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abe529af 1/*
4dd1e3ca 2 * Copyright (c) 2009, 2010, 2011, 2012 Nicira Networks.
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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
5bee6e26 19#include "ofproto/ofproto-provider.h"
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20
21#include <errno.h>
22
23#include "autopath.h"
24#include "bond.h"
daff3353 25#include "bundle.h"
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26#include "byte-order.h"
27#include "connmgr.h"
28#include "coverage.h"
29#include "cfm.h"
30#include "dpif.h"
31#include "dynamic-string.h"
32#include "fail-open.h"
33#include "hmapx.h"
34#include "lacp.h"
75a75043 35#include "learn.h"
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36#include "mac-learning.h"
37#include "multipath.h"
38#include "netdev.h"
39#include "netlink.h"
40#include "nx-match.h"
41#include "odp-util.h"
42#include "ofp-util.h"
43#include "ofpbuf.h"
44#include "ofp-print.h"
bae473fe 45#include "ofproto-dpif-sflow.h"
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46#include "poll-loop.h"
47#include "timer.h"
6c1491fb 48#include "unaligned.h"
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49#include "unixctl.h"
50#include "vlan-bitmap.h"
51#include "vlog.h"
52
53VLOG_DEFINE_THIS_MODULE(ofproto_dpif);
54
55COVERAGE_DEFINE(ofproto_dpif_ctlr_action);
56COVERAGE_DEFINE(ofproto_dpif_expired);
57COVERAGE_DEFINE(ofproto_dpif_no_packet_in);
58COVERAGE_DEFINE(ofproto_dpif_xlate);
59COVERAGE_DEFINE(facet_changed_rule);
60COVERAGE_DEFINE(facet_invalidated);
61COVERAGE_DEFINE(facet_revalidate);
62COVERAGE_DEFINE(facet_unexpected);
63
29901626 64/* Maximum depth of flow table recursion (due to resubmit actions) in a
abe529af 65 * flow translation. */
642a5c05 66#define MAX_RESUBMIT_RECURSION 32
abe529af 67
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68/* Number of implemented OpenFlow tables. */
69enum { N_TABLES = 255 };
70BUILD_ASSERT_DECL(N_TABLES >= 1 && N_TABLES <= 255);
71
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72struct ofport_dpif;
73struct ofproto_dpif;
74
75struct rule_dpif {
76 struct rule up;
77
78 long long int used; /* Time last used; time created if not used. */
79
80 /* These statistics:
81 *
82 * - Do include packets and bytes from facets that have been deleted or
83 * whose own statistics have been folded into the rule.
84 *
85 * - Do include packets and bytes sent "by hand" that were accounted to
86 * the rule without any facet being involved (this is a rare corner
87 * case in rule_execute()).
88 *
89 * - Do not include packet or bytes that can be obtained from any facet's
90 * packet_count or byte_count member or that can be obtained from the
b0f7b9b5 91 * datapath by, e.g., dpif_flow_get() for any subfacet.
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92 */
93 uint64_t packet_count; /* Number of packets received. */
94 uint64_t byte_count; /* Number of bytes received. */
95
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96 tag_type tag; /* Caches rule_calculate_tag() result. */
97
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98 struct list facets; /* List of "struct facet"s. */
99};
100
101static struct rule_dpif *rule_dpif_cast(const struct rule *rule)
102{
103 return rule ? CONTAINER_OF(rule, struct rule_dpif, up) : NULL;
104}
105
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106static struct rule_dpif *rule_dpif_lookup(struct ofproto_dpif *,
107 const struct flow *, uint8_t table);
abe529af 108
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109static void flow_push_stats(const struct rule_dpif *, const struct flow *,
110 uint64_t packets, uint64_t bytes,
111 long long int used);
112
113static uint32_t rule_calculate_tag(const struct flow *,
114 const struct flow_wildcards *,
115 uint32_t basis);
116static void rule_invalidate(const struct rule_dpif *);
117
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118#define MAX_MIRRORS 32
119typedef uint32_t mirror_mask_t;
120#define MIRROR_MASK_C(X) UINT32_C(X)
121BUILD_ASSERT_DECL(sizeof(mirror_mask_t) * CHAR_BIT >= MAX_MIRRORS);
122struct ofmirror {
123 struct ofproto_dpif *ofproto; /* Owning ofproto. */
124 size_t idx; /* In ofproto's "mirrors" array. */
125 void *aux; /* Key supplied by ofproto's client. */
126 char *name; /* Identifier for log messages. */
127
128 /* Selection criteria. */
129 struct hmapx srcs; /* Contains "struct ofbundle *"s. */
130 struct hmapx dsts; /* Contains "struct ofbundle *"s. */
131 unsigned long *vlans; /* Bitmap of chosen VLANs, NULL selects all. */
132
9ba15e2a 133 /* Output (exactly one of out == NULL and out_vlan == -1 is true). */
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134 struct ofbundle *out; /* Output port or NULL. */
135 int out_vlan; /* Output VLAN or -1. */
9ba15e2a 136 mirror_mask_t dup_mirrors; /* Bitmap of mirrors with the same output. */
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137
138 /* Counters. */
139 int64_t packet_count; /* Number of packets sent. */
140 int64_t byte_count; /* Number of bytes sent. */
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141};
142
143static void mirror_destroy(struct ofmirror *);
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144static void update_mirror_stats(struct ofproto_dpif *ofproto,
145 mirror_mask_t mirrors,
146 uint64_t packets, uint64_t bytes);
abe529af 147
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148struct ofbundle {
149 struct ofproto_dpif *ofproto; /* Owning ofproto. */
150 struct hmap_node hmap_node; /* In struct ofproto's "bundles" hmap. */
151 void *aux; /* Key supplied by ofproto's client. */
152 char *name; /* Identifier for log messages. */
153
154 /* Configuration. */
155 struct list ports; /* Contains "struct ofport"s. */
ecac4ebf 156 enum port_vlan_mode vlan_mode; /* VLAN mode */
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157 int vlan; /* -1=trunk port, else a 12-bit VLAN ID. */
158 unsigned long *trunks; /* Bitmap of trunked VLANs, if 'vlan' == -1.
159 * NULL if all VLANs are trunked. */
160 struct lacp *lacp; /* LACP if LACP is enabled, otherwise NULL. */
161 struct bond *bond; /* Nonnull iff more than one port. */
5e9ceccd 162 bool use_priority_tags; /* Use 802.1p tag for frames in VLAN 0? */
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163
164 /* Status. */
165 bool floodable; /* True if no port has OFPPC_NO_FLOOD set. */
166
167 /* Port mirroring info. */
168 mirror_mask_t src_mirrors; /* Mirrors triggered when packet received. */
169 mirror_mask_t dst_mirrors; /* Mirrors triggered when packet sent. */
170 mirror_mask_t mirror_out; /* Mirrors that output to this bundle. */
171};
172
173static void bundle_remove(struct ofport *);
7bde8dd8 174static void bundle_update(struct ofbundle *);
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175static void bundle_destroy(struct ofbundle *);
176static void bundle_del_port(struct ofport_dpif *);
177static void bundle_run(struct ofbundle *);
178static void bundle_wait(struct ofbundle *);
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179static struct ofbundle *lookup_input_bundle(struct ofproto_dpif *,
180 uint16_t in_port, bool warn);
abe529af 181
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182/* A controller may use OFPP_NONE as the ingress port to indicate that
183 * it did not arrive on a "real" port. 'ofpp_none_bundle' exists for
184 * when an input bundle is needed for validation (e.g., mirroring or
185 * OFPP_NORMAL processing). It is not connected to an 'ofproto' or have
186 * any 'port' structs, so care must be taken when dealing with it. */
187static struct ofbundle ofpp_none_bundle = {
188 .name = "OFPP_NONE",
189 .vlan_mode = PORT_VLAN_TRUNK
190};
191
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192static void stp_run(struct ofproto_dpif *ofproto);
193static void stp_wait(struct ofproto_dpif *ofproto);
194
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195static bool ofbundle_includes_vlan(const struct ofbundle *, uint16_t vlan);
196
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197struct action_xlate_ctx {
198/* action_xlate_ctx_init() initializes these members. */
199
200 /* The ofproto. */
201 struct ofproto_dpif *ofproto;
202
203 /* Flow to which the OpenFlow actions apply. xlate_actions() will modify
204 * this flow when actions change header fields. */
205 struct flow flow;
206
207 /* The packet corresponding to 'flow', or a null pointer if we are
208 * revalidating without a packet to refer to. */
209 const struct ofpbuf *packet;
210
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211 /* Should OFPP_NORMAL MAC learning and NXAST_LEARN actions execute? We
212 * want to execute them if we are actually processing a packet, or if we
213 * are accounting for packets that the datapath has processed, but not if
214 * we are just revalidating. */
215 bool may_learn;
216
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217 /* Cookie of the currently matching rule, or 0. */
218 ovs_be64 cookie;
219
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220 /* If nonnull, called just before executing a resubmit action.
221 *
222 * This is normally null so the client has to set it manually after
223 * calling action_xlate_ctx_init(). */
224 void (*resubmit_hook)(struct action_xlate_ctx *, struct rule_dpif *);
225
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226/* xlate_actions() initializes and uses these members. The client might want
227 * to look at them after it returns. */
228
229 struct ofpbuf *odp_actions; /* Datapath actions. */
75a75043 230 tag_type tags; /* Tags associated with actions. */
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231 bool may_set_up_flow; /* True ordinarily; false if the actions must
232 * be reassessed for every packet. */
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233 bool has_learn; /* Actions include NXAST_LEARN? */
234 bool has_normal; /* Actions output to OFPP_NORMAL? */
abe529af 235 uint16_t nf_output_iface; /* Output interface index for NetFlow. */
9d24de3b 236 mirror_mask_t mirrors; /* Bitmap of associated mirrors. */
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237
238/* xlate_actions() initializes and uses these members, but the client has no
239 * reason to look at them. */
240
241 int recurse; /* Recursion level, via xlate_table_action. */
b3e9b2ed 242 struct flow base_flow; /* Flow at the last commit. */
deedf7e7 243 uint32_t orig_skb_priority; /* Priority when packet arrived. */
29901626 244 uint8_t table_id; /* OpenFlow table ID where flow was found. */
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245 uint32_t sflow_n_outputs; /* Number of output ports. */
246 uint16_t sflow_odp_port; /* Output port for composing sFlow action. */
247 uint16_t user_cookie_offset;/* Used for user_action_cookie fixup. */
848e8809 248 bool exit; /* No further actions should be processed. */
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249};
250
251static void action_xlate_ctx_init(struct action_xlate_ctx *,
252 struct ofproto_dpif *, const struct flow *,
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253 ovs_be16 initial_tci, ovs_be64 cookie,
254 const struct ofpbuf *);
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255static struct ofpbuf *xlate_actions(struct action_xlate_ctx *,
256 const union ofp_action *in, size_t n_in);
257
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258/* An exact-match instantiation of an OpenFlow flow.
259 *
260 * A facet associates a "struct flow", which represents the Open vSwitch
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261 * userspace idea of an exact-match flow, with one or more subfacets. Each
262 * subfacet tracks the datapath's idea of the exact-match flow equivalent to
263 * the facet. When the kernel module (or other dpif implementation) and Open
264 * vSwitch userspace agree on the definition of a flow key, there is exactly
265 * one subfacet per facet. If the dpif implementation supports more-specific
266 * flow matching than userspace, however, a facet can have more than one
267 * subfacet, each of which corresponds to some distinction in flow that
268 * userspace simply doesn't understand.
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269 *
270 * Flow expiration works in terms of subfacets, so a facet must have at least
271 * one subfacet or it will never expire, leaking memory. */
abe529af 272struct facet {
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273 /* Owners. */
274 struct hmap_node hmap_node; /* In owning ofproto's 'facets' hmap. */
275 struct list list_node; /* In owning rule's 'facets' list. */
276 struct rule_dpif *rule; /* Owning rule. */
277
278 /* Owned data. */
279 struct list subfacets;
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280 long long int used; /* Time last used; time created if not used. */
281
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282 /* Key. */
283 struct flow flow;
284
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285 /* These statistics:
286 *
287 * - Do include packets and bytes sent "by hand", e.g. with
288 * dpif_execute().
289 *
290 * - Do include packets and bytes that were obtained from the datapath
b0f7b9b5 291 * when a subfacet's statistics were reset (e.g. dpif_flow_put() with
abe529af 292 * DPIF_FP_ZERO_STATS).
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293 *
294 * - Do not include packets or bytes that can be obtained from the
295 * datapath for any existing subfacet.
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296 */
297 uint64_t packet_count; /* Number of packets received. */
298 uint64_t byte_count; /* Number of bytes received. */
299
b0f7b9b5 300 /* Resubmit statistics. */
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301 uint64_t prev_packet_count; /* Number of packets from last stats push. */
302 uint64_t prev_byte_count; /* Number of bytes from last stats push. */
303 long long int prev_used; /* Used time from last stats push. */
abe529af 304
b0f7b9b5 305 /* Accounting. */
907a4c5e 306 uint64_t accounted_bytes; /* Bytes processed by facet_account(). */
b0f7b9b5 307 struct netflow_flow nf_flow; /* Per-flow NetFlow tracking data. */
abe529af 308
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309 /* Properties of datapath actions.
310 *
311 * Every subfacet has its own actions because actions can differ slightly
312 * between splintered and non-splintered subfacets due to the VLAN tag
313 * being initially different (present vs. absent). All of them have these
314 * properties in common so we just store one copy of them here. */
b0f7b9b5 315 bool may_install; /* Reassess actions for every packet? */
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316 bool has_learn; /* Actions include NXAST_LEARN? */
317 bool has_normal; /* Actions output to OFPP_NORMAL? */
b0f7b9b5 318 tag_type tags; /* Tags that would require revalidation. */
9d24de3b 319 mirror_mask_t mirrors; /* Bitmap of dependent mirrors. */
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320};
321
f3827897 322static struct facet *facet_create(struct rule_dpif *, const struct flow *);
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323static void facet_remove(struct ofproto_dpif *, struct facet *);
324static void facet_free(struct facet *);
325
326static struct facet *facet_find(struct ofproto_dpif *, const struct flow *);
327static struct facet *facet_lookup_valid(struct ofproto_dpif *,
328 const struct flow *);
329static bool facet_revalidate(struct ofproto_dpif *, struct facet *);
330
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331static void facet_flush_stats(struct ofproto_dpif *, struct facet *);
332
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333static void facet_update_time(struct ofproto_dpif *, struct facet *,
334 long long int used);
bbb5d219 335static void facet_reset_counters(struct facet *);
abe529af 336static void facet_push_stats(struct facet *);
55af77bb 337static void facet_account(struct ofproto_dpif *, struct facet *);
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338
339static bool facet_is_controller_flow(struct facet *);
340
b95fc6ba 341/* A dpif flow and actions associated with a facet.
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342 *
343 * See also the large comment on struct facet. */
344struct subfacet {
345 /* Owners. */
346 struct hmap_node hmap_node; /* In struct ofproto_dpif 'subfacets' list. */
347 struct list list_node; /* In struct facet's 'facets' list. */
348 struct facet *facet; /* Owning facet. */
349
350 /* Key.
351 *
352 * To save memory in the common case, 'key' is NULL if 'key_fitness' is
353 * ODP_FIT_PERFECT, that is, odp_flow_key_from_flow() can accurately
354 * regenerate the ODP flow key from ->facet->flow. */
355 enum odp_key_fitness key_fitness;
356 struct nlattr *key;
357 int key_len;
abe529af 358
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359 long long int used; /* Time last used; time created if not used. */
360
361 uint64_t dp_packet_count; /* Last known packet count in the datapath. */
362 uint64_t dp_byte_count; /* Last known byte count in the datapath. */
363
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364 /* Datapath actions.
365 *
366 * These should be essentially identical for every subfacet in a facet, but
367 * may differ in trivial ways due to VLAN splinters. */
368 size_t actions_len; /* Number of bytes in actions[]. */
369 struct nlattr *actions; /* Datapath actions. */
370
b0f7b9b5 371 bool installed; /* Installed in datapath? */
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372
373 /* This value is normally the same as ->facet->flow.vlan_tci. Only VLAN
374 * splinters can cause it to differ. This value should be removed when
375 * the VLAN splinters feature is no longer needed. */
376 ovs_be16 initial_tci; /* Initial VLAN TCI value. */
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377};
378
379static struct subfacet *subfacet_create(struct ofproto_dpif *, struct facet *,
380 enum odp_key_fitness,
381 const struct nlattr *key,
e84173dc 382 size_t key_len, ovs_be16 initial_tci);
b0f7b9b5 383static struct subfacet *subfacet_find(struct ofproto_dpif *,
6a542738 384 const struct nlattr *key, size_t key_len);
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385static void subfacet_destroy(struct ofproto_dpif *, struct subfacet *);
386static void subfacet_destroy__(struct ofproto_dpif *, struct subfacet *);
387static void subfacet_reset_dp_stats(struct subfacet *,
388 struct dpif_flow_stats *);
389static void subfacet_update_time(struct ofproto_dpif *, struct subfacet *,
390 long long int used);
391static void subfacet_update_stats(struct ofproto_dpif *, struct subfacet *,
392 const struct dpif_flow_stats *);
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393static void subfacet_make_actions(struct ofproto_dpif *, struct subfacet *,
394 const struct ofpbuf *packet);
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395static int subfacet_install(struct ofproto_dpif *, struct subfacet *,
396 const struct nlattr *actions, size_t actions_len,
397 struct dpif_flow_stats *);
398static void subfacet_uninstall(struct ofproto_dpif *, struct subfacet *);
54a9cbc9 399
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400struct ofport_dpif {
401 struct ofport up;
402
403 uint32_t odp_port;
404 struct ofbundle *bundle; /* Bundle that contains this port, if any. */
405 struct list bundle_node; /* In struct ofbundle's "ports" list. */
406 struct cfm *cfm; /* Connectivity Fault Management, if any. */
407 tag_type tag; /* Tag associated with this port. */
00794817 408 uint32_t bond_stable_id; /* stable_id to use as bond slave, or 0. */
015e08bc 409 bool may_enable; /* May be enabled in bonds. */
21f7563c 410
52a90c29 411 /* Spanning tree. */
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412 struct stp_port *stp_port; /* Spanning Tree Protocol, if any. */
413 enum stp_state stp_state; /* Always STP_DISABLED if STP not in use. */
414 long long int stp_state_entered;
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415
416 struct hmap priorities; /* Map of attached 'priority_to_dscp's. */
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417
418 /* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
419 *
420 * This is deprecated. It is only for compatibility with broken device
421 * drivers in old versions of Linux that do not properly support VLANs when
422 * VLAN devices are not used. When broken device drivers are no longer in
423 * widespread use, we will delete these interfaces. */
424 uint16_t realdev_ofp_port;
425 int vlandev_vid;
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426};
427
428/* Node in 'ofport_dpif''s 'priorities' map. Used to maintain a map from
429 * 'priority' (the datapath's term for QoS queue) to the dscp bits which all
430 * traffic egressing the 'ofport' with that priority should be marked with. */
431struct priority_to_dscp {
432 struct hmap_node hmap_node; /* Node in 'ofport_dpif''s 'priorities' map. */
433 uint32_t priority; /* Priority of this queue (see struct flow). */
434
435 uint8_t dscp; /* DSCP bits to mark outgoing traffic with. */
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436};
437
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438/* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
439 *
440 * This is deprecated. It is only for compatibility with broken device drivers
441 * in old versions of Linux that do not properly support VLANs when VLAN
442 * devices are not used. When broken device drivers are no longer in
443 * widespread use, we will delete these interfaces. */
444struct vlan_splinter {
445 struct hmap_node realdev_vid_node;
446 struct hmap_node vlandev_node;
447 uint16_t realdev_ofp_port;
448 uint16_t vlandev_ofp_port;
449 int vid;
450};
451
452static uint32_t vsp_realdev_to_vlandev(const struct ofproto_dpif *,
453 uint32_t realdev, ovs_be16 vlan_tci);
454static uint16_t vsp_vlandev_to_realdev(const struct ofproto_dpif *,
455 uint16_t vlandev, int *vid);
456static void vsp_remove(struct ofport_dpif *);
457static void vsp_add(struct ofport_dpif *, uint16_t realdev_ofp_port, int vid);
458
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459static struct ofport_dpif *
460ofport_dpif_cast(const struct ofport *ofport)
461{
462 assert(ofport->ofproto->ofproto_class == &ofproto_dpif_class);
463 return ofport ? CONTAINER_OF(ofport, struct ofport_dpif, up) : NULL;
464}
465
466static void port_run(struct ofport_dpif *);
467static void port_wait(struct ofport_dpif *);
a5610457 468static int set_cfm(struct ofport *, const struct cfm_settings *);
8b36f51e 469static void ofport_clear_priorities(struct ofport_dpif *);
abe529af 470
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471struct dpif_completion {
472 struct list list_node;
473 struct ofoperation *op;
474};
475
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476/* Extra information about a classifier table.
477 * Currently used just for optimized flow revalidation. */
478struct table_dpif {
479 /* If either of these is nonnull, then this table has a form that allows
480 * flows to be tagged to avoid revalidating most flows for the most common
481 * kinds of flow table changes. */
482 struct cls_table *catchall_table; /* Table that wildcards all fields. */
483 struct cls_table *other_table; /* Table with any other wildcard set. */
484 uint32_t basis; /* Keeps each table's tags separate. */
485};
486
abe529af 487struct ofproto_dpif {
b44a10b7 488 struct hmap_node all_ofproto_dpifs_node; /* In 'all_ofproto_dpifs'. */
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489 struct ofproto up;
490 struct dpif *dpif;
491 int max_ports;
492
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493 /* Statistics. */
494 uint64_t n_matches;
495
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496 /* Bridging. */
497 struct netflow *netflow;
bae473fe 498 struct dpif_sflow *sflow;
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499 struct hmap bundles; /* Contains "struct ofbundle"s. */
500 struct mac_learning *ml;
501 struct ofmirror *mirrors[MAX_MIRRORS];
502 bool has_bonded_bundles;
503
504 /* Expiration. */
505 struct timer next_expiration;
506
507 /* Facets. */
508 struct hmap facets;
b0f7b9b5 509 struct hmap subfacets;
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510
511 /* Revalidation. */
512 struct table_dpif tables[N_TABLES];
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513 bool need_revalidate;
514 struct tag_set revalidate_set;
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515
516 /* Support for debugging async flow mods. */
517 struct list completions;
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518
519 bool has_bundle_action; /* True when the first bundle action appears. */
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520 struct netdev_stats stats; /* To account packets generated and consumed in
521 * userspace. */
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522
523 /* Spanning tree. */
524 struct stp *stp;
525 long long int stp_last_tick;
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526
527 /* VLAN splinters. */
528 struct hmap realdev_vid_map; /* (realdev,vid) -> vlandev. */
529 struct hmap vlandev_map; /* vlandev -> (realdev,vid). */
abe529af
BP
530};
531
7ee20df1
BP
532/* Defer flow mod completion until "ovs-appctl ofproto/unclog"? (Useful only
533 * for debugging the asynchronous flow_mod implementation.) */
534static bool clogged;
535
b44a10b7
BP
536/* All existing ofproto_dpif instances, indexed by ->up.name. */
537static struct hmap all_ofproto_dpifs = HMAP_INITIALIZER(&all_ofproto_dpifs);
538
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BP
539static void ofproto_dpif_unixctl_init(void);
540
541static struct ofproto_dpif *
542ofproto_dpif_cast(const struct ofproto *ofproto)
543{
544 assert(ofproto->ofproto_class == &ofproto_dpif_class);
545 return CONTAINER_OF(ofproto, struct ofproto_dpif, up);
546}
547
548static struct ofport_dpif *get_ofp_port(struct ofproto_dpif *,
549 uint16_t ofp_port);
550static struct ofport_dpif *get_odp_port(struct ofproto_dpif *,
551 uint32_t odp_port);
552
553/* Packet processing. */
554static void update_learning_table(struct ofproto_dpif *,
555 const struct flow *, int vlan,
556 struct ofbundle *);
501f8d1f
BP
557/* Upcalls. */
558#define FLOW_MISS_MAX_BATCH 50
9b16c439 559static int handle_upcalls(struct ofproto_dpif *, unsigned int max_batch);
abe529af
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560
561/* Flow expiration. */
562static int expire(struct ofproto_dpif *);
563
6fca1ffb
BP
564/* NetFlow. */
565static void send_netflow_active_timeouts(struct ofproto_dpif *);
566
abe529af 567/* Utilities. */
52a90c29 568static int send_packet(const struct ofport_dpif *, struct ofpbuf *packet);
6ff686f2
PS
569static size_t
570compose_sflow_action(const struct ofproto_dpif *, struct ofpbuf *odp_actions,
571 const struct flow *, uint32_t odp_port);
c06bba01
JP
572static void add_mirror_actions(struct action_xlate_ctx *ctx,
573 const struct flow *flow);
abe529af
BP
574/* Global variables. */
575static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
576\f
577/* Factory functions. */
578
579static void
580enumerate_types(struct sset *types)
581{
582 dp_enumerate_types(types);
583}
584
585static int
586enumerate_names(const char *type, struct sset *names)
587{
588 return dp_enumerate_names(type, names);
589}
590
591static int
592del(const char *type, const char *name)
593{
594 struct dpif *dpif;
595 int error;
596
597 error = dpif_open(name, type, &dpif);
598 if (!error) {
599 error = dpif_delete(dpif);
600 dpif_close(dpif);
601 }
602 return error;
603}
604\f
605/* Basic life-cycle. */
606
607static struct ofproto *
608alloc(void)
609{
610 struct ofproto_dpif *ofproto = xmalloc(sizeof *ofproto);
611 return &ofproto->up;
612}
613
614static void
615dealloc(struct ofproto *ofproto_)
616{
617 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
618 free(ofproto);
619}
620
621static int
073e2a6f 622construct(struct ofproto *ofproto_, int *n_tablesp)
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BP
623{
624 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
625 const char *name = ofproto->up.name;
626 int error;
627 int i;
628
629 error = dpif_create_and_open(name, ofproto->up.type, &ofproto->dpif);
630 if (error) {
631 VLOG_ERR("failed to open datapath %s: %s", name, strerror(error));
632 return error;
633 }
634
635 ofproto->max_ports = dpif_get_max_ports(ofproto->dpif);
6c1491fb 636 ofproto->n_matches = 0;
abe529af 637
be8194bb
JG
638 dpif_flow_flush(ofproto->dpif);
639 dpif_recv_purge(ofproto->dpif);
640
abe529af
BP
641 error = dpif_recv_set_mask(ofproto->dpif,
642 ((1u << DPIF_UC_MISS) |
6ff686f2 643 (1u << DPIF_UC_ACTION)));
abe529af
BP
644 if (error) {
645 VLOG_ERR("failed to listen on datapath %s: %s", name, strerror(error));
646 dpif_close(ofproto->dpif);
647 return error;
648 }
abe529af
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649
650 ofproto->netflow = NULL;
651 ofproto->sflow = NULL;
21f7563c 652 ofproto->stp = NULL;
abe529af
BP
653 hmap_init(&ofproto->bundles);
654 ofproto->ml = mac_learning_create();
655 for (i = 0; i < MAX_MIRRORS; i++) {
656 ofproto->mirrors[i] = NULL;
657 }
658 ofproto->has_bonded_bundles = false;
659
660 timer_set_duration(&ofproto->next_expiration, 1000);
661
662 hmap_init(&ofproto->facets);
b0f7b9b5 663 hmap_init(&ofproto->subfacets);
54a9cbc9
BP
664
665 for (i = 0; i < N_TABLES; i++) {
666 struct table_dpif *table = &ofproto->tables[i];
667
668 table->catchall_table = NULL;
669 table->other_table = NULL;
670 table->basis = random_uint32();
671 }
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672 ofproto->need_revalidate = false;
673 tag_set_init(&ofproto->revalidate_set);
674
7ee20df1
BP
675 list_init(&ofproto->completions);
676
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677 ofproto_dpif_unixctl_init();
678
daff3353
EJ
679 ofproto->has_bundle_action = false;
680
52a90c29
BP
681 hmap_init(&ofproto->vlandev_map);
682 hmap_init(&ofproto->realdev_vid_map);
683
b44a10b7
BP
684 hmap_insert(&all_ofproto_dpifs, &ofproto->all_ofproto_dpifs_node,
685 hash_string(ofproto->up.name, 0));
686
9cdaaebe 687 *n_tablesp = N_TABLES;
6527c598 688 memset(&ofproto->stats, 0, sizeof ofproto->stats);
abe529af
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689 return 0;
690}
691
7ee20df1
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692static void
693complete_operations(struct ofproto_dpif *ofproto)
694{
695 struct dpif_completion *c, *next;
696
697 LIST_FOR_EACH_SAFE (c, next, list_node, &ofproto->completions) {
698 ofoperation_complete(c->op, 0);
699 list_remove(&c->list_node);
700 free(c);
701 }
702}
703
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704static void
705destruct(struct ofproto *ofproto_)
706{
707 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
7ee20df1 708 struct rule_dpif *rule, *next_rule;
0697b5c3 709 struct classifier *table;
abe529af
BP
710 int i;
711
b44a10b7 712 hmap_remove(&all_ofproto_dpifs, &ofproto->all_ofproto_dpifs_node);
7ee20df1
BP
713 complete_operations(ofproto);
714
0697b5c3
BP
715 OFPROTO_FOR_EACH_TABLE (table, &ofproto->up) {
716 struct cls_cursor cursor;
717
718 cls_cursor_init(&cursor, table, NULL);
719 CLS_CURSOR_FOR_EACH_SAFE (rule, next_rule, up.cr, &cursor) {
720 ofproto_rule_destroy(&rule->up);
721 }
7ee20df1
BP
722 }
723
abe529af
BP
724 for (i = 0; i < MAX_MIRRORS; i++) {
725 mirror_destroy(ofproto->mirrors[i]);
726 }
727
728 netflow_destroy(ofproto->netflow);
bae473fe 729 dpif_sflow_destroy(ofproto->sflow);
abe529af
BP
730 hmap_destroy(&ofproto->bundles);
731 mac_learning_destroy(ofproto->ml);
732
733 hmap_destroy(&ofproto->facets);
b0f7b9b5 734 hmap_destroy(&ofproto->subfacets);
abe529af 735
52a90c29
BP
736 hmap_destroy(&ofproto->vlandev_map);
737 hmap_destroy(&ofproto->realdev_vid_map);
738
abe529af
BP
739 dpif_close(ofproto->dpif);
740}
741
742static int
5fcc0d00 743run_fast(struct ofproto *ofproto_)
abe529af
BP
744{
745 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
9b16c439 746 unsigned int work;
abe529af 747
9b16c439
BP
748 /* Handle one or more batches of upcalls, until there's nothing left to do
749 * or until we do a fixed total amount of work.
750 *
751 * We do work in batches because it can be much cheaper to set up a number
752 * of flows and fire off their patches all at once. We do multiple batches
753 * because in some cases handling a packet can cause another packet to be
754 * queued almost immediately as part of the return flow. Both
755 * optimizations can make major improvements on some benchmarks and
756 * presumably for real traffic as well. */
757 work = 0;
758 while (work < FLOW_MISS_MAX_BATCH) {
759 int retval = handle_upcalls(ofproto, FLOW_MISS_MAX_BATCH - work);
5fcc0d00 760 if (retval <= 0) {
9b16c439 761 return -retval;
501f8d1f 762 }
5fcc0d00
BP
763 work += retval;
764 }
765 return 0;
766}
767
768static int
769run(struct ofproto *ofproto_)
770{
771 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
772 struct ofport_dpif *ofport;
773 struct ofbundle *bundle;
774 int error;
775
776 if (!clogged) {
777 complete_operations(ofproto);
778 }
779 dpif_run(ofproto->dpif);
780
781 error = run_fast(ofproto_);
782 if (error) {
783 return error;
abe529af
BP
784 }
785
786 if (timer_expired(&ofproto->next_expiration)) {
787 int delay = expire(ofproto);
788 timer_set_duration(&ofproto->next_expiration, delay);
789 }
790
791 if (ofproto->netflow) {
6fca1ffb
BP
792 if (netflow_run(ofproto->netflow)) {
793 send_netflow_active_timeouts(ofproto);
794 }
abe529af
BP
795 }
796 if (ofproto->sflow) {
bae473fe 797 dpif_sflow_run(ofproto->sflow);
abe529af
BP
798 }
799
800 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
801 port_run(ofport);
802 }
803 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
804 bundle_run(bundle);
805 }
806
21f7563c 807 stp_run(ofproto);
1c313b88
BP
808 mac_learning_run(ofproto->ml, &ofproto->revalidate_set);
809
abe529af
BP
810 /* Now revalidate if there's anything to do. */
811 if (ofproto->need_revalidate
812 || !tag_set_is_empty(&ofproto->revalidate_set)) {
813 struct tag_set revalidate_set = ofproto->revalidate_set;
814 bool revalidate_all = ofproto->need_revalidate;
815 struct facet *facet, *next;
816
817 /* Clear the revalidation flags. */
818 tag_set_init(&ofproto->revalidate_set);
819 ofproto->need_revalidate = false;
820
821 HMAP_FOR_EACH_SAFE (facet, next, hmap_node, &ofproto->facets) {
822 if (revalidate_all
823 || tag_set_intersects(&revalidate_set, facet->tags)) {
824 facet_revalidate(ofproto, facet);
825 }
826 }
827 }
828
829 return 0;
830}
831
832static void
833wait(struct ofproto *ofproto_)
834{
835 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
836 struct ofport_dpif *ofport;
837 struct ofbundle *bundle;
838
7ee20df1
BP
839 if (!clogged && !list_is_empty(&ofproto->completions)) {
840 poll_immediate_wake();
841 }
842
abe529af
BP
843 dpif_wait(ofproto->dpif);
844 dpif_recv_wait(ofproto->dpif);
845 if (ofproto->sflow) {
bae473fe 846 dpif_sflow_wait(ofproto->sflow);
abe529af
BP
847 }
848 if (!tag_set_is_empty(&ofproto->revalidate_set)) {
849 poll_immediate_wake();
850 }
851 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
852 port_wait(ofport);
853 }
854 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
855 bundle_wait(bundle);
856 }
6fca1ffb
BP
857 if (ofproto->netflow) {
858 netflow_wait(ofproto->netflow);
859 }
1c313b88 860 mac_learning_wait(ofproto->ml);
21f7563c 861 stp_wait(ofproto);
abe529af
BP
862 if (ofproto->need_revalidate) {
863 /* Shouldn't happen, but if it does just go around again. */
864 VLOG_DBG_RL(&rl, "need revalidate in ofproto_wait_cb()");
865 poll_immediate_wake();
866 } else {
867 timer_wait(&ofproto->next_expiration);
868 }
869}
870
871static void
872flush(struct ofproto *ofproto_)
873{
874 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
875 struct facet *facet, *next_facet;
876
877 HMAP_FOR_EACH_SAFE (facet, next_facet, hmap_node, &ofproto->facets) {
878 /* Mark the facet as not installed so that facet_remove() doesn't
879 * bother trying to uninstall it. There is no point in uninstalling it
880 * individually since we are about to blow away all the facets with
881 * dpif_flow_flush(). */
b0f7b9b5
BP
882 struct subfacet *subfacet;
883
884 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
885 subfacet->installed = false;
886 subfacet->dp_packet_count = 0;
887 subfacet->dp_byte_count = 0;
888 }
abe529af
BP
889 facet_remove(ofproto, facet);
890 }
891 dpif_flow_flush(ofproto->dpif);
892}
893
6c1491fb
BP
894static void
895get_features(struct ofproto *ofproto_ OVS_UNUSED,
896 bool *arp_match_ip, uint32_t *actions)
897{
898 *arp_match_ip = true;
899 *actions = ((1u << OFPAT_OUTPUT) |
900 (1u << OFPAT_SET_VLAN_VID) |
901 (1u << OFPAT_SET_VLAN_PCP) |
902 (1u << OFPAT_STRIP_VLAN) |
903 (1u << OFPAT_SET_DL_SRC) |
904 (1u << OFPAT_SET_DL_DST) |
905 (1u << OFPAT_SET_NW_SRC) |
906 (1u << OFPAT_SET_NW_DST) |
907 (1u << OFPAT_SET_NW_TOS) |
908 (1u << OFPAT_SET_TP_SRC) |
909 (1u << OFPAT_SET_TP_DST) |
910 (1u << OFPAT_ENQUEUE));
911}
912
913static void
914get_tables(struct ofproto *ofproto_, struct ofp_table_stats *ots)
915{
916 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
a8d9304d 917 struct dpif_dp_stats s;
6c1491fb
BP
918
919 strcpy(ots->name, "classifier");
920
921 dpif_get_dp_stats(ofproto->dpif, &s);
922 put_32aligned_be64(&ots->lookup_count, htonll(s.n_hit + s.n_missed));
923 put_32aligned_be64(&ots->matched_count,
924 htonll(s.n_hit + ofproto->n_matches));
925}
926
abe529af
BP
927static struct ofport *
928port_alloc(void)
929{
930 struct ofport_dpif *port = xmalloc(sizeof *port);
931 return &port->up;
932}
933
934static void
935port_dealloc(struct ofport *port_)
936{
937 struct ofport_dpif *port = ofport_dpif_cast(port_);
938 free(port);
939}
940
941static int
942port_construct(struct ofport *port_)
943{
944 struct ofport_dpif *port = ofport_dpif_cast(port_);
945 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
946
f11c28c4 947 ofproto->need_revalidate = true;
abe529af
BP
948 port->odp_port = ofp_port_to_odp_port(port->up.ofp_port);
949 port->bundle = NULL;
950 port->cfm = NULL;
951 port->tag = tag_create_random();
d5ffa7f2 952 port->may_enable = true;
21f7563c
JP
953 port->stp_port = NULL;
954 port->stp_state = STP_DISABLED;
8b36f51e 955 hmap_init(&port->priorities);
52a90c29
BP
956 port->realdev_ofp_port = 0;
957 port->vlandev_vid = 0;
abe529af
BP
958
959 if (ofproto->sflow) {
392c7182 960 dpif_sflow_add_port(ofproto->sflow, port_);
abe529af
BP
961 }
962
963 return 0;
964}
965
966static void
967port_destruct(struct ofport *port_)
968{
969 struct ofport_dpif *port = ofport_dpif_cast(port_);
970 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
971
f11c28c4 972 ofproto->need_revalidate = true;
abe529af 973 bundle_remove(port_);
a5610457 974 set_cfm(port_, NULL);
abe529af 975 if (ofproto->sflow) {
bae473fe 976 dpif_sflow_del_port(ofproto->sflow, port->odp_port);
abe529af 977 }
8b36f51e
EJ
978
979 ofport_clear_priorities(port);
980 hmap_destroy(&port->priorities);
abe529af
BP
981}
982
983static void
984port_modified(struct ofport *port_)
985{
986 struct ofport_dpif *port = ofport_dpif_cast(port_);
987
988 if (port->bundle && port->bundle->bond) {
989 bond_slave_set_netdev(port->bundle->bond, port, port->up.netdev);
990 }
991}
992
993static void
994port_reconfigured(struct ofport *port_, ovs_be32 old_config)
995{
996 struct ofport_dpif *port = ofport_dpif_cast(port_);
997 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
998 ovs_be32 changed = old_config ^ port->up.opp.config;
999
1000 if (changed & htonl(OFPPC_NO_RECV | OFPPC_NO_RECV_STP |
1001 OFPPC_NO_FWD | OFPPC_NO_FLOOD)) {
1002 ofproto->need_revalidate = true;
7bde8dd8
JP
1003
1004 if (changed & htonl(OFPPC_NO_FLOOD) && port->bundle) {
1005 bundle_update(port->bundle);
1006 }
abe529af
BP
1007 }
1008}
1009
1010static int
1011set_sflow(struct ofproto *ofproto_,
1012 const struct ofproto_sflow_options *sflow_options)
1013{
1014 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
bae473fe 1015 struct dpif_sflow *ds = ofproto->sflow;
6ff686f2 1016
abe529af 1017 if (sflow_options) {
bae473fe 1018 if (!ds) {
abe529af
BP
1019 struct ofport_dpif *ofport;
1020
bae473fe 1021 ds = ofproto->sflow = dpif_sflow_create(ofproto->dpif);
abe529af 1022 HMAP_FOR_EACH (ofport, up.hmap_node, &ofproto->up.ports) {
392c7182 1023 dpif_sflow_add_port(ds, &ofport->up);
abe529af 1024 }
6ff686f2 1025 ofproto->need_revalidate = true;
abe529af 1026 }
bae473fe 1027 dpif_sflow_set_options(ds, sflow_options);
abe529af 1028 } else {
6ff686f2
PS
1029 if (ds) {
1030 dpif_sflow_destroy(ds);
1031 ofproto->need_revalidate = true;
1032 ofproto->sflow = NULL;
1033 }
abe529af
BP
1034 }
1035 return 0;
1036}
1037
1038static int
a5610457 1039set_cfm(struct ofport *ofport_, const struct cfm_settings *s)
abe529af
BP
1040{
1041 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1042 int error;
1043
a5610457 1044 if (!s) {
abe529af
BP
1045 error = 0;
1046 } else {
1047 if (!ofport->cfm) {
8c977421
EJ
1048 struct ofproto_dpif *ofproto;
1049
1050 ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1051 ofproto->need_revalidate = true;
6f629657 1052 ofport->cfm = cfm_create(netdev_get_name(ofport->up.netdev));
abe529af
BP
1053 }
1054
a5610457 1055 if (cfm_configure(ofport->cfm, s)) {
abe529af
BP
1056 return 0;
1057 }
1058
1059 error = EINVAL;
1060 }
1061 cfm_destroy(ofport->cfm);
1062 ofport->cfm = NULL;
1063 return error;
1064}
1065
1066static int
a5610457 1067get_cfm_fault(const struct ofport *ofport_)
abe529af
BP
1068{
1069 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
a5610457
EJ
1070
1071 return ofport->cfm ? cfm_get_fault(ofport->cfm) : -1;
abe529af 1072}
1de11730
EJ
1073
1074static int
1075get_cfm_remote_mpids(const struct ofport *ofport_, const uint64_t **rmps,
1076 size_t *n_rmps)
1077{
1078 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1079
1080 if (ofport->cfm) {
1081 cfm_get_remote_mpids(ofport->cfm, rmps, n_rmps);
1082 return 0;
1083 } else {
1084 return -1;
1085 }
1086}
abe529af 1087\f
21f7563c
JP
1088/* Spanning Tree. */
1089
1090static void
1091send_bpdu_cb(struct ofpbuf *pkt, int port_num, void *ofproto_)
1092{
1093 struct ofproto_dpif *ofproto = ofproto_;
1094 struct stp_port *sp = stp_get_port(ofproto->stp, port_num);
1095 struct ofport_dpif *ofport;
1096
1097 ofport = stp_port_get_aux(sp);
1098 if (!ofport) {
1099 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on unknown port %d",
1100 ofproto->up.name, port_num);
1101 } else {
1102 struct eth_header *eth = pkt->l2;
1103
1104 netdev_get_etheraddr(ofport->up.netdev, eth->eth_src);
1105 if (eth_addr_is_zero(eth->eth_src)) {
1106 VLOG_WARN_RL(&rl, "%s: cannot send BPDU on port %d "
1107 "with unknown MAC", ofproto->up.name, port_num);
1108 } else {
97d6520b 1109 send_packet(ofport, pkt);
21f7563c
JP
1110 }
1111 }
1112 ofpbuf_delete(pkt);
1113}
1114
1115/* Configures STP on 'ofproto_' using the settings defined in 's'. */
1116static int
1117set_stp(struct ofproto *ofproto_, const struct ofproto_stp_settings *s)
1118{
1119 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1120
1121 /* Only revalidate flows if the configuration changed. */
1122 if (!s != !ofproto->stp) {
1123 ofproto->need_revalidate = true;
1124 }
1125
1126 if (s) {
1127 if (!ofproto->stp) {
1128 ofproto->stp = stp_create(ofproto_->name, s->system_id,
1129 send_bpdu_cb, ofproto);
1130 ofproto->stp_last_tick = time_msec();
1131 }
1132
1133 stp_set_bridge_id(ofproto->stp, s->system_id);
1134 stp_set_bridge_priority(ofproto->stp, s->priority);
1135 stp_set_hello_time(ofproto->stp, s->hello_time);
1136 stp_set_max_age(ofproto->stp, s->max_age);
1137 stp_set_forward_delay(ofproto->stp, s->fwd_delay);
1138 } else {
1139 stp_destroy(ofproto->stp);
1140 ofproto->stp = NULL;
1141 }
1142
1143 return 0;
1144}
1145
1146static int
1147get_stp_status(struct ofproto *ofproto_, struct ofproto_stp_status *s)
1148{
1149 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1150
1151 if (ofproto->stp) {
1152 s->enabled = true;
1153 s->bridge_id = stp_get_bridge_id(ofproto->stp);
1154 s->designated_root = stp_get_designated_root(ofproto->stp);
1155 s->root_path_cost = stp_get_root_path_cost(ofproto->stp);
1156 } else {
1157 s->enabled = false;
1158 }
1159
1160 return 0;
1161}
1162
1163static void
1164update_stp_port_state(struct ofport_dpif *ofport)
1165{
1166 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1167 enum stp_state state;
1168
1169 /* Figure out new state. */
1170 state = ofport->stp_port ? stp_port_get_state(ofport->stp_port)
1171 : STP_DISABLED;
1172
1173 /* Update state. */
1174 if (ofport->stp_state != state) {
1175 ovs_be32 of_state;
1176 bool fwd_change;
1177
1178 VLOG_DBG_RL(&rl, "port %s: STP state changed from %s to %s",
1179 netdev_get_name(ofport->up.netdev),
1180 stp_state_name(ofport->stp_state),
1181 stp_state_name(state));
1182 if (stp_learn_in_state(ofport->stp_state)
1183 != stp_learn_in_state(state)) {
1184 /* xxx Learning action flows should also be flushed. */
1185 mac_learning_flush(ofproto->ml);
1186 }
1187 fwd_change = stp_forward_in_state(ofport->stp_state)
1188 != stp_forward_in_state(state);
1189
1190 ofproto->need_revalidate = true;
1191 ofport->stp_state = state;
1192 ofport->stp_state_entered = time_msec();
1193
b308140a 1194 if (fwd_change && ofport->bundle) {
21f7563c
JP
1195 bundle_update(ofport->bundle);
1196 }
1197
1198 /* Update the STP state bits in the OpenFlow port description. */
1199 of_state = (ofport->up.opp.state & htonl(~OFPPS_STP_MASK))
1200 | htonl(state == STP_LISTENING ? OFPPS_STP_LISTEN
1201 : state == STP_LEARNING ? OFPPS_STP_LEARN
1202 : state == STP_FORWARDING ? OFPPS_STP_FORWARD
1203 : state == STP_BLOCKING ? OFPPS_STP_BLOCK
1204 : 0);
1205 ofproto_port_set_state(&ofport->up, of_state);
1206 }
1207}
1208
1209/* Configures STP on 'ofport_' using the settings defined in 's'. The
1210 * caller is responsible for assigning STP port numbers and ensuring
1211 * there are no duplicates. */
1212static int
1213set_stp_port(struct ofport *ofport_,
1214 const struct ofproto_port_stp_settings *s)
1215{
1216 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1217 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1218 struct stp_port *sp = ofport->stp_port;
1219
1220 if (!s || !s->enable) {
1221 if (sp) {
1222 ofport->stp_port = NULL;
1223 stp_port_disable(sp);
ecd12731 1224 update_stp_port_state(ofport);
21f7563c
JP
1225 }
1226 return 0;
1227 } else if (sp && stp_port_no(sp) != s->port_num
1228 && ofport == stp_port_get_aux(sp)) {
1229 /* The port-id changed, so disable the old one if it's not
1230 * already in use by another port. */
1231 stp_port_disable(sp);
1232 }
1233
1234 sp = ofport->stp_port = stp_get_port(ofproto->stp, s->port_num);
1235 stp_port_enable(sp);
1236
1237 stp_port_set_aux(sp, ofport);
1238 stp_port_set_priority(sp, s->priority);
1239 stp_port_set_path_cost(sp, s->path_cost);
1240
1241 update_stp_port_state(ofport);
1242
1243 return 0;
1244}
1245
1246static int
1247get_stp_port_status(struct ofport *ofport_,
1248 struct ofproto_port_stp_status *s)
1249{
1250 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1251 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1252 struct stp_port *sp = ofport->stp_port;
1253
1254 if (!ofproto->stp || !sp) {
1255 s->enabled = false;
1256 return 0;
1257 }
1258
1259 s->enabled = true;
1260 s->port_id = stp_port_get_id(sp);
1261 s->state = stp_port_get_state(sp);
1262 s->sec_in_state = (time_msec() - ofport->stp_state_entered) / 1000;
1263 s->role = stp_port_get_role(sp);
80740385 1264 stp_port_get_counts(sp, &s->tx_count, &s->rx_count, &s->error_count);
21f7563c
JP
1265
1266 return 0;
1267}
1268
1269static void
1270stp_run(struct ofproto_dpif *ofproto)
1271{
1272 if (ofproto->stp) {
1273 long long int now = time_msec();
1274 long long int elapsed = now - ofproto->stp_last_tick;
1275 struct stp_port *sp;
1276
1277 if (elapsed > 0) {
1278 stp_tick(ofproto->stp, MIN(INT_MAX, elapsed));
1279 ofproto->stp_last_tick = now;
1280 }
1281 while (stp_get_changed_port(ofproto->stp, &sp)) {
1282 struct ofport_dpif *ofport = stp_port_get_aux(sp);
1283
1284 if (ofport) {
1285 update_stp_port_state(ofport);
1286 }
1287 }
1288 }
1289}
1290
1291static void
1292stp_wait(struct ofproto_dpif *ofproto)
1293{
1294 if (ofproto->stp) {
1295 poll_timer_wait(1000);
1296 }
1297}
1298
1299/* Returns true if STP should process 'flow'. */
1300static bool
1301stp_should_process_flow(const struct flow *flow)
1302{
1303 return eth_addr_equals(flow->dl_dst, eth_addr_stp);
1304}
1305
1306static void
1307stp_process_packet(const struct ofport_dpif *ofport,
1308 const struct ofpbuf *packet)
1309{
1310 struct ofpbuf payload = *packet;
1311 struct eth_header *eth = payload.data;
1312 struct stp_port *sp = ofport->stp_port;
1313
1314 /* Sink packets on ports that have STP disabled when the bridge has
1315 * STP enabled. */
1316 if (!sp || stp_port_get_state(sp) == STP_DISABLED) {
1317 return;
1318 }
1319
1320 /* Trim off padding on payload. */
c573540b
BP
1321 if (payload.size > ntohs(eth->eth_type) + ETH_HEADER_LEN) {
1322 payload.size = ntohs(eth->eth_type) + ETH_HEADER_LEN;
21f7563c
JP
1323 }
1324
1325 if (ofpbuf_try_pull(&payload, ETH_HEADER_LEN + LLC_HEADER_LEN)) {
1326 stp_received_bpdu(sp, payload.data, payload.size);
1327 }
1328}
1329\f
8b36f51e
EJ
1330static struct priority_to_dscp *
1331get_priority(const struct ofport_dpif *ofport, uint32_t priority)
1332{
1333 struct priority_to_dscp *pdscp;
1334 uint32_t hash;
1335
1336 hash = hash_int(priority, 0);
1337 HMAP_FOR_EACH_IN_BUCKET (pdscp, hmap_node, hash, &ofport->priorities) {
1338 if (pdscp->priority == priority) {
1339 return pdscp;
1340 }
1341 }
1342 return NULL;
1343}
1344
1345static void
1346ofport_clear_priorities(struct ofport_dpif *ofport)
1347{
1348 struct priority_to_dscp *pdscp, *next;
1349
1350 HMAP_FOR_EACH_SAFE (pdscp, next, hmap_node, &ofport->priorities) {
1351 hmap_remove(&ofport->priorities, &pdscp->hmap_node);
1352 free(pdscp);
1353 }
1354}
1355
1356static int
1357set_queues(struct ofport *ofport_,
1358 const struct ofproto_port_queue *qdscp_list,
1359 size_t n_qdscp)
1360{
1361 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
1362 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
1363 struct hmap new = HMAP_INITIALIZER(&new);
1364 size_t i;
1365
1366 for (i = 0; i < n_qdscp; i++) {
1367 struct priority_to_dscp *pdscp;
1368 uint32_t priority;
1369 uint8_t dscp;
1370
1371 dscp = (qdscp_list[i].dscp << 2) & IP_DSCP_MASK;
1372 if (dpif_queue_to_priority(ofproto->dpif, qdscp_list[i].queue,
1373 &priority)) {
1374 continue;
1375 }
1376
1377 pdscp = get_priority(ofport, priority);
1378 if (pdscp) {
1379 hmap_remove(&ofport->priorities, &pdscp->hmap_node);
1380 } else {
1381 pdscp = xmalloc(sizeof *pdscp);
1382 pdscp->priority = priority;
1383 pdscp->dscp = dscp;
1384 ofproto->need_revalidate = true;
1385 }
1386
1387 if (pdscp->dscp != dscp) {
1388 pdscp->dscp = dscp;
1389 ofproto->need_revalidate = true;
1390 }
1391
1392 hmap_insert(&new, &pdscp->hmap_node, hash_int(pdscp->priority, 0));
1393 }
1394
1395 if (!hmap_is_empty(&ofport->priorities)) {
1396 ofport_clear_priorities(ofport);
1397 ofproto->need_revalidate = true;
1398 }
1399
1400 hmap_swap(&new, &ofport->priorities);
1401 hmap_destroy(&new);
1402
1403 return 0;
1404}
1405\f
abe529af
BP
1406/* Bundles. */
1407
b44a10b7
BP
1408/* Expires all MAC learning entries associated with 'bundle' and forces its
1409 * ofproto to revalidate every flow.
1410 *
1411 * Normally MAC learning entries are removed only from the ofproto associated
1412 * with 'bundle', but if 'all_ofprotos' is true, then the MAC learning entries
1413 * are removed from every ofproto. When patch ports and SLB bonds are in use
1414 * and a VM migration happens and the gratuitous ARPs are somehow lost, this
1415 * avoids a MAC_ENTRY_IDLE_TIME delay before the migrated VM can communicate
1416 * with the host from which it migrated. */
abe529af 1417static void
b44a10b7 1418bundle_flush_macs(struct ofbundle *bundle, bool all_ofprotos)
abe529af
BP
1419{
1420 struct ofproto_dpif *ofproto = bundle->ofproto;
1421 struct mac_learning *ml = ofproto->ml;
1422 struct mac_entry *mac, *next_mac;
1423
1424 ofproto->need_revalidate = true;
1425 LIST_FOR_EACH_SAFE (mac, next_mac, lru_node, &ml->lrus) {
1426 if (mac->port.p == bundle) {
b44a10b7
BP
1427 if (all_ofprotos) {
1428 struct ofproto_dpif *o;
1429
1430 HMAP_FOR_EACH (o, all_ofproto_dpifs_node, &all_ofproto_dpifs) {
1431 if (o != ofproto) {
1432 struct mac_entry *e;
1433
1434 e = mac_learning_lookup(o->ml, mac->mac, mac->vlan,
1435 NULL);
1436 if (e) {
1437 tag_set_add(&o->revalidate_set, e->tag);
1438 mac_learning_expire(o->ml, e);
1439 }
1440 }
1441 }
1442 }
1443
abe529af
BP
1444 mac_learning_expire(ml, mac);
1445 }
1446 }
1447}
1448
1449static struct ofbundle *
1450bundle_lookup(const struct ofproto_dpif *ofproto, void *aux)
1451{
1452 struct ofbundle *bundle;
1453
1454 HMAP_FOR_EACH_IN_BUCKET (bundle, hmap_node, hash_pointer(aux, 0),
1455 &ofproto->bundles) {
1456 if (bundle->aux == aux) {
1457 return bundle;
1458 }
1459 }
1460 return NULL;
1461}
1462
1463/* Looks up each of the 'n_auxes' pointers in 'auxes' as bundles and adds the
1464 * ones that are found to 'bundles'. */
1465static void
1466bundle_lookup_multiple(struct ofproto_dpif *ofproto,
1467 void **auxes, size_t n_auxes,
1468 struct hmapx *bundles)
1469{
1470 size_t i;
1471
1472 hmapx_init(bundles);
1473 for (i = 0; i < n_auxes; i++) {
1474 struct ofbundle *bundle = bundle_lookup(ofproto, auxes[i]);
1475 if (bundle) {
1476 hmapx_add(bundles, bundle);
1477 }
1478 }
1479}
1480
7bde8dd8
JP
1481static void
1482bundle_update(struct ofbundle *bundle)
1483{
1484 struct ofport_dpif *port;
1485
1486 bundle->floodable = true;
1487 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
5e48dc2b 1488 if (port->up.opp.config & htonl(OFPPC_NO_FLOOD)) {
7bde8dd8
JP
1489 bundle->floodable = false;
1490 break;
1491 }
1492 }
1493}
1494
abe529af
BP
1495static void
1496bundle_del_port(struct ofport_dpif *port)
1497{
1498 struct ofbundle *bundle = port->bundle;
1499
6f77f4ae
BP
1500 bundle->ofproto->need_revalidate = true;
1501
abe529af
BP
1502 list_remove(&port->bundle_node);
1503 port->bundle = NULL;
1504
1505 if (bundle->lacp) {
1506 lacp_slave_unregister(bundle->lacp, port);
1507 }
1508 if (bundle->bond) {
1509 bond_slave_unregister(bundle->bond, port);
1510 }
1511
7bde8dd8 1512 bundle_update(bundle);
abe529af
BP
1513}
1514
1515static bool
1516bundle_add_port(struct ofbundle *bundle, uint32_t ofp_port,
00794817
BP
1517 struct lacp_slave_settings *lacp,
1518 uint32_t bond_stable_id)
abe529af
BP
1519{
1520 struct ofport_dpif *port;
1521
1522 port = get_ofp_port(bundle->ofproto, ofp_port);
1523 if (!port) {
1524 return false;
1525 }
1526
1527 if (port->bundle != bundle) {
6f77f4ae 1528 bundle->ofproto->need_revalidate = true;
abe529af
BP
1529 if (port->bundle) {
1530 bundle_del_port(port);
1531 }
1532
1533 port->bundle = bundle;
1534 list_push_back(&bundle->ports, &port->bundle_node);
5e48dc2b 1535 if (port->up.opp.config & htonl(OFPPC_NO_FLOOD)) {
abe529af
BP
1536 bundle->floodable = false;
1537 }
1538 }
1539 if (lacp) {
4a86aece 1540 port->bundle->ofproto->need_revalidate = true;
abe529af
BP
1541 lacp_slave_register(bundle->lacp, port, lacp);
1542 }
1543
00794817
BP
1544 port->bond_stable_id = bond_stable_id;
1545
abe529af
BP
1546 return true;
1547}
1548
1549static void
1550bundle_destroy(struct ofbundle *bundle)
1551{
1552 struct ofproto_dpif *ofproto;
1553 struct ofport_dpif *port, *next_port;
1554 int i;
1555
1556 if (!bundle) {
1557 return;
1558 }
1559
1560 ofproto = bundle->ofproto;
1561 for (i = 0; i < MAX_MIRRORS; i++) {
1562 struct ofmirror *m = ofproto->mirrors[i];
1563 if (m) {
1564 if (m->out == bundle) {
1565 mirror_destroy(m);
1566 } else if (hmapx_find_and_delete(&m->srcs, bundle)
1567 || hmapx_find_and_delete(&m->dsts, bundle)) {
1568 ofproto->need_revalidate = true;
1569 }
1570 }
1571 }
1572
1573 LIST_FOR_EACH_SAFE (port, next_port, bundle_node, &bundle->ports) {
1574 bundle_del_port(port);
1575 }
1576
b44a10b7 1577 bundle_flush_macs(bundle, true);
abe529af
BP
1578 hmap_remove(&ofproto->bundles, &bundle->hmap_node);
1579 free(bundle->name);
1580 free(bundle->trunks);
1581 lacp_destroy(bundle->lacp);
1582 bond_destroy(bundle->bond);
1583 free(bundle);
1584}
1585
1586static int
1587bundle_set(struct ofproto *ofproto_, void *aux,
1588 const struct ofproto_bundle_settings *s)
1589{
1590 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1591 bool need_flush = false;
abe529af
BP
1592 struct ofport_dpif *port;
1593 struct ofbundle *bundle;
ecac4ebf
BP
1594 unsigned long *trunks;
1595 int vlan;
abe529af
BP
1596 size_t i;
1597 bool ok;
1598
1599 if (!s) {
1600 bundle_destroy(bundle_lookup(ofproto, aux));
1601 return 0;
1602 }
1603
1604 assert(s->n_slaves == 1 || s->bond != NULL);
1605 assert((s->lacp != NULL) == (s->lacp_slaves != NULL));
1606
1607 bundle = bundle_lookup(ofproto, aux);
1608 if (!bundle) {
1609 bundle = xmalloc(sizeof *bundle);
1610
1611 bundle->ofproto = ofproto;
1612 hmap_insert(&ofproto->bundles, &bundle->hmap_node,
1613 hash_pointer(aux, 0));
1614 bundle->aux = aux;
1615 bundle->name = NULL;
1616
1617 list_init(&bundle->ports);
ecac4ebf 1618 bundle->vlan_mode = PORT_VLAN_TRUNK;
abe529af
BP
1619 bundle->vlan = -1;
1620 bundle->trunks = NULL;
5e9ceccd 1621 bundle->use_priority_tags = s->use_priority_tags;
abe529af
BP
1622 bundle->lacp = NULL;
1623 bundle->bond = NULL;
1624
1625 bundle->floodable = true;
1626
1627 bundle->src_mirrors = 0;
1628 bundle->dst_mirrors = 0;
1629 bundle->mirror_out = 0;
1630 }
1631
1632 if (!bundle->name || strcmp(s->name, bundle->name)) {
1633 free(bundle->name);
1634 bundle->name = xstrdup(s->name);
1635 }
1636
1637 /* LACP. */
1638 if (s->lacp) {
1639 if (!bundle->lacp) {
8c977421 1640 ofproto->need_revalidate = true;
abe529af
BP
1641 bundle->lacp = lacp_create();
1642 }
1643 lacp_configure(bundle->lacp, s->lacp);
1644 } else {
1645 lacp_destroy(bundle->lacp);
1646 bundle->lacp = NULL;
1647 }
1648
1649 /* Update set of ports. */
1650 ok = true;
1651 for (i = 0; i < s->n_slaves; i++) {
1652 if (!bundle_add_port(bundle, s->slaves[i],
00794817
BP
1653 s->lacp ? &s->lacp_slaves[i] : NULL,
1654 s->bond_stable_ids ? s->bond_stable_ids[i] : 0)) {
abe529af
BP
1655 ok = false;
1656 }
1657 }
1658 if (!ok || list_size(&bundle->ports) != s->n_slaves) {
1659 struct ofport_dpif *next_port;
1660
1661 LIST_FOR_EACH_SAFE (port, next_port, bundle_node, &bundle->ports) {
1662 for (i = 0; i < s->n_slaves; i++) {
56c769ab 1663 if (s->slaves[i] == port->up.ofp_port) {
abe529af
BP
1664 goto found;
1665 }
1666 }
1667
1668 bundle_del_port(port);
1669 found: ;
1670 }
1671 }
1672 assert(list_size(&bundle->ports) <= s->n_slaves);
1673
1674 if (list_is_empty(&bundle->ports)) {
1675 bundle_destroy(bundle);
1676 return EINVAL;
1677 }
1678
ecac4ebf 1679 /* Set VLAN tagging mode */
5e9ceccd
BP
1680 if (s->vlan_mode != bundle->vlan_mode
1681 || s->use_priority_tags != bundle->use_priority_tags) {
ecac4ebf 1682 bundle->vlan_mode = s->vlan_mode;
5e9ceccd 1683 bundle->use_priority_tags = s->use_priority_tags;
ecac4ebf
BP
1684 need_flush = true;
1685 }
1686
abe529af 1687 /* Set VLAN tag. */
ecac4ebf
BP
1688 vlan = (s->vlan_mode == PORT_VLAN_TRUNK ? -1
1689 : s->vlan >= 0 && s->vlan <= 4095 ? s->vlan
1690 : 0);
1691 if (vlan != bundle->vlan) {
1692 bundle->vlan = vlan;
abe529af
BP
1693 need_flush = true;
1694 }
1695
1696 /* Get trunked VLANs. */
ecac4ebf
BP
1697 switch (s->vlan_mode) {
1698 case PORT_VLAN_ACCESS:
1699 trunks = NULL;
1700 break;
1701
1702 case PORT_VLAN_TRUNK:
1703 trunks = (unsigned long *) s->trunks;
1704 break;
1705
1706 case PORT_VLAN_NATIVE_UNTAGGED:
1707 case PORT_VLAN_NATIVE_TAGGED:
1708 if (vlan != 0 && (!s->trunks
1709 || !bitmap_is_set(s->trunks, vlan)
1710 || bitmap_is_set(s->trunks, 0))) {
1711 /* Force trunking the native VLAN and prohibit trunking VLAN 0. */
1712 if (s->trunks) {
1713 trunks = bitmap_clone(s->trunks, 4096);
1714 } else {
1715 trunks = bitmap_allocate1(4096);
1716 }
1717 bitmap_set1(trunks, vlan);
1718 bitmap_set0(trunks, 0);
1719 } else {
1720 trunks = (unsigned long *) s->trunks;
1721 }
1722 break;
1723
1724 default:
1725 NOT_REACHED();
1726 }
abe529af
BP
1727 if (!vlan_bitmap_equal(trunks, bundle->trunks)) {
1728 free(bundle->trunks);
ecac4ebf
BP
1729 if (trunks == s->trunks) {
1730 bundle->trunks = vlan_bitmap_clone(trunks);
1731 } else {
1732 bundle->trunks = trunks;
1733 trunks = NULL;
1734 }
abe529af
BP
1735 need_flush = true;
1736 }
ecac4ebf
BP
1737 if (trunks != s->trunks) {
1738 free(trunks);
1739 }
abe529af
BP
1740
1741 /* Bonding. */
1742 if (!list_is_short(&bundle->ports)) {
1743 bundle->ofproto->has_bonded_bundles = true;
1744 if (bundle->bond) {
1745 if (bond_reconfigure(bundle->bond, s->bond)) {
1746 ofproto->need_revalidate = true;
1747 }
1748 } else {
1749 bundle->bond = bond_create(s->bond);
6f77f4ae 1750 ofproto->need_revalidate = true;
abe529af
BP
1751 }
1752
1753 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
00794817 1754 bond_slave_register(bundle->bond, port, port->bond_stable_id,
abe529af
BP
1755 port->up.netdev);
1756 }
1757 } else {
1758 bond_destroy(bundle->bond);
1759 bundle->bond = NULL;
1760 }
1761
1762 /* If we changed something that would affect MAC learning, un-learn
1763 * everything on this port and force flow revalidation. */
1764 if (need_flush) {
b44a10b7 1765 bundle_flush_macs(bundle, false);
abe529af
BP
1766 }
1767
1768 return 0;
1769}
1770
1771static void
1772bundle_remove(struct ofport *port_)
1773{
1774 struct ofport_dpif *port = ofport_dpif_cast(port_);
1775 struct ofbundle *bundle = port->bundle;
1776
1777 if (bundle) {
1778 bundle_del_port(port);
1779 if (list_is_empty(&bundle->ports)) {
1780 bundle_destroy(bundle);
1781 } else if (list_is_short(&bundle->ports)) {
1782 bond_destroy(bundle->bond);
1783 bundle->bond = NULL;
1784 }
1785 }
1786}
1787
1788static void
5f877369 1789send_pdu_cb(void *port_, const void *pdu, size_t pdu_size)
abe529af
BP
1790{
1791 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 10);
1792 struct ofport_dpif *port = port_;
1793 uint8_t ea[ETH_ADDR_LEN];
1794 int error;
1795
1796 error = netdev_get_etheraddr(port->up.netdev, ea);
1797 if (!error) {
abe529af 1798 struct ofpbuf packet;
5f877369 1799 void *packet_pdu;
abe529af
BP
1800
1801 ofpbuf_init(&packet, 0);
1802 packet_pdu = eth_compose(&packet, eth_addr_lacp, ea, ETH_TYPE_LACP,
5f877369
EJ
1803 pdu_size);
1804 memcpy(packet_pdu, pdu, pdu_size);
1805
97d6520b 1806 send_packet(port, &packet);
abe529af
BP
1807 ofpbuf_uninit(&packet);
1808 } else {
1809 VLOG_ERR_RL(&rl, "port %s: cannot obtain Ethernet address of iface "
1810 "%s (%s)", port->bundle->name,
1811 netdev_get_name(port->up.netdev), strerror(error));
1812 }
1813}
1814
1815static void
1816bundle_send_learning_packets(struct ofbundle *bundle)
1817{
1818 struct ofproto_dpif *ofproto = bundle->ofproto;
1819 int error, n_packets, n_errors;
1820 struct mac_entry *e;
1821
1822 error = n_packets = n_errors = 0;
1823 LIST_FOR_EACH (e, lru_node, &ofproto->ml->lrus) {
1824 if (e->port.p != bundle) {
ea131871
JG
1825 struct ofpbuf *learning_packet;
1826 struct ofport_dpif *port;
4dd1e3ca 1827 void *port_void;
ea131871
JG
1828 int ret;
1829
4dd1e3ca
BP
1830 /* The assignment to "port" is unnecessary but makes "grep"ing for
1831 * struct ofport_dpif more effective. */
1832 learning_packet = bond_compose_learning_packet(bundle->bond,
1833 e->mac, e->vlan,
1834 &port_void);
1835 port = port_void;
97d6520b 1836 ret = send_packet(port, learning_packet);
ea131871 1837 ofpbuf_delete(learning_packet);
abe529af
BP
1838 if (ret) {
1839 error = ret;
1840 n_errors++;
1841 }
1842 n_packets++;
1843 }
1844 }
1845
1846 if (n_errors) {
1847 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
1848 VLOG_WARN_RL(&rl, "bond %s: %d errors sending %d gratuitous learning "
1849 "packets, last error was: %s",
1850 bundle->name, n_errors, n_packets, strerror(error));
1851 } else {
1852 VLOG_DBG("bond %s: sent %d gratuitous learning packets",
1853 bundle->name, n_packets);
1854 }
1855}
1856
1857static void
1858bundle_run(struct ofbundle *bundle)
1859{
1860 if (bundle->lacp) {
1861 lacp_run(bundle->lacp, send_pdu_cb);
1862 }
1863 if (bundle->bond) {
1864 struct ofport_dpif *port;
1865
1866 LIST_FOR_EACH (port, bundle_node, &bundle->ports) {
015e08bc 1867 bond_slave_set_may_enable(bundle->bond, port, port->may_enable);
abe529af
BP
1868 }
1869
1870 bond_run(bundle->bond, &bundle->ofproto->revalidate_set,
1871 lacp_negotiated(bundle->lacp));
1872 if (bond_should_send_learning_packets(bundle->bond)) {
1873 bundle_send_learning_packets(bundle);
1874 }
1875 }
1876}
1877
1878static void
1879bundle_wait(struct ofbundle *bundle)
1880{
1881 if (bundle->lacp) {
1882 lacp_wait(bundle->lacp);
1883 }
1884 if (bundle->bond) {
1885 bond_wait(bundle->bond);
1886 }
1887}
1888\f
1889/* Mirrors. */
1890
1891static int
1892mirror_scan(struct ofproto_dpif *ofproto)
1893{
1894 int idx;
1895
1896 for (idx = 0; idx < MAX_MIRRORS; idx++) {
1897 if (!ofproto->mirrors[idx]) {
1898 return idx;
1899 }
1900 }
1901 return -1;
1902}
1903
1904static struct ofmirror *
1905mirror_lookup(struct ofproto_dpif *ofproto, void *aux)
1906{
1907 int i;
1908
1909 for (i = 0; i < MAX_MIRRORS; i++) {
1910 struct ofmirror *mirror = ofproto->mirrors[i];
1911 if (mirror && mirror->aux == aux) {
1912 return mirror;
1913 }
1914 }
1915
1916 return NULL;
1917}
1918
9ba15e2a
BP
1919/* Update the 'dup_mirrors' member of each of the ofmirrors in 'ofproto'. */
1920static void
1921mirror_update_dups(struct ofproto_dpif *ofproto)
1922{
1923 int i;
1924
1925 for (i = 0; i < MAX_MIRRORS; i++) {
1926 struct ofmirror *m = ofproto->mirrors[i];
1927
1928 if (m) {
1929 m->dup_mirrors = MIRROR_MASK_C(1) << i;
1930 }
1931 }
1932
1933 for (i = 0; i < MAX_MIRRORS; i++) {
1934 struct ofmirror *m1 = ofproto->mirrors[i];
1935 int j;
1936
1937 if (!m1) {
1938 continue;
1939 }
1940
1941 for (j = i + 1; j < MAX_MIRRORS; j++) {
1942 struct ofmirror *m2 = ofproto->mirrors[j];
1943
edb0540b 1944 if (m2 && m1->out == m2->out && m1->out_vlan == m2->out_vlan) {
9ba15e2a
BP
1945 m1->dup_mirrors |= MIRROR_MASK_C(1) << j;
1946 m2->dup_mirrors |= m1->dup_mirrors;
1947 }
1948 }
1949 }
1950}
1951
abe529af
BP
1952static int
1953mirror_set(struct ofproto *ofproto_, void *aux,
1954 const struct ofproto_mirror_settings *s)
1955{
1956 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
1957 mirror_mask_t mirror_bit;
1958 struct ofbundle *bundle;
1959 struct ofmirror *mirror;
1960 struct ofbundle *out;
1961 struct hmapx srcs; /* Contains "struct ofbundle *"s. */
1962 struct hmapx dsts; /* Contains "struct ofbundle *"s. */
1963 int out_vlan;
1964
1965 mirror = mirror_lookup(ofproto, aux);
1966 if (!s) {
1967 mirror_destroy(mirror);
1968 return 0;
1969 }
1970 if (!mirror) {
1971 int idx;
1972
1973 idx = mirror_scan(ofproto);
1974 if (idx < 0) {
1975 VLOG_WARN("bridge %s: maximum of %d port mirrors reached, "
1976 "cannot create %s",
1977 ofproto->up.name, MAX_MIRRORS, s->name);
1978 return EFBIG;
1979 }
1980
1981 mirror = ofproto->mirrors[idx] = xzalloc(sizeof *mirror);
1982 mirror->ofproto = ofproto;
1983 mirror->idx = idx;
8b28d864 1984 mirror->aux = aux;
abe529af
BP
1985 mirror->out_vlan = -1;
1986 mirror->name = NULL;
1987 }
1988
1989 if (!mirror->name || strcmp(s->name, mirror->name)) {
1990 free(mirror->name);
1991 mirror->name = xstrdup(s->name);
1992 }
1993
1994 /* Get the new configuration. */
1995 if (s->out_bundle) {
1996 out = bundle_lookup(ofproto, s->out_bundle);
1997 if (!out) {
1998 mirror_destroy(mirror);
1999 return EINVAL;
2000 }
2001 out_vlan = -1;
2002 } else {
2003 out = NULL;
2004 out_vlan = s->out_vlan;
2005 }
2006 bundle_lookup_multiple(ofproto, s->srcs, s->n_srcs, &srcs);
2007 bundle_lookup_multiple(ofproto, s->dsts, s->n_dsts, &dsts);
2008
2009 /* If the configuration has not changed, do nothing. */
2010 if (hmapx_equals(&srcs, &mirror->srcs)
2011 && hmapx_equals(&dsts, &mirror->dsts)
2012 && vlan_bitmap_equal(mirror->vlans, s->src_vlans)
2013 && mirror->out == out
2014 && mirror->out_vlan == out_vlan)
2015 {
2016 hmapx_destroy(&srcs);
2017 hmapx_destroy(&dsts);
2018 return 0;
2019 }
2020
2021 hmapx_swap(&srcs, &mirror->srcs);
2022 hmapx_destroy(&srcs);
2023
2024 hmapx_swap(&dsts, &mirror->dsts);
2025 hmapx_destroy(&dsts);
2026
2027 free(mirror->vlans);
2028 mirror->vlans = vlan_bitmap_clone(s->src_vlans);
2029
2030 mirror->out = out;
2031 mirror->out_vlan = out_vlan;
2032
2033 /* Update bundles. */
2034 mirror_bit = MIRROR_MASK_C(1) << mirror->idx;
2035 HMAP_FOR_EACH (bundle, hmap_node, &mirror->ofproto->bundles) {
2036 if (hmapx_contains(&mirror->srcs, bundle)) {
2037 bundle->src_mirrors |= mirror_bit;
2038 } else {
2039 bundle->src_mirrors &= ~mirror_bit;
2040 }
2041
2042 if (hmapx_contains(&mirror->dsts, bundle)) {
2043 bundle->dst_mirrors |= mirror_bit;
2044 } else {
2045 bundle->dst_mirrors &= ~mirror_bit;
2046 }
2047
2048 if (mirror->out == bundle) {
2049 bundle->mirror_out |= mirror_bit;
2050 } else {
2051 bundle->mirror_out &= ~mirror_bit;
2052 }
2053 }
2054
2055 ofproto->need_revalidate = true;
2056 mac_learning_flush(ofproto->ml);
9ba15e2a 2057 mirror_update_dups(ofproto);
abe529af
BP
2058
2059 return 0;
2060}
2061
2062static void
2063mirror_destroy(struct ofmirror *mirror)
2064{
2065 struct ofproto_dpif *ofproto;
2066 mirror_mask_t mirror_bit;
2067 struct ofbundle *bundle;
2068
2069 if (!mirror) {
2070 return;
2071 }
2072
2073 ofproto = mirror->ofproto;
2074 ofproto->need_revalidate = true;
2075 mac_learning_flush(ofproto->ml);
2076
2077 mirror_bit = MIRROR_MASK_C(1) << mirror->idx;
2078 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
2079 bundle->src_mirrors &= ~mirror_bit;
2080 bundle->dst_mirrors &= ~mirror_bit;
2081 bundle->mirror_out &= ~mirror_bit;
2082 }
2083
2084 hmapx_destroy(&mirror->srcs);
2085 hmapx_destroy(&mirror->dsts);
2086 free(mirror->vlans);
2087
2088 ofproto->mirrors[mirror->idx] = NULL;
2089 free(mirror->name);
2090 free(mirror);
9ba15e2a
BP
2091
2092 mirror_update_dups(ofproto);
abe529af
BP
2093}
2094
9d24de3b
JP
2095static int
2096mirror_get_stats(struct ofproto *ofproto_, void *aux,
2097 uint64_t *packets, uint64_t *bytes)
2098{
2099 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2100 struct ofmirror *mirror = mirror_lookup(ofproto, aux);
2101
2102 if (!mirror) {
2103 *packets = *bytes = UINT64_MAX;
2104 return 0;
2105 }
2106
2107 *packets = mirror->packet_count;
2108 *bytes = mirror->byte_count;
2109
2110 return 0;
2111}
2112
abe529af
BP
2113static int
2114set_flood_vlans(struct ofproto *ofproto_, unsigned long *flood_vlans)
2115{
2116 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2117 if (mac_learning_set_flood_vlans(ofproto->ml, flood_vlans)) {
2118 ofproto->need_revalidate = true;
2119 mac_learning_flush(ofproto->ml);
2120 }
2121 return 0;
2122}
2123
2124static bool
b4affc74 2125is_mirror_output_bundle(const struct ofproto *ofproto_, void *aux)
abe529af
BP
2126{
2127 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2128 struct ofbundle *bundle = bundle_lookup(ofproto, aux);
2129 return bundle && bundle->mirror_out != 0;
2130}
8402c74b
SS
2131
2132static void
b53055f4 2133forward_bpdu_changed(struct ofproto *ofproto_)
8402c74b
SS
2134{
2135 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2136 /* Revalidate cached flows whenever forward_bpdu option changes. */
2137 ofproto->need_revalidate = true;
2138}
abe529af
BP
2139\f
2140/* Ports. */
2141
2142static struct ofport_dpif *
2143get_ofp_port(struct ofproto_dpif *ofproto, uint16_t ofp_port)
2144{
7df6a8bd
BP
2145 struct ofport *ofport = ofproto_get_port(&ofproto->up, ofp_port);
2146 return ofport ? ofport_dpif_cast(ofport) : NULL;
abe529af
BP
2147}
2148
2149static struct ofport_dpif *
2150get_odp_port(struct ofproto_dpif *ofproto, uint32_t odp_port)
2151{
2152 return get_ofp_port(ofproto, odp_port_to_ofp_port(odp_port));
2153}
2154
2155static void
2156ofproto_port_from_dpif_port(struct ofproto_port *ofproto_port,
2157 struct dpif_port *dpif_port)
2158{
2159 ofproto_port->name = dpif_port->name;
2160 ofproto_port->type = dpif_port->type;
2161 ofproto_port->ofp_port = odp_port_to_ofp_port(dpif_port->port_no);
2162}
2163
2164static void
2165port_run(struct ofport_dpif *ofport)
2166{
015e08bc
EJ
2167 bool enable = netdev_get_carrier(ofport->up.netdev);
2168
abe529af
BP
2169 if (ofport->cfm) {
2170 cfm_run(ofport->cfm);
2171
2172 if (cfm_should_send_ccm(ofport->cfm)) {
2173 struct ofpbuf packet;
abe529af
BP
2174
2175 ofpbuf_init(&packet, 0);
c0a2e71d 2176 cfm_compose_ccm(ofport->cfm, &packet, ofport->up.opp.hw_addr);
97d6520b 2177 send_packet(ofport, &packet);
abe529af
BP
2178 ofpbuf_uninit(&packet);
2179 }
015e08bc 2180
86dc6501
EJ
2181 enable = enable && !cfm_get_fault(ofport->cfm)
2182 && cfm_get_opup(ofport->cfm);
abe529af 2183 }
015e08bc
EJ
2184
2185 if (ofport->bundle) {
2186 enable = enable && lacp_slave_may_enable(ofport->bundle->lacp, ofport);
2187 }
2188
daff3353
EJ
2189 if (ofport->may_enable != enable) {
2190 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2191
2192 if (ofproto->has_bundle_action) {
2193 ofproto->need_revalidate = true;
2194 }
2195 }
2196
015e08bc 2197 ofport->may_enable = enable;
abe529af
BP
2198}
2199
2200static void
2201port_wait(struct ofport_dpif *ofport)
2202{
2203 if (ofport->cfm) {
2204 cfm_wait(ofport->cfm);
2205 }
2206}
2207
2208static int
2209port_query_by_name(const struct ofproto *ofproto_, const char *devname,
2210 struct ofproto_port *ofproto_port)
2211{
2212 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2213 struct dpif_port dpif_port;
2214 int error;
2215
2216 error = dpif_port_query_by_name(ofproto->dpif, devname, &dpif_port);
2217 if (!error) {
2218 ofproto_port_from_dpif_port(ofproto_port, &dpif_port);
2219 }
2220 return error;
2221}
2222
2223static int
2224port_add(struct ofproto *ofproto_, struct netdev *netdev, uint16_t *ofp_portp)
2225{
2226 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2227 uint16_t odp_port;
2228 int error;
2229
2230 error = dpif_port_add(ofproto->dpif, netdev, &odp_port);
2231 if (!error) {
2232 *ofp_portp = odp_port_to_ofp_port(odp_port);
2233 }
2234 return error;
2235}
2236
2237static int
2238port_del(struct ofproto *ofproto_, uint16_t ofp_port)
2239{
2240 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2241 int error;
2242
2243 error = dpif_port_del(ofproto->dpif, ofp_port_to_odp_port(ofp_port));
2244 if (!error) {
2245 struct ofport_dpif *ofport = get_ofp_port(ofproto, ofp_port);
2246 if (ofport) {
2247 /* The caller is going to close ofport->up.netdev. If this is a
2248 * bonded port, then the bond is using that netdev, so remove it
2249 * from the bond. The client will need to reconfigure everything
2250 * after deleting ports, so then the slave will get re-added. */
2251 bundle_remove(&ofport->up);
2252 }
2253 }
2254 return error;
2255}
2256
6527c598
PS
2257static int
2258port_get_stats(const struct ofport *ofport_, struct netdev_stats *stats)
2259{
2260 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2261 int error;
2262
2263 error = netdev_get_stats(ofport->up.netdev, stats);
2264
2265 if (!error && ofport->odp_port == OVSP_LOCAL) {
2266 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
2267
2268 /* ofproto->stats.tx_packets represents packets that we created
2269 * internally and sent to some port (e.g. packets sent with
2270 * send_packet()). Account for them as if they had come from
2271 * OFPP_LOCAL and got forwarded. */
2272
2273 if (stats->rx_packets != UINT64_MAX) {
2274 stats->rx_packets += ofproto->stats.tx_packets;
2275 }
2276
2277 if (stats->rx_bytes != UINT64_MAX) {
2278 stats->rx_bytes += ofproto->stats.tx_bytes;
2279 }
2280
2281 /* ofproto->stats.rx_packets represents packets that were received on
2282 * some port and we processed internally and dropped (e.g. STP).
2283 * Account fro them as if they had been forwarded to OFPP_LOCAL. */
2284
2285 if (stats->tx_packets != UINT64_MAX) {
2286 stats->tx_packets += ofproto->stats.rx_packets;
2287 }
2288
2289 if (stats->tx_bytes != UINT64_MAX) {
2290 stats->tx_bytes += ofproto->stats.rx_bytes;
2291 }
2292 }
2293
2294 return error;
2295}
2296
2297/* Account packets for LOCAL port. */
2298static void
2299ofproto_update_local_port_stats(const struct ofproto *ofproto_,
2300 size_t tx_size, size_t rx_size)
2301{
2302 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2303
2304 if (rx_size) {
2305 ofproto->stats.rx_packets++;
2306 ofproto->stats.rx_bytes += rx_size;
2307 }
2308 if (tx_size) {
2309 ofproto->stats.tx_packets++;
2310 ofproto->stats.tx_bytes += tx_size;
2311 }
2312}
2313
abe529af
BP
2314struct port_dump_state {
2315 struct dpif_port_dump dump;
2316 bool done;
2317};
2318
2319static int
2320port_dump_start(const struct ofproto *ofproto_, void **statep)
2321{
2322 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2323 struct port_dump_state *state;
2324
2325 *statep = state = xmalloc(sizeof *state);
2326 dpif_port_dump_start(&state->dump, ofproto->dpif);
2327 state->done = false;
2328 return 0;
2329}
2330
2331static int
2332port_dump_next(const struct ofproto *ofproto_ OVS_UNUSED, void *state_,
2333 struct ofproto_port *port)
2334{
2335 struct port_dump_state *state = state_;
2336 struct dpif_port dpif_port;
2337
2338 if (dpif_port_dump_next(&state->dump, &dpif_port)) {
2339 ofproto_port_from_dpif_port(port, &dpif_port);
2340 return 0;
2341 } else {
2342 int error = dpif_port_dump_done(&state->dump);
2343 state->done = true;
2344 return error ? error : EOF;
2345 }
2346}
2347
2348static int
2349port_dump_done(const struct ofproto *ofproto_ OVS_UNUSED, void *state_)
2350{
2351 struct port_dump_state *state = state_;
2352
2353 if (!state->done) {
2354 dpif_port_dump_done(&state->dump);
2355 }
2356 free(state);
2357 return 0;
2358}
2359
2360static int
2361port_poll(const struct ofproto *ofproto_, char **devnamep)
2362{
2363 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2364 return dpif_port_poll(ofproto->dpif, devnamep);
2365}
2366
2367static void
2368port_poll_wait(const struct ofproto *ofproto_)
2369{
2370 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
2371 dpif_port_poll_wait(ofproto->dpif);
2372}
2373
2374static int
2375port_is_lacp_current(const struct ofport *ofport_)
2376{
2377 const struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
2378 return (ofport->bundle && ofport->bundle->lacp
2379 ? lacp_slave_is_current(ofport->bundle->lacp, ofport)
2380 : -1);
2381}
2382\f
2383/* Upcall handling. */
2384
501f8d1f
BP
2385/* Flow miss batching.
2386 *
2387 * Some dpifs implement operations faster when you hand them off in a batch.
2388 * To allow batching, "struct flow_miss" queues the dpif-related work needed
2389 * for a given flow. Each "struct flow_miss" corresponds to sending one or
2390 * more packets, plus possibly installing the flow in the dpif.
2391 *
2392 * So far we only batch the operations that affect flow setup time the most.
2393 * It's possible to batch more than that, but the benefit might be minimal. */
2394struct flow_miss {
2395 struct hmap_node hmap_node;
2396 struct flow flow;
b0f7b9b5 2397 enum odp_key_fitness key_fitness;
501f8d1f
BP
2398 const struct nlattr *key;
2399 size_t key_len;
e84173dc 2400 ovs_be16 initial_tci;
501f8d1f
BP
2401 struct list packets;
2402};
2403
2404struct flow_miss_op {
2405 union dpif_op dpif_op;
b0f7b9b5 2406 struct subfacet *subfacet;
501f8d1f
BP
2407};
2408
62cd7072
BP
2409/* Sends an OFPT_PACKET_IN message for 'packet' of type OFPR_NO_MATCH to each
2410 * OpenFlow controller as necessary according to their individual
29ebe880 2411 * configurations. */
62cd7072
BP
2412static void
2413send_packet_in_miss(struct ofproto_dpif *ofproto, struct ofpbuf *packet,
29ebe880 2414 const struct flow *flow)
62cd7072
BP
2415{
2416 struct ofputil_packet_in pin;
2417
3e3252fa
EJ
2418 pin.packet = packet->data;
2419 pin.packet_len = packet->size;
65120a8a 2420 pin.total_len = packet->size;
62cd7072 2421 pin.reason = OFPR_NO_MATCH;
54834960
EJ
2422
2423 pin.table_id = 0;
2424 pin.cookie = 0;
2425
62cd7072
BP
2426 pin.buffer_id = 0; /* not yet known */
2427 pin.send_len = 0; /* not used for flow table misses */
5d6c3af0
EJ
2428
2429 flow_get_metadata(flow, &pin.fmd);
2430
2431 /* Registers aren't meaningful on a miss. */
2432 memset(pin.fmd.reg_masks, 0, sizeof pin.fmd.reg_masks);
2433
29ebe880 2434 connmgr_send_packet_in(ofproto->up.connmgr, &pin, flow);
62cd7072
BP
2435}
2436
abe529af
BP
2437static bool
2438process_special(struct ofproto_dpif *ofproto, const struct flow *flow,
2439 const struct ofpbuf *packet)
2440{
b6e001b6
EJ
2441 struct ofport_dpif *ofport = get_ofp_port(ofproto, flow->in_port);
2442
2443 if (!ofport) {
2444 return false;
2445 }
2446
ef9819b5 2447 if (ofport->cfm && cfm_should_process_flow(ofport->cfm, flow)) {
b6e001b6 2448 if (packet) {
abe529af
BP
2449 cfm_process_heartbeat(ofport->cfm, packet);
2450 }
2451 return true;
b6e001b6
EJ
2452 } else if (ofport->bundle && ofport->bundle->lacp
2453 && flow->dl_type == htons(ETH_TYPE_LACP)) {
2454 if (packet) {
2455 lacp_process_packet(ofport->bundle->lacp, ofport, packet);
abe529af 2456 }
da37ebac 2457 return true;
21f7563c
JP
2458 } else if (ofproto->stp && stp_should_process_flow(flow)) {
2459 if (packet) {
2460 stp_process_packet(ofport, packet);
2461 }
2462 return true;
abe529af
BP
2463 }
2464 return false;
2465}
2466
501f8d1f
BP
2467static struct flow_miss *
2468flow_miss_create(struct hmap *todo, const struct flow *flow,
b0f7b9b5 2469 enum odp_key_fitness key_fitness,
e84173dc
BP
2470 const struct nlattr *key, size_t key_len,
2471 ovs_be16 initial_tci)
abe529af 2472{
501f8d1f
BP
2473 uint32_t hash = flow_hash(flow, 0);
2474 struct flow_miss *miss;
abe529af 2475
501f8d1f
BP
2476 HMAP_FOR_EACH_WITH_HASH (miss, hmap_node, hash, todo) {
2477 if (flow_equal(&miss->flow, flow)) {
2478 return miss;
2479 }
2480 }
abe529af 2481
501f8d1f
BP
2482 miss = xmalloc(sizeof *miss);
2483 hmap_insert(todo, &miss->hmap_node, hash);
2484 miss->flow = *flow;
b0f7b9b5 2485 miss->key_fitness = key_fitness;
501f8d1f
BP
2486 miss->key = key;
2487 miss->key_len = key_len;
e84173dc 2488 miss->initial_tci = initial_tci;
501f8d1f
BP
2489 list_init(&miss->packets);
2490 return miss;
2491}
abe529af 2492
501f8d1f
BP
2493static void
2494handle_flow_miss(struct ofproto_dpif *ofproto, struct flow_miss *miss,
2495 struct flow_miss_op *ops, size_t *n_ops)
2496{
2497 const struct flow *flow = &miss->flow;
2498 struct ofpbuf *packet, *next_packet;
b0f7b9b5 2499 struct subfacet *subfacet;
501f8d1f 2500 struct facet *facet;
abe529af 2501
501f8d1f 2502 facet = facet_lookup_valid(ofproto, flow);
abe529af 2503 if (!facet) {
501f8d1f
BP
2504 struct rule_dpif *rule;
2505
2506 rule = rule_dpif_lookup(ofproto, flow, 0);
abe529af
BP
2507 if (!rule) {
2508 /* Don't send a packet-in if OFPPC_NO_PACKET_IN asserted. */
501f8d1f 2509 struct ofport_dpif *port = get_ofp_port(ofproto, flow->in_port);
abe529af
BP
2510 if (port) {
2511 if (port->up.opp.config & htonl(OFPPC_NO_PACKET_IN)) {
2512 COVERAGE_INC(ofproto_dpif_no_packet_in);
2513 /* XXX install 'drop' flow entry */
abe529af
BP
2514 return;
2515 }
2516 } else {
2517 VLOG_WARN_RL(&rl, "packet-in on unknown port %"PRIu16,
501f8d1f
BP
2518 flow->in_port);
2519 }
2520
29ebe880
EJ
2521 LIST_FOR_EACH (packet, list_node, &miss->packets) {
2522 send_packet_in_miss(ofproto, packet, flow);
abe529af
BP
2523 }
2524
abe529af
BP
2525 return;
2526 }
2527
501f8d1f 2528 facet = facet_create(rule, flow);
abe529af
BP
2529 }
2530
b0f7b9b5 2531 subfacet = subfacet_create(ofproto, facet,
e84173dc
BP
2532 miss->key_fitness, miss->key, miss->key_len,
2533 miss->initial_tci);
b0f7b9b5 2534
501f8d1f 2535 LIST_FOR_EACH_SAFE (packet, next_packet, list_node, &miss->packets) {
67d91f78 2536 struct dpif_flow_stats stats;
999fba59
EJ
2537 struct flow_miss_op *op;
2538 struct dpif_execute *execute;
67d91f78 2539
501f8d1f
BP
2540 list_remove(&packet->list_node);
2541 ofproto->n_matches++;
2542
2543 if (facet->rule->up.cr.priority == FAIL_OPEN_PRIORITY) {
2544 /*
2545 * Extra-special case for fail-open mode.
2546 *
2547 * We are in fail-open mode and the packet matched the fail-open
2548 * rule, but we are connected to a controller too. We should send
2549 * the packet up to the controller in the hope that it will try to
2550 * set up a flow and thereby allow us to exit fail-open.
2551 *
2552 * See the top-level comment in fail-open.c for more information.
2553 */
29ebe880 2554 send_packet_in_miss(ofproto, packet, flow);
501f8d1f
BP
2555 }
2556
b95fc6ba
BP
2557 if (!facet->may_install || !subfacet->actions) {
2558 subfacet_make_actions(ofproto, subfacet, packet);
501f8d1f 2559 }
67d91f78 2560
67d91f78
BP
2561 dpif_flow_stats_extract(&facet->flow, packet, &stats);
2562 subfacet_update_stats(ofproto, subfacet, &stats);
2563
999fba59
EJ
2564 if (flow->vlan_tci != subfacet->initial_tci) {
2565 /* This packet was received on a VLAN splinter port. We added
2566 * a VLAN to the packet to make the packet resemble the flow,
2567 * but the actions were composed assuming that the packet
2568 * contained no VLAN. So, we must remove the VLAN header from
2569 * the packet before trying to execute the actions. */
2570 eth_pop_vlan(packet);
501f8d1f 2571 }
999fba59
EJ
2572
2573 op = &ops[(*n_ops)++];
2574 execute = &op->dpif_op.execute;
2575 op->subfacet = subfacet;
2576 execute->type = DPIF_OP_EXECUTE;
2577 execute->key = miss->key;
2578 execute->key_len = miss->key_len;
2579 execute->actions = (facet->may_install
2580 ? subfacet->actions
2581 : xmemdup(subfacet->actions,
2582 subfacet->actions_len));
2583 execute->actions_len = subfacet->actions_len;
2584 execute->packet = packet;
501f8d1f
BP
2585 }
2586
b0f7b9b5 2587 if (facet->may_install && subfacet->key_fitness != ODP_FIT_TOO_LITTLE) {
501f8d1f
BP
2588 struct flow_miss_op *op = &ops[(*n_ops)++];
2589 struct dpif_flow_put *put = &op->dpif_op.flow_put;
2590
b0f7b9b5 2591 op->subfacet = subfacet;
501f8d1f
BP
2592 put->type = DPIF_OP_FLOW_PUT;
2593 put->flags = DPIF_FP_CREATE | DPIF_FP_MODIFY;
2594 put->key = miss->key;
2595 put->key_len = miss->key_len;
b95fc6ba
BP
2596 put->actions = subfacet->actions;
2597 put->actions_len = subfacet->actions_len;
501f8d1f
BP
2598 put->stats = NULL;
2599 }
2600}
2601
e2a6ca36
BP
2602/* Like odp_flow_key_to_flow(), this function converts the 'key_len' bytes of
2603 * OVS_KEY_ATTR_* attributes in 'key' to a flow structure in 'flow' and returns
2604 * an ODP_FIT_* value that indicates how well 'key' fits our expectations for
2605 * what a flow key should contain.
2606 *
2607 * This function also includes some logic to help make VLAN splinters
2608 * transparent to the rest of the upcall processing logic. In particular, if
2609 * the extracted in_port is a VLAN splinter port, it replaces flow->in_port by
2610 * the "real" port, sets flow->vlan_tci correctly for the VLAN of the VLAN
2611 * splinter port, and pushes a VLAN header onto 'packet' (if it is nonnull).
2612 *
2613 * Sets '*initial_tci' to the VLAN TCI with which the packet was really
2614 * received, that is, the actual VLAN TCI extracted by odp_flow_key_to_flow().
2615 * (This differs from the value returned in flow->vlan_tci only for packets
2616 * received on VLAN splinters.)
2617 */
e84173dc 2618static enum odp_key_fitness
52a90c29 2619ofproto_dpif_extract_flow_key(const struct ofproto_dpif *ofproto,
e84173dc 2620 const struct nlattr *key, size_t key_len,
e2a6ca36
BP
2621 struct flow *flow, ovs_be16 *initial_tci,
2622 struct ofpbuf *packet)
e84173dc
BP
2623{
2624 enum odp_key_fitness fitness;
52a90c29
BP
2625 uint16_t realdev;
2626 int vid;
e84173dc
BP
2627
2628 fitness = odp_flow_key_to_flow(key, key_len, flow);
2629 if (fitness == ODP_FIT_ERROR) {
2630 return fitness;
2631 }
2632 *initial_tci = flow->vlan_tci;
2633
52a90c29
BP
2634 realdev = vsp_vlandev_to_realdev(ofproto, flow->in_port, &vid);
2635 if (realdev) {
2636 /* Cause the flow to be processed as if it came in on the real device
2637 * with the VLAN device's VLAN ID. */
2638 flow->in_port = realdev;
2639 flow->vlan_tci = htons((vid & VLAN_VID_MASK) | VLAN_CFI);
e2a6ca36
BP
2640 if (packet) {
2641 /* Make the packet resemble the flow, so that it gets sent to an
2642 * OpenFlow controller properly, so that it looks correct for
2643 * sFlow, and so that flow_extract() will get the correct vlan_tci
2644 * if it is called on 'packet'.
2645 *
2646 * The allocated space inside 'packet' probably also contains
2647 * 'key', that is, both 'packet' and 'key' are probably part of a
2648 * struct dpif_upcall (see the large comment on that structure
2649 * definition), so pushing data on 'packet' is in general not a
2650 * good idea since it could overwrite 'key' or free it as a side
2651 * effect. However, it's OK in this special case because we know
2652 * that 'packet' is inside a Netlink attribute: pushing 4 bytes
2653 * will just overwrite the 4-byte "struct nlattr", which is fine
2654 * since we don't need that header anymore. */
2655 eth_push_vlan(packet, flow->vlan_tci);
2656 }
52a90c29
BP
2657
2658 /* Let the caller know that we can't reproduce 'key' from 'flow'. */
2659 if (fitness == ODP_FIT_PERFECT) {
2660 fitness = ODP_FIT_TOO_MUCH;
2661 }
2662 }
2663
e84173dc
BP
2664 return fitness;
2665}
2666
501f8d1f
BP
2667static void
2668handle_miss_upcalls(struct ofproto_dpif *ofproto, struct dpif_upcall *upcalls,
2669 size_t n_upcalls)
2670{
2671 struct dpif_upcall *upcall;
2672 struct flow_miss *miss, *next_miss;
2673 struct flow_miss_op flow_miss_ops[FLOW_MISS_MAX_BATCH * 2];
2674 union dpif_op *dpif_ops[FLOW_MISS_MAX_BATCH * 2];
2675 struct hmap todo;
2676 size_t n_ops;
2677 size_t i;
2678
2679 if (!n_upcalls) {
2680 return;
2681 }
2682
2683 /* Construct the to-do list.
2684 *
2685 * This just amounts to extracting the flow from each packet and sticking
2686 * the packets that have the same flow in the same "flow_miss" structure so
2687 * that we can process them together. */
2688 hmap_init(&todo);
2689 for (upcall = upcalls; upcall < &upcalls[n_upcalls]; upcall++) {
b0f7b9b5 2690 enum odp_key_fitness fitness;
501f8d1f 2691 struct flow_miss *miss;
e84173dc 2692 ovs_be16 initial_tci;
501f8d1f
BP
2693 struct flow flow;
2694
b0f7b9b5
BP
2695 /* Obtain metadata and check userspace/kernel agreement on flow match,
2696 * then set 'flow''s header pointers. */
e84173dc
BP
2697 fitness = ofproto_dpif_extract_flow_key(ofproto,
2698 upcall->key, upcall->key_len,
e2a6ca36
BP
2699 &flow, &initial_tci,
2700 upcall->packet);
b0f7b9b5 2701 if (fitness == ODP_FIT_ERROR) {
6b17ca5c 2702 ofpbuf_delete(upcall->packet);
b0f7b9b5
BP
2703 continue;
2704 }
deedf7e7 2705 flow_extract(upcall->packet, flow.skb_priority, flow.tun_id,
abff858b 2706 flow.in_port, &flow);
501f8d1f 2707
21f7563c 2708 /* Handle 802.1ag, LACP, and STP specially. */
501f8d1f 2709 if (process_special(ofproto, &flow, upcall->packet)) {
6527c598
PS
2710 ofproto_update_local_port_stats(&ofproto->up,
2711 0, upcall->packet->size);
501f8d1f
BP
2712 ofpbuf_delete(upcall->packet);
2713 ofproto->n_matches++;
2714 continue;
2715 }
2716
2717 /* Add other packets to a to-do list. */
b0f7b9b5 2718 miss = flow_miss_create(&todo, &flow, fitness,
e84173dc 2719 upcall->key, upcall->key_len, initial_tci);
501f8d1f
BP
2720 list_push_back(&miss->packets, &upcall->packet->list_node);
2721 }
2722
2723 /* Process each element in the to-do list, constructing the set of
2724 * operations to batch. */
2725 n_ops = 0;
2726 HMAP_FOR_EACH_SAFE (miss, next_miss, hmap_node, &todo) {
2727 handle_flow_miss(ofproto, miss, flow_miss_ops, &n_ops);
2728 ofpbuf_list_delete(&miss->packets);
2729 hmap_remove(&todo, &miss->hmap_node);
2730 free(miss);
abe529af 2731 }
501f8d1f
BP
2732 assert(n_ops <= ARRAY_SIZE(flow_miss_ops));
2733 hmap_destroy(&todo);
2734
2735 /* Execute batch. */
2736 for (i = 0; i < n_ops; i++) {
2737 dpif_ops[i] = &flow_miss_ops[i].dpif_op;
2738 }
2739 dpif_operate(ofproto->dpif, dpif_ops, n_ops);
2740
2741 /* Free memory and update facets. */
2742 for (i = 0; i < n_ops; i++) {
2743 struct flow_miss_op *op = &flow_miss_ops[i];
2744 struct dpif_execute *execute;
2745 struct dpif_flow_put *put;
2746
2747 switch (op->dpif_op.type) {
2748 case DPIF_OP_EXECUTE:
2749 execute = &op->dpif_op.execute;
b95fc6ba 2750 if (op->subfacet->actions != execute->actions) {
501f8d1f
BP
2751 free((struct nlattr *) execute->actions);
2752 }
2753 ofpbuf_delete((struct ofpbuf *) execute->packet);
2754 break;
abe529af 2755
501f8d1f
BP
2756 case DPIF_OP_FLOW_PUT:
2757 put = &op->dpif_op.flow_put;
2758 if (!put->error) {
b0f7b9b5 2759 op->subfacet->installed = true;
501f8d1f
BP
2760 }
2761 break;
2762 }
2763 }
abe529af
BP
2764}
2765
2766static void
6ff686f2
PS
2767handle_userspace_upcall(struct ofproto_dpif *ofproto,
2768 struct dpif_upcall *upcall)
abe529af 2769{
6ff686f2 2770 struct user_action_cookie cookie;
e84173dc
BP
2771 enum odp_key_fitness fitness;
2772 ovs_be16 initial_tci;
2773 struct flow flow;
abe529af 2774
6ff686f2 2775 memcpy(&cookie, &upcall->userdata, sizeof(cookie));
abe529af 2776
e84173dc
BP
2777 fitness = ofproto_dpif_extract_flow_key(ofproto, upcall->key,
2778 upcall->key_len, &flow,
e2a6ca36 2779 &initial_tci, upcall->packet);
e84173dc 2780 if (fitness == ODP_FIT_ERROR) {
6b17ca5c 2781 ofpbuf_delete(upcall->packet);
e84173dc
BP
2782 return;
2783 }
2784
6ff686f2 2785 if (cookie.type == USER_ACTION_COOKIE_SFLOW) {
abe529af 2786 if (ofproto->sflow) {
e84173dc
BP
2787 dpif_sflow_received(ofproto->sflow, upcall->packet, &flow,
2788 &cookie);
abe529af 2789 }
6ff686f2
PS
2790 } else {
2791 VLOG_WARN_RL(&rl, "invalid user cookie : 0x%"PRIx64, upcall->userdata);
2792 }
29ebe880 2793 ofpbuf_delete(upcall->packet);
6ff686f2
PS
2794}
2795
9b16c439
BP
2796static int
2797handle_upcalls(struct ofproto_dpif *ofproto, unsigned int max_batch)
6ff686f2 2798{
9b16c439
BP
2799 struct dpif_upcall misses[FLOW_MISS_MAX_BATCH];
2800 int n_misses;
2801 int i;
abe529af 2802
9b16c439 2803 assert (max_batch <= FLOW_MISS_MAX_BATCH);
abe529af 2804
9b16c439
BP
2805 n_misses = 0;
2806 for (i = 0; i < max_batch; i++) {
2807 struct dpif_upcall *upcall = &misses[n_misses];
2808 int error;
2809
2810 error = dpif_recv(ofproto->dpif, upcall);
2811 if (error) {
9b16c439
BP
2812 break;
2813 }
2814
2815 switch (upcall->type) {
2816 case DPIF_UC_ACTION:
2817 handle_userspace_upcall(ofproto, upcall);
2818 break;
2819
2820 case DPIF_UC_MISS:
2821 /* Handle it later. */
2822 n_misses++;
2823 break;
2824
2825 case DPIF_N_UC_TYPES:
2826 default:
2827 VLOG_WARN_RL(&rl, "upcall has unexpected type %"PRIu32,
2828 upcall->type);
2829 break;
2830 }
abe529af 2831 }
9b16c439
BP
2832
2833 handle_miss_upcalls(ofproto, misses, n_misses);
2834
2835 return i;
abe529af
BP
2836}
2837\f
2838/* Flow expiration. */
2839
b0f7b9b5 2840static int subfacet_max_idle(const struct ofproto_dpif *);
abe529af
BP
2841static void update_stats(struct ofproto_dpif *);
2842static void rule_expire(struct rule_dpif *);
b0f7b9b5 2843static void expire_subfacets(struct ofproto_dpif *, int dp_max_idle);
abe529af
BP
2844
2845/* This function is called periodically by run(). Its job is to collect
2846 * updates for the flows that have been installed into the datapath, most
2847 * importantly when they last were used, and then use that information to
2848 * expire flows that have not been used recently.
2849 *
2850 * Returns the number of milliseconds after which it should be called again. */
2851static int
2852expire(struct ofproto_dpif *ofproto)
2853{
2854 struct rule_dpif *rule, *next_rule;
0697b5c3 2855 struct classifier *table;
abe529af
BP
2856 int dp_max_idle;
2857
2858 /* Update stats for each flow in the datapath. */
2859 update_stats(ofproto);
2860
b0f7b9b5
BP
2861 /* Expire subfacets that have been idle too long. */
2862 dp_max_idle = subfacet_max_idle(ofproto);
2863 expire_subfacets(ofproto, dp_max_idle);
abe529af
BP
2864
2865 /* Expire OpenFlow flows whose idle_timeout or hard_timeout has passed. */
0697b5c3
BP
2866 OFPROTO_FOR_EACH_TABLE (table, &ofproto->up) {
2867 struct cls_cursor cursor;
2868
2869 cls_cursor_init(&cursor, table, NULL);
2870 CLS_CURSOR_FOR_EACH_SAFE (rule, next_rule, up.cr, &cursor) {
2871 rule_expire(rule);
2872 }
abe529af
BP
2873 }
2874
2875 /* All outstanding data in existing flows has been accounted, so it's a
2876 * good time to do bond rebalancing. */
2877 if (ofproto->has_bonded_bundles) {
2878 struct ofbundle *bundle;
2879
2880 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
2881 if (bundle->bond) {
2882 bond_rebalance(bundle->bond, &ofproto->revalidate_set);
2883 }
2884 }
2885 }
2886
2887 return MIN(dp_max_idle, 1000);
2888}
2889
2890/* Update 'packet_count', 'byte_count', and 'used' members of installed facets.
2891 *
2892 * This function also pushes statistics updates to rules which each facet
2893 * resubmits into. Generally these statistics will be accurate. However, if a
2894 * facet changes the rule it resubmits into at some time in between
2895 * update_stats() runs, it is possible that statistics accrued to the
2896 * old rule will be incorrectly attributed to the new rule. This could be
2897 * avoided by calling update_stats() whenever rules are created or
2898 * deleted. However, the performance impact of making so many calls to the
2899 * datapath do not justify the benefit of having perfectly accurate statistics.
2900 */
2901static void
2902update_stats(struct ofproto_dpif *p)
2903{
2904 const struct dpif_flow_stats *stats;
2905 struct dpif_flow_dump dump;
2906 const struct nlattr *key;
2907 size_t key_len;
2908
2909 dpif_flow_dump_start(&dump, p->dpif);
2910 while (dpif_flow_dump_next(&dump, &key, &key_len, NULL, NULL, &stats)) {
b0f7b9b5 2911 struct subfacet *subfacet;
abe529af 2912
6a542738 2913 subfacet = subfacet_find(p, key, key_len);
b0f7b9b5
BP
2914 if (subfacet && subfacet->installed) {
2915 struct facet *facet = subfacet->facet;
abe529af 2916
b0f7b9b5
BP
2917 if (stats->n_packets >= subfacet->dp_packet_count) {
2918 uint64_t extra = stats->n_packets - subfacet->dp_packet_count;
abe529af
BP
2919 facet->packet_count += extra;
2920 } else {
2921 VLOG_WARN_RL(&rl, "unexpected packet count from the datapath");
2922 }
2923
b0f7b9b5
BP
2924 if (stats->n_bytes >= subfacet->dp_byte_count) {
2925 facet->byte_count += stats->n_bytes - subfacet->dp_byte_count;
abe529af
BP
2926 } else {
2927 VLOG_WARN_RL(&rl, "unexpected byte count from datapath");
2928 }
2929
b0f7b9b5
BP
2930 subfacet->dp_packet_count = stats->n_packets;
2931 subfacet->dp_byte_count = stats->n_bytes;
abe529af 2932
b0f7b9b5 2933 subfacet_update_time(p, subfacet, stats->used);
55af77bb 2934 facet_account(p, facet);
abe529af
BP
2935 facet_push_stats(facet);
2936 } else {
6a542738
PS
2937 if (!VLOG_DROP_WARN(&rl)) {
2938 struct ds s;
2939
2940 ds_init(&s);
2941 odp_flow_key_format(key, key_len, &s);
2942 VLOG_WARN("unexpected flow from datapath %s", ds_cstr(&s));
2943 ds_destroy(&s);
2944 }
2945
2946 COVERAGE_INC(facet_unexpected);
b0f7b9b5
BP
2947 /* There's a flow in the datapath that we know nothing about, or a
2948 * flow that shouldn't be installed but was anyway. Delete it. */
abe529af
BP
2949 dpif_flow_del(p->dpif, key, key_len, NULL);
2950 }
2951 }
2952 dpif_flow_dump_done(&dump);
2953}
2954
2955/* Calculates and returns the number of milliseconds of idle time after which
b0f7b9b5
BP
2956 * subfacets should expire from the datapath. When a subfacet expires, we fold
2957 * its statistics into its facet, and when a facet's last subfacet expires, we
2958 * fold its statistic into its rule. */
abe529af 2959static int
b0f7b9b5 2960subfacet_max_idle(const struct ofproto_dpif *ofproto)
abe529af
BP
2961{
2962 /*
2963 * Idle time histogram.
2964 *
b0f7b9b5
BP
2965 * Most of the time a switch has a relatively small number of subfacets.
2966 * When this is the case we might as well keep statistics for all of them
2967 * in userspace and to cache them in the kernel datapath for performance as
abe529af
BP
2968 * well.
2969 *
b0f7b9b5 2970 * As the number of subfacets increases, the memory required to maintain
abe529af 2971 * statistics about them in userspace and in the kernel becomes
b0f7b9b5
BP
2972 * significant. However, with a large number of subfacets it is likely
2973 * that only a few of them are "heavy hitters" that consume a large amount
2974 * of bandwidth. At this point, only heavy hitters are worth caching in
2975 * the kernel and maintaining in userspaces; other subfacets we can
2976 * discard.
abe529af
BP
2977 *
2978 * The technique used to compute the idle time is to build a histogram with
b0f7b9b5 2979 * N_BUCKETS buckets whose width is BUCKET_WIDTH msecs each. Each subfacet
abe529af
BP
2980 * that is installed in the kernel gets dropped in the appropriate bucket.
2981 * After the histogram has been built, we compute the cutoff so that only
b0f7b9b5 2982 * the most-recently-used 1% of subfacets (but at least
084f5290 2983 * ofproto->up.flow_eviction_threshold flows) are kept cached. At least
b0f7b9b5
BP
2984 * the most-recently-used bucket of subfacets is kept, so actually an
2985 * arbitrary number of subfacets can be kept in any given expiration run
084f5290
SH
2986 * (though the next run will delete most of those unless they receive
2987 * additional data).
abe529af 2988 *
b0f7b9b5
BP
2989 * This requires a second pass through the subfacets, in addition to the
2990 * pass made by update_stats(), because the former function never looks at
2991 * uninstallable subfacets.
abe529af
BP
2992 */
2993 enum { BUCKET_WIDTH = ROUND_UP(100, TIME_UPDATE_INTERVAL) };
2994 enum { N_BUCKETS = 5000 / BUCKET_WIDTH };
2995 int buckets[N_BUCKETS] = { 0 };
f11c1ef4 2996 int total, subtotal, bucket;
b0f7b9b5 2997 struct subfacet *subfacet;
abe529af
BP
2998 long long int now;
2999 int i;
3000
b0f7b9b5 3001 total = hmap_count(&ofproto->subfacets);
084f5290 3002 if (total <= ofproto->up.flow_eviction_threshold) {
abe529af
BP
3003 return N_BUCKETS * BUCKET_WIDTH;
3004 }
3005
3006 /* Build histogram. */
3007 now = time_msec();
b0f7b9b5
BP
3008 HMAP_FOR_EACH (subfacet, hmap_node, &ofproto->subfacets) {
3009 long long int idle = now - subfacet->used;
abe529af
BP
3010 int bucket = (idle <= 0 ? 0
3011 : idle >= BUCKET_WIDTH * N_BUCKETS ? N_BUCKETS - 1
3012 : (unsigned int) idle / BUCKET_WIDTH);
3013 buckets[bucket]++;
3014 }
3015
3016 /* Find the first bucket whose flows should be expired. */
f11c1ef4
SH
3017 subtotal = bucket = 0;
3018 do {
3019 subtotal += buckets[bucket++];
084f5290
SH
3020 } while (bucket < N_BUCKETS &&
3021 subtotal < MAX(ofproto->up.flow_eviction_threshold, total / 100));
abe529af
BP
3022
3023 if (VLOG_IS_DBG_ENABLED()) {
3024 struct ds s;
3025
3026 ds_init(&s);
3027 ds_put_cstr(&s, "keep");
3028 for (i = 0; i < N_BUCKETS; i++) {
3029 if (i == bucket) {
3030 ds_put_cstr(&s, ", drop");
3031 }
3032 if (buckets[i]) {
3033 ds_put_format(&s, " %d:%d", i * BUCKET_WIDTH, buckets[i]);
3034 }
3035 }
3036 VLOG_INFO("%s: %s (msec:count)", ofproto->up.name, ds_cstr(&s));
3037 ds_destroy(&s);
3038 }
3039
3040 return bucket * BUCKET_WIDTH;
3041}
3042
abe529af 3043static void
b0f7b9b5 3044expire_subfacets(struct ofproto_dpif *ofproto, int dp_max_idle)
abe529af
BP
3045{
3046 long long int cutoff = time_msec() - dp_max_idle;
b0f7b9b5 3047 struct subfacet *subfacet, *next_subfacet;
abe529af 3048
b0f7b9b5
BP
3049 HMAP_FOR_EACH_SAFE (subfacet, next_subfacet, hmap_node,
3050 &ofproto->subfacets) {
3051 if (subfacet->used < cutoff) {
3052 subfacet_destroy(ofproto, subfacet);
abe529af
BP
3053 }
3054 }
3055}
3056
3057/* If 'rule' is an OpenFlow rule, that has expired according to OpenFlow rules,
3058 * then delete it entirely. */
3059static void
3060rule_expire(struct rule_dpif *rule)
3061{
3062 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3063 struct facet *facet, *next_facet;
3064 long long int now;
3065 uint8_t reason;
3066
3067 /* Has 'rule' expired? */
3068 now = time_msec();
3069 if (rule->up.hard_timeout
308881af 3070 && now > rule->up.modified + rule->up.hard_timeout * 1000) {
abe529af
BP
3071 reason = OFPRR_HARD_TIMEOUT;
3072 } else if (rule->up.idle_timeout && list_is_empty(&rule->facets)
3073 && now > rule->used + rule->up.idle_timeout * 1000) {
3074 reason = OFPRR_IDLE_TIMEOUT;
3075 } else {
3076 return;
3077 }
3078
3079 COVERAGE_INC(ofproto_dpif_expired);
3080
3081 /* Update stats. (This is a no-op if the rule expired due to an idle
3082 * timeout, because that only happens when the rule has no facets left.) */
3083 LIST_FOR_EACH_SAFE (facet, next_facet, list_node, &rule->facets) {
3084 facet_remove(ofproto, facet);
3085 }
3086
3087 /* Get rid of the rule. */
3088 ofproto_rule_expire(&rule->up, reason);
3089}
3090\f
3091/* Facets. */
3092
f3827897 3093/* Creates and returns a new facet owned by 'rule', given a 'flow'.
abe529af
BP
3094 *
3095 * The caller must already have determined that no facet with an identical
3096 * 'flow' exists in 'ofproto' and that 'flow' is the best match for 'rule' in
f3827897
BP
3097 * the ofproto's classifier table.
3098 *
b0f7b9b5
BP
3099 * The facet will initially have no subfacets. The caller should create (at
3100 * least) one subfacet with subfacet_create(). */
abe529af 3101static struct facet *
f3827897 3102facet_create(struct rule_dpif *rule, const struct flow *flow)
abe529af
BP
3103{
3104 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3105 struct facet *facet;
3106
3107 facet = xzalloc(sizeof *facet);
3108 facet->used = time_msec();
3109 hmap_insert(&ofproto->facets, &facet->hmap_node, flow_hash(flow, 0));
3110 list_push_back(&rule->facets, &facet->list_node);
3111 facet->rule = rule;
3112 facet->flow = *flow;
b0f7b9b5 3113 list_init(&facet->subfacets);
abe529af
BP
3114 netflow_flow_init(&facet->nf_flow);
3115 netflow_flow_update_time(ofproto->netflow, &facet->nf_flow, facet->used);
3116
abe529af
BP
3117 return facet;
3118}
3119
3120static void
3121facet_free(struct facet *facet)
3122{
abe529af
BP
3123 free(facet);
3124}
3125
3d9e05f8
BP
3126/* Executes, within 'ofproto', the 'n_actions' actions in 'actions' on
3127 * 'packet', which arrived on 'in_port'.
3128 *
3129 * Takes ownership of 'packet'. */
3130static bool
3131execute_odp_actions(struct ofproto_dpif *ofproto, const struct flow *flow,
3132 const struct nlattr *odp_actions, size_t actions_len,
3133 struct ofpbuf *packet)
3134{
3135 struct odputil_keybuf keybuf;
3136 struct ofpbuf key;
3137 int error;
3138
6ff686f2
PS
3139 ofpbuf_use_stack(&key, &keybuf, sizeof keybuf);
3140 odp_flow_key_from_flow(&key, flow);
80e5eed9 3141
6ff686f2
PS
3142 error = dpif_execute(ofproto->dpif, key.data, key.size,
3143 odp_actions, actions_len, packet);
80e5eed9 3144
6ff686f2
PS
3145 ofpbuf_delete(packet);
3146 return !error;
abe529af
BP
3147}
3148
abe529af
BP
3149/* Remove 'facet' from 'ofproto' and free up the associated memory:
3150 *
3151 * - If 'facet' was installed in the datapath, uninstalls it and updates its
b0f7b9b5 3152 * rule's statistics, via subfacet_uninstall().
abe529af
BP
3153 *
3154 * - Removes 'facet' from its rule and from ofproto->facets.
3155 */
3156static void
3157facet_remove(struct ofproto_dpif *ofproto, struct facet *facet)
3158{
b0f7b9b5
BP
3159 struct subfacet *subfacet, *next_subfacet;
3160
551a2f6c
BP
3161 assert(!list_is_empty(&facet->subfacets));
3162
3163 /* First uninstall all of the subfacets to get final statistics. */
3164 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
3165 subfacet_uninstall(ofproto, subfacet);
3166 }
3167
3168 /* Flush the final stats to the rule.
3169 *
3170 * This might require us to have at least one subfacet around so that we
3171 * can use its actions for accounting in facet_account(), which is why we
3172 * have uninstalled but not yet destroyed the subfacets. */
3173 facet_flush_stats(ofproto, facet);
3174
3175 /* Now we're really all done so destroy everything. */
b0f7b9b5
BP
3176 LIST_FOR_EACH_SAFE (subfacet, next_subfacet, list_node,
3177 &facet->subfacets) {
3178 subfacet_destroy__(ofproto, subfacet);
3179 }
abe529af
BP
3180 hmap_remove(&ofproto->facets, &facet->hmap_node);
3181 list_remove(&facet->list_node);
3182 facet_free(facet);
3183}
3184
abe529af 3185static void
55af77bb 3186facet_account(struct ofproto_dpif *ofproto, struct facet *facet)
abe529af 3187{
55af77bb 3188 uint64_t n_bytes;
b95fc6ba 3189 struct subfacet *subfacet;
abe529af 3190 const struct nlattr *a;
abe529af 3191 unsigned int left;
d78be13b 3192 ovs_be16 vlan_tci;
abe529af 3193
55af77bb 3194 if (facet->byte_count <= facet->accounted_bytes) {
abe529af
BP
3195 return;
3196 }
55af77bb
EJ
3197 n_bytes = facet->byte_count - facet->accounted_bytes;
3198 facet->accounted_bytes = facet->byte_count;
abe529af 3199
75a75043 3200 /* Feed information from the active flows back into the learning table to
abe529af
BP
3201 * ensure that table is always in sync with what is actually flowing
3202 * through the datapath. */
75a75043
BP
3203 if (facet->has_learn || facet->has_normal) {
3204 struct action_xlate_ctx ctx;
abe529af 3205
e84173dc 3206 action_xlate_ctx_init(&ctx, ofproto, &facet->flow,
54834960
EJ
3207 facet->flow.vlan_tci,
3208 facet->rule->up.flow_cookie, NULL);
75a75043
BP
3209 ctx.may_learn = true;
3210 ofpbuf_delete(xlate_actions(&ctx, facet->rule->up.actions,
3211 facet->rule->up.n_actions));
3212 }
abe529af 3213
75a75043 3214 if (!facet->has_normal || !ofproto->has_bonded_bundles) {
abe529af
BP
3215 return;
3216 }
d78be13b
BP
3217
3218 /* This loop feeds byte counters to bond_account() for rebalancing to use
3219 * as a basis. We also need to track the actual VLAN on which the packet
3220 * is going to be sent to ensure that it matches the one passed to
3221 * bond_choose_output_slave(). (Otherwise, we will account to the wrong
b95fc6ba
BP
3222 * hash bucket.)
3223 *
3224 * We use the actions from an arbitrary subfacet because they should all
3225 * be equally valid for our purpose. */
3226 subfacet = CONTAINER_OF(list_front(&facet->subfacets),
3227 struct subfacet, list_node);
d78be13b 3228 vlan_tci = facet->flow.vlan_tci;
b95fc6ba
BP
3229 NL_ATTR_FOR_EACH_UNSAFE (a, left,
3230 subfacet->actions, subfacet->actions_len) {
fea393b1 3231 const struct ovs_action_push_vlan *vlan;
d78be13b 3232 struct ofport_dpif *port;
abe529af 3233
d78be13b 3234 switch (nl_attr_type(a)) {
df2c07f4 3235 case OVS_ACTION_ATTR_OUTPUT:
abe529af
BP
3236 port = get_odp_port(ofproto, nl_attr_get_u32(a));
3237 if (port && port->bundle && port->bundle->bond) {
d78be13b 3238 bond_account(port->bundle->bond, &facet->flow,
dc155bff 3239 vlan_tci_to_vid(vlan_tci), n_bytes);
abe529af 3240 }
d78be13b
BP
3241 break;
3242
fea393b1
BP
3243 case OVS_ACTION_ATTR_POP_VLAN:
3244 vlan_tci = htons(0);
d78be13b
BP
3245 break;
3246
fea393b1
BP
3247 case OVS_ACTION_ATTR_PUSH_VLAN:
3248 vlan = nl_attr_get(a);
3249 vlan_tci = vlan->vlan_tci;
d78be13b 3250 break;
abe529af
BP
3251 }
3252 }
3253}
3254
abe529af
BP
3255/* Returns true if the only action for 'facet' is to send to the controller.
3256 * (We don't report NetFlow expiration messages for such facets because they
3257 * are just part of the control logic for the network, not real traffic). */
3258static bool
3259facet_is_controller_flow(struct facet *facet)
3260{
3261 return (facet
3262 && facet->rule->up.n_actions == 1
3263 && action_outputs_to_port(&facet->rule->up.actions[0],
3264 htons(OFPP_CONTROLLER)));
3265}
3266
3267/* Folds all of 'facet''s statistics into its rule. Also updates the
3268 * accounting ofhook and emits a NetFlow expiration if appropriate. All of
3269 * 'facet''s statistics in the datapath should have been zeroed and folded into
3270 * its packet and byte counts before this function is called. */
3271static void
3272facet_flush_stats(struct ofproto_dpif *ofproto, struct facet *facet)
3273{
b0f7b9b5
BP
3274 struct subfacet *subfacet;
3275
3276 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
3277 assert(!subfacet->dp_byte_count);
3278 assert(!subfacet->dp_packet_count);
3279 }
abe529af
BP
3280
3281 facet_push_stats(facet);
55af77bb 3282 facet_account(ofproto, facet);
abe529af
BP
3283
3284 if (ofproto->netflow && !facet_is_controller_flow(facet)) {
3285 struct ofexpired expired;
3286 expired.flow = facet->flow;
3287 expired.packet_count = facet->packet_count;
3288 expired.byte_count = facet->byte_count;
3289 expired.used = facet->used;
3290 netflow_expire(ofproto->netflow, &facet->nf_flow, &expired);
3291 }
3292
3293 facet->rule->packet_count += facet->packet_count;
3294 facet->rule->byte_count += facet->byte_count;
3295
3296 /* Reset counters to prevent double counting if 'facet' ever gets
3297 * reinstalled. */
bbb5d219 3298 facet_reset_counters(facet);
abe529af
BP
3299
3300 netflow_flow_clear(&facet->nf_flow);
3301}
3302
3303/* Searches 'ofproto''s table of facets for one exactly equal to 'flow'.
3304 * Returns it if found, otherwise a null pointer.
3305 *
3306 * The returned facet might need revalidation; use facet_lookup_valid()
3307 * instead if that is important. */
3308static struct facet *
3309facet_find(struct ofproto_dpif *ofproto, const struct flow *flow)
3310{
3311 struct facet *facet;
3312
3313 HMAP_FOR_EACH_WITH_HASH (facet, hmap_node, flow_hash(flow, 0),
3314 &ofproto->facets) {
3315 if (flow_equal(flow, &facet->flow)) {
3316 return facet;
3317 }
3318 }
3319
3320 return NULL;
3321}
3322
3323/* Searches 'ofproto''s table of facets for one exactly equal to 'flow'.
3324 * Returns it if found, otherwise a null pointer.
3325 *
3326 * The returned facet is guaranteed to be valid. */
3327static struct facet *
3328facet_lookup_valid(struct ofproto_dpif *ofproto, const struct flow *flow)
3329{
3330 struct facet *facet = facet_find(ofproto, flow);
3331
3332 /* The facet we found might not be valid, since we could be in need of
3333 * revalidation. If it is not valid, don't return it. */
3334 if (facet
0e4b3771
BP
3335 && (ofproto->need_revalidate
3336 || tag_set_intersects(&ofproto->revalidate_set, facet->tags))
abe529af
BP
3337 && !facet_revalidate(ofproto, facet)) {
3338 COVERAGE_INC(facet_invalidated);
3339 return NULL;
3340 }
3341
3342 return facet;
3343}
3344
3345/* Re-searches 'ofproto''s classifier for a rule matching 'facet':
3346 *
3347 * - If the rule found is different from 'facet''s current rule, moves
3348 * 'facet' to the new rule and recompiles its actions.
3349 *
3350 * - If the rule found is the same as 'facet''s current rule, leaves 'facet'
3351 * where it is and recompiles its actions anyway.
3352 *
3353 * - If there is none, destroys 'facet'.
3354 *
3355 * Returns true if 'facet' still exists, false if it has been destroyed. */
3356static bool
3357facet_revalidate(struct ofproto_dpif *ofproto, struct facet *facet)
3358{
b95fc6ba
BP
3359 struct actions {
3360 struct nlattr *odp_actions;
3361 size_t actions_len;
3362 };
3363 struct actions *new_actions;
3364
abe529af 3365 struct action_xlate_ctx ctx;
abe529af 3366 struct rule_dpif *new_rule;
b0f7b9b5 3367 struct subfacet *subfacet;
abe529af 3368 bool actions_changed;
b95fc6ba 3369 int i;
abe529af
BP
3370
3371 COVERAGE_INC(facet_revalidate);
3372
3373 /* Determine the new rule. */
29901626 3374 new_rule = rule_dpif_lookup(ofproto, &facet->flow, 0);
abe529af
BP
3375 if (!new_rule) {
3376 /* No new rule, so delete the facet. */
3377 facet_remove(ofproto, facet);
3378 return false;
3379 }
3380
df2c07f4 3381 /* Calculate new datapath actions.
abe529af
BP
3382 *
3383 * We do not modify any 'facet' state yet, because we might need to, e.g.,
3384 * emit a NetFlow expiration and, if so, we need to have the old state
3385 * around to properly compose it. */
abe529af 3386
df2c07f4
JP
3387 /* If the datapath actions changed or the installability changed,
3388 * then we need to talk to the datapath. */
b95fc6ba
BP
3389 i = 0;
3390 new_actions = NULL;
3391 memset(&ctx, 0, sizeof ctx);
b0f7b9b5 3392 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
b95fc6ba
BP
3393 struct ofpbuf *odp_actions;
3394 bool should_install;
3395
e84173dc 3396 action_xlate_ctx_init(&ctx, ofproto, &facet->flow,
54834960
EJ
3397 subfacet->initial_tci, new_rule->up.flow_cookie,
3398 NULL);
b95fc6ba
BP
3399 odp_actions = xlate_actions(&ctx, new_rule->up.actions,
3400 new_rule->up.n_actions);
3401 actions_changed = (subfacet->actions_len != odp_actions->size
3402 || memcmp(subfacet->actions, odp_actions->data,
3403 subfacet->actions_len));
3404
3405 should_install = (ctx.may_set_up_flow
3406 && subfacet->key_fitness != ODP_FIT_TOO_LITTLE);
b0f7b9b5
BP
3407 if (actions_changed || should_install != subfacet->installed) {
3408 if (should_install) {
3409 struct dpif_flow_stats stats;
3410
3411 subfacet_install(ofproto, subfacet,
3412 odp_actions->data, odp_actions->size, &stats);
3413 subfacet_update_stats(ofproto, subfacet, &stats);
3414 } else {
3415 subfacet_uninstall(ofproto, subfacet);
3416 }
b95fc6ba
BP
3417
3418 if (!new_actions) {
3419 new_actions = xcalloc(list_size(&facet->subfacets),
3420 sizeof *new_actions);
3421 }
3422 new_actions[i].odp_actions = xmemdup(odp_actions->data,
3423 odp_actions->size);
3424 new_actions[i].actions_len = odp_actions->size;
abe529af 3425 }
b95fc6ba
BP
3426
3427 ofpbuf_delete(odp_actions);
3428 i++;
b0f7b9b5 3429 }
b95fc6ba 3430 if (new_actions) {
abe529af
BP
3431 facet_flush_stats(ofproto, facet);
3432 }
3433
3434 /* Update 'facet' now that we've taken care of all the old state. */
3435 facet->tags = ctx.tags;
3436 facet->nf_flow.output_iface = ctx.nf_output_iface;
3437 facet->may_install = ctx.may_set_up_flow;
75a75043
BP
3438 facet->has_learn = ctx.has_learn;
3439 facet->has_normal = ctx.has_normal;
9d24de3b 3440 facet->mirrors = ctx.mirrors;
b95fc6ba
BP
3441 if (new_actions) {
3442 i = 0;
3443 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
3444 if (new_actions[i].odp_actions) {
3445 free(subfacet->actions);
3446 subfacet->actions = new_actions[i].odp_actions;
3447 subfacet->actions_len = new_actions[i].actions_len;
3448 }
3449 i++;
3450 }
3451 free(new_actions);
abe529af
BP
3452 }
3453 if (facet->rule != new_rule) {
3454 COVERAGE_INC(facet_changed_rule);
3455 list_remove(&facet->list_node);
3456 list_push_back(&new_rule->facets, &facet->list_node);
3457 facet->rule = new_rule;
3458 facet->used = new_rule->up.created;
9d24de3b 3459 facet->prev_used = facet->used;
abe529af
BP
3460 }
3461
abe529af
BP
3462 return true;
3463}
3464
3465/* Updates 'facet''s used time. Caller is responsible for calling
3466 * facet_push_stats() to update the flows which 'facet' resubmits into. */
3467static void
3468facet_update_time(struct ofproto_dpif *ofproto, struct facet *facet,
3469 long long int used)
3470{
3471 if (used > facet->used) {
3472 facet->used = used;
3473 if (used > facet->rule->used) {
3474 facet->rule->used = used;
3475 }
3476 netflow_flow_update_time(ofproto->netflow, &facet->nf_flow, used);
3477 }
3478}
3479
bbb5d219
EJ
3480static void
3481facet_reset_counters(struct facet *facet)
3482{
3483 facet->packet_count = 0;
3484 facet->byte_count = 0;
9d24de3b
JP
3485 facet->prev_packet_count = 0;
3486 facet->prev_byte_count = 0;
bbb5d219
EJ
3487 facet->accounted_bytes = 0;
3488}
3489
abe529af
BP
3490static void
3491facet_push_stats(struct facet *facet)
3492{
9d24de3b 3493 uint64_t new_packets, new_bytes;
abe529af 3494
9d24de3b
JP
3495 assert(facet->packet_count >= facet->prev_packet_count);
3496 assert(facet->byte_count >= facet->prev_byte_count);
3497 assert(facet->used >= facet->prev_used);
abe529af 3498
9d24de3b
JP
3499 new_packets = facet->packet_count - facet->prev_packet_count;
3500 new_bytes = facet->byte_count - facet->prev_byte_count;
abe529af 3501
9d24de3b
JP
3502 if (new_packets || new_bytes || facet->used > facet->prev_used) {
3503 facet->prev_packet_count = facet->packet_count;
3504 facet->prev_byte_count = facet->byte_count;
3505 facet->prev_used = facet->used;
abe529af
BP
3506
3507 flow_push_stats(facet->rule, &facet->flow,
9d24de3b
JP
3508 new_packets, new_bytes, facet->used);
3509
3510 update_mirror_stats(ofproto_dpif_cast(facet->rule->up.ofproto),
3511 facet->mirrors, new_packets, new_bytes);
abe529af
BP
3512 }
3513}
3514
3515struct ofproto_push {
3516 struct action_xlate_ctx ctx;
3517 uint64_t packets;
3518 uint64_t bytes;
3519 long long int used;
3520};
3521
3522static void
3523push_resubmit(struct action_xlate_ctx *ctx, struct rule_dpif *rule)
3524{
3525 struct ofproto_push *push = CONTAINER_OF(ctx, struct ofproto_push, ctx);
3526
3527 if (rule) {
3528 rule->packet_count += push->packets;
3529 rule->byte_count += push->bytes;
3530 rule->used = MAX(push->used, rule->used);
3531 }
3532}
3533
3534/* Pushes flow statistics to the rules which 'flow' resubmits into given
9d24de3b 3535 * 'rule''s actions and mirrors. */
abe529af
BP
3536static void
3537flow_push_stats(const struct rule_dpif *rule,
59d0f2c8 3538 const struct flow *flow, uint64_t packets, uint64_t bytes,
abe529af
BP
3539 long long int used)
3540{
3541 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3542 struct ofproto_push push;
3543
3544 push.packets = packets;
3545 push.bytes = bytes;
3546 push.used = used;
3547
54834960
EJ
3548 action_xlate_ctx_init(&push.ctx, ofproto, flow, flow->vlan_tci,
3549 rule->up.flow_cookie, NULL);
abe529af
BP
3550 push.ctx.resubmit_hook = push_resubmit;
3551 ofpbuf_delete(xlate_actions(&push.ctx,
3552 rule->up.actions, rule->up.n_actions));
3553}
3554\f
b0f7b9b5
BP
3555/* Subfacets. */
3556
3557static struct subfacet *
3558subfacet_find__(struct ofproto_dpif *ofproto,
3559 const struct nlattr *key, size_t key_len, uint32_t key_hash,
3560 const struct flow *flow)
3561{
3562 struct subfacet *subfacet;
3563
3564 HMAP_FOR_EACH_WITH_HASH (subfacet, hmap_node, key_hash,
3565 &ofproto->subfacets) {
3566 if (subfacet->key
3567 ? (subfacet->key_len == key_len
3568 && !memcmp(key, subfacet->key, key_len))
3569 : flow_equal(flow, &subfacet->facet->flow)) {
3570 return subfacet;
3571 }
3572 }
3573
3574 return NULL;
3575}
3576
3577/* Searches 'facet' (within 'ofproto') for a subfacet with the specified
3578 * 'key_fitness', 'key', and 'key_len'. Returns the existing subfacet if
b95fc6ba
BP
3579 * there is one, otherwise creates and returns a new subfacet.
3580 *
3581 * If the returned subfacet is new, then subfacet->actions will be NULL, in
3582 * which case the caller must populate the actions with
3583 * subfacet_make_actions(). */
b0f7b9b5
BP
3584static struct subfacet *
3585subfacet_create(struct ofproto_dpif *ofproto, struct facet *facet,
3586 enum odp_key_fitness key_fitness,
e84173dc 3587 const struct nlattr *key, size_t key_len, ovs_be16 initial_tci)
b0f7b9b5
BP
3588{
3589 uint32_t key_hash = odp_flow_key_hash(key, key_len);
3590 struct subfacet *subfacet;
3591
3592 subfacet = subfacet_find__(ofproto, key, key_len, key_hash, &facet->flow);
3593 if (subfacet) {
3594 if (subfacet->facet == facet) {
3595 return subfacet;
3596 }
3597
3598 /* This shouldn't happen. */
3599 VLOG_ERR_RL(&rl, "subfacet with wrong facet");
3600 subfacet_destroy(ofproto, subfacet);
3601 }
3602
3603 subfacet = xzalloc(sizeof *subfacet);
3604 hmap_insert(&ofproto->subfacets, &subfacet->hmap_node, key_hash);
3605 list_push_back(&facet->subfacets, &subfacet->list_node);
3606 subfacet->facet = facet;
3607 subfacet->used = time_msec();
3608 subfacet->key_fitness = key_fitness;
3609 if (key_fitness != ODP_FIT_PERFECT) {
3610 subfacet->key = xmemdup(key, key_len);
3611 subfacet->key_len = key_len;
3612 }
3613 subfacet->installed = false;
e84173dc 3614 subfacet->initial_tci = initial_tci;
b0f7b9b5
BP
3615
3616 return subfacet;
3617}
3618
3619/* Searches 'ofproto' for a subfacet with the given 'key', 'key_len', and
3620 * 'flow'. Returns the subfacet if one exists, otherwise NULL. */
3621static struct subfacet *
3622subfacet_find(struct ofproto_dpif *ofproto,
6a542738 3623 const struct nlattr *key, size_t key_len)
b0f7b9b5
BP
3624{
3625 uint32_t key_hash = odp_flow_key_hash(key, key_len);
6a542738
PS
3626 enum odp_key_fitness fitness;
3627 struct flow flow;
3628
3629 fitness = odp_flow_key_to_flow(key, key_len, &flow);
3630 if (fitness == ODP_FIT_ERROR) {
3631 return NULL;
3632 }
b0f7b9b5 3633
6a542738 3634 return subfacet_find__(ofproto, key, key_len, key_hash, &flow);
b0f7b9b5
BP
3635}
3636
3637/* Uninstalls 'subfacet' from the datapath, if it is installed, removes it from
3638 * its facet within 'ofproto', and frees it. */
3639static void
3640subfacet_destroy__(struct ofproto_dpif *ofproto, struct subfacet *subfacet)
3641{
3642 subfacet_uninstall(ofproto, subfacet);
3643 hmap_remove(&ofproto->subfacets, &subfacet->hmap_node);
3644 list_remove(&subfacet->list_node);
3645 free(subfacet->key);
b95fc6ba 3646 free(subfacet->actions);
b0f7b9b5
BP
3647 free(subfacet);
3648}
3649
3650/* Destroys 'subfacet', as with subfacet_destroy__(), and then if this was the
3651 * last remaining subfacet in its facet destroys the facet too. */
3652static void
3653subfacet_destroy(struct ofproto_dpif *ofproto, struct subfacet *subfacet)
3654{
3655 struct facet *facet = subfacet->facet;
3656
551a2f6c
BP
3657 if (list_is_singleton(&facet->subfacets)) {
3658 /* facet_remove() needs at least one subfacet (it will remove it). */
b0f7b9b5 3659 facet_remove(ofproto, facet);
551a2f6c
BP
3660 } else {
3661 subfacet_destroy__(ofproto, subfacet);
b0f7b9b5
BP
3662 }
3663}
3664
3665/* Initializes 'key' with the sequence of OVS_KEY_ATTR_* Netlink attributes
3666 * that can be used to refer to 'subfacet'. The caller must provide 'keybuf'
3667 * for use as temporary storage. */
3668static void
3669subfacet_get_key(struct subfacet *subfacet, struct odputil_keybuf *keybuf,
3670 struct ofpbuf *key)
3671{
3672 if (!subfacet->key) {
3673 ofpbuf_use_stack(key, keybuf, sizeof *keybuf);
3674 odp_flow_key_from_flow(key, &subfacet->facet->flow);
3675 } else {
3676 ofpbuf_use_const(key, subfacet->key, subfacet->key_len);
3677 }
3678}
3679
b95fc6ba
BP
3680/* Composes the datapath actions for 'subfacet' based on its rule's actions. */
3681static void
3682subfacet_make_actions(struct ofproto_dpif *p, struct subfacet *subfacet,
3683 const struct ofpbuf *packet)
3684{
3685 struct facet *facet = subfacet->facet;
3686 const struct rule_dpif *rule = facet->rule;
3687 struct ofpbuf *odp_actions;
3688 struct action_xlate_ctx ctx;
3689
e84173dc 3690 action_xlate_ctx_init(&ctx, p, &facet->flow, subfacet->initial_tci,
54834960 3691 rule->up.flow_cookie, packet);
b95fc6ba
BP
3692 odp_actions = xlate_actions(&ctx, rule->up.actions, rule->up.n_actions);
3693 facet->tags = ctx.tags;
3694 facet->may_install = ctx.may_set_up_flow;
3695 facet->has_learn = ctx.has_learn;
3696 facet->has_normal = ctx.has_normal;
3697 facet->nf_flow.output_iface = ctx.nf_output_iface;
9d24de3b 3698 facet->mirrors = ctx.mirrors;
b95fc6ba
BP
3699
3700 if (subfacet->actions_len != odp_actions->size
3701 || memcmp(subfacet->actions, odp_actions->data, odp_actions->size)) {
3702 free(subfacet->actions);
3703 subfacet->actions_len = odp_actions->size;
3704 subfacet->actions = xmemdup(odp_actions->data, odp_actions->size);
3705 }
3706
3707 ofpbuf_delete(odp_actions);
3708}
3709
b0f7b9b5
BP
3710/* Updates 'subfacet''s datapath flow, setting its actions to 'actions_len'
3711 * bytes of actions in 'actions'. If 'stats' is non-null, statistics counters
3712 * in the datapath will be zeroed and 'stats' will be updated with traffic new
3713 * since 'subfacet' was last updated.
3714 *
3715 * Returns 0 if successful, otherwise a positive errno value. */
3716static int
3717subfacet_install(struct ofproto_dpif *ofproto, struct subfacet *subfacet,
3718 const struct nlattr *actions, size_t actions_len,
3719 struct dpif_flow_stats *stats)
3720{
3721 struct odputil_keybuf keybuf;
3722 enum dpif_flow_put_flags flags;
3723 struct ofpbuf key;
3724 int ret;
3725
3726 flags = DPIF_FP_CREATE | DPIF_FP_MODIFY;
3727 if (stats) {
3728 flags |= DPIF_FP_ZERO_STATS;
3729 }
3730
3731 subfacet_get_key(subfacet, &keybuf, &key);
3732 ret = dpif_flow_put(ofproto->dpif, flags, key.data, key.size,
3733 actions, actions_len, stats);
3734
3735 if (stats) {
3736 subfacet_reset_dp_stats(subfacet, stats);
3737 }
3738
3739 return ret;
3740}
3741
3742/* If 'subfacet' is installed in the datapath, uninstalls it. */
3743static void
3744subfacet_uninstall(struct ofproto_dpif *p, struct subfacet *subfacet)
3745{
3746 if (subfacet->installed) {
3747 struct odputil_keybuf keybuf;
3748 struct dpif_flow_stats stats;
3749 struct ofpbuf key;
3750 int error;
3751
3752 subfacet_get_key(subfacet, &keybuf, &key);
3753 error = dpif_flow_del(p->dpif, key.data, key.size, &stats);
3754 subfacet_reset_dp_stats(subfacet, &stats);
3755 if (!error) {
3756 subfacet_update_stats(p, subfacet, &stats);
3757 }
3758 subfacet->installed = false;
3759 } else {
3760 assert(subfacet->dp_packet_count == 0);
3761 assert(subfacet->dp_byte_count == 0);
3762 }
3763}
3764
3765/* Resets 'subfacet''s datapath statistics counters. This should be called
3766 * when 'subfacet''s statistics are cleared in the datapath. If 'stats' is
3767 * non-null, it should contain the statistics returned by dpif when 'subfacet'
3768 * was reset in the datapath. 'stats' will be modified to include only
3769 * statistics new since 'subfacet' was last updated. */
3770static void
3771subfacet_reset_dp_stats(struct subfacet *subfacet,
3772 struct dpif_flow_stats *stats)
3773{
3774 if (stats
3775 && subfacet->dp_packet_count <= stats->n_packets
3776 && subfacet->dp_byte_count <= stats->n_bytes) {
3777 stats->n_packets -= subfacet->dp_packet_count;
3778 stats->n_bytes -= subfacet->dp_byte_count;
3779 }
3780
3781 subfacet->dp_packet_count = 0;
3782 subfacet->dp_byte_count = 0;
3783}
3784
3785/* Updates 'subfacet''s used time. The caller is responsible for calling
3786 * facet_push_stats() to update the flows which 'subfacet' resubmits into. */
3787static void
3788subfacet_update_time(struct ofproto_dpif *ofproto, struct subfacet *subfacet,
3789 long long int used)
3790{
3791 if (used > subfacet->used) {
3792 subfacet->used = used;
3793 facet_update_time(ofproto, subfacet->facet, used);
3794 }
3795}
3796
3797/* Folds the statistics from 'stats' into the counters in 'subfacet'.
3798 *
3799 * Because of the meaning of a subfacet's counters, it only makes sense to do
3800 * this if 'stats' are not tracked in the datapath, that is, if 'stats'
3801 * represents a packet that was sent by hand or if it represents statistics
3802 * that have been cleared out of the datapath. */
3803static void
3804subfacet_update_stats(struct ofproto_dpif *ofproto, struct subfacet *subfacet,
3805 const struct dpif_flow_stats *stats)
3806{
3807 if (stats->n_packets || stats->used > subfacet->used) {
3808 struct facet *facet = subfacet->facet;
3809
3810 subfacet_update_time(ofproto, subfacet, stats->used);
3811 facet->packet_count += stats->n_packets;
3812 facet->byte_count += stats->n_bytes;
3813 facet_push_stats(facet);
3814 netflow_flow_update_flags(&facet->nf_flow, stats->tcp_flags);
3815 }
3816}
3817\f
abe529af
BP
3818/* Rules. */
3819
3820static struct rule_dpif *
29901626
BP
3821rule_dpif_lookup(struct ofproto_dpif *ofproto, const struct flow *flow,
3822 uint8_t table_id)
abe529af 3823{
7257b535
BP
3824 struct cls_rule *cls_rule;
3825 struct classifier *cls;
3826
9cdaaebe
BP
3827 if (table_id >= N_TABLES) {
3828 return NULL;
3829 }
3830
7257b535 3831 cls = &ofproto->up.tables[table_id];
eadef313 3832 if (flow->nw_frag & FLOW_NW_FRAG_ANY
7257b535
BP
3833 && ofproto->up.frag_handling == OFPC_FRAG_NORMAL) {
3834 /* For OFPC_NORMAL frag_handling, we must pretend that transport ports
3835 * are unavailable. */
3836 struct flow ofpc_normal_flow = *flow;
3837 ofpc_normal_flow.tp_src = htons(0);
3838 ofpc_normal_flow.tp_dst = htons(0);
3839 cls_rule = classifier_lookup(cls, &ofpc_normal_flow);
3840 } else {
3841 cls_rule = classifier_lookup(cls, flow);
3842 }
3843 return rule_dpif_cast(rule_from_cls_rule(cls_rule));
abe529af
BP
3844}
3845
7ee20df1
BP
3846static void
3847complete_operation(struct rule_dpif *rule)
3848{
3849 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3850
54a9cbc9 3851 rule_invalidate(rule);
7ee20df1
BP
3852 if (clogged) {
3853 struct dpif_completion *c = xmalloc(sizeof *c);
3854 c->op = rule->up.pending;
3855 list_push_back(&ofproto->completions, &c->list_node);
3856 } else {
3857 ofoperation_complete(rule->up.pending, 0);
3858 }
3859}
3860
abe529af
BP
3861static struct rule *
3862rule_alloc(void)
3863{
3864 struct rule_dpif *rule = xmalloc(sizeof *rule);
3865 return &rule->up;
3866}
3867
3868static void
3869rule_dealloc(struct rule *rule_)
3870{
3871 struct rule_dpif *rule = rule_dpif_cast(rule_);
3872 free(rule);
3873}
3874
90bf1e07 3875static enum ofperr
abe529af
BP
3876rule_construct(struct rule *rule_)
3877{
3878 struct rule_dpif *rule = rule_dpif_cast(rule_);
3879 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
7ee20df1 3880 struct rule_dpif *victim;
54a9cbc9 3881 uint8_t table_id;
90bf1e07 3882 enum ofperr error;
5bf0e941
BP
3883
3884 error = validate_actions(rule->up.actions, rule->up.n_actions,
3885 &rule->up.cr.flow, ofproto->max_ports);
3886 if (error) {
3887 return error;
3888 }
abe529af
BP
3889
3890 rule->used = rule->up.created;
3891 rule->packet_count = 0;
3892 rule->byte_count = 0;
abe529af 3893
7ee20df1
BP
3894 victim = rule_dpif_cast(ofoperation_get_victim(rule->up.pending));
3895 if (victim && !list_is_empty(&victim->facets)) {
3896 struct facet *facet;
3897
3898 rule->facets = victim->facets;
3899 list_moved(&rule->facets);
3900 LIST_FOR_EACH (facet, list_node, &rule->facets) {
bbb5d219
EJ
3901 /* XXX: We're only clearing our local counters here. It's possible
3902 * that quite a few packets are unaccounted for in the datapath
3903 * statistics. These will be accounted to the new rule instead of
3904 * cleared as required. This could be fixed by clearing out the
3905 * datapath statistics for this facet, but currently it doesn't
3906 * seem worth it. */
3907 facet_reset_counters(facet);
7ee20df1
BP
3908 facet->rule = rule;
3909 }
3910 } else {
3911 /* Must avoid list_moved() in this case. */
3912 list_init(&rule->facets);
3913 }
abe529af 3914
54a9cbc9
BP
3915 table_id = rule->up.table_id;
3916 rule->tag = (victim ? victim->tag
3917 : table_id == 0 ? 0
3918 : rule_calculate_tag(&rule->up.cr.flow, &rule->up.cr.wc,
3919 ofproto->tables[table_id].basis));
3920
7ee20df1 3921 complete_operation(rule);
abe529af
BP
3922 return 0;
3923}
3924
3925static void
3926rule_destruct(struct rule *rule_)
3927{
3928 struct rule_dpif *rule = rule_dpif_cast(rule_);
3929 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3930 struct facet *facet, *next_facet;
3931
abe529af
BP
3932 LIST_FOR_EACH_SAFE (facet, next_facet, list_node, &rule->facets) {
3933 facet_revalidate(ofproto, facet);
3934 }
7ee20df1
BP
3935
3936 complete_operation(rule);
abe529af
BP
3937}
3938
3939static void
3940rule_get_stats(struct rule *rule_, uint64_t *packets, uint64_t *bytes)
3941{
3942 struct rule_dpif *rule = rule_dpif_cast(rule_);
3943 struct facet *facet;
3944
3945 /* Start from historical data for 'rule' itself that are no longer tracked
3946 * in facets. This counts, for example, facets that have expired. */
3947 *packets = rule->packet_count;
3948 *bytes = rule->byte_count;
3949
3950 /* Add any statistics that are tracked by facets. This includes
3951 * statistical data recently updated by ofproto_update_stats() as well as
3952 * stats for packets that were executed "by hand" via dpif_execute(). */
3953 LIST_FOR_EACH (facet, list_node, &rule->facets) {
3954 *packets += facet->packet_count;
3955 *bytes += facet->byte_count;
3956 }
3957}
3958
90bf1e07 3959static enum ofperr
59d0f2c8
BP
3960rule_execute(struct rule *rule_, const struct flow *flow,
3961 struct ofpbuf *packet)
abe529af
BP
3962{
3963 struct rule_dpif *rule = rule_dpif_cast(rule_);
3964 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
3965 struct action_xlate_ctx ctx;
3966 struct ofpbuf *odp_actions;
abe529af
BP
3967 size_t size;
3968
54834960
EJ
3969 action_xlate_ctx_init(&ctx, ofproto, flow, flow->vlan_tci,
3970 rule->up.flow_cookie, packet);
abe529af
BP
3971 odp_actions = xlate_actions(&ctx, rule->up.actions, rule->up.n_actions);
3972 size = packet->size;
3973 if (execute_odp_actions(ofproto, flow, odp_actions->data,
3974 odp_actions->size, packet)) {
3975 rule->used = time_msec();
3976 rule->packet_count++;
3977 rule->byte_count += size;
3978 flow_push_stats(rule, flow, 1, size, rule->used);
3979 }
3980 ofpbuf_delete(odp_actions);
5bf0e941
BP
3981
3982 return 0;
abe529af
BP
3983}
3984
7ee20df1
BP
3985static void
3986rule_modify_actions(struct rule *rule_)
abe529af
BP
3987{
3988 struct rule_dpif *rule = rule_dpif_cast(rule_);
3989 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
90bf1e07 3990 enum ofperr error;
abe529af 3991
7ee20df1
BP
3992 error = validate_actions(rule->up.actions, rule->up.n_actions,
3993 &rule->up.cr.flow, ofproto->max_ports);
3994 if (error) {
3995 ofoperation_complete(rule->up.pending, error);
3996 return;
abe529af 3997 }
7ee20df1
BP
3998
3999 complete_operation(rule);
abe529af
BP
4000}
4001\f
97d6520b 4002/* Sends 'packet' out 'ofport'.
52a90c29 4003 * May modify 'packet'.
abe529af
BP
4004 * Returns 0 if successful, otherwise a positive errno value. */
4005static int
52a90c29 4006send_packet(const struct ofport_dpif *ofport, struct ofpbuf *packet)
abe529af 4007{
97d6520b 4008 const struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport->up.ofproto);
80e5eed9
BP
4009 struct ofpbuf key, odp_actions;
4010 struct odputil_keybuf keybuf;
52a90c29 4011 uint16_t odp_port;
80e5eed9 4012 struct flow flow;
abe529af
BP
4013 int error;
4014
abff858b 4015 flow_extract((struct ofpbuf *) packet, 0, 0, 0, &flow);
52a90c29
BP
4016 odp_port = vsp_realdev_to_vlandev(ofproto, ofport->odp_port,
4017 flow.vlan_tci);
4018 if (odp_port != ofport->odp_port) {
4019 eth_pop_vlan(packet);
4020 flow.vlan_tci = htons(0);
4021 }
4022
80e5eed9
BP
4023 ofpbuf_use_stack(&key, &keybuf, sizeof keybuf);
4024 odp_flow_key_from_flow(&key, &flow);
4025
abe529af 4026 ofpbuf_init(&odp_actions, 32);
6ff686f2
PS
4027 compose_sflow_action(ofproto, &odp_actions, &flow, odp_port);
4028
df2c07f4 4029 nl_msg_put_u32(&odp_actions, OVS_ACTION_ATTR_OUTPUT, odp_port);
80e5eed9
BP
4030 error = dpif_execute(ofproto->dpif,
4031 key.data, key.size,
4032 odp_actions.data, odp_actions.size,
abe529af
BP
4033 packet);
4034 ofpbuf_uninit(&odp_actions);
4035
4036 if (error) {
4037 VLOG_WARN_RL(&rl, "%s: failed to send packet on port %"PRIu32" (%s)",
4038 ofproto->up.name, odp_port, strerror(error));
4039 }
6527c598 4040 ofproto_update_local_port_stats(ofport->up.ofproto, packet->size, 0);
abe529af
BP
4041 return error;
4042}
4043\f
df2c07f4 4044/* OpenFlow to datapath action translation. */
abe529af
BP
4045
4046static void do_xlate_actions(const union ofp_action *in, size_t n_in,
4047 struct action_xlate_ctx *ctx);
4cd78906 4048static void xlate_normal(struct action_xlate_ctx *);
abe529af 4049
98403001
BP
4050static size_t
4051put_userspace_action(const struct ofproto_dpif *ofproto,
4052 struct ofpbuf *odp_actions,
4053 const struct flow *flow,
4054 const struct user_action_cookie *cookie)
4055{
98403001
BP
4056 uint32_t pid;
4057
4058 pid = dpif_port_get_pid(ofproto->dpif,
4059 ofp_port_to_odp_port(flow->in_port));
4060
39db78a0 4061 return odp_put_userspace_action(pid, cookie, odp_actions);
98403001
BP
4062}
4063
6ff686f2
PS
4064/* Compose SAMPLE action for sFlow. */
4065static size_t
4066compose_sflow_action(const struct ofproto_dpif *ofproto,
4067 struct ofpbuf *odp_actions,
4068 const struct flow *flow,
4069 uint32_t odp_port)
4070{
4071 uint32_t port_ifindex;
4072 uint32_t probability;
98403001 4073 struct user_action_cookie cookie;
6ff686f2 4074 size_t sample_offset, actions_offset;
98403001 4075 int cookie_offset, n_output;
6ff686f2
PS
4076
4077 if (!ofproto->sflow || flow->in_port == OFPP_NONE) {
4078 return 0;
4079 }
4080
4081 if (odp_port == OVSP_NONE) {
4082 port_ifindex = 0;
4083 n_output = 0;
4084 } else {
4085 port_ifindex = dpif_sflow_odp_port_to_ifindex(ofproto->sflow, odp_port);
4086 n_output = 1;
4087 }
4088
4089 sample_offset = nl_msg_start_nested(odp_actions, OVS_ACTION_ATTR_SAMPLE);
4090
4091 /* Number of packets out of UINT_MAX to sample. */
4092 probability = dpif_sflow_get_probability(ofproto->sflow);
4093 nl_msg_put_u32(odp_actions, OVS_SAMPLE_ATTR_PROBABILITY, probability);
4094
4095 actions_offset = nl_msg_start_nested(odp_actions, OVS_SAMPLE_ATTR_ACTIONS);
4096
98403001
BP
4097 cookie.type = USER_ACTION_COOKIE_SFLOW;
4098 cookie.data = port_ifindex;
4099 cookie.n_output = n_output;
4100 cookie.vlan_tci = 0;
4101 cookie_offset = put_userspace_action(ofproto, odp_actions, flow, &cookie);
6ff686f2
PS
4102
4103 nl_msg_end_nested(odp_actions, actions_offset);
4104 nl_msg_end_nested(odp_actions, sample_offset);
98403001 4105 return cookie_offset;
6ff686f2
PS
4106}
4107
4108/* SAMPLE action must be first action in any given list of actions.
4109 * At this point we do not have all information required to build it. So try to
4110 * build sample action as complete as possible. */
4111static void
4112add_sflow_action(struct action_xlate_ctx *ctx)
4113{
4114 ctx->user_cookie_offset = compose_sflow_action(ctx->ofproto,
4115 ctx->odp_actions,
4116 &ctx->flow, OVSP_NONE);
4117 ctx->sflow_odp_port = 0;
4118 ctx->sflow_n_outputs = 0;
4119}
4120
4121/* Fix SAMPLE action according to data collected while composing ODP actions.
4122 * We need to fix SAMPLE actions OVS_SAMPLE_ATTR_ACTIONS attribute, i.e. nested
4123 * USERSPACE action's user-cookie which is required for sflow. */
4124static void
4125fix_sflow_action(struct action_xlate_ctx *ctx)
4126{
4127 const struct flow *base = &ctx->base_flow;
4128 struct user_action_cookie *cookie;
4129
4130 if (!ctx->user_cookie_offset) {
4131 return;
4132 }
4133
4134 cookie = ofpbuf_at(ctx->odp_actions, ctx->user_cookie_offset,
4135 sizeof(*cookie));
4136 assert(cookie != NULL);
4137 assert(cookie->type == USER_ACTION_COOKIE_SFLOW);
4138
4139 if (ctx->sflow_n_outputs) {
4140 cookie->data = dpif_sflow_odp_port_to_ifindex(ctx->ofproto->sflow,
4141 ctx->sflow_odp_port);
4142 }
4143 if (ctx->sflow_n_outputs >= 255) {
4144 cookie->n_output = 255;
4145 } else {
4146 cookie->n_output = ctx->sflow_n_outputs;
4147 }
4148 cookie->vlan_tci = base->vlan_tci;
4149}
4150
6ff686f2 4151static void
81b1afb1
EJ
4152compose_output_action__(struct action_xlate_ctx *ctx, uint16_t ofp_port,
4153 bool check_stp)
6ff686f2 4154{
d59906fb 4155 const struct ofport_dpif *ofport = get_ofp_port(ctx->ofproto, ofp_port);
5e48dc2b 4156 uint16_t odp_port = ofp_port_to_odp_port(ofp_port);
52a90c29 4157 ovs_be16 flow_vlan_tci = ctx->flow.vlan_tci;
8b36f51e 4158 uint8_t flow_nw_tos = ctx->flow.nw_tos;
52a90c29 4159 uint16_t out_port;
d59906fb 4160
81b1afb1 4161 if (ofport) {
8b36f51e
EJ
4162 struct priority_to_dscp *pdscp;
4163
81b1afb1
EJ
4164 if (ofport->up.opp.config & htonl(OFPPC_NO_FWD)
4165 || (check_stp && !stp_forward_in_state(ofport->stp_state))) {
4166 return;
4167 }
8b36f51e 4168
deedf7e7 4169 pdscp = get_priority(ofport, ctx->flow.skb_priority);
8b36f51e
EJ
4170 if (pdscp) {
4171 ctx->flow.nw_tos &= ~IP_DSCP_MASK;
4172 ctx->flow.nw_tos |= pdscp->dscp;
4173 }
81b1afb1
EJ
4174 } else {
4175 /* We may not have an ofport record for this port, but it doesn't hurt
4176 * to allow forwarding to it anyhow. Maybe such a port will appear
4177 * later and we're pre-populating the flow table. */
d59906fb
EJ
4178 }
4179
52a90c29
BP
4180 out_port = vsp_realdev_to_vlandev(ctx->ofproto, odp_port,
4181 ctx->flow.vlan_tci);
4182 if (out_port != odp_port) {
4183 ctx->flow.vlan_tci = htons(0);
4184 }
5bbda0aa 4185 commit_odp_actions(&ctx->flow, &ctx->base_flow, ctx->odp_actions);
52a90c29
BP
4186 nl_msg_put_u32(ctx->odp_actions, OVS_ACTION_ATTR_OUTPUT, out_port);
4187
6ff686f2
PS
4188 ctx->sflow_odp_port = odp_port;
4189 ctx->sflow_n_outputs++;
81b1afb1 4190 ctx->nf_output_iface = ofp_port;
52a90c29 4191 ctx->flow.vlan_tci = flow_vlan_tci;
8b36f51e 4192 ctx->flow.nw_tos = flow_nw_tos;
6ff686f2
PS
4193}
4194
abe529af 4195static void
5e48dc2b 4196compose_output_action(struct action_xlate_ctx *ctx, uint16_t ofp_port)
abe529af 4197{
81b1afb1 4198 compose_output_action__(ctx, ofp_port, true);
abe529af
BP
4199}
4200
4201static void
29901626
BP
4202xlate_table_action(struct action_xlate_ctx *ctx,
4203 uint16_t in_port, uint8_t table_id)
abe529af
BP
4204{
4205 if (ctx->recurse < MAX_RESUBMIT_RECURSION) {
54a9cbc9 4206 struct ofproto_dpif *ofproto = ctx->ofproto;
abe529af
BP
4207 struct rule_dpif *rule;
4208 uint16_t old_in_port;
29901626
BP
4209 uint8_t old_table_id;
4210
4211 old_table_id = ctx->table_id;
4212 ctx->table_id = table_id;
abe529af 4213
54a9cbc9 4214 /* Look up a flow with 'in_port' as the input port. */
abe529af
BP
4215 old_in_port = ctx->flow.in_port;
4216 ctx->flow.in_port = in_port;
54a9cbc9
BP
4217 rule = rule_dpif_lookup(ofproto, &ctx->flow, table_id);
4218
4219 /* Tag the flow. */
4220 if (table_id > 0 && table_id < N_TABLES) {
4221 struct table_dpif *table = &ofproto->tables[table_id];
4222 if (table->other_table) {
4223 ctx->tags |= (rule
4224 ? rule->tag
4225 : rule_calculate_tag(&ctx->flow,
4226 &table->other_table->wc,
4227 table->basis));
4228 }
4229 }
4230
4231 /* Restore the original input port. Otherwise OFPP_NORMAL and
4232 * OFPP_IN_PORT will have surprising behavior. */
abe529af
BP
4233 ctx->flow.in_port = old_in_port;
4234
4235 if (ctx->resubmit_hook) {
4236 ctx->resubmit_hook(ctx, rule);
4237 }
4238
4239 if (rule) {
54834960
EJ
4240 ovs_be64 old_cookie = ctx->cookie;
4241
abe529af 4242 ctx->recurse++;
54834960 4243 ctx->cookie = rule->up.flow_cookie;
abe529af 4244 do_xlate_actions(rule->up.actions, rule->up.n_actions, ctx);
54834960 4245 ctx->cookie = old_cookie;
abe529af
BP
4246 ctx->recurse--;
4247 }
29901626
BP
4248
4249 ctx->table_id = old_table_id;
abe529af
BP
4250 } else {
4251 static struct vlog_rate_limit recurse_rl = VLOG_RATE_LIMIT_INIT(1, 1);
4252
29901626 4253 VLOG_ERR_RL(&recurse_rl, "resubmit actions recursed over %d times",
abe529af
BP
4254 MAX_RESUBMIT_RECURSION);
4255 }
4256}
4257
29901626
BP
4258static void
4259xlate_resubmit_table(struct action_xlate_ctx *ctx,
4260 const struct nx_action_resubmit *nar)
4261{
4262 uint16_t in_port;
4263 uint8_t table_id;
4264
4265 in_port = (nar->in_port == htons(OFPP_IN_PORT)
4266 ? ctx->flow.in_port
4267 : ntohs(nar->in_port));
4268 table_id = nar->table == 255 ? ctx->table_id : nar->table;
4269
4270 xlate_table_action(ctx, in_port, table_id);
4271}
4272
abe529af 4273static void
d59906fb 4274flood_packets(struct action_xlate_ctx *ctx, bool all)
abe529af
BP
4275{
4276 struct ofport_dpif *ofport;
4277
b3e9b2ed 4278 HMAP_FOR_EACH (ofport, up.hmap_node, &ctx->ofproto->up.ports) {
abe529af 4279 uint16_t ofp_port = ofport->up.ofp_port;
d59906fb
EJ
4280
4281 if (ofp_port == ctx->flow.in_port) {
4282 continue;
4283 }
4284
5e48dc2b 4285 if (all) {
81b1afb1 4286 compose_output_action__(ctx, ofp_port, false);
5e48dc2b
EJ
4287 } else if (!(ofport->up.opp.config & htonl(OFPPC_NO_FLOOD))) {
4288 compose_output_action(ctx, ofp_port);
abe529af
BP
4289 }
4290 }
b3e9b2ed
EJ
4291
4292 ctx->nf_output_iface = NF_OUT_FLOOD;
abe529af
BP
4293}
4294
6ff686f2 4295static void
999fba59 4296execute_controller_action(struct action_xlate_ctx *ctx, int len)
6ff686f2 4297{
999fba59
EJ
4298 struct ofputil_packet_in pin;
4299 struct ofpbuf *packet;
6ff686f2 4300
999fba59
EJ
4301 ctx->may_set_up_flow = false;
4302 if (!ctx->packet) {
4303 return;
4304 }
4305
4306 packet = ofpbuf_clone(ctx->packet);
4307
4308 if (packet->l2 && packet->l3) {
4309 struct eth_header *eh;
4310
4311 eth_pop_vlan(packet);
4312 eh = packet->l2;
4313 assert(eh->eth_type == ctx->flow.dl_type);
4314 memcpy(eh->eth_src, ctx->flow.dl_src, sizeof eh->eth_src);
4315 memcpy(eh->eth_dst, ctx->flow.dl_dst, sizeof eh->eth_dst);
4316
4317 if (ctx->flow.vlan_tci & htons(VLAN_CFI)) {
4318 eth_push_vlan(packet, ctx->flow.vlan_tci);
4319 }
4320
4321 if (packet->l4) {
4322 if (ctx->flow.dl_type == htons(ETH_TYPE_IP)) {
4323 packet_set_ipv4(packet, ctx->flow.nw_src, ctx->flow.nw_dst,
4324 ctx->flow.nw_tos, ctx->flow.nw_ttl);
4325 }
4326
4327 if (packet->l7) {
4328 if (ctx->flow.nw_proto == IPPROTO_TCP) {
4329 packet_set_tcp_port(packet, ctx->flow.tp_src,
4330 ctx->flow.tp_dst);
4331 } else if (ctx->flow.nw_proto == IPPROTO_UDP) {
4332 packet_set_udp_port(packet, ctx->flow.tp_src,
4333 ctx->flow.tp_dst);
4334 }
4335 }
4336 }
4337 }
4338
4339 pin.packet = packet->data;
4340 pin.packet_len = packet->size;
4341 pin.reason = OFPR_ACTION;
54834960
EJ
4342 pin.table_id = ctx->table_id;
4343 pin.cookie = ctx->cookie;
4344
999fba59
EJ
4345 pin.buffer_id = 0;
4346 pin.send_len = len;
4347 pin.total_len = packet->size;
4348 flow_get_metadata(&ctx->flow, &pin.fmd);
4349
4350 connmgr_send_packet_in(ctx->ofproto->up.connmgr, &pin, &ctx->flow);
4351 ofpbuf_delete(packet);
6ff686f2
PS
4352}
4353
abe529af
BP
4354static void
4355xlate_output_action__(struct action_xlate_ctx *ctx,
4356 uint16_t port, uint16_t max_len)
4357{
4358 uint16_t prev_nf_output_iface = ctx->nf_output_iface;
4359
4360 ctx->nf_output_iface = NF_OUT_DROP;
4361
4362 switch (port) {
4363 case OFPP_IN_PORT:
81b1afb1 4364 compose_output_action(ctx, ctx->flow.in_port);
abe529af
BP
4365 break;
4366 case OFPP_TABLE:
29901626 4367 xlate_table_action(ctx, ctx->flow.in_port, ctx->table_id);
abe529af
BP
4368 break;
4369 case OFPP_NORMAL:
4370 xlate_normal(ctx);
4371 break;
4372 case OFPP_FLOOD:
d59906fb 4373 flood_packets(ctx, false);
abe529af
BP
4374 break;
4375 case OFPP_ALL:
d59906fb 4376 flood_packets(ctx, true);
abe529af
BP
4377 break;
4378 case OFPP_CONTROLLER:
999fba59 4379 execute_controller_action(ctx, max_len);
abe529af
BP
4380 break;
4381 case OFPP_LOCAL:
81b1afb1 4382 compose_output_action(ctx, OFPP_LOCAL);
abe529af 4383 break;
e81d2933
EJ
4384 case OFPP_NONE:
4385 break;
abe529af
BP
4386 default:
4387 if (port != ctx->flow.in_port) {
81b1afb1 4388 compose_output_action(ctx, port);
abe529af
BP
4389 }
4390 break;
4391 }
4392
4393 if (prev_nf_output_iface == NF_OUT_FLOOD) {
4394 ctx->nf_output_iface = NF_OUT_FLOOD;
4395 } else if (ctx->nf_output_iface == NF_OUT_DROP) {
4396 ctx->nf_output_iface = prev_nf_output_iface;
4397 } else if (prev_nf_output_iface != NF_OUT_DROP &&
4398 ctx->nf_output_iface != NF_OUT_FLOOD) {
4399 ctx->nf_output_iface = NF_OUT_MULTI;
4400 }
4401}
4402
f694937d
EJ
4403static void
4404xlate_output_reg_action(struct action_xlate_ctx *ctx,
4405 const struct nx_action_output_reg *naor)
4406{
4407 uint64_t ofp_port;
4408
4409 ofp_port = nxm_read_field_bits(naor->src, naor->ofs_nbits, &ctx->flow);
4410
4411 if (ofp_port <= UINT16_MAX) {
4412 xlate_output_action__(ctx, ofp_port, ntohs(naor->max_len));
4413 }
4414}
4415
abe529af
BP
4416static void
4417xlate_output_action(struct action_xlate_ctx *ctx,
4418 const struct ofp_action_output *oao)
4419{
4420 xlate_output_action__(ctx, ntohs(oao->port), ntohs(oao->max_len));
4421}
4422
abe529af
BP
4423static void
4424xlate_enqueue_action(struct action_xlate_ctx *ctx,
4425 const struct ofp_action_enqueue *oae)
4426{
e479e41e 4427 uint16_t ofp_port;
abff858b 4428 uint32_t flow_priority, priority;
abe529af
BP
4429 int error;
4430
4431 error = dpif_queue_to_priority(ctx->ofproto->dpif, ntohl(oae->queue_id),
4432 &priority);
4433 if (error) {
4434 /* Fall back to ordinary output action. */
4435 xlate_output_action__(ctx, ntohs(oae->port), 0);
4436 return;
4437 }
4438
df2c07f4 4439 /* Figure out datapath output port. */
abe529af
BP
4440 ofp_port = ntohs(oae->port);
4441 if (ofp_port == OFPP_IN_PORT) {
4442 ofp_port = ctx->flow.in_port;
8ba855c1
BP
4443 } else if (ofp_port == ctx->flow.in_port) {
4444 return;
abe529af 4445 }
abe529af 4446
df2c07f4 4447 /* Add datapath actions. */
deedf7e7
BP
4448 flow_priority = ctx->flow.skb_priority;
4449 ctx->flow.skb_priority = priority;
81b1afb1 4450 compose_output_action(ctx, ofp_port);
deedf7e7 4451 ctx->flow.skb_priority = flow_priority;
abe529af
BP
4452
4453 /* Update NetFlow output port. */
4454 if (ctx->nf_output_iface == NF_OUT_DROP) {
4b23aebf 4455 ctx->nf_output_iface = ofp_port;
abe529af
BP
4456 } else if (ctx->nf_output_iface != NF_OUT_FLOOD) {
4457 ctx->nf_output_iface = NF_OUT_MULTI;
4458 }
4459}
4460
4461static void
4462xlate_set_queue_action(struct action_xlate_ctx *ctx,
4463 const struct nx_action_set_queue *nasq)
4464{
4465 uint32_t priority;
4466 int error;
4467
4468 error = dpif_queue_to_priority(ctx->ofproto->dpif, ntohl(nasq->queue_id),
4469 &priority);
4470 if (error) {
4471 /* Couldn't translate queue to a priority, so ignore. A warning
4472 * has already been logged. */
4473 return;
4474 }
4475
deedf7e7 4476 ctx->flow.skb_priority = priority;
abe529af
BP
4477}
4478
4479struct xlate_reg_state {
4480 ovs_be16 vlan_tci;
4481 ovs_be64 tun_id;
4482};
4483
abe529af
BP
4484static void
4485xlate_autopath(struct action_xlate_ctx *ctx,
4486 const struct nx_action_autopath *naa)
4487{
4488 uint16_t ofp_port = ntohl(naa->id);
4489 struct ofport_dpif *port = get_ofp_port(ctx->ofproto, ofp_port);
4490
4491 if (!port || !port->bundle) {
4492 ofp_port = OFPP_NONE;
4493 } else if (port->bundle->bond) {
4494 /* Autopath does not support VLAN hashing. */
4495 struct ofport_dpif *slave = bond_choose_output_slave(
dc155bff 4496 port->bundle->bond, &ctx->flow, 0, &ctx->tags);
abe529af
BP
4497 if (slave) {
4498 ofp_port = slave->up.ofp_port;
4499 }
4500 }
4501 autopath_execute(naa, &ctx->flow, ofp_port);
4502}
4503
daff3353
EJ
4504static bool
4505slave_enabled_cb(uint16_t ofp_port, void *ofproto_)
4506{
4507 struct ofproto_dpif *ofproto = ofproto_;
4508 struct ofport_dpif *port;
4509
4510 switch (ofp_port) {
4511 case OFPP_IN_PORT:
4512 case OFPP_TABLE:
4513 case OFPP_NORMAL:
4514 case OFPP_FLOOD:
4515 case OFPP_ALL:
439e4d8c 4516 case OFPP_NONE:
daff3353
EJ
4517 return true;
4518 case OFPP_CONTROLLER: /* Not supported by the bundle action. */
4519 return false;
4520 default:
4521 port = get_ofp_port(ofproto, ofp_port);
4522 return port ? port->may_enable : false;
4523 }
4524}
4525
75a75043
BP
4526static void
4527xlate_learn_action(struct action_xlate_ctx *ctx,
4528 const struct nx_action_learn *learn)
4529{
4530 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 1);
4531 struct ofputil_flow_mod fm;
4532 int error;
4533
4534 learn_execute(learn, &ctx->flow, &fm);
4535
4536 error = ofproto_flow_mod(&ctx->ofproto->up, &fm);
4537 if (error && !VLOG_DROP_WARN(&rl)) {
90bf1e07
BP
4538 VLOG_WARN("learning action failed to modify flow table (%s)",
4539 ofperr_get_name(error));
75a75043
BP
4540 }
4541
4542 free(fm.actions);
4543}
4544
21f7563c
JP
4545static bool
4546may_receive(const struct ofport_dpif *port, struct action_xlate_ctx *ctx)
4547{
4548 if (port->up.opp.config & (eth_addr_equals(ctx->flow.dl_dst, eth_addr_stp)
4549 ? htonl(OFPPC_NO_RECV_STP)
4550 : htonl(OFPPC_NO_RECV))) {
4551 return false;
4552 }
4553
4554 /* Only drop packets here if both forwarding and learning are
4555 * disabled. If just learning is enabled, we need to have
4556 * OFPP_NORMAL and the learning action have a look at the packet
4557 * before we can drop it. */
4558 if (!stp_forward_in_state(port->stp_state)
4559 && !stp_learn_in_state(port->stp_state)) {
4560 return false;
4561 }
4562
4563 return true;
4564}
4565
abe529af
BP
4566static void
4567do_xlate_actions(const union ofp_action *in, size_t n_in,
4568 struct action_xlate_ctx *ctx)
4569{
4570 const struct ofport_dpif *port;
abe529af 4571 const union ofp_action *ia;
b4b8c781 4572 size_t left;
abe529af
BP
4573
4574 port = get_ofp_port(ctx->ofproto, ctx->flow.in_port);
21f7563c 4575 if (port && !may_receive(port, ctx)) {
abe529af
BP
4576 /* Drop this flow. */
4577 return;
4578 }
4579
b4b8c781 4580 OFPUTIL_ACTION_FOR_EACH_UNSAFE (ia, left, in, n_in) {
abe529af 4581 const struct ofp_action_dl_addr *oada;
38f2e360
BP
4582 const struct nx_action_resubmit *nar;
4583 const struct nx_action_set_tunnel *nast;
4584 const struct nx_action_set_queue *nasq;
4585 const struct nx_action_multipath *nam;
4586 const struct nx_action_autopath *naa;
daff3353 4587 const struct nx_action_bundle *nab;
f694937d 4588 const struct nx_action_output_reg *naor;
38f2e360
BP
4589 enum ofputil_action_code code;
4590 ovs_be64 tun_id;
4591
848e8809
EJ
4592 if (ctx->exit) {
4593 break;
4594 }
4595
38f2e360
BP
4596 code = ofputil_decode_action_unsafe(ia);
4597 switch (code) {
4598 case OFPUTIL_OFPAT_OUTPUT:
abe529af
BP
4599 xlate_output_action(ctx, &ia->output);
4600 break;
4601
38f2e360 4602 case OFPUTIL_OFPAT_SET_VLAN_VID:
abe529af
BP
4603 ctx->flow.vlan_tci &= ~htons(VLAN_VID_MASK);
4604 ctx->flow.vlan_tci |= ia->vlan_vid.vlan_vid | htons(VLAN_CFI);
abe529af
BP
4605 break;
4606
38f2e360 4607 case OFPUTIL_OFPAT_SET_VLAN_PCP:
abe529af
BP
4608 ctx->flow.vlan_tci &= ~htons(VLAN_PCP_MASK);
4609 ctx->flow.vlan_tci |= htons(
4610 (ia->vlan_pcp.vlan_pcp << VLAN_PCP_SHIFT) | VLAN_CFI);
abe529af
BP
4611 break;
4612
38f2e360 4613 case OFPUTIL_OFPAT_STRIP_VLAN:
abe529af 4614 ctx->flow.vlan_tci = htons(0);
abe529af
BP
4615 break;
4616
38f2e360 4617 case OFPUTIL_OFPAT_SET_DL_SRC:
abe529af 4618 oada = ((struct ofp_action_dl_addr *) ia);
abe529af
BP
4619 memcpy(ctx->flow.dl_src, oada->dl_addr, ETH_ADDR_LEN);
4620 break;
4621
38f2e360 4622 case OFPUTIL_OFPAT_SET_DL_DST:
abe529af 4623 oada = ((struct ofp_action_dl_addr *) ia);
abe529af
BP
4624 memcpy(ctx->flow.dl_dst, oada->dl_addr, ETH_ADDR_LEN);
4625 break;
4626
38f2e360 4627 case OFPUTIL_OFPAT_SET_NW_SRC:
abe529af
BP
4628 ctx->flow.nw_src = ia->nw_addr.nw_addr;
4629 break;
4630
38f2e360 4631 case OFPUTIL_OFPAT_SET_NW_DST:
abe529af
BP
4632 ctx->flow.nw_dst = ia->nw_addr.nw_addr;
4633 break;
4634
38f2e360 4635 case OFPUTIL_OFPAT_SET_NW_TOS:
c4f2731d
PS
4636 /* OpenFlow 1.0 only supports IPv4. */
4637 if (ctx->flow.dl_type == htons(ETH_TYPE_IP)) {
4638 ctx->flow.nw_tos &= ~IP_DSCP_MASK;
4639 ctx->flow.nw_tos |= ia->nw_tos.nw_tos & IP_DSCP_MASK;
4640 }
abe529af
BP
4641 break;
4642
38f2e360 4643 case OFPUTIL_OFPAT_SET_TP_SRC:
abe529af
BP
4644 ctx->flow.tp_src = ia->tp_port.tp_port;
4645 break;
4646
38f2e360 4647 case OFPUTIL_OFPAT_SET_TP_DST:
abe529af
BP
4648 ctx->flow.tp_dst = ia->tp_port.tp_port;
4649 break;
4650
38f2e360
BP
4651 case OFPUTIL_OFPAT_ENQUEUE:
4652 xlate_enqueue_action(ctx, (const struct ofp_action_enqueue *) ia);
4653 break;
4654
4655 case OFPUTIL_NXAST_RESUBMIT:
4656 nar = (const struct nx_action_resubmit *) ia;
29901626
BP
4657 xlate_table_action(ctx, ntohs(nar->in_port), ctx->table_id);
4658 break;
4659
4660 case OFPUTIL_NXAST_RESUBMIT_TABLE:
4661 xlate_resubmit_table(ctx, (const struct nx_action_resubmit *) ia);
abe529af
BP
4662 break;
4663
38f2e360
BP
4664 case OFPUTIL_NXAST_SET_TUNNEL:
4665 nast = (const struct nx_action_set_tunnel *) ia;
4666 tun_id = htonll(ntohl(nast->tun_id));
4667 ctx->flow.tun_id = tun_id;
4668 break;
4669
4670 case OFPUTIL_NXAST_SET_QUEUE:
4671 nasq = (const struct nx_action_set_queue *) ia;
4672 xlate_set_queue_action(ctx, nasq);
4673 break;
4674
4675 case OFPUTIL_NXAST_POP_QUEUE:
deedf7e7 4676 ctx->flow.skb_priority = ctx->orig_skb_priority;
38f2e360
BP
4677 break;
4678
4679 case OFPUTIL_NXAST_REG_MOVE:
4680 nxm_execute_reg_move((const struct nx_action_reg_move *) ia,
4681 &ctx->flow);
4682 break;
4683
4684 case OFPUTIL_NXAST_REG_LOAD:
4685 nxm_execute_reg_load((const struct nx_action_reg_load *) ia,
4686 &ctx->flow);
4687 break;
4688
4689 case OFPUTIL_NXAST_NOTE:
4690 /* Nothing to do. */
4691 break;
4692
4693 case OFPUTIL_NXAST_SET_TUNNEL64:
4694 tun_id = ((const struct nx_action_set_tunnel64 *) ia)->tun_id;
4695 ctx->flow.tun_id = tun_id;
4696 break;
4697
4698 case OFPUTIL_NXAST_MULTIPATH:
4699 nam = (const struct nx_action_multipath *) ia;
4700 multipath_execute(nam, &ctx->flow);
abe529af
BP
4701 break;
4702
38f2e360
BP
4703 case OFPUTIL_NXAST_AUTOPATH:
4704 naa = (const struct nx_action_autopath *) ia;
4705 xlate_autopath(ctx, naa);
abe529af 4706 break;
daff3353
EJ
4707
4708 case OFPUTIL_NXAST_BUNDLE:
4709 ctx->ofproto->has_bundle_action = true;
4710 nab = (const struct nx_action_bundle *) ia;
4711 xlate_output_action__(ctx, bundle_execute(nab, &ctx->flow,
4712 slave_enabled_cb,
4713 ctx->ofproto), 0);
4714 break;
a368bb53
EJ
4715
4716 case OFPUTIL_NXAST_BUNDLE_LOAD:
4717 ctx->ofproto->has_bundle_action = true;
4718 nab = (const struct nx_action_bundle *) ia;
4719 bundle_execute_load(nab, &ctx->flow, slave_enabled_cb,
4720 ctx->ofproto);
4721 break;
f694937d
EJ
4722
4723 case OFPUTIL_NXAST_OUTPUT_REG:
4724 naor = (const struct nx_action_output_reg *) ia;
4725 xlate_output_reg_action(ctx, naor);
4726 break;
75a75043
BP
4727
4728 case OFPUTIL_NXAST_LEARN:
4729 ctx->has_learn = true;
4730 if (ctx->may_learn) {
4731 xlate_learn_action(ctx, (const struct nx_action_learn *) ia);
4732 }
4733 break;
848e8809
EJ
4734
4735 case OFPUTIL_NXAST_EXIT:
4736 ctx->exit = true;
4737 break;
abe529af
BP
4738 }
4739 }
21f7563c
JP
4740
4741 /* We've let OFPP_NORMAL and the learning action look at the packet,
4742 * so drop it now if forwarding is disabled. */
4743 if (port && !stp_forward_in_state(port->stp_state)) {
4744 ofpbuf_clear(ctx->odp_actions);
4745 add_sflow_action(ctx);
4746 }
abe529af
BP
4747}
4748
4749static void
4750action_xlate_ctx_init(struct action_xlate_ctx *ctx,
4751 struct ofproto_dpif *ofproto, const struct flow *flow,
54834960
EJ
4752 ovs_be16 initial_tci, ovs_be64 cookie,
4753 const struct ofpbuf *packet)
abe529af
BP
4754{
4755 ctx->ofproto = ofproto;
4756 ctx->flow = *flow;
e84173dc
BP
4757 ctx->base_flow = ctx->flow;
4758 ctx->base_flow.tun_id = 0;
4759 ctx->base_flow.vlan_tci = initial_tci;
54834960 4760 ctx->cookie = cookie;
abe529af 4761 ctx->packet = packet;
75a75043 4762 ctx->may_learn = packet != NULL;
abe529af 4763 ctx->resubmit_hook = NULL;
abe529af
BP
4764}
4765
4766static struct ofpbuf *
4767xlate_actions(struct action_xlate_ctx *ctx,
4768 const union ofp_action *in, size_t n_in)
4769{
c06bba01
JP
4770 struct flow orig_flow = ctx->flow;
4771
abe529af
BP
4772 COVERAGE_INC(ofproto_dpif_xlate);
4773
4774 ctx->odp_actions = ofpbuf_new(512);
b6848f13 4775 ofpbuf_reserve(ctx->odp_actions, NL_A_U32_SIZE);
97e42c92
BP
4776 ctx->tags = 0;
4777 ctx->may_set_up_flow = true;
4778 ctx->has_learn = false;
4779 ctx->has_normal = false;
4780 ctx->nf_output_iface = NF_OUT_DROP;
9d24de3b 4781 ctx->mirrors = 0;
97e42c92 4782 ctx->recurse = 0;
deedf7e7 4783 ctx->orig_skb_priority = ctx->flow.skb_priority;
97e42c92 4784 ctx->table_id = 0;
848e8809 4785 ctx->exit = false;
7257b535 4786
eadef313 4787 if (ctx->flow.nw_frag & FLOW_NW_FRAG_ANY) {
7257b535
BP
4788 switch (ctx->ofproto->up.frag_handling) {
4789 case OFPC_FRAG_NORMAL:
4790 /* We must pretend that transport ports are unavailable. */
97e42c92
BP
4791 ctx->flow.tp_src = ctx->base_flow.tp_src = htons(0);
4792 ctx->flow.tp_dst = ctx->base_flow.tp_dst = htons(0);
7257b535
BP
4793 break;
4794
4795 case OFPC_FRAG_DROP:
4796 return ctx->odp_actions;
4797
4798 case OFPC_FRAG_REASM:
4799 NOT_REACHED();
4800
4801 case OFPC_FRAG_NX_MATCH:
4802 /* Nothing to do. */
4803 break;
4804 }
4805 }
4806
fc08b7a2 4807 if (process_special(ctx->ofproto, &ctx->flow, ctx->packet)) {
abe529af 4808 ctx->may_set_up_flow = false;
b6848f13 4809 return ctx->odp_actions;
abe529af 4810 } else {
6ff686f2 4811 add_sflow_action(ctx);
abe529af 4812 do_xlate_actions(in, n_in, ctx);
abe529af 4813
b6848f13
BP
4814 if (!connmgr_may_set_up_flow(ctx->ofproto->up.connmgr, &ctx->flow,
4815 ctx->odp_actions->data,
4816 ctx->odp_actions->size)) {
4817 ctx->may_set_up_flow = false;
4818 if (ctx->packet
4819 && connmgr_msg_in_hook(ctx->ofproto->up.connmgr, &ctx->flow,
4820 ctx->packet)) {
5e48dc2b 4821 compose_output_action(ctx, OFPP_LOCAL);
b6848f13
BP
4822 }
4823 }
c06bba01 4824 add_mirror_actions(ctx, &orig_flow);
a7c4eaf6 4825 fix_sflow_action(ctx);
abe529af
BP
4826 }
4827
4828 return ctx->odp_actions;
4829}
4830\f
4831/* OFPP_NORMAL implementation. */
4832
abe529af
BP
4833static struct ofport_dpif *ofbundle_get_a_port(const struct ofbundle *);
4834
ecac4ebf
BP
4835/* Given 'vid', the VID obtained from the 802.1Q header that was received as
4836 * part of a packet (specify 0 if there was no 802.1Q header), and 'in_bundle',
4837 * the bundle on which the packet was received, returns the VLAN to which the
4838 * packet belongs.
4839 *
4840 * Both 'vid' and the return value are in the range 0...4095. */
4841static uint16_t
4842input_vid_to_vlan(const struct ofbundle *in_bundle, uint16_t vid)
4843{
4844 switch (in_bundle->vlan_mode) {
4845 case PORT_VLAN_ACCESS:
4846 return in_bundle->vlan;
4847 break;
4848
4849 case PORT_VLAN_TRUNK:
4850 return vid;
4851
4852 case PORT_VLAN_NATIVE_UNTAGGED:
4853 case PORT_VLAN_NATIVE_TAGGED:
4854 return vid ? vid : in_bundle->vlan;
4855
4856 default:
4857 NOT_REACHED();
4858 }
4859}
4860
5da5ec37
BP
4861/* Checks whether a packet with the given 'vid' may ingress on 'in_bundle'.
4862 * If so, returns true. Otherwise, returns false and, if 'warn' is true, logs
4863 * a warning.
4864 *
4865 * 'vid' should be the VID obtained from the 802.1Q header that was received as
4866 * part of a packet (specify 0 if there was no 802.1Q header), in the range
4867 * 0...4095. */
4868static bool
4869input_vid_is_valid(uint16_t vid, struct ofbundle *in_bundle, bool warn)
4870{
33158a18
JP
4871 /* Allow any VID on the OFPP_NONE port. */
4872 if (in_bundle == &ofpp_none_bundle) {
4873 return true;
4874 }
4875
5da5ec37
BP
4876 switch (in_bundle->vlan_mode) {
4877 case PORT_VLAN_ACCESS:
4878 if (vid) {
4879 if (warn) {
4880 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
4881 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %"PRIu16" tagged "
4882 "packet received on port %s configured as VLAN "
4883 "%"PRIu16" access port",
4884 in_bundle->ofproto->up.name, vid,
4885 in_bundle->name, in_bundle->vlan);
4886 }
4887 return false;
4888 }
4889 return true;
4890
4891 case PORT_VLAN_NATIVE_UNTAGGED:
4892 case PORT_VLAN_NATIVE_TAGGED:
4893 if (!vid) {
4894 /* Port must always carry its native VLAN. */
4895 return true;
4896 }
4897 /* Fall through. */
4898 case PORT_VLAN_TRUNK:
4899 if (!ofbundle_includes_vlan(in_bundle, vid)) {
4900 if (warn) {
4901 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
4902 VLOG_WARN_RL(&rl, "bridge %s: dropping VLAN %"PRIu16" packet "
4903 "received on port %s not configured for trunking "
4904 "VLAN %"PRIu16,
4905 in_bundle->ofproto->up.name, vid,
4906 in_bundle->name, vid);
4907 }
4908 return false;
4909 }
4910 return true;
4911
4912 default:
4913 NOT_REACHED();
4914 }
4915
4916}
4917
ecac4ebf
BP
4918/* Given 'vlan', the VLAN that a packet belongs to, and
4919 * 'out_bundle', a bundle on which the packet is to be output, returns the VID
4920 * that should be included in the 802.1Q header. (If the return value is 0,
4921 * then the 802.1Q header should only be included in the packet if there is a
4922 * nonzero PCP.)
4923 *
4924 * Both 'vlan' and the return value are in the range 0...4095. */
4925static uint16_t
4926output_vlan_to_vid(const struct ofbundle *out_bundle, uint16_t vlan)
4927{
4928 switch (out_bundle->vlan_mode) {
4929 case PORT_VLAN_ACCESS:
4930 return 0;
4931
4932 case PORT_VLAN_TRUNK:
4933 case PORT_VLAN_NATIVE_TAGGED:
4934 return vlan;
4935
4936 case PORT_VLAN_NATIVE_UNTAGGED:
4937 return vlan == out_bundle->vlan ? 0 : vlan;
4938
4939 default:
4940 NOT_REACHED();
4941 }
4942}
4943
395e68ce
BP
4944static void
4945output_normal(struct action_xlate_ctx *ctx, const struct ofbundle *out_bundle,
4946 uint16_t vlan)
abe529af 4947{
395e68ce
BP
4948 struct ofport_dpif *port;
4949 uint16_t vid;
81b1afb1 4950 ovs_be16 tci, old_tci;
ecac4ebf 4951
395e68ce
BP
4952 vid = output_vlan_to_vid(out_bundle, vlan);
4953 if (!out_bundle->bond) {
4954 port = ofbundle_get_a_port(out_bundle);
4955 } else {
4956 port = bond_choose_output_slave(out_bundle->bond, &ctx->flow,
4957 vid, &ctx->tags);
4958 if (!port) {
4959 /* No slaves enabled, so drop packet. */
4960 return;
4961 }
4962 }
abe529af 4963
81b1afb1 4964 old_tci = ctx->flow.vlan_tci;
5e9ceccd
BP
4965 tci = htons(vid);
4966 if (tci || out_bundle->use_priority_tags) {
4967 tci |= ctx->flow.vlan_tci & htons(VLAN_PCP_MASK);
4968 if (tci) {
4969 tci |= htons(VLAN_CFI);
4970 }
395e68ce 4971 }
81b1afb1 4972 ctx->flow.vlan_tci = tci;
395e68ce 4973
5e48dc2b 4974 compose_output_action(ctx, port->up.ofp_port);
81b1afb1 4975 ctx->flow.vlan_tci = old_tci;
abe529af
BP
4976}
4977
4978static int
4979mirror_mask_ffs(mirror_mask_t mask)
4980{
4981 BUILD_ASSERT_DECL(sizeof(unsigned int) >= sizeof(mask));
4982 return ffs(mask);
4983}
4984
abe529af
BP
4985static bool
4986ofbundle_trunks_vlan(const struct ofbundle *bundle, uint16_t vlan)
4987{
ecac4ebf 4988 return (bundle->vlan_mode != PORT_VLAN_ACCESS
fc3d7408 4989 && (!bundle->trunks || bitmap_is_set(bundle->trunks, vlan)));
abe529af
BP
4990}
4991
4992static bool
4993ofbundle_includes_vlan(const struct ofbundle *bundle, uint16_t vlan)
4994{
4995 return vlan == bundle->vlan || ofbundle_trunks_vlan(bundle, vlan);
4996}
4997
4998/* Returns an arbitrary interface within 'bundle'. */
4999static struct ofport_dpif *
5000ofbundle_get_a_port(const struct ofbundle *bundle)
5001{
5002 return CONTAINER_OF(list_front(&bundle->ports),
5003 struct ofport_dpif, bundle_node);
5004}
5005
abe529af
BP
5006static bool
5007vlan_is_mirrored(const struct ofmirror *m, int vlan)
5008{
fc3d7408 5009 return !m->vlans || bitmap_is_set(m->vlans, vlan);
abe529af
BP
5010}
5011
07817dfe
BP
5012/* Returns true if a packet with Ethernet destination MAC 'dst' may be mirrored
5013 * to a VLAN. In general most packets may be mirrored but we want to drop
5014 * protocols that may confuse switches. */
5015static bool
5016eth_dst_may_rspan(const uint8_t dst[ETH_ADDR_LEN])
5017{
5018 /* If you change this function's behavior, please update corresponding
5019 * documentation in vswitch.xml at the same time. */
5020 if (dst[0] != 0x01) {
5021 /* All the currently banned MACs happen to start with 01 currently, so
5022 * this is a quick way to eliminate most of the good ones. */
5023 } else {
5024 if (eth_addr_is_reserved(dst)) {
5025 /* Drop STP, IEEE pause frames, and other reserved protocols
5026 * (01-80-c2-00-00-0x). */
5027 return false;
5028 }
5029
5030 if (dst[0] == 0x01 && dst[1] == 0x00 && dst[2] == 0x0c) {
5031 /* Cisco OUI. */
5032 if ((dst[3] & 0xfe) == 0xcc &&
5033 (dst[4] & 0xfe) == 0xcc &&
5034 (dst[5] & 0xfe) == 0xcc) {
5035 /* Drop the following protocols plus others following the same
5036 pattern:
5037
5038 CDP, VTP, DTP, PAgP (01-00-0c-cc-cc-cc)
5039 Spanning Tree PVSTP+ (01-00-0c-cc-cc-cd)
5040 STP Uplink Fast (01-00-0c-cd-cd-cd) */
5041 return false;
5042 }
5043
5044 if (!(dst[3] | dst[4] | dst[5])) {
5045 /* Drop Inter Switch Link packets (01-00-0c-00-00-00). */
5046 return false;
5047 }
5048 }
5049 }
5050 return true;
5051}
5052
abe529af 5053static void
c06bba01 5054add_mirror_actions(struct action_xlate_ctx *ctx, const struct flow *orig_flow)
abe529af
BP
5055{
5056 struct ofproto_dpif *ofproto = ctx->ofproto;
5057 mirror_mask_t mirrors;
c06bba01
JP
5058 struct ofbundle *in_bundle;
5059 uint16_t vlan;
5060 uint16_t vid;
5061 const struct nlattr *a;
5062 size_t left;
5063
3581c12c
JP
5064 in_bundle = lookup_input_bundle(ctx->ofproto, orig_flow->in_port,
5065 ctx->packet != NULL);
5066 if (!in_bundle) {
c06bba01
JP
5067 return;
5068 }
c06bba01
JP
5069 mirrors = in_bundle->src_mirrors;
5070
5071 /* Drop frames on bundles reserved for mirroring. */
5072 if (in_bundle->mirror_out) {
5073 if (ctx->packet != NULL) {
5074 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
5075 VLOG_WARN_RL(&rl, "bridge %s: dropping packet received on port "
5076 "%s, which is reserved exclusively for mirroring",
5077 ctx->ofproto->up.name, in_bundle->name);
5078 }
5079 return;
5080 }
5081
5082 /* Check VLAN. */
5083 vid = vlan_tci_to_vid(orig_flow->vlan_tci);
5084 if (!input_vid_is_valid(vid, in_bundle, ctx->packet != NULL)) {
5085 return;
5086 }
5087 vlan = input_vid_to_vlan(in_bundle, vid);
5088
5089 /* Look at the output ports to check for destination selections. */
5090
5091 NL_ATTR_FOR_EACH (a, left, ctx->odp_actions->data,
5092 ctx->odp_actions->size) {
5093 enum ovs_action_attr type = nl_attr_type(a);
5094 struct ofport_dpif *ofport;
5095
5096 if (type != OVS_ACTION_ATTR_OUTPUT) {
5097 continue;
5098 }
5099
5100 ofport = get_odp_port(ofproto, nl_attr_get_u32(a));
521472bc
BP
5101 if (ofport && ofport->bundle) {
5102 mirrors |= ofport->bundle->dst_mirrors;
5103 }
c06bba01 5104 }
abe529af
BP
5105
5106 if (!mirrors) {
5107 return;
5108 }
5109
c06bba01
JP
5110 /* Restore the original packet before adding the mirror actions. */
5111 ctx->flow = *orig_flow;
5112
9ba15e2a
BP
5113 while (mirrors) {
5114 struct ofmirror *m;
9ba15e2a
BP
5115
5116 m = ofproto->mirrors[mirror_mask_ffs(mirrors) - 1];
5117
5118 if (!vlan_is_mirrored(m, vlan)) {
5119 mirrors &= mirrors - 1;
5120 continue;
5121 }
5122
5123 mirrors &= ~m->dup_mirrors;
9d24de3b 5124 ctx->mirrors |= m->dup_mirrors;
9ba15e2a 5125 if (m->out) {
395e68ce 5126 output_normal(ctx, m->out, vlan);
c06bba01 5127 } else if (eth_dst_may_rspan(orig_flow->dl_dst)
9ba15e2a
BP
5128 && vlan != m->out_vlan) {
5129 struct ofbundle *bundle;
5130
5131 HMAP_FOR_EACH (bundle, hmap_node, &ofproto->bundles) {
5132 if (ofbundle_includes_vlan(bundle, m->out_vlan)
395e68ce
BP
5133 && !bundle->mirror_out) {
5134 output_normal(ctx, bundle, m->out_vlan);
abe529af
BP
5135 }
5136 }
5137 }
abe529af
BP
5138 }
5139}
5140
9d24de3b
JP
5141static void
5142update_mirror_stats(struct ofproto_dpif *ofproto, mirror_mask_t mirrors,
5143 uint64_t packets, uint64_t bytes)
5144{
5145 if (!mirrors) {
5146 return;
5147 }
5148
5149 for (; mirrors; mirrors &= mirrors - 1) {
5150 struct ofmirror *m;
5151
5152 m = ofproto->mirrors[mirror_mask_ffs(mirrors) - 1];
5153
5154 if (!m) {
5155 /* In normal circumstances 'm' will not be NULL. However,
5156 * if mirrors are reconfigured, we can temporarily get out
5157 * of sync in facet_revalidate(). We could "correct" the
5158 * mirror list before reaching here, but doing that would
5159 * not properly account the traffic stats we've currently
5160 * accumulated for previous mirror configuration. */
5161 continue;
5162 }
5163
5164 m->packet_count += packets;
5165 m->byte_count += bytes;
5166 }
5167}
5168
abe529af
BP
5169/* A VM broadcasts a gratuitous ARP to indicate that it has resumed after
5170 * migration. Older Citrix-patched Linux DomU used gratuitous ARP replies to
5171 * indicate this; newer upstream kernels use gratuitous ARP requests. */
5172static bool
5173is_gratuitous_arp(const struct flow *flow)
5174{
5175 return (flow->dl_type == htons(ETH_TYPE_ARP)
5176 && eth_addr_is_broadcast(flow->dl_dst)
5177 && (flow->nw_proto == ARP_OP_REPLY
5178 || (flow->nw_proto == ARP_OP_REQUEST
5179 && flow->nw_src == flow->nw_dst)));
5180}
5181
5182static void
5183update_learning_table(struct ofproto_dpif *ofproto,
5184 const struct flow *flow, int vlan,
5185 struct ofbundle *in_bundle)
5186{
5187 struct mac_entry *mac;
5188
33158a18
JP
5189 /* Don't learn the OFPP_NONE port. */
5190 if (in_bundle == &ofpp_none_bundle) {
5191 return;
5192 }
5193
abe529af
BP
5194 if (!mac_learning_may_learn(ofproto->ml, flow->dl_src, vlan)) {
5195 return;
5196 }
5197
5198 mac = mac_learning_insert(ofproto->ml, flow->dl_src, vlan);
5199 if (is_gratuitous_arp(flow)) {
5200 /* We don't want to learn from gratuitous ARP packets that are
5201 * reflected back over bond slaves so we lock the learning table. */
5202 if (!in_bundle->bond) {
5203 mac_entry_set_grat_arp_lock(mac);
5204 } else if (mac_entry_is_grat_arp_locked(mac)) {
5205 return;
5206 }
5207 }
5208
5209 if (mac_entry_is_new(mac) || mac->port.p != in_bundle) {
5210 /* The log messages here could actually be useful in debugging,
5211 * so keep the rate limit relatively high. */
5212 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(30, 300);
5213 VLOG_DBG_RL(&rl, "bridge %s: learned that "ETH_ADDR_FMT" is "
5214 "on port %s in VLAN %d",
5215 ofproto->up.name, ETH_ADDR_ARGS(flow->dl_src),
5216 in_bundle->name, vlan);
5217
5218 mac->port.p = in_bundle;
5219 tag_set_add(&ofproto->revalidate_set,
5220 mac_learning_changed(ofproto->ml, mac));
5221 }
5222}
5223
3581c12c 5224static struct ofbundle *
395e68ce
BP
5225lookup_input_bundle(struct ofproto_dpif *ofproto, uint16_t in_port, bool warn)
5226{
5227 struct ofport_dpif *ofport;
5228
33158a18
JP
5229 /* Special-case OFPP_NONE, which a controller may use as the ingress
5230 * port for traffic that it is sourcing. */
5231 if (in_port == OFPP_NONE) {
5232 return &ofpp_none_bundle;
5233 }
5234
395e68ce
BP
5235 /* Find the port and bundle for the received packet. */
5236 ofport = get_ofp_port(ofproto, in_port);
5237 if (ofport && ofport->bundle) {
3581c12c 5238 return ofport->bundle;
395e68ce
BP
5239 }
5240
5241 /* Odd. A few possible reasons here:
5242 *
5243 * - We deleted a port but there are still a few packets queued up
5244 * from it.
5245 *
5246 * - Someone externally added a port (e.g. "ovs-dpctl add-if") that
5247 * we don't know about.
5248 *
5249 * - The ofproto client didn't configure the port as part of a bundle.
5250 */
5251 if (warn) {
5252 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
5253
5254 VLOG_WARN_RL(&rl, "bridge %s: received packet on unknown "
5255 "port %"PRIu16, ofproto->up.name, in_port);
5256 }
5257 return NULL;
5258}
5259
5da5ec37 5260/* Determines whether packets in 'flow' within 'ofproto' should be forwarded or
abe529af
BP
5261 * dropped. Returns true if they may be forwarded, false if they should be
5262 * dropped.
5263 *
395e68ce
BP
5264 * 'in_port' must be the ofport_dpif that corresponds to flow->in_port.
5265 * 'in_port' must be part of a bundle (e.g. in_port->bundle must be nonnull).
abe529af 5266 *
395e68ce
BP
5267 * 'vlan' must be the VLAN that corresponds to flow->vlan_tci on 'in_port', as
5268 * returned by input_vid_to_vlan(). It must be a valid VLAN for 'in_port', as
5269 * checked by input_vid_is_valid().
abe529af
BP
5270 *
5271 * May also add tags to '*tags', although the current implementation only does
5272 * so in one special case.
5273 */
5274static bool
5275is_admissible(struct ofproto_dpif *ofproto, const struct flow *flow,
395e68ce 5276 struct ofport_dpif *in_port, uint16_t vlan, tag_type *tags)
abe529af 5277{
395e68ce 5278 struct ofbundle *in_bundle = in_port->bundle;
abe529af 5279
395e68ce
BP
5280 /* Drop frames for reserved multicast addresses
5281 * only if forward_bpdu option is absent. */
21f7563c 5282 if (eth_addr_is_reserved(flow->dl_dst) && !ofproto->up.forward_bpdu) {
abe529af
BP
5283 return false;
5284 }
5285
abe529af
BP
5286 if (in_bundle->bond) {
5287 struct mac_entry *mac;
5288
5289 switch (bond_check_admissibility(in_bundle->bond, in_port,
5290 flow->dl_dst, tags)) {
5291 case BV_ACCEPT:
5292 break;
5293
5294 case BV_DROP:
5295 return false;
5296
5297 case BV_DROP_IF_MOVED:
5298 mac = mac_learning_lookup(ofproto->ml, flow->dl_src, vlan, NULL);
5299 if (mac && mac->port.p != in_bundle &&
5300 (!is_gratuitous_arp(flow)
5301 || mac_entry_is_grat_arp_locked(mac))) {
5302 return false;
5303 }
5304 break;
5305 }
5306 }
5307
5308 return true;
5309}
5310
4cd78906 5311static void
abe529af
BP
5312xlate_normal(struct action_xlate_ctx *ctx)
5313{
395e68ce 5314 struct ofport_dpif *in_port;
abe529af 5315 struct ofbundle *in_bundle;
abe529af 5316 struct mac_entry *mac;
395e68ce
BP
5317 uint16_t vlan;
5318 uint16_t vid;
abe529af 5319
75a75043
BP
5320 ctx->has_normal = true;
5321
3581c12c 5322 in_bundle = lookup_input_bundle(ctx->ofproto, ctx->flow.in_port,
395e68ce 5323 ctx->packet != NULL);
3581c12c 5324 if (!in_bundle) {
395e68ce
BP
5325 return;
5326 }
3581c12c 5327
33158a18
JP
5328 /* We know 'in_port' exists unless it is "ofpp_none_bundle",
5329 * since lookup_input_bundle() succeeded. */
3581c12c 5330 in_port = get_ofp_port(ctx->ofproto, ctx->flow.in_port);
395e68ce
BP
5331
5332 /* Drop malformed frames. */
5333 if (ctx->flow.dl_type == htons(ETH_TYPE_VLAN) &&
5334 !(ctx->flow.vlan_tci & htons(VLAN_CFI))) {
5335 if (ctx->packet != NULL) {
5336 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
5337 VLOG_WARN_RL(&rl, "bridge %s: dropping packet with partial "
5338 "VLAN tag received on port %s",
5339 ctx->ofproto->up.name, in_bundle->name);
5340 }
5341 return;
5342 }
5343
5344 /* Drop frames on bundles reserved for mirroring. */
5345 if (in_bundle->mirror_out) {
5346 if (ctx->packet != NULL) {
5347 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);
5348 VLOG_WARN_RL(&rl, "bridge %s: dropping packet received on port "
5349 "%s, which is reserved exclusively for mirroring",
5350 ctx->ofproto->up.name, in_bundle->name);
5351 }
5352 return;
5353 }
5354
5355 /* Check VLAN. */
5356 vid = vlan_tci_to_vid(ctx->flow.vlan_tci);
5357 if (!input_vid_is_valid(vid, in_bundle, ctx->packet != NULL)) {
5358 return;
5359 }
5360 vlan = input_vid_to_vlan(in_bundle, vid);
5361
5362 /* Check other admissibility requirements. */
33158a18
JP
5363 if (in_port &&
5364 !is_admissible(ctx->ofproto, &ctx->flow, in_port, vlan, &ctx->tags)) {
395e68ce 5365 return;
abe529af
BP
5366 }
5367
75a75043
BP
5368 /* Learn source MAC. */
5369 if (ctx->may_learn) {
abe529af
BP
5370 update_learning_table(ctx->ofproto, &ctx->flow, vlan, in_bundle);
5371 }
5372
5373 /* Determine output bundle. */
5374 mac = mac_learning_lookup(ctx->ofproto->ml, ctx->flow.dl_dst, vlan,
5375 &ctx->tags);
5376 if (mac) {
c06bba01
JP
5377 if (mac->port.p != in_bundle) {
5378 output_normal(ctx, mac->port.p, vlan);
5379 }
abe529af 5380 } else {
c06bba01 5381 struct ofbundle *bundle;
abe529af 5382
c06bba01
JP
5383 HMAP_FOR_EACH (bundle, hmap_node, &ctx->ofproto->bundles) {
5384 if (bundle != in_bundle
5385 && ofbundle_includes_vlan(bundle, vlan)
5386 && bundle->floodable
5387 && !bundle->mirror_out) {
5388 output_normal(ctx, bundle, vlan);
5389 }
5390 }
5391 ctx->nf_output_iface = NF_OUT_FLOOD;
abe529af 5392 }
abe529af
BP
5393}
5394\f
54a9cbc9
BP
5395/* Optimized flow revalidation.
5396 *
5397 * It's a difficult problem, in general, to tell which facets need to have
5398 * their actions recalculated whenever the OpenFlow flow table changes. We
5399 * don't try to solve that general problem: for most kinds of OpenFlow flow
5400 * table changes, we recalculate the actions for every facet. This is
5401 * relatively expensive, but it's good enough if the OpenFlow flow table
5402 * doesn't change very often.
5403 *
5404 * However, we can expect one particular kind of OpenFlow flow table change to
5405 * happen frequently: changes caused by MAC learning. To avoid wasting a lot
5406 * of CPU on revalidating every facet whenever MAC learning modifies the flow
5407 * table, we add a special case that applies to flow tables in which every rule
5408 * has the same form (that is, the same wildcards), except that the table is
5409 * also allowed to have a single "catch-all" flow that matches all packets. We
5410 * optimize this case by tagging all of the facets that resubmit into the table
5411 * and invalidating the same tag whenever a flow changes in that table. The
5412 * end result is that we revalidate just the facets that need it (and sometimes
5413 * a few more, but not all of the facets or even all of the facets that
5414 * resubmit to the table modified by MAC learning). */
5415
5416/* Calculates the tag to use for 'flow' and wildcards 'wc' when it is inserted
5417 * into an OpenFlow table with the given 'basis'. */
5418static uint32_t
5419rule_calculate_tag(const struct flow *flow, const struct flow_wildcards *wc,
5420 uint32_t secret)
5421{
5422 if (flow_wildcards_is_catchall(wc)) {
5423 return 0;
5424 } else {
5425 struct flow tag_flow = *flow;
5426 flow_zero_wildcards(&tag_flow, wc);
5427 return tag_create_deterministic(flow_hash(&tag_flow, secret));
5428 }
5429}
5430
5431/* Following a change to OpenFlow table 'table_id' in 'ofproto', update the
5432 * taggability of that table.
5433 *
5434 * This function must be called after *each* change to a flow table. If you
5435 * skip calling it on some changes then the pointer comparisons at the end can
5436 * be invalid if you get unlucky. For example, if a flow removal causes a
5437 * cls_table to be destroyed and then a flow insertion causes a cls_table with
5438 * different wildcards to be created with the same address, then this function
5439 * will incorrectly skip revalidation. */
5440static void
5441table_update_taggable(struct ofproto_dpif *ofproto, uint8_t table_id)
5442{
5443 struct table_dpif *table = &ofproto->tables[table_id];
5444 const struct classifier *cls = &ofproto->up.tables[table_id];
5445 struct cls_table *catchall, *other;
5446 struct cls_table *t;
5447
5448 catchall = other = NULL;
5449
5450 switch (hmap_count(&cls->tables)) {
5451 case 0:
5452 /* We could tag this OpenFlow table but it would make the logic a
5453 * little harder and it's a corner case that doesn't seem worth it
5454 * yet. */
5455 break;
5456
5457 case 1:
5458 case 2:
5459 HMAP_FOR_EACH (t, hmap_node, &cls->tables) {
5460 if (cls_table_is_catchall(t)) {
5461 catchall = t;
5462 } else if (!other) {
5463 other = t;
5464 } else {
5465 /* Indicate that we can't tag this by setting both tables to
5466 * NULL. (We know that 'catchall' is already NULL.) */
5467 other = NULL;
5468 }
5469 }
5470 break;
5471
5472 default:
5473 /* Can't tag this table. */
5474 break;
5475 }
5476
5477 if (table->catchall_table != catchall || table->other_table != other) {
5478 table->catchall_table = catchall;
5479 table->other_table = other;
5480 ofproto->need_revalidate = true;
5481 }
5482}
5483
5484/* Given 'rule' that has changed in some way (either it is a rule being
5485 * inserted, a rule being deleted, or a rule whose actions are being
5486 * modified), marks facets for revalidation to ensure that packets will be
5487 * forwarded correctly according to the new state of the flow table.
5488 *
5489 * This function must be called after *each* change to a flow table. See
5490 * the comment on table_update_taggable() for more information. */
5491static void
5492rule_invalidate(const struct rule_dpif *rule)
5493{
5494 struct ofproto_dpif *ofproto = ofproto_dpif_cast(rule->up.ofproto);
5495
5496 table_update_taggable(ofproto, rule->up.table_id);
5497
5498 if (!ofproto->need_revalidate) {
5499 struct table_dpif *table = &ofproto->tables[rule->up.table_id];
5500
5501 if (table->other_table && rule->tag) {
5502 tag_set_add(&ofproto->revalidate_set, rule->tag);
5503 } else {
5504 ofproto->need_revalidate = true;
5505 }
5506 }
5507}
5508\f
abe529af 5509static bool
7257b535
BP
5510set_frag_handling(struct ofproto *ofproto_,
5511 enum ofp_config_flags frag_handling)
abe529af
BP
5512{
5513 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
abe529af 5514
7257b535
BP
5515 if (frag_handling != OFPC_FRAG_REASM) {
5516 ofproto->need_revalidate = true;
5517 return true;
5518 } else {
5519 return false;
5520 }
abe529af
BP
5521}
5522
90bf1e07 5523static enum ofperr
abe529af
BP
5524packet_out(struct ofproto *ofproto_, struct ofpbuf *packet,
5525 const struct flow *flow,
5526 const union ofp_action *ofp_actions, size_t n_ofp_actions)
5527{
5528 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
90bf1e07 5529 enum ofperr error;
abe529af 5530
e1154f71 5531 if (flow->in_port >= ofproto->max_ports && flow->in_port < OFPP_MAX) {
90bf1e07 5532 return OFPERR_NXBRC_BAD_IN_PORT;
e1154f71
BP
5533 }
5534
abe529af
BP
5535 error = validate_actions(ofp_actions, n_ofp_actions, flow,
5536 ofproto->max_ports);
5537 if (!error) {
80e5eed9 5538 struct odputil_keybuf keybuf;
abe529af 5539 struct ofpbuf *odp_actions;
2284188b 5540 struct ofproto_push push;
80e5eed9
BP
5541 struct ofpbuf key;
5542
5543 ofpbuf_use_stack(&key, &keybuf, sizeof keybuf);
5544 odp_flow_key_from_flow(&key, flow);
abe529af 5545
2284188b
EJ
5546 action_xlate_ctx_init(&push.ctx, ofproto, flow, flow->vlan_tci, 0,
5547 packet);
5548
5549 /* Ensure that resubmits in 'ofp_actions' get accounted to their
5550 * matching rules. */
5551 push.packets = 1;
5552 push.bytes = packet->size;
5553 push.used = time_msec();
5554 push.ctx.resubmit_hook = push_resubmit;
5555
5556 odp_actions = xlate_actions(&push.ctx, ofp_actions, n_ofp_actions);
80e5eed9
BP
5557 dpif_execute(ofproto->dpif, key.data, key.size,
5558 odp_actions->data, odp_actions->size, packet);
abe529af
BP
5559 ofpbuf_delete(odp_actions);
5560 }
5561 return error;
5562}
6fca1ffb
BP
5563\f
5564/* NetFlow. */
5565
5566static int
5567set_netflow(struct ofproto *ofproto_,
5568 const struct netflow_options *netflow_options)
5569{
5570 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
5571
5572 if (netflow_options) {
5573 if (!ofproto->netflow) {
5574 ofproto->netflow = netflow_create();
5575 }
5576 return netflow_set_options(ofproto->netflow, netflow_options);
5577 } else {
5578 netflow_destroy(ofproto->netflow);
5579 ofproto->netflow = NULL;
5580 return 0;
5581 }
5582}
abe529af
BP
5583
5584static void
5585get_netflow_ids(const struct ofproto *ofproto_,
5586 uint8_t *engine_type, uint8_t *engine_id)
5587{
5588 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofproto_);
5589
5590 dpif_get_netflow_ids(ofproto->dpif, engine_type, engine_id);
5591}
6fca1ffb
BP
5592
5593static void
5594send_active_timeout(struct ofproto_dpif *ofproto, struct facet *facet)
5595{
5596 if (!facet_is_controller_flow(facet) &&
5597 netflow_active_timeout_expired(ofproto->netflow, &facet->nf_flow)) {
b0f7b9b5 5598 struct subfacet *subfacet;
6fca1ffb
BP
5599 struct ofexpired expired;
5600
b0f7b9b5
BP
5601 LIST_FOR_EACH (subfacet, list_node, &facet->subfacets) {
5602 if (subfacet->installed) {
5603 struct dpif_flow_stats stats;
6fca1ffb 5604
b95fc6ba
BP
5605 subfacet_install(ofproto, subfacet, subfacet->actions,
5606 subfacet->actions_len, &stats);
b0f7b9b5
BP
5607 subfacet_update_stats(ofproto, subfacet, &stats);
5608 }
6fca1ffb
BP
5609 }
5610
5611 expired.flow = facet->flow;
5612 expired.packet_count = facet->packet_count;
5613 expired.byte_count = facet->byte_count;
5614 expired.used = facet->used;
5615 netflow_expire(ofproto->netflow, &facet->nf_flow, &expired);
5616 }
5617}
5618
5619static void
5620send_netflow_active_timeouts(struct ofproto_dpif *ofproto)
5621{
5622 struct facet *facet;
5623
5624 HMAP_FOR_EACH (facet, hmap_node, &ofproto->facets) {
5625 send_active_timeout(ofproto, facet);
5626 }
5627}
abe529af
BP
5628\f
5629static struct ofproto_dpif *
5630ofproto_dpif_lookup(const char *name)
5631{
b44a10b7
BP
5632 struct ofproto_dpif *ofproto;
5633
5634 HMAP_FOR_EACH_WITH_HASH (ofproto, all_ofproto_dpifs_node,
5635 hash_string(name, 0), &all_ofproto_dpifs) {
5636 if (!strcmp(ofproto->up.name, name)) {
5637 return ofproto;
5638 }
5639 }
5640 return NULL;
abe529af
BP
5641}
5642
f0a3aa2e 5643static void
0e15264f
BP
5644ofproto_unixctl_fdb_flush(struct unixctl_conn *conn, int argc OVS_UNUSED,
5645 const char *argv[], void *aux OVS_UNUSED)
f0a3aa2e
AA
5646{
5647 const struct ofproto_dpif *ofproto;
5648
0e15264f 5649 ofproto = ofproto_dpif_lookup(argv[1]);
f0a3aa2e
AA
5650 if (!ofproto) {
5651 unixctl_command_reply(conn, 501, "no such bridge");
5652 return;
5653 }
5654 mac_learning_flush(ofproto->ml);
5655
5656 unixctl_command_reply(conn, 200, "table successfully flushed");
5657}
5658
abe529af 5659static void
0e15264f
BP
5660ofproto_unixctl_fdb_show(struct unixctl_conn *conn, int argc OVS_UNUSED,
5661 const char *argv[], void *aux OVS_UNUSED)
abe529af
BP
5662{
5663 struct ds ds = DS_EMPTY_INITIALIZER;
5664 const struct ofproto_dpif *ofproto;
5665 const struct mac_entry *e;
5666
0e15264f 5667 ofproto = ofproto_dpif_lookup(argv[1]);
abe529af
BP
5668 if (!ofproto) {
5669 unixctl_command_reply(conn, 501, "no such bridge");
5670 return;
5671 }
5672
5673 ds_put_cstr(&ds, " port VLAN MAC Age\n");
5674 LIST_FOR_EACH (e, lru_node, &ofproto->ml->lrus) {
5675 struct ofbundle *bundle = e->port.p;
5676 ds_put_format(&ds, "%5d %4d "ETH_ADDR_FMT" %3d\n",
5677 ofbundle_get_a_port(bundle)->odp_port,
5678 e->vlan, ETH_ADDR_ARGS(e->mac), mac_entry_age(e));
5679 }
5680 unixctl_command_reply(conn, 200, ds_cstr(&ds));
5681 ds_destroy(&ds);
5682}
5683
5684struct ofproto_trace {
5685 struct action_xlate_ctx ctx;
5686 struct flow flow;
5687 struct ds *result;
5688};
5689
5690static void
29901626
BP
5691trace_format_rule(struct ds *result, uint8_t table_id, int level,
5692 const struct rule_dpif *rule)
abe529af
BP
5693{
5694 ds_put_char_multiple(result, '\t', level);
5695 if (!rule) {
5696 ds_put_cstr(result, "No match\n");
5697 return;
5698 }
5699
29901626
BP
5700 ds_put_format(result, "Rule: table=%"PRIu8" cookie=%#"PRIx64" ",
5701 table_id, ntohll(rule->up.flow_cookie));
79feb7df 5702 cls_rule_format(&rule->up.cr, result);
abe529af
BP
5703 ds_put_char(result, '\n');
5704
5705 ds_put_char_multiple(result, '\t', level);
5706 ds_put_cstr(result, "OpenFlow ");
79feb7df 5707 ofp_print_actions(result, rule->up.actions, rule->up.n_actions);
abe529af
BP
5708 ds_put_char(result, '\n');
5709}
5710
5711static void
5712trace_format_flow(struct ds *result, int level, const char *title,
5713 struct ofproto_trace *trace)
5714{
5715 ds_put_char_multiple(result, '\t', level);
5716 ds_put_format(result, "%s: ", title);
5717 if (flow_equal(&trace->ctx.flow, &trace->flow)) {
5718 ds_put_cstr(result, "unchanged");
5719 } else {
5720 flow_format(result, &trace->ctx.flow);
5721 trace->flow = trace->ctx.flow;
5722 }
5723 ds_put_char(result, '\n');
5724}
5725
eb9e1c26
EJ
5726static void
5727trace_format_regs(struct ds *result, int level, const char *title,
5728 struct ofproto_trace *trace)
5729{
5730 size_t i;
5731
5732 ds_put_char_multiple(result, '\t', level);
5733 ds_put_format(result, "%s:", title);
5734 for (i = 0; i < FLOW_N_REGS; i++) {
5735 ds_put_format(result, " reg%zu=0x%"PRIx32, i, trace->flow.regs[i]);
5736 }
5737 ds_put_char(result, '\n');
5738}
5739
abe529af
BP
5740static void
5741trace_resubmit(struct action_xlate_ctx *ctx, struct rule_dpif *rule)
5742{
5743 struct ofproto_trace *trace = CONTAINER_OF(ctx, struct ofproto_trace, ctx);
5744 struct ds *result = trace->result;
5745
5746 ds_put_char(result, '\n');
5747 trace_format_flow(result, ctx->recurse + 1, "Resubmitted flow", trace);
eb9e1c26 5748 trace_format_regs(result, ctx->recurse + 1, "Resubmitted regs", trace);
29901626 5749 trace_format_rule(result, ctx->table_id, ctx->recurse + 1, rule);
abe529af
BP
5750}
5751
5752static void
0e15264f 5753ofproto_unixctl_trace(struct unixctl_conn *conn, int argc, const char *argv[],
abe529af
BP
5754 void *aux OVS_UNUSED)
5755{
0e15264f 5756 const char *dpname = argv[1];
abe529af 5757 struct ofproto_dpif *ofproto;
876b0e1c
BP
5758 struct ofpbuf odp_key;
5759 struct ofpbuf *packet;
abe529af 5760 struct rule_dpif *rule;
e84173dc 5761 ovs_be16 initial_tci;
abe529af
BP
5762 struct ds result;
5763 struct flow flow;
abe529af
BP
5764 char *s;
5765
876b0e1c
BP
5766 packet = NULL;
5767 ofpbuf_init(&odp_key, 0);
abe529af
BP
5768 ds_init(&result);
5769
e84173dc
BP
5770 ofproto = ofproto_dpif_lookup(dpname);
5771 if (!ofproto) {
5772 unixctl_command_reply(conn, 501, "Unknown ofproto (use ofproto/list "
5773 "for help)");
5774 goto exit;
5775 }
0e15264f 5776 if (argc == 3 || (argc == 4 && !strcmp(argv[3], "-generate"))) {
8b3b8dd1 5777 /* ofproto/trace dpname flow [-generate] */
0e15264f
BP
5778 const char *flow_s = argv[2];
5779 const char *generate_s = argv[3];
876b0e1c
BP
5780 int error;
5781
df2c07f4 5782 /* Convert string to datapath key. */
876b0e1c 5783 ofpbuf_init(&odp_key, 0);
0e15264f 5784 error = odp_flow_key_from_string(flow_s, NULL, &odp_key);
876b0e1c
BP
5785 if (error) {
5786 unixctl_command_reply(conn, 501, "Bad flow syntax");
5787 goto exit;
5788 }
5789
5790 /* Convert odp_key to flow. */
e84173dc
BP
5791 error = ofproto_dpif_extract_flow_key(ofproto, odp_key.data,
5792 odp_key.size, &flow,
e2a6ca36 5793 &initial_tci, NULL);
e84173dc 5794 if (error == ODP_FIT_ERROR) {
876b0e1c
BP
5795 unixctl_command_reply(conn, 501, "Invalid flow");
5796 goto exit;
5797 }
8b3b8dd1
BP
5798
5799 /* Generate a packet, if requested. */
0e15264f 5800 if (generate_s) {
8b3b8dd1
BP
5801 packet = ofpbuf_new(0);
5802 flow_compose(packet, &flow);
5803 }
0e15264f 5804 } else if (argc == 6) {
abff858b 5805 /* ofproto/trace dpname priority tun_id in_port packet */
0e15264f
BP
5806 const char *priority_s = argv[2];
5807 const char *tun_id_s = argv[3];
5808 const char *in_port_s = argv[4];
5809 const char *packet_s = argv[5];
5810 uint16_t in_port = ofp_port_to_odp_port(atoi(in_port_s));
5811 ovs_be64 tun_id = htonll(strtoull(tun_id_s, NULL, 0));
5812 uint32_t priority = atoi(priority_s);
e22f1753 5813 const char *msg;
0e15264f 5814
e22f1753
BP
5815 msg = eth_from_hex(packet_s, &packet);
5816 if (msg) {
5817 unixctl_command_reply(conn, 501, msg);
876b0e1c
BP
5818 goto exit;
5819 }
5820
5821 ds_put_cstr(&result, "Packet: ");
c499c75d 5822 s = ofp_packet_to_string(packet->data, packet->size);
876b0e1c
BP
5823 ds_put_cstr(&result, s);
5824 free(s);
5825
abff858b 5826 flow_extract(packet, priority, tun_id, in_port, &flow);
e84173dc 5827 initial_tci = flow.vlan_tci;
876b0e1c 5828 } else {
abe529af
BP
5829 unixctl_command_reply(conn, 501, "Bad command syntax");
5830 goto exit;
5831 }
5832
abe529af
BP
5833 ds_put_cstr(&result, "Flow: ");
5834 flow_format(&result, &flow);
5835 ds_put_char(&result, '\n');
5836
29901626
BP
5837 rule = rule_dpif_lookup(ofproto, &flow, 0);
5838 trace_format_rule(&result, 0, 0, rule);
abe529af
BP
5839 if (rule) {
5840 struct ofproto_trace trace;
5841 struct ofpbuf *odp_actions;
5842
5843 trace.result = &result;
5844 trace.flow = flow;
54834960
EJ
5845 action_xlate_ctx_init(&trace.ctx, ofproto, &flow, initial_tci,
5846 rule->up.flow_cookie, packet);
abe529af
BP
5847 trace.ctx.resubmit_hook = trace_resubmit;
5848 odp_actions = xlate_actions(&trace.ctx,
5849 rule->up.actions, rule->up.n_actions);
5850
5851 ds_put_char(&result, '\n');
5852 trace_format_flow(&result, 0, "Final flow", &trace);
5853 ds_put_cstr(&result, "Datapath actions: ");
5854 format_odp_actions(&result, odp_actions->data, odp_actions->size);
5855 ofpbuf_delete(odp_actions);
876b0e1c
BP
5856
5857 if (!trace.ctx.may_set_up_flow) {
5858 if (packet) {
5859 ds_put_cstr(&result, "\nThis flow is not cachable.");
5860 } else {
5861 ds_put_cstr(&result, "\nThe datapath actions are incomplete--"
5862 "for complete actions, please supply a packet.");
5863 }
5864 }
abe529af
BP
5865 }
5866
5867 unixctl_command_reply(conn, 200, ds_cstr(&result));
5868
5869exit:
5870 ds_destroy(&result);
876b0e1c
BP
5871 ofpbuf_delete(packet);
5872 ofpbuf_uninit(&odp_key);
abe529af
BP
5873}
5874
7ee20df1 5875static void
0e15264f
BP
5876ofproto_dpif_clog(struct unixctl_conn *conn OVS_UNUSED, int argc OVS_UNUSED,
5877 const char *argv[] OVS_UNUSED, void *aux OVS_UNUSED)
7ee20df1
BP
5878{
5879 clogged = true;
5880 unixctl_command_reply(conn, 200, NULL);
5881}
5882
5883static void
0e15264f
BP
5884ofproto_dpif_unclog(struct unixctl_conn *conn OVS_UNUSED, int argc OVS_UNUSED,
5885 const char *argv[] OVS_UNUSED, void *aux OVS_UNUSED)
7ee20df1
BP
5886{
5887 clogged = false;
5888 unixctl_command_reply(conn, 200, NULL);
5889}
5890
abe529af
BP
5891static void
5892ofproto_dpif_unixctl_init(void)
5893{
5894 static bool registered;
5895 if (registered) {
5896 return;
5897 }
5898 registered = true;
5899
0e15264f
BP
5900 unixctl_command_register(
5901 "ofproto/trace",
5902 "bridge {tun_id in_port packet | odp_flow [-generate]}",
5903 2, 4, ofproto_unixctl_trace, NULL);
5904 unixctl_command_register("fdb/flush", "bridge", 1, 1,
5905 ofproto_unixctl_fdb_flush, NULL);
5906 unixctl_command_register("fdb/show", "bridge", 1, 1,
5907 ofproto_unixctl_fdb_show, NULL);
5908 unixctl_command_register("ofproto/clog", "", 0, 0,
5909 ofproto_dpif_clog, NULL);
5910 unixctl_command_register("ofproto/unclog", "", 0, 0,
5911 ofproto_dpif_unclog, NULL);
abe529af
BP
5912}
5913\f
52a90c29
BP
5914/* Linux VLAN device support (e.g. "eth0.10" for VLAN 10.)
5915 *
5916 * This is deprecated. It is only for compatibility with broken device drivers
5917 * in old versions of Linux that do not properly support VLANs when VLAN
5918 * devices are not used. When broken device drivers are no longer in
5919 * widespread use, we will delete these interfaces. */
5920
5921static int
5922set_realdev(struct ofport *ofport_, uint16_t realdev_ofp_port, int vid)
5923{
5924 struct ofproto_dpif *ofproto = ofproto_dpif_cast(ofport_->ofproto);
5925 struct ofport_dpif *ofport = ofport_dpif_cast(ofport_);
5926
5927 if (realdev_ofp_port == ofport->realdev_ofp_port
5928 && vid == ofport->vlandev_vid) {
5929 return 0;
5930 }
5931
5932 ofproto->need_revalidate = true;
5933
5934 if (ofport->realdev_ofp_port) {
5935 vsp_remove(ofport);
5936 }
5937 if (realdev_ofp_port && ofport->bundle) {
5938 /* vlandevs are enslaved to their realdevs, so they are not allowed to
5939 * themselves be part of a bundle. */
5940 bundle_set(ofport->up.ofproto, ofport->bundle, NULL);
5941 }
5942
5943 ofport->realdev_ofp_port = realdev_ofp_port;
5944 ofport->vlandev_vid = vid;
5945
5946 if (realdev_ofp_port) {
5947 vsp_add(ofport, realdev_ofp_port, vid);
5948 }
5949
5950 return 0;
5951}
5952
5953static uint32_t
5954hash_realdev_vid(uint16_t realdev_ofp_port, int vid)
5955{
5956 return hash_2words(realdev_ofp_port, vid);
5957}
5958
5959static uint32_t
5960vsp_realdev_to_vlandev(const struct ofproto_dpif *ofproto,
5961 uint32_t realdev_odp_port, ovs_be16 vlan_tci)
5962{
5963 if (!hmap_is_empty(&ofproto->realdev_vid_map)) {
5964 uint16_t realdev_ofp_port = odp_port_to_ofp_port(realdev_odp_port);
5965 int vid = vlan_tci_to_vid(vlan_tci);
5966 const struct vlan_splinter *vsp;
5967
5968 HMAP_FOR_EACH_WITH_HASH (vsp, realdev_vid_node,
5969 hash_realdev_vid(realdev_ofp_port, vid),
5970 &ofproto->realdev_vid_map) {
5971 if (vsp->realdev_ofp_port == realdev_ofp_port
5972 && vsp->vid == vid) {
5973 return ofp_port_to_odp_port(vsp->vlandev_ofp_port);
5974 }
5975 }
5976 }
5977 return realdev_odp_port;
5978}
5979
5980static struct vlan_splinter *
5981vlandev_find(const struct ofproto_dpif *ofproto, uint16_t vlandev_ofp_port)
5982{
5983 struct vlan_splinter *vsp;
5984
5985 HMAP_FOR_EACH_WITH_HASH (vsp, vlandev_node, hash_int(vlandev_ofp_port, 0),
5986 &ofproto->vlandev_map) {
5987 if (vsp->vlandev_ofp_port == vlandev_ofp_port) {
5988 return vsp;
5989 }
5990 }
5991
5992 return NULL;
5993}
5994
5995static uint16_t
5996vsp_vlandev_to_realdev(const struct ofproto_dpif *ofproto,
5997 uint16_t vlandev_ofp_port, int *vid)
5998{
5999 if (!hmap_is_empty(&ofproto->vlandev_map)) {
6000 const struct vlan_splinter *vsp;
6001
6002 vsp = vlandev_find(ofproto, vlandev_ofp_port);
6003 if (vsp) {
6004 if (vid) {
6005 *vid = vsp->vid;
6006 }
6007 return vsp->realdev_ofp_port;
6008 }
6009 }
6010 return 0;
6011}
6012
6013static void
6014vsp_remove(struct ofport_dpif *port)
6015{
6016 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
6017 struct vlan_splinter *vsp;
6018
6019 vsp = vlandev_find(ofproto, port->up.ofp_port);
6020 if (vsp) {
6021 hmap_remove(&ofproto->vlandev_map, &vsp->vlandev_node);
6022 hmap_remove(&ofproto->realdev_vid_map, &vsp->realdev_vid_node);
6023 free(vsp);
6024
6025 port->realdev_ofp_port = 0;
6026 } else {
6027 VLOG_ERR("missing vlan device record");
6028 }
6029}
6030
6031static void
6032vsp_add(struct ofport_dpif *port, uint16_t realdev_ofp_port, int vid)
6033{
6034 struct ofproto_dpif *ofproto = ofproto_dpif_cast(port->up.ofproto);
6035
6036 if (!vsp_vlandev_to_realdev(ofproto, port->up.ofp_port, NULL)
6037 && (vsp_realdev_to_vlandev(ofproto, realdev_ofp_port, htons(vid))
6038 == realdev_ofp_port)) {
6039 struct vlan_splinter *vsp;
6040
6041 vsp = xmalloc(sizeof *vsp);
6042 hmap_insert(&ofproto->vlandev_map, &vsp->vlandev_node,
6043 hash_int(port->up.ofp_port, 0));
6044 hmap_insert(&ofproto->realdev_vid_map, &vsp->realdev_vid_node,
6045 hash_realdev_vid(realdev_ofp_port, vid));
6046 vsp->realdev_ofp_port = realdev_ofp_port;
6047 vsp->vlandev_ofp_port = port->up.ofp_port;
6048 vsp->vid = vid;
6049
6050 port->realdev_ofp_port = realdev_ofp_port;
6051 } else {
6052 VLOG_ERR("duplicate vlan device record");
6053 }
6054}
6055\f
abe529af
BP
6056const struct ofproto_class ofproto_dpif_class = {
6057 enumerate_types,
6058 enumerate_names,
6059 del,
6060 alloc,
6061 construct,
6062 destruct,
6063 dealloc,
6064 run,
5fcc0d00 6065 run_fast,
abe529af
BP
6066 wait,
6067 flush,
6c1491fb
BP
6068 get_features,
6069 get_tables,
abe529af
BP
6070 port_alloc,
6071 port_construct,
6072 port_destruct,
6073 port_dealloc,
6074 port_modified,
6075 port_reconfigured,
6076 port_query_by_name,
6077 port_add,
6078 port_del,
6527c598 6079 port_get_stats,
abe529af
BP
6080 port_dump_start,
6081 port_dump_next,
6082 port_dump_done,
6083 port_poll,
6084 port_poll_wait,
6085 port_is_lacp_current,
0ab6decf 6086 NULL, /* rule_choose_table */
abe529af
BP
6087 rule_alloc,
6088 rule_construct,
6089 rule_destruct,
6090 rule_dealloc,
abe529af
BP
6091 rule_get_stats,
6092 rule_execute,
6093 rule_modify_actions,
7257b535 6094 set_frag_handling,
abe529af
BP
6095 packet_out,
6096 set_netflow,
6097 get_netflow_ids,
6098 set_sflow,
6099 set_cfm,
a5610457 6100 get_cfm_fault,
1de11730 6101 get_cfm_remote_mpids,
21f7563c
JP
6102 set_stp,
6103 get_stp_status,
6104 set_stp_port,
6105 get_stp_port_status,
8b36f51e 6106 set_queues,
abe529af
BP
6107 bundle_set,
6108 bundle_remove,
6109 mirror_set,
9d24de3b 6110 mirror_get_stats,
abe529af
BP
6111 set_flood_vlans,
6112 is_mirror_output_bundle,
8402c74b 6113 forward_bpdu_changed,
52a90c29 6114 set_realdev,
abe529af 6115};