1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* SCTP kernel implementation 3 * Copyright (c) 1999-2000 Cisco, Inc. 4 * Copyright (c) 1999-2001 Motorola, Inc. 5 * Copyright (c) 2001-2003 International Business Machines, Corp. 6 * Copyright (c) 2001 Intel Corp. 7 * Copyright (c) 2001 Nokia, Inc. 8 * Copyright (c) 2001 La Monte H.P. Yarroll 9 * 10 * This file is part of the SCTP kernel implementation 11 * 12 * These functions handle all input from the IP layer into SCTP. 13 * 14 * Please send any bug reports or fixes you make to the 15 * email address(es): 16 * lksctp developers <linux-sctp@vger.kernel.org> 17 * 18 * Written or modified by: 19 * La Monte H.P. Yarroll <piggy@acm.org> 20 * Karl Knutson <karl@athena.chicago.il.us> 21 * Xingang Guo <xingang.guo@intel.com> 22 * Jon Grimm <jgrimm@us.ibm.com> 23 * Hui Huang <hui.huang@nokia.com> 24 * Daisy Chang <daisyc@us.ibm.com> 25 * Sridhar Samudrala <sri@us.ibm.com> 26 * Ardelle Fan <ardelle.fan@intel.com> 27 */ 28 29 #include <linux/types.h> 30 #include <linux/list.h> /* For struct list_head */ 31 #include <linux/socket.h> 32 #include <linux/ip.h> 33 #include <linux/time.h> /* For struct timeval */ 34 #include <linux/slab.h> 35 #include <net/ip.h> 36 #include <net/icmp.h> 37 #include <net/snmp.h> 38 #include <net/sock.h> 39 #include <net/xfrm.h> 40 #include <net/sctp/sctp.h> 41 #include <net/sctp/sm.h> 42 #include <net/sctp/checksum.h> 43 #include <net/net_namespace.h> 44 #include <linux/rhashtable.h> 45 #include <net/sock_reuseport.h> 46 47 /* Forward declarations for internal helpers. */ 48 static int sctp_rcv_ootb(struct sk_buff *); 49 static struct sctp_association *__sctp_rcv_lookup(struct net *net, 50 struct sk_buff *skb, 51 const union sctp_addr *paddr, 52 const union sctp_addr *laddr, 53 struct sctp_transport **transportp, 54 int dif, int sdif); 55 static struct sctp_endpoint *__sctp_rcv_lookup_endpoint( 56 struct net *net, struct sk_buff *skb, 57 const union sctp_addr *laddr, 58 const union sctp_addr *daddr, 59 int dif, int sdif); 60 static struct sctp_association *__sctp_lookup_association( 61 struct net *net, 62 const union sctp_addr *local, 63 const union sctp_addr *peer, 64 struct sctp_transport **pt, 65 int dif, int sdif); 66 67 static int sctp_add_backlog(struct sock *sk, struct sk_buff *skb); 68 69 70 /* Calculate the SCTP checksum of an SCTP packet. */ 71 static inline int sctp_rcv_checksum(struct net *net, struct sk_buff *skb) 72 { 73 struct sctphdr *sh = sctp_hdr(skb); 74 __le32 cmp = sh->checksum; 75 __le32 val = sctp_compute_cksum(skb, 0); 76 77 if (val != cmp) { 78 /* CRC failure, dump it. */ 79 __SCTP_INC_STATS(net, SCTP_MIB_CHECKSUMERRORS); 80 return -1; 81 } 82 return 0; 83 } 84 85 /* 86 * This is the routine which IP calls when receiving an SCTP packet. 87 */ 88 int sctp_rcv(struct sk_buff *skb) 89 { 90 struct sock *sk; 91 struct sctp_association *asoc; 92 struct sctp_endpoint *ep = NULL; 93 struct sctp_ep_common *rcvr; 94 struct sctp_transport *transport = NULL; 95 struct sctp_chunk *chunk; 96 union sctp_addr src; 97 union sctp_addr dest; 98 int family; 99 struct sctp_af *af; 100 struct net *net = dev_net(skb->dev); 101 bool is_gso = skb_is_gso(skb) && skb_is_gso_sctp(skb); 102 int dif, sdif; 103 104 if (skb->pkt_type != PACKET_HOST) 105 goto discard_it; 106 107 __SCTP_INC_STATS(net, SCTP_MIB_INSCTPPACKS); 108 109 /* If packet is too small to contain a single chunk, let's not 110 * waste time on it anymore. 111 */ 112 if (skb->len < sizeof(struct sctphdr) + sizeof(struct sctp_chunkhdr) + 113 skb_transport_offset(skb)) 114 goto discard_it; 115 116 /* If the packet is fragmented and we need to do crc checking, 117 * it's better to just linearize it otherwise crc computing 118 * takes longer. 119 */ 120 if (((!is_gso || skb_cloned(skb)) && skb_linearize(skb)) || 121 !pskb_may_pull(skb, sizeof(struct sctphdr))) 122 goto discard_it; 123 124 /* Pull up the IP header. */ 125 __skb_pull(skb, skb_transport_offset(skb)); 126 127 skb->csum_valid = 0; /* Previous value not applicable */ 128 if (skb_csum_unnecessary(skb)) 129 __skb_decr_checksum_unnecessary(skb); 130 else if (!sctp_checksum_disable && 131 !is_gso && 132 sctp_rcv_checksum(net, skb) < 0) 133 goto discard_it; 134 skb->csum_valid = 1; 135 136 __skb_pull(skb, sizeof(struct sctphdr)); 137 138 family = ipver2af(ip_hdr(skb)->version); 139 af = sctp_get_af_specific(family); 140 if (unlikely(!af)) 141 goto discard_it; 142 SCTP_INPUT_CB(skb)->af = af; 143 144 /* Initialize local addresses for lookups. */ 145 af->from_skb(&src, skb, 1); 146 af->from_skb(&dest, skb, 0); 147 dif = af->skb_iif(skb); 148 sdif = af->skb_sdif(skb); 149 150 /* If the packet is to or from a non-unicast address, 151 * silently discard the packet. 152 * 153 * This is not clearly defined in the RFC except in section 154 * 8.4 - OOTB handling. However, based on the book "Stream Control 155 * Transmission Protocol" 2.1, "It is important to note that the 156 * IP address of an SCTP transport address must be a routable 157 * unicast address. In other words, IP multicast addresses and 158 * IP broadcast addresses cannot be used in an SCTP transport 159 * address." 160 */ 161 if (!af->addr_valid(&src, NULL, skb) || 162 !af->addr_valid(&dest, NULL, skb)) 163 goto discard_it; 164 165 asoc = __sctp_rcv_lookup(net, skb, &src, &dest, &transport, dif, sdif); 166 167 if (!asoc) 168 ep = __sctp_rcv_lookup_endpoint(net, skb, &dest, &src, dif, sdif); 169 170 /* Retrieve the common input handling substructure. */ 171 rcvr = asoc ? &asoc->base : &ep->base; 172 sk = rcvr->sk; 173 174 /* 175 * RFC 2960, 8.4 - Handle "Out of the blue" Packets. 176 * An SCTP packet is called an "out of the blue" (OOTB) 177 * packet if it is correctly formed, i.e., passed the 178 * receiver's checksum check, but the receiver is not 179 * able to identify the association to which this 180 * packet belongs. 181 */ 182 if (!asoc) { 183 if (sctp_rcv_ootb(skb)) { 184 __SCTP_INC_STATS(net, SCTP_MIB_OUTOFBLUES); 185 goto discard_release; 186 } 187 } 188 189 if (!xfrm_policy_check(sk, XFRM_POLICY_IN, skb, family)) 190 goto discard_release; 191 nf_reset_ct(skb); 192 193 if (sk_filter(sk, skb) || skb->len < sizeof(struct sctp_chunkhdr)) 194 goto discard_release; 195 196 /* Create an SCTP packet structure. */ 197 chunk = sctp_chunkify(skb, asoc, sk, GFP_ATOMIC); 198 if (!chunk) 199 goto discard_release; 200 SCTP_INPUT_CB(skb)->chunk = chunk; 201 202 /* Remember what endpoint is to handle this packet. */ 203 chunk->rcvr = rcvr; 204 205 /* Remember the SCTP header. */ 206 chunk->sctp_hdr = sctp_hdr(skb); 207 208 /* Set the source and destination addresses of the incoming chunk. */ 209 sctp_init_addrs(chunk, &src, &dest); 210 211 /* Remember where we came from. */ 212 chunk->transport = transport; 213 214 /* Acquire access to the sock lock. Note: We are safe from other 215 * bottom halves on this lock, but a user may be in the lock too, 216 * so check if it is busy. 217 */ 218 bh_lock_sock(sk); 219 220 if (sk != rcvr->sk) { 221 /* Our cached sk is different from the rcvr->sk. This is 222 * because migrate()/accept() may have moved the association 223 * to a new socket and released all the sockets. So now we 224 * are holding a lock on the old socket while the user may 225 * be doing something with the new socket. Switch our veiw 226 * of the current sk. 227 */ 228 bh_unlock_sock(sk); 229 sk = rcvr->sk; 230 bh_lock_sock(sk); 231 } 232 233 if (sock_owned_by_user(sk) || !sctp_newsk_ready(sk)) { 234 if (sctp_add_backlog(sk, skb)) { 235 bh_unlock_sock(sk); 236 sctp_chunk_free(chunk); 237 skb = NULL; /* sctp_chunk_free already freed the skb */ 238 goto discard_release; 239 } 240 __SCTP_INC_STATS(net, SCTP_MIB_IN_PKT_BACKLOG); 241 } else { 242 __SCTP_INC_STATS(net, SCTP_MIB_IN_PKT_SOFTIRQ); 243 sctp_inq_push(&chunk->rcvr->inqueue, chunk); 244 } 245 246 bh_unlock_sock(sk); 247 248 /* Release the asoc/ep ref we took in the lookup calls. */ 249 if (transport) 250 sctp_transport_put(transport); 251 else 252 sctp_endpoint_put(ep); 253 254 return 0; 255 256 discard_it: 257 __SCTP_INC_STATS(net, SCTP_MIB_IN_PKT_DISCARDS); 258 kfree_skb(skb); 259 return 0; 260 261 discard_release: 262 /* Release the asoc/ep ref we took in the lookup calls. */ 263 if (transport) 264 sctp_transport_put(transport); 265 else 266 sctp_endpoint_put(ep); 267 268 goto discard_it; 269 } 270 271 /* Process the backlog queue of the socket. Every skb on 272 * the backlog holds a ref on an association or endpoint. 273 * We hold this ref throughout the state machine to make 274 * sure that the structure we need is still around. 275 */ 276 int sctp_backlog_rcv(struct sock *sk, struct sk_buff *skb) 277 { 278 struct sctp_chunk *chunk = SCTP_INPUT_CB(skb)->chunk; 279 struct sctp_inq *inqueue = &chunk->rcvr->inqueue; 280 struct sctp_transport *t = chunk->transport; 281 struct sctp_ep_common *rcvr = NULL; 282 int backloged = 0; 283 284 rcvr = chunk->rcvr; 285 286 /* If the rcvr is dead then the association or endpoint 287 * has been deleted and we can safely drop the chunk 288 * and refs that we are holding. 289 */ 290 if (rcvr->dead) { 291 sctp_chunk_free(chunk); 292 goto done; 293 } 294 295 if (unlikely(rcvr->sk != sk)) { 296 /* In this case, the association moved from one socket to 297 * another. We are currently sitting on the backlog of the 298 * old socket, so we need to move. 299 * However, since we are here in the process context we 300 * need to take make sure that the user doesn't own 301 * the new socket when we process the packet. 302 * If the new socket is user-owned, queue the chunk to the 303 * backlog of the new socket without dropping any refs. 304 * Otherwise, we can safely push the chunk on the inqueue. 305 */ 306 307 sk = rcvr->sk; 308 local_bh_disable(); 309 bh_lock_sock(sk); 310 311 if (sock_owned_by_user(sk) || !sctp_newsk_ready(sk)) { 312 if (sk_add_backlog(sk, skb, READ_ONCE(sk->sk_rcvbuf))) 313 sctp_chunk_free(chunk); 314 else 315 backloged = 1; 316 } else 317 sctp_inq_push(inqueue, chunk); 318 319 bh_unlock_sock(sk); 320 local_bh_enable(); 321 322 /* If the chunk was backloged again, don't drop refs */ 323 if (backloged) 324 return 0; 325 } else { 326 if (!sctp_newsk_ready(sk)) { 327 if (!sk_add_backlog(sk, skb, READ_ONCE(sk->sk_rcvbuf))) 328 return 0; 329 sctp_chunk_free(chunk); 330 } else { 331 sctp_inq_push(inqueue, chunk); 332 } 333 } 334 335 done: 336 /* Release the refs we took in sctp_add_backlog */ 337 if (SCTP_EP_TYPE_ASSOCIATION == rcvr->type) 338 sctp_transport_put(t); 339 else if (SCTP_EP_TYPE_SOCKET == rcvr->type) 340 sctp_endpoint_put(sctp_ep(rcvr)); 341 else 342 BUG(); 343 344 return 0; 345 } 346 347 static int sctp_add_backlog(struct sock *sk, struct sk_buff *skb) 348 { 349 struct sctp_chunk *chunk = SCTP_INPUT_CB(skb)->chunk; 350 struct sctp_transport *t = chunk->transport; 351 struct sctp_ep_common *rcvr = chunk->rcvr; 352 int ret; 353 354 ret = sk_add_backlog(sk, skb, READ_ONCE(sk->sk_rcvbuf)); 355 if (!ret) { 356 /* Hold the assoc/ep while hanging on the backlog queue. 357 * This way, we know structures we need will not disappear 358 * from us 359 */ 360 if (SCTP_EP_TYPE_ASSOCIATION == rcvr->type) 361 sctp_transport_hold(t); 362 else if (SCTP_EP_TYPE_SOCKET == rcvr->type) 363 sctp_endpoint_hold(sctp_ep(rcvr)); 364 else 365 BUG(); 366 } 367 return ret; 368 369 } 370 371 /* Handle icmp frag needed error. */ 372 void sctp_icmp_frag_needed(struct sock *sk, struct sctp_association *asoc, 373 struct sctp_transport *t, __u32 pmtu) 374 { 375 if (!t || 376 (t->pathmtu <= pmtu && 377 t->pl.probe_size + sctp_transport_pl_hlen(t) <= pmtu)) 378 return; 379 380 if (sock_owned_by_user(sk)) { 381 atomic_set(&t->mtu_info, pmtu); 382 asoc->pmtu_pending = 1; 383 t->pmtu_pending = 1; 384 return; 385 } 386 387 if (!(t->param_flags & SPP_PMTUD_ENABLE)) 388 /* We can't allow retransmitting in such case, as the 389 * retransmission would be sized just as before, and thus we 390 * would get another icmp, and retransmit again. 391 */ 392 return; 393 394 /* Update transports view of the MTU. Return if no update was needed. 395 * If an update wasn't needed/possible, it also doesn't make sense to 396 * try to retransmit now. 397 */ 398 if (!sctp_transport_update_pmtu(t, pmtu)) 399 return; 400 401 /* Update association pmtu. */ 402 sctp_assoc_sync_pmtu(asoc); 403 404 /* Retransmit with the new pmtu setting. */ 405 sctp_retransmit(&asoc->outqueue, t, SCTP_RTXR_PMTUD); 406 } 407 408 void sctp_icmp_redirect(struct sock *sk, struct sctp_transport *t, 409 struct sk_buff *skb) 410 { 411 struct dst_entry *dst; 412 413 if (sock_owned_by_user(sk) || !t) 414 return; 415 dst = sctp_transport_dst_check(t); 416 if (dst) 417 dst->ops->redirect(dst, sk, skb); 418 } 419 420 /* 421 * SCTP Implementer's Guide, 2.37 ICMP handling procedures 422 * 423 * ICMP8) If the ICMP code is a "Unrecognized next header type encountered" 424 * or a "Protocol Unreachable" treat this message as an abort 425 * with the T bit set. 426 * 427 * This function sends an event to the state machine, which will abort the 428 * association. 429 * 430 */ 431 void sctp_icmp_proto_unreachable(struct sock *sk, 432 struct sctp_association *asoc, 433 struct sctp_transport *t) 434 { 435 if (sock_owned_by_user(sk)) { 436 if (timer_pending(&t->proto_unreach_timer)) 437 return; 438 else { 439 sctp_transport_hold(t); 440 if (mod_timer(&t->proto_unreach_timer, 441 jiffies + (HZ / 20))) 442 sctp_transport_put(t); 443 } 444 } else { 445 struct net *net = sock_net(sk); 446 447 pr_debug("%s: unrecognized next header type " 448 "encountered!\n", __func__); 449 450 if (timer_delete(&t->proto_unreach_timer)) 451 sctp_transport_put(t); 452 453 sctp_do_sm(net, SCTP_EVENT_T_OTHER, 454 SCTP_ST_OTHER(SCTP_EVENT_ICMP_PROTO_UNREACH), 455 asoc->state, asoc->ep, asoc, t, 456 GFP_ATOMIC); 457 } 458 } 459 460 /* Common lookup code for icmp/icmpv6 error handler. */ 461 struct sock *sctp_err_lookup(struct net *net, int family, struct sk_buff *skb, 462 struct sctphdr *sctphdr, 463 struct sctp_association **app, 464 struct sctp_transport **tpp) 465 { 466 struct sctp_init_chunk *chunkhdr, _chunkhdr; 467 union sctp_addr saddr; 468 union sctp_addr daddr; 469 struct sctp_af *af; 470 struct sock *sk = NULL; 471 struct sctp_association *asoc; 472 struct sctp_transport *transport = NULL; 473 __u32 vtag = ntohl(sctphdr->vtag); 474 int sdif = inet_sdif(skb); 475 int dif = inet_iif(skb); 476 477 *app = NULL; *tpp = NULL; 478 479 af = sctp_get_af_specific(family); 480 if (unlikely(!af)) { 481 return NULL; 482 } 483 484 /* Initialize local addresses for lookups. */ 485 af->from_skb(&saddr, skb, 1); 486 af->from_skb(&daddr, skb, 0); 487 488 /* Look for an association that matches the incoming ICMP error 489 * packet. 490 */ 491 asoc = __sctp_lookup_association(net, &saddr, &daddr, &transport, dif, sdif); 492 if (!asoc) 493 return NULL; 494 495 sk = asoc->base.sk; 496 497 /* RFC 4960, Appendix C. ICMP Handling 498 * 499 * ICMP6) An implementation MUST validate that the Verification Tag 500 * contained in the ICMP message matches the Verification Tag of 501 * the peer. If the Verification Tag is not 0 and does NOT 502 * match, discard the ICMP message. If it is 0 and the ICMP 503 * message contains enough bytes to verify that the chunk type is 504 * an INIT chunk and that the Initiate Tag matches the tag of the 505 * peer, continue with ICMP7. If the ICMP message is too short 506 * or the chunk type or the Initiate Tag does not match, silently 507 * discard the packet. 508 */ 509 if (vtag == 0) { 510 /* chunk header + first 4 octects of init header */ 511 chunkhdr = skb_header_pointer(skb, skb_transport_offset(skb) + 512 sizeof(struct sctphdr), 513 sizeof(struct sctp_chunkhdr) + 514 sizeof(__be32), &_chunkhdr); 515 if (!chunkhdr || 516 chunkhdr->chunk_hdr.type != SCTP_CID_INIT || 517 ntohl(chunkhdr->init_hdr.init_tag) != asoc->c.my_vtag) 518 goto out; 519 520 } else if (vtag != asoc->c.peer_vtag) { 521 goto out; 522 } 523 524 bh_lock_sock(sk); 525 526 /* If too many ICMPs get dropped on busy 527 * servers this needs to be solved differently. 528 */ 529 if (sock_owned_by_user(sk)) 530 __NET_INC_STATS(net, LINUX_MIB_LOCKDROPPEDICMPS); 531 532 *app = asoc; 533 *tpp = transport; 534 return sk; 535 536 out: 537 sctp_transport_put(transport); 538 return NULL; 539 } 540 541 /* Common cleanup code for icmp/icmpv6 error handler. */ 542 void sctp_err_finish(struct sock *sk, struct sctp_transport *t) 543 __releases(&((__sk)->sk_lock.slock)) 544 { 545 bh_unlock_sock(sk); 546 sctp_transport_put(t); 547 } 548 549 static void sctp_v4_err_handle(struct sctp_transport *t, struct sk_buff *skb, 550 __u8 type, __u8 code, __u32 info) 551 { 552 struct sctp_association *asoc = t->asoc; 553 struct sock *sk = asoc->base.sk; 554 int err = 0; 555 556 switch (type) { 557 case ICMP_PARAMETERPROB: 558 err = EPROTO; 559 break; 560 case ICMP_DEST_UNREACH: 561 if (code > NR_ICMP_UNREACH) 562 return; 563 if (code == ICMP_FRAG_NEEDED) { 564 sctp_icmp_frag_needed(sk, asoc, t, SCTP_TRUNC4(info)); 565 return; 566 } 567 if (code == ICMP_PROT_UNREACH) { 568 sctp_icmp_proto_unreachable(sk, asoc, t); 569 return; 570 } 571 err = icmp_err_convert[code].errno; 572 break; 573 case ICMP_TIME_EXCEEDED: 574 if (code == ICMP_EXC_FRAGTIME) 575 return; 576 577 err = EHOSTUNREACH; 578 break; 579 case ICMP_REDIRECT: 580 sctp_icmp_redirect(sk, t, skb); 581 return; 582 default: 583 return; 584 } 585 if (!sock_owned_by_user(sk) && inet_test_bit(RECVERR, sk)) { 586 sk->sk_err = err; 587 sk_error_report(sk); 588 } else { /* Only an error on timeout */ 589 WRITE_ONCE(sk->sk_err_soft, err); 590 } 591 } 592 593 /* 594 * This routine is called by the ICMP module when it gets some 595 * sort of error condition. If err < 0 then the socket should 596 * be closed and the error returned to the user. If err > 0 597 * it's just the icmp type << 8 | icmp code. After adjustment 598 * header points to the first 8 bytes of the sctp header. We need 599 * to find the appropriate port. 600 * 601 * The locking strategy used here is very "optimistic". When 602 * someone else accesses the socket the ICMP is just dropped 603 * and for some paths there is no check at all. 604 * A more general error queue to queue errors for later handling 605 * is probably better. 606 * 607 */ 608 int sctp_v4_err(struct sk_buff *skb, __u32 info) 609 { 610 const struct iphdr *iph = (const struct iphdr *)skb->data; 611 const int type = icmp_hdr(skb)->type; 612 const int code = icmp_hdr(skb)->code; 613 struct net *net = dev_net(skb->dev); 614 struct sctp_transport *transport; 615 struct sctp_association *asoc; 616 __u16 saveip, savesctp; 617 struct sock *sk; 618 619 /* Fix up skb to look at the embedded net header. */ 620 saveip = skb->network_header; 621 savesctp = skb->transport_header; 622 skb_reset_network_header(skb); 623 skb_set_transport_header(skb, iph->ihl * 4); 624 sk = sctp_err_lookup(net, AF_INET, skb, sctp_hdr(skb), &asoc, &transport); 625 /* Put back, the original values. */ 626 skb->network_header = saveip; 627 skb->transport_header = savesctp; 628 if (!sk) { 629 __ICMP_INC_STATS(net, ICMP_MIB_INERRORS); 630 return -ENOENT; 631 } 632 633 sctp_v4_err_handle(transport, skb, type, code, info); 634 sctp_err_finish(sk, transport); 635 636 return 0; 637 } 638 639 int sctp_udp_v4_err(struct sock *sk, struct sk_buff *skb) 640 { 641 struct net *net = dev_net(skb->dev); 642 struct sctp_association *asoc; 643 struct sctp_transport *t; 644 struct icmphdr *hdr; 645 __u32 info = 0; 646 647 skb->transport_header += sizeof(struct udphdr); 648 sk = sctp_err_lookup(net, AF_INET, skb, sctp_hdr(skb), &asoc, &t); 649 if (!sk) { 650 __ICMP_INC_STATS(net, ICMP_MIB_INERRORS); 651 return -ENOENT; 652 } 653 654 skb->transport_header -= sizeof(struct udphdr); 655 hdr = (struct icmphdr *)(skb_network_header(skb) - sizeof(struct icmphdr)); 656 if (hdr->type == ICMP_REDIRECT) { 657 /* can't be handled without outer iphdr known, leave it to udp_err */ 658 sctp_err_finish(sk, t); 659 return 0; 660 } 661 if (hdr->type == ICMP_DEST_UNREACH && hdr->code == ICMP_FRAG_NEEDED) 662 info = ntohs(hdr->un.frag.mtu); 663 sctp_v4_err_handle(t, skb, hdr->type, hdr->code, info); 664 665 sctp_err_finish(sk, t); 666 return 1; 667 } 668 669 /* 670 * RFC 2960, 8.4 - Handle "Out of the blue" Packets. 671 * 672 * This function scans all the chunks in the OOTB packet to determine if 673 * the packet should be discarded right away. If a response might be needed 674 * for this packet, or, if further processing is possible, the packet will 675 * be queued to a proper inqueue for the next phase of handling. 676 * 677 * Output: 678 * Return 0 - If further processing is needed. 679 * Return 1 - If the packet can be discarded right away. 680 */ 681 static int sctp_rcv_ootb(struct sk_buff *skb) 682 { 683 struct sctp_chunkhdr *ch, _ch; 684 int ch_end, offset = 0; 685 686 /* Scan through all the chunks in the packet. */ 687 do { 688 /* Make sure we have at least the header there */ 689 if (offset + sizeof(_ch) > skb->len) 690 break; 691 692 ch = skb_header_pointer(skb, offset, sizeof(*ch), &_ch); 693 694 /* Break out if chunk length is less then minimal. */ 695 if (!ch || ntohs(ch->length) < sizeof(_ch)) 696 break; 697 698 ch_end = offset + SCTP_PAD4(ntohs(ch->length)); 699 if (ch_end > skb->len) 700 break; 701 702 /* RFC 8.4, 2) If the OOTB packet contains an ABORT chunk, the 703 * receiver MUST silently discard the OOTB packet and take no 704 * further action. 705 */ 706 if (SCTP_CID_ABORT == ch->type) 707 goto discard; 708 709 /* RFC 8.4, 6) If the packet contains a SHUTDOWN COMPLETE 710 * chunk, the receiver should silently discard the packet 711 * and take no further action. 712 */ 713 if (SCTP_CID_SHUTDOWN_COMPLETE == ch->type) 714 goto discard; 715 716 /* RFC 4460, 2.11.2 717 * This will discard packets with INIT chunk bundled as 718 * subsequent chunks in the packet. When INIT is first, 719 * the normal INIT processing will discard the chunk. 720 */ 721 if (SCTP_CID_INIT == ch->type && (void *)ch != skb->data) 722 goto discard; 723 724 offset = ch_end; 725 } while (ch_end < skb->len); 726 727 return 0; 728 729 discard: 730 return 1; 731 } 732 733 /* Insert endpoint into the hash table. */ 734 static int __sctp_hash_endpoint(struct sctp_endpoint *ep) 735 { 736 struct sock *sk = ep->base.sk; 737 struct net *net = sock_net(sk); 738 struct sctp_hashbucket *head; 739 int err = 0; 740 741 ep->hashent = sctp_ep_hashfn(net, ep->base.bind_addr.port); 742 head = &sctp_ep_hashtable[ep->hashent]; 743 744 write_lock(&head->lock); 745 if (sk->sk_reuseport) { 746 bool any = sctp_is_ep_boundall(sk); 747 struct sctp_endpoint *ep2; 748 struct list_head *list; 749 int cnt = 0; 750 751 err = 1; 752 753 list_for_each(list, &ep->base.bind_addr.address_list) 754 cnt++; 755 756 sctp_for_each_hentry(ep2, &head->chain) { 757 struct sock *sk2 = ep2->base.sk; 758 759 if (!net_eq(sock_net(sk2), net) || sk2 == sk || 760 !uid_eq(sk_uid(sk2), sk_uid(sk)) || 761 !sk2->sk_reuseport) 762 continue; 763 764 err = sctp_bind_addrs_check(sctp_sk(sk2), 765 sctp_sk(sk), cnt); 766 if (!err) { 767 err = reuseport_add_sock(sk, sk2, any); 768 if (err) 769 goto out; 770 break; 771 } else if (err < 0) { 772 goto out; 773 } 774 } 775 776 if (err) { 777 err = reuseport_alloc(sk, any); 778 if (err) 779 goto out; 780 } 781 } 782 783 hlist_add_head(&ep->node, &head->chain); 784 out: 785 write_unlock(&head->lock); 786 return err; 787 } 788 789 /* Add an endpoint to the hash. Local BH-safe. */ 790 int sctp_hash_endpoint(struct sctp_endpoint *ep) 791 { 792 int err; 793 794 local_bh_disable(); 795 err = __sctp_hash_endpoint(ep); 796 local_bh_enable(); 797 798 return err; 799 } 800 801 /* Remove endpoint from the hash table. */ 802 static void __sctp_unhash_endpoint(struct sctp_endpoint *ep) 803 { 804 struct sock *sk = ep->base.sk; 805 struct sctp_hashbucket *head; 806 807 ep->hashent = sctp_ep_hashfn(sock_net(sk), ep->base.bind_addr.port); 808 809 head = &sctp_ep_hashtable[ep->hashent]; 810 811 write_lock(&head->lock); 812 if (rcu_access_pointer(sk->sk_reuseport_cb)) 813 reuseport_detach_sock(sk); 814 hlist_del_init(&ep->node); 815 write_unlock(&head->lock); 816 } 817 818 /* Remove endpoint from the hash. Local BH-safe. */ 819 void sctp_unhash_endpoint(struct sctp_endpoint *ep) 820 { 821 local_bh_disable(); 822 __sctp_unhash_endpoint(ep); 823 local_bh_enable(); 824 } 825 826 static inline __u32 sctp_hashfn(const struct net *net, __be16 lport, 827 const union sctp_addr *paddr, __u32 seed) 828 { 829 __u32 addr; 830 831 if (paddr->sa.sa_family == AF_INET6) 832 addr = jhash(&paddr->v6.sin6_addr, 16, seed); 833 else 834 addr = (__force __u32)paddr->v4.sin_addr.s_addr; 835 836 return jhash_3words(addr, ((__force __u32)paddr->v4.sin_port) << 16 | 837 (__force __u32)lport, net_hash_mix(net), seed); 838 } 839 840 /* Look up an endpoint. */ 841 static struct sctp_endpoint *__sctp_rcv_lookup_endpoint( 842 struct net *net, struct sk_buff *skb, 843 const union sctp_addr *laddr, 844 const union sctp_addr *paddr, 845 int dif, int sdif) 846 { 847 struct sctp_hashbucket *head; 848 struct sctp_endpoint *ep; 849 struct sock *sk; 850 __be16 lport; 851 int hash; 852 853 lport = laddr->v4.sin_port; 854 hash = sctp_ep_hashfn(net, ntohs(lport)); 855 head = &sctp_ep_hashtable[hash]; 856 read_lock(&head->lock); 857 sctp_for_each_hentry(ep, &head->chain) { 858 if (sctp_endpoint_is_match(ep, net, laddr, dif, sdif)) 859 goto hit; 860 } 861 862 ep = sctp_sk(net->sctp.ctl_sock)->ep; 863 864 hit: 865 sk = ep->base.sk; 866 if (sk->sk_reuseport) { 867 __u32 phash = sctp_hashfn(net, lport, paddr, 0); 868 869 sk = reuseport_select_sock(sk, phash, skb, 870 sizeof(struct sctphdr)); 871 if (sk) 872 ep = sctp_sk(sk)->ep; 873 } 874 sctp_endpoint_hold(ep); 875 read_unlock(&head->lock); 876 return ep; 877 } 878 879 /* rhashtable for transport */ 880 struct sctp_hash_cmp_arg { 881 const union sctp_addr *paddr; 882 const struct net *net; 883 __be16 lport; 884 }; 885 886 static inline int sctp_hash_cmp(struct rhashtable_compare_arg *arg, 887 const void *ptr) 888 { 889 struct sctp_transport *t = (struct sctp_transport *)ptr; 890 const struct sctp_hash_cmp_arg *x = arg->key; 891 int err = 1; 892 893 if (!sctp_cmp_addr_exact(&t->ipaddr, x->paddr)) 894 return err; 895 if (!sctp_transport_hold(t)) 896 return err; 897 898 if (!net_eq(t->asoc->base.net, x->net)) 899 goto out; 900 if (x->lport != htons(t->asoc->base.bind_addr.port)) 901 goto out; 902 903 err = 0; 904 out: 905 sctp_transport_put(t); 906 return err; 907 } 908 909 static inline __u32 sctp_hash_obj(const void *data, u32 len, u32 seed) 910 { 911 const struct sctp_transport *t = data; 912 913 return sctp_hashfn(t->asoc->base.net, 914 htons(t->asoc->base.bind_addr.port), 915 &t->ipaddr, seed); 916 } 917 918 static inline __u32 sctp_hash_key(const void *data, u32 len, u32 seed) 919 { 920 const struct sctp_hash_cmp_arg *x = data; 921 922 return sctp_hashfn(x->net, x->lport, x->paddr, seed); 923 } 924 925 static const struct rhashtable_params sctp_hash_params = { 926 .head_offset = offsetof(struct sctp_transport, node), 927 .hashfn = sctp_hash_key, 928 .obj_hashfn = sctp_hash_obj, 929 .obj_cmpfn = sctp_hash_cmp, 930 .automatic_shrinking = true, 931 }; 932 933 int sctp_transport_hashtable_init(void) 934 { 935 return rhltable_init(&sctp_transport_hashtable, &sctp_hash_params); 936 } 937 938 void sctp_transport_hashtable_destroy(void) 939 { 940 rhltable_destroy(&sctp_transport_hashtable); 941 } 942 943 int sctp_hash_transport(struct sctp_transport *t) 944 { 945 struct sctp_transport *transport; 946 struct rhlist_head *tmp, *list; 947 struct sctp_hash_cmp_arg arg; 948 int err; 949 950 if (t->asoc->temp) 951 return 0; 952 953 arg.net = t->asoc->base.net; 954 arg.paddr = &t->ipaddr; 955 arg.lport = htons(t->asoc->base.bind_addr.port); 956 957 rcu_read_lock(); 958 list = rhltable_lookup(&sctp_transport_hashtable, &arg, 959 sctp_hash_params); 960 961 rhl_for_each_entry_rcu(transport, tmp, list, node) 962 if (transport->asoc->ep == t->asoc->ep) { 963 rcu_read_unlock(); 964 return -EEXIST; 965 } 966 rcu_read_unlock(); 967 968 err = rhltable_insert_key(&sctp_transport_hashtable, &arg, 969 &t->node, sctp_hash_params); 970 if (err) 971 pr_err_once("insert transport fail, errno %d\n", err); 972 973 return err; 974 } 975 976 void sctp_unhash_transport(struct sctp_transport *t) 977 { 978 if (t->asoc->temp) 979 return; 980 981 rhltable_remove(&sctp_transport_hashtable, &t->node, 982 sctp_hash_params); 983 } 984 985 bool sctp_sk_bound_dev_eq(struct net *net, int bound_dev_if, int dif, int sdif) 986 { 987 bool l3mdev_accept = true; 988 989 #if IS_ENABLED(CONFIG_NET_L3_MASTER_DEV) 990 l3mdev_accept = !!READ_ONCE(net->sctp.l3mdev_accept); 991 #endif 992 return inet_bound_dev_eq(l3mdev_accept, bound_dev_if, dif, sdif); 993 } 994 995 /* return a transport with holding it */ 996 struct sctp_transport *sctp_addrs_lookup_transport( 997 struct net *net, 998 const union sctp_addr *laddr, 999 const union sctp_addr *paddr, 1000 int dif, int sdif) 1001 { 1002 struct rhlist_head *tmp, *list; 1003 struct sctp_transport *t; 1004 int bound_dev_if; 1005 struct sctp_hash_cmp_arg arg = { 1006 .paddr = paddr, 1007 .net = net, 1008 .lport = laddr->v4.sin_port, 1009 }; 1010 1011 list = rhltable_lookup(&sctp_transport_hashtable, &arg, 1012 sctp_hash_params); 1013 1014 rhl_for_each_entry_rcu(t, tmp, list, node) { 1015 if (!sctp_transport_hold(t)) 1016 continue; 1017 1018 bound_dev_if = READ_ONCE(t->asoc->base.sk->sk_bound_dev_if); 1019 if (sctp_sk_bound_dev_eq(net, bound_dev_if, dif, sdif) && 1020 sctp_bind_addr_match(&t->asoc->base.bind_addr, 1021 laddr, sctp_sk(t->asoc->base.sk))) 1022 return t; 1023 sctp_transport_put(t); 1024 } 1025 1026 return NULL; 1027 } 1028 1029 /* return a transport without holding it, as it's only used under sock lock */ 1030 struct sctp_transport *sctp_epaddr_lookup_transport( 1031 const struct sctp_endpoint *ep, 1032 const union sctp_addr *paddr) 1033 { 1034 struct rhlist_head *tmp, *list; 1035 struct sctp_transport *t; 1036 struct sctp_hash_cmp_arg arg = { 1037 .paddr = paddr, 1038 .net = ep->base.net, 1039 .lport = htons(ep->base.bind_addr.port), 1040 }; 1041 1042 list = rhltable_lookup(&sctp_transport_hashtable, &arg, 1043 sctp_hash_params); 1044 1045 rhl_for_each_entry_rcu(t, tmp, list, node) 1046 if (ep == t->asoc->ep) 1047 return t; 1048 1049 return NULL; 1050 } 1051 1052 /* Look up an association. */ 1053 static struct sctp_association *__sctp_lookup_association( 1054 struct net *net, 1055 const union sctp_addr *local, 1056 const union sctp_addr *peer, 1057 struct sctp_transport **pt, 1058 int dif, int sdif) 1059 { 1060 struct sctp_transport *t; 1061 struct sctp_association *asoc = NULL; 1062 1063 t = sctp_addrs_lookup_transport(net, local, peer, dif, sdif); 1064 if (!t) 1065 goto out; 1066 1067 asoc = t->asoc; 1068 *pt = t; 1069 1070 out: 1071 return asoc; 1072 } 1073 1074 /* Look up an association. protected by RCU read lock */ 1075 static 1076 struct sctp_association *sctp_lookup_association(struct net *net, 1077 const union sctp_addr *laddr, 1078 const union sctp_addr *paddr, 1079 struct sctp_transport **transportp, 1080 int dif, int sdif) 1081 { 1082 struct sctp_association *asoc; 1083 1084 rcu_read_lock(); 1085 asoc = __sctp_lookup_association(net, laddr, paddr, transportp, dif, sdif); 1086 rcu_read_unlock(); 1087 1088 return asoc; 1089 } 1090 1091 /* Is there an association matching the given local and peer addresses? */ 1092 bool sctp_has_association(struct net *net, 1093 const union sctp_addr *laddr, 1094 const union sctp_addr *paddr, 1095 int dif, int sdif) 1096 { 1097 struct sctp_transport *transport; 1098 1099 if (sctp_lookup_association(net, laddr, paddr, &transport, dif, sdif)) { 1100 sctp_transport_put(transport); 1101 return true; 1102 } 1103 1104 return false; 1105 } 1106 1107 /* 1108 * SCTP Implementors Guide, 2.18 Handling of address 1109 * parameters within the INIT or INIT-ACK. 1110 * 1111 * D) When searching for a matching TCB upon reception of an INIT 1112 * or INIT-ACK chunk the receiver SHOULD use not only the 1113 * source address of the packet (containing the INIT or 1114 * INIT-ACK) but the receiver SHOULD also use all valid 1115 * address parameters contained within the chunk. 1116 * 1117 * 2.18.3 Solution description 1118 * 1119 * This new text clearly specifies to an implementor the need 1120 * to look within the INIT or INIT-ACK. Any implementation that 1121 * does not do this, may not be able to establish associations 1122 * in certain circumstances. 1123 * 1124 */ 1125 static struct sctp_association *__sctp_rcv_init_lookup(struct net *net, 1126 struct sk_buff *skb, 1127 const union sctp_addr *laddr, struct sctp_transport **transportp, 1128 int dif, int sdif) 1129 { 1130 struct sctp_association *asoc; 1131 union sctp_addr addr; 1132 union sctp_addr *paddr = &addr; 1133 struct sctphdr *sh = sctp_hdr(skb); 1134 union sctp_params params; 1135 struct sctp_init_chunk *init; 1136 struct sctp_af *af; 1137 1138 /* 1139 * This code will NOT touch anything inside the chunk--it is 1140 * strictly READ-ONLY. 1141 * 1142 * RFC 2960 3 SCTP packet Format 1143 * 1144 * Multiple chunks can be bundled into one SCTP packet up to 1145 * the MTU size, except for the INIT, INIT ACK, and SHUTDOWN 1146 * COMPLETE chunks. These chunks MUST NOT be bundled with any 1147 * other chunk in a packet. See Section 6.10 for more details 1148 * on chunk bundling. 1149 */ 1150 1151 /* Find the start of the TLVs and the end of the chunk. This is 1152 * the region we search for address parameters. 1153 */ 1154 init = (struct sctp_init_chunk *)skb->data; 1155 1156 /* Walk the parameters looking for embedded addresses. */ 1157 sctp_walk_params(params, init) { 1158 1159 /* Note: Ignoring hostname addresses. */ 1160 af = sctp_get_af_specific(param_type2af(params.p->type)); 1161 if (!af) 1162 continue; 1163 1164 if (!af->from_addr_param(paddr, params.addr, sh->source, 0)) 1165 continue; 1166 1167 asoc = __sctp_lookup_association(net, laddr, paddr, transportp, dif, sdif); 1168 if (asoc) 1169 return asoc; 1170 } 1171 1172 return NULL; 1173 } 1174 1175 /* ADD-IP, Section 5.2 1176 * When an endpoint receives an ASCONF Chunk from the remote peer 1177 * special procedures may be needed to identify the association the 1178 * ASCONF Chunk is associated with. To properly find the association 1179 * the following procedures SHOULD be followed: 1180 * 1181 * D2) If the association is not found, use the address found in the 1182 * Address Parameter TLV combined with the port number found in the 1183 * SCTP common header. If found proceed to rule D4. 1184 * 1185 * D2-ext) If more than one ASCONF Chunks are packed together, use the 1186 * address found in the ASCONF Address Parameter TLV of each of the 1187 * subsequent ASCONF Chunks. If found, proceed to rule D4. 1188 */ 1189 static struct sctp_association *__sctp_rcv_asconf_lookup( 1190 struct net *net, 1191 struct sctp_chunkhdr *ch, 1192 const union sctp_addr *laddr, 1193 __be16 peer_port, 1194 struct sctp_transport **transportp, 1195 int dif, int sdif) 1196 { 1197 struct sctp_addip_chunk *asconf = (struct sctp_addip_chunk *)ch; 1198 struct sctp_af *af; 1199 union sctp_addr_param *param; 1200 union sctp_addr paddr; 1201 1202 if (ntohs(ch->length) < sizeof(*asconf) + sizeof(struct sctp_paramhdr)) 1203 return NULL; 1204 1205 /* Skip over the ADDIP header and find the Address parameter */ 1206 param = (union sctp_addr_param *)(asconf + 1); 1207 1208 /* The whole address parameter must lie within the chunk before 1209 * af->from_addr_param() reads the variable-length address; otherwise a 1210 * truncated trailing ASCONF chunk lets it read uninitialized bytes past 1211 * the parameter. 1212 */ 1213 if (sizeof(*asconf) + ntohs(param->p.length) > ntohs(ch->length)) 1214 return NULL; 1215 1216 af = sctp_get_af_specific(param_type2af(param->p.type)); 1217 if (unlikely(!af)) 1218 return NULL; 1219 1220 if (!af->from_addr_param(&paddr, param, peer_port, 0)) 1221 return NULL; 1222 1223 return __sctp_lookup_association(net, laddr, &paddr, transportp, dif, sdif); 1224 } 1225 1226 1227 /* SCTP-AUTH, Section 6.3: 1228 * If the receiver does not find a STCB for a packet containing an AUTH 1229 * chunk as the first chunk and not a COOKIE-ECHO chunk as the second 1230 * chunk, it MUST use the chunks after the AUTH chunk to look up an existing 1231 * association. 1232 * 1233 * This means that any chunks that can help us identify the association need 1234 * to be looked at to find this association. 1235 */ 1236 static struct sctp_association *__sctp_rcv_walk_lookup(struct net *net, 1237 struct sk_buff *skb, 1238 const union sctp_addr *laddr, 1239 struct sctp_transport **transportp, 1240 int dif, int sdif) 1241 { 1242 struct sctp_association *asoc = NULL; 1243 struct sctp_chunkhdr *ch; 1244 int have_auth = 0; 1245 unsigned int chunk_num = 1; 1246 __u8 *ch_end; 1247 1248 /* Walk through the chunks looking for AUTH or ASCONF chunks 1249 * to help us find the association. 1250 */ 1251 ch = (struct sctp_chunkhdr *)skb->data; 1252 do { 1253 /* Break out if chunk length is less then minimal. */ 1254 if (ntohs(ch->length) < sizeof(*ch)) 1255 break; 1256 1257 ch_end = ((__u8 *)ch) + SCTP_PAD4(ntohs(ch->length)); 1258 if (ch_end > skb_tail_pointer(skb)) 1259 break; 1260 1261 switch (ch->type) { 1262 case SCTP_CID_AUTH: 1263 have_auth = chunk_num; 1264 break; 1265 1266 case SCTP_CID_COOKIE_ECHO: 1267 /* If a packet arrives containing an AUTH chunk as 1268 * a first chunk, a COOKIE-ECHO chunk as the second 1269 * chunk, and possibly more chunks after them, and 1270 * the receiver does not have an STCB for that 1271 * packet, then authentication is based on 1272 * the contents of the COOKIE- ECHO chunk. 1273 */ 1274 if (have_auth == 1 && chunk_num == 2) 1275 return NULL; 1276 break; 1277 1278 case SCTP_CID_ASCONF: 1279 if (have_auth || net->sctp.addip_noauth) 1280 asoc = __sctp_rcv_asconf_lookup( 1281 net, ch, laddr, 1282 sctp_hdr(skb)->source, 1283 transportp, dif, sdif); 1284 break; 1285 default: 1286 break; 1287 } 1288 1289 if (asoc) 1290 break; 1291 1292 ch = (struct sctp_chunkhdr *)ch_end; 1293 chunk_num++; 1294 } while (ch_end + sizeof(*ch) < skb_tail_pointer(skb)); 1295 1296 return asoc; 1297 } 1298 1299 /* 1300 * There are circumstances when we need to look inside the SCTP packet 1301 * for information to help us find the association. Examples 1302 * include looking inside of INIT/INIT-ACK chunks or after the AUTH 1303 * chunks. 1304 */ 1305 static struct sctp_association *__sctp_rcv_lookup_harder(struct net *net, 1306 struct sk_buff *skb, 1307 const union sctp_addr *laddr, 1308 struct sctp_transport **transportp, 1309 int dif, int sdif) 1310 { 1311 struct sctp_chunkhdr *ch; 1312 1313 /* We do not allow GSO frames here as we need to linearize and 1314 * then cannot guarantee frame boundaries. This shouldn't be an 1315 * issue as packets hitting this are mostly INIT or INIT-ACK and 1316 * those cannot be on GSO-style anyway. 1317 */ 1318 if (skb_is_gso(skb) && skb_is_gso_sctp(skb)) 1319 return NULL; 1320 1321 ch = (struct sctp_chunkhdr *)skb->data; 1322 1323 /* The code below will attempt to walk the chunk and extract 1324 * parameter information. Before we do that, we need to verify 1325 * that the chunk length doesn't cause overflow. Otherwise, we'll 1326 * walk off the end. 1327 */ 1328 if (SCTP_PAD4(ntohs(ch->length)) > skb->len) 1329 return NULL; 1330 1331 /* If this is INIT/INIT-ACK look inside the chunk too. */ 1332 if (ch->type == SCTP_CID_INIT || ch->type == SCTP_CID_INIT_ACK) 1333 return __sctp_rcv_init_lookup(net, skb, laddr, transportp, dif, sdif); 1334 1335 return __sctp_rcv_walk_lookup(net, skb, laddr, transportp, dif, sdif); 1336 } 1337 1338 /* Lookup an association for an inbound skb. */ 1339 static struct sctp_association *__sctp_rcv_lookup(struct net *net, 1340 struct sk_buff *skb, 1341 const union sctp_addr *paddr, 1342 const union sctp_addr *laddr, 1343 struct sctp_transport **transportp, 1344 int dif, int sdif) 1345 { 1346 struct sctp_association *asoc; 1347 1348 asoc = __sctp_lookup_association(net, laddr, paddr, transportp, dif, sdif); 1349 if (asoc) 1350 goto out; 1351 1352 /* Further lookup for INIT/INIT-ACK packets. 1353 * SCTP Implementors Guide, 2.18 Handling of address 1354 * parameters within the INIT or INIT-ACK. 1355 */ 1356 asoc = __sctp_rcv_lookup_harder(net, skb, laddr, transportp, dif, sdif); 1357 if (asoc) 1358 goto out; 1359 1360 if (paddr->sa.sa_family == AF_INET) 1361 pr_debug("sctp: asoc not found for src:%pI4:%d dst:%pI4:%d\n", 1362 &laddr->v4.sin_addr, ntohs(laddr->v4.sin_port), 1363 &paddr->v4.sin_addr, ntohs(paddr->v4.sin_port)); 1364 else 1365 pr_debug("sctp: asoc not found for src:%pI6:%d dst:%pI6:%d\n", 1366 &laddr->v6.sin6_addr, ntohs(laddr->v6.sin6_port), 1367 &paddr->v6.sin6_addr, ntohs(paddr->v6.sin6_port)); 1368 1369 out: 1370 return asoc; 1371 } 1372