1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * INET An implementation of the TCP/IP protocol suite for the LINUX 4 * operating system. INET is implemented using the BSD Socket 5 * interface as the means of communication with the user level. 6 * 7 * The User Datagram Protocol (UDP). 8 * 9 * Authors: Ross Biro 10 * Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG> 11 * Arnt Gulbrandsen, <agulbra@nvg.unit.no> 12 * Alan Cox, <alan@lxorguk.ukuu.org.uk> 13 * Hirokazu Takahashi, <taka@valinux.co.jp> 14 * 15 * Fixes: 16 * Alan Cox : verify_area() calls 17 * Alan Cox : stopped close while in use off icmp 18 * messages. Not a fix but a botch that 19 * for udp at least is 'valid'. 20 * Alan Cox : Fixed icmp handling properly 21 * Alan Cox : Correct error for oversized datagrams 22 * Alan Cox : Tidied select() semantics. 23 * Alan Cox : udp_err() fixed properly, also now 24 * select and read wake correctly on errors 25 * Alan Cox : udp_send verify_area moved to avoid mem leak 26 * Alan Cox : UDP can count its memory 27 * Alan Cox : send to an unknown connection causes 28 * an ECONNREFUSED off the icmp, but 29 * does NOT close. 30 * Alan Cox : Switched to new sk_buff handlers. No more backlog! 31 * Alan Cox : Using generic datagram code. Even smaller and the PEEK 32 * bug no longer crashes it. 33 * Fred Van Kempen : Net2e support for sk->broadcast. 34 * Alan Cox : Uses skb_free_datagram 35 * Alan Cox : Added get/set sockopt support. 36 * Alan Cox : Broadcasting without option set returns EACCES. 37 * Alan Cox : No wakeup calls. Instead we now use the callbacks. 38 * Alan Cox : Use ip_tos and ip_ttl 39 * Alan Cox : SNMP Mibs 40 * Alan Cox : MSG_DONTROUTE, and 0.0.0.0 support. 41 * Matt Dillon : UDP length checks. 42 * Alan Cox : Smarter af_inet used properly. 43 * Alan Cox : Use new kernel side addressing. 44 * Alan Cox : Incorrect return on truncated datagram receive. 45 * Arnt Gulbrandsen : New udp_send and stuff 46 * Alan Cox : Cache last socket 47 * Alan Cox : Route cache 48 * Jon Peatfield : Minor efficiency fix to sendto(). 49 * Mike Shaver : RFC1122 checks. 50 * Alan Cox : Nonblocking error fix. 51 * Willy Konynenberg : Transparent proxying support. 52 * Mike McLagan : Routing by source 53 * David S. Miller : New socket lookup architecture. 54 * Last socket cache retained as it 55 * does have a high hit rate. 56 * Olaf Kirch : Don't linearise iovec on sendmsg. 57 * Andi Kleen : Some cleanups, cache destination entry 58 * for connect. 59 * Vitaly E. Lavrov : Transparent proxy revived after year coma. 60 * Melvin Smith : Check msg_name not msg_namelen in sendto(), 61 * return ENOTCONN for unconnected sockets (POSIX) 62 * Janos Farkas : don't deliver multi/broadcasts to a different 63 * bound-to-device socket 64 * Hirokazu Takahashi : HW checksumming for outgoing UDP 65 * datagrams. 66 * Hirokazu Takahashi : sendfile() on UDP works now. 67 * Arnaldo C. Melo : convert /proc/net/udp to seq_file 68 * YOSHIFUJI Hideaki @USAGI and: Support IPV6_V6ONLY socket option, which 69 * Alexey Kuznetsov: allow both IPv4 and IPv6 sockets to bind 70 * a single port at the same time. 71 * Derek Atkins <derek@ihtfp.com>: Add Encapsulation Support 72 * James Chapman : Add L2TP encapsulation type. 73 */ 74 75 #define pr_fmt(fmt) "UDP: " fmt 76 77 #include <linux/bpf-cgroup.h> 78 #include <linux/uaccess.h> 79 #include <linux/uio.h> 80 #include <asm/ioctls.h> 81 #include <linux/memblock.h> 82 #include <linux/highmem.h> 83 #include <linux/types.h> 84 #include <linux/fcntl.h> 85 #include <linux/module.h> 86 #include <linux/socket.h> 87 #include <linux/sockios.h> 88 #include <linux/igmp.h> 89 #include <linux/inetdevice.h> 90 #include <linux/in.h> 91 #include <linux/errno.h> 92 #include <linux/timer.h> 93 #include <linux/mm.h> 94 #include <linux/inet.h> 95 #include <linux/netdevice.h> 96 #include <linux/slab.h> 97 #include <linux/sock_diag.h> 98 #include <net/tcp_states.h> 99 #include <linux/skbuff.h> 100 #include <linux/proc_fs.h> 101 #include <linux/seq_file.h> 102 #include <net/aligned_data.h> 103 #include <net/net_namespace.h> 104 #include <net/icmp.h> 105 #include <net/inet_common.h> 106 #include <net/inet_hashtables.h> 107 #include <net/ip.h> 108 #include <net/ip_tunnels.h> 109 #include <net/route.h> 110 #include <net/checksum.h> 111 #include <net/gso.h> 112 #include <net/xfrm.h> 113 #include <trace/events/udp.h> 114 #include <linux/static_key.h> 115 #include <linux/btf_ids.h> 116 #include <trace/events/skb.h> 117 #include <net/busy_poll.h> 118 #include <net/sock_reuseport.h> 119 #include <net/addrconf.h> 120 #include <net/udp_tunnel.h> 121 #include <net/gro.h> 122 #include <net/rps.h> 123 124 struct udp_table udp_table __read_mostly; 125 126 long sysctl_udp_mem[3] __read_mostly; 127 128 DEFINE_PER_CPU(int, udp_memory_per_cpu_fw_alloc); 129 EXPORT_PER_CPU_SYMBOL_GPL(udp_memory_per_cpu_fw_alloc); 130 131 #define MAX_UDP_PORTS 65536 132 #define PORTS_PER_CHAIN (MAX_UDP_PORTS / UDP_HTABLE_SIZE_MIN_PERNET) 133 134 static int udp_lib_lport_inuse(struct net *net, __u16 num, 135 const struct udp_hslot *hslot, 136 unsigned long *bitmap, 137 struct sock *sk, unsigned int log) 138 { 139 kuid_t uid = sk_uid(sk); 140 struct sock *sk2; 141 142 sk_for_each(sk2, &hslot->head) { 143 if (net_eq(sock_net(sk2), net) && 144 sk2 != sk && 145 (bitmap || udp_sk(sk2)->udp_port_hash == num) && 146 (!sk2->sk_reuse || !sk->sk_reuse) && 147 (!sk2->sk_bound_dev_if || !sk->sk_bound_dev_if || 148 sk2->sk_bound_dev_if == sk->sk_bound_dev_if) && 149 inet_rcv_saddr_equal(sk, sk2, true)) { 150 if (sk2->sk_reuseport && sk->sk_reuseport && 151 !rcu_access_pointer(sk->sk_reuseport_cb) && 152 uid_eq(uid, sk_uid(sk2))) { 153 if (!bitmap) 154 return 0; 155 } else { 156 if (!bitmap) 157 return 1; 158 __set_bit(udp_sk(sk2)->udp_port_hash >> log, 159 bitmap); 160 } 161 } 162 } 163 return 0; 164 } 165 166 /* 167 * Note: we still hold spinlock of primary hash chain, so no other writer 168 * can insert/delete a socket with local_port == num 169 */ 170 static int udp_lib_lport_inuse2(struct net *net, __u16 num, 171 struct udp_hslot *hslot2, 172 struct sock *sk) 173 { 174 kuid_t uid = sk_uid(sk); 175 struct sock *sk2; 176 int res = 0; 177 178 spin_lock(&hslot2->lock); 179 udp_portaddr_for_each_entry(sk2, &hslot2->head) { 180 if (net_eq(sock_net(sk2), net) && 181 sk2 != sk && 182 (udp_sk(sk2)->udp_port_hash == num) && 183 (!sk2->sk_reuse || !sk->sk_reuse) && 184 (!sk2->sk_bound_dev_if || !sk->sk_bound_dev_if || 185 sk2->sk_bound_dev_if == sk->sk_bound_dev_if) && 186 inet_rcv_saddr_equal(sk, sk2, true)) { 187 if (sk2->sk_reuseport && sk->sk_reuseport && 188 !rcu_access_pointer(sk->sk_reuseport_cb) && 189 uid_eq(uid, sk_uid(sk2))) { 190 res = 0; 191 } else { 192 res = 1; 193 } 194 break; 195 } 196 } 197 spin_unlock(&hslot2->lock); 198 return res; 199 } 200 201 static int udp_reuseport_add_sock(struct sock *sk, struct udp_hslot *hslot) 202 { 203 struct net *net = sock_net(sk); 204 kuid_t uid = sk_uid(sk); 205 struct sock *sk2; 206 207 sk_for_each(sk2, &hslot->head) { 208 if (net_eq(sock_net(sk2), net) && 209 sk2 != sk && 210 sk2->sk_family == sk->sk_family && 211 ipv6_only_sock(sk2) == ipv6_only_sock(sk) && 212 (udp_sk(sk2)->udp_port_hash == udp_sk(sk)->udp_port_hash) && 213 (sk2->sk_bound_dev_if == sk->sk_bound_dev_if) && 214 sk2->sk_reuseport && uid_eq(uid, sk_uid(sk2)) && 215 inet_rcv_saddr_equal(sk, sk2, false)) { 216 return reuseport_add_sock(sk, sk2, 217 inet_rcv_saddr_any(sk)); 218 } 219 } 220 221 return reuseport_alloc(sk, inet_rcv_saddr_any(sk)); 222 } 223 224 /** 225 * udp_lib_get_port - UDP port lookup for IPv4 and IPv6 226 * 227 * @sk: socket struct in question 228 * @snum: port number to look up 229 * @hash2_nulladdr: AF-dependent hash value in secondary hash chains, 230 * with NULL address 231 */ 232 int udp_lib_get_port(struct sock *sk, unsigned short snum, 233 unsigned int hash2_nulladdr) 234 { 235 struct udp_hslot *hslot, *hslot2; 236 struct net *net = sock_net(sk); 237 struct udp_table *udptable; 238 int error = -EADDRINUSE; 239 240 udptable = net->ipv4.udp_table; 241 242 if (!snum) { 243 DECLARE_BITMAP(bitmap, PORTS_PER_CHAIN); 244 unsigned short first, last; 245 int low, high, remaining; 246 unsigned int rand; 247 248 inet_sk_get_local_port_range(sk, &low, &high); 249 remaining = (high - low) + 1; 250 251 rand = get_random_u32(); 252 first = reciprocal_scale(rand, remaining) + low; 253 /* 254 * force rand to be an odd multiple of UDP_HTABLE_SIZE 255 */ 256 rand = (rand | 1) * (udptable->mask + 1); 257 last = first + udptable->mask + 1; 258 do { 259 hslot = udp_hashslot(udptable, net, first); 260 bitmap_zero(bitmap, PORTS_PER_CHAIN); 261 spin_lock_bh(&hslot->lock); 262 udp_lib_lport_inuse(net, snum, hslot, bitmap, sk, 263 udptable->log); 264 265 snum = first; 266 /* 267 * Iterate on all possible values of snum for this hash. 268 * Using steps of an odd multiple of UDP_HTABLE_SIZE 269 * give us randomization and full range coverage. 270 */ 271 do { 272 if (low <= snum && snum <= high && 273 !test_bit(snum >> udptable->log, bitmap) && 274 !inet_is_local_reserved_port(net, snum)) 275 goto found; 276 snum += rand; 277 } while (snum != first); 278 spin_unlock_bh(&hslot->lock); 279 cond_resched(); 280 } while (++first != last); 281 goto fail; 282 } else { 283 hslot = udp_hashslot(udptable, net, snum); 284 spin_lock_bh(&hslot->lock); 285 if (inet_use_hash2_on_bind(sk) && hslot->count > 10) { 286 int exist; 287 unsigned int slot2 = udp_sk(sk)->udp_portaddr_hash ^ snum; 288 289 slot2 &= udptable->mask; 290 hash2_nulladdr &= udptable->mask; 291 292 hslot2 = udp_hashslot2(udptable, slot2); 293 if (hslot->count < hslot2->count) 294 goto scan_primary_hash; 295 296 exist = udp_lib_lport_inuse2(net, snum, hslot2, sk); 297 if (!exist && (hash2_nulladdr != slot2)) { 298 hslot2 = udp_hashslot2(udptable, hash2_nulladdr); 299 exist = udp_lib_lport_inuse2(net, snum, hslot2, 300 sk); 301 } 302 if (exist) 303 goto fail_unlock; 304 else 305 goto found; 306 } 307 scan_primary_hash: 308 if (udp_lib_lport_inuse(net, snum, hslot, NULL, sk, 0)) 309 goto fail_unlock; 310 } 311 found: 312 inet_sk(sk)->inet_num = snum; 313 udp_sk(sk)->udp_port_hash = snum; 314 udp_sk(sk)->udp_portaddr_hash ^= snum; 315 if (sk_unhashed(sk)) { 316 if (sk->sk_reuseport && 317 udp_reuseport_add_sock(sk, hslot)) { 318 inet_sk(sk)->inet_num = 0; 319 udp_sk(sk)->udp_port_hash = 0; 320 udp_sk(sk)->udp_portaddr_hash ^= snum; 321 goto fail_unlock; 322 } 323 324 sock_set_flag(sk, SOCK_RCU_FREE); 325 326 sk_add_node_rcu(sk, &hslot->head); 327 hslot->count++; 328 sock_prot_inuse_add(sock_net(sk), sk->sk_prot, 1); 329 330 hslot2 = udp_hashslot2(udptable, udp_sk(sk)->udp_portaddr_hash); 331 spin_lock(&hslot2->lock); 332 if (IS_ENABLED(CONFIG_IPV6) && sk->sk_reuseport && 333 sk->sk_family == AF_INET6) 334 hlist_add_tail_rcu(&udp_sk(sk)->udp_portaddr_node, 335 &hslot2->head); 336 else 337 hlist_add_head_rcu(&udp_sk(sk)->udp_portaddr_node, 338 &hslot2->head); 339 hslot2->count++; 340 spin_unlock(&hslot2->lock); 341 } 342 343 error = 0; 344 fail_unlock: 345 spin_unlock_bh(&hslot->lock); 346 fail: 347 return error; 348 } 349 350 static int udp_v4_get_port(struct sock *sk, unsigned short snum) 351 { 352 unsigned int hash2_nulladdr = 353 ipv4_portaddr_hash(sock_net(sk), htonl(INADDR_ANY), snum); 354 unsigned int hash2_partial = 355 ipv4_portaddr_hash(sock_net(sk), inet_sk(sk)->inet_rcv_saddr, 0); 356 357 /* precompute partial secondary hash */ 358 udp_sk(sk)->udp_portaddr_hash = hash2_partial; 359 return udp_lib_get_port(sk, snum, hash2_nulladdr); 360 } 361 362 static __always_inline int 363 compute_score(struct sock *sk, const struct net *net, 364 __be32 saddr, __be16 sport, __be32 daddr, 365 unsigned short hnum, int dif, int sdif) 366 { 367 int score; 368 struct inet_sock *inet; 369 bool dev_match; 370 371 if (!net_eq(sock_net(sk), net) || 372 udp_sk(sk)->udp_port_hash != hnum || 373 ipv6_only_sock(sk)) 374 return -1; 375 376 if (sk->sk_rcv_saddr != daddr) 377 return -1; 378 379 score = (sk->sk_family == PF_INET) ? 2 : 1; 380 381 inet = inet_sk(sk); 382 if (inet->inet_daddr) { 383 if (inet->inet_daddr != saddr) 384 return -1; 385 score += 4; 386 } 387 388 if (inet->inet_dport) { 389 if (inet->inet_dport != sport) 390 return -1; 391 score += 4; 392 } 393 394 dev_match = udp_sk_bound_dev_eq(net, sk->sk_bound_dev_if, 395 dif, sdif); 396 if (!dev_match) 397 return -1; 398 if (sk->sk_bound_dev_if) 399 score += 4; 400 401 if (READ_ONCE(sk->sk_incoming_cpu) == raw_smp_processor_id()) 402 score++; 403 return score; 404 } 405 406 u32 udp_ehashfn(const struct net *net, const __be32 laddr, const __u16 lport, 407 const __be32 faddr, const __be16 fport) 408 { 409 net_get_random_once(&udp_ehash_secret, sizeof(udp_ehash_secret)); 410 411 return __inet_ehashfn(laddr, lport, faddr, fport, 412 udp_ehash_secret + net_hash_mix(net)); 413 } 414 415 /** 416 * udp4_lib_lookup1() - Simplified lookup using primary hash (destination port) 417 * @net: Network namespace 418 * @saddr: Source address, network order 419 * @sport: Source port, network order 420 * @daddr: Destination address, network order 421 * @hnum: Destination port, host order 422 * @dif: Destination interface index 423 * @sdif: Destination bridge port index, if relevant 424 * @udptable: Set of UDP hash tables 425 * 426 * Simplified lookup to be used as fallback if no sockets are found due to a 427 * potential race between (receive) address change, and lookup happening before 428 * the rehash operation. This function ignores SO_REUSEPORT groups while scoring 429 * result sockets, because if we have one, we don't need the fallback at all. 430 * 431 * Called under rcu_read_lock(). 432 * 433 * Return: socket with highest matching score if any, NULL if none 434 */ 435 static struct sock *udp4_lib_lookup1(const struct net *net, 436 __be32 saddr, __be16 sport, 437 __be32 daddr, unsigned int hnum, 438 int dif, int sdif, 439 const struct udp_table *udptable) 440 { 441 unsigned int slot = udp_hashfn(net, hnum, udptable->mask); 442 struct udp_hslot *hslot = &udptable->hash[slot]; 443 struct sock *sk, *result = NULL; 444 int score, badness = 0; 445 446 sk_for_each_rcu(sk, &hslot->head) { 447 score = compute_score(sk, net, 448 saddr, sport, daddr, hnum, dif, sdif); 449 if (score > badness) { 450 result = sk; 451 badness = score; 452 } 453 } 454 455 return result; 456 } 457 458 /* called with rcu_read_lock() */ 459 static struct sock *udp4_lib_lookup2(const struct net *net, 460 __be32 saddr, __be16 sport, 461 __be32 daddr, unsigned int hnum, 462 int dif, int sdif, 463 struct udp_hslot *hslot2, 464 struct sk_buff *skb) 465 { 466 struct sock *sk, *result; 467 int score, badness; 468 bool need_rescore; 469 470 result = NULL; 471 badness = 0; 472 udp_portaddr_for_each_entry_rcu(sk, &hslot2->head) { 473 need_rescore = false; 474 rescore: 475 score = compute_score(need_rescore ? result : sk, net, saddr, 476 sport, daddr, hnum, dif, sdif); 477 if (score > badness) { 478 badness = score; 479 480 if (need_rescore) 481 continue; 482 483 if (sk->sk_state == TCP_ESTABLISHED) { 484 result = sk; 485 continue; 486 } 487 488 result = inet_lookup_reuseport(net, sk, skb, sizeof(struct udphdr), 489 saddr, sport, daddr, hnum, udp_ehashfn); 490 if (!result) { 491 result = sk; 492 continue; 493 } 494 495 /* Fall back to scoring if group has connections */ 496 if (!reuseport_has_conns(sk)) 497 return result; 498 499 /* Reuseport logic returned an error, keep original score. */ 500 if (IS_ERR(result)) 501 continue; 502 503 /* compute_score is too long of a function to be 504 * inlined twice here, and calling it uninlined 505 * here yields measurable overhead for some 506 * workloads. Work around it by jumping 507 * backwards to rescore 'result'. 508 */ 509 need_rescore = true; 510 goto rescore; 511 } 512 } 513 return result; 514 } 515 516 #if IS_ENABLED(CONFIG_BASE_SMALL) 517 static struct sock *udp4_lib_lookup4(const struct net *net, 518 __be32 saddr, __be16 sport, 519 __be32 daddr, unsigned int hnum, 520 int dif, int sdif, 521 struct udp_table *udptable) 522 { 523 return NULL; 524 } 525 526 static void udp_rehash4(struct udp_table *udptable, struct sock *sk, 527 u16 newhash4) 528 { 529 } 530 531 static void udp_unhash4(struct udp_table *udptable, struct sock *sk) 532 { 533 } 534 #else /* !CONFIG_BASE_SMALL */ 535 static struct sock *udp4_lib_lookup4(const struct net *net, 536 __be32 saddr, __be16 sport, 537 __be32 daddr, unsigned int hnum, 538 int dif, int sdif, 539 struct udp_table *udptable) 540 { 541 const __portpair ports = INET_COMBINED_PORTS(sport, hnum); 542 const struct hlist_nulls_node *node; 543 struct udp_hslot *hslot4; 544 unsigned int hash4, slot; 545 struct udp_sock *up; 546 struct sock *sk; 547 548 hash4 = udp_ehashfn(net, daddr, hnum, saddr, sport); 549 slot = hash4 & udptable->mask; 550 hslot4 = &udptable->hash4[slot]; 551 INET_ADDR_COOKIE(acookie, saddr, daddr); 552 553 begin: 554 /* SLAB_TYPESAFE_BY_RCU not used, so we don't need to touch sk_refcnt */ 555 udp_lrpa_for_each_entry_rcu(up, node, &hslot4->nulls_head) { 556 sk = (struct sock *)up; 557 if (inet_match(net, sk, acookie, ports, dif, sdif)) 558 return sk; 559 } 560 561 /* if the nulls value we got at the end of this lookup is not the 562 * expected one, we must restart lookup. We probably met an item that 563 * was moved to another chain due to rehash. 564 */ 565 if (get_nulls_value(node) != slot) 566 goto begin; 567 568 return NULL; 569 } 570 571 /* udp_rehash4() only checks hslot4, and hash4_cnt is not processed. */ 572 static void udp_rehash4(struct udp_table *udptable, struct sock *sk, 573 u16 newhash4) 574 { 575 struct udp_hslot *hslot4, *nhslot4; 576 577 hslot4 = udp_hashslot4(udptable, udp_sk(sk)->udp_lrpa_hash); 578 nhslot4 = udp_hashslot4(udptable, newhash4); 579 udp_sk(sk)->udp_lrpa_hash = newhash4; 580 581 if (hslot4 != nhslot4) { 582 spin_lock_bh(&hslot4->lock); 583 hlist_nulls_del_init_rcu(&udp_sk(sk)->udp_lrpa_node); 584 hslot4->count--; 585 spin_unlock_bh(&hslot4->lock); 586 587 spin_lock_bh(&nhslot4->lock); 588 hlist_nulls_add_head_rcu(&udp_sk(sk)->udp_lrpa_node, 589 &nhslot4->nulls_head); 590 nhslot4->count++; 591 spin_unlock_bh(&nhslot4->lock); 592 } 593 } 594 595 static void udp_unhash4(struct udp_table *udptable, struct sock *sk) 596 { 597 struct udp_hslot *hslot2, *hslot4; 598 599 if (udp_hashed4(sk)) { 600 hslot2 = udp_hashslot2(udptable, udp_sk(sk)->udp_portaddr_hash); 601 hslot4 = udp_hashslot4(udptable, udp_sk(sk)->udp_lrpa_hash); 602 603 spin_lock(&hslot4->lock); 604 hlist_nulls_del_init_rcu(&udp_sk(sk)->udp_lrpa_node); 605 hslot4->count--; 606 spin_unlock(&hslot4->lock); 607 608 spin_lock(&hslot2->lock); 609 udp_hash4_dec(hslot2); 610 spin_unlock(&hslot2->lock); 611 } 612 } 613 614 void udp_lib_hash4(struct sock *sk, u16 hash) 615 { 616 struct udp_hslot *hslot, *hslot2, *hslot4; 617 struct net *net = sock_net(sk); 618 struct udp_table *udptable; 619 620 udptable = net->ipv4.udp_table; 621 hslot = udp_hashslot(udptable, net, udp_sk(sk)->udp_port_hash); 622 623 /* A connected socket can re-connect to another address. rehash() 624 * relocates it, but only runs when the local address changes, so a 625 * socket bound to a specific address would stay filed under the 626 * previous peer's hash. Move it here. 627 */ 628 if (udp_hashed4(sk)) { 629 if (udp_sk(sk)->udp_lrpa_hash != hash) { 630 spin_lock_bh(&hslot->lock); 631 udp_rehash4(udptable, sk, hash); 632 spin_unlock_bh(&hslot->lock); 633 } 634 return; 635 } 636 637 hslot2 = udp_hashslot2(udptable, udp_sk(sk)->udp_portaddr_hash); 638 hslot4 = udp_hashslot4(udptable, hash); 639 udp_sk(sk)->udp_lrpa_hash = hash; 640 641 spin_lock_bh(&hslot->lock); 642 if (rcu_access_pointer(sk->sk_reuseport_cb)) 643 reuseport_detach_sock(sk); 644 645 spin_lock(&hslot4->lock); 646 hlist_nulls_add_head_rcu(&udp_sk(sk)->udp_lrpa_node, 647 &hslot4->nulls_head); 648 hslot4->count++; 649 spin_unlock(&hslot4->lock); 650 651 spin_lock(&hslot2->lock); 652 udp_hash4_inc(hslot2); 653 spin_unlock(&hslot2->lock); 654 655 spin_unlock_bh(&hslot->lock); 656 } 657 658 /* call with sock lock */ 659 void udp4_hash4(struct sock *sk) 660 { 661 struct net *net = sock_net(sk); 662 unsigned int hash; 663 664 if (sk_unhashed(sk) || sk->sk_rcv_saddr == htonl(INADDR_ANY)) 665 return; 666 667 hash = udp_ehashfn(net, sk->sk_rcv_saddr, sk->sk_num, 668 sk->sk_daddr, sk->sk_dport); 669 670 udp_lib_hash4(sk, hash); 671 } 672 #endif /* CONFIG_BASE_SMALL */ 673 674 /* UDP is nearly always wildcards out the wazoo, it makes no sense to try 675 * harder than this. -DaveM 676 */ 677 struct sock *__udp4_lib_lookup(const struct net *net, __be32 saddr, 678 __be16 sport, __be32 daddr, __be16 dport, 679 int dif, int sdif, struct sk_buff *skb) 680 { 681 struct udp_table *udptable = net->ipv4.udp_table; 682 unsigned short hnum = ntohs(dport); 683 struct udp_hslot *hslot2; 684 struct sock *result, *sk; 685 unsigned int hash2; 686 687 hash2 = ipv4_portaddr_hash(net, daddr, hnum); 688 hslot2 = udp_hashslot2(udptable, hash2); 689 690 if (udp_has_hash4(hslot2)) { 691 result = udp4_lib_lookup4(net, saddr, sport, daddr, hnum, 692 dif, sdif, udptable); 693 if (result) /* udp4_lib_lookup4 return sk or NULL */ 694 return result; 695 } 696 697 /* Lookup connected or non-wildcard socket */ 698 result = udp4_lib_lookup2(net, saddr, sport, 699 daddr, hnum, dif, sdif, 700 hslot2, skb); 701 if (!IS_ERR_OR_NULL(result) && result->sk_state == TCP_ESTABLISHED) 702 goto done; 703 704 /* Lookup redirect from BPF */ 705 if (static_branch_unlikely(&bpf_sk_lookup_enabled)) { 706 sk = inet_lookup_run_sk_lookup(net, IPPROTO_UDP, skb, sizeof(struct udphdr), 707 saddr, sport, daddr, hnum, dif, 708 udp_ehashfn); 709 if (sk) { 710 result = sk; 711 goto done; 712 } 713 } 714 715 /* Got non-wildcard socket or error on first lookup */ 716 if (result) 717 goto done; 718 719 /* Lookup wildcard sockets */ 720 hash2 = ipv4_portaddr_hash(net, htonl(INADDR_ANY), hnum); 721 hslot2 = udp_hashslot2(udptable, hash2); 722 723 result = udp4_lib_lookup2(net, saddr, sport, 724 htonl(INADDR_ANY), hnum, dif, sdif, 725 hslot2, skb); 726 if (!IS_ERR_OR_NULL(result)) 727 goto done; 728 729 /* Primary hash (destination port) lookup as fallback for this race: 730 * 1. __ip4_datagram_connect() sets sk_rcv_saddr 731 * 2. lookup (this function): new sk_rcv_saddr, hashes not updated yet 732 * 3. rehash operation updating _secondary and four-tuple_ hashes 733 * The primary hash doesn't need an update after 1., so, thanks to this 734 * further step, 1. and 3. don't need to be atomic against the lookup. 735 */ 736 result = udp4_lib_lookup1(net, saddr, sport, daddr, hnum, dif, sdif, 737 udptable); 738 739 done: 740 if (IS_ERR(result)) 741 return NULL; 742 return result; 743 } 744 EXPORT_SYMBOL_GPL(__udp4_lib_lookup); 745 746 static inline struct sock *__udp4_lib_lookup_skb(struct sk_buff *skb, 747 __be16 sport, __be16 dport) 748 { 749 const struct iphdr *iph = ip_hdr(skb); 750 751 return __udp4_lib_lookup(dev_net(skb->dev), iph->saddr, sport, 752 iph->daddr, dport, inet_iif(skb), 753 inet_sdif(skb), skb); 754 } 755 756 struct sock *udp4_lib_lookup_skb(const struct sk_buff *skb, 757 __be16 sport, __be16 dport) 758 { 759 const u16 offset = NAPI_GRO_CB(skb)->network_offsets[skb->encapsulation]; 760 const struct iphdr *iph = (struct iphdr *)(skb->data + offset); 761 int iif, sdif; 762 763 inet_get_iif_sdif(skb, &iif, &sdif); 764 765 return __udp4_lib_lookup(dev_net(skb->dev), iph->saddr, sport, 766 iph->daddr, dport, iif, sdif, NULL); 767 } 768 769 /* Must be called under rcu_read_lock(). 770 * Does increment socket refcount. 771 */ 772 #if IS_ENABLED(CONFIG_NF_TPROXY_IPV4) || IS_ENABLED(CONFIG_NF_SOCKET_IPV4) 773 struct sock *udp4_lib_lookup(const struct net *net, __be32 saddr, __be16 sport, 774 __be32 daddr, __be16 dport, int dif) 775 { 776 struct sock *sk; 777 778 sk = __udp4_lib_lookup(net, saddr, sport, daddr, dport, dif, 0, NULL); 779 if (sk && !refcount_inc_not_zero(&sk->sk_refcnt)) 780 sk = NULL; 781 return sk; 782 } 783 EXPORT_SYMBOL_GPL(udp4_lib_lookup); 784 #endif 785 786 static inline bool __udp_is_mcast_sock(struct net *net, const struct sock *sk, 787 __be16 loc_port, __be32 loc_addr, 788 __be16 rmt_port, __be32 rmt_addr, 789 int dif, int sdif, unsigned short hnum) 790 { 791 const struct inet_sock *inet = inet_sk(sk); 792 793 if (!net_eq(sock_net(sk), net) || 794 udp_sk(sk)->udp_port_hash != hnum || 795 (inet->inet_daddr && inet->inet_daddr != rmt_addr) || 796 (inet->inet_dport != rmt_port && inet->inet_dport) || 797 (inet->inet_rcv_saddr && inet->inet_rcv_saddr != loc_addr) || 798 ipv6_only_sock(sk) || 799 !udp_sk_bound_dev_eq(net, sk->sk_bound_dev_if, dif, sdif)) 800 return false; 801 if (!ip_mc_sf_allow(sk, loc_addr, rmt_addr, dif, sdif)) 802 return false; 803 return true; 804 } 805 806 DEFINE_STATIC_KEY_FALSE(udp_encap_needed_key); 807 808 #if IS_ENABLED(CONFIG_IPV6) 809 DEFINE_STATIC_KEY_FALSE(udpv6_encap_needed_key); 810 #endif 811 812 void udp_encap_enable(void) 813 { 814 static_branch_inc(&udp_encap_needed_key); 815 } 816 EXPORT_SYMBOL(udp_encap_enable); 817 818 void udp_encap_disable(void) 819 { 820 static_branch_dec(&udp_encap_needed_key); 821 } 822 EXPORT_SYMBOL(udp_encap_disable); 823 824 /* Handler for tunnels with arbitrary destination ports: no socket lookup, go 825 * through error handlers in encapsulations looking for a match. 826 */ 827 static int __udp4_lib_err_encap_no_sk(struct sk_buff *skb, u32 info) 828 { 829 int i; 830 831 for (i = 0; i < MAX_IPTUN_ENCAP_OPS; i++) { 832 int (*handler)(struct sk_buff *skb, u32 info); 833 const struct ip_tunnel_encap_ops *encap; 834 835 encap = rcu_dereference(iptun_encaps[i]); 836 if (!encap) 837 continue; 838 handler = encap->err_handler; 839 if (handler && !handler(skb, info)) 840 return 0; 841 } 842 843 return -ENOENT; 844 } 845 846 /* Try to match ICMP errors to UDP tunnels by looking up a socket without 847 * reversing source and destination port: this will match tunnels that force the 848 * same destination port on both endpoints (e.g. VXLAN, GENEVE). Note that 849 * lwtunnels might actually break this assumption by being configured with 850 * different destination ports on endpoints, in this case we won't be able to 851 * trace ICMP messages back to them. 852 * 853 * If this doesn't match any socket, probe tunnels with arbitrary destination 854 * ports (e.g. FoU, GUE): there, the receiving socket is useless, as the port 855 * we've sent packets to won't necessarily match the local destination port. 856 * 857 * Then ask the tunnel implementation to match the error against a valid 858 * association. 859 * 860 * Return an error if we can't find a match, the socket if we need further 861 * processing, zero otherwise. 862 */ 863 static struct sock *__udp4_lib_err_encap(struct net *net, 864 const struct iphdr *iph, 865 struct udphdr *uh, 866 struct sock *sk, 867 struct sk_buff *skb, u32 info) 868 { 869 int (*lookup)(struct sock *sk, struct sk_buff *skb); 870 int network_offset, transport_offset; 871 struct udp_sock *up; 872 873 network_offset = skb_network_offset(skb); 874 transport_offset = skb_transport_offset(skb); 875 876 /* Network header needs to point to the outer IPv4 header inside ICMP */ 877 skb_reset_network_header(skb); 878 879 /* Transport header needs to point to the UDP header */ 880 skb_set_transport_header(skb, iph->ihl << 2); 881 882 if (sk) { 883 up = udp_sk(sk); 884 885 lookup = READ_ONCE(up->encap_err_lookup); 886 if (lookup && lookup(sk, skb)) 887 sk = NULL; 888 889 goto out; 890 } 891 892 sk = __udp4_lib_lookup(net, iph->daddr, uh->source, 893 iph->saddr, uh->dest, skb->dev->ifindex, 0, NULL); 894 if (sk) { 895 up = udp_sk(sk); 896 897 lookup = READ_ONCE(up->encap_err_lookup); 898 if (!lookup || lookup(sk, skb)) 899 sk = NULL; 900 } 901 902 out: 903 if (!sk) 904 sk = ERR_PTR(__udp4_lib_err_encap_no_sk(skb, info)); 905 906 skb_set_transport_header(skb, transport_offset); 907 skb_set_network_header(skb, network_offset); 908 909 return sk; 910 } 911 912 static void udp_err_update_exception(struct net *net, struct sk_buff *skb, 913 int type, int code, u32 info) 914 { 915 if (type == ICMP_DEST_UNREACH && code == ICMP_FRAG_NEEDED) 916 ipv4_update_pmtu(skb, net, info, 0, IPPROTO_UDP); 917 else if (type == ICMP_REDIRECT) 918 ipv4_redirect(skb, net, 0, IPPROTO_UDP); 919 } 920 921 /* 922 * This routine is called by the ICMP module when it gets some 923 * sort of error condition. If err < 0 then the socket should 924 * be closed and the error returned to the user. If err > 0 925 * it's just the icmp type << 8 | icmp code. 926 * Header points to the ip header of the error packet. We move 927 * on past this. Then (as it used to claim before adjustment) 928 * header points to the first 8 bytes of the udp header. We need 929 * to find the appropriate port. 930 */ 931 int udp_err(struct sk_buff *skb, u32 info) 932 { 933 const struct iphdr *iph = (const struct iphdr *)skb->data; 934 const int type = icmp_hdr(skb)->type; 935 const int code = icmp_hdr(skb)->code; 936 struct net *net = dev_net(skb->dev); 937 struct inet_sock *inet; 938 bool tunnel = false; 939 struct udphdr *uh; 940 struct sock *sk; 941 int harderr; 942 int err; 943 944 udp_err_update_exception(net, skb, type, code, info); 945 946 uh = (struct udphdr *)(skb->data + (iph->ihl << 2)); 947 sk = __udp4_lib_lookup(net, iph->daddr, uh->dest, 948 iph->saddr, uh->source, skb->dev->ifindex, 949 inet_sdif(skb), NULL); 950 951 if (!sk || READ_ONCE(udp_sk(sk)->encap_type)) { 952 /* No socket for error: try tunnels before discarding */ 953 if (static_branch_unlikely(&udp_encap_needed_key)) { 954 sk = __udp4_lib_err_encap(net, iph, uh, sk, skb, info); 955 if (!sk) 956 return 0; 957 } else 958 sk = ERR_PTR(-ENOENT); 959 960 if (IS_ERR(sk)) { 961 __ICMP_INC_STATS(net, ICMP_MIB_INERRORS); 962 return PTR_ERR(sk); 963 } 964 965 tunnel = true; 966 } 967 968 err = 0; 969 harderr = 0; 970 inet = inet_sk(sk); 971 972 switch (type) { 973 default: 974 case ICMP_TIME_EXCEEDED: 975 err = EHOSTUNREACH; 976 break; 977 case ICMP_SOURCE_QUENCH: 978 goto out; 979 case ICMP_PARAMETERPROB: 980 err = EPROTO; 981 harderr = 1; 982 break; 983 case ICMP_DEST_UNREACH: 984 if (code == ICMP_FRAG_NEEDED) { /* Path MTU discovery */ 985 ipv4_sk_update_pmtu(skb, sk, info); 986 if (READ_ONCE(inet->pmtudisc) != IP_PMTUDISC_DONT) { 987 err = EMSGSIZE; 988 harderr = 1; 989 break; 990 } 991 goto out; 992 } 993 err = EHOSTUNREACH; 994 if (code <= NR_ICMP_UNREACH) { 995 harderr = icmp_err_convert[code].fatal; 996 err = icmp_err_convert[code].errno; 997 } 998 break; 999 case ICMP_REDIRECT: 1000 ipv4_sk_redirect(skb, sk); 1001 goto out; 1002 } 1003 1004 /* 1005 * RFC1122: OK. Passes ICMP errors back to application, as per 1006 * 4.1.3.3. 1007 */ 1008 if (tunnel) { 1009 /* ...not for tunnels though: we don't have a sending socket */ 1010 if (udp_sk(sk)->encap_err_rcv) 1011 udp_sk(sk)->encap_err_rcv(sk, skb, err, uh->dest, info, 1012 (u8 *)(uh+1)); 1013 goto out; 1014 } 1015 if (!inet_test_bit(RECVERR, sk)) { 1016 if (!harderr || sk->sk_state != TCP_ESTABLISHED) 1017 goto out; 1018 } else 1019 ip_icmp_error(sk, skb, err, uh->dest, info, (u8 *)(uh+1)); 1020 1021 sk->sk_err = err; 1022 sk_error_report(sk); 1023 out: 1024 return 0; 1025 } 1026 1027 /* 1028 * Throw away all pending data and cancel the corking. Socket is locked. 1029 */ 1030 void udp_flush_pending_frames(struct sock *sk) 1031 { 1032 struct udp_sock *up = udp_sk(sk); 1033 1034 if (up->pending) { 1035 up->len = 0; 1036 WRITE_ONCE(up->pending, 0); 1037 ip_flush_pending_frames(sk); 1038 } 1039 } 1040 1041 /** 1042 * udp4_hwcsum - handle outgoing HW checksumming 1043 * @skb: sk_buff containing the filled-in UDP header 1044 * (checksum field must be zeroed out) 1045 * @src: source IP address 1046 * @dst: destination IP address 1047 */ 1048 void udp4_hwcsum(struct sk_buff *skb, __be32 src, __be32 dst) 1049 { 1050 struct udphdr *uh = udp_hdr(skb); 1051 int offset = skb_transport_offset(skb); 1052 int len = skb->len - offset; 1053 int hlen = len; 1054 __wsum csum = 0; 1055 1056 if (!skb_has_frag_list(skb)) { 1057 /* 1058 * Only one fragment on the socket. 1059 */ 1060 skb->csum_start = skb_transport_header(skb) - skb->head; 1061 skb->csum_offset = offsetof(struct udphdr, check); 1062 uh->check = ~csum_tcpudp_magic(src, dst, len, 1063 IPPROTO_UDP, 0); 1064 } else { 1065 struct sk_buff *frags; 1066 1067 /* 1068 * HW-checksum won't work as there are two or more 1069 * fragments on the socket so that all csums of sk_buffs 1070 * should be together 1071 */ 1072 skb_walk_frags(skb, frags) { 1073 csum = csum_add(csum, frags->csum); 1074 hlen -= frags->len; 1075 } 1076 1077 csum = skb_checksum(skb, offset, hlen, csum); 1078 skb->ip_summed = CHECKSUM_NONE; 1079 1080 uh->check = csum_tcpudp_magic(src, dst, len, IPPROTO_UDP, csum); 1081 if (uh->check == 0) 1082 uh->check = CSUM_MANGLED_0; 1083 } 1084 } 1085 EXPORT_SYMBOL_GPL(udp4_hwcsum); 1086 1087 /* Function to set UDP checksum for an IPv4 UDP packet. This is intended 1088 * for the simple case like when setting the checksum for a UDP tunnel. 1089 */ 1090 void udp_set_csum(bool nocheck, struct sk_buff *skb, 1091 __be32 saddr, __be32 daddr, int len) 1092 { 1093 struct udphdr *uh = udp_hdr(skb); 1094 1095 if (nocheck) { 1096 uh->check = 0; 1097 } else if (skb_is_gso(skb)) { 1098 uh->check = ~udp_v4_check(len, saddr, daddr, 0); 1099 } else if (skb->ip_summed == CHECKSUM_PARTIAL) { 1100 uh->check = 0; 1101 uh->check = udp_v4_check(len, saddr, daddr, lco_csum(skb)); 1102 if (uh->check == 0) 1103 uh->check = CSUM_MANGLED_0; 1104 } else { 1105 skb->ip_summed = CHECKSUM_PARTIAL; 1106 skb->csum_start = skb_transport_header(skb) - skb->head; 1107 skb->csum_offset = offsetof(struct udphdr, check); 1108 uh->check = ~udp_v4_check(len, saddr, daddr, 0); 1109 } 1110 } 1111 EXPORT_SYMBOL(udp_set_csum); 1112 1113 static int udp_send_skb(struct sk_buff *skb, struct flowi4 *fl4, 1114 struct inet_cork *cork) 1115 { 1116 struct sock *sk = skb->sk; 1117 int offset, len, datalen; 1118 struct udphdr *uh; 1119 int err; 1120 1121 offset = skb_transport_offset(skb); 1122 len = skb->len - offset; 1123 datalen = len - sizeof(*uh); 1124 1125 /* 1126 * Create a UDP header 1127 */ 1128 uh = udp_hdr(skb); 1129 uh->source = inet_sk(sk)->inet_sport; 1130 uh->dest = fl4->fl4_dport; 1131 /* Datagram length checked in udp_sendmsg. */ 1132 udp_set_len_short(uh, len); 1133 uh->check = 0; 1134 1135 if (cork->gso_size) { 1136 const int hlen = skb_network_header_len(skb) + 1137 sizeof(struct udphdr); 1138 1139 if (hlen + min(datalen, cork->gso_size) > cork->fragsize) { 1140 kfree_skb(skb); 1141 return -EMSGSIZE; 1142 } 1143 if (datalen > cork->gso_size * UDP_MAX_SEGMENTS) { 1144 kfree_skb(skb); 1145 return -EINVAL; 1146 } 1147 if (sk->sk_no_check_tx) { 1148 kfree_skb(skb); 1149 return -EINVAL; 1150 } 1151 if (dst_xfrm(skb_dst(skb))) { 1152 kfree_skb(skb); 1153 return -EIO; 1154 } 1155 1156 if (datalen > cork->gso_size) { 1157 skb_shinfo(skb)->gso_size = cork->gso_size; 1158 skb_shinfo(skb)->gso_type = SKB_GSO_UDP_L4; 1159 skb_shinfo(skb)->gso_segs = DIV_ROUND_UP(datalen, 1160 cork->gso_size); 1161 1162 /* Don't checksum the payload, skb will get segmented */ 1163 goto csum_partial; 1164 } 1165 } 1166 1167 if (sk->sk_no_check_tx) { /* UDP csum off */ 1168 skb->ip_summed = CHECKSUM_NONE; 1169 goto send; 1170 } else if (skb->ip_summed == CHECKSUM_PARTIAL) { /* UDP hardware csum */ 1171 csum_partial: 1172 udp4_hwcsum(skb, fl4->saddr, fl4->daddr); 1173 goto send; 1174 } 1175 1176 /* add protocol-dependent pseudo-header */ 1177 uh->check = csum_tcpudp_magic(fl4->saddr, fl4->daddr, len, 1178 IPPROTO_UDP, udp_csum(skb)); 1179 if (uh->check == 0) 1180 uh->check = CSUM_MANGLED_0; 1181 1182 send: 1183 err = ip_send_skb(sock_net(sk), skb); 1184 if (unlikely(err)) { 1185 if (err == -ENOBUFS && 1186 !inet_test_bit(RECVERR, sk)) { 1187 UDP_INC_STATS(sock_net(sk), UDP_MIB_SNDBUFERRORS); 1188 err = 0; 1189 } 1190 } else { 1191 UDP_INC_STATS(sock_net(sk), UDP_MIB_OUTDATAGRAMS); 1192 } 1193 return err; 1194 } 1195 1196 /* 1197 * Push out all pending data as one UDP datagram. Socket is locked. 1198 */ 1199 int udp_push_pending_frames(struct sock *sk) 1200 { 1201 struct udp_sock *up = udp_sk(sk); 1202 struct inet_sock *inet = inet_sk(sk); 1203 struct flowi4 *fl4 = &inet->cork.fl.u.ip4; 1204 struct sk_buff *skb; 1205 int err = 0; 1206 1207 skb = ip_finish_skb(sk, fl4); 1208 if (!skb) 1209 goto out; 1210 1211 err = udp_send_skb(skb, fl4, &inet->cork.base); 1212 1213 out: 1214 up->len = 0; 1215 WRITE_ONCE(up->pending, 0); 1216 return err; 1217 } 1218 1219 static int __udp_cmsg_send(struct cmsghdr *cmsg, u16 *gso_size) 1220 { 1221 switch (cmsg->cmsg_type) { 1222 case UDP_SEGMENT: 1223 if (cmsg->cmsg_len != CMSG_LEN(sizeof(__u16))) 1224 return -EINVAL; 1225 *gso_size = *(__u16 *)CMSG_DATA(cmsg); 1226 return 0; 1227 default: 1228 return -EINVAL; 1229 } 1230 } 1231 1232 int udp_cmsg_send(struct sock *sk, struct msghdr *msg, u16 *gso_size) 1233 { 1234 struct cmsghdr *cmsg; 1235 bool need_ip = false; 1236 int err; 1237 1238 for_each_cmsghdr(cmsg, msg) { 1239 if (!CMSG_OK(msg, cmsg)) 1240 return -EINVAL; 1241 1242 if (cmsg->cmsg_level != SOL_UDP) { 1243 need_ip = true; 1244 continue; 1245 } 1246 1247 err = __udp_cmsg_send(cmsg, gso_size); 1248 if (err) 1249 return err; 1250 } 1251 1252 return need_ip; 1253 } 1254 1255 int udp_sendmsg(struct sock *sk, struct msghdr *msg, size_t len) 1256 { 1257 int corkreq = udp_test_bit(CORK, sk) || msg->msg_flags & MSG_MORE; 1258 DEFINE_RAW_FLEX(struct ip_options_rcu, opt_copy, opt.__data, 1259 IP_OPTIONS_DATA_FIXED_SIZE); 1260 DECLARE_SOCKADDR(struct sockaddr_in *, usin, msg->msg_name); 1261 int ulen = len, free = 0, connected = 0; 1262 struct inet_sock *inet = inet_sk(sk); 1263 struct udp_sock *up = udp_sk(sk); 1264 __be32 daddr, faddr, saddr; 1265 struct rtable *rt = NULL; 1266 struct flowi4 fl4_stack; 1267 struct ipcm_cookie ipc; 1268 struct sk_buff *skb; 1269 struct flowi4 *fl4; 1270 __be16 dport; 1271 int uc_index; 1272 u8 scope; 1273 int err; 1274 1275 if (len > 0xFFFF) 1276 return -EMSGSIZE; 1277 1278 /* 1279 * Check the flags. 1280 */ 1281 1282 if (msg->msg_flags & MSG_OOB) /* Mirror BSD error message compatibility */ 1283 return -EOPNOTSUPP; 1284 1285 fl4 = &inet->cork.fl.u.ip4; 1286 if (READ_ONCE(up->pending)) { 1287 /* 1288 * There are pending frames. 1289 * The socket lock must be held while it's corked. 1290 */ 1291 lock_sock(sk); 1292 if (likely(up->pending)) { 1293 if (unlikely(up->pending != AF_INET)) { 1294 release_sock(sk); 1295 return -EINVAL; 1296 } 1297 goto do_append_data; 1298 } 1299 release_sock(sk); 1300 } 1301 ulen += sizeof(struct udphdr); 1302 1303 /* 1304 * Get and verify the address. 1305 */ 1306 if (usin) { 1307 if (msg->msg_namelen < sizeof(*usin)) 1308 return -EINVAL; 1309 if (usin->sin_family != AF_INET) { 1310 if (usin->sin_family != AF_UNSPEC) 1311 return -EAFNOSUPPORT; 1312 } 1313 1314 daddr = usin->sin_addr.s_addr; 1315 dport = usin->sin_port; 1316 if (dport == 0) 1317 return -EINVAL; 1318 } else { 1319 if (sk->sk_state != TCP_ESTABLISHED) 1320 return -EDESTADDRREQ; 1321 daddr = inet->inet_daddr; 1322 dport = inet->inet_dport; 1323 /* Open fast path for connected socket. 1324 Route will not be used, if at least one option is set. 1325 */ 1326 connected = 1; 1327 } 1328 1329 ipcm_init_sk(&ipc, inet); 1330 ipc.gso_size = READ_ONCE(up->gso_size); 1331 1332 if (msg->msg_controllen) { 1333 err = udp_cmsg_send(sk, msg, &ipc.gso_size); 1334 if (err > 0) { 1335 err = ip_cmsg_send(sk, msg, &ipc, 1336 sk->sk_family == AF_INET6); 1337 connected = 0; 1338 } 1339 if (unlikely(err < 0)) { 1340 kfree(ipc.opt); 1341 return err; 1342 } 1343 if (ipc.opt) 1344 free = 1; 1345 } 1346 if (!ipc.opt) { 1347 struct ip_options_rcu *inet_opt; 1348 1349 rcu_read_lock(); 1350 inet_opt = rcu_dereference(inet->inet_opt); 1351 if (inet_opt) { 1352 memcpy(opt_copy, inet_opt, 1353 sizeof(*inet_opt) + inet_opt->opt.optlen); 1354 ipc.opt = opt_copy; 1355 } 1356 rcu_read_unlock(); 1357 } 1358 1359 if (cgroup_bpf_enabled(CGROUP_UDP4_SENDMSG) && !connected) { 1360 err = BPF_CGROUP_RUN_PROG_UDP4_SENDMSG_LOCK(sk, 1361 (struct sockaddr *)usin, 1362 &msg->msg_namelen, 1363 &ipc.addr); 1364 if (err) 1365 goto out_free; 1366 if (usin) { 1367 if (usin->sin_port == 0) { 1368 /* BPF program set invalid port. Reject it. */ 1369 err = -EINVAL; 1370 goto out_free; 1371 } 1372 daddr = usin->sin_addr.s_addr; 1373 dport = usin->sin_port; 1374 } 1375 } 1376 1377 saddr = ipc.addr; 1378 ipc.addr = faddr = daddr; 1379 1380 if (ipc.opt && ipc.opt->opt.srr) { 1381 if (!daddr) { 1382 err = -EINVAL; 1383 goto out_free; 1384 } 1385 faddr = ipc.opt->opt.faddr; 1386 connected = 0; 1387 } 1388 scope = ip_sendmsg_scope(inet, &ipc, msg); 1389 if (scope == RT_SCOPE_LINK) 1390 connected = 0; 1391 1392 uc_index = READ_ONCE(inet->uc_index); 1393 if (ipv4_is_multicast(daddr)) { 1394 if (!ipc.oif || netif_index_is_l3_master(sock_net(sk), ipc.oif)) 1395 ipc.oif = READ_ONCE(inet->mc_index); 1396 if (!saddr) 1397 saddr = READ_ONCE(inet->mc_addr); 1398 connected = 0; 1399 } else if (!ipc.oif) { 1400 ipc.oif = uc_index; 1401 } else if (ipv4_is_lbcast(daddr) && uc_index) { 1402 /* oif is set, packet is to local broadcast and 1403 * uc_index is set. oif is most likely set 1404 * by sk_bound_dev_if. If uc_index != oif check if the 1405 * oif is an L3 master and uc_index is an L3 slave. 1406 * If so, we want to allow the send using the uc_index. 1407 */ 1408 if (ipc.oif != uc_index && 1409 ipc.oif == l3mdev_master_ifindex_by_index(sock_net(sk), 1410 uc_index)) { 1411 ipc.oif = uc_index; 1412 } 1413 } 1414 1415 if (connected) 1416 rt = dst_rtable(sk_dst_check(sk, 0)); 1417 1418 if (!rt) { 1419 struct net *net = sock_net(sk); 1420 __u8 flow_flags = inet_sk_flowi_flags(sk); 1421 1422 fl4 = &fl4_stack; 1423 1424 flowi4_init_output(fl4, ipc.oif, ipc.sockc.mark, 1425 ipc.tos & INET_DSCP_MASK, scope, 1426 IPPROTO_UDP, flow_flags, faddr, saddr, 1427 dport, inet->inet_sport, 1428 sk_uid(sk)); 1429 1430 security_sk_classify_flow(sk, flowi4_to_flowi_common(fl4)); 1431 rt = ip_route_output_flow(net, fl4, sk); 1432 if (IS_ERR(rt)) { 1433 err = PTR_ERR(rt); 1434 rt = NULL; 1435 if (err == -ENETUNREACH) 1436 IP_INC_STATS(net, IPSTATS_MIB_OUTNOROUTES); 1437 goto out; 1438 } 1439 1440 err = -EACCES; 1441 if ((rt->rt_flags & RTCF_BROADCAST) && 1442 !sock_flag(sk, SOCK_BROADCAST)) 1443 goto out; 1444 if (connected) 1445 sk_dst_set(sk, dst_clone(&rt->dst)); 1446 } 1447 1448 if (msg->msg_flags&MSG_CONFIRM) 1449 goto do_confirm; 1450 back_from_confirm: 1451 1452 saddr = fl4->saddr; 1453 if (!ipc.addr) 1454 daddr = ipc.addr = fl4->daddr; 1455 1456 /* Lockless fast path for the non-corking case. */ 1457 if (!corkreq) { 1458 struct inet_cork cork; 1459 1460 skb = ip_make_skb(sk, fl4, ip_generic_getfrag, msg, ulen, 1461 sizeof(struct udphdr), &ipc, &rt, 1462 &cork, msg->msg_flags); 1463 err = PTR_ERR(skb); 1464 if (!IS_ERR_OR_NULL(skb)) 1465 err = udp_send_skb(skb, fl4, &cork); 1466 goto out; 1467 } 1468 1469 lock_sock(sk); 1470 if (unlikely(up->pending)) { 1471 /* The socket is already corked while preparing it. */ 1472 /* ... which is an evident application bug. --ANK */ 1473 release_sock(sk); 1474 1475 net_dbg_ratelimited("socket already corked\n"); 1476 err = -EINVAL; 1477 goto out; 1478 } 1479 /* 1480 * Now cork the socket to pend data. 1481 */ 1482 fl4 = &inet->cork.fl.u.ip4; 1483 fl4->daddr = daddr; 1484 fl4->saddr = saddr; 1485 fl4->fl4_dport = dport; 1486 fl4->fl4_sport = inet->inet_sport; 1487 WRITE_ONCE(up->pending, AF_INET); 1488 1489 do_append_data: 1490 up->len += ulen; 1491 err = ip_append_data(sk, fl4, ip_generic_getfrag, msg, ulen, 1492 sizeof(struct udphdr), &ipc, &rt, 1493 corkreq ? msg->msg_flags|MSG_MORE : msg->msg_flags); 1494 if (err) 1495 udp_flush_pending_frames(sk); 1496 else if (!corkreq) 1497 err = udp_push_pending_frames(sk); 1498 else if (unlikely(skb_queue_empty(&sk->sk_write_queue))) 1499 WRITE_ONCE(up->pending, 0); 1500 release_sock(sk); 1501 1502 out: 1503 ip_rt_put(rt); 1504 out_free: 1505 if (free) 1506 kfree(ipc.opt); 1507 if (!err) 1508 return len; 1509 /* 1510 * ENOBUFS = no kernel mem, SOCK_NOSPACE = no sndbuf space. Reporting 1511 * ENOBUFS might not be good (it's not tunable per se), but otherwise 1512 * we don't have a good statistic (IpOutDiscards but it can be too many 1513 * things). We could add another new stat but at least for now that 1514 * seems like overkill. 1515 */ 1516 if (err == -ENOBUFS || test_bit(SOCK_NOSPACE, &sk->sk_socket->flags)) 1517 UDP_INC_STATS(sock_net(sk), UDP_MIB_SNDBUFERRORS); 1518 1519 return err; 1520 1521 do_confirm: 1522 if (msg->msg_flags & MSG_PROBE) 1523 dst_confirm_neigh(&rt->dst, &fl4->daddr); 1524 if (!(msg->msg_flags&MSG_PROBE) || len) 1525 goto back_from_confirm; 1526 err = 0; 1527 goto out; 1528 } 1529 EXPORT_SYMBOL(udp_sendmsg); 1530 1531 void udp_splice_eof(struct socket *sock) 1532 { 1533 struct sock *sk = sock->sk; 1534 struct udp_sock *up = udp_sk(sk); 1535 1536 if (!READ_ONCE(up->pending) || udp_test_bit(CORK, sk)) 1537 return; 1538 1539 lock_sock(sk); 1540 if (up->pending && !udp_test_bit(CORK, sk)) 1541 udp_push_pending_frames(sk); 1542 release_sock(sk); 1543 } 1544 1545 #define UDP_SKB_IS_STATELESS 0x80000000 1546 1547 /* all head states (dst, sk, nf conntrack) except skb extensions are 1548 * cleared by udp_rcv(). 1549 * 1550 * We need to preserve secpath, if present, to eventually process 1551 * IP_CMSG_PASSSEC at recvmsg() time. 1552 * 1553 * Other extensions can be cleared. 1554 */ 1555 static bool udp_try_make_stateless(struct sk_buff *skb) 1556 { 1557 if (!skb_has_extensions(skb)) 1558 return true; 1559 1560 if (!secpath_exists(skb)) { 1561 skb_ext_reset(skb); 1562 return true; 1563 } 1564 1565 return false; 1566 } 1567 1568 static void udp_set_dev_scratch(struct sk_buff *skb) 1569 { 1570 struct udp_dev_scratch *scratch = udp_skb_scratch(skb); 1571 1572 BUILD_BUG_ON(sizeof(struct udp_dev_scratch) > sizeof(long)); 1573 scratch->_tsize_state = skb->truesize; 1574 #if BITS_PER_LONG == 64 1575 scratch->len = skb->len; 1576 scratch->csum_unnecessary = !!skb_csum_unnecessary(skb); 1577 scratch->is_linear = !skb_is_nonlinear(skb); 1578 #endif 1579 if (udp_try_make_stateless(skb)) 1580 scratch->_tsize_state |= UDP_SKB_IS_STATELESS; 1581 } 1582 1583 static void udp_skb_csum_unnecessary_set(struct sk_buff *skb) 1584 { 1585 /* We come here after udp_lib_checksum_complete() returned 0. 1586 * This means that __skb_checksum_complete() might have 1587 * set skb->csum_valid to 1. 1588 * On 64bit platforms, we can set csum_unnecessary 1589 * to true, but only if the skb is not shared. 1590 */ 1591 #if BITS_PER_LONG == 64 1592 if (!skb_shared(skb)) 1593 udp_skb_scratch(skb)->csum_unnecessary = true; 1594 #endif 1595 } 1596 1597 static int udp_skb_truesize(struct sk_buff *skb) 1598 { 1599 return udp_skb_scratch(skb)->_tsize_state & ~UDP_SKB_IS_STATELESS; 1600 } 1601 1602 static bool udp_skb_has_head_state(struct sk_buff *skb) 1603 { 1604 return !(udp_skb_scratch(skb)->_tsize_state & UDP_SKB_IS_STATELESS); 1605 } 1606 1607 /* fully reclaim rmem/fwd memory allocated for skb */ 1608 static void udp_rmem_release(struct sock *sk, unsigned int size, 1609 int partial, bool rx_queue_lock_held) 1610 { 1611 struct udp_sock *up = udp_sk(sk); 1612 struct sk_buff_head *sk_queue; 1613 unsigned int amt; 1614 1615 if (likely(partial)) { 1616 up->forward_deficit += size; 1617 size = up->forward_deficit; 1618 if (size < READ_ONCE(up->forward_threshold) && 1619 !skb_queue_empty(&up->reader_queue)) 1620 return; 1621 } else { 1622 size += up->forward_deficit; 1623 } 1624 up->forward_deficit = 0; 1625 1626 /* acquire the sk_receive_queue for fwd allocated memory scheduling, 1627 * if the called don't held it already 1628 */ 1629 sk_queue = &sk->sk_receive_queue; 1630 if (!rx_queue_lock_held) 1631 spin_lock(&sk_queue->lock); 1632 1633 amt = (size + sk->sk_forward_alloc - partial) & ~(PAGE_SIZE - 1); 1634 sk_forward_alloc_add(sk, size - amt); 1635 1636 if (amt) 1637 __sk_mem_reduce_allocated(sk, amt >> PAGE_SHIFT); 1638 1639 atomic_sub(size, &sk->sk_rmem_alloc); 1640 1641 /* this can save us from acquiring the rx queue lock on next receive */ 1642 skb_queue_splice_tail_init(sk_queue, &up->reader_queue); 1643 1644 if (!rx_queue_lock_held) 1645 spin_unlock(&sk_queue->lock); 1646 } 1647 1648 /* Note: called with reader_queue.lock held. 1649 * Instead of using skb->truesize here, find a copy of it in skb->dev_scratch 1650 * This avoids a cache line miss while receive_queue lock is held. 1651 * Look at __udp_enqueue_schedule_skb() to find where this copy is done. 1652 */ 1653 void udp_skb_destructor(struct sock *sk, struct sk_buff *skb) 1654 { 1655 prefetch(&skb->data); 1656 udp_rmem_release(sk, udp_skb_truesize(skb), 1, false); 1657 } 1658 1659 /* as above, but the caller held the rx queue lock, too */ 1660 static void udp_skb_dtor_locked(struct sock *sk, struct sk_buff *skb) 1661 { 1662 prefetch(&skb->data); 1663 udp_rmem_release(sk, udp_skb_truesize(skb), 1, true); 1664 } 1665 1666 static int udp_rmem_schedule(struct sock *sk, int size) 1667 { 1668 int delta; 1669 1670 delta = size - sk->sk_forward_alloc; 1671 if (delta > 0 && !__sk_mem_schedule(sk, delta, SK_MEM_RECV)) 1672 return -ENOBUFS; 1673 1674 return 0; 1675 } 1676 1677 int __udp_enqueue_schedule_skb(struct sock *sk, struct sk_buff *skb) 1678 { 1679 struct sk_buff_head *list = &sk->sk_receive_queue; 1680 struct udp_prod_queue *udp_prod_queue; 1681 struct sk_buff *next, *to_drop = NULL; 1682 struct llist_node *ll_list; 1683 unsigned int rmem, rcvbuf; 1684 int size, err = -ENOMEM; 1685 int total_size = 0; 1686 int q_size = 0; 1687 int dropcount; 1688 int nb = 0; 1689 1690 rmem = atomic_read(&sk->sk_rmem_alloc); 1691 rcvbuf = READ_ONCE(sk->sk_rcvbuf); 1692 size = skb->truesize; 1693 1694 udp_prod_queue = &udp_sk(sk)->udp_prod_queue[numa_node_id()]; 1695 1696 rmem += atomic_read(&udp_prod_queue->rmem_alloc); 1697 1698 /* Immediately drop when the receive queue is full. 1699 * Cast to unsigned int performs the boundary check for INT_MAX. 1700 */ 1701 if (rmem + size > rcvbuf) { 1702 if (rcvbuf > INT_MAX >> 1) 1703 goto drop; 1704 1705 /* Accept the packet if queue is empty. */ 1706 if (rmem) 1707 goto drop; 1708 } 1709 1710 /* Under mem pressure, it might be helpful to help udp_recvmsg() 1711 * having linear skbs : 1712 * - Reduce memory overhead and thus increase receive queue capacity 1713 * - Less cache line misses at copyout() time 1714 * - Less work at consume_skb() (less alien page frag freeing) 1715 */ 1716 if (rmem > (rcvbuf >> 1)) { 1717 skb_condense(skb); 1718 size = skb->truesize; 1719 } 1720 1721 udp_set_dev_scratch(skb); 1722 1723 atomic_add(size, &udp_prod_queue->rmem_alloc); 1724 1725 if (!llist_add(&skb->ll_node, &udp_prod_queue->ll_root)) 1726 return 0; 1727 1728 dropcount = sock_flag(sk, SOCK_RXQ_OVFL) ? sk_drops_read(sk) : 0; 1729 1730 spin_lock(&list->lock); 1731 1732 ll_list = llist_del_all(&udp_prod_queue->ll_root); 1733 1734 ll_list = llist_reverse_order(ll_list); 1735 1736 llist_for_each_entry_safe(skb, next, ll_list, ll_node) { 1737 size = udp_skb_truesize(skb); 1738 total_size += size; 1739 err = udp_rmem_schedule(sk, size); 1740 if (unlikely(err)) { 1741 /* Free the skbs outside of locked section. */ 1742 skb->next = to_drop; 1743 to_drop = skb; 1744 continue; 1745 } 1746 1747 q_size += size; 1748 sk_forward_alloc_add(sk, -size); 1749 1750 /* no need to setup a destructor, we will explicitly release the 1751 * forward allocated memory on dequeue 1752 */ 1753 SOCK_SKB_CB(skb)->dropcount = dropcount; 1754 nb++; 1755 __skb_queue_tail(list, skb); 1756 } 1757 1758 atomic_add(q_size, &sk->sk_rmem_alloc); 1759 1760 spin_unlock(&list->lock); 1761 1762 if (!sock_flag(sk, SOCK_DEAD)) { 1763 /* Multiple threads might be blocked in recvmsg(), 1764 * using prepare_to_wait_exclusive(). 1765 */ 1766 while (nb) { 1767 INDIRECT_CALL_1(READ_ONCE(sk->sk_data_ready), 1768 sock_def_readable, sk); 1769 nb--; 1770 } 1771 } 1772 1773 if (unlikely(to_drop)) { 1774 int err_ipv4 = 0; 1775 int err_ipv6 = 0; 1776 1777 for (nb = 0; to_drop != NULL; nb++) { 1778 skb = to_drop; 1779 if (skb->protocol == htons(ETH_P_IP)) 1780 err_ipv4++; 1781 else 1782 err_ipv6++; 1783 to_drop = skb->next; 1784 skb_mark_not_on_list(skb); 1785 sk_skb_reason_drop(sk, skb, SKB_DROP_REASON_PROTO_MEM); 1786 } 1787 numa_drop_add(&udp_sk(sk)->drop_counters, nb); 1788 if (err_ipv4 > 0) { 1789 SNMP_ADD_STATS(__UDPX_MIB(sk, true), UDP_MIB_MEMERRORS, 1790 err_ipv4); 1791 SNMP_ADD_STATS(__UDPX_MIB(sk, true), UDP_MIB_INERRORS, 1792 err_ipv4); 1793 } 1794 if (err_ipv6 > 0) { 1795 SNMP_ADD_STATS(__UDPX_MIB(sk, false), UDP_MIB_MEMERRORS, 1796 err_ipv6); 1797 SNMP_ADD_STATS(__UDPX_MIB(sk, false), UDP_MIB_INERRORS, 1798 err_ipv6); 1799 } 1800 } 1801 1802 atomic_sub(total_size, &udp_prod_queue->rmem_alloc); 1803 1804 return 0; 1805 1806 drop: 1807 udp_drops_inc(sk); 1808 return err; 1809 } 1810 1811 void udp_destruct_common(struct sock *sk) 1812 { 1813 /* reclaim completely the forward allocated memory */ 1814 struct udp_sock *up = udp_sk(sk); 1815 unsigned int total = 0; 1816 struct sk_buff *skb; 1817 1818 skb_queue_splice_tail_init(&sk->sk_receive_queue, &up->reader_queue); 1819 while ((skb = __skb_dequeue(&up->reader_queue)) != NULL) { 1820 total += skb->truesize; 1821 kfree_skb(skb); 1822 } 1823 udp_rmem_release(sk, total, 0, true); 1824 kfree(up->udp_prod_queue); 1825 } 1826 1827 static void udp_destruct_sock(struct sock *sk) 1828 { 1829 udp_destruct_common(sk); 1830 inet_sock_destruct(sk); 1831 } 1832 1833 static int udp_init_sock(struct sock *sk) 1834 { 1835 int res = udp_lib_init_sock(sk); 1836 1837 sk->sk_destruct = udp_destruct_sock; 1838 set_bit(SOCK_SUPPORT_ZC, &sk->sk_socket->flags); 1839 return res; 1840 } 1841 1842 void skb_consume_udp(struct sock *sk, struct sk_buff *skb, int len) 1843 { 1844 if (unlikely(READ_ONCE(udp_sk(sk)->peeking_with_offset))) 1845 sk_peek_offset_bwd(sk, len); 1846 1847 if (!skb_shared(skb)) { 1848 skb_orphan(skb); 1849 skb_attempt_defer_free(skb); 1850 return; 1851 } 1852 1853 if (!skb_unref(skb)) 1854 return; 1855 1856 /* In the more common cases we cleared the head states previously, 1857 * see __udp_queue_rcv_skb(). 1858 */ 1859 if (unlikely(udp_skb_has_head_state(skb))) 1860 skb_release_head_state(skb); 1861 __consume_stateless_skb(skb); 1862 } 1863 1864 static struct sk_buff *__first_packet_length(struct sock *sk, 1865 struct sk_buff_head *rcvq, 1866 unsigned int *total) 1867 { 1868 struct sk_buff *skb; 1869 1870 while ((skb = skb_peek(rcvq)) != NULL) { 1871 if (udp_lib_checksum_complete(skb)) { 1872 struct net *net = sock_net(sk); 1873 1874 __UDP_INC_STATS(net, UDP_MIB_CSUMERRORS); 1875 __UDP_INC_STATS(net, UDP_MIB_INERRORS); 1876 udp_drops_inc(sk); 1877 __skb_unlink(skb, rcvq); 1878 *total += skb->truesize; 1879 kfree_skb_reason(skb, SKB_DROP_REASON_UDP_CSUM); 1880 } else { 1881 udp_skb_csum_unnecessary_set(skb); 1882 break; 1883 } 1884 } 1885 return skb; 1886 } 1887 1888 /** 1889 * first_packet_length - return length of first packet in receive queue 1890 * @sk: socket 1891 * 1892 * Drops all bad checksum frames, until a valid one is found. 1893 * Returns the length of found skb, or -1 if none is found. 1894 */ 1895 static int first_packet_length(struct sock *sk) 1896 { 1897 struct sk_buff_head *rcvq = &udp_sk(sk)->reader_queue; 1898 struct sk_buff_head *sk_queue = &sk->sk_receive_queue; 1899 unsigned int total = 0; 1900 struct sk_buff *skb; 1901 int res; 1902 1903 spin_lock_bh(&rcvq->lock); 1904 skb = __first_packet_length(sk, rcvq, &total); 1905 if (!skb && !skb_queue_empty_lockless(sk_queue)) { 1906 spin_lock(&sk_queue->lock); 1907 skb_queue_splice_tail_init(sk_queue, rcvq); 1908 spin_unlock(&sk_queue->lock); 1909 1910 skb = __first_packet_length(sk, rcvq, &total); 1911 } 1912 res = skb ? skb->len : -1; 1913 if (total) 1914 udp_rmem_release(sk, total, 1, false); 1915 spin_unlock_bh(&rcvq->lock); 1916 return res; 1917 } 1918 1919 /* 1920 * IOCTL requests applicable to the UDP protocol 1921 */ 1922 1923 int udp_ioctl(struct sock *sk, int cmd, int *karg) 1924 { 1925 switch (cmd) { 1926 case SIOCOUTQ: 1927 { 1928 *karg = sk_wmem_alloc_get(sk); 1929 return 0; 1930 } 1931 1932 case SIOCINQ: 1933 { 1934 *karg = max_t(int, 0, first_packet_length(sk)); 1935 return 0; 1936 } 1937 1938 default: 1939 return -ENOIOCTLCMD; 1940 } 1941 1942 return 0; 1943 } 1944 1945 struct sk_buff *__skb_recv_udp(struct sock *sk, unsigned int flags, 1946 int *off, int *err) 1947 { 1948 struct sk_buff_head *sk_queue = &sk->sk_receive_queue; 1949 struct sk_buff_head *queue; 1950 struct sk_buff *last; 1951 long timeo; 1952 int error; 1953 1954 queue = &udp_sk(sk)->reader_queue; 1955 timeo = sock_rcvtimeo(sk, flags & MSG_DONTWAIT); 1956 do { 1957 struct sk_buff *skb; 1958 1959 error = sock_error(sk); 1960 if (error) 1961 break; 1962 1963 error = -EAGAIN; 1964 do { 1965 spin_lock_bh(&queue->lock); 1966 skb = __skb_try_recv_from_queue(queue, flags, off, err, 1967 &last); 1968 if (skb) { 1969 if (!(flags & MSG_PEEK)) 1970 udp_skb_destructor(sk, skb); 1971 spin_unlock_bh(&queue->lock); 1972 return skb; 1973 } 1974 1975 if (skb_queue_empty_lockless(sk_queue)) { 1976 spin_unlock_bh(&queue->lock); 1977 goto busy_check; 1978 } 1979 1980 /* refill the reader queue and walk it again 1981 * keep both queues locked to avoid re-acquiring 1982 * the sk_receive_queue lock if fwd memory scheduling 1983 * is needed. 1984 */ 1985 spin_lock(&sk_queue->lock); 1986 skb_queue_splice_tail_init(sk_queue, queue); 1987 1988 skb = __skb_try_recv_from_queue(queue, flags, off, err, 1989 &last); 1990 if (skb && !(flags & MSG_PEEK)) 1991 udp_skb_dtor_locked(sk, skb); 1992 spin_unlock(&sk_queue->lock); 1993 spin_unlock_bh(&queue->lock); 1994 if (skb) 1995 return skb; 1996 1997 busy_check: 1998 if (!sk_can_busy_loop(sk)) 1999 break; 2000 2001 sk_busy_loop(sk, flags & MSG_DONTWAIT); 2002 } while (!skb_queue_empty_lockless(sk_queue)); 2003 2004 /* sk_queue is empty, reader_queue may contain peeked packets */ 2005 } while (timeo && 2006 !__skb_wait_for_more_packets(sk, &sk->sk_receive_queue, 2007 &error, &timeo, 2008 (struct sk_buff *)sk_queue)); 2009 2010 *err = error; 2011 return NULL; 2012 } 2013 EXPORT_SYMBOL(__skb_recv_udp); 2014 2015 int udp_read_skb(struct sock *sk, skb_read_actor_t recv_actor) 2016 { 2017 struct sk_buff *skb; 2018 int err; 2019 2020 try_again: 2021 skb = skb_recv_udp(sk, MSG_DONTWAIT, &err); 2022 if (!skb) 2023 return err; 2024 2025 if (udp_lib_checksum_complete(skb)) { 2026 struct net *net = sock_net(sk); 2027 2028 __UDP_INC_STATS(net, UDP_MIB_CSUMERRORS); 2029 __UDP_INC_STATS(net, UDP_MIB_INERRORS); 2030 udp_drops_inc(sk); 2031 kfree_skb_reason(skb, SKB_DROP_REASON_UDP_CSUM); 2032 goto try_again; 2033 } 2034 2035 WARN_ON_ONCE(!skb_set_owner_sk_safe(skb, sk)); 2036 2037 /* 2038 * skb->dev still aliases the UDP rx dev_scratch (its charge was freed 2039 * on dequeue above); a sockmap verdict program may deref it via 2040 * bpf_sk_lookup_*(), so clear it -> bpf_skc_lookup() uses skb->sk 2041 */ 2042 skb->dev = NULL; 2043 2044 return recv_actor(sk, skb); 2045 } 2046 2047 /* 2048 * This should be easy, if there is something there we 2049 * return it, otherwise we block. 2050 */ 2051 2052 INDIRECT_CALLABLE_SCOPE 2053 int udp_recvmsg(struct sock *sk, struct msghdr *msg, size_t len, int flags) 2054 { 2055 DECLARE_SOCKADDR(struct sockaddr_in *, sin, msg->msg_name); 2056 int off, err, peeking = flags & MSG_PEEK; 2057 struct inet_sock *inet = inet_sk(sk); 2058 struct net *net = sock_net(sk); 2059 bool checksum_valid = false; 2060 unsigned int ulen, copied; 2061 struct sk_buff *skb; 2062 2063 if (flags & MSG_ERRQUEUE) 2064 return ip_recv_error(sk, msg, len); 2065 2066 try_again: 2067 off = sk_peek_offset(sk, flags); 2068 skb = __skb_recv_udp(sk, flags, &off, &err); 2069 if (!skb) 2070 return err; 2071 2072 ulen = udp_skb_len(skb); 2073 copied = len; 2074 if (copied > ulen - off) 2075 copied = ulen - off; 2076 else if (copied < ulen) 2077 msg->msg_flags |= MSG_TRUNC; 2078 2079 /* If checksum is needed at all, try to do it while copying the 2080 * data. If the data is truncated, do it before the copy. 2081 */ 2082 if (copied < ulen || peeking) { 2083 checksum_valid = udp_skb_csum_unnecessary(skb) || 2084 !__udp_lib_checksum_complete(skb); 2085 if (!checksum_valid) 2086 goto csum_copy_err; 2087 } 2088 2089 if (checksum_valid || udp_skb_csum_unnecessary(skb)) { 2090 if (udp_skb_is_linear(skb)) 2091 err = copy_linear_skb(skb, copied, off, &msg->msg_iter); 2092 else 2093 err = skb_copy_datagram_msg(skb, off, msg, copied); 2094 } else { 2095 err = skb_copy_and_csum_datagram_msg(skb, off, msg); 2096 2097 if (err == -EINVAL) 2098 goto csum_copy_err; 2099 } 2100 2101 if (unlikely(err)) { 2102 if (!peeking) { 2103 udp_drops_inc(sk); 2104 UDP_INC_STATS(net, UDP_MIB_INERRORS); 2105 } 2106 kfree_skb(skb); 2107 return err; 2108 } 2109 2110 if (!peeking) 2111 UDP_INC_STATS(net, UDP_MIB_INDATAGRAMS); 2112 2113 sock_recv_cmsgs(msg, sk, skb); 2114 2115 /* Copy the address. */ 2116 if (sin) { 2117 sin->sin_family = AF_INET; 2118 sin->sin_port = udp_hdr(skb)->source; 2119 sin->sin_addr.s_addr = ip_hdr(skb)->saddr; 2120 memset(sin->sin_zero, 0, sizeof(sin->sin_zero)); 2121 msg->msg_namelen = sizeof(*sin); 2122 2123 BPF_CGROUP_RUN_PROG_UDP4_RECVMSG_LOCK(sk, 2124 (struct sockaddr *)sin, 2125 &msg->msg_namelen); 2126 } 2127 2128 if (udp_test_bit(GRO_ENABLED, sk)) 2129 udp_cmsg_recv(msg, sk, skb); 2130 2131 if (inet_cmsg_flags(inet)) 2132 ip_cmsg_recv_offset(msg, sk, skb, sizeof(struct udphdr), off); 2133 2134 err = copied; 2135 if (flags & MSG_TRUNC) 2136 err = ulen; 2137 2138 skb_consume_udp(sk, skb, peeking ? -err : err); 2139 return err; 2140 2141 csum_copy_err: 2142 if (!__sk_queue_drop_skb(sk, &udp_sk(sk)->reader_queue, skb, flags, 2143 udp_skb_destructor)) { 2144 UDP_INC_STATS(net, UDP_MIB_CSUMERRORS); 2145 UDP_INC_STATS(net, UDP_MIB_INERRORS); 2146 } 2147 kfree_skb_reason(skb, SKB_DROP_REASON_UDP_CSUM); 2148 2149 /* starting over for a new packet, but check if we need to yield */ 2150 cond_resched(); 2151 msg->msg_flags &= ~MSG_TRUNC; 2152 goto try_again; 2153 } 2154 2155 int udp_pre_connect(struct sock *sk, struct sockaddr_unsized *uaddr, 2156 int addr_len) 2157 { 2158 /* This check is replicated from __ip4_datagram_connect() and 2159 * intended to prevent BPF program called below from accessing bytes 2160 * that are out of the bound specified by user in addr_len. 2161 */ 2162 if (addr_len < sizeof(struct sockaddr_in)) 2163 return -EINVAL; 2164 2165 return BPF_CGROUP_RUN_PROG_INET4_CONNECT_LOCK(sk, uaddr, &addr_len); 2166 } 2167 2168 static int udp_connect(struct sock *sk, struct sockaddr_unsized *uaddr, 2169 int addr_len) 2170 { 2171 int res; 2172 2173 lock_sock(sk); 2174 res = __ip4_datagram_connect(sk, uaddr, addr_len); 2175 if (!res) 2176 udp4_hash4(sk); 2177 release_sock(sk); 2178 return res; 2179 } 2180 2181 int __udp_disconnect(struct sock *sk, int flags) 2182 { 2183 struct inet_sock *inet = inet_sk(sk); 2184 /* 2185 * 1003.1g - break association. 2186 */ 2187 2188 sk->sk_state = TCP_CLOSE; 2189 WRITE_ONCE(inet->inet_daddr, 0); 2190 inet->inet_dport = 0; 2191 sock_rps_reset_rxhash(sk); 2192 WRITE_ONCE(sk->sk_bound_dev_if, 0); 2193 if (!(sk->sk_userlocks & SOCK_BINDADDR_LOCK)) { 2194 inet_reset_saddr(sk); 2195 if (sk->sk_prot->rehash && 2196 (sk->sk_userlocks & SOCK_BINDPORT_LOCK)) 2197 sk->sk_prot->rehash(sk); 2198 } 2199 2200 if (!(sk->sk_userlocks & SOCK_BINDPORT_LOCK)) { 2201 sk->sk_prot->unhash(sk); 2202 inet->inet_sport = 0; 2203 } 2204 sk_dst_reset(sk); 2205 return 0; 2206 } 2207 EXPORT_SYMBOL(__udp_disconnect); 2208 2209 /* __udp_disconnect() takes a socket out of the 4-tuple hash table only via 2210 * ->rehash() or ->unhash(), and neither runs for a socket bound to a 2211 * specific address and port. Remove it here, before its peer is cleared. 2212 */ 2213 static void udp_unhash4_on_disconnect(struct sock *sk) 2214 { 2215 struct net *net = sock_net(sk); 2216 struct udp_table *udptable; 2217 struct udp_hslot *hslot; 2218 2219 if (!udp_hashed4(sk)) 2220 return; 2221 2222 udptable = net->ipv4.udp_table; 2223 hslot = udp_hashslot(udptable, net, udp_sk(sk)->udp_port_hash); 2224 2225 spin_lock_bh(&hslot->lock); 2226 udp_unhash4(udptable, sk); 2227 spin_unlock_bh(&hslot->lock); 2228 } 2229 2230 int udp_disconnect(struct sock *sk, int flags) 2231 { 2232 lock_sock(sk); 2233 udp_unhash4_on_disconnect(sk); 2234 __udp_disconnect(sk, flags); 2235 release_sock(sk); 2236 return 0; 2237 } 2238 2239 void udp_lib_unhash(struct sock *sk) 2240 { 2241 if (sk_hashed(sk)) { 2242 struct udp_hslot *hslot, *hslot2; 2243 struct net *net = sock_net(sk); 2244 struct udp_table *udptable; 2245 2246 sock_rps_delete_flow(sk); 2247 udptable = net->ipv4.udp_table; 2248 hslot = udp_hashslot(udptable, net, udp_sk(sk)->udp_port_hash); 2249 hslot2 = udp_hashslot2(udptable, udp_sk(sk)->udp_portaddr_hash); 2250 2251 spin_lock_bh(&hslot->lock); 2252 if (rcu_access_pointer(sk->sk_reuseport_cb)) 2253 reuseport_detach_sock(sk); 2254 if (sk_del_node_init_rcu(sk)) { 2255 hslot->count--; 2256 inet_sk(sk)->inet_num = 0; 2257 sock_prot_inuse_add(net, sk->sk_prot, -1); 2258 2259 spin_lock(&hslot2->lock); 2260 hlist_del_init_rcu(&udp_sk(sk)->udp_portaddr_node); 2261 hslot2->count--; 2262 spin_unlock(&hslot2->lock); 2263 2264 udp_unhash4(udptable, sk); 2265 } 2266 spin_unlock_bh(&hslot->lock); 2267 } 2268 } 2269 2270 /* 2271 * inet_rcv_saddr was changed, we must rehash secondary hash 2272 */ 2273 void udp_lib_rehash(struct sock *sk, u16 newhash, u16 newhash4) 2274 { 2275 if (sk_hashed(sk)) { 2276 struct udp_hslot *hslot, *hslot2, *nhslot2; 2277 struct net *net = sock_net(sk); 2278 struct udp_table *udptable; 2279 2280 udptable = net->ipv4.udp_table; 2281 hslot = udp_hashslot(udptable, net, udp_sk(sk)->udp_port_hash); 2282 hslot2 = udp_hashslot2(udptable, udp_sk(sk)->udp_portaddr_hash); 2283 nhslot2 = udp_hashslot2(udptable, newhash); 2284 2285 if (hslot2 != nhslot2 || 2286 rcu_access_pointer(sk->sk_reuseport_cb)) { 2287 /* we must lock primary chain too */ 2288 spin_lock_bh(&hslot->lock); 2289 if (rcu_access_pointer(sk->sk_reuseport_cb)) 2290 reuseport_detach_sock(sk); 2291 2292 if (hslot2 != nhslot2) { 2293 spin_lock(&hslot2->lock); 2294 hlist_del_init_rcu(&udp_sk(sk)->udp_portaddr_node); 2295 hslot2->count--; 2296 spin_unlock(&hslot2->lock); 2297 2298 spin_lock(&nhslot2->lock); 2299 hlist_add_head_rcu(&udp_sk(sk)->udp_portaddr_node, 2300 &nhslot2->head); 2301 nhslot2->count++; 2302 spin_unlock(&nhslot2->lock); 2303 } 2304 2305 spin_unlock_bh(&hslot->lock); 2306 } 2307 2308 /* Now process hash4 if necessary: 2309 * (1) update hslot4; 2310 * (2) update hslot2->hash4_cnt. 2311 * Note that hslot2/hslot4 should be checked separately, as 2312 * either of them may change with the other unchanged. 2313 */ 2314 if (udp_hashed4(sk)) { 2315 spin_lock_bh(&hslot->lock); 2316 2317 if (inet_rcv_saddr_any(sk)) { 2318 udp_unhash4(udptable, sk); 2319 } else { 2320 udp_rehash4(udptable, sk, newhash4); 2321 if (hslot2 != nhslot2) { 2322 spin_lock(&hslot2->lock); 2323 udp_hash4_dec(hslot2); 2324 spin_unlock(&hslot2->lock); 2325 2326 spin_lock(&nhslot2->lock); 2327 udp_hash4_inc(nhslot2); 2328 spin_unlock(&nhslot2->lock); 2329 } 2330 } 2331 2332 spin_unlock_bh(&hslot->lock); 2333 } 2334 2335 udp_sk(sk)->udp_portaddr_hash = newhash; 2336 } 2337 } 2338 2339 static void udp_v4_rehash(struct sock *sk) 2340 { 2341 u16 new_hash = ipv4_portaddr_hash(sock_net(sk), 2342 inet_sk(sk)->inet_rcv_saddr, 2343 inet_sk(sk)->inet_num); 2344 u16 new_hash4 = udp_ehashfn(sock_net(sk), 2345 sk->sk_rcv_saddr, sk->sk_num, 2346 sk->sk_daddr, sk->sk_dport); 2347 2348 udp_lib_rehash(sk, new_hash, new_hash4); 2349 } 2350 2351 static int __udp_queue_rcv_skb(struct sock *sk, struct sk_buff *skb) 2352 { 2353 int rc; 2354 2355 if (inet_sk(sk)->inet_daddr) { 2356 sock_rps_save_rxhash(sk, skb); 2357 sk_mark_napi_id(sk, skb); 2358 sk_incoming_cpu_update(sk); 2359 } else { 2360 sk_mark_napi_id_once(sk, skb); 2361 } 2362 2363 rc = __udp_enqueue_schedule_skb(sk, skb); 2364 if (rc < 0) { 2365 struct net *net = sock_net(sk); 2366 int drop_reason; 2367 2368 /* Note that an ENOMEM error is charged twice */ 2369 if (rc == -ENOMEM) { 2370 UDP_INC_STATS(net, UDP_MIB_RCVBUFERRORS); 2371 drop_reason = SKB_DROP_REASON_SOCKET_RCVBUFF; 2372 } else { 2373 UDP_INC_STATS(net, UDP_MIB_MEMERRORS); 2374 drop_reason = SKB_DROP_REASON_PROTO_MEM; 2375 } 2376 UDP_INC_STATS(net, UDP_MIB_INERRORS); 2377 trace_udp_fail_queue_rcv_skb(rc, sk, skb); 2378 sk_skb_reason_drop(sk, skb, drop_reason); 2379 return -1; 2380 } 2381 2382 return 0; 2383 } 2384 2385 /* returns: 2386 * -1: error 2387 * 0: success 2388 * >0: "udp encap" protocol resubmission 2389 * 2390 * Note that in the success and error cases, the skb is assumed to 2391 * have either been requeued or freed. 2392 */ 2393 static int udp_queue_rcv_one_skb(struct sock *sk, struct sk_buff *skb) 2394 { 2395 enum skb_drop_reason drop_reason = SKB_DROP_REASON_NOT_SPECIFIED; 2396 struct udp_sock *up = udp_sk(sk); 2397 struct net *net = sock_net(sk); 2398 2399 /* 2400 * Charge it to the socket, dropping if the queue is full. 2401 */ 2402 if (!xfrm4_policy_check(sk, XFRM_POLICY_IN, skb)) { 2403 drop_reason = SKB_DROP_REASON_XFRM_POLICY; 2404 goto drop; 2405 } 2406 nf_reset_ct(skb); 2407 2408 if (static_branch_unlikely(&udp_encap_needed_key) && 2409 READ_ONCE(up->encap_type)) { 2410 int (*encap_rcv)(struct sock *sk, struct sk_buff *skb); 2411 2412 /* 2413 * This is an encapsulation socket so pass the skb to 2414 * the socket's udp_encap_rcv() hook. Otherwise, just 2415 * fall through and pass this up the UDP socket. 2416 * up->encap_rcv() returns the following value: 2417 * =0 if skb was successfully passed to the encap 2418 * handler or was discarded by it. 2419 * >0 if skb should be passed on to UDP. 2420 * <0 if skb should be resubmitted as proto -N 2421 */ 2422 2423 /* if we're overly short, let UDP handle it */ 2424 encap_rcv = READ_ONCE(up->encap_rcv); 2425 if (encap_rcv) { 2426 int ret; 2427 2428 /* Verify checksum before giving to encap */ 2429 if (udp_lib_checksum_complete(skb)) 2430 goto csum_error; 2431 2432 ret = encap_rcv(sk, skb); 2433 if (ret <= 0) { 2434 __UDP_INC_STATS(net, UDP_MIB_INDATAGRAMS); 2435 return -ret; 2436 } 2437 } 2438 2439 /* FALLTHROUGH -- it's a UDP Packet */ 2440 } 2441 2442 prefetch(&sk->sk_rmem_alloc); 2443 if (rcu_access_pointer(sk->sk_filter) && 2444 udp_lib_checksum_complete(skb)) 2445 goto csum_error; 2446 2447 drop_reason = sk_filter_trim_cap(sk, skb, sizeof(struct udphdr)); 2448 if (drop_reason) 2449 goto drop; 2450 2451 udp_csum_pull_header(skb); 2452 2453 ipv4_pktinfo_prepare(sk, skb, true); 2454 return __udp_queue_rcv_skb(sk, skb); 2455 2456 csum_error: 2457 drop_reason = SKB_DROP_REASON_UDP_CSUM; 2458 __UDP_INC_STATS(net, UDP_MIB_CSUMERRORS); 2459 drop: 2460 __UDP_INC_STATS(net, UDP_MIB_INERRORS); 2461 udp_drops_inc(sk); 2462 sk_skb_reason_drop(sk, skb, drop_reason); 2463 return -1; 2464 } 2465 2466 static int udp_queue_rcv_skb(struct sock *sk, struct sk_buff *skb) 2467 { 2468 struct sk_buff *next, *segs; 2469 int ret; 2470 2471 if (likely(!udp_unexpected_gso(sk, skb))) 2472 return udp_queue_rcv_one_skb(sk, skb); 2473 2474 BUILD_BUG_ON(sizeof(struct udp_skb_cb) > SKB_GSO_CB_OFFSET); 2475 __skb_push(skb, -skb_mac_offset(skb)); 2476 segs = udp_rcv_segment(sk, skb, true); 2477 skb_list_walk_safe(segs, skb, next) { 2478 __skb_pull(skb, skb_transport_offset(skb)); 2479 2480 udp_post_segment_fix_csum(skb); 2481 ret = udp_queue_rcv_one_skb(sk, skb); 2482 if (ret > 0) 2483 ip_protocol_deliver_rcu(dev_net(skb->dev), skb, ret); 2484 } 2485 return 0; 2486 } 2487 2488 /* For TCP sockets, sk_rx_dst is protected by socket lock 2489 * For UDP, we use xchg() to guard against concurrent changes. 2490 */ 2491 bool udp_sk_rx_dst_set(struct sock *sk, struct dst_entry *dst) 2492 { 2493 struct dst_entry *old; 2494 2495 if (dst_hold_safe(dst)) { 2496 old = unrcu_pointer(xchg(&sk->sk_rx_dst, RCU_INITIALIZER(dst))); 2497 dst_release(old); 2498 return old != dst; 2499 } 2500 return false; 2501 } 2502 2503 /* 2504 * Multicasts and broadcasts go to each listener. 2505 * 2506 * Note: called only from the BH handler context. 2507 */ 2508 static int __udp4_lib_mcast_deliver(struct net *net, struct sk_buff *skb, 2509 struct udphdr *uh, 2510 __be32 saddr, __be32 daddr) 2511 { 2512 struct udp_table *udptable = net->ipv4.udp_table; 2513 unsigned int hash2, hash2_any, offset; 2514 unsigned short hnum = ntohs(uh->dest); 2515 struct sock *sk, *first = NULL; 2516 int dif = skb->dev->ifindex; 2517 int sdif = inet_sdif(skb); 2518 struct hlist_node *node; 2519 struct udp_hslot *hslot; 2520 struct sk_buff *nskb; 2521 bool use_hash2; 2522 int ret; 2523 2524 hash2_any = 0; 2525 hash2 = 0; 2526 hslot = udp_hashslot(udptable, net, hnum); 2527 use_hash2 = hslot->count > 10; 2528 offset = offsetof(typeof(*sk), sk_node); 2529 2530 if (use_hash2) { 2531 hash2_any = ipv4_portaddr_hash(net, htonl(INADDR_ANY), hnum) & 2532 udptable->mask; 2533 hash2 = ipv4_portaddr_hash(net, daddr, hnum) & udptable->mask; 2534 start_lookup: 2535 hslot = &udptable->hash2[hash2].hslot; 2536 offset = offsetof(typeof(*sk), __sk_common.skc_portaddr_node); 2537 } 2538 2539 sk_for_each_entry_offset_rcu(sk, node, &hslot->head, offset) { 2540 if (!__udp_is_mcast_sock(net, sk, uh->dest, daddr, 2541 uh->source, saddr, dif, sdif, hnum)) 2542 continue; 2543 2544 if (!first) { 2545 first = sk; 2546 continue; 2547 } 2548 nskb = skb_clone(skb, GFP_ATOMIC); 2549 2550 if (unlikely(!nskb)) { 2551 udp_drops_inc(sk); 2552 __UDP_INC_STATS(net, UDP_MIB_RCVBUFERRORS); 2553 __UDP_INC_STATS(net, UDP_MIB_INERRORS); 2554 continue; 2555 } 2556 if (udp_queue_rcv_skb(sk, nskb) > 0) 2557 consume_skb(nskb); 2558 } 2559 2560 /* Also lookup *:port if we are using hash2 and haven't done so yet. */ 2561 if (use_hash2 && hash2 != hash2_any) { 2562 hash2 = hash2_any; 2563 goto start_lookup; 2564 } 2565 2566 if (first) { 2567 ret = udp_queue_rcv_skb(first, skb); 2568 if (ret > 0) 2569 return -ret; 2570 } else { 2571 kfree_skb(skb); 2572 __UDP_INC_STATS(net, UDP_MIB_IGNOREDMULTI); 2573 } 2574 return 0; 2575 } 2576 2577 /* Initialize UDP checksum. If exited with zero value (success), 2578 * CHECKSUM_UNNECESSARY means, that no more checks are required. 2579 * Otherwise, csum completion requires checksumming packet body, 2580 * including udp header and folding it to skb->csum. 2581 */ 2582 static inline int udp4_csum_init(struct sk_buff *skb, struct udphdr *uh) 2583 { 2584 int err; 2585 2586 /* Note, we are only interested in != 0 or == 0, thus the 2587 * force to int. 2588 */ 2589 err = (__force int)skb_checksum_init_zero_check(skb, IPPROTO_UDP, uh->check, 2590 inet_compute_pseudo); 2591 if (err) 2592 return err; 2593 2594 if (skb->ip_summed == CHECKSUM_COMPLETE && !skb->csum_valid) { 2595 /* If SW calculated the value, we know it's bad */ 2596 if (skb->csum_complete_sw) 2597 return 1; 2598 2599 /* HW says the value is bad. Let's validate that. 2600 * skb->csum is no longer the full packet checksum, 2601 * so don't treat it as such. 2602 */ 2603 skb_checksum_complete_unset(skb); 2604 } 2605 2606 return 0; 2607 } 2608 2609 /* wrapper for udp_queue_rcv_skb taking care of csum conversion and 2610 * return code conversion for ip layer consumption 2611 */ 2612 static int udp_unicast_rcv_skb(struct sock *sk, struct sk_buff *skb, 2613 struct udphdr *uh) 2614 { 2615 int ret; 2616 2617 if (inet_get_convert_csum(sk) && uh->check) 2618 skb_checksum_try_convert(skb, IPPROTO_UDP, inet_compute_pseudo); 2619 2620 ret = udp_queue_rcv_skb(sk, skb); 2621 2622 /* a return value > 0 means to resubmit the input, but 2623 * it wants the return to be -protocol, or 0 2624 */ 2625 if (ret > 0) 2626 return -ret; 2627 return 0; 2628 } 2629 2630 /* 2631 * All we need to do is get the socket, and then do a checksum. 2632 */ 2633 2634 int udp_rcv(struct sk_buff *skb) 2635 { 2636 struct rtable *rt = skb_rtable(skb); 2637 struct net *net = dev_net(skb->dev); 2638 struct sock *sk = NULL; 2639 __be32 saddr, daddr; 2640 unsigned int ulen; 2641 struct udphdr *uh; 2642 bool refcounted; 2643 int drop_reason; 2644 2645 drop_reason = SKB_DROP_REASON_NOT_SPECIFIED; 2646 2647 /* 2648 * Validate the packet. 2649 */ 2650 if (!pskb_may_pull(skb, sizeof(struct udphdr))) 2651 goto drop; /* No space for header. */ 2652 2653 uh = udp_hdr(skb); 2654 ulen = udp_get_len(skb, uh, 0); 2655 saddr = ip_hdr(skb)->saddr; 2656 daddr = ip_hdr(skb)->daddr; 2657 2658 if (ulen > skb->len) 2659 goto short_packet; 2660 2661 if (ulen < sizeof(*uh)) 2662 goto short_packet; 2663 2664 if (ulen < skb->len) { 2665 if (pskb_trim_rcsum(skb, ulen)) 2666 goto short_packet; 2667 2668 uh = udp_hdr(skb); 2669 } 2670 2671 if (udp4_csum_init(skb, uh)) 2672 goto csum_error; 2673 2674 sk = inet_steal_sock(net, skb, sizeof(struct udphdr), saddr, uh->source, daddr, uh->dest, 2675 &refcounted, udp_ehashfn); 2676 if (IS_ERR(sk)) 2677 goto no_sk; 2678 2679 if (sk) { 2680 struct dst_entry *dst = skb_dst(skb); 2681 int ret; 2682 2683 if (unlikely(rcu_dereference(sk->sk_rx_dst) != dst)) 2684 udp_sk_rx_dst_set(sk, dst); 2685 2686 ret = udp_unicast_rcv_skb(sk, skb, uh); 2687 if (refcounted) 2688 sock_put(sk); 2689 return ret; 2690 } 2691 2692 if (rt->rt_flags & (RTCF_BROADCAST|RTCF_MULTICAST)) 2693 return __udp4_lib_mcast_deliver(net, skb, uh, saddr, daddr); 2694 2695 sk = __udp4_lib_lookup_skb(skb, uh->source, uh->dest); 2696 if (sk) 2697 return udp_unicast_rcv_skb(sk, skb, uh); 2698 no_sk: 2699 if (!xfrm4_policy_check(NULL, XFRM_POLICY_IN, skb)) 2700 goto drop; 2701 nf_reset_ct(skb); 2702 2703 /* No socket. Drop packet silently, if checksum is wrong */ 2704 if (udp_lib_checksum_complete(skb)) 2705 goto csum_error; 2706 2707 drop_reason = SKB_DROP_REASON_NO_SOCKET; 2708 __UDP_INC_STATS(net, UDP_MIB_NOPORTS); 2709 icmp_send(skb, ICMP_DEST_UNREACH, ICMP_PORT_UNREACH, 0); 2710 2711 /* 2712 * Hmm. We got an UDP packet to a port to which we 2713 * don't wanna listen. Ignore it. 2714 */ 2715 sk_skb_reason_drop(sk, skb, drop_reason); 2716 return 0; 2717 2718 short_packet: 2719 drop_reason = SKB_DROP_REASON_PKT_TOO_SMALL; 2720 net_dbg_ratelimited("UDP: short packet: From %pI4:%u %d/%d to %pI4:%u\n", 2721 &saddr, ntohs(uh->source), 2722 ulen, skb->len, 2723 &daddr, ntohs(uh->dest)); 2724 goto drop; 2725 2726 csum_error: 2727 /* 2728 * RFC1122: OK. Discards the bad packet silently (as far as 2729 * the network is concerned, anyway) as per 4.1.3.4 (MUST). 2730 */ 2731 drop_reason = SKB_DROP_REASON_UDP_CSUM; 2732 net_dbg_ratelimited("UDP: bad checksum. From %pI4:%u to %pI4:%u ulen %d\n", 2733 &saddr, ntohs(uh->source), &daddr, ntohs(uh->dest), 2734 ulen); 2735 __UDP_INC_STATS(net, UDP_MIB_CSUMERRORS); 2736 drop: 2737 __UDP_INC_STATS(net, UDP_MIB_INERRORS); 2738 sk_skb_reason_drop(sk, skb, drop_reason); 2739 return 0; 2740 } 2741 2742 /* We can only early demux multicast if there is a single matching socket. 2743 * If more than one socket found returns NULL 2744 */ 2745 static struct sock *__udp4_lib_mcast_demux_lookup(struct net *net, 2746 __be16 loc_port, __be32 loc_addr, 2747 __be16 rmt_port, __be32 rmt_addr, 2748 int dif, int sdif) 2749 { 2750 struct udp_table *udptable = net->ipv4.udp_table; 2751 unsigned short hnum = ntohs(loc_port); 2752 struct sock *sk, *result; 2753 struct udp_hslot *hslot; 2754 unsigned int slot; 2755 2756 slot = udp_hashfn(net, hnum, udptable->mask); 2757 hslot = &udptable->hash[slot]; 2758 2759 /* Do not bother scanning a too big list */ 2760 if (hslot->count > 10) 2761 return NULL; 2762 2763 result = NULL; 2764 sk_for_each_rcu(sk, &hslot->head) { 2765 if (__udp_is_mcast_sock(net, sk, loc_port, loc_addr, 2766 rmt_port, rmt_addr, dif, sdif, hnum)) { 2767 if (result) 2768 return NULL; 2769 result = sk; 2770 } 2771 } 2772 2773 return result; 2774 } 2775 2776 /* For unicast we should only early demux connected sockets or we can 2777 * break forwarding setups. The chains here can be long so only check 2778 * if the first socket is an exact match and if not move on. 2779 */ 2780 static struct sock *__udp4_lib_demux_lookup(struct net *net, 2781 __be16 loc_port, __be32 loc_addr, 2782 __be16 rmt_port, __be32 rmt_addr, 2783 int dif, int sdif) 2784 { 2785 struct udp_table *udptable = net->ipv4.udp_table; 2786 INET_ADDR_COOKIE(acookie, rmt_addr, loc_addr); 2787 unsigned short hnum = ntohs(loc_port); 2788 struct udp_hslot *hslot2; 2789 unsigned int hash2; 2790 __portpair ports; 2791 struct sock *sk; 2792 2793 hash2 = ipv4_portaddr_hash(net, loc_addr, hnum); 2794 hslot2 = udp_hashslot2(udptable, hash2); 2795 ports = INET_COMBINED_PORTS(rmt_port, hnum); 2796 2797 udp_portaddr_for_each_entry_rcu(sk, &hslot2->head) { 2798 if (inet_match(net, sk, acookie, ports, dif, sdif)) 2799 return sk; 2800 /* Only check first socket in chain */ 2801 break; 2802 } 2803 return NULL; 2804 } 2805 2806 enum skb_drop_reason udp_v4_early_demux(struct sk_buff *skb) 2807 { 2808 struct net *net = dev_net(skb->dev); 2809 struct in_device *in_dev = NULL; 2810 const struct iphdr *iph; 2811 const struct udphdr *uh; 2812 struct sock *sk = NULL; 2813 struct dst_entry *dst; 2814 int dif = skb->dev->ifindex; 2815 int sdif = inet_sdif(skb); 2816 int ours; 2817 2818 /* validate the packet */ 2819 if (!pskb_may_pull(skb, skb_transport_offset(skb) + sizeof(struct udphdr))) 2820 return SKB_NOT_DROPPED_YET; 2821 2822 iph = ip_hdr(skb); 2823 uh = udp_hdr(skb); 2824 2825 if (skb->pkt_type == PACKET_MULTICAST) { 2826 in_dev = __in_dev_get_rcu(skb->dev); 2827 2828 if (!in_dev) 2829 return SKB_NOT_DROPPED_YET; 2830 2831 ours = ip_check_mc_rcu(in_dev, iph->daddr, iph->saddr, 2832 iph->protocol); 2833 if (!ours) 2834 return SKB_NOT_DROPPED_YET; 2835 2836 sk = __udp4_lib_mcast_demux_lookup(net, uh->dest, iph->daddr, 2837 uh->source, iph->saddr, 2838 dif, sdif); 2839 } else if (skb->pkt_type == PACKET_HOST) { 2840 sk = __udp4_lib_demux_lookup(net, uh->dest, iph->daddr, 2841 uh->source, iph->saddr, dif, sdif); 2842 } 2843 2844 if (!sk) 2845 return SKB_NOT_DROPPED_YET; 2846 2847 skb->sk = sk; 2848 DEBUG_NET_WARN_ON_ONCE(sk_is_refcounted(sk)); 2849 skb->destructor = sock_pfree; 2850 dst = rcu_dereference(sk->sk_rx_dst); 2851 2852 if (dst) 2853 dst = dst_check(dst, 0); 2854 if (dst) { 2855 u32 itag = 0; 2856 2857 /* set noref for now. 2858 * any place which wants to hold dst has to call 2859 * dst_hold_safe() 2860 */ 2861 skb_dst_set_noref(skb, dst); 2862 2863 /* for unconnected multicast sockets we need to validate 2864 * the source on each packet 2865 */ 2866 if (!inet_sk(sk)->inet_daddr && in_dev) 2867 return ip_mc_validate_source(skb, iph->daddr, 2868 iph->saddr, 2869 ip4h_dscp(iph), 2870 skb->dev, in_dev, &itag); 2871 } 2872 return SKB_NOT_DROPPED_YET; 2873 } 2874 2875 static void udp_destroy_sock(struct sock *sk) 2876 { 2877 struct udp_sock *up = udp_sk(sk); 2878 bool slow = lock_sock_fast(sk); 2879 2880 /* protects from races with udp_abort() */ 2881 sock_set_flag(sk, SOCK_DEAD); 2882 udp_flush_pending_frames(sk); 2883 unlock_sock_fast(sk, slow); 2884 if (static_branch_unlikely(&udp_encap_needed_key)) { 2885 if (up->encap_type) { 2886 void (*encap_destroy)(struct sock *sk); 2887 encap_destroy = READ_ONCE(up->encap_destroy); 2888 if (encap_destroy) 2889 encap_destroy(sk); 2890 } 2891 if (udp_test_bit(ENCAP_ENABLED, sk)) { 2892 static_branch_dec(&udp_encap_needed_key); 2893 udp_tunnel_cleanup_gro(sk); 2894 } 2895 } 2896 } 2897 2898 typedef struct sk_buff *(*udp_gro_receive_t)(struct sock *sk, 2899 struct list_head *head, 2900 struct sk_buff *skb); 2901 2902 static void set_xfrm_gro_udp_encap_rcv(__u16 encap_type, unsigned short family, 2903 struct sock *sk) 2904 { 2905 #ifdef CONFIG_XFRM 2906 udp_gro_receive_t new_gro_receive; 2907 2908 if (udp_test_bit(GRO_ENABLED, sk) && encap_type == UDP_ENCAP_ESPINUDP) { 2909 if (IS_ENABLED(CONFIG_IPV6) && family == AF_INET6) 2910 new_gro_receive = xfrm6_gro_udp_encap_rcv; 2911 else 2912 new_gro_receive = xfrm4_gro_udp_encap_rcv; 2913 2914 if (udp_sk(sk)->gro_receive != new_gro_receive) { 2915 /* 2916 * With IPV6_ADDRFORM the gro callback could change 2917 * after being set, unregister the old one, if valid. 2918 */ 2919 if (udp_sk(sk)->gro_receive) 2920 udp_tunnel_update_gro_rcv(sk, false); 2921 2922 WRITE_ONCE(udp_sk(sk)->gro_receive, new_gro_receive); 2923 udp_tunnel_update_gro_rcv(sk, true); 2924 } 2925 } 2926 #endif 2927 } 2928 2929 /* 2930 * Socket option code for UDP 2931 */ 2932 int udp_lib_setsockopt(struct sock *sk, int level, int optname, 2933 sockptr_t optval, unsigned int optlen, 2934 int (*push_pending_frames)(struct sock *)) 2935 { 2936 struct udp_sock *up = udp_sk(sk); 2937 int val, valbool; 2938 int err = 0; 2939 2940 if (level == SOL_SOCKET) { 2941 err = sk_setsockopt(sk, level, optname, optval, optlen); 2942 2943 if (optname == SO_RCVBUF || optname == SO_RCVBUFFORCE) { 2944 sockopt_lock_sock(sk); 2945 /* paired with READ_ONCE in udp_rmem_release() */ 2946 WRITE_ONCE(up->forward_threshold, sk->sk_rcvbuf >> 2); 2947 sockopt_release_sock(sk); 2948 } 2949 return err; 2950 } 2951 2952 if (optlen < sizeof(int)) 2953 return -EINVAL; 2954 2955 if (copy_from_sockptr(&val, optval, sizeof(val))) 2956 return -EFAULT; 2957 2958 valbool = val ? 1 : 0; 2959 2960 switch (optname) { 2961 case UDP_CORK: 2962 if (val != 0) { 2963 udp_set_bit(CORK, sk); 2964 } else { 2965 udp_clear_bit(CORK, sk); 2966 lock_sock(sk); 2967 push_pending_frames(sk); 2968 release_sock(sk); 2969 } 2970 break; 2971 2972 case UDP_ENCAP: 2973 sockopt_lock_sock(sk); 2974 switch (val) { 2975 case 0: 2976 #ifdef CONFIG_XFRM 2977 case UDP_ENCAP_ESPINUDP: 2978 set_xfrm_gro_udp_encap_rcv(val, sk->sk_family, sk); 2979 #if IS_ENABLED(CONFIG_IPV6) 2980 if (sk->sk_family == AF_INET6) 2981 WRITE_ONCE(up->encap_rcv, 2982 xfrm6_udp_encap_rcv); 2983 else 2984 #endif 2985 WRITE_ONCE(up->encap_rcv, 2986 xfrm4_udp_encap_rcv); 2987 #endif 2988 fallthrough; 2989 case UDP_ENCAP_L2TPINUDP: 2990 WRITE_ONCE(up->encap_type, val); 2991 udp_tunnel_encap_enable(sk); 2992 break; 2993 default: 2994 err = -ENOPROTOOPT; 2995 break; 2996 } 2997 sockopt_release_sock(sk); 2998 break; 2999 3000 case UDP_NO_CHECK6_TX: 3001 udp_set_no_check6_tx(sk, valbool); 3002 break; 3003 3004 case UDP_NO_CHECK6_RX: 3005 udp_set_no_check6_rx(sk, valbool); 3006 break; 3007 3008 case UDP_SEGMENT: 3009 if (val < 0 || val > USHRT_MAX) 3010 return -EINVAL; 3011 WRITE_ONCE(up->gso_size, val); 3012 break; 3013 3014 case UDP_GRO: 3015 sockopt_lock_sock(sk); 3016 /* when enabling GRO, accept the related GSO packet type */ 3017 if (valbool) 3018 udp_tunnel_encap_enable(sk); 3019 udp_assign_bit(GRO_ENABLED, sk, valbool); 3020 udp_assign_bit(ACCEPT_L4, sk, valbool); 3021 set_xfrm_gro_udp_encap_rcv(up->encap_type, sk->sk_family, sk); 3022 sockopt_release_sock(sk); 3023 break; 3024 3025 default: 3026 err = -ENOPROTOOPT; 3027 break; 3028 } 3029 3030 return err; 3031 } 3032 3033 static int udp_setsockopt(struct sock *sk, int level, int optname, sockptr_t optval, 3034 unsigned int optlen) 3035 { 3036 if (level == SOL_UDP || level == SOL_SOCKET) 3037 return udp_lib_setsockopt(sk, level, optname, 3038 optval, optlen, 3039 udp_push_pending_frames); 3040 return ip_setsockopt(sk, level, optname, optval, optlen); 3041 } 3042 3043 int udp_lib_getsockopt(struct sock *sk, int level, int optname, 3044 sockopt_t *opt) 3045 { 3046 struct udp_sock *up = udp_sk(sk); 3047 int val, len; 3048 3049 len = opt->optlen; 3050 /* keep the check so direct sockopt_t callers stay covered. */ 3051 if (len < 0) 3052 return -EINVAL; 3053 3054 len = min_t(unsigned int, len, sizeof(int)); 3055 3056 switch (optname) { 3057 case UDP_CORK: 3058 val = udp_test_bit(CORK, sk); 3059 break; 3060 3061 case UDP_ENCAP: 3062 val = READ_ONCE(up->encap_type); 3063 break; 3064 3065 case UDP_NO_CHECK6_TX: 3066 val = udp_get_no_check6_tx(sk); 3067 break; 3068 3069 case UDP_NO_CHECK6_RX: 3070 val = udp_get_no_check6_rx(sk); 3071 break; 3072 3073 case UDP_SEGMENT: 3074 val = READ_ONCE(up->gso_size); 3075 break; 3076 3077 case UDP_GRO: 3078 val = udp_test_bit(GRO_ENABLED, sk); 3079 break; 3080 3081 default: 3082 return -ENOPROTOOPT; 3083 } 3084 3085 opt->optlen = len; 3086 if (copy_to_iter(&val, len, &opt->iter_out) != len) 3087 return -EFAULT; 3088 return 0; 3089 } 3090 3091 static int udp_getsockopt(struct sock *sk, int level, int optname, 3092 char __user *optval, int __user *optlen) 3093 { 3094 sockopt_t opt; 3095 int err; 3096 3097 /* 3098 * keep the old __user pointers, until ip_getsockopt() moves 3099 * to sockopt_t 3100 */ 3101 if (level != SOL_UDP) 3102 return ip_getsockopt(sk, level, optname, optval, optlen); 3103 3104 err = sockopt_init_user(&opt, optval, optlen); 3105 if (err) 3106 return err; 3107 3108 err = udp_lib_getsockopt(sk, level, optname, &opt); 3109 if (err) 3110 return err; 3111 3112 /* optval was written by copy_to_iter() in udp_lib_getsockopt() */ 3113 if (put_user(opt.optlen, optlen)) 3114 return -EFAULT; 3115 3116 return 0; 3117 } 3118 3119 /** 3120 * udp_poll - wait for a UDP event. 3121 * @file: - file struct 3122 * @sock: - socket 3123 * @wait: - poll table 3124 * 3125 * This is same as datagram poll, except for the special case of 3126 * blocking sockets. If application is using a blocking fd 3127 * and a packet with checksum error is in the queue; 3128 * then it could get return from select indicating data available 3129 * but then block when reading it. Add special case code 3130 * to work around these arguably broken applications. 3131 */ 3132 __poll_t udp_poll(struct file *file, struct socket *sock, poll_table *wait) 3133 { 3134 __poll_t mask = datagram_poll(file, sock, wait); 3135 struct sock *sk = sock->sk; 3136 3137 if (!skb_queue_empty_lockless(&udp_sk(sk)->reader_queue)) 3138 mask |= EPOLLIN | EPOLLRDNORM; 3139 3140 /* Check for false positives due to checksum errors */ 3141 if ((mask & EPOLLRDNORM) && !(file->f_flags & O_NONBLOCK) && 3142 !(sk->sk_shutdown & RCV_SHUTDOWN) && first_packet_length(sk) == -1) 3143 mask &= ~(EPOLLIN | EPOLLRDNORM); 3144 3145 /* psock ingress_msg queue should not contain any bad checksum frames */ 3146 if (sk_is_readable(sk)) 3147 mask |= EPOLLIN | EPOLLRDNORM; 3148 return mask; 3149 3150 } 3151 3152 int udp_abort(struct sock *sk, int err) 3153 { 3154 if (!has_current_bpf_ctx()) 3155 lock_sock(sk); 3156 3157 /* udp{v6}_destroy_sock() sets it under the sk lock, avoid racing 3158 * with close() 3159 */ 3160 if (sock_flag(sk, SOCK_DEAD)) 3161 goto out; 3162 3163 sk->sk_err = err; 3164 sk_error_report(sk); 3165 udp_unhash4_on_disconnect(sk); 3166 __udp_disconnect(sk, 0); 3167 3168 out: 3169 if (!has_current_bpf_ctx()) 3170 release_sock(sk); 3171 3172 return 0; 3173 } 3174 3175 struct proto udp_prot = { 3176 .name = "UDP", 3177 .owner = THIS_MODULE, 3178 .close = udp_lib_close, 3179 .pre_connect = udp_pre_connect, 3180 .connect = udp_connect, 3181 .disconnect = udp_disconnect, 3182 .ioctl = udp_ioctl, 3183 .init = udp_init_sock, 3184 .destroy = udp_destroy_sock, 3185 .setsockopt = udp_setsockopt, 3186 .getsockopt = udp_getsockopt, 3187 .sendmsg = udp_sendmsg, 3188 .recvmsg = udp_recvmsg, 3189 .splice_eof = udp_splice_eof, 3190 .release_cb = ip4_datagram_release_cb, 3191 .hash = udp_lib_hash, 3192 .unhash = udp_lib_unhash, 3193 .rehash = udp_v4_rehash, 3194 .get_port = udp_v4_get_port, 3195 .put_port = udp_lib_unhash, 3196 #ifdef CONFIG_BPF_SYSCALL 3197 .psock_update_sk_prot = udp_bpf_update_proto, 3198 #endif 3199 .memory_allocated = &net_aligned_data.udp_memory_allocated, 3200 .per_cpu_fw_alloc = &udp_memory_per_cpu_fw_alloc, 3201 3202 .sysctl_mem = sysctl_udp_mem, 3203 .sysctl_wmem_offset = offsetof(struct net, ipv4.sysctl_udp_wmem_min), 3204 .sysctl_rmem_offset = offsetof(struct net, ipv4.sysctl_udp_rmem_min), 3205 .obj_size = sizeof(struct udp_sock), 3206 .diag_destroy = udp_abort, 3207 }; 3208 EXPORT_SYMBOL(udp_prot); 3209 3210 /* ------------------------------------------------------------------------ */ 3211 #ifdef CONFIG_PROC_FS 3212 3213 static unsigned short seq_file_family(const struct seq_file *seq); 3214 static bool seq_sk_match(struct seq_file *seq, const struct sock *sk) 3215 { 3216 unsigned short family = seq_file_family(seq); 3217 3218 /* AF_UNSPEC is used as a match all */ 3219 return ((family == AF_UNSPEC || family == sk->sk_family) && 3220 net_eq(sock_net(sk), seq_file_net(seq))); 3221 } 3222 3223 #ifdef CONFIG_BPF_SYSCALL 3224 static const struct seq_operations bpf_iter_udp_seq_ops; 3225 #endif 3226 3227 static struct sock *udp_get_first(struct seq_file *seq, int start) 3228 { 3229 struct udp_iter_state *state = seq->private; 3230 struct net *net = seq_file_net(seq); 3231 struct udp_table *udptable; 3232 struct sock *sk; 3233 3234 udptable = net->ipv4.udp_table; 3235 3236 for (state->bucket = start; state->bucket <= udptable->mask; 3237 ++state->bucket) { 3238 struct udp_hslot *hslot = &udptable->hash[state->bucket]; 3239 3240 if (hlist_empty(&hslot->head)) 3241 continue; 3242 3243 spin_lock_bh(&hslot->lock); 3244 sk_for_each(sk, &hslot->head) { 3245 if (seq_sk_match(seq, sk)) 3246 goto found; 3247 } 3248 spin_unlock_bh(&hslot->lock); 3249 } 3250 sk = NULL; 3251 found: 3252 return sk; 3253 } 3254 3255 static struct sock *udp_get_next(struct seq_file *seq, struct sock *sk) 3256 { 3257 struct udp_iter_state *state = seq->private; 3258 struct net *net = seq_file_net(seq); 3259 struct udp_table *udptable; 3260 3261 do { 3262 sk = sk_next(sk); 3263 } while (sk && !seq_sk_match(seq, sk)); 3264 3265 if (!sk) { 3266 udptable = net->ipv4.udp_table; 3267 3268 if (state->bucket <= udptable->mask) 3269 spin_unlock_bh(&udptable->hash[state->bucket].lock); 3270 3271 return udp_get_first(seq, state->bucket + 1); 3272 } 3273 return sk; 3274 } 3275 3276 static struct sock *udp_get_idx(struct seq_file *seq, loff_t pos) 3277 { 3278 struct sock *sk = udp_get_first(seq, 0); 3279 3280 if (sk) 3281 while (pos && (sk = udp_get_next(seq, sk)) != NULL) 3282 --pos; 3283 return pos ? NULL : sk; 3284 } 3285 3286 void *udp_seq_start(struct seq_file *seq, loff_t *pos) 3287 { 3288 struct udp_iter_state *state = seq->private; 3289 state->bucket = MAX_UDP_PORTS; 3290 3291 return *pos ? udp_get_idx(seq, *pos-1) : SEQ_START_TOKEN; 3292 } 3293 3294 void *udp_seq_next(struct seq_file *seq, void *v, loff_t *pos) 3295 { 3296 struct sock *sk; 3297 3298 if (v == SEQ_START_TOKEN) 3299 sk = udp_get_idx(seq, 0); 3300 else 3301 sk = udp_get_next(seq, v); 3302 3303 ++*pos; 3304 return sk; 3305 } 3306 3307 void udp_seq_stop(struct seq_file *seq, void *v) 3308 { 3309 struct udp_iter_state *state = seq->private; 3310 struct udp_table *udptable; 3311 3312 udptable = seq_file_net(seq)->ipv4.udp_table; 3313 3314 if (state->bucket <= udptable->mask) 3315 spin_unlock_bh(&udptable->hash[state->bucket].lock); 3316 } 3317 3318 /* ------------------------------------------------------------------------ */ 3319 static void udp4_format_sock(struct sock *sp, struct seq_file *f, 3320 int bucket) 3321 { 3322 struct inet_sock *inet = inet_sk(sp); 3323 __be32 dest = inet->inet_daddr; 3324 __be32 src = inet->inet_rcv_saddr; 3325 __u16 destp = ntohs(inet->inet_dport); 3326 __u16 srcp = ntohs(inet->inet_sport); 3327 3328 seq_printf(f, "%5d: %08X:%04X %08X:%04X" 3329 " %02X %08X:%08X %02X:%08lX %08X %5u %8d %llu %d %pK %u", 3330 bucket, src, srcp, dest, destp, sp->sk_state, 3331 sk_wmem_alloc_get(sp), 3332 udp_rqueue_get(sp), 3333 0, 0L, 0, 3334 from_kuid_munged(seq_user_ns(f), sk_uid(sp)), 3335 0, sock_i_ino(sp), 3336 refcount_read(&sp->sk_refcnt), sp, 3337 sk_drops_read(sp)); 3338 } 3339 3340 static int udp4_seq_show(struct seq_file *seq, void *v) 3341 { 3342 seq_setwidth(seq, 127); 3343 if (v == SEQ_START_TOKEN) 3344 seq_puts(seq, " sl local_address rem_address st tx_queue " 3345 "rx_queue tr tm->when retrnsmt uid timeout " 3346 "inode ref pointer drops"); 3347 else { 3348 struct udp_iter_state *state = seq->private; 3349 3350 udp4_format_sock(v, seq, state->bucket); 3351 } 3352 seq_pad(seq, '\n'); 3353 return 0; 3354 } 3355 3356 #ifdef CONFIG_BPF_SYSCALL 3357 struct bpf_iter__udp { 3358 __bpf_md_ptr(struct bpf_iter_meta *, meta); 3359 __bpf_md_ptr(struct udp_sock *, udp_sk); 3360 uid_t uid __aligned(8); 3361 int bucket __aligned(8); 3362 }; 3363 3364 union bpf_udp_iter_batch_item { 3365 struct sock *sk; 3366 __u64 cookie; 3367 }; 3368 3369 struct bpf_udp_iter_state { 3370 struct udp_iter_state state; 3371 unsigned int cur_sk; 3372 unsigned int end_sk; 3373 unsigned int max_sk; 3374 union bpf_udp_iter_batch_item *batch; 3375 }; 3376 3377 static int bpf_iter_udp_realloc_batch(struct bpf_udp_iter_state *iter, 3378 unsigned int new_batch_sz, gfp_t flags); 3379 static struct sock *bpf_iter_udp_resume(struct sock *first_sk, 3380 union bpf_udp_iter_batch_item *cookies, 3381 int n_cookies) 3382 { 3383 struct sock *sk = NULL; 3384 int i; 3385 3386 for (i = 0; i < n_cookies; i++) { 3387 sk = first_sk; 3388 udp_portaddr_for_each_entry_from(sk) 3389 if (cookies[i].cookie == atomic64_read(&sk->sk_cookie)) 3390 goto done; 3391 } 3392 done: 3393 return sk; 3394 } 3395 3396 static struct sock *bpf_iter_udp_batch(struct seq_file *seq) 3397 { 3398 struct bpf_udp_iter_state *iter = seq->private; 3399 struct udp_iter_state *state = &iter->state; 3400 unsigned int find_cookie, end_cookie; 3401 struct net *net = seq_file_net(seq); 3402 struct udp_table *udptable; 3403 unsigned int batch_sks = 0; 3404 int resume_bucket; 3405 int resizes = 0; 3406 struct sock *sk; 3407 int err = 0; 3408 3409 resume_bucket = state->bucket; 3410 3411 /* The current batch is done, so advance the bucket. */ 3412 if (iter->cur_sk == iter->end_sk) 3413 state->bucket++; 3414 3415 udptable = net->ipv4.udp_table; 3416 3417 again: 3418 /* New batch for the next bucket. 3419 * Iterate over the hash table to find a bucket with sockets matching 3420 * the iterator attributes, and return the first matching socket from 3421 * the bucket. The remaining matched sockets from the bucket are batched 3422 * before releasing the bucket lock. This allows BPF programs that are 3423 * called in seq_show to acquire the bucket lock if needed. 3424 */ 3425 find_cookie = iter->cur_sk; 3426 end_cookie = iter->end_sk; 3427 iter->cur_sk = 0; 3428 iter->end_sk = 0; 3429 batch_sks = 0; 3430 3431 for (; state->bucket <= udptable->mask; state->bucket++) { 3432 struct udp_hslot *hslot2 = &udptable->hash2[state->bucket].hslot; 3433 3434 if (hlist_empty(&hslot2->head)) 3435 goto next_bucket; 3436 3437 spin_lock_bh(&hslot2->lock); 3438 sk = hlist_entry_safe(hslot2->head.first, struct sock, 3439 __sk_common.skc_portaddr_node); 3440 /* Resume from the first (in iteration order) unseen socket from 3441 * the last batch that still exists in resume_bucket. Most of 3442 * the time this will just be where the last iteration left off 3443 * in resume_bucket unless that socket disappeared between 3444 * reads. 3445 */ 3446 if (state->bucket == resume_bucket) 3447 sk = bpf_iter_udp_resume(sk, &iter->batch[find_cookie], 3448 end_cookie - find_cookie); 3449 fill_batch: 3450 udp_portaddr_for_each_entry_from(sk) { 3451 if (seq_sk_match(seq, sk)) { 3452 if (iter->end_sk < iter->max_sk) { 3453 sock_hold(sk); 3454 iter->batch[iter->end_sk++].sk = sk; 3455 } 3456 batch_sks++; 3457 } 3458 } 3459 3460 /* Allocate a larger batch and try again. */ 3461 if (unlikely(resizes <= 1 && iter->end_sk && 3462 iter->end_sk != batch_sks)) { 3463 resizes++; 3464 3465 /* First, try with GFP_USER to maximize the chances of 3466 * grabbing more memory. 3467 */ 3468 if (resizes == 1) { 3469 spin_unlock_bh(&hslot2->lock); 3470 err = bpf_iter_udp_realloc_batch(iter, 3471 batch_sks * 3 / 2, 3472 GFP_USER); 3473 if (err) 3474 return ERR_PTR(err); 3475 /* Start over. */ 3476 goto again; 3477 } 3478 3479 /* Next, hold onto the lock, so the bucket doesn't 3480 * change while we get the rest of the sockets. 3481 */ 3482 err = bpf_iter_udp_realloc_batch(iter, batch_sks, 3483 GFP_NOWAIT); 3484 if (err) { 3485 spin_unlock_bh(&hslot2->lock); 3486 return ERR_PTR(err); 3487 } 3488 3489 /* Pick up where we left off. */ 3490 sk = iter->batch[iter->end_sk - 1].sk; 3491 sk = hlist_entry_safe(sk->__sk_common.skc_portaddr_node.next, 3492 struct sock, 3493 __sk_common.skc_portaddr_node); 3494 batch_sks = iter->end_sk; 3495 goto fill_batch; 3496 } 3497 3498 spin_unlock_bh(&hslot2->lock); 3499 3500 if (iter->end_sk) 3501 break; 3502 next_bucket: 3503 resizes = 0; 3504 } 3505 3506 WARN_ON_ONCE(iter->end_sk != batch_sks); 3507 return iter->end_sk ? iter->batch[0].sk : NULL; 3508 } 3509 3510 static void *bpf_iter_udp_seq_next(struct seq_file *seq, void *v, loff_t *pos) 3511 { 3512 struct bpf_udp_iter_state *iter = seq->private; 3513 struct sock *sk; 3514 3515 /* Whenever seq_next() is called, the iter->cur_sk is 3516 * done with seq_show(), so unref the iter->cur_sk. 3517 */ 3518 if (iter->cur_sk < iter->end_sk) 3519 sock_put(iter->batch[iter->cur_sk++].sk); 3520 3521 /* After updating iter->cur_sk, check if there are more sockets 3522 * available in the current bucket batch. 3523 */ 3524 if (iter->cur_sk < iter->end_sk) 3525 sk = iter->batch[iter->cur_sk].sk; 3526 else 3527 /* Prepare a new batch. */ 3528 sk = bpf_iter_udp_batch(seq); 3529 3530 ++*pos; 3531 return sk; 3532 } 3533 3534 static void *bpf_iter_udp_seq_start(struct seq_file *seq, loff_t *pos) 3535 { 3536 /* bpf iter does not support lseek, so it always 3537 * continue from where it was stop()-ped. 3538 */ 3539 if (*pos) 3540 return bpf_iter_udp_batch(seq); 3541 3542 return SEQ_START_TOKEN; 3543 } 3544 3545 static int udp_prog_seq_show(struct bpf_prog *prog, struct bpf_iter_meta *meta, 3546 struct udp_sock *udp_sk, uid_t uid, int bucket) 3547 { 3548 struct bpf_iter__udp ctx; 3549 3550 meta->seq_num--; /* skip SEQ_START_TOKEN */ 3551 ctx.meta = meta; 3552 ctx.udp_sk = udp_sk; 3553 ctx.uid = uid; 3554 ctx.bucket = bucket; 3555 return bpf_iter_run_prog(prog, &ctx); 3556 } 3557 3558 static int bpf_iter_udp_seq_show(struct seq_file *seq, void *v) 3559 { 3560 struct udp_iter_state *state = seq->private; 3561 struct bpf_iter_meta meta; 3562 struct bpf_prog *prog; 3563 struct sock *sk = v; 3564 uid_t uid; 3565 int ret; 3566 3567 if (v == SEQ_START_TOKEN) 3568 return 0; 3569 3570 lock_sock(sk); 3571 3572 if (unlikely(sk_unhashed(sk))) { 3573 ret = SEQ_SKIP; 3574 goto unlock; 3575 } 3576 3577 uid = from_kuid_munged(seq_user_ns(seq), sk_uid(sk)); 3578 meta.seq = seq; 3579 prog = bpf_iter_get_info(&meta, false); 3580 ret = udp_prog_seq_show(prog, &meta, v, uid, state->bucket); 3581 3582 unlock: 3583 release_sock(sk); 3584 return ret; 3585 } 3586 3587 static void bpf_iter_udp_put_batch(struct bpf_udp_iter_state *iter) 3588 { 3589 union bpf_udp_iter_batch_item *item; 3590 unsigned int cur_sk = iter->cur_sk; 3591 __u64 cookie; 3592 3593 /* Remember the cookies of the sockets we haven't seen yet, so we can 3594 * pick up where we left off next time around. 3595 */ 3596 while (cur_sk < iter->end_sk) { 3597 item = &iter->batch[cur_sk++]; 3598 cookie = sock_gen_cookie(item->sk); 3599 sock_put(item->sk); 3600 item->cookie = cookie; 3601 } 3602 } 3603 3604 static void bpf_iter_udp_seq_stop(struct seq_file *seq, void *v) 3605 { 3606 struct bpf_udp_iter_state *iter = seq->private; 3607 struct bpf_iter_meta meta; 3608 struct bpf_prog *prog; 3609 3610 if (!v) { 3611 meta.seq = seq; 3612 prog = bpf_iter_get_info(&meta, true); 3613 if (prog) 3614 (void)udp_prog_seq_show(prog, &meta, v, 0, 0); 3615 } 3616 3617 if (iter->cur_sk < iter->end_sk) 3618 bpf_iter_udp_put_batch(iter); 3619 } 3620 3621 static const struct seq_operations bpf_iter_udp_seq_ops = { 3622 .start = bpf_iter_udp_seq_start, 3623 .next = bpf_iter_udp_seq_next, 3624 .stop = bpf_iter_udp_seq_stop, 3625 .show = bpf_iter_udp_seq_show, 3626 }; 3627 #endif 3628 3629 static unsigned short seq_file_family(const struct seq_file *seq) 3630 { 3631 const struct udp_seq_afinfo *afinfo; 3632 3633 #ifdef CONFIG_BPF_SYSCALL 3634 /* BPF iterator: bpf programs to filter sockets. */ 3635 if (seq->op == &bpf_iter_udp_seq_ops) 3636 return AF_UNSPEC; 3637 #endif 3638 3639 /* Proc fs iterator */ 3640 afinfo = pde_data(file_inode(seq->file)); 3641 return afinfo->family; 3642 } 3643 3644 static const struct seq_operations udp_seq_ops = { 3645 .start = udp_seq_start, 3646 .next = udp_seq_next, 3647 .stop = udp_seq_stop, 3648 .show = udp4_seq_show, 3649 }; 3650 3651 static struct udp_seq_afinfo udp4_seq_afinfo = { 3652 .family = AF_INET, 3653 }; 3654 3655 static int __net_init udp4_proc_init_net(struct net *net) 3656 { 3657 if (!proc_create_net_data("udp", 0444, net->proc_net, &udp_seq_ops, 3658 sizeof(struct udp_iter_state), &udp4_seq_afinfo)) 3659 return -ENOMEM; 3660 return 0; 3661 } 3662 3663 static void __net_exit udp4_proc_exit_net(struct net *net) 3664 { 3665 remove_proc_entry("udp", net->proc_net); 3666 } 3667 3668 static struct pernet_operations udp4_net_ops = { 3669 .init = udp4_proc_init_net, 3670 .exit = udp4_proc_exit_net, 3671 }; 3672 3673 int __init udp4_proc_init(void) 3674 { 3675 return register_pernet_subsys(&udp4_net_ops); 3676 } 3677 3678 void udp4_proc_exit(void) 3679 { 3680 unregister_pernet_subsys(&udp4_net_ops); 3681 } 3682 #endif /* CONFIG_PROC_FS */ 3683 3684 static __initdata unsigned long uhash_entries; 3685 static int __init set_uhash_entries(char *str) 3686 { 3687 ssize_t ret; 3688 3689 if (!str) 3690 return 0; 3691 3692 ret = kstrtoul(str, 0, &uhash_entries); 3693 if (ret) 3694 return 0; 3695 3696 if (uhash_entries && uhash_entries < UDP_HTABLE_SIZE_MIN) 3697 uhash_entries = UDP_HTABLE_SIZE_MIN; 3698 return 1; 3699 } 3700 __setup("uhash_entries=", set_uhash_entries); 3701 3702 static void __init udp_table_init(struct udp_table *table, const char *name) 3703 { 3704 unsigned int i, slot_size; 3705 3706 slot_size = sizeof(struct udp_hslot) + sizeof(struct udp_hslot_main) + 3707 udp_hash4_slot_size(); 3708 table->hash = alloc_large_system_hash(name, 3709 slot_size, 3710 uhash_entries, 3711 21, /* one slot per 2 MB */ 3712 0, 3713 &table->log, 3714 &table->mask, 3715 UDP_HTABLE_SIZE_MIN, 3716 UDP_HTABLE_SIZE_MAX); 3717 3718 table->hash2 = (void *)(table->hash + (table->mask + 1)); 3719 for (i = 0; i <= table->mask; i++) { 3720 INIT_HLIST_HEAD(&table->hash[i].head); 3721 table->hash[i].count = 0; 3722 spin_lock_init(&table->hash[i].lock); 3723 } 3724 for (i = 0; i <= table->mask; i++) { 3725 INIT_HLIST_HEAD(&table->hash2[i].hslot.head); 3726 table->hash2[i].hslot.count = 0; 3727 spin_lock_init(&table->hash2[i].hslot.lock); 3728 } 3729 udp_table_hash4_init(table); 3730 } 3731 3732 u32 udp_flow_hashrnd(void) 3733 { 3734 static u32 hashrnd __read_mostly; 3735 3736 net_get_random_once(&hashrnd, sizeof(hashrnd)); 3737 3738 return hashrnd; 3739 } 3740 EXPORT_SYMBOL(udp_flow_hashrnd); 3741 3742 static void __net_init udp_sysctl_init(struct net *net) 3743 { 3744 net->ipv4.sysctl_udp_rmem_min = PAGE_SIZE; 3745 net->ipv4.sysctl_udp_wmem_min = PAGE_SIZE; 3746 3747 #ifdef CONFIG_NET_L3_MASTER_DEV 3748 net->ipv4.sysctl_udp_l3mdev_accept = 0; 3749 #endif 3750 } 3751 3752 static struct udp_table __net_init *udp_pernet_table_alloc(unsigned int hash_entries) 3753 { 3754 struct udp_table *udptable; 3755 unsigned int slot_size; 3756 int i; 3757 3758 udptable = kmalloc_obj(*udptable); 3759 if (!udptable) 3760 goto out; 3761 3762 slot_size = sizeof(struct udp_hslot) + sizeof(struct udp_hslot_main) + 3763 udp_hash4_slot_size(); 3764 udptable->hash = vmalloc_huge(hash_entries * slot_size, 3765 GFP_KERNEL_ACCOUNT); 3766 if (!udptable->hash) 3767 goto free_table; 3768 3769 udptable->hash2 = (void *)(udptable->hash + hash_entries); 3770 udptable->mask = hash_entries - 1; 3771 udptable->log = ilog2(hash_entries); 3772 3773 for (i = 0; i < hash_entries; i++) { 3774 INIT_HLIST_HEAD(&udptable->hash[i].head); 3775 udptable->hash[i].count = 0; 3776 spin_lock_init(&udptable->hash[i].lock); 3777 3778 INIT_HLIST_HEAD(&udptable->hash2[i].hslot.head); 3779 udptable->hash2[i].hslot.count = 0; 3780 spin_lock_init(&udptable->hash2[i].hslot.lock); 3781 } 3782 udp_table_hash4_init(udptable); 3783 3784 return udptable; 3785 3786 free_table: 3787 kfree(udptable); 3788 out: 3789 return NULL; 3790 } 3791 3792 static void __net_exit udp_pernet_table_free(struct net *net) 3793 { 3794 struct udp_table *udptable = net->ipv4.udp_table; 3795 3796 if (udptable == &udp_table) 3797 return; 3798 3799 kvfree(udptable->hash); 3800 kfree(udptable); 3801 } 3802 3803 static void __net_init udp_set_table(struct net *net) 3804 { 3805 struct udp_table *udptable; 3806 unsigned int hash_entries; 3807 struct net *old_net; 3808 3809 if (net_eq(net, &init_net)) 3810 goto fallback; 3811 3812 old_net = current->nsproxy->net_ns; 3813 hash_entries = READ_ONCE(old_net->ipv4.sysctl_udp_child_hash_entries); 3814 if (!hash_entries) 3815 goto fallback; 3816 3817 /* Set min to keep the bitmap on stack in udp_lib_get_port() */ 3818 if (hash_entries < UDP_HTABLE_SIZE_MIN_PERNET) 3819 hash_entries = UDP_HTABLE_SIZE_MIN_PERNET; 3820 else 3821 hash_entries = roundup_pow_of_two(hash_entries); 3822 3823 udptable = udp_pernet_table_alloc(hash_entries); 3824 if (udptable) { 3825 net->ipv4.udp_table = udptable; 3826 } else { 3827 pr_warn("Failed to allocate UDP hash table (entries: %u) " 3828 "for a netns, fallback to the global one\n", 3829 hash_entries); 3830 fallback: 3831 net->ipv4.udp_table = &udp_table; 3832 } 3833 } 3834 3835 static int __net_init udp_pernet_init(struct net *net) 3836 { 3837 #if IS_ENABLED(CONFIG_NET_UDP_TUNNEL) 3838 int i; 3839 3840 /* No tunnel is configured */ 3841 for (i = 0; i < ARRAY_SIZE(net->ipv4.udp_tunnel_gro); ++i) { 3842 INIT_HLIST_HEAD(&net->ipv4.udp_tunnel_gro[i].list); 3843 RCU_INIT_POINTER(net->ipv4.udp_tunnel_gro[i].sk, NULL); 3844 } 3845 #endif 3846 udp_sysctl_init(net); 3847 udp_set_table(net); 3848 3849 return 0; 3850 } 3851 3852 static void __net_exit udp_pernet_exit(struct net *net) 3853 { 3854 udp_pernet_table_free(net); 3855 } 3856 3857 static struct pernet_operations __net_initdata udp_sysctl_ops = { 3858 .init = udp_pernet_init, 3859 .exit = udp_pernet_exit, 3860 }; 3861 3862 #if defined(CONFIG_BPF_SYSCALL) && defined(CONFIG_PROC_FS) 3863 DEFINE_BPF_ITER_FUNC(udp, struct bpf_iter_meta *meta, 3864 struct udp_sock *udp_sk, uid_t uid, int bucket) 3865 3866 static int bpf_iter_udp_realloc_batch(struct bpf_udp_iter_state *iter, 3867 unsigned int new_batch_sz, gfp_t flags) 3868 { 3869 union bpf_udp_iter_batch_item *new_batch; 3870 3871 new_batch = kvmalloc_objs(*new_batch, new_batch_sz, 3872 flags | __GFP_NOWARN); 3873 if (!new_batch) 3874 return -ENOMEM; 3875 3876 if (flags != GFP_NOWAIT) 3877 bpf_iter_udp_put_batch(iter); 3878 3879 memcpy(new_batch, iter->batch, sizeof(*iter->batch) * iter->end_sk); 3880 kvfree(iter->batch); 3881 iter->batch = new_batch; 3882 iter->max_sk = new_batch_sz; 3883 3884 return 0; 3885 } 3886 3887 #define INIT_BATCH_SZ 16 3888 3889 static int bpf_iter_init_udp(void *priv_data, struct bpf_iter_aux_info *aux) 3890 { 3891 struct bpf_udp_iter_state *iter = priv_data; 3892 int ret; 3893 3894 ret = bpf_iter_init_seq_net(priv_data, aux); 3895 if (ret) 3896 return ret; 3897 3898 ret = bpf_iter_udp_realloc_batch(iter, INIT_BATCH_SZ, GFP_USER); 3899 if (ret) 3900 bpf_iter_fini_seq_net(priv_data); 3901 3902 iter->state.bucket = -1; 3903 3904 return ret; 3905 } 3906 3907 static void bpf_iter_fini_udp(void *priv_data) 3908 { 3909 struct bpf_udp_iter_state *iter = priv_data; 3910 3911 bpf_iter_fini_seq_net(priv_data); 3912 kvfree(iter->batch); 3913 } 3914 3915 static const struct bpf_iter_seq_info udp_seq_info = { 3916 .seq_ops = &bpf_iter_udp_seq_ops, 3917 .init_seq_private = bpf_iter_init_udp, 3918 .fini_seq_private = bpf_iter_fini_udp, 3919 .seq_priv_size = sizeof(struct bpf_udp_iter_state), 3920 }; 3921 3922 static struct bpf_iter_reg udp_reg_info = { 3923 .target = "udp", 3924 .ctx_arg_info_size = 1, 3925 .ctx_arg_info = { 3926 { offsetof(struct bpf_iter__udp, udp_sk), 3927 PTR_TO_BTF_ID_OR_NULL | PTR_TRUSTED }, 3928 }, 3929 .seq_info = &udp_seq_info, 3930 }; 3931 3932 static void __init bpf_iter_register(void) 3933 { 3934 udp_reg_info.ctx_arg_info[0].btf_id = btf_sock_ids[BTF_SOCK_TYPE_UDP]; 3935 if (bpf_iter_reg_target(&udp_reg_info)) 3936 pr_warn("Warning: could not register bpf iterator udp\n"); 3937 } 3938 #endif 3939 3940 void __init udp_init(void) 3941 { 3942 unsigned long limit; 3943 3944 udp_table_init(&udp_table, "UDP"); 3945 limit = nr_free_buffer_pages() / 8; 3946 limit = max(limit, 128UL); 3947 sysctl_udp_mem[0] = limit / 4 * 3; 3948 sysctl_udp_mem[1] = limit; 3949 sysctl_udp_mem[2] = sysctl_udp_mem[0] * 2; 3950 3951 if (register_pernet_subsys(&udp_sysctl_ops)) 3952 panic("UDP: failed to init sysctl parameters.\n"); 3953 3954 #if defined(CONFIG_BPF_SYSCALL) && defined(CONFIG_PROC_FS) 3955 bpf_iter_register(); 3956 #endif 3957 } 3958