1 /*- 2 * BSD LICENSE 3 * 4 * Copyright (c) Intel Corporation. All rights reserved. 5 * Copyright (c) 2019-2021 Mellanox Technologies LTD. All rights reserved. 6 * 7 * Redistribution and use in source and binary forms, with or without 8 * modification, are permitted provided that the following conditions 9 * are met: 10 * 11 * * Redistributions of source code must retain the above copyright 12 * notice, this list of conditions and the following disclaimer. 13 * * Redistributions in binary form must reproduce the above copyright 14 * notice, this list of conditions and the following disclaimer in 15 * the documentation and/or other materials provided with the 16 * distribution. 17 * * Neither the name of Intel Corporation nor the names of its 18 * contributors may be used to endorse or promote products derived 19 * from this software without specific prior written permission. 20 * 21 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 22 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 23 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR 24 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT 25 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 26 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT 27 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 28 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 29 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 30 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE 31 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 32 */ 33 34 /* 35 * NVMe over RDMA transport 36 */ 37 38 #include "spdk/stdinc.h" 39 40 #include "spdk/assert.h" 41 #include "spdk/log.h" 42 #include "spdk/trace.h" 43 #include "spdk/queue.h" 44 #include "spdk/nvme.h" 45 #include "spdk/nvmf_spec.h" 46 #include "spdk/string.h" 47 #include "spdk/endian.h" 48 #include "spdk/likely.h" 49 #include "spdk/config.h" 50 51 #include "nvme_internal.h" 52 #include "spdk_internal/rdma.h" 53 54 #define NVME_RDMA_TIME_OUT_IN_MS 2000 55 #define NVME_RDMA_RW_BUFFER_SIZE 131072 56 57 /* 58 * NVME RDMA qpair Resource Defaults 59 */ 60 #define NVME_RDMA_DEFAULT_TX_SGE 2 61 #define NVME_RDMA_DEFAULT_RX_SGE 1 62 63 /* Max number of NVMe-oF SGL descriptors supported by the host */ 64 #define NVME_RDMA_MAX_SGL_DESCRIPTORS 16 65 66 /* number of STAILQ entries for holding pending RDMA CM events. */ 67 #define NVME_RDMA_NUM_CM_EVENTS 256 68 69 /* CM event processing timeout */ 70 #define NVME_RDMA_QPAIR_CM_EVENT_TIMEOUT_US 1000000 71 72 /* The default size for a shared rdma completion queue. */ 73 #define DEFAULT_NVME_RDMA_CQ_SIZE 4096 74 75 /* 76 * In the special case of a stale connection we don't expose a mechanism 77 * for the user to retry the connection so we need to handle it internally. 78 */ 79 #define NVME_RDMA_STALE_CONN_RETRY_MAX 5 80 #define NVME_RDMA_STALE_CONN_RETRY_DELAY_US 10000 81 82 /* 83 * Maximum value of transport_retry_count used by RDMA controller 84 */ 85 #define NVME_RDMA_CTRLR_MAX_TRANSPORT_RETRY_COUNT 7 86 87 /* 88 * Maximum value of transport_ack_timeout used by RDMA controller 89 */ 90 #define NVME_RDMA_CTRLR_MAX_TRANSPORT_ACK_TIMEOUT 31 91 92 /* 93 * Number of poller cycles to keep a pointer to destroyed qpairs 94 * in the poll group. 95 */ 96 #define NVME_RDMA_DESTROYED_QPAIR_EXPIRATION_CYCLES 50 97 98 /* 99 * The max length of keyed SGL data block (3 bytes) 100 */ 101 #define NVME_RDMA_MAX_KEYED_SGL_LENGTH ((1u << 24u) - 1) 102 103 #define WC_PER_QPAIR(queue_depth) (queue_depth * 2) 104 105 enum nvme_rdma_wr_type { 106 RDMA_WR_TYPE_RECV, 107 RDMA_WR_TYPE_SEND, 108 }; 109 110 struct nvme_rdma_wr { 111 /* Using this instead of the enum allows this struct to only occupy one byte. */ 112 uint8_t type; 113 }; 114 115 struct spdk_nvmf_cmd { 116 struct spdk_nvme_cmd cmd; 117 struct spdk_nvme_sgl_descriptor sgl[NVME_RDMA_MAX_SGL_DESCRIPTORS]; 118 }; 119 120 struct spdk_nvme_rdma_hooks g_nvme_hooks = {}; 121 122 /* STAILQ wrapper for cm events. */ 123 struct nvme_rdma_cm_event_entry { 124 struct rdma_cm_event *evt; 125 STAILQ_ENTRY(nvme_rdma_cm_event_entry) link; 126 }; 127 128 /* NVMe RDMA transport extensions for spdk_nvme_ctrlr */ 129 struct nvme_rdma_ctrlr { 130 struct spdk_nvme_ctrlr ctrlr; 131 132 struct ibv_pd *pd; 133 134 uint16_t max_sge; 135 136 struct rdma_event_channel *cm_channel; 137 138 STAILQ_HEAD(, nvme_rdma_cm_event_entry) pending_cm_events; 139 140 STAILQ_HEAD(, nvme_rdma_cm_event_entry) free_cm_events; 141 142 struct nvme_rdma_cm_event_entry *cm_events; 143 }; 144 145 struct nvme_rdma_destroyed_qpair { 146 struct nvme_rdma_qpair *destroyed_qpair_tracker; 147 uint32_t completed_cycles; 148 STAILQ_ENTRY(nvme_rdma_destroyed_qpair) link; 149 }; 150 151 struct nvme_rdma_poller_stats { 152 uint64_t polls; 153 uint64_t idle_polls; 154 uint64_t queued_requests; 155 uint64_t completions; 156 struct spdk_rdma_qp_stats rdma_stats; 157 }; 158 159 struct nvme_rdma_poller { 160 struct ibv_context *device; 161 struct ibv_cq *cq; 162 int required_num_wc; 163 int current_num_wc; 164 struct nvme_rdma_poller_stats stats; 165 STAILQ_ENTRY(nvme_rdma_poller) link; 166 }; 167 168 struct nvme_rdma_poll_group { 169 struct spdk_nvme_transport_poll_group group; 170 STAILQ_HEAD(, nvme_rdma_poller) pollers; 171 uint32_t num_pollers; 172 STAILQ_HEAD(, nvme_rdma_destroyed_qpair) destroyed_qpairs; 173 }; 174 175 /* Memory regions */ 176 union nvme_rdma_mr { 177 struct ibv_mr *mr; 178 uint64_t key; 179 }; 180 181 /* NVMe RDMA qpair extensions for spdk_nvme_qpair */ 182 struct nvme_rdma_qpair { 183 struct spdk_nvme_qpair qpair; 184 185 struct spdk_rdma_qp *rdma_qp; 186 struct rdma_cm_id *cm_id; 187 struct ibv_cq *cq; 188 189 struct spdk_nvme_rdma_req *rdma_reqs; 190 191 uint32_t max_send_sge; 192 193 uint32_t max_recv_sge; 194 195 uint16_t num_entries; 196 197 bool delay_cmd_submit; 198 199 bool poll_group_disconnect_in_progress; 200 201 uint32_t num_completions; 202 203 /* Parallel arrays of response buffers + response SGLs of size num_entries */ 204 struct ibv_sge *rsp_sgls; 205 struct spdk_nvme_rdma_rsp *rsps; 206 207 struct ibv_recv_wr *rsp_recv_wrs; 208 209 /* Memory region describing all rsps for this qpair */ 210 union nvme_rdma_mr rsp_mr; 211 212 /* 213 * Array of num_entries NVMe commands registered as RDMA message buffers. 214 * Indexed by rdma_req->id. 215 */ 216 struct spdk_nvmf_cmd *cmds; 217 218 /* Memory region describing all cmds for this qpair */ 219 union nvme_rdma_mr cmd_mr; 220 221 struct spdk_rdma_mem_map *mr_map; 222 223 TAILQ_HEAD(, spdk_nvme_rdma_req) free_reqs; 224 TAILQ_HEAD(, spdk_nvme_rdma_req) outstanding_reqs; 225 226 /* Counts of outstanding send and recv objects */ 227 uint16_t current_num_recvs; 228 uint16_t current_num_sends; 229 230 /* Placed at the end of the struct since it is not used frequently */ 231 struct rdma_cm_event *evt; 232 struct nvme_rdma_poller *poller; 233 234 /* Used by poll group to keep the qpair around until it is ready to remove it. */ 235 bool defer_deletion_to_pg; 236 }; 237 238 enum NVME_RDMA_COMPLETION_FLAGS { 239 NVME_RDMA_SEND_COMPLETED = 1u << 0, 240 NVME_RDMA_RECV_COMPLETED = 1u << 1, 241 }; 242 243 struct spdk_nvme_rdma_req { 244 uint16_t id; 245 uint16_t completion_flags: 2; 246 uint16_t reserved: 14; 247 /* if completion of RDMA_RECV received before RDMA_SEND, we will complete nvme request 248 * during processing of RDMA_SEND. To complete the request we must know the index 249 * of nvme_cpl received in RDMA_RECV, so store it in this field */ 250 uint16_t rsp_idx; 251 252 struct nvme_rdma_wr rdma_wr; 253 254 struct ibv_send_wr send_wr; 255 256 struct nvme_request *req; 257 258 struct ibv_sge send_sgl[NVME_RDMA_DEFAULT_TX_SGE]; 259 260 TAILQ_ENTRY(spdk_nvme_rdma_req) link; 261 }; 262 263 struct spdk_nvme_rdma_rsp { 264 struct spdk_nvme_cpl cpl; 265 struct nvme_rdma_qpair *rqpair; 266 uint16_t idx; 267 struct nvme_rdma_wr rdma_wr; 268 }; 269 270 static const char *rdma_cm_event_str[] = { 271 "RDMA_CM_EVENT_ADDR_RESOLVED", 272 "RDMA_CM_EVENT_ADDR_ERROR", 273 "RDMA_CM_EVENT_ROUTE_RESOLVED", 274 "RDMA_CM_EVENT_ROUTE_ERROR", 275 "RDMA_CM_EVENT_CONNECT_REQUEST", 276 "RDMA_CM_EVENT_CONNECT_RESPONSE", 277 "RDMA_CM_EVENT_CONNECT_ERROR", 278 "RDMA_CM_EVENT_UNREACHABLE", 279 "RDMA_CM_EVENT_REJECTED", 280 "RDMA_CM_EVENT_ESTABLISHED", 281 "RDMA_CM_EVENT_DISCONNECTED", 282 "RDMA_CM_EVENT_DEVICE_REMOVAL", 283 "RDMA_CM_EVENT_MULTICAST_JOIN", 284 "RDMA_CM_EVENT_MULTICAST_ERROR", 285 "RDMA_CM_EVENT_ADDR_CHANGE", 286 "RDMA_CM_EVENT_TIMEWAIT_EXIT" 287 }; 288 289 struct nvme_rdma_qpair *nvme_rdma_poll_group_get_qpair_by_id(struct nvme_rdma_poll_group *group, 290 uint32_t qp_num); 291 292 static inline void * 293 nvme_rdma_calloc(size_t nmemb, size_t size) 294 { 295 if (!nmemb || !size) { 296 return NULL; 297 } 298 299 if (!g_nvme_hooks.get_rkey) { 300 return calloc(nmemb, size); 301 } else { 302 return spdk_zmalloc(nmemb * size, 0, NULL, SPDK_ENV_SOCKET_ID_ANY, SPDK_MALLOC_DMA); 303 } 304 } 305 306 static inline void 307 nvme_rdma_free(void *buf) 308 { 309 if (!g_nvme_hooks.get_rkey) { 310 free(buf); 311 } else { 312 spdk_free(buf); 313 } 314 } 315 316 static int nvme_rdma_ctrlr_delete_io_qpair(struct spdk_nvme_ctrlr *ctrlr, 317 struct spdk_nvme_qpair *qpair); 318 319 static inline struct nvme_rdma_qpair * 320 nvme_rdma_qpair(struct spdk_nvme_qpair *qpair) 321 { 322 assert(qpair->trtype == SPDK_NVME_TRANSPORT_RDMA); 323 return SPDK_CONTAINEROF(qpair, struct nvme_rdma_qpair, qpair); 324 } 325 326 static inline struct nvme_rdma_poll_group * 327 nvme_rdma_poll_group(struct spdk_nvme_transport_poll_group *group) 328 { 329 return (SPDK_CONTAINEROF(group, struct nvme_rdma_poll_group, group)); 330 } 331 332 static inline struct nvme_rdma_ctrlr * 333 nvme_rdma_ctrlr(struct spdk_nvme_ctrlr *ctrlr) 334 { 335 assert(ctrlr->trid.trtype == SPDK_NVME_TRANSPORT_RDMA); 336 return SPDK_CONTAINEROF(ctrlr, struct nvme_rdma_ctrlr, ctrlr); 337 } 338 339 static struct spdk_nvme_rdma_req * 340 nvme_rdma_req_get(struct nvme_rdma_qpair *rqpair) 341 { 342 struct spdk_nvme_rdma_req *rdma_req; 343 344 rdma_req = TAILQ_FIRST(&rqpair->free_reqs); 345 if (rdma_req) { 346 TAILQ_REMOVE(&rqpair->free_reqs, rdma_req, link); 347 TAILQ_INSERT_TAIL(&rqpair->outstanding_reqs, rdma_req, link); 348 } 349 350 return rdma_req; 351 } 352 353 static void 354 nvme_rdma_req_put(struct nvme_rdma_qpair *rqpair, struct spdk_nvme_rdma_req *rdma_req) 355 { 356 rdma_req->completion_flags = 0; 357 rdma_req->req = NULL; 358 TAILQ_INSERT_HEAD(&rqpair->free_reqs, rdma_req, link); 359 } 360 361 static void 362 nvme_rdma_req_complete(struct spdk_nvme_rdma_req *rdma_req, 363 struct spdk_nvme_cpl *rsp) 364 { 365 struct nvme_request *req = rdma_req->req; 366 struct nvme_rdma_qpair *rqpair; 367 368 assert(req != NULL); 369 370 rqpair = nvme_rdma_qpair(req->qpair); 371 TAILQ_REMOVE(&rqpair->outstanding_reqs, rdma_req, link); 372 373 nvme_complete_request(req->cb_fn, req->cb_arg, req->qpair, req, rsp); 374 nvme_free_request(req); 375 } 376 377 static const char * 378 nvme_rdma_cm_event_str_get(uint32_t event) 379 { 380 if (event < SPDK_COUNTOF(rdma_cm_event_str)) { 381 return rdma_cm_event_str[event]; 382 } else { 383 return "Undefined"; 384 } 385 } 386 387 388 static int 389 nvme_rdma_qpair_process_cm_event(struct nvme_rdma_qpair *rqpair) 390 { 391 struct rdma_cm_event *event = rqpair->evt; 392 struct spdk_nvmf_rdma_accept_private_data *accept_data; 393 int rc = 0; 394 395 if (event) { 396 switch (event->event) { 397 case RDMA_CM_EVENT_ADDR_RESOLVED: 398 case RDMA_CM_EVENT_ADDR_ERROR: 399 case RDMA_CM_EVENT_ROUTE_RESOLVED: 400 case RDMA_CM_EVENT_ROUTE_ERROR: 401 break; 402 case RDMA_CM_EVENT_CONNECT_REQUEST: 403 break; 404 case RDMA_CM_EVENT_CONNECT_ERROR: 405 break; 406 case RDMA_CM_EVENT_UNREACHABLE: 407 case RDMA_CM_EVENT_REJECTED: 408 break; 409 case RDMA_CM_EVENT_CONNECT_RESPONSE: 410 rc = spdk_rdma_qp_complete_connect(rqpair->rdma_qp); 411 /* fall through */ 412 case RDMA_CM_EVENT_ESTABLISHED: 413 accept_data = (struct spdk_nvmf_rdma_accept_private_data *)event->param.conn.private_data; 414 if (accept_data == NULL) { 415 rc = -1; 416 } else { 417 SPDK_DEBUGLOG(nvme, "Requested queue depth %d. Actually got queue depth %d.\n", 418 rqpair->num_entries, accept_data->crqsize); 419 rqpair->num_entries = spdk_min(rqpair->num_entries, accept_data->crqsize); 420 } 421 break; 422 case RDMA_CM_EVENT_DISCONNECTED: 423 rqpair->qpair.transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_REMOTE; 424 break; 425 case RDMA_CM_EVENT_DEVICE_REMOVAL: 426 rqpair->qpair.transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_LOCAL; 427 break; 428 case RDMA_CM_EVENT_MULTICAST_JOIN: 429 case RDMA_CM_EVENT_MULTICAST_ERROR: 430 break; 431 case RDMA_CM_EVENT_ADDR_CHANGE: 432 rqpair->qpair.transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_LOCAL; 433 break; 434 case RDMA_CM_EVENT_TIMEWAIT_EXIT: 435 break; 436 default: 437 SPDK_ERRLOG("Unexpected Acceptor Event [%d]\n", event->event); 438 break; 439 } 440 rqpair->evt = NULL; 441 rdma_ack_cm_event(event); 442 } 443 444 return rc; 445 } 446 447 /* 448 * This function must be called under the nvme controller's lock 449 * because it touches global controller variables. The lock is taken 450 * by the generic transport code before invoking a few of the functions 451 * in this file: nvme_rdma_ctrlr_connect_qpair, nvme_rdma_ctrlr_delete_io_qpair, 452 * and conditionally nvme_rdma_qpair_process_completions when it is calling 453 * completions on the admin qpair. When adding a new call to this function, please 454 * verify that it is in a situation where it falls under the lock. 455 */ 456 static int 457 nvme_rdma_poll_events(struct nvme_rdma_ctrlr *rctrlr) 458 { 459 struct nvme_rdma_cm_event_entry *entry, *tmp; 460 struct nvme_rdma_qpair *event_qpair; 461 struct rdma_cm_event *event; 462 struct rdma_event_channel *channel = rctrlr->cm_channel; 463 464 STAILQ_FOREACH_SAFE(entry, &rctrlr->pending_cm_events, link, tmp) { 465 event_qpair = nvme_rdma_qpair(entry->evt->id->context); 466 if (event_qpair->evt == NULL) { 467 event_qpair->evt = entry->evt; 468 STAILQ_REMOVE(&rctrlr->pending_cm_events, entry, nvme_rdma_cm_event_entry, link); 469 STAILQ_INSERT_HEAD(&rctrlr->free_cm_events, entry, link); 470 } 471 } 472 473 while (rdma_get_cm_event(channel, &event) == 0) { 474 event_qpair = nvme_rdma_qpair(event->id->context); 475 if (event_qpair->evt == NULL) { 476 event_qpair->evt = event; 477 } else { 478 assert(rctrlr == nvme_rdma_ctrlr(event_qpair->qpair.ctrlr)); 479 entry = STAILQ_FIRST(&rctrlr->free_cm_events); 480 if (entry == NULL) { 481 rdma_ack_cm_event(event); 482 return -ENOMEM; 483 } 484 STAILQ_REMOVE(&rctrlr->free_cm_events, entry, nvme_rdma_cm_event_entry, link); 485 entry->evt = event; 486 STAILQ_INSERT_TAIL(&rctrlr->pending_cm_events, entry, link); 487 } 488 } 489 490 if (errno == EAGAIN || errno == EWOULDBLOCK) { 491 return 0; 492 } else { 493 return errno; 494 } 495 } 496 497 static int 498 nvme_rdma_validate_cm_event(enum rdma_cm_event_type expected_evt_type, 499 struct rdma_cm_event *reaped_evt) 500 { 501 int rc = -EBADMSG; 502 503 if (expected_evt_type == reaped_evt->event) { 504 return 0; 505 } 506 507 switch (expected_evt_type) { 508 case RDMA_CM_EVENT_ESTABLISHED: 509 /* 510 * There is an enum ib_cm_rej_reason in the kernel headers that sets 10 as 511 * IB_CM_REJ_STALE_CONN. I can't find the corresponding userspace but we get 512 * the same values here. 513 */ 514 if (reaped_evt->event == RDMA_CM_EVENT_REJECTED && reaped_evt->status == 10) { 515 rc = -ESTALE; 516 } else if (reaped_evt->event == RDMA_CM_EVENT_CONNECT_RESPONSE) { 517 /* 518 * If we are using a qpair which is not created using rdma cm API 519 * then we will receive RDMA_CM_EVENT_CONNECT_RESPONSE instead of 520 * RDMA_CM_EVENT_ESTABLISHED. 521 */ 522 return 0; 523 } 524 break; 525 default: 526 break; 527 } 528 529 SPDK_ERRLOG("Expected %s but received %s (%d) from CM event channel (status = %d)\n", 530 nvme_rdma_cm_event_str_get(expected_evt_type), 531 nvme_rdma_cm_event_str_get(reaped_evt->event), reaped_evt->event, 532 reaped_evt->status); 533 return rc; 534 } 535 536 static int 537 nvme_rdma_process_event(struct nvme_rdma_qpair *rqpair, 538 struct rdma_event_channel *channel, 539 enum rdma_cm_event_type evt) 540 { 541 struct nvme_rdma_ctrlr *rctrlr; 542 uint64_t timeout_ticks; 543 int rc = 0, rc2; 544 545 if (rqpair->evt != NULL) { 546 rc = nvme_rdma_qpair_process_cm_event(rqpair); 547 if (rc) { 548 return rc; 549 } 550 } 551 552 timeout_ticks = (NVME_RDMA_QPAIR_CM_EVENT_TIMEOUT_US * spdk_get_ticks_hz()) / SPDK_SEC_TO_USEC + 553 spdk_get_ticks(); 554 rctrlr = nvme_rdma_ctrlr(rqpair->qpair.ctrlr); 555 assert(rctrlr != NULL); 556 557 while (!rqpair->evt && spdk_get_ticks() < timeout_ticks && rc == 0) { 558 rc = nvme_rdma_poll_events(rctrlr); 559 } 560 561 if (rc) { 562 return rc; 563 } 564 565 if (rqpair->evt == NULL) { 566 return -EADDRNOTAVAIL; 567 } 568 569 rc = nvme_rdma_validate_cm_event(evt, rqpair->evt); 570 571 rc2 = nvme_rdma_qpair_process_cm_event(rqpair); 572 /* bad message takes precedence over the other error codes from processing the event. */ 573 return rc == 0 ? rc2 : rc; 574 } 575 576 static int 577 nvme_rdma_qpair_init(struct nvme_rdma_qpair *rqpair) 578 { 579 int rc; 580 struct spdk_rdma_qp_init_attr attr = {}; 581 struct ibv_device_attr dev_attr; 582 struct nvme_rdma_ctrlr *rctrlr; 583 584 rc = ibv_query_device(rqpair->cm_id->verbs, &dev_attr); 585 if (rc != 0) { 586 SPDK_ERRLOG("Failed to query RDMA device attributes.\n"); 587 return -1; 588 } 589 590 if (rqpair->qpair.poll_group) { 591 assert(!rqpair->cq); 592 rc = nvme_poll_group_connect_qpair(&rqpair->qpair); 593 if (rc) { 594 SPDK_ERRLOG("Unable to activate the rdmaqpair.\n"); 595 return -1; 596 } 597 assert(rqpair->cq); 598 } else { 599 rqpair->cq = ibv_create_cq(rqpair->cm_id->verbs, rqpair->num_entries * 2, rqpair, NULL, 0); 600 if (!rqpair->cq) { 601 SPDK_ERRLOG("Unable to create completion queue: errno %d: %s\n", errno, spdk_strerror(errno)); 602 return -1; 603 } 604 } 605 606 rctrlr = nvme_rdma_ctrlr(rqpair->qpair.ctrlr); 607 if (g_nvme_hooks.get_ibv_pd) { 608 rctrlr->pd = g_nvme_hooks.get_ibv_pd(&rctrlr->ctrlr.trid, rqpair->cm_id->verbs); 609 } else { 610 rctrlr->pd = NULL; 611 } 612 613 attr.pd = rctrlr->pd; 614 attr.stats = rqpair->poller ? &rqpair->poller->stats.rdma_stats : NULL; 615 attr.send_cq = rqpair->cq; 616 attr.recv_cq = rqpair->cq; 617 attr.cap.max_send_wr = rqpair->num_entries; /* SEND operations */ 618 attr.cap.max_recv_wr = rqpair->num_entries; /* RECV operations */ 619 attr.cap.max_send_sge = spdk_min(NVME_RDMA_DEFAULT_TX_SGE, dev_attr.max_sge); 620 attr.cap.max_recv_sge = spdk_min(NVME_RDMA_DEFAULT_RX_SGE, dev_attr.max_sge); 621 622 rqpair->rdma_qp = spdk_rdma_qp_create(rqpair->cm_id, &attr); 623 624 if (!rqpair->rdma_qp) { 625 return -1; 626 } 627 628 /* ibv_create_qp will change the values in attr.cap. Make sure we store the proper value. */ 629 rqpair->max_send_sge = spdk_min(NVME_RDMA_DEFAULT_TX_SGE, attr.cap.max_send_sge); 630 rqpair->max_recv_sge = spdk_min(NVME_RDMA_DEFAULT_RX_SGE, attr.cap.max_recv_sge); 631 rqpair->current_num_recvs = 0; 632 rqpair->current_num_sends = 0; 633 634 rctrlr->pd = rqpair->rdma_qp->qp->pd; 635 636 rqpair->cm_id->context = &rqpair->qpair; 637 638 return 0; 639 } 640 641 static inline int 642 nvme_rdma_qpair_submit_sends(struct nvme_rdma_qpair *rqpair) 643 { 644 struct ibv_send_wr *bad_send_wr = NULL; 645 int rc; 646 647 rc = spdk_rdma_qp_flush_send_wrs(rqpair->rdma_qp, &bad_send_wr); 648 649 if (spdk_unlikely(rc)) { 650 SPDK_ERRLOG("Failed to post WRs on send queue, errno %d (%s), bad_wr %p\n", 651 rc, spdk_strerror(rc), bad_send_wr); 652 while (bad_send_wr != NULL) { 653 assert(rqpair->current_num_sends > 0); 654 rqpair->current_num_sends--; 655 bad_send_wr = bad_send_wr->next; 656 } 657 return rc; 658 } 659 660 return 0; 661 } 662 663 static inline int 664 nvme_rdma_qpair_submit_recvs(struct nvme_rdma_qpair *rqpair) 665 { 666 struct ibv_recv_wr *bad_recv_wr; 667 int rc = 0; 668 669 rc = spdk_rdma_qp_flush_recv_wrs(rqpair->rdma_qp, &bad_recv_wr); 670 if (spdk_unlikely(rc)) { 671 SPDK_ERRLOG("Failed to post WRs on receive queue, errno %d (%s), bad_wr %p\n", 672 rc, spdk_strerror(rc), bad_recv_wr); 673 while (bad_recv_wr != NULL) { 674 assert(rqpair->current_num_sends > 0); 675 rqpair->current_num_recvs--; 676 bad_recv_wr = bad_recv_wr->next; 677 } 678 } 679 680 return rc; 681 } 682 683 /* Append the given send wr structure to the qpair's outstanding sends list. */ 684 /* This function accepts only a single wr. */ 685 static inline int 686 nvme_rdma_qpair_queue_send_wr(struct nvme_rdma_qpair *rqpair, struct ibv_send_wr *wr) 687 { 688 assert(wr->next == NULL); 689 690 assert(rqpair->current_num_sends < rqpair->num_entries); 691 692 rqpair->current_num_sends++; 693 spdk_rdma_qp_queue_send_wrs(rqpair->rdma_qp, wr); 694 695 if (!rqpair->delay_cmd_submit) { 696 return nvme_rdma_qpair_submit_sends(rqpair); 697 } 698 699 return 0; 700 } 701 702 /* Append the given recv wr structure to the qpair's outstanding recvs list. */ 703 /* This function accepts only a single wr. */ 704 static inline int 705 nvme_rdma_qpair_queue_recv_wr(struct nvme_rdma_qpair *rqpair, struct ibv_recv_wr *wr) 706 { 707 708 assert(wr->next == NULL); 709 assert(rqpair->current_num_recvs < rqpair->num_entries); 710 711 rqpair->current_num_recvs++; 712 spdk_rdma_qp_queue_recv_wrs(rqpair->rdma_qp, wr); 713 714 if (!rqpair->delay_cmd_submit) { 715 return nvme_rdma_qpair_submit_recvs(rqpair); 716 } 717 718 return 0; 719 } 720 721 #define nvme_rdma_trace_ibv_sge(sg_list) \ 722 if (sg_list) { \ 723 SPDK_DEBUGLOG(nvme, "local addr %p length 0x%x lkey 0x%x\n", \ 724 (void *)(sg_list)->addr, (sg_list)->length, (sg_list)->lkey); \ 725 } 726 727 static int 728 nvme_rdma_post_recv(struct nvme_rdma_qpair *rqpair, uint16_t rsp_idx) 729 { 730 struct ibv_recv_wr *wr; 731 732 wr = &rqpair->rsp_recv_wrs[rsp_idx]; 733 wr->next = NULL; 734 nvme_rdma_trace_ibv_sge(wr->sg_list); 735 return nvme_rdma_qpair_queue_recv_wr(rqpair, wr); 736 } 737 738 static int 739 nvme_rdma_reg_mr(struct rdma_cm_id *cm_id, union nvme_rdma_mr *mr, void *mem, size_t length) 740 { 741 if (!g_nvme_hooks.get_rkey) { 742 mr->mr = rdma_reg_msgs(cm_id, mem, length); 743 if (mr->mr == NULL) { 744 SPDK_ERRLOG("Unable to register mr: %s (%d)\n", 745 spdk_strerror(errno), errno); 746 return -1; 747 } 748 } else { 749 mr->key = g_nvme_hooks.get_rkey(cm_id->pd, mem, length); 750 } 751 752 return 0; 753 } 754 755 static void 756 nvme_rdma_dereg_mr(union nvme_rdma_mr *mr) 757 { 758 if (!g_nvme_hooks.get_rkey) { 759 if (mr->mr && rdma_dereg_mr(mr->mr)) { 760 SPDK_ERRLOG("Unable to de-register mr\n"); 761 } 762 } else { 763 if (mr->key) { 764 g_nvme_hooks.put_rkey(mr->key); 765 } 766 } 767 memset(mr, 0, sizeof(*mr)); 768 } 769 770 static uint32_t 771 nvme_rdma_mr_get_lkey(union nvme_rdma_mr *mr) 772 { 773 uint32_t lkey; 774 775 if (!g_nvme_hooks.get_rkey) { 776 lkey = mr->mr->lkey; 777 } else { 778 lkey = *((uint64_t *) mr->key); 779 } 780 781 return lkey; 782 } 783 784 static void 785 nvme_rdma_unregister_rsps(struct nvme_rdma_qpair *rqpair) 786 { 787 nvme_rdma_dereg_mr(&rqpair->rsp_mr); 788 } 789 790 static void 791 nvme_rdma_free_rsps(struct nvme_rdma_qpair *rqpair) 792 { 793 nvme_rdma_free(rqpair->rsps); 794 rqpair->rsps = NULL; 795 nvme_rdma_free(rqpair->rsp_sgls); 796 rqpair->rsp_sgls = NULL; 797 nvme_rdma_free(rqpair->rsp_recv_wrs); 798 rqpair->rsp_recv_wrs = NULL; 799 } 800 801 static int 802 nvme_rdma_alloc_rsps(struct nvme_rdma_qpair *rqpair) 803 { 804 rqpair->rsps = NULL; 805 rqpair->rsp_recv_wrs = NULL; 806 807 rqpair->rsp_sgls = nvme_rdma_calloc(rqpair->num_entries, sizeof(*rqpair->rsp_sgls)); 808 if (!rqpair->rsp_sgls) { 809 SPDK_ERRLOG("Failed to allocate rsp_sgls\n"); 810 goto fail; 811 } 812 813 rqpair->rsp_recv_wrs = nvme_rdma_calloc(rqpair->num_entries, sizeof(*rqpair->rsp_recv_wrs)); 814 if (!rqpair->rsp_recv_wrs) { 815 SPDK_ERRLOG("Failed to allocate rsp_recv_wrs\n"); 816 goto fail; 817 } 818 819 rqpair->rsps = nvme_rdma_calloc(rqpair->num_entries, sizeof(*rqpair->rsps)); 820 if (!rqpair->rsps) { 821 SPDK_ERRLOG("can not allocate rdma rsps\n"); 822 goto fail; 823 } 824 825 return 0; 826 fail: 827 nvme_rdma_free_rsps(rqpair); 828 return -ENOMEM; 829 } 830 831 static int 832 nvme_rdma_register_rsps(struct nvme_rdma_qpair *rqpair) 833 { 834 uint16_t i; 835 int rc; 836 uint32_t lkey; 837 838 rc = nvme_rdma_reg_mr(rqpair->cm_id, &rqpair->rsp_mr, 839 rqpair->rsps, rqpair->num_entries * sizeof(*rqpair->rsps)); 840 841 if (rc < 0) { 842 goto fail; 843 } 844 845 lkey = nvme_rdma_mr_get_lkey(&rqpair->rsp_mr); 846 847 for (i = 0; i < rqpair->num_entries; i++) { 848 struct ibv_sge *rsp_sgl = &rqpair->rsp_sgls[i]; 849 struct spdk_nvme_rdma_rsp *rsp = &rqpair->rsps[i]; 850 851 rsp->rqpair = rqpair; 852 rsp->rdma_wr.type = RDMA_WR_TYPE_RECV; 853 rsp->idx = i; 854 rsp_sgl->addr = (uint64_t)&rqpair->rsps[i]; 855 rsp_sgl->length = sizeof(struct spdk_nvme_cpl); 856 rsp_sgl->lkey = lkey; 857 858 rqpair->rsp_recv_wrs[i].wr_id = (uint64_t)&rsp->rdma_wr; 859 rqpair->rsp_recv_wrs[i].next = NULL; 860 rqpair->rsp_recv_wrs[i].sg_list = rsp_sgl; 861 rqpair->rsp_recv_wrs[i].num_sge = 1; 862 863 rc = nvme_rdma_post_recv(rqpair, i); 864 if (rc) { 865 goto fail; 866 } 867 } 868 869 rc = nvme_rdma_qpair_submit_recvs(rqpair); 870 if (rc) { 871 goto fail; 872 } 873 874 return 0; 875 876 fail: 877 nvme_rdma_unregister_rsps(rqpair); 878 return rc; 879 } 880 881 static void 882 nvme_rdma_unregister_reqs(struct nvme_rdma_qpair *rqpair) 883 { 884 nvme_rdma_dereg_mr(&rqpair->cmd_mr); 885 } 886 887 static void 888 nvme_rdma_free_reqs(struct nvme_rdma_qpair *rqpair) 889 { 890 if (!rqpair->rdma_reqs) { 891 return; 892 } 893 894 nvme_rdma_free(rqpair->cmds); 895 rqpair->cmds = NULL; 896 897 nvme_rdma_free(rqpair->rdma_reqs); 898 rqpair->rdma_reqs = NULL; 899 } 900 901 static int 902 nvme_rdma_alloc_reqs(struct nvme_rdma_qpair *rqpair) 903 { 904 uint16_t i; 905 906 rqpair->rdma_reqs = nvme_rdma_calloc(rqpair->num_entries, sizeof(struct spdk_nvme_rdma_req)); 907 if (rqpair->rdma_reqs == NULL) { 908 SPDK_ERRLOG("Failed to allocate rdma_reqs\n"); 909 goto fail; 910 } 911 912 rqpair->cmds = nvme_rdma_calloc(rqpair->num_entries, sizeof(*rqpair->cmds)); 913 if (!rqpair->cmds) { 914 SPDK_ERRLOG("Failed to allocate RDMA cmds\n"); 915 goto fail; 916 } 917 918 919 TAILQ_INIT(&rqpair->free_reqs); 920 TAILQ_INIT(&rqpair->outstanding_reqs); 921 for (i = 0; i < rqpair->num_entries; i++) { 922 struct spdk_nvme_rdma_req *rdma_req; 923 struct spdk_nvmf_cmd *cmd; 924 925 rdma_req = &rqpair->rdma_reqs[i]; 926 rdma_req->rdma_wr.type = RDMA_WR_TYPE_SEND; 927 cmd = &rqpair->cmds[i]; 928 929 rdma_req->id = i; 930 931 /* The first RDMA sgl element will always point 932 * at this data structure. Depending on whether 933 * an NVMe-oF SGL is required, the length of 934 * this element may change. */ 935 rdma_req->send_sgl[0].addr = (uint64_t)cmd; 936 rdma_req->send_wr.wr_id = (uint64_t)&rdma_req->rdma_wr; 937 rdma_req->send_wr.next = NULL; 938 rdma_req->send_wr.opcode = IBV_WR_SEND; 939 rdma_req->send_wr.send_flags = IBV_SEND_SIGNALED; 940 rdma_req->send_wr.sg_list = rdma_req->send_sgl; 941 rdma_req->send_wr.imm_data = 0; 942 943 TAILQ_INSERT_TAIL(&rqpair->free_reqs, rdma_req, link); 944 } 945 946 return 0; 947 fail: 948 nvme_rdma_free_reqs(rqpair); 949 return -ENOMEM; 950 } 951 952 static int 953 nvme_rdma_register_reqs(struct nvme_rdma_qpair *rqpair) 954 { 955 int i; 956 int rc; 957 uint32_t lkey; 958 959 rc = nvme_rdma_reg_mr(rqpair->cm_id, &rqpair->cmd_mr, 960 rqpair->cmds, rqpair->num_entries * sizeof(*rqpair->cmds)); 961 962 if (rc < 0) { 963 goto fail; 964 } 965 966 lkey = nvme_rdma_mr_get_lkey(&rqpair->cmd_mr); 967 968 for (i = 0; i < rqpair->num_entries; i++) { 969 rqpair->rdma_reqs[i].send_sgl[0].lkey = lkey; 970 } 971 972 return 0; 973 974 fail: 975 nvme_rdma_unregister_reqs(rqpair); 976 return -ENOMEM; 977 } 978 979 static int 980 nvme_rdma_resolve_addr(struct nvme_rdma_qpair *rqpair, 981 struct sockaddr *src_addr, 982 struct sockaddr *dst_addr, 983 struct rdma_event_channel *cm_channel) 984 { 985 int ret; 986 987 ret = rdma_resolve_addr(rqpair->cm_id, src_addr, dst_addr, 988 NVME_RDMA_TIME_OUT_IN_MS); 989 if (ret) { 990 SPDK_ERRLOG("rdma_resolve_addr, %d\n", errno); 991 return ret; 992 } 993 994 ret = nvme_rdma_process_event(rqpair, cm_channel, RDMA_CM_EVENT_ADDR_RESOLVED); 995 if (ret) { 996 SPDK_ERRLOG("RDMA address resolution error\n"); 997 return -1; 998 } 999 1000 if (rqpair->qpair.ctrlr->opts.transport_ack_timeout != SPDK_NVME_TRANSPORT_ACK_TIMEOUT_DISABLED) { 1001 #ifdef SPDK_CONFIG_RDMA_SET_ACK_TIMEOUT 1002 uint8_t timeout = rqpair->qpair.ctrlr->opts.transport_ack_timeout; 1003 ret = rdma_set_option(rqpair->cm_id, RDMA_OPTION_ID, 1004 RDMA_OPTION_ID_ACK_TIMEOUT, 1005 &timeout, sizeof(timeout)); 1006 if (ret) { 1007 SPDK_NOTICELOG("Can't apply RDMA_OPTION_ID_ACK_TIMEOUT %d, ret %d\n", timeout, ret); 1008 } 1009 #else 1010 SPDK_DEBUGLOG(nvme, "transport_ack_timeout is not supported\n"); 1011 #endif 1012 } 1013 1014 1015 ret = rdma_resolve_route(rqpair->cm_id, NVME_RDMA_TIME_OUT_IN_MS); 1016 if (ret) { 1017 SPDK_ERRLOG("rdma_resolve_route\n"); 1018 return ret; 1019 } 1020 1021 ret = nvme_rdma_process_event(rqpair, cm_channel, RDMA_CM_EVENT_ROUTE_RESOLVED); 1022 if (ret) { 1023 SPDK_ERRLOG("RDMA route resolution error\n"); 1024 return -1; 1025 } 1026 1027 return 0; 1028 } 1029 1030 static int 1031 nvme_rdma_connect(struct nvme_rdma_qpair *rqpair) 1032 { 1033 struct rdma_conn_param param = {}; 1034 struct spdk_nvmf_rdma_request_private_data request_data = {}; 1035 struct ibv_device_attr attr; 1036 int ret; 1037 struct spdk_nvme_ctrlr *ctrlr; 1038 struct nvme_rdma_ctrlr *rctrlr; 1039 1040 ret = ibv_query_device(rqpair->cm_id->verbs, &attr); 1041 if (ret != 0) { 1042 SPDK_ERRLOG("Failed to query RDMA device attributes.\n"); 1043 return ret; 1044 } 1045 1046 param.responder_resources = spdk_min(rqpair->num_entries, attr.max_qp_rd_atom); 1047 1048 ctrlr = rqpair->qpair.ctrlr; 1049 if (!ctrlr) { 1050 return -1; 1051 } 1052 rctrlr = nvme_rdma_ctrlr(ctrlr); 1053 assert(rctrlr != NULL); 1054 1055 request_data.qid = rqpair->qpair.id; 1056 request_data.hrqsize = rqpair->num_entries; 1057 request_data.hsqsize = rqpair->num_entries - 1; 1058 request_data.cntlid = ctrlr->cntlid; 1059 1060 param.private_data = &request_data; 1061 param.private_data_len = sizeof(request_data); 1062 param.retry_count = ctrlr->opts.transport_retry_count; 1063 param.rnr_retry_count = 7; 1064 1065 /* Fields below are ignored by rdma cm if qpair has been 1066 * created using rdma cm API. */ 1067 param.srq = 0; 1068 param.qp_num = rqpair->rdma_qp->qp->qp_num; 1069 1070 ret = rdma_connect(rqpair->cm_id, ¶m); 1071 if (ret) { 1072 SPDK_ERRLOG("nvme rdma connect error\n"); 1073 return ret; 1074 } 1075 1076 ret = nvme_rdma_process_event(rqpair, rctrlr->cm_channel, RDMA_CM_EVENT_ESTABLISHED); 1077 if (ret == -ESTALE) { 1078 SPDK_NOTICELOG("Received a stale connection notice during connection.\n"); 1079 return -EAGAIN; 1080 } else if (ret) { 1081 SPDK_ERRLOG("RDMA connect error %d\n", ret); 1082 return ret; 1083 } else { 1084 return 0; 1085 } 1086 } 1087 1088 static int 1089 nvme_rdma_parse_addr(struct sockaddr_storage *sa, int family, const char *addr, const char *service) 1090 { 1091 struct addrinfo *res; 1092 struct addrinfo hints; 1093 int ret; 1094 1095 memset(&hints, 0, sizeof(hints)); 1096 hints.ai_family = family; 1097 hints.ai_socktype = SOCK_STREAM; 1098 hints.ai_protocol = 0; 1099 1100 ret = getaddrinfo(addr, service, &hints, &res); 1101 if (ret) { 1102 SPDK_ERRLOG("getaddrinfo failed: %s (%d)\n", gai_strerror(ret), ret); 1103 return ret; 1104 } 1105 1106 if (res->ai_addrlen > sizeof(*sa)) { 1107 SPDK_ERRLOG("getaddrinfo() ai_addrlen %zu too large\n", (size_t)res->ai_addrlen); 1108 ret = EINVAL; 1109 } else { 1110 memcpy(sa, res->ai_addr, res->ai_addrlen); 1111 } 1112 1113 freeaddrinfo(res); 1114 return ret; 1115 } 1116 1117 static int 1118 _nvme_rdma_ctrlr_connect_qpair(struct spdk_nvme_ctrlr *ctrlr, struct spdk_nvme_qpair *qpair) 1119 { 1120 struct sockaddr_storage dst_addr; 1121 struct sockaddr_storage src_addr; 1122 bool src_addr_specified; 1123 int rc; 1124 struct nvme_rdma_ctrlr *rctrlr; 1125 struct nvme_rdma_qpair *rqpair; 1126 int family; 1127 1128 rqpair = nvme_rdma_qpair(qpair); 1129 rctrlr = nvme_rdma_ctrlr(ctrlr); 1130 assert(rctrlr != NULL); 1131 1132 switch (ctrlr->trid.adrfam) { 1133 case SPDK_NVMF_ADRFAM_IPV4: 1134 family = AF_INET; 1135 break; 1136 case SPDK_NVMF_ADRFAM_IPV6: 1137 family = AF_INET6; 1138 break; 1139 default: 1140 SPDK_ERRLOG("Unhandled ADRFAM %d\n", ctrlr->trid.adrfam); 1141 return -1; 1142 } 1143 1144 SPDK_DEBUGLOG(nvme, "adrfam %d ai_family %d\n", ctrlr->trid.adrfam, family); 1145 1146 memset(&dst_addr, 0, sizeof(dst_addr)); 1147 1148 SPDK_DEBUGLOG(nvme, "trsvcid is %s\n", ctrlr->trid.trsvcid); 1149 rc = nvme_rdma_parse_addr(&dst_addr, family, ctrlr->trid.traddr, ctrlr->trid.trsvcid); 1150 if (rc != 0) { 1151 SPDK_ERRLOG("dst_addr nvme_rdma_parse_addr() failed\n"); 1152 return -1; 1153 } 1154 1155 if (ctrlr->opts.src_addr[0] || ctrlr->opts.src_svcid[0]) { 1156 memset(&src_addr, 0, sizeof(src_addr)); 1157 rc = nvme_rdma_parse_addr(&src_addr, family, ctrlr->opts.src_addr, ctrlr->opts.src_svcid); 1158 if (rc != 0) { 1159 SPDK_ERRLOG("src_addr nvme_rdma_parse_addr() failed\n"); 1160 return -1; 1161 } 1162 src_addr_specified = true; 1163 } else { 1164 src_addr_specified = false; 1165 } 1166 1167 rc = rdma_create_id(rctrlr->cm_channel, &rqpair->cm_id, rqpair, RDMA_PS_TCP); 1168 if (rc < 0) { 1169 SPDK_ERRLOG("rdma_create_id() failed\n"); 1170 return -1; 1171 } 1172 1173 rc = nvme_rdma_resolve_addr(rqpair, 1174 src_addr_specified ? (struct sockaddr *)&src_addr : NULL, 1175 (struct sockaddr *)&dst_addr, rctrlr->cm_channel); 1176 if (rc < 0) { 1177 SPDK_ERRLOG("nvme_rdma_resolve_addr() failed\n"); 1178 return -1; 1179 } 1180 1181 rc = nvme_rdma_qpair_init(rqpair); 1182 if (rc < 0) { 1183 SPDK_ERRLOG("nvme_rdma_qpair_init() failed\n"); 1184 return -1; 1185 } 1186 1187 rc = nvme_rdma_connect(rqpair); 1188 if (rc != 0) { 1189 SPDK_ERRLOG("Unable to connect the rqpair\n"); 1190 return rc; 1191 } 1192 1193 rc = nvme_rdma_register_reqs(rqpair); 1194 SPDK_DEBUGLOG(nvme, "rc =%d\n", rc); 1195 if (rc) { 1196 SPDK_ERRLOG("Unable to register rqpair RDMA requests\n"); 1197 return -1; 1198 } 1199 SPDK_DEBUGLOG(nvme, "RDMA requests registered\n"); 1200 1201 rc = nvme_rdma_register_rsps(rqpair); 1202 SPDK_DEBUGLOG(nvme, "rc =%d\n", rc); 1203 if (rc < 0) { 1204 SPDK_ERRLOG("Unable to register rqpair RDMA responses\n"); 1205 return -1; 1206 } 1207 SPDK_DEBUGLOG(nvme, "RDMA responses registered\n"); 1208 1209 rqpair->mr_map = spdk_rdma_create_mem_map(rqpair->rdma_qp->qp->pd, &g_nvme_hooks); 1210 if (!rqpair->mr_map) { 1211 SPDK_ERRLOG("Unable to register RDMA memory translation map\n"); 1212 return -1; 1213 } 1214 1215 rc = nvme_fabric_qpair_connect(&rqpair->qpair, rqpair->num_entries); 1216 if (rc < 0) { 1217 rqpair->qpair.transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_UNKNOWN; 1218 SPDK_ERRLOG("Failed to send an NVMe-oF Fabric CONNECT command\n"); 1219 return rc; 1220 } 1221 1222 return 0; 1223 } 1224 1225 static int 1226 nvme_rdma_ctrlr_connect_qpair(struct spdk_nvme_ctrlr *ctrlr, struct spdk_nvme_qpair *qpair) 1227 { 1228 int rc; 1229 int retry_count = 0; 1230 1231 rc = _nvme_rdma_ctrlr_connect_qpair(ctrlr, qpair); 1232 1233 /* 1234 * -EAGAIN represents the special case where the target side still thought it was connected. 1235 * Most NICs will fail the first connection attempt, and the NICs will clean up whatever 1236 * state they need to. After that, subsequent connection attempts will succeed. 1237 */ 1238 if (rc == -EAGAIN) { 1239 SPDK_NOTICELOG("Detected stale connection on Target side for qpid: %d\n", qpair->id); 1240 do { 1241 nvme_delay(NVME_RDMA_STALE_CONN_RETRY_DELAY_US); 1242 nvme_transport_ctrlr_disconnect_qpair(ctrlr, qpair); 1243 rc = _nvme_rdma_ctrlr_connect_qpair(ctrlr, qpair); 1244 retry_count++; 1245 } while (rc == -EAGAIN && retry_count < NVME_RDMA_STALE_CONN_RETRY_MAX); 1246 } 1247 1248 return rc; 1249 } 1250 1251 /* 1252 * Build SGL describing empty payload. 1253 */ 1254 static int 1255 nvme_rdma_build_null_request(struct spdk_nvme_rdma_req *rdma_req) 1256 { 1257 struct nvme_request *req = rdma_req->req; 1258 1259 req->cmd.psdt = SPDK_NVME_PSDT_SGL_MPTR_CONTIG; 1260 1261 /* The first element of this SGL is pointing at an 1262 * spdk_nvmf_cmd object. For this particular command, 1263 * we only need the first 64 bytes corresponding to 1264 * the NVMe command. */ 1265 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd); 1266 1267 /* The RDMA SGL needs one element describing the NVMe command. */ 1268 rdma_req->send_wr.num_sge = 1; 1269 1270 req->cmd.dptr.sgl1.keyed.type = SPDK_NVME_SGL_TYPE_KEYED_DATA_BLOCK; 1271 req->cmd.dptr.sgl1.keyed.subtype = SPDK_NVME_SGL_SUBTYPE_ADDRESS; 1272 req->cmd.dptr.sgl1.keyed.length = 0; 1273 req->cmd.dptr.sgl1.keyed.key = 0; 1274 req->cmd.dptr.sgl1.address = 0; 1275 1276 return 0; 1277 } 1278 1279 /* 1280 * Build inline SGL describing contiguous payload buffer. 1281 */ 1282 static int 1283 nvme_rdma_build_contig_inline_request(struct nvme_rdma_qpair *rqpair, 1284 struct spdk_nvme_rdma_req *rdma_req) 1285 { 1286 struct nvme_request *req = rdma_req->req; 1287 struct spdk_rdma_memory_translation mem_translation; 1288 void *payload; 1289 int rc; 1290 1291 payload = req->payload.contig_or_cb_arg + req->payload_offset; 1292 assert(req->payload_size != 0); 1293 assert(nvme_payload_type(&req->payload) == NVME_PAYLOAD_TYPE_CONTIG); 1294 1295 rc = spdk_rdma_get_translation(rqpair->mr_map, payload, req->payload_size, &mem_translation); 1296 if (spdk_unlikely(rc)) { 1297 SPDK_ERRLOG("Memory translation failed, rc %d\n", rc); 1298 return -1; 1299 } 1300 1301 rdma_req->send_sgl[1].lkey = spdk_rdma_memory_translation_get_lkey(&mem_translation); 1302 1303 /* The first element of this SGL is pointing at an 1304 * spdk_nvmf_cmd object. For this particular command, 1305 * we only need the first 64 bytes corresponding to 1306 * the NVMe command. */ 1307 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd); 1308 1309 rdma_req->send_sgl[1].addr = (uint64_t)payload; 1310 rdma_req->send_sgl[1].length = (uint32_t)req->payload_size; 1311 1312 /* The RDMA SGL contains two elements. The first describes 1313 * the NVMe command and the second describes the data 1314 * payload. */ 1315 rdma_req->send_wr.num_sge = 2; 1316 1317 req->cmd.psdt = SPDK_NVME_PSDT_SGL_MPTR_CONTIG; 1318 req->cmd.dptr.sgl1.unkeyed.type = SPDK_NVME_SGL_TYPE_DATA_BLOCK; 1319 req->cmd.dptr.sgl1.unkeyed.subtype = SPDK_NVME_SGL_SUBTYPE_OFFSET; 1320 req->cmd.dptr.sgl1.unkeyed.length = (uint32_t)req->payload_size; 1321 /* Inline only supported for icdoff == 0 currently. This function will 1322 * not get called for controllers with other values. */ 1323 req->cmd.dptr.sgl1.address = (uint64_t)0; 1324 1325 return 0; 1326 } 1327 1328 /* 1329 * Build SGL describing contiguous payload buffer. 1330 */ 1331 static int 1332 nvme_rdma_build_contig_request(struct nvme_rdma_qpair *rqpair, 1333 struct spdk_nvme_rdma_req *rdma_req) 1334 { 1335 struct nvme_request *req = rdma_req->req; 1336 void *payload = req->payload.contig_or_cb_arg + req->payload_offset; 1337 struct spdk_rdma_memory_translation mem_translation; 1338 int rc; 1339 1340 assert(req->payload_size != 0); 1341 assert(nvme_payload_type(&req->payload) == NVME_PAYLOAD_TYPE_CONTIG); 1342 1343 if (spdk_unlikely(req->payload_size > NVME_RDMA_MAX_KEYED_SGL_LENGTH)) { 1344 SPDK_ERRLOG("SGL length %u exceeds max keyed SGL block size %u\n", 1345 req->payload_size, NVME_RDMA_MAX_KEYED_SGL_LENGTH); 1346 return -1; 1347 } 1348 1349 rc = spdk_rdma_get_translation(rqpair->mr_map, payload, req->payload_size, &mem_translation); 1350 if (spdk_unlikely(rc)) { 1351 SPDK_ERRLOG("Memory translation failed, rc %d\n", rc); 1352 return -1; 1353 } 1354 1355 req->cmd.dptr.sgl1.keyed.key = spdk_rdma_memory_translation_get_rkey(&mem_translation); 1356 1357 /* The first element of this SGL is pointing at an 1358 * spdk_nvmf_cmd object. For this particular command, 1359 * we only need the first 64 bytes corresponding to 1360 * the NVMe command. */ 1361 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd); 1362 1363 /* The RDMA SGL needs one element describing the NVMe command. */ 1364 rdma_req->send_wr.num_sge = 1; 1365 1366 req->cmd.psdt = SPDK_NVME_PSDT_SGL_MPTR_CONTIG; 1367 req->cmd.dptr.sgl1.keyed.type = SPDK_NVME_SGL_TYPE_KEYED_DATA_BLOCK; 1368 req->cmd.dptr.sgl1.keyed.subtype = SPDK_NVME_SGL_SUBTYPE_ADDRESS; 1369 req->cmd.dptr.sgl1.keyed.length = req->payload_size; 1370 req->cmd.dptr.sgl1.address = (uint64_t)payload; 1371 1372 return 0; 1373 } 1374 1375 /* 1376 * Build SGL describing scattered payload buffer. 1377 */ 1378 static int 1379 nvme_rdma_build_sgl_request(struct nvme_rdma_qpair *rqpair, 1380 struct spdk_nvme_rdma_req *rdma_req) 1381 { 1382 struct nvme_request *req = rdma_req->req; 1383 struct spdk_nvmf_cmd *cmd = &rqpair->cmds[rdma_req->id]; 1384 struct spdk_rdma_memory_translation mem_translation; 1385 void *virt_addr; 1386 uint32_t remaining_size; 1387 uint32_t sge_length; 1388 int rc, max_num_sgl, num_sgl_desc; 1389 1390 assert(req->payload_size != 0); 1391 assert(nvme_payload_type(&req->payload) == NVME_PAYLOAD_TYPE_SGL); 1392 assert(req->payload.reset_sgl_fn != NULL); 1393 assert(req->payload.next_sge_fn != NULL); 1394 req->payload.reset_sgl_fn(req->payload.contig_or_cb_arg, req->payload_offset); 1395 1396 max_num_sgl = req->qpair->ctrlr->max_sges; 1397 1398 remaining_size = req->payload_size; 1399 num_sgl_desc = 0; 1400 do { 1401 rc = req->payload.next_sge_fn(req->payload.contig_or_cb_arg, &virt_addr, &sge_length); 1402 if (rc) { 1403 return -1; 1404 } 1405 1406 sge_length = spdk_min(remaining_size, sge_length); 1407 1408 if (spdk_unlikely(sge_length > NVME_RDMA_MAX_KEYED_SGL_LENGTH)) { 1409 SPDK_ERRLOG("SGL length %u exceeds max keyed SGL block size %u\n", 1410 sge_length, NVME_RDMA_MAX_KEYED_SGL_LENGTH); 1411 return -1; 1412 } 1413 rc = spdk_rdma_get_translation(rqpair->mr_map, virt_addr, sge_length, &mem_translation); 1414 if (spdk_unlikely(rc)) { 1415 SPDK_ERRLOG("Memory translation failed, rc %d\n", rc); 1416 return -1; 1417 } 1418 1419 cmd->sgl[num_sgl_desc].keyed.key = spdk_rdma_memory_translation_get_rkey(&mem_translation); 1420 cmd->sgl[num_sgl_desc].keyed.type = SPDK_NVME_SGL_TYPE_KEYED_DATA_BLOCK; 1421 cmd->sgl[num_sgl_desc].keyed.subtype = SPDK_NVME_SGL_SUBTYPE_ADDRESS; 1422 cmd->sgl[num_sgl_desc].keyed.length = sge_length; 1423 cmd->sgl[num_sgl_desc].address = (uint64_t)virt_addr; 1424 1425 remaining_size -= sge_length; 1426 num_sgl_desc++; 1427 } while (remaining_size > 0 && num_sgl_desc < max_num_sgl); 1428 1429 1430 /* Should be impossible if we did our sgl checks properly up the stack, but do a sanity check here. */ 1431 if (remaining_size > 0) { 1432 return -1; 1433 } 1434 1435 req->cmd.psdt = SPDK_NVME_PSDT_SGL_MPTR_CONTIG; 1436 1437 /* The RDMA SGL needs one element describing some portion 1438 * of the spdk_nvmf_cmd structure. */ 1439 rdma_req->send_wr.num_sge = 1; 1440 1441 /* 1442 * If only one SGL descriptor is required, it can be embedded directly in the command 1443 * as a data block descriptor. 1444 */ 1445 if (num_sgl_desc == 1) { 1446 /* The first element of this SGL is pointing at an 1447 * spdk_nvmf_cmd object. For this particular command, 1448 * we only need the first 64 bytes corresponding to 1449 * the NVMe command. */ 1450 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd); 1451 1452 req->cmd.dptr.sgl1.keyed.type = cmd->sgl[0].keyed.type; 1453 req->cmd.dptr.sgl1.keyed.subtype = cmd->sgl[0].keyed.subtype; 1454 req->cmd.dptr.sgl1.keyed.length = cmd->sgl[0].keyed.length; 1455 req->cmd.dptr.sgl1.keyed.key = cmd->sgl[0].keyed.key; 1456 req->cmd.dptr.sgl1.address = cmd->sgl[0].address; 1457 } else { 1458 /* 1459 * Otherwise, The SGL descriptor embedded in the command must point to the list of 1460 * SGL descriptors used to describe the operation. In that case it is a last segment descriptor. 1461 */ 1462 uint32_t descriptors_size = sizeof(struct spdk_nvme_sgl_descriptor) * num_sgl_desc; 1463 1464 if (spdk_unlikely(descriptors_size > rqpair->qpair.ctrlr->ioccsz_bytes)) { 1465 SPDK_ERRLOG("Size of SGL descriptors (%u) exceeds ICD (%u)\n", 1466 descriptors_size, rqpair->qpair.ctrlr->ioccsz_bytes); 1467 return -1; 1468 } 1469 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd) + descriptors_size; 1470 1471 req->cmd.dptr.sgl1.unkeyed.type = SPDK_NVME_SGL_TYPE_LAST_SEGMENT; 1472 req->cmd.dptr.sgl1.unkeyed.subtype = SPDK_NVME_SGL_SUBTYPE_OFFSET; 1473 req->cmd.dptr.sgl1.unkeyed.length = descriptors_size; 1474 req->cmd.dptr.sgl1.address = (uint64_t)0; 1475 } 1476 1477 return 0; 1478 } 1479 1480 /* 1481 * Build inline SGL describing sgl payload buffer. 1482 */ 1483 static int 1484 nvme_rdma_build_sgl_inline_request(struct nvme_rdma_qpair *rqpair, 1485 struct spdk_nvme_rdma_req *rdma_req) 1486 { 1487 struct nvme_request *req = rdma_req->req; 1488 struct spdk_rdma_memory_translation mem_translation; 1489 uint32_t length; 1490 void *virt_addr; 1491 int rc; 1492 1493 assert(req->payload_size != 0); 1494 assert(nvme_payload_type(&req->payload) == NVME_PAYLOAD_TYPE_SGL); 1495 assert(req->payload.reset_sgl_fn != NULL); 1496 assert(req->payload.next_sge_fn != NULL); 1497 req->payload.reset_sgl_fn(req->payload.contig_or_cb_arg, req->payload_offset); 1498 1499 rc = req->payload.next_sge_fn(req->payload.contig_or_cb_arg, &virt_addr, &length); 1500 if (rc) { 1501 return -1; 1502 } 1503 1504 if (length < req->payload_size) { 1505 SPDK_DEBUGLOG(nvme, "Inline SGL request split so sending separately.\n"); 1506 return nvme_rdma_build_sgl_request(rqpair, rdma_req); 1507 } 1508 1509 if (length > req->payload_size) { 1510 length = req->payload_size; 1511 } 1512 1513 rc = spdk_rdma_get_translation(rqpair->mr_map, virt_addr, length, &mem_translation); 1514 if (spdk_unlikely(rc)) { 1515 SPDK_ERRLOG("Memory translation failed, rc %d\n", rc); 1516 return -1; 1517 } 1518 1519 rdma_req->send_sgl[1].addr = (uint64_t)virt_addr; 1520 rdma_req->send_sgl[1].length = length; 1521 rdma_req->send_sgl[1].lkey = spdk_rdma_memory_translation_get_lkey(&mem_translation); 1522 1523 rdma_req->send_wr.num_sge = 2; 1524 1525 /* The first element of this SGL is pointing at an 1526 * spdk_nvmf_cmd object. For this particular command, 1527 * we only need the first 64 bytes corresponding to 1528 * the NVMe command. */ 1529 rdma_req->send_sgl[0].length = sizeof(struct spdk_nvme_cmd); 1530 1531 req->cmd.psdt = SPDK_NVME_PSDT_SGL_MPTR_CONTIG; 1532 req->cmd.dptr.sgl1.unkeyed.type = SPDK_NVME_SGL_TYPE_DATA_BLOCK; 1533 req->cmd.dptr.sgl1.unkeyed.subtype = SPDK_NVME_SGL_SUBTYPE_OFFSET; 1534 req->cmd.dptr.sgl1.unkeyed.length = (uint32_t)req->payload_size; 1535 /* Inline only supported for icdoff == 0 currently. This function will 1536 * not get called for controllers with other values. */ 1537 req->cmd.dptr.sgl1.address = (uint64_t)0; 1538 1539 return 0; 1540 } 1541 1542 static int 1543 nvme_rdma_req_init(struct nvme_rdma_qpair *rqpair, struct nvme_request *req, 1544 struct spdk_nvme_rdma_req *rdma_req) 1545 { 1546 struct spdk_nvme_ctrlr *ctrlr = rqpair->qpair.ctrlr; 1547 enum nvme_payload_type payload_type; 1548 bool icd_supported; 1549 int rc; 1550 1551 assert(rdma_req->req == NULL); 1552 rdma_req->req = req; 1553 req->cmd.cid = rdma_req->id; 1554 payload_type = nvme_payload_type(&req->payload); 1555 /* 1556 * Check if icdoff is non zero, to avoid interop conflicts with 1557 * targets with non-zero icdoff. Both SPDK and the Linux kernel 1558 * targets use icdoff = 0. For targets with non-zero icdoff, we 1559 * will currently just not use inline data for now. 1560 */ 1561 icd_supported = spdk_nvme_opc_get_data_transfer(req->cmd.opc) == SPDK_NVME_DATA_HOST_TO_CONTROLLER 1562 && req->payload_size <= ctrlr->ioccsz_bytes && ctrlr->icdoff == 0; 1563 1564 if (req->payload_size == 0) { 1565 rc = nvme_rdma_build_null_request(rdma_req); 1566 } else if (payload_type == NVME_PAYLOAD_TYPE_CONTIG) { 1567 if (icd_supported) { 1568 rc = nvme_rdma_build_contig_inline_request(rqpair, rdma_req); 1569 } else { 1570 rc = nvme_rdma_build_contig_request(rqpair, rdma_req); 1571 } 1572 } else if (payload_type == NVME_PAYLOAD_TYPE_SGL) { 1573 if (icd_supported) { 1574 rc = nvme_rdma_build_sgl_inline_request(rqpair, rdma_req); 1575 } else { 1576 rc = nvme_rdma_build_sgl_request(rqpair, rdma_req); 1577 } 1578 } else { 1579 rc = -1; 1580 } 1581 1582 if (rc) { 1583 rdma_req->req = NULL; 1584 return rc; 1585 } 1586 1587 memcpy(&rqpair->cmds[rdma_req->id], &req->cmd, sizeof(req->cmd)); 1588 return 0; 1589 } 1590 1591 static struct spdk_nvme_qpair * 1592 nvme_rdma_ctrlr_create_qpair(struct spdk_nvme_ctrlr *ctrlr, 1593 uint16_t qid, uint32_t qsize, 1594 enum spdk_nvme_qprio qprio, 1595 uint32_t num_requests, 1596 bool delay_cmd_submit) 1597 { 1598 struct nvme_rdma_qpair *rqpair; 1599 struct spdk_nvme_qpair *qpair; 1600 int rc; 1601 1602 rqpair = nvme_rdma_calloc(1, sizeof(struct nvme_rdma_qpair)); 1603 if (!rqpair) { 1604 SPDK_ERRLOG("failed to get create rqpair\n"); 1605 return NULL; 1606 } 1607 1608 rqpair->num_entries = qsize; 1609 rqpair->delay_cmd_submit = delay_cmd_submit; 1610 qpair = &rqpair->qpair; 1611 rc = nvme_qpair_init(qpair, qid, ctrlr, qprio, num_requests); 1612 if (rc != 0) { 1613 nvme_rdma_free(rqpair); 1614 return NULL; 1615 } 1616 1617 rc = nvme_rdma_alloc_reqs(rqpair); 1618 SPDK_DEBUGLOG(nvme, "rc =%d\n", rc); 1619 if (rc) { 1620 SPDK_ERRLOG("Unable to allocate rqpair RDMA requests\n"); 1621 nvme_rdma_free(rqpair); 1622 return NULL; 1623 } 1624 SPDK_DEBUGLOG(nvme, "RDMA requests allocated\n"); 1625 1626 rc = nvme_rdma_alloc_rsps(rqpair); 1627 SPDK_DEBUGLOG(nvme, "rc =%d\n", rc); 1628 if (rc < 0) { 1629 SPDK_ERRLOG("Unable to allocate rqpair RDMA responses\n"); 1630 nvme_rdma_free_reqs(rqpair); 1631 nvme_rdma_free(rqpair); 1632 return NULL; 1633 } 1634 SPDK_DEBUGLOG(nvme, "RDMA responses allocated\n"); 1635 1636 return qpair; 1637 } 1638 1639 static void 1640 nvme_rdma_ctrlr_disconnect_qpair(struct spdk_nvme_ctrlr *ctrlr, struct spdk_nvme_qpair *qpair) 1641 { 1642 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 1643 struct nvme_rdma_ctrlr *rctrlr = NULL; 1644 struct nvme_rdma_cm_event_entry *entry, *tmp; 1645 int rc; 1646 1647 spdk_rdma_free_mem_map(&rqpair->mr_map); 1648 nvme_rdma_unregister_reqs(rqpair); 1649 nvme_rdma_unregister_rsps(rqpair); 1650 1651 if (rqpair->evt) { 1652 rdma_ack_cm_event(rqpair->evt); 1653 rqpair->evt = NULL; 1654 } 1655 1656 /* 1657 * This works because we have the controller lock both in 1658 * this function and in the function where we add new events. 1659 */ 1660 if (qpair->ctrlr != NULL) { 1661 rctrlr = nvme_rdma_ctrlr(qpair->ctrlr); 1662 STAILQ_FOREACH_SAFE(entry, &rctrlr->pending_cm_events, link, tmp) { 1663 if (nvme_rdma_qpair(entry->evt->id->context) == rqpair) { 1664 STAILQ_REMOVE(&rctrlr->pending_cm_events, entry, nvme_rdma_cm_event_entry, link); 1665 rdma_ack_cm_event(entry->evt); 1666 STAILQ_INSERT_HEAD(&rctrlr->free_cm_events, entry, link); 1667 } 1668 } 1669 } 1670 1671 if (rqpair->cm_id) { 1672 if (rqpair->rdma_qp) { 1673 rc = spdk_rdma_qp_disconnect(rqpair->rdma_qp); 1674 if ((rctrlr != NULL) && (rc == 0)) { 1675 if (nvme_rdma_process_event(rqpair, rctrlr->cm_channel, RDMA_CM_EVENT_DISCONNECTED)) { 1676 SPDK_DEBUGLOG(nvme, "Target did not respond to qpair disconnect.\n"); 1677 } 1678 } 1679 spdk_rdma_qp_destroy(rqpair->rdma_qp); 1680 rqpair->rdma_qp = NULL; 1681 } 1682 1683 rdma_destroy_id(rqpair->cm_id); 1684 rqpair->cm_id = NULL; 1685 } 1686 1687 if (rqpair->cq) { 1688 ibv_destroy_cq(rqpair->cq); 1689 rqpair->cq = NULL; 1690 } 1691 } 1692 1693 static void nvme_rdma_qpair_abort_reqs(struct spdk_nvme_qpair *qpair, uint32_t dnr); 1694 1695 static int 1696 nvme_rdma_ctrlr_delete_io_qpair(struct spdk_nvme_ctrlr *ctrlr, struct spdk_nvme_qpair *qpair) 1697 { 1698 struct nvme_rdma_qpair *rqpair; 1699 1700 assert(qpair != NULL); 1701 rqpair = nvme_rdma_qpair(qpair); 1702 nvme_transport_ctrlr_disconnect_qpair(ctrlr, qpair); 1703 if (rqpair->defer_deletion_to_pg) { 1704 nvme_qpair_set_state(qpair, NVME_QPAIR_DESTROYING); 1705 return 0; 1706 } 1707 1708 nvme_rdma_qpair_abort_reqs(qpair, 1); 1709 nvme_qpair_deinit(qpair); 1710 1711 nvme_rdma_free_reqs(rqpair); 1712 nvme_rdma_free_rsps(rqpair); 1713 nvme_rdma_free(rqpair); 1714 1715 return 0; 1716 } 1717 1718 static struct spdk_nvme_qpair * 1719 nvme_rdma_ctrlr_create_io_qpair(struct spdk_nvme_ctrlr *ctrlr, uint16_t qid, 1720 const struct spdk_nvme_io_qpair_opts *opts) 1721 { 1722 return nvme_rdma_ctrlr_create_qpair(ctrlr, qid, opts->io_queue_size, opts->qprio, 1723 opts->io_queue_requests, 1724 opts->delay_cmd_submit); 1725 } 1726 1727 static int 1728 nvme_rdma_ctrlr_enable(struct spdk_nvme_ctrlr *ctrlr) 1729 { 1730 /* do nothing here */ 1731 return 0; 1732 } 1733 1734 static int nvme_rdma_ctrlr_destruct(struct spdk_nvme_ctrlr *ctrlr); 1735 1736 static struct spdk_nvme_ctrlr *nvme_rdma_ctrlr_construct(const struct spdk_nvme_transport_id *trid, 1737 const struct spdk_nvme_ctrlr_opts *opts, 1738 void *devhandle) 1739 { 1740 struct nvme_rdma_ctrlr *rctrlr; 1741 union spdk_nvme_cap_register cap; 1742 union spdk_nvme_vs_register vs; 1743 struct ibv_context **contexts; 1744 struct ibv_device_attr dev_attr; 1745 int i, flag, rc; 1746 1747 rctrlr = nvme_rdma_calloc(1, sizeof(struct nvme_rdma_ctrlr)); 1748 if (rctrlr == NULL) { 1749 SPDK_ERRLOG("could not allocate ctrlr\n"); 1750 return NULL; 1751 } 1752 1753 rctrlr->ctrlr.opts = *opts; 1754 rctrlr->ctrlr.trid = *trid; 1755 1756 if (opts->transport_retry_count > NVME_RDMA_CTRLR_MAX_TRANSPORT_RETRY_COUNT) { 1757 SPDK_NOTICELOG("transport_retry_count exceeds max value %d, use max value\n", 1758 NVME_RDMA_CTRLR_MAX_TRANSPORT_RETRY_COUNT); 1759 rctrlr->ctrlr.opts.transport_retry_count = NVME_RDMA_CTRLR_MAX_TRANSPORT_RETRY_COUNT; 1760 } 1761 1762 if (opts->transport_ack_timeout > NVME_RDMA_CTRLR_MAX_TRANSPORT_ACK_TIMEOUT) { 1763 SPDK_NOTICELOG("transport_ack_timeout exceeds max value %d, use max value\n", 1764 NVME_RDMA_CTRLR_MAX_TRANSPORT_ACK_TIMEOUT); 1765 rctrlr->ctrlr.opts.transport_ack_timeout = NVME_RDMA_CTRLR_MAX_TRANSPORT_ACK_TIMEOUT; 1766 } 1767 1768 contexts = rdma_get_devices(NULL); 1769 if (contexts == NULL) { 1770 SPDK_ERRLOG("rdma_get_devices() failed: %s (%d)\n", spdk_strerror(errno), errno); 1771 nvme_rdma_free(rctrlr); 1772 return NULL; 1773 } 1774 1775 i = 0; 1776 rctrlr->max_sge = NVME_RDMA_MAX_SGL_DESCRIPTORS; 1777 1778 while (contexts[i] != NULL) { 1779 rc = ibv_query_device(contexts[i], &dev_attr); 1780 if (rc < 0) { 1781 SPDK_ERRLOG("Failed to query RDMA device attributes.\n"); 1782 rdma_free_devices(contexts); 1783 nvme_rdma_free(rctrlr); 1784 return NULL; 1785 } 1786 rctrlr->max_sge = spdk_min(rctrlr->max_sge, (uint16_t)dev_attr.max_sge); 1787 i++; 1788 } 1789 1790 rdma_free_devices(contexts); 1791 1792 rc = nvme_ctrlr_construct(&rctrlr->ctrlr); 1793 if (rc != 0) { 1794 nvme_rdma_free(rctrlr); 1795 return NULL; 1796 } 1797 1798 STAILQ_INIT(&rctrlr->pending_cm_events); 1799 STAILQ_INIT(&rctrlr->free_cm_events); 1800 rctrlr->cm_events = nvme_rdma_calloc(NVME_RDMA_NUM_CM_EVENTS, sizeof(*rctrlr->cm_events)); 1801 if (rctrlr->cm_events == NULL) { 1802 SPDK_ERRLOG("unable to allocat buffers to hold CM events.\n"); 1803 goto destruct_ctrlr; 1804 } 1805 1806 for (i = 0; i < NVME_RDMA_NUM_CM_EVENTS; i++) { 1807 STAILQ_INSERT_TAIL(&rctrlr->free_cm_events, &rctrlr->cm_events[i], link); 1808 } 1809 1810 rctrlr->cm_channel = rdma_create_event_channel(); 1811 if (rctrlr->cm_channel == NULL) { 1812 SPDK_ERRLOG("rdma_create_event_channel() failed\n"); 1813 goto destruct_ctrlr; 1814 } 1815 1816 flag = fcntl(rctrlr->cm_channel->fd, F_GETFL); 1817 if (fcntl(rctrlr->cm_channel->fd, F_SETFL, flag | O_NONBLOCK) < 0) { 1818 SPDK_ERRLOG("Cannot set event channel to non blocking\n"); 1819 goto destruct_ctrlr; 1820 } 1821 1822 rctrlr->ctrlr.adminq = nvme_rdma_ctrlr_create_qpair(&rctrlr->ctrlr, 0, 1823 rctrlr->ctrlr.opts.admin_queue_size, 0, 1824 rctrlr->ctrlr.opts.admin_queue_size, false); 1825 if (!rctrlr->ctrlr.adminq) { 1826 SPDK_ERRLOG("failed to create admin qpair\n"); 1827 goto destruct_ctrlr; 1828 } 1829 1830 rc = nvme_transport_ctrlr_connect_qpair(&rctrlr->ctrlr, rctrlr->ctrlr.adminq); 1831 if (rc < 0) { 1832 SPDK_ERRLOG("failed to connect admin qpair\n"); 1833 goto destruct_ctrlr; 1834 } 1835 1836 if (nvme_ctrlr_get_cap(&rctrlr->ctrlr, &cap)) { 1837 SPDK_ERRLOG("get_cap() failed\n"); 1838 goto destruct_ctrlr; 1839 } 1840 1841 if (nvme_ctrlr_get_vs(&rctrlr->ctrlr, &vs)) { 1842 SPDK_ERRLOG("get_vs() failed\n"); 1843 goto destruct_ctrlr; 1844 } 1845 1846 if (nvme_ctrlr_add_process(&rctrlr->ctrlr, 0) != 0) { 1847 SPDK_ERRLOG("nvme_ctrlr_add_process() failed\n"); 1848 goto destruct_ctrlr; 1849 } 1850 1851 nvme_ctrlr_init_cap(&rctrlr->ctrlr, &cap, &vs); 1852 1853 SPDK_DEBUGLOG(nvme, "successfully initialized the nvmf ctrlr\n"); 1854 return &rctrlr->ctrlr; 1855 1856 destruct_ctrlr: 1857 nvme_ctrlr_destruct(&rctrlr->ctrlr); 1858 return NULL; 1859 } 1860 1861 static int 1862 nvme_rdma_ctrlr_destruct(struct spdk_nvme_ctrlr *ctrlr) 1863 { 1864 struct nvme_rdma_ctrlr *rctrlr = nvme_rdma_ctrlr(ctrlr); 1865 struct nvme_rdma_cm_event_entry *entry; 1866 1867 if (ctrlr->adminq) { 1868 nvme_rdma_ctrlr_delete_io_qpair(ctrlr, ctrlr->adminq); 1869 } 1870 1871 STAILQ_FOREACH(entry, &rctrlr->pending_cm_events, link) { 1872 rdma_ack_cm_event(entry->evt); 1873 } 1874 1875 STAILQ_INIT(&rctrlr->free_cm_events); 1876 STAILQ_INIT(&rctrlr->pending_cm_events); 1877 nvme_rdma_free(rctrlr->cm_events); 1878 1879 if (rctrlr->cm_channel) { 1880 rdma_destroy_event_channel(rctrlr->cm_channel); 1881 rctrlr->cm_channel = NULL; 1882 } 1883 1884 nvme_ctrlr_destruct_finish(ctrlr); 1885 1886 nvme_rdma_free(rctrlr); 1887 1888 return 0; 1889 } 1890 1891 static int 1892 nvme_rdma_qpair_submit_request(struct spdk_nvme_qpair *qpair, 1893 struct nvme_request *req) 1894 { 1895 struct nvme_rdma_qpair *rqpair; 1896 struct spdk_nvme_rdma_req *rdma_req; 1897 struct ibv_send_wr *wr; 1898 1899 rqpair = nvme_rdma_qpair(qpair); 1900 assert(rqpair != NULL); 1901 assert(req != NULL); 1902 1903 rdma_req = nvme_rdma_req_get(rqpair); 1904 if (spdk_unlikely(!rdma_req)) { 1905 if (rqpair->poller) { 1906 rqpair->poller->stats.queued_requests++; 1907 } 1908 /* Inform the upper layer to try again later. */ 1909 return -EAGAIN; 1910 } 1911 1912 if (nvme_rdma_req_init(rqpair, req, rdma_req)) { 1913 SPDK_ERRLOG("nvme_rdma_req_init() failed\n"); 1914 TAILQ_REMOVE(&rqpair->outstanding_reqs, rdma_req, link); 1915 nvme_rdma_req_put(rqpair, rdma_req); 1916 return -1; 1917 } 1918 1919 wr = &rdma_req->send_wr; 1920 wr->next = NULL; 1921 nvme_rdma_trace_ibv_sge(wr->sg_list); 1922 return nvme_rdma_qpair_queue_send_wr(rqpair, wr); 1923 } 1924 1925 static int 1926 nvme_rdma_qpair_reset(struct spdk_nvme_qpair *qpair) 1927 { 1928 /* Currently, doing nothing here */ 1929 return 0; 1930 } 1931 1932 static void 1933 nvme_rdma_qpair_abort_reqs(struct spdk_nvme_qpair *qpair, uint32_t dnr) 1934 { 1935 struct spdk_nvme_rdma_req *rdma_req, *tmp; 1936 struct spdk_nvme_cpl cpl; 1937 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 1938 1939 cpl.status.sc = SPDK_NVME_SC_ABORTED_SQ_DELETION; 1940 cpl.status.sct = SPDK_NVME_SCT_GENERIC; 1941 cpl.status.dnr = dnr; 1942 1943 /* 1944 * We cannot abort requests at the RDMA layer without 1945 * unregistering them. If we do, we can still get error 1946 * free completions on the shared completion queue. 1947 */ 1948 if (nvme_qpair_get_state(qpair) > NVME_QPAIR_DISCONNECTING && 1949 nvme_qpair_get_state(qpair) != NVME_QPAIR_DESTROYING) { 1950 nvme_ctrlr_disconnect_qpair(qpair); 1951 } 1952 1953 TAILQ_FOREACH_SAFE(rdma_req, &rqpair->outstanding_reqs, link, tmp) { 1954 nvme_rdma_req_complete(rdma_req, &cpl); 1955 nvme_rdma_req_put(rqpair, rdma_req); 1956 } 1957 } 1958 1959 static void 1960 nvme_rdma_qpair_check_timeout(struct spdk_nvme_qpair *qpair) 1961 { 1962 uint64_t t02; 1963 struct spdk_nvme_rdma_req *rdma_req, *tmp; 1964 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 1965 struct spdk_nvme_ctrlr *ctrlr = qpair->ctrlr; 1966 struct spdk_nvme_ctrlr_process *active_proc; 1967 1968 /* Don't check timeouts during controller initialization. */ 1969 if (ctrlr->state != NVME_CTRLR_STATE_READY) { 1970 return; 1971 } 1972 1973 if (nvme_qpair_is_admin_queue(qpair)) { 1974 active_proc = nvme_ctrlr_get_current_process(ctrlr); 1975 } else { 1976 active_proc = qpair->active_proc; 1977 } 1978 1979 /* Only check timeouts if the current process has a timeout callback. */ 1980 if (active_proc == NULL || active_proc->timeout_cb_fn == NULL) { 1981 return; 1982 } 1983 1984 t02 = spdk_get_ticks(); 1985 TAILQ_FOREACH_SAFE(rdma_req, &rqpair->outstanding_reqs, link, tmp) { 1986 assert(rdma_req->req != NULL); 1987 1988 if (nvme_request_check_timeout(rdma_req->req, rdma_req->id, active_proc, t02)) { 1989 /* 1990 * The requests are in order, so as soon as one has not timed out, 1991 * stop iterating. 1992 */ 1993 break; 1994 } 1995 } 1996 } 1997 1998 static inline int 1999 nvme_rdma_request_ready(struct nvme_rdma_qpair *rqpair, struct spdk_nvme_rdma_req *rdma_req) 2000 { 2001 nvme_rdma_req_complete(rdma_req, &rqpair->rsps[rdma_req->rsp_idx].cpl); 2002 nvme_rdma_req_put(rqpair, rdma_req); 2003 return nvme_rdma_post_recv(rqpair, rdma_req->rsp_idx); 2004 } 2005 2006 #define MAX_COMPLETIONS_PER_POLL 128 2007 2008 static void 2009 nvme_rdma_fail_qpair(struct spdk_nvme_qpair *qpair, int failure_reason) 2010 { 2011 if (failure_reason == IBV_WC_RETRY_EXC_ERR) { 2012 qpair->transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_REMOTE; 2013 } else if (qpair->transport_failure_reason == SPDK_NVME_QPAIR_FAILURE_NONE) { 2014 qpair->transport_failure_reason = SPDK_NVME_QPAIR_FAILURE_UNKNOWN; 2015 } 2016 2017 nvme_ctrlr_disconnect_qpair(qpair); 2018 } 2019 2020 static void 2021 nvme_rdma_conditional_fail_qpair(struct nvme_rdma_qpair *rqpair, struct nvme_rdma_poll_group *group) 2022 { 2023 struct nvme_rdma_destroyed_qpair *qpair_tracker; 2024 2025 assert(rqpair); 2026 if (group) { 2027 STAILQ_FOREACH(qpair_tracker, &group->destroyed_qpairs, link) { 2028 if (qpair_tracker->destroyed_qpair_tracker == rqpair) { 2029 return; 2030 } 2031 } 2032 } 2033 nvme_rdma_fail_qpair(&rqpair->qpair, 0); 2034 } 2035 2036 static int 2037 nvme_rdma_cq_process_completions(struct ibv_cq *cq, uint32_t batch_size, 2038 struct nvme_rdma_poll_group *group, 2039 struct nvme_rdma_qpair *rdma_qpair, 2040 uint64_t *rdma_completions) 2041 { 2042 struct ibv_wc wc[MAX_COMPLETIONS_PER_POLL]; 2043 struct nvme_rdma_qpair *rqpair; 2044 struct spdk_nvme_rdma_req *rdma_req; 2045 struct spdk_nvme_rdma_rsp *rdma_rsp; 2046 struct nvme_rdma_wr *rdma_wr; 2047 uint32_t reaped = 0; 2048 int completion_rc = 0; 2049 int rc, i; 2050 2051 rc = ibv_poll_cq(cq, batch_size, wc); 2052 if (rc < 0) { 2053 SPDK_ERRLOG("Error polling CQ! (%d): %s\n", 2054 errno, spdk_strerror(errno)); 2055 return -ECANCELED; 2056 } else if (rc == 0) { 2057 return 0; 2058 } 2059 2060 for (i = 0; i < rc; i++) { 2061 rdma_wr = (struct nvme_rdma_wr *)wc[i].wr_id; 2062 switch (rdma_wr->type) { 2063 case RDMA_WR_TYPE_RECV: 2064 rdma_rsp = SPDK_CONTAINEROF(rdma_wr, struct spdk_nvme_rdma_rsp, rdma_wr); 2065 rqpair = rdma_rsp->rqpair; 2066 assert(rqpair->current_num_recvs > 0); 2067 rqpair->current_num_recvs--; 2068 2069 if (wc[i].status) { 2070 SPDK_ERRLOG("CQ error on Queue Pair %p, Response Index %lu (%d): %s\n", 2071 rqpair, wc[i].wr_id, wc[i].status, ibv_wc_status_str(wc[i].status)); 2072 nvme_rdma_conditional_fail_qpair(rqpair, group); 2073 completion_rc = -ENXIO; 2074 continue; 2075 } 2076 2077 SPDK_DEBUGLOG(nvme, "CQ recv completion\n"); 2078 2079 if (wc[i].byte_len < sizeof(struct spdk_nvme_cpl)) { 2080 SPDK_ERRLOG("recv length %u less than expected response size\n", wc[i].byte_len); 2081 nvme_rdma_conditional_fail_qpair(rqpair, group); 2082 completion_rc = -ENXIO; 2083 continue; 2084 } 2085 rdma_req = &rqpair->rdma_reqs[rdma_rsp->cpl.cid]; 2086 rdma_req->completion_flags |= NVME_RDMA_RECV_COMPLETED; 2087 rdma_req->rsp_idx = rdma_rsp->idx; 2088 2089 if ((rdma_req->completion_flags & NVME_RDMA_SEND_COMPLETED) != 0) { 2090 if (spdk_unlikely(nvme_rdma_request_ready(rqpair, rdma_req))) { 2091 SPDK_ERRLOG("Unable to re-post rx descriptor\n"); 2092 nvme_rdma_conditional_fail_qpair(rqpair, group); 2093 completion_rc = -ENXIO; 2094 continue; 2095 } 2096 reaped++; 2097 rqpair->num_completions++; 2098 } 2099 break; 2100 2101 case RDMA_WR_TYPE_SEND: 2102 rdma_req = SPDK_CONTAINEROF(rdma_wr, struct spdk_nvme_rdma_req, rdma_wr); 2103 2104 /* If we are flushing I/O */ 2105 if (wc[i].status) { 2106 rqpair = rdma_req->req ? nvme_rdma_qpair(rdma_req->req->qpair) : NULL; 2107 if (!rqpair) { 2108 rqpair = rdma_qpair != NULL ? rdma_qpair : nvme_rdma_poll_group_get_qpair_by_id(group, 2109 wc[i].qp_num); 2110 } 2111 assert(rqpair); 2112 assert(rqpair->current_num_sends > 0); 2113 rqpair->current_num_sends--; 2114 nvme_rdma_conditional_fail_qpair(rqpair, group); 2115 SPDK_ERRLOG("CQ error on Queue Pair %p, Response Index %lu (%d): %s\n", 2116 rqpair, wc[i].wr_id, wc[i].status, ibv_wc_status_str(wc[i].status)); 2117 completion_rc = -ENXIO; 2118 continue; 2119 } 2120 2121 rqpair = nvme_rdma_qpair(rdma_req->req->qpair); 2122 rdma_req->completion_flags |= NVME_RDMA_SEND_COMPLETED; 2123 rqpair->current_num_sends--; 2124 2125 if ((rdma_req->completion_flags & NVME_RDMA_RECV_COMPLETED) != 0) { 2126 if (spdk_unlikely(nvme_rdma_request_ready(rqpair, rdma_req))) { 2127 SPDK_ERRLOG("Unable to re-post rx descriptor\n"); 2128 nvme_rdma_conditional_fail_qpair(rqpair, group); 2129 completion_rc = -ENXIO; 2130 continue; 2131 } 2132 reaped++; 2133 rqpair->num_completions++; 2134 } 2135 break; 2136 2137 default: 2138 SPDK_ERRLOG("Received an unexpected opcode on the CQ: %d\n", rdma_wr->type); 2139 return -ECANCELED; 2140 } 2141 } 2142 2143 *rdma_completions += rc; 2144 2145 if (completion_rc) { 2146 return completion_rc; 2147 } 2148 2149 return reaped; 2150 } 2151 2152 static void 2153 dummy_disconnected_qpair_cb(struct spdk_nvme_qpair *qpair, void *poll_group_ctx) 2154 { 2155 2156 } 2157 2158 static int 2159 nvme_rdma_qpair_process_completions(struct spdk_nvme_qpair *qpair, 2160 uint32_t max_completions) 2161 { 2162 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 2163 int rc = 0, batch_size; 2164 struct ibv_cq *cq; 2165 struct nvme_rdma_ctrlr *rctrlr; 2166 uint64_t rdma_completions = 0; 2167 2168 /* 2169 * This is used during the connection phase. It's possible that we are still reaping error completions 2170 * from other qpairs so we need to call the poll group function. Also, it's more correct since the cq 2171 * is shared. 2172 */ 2173 if (qpair->poll_group != NULL) { 2174 return spdk_nvme_poll_group_process_completions(qpair->poll_group->group, max_completions, 2175 dummy_disconnected_qpair_cb); 2176 } 2177 2178 if (max_completions == 0) { 2179 max_completions = rqpair->num_entries; 2180 } else { 2181 max_completions = spdk_min(max_completions, rqpair->num_entries); 2182 } 2183 2184 if (nvme_qpair_is_admin_queue(&rqpair->qpair)) { 2185 rctrlr = nvme_rdma_ctrlr(rqpair->qpair.ctrlr); 2186 nvme_rdma_poll_events(rctrlr); 2187 } 2188 nvme_rdma_qpair_process_cm_event(rqpair); 2189 2190 if (spdk_unlikely(qpair->transport_failure_reason != SPDK_NVME_QPAIR_FAILURE_NONE)) { 2191 nvme_rdma_fail_qpair(qpair, 0); 2192 return -ENXIO; 2193 } 2194 2195 cq = rqpair->cq; 2196 2197 rqpair->num_completions = 0; 2198 do { 2199 batch_size = spdk_min((max_completions - rqpair->num_completions), MAX_COMPLETIONS_PER_POLL); 2200 rc = nvme_rdma_cq_process_completions(cq, batch_size, NULL, rqpair, &rdma_completions); 2201 2202 if (rc == 0) { 2203 break; 2204 /* Handle the case where we fail to poll the cq. */ 2205 } else if (rc == -ECANCELED) { 2206 nvme_rdma_fail_qpair(qpair, 0); 2207 return -ENXIO; 2208 } else if (rc == -ENXIO) { 2209 return rc; 2210 } 2211 } while (rqpair->num_completions < max_completions); 2212 2213 if (spdk_unlikely(nvme_rdma_qpair_submit_sends(rqpair) || 2214 nvme_rdma_qpair_submit_recvs(rqpair))) { 2215 nvme_rdma_fail_qpair(qpair, 0); 2216 return -ENXIO; 2217 } 2218 2219 if (spdk_unlikely(rqpair->qpair.ctrlr->timeout_enabled)) { 2220 nvme_rdma_qpair_check_timeout(qpair); 2221 } 2222 2223 return rqpair->num_completions; 2224 } 2225 2226 static uint32_t 2227 nvme_rdma_ctrlr_get_max_xfer_size(struct spdk_nvme_ctrlr *ctrlr) 2228 { 2229 /* max_mr_size by ibv_query_device indicates the largest value that we can 2230 * set for a registered memory region. It is independent from the actual 2231 * I/O size and is very likely to be larger than 2 MiB which is the 2232 * granularity we currently register memory regions. Hence return 2233 * UINT32_MAX here and let the generic layer use the controller data to 2234 * moderate this value. 2235 */ 2236 return UINT32_MAX; 2237 } 2238 2239 static uint16_t 2240 nvme_rdma_ctrlr_get_max_sges(struct spdk_nvme_ctrlr *ctrlr) 2241 { 2242 struct nvme_rdma_ctrlr *rctrlr = nvme_rdma_ctrlr(ctrlr); 2243 2244 return rctrlr->max_sge; 2245 } 2246 2247 static int 2248 nvme_rdma_qpair_iterate_requests(struct spdk_nvme_qpair *qpair, 2249 int (*iter_fn)(struct nvme_request *req, void *arg), 2250 void *arg) 2251 { 2252 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 2253 struct spdk_nvme_rdma_req *rdma_req, *tmp; 2254 int rc; 2255 2256 assert(iter_fn != NULL); 2257 2258 TAILQ_FOREACH_SAFE(rdma_req, &rqpair->outstanding_reqs, link, tmp) { 2259 assert(rdma_req->req != NULL); 2260 2261 rc = iter_fn(rdma_req->req, arg); 2262 if (rc != 0) { 2263 return rc; 2264 } 2265 } 2266 2267 return 0; 2268 } 2269 2270 static void 2271 nvme_rdma_admin_qpair_abort_aers(struct spdk_nvme_qpair *qpair) 2272 { 2273 struct spdk_nvme_rdma_req *rdma_req, *tmp; 2274 struct spdk_nvme_cpl cpl; 2275 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 2276 2277 cpl.status.sc = SPDK_NVME_SC_ABORTED_SQ_DELETION; 2278 cpl.status.sct = SPDK_NVME_SCT_GENERIC; 2279 2280 TAILQ_FOREACH_SAFE(rdma_req, &rqpair->outstanding_reqs, link, tmp) { 2281 assert(rdma_req->req != NULL); 2282 2283 if (rdma_req->req->cmd.opc != SPDK_NVME_OPC_ASYNC_EVENT_REQUEST) { 2284 continue; 2285 } 2286 2287 nvme_rdma_req_complete(rdma_req, &cpl); 2288 nvme_rdma_req_put(rqpair, rdma_req); 2289 } 2290 } 2291 2292 static int 2293 nvme_rdma_poller_create(struct nvme_rdma_poll_group *group, struct ibv_context *ctx) 2294 { 2295 struct nvme_rdma_poller *poller; 2296 2297 poller = calloc(1, sizeof(*poller)); 2298 if (poller == NULL) { 2299 SPDK_ERRLOG("Unable to allocate poller.\n"); 2300 return -ENOMEM; 2301 } 2302 2303 poller->device = ctx; 2304 poller->cq = ibv_create_cq(poller->device, DEFAULT_NVME_RDMA_CQ_SIZE, group, NULL, 0); 2305 2306 if (poller->cq == NULL) { 2307 free(poller); 2308 return -EINVAL; 2309 } 2310 2311 STAILQ_INSERT_HEAD(&group->pollers, poller, link); 2312 group->num_pollers++; 2313 poller->current_num_wc = DEFAULT_NVME_RDMA_CQ_SIZE; 2314 poller->required_num_wc = 0; 2315 return 0; 2316 } 2317 2318 static void 2319 nvme_rdma_poll_group_free_pollers(struct nvme_rdma_poll_group *group) 2320 { 2321 struct nvme_rdma_poller *poller, *tmp_poller; 2322 2323 STAILQ_FOREACH_SAFE(poller, &group->pollers, link, tmp_poller) { 2324 if (poller->cq) { 2325 ibv_destroy_cq(poller->cq); 2326 } 2327 STAILQ_REMOVE(&group->pollers, poller, nvme_rdma_poller, link); 2328 free(poller); 2329 } 2330 } 2331 2332 static struct spdk_nvme_transport_poll_group * 2333 nvme_rdma_poll_group_create(void) 2334 { 2335 struct nvme_rdma_poll_group *group; 2336 struct ibv_context **contexts; 2337 int i = 0; 2338 2339 group = calloc(1, sizeof(*group)); 2340 if (group == NULL) { 2341 SPDK_ERRLOG("Unable to allocate poll group.\n"); 2342 return NULL; 2343 } 2344 2345 STAILQ_INIT(&group->pollers); 2346 2347 contexts = rdma_get_devices(NULL); 2348 if (contexts == NULL) { 2349 SPDK_ERRLOG("rdma_get_devices() failed: %s (%d)\n", spdk_strerror(errno), errno); 2350 free(group); 2351 return NULL; 2352 } 2353 2354 while (contexts[i] != NULL) { 2355 if (nvme_rdma_poller_create(group, contexts[i])) { 2356 nvme_rdma_poll_group_free_pollers(group); 2357 free(group); 2358 rdma_free_devices(contexts); 2359 return NULL; 2360 } 2361 i++; 2362 } 2363 2364 rdma_free_devices(contexts); 2365 STAILQ_INIT(&group->destroyed_qpairs); 2366 return &group->group; 2367 } 2368 2369 struct nvme_rdma_qpair * 2370 nvme_rdma_poll_group_get_qpair_by_id(struct nvme_rdma_poll_group *group, uint32_t qp_num) 2371 { 2372 struct spdk_nvme_qpair *qpair; 2373 struct nvme_rdma_destroyed_qpair *rqpair_tracker; 2374 struct nvme_rdma_qpair *rqpair; 2375 2376 STAILQ_FOREACH(qpair, &group->group.disconnected_qpairs, poll_group_stailq) { 2377 rqpair = nvme_rdma_qpair(qpair); 2378 if (rqpair->rdma_qp->qp->qp_num == qp_num) { 2379 return rqpair; 2380 } 2381 } 2382 2383 STAILQ_FOREACH(qpair, &group->group.connected_qpairs, poll_group_stailq) { 2384 rqpair = nvme_rdma_qpair(qpair); 2385 if (rqpair->rdma_qp->qp->qp_num == qp_num) { 2386 return rqpair; 2387 } 2388 } 2389 2390 STAILQ_FOREACH(rqpair_tracker, &group->destroyed_qpairs, link) { 2391 rqpair = rqpair_tracker->destroyed_qpair_tracker; 2392 if (rqpair->rdma_qp->qp->qp_num == qp_num) { 2393 return rqpair; 2394 } 2395 } 2396 2397 return NULL; 2398 } 2399 2400 static int 2401 nvme_rdma_resize_cq(struct nvme_rdma_qpair *rqpair, struct nvme_rdma_poller *poller) 2402 { 2403 int current_num_wc, required_num_wc; 2404 2405 required_num_wc = poller->required_num_wc + WC_PER_QPAIR(rqpair->num_entries); 2406 current_num_wc = poller->current_num_wc; 2407 if (current_num_wc < required_num_wc) { 2408 current_num_wc = spdk_max(current_num_wc * 2, required_num_wc); 2409 } 2410 2411 if (poller->current_num_wc != current_num_wc) { 2412 SPDK_DEBUGLOG(nvme, "Resize RDMA CQ from %d to %d\n", poller->current_num_wc, 2413 current_num_wc); 2414 if (ibv_resize_cq(poller->cq, current_num_wc)) { 2415 SPDK_ERRLOG("RDMA CQ resize failed: errno %d: %s\n", errno, spdk_strerror(errno)); 2416 return -1; 2417 } 2418 2419 poller->current_num_wc = current_num_wc; 2420 } 2421 2422 poller->required_num_wc = required_num_wc; 2423 return 0; 2424 } 2425 2426 static int 2427 nvme_rdma_poll_group_connect_qpair(struct spdk_nvme_qpair *qpair) 2428 { 2429 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 2430 struct nvme_rdma_poll_group *group = nvme_rdma_poll_group(qpair->poll_group); 2431 struct nvme_rdma_poller *poller; 2432 2433 assert(rqpair->cq == NULL); 2434 2435 STAILQ_FOREACH(poller, &group->pollers, link) { 2436 if (poller->device == rqpair->cm_id->verbs) { 2437 if (nvme_rdma_resize_cq(rqpair, poller)) { 2438 return -EPROTO; 2439 } 2440 rqpair->cq = poller->cq; 2441 rqpair->poller = poller; 2442 break; 2443 } 2444 } 2445 2446 if (rqpair->cq == NULL) { 2447 SPDK_ERRLOG("Unable to find a cq for qpair %p on poll group %p\n", qpair, qpair->poll_group); 2448 return -EINVAL; 2449 } 2450 2451 return 0; 2452 } 2453 2454 static int 2455 nvme_rdma_poll_group_disconnect_qpair(struct spdk_nvme_qpair *qpair) 2456 { 2457 struct nvme_rdma_qpair *rqpair = nvme_rdma_qpair(qpair); 2458 struct nvme_rdma_poll_group *group; 2459 struct nvme_rdma_destroyed_qpair *destroyed_qpair; 2460 enum nvme_qpair_state state; 2461 2462 if (rqpair->poll_group_disconnect_in_progress) { 2463 return -EINPROGRESS; 2464 } 2465 2466 rqpair->poll_group_disconnect_in_progress = true; 2467 state = nvme_qpair_get_state(qpair); 2468 group = nvme_rdma_poll_group(qpair->poll_group); 2469 rqpair->cq = NULL; 2470 2471 /* 2472 * We want to guard against an endless recursive loop while making 2473 * sure the qpair is disconnected before we disconnect it from the qpair. 2474 */ 2475 if (state > NVME_QPAIR_DISCONNECTING && state != NVME_QPAIR_DESTROYING) { 2476 nvme_ctrlr_disconnect_qpair(qpair); 2477 } 2478 2479 /* 2480 * If this fails, the system is in serious trouble, 2481 * just let the qpair get cleaned up immediately. 2482 */ 2483 destroyed_qpair = calloc(1, sizeof(*destroyed_qpair)); 2484 if (destroyed_qpair == NULL) { 2485 return 0; 2486 } 2487 2488 destroyed_qpair->destroyed_qpair_tracker = rqpair; 2489 destroyed_qpair->completed_cycles = 0; 2490 STAILQ_INSERT_TAIL(&group->destroyed_qpairs, destroyed_qpair, link); 2491 2492 rqpair->defer_deletion_to_pg = true; 2493 2494 rqpair->poll_group_disconnect_in_progress = false; 2495 return 0; 2496 } 2497 2498 static int 2499 nvme_rdma_poll_group_add(struct spdk_nvme_transport_poll_group *tgroup, 2500 struct spdk_nvme_qpair *qpair) 2501 { 2502 return 0; 2503 } 2504 2505 static int 2506 nvme_rdma_poll_group_remove(struct spdk_nvme_transport_poll_group *tgroup, 2507 struct spdk_nvme_qpair *qpair) 2508 { 2509 if (qpair->poll_group_tailq_head == &tgroup->connected_qpairs) { 2510 return nvme_poll_group_disconnect_qpair(qpair); 2511 } 2512 2513 return 0; 2514 } 2515 2516 static void 2517 nvme_rdma_poll_group_delete_qpair(struct nvme_rdma_poll_group *group, 2518 struct nvme_rdma_destroyed_qpair *qpair_tracker) 2519 { 2520 struct nvme_rdma_qpair *rqpair = qpair_tracker->destroyed_qpair_tracker; 2521 2522 rqpair->defer_deletion_to_pg = false; 2523 if (nvme_qpair_get_state(&rqpair->qpair) == NVME_QPAIR_DESTROYING) { 2524 nvme_rdma_ctrlr_delete_io_qpair(rqpair->qpair.ctrlr, &rqpair->qpair); 2525 } 2526 STAILQ_REMOVE(&group->destroyed_qpairs, qpair_tracker, nvme_rdma_destroyed_qpair, link); 2527 free(qpair_tracker); 2528 } 2529 2530 static int64_t 2531 nvme_rdma_poll_group_process_completions(struct spdk_nvme_transport_poll_group *tgroup, 2532 uint32_t completions_per_qpair, spdk_nvme_disconnected_qpair_cb disconnected_qpair_cb) 2533 { 2534 struct spdk_nvme_qpair *qpair, *tmp_qpair; 2535 struct nvme_rdma_destroyed_qpair *qpair_tracker, *tmp_qpair_tracker; 2536 struct nvme_rdma_qpair *rqpair; 2537 struct nvme_rdma_poll_group *group; 2538 struct nvme_rdma_poller *poller; 2539 int num_qpairs = 0, batch_size, rc; 2540 int64_t total_completions = 0; 2541 uint64_t completions_allowed = 0; 2542 uint64_t completions_per_poller = 0; 2543 uint64_t poller_completions = 0; 2544 uint64_t rdma_completions; 2545 2546 2547 if (completions_per_qpair == 0) { 2548 completions_per_qpair = MAX_COMPLETIONS_PER_POLL; 2549 } 2550 2551 group = nvme_rdma_poll_group(tgroup); 2552 STAILQ_FOREACH_SAFE(qpair, &tgroup->disconnected_qpairs, poll_group_stailq, tmp_qpair) { 2553 disconnected_qpair_cb(qpair, tgroup->group->ctx); 2554 } 2555 2556 STAILQ_FOREACH_SAFE(qpair, &tgroup->connected_qpairs, poll_group_stailq, tmp_qpair) { 2557 rqpair = nvme_rdma_qpair(qpair); 2558 rqpair->num_completions = 0; 2559 nvme_rdma_qpair_process_cm_event(rqpair); 2560 2561 if (spdk_unlikely(qpair->transport_failure_reason != SPDK_NVME_QPAIR_FAILURE_NONE)) { 2562 nvme_rdma_fail_qpair(qpair, 0); 2563 disconnected_qpair_cb(qpair, tgroup->group->ctx); 2564 continue; 2565 } 2566 num_qpairs++; 2567 } 2568 2569 completions_allowed = completions_per_qpair * num_qpairs; 2570 completions_per_poller = spdk_max(completions_allowed / group->num_pollers, 1); 2571 2572 STAILQ_FOREACH(poller, &group->pollers, link) { 2573 poller_completions = 0; 2574 rdma_completions = 0; 2575 do { 2576 poller->stats.polls++; 2577 batch_size = spdk_min((completions_per_poller - poller_completions), MAX_COMPLETIONS_PER_POLL); 2578 rc = nvme_rdma_cq_process_completions(poller->cq, batch_size, group, NULL, &rdma_completions); 2579 if (rc <= 0) { 2580 if (rc == -ECANCELED) { 2581 return -EIO; 2582 } else if (rc == 0) { 2583 poller->stats.idle_polls++; 2584 } 2585 break; 2586 } 2587 2588 poller_completions += rc; 2589 } while (poller_completions < completions_per_poller); 2590 total_completions += poller_completions; 2591 poller->stats.completions += rdma_completions; 2592 } 2593 2594 STAILQ_FOREACH_SAFE(qpair, &tgroup->connected_qpairs, poll_group_stailq, tmp_qpair) { 2595 rqpair = nvme_rdma_qpair(qpair); 2596 if (spdk_unlikely(qpair->ctrlr->timeout_enabled)) { 2597 nvme_rdma_qpair_check_timeout(qpair); 2598 } 2599 2600 nvme_rdma_qpair_submit_sends(rqpair); 2601 nvme_rdma_qpair_submit_recvs(rqpair); 2602 nvme_qpair_resubmit_requests(&rqpair->qpair, rqpair->num_completions); 2603 } 2604 2605 /* 2606 * Once a qpair is disconnected, we can still get flushed completions for those disconnected qpairs. 2607 * For most pieces of hardware, those requests will complete immediately. However, there are certain 2608 * cases where flushed requests will linger. Default is to destroy qpair after all completions are freed, 2609 * but have a fallback for other cases where we don't get all of our completions back. 2610 */ 2611 STAILQ_FOREACH_SAFE(qpair_tracker, &group->destroyed_qpairs, link, tmp_qpair_tracker) { 2612 qpair_tracker->completed_cycles++; 2613 rqpair = qpair_tracker->destroyed_qpair_tracker; 2614 if ((rqpair->current_num_sends == 0 && rqpair->current_num_recvs == 0) || 2615 qpair_tracker->completed_cycles > NVME_RDMA_DESTROYED_QPAIR_EXPIRATION_CYCLES) { 2616 nvme_rdma_poll_group_delete_qpair(group, qpair_tracker); 2617 } 2618 } 2619 2620 return total_completions; 2621 } 2622 2623 static int 2624 nvme_rdma_poll_group_destroy(struct spdk_nvme_transport_poll_group *tgroup) 2625 { 2626 struct nvme_rdma_poll_group *group = nvme_rdma_poll_group(tgroup); 2627 struct nvme_rdma_destroyed_qpair *qpair_tracker, *tmp_qpair_tracker; 2628 struct nvme_rdma_qpair *rqpair; 2629 2630 if (!STAILQ_EMPTY(&tgroup->connected_qpairs) || !STAILQ_EMPTY(&tgroup->disconnected_qpairs)) { 2631 return -EBUSY; 2632 } 2633 2634 STAILQ_FOREACH_SAFE(qpair_tracker, &group->destroyed_qpairs, link, tmp_qpair_tracker) { 2635 rqpair = qpair_tracker->destroyed_qpair_tracker; 2636 if (nvme_qpair_get_state(&rqpair->qpair) == NVME_QPAIR_DESTROYING) { 2637 rqpair->defer_deletion_to_pg = false; 2638 nvme_rdma_ctrlr_delete_io_qpair(rqpair->qpair.ctrlr, &rqpair->qpair); 2639 } 2640 2641 STAILQ_REMOVE(&group->destroyed_qpairs, qpair_tracker, nvme_rdma_destroyed_qpair, link); 2642 free(qpair_tracker); 2643 } 2644 2645 nvme_rdma_poll_group_free_pollers(group); 2646 free(group); 2647 2648 return 0; 2649 } 2650 2651 static int 2652 nvme_rdma_poll_group_get_stats(struct spdk_nvme_transport_poll_group *tgroup, 2653 struct spdk_nvme_transport_poll_group_stat **_stats) 2654 { 2655 struct nvme_rdma_poll_group *group; 2656 struct spdk_nvme_transport_poll_group_stat *stats; 2657 struct spdk_nvme_rdma_device_stat *device_stat; 2658 struct nvme_rdma_poller *poller; 2659 uint32_t i = 0; 2660 2661 if (tgroup == NULL || _stats == NULL) { 2662 SPDK_ERRLOG("Invalid stats or group pointer\n"); 2663 return -EINVAL; 2664 } 2665 2666 group = nvme_rdma_poll_group(tgroup); 2667 stats = calloc(1, sizeof(*stats)); 2668 if (!stats) { 2669 SPDK_ERRLOG("Can't allocate memory for RDMA stats\n"); 2670 return -ENOMEM; 2671 } 2672 stats->trtype = SPDK_NVME_TRANSPORT_RDMA; 2673 stats->rdma.num_devices = group->num_pollers; 2674 stats->rdma.device_stats = calloc(stats->rdma.num_devices, sizeof(*stats->rdma.device_stats)); 2675 if (!stats->rdma.device_stats) { 2676 SPDK_ERRLOG("Can't allocate memory for RDMA device stats\n"); 2677 free(stats); 2678 return -ENOMEM; 2679 } 2680 2681 STAILQ_FOREACH(poller, &group->pollers, link) { 2682 device_stat = &stats->rdma.device_stats[i]; 2683 device_stat->name = poller->device->device->name; 2684 device_stat->polls = poller->stats.polls; 2685 device_stat->idle_polls = poller->stats.idle_polls; 2686 device_stat->completions = poller->stats.completions; 2687 device_stat->queued_requests = poller->stats.queued_requests; 2688 device_stat->total_send_wrs = poller->stats.rdma_stats.send.num_submitted_wrs; 2689 device_stat->send_doorbell_updates = poller->stats.rdma_stats.send.doorbell_updates; 2690 device_stat->total_recv_wrs = poller->stats.rdma_stats.recv.num_submitted_wrs; 2691 device_stat->recv_doorbell_updates = poller->stats.rdma_stats.recv.doorbell_updates; 2692 i++; 2693 } 2694 2695 *_stats = stats; 2696 2697 return 0; 2698 } 2699 2700 static void 2701 nvme_rdma_poll_group_free_stats(struct spdk_nvme_transport_poll_group *tgroup, 2702 struct spdk_nvme_transport_poll_group_stat *stats) 2703 { 2704 if (stats) { 2705 free(stats->rdma.device_stats); 2706 } 2707 free(stats); 2708 } 2709 2710 void 2711 spdk_nvme_rdma_init_hooks(struct spdk_nvme_rdma_hooks *hooks) 2712 { 2713 g_nvme_hooks = *hooks; 2714 } 2715 2716 const struct spdk_nvme_transport_ops rdma_ops = { 2717 .name = "RDMA", 2718 .type = SPDK_NVME_TRANSPORT_RDMA, 2719 .ctrlr_construct = nvme_rdma_ctrlr_construct, 2720 .ctrlr_scan = nvme_fabric_ctrlr_scan, 2721 .ctrlr_destruct = nvme_rdma_ctrlr_destruct, 2722 .ctrlr_enable = nvme_rdma_ctrlr_enable, 2723 2724 .ctrlr_set_reg_4 = nvme_fabric_ctrlr_set_reg_4, 2725 .ctrlr_set_reg_8 = nvme_fabric_ctrlr_set_reg_8, 2726 .ctrlr_get_reg_4 = nvme_fabric_ctrlr_get_reg_4, 2727 .ctrlr_get_reg_8 = nvme_fabric_ctrlr_get_reg_8, 2728 2729 .ctrlr_get_max_xfer_size = nvme_rdma_ctrlr_get_max_xfer_size, 2730 .ctrlr_get_max_sges = nvme_rdma_ctrlr_get_max_sges, 2731 2732 .ctrlr_create_io_qpair = nvme_rdma_ctrlr_create_io_qpair, 2733 .ctrlr_delete_io_qpair = nvme_rdma_ctrlr_delete_io_qpair, 2734 .ctrlr_connect_qpair = nvme_rdma_ctrlr_connect_qpair, 2735 .ctrlr_disconnect_qpair = nvme_rdma_ctrlr_disconnect_qpair, 2736 2737 .qpair_abort_reqs = nvme_rdma_qpair_abort_reqs, 2738 .qpair_reset = nvme_rdma_qpair_reset, 2739 .qpair_submit_request = nvme_rdma_qpair_submit_request, 2740 .qpair_process_completions = nvme_rdma_qpair_process_completions, 2741 .qpair_iterate_requests = nvme_rdma_qpair_iterate_requests, 2742 .admin_qpair_abort_aers = nvme_rdma_admin_qpair_abort_aers, 2743 2744 .poll_group_create = nvme_rdma_poll_group_create, 2745 .poll_group_connect_qpair = nvme_rdma_poll_group_connect_qpair, 2746 .poll_group_disconnect_qpair = nvme_rdma_poll_group_disconnect_qpair, 2747 .poll_group_add = nvme_rdma_poll_group_add, 2748 .poll_group_remove = nvme_rdma_poll_group_remove, 2749 .poll_group_process_completions = nvme_rdma_poll_group_process_completions, 2750 .poll_group_destroy = nvme_rdma_poll_group_destroy, 2751 .poll_group_get_stats = nvme_rdma_poll_group_get_stats, 2752 .poll_group_free_stats = nvme_rdma_poll_group_free_stats, 2753 }; 2754 2755 SPDK_NVME_TRANSPORT_REGISTER(rdma, &rdma_ops); 2756