1 /* Copyright (c) 2008, 2009 Nicira Networks
3 * Licensed under the Apache License, Version 2.0 (the "License");
4 * you may not use this file except in compliance with the License.
5 * You may obtain a copy of the License at:
7 * http://www.apache.org/licenses/LICENSE-2.0
9 * Unless required by applicable law or agreed to in writing, software
10 * distributed under the License is distributed on an "AS IS" BASIS,
11 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12 * See the License for the specific language governing permissions and
13 * limitations under the License.
20 #include <arpa/inet.h>
24 #include <openflow/openflow.h>
29 #include <sys/socket.h>
30 #include <sys/types.h>
36 #include "dynamic-string.h"
40 #include "mac-learning.h"
43 #include "ofp-print.h"
45 #include "ofproto/netflow.h"
46 #include "ofproto/ofproto.h"
48 #include "poll-loop.h"
49 #include "port-array.h"
50 #include "proc-net-compat.h"
54 #include "socket-util.h"
60 #include "vconn-ssl.h"
61 #include "vswitchd/vswitch-idl.h"
62 #include "xenserver.h"
65 #define THIS_MODULE VLM_bridge
74 /* These members are always valid. */
75 struct port *port; /* Containing port. */
76 size_t port_ifidx; /* Index within containing port. */
77 char *name; /* Host network device name. */
78 tag_type tag; /* Tag associated with this interface. */
79 long long delay_expires; /* Time after which 'enabled' may change. */
81 /* These members are valid only after bridge_reconfigure() causes them to
83 int dp_ifidx; /* Index within kernel datapath. */
84 struct netdev *netdev; /* Network device. */
85 bool enabled; /* May be chosen for flows? */
87 /* This member is only valid *during* bridge_reconfigure(). */
88 const struct ovsrec_interface *cfg;
91 #define BOND_MASK 0xff
93 int iface_idx; /* Index of assigned iface, or -1 if none. */
94 uint64_t tx_bytes; /* Count of bytes recently transmitted. */
95 tag_type iface_tag; /* Tag associated with iface_idx. */
98 #define MAX_MIRRORS 32
99 typedef uint32_t mirror_mask_t;
100 #define MIRROR_MASK_C(X) UINT32_C(X)
101 BUILD_ASSERT_DECL(sizeof(mirror_mask_t) * CHAR_BIT >= MAX_MIRRORS);
103 struct bridge *bridge;
107 /* Selection criteria. */
108 struct svec src_ports;
109 struct svec dst_ports;
114 struct port *out_port;
118 #define FLOOD_PORT ((struct port *) 1) /* The 'flood' output port. */
120 struct bridge *bridge;
122 int vlan; /* -1=trunk port, else a 12-bit VLAN ID. */
123 unsigned long *trunks; /* Bitmap of trunked VLANs, if 'vlan' == -1. */
126 /* An ordinary bridge port has 1 interface.
127 * A bridge port for bonding has at least 2 interfaces. */
128 struct iface **ifaces;
129 size_t n_ifaces, allocated_ifaces;
132 struct bond_entry *bond_hash; /* An array of (BOND_MASK + 1) elements. */
133 int active_iface; /* Ifidx on which bcasts accepted, or -1. */
134 tag_type active_iface_tag; /* Tag for bcast flows. */
135 tag_type no_ifaces_tag; /* Tag for flows when all ifaces disabled. */
136 int updelay, downdelay; /* Delay before iface goes up/down, in ms. */
137 bool bond_compat_is_stale; /* Need to call port_update_bond_compat()? */
138 bool bond_fake_iface; /* Fake a bond interface for legacy compat? */
140 /* Port mirroring info. */
141 mirror_mask_t src_mirrors; /* Mirrors triggered when packet received. */
142 mirror_mask_t dst_mirrors; /* Mirrors triggered when packet sent. */
143 bool is_mirror_output_port; /* Does port mirroring send frames here? */
145 /* This member is only valid *during* bridge_reconfigure(). */
146 const struct ovsrec_port *cfg;
149 #define DP_MAX_PORTS 255
151 struct list node; /* Node in global list of bridges. */
152 char *name; /* User-specified arbitrary name. */
153 struct mac_learning *ml; /* MAC learning table. */
154 bool sent_config_request; /* Successfully sent config request? */
155 uint8_t default_ea[ETH_ADDR_LEN]; /* Default MAC. */
157 /* Support for remote controllers. */
158 char *controller; /* NULL if there is no remote controller;
159 * "discover" to do controller discovery;
160 * otherwise a vconn name. */
162 /* OpenFlow switch processing. */
163 struct ofproto *ofproto; /* OpenFlow switch. */
165 /* Kernel datapath information. */
166 struct dpif *dpif; /* Datapath. */
167 struct port_array ifaces; /* Indexed by kernel datapath port number. */
171 size_t n_ports, allocated_ports;
174 bool has_bonded_ports;
175 long long int bond_next_rebalance;
180 /* Flow statistics gathering. */
181 time_t next_stats_request;
183 /* Port mirroring. */
184 struct mirror *mirrors[MAX_MIRRORS];
186 /* This member is only valid *during* bridge_reconfigure(). */
187 const struct ovsrec_bridge *cfg;
190 /* List of all bridges. */
191 static struct list all_bridges = LIST_INITIALIZER(&all_bridges);
193 /* Maximum number of datapaths. */
194 enum { DP_MAX = 256 };
196 static struct bridge *bridge_create(const char *name);
197 static void bridge_destroy(struct bridge *);
198 static struct bridge *bridge_lookup(const char *name);
199 static unixctl_cb_func bridge_unixctl_dump_flows;
200 static int bridge_run_one(struct bridge *);
201 static void bridge_reconfigure_one(const struct ovsrec_open_vswitch *,
203 static void bridge_reconfigure_controller(const struct ovsrec_open_vswitch *,
205 static void bridge_get_all_ifaces(const struct bridge *, struct shash *ifaces);
206 static void bridge_fetch_dp_ifaces(struct bridge *);
207 static void bridge_flush(struct bridge *);
208 static void bridge_pick_local_hw_addr(struct bridge *,
209 uint8_t ea[ETH_ADDR_LEN],
210 struct iface **hw_addr_iface);
211 static uint64_t bridge_pick_datapath_id(struct bridge *,
212 const uint8_t bridge_ea[ETH_ADDR_LEN],
213 struct iface *hw_addr_iface);
214 static struct iface *bridge_get_local_iface(struct bridge *);
215 static uint64_t dpid_from_hash(const void *, size_t nbytes);
217 static unixctl_cb_func bridge_unixctl_fdb_show;
219 static void bond_init(void);
220 static void bond_run(struct bridge *);
221 static void bond_wait(struct bridge *);
222 static void bond_rebalance_port(struct port *);
223 static void bond_send_learning_packets(struct port *);
224 static void bond_enable_slave(struct iface *iface, bool enable);
226 static struct port *port_create(struct bridge *, const char *name);
227 static void port_reconfigure(struct port *, const struct ovsrec_port *);
228 static void port_destroy(struct port *);
229 static struct port *port_lookup(const struct bridge *, const char *name);
230 static struct iface *port_lookup_iface(const struct port *, const char *name);
231 static struct port *port_from_dp_ifidx(const struct bridge *,
233 static void port_update_bond_compat(struct port *);
234 static void port_update_vlan_compat(struct port *);
235 static void port_update_bonding(struct port *);
238 static void mirror_create(struct bridge *, const char *name);
239 static void mirror_destroy(struct mirror *);
240 static void mirror_reconfigure(struct bridge *);
241 static void mirror_reconfigure_one(struct mirror *);
242 static bool vlan_is_mirrored(const struct mirror *, int vlan);
244 static bool vlan_is_mirrored(const struct mirror *m UNUSED, int vlan UNUSED)
250 static struct iface *iface_create(struct port *, const char *name);
251 static void iface_destroy(struct iface *);
252 static struct iface *iface_lookup(const struct bridge *, const char *name);
253 static struct iface *iface_from_dp_ifidx(const struct bridge *,
255 static bool iface_is_internal(const struct bridge *, const char *name);
256 static void iface_set_mac(struct iface *);
258 /* Hooks into ofproto processing. */
259 static struct ofhooks bridge_ofhooks;
261 /* Public functions. */
263 /* Adds the name of each interface used by a bridge, including local and
264 * internal ports, to 'svec'. */
266 bridge_get_ifaces(struct svec *svec)
268 struct bridge *br, *next;
271 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
272 for (i = 0; i < br->n_ports; i++) {
273 struct port *port = br->ports[i];
275 for (j = 0; j < port->n_ifaces; j++) {
276 struct iface *iface = port->ifaces[j];
277 if (iface->dp_ifidx < 0) {
278 VLOG_ERR("%s interface not in datapath %s, ignoring",
279 iface->name, dpif_name(br->dpif));
281 if (iface->dp_ifidx != ODPP_LOCAL) {
282 svec_add(svec, iface->name);
291 bridge_init(const struct ovsrec_open_vswitch *cfg)
293 struct svec bridge_names;
294 struct svec dpif_names;
297 unixctl_command_register("fdb/show", bridge_unixctl_fdb_show, NULL);
299 svec_init(&bridge_names);
300 for (i = 0; i < cfg->n_bridges; i++) {
301 svec_add(&bridge_names, cfg->bridges[i]->name);
303 svec_sort(&bridge_names);
305 svec_init(&dpif_names);
306 dp_enumerate(&dpif_names);
307 for (i = 0; i < dpif_names.n; i++) {
308 const char *dpif_name = dpif_names.names[i];
312 retval = dpif_open(dpif_name, &dpif);
314 struct svec all_names;
317 svec_init(&all_names);
318 dpif_get_all_names(dpif, &all_names);
319 for (j = 0; j < all_names.n; j++) {
320 if (svec_contains(&bridge_names, all_names.names[j])) {
326 svec_destroy(&all_names);
330 svec_destroy(&dpif_names);
332 unixctl_command_register("bridge/dump-flows", bridge_unixctl_dump_flows,
336 bridge_reconfigure(cfg);
341 config_string_change(const char *value, char **valuep)
343 if (value && (!*valuep || strcmp(value, *valuep))) {
345 *valuep = xstrdup(value);
353 bridge_configure_ssl(const struct ovsrec_ssl *ssl)
355 /* XXX SSL should be configurable on a per-bridge basis.
356 * XXX should be possible to de-configure SSL. */
357 static char *private_key_file;
358 static char *certificate_file;
359 static char *cacert_file;
363 /* XXX We can't un-set SSL settings. */
367 if (config_string_change(ssl->private_key, &private_key_file)) {
368 vconn_ssl_set_private_key_file(private_key_file);
371 if (config_string_change(ssl->certificate, &certificate_file)) {
372 vconn_ssl_set_certificate_file(certificate_file);
375 /* We assume that even if the filename hasn't changed, if the CA cert
376 * file has been removed, that we want to move back into
377 * boot-strapping mode. This opens a small security hole, because
378 * the old certificate will still be trusted until vSwitch is
379 * restarted. We may want to address this in vconn's SSL library. */
380 if (config_string_change(ssl->ca_cert, &cacert_file)
381 || (cacert_file && stat(cacert_file, &s) && errno == ENOENT)) {
382 vconn_ssl_set_ca_cert_file(cacert_file, ssl->bootstrap_ca_cert);
387 /* Attempt to create the network device 'iface_name' through the netdev
390 set_up_iface(const struct ovsrec_interface *iface_cfg, bool create)
392 struct shash_node *node;
393 struct shash options;
397 /* If a type is not explicitly declared, then assume it's an existing
398 * "system" device. */
399 if (iface_cfg->type[0] == '\0' || !strcmp(iface_cfg->type, "system")) {
403 shash_init(&options);
404 for (i = 0; i < iface_cfg->n_options; i++) {
405 shash_add(&options, iface_cfg->key_options[i],
406 xstrdup(iface_cfg->value_options[i]));
410 error = netdev_create(iface_cfg->name, iface_cfg->type, &options);
412 /* xxx Check to make sure that the type hasn't changed. */
413 error = netdev_reconfigure(iface_cfg->name, &options);
416 SHASH_FOR_EACH (node, &options) {
419 shash_destroy(&options);
425 create_iface(const struct ovsrec_interface *iface_cfg)
427 return set_up_iface(iface_cfg, true);
431 reconfigure_iface(const struct ovsrec_interface *iface_cfg)
433 return set_up_iface(iface_cfg, false);
437 destroy_iface(const char *iface_name)
439 netdev_destroy(iface_name);
443 /* iterate_and_prune_ifaces() callback function that opens the network device
444 * for 'iface', if it is not already open, and retrieves the interface's MAC
445 * address and carrier status. */
447 init_iface_netdev(struct bridge *br UNUSED, struct iface *iface,
452 } else if (!netdev_open(iface->name, NETDEV_ETH_TYPE_NONE,
454 netdev_get_carrier(iface->netdev, &iface->enabled);
457 /* If the network device can't be opened, then we're not going to try
458 * to do anything with this interface. */
464 check_iface_dp_ifidx(struct bridge *br, struct iface *iface, void *aux UNUSED)
466 if (iface->dp_ifidx >= 0) {
467 VLOG_DBG("%s has interface %s on port %d",
469 iface->name, iface->dp_ifidx);
472 VLOG_ERR("%s interface not in %s, dropping",
473 iface->name, dpif_name(br->dpif));
479 set_iface_properties(struct bridge *br UNUSED, struct iface *iface,
482 /* Set policing attributes. */
483 netdev_set_policing(iface->netdev,
484 iface->cfg->ingress_policing_rate,
485 iface->cfg->ingress_policing_burst);
487 /* Set MAC address of internal interfaces other than the local
489 if (iface->dp_ifidx != ODPP_LOCAL
490 && iface_is_internal(br, iface->name)) {
491 iface_set_mac(iface);
497 /* Calls 'cb' for each interfaces in 'br', passing along the 'aux' argument.
498 * Deletes from 'br' all the interfaces for which 'cb' returns false, and then
499 * deletes from 'br' any ports that no longer have any interfaces. */
501 iterate_and_prune_ifaces(struct bridge *br,
502 bool (*cb)(struct bridge *, struct iface *,
508 for (i = 0; i < br->n_ports; ) {
509 struct port *port = br->ports[i];
510 for (j = 0; j < port->n_ifaces; ) {
511 struct iface *iface = port->ifaces[j];
512 if (cb(br, iface, aux)) {
515 iface_destroy(iface);
519 if (port->n_ifaces) {
522 VLOG_ERR("%s port has no interfaces, dropping", port->name);
529 bridge_reconfigure(const struct ovsrec_open_vswitch *ovs_cfg)
531 struct shash old_br, new_br;
532 struct shash_node *node;
533 struct bridge *br, *next;
536 COVERAGE_INC(bridge_reconfigure);
538 /* Collect old and new bridges. */
541 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
542 shash_add(&old_br, br->name, br);
544 for (i = 0; i < ovs_cfg->n_bridges; i++) {
545 const struct ovsrec_bridge *br_cfg = ovs_cfg->bridges[i];
546 if (!shash_add_once(&new_br, br_cfg->name, br_cfg)) {
547 VLOG_WARN("more than one bridge named %s", br_cfg->name);
551 /* Get rid of deleted bridges and add new bridges. */
552 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
553 struct ovsrec_bridge *br_cfg = shash_find_data(&new_br, br->name);
560 SHASH_FOR_EACH (node, &new_br) {
561 const char *br_name = node->name;
562 const struct ovsrec_bridge *br_cfg = node->data;
563 if (!shash_find_data(&old_br, br_name)) {
564 br = bridge_create(br_name);
568 shash_destroy(&old_br);
569 shash_destroy(&new_br);
573 bridge_configure_ssl(ovs_cfg->ssl);
576 /* Reconfigure all bridges. */
577 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
578 bridge_reconfigure_one(ovs_cfg, br);
581 /* Add and delete ports on all datapaths.
583 * The kernel will reject any attempt to add a given port to a datapath if
584 * that port already belongs to a different datapath, so we must do all
585 * port deletions before any port additions. */
586 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
587 struct odp_port *dpif_ports;
589 struct shash want_ifaces;
591 dpif_port_list(br->dpif, &dpif_ports, &n_dpif_ports);
592 bridge_get_all_ifaces(br, &want_ifaces);
593 for (i = 0; i < n_dpif_ports; i++) {
594 const struct odp_port *p = &dpif_ports[i];
595 if (!shash_find(&want_ifaces, p->devname)
596 && strcmp(p->devname, br->name)) {
597 int retval = dpif_port_del(br->dpif, p->port);
599 VLOG_ERR("failed to remove %s interface from %s: %s",
600 p->devname, dpif_name(br->dpif),
603 destroy_iface(p->devname);
606 shash_destroy(&want_ifaces);
609 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
610 struct odp_port *dpif_ports;
612 struct shash cur_ifaces, want_ifaces;
613 struct shash_node *node;
615 /* Get the set of interfaces currently in this datapath. */
616 dpif_port_list(br->dpif, &dpif_ports, &n_dpif_ports);
617 shash_init(&cur_ifaces);
618 for (i = 0; i < n_dpif_ports; i++) {
619 const char *name = dpif_ports[i].devname;
620 if (!shash_find(&cur_ifaces, name)) {
621 shash_add(&cur_ifaces, name, NULL);
626 /* Get the set of interfaces we want on this datapath. */
627 bridge_get_all_ifaces(br, &want_ifaces);
629 SHASH_FOR_EACH (node, &want_ifaces) {
630 const char *if_name = node->name;
631 struct iface *iface = node->data;
633 if (shash_find(&cur_ifaces, if_name)) {
634 /* Already exists, just reconfigure it. */
636 reconfigure_iface(iface->cfg);
639 /* Need to add to datapath. */
643 /* Attempt to create the network interface in case it
644 * doesn't exist yet. */
645 error = iface ? create_iface(iface->cfg) : 0;
647 VLOG_WARN("could not create iface %s: %s\n", if_name,
652 /* Add to datapath. */
653 internal = !iface || iface_is_internal(br, if_name);
654 error = dpif_port_add(br->dpif, if_name,
655 internal ? ODP_PORT_INTERNAL : 0, NULL);
656 if (error == EFBIG) {
657 VLOG_ERR("ran out of valid port numbers on %s",
658 dpif_name(br->dpif));
661 VLOG_ERR("failed to add %s interface to %s: %s",
662 if_name, dpif_name(br->dpif), strerror(error));
666 shash_destroy(&cur_ifaces);
667 shash_destroy(&want_ifaces);
669 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
672 struct iface *local_iface;
673 struct iface *hw_addr_iface;
675 bridge_fetch_dp_ifaces(br);
676 iterate_and_prune_ifaces(br, init_iface_netdev, NULL);
678 iterate_and_prune_ifaces(br, check_iface_dp_ifidx, NULL);
680 /* Pick local port hardware address, datapath ID. */
681 bridge_pick_local_hw_addr(br, ea, &hw_addr_iface);
682 local_iface = bridge_get_local_iface(br);
684 int error = netdev_set_etheraddr(local_iface->netdev, ea);
686 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
687 VLOG_ERR_RL(&rl, "bridge %s: failed to set bridge "
688 "Ethernet address: %s",
689 br->name, strerror(error));
693 dpid = bridge_pick_datapath_id(br, ea, hw_addr_iface);
694 ofproto_set_datapath_id(br->ofproto, dpid);
696 /* Set NetFlow configuration on this bridge. */
697 if (br->cfg->netflow) {
698 struct ovsrec_netflow *nf_cfg = br->cfg->netflow;
699 struct netflow_options opts;
701 memset(&opts, 0, sizeof opts);
703 dpif_get_netflow_ids(br->dpif, &opts.engine_type, &opts.engine_id);
704 if (nf_cfg->engine_type) {
705 opts.engine_type = nf_cfg->engine_type;
707 if (nf_cfg->engine_id) {
708 opts.engine_id = nf_cfg->engine_id;
711 opts.active_timeout = nf_cfg->active_timeout;
712 if (!opts.active_timeout) {
713 opts.active_timeout = -1;
714 } else if (opts.active_timeout < 0) {
715 opts.active_timeout = 0;
718 opts.add_id_to_iface = nf_cfg->add_id_to_interface;
719 if (opts.add_id_to_iface) {
720 if (opts.engine_id > 0x7f) {
721 VLOG_WARN("bridge %s: netflow port mangling may conflict "
722 "with another vswitch, choose an engine id less "
723 "than 128", br->name);
725 if (br->n_ports > 508) {
726 VLOG_WARN("bridge %s: netflow port mangling will conflict "
727 "with another port when more than 508 ports are "
732 opts.collectors.n = nf_cfg->n_targets;
733 opts.collectors.names = nf_cfg->targets;
734 if (ofproto_set_netflow(br->ofproto, &opts)) {
735 VLOG_ERR("bridge %s: problem setting netflow collectors",
739 ofproto_set_netflow(br->ofproto, NULL);
742 /* Update the controller and related settings. It would be more
743 * straightforward to call this from bridge_reconfigure_one(), but we
744 * can't do it there for two reasons. First, and most importantly, at
745 * that point we don't know the dp_ifidx of any interfaces that have
746 * been added to the bridge (because we haven't actually added them to
747 * the datapath). Second, at that point we haven't set the datapath ID
748 * yet; when a controller is configured, resetting the datapath ID will
749 * immediately disconnect from the controller, so it's better to set
750 * the datapath ID before the controller. */
751 bridge_reconfigure_controller(ovs_cfg, br);
753 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
754 for (i = 0; i < br->n_ports; i++) {
755 struct port *port = br->ports[i];
757 port_update_vlan_compat(port);
758 port_update_bonding(port);
761 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
762 iterate_and_prune_ifaces(br, set_iface_properties, NULL);
767 bridge_pick_local_hw_addr(struct bridge *br, uint8_t ea[ETH_ADDR_LEN],
768 struct iface **hw_addr_iface)
773 *hw_addr_iface = NULL;
775 /* Did the user request a particular MAC? */
776 if (br->cfg->hwaddr && eth_addr_from_string(br->cfg->hwaddr, ea)) {
777 if (eth_addr_is_multicast(ea)) {
778 VLOG_ERR("bridge %s: cannot set MAC address to multicast "
779 "address "ETH_ADDR_FMT, br->name, ETH_ADDR_ARGS(ea));
780 } else if (eth_addr_is_zero(ea)) {
781 VLOG_ERR("bridge %s: cannot set MAC address to zero", br->name);
787 /* Otherwise choose the minimum MAC address among all of the interfaces.
788 * (Xen uses FE:FF:FF:FF:FF:FF for virtual interfaces so this will get the
789 * MAC of the physical interface in such an environment.) */
790 memset(ea, 0xff, sizeof ea);
791 for (i = 0; i < br->n_ports; i++) {
792 struct port *port = br->ports[i];
793 uint8_t iface_ea[ETH_ADDR_LEN];
796 /* Mirror output ports don't participate. */
797 if (port->is_mirror_output_port) {
801 /* Choose the MAC address to represent the port. */
802 if (port->cfg->mac && eth_addr_from_string(port->cfg->mac, iface_ea)) {
803 /* Find the interface with this Ethernet address (if any) so that
804 * we can provide the correct devname to the caller. */
806 for (j = 0; j < port->n_ifaces; j++) {
807 struct iface *candidate = port->ifaces[j];
808 uint8_t candidate_ea[ETH_ADDR_LEN];
809 if (!netdev_get_etheraddr(candidate->netdev, candidate_ea)
810 && eth_addr_equals(iface_ea, candidate_ea)) {
815 /* Choose the interface whose MAC address will represent the port.
816 * The Linux kernel bonding code always chooses the MAC address of
817 * the first slave added to a bond, and the Fedora networking
818 * scripts always add slaves to a bond in alphabetical order, so
819 * for compatibility we choose the interface with the name that is
820 * first in alphabetical order. */
821 iface = port->ifaces[0];
822 for (j = 1; j < port->n_ifaces; j++) {
823 struct iface *candidate = port->ifaces[j];
824 if (strcmp(candidate->name, iface->name) < 0) {
829 /* The local port doesn't count (since we're trying to choose its
830 * MAC address anyway). Other internal ports don't count because
831 * we really want a physical MAC if we can get it, and internal
832 * ports typically have randomly generated MACs. */
833 if (iface->dp_ifidx == ODPP_LOCAL
834 || !strcmp(iface->cfg->type, "internal")) {
839 error = netdev_get_etheraddr(iface->netdev, iface_ea);
841 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
842 VLOG_ERR_RL(&rl, "failed to obtain Ethernet address of %s: %s",
843 iface->name, strerror(error));
848 /* Compare against our current choice. */
849 if (!eth_addr_is_multicast(iface_ea) &&
850 !eth_addr_is_reserved(iface_ea) &&
851 !eth_addr_is_zero(iface_ea) &&
852 memcmp(iface_ea, ea, ETH_ADDR_LEN) < 0)
854 memcpy(ea, iface_ea, ETH_ADDR_LEN);
855 *hw_addr_iface = iface;
858 if (eth_addr_is_multicast(ea) || eth_addr_is_vif(ea)) {
859 memcpy(ea, br->default_ea, ETH_ADDR_LEN);
860 *hw_addr_iface = NULL;
861 VLOG_WARN("bridge %s: using default bridge Ethernet "
862 "address "ETH_ADDR_FMT, br->name, ETH_ADDR_ARGS(ea));
864 VLOG_DBG("bridge %s: using bridge Ethernet address "ETH_ADDR_FMT,
865 br->name, ETH_ADDR_ARGS(ea));
869 /* Choose and returns the datapath ID for bridge 'br' given that the bridge
870 * Ethernet address is 'bridge_ea'. If 'bridge_ea' is the Ethernet address of
871 * an interface on 'br', then that interface must be passed in as
872 * 'hw_addr_iface'; if 'bridge_ea' was derived some other way, then
873 * 'hw_addr_iface' must be passed in as a null pointer. */
875 bridge_pick_datapath_id(struct bridge *br,
876 const uint8_t bridge_ea[ETH_ADDR_LEN],
877 struct iface *hw_addr_iface)
880 * The procedure for choosing a bridge MAC address will, in the most
881 * ordinary case, also choose a unique MAC that we can use as a datapath
882 * ID. In some special cases, though, multiple bridges will end up with
883 * the same MAC address. This is OK for the bridges, but it will confuse
884 * the OpenFlow controller, because each datapath needs a unique datapath
887 * Datapath IDs must be unique. It is also very desirable that they be
888 * stable from one run to the next, so that policy set on a datapath
893 if (br->cfg->datapath_id
894 && dpid_from_string(br->cfg->datapath_id, &dpid)) {
900 if (!netdev_get_vlan_vid(hw_addr_iface->netdev, &vlan)) {
902 * A bridge whose MAC address is taken from a VLAN network device
903 * (that is, a network device created with vconfig(8) or similar
904 * tool) will have the same MAC address as a bridge on the VLAN
905 * device's physical network device.
907 * Handle this case by hashing the physical network device MAC
908 * along with the VLAN identifier.
910 uint8_t buf[ETH_ADDR_LEN + 2];
911 memcpy(buf, bridge_ea, ETH_ADDR_LEN);
912 buf[ETH_ADDR_LEN] = vlan >> 8;
913 buf[ETH_ADDR_LEN + 1] = vlan;
914 return dpid_from_hash(buf, sizeof buf);
917 * Assume that this bridge's MAC address is unique, since it
918 * doesn't fit any of the cases we handle specially.
923 * A purely internal bridge, that is, one that has no non-virtual
924 * network devices on it at all, is more difficult because it has no
925 * natural unique identifier at all.
927 * When the host is a XenServer, we handle this case by hashing the
928 * host's UUID with the name of the bridge. Names of bridges are
929 * persistent across XenServer reboots, although they can be reused if
930 * an internal network is destroyed and then a new one is later
931 * created, so this is fairly effective.
933 * When the host is not a XenServer, we punt by using a random MAC
934 * address on each run.
936 const char *host_uuid = xenserver_get_host_uuid();
938 char *combined = xasprintf("%s,%s", host_uuid, br->name);
939 dpid = dpid_from_hash(combined, strlen(combined));
945 return eth_addr_to_uint64(bridge_ea);
949 dpid_from_hash(const void *data, size_t n)
951 uint8_t hash[SHA1_DIGEST_SIZE];
953 BUILD_ASSERT_DECL(sizeof hash >= ETH_ADDR_LEN);
954 sha1_bytes(data, n, hash);
955 eth_addr_mark_random(hash);
956 return eth_addr_to_uint64(hash);
962 struct bridge *br, *next;
966 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
967 int error = bridge_run_one(br);
969 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
970 VLOG_ERR_RL(&rl, "bridge %s: datapath was destroyed externally, "
971 "forcing reconfiguration", br->name);
985 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
986 ofproto_wait(br->ofproto);
987 if (br->controller) {
991 mac_learning_wait(br->ml);
996 /* Forces 'br' to revalidate all of its flows. This is appropriate when 'br''s
997 * configuration changes. */
999 bridge_flush(struct bridge *br)
1001 COVERAGE_INC(bridge_flush);
1003 mac_learning_flush(br->ml);
1006 /* Returns the 'br' interface for the ODPP_LOCAL port, or null if 'br' has no
1007 * such interface. */
1008 static struct iface *
1009 bridge_get_local_iface(struct bridge *br)
1013 for (i = 0; i < br->n_ports; i++) {
1014 struct port *port = br->ports[i];
1015 for (j = 0; j < port->n_ifaces; j++) {
1016 struct iface *iface = port->ifaces[j];
1017 if (iface->dp_ifidx == ODPP_LOCAL) {
1026 /* Bridge unixctl user interface functions. */
1028 bridge_unixctl_fdb_show(struct unixctl_conn *conn,
1029 const char *args, void *aux UNUSED)
1031 struct ds ds = DS_EMPTY_INITIALIZER;
1032 const struct bridge *br;
1033 const struct mac_entry *e;
1035 br = bridge_lookup(args);
1037 unixctl_command_reply(conn, 501, "no such bridge");
1041 ds_put_cstr(&ds, " port VLAN MAC Age\n");
1042 LIST_FOR_EACH (e, struct mac_entry, lru_node, &br->ml->lrus) {
1043 if (e->port < 0 || e->port >= br->n_ports) {
1046 ds_put_format(&ds, "%5d %4d "ETH_ADDR_FMT" %3d\n",
1047 br->ports[e->port]->ifaces[0]->dp_ifidx,
1048 e->vlan, ETH_ADDR_ARGS(e->mac), mac_entry_age(e));
1050 unixctl_command_reply(conn, 200, ds_cstr(&ds));
1054 /* Bridge reconfiguration functions. */
1056 static struct bridge *
1057 bridge_create(const char *name)
1062 assert(!bridge_lookup(name));
1063 br = xzalloc(sizeof *br);
1065 error = dpif_create_and_open(name, &br->dpif);
1070 dpif_flow_flush(br->dpif);
1072 error = ofproto_create(name, &bridge_ofhooks, br, &br->ofproto);
1074 VLOG_ERR("failed to create switch %s: %s", name, strerror(error));
1075 dpif_delete(br->dpif);
1076 dpif_close(br->dpif);
1081 br->name = xstrdup(name);
1082 br->ml = mac_learning_create();
1083 br->sent_config_request = false;
1084 eth_addr_random(br->default_ea);
1086 port_array_init(&br->ifaces);
1089 br->bond_next_rebalance = time_msec() + 10000;
1091 list_push_back(&all_bridges, &br->node);
1093 VLOG_INFO("created bridge %s on %s", br->name, dpif_name(br->dpif));
1099 bridge_destroy(struct bridge *br)
1104 while (br->n_ports > 0) {
1105 port_destroy(br->ports[br->n_ports - 1]);
1107 list_remove(&br->node);
1108 error = dpif_delete(br->dpif);
1109 if (error && error != ENOENT) {
1110 VLOG_ERR("failed to delete %s: %s",
1111 dpif_name(br->dpif), strerror(error));
1113 dpif_close(br->dpif);
1114 ofproto_destroy(br->ofproto);
1115 free(br->controller);
1116 mac_learning_destroy(br->ml);
1117 port_array_destroy(&br->ifaces);
1124 static struct bridge *
1125 bridge_lookup(const char *name)
1129 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
1130 if (!strcmp(br->name, name)) {
1138 bridge_exists(const char *name)
1140 return bridge_lookup(name) ? true : false;
1144 bridge_get_datapathid(const char *name)
1146 struct bridge *br = bridge_lookup(name);
1147 return br ? ofproto_get_datapath_id(br->ofproto) : 0;
1150 /* Handle requests for a listing of all flows known by the OpenFlow
1151 * stack, including those normally hidden. */
1153 bridge_unixctl_dump_flows(struct unixctl_conn *conn,
1154 const char *args, void *aux UNUSED)
1159 br = bridge_lookup(args);
1161 unixctl_command_reply(conn, 501, "Unknown bridge");
1166 ofproto_get_all_flows(br->ofproto, &results);
1168 unixctl_command_reply(conn, 200, ds_cstr(&results));
1169 ds_destroy(&results);
1173 bridge_run_one(struct bridge *br)
1177 error = ofproto_run1(br->ofproto);
1182 mac_learning_run(br->ml, ofproto_get_revalidate_set(br->ofproto));
1185 error = ofproto_run2(br->ofproto, br->flush);
1191 static const struct ovsrec_controller *
1192 bridge_get_controller(const struct ovsrec_open_vswitch *ovs_cfg,
1193 const struct bridge *br)
1195 const struct ovsrec_controller *controller;
1197 controller = (br->cfg->controller ? br->cfg->controller
1198 : ovs_cfg->controller ? ovs_cfg->controller
1201 if (controller && !strcmp(controller->target, "none")) {
1209 check_duplicate_ifaces(struct bridge *br, struct iface *iface, void *ifaces_)
1211 struct svec *ifaces = ifaces_;
1212 if (!svec_contains(ifaces, iface->name)) {
1213 svec_add(ifaces, iface->name);
1217 VLOG_ERR("bridge %s: %s interface is on multiple ports, "
1219 br->name, iface->name, iface->port->name);
1225 bridge_reconfigure_one(const struct ovsrec_open_vswitch *ovs_cfg,
1228 struct shash old_ports, new_ports;
1230 struct svec listeners, old_listeners;
1231 struct svec snoops, old_snoops;
1232 struct shash_node *node;
1236 /* Collect old ports. */
1237 shash_init(&old_ports);
1238 for (i = 0; i < br->n_ports; i++) {
1239 shash_add(&old_ports, br->ports[i]->name, br->ports[i]);
1242 /* Collect new ports. */
1243 shash_init(&new_ports);
1244 for (i = 0; i < br->cfg->n_ports; i++) {
1245 const char *name = br->cfg->ports[i]->name;
1246 if (!shash_add_once(&new_ports, name, br->cfg->ports[i])) {
1247 VLOG_WARN("bridge %s: %s specified twice as bridge port",
1251 if (bridge_get_controller(ovs_cfg, br)) {
1252 char local_name[IF_NAMESIZE];
1255 error = dpif_port_get_name(br->dpif, ODPP_LOCAL,
1256 local_name, sizeof local_name);
1258 shash_add_once(&new_ports, local_name, NULL);
1262 dpid_from_string(ovs_cfg->management_id, &mgmt_id);
1263 ofproto_set_mgmt_id(br->ofproto, mgmt_id);
1265 /* Get rid of deleted ports and add new ports. */
1266 SHASH_FOR_EACH (node, &old_ports) {
1267 if (!shash_find(&new_ports, node->name)) {
1268 port_destroy(node->data);
1271 SHASH_FOR_EACH (node, &new_ports) {
1272 struct port *port = shash_find_data(&old_ports, node->name);
1274 port = port_create(br, node->name);
1276 port_reconfigure(port, node->data);
1278 shash_destroy(&old_ports);
1279 shash_destroy(&new_ports);
1281 /* Check and delete duplicate interfaces. */
1283 iterate_and_prune_ifaces(br, check_duplicate_ifaces, &ifaces);
1284 svec_destroy(&ifaces);
1286 /* Delete all flows if we're switching from connected to standalone or vice
1287 * versa. (XXX Should we delete all flows if we are switching from one
1288 * controller to another?) */
1291 /* Configure OpenFlow management listeners. */
1292 svec_init(&listeners);
1293 cfg_get_all_strings(&listeners, "bridge.%s.openflow.listeners", br->name);
1295 svec_add_nocopy(&listeners, xasprintf("punix:%s/%s.mgmt",
1296 ovs_rundir, br->name));
1297 } else if (listeners.n == 1 && !strcmp(listeners.names[0], "none")) {
1298 svec_clear(&listeners);
1300 svec_sort_unique(&listeners);
1302 svec_init(&old_listeners);
1303 ofproto_get_listeners(br->ofproto, &old_listeners);
1304 svec_sort_unique(&old_listeners);
1306 if (!svec_equal(&listeners, &old_listeners)) {
1307 ofproto_set_listeners(br->ofproto, &listeners);
1309 svec_destroy(&listeners);
1310 svec_destroy(&old_listeners);
1312 /* Configure OpenFlow controller connection snooping. */
1314 cfg_get_all_strings(&snoops, "bridge.%s.openflow.snoops", br->name);
1316 svec_add_nocopy(&snoops, xasprintf("punix:%s/%s.snoop",
1317 ovs_rundir, br->name));
1318 } else if (snoops.n == 1 && !strcmp(snoops.names[0], "none")) {
1319 svec_clear(&snoops);
1321 svec_sort_unique(&snoops);
1323 svec_init(&old_snoops);
1324 ofproto_get_snoops(br->ofproto, &old_snoops);
1325 svec_sort_unique(&old_snoops);
1327 if (!svec_equal(&snoops, &old_snoops)) {
1328 ofproto_set_snoops(br->ofproto, &snoops);
1330 svec_destroy(&snoops);
1331 svec_destroy(&old_snoops);
1333 /* Default listener. */
1334 svec_init(&listeners);
1335 svec_add_nocopy(&listeners, xasprintf("punix:%s/%s.mgmt",
1336 ovs_rundir, br->name));
1337 svec_init(&old_listeners);
1338 ofproto_get_listeners(br->ofproto, &old_listeners);
1339 if (!svec_equal(&listeners, &old_listeners)) {
1340 ofproto_set_listeners(br->ofproto, &listeners);
1342 svec_destroy(&listeners);
1343 svec_destroy(&old_listeners);
1345 /* Default snoop. */
1347 svec_add_nocopy(&snoops, xasprintf("punix:%s/%s.snoop",
1348 ovs_rundir, br->name));
1349 svec_init(&old_snoops);
1350 ofproto_get_snoops(br->ofproto, &old_snoops);
1351 if (!svec_equal(&snoops, &old_snoops)) {
1352 ofproto_set_snoops(br->ofproto, &snoops);
1354 svec_destroy(&snoops);
1355 svec_destroy(&old_snoops);
1359 mirror_reconfigure(br);
1364 bridge_reconfigure_controller(const struct ovsrec_open_vswitch *ovs_cfg,
1367 char *pfx = xasprintf("bridge.%s.controller", br->name);
1368 const struct ovsrec_controller *c;
1370 c = bridge_get_controller(ovs_cfg, br);
1371 if ((br->controller != NULL) != (c != NULL)) {
1372 ofproto_flush_flows(br->ofproto);
1374 free(br->controller);
1375 br->controller = c ? xstrdup(c->target) : NULL;
1378 int max_backoff, probe;
1379 int rate_limit, burst_limit;
1381 if (!strcmp(c->target, "discover")) {
1382 ofproto_set_discovery(br->ofproto, true,
1383 c->discover_accept_regex,
1384 c->discover_update_resolv_conf);
1386 struct iface *local_iface;
1390 in_band = (!c->connection_mode
1391 || !strcmp(c->connection_mode, "out-of-band"));
1392 ofproto_set_discovery(br->ofproto, false, NULL, NULL);
1393 ofproto_set_in_band(br->ofproto, in_band);
1395 local_iface = bridge_get_local_iface(br);
1396 if (local_iface && c->local_ip && inet_aton(c->local_ip, &ip)) {
1397 struct netdev *netdev = local_iface->netdev;
1398 struct in_addr ip, mask, gateway;
1400 if (!c->local_netmask || !inet_aton(c->local_netmask, &mask)) {
1403 if (!c->local_gateway
1404 || !inet_aton(c->local_gateway, &gateway)) {
1408 netdev_turn_flags_on(netdev, NETDEV_UP, true);
1410 mask.s_addr = guess_netmask(ip.s_addr);
1412 if (!netdev_set_in4(netdev, ip, mask)) {
1413 VLOG_INFO("bridge %s: configured IP address "IP_FMT", "
1415 br->name, IP_ARGS(&ip.s_addr),
1416 IP_ARGS(&mask.s_addr));
1419 if (gateway.s_addr) {
1420 if (!netdev_add_router(netdev, gateway)) {
1421 VLOG_INFO("bridge %s: configured gateway "IP_FMT,
1422 br->name, IP_ARGS(&gateway.s_addr));
1428 ofproto_set_failure(br->ofproto,
1430 || !strcmp(c->fail_mode, "standalone")
1431 || !strcmp(c->fail_mode, "open")));
1433 probe = c->inactivity_probe ? *c->inactivity_probe / 1000 : 5;
1434 ofproto_set_probe_interval(br->ofproto, probe);
1436 max_backoff = c->max_backoff ? *c->max_backoff / 1000 : 8;
1437 ofproto_set_max_backoff(br->ofproto, max_backoff);
1439 rate_limit = c->controller_rate_limit ? *c->controller_rate_limit : 0;
1440 burst_limit = c->controller_burst_limit ? *c->controller_burst_limit : 0;
1441 ofproto_set_rate_limit(br->ofproto, rate_limit, burst_limit);
1443 ofproto_set_remote_execution(br->ofproto, NULL, NULL); /* XXX */
1445 union ofp_action action;
1448 /* Set up a flow that matches every packet and directs them to
1449 * OFPP_NORMAL (which goes to us). */
1450 memset(&action, 0, sizeof action);
1451 action.type = htons(OFPAT_OUTPUT);
1452 action.output.len = htons(sizeof action);
1453 action.output.port = htons(OFPP_NORMAL);
1454 memset(&flow, 0, sizeof flow);
1455 ofproto_add_flow(br->ofproto, &flow, OFPFW_ALL, 0,
1458 ofproto_set_in_band(br->ofproto, false);
1459 ofproto_set_max_backoff(br->ofproto, 1);
1460 ofproto_set_probe_interval(br->ofproto, 5);
1461 ofproto_set_failure(br->ofproto, false);
1465 ofproto_set_controller(br->ofproto, br->controller);
1469 bridge_get_all_ifaces(const struct bridge *br, struct shash *ifaces)
1474 for (i = 0; i < br->n_ports; i++) {
1475 struct port *port = br->ports[i];
1476 for (j = 0; j < port->n_ifaces; j++) {
1477 struct iface *iface = port->ifaces[j];
1478 shash_add_once(ifaces, iface->name, iface);
1480 if (port->n_ifaces > 1 && port->cfg->bond_fake_iface) {
1481 shash_add_once(ifaces, port->name, NULL);
1486 /* For robustness, in case the administrator moves around datapath ports behind
1487 * our back, we re-check all the datapath port numbers here.
1489 * This function will set the 'dp_ifidx' members of interfaces that have
1490 * disappeared to -1, so only call this function from a context where those
1491 * 'struct iface's will be removed from the bridge. Otherwise, the -1
1492 * 'dp_ifidx'es will cause trouble later when we try to send them to the
1493 * datapath, which doesn't support UINT16_MAX+1 ports. */
1495 bridge_fetch_dp_ifaces(struct bridge *br)
1497 struct odp_port *dpif_ports;
1498 size_t n_dpif_ports;
1501 /* Reset all interface numbers. */
1502 for (i = 0; i < br->n_ports; i++) {
1503 struct port *port = br->ports[i];
1504 for (j = 0; j < port->n_ifaces; j++) {
1505 struct iface *iface = port->ifaces[j];
1506 iface->dp_ifidx = -1;
1509 port_array_clear(&br->ifaces);
1511 dpif_port_list(br->dpif, &dpif_ports, &n_dpif_ports);
1512 for (i = 0; i < n_dpif_ports; i++) {
1513 struct odp_port *p = &dpif_ports[i];
1514 struct iface *iface = iface_lookup(br, p->devname);
1516 if (iface->dp_ifidx >= 0) {
1517 VLOG_WARN("%s reported interface %s twice",
1518 dpif_name(br->dpif), p->devname);
1519 } else if (iface_from_dp_ifidx(br, p->port)) {
1520 VLOG_WARN("%s reported interface %"PRIu16" twice",
1521 dpif_name(br->dpif), p->port);
1523 port_array_set(&br->ifaces, p->port, iface);
1524 iface->dp_ifidx = p->port;
1531 /* Bridge packet processing functions. */
1534 bond_hash(const uint8_t mac[ETH_ADDR_LEN])
1536 return hash_bytes(mac, ETH_ADDR_LEN, 0) & BOND_MASK;
1539 static struct bond_entry *
1540 lookup_bond_entry(const struct port *port, const uint8_t mac[ETH_ADDR_LEN])
1542 return &port->bond_hash[bond_hash(mac)];
1546 bond_choose_iface(const struct port *port)
1548 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
1549 size_t i, best_down_slave = -1;
1550 long long next_delay_expiration = LLONG_MAX;
1552 for (i = 0; i < port->n_ifaces; i++) {
1553 struct iface *iface = port->ifaces[i];
1555 if (iface->enabled) {
1557 } else if (iface->delay_expires < next_delay_expiration) {
1558 best_down_slave = i;
1559 next_delay_expiration = iface->delay_expires;
1563 if (best_down_slave != -1) {
1564 struct iface *iface = port->ifaces[best_down_slave];
1566 VLOG_INFO_RL(&rl, "interface %s: skipping remaining %lli ms updelay "
1567 "since no other interface is up", iface->name,
1568 iface->delay_expires - time_msec());
1569 bond_enable_slave(iface, true);
1572 return best_down_slave;
1576 choose_output_iface(const struct port *port, const uint8_t *dl_src,
1577 uint16_t *dp_ifidx, tag_type *tags)
1579 struct iface *iface;
1581 assert(port->n_ifaces);
1582 if (port->n_ifaces == 1) {
1583 iface = port->ifaces[0];
1585 struct bond_entry *e = lookup_bond_entry(port, dl_src);
1586 if (e->iface_idx < 0 || e->iface_idx >= port->n_ifaces
1587 || !port->ifaces[e->iface_idx]->enabled) {
1588 /* XXX select interface properly. The current interface selection
1589 * is only good for testing the rebalancing code. */
1590 e->iface_idx = bond_choose_iface(port);
1591 if (e->iface_idx < 0) {
1592 *tags |= port->no_ifaces_tag;
1595 e->iface_tag = tag_create_random();
1596 ((struct port *) port)->bond_compat_is_stale = true;
1598 *tags |= e->iface_tag;
1599 iface = port->ifaces[e->iface_idx];
1601 *dp_ifidx = iface->dp_ifidx;
1602 *tags |= iface->tag; /* Currently only used for bonding. */
1607 bond_link_status_update(struct iface *iface, bool carrier)
1609 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
1610 struct port *port = iface->port;
1612 if ((carrier == iface->enabled) == (iface->delay_expires == LLONG_MAX)) {
1613 /* Nothing to do. */
1616 VLOG_INFO_RL(&rl, "interface %s: carrier %s",
1617 iface->name, carrier ? "detected" : "dropped");
1618 if (carrier == iface->enabled) {
1619 iface->delay_expires = LLONG_MAX;
1620 VLOG_INFO_RL(&rl, "interface %s: will not be %s",
1621 iface->name, carrier ? "disabled" : "enabled");
1622 } else if (carrier && port->active_iface < 0) {
1623 bond_enable_slave(iface, true);
1624 if (port->updelay) {
1625 VLOG_INFO_RL(&rl, "interface %s: skipping %d ms updelay since no "
1626 "other interface is up", iface->name, port->updelay);
1629 int delay = carrier ? port->updelay : port->downdelay;
1630 iface->delay_expires = time_msec() + delay;
1633 "interface %s: will be %s if it stays %s for %d ms",
1635 carrier ? "enabled" : "disabled",
1636 carrier ? "up" : "down",
1643 bond_choose_active_iface(struct port *port)
1645 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
1647 port->active_iface = bond_choose_iface(port);
1648 port->active_iface_tag = tag_create_random();
1649 if (port->active_iface >= 0) {
1650 VLOG_INFO_RL(&rl, "port %s: active interface is now %s",
1651 port->name, port->ifaces[port->active_iface]->name);
1653 VLOG_WARN_RL(&rl, "port %s: all ports disabled, no active interface",
1659 bond_enable_slave(struct iface *iface, bool enable)
1661 struct port *port = iface->port;
1662 struct bridge *br = port->bridge;
1664 /* This acts as a recursion check. If the act of disabling a slave
1665 * causes a different slave to be enabled, the flag will allow us to
1666 * skip redundant work when we reenter this function. It must be
1667 * cleared on exit to keep things safe with multiple bonds. */
1668 static bool moving_active_iface = false;
1670 iface->delay_expires = LLONG_MAX;
1671 if (enable == iface->enabled) {
1675 iface->enabled = enable;
1676 if (!iface->enabled) {
1677 VLOG_WARN("interface %s: disabled", iface->name);
1678 ofproto_revalidate(br->ofproto, iface->tag);
1679 if (iface->port_ifidx == port->active_iface) {
1680 ofproto_revalidate(br->ofproto,
1681 port->active_iface_tag);
1683 /* Disabling a slave can lead to another slave being immediately
1684 * enabled if there will be no active slaves but one is waiting
1685 * on an updelay. In this case we do not need to run most of the
1686 * code for the newly enabled slave since there was no period
1687 * without an active slave and it is redundant with the disabling
1689 moving_active_iface = true;
1690 bond_choose_active_iface(port);
1692 bond_send_learning_packets(port);
1694 VLOG_WARN("interface %s: enabled", iface->name);
1695 if (port->active_iface < 0 && !moving_active_iface) {
1696 ofproto_revalidate(br->ofproto, port->no_ifaces_tag);
1697 bond_choose_active_iface(port);
1698 bond_send_learning_packets(port);
1700 iface->tag = tag_create_random();
1703 moving_active_iface = false;
1704 port->bond_compat_is_stale = true;
1708 bond_run(struct bridge *br)
1712 for (i = 0; i < br->n_ports; i++) {
1713 struct port *port = br->ports[i];
1715 if (port->n_ifaces >= 2) {
1716 for (j = 0; j < port->n_ifaces; j++) {
1717 struct iface *iface = port->ifaces[j];
1718 if (time_msec() >= iface->delay_expires) {
1719 bond_enable_slave(iface, !iface->enabled);
1724 if (port->bond_compat_is_stale) {
1725 port->bond_compat_is_stale = false;
1726 port_update_bond_compat(port);
1732 bond_wait(struct bridge *br)
1736 for (i = 0; i < br->n_ports; i++) {
1737 struct port *port = br->ports[i];
1738 if (port->n_ifaces < 2) {
1741 for (j = 0; j < port->n_ifaces; j++) {
1742 struct iface *iface = port->ifaces[j];
1743 if (iface->delay_expires != LLONG_MAX) {
1744 poll_timer_wait(iface->delay_expires - time_msec());
1751 set_dst(struct dst *p, const flow_t *flow,
1752 const struct port *in_port, const struct port *out_port,
1755 p->vlan = (out_port->vlan >= 0 ? OFP_VLAN_NONE
1756 : in_port->vlan >= 0 ? in_port->vlan
1757 : ntohs(flow->dl_vlan));
1758 return choose_output_iface(out_port, flow->dl_src, &p->dp_ifidx, tags);
1762 swap_dst(struct dst *p, struct dst *q)
1764 struct dst tmp = *p;
1769 /* Moves all the dsts with vlan == 'vlan' to the front of the 'n_dsts' in
1770 * 'dsts'. (This may help performance by reducing the number of VLAN changes
1771 * that we push to the datapath. We could in fact fully sort the array by
1772 * vlan, but in most cases there are at most two different vlan tags so that's
1773 * possibly overkill.) */
1775 partition_dsts(struct dst *dsts, size_t n_dsts, int vlan)
1777 struct dst *first = dsts;
1778 struct dst *last = dsts + n_dsts;
1780 while (first != last) {
1782 * - All dsts < first have vlan == 'vlan'.
1783 * - All dsts >= last have vlan != 'vlan'.
1784 * - first < last. */
1785 while (first->vlan == vlan) {
1786 if (++first == last) {
1791 /* Same invariants, plus one additional:
1792 * - first->vlan != vlan.
1794 while (last[-1].vlan != vlan) {
1795 if (--last == first) {
1800 /* Same invariants, plus one additional:
1801 * - last[-1].vlan == vlan.*/
1802 swap_dst(first++, --last);
1807 mirror_mask_ffs(mirror_mask_t mask)
1809 BUILD_ASSERT_DECL(sizeof(unsigned int) >= sizeof(mask));
1814 dst_is_duplicate(const struct dst *dsts, size_t n_dsts,
1815 const struct dst *test)
1818 for (i = 0; i < n_dsts; i++) {
1819 if (dsts[i].vlan == test->vlan && dsts[i].dp_ifidx == test->dp_ifidx) {
1827 port_trunks_vlan(const struct port *port, uint16_t vlan)
1829 return port->vlan < 0 && bitmap_is_set(port->trunks, vlan);
1833 port_includes_vlan(const struct port *port, uint16_t vlan)
1835 return vlan == port->vlan || port_trunks_vlan(port, vlan);
1839 compose_dsts(const struct bridge *br, const flow_t *flow, uint16_t vlan,
1840 const struct port *in_port, const struct port *out_port,
1841 struct dst dsts[], tag_type *tags, uint16_t *nf_output_iface)
1843 mirror_mask_t mirrors = in_port->src_mirrors;
1844 struct dst *dst = dsts;
1847 if (out_port == FLOOD_PORT) {
1848 /* XXX use ODP_FLOOD if no vlans or bonding. */
1849 /* XXX even better, define each VLAN as a datapath port group */
1850 for (i = 0; i < br->n_ports; i++) {
1851 struct port *port = br->ports[i];
1852 if (port != in_port && port_includes_vlan(port, vlan)
1853 && !port->is_mirror_output_port
1854 && set_dst(dst, flow, in_port, port, tags)) {
1855 mirrors |= port->dst_mirrors;
1859 *nf_output_iface = NF_OUT_FLOOD;
1860 } else if (out_port && set_dst(dst, flow, in_port, out_port, tags)) {
1861 *nf_output_iface = dst->dp_ifidx;
1862 mirrors |= out_port->dst_mirrors;
1867 struct mirror *m = br->mirrors[mirror_mask_ffs(mirrors) - 1];
1868 if (!m->n_vlans || vlan_is_mirrored(m, vlan)) {
1870 if (set_dst(dst, flow, in_port, m->out_port, tags)
1871 && !dst_is_duplicate(dsts, dst - dsts, dst)) {
1875 for (i = 0; i < br->n_ports; i++) {
1876 struct port *port = br->ports[i];
1877 if (port_includes_vlan(port, m->out_vlan)
1878 && set_dst(dst, flow, in_port, port, tags))
1882 if (port->vlan < 0) {
1883 dst->vlan = m->out_vlan;
1885 if (dst_is_duplicate(dsts, dst - dsts, dst)) {
1889 /* Use the vlan tag on the original flow instead of
1890 * the one passed in the vlan parameter. This ensures
1891 * that we compare the vlan from before any implicit
1892 * tagging tags place. This is necessary because
1893 * dst->vlan is the final vlan, after removing implicit
1895 flow_vlan = ntohs(flow->dl_vlan);
1896 if (flow_vlan == 0) {
1897 flow_vlan = OFP_VLAN_NONE;
1899 if (port == in_port && dst->vlan == flow_vlan) {
1900 /* Don't send out input port on same VLAN. */
1908 mirrors &= mirrors - 1;
1911 partition_dsts(dsts, dst - dsts, ntohs(flow->dl_vlan));
1916 print_dsts(const struct dst *dsts, size_t n)
1918 for (; n--; dsts++) {
1919 printf(">p%"PRIu16, dsts->dp_ifidx);
1920 if (dsts->vlan != OFP_VLAN_NONE) {
1921 printf("v%"PRIu16, dsts->vlan);
1927 compose_actions(struct bridge *br, const flow_t *flow, uint16_t vlan,
1928 const struct port *in_port, const struct port *out_port,
1929 tag_type *tags, struct odp_actions *actions,
1930 uint16_t *nf_output_iface)
1932 struct dst dsts[DP_MAX_PORTS * (MAX_MIRRORS + 1)];
1934 const struct dst *p;
1937 n_dsts = compose_dsts(br, flow, vlan, in_port, out_port, dsts, tags,
1940 cur_vlan = ntohs(flow->dl_vlan);
1941 for (p = dsts; p < &dsts[n_dsts]; p++) {
1942 union odp_action *a;
1943 if (p->vlan != cur_vlan) {
1944 if (p->vlan == OFP_VLAN_NONE) {
1945 odp_actions_add(actions, ODPAT_STRIP_VLAN);
1947 a = odp_actions_add(actions, ODPAT_SET_VLAN_VID);
1948 a->vlan_vid.vlan_vid = htons(p->vlan);
1952 a = odp_actions_add(actions, ODPAT_OUTPUT);
1953 a->output.port = p->dp_ifidx;
1957 /* Returns the effective vlan of a packet, taking into account both the
1958 * 802.1Q header and implicitly tagged ports. A value of 0 indicates that
1959 * the packet is untagged and -1 indicates it has an invalid header and
1960 * should be dropped. */
1961 static int flow_get_vlan(struct bridge *br, const flow_t *flow,
1962 struct port *in_port, bool have_packet)
1964 /* Note that dl_vlan of 0 and of OFP_VLAN_NONE both mean that the packet
1965 * belongs to VLAN 0, so we should treat both cases identically. (In the
1966 * former case, the packet has an 802.1Q header that specifies VLAN 0,
1967 * presumably to allow a priority to be specified. In the latter case, the
1968 * packet does not have any 802.1Q header.) */
1969 int vlan = ntohs(flow->dl_vlan);
1970 if (vlan == OFP_VLAN_NONE) {
1973 if (in_port->vlan >= 0) {
1975 /* XXX support double tagging? */
1977 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1978 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %"PRIu16" tagged "
1979 "packet received on port %s configured with "
1980 "implicit VLAN %"PRIu16,
1981 br->name, ntohs(flow->dl_vlan),
1982 in_port->name, in_port->vlan);
1986 vlan = in_port->vlan;
1988 if (!port_includes_vlan(in_port, vlan)) {
1990 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1991 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %d tagged "
1992 "packet received on port %s not configured for "
1994 br->name, vlan, in_port->name, vlan);
2004 update_learning_table(struct bridge *br, const flow_t *flow, int vlan,
2005 struct port *in_port)
2007 tag_type rev_tag = mac_learning_learn(br->ml, flow->dl_src,
2008 vlan, in_port->port_idx);
2010 /* The log messages here could actually be useful in debugging,
2011 * so keep the rate limit relatively high. */
2012 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(30,
2014 VLOG_DBG_RL(&rl, "bridge %s: learned that "ETH_ADDR_FMT" is "
2015 "on port %s in VLAN %d",
2016 br->name, ETH_ADDR_ARGS(flow->dl_src),
2017 in_port->name, vlan);
2018 ofproto_revalidate(br->ofproto, rev_tag);
2023 is_bcast_arp_reply(const flow_t *flow)
2025 return (flow->dl_type == htons(ETH_TYPE_ARP)
2026 && flow->nw_proto == ARP_OP_REPLY
2027 && eth_addr_is_broadcast(flow->dl_dst));
2030 /* If the composed actions may be applied to any packet in the given 'flow',
2031 * returns true. Otherwise, the actions should only be applied to 'packet', or
2032 * not at all, if 'packet' was NULL. */
2034 process_flow(struct bridge *br, const flow_t *flow,
2035 const struct ofpbuf *packet, struct odp_actions *actions,
2036 tag_type *tags, uint16_t *nf_output_iface)
2038 struct iface *in_iface;
2039 struct port *in_port;
2040 struct port *out_port = NULL; /* By default, drop the packet/flow. */
2044 /* Find the interface and port structure for the received packet. */
2045 in_iface = iface_from_dp_ifidx(br, flow->in_port);
2047 /* No interface? Something fishy... */
2048 if (packet != NULL) {
2049 /* Odd. A few possible reasons here:
2051 * - We deleted an interface but there are still a few packets
2052 * queued up from it.
2054 * - Someone externally added an interface (e.g. with "ovs-dpctl
2055 * add-if") that we don't know about.
2057 * - Packet arrived on the local port but the local port is not
2058 * one of our bridge ports.
2060 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
2062 VLOG_WARN_RL(&rl, "bridge %s: received packet on unknown "
2063 "interface %"PRIu16, br->name, flow->in_port);
2066 /* Return without adding any actions, to drop packets on this flow. */
2069 in_port = in_iface->port;
2070 vlan = flow_get_vlan(br, flow, in_port, !!packet);
2075 /* Drop frames for reserved multicast addresses. */
2076 if (eth_addr_is_reserved(flow->dl_dst)) {
2080 /* Drop frames on ports reserved for mirroring. */
2081 if (in_port->is_mirror_output_port) {
2082 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
2083 VLOG_WARN_RL(&rl, "bridge %s: dropping packet received on port %s, "
2084 "which is reserved exclusively for mirroring",
2085 br->name, in_port->name);
2089 /* Packets received on bonds need special attention to avoid duplicates. */
2090 if (in_port->n_ifaces > 1) {
2093 if (eth_addr_is_multicast(flow->dl_dst)) {
2094 *tags |= in_port->active_iface_tag;
2095 if (in_port->active_iface != in_iface->port_ifidx) {
2096 /* Drop all multicast packets on inactive slaves. */
2101 /* Drop all packets for which we have learned a different input
2102 * port, because we probably sent the packet on one slave and got
2103 * it back on the other. Broadcast ARP replies are an exception
2104 * to this rule: the host has moved to another switch. */
2105 src_idx = mac_learning_lookup(br->ml, flow->dl_src, vlan);
2106 if (src_idx != -1 && src_idx != in_port->port_idx &&
2107 !is_bcast_arp_reply(flow)) {
2113 out_port = FLOOD_PORT;
2114 /* Learn source MAC (but don't try to learn from revalidation). */
2116 update_learning_table(br, flow, vlan, in_port);
2119 /* Determine output port. */
2120 out_port_idx = mac_learning_lookup_tag(br->ml, flow->dl_dst, vlan,
2122 if (out_port_idx >= 0 && out_port_idx < br->n_ports) {
2123 out_port = br->ports[out_port_idx];
2124 } else if (!packet && !eth_addr_is_multicast(flow->dl_dst)) {
2125 /* If we are revalidating but don't have a learning entry then
2126 * eject the flow. Installing a flow that floods packets opens
2127 * up a window of time where we could learn from a packet reflected
2128 * on a bond and blackhole packets before the learning table is
2129 * updated to reflect the correct port. */
2133 /* Don't send packets out their input ports. */
2134 if (in_port == out_port) {
2139 compose_actions(br, flow, vlan, in_port, out_port, tags, actions,
2145 /* Careful: 'opp' is in host byte order and opp->port_no is an OFP port
2148 bridge_port_changed_ofhook_cb(enum ofp_port_reason reason,
2149 const struct ofp_phy_port *opp,
2152 struct bridge *br = br_;
2153 struct iface *iface;
2156 iface = iface_from_dp_ifidx(br, ofp_port_to_odp_port(opp->port_no));
2162 if (reason == OFPPR_DELETE) {
2163 VLOG_WARN("bridge %s: interface %s deleted unexpectedly",
2164 br->name, iface->name);
2165 iface_destroy(iface);
2166 if (!port->n_ifaces) {
2167 VLOG_WARN("bridge %s: port %s has no interfaces, dropping",
2168 br->name, port->name);
2174 if (port->n_ifaces > 1) {
2175 bool up = !(opp->state & OFPPS_LINK_DOWN);
2176 bond_link_status_update(iface, up);
2177 port_update_bond_compat(port);
2183 bridge_normal_ofhook_cb(const flow_t *flow, const struct ofpbuf *packet,
2184 struct odp_actions *actions, tag_type *tags,
2185 uint16_t *nf_output_iface, void *br_)
2187 struct bridge *br = br_;
2189 COVERAGE_INC(bridge_process_flow);
2190 return process_flow(br, flow, packet, actions, tags, nf_output_iface);
2194 bridge_account_flow_ofhook_cb(const flow_t *flow,
2195 const union odp_action *actions,
2196 size_t n_actions, unsigned long long int n_bytes,
2199 struct bridge *br = br_;
2200 struct port *in_port;
2201 const union odp_action *a;
2203 /* Feed information from the active flows back into the learning table
2204 * to ensure that table is always in sync with what is actually flowing
2205 * through the datapath. */
2206 in_port = port_from_dp_ifidx(br, flow->in_port);
2208 int vlan = flow_get_vlan(br, flow, in_port, false);
2210 update_learning_table(br, flow, vlan, in_port);
2214 if (!br->has_bonded_ports) {
2218 for (a = actions; a < &actions[n_actions]; a++) {
2219 if (a->type == ODPAT_OUTPUT) {
2220 struct port *out_port = port_from_dp_ifidx(br, a->output.port);
2221 if (out_port && out_port->n_ifaces >= 2) {
2222 struct bond_entry *e = lookup_bond_entry(out_port,
2224 e->tx_bytes += n_bytes;
2231 bridge_account_checkpoint_ofhook_cb(void *br_)
2233 struct bridge *br = br_;
2236 if (!br->has_bonded_ports) {
2240 /* The current ofproto implementation calls this callback at least once a
2241 * second, so this timer implementation is sufficient. */
2242 if (time_msec() < br->bond_next_rebalance) {
2245 br->bond_next_rebalance = time_msec() + 10000;
2247 for (i = 0; i < br->n_ports; i++) {
2248 struct port *port = br->ports[i];
2249 if (port->n_ifaces > 1) {
2250 bond_rebalance_port(port);
2255 static struct ofhooks bridge_ofhooks = {
2256 bridge_port_changed_ofhook_cb,
2257 bridge_normal_ofhook_cb,
2258 bridge_account_flow_ofhook_cb,
2259 bridge_account_checkpoint_ofhook_cb,
2262 /* Bonding functions. */
2264 /* Statistics for a single interface on a bonded port, used for load-based
2265 * bond rebalancing. */
2266 struct slave_balance {
2267 struct iface *iface; /* The interface. */
2268 uint64_t tx_bytes; /* Sum of hashes[*]->tx_bytes. */
2270 /* All the "bond_entry"s that are assigned to this interface, in order of
2271 * increasing tx_bytes. */
2272 struct bond_entry **hashes;
2276 /* Sorts pointers to pointers to bond_entries in ascending order by the
2277 * interface to which they are assigned, and within a single interface in
2278 * ascending order of bytes transmitted. */
2280 compare_bond_entries(const void *a_, const void *b_)
2282 const struct bond_entry *const *ap = a_;
2283 const struct bond_entry *const *bp = b_;
2284 const struct bond_entry *a = *ap;
2285 const struct bond_entry *b = *bp;
2286 if (a->iface_idx != b->iface_idx) {
2287 return a->iface_idx > b->iface_idx ? 1 : -1;
2288 } else if (a->tx_bytes != b->tx_bytes) {
2289 return a->tx_bytes > b->tx_bytes ? 1 : -1;
2295 /* Sorts slave_balances so that enabled ports come first, and otherwise in
2296 * *descending* order by number of bytes transmitted. */
2298 compare_slave_balance(const void *a_, const void *b_)
2300 const struct slave_balance *a = a_;
2301 const struct slave_balance *b = b_;
2302 if (a->iface->enabled != b->iface->enabled) {
2303 return a->iface->enabled ? -1 : 1;
2304 } else if (a->tx_bytes != b->tx_bytes) {
2305 return a->tx_bytes > b->tx_bytes ? -1 : 1;
2312 swap_bals(struct slave_balance *a, struct slave_balance *b)
2314 struct slave_balance tmp = *a;
2319 /* Restores the 'n_bals' slave_balance structures in 'bals' to sorted order
2320 * given that 'p' (and only 'p') might be in the wrong location.
2322 * This function invalidates 'p', since it might now be in a different memory
2325 resort_bals(struct slave_balance *p,
2326 struct slave_balance bals[], size_t n_bals)
2329 for (; p > bals && p->tx_bytes > p[-1].tx_bytes; p--) {
2330 swap_bals(p, p - 1);
2332 for (; p < &bals[n_bals - 1] && p->tx_bytes < p[1].tx_bytes; p++) {
2333 swap_bals(p, p + 1);
2339 log_bals(const struct slave_balance *bals, size_t n_bals, struct port *port)
2341 if (VLOG_IS_DBG_ENABLED()) {
2342 struct ds ds = DS_EMPTY_INITIALIZER;
2343 const struct slave_balance *b;
2345 for (b = bals; b < bals + n_bals; b++) {
2349 ds_put_char(&ds, ',');
2351 ds_put_format(&ds, " %s %"PRIu64"kB",
2352 b->iface->name, b->tx_bytes / 1024);
2354 if (!b->iface->enabled) {
2355 ds_put_cstr(&ds, " (disabled)");
2357 if (b->n_hashes > 0) {
2358 ds_put_cstr(&ds, " (");
2359 for (i = 0; i < b->n_hashes; i++) {
2360 const struct bond_entry *e = b->hashes[i];
2362 ds_put_cstr(&ds, " + ");
2364 ds_put_format(&ds, "h%td: %"PRIu64"kB",
2365 e - port->bond_hash, e->tx_bytes / 1024);
2367 ds_put_cstr(&ds, ")");
2370 VLOG_DBG("bond %s:%s", port->name, ds_cstr(&ds));
2375 /* Shifts 'hash' from 'from' to 'to' within 'port'. */
2377 bond_shift_load(struct slave_balance *from, struct slave_balance *to,
2380 struct bond_entry *hash = from->hashes[hash_idx];
2381 struct port *port = from->iface->port;
2382 uint64_t delta = hash->tx_bytes;
2384 VLOG_INFO("bond %s: shift %"PRIu64"kB of load (with hash %td) "
2385 "from %s to %s (now carrying %"PRIu64"kB and "
2386 "%"PRIu64"kB load, respectively)",
2387 port->name, delta / 1024, hash - port->bond_hash,
2388 from->iface->name, to->iface->name,
2389 (from->tx_bytes - delta) / 1024,
2390 (to->tx_bytes + delta) / 1024);
2392 /* Delete element from from->hashes.
2394 * We don't bother to add the element to to->hashes because not only would
2395 * it require more work, the only purpose it would be to allow that hash to
2396 * be migrated to another slave in this rebalancing run, and there is no
2397 * point in doing that. */
2398 if (hash_idx == 0) {
2401 memmove(from->hashes + hash_idx, from->hashes + hash_idx + 1,
2402 (from->n_hashes - (hash_idx + 1)) * sizeof *from->hashes);
2406 /* Shift load away from 'from' to 'to'. */
2407 from->tx_bytes -= delta;
2408 to->tx_bytes += delta;
2410 /* Arrange for flows to be revalidated. */
2411 ofproto_revalidate(port->bridge->ofproto, hash->iface_tag);
2412 hash->iface_idx = to->iface->port_ifidx;
2413 hash->iface_tag = tag_create_random();
2417 bond_rebalance_port(struct port *port)
2419 struct slave_balance bals[DP_MAX_PORTS];
2421 struct bond_entry *hashes[BOND_MASK + 1];
2422 struct slave_balance *b, *from, *to;
2423 struct bond_entry *e;
2426 /* Sets up 'bals' to describe each of the port's interfaces, sorted in
2427 * descending order of tx_bytes, so that bals[0] represents the most
2428 * heavily loaded slave and bals[n_bals - 1] represents the least heavily
2431 * The code is a bit tricky: to avoid dynamically allocating a 'hashes'
2432 * array for each slave_balance structure, we sort our local array of
2433 * hashes in order by slave, so that all of the hashes for a given slave
2434 * become contiguous in memory, and then we point each 'hashes' members of
2435 * a slave_balance structure to the start of a contiguous group. */
2436 n_bals = port->n_ifaces;
2437 for (b = bals; b < &bals[n_bals]; b++) {
2438 b->iface = port->ifaces[b - bals];
2443 for (i = 0; i <= BOND_MASK; i++) {
2444 hashes[i] = &port->bond_hash[i];
2446 qsort(hashes, BOND_MASK + 1, sizeof *hashes, compare_bond_entries);
2447 for (i = 0; i <= BOND_MASK; i++) {
2449 if (e->iface_idx >= 0 && e->iface_idx < port->n_ifaces) {
2450 b = &bals[e->iface_idx];
2451 b->tx_bytes += e->tx_bytes;
2453 b->hashes = &hashes[i];
2458 qsort(bals, n_bals, sizeof *bals, compare_slave_balance);
2459 log_bals(bals, n_bals, port);
2461 /* Discard slaves that aren't enabled (which were sorted to the back of the
2462 * array earlier). */
2463 while (!bals[n_bals - 1].iface->enabled) {
2470 /* Shift load from the most-loaded slaves to the least-loaded slaves. */
2471 to = &bals[n_bals - 1];
2472 for (from = bals; from < to; ) {
2473 uint64_t overload = from->tx_bytes - to->tx_bytes;
2474 if (overload < to->tx_bytes >> 5 || overload < 100000) {
2475 /* The extra load on 'from' (and all less-loaded slaves), compared
2476 * to that of 'to' (the least-loaded slave), is less than ~3%, or
2477 * it is less than ~1Mbps. No point in rebalancing. */
2479 } else if (from->n_hashes == 1) {
2480 /* 'from' only carries a single MAC hash, so we can't shift any
2481 * load away from it, even though we want to. */
2484 /* 'from' is carrying significantly more load than 'to', and that
2485 * load is split across at least two different hashes. Pick a hash
2486 * to migrate to 'to' (the least-loaded slave), given that doing so
2487 * must decrease the ratio of the load on the two slaves by at
2490 * The sort order we use means that we prefer to shift away the
2491 * smallest hashes instead of the biggest ones. There is little
2492 * reason behind this decision; we could use the opposite sort
2493 * order to shift away big hashes ahead of small ones. */
2497 for (i = 0; i < from->n_hashes; i++) {
2498 double old_ratio, new_ratio;
2499 uint64_t delta = from->hashes[i]->tx_bytes;
2501 if (delta == 0 || from->tx_bytes - delta == 0) {
2502 /* Pointless move. */
2506 order_swapped = from->tx_bytes - delta < to->tx_bytes + delta;
2508 if (to->tx_bytes == 0) {
2509 /* Nothing on the new slave, move it. */
2513 old_ratio = (double)from->tx_bytes / to->tx_bytes;
2514 new_ratio = (double)(from->tx_bytes - delta) /
2515 (to->tx_bytes + delta);
2517 if (new_ratio == 0) {
2518 /* Should already be covered but check to prevent division
2523 if (new_ratio < 1) {
2524 new_ratio = 1 / new_ratio;
2527 if (old_ratio - new_ratio > 0.1) {
2528 /* Would decrease the ratio, move it. */
2532 if (i < from->n_hashes) {
2533 bond_shift_load(from, to, i);
2534 port->bond_compat_is_stale = true;
2536 /* If the result of the migration changed the relative order of
2537 * 'from' and 'to' swap them back to maintain invariants. */
2538 if (order_swapped) {
2539 swap_bals(from, to);
2542 /* Re-sort 'bals'. Note that this may make 'from' and 'to'
2543 * point to different slave_balance structures. It is only
2544 * valid to do these two operations in a row at all because we
2545 * know that 'from' will not move past 'to' and vice versa. */
2546 resort_bals(from, bals, n_bals);
2547 resort_bals(to, bals, n_bals);
2554 /* Implement exponentially weighted moving average. A weight of 1/2 causes
2555 * historical data to decay to <1% in 7 rebalancing runs. */
2556 for (e = &port->bond_hash[0]; e <= &port->bond_hash[BOND_MASK]; e++) {
2562 bond_send_learning_packets(struct port *port)
2564 struct bridge *br = port->bridge;
2565 struct mac_entry *e;
2566 struct ofpbuf packet;
2567 int error, n_packets, n_errors;
2569 if (!port->n_ifaces || port->active_iface < 0) {
2573 ofpbuf_init(&packet, 128);
2574 error = n_packets = n_errors = 0;
2575 LIST_FOR_EACH (e, struct mac_entry, lru_node, &br->ml->lrus) {
2576 union ofp_action actions[2], *a;
2582 if (e->port == port->port_idx
2583 || !choose_output_iface(port, e->mac, &dp_ifidx, &tags)) {
2587 /* Compose actions. */
2588 memset(actions, 0, sizeof actions);
2591 a->vlan_vid.type = htons(OFPAT_SET_VLAN_VID);
2592 a->vlan_vid.len = htons(sizeof *a);
2593 a->vlan_vid.vlan_vid = htons(e->vlan);
2596 a->output.type = htons(OFPAT_OUTPUT);
2597 a->output.len = htons(sizeof *a);
2598 a->output.port = htons(odp_port_to_ofp_port(dp_ifidx));
2603 compose_benign_packet(&packet, "Open vSwitch Bond Failover", 0xf177,
2605 flow_extract(&packet, ODPP_NONE, &flow);
2606 retval = ofproto_send_packet(br->ofproto, &flow, actions, a - actions,
2613 ofpbuf_uninit(&packet);
2616 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
2617 VLOG_WARN_RL(&rl, "bond %s: %d errors sending %d gratuitous learning "
2618 "packets, last error was: %s",
2619 port->name, n_errors, n_packets, strerror(error));
2621 VLOG_DBG("bond %s: sent %d gratuitous learning packets",
2622 port->name, n_packets);
2626 /* Bonding unixctl user interface functions. */
2629 bond_unixctl_list(struct unixctl_conn *conn,
2630 const char *args UNUSED, void *aux UNUSED)
2632 struct ds ds = DS_EMPTY_INITIALIZER;
2633 const struct bridge *br;
2635 ds_put_cstr(&ds, "bridge\tbond\tslaves\n");
2637 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
2640 for (i = 0; i < br->n_ports; i++) {
2641 const struct port *port = br->ports[i];
2642 if (port->n_ifaces > 1) {
2645 ds_put_format(&ds, "%s\t%s\t", br->name, port->name);
2646 for (j = 0; j < port->n_ifaces; j++) {
2647 const struct iface *iface = port->ifaces[j];
2649 ds_put_cstr(&ds, ", ");
2651 ds_put_cstr(&ds, iface->name);
2653 ds_put_char(&ds, '\n');
2657 unixctl_command_reply(conn, 200, ds_cstr(&ds));
2661 static struct port *
2662 bond_find(const char *name)
2664 const struct bridge *br;
2666 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
2669 for (i = 0; i < br->n_ports; i++) {
2670 struct port *port = br->ports[i];
2671 if (!strcmp(port->name, name) && port->n_ifaces > 1) {
2680 bond_unixctl_show(struct unixctl_conn *conn,
2681 const char *args, void *aux UNUSED)
2683 struct ds ds = DS_EMPTY_INITIALIZER;
2684 const struct port *port;
2687 port = bond_find(args);
2689 unixctl_command_reply(conn, 501, "no such bond");
2693 ds_put_format(&ds, "updelay: %d ms\n", port->updelay);
2694 ds_put_format(&ds, "downdelay: %d ms\n", port->downdelay);
2695 ds_put_format(&ds, "next rebalance: %lld ms\n",
2696 port->bridge->bond_next_rebalance - time_msec());
2697 for (j = 0; j < port->n_ifaces; j++) {
2698 const struct iface *iface = port->ifaces[j];
2699 struct bond_entry *be;
2702 ds_put_format(&ds, "slave %s: %s\n",
2703 iface->name, iface->enabled ? "enabled" : "disabled");
2704 if (j == port->active_iface) {
2705 ds_put_cstr(&ds, "\tactive slave\n");
2707 if (iface->delay_expires != LLONG_MAX) {
2708 ds_put_format(&ds, "\t%s expires in %lld ms\n",
2709 iface->enabled ? "downdelay" : "updelay",
2710 iface->delay_expires - time_msec());
2714 for (be = port->bond_hash; be <= &port->bond_hash[BOND_MASK]; be++) {
2715 int hash = be - port->bond_hash;
2716 struct mac_entry *me;
2718 if (be->iface_idx != j) {
2722 ds_put_format(&ds, "\thash %d: %"PRIu64" kB load\n",
2723 hash, be->tx_bytes / 1024);
2726 LIST_FOR_EACH (me, struct mac_entry, lru_node,
2727 &port->bridge->ml->lrus) {
2730 if (bond_hash(me->mac) == hash
2731 && me->port != port->port_idx
2732 && choose_output_iface(port, me->mac, &dp_ifidx, &tags)
2733 && dp_ifidx == iface->dp_ifidx)
2735 ds_put_format(&ds, "\t\t"ETH_ADDR_FMT"\n",
2736 ETH_ADDR_ARGS(me->mac));
2741 unixctl_command_reply(conn, 200, ds_cstr(&ds));
2746 bond_unixctl_migrate(struct unixctl_conn *conn, const char *args_,
2749 char *args = (char *) args_;
2750 char *save_ptr = NULL;
2751 char *bond_s, *hash_s, *slave_s;
2752 uint8_t mac[ETH_ADDR_LEN];
2754 struct iface *iface;
2755 struct bond_entry *entry;
2758 bond_s = strtok_r(args, " ", &save_ptr);
2759 hash_s = strtok_r(NULL, " ", &save_ptr);
2760 slave_s = strtok_r(NULL, " ", &save_ptr);
2762 unixctl_command_reply(conn, 501,
2763 "usage: bond/migrate BOND HASH SLAVE");
2767 port = bond_find(bond_s);
2769 unixctl_command_reply(conn, 501, "no such bond");
2773 if (sscanf(hash_s, ETH_ADDR_SCAN_FMT, ETH_ADDR_SCAN_ARGS(mac))
2774 == ETH_ADDR_SCAN_COUNT) {
2775 hash = bond_hash(mac);
2776 } else if (strspn(hash_s, "0123456789") == strlen(hash_s)) {
2777 hash = atoi(hash_s) & BOND_MASK;
2779 unixctl_command_reply(conn, 501, "bad hash");
2783 iface = port_lookup_iface(port, slave_s);
2785 unixctl_command_reply(conn, 501, "no such slave");
2789 if (!iface->enabled) {
2790 unixctl_command_reply(conn, 501, "cannot migrate to disabled slave");
2794 entry = &port->bond_hash[hash];
2795 ofproto_revalidate(port->bridge->ofproto, entry->iface_tag);
2796 entry->iface_idx = iface->port_ifidx;
2797 entry->iface_tag = tag_create_random();
2798 port->bond_compat_is_stale = true;
2799 unixctl_command_reply(conn, 200, "migrated");
2803 bond_unixctl_set_active_slave(struct unixctl_conn *conn, const char *args_,
2806 char *args = (char *) args_;
2807 char *save_ptr = NULL;
2808 char *bond_s, *slave_s;
2810 struct iface *iface;
2812 bond_s = strtok_r(args, " ", &save_ptr);
2813 slave_s = strtok_r(NULL, " ", &save_ptr);
2815 unixctl_command_reply(conn, 501,
2816 "usage: bond/set-active-slave BOND SLAVE");
2820 port = bond_find(bond_s);
2822 unixctl_command_reply(conn, 501, "no such bond");
2826 iface = port_lookup_iface(port, slave_s);
2828 unixctl_command_reply(conn, 501, "no such slave");
2832 if (!iface->enabled) {
2833 unixctl_command_reply(conn, 501, "cannot make disabled slave active");
2837 if (port->active_iface != iface->port_ifidx) {
2838 ofproto_revalidate(port->bridge->ofproto, port->active_iface_tag);
2839 port->active_iface = iface->port_ifidx;
2840 port->active_iface_tag = tag_create_random();
2841 VLOG_INFO("port %s: active interface is now %s",
2842 port->name, iface->name);
2843 bond_send_learning_packets(port);
2844 unixctl_command_reply(conn, 200, "done");
2846 unixctl_command_reply(conn, 200, "no change");
2851 enable_slave(struct unixctl_conn *conn, const char *args_, bool enable)
2853 char *args = (char *) args_;
2854 char *save_ptr = NULL;
2855 char *bond_s, *slave_s;
2857 struct iface *iface;
2859 bond_s = strtok_r(args, " ", &save_ptr);
2860 slave_s = strtok_r(NULL, " ", &save_ptr);
2862 unixctl_command_reply(conn, 501,
2863 "usage: bond/enable/disable-slave BOND SLAVE");
2867 port = bond_find(bond_s);
2869 unixctl_command_reply(conn, 501, "no such bond");
2873 iface = port_lookup_iface(port, slave_s);
2875 unixctl_command_reply(conn, 501, "no such slave");
2879 bond_enable_slave(iface, enable);
2880 unixctl_command_reply(conn, 501, enable ? "enabled" : "disabled");
2884 bond_unixctl_enable_slave(struct unixctl_conn *conn, const char *args,
2887 enable_slave(conn, args, true);
2891 bond_unixctl_disable_slave(struct unixctl_conn *conn, const char *args,
2894 enable_slave(conn, args, false);
2898 bond_unixctl_hash(struct unixctl_conn *conn, const char *args,
2901 uint8_t mac[ETH_ADDR_LEN];
2905 if (sscanf(args, ETH_ADDR_SCAN_FMT, ETH_ADDR_SCAN_ARGS(mac))
2906 == ETH_ADDR_SCAN_COUNT) {
2907 hash = bond_hash(mac);
2909 hash_cstr = xasprintf("%u", hash);
2910 unixctl_command_reply(conn, 200, hash_cstr);
2913 unixctl_command_reply(conn, 501, "invalid mac");
2920 unixctl_command_register("bond/list", bond_unixctl_list, NULL);
2921 unixctl_command_register("bond/show", bond_unixctl_show, NULL);
2922 unixctl_command_register("bond/migrate", bond_unixctl_migrate, NULL);
2923 unixctl_command_register("bond/set-active-slave",
2924 bond_unixctl_set_active_slave, NULL);
2925 unixctl_command_register("bond/enable-slave", bond_unixctl_enable_slave,
2927 unixctl_command_register("bond/disable-slave", bond_unixctl_disable_slave,
2929 unixctl_command_register("bond/hash", bond_unixctl_hash, NULL);
2932 /* Port functions. */
2934 static struct port *
2935 port_create(struct bridge *br, const char *name)
2939 port = xzalloc(sizeof *port);
2941 port->port_idx = br->n_ports;
2943 port->trunks = NULL;
2944 port->name = xstrdup(name);
2945 port->active_iface = -1;
2947 if (br->n_ports >= br->allocated_ports) {
2948 br->ports = x2nrealloc(br->ports, &br->allocated_ports,
2951 br->ports[br->n_ports++] = port;
2953 VLOG_INFO("created port %s on bridge %s", port->name, br->name);
2960 port_reconfigure(struct port *port, const struct ovsrec_port *cfg)
2962 struct shash old_ifaces, new_ifaces;
2963 struct shash_node *node;
2964 unsigned long *trunks;
2970 /* Collect old and new interfaces. */
2971 shash_init(&old_ifaces);
2972 shash_init(&new_ifaces);
2973 for (i = 0; i < port->n_ifaces; i++) {
2974 shash_add(&old_ifaces, port->ifaces[i]->name, port->ifaces[i]);
2976 for (i = 0; i < cfg->n_interfaces; i++) {
2977 const char *name = cfg->interfaces[i]->name;
2978 if (!shash_add_once(&new_ifaces, name, cfg->interfaces[i])) {
2979 VLOG_WARN("port %s: %s specified twice as port interface",
2983 port->updelay = cfg->bond_updelay;
2984 if (port->updelay < 0) {
2987 port->updelay = cfg->bond_downdelay;
2988 if (port->downdelay < 0) {
2989 port->downdelay = 0;
2992 /* Get rid of deleted interfaces and add new interfaces. */
2993 SHASH_FOR_EACH (node, &old_ifaces) {
2994 if (!shash_find(&new_ifaces, node->name)) {
2995 iface_destroy(node->data);
2998 SHASH_FOR_EACH (node, &new_ifaces) {
2999 const struct ovsrec_interface *if_cfg = node->data;
3000 const char *if_name = node->name;
3001 struct iface *iface;
3003 iface = shash_find_data(&old_ifaces, if_name);
3005 iface = iface_create(port, if_name);
3007 iface->cfg = if_cfg;
3013 if (port->n_ifaces < 2) {
3015 if (vlan >= 0 && vlan <= 4095) {
3016 VLOG_DBG("port %s: assigning VLAN tag %d", port->name, vlan);
3021 /* It's possible that bonded, VLAN-tagged ports make sense. Maybe
3022 * they even work as-is. But they have not been tested. */
3023 VLOG_WARN("port %s: VLAN tags not supported on bonded ports",
3027 if (port->vlan != vlan) {
3029 bridge_flush(port->bridge);
3032 /* Get trunked VLANs. */
3038 trunks = bitmap_allocate(4096);
3040 for (i = 0; i < cfg->n_trunks; i++) {
3041 int trunk = cfg->trunks[i];
3043 bitmap_set1(trunks, trunk);
3049 VLOG_ERR("port %s: invalid values for %zu trunk VLANs",
3050 port->name, cfg->n_trunks);
3052 if (n_errors == cfg->n_trunks) {
3054 VLOG_ERR("port %s: no valid trunks, trunking all VLANs",
3057 bitmap_set_multiple(trunks, 0, 4096, 1);
3060 if (cfg->n_trunks) {
3061 VLOG_ERR("port %s: ignoring trunks in favor of implicit vlan",
3066 ? port->trunks != NULL
3067 : port->trunks == NULL || !bitmap_equal(trunks, port->trunks, 4096)) {
3068 bridge_flush(port->bridge);
3070 bitmap_free(port->trunks);
3071 port->trunks = trunks;
3073 shash_destroy(&old_ifaces);
3074 shash_destroy(&new_ifaces);
3078 port_destroy(struct port *port)
3081 struct bridge *br = port->bridge;
3084 proc_net_compat_update_vlan(port->name, NULL, 0);
3085 proc_net_compat_update_bond(port->name, NULL);
3088 for (i = 0; i < MAX_MIRRORS; i++) {
3089 struct mirror *m = br->mirrors[i];
3090 if (m && m->out_port == port) {
3096 while (port->n_ifaces > 0) {
3097 iface_destroy(port->ifaces[port->n_ifaces - 1]);
3100 del = br->ports[port->port_idx] = br->ports[--br->n_ports];
3101 del->port_idx = port->port_idx;
3104 bitmap_free(port->trunks);
3111 static struct port *
3112 port_from_dp_ifidx(const struct bridge *br, uint16_t dp_ifidx)
3114 struct iface *iface = iface_from_dp_ifidx(br, dp_ifidx);
3115 return iface ? iface->port : NULL;
3118 static struct port *
3119 port_lookup(const struct bridge *br, const char *name)
3123 for (i = 0; i < br->n_ports; i++) {
3124 struct port *port = br->ports[i];
3125 if (!strcmp(port->name, name)) {
3132 static struct iface *
3133 port_lookup_iface(const struct port *port, const char *name)
3137 for (j = 0; j < port->n_ifaces; j++) {
3138 struct iface *iface = port->ifaces[j];
3139 if (!strcmp(iface->name, name)) {
3147 port_update_bonding(struct port *port)
3149 if (port->n_ifaces < 2) {
3150 /* Not a bonded port. */
3151 if (port->bond_hash) {
3152 free(port->bond_hash);
3153 port->bond_hash = NULL;
3154 port->bond_compat_is_stale = true;
3155 port->bond_fake_iface = false;
3158 if (!port->bond_hash) {
3161 port->bond_hash = xcalloc(BOND_MASK + 1, sizeof *port->bond_hash);
3162 for (i = 0; i <= BOND_MASK; i++) {
3163 struct bond_entry *e = &port->bond_hash[i];
3167 port->no_ifaces_tag = tag_create_random();
3168 bond_choose_active_iface(port);
3170 port->bond_compat_is_stale = true;
3171 port->bond_fake_iface = port->cfg->bond_fake_iface;
3176 port_update_bond_compat(struct port *port)
3178 struct compat_bond_hash compat_hashes[BOND_MASK + 1];
3179 struct compat_bond bond;
3182 if (port->n_ifaces < 2) {
3183 proc_net_compat_update_bond(port->name, NULL);
3188 bond.updelay = port->updelay;
3189 bond.downdelay = port->downdelay;
3192 bond.hashes = compat_hashes;
3193 if (port->bond_hash) {
3194 const struct bond_entry *e;
3195 for (e = port->bond_hash; e <= &port->bond_hash[BOND_MASK]; e++) {
3196 if (e->iface_idx >= 0 && e->iface_idx < port->n_ifaces) {
3197 struct compat_bond_hash *cbh = &bond.hashes[bond.n_hashes++];
3198 cbh->hash = e - port->bond_hash;
3199 cbh->netdev_name = port->ifaces[e->iface_idx]->name;
3204 bond.n_slaves = port->n_ifaces;
3205 bond.slaves = xmalloc(port->n_ifaces * sizeof *bond.slaves);
3206 for (i = 0; i < port->n_ifaces; i++) {
3207 struct iface *iface = port->ifaces[i];
3208 struct compat_bond_slave *slave = &bond.slaves[i];
3209 slave->name = iface->name;
3211 /* We need to make the same determination as the Linux bonding
3212 * code to determine whether a slave should be consider "up".
3213 * The Linux function bond_miimon_inspect() supports four
3214 * BOND_LINK_* states:
3216 * - BOND_LINK_UP: carrier detected, updelay has passed.
3217 * - BOND_LINK_FAIL: carrier lost, downdelay in progress.
3218 * - BOND_LINK_DOWN: carrier lost, downdelay has passed.
3219 * - BOND_LINK_BACK: carrier detected, updelay in progress.
3221 * The function bond_info_show_slave() only considers BOND_LINK_UP
3222 * to be "up" and anything else to be "down".
3224 slave->up = iface->enabled && iface->delay_expires == LLONG_MAX;
3228 netdev_get_etheraddr(iface->netdev, slave->mac);
3231 if (port->bond_fake_iface) {
3232 struct netdev *bond_netdev;
3234 if (!netdev_open(port->name, NETDEV_ETH_TYPE_NONE, &bond_netdev)) {
3236 netdev_turn_flags_on(bond_netdev, NETDEV_UP, true);
3238 netdev_turn_flags_off(bond_netdev, NETDEV_UP, true);
3240 netdev_close(bond_netdev);
3244 proc_net_compat_update_bond(port->name, &bond);
3249 port_update_vlan_compat(struct port *port)
3251 struct bridge *br = port->bridge;
3252 char *vlandev_name = NULL;
3254 if (port->vlan > 0) {
3255 /* Figure out the name that the VLAN device should actually have, if it
3256 * existed. This takes some work because the VLAN device would not
3257 * have port->name in its name; rather, it would have the trunk port's
3258 * name, and 'port' would be attached to a bridge that also had the
3259 * VLAN device one of its ports. So we need to find a trunk port that
3260 * includes port->vlan.
3262 * There might be more than one candidate. This doesn't happen on
3263 * XenServer, so if it happens we just pick the first choice in
3264 * alphabetical order instead of creating multiple VLAN devices. */
3266 for (i = 0; i < br->n_ports; i++) {
3267 struct port *p = br->ports[i];
3268 if (port_trunks_vlan(p, port->vlan)
3270 && (!vlandev_name || strcmp(p->name, vlandev_name) <= 0))
3272 uint8_t ea[ETH_ADDR_LEN];
3273 netdev_get_etheraddr(p->ifaces[0]->netdev, ea);
3274 if (!eth_addr_is_multicast(ea) &&
3275 !eth_addr_is_reserved(ea) &&
3276 !eth_addr_is_zero(ea)) {
3277 vlandev_name = p->name;
3282 proc_net_compat_update_vlan(port->name, vlandev_name, port->vlan);
3285 /* Interface functions. */
3287 static struct iface *
3288 iface_create(struct port *port, const char *name)
3290 struct iface *iface;
3292 iface = xzalloc(sizeof *iface);
3294 iface->port_ifidx = port->n_ifaces;
3295 iface->name = xstrdup(name);
3296 iface->dp_ifidx = -1;
3297 iface->tag = tag_create_random();
3298 iface->delay_expires = LLONG_MAX;
3299 iface->netdev = NULL;
3301 if (port->n_ifaces >= port->allocated_ifaces) {
3302 port->ifaces = x2nrealloc(port->ifaces, &port->allocated_ifaces,
3303 sizeof *port->ifaces);
3305 port->ifaces[port->n_ifaces++] = iface;
3306 if (port->n_ifaces > 1) {
3307 port->bridge->has_bonded_ports = true;
3310 VLOG_DBG("attached network device %s to port %s", iface->name, port->name);
3312 bridge_flush(port->bridge);
3318 iface_destroy(struct iface *iface)
3321 struct port *port = iface->port;
3322 struct bridge *br = port->bridge;
3323 bool del_active = port->active_iface == iface->port_ifidx;
3326 if (iface->dp_ifidx >= 0) {
3327 port_array_set(&br->ifaces, iface->dp_ifidx, NULL);
3330 del = port->ifaces[iface->port_ifidx] = port->ifaces[--port->n_ifaces];
3331 del->port_ifidx = iface->port_ifidx;
3333 netdev_close(iface->netdev);
3338 ofproto_revalidate(port->bridge->ofproto, port->active_iface_tag);
3339 bond_choose_active_iface(port);
3340 bond_send_learning_packets(port);
3343 bridge_flush(port->bridge);
3347 static struct iface *
3348 iface_lookup(const struct bridge *br, const char *name)
3352 for (i = 0; i < br->n_ports; i++) {
3353 struct port *port = br->ports[i];
3354 for (j = 0; j < port->n_ifaces; j++) {
3355 struct iface *iface = port->ifaces[j];
3356 if (!strcmp(iface->name, name)) {
3364 static struct iface *
3365 iface_from_dp_ifidx(const struct bridge *br, uint16_t dp_ifidx)
3367 return port_array_get(&br->ifaces, dp_ifidx);
3370 /* Returns true if 'iface' is the name of an "internal" interface on bridge
3371 * 'br', that is, an interface that is entirely simulated within the datapath.
3372 * The local port (ODPP_LOCAL) is always an internal interface. Other local
3373 * interfaces are created by setting "iface.<iface>.internal = true".
3375 * In addition, we have a kluge-y feature that creates an internal port with
3376 * the name of a bonded port if "bonding.<bondname>.fake-iface = true" is set.
3377 * This feature needs to go away in the long term. Until then, this is one
3378 * reason why this function takes a name instead of a struct iface: the fake
3379 * interfaces created this way do not have a struct iface. */
3381 iface_is_internal(const struct bridge *br, const char *if_name)
3383 /* XXX wastes time */
3384 struct iface *iface;
3387 if (!strcmp(if_name, br->name)) {
3391 iface = iface_lookup(br, if_name);
3392 if (iface && !strcmp(iface->cfg->type, "internal")) {
3396 port = port_lookup(br, if_name);
3397 if (port->n_ifaces > 1 && port->cfg->bond_fake_iface) {
3403 /* Set Ethernet address of 'iface', if one is specified in the configuration
3406 iface_set_mac(struct iface *iface)
3408 uint8_t ea[ETH_ADDR_LEN];
3410 if (iface->cfg->mac && eth_addr_from_string(iface->cfg->mac, ea)) {
3411 if (eth_addr_is_multicast(ea)) {
3412 VLOG_ERR("interface %s: cannot set MAC to multicast address",
3414 } else if (iface->dp_ifidx == ODPP_LOCAL) {
3415 VLOG_ERR("ignoring iface.%s.mac; use bridge.%s.mac instead",
3416 iface->name, iface->name);
3418 int error = netdev_set_etheraddr(iface->netdev, ea);
3420 VLOG_ERR("interface %s: setting MAC failed (%s)",
3421 iface->name, strerror(error));
3427 /* Port mirroring. */
3431 mirror_reconfigure(struct bridge *br UNUSED)
3433 struct svec old_mirrors, new_mirrors;
3434 size_t i, n_rspan_vlans;
3435 unsigned long *rspan_vlans;
3437 /* Collect old and new mirrors. */
3438 svec_init(&old_mirrors);
3439 svec_init(&new_mirrors);
3440 cfg_get_subsections(&new_mirrors, "mirror.%s", br->name);
3441 for (i = 0; i < MAX_MIRRORS; i++) {
3442 if (br->mirrors[i]) {
3443 svec_add(&old_mirrors, br->mirrors[i]->name);
3447 /* Get rid of deleted mirrors and add new mirrors. */
3448 svec_sort(&old_mirrors);
3449 assert(svec_is_unique(&old_mirrors));
3450 svec_sort(&new_mirrors);
3451 assert(svec_is_unique(&new_mirrors));
3452 for (i = 0; i < MAX_MIRRORS; i++) {
3453 struct mirror *m = br->mirrors[i];
3454 if (m && !svec_contains(&new_mirrors, m->name)) {
3458 for (i = 0; i < new_mirrors.n; i++) {
3459 const char *name = new_mirrors.names[i];
3460 if (!svec_contains(&old_mirrors, name)) {
3461 mirror_create(br, name);
3464 svec_destroy(&old_mirrors);
3465 svec_destroy(&new_mirrors);
3467 /* Reconfigure all mirrors. */
3468 for (i = 0; i < MAX_MIRRORS; i++) {
3469 if (br->mirrors[i]) {
3470 mirror_reconfigure_one(br->mirrors[i]);
3474 /* Update port reserved status. */
3475 for (i = 0; i < br->n_ports; i++) {
3476 br->ports[i]->is_mirror_output_port = false;
3478 for (i = 0; i < MAX_MIRRORS; i++) {
3479 struct mirror *m = br->mirrors[i];
3480 if (m && m->out_port) {
3481 m->out_port->is_mirror_output_port = true;
3485 /* Update learning disabled vlans (for RSPAN). */
3487 n_rspan_vlans = cfg_count("vlan.%s.disable-learning", br->name);
3488 if (n_rspan_vlans) {
3489 rspan_vlans = bitmap_allocate(4096);
3491 for (i = 0; i < n_rspan_vlans; i++) {
3492 int vlan = cfg_get_vlan(i, "vlan.%s.disable-learning", br->name);
3494 bitmap_set1(rspan_vlans, vlan);
3495 VLOG_INFO("bridge %s: disabling learning on vlan %d\n",
3498 VLOG_ERR("bridge %s: invalid value '%s' for learning disabled "
3500 cfg_get_string(i, "vlan.%s.disable-learning", br->name));
3504 if (mac_learning_set_disabled_vlans(br->ml, rspan_vlans)) {
3510 mirror_create(struct bridge *br, const char *name)
3515 for (i = 0; ; i++) {
3516 if (i >= MAX_MIRRORS) {
3517 VLOG_WARN("bridge %s: maximum of %d port mirrors reached, "
3518 "cannot create %s", br->name, MAX_MIRRORS, name);
3521 if (!br->mirrors[i]) {
3526 VLOG_INFO("created port mirror %s on bridge %s", name, br->name);
3529 br->mirrors[i] = m = xzalloc(sizeof *m);
3532 m->name = xstrdup(name);
3533 svec_init(&m->src_ports);
3534 svec_init(&m->dst_ports);
3542 mirror_destroy(struct mirror *m)
3545 struct bridge *br = m->bridge;
3548 for (i = 0; i < br->n_ports; i++) {
3549 br->ports[i]->src_mirrors &= ~(MIRROR_MASK_C(1) << m->idx);
3550 br->ports[i]->dst_mirrors &= ~(MIRROR_MASK_C(1) << m->idx);
3553 svec_destroy(&m->src_ports);
3554 svec_destroy(&m->dst_ports);
3557 m->bridge->mirrors[m->idx] = NULL;
3565 prune_ports(struct mirror *m, struct svec *ports)
3570 svec_sort_unique(ports);
3573 for (i = 0; i < ports->n; i++) {
3574 const char *name = ports->names[i];
3575 if (port_lookup(m->bridge, name)) {
3576 svec_add(&tmp, name);
3578 VLOG_WARN("mirror.%s.%s: cannot match on nonexistent port %s",
3579 m->bridge->name, m->name, name);
3582 svec_swap(ports, &tmp);
3587 prune_vlans(struct mirror *m, struct svec *vlan_strings, int **vlans)
3591 /* This isn't perfect: it won't combine "0" and "00", and the textual sort
3592 * order won't give us numeric sort order. But that's good enough for what
3593 * we need right now. */
3594 svec_sort_unique(vlan_strings);
3596 *vlans = xmalloc(sizeof *vlans * vlan_strings->n);
3598 for (i = 0; i < vlan_strings->n; i++) {
3599 const char *name = vlan_strings->names[i];
3601 if (!str_to_int(name, 10, &vlan) || vlan < 0 || vlan > 4095) {
3602 VLOG_WARN("mirror.%s.%s.select.vlan: ignoring invalid VLAN %s",
3603 m->bridge->name, m->name, name);
3605 (*vlans)[n_vlans++] = vlan;
3612 vlan_is_mirrored(const struct mirror *m, int vlan)
3616 for (i = 0; i < m->n_vlans; i++) {
3617 if (m->vlans[i] == vlan) {
3625 port_trunks_any_mirrored_vlan(const struct mirror *m, const struct port *p)
3629 for (i = 0; i < m->n_vlans; i++) {
3630 if (port_trunks_vlan(p, m->vlans[i])) {
3638 mirror_reconfigure_one(struct mirror *m UNUSED)
3640 char *pfx = xasprintf("mirror.%s.%s", m->bridge->name, m->name);
3641 struct svec src_ports, dst_ports, ports;
3642 struct svec vlan_strings;
3643 mirror_mask_t mirror_bit;
3644 const char *out_port_name;
3645 struct port *out_port;
3650 bool mirror_all_ports;
3651 bool any_ports_specified;
3653 /* Get output port. */
3654 out_port_name = cfg_get_key(0, "mirror.%s.%s.output.port",
3655 m->bridge->name, m->name);
3656 if (out_port_name) {
3657 out_port = port_lookup(m->bridge, out_port_name);
3659 VLOG_ERR("%s.output.port: bridge %s does not have a port "
3660 "named %s", pfx, m->bridge->name, out_port_name);
3667 if (cfg_has("%s.output.vlan", pfx)) {
3668 VLOG_ERR("%s.output.port and %s.output.vlan both specified; "
3669 "ignoring %s.output.vlan", pfx, pfx, pfx);
3671 } else if (cfg_has("%s.output.vlan", pfx)) {
3673 out_vlan = cfg_get_vlan(0, "%s.output.vlan", pfx);
3675 VLOG_ERR("%s: neither %s.output.port nor %s.output.vlan specified, "
3676 "but exactly one is required; disabling port mirror %s",
3677 pfx, pfx, pfx, pfx);
3683 /* Get all the ports, and drop duplicates and ports that don't exist. */
3684 svec_init(&src_ports);
3685 svec_init(&dst_ports);
3687 cfg_get_all_keys(&src_ports, "%s.select.src-port", pfx);
3688 cfg_get_all_keys(&dst_ports, "%s.select.dst-port", pfx);
3689 cfg_get_all_keys(&ports, "%s.select.port", pfx);
3690 any_ports_specified = src_ports.n || dst_ports.n || ports.n;
3691 svec_append(&src_ports, &ports);
3692 svec_append(&dst_ports, &ports);
3693 svec_destroy(&ports);
3694 prune_ports(m, &src_ports);
3695 prune_ports(m, &dst_ports);
3696 if (any_ports_specified && !src_ports.n && !dst_ports.n) {
3697 VLOG_ERR("%s: none of the specified ports exist; "
3698 "disabling port mirror %s", pfx, pfx);
3703 /* Get all the vlans, and drop duplicate and invalid vlans. */
3704 svec_init(&vlan_strings);
3705 cfg_get_all_keys(&vlan_strings, "%s.select.vlan", pfx);
3706 n_vlans = prune_vlans(m, &vlan_strings, &vlans);
3707 svec_destroy(&vlan_strings);
3709 /* Update mirror data. */
3710 if (!svec_equal(&m->src_ports, &src_ports)
3711 || !svec_equal(&m->dst_ports, &dst_ports)
3712 || m->n_vlans != n_vlans
3713 || memcmp(m->vlans, vlans, sizeof *vlans * n_vlans)
3714 || m->out_port != out_port
3715 || m->out_vlan != out_vlan) {
3716 bridge_flush(m->bridge);
3718 svec_swap(&m->src_ports, &src_ports);
3719 svec_swap(&m->dst_ports, &dst_ports);
3722 m->n_vlans = n_vlans;
3723 m->out_port = out_port;
3724 m->out_vlan = out_vlan;
3726 /* If no selection criteria have been given, mirror for all ports. */
3727 mirror_all_ports = (!m->src_ports.n) && (!m->dst_ports.n) && (!m->n_vlans);
3730 mirror_bit = MIRROR_MASK_C(1) << m->idx;
3731 for (i = 0; i < m->bridge->n_ports; i++) {
3732 struct port *port = m->bridge->ports[i];
3734 if (mirror_all_ports
3735 || svec_contains(&m->src_ports, port->name)
3738 ? port_trunks_any_mirrored_vlan(m, port)
3739 : vlan_is_mirrored(m, port->vlan)))) {
3740 port->src_mirrors |= mirror_bit;
3742 port->src_mirrors &= ~mirror_bit;
3745 if (mirror_all_ports || svec_contains(&m->dst_ports, port->name)) {
3746 port->dst_mirrors |= mirror_bit;
3748 port->dst_mirrors &= ~mirror_bit;
3754 svec_destroy(&src_ports);
3755 svec_destroy(&dst_ports);