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in-band: Document logic behind in-band's design.
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064af421 1/* Copyright (c) 2008, 2009 Nicira Networks
c93b1d6a 2 *
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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:
064af421 6 *
a14bc59f 7 * http://www.apache.org/licenses/LICENSE-2.0
064af421 8 *
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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.
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14 */
15
16#include <config.h>
17#include "bridge.h"
18#include <assert.h>
19#include <errno.h>
20#include <arpa/inet.h>
21#include <ctype.h>
22#include <inttypes.h>
23#include <net/if.h>
24#include <openflow/openflow.h>
25#include <signal.h>
26#include <stdlib.h>
27#include <strings.h>
28#include <sys/stat.h>
29#include <sys/socket.h>
7e40e21d 30#include <sys/types.h>
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31#include <unistd.h>
32#include "bitmap.h"
33#include "cfg.h"
34#include "coverage.h"
35#include "dirs.h"
36#include "dpif.h"
37#include "dynamic-string.h"
38#include "flow.h"
39#include "hash.h"
40#include "list.h"
41#include "mac-learning.h"
42#include "netdev.h"
43#include "odp-util.h"
44#include "ofp-print.h"
45#include "ofpbuf.h"
da285df4 46#include "packets.h"
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47#include "poll-loop.h"
48#include "port-array.h"
49#include "proc-net-compat.h"
50#include "process.h"
51#include "secchan/ofproto.h"
52#include "socket-util.h"
53#include "stp.h"
54#include "svec.h"
55#include "timeval.h"
56#include "util.h"
da285df4 57#include "unixctl.h"
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58#include "vconn.h"
59#include "vconn-ssl.h"
60#include "xenserver.h"
61#include "xtoxll.h"
62
63#define THIS_MODULE VLM_bridge
64#include "vlog.h"
65
66struct dst {
67 uint16_t vlan;
68 uint16_t dp_ifidx;
69};
70
71extern uint64_t mgmt_id;
72
73struct iface {
74 struct port *port; /* Containing port. */
75 size_t port_ifidx; /* Index within containing port. */
76
77 char *name; /* Host network device name. */
78 int dp_ifidx; /* Index within kernel datapath. */
79
80 uint8_t mac[ETH_ADDR_LEN]; /* Ethernet address (all zeros if unknowns). */
81
82 tag_type tag; /* Tag associated with this interface. */
83 bool enabled; /* May be chosen for flows? */
84 long long delay_expires; /* Time after which 'enabled' may change. */
85};
86
87#define BOND_MASK 0xff
88struct bond_entry {
89 int iface_idx; /* Index of assigned iface, or -1 if none. */
90 uint64_t tx_bytes; /* Count of bytes recently transmitted. */
91 tag_type iface_tag; /* Tag associated with iface_idx. */
92};
93
94#define MAX_MIRRORS 32
95typedef uint32_t mirror_mask_t;
96#define MIRROR_MASK_C(X) UINT32_C(X)
97BUILD_ASSERT_DECL(sizeof(mirror_mask_t) * CHAR_BIT >= MAX_MIRRORS);
98struct mirror {
99 struct bridge *bridge;
100 size_t idx;
101 char *name;
102
103 /* Selection criteria. */
104 struct svec src_ports;
105 struct svec dst_ports;
106 int *vlans;
107 size_t n_vlans;
108
109 /* Output. */
110 struct port *out_port;
111 int out_vlan;
112};
113
114#define FLOOD_PORT ((struct port *) 1) /* The 'flood' output port. */
115struct port {
116 struct bridge *bridge;
117 size_t port_idx;
118 int vlan; /* -1=trunk port, else a 12-bit VLAN ID. */
119 unsigned long *trunks; /* Bitmap of trunked VLANs, if 'vlan' == -1. */
120 char *name;
121
122 /* An ordinary bridge port has 1 interface.
123 * A bridge port for bonding has at least 2 interfaces. */
124 struct iface **ifaces;
125 size_t n_ifaces, allocated_ifaces;
126
127 /* Bonding info. */
128 struct bond_entry *bond_hash; /* An array of (BOND_MASK + 1) elements. */
129 int active_iface; /* Ifidx on which bcasts accepted, or -1. */
130 tag_type active_iface_tag; /* Tag for bcast flows. */
131 tag_type no_ifaces_tag; /* Tag for flows when all ifaces disabled. */
132 int updelay, downdelay; /* Delay before iface goes up/down, in ms. */
85c74638 133 bool bond_compat_is_stale; /* Need to call port_update_bond_compat()? */
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134
135 /* Port mirroring info. */
136 mirror_mask_t src_mirrors; /* Mirrors triggered when packet received. */
137 mirror_mask_t dst_mirrors; /* Mirrors triggered when packet sent. */
138 bool is_mirror_output_port; /* Does port mirroring send frames here? */
139
140 /* Spanning tree info. */
141 enum stp_state stp_state; /* Always STP_FORWARDING if STP not in use. */
142 tag_type stp_state_tag; /* Tag for STP state change. */
143};
144
145#define DP_MAX_PORTS 255
146struct bridge {
147 struct list node; /* Node in global list of bridges. */
148 char *name; /* User-specified arbitrary name. */
149 struct mac_learning *ml; /* MAC learning table, or null not to learn. */
150 bool sent_config_request; /* Successfully sent config request? */
151 uint8_t default_ea[ETH_ADDR_LEN]; /* Default MAC. */
152
153 /* Support for remote controllers. */
154 char *controller; /* NULL if there is no remote controller;
155 * "discover" to do controller discovery;
156 * otherwise a vconn name. */
157
158 /* OpenFlow switch processing. */
159 struct ofproto *ofproto; /* OpenFlow switch. */
160
161 /* Kernel datapath information. */
162 struct dpif dpif; /* Kernel datapath. */
163 struct port_array ifaces; /* Indexed by kernel datapath port number. */
164
165 /* Bridge ports. */
166 struct port **ports;
167 size_t n_ports, allocated_ports;
168
169 /* Bonding. */
170 bool has_bonded_ports;
171 long long int bond_next_rebalance;
172
173 /* Flow tracking. */
174 bool flush;
175
176 /* Flow statistics gathering. */
177 time_t next_stats_request;
178
179 /* Port mirroring. */
180 struct mirror *mirrors[MAX_MIRRORS];
181
182 /* Spanning tree. */
183 struct stp *stp;
184 long long int stp_last_tick;
185};
186
187/* List of all bridges. */
188static struct list all_bridges = LIST_INITIALIZER(&all_bridges);
189
190/* Maximum number of datapaths. */
191enum { DP_MAX = 256 };
192
193static struct bridge *bridge_create(const char *name);
194static void bridge_destroy(struct bridge *);
195static struct bridge *bridge_lookup(const char *name);
4f2cad2c 196static void bridge_unixctl_dump_flows(struct unixctl_conn *, const char *);
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197static int bridge_run_one(struct bridge *);
198static void bridge_reconfigure_one(struct bridge *);
199static void bridge_reconfigure_controller(struct bridge *);
200static void bridge_get_all_ifaces(const struct bridge *, struct svec *ifaces);
201static void bridge_fetch_dp_ifaces(struct bridge *);
202static void bridge_flush(struct bridge *);
203static void bridge_pick_local_hw_addr(struct bridge *,
204 uint8_t ea[ETH_ADDR_LEN],
205 const char **devname);
206static uint64_t bridge_pick_datapath_id(struct bridge *,
207 const uint8_t bridge_ea[ETH_ADDR_LEN],
208 const char *devname);
209static uint64_t dpid_from_hash(const void *, size_t nbytes);
210
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211static void bridge_unixctl_fdb_show(struct unixctl_conn *, const char *args);
212
da285df4 213static void bond_init(void);
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214static void bond_run(struct bridge *);
215static void bond_wait(struct bridge *);
216static void bond_rebalance_port(struct port *);
2303f3b2 217static void bond_send_learning_packets(struct port *);
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218
219static void port_create(struct bridge *, const char *name);
220static void port_reconfigure(struct port *);
221static void port_destroy(struct port *);
222static struct port *port_lookup(const struct bridge *, const char *name);
da285df4 223static struct iface *port_lookup_iface(const struct port *, const char *name);
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224static struct port *port_from_dp_ifidx(const struct bridge *,
225 uint16_t dp_ifidx);
226static void port_update_bond_compat(struct port *);
227static void port_update_vlan_compat(struct port *);
228
229static void mirror_create(struct bridge *, const char *name);
230static void mirror_destroy(struct mirror *);
231static void mirror_reconfigure(struct bridge *);
232static void mirror_reconfigure_one(struct mirror *);
233static bool vlan_is_mirrored(const struct mirror *, int vlan);
234
235static void brstp_reconfigure(struct bridge *);
236static void brstp_adjust_timers(struct bridge *);
237static void brstp_run(struct bridge *);
238static void brstp_wait(struct bridge *);
239
240static void iface_create(struct port *, const char *name);
241static void iface_destroy(struct iface *);
242static struct iface *iface_lookup(const struct bridge *, const char *name);
243static struct iface *iface_from_dp_ifidx(const struct bridge *,
244 uint16_t dp_ifidx);
245
246/* Hooks into ofproto processing. */
247static struct ofhooks bridge_ofhooks;
248\f
249/* Public functions. */
250
251/* Adds the name of each interface used by a bridge, including local and
252 * internal ports, to 'svec'. */
253void
254bridge_get_ifaces(struct svec *svec)
255{
256 struct bridge *br, *next;
257 size_t i, j;
258
259 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
260 for (i = 0; i < br->n_ports; i++) {
261 struct port *port = br->ports[i];
262
263 for (j = 0; j < port->n_ifaces; j++) {
264 struct iface *iface = port->ifaces[j];
265 if (iface->dp_ifidx < 0) {
266 VLOG_ERR("%s interface not in dp%u, ignoring",
267 iface->name, dpif_id(&br->dpif));
268 } else {
269 if (iface->dp_ifidx != ODPP_LOCAL) {
270 svec_add(svec, iface->name);
271 }
272 }
273 }
274 }
275 }
276}
277
278/* The caller must already have called cfg_read(). */
279void
280bridge_init(void)
281{
282 int retval;
283 int i;
284
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285 bond_init();
286
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287 unixctl_command_register("fdb/show", bridge_unixctl_fdb_show);
288
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289 for (i = 0; i < DP_MAX; i++) {
290 struct dpif dpif;
291 char devname[16];
292
293 sprintf(devname, "dp%d", i);
294 retval = dpif_open(devname, &dpif);
295 if (!retval) {
296 char dpif_name[IF_NAMESIZE];
297 if (dpif_get_name(&dpif, dpif_name, sizeof dpif_name)
298 || !cfg_has("bridge.%s.port", dpif_name)) {
299 dpif_delete(&dpif);
300 }
301 dpif_close(&dpif);
302 } else if (retval != ENODEV) {
303 VLOG_ERR("failed to delete datapath dp%d: %s",
304 i, strerror(retval));
305 }
306 }
307
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308 unixctl_command_register("bridge/dump-flows", bridge_unixctl_dump_flows);
309
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310 bridge_reconfigure();
311}
312
313#ifdef HAVE_OPENSSL
314static bool
315config_string_change(const char *key, char **valuep)
316{
317 const char *value = cfg_get_string(0, "%s", key);
318 if (value && (!*valuep || strcmp(value, *valuep))) {
319 free(*valuep);
320 *valuep = xstrdup(value);
321 return true;
322 } else {
323 return false;
324 }
325}
326
327static void
328bridge_configure_ssl(void)
329{
330 /* XXX SSL should be configurable on a per-bridge basis.
331 * XXX should be possible to de-configure SSL. */
332 static char *private_key_file;
333 static char *certificate_file;
334 static char *cacert_file;
7e40e21d 335 struct stat s;
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336
337 if (config_string_change("ssl.private-key", &private_key_file)) {
338 vconn_ssl_set_private_key_file(private_key_file);
339 }
340
341 if (config_string_change("ssl.certificate", &certificate_file)) {
342 vconn_ssl_set_certificate_file(certificate_file);
343 }
344
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345 /* We assume that even if the filename hasn't changed, if the CA cert
346 * file has been removed, that we want to move back into
347 * boot-strapping mode. This opens a small security hole, because
348 * the old certificate will still be trusted until vSwitch is
349 * restarted. We may want to address this in vconn's SSL library. */
350 if (config_string_change("ssl.ca-cert", &cacert_file)
351 || (stat(cacert_file, &s) && errno == ENOENT)) {
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352 vconn_ssl_set_ca_cert_file(cacert_file,
353 cfg_get_bool(0, "ssl.bootstrap-ca-cert"));
354 }
355}
356#endif
357
358void
359bridge_reconfigure(void)
360{
361 struct svec old_br, new_br, raw_new_br;
362 struct bridge *br, *next;
363 size_t i, j;
364
365 COVERAGE_INC(bridge_reconfigure);
366
367 /* Collect old bridges. */
368 svec_init(&old_br);
369 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
370 svec_add(&old_br, br->name);
371 }
372
373 /* Collect new bridges. */
374 svec_init(&raw_new_br);
375 cfg_get_subsections(&raw_new_br, "bridge");
376 svec_init(&new_br);
377 for (i = 0; i < raw_new_br.n; i++) {
378 const char *name = raw_new_br.names[i];
379 if ((!strncmp(name, "dp", 2) && isdigit(name[2])) ||
380 (!strncmp(name, "nl:", 3) && isdigit(name[3]))) {
381 VLOG_ERR("%s is not a valid bridge name (bridges may not be "
382 "named \"dp\" or \"nl:\" followed by a digit)", name);
383 } else {
384 svec_add(&new_br, name);
385 }
386 }
387 svec_destroy(&raw_new_br);
388
389 /* Get rid of deleted bridges and add new bridges. */
390 svec_sort(&old_br);
391 svec_sort(&new_br);
392 assert(svec_is_unique(&old_br));
393 assert(svec_is_unique(&new_br));
394 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
395 if (!svec_contains(&new_br, br->name)) {
396 bridge_destroy(br);
397 }
398 }
399 for (i = 0; i < new_br.n; i++) {
400 const char *name = new_br.names[i];
401 if (!svec_contains(&old_br, name)) {
402 bridge_create(name);
403 }
404 }
405 svec_destroy(&old_br);
406 svec_destroy(&new_br);
407
408#ifdef HAVE_OPENSSL
409 /* Configure SSL. */
410 bridge_configure_ssl();
411#endif
412
413 /* Reconfigure all bridges. */
414 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
415 bridge_reconfigure_one(br);
416 }
417
418 /* Add and delete ports on all datapaths.
419 *
420 * The kernel will reject any attempt to add a given port to a datapath if
421 * that port already belongs to a different datapath, so we must do all
422 * port deletions before any port additions. */
423 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
424 struct odp_port *dpif_ports;
425 size_t n_dpif_ports;
426 struct svec want_ifaces;
427
428 dpif_port_list(&br->dpif, &dpif_ports, &n_dpif_ports);
429 bridge_get_all_ifaces(br, &want_ifaces);
430 for (i = 0; i < n_dpif_ports; i++) {
431 const struct odp_port *p = &dpif_ports[i];
432 if (!svec_contains(&want_ifaces, p->devname)
433 && strcmp(p->devname, br->name)) {
434 int retval = dpif_port_del(&br->dpif, p->port);
435 if (retval) {
436 VLOG_ERR("failed to remove %s interface from dp%u: %s",
437 p->devname, dpif_id(&br->dpif), strerror(retval));
438 }
439 }
440 }
441 svec_destroy(&want_ifaces);
442 free(dpif_ports);
443 }
444 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
445 struct odp_port *dpif_ports;
446 size_t n_dpif_ports;
447 struct svec cur_ifaces, want_ifaces, add_ifaces;
448 int next_port_no;
449
450 dpif_port_list(&br->dpif, &dpif_ports, &n_dpif_ports);
451 svec_init(&cur_ifaces);
452 for (i = 0; i < n_dpif_ports; i++) {
453 svec_add(&cur_ifaces, dpif_ports[i].devname);
454 }
455 free(dpif_ports);
456 svec_sort_unique(&cur_ifaces);
457 bridge_get_all_ifaces(br, &want_ifaces);
458 svec_diff(&want_ifaces, &cur_ifaces, &add_ifaces, NULL, NULL);
459
460 next_port_no = 1;
461 for (i = 0; i < add_ifaces.n; i++) {
462 const char *if_name = add_ifaces.names[i];
463 for (;;) {
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464 bool internal;
465 int error;
466
467 /* It's an internal interface if it's marked that way, or if
468 * it's a bonded interface for which we're faking up a network
469 * device. */
470 internal = cfg_get_bool(0, "iface.%s.internal", if_name);
471 if (cfg_get_bool(0, "bonding.%s.fake-iface", if_name)) {
472 struct port *port = port_lookup(br, if_name);
473 if (port && port->n_ifaces > 1) {
474 internal = true;
475 }
476 }
477
478 /* Add to datapath. */
479 error = dpif_port_add(&br->dpif, if_name, next_port_no++,
480 internal ? ODP_PORT_INTERNAL : 0);
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481 if (error != EEXIST) {
482 if (next_port_no >= 256) {
483 VLOG_ERR("ran out of valid port numbers on dp%u",
484 dpif_id(&br->dpif));
485 goto out;
486 }
487 if (error) {
488 VLOG_ERR("failed to add %s interface to dp%u: %s",
489 if_name, dpif_id(&br->dpif), strerror(error));
490 }
491 break;
492 }
493 }
494 }
495 out:
496 svec_destroy(&cur_ifaces);
497 svec_destroy(&want_ifaces);
498 svec_destroy(&add_ifaces);
499 }
500 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
501 uint8_t ea[8];
502 uint64_t dpid;
503 struct iface *local_iface = NULL;
504 const char *devname;
505 uint8_t engine_type = br->dpif.minor;
506 uint8_t engine_id = br->dpif.minor;
507 bool add_id_to_iface = false;
508 struct svec nf_hosts;
509
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510 bridge_fetch_dp_ifaces(br);
511 for (i = 0; i < br->n_ports; ) {
512 struct port *port = br->ports[i];
513
514 for (j = 0; j < port->n_ifaces; ) {
515 struct iface *iface = port->ifaces[j];
516 if (iface->dp_ifidx < 0) {
517 VLOG_ERR("%s interface not in dp%u, dropping",
518 iface->name, dpif_id(&br->dpif));
519 iface_destroy(iface);
520 } else {
521 if (iface->dp_ifidx == ODPP_LOCAL) {
522 local_iface = iface;
523 }
524 VLOG_DBG("dp%u has interface %s on port %d",
525 dpif_id(&br->dpif), iface->name, iface->dp_ifidx);
526 j++;
527 }
528 }
529 if (!port->n_ifaces) {
530 VLOG_ERR("%s port has no interfaces, dropping", port->name);
531 port_destroy(port);
532 continue;
533 }
534 i++;
535 }
536
537 /* Pick local port hardware address, datapath ID. */
538 bridge_pick_local_hw_addr(br, ea, &devname);
539 if (local_iface) {
540 int error = netdev_nodev_set_etheraddr(local_iface->name, ea);
541 if (error) {
542 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
543 VLOG_ERR_RL(&rl, "bridge %s: failed to set bridge "
544 "Ethernet address: %s",
545 br->name, strerror(error));
546 }
547 }
548
549 dpid = bridge_pick_datapath_id(br, ea, devname);
550 ofproto_set_datapath_id(br->ofproto, dpid);
551
552 /* Set NetFlow configuration on this bridge. */
553 if (cfg_has("netflow.%s.engine-type", br->name)) {
554 engine_type = cfg_get_int(0, "netflow.%s.engine-type",
555 br->name);
556 }
557 if (cfg_has("netflow.%s.engine-id", br->name)) {
558 engine_id = cfg_get_int(0, "netflow.%s.engine-id", br->name);
559 }
560 if (cfg_has("netflow.%s.add-id-to-iface", br->name)) {
561 add_id_to_iface = cfg_get_bool(0, "netflow.%s.add-id-to-iface",
562 br->name);
563 }
564 if (add_id_to_iface && engine_id > 0x7f) {
565 VLOG_WARN("bridge %s: netflow port mangling may conflict with "
566 "another vswitch, choose an engine id less than 128",
567 br->name);
568 }
569 if (add_id_to_iface && br->n_ports > 0x1ff) {
570 VLOG_WARN("bridge %s: netflow port mangling will conflict with "
571 "another port when 512 or more ports are used",
572 br->name);
573 }
574 svec_init(&nf_hosts);
575 cfg_get_all_keys(&nf_hosts, "netflow.%s.host", br->name);
576 if (ofproto_set_netflow(br->ofproto, &nf_hosts, engine_type,
577 engine_id, add_id_to_iface)) {
578 VLOG_ERR("bridge %s: problem setting netflow collectors",
579 br->name);
580 }
581
582 /* Update the controller and related settings. It would be more
583 * straightforward to call this from bridge_reconfigure_one(), but we
584 * can't do it there for two reasons. First, and most importantly, at
585 * that point we don't know the dp_ifidx of any interfaces that have
586 * been added to the bridge (because we haven't actually added them to
587 * the datapath). Second, at that point we haven't set the datapath ID
588 * yet; when a controller is configured, resetting the datapath ID will
589 * immediately disconnect from the controller, so it's better to set
590 * the datapath ID before the controller. */
591 bridge_reconfigure_controller(br);
592 }
593 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
594 for (i = 0; i < br->n_ports; i++) {
595 struct port *port = br->ports[i];
596 port_update_vlan_compat(port);
597 }
598 }
599 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
600 brstp_reconfigure(br);
601 }
602}
603
604static void
605bridge_pick_local_hw_addr(struct bridge *br, uint8_t ea[ETH_ADDR_LEN],
606 const char **devname)
607{
608 uint64_t requested_ea;
609 size_t i, j;
610 int error;
611
612 *devname = NULL;
613
614 /* Did the user request a particular MAC? */
615 requested_ea = cfg_get_mac(0, "bridge.%s.mac", br->name);
616 if (requested_ea) {
617 eth_addr_from_uint64(requested_ea, ea);
618 if (eth_addr_is_multicast(ea)) {
619 VLOG_ERR("bridge %s: cannot set MAC address to multicast "
620 "address "ETH_ADDR_FMT, br->name, ETH_ADDR_ARGS(ea));
621 } else if (eth_addr_is_zero(ea)) {
622 VLOG_ERR("bridge %s: cannot set MAC address to zero", br->name);
623 } else {
624 return;
625 }
626 }
627
628 /* Otherwise choose the minimum MAC address among all of the interfaces.
629 * (Xen uses FE:FF:FF:FF:FF:FF for virtual interfaces so this will get the
630 * MAC of the physical interface in such an environment.) */
631 memset(ea, 0xff, sizeof ea);
632 for (i = 0; i < br->n_ports; i++) {
633 struct port *port = br->ports[i];
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634 uint8_t iface_ea[ETH_ADDR_LEN];
635 uint64_t iface_ea_u64;
636 struct iface *iface;
637
638 /* Mirror output ports don't participate. */
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639 if (port->is_mirror_output_port) {
640 continue;
641 }
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642
643 /* Choose the MAC address to represent the port. */
644 iface_ea_u64 = cfg_get_mac(0, "port.%s.mac", port->name);
645 if (iface_ea_u64) {
646 /* User specified explicitly. */
647 eth_addr_from_uint64(iface_ea_u64, iface_ea);
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648
649 /* Find the interface with this Ethernet address (if any) so that
650 * we can provide the correct devname to the caller. */
651 iface = NULL;
652 for (j = 0; j < port->n_ifaces; j++) {
653 struct iface *candidate = port->ifaces[j];
654 uint8_t candidate_ea[ETH_ADDR_LEN];
655 if (!netdev_nodev_get_etheraddr(candidate->name, candidate_ea)
656 && eth_addr_equals(iface_ea, candidate_ea)) {
657 iface = candidate;
658 }
659 }
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660 } else {
661 /* Choose the interface whose MAC address will represent the port.
662 * The Linux kernel bonding code always chooses the MAC address of
663 * the first slave added to a bond, and the Fedora networking
664 * scripts always add slaves to a bond in alphabetical order, so
665 * for compatibility we choose the interface with the name that is
666 * first in alphabetical order. */
667 iface = port->ifaces[0];
668 for (j = 1; j < port->n_ifaces; j++) {
669 struct iface *candidate = port->ifaces[j];
670 if (strcmp(candidate->name, iface->name) < 0) {
671 iface = candidate;
672 }
673 }
674
675 /* The local port doesn't count (since we're trying to choose its
676 * MAC address anyway). Other internal ports don't count because
677 * we really want a physical MAC if we can get it, and internal
678 * ports typically have randomly generated MACs. */
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679 if (iface->dp_ifidx == ODPP_LOCAL
680 || cfg_get_bool(0, "iface.%s.internal", iface->name)) {
681 continue;
682 }
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683
684 /* Grab MAC. */
064af421 685 error = netdev_nodev_get_etheraddr(iface->name, iface_ea);
58b7527e 686 if (error) {
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687 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
688 VLOG_ERR_RL(&rl, "failed to obtain Ethernet address of %s: %s",
689 iface->name, strerror(error));
58b7527e 690 continue;
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691 }
692 }
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693
694 /* Compare against our current choice. */
695 if (!eth_addr_is_multicast(iface_ea) &&
696 !eth_addr_is_reserved(iface_ea) &&
697 !eth_addr_is_zero(iface_ea) &&
698 memcmp(iface_ea, ea, ETH_ADDR_LEN) < 0)
699 {
700 memcpy(ea, iface_ea, ETH_ADDR_LEN);
ba09980a 701 *devname = iface ? iface->name : NULL;
58b7527e 702 }
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703 }
704 if (eth_addr_is_multicast(ea) || eth_addr_is_vif(ea)) {
705 memcpy(ea, br->default_ea, ETH_ADDR_LEN);
706 *devname = NULL;
707 VLOG_WARN("bridge %s: using default bridge Ethernet "
708 "address "ETH_ADDR_FMT, br->name, ETH_ADDR_ARGS(ea));
709 } else {
710 VLOG_DBG("bridge %s: using bridge Ethernet address "ETH_ADDR_FMT,
711 br->name, ETH_ADDR_ARGS(ea));
712 }
713}
714
715/* Choose and returns the datapath ID for bridge 'br' given that the bridge
716 * Ethernet address is 'bridge_ea'. If 'bridge_ea' is the Ethernet address of
717 * a network device, then that network device's name must be passed in as
718 * 'devname'; if 'bridge_ea' was derived some other way, then 'devname' must be
719 * passed in as a null pointer. */
720static uint64_t
721bridge_pick_datapath_id(struct bridge *br,
722 const uint8_t bridge_ea[ETH_ADDR_LEN],
723 const char *devname)
724{
725 /*
726 * The procedure for choosing a bridge MAC address will, in the most
727 * ordinary case, also choose a unique MAC that we can use as a datapath
728 * ID. In some special cases, though, multiple bridges will end up with
729 * the same MAC address. This is OK for the bridges, but it will confuse
730 * the OpenFlow controller, because each datapath needs a unique datapath
731 * ID.
732 *
733 * Datapath IDs must be unique. It is also very desirable that they be
734 * stable from one run to the next, so that policy set on a datapath
735 * "sticks".
736 */
737 uint64_t dpid;
738
739 dpid = cfg_get_dpid(0, "bridge.%s.datapath-id", br->name);
740 if (dpid) {
741 return dpid;
742 }
743
744 if (devname) {
745 int vlan;
746 if (!netdev_get_vlan_vid(devname, &vlan)) {
747 /*
748 * A bridge whose MAC address is taken from a VLAN network device
749 * (that is, a network device created with vconfig(8) or similar
750 * tool) will have the same MAC address as a bridge on the VLAN
751 * device's physical network device.
752 *
753 * Handle this case by hashing the physical network device MAC
754 * along with the VLAN identifier.
755 */
756 uint8_t buf[ETH_ADDR_LEN + 2];
757 memcpy(buf, bridge_ea, ETH_ADDR_LEN);
758 buf[ETH_ADDR_LEN] = vlan >> 8;
759 buf[ETH_ADDR_LEN + 1] = vlan;
760 return dpid_from_hash(buf, sizeof buf);
761 } else {
762 /*
763 * Assume that this bridge's MAC address is unique, since it
764 * doesn't fit any of the cases we handle specially.
765 */
766 }
767 } else {
768 /*
769 * A purely internal bridge, that is, one that has no non-virtual
770 * network devices on it at all, is more difficult because it has no
771 * natural unique identifier at all.
772 *
773 * When the host is a XenServer, we handle this case by hashing the
774 * host's UUID with the name of the bridge. Names of bridges are
775 * persistent across XenServer reboots, although they can be reused if
776 * an internal network is destroyed and then a new one is later
777 * created, so this is fairly effective.
778 *
779 * When the host is not a XenServer, we punt by using a random MAC
780 * address on each run.
781 */
782 const char *host_uuid = xenserver_get_host_uuid();
783 if (host_uuid) {
784 char *combined = xasprintf("%s,%s", host_uuid, br->name);
785 dpid = dpid_from_hash(combined, strlen(combined));
786 free(combined);
787 return dpid;
788 }
789 }
790
791 return eth_addr_to_uint64(bridge_ea);
792}
793
794static uint64_t
795dpid_from_hash(const void *data, size_t n)
796{
5eccf359 797 uint8_t hash[SHA1_DIGEST_SIZE];
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798
799 BUILD_ASSERT_DECL(sizeof hash >= ETH_ADDR_LEN);
5eccf359 800 sha1_bytes(data, n, hash);
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801 eth_addr_mark_random(hash);
802 return eth_addr_to_uint64(hash);
803}
804
805int
806bridge_run(void)
807{
808 struct bridge *br, *next;
809 int retval;
810
811 retval = 0;
812 LIST_FOR_EACH_SAFE (br, next, struct bridge, node, &all_bridges) {
813 int error = bridge_run_one(br);
814 if (error) {
815 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
816 VLOG_ERR_RL(&rl, "bridge %s: datapath was destroyed externally, "
817 "forcing reconfiguration", br->name);
818 if (!retval) {
819 retval = error;
820 }
821 }
822 }
823 return retval;
824}
825
826void
827bridge_wait(void)
828{
829 struct bridge *br;
830
831 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
832 ofproto_wait(br->ofproto);
833 if (br->controller) {
834 continue;
835 }
836
837 if (br->ml) {
838 mac_learning_wait(br->ml);
839 }
840 bond_wait(br);
841 brstp_wait(br);
842 }
843}
844
845/* Forces 'br' to revalidate all of its flows. This is appropriate when 'br''s
846 * configuration changes. */
847static void
848bridge_flush(struct bridge *br)
849{
850 COVERAGE_INC(bridge_flush);
851 br->flush = true;
852 if (br->ml) {
853 mac_learning_flush(br->ml);
854 }
855}
856\f
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857/* Bridge unixctl user interface functions. */
858static void
859bridge_unixctl_fdb_show(struct unixctl_conn *conn, const char *args)
860{
861 struct ds ds = DS_EMPTY_INITIALIZER;
862 const struct bridge *br;
863
864 br = bridge_lookup(args);
865 if (!br) {
866 unixctl_command_reply(conn, 501, "no such bridge");
867 return;
868 }
869
870 ds_put_cstr(&ds, " port VLAN MAC Age\n");
871 if (br->ml) {
872 const struct mac_entry *e;
873 LIST_FOR_EACH (e, struct mac_entry, lru_node, &br->ml->lrus) {
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874 if (e->port < 0 || e->port >= br->n_ports) {
875 continue;
876 }
8c4c1387 877 ds_put_format(&ds, "%5d %4d "ETH_ADDR_FMT" %3d\n",
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878 br->ports[e->port]->ifaces[0]->dp_ifidx,
879 e->vlan, ETH_ADDR_ARGS(e->mac), mac_entry_age(e));
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880 }
881 }
882 unixctl_command_reply(conn, 200, ds_cstr(&ds));
883 ds_destroy(&ds);
884}
885\f
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886/* Bridge reconfiguration functions. */
887
888static struct bridge *
889bridge_create(const char *name)
890{
891 struct bridge *br;
892 int error;
893
894 assert(!bridge_lookup(name));
895 br = xcalloc(1, sizeof *br);
896
897 error = dpif_create(name, &br->dpif);
898 if (error == EEXIST) {
899 error = dpif_open(name, &br->dpif);
900 if (error) {
901 VLOG_ERR("datapath %s already exists but cannot be opened: %s",
902 name, strerror(error));
903 free(br);
904 return NULL;
905 }
906 dpif_flow_flush(&br->dpif);
907 } else if (error) {
908 VLOG_ERR("failed to create datapath %s: %s", name, strerror(error));
909 free(br);
910 return NULL;
911 }
912
913 error = ofproto_create(name, &bridge_ofhooks, br, &br->ofproto);
914 if (error) {
915 VLOG_ERR("failed to create switch %s: %s", name, strerror(error));
916 dpif_delete(&br->dpif);
917 dpif_close(&br->dpif);
918 free(br);
919 return NULL;
920 }
921
922 br->name = xstrdup(name);
923 br->ml = mac_learning_create();
924 br->sent_config_request = false;
925 eth_addr_random(br->default_ea);
926
927 port_array_init(&br->ifaces);
928
929 br->flush = false;
930 br->bond_next_rebalance = time_msec() + 10000;
931
932 list_push_back(&all_bridges, &br->node);
933
934 VLOG_INFO("created bridge %s on dp%u", br->name, dpif_id(&br->dpif));
935
936 return br;
937}
938
939static void
940bridge_destroy(struct bridge *br)
941{
942 if (br) {
943 int error;
944
945 while (br->n_ports > 0) {
946 port_destroy(br->ports[br->n_ports - 1]);
947 }
948 list_remove(&br->node);
949 error = dpif_delete(&br->dpif);
950 if (error && error != ENOENT) {
951 VLOG_ERR("failed to delete dp%u: %s",
952 dpif_id(&br->dpif), strerror(error));
953 }
954 dpif_close(&br->dpif);
955 ofproto_destroy(br->ofproto);
956 free(br->controller);
957 mac_learning_destroy(br->ml);
958 port_array_destroy(&br->ifaces);
959 free(br->ports);
960 free(br->name);
961 free(br);
962 }
963}
964
965static struct bridge *
966bridge_lookup(const char *name)
967{
968 struct bridge *br;
969
970 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
971 if (!strcmp(br->name, name)) {
972 return br;
973 }
974 }
975 return NULL;
976}
977
978bool
979bridge_exists(const char *name)
980{
981 return bridge_lookup(name) ? true : false;
982}
983
984uint64_t
985bridge_get_datapathid(const char *name)
986{
987 struct bridge *br = bridge_lookup(name);
988 return br ? ofproto_get_datapath_id(br->ofproto) : 0;
989}
990
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991/* Handle requests for a listing of all flows known by the OpenFlow
992 * stack, including those normally hidden. */
993static void
994bridge_unixctl_dump_flows(struct unixctl_conn *conn, const char *args)
995{
996 struct bridge *br;
997 struct ds results;
998
999 br = bridge_lookup(args);
1000 if (!br) {
1001 unixctl_command_reply(conn, 501, "Unknown bridge");
1002 return;
1003 }
1004
1005 ds_init(&results);
1006 ofproto_get_all_flows(br->ofproto, &results);
1007
1008 unixctl_command_reply(conn, 200, ds_cstr(&results));
1009 ds_destroy(&results);
1010}
1011
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1012static int
1013bridge_run_one(struct bridge *br)
1014{
1015 int error;
1016
1017 error = ofproto_run1(br->ofproto);
1018 if (error) {
1019 return error;
1020 }
1021
1022 if (br->ml) {
1023 mac_learning_run(br->ml, ofproto_get_revalidate_set(br->ofproto));
1024 }
1025 bond_run(br);
1026 brstp_run(br);
1027
1028 error = ofproto_run2(br->ofproto, br->flush);
1029 br->flush = false;
1030
1031 return error;
1032}
1033
1034static const char *
1035bridge_get_controller(const struct bridge *br)
1036{
1037 const char *controller;
1038
1039 controller = cfg_get_string(0, "bridge.%s.controller", br->name);
1040 if (!controller) {
1041 controller = cfg_get_string(0, "mgmt.controller");
1042 }
1043 return controller && controller[0] ? controller : NULL;
1044}
1045
1046static void
1047bridge_reconfigure_one(struct bridge *br)
1048{
1049 struct svec old_ports, new_ports, ifaces;
1050 struct svec listeners, old_listeners;
1051 struct svec snoops, old_snoops;
1052 size_t i, j;
1053
1054 /* Collect old ports. */
1055 svec_init(&old_ports);
1056 for (i = 0; i < br->n_ports; i++) {
1057 svec_add(&old_ports, br->ports[i]->name);
1058 }
1059 svec_sort(&old_ports);
1060 assert(svec_is_unique(&old_ports));
1061
1062 /* Collect new ports. */
1063 svec_init(&new_ports);
1064 cfg_get_all_keys(&new_ports, "bridge.%s.port", br->name);
1065 svec_sort(&new_ports);
1066 if (bridge_get_controller(br) && !svec_contains(&new_ports, br->name)) {
1067 svec_add(&new_ports, br->name);
1068 svec_sort(&new_ports);
1069 }
1070 if (!svec_is_unique(&new_ports)) {
1071 VLOG_WARN("bridge %s: %s specified twice as bridge port",
1072 br->name, svec_get_duplicate(&new_ports));
1073 svec_unique(&new_ports);
1074 }
1075
1076 ofproto_set_mgmt_id(br->ofproto, mgmt_id);
1077
1078 /* Get rid of deleted ports and add new ports. */
1079 for (i = 0; i < br->n_ports; ) {
1080 struct port *port = br->ports[i];
1081 if (!svec_contains(&new_ports, port->name)) {
1082 port_destroy(port);
1083 } else {
1084 i++;
1085 }
1086 }
1087 for (i = 0; i < new_ports.n; i++) {
1088 const char *name = new_ports.names[i];
1089 if (!svec_contains(&old_ports, name)) {
1090 port_create(br, name);
1091 }
1092 }
1093 svec_destroy(&old_ports);
1094 svec_destroy(&new_ports);
1095
1096 /* Reconfigure all ports. */
1097 for (i = 0; i < br->n_ports; i++) {
1098 port_reconfigure(br->ports[i]);
1099 }
1100
1101 /* Check and delete duplicate interfaces. */
1102 svec_init(&ifaces);
1103 for (i = 0; i < br->n_ports; ) {
1104 struct port *port = br->ports[i];
1105 for (j = 0; j < port->n_ifaces; ) {
1106 struct iface *iface = port->ifaces[j];
1107 if (svec_contains(&ifaces, iface->name)) {
1108 VLOG_ERR("bridge %s: %s interface is on multiple ports, "
1109 "removing from %s",
1110 br->name, iface->name, port->name);
1111 iface_destroy(iface);
1112 } else {
1113 svec_add(&ifaces, iface->name);
1114 svec_sort(&ifaces);
1115 j++;
1116 }
1117 }
1118 if (!port->n_ifaces) {
1119 VLOG_ERR("%s port has no interfaces, dropping", port->name);
1120 port_destroy(port);
1121 } else {
1122 i++;
1123 }
1124 }
1125 svec_destroy(&ifaces);
1126
1127 /* Delete all flows if we're switching from connected to standalone or vice
1128 * versa. (XXX Should we delete all flows if we are switching from one
1129 * controller to another?) */
1130
1131 /* Configure OpenFlow management listeners. */
1132 svec_init(&listeners);
1133 cfg_get_all_strings(&listeners, "bridge.%s.openflow.listeners", br->name);
1134 if (!listeners.n) {
1135 svec_add_nocopy(&listeners, xasprintf("punix:%s/%s.mgmt",
1136 ovs_rundir, br->name));
1137 } else if (listeners.n == 1 && !strcmp(listeners.names[0], "none")) {
1138 svec_clear(&listeners);
1139 }
1140 svec_sort_unique(&listeners);
1141
1142 svec_init(&old_listeners);
1143 ofproto_get_listeners(br->ofproto, &old_listeners);
1144 svec_sort_unique(&old_listeners);
1145
1146 if (!svec_equal(&listeners, &old_listeners)) {
1147 ofproto_set_listeners(br->ofproto, &listeners);
1148 }
1149 svec_destroy(&listeners);
1150 svec_destroy(&old_listeners);
1151
1152 /* Configure OpenFlow controller connection snooping. */
1153 svec_init(&snoops);
1154 cfg_get_all_strings(&snoops, "bridge.%s.openflow.snoops", br->name);
1155 if (!snoops.n) {
1156 svec_add_nocopy(&snoops, xasprintf("punix:%s/%s.snoop",
1157 ovs_rundir, br->name));
1158 } else if (snoops.n == 1 && !strcmp(snoops.names[0], "none")) {
1159 svec_clear(&snoops);
1160 }
1161 svec_sort_unique(&snoops);
1162
1163 svec_init(&old_snoops);
1164 ofproto_get_snoops(br->ofproto, &old_snoops);
1165 svec_sort_unique(&old_snoops);
1166
1167 if (!svec_equal(&snoops, &old_snoops)) {
1168 ofproto_set_snoops(br->ofproto, &snoops);
1169 }
1170 svec_destroy(&snoops);
1171 svec_destroy(&old_snoops);
1172
1173 mirror_reconfigure(br);
1174}
1175
1176static void
1177bridge_reconfigure_controller(struct bridge *br)
1178{
1179 char *pfx = xasprintf("bridge.%s.controller", br->name);
1180 const char *controller;
1181
1182 controller = bridge_get_controller(br);
1183 if ((br->controller != NULL) != (controller != NULL)) {
1184 ofproto_flush_flows(br->ofproto);
1185 }
1186 free(br->controller);
1187 br->controller = controller ? xstrdup(controller) : NULL;
1188
1189 if (controller) {
1190 const char *fail_mode;
1191 int max_backoff, probe;
1192 int rate_limit, burst_limit;
1193
1194 if (!strcmp(controller, "discover")) {
a1525581
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1195 bool update_resolv_conf = true;
1196
1197 if (cfg_has("%s.update-resolv.conf", pfx)) {
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1198 update_resolv_conf = cfg_get_bool(0, "%s.update-resolv.conf",
1199 pfx);
a1525581 1200 }
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1201 ofproto_set_discovery(br->ofproto, true,
1202 cfg_get_string(0, "%s.accept-regex", pfx),
a1525581 1203 update_resolv_conf);
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1204 } else {
1205 struct netdev *netdev;
1206 bool in_band;
1207 int error;
1208
1209 in_band = (!cfg_is_valid(CFG_BOOL | CFG_REQUIRED,
1210 "%s.in-band", pfx)
1211 || cfg_get_bool(0, "%s.in-band", pfx));
1212 ofproto_set_discovery(br->ofproto, false, NULL, NULL);
1213 ofproto_set_in_band(br->ofproto, in_band);
1214
1215 error = netdev_open(br->name, NETDEV_ETH_TYPE_NONE, &netdev);
1216 if (!error) {
1217 if (cfg_is_valid(CFG_IP | CFG_REQUIRED, "%s.ip", pfx)) {
1218 struct in_addr ip, mask, gateway;
1219 ip.s_addr = cfg_get_ip(0, "%s.ip", pfx);
1220 mask.s_addr = cfg_get_ip(0, "%s.netmask", pfx);
1221 gateway.s_addr = cfg_get_ip(0, "%s.gateway", pfx);
1222
1223 netdev_turn_flags_on(netdev, NETDEV_UP, true);
1224 if (!mask.s_addr) {
1225 mask.s_addr = guess_netmask(ip.s_addr);
1226 }
1227 if (!netdev_set_in4(netdev, ip, mask)) {
1228 VLOG_INFO("bridge %s: configured IP address "IP_FMT", "
1229 "netmask "IP_FMT,
1230 br->name, IP_ARGS(&ip.s_addr),
1231 IP_ARGS(&mask.s_addr));
1232 }
1233
1234 if (gateway.s_addr) {
1235 if (!netdev_add_router(gateway)) {
1236 VLOG_INFO("bridge %s: configured gateway "IP_FMT,
1237 br->name, IP_ARGS(&gateway.s_addr));
1238 }
1239 }
1240 }
1241 netdev_close(netdev);
1242 }
1243 }
1244
1245 fail_mode = cfg_get_string(0, "%s.fail-mode", pfx);
1246 if (!fail_mode) {
1247 fail_mode = cfg_get_string(0, "mgmt.fail-mode");
1248 }
1249 ofproto_set_failure(br->ofproto,
1250 (!fail_mode
1251 || !strcmp(fail_mode, "standalone")
1252 || !strcmp(fail_mode, "open")));
1253
1254 probe = cfg_get_int(0, "%s.inactivity-probe", pfx);
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1255 if (probe < 5) {
1256 probe = cfg_get_int(0, "mgmt.inactivity-probe");
1257 if (probe < 5) {
f9fb1858 1258 probe = 5;
952efc48
JP
1259 }
1260 }
1261 ofproto_set_probe_interval(br->ofproto, probe);
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1262
1263 max_backoff = cfg_get_int(0, "%s.max-backoff", pfx);
1264 if (!max_backoff) {
1265 max_backoff = cfg_get_int(0, "mgmt.max-backoff");
1266 if (!max_backoff) {
c9aaa877 1267 max_backoff = 8;
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1268 }
1269 }
1270 ofproto_set_max_backoff(br->ofproto, max_backoff);
1271
1272 rate_limit = cfg_get_int(0, "%s.rate-limit", pfx);
1273 if (!rate_limit) {
1274 rate_limit = cfg_get_int(0, "mgmt.rate-limit");
1275 }
1276 burst_limit = cfg_get_int(0, "%s.burst-limit", pfx);
1277 if (!burst_limit) {
1278 burst_limit = cfg_get_int(0, "mgmt.burst-limit");
1279 }
1280 ofproto_set_rate_limit(br->ofproto, rate_limit, burst_limit);
1281
1282 ofproto_set_stp(br->ofproto, cfg_get_bool(0, "%s.stp", pfx));
1283
1284 if (cfg_has("%s.commands.acl", pfx)) {
1285 struct svec command_acls;
1286 char *command_acl;
1287
1288 svec_init(&command_acls);
1289 cfg_get_all_strings(&command_acls, "%s.commands.acl", pfx);
1290 command_acl = svec_join(&command_acls, ",", "");
1291
1292 ofproto_set_remote_execution(br->ofproto, command_acl,
1293 cfg_get_string(0, "%s.commands.dir",
1294 pfx));
1295
1296 svec_destroy(&command_acls);
1297 free(command_acl);
1298 } else {
1299 ofproto_set_remote_execution(br->ofproto, NULL, NULL);
1300 }
1301 } else {
1302 union ofp_action action;
1303 flow_t flow;
1304
1305 /* Set up a flow that matches every packet and directs them to
1306 * OFPP_NORMAL (which goes to us). */
1307 memset(&action, 0, sizeof action);
1308 action.type = htons(OFPAT_OUTPUT);
1309 action.output.len = htons(sizeof action);
1310 action.output.port = htons(OFPP_NORMAL);
1311 memset(&flow, 0, sizeof flow);
1312 ofproto_add_flow(br->ofproto, &flow, OFPFW_ALL, 0,
1313 &action, 1, 0);
1314
1315 ofproto_set_in_band(br->ofproto, false);
1316 ofproto_set_max_backoff(br->ofproto, 1);
1317 ofproto_set_probe_interval(br->ofproto, 5);
1318 ofproto_set_failure(br->ofproto, false);
1319 ofproto_set_stp(br->ofproto, false);
1320 }
1321 free(pfx);
1322
1323 ofproto_set_controller(br->ofproto, br->controller);
1324}
1325
1326static void
1327bridge_get_all_ifaces(const struct bridge *br, struct svec *ifaces)
1328{
1329 size_t i, j;
1330
1331 svec_init(ifaces);
1332 for (i = 0; i < br->n_ports; i++) {
1333 struct port *port = br->ports[i];
1334 for (j = 0; j < port->n_ifaces; j++) {
1335 struct iface *iface = port->ifaces[j];
1336 svec_add(ifaces, iface->name);
1337 }
35c979bf
BP
1338 if (port->n_ifaces > 1
1339 && cfg_get_bool(0, "bonding.%s.fake-iface", port->name)) {
1340 svec_add(ifaces, port->name);
1341 }
064af421 1342 }
35c979bf 1343 svec_sort_unique(ifaces);
064af421
BP
1344}
1345
1346/* For robustness, in case the administrator moves around datapath ports behind
1347 * our back, we re-check all the datapath port numbers here.
1348 *
1349 * This function will set the 'dp_ifidx' members of interfaces that have
1350 * disappeared to -1, so only call this function from a context where those
1351 * 'struct iface's will be removed from the bridge. Otherwise, the -1
1352 * 'dp_ifidx'es will cause trouble later when we try to send them to the
1353 * datapath, which doesn't support UINT16_MAX+1 ports. */
1354static void
1355bridge_fetch_dp_ifaces(struct bridge *br)
1356{
1357 struct odp_port *dpif_ports;
1358 size_t n_dpif_ports;
1359 size_t i, j;
1360
1361 /* Reset all interface numbers. */
1362 for (i = 0; i < br->n_ports; i++) {
1363 struct port *port = br->ports[i];
1364 for (j = 0; j < port->n_ifaces; j++) {
1365 struct iface *iface = port->ifaces[j];
1366 iface->dp_ifidx = -1;
1367 }
1368 }
1369 port_array_clear(&br->ifaces);
1370
1371 dpif_port_list(&br->dpif, &dpif_ports, &n_dpif_ports);
1372 for (i = 0; i < n_dpif_ports; i++) {
1373 struct odp_port *p = &dpif_ports[i];
1374 struct iface *iface = iface_lookup(br, p->devname);
1375 if (iface) {
1376 if (iface->dp_ifidx >= 0) {
1377 VLOG_WARN("dp%u reported interface %s twice",
1378 dpif_id(&br->dpif), p->devname);
1379 } else if (iface_from_dp_ifidx(br, p->port)) {
1380 VLOG_WARN("dp%u reported interface %"PRIu16" twice",
1381 dpif_id(&br->dpif), p->port);
1382 } else {
1383 port_array_set(&br->ifaces, p->port, iface);
1384 iface->dp_ifidx = p->port;
1385 }
1386 }
1387 }
1388 free(dpif_ports);
1389}
1390\f
1391/* Bridge packet processing functions. */
1392
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1393static int
1394bond_hash(const uint8_t mac[ETH_ADDR_LEN])
1395{
1396 return hash_bytes(mac, ETH_ADDR_LEN, 0) & BOND_MASK;
1397}
1398
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1399static struct bond_entry *
1400lookup_bond_entry(const struct port *port, const uint8_t mac[ETH_ADDR_LEN])
1401{
da285df4 1402 return &port->bond_hash[bond_hash(mac)];
064af421
BP
1403}
1404
1405static int
1406bond_choose_iface(const struct port *port)
1407{
1408 size_t i;
1409 for (i = 0; i < port->n_ifaces; i++) {
1410 if (port->ifaces[i]->enabled) {
1411 return i;
1412 }
1413 }
1414 return -1;
1415}
1416
1417static bool
2303f3b2 1418choose_output_iface(const struct port *port, const uint8_t *dl_src,
064af421
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1419 uint16_t *dp_ifidx, tag_type *tags)
1420{
1421 struct iface *iface;
1422
1423 assert(port->n_ifaces);
1424 if (port->n_ifaces == 1) {
1425 iface = port->ifaces[0];
1426 } else {
2303f3b2 1427 struct bond_entry *e = lookup_bond_entry(port, dl_src);
064af421
BP
1428 if (e->iface_idx < 0 || e->iface_idx >= port->n_ifaces
1429 || !port->ifaces[e->iface_idx]->enabled) {
1430 /* XXX select interface properly. The current interface selection
1431 * is only good for testing the rebalancing code. */
1432 e->iface_idx = bond_choose_iface(port);
1433 if (e->iface_idx < 0) {
1434 *tags |= port->no_ifaces_tag;
1435 return false;
1436 }
1437 e->iface_tag = tag_create_random();
85c74638 1438 ((struct port *) port)->bond_compat_is_stale = true;
064af421
BP
1439 }
1440 *tags |= e->iface_tag;
1441 iface = port->ifaces[e->iface_idx];
1442 }
1443 *dp_ifidx = iface->dp_ifidx;
1444 *tags |= iface->tag; /* Currently only used for bonding. */
1445 return true;
1446}
1447
1448static void
1449bond_link_status_update(struct iface *iface, bool carrier)
1450{
1451 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
1452 struct port *port = iface->port;
1453
1454 if ((carrier == iface->enabled) == (iface->delay_expires == LLONG_MAX)) {
1455 /* Nothing to do. */
1456 return;
1457 }
1458 VLOG_INFO_RL(&rl, "interface %s: carrier %s",
1459 iface->name, carrier ? "detected" : "dropped");
1460 if (carrier == iface->enabled) {
1461 iface->delay_expires = LLONG_MAX;
1462 VLOG_INFO_RL(&rl, "interface %s: will not be %s",
1463 iface->name, carrier ? "disabled" : "enabled");
25ce84b2
BP
1464 } else if (carrier && port->updelay && port->active_iface < 0) {
1465 iface->delay_expires = time_msec();
1466 VLOG_INFO_RL(&rl, "interface %s: skipping %d ms updelay since no "
1467 "other interface is up", iface->name, port->updelay);
064af421
BP
1468 } else {
1469 int delay = carrier ? port->updelay : port->downdelay;
1470 iface->delay_expires = time_msec() + delay;
1471 if (delay) {
1472 VLOG_INFO_RL(&rl,
1473 "interface %s: will be %s if it stays %s for %d ms",
1474 iface->name,
1475 carrier ? "enabled" : "disabled",
1476 carrier ? "up" : "down",
1477 delay);
1478 }
1479 }
1480}
1481
1482static void
1483bond_choose_active_iface(struct port *port)
1484{
1485 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
1486
1487 port->active_iface = bond_choose_iface(port);
1488 port->active_iface_tag = tag_create_random();
1489 if (port->active_iface >= 0) {
1490 VLOG_INFO_RL(&rl, "port %s: active interface is now %s",
1491 port->name, port->ifaces[port->active_iface]->name);
1492 } else {
1493 VLOG_WARN_RL(&rl, "port %s: all ports disabled, no active interface",
1494 port->name);
1495 }
1496}
1497
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1498static void
1499bond_enable_slave(struct iface *iface, bool enable)
1500{
1501 struct port *port = iface->port;
1502 struct bridge *br = port->bridge;
1503
1504 iface->delay_expires = LLONG_MAX;
1505 if (enable == iface->enabled) {
1506 return;
1507 }
1508
1509 iface->enabled = enable;
1510 if (!iface->enabled) {
17ea75b2 1511 VLOG_WARN("interface %s: disabled", iface->name);
da285df4
BP
1512 ofproto_revalidate(br->ofproto, iface->tag);
1513 if (iface->port_ifidx == port->active_iface) {
1514 ofproto_revalidate(br->ofproto,
1515 port->active_iface_tag);
1516 bond_choose_active_iface(port);
1517 }
1518 bond_send_learning_packets(port);
1519 } else {
17ea75b2 1520 VLOG_WARN("interface %s: enabled", iface->name);
da285df4
BP
1521 if (port->active_iface < 0) {
1522 ofproto_revalidate(br->ofproto, port->no_ifaces_tag);
1523 bond_choose_active_iface(port);
1524 bond_send_learning_packets(port);
1525 }
1526 iface->tag = tag_create_random();
1527 }
2e8873af 1528 port_update_bond_compat(port);
da285df4
BP
1529}
1530
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1531static void
1532bond_run(struct bridge *br)
1533{
1534 size_t i, j;
1535
1536 for (i = 0; i < br->n_ports; i++) {
1537 struct port *port = br->ports[i];
85c74638
BP
1538
1539 if (port->bond_compat_is_stale) {
1540 port->bond_compat_is_stale = false;
1541 port_update_bond_compat(port);
1542 }
1543
064af421
BP
1544 if (port->n_ifaces < 2) {
1545 continue;
1546 }
1547 for (j = 0; j < port->n_ifaces; j++) {
1548 struct iface *iface = port->ifaces[j];
1549 if (time_msec() >= iface->delay_expires) {
da285df4 1550 bond_enable_slave(iface, !iface->enabled);
064af421
BP
1551 }
1552 }
1553 }
1554}
1555
1556static void
1557bond_wait(struct bridge *br)
1558{
1559 size_t i, j;
1560
1561 for (i = 0; i < br->n_ports; i++) {
1562 struct port *port = br->ports[i];
1563 if (port->n_ifaces < 2) {
1564 continue;
1565 }
1566 for (j = 0; j < port->n_ifaces; j++) {
1567 struct iface *iface = port->ifaces[j];
1568 if (iface->delay_expires != LLONG_MAX) {
1569 poll_timer_wait(iface->delay_expires - time_msec());
1570 }
1571 }
1572 }
1573}
1574
1575static bool
1576set_dst(struct dst *p, const flow_t *flow,
1577 const struct port *in_port, const struct port *out_port,
1578 tag_type *tags)
1579{
1580 /* STP handling.
1581 *
1582 * XXX This uses too many tags: any broadcast flow will get one tag per
1583 * destination port, and thus a broadcast on a switch of any size is likely
1584 * to have all tag bits set. We should figure out a way to be smarter.
1585 *
1586 * This is OK when STP is disabled, because stp_state_tag is 0 then. */
1587 *tags |= out_port->stp_state_tag;
1588 if (!(out_port->stp_state & (STP_DISABLED | STP_FORWARDING))) {
1589 return false;
1590 }
1591
1592 p->vlan = (out_port->vlan >= 0 ? OFP_VLAN_NONE
1593 : in_port->vlan >= 0 ? in_port->vlan
1594 : ntohs(flow->dl_vlan));
2303f3b2 1595 return choose_output_iface(out_port, flow->dl_src, &p->dp_ifidx, tags);
064af421
BP
1596}
1597
1598static void
1599swap_dst(struct dst *p, struct dst *q)
1600{
1601 struct dst tmp = *p;
1602 *p = *q;
1603 *q = tmp;
1604}
1605
1606/* Moves all the dsts with vlan == 'vlan' to the front of the 'n_dsts' in
1607 * 'dsts'. (This may help performance by reducing the number of VLAN changes
1608 * that we push to the datapath. We could in fact fully sort the array by
1609 * vlan, but in most cases there are at most two different vlan tags so that's
1610 * possibly overkill.) */
1611static void
1612partition_dsts(struct dst *dsts, size_t n_dsts, int vlan)
1613{
1614 struct dst *first = dsts;
1615 struct dst *last = dsts + n_dsts;
1616
1617 while (first != last) {
1618 /* Invariants:
1619 * - All dsts < first have vlan == 'vlan'.
1620 * - All dsts >= last have vlan != 'vlan'.
1621 * - first < last. */
1622 while (first->vlan == vlan) {
1623 if (++first == last) {
1624 return;
1625 }
1626 }
1627
1628 /* Same invariants, plus one additional:
1629 * - first->vlan != vlan.
1630 */
1631 while (last[-1].vlan != vlan) {
1632 if (--last == first) {
1633 return;
1634 }
1635 }
1636
1637 /* Same invariants, plus one additional:
1638 * - last[-1].vlan == vlan.*/
1639 swap_dst(first++, --last);
1640 }
1641}
1642
1643static int
1644mirror_mask_ffs(mirror_mask_t mask)
1645{
1646 BUILD_ASSERT_DECL(sizeof(unsigned int) >= sizeof(mask));
1647 return ffs(mask);
1648}
1649
1650static bool
1651dst_is_duplicate(const struct dst *dsts, size_t n_dsts,
1652 const struct dst *test)
1653{
1654 size_t i;
1655 for (i = 0; i < n_dsts; i++) {
1656 if (dsts[i].vlan == test->vlan && dsts[i].dp_ifidx == test->dp_ifidx) {
1657 return true;
1658 }
1659 }
1660 return false;
1661}
1662
1663static bool
1664port_trunks_vlan(const struct port *port, uint16_t vlan)
1665{
1666 return port->vlan < 0 && bitmap_is_set(port->trunks, vlan);
1667}
1668
1669static bool
1670port_includes_vlan(const struct port *port, uint16_t vlan)
1671{
1672 return vlan == port->vlan || port_trunks_vlan(port, vlan);
1673}
1674
1675static size_t
1676compose_dsts(const struct bridge *br, const flow_t *flow, uint16_t vlan,
1677 const struct port *in_port, const struct port *out_port,
1678 struct dst dsts[], tag_type *tags)
1679{
1680 mirror_mask_t mirrors = in_port->src_mirrors;
1681 struct dst *dst = dsts;
1682 size_t i;
1683
1684 *tags |= in_port->stp_state_tag;
1685 if (out_port == FLOOD_PORT) {
1686 /* XXX use ODP_FLOOD if no vlans or bonding. */
1687 /* XXX even better, define each VLAN as a datapath port group */
1688 for (i = 0; i < br->n_ports; i++) {
1689 struct port *port = br->ports[i];
1690 if (port != in_port && port_includes_vlan(port, vlan)
1691 && !port->is_mirror_output_port
1692 && set_dst(dst, flow, in_port, port, tags)) {
1693 mirrors |= port->dst_mirrors;
1694 dst++;
1695 }
1696 }
1697 } else if (out_port && set_dst(dst, flow, in_port, out_port, tags)) {
1698 mirrors |= out_port->dst_mirrors;
1699 dst++;
1700 }
1701
1702 while (mirrors) {
1703 struct mirror *m = br->mirrors[mirror_mask_ffs(mirrors) - 1];
1704 if (!m->n_vlans || vlan_is_mirrored(m, vlan)) {
1705 if (m->out_port) {
1706 if (set_dst(dst, flow, in_port, m->out_port, tags)
1707 && !dst_is_duplicate(dsts, dst - dsts, dst)) {
1708 dst++;
1709 }
1710 } else {
1711 for (i = 0; i < br->n_ports; i++) {
1712 struct port *port = br->ports[i];
1713 if (port_includes_vlan(port, m->out_vlan)
274de4d2 1714 && set_dst(dst, flow, in_port, port, tags))
064af421
BP
1715 {
1716 if (port->vlan < 0) {
1717 dst->vlan = m->out_vlan;
1718 }
274de4d2
BP
1719 if (dst_is_duplicate(dsts, dst - dsts, dst)) {
1720 continue;
1721 }
064af421
BP
1722 if (dst->dp_ifidx == flow->in_port
1723 && dst->vlan == vlan) {
1724 /* Don't send out input port on same VLAN. */
1725 continue;
1726 }
1727 dst++;
1728 }
1729 }
1730 }
1731 }
1732 mirrors &= mirrors - 1;
1733 }
1734
1735 partition_dsts(dsts, dst - dsts, ntohs(flow->dl_vlan));
1736 return dst - dsts;
1737}
1738
1739static void UNUSED
1740print_dsts(const struct dst *dsts, size_t n)
1741{
1742 for (; n--; dsts++) {
1743 printf(">p%"PRIu16, dsts->dp_ifidx);
1744 if (dsts->vlan != OFP_VLAN_NONE) {
1745 printf("v%"PRIu16, dsts->vlan);
1746 }
1747 }
1748}
1749
1750static void
1751compose_actions(struct bridge *br, const flow_t *flow, uint16_t vlan,
1752 const struct port *in_port, const struct port *out_port,
1753 tag_type *tags, struct odp_actions *actions)
1754{
1755 struct dst dsts[DP_MAX_PORTS * (MAX_MIRRORS + 1)];
1756 size_t n_dsts;
1757 const struct dst *p;
1758 uint16_t cur_vlan;
1759
1760 n_dsts = compose_dsts(br, flow, vlan, in_port, out_port, dsts, tags);
1761
1762 cur_vlan = ntohs(flow->dl_vlan);
1763 for (p = dsts; p < &dsts[n_dsts]; p++) {
1764 union odp_action *a;
1765 if (p->vlan != cur_vlan) {
1766 if (p->vlan == OFP_VLAN_NONE) {
1767 odp_actions_add(actions, ODPAT_STRIP_VLAN);
1768 } else {
1769 a = odp_actions_add(actions, ODPAT_SET_VLAN_VID);
1770 a->vlan_vid.vlan_vid = htons(p->vlan);
1771 }
1772 cur_vlan = p->vlan;
1773 }
1774 a = odp_actions_add(actions, ODPAT_OUTPUT);
1775 a->output.port = p->dp_ifidx;
1776 }
1777}
1778
1779static bool
1780is_bcast_arp_reply(const flow_t *flow, const struct ofpbuf *packet)
1781{
1782 struct arp_eth_header *arp = (struct arp_eth_header *) packet->data;
1783 return (flow->dl_type == htons(ETH_TYPE_ARP)
1784 && eth_addr_is_broadcast(flow->dl_dst)
1785 && packet->size >= sizeof(struct arp_eth_header)
1786 && arp->ar_op == ARP_OP_REQUEST);
1787}
1788
1789/* If the composed actions may be applied to any packet in the given 'flow',
1790 * returns true. Otherwise, the actions should only be applied to 'packet', or
1791 * not at all, if 'packet' was NULL. */
1792static bool
1793process_flow(struct bridge *br, const flow_t *flow,
1794 const struct ofpbuf *packet, struct odp_actions *actions,
1795 tag_type *tags)
1796{
1797 struct iface *in_iface;
1798 struct port *in_port;
1799 struct port *out_port = NULL; /* By default, drop the packet/flow. */
1800 int vlan;
1801
1802 /* Find the interface and port structure for the received packet. */
1803 in_iface = iface_from_dp_ifidx(br, flow->in_port);
1804 if (!in_iface) {
1805 /* No interface? Something fishy... */
1806 if (packet != NULL) {
1807 /* Odd. A few possible reasons here:
1808 *
1809 * - We deleted an interface but there are still a few packets
1810 * queued up from it.
1811 *
1812 * - Someone externally added an interface (e.g. with "ovs-dpctl
1813 * add-if") that we don't know about.
1814 *
1815 * - Packet arrived on the local port but the local port is not
1816 * one of our bridge ports.
1817 */
1818 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1819
1820 VLOG_WARN_RL(&rl, "bridge %s: received packet on unknown "
1821 "interface %"PRIu16, br->name, flow->in_port);
1822 }
1823
1824 /* Return without adding any actions, to drop packets on this flow. */
1825 return true;
1826 }
1827 in_port = in_iface->port;
1828
1829 /* Figure out what VLAN this packet belongs to.
1830 *
1831 * Note that dl_vlan of 0 and of OFP_VLAN_NONE both mean that the packet
1832 * belongs to VLAN 0, so we should treat both cases identically. (In the
1833 * former case, the packet has an 802.1Q header that specifies VLAN 0,
1834 * presumably to allow a priority to be specified. In the latter case, the
1835 * packet does not have any 802.1Q header.) */
1836 vlan = ntohs(flow->dl_vlan);
1837 if (vlan == OFP_VLAN_NONE) {
1838 vlan = 0;
1839 }
1840 if (in_port->vlan >= 0) {
1841 if (vlan) {
1842 /* XXX support double tagging? */
1843 if (packet != NULL) {
1844 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1845 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %"PRIu16" tagged "
1846 "packet received on port %s configured with "
1847 "implicit VLAN %"PRIu16,
1848 br->name, ntohs(flow->dl_vlan),
1849 in_port->name, in_port->vlan);
1850 }
1851 goto done;
1852 }
1853 vlan = in_port->vlan;
1854 } else {
1855 if (!port_includes_vlan(in_port, vlan)) {
1856 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1857 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %d tagged "
1858 "packet received on port %s not configured for "
1859 "trunking VLAN %d",
1860 br->name, vlan, in_port->name, vlan);
1861 goto done;
1862 }
1863 }
1864
1865 /* Drop frames for ports that STP wants entirely killed (both for
1866 * forwarding and for learning). Later, after we do learning, we'll drop
1867 * the frames that STP wants to do learning but not forwarding on. */
1868 if (in_port->stp_state & (STP_LISTENING | STP_BLOCKING)) {
1869 goto done;
1870 }
1871
1872 /* Drop frames for reserved multicast addresses. */
1873 if (eth_addr_is_reserved(flow->dl_dst)) {
1874 goto done;
1875 }
1876
1877 /* Drop frames on ports reserved for mirroring. */
1878 if (in_port->is_mirror_output_port) {
1879 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1880 VLOG_WARN_RL(&rl, "bridge %s: dropping packet received on port %s, "
1881 "which is reserved exclusively for mirroring",
1882 br->name, in_port->name);
1883 goto done;
1884 }
1885
c93b1d6a 1886 /* Multicast (and broadcast) packets on bonds need special attention, to
064af421
BP
1887 * avoid receiving duplicates. */
1888 if (in_port->n_ifaces > 1 && eth_addr_is_multicast(flow->dl_dst)) {
1889 *tags |= in_port->active_iface_tag;
1890 if (in_port->active_iface != in_iface->port_ifidx) {
c93b1d6a 1891 /* Drop all multicast packets on inactive slaves. */
064af421 1892 goto done;
c93b1d6a
BP
1893 } else {
1894 /* Drop all multicast packets for which we have learned a different
b1040b17 1895 * input port, because we probably sent the packet on one slave
c93b1d6a
BP
1896 * and got it back on the active slave. Broadcast ARP replies are
1897 * an exception to this rule: the host has moved to another
1898 * switch. */
1899 int src_idx = mac_learning_lookup(br->ml, flow->dl_src, vlan);
e2ead27a
BP
1900 if (src_idx != -1 && src_idx != in_port->port_idx) {
1901 if (packet) {
1902 if (!is_bcast_arp_reply(flow, packet)) {
1903 goto done;
1904 }
1905 } else {
1906 /* No way to know whether it's an ARP reply, because the
1907 * flow entry doesn't include enough information and we
1908 * don't have a packet. Punt. */
1909 return false;
1910 }
c93b1d6a 1911 }
064af421
BP
1912 }
1913 }
1914
1915 /* MAC learning. */
1916 out_port = FLOOD_PORT;
1917 if (br->ml) {
1918 int out_port_idx;
064af421 1919
c93b1d6a
BP
1920 /* Learn source MAC (but don't try to learn from revalidation). */
1921 if (packet) {
064af421
BP
1922 tag_type rev_tag = mac_learning_learn(br->ml, flow->dl_src,
1923 vlan, in_port->port_idx);
1924 if (rev_tag) {
1925 /* The log messages here could actually be useful in debugging,
1926 * so keep the rate limit relatively high. */
1927 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(30,
1928 300);
1929 VLOG_DBG_RL(&rl, "bridge %s: learned that "ETH_ADDR_FMT" is "
1930 "on port %s in VLAN %d",
1931 br->name, ETH_ADDR_ARGS(flow->dl_src),
1932 in_port->name, vlan);
1933 ofproto_revalidate(br->ofproto, rev_tag);
1934 }
1935 }
1936
1937 /* Determine output port. */
1938 out_port_idx = mac_learning_lookup_tag(br->ml, flow->dl_dst, vlan,
1939 tags);
1940 if (out_port_idx >= 0 && out_port_idx < br->n_ports) {
1941 out_port = br->ports[out_port_idx];
1942 }
1943 }
1944
1945 /* Don't send packets out their input ports. Don't forward frames that STP
1946 * wants us to discard. */
1947 if (in_port == out_port || in_port->stp_state == STP_LEARNING) {
1948 out_port = NULL;
1949 }
1950
1951done:
1952 compose_actions(br, flow, vlan, in_port, out_port, tags, actions);
1953
1954 /*
1955 * We send out only a single packet, instead of setting up a flow, if the
1956 * packet is an ARP directed to broadcast that arrived on a bonded
1957 * interface. In such a situation ARP requests and replies must be handled
1958 * differently, but OpenFlow unfortunately can't distinguish them.
1959 */
1960 return (in_port->n_ifaces < 2
1961 || flow->dl_type != htons(ETH_TYPE_ARP)
1962 || !eth_addr_is_broadcast(flow->dl_dst));
1963}
1964
1965/* Careful: 'opp' is in host byte order and opp->port_no is an OFP port
1966 * number. */
1967static void
1968bridge_port_changed_ofhook_cb(enum ofp_port_reason reason,
1969 const struct ofp_phy_port *opp,
1970 void *br_)
1971{
1972 struct bridge *br = br_;
1973 struct iface *iface;
1974 struct port *port;
1975
1976 iface = iface_from_dp_ifidx(br, ofp_port_to_odp_port(opp->port_no));
1977 if (!iface) {
1978 return;
1979 }
1980 port = iface->port;
1981
1982 if (reason == OFPPR_DELETE) {
1983 VLOG_WARN("bridge %s: interface %s deleted unexpectedly",
1984 br->name, iface->name);
1985 iface_destroy(iface);
1986 if (!port->n_ifaces) {
1987 VLOG_WARN("bridge %s: port %s has no interfaces, dropping",
1988 br->name, port->name);
1989 port_destroy(port);
1990 }
1991
1992 bridge_flush(br);
1993 } else {
1994 memcpy(iface->mac, opp->hw_addr, ETH_ADDR_LEN);
1995 if (port->n_ifaces > 1) {
1996 bool up = !(opp->state & OFPPS_LINK_DOWN);
1997 bond_link_status_update(iface, up);
1998 port_update_bond_compat(port);
1999 }
2000 }
2001}
2002
2003static bool
2004bridge_normal_ofhook_cb(const flow_t *flow, const struct ofpbuf *packet,
2005 struct odp_actions *actions, tag_type *tags, void *br_)
2006{
2007 struct bridge *br = br_;
2008
2009#if 0
2010 if (flow->dl_type == htons(OFP_DL_TYPE_NOT_ETH_TYPE)
2011 && eth_addr_equals(flow->dl_dst, stp_eth_addr)) {
2012 brstp_receive(br, flow, payload);
2013 return true;
2014 }
2015#endif
2016
2017 COVERAGE_INC(bridge_process_flow);
2018 return process_flow(br, flow, packet, actions, tags);
2019}
2020
2021static void
2022bridge_account_flow_ofhook_cb(const flow_t *flow,
2023 const union odp_action *actions,
2024 size_t n_actions, unsigned long long int n_bytes,
2025 void *br_)
2026{
2027 struct bridge *br = br_;
2028 const union odp_action *a;
2029
2030 if (!br->has_bonded_ports) {
2031 return;
2032 }
2033
2034 for (a = actions; a < &actions[n_actions]; a++) {
2035 if (a->type == ODPAT_OUTPUT) {
2036 struct port *port = port_from_dp_ifidx(br, a->output.port);
2037 if (port && port->n_ifaces >= 2) {
2038 struct bond_entry *e = lookup_bond_entry(port, flow->dl_src);
2039 e->tx_bytes += n_bytes;
2040 }
2041 }
2042 }
2043}
2044
2045static void
2046bridge_account_checkpoint_ofhook_cb(void *br_)
2047{
2048 struct bridge *br = br_;
2049 size_t i;
2050
2051 if (!br->has_bonded_ports) {
2052 return;
2053 }
2054
2055 /* The current ofproto implementation calls this callback at least once a
2056 * second, so this timer implementation is sufficient. */
2057 if (time_msec() < br->bond_next_rebalance) {
2058 return;
2059 }
2060 br->bond_next_rebalance = time_msec() + 10000;
2061
2062 for (i = 0; i < br->n_ports; i++) {
2063 struct port *port = br->ports[i];
2064 if (port->n_ifaces > 1) {
2065 bond_rebalance_port(port);
2066 }
2067 }
2068}
2069
2070static struct ofhooks bridge_ofhooks = {
2071 bridge_port_changed_ofhook_cb,
2072 bridge_normal_ofhook_cb,
2073 bridge_account_flow_ofhook_cb,
2074 bridge_account_checkpoint_ofhook_cb,
2075};
2076\f
2303f3b2
BP
2077/* Bonding functions. */
2078
064af421
BP
2079/* Statistics for a single interface on a bonded port, used for load-based
2080 * bond rebalancing. */
2081struct slave_balance {
2082 struct iface *iface; /* The interface. */
2083 uint64_t tx_bytes; /* Sum of hashes[*]->tx_bytes. */
2084
2085 /* All the "bond_entry"s that are assigned to this interface, in order of
2086 * increasing tx_bytes. */
2087 struct bond_entry **hashes;
2088 size_t n_hashes;
2089};
2090
2091/* Sorts pointers to pointers to bond_entries in ascending order by the
2092 * interface to which they are assigned, and within a single interface in
2093 * ascending order of bytes transmitted. */
2094static int
2095compare_bond_entries(const void *a_, const void *b_)
2096{
2097 const struct bond_entry *const *ap = a_;
2098 const struct bond_entry *const *bp = b_;
2099 const struct bond_entry *a = *ap;
2100 const struct bond_entry *b = *bp;
2101 if (a->iface_idx != b->iface_idx) {
2102 return a->iface_idx > b->iface_idx ? 1 : -1;
2103 } else if (a->tx_bytes != b->tx_bytes) {
2104 return a->tx_bytes > b->tx_bytes ? 1 : -1;
2105 } else {
2106 return 0;
2107 }
2108}
2109
2110/* Sorts slave_balances so that enabled ports come first, and otherwise in
2111 * *descending* order by number of bytes transmitted. */
2112static int
2113compare_slave_balance(const void *a_, const void *b_)
2114{
2115 const struct slave_balance *a = a_;
2116 const struct slave_balance *b = b_;
2117 if (a->iface->enabled != b->iface->enabled) {
2118 return a->iface->enabled ? -1 : 1;
2119 } else if (a->tx_bytes != b->tx_bytes) {
2120 return a->tx_bytes > b->tx_bytes ? -1 : 1;
2121 } else {
2122 return 0;
2123 }
2124}
2125
2126static void
2127swap_bals(struct slave_balance *a, struct slave_balance *b)
2128{
2129 struct slave_balance tmp = *a;
2130 *a = *b;
2131 *b = tmp;
2132}
2133
2134/* Restores the 'n_bals' slave_balance structures in 'bals' to sorted order
2135 * given that 'p' (and only 'p') might be in the wrong location.
2136 *
2137 * This function invalidates 'p', since it might now be in a different memory
2138 * location. */
2139static void
2140resort_bals(struct slave_balance *p,
2141 struct slave_balance bals[], size_t n_bals)
2142{
2143 if (n_bals > 1) {
2144 for (; p > bals && p->tx_bytes > p[-1].tx_bytes; p--) {
2145 swap_bals(p, p - 1);
2146 }
2147 for (; p < &bals[n_bals - 1] && p->tx_bytes < p[1].tx_bytes; p++) {
2148 swap_bals(p, p + 1);
2149 }
2150 }
2151}
2152
2153static void
2154log_bals(const struct slave_balance *bals, size_t n_bals, struct port *port)
2155{
2156 if (VLOG_IS_DBG_ENABLED()) {
2157 struct ds ds = DS_EMPTY_INITIALIZER;
2158 const struct slave_balance *b;
2159
2160 for (b = bals; b < bals + n_bals; b++) {
2161 size_t i;
2162
2163 if (b > bals) {
2164 ds_put_char(&ds, ',');
2165 }
2166 ds_put_format(&ds, " %s %"PRIu64"kB",
2167 b->iface->name, b->tx_bytes / 1024);
2168
2169 if (!b->iface->enabled) {
2170 ds_put_cstr(&ds, " (disabled)");
2171 }
2172 if (b->n_hashes > 0) {
2173 ds_put_cstr(&ds, " (");
2174 for (i = 0; i < b->n_hashes; i++) {
2175 const struct bond_entry *e = b->hashes[i];
2176 if (i > 0) {
2177 ds_put_cstr(&ds, " + ");
2178 }
2179 ds_put_format(&ds, "h%td: %"PRIu64"kB",
2180 e - port->bond_hash, e->tx_bytes / 1024);
2181 }
2182 ds_put_cstr(&ds, ")");
2183 }
2184 }
2185 VLOG_DBG("bond %s:%s", port->name, ds_cstr(&ds));
2186 ds_destroy(&ds);
2187 }
2188}
2189
2190/* Shifts 'hash' from 'from' to 'to' within 'port'. */
2191static void
2192bond_shift_load(struct slave_balance *from, struct slave_balance *to,
2193 struct bond_entry *hash)
2194{
2195 struct port *port = from->iface->port;
2196 uint64_t delta = hash->tx_bytes;
2197
2198 VLOG_INFO("bond %s: shift %"PRIu64"kB of load (with hash %td) "
2199 "from %s to %s (now carrying %"PRIu64"kB and "
2200 "%"PRIu64"kB load, respectively)",
2201 port->name, delta / 1024, hash - port->bond_hash,
2202 from->iface->name, to->iface->name,
2203 (from->tx_bytes - delta) / 1024,
2204 (to->tx_bytes + delta) / 1024);
2205
2206 /* Delete element from from->hashes.
2207 *
2208 * We don't bother to add the element to to->hashes because not only would
2209 * it require more work, the only purpose it would be to allow that hash to
2210 * be migrated to another slave in this rebalancing run, and there is no
2211 * point in doing that. */
2212 if (from->hashes[0] == hash) {
2213 from->hashes++;
2214 } else {
2215 int i = hash - from->hashes[0];
2216 memmove(from->hashes + i, from->hashes + i + 1,
2217 (from->n_hashes - (i + 1)) * sizeof *from->hashes);
2218 }
2219 from->n_hashes--;
2220
2221 /* Shift load away from 'from' to 'to'. */
2222 from->tx_bytes -= delta;
2223 to->tx_bytes += delta;
2224
2225 /* Arrange for flows to be revalidated. */
2226 ofproto_revalidate(port->bridge->ofproto, hash->iface_tag);
2227 hash->iface_idx = to->iface->port_ifidx;
2228 hash->iface_tag = tag_create_random();
064af421
BP
2229}
2230
2231static void
2232bond_rebalance_port(struct port *port)
2233{
2234 struct slave_balance bals[DP_MAX_PORTS];
2235 size_t n_bals;
2236 struct bond_entry *hashes[BOND_MASK + 1];
2237 struct slave_balance *b, *from, *to;
2238 struct bond_entry *e;
2239 size_t i;
2240
2241 /* Sets up 'bals' to describe each of the port's interfaces, sorted in
2242 * descending order of tx_bytes, so that bals[0] represents the most
2243 * heavily loaded slave and bals[n_bals - 1] represents the least heavily
2244 * loaded slave.
2245 *
2246 * The code is a bit tricky: to avoid dynamically allocating a 'hashes'
2247 * array for each slave_balance structure, we sort our local array of
2248 * hashes in order by slave, so that all of the hashes for a given slave
2249 * become contiguous in memory, and then we point each 'hashes' members of
2250 * a slave_balance structure to the start of a contiguous group. */
2251 n_bals = port->n_ifaces;
2252 for (b = bals; b < &bals[n_bals]; b++) {
2253 b->iface = port->ifaces[b - bals];
2254 b->tx_bytes = 0;
2255 b->hashes = NULL;
2256 b->n_hashes = 0;
2257 }
2258 for (i = 0; i <= BOND_MASK; i++) {
2259 hashes[i] = &port->bond_hash[i];
2260 }
2261 qsort(hashes, BOND_MASK + 1, sizeof *hashes, compare_bond_entries);
2262 for (i = 0; i <= BOND_MASK; i++) {
2263 e = hashes[i];
2264 if (e->iface_idx >= 0 && e->iface_idx < port->n_ifaces) {
2265 b = &bals[e->iface_idx];
2266 b->tx_bytes += e->tx_bytes;
2267 if (!b->hashes) {
2268 b->hashes = &hashes[i];
2269 }
2270 b->n_hashes++;
2271 }
2272 }
2273 qsort(bals, n_bals, sizeof *bals, compare_slave_balance);
2274 log_bals(bals, n_bals, port);
2275
2276 /* Discard slaves that aren't enabled (which were sorted to the back of the
2277 * array earlier). */
2278 while (!bals[n_bals - 1].iface->enabled) {
2279 n_bals--;
2280 if (!n_bals) {
2281 return;
2282 }
2283 }
2284
2285 /* Shift load from the most-loaded slaves to the least-loaded slaves. */
2286 to = &bals[n_bals - 1];
2287 for (from = bals; from < to; ) {
2288 uint64_t overload = from->tx_bytes - to->tx_bytes;
2289 if (overload < to->tx_bytes >> 5 || overload < 100000) {
2290 /* The extra load on 'from' (and all less-loaded slaves), compared
2291 * to that of 'to' (the least-loaded slave), is less than ~3%, or
2292 * it is less than ~1Mbps. No point in rebalancing. */
2293 break;
2294 } else if (from->n_hashes == 1) {
2295 /* 'from' only carries a single MAC hash, so we can't shift any
2296 * load away from it, even though we want to. */
2297 from++;
2298 } else {
2299 /* 'from' is carrying significantly more load than 'to', and that
2300 * load is split across at least two different hashes. Pick a hash
2301 * to migrate to 'to' (the least-loaded slave), given that doing so
2302 * must not cause 'to''s load to exceed 'from''s load.
2303 *
2304 * The sort order we use means that we prefer to shift away the
2305 * smallest hashes instead of the biggest ones. There is little
2306 * reason behind this decision; we could use the opposite sort
2307 * order to shift away big hashes ahead of small ones. */
2308 size_t i;
2309
2310 for (i = 0; i < from->n_hashes; i++) {
2311 uint64_t delta = from->hashes[i]->tx_bytes;
2312 if (to->tx_bytes + delta < from->tx_bytes - delta) {
2313 break;
2314 }
2315 }
2316 if (i < from->n_hashes) {
2317 bond_shift_load(from, to, from->hashes[i]);
2318
2319 /* Re-sort 'bals'. Note that this may make 'from' and 'to'
2320 * point to different slave_balance structures. It is only
2321 * valid to do these two operations in a row at all because we
2322 * know that 'from' will not move past 'to' and vice versa. */
2323 resort_bals(from, bals, n_bals);
2324 resort_bals(to, bals, n_bals);
2325 } else {
2326 from++;
2327 }
85c74638 2328 port->bond_compat_is_stale = true;
064af421
BP
2329 }
2330 }
2331
2332 /* Implement exponentially weighted moving average. A weight of 1/2 causes
2333 * historical data to decay to <1% in 7 rebalancing runs. */
2334 for (e = &port->bond_hash[0]; e <= &port->bond_hash[BOND_MASK]; e++) {
2335 e->tx_bytes /= 2;
2336 }
2337}
2303f3b2
BP
2338
2339static void
2340bond_send_learning_packets(struct port *port)
2341{
2342 struct bridge *br = port->bridge;
2343 struct mac_entry *e;
2344 struct ofpbuf packet;
2345 int error, n_packets, n_errors;
2346
2347 if (!port->n_ifaces || port->active_iface < 0 || !br->ml) {
2348 return;
2349 }
2350
2351 ofpbuf_init(&packet, 128);
2352 error = n_packets = n_errors = 0;
2353 LIST_FOR_EACH (e, struct mac_entry, lru_node, &br->ml->lrus) {
2303f3b2 2354 union ofp_action actions[2], *a;
2303f3b2
BP
2355 uint16_t dp_ifidx;
2356 tag_type tags = 0;
2357 flow_t flow;
2358 int retval;
2359
2360 if (e->port == port->port_idx
2361 || !choose_output_iface(port, e->mac, &dp_ifidx, &tags)) {
2362 continue;
2363 }
2364
2303f3b2
BP
2365 /* Compose actions. */
2366 memset(actions, 0, sizeof actions);
2367 a = actions;
2368 if (e->vlan) {
2369 a->vlan_vid.type = htons(OFPAT_SET_VLAN_VID);
2370 a->vlan_vid.len = htons(sizeof *a);
2371 a->vlan_vid.vlan_vid = htons(e->vlan);
2372 a++;
2373 }
2374 a->output.type = htons(OFPAT_OUTPUT);
2375 a->output.len = htons(sizeof *a);
2376 a->output.port = htons(odp_port_to_ofp_port(dp_ifidx));
2377 a++;
2378
2379 /* Send packet. */
2380 n_packets++;
b9e8b45a
BP
2381 compose_benign_packet(&packet, "Open vSwitch Bond Failover", 0xf177,
2382 e->mac);
2303f3b2
BP
2383 flow_extract(&packet, ODPP_NONE, &flow);
2384 retval = ofproto_send_packet(br->ofproto, &flow, actions, a - actions,
2385 &packet);
2386 if (retval) {
2387 error = retval;
2388 n_errors++;
2389 }
2390 }
2391 ofpbuf_uninit(&packet);
2392
2393 if (n_errors) {
2394 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
2395 VLOG_WARN_RL(&rl, "bond %s: %d errors sending %d gratuitous learning "
2396 "packets, last error was: %s",
2397 port->name, n_errors, n_packets, strerror(error));
2398 } else {
2399 VLOG_DBG("bond %s: sent %d gratuitous learning packets",
2400 port->name, n_packets);
2401 }
2402}
064af421 2403\f
da285df4
BP
2404/* Bonding unixctl user interface functions. */
2405
2406static void
2407bond_unixctl_list(struct unixctl_conn *conn, const char *args UNUSED)
2408{
2409 struct ds ds = DS_EMPTY_INITIALIZER;
2410 const struct bridge *br;
2411
2412 ds_put_cstr(&ds, "bridge\tbond\tslaves\n");
2413
2414 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
2415 size_t i;
2416
2417 for (i = 0; i < br->n_ports; i++) {
2418 const struct port *port = br->ports[i];
2419 if (port->n_ifaces > 1) {
2420 size_t j;
2421
2422 ds_put_format(&ds, "%s\t%s\t", br->name, port->name);
2423 for (j = 0; j < port->n_ifaces; j++) {
2424 const struct iface *iface = port->ifaces[j];
2425 if (j) {
2426 ds_put_cstr(&ds, ", ");
2427 }
2428 ds_put_cstr(&ds, iface->name);
2429 }
2430 ds_put_char(&ds, '\n');
2431 }
2432 }
2433 }
2434 unixctl_command_reply(conn, 200, ds_cstr(&ds));
2435 ds_destroy(&ds);
2436}
2437
2438static struct port *
2439bond_find(const char *name)
2440{
2441 const struct bridge *br;
2442
2443 LIST_FOR_EACH (br, struct bridge, node, &all_bridges) {
2444 size_t i;
2445
2446 for (i = 0; i < br->n_ports; i++) {
2447 struct port *port = br->ports[i];
2448 if (!strcmp(port->name, name) && port->n_ifaces > 1) {
2449 return port;
2450 }
2451 }
2452 }
2453 return NULL;
2454}
2455
2456static void
2457bond_unixctl_show(struct unixctl_conn *conn, const char *args)
2458{
2459 struct ds ds = DS_EMPTY_INITIALIZER;
2460 const struct port *port;
2461 size_t j;
2462
2463 port = bond_find(args);
2464 if (!port) {
2465 unixctl_command_reply(conn, 501, "no such bond");
2466 return;
2467 }
2468
2469 ds_put_format(&ds, "updelay: %d ms\n", port->updelay);
2470 ds_put_format(&ds, "downdelay: %d ms\n", port->downdelay);
2471 ds_put_format(&ds, "next rebalance: %lld ms\n",
2472 port->bridge->bond_next_rebalance - time_msec());
2473 for (j = 0; j < port->n_ifaces; j++) {
2474 const struct iface *iface = port->ifaces[j];
2475 struct bond_entry *be;
2476
2477 /* Basic info. */
2478 ds_put_format(&ds, "slave %s: %s\n",
2479 iface->name, iface->enabled ? "enabled" : "disabled");
2480 if (j == port->active_iface) {
2481 ds_put_cstr(&ds, "\tactive slave\n");
2482 }
2483 if (iface->delay_expires != LLONG_MAX) {
2484 ds_put_format(&ds, "\t%s expires in %lld ms\n",
2485 iface->enabled ? "downdelay" : "updelay",
2486 iface->delay_expires - time_msec());
2487 }
2488
2489 /* Hashes. */
2490 for (be = port->bond_hash; be <= &port->bond_hash[BOND_MASK]; be++) {
2491 int hash = be - port->bond_hash;
2492 struct mac_entry *me;
2493
2494 if (be->iface_idx != j) {
2495 continue;
2496 }
2497
2498 ds_put_format(&ds, "\thash %d: %lld kB load\n",
2499 hash, be->tx_bytes / 1024);
2500
2501 /* MACs. */
2502 if (!port->bridge->ml) {
2503 break;
2504 }
2505
2506 LIST_FOR_EACH (me, struct mac_entry, lru_node,
2507 &port->bridge->ml->lrus) {
2508 uint16_t dp_ifidx;
2509 tag_type tags = 0;
2510 if (bond_hash(me->mac) == hash
2511 && me->port != port->port_idx
2512 && choose_output_iface(port, me->mac, &dp_ifidx, &tags)
2513 && dp_ifidx == iface->dp_ifidx)
2514 {
2515 ds_put_format(&ds, "\t\t"ETH_ADDR_FMT"\n",
2516 ETH_ADDR_ARGS(me->mac));
2517 }
2518 }
2519 }
2520 }
2521 unixctl_command_reply(conn, 200, ds_cstr(&ds));
2522 ds_destroy(&ds);
2523}
2524
2525static void
2526bond_unixctl_migrate(struct unixctl_conn *conn, const char *args_)
2527{
2528 char *args = (char *) args_;
2529 char *save_ptr = NULL;
2530 char *bond_s, *hash_s, *slave_s;
2531 uint8_t mac[ETH_ADDR_LEN];
2532 struct port *port;
2533 struct iface *iface;
2534 struct bond_entry *entry;
2535 int hash;
2536
2537 bond_s = strtok_r(args, " ", &save_ptr);
2538 hash_s = strtok_r(NULL, " ", &save_ptr);
2539 slave_s = strtok_r(NULL, " ", &save_ptr);
2540 if (!slave_s) {
2541 unixctl_command_reply(conn, 501,
2542 "usage: bond/migrate BOND HASH SLAVE");
2543 return;
2544 }
2545
2546 port = bond_find(bond_s);
2547 if (!port) {
2548 unixctl_command_reply(conn, 501, "no such bond");
2549 return;
2550 }
2551
eaa71334
BP
2552 if (sscanf(hash_s, ETH_ADDR_SCAN_FMT, ETH_ADDR_SCAN_ARGS(mac))
2553 == ETH_ADDR_SCAN_COUNT) {
da285df4
BP
2554 hash = bond_hash(mac);
2555 } else if (strspn(hash_s, "0123456789") == strlen(hash_s)) {
2556 hash = atoi(hash_s) & BOND_MASK;
2557 } else {
2558 unixctl_command_reply(conn, 501, "bad hash");
2559 return;
2560 }
2561
2562 iface = port_lookup_iface(port, slave_s);
2563 if (!iface) {
2564 unixctl_command_reply(conn, 501, "no such slave");
2565 return;
2566 }
2567
2568 if (!iface->enabled) {
2569 unixctl_command_reply(conn, 501, "cannot migrate to disabled slave");
2570 return;
2571 }
2572
2573 entry = &port->bond_hash[hash];
2574 ofproto_revalidate(port->bridge->ofproto, entry->iface_tag);
2575 entry->iface_idx = iface->port_ifidx;
2576 entry->iface_tag = tag_create_random();
85c74638 2577 port->bond_compat_is_stale = true;
da285df4
BP
2578 unixctl_command_reply(conn, 200, "migrated");
2579}
2580
2581static void
2582bond_unixctl_set_active_slave(struct unixctl_conn *conn, const char *args_)
2583{
2584 char *args = (char *) args_;
2585 char *save_ptr = NULL;
2586 char *bond_s, *slave_s;
2587 struct port *port;
2588 struct iface *iface;
2589
2590 bond_s = strtok_r(args, " ", &save_ptr);
2591 slave_s = strtok_r(NULL, " ", &save_ptr);
2592 if (!slave_s) {
2593 unixctl_command_reply(conn, 501,
2594 "usage: bond/set-active-slave BOND SLAVE");
2595 return;
2596 }
2597
2598 port = bond_find(bond_s);
2599 if (!port) {
2600 unixctl_command_reply(conn, 501, "no such bond");
2601 return;
2602 }
2603
2604 iface = port_lookup_iface(port, slave_s);
2605 if (!iface) {
2606 unixctl_command_reply(conn, 501, "no such slave");
2607 return;
2608 }
2609
2610 if (!iface->enabled) {
2611 unixctl_command_reply(conn, 501, "cannot make disabled slave active");
2612 return;
2613 }
2614
2615 if (port->active_iface != iface->port_ifidx) {
2616 ofproto_revalidate(port->bridge->ofproto, port->active_iface_tag);
2617 port->active_iface = iface->port_ifidx;
2618 port->active_iface_tag = tag_create_random();
2619 VLOG_INFO("port %s: active interface is now %s",
2620 port->name, iface->name);
2621 bond_send_learning_packets(port);
2622 unixctl_command_reply(conn, 200, "done");
2623 } else {
2624 unixctl_command_reply(conn, 200, "no change");
2625 }
2626}
2627
2628static void
2629enable_slave(struct unixctl_conn *conn, const char *args_, bool enable)
2630{
2631 char *args = (char *) args_;
2632 char *save_ptr = NULL;
2633 char *bond_s, *slave_s;
2634 struct port *port;
2635 struct iface *iface;
2636
2637 bond_s = strtok_r(args, " ", &save_ptr);
2638 slave_s = strtok_r(NULL, " ", &save_ptr);
2639 if (!slave_s) {
2640 unixctl_command_reply(conn, 501,
2641 "usage: bond/enable/disable-slave BOND SLAVE");
2642 return;
2643 }
2644
2645 port = bond_find(bond_s);
2646 if (!port) {
2647 unixctl_command_reply(conn, 501, "no such bond");
2648 return;
2649 }
2650
2651 iface = port_lookup_iface(port, slave_s);
2652 if (!iface) {
2653 unixctl_command_reply(conn, 501, "no such slave");
2654 return;
2655 }
2656
2657 bond_enable_slave(iface, enable);
2658 unixctl_command_reply(conn, 501, enable ? "enabled" : "disabled");
2659}
2660
2661static void
2662bond_unixctl_enable_slave(struct unixctl_conn *conn, const char *args)
2663{
2664 enable_slave(conn, args, true);
2665}
2666
2667static void
2668bond_unixctl_disable_slave(struct unixctl_conn *conn, const char *args)
2669{
2670 enable_slave(conn, args, false);
2671}
2672
2673static void
2674bond_init(void)
2675{
2676 unixctl_command_register("bond/list", bond_unixctl_list);
2677 unixctl_command_register("bond/show", bond_unixctl_show);
2678 unixctl_command_register("bond/migrate", bond_unixctl_migrate);
2679 unixctl_command_register("bond/set-active-slave",
2680 bond_unixctl_set_active_slave);
2681 unixctl_command_register("bond/enable-slave", bond_unixctl_enable_slave);
2682 unixctl_command_register("bond/disable-slave", bond_unixctl_disable_slave);
2683}
2684\f
064af421
BP
2685/* Port functions. */
2686
2687static void
2688port_create(struct bridge *br, const char *name)
2689{
2690 struct port *port;
2691
2692 port = xcalloc(1, sizeof *port);
2693 port->bridge = br;
2694 port->port_idx = br->n_ports;
2695 port->vlan = -1;
2696 port->trunks = NULL;
2697 port->name = xstrdup(name);
2698 port->active_iface = -1;
2699 port->stp_state = STP_DISABLED;
2700 port->stp_state_tag = 0;
2701
2702 if (br->n_ports >= br->allocated_ports) {
2703 br->ports = x2nrealloc(br->ports, &br->allocated_ports,
2704 sizeof *br->ports);
2705 }
2706 br->ports[br->n_ports++] = port;
2707
2708 VLOG_INFO("created port %s on bridge %s", port->name, br->name);
2709 bridge_flush(br);
2710}
2711
2712static void
2713port_reconfigure(struct port *port)
2714{
2715 bool bonded = cfg_has_section("bonding.%s", port->name);
2716 struct svec old_ifaces, new_ifaces;
2717 unsigned long *trunks;
2718 int vlan;
2719 size_t i;
2720
2721 /* Collect old and new interfaces. */
2722 svec_init(&old_ifaces);
2723 svec_init(&new_ifaces);
2724 for (i = 0; i < port->n_ifaces; i++) {
2725 svec_add(&old_ifaces, port->ifaces[i]->name);
2726 }
2727 svec_sort(&old_ifaces);
2728 if (bonded) {
2729 cfg_get_all_keys(&new_ifaces, "bonding.%s.slave", port->name);
2730 if (!new_ifaces.n) {
2731 VLOG_ERR("port %s: no interfaces specified for bonded port",
2732 port->name);
2733 } else if (new_ifaces.n == 1) {
2734 VLOG_WARN("port %s: only 1 interface specified for bonded port",
2735 port->name);
2736 }
2737
2738 port->updelay = cfg_get_int(0, "bonding.%s.updelay", port->name);
2739 if (port->updelay < 0) {
2740 port->updelay = 0;
2741 }
2742 port->downdelay = cfg_get_int(0, "bonding.%s.downdelay", port->name);
2743 if (port->downdelay < 0) {
2744 port->downdelay = 0;
2745 }
2746 } else {
2747 svec_init(&new_ifaces);
2748 svec_add(&new_ifaces, port->name);
2749 }
2750
2751 /* Get rid of deleted interfaces and add new interfaces. */
2752 for (i = 0; i < port->n_ifaces; i++) {
2753 struct iface *iface = port->ifaces[i];
2754 if (!svec_contains(&new_ifaces, iface->name)) {
2755 iface_destroy(iface);
2756 } else {
2757 i++;
2758 }
2759 }
2760 for (i = 0; i < new_ifaces.n; i++) {
2761 const char *name = new_ifaces.names[i];
2762 if (!svec_contains(&old_ifaces, name)) {
2763 iface_create(port, name);
2764 }
2765 }
2766
2767 /* Get VLAN tag. */
2768 vlan = -1;
2769 if (cfg_has("vlan.%s.tag", port->name)) {
2770 if (!bonded) {
2771 vlan = cfg_get_vlan(0, "vlan.%s.tag", port->name);
2772 if (vlan >= 0 && vlan <= 4095) {
2773 VLOG_DBG("port %s: assigning VLAN tag %d", port->name, vlan);
2774 }
2775 } else {
2776 /* It's possible that bonded, VLAN-tagged ports make sense. Maybe
2777 * they even work as-is. But they have not been tested. */
2778 VLOG_WARN("port %s: VLAN tags not supported on bonded ports",
2779 port->name);
2780 }
2781 }
2782 if (port->vlan != vlan) {
2783 port->vlan = vlan;
2784 bridge_flush(port->bridge);
2785 }
2786
2787 /* Get trunked VLANs. */
2788 trunks = NULL;
2789 if (vlan < 0) {
2790 size_t n_trunks, n_errors;
2791 size_t i;
2792
2793 trunks = bitmap_allocate(4096);
2794 n_trunks = cfg_count("vlan.%s.trunks", port->name);
2795 n_errors = 0;
2796 for (i = 0; i < n_trunks; i++) {
2797 int trunk = cfg_get_vlan(i, "vlan.%s.trunks", port->name);
2798 if (trunk >= 0) {
2799 bitmap_set1(trunks, trunk);
2800 } else {
2801 n_errors++;
2802 }
2803 }
2804 if (n_errors) {
2805 VLOG_ERR("port %s: invalid values for %zu trunk VLANs",
2806 port->name, n_trunks);
2807 }
2808 if (n_errors == n_trunks) {
2809 if (n_errors) {
2810 VLOG_ERR("port %s: no valid trunks, trunking all VLANs",
2811 port->name);
2812 }
2813 bitmap_set_multiple(trunks, 0, 4096, 1);
2814 }
2815 } else {
2816 if (cfg_has("vlan.%s.trunks", port->name)) {
2817 VLOG_ERR("ignoring vlan.%s.trunks in favor of vlan.%s.vlan",
2818 port->name, port->name);
2819 }
2820 }
2821 if (trunks == NULL
2822 ? port->trunks != NULL
2823 : port->trunks == NULL || !bitmap_equal(trunks, port->trunks, 4096)) {
2824 bridge_flush(port->bridge);
2825 }
2826 bitmap_free(port->trunks);
2827 port->trunks = trunks;
2828
2829 svec_destroy(&old_ifaces);
2830 svec_destroy(&new_ifaces);
2831}
2832
2833static void
2834port_destroy(struct port *port)
2835{
2836 if (port) {
2837 struct bridge *br = port->bridge;
2838 struct port *del;
2839 size_t i;
2840
2841 proc_net_compat_update_vlan(port->name, NULL, 0);
85c74638 2842 proc_net_compat_update_bond(port->name, NULL);
064af421
BP
2843
2844 for (i = 0; i < MAX_MIRRORS; i++) {
2845 struct mirror *m = br->mirrors[i];
2846 if (m && m->out_port == port) {
2847 mirror_destroy(m);
2848 }
2849 }
2850
2851 while (port->n_ifaces > 0) {
2852 iface_destroy(port->ifaces[port->n_ifaces - 1]);
2853 }
2854
2855 del = br->ports[port->port_idx] = br->ports[--br->n_ports];
2856 del->port_idx = port->port_idx;
2857
2858 free(port->ifaces);
2859 bitmap_free(port->trunks);
2860 free(port->name);
2861 free(port);
2862 bridge_flush(br);
2863 }
2864}
2865
2866static struct port *
2867port_from_dp_ifidx(const struct bridge *br, uint16_t dp_ifidx)
2868{
2869 struct iface *iface = iface_from_dp_ifidx(br, dp_ifidx);
2870 return iface ? iface->port : NULL;
2871}
2872
2873static struct port *
2874port_lookup(const struct bridge *br, const char *name)
2875{
2876 size_t i;
2877
2878 for (i = 0; i < br->n_ports; i++) {
2879 struct port *port = br->ports[i];
2880 if (!strcmp(port->name, name)) {
2881 return port;
2882 }
2883 }
2884 return NULL;
2885}
2886
da285df4
BP
2887static struct iface *
2888port_lookup_iface(const struct port *port, const char *name)
2889{
2890 size_t j;
2891
2892 for (j = 0; j < port->n_ifaces; j++) {
2893 struct iface *iface = port->ifaces[j];
2894 if (!strcmp(iface->name, name)) {
2895 return iface;
2896 }
2897 }
2898 return NULL;
2899}
2900
064af421
BP
2901static void
2902port_update_bonding(struct port *port)
2903{
2904 if (port->n_ifaces < 2) {
2905 /* Not a bonded port. */
2906 if (port->bond_hash) {
2907 free(port->bond_hash);
2908 port->bond_hash = NULL;
85c74638 2909 port->bond_compat_is_stale = true;
064af421
BP
2910 }
2911 } else {
2912 if (!port->bond_hash) {
2913 size_t i;
2914
2915 port->bond_hash = xcalloc(BOND_MASK + 1, sizeof *port->bond_hash);
2916 for (i = 0; i <= BOND_MASK; i++) {
2917 struct bond_entry *e = &port->bond_hash[i];
2918 e->iface_idx = -1;
2919 e->tx_bytes = 0;
2920 }
2921 port->no_ifaces_tag = tag_create_random();
2922 bond_choose_active_iface(port);
2923 }
85c74638 2924 port->bond_compat_is_stale = true;
064af421
BP
2925 }
2926}
2927
2928static void
2929port_update_bond_compat(struct port *port)
2930{
2aebae83 2931 struct compat_bond_hash compat_hashes[BOND_MASK + 1];
064af421
BP
2932 struct compat_bond bond;
2933 size_t i;
2934
2935 if (port->n_ifaces < 2) {
85c74638 2936 proc_net_compat_update_bond(port->name, NULL);
064af421
BP
2937 return;
2938 }
2939
2940 bond.up = false;
2941 bond.updelay = port->updelay;
2942 bond.downdelay = port->downdelay;
2aebae83
BP
2943
2944 bond.n_hashes = 0;
2945 bond.hashes = compat_hashes;
2946 if (port->bond_hash) {
2947 const struct bond_entry *e;
2948 for (e = port->bond_hash; e <= &port->bond_hash[BOND_MASK]; e++) {
2949 if (e->iface_idx >= 0 && e->iface_idx < port->n_ifaces) {
2950 struct compat_bond_hash *cbh = &bond.hashes[bond.n_hashes++];
2951 cbh->hash = e - port->bond_hash;
2952 cbh->netdev_name = port->ifaces[e->iface_idx]->name;
2953 }
2954 }
2955 }
2956
064af421
BP
2957 bond.n_slaves = port->n_ifaces;
2958 bond.slaves = xmalloc(port->n_ifaces * sizeof *bond.slaves);
2959 for (i = 0; i < port->n_ifaces; i++) {
2960 struct iface *iface = port->ifaces[i];
2961 struct compat_bond_slave *slave = &bond.slaves[i];
2962 slave->name = iface->name;
2e8873af 2963 slave->up = iface->enabled;
064af421
BP
2964 if (slave->up) {
2965 bond.up = true;
2966 }
2967 memcpy(slave->mac, iface->mac, ETH_ADDR_LEN);
2968 }
2aebae83 2969
064af421
BP
2970 proc_net_compat_update_bond(port->name, &bond);
2971 free(bond.slaves);
2972}
2973
2974static void
2975port_update_vlan_compat(struct port *port)
2976{
2977 struct bridge *br = port->bridge;
2978 char *vlandev_name = NULL;
2979
2980 if (port->vlan > 0) {
2981 /* Figure out the name that the VLAN device should actually have, if it
2982 * existed. This takes some work because the VLAN device would not
2983 * have port->name in its name; rather, it would have the trunk port's
2984 * name, and 'port' would be attached to a bridge that also had the
2985 * VLAN device one of its ports. So we need to find a trunk port that
2986 * includes port->vlan.
2987 *
2988 * There might be more than one candidate. This doesn't happen on
2989 * XenServer, so if it happens we just pick the first choice in
2990 * alphabetical order instead of creating multiple VLAN devices. */
2991 size_t i;
2992 for (i = 0; i < br->n_ports; i++) {
2993 struct port *p = br->ports[i];
2994 if (port_trunks_vlan(p, port->vlan)
2995 && p->n_ifaces
2996 && (!vlandev_name || strcmp(p->name, vlandev_name) <= 0))
2997 {
2998 const uint8_t *ea = p->ifaces[0]->mac;
2999 if (!eth_addr_is_multicast(ea) &&
3000 !eth_addr_is_reserved(ea) &&
3001 !eth_addr_is_zero(ea)) {
3002 vlandev_name = p->name;
3003 }
3004 }
3005 }
3006 }
3007 proc_net_compat_update_vlan(port->name, vlandev_name, port->vlan);
3008}
3009\f
3010/* Interface functions. */
3011
3012static void
3013iface_create(struct port *port, const char *name)
3014{
064af421
BP
3015 struct iface *iface;
3016
3017 iface = xcalloc(1, sizeof *iface);
3018 iface->port = port;
3019 iface->port_ifidx = port->n_ifaces;
3020 iface->name = xstrdup(name);
3021 iface->dp_ifidx = -1;
3022 iface->tag = tag_create_random();
064af421
BP
3023 iface->delay_expires = LLONG_MAX;
3024
8cc013b2
BP
3025 if (!cfg_get_bool(0, "iface.%s.internal", iface->name)) {
3026 netdev_nodev_get_etheraddr(name, iface->mac);
3027 netdev_nodev_get_carrier(name, &iface->enabled);
3028 } else {
3029 /* Internal interfaces are created later by the call to dpif_port_add()
3030 * in bridge_reconfigure(). Until then, we can't obtain any
3031 * information about them. (There's no real value in doing so, anyway,
3032 * because the 'mac' and 'enabled' values are only used for interfaces
3033 * that are bond slaves, and it doesn't normally make sense to bond an
3034 * internal interface.) */
3035 }
064af421
BP
3036
3037 if (port->n_ifaces >= port->allocated_ifaces) {
3038 port->ifaces = x2nrealloc(port->ifaces, &port->allocated_ifaces,
3039 sizeof *port->ifaces);
3040 }
3041 port->ifaces[port->n_ifaces++] = iface;
3042 if (port->n_ifaces > 1) {
3043 port->bridge->has_bonded_ports = true;
3044 }
3045
3046 VLOG_DBG("attached network device %s to port %s", iface->name, port->name);
3047
3048 port_update_bonding(port);
3049 bridge_flush(port->bridge);
3050}
3051
3052static void
3053iface_destroy(struct iface *iface)
3054{
3055 if (iface) {
3056 struct port *port = iface->port;
3057 struct bridge *br = port->bridge;
3058 bool del_active = port->active_iface == iface->port_ifidx;
3059 struct iface *del;
3060
3061 if (iface->dp_ifidx >= 0) {
3062 port_array_set(&br->ifaces, iface->dp_ifidx, NULL);
3063 }
3064
3065 del = port->ifaces[iface->port_ifidx] = port->ifaces[--port->n_ifaces];
3066 del->port_ifidx = iface->port_ifidx;
3067
3068 free(iface->name);
3069 free(iface);
3070
3071 if (del_active) {
3072 ofproto_revalidate(port->bridge->ofproto, port->active_iface_tag);
3073 bond_choose_active_iface(port);
2303f3b2 3074 bond_send_learning_packets(port);
064af421
BP
3075 }
3076
3077 port_update_bonding(port);
3078 bridge_flush(port->bridge);
3079 }
3080}
3081
3082static struct iface *
3083iface_lookup(const struct bridge *br, const char *name)
3084{
3085 size_t i, j;
3086
3087 for (i = 0; i < br->n_ports; i++) {
3088 struct port *port = br->ports[i];
3089 for (j = 0; j < port->n_ifaces; j++) {
3090 struct iface *iface = port->ifaces[j];
3091 if (!strcmp(iface->name, name)) {
3092 return iface;
3093 }
3094 }
3095 }
3096 return NULL;
3097}
3098
3099static struct iface *
3100iface_from_dp_ifidx(const struct bridge *br, uint16_t dp_ifidx)
3101{
3102 return port_array_get(&br->ifaces, dp_ifidx);
3103}
3104\f
3105/* Port mirroring. */
3106
3107static void
3108mirror_reconfigure(struct bridge *br)
3109{
3110 struct svec old_mirrors, new_mirrors;
3111 size_t i;
3112
3113 /* Collect old and new mirrors. */
3114 svec_init(&old_mirrors);
3115 svec_init(&new_mirrors);
3116 cfg_get_subsections(&new_mirrors, "mirror.%s", br->name);
3117 for (i = 0; i < MAX_MIRRORS; i++) {
3118 if (br->mirrors[i]) {
3119 svec_add(&old_mirrors, br->mirrors[i]->name);
3120 }
3121 }
3122
3123 /* Get rid of deleted mirrors and add new mirrors. */
3124 svec_sort(&old_mirrors);
3125 assert(svec_is_unique(&old_mirrors));
3126 svec_sort(&new_mirrors);
3127 assert(svec_is_unique(&new_mirrors));
3128 for (i = 0; i < MAX_MIRRORS; i++) {
3129 struct mirror *m = br->mirrors[i];
3130 if (m && !svec_contains(&new_mirrors, m->name)) {
3131 mirror_destroy(m);
3132 }
3133 }
3134 for (i = 0; i < new_mirrors.n; i++) {
3135 const char *name = new_mirrors.names[i];
3136 if (!svec_contains(&old_mirrors, name)) {
3137 mirror_create(br, name);
3138 }
3139 }
3140 svec_destroy(&old_mirrors);
3141 svec_destroy(&new_mirrors);
3142
3143 /* Reconfigure all mirrors. */
3144 for (i = 0; i < MAX_MIRRORS; i++) {
3145 if (br->mirrors[i]) {
3146 mirror_reconfigure_one(br->mirrors[i]);
3147 }
3148 }
3149
3150 /* Update port reserved status. */
3151 for (i = 0; i < br->n_ports; i++) {
3152 br->ports[i]->is_mirror_output_port = false;
3153 }
3154 for (i = 0; i < MAX_MIRRORS; i++) {
3155 struct mirror *m = br->mirrors[i];
3156 if (m && m->out_port) {
3157 m->out_port->is_mirror_output_port = true;
3158 }
3159 }
3160}
3161
3162static void
3163mirror_create(struct bridge *br, const char *name)
3164{
3165 struct mirror *m;
3166 size_t i;
3167
3168 for (i = 0; ; i++) {
3169 if (i >= MAX_MIRRORS) {
3170 VLOG_WARN("bridge %s: maximum of %d port mirrors reached, "
3171 "cannot create %s", br->name, MAX_MIRRORS, name);
3172 return;
3173 }
3174 if (!br->mirrors[i]) {
3175 break;
3176 }
3177 }
3178
3179 VLOG_INFO("created port mirror %s on bridge %s", name, br->name);
3180 bridge_flush(br);
3181
3182 br->mirrors[i] = m = xcalloc(1, sizeof *m);
3183 m->bridge = br;
3184 m->idx = i;
3185 m->name = xstrdup(name);
3186 svec_init(&m->src_ports);
3187 svec_init(&m->dst_ports);
3188 m->vlans = NULL;
3189 m->n_vlans = 0;
3190 m->out_vlan = -1;
3191 m->out_port = NULL;
3192}
3193
3194static void
3195mirror_destroy(struct mirror *m)
3196{
3197 if (m) {
3198 struct bridge *br = m->bridge;
3199 size_t i;
3200
3201 for (i = 0; i < br->n_ports; i++) {
3202 br->ports[i]->src_mirrors &= ~(MIRROR_MASK_C(1) << m->idx);
3203 br->ports[i]->dst_mirrors &= ~(MIRROR_MASK_C(1) << m->idx);
3204 }
3205
3206 svec_destroy(&m->src_ports);
3207 svec_destroy(&m->dst_ports);
3208 free(m->vlans);
3209
3210 m->bridge->mirrors[m->idx] = NULL;
3211 free(m);
3212
3213 bridge_flush(br);
3214 }
3215}
3216
3217static void
3218prune_ports(struct mirror *m, struct svec *ports)
3219{
3220 struct svec tmp;
3221 size_t i;
3222
3223 svec_sort_unique(ports);
3224
3225 svec_init(&tmp);
3226 for (i = 0; i < ports->n; i++) {
3227 const char *name = ports->names[i];
3228 if (port_lookup(m->bridge, name)) {
3229 svec_add(&tmp, name);
3230 } else {
3231 VLOG_WARN("mirror.%s.%s: cannot match on nonexistent port %s",
3232 m->bridge->name, m->name, name);
3233 }
3234 }
3235 svec_swap(ports, &tmp);
3236 svec_destroy(&tmp);
3237}
3238
3239static size_t
3240prune_vlans(struct mirror *m, struct svec *vlan_strings, int **vlans)
3241{
3242 size_t n_vlans, i;
3243
3244 /* This isn't perfect: it won't combine "0" and "00", and the textual sort
3245 * order won't give us numeric sort order. But that's good enough for what
3246 * we need right now. */
3247 svec_sort_unique(vlan_strings);
3248
3249 *vlans = xmalloc(sizeof *vlans * vlan_strings->n);
3250 n_vlans = 0;
3251 for (i = 0; i < vlan_strings->n; i++) {
3252 const char *name = vlan_strings->names[i];
3253 int vlan;
3254 if (!str_to_int(name, 10, &vlan) || vlan < 0 || vlan > 4095) {
3255 VLOG_WARN("mirror.%s.%s.select.vlan: ignoring invalid VLAN %s",
3256 m->bridge->name, m->name, name);
3257 } else {
3258 (*vlans)[n_vlans++] = vlan;
3259 }
3260 }
3261 return n_vlans;
3262}
3263
3264static bool
3265vlan_is_mirrored(const struct mirror *m, int vlan)
3266{
3267 size_t i;
3268
3269 for (i = 0; i < m->n_vlans; i++) {
3270 if (m->vlans[i] == vlan) {
3271 return true;
3272 }
3273 }
3274 return false;
3275}
3276
3277static bool
3278port_trunks_any_mirrored_vlan(const struct mirror *m, const struct port *p)
3279{
3280 size_t i;
3281
3282 for (i = 0; i < m->n_vlans; i++) {
3283 if (port_trunks_vlan(p, m->vlans[i])) {
3284 return true;
3285 }
3286 }
3287 return false;
3288}
3289
3290static void
3291mirror_reconfigure_one(struct mirror *m)
3292{
3293 char *pfx = xasprintf("mirror.%s.%s", m->bridge->name, m->name);
3294 struct svec src_ports, dst_ports, ports;
3295 struct svec vlan_strings;
3296 mirror_mask_t mirror_bit;
3297 const char *out_port_name;
3298 struct port *out_port;
3299 int out_vlan;
3300 size_t n_vlans;
3301 int *vlans;
3302 size_t i;
3303 bool mirror_all_ports;
e0c27cff 3304 bool any_ports_specified;
064af421
BP
3305
3306 /* Get output port. */
3307 out_port_name = cfg_get_key(0, "mirror.%s.%s.output.port",
3308 m->bridge->name, m->name);
3309 if (out_port_name) {
3310 out_port = port_lookup(m->bridge, out_port_name);
3311 if (!out_port) {
3312 VLOG_ERR("%s.output.port: bridge %s does not have a port "
3313 "named %s", pfx, m->bridge->name, out_port_name);
3314 mirror_destroy(m);
3315 free(pfx);
3316 return;
3317 }
3318 out_vlan = -1;
3319
3320 if (cfg_has("%s.output.vlan", pfx)) {
3321 VLOG_ERR("%s.output.port and %s.output.vlan both specified; "
3322 "ignoring %s.output.vlan", pfx, pfx, pfx);
3323 }
3324 } else if (cfg_has("%s.output.vlan", pfx)) {
3325 out_port = NULL;
3326 out_vlan = cfg_get_vlan(0, "%s.output.vlan", pfx);
3327 } else {
3328 VLOG_ERR("%s: neither %s.output.port nor %s.output.vlan specified, "
3329 "but exactly one is required; disabling port mirror %s",
3330 pfx, pfx, pfx, pfx);
3331 mirror_destroy(m);
3332 free(pfx);
3333 return;
3334 }
3335
3336 /* Get all the ports, and drop duplicates and ports that don't exist. */
3337 svec_init(&src_ports);
3338 svec_init(&dst_ports);
3339 svec_init(&ports);
3340 cfg_get_all_keys(&src_ports, "%s.select.src-port", pfx);
3341 cfg_get_all_keys(&dst_ports, "%s.select.dst-port", pfx);
3342 cfg_get_all_keys(&ports, "%s.select.port", pfx);
e0c27cff 3343 any_ports_specified = src_ports.n || dst_ports.n || ports.n;
064af421
BP
3344 svec_append(&src_ports, &ports);
3345 svec_append(&dst_ports, &ports);
3346 svec_destroy(&ports);
3347 prune_ports(m, &src_ports);
3348 prune_ports(m, &dst_ports);
e0c27cff
BP
3349 if (any_ports_specified && !src_ports.n && !dst_ports.n) {
3350 VLOG_ERR("%s: none of the specified ports exist; "
3351 "disabling port mirror %s", pfx, pfx);
3352 mirror_destroy(m);
3353 goto exit;
3354 }
064af421
BP
3355
3356 /* Get all the vlans, and drop duplicate and invalid vlans. */
3357 svec_init(&vlan_strings);
3358 cfg_get_all_keys(&vlan_strings, "%s.select.vlan", pfx);
3359 n_vlans = prune_vlans(m, &vlan_strings, &vlans);
3360 svec_destroy(&vlan_strings);
3361
3362 /* Update mirror data. */
3363 if (!svec_equal(&m->src_ports, &src_ports)
3364 || !svec_equal(&m->dst_ports, &dst_ports)
3365 || m->n_vlans != n_vlans
3366 || memcmp(m->vlans, vlans, sizeof *vlans * n_vlans)
3367 || m->out_port != out_port
3368 || m->out_vlan != out_vlan) {
3369 bridge_flush(m->bridge);
3370 }
3371 svec_swap(&m->src_ports, &src_ports);
3372 svec_swap(&m->dst_ports, &dst_ports);
3373 free(m->vlans);
3374 m->vlans = vlans;
3375 m->n_vlans = n_vlans;
3376 m->out_port = out_port;
3377 m->out_vlan = out_vlan;
3378
3379 /* If no selection criteria have been given, mirror for all ports. */
3380 mirror_all_ports = (!m->src_ports.n) && (!m->dst_ports.n) && (!m->n_vlans);
3381
3382 /* Update ports. */
3383 mirror_bit = MIRROR_MASK_C(1) << m->idx;
3384 for (i = 0; i < m->bridge->n_ports; i++) {
3385 struct port *port = m->bridge->ports[i];
3386
3387 if (mirror_all_ports
3388 || svec_contains(&m->src_ports, port->name)
3389 || (m->n_vlans
3390 && (!port->vlan
3391 ? port_trunks_any_mirrored_vlan(m, port)
3392 : vlan_is_mirrored(m, port->vlan)))) {
3393 port->src_mirrors |= mirror_bit;
3394 } else {
3395 port->src_mirrors &= ~mirror_bit;
3396 }
3397
3398 if (mirror_all_ports || svec_contains(&m->dst_ports, port->name)) {
3399 port->dst_mirrors |= mirror_bit;
3400 } else {
3401 port->dst_mirrors &= ~mirror_bit;
3402 }
3403 }
3404
3405 /* Clean up. */
e0c27cff 3406exit:
064af421
BP
3407 svec_destroy(&src_ports);
3408 svec_destroy(&dst_ports);
3409 free(pfx);
3410}
3411\f
3412/* Spanning tree protocol. */
3413
3414static void brstp_update_port_state(struct port *);
3415
3416static void
3417brstp_send_bpdu(struct ofpbuf *pkt, int port_no, void *br_)
3418{
3419 struct bridge *br = br_;
3420 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
3421 struct iface *iface = iface_from_dp_ifidx(br, port_no);
3422 if (!iface) {
3423 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on unknown port %d",
3424 br->name, port_no);
3425 } else if (eth_addr_is_zero(iface->mac)) {
3426 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on port %d with unknown MAC",
3427 br->name, port_no);
3428 } else {
3429 union ofp_action action;
3430 struct eth_header *eth = pkt->l2;
3431 flow_t flow;
3432
3433 memcpy(eth->eth_src, iface->mac, ETH_ADDR_LEN);
3434
3435 memset(&action, 0, sizeof action);
3436 action.type = htons(OFPAT_OUTPUT);
3437 action.output.len = htons(sizeof action);
3438 action.output.port = htons(port_no);
3439
3440 flow_extract(pkt, ODPP_NONE, &flow);
3441 ofproto_send_packet(br->ofproto, &flow, &action, 1, pkt);
3442 }
3443 ofpbuf_delete(pkt);
3444}
3445
3446static void
3447brstp_reconfigure(struct bridge *br)
3448{
3449 size_t i;
3450
3451 if (!cfg_get_bool(0, "stp.%s.enabled", br->name)) {
3452 if (br->stp) {
3453 stp_destroy(br->stp);
3454 br->stp = NULL;
3455
3456 bridge_flush(br);
3457 }
3458 } else {
3459 uint64_t bridge_address, bridge_id;
3460 int bridge_priority;
3461
3462 bridge_address = cfg_get_mac(0, "stp.%s.address", br->name);
3463 if (!bridge_address) {
3464 if (br->stp) {
3465 bridge_address = (stp_get_bridge_id(br->stp)
3466 & ((UINT64_C(1) << 48) - 1));
3467 } else {
3468 uint8_t mac[ETH_ADDR_LEN];
3469 eth_addr_random(mac);
3470 bridge_address = eth_addr_to_uint64(mac);
3471 }
3472 }
3473
3474 if (cfg_is_valid(CFG_INT | CFG_REQUIRED, "stp.%s.priority",
3475 br->name)) {
3476 bridge_priority = cfg_get_int(0, "stp.%s.priority", br->name);
3477 } else {
3478 bridge_priority = STP_DEFAULT_BRIDGE_PRIORITY;
3479 }
3480
3481 bridge_id = bridge_address | ((uint64_t) bridge_priority << 48);
3482 if (!br->stp) {
3483 br->stp = stp_create(br->name, bridge_id, brstp_send_bpdu, br);
3484 br->stp_last_tick = time_msec();
3485 bridge_flush(br);
3486 } else {
3487 if (bridge_id != stp_get_bridge_id(br->stp)) {
3488 stp_set_bridge_id(br->stp, bridge_id);
3489 bridge_flush(br);
3490 }
3491 }
3492
3493 for (i = 0; i < br->n_ports; i++) {
3494 struct port *p = br->ports[i];
3495 int dp_ifidx;
3496 struct stp_port *sp;
3497 int path_cost, priority;
3498 bool enable;
3499
3500 if (!p->n_ifaces) {
3501 continue;
3502 }
3503 dp_ifidx = p->ifaces[0]->dp_ifidx;
3504 if (dp_ifidx < 0 || dp_ifidx >= STP_MAX_PORTS) {
3505 continue;
3506 }
3507
3508 sp = stp_get_port(br->stp, dp_ifidx);
3509 enable = (!cfg_is_valid(CFG_BOOL | CFG_REQUIRED,
3510 "stp.%s.port.%s.enabled",
3511 br->name, p->name)
3512 || cfg_get_bool(0, "stp.%s.port.%s.enabled",
3513 br->name, p->name));
3514 if (p->is_mirror_output_port) {
3515 enable = false;
3516 }
3517 if (enable != (stp_port_get_state(sp) != STP_DISABLED)) {
3518 bridge_flush(br); /* Might not be necessary. */
3519 if (enable) {
3520 stp_port_enable(sp);
3521 } else {
3522 stp_port_disable(sp);
3523 }
3524 }
3525
3526 path_cost = cfg_get_int(0, "stp.%s.port.%s.path-cost",
3527 br->name, p->name);
3528 stp_port_set_path_cost(sp, path_cost ? path_cost : 19 /* XXX */);
3529
3530 priority = (cfg_is_valid(CFG_INT | CFG_REQUIRED,
3531 "stp.%s.port.%s.priority",
3532 br->name, p->name)
3533 ? cfg_get_int(0, "stp.%s.port.%s.priority",
3534 br->name, p->name)
3535 : STP_DEFAULT_PORT_PRIORITY);
3536 stp_port_set_priority(sp, priority);
3537 }
3538
3539 brstp_adjust_timers(br);
3540 }
3541 for (i = 0; i < br->n_ports; i++) {
3542 brstp_update_port_state(br->ports[i]);
3543 }
3544}
3545
3546static void
3547brstp_update_port_state(struct port *p)
3548{
3549 struct bridge *br = p->bridge;
3550 enum stp_state state;
3551
3552 /* Figure out new state. */
3553 state = STP_DISABLED;
3554 if (br->stp && p->n_ifaces > 0) {
3555 int dp_ifidx = p->ifaces[0]->dp_ifidx;
3556 if (dp_ifidx >= 0 && dp_ifidx < STP_MAX_PORTS) {
3557 state = stp_port_get_state(stp_get_port(br->stp, dp_ifidx));
3558 }
3559 }
3560
3561 /* Update state. */
3562 if (p->stp_state != state) {
3563 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(10, 10);
3564 VLOG_INFO_RL(&rl, "port %s: STP state changed from %s to %s",
3565 p->name, stp_state_name(p->stp_state),
3566 stp_state_name(state));
3567 if (p->stp_state == STP_DISABLED) {
3568 bridge_flush(br);
3569 } else {
3570 ofproto_revalidate(p->bridge->ofproto, p->stp_state_tag);
3571 }
3572 p->stp_state = state;
3573 p->stp_state_tag = (p->stp_state == STP_DISABLED ? 0
3574 : tag_create_random());
3575 }
3576}
3577
3578static void
3579brstp_adjust_timers(struct bridge *br)
3580{
3581 int hello_time = cfg_get_int(0, "stp.%s.hello-time", br->name);
3582 int max_age = cfg_get_int(0, "stp.%s.max-age", br->name);
3583 int forward_delay = cfg_get_int(0, "stp.%s.forward-delay", br->name);
3584
3585 stp_set_hello_time(br->stp, hello_time ? hello_time : 2000);
3586 stp_set_max_age(br->stp, max_age ? max_age : 20000);
3587 stp_set_forward_delay(br->stp, forward_delay ? forward_delay : 15000);
3588}
3589
3590static void
3591brstp_run(struct bridge *br)
3592{
3593 if (br->stp) {
3594 long long int now = time_msec();
3595 long long int elapsed = now - br->stp_last_tick;
3596 struct stp_port *sp;
3597
3598 if (elapsed > 0) {
3599 stp_tick(br->stp, MIN(INT_MAX, elapsed));
3600 br->stp_last_tick = now;
3601 }
3602 while (stp_get_changed_port(br->stp, &sp)) {
3603 struct port *p = port_from_dp_ifidx(br, stp_port_no(sp));
3604 if (p) {
3605 brstp_update_port_state(p);
3606 }
3607 }
3608 }
3609}
3610
3611static void
3612brstp_wait(struct bridge *br)
3613{
3614 if (br->stp) {
3615 poll_timer_wait(1000);
3616 }
3617}