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1 /*
2 * Copyright (c) 2009, 2010, 2011, 2012, 2013, 2014 Nicira, Inc.
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at:
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include <config.h>
18
19 #include "ofproto/ofproto-dpif.h"
20 #include "ofproto/ofproto-provider.h"
21
22 #include <errno.h>
23
24 #include "bfd.h"
25 #include "bond.h"
26 #include "bundle.h"
27 #include "byte-order.h"
28 #include "connectivity.h"
29 #include "connmgr.h"
30 #include "coverage.h"
31 #include "cfm.h"
32 #include "dpif.h"
33 #include "dynamic-string.h"
34 #include "fail-open.h"
35 #include "guarded-list.h"
36 #include "hmapx.h"
37 #include "lacp.h"
38 #include "learn.h"
39 #include "mac-learning.h"
40 #include "mcast-snooping.h"
41 #include "meta-flow.h"
42 #include "multipath.h"
43 #include "netdev-vport.h"
44 #include "netdev.h"
45 #include "netlink.h"
46 #include "nx-match.h"
47 #include "odp-util.h"
48 #include "odp-execute.h"
49 #include "ofp-util.h"
50 #include "ofpbuf.h"
51 #include "ofp-actions.h"
52 #include "ofp-parse.h"
53 #include "ofp-print.h"
54 #include "ofproto-dpif-ipfix.h"
55 #include "ofproto-dpif-mirror.h"
56 #include "ofproto-dpif-monitor.h"
57 #include "ofproto-dpif-rid.h"
58 #include "ofproto-dpif-sflow.h"
59 #include "ofproto-dpif-upcall.h"
60 #include "ofproto-dpif-xlate.h"
61 #include "poll-loop.h"
62 #include "seq.h"
63 #include "simap.h"
64 #include "smap.h"
65 #include "timer.h"
66 #include "tunnel.h"
67 #include "unaligned.h"
68 #include "unixctl.h"
69 #include "vlan-bitmap.h"
70 #include "vlog.h"
71
72 VLOG_DEFINE_THIS_MODULE(ofproto_dpif);
73
74 COVERAGE_DEFINE(ofproto_dpif_expired);
75 COVERAGE_DEFINE(packet_in_overflow);
76
77 struct flow_miss;
78
79 struct rule_dpif {
80 struct rule up;
81
82 /* These statistics:
83 *
84 * - Do include packets and bytes from datapath flows which have not
85 * recently been processed by a revalidator. */
86 struct ovs_mutex stats_mutex;
87 struct dpif_flow_stats stats OVS_GUARDED;
88
89 /* If non-zero then the recirculation id that has
90 * been allocated for use with this rule.
91 * The recirculation id and associated internal flow should
92 * be freed when the rule is freed */
93 uint32_t recirc_id;
94 };
95
96 /* RULE_CAST() depends on this. */
97 BUILD_ASSERT_DECL(offsetof(struct rule_dpif, up) == 0);
98
99 static void rule_get_stats(struct rule *, uint64_t *packets, uint64_t *bytes,
100 long long int *used);
101 static struct rule_dpif *rule_dpif_cast(const struct rule *);
102 static void rule_expire(struct rule_dpif *);
103
104 struct group_dpif {
105 struct ofgroup up;
106
107 /* These statistics:
108 *
109 * - Do include packets and bytes from datapath flows which have not
110 * recently been processed by a revalidator. */
111 struct ovs_mutex stats_mutex;
112 uint64_t packet_count OVS_GUARDED; /* Number of packets received. */
113 uint64_t byte_count OVS_GUARDED; /* Number of bytes received. */
114 };
115
116 struct ofbundle {
117 struct hmap_node hmap_node; /* In struct ofproto's "bundles" hmap. */
118 struct ofproto_dpif *ofproto; /* Owning ofproto. */
119 void *aux; /* Key supplied by ofproto's client. */
120 char *name; /* Identifier for log messages. */
121
122 /* Configuration. */
123 struct list ports; /* Contains "struct ofport"s. */
124 enum port_vlan_mode vlan_mode; /* VLAN mode */
125 int vlan; /* -1=trunk port, else a 12-bit VLAN ID. */
126 unsigned long *trunks; /* Bitmap of trunked VLANs, if 'vlan' == -1.
127 * NULL if all VLANs are trunked. */
128 struct lacp *lacp; /* LACP if LACP is enabled, otherwise NULL. */
129 struct bond *bond; /* Nonnull iff more than one port. */
130 bool use_priority_tags; /* Use 802.1p tag for frames in VLAN 0? */
131
132 /* Status. */
133 bool floodable; /* True if no port has OFPUTIL_PC_NO_FLOOD set. */
134 };
135
136 static void bundle_remove(struct ofport *);
137 static void bundle_update(struct ofbundle *);
138 static void bundle_destroy(struct ofbundle *);
139 static void bundle_del_port(struct ofport_dpif *);
140 static void bundle_run(struct ofbundle *);
141 static void bundle_wait(struct ofbundle *);
142
143 static void stp_run(struct ofproto_dpif *ofproto);
144 static void stp_wait(struct ofproto_dpif *ofproto);
145 static int set_stp_port(struct ofport *,
146 const struct ofproto_port_stp_settings *);
147
148 struct ofport_dpif {
149 struct hmap_node odp_port_node; /* In dpif_backer's "odp_to_ofport_map". */
150 struct ofport up;
151
152 odp_port_t odp_port;
153 struct ofbundle *bundle; /* Bundle that contains this port, if any. */
154 struct list bundle_node; /* In struct ofbundle's "ports" list. */
155 struct cfm *cfm; /* Connectivity Fault Management, if any. */
156 struct bfd *bfd; /* BFD, if any. */
157 bool may_enable; /* May be enabled in bonds. */
158 bool is_tunnel; /* This port is a tunnel. */
159 bool is_layer3; /* This is a layer 3 port. */
160 long long int carrier_seq; /* Carrier status changes. */
161 struct ofport_dpif *peer; /* Peer if patch port. */
162
163 /* Spanning tree. */
164 struct stp_port *stp_port; /* Spanning Tree Protocol, if any. */
165 enum stp_state stp_state; /* Always STP_DISABLED if STP not in use. */
166 long long int stp_state_entered;
167
168 /* Queue to DSCP mapping. */
169 struct ofproto_port_queue *qdscp;
170 size_t n_qdscp;
171
172 /* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
173 *
174 * This is deprecated. It is only for compatibility with broken device
175 * drivers in old versions of Linux that do not properly support VLANs when
176 * VLAN devices are not used. When broken device drivers are no longer in
177 * widespread use, we will delete these interfaces. */
178 ofp_port_t realdev_ofp_port;
179 int vlandev_vid;
180 };
181
182 /* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
183 *
184 * This is deprecated. It is only for compatibility with broken device drivers
185 * in old versions of Linux that do not properly support VLANs when VLAN
186 * devices are not used. When broken device drivers are no longer in
187 * widespread use, we will delete these interfaces. */
188 struct vlan_splinter {
189 struct hmap_node realdev_vid_node;
190 struct hmap_node vlandev_node;
191 ofp_port_t realdev_ofp_port;
192 ofp_port_t vlandev_ofp_port;
193 int vid;
194 };
195
196 static void vsp_remove(struct ofport_dpif *);
197 static void vsp_add(struct ofport_dpif *, ofp_port_t realdev_ofp_port, int vid);
198
199 static odp_port_t ofp_port_to_odp_port(const struct ofproto_dpif *,
200 ofp_port_t);
201
202 static ofp_port_t odp_port_to_ofp_port(const struct ofproto_dpif *,
203 odp_port_t);
204
205 static struct ofport_dpif *
206 ofport_dpif_cast(const struct ofport *ofport)
207 {
208 return ofport ? CONTAINER_OF(ofport, struct ofport_dpif, up) : NULL;
209 }
210
211 static void port_run(struct ofport_dpif *);
212 static int set_bfd(struct ofport *, const struct smap *);
213 static int set_cfm(struct ofport *, const struct cfm_settings *);
214 static void ofport_update_peer(struct ofport_dpif *);
215
216 /* Reasons that we might need to revalidate every datapath flow, and
217 * corresponding coverage counters.
218 *
219 * A value of 0 means that there is no need to revalidate.
220 *
221 * It would be nice to have some cleaner way to integrate with coverage
222 * counters, but with only a few reasons I guess this is good enough for
223 * now. */
224 enum revalidate_reason {
225 REV_RECONFIGURE = 1, /* Switch configuration changed. */
226 REV_STP, /* Spanning tree protocol port status change. */
227 REV_BOND, /* Bonding changed. */
228 REV_PORT_TOGGLED, /* Port enabled or disabled by CFM, LACP, ...*/
229 REV_FLOW_TABLE, /* Flow table changed. */
230 REV_MAC_LEARNING, /* Mac learning changed. */
231 REV_MCAST_SNOOPING, /* Multicast snooping changed. */
232 };
233 COVERAGE_DEFINE(rev_reconfigure);
234 COVERAGE_DEFINE(rev_stp);
235 COVERAGE_DEFINE(rev_bond);
236 COVERAGE_DEFINE(rev_port_toggled);
237 COVERAGE_DEFINE(rev_flow_table);
238 COVERAGE_DEFINE(rev_mac_learning);
239 COVERAGE_DEFINE(rev_mcast_snooping);
240
241 /* All datapaths of a given type share a single dpif backer instance. */
242 struct dpif_backer {
243 char *type;
244 int refcount;
245 struct dpif *dpif;
246 struct udpif *udpif;
247
248 struct ovs_rwlock odp_to_ofport_lock;
249 struct hmap odp_to_ofport_map OVS_GUARDED; /* Contains "struct ofport"s. */
250
251 struct simap tnl_backers; /* Set of dpif ports backing tunnels. */
252
253 enum revalidate_reason need_revalidate; /* Revalidate all flows. */
254
255 bool recv_set_enable; /* Enables or disables receiving packets. */
256
257 /* Recirculation. */
258 struct recirc_id_pool *rid_pool; /* Recirculation ID pool. */
259 bool enable_recirc; /* True if the datapath supports recirculation */
260
261 /* True if the datapath supports variable-length
262 * OVS_USERSPACE_ATTR_USERDATA in OVS_ACTION_ATTR_USERSPACE actions.
263 * False if the datapath supports only 8-byte (or shorter) userdata. */
264 bool variable_length_userdata;
265
266 /* Maximum number of MPLS label stack entries that the datapath supports
267 * in a match */
268 size_t max_mpls_depth;
269 };
270
271 /* All existing ofproto_backer instances, indexed by ofproto->up.type. */
272 static struct shash all_dpif_backers = SHASH_INITIALIZER(&all_dpif_backers);
273
274 struct ofproto_dpif {
275 struct hmap_node all_ofproto_dpifs_node; /* In 'all_ofproto_dpifs'. */
276 struct ofproto up;
277 struct dpif_backer *backer;
278
279 uint64_t dump_seq; /* Last read of udpif_dump_seq(). */
280
281 /* Special OpenFlow rules. */
282 struct rule_dpif *miss_rule; /* Sends flow table misses to controller. */
283 struct rule_dpif *no_packet_in_rule; /* Drops flow table misses. */
284 struct rule_dpif *drop_frags_rule; /* Used in OFPC_FRAG_DROP mode. */
285
286 /* Bridging. */
287 struct netflow *netflow;
288 struct dpif_sflow *sflow;
289 struct dpif_ipfix *ipfix;
290 struct hmap bundles; /* Contains "struct ofbundle"s. */
291 struct mac_learning *ml;
292 struct mcast_snooping *ms;
293 bool has_bonded_bundles;
294 bool lacp_enabled;
295 struct mbridge *mbridge;
296
297 struct ovs_mutex stats_mutex;
298 struct netdev_stats stats OVS_GUARDED; /* To account packets generated and
299 * consumed in userspace. */
300
301 /* Spanning tree. */
302 struct stp *stp;
303 long long int stp_last_tick;
304
305 /* VLAN splinters. */
306 struct ovs_mutex vsp_mutex;
307 struct hmap realdev_vid_map OVS_GUARDED; /* (realdev,vid) -> vlandev. */
308 struct hmap vlandev_map OVS_GUARDED; /* vlandev -> (realdev,vid). */
309
310 /* Ports. */
311 struct sset ports; /* Set of standard port names. */
312 struct sset ghost_ports; /* Ports with no datapath port. */
313 struct sset port_poll_set; /* Queued names for port_poll() reply. */
314 int port_poll_errno; /* Last errno for port_poll() reply. */
315 uint64_t change_seq; /* Connectivity status changes. */
316
317 /* Work queues. */
318 struct guarded_list pins; /* Contains "struct ofputil_packet_in"s. */
319 struct seq *pins_seq; /* For notifying 'pins' reception. */
320 uint64_t pins_seqno;
321 };
322
323 /* All existing ofproto_dpif instances, indexed by ->up.name. */
324 static struct hmap all_ofproto_dpifs = HMAP_INITIALIZER(&all_ofproto_dpifs);
325
326 static void ofproto_dpif_unixctl_init(void);
327
328 static inline struct ofproto_dpif *
329 ofproto_dpif_cast(const struct ofproto *ofproto)
330 {
331 ovs_assert(ofproto->ofproto_class == &ofproto_dpif_class);
332 return CONTAINER_OF(ofproto, struct ofproto_dpif, up);
333 }
334
335 size_t
336 ofproto_dpif_get_max_mpls_depth(const struct ofproto_dpif *ofproto)
337 {
338 return ofproto->backer->max_mpls_depth;
339 }
340
341 bool
342 ofproto_dpif_get_enable_recirc(const struct ofproto_dpif *ofproto)
343 {
344 return ofproto->backer->enable_recirc;
345 }
346
347 static struct ofport_dpif *get_ofp_port(const struct ofproto_dpif *ofproto,
348 ofp_port_t ofp_port);
349 static void ofproto_trace(struct ofproto_dpif *, struct flow *,
350 const struct ofpbuf *packet,
351 const struct ofpact[], size_t ofpacts_len,
352 struct ds *);
353
354 /* Global variables. */
355 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
356
357 /* Initial mappings of port to bridge mappings. */
358 static struct shash init_ofp_ports = SHASH_INITIALIZER(&init_ofp_ports);
359
360 /* Executes 'fm'. The caller retains ownership of 'fm' and everything in
361 * it. */
362 void
363 ofproto_dpif_flow_mod(struct ofproto_dpif *ofproto,
364 struct ofputil_flow_mod *fm)
365 {
366 ofproto_flow_mod(&ofproto->up, fm);
367 }
368
369 /* Appends 'pin' to the queue of "packet ins" to be sent to the controller.
370 * Takes ownership of 'pin' and pin->packet. */
371 void
372 ofproto_dpif_send_packet_in(struct ofproto_dpif *ofproto,
373 struct ofproto_packet_in *pin)
374 {
375 if (!guarded_list_push_back(&ofproto->pins, &pin->list_node, 1024)) {
376 COVERAGE_INC(packet_in_overflow);
377 free(CONST_CAST(void *, pin->up.packet));
378 free(pin);
379 }
380
381 /* Wakes up main thread for packet-in I/O. */
382 seq_change(ofproto->pins_seq);
383 }
384
385 /* The default "table-miss" behaviour for OpenFlow1.3+ is to drop the
386 * packet rather than to send the packet to the controller.
387 *
388 * This function returns false to indicate that a packet_in message
389 * for a "table-miss" should be sent to at least one controller.
390 * False otherwise. */
391 bool
392 ofproto_dpif_wants_packet_in_on_miss(struct ofproto_dpif *ofproto)
393 {
394 return connmgr_wants_packet_in_on_miss(ofproto->up.connmgr);
395 }
396 \f
397 /* Factory functions. */
398
399 static void
400 init(const struct shash *iface_hints)
401 {
402 struct shash_node *node;
403
404 /* Make a local copy, since we don't own 'iface_hints' elements. */
405 SHASH_FOR_EACH(node, iface_hints) {
406 const struct iface_hint *orig_hint = node->data;
407 struct iface_hint *new_hint = xmalloc(sizeof *new_hint);
408
409 new_hint->br_name = xstrdup(orig_hint->br_name);
410 new_hint->br_type = xstrdup(orig_hint->br_type);
411 new_hint->ofp_port = orig_hint->ofp_port;
412
413 shash_add(&init_ofp_ports, node->name, new_hint);
414 }
415 }
416
417 static void
418 enumerate_types(struct sset *types)
419 {
420 dp_enumerate_types(types);
421 }
422
423 static int
424 enumerate_names(const char *type, struct sset *names)
425 {
426 struct ofproto_dpif *ofproto;
427
428 sset_clear(names);
429 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
430 if (strcmp(type, ofproto->up.type)) {
431 continue;
432 }
433 sset_add(names, ofproto->up.name);
434 }
435
436 return 0;
437 }
438
439 static int
440 del(const char *type, const char *name)
441 {
442 struct dpif *dpif;
443 int error;
444
445 error = dpif_open(name, type, &dpif);
446 if (!error) {
447 error = dpif_delete(dpif);
448 dpif_close(dpif);
449 }
450 return error;
451 }
452 \f
453 static const char *
454 port_open_type(const char *datapath_type, const char *port_type)
455 {
456 return dpif_port_open_type(datapath_type, port_type);
457 }
458
459 /* Type functions. */
460
461 static void process_dpif_port_changes(struct dpif_backer *);
462 static void process_dpif_all_ports_changed(struct dpif_backer *);
463 static void process_dpif_port_change(struct dpif_backer *,
464 const char *devname);
465 static void process_dpif_port_error(struct dpif_backer *, int error);
466
467 static struct ofproto_dpif *
468 lookup_ofproto_dpif_by_port_name(const char *name)
469 {
470 struct ofproto_dpif *ofproto;
471
472 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
473 if (sset_contains(&ofproto->ports, name)) {
474 return ofproto;
475 }
476 }
477
478 return NULL;
479 }
480
481 static int
482 type_run(const char *type)
483 {
484 struct dpif_backer *backer;
485
486 backer = shash_find_data(&all_dpif_backers, type);
487 if (!backer) {
488 /* This is not necessarily a problem, since backers are only
489 * created on demand. */
490 return 0;
491 }
492
493 dpif_run(backer->dpif);
494 udpif_run(backer->udpif);
495
496 /* If vswitchd started with other_config:flow_restore_wait set as "true",
497 * and the configuration has now changed to "false", enable receiving
498 * packets from the datapath. */
499 if (!backer->recv_set_enable && !ofproto_get_flow_restore_wait()) {
500 int error;
501
502 backer->recv_set_enable = true;
503
504 error = dpif_recv_set(backer->dpif, backer->recv_set_enable);
505 if (error) {
506 VLOG_ERR("Failed to enable receiving packets in dpif.");
507 return error;
508 }
509 dpif_flow_flush(backer->dpif);
510 backer->need_revalidate = REV_RECONFIGURE;
511 }
512
513 if (backer->recv_set_enable) {
514 udpif_set_threads(backer->udpif, n_handlers, n_revalidators);
515 }
516
517 if (backer->need_revalidate) {
518 struct ofproto_dpif *ofproto;
519 struct simap_node *node;
520 struct simap tmp_backers;
521
522 /* Handle tunnel garbage collection. */
523 simap_init(&tmp_backers);
524 simap_swap(&backer->tnl_backers, &tmp_backers);
525
526 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
527 struct ofport_dpif *iter;
528
529 if (backer != ofproto->backer) {
530 continue;
531 }
532
533 HMAP_FOR_EACH (iter, up.hmap_node, &ofproto->up.ports) {
534 char namebuf[NETDEV_VPORT_NAME_BUFSIZE];
535 const char *dp_port;
536
537 if (!iter->is_tunnel) {
538 continue;
539 }
540
541 dp_port = netdev_vport_get_dpif_port(iter->up.netdev,
542 namebuf, sizeof namebuf);
543 node = simap_find(&tmp_backers, dp_port);
544 if (node) {
545 simap_put(&backer->tnl_backers, dp_port, node->data);
546 simap_delete(&tmp_backers, node);
547 node = simap_find(&backer->tnl_backers, dp_port);
548 } else {
549 node = simap_find(&backer->tnl_backers, dp_port);
550 if (!node) {
551 odp_port_t odp_port = ODPP_NONE;
552
553 if (!dpif_port_add(backer->dpif, iter->up.netdev,
554 &odp_port)) {
555 simap_put(&backer->tnl_backers, dp_port,
556 odp_to_u32(odp_port));
557 node = simap_find(&backer->tnl_backers, dp_port);
558 }
559 }
560 }
561
562 iter->odp_port = node ? u32_to_odp(node->data) : ODPP_NONE;
563 if (tnl_port_reconfigure(iter, iter->up.netdev,
564 iter->odp_port)) {
565 backer->need_revalidate = REV_RECONFIGURE;
566 }
567 }
568 }
569
570 SIMAP_FOR_EACH (node, &tmp_backers) {
571 dpif_port_del(backer->dpif, u32_to_odp(node->data));
572 }
573 simap_destroy(&tmp_backers);
574
575 switch (backer->need_revalidate) {
576 case REV_RECONFIGURE: COVERAGE_INC(rev_reconfigure); break;
577 case REV_STP: COVERAGE_INC(rev_stp); break;
578 case REV_BOND: COVERAGE_INC(rev_bond); break;
579 case REV_PORT_TOGGLED: COVERAGE_INC(rev_port_toggled); break;
580 case REV_FLOW_TABLE: COVERAGE_INC(rev_flow_table); break;
581 case REV_MAC_LEARNING: COVERAGE_INC(rev_mac_learning); break;
582 case REV_MCAST_SNOOPING: COVERAGE_INC(rev_mcast_snooping); break;
583 }
584 backer->need_revalidate = 0;
585
586 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
587 struct ofport_dpif *ofport;
588 struct ofbundle *bundle;
589
590 if (ofproto->backer != backer) {
591 continue;
592 }
593
594 xlate_txn_start();
595 xlate_ofproto_set(ofproto, ofproto->up.name,
596 ofproto->backer->dpif, ofproto->miss_rule,
597 ofproto->no_packet_in_rule, ofproto->ml,
598 ofproto->stp, ofproto->ms, ofproto->mbridge,
599 ofproto->sflow, ofproto->ipfix,
600 ofproto->netflow, ofproto->up.frag_handling,
601 ofproto->up.forward_bpdu,
602 connmgr_has_in_band(ofproto->up.connmgr),
603 ofproto->backer->enable_recirc,
604 ofproto->backer->variable_length_userdata,
605 ofproto->backer->max_mpls_depth);
606
607 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
608 xlate_bundle_set(ofproto, bundle, bundle->name,
609 bundle->vlan_mode, bundle->vlan,
610 bundle->trunks, bundle->use_priority_tags,
611 bundle->bond, bundle->lacp,
612 bundle->floodable);
613 }
614
615 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
616 int stp_port = ofport->stp_port
617 ? stp_port_no(ofport->stp_port)
618 : -1;
619 xlate_ofport_set(ofproto, ofport->bundle, ofport,
620 ofport->up.ofp_port, ofport->odp_port,
621 ofport->up.netdev, ofport->cfm,
622 ofport->bfd, ofport->peer, stp_port,
623 ofport->qdscp, ofport->n_qdscp,
624 ofport->up.pp.config, ofport->up.pp.state,
625 ofport->is_tunnel, ofport->may_enable);
626 }
627 xlate_txn_commit();
628 }
629
630 udpif_revalidate(backer->udpif);
631 }
632
633 process_dpif_port_changes(backer);
634
635 return 0;
636 }
637
638 /* Check for and handle port changes in 'backer''s dpif. */
639 static void
640 process_dpif_port_changes(struct dpif_backer *backer)
641 {
642 for (;;) {
643 char *devname;
644 int error;
645
646 error = dpif_port_poll(backer->dpif, &devname);
647 switch (error) {
648 case EAGAIN:
649 return;
650
651 case ENOBUFS:
652 process_dpif_all_ports_changed(backer);
653 break;
654
655 case 0:
656 process_dpif_port_change(backer, devname);
657 free(devname);
658 break;
659
660 default:
661 process_dpif_port_error(backer, error);
662 break;
663 }
664 }
665 }
666
667 static void
668 process_dpif_all_ports_changed(struct dpif_backer *backer)
669 {
670 struct ofproto_dpif *ofproto;
671 struct dpif_port dpif_port;
672 struct dpif_port_dump dump;
673 struct sset devnames;
674 const char *devname;
675
676 sset_init(&devnames);
677 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
678 if (ofproto->backer == backer) {
679 struct ofport *ofport;
680
681 HMAP_FOR_EACH (ofport, hmap_node, &ofproto->up.ports) {
682 sset_add(&devnames, netdev_get_name(ofport->netdev));
683 }
684 }
685 }
686 DPIF_PORT_FOR_EACH (&dpif_port, &dump, backer->dpif) {
687 sset_add(&devnames, dpif_port.name);
688 }
689
690 SSET_FOR_EACH (devname, &devnames) {
691 process_dpif_port_change(backer, devname);
692 }
693 sset_destroy(&devnames);
694 }
695
696 static void
697 process_dpif_port_change(struct dpif_backer *backer, const char *devname)
698 {
699 struct ofproto_dpif *ofproto;
700 struct dpif_port port;
701
702 /* Don't report on the datapath's device. */
703 if (!strcmp(devname, dpif_base_name(backer->dpif))) {
704 return;
705 }
706
707 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node,
708 &all_ofproto_dpifs) {
709 if (simap_contains(&ofproto->backer->tnl_backers, devname)) {
710 return;
711 }
712 }
713
714 ofproto = lookup_ofproto_dpif_by_port_name(devname);
715 if (dpif_port_query_by_name(backer->dpif, devname, &port)) {
716 /* The port was removed. If we know the datapath,
717 * report it through poll_set(). If we don't, it may be
718 * notifying us of a removal we initiated, so ignore it.
719 * If there's a pending ENOBUFS, let it stand, since
720 * everything will be reevaluated. */
721 if (ofproto && ofproto->port_poll_errno != ENOBUFS) {
722 sset_add(&ofproto->port_poll_set, devname);
723 ofproto->port_poll_errno = 0;
724 }
725 } else if (!ofproto) {
726 /* The port was added, but we don't know with which
727 * ofproto we should associate it. Delete it. */
728 dpif_port_del(backer->dpif, port.port_no);
729 } else {
730 struct ofport_dpif *ofport;
731
732 ofport = ofport_dpif_cast(shash_find_data(
733 &ofproto->up.port_by_name, devname));
734 if (ofport
735 && ofport->odp_port != port.port_no
736 && !odp_port_to_ofport(backer, port.port_no))
737 {
738 /* 'ofport''s datapath port number has changed from
739 * 'ofport->odp_port' to 'port.port_no'. Update our internal data
740 * structures to match. */
741 ovs_rwlock_wrlock(&backer->odp_to_ofport_lock);
742 hmap_remove(&backer->odp_to_ofport_map, &ofport->odp_port_node);
743 ofport->odp_port = port.port_no;
744 hmap_insert(&backer->odp_to_ofport_map, &ofport->odp_port_node,
745 hash_odp_port(port.port_no));
746 ovs_rwlock_unlock(&backer->odp_to_ofport_lock);
747 backer->need_revalidate = REV_RECONFIGURE;
748 }
749 }
750 dpif_port_destroy(&port);
751 }
752
753 /* Propagate 'error' to all ofprotos based on 'backer'. */
754 static void
755 process_dpif_port_error(struct dpif_backer *backer, int error)
756 {
757 struct ofproto_dpif *ofproto;
758
759 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
760 if (ofproto->backer == backer) {
761 sset_clear(&ofproto->port_poll_set);
762 ofproto->port_poll_errno = error;
763 }
764 }
765 }
766
767 static void
768 type_wait(const char *type)
769 {
770 struct dpif_backer *backer;
771
772 backer = shash_find_data(&all_dpif_backers, type);
773 if (!backer) {
774 /* This is not necessarily a problem, since backers are only
775 * created on demand. */
776 return;
777 }
778
779 dpif_wait(backer->dpif);
780 }
781 \f
782 /* Basic life-cycle. */
783
784 static int add_internal_flows(struct ofproto_dpif *);
785
786 static struct ofproto *
787 alloc(void)
788 {
789 struct ofproto_dpif *ofproto = xmalloc(sizeof *ofproto);
790 return &ofproto->up;
791 }
792
793 static void
794 dealloc(struct ofproto *ofproto_)
795 {
796 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
797 free(ofproto);
798 }
799
800 static void
801 close_dpif_backer(struct dpif_backer *backer)
802 {
803 ovs_assert(backer->refcount > 0);
804
805 if (--backer->refcount) {
806 return;
807 }
808
809 udpif_destroy(backer->udpif);
810
811 simap_destroy(&backer->tnl_backers);
812 ovs_rwlock_destroy(&backer->odp_to_ofport_lock);
813 hmap_destroy(&backer->odp_to_ofport_map);
814 shash_find_and_delete(&all_dpif_backers, backer->type);
815 recirc_id_pool_destroy(backer->rid_pool);
816 free(backer->type);
817 dpif_close(backer->dpif);
818 free(backer);
819 }
820
821 /* Datapath port slated for removal from datapath. */
822 struct odp_garbage {
823 struct list list_node;
824 odp_port_t odp_port;
825 };
826
827 static bool check_variable_length_userdata(struct dpif_backer *backer);
828 static size_t check_max_mpls_depth(struct dpif_backer *backer);
829 static bool check_recirc(struct dpif_backer *backer);
830
831 static int
832 open_dpif_backer(const char *type, struct dpif_backer **backerp)
833 {
834 struct dpif_backer *backer;
835 struct dpif_port_dump port_dump;
836 struct dpif_port port;
837 struct shash_node *node;
838 struct list garbage_list;
839 struct odp_garbage *garbage, *next;
840
841 struct sset names;
842 char *backer_name;
843 const char *name;
844 int error;
845
846 backer = shash_find_data(&all_dpif_backers, type);
847 if (backer) {
848 backer->refcount++;
849 *backerp = backer;
850 return 0;
851 }
852
853 backer_name = xasprintf("ovs-%s", type);
854
855 /* Remove any existing datapaths, since we assume we're the only
856 * userspace controlling the datapath. */
857 sset_init(&names);
858 dp_enumerate_names(type, &names);
859 SSET_FOR_EACH(name, &names) {
860 struct dpif *old_dpif;
861
862 /* Don't remove our backer if it exists. */
863 if (!strcmp(name, backer_name)) {
864 continue;
865 }
866
867 if (dpif_open(name, type, &old_dpif)) {
868 VLOG_WARN("couldn't open old datapath %s to remove it", name);
869 } else {
870 dpif_delete(old_dpif);
871 dpif_close(old_dpif);
872 }
873 }
874 sset_destroy(&names);
875
876 backer = xmalloc(sizeof *backer);
877
878 error = dpif_create_and_open(backer_name, type, &backer->dpif);
879 free(backer_name);
880 if (error) {
881 VLOG_ERR("failed to open datapath of type %s: %s", type,
882 ovs_strerror(error));
883 free(backer);
884 return error;
885 }
886 backer->udpif = udpif_create(backer, backer->dpif);
887
888 backer->type = xstrdup(type);
889 backer->refcount = 1;
890 hmap_init(&backer->odp_to_ofport_map);
891 ovs_rwlock_init(&backer->odp_to_ofport_lock);
892 backer->need_revalidate = 0;
893 simap_init(&backer->tnl_backers);
894 backer->recv_set_enable = !ofproto_get_flow_restore_wait();
895 *backerp = backer;
896
897 if (backer->recv_set_enable) {
898 dpif_flow_flush(backer->dpif);
899 }
900
901 /* Loop through the ports already on the datapath and remove any
902 * that we don't need anymore. */
903 list_init(&garbage_list);
904 dpif_port_dump_start(&port_dump, backer->dpif);
905 while (dpif_port_dump_next(&port_dump, &port)) {
906 node = shash_find(&init_ofp_ports, port.name);
907 if (!node && strcmp(port.name, dpif_base_name(backer->dpif))) {
908 garbage = xmalloc(sizeof *garbage);
909 garbage->odp_port = port.port_no;
910 list_push_front(&garbage_list, &garbage->list_node);
911 }
912 }
913 dpif_port_dump_done(&port_dump);
914
915 LIST_FOR_EACH_SAFE (garbage, next, list_node, &garbage_list) {
916 dpif_port_del(backer->dpif, garbage->odp_port);
917 list_remove(&garbage->list_node);
918 free(garbage);
919 }
920
921 shash_add(&all_dpif_backers, type, backer);
922
923 backer->enable_recirc = check_recirc(backer);
924 backer->variable_length_userdata = check_variable_length_userdata(backer);
925 backer->max_mpls_depth = check_max_mpls_depth(backer);
926 backer->rid_pool = recirc_id_pool_create();
927
928 error = dpif_recv_set(backer->dpif, backer->recv_set_enable);
929 if (error) {
930 VLOG_ERR("failed to listen on datapath of type %s: %s",
931 type, ovs_strerror(error));
932 close_dpif_backer(backer);
933 return error;
934 }
935
936 if (backer->recv_set_enable) {
937 udpif_set_threads(backer->udpif, n_handlers, n_revalidators);
938 }
939
940 return error;
941 }
942
943 /* Tests whether 'backer''s datapath supports recirculation. Only newer
944 * datapaths support OVS_KEY_ATTR_RECIRC_ID in keys. We need to disable some
945 * features on older datapaths that don't support this feature.
946 *
947 * Returns false if 'backer' definitely does not support recirculation, true if
948 * it seems to support recirculation or if at least the error we get is
949 * ambiguous. */
950 static bool
951 check_recirc(struct dpif_backer *backer)
952 {
953 struct flow flow;
954 struct odputil_keybuf keybuf;
955 struct ofpbuf key;
956 int error;
957 bool enable_recirc = false;
958
959 memset(&flow, 0, sizeof flow);
960 flow.recirc_id = 1;
961 flow.dp_hash = 1;
962
963 ofpbuf_use_stack(&key, &keybuf, sizeof keybuf);
964 odp_flow_key_from_flow(&key, &flow, NULL, 0, true);
965
966 error = dpif_flow_put(backer->dpif, DPIF_FP_CREATE,
967 ofpbuf_data(&key), ofpbuf_size(&key), NULL, 0, NULL,
968 0, NULL);
969 if (error && error != EEXIST) {
970 if (error != EINVAL) {
971 VLOG_WARN("%s: Reciculation flow probe failed (%s)",
972 dpif_name(backer->dpif), ovs_strerror(error));
973 }
974 goto done;
975 }
976
977 error = dpif_flow_del(backer->dpif, ofpbuf_data(&key), ofpbuf_size(&key),
978 NULL);
979 if (error) {
980 VLOG_WARN("%s: failed to delete recirculation feature probe flow",
981 dpif_name(backer->dpif));
982 }
983
984 enable_recirc = true;
985
986 done:
987 if (enable_recirc) {
988 VLOG_INFO("%s: Datapath supports recirculation",
989 dpif_name(backer->dpif));
990 } else {
991 VLOG_INFO("%s: Datapath does not support recirculation",
992 dpif_name(backer->dpif));
993 }
994
995 return enable_recirc;
996 }
997
998 /* Tests whether 'backer''s datapath supports variable-length
999 * OVS_USERSPACE_ATTR_USERDATA in OVS_ACTION_ATTR_USERSPACE actions. We need
1000 * to disable some features on older datapaths that don't support this
1001 * feature.
1002 *
1003 * Returns false if 'backer' definitely does not support variable-length
1004 * userdata, true if it seems to support them or if at least the error we get
1005 * is ambiguous. */
1006 static bool
1007 check_variable_length_userdata(struct dpif_backer *backer)
1008 {
1009 struct eth_header *eth;
1010 struct ofpbuf actions;
1011 struct dpif_execute execute;
1012 struct ofpbuf packet;
1013 size_t start;
1014 int error;
1015
1016 /* Compose a userspace action that will cause an ERANGE error on older
1017 * datapaths that don't support variable-length userdata.
1018 *
1019 * We really test for using userdata longer than 8 bytes, but older
1020 * datapaths accepted these, silently truncating the userdata to 8 bytes.
1021 * The same older datapaths rejected userdata shorter than 8 bytes, so we
1022 * test for that instead as a proxy for longer userdata support. */
1023 ofpbuf_init(&actions, 64);
1024 start = nl_msg_start_nested(&actions, OVS_ACTION_ATTR_USERSPACE);
1025 nl_msg_put_u32(&actions, OVS_USERSPACE_ATTR_PID,
1026 dpif_port_get_pid(backer->dpif, ODPP_NONE, 0));
1027 nl_msg_put_unspec_zero(&actions, OVS_USERSPACE_ATTR_USERDATA, 4);
1028 nl_msg_end_nested(&actions, start);
1029
1030 /* Compose a dummy ethernet packet. */
1031 ofpbuf_init(&packet, ETH_HEADER_LEN);
1032 eth = ofpbuf_put_zeros(&packet, ETH_HEADER_LEN);
1033 eth->eth_type = htons(0x1234);
1034
1035 /* Execute the actions. On older datapaths this fails with ERANGE, on
1036 * newer datapaths it succeeds. */
1037 execute.actions = ofpbuf_data(&actions);
1038 execute.actions_len = ofpbuf_size(&actions);
1039 execute.packet = &packet;
1040 execute.md = PKT_METADATA_INITIALIZER(0);
1041 execute.needs_help = false;
1042
1043 error = dpif_execute(backer->dpif, &execute);
1044
1045 ofpbuf_uninit(&packet);
1046 ofpbuf_uninit(&actions);
1047
1048 switch (error) {
1049 case 0:
1050 return true;
1051
1052 case ERANGE:
1053 /* Variable-length userdata is not supported. */
1054 VLOG_WARN("%s: datapath does not support variable-length userdata "
1055 "feature (needs Linux 3.10+ or kernel module from OVS "
1056 "1..11+). The NXAST_SAMPLE action will be ignored.",
1057 dpif_name(backer->dpif));
1058 return false;
1059
1060 default:
1061 /* Something odd happened. We're not sure whether variable-length
1062 * userdata is supported. Default to "yes". */
1063 VLOG_WARN("%s: variable-length userdata feature probe failed (%s)",
1064 dpif_name(backer->dpif), ovs_strerror(error));
1065 return true;
1066 }
1067 }
1068
1069 /* Tests the MPLS label stack depth supported by 'backer''s datapath.
1070 *
1071 * Returns the number of elements in a struct flow's mpls_lse field
1072 * if the datapath supports at least that many entries in an
1073 * MPLS label stack.
1074 * Otherwise returns the number of MPLS push actions supported by
1075 * the datapath. */
1076 static size_t
1077 check_max_mpls_depth(struct dpif_backer *backer)
1078 {
1079 struct flow flow;
1080 int n;
1081
1082 for (n = 0; n < FLOW_MAX_MPLS_LABELS; n++) {
1083 struct odputil_keybuf keybuf;
1084 struct ofpbuf key;
1085 int error;
1086
1087 memset(&flow, 0, sizeof flow);
1088 flow.dl_type = htons(ETH_TYPE_MPLS);
1089 flow_set_mpls_bos(&flow, n, 1);
1090
1091 ofpbuf_use_stack(&key, &keybuf, sizeof keybuf);
1092 odp_flow_key_from_flow(&key, &flow, NULL, 0, false);
1093
1094 error = dpif_flow_put(backer->dpif, DPIF_FP_CREATE,
1095 ofpbuf_data(&key), ofpbuf_size(&key), NULL, 0, NULL, 0, NULL);
1096 if (error && error != EEXIST) {
1097 if (error != EINVAL) {
1098 VLOG_WARN("%s: MPLS stack length feature probe failed (%s)",
1099 dpif_name(backer->dpif), ovs_strerror(error));
1100 }
1101 break;
1102 }
1103
1104 error = dpif_flow_del(backer->dpif, ofpbuf_data(&key), ofpbuf_size(&key), NULL);
1105 if (error) {
1106 VLOG_WARN("%s: failed to delete MPLS feature probe flow",
1107 dpif_name(backer->dpif));
1108 }
1109 }
1110
1111 VLOG_INFO("%s: MPLS label stack length probed as %d",
1112 dpif_name(backer->dpif), n);
1113 return n;
1114 }
1115
1116 static int
1117 construct(struct ofproto *ofproto_)
1118 {
1119 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1120 struct shash_node *node, *next;
1121 int error;
1122
1123 error = open_dpif_backer(ofproto->up.type, &ofproto->backer);
1124 if (error) {
1125 return error;
1126 }
1127
1128 ofproto->netflow = NULL;
1129 ofproto->sflow = NULL;
1130 ofproto->ipfix = NULL;
1131 ofproto->stp = NULL;
1132 ofproto->dump_seq = 0;
1133 hmap_init(&ofproto->bundles);
1134 ofproto->ml = mac_learning_create(MAC_ENTRY_DEFAULT_IDLE_TIME);
1135 ofproto->ms = NULL;
1136 ofproto->mbridge = mbridge_create();
1137 ofproto->has_bonded_bundles = false;
1138 ofproto->lacp_enabled = false;
1139 ovs_mutex_init_adaptive(&ofproto->stats_mutex);
1140 ovs_mutex_init(&ofproto->vsp_mutex);
1141
1142 guarded_list_init(&ofproto->pins);
1143
1144 ofproto_dpif_unixctl_init();
1145
1146 hmap_init(&ofproto->vlandev_map);
1147 hmap_init(&ofproto->realdev_vid_map);
1148
1149 sset_init(&ofproto->ports);
1150 sset_init(&ofproto->ghost_ports);
1151 sset_init(&ofproto->port_poll_set);
1152 ofproto->port_poll_errno = 0;
1153 ofproto->change_seq = 0;
1154 ofproto->pins_seq = seq_create();
1155 ofproto->pins_seqno = seq_read(ofproto->pins_seq);
1156
1157
1158 SHASH_FOR_EACH_SAFE (node, next, &init_ofp_ports) {
1159 struct iface_hint *iface_hint = node->data;
1160
1161 if (!strcmp(iface_hint->br_name, ofproto->up.name)) {
1162 /* Check if the datapath already has this port. */
1163 if (dpif_port_exists(ofproto->backer->dpif, node->name)) {
1164 sset_add(&ofproto->ports, node->name);
1165 }
1166
1167 free(iface_hint->br_name);
1168 free(iface_hint->br_type);
1169 free(iface_hint);
1170 shash_delete(&init_ofp_ports, node);
1171 }
1172 }
1173
1174 hmap_insert(&all_ofproto_dpifs, &ofproto->all_ofproto_dpifs_node,
1175 hash_string(ofproto->up.name, 0));
1176 memset(&ofproto->stats, 0, sizeof ofproto->stats);
1177
1178 ofproto_init_tables(ofproto_, N_TABLES);
1179 error = add_internal_flows(ofproto);
1180
1181 ofproto->up.tables[TBL_INTERNAL].flags = OFTABLE_HIDDEN | OFTABLE_READONLY;
1182
1183 return error;
1184 }
1185
1186 static int
1187 add_internal_miss_flow(struct ofproto_dpif *ofproto, int id,
1188 const struct ofpbuf *ofpacts, struct rule_dpif **rulep)
1189 {
1190 struct match match;
1191 int error;
1192 struct rule *rule;
1193
1194 match_init_catchall(&match);
1195 match_set_reg(&match, 0, id);
1196
1197 error = ofproto_dpif_add_internal_flow(ofproto, &match, 0, 0, ofpacts,
1198 &rule);
1199 *rulep = error ? NULL : rule_dpif_cast(rule);
1200
1201 return error;
1202 }
1203
1204 static int
1205 add_internal_flows(struct ofproto_dpif *ofproto)
1206 {
1207 struct ofpact_controller *controller;
1208 uint64_t ofpacts_stub[128 / 8];
1209 struct ofpbuf ofpacts;
1210 struct rule *unused_rulep OVS_UNUSED;
1211 struct ofpact_resubmit *resubmit;
1212 struct match match;
1213 int error;
1214 int id;
1215
1216 ofpbuf_use_stack(&ofpacts, ofpacts_stub, sizeof ofpacts_stub);
1217 id = 1;
1218
1219 controller = ofpact_put_CONTROLLER(&ofpacts);
1220 controller->max_len = UINT16_MAX;
1221 controller->controller_id = 0;
1222 controller->reason = OFPR_NO_MATCH;
1223 ofpact_pad(&ofpacts);
1224
1225 error = add_internal_miss_flow(ofproto, id++, &ofpacts,
1226 &ofproto->miss_rule);
1227 if (error) {
1228 return error;
1229 }
1230
1231 ofpbuf_clear(&ofpacts);
1232 error = add_internal_miss_flow(ofproto, id++, &ofpacts,
1233 &ofproto->no_packet_in_rule);
1234 if (error) {
1235 return error;
1236 }
1237
1238 error = add_internal_miss_flow(ofproto, id++, &ofpacts,
1239 &ofproto->drop_frags_rule);
1240 if (error) {
1241 return error;
1242 }
1243
1244 /* Continue non-recirculation rule lookups from table 0.
1245 *
1246 * (priority=2), recirc=0, actions=resubmit(, 0)
1247 */
1248 resubmit = ofpact_put_RESUBMIT(&ofpacts);
1249 resubmit->ofpact.compat = 0;
1250 resubmit->in_port = OFPP_IN_PORT;
1251 resubmit->table_id = 0;
1252
1253 match_init_catchall(&match);
1254 match_set_recirc_id(&match, 0);
1255
1256 error = ofproto_dpif_add_internal_flow(ofproto, &match, 2, 0, &ofpacts,
1257 &unused_rulep);
1258 if (error) {
1259 return error;
1260 }
1261
1262 /* Drop any run away recirc rule lookups. Recirc_id has to be
1263 * non-zero when reaching this rule.
1264 *
1265 * (priority=1), *, actions=drop
1266 */
1267 ofpbuf_clear(&ofpacts);
1268 match_init_catchall(&match);
1269 error = ofproto_dpif_add_internal_flow(ofproto, &match, 1, 0, &ofpacts,
1270 &unused_rulep);
1271
1272 return error;
1273 }
1274
1275 static void
1276 destruct(struct ofproto *ofproto_)
1277 {
1278 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1279 struct ofproto_packet_in *pin, *next_pin;
1280 struct rule_dpif *rule;
1281 struct oftable *table;
1282 struct list pins;
1283
1284 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1285 xlate_txn_start();
1286 xlate_remove_ofproto(ofproto);
1287 xlate_txn_commit();
1288
1289 /* Ensure that the upcall processing threads have no remaining references
1290 * to the ofproto or anything in it. */
1291 udpif_synchronize(ofproto->backer->udpif);
1292
1293 hmap_remove(&all_ofproto_dpifs, &ofproto->all_ofproto_dpifs_node);
1294
1295 OFPROTO_FOR_EACH_TABLE (table, &ofproto->up) {
1296 CLS_FOR_EACH_SAFE (rule, up.cr, &table->cls) {
1297 ofproto_rule_delete(&ofproto->up, &rule->up);
1298 }
1299 }
1300
1301 guarded_list_pop_all(&ofproto->pins, &pins);
1302 LIST_FOR_EACH_SAFE (pin, next_pin, list_node, &pins) {
1303 list_remove(&pin->list_node);
1304 free(CONST_CAST(void *, pin->up.packet));
1305 free(pin);
1306 }
1307 guarded_list_destroy(&ofproto->pins);
1308
1309 mbridge_unref(ofproto->mbridge);
1310
1311 netflow_unref(ofproto->netflow);
1312 dpif_sflow_unref(ofproto->sflow);
1313 hmap_destroy(&ofproto->bundles);
1314 mac_learning_unref(ofproto->ml);
1315 mcast_snooping_unref(ofproto->ms);
1316
1317 hmap_destroy(&ofproto->vlandev_map);
1318 hmap_destroy(&ofproto->realdev_vid_map);
1319
1320 sset_destroy(&ofproto->ports);
1321 sset_destroy(&ofproto->ghost_ports);
1322 sset_destroy(&ofproto->port_poll_set);
1323
1324 ovs_mutex_destroy(&ofproto->stats_mutex);
1325 ovs_mutex_destroy(&ofproto->vsp_mutex);
1326
1327 seq_destroy(ofproto->pins_seq);
1328
1329 close_dpif_backer(ofproto->backer);
1330 }
1331
1332 static int
1333 run(struct ofproto *ofproto_)
1334 {
1335 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1336 uint64_t new_seq, new_dump_seq;
1337
1338 if (mbridge_need_revalidate(ofproto->mbridge)) {
1339 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1340 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
1341 mac_learning_flush(ofproto->ml);
1342 ovs_rwlock_unlock(&ofproto->ml->rwlock);
1343 mcast_snooping_mdb_flush(ofproto->ms);
1344 }
1345
1346 /* Always updates the ofproto->pins_seqno to avoid frequent wakeup during
1347 * flow restore. Even though nothing is processed during flow restore,
1348 * all queued 'pins' will be handled immediately when flow restore
1349 * completes. */
1350 ofproto->pins_seqno = seq_read(ofproto->pins_seq);
1351
1352 /* Do not perform any periodic activity required by 'ofproto' while
1353 * waiting for flow restore to complete. */
1354 if (!ofproto_get_flow_restore_wait()) {
1355 struct ofproto_packet_in *pin, *next_pin;
1356 struct list pins;
1357
1358 guarded_list_pop_all(&ofproto->pins, &pins);
1359 LIST_FOR_EACH_SAFE (pin, next_pin, list_node, &pins) {
1360 connmgr_send_packet_in(ofproto->up.connmgr, pin);
1361 list_remove(&pin->list_node);
1362 free(CONST_CAST(void *, pin->up.packet));
1363 free(pin);
1364 }
1365 }
1366
1367 if (ofproto->netflow) {
1368 netflow_run(ofproto->netflow);
1369 }
1370 if (ofproto->sflow) {
1371 dpif_sflow_run(ofproto->sflow);
1372 }
1373 if (ofproto->ipfix) {
1374 dpif_ipfix_run(ofproto->ipfix);
1375 }
1376
1377 new_seq = seq_read(connectivity_seq_get());
1378 if (ofproto->change_seq != new_seq) {
1379 struct ofport_dpif *ofport;
1380
1381 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
1382 port_run(ofport);
1383 }
1384
1385 ofproto->change_seq = new_seq;
1386 }
1387 if (ofproto->lacp_enabled || ofproto->has_bonded_bundles) {
1388 struct ofbundle *bundle;
1389
1390 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
1391 bundle_run(bundle);
1392 }
1393 }
1394
1395 stp_run(ofproto);
1396 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
1397 if (mac_learning_run(ofproto->ml)) {
1398 ofproto->backer->need_revalidate = REV_MAC_LEARNING;
1399 }
1400 ovs_rwlock_unlock(&ofproto->ml->rwlock);
1401
1402 if (mcast_snooping_run(ofproto->ms)) {
1403 ofproto->backer->need_revalidate = REV_MCAST_SNOOPING;
1404 }
1405
1406 new_dump_seq = seq_read(udpif_dump_seq(ofproto->backer->udpif));
1407 if (ofproto->dump_seq != new_dump_seq) {
1408 struct rule *rule, *next_rule;
1409
1410 /* We know stats are relatively fresh, so now is a good time to do some
1411 * periodic work. */
1412 ofproto->dump_seq = new_dump_seq;
1413
1414 /* Expire OpenFlow flows whose idle_timeout or hard_timeout
1415 * has passed. */
1416 ovs_mutex_lock(&ofproto_mutex);
1417 LIST_FOR_EACH_SAFE (rule, next_rule, expirable,
1418 &ofproto->up.expirable) {
1419 rule_expire(rule_dpif_cast(rule));
1420 }
1421 ovs_mutex_unlock(&ofproto_mutex);
1422
1423 /* All outstanding data in existing flows has been accounted, so it's a
1424 * good time to do bond rebalancing. */
1425 if (ofproto->has_bonded_bundles) {
1426 struct ofbundle *bundle;
1427
1428 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
1429 if (bundle->bond) {
1430 bond_rebalance(bundle->bond);
1431 }
1432 }
1433 }
1434 }
1435
1436 return 0;
1437 }
1438
1439 static void
1440 wait(struct ofproto *ofproto_)
1441 {
1442 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1443
1444 if (ofproto_get_flow_restore_wait()) {
1445 return;
1446 }
1447
1448 if (ofproto->sflow) {
1449 dpif_sflow_wait(ofproto->sflow);
1450 }
1451 if (ofproto->ipfix) {
1452 dpif_ipfix_wait(ofproto->ipfix);
1453 }
1454 if (ofproto->lacp_enabled || ofproto->has_bonded_bundles) {
1455 struct ofbundle *bundle;
1456
1457 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
1458 bundle_wait(bundle);
1459 }
1460 }
1461 if (ofproto->netflow) {
1462 netflow_wait(ofproto->netflow);
1463 }
1464 ovs_rwlock_rdlock(&ofproto->ml->rwlock);
1465 mac_learning_wait(ofproto->ml);
1466 ovs_rwlock_unlock(&ofproto->ml->rwlock);
1467 mcast_snooping_wait(ofproto->ms);
1468 stp_wait(ofproto);
1469 if (ofproto->backer->need_revalidate) {
1470 /* Shouldn't happen, but if it does just go around again. */
1471 VLOG_DBG_RL(&rl, "need revalidate in ofproto_wait_cb()");
1472 poll_immediate_wake();
1473 }
1474
1475 seq_wait(udpif_dump_seq(ofproto->backer->udpif), ofproto->dump_seq);
1476 seq_wait(ofproto->pins_seq, ofproto->pins_seqno);
1477 }
1478
1479 static void
1480 type_get_memory_usage(const char *type, struct simap *usage)
1481 {
1482 struct dpif_backer *backer;
1483
1484 backer = shash_find_data(&all_dpif_backers, type);
1485 if (backer) {
1486 udpif_get_memory_usage(backer->udpif, usage);
1487 }
1488 }
1489
1490 static void
1491 flush(struct ofproto *ofproto_)
1492 {
1493 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1494 struct dpif_backer *backer = ofproto->backer;
1495
1496 if (backer) {
1497 udpif_flush(backer->udpif);
1498 }
1499 }
1500
1501 static void
1502 get_features(struct ofproto *ofproto_ OVS_UNUSED,
1503 bool *arp_match_ip, uint64_t *ofpacts)
1504 {
1505 *arp_match_ip = true;
1506 *ofpacts = (UINT64_C(1) << N_OFPACTS) - 1;
1507 }
1508
1509 static void
1510 get_tables(struct ofproto *ofproto, struct ofputil_table_stats *stats)
1511 {
1512 int i;
1513
1514 strcpy(stats->name, "classifier");
1515
1516 for (i = 0; i < ofproto->n_tables; i++) {
1517 unsigned long missed, matched;
1518
1519 atomic_read(&ofproto->tables[i].n_matched, &matched);
1520 stats[i].matched_count = matched;
1521 atomic_read(&ofproto->tables[i].n_missed, &missed);
1522 stats[i].lookup_count = matched + missed;
1523 }
1524 }
1525
1526 static struct ofport *
1527 port_alloc(void)
1528 {
1529 struct ofport_dpif *port = xmalloc(sizeof *port);
1530 return &port->up;
1531 }
1532
1533 static void
1534 port_dealloc(struct ofport *port_)
1535 {
1536 struct ofport_dpif *port = ofport_dpif_cast(port_);
1537 free(port);
1538 }
1539
1540 static int
1541 port_construct(struct ofport *port_)
1542 {
1543 struct ofport_dpif *port = ofport_dpif_cast(port_);
1544 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
1545 const struct netdev *netdev = port->up.netdev;
1546 char namebuf[NETDEV_VPORT_NAME_BUFSIZE];
1547 struct dpif_port dpif_port;
1548 int error;
1549
1550 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1551 port->bundle = NULL;
1552 port->cfm = NULL;
1553 port->bfd = NULL;
1554 port->may_enable = true;
1555 port->stp_port = NULL;
1556 port->stp_state = STP_DISABLED;
1557 port->is_tunnel = false;
1558 port->peer = NULL;
1559 port->qdscp = NULL;
1560 port->n_qdscp = 0;
1561 port->realdev_ofp_port = 0;
1562 port->vlandev_vid = 0;
1563 port->carrier_seq = netdev_get_carrier_resets(netdev);
1564 port->is_layer3 = netdev_vport_is_layer3(netdev);
1565
1566 if (netdev_vport_is_patch(netdev)) {
1567 /* By bailing out here, we don't submit the port to the sFlow module
1568 * to be considered for counter polling export. This is correct
1569 * because the patch port represents an interface that sFlow considers
1570 * to be "internal" to the switch as a whole, and therefore not an
1571 * candidate for counter polling. */
1572 port->odp_port = ODPP_NONE;
1573 ofport_update_peer(port);
1574 return 0;
1575 }
1576
1577 error = dpif_port_query_by_name(ofproto->backer->dpif,
1578 netdev_vport_get_dpif_port(netdev, namebuf,
1579 sizeof namebuf),
1580 &dpif_port);
1581 if (error) {
1582 return error;
1583 }
1584
1585 port->odp_port = dpif_port.port_no;
1586
1587 if (netdev_get_tunnel_config(netdev)) {
1588 tnl_port_add(port, port->up.netdev, port->odp_port);
1589 port->is_tunnel = true;
1590 } else {
1591 /* Sanity-check that a mapping doesn't already exist. This
1592 * shouldn't happen for non-tunnel ports. */
1593 if (odp_port_to_ofp_port(ofproto, port->odp_port) != OFPP_NONE) {
1594 VLOG_ERR("port %s already has an OpenFlow port number",
1595 dpif_port.name);
1596 dpif_port_destroy(&dpif_port);
1597 return EBUSY;
1598 }
1599
1600 ovs_rwlock_wrlock(&ofproto->backer->odp_to_ofport_lock);
1601 hmap_insert(&ofproto->backer->odp_to_ofport_map, &port->odp_port_node,
1602 hash_odp_port(port->odp_port));
1603 ovs_rwlock_unlock(&ofproto->backer->odp_to_ofport_lock);
1604 }
1605 dpif_port_destroy(&dpif_port);
1606
1607 if (ofproto->sflow) {
1608 dpif_sflow_add_port(ofproto->sflow, port_, port->odp_port);
1609 }
1610
1611 return 0;
1612 }
1613
1614 static void
1615 port_destruct(struct ofport *port_)
1616 {
1617 struct ofport_dpif *port = ofport_dpif_cast(port_);
1618 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
1619 const char *devname = netdev_get_name(port->up.netdev);
1620 char namebuf[NETDEV_VPORT_NAME_BUFSIZE];
1621 const char *dp_port_name;
1622
1623 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1624 xlate_txn_start();
1625 xlate_ofport_remove(port);
1626 xlate_txn_commit();
1627
1628 dp_port_name = netdev_vport_get_dpif_port(port->up.netdev, namebuf,
1629 sizeof namebuf);
1630 if (dpif_port_exists(ofproto->backer->dpif, dp_port_name)) {
1631 /* The underlying device is still there, so delete it. This
1632 * happens when the ofproto is being destroyed, since the caller
1633 * assumes that removal of attached ports will happen as part of
1634 * destruction. */
1635 if (!port->is_tunnel) {
1636 dpif_port_del(ofproto->backer->dpif, port->odp_port);
1637 }
1638 }
1639
1640 if (port->peer) {
1641 port->peer->peer = NULL;
1642 port->peer = NULL;
1643 }
1644
1645 if (port->odp_port != ODPP_NONE && !port->is_tunnel) {
1646 ovs_rwlock_wrlock(&ofproto->backer->odp_to_ofport_lock);
1647 hmap_remove(&ofproto->backer->odp_to_ofport_map, &port->odp_port_node);
1648 ovs_rwlock_unlock(&ofproto->backer->odp_to_ofport_lock);
1649 }
1650
1651 tnl_port_del(port);
1652 sset_find_and_delete(&ofproto->ports, devname);
1653 sset_find_and_delete(&ofproto->ghost_ports, devname);
1654 bundle_remove(port_);
1655 set_cfm(port_, NULL);
1656 set_bfd(port_, NULL);
1657 if (port->stp_port) {
1658 stp_port_disable(port->stp_port);
1659 }
1660 if (ofproto->sflow) {
1661 dpif_sflow_del_port(ofproto->sflow, port->odp_port);
1662 }
1663
1664 free(port->qdscp);
1665 }
1666
1667 static void
1668 port_modified(struct ofport *port_)
1669 {
1670 struct ofport_dpif *port = ofport_dpif_cast(port_);
1671
1672 if (port->bundle && port->bundle->bond) {
1673 bond_slave_set_netdev(port->bundle->bond, port, port->up.netdev);
1674 }
1675
1676 if (port->cfm) {
1677 cfm_set_netdev(port->cfm, port->up.netdev);
1678 }
1679
1680 if (port->bfd) {
1681 bfd_set_netdev(port->bfd, port->up.netdev);
1682 }
1683
1684 ofproto_dpif_monitor_port_update(port, port->bfd, port->cfm,
1685 port->up.pp.hw_addr);
1686
1687 if (port->is_tunnel && tnl_port_reconfigure(port, port->up.netdev,
1688 port->odp_port)) {
1689 ofproto_dpif_cast(port->up.ofproto)->backer->need_revalidate =
1690 REV_RECONFIGURE;
1691 }
1692
1693 ofport_update_peer(port);
1694 }
1695
1696 static void
1697 port_reconfigured(struct ofport *port_, enum ofputil_port_config old_config)
1698 {
1699 struct ofport_dpif *port = ofport_dpif_cast(port_);
1700 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
1701 enum ofputil_port_config changed = old_config ^ port->up.pp.config;
1702
1703 if (changed & (OFPUTIL_PC_NO_RECV | OFPUTIL_PC_NO_RECV_STP |
1704 OFPUTIL_PC_NO_FWD | OFPUTIL_PC_NO_FLOOD |
1705 OFPUTIL_PC_NO_PACKET_IN)) {
1706 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1707
1708 if (changed & OFPUTIL_PC_NO_FLOOD && port->bundle) {
1709 bundle_update(port->bundle);
1710 }
1711 }
1712 }
1713
1714 static int
1715 set_sflow(struct ofproto *ofproto_,
1716 const struct ofproto_sflow_options *sflow_options)
1717 {
1718 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1719 struct dpif_sflow *ds = ofproto->sflow;
1720
1721 if (sflow_options) {
1722 if (!ds) {
1723 struct ofport_dpif *ofport;
1724
1725 ds = ofproto->sflow = dpif_sflow_create();
1726 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
1727 dpif_sflow_add_port(ds, &ofport->up, ofport->odp_port);
1728 }
1729 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1730 }
1731 dpif_sflow_set_options(ds, sflow_options);
1732 } else {
1733 if (ds) {
1734 dpif_sflow_unref(ds);
1735 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1736 ofproto->sflow = NULL;
1737 }
1738 }
1739 return 0;
1740 }
1741
1742 static int
1743 set_ipfix(
1744 struct ofproto *ofproto_,
1745 const struct ofproto_ipfix_bridge_exporter_options *bridge_exporter_options,
1746 const struct ofproto_ipfix_flow_exporter_options *flow_exporters_options,
1747 size_t n_flow_exporters_options)
1748 {
1749 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1750 struct dpif_ipfix *di = ofproto->ipfix;
1751 bool has_options = bridge_exporter_options || flow_exporters_options;
1752
1753 if (has_options && !di) {
1754 di = ofproto->ipfix = dpif_ipfix_create();
1755 }
1756
1757 if (di) {
1758 /* Call set_options in any case to cleanly flush the flow
1759 * caches in the last exporters that are to be destroyed. */
1760 dpif_ipfix_set_options(
1761 di, bridge_exporter_options, flow_exporters_options,
1762 n_flow_exporters_options);
1763
1764 if (!has_options) {
1765 dpif_ipfix_unref(di);
1766 ofproto->ipfix = NULL;
1767 }
1768 }
1769
1770 return 0;
1771 }
1772
1773 static int
1774 set_cfm(struct ofport *ofport_, const struct cfm_settings *s)
1775 {
1776 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1777 int error = 0;
1778
1779 if (s) {
1780 if (!ofport->cfm) {
1781 struct ofproto_dpif *ofproto;
1782
1783 ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1784 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1785 ofport->cfm = cfm_create(ofport->up.netdev);
1786 }
1787
1788 if (cfm_configure(ofport->cfm, s)) {
1789 error = 0;
1790 goto out;
1791 }
1792
1793 error = EINVAL;
1794 }
1795 cfm_unref(ofport->cfm);
1796 ofport->cfm = NULL;
1797 out:
1798 ofproto_dpif_monitor_port_update(ofport, ofport->bfd, ofport->cfm,
1799 ofport->up.pp.hw_addr);
1800 return error;
1801 }
1802
1803 static bool
1804 cfm_status_changed(struct ofport *ofport_)
1805 {
1806 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1807
1808 return ofport->cfm ? cfm_check_status_change(ofport->cfm) : true;
1809 }
1810
1811 static int
1812 get_cfm_status(const struct ofport *ofport_,
1813 struct cfm_status *status)
1814 {
1815 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1816 int ret = 0;
1817
1818 if (ofport->cfm) {
1819 cfm_get_status(ofport->cfm, status);
1820 } else {
1821 ret = ENOENT;
1822 }
1823
1824 return ret;
1825 }
1826
1827 static int
1828 set_bfd(struct ofport *ofport_, const struct smap *cfg)
1829 {
1830 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport_->ofproto);
1831 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1832 struct bfd *old;
1833
1834 old = ofport->bfd;
1835 ofport->bfd = bfd_configure(old, netdev_get_name(ofport->up.netdev),
1836 cfg, ofport->up.netdev);
1837 if (ofport->bfd != old) {
1838 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1839 }
1840 ofproto_dpif_monitor_port_update(ofport, ofport->bfd, ofport->cfm,
1841 ofport->up.pp.hw_addr);
1842 return 0;
1843 }
1844
1845 static bool
1846 bfd_status_changed(struct ofport *ofport_)
1847 {
1848 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1849
1850 return ofport->bfd ? bfd_check_status_change(ofport->bfd) : true;
1851 }
1852
1853 static int
1854 get_bfd_status(struct ofport *ofport_, struct smap *smap)
1855 {
1856 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1857 int ret = 0;
1858
1859 if (ofport->bfd) {
1860 bfd_get_status(ofport->bfd, smap);
1861 } else {
1862 ret = ENOENT;
1863 }
1864
1865 return ret;
1866 }
1867 \f
1868 /* Spanning Tree. */
1869
1870 static void
1871 send_bpdu_cb(struct ofpbuf *pkt, int port_num, void *ofproto_)
1872 {
1873 struct ofproto_dpif *ofproto = ofproto_;
1874 struct stp_port *sp = stp_get_port(ofproto->stp, port_num);
1875 struct ofport_dpif *ofport;
1876
1877 ofport = stp_port_get_aux(sp);
1878 if (!ofport) {
1879 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on unknown port %d",
1880 ofproto->up.name, port_num);
1881 } else {
1882 struct eth_header *eth = ofpbuf_l2(pkt);
1883
1884 netdev_get_etheraddr(ofport->up.netdev, eth->eth_src);
1885 if (eth_addr_is_zero(eth->eth_src)) {
1886 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on port %d "
1887 "with unknown MAC", ofproto->up.name, port_num);
1888 } else {
1889 ofproto_dpif_send_packet(ofport, pkt);
1890 }
1891 }
1892 ofpbuf_delete(pkt);
1893 }
1894
1895 /* Configures STP on 'ofproto_' using the settings defined in 's'. */
1896 static int
1897 set_stp(struct ofproto *ofproto_, const struct ofproto_stp_settings *s)
1898 {
1899 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1900
1901 /* Only revalidate flows if the configuration changed. */
1902 if (!s != !ofproto->stp) {
1903 ofproto->backer->need_revalidate = REV_RECONFIGURE;
1904 }
1905
1906 if (s) {
1907 if (!ofproto->stp) {
1908 ofproto->stp = stp_create(ofproto_->name, s->system_id,
1909 send_bpdu_cb, ofproto);
1910 ofproto->stp_last_tick = time_msec();
1911 }
1912
1913 stp_set_bridge_id(ofproto->stp, s->system_id);
1914 stp_set_bridge_priority(ofproto->stp, s->priority);
1915 stp_set_hello_time(ofproto->stp, s->hello_time);
1916 stp_set_max_age(ofproto->stp, s->max_age);
1917 stp_set_forward_delay(ofproto->stp, s->fwd_delay);
1918 } else {
1919 struct ofport *ofport;
1920
1921 HMAP_FOR_EACH (ofport, hmap_node, &ofproto->up.ports) {
1922 set_stp_port(ofport, NULL);
1923 }
1924
1925 stp_unref(ofproto->stp);
1926 ofproto->stp = NULL;
1927 }
1928
1929 return 0;
1930 }
1931
1932 static int
1933 get_stp_status(struct ofproto *ofproto_, struct ofproto_stp_status *s)
1934 {
1935 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1936
1937 if (ofproto->stp) {
1938 s->enabled = true;
1939 s->bridge_id = stp_get_bridge_id(ofproto->stp);
1940 s->designated_root = stp_get_designated_root(ofproto->stp);
1941 s->root_path_cost = stp_get_root_path_cost(ofproto->stp);
1942 } else {
1943 s->enabled = false;
1944 }
1945
1946 return 0;
1947 }
1948
1949 static void
1950 update_stp_port_state(struct ofport_dpif *ofport)
1951 {
1952 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1953 enum stp_state state;
1954
1955 /* Figure out new state. */
1956 state = ofport->stp_port ? stp_port_get_state(ofport->stp_port)
1957 : STP_DISABLED;
1958
1959 /* Update state. */
1960 if (ofport->stp_state != state) {
1961 enum ofputil_port_state of_state;
1962 bool fwd_change;
1963
1964 VLOG_DBG_RL(&rl, "port %s: STP state changed from %s to %s",
1965 netdev_get_name(ofport->up.netdev),
1966 stp_state_name(ofport->stp_state),
1967 stp_state_name(state));
1968 if (stp_learn_in_state(ofport->stp_state)
1969 != stp_learn_in_state(state)) {
1970 /* xxx Learning action flows should also be flushed. */
1971 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
1972 mac_learning_flush(ofproto->ml);
1973 ovs_rwlock_unlock(&ofproto->ml->rwlock);
1974 mcast_snooping_mdb_flush(ofproto->ms);
1975 }
1976 fwd_change = stp_forward_in_state(ofport->stp_state)
1977 != stp_forward_in_state(state);
1978
1979 ofproto->backer->need_revalidate = REV_STP;
1980 ofport->stp_state = state;
1981 ofport->stp_state_entered = time_msec();
1982
1983 if (fwd_change && ofport->bundle) {
1984 bundle_update(ofport->bundle);
1985 }
1986
1987 /* Update the STP state bits in the OpenFlow port description. */
1988 of_state = ofport->up.pp.state & ~OFPUTIL_PS_STP_MASK;
1989 of_state |= (state == STP_LISTENING ? OFPUTIL_PS_STP_LISTEN
1990 : state == STP_LEARNING ? OFPUTIL_PS_STP_LEARN
1991 : state == STP_FORWARDING ? OFPUTIL_PS_STP_FORWARD
1992 : state == STP_BLOCKING ? OFPUTIL_PS_STP_BLOCK
1993 : 0);
1994 ofproto_port_set_state(&ofport->up, of_state);
1995 }
1996 }
1997
1998 /* Configures STP on 'ofport_' using the settings defined in 's'. The
1999 * caller is responsible for assigning STP port numbers and ensuring
2000 * there are no duplicates. */
2001 static int
2002 set_stp_port(struct ofport *ofport_,
2003 const struct ofproto_port_stp_settings *s)
2004 {
2005 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2006 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2007 struct stp_port *sp = ofport->stp_port;
2008
2009 if (!s || !s->enable) {
2010 if (sp) {
2011 ofport->stp_port = NULL;
2012 stp_port_disable(sp);
2013 update_stp_port_state(ofport);
2014 }
2015 return 0;
2016 } else if (sp && stp_port_no(sp) != s->port_num
2017 && ofport == stp_port_get_aux(sp)) {
2018 /* The port-id changed, so disable the old one if it's not
2019 * already in use by another port. */
2020 stp_port_disable(sp);
2021 }
2022
2023 sp = ofport->stp_port = stp_get_port(ofproto->stp, s->port_num);
2024 stp_port_enable(sp);
2025
2026 stp_port_set_name(sp, netdev_get_name(ofport->up.netdev));
2027 stp_port_set_aux(sp, ofport);
2028 stp_port_set_priority(sp, s->priority);
2029 stp_port_set_path_cost(sp, s->path_cost);
2030
2031 update_stp_port_state(ofport);
2032
2033 return 0;
2034 }
2035
2036 static int
2037 get_stp_port_status(struct ofport *ofport_,
2038 struct ofproto_port_stp_status *s)
2039 {
2040 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2041 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2042 struct stp_port *sp = ofport->stp_port;
2043
2044 if (!ofproto->stp || !sp) {
2045 s->enabled = false;
2046 return 0;
2047 }
2048
2049 s->enabled = true;
2050 s->port_id = stp_port_get_id(sp);
2051 s->state = stp_port_get_state(sp);
2052 s->sec_in_state = (time_msec() - ofport->stp_state_entered) / 1000;
2053 s->role = stp_port_get_role(sp);
2054
2055 return 0;
2056 }
2057
2058 static int
2059 get_stp_port_stats(struct ofport *ofport_,
2060 struct ofproto_port_stp_stats *s)
2061 {
2062 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2063 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2064 struct stp_port *sp = ofport->stp_port;
2065
2066 if (!ofproto->stp || !sp) {
2067 s->enabled = false;
2068 return 0;
2069 }
2070
2071 s->enabled = true;
2072 stp_port_get_counts(sp, &s->tx_count, &s->rx_count, &s->error_count);
2073
2074 return 0;
2075 }
2076
2077 static void
2078 stp_run(struct ofproto_dpif *ofproto)
2079 {
2080 if (ofproto->stp) {
2081 long long int now = time_msec();
2082 long long int elapsed = now - ofproto->stp_last_tick;
2083 struct stp_port *sp;
2084
2085 if (elapsed > 0) {
2086 stp_tick(ofproto->stp, MIN(INT_MAX, elapsed));
2087 ofproto->stp_last_tick = now;
2088 }
2089 while (stp_get_changed_port(ofproto->stp, &sp)) {
2090 struct ofport_dpif *ofport = stp_port_get_aux(sp);
2091
2092 if (ofport) {
2093 update_stp_port_state(ofport);
2094 }
2095 }
2096
2097 if (stp_check_and_reset_fdb_flush(ofproto->stp)) {
2098 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
2099 mac_learning_flush(ofproto->ml);
2100 ovs_rwlock_unlock(&ofproto->ml->rwlock);
2101 mcast_snooping_mdb_flush(ofproto->ms);
2102 }
2103 }
2104 }
2105
2106 static void
2107 stp_wait(struct ofproto_dpif *ofproto)
2108 {
2109 if (ofproto->stp) {
2110 poll_timer_wait(1000);
2111 }
2112 }
2113 \f
2114 static int
2115 set_queues(struct ofport *ofport_, const struct ofproto_port_queue *qdscp,
2116 size_t n_qdscp)
2117 {
2118 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2119 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2120
2121 if (ofport->n_qdscp != n_qdscp
2122 || (n_qdscp && memcmp(ofport->qdscp, qdscp,
2123 n_qdscp * sizeof *qdscp))) {
2124 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2125 free(ofport->qdscp);
2126 ofport->qdscp = n_qdscp
2127 ? xmemdup(qdscp, n_qdscp * sizeof *qdscp)
2128 : NULL;
2129 ofport->n_qdscp = n_qdscp;
2130 }
2131
2132 return 0;
2133 }
2134 \f
2135 /* Bundles. */
2136
2137 /* Expires all MAC learning entries associated with 'bundle' and forces its
2138 * ofproto to revalidate every flow.
2139 *
2140 * Normally MAC learning entries are removed only from the ofproto associated
2141 * with 'bundle', but if 'all_ofprotos' is true, then the MAC learning entries
2142 * are removed from every ofproto. When patch ports and SLB bonds are in use
2143 * and a VM migration happens and the gratuitous ARPs are somehow lost, this
2144 * avoids a MAC_ENTRY_IDLE_TIME delay before the migrated VM can communicate
2145 * with the host from which it migrated. */
2146 static void
2147 bundle_flush_macs(struct ofbundle *bundle, bool all_ofprotos)
2148 {
2149 struct ofproto_dpif *ofproto = bundle->ofproto;
2150 struct mac_learning *ml = ofproto->ml;
2151 struct mac_entry *mac, *next_mac;
2152
2153 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2154 ovs_rwlock_wrlock(&ml->rwlock);
2155 LIST_FOR_EACH_SAFE (mac, next_mac, lru_node, &ml->lrus) {
2156 if (mac->port.p == bundle) {
2157 if (all_ofprotos) {
2158 struct ofproto_dpif *o;
2159
2160 HMAP_FOR_EACH (o, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
2161 if (o != ofproto) {
2162 struct mac_entry *e;
2163
2164 ovs_rwlock_wrlock(&o->ml->rwlock);
2165 e = mac_learning_lookup(o->ml, mac->mac, mac->vlan);
2166 if (e) {
2167 mac_learning_expire(o->ml, e);
2168 }
2169 ovs_rwlock_unlock(&o->ml->rwlock);
2170 }
2171 }
2172 }
2173
2174 mac_learning_expire(ml, mac);
2175 }
2176 }
2177 ovs_rwlock_unlock(&ml->rwlock);
2178 }
2179
2180 static struct ofbundle *
2181 bundle_lookup(const struct ofproto_dpif *ofproto, void *aux)
2182 {
2183 struct ofbundle *bundle;
2184
2185 HMAP_FOR_EACH_IN_BUCKET (bundle, hmap_node, hash_pointer(aux, 0),
2186 &ofproto->bundles) {
2187 if (bundle->aux == aux) {
2188 return bundle;
2189 }
2190 }
2191 return NULL;
2192 }
2193
2194 static void
2195 bundle_update(struct ofbundle *bundle)
2196 {
2197 struct ofport_dpif *port;
2198
2199 bundle->floodable = true;
2200 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
2201 if (port->up.pp.config & OFPUTIL_PC_NO_FLOOD
2202 || port->is_layer3
2203 || !stp_forward_in_state(port->stp_state)) {
2204 bundle->floodable = false;
2205 break;
2206 }
2207 }
2208 }
2209
2210 static void
2211 bundle_del_port(struct ofport_dpif *port)
2212 {
2213 struct ofbundle *bundle = port->bundle;
2214
2215 bundle->ofproto->backer->need_revalidate = REV_RECONFIGURE;
2216
2217 list_remove(&port->bundle_node);
2218 port->bundle = NULL;
2219
2220 if (bundle->lacp) {
2221 lacp_slave_unregister(bundle->lacp, port);
2222 }
2223 if (bundle->bond) {
2224 bond_slave_unregister(bundle->bond, port);
2225 }
2226
2227 bundle_update(bundle);
2228 }
2229
2230 static bool
2231 bundle_add_port(struct ofbundle *bundle, ofp_port_t ofp_port,
2232 struct lacp_slave_settings *lacp)
2233 {
2234 struct ofport_dpif *port;
2235
2236 port = get_ofp_port(bundle->ofproto, ofp_port);
2237 if (!port) {
2238 return false;
2239 }
2240
2241 if (port->bundle != bundle) {
2242 bundle->ofproto->backer->need_revalidate = REV_RECONFIGURE;
2243 if (port->bundle) {
2244 bundle_remove(&port->up);
2245 }
2246
2247 port->bundle = bundle;
2248 list_push_back(&bundle->ports, &port->bundle_node);
2249 if (port->up.pp.config & OFPUTIL_PC_NO_FLOOD
2250 || port->is_layer3
2251 || !stp_forward_in_state(port->stp_state)) {
2252 bundle->floodable = false;
2253 }
2254 }
2255 if (lacp) {
2256 bundle->ofproto->backer->need_revalidate = REV_RECONFIGURE;
2257 lacp_slave_register(bundle->lacp, port, lacp);
2258 }
2259
2260 return true;
2261 }
2262
2263 static void
2264 bundle_destroy(struct ofbundle *bundle)
2265 {
2266 struct ofproto_dpif *ofproto;
2267 struct ofport_dpif *port, *next_port;
2268
2269 if (!bundle) {
2270 return;
2271 }
2272
2273 ofproto = bundle->ofproto;
2274 mbridge_unregister_bundle(ofproto->mbridge, bundle->aux);
2275
2276 xlate_txn_start();
2277 xlate_bundle_remove(bundle);
2278 xlate_txn_commit();
2279
2280 LIST_FOR_EACH_SAFE (port, next_port, bundle_node, &bundle->ports) {
2281 bundle_del_port(port);
2282 }
2283
2284 bundle_flush_macs(bundle, true);
2285 hmap_remove(&ofproto->bundles, &bundle->hmap_node);
2286 free(bundle->name);
2287 free(bundle->trunks);
2288 lacp_unref(bundle->lacp);
2289 bond_unref(bundle->bond);
2290 free(bundle);
2291 }
2292
2293 static int
2294 bundle_set(struct ofproto *ofproto_, void *aux,
2295 const struct ofproto_bundle_settings *s)
2296 {
2297 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2298 bool need_flush = false;
2299 struct ofport_dpif *port;
2300 struct ofbundle *bundle;
2301 unsigned long *trunks;
2302 int vlan;
2303 size_t i;
2304 bool ok;
2305
2306 if (!s) {
2307 bundle_destroy(bundle_lookup(ofproto, aux));
2308 return 0;
2309 }
2310
2311 ovs_assert(s->n_slaves == 1 || s->bond != NULL);
2312 ovs_assert((s->lacp != NULL) == (s->lacp_slaves != NULL));
2313
2314 bundle = bundle_lookup(ofproto, aux);
2315 if (!bundle) {
2316 bundle = xmalloc(sizeof *bundle);
2317
2318 bundle->ofproto = ofproto;
2319 hmap_insert(&ofproto->bundles, &bundle->hmap_node,
2320 hash_pointer(aux, 0));
2321 bundle->aux = aux;
2322 bundle->name = NULL;
2323
2324 list_init(&bundle->ports);
2325 bundle->vlan_mode = PORT_VLAN_TRUNK;
2326 bundle->vlan = -1;
2327 bundle->trunks = NULL;
2328 bundle->use_priority_tags = s->use_priority_tags;
2329 bundle->lacp = NULL;
2330 bundle->bond = NULL;
2331
2332 bundle->floodable = true;
2333 mbridge_register_bundle(ofproto->mbridge, bundle);
2334 }
2335
2336 if (!bundle->name || strcmp(s->name, bundle->name)) {
2337 free(bundle->name);
2338 bundle->name = xstrdup(s->name);
2339 }
2340
2341 /* LACP. */
2342 if (s->lacp) {
2343 ofproto->lacp_enabled = true;
2344 if (!bundle->lacp) {
2345 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2346 bundle->lacp = lacp_create();
2347 }
2348 lacp_configure(bundle->lacp, s->lacp);
2349 } else {
2350 lacp_unref(bundle->lacp);
2351 bundle->lacp = NULL;
2352 }
2353
2354 /* Update set of ports. */
2355 ok = true;
2356 for (i = 0; i < s->n_slaves; i++) {
2357 if (!bundle_add_port(bundle, s->slaves[i],
2358 s->lacp ? &s->lacp_slaves[i] : NULL)) {
2359 ok = false;
2360 }
2361 }
2362 if (!ok || list_size(&bundle->ports) != s->n_slaves) {
2363 struct ofport_dpif *next_port;
2364
2365 LIST_FOR_EACH_SAFE (port, next_port, bundle_node, &bundle->ports) {
2366 for (i = 0; i < s->n_slaves; i++) {
2367 if (s->slaves[i] == port->up.ofp_port) {
2368 goto found;
2369 }
2370 }
2371
2372 bundle_del_port(port);
2373 found: ;
2374 }
2375 }
2376 ovs_assert(list_size(&bundle->ports) <= s->n_slaves);
2377
2378 if (list_is_empty(&bundle->ports)) {
2379 bundle_destroy(bundle);
2380 return EINVAL;
2381 }
2382
2383 /* Set VLAN tagging mode */
2384 if (s->vlan_mode != bundle->vlan_mode
2385 || s->use_priority_tags != bundle->use_priority_tags) {
2386 bundle->vlan_mode = s->vlan_mode;
2387 bundle->use_priority_tags = s->use_priority_tags;
2388 need_flush = true;
2389 }
2390
2391 /* Set VLAN tag. */
2392 vlan = (s->vlan_mode == PORT_VLAN_TRUNK ? -1
2393 : s->vlan >= 0 && s->vlan <= 4095 ? s->vlan
2394 : 0);
2395 if (vlan != bundle->vlan) {
2396 bundle->vlan = vlan;
2397 need_flush = true;
2398 }
2399
2400 /* Get trunked VLANs. */
2401 switch (s->vlan_mode) {
2402 case PORT_VLAN_ACCESS:
2403 trunks = NULL;
2404 break;
2405
2406 case PORT_VLAN_TRUNK:
2407 trunks = CONST_CAST(unsigned long *, s->trunks);
2408 break;
2409
2410 case PORT_VLAN_NATIVE_UNTAGGED:
2411 case PORT_VLAN_NATIVE_TAGGED:
2412 if (vlan != 0 && (!s->trunks
2413 || !bitmap_is_set(s->trunks, vlan)
2414 || bitmap_is_set(s->trunks, 0))) {
2415 /* Force trunking the native VLAN and prohibit trunking VLAN 0. */
2416 if (s->trunks) {
2417 trunks = bitmap_clone(s->trunks, 4096);
2418 } else {
2419 trunks = bitmap_allocate1(4096);
2420 }
2421 bitmap_set1(trunks, vlan);
2422 bitmap_set0(trunks, 0);
2423 } else {
2424 trunks = CONST_CAST(unsigned long *, s->trunks);
2425 }
2426 break;
2427
2428 default:
2429 OVS_NOT_REACHED();
2430 }
2431 if (!vlan_bitmap_equal(trunks, bundle->trunks)) {
2432 free(bundle->trunks);
2433 if (trunks == s->trunks) {
2434 bundle->trunks = vlan_bitmap_clone(trunks);
2435 } else {
2436 bundle->trunks = trunks;
2437 trunks = NULL;
2438 }
2439 need_flush = true;
2440 }
2441 if (trunks != s->trunks) {
2442 free(trunks);
2443 }
2444
2445 /* Bonding. */
2446 if (!list_is_short(&bundle->ports)) {
2447 bundle->ofproto->has_bonded_bundles = true;
2448 if (bundle->bond) {
2449 if (bond_reconfigure(bundle->bond, s->bond)) {
2450 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2451 }
2452 } else {
2453 bundle->bond = bond_create(s->bond, ofproto);
2454 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2455 }
2456
2457 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
2458 bond_slave_register(bundle->bond, port,
2459 port->up.ofp_port, port->up.netdev);
2460 }
2461 } else {
2462 bond_unref(bundle->bond);
2463 bundle->bond = NULL;
2464 }
2465
2466 /* If we changed something that would affect MAC learning, un-learn
2467 * everything on this port and force flow revalidation. */
2468 if (need_flush) {
2469 bundle_flush_macs(bundle, false);
2470 }
2471
2472 return 0;
2473 }
2474
2475 static void
2476 bundle_remove(struct ofport *port_)
2477 {
2478 struct ofport_dpif *port = ofport_dpif_cast(port_);
2479 struct ofbundle *bundle = port->bundle;
2480
2481 if (bundle) {
2482 bundle_del_port(port);
2483 if (list_is_empty(&bundle->ports)) {
2484 bundle_destroy(bundle);
2485 } else if (list_is_short(&bundle->ports)) {
2486 bond_unref(bundle->bond);
2487 bundle->bond = NULL;
2488 }
2489 }
2490 }
2491
2492 static void
2493 send_pdu_cb(void *port_, const void *pdu, size_t pdu_size)
2494 {
2495 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 10);
2496 struct ofport_dpif *port = port_;
2497 uint8_t ea[ETH_ADDR_LEN];
2498 int error;
2499
2500 error = netdev_get_etheraddr(port->up.netdev, ea);
2501 if (!error) {
2502 struct ofpbuf packet;
2503 void *packet_pdu;
2504
2505 ofpbuf_init(&packet, 0);
2506 packet_pdu = eth_compose(&packet, eth_addr_lacp, ea, ETH_TYPE_LACP,
2507 pdu_size);
2508 memcpy(packet_pdu, pdu, pdu_size);
2509
2510 ofproto_dpif_send_packet(port, &packet);
2511 ofpbuf_uninit(&packet);
2512 } else {
2513 VLOG_ERR_RL(&rl, "port %s: cannot obtain Ethernet address of iface "
2514 "%s (%s)", port->bundle->name,
2515 netdev_get_name(port->up.netdev), ovs_strerror(error));
2516 }
2517 }
2518
2519 static void
2520 bundle_send_learning_packets(struct ofbundle *bundle)
2521 {
2522 struct ofproto_dpif *ofproto = bundle->ofproto;
2523 struct ofpbuf *learning_packet;
2524 int error, n_packets, n_errors;
2525 struct mac_entry *e;
2526 struct list packets;
2527
2528 list_init(&packets);
2529 ovs_rwlock_rdlock(&ofproto->ml->rwlock);
2530 LIST_FOR_EACH (e, lru_node, &ofproto->ml->lrus) {
2531 if (e->port.p != bundle) {
2532 void *port_void;
2533
2534 learning_packet = bond_compose_learning_packet(bundle->bond,
2535 e->mac, e->vlan,
2536 &port_void);
2537 /* Temporarily use 'frame' as a private pointer (see below). */
2538 ovs_assert(learning_packet->frame == ofpbuf_data(learning_packet));
2539 learning_packet->frame = port_void;
2540 list_push_back(&packets, &learning_packet->list_node);
2541 }
2542 }
2543 ovs_rwlock_unlock(&ofproto->ml->rwlock);
2544
2545 error = n_packets = n_errors = 0;
2546 LIST_FOR_EACH (learning_packet, list_node, &packets) {
2547 int ret;
2548 void *port_void = learning_packet->frame;
2549
2550 /* Restore 'frame'. */
2551 learning_packet->frame = ofpbuf_data(learning_packet);
2552 ret = ofproto_dpif_send_packet(port_void, learning_packet);
2553 if (ret) {
2554 error = ret;
2555 n_errors++;
2556 }
2557 n_packets++;
2558 }
2559 ofpbuf_list_delete(&packets);
2560
2561 if (n_errors) {
2562 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
2563 VLOG_WARN_RL(&rl, "bond %s: %d errors sending %d gratuitous learning "
2564 "packets, last error was: %s",
2565 bundle->name, n_errors, n_packets, ovs_strerror(error));
2566 } else {
2567 VLOG_DBG("bond %s: sent %d gratuitous learning packets",
2568 bundle->name, n_packets);
2569 }
2570 }
2571
2572 static void
2573 bundle_run(struct ofbundle *bundle)
2574 {
2575 if (bundle->lacp) {
2576 lacp_run(bundle->lacp, send_pdu_cb);
2577 }
2578 if (bundle->bond) {
2579 struct ofport_dpif *port;
2580
2581 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
2582 bond_slave_set_may_enable(bundle->bond, port, port->may_enable);
2583 }
2584
2585 if (bond_run(bundle->bond, lacp_status(bundle->lacp))) {
2586 bundle->ofproto->backer->need_revalidate = REV_BOND;
2587 }
2588
2589 if (bond_should_send_learning_packets(bundle->bond)) {
2590 bundle_send_learning_packets(bundle);
2591 }
2592 }
2593 }
2594
2595 static void
2596 bundle_wait(struct ofbundle *bundle)
2597 {
2598 if (bundle->lacp) {
2599 lacp_wait(bundle->lacp);
2600 }
2601 if (bundle->bond) {
2602 bond_wait(bundle->bond);
2603 }
2604 }
2605 \f
2606 /* Mirrors. */
2607
2608 static int
2609 mirror_set__(struct ofproto *ofproto_, void *aux,
2610 const struct ofproto_mirror_settings *s)
2611 {
2612 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2613 struct ofbundle **srcs, **dsts;
2614 int error;
2615 size_t i;
2616
2617 if (!s) {
2618 mirror_destroy(ofproto->mbridge, aux);
2619 return 0;
2620 }
2621
2622 srcs = xmalloc(s->n_srcs * sizeof *srcs);
2623 dsts = xmalloc(s->n_dsts * sizeof *dsts);
2624
2625 for (i = 0; i < s->n_srcs; i++) {
2626 srcs[i] = bundle_lookup(ofproto, s->srcs[i]);
2627 }
2628
2629 for (i = 0; i < s->n_dsts; i++) {
2630 dsts[i] = bundle_lookup(ofproto, s->dsts[i]);
2631 }
2632
2633 error = mirror_set(ofproto->mbridge, aux, s->name, srcs, s->n_srcs, dsts,
2634 s->n_dsts, s->src_vlans,
2635 bundle_lookup(ofproto, s->out_bundle), s->out_vlan);
2636 free(srcs);
2637 free(dsts);
2638 return error;
2639 }
2640
2641 static int
2642 mirror_get_stats__(struct ofproto *ofproto, void *aux,
2643 uint64_t *packets, uint64_t *bytes)
2644 {
2645 return mirror_get_stats(ofproto_dpif_cast(ofproto)->mbridge, aux, packets,
2646 bytes);
2647 }
2648
2649 static int
2650 set_flood_vlans(struct ofproto *ofproto_, unsigned long *flood_vlans)
2651 {
2652 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2653 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
2654 if (mac_learning_set_flood_vlans(ofproto->ml, flood_vlans)) {
2655 mac_learning_flush(ofproto->ml);
2656 }
2657 ovs_rwlock_unlock(&ofproto->ml->rwlock);
2658 return 0;
2659 }
2660
2661 static bool
2662 is_mirror_output_bundle(const struct ofproto *ofproto_, void *aux)
2663 {
2664 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2665 struct ofbundle *bundle = bundle_lookup(ofproto, aux);
2666 return bundle && mirror_bundle_out(ofproto->mbridge, bundle) != 0;
2667 }
2668
2669 static void
2670 forward_bpdu_changed(struct ofproto *ofproto_)
2671 {
2672 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2673 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2674 }
2675
2676 static void
2677 set_mac_table_config(struct ofproto *ofproto_, unsigned int idle_time,
2678 size_t max_entries)
2679 {
2680 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2681 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
2682 mac_learning_set_idle_time(ofproto->ml, idle_time);
2683 mac_learning_set_max_entries(ofproto->ml, max_entries);
2684 ovs_rwlock_unlock(&ofproto->ml->rwlock);
2685 }
2686
2687 /* Configures multicast snooping on 'ofport' using the settings
2688 * defined in 's'. */
2689 static int
2690 set_mcast_snooping(struct ofproto *ofproto_,
2691 const struct ofproto_mcast_snooping_settings *s)
2692 {
2693 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2694
2695 /* Only revalidate flows if the configuration changed. */
2696 if (!s != !ofproto->ms) {
2697 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2698 }
2699
2700 if (s) {
2701 if (!ofproto->ms) {
2702 ofproto->ms = mcast_snooping_create();
2703 }
2704
2705 ovs_rwlock_wrlock(&ofproto->ms->rwlock);
2706 mcast_snooping_set_idle_time(ofproto->ms, s->idle_time);
2707 mcast_snooping_set_max_entries(ofproto->ms, s->max_entries);
2708 if (mcast_snooping_set_flood_unreg(ofproto->ms, s->flood_unreg)) {
2709 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2710 }
2711 ovs_rwlock_unlock(&ofproto->ms->rwlock);
2712 } else {
2713 mcast_snooping_unref(ofproto->ms);
2714 ofproto->ms = NULL;
2715 }
2716
2717 return 0;
2718 }
2719
2720 /* Configures multicast snooping port's flood setting on 'ofproto'. */
2721 static int
2722 set_mcast_snooping_port(struct ofproto *ofproto_, void *aux, bool flood)
2723 {
2724 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2725 struct ofbundle *bundle = bundle_lookup(ofproto, aux);
2726
2727 if (ofproto->ms) {
2728 ovs_rwlock_wrlock(&ofproto->ms->rwlock);
2729 mcast_snooping_set_port_flood(ofproto->ms, bundle->vlan, bundle,
2730 flood);
2731 ovs_rwlock_unlock(&ofproto->ms->rwlock);
2732 }
2733 return 0;
2734 }
2735
2736 \f
2737 /* Ports. */
2738
2739 static struct ofport_dpif *
2740 get_ofp_port(const struct ofproto_dpif *ofproto, ofp_port_t ofp_port)
2741 {
2742 struct ofport *ofport = ofproto_get_port(&ofproto->up, ofp_port);
2743 return ofport ? ofport_dpif_cast(ofport) : NULL;
2744 }
2745
2746 static void
2747 ofproto_port_from_dpif_port(struct ofproto_dpif *ofproto,
2748 struct ofproto_port *ofproto_port,
2749 struct dpif_port *dpif_port)
2750 {
2751 ofproto_port->name = dpif_port->name;
2752 ofproto_port->type = dpif_port->type;
2753 ofproto_port->ofp_port = odp_port_to_ofp_port(ofproto, dpif_port->port_no);
2754 }
2755
2756 static void
2757 ofport_update_peer(struct ofport_dpif *ofport)
2758 {
2759 const struct ofproto_dpif *ofproto;
2760 struct dpif_backer *backer;
2761 char *peer_name;
2762
2763 if (!netdev_vport_is_patch(ofport->up.netdev)) {
2764 return;
2765 }
2766
2767 backer = ofproto_dpif_cast(ofport->up.ofproto)->backer;
2768 backer->need_revalidate = REV_RECONFIGURE;
2769
2770 if (ofport->peer) {
2771 ofport->peer->peer = NULL;
2772 ofport->peer = NULL;
2773 }
2774
2775 peer_name = netdev_vport_patch_peer(ofport->up.netdev);
2776 if (!peer_name) {
2777 return;
2778 }
2779
2780 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
2781 struct ofport *peer_ofport;
2782 struct ofport_dpif *peer;
2783 char *peer_peer;
2784
2785 if (ofproto->backer != backer) {
2786 continue;
2787 }
2788
2789 peer_ofport = shash_find_data(&ofproto->up.port_by_name, peer_name);
2790 if (!peer_ofport) {
2791 continue;
2792 }
2793
2794 peer = ofport_dpif_cast(peer_ofport);
2795 peer_peer = netdev_vport_patch_peer(peer->up.netdev);
2796 if (peer_peer && !strcmp(netdev_get_name(ofport->up.netdev),
2797 peer_peer)) {
2798 ofport->peer = peer;
2799 ofport->peer->peer = ofport;
2800 }
2801 free(peer_peer);
2802
2803 break;
2804 }
2805 free(peer_name);
2806 }
2807
2808 static void
2809 port_run(struct ofport_dpif *ofport)
2810 {
2811 long long int carrier_seq = netdev_get_carrier_resets(ofport->up.netdev);
2812 bool carrier_changed = carrier_seq != ofport->carrier_seq;
2813 bool enable = netdev_get_carrier(ofport->up.netdev);
2814 bool cfm_enable = false;
2815 bool bfd_enable = false;
2816
2817 ofport->carrier_seq = carrier_seq;
2818
2819 if (ofport->cfm) {
2820 int cfm_opup = cfm_get_opup(ofport->cfm);
2821
2822 cfm_enable = !cfm_get_fault(ofport->cfm);
2823
2824 if (cfm_opup >= 0) {
2825 cfm_enable = cfm_enable && cfm_opup;
2826 }
2827 }
2828
2829 if (ofport->bfd) {
2830 bfd_enable = bfd_forwarding(ofport->bfd);
2831 }
2832
2833 if (ofport->bfd || ofport->cfm) {
2834 enable = enable && (cfm_enable || bfd_enable);
2835 }
2836
2837 if (ofport->bundle) {
2838 enable = enable && lacp_slave_may_enable(ofport->bundle->lacp, ofport);
2839 if (carrier_changed) {
2840 lacp_slave_carrier_changed(ofport->bundle->lacp, ofport);
2841 }
2842 }
2843
2844 if (ofport->may_enable != enable) {
2845 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2846 ofproto->backer->need_revalidate = REV_PORT_TOGGLED;
2847 }
2848
2849 ofport->may_enable = enable;
2850 }
2851
2852 static int
2853 port_query_by_name(const struct ofproto *ofproto_, const char *devname,
2854 struct ofproto_port *ofproto_port)
2855 {
2856 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2857 struct dpif_port dpif_port;
2858 int error;
2859
2860 if (sset_contains(&ofproto->ghost_ports, devname)) {
2861 const char *type = netdev_get_type_from_name(devname);
2862
2863 /* We may be called before ofproto->up.port_by_name is populated with
2864 * the appropriate ofport. For this reason, we must get the name and
2865 * type from the netdev layer directly. */
2866 if (type) {
2867 const struct ofport *ofport;
2868
2869 ofport = shash_find_data(&ofproto->up.port_by_name, devname);
2870 ofproto_port->ofp_port = ofport ? ofport->ofp_port : OFPP_NONE;
2871 ofproto_port->name = xstrdup(devname);
2872 ofproto_port->type = xstrdup(type);
2873 return 0;
2874 }
2875 return ENODEV;
2876 }
2877
2878 if (!sset_contains(&ofproto->ports, devname)) {
2879 return ENODEV;
2880 }
2881 error = dpif_port_query_by_name(ofproto->backer->dpif,
2882 devname, &dpif_port);
2883 if (!error) {
2884 ofproto_port_from_dpif_port(ofproto, ofproto_port, &dpif_port);
2885 }
2886 return error;
2887 }
2888
2889 static int
2890 port_add(struct ofproto *ofproto_, struct netdev *netdev)
2891 {
2892 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2893 const char *devname = netdev_get_name(netdev);
2894 char namebuf[NETDEV_VPORT_NAME_BUFSIZE];
2895 const char *dp_port_name;
2896
2897 if (netdev_vport_is_patch(netdev)) {
2898 sset_add(&ofproto->ghost_ports, netdev_get_name(netdev));
2899 return 0;
2900 }
2901
2902 dp_port_name = netdev_vport_get_dpif_port(netdev, namebuf, sizeof namebuf);
2903 if (!dpif_port_exists(ofproto->backer->dpif, dp_port_name)) {
2904 odp_port_t port_no = ODPP_NONE;
2905 int error;
2906
2907 error = dpif_port_add(ofproto->backer->dpif, netdev, &port_no);
2908 if (error) {
2909 return error;
2910 }
2911 if (netdev_get_tunnel_config(netdev)) {
2912 simap_put(&ofproto->backer->tnl_backers,
2913 dp_port_name, odp_to_u32(port_no));
2914 }
2915 }
2916
2917 if (netdev_get_tunnel_config(netdev)) {
2918 sset_add(&ofproto->ghost_ports, devname);
2919 } else {
2920 sset_add(&ofproto->ports, devname);
2921 }
2922 return 0;
2923 }
2924
2925 static int
2926 port_del(struct ofproto *ofproto_, ofp_port_t ofp_port)
2927 {
2928 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2929 struct ofport_dpif *ofport = get_ofp_port(ofproto, ofp_port);
2930 int error = 0;
2931
2932 if (!ofport) {
2933 return 0;
2934 }
2935
2936 sset_find_and_delete(&ofproto->ghost_ports,
2937 netdev_get_name(ofport->up.netdev));
2938 ofproto->backer->need_revalidate = REV_RECONFIGURE;
2939 if (!ofport->is_tunnel && !netdev_vport_is_patch(ofport->up.netdev)) {
2940 error = dpif_port_del(ofproto->backer->dpif, ofport->odp_port);
2941 if (!error) {
2942 /* The caller is going to close ofport->up.netdev. If this is a
2943 * bonded port, then the bond is using that netdev, so remove it
2944 * from the bond. The client will need to reconfigure everything
2945 * after deleting ports, so then the slave will get re-added. */
2946 bundle_remove(&ofport->up);
2947 }
2948 }
2949 return error;
2950 }
2951
2952 static int
2953 port_get_stats(const struct ofport *ofport_, struct netdev_stats *stats)
2954 {
2955 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2956 int error;
2957
2958 error = netdev_get_stats(ofport->up.netdev, stats);
2959
2960 if (!error && ofport_->ofp_port == OFPP_LOCAL) {
2961 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2962
2963 ovs_mutex_lock(&ofproto->stats_mutex);
2964 /* ofproto->stats.tx_packets represents packets that we created
2965 * internally and sent to some port (e.g. packets sent with
2966 * ofproto_dpif_send_packet()). Account for them as if they had
2967 * come from OFPP_LOCAL and got forwarded. */
2968
2969 if (stats->rx_packets != UINT64_MAX) {
2970 stats->rx_packets += ofproto->stats.tx_packets;
2971 }
2972
2973 if (stats->rx_bytes != UINT64_MAX) {
2974 stats->rx_bytes += ofproto->stats.tx_bytes;
2975 }
2976
2977 /* ofproto->stats.rx_packets represents packets that were received on
2978 * some port and we processed internally and dropped (e.g. STP).
2979 * Account for them as if they had been forwarded to OFPP_LOCAL. */
2980
2981 if (stats->tx_packets != UINT64_MAX) {
2982 stats->tx_packets += ofproto->stats.rx_packets;
2983 }
2984
2985 if (stats->tx_bytes != UINT64_MAX) {
2986 stats->tx_bytes += ofproto->stats.rx_bytes;
2987 }
2988 ovs_mutex_unlock(&ofproto->stats_mutex);
2989 }
2990
2991 return error;
2992 }
2993
2994 struct port_dump_state {
2995 uint32_t bucket;
2996 uint32_t offset;
2997 bool ghost;
2998
2999 struct ofproto_port port;
3000 bool has_port;
3001 };
3002
3003 static int
3004 port_dump_start(const struct ofproto *ofproto_ OVS_UNUSED, void **statep)
3005 {
3006 *statep = xzalloc(sizeof(struct port_dump_state));
3007 return 0;
3008 }
3009
3010 static int
3011 port_dump_next(const struct ofproto *ofproto_, void *state_,
3012 struct ofproto_port *port)
3013 {
3014 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3015 struct port_dump_state *state = state_;
3016 const struct sset *sset;
3017 struct sset_node *node;
3018
3019 if (state->has_port) {
3020 ofproto_port_destroy(&state->port);
3021 state->has_port = false;
3022 }
3023 sset = state->ghost ? &ofproto->ghost_ports : &ofproto->ports;
3024 while ((node = sset_at_position(sset, &state->bucket, &state->offset))) {
3025 int error;
3026
3027 error = port_query_by_name(ofproto_, node->name, &state->port);
3028 if (!error) {
3029 *port = state->port;
3030 state->has_port = true;
3031 return 0;
3032 } else if (error != ENODEV) {
3033 return error;
3034 }
3035 }
3036
3037 if (!state->ghost) {
3038 state->ghost = true;
3039 state->bucket = 0;
3040 state->offset = 0;
3041 return port_dump_next(ofproto_, state_, port);
3042 }
3043
3044 return EOF;
3045 }
3046
3047 static int
3048 port_dump_done(const struct ofproto *ofproto_ OVS_UNUSED, void *state_)
3049 {
3050 struct port_dump_state *state = state_;
3051
3052 if (state->has_port) {
3053 ofproto_port_destroy(&state->port);
3054 }
3055 free(state);
3056 return 0;
3057 }
3058
3059 static int
3060 port_poll(const struct ofproto *ofproto_, char **devnamep)
3061 {
3062 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3063
3064 if (ofproto->port_poll_errno) {
3065 int error = ofproto->port_poll_errno;
3066 ofproto->port_poll_errno = 0;
3067 return error;
3068 }
3069
3070 if (sset_is_empty(&ofproto->port_poll_set)) {
3071 return EAGAIN;
3072 }
3073
3074 *devnamep = sset_pop(&ofproto->port_poll_set);
3075 return 0;
3076 }
3077
3078 static void
3079 port_poll_wait(const struct ofproto *ofproto_)
3080 {
3081 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3082 dpif_port_poll_wait(ofproto->backer->dpif);
3083 }
3084
3085 static int
3086 port_is_lacp_current(const struct ofport *ofport_)
3087 {
3088 const struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
3089 return (ofport->bundle && ofport->bundle->lacp
3090 ? lacp_slave_is_current(ofport->bundle->lacp, ofport)
3091 : -1);
3092 }
3093 \f
3094 /* If 'rule' is an OpenFlow rule, that has expired according to OpenFlow rules,
3095 * then delete it entirely. */
3096 static void
3097 rule_expire(struct rule_dpif *rule)
3098 OVS_REQUIRES(ofproto_mutex)
3099 {
3100 uint16_t hard_timeout, idle_timeout;
3101 long long int now = time_msec();
3102 int reason = -1;
3103
3104 hard_timeout = rule->up.hard_timeout;
3105 idle_timeout = rule->up.idle_timeout;
3106
3107 /* Has 'rule' expired? */
3108 if (hard_timeout) {
3109 long long int modified;
3110
3111 ovs_mutex_lock(&rule->up.mutex);
3112 modified = rule->up.modified;
3113 ovs_mutex_unlock(&rule->up.mutex);
3114
3115 if (now > modified + hard_timeout * 1000) {
3116 reason = OFPRR_HARD_TIMEOUT;
3117 }
3118 }
3119
3120 if (reason < 0 && idle_timeout) {
3121 long long int used;
3122
3123 ovs_mutex_lock(&rule->stats_mutex);
3124 used = rule->stats.used;
3125 ovs_mutex_unlock(&rule->stats_mutex);
3126
3127 if (now > used + idle_timeout * 1000) {
3128 reason = OFPRR_IDLE_TIMEOUT;
3129 }
3130 }
3131
3132 if (reason >= 0) {
3133 COVERAGE_INC(ofproto_dpif_expired);
3134 ofproto_rule_expire(&rule->up, reason);
3135 }
3136 }
3137
3138 /* Executes, within 'ofproto', the actions in 'rule' or 'ofpacts' on 'packet'.
3139 * 'flow' must reflect the data in 'packet'. */
3140 int
3141 ofproto_dpif_execute_actions(struct ofproto_dpif *ofproto,
3142 const struct flow *flow,
3143 struct rule_dpif *rule,
3144 const struct ofpact *ofpacts, size_t ofpacts_len,
3145 struct ofpbuf *packet)
3146 {
3147 struct dpif_flow_stats stats;
3148 struct xlate_out xout;
3149 struct xlate_in xin;
3150 ofp_port_t in_port;
3151 struct dpif_execute execute;
3152 int error;
3153
3154 ovs_assert((rule != NULL) != (ofpacts != NULL));
3155
3156 dpif_flow_stats_extract(flow, packet, time_msec(), &stats);
3157
3158 if (rule) {
3159 rule_dpif_credit_stats(rule, &stats);
3160 }
3161
3162 xlate_in_init(&xin, ofproto, flow, rule, stats.tcp_flags, packet);
3163 xin.ofpacts = ofpacts;
3164 xin.ofpacts_len = ofpacts_len;
3165 xin.resubmit_stats = &stats;
3166 xlate_actions(&xin, &xout);
3167
3168 execute.actions = ofpbuf_data(&xout.odp_actions);
3169 execute.actions_len = ofpbuf_size(&xout.odp_actions);
3170 execute.packet = packet;
3171 execute.md = pkt_metadata_from_flow(flow);
3172 execute.needs_help = (xout.slow & SLOW_ACTION) != 0;
3173
3174 /* Fix up in_port. */
3175 in_port = flow->in_port.ofp_port;
3176 if (in_port == OFPP_NONE) {
3177 in_port = OFPP_LOCAL;
3178 }
3179 execute.md.in_port.odp_port = ofp_port_to_odp_port(ofproto, in_port);
3180
3181 error = dpif_execute(ofproto->backer->dpif, &execute);
3182
3183 xlate_out_uninit(&xout);
3184
3185 return error;
3186 }
3187
3188 void
3189 rule_dpif_credit_stats(struct rule_dpif *rule,
3190 const struct dpif_flow_stats *stats)
3191 {
3192 ovs_mutex_lock(&rule->stats_mutex);
3193 rule->stats.n_packets += stats->n_packets;
3194 rule->stats.n_bytes += stats->n_bytes;
3195 rule->stats.used = MAX(rule->stats.used, stats->used);
3196 ovs_mutex_unlock(&rule->stats_mutex);
3197 }
3198
3199 ovs_be64
3200 rule_dpif_get_flow_cookie(const struct rule_dpif *rule)
3201 OVS_REQUIRES(rule->up.mutex)
3202 {
3203 return rule->up.flow_cookie;
3204 }
3205
3206 void
3207 rule_dpif_reduce_timeouts(struct rule_dpif *rule, uint16_t idle_timeout,
3208 uint16_t hard_timeout)
3209 {
3210 ofproto_rule_reduce_timeouts(&rule->up, idle_timeout, hard_timeout);
3211 }
3212
3213 /* Returns 'rule''s actions. The caller owns a reference on the returned
3214 * actions and must eventually release it (with rule_actions_unref()) to avoid
3215 * a memory leak. */
3216 const struct rule_actions *
3217 rule_dpif_get_actions(const struct rule_dpif *rule)
3218 {
3219 return rule_get_actions(&rule->up);
3220 }
3221
3222 /* Sets 'rule''s recirculation id. */
3223 static void
3224 rule_dpif_set_recirc_id(struct rule_dpif *rule, uint32_t id)
3225 OVS_REQUIRES(rule->up.mutex)
3226 {
3227 ovs_assert(!rule->recirc_id);
3228 rule->recirc_id = id;
3229 }
3230
3231 /* Returns 'rule''s recirculation id. */
3232 uint32_t
3233 rule_dpif_get_recirc_id(struct rule_dpif *rule)
3234 OVS_REQUIRES(rule->up.mutex)
3235 {
3236 if (!rule->recirc_id) {
3237 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3238
3239 rule_dpif_set_recirc_id(rule, ofproto_dpif_alloc_recirc_id(ofproto));
3240 }
3241 return rule->recirc_id;
3242 }
3243
3244 /* Sets 'rule''s recirculation id. */
3245 void
3246 rule_set_recirc_id(struct rule *rule_, uint32_t id)
3247 {
3248 struct rule_dpif *rule = rule_dpif_cast(rule_);
3249
3250 ovs_mutex_lock(&rule->up.mutex);
3251 rule_dpif_set_recirc_id(rule, id);
3252 ovs_mutex_unlock(&rule->up.mutex);
3253 }
3254
3255 /* Lookup 'flow' in table 0 of 'ofproto''s classifier.
3256 * If 'wc' is non-null, sets the fields that were relevant as part of
3257 * the lookup. Returns the table_id where a match or miss occurred.
3258 *
3259 * The return value will be zero unless there was a miss and
3260 * OFPTC11_TABLE_MISS_CONTINUE is in effect for the sequence of tables
3261 * where misses occur.
3262 *
3263 * The rule is returned in '*rule', which is valid at least until the next
3264 * RCU quiescent period. If the '*rule' needs to stay around longer,
3265 * a non-zero 'take_ref' must be passed in to cause a reference to be taken
3266 * on it before this returns. */
3267 uint8_t
3268 rule_dpif_lookup(struct ofproto_dpif *ofproto, struct flow *flow,
3269 struct flow_wildcards *wc, struct rule_dpif **rule,
3270 bool take_ref, const struct dpif_flow_stats *stats)
3271 {
3272 enum rule_dpif_lookup_verdict verdict;
3273 enum ofputil_port_config config = 0;
3274 uint8_t table_id;
3275
3276 if (ofproto_dpif_get_enable_recirc(ofproto)) {
3277 /* Always exactly match recirc_id since datapath supports
3278 * recirculation. */
3279 if (wc) {
3280 wc->masks.recirc_id = UINT32_MAX;
3281 }
3282
3283 /* Start looking up from internal table for post recirculation flows
3284 * or packets. We can also simply send all, including normal flows
3285 * or packets to the internal table. They will not match any post
3286 * recirculation rules except the 'catch all' rule that resubmit
3287 * them to table 0.
3288 *
3289 * As an optimization, we send normal flows and packets to table 0
3290 * directly, saving one table lookup. */
3291 table_id = flow->recirc_id ? TBL_INTERNAL : 0;
3292 } else {
3293 table_id = 0;
3294 }
3295
3296 verdict = rule_dpif_lookup_from_table(ofproto, flow, wc, true,
3297 &table_id, rule, take_ref, stats);
3298
3299 switch (verdict) {
3300 case RULE_DPIF_LOOKUP_VERDICT_MATCH:
3301 return table_id;
3302 case RULE_DPIF_LOOKUP_VERDICT_CONTROLLER: {
3303 struct ofport_dpif *port;
3304
3305 port = get_ofp_port(ofproto, flow->in_port.ofp_port);
3306 if (!port) {
3307 VLOG_WARN_RL(&rl, "packet-in on unknown OpenFlow port %"PRIu16,
3308 flow->in_port.ofp_port);
3309 }
3310 config = port ? port->up.pp.config : 0;
3311 break;
3312 }
3313 case RULE_DPIF_LOOKUP_VERDICT_DROP:
3314 config = OFPUTIL_PC_NO_PACKET_IN;
3315 break;
3316 case RULE_DPIF_LOOKUP_VERDICT_DEFAULT:
3317 if (!connmgr_wants_packet_in_on_miss(ofproto->up.connmgr)) {
3318 config = OFPUTIL_PC_NO_PACKET_IN;
3319 }
3320 break;
3321 default:
3322 OVS_NOT_REACHED();
3323 }
3324
3325 choose_miss_rule(config, ofproto->miss_rule,
3326 ofproto->no_packet_in_rule, rule, take_ref);
3327 return table_id;
3328 }
3329
3330 /* The returned rule is valid at least until the next RCU quiescent period.
3331 * If the '*rule' needs to stay around longer, a non-zero 'take_ref' must be
3332 * passed in to cause a reference to be taken on it before this returns. */
3333 static struct rule_dpif *
3334 rule_dpif_lookup_in_table(struct ofproto_dpif *ofproto, uint8_t table_id,
3335 const struct flow *flow, struct flow_wildcards *wc,
3336 bool take_ref)
3337 {
3338 struct classifier *cls = &ofproto->up.tables[table_id].cls;
3339 const struct cls_rule *cls_rule;
3340 struct rule_dpif *rule;
3341 struct flow ofpc_normal_flow;
3342
3343 if (ofproto->up.frag_handling != OFPC_FRAG_NX_MATCH) {
3344 /* We always unwildcard dl_type and nw_frag (for IP), so they
3345 * need not be unwildcarded here. */
3346
3347 if (flow->nw_frag & FLOW_NW_FRAG_ANY) {
3348 if (ofproto->up.frag_handling == OFPC_FRAG_NORMAL) {
3349 /* We must pretend that transport ports are unavailable. */
3350 ofpc_normal_flow = *flow;
3351 ofpc_normal_flow.tp_src = htons(0);
3352 ofpc_normal_flow.tp_dst = htons(0);
3353 flow = &ofpc_normal_flow;
3354 } else {
3355 /* Must be OFPC_FRAG_DROP (we don't have OFPC_FRAG_REASM).
3356 * Use the drop_frags_rule (which cannot disappear). */
3357 cls_rule = &ofproto->drop_frags_rule->up.cr;
3358 rule = rule_dpif_cast(rule_from_cls_rule(cls_rule));
3359 if (take_ref) {
3360 rule_dpif_ref(rule);
3361 }
3362 return rule;
3363 }
3364 }
3365 }
3366
3367 do {
3368 cls_rule = classifier_lookup(cls, flow, wc);
3369
3370 rule = rule_dpif_cast(rule_from_cls_rule(cls_rule));
3371
3372 /* Try again if the rule was released before we get the reference. */
3373 } while (rule && take_ref && !rule_dpif_try_ref(rule));
3374
3375 return rule;
3376 }
3377
3378 /* Look up 'flow' in 'ofproto''s classifier starting from table '*table_id'.
3379 * Stores the rule that was found in '*rule', or NULL if none was found.
3380 * Updates 'wc', if nonnull, to reflect the fields that were used during the
3381 * lookup.
3382 *
3383 * If 'honor_table_miss' is true, the first lookup occurs in '*table_id', but
3384 * if none is found then the table miss configuration for that table is
3385 * honored, which can result in additional lookups in other OpenFlow tables.
3386 * In this case the function updates '*table_id' to reflect the final OpenFlow
3387 * table that was searched.
3388 *
3389 * If 'honor_table_miss' is false, then only one table lookup occurs, in
3390 * '*table_id'.
3391 *
3392 * Returns:
3393 *
3394 * - RULE_DPIF_LOOKUP_VERDICT_MATCH if a rule (in '*rule') was found.
3395 *
3396 * - RULE_OFPTC_TABLE_MISS_CONTROLLER if no rule was found and either:
3397 * + 'honor_table_miss' is false
3398 * + a table miss configuration specified that the packet should be
3399 * sent to the controller in this case.
3400 *
3401 * - RULE_DPIF_LOOKUP_VERDICT_DROP if no rule was found, 'honor_table_miss'
3402 * is true and a table miss configuration specified that the packet
3403 * should be dropped in this case.
3404 *
3405 * - RULE_DPIF_LOOKUP_VERDICT_DEFAULT if no rule was found,
3406 * 'honor_table_miss' is true and a table miss configuration has
3407 * not been specified in this case.
3408 *
3409 * The rule is returned in '*rule', which is valid at least until the next
3410 * RCU quiescent period. If the '*rule' needs to stay around longer,
3411 * a non-zero 'take_ref' must be passed in to cause a reference to be taken
3412 * on it before this returns. */
3413 enum rule_dpif_lookup_verdict
3414 rule_dpif_lookup_from_table(struct ofproto_dpif *ofproto,
3415 const struct flow *flow,
3416 struct flow_wildcards *wc,
3417 bool honor_table_miss,
3418 uint8_t *table_id, struct rule_dpif **rule,
3419 bool take_ref, const struct dpif_flow_stats *stats)
3420 {
3421 uint8_t next_id;
3422
3423 for (next_id = *table_id;
3424 next_id < ofproto->up.n_tables;
3425 next_id++, next_id += (next_id == TBL_INTERNAL))
3426 {
3427 *table_id = next_id;
3428 *rule = rule_dpif_lookup_in_table(ofproto, *table_id, flow, wc,
3429 take_ref);
3430 if (stats) {
3431 struct oftable *tbl = &ofproto->up.tables[next_id];
3432 atomic_ulong *stat = *rule ? &tbl->n_matched : &tbl->n_missed;
3433 unsigned long orig;
3434 atomic_add(stat, stats->n_packets, &orig);
3435 }
3436 if (*rule) {
3437 return RULE_DPIF_LOOKUP_VERDICT_MATCH;
3438 } else if (!honor_table_miss) {
3439 return RULE_DPIF_LOOKUP_VERDICT_CONTROLLER;
3440 } else {
3441 switch (ofproto_table_get_config(&ofproto->up, *table_id)) {
3442 case OFPROTO_TABLE_MISS_CONTINUE:
3443 break;
3444
3445 case OFPROTO_TABLE_MISS_CONTROLLER:
3446 return RULE_DPIF_LOOKUP_VERDICT_CONTROLLER;
3447
3448 case OFPROTO_TABLE_MISS_DROP:
3449 return RULE_DPIF_LOOKUP_VERDICT_DROP;
3450
3451 case OFPROTO_TABLE_MISS_DEFAULT:
3452 return RULE_DPIF_LOOKUP_VERDICT_DEFAULT;
3453 }
3454 }
3455 }
3456
3457 return RULE_DPIF_LOOKUP_VERDICT_CONTROLLER;
3458 }
3459
3460 /* Given a port configuration (specified as zero if there's no port), chooses
3461 * which of 'miss_rule' and 'no_packet_in_rule' should be used in case of a
3462 * flow table miss.
3463 *
3464 * The rule is returned in '*rule', which is valid at least until the next
3465 * RCU quiescent period. If the '*rule' needs to stay around longer,
3466 * a reference must be taken on it (rule_dpif_ref()).
3467 */
3468 void
3469 choose_miss_rule(enum ofputil_port_config config, struct rule_dpif *miss_rule,
3470 struct rule_dpif *no_packet_in_rule, struct rule_dpif **rule,
3471 bool take_ref)
3472 {
3473 *rule = config & OFPUTIL_PC_NO_PACKET_IN ? no_packet_in_rule : miss_rule;
3474 if (take_ref) {
3475 rule_dpif_ref(*rule);
3476 }
3477 }
3478
3479 static void
3480 complete_operation(struct rule_dpif *rule)
3481 OVS_REQUIRES(ofproto_mutex)
3482 {
3483 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3484
3485 ofproto->backer->need_revalidate = REV_FLOW_TABLE;
3486 }
3487
3488 static struct rule_dpif *rule_dpif_cast(const struct rule *rule)
3489 {
3490 return rule ? CONTAINER_OF(rule, struct rule_dpif, up) : NULL;
3491 }
3492
3493 static struct rule *
3494 rule_alloc(void)
3495 {
3496 struct rule_dpif *rule = xmalloc(sizeof *rule);
3497 return &rule->up;
3498 }
3499
3500 static void
3501 rule_dealloc(struct rule *rule_)
3502 {
3503 struct rule_dpif *rule = rule_dpif_cast(rule_);
3504 free(rule);
3505 }
3506
3507 static enum ofperr
3508 rule_construct(struct rule *rule_)
3509 OVS_NO_THREAD_SAFETY_ANALYSIS
3510 {
3511 struct rule_dpif *rule = rule_dpif_cast(rule_);
3512 ovs_mutex_init_adaptive(&rule->stats_mutex);
3513 rule->stats.n_packets = 0;
3514 rule->stats.n_bytes = 0;
3515 rule->stats.used = rule->up.modified;
3516 rule->recirc_id = 0;
3517
3518 return 0;
3519 }
3520
3521 static enum ofperr
3522 rule_insert(struct rule *rule_)
3523 OVS_REQUIRES(ofproto_mutex)
3524 {
3525 struct rule_dpif *rule = rule_dpif_cast(rule_);
3526 complete_operation(rule);
3527 return 0;
3528 }
3529
3530 static void
3531 rule_delete(struct rule *rule_)
3532 OVS_REQUIRES(ofproto_mutex)
3533 {
3534 struct rule_dpif *rule = rule_dpif_cast(rule_);
3535 complete_operation(rule);
3536 }
3537
3538 static void
3539 rule_destruct(struct rule *rule_)
3540 {
3541 struct rule_dpif *rule = rule_dpif_cast(rule_);
3542
3543 ovs_mutex_destroy(&rule->stats_mutex);
3544 if (rule->recirc_id) {
3545 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3546
3547 ofproto_dpif_free_recirc_id(ofproto, rule->recirc_id);
3548 }
3549 }
3550
3551 static void
3552 rule_get_stats(struct rule *rule_, uint64_t *packets, uint64_t *bytes,
3553 long long int *used)
3554 {
3555 struct rule_dpif *rule = rule_dpif_cast(rule_);
3556
3557 ovs_mutex_lock(&rule->stats_mutex);
3558 *packets = rule->stats.n_packets;
3559 *bytes = rule->stats.n_bytes;
3560 *used = rule->stats.used;
3561 ovs_mutex_unlock(&rule->stats_mutex);
3562 }
3563
3564 static void
3565 rule_dpif_execute(struct rule_dpif *rule, const struct flow *flow,
3566 struct ofpbuf *packet)
3567 {
3568 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3569
3570 ofproto_dpif_execute_actions(ofproto, flow, rule, NULL, 0, packet);
3571 }
3572
3573 static enum ofperr
3574 rule_execute(struct rule *rule, const struct flow *flow,
3575 struct ofpbuf *packet)
3576 {
3577 rule_dpif_execute(rule_dpif_cast(rule), flow, packet);
3578 ofpbuf_delete(packet);
3579 return 0;
3580 }
3581
3582 static void
3583 rule_modify_actions(struct rule *rule_, bool reset_counters)
3584 OVS_REQUIRES(ofproto_mutex)
3585 {
3586 struct rule_dpif *rule = rule_dpif_cast(rule_);
3587
3588 if (reset_counters) {
3589 ovs_mutex_lock(&rule->stats_mutex);
3590 rule->stats.n_packets = 0;
3591 rule->stats.n_bytes = 0;
3592 ovs_mutex_unlock(&rule->stats_mutex);
3593 }
3594
3595 complete_operation(rule);
3596 }
3597
3598 static struct group_dpif *group_dpif_cast(const struct ofgroup *group)
3599 {
3600 return group ? CONTAINER_OF(group, struct group_dpif, up) : NULL;
3601 }
3602
3603 static struct ofgroup *
3604 group_alloc(void)
3605 {
3606 struct group_dpif *group = xzalloc(sizeof *group);
3607 return &group->up;
3608 }
3609
3610 static void
3611 group_dealloc(struct ofgroup *group_)
3612 {
3613 struct group_dpif *group = group_dpif_cast(group_);
3614 free(group);
3615 }
3616
3617 static void
3618 group_construct_stats(struct group_dpif *group)
3619 OVS_REQUIRES(group->stats_mutex)
3620 {
3621 struct ofputil_bucket *bucket;
3622 const struct list *buckets;
3623
3624 group->packet_count = 0;
3625 group->byte_count = 0;
3626
3627 group_dpif_get_buckets(group, &buckets);
3628 LIST_FOR_EACH (bucket, list_node, buckets) {
3629 bucket->stats.packet_count = 0;
3630 bucket->stats.byte_count = 0;
3631 }
3632 }
3633
3634 void
3635 group_dpif_credit_stats(struct group_dpif *group,
3636 struct ofputil_bucket *bucket,
3637 const struct dpif_flow_stats *stats)
3638 {
3639 ovs_mutex_lock(&group->stats_mutex);
3640 group->packet_count += stats->n_packets;
3641 group->byte_count += stats->n_bytes;
3642 if (bucket) {
3643 bucket->stats.packet_count += stats->n_packets;
3644 bucket->stats.byte_count += stats->n_bytes;
3645 } else { /* Credit to all buckets */
3646 const struct list *buckets;
3647
3648 group_dpif_get_buckets(group, &buckets);
3649 LIST_FOR_EACH (bucket, list_node, buckets) {
3650 bucket->stats.packet_count += stats->n_packets;
3651 bucket->stats.byte_count += stats->n_bytes;
3652 }
3653 }
3654 ovs_mutex_unlock(&group->stats_mutex);
3655 }
3656
3657 static enum ofperr
3658 group_construct(struct ofgroup *group_)
3659 {
3660 struct group_dpif *group = group_dpif_cast(group_);
3661 const struct ofputil_bucket *bucket;
3662
3663 /* Prevent group chaining because our locking structure makes it hard to
3664 * implement deadlock-free. (See xlate_group_resource_check().) */
3665 LIST_FOR_EACH (bucket, list_node, &group->up.buckets) {
3666 const struct ofpact *a;
3667
3668 OFPACT_FOR_EACH (a, bucket->ofpacts, bucket->ofpacts_len) {
3669 if (a->type == OFPACT_GROUP) {
3670 return OFPERR_OFPGMFC_CHAINING_UNSUPPORTED;
3671 }
3672 }
3673 }
3674
3675 ovs_mutex_init_adaptive(&group->stats_mutex);
3676 ovs_mutex_lock(&group->stats_mutex);
3677 group_construct_stats(group);
3678 ovs_mutex_unlock(&group->stats_mutex);
3679 return 0;
3680 }
3681
3682 static void
3683 group_destruct(struct ofgroup *group_)
3684 {
3685 struct group_dpif *group = group_dpif_cast(group_);
3686 ovs_mutex_destroy(&group->stats_mutex);
3687 }
3688
3689 static enum ofperr
3690 group_modify(struct ofgroup *group_)
3691 {
3692 struct ofproto_dpif *ofproto = ofproto_dpif_cast(group_->ofproto);
3693
3694 ofproto->backer->need_revalidate = REV_FLOW_TABLE;
3695
3696 return 0;
3697 }
3698
3699 static enum ofperr
3700 group_get_stats(const struct ofgroup *group_, struct ofputil_group_stats *ogs)
3701 {
3702 struct group_dpif *group = group_dpif_cast(group_);
3703 struct ofputil_bucket *bucket;
3704 const struct list *buckets;
3705 struct bucket_counter *bucket_stats;
3706
3707 ovs_mutex_lock(&group->stats_mutex);
3708 ogs->packet_count = group->packet_count;
3709 ogs->byte_count = group->byte_count;
3710
3711 group_dpif_get_buckets(group, &buckets);
3712 bucket_stats = ogs->bucket_stats;
3713 LIST_FOR_EACH (bucket, list_node, buckets) {
3714 bucket_stats->packet_count = bucket->stats.packet_count;
3715 bucket_stats->byte_count = bucket->stats.byte_count;
3716 bucket_stats++;
3717 }
3718 ovs_mutex_unlock(&group->stats_mutex);
3719
3720 return 0;
3721 }
3722
3723 /* If the group exists, this function increments the groups's reference count.
3724 *
3725 * Make sure to call group_dpif_unref() after no longer needing to maintain
3726 * a reference to the group. */
3727 bool
3728 group_dpif_lookup(struct ofproto_dpif *ofproto, uint32_t group_id,
3729 struct group_dpif **group)
3730 {
3731 struct ofgroup *ofgroup;
3732 bool found;
3733
3734 found = ofproto_group_lookup(&ofproto->up, group_id, &ofgroup);
3735 *group = found ? group_dpif_cast(ofgroup) : NULL;
3736
3737 return found;
3738 }
3739
3740 void
3741 group_dpif_get_buckets(const struct group_dpif *group,
3742 const struct list **buckets)
3743 {
3744 *buckets = &group->up.buckets;
3745 }
3746
3747 enum ofp11_group_type
3748 group_dpif_get_type(const struct group_dpif *group)
3749 {
3750 return group->up.type;
3751 }
3752 \f
3753 /* Sends 'packet' out 'ofport'.
3754 * May modify 'packet'.
3755 * Returns 0 if successful, otherwise a positive errno value. */
3756 int
3757 ofproto_dpif_send_packet(const struct ofport_dpif *ofport, struct ofpbuf *packet)
3758 {
3759 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
3760 int error;
3761
3762 error = xlate_send_packet(ofport, packet);
3763
3764 ovs_mutex_lock(&ofproto->stats_mutex);
3765 ofproto->stats.tx_packets++;
3766 ofproto->stats.tx_bytes += ofpbuf_size(packet);
3767 ovs_mutex_unlock(&ofproto->stats_mutex);
3768 return error;
3769 }
3770 \f
3771 static bool
3772 set_frag_handling(struct ofproto *ofproto_,
3773 enum ofp_config_flags frag_handling)
3774 {
3775 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3776 if (frag_handling != OFPC_FRAG_REASM) {
3777 ofproto->backer->need_revalidate = REV_RECONFIGURE;
3778 return true;
3779 } else {
3780 return false;
3781 }
3782 }
3783
3784 static enum ofperr
3785 packet_out(struct ofproto *ofproto_, struct ofpbuf *packet,
3786 const struct flow *flow,
3787 const struct ofpact *ofpacts, size_t ofpacts_len)
3788 {
3789 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3790
3791 ofproto_dpif_execute_actions(ofproto, flow, NULL, ofpacts,
3792 ofpacts_len, packet);
3793 return 0;
3794 }
3795 \f
3796 /* NetFlow. */
3797
3798 static int
3799 set_netflow(struct ofproto *ofproto_,
3800 const struct netflow_options *netflow_options)
3801 {
3802 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3803
3804 if (netflow_options) {
3805 if (!ofproto->netflow) {
3806 ofproto->netflow = netflow_create();
3807 ofproto->backer->need_revalidate = REV_RECONFIGURE;
3808 }
3809 return netflow_set_options(ofproto->netflow, netflow_options);
3810 } else if (ofproto->netflow) {
3811 ofproto->backer->need_revalidate = REV_RECONFIGURE;
3812 netflow_unref(ofproto->netflow);
3813 ofproto->netflow = NULL;
3814 }
3815
3816 return 0;
3817 }
3818
3819 static void
3820 get_netflow_ids(const struct ofproto *ofproto_,
3821 uint8_t *engine_type, uint8_t *engine_id)
3822 {
3823 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
3824
3825 dpif_get_netflow_ids(ofproto->backer->dpif, engine_type, engine_id);
3826 }
3827 \f
3828 static struct ofproto_dpif *
3829 ofproto_dpif_lookup(const char *name)
3830 {
3831 struct ofproto_dpif *ofproto;
3832
3833 HMAP_FOR_EACH_WITH_HASH (ofproto, all_ofproto_dpifs_node,
3834 hash_string(name, 0), &all_ofproto_dpifs) {
3835 if (!strcmp(ofproto->up.name, name)) {
3836 return ofproto;
3837 }
3838 }
3839 return NULL;
3840 }
3841
3842 static void
3843 ofproto_unixctl_fdb_flush(struct unixctl_conn *conn, int argc,
3844 const char *argv[], void *aux OVS_UNUSED)
3845 {
3846 struct ofproto_dpif *ofproto;
3847
3848 if (argc > 1) {
3849 ofproto = ofproto_dpif_lookup(argv[1]);
3850 if (!ofproto) {
3851 unixctl_command_reply_error(conn, "no such bridge");
3852 return;
3853 }
3854 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
3855 mac_learning_flush(ofproto->ml);
3856 ovs_rwlock_unlock(&ofproto->ml->rwlock);
3857 } else {
3858 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
3859 ovs_rwlock_wrlock(&ofproto->ml->rwlock);
3860 mac_learning_flush(ofproto->ml);
3861 ovs_rwlock_unlock(&ofproto->ml->rwlock);
3862 }
3863 }
3864
3865 unixctl_command_reply(conn, "table successfully flushed");
3866 }
3867
3868 static void
3869 ofproto_unixctl_mcast_snooping_flush(struct unixctl_conn *conn, int argc,
3870 const char *argv[], void *aux OVS_UNUSED)
3871 {
3872 struct ofproto_dpif *ofproto;
3873
3874 if (argc > 1) {
3875 ofproto = ofproto_dpif_lookup(argv[1]);
3876 if (!ofproto) {
3877 unixctl_command_reply_error(conn, "no such bridge");
3878 return;
3879 }
3880
3881 if (!mcast_snooping_enabled(ofproto->ms)) {
3882 unixctl_command_reply_error(conn, "multicast snooping is disabled");
3883 return;
3884 }
3885 mcast_snooping_mdb_flush(ofproto->ms);
3886 } else {
3887 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
3888 if (!mcast_snooping_enabled(ofproto->ms)) {
3889 continue;
3890 }
3891 mcast_snooping_mdb_flush(ofproto->ms);
3892 }
3893 }
3894
3895 unixctl_command_reply(conn, "table successfully flushed");
3896 }
3897
3898 static struct ofport_dpif *
3899 ofbundle_get_a_port(const struct ofbundle *bundle)
3900 {
3901 return CONTAINER_OF(list_front(&bundle->ports), struct ofport_dpif,
3902 bundle_node);
3903 }
3904
3905 static void
3906 ofproto_unixctl_fdb_show(struct unixctl_conn *conn, int argc OVS_UNUSED,
3907 const char *argv[], void *aux OVS_UNUSED)
3908 {
3909 struct ds ds = DS_EMPTY_INITIALIZER;
3910 const struct ofproto_dpif *ofproto;
3911 const struct mac_entry *e;
3912
3913 ofproto = ofproto_dpif_lookup(argv[1]);
3914 if (!ofproto) {
3915 unixctl_command_reply_error(conn, "no such bridge");
3916 return;
3917 }
3918
3919 ds_put_cstr(&ds, " port VLAN MAC Age\n");
3920 ovs_rwlock_rdlock(&ofproto->ml->rwlock);
3921 LIST_FOR_EACH (e, lru_node, &ofproto->ml->lrus) {
3922 struct ofbundle *bundle = e->port.p;
3923 char name[OFP_MAX_PORT_NAME_LEN];
3924
3925 ofputil_port_to_string(ofbundle_get_a_port(bundle)->up.ofp_port,
3926 name, sizeof name);
3927 ds_put_format(&ds, "%5s %4d "ETH_ADDR_FMT" %3d\n",
3928 name, e->vlan, ETH_ADDR_ARGS(e->mac),
3929 mac_entry_age(ofproto->ml, e));
3930 }
3931 ovs_rwlock_unlock(&ofproto->ml->rwlock);
3932 unixctl_command_reply(conn, ds_cstr(&ds));
3933 ds_destroy(&ds);
3934 }
3935
3936 static void
3937 ofproto_unixctl_mcast_snooping_show(struct unixctl_conn *conn,
3938 int argc OVS_UNUSED,
3939 const char *argv[],
3940 void *aux OVS_UNUSED)
3941 {
3942 struct ds ds = DS_EMPTY_INITIALIZER;
3943 const struct ofproto_dpif *ofproto;
3944 const struct ofbundle *bundle;
3945 const struct mcast_group *grp;
3946 struct mcast_group_bundle *b;
3947 struct mcast_mrouter_bundle *mrouter;
3948
3949 ofproto = ofproto_dpif_lookup(argv[1]);
3950 if (!ofproto) {
3951 unixctl_command_reply_error(conn, "no such bridge");
3952 return;
3953 }
3954
3955 if (!mcast_snooping_enabled(ofproto->ms)) {
3956 unixctl_command_reply_error(conn, "multicast snooping is disabled");
3957 return;
3958 }
3959
3960 ds_put_cstr(&ds, " port VLAN GROUP Age\n");
3961 ovs_rwlock_rdlock(&ofproto->ms->rwlock);
3962 LIST_FOR_EACH (grp, group_node, &ofproto->ms->group_lru) {
3963 LIST_FOR_EACH(b, bundle_node, &grp->bundle_lru) {
3964 char name[OFP_MAX_PORT_NAME_LEN];
3965
3966 bundle = b->port;
3967 ofputil_port_to_string(ofbundle_get_a_port(bundle)->up.ofp_port,
3968 name, sizeof name);
3969 ds_put_format(&ds, "%5s %4d "IP_FMT" %3d\n",
3970 name, grp->vlan, IP_ARGS(grp->ip4),
3971 mcast_bundle_age(ofproto->ms, b));
3972 }
3973 }
3974
3975 /* ports connected to multicast routers */
3976 LIST_FOR_EACH(mrouter, mrouter_node, &ofproto->ms->mrouter_lru) {
3977 char name[OFP_MAX_PORT_NAME_LEN];
3978
3979 bundle = mrouter->port;
3980 ofputil_port_to_string(ofbundle_get_a_port(bundle)->up.ofp_port,
3981 name, sizeof name);
3982 ds_put_format(&ds, "%5s %4d querier %3d\n",
3983 name, mrouter->vlan,
3984 mcast_mrouter_age(ofproto->ms, mrouter));
3985 }
3986 ovs_rwlock_unlock(&ofproto->ms->rwlock);
3987 unixctl_command_reply(conn, ds_cstr(&ds));
3988 ds_destroy(&ds);
3989 }
3990
3991 struct trace_ctx {
3992 struct xlate_out xout;
3993 struct xlate_in xin;
3994 const struct flow *key;
3995 struct flow flow;
3996 struct flow_wildcards wc;
3997 struct ds *result;
3998 };
3999
4000 static void
4001 trace_format_rule(struct ds *result, int level, const struct rule_dpif *rule)
4002 {
4003 const struct rule_actions *actions;
4004 ovs_be64 cookie;
4005
4006 ds_put_char_multiple(result, '\t', level);
4007 if (!rule) {
4008 ds_put_cstr(result, "No match\n");
4009 return;
4010 }
4011
4012 ovs_mutex_lock(&rule->up.mutex);
4013 cookie = rule->up.flow_cookie;
4014 ovs_mutex_unlock(&rule->up.mutex);
4015
4016 ds_put_format(result, "Rule: table=%"PRIu8" cookie=%#"PRIx64" ",
4017 rule ? rule->up.table_id : 0, ntohll(cookie));
4018 cls_rule_format(&rule->up.cr, result);
4019 ds_put_char(result, '\n');
4020
4021 actions = rule_dpif_get_actions(rule);
4022
4023 ds_put_char_multiple(result, '\t', level);
4024 ds_put_cstr(result, "OpenFlow actions=");
4025 ofpacts_format(actions->ofpacts, actions->ofpacts_len, result);
4026 ds_put_char(result, '\n');
4027 }
4028
4029 static void
4030 trace_format_flow(struct ds *result, int level, const char *title,
4031 struct trace_ctx *trace)
4032 {
4033 ds_put_char_multiple(result, '\t', level);
4034 ds_put_format(result, "%s: ", title);
4035 /* Do not report unchanged flows for resubmits. */
4036 if ((level > 0 && flow_equal(&trace->xin.flow, &trace->flow))
4037 || (level == 0 && flow_equal(&trace->xin.flow, trace->key))) {
4038 ds_put_cstr(result, "unchanged");
4039 } else {
4040 flow_format(result, &trace->xin.flow);
4041 trace->flow = trace->xin.flow;
4042 }
4043 ds_put_char(result, '\n');
4044 }
4045
4046 static void
4047 trace_format_regs(struct ds *result, int level, const char *title,
4048 struct trace_ctx *trace)
4049 {
4050 size_t i;
4051
4052 ds_put_char_multiple(result, '\t', level);
4053 ds_put_format(result, "%s:", title);
4054 for (i = 0; i < FLOW_N_REGS; i++) {
4055 ds_put_format(result, " reg%"PRIuSIZE"=0x%"PRIx32, i, trace->flow.regs[i]);
4056 }
4057 ds_put_char(result, '\n');
4058 }
4059
4060 static void
4061 trace_format_odp(struct ds *result, int level, const char *title,
4062 struct trace_ctx *trace)
4063 {
4064 struct ofpbuf *odp_actions = &trace->xout.odp_actions;
4065
4066 ds_put_char_multiple(result, '\t', level);
4067 ds_put_format(result, "%s: ", title);
4068 format_odp_actions(result, ofpbuf_data(odp_actions),
4069 ofpbuf_size(odp_actions));
4070 ds_put_char(result, '\n');
4071 }
4072
4073 static void
4074 trace_format_megaflow(struct ds *result, int level, const char *title,
4075 struct trace_ctx *trace)
4076 {
4077 struct match match;
4078
4079 ds_put_char_multiple(result, '\t', level);
4080 ds_put_format(result, "%s: ", title);
4081 flow_wildcards_or(&trace->wc, &trace->xout.wc, &trace->wc);
4082 match_init(&match, trace->key, &trace->wc);
4083 match_format(&match, result, OFP_DEFAULT_PRIORITY);
4084 ds_put_char(result, '\n');
4085 }
4086
4087 static void
4088 trace_resubmit(struct xlate_in *xin, struct rule_dpif *rule, int recurse)
4089 {
4090 struct trace_ctx *trace = CONTAINER_OF(xin, struct trace_ctx, xin);
4091 struct ds *result = trace->result;
4092
4093 ds_put_char(result, '\n');
4094 trace_format_flow(result, recurse + 1, "Resubmitted flow", trace);
4095 trace_format_regs(result, recurse + 1, "Resubmitted regs", trace);
4096 trace_format_odp(result, recurse + 1, "Resubmitted odp", trace);
4097 trace_format_megaflow(result, recurse + 1, "Resubmitted megaflow", trace);
4098 trace_format_rule(result, recurse + 1, rule);
4099 }
4100
4101 static void
4102 trace_report(struct xlate_in *xin, const char *s, int recurse)
4103 {
4104 struct trace_ctx *trace = CONTAINER_OF(xin, struct trace_ctx, xin);
4105 struct ds *result = trace->result;
4106
4107 ds_put_char_multiple(result, '\t', recurse);
4108 ds_put_cstr(result, s);
4109 ds_put_char(result, '\n');
4110 }
4111
4112 /* Parses the 'argc' elements of 'argv', ignoring argv[0]. The following
4113 * forms are supported:
4114 *
4115 * - [dpname] odp_flow [-generate | packet]
4116 * - bridge br_flow [-generate | packet]
4117 *
4118 * On success, initializes '*ofprotop' and 'flow' and returns NULL. On failure
4119 * returns a nonnull malloced error message. */
4120 static char * WARN_UNUSED_RESULT
4121 parse_flow_and_packet(int argc, const char *argv[],
4122 struct ofproto_dpif **ofprotop, struct flow *flow,
4123 struct ofpbuf **packetp)
4124 {
4125 const struct dpif_backer *backer = NULL;
4126 const char *error = NULL;
4127 char *m_err = NULL;
4128 struct simap port_names = SIMAP_INITIALIZER(&port_names);
4129 struct ofpbuf *packet;
4130 struct ofpbuf odp_key;
4131 struct ofpbuf odp_mask;
4132
4133 ofpbuf_init(&odp_key, 0);
4134 ofpbuf_init(&odp_mask, 0);
4135
4136 /* Handle "-generate" or a hex string as the last argument. */
4137 if (!strcmp(argv[argc - 1], "-generate")) {
4138 packet = ofpbuf_new(0);
4139 argc--;
4140 } else {
4141 error = eth_from_hex(argv[argc - 1], &packet);
4142 if (!error) {
4143 argc--;
4144 } else if (argc == 4) {
4145 /* The 3-argument form must end in "-generate' or a hex string. */
4146 goto exit;
4147 }
4148 error = NULL;
4149 }
4150
4151 /* odp_flow can have its in_port specified as a name instead of port no.
4152 * We do not yet know whether a given flow is a odp_flow or a br_flow.
4153 * But, to know whether a flow is odp_flow through odp_flow_from_string(),
4154 * we need to create a simap of name to port no. */
4155 if (argc == 3) {
4156 const char *dp_type;
4157 if (!strncmp(argv[1], "ovs-", 4)) {
4158 dp_type = argv[1] + 4;
4159 } else {
4160 dp_type = argv[1];
4161 }
4162 backer = shash_find_data(&all_dpif_backers, dp_type);
4163 } else if (argc == 2) {
4164 struct shash_node *node;
4165 if (shash_count(&all_dpif_backers) == 1) {
4166 node = shash_first(&all_dpif_backers);
4167 backer = node->data;
4168 }
4169 } else {
4170 error = "Syntax error";
4171 goto exit;
4172 }
4173 if (backer && backer->dpif) {
4174 struct dpif_port dpif_port;
4175 struct dpif_port_dump port_dump;
4176 DPIF_PORT_FOR_EACH (&dpif_port, &port_dump, backer->dpif) {
4177 simap_put(&port_names, dpif_port.name,
4178 odp_to_u32(dpif_port.port_no));
4179 }
4180 }
4181
4182 /* Parse the flow and determine whether a datapath or
4183 * bridge is specified. If function odp_flow_key_from_string()
4184 * returns 0, the flow is a odp_flow. If function
4185 * parse_ofp_exact_flow() returns NULL, the flow is a br_flow. */
4186 if (!odp_flow_from_string(argv[argc - 1], &port_names,
4187 &odp_key, &odp_mask)) {
4188 if (!backer) {
4189 error = "Cannot find the datapath";
4190 goto exit;
4191 }
4192
4193 if (xlate_receive(backer, NULL, ofpbuf_data(&odp_key),
4194 ofpbuf_size(&odp_key), flow,
4195 ofprotop, NULL, NULL, NULL, NULL)) {
4196 error = "Invalid datapath flow";
4197 goto exit;
4198 }
4199 } else {
4200 char *err = parse_ofp_exact_flow(flow, NULL, argv[argc - 1], NULL);
4201
4202 if (err) {
4203 m_err = xasprintf("Bad flow syntax: %s", err);
4204 free(err);
4205 goto exit;
4206 } else {
4207 if (argc != 3) {
4208 error = "Must specify bridge name";
4209 goto exit;
4210 }
4211
4212 *ofprotop = ofproto_dpif_lookup(argv[1]);
4213 if (!*ofprotop) {
4214 error = "Unknown bridge name";
4215 goto exit;
4216 }
4217 }
4218 }
4219
4220 /* Generate a packet, if requested. */
4221 if (packet) {
4222 if (!ofpbuf_size(packet)) {
4223 flow_compose(packet, flow);
4224 } else {
4225 struct pkt_metadata md = pkt_metadata_from_flow(flow);
4226
4227 /* Use the metadata from the flow and the packet argument
4228 * to reconstruct the flow. */
4229 flow_extract(packet, &md, flow);
4230 }
4231 }
4232
4233 exit:
4234 if (error && !m_err) {
4235 m_err = xstrdup(error);
4236 }
4237 if (m_err) {
4238 ofpbuf_delete(packet);
4239 packet = NULL;
4240 }
4241 *packetp = packet;
4242 ofpbuf_uninit(&odp_key);
4243 ofpbuf_uninit(&odp_mask);
4244 simap_destroy(&port_names);
4245 return m_err;
4246 }
4247
4248 static void
4249 ofproto_unixctl_trace(struct unixctl_conn *conn, int argc, const char *argv[],
4250 void *aux OVS_UNUSED)
4251 {
4252 struct ofproto_dpif *ofproto;
4253 struct ofpbuf *packet;
4254 char *error;
4255 struct flow flow;
4256
4257 error = parse_flow_and_packet(argc, argv, &ofproto, &flow, &packet);
4258 if (!error) {
4259 struct ds result;
4260
4261 ds_init(&result);
4262 ofproto_trace(ofproto, &flow, packet, NULL, 0, &result);
4263 unixctl_command_reply(conn, ds_cstr(&result));
4264 ds_destroy(&result);
4265 ofpbuf_delete(packet);
4266 } else {
4267 unixctl_command_reply_error(conn, error);
4268 free(error);
4269 }
4270 }
4271
4272 static void
4273 ofproto_unixctl_trace_actions(struct unixctl_conn *conn, int argc,
4274 const char *argv[], void *aux OVS_UNUSED)
4275 {
4276 enum ofputil_protocol usable_protocols;
4277 struct ofproto_dpif *ofproto;
4278 bool enforce_consistency;
4279 struct ofpbuf ofpacts;
4280 struct ofpbuf *packet;
4281 struct ds result;
4282 struct flow flow;
4283 uint16_t in_port;
4284
4285 /* Three kinds of error return values! */
4286 enum ofperr retval;
4287 char *error;
4288
4289 packet = NULL;
4290 ds_init(&result);
4291 ofpbuf_init(&ofpacts, 0);
4292
4293 /* Parse actions. */
4294 error = parse_ofpacts(argv[--argc], &ofpacts, &usable_protocols);
4295 if (error) {
4296 unixctl_command_reply_error(conn, error);
4297 free(error);
4298 goto exit;
4299 }
4300
4301 /* OpenFlow 1.1 and later suggest that the switch enforces certain forms of
4302 * consistency between the flow and the actions. With -consistent, we
4303 * enforce consistency even for a flow supported in OpenFlow 1.0. */
4304 if (!strcmp(argv[1], "-consistent")) {
4305 enforce_consistency = true;
4306 argv++;
4307 argc--;
4308 } else {
4309 enforce_consistency = false;
4310 }
4311
4312 error = parse_flow_and_packet(argc, argv, &ofproto, &flow, &packet);
4313 if (error) {
4314 unixctl_command_reply_error(conn, error);
4315 free(error);
4316 goto exit;
4317 }
4318
4319 /* Do the same checks as handle_packet_out() in ofproto.c.
4320 *
4321 * We pass a 'table_id' of 0 to ofproto_check_ofpacts(), which isn't
4322 * strictly correct because these actions aren't in any table, but it's OK
4323 * because it 'table_id' is used only to check goto_table instructions, but
4324 * packet-outs take a list of actions and therefore it can't include
4325 * instructions.
4326 *
4327 * We skip the "meter" check here because meter is an instruction, not an
4328 * action, and thus cannot appear in ofpacts. */
4329 in_port = ofp_to_u16(flow.in_port.ofp_port);
4330 if (in_port >= ofproto->up.max_ports && in_port < ofp_to_u16(OFPP_MAX)) {
4331 unixctl_command_reply_error(conn, "invalid in_port");
4332 goto exit;
4333 }
4334 if (enforce_consistency) {
4335 retval = ofpacts_check_consistency(ofpbuf_data(&ofpacts), ofpbuf_size(&ofpacts),
4336 &flow, u16_to_ofp(ofproto->up.max_ports),
4337 0, 0, usable_protocols);
4338 } else {
4339 retval = ofpacts_check(ofpbuf_data(&ofpacts), ofpbuf_size(&ofpacts), &flow,
4340 u16_to_ofp(ofproto->up.max_ports), 0, 0,
4341 &usable_protocols);
4342 }
4343
4344 if (retval) {
4345 ds_clear(&result);
4346 ds_put_format(&result, "Bad actions: %s", ofperr_to_string(retval));
4347 unixctl_command_reply_error(conn, ds_cstr(&result));
4348 goto exit;
4349 }
4350
4351 ofproto_trace(ofproto, &flow, packet,
4352 ofpbuf_data(&ofpacts), ofpbuf_size(&ofpacts), &result);
4353 unixctl_command_reply(conn, ds_cstr(&result));
4354
4355 exit:
4356 ds_destroy(&result);
4357 ofpbuf_delete(packet);
4358 ofpbuf_uninit(&ofpacts);
4359 }
4360
4361 /* Implements a "trace" through 'ofproto''s flow table, appending a textual
4362 * description of the results to 'ds'.
4363 *
4364 * The trace follows a packet with the specified 'flow' through the flow
4365 * table. 'packet' may be nonnull to trace an actual packet, with consequent
4366 * side effects (if it is nonnull then its flow must be 'flow').
4367 *
4368 * If 'ofpacts' is nonnull then its 'ofpacts_len' bytes specify the actions to
4369 * trace, otherwise the actions are determined by a flow table lookup. */
4370 static void
4371 ofproto_trace(struct ofproto_dpif *ofproto, struct flow *flow,
4372 const struct ofpbuf *packet,
4373 const struct ofpact ofpacts[], size_t ofpacts_len,
4374 struct ds *ds)
4375 {
4376 struct rule_dpif *rule;
4377 struct trace_ctx trace;
4378
4379 ds_put_format(ds, "Bridge: %s\n", ofproto->up.name);
4380 ds_put_cstr(ds, "Flow: ");
4381 flow_format(ds, flow);
4382 ds_put_char(ds, '\n');
4383
4384 flow_wildcards_init_catchall(&trace.wc);
4385 if (ofpacts) {
4386 rule = NULL;
4387 } else {
4388 rule_dpif_lookup(ofproto, flow, &trace.wc, &rule, false, NULL);
4389
4390 trace_format_rule(ds, 0, rule);
4391 if (rule == ofproto->miss_rule) {
4392 ds_put_cstr(ds, "\nNo match, flow generates \"packet in\"s.\n");
4393 } else if (rule == ofproto->no_packet_in_rule) {
4394 ds_put_cstr(ds, "\nNo match, packets dropped because "
4395 "OFPPC_NO_PACKET_IN is set on in_port.\n");
4396 } else if (rule == ofproto->drop_frags_rule) {
4397 ds_put_cstr(ds, "\nPackets dropped because they are IP fragments "
4398 "and the fragment handling mode is \"drop\".\n");
4399 }
4400 }
4401
4402 if (rule || ofpacts) {
4403 trace.result = ds;
4404 trace.key = flow; /* Original flow key, used for megaflow. */
4405 trace.flow = *flow; /* May be modified by actions. */
4406 xlate_in_init(&trace.xin, ofproto, flow, rule, ntohs(flow->tcp_flags),
4407 packet);
4408 if (ofpacts) {
4409 trace.xin.ofpacts = ofpacts;
4410 trace.xin.ofpacts_len = ofpacts_len;
4411 }
4412 trace.xin.resubmit_hook = trace_resubmit;
4413 trace.xin.report_hook = trace_report;
4414
4415 xlate_actions(&trace.xin, &trace.xout);
4416
4417 ds_put_char(ds, '\n');
4418 trace_format_flow(ds, 0, "Final flow", &trace);
4419 trace_format_megaflow(ds, 0, "Megaflow", &trace);
4420
4421 ds_put_cstr(ds, "Datapath actions: ");
4422 format_odp_actions(ds, ofpbuf_data(&trace.xout.odp_actions),
4423 ofpbuf_size(&trace.xout.odp_actions));
4424
4425 if (trace.xout.slow) {
4426 enum slow_path_reason slow;
4427
4428 ds_put_cstr(ds, "\nThis flow is handled by the userspace "
4429 "slow path because it:");
4430
4431 slow = trace.xout.slow;
4432 while (slow) {
4433 enum slow_path_reason bit = rightmost_1bit(slow);
4434
4435 ds_put_format(ds, "\n\t- %s.",
4436 slow_path_reason_to_explanation(bit));
4437
4438 slow &= ~bit;
4439 }
4440 }
4441
4442 xlate_out_uninit(&trace.xout);
4443 }
4444 }
4445
4446 /* Store the current ofprotos in 'ofproto_shash'. Returns a sorted list
4447 * of the 'ofproto_shash' nodes. It is the responsibility of the caller
4448 * to destroy 'ofproto_shash' and free the returned value. */
4449 static const struct shash_node **
4450 get_ofprotos(struct shash *ofproto_shash)
4451 {
4452 const struct ofproto_dpif *ofproto;
4453
4454 HMAP_FOR_EACH (ofproto, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
4455 char *name = xasprintf("%s@%s", ofproto->up.type, ofproto->up.name);
4456 shash_add_nocopy(ofproto_shash, name, ofproto);
4457 }
4458
4459 return shash_sort(ofproto_shash);
4460 }
4461
4462 static void
4463 ofproto_unixctl_dpif_dump_dps(struct unixctl_conn *conn, int argc OVS_UNUSED,
4464 const char *argv[] OVS_UNUSED,
4465 void *aux OVS_UNUSED)
4466 {
4467 struct ds ds = DS_EMPTY_INITIALIZER;
4468 struct shash ofproto_shash;
4469 const struct shash_node **sorted_ofprotos;
4470 int i;
4471
4472 shash_init(&ofproto_shash);
4473 sorted_ofprotos = get_ofprotos(&ofproto_shash);
4474 for (i = 0; i < shash_count(&ofproto_shash); i++) {
4475 const struct shash_node *node = sorted_ofprotos[i];
4476 ds_put_format(&ds, "%s\n", node->name);
4477 }
4478
4479 shash_destroy(&ofproto_shash);
4480 free(sorted_ofprotos);
4481
4482 unixctl_command_reply(conn, ds_cstr(&ds));
4483 ds_destroy(&ds);
4484 }
4485
4486 static void
4487 dpif_show_backer(const struct dpif_backer *backer, struct ds *ds)
4488 {
4489 const struct shash_node **ofprotos;
4490 struct dpif_dp_stats dp_stats;
4491 struct shash ofproto_shash;
4492 size_t i;
4493
4494 dpif_get_dp_stats(backer->dpif, &dp_stats);
4495
4496 ds_put_format(ds, "%s: hit:%"PRIu64" missed:%"PRIu64"\n",
4497 dpif_name(backer->dpif), dp_stats.n_hit, dp_stats.n_missed);
4498
4499 shash_init(&ofproto_shash);
4500 ofprotos = get_ofprotos(&ofproto_shash);
4501 for (i = 0; i < shash_count(&ofproto_shash); i++) {
4502 struct ofproto_dpif *ofproto = ofprotos[i]->data;
4503 const struct shash_node **ports;
4504 size_t j;
4505
4506 if (ofproto->backer != backer) {
4507 continue;
4508 }
4509
4510 ds_put_format(ds, "\t%s:\n", ofproto->up.name);
4511
4512 ports = shash_sort(&ofproto->up.port_by_name);
4513 for (j = 0; j < shash_count(&ofproto->up.port_by_name); j++) {
4514 const struct shash_node *node = ports[j];
4515 struct ofport *ofport = node->data;
4516 struct smap config;
4517 odp_port_t odp_port;
4518
4519 ds_put_format(ds, "\t\t%s %u/", netdev_get_name(ofport->netdev),
4520 ofport->ofp_port);
4521
4522 odp_port = ofp_port_to_odp_port(ofproto, ofport->ofp_port);
4523 if (odp_port != ODPP_NONE) {
4524 ds_put_format(ds, "%"PRIu32":", odp_port);
4525 } else {
4526 ds_put_cstr(ds, "none:");
4527 }
4528
4529 ds_put_format(ds, " (%s", netdev_get_type(ofport->netdev));
4530
4531 smap_init(&config);
4532 if (!netdev_get_config(ofport->netdev, &config)) {
4533 const struct smap_node **nodes;
4534 size_t i;
4535
4536 nodes = smap_sort(&config);
4537 for (i = 0; i < smap_count(&config); i++) {
4538 const struct smap_node *node = nodes[i];
4539 ds_put_format(ds, "%c %s=%s", i ? ',' : ':',
4540 node->key, node->value);
4541 }
4542 free(nodes);
4543 }
4544 smap_destroy(&config);
4545
4546 ds_put_char(ds, ')');
4547 ds_put_char(ds, '\n');
4548 }
4549 free(ports);
4550 }
4551 shash_destroy(&ofproto_shash);
4552 free(ofprotos);
4553 }
4554
4555 static void
4556 ofproto_unixctl_dpif_show(struct unixctl_conn *conn, int argc OVS_UNUSED,
4557 const char *argv[] OVS_UNUSED, void *aux OVS_UNUSED)
4558 {
4559 struct ds ds = DS_EMPTY_INITIALIZER;
4560 const struct shash_node **backers;
4561 int i;
4562
4563 backers = shash_sort(&all_dpif_backers);
4564 for (i = 0; i < shash_count(&all_dpif_backers); i++) {
4565 dpif_show_backer(backers[i]->data, &ds);
4566 }
4567 free(backers);
4568
4569 unixctl_command_reply(conn, ds_cstr(&ds));
4570 ds_destroy(&ds);
4571 }
4572
4573 static bool
4574 ofproto_dpif_contains_flow(const struct ofproto_dpif *ofproto,
4575 const struct nlattr *key, size_t key_len)
4576 {
4577 struct ofproto_dpif *ofp;
4578 struct flow flow;
4579
4580 xlate_receive(ofproto->backer, NULL, key, key_len, &flow, &ofp,
4581 NULL, NULL, NULL, NULL);
4582 return ofp == ofproto;
4583 }
4584
4585 static void
4586 ofproto_unixctl_dpif_dump_flows(struct unixctl_conn *conn,
4587 int argc OVS_UNUSED, const char *argv[],
4588 void *aux OVS_UNUSED)
4589 {
4590 const struct ofproto_dpif *ofproto;
4591
4592 struct ds ds = DS_EMPTY_INITIALIZER;
4593 bool verbosity = false;
4594
4595 struct dpif_port dpif_port;
4596 struct dpif_port_dump port_dump;
4597 struct hmap portno_names;
4598
4599 struct dpif_flow_dump *flow_dump;
4600 struct dpif_flow_dump_thread *flow_dump_thread;
4601 struct dpif_flow f;
4602 int error;
4603
4604 ofproto = ofproto_dpif_lookup(argv[argc - 1]);
4605 if (!ofproto) {
4606 unixctl_command_reply_error(conn, "no such bridge");
4607 return;
4608 }
4609
4610 if (argc > 2 && !strcmp(argv[1], "-m")) {
4611 verbosity = true;
4612 }
4613
4614 hmap_init(&portno_names);
4615 DPIF_PORT_FOR_EACH (&dpif_port, &port_dump, ofproto->backer->dpif) {
4616 odp_portno_names_set(&portno_names, dpif_port.port_no, dpif_port.name);
4617 }
4618
4619 ds_init(&ds);
4620 flow_dump = dpif_flow_dump_create(ofproto->backer->dpif);
4621 flow_dump_thread = dpif_flow_dump_thread_create(flow_dump);
4622 while (dpif_flow_dump_next(flow_dump_thread, &f, 1)) {
4623 if (!ofproto_dpif_contains_flow(ofproto, f.key, f.key_len)) {
4624 continue;
4625 }
4626
4627 odp_flow_format(f.key, f.key_len, f.mask, f.mask_len,
4628 &portno_names, &ds, verbosity);
4629 ds_put_cstr(&ds, ", ");
4630 dpif_flow_stats_format(&f.stats, &ds);
4631 ds_put_cstr(&ds, ", actions:");
4632 format_odp_actions(&ds, f.actions, f.actions_len);
4633 ds_put_char(&ds, '\n');
4634 }
4635 dpif_flow_dump_thread_destroy(flow_dump_thread);
4636 error = dpif_flow_dump_destroy(flow_dump);
4637
4638 if (error) {
4639 ds_clear(&ds);
4640 ds_put_format(&ds, "dpif/dump_flows failed: %s", ovs_strerror(errno));
4641 unixctl_command_reply_error(conn, ds_cstr(&ds));
4642 } else {
4643 unixctl_command_reply(conn, ds_cstr(&ds));
4644 }
4645 odp_portno_names_destroy(&portno_names);
4646 hmap_destroy(&portno_names);
4647 ds_destroy(&ds);
4648 }
4649
4650 static void
4651 ofproto_dpif_unixctl_init(void)
4652 {
4653 static bool registered;
4654 if (registered) {
4655 return;
4656 }
4657 registered = true;
4658
4659 unixctl_command_register(
4660 "ofproto/trace",
4661 "{[dp_name] odp_flow | bridge br_flow} [-generate|packet]",
4662 1, 3, ofproto_unixctl_trace, NULL);
4663 unixctl_command_register(
4664 "ofproto/trace-packet-out",
4665 "[-consistent] {[dp_name] odp_flow | bridge br_flow} [-generate|packet] actions",
4666 2, 6, ofproto_unixctl_trace_actions, NULL);
4667 unixctl_command_register("fdb/flush", "[bridge]", 0, 1,
4668 ofproto_unixctl_fdb_flush, NULL);
4669 unixctl_command_register("fdb/show", "bridge", 1, 1,
4670 ofproto_unixctl_fdb_show, NULL);
4671 unixctl_command_register("mdb/flush", "[bridge]", 0, 1,
4672 ofproto_unixctl_mcast_snooping_flush, NULL);
4673 unixctl_command_register("mdb/show", "bridge", 1, 1,
4674 ofproto_unixctl_mcast_snooping_show, NULL);
4675 unixctl_command_register("dpif/dump-dps", "", 0, 0,
4676 ofproto_unixctl_dpif_dump_dps, NULL);
4677 unixctl_command_register("dpif/show", "", 0, 0, ofproto_unixctl_dpif_show,
4678 NULL);
4679 unixctl_command_register("dpif/dump-flows", "[-m] bridge", 1, 2,
4680 ofproto_unixctl_dpif_dump_flows, NULL);
4681 }
4682
4683 /* Returns true if 'table' is the table used for internal rules,
4684 * false otherwise. */
4685 bool
4686 table_is_internal(uint8_t table_id)
4687 {
4688 return table_id == TBL_INTERNAL;
4689 }
4690 \f
4691 /* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
4692 *
4693 * This is deprecated. It is only for compatibility with broken device drivers
4694 * in old versions of Linux that do not properly support VLANs when VLAN
4695 * devices are not used. When broken device drivers are no longer in
4696 * widespread use, we will delete these interfaces. */
4697
4698 static int
4699 set_realdev(struct ofport *ofport_, ofp_port_t realdev_ofp_port, int vid)
4700 {
4701 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport_->ofproto);
4702 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
4703
4704 if (realdev_ofp_port == ofport->realdev_ofp_port
4705 && vid == ofport->vlandev_vid) {
4706 return 0;
4707 }
4708
4709 ofproto->backer->need_revalidate = REV_RECONFIGURE;
4710
4711 if (ofport->realdev_ofp_port) {
4712 vsp_remove(ofport);
4713 }
4714 if (realdev_ofp_port && ofport->bundle) {
4715 /* vlandevs are enslaved to their realdevs, so they are not allowed to
4716 * themselves be part of a bundle. */
4717 bundle_set(ofport_->ofproto, ofport->bundle, NULL);
4718 }
4719
4720 ofport->realdev_ofp_port = realdev_ofp_port;
4721 ofport->vlandev_vid = vid;
4722
4723 if (realdev_ofp_port) {
4724 vsp_add(ofport, realdev_ofp_port, vid);
4725 }
4726
4727 return 0;
4728 }
4729
4730 static uint32_t
4731 hash_realdev_vid(ofp_port_t realdev_ofp_port, int vid)
4732 {
4733 return hash_2words(ofp_to_u16(realdev_ofp_port), vid);
4734 }
4735
4736 bool
4737 ofproto_has_vlan_splinters(const struct ofproto_dpif *ofproto)
4738 OVS_EXCLUDED(ofproto->vsp_mutex)
4739 {
4740 /* hmap_is_empty is thread safe. */
4741 return !hmap_is_empty(&ofproto->realdev_vid_map);
4742 }
4743
4744
4745 static ofp_port_t
4746 vsp_realdev_to_vlandev__(const struct ofproto_dpif *ofproto,
4747 ofp_port_t realdev_ofp_port, ovs_be16 vlan_tci)
4748 OVS_REQUIRES(ofproto->vsp_mutex)
4749 {
4750 if (!hmap_is_empty(&ofproto->realdev_vid_map)) {
4751 int vid = vlan_tci_to_vid(vlan_tci);
4752 const struct vlan_splinter *vsp;
4753
4754 HMAP_FOR_EACH_WITH_HASH (vsp, realdev_vid_node,
4755 hash_realdev_vid(realdev_ofp_port, vid),
4756 &ofproto->realdev_vid_map) {
4757 if (vsp->realdev_ofp_port == realdev_ofp_port
4758 && vsp->vid == vid) {
4759 return vsp->vlandev_ofp_port;
4760 }
4761 }
4762 }
4763 return realdev_ofp_port;
4764 }
4765
4766 /* Returns the OFP port number of the Linux VLAN device that corresponds to
4767 * 'vlan_tci' on the network device with port number 'realdev_ofp_port' in
4768 * 'struct ofport_dpif'. For example, given 'realdev_ofp_port' of eth0 and
4769 * 'vlan_tci' 9, it would return the port number of eth0.9.
4770 *
4771 * Unless VLAN splinters are enabled for port 'realdev_ofp_port', this
4772 * function just returns its 'realdev_ofp_port' argument. */
4773 ofp_port_t
4774 vsp_realdev_to_vlandev(const struct ofproto_dpif *ofproto,
4775 ofp_port_t realdev_ofp_port, ovs_be16 vlan_tci)
4776 OVS_EXCLUDED(ofproto->vsp_mutex)
4777 {
4778 ofp_port_t ret;
4779
4780 /* hmap_is_empty is thread safe, see if we can return immediately. */
4781 if (hmap_is_empty(&ofproto->realdev_vid_map)) {
4782 return realdev_ofp_port;
4783 }
4784 ovs_mutex_lock(&ofproto->vsp_mutex);
4785 ret = vsp_realdev_to_vlandev__(ofproto, realdev_ofp_port, vlan_tci);
4786 ovs_mutex_unlock(&ofproto->vsp_mutex);
4787 return ret;
4788 }
4789
4790 static struct vlan_splinter *
4791 vlandev_find(const struct ofproto_dpif *ofproto, ofp_port_t vlandev_ofp_port)
4792 {
4793 struct vlan_splinter *vsp;
4794
4795 HMAP_FOR_EACH_WITH_HASH (vsp, vlandev_node,
4796 hash_ofp_port(vlandev_ofp_port),
4797 &ofproto->vlandev_map) {
4798 if (vsp->vlandev_ofp_port == vlandev_ofp_port) {
4799 return vsp;
4800 }
4801 }
4802
4803 return NULL;
4804 }
4805
4806 /* Returns the OpenFlow port number of the "real" device underlying the Linux
4807 * VLAN device with OpenFlow port number 'vlandev_ofp_port' and stores the
4808 * VLAN VID of the Linux VLAN device in '*vid'. For example, given
4809 * 'vlandev_ofp_port' of eth0.9, it would return the OpenFlow port number of
4810 * eth0 and store 9 in '*vid'.
4811 *
4812 * Returns 0 and does not modify '*vid' if 'vlandev_ofp_port' is not a Linux
4813 * VLAN device. Unless VLAN splinters are enabled, this is what this function
4814 * always does.*/
4815 static ofp_port_t
4816 vsp_vlandev_to_realdev(const struct ofproto_dpif *ofproto,
4817 ofp_port_t vlandev_ofp_port, int *vid)
4818 OVS_REQUIRES(ofproto->vsp_mutex)
4819 {
4820 if (!hmap_is_empty(&ofproto->vlandev_map)) {
4821 const struct vlan_splinter *vsp;
4822
4823 vsp = vlandev_find(ofproto, vlandev_ofp_port);
4824 if (vsp) {
4825 if (vid) {
4826 *vid = vsp->vid;
4827 }
4828 return vsp->realdev_ofp_port;
4829 }
4830 }
4831 return 0;
4832 }
4833
4834 /* Given 'flow', a flow representing a packet received on 'ofproto', checks
4835 * whether 'flow->in_port' represents a Linux VLAN device. If so, changes
4836 * 'flow->in_port' to the "real" device backing the VLAN device, sets
4837 * 'flow->vlan_tci' to the VLAN VID, and returns true. Otherwise (which is
4838 * always the case unless VLAN splinters are enabled), returns false without
4839 * making any changes. */
4840 bool
4841 vsp_adjust_flow(const struct ofproto_dpif *ofproto, struct flow *flow)
4842 OVS_EXCLUDED(ofproto->vsp_mutex)
4843 {
4844 ofp_port_t realdev;
4845 int vid;
4846
4847 /* hmap_is_empty is thread safe. */
4848 if (hmap_is_empty(&ofproto->vlandev_map)) {
4849 return false;
4850 }
4851
4852 ovs_mutex_lock(&ofproto->vsp_mutex);
4853 realdev = vsp_vlandev_to_realdev(ofproto, flow->in_port.ofp_port, &vid);
4854 ovs_mutex_unlock(&ofproto->vsp_mutex);
4855 if (!realdev) {
4856 return false;
4857 }
4858
4859 /* Cause the flow to be processed as if it came in on the real device with
4860 * the VLAN device's VLAN ID. */
4861 flow->in_port.ofp_port = realdev;
4862 flow->vlan_tci = htons((vid & VLAN_VID_MASK) | VLAN_CFI);
4863 return true;
4864 }
4865
4866 static void
4867 vsp_remove(struct ofport_dpif *port)
4868 {
4869 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
4870 struct vlan_splinter *vsp;
4871
4872 ovs_mutex_lock(&ofproto->vsp_mutex);
4873 vsp = vlandev_find(ofproto, port->up.ofp_port);
4874 if (vsp) {
4875 hmap_remove(&ofproto->vlandev_map, &vsp->vlandev_node);
4876 hmap_remove(&ofproto->realdev_vid_map, &vsp->realdev_vid_node);
4877 free(vsp);
4878
4879 port->realdev_ofp_port = 0;
4880 } else {
4881 VLOG_ERR("missing vlan device record");
4882 }
4883 ovs_mutex_unlock(&ofproto->vsp_mutex);
4884 }
4885
4886 static void
4887 vsp_add(struct ofport_dpif *port, ofp_port_t realdev_ofp_port, int vid)
4888 {
4889 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
4890
4891 ovs_mutex_lock(&ofproto->vsp_mutex);
4892 if (!vsp_vlandev_to_realdev(ofproto, port->up.ofp_port, NULL)
4893 && (vsp_realdev_to_vlandev__(ofproto, realdev_ofp_port, htons(vid))
4894 == realdev_ofp_port)) {
4895 struct vlan_splinter *vsp;
4896
4897 vsp = xmalloc(sizeof *vsp);
4898 vsp->realdev_ofp_port = realdev_ofp_port;
4899 vsp->vlandev_ofp_port = port->up.ofp_port;
4900 vsp->vid = vid;
4901
4902 port->realdev_ofp_port = realdev_ofp_port;
4903
4904 hmap_insert(&ofproto->vlandev_map, &vsp->vlandev_node,
4905 hash_ofp_port(port->up.ofp_port));
4906 hmap_insert(&ofproto->realdev_vid_map, &vsp->realdev_vid_node,
4907 hash_realdev_vid(realdev_ofp_port, vid));
4908 } else {
4909 VLOG_ERR("duplicate vlan device record");
4910 }
4911 ovs_mutex_unlock(&ofproto->vsp_mutex);
4912 }
4913
4914 static odp_port_t
4915 ofp_port_to_odp_port(const struct ofproto_dpif *ofproto, ofp_port_t ofp_port)
4916 {
4917 const struct ofport_dpif *ofport = get_ofp_port(ofproto, ofp_port);
4918 return ofport ? ofport->odp_port : ODPP_NONE;
4919 }
4920
4921 struct ofport_dpif *
4922 odp_port_to_ofport(const struct dpif_backer *backer, odp_port_t odp_port)
4923 {
4924 struct ofport_dpif *port;
4925
4926 ovs_rwlock_rdlock(&backer->odp_to_ofport_lock);
4927 HMAP_FOR_EACH_IN_BUCKET (port, odp_port_node, hash_odp_port(odp_port),
4928 &backer->odp_to_ofport_map) {
4929 if (port->odp_port == odp_port) {
4930 ovs_rwlock_unlock(&backer->odp_to_ofport_lock);
4931 return port;
4932 }
4933 }
4934
4935 ovs_rwlock_unlock(&backer->odp_to_ofport_lock);
4936 return NULL;
4937 }
4938
4939 static ofp_port_t
4940 odp_port_to_ofp_port(const struct ofproto_dpif *ofproto, odp_port_t odp_port)
4941 {
4942 struct ofport_dpif *port;
4943
4944 port = odp_port_to_ofport(ofproto->backer, odp_port);
4945 if (port && &ofproto->up == port->up.ofproto) {
4946 return port->up.ofp_port;
4947 } else {
4948 return OFPP_NONE;
4949 }
4950 }
4951
4952 uint32_t
4953 ofproto_dpif_alloc_recirc_id(struct ofproto_dpif *ofproto)
4954 {
4955 struct dpif_backer *backer = ofproto->backer;
4956
4957 return recirc_id_alloc(backer->rid_pool);
4958 }
4959
4960 void
4961 ofproto_dpif_free_recirc_id(struct ofproto_dpif *ofproto, uint32_t recirc_id)
4962 {
4963 struct dpif_backer *backer = ofproto->backer;
4964
4965 recirc_id_free(backer->rid_pool, recirc_id);
4966 }
4967
4968 int
4969 ofproto_dpif_add_internal_flow(struct ofproto_dpif *ofproto,
4970 const struct match *match, int priority,
4971 uint16_t idle_timeout,
4972 const struct ofpbuf *ofpacts,
4973 struct rule **rulep)
4974 {
4975 struct ofputil_flow_mod fm;
4976 struct rule_dpif *rule;
4977 int error;
4978
4979 fm.match = *match;
4980 fm.priority = priority;
4981 fm.new_cookie = htonll(0);
4982 fm.cookie = htonll(0);
4983 fm.cookie_mask = htonll(0);
4984 fm.modify_cookie = false;
4985 fm.table_id = TBL_INTERNAL;
4986 fm.command = OFPFC_ADD;
4987 fm.idle_timeout = idle_timeout;
4988 fm.hard_timeout = 0;
4989 fm.buffer_id = 0;
4990 fm.out_port = 0;
4991 fm.flags = OFPUTIL_FF_HIDDEN_FIELDS | OFPUTIL_FF_NO_READONLY;
4992 fm.ofpacts = ofpbuf_data(ofpacts);
4993 fm.ofpacts_len = ofpbuf_size(ofpacts);
4994
4995 error = ofproto_flow_mod(&ofproto->up, &fm);
4996 if (error) {
4997 VLOG_ERR_RL(&rl, "failed to add internal flow (%s)",
4998 ofperr_to_string(error));
4999 *rulep = NULL;
5000 return error;
5001 }
5002
5003 rule = rule_dpif_lookup_in_table(ofproto, TBL_INTERNAL, &fm.match.flow,
5004 &fm.match.wc, false);
5005 if (rule) {
5006 *rulep = &rule->up;
5007 } else {
5008 OVS_NOT_REACHED();
5009 }
5010 return 0;
5011 }
5012
5013 int
5014 ofproto_dpif_delete_internal_flow(struct ofproto_dpif *ofproto,
5015 struct match *match, int priority)
5016 {
5017 struct ofputil_flow_mod fm;
5018 int error;
5019
5020 fm.match = *match;
5021 fm.priority = priority;
5022 fm.new_cookie = htonll(0);
5023 fm.cookie = htonll(0);
5024 fm.cookie_mask = htonll(0);
5025 fm.modify_cookie = false;
5026 fm.table_id = TBL_INTERNAL;
5027 fm.flags = OFPUTIL_FF_HIDDEN_FIELDS | OFPUTIL_FF_NO_READONLY;
5028 fm.command = OFPFC_DELETE_STRICT;
5029
5030 error = ofproto_flow_mod(&ofproto->up, &fm);
5031 if (error) {
5032 VLOG_ERR_RL(&rl, "failed to delete internal flow (%s)",
5033 ofperr_to_string(error));
5034 return error;
5035 }
5036
5037 return 0;
5038 }
5039
5040 const struct ofproto_class ofproto_dpif_class = {
5041 init,
5042 enumerate_types,
5043 enumerate_names,
5044 del,
5045 port_open_type,
5046 type_run,
5047 type_wait,
5048 alloc,
5049 construct,
5050 destruct,
5051 dealloc,
5052 run,
5053 wait,
5054 NULL, /* get_memory_usage. */
5055 type_get_memory_usage,
5056 flush,
5057 get_features,
5058 get_tables,
5059 port_alloc,
5060 port_construct,
5061 port_destruct,
5062 port_dealloc,
5063 port_modified,
5064 port_reconfigured,
5065 port_query_by_name,
5066 port_add,
5067 port_del,
5068 port_get_stats,
5069 port_dump_start,
5070 port_dump_next,
5071 port_dump_done,
5072 port_poll,
5073 port_poll_wait,
5074 port_is_lacp_current,
5075 NULL, /* rule_choose_table */
5076 rule_alloc,
5077 rule_construct,
5078 rule_insert,
5079 rule_delete,
5080 rule_destruct,
5081 rule_dealloc,
5082 rule_get_stats,
5083 rule_execute,
5084 NULL, /* rule_premodify_actions */
5085 rule_modify_actions,
5086 set_frag_handling,
5087 packet_out,
5088 set_netflow,
5089 get_netflow_ids,
5090 set_sflow,
5091 set_ipfix,
5092 set_cfm,
5093 cfm_status_changed,
5094 get_cfm_status,
5095 set_bfd,
5096 bfd_status_changed,
5097 get_bfd_status,
5098 set_stp,
5099 get_stp_status,
5100 set_stp_port,
5101 get_stp_port_status,
5102 get_stp_port_stats,
5103 set_queues,
5104 bundle_set,
5105 bundle_remove,
5106 mirror_set__,
5107 mirror_get_stats__,
5108 set_flood_vlans,
5109 is_mirror_output_bundle,
5110 forward_bpdu_changed,
5111 set_mac_table_config,
5112 set_mcast_snooping,
5113 set_mcast_snooping_port,
5114 set_realdev,
5115 NULL, /* meter_get_features */
5116 NULL, /* meter_set */
5117 NULL, /* meter_get */
5118 NULL, /* meter_del */
5119 group_alloc, /* group_alloc */
5120 group_construct, /* group_construct */
5121 group_destruct, /* group_destruct */
5122 group_dealloc, /* group_dealloc */
5123 group_modify, /* group_modify */
5124 group_get_stats, /* group_get_stats */
5125 };