1 /* 2 * Copyright (c) 2006, 2019 Oracle and/or its affiliates. All rights reserved. 3 * 4 * This software is available to you under a choice of one of two 5 * licenses. You may choose to be licensed under the terms of the GNU 6 * General Public License (GPL) Version 2, available from the file 7 * COPYING in the main directory of this source tree, or the 8 * OpenIB.org BSD license below: 9 * 10 * Redistribution and use in source and binary forms, with or 11 * without modification, are permitted provided that the following 12 * conditions are met: 13 * 14 * - Redistributions of source code must retain the above 15 * copyright notice, this list of conditions and the following 16 * disclaimer. 17 * 18 * - Redistributions in binary form must reproduce the above 19 * copyright notice, this list of conditions and the following 20 * disclaimer in the documentation and/or other materials 21 * provided with the distribution. 22 * 23 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, 24 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF 25 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND 26 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS 27 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN 28 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN 29 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE 30 * SOFTWARE. 31 * 32 */ 33 #include <linux/kernel.h> 34 #include <linux/in.h> 35 #include <linux/if.h> 36 #include <linux/netdevice.h> 37 #include <linux/inetdevice.h> 38 #include <linux/if_arp.h> 39 #include <linux/delay.h> 40 #include <linux/slab.h> 41 #include <linux/module.h> 42 #include <net/addrconf.h> 43 44 #include "rds_single_path.h" 45 #include "rds.h" 46 #include "ib.h" 47 #include "ib_mr.h" 48 49 static unsigned int rds_ib_mr_1m_pool_size = RDS_MR_1M_POOL_SIZE; 50 static unsigned int rds_ib_mr_8k_pool_size = RDS_MR_8K_POOL_SIZE; 51 unsigned int rds_ib_retry_count = RDS_IB_DEFAULT_RETRY_COUNT; 52 static atomic_t rds_ib_unloading; 53 54 module_param(rds_ib_mr_1m_pool_size, int, 0444); 55 MODULE_PARM_DESC(rds_ib_mr_1m_pool_size, " Max number of 1M mr per HCA"); 56 module_param(rds_ib_mr_8k_pool_size, int, 0444); 57 MODULE_PARM_DESC(rds_ib_mr_8k_pool_size, " Max number of 8K mr per HCA"); 58 module_param(rds_ib_retry_count, int, 0444); 59 MODULE_PARM_DESC(rds_ib_retry_count, " Number of hw retries before reporting an error"); 60 61 /* 62 * we have a clumsy combination of RCU and a rwsem protecting this list 63 * because it is used both in the get_mr fast path and while blocking in 64 * the FMR flushing path. 65 */ 66 DECLARE_RWSEM(rds_ib_devices_lock); 67 struct list_head rds_ib_devices; 68 69 /* NOTE: if also grabbing ibdev lock, grab this first */ 70 DEFINE_SPINLOCK(ib_nodev_conns_lock); 71 LIST_HEAD(ib_nodev_conns); 72 73 static void rds_ib_nodev_connect(void) 74 { 75 struct rds_ib_connection *ic; 76 77 spin_lock(&ib_nodev_conns_lock); 78 list_for_each_entry(ic, &ib_nodev_conns, ib_node) 79 rds_conn_connect_if_down(ic->conn); 80 spin_unlock(&ib_nodev_conns_lock); 81 } 82 83 static void rds_ib_dev_shutdown(struct rds_ib_device *rds_ibdev) 84 { 85 struct rds_ib_connection *ic; 86 unsigned long flags; 87 88 spin_lock_irqsave(&rds_ibdev->spinlock, flags); 89 list_for_each_entry(ic, &rds_ibdev->conn_list, ib_node) 90 rds_conn_path_drop(&ic->conn->c_path[0], true); 91 spin_unlock_irqrestore(&rds_ibdev->spinlock, flags); 92 } 93 94 /* 95 * rds_ib_destroy_mr_pool() blocks on a few things and mrs drop references 96 * from interrupt context so we push freing off into a work struct in krdsd. 97 */ 98 static void rds_ib_dev_free(struct work_struct *work) 99 { 100 struct rds_ib_ipaddr *i_ipaddr, *i_next; 101 struct rds_ib_device *rds_ibdev = container_of(work, 102 struct rds_ib_device, free_work); 103 104 if (rds_ibdev->mr_8k_pool) 105 rds_ib_destroy_mr_pool(rds_ibdev->mr_8k_pool); 106 if (rds_ibdev->mr_1m_pool) 107 rds_ib_destroy_mr_pool(rds_ibdev->mr_1m_pool); 108 if (rds_ibdev->pd) 109 ib_dealloc_pd(rds_ibdev->pd); 110 111 list_for_each_entry_safe(i_ipaddr, i_next, &rds_ibdev->ipaddr_list, list) { 112 list_del(&i_ipaddr->list); 113 kfree(i_ipaddr); 114 } 115 116 kfree(rds_ibdev->vector_load); 117 118 kfree(rds_ibdev); 119 } 120 121 void rds_ib_dev_put(struct rds_ib_device *rds_ibdev) 122 { 123 BUG_ON(refcount_read(&rds_ibdev->refcount) == 0); 124 if (refcount_dec_and_test(&rds_ibdev->refcount)) 125 queue_work(rds_wq, &rds_ibdev->free_work); 126 } 127 128 static int rds_ib_add_one(struct ib_device *device) 129 { 130 struct rds_ib_device *rds_ibdev; 131 int ret; 132 133 /* Only handle IB (no iWARP) devices */ 134 if (device->node_type != RDMA_NODE_IB_CA) 135 return -EOPNOTSUPP; 136 137 /* Device must support FRWR */ 138 if (!(device->attrs.device_cap_flags & IB_DEVICE_MEM_MGT_EXTENSIONS)) 139 return -EOPNOTSUPP; 140 141 rds_ibdev = kzalloc_node(sizeof(struct rds_ib_device), GFP_KERNEL, 142 ibdev_to_node(device)); 143 if (!rds_ibdev) 144 return -ENOMEM; 145 146 spin_lock_init(&rds_ibdev->spinlock); 147 refcount_set(&rds_ibdev->refcount, 1); 148 INIT_WORK(&rds_ibdev->free_work, rds_ib_dev_free); 149 150 INIT_LIST_HEAD(&rds_ibdev->ipaddr_list); 151 INIT_LIST_HEAD(&rds_ibdev->conn_list); 152 153 rds_ibdev->max_wrs = device->attrs.max_qp_wr; 154 rds_ibdev->max_sge = min(device->attrs.max_send_sge, RDS_IB_MAX_SGE); 155 156 rds_ibdev->odp_capable = 157 !!(device->attrs.kernel_cap_flags & 158 IBK_ON_DEMAND_PAGING) && 159 !!(device->attrs.odp_caps.per_transport_caps.rc_odp_caps & 160 IB_ODP_SUPPORT_WRITE) && 161 !!(device->attrs.odp_caps.per_transport_caps.rc_odp_caps & 162 IB_ODP_SUPPORT_READ); 163 164 rds_ibdev->max_1m_mrs = device->attrs.max_mr ? 165 min_t(unsigned int, (device->attrs.max_mr / 2), 166 rds_ib_mr_1m_pool_size) : rds_ib_mr_1m_pool_size; 167 168 rds_ibdev->max_8k_mrs = device->attrs.max_mr ? 169 min_t(unsigned int, ((device->attrs.max_mr / 2) * RDS_MR_8K_SCALE), 170 rds_ib_mr_8k_pool_size) : rds_ib_mr_8k_pool_size; 171 172 rds_ibdev->max_initiator_depth = device->attrs.max_qp_init_rd_atom; 173 rds_ibdev->max_responder_resources = device->attrs.max_qp_rd_atom; 174 175 rds_ibdev->vector_load = kzalloc_objs(int, device->num_comp_vectors, 176 GFP_KERNEL); 177 if (!rds_ibdev->vector_load) { 178 pr_err("RDS/IB: %s failed to allocate vector memory\n", 179 __func__); 180 ret = -ENOMEM; 181 goto put_dev; 182 } 183 184 rds_ibdev->dev = device; 185 rds_ibdev->pd = ib_alloc_pd(device, 0); 186 if (IS_ERR(rds_ibdev->pd)) { 187 ret = PTR_ERR(rds_ibdev->pd); 188 rds_ibdev->pd = NULL; 189 goto put_dev; 190 } 191 192 rds_ibdev->mr_1m_pool = 193 rds_ib_create_mr_pool(rds_ibdev, RDS_IB_MR_1M_POOL); 194 if (IS_ERR(rds_ibdev->mr_1m_pool)) { 195 ret = PTR_ERR(rds_ibdev->mr_1m_pool); 196 rds_ibdev->mr_1m_pool = NULL; 197 goto put_dev; 198 } 199 200 rds_ibdev->mr_8k_pool = 201 rds_ib_create_mr_pool(rds_ibdev, RDS_IB_MR_8K_POOL); 202 if (IS_ERR(rds_ibdev->mr_8k_pool)) { 203 ret = PTR_ERR(rds_ibdev->mr_8k_pool); 204 rds_ibdev->mr_8k_pool = NULL; 205 goto put_dev; 206 } 207 208 rdsdebug("RDS/IB: max_mr = %d, max_wrs = %d, max_sge = %d, max_1m_mrs = %d, max_8k_mrs = %d\n", 209 device->attrs.max_mr, rds_ibdev->max_wrs, rds_ibdev->max_sge, 210 rds_ibdev->max_1m_mrs, rds_ibdev->max_8k_mrs); 211 212 pr_info("RDS/IB: %s: added\n", device->name); 213 214 down_write(&rds_ib_devices_lock); 215 list_add_tail_rcu(&rds_ibdev->list, &rds_ib_devices); 216 up_write(&rds_ib_devices_lock); 217 refcount_inc(&rds_ibdev->refcount); 218 219 ib_set_client_data(device, &rds_ib_client, rds_ibdev); 220 221 rds_ib_nodev_connect(); 222 return 0; 223 224 put_dev: 225 rds_ib_dev_put(rds_ibdev); 226 return ret; 227 } 228 229 /* 230 * New connections use this to find the device to associate with the 231 * connection. It's not in the fast path so we're not concerned about the 232 * performance of the IB call. (As of this writing, it uses an interrupt 233 * blocking spinlock to serialize walking a per-device list of all registered 234 * clients.) 235 * 236 * RCU is used to handle incoming connections racing with device teardown. 237 * Rather than use a lock to serialize removal from the client_data and 238 * getting a new reference, we use an RCU grace period. The destruction 239 * path removes the device from client_data and then waits for all RCU 240 * readers to finish. 241 * 242 * A new connection can get NULL from this if its arriving on a 243 * device that is in the process of being removed. 244 */ 245 struct rds_ib_device *rds_ib_get_client_data(struct ib_device *device) 246 { 247 struct rds_ib_device *rds_ibdev; 248 249 rcu_read_lock(); 250 rds_ibdev = ib_get_client_data(device, &rds_ib_client); 251 if (rds_ibdev) 252 refcount_inc(&rds_ibdev->refcount); 253 rcu_read_unlock(); 254 return rds_ibdev; 255 } 256 257 /* 258 * The IB stack is letting us know that a device is going away. This can 259 * happen if the underlying HCA driver is removed or if PCI hotplug is removing 260 * the pci function, for example. 261 * 262 * This can be called at any time and can be racing with any other RDS path. 263 */ 264 static void rds_ib_remove_one(struct ib_device *device, void *client_data) 265 { 266 struct rds_ib_device *rds_ibdev = client_data; 267 268 rds_ib_dev_shutdown(rds_ibdev); 269 270 /* stop connection attempts from getting a reference to this device. */ 271 ib_set_client_data(device, &rds_ib_client, NULL); 272 273 down_write(&rds_ib_devices_lock); 274 list_del_rcu(&rds_ibdev->list); 275 up_write(&rds_ib_devices_lock); 276 277 /* 278 * This synchronize rcu is waiting for readers of both the ib 279 * client data and the devices list to finish before we drop 280 * both of those references. 281 */ 282 synchronize_rcu(); 283 rds_ib_dev_put(rds_ibdev); 284 rds_ib_dev_put(rds_ibdev); 285 } 286 287 struct ib_client rds_ib_client = { 288 .name = "rds_ib", 289 .add = rds_ib_add_one, 290 .remove = rds_ib_remove_one 291 }; 292 293 static int rds_ib_conn_info_visitor(struct rds_connection *conn, 294 void *buffer) 295 { 296 struct rds_info_rdma_connection *iinfo = buffer; 297 struct rds_ib_connection *ic = conn->c_transport_data; 298 299 /* We will only ever look at IB transports */ 300 if (conn->c_trans != &rds_ib_transport) 301 return 0; 302 if (conn->c_isv6) 303 return 0; 304 305 iinfo->src_addr = conn->c_laddr.s6_addr32[3]; 306 iinfo->dst_addr = conn->c_faddr.s6_addr32[3]; 307 if (ic) { 308 iinfo->tos = conn->c_tos; 309 iinfo->sl = ic->i_sl; 310 } 311 312 memset(&iinfo->src_gid, 0, sizeof(iinfo->src_gid)); 313 memset(&iinfo->dst_gid, 0, sizeof(iinfo->dst_gid)); 314 if (rds_conn_state(conn) == RDS_CONN_UP) { 315 struct rds_ib_device *rds_ibdev; 316 317 rdma_read_gids(ic->i_cm_id, (union ib_gid *)&iinfo->src_gid, 318 (union ib_gid *)&iinfo->dst_gid); 319 320 rds_ibdev = ic->rds_ibdev; 321 iinfo->max_send_wr = ic->i_send_ring.w_nr; 322 iinfo->max_recv_wr = ic->i_recv_ring.w_nr; 323 iinfo->max_send_sge = rds_ibdev->max_sge; 324 rds_ib_get_mr_info(rds_ibdev, iinfo); 325 iinfo->cache_allocs = atomic_read(&ic->i_cache_allocs); 326 } 327 return 1; 328 } 329 330 #if IS_ENABLED(CONFIG_IPV6) 331 /* IPv6 version of rds_ib_conn_info_visitor(). */ 332 static int rds6_ib_conn_info_visitor(struct rds_connection *conn, 333 void *buffer) 334 { 335 struct rds6_info_rdma_connection *iinfo6 = buffer; 336 struct rds_ib_connection *ic = conn->c_transport_data; 337 338 /* We will only ever look at IB transports */ 339 if (conn->c_trans != &rds_ib_transport) 340 return 0; 341 342 iinfo6->src_addr = conn->c_laddr; 343 iinfo6->dst_addr = conn->c_faddr; 344 if (ic) { 345 iinfo6->tos = conn->c_tos; 346 iinfo6->sl = ic->i_sl; 347 } 348 349 memset(&iinfo6->src_gid, 0, sizeof(iinfo6->src_gid)); 350 memset(&iinfo6->dst_gid, 0, sizeof(iinfo6->dst_gid)); 351 352 if (rds_conn_state(conn) == RDS_CONN_UP) { 353 struct rds_ib_device *rds_ibdev; 354 355 rdma_read_gids(ic->i_cm_id, (union ib_gid *)&iinfo6->src_gid, 356 (union ib_gid *)&iinfo6->dst_gid); 357 rds_ibdev = ic->rds_ibdev; 358 iinfo6->max_send_wr = ic->i_send_ring.w_nr; 359 iinfo6->max_recv_wr = ic->i_recv_ring.w_nr; 360 iinfo6->max_send_sge = rds_ibdev->max_sge; 361 rds6_ib_get_mr_info(rds_ibdev, iinfo6); 362 iinfo6->cache_allocs = atomic_read(&ic->i_cache_allocs); 363 } 364 return 1; 365 } 366 #endif 367 368 static void rds_ib_ic_info(struct socket *sock, unsigned int len, 369 struct rds_info_iterator *iter, 370 struct rds_info_lengths *lens) 371 { 372 u64 buffer[(sizeof(struct rds_info_rdma_connection) + 7) / 8]; 373 374 rds_for_each_conn_info(sock, len, iter, lens, 375 rds_ib_conn_info_visitor, 376 buffer, 377 sizeof(struct rds_info_rdma_connection)); 378 } 379 380 #if IS_ENABLED(CONFIG_IPV6) 381 /* IPv6 version of rds_ib_ic_info(). */ 382 static void rds6_ib_ic_info(struct socket *sock, unsigned int len, 383 struct rds_info_iterator *iter, 384 struct rds_info_lengths *lens) 385 { 386 u64 buffer[(sizeof(struct rds6_info_rdma_connection) + 7) / 8]; 387 388 rds_for_each_conn_info(sock, len, iter, lens, 389 rds6_ib_conn_info_visitor, 390 buffer, 391 sizeof(struct rds6_info_rdma_connection)); 392 } 393 #endif 394 395 /* 396 * Early RDS/IB was built to only bind to an address if there is an IPoIB 397 * device with that address set. 398 * 399 * If it were me, I'd advocate for something more flexible. Sending and 400 * receiving should be device-agnostic. Transports would try and maintain 401 * connections between peers who have messages queued. Userspace would be 402 * allowed to influence which paths have priority. We could call userspace 403 * asserting this policy "routing". 404 */ 405 static int rds_ib_laddr_check(struct net *net, const struct in6_addr *addr, 406 __u32 scope_id) 407 { 408 int ret; 409 struct rdma_cm_id *cm_id; 410 #if IS_ENABLED(CONFIG_IPV6) 411 struct sockaddr_in6 sin6; 412 #endif 413 struct sockaddr_in sin; 414 struct sockaddr *sa; 415 bool isv4; 416 417 isv4 = ipv6_addr_v4mapped(addr); 418 /* Create a CMA ID and try to bind it. This catches both 419 * IB and iWARP capable NICs. 420 */ 421 cm_id = rdma_create_id(&init_net, rds_rdma_cm_event_handler, 422 NULL, RDMA_PS_TCP, IB_QPT_RC); 423 if (IS_ERR(cm_id)) 424 return PTR_ERR(cm_id); 425 426 if (isv4) { 427 memset(&sin, 0, sizeof(sin)); 428 sin.sin_family = AF_INET; 429 sin.sin_addr.s_addr = addr->s6_addr32[3]; 430 sa = (struct sockaddr *)&sin; 431 } else { 432 #if IS_ENABLED(CONFIG_IPV6) 433 memset(&sin6, 0, sizeof(sin6)); 434 sin6.sin6_family = AF_INET6; 435 sin6.sin6_addr = *addr; 436 sin6.sin6_scope_id = scope_id; 437 sa = (struct sockaddr *)&sin6; 438 439 /* XXX Do a special IPv6 link local address check here. The 440 * reason is that rdma_bind_addr() always succeeds with IPv6 441 * link local address regardless it is indeed configured in a 442 * system. 443 */ 444 if (ipv6_addr_type(addr) & IPV6_ADDR_LINKLOCAL) { 445 struct net_device *dev; 446 447 if (scope_id == 0) { 448 ret = -EADDRNOTAVAIL; 449 goto out; 450 } 451 452 /* Use init_net for now as RDS is not network 453 * name space aware. 454 */ 455 dev = dev_get_by_index(&init_net, scope_id); 456 if (!dev) { 457 ret = -EADDRNOTAVAIL; 458 goto out; 459 } 460 if (!ipv6_chk_addr(&init_net, addr, dev, 1)) { 461 dev_put(dev); 462 ret = -EADDRNOTAVAIL; 463 goto out; 464 } 465 dev_put(dev); 466 } 467 #else 468 ret = -EADDRNOTAVAIL; 469 goto out; 470 #endif 471 } 472 473 /* rdma_bind_addr will only succeed for IB & iWARP devices */ 474 ret = rdma_bind_addr(cm_id, sa); 475 /* due to this, we will claim to support iWARP devices unless we 476 check node_type. */ 477 if (ret || !cm_id->device || 478 cm_id->device->node_type != RDMA_NODE_IB_CA) 479 ret = -EADDRNOTAVAIL; 480 481 rdsdebug("addr %pI6c%%%u ret %d node type %d\n", 482 addr, scope_id, ret, 483 cm_id->device ? cm_id->device->node_type : -1); 484 485 out: 486 rdma_destroy_id(cm_id); 487 488 return ret; 489 } 490 491 static void rds_ib_unregister_client(void) 492 { 493 ib_unregister_client(&rds_ib_client); 494 /* wait for rds_ib_dev_free() to complete */ 495 flush_workqueue(rds_wq); 496 } 497 498 static void rds_ib_set_unloading(void) 499 { 500 atomic_set(&rds_ib_unloading, 1); 501 } 502 503 static bool rds_ib_is_unloading(struct rds_connection *conn) 504 { 505 struct rds_conn_path *cp = &conn->c_path[0]; 506 507 return (test_bit(RDS_DESTROY_PENDING, &cp->cp_flags) || 508 atomic_read(&rds_ib_unloading) != 0); 509 } 510 511 void rds_ib_exit(void) 512 { 513 rds_ib_set_unloading(); 514 synchronize_rcu(); 515 rds_info_deregister_func(RDS_INFO_IB_CONNECTIONS, rds_ib_ic_info); 516 #if IS_ENABLED(CONFIG_IPV6) 517 rds_info_deregister_func(RDS6_INFO_IB_CONNECTIONS, rds6_ib_ic_info); 518 #endif 519 rds_ib_unregister_client(); 520 rds_ib_destroy_nodev_conns(); 521 rds_ib_sysctl_exit(); 522 rds_ib_recv_exit(); 523 rds_trans_unregister(&rds_ib_transport); 524 rds_ib_mr_exit(); 525 } 526 527 static u8 rds_ib_get_tos_map(u8 tos) 528 { 529 /* 1:1 user to transport map for RDMA transport. 530 * In future, if custom map is desired, hook can export 531 * user configurable map. 532 */ 533 return tos; 534 } 535 536 struct rds_transport rds_ib_transport = { 537 .laddr_check = rds_ib_laddr_check, 538 .xmit_path_complete = rds_ib_xmit_path_complete, 539 .xmit = rds_ib_xmit, 540 .xmit_rdma = rds_ib_xmit_rdma, 541 .xmit_atomic = rds_ib_xmit_atomic, 542 .recv_path = rds_ib_recv_path, 543 .conn_alloc = rds_ib_conn_alloc, 544 .conn_free = rds_ib_conn_free, 545 .conn_path_connect = rds_ib_conn_path_connect, 546 .conn_path_shutdown = rds_ib_conn_path_shutdown, 547 .inc_copy_to_user = rds_ib_inc_copy_to_user, 548 .inc_free = rds_ib_inc_free, 549 .cm_initiate_connect = rds_ib_cm_initiate_connect, 550 .cm_handle_connect = rds_ib_cm_handle_connect, 551 .cm_connect_complete = rds_ib_cm_connect_complete, 552 .stats_info_copy = rds_ib_stats_info_copy, 553 .exit = rds_ib_exit, 554 .get_mr = rds_ib_get_mr, 555 .sync_mr = rds_ib_sync_mr, 556 .free_mr = rds_ib_free_mr, 557 .flush_mrs = rds_ib_flush_mrs, 558 .get_tos_map = rds_ib_get_tos_map, 559 .t_owner = THIS_MODULE, 560 .t_name = "infiniband", 561 .t_unloading = rds_ib_is_unloading, 562 .t_type = RDS_TRANS_IB 563 }; 564 565 int rds_ib_init(void) 566 { 567 int ret; 568 569 INIT_LIST_HEAD(&rds_ib_devices); 570 571 ret = rds_ib_mr_init(); 572 if (ret) 573 goto out; 574 575 ret = ib_register_client(&rds_ib_client); 576 if (ret) 577 goto out_mr_exit; 578 579 ret = rds_ib_sysctl_init(); 580 if (ret) 581 goto out_ibreg; 582 583 ret = rds_ib_recv_init(); 584 if (ret) 585 goto out_sysctl; 586 587 rds_trans_register(&rds_ib_transport); 588 589 rds_info_register_func(RDS_INFO_IB_CONNECTIONS, rds_ib_ic_info); 590 #if IS_ENABLED(CONFIG_IPV6) 591 rds_info_register_func(RDS6_INFO_IB_CONNECTIONS, rds6_ib_ic_info); 592 #endif 593 594 goto out; 595 596 out_sysctl: 597 rds_ib_sysctl_exit(); 598 out_ibreg: 599 rds_ib_unregister_client(); 600 out_mr_exit: 601 rds_ib_mr_exit(); 602 out: 603 return ret; 604 } 605 606 MODULE_LICENSE("GPL"); 607