1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* AF_RXRPC implementation 3 * 4 * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved. 5 * Written by David Howells (dhowells@redhat.com) 6 */ 7 8 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 9 10 #include <linux/module.h> 11 #include <linux/kernel.h> 12 #include <linux/net.h> 13 #include <linux/slab.h> 14 #include <linux/skbuff.h> 15 #include <linux/random.h> 16 #include <linux/poll.h> 17 #include <linux/proc_fs.h> 18 #include <linux/key-type.h> 19 #include <net/net_namespace.h> 20 #include <net/sock.h> 21 #include <net/af_rxrpc.h> 22 #define CREATE_TRACE_POINTS 23 #include "ar-internal.h" 24 25 MODULE_DESCRIPTION("RxRPC network protocol"); 26 MODULE_AUTHOR("Red Hat, Inc."); 27 MODULE_LICENSE("GPL"); 28 MODULE_ALIAS_NETPROTO(PF_RXRPC); 29 30 unsigned int rxrpc_debug; // = RXRPC_DEBUG_KPROTO; 31 module_param_named(debug, rxrpc_debug, uint, 0644); 32 MODULE_PARM_DESC(debug, "RxRPC debugging mask"); 33 34 static struct proto rxrpc_proto; 35 static const struct proto_ops rxrpc_rpc_ops; 36 37 /* current debugging ID */ 38 atomic_t rxrpc_debug_id; 39 EXPORT_SYMBOL(rxrpc_debug_id); 40 41 /* count of skbs currently in use */ 42 atomic_t rxrpc_n_rx_skbs; 43 44 struct workqueue_struct *rxrpc_workqueue; 45 46 static void rxrpc_sock_destructor(struct sock *); 47 48 /* 49 * see if an RxRPC socket is currently writable 50 */ 51 static inline int rxrpc_writable(struct sock *sk) 52 { 53 return refcount_read(&sk->sk_wmem_alloc) < (size_t) sk->sk_sndbuf; 54 } 55 56 /* 57 * wait for write bufferage to become available 58 */ 59 static void rxrpc_write_space(struct sock *sk) 60 { 61 _enter("%p", sk); 62 rcu_read_lock(); 63 if (rxrpc_writable(sk)) { 64 struct socket_wq *wq = rcu_dereference(sk->sk_wq); 65 66 if (skwq_has_sleeper(wq)) 67 wake_up_interruptible(&wq->wait); 68 sk_wake_async_rcu(sk, SOCK_WAKE_SPACE, POLL_OUT); 69 } 70 rcu_read_unlock(); 71 } 72 73 /* 74 * validate an RxRPC address 75 */ 76 static int rxrpc_validate_address(struct rxrpc_sock *rx, 77 struct sockaddr_rxrpc *srx, 78 int len) 79 { 80 unsigned int tail; 81 82 if (len < sizeof(struct sockaddr_rxrpc)) 83 return -EINVAL; 84 85 if (srx->srx_family != AF_RXRPC) 86 return -EAFNOSUPPORT; 87 88 if (srx->transport_type != SOCK_DGRAM) 89 return -ESOCKTNOSUPPORT; 90 91 len -= offsetof(struct sockaddr_rxrpc, transport); 92 if (srx->transport_len < sizeof(sa_family_t) || 93 srx->transport_len > len) 94 return -EINVAL; 95 96 switch (srx->transport.family) { 97 case AF_INET: 98 if (rx->family != AF_INET && 99 rx->family != AF_INET6) 100 return -EAFNOSUPPORT; 101 if (srx->transport_len < sizeof(struct sockaddr_in)) 102 return -EINVAL; 103 tail = offsetof(struct sockaddr_rxrpc, transport.sin.__pad); 104 break; 105 106 #ifdef CONFIG_AF_RXRPC_IPV6 107 case AF_INET6: 108 if (rx->family != AF_INET6) 109 return -EAFNOSUPPORT; 110 if (srx->transport_len < sizeof(struct sockaddr_in6)) 111 return -EINVAL; 112 tail = offsetof(struct sockaddr_rxrpc, transport) + 113 sizeof(struct sockaddr_in6); 114 break; 115 #endif 116 117 default: 118 return -EAFNOSUPPORT; 119 } 120 121 if (tail < len) 122 memset((void *)srx + tail, 0, len - tail); 123 _debug("INET: %pISp", &srx->transport); 124 return 0; 125 } 126 127 /* 128 * bind a local address to an RxRPC socket 129 */ 130 static int rxrpc_bind(struct socket *sock, struct sockaddr *saddr, int len) 131 { 132 struct sockaddr_rxrpc *srx = (struct sockaddr_rxrpc *)saddr; 133 struct rxrpc_local *local; 134 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 135 u16 service_id; 136 int ret; 137 138 _enter("%p,%p,%d", rx, saddr, len); 139 140 ret = rxrpc_validate_address(rx, srx, len); 141 if (ret < 0) 142 goto error; 143 service_id = srx->srx_service; 144 145 lock_sock(&rx->sk); 146 147 switch (rx->sk.sk_state) { 148 case RXRPC_UNBOUND: 149 rx->srx = *srx; 150 local = rxrpc_lookup_local(sock_net(&rx->sk), &rx->srx); 151 if (IS_ERR(local)) { 152 ret = PTR_ERR(local); 153 goto error_unlock; 154 } 155 156 if (service_id) { 157 write_lock(&local->services_lock); 158 if (local->service) 159 goto service_in_use; 160 rx->local = local; 161 local->service = rx; 162 write_unlock(&local->services_lock); 163 164 rx->sk.sk_state = RXRPC_SERVER_BOUND; 165 } else { 166 rx->local = local; 167 rx->sk.sk_state = RXRPC_CLIENT_BOUND; 168 } 169 break; 170 171 case RXRPC_SERVER_BOUND: 172 ret = -EINVAL; 173 if (service_id == 0) 174 goto error_unlock; 175 ret = -EADDRINUSE; 176 if (service_id == rx->srx.srx_service) 177 goto error_unlock; 178 ret = -EINVAL; 179 srx->srx_service = rx->srx.srx_service; 180 if (memcmp(srx, &rx->srx, sizeof(*srx)) != 0) 181 goto error_unlock; 182 rx->second_service = service_id; 183 rx->sk.sk_state = RXRPC_SERVER_BOUND2; 184 break; 185 186 default: 187 ret = -EINVAL; 188 goto error_unlock; 189 } 190 191 release_sock(&rx->sk); 192 _leave(" = 0"); 193 return 0; 194 195 service_in_use: 196 write_unlock(&local->services_lock); 197 rxrpc_unuse_local(local, rxrpc_local_unuse_bind); 198 rxrpc_put_local(local, rxrpc_local_put_bind); 199 ret = -EADDRINUSE; 200 error_unlock: 201 release_sock(&rx->sk); 202 error: 203 _leave(" = %d", ret); 204 return ret; 205 } 206 207 /* 208 * set the number of pending calls permitted on a listening socket 209 */ 210 static int rxrpc_listen(struct socket *sock, int backlog) 211 { 212 struct sock *sk = sock->sk; 213 struct rxrpc_sock *rx = rxrpc_sk(sk); 214 unsigned int max, old; 215 int ret; 216 217 _enter("%p,%d", rx, backlog); 218 219 lock_sock(&rx->sk); 220 221 switch (rx->sk.sk_state) { 222 case RXRPC_UNBOUND: 223 ret = -EADDRNOTAVAIL; 224 break; 225 case RXRPC_SERVER_BOUND: 226 case RXRPC_SERVER_BOUND2: 227 ASSERT(rx->local != NULL); 228 max = READ_ONCE(rxrpc_max_backlog); 229 ret = -EINVAL; 230 if (backlog == INT_MAX) 231 backlog = max; 232 else if (backlog < 0 || backlog > max) 233 break; 234 old = sk->sk_max_ack_backlog; 235 sk->sk_max_ack_backlog = backlog; 236 ret = rxrpc_service_prealloc(rx, GFP_KERNEL); 237 if (ret == 0) 238 rx->sk.sk_state = RXRPC_SERVER_LISTENING; 239 else 240 sk->sk_max_ack_backlog = old; 241 break; 242 case RXRPC_SERVER_LISTENING: 243 if (backlog == 0) { 244 rx->sk.sk_state = RXRPC_SERVER_LISTEN_DISABLED; 245 sk->sk_max_ack_backlog = 0; 246 rxrpc_discard_prealloc(rx); 247 ret = 0; 248 break; 249 } 250 fallthrough; 251 default: 252 ret = -EBUSY; 253 break; 254 } 255 256 release_sock(&rx->sk); 257 _leave(" = %d", ret); 258 return ret; 259 } 260 261 /** 262 * rxrpc_kernel_lookup_peer - Obtain remote transport endpoint for an address 263 * @sock: The socket through which it will be accessed 264 * @srx: The network address 265 * @gfp: Allocation flags 266 * 267 * Lookup or create a remote transport endpoint record for the specified 268 * address. 269 * 270 * Return: The peer record found with a reference, %NULL if no record is found 271 * or a negative error code if the address is invalid or unsupported. 272 */ 273 struct rxrpc_peer *rxrpc_kernel_lookup_peer(struct socket *sock, 274 struct sockaddr_rxrpc *srx, gfp_t gfp) 275 { 276 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 277 int ret; 278 279 ret = rxrpc_validate_address(rx, srx, sizeof(*srx)); 280 if (ret < 0) 281 return ERR_PTR(ret); 282 283 return rxrpc_lookup_peer(rx->local, srx, gfp); 284 } 285 EXPORT_SYMBOL(rxrpc_kernel_lookup_peer); 286 287 /** 288 * rxrpc_kernel_get_peer - Get a reference on a peer 289 * @peer: The peer to get a reference on (may be NULL). 290 * 291 * Get a reference for a remote peer record (if not NULL). 292 * 293 * Return: The @peer argument. 294 */ 295 struct rxrpc_peer *rxrpc_kernel_get_peer(struct rxrpc_peer *peer) 296 { 297 return peer ? rxrpc_get_peer(peer, rxrpc_peer_get_application) : NULL; 298 } 299 EXPORT_SYMBOL(rxrpc_kernel_get_peer); 300 301 /** 302 * rxrpc_kernel_put_peer - Allow a kernel app to drop a peer reference 303 * @peer: The peer to drop a ref on 304 * 305 * Drop a reference on a peer record. 306 */ 307 void rxrpc_kernel_put_peer(struct rxrpc_peer *peer) 308 { 309 rxrpc_put_peer(peer, rxrpc_peer_put_application); 310 } 311 EXPORT_SYMBOL(rxrpc_kernel_put_peer); 312 313 /** 314 * rxrpc_kernel_begin_call - Allow a kernel service to begin a call 315 * @sock: The socket on which to make the call 316 * @peer: The peer to contact 317 * @key: The security context to use (defaults to socket setting) 318 * @user_call_ID: The ID to use 319 * @tx_total_len: Total length of data to transmit during the call (or -1) 320 * @hard_timeout: The maximum lifespan of the call in sec 321 * @gfp: The allocation constraints 322 * @notify_rx: Where to send notifications instead of socket queue 323 * @service_id: The ID of the service to contact 324 * @upgrade: Request service upgrade for call 325 * @interruptibility: The call is interruptible, or can be canceled. 326 * @debug_id: The debug ID for tracing to be assigned to the call 327 * 328 * Allow a kernel service to begin a call on the nominated socket. This just 329 * sets up all the internal tracking structures and allocates connection and 330 * call IDs as appropriate. 331 * 332 * The default socket destination address and security may be overridden by 333 * supplying @srx and @key. 334 * 335 * Return: The new call or an error code. 336 */ 337 struct rxrpc_call *rxrpc_kernel_begin_call(struct socket *sock, 338 struct rxrpc_peer *peer, 339 struct key *key, 340 unsigned long user_call_ID, 341 s64 tx_total_len, 342 u32 hard_timeout, 343 gfp_t gfp, 344 rxrpc_notify_rx_t notify_rx, 345 u16 service_id, 346 bool upgrade, 347 enum rxrpc_interruptibility interruptibility, 348 unsigned int debug_id) 349 { 350 struct rxrpc_conn_parameters cp; 351 struct rxrpc_call_params p; 352 struct rxrpc_call *call; 353 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 354 355 _enter(",,%x,%lx", key_serial(key), user_call_ID); 356 357 if (WARN_ON_ONCE(peer->local != rx->local)) 358 return ERR_PTR(-EIO); 359 360 lock_sock(&rx->sk); 361 362 if (!key) 363 key = rx->key; 364 if (key && !key->payload.data[0]) 365 key = NULL; /* a no-security key */ 366 367 memset(&p, 0, sizeof(p)); 368 p.user_call_ID = user_call_ID; 369 p.tx_total_len = tx_total_len; 370 p.interruptibility = interruptibility; 371 p.kernel = true; 372 p.timeouts.hard = hard_timeout; 373 374 memset(&cp, 0, sizeof(cp)); 375 cp.local = rx->local; 376 cp.peer = peer; 377 cp.key = key; 378 cp.security_level = rx->min_sec_level; 379 cp.exclusive = false; 380 cp.upgrade = upgrade; 381 cp.service_id = service_id; 382 call = rxrpc_new_client_call(rx, &cp, &p, gfp, debug_id); 383 /* The socket has been unlocked. */ 384 if (!IS_ERR(call)) { 385 call->notify_rx = notify_rx; 386 mutex_unlock(&call->user_mutex); 387 } 388 389 _leave(" = %p", call); 390 return call; 391 } 392 EXPORT_SYMBOL(rxrpc_kernel_begin_call); 393 394 /* 395 * Dummy function used to stop the notifier talking to recvmsg(). 396 */ 397 static void rxrpc_dummy_notify_rx(struct sock *sk, struct rxrpc_call *rxcall, 398 unsigned long call_user_ID) 399 { 400 } 401 402 /** 403 * rxrpc_kernel_shutdown_call - Allow a kernel service to shut down a call it was using 404 * @sock: The socket the call is on 405 * @call: The call to end 406 * 407 * Allow a kernel service to shut down a call it was using. The call must be 408 * complete before this is called (the call should be aborted if necessary). 409 */ 410 void rxrpc_kernel_shutdown_call(struct socket *sock, struct rxrpc_call *call) 411 { 412 _enter("%d{%d}", call->debug_id, refcount_read(&call->ref)); 413 414 mutex_lock(&call->user_mutex); 415 if (!test_bit(RXRPC_CALL_RELEASED, &call->flags)) { 416 rxrpc_release_call(rxrpc_sk(sock->sk), call); 417 418 /* Make sure we're not going to call back into a kernel service */ 419 if (call->notify_rx) { 420 spin_lock_irq(&call->notify_lock); 421 call->notify_rx = rxrpc_dummy_notify_rx; 422 spin_unlock_irq(&call->notify_lock); 423 } 424 } 425 mutex_unlock(&call->user_mutex); 426 } 427 EXPORT_SYMBOL(rxrpc_kernel_shutdown_call); 428 429 /** 430 * rxrpc_kernel_put_call - Release a reference to a call 431 * @sock: The socket the call is on 432 * @call: The call to put 433 * 434 * Drop the application's ref on an rxrpc call. 435 */ 436 void rxrpc_kernel_put_call(struct socket *sock, struct rxrpc_call *call) 437 { 438 rxrpc_put_call(call, rxrpc_call_put_kernel); 439 } 440 EXPORT_SYMBOL(rxrpc_kernel_put_call); 441 442 /** 443 * rxrpc_kernel_check_life - Check to see whether a call is still alive 444 * @sock: The socket the call is on 445 * @call: The call to check 446 * 447 * Allow a kernel service to find out whether a call is still alive - whether 448 * it has completed successfully and all received data has been consumed. 449 * 450 * Return: %true if the call is still ongoing and %false if it has completed. 451 */ 452 bool rxrpc_kernel_check_life(const struct socket *sock, 453 const struct rxrpc_call *call) 454 { 455 if (!rxrpc_call_is_complete(call)) 456 return true; 457 if (call->completion != RXRPC_CALL_SUCCEEDED) 458 return false; 459 return !skb_queue_empty(&call->recvmsg_queue); 460 } 461 EXPORT_SYMBOL(rxrpc_kernel_check_life); 462 463 /** 464 * rxrpc_kernel_get_epoch - Retrieve the epoch value from a call. 465 * @sock: The socket the call is on 466 * @call: The call to query 467 * 468 * Allow a kernel service to retrieve the epoch value from a service call to 469 * see if the client at the other end rebooted. 470 * 471 * Return: The epoch of the call's connection. 472 */ 473 u32 rxrpc_kernel_get_epoch(struct socket *sock, struct rxrpc_call *call) 474 { 475 return call->conn->proto.epoch; 476 } 477 EXPORT_SYMBOL(rxrpc_kernel_get_epoch); 478 479 /** 480 * rxrpc_kernel_set_notifications - Set table of callback operations 481 * @sock: The socket to install table upon 482 * @app_ops: Callback operation table to set 483 * 484 * Allow a kernel service to set a table of event notifications on a socket. 485 */ 486 void rxrpc_kernel_set_notifications(struct socket *sock, 487 const struct rxrpc_kernel_ops *app_ops) 488 { 489 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 490 491 rx->app_ops = app_ops; 492 } 493 EXPORT_SYMBOL(rxrpc_kernel_set_notifications); 494 495 /** 496 * rxrpc_kernel_set_max_life - Set maximum lifespan on a call 497 * @sock: The socket the call is on 498 * @call: The call to configure 499 * @hard_timeout: The maximum lifespan of the call in ms 500 * 501 * Set the maximum lifespan of a call. The call will end with ETIME or 502 * ETIMEDOUT if it takes longer than this. 503 */ 504 void rxrpc_kernel_set_max_life(struct socket *sock, struct rxrpc_call *call, 505 unsigned long hard_timeout) 506 { 507 ktime_t delay = ms_to_ktime(hard_timeout), expect_term_by; 508 509 mutex_lock(&call->user_mutex); 510 511 expect_term_by = ktime_add(ktime_get_real(), delay); 512 WRITE_ONCE(call->expect_term_by, expect_term_by); 513 trace_rxrpc_timer_set(call, delay, rxrpc_timer_trace_hard); 514 rxrpc_poke_call(call, rxrpc_call_poke_set_timeout); 515 516 mutex_unlock(&call->user_mutex); 517 } 518 EXPORT_SYMBOL(rxrpc_kernel_set_max_life); 519 520 /* 521 * connect an RxRPC socket 522 * - this just targets it at a specific destination; no actual connection 523 * negotiation takes place 524 */ 525 static int rxrpc_connect(struct socket *sock, struct sockaddr *addr, 526 int addr_len, int flags) 527 { 528 struct sockaddr_rxrpc *srx = (struct sockaddr_rxrpc *)addr; 529 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 530 int ret; 531 532 _enter("%p,%p,%d,%d", rx, addr, addr_len, flags); 533 534 ret = rxrpc_validate_address(rx, srx, addr_len); 535 if (ret < 0) { 536 _leave(" = %d [bad addr]", ret); 537 return ret; 538 } 539 540 lock_sock(&rx->sk); 541 542 ret = -EISCONN; 543 if (test_bit(RXRPC_SOCK_CONNECTED, &rx->flags)) 544 goto error; 545 546 switch (rx->sk.sk_state) { 547 case RXRPC_UNBOUND: 548 rx->sk.sk_state = RXRPC_CLIENT_UNBOUND; 549 break; 550 case RXRPC_CLIENT_UNBOUND: 551 case RXRPC_CLIENT_BOUND: 552 break; 553 default: 554 ret = -EBUSY; 555 goto error; 556 } 557 558 rx->connect_srx = *srx; 559 set_bit(RXRPC_SOCK_CONNECTED, &rx->flags); 560 ret = 0; 561 562 error: 563 release_sock(&rx->sk); 564 return ret; 565 } 566 567 /* 568 * send a message through an RxRPC socket 569 * - in a client this does a number of things: 570 * - finds/sets up a connection for the security specified (if any) 571 * - initiates a call (ID in control data) 572 * - ends the request phase of a call (if MSG_MORE is not set) 573 * - sends a call data packet 574 * - may send an abort (abort code in control data) 575 */ 576 static int rxrpc_sendmsg(struct socket *sock, struct msghdr *m, size_t len) 577 { 578 struct rxrpc_local *local; 579 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 580 int ret; 581 582 _enter(",{%d},,%zu", rx->sk.sk_state, len); 583 584 if (m->msg_flags & MSG_OOB) 585 return -EOPNOTSUPP; 586 587 if (m->msg_name) { 588 ret = rxrpc_validate_address(rx, m->msg_name, m->msg_namelen); 589 if (ret < 0) { 590 _leave(" = %d [bad addr]", ret); 591 return ret; 592 } 593 } 594 595 lock_sock(&rx->sk); 596 597 switch (rx->sk.sk_state) { 598 case RXRPC_UNBOUND: 599 case RXRPC_CLIENT_UNBOUND: 600 rx->srx.srx_family = AF_RXRPC; 601 rx->srx.srx_service = 0; 602 rx->srx.transport_type = SOCK_DGRAM; 603 rx->srx.transport.family = rx->family; 604 switch (rx->family) { 605 case AF_INET: 606 rx->srx.transport_len = sizeof(struct sockaddr_in); 607 break; 608 #ifdef CONFIG_AF_RXRPC_IPV6 609 case AF_INET6: 610 rx->srx.transport_len = sizeof(struct sockaddr_in6); 611 break; 612 #endif 613 default: 614 ret = -EAFNOSUPPORT; 615 goto error_unlock; 616 } 617 local = rxrpc_lookup_local(sock_net(sock->sk), &rx->srx); 618 if (IS_ERR(local)) { 619 ret = PTR_ERR(local); 620 goto error_unlock; 621 } 622 623 rx->local = local; 624 rx->sk.sk_state = RXRPC_CLIENT_BOUND; 625 fallthrough; 626 627 case RXRPC_CLIENT_BOUND: 628 if (!m->msg_name && 629 test_bit(RXRPC_SOCK_CONNECTED, &rx->flags)) { 630 m->msg_name = &rx->connect_srx; 631 m->msg_namelen = sizeof(rx->connect_srx); 632 } 633 fallthrough; 634 case RXRPC_SERVER_BOUND: 635 case RXRPC_SERVER_LISTENING: 636 if (m->msg_flags & MSG_OOB) 637 ret = rxrpc_sendmsg_oob(rx, m, len); 638 else 639 ret = rxrpc_do_sendmsg(rx, m, len); 640 /* The socket has been unlocked */ 641 goto out; 642 default: 643 ret = -EINVAL; 644 goto error_unlock; 645 } 646 647 error_unlock: 648 release_sock(&rx->sk); 649 out: 650 _leave(" = %d", ret); 651 return ret; 652 } 653 654 int rxrpc_sock_set_min_security_level(struct sock *sk, unsigned int val) 655 { 656 if (sk->sk_state != RXRPC_UNBOUND) 657 return -EISCONN; 658 if (val > RXRPC_SECURITY_MAX) 659 return -EINVAL; 660 lock_sock(sk); 661 rxrpc_sk(sk)->min_sec_level = val; 662 release_sock(sk); 663 return 0; 664 } 665 EXPORT_SYMBOL(rxrpc_sock_set_min_security_level); 666 667 /* 668 * set RxRPC socket options 669 */ 670 static int rxrpc_setsockopt(struct socket *sock, int level, int optname, 671 sockptr_t optval, unsigned int optlen) 672 { 673 struct rxrpc_sock *rx = rxrpc_sk(sock->sk); 674 unsigned int min_sec_level, val; 675 u16 service_upgrade[2]; 676 int ret; 677 678 _enter(",%d,%d,,%d", level, optname, optlen); 679 680 lock_sock(&rx->sk); 681 ret = -EOPNOTSUPP; 682 683 if (level == SOL_RXRPC) { 684 switch (optname) { 685 case RXRPC_EXCLUSIVE_CONNECTION: 686 ret = -EINVAL; 687 if (optlen != 0) 688 goto error; 689 ret = -EISCONN; 690 if (rx->sk.sk_state != RXRPC_UNBOUND) 691 goto error; 692 rx->exclusive = true; 693 goto success; 694 695 case RXRPC_SECURITY_KEY: 696 ret = -EINVAL; 697 if (rx->key) 698 goto error; 699 ret = -EISCONN; 700 if (rx->sk.sk_state != RXRPC_UNBOUND) 701 goto error; 702 ret = rxrpc_request_key(rx, optval, optlen); 703 goto error; 704 705 case RXRPC_SECURITY_KEYRING: 706 ret = -EINVAL; 707 if (rx->key) 708 goto error; 709 ret = -EISCONN; 710 if (rx->sk.sk_state != RXRPC_UNBOUND) 711 goto error; 712 ret = rxrpc_server_keyring(rx, optval, optlen); 713 goto error; 714 715 case RXRPC_MIN_SECURITY_LEVEL: 716 ret = -EINVAL; 717 if (optlen != sizeof(unsigned int)) 718 goto error; 719 ret = -EISCONN; 720 if (rx->sk.sk_state != RXRPC_UNBOUND) 721 goto error; 722 ret = copy_safe_from_sockptr(&min_sec_level, 723 sizeof(min_sec_level), 724 optval, optlen); 725 if (ret) 726 goto error; 727 ret = -EINVAL; 728 if (min_sec_level > RXRPC_SECURITY_MAX) 729 goto error; 730 rx->min_sec_level = min_sec_level; 731 goto success; 732 733 case RXRPC_UPGRADEABLE_SERVICE: 734 ret = -EINVAL; 735 if (optlen != sizeof(service_upgrade) || 736 rx->service_upgrade.from != 0) 737 goto error; 738 ret = -EISCONN; 739 if (rx->sk.sk_state != RXRPC_SERVER_BOUND2) 740 goto error; 741 ret = -EFAULT; 742 if (copy_from_sockptr(service_upgrade, optval, 743 sizeof(service_upgrade)) != 0) 744 goto error; 745 ret = -EINVAL; 746 if ((service_upgrade[0] != rx->srx.srx_service || 747 service_upgrade[1] != rx->second_service) && 748 (service_upgrade[0] != rx->second_service || 749 service_upgrade[1] != rx->srx.srx_service)) 750 goto error; 751 rx->service_upgrade.from = service_upgrade[0]; 752 rx->service_upgrade.to = service_upgrade[1]; 753 goto success; 754 755 case RXRPC_MANAGE_RESPONSE: 756 ret = -EINVAL; 757 if (optlen != sizeof(unsigned int)) 758 goto error; 759 ret = -EISCONN; 760 if (rx->sk.sk_state != RXRPC_UNBOUND) 761 goto error; 762 ret = copy_safe_from_sockptr(&val, sizeof(val), 763 optval, optlen); 764 if (ret) 765 goto error; 766 ret = -EINVAL; 767 if (val > 1) 768 goto error; 769 if (val) 770 set_bit(RXRPC_SOCK_MANAGE_RESPONSE, &rx->flags); 771 else 772 clear_bit(RXRPC_SOCK_MANAGE_RESPONSE, &rx->flags); 773 goto success; 774 775 default: 776 break; 777 } 778 } 779 780 success: 781 ret = 0; 782 error: 783 release_sock(&rx->sk); 784 return ret; 785 } 786 787 /* 788 * Get socket options. 789 */ 790 static int rxrpc_getsockopt(struct socket *sock, int level, int optname, 791 char __user *optval, int __user *_optlen) 792 { 793 int optlen; 794 795 if (level != SOL_RXRPC) 796 return -EOPNOTSUPP; 797 798 if (get_user(optlen, _optlen)) 799 return -EFAULT; 800 801 switch (optname) { 802 case RXRPC_SUPPORTED_CMSG: 803 if (optlen < sizeof(int)) 804 return -ETOOSMALL; 805 if (put_user(RXRPC__SUPPORTED - 1, (int __user *)optval) || 806 put_user(sizeof(int), _optlen)) 807 return -EFAULT; 808 return 0; 809 810 default: 811 return -EOPNOTSUPP; 812 } 813 } 814 815 /* 816 * permit an RxRPC socket to be polled 817 */ 818 static __poll_t rxrpc_poll(struct file *file, struct socket *sock, 819 poll_table *wait) 820 { 821 struct sock *sk = sock->sk; 822 struct rxrpc_sock *rx = rxrpc_sk(sk); 823 __poll_t mask; 824 825 sock_poll_wait(file, sock, wait); 826 mask = 0; 827 828 /* the socket is readable if there are any messages waiting on the Rx 829 * queue */ 830 if (!list_empty(&rx->recvmsg_q)) 831 mask |= EPOLLIN | EPOLLRDNORM; 832 833 /* the socket is writable if there is space to add new data to the 834 * socket; there is no guarantee that any particular call in progress 835 * on the socket may have space in the Tx ACK window */ 836 if (rxrpc_writable(sk)) 837 mask |= EPOLLOUT | EPOLLWRNORM; 838 839 return mask; 840 } 841 842 /* 843 * create an RxRPC socket 844 */ 845 static int rxrpc_create(struct net *net, struct socket *sock, int protocol, 846 int kern) 847 { 848 struct rxrpc_net *rxnet; 849 struct rxrpc_sock *rx; 850 struct sock *sk; 851 852 _enter("%p,%d", sock, protocol); 853 854 /* we support transport protocol UDP/UDP6 only */ 855 if (protocol != PF_INET && 856 IS_ENABLED(CONFIG_AF_RXRPC_IPV6) && protocol != PF_INET6) 857 return -EPROTONOSUPPORT; 858 859 if (sock->type != SOCK_DGRAM) 860 return -ESOCKTNOSUPPORT; 861 862 sock->ops = &rxrpc_rpc_ops; 863 sock->state = SS_UNCONNECTED; 864 865 sk = sk_alloc(net, PF_RXRPC, GFP_KERNEL, &rxrpc_proto, kern); 866 if (!sk) 867 return -ENOMEM; 868 869 sock_init_data(sock, sk); 870 sock_set_flag(sk, SOCK_RCU_FREE); 871 sk->sk_state = RXRPC_UNBOUND; 872 sk->sk_write_space = rxrpc_write_space; 873 sk->sk_max_ack_backlog = 0; 874 sk->sk_destruct = rxrpc_sock_destructor; 875 876 rx = rxrpc_sk(sk); 877 rx->family = protocol; 878 rx->calls = RB_ROOT; 879 880 spin_lock_init(&rx->incoming_lock); 881 skb_queue_head_init(&rx->recvmsg_oobq); 882 rx->pending_oobq = RB_ROOT; 883 INIT_LIST_HEAD(&rx->sock_calls); 884 INIT_LIST_HEAD(&rx->to_be_accepted); 885 INIT_LIST_HEAD(&rx->recvmsg_q); 886 spin_lock_init(&rx->recvmsg_lock); 887 rwlock_init(&rx->call_lock); 888 memset(&rx->srx, 0, sizeof(rx->srx)); 889 890 rxnet = rxrpc_net(sock_net(&rx->sk)); 891 timer_reduce(&rxnet->peer_keepalive_timer, jiffies + 1); 892 893 _leave(" = 0 [%p]", rx); 894 return 0; 895 } 896 897 /* 898 * Kill all the calls on a socket and shut it down. 899 */ 900 static int rxrpc_shutdown(struct socket *sock, int flags) 901 { 902 struct sock *sk = sock->sk; 903 struct rxrpc_sock *rx = rxrpc_sk(sk); 904 int ret = 0; 905 906 _enter("%p,%d", sk, flags); 907 908 if (flags != SHUT_RDWR) 909 return -EOPNOTSUPP; 910 if (sk->sk_state == RXRPC_CLOSE) 911 return -ESHUTDOWN; 912 913 lock_sock(sk); 914 915 if (sk->sk_state < RXRPC_CLOSE) { 916 spin_lock_irq(&rx->recvmsg_lock); 917 sk->sk_state = RXRPC_CLOSE; 918 sk->sk_shutdown = SHUTDOWN_MASK; 919 spin_unlock_irq(&rx->recvmsg_lock); 920 } else { 921 ret = -ESHUTDOWN; 922 } 923 924 rxrpc_discard_prealloc(rx); 925 926 release_sock(sk); 927 return ret; 928 } 929 930 /* 931 * Purge the out-of-band queue. 932 */ 933 static void rxrpc_purge_oob_queue(struct sock *sk) 934 { 935 struct rxrpc_sock *rx = rxrpc_sk(sk); 936 struct sk_buff *skb; 937 938 while ((skb = skb_dequeue(&rx->recvmsg_oobq))) 939 rxrpc_kernel_free_oob(skb); 940 while (!RB_EMPTY_ROOT(&rx->pending_oobq)) { 941 skb = rb_entry(rx->pending_oobq.rb_node, struct sk_buff, rbnode); 942 rb_erase(&skb->rbnode, &rx->pending_oobq); 943 rxrpc_kernel_free_oob(skb); 944 } 945 } 946 947 /* 948 * RxRPC socket destructor 949 */ 950 static void rxrpc_sock_destructor(struct sock *sk) 951 { 952 _enter("%p", sk); 953 954 rxrpc_purge_oob_queue(sk); 955 rxrpc_purge_queue(&sk->sk_receive_queue); 956 957 WARN_ON(refcount_read(&sk->sk_wmem_alloc)); 958 WARN_ON(!sk_unhashed(sk)); 959 WARN_ON(sk->sk_socket); 960 961 if (!sock_flag(sk, SOCK_DEAD)) { 962 printk("Attempt to release alive rxrpc socket: %p\n", sk); 963 return; 964 } 965 } 966 967 /* 968 * release an RxRPC socket 969 */ 970 static int rxrpc_release_sock(struct sock *sk) 971 { 972 struct rxrpc_sock *rx = rxrpc_sk(sk); 973 974 _enter("%p{%d,%d}", sk, sk->sk_state, refcount_read(&sk->sk_refcnt)); 975 976 /* declare the socket closed for business */ 977 sock_orphan(sk); 978 sk->sk_shutdown = SHUTDOWN_MASK; 979 980 /* We want to kill off all connections from a service socket 981 * as fast as possible because we can't share these; client 982 * sockets, on the other hand, can share an endpoint. 983 */ 984 switch (sk->sk_state) { 985 case RXRPC_SERVER_BOUND: 986 case RXRPC_SERVER_BOUND2: 987 case RXRPC_SERVER_LISTENING: 988 case RXRPC_SERVER_LISTEN_DISABLED: 989 rx->local->service_closed = true; 990 break; 991 } 992 993 spin_lock_irq(&rx->recvmsg_lock); 994 sk->sk_state = RXRPC_CLOSE; 995 spin_unlock_irq(&rx->recvmsg_lock); 996 997 if (rx->local && rx->local->service == rx) { 998 write_lock(&rx->local->services_lock); 999 rx->local->service = NULL; 1000 write_unlock(&rx->local->services_lock); 1001 } 1002 1003 /* try to flush out this socket */ 1004 rxrpc_discard_prealloc(rx); 1005 rxrpc_release_calls_on_socket(rx); 1006 flush_workqueue(rxrpc_workqueue); 1007 rxrpc_purge_oob_queue(sk); 1008 rxrpc_purge_queue(&sk->sk_receive_queue); 1009 1010 rxrpc_unuse_local(rx->local, rxrpc_local_unuse_release_sock); 1011 rxrpc_put_local(rx->local, rxrpc_local_put_release_sock); 1012 rx->local = NULL; 1013 key_put(rx->key); 1014 rx->key = NULL; 1015 key_put(rx->securities); 1016 rx->securities = NULL; 1017 sock_put(sk); 1018 1019 _leave(" = 0"); 1020 return 0; 1021 } 1022 1023 /* 1024 * release an RxRPC BSD socket on close() or equivalent 1025 */ 1026 static int rxrpc_release(struct socket *sock) 1027 { 1028 struct sock *sk = sock->sk; 1029 1030 _enter("%p{%p}", sock, sk); 1031 1032 if (!sk) 1033 return 0; 1034 1035 sock->sk = NULL; 1036 1037 return rxrpc_release_sock(sk); 1038 } 1039 1040 /* 1041 * RxRPC network protocol 1042 */ 1043 static const struct proto_ops rxrpc_rpc_ops = { 1044 .family = PF_RXRPC, 1045 .owner = THIS_MODULE, 1046 .release = rxrpc_release, 1047 .bind = rxrpc_bind, 1048 .connect = rxrpc_connect, 1049 .socketpair = sock_no_socketpair, 1050 .accept = sock_no_accept, 1051 .getname = sock_no_getname, 1052 .poll = rxrpc_poll, 1053 .ioctl = sock_no_ioctl, 1054 .listen = rxrpc_listen, 1055 .shutdown = rxrpc_shutdown, 1056 .setsockopt = rxrpc_setsockopt, 1057 .getsockopt = rxrpc_getsockopt, 1058 .sendmsg = rxrpc_sendmsg, 1059 .recvmsg = rxrpc_recvmsg, 1060 .mmap = sock_no_mmap, 1061 }; 1062 1063 static struct proto rxrpc_proto = { 1064 .name = "RXRPC", 1065 .owner = THIS_MODULE, 1066 .obj_size = sizeof(struct rxrpc_sock), 1067 .max_header = sizeof(struct rxrpc_wire_header), 1068 }; 1069 1070 static const struct net_proto_family rxrpc_family_ops = { 1071 .family = PF_RXRPC, 1072 .create = rxrpc_create, 1073 .owner = THIS_MODULE, 1074 }; 1075 1076 /* 1077 * initialise and register the RxRPC protocol 1078 */ 1079 static int __init af_rxrpc_init(void) 1080 { 1081 int ret = -1; 1082 1083 BUILD_BUG_ON(sizeof(struct rxrpc_skb_priv) > sizeof_field(struct sk_buff, cb)); 1084 1085 ret = -ENOMEM; 1086 rxrpc_gen_version_string(); 1087 rxrpc_call_jar = kmem_cache_create( 1088 "rxrpc_call_jar", sizeof(struct rxrpc_call), 0, 1089 SLAB_HWCACHE_ALIGN, NULL); 1090 if (!rxrpc_call_jar) { 1091 pr_notice("Failed to allocate call jar\n"); 1092 goto error_call_jar; 1093 } 1094 1095 rxrpc_workqueue = alloc_ordered_workqueue("krxrpcd", WQ_HIGHPRI | WQ_MEM_RECLAIM); 1096 if (!rxrpc_workqueue) { 1097 pr_notice("Failed to allocate work queue\n"); 1098 goto error_work_queue; 1099 } 1100 1101 ret = rxrpc_init_security(); 1102 if (ret < 0) { 1103 pr_crit("Cannot initialise security\n"); 1104 goto error_security; 1105 } 1106 1107 ret = register_pernet_device(&rxrpc_net_ops); 1108 if (ret) 1109 goto error_pernet; 1110 1111 ret = proto_register(&rxrpc_proto, 1); 1112 if (ret < 0) { 1113 pr_crit("Cannot register protocol\n"); 1114 goto error_proto; 1115 } 1116 1117 ret = sock_register(&rxrpc_family_ops); 1118 if (ret < 0) { 1119 pr_crit("Cannot register socket family\n"); 1120 goto error_sock; 1121 } 1122 1123 ret = register_key_type(&key_type_rxrpc); 1124 if (ret < 0) { 1125 pr_crit("Cannot register client key type\n"); 1126 goto error_key_type; 1127 } 1128 1129 ret = register_key_type(&key_type_rxrpc_s); 1130 if (ret < 0) { 1131 pr_crit("Cannot register server key type\n"); 1132 goto error_key_type_s; 1133 } 1134 1135 ret = rxrpc_sysctl_init(); 1136 if (ret < 0) { 1137 pr_crit("Cannot register sysctls\n"); 1138 goto error_sysctls; 1139 } 1140 1141 return 0; 1142 1143 error_sysctls: 1144 unregister_key_type(&key_type_rxrpc_s); 1145 error_key_type_s: 1146 unregister_key_type(&key_type_rxrpc); 1147 error_key_type: 1148 sock_unregister(PF_RXRPC); 1149 error_sock: 1150 proto_unregister(&rxrpc_proto); 1151 error_proto: 1152 unregister_pernet_device(&rxrpc_net_ops); 1153 error_pernet: 1154 rxrpc_exit_security(); 1155 error_security: 1156 destroy_workqueue(rxrpc_workqueue); 1157 error_work_queue: 1158 kmem_cache_destroy(rxrpc_call_jar); 1159 error_call_jar: 1160 return ret; 1161 } 1162 1163 /* 1164 * unregister the RxRPC protocol 1165 */ 1166 static void __exit af_rxrpc_exit(void) 1167 { 1168 _enter(""); 1169 rxrpc_sysctl_exit(); 1170 unregister_key_type(&key_type_rxrpc_s); 1171 unregister_key_type(&key_type_rxrpc); 1172 sock_unregister(PF_RXRPC); 1173 proto_unregister(&rxrpc_proto); 1174 unregister_pernet_device(&rxrpc_net_ops); 1175 ASSERTCMP(atomic_read(&rxrpc_n_rx_skbs), ==, 0); 1176 1177 /* Make sure the local and peer records pinned by any dying connections 1178 * are released. 1179 */ 1180 rcu_barrier(); 1181 1182 destroy_workqueue(rxrpc_workqueue); 1183 rxrpc_exit_security(); 1184 kmem_cache_destroy(rxrpc_call_jar); 1185 _leave(""); 1186 } 1187 1188 module_init(af_rxrpc_init); 1189 module_exit(af_rxrpc_exit); 1190