services);
mgr->snoops = NULL;
mgr->n_snoops = 0;
mgr->fail_open = NULL;
mgr->fail_mode = OFPROTO_FAIL_SECURE;
mgr->in_band = NULL;
mgr->extra_in_band_remotes = NULL;
mgr->n_extra_remotes = 0;
mgr->in_band_queue = -1;
return mgr;
}
/* Frees 'mgr' and all of its resources. */
void
connmgr_destroy(struct connmgr *mgr)
{
struct ofservice *ofservice, *next_ofservice;
struct ofconn *ofconn, *next_ofconn;
size_t i;
if (!mgr) {
return;
}
ovs_mutex_lock(&ofproto_mutex);
LIST_FOR_EACH_SAFE (ofconn, next_ofconn, node, &mgr->all_conns) {
ofconn_destroy(ofconn);
}
ovs_mutex_unlock(&ofproto_mutex);
hmap_destroy(&mgr->controllers);
HMAP_FOR_EACH_SAFE (ofservice, next_ofservice, node, &mgr->services) {
ofservice_destroy(mgr, ofservice);
}
hmap_destroy(&mgr->services);
for (i = 0; i < mgr->n_snoops; i++) {
pvconn_close(mgr->snoops[i]);
}
free(mgr->snoops);
fail_open_destroy(mgr->fail_open);
mgr->fail_open = NULL;
in_band_destroy(mgr->in_band);
mgr->in_band = NULL;
free(mgr->extra_in_band_remotes);
free(mgr->name);
free(mgr->local_port_name);
free(mgr);
}
/* Does all of the periodic maintenance required by 'mgr'. Calls
* 'handle_openflow' for each message received on an OpenFlow connection,
* passing along the OpenFlow connection itself and the message that was sent.
* 'handle_openflow' must not modify or free the message. */
void
connmgr_run(struct connmgr *mgr,
void (*handle_openflow)(struct ofconn *,
const struct ofpbuf *ofp_msg))
OVS_EXCLUDED(ofproto_mutex)
{
struct ofconn *ofconn, *next_ofconn;
struct ofservice *ofservice;
size_t i;
if (mgr->in_band) {
if (!in_band_run(mgr->in_band)) {
in_band_destroy(mgr->in_band);
mgr->in_band = NULL;
}
}
LIST_FOR_EACH_SAFE (ofconn, next_ofconn, node, &mgr->all_conns) {
ofconn_run(ofconn, handle_openflow);
}
ofmonitor_run(mgr);
/* Fail-open maintenance. Do this after processing the ofconns since
* fail-open checks the status of the controller rconn. */
if (mgr->fail_open) {
fail_open_run(mgr->fail_open);
}
HMAP_FOR_EACH (ofservice, node, &mgr->services) {
struct vconn *vconn;
int retval;
retval = pvconn_accept(ofservice->pvconn, &vconn);
if (!retval) {
struct rconn *rconn;
char *name;
/* Passing default value for creation of the rconn */
rconn = rconn_create(ofservice->probe_interval, 0, ofservice->dscp,
vconn_get_allowed_versions(vconn));
name = ofconn_make_name(mgr, vconn_get_name(vconn));
rconn_connect_unreliably(rconn, vconn, name);
free(name);
ovs_mutex_lock(&ofproto_mutex);
ofconn = ofconn_create(mgr, rconn, OFCONN_SERVICE,
ofservice->enable_async_msgs);
ovs_mutex_unlock(&ofproto_mutex);
ofconn_set_rate_limit(ofconn, ofservice->rate_limit,
ofservice->burst_limit);
} else if (retval != EAGAIN) {
VLOG_WARN_RL(&rl, "accept failed (%s)", ovs_strerror(retval));
}
}
for (i = 0; i < mgr->n_snoops; i++) {
struct vconn *vconn;
int retval;
retval = pvconn_accept(mgr->snoops[i], &vconn);
if (!retval) {
add_snooper(mgr, vconn);
} else if (retval != EAGAIN) {
VLOG_WARN_RL(&rl, "accept failed (%s)", ovs_strerror(retval));
}
}
}
/* Causes the poll loop to wake up when connmgr_run() needs to run. */
void
connmgr_wait(struct connmgr *mgr)
{
struct ofservice *ofservice;
struct ofconn *ofconn;
size_t i;
LIST_FOR_EACH (ofconn, node, &mgr->all_conns) {
ofconn_wait(ofconn);
}
ofmonitor_wait(mgr);
if (mgr->in_band) {
in_band_wait(mgr->in_band);
}
if (mgr->fail_open) {
fail_open_wait(mgr->fail_open);
}
HMAP_FOR_EACH (ofservice, node, &mgr->services) {
pvconn_wait(ofservice->pvconn);
}
for (i = 0; i < mgr->n_snoops; i++) {
pvconn_wait(mgr->snoops[i]);
}
}
/* Adds some memory usage statistics for 'mgr' into 'usage', for use with
* memory_report(). */
void
connmgr_get_memory_usage(const struct connmgr *mgr, struct simap *usage)
{
const struct ofconn *ofconn;
unsigned int packets = 0;
unsigned int ofconns = 0;
LIST_FOR_EACH (ofconn, node, &mgr->all_conns) {
int i;
ofconns++;
packets += rconn_count_txqlen(ofconn->rconn);
for (i = 0; i < N_SCHEDULERS; i++) {
struct pinsched_stats stats;
pinsched_get_stats(ofconn->schedulers[i], &stats);
packets += stats.n_queued;;
}
packets += pktbuf_count_packets(ofconn->pktbuf);
}
simap_increase(usage, "ofconns", ofconns);
simap_increase(usage, "packets", packets);
}
/* Returns the ofproto that owns 'ofconn''s connmgr. */
struct ofproto *
ofconn_get_ofproto(const struct ofconn *ofconn)
{
return ofconn->connmgr->ofproto;
}
/* OpenFlow configuration. */
static void add_controller(struct connmgr *, const char *target, uint8_t dscp,
uint32_t allowed_versions)
OVS_REQUIRES(ofproto_mutex);
static struct ofconn *find_controller_by_target(struct connmgr *,
const char *target);
static void update_fail_open(struct connmgr *) OVS_EXCLUDED(ofproto_mutex);
static int set_pvconns(struct pvconn ***pvconnsp, size_t *n_pvconnsp,
const struct sset *);
/* Returns true if 'mgr' has any configured primary controllers.
*
* Service controllers do not count, but configured primary controllers do
* count whether or not they are currently connected. */
bool
connmgr_has_controllers(const struct connmgr *mgr)
{
return !hmap_is_empty(&mgr->controllers);
}
/* Initializes 'info' and populates it with information about each configured
* primary controller. The keys in 'info' are the controllers' targets; the
* data values are corresponding "struct ofproto_controller_info".
*
* The caller owns 'info' and everything in it and should free it when it is no
* longer needed. */
void
connmgr_get_controller_info(struct connmgr *mgr, struct shash *info)
{
const struct ofconn *ofconn;
HMAP_FOR_EACH (ofconn, hmap_node, &mgr->controllers) {
const struct rconn *rconn = ofconn->rconn;
const char *target = rconn_get_target(rconn);
if (!shash_find(info, target)) {
struct ofproto_controller_info *cinfo = xmalloc(sizeof *cinfo);
time_t now = time_now();
time_t last_connection = rconn_get_last_connection(rconn);
time_t last_disconnect = rconn_get_last_disconnect(rconn);
int last_error = rconn_get_last_error(rconn);
int i;
shash_add(info, target, cinfo);
cinfo->is_connected = rconn_is_connected(rconn);
cinfo->role = ofconn->role;
smap_init(&cinfo->pairs);
if (last_error) {
smap_add(&cinfo->pairs, "last_error",
ovs_retval_to_string(last_error));
}
smap_add(&cinfo->pairs, "state", rconn_get_state(rconn));
if (last_connection != TIME_MIN) {
smap_add_format(&cinfo->pairs, "sec_since_connect",
"%ld", (long int) (now - last_connection));
}
if (last_disconnect != TIME_MIN) {
smap_add_format(&cinfo->pairs, "sec_since_disconnect",
"%ld", (long int) (now - last_disconnect));
}
for (i = 0; i < N_SCHEDULERS; i++) {
if (ofconn->schedulers[i]) {
const char *name = i ? "miss" : "action";
struct pinsched_stats stats;
pinsched_get_stats(ofconn->schedulers[i], &stats);
smap_add_nocopy(&cinfo->pairs,
xasprintf("packet-in-%s-backlog", name),
xasprintf("%u", stats.n_queued));
smap_add_nocopy(&cinfo->pairs,
xasprintf("packet-in-%s-bypassed", name),
xasprintf("%llu", stats.n_normal));
smap_add_nocopy(&cinfo->pairs,
xasprintf("packet-in-%s-queued", name),
xasprintf("%llu", stats.n_limited));
smap_add_nocopy(&cinfo->pairs,
xasprintf("packet-in-%s-dropped", name),
xasprintf("%llu", stats.n_queue_dropped));
}
}
}
}
}
void
connmgr_free_controller_info(struct shash *info)
{
struct shash_node *node;
SHASH_FOR_EACH (node, info) {
struct ofproto_controller_info *cinfo = node->data;
smap_destroy(&cinfo->pairs);
free(cinfo);
}
shash_destroy(info);
}
/* Changes 'mgr''s set of controllers to the 'n_controllers' controllers in
* 'controllers'. */
void
connmgr_set_controllers(struct connmgr *mgr,
const struct ofproto_controller *controllers,
size_t n_controllers, uint32_t allowed_versions)
OVS_EXCLUDED(ofproto_mutex)
{
bool had_controllers = connmgr_has_controllers(mgr);
struct shash new_controllers;
struct ofconn *ofconn, *next_ofconn;
struct ofservice *ofservice, *next_ofservice;
size_t i;
/* Required to add and remove ofconns. This could probably be narrowed to
* cover a smaller amount of code, if that yielded some benefit. */
ovs_mutex_lock(&ofproto_mutex);
/* Create newly configured controllers and services.
* Create a name to ofproto_controller mapping in 'new_controllers'. */
shash_init(&new_controllers);
for (i = 0; i < n_controllers; i++) {
const struct ofproto_controller *c = &controllers[i];
if (!vconn_verify_name(c->target)) {
bool add = false;
ofconn = find_controller_by_target(mgr, c->target);
if (!ofconn) {
VLOG_INFO("%s: added primary controller \"%s\"",
mgr->name, c->target);
add = true;
} else if (rconn_get_allowed_versions(ofconn->rconn) !=
allowed_versions) {
VLOG_INFO("%s: re-added primary controller \"%s\"",
mgr->name, c->target);
add = true;
ofconn_destroy(ofconn);
}
if (add) {
add_controller(mgr, c->target, c->dscp, allowed_versions);
}
} else if (!pvconn_verify_name(c->target)) {
bool add = false;
ofservice = ofservice_lookup(mgr, c->target);
if (!ofservice) {
VLOG_INFO("%s: added service controller \"%s\"",
mgr->name, c->target);
add = true;
} else if (ofservice->allowed_versions != allowed_versions) {
VLOG_INFO("%s: re-added service controller \"%s\"",
mgr->name, c->target);
ofservice_destroy(mgr, ofservice);
add = true;
}
if (add) {
ofservice_create(mgr, c->target, allowed_versions, c->dscp);
}
} else {
VLOG_WARN_RL(&rl, "%s: unsupported controller \"%s\"",
mgr->name, c->target);
continue;
}
shash_add_once(&new_controllers, c->target, &controllers[i]);
}
/* Delete controllers that are no longer configured.
* Update configuration of all now-existing controllers. */
HMAP_FOR_EACH_SAFE (ofconn, next_ofconn, hmap_node, &mgr->controllers) {
const char *target = ofconn_get_target(ofconn);
struct ofproto_controller *c;
c = shash_find_data(&new_controllers, target);
if (!c) {
VLOG_INFO("%s: removed primary controller \"%s\"",
mgr->name, target);
ofconn_destroy(ofconn);
} else {
ofconn_reconfigure(ofconn, c);
}
}
/* Delete services that are no longer configured.
* Update configuration of all now-existing services. */
HMAP_FOR_EACH_SAFE (ofservice, next_ofservice, node, &mgr->services) {
const char *target = pvconn_get_name(ofservice->pvconn);
struct ofproto_controller *c;
c = shash_find_data(&new_controllers, target);
if (!c) {
VLOG_INFO("%s: removed service controller \"%s\"",
mgr->name, target);
ofservice_destroy(mgr, ofservice);
} else {
ofservice_reconfigure(ofservice, c);
}
}
shash_destroy(&new_controllers);
ovs_mutex_unlock(&ofproto_mutex);
update_in_band_remotes(mgr);
update_fail_open(mgr);
if (had_controllers != connmgr_has_controllers(mgr)) {
ofproto_flush_flows(mgr->ofproto);
}
}
/* Drops the connections between 'mgr' and all of its primary and secondary
* controllers, forcing them to reconnect. */
void
connmgr_reconnect(const struct connmgr *mgr)
{
struct ofconn *ofconn;
LIST_FOR_EACH (ofconn, node, &mgr->all_conns) {
rconn_reconnect(ofconn->rconn);
}
}
/* Sets the "snoops" for 'mgr' to the pvconn targets listed in 'snoops'.
*
* A "snoop" is a pvconn to which every OpenFlow message to or from the most
* important controller on 'mgr' is mirrored. */
int
connmgr_set_snoops(struct connmgr *mgr, const struct sset *snoops)
{
return set_pvconns(&mgr->snoops, &mgr->n_snoops, snoops);
}
/* Adds each of the snoops currently configured on 'mgr' to 'snoops'. */
void
connmgr_get_snoops(const struct connmgr *mgr, struct sset *snoops)
{
size_t i;
for (i = 0; i < mgr->n_snoops; i++) {
sset_add(snoops, pvconn_get_name(mgr->snoops[i]));
}
}
/* Returns true if 'mgr' has at least one snoop, false if it has none. */
bool
connmgr_has_snoops(const struct connmgr *mgr)
{
return mgr->n_snoops > 0;
}
/* Creates a new controller for 'target' in 'mgr'. update_controller() needs
* to be called later to finish the new ofconn's configuration. */
static void
add_controller(struct connmgr *mgr, const char *target, uint8_t dscp,
uint32_t allowed_versions)
OVS_REQUIRES(ofproto_mutex)
{
char *name = ofconn_make_name(mgr, target);
struct ofconn *ofconn;
ofconn = ofconn_create(mgr, rconn_create(5, 8, dscp, allowed_versions),
OFCONN_PRIMARY, true);
ofconn->pktbuf = pktbuf_create();
rconn_connect(ofconn->rconn, target, name);
hmap_insert(&mgr->controllers, &ofconn->hmap_node, hash_string(target, 0));
free(name);
}
static struct ofconn *
find_controller_by_target(struct connmgr *mgr, const char *target)
{
struct ofconn *ofconn;
HMAP_FOR_EACH_WITH_HASH (ofconn, hmap_node,
hash_string(target, 0), &mgr->controllers) {
if (!strcmp(ofconn_get_target(ofconn), target)) {
return ofconn;
}
}
return NULL;
}
static void
update_in_band_remotes(struct connmgr *mgr)
{
struct sockaddr_in *addrs;
size_t max_addrs, n_addrs;
struct ofconn *ofconn;
size_t i;
/* Allocate enough memory for as many remotes as we could possibly have. */
max_addrs = mgr->n_extra_remotes + hmap_count(&mgr->controllers);
addrs = xmalloc(max_addrs * sizeof *addrs);
n_addrs = 0;
/* Add all the remotes. */
HMAP_FOR_EACH (ofconn, hmap_node, &mgr->controllers) {
const char *target = rconn_get_target(ofconn->rconn);
union {
struct sockaddr_storage ss;
struct sockaddr_in in;
} sa;
if (ofconn->band == OFPROTO_IN_BAND
&& stream_parse_target_with_default_port(target, OFP_PORT, &sa.ss)
&& sa.ss.ss_family == AF_INET) {
addrs[n_addrs++] = sa.in;
}
}
for (i = 0; i < mgr->n_extra_remotes; i++) {
addrs[n_addrs++] = mgr->extra_in_band_remotes[i];
}
/* Create or update or destroy in-band. */
if (n_addrs) {
if (!mgr->in_band) {
in_band_create(mgr->ofproto, mgr->local_port_name, &mgr->in_band);
}
} else {
/* in_band_run() needs a chance to delete any existing in-band flows.
* We will destroy mgr->in_band after it's done with that. */
}
if (mgr->in_band) {
in_band_set_queue(mgr->in_band, mgr->in_band_queue);
in_band_set_remotes(mgr->in_band, addrs, n_addrs);
}
/* Clean up. */
free(addrs);
}
static void
update_fail_open(struct connmgr *mgr)
OVS_EXCLUDED(ofproto_mutex)
{
if (connmgr_has_controllers(mgr)
&& mgr->fail_mode == OFPROTO_FAIL_STANDALONE) {
if (!mgr->fail_open) {
mgr->fail_open = fail_open_create(mgr->ofproto, mgr);
}
} else {
fail_open_destroy(mgr->fail_open);
mgr->fail_open = NULL;
}
}
static int
set_pvconns(struct pvconn ***pvconnsp, size_t *n_pvconnsp,
const struct sset *sset)
{
struct pvconn **pvconns = *pvconnsp;
size_t n_pvconns = *n_pvconnsp;
const char *name;
int retval = 0;
size_t i;
for (i = 0; i < n_pvconns; i++) {
pvconn_close(pvconns[i]);
}
free(pvconns);
pvconns = xmalloc(sset_count(sset) * sizeof *pvconns);
n_pvconns = 0;
SSET_FOR_EACH (name, sset) {
struct pvconn *pvconn;
int error;
error = pvconn_open(name, 0, 0, &pvconn);
if (!error) {
pvconns[n_pvconns++] = pvconn;
} else {
VLOG_ERR("failed to listen on %s: %s", name, ovs_strerror(error));
if (!retval) {
retval = error;
}
}
}
*pvconnsp = pvconns;
*n_pvconnsp = n_pvconns;
return retval;
}
/* Returns a "preference level" for snooping 'ofconn'. A higher return value
* means that 'ofconn' is more interesting for monitoring than a lower return
* value. */
static int
snoop_preference(const struct ofconn *ofconn)
{
switch (ofconn->role) {
case OFPCR12_ROLE_MASTER:
return 3;
case OFPCR12_ROLE_EQUAL:
return 2;
case OFPCR12_ROLE_SLAVE:
return 1;
case OFPCR12_ROLE_NOCHANGE:
default:
/* Shouldn't happen. */
return 0;
}
}
/* One of 'mgr''s "snoop" pvconns has accepted a new connection on 'vconn'.
* Connects this vconn to a controller. */
static void
add_snooper(struct connmgr *mgr, struct vconn *vconn)
{
struct ofconn *ofconn, *best;
/* Pick a controller for monitoring. */
best = NULL;
LIST_FOR_EACH (ofconn, node, &mgr->all_conns) {
if (ofconn->type == OFCONN_PRIMARY
&& (!best || snoop_preference(ofconn) > snoop_preference(best))) {
best = ofconn;
}
}
if (best) {
rconn_add_monitor(best->rconn, vconn);
} else {
VLOG_INFO_RL(&rl, "no controller connection to snoop");
vconn_close(vconn);
}
}
/* Public ofconn functions. */
/* Returns the connection type, either OFCONN_PRIMARY or OFCONN_SERVICE. */
enum ofconn_type
ofconn_get_type(const struct ofconn *ofconn)
{
return ofconn->type;
}
/* If a master election id is defined, stores it into '*idp' and returns
* true. Otherwise, stores UINT64_MAX into '*idp' and returns false. */
bool
ofconn_get_master_election_id(const struct ofconn *ofconn, uint64_t *idp)
{
*idp = (ofconn->connmgr->master_election_id_defined
? ofconn->connmgr->master_election_id
: UINT64_MAX);
return ofconn->connmgr->master_election_id_defined;
}
/* Sets the master election id.
*
* Returns true if successful, false if the id is stale
*/
bool
ofconn_set_master_election_id(struct ofconn *ofconn, uint64_t id)
{
if (ofconn->connmgr->master_election_id_defined
&&
/* Unsigned difference interpreted as a two's complement signed
* value */
(int64_t)(id - ofconn->connmgr->master_election_id) < 0) {
return false;
}
ofconn->connmgr->master_election_id = id;
ofconn->connmgr->master_election_id_defined = true;
return true;
}
/* Returns the role configured for 'ofconn'.
*
* The default role, if no other role has been set, is OFPCR12_ROLE_EQUAL. */
enum ofp12_controller_role
ofconn_get_role(const struct ofconn *ofconn)
{
return ofconn->role;
}
void
ofconn_send_role_status(struct ofconn *ofconn, uint32_t role, uint8_t reason)
{
struct ofputil_role_status status;
struct ofpbuf *buf;
status.reason = reason;
status.role = role;
ofconn_get_master_election_id(ofconn, &status.generation_id);
buf = ofputil_encode_role_status(&status, ofconn_get_protocol(ofconn));
if (buf) {
ofconn_send(ofconn, buf, NULL);
}
}
/* Changes 'ofconn''s role to 'role'. If 'role' is OFPCR12_ROLE_MASTER then
* any existing master is demoted to a slave. */
void
ofconn_set_role(struct ofconn *ofconn, enum ofp12_controller_role role)
{
if (role != ofconn->role && role == OFPCR12_ROLE_MASTER) {
struct ofconn *other;
LIST_FOR_EACH (other, node, &ofconn->connmgr->all_conns) {
if (other->role == OFPCR12_ROLE_MASTER) {
other->role = OFPCR12_ROLE_SLAVE;
ofconn_send_role_status(other, OFPCR12_ROLE_SLAVE, OFPCRR_MASTER_REQUEST);
}
}
}
ofconn->role = role;
}
void
ofconn_set_invalid_ttl_to_controller(struct ofconn *ofconn, bool enable)
{
uint32_t bit = 1u << OFPR_INVALID_TTL;
if (enable) {
ofconn->master_async_config[OAM_PACKET_IN] |= bit;
} else {
ofconn->master_async_config[OAM_PACKET_IN] &= ~bit;
}
}
bool
ofconn_get_invalid_ttl_to_controller(struct ofconn *ofconn)
{
uint32_t bit = 1u << OFPR_INVALID_TTL;
return (ofconn->master_async_config[OAM_PACKET_IN] & bit) != 0;
}
/* Returns the currently configured protocol for 'ofconn', one of OFPUTIL_P_*.
*
* Returns OFPUTIL_P_NONE, which is not a valid protocol, if 'ofconn' hasn't
* completed version negotiation. This can't happen if at least one OpenFlow
* message, other than OFPT_HELLO, has been received on the connection (such as
* in ofproto.c's message handling code), since version negotiation is a
* prerequisite for starting to receive messages. This means that
* OFPUTIL_P_NONE is a special case that most callers need not worry about. */
enum ofputil_protocol
ofconn_get_protocol(const struct ofconn *ofconn)
{
if (ofconn->protocol == OFPUTIL_P_NONE &&
rconn_is_connected(ofconn->rconn)) {
int version = rconn_get_version(ofconn->rconn);
if (version > 0) {
ofconn_set_protocol(CONST_CAST(struct ofconn *, ofconn),
ofputil_protocol_from_ofp_version(version));
}
}
return ofconn->protocol;
}
/* Sets the protocol for 'ofconn' to 'protocol' (one of OFPUTIL_P_*).
*
* (This doesn't actually send anything to accomplish this. Presumably the
* caller already did that.) */
void
ofconn_set_protocol(struct ofconn *ofconn, enum ofputil_protocol protocol)
{
ofconn->protocol = protocol;
if (!(protocol & OFPUTIL_P_OF14_UP)) {
uint32_t *master = ofconn->master_async_config;
uint32_t *slave = ofconn->slave_async_config;