1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (c) 2015 Nicira, Inc.
4 */
5
6 #include <linux/module.h>
7 #include <linux/openvswitch.h>
8 #include <linux/tcp.h>
9 #include <linux/udp.h>
10 #include <linux/sctp.h>
11 #include <linux/static_key.h>
12 #include <linux/string_helpers.h>
13 #include <net/ip.h>
14 #include <net/genetlink.h>
15 #include <net/netfilter/nf_conntrack_core.h>
16 #include <net/netfilter/nf_conntrack_count.h>
17 #include <net/netfilter/nf_conntrack_helper.h>
18 #include <net/netfilter/nf_conntrack_labels.h>
19 #include <net/netfilter/nf_conntrack_seqadj.h>
20 #include <net/netfilter/nf_conntrack_timeout.h>
21 #include <net/netfilter/nf_conntrack_zones.h>
22 #include <net/netfilter/ipv6/nf_defrag_ipv6.h>
23 #include <net/ipv6_frag.h>
24
25 #if IS_ENABLED(CONFIG_NF_NAT)
26 #include <net/netfilter/nf_nat.h>
27 #endif
28
29 #include <net/netfilter/nf_conntrack_act_ct.h>
30
31 #include "datapath.h"
32 #include "drop.h"
33 #include "conntrack.h"
34 #include "flow.h"
35 #include "flow_netlink.h"
36
37 struct ovs_ct_len_tbl {
38 int maxlen;
39 int minlen;
40 };
41
42 /* Metadata mark for masked write to conntrack mark */
43 struct md_mark {
44 u32 value;
45 u32 mask;
46 };
47
48 /* Metadata label for masked write to conntrack label. */
49 struct md_labels {
50 struct ovs_key_ct_labels value;
51 struct ovs_key_ct_labels mask;
52 };
53
54 enum ovs_ct_nat {
55 OVS_CT_NAT = 1 << 0, /* NAT for committed connections only. */
56 OVS_CT_SRC_NAT = 1 << 1, /* Source NAT for NEW connections. */
57 OVS_CT_DST_NAT = 1 << 2, /* Destination NAT for NEW connections. */
58 };
59
60 /* Conntrack action context for execution. */
61 struct ovs_conntrack_info {
62 struct nf_conntrack_helper *helper;
63 struct nf_conntrack_zone zone;
64 struct nf_conn *ct;
65 u8 commit : 1;
66 u8 nat : 3; /* enum ovs_ct_nat */
67 u8 force : 1;
68 u8 have_eventmask : 1;
69 u16 family;
70 u32 eventmask; /* Mask of 1 << IPCT_*. */
71 struct md_mark mark;
72 struct md_labels labels;
73 char timeout[CTNL_TIMEOUT_NAME_MAX];
74 struct nf_ct_timeout *nf_ct_timeout;
75 #if IS_ENABLED(CONFIG_NF_NAT)
76 struct nf_nat_range2 range; /* Only present for SRC NAT and DST NAT. */
77 #endif
78 };
79
80 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
81 #define OVS_CT_LIMIT_UNLIMITED 0
82 #define OVS_CT_LIMIT_DEFAULT OVS_CT_LIMIT_UNLIMITED
83 #define CT_LIMIT_HASH_BUCKETS 512
84 static DEFINE_STATIC_KEY_FALSE(ovs_ct_limit_enabled);
85
86 struct ovs_ct_limit {
87 /* Elements in ovs_ct_limit_info->limits hash table */
88 struct hlist_node hlist_node;
89 struct rcu_head rcu;
90 u16 zone;
91 u32 limit;
92 };
93
94 struct ovs_ct_limit_info {
95 u32 default_limit;
96 struct hlist_head *limits;
97 struct nf_conncount_data *data;
98 };
99
100 static const struct nla_policy ct_limit_policy[OVS_CT_LIMIT_ATTR_MAX + 1] = {
101 [OVS_CT_LIMIT_ATTR_ZONE_LIMIT] = { .type = NLA_NESTED, },
102 };
103 #endif
104
105 static bool labels_nonzero(const struct ovs_key_ct_labels *labels);
106
107 static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info);
108
key_to_nfproto(const struct sw_flow_key * key)109 static u16 key_to_nfproto(const struct sw_flow_key *key)
110 {
111 switch (ntohs(key->eth.type)) {
112 case ETH_P_IP:
113 return NFPROTO_IPV4;
114 case ETH_P_IPV6:
115 return NFPROTO_IPV6;
116 default:
117 return NFPROTO_UNSPEC;
118 }
119 }
120
121 /* Map SKB connection state into the values used by flow definition. */
ovs_ct_get_state(enum ip_conntrack_info ctinfo)122 static u8 ovs_ct_get_state(enum ip_conntrack_info ctinfo)
123 {
124 u8 ct_state = OVS_CS_F_TRACKED;
125
126 switch (ctinfo) {
127 case IP_CT_ESTABLISHED_REPLY:
128 case IP_CT_RELATED_REPLY:
129 ct_state |= OVS_CS_F_REPLY_DIR;
130 break;
131 default:
132 break;
133 }
134
135 switch (ctinfo) {
136 case IP_CT_ESTABLISHED:
137 case IP_CT_ESTABLISHED_REPLY:
138 ct_state |= OVS_CS_F_ESTABLISHED;
139 break;
140 case IP_CT_RELATED:
141 case IP_CT_RELATED_REPLY:
142 ct_state |= OVS_CS_F_RELATED;
143 break;
144 case IP_CT_NEW:
145 ct_state |= OVS_CS_F_NEW;
146 break;
147 default:
148 break;
149 }
150
151 return ct_state;
152 }
153
ovs_ct_get_mark(const struct nf_conn * ct)154 static u32 ovs_ct_get_mark(const struct nf_conn *ct)
155 {
156 #if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK)
157 return ct ? READ_ONCE(ct->mark) : 0;
158 #else
159 return 0;
160 #endif
161 }
162
163 /* Guard against conntrack labels max size shrinking below 128 bits. */
164 #if NF_CT_LABELS_MAX_SIZE < 16
165 #error NF_CT_LABELS_MAX_SIZE must be at least 16 bytes
166 #endif
167
ovs_ct_get_labels(const struct nf_conn * ct,struct ovs_key_ct_labels * labels)168 static void ovs_ct_get_labels(const struct nf_conn *ct,
169 struct ovs_key_ct_labels *labels)
170 {
171 struct nf_conn_labels *cl = NULL;
172
173 if (ct) {
174 if (ct->master && !nf_ct_is_confirmed(ct))
175 ct = ct->master;
176 cl = nf_ct_labels_find(ct);
177 }
178 if (cl)
179 memcpy(labels, cl->bits, OVS_CT_LABELS_LEN);
180 else
181 memset(labels, 0, OVS_CT_LABELS_LEN);
182 }
183
__ovs_ct_update_key_orig_tp(struct sw_flow_key * key,const struct nf_conntrack_tuple * orig,u8 icmp_proto)184 static void __ovs_ct_update_key_orig_tp(struct sw_flow_key *key,
185 const struct nf_conntrack_tuple *orig,
186 u8 icmp_proto)
187 {
188 key->ct_orig_proto = orig->dst.protonum;
189 if (orig->dst.protonum == icmp_proto) {
190 key->ct.orig_tp.src = htons(orig->dst.u.icmp.type);
191 key->ct.orig_tp.dst = htons(orig->dst.u.icmp.code);
192 } else {
193 key->ct.orig_tp.src = orig->src.u.all;
194 key->ct.orig_tp.dst = orig->dst.u.all;
195 }
196 }
197
__ovs_ct_update_key(struct sw_flow_key * key,u8 state,const struct nf_conntrack_zone * zone,const struct nf_conn * ct)198 static void __ovs_ct_update_key(struct sw_flow_key *key, u8 state,
199 const struct nf_conntrack_zone *zone,
200 const struct nf_conn *ct)
201 {
202 key->ct_state = state;
203 key->ct_zone = zone->id;
204 key->ct.mark = ovs_ct_get_mark(ct);
205 ovs_ct_get_labels(ct, &key->ct.labels);
206
207 if (ct) {
208 const struct nf_conntrack_tuple *orig;
209
210 /* Use the master if we have one. */
211 if (ct->master)
212 ct = ct->master;
213 orig = &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple;
214
215 /* IP version must match with the master connection. */
216 if (key->eth.type == htons(ETH_P_IP) &&
217 nf_ct_l3num(ct) == NFPROTO_IPV4) {
218 key->ipv4.ct_orig.src = orig->src.u3.ip;
219 key->ipv4.ct_orig.dst = orig->dst.u3.ip;
220 __ovs_ct_update_key_orig_tp(key, orig, IPPROTO_ICMP);
221 return;
222 } else if (key->eth.type == htons(ETH_P_IPV6) &&
223 !sw_flow_key_is_nd(key) &&
224 nf_ct_l3num(ct) == NFPROTO_IPV6) {
225 key->ipv6.ct_orig.src = orig->src.u3.in6;
226 key->ipv6.ct_orig.dst = orig->dst.u3.in6;
227 __ovs_ct_update_key_orig_tp(key, orig, NEXTHDR_ICMP);
228 return;
229 }
230 }
231 /* Clear 'ct_orig_proto' to mark the non-existence of conntrack
232 * original direction key fields.
233 */
234 key->ct_orig_proto = 0;
235 }
236
237 /* Update 'key' based on skb->_nfct. If 'post_ct' is true, then OVS has
238 * previously sent the packet to conntrack via the ct action. If
239 * 'keep_nat_flags' is true, the existing NAT flags retained, else they are
240 * initialized from the connection status.
241 */
ovs_ct_update_key(const struct sk_buff * skb,const struct ovs_conntrack_info * info,struct sw_flow_key * key,bool post_ct,bool keep_nat_flags)242 static void ovs_ct_update_key(const struct sk_buff *skb,
243 const struct ovs_conntrack_info *info,
244 struct sw_flow_key *key, bool post_ct,
245 bool keep_nat_flags)
246 {
247 const struct nf_conntrack_zone *zone = &nf_ct_zone_dflt;
248 enum ip_conntrack_info ctinfo;
249 struct nf_conn *ct;
250 u8 state = 0;
251
252 ct = nf_ct_get(skb, &ctinfo);
253 if (ct) {
254 state = ovs_ct_get_state(ctinfo);
255 /* All unconfirmed entries are NEW connections. */
256 if (!nf_ct_is_confirmed(ct))
257 state |= OVS_CS_F_NEW;
258 /* OVS persists the related flag for the duration of the
259 * connection.
260 */
261 if (ct->master)
262 state |= OVS_CS_F_RELATED;
263 if (keep_nat_flags) {
264 state |= key->ct_state & OVS_CS_F_NAT_MASK;
265 } else {
266 if (ct->status & IPS_SRC_NAT)
267 state |= OVS_CS_F_SRC_NAT;
268 if (ct->status & IPS_DST_NAT)
269 state |= OVS_CS_F_DST_NAT;
270 }
271 zone = nf_ct_zone(ct);
272 } else if (post_ct) {
273 state = OVS_CS_F_TRACKED | OVS_CS_F_INVALID;
274 if (info)
275 zone = &info->zone;
276 }
277 __ovs_ct_update_key(key, state, zone, ct);
278 }
279
280 /* This is called to initialize CT key fields possibly coming in from the local
281 * stack.
282 */
ovs_ct_fill_key(const struct sk_buff * skb,struct sw_flow_key * key,bool post_ct)283 void ovs_ct_fill_key(const struct sk_buff *skb,
284 struct sw_flow_key *key,
285 bool post_ct)
286 {
287 ovs_ct_update_key(skb, NULL, key, post_ct, false);
288 }
289
ovs_ct_put_key(const struct sw_flow_key * swkey,const struct sw_flow_key * output,struct sk_buff * skb)290 int ovs_ct_put_key(const struct sw_flow_key *swkey,
291 const struct sw_flow_key *output, struct sk_buff *skb)
292 {
293 if (nla_put_u32(skb, OVS_KEY_ATTR_CT_STATE, output->ct_state))
294 return -EMSGSIZE;
295
296 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
297 nla_put_u16(skb, OVS_KEY_ATTR_CT_ZONE, output->ct_zone))
298 return -EMSGSIZE;
299
300 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) &&
301 nla_put_u32(skb, OVS_KEY_ATTR_CT_MARK, output->ct.mark))
302 return -EMSGSIZE;
303
304 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
305 nla_put(skb, OVS_KEY_ATTR_CT_LABELS, sizeof(output->ct.labels),
306 &output->ct.labels))
307 return -EMSGSIZE;
308
309 if (swkey->ct_orig_proto) {
310 if (swkey->eth.type == htons(ETH_P_IP)) {
311 struct ovs_key_ct_tuple_ipv4 orig;
312
313 memset(&orig, 0, sizeof(orig));
314 orig.ipv4_src = output->ipv4.ct_orig.src;
315 orig.ipv4_dst = output->ipv4.ct_orig.dst;
316 orig.src_port = output->ct.orig_tp.src;
317 orig.dst_port = output->ct.orig_tp.dst;
318 orig.ipv4_proto = output->ct_orig_proto;
319
320 if (nla_put(skb, OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4,
321 sizeof(orig), &orig))
322 return -EMSGSIZE;
323 } else if (swkey->eth.type == htons(ETH_P_IPV6)) {
324 struct ovs_key_ct_tuple_ipv6 orig;
325
326 memset(&orig, 0, sizeof(orig));
327 memcpy(orig.ipv6_src, output->ipv6.ct_orig.src.s6_addr32,
328 sizeof(orig.ipv6_src));
329 memcpy(orig.ipv6_dst, output->ipv6.ct_orig.dst.s6_addr32,
330 sizeof(orig.ipv6_dst));
331 orig.src_port = output->ct.orig_tp.src;
332 orig.dst_port = output->ct.orig_tp.dst;
333 orig.ipv6_proto = output->ct_orig_proto;
334
335 if (nla_put(skb, OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6,
336 sizeof(orig), &orig))
337 return -EMSGSIZE;
338 }
339 }
340
341 return 0;
342 }
343
ovs_ct_set_mark(struct nf_conn * ct,struct sw_flow_key * key,u32 ct_mark,u32 mask)344 static int ovs_ct_set_mark(struct nf_conn *ct, struct sw_flow_key *key,
345 u32 ct_mark, u32 mask)
346 {
347 #if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK)
348 u32 new_mark;
349
350 new_mark = ct_mark | (READ_ONCE(ct->mark) & ~(mask));
351 if (READ_ONCE(ct->mark) != new_mark) {
352 WRITE_ONCE(ct->mark, new_mark);
353 if (nf_ct_is_confirmed(ct))
354 nf_conntrack_event_cache(IPCT_MARK, ct);
355 key->ct.mark = new_mark;
356 }
357
358 return 0;
359 #else
360 return -ENOTSUPP;
361 #endif
362 }
363
ovs_ct_get_conn_labels(struct nf_conn * ct)364 static struct nf_conn_labels *ovs_ct_get_conn_labels(struct nf_conn *ct)
365 {
366 struct nf_conn_labels *cl;
367
368 cl = nf_ct_labels_find(ct);
369 if (!cl && !nf_ct_is_confirmed(ct)) {
370 nf_ct_labels_ext_add(ct);
371 cl = nf_ct_labels_find(ct);
372 }
373
374 return cl;
375 }
376
377 /* Initialize labels for a new, yet to be committed conntrack entry. Note that
378 * since the new connection is not yet confirmed, and thus no-one else has
379 * access to it's labels, we simply write them over.
380 */
ovs_ct_init_labels(struct nf_conn * ct,struct sw_flow_key * key,const struct ovs_key_ct_labels * labels,const struct ovs_key_ct_labels * mask)381 static int ovs_ct_init_labels(struct nf_conn *ct, struct sw_flow_key *key,
382 const struct ovs_key_ct_labels *labels,
383 const struct ovs_key_ct_labels *mask)
384 {
385 struct nf_conn_labels *cl, *master_cl;
386 bool have_mask = labels_nonzero(mask);
387
388 /* Inherit master's labels to the related connection? */
389 master_cl = ct->master ? nf_ct_labels_find(ct->master) : NULL;
390
391 if (!master_cl && !have_mask)
392 return 0; /* Nothing to do. */
393
394 cl = ovs_ct_get_conn_labels(ct);
395 if (!cl)
396 return -ENOSPC;
397
398 /* Inherit the master's labels, if any. */
399 if (master_cl)
400 *cl = *master_cl;
401
402 if (have_mask) {
403 u32 *dst = (u32 *)cl->bits;
404 int i;
405
406 for (i = 0; i < OVS_CT_LABELS_LEN_32; i++)
407 dst[i] = (dst[i] & ~mask->ct_labels_32[i]) |
408 (labels->ct_labels_32[i]
409 & mask->ct_labels_32[i]);
410 }
411
412 /* Labels are included in the IPCTNL_MSG_CT_NEW event only if the
413 * IPCT_LABEL bit is set in the event cache.
414 */
415 nf_conntrack_event_cache(IPCT_LABEL, ct);
416
417 memcpy(&key->ct.labels, cl->bits, OVS_CT_LABELS_LEN);
418
419 return 0;
420 }
421
ovs_ct_set_labels(struct nf_conn * ct,struct sw_flow_key * key,const struct ovs_key_ct_labels * labels,const struct ovs_key_ct_labels * mask)422 static int ovs_ct_set_labels(struct nf_conn *ct, struct sw_flow_key *key,
423 const struct ovs_key_ct_labels *labels,
424 const struct ovs_key_ct_labels *mask)
425 {
426 struct nf_conn_labels *cl;
427 int err;
428
429 cl = ovs_ct_get_conn_labels(ct);
430 if (!cl)
431 return -ENOSPC;
432
433 err = nf_connlabels_replace(ct, labels->ct_labels_32,
434 mask->ct_labels_32,
435 OVS_CT_LABELS_LEN_32);
436 if (err)
437 return err;
438
439 memcpy(&key->ct.labels, cl->bits, OVS_CT_LABELS_LEN);
440
441 return 0;
442 }
443
ovs_ct_handle_fragments(struct net * net,struct sw_flow_key * key,u16 zone,int family,struct sk_buff * skb)444 static int ovs_ct_handle_fragments(struct net *net, struct sw_flow_key *key,
445 u16 zone, int family, struct sk_buff *skb)
446 {
447 struct ovs_skb_cb ovs_cb = *OVS_CB(skb);
448 int err;
449
450 err = nf_ct_handle_fragments(net, skb, zone, family, &key->ip.proto, &ovs_cb.mru);
451 if (err)
452 return err;
453
454 /* The key extracted from the fragment that completed this datagram
455 * likely didn't have an L4 header, so regenerate it.
456 */
457 ovs_flow_key_update_l3l4(skb, key);
458 key->ip.frag = OVS_FRAG_TYPE_NONE;
459 *OVS_CB(skb) = ovs_cb;
460
461 return 0;
462 }
463
464 /* This replicates logic from nf_conntrack_core.c that is not exported. */
465 static enum ip_conntrack_info
ovs_ct_get_info(const struct nf_conntrack_tuple_hash * h)466 ovs_ct_get_info(const struct nf_conntrack_tuple_hash *h)
467 {
468 const struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
469
470 if (NF_CT_DIRECTION(h) == IP_CT_DIR_REPLY)
471 return IP_CT_ESTABLISHED_REPLY;
472 /* Once we've had two way comms, always ESTABLISHED. */
473 if (test_bit(IPS_SEEN_REPLY_BIT, &ct->status))
474 return IP_CT_ESTABLISHED;
475 if (test_bit(IPS_EXPECTED_BIT, &ct->status))
476 return IP_CT_RELATED;
477 return IP_CT_NEW;
478 }
479
480 /* Find an existing connection which this packet belongs to without
481 * re-attributing statistics or modifying the connection state. This allows an
482 * skb->_nfct lost due to an upcall to be recovered during actions execution.
483 *
484 * Must be called with rcu_read_lock.
485 *
486 * On success, populates skb->_nfct and returns the connection. Returns NULL
487 * if there is no existing entry.
488 */
489 static struct nf_conn *
ovs_ct_find_existing(struct net * net,const struct nf_conntrack_zone * zone,u8 l3num,struct sk_buff * skb,bool natted)490 ovs_ct_find_existing(struct net *net, const struct nf_conntrack_zone *zone,
491 u8 l3num, struct sk_buff *skb, bool natted)
492 {
493 struct nf_conntrack_tuple tuple;
494 struct nf_conntrack_tuple_hash *h;
495 struct nf_conn *ct;
496
497 if (!nf_ct_get_tuplepr(skb, skb_network_offset(skb), l3num,
498 net, &tuple)) {
499 pr_debug("ovs_ct_find_existing: Can't get tuple\n");
500 return NULL;
501 }
502
503 /* Must invert the tuple if skb has been transformed by NAT. */
504 if (natted) {
505 struct nf_conntrack_tuple inverse;
506
507 if (!nf_ct_invert_tuple(&inverse, &tuple)) {
508 pr_debug("ovs_ct_find_existing: Inversion failed!\n");
509 return NULL;
510 }
511 tuple = inverse;
512 }
513
514 /* look for tuple match */
515 h = nf_conntrack_find_get(net, zone, &tuple);
516 if (!h)
517 return NULL; /* Not found. */
518
519 ct = nf_ct_tuplehash_to_ctrack(h);
520
521 /* Inverted packet tuple matches the reverse direction conntrack tuple,
522 * select the other tuplehash to get the right 'ctinfo' bits for this
523 * packet.
524 */
525 if (natted)
526 h = &ct->tuplehash[!h->tuple.dst.dir];
527
528 nf_ct_set(skb, ct, ovs_ct_get_info(h));
529 return ct;
530 }
531
532 static
ovs_ct_executed(struct net * net,const struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb,bool * ct_executed)533 struct nf_conn *ovs_ct_executed(struct net *net,
534 const struct sw_flow_key *key,
535 const struct ovs_conntrack_info *info,
536 struct sk_buff *skb,
537 bool *ct_executed)
538 {
539 struct nf_conn *ct = NULL;
540
541 /* If no ct, check if we have evidence that an existing conntrack entry
542 * might be found for this skb. This happens when we lose a skb->_nfct
543 * due to an upcall, or if the direction is being forced. If the
544 * connection was not confirmed, it is not cached and needs to be run
545 * through conntrack again.
546 */
547 *ct_executed = (key->ct_state & OVS_CS_F_TRACKED) &&
548 !(key->ct_state & OVS_CS_F_INVALID) &&
549 (key->ct_zone == info->zone.id);
550
551 if (*ct_executed || (!key->ct_state && info->force)) {
552 ct = ovs_ct_find_existing(net, &info->zone, info->family, skb,
553 !!(key->ct_state &
554 OVS_CS_F_NAT_MASK));
555 }
556
557 return ct;
558 }
559
560 /* Determine whether skb->_nfct is equal to the result of conntrack lookup. */
skb_nfct_cached(struct net * net,const struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb)561 static bool skb_nfct_cached(struct net *net,
562 const struct sw_flow_key *key,
563 const struct ovs_conntrack_info *info,
564 struct sk_buff *skb)
565 {
566 enum ip_conntrack_info ctinfo;
567 struct nf_conn *ct;
568 bool ct_executed = true;
569
570 ct = nf_ct_get(skb, &ctinfo);
571 if (!ct)
572 ct = ovs_ct_executed(net, key, info, skb, &ct_executed);
573
574 if (ct)
575 nf_ct_get(skb, &ctinfo);
576 else
577 return false;
578
579 if (!net_eq(net, read_pnet(&ct->ct_net)))
580 return false;
581 if (!nf_ct_zone_equal_any(info->ct, nf_ct_zone(ct)))
582 return false;
583 if (info->helper) {
584 struct nf_conn_help *help;
585
586 help = nf_ct_ext_find(ct, NF_CT_EXT_HELPER);
587 if (help && rcu_access_pointer(help->helper) != info->helper)
588 return false;
589 }
590 if (info->nf_ct_timeout) {
591 struct nf_conn_timeout *timeout_ext;
592
593 timeout_ext = nf_ct_timeout_find(ct);
594 if (!timeout_ext || info->nf_ct_timeout !=
595 rcu_dereference(timeout_ext->timeout))
596 return false;
597 }
598 /* Force conntrack entry direction to the current packet? */
599 if (info->force && CTINFO2DIR(ctinfo) != IP_CT_DIR_ORIGINAL) {
600 /* Delete the conntrack entry if confirmed, else just release
601 * the reference.
602 */
603 if (nf_ct_is_confirmed(ct))
604 nf_ct_delete(ct, 0, 0);
605
606 nf_reset_ct(skb);
607 nf_ct_set(skb, NULL, 0);
608 return false;
609 }
610
611 return ct_executed;
612 }
613
614 #if IS_ENABLED(CONFIG_NF_NAT)
ovs_nat_update_key(struct sw_flow_key * key,const struct sk_buff * skb,enum nf_nat_manip_type maniptype)615 static void ovs_nat_update_key(struct sw_flow_key *key,
616 const struct sk_buff *skb,
617 enum nf_nat_manip_type maniptype)
618 {
619 if (maniptype == NF_NAT_MANIP_SRC) {
620 __be16 src;
621
622 key->ct_state |= OVS_CS_F_SRC_NAT;
623 if (key->eth.type == htons(ETH_P_IP))
624 key->ipv4.addr.src = ip_hdr(skb)->saddr;
625 else if (key->eth.type == htons(ETH_P_IPV6))
626 memcpy(&key->ipv6.addr.src, &ipv6_hdr(skb)->saddr,
627 sizeof(key->ipv6.addr.src));
628 else
629 return;
630
631 if (key->ip.proto == IPPROTO_UDP)
632 src = udp_hdr(skb)->source;
633 else if (key->ip.proto == IPPROTO_TCP)
634 src = tcp_hdr(skb)->source;
635 else if (key->ip.proto == IPPROTO_SCTP)
636 src = sctp_hdr(skb)->source;
637 else
638 return;
639
640 key->tp.src = src;
641 } else {
642 __be16 dst;
643
644 key->ct_state |= OVS_CS_F_DST_NAT;
645 if (key->eth.type == htons(ETH_P_IP))
646 key->ipv4.addr.dst = ip_hdr(skb)->daddr;
647 else if (key->eth.type == htons(ETH_P_IPV6))
648 memcpy(&key->ipv6.addr.dst, &ipv6_hdr(skb)->daddr,
649 sizeof(key->ipv6.addr.dst));
650 else
651 return;
652
653 if (key->ip.proto == IPPROTO_UDP)
654 dst = udp_hdr(skb)->dest;
655 else if (key->ip.proto == IPPROTO_TCP)
656 dst = tcp_hdr(skb)->dest;
657 else if (key->ip.proto == IPPROTO_SCTP)
658 dst = sctp_hdr(skb)->dest;
659 else
660 return;
661
662 key->tp.dst = dst;
663 }
664 }
665
666 /* Returns NF_DROP if the packet should be dropped, NF_ACCEPT otherwise. */
ovs_ct_nat(struct net * net,struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb,struct nf_conn * ct,enum ip_conntrack_info ctinfo)667 static int ovs_ct_nat(struct net *net, struct sw_flow_key *key,
668 const struct ovs_conntrack_info *info,
669 struct sk_buff *skb, struct nf_conn *ct,
670 enum ip_conntrack_info ctinfo)
671 {
672 int err, action = 0;
673
674 if (!(info->nat & OVS_CT_NAT))
675 return NF_ACCEPT;
676 if (info->nat & OVS_CT_SRC_NAT)
677 action |= BIT(NF_NAT_MANIP_SRC);
678 if (info->nat & OVS_CT_DST_NAT)
679 action |= BIT(NF_NAT_MANIP_DST);
680
681 err = nf_ct_nat(skb, ct, ctinfo, &action, &info->range, info->commit);
682 if (err != NF_ACCEPT)
683 return err;
684
685 if (action & BIT(NF_NAT_MANIP_SRC))
686 ovs_nat_update_key(key, skb, NF_NAT_MANIP_SRC);
687 if (action & BIT(NF_NAT_MANIP_DST))
688 ovs_nat_update_key(key, skb, NF_NAT_MANIP_DST);
689
690 return err;
691 }
692 #else /* !CONFIG_NF_NAT */
ovs_ct_nat(struct net * net,struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb,struct nf_conn * ct,enum ip_conntrack_info ctinfo)693 static int ovs_ct_nat(struct net *net, struct sw_flow_key *key,
694 const struct ovs_conntrack_info *info,
695 struct sk_buff *skb, struct nf_conn *ct,
696 enum ip_conntrack_info ctinfo)
697 {
698 return NF_ACCEPT;
699 }
700 #endif
701
verdict_to_errno(unsigned int verdict)702 static int verdict_to_errno(unsigned int verdict)
703 {
704 switch (verdict & NF_VERDICT_MASK) {
705 case NF_ACCEPT:
706 return 0;
707 case NF_DROP:
708 return -EINVAL;
709 case NF_STOLEN:
710 return -EINPROGRESS;
711 default:
712 break;
713 }
714
715 return -EINVAL;
716 }
717
718 /* Pass 'skb' through conntrack in 'net', using zone configured in 'info', if
719 * not done already. Update key with new CT state after passing the packet
720 * through conntrack.
721 * Note that if the packet is deemed invalid by conntrack, skb->_nfct will be
722 * set to NULL and 0 will be returned.
723 */
__ovs_ct_lookup(struct net * net,struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb)724 static int __ovs_ct_lookup(struct net *net, struct sw_flow_key *key,
725 const struct ovs_conntrack_info *info,
726 struct sk_buff *skb)
727 {
728 /* If we are recirculating packets to match on conntrack fields and
729 * committing with a separate conntrack action, then we don't need to
730 * actually run the packet through conntrack twice unless it's for a
731 * different zone.
732 */
733 bool cached = skb_nfct_cached(net, key, info, skb);
734 enum ip_conntrack_info ctinfo;
735 struct nf_conn *ct;
736
737 if (!cached) {
738 struct nf_hook_state state = {
739 .hook = NF_INET_PRE_ROUTING,
740 .pf = info->family,
741 .net = net,
742 };
743 struct nf_conn *tmpl = info->ct;
744 int err;
745
746 /* Associate skb with specified zone. */
747 if (tmpl) {
748 nf_reset_ct(skb);
749 nf_conntrack_get(&tmpl->ct_general);
750 nf_ct_set(skb, tmpl, IP_CT_NEW);
751 }
752
753 err = nf_conntrack_in(skb, &state);
754 if (err != NF_ACCEPT)
755 return verdict_to_errno(err);
756
757 /* Clear CT state NAT flags to mark that we have not yet done
758 * NAT after the nf_conntrack_in() call. We can actually clear
759 * the whole state, as it will be re-initialized below.
760 */
761 key->ct_state = 0;
762
763 /* Update the key, but keep the NAT flags. */
764 ovs_ct_update_key(skb, info, key, true, true);
765 }
766
767 ct = nf_ct_get(skb, &ctinfo);
768 if (ct) {
769 bool add_helper = false;
770
771 /* Packets starting a new connection must be NATted before the
772 * helper, so that the helper knows about the NAT. We enforce
773 * this by delaying both NAT and helper calls for unconfirmed
774 * connections until the committing CT action. For later
775 * packets NAT and Helper may be called in either order.
776 *
777 * NAT will be done only if the CT action has NAT, and only
778 * once per packet (per zone), as guarded by the NAT bits in
779 * the key->ct_state.
780 */
781 if (info->nat && !(key->ct_state & OVS_CS_F_NAT_MASK) &&
782 (nf_ct_is_confirmed(ct) || info->commit)) {
783 int err = ovs_ct_nat(net, key, info, skb, ct, ctinfo);
784
785 err = verdict_to_errno(err);
786 if (err)
787 return err;
788 }
789
790 /* Userspace may decide to perform a ct lookup without a helper
791 * specified followed by a (recirculate and) commit with one,
792 * or attach a helper in a later commit. Therefore, for
793 * connections which we will commit, we may need to attach
794 * the helper here.
795 */
796 if (!nf_ct_is_confirmed(ct) && info->commit &&
797 info->helper && !nfct_help(ct)) {
798 int err = __nf_ct_try_assign_helper(ct, info->ct,
799 GFP_ATOMIC);
800 if (err)
801 return err;
802 add_helper = true;
803
804 /* helper installed, add seqadj if NAT is required */
805 if (info->nat && !nfct_seqadj(ct)) {
806 if (!nfct_seqadj_ext_add(ct))
807 return -EINVAL;
808 }
809 }
810
811 /* Call the helper only if:
812 * - nf_conntrack_in() was executed above ("!cached") or a
813 * helper was just attached ("add_helper") for a confirmed
814 * connection, or
815 * - When committing an unconfirmed connection.
816 */
817 if ((nf_ct_is_confirmed(ct) ? !cached || add_helper :
818 info->commit)) {
819 int err = nf_ct_helper(skb, ct, ctinfo, info->family);
820
821 err = verdict_to_errno(err);
822 if (err)
823 return err;
824 }
825
826 if (nf_ct_protonum(ct) == IPPROTO_TCP &&
827 nf_ct_is_confirmed(ct) && nf_conntrack_tcp_established(ct)) {
828 /* Be liberal for tcp packets so that out-of-window
829 * packets are not marked invalid.
830 */
831 nf_ct_set_tcp_be_liberal(ct);
832 }
833
834 nf_conn_act_ct_ext_fill(skb, ct, ctinfo);
835 }
836
837 return 0;
838 }
839
840 /* Lookup connection and read fields into key. */
ovs_ct_lookup(struct net * net,struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb)841 static int ovs_ct_lookup(struct net *net, struct sw_flow_key *key,
842 const struct ovs_conntrack_info *info,
843 struct sk_buff *skb)
844 {
845 struct nf_conn *ct;
846 int err;
847
848 err = __ovs_ct_lookup(net, key, info, skb);
849 if (err)
850 return err;
851
852 ct = (struct nf_conn *)skb_nfct(skb);
853 if (ct)
854 nf_ct_deliver_cached_events(ct);
855
856 return 0;
857 }
858
labels_nonzero(const struct ovs_key_ct_labels * labels)859 static bool labels_nonzero(const struct ovs_key_ct_labels *labels)
860 {
861 size_t i;
862
863 for (i = 0; i < OVS_CT_LABELS_LEN_32; i++)
864 if (labels->ct_labels_32[i])
865 return true;
866
867 return false;
868 }
869
870 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
ct_limit_hash_bucket(const struct ovs_ct_limit_info * info,u16 zone)871 static struct hlist_head *ct_limit_hash_bucket(
872 const struct ovs_ct_limit_info *info, u16 zone)
873 {
874 return &info->limits[zone & (CT_LIMIT_HASH_BUCKETS - 1)];
875 }
876
877 /* Call with ovs_mutex */
ct_limit_set(const struct ovs_ct_limit_info * info,struct ovs_ct_limit * new_ct_limit)878 static void ct_limit_set(const struct ovs_ct_limit_info *info,
879 struct ovs_ct_limit *new_ct_limit)
880 {
881 struct ovs_ct_limit *ct_limit;
882 struct hlist_head *head;
883
884 head = ct_limit_hash_bucket(info, new_ct_limit->zone);
885 hlist_for_each_entry_rcu(ct_limit, head, hlist_node,
886 lockdep_ovsl_is_held()) {
887 if (ct_limit->zone == new_ct_limit->zone) {
888 hlist_replace_rcu(&ct_limit->hlist_node,
889 &new_ct_limit->hlist_node);
890 kfree_rcu(ct_limit, rcu);
891 return;
892 }
893 }
894
895 hlist_add_head_rcu(&new_ct_limit->hlist_node, head);
896 }
897
898 /* Call with ovs_mutex */
ct_limit_del(const struct ovs_ct_limit_info * info,u16 zone)899 static void ct_limit_del(const struct ovs_ct_limit_info *info, u16 zone)
900 {
901 struct ovs_ct_limit *ct_limit;
902 struct hlist_head *head;
903 struct hlist_node *n;
904
905 head = ct_limit_hash_bucket(info, zone);
906 hlist_for_each_entry_safe(ct_limit, n, head, hlist_node) {
907 if (ct_limit->zone == zone) {
908 hlist_del_rcu(&ct_limit->hlist_node);
909 kfree_rcu(ct_limit, rcu);
910 return;
911 }
912 }
913 }
914
915 /* Call with RCU read lock */
ct_limit_get(const struct ovs_ct_limit_info * info,u16 zone)916 static u32 ct_limit_get(const struct ovs_ct_limit_info *info, u16 zone)
917 {
918 struct ovs_ct_limit *ct_limit;
919 struct hlist_head *head;
920
921 head = ct_limit_hash_bucket(info, zone);
922 hlist_for_each_entry_rcu(ct_limit, head, hlist_node) {
923 if (ct_limit->zone == zone)
924 return ct_limit->limit;
925 }
926
927 return info->default_limit;
928 }
929
ovs_ct_check_limit(struct net * net,const struct sk_buff * skb,const struct ovs_conntrack_info * info)930 static int ovs_ct_check_limit(struct net *net,
931 const struct sk_buff *skb,
932 const struct ovs_conntrack_info *info)
933 {
934 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
935 const struct ovs_ct_limit_info *ct_limit_info;
936 u32 per_zone_limit, connections;
937 u32 conncount_key;
938
939 ct_limit_info = rcu_dereference(ovs_net->ct_limit_info);
940 if (!ct_limit_info)
941 return 0;
942
943 conncount_key = info->zone.id;
944
945 per_zone_limit = ct_limit_get(ct_limit_info, info->zone.id);
946 if (per_zone_limit == OVS_CT_LIMIT_UNLIMITED)
947 return 0;
948
949 connections = nf_conncount_count_skb(net, skb, info->family,
950 ct_limit_info->data,
951 &conncount_key);
952 if (connections > per_zone_limit)
953 return -ENOMEM;
954
955 return 0;
956 }
957 #endif
958
959 /* Lookup connection and confirm if unconfirmed. */
ovs_ct_commit(struct net * net,struct sw_flow_key * key,const struct ovs_conntrack_info * info,struct sk_buff * skb)960 static int ovs_ct_commit(struct net *net, struct sw_flow_key *key,
961 const struct ovs_conntrack_info *info,
962 struct sk_buff *skb)
963 {
964 enum ip_conntrack_info ctinfo;
965 struct nf_conn *ct;
966 int err;
967
968 err = __ovs_ct_lookup(net, key, info, skb);
969 if (err)
970 return err;
971
972 /* The connection could be invalid, in which case this is a no-op.*/
973 ct = nf_ct_get(skb, &ctinfo);
974 if (!ct)
975 return 0;
976
977 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
978 if (static_branch_unlikely(&ovs_ct_limit_enabled)) {
979 if (!nf_ct_is_confirmed(ct)) {
980 err = ovs_ct_check_limit(net, skb, info);
981 if (err) {
982 net_warn_ratelimited("openvswitch: zone: %u "
983 "exceeds conntrack limit\n",
984 info->zone.id);
985 return err;
986 }
987 }
988 }
989 #endif
990
991 /* Set the conntrack event mask if given. NEW and DELETE events have
992 * their own groups, but the NFNLGRP_CONNTRACK_UPDATE group listener
993 * typically would receive many kinds of updates. Setting the event
994 * mask allows those events to be filtered. The set event mask will
995 * remain in effect for the lifetime of the connection unless changed
996 * by a further CT action with both the commit flag and the eventmask
997 * option. */
998 if (info->have_eventmask) {
999 struct nf_conntrack_ecache *cache = nf_ct_ecache_find(ct);
1000
1001 if (cache)
1002 cache->ctmask = info->eventmask;
1003 }
1004
1005 /* Apply changes before confirming the connection so that the initial
1006 * conntrack NEW netlink event carries the values given in the CT
1007 * action.
1008 */
1009 if (info->mark.mask) {
1010 err = ovs_ct_set_mark(ct, key, info->mark.value,
1011 info->mark.mask);
1012 if (err)
1013 return err;
1014 }
1015 if (!nf_ct_is_confirmed(ct)) {
1016 err = ovs_ct_init_labels(ct, key, &info->labels.value,
1017 &info->labels.mask);
1018 if (err)
1019 return err;
1020
1021 nf_conn_act_ct_ext_add(skb, ct, ctinfo);
1022 } else if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
1023 labels_nonzero(&info->labels.mask)) {
1024 err = ovs_ct_set_labels(ct, key, &info->labels.value,
1025 &info->labels.mask);
1026 if (err)
1027 return err;
1028 }
1029 /* This will take care of sending queued events even if the connection
1030 * is already confirmed.
1031 */
1032 err = nf_conntrack_confirm(skb);
1033
1034 return verdict_to_errno(err);
1035 }
1036
1037 /* Returns 0 on success, -EINPROGRESS if 'skb' is stolen, or other nonzero
1038 * value if 'skb' is freed.
1039 */
ovs_ct_execute(struct net * net,struct sk_buff * skb,struct sw_flow_key * key,const struct ovs_conntrack_info * info)1040 int ovs_ct_execute(struct net *net, struct sk_buff *skb,
1041 struct sw_flow_key *key,
1042 const struct ovs_conntrack_info *info)
1043 {
1044 int nh_ofs;
1045 int err;
1046
1047 /* The conntrack module expects to be working at L3. */
1048 nh_ofs = skb_network_offset(skb);
1049 skb_pull_rcsum(skb, nh_ofs);
1050
1051 err = nf_ct_skb_network_trim(skb, info->family);
1052 if (err) {
1053 kfree_skb(skb);
1054 return err;
1055 }
1056
1057 if (key->ip.frag != OVS_FRAG_TYPE_NONE) {
1058 err = ovs_ct_handle_fragments(net, key, info->zone.id,
1059 info->family, skb);
1060 if (err)
1061 return err;
1062 }
1063
1064 if (info->commit)
1065 err = ovs_ct_commit(net, key, info, skb);
1066 else
1067 err = ovs_ct_lookup(net, key, info, skb);
1068
1069 /* conntrack core returned NF_STOLEN */
1070 if (err == -EINPROGRESS)
1071 return err;
1072
1073 skb_push_rcsum(skb, nh_ofs);
1074 if (err)
1075 ovs_kfree_skb_reason(skb, OVS_DROP_CONNTRACK);
1076 return err;
1077 }
1078
ovs_ct_clear(struct sk_buff * skb,struct sw_flow_key * key)1079 int ovs_ct_clear(struct sk_buff *skb, struct sw_flow_key *key)
1080 {
1081 nf_reset_ct(skb);
1082 nf_ct_set(skb, NULL, IP_CT_UNTRACKED);
1083
1084 if (key)
1085 ovs_ct_fill_key(skb, key, false);
1086
1087 return 0;
1088 }
1089
1090 #if IS_ENABLED(CONFIG_NF_NAT)
parse_nat(const struct nlattr * attr,struct ovs_conntrack_info * info,bool log)1091 static int parse_nat(const struct nlattr *attr,
1092 struct ovs_conntrack_info *info, bool log)
1093 {
1094 struct nlattr *a;
1095 int rem;
1096 bool have_ip_max = false;
1097 bool have_proto_max = false;
1098 bool ip_vers = (info->family == NFPROTO_IPV6);
1099
1100 nla_for_each_nested(a, attr, rem) {
1101 static const int ovs_nat_attr_lens[OVS_NAT_ATTR_MAX + 1][2] = {
1102 [OVS_NAT_ATTR_SRC] = {0, 0},
1103 [OVS_NAT_ATTR_DST] = {0, 0},
1104 [OVS_NAT_ATTR_IP_MIN] = {sizeof(struct in_addr),
1105 sizeof(struct in6_addr)},
1106 [OVS_NAT_ATTR_IP_MAX] = {sizeof(struct in_addr),
1107 sizeof(struct in6_addr)},
1108 [OVS_NAT_ATTR_PROTO_MIN] = {sizeof(u16), sizeof(u16)},
1109 [OVS_NAT_ATTR_PROTO_MAX] = {sizeof(u16), sizeof(u16)},
1110 [OVS_NAT_ATTR_PERSISTENT] = {0, 0},
1111 [OVS_NAT_ATTR_PROTO_HASH] = {0, 0},
1112 [OVS_NAT_ATTR_PROTO_RANDOM] = {0, 0},
1113 };
1114 int type = nla_type(a);
1115
1116 if (type > OVS_NAT_ATTR_MAX) {
1117 OVS_NLERR(log, "Unknown NAT attribute (type=%d, max=%d)",
1118 type, OVS_NAT_ATTR_MAX);
1119 return -EINVAL;
1120 }
1121
1122 if (nla_len(a) != ovs_nat_attr_lens[type][ip_vers]) {
1123 OVS_NLERR(log, "NAT attribute type %d has unexpected length (%d != %d)",
1124 type, nla_len(a),
1125 ovs_nat_attr_lens[type][ip_vers]);
1126 return -EINVAL;
1127 }
1128
1129 switch (type) {
1130 case OVS_NAT_ATTR_SRC:
1131 case OVS_NAT_ATTR_DST:
1132 if (info->nat) {
1133 OVS_NLERR(log, "Only one type of NAT may be specified");
1134 return -ERANGE;
1135 }
1136 info->nat |= OVS_CT_NAT;
1137 info->nat |= ((type == OVS_NAT_ATTR_SRC)
1138 ? OVS_CT_SRC_NAT : OVS_CT_DST_NAT);
1139 break;
1140
1141 case OVS_NAT_ATTR_IP_MIN:
1142 nla_memcpy(&info->range.min_addr, a,
1143 sizeof(info->range.min_addr));
1144 info->range.flags |= NF_NAT_RANGE_MAP_IPS;
1145 break;
1146
1147 case OVS_NAT_ATTR_IP_MAX:
1148 have_ip_max = true;
1149 nla_memcpy(&info->range.max_addr, a,
1150 sizeof(info->range.max_addr));
1151 info->range.flags |= NF_NAT_RANGE_MAP_IPS;
1152 break;
1153
1154 case OVS_NAT_ATTR_PROTO_MIN:
1155 info->range.min_proto.all = htons(nla_get_u16(a));
1156 info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED;
1157 break;
1158
1159 case OVS_NAT_ATTR_PROTO_MAX:
1160 have_proto_max = true;
1161 info->range.max_proto.all = htons(nla_get_u16(a));
1162 info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED;
1163 break;
1164
1165 case OVS_NAT_ATTR_PERSISTENT:
1166 info->range.flags |= NF_NAT_RANGE_PERSISTENT;
1167 break;
1168
1169 case OVS_NAT_ATTR_PROTO_HASH:
1170 info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM;
1171 break;
1172
1173 case OVS_NAT_ATTR_PROTO_RANDOM:
1174 info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM_FULLY;
1175 break;
1176
1177 default:
1178 OVS_NLERR(log, "Unknown nat attribute (%d)", type);
1179 return -EINVAL;
1180 }
1181 }
1182
1183 if (rem > 0) {
1184 OVS_NLERR(log, "NAT attribute has %d unknown bytes", rem);
1185 return -EINVAL;
1186 }
1187 if (!info->nat) {
1188 /* Do not allow flags if no type is given. */
1189 if (info->range.flags) {
1190 OVS_NLERR(log,
1191 "NAT flags may be given only when NAT range (SRC or DST) is also specified."
1192 );
1193 return -EINVAL;
1194 }
1195 info->nat = OVS_CT_NAT; /* NAT existing connections. */
1196 } else if (!info->commit) {
1197 OVS_NLERR(log,
1198 "NAT attributes may be specified only when CT COMMIT flag is also specified."
1199 );
1200 return -EINVAL;
1201 }
1202 /* Allow missing IP_MAX. */
1203 if (info->range.flags & NF_NAT_RANGE_MAP_IPS && !have_ip_max) {
1204 memcpy(&info->range.max_addr, &info->range.min_addr,
1205 sizeof(info->range.max_addr));
1206 }
1207 /* Allow missing PROTO_MAX. */
1208 if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED &&
1209 !have_proto_max) {
1210 info->range.max_proto.all = info->range.min_proto.all;
1211 }
1212 return 0;
1213 }
1214 #endif
1215
1216 static const struct ovs_ct_len_tbl ovs_ct_attr_lens[OVS_CT_ATTR_MAX + 1] = {
1217 [OVS_CT_ATTR_COMMIT] = { .minlen = 0, .maxlen = 0 },
1218 [OVS_CT_ATTR_FORCE_COMMIT] = { .minlen = 0, .maxlen = 0 },
1219 [OVS_CT_ATTR_ZONE] = { .minlen = sizeof(u16),
1220 .maxlen = sizeof(u16) },
1221 [OVS_CT_ATTR_MARK] = { .minlen = sizeof(struct md_mark),
1222 .maxlen = sizeof(struct md_mark) },
1223 [OVS_CT_ATTR_LABELS] = { .minlen = sizeof(struct md_labels),
1224 .maxlen = sizeof(struct md_labels) },
1225 [OVS_CT_ATTR_HELPER] = { .minlen = 1,
1226 .maxlen = NF_CT_HELPER_NAME_LEN },
1227 #if IS_ENABLED(CONFIG_NF_NAT)
1228 /* NAT length is checked when parsing the nested attributes. */
1229 [OVS_CT_ATTR_NAT] = { .minlen = 0, .maxlen = INT_MAX },
1230 #endif
1231 [OVS_CT_ATTR_EVENTMASK] = { .minlen = sizeof(u32),
1232 .maxlen = sizeof(u32) },
1233 [OVS_CT_ATTR_TIMEOUT] = { .minlen = 1,
1234 .maxlen = CTNL_TIMEOUT_NAME_MAX },
1235 };
1236
parse_ct(const struct nlattr * attr,struct ovs_conntrack_info * info,const char ** helper,bool log)1237 static int parse_ct(const struct nlattr *attr, struct ovs_conntrack_info *info,
1238 const char **helper, bool log)
1239 {
1240 struct nlattr *a;
1241 int rem;
1242
1243 nla_for_each_nested(a, attr, rem) {
1244 int type = nla_type(a);
1245 int maxlen;
1246 int minlen;
1247
1248 if (type > OVS_CT_ATTR_MAX) {
1249 OVS_NLERR(log,
1250 "Unknown conntrack attr (type=%d, max=%d)",
1251 type, OVS_CT_ATTR_MAX);
1252 return -EINVAL;
1253 }
1254
1255 maxlen = ovs_ct_attr_lens[type].maxlen;
1256 minlen = ovs_ct_attr_lens[type].minlen;
1257 if (nla_len(a) < minlen || nla_len(a) > maxlen) {
1258 OVS_NLERR(log,
1259 "Conntrack attr type has unexpected length (type=%d, length=%d, expected=%d)",
1260 type, nla_len(a), maxlen);
1261 return -EINVAL;
1262 }
1263
1264 switch (type) {
1265 case OVS_CT_ATTR_FORCE_COMMIT:
1266 info->force = true;
1267 fallthrough;
1268 case OVS_CT_ATTR_COMMIT:
1269 info->commit = true;
1270 break;
1271 #ifdef CONFIG_NF_CONNTRACK_ZONES
1272 case OVS_CT_ATTR_ZONE:
1273 info->zone.id = nla_get_u16(a);
1274 break;
1275 #endif
1276 #ifdef CONFIG_NF_CONNTRACK_MARK
1277 case OVS_CT_ATTR_MARK: {
1278 struct md_mark *mark = nla_data(a);
1279
1280 if (!mark->mask) {
1281 OVS_NLERR(log, "ct_mark mask cannot be 0");
1282 return -EINVAL;
1283 }
1284 info->mark = *mark;
1285 break;
1286 }
1287 #endif
1288 #ifdef CONFIG_NF_CONNTRACK_LABELS
1289 case OVS_CT_ATTR_LABELS: {
1290 struct md_labels *labels = nla_data(a);
1291
1292 if (!labels_nonzero(&labels->mask)) {
1293 OVS_NLERR(log, "ct_labels mask cannot be 0");
1294 return -EINVAL;
1295 }
1296 info->labels = *labels;
1297 break;
1298 }
1299 #endif
1300 case OVS_CT_ATTR_HELPER:
1301 *helper = nla_data(a);
1302 if (!string_is_terminated(*helper, nla_len(a))) {
1303 OVS_NLERR(log, "Invalid conntrack helper");
1304 return -EINVAL;
1305 }
1306 break;
1307 #if IS_ENABLED(CONFIG_NF_NAT)
1308 case OVS_CT_ATTR_NAT: {
1309 int err = parse_nat(a, info, log);
1310
1311 if (err)
1312 return err;
1313 break;
1314 }
1315 #endif
1316 case OVS_CT_ATTR_EVENTMASK:
1317 info->have_eventmask = true;
1318 info->eventmask = nla_get_u32(a);
1319 break;
1320 #ifdef CONFIG_NF_CONNTRACK_TIMEOUT
1321 case OVS_CT_ATTR_TIMEOUT:
1322 memcpy(info->timeout, nla_data(a), nla_len(a));
1323 if (!string_is_terminated(info->timeout, nla_len(a))) {
1324 OVS_NLERR(log, "Invalid conntrack timeout");
1325 return -EINVAL;
1326 }
1327 break;
1328 #endif
1329
1330 default:
1331 OVS_NLERR(log, "Unknown conntrack attr (%d)",
1332 type);
1333 return -EINVAL;
1334 }
1335 }
1336
1337 #ifdef CONFIG_NF_CONNTRACK_MARK
1338 if (!info->commit && info->mark.mask) {
1339 OVS_NLERR(log,
1340 "Setting conntrack mark requires 'commit' flag.");
1341 return -EINVAL;
1342 }
1343 #endif
1344 #ifdef CONFIG_NF_CONNTRACK_LABELS
1345 if (!info->commit && labels_nonzero(&info->labels.mask)) {
1346 OVS_NLERR(log,
1347 "Setting conntrack labels requires 'commit' flag.");
1348 return -EINVAL;
1349 }
1350 #endif
1351 if (rem > 0) {
1352 OVS_NLERR(log, "Conntrack attr has %d unknown bytes", rem);
1353 return -EINVAL;
1354 }
1355
1356 return 0;
1357 }
1358
ovs_ct_verify(struct net * net,enum ovs_key_attr attr)1359 bool ovs_ct_verify(struct net *net, enum ovs_key_attr attr)
1360 {
1361 if (attr == OVS_KEY_ATTR_CT_STATE)
1362 return true;
1363 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
1364 attr == OVS_KEY_ATTR_CT_ZONE)
1365 return true;
1366 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) &&
1367 attr == OVS_KEY_ATTR_CT_MARK)
1368 return true;
1369 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
1370 attr == OVS_KEY_ATTR_CT_LABELS) {
1371 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
1372
1373 return ovs_net->xt_label;
1374 }
1375
1376 return false;
1377 }
1378
ovs_ct_copy_action(struct net * net,const struct nlattr * attr,const struct sw_flow_key * key,struct sw_flow_actions ** sfa,bool log)1379 int ovs_ct_copy_action(struct net *net, const struct nlattr *attr,
1380 const struct sw_flow_key *key,
1381 struct sw_flow_actions **sfa, bool log)
1382 {
1383 struct ovs_conntrack_info ct_info;
1384 const char *helper = NULL;
1385 u16 family;
1386 int err;
1387
1388 family = key_to_nfproto(key);
1389 if (family == NFPROTO_UNSPEC) {
1390 OVS_NLERR(log, "ct family unspecified");
1391 return -EINVAL;
1392 }
1393
1394 memset(&ct_info, 0, sizeof(ct_info));
1395 ct_info.family = family;
1396
1397 nf_ct_zone_init(&ct_info.zone, NF_CT_DEFAULT_ZONE_ID,
1398 NF_CT_DEFAULT_ZONE_DIR, 0);
1399
1400 err = parse_ct(attr, &ct_info, &helper, log);
1401 if (err)
1402 return err;
1403
1404 /* Set up template for tracking connections in specific zones. */
1405 ct_info.ct = nf_ct_tmpl_alloc(net, &ct_info.zone, GFP_KERNEL);
1406 if (!ct_info.ct) {
1407 OVS_NLERR(log, "Failed to allocate conntrack template");
1408 return -ENOMEM;
1409 }
1410
1411 if (ct_info.timeout[0]) {
1412 if (nf_ct_set_timeout(net, ct_info.ct, family, key->ip.proto,
1413 ct_info.timeout))
1414 OVS_NLERR(log,
1415 "Failed to associated timeout policy '%s'",
1416 ct_info.timeout);
1417 else
1418 ct_info.nf_ct_timeout = rcu_dereference(
1419 nf_ct_timeout_find(ct_info.ct)->timeout);
1420
1421 }
1422
1423 if (helper) {
1424 err = nf_ct_add_helper(ct_info.ct, helper, ct_info.family,
1425 key->ip.proto, ct_info.nat, &ct_info.helper);
1426 if (err) {
1427 OVS_NLERR(log, "Failed to add %s helper %d", helper, err);
1428 goto err_free_ct;
1429 }
1430 }
1431
1432 err = ovs_nla_add_action(sfa, OVS_ACTION_ATTR_CT, &ct_info,
1433 sizeof(ct_info), log);
1434 if (err)
1435 goto err_free_ct;
1436
1437 if (ct_info.commit)
1438 __set_bit(IPS_CONFIRMED_BIT, &ct_info.ct->status);
1439 return 0;
1440 err_free_ct:
1441 __ovs_ct_free_action(&ct_info);
1442 return err;
1443 }
1444
1445 #if IS_ENABLED(CONFIG_NF_NAT)
ovs_ct_nat_to_attr(const struct ovs_conntrack_info * info,struct sk_buff * skb)1446 static bool ovs_ct_nat_to_attr(const struct ovs_conntrack_info *info,
1447 struct sk_buff *skb)
1448 {
1449 struct nlattr *start;
1450
1451 start = nla_nest_start_noflag(skb, OVS_CT_ATTR_NAT);
1452 if (!start)
1453 return false;
1454
1455 if (info->nat & OVS_CT_SRC_NAT) {
1456 if (nla_put_flag(skb, OVS_NAT_ATTR_SRC))
1457 return false;
1458 } else if (info->nat & OVS_CT_DST_NAT) {
1459 if (nla_put_flag(skb, OVS_NAT_ATTR_DST))
1460 return false;
1461 } else {
1462 goto out;
1463 }
1464
1465 if (info->range.flags & NF_NAT_RANGE_MAP_IPS) {
1466 if (IS_ENABLED(CONFIG_NF_NAT) &&
1467 info->family == NFPROTO_IPV4) {
1468 if (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MIN,
1469 info->range.min_addr.ip) ||
1470 (info->range.max_addr.ip
1471 != info->range.min_addr.ip &&
1472 (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MAX,
1473 info->range.max_addr.ip))))
1474 return false;
1475 } else if (IS_ENABLED(CONFIG_IPV6) &&
1476 info->family == NFPROTO_IPV6) {
1477 if (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MIN,
1478 &info->range.min_addr.in6) ||
1479 (memcmp(&info->range.max_addr.in6,
1480 &info->range.min_addr.in6,
1481 sizeof(info->range.max_addr.in6)) &&
1482 (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MAX,
1483 &info->range.max_addr.in6))))
1484 return false;
1485 } else {
1486 return false;
1487 }
1488 }
1489 if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED &&
1490 (nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MIN,
1491 ntohs(info->range.min_proto.all)) ||
1492 (info->range.max_proto.all != info->range.min_proto.all &&
1493 nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MAX,
1494 ntohs(info->range.max_proto.all)))))
1495 return false;
1496
1497 if (info->range.flags & NF_NAT_RANGE_PERSISTENT &&
1498 nla_put_flag(skb, OVS_NAT_ATTR_PERSISTENT))
1499 return false;
1500 if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM &&
1501 nla_put_flag(skb, OVS_NAT_ATTR_PROTO_HASH))
1502 return false;
1503 if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM_FULLY &&
1504 nla_put_flag(skb, OVS_NAT_ATTR_PROTO_RANDOM))
1505 return false;
1506 out:
1507 nla_nest_end(skb, start);
1508
1509 return true;
1510 }
1511 #endif
1512
ovs_ct_action_to_attr(const struct ovs_conntrack_info * ct_info,struct sk_buff * skb)1513 int ovs_ct_action_to_attr(const struct ovs_conntrack_info *ct_info,
1514 struct sk_buff *skb)
1515 {
1516 struct nlattr *start;
1517
1518 start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_CT);
1519 if (!start)
1520 return -EMSGSIZE;
1521
1522 if (ct_info->commit && nla_put_flag(skb, ct_info->force
1523 ? OVS_CT_ATTR_FORCE_COMMIT
1524 : OVS_CT_ATTR_COMMIT))
1525 return -EMSGSIZE;
1526 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
1527 nla_put_u16(skb, OVS_CT_ATTR_ZONE, ct_info->zone.id))
1528 return -EMSGSIZE;
1529 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) && ct_info->mark.mask &&
1530 nla_put(skb, OVS_CT_ATTR_MARK, sizeof(ct_info->mark),
1531 &ct_info->mark))
1532 return -EMSGSIZE;
1533 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
1534 labels_nonzero(&ct_info->labels.mask) &&
1535 nla_put(skb, OVS_CT_ATTR_LABELS, sizeof(ct_info->labels),
1536 &ct_info->labels))
1537 return -EMSGSIZE;
1538 if (ct_info->helper) {
1539 if (nla_put_string(skb, OVS_CT_ATTR_HELPER,
1540 ct_info->helper->name))
1541 return -EMSGSIZE;
1542 }
1543 if (ct_info->have_eventmask &&
1544 nla_put_u32(skb, OVS_CT_ATTR_EVENTMASK, ct_info->eventmask))
1545 return -EMSGSIZE;
1546 if (ct_info->timeout[0]) {
1547 if (nla_put_string(skb, OVS_CT_ATTR_TIMEOUT, ct_info->timeout))
1548 return -EMSGSIZE;
1549 }
1550
1551 #if IS_ENABLED(CONFIG_NF_NAT)
1552 if (ct_info->nat && !ovs_ct_nat_to_attr(ct_info, skb))
1553 return -EMSGSIZE;
1554 #endif
1555 nla_nest_end(skb, start);
1556
1557 return 0;
1558 }
1559
ovs_ct_free_action(const struct nlattr * a)1560 void ovs_ct_free_action(const struct nlattr *a)
1561 {
1562 struct ovs_conntrack_info *ct_info = nla_data(a);
1563
1564 __ovs_ct_free_action(ct_info);
1565 }
1566
__ovs_ct_free_action(struct ovs_conntrack_info * ct_info)1567 static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info)
1568 {
1569 if (ct_info->helper) {
1570 #if IS_ENABLED(CONFIG_NF_NAT)
1571 if (ct_info->nat)
1572 nf_nat_helper_put(ct_info->helper);
1573 #endif
1574 nf_conntrack_helper_put(ct_info->helper);
1575 }
1576 if (ct_info->ct) {
1577 if (ct_info->timeout[0])
1578 nf_ct_destroy_timeout(ct_info->ct);
1579 nf_ct_tmpl_free(ct_info->ct);
1580 }
1581 }
1582
1583 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
ovs_ct_limit_init(struct net * net,struct ovs_net * ovs_net)1584 static int ovs_ct_limit_init(struct net *net, struct ovs_net *ovs_net)
1585 {
1586 struct ovs_ct_limit_info *info;
1587 int i, err;
1588
1589 info = kmalloc_obj(*info);
1590 if (!info)
1591 return -ENOMEM;
1592
1593 info->default_limit = OVS_CT_LIMIT_DEFAULT;
1594 info->limits =
1595 kmalloc_objs(struct hlist_head, CT_LIMIT_HASH_BUCKETS);
1596 if (!info->limits) {
1597 kfree(info);
1598 return -ENOMEM;
1599 }
1600
1601 for (i = 0; i < CT_LIMIT_HASH_BUCKETS; i++)
1602 INIT_HLIST_HEAD(&info->limits[i]);
1603
1604 info->data = nf_conncount_init(net, sizeof(u32));
1605
1606 if (IS_ERR(info->data)) {
1607 err = PTR_ERR(info->data);
1608 kfree(info->limits);
1609 kfree(info);
1610 pr_err("openvswitch: failed to init nf_conncount %d\n", err);
1611 return err;
1612 }
1613 rcu_assign_pointer(ovs_net->ct_limit_info, info);
1614 return 0;
1615 }
1616
ovs_ct_limit_exit_start(struct ovs_net * ovs_net)1617 static void *ovs_ct_limit_exit_start(struct ovs_net *ovs_net)
1618 {
1619 return rcu_replace_pointer(ovs_net->ct_limit_info, NULL,
1620 lockdep_ovsl_is_held());
1621 }
1622
1623 /* The CT limit state must be detached by ovs_ct_limit_exit_start() and an
1624 * RCU grace period must elapse before this function runs. The pernet core
1625 * guarantees the grace period between the .pre_exit and .exit callbacks.
1626 */
ovs_ct_limit_exit_finish(struct net * net,void * data)1627 static void ovs_ct_limit_exit_finish(struct net *net, void *data)
1628 {
1629 const struct ovs_ct_limit_info *info = data;
1630 int i;
1631
1632 if (!info)
1633 return;
1634
1635 nf_conncount_destroy(net, info->data);
1636 for (i = 0; i < CT_LIMIT_HASH_BUCKETS; ++i) {
1637 struct hlist_head *head = &info->limits[i];
1638 struct ovs_ct_limit *ct_limit;
1639 struct hlist_node *next;
1640
1641 hlist_for_each_entry_safe(ct_limit, next, head, hlist_node)
1642 kfree(ct_limit);
1643 }
1644 kfree(info->limits);
1645 kfree(info);
1646 }
1647
1648 static struct sk_buff *
ovs_ct_limit_cmd_reply_start(struct genl_info * info,u8 cmd,struct ovs_header ** ovs_reply_header)1649 ovs_ct_limit_cmd_reply_start(struct genl_info *info, u8 cmd,
1650 struct ovs_header **ovs_reply_header)
1651 {
1652 struct ovs_header *ovs_header = genl_info_userhdr(info);
1653 struct sk_buff *skb;
1654
1655 skb = genlmsg_new(NLMSG_DEFAULT_SIZE, GFP_KERNEL);
1656 if (!skb)
1657 return ERR_PTR(-ENOMEM);
1658
1659 *ovs_reply_header = genlmsg_put(skb, info->snd_portid,
1660 info->snd_seq,
1661 &dp_ct_limit_genl_family, 0, cmd);
1662
1663 if (!*ovs_reply_header) {
1664 nlmsg_free(skb);
1665 return ERR_PTR(-EMSGSIZE);
1666 }
1667 (*ovs_reply_header)->dp_ifindex = ovs_header->dp_ifindex;
1668
1669 return skb;
1670 }
1671
check_zone_id(int zone_id,u16 * pzone)1672 static bool check_zone_id(int zone_id, u16 *pzone)
1673 {
1674 if (zone_id >= 0 && zone_id <= 65535) {
1675 *pzone = (u16)zone_id;
1676 return true;
1677 }
1678 return false;
1679 }
1680
ovs_ct_limit_set_zone_limit(struct ovs_net * ovs_net,struct nlattr * nla_zone_limit)1681 static int ovs_ct_limit_set_zone_limit(struct ovs_net *ovs_net,
1682 struct nlattr *nla_zone_limit)
1683 {
1684 struct ovs_zone_limit *zone_limit;
1685 struct ovs_ct_limit_info *info;
1686 u16 zone;
1687 int rem;
1688
1689 rem = NLA_ALIGN(nla_len(nla_zone_limit));
1690 zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1691
1692 while (rem >= sizeof(*zone_limit)) {
1693 if (unlikely(zone_limit->zone_id ==
1694 OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1695 ovs_lock();
1696 info = ovsl_dereference(ovs_net->ct_limit_info);
1697 info->default_limit = zone_limit->limit;
1698 ovs_unlock();
1699 } else if (unlikely(!check_zone_id(
1700 zone_limit->zone_id, &zone))) {
1701 OVS_NLERR(true, "zone id is out of range");
1702 } else {
1703 struct ovs_ct_limit *ct_limit;
1704
1705 ct_limit = kmalloc_obj(*ct_limit, GFP_KERNEL_ACCOUNT);
1706 if (!ct_limit)
1707 return -ENOMEM;
1708
1709 ct_limit->zone = zone;
1710 ct_limit->limit = zone_limit->limit;
1711
1712 ovs_lock();
1713 info = ovsl_dereference(ovs_net->ct_limit_info);
1714 ct_limit_set(info, ct_limit);
1715 ovs_unlock();
1716 }
1717 rem -= NLA_ALIGN(sizeof(*zone_limit));
1718 zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
1719 NLA_ALIGN(sizeof(*zone_limit)));
1720 }
1721
1722 if (rem)
1723 OVS_NLERR(true, "set zone limit has %d unknown bytes", rem);
1724
1725 return 0;
1726 }
1727
ovs_ct_limit_del_zone_limit(struct ovs_net * ovs_net,struct nlattr * nla_zone_limit)1728 static int ovs_ct_limit_del_zone_limit(struct ovs_net *ovs_net,
1729 struct nlattr *nla_zone_limit)
1730 {
1731 struct ovs_zone_limit *zone_limit;
1732 struct ovs_ct_limit_info *info;
1733 u16 zone;
1734 int rem;
1735
1736 rem = NLA_ALIGN(nla_len(nla_zone_limit));
1737 zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1738
1739 while (rem >= sizeof(*zone_limit)) {
1740 if (unlikely(zone_limit->zone_id ==
1741 OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1742 ovs_lock();
1743 info = ovsl_dereference(ovs_net->ct_limit_info);
1744 info->default_limit = OVS_CT_LIMIT_DEFAULT;
1745 ovs_unlock();
1746 } else if (unlikely(!check_zone_id(
1747 zone_limit->zone_id, &zone))) {
1748 OVS_NLERR(true, "zone id is out of range");
1749 } else {
1750 ovs_lock();
1751 info = ovsl_dereference(ovs_net->ct_limit_info);
1752 ct_limit_del(info, zone);
1753 ovs_unlock();
1754 }
1755 rem -= NLA_ALIGN(sizeof(*zone_limit));
1756 zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
1757 NLA_ALIGN(sizeof(*zone_limit)));
1758 }
1759
1760 if (rem)
1761 OVS_NLERR(true, "del zone limit has %d unknown bytes", rem);
1762
1763 return 0;
1764 }
1765
ovs_ct_limit_get_default_limit(struct ovs_ct_limit_info * info,struct sk_buff * reply)1766 static int ovs_ct_limit_get_default_limit(struct ovs_ct_limit_info *info,
1767 struct sk_buff *reply)
1768 {
1769 struct ovs_zone_limit zone_limit = {
1770 .zone_id = OVS_ZONE_LIMIT_DEFAULT_ZONE,
1771 .limit = info->default_limit,
1772 };
1773
1774 return nla_put_nohdr(reply, sizeof(zone_limit), &zone_limit);
1775 }
1776
__ovs_ct_limit_get_zone_limit(struct net * net,struct nf_conncount_data * data,u16 zone_id,u32 limit,struct sk_buff * reply)1777 static int __ovs_ct_limit_get_zone_limit(struct net *net,
1778 struct nf_conncount_data *data,
1779 u16 zone_id, u32 limit,
1780 struct sk_buff *reply)
1781 {
1782 struct nf_conntrack_zone ct_zone;
1783 struct ovs_zone_limit zone_limit;
1784 u32 conncount_key = zone_id;
1785
1786 zone_limit.zone_id = zone_id;
1787 zone_limit.limit = limit;
1788 nf_ct_zone_init(&ct_zone, zone_id, NF_CT_DEFAULT_ZONE_DIR, 0);
1789
1790 zone_limit.count = nf_conncount_count_skb(net, NULL, 0, data,
1791 &conncount_key);
1792 return nla_put_nohdr(reply, sizeof(zone_limit), &zone_limit);
1793 }
1794
1795 /* Called with RCU read lock held. */
ovs_ct_limit_get_zone_limit(struct net * net,struct nlattr * nla_zone_limit,struct ovs_ct_limit_info * info,struct sk_buff * reply)1796 static int ovs_ct_limit_get_zone_limit(struct net *net,
1797 struct nlattr *nla_zone_limit,
1798 struct ovs_ct_limit_info *info,
1799 struct sk_buff *reply)
1800 {
1801 struct ovs_zone_limit *zone_limit;
1802 int rem, err;
1803 u32 limit;
1804 u16 zone;
1805
1806 rem = NLA_ALIGN(nla_len(nla_zone_limit));
1807 zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1808
1809 while (rem >= sizeof(*zone_limit)) {
1810 if (unlikely(zone_limit->zone_id ==
1811 OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1812 err = ovs_ct_limit_get_default_limit(info, reply);
1813 if (err)
1814 return err;
1815 } else if (unlikely(!check_zone_id(zone_limit->zone_id,
1816 &zone))) {
1817 OVS_NLERR(true, "zone id is out of range");
1818 } else {
1819 limit = ct_limit_get(info, zone);
1820
1821 err = __ovs_ct_limit_get_zone_limit(
1822 net, info->data, zone, limit, reply);
1823 if (err)
1824 return err;
1825 }
1826 rem -= NLA_ALIGN(sizeof(*zone_limit));
1827 zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
1828 NLA_ALIGN(sizeof(*zone_limit)));
1829 }
1830
1831 if (rem)
1832 OVS_NLERR(true, "get zone limit has %d unknown bytes", rem);
1833
1834 return 0;
1835 }
1836
1837 /* Called with RCU read lock held. */
ovs_ct_limit_get_all_zone_limit(struct net * net,struct ovs_ct_limit_info * info,struct sk_buff * reply)1838 static int ovs_ct_limit_get_all_zone_limit(struct net *net,
1839 struct ovs_ct_limit_info *info,
1840 struct sk_buff *reply)
1841 {
1842 struct ovs_ct_limit *ct_limit;
1843 struct hlist_head *head;
1844 int i, err = 0;
1845
1846 err = ovs_ct_limit_get_default_limit(info, reply);
1847 if (err)
1848 return err;
1849
1850 for (i = 0; i < CT_LIMIT_HASH_BUCKETS; ++i) {
1851 head = &info->limits[i];
1852 hlist_for_each_entry_rcu(ct_limit, head, hlist_node) {
1853 err = __ovs_ct_limit_get_zone_limit(net, info->data,
1854 ct_limit->zone, ct_limit->limit, reply);
1855 if (err)
1856 return err;
1857 }
1858 }
1859
1860 return err;
1861 }
1862
ovs_ct_limit_cmd_set(struct sk_buff * skb,struct genl_info * info)1863 static int ovs_ct_limit_cmd_set(struct sk_buff *skb, struct genl_info *info)
1864 {
1865 struct nlattr **a = info->attrs;
1866 struct sk_buff *reply;
1867 struct ovs_header *ovs_reply_header;
1868 struct ovs_net *ovs_net = net_generic(sock_net(skb->sk), ovs_net_id);
1869 int err;
1870
1871 reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_SET,
1872 &ovs_reply_header);
1873 if (IS_ERR(reply))
1874 return PTR_ERR(reply);
1875
1876 if (!a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
1877 err = -EINVAL;
1878 goto exit_err;
1879 }
1880
1881 err = ovs_ct_limit_set_zone_limit(ovs_net,
1882 a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]);
1883 if (err)
1884 goto exit_err;
1885
1886 static_branch_enable(&ovs_ct_limit_enabled);
1887
1888 genlmsg_end(reply, ovs_reply_header);
1889 return genlmsg_reply(reply, info);
1890
1891 exit_err:
1892 nlmsg_free(reply);
1893 return err;
1894 }
1895
ovs_ct_limit_cmd_del(struct sk_buff * skb,struct genl_info * info)1896 static int ovs_ct_limit_cmd_del(struct sk_buff *skb, struct genl_info *info)
1897 {
1898 struct nlattr **a = info->attrs;
1899 struct sk_buff *reply;
1900 struct ovs_header *ovs_reply_header;
1901 struct ovs_net *ovs_net = net_generic(sock_net(skb->sk), ovs_net_id);
1902 int err;
1903
1904 reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_DEL,
1905 &ovs_reply_header);
1906 if (IS_ERR(reply))
1907 return PTR_ERR(reply);
1908
1909 if (!a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
1910 err = -EINVAL;
1911 goto exit_err;
1912 }
1913
1914 err = ovs_ct_limit_del_zone_limit(ovs_net,
1915 a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]);
1916 if (err)
1917 goto exit_err;
1918
1919 genlmsg_end(reply, ovs_reply_header);
1920 return genlmsg_reply(reply, info);
1921
1922 exit_err:
1923 nlmsg_free(reply);
1924 return err;
1925 }
1926
ovs_ct_limit_cmd_get(struct sk_buff * skb,struct genl_info * info)1927 static int ovs_ct_limit_cmd_get(struct sk_buff *skb, struct genl_info *info)
1928 {
1929 struct nlattr **a = info->attrs;
1930 struct nlattr *nla_reply;
1931 struct sk_buff *reply;
1932 struct ovs_header *ovs_reply_header;
1933 struct net *net = sock_net(skb->sk);
1934 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
1935 struct ovs_ct_limit_info *ct_limit_info;
1936 int err;
1937
1938 reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_GET,
1939 &ovs_reply_header);
1940 if (IS_ERR(reply))
1941 return PTR_ERR(reply);
1942
1943 nla_reply = nla_nest_start_noflag(reply, OVS_CT_LIMIT_ATTR_ZONE_LIMIT);
1944 if (!nla_reply) {
1945 err = -EMSGSIZE;
1946 goto exit_err;
1947 }
1948
1949 rcu_read_lock();
1950 ct_limit_info = rcu_dereference(ovs_net->ct_limit_info);
1951 if (a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
1952 err = ovs_ct_limit_get_zone_limit(
1953 net, a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT], ct_limit_info,
1954 reply);
1955 } else {
1956 err = ovs_ct_limit_get_all_zone_limit(net, ct_limit_info,
1957 reply);
1958 }
1959 rcu_read_unlock();
1960 if (err)
1961 goto exit_err;
1962
1963 nla_nest_end(reply, nla_reply);
1964 genlmsg_end(reply, ovs_reply_header);
1965 return genlmsg_reply(reply, info);
1966
1967 exit_err:
1968 nlmsg_free(reply);
1969 return err;
1970 }
1971
1972 static const struct genl_small_ops ct_limit_genl_ops[] = {
1973 { .cmd = OVS_CT_LIMIT_CMD_SET,
1974 .validate = GENL_DONT_VALIDATE_STRICT | GENL_DONT_VALIDATE_DUMP,
1975 .flags = GENL_UNS_ADMIN_PERM, /* Requires CAP_NET_ADMIN
1976 * privilege.
1977 */
1978 .doit = ovs_ct_limit_cmd_set,
1979 },
1980 { .cmd = OVS_CT_LIMIT_CMD_DEL,
1981 .validate = GENL_DONT_VALIDATE_STRICT | GENL_DONT_VALIDATE_DUMP,
1982 .flags = GENL_UNS_ADMIN_PERM, /* Requires CAP_NET_ADMIN
1983 * privilege.
1984 */
1985 .doit = ovs_ct_limit_cmd_del,
1986 },
1987 { .cmd = OVS_CT_LIMIT_CMD_GET,
1988 .validate = GENL_DONT_VALIDATE_STRICT | GENL_DONT_VALIDATE_DUMP,
1989 .flags = 0, /* OK for unprivileged users. */
1990 .doit = ovs_ct_limit_cmd_get,
1991 },
1992 };
1993
1994 static const struct genl_multicast_group ovs_ct_limit_multicast_group = {
1995 .name = OVS_CT_LIMIT_MCGROUP,
1996 };
1997
1998 struct genl_family dp_ct_limit_genl_family __ro_after_init = {
1999 .hdrsize = sizeof(struct ovs_header),
2000 .name = OVS_CT_LIMIT_FAMILY,
2001 .version = OVS_CT_LIMIT_VERSION,
2002 .maxattr = OVS_CT_LIMIT_ATTR_MAX,
2003 .policy = ct_limit_policy,
2004 .netnsok = true,
2005 .parallel_ops = true,
2006 .small_ops = ct_limit_genl_ops,
2007 .n_small_ops = ARRAY_SIZE(ct_limit_genl_ops),
2008 .resv_start_op = OVS_CT_LIMIT_CMD_GET + 1,
2009 .mcgrps = &ovs_ct_limit_multicast_group,
2010 .n_mcgrps = 1,
2011 .module = THIS_MODULE,
2012 };
2013 #endif
2014
ovs_ct_init(struct net * net)2015 int ovs_ct_init(struct net *net)
2016 {
2017 unsigned int n_bits = sizeof(struct ovs_key_ct_labels) * BITS_PER_BYTE;
2018 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2019 int err = 0;
2020
2021 if (nf_connlabels_get(net, n_bits - 1)) {
2022 ovs_net->xt_label = false;
2023 OVS_NLERR(true, "Failed to set connlabel length");
2024 } else {
2025 ovs_net->xt_label = true;
2026 }
2027
2028 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
2029 err = ovs_ct_limit_init(net, ovs_net);
2030 if (err && ovs_net->xt_label)
2031 nf_connlabels_put(net);
2032 #endif
2033 return err;
2034 }
2035
2036 /* Must be called with ovs_mutex held. Detaches the RCU-protected
2037 * ct_limit_info and stores it in ovs_net->ct_limit_exit_data for
2038 * ovs_ct_exit_finish() to complete the teardown after an RCU grace period.
2039 */
ovs_ct_exit_start(struct net * net __maybe_unused)2040 void ovs_ct_exit_start(struct net *net __maybe_unused)
2041 {
2042 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
2043 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2044
2045 ovs_net->ct_limit_exit_data = ovs_ct_limit_exit_start(ovs_net);
2046 #endif
2047 }
2048
2049 /* Completes the CT limit teardown. The pernet core guarantees an RCU
2050 * grace period between detaching the state in ovs_ct_exit_start() and
2051 * this call, so no RCU readers remain.
2052 */
ovs_ct_exit_finish(struct net * net)2053 void ovs_ct_exit_finish(struct net *net)
2054 {
2055 struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2056
2057 #if IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
2058 ovs_ct_limit_exit_finish(net, ovs_net->ct_limit_exit_data);
2059 #endif
2060
2061 if (ovs_net->xt_label)
2062 nf_connlabels_put(net);
2063 }
2064