1 /* 2 * Copyright (c) 2015 Nicira, Inc. 3 * 4 * This program is free software; you can redistribute it and/or 5 * modify it under the terms of version 2 of the GNU General Public 6 * License as published by the Free Software Foundation. 7 * 8 * This program is distributed in the hope that it will be useful, but 9 * WITHOUT ANY WARRANTY; without even the implied warranty of 10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU 11 * General Public License for more details. 12 */ 13 14 #include <linux/module.h> 15 #include <linux/openvswitch.h> 16 #include <linux/tcp.h> 17 #include <linux/udp.h> 18 #include <linux/sctp.h> 19 #include <net/ip.h> 20 #include <net/netfilter/nf_conntrack_core.h> 21 #include <net/netfilter/nf_conntrack_helper.h> 22 #include <net/netfilter/nf_conntrack_labels.h> 23 #include <net/netfilter/nf_conntrack_seqadj.h> 24 #include <net/netfilter/nf_conntrack_zones.h> 25 #include <net/netfilter/ipv6/nf_defrag_ipv6.h> 26 27 #ifdef CONFIG_NF_NAT_NEEDED 28 #include <linux/netfilter/nf_nat.h> 29 #include <net/netfilter/nf_nat_core.h> 30 #include <net/netfilter/nf_nat_l3proto.h> 31 #endif 32 33 #include "datapath.h" 34 #include "conntrack.h" 35 #include "flow.h" 36 #include "flow_netlink.h" 37 38 struct ovs_ct_len_tbl { 39 int maxlen; 40 int minlen; 41 }; 42 43 /* Metadata mark for masked write to conntrack mark */ 44 struct md_mark { 45 u32 value; 46 u32 mask; 47 }; 48 49 /* Metadata label for masked write to conntrack label. */ 50 struct md_labels { 51 struct ovs_key_ct_labels value; 52 struct ovs_key_ct_labels mask; 53 }; 54 55 enum ovs_ct_nat { 56 OVS_CT_NAT = 1 << 0, /* NAT for committed connections only. */ 57 OVS_CT_SRC_NAT = 1 << 1, /* Source NAT for NEW connections. */ 58 OVS_CT_DST_NAT = 1 << 2, /* Destination NAT for NEW connections. */ 59 }; 60 61 /* Conntrack action context for execution. */ 62 struct ovs_conntrack_info { 63 struct nf_conntrack_helper *helper; 64 struct nf_conntrack_zone zone; 65 struct nf_conn *ct; 66 u8 commit : 1; 67 u8 nat : 3; /* enum ovs_ct_nat */ 68 u16 family; 69 struct md_mark mark; 70 struct md_labels labels; 71 #ifdef CONFIG_NF_NAT_NEEDED 72 struct nf_nat_range range; /* Only present for SRC NAT and DST NAT. */ 73 #endif 74 }; 75 76 static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info); 77 78 static u16 key_to_nfproto(const struct sw_flow_key *key) 79 { 80 switch (ntohs(key->eth.type)) { 81 case ETH_P_IP: 82 return NFPROTO_IPV4; 83 case ETH_P_IPV6: 84 return NFPROTO_IPV6; 85 default: 86 return NFPROTO_UNSPEC; 87 } 88 } 89 90 /* Map SKB connection state into the values used by flow definition. */ 91 static u8 ovs_ct_get_state(enum ip_conntrack_info ctinfo) 92 { 93 u8 ct_state = OVS_CS_F_TRACKED; 94 95 switch (ctinfo) { 96 case IP_CT_ESTABLISHED_REPLY: 97 case IP_CT_RELATED_REPLY: 98 ct_state |= OVS_CS_F_REPLY_DIR; 99 break; 100 default: 101 break; 102 } 103 104 switch (ctinfo) { 105 case IP_CT_ESTABLISHED: 106 case IP_CT_ESTABLISHED_REPLY: 107 ct_state |= OVS_CS_F_ESTABLISHED; 108 break; 109 case IP_CT_RELATED: 110 case IP_CT_RELATED_REPLY: 111 ct_state |= OVS_CS_F_RELATED; 112 break; 113 case IP_CT_NEW: 114 ct_state |= OVS_CS_F_NEW; 115 break; 116 default: 117 break; 118 } 119 120 return ct_state; 121 } 122 123 static u32 ovs_ct_get_mark(const struct nf_conn *ct) 124 { 125 #if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) 126 return ct ? ct->mark : 0; 127 #else 128 return 0; 129 #endif 130 } 131 132 static void ovs_ct_get_labels(const struct nf_conn *ct, 133 struct ovs_key_ct_labels *labels) 134 { 135 struct nf_conn_labels *cl = ct ? nf_ct_labels_find(ct) : NULL; 136 137 if (cl) { 138 size_t len = cl->words * sizeof(long); 139 140 if (len > OVS_CT_LABELS_LEN) 141 len = OVS_CT_LABELS_LEN; 142 else if (len < OVS_CT_LABELS_LEN) 143 memset(labels, 0, OVS_CT_LABELS_LEN); 144 memcpy(labels, cl->bits, len); 145 } else { 146 memset(labels, 0, OVS_CT_LABELS_LEN); 147 } 148 } 149 150 static void __ovs_ct_update_key(struct sw_flow_key *key, u8 state, 151 const struct nf_conntrack_zone *zone, 152 const struct nf_conn *ct) 153 { 154 key->ct.state = state; 155 key->ct.zone = zone->id; 156 key->ct.mark = ovs_ct_get_mark(ct); 157 ovs_ct_get_labels(ct, &key->ct.labels); 158 } 159 160 /* Update 'key' based on skb->nfct. If 'post_ct' is true, then OVS has 161 * previously sent the packet to conntrack via the ct action. If 162 * 'keep_nat_flags' is true, the existing NAT flags retained, else they are 163 * initialized from the connection status. 164 */ 165 static void ovs_ct_update_key(const struct sk_buff *skb, 166 const struct ovs_conntrack_info *info, 167 struct sw_flow_key *key, bool post_ct, 168 bool keep_nat_flags) 169 { 170 const struct nf_conntrack_zone *zone = &nf_ct_zone_dflt; 171 enum ip_conntrack_info ctinfo; 172 struct nf_conn *ct; 173 u8 state = 0; 174 175 ct = nf_ct_get(skb, &ctinfo); 176 if (ct) { 177 state = ovs_ct_get_state(ctinfo); 178 /* All unconfirmed entries are NEW connections. */ 179 if (!nf_ct_is_confirmed(ct)) 180 state |= OVS_CS_F_NEW; 181 /* OVS persists the related flag for the duration of the 182 * connection. 183 */ 184 if (ct->master) 185 state |= OVS_CS_F_RELATED; 186 if (keep_nat_flags) { 187 state |= key->ct.state & OVS_CS_F_NAT_MASK; 188 } else { 189 if (ct->status & IPS_SRC_NAT) 190 state |= OVS_CS_F_SRC_NAT; 191 if (ct->status & IPS_DST_NAT) 192 state |= OVS_CS_F_DST_NAT; 193 } 194 zone = nf_ct_zone(ct); 195 } else if (post_ct) { 196 state = OVS_CS_F_TRACKED | OVS_CS_F_INVALID; 197 if (info) 198 zone = &info->zone; 199 } 200 __ovs_ct_update_key(key, state, zone, ct); 201 } 202 203 /* This is called to initialize CT key fields possibly coming in from the local 204 * stack. 205 */ 206 void ovs_ct_fill_key(const struct sk_buff *skb, struct sw_flow_key *key) 207 { 208 ovs_ct_update_key(skb, NULL, key, false, false); 209 } 210 211 int ovs_ct_put_key(const struct sw_flow_key *key, struct sk_buff *skb) 212 { 213 if (nla_put_u32(skb, OVS_KEY_ATTR_CT_STATE, key->ct.state)) 214 return -EMSGSIZE; 215 216 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) && 217 nla_put_u16(skb, OVS_KEY_ATTR_CT_ZONE, key->ct.zone)) 218 return -EMSGSIZE; 219 220 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) && 221 nla_put_u32(skb, OVS_KEY_ATTR_CT_MARK, key->ct.mark)) 222 return -EMSGSIZE; 223 224 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) && 225 nla_put(skb, OVS_KEY_ATTR_CT_LABELS, sizeof(key->ct.labels), 226 &key->ct.labels)) 227 return -EMSGSIZE; 228 229 return 0; 230 } 231 232 static int ovs_ct_set_mark(struct sk_buff *skb, struct sw_flow_key *key, 233 u32 ct_mark, u32 mask) 234 { 235 #if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) 236 enum ip_conntrack_info ctinfo; 237 struct nf_conn *ct; 238 u32 new_mark; 239 240 /* The connection could be invalid, in which case set_mark is no-op. */ 241 ct = nf_ct_get(skb, &ctinfo); 242 if (!ct) 243 return 0; 244 245 new_mark = ct_mark | (ct->mark & ~(mask)); 246 if (ct->mark != new_mark) { 247 ct->mark = new_mark; 248 nf_conntrack_event_cache(IPCT_MARK, ct); 249 key->ct.mark = new_mark; 250 } 251 252 return 0; 253 #else 254 return -ENOTSUPP; 255 #endif 256 } 257 258 static int ovs_ct_set_labels(struct sk_buff *skb, struct sw_flow_key *key, 259 const struct ovs_key_ct_labels *labels, 260 const struct ovs_key_ct_labels *mask) 261 { 262 enum ip_conntrack_info ctinfo; 263 struct nf_conn_labels *cl; 264 struct nf_conn *ct; 265 int err; 266 267 /* The connection could be invalid, in which case set_label is no-op.*/ 268 ct = nf_ct_get(skb, &ctinfo); 269 if (!ct) 270 return 0; 271 272 cl = nf_ct_labels_find(ct); 273 if (!cl) { 274 nf_ct_labels_ext_add(ct); 275 cl = nf_ct_labels_find(ct); 276 } 277 if (!cl || cl->words * sizeof(long) < OVS_CT_LABELS_LEN) 278 return -ENOSPC; 279 280 err = nf_connlabels_replace(ct, (u32 *)labels, (u32 *)mask, 281 OVS_CT_LABELS_LEN / sizeof(u32)); 282 if (err) 283 return err; 284 285 ovs_ct_get_labels(ct, &key->ct.labels); 286 return 0; 287 } 288 289 /* 'skb' should already be pulled to nh_ofs. */ 290 static int ovs_ct_helper(struct sk_buff *skb, u16 proto) 291 { 292 const struct nf_conntrack_helper *helper; 293 const struct nf_conn_help *help; 294 enum ip_conntrack_info ctinfo; 295 unsigned int protoff; 296 struct nf_conn *ct; 297 int err; 298 299 ct = nf_ct_get(skb, &ctinfo); 300 if (!ct || ctinfo == IP_CT_RELATED_REPLY) 301 return NF_ACCEPT; 302 303 help = nfct_help(ct); 304 if (!help) 305 return NF_ACCEPT; 306 307 helper = rcu_dereference(help->helper); 308 if (!helper) 309 return NF_ACCEPT; 310 311 switch (proto) { 312 case NFPROTO_IPV4: 313 protoff = ip_hdrlen(skb); 314 break; 315 case NFPROTO_IPV6: { 316 u8 nexthdr = ipv6_hdr(skb)->nexthdr; 317 __be16 frag_off; 318 int ofs; 319 320 ofs = ipv6_skip_exthdr(skb, sizeof(struct ipv6hdr), &nexthdr, 321 &frag_off); 322 if (ofs < 0 || (frag_off & htons(~0x7)) != 0) { 323 pr_debug("proto header not found\n"); 324 return NF_ACCEPT; 325 } 326 protoff = ofs; 327 break; 328 } 329 default: 330 WARN_ONCE(1, "helper invoked on non-IP family!"); 331 return NF_DROP; 332 } 333 334 err = helper->help(skb, protoff, ct, ctinfo); 335 if (err != NF_ACCEPT) 336 return err; 337 338 /* Adjust seqs after helper. This is needed due to some helpers (e.g., 339 * FTP with NAT) adusting the TCP payload size when mangling IP 340 * addresses and/or port numbers in the text-based control connection. 341 */ 342 if (test_bit(IPS_SEQ_ADJUST_BIT, &ct->status) && 343 !nf_ct_seq_adjust(skb, ct, ctinfo, protoff)) 344 return NF_DROP; 345 return NF_ACCEPT; 346 } 347 348 /* Returns 0 on success, -EINPROGRESS if 'skb' is stolen, or other nonzero 349 * value if 'skb' is freed. 350 */ 351 static int handle_fragments(struct net *net, struct sw_flow_key *key, 352 u16 zone, struct sk_buff *skb) 353 { 354 struct ovs_skb_cb ovs_cb = *OVS_CB(skb); 355 int err; 356 357 if (key->eth.type == htons(ETH_P_IP)) { 358 enum ip_defrag_users user = IP_DEFRAG_CONNTRACK_IN + zone; 359 360 memset(IPCB(skb), 0, sizeof(struct inet_skb_parm)); 361 err = ip_defrag(net, skb, user); 362 if (err) 363 return err; 364 365 ovs_cb.mru = IPCB(skb)->frag_max_size; 366 #if IS_ENABLED(CONFIG_NF_DEFRAG_IPV6) 367 } else if (key->eth.type == htons(ETH_P_IPV6)) { 368 enum ip6_defrag_users user = IP6_DEFRAG_CONNTRACK_IN + zone; 369 370 skb_orphan(skb); 371 memset(IP6CB(skb), 0, sizeof(struct inet6_skb_parm)); 372 err = nf_ct_frag6_gather(net, skb, user); 373 if (err) 374 return err; 375 376 key->ip.proto = ipv6_hdr(skb)->nexthdr; 377 ovs_cb.mru = IP6CB(skb)->frag_max_size; 378 #endif 379 } else { 380 kfree_skb(skb); 381 return -EPFNOSUPPORT; 382 } 383 384 key->ip.frag = OVS_FRAG_TYPE_NONE; 385 skb_clear_hash(skb); 386 skb->ignore_df = 1; 387 *OVS_CB(skb) = ovs_cb; 388 389 return 0; 390 } 391 392 static struct nf_conntrack_expect * 393 ovs_ct_expect_find(struct net *net, const struct nf_conntrack_zone *zone, 394 u16 proto, const struct sk_buff *skb) 395 { 396 struct nf_conntrack_tuple tuple; 397 398 if (!nf_ct_get_tuplepr(skb, skb_network_offset(skb), proto, net, &tuple)) 399 return NULL; 400 return __nf_ct_expect_find(net, zone, &tuple); 401 } 402 403 /* This replicates logic from nf_conntrack_core.c that is not exported. */ 404 static enum ip_conntrack_info 405 ovs_ct_get_info(const struct nf_conntrack_tuple_hash *h) 406 { 407 const struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h); 408 409 if (NF_CT_DIRECTION(h) == IP_CT_DIR_REPLY) 410 return IP_CT_ESTABLISHED_REPLY; 411 /* Once we've had two way comms, always ESTABLISHED. */ 412 if (test_bit(IPS_SEEN_REPLY_BIT, &ct->status)) 413 return IP_CT_ESTABLISHED; 414 if (test_bit(IPS_EXPECTED_BIT, &ct->status)) 415 return IP_CT_RELATED; 416 return IP_CT_NEW; 417 } 418 419 /* Find an existing connection which this packet belongs to without 420 * re-attributing statistics or modifying the connection state. This allows an 421 * skb->nfct lost due to an upcall to be recovered during actions execution. 422 * 423 * Must be called with rcu_read_lock. 424 * 425 * On success, populates skb->nfct and skb->nfctinfo, and returns the 426 * connection. Returns NULL if there is no existing entry. 427 */ 428 static struct nf_conn * 429 ovs_ct_find_existing(struct net *net, const struct nf_conntrack_zone *zone, 430 u8 l3num, struct sk_buff *skb) 431 { 432 struct nf_conntrack_l3proto *l3proto; 433 struct nf_conntrack_l4proto *l4proto; 434 struct nf_conntrack_tuple tuple; 435 struct nf_conntrack_tuple_hash *h; 436 enum ip_conntrack_info ctinfo; 437 struct nf_conn *ct; 438 unsigned int dataoff; 439 u8 protonum; 440 441 l3proto = __nf_ct_l3proto_find(l3num); 442 if (l3proto->get_l4proto(skb, skb_network_offset(skb), &dataoff, 443 &protonum) <= 0) { 444 pr_debug("ovs_ct_find_existing: Can't get protonum\n"); 445 return NULL; 446 } 447 l4proto = __nf_ct_l4proto_find(l3num, protonum); 448 if (!nf_ct_get_tuple(skb, skb_network_offset(skb), dataoff, l3num, 449 protonum, net, &tuple, l3proto, l4proto)) { 450 pr_debug("ovs_ct_find_existing: Can't get tuple\n"); 451 return NULL; 452 } 453 454 /* look for tuple match */ 455 h = nf_conntrack_find_get(net, zone, &tuple); 456 if (!h) 457 return NULL; /* Not found. */ 458 459 ct = nf_ct_tuplehash_to_ctrack(h); 460 461 ctinfo = ovs_ct_get_info(h); 462 if (ctinfo == IP_CT_NEW) { 463 /* This should not happen. */ 464 WARN_ONCE(1, "ovs_ct_find_existing: new packet for %p\n", ct); 465 } 466 skb->nfct = &ct->ct_general; 467 skb->nfctinfo = ctinfo; 468 return ct; 469 } 470 471 /* Determine whether skb->nfct is equal to the result of conntrack lookup. */ 472 static bool skb_nfct_cached(struct net *net, 473 const struct sw_flow_key *key, 474 const struct ovs_conntrack_info *info, 475 struct sk_buff *skb) 476 { 477 enum ip_conntrack_info ctinfo; 478 struct nf_conn *ct; 479 480 ct = nf_ct_get(skb, &ctinfo); 481 /* If no ct, check if we have evidence that an existing conntrack entry 482 * might be found for this skb. This happens when we lose a skb->nfct 483 * due to an upcall. If the connection was not confirmed, it is not 484 * cached and needs to be run through conntrack again. 485 */ 486 if (!ct && key->ct.state & OVS_CS_F_TRACKED && 487 !(key->ct.state & OVS_CS_F_INVALID) && 488 key->ct.zone == info->zone.id) 489 ct = ovs_ct_find_existing(net, &info->zone, info->family, skb); 490 if (!ct) 491 return false; 492 if (!net_eq(net, read_pnet(&ct->ct_net))) 493 return false; 494 if (!nf_ct_zone_equal_any(info->ct, nf_ct_zone(ct))) 495 return false; 496 if (info->helper) { 497 struct nf_conn_help *help; 498 499 help = nf_ct_ext_find(ct, NF_CT_EXT_HELPER); 500 if (help && rcu_access_pointer(help->helper) != info->helper) 501 return false; 502 } 503 504 return true; 505 } 506 507 #ifdef CONFIG_NF_NAT_NEEDED 508 /* Modelled after nf_nat_ipv[46]_fn(). 509 * range is only used for new, uninitialized NAT state. 510 * Returns either NF_ACCEPT or NF_DROP. 511 */ 512 static int ovs_ct_nat_execute(struct sk_buff *skb, struct nf_conn *ct, 513 enum ip_conntrack_info ctinfo, 514 const struct nf_nat_range *range, 515 enum nf_nat_manip_type maniptype) 516 { 517 int hooknum, nh_off, err = NF_ACCEPT; 518 519 nh_off = skb_network_offset(skb); 520 skb_pull(skb, nh_off); 521 522 /* See HOOK2MANIP(). */ 523 if (maniptype == NF_NAT_MANIP_SRC) 524 hooknum = NF_INET_LOCAL_IN; /* Source NAT */ 525 else 526 hooknum = NF_INET_LOCAL_OUT; /* Destination NAT */ 527 528 switch (ctinfo) { 529 case IP_CT_RELATED: 530 case IP_CT_RELATED_REPLY: 531 if (IS_ENABLED(CONFIG_NF_NAT_IPV4) && 532 skb->protocol == htons(ETH_P_IP) && 533 ip_hdr(skb)->protocol == IPPROTO_ICMP) { 534 if (!nf_nat_icmp_reply_translation(skb, ct, ctinfo, 535 hooknum)) 536 err = NF_DROP; 537 goto push; 538 } else if (IS_ENABLED(CONFIG_NF_NAT_IPV6) && 539 skb->protocol == htons(ETH_P_IPV6)) { 540 __be16 frag_off; 541 u8 nexthdr = ipv6_hdr(skb)->nexthdr; 542 int hdrlen = ipv6_skip_exthdr(skb, 543 sizeof(struct ipv6hdr), 544 &nexthdr, &frag_off); 545 546 if (hdrlen >= 0 && nexthdr == IPPROTO_ICMPV6) { 547 if (!nf_nat_icmpv6_reply_translation(skb, ct, 548 ctinfo, 549 hooknum, 550 hdrlen)) 551 err = NF_DROP; 552 goto push; 553 } 554 } 555 /* Non-ICMP, fall thru to initialize if needed. */ 556 case IP_CT_NEW: 557 /* Seen it before? This can happen for loopback, retrans, 558 * or local packets. 559 */ 560 if (!nf_nat_initialized(ct, maniptype)) { 561 /* Initialize according to the NAT action. */ 562 err = (range && range->flags & NF_NAT_RANGE_MAP_IPS) 563 /* Action is set up to establish a new 564 * mapping. 565 */ 566 ? nf_nat_setup_info(ct, range, maniptype) 567 : nf_nat_alloc_null_binding(ct, hooknum); 568 if (err != NF_ACCEPT) 569 goto push; 570 } 571 break; 572 573 case IP_CT_ESTABLISHED: 574 case IP_CT_ESTABLISHED_REPLY: 575 break; 576 577 default: 578 err = NF_DROP; 579 goto push; 580 } 581 582 err = nf_nat_packet(ct, ctinfo, hooknum, skb); 583 push: 584 skb_push(skb, nh_off); 585 586 return err; 587 } 588 589 static void ovs_nat_update_key(struct sw_flow_key *key, 590 const struct sk_buff *skb, 591 enum nf_nat_manip_type maniptype) 592 { 593 if (maniptype == NF_NAT_MANIP_SRC) { 594 __be16 src; 595 596 key->ct.state |= OVS_CS_F_SRC_NAT; 597 if (key->eth.type == htons(ETH_P_IP)) 598 key->ipv4.addr.src = ip_hdr(skb)->saddr; 599 else if (key->eth.type == htons(ETH_P_IPV6)) 600 memcpy(&key->ipv6.addr.src, &ipv6_hdr(skb)->saddr, 601 sizeof(key->ipv6.addr.src)); 602 else 603 return; 604 605 if (key->ip.proto == IPPROTO_UDP) 606 src = udp_hdr(skb)->source; 607 else if (key->ip.proto == IPPROTO_TCP) 608 src = tcp_hdr(skb)->source; 609 else if (key->ip.proto == IPPROTO_SCTP) 610 src = sctp_hdr(skb)->source; 611 else 612 return; 613 614 key->tp.src = src; 615 } else { 616 __be16 dst; 617 618 key->ct.state |= OVS_CS_F_DST_NAT; 619 if (key->eth.type == htons(ETH_P_IP)) 620 key->ipv4.addr.dst = ip_hdr(skb)->daddr; 621 else if (key->eth.type == htons(ETH_P_IPV6)) 622 memcpy(&key->ipv6.addr.dst, &ipv6_hdr(skb)->daddr, 623 sizeof(key->ipv6.addr.dst)); 624 else 625 return; 626 627 if (key->ip.proto == IPPROTO_UDP) 628 dst = udp_hdr(skb)->dest; 629 else if (key->ip.proto == IPPROTO_TCP) 630 dst = tcp_hdr(skb)->dest; 631 else if (key->ip.proto == IPPROTO_SCTP) 632 dst = sctp_hdr(skb)->dest; 633 else 634 return; 635 636 key->tp.dst = dst; 637 } 638 } 639 640 /* Returns NF_DROP if the packet should be dropped, NF_ACCEPT otherwise. */ 641 static int ovs_ct_nat(struct net *net, struct sw_flow_key *key, 642 const struct ovs_conntrack_info *info, 643 struct sk_buff *skb, struct nf_conn *ct, 644 enum ip_conntrack_info ctinfo) 645 { 646 enum nf_nat_manip_type maniptype; 647 int err; 648 649 if (nf_ct_is_untracked(ct)) { 650 /* A NAT action may only be performed on tracked packets. */ 651 return NF_ACCEPT; 652 } 653 654 /* Add NAT extension if not confirmed yet. */ 655 if (!nf_ct_is_confirmed(ct) && !nf_ct_nat_ext_add(ct)) 656 return NF_ACCEPT; /* Can't NAT. */ 657 658 /* Determine NAT type. 659 * Check if the NAT type can be deduced from the tracked connection. 660 * Make sure new expected connections (IP_CT_RELATED) are NATted only 661 * when committing. 662 */ 663 if (info->nat & OVS_CT_NAT && ctinfo != IP_CT_NEW && 664 ct->status & IPS_NAT_MASK && 665 (ctinfo != IP_CT_RELATED || info->commit)) { 666 /* NAT an established or related connection like before. */ 667 if (CTINFO2DIR(ctinfo) == IP_CT_DIR_REPLY) 668 /* This is the REPLY direction for a connection 669 * for which NAT was applied in the forward 670 * direction. Do the reverse NAT. 671 */ 672 maniptype = ct->status & IPS_SRC_NAT 673 ? NF_NAT_MANIP_DST : NF_NAT_MANIP_SRC; 674 else 675 maniptype = ct->status & IPS_SRC_NAT 676 ? NF_NAT_MANIP_SRC : NF_NAT_MANIP_DST; 677 } else if (info->nat & OVS_CT_SRC_NAT) { 678 maniptype = NF_NAT_MANIP_SRC; 679 } else if (info->nat & OVS_CT_DST_NAT) { 680 maniptype = NF_NAT_MANIP_DST; 681 } else { 682 return NF_ACCEPT; /* Connection is not NATed. */ 683 } 684 err = ovs_ct_nat_execute(skb, ct, ctinfo, &info->range, maniptype); 685 686 /* Mark NAT done if successful and update the flow key. */ 687 if (err == NF_ACCEPT) 688 ovs_nat_update_key(key, skb, maniptype); 689 690 return err; 691 } 692 #else /* !CONFIG_NF_NAT_NEEDED */ 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 701 702 /* Pass 'skb' through conntrack in 'net', using zone configured in 'info', if 703 * not done already. Update key with new CT state after passing the packet 704 * through conntrack. 705 * Note that if the packet is deemed invalid by conntrack, skb->nfct will be 706 * set to NULL and 0 will be returned. 707 */ 708 static int __ovs_ct_lookup(struct net *net, struct sw_flow_key *key, 709 const struct ovs_conntrack_info *info, 710 struct sk_buff *skb) 711 { 712 /* If we are recirculating packets to match on conntrack fields and 713 * committing with a separate conntrack action, then we don't need to 714 * actually run the packet through conntrack twice unless it's for a 715 * different zone. 716 */ 717 bool cached = skb_nfct_cached(net, key, info, skb); 718 enum ip_conntrack_info ctinfo; 719 struct nf_conn *ct; 720 721 if (!cached) { 722 struct nf_conn *tmpl = info->ct; 723 int err; 724 725 /* Associate skb with specified zone. */ 726 if (tmpl) { 727 if (skb->nfct) 728 nf_conntrack_put(skb->nfct); 729 nf_conntrack_get(&tmpl->ct_general); 730 skb->nfct = &tmpl->ct_general; 731 skb->nfctinfo = IP_CT_NEW; 732 } 733 734 /* Repeat if requested, see nf_iterate(). */ 735 do { 736 err = nf_conntrack_in(net, info->family, 737 NF_INET_PRE_ROUTING, skb); 738 } while (err == NF_REPEAT); 739 740 if (err != NF_ACCEPT) 741 return -ENOENT; 742 743 /* Clear CT state NAT flags to mark that we have not yet done 744 * NAT after the nf_conntrack_in() call. We can actually clear 745 * the whole state, as it will be re-initialized below. 746 */ 747 key->ct.state = 0; 748 749 /* Update the key, but keep the NAT flags. */ 750 ovs_ct_update_key(skb, info, key, true, true); 751 } 752 753 ct = nf_ct_get(skb, &ctinfo); 754 if (ct) { 755 /* Packets starting a new connection must be NATted before the 756 * helper, so that the helper knows about the NAT. We enforce 757 * this by delaying both NAT and helper calls for unconfirmed 758 * connections until the committing CT action. For later 759 * packets NAT and Helper may be called in either order. 760 * 761 * NAT will be done only if the CT action has NAT, and only 762 * once per packet (per zone), as guarded by the NAT bits in 763 * the key->ct.state. 764 */ 765 if (info->nat && !(key->ct.state & OVS_CS_F_NAT_MASK) && 766 (nf_ct_is_confirmed(ct) || info->commit) && 767 ovs_ct_nat(net, key, info, skb, ct, ctinfo) != NF_ACCEPT) { 768 return -EINVAL; 769 } 770 771 /* Call the helper only if: 772 * - nf_conntrack_in() was executed above ("!cached") for a 773 * confirmed connection, or 774 * - When committing an unconfirmed connection. 775 */ 776 if ((nf_ct_is_confirmed(ct) ? !cached : info->commit) && 777 ovs_ct_helper(skb, info->family) != NF_ACCEPT) { 778 return -EINVAL; 779 } 780 } 781 782 return 0; 783 } 784 785 /* Lookup connection and read fields into key. */ 786 static int ovs_ct_lookup(struct net *net, struct sw_flow_key *key, 787 const struct ovs_conntrack_info *info, 788 struct sk_buff *skb) 789 { 790 struct nf_conntrack_expect *exp; 791 792 /* If we pass an expected packet through nf_conntrack_in() the 793 * expectation is typically removed, but the packet could still be 794 * lost in upcall processing. To prevent this from happening we 795 * perform an explicit expectation lookup. Expected connections are 796 * always new, and will be passed through conntrack only when they are 797 * committed, as it is OK to remove the expectation at that time. 798 */ 799 exp = ovs_ct_expect_find(net, &info->zone, info->family, skb); 800 if (exp) { 801 u8 state; 802 803 /* NOTE: New connections are NATted and Helped only when 804 * committed, so we are not calling into NAT here. 805 */ 806 state = OVS_CS_F_TRACKED | OVS_CS_F_NEW | OVS_CS_F_RELATED; 807 __ovs_ct_update_key(key, state, &info->zone, exp->master); 808 } else 809 return __ovs_ct_lookup(net, key, info, skb); 810 811 return 0; 812 } 813 814 /* Lookup connection and confirm if unconfirmed. */ 815 static int ovs_ct_commit(struct net *net, struct sw_flow_key *key, 816 const struct ovs_conntrack_info *info, 817 struct sk_buff *skb) 818 { 819 int err; 820 821 err = __ovs_ct_lookup(net, key, info, skb); 822 if (err) 823 return err; 824 /* This is a no-op if the connection has already been confirmed. */ 825 if (nf_conntrack_confirm(skb) != NF_ACCEPT) 826 return -EINVAL; 827 828 return 0; 829 } 830 831 static bool labels_nonzero(const struct ovs_key_ct_labels *labels) 832 { 833 size_t i; 834 835 for (i = 0; i < sizeof(*labels); i++) 836 if (labels->ct_labels[i]) 837 return true; 838 839 return false; 840 } 841 842 /* Returns 0 on success, -EINPROGRESS if 'skb' is stolen, or other nonzero 843 * value if 'skb' is freed. 844 */ 845 int ovs_ct_execute(struct net *net, struct sk_buff *skb, 846 struct sw_flow_key *key, 847 const struct ovs_conntrack_info *info) 848 { 849 int nh_ofs; 850 int err; 851 852 /* The conntrack module expects to be working at L3. */ 853 nh_ofs = skb_network_offset(skb); 854 skb_pull(skb, nh_ofs); 855 856 if (key->ip.frag != OVS_FRAG_TYPE_NONE) { 857 err = handle_fragments(net, key, info->zone.id, skb); 858 if (err) 859 return err; 860 } 861 862 if (info->commit) 863 err = ovs_ct_commit(net, key, info, skb); 864 else 865 err = ovs_ct_lookup(net, key, info, skb); 866 if (err) 867 goto err; 868 869 if (info->mark.mask) { 870 err = ovs_ct_set_mark(skb, key, info->mark.value, 871 info->mark.mask); 872 if (err) 873 goto err; 874 } 875 if (labels_nonzero(&info->labels.mask)) 876 err = ovs_ct_set_labels(skb, key, &info->labels.value, 877 &info->labels.mask); 878 err: 879 skb_push(skb, nh_ofs); 880 if (err) 881 kfree_skb(skb); 882 return err; 883 } 884 885 static int ovs_ct_add_helper(struct ovs_conntrack_info *info, const char *name, 886 const struct sw_flow_key *key, bool log) 887 { 888 struct nf_conntrack_helper *helper; 889 struct nf_conn_help *help; 890 891 helper = nf_conntrack_helper_try_module_get(name, info->family, 892 key->ip.proto); 893 if (!helper) { 894 OVS_NLERR(log, "Unknown helper \"%s\"", name); 895 return -EINVAL; 896 } 897 898 help = nf_ct_helper_ext_add(info->ct, helper, GFP_KERNEL); 899 if (!help) { 900 module_put(helper->me); 901 return -ENOMEM; 902 } 903 904 rcu_assign_pointer(help->helper, helper); 905 info->helper = helper; 906 return 0; 907 } 908 909 #ifdef CONFIG_NF_NAT_NEEDED 910 static int parse_nat(const struct nlattr *attr, 911 struct ovs_conntrack_info *info, bool log) 912 { 913 struct nlattr *a; 914 int rem; 915 bool have_ip_max = false; 916 bool have_proto_max = false; 917 bool ip_vers = (info->family == NFPROTO_IPV6); 918 919 nla_for_each_nested(a, attr, rem) { 920 static const int ovs_nat_attr_lens[OVS_NAT_ATTR_MAX + 1][2] = { 921 [OVS_NAT_ATTR_SRC] = {0, 0}, 922 [OVS_NAT_ATTR_DST] = {0, 0}, 923 [OVS_NAT_ATTR_IP_MIN] = {sizeof(struct in_addr), 924 sizeof(struct in6_addr)}, 925 [OVS_NAT_ATTR_IP_MAX] = {sizeof(struct in_addr), 926 sizeof(struct in6_addr)}, 927 [OVS_NAT_ATTR_PROTO_MIN] = {sizeof(u16), sizeof(u16)}, 928 [OVS_NAT_ATTR_PROTO_MAX] = {sizeof(u16), sizeof(u16)}, 929 [OVS_NAT_ATTR_PERSISTENT] = {0, 0}, 930 [OVS_NAT_ATTR_PROTO_HASH] = {0, 0}, 931 [OVS_NAT_ATTR_PROTO_RANDOM] = {0, 0}, 932 }; 933 int type = nla_type(a); 934 935 if (type > OVS_NAT_ATTR_MAX) { 936 OVS_NLERR(log, 937 "Unknown NAT attribute (type=%d, max=%d).\n", 938 type, OVS_NAT_ATTR_MAX); 939 return -EINVAL; 940 } 941 942 if (nla_len(a) != ovs_nat_attr_lens[type][ip_vers]) { 943 OVS_NLERR(log, 944 "NAT attribute type %d has unexpected length (%d != %d).\n", 945 type, nla_len(a), 946 ovs_nat_attr_lens[type][ip_vers]); 947 return -EINVAL; 948 } 949 950 switch (type) { 951 case OVS_NAT_ATTR_SRC: 952 case OVS_NAT_ATTR_DST: 953 if (info->nat) { 954 OVS_NLERR(log, 955 "Only one type of NAT may be specified.\n" 956 ); 957 return -ERANGE; 958 } 959 info->nat |= OVS_CT_NAT; 960 info->nat |= ((type == OVS_NAT_ATTR_SRC) 961 ? OVS_CT_SRC_NAT : OVS_CT_DST_NAT); 962 break; 963 964 case OVS_NAT_ATTR_IP_MIN: 965 nla_memcpy(&info->range.min_addr, a, 966 sizeof(info->range.min_addr)); 967 info->range.flags |= NF_NAT_RANGE_MAP_IPS; 968 break; 969 970 case OVS_NAT_ATTR_IP_MAX: 971 have_ip_max = true; 972 nla_memcpy(&info->range.max_addr, a, 973 sizeof(info->range.max_addr)); 974 info->range.flags |= NF_NAT_RANGE_MAP_IPS; 975 break; 976 977 case OVS_NAT_ATTR_PROTO_MIN: 978 info->range.min_proto.all = htons(nla_get_u16(a)); 979 info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED; 980 break; 981 982 case OVS_NAT_ATTR_PROTO_MAX: 983 have_proto_max = true; 984 info->range.max_proto.all = htons(nla_get_u16(a)); 985 info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED; 986 break; 987 988 case OVS_NAT_ATTR_PERSISTENT: 989 info->range.flags |= NF_NAT_RANGE_PERSISTENT; 990 break; 991 992 case OVS_NAT_ATTR_PROTO_HASH: 993 info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM; 994 break; 995 996 case OVS_NAT_ATTR_PROTO_RANDOM: 997 info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM_FULLY; 998 break; 999 1000 default: 1001 OVS_NLERR(log, "Unknown nat attribute (%d).\n", type); 1002 return -EINVAL; 1003 } 1004 } 1005 1006 if (rem > 0) { 1007 OVS_NLERR(log, "NAT attribute has %d unknown bytes.\n", rem); 1008 return -EINVAL; 1009 } 1010 if (!info->nat) { 1011 /* Do not allow flags if no type is given. */ 1012 if (info->range.flags) { 1013 OVS_NLERR(log, 1014 "NAT flags may be given only when NAT range (SRC or DST) is also specified.\n" 1015 ); 1016 return -EINVAL; 1017 } 1018 info->nat = OVS_CT_NAT; /* NAT existing connections. */ 1019 } else if (!info->commit) { 1020 OVS_NLERR(log, 1021 "NAT attributes may be specified only when CT COMMIT flag is also specified.\n" 1022 ); 1023 return -EINVAL; 1024 } 1025 /* Allow missing IP_MAX. */ 1026 if (info->range.flags & NF_NAT_RANGE_MAP_IPS && !have_ip_max) { 1027 memcpy(&info->range.max_addr, &info->range.min_addr, 1028 sizeof(info->range.max_addr)); 1029 } 1030 /* Allow missing PROTO_MAX. */ 1031 if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED && 1032 !have_proto_max) { 1033 info->range.max_proto.all = info->range.min_proto.all; 1034 } 1035 return 0; 1036 } 1037 #endif 1038 1039 static const struct ovs_ct_len_tbl ovs_ct_attr_lens[OVS_CT_ATTR_MAX + 1] = { 1040 [OVS_CT_ATTR_COMMIT] = { .minlen = 0, .maxlen = 0 }, 1041 [OVS_CT_ATTR_ZONE] = { .minlen = sizeof(u16), 1042 .maxlen = sizeof(u16) }, 1043 [OVS_CT_ATTR_MARK] = { .minlen = sizeof(struct md_mark), 1044 .maxlen = sizeof(struct md_mark) }, 1045 [OVS_CT_ATTR_LABELS] = { .minlen = sizeof(struct md_labels), 1046 .maxlen = sizeof(struct md_labels) }, 1047 [OVS_CT_ATTR_HELPER] = { .minlen = 1, 1048 .maxlen = NF_CT_HELPER_NAME_LEN }, 1049 #ifdef CONFIG_NF_NAT_NEEDED 1050 /* NAT length is checked when parsing the nested attributes. */ 1051 [OVS_CT_ATTR_NAT] = { .minlen = 0, .maxlen = INT_MAX }, 1052 #endif 1053 }; 1054 1055 static int parse_ct(const struct nlattr *attr, struct ovs_conntrack_info *info, 1056 const char **helper, bool log) 1057 { 1058 struct nlattr *a; 1059 int rem; 1060 1061 nla_for_each_nested(a, attr, rem) { 1062 int type = nla_type(a); 1063 int maxlen = ovs_ct_attr_lens[type].maxlen; 1064 int minlen = ovs_ct_attr_lens[type].minlen; 1065 1066 if (type > OVS_CT_ATTR_MAX) { 1067 OVS_NLERR(log, 1068 "Unknown conntrack attr (type=%d, max=%d)", 1069 type, OVS_CT_ATTR_MAX); 1070 return -EINVAL; 1071 } 1072 if (nla_len(a) < minlen || nla_len(a) > maxlen) { 1073 OVS_NLERR(log, 1074 "Conntrack attr type has unexpected length (type=%d, length=%d, expected=%d)", 1075 type, nla_len(a), maxlen); 1076 return -EINVAL; 1077 } 1078 1079 switch (type) { 1080 case OVS_CT_ATTR_COMMIT: 1081 info->commit = true; 1082 break; 1083 #ifdef CONFIG_NF_CONNTRACK_ZONES 1084 case OVS_CT_ATTR_ZONE: 1085 info->zone.id = nla_get_u16(a); 1086 break; 1087 #endif 1088 #ifdef CONFIG_NF_CONNTRACK_MARK 1089 case OVS_CT_ATTR_MARK: { 1090 struct md_mark *mark = nla_data(a); 1091 1092 if (!mark->mask) { 1093 OVS_NLERR(log, "ct_mark mask cannot be 0"); 1094 return -EINVAL; 1095 } 1096 info->mark = *mark; 1097 break; 1098 } 1099 #endif 1100 #ifdef CONFIG_NF_CONNTRACK_LABELS 1101 case OVS_CT_ATTR_LABELS: { 1102 struct md_labels *labels = nla_data(a); 1103 1104 if (!labels_nonzero(&labels->mask)) { 1105 OVS_NLERR(log, "ct_labels mask cannot be 0"); 1106 return -EINVAL; 1107 } 1108 info->labels = *labels; 1109 break; 1110 } 1111 #endif 1112 case OVS_CT_ATTR_HELPER: 1113 *helper = nla_data(a); 1114 if (!memchr(*helper, '\0', nla_len(a))) { 1115 OVS_NLERR(log, "Invalid conntrack helper"); 1116 return -EINVAL; 1117 } 1118 break; 1119 #ifdef CONFIG_NF_NAT_NEEDED 1120 case OVS_CT_ATTR_NAT: { 1121 int err = parse_nat(a, info, log); 1122 1123 if (err) 1124 return err; 1125 break; 1126 } 1127 #endif 1128 default: 1129 OVS_NLERR(log, "Unknown conntrack attr (%d)", 1130 type); 1131 return -EINVAL; 1132 } 1133 } 1134 1135 if (rem > 0) { 1136 OVS_NLERR(log, "Conntrack attr has %d unknown bytes", rem); 1137 return -EINVAL; 1138 } 1139 1140 return 0; 1141 } 1142 1143 bool ovs_ct_verify(struct net *net, enum ovs_key_attr attr) 1144 { 1145 if (attr == OVS_KEY_ATTR_CT_STATE) 1146 return true; 1147 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) && 1148 attr == OVS_KEY_ATTR_CT_ZONE) 1149 return true; 1150 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) && 1151 attr == OVS_KEY_ATTR_CT_MARK) 1152 return true; 1153 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) && 1154 attr == OVS_KEY_ATTR_CT_LABELS) { 1155 struct ovs_net *ovs_net = net_generic(net, ovs_net_id); 1156 1157 return ovs_net->xt_label; 1158 } 1159 1160 return false; 1161 } 1162 1163 int ovs_ct_copy_action(struct net *net, const struct nlattr *attr, 1164 const struct sw_flow_key *key, 1165 struct sw_flow_actions **sfa, bool log) 1166 { 1167 struct ovs_conntrack_info ct_info; 1168 const char *helper = NULL; 1169 u16 family; 1170 int err; 1171 1172 family = key_to_nfproto(key); 1173 if (family == NFPROTO_UNSPEC) { 1174 OVS_NLERR(log, "ct family unspecified"); 1175 return -EINVAL; 1176 } 1177 1178 memset(&ct_info, 0, sizeof(ct_info)); 1179 ct_info.family = family; 1180 1181 nf_ct_zone_init(&ct_info.zone, NF_CT_DEFAULT_ZONE_ID, 1182 NF_CT_DEFAULT_ZONE_DIR, 0); 1183 1184 err = parse_ct(attr, &ct_info, &helper, log); 1185 if (err) 1186 return err; 1187 1188 /* Set up template for tracking connections in specific zones. */ 1189 ct_info.ct = nf_ct_tmpl_alloc(net, &ct_info.zone, GFP_KERNEL); 1190 if (!ct_info.ct) { 1191 OVS_NLERR(log, "Failed to allocate conntrack template"); 1192 return -ENOMEM; 1193 } 1194 1195 __set_bit(IPS_CONFIRMED_BIT, &ct_info.ct->status); 1196 nf_conntrack_get(&ct_info.ct->ct_general); 1197 1198 if (helper) { 1199 err = ovs_ct_add_helper(&ct_info, helper, key, log); 1200 if (err) 1201 goto err_free_ct; 1202 } 1203 1204 err = ovs_nla_add_action(sfa, OVS_ACTION_ATTR_CT, &ct_info, 1205 sizeof(ct_info), log); 1206 if (err) 1207 goto err_free_ct; 1208 1209 return 0; 1210 err_free_ct: 1211 __ovs_ct_free_action(&ct_info); 1212 return err; 1213 } 1214 1215 #ifdef CONFIG_NF_NAT_NEEDED 1216 static bool ovs_ct_nat_to_attr(const struct ovs_conntrack_info *info, 1217 struct sk_buff *skb) 1218 { 1219 struct nlattr *start; 1220 1221 start = nla_nest_start(skb, OVS_CT_ATTR_NAT); 1222 if (!start) 1223 return false; 1224 1225 if (info->nat & OVS_CT_SRC_NAT) { 1226 if (nla_put_flag(skb, OVS_NAT_ATTR_SRC)) 1227 return false; 1228 } else if (info->nat & OVS_CT_DST_NAT) { 1229 if (nla_put_flag(skb, OVS_NAT_ATTR_DST)) 1230 return false; 1231 } else { 1232 goto out; 1233 } 1234 1235 if (info->range.flags & NF_NAT_RANGE_MAP_IPS) { 1236 if (IS_ENABLED(CONFIG_NF_NAT_IPV4) && 1237 info->family == NFPROTO_IPV4) { 1238 if (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MIN, 1239 info->range.min_addr.ip) || 1240 (info->range.max_addr.ip 1241 != info->range.min_addr.ip && 1242 (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MAX, 1243 info->range.max_addr.ip)))) 1244 return false; 1245 } else if (IS_ENABLED(CONFIG_NF_NAT_IPV6) && 1246 info->family == NFPROTO_IPV6) { 1247 if (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MIN, 1248 &info->range.min_addr.in6) || 1249 (memcmp(&info->range.max_addr.in6, 1250 &info->range.min_addr.in6, 1251 sizeof(info->range.max_addr.in6)) && 1252 (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MAX, 1253 &info->range.max_addr.in6)))) 1254 return false; 1255 } else { 1256 return false; 1257 } 1258 } 1259 if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED && 1260 (nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MIN, 1261 ntohs(info->range.min_proto.all)) || 1262 (info->range.max_proto.all != info->range.min_proto.all && 1263 nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MAX, 1264 ntohs(info->range.max_proto.all))))) 1265 return false; 1266 1267 if (info->range.flags & NF_NAT_RANGE_PERSISTENT && 1268 nla_put_flag(skb, OVS_NAT_ATTR_PERSISTENT)) 1269 return false; 1270 if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM && 1271 nla_put_flag(skb, OVS_NAT_ATTR_PROTO_HASH)) 1272 return false; 1273 if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM_FULLY && 1274 nla_put_flag(skb, OVS_NAT_ATTR_PROTO_RANDOM)) 1275 return false; 1276 out: 1277 nla_nest_end(skb, start); 1278 1279 return true; 1280 } 1281 #endif 1282 1283 int ovs_ct_action_to_attr(const struct ovs_conntrack_info *ct_info, 1284 struct sk_buff *skb) 1285 { 1286 struct nlattr *start; 1287 1288 start = nla_nest_start(skb, OVS_ACTION_ATTR_CT); 1289 if (!start) 1290 return -EMSGSIZE; 1291 1292 if (ct_info->commit && nla_put_flag(skb, OVS_CT_ATTR_COMMIT)) 1293 return -EMSGSIZE; 1294 if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) && 1295 nla_put_u16(skb, OVS_CT_ATTR_ZONE, ct_info->zone.id)) 1296 return -EMSGSIZE; 1297 if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) && ct_info->mark.mask && 1298 nla_put(skb, OVS_CT_ATTR_MARK, sizeof(ct_info->mark), 1299 &ct_info->mark)) 1300 return -EMSGSIZE; 1301 if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) && 1302 labels_nonzero(&ct_info->labels.mask) && 1303 nla_put(skb, OVS_CT_ATTR_LABELS, sizeof(ct_info->labels), 1304 &ct_info->labels)) 1305 return -EMSGSIZE; 1306 if (ct_info->helper) { 1307 if (nla_put_string(skb, OVS_CT_ATTR_HELPER, 1308 ct_info->helper->name)) 1309 return -EMSGSIZE; 1310 } 1311 #ifdef CONFIG_NF_NAT_NEEDED 1312 if (ct_info->nat && !ovs_ct_nat_to_attr(ct_info, skb)) 1313 return -EMSGSIZE; 1314 #endif 1315 nla_nest_end(skb, start); 1316 1317 return 0; 1318 } 1319 1320 void ovs_ct_free_action(const struct nlattr *a) 1321 { 1322 struct ovs_conntrack_info *ct_info = nla_data(a); 1323 1324 __ovs_ct_free_action(ct_info); 1325 } 1326 1327 static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info) 1328 { 1329 if (ct_info->helper) 1330 module_put(ct_info->helper->me); 1331 if (ct_info->ct) 1332 nf_ct_put(ct_info->ct); 1333 } 1334 1335 void ovs_ct_init(struct net *net) 1336 { 1337 unsigned int n_bits = sizeof(struct ovs_key_ct_labels) * BITS_PER_BYTE; 1338 struct ovs_net *ovs_net = net_generic(net, ovs_net_id); 1339 1340 if (nf_connlabels_get(net, n_bits - 1)) { 1341 ovs_net->xt_label = false; 1342 OVS_NLERR(true, "Failed to set connlabel length"); 1343 } else { 1344 ovs_net->xt_label = true; 1345 } 1346 } 1347 1348 void ovs_ct_exit(struct net *net) 1349 { 1350 struct ovs_net *ovs_net = net_generic(net, ovs_net_id); 1351 1352 if (ovs_net->xt_label) 1353 nf_connlabels_put(net); 1354 } 1355