1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * NVMe over Fabrics RDMA target. 4 * Copyright (c) 2015-2016 HGST, a Western Digital Company. 5 */ 6 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 7 #include <linux/atomic.h> 8 #include <linux/blk-integrity.h> 9 #include <linux/ctype.h> 10 #include <linux/delay.h> 11 #include <linux/err.h> 12 #include <linux/init.h> 13 #include <linux/module.h> 14 #include <linux/nvme.h> 15 #include <linux/slab.h> 16 #include <linux/string.h> 17 #include <linux/wait.h> 18 #include <linux/inet.h> 19 #include <linux/unaligned.h> 20 21 #include <rdma/ib_verbs.h> 22 #include <rdma/rdma_cm.h> 23 #include <rdma/rw.h> 24 #include <rdma/ib_cm.h> 25 26 #include <linux/nvme-rdma.h> 27 #include "nvmet.h" 28 29 /* 30 * We allow at least 1 page, up to 4 SGEs, and up to 16KB of inline data 31 */ 32 #define NVMET_RDMA_DEFAULT_INLINE_DATA_SIZE PAGE_SIZE 33 #define NVMET_RDMA_MAX_INLINE_SGE 4 34 #define NVMET_RDMA_MAX_INLINE_DATA_SIZE max_t(int, SZ_16K, PAGE_SIZE) 35 36 /* Assume mpsmin == device_page_size == 4KB */ 37 #define NVMET_RDMA_MAX_MDTS 8 38 #define NVMET_RDMA_MAX_METADATA_MDTS 5 39 40 #define NVMET_RDMA_BACKLOG 128 41 42 #define NVMET_RDMA_DISCRETE_RSP_TAG -1 43 44 struct nvmet_rdma_srq; 45 46 struct nvmet_rdma_cmd { 47 struct ib_sge sge[NVMET_RDMA_MAX_INLINE_SGE + 1]; 48 struct ib_cqe cqe; 49 struct ib_recv_wr wr; 50 struct scatterlist inline_sg[NVMET_RDMA_MAX_INLINE_SGE]; 51 struct nvme_command *nvme_cmd; 52 struct nvmet_rdma_queue *queue; 53 struct nvmet_rdma_srq *nsrq; 54 }; 55 56 enum { 57 NVMET_RDMA_REQ_INLINE_DATA = (1 << 0), 58 }; 59 60 struct nvmet_rdma_rsp { 61 struct ib_sge send_sge; 62 struct ib_cqe send_cqe; 63 struct ib_send_wr send_wr; 64 65 struct nvmet_rdma_cmd *cmd; 66 struct nvmet_rdma_queue *queue; 67 68 struct ib_cqe read_cqe; 69 struct ib_cqe write_cqe; 70 struct rdma_rw_ctx rw; 71 72 struct nvmet_req req; 73 74 bool allocated; 75 u8 n_rdma; 76 u32 flags; 77 u32 invalidate_rkey; 78 79 struct list_head wait_list; 80 int tag; 81 }; 82 83 enum nvmet_rdma_queue_state { 84 NVMET_RDMA_Q_CONNECTING, 85 NVMET_RDMA_Q_LIVE, 86 NVMET_RDMA_Q_DISCONNECTING, 87 }; 88 89 struct nvmet_rdma_queue { 90 struct rdma_cm_id *cm_id; 91 struct ib_qp *qp; 92 struct nvmet_port *port; 93 struct ib_cq *cq; 94 atomic_t sq_wr_avail; 95 struct nvmet_rdma_device *dev; 96 struct nvmet_rdma_srq *nsrq; 97 spinlock_t state_lock; 98 enum nvmet_rdma_queue_state state; 99 struct nvmet_cq nvme_cq; 100 struct nvmet_sq nvme_sq; 101 102 struct nvmet_rdma_rsp *rsps; 103 struct sbitmap rsp_tags; 104 struct nvmet_rdma_cmd *cmds; 105 106 struct work_struct release_work; 107 struct list_head rsp_wait_list; 108 struct list_head rsp_wr_wait_list; 109 spinlock_t rsp_wr_wait_lock; 110 111 int idx; 112 int host_qid; 113 int comp_vector; 114 int recv_queue_size; 115 int send_queue_size; 116 117 struct list_head queue_list; 118 }; 119 120 struct nvmet_rdma_port { 121 struct nvmet_port *nport; 122 struct sockaddr_storage addr; 123 struct rdma_cm_id *cm_id; 124 struct delayed_work repair_work; 125 }; 126 127 struct nvmet_rdma_srq { 128 struct ib_srq *srq; 129 struct nvmet_rdma_cmd *cmds; 130 struct nvmet_rdma_device *ndev; 131 }; 132 133 struct nvmet_rdma_device { 134 struct ib_device *device; 135 struct ib_pd *pd; 136 struct nvmet_rdma_srq **srqs; 137 int srq_count; 138 size_t srq_size; 139 struct kref ref; 140 struct list_head entry; 141 int inline_data_size; 142 int inline_page_count; 143 }; 144 145 static bool nvmet_rdma_use_srq; 146 module_param_named(use_srq, nvmet_rdma_use_srq, bool, 0444); 147 MODULE_PARM_DESC(use_srq, "Use shared receive queue."); 148 149 static int srq_size_set(const char *val, const struct kernel_param *kp); 150 static const struct kernel_param_ops srq_size_ops = { 151 .set = srq_size_set, 152 .get = param_get_int, 153 }; 154 155 static int nvmet_rdma_srq_size = 1024; 156 module_param_cb(srq_size, &srq_size_ops, &nvmet_rdma_srq_size, 0644); 157 MODULE_PARM_DESC(srq_size, "set Shared Receive Queue (SRQ) size, should >= 256 (default: 1024)"); 158 159 static DEFINE_IDA(nvmet_rdma_queue_ida); 160 static LIST_HEAD(nvmet_rdma_queue_list); 161 static DEFINE_MUTEX(nvmet_rdma_queue_mutex); 162 163 static LIST_HEAD(device_list); 164 static DEFINE_MUTEX(device_list_mutex); 165 166 static bool nvmet_rdma_execute_command(struct nvmet_rdma_rsp *rsp); 167 static void nvmet_rdma_send_done(struct ib_cq *cq, struct ib_wc *wc); 168 static void nvmet_rdma_recv_done(struct ib_cq *cq, struct ib_wc *wc); 169 static void nvmet_rdma_read_data_done(struct ib_cq *cq, struct ib_wc *wc); 170 static void nvmet_rdma_write_data_done(struct ib_cq *cq, struct ib_wc *wc); 171 static void nvmet_rdma_qp_event(struct ib_event *event, void *priv); 172 static void nvmet_rdma_queue_disconnect(struct nvmet_rdma_queue *queue); 173 static void nvmet_rdma_free_rsp(struct nvmet_rdma_device *ndev, 174 struct nvmet_rdma_rsp *r); 175 static int nvmet_rdma_alloc_rsp(struct nvmet_rdma_device *ndev, 176 struct nvmet_rdma_rsp *r, 177 int tag); 178 179 static const struct nvmet_fabrics_ops nvmet_rdma_ops; 180 181 static int srq_size_set(const char *val, const struct kernel_param *kp) 182 { 183 int n = 0, ret; 184 185 ret = kstrtoint(val, 10, &n); 186 if (ret != 0 || n < 256) 187 return -EINVAL; 188 189 return param_set_int(val, kp); 190 } 191 192 static int num_pages(int len) 193 { 194 return 1 + (((len - 1) & PAGE_MASK) >> PAGE_SHIFT); 195 } 196 197 static inline bool nvmet_rdma_need_data_in(struct nvmet_rdma_rsp *rsp) 198 { 199 return nvme_is_write(rsp->req.cmd) && 200 rsp->req.transfer_len && 201 !(rsp->flags & NVMET_RDMA_REQ_INLINE_DATA); 202 } 203 204 static inline bool nvmet_rdma_need_data_out(struct nvmet_rdma_rsp *rsp) 205 { 206 return !nvme_is_write(rsp->req.cmd) && 207 rsp->req.transfer_len && 208 !rsp->req.cqe->status && 209 !(rsp->flags & NVMET_RDMA_REQ_INLINE_DATA); 210 } 211 212 static inline struct nvmet_rdma_rsp * 213 nvmet_rdma_get_rsp(struct nvmet_rdma_queue *queue) 214 { 215 struct nvmet_rdma_rsp *rsp = NULL; 216 int tag; 217 218 tag = sbitmap_get(&queue->rsp_tags); 219 if (tag >= 0) 220 rsp = &queue->rsps[tag]; 221 222 if (unlikely(!rsp)) { 223 int ret; 224 225 rsp = kzalloc_obj(*rsp); 226 if (unlikely(!rsp)) 227 return NULL; 228 ret = nvmet_rdma_alloc_rsp(queue->dev, rsp, 229 NVMET_RDMA_DISCRETE_RSP_TAG); 230 if (unlikely(ret)) { 231 kfree(rsp); 232 return NULL; 233 } 234 } 235 236 return rsp; 237 } 238 239 static inline void 240 nvmet_rdma_put_rsp(struct nvmet_rdma_rsp *rsp) 241 { 242 if (unlikely(rsp->tag == NVMET_RDMA_DISCRETE_RSP_TAG)) { 243 nvmet_rdma_free_rsp(rsp->queue->dev, rsp); 244 kfree(rsp); 245 return; 246 } 247 248 sbitmap_clear_bit(&rsp->queue->rsp_tags, rsp->tag); 249 } 250 251 static void nvmet_rdma_free_inline_pages(struct nvmet_rdma_device *ndev, 252 struct nvmet_rdma_cmd *c) 253 { 254 struct scatterlist *sg; 255 struct ib_sge *sge; 256 int i; 257 258 if (!ndev->inline_data_size) 259 return; 260 261 sg = c->inline_sg; 262 sge = &c->sge[1]; 263 264 for (i = 0; i < ndev->inline_page_count; i++, sg++, sge++) { 265 if (sge->length) 266 ib_dma_unmap_page(ndev->device, sge->addr, 267 sge->length, DMA_FROM_DEVICE); 268 if (sg_page(sg)) 269 __free_page(sg_page(sg)); 270 } 271 } 272 273 static int nvmet_rdma_alloc_inline_pages(struct nvmet_rdma_device *ndev, 274 struct nvmet_rdma_cmd *c) 275 { 276 struct scatterlist *sg; 277 struct ib_sge *sge; 278 struct page *pg; 279 int len; 280 int i; 281 282 if (!ndev->inline_data_size) 283 return 0; 284 285 sg = c->inline_sg; 286 sg_init_table(sg, ndev->inline_page_count); 287 sge = &c->sge[1]; 288 len = ndev->inline_data_size; 289 290 for (i = 0; i < ndev->inline_page_count; i++, sg++, sge++) { 291 pg = alloc_page(GFP_KERNEL); 292 if (!pg) 293 goto out_err; 294 sg_assign_page(sg, pg); 295 sge->addr = ib_dma_map_page(ndev->device, 296 pg, 0, PAGE_SIZE, DMA_FROM_DEVICE); 297 if (ib_dma_mapping_error(ndev->device, sge->addr)) 298 goto out_err; 299 sge->length = min_t(int, len, PAGE_SIZE); 300 sge->lkey = ndev->pd->local_dma_lkey; 301 len -= sge->length; 302 } 303 304 return 0; 305 out_err: 306 for (; i >= 0; i--, sg--, sge--) { 307 if (sge->length) 308 ib_dma_unmap_page(ndev->device, sge->addr, 309 sge->length, DMA_FROM_DEVICE); 310 if (sg_page(sg)) 311 __free_page(sg_page(sg)); 312 } 313 return -ENOMEM; 314 } 315 316 static int nvmet_rdma_alloc_cmd(struct nvmet_rdma_device *ndev, 317 struct nvmet_rdma_cmd *c, bool admin) 318 { 319 /* NVMe command / RDMA RECV */ 320 c->nvme_cmd = kmalloc_obj(*c->nvme_cmd); 321 if (!c->nvme_cmd) 322 goto out; 323 324 c->sge[0].addr = ib_dma_map_single(ndev->device, c->nvme_cmd, 325 sizeof(*c->nvme_cmd), DMA_FROM_DEVICE); 326 if (ib_dma_mapping_error(ndev->device, c->sge[0].addr)) 327 goto out_free_cmd; 328 329 c->sge[0].length = sizeof(*c->nvme_cmd); 330 c->sge[0].lkey = ndev->pd->local_dma_lkey; 331 332 if (!admin && nvmet_rdma_alloc_inline_pages(ndev, c)) 333 goto out_unmap_cmd; 334 335 c->cqe.done = nvmet_rdma_recv_done; 336 337 c->wr.wr_cqe = &c->cqe; 338 c->wr.sg_list = c->sge; 339 c->wr.num_sge = admin ? 1 : ndev->inline_page_count + 1; 340 341 return 0; 342 343 out_unmap_cmd: 344 ib_dma_unmap_single(ndev->device, c->sge[0].addr, 345 sizeof(*c->nvme_cmd), DMA_FROM_DEVICE); 346 out_free_cmd: 347 kfree(c->nvme_cmd); 348 349 out: 350 return -ENOMEM; 351 } 352 353 static void nvmet_rdma_free_cmd(struct nvmet_rdma_device *ndev, 354 struct nvmet_rdma_cmd *c, bool admin) 355 { 356 if (!admin) 357 nvmet_rdma_free_inline_pages(ndev, c); 358 ib_dma_unmap_single(ndev->device, c->sge[0].addr, 359 sizeof(*c->nvme_cmd), DMA_FROM_DEVICE); 360 kfree(c->nvme_cmd); 361 } 362 363 static struct nvmet_rdma_cmd * 364 nvmet_rdma_alloc_cmds(struct nvmet_rdma_device *ndev, 365 int nr_cmds, bool admin) 366 { 367 struct nvmet_rdma_cmd *cmds; 368 int ret = -EINVAL, i; 369 370 cmds = kvzalloc_objs(struct nvmet_rdma_cmd, nr_cmds); 371 if (!cmds) 372 goto out; 373 374 for (i = 0; i < nr_cmds; i++) { 375 ret = nvmet_rdma_alloc_cmd(ndev, cmds + i, admin); 376 if (ret) 377 goto out_free; 378 } 379 380 return cmds; 381 382 out_free: 383 while (--i >= 0) 384 nvmet_rdma_free_cmd(ndev, cmds + i, admin); 385 kvfree(cmds); 386 out: 387 return ERR_PTR(ret); 388 } 389 390 static void nvmet_rdma_free_cmds(struct nvmet_rdma_device *ndev, 391 struct nvmet_rdma_cmd *cmds, int nr_cmds, bool admin) 392 { 393 int i; 394 395 for (i = 0; i < nr_cmds; i++) 396 nvmet_rdma_free_cmd(ndev, cmds + i, admin); 397 kvfree(cmds); 398 } 399 400 static int nvmet_rdma_alloc_rsp(struct nvmet_rdma_device *ndev, 401 struct nvmet_rdma_rsp *r, int tag) 402 { 403 /* NVMe CQE / RDMA SEND */ 404 r->req.cqe = kmalloc_obj(*r->req.cqe); 405 if (!r->req.cqe) 406 goto out; 407 408 r->send_sge.addr = ib_dma_map_single(ndev->device, r->req.cqe, 409 sizeof(*r->req.cqe), DMA_TO_DEVICE); 410 if (ib_dma_mapping_error(ndev->device, r->send_sge.addr)) 411 goto out_free_rsp; 412 413 if (ib_dma_pci_p2p_dma_supported(ndev->device)) 414 r->req.p2p_client = &ndev->device->dev; 415 r->send_sge.length = sizeof(*r->req.cqe); 416 r->send_sge.lkey = ndev->pd->local_dma_lkey; 417 418 r->send_cqe.done = nvmet_rdma_send_done; 419 420 r->send_wr.wr_cqe = &r->send_cqe; 421 r->send_wr.sg_list = &r->send_sge; 422 r->send_wr.num_sge = 1; 423 r->send_wr.send_flags = IB_SEND_SIGNALED; 424 425 /* Data In / RDMA READ */ 426 r->read_cqe.done = nvmet_rdma_read_data_done; 427 /* Data Out / RDMA WRITE */ 428 r->write_cqe.done = nvmet_rdma_write_data_done; 429 r->tag = tag; 430 431 return 0; 432 433 out_free_rsp: 434 kfree(r->req.cqe); 435 out: 436 return -ENOMEM; 437 } 438 439 static void nvmet_rdma_free_rsp(struct nvmet_rdma_device *ndev, 440 struct nvmet_rdma_rsp *r) 441 { 442 ib_dma_unmap_single(ndev->device, r->send_sge.addr, 443 sizeof(*r->req.cqe), DMA_TO_DEVICE); 444 kfree(r->req.cqe); 445 } 446 447 static int 448 nvmet_rdma_alloc_rsps(struct nvmet_rdma_queue *queue) 449 { 450 struct nvmet_rdma_device *ndev = queue->dev; 451 int nr_rsps = queue->recv_queue_size * 2; 452 int ret = -ENOMEM, i; 453 454 if (sbitmap_init_node(&queue->rsp_tags, nr_rsps, -1, GFP_KERNEL, 455 NUMA_NO_NODE, false, true)) 456 goto out; 457 458 queue->rsps = kvzalloc_objs(struct nvmet_rdma_rsp, nr_rsps); 459 if (!queue->rsps) 460 goto out_free_sbitmap; 461 462 for (i = 0; i < nr_rsps; i++) { 463 struct nvmet_rdma_rsp *rsp = &queue->rsps[i]; 464 465 ret = nvmet_rdma_alloc_rsp(ndev, rsp, i); 466 if (ret) 467 goto out_free; 468 } 469 470 return 0; 471 472 out_free: 473 while (--i >= 0) 474 nvmet_rdma_free_rsp(ndev, &queue->rsps[i]); 475 kvfree(queue->rsps); 476 out_free_sbitmap: 477 sbitmap_free(&queue->rsp_tags); 478 out: 479 return ret; 480 } 481 482 static void nvmet_rdma_free_rsps(struct nvmet_rdma_queue *queue) 483 { 484 struct nvmet_rdma_device *ndev = queue->dev; 485 int i, nr_rsps = queue->recv_queue_size * 2; 486 487 for (i = 0; i < nr_rsps; i++) 488 nvmet_rdma_free_rsp(ndev, &queue->rsps[i]); 489 kvfree(queue->rsps); 490 sbitmap_free(&queue->rsp_tags); 491 } 492 493 static int nvmet_rdma_post_recv(struct nvmet_rdma_device *ndev, 494 struct nvmet_rdma_cmd *cmd) 495 { 496 int ret; 497 498 ib_dma_sync_single_for_device(ndev->device, 499 cmd->sge[0].addr, cmd->sge[0].length, 500 DMA_FROM_DEVICE); 501 502 if (cmd->nsrq) 503 ret = ib_post_srq_recv(cmd->nsrq->srq, &cmd->wr, NULL); 504 else 505 ret = ib_post_recv(cmd->queue->qp, &cmd->wr, NULL); 506 507 if (unlikely(ret)) 508 pr_err("post_recv cmd failed\n"); 509 510 return ret; 511 } 512 513 static void nvmet_rdma_process_wr_wait_list(struct nvmet_rdma_queue *queue) 514 { 515 spin_lock(&queue->rsp_wr_wait_lock); 516 while (!list_empty(&queue->rsp_wr_wait_list)) { 517 struct nvmet_rdma_rsp *rsp; 518 bool ret; 519 520 rsp = list_entry(queue->rsp_wr_wait_list.next, 521 struct nvmet_rdma_rsp, wait_list); 522 list_del(&rsp->wait_list); 523 524 spin_unlock(&queue->rsp_wr_wait_lock); 525 ret = nvmet_rdma_execute_command(rsp); 526 spin_lock(&queue->rsp_wr_wait_lock); 527 528 if (!ret) { 529 list_add(&rsp->wait_list, &queue->rsp_wr_wait_list); 530 break; 531 } 532 } 533 spin_unlock(&queue->rsp_wr_wait_lock); 534 } 535 536 static u16 nvmet_rdma_check_pi_status(struct ib_mr *sig_mr) 537 { 538 struct ib_mr_status mr_status; 539 int ret; 540 u16 status = 0; 541 542 ret = ib_check_mr_status(sig_mr, IB_MR_CHECK_SIG_STATUS, &mr_status); 543 if (ret) { 544 pr_err("ib_check_mr_status failed, ret %d\n", ret); 545 return NVME_SC_INVALID_PI; 546 } 547 548 if (mr_status.fail_status & IB_MR_CHECK_SIG_STATUS) { 549 switch (mr_status.sig_err.err_type) { 550 case IB_SIG_BAD_GUARD: 551 status = NVME_SC_GUARD_CHECK; 552 break; 553 case IB_SIG_BAD_REFTAG: 554 status = NVME_SC_REFTAG_CHECK; 555 break; 556 case IB_SIG_BAD_APPTAG: 557 status = NVME_SC_APPTAG_CHECK; 558 break; 559 } 560 pr_err("PI error found type %d expected 0x%x vs actual 0x%x\n", 561 mr_status.sig_err.err_type, 562 mr_status.sig_err.expected, 563 mr_status.sig_err.actual); 564 } 565 566 return status; 567 } 568 569 static void nvmet_rdma_set_sig_domain(struct blk_integrity *bi, 570 struct nvme_command *cmd, struct ib_sig_domain *domain, 571 u16 control, u8 pi_type) 572 { 573 domain->sig_type = IB_SIG_TYPE_T10_DIF; 574 domain->sig.dif.bg_type = IB_T10DIF_CRC; 575 domain->sig.dif.pi_interval = 1 << bi->interval_exp; 576 domain->sig.dif.ref_tag = le32_to_cpu(cmd->rw.reftag); 577 if (control & NVME_RW_PRINFO_PRCHK_REF) 578 domain->sig.dif.ref_remap = true; 579 580 domain->sig.dif.app_tag = le16_to_cpu(cmd->rw.lbat); 581 domain->sig.dif.apptag_check_mask = le16_to_cpu(cmd->rw.lbatm); 582 domain->sig.dif.app_escape = true; 583 if (pi_type == NVME_NS_DPS_PI_TYPE3) 584 domain->sig.dif.ref_escape = true; 585 } 586 587 static void nvmet_rdma_set_sig_attrs(struct nvmet_req *req, 588 struct ib_sig_attrs *sig_attrs) 589 { 590 struct nvme_command *cmd = req->cmd; 591 u16 control = le16_to_cpu(cmd->rw.control); 592 u8 pi_type = req->ns->pi_type; 593 struct blk_integrity *bi; 594 595 bi = bdev_get_integrity(req->ns->bdev); 596 597 memset(sig_attrs, 0, sizeof(*sig_attrs)); 598 599 if (control & NVME_RW_PRINFO_PRACT) { 600 /* for WRITE_INSERT/READ_STRIP no wire domain */ 601 sig_attrs->wire.sig_type = IB_SIG_TYPE_NONE; 602 nvmet_rdma_set_sig_domain(bi, cmd, &sig_attrs->mem, control, 603 pi_type); 604 /* Clear the PRACT bit since HCA will generate/verify the PI */ 605 control &= ~NVME_RW_PRINFO_PRACT; 606 cmd->rw.control = cpu_to_le16(control); 607 /* PI is added by the HW */ 608 req->transfer_len += req->metadata_len; 609 } else { 610 /* for WRITE_PASS/READ_PASS both wire/memory domains exist */ 611 nvmet_rdma_set_sig_domain(bi, cmd, &sig_attrs->wire, control, 612 pi_type); 613 nvmet_rdma_set_sig_domain(bi, cmd, &sig_attrs->mem, control, 614 pi_type); 615 } 616 617 if (control & NVME_RW_PRINFO_PRCHK_REF) 618 sig_attrs->check_mask |= IB_SIG_CHECK_REFTAG; 619 if (control & NVME_RW_PRINFO_PRCHK_GUARD) 620 sig_attrs->check_mask |= IB_SIG_CHECK_GUARD; 621 if (control & NVME_RW_PRINFO_PRCHK_APP) 622 sig_attrs->check_mask |= IB_SIG_CHECK_APPTAG; 623 } 624 625 static int nvmet_rdma_rw_ctx_init(struct nvmet_rdma_rsp *rsp, u64 addr, u32 key, 626 struct ib_sig_attrs *sig_attrs) 627 { 628 struct rdma_cm_id *cm_id = rsp->queue->cm_id; 629 struct nvmet_req *req = &rsp->req; 630 int ret; 631 632 if (req->metadata_len) 633 ret = rdma_rw_ctx_signature_init(&rsp->rw, cm_id->qp, 634 cm_id->port_num, req->sg, req->sg_cnt, 635 req->metadata_sg, req->metadata_sg_cnt, sig_attrs, 636 addr, key, nvmet_data_dir(req)); 637 else 638 ret = rdma_rw_ctx_init(&rsp->rw, cm_id->qp, cm_id->port_num, 639 req->sg, req->sg_cnt, 0, addr, key, 640 nvmet_data_dir(req)); 641 642 return ret; 643 } 644 645 static void nvmet_rdma_rw_ctx_destroy(struct nvmet_rdma_rsp *rsp) 646 { 647 struct rdma_cm_id *cm_id = rsp->queue->cm_id; 648 struct nvmet_req *req = &rsp->req; 649 650 if (req->metadata_len) 651 rdma_rw_ctx_destroy_signature(&rsp->rw, cm_id->qp, 652 cm_id->port_num, req->sg, req->sg_cnt, 653 req->metadata_sg, req->metadata_sg_cnt, 654 nvmet_data_dir(req)); 655 else 656 rdma_rw_ctx_destroy(&rsp->rw, cm_id->qp, cm_id->port_num, 657 req->sg, req->sg_cnt, nvmet_data_dir(req)); 658 } 659 660 static void nvmet_rdma_release_rsp(struct nvmet_rdma_rsp *rsp) 661 { 662 struct nvmet_rdma_queue *queue = rsp->queue; 663 664 atomic_add(1 + rsp->n_rdma, &queue->sq_wr_avail); 665 666 if (rsp->n_rdma) 667 nvmet_rdma_rw_ctx_destroy(rsp); 668 669 if (rsp->req.sg < rsp->cmd->inline_sg || 670 rsp->req.sg >= rsp->cmd->inline_sg + queue->dev->inline_page_count) 671 nvmet_req_free_sgls(&rsp->req); 672 673 if (unlikely(!list_empty_careful(&queue->rsp_wr_wait_list))) 674 nvmet_rdma_process_wr_wait_list(queue); 675 676 nvmet_rdma_put_rsp(rsp); 677 } 678 679 static void nvmet_rdma_error_comp(struct nvmet_rdma_queue *queue) 680 { 681 if (queue->nvme_sq.ctrl) { 682 nvmet_ctrl_fatal_error(queue->nvme_sq.ctrl); 683 } else { 684 /* 685 * we didn't setup the controller yet in case 686 * of admin connect error, just disconnect and 687 * cleanup the queue 688 */ 689 nvmet_rdma_queue_disconnect(queue); 690 } 691 } 692 693 static void nvmet_rdma_send_done(struct ib_cq *cq, struct ib_wc *wc) 694 { 695 struct nvmet_rdma_rsp *rsp = 696 container_of(wc->wr_cqe, struct nvmet_rdma_rsp, send_cqe); 697 struct nvmet_rdma_queue *queue = wc->qp->qp_context; 698 699 nvmet_rdma_release_rsp(rsp); 700 701 if (unlikely(wc->status != IB_WC_SUCCESS && 702 wc->status != IB_WC_WR_FLUSH_ERR)) { 703 pr_err("SEND for CQE 0x%p failed with status %s (%d).\n", 704 wc->wr_cqe, ib_wc_status_msg(wc->status), wc->status); 705 nvmet_rdma_error_comp(queue); 706 } 707 } 708 709 static void nvmet_rdma_queue_response(struct nvmet_req *req) 710 { 711 struct nvmet_rdma_rsp *rsp = 712 container_of(req, struct nvmet_rdma_rsp, req); 713 struct rdma_cm_id *cm_id = rsp->queue->cm_id; 714 struct ib_send_wr *first_wr; 715 716 if (rsp->invalidate_rkey) { 717 rsp->send_wr.opcode = IB_WR_SEND_WITH_INV; 718 rsp->send_wr.ex.invalidate_rkey = rsp->invalidate_rkey; 719 } else { 720 rsp->send_wr.opcode = IB_WR_SEND; 721 } 722 723 if (nvmet_rdma_need_data_out(rsp)) { 724 if (rsp->req.metadata_len) 725 first_wr = rdma_rw_ctx_wrs(&rsp->rw, cm_id->qp, 726 cm_id->port_num, &rsp->write_cqe, NULL); 727 else 728 first_wr = rdma_rw_ctx_wrs(&rsp->rw, cm_id->qp, 729 cm_id->port_num, NULL, &rsp->send_wr); 730 } else { 731 first_wr = &rsp->send_wr; 732 } 733 734 nvmet_rdma_post_recv(rsp->queue->dev, rsp->cmd); 735 736 ib_dma_sync_single_for_device(rsp->queue->dev->device, 737 rsp->send_sge.addr, rsp->send_sge.length, 738 DMA_TO_DEVICE); 739 740 if (unlikely(ib_post_send(cm_id->qp, first_wr, NULL))) { 741 pr_err("sending cmd response failed\n"); 742 nvmet_rdma_release_rsp(rsp); 743 } 744 } 745 746 static void nvmet_rdma_read_data_done(struct ib_cq *cq, struct ib_wc *wc) 747 { 748 struct nvmet_rdma_rsp *rsp = 749 container_of(wc->wr_cqe, struct nvmet_rdma_rsp, read_cqe); 750 struct nvmet_rdma_queue *queue = wc->qp->qp_context; 751 u16 status = 0; 752 753 WARN_ON(rsp->n_rdma <= 0); 754 atomic_add(rsp->n_rdma, &queue->sq_wr_avail); 755 rsp->n_rdma = 0; 756 757 if (unlikely(wc->status != IB_WC_SUCCESS)) { 758 nvmet_rdma_rw_ctx_destroy(rsp); 759 nvmet_req_uninit(&rsp->req); 760 nvmet_rdma_release_rsp(rsp); 761 if (wc->status != IB_WC_WR_FLUSH_ERR) { 762 pr_info("RDMA READ for CQE 0x%p failed with status %s (%d).\n", 763 wc->wr_cqe, ib_wc_status_msg(wc->status), wc->status); 764 nvmet_rdma_error_comp(queue); 765 } 766 return; 767 } 768 769 if (rsp->req.metadata_len) 770 status = nvmet_rdma_check_pi_status(rsp->rw.reg->mr); 771 nvmet_rdma_rw_ctx_destroy(rsp); 772 773 if (unlikely(status)) 774 nvmet_req_complete(&rsp->req, status); 775 else 776 rsp->req.execute(&rsp->req); 777 } 778 779 static void nvmet_rdma_write_data_done(struct ib_cq *cq, struct ib_wc *wc) 780 { 781 struct nvmet_rdma_rsp *rsp = 782 container_of(wc->wr_cqe, struct nvmet_rdma_rsp, write_cqe); 783 struct nvmet_rdma_queue *queue = wc->qp->qp_context; 784 struct rdma_cm_id *cm_id = rsp->queue->cm_id; 785 u16 status; 786 787 if (!IS_ENABLED(CONFIG_BLK_DEV_INTEGRITY)) 788 return; 789 790 WARN_ON(rsp->n_rdma <= 0); 791 atomic_add(rsp->n_rdma, &queue->sq_wr_avail); 792 rsp->n_rdma = 0; 793 794 if (unlikely(wc->status != IB_WC_SUCCESS)) { 795 nvmet_rdma_rw_ctx_destroy(rsp); 796 nvmet_req_uninit(&rsp->req); 797 nvmet_rdma_release_rsp(rsp); 798 if (wc->status != IB_WC_WR_FLUSH_ERR) { 799 pr_info("RDMA WRITE for CQE failed with status %s (%d).\n", 800 ib_wc_status_msg(wc->status), wc->status); 801 nvmet_rdma_error_comp(queue); 802 } 803 return; 804 } 805 806 /* 807 * Upon RDMA completion check the signature status 808 * - if succeeded send good NVMe response 809 * - if failed send bad NVMe response with appropriate error 810 */ 811 status = nvmet_rdma_check_pi_status(rsp->rw.reg->mr); 812 if (unlikely(status)) 813 rsp->req.cqe->status = cpu_to_le16(status << 1); 814 nvmet_rdma_rw_ctx_destroy(rsp); 815 816 if (unlikely(ib_post_send(cm_id->qp, &rsp->send_wr, NULL))) { 817 pr_err("sending cmd response failed\n"); 818 nvmet_rdma_release_rsp(rsp); 819 } 820 } 821 822 static void nvmet_rdma_use_inline_sg(struct nvmet_rdma_rsp *rsp, u32 len, 823 u64 off) 824 { 825 u64 page_off = off % PAGE_SIZE; 826 u64 page_idx = off / PAGE_SIZE; 827 int sg_count = num_pages(page_off + len); 828 struct scatterlist *sg; 829 int i; 830 831 sg = &rsp->cmd->inline_sg[page_idx]; 832 for (i = 0; i < sg_count; i++, sg++) { 833 if (i < sg_count - 1) 834 sg_unmark_end(sg); 835 else 836 sg_mark_end(sg); 837 sg->offset = page_off; 838 sg->length = min_t(u64, len, PAGE_SIZE - page_off); 839 len -= sg->length; 840 page_off = 0; 841 } 842 843 rsp->req.sg = &rsp->cmd->inline_sg[page_idx]; 844 rsp->req.sg_cnt = sg_count; 845 } 846 847 static u16 nvmet_rdma_map_sgl_inline(struct nvmet_rdma_rsp *rsp) 848 { 849 struct nvme_sgl_desc *sgl = &rsp->req.cmd->common.dptr.sgl; 850 u64 off = le64_to_cpu(sgl->addr); 851 u32 len = le32_to_cpu(sgl->length); 852 853 if (!nvme_is_write(rsp->req.cmd)) { 854 rsp->req.error_loc = 855 offsetof(struct nvme_common_command, opcode); 856 return NVME_SC_INVALID_FIELD | NVME_STATUS_DNR; 857 } 858 859 if (off + len > rsp->queue->dev->inline_data_size) { 860 pr_err("invalid inline data offset!\n"); 861 return NVME_SC_SGL_INVALID_OFFSET | NVME_STATUS_DNR; 862 } 863 864 /* no data command? */ 865 if (!len) 866 return 0; 867 868 nvmet_rdma_use_inline_sg(rsp, len, off); 869 rsp->flags |= NVMET_RDMA_REQ_INLINE_DATA; 870 rsp->req.transfer_len += len; 871 return 0; 872 } 873 874 static u16 nvmet_rdma_map_sgl_keyed(struct nvmet_rdma_rsp *rsp, 875 struct nvme_keyed_sgl_desc *sgl, bool invalidate) 876 { 877 u64 addr = le64_to_cpu(sgl->addr); 878 u32 key = get_unaligned_le32(sgl->key); 879 struct ib_sig_attrs sig_attrs; 880 int ret; 881 882 rsp->req.transfer_len = get_unaligned_le24(sgl->length); 883 884 /* no data command? */ 885 if (!rsp->req.transfer_len) 886 return 0; 887 888 if (rsp->req.metadata_len) 889 nvmet_rdma_set_sig_attrs(&rsp->req, &sig_attrs); 890 891 ret = nvmet_req_alloc_sgls(&rsp->req); 892 if (unlikely(ret < 0)) 893 goto error_out; 894 895 ret = nvmet_rdma_rw_ctx_init(rsp, addr, key, &sig_attrs); 896 if (unlikely(ret < 0)) 897 goto error_out; 898 rsp->n_rdma += ret; 899 900 if (invalidate) 901 rsp->invalidate_rkey = key; 902 903 return 0; 904 905 error_out: 906 rsp->req.transfer_len = 0; 907 return NVME_SC_INTERNAL; 908 } 909 910 static u16 nvmet_rdma_map_sgl(struct nvmet_rdma_rsp *rsp) 911 { 912 struct nvme_keyed_sgl_desc *sgl = &rsp->req.cmd->common.dptr.ksgl; 913 914 switch (sgl->type >> 4) { 915 case NVME_SGL_FMT_DATA_DESC: 916 switch (sgl->type & 0xf) { 917 case NVME_SGL_FMT_OFFSET: 918 return nvmet_rdma_map_sgl_inline(rsp); 919 default: 920 pr_err("invalid SGL subtype: %#x\n", sgl->type); 921 rsp->req.error_loc = 922 offsetof(struct nvme_common_command, dptr); 923 return NVME_SC_INVALID_FIELD | NVME_STATUS_DNR; 924 } 925 case NVME_KEY_SGL_FMT_DATA_DESC: 926 switch (sgl->type & 0xf) { 927 case NVME_SGL_FMT_ADDRESS | NVME_SGL_FMT_INVALIDATE: 928 return nvmet_rdma_map_sgl_keyed(rsp, sgl, true); 929 case NVME_SGL_FMT_ADDRESS: 930 return nvmet_rdma_map_sgl_keyed(rsp, sgl, false); 931 default: 932 pr_err("invalid SGL subtype: %#x\n", sgl->type); 933 rsp->req.error_loc = 934 offsetof(struct nvme_common_command, dptr); 935 return NVME_SC_INVALID_FIELD | NVME_STATUS_DNR; 936 } 937 default: 938 pr_err("invalid SGL type: %#x\n", sgl->type); 939 rsp->req.error_loc = offsetof(struct nvme_common_command, dptr); 940 return NVME_SC_SGL_INVALID_TYPE | NVME_STATUS_DNR; 941 } 942 } 943 944 static bool nvmet_rdma_execute_command(struct nvmet_rdma_rsp *rsp) 945 { 946 struct nvmet_rdma_queue *queue = rsp->queue; 947 948 if (unlikely(atomic_sub_return(1 + rsp->n_rdma, 949 &queue->sq_wr_avail) < 0)) { 950 pr_debug("IB send queue full (needed %d): queue %u cntlid %u\n", 951 1 + rsp->n_rdma, queue->idx, 952 queue->nvme_sq.ctrl->cntlid); 953 atomic_add(1 + rsp->n_rdma, &queue->sq_wr_avail); 954 return false; 955 } 956 957 if (nvmet_rdma_need_data_in(rsp)) { 958 if (rdma_rw_ctx_post(&rsp->rw, queue->qp, 959 queue->cm_id->port_num, &rsp->read_cqe, NULL)) 960 nvmet_req_complete(&rsp->req, NVME_SC_DATA_XFER_ERROR); 961 } else { 962 rsp->req.execute(&rsp->req); 963 } 964 965 return true; 966 } 967 968 static void nvmet_rdma_handle_command(struct nvmet_rdma_queue *queue, 969 struct nvmet_rdma_rsp *cmd) 970 { 971 u16 status; 972 973 ib_dma_sync_single_for_cpu(queue->dev->device, 974 cmd->cmd->sge[0].addr, cmd->cmd->sge[0].length, 975 DMA_FROM_DEVICE); 976 ib_dma_sync_single_for_cpu(queue->dev->device, 977 cmd->send_sge.addr, cmd->send_sge.length, 978 DMA_TO_DEVICE); 979 980 if (!nvmet_req_init(&cmd->req, &queue->nvme_sq, &nvmet_rdma_ops)) 981 return; 982 983 status = nvmet_rdma_map_sgl(cmd); 984 if (status) 985 goto out_err; 986 987 if (unlikely(!nvmet_rdma_execute_command(cmd))) { 988 spin_lock(&queue->rsp_wr_wait_lock); 989 list_add_tail(&cmd->wait_list, &queue->rsp_wr_wait_list); 990 spin_unlock(&queue->rsp_wr_wait_lock); 991 } 992 993 return; 994 995 out_err: 996 nvmet_req_complete(&cmd->req, status); 997 } 998 999 static bool nvmet_rdma_recv_not_live(struct nvmet_rdma_queue *queue, 1000 struct nvmet_rdma_rsp *rsp) 1001 { 1002 unsigned long flags; 1003 bool ret = true; 1004 1005 spin_lock_irqsave(&queue->state_lock, flags); 1006 /* 1007 * recheck queue state is not live to prevent a race condition 1008 * with RDMA_CM_EVENT_ESTABLISHED handler. 1009 */ 1010 if (queue->state == NVMET_RDMA_Q_LIVE) 1011 ret = false; 1012 else if (queue->state == NVMET_RDMA_Q_CONNECTING) 1013 list_add_tail(&rsp->wait_list, &queue->rsp_wait_list); 1014 else 1015 nvmet_rdma_put_rsp(rsp); 1016 spin_unlock_irqrestore(&queue->state_lock, flags); 1017 return ret; 1018 } 1019 1020 static void nvmet_rdma_recv_done(struct ib_cq *cq, struct ib_wc *wc) 1021 { 1022 struct nvmet_rdma_cmd *cmd = 1023 container_of(wc->wr_cqe, struct nvmet_rdma_cmd, cqe); 1024 struct nvmet_rdma_queue *queue = wc->qp->qp_context; 1025 struct nvmet_rdma_rsp *rsp; 1026 1027 if (unlikely(wc->status != IB_WC_SUCCESS)) { 1028 if (wc->status != IB_WC_WR_FLUSH_ERR) { 1029 pr_err("RECV for CQE 0x%p failed with status %s (%d)\n", 1030 wc->wr_cqe, ib_wc_status_msg(wc->status), 1031 wc->status); 1032 nvmet_rdma_error_comp(queue); 1033 } 1034 return; 1035 } 1036 1037 if (unlikely(wc->byte_len < sizeof(struct nvme_command))) { 1038 pr_err("Ctrl Fatal Error: capsule size less than 64 bytes\n"); 1039 nvmet_rdma_error_comp(queue); 1040 return; 1041 } 1042 1043 cmd->queue = queue; 1044 rsp = nvmet_rdma_get_rsp(queue); 1045 if (unlikely(!rsp)) { 1046 /* 1047 * we get here only under memory pressure, 1048 * silently drop and have the host retry 1049 * as we can't even fail it. 1050 */ 1051 nvmet_rdma_post_recv(queue->dev, cmd); 1052 return; 1053 } 1054 rsp->queue = queue; 1055 rsp->cmd = cmd; 1056 rsp->flags = 0; 1057 rsp->req.cmd = cmd->nvme_cmd; 1058 rsp->req.port = queue->port; 1059 rsp->n_rdma = 0; 1060 rsp->invalidate_rkey = 0; 1061 1062 if (unlikely(queue->state != NVMET_RDMA_Q_LIVE) && 1063 nvmet_rdma_recv_not_live(queue, rsp)) 1064 return; 1065 1066 nvmet_rdma_handle_command(queue, rsp); 1067 } 1068 1069 static void nvmet_rdma_destroy_srq(struct nvmet_rdma_srq *nsrq) 1070 { 1071 nvmet_rdma_free_cmds(nsrq->ndev, nsrq->cmds, nsrq->ndev->srq_size, 1072 false); 1073 ib_destroy_srq(nsrq->srq); 1074 1075 kfree(nsrq); 1076 } 1077 1078 static void nvmet_rdma_destroy_srqs(struct nvmet_rdma_device *ndev) 1079 { 1080 int i; 1081 1082 if (!ndev->srqs) 1083 return; 1084 1085 for (i = 0; i < ndev->srq_count; i++) 1086 nvmet_rdma_destroy_srq(ndev->srqs[i]); 1087 1088 kfree(ndev->srqs); 1089 } 1090 1091 static struct nvmet_rdma_srq * 1092 nvmet_rdma_init_srq(struct nvmet_rdma_device *ndev) 1093 { 1094 struct ib_srq_init_attr srq_attr = { NULL, }; 1095 size_t srq_size = ndev->srq_size; 1096 struct nvmet_rdma_srq *nsrq; 1097 struct ib_srq *srq; 1098 int ret, i; 1099 1100 nsrq = kzalloc_obj(*nsrq); 1101 if (!nsrq) 1102 return ERR_PTR(-ENOMEM); 1103 1104 srq_attr.attr.max_wr = srq_size; 1105 srq_attr.attr.max_sge = 1 + ndev->inline_page_count; 1106 srq_attr.attr.srq_limit = 0; 1107 srq_attr.srq_type = IB_SRQT_BASIC; 1108 srq = ib_create_srq(ndev->pd, &srq_attr); 1109 if (IS_ERR(srq)) { 1110 ret = PTR_ERR(srq); 1111 goto out_free; 1112 } 1113 1114 nsrq->cmds = nvmet_rdma_alloc_cmds(ndev, srq_size, false); 1115 if (IS_ERR(nsrq->cmds)) { 1116 ret = PTR_ERR(nsrq->cmds); 1117 goto out_destroy_srq; 1118 } 1119 1120 nsrq->srq = srq; 1121 nsrq->ndev = ndev; 1122 1123 for (i = 0; i < srq_size; i++) { 1124 nsrq->cmds[i].nsrq = nsrq; 1125 ret = nvmet_rdma_post_recv(ndev, &nsrq->cmds[i]); 1126 if (ret) 1127 goto out_free_cmds; 1128 } 1129 1130 return nsrq; 1131 1132 out_free_cmds: 1133 nvmet_rdma_free_cmds(ndev, nsrq->cmds, srq_size, false); 1134 out_destroy_srq: 1135 ib_destroy_srq(srq); 1136 out_free: 1137 kfree(nsrq); 1138 return ERR_PTR(ret); 1139 } 1140 1141 static int nvmet_rdma_init_srqs(struct nvmet_rdma_device *ndev) 1142 { 1143 int i, ret; 1144 1145 if (!ndev->device->attrs.max_srq_wr || !ndev->device->attrs.max_srq) { 1146 /* 1147 * If SRQs aren't supported we just go ahead and use normal 1148 * non-shared receive queues. 1149 */ 1150 pr_info("SRQ requested but not supported.\n"); 1151 return 0; 1152 } 1153 1154 ndev->srq_size = min(ndev->device->attrs.max_srq_wr, 1155 nvmet_rdma_srq_size); 1156 ndev->srq_count = min(ndev->device->num_comp_vectors, 1157 ndev->device->attrs.max_srq); 1158 1159 ndev->srqs = kzalloc_objs(*ndev->srqs, ndev->srq_count); 1160 if (!ndev->srqs) 1161 return -ENOMEM; 1162 1163 for (i = 0; i < ndev->srq_count; i++) { 1164 ndev->srqs[i] = nvmet_rdma_init_srq(ndev); 1165 if (IS_ERR(ndev->srqs[i])) { 1166 ret = PTR_ERR(ndev->srqs[i]); 1167 goto err_srq; 1168 } 1169 } 1170 1171 return 0; 1172 1173 err_srq: 1174 while (--i >= 0) 1175 nvmet_rdma_destroy_srq(ndev->srqs[i]); 1176 kfree(ndev->srqs); 1177 return ret; 1178 } 1179 1180 static void nvmet_rdma_free_dev(struct kref *ref) 1181 { 1182 struct nvmet_rdma_device *ndev = 1183 container_of(ref, struct nvmet_rdma_device, ref); 1184 1185 mutex_lock(&device_list_mutex); 1186 list_del(&ndev->entry); 1187 mutex_unlock(&device_list_mutex); 1188 1189 nvmet_rdma_destroy_srqs(ndev); 1190 ib_dealloc_pd(ndev->pd); 1191 1192 kfree(ndev); 1193 } 1194 1195 static struct nvmet_rdma_device * 1196 nvmet_rdma_find_get_device(struct rdma_cm_id *cm_id) 1197 { 1198 struct nvmet_rdma_port *port = cm_id->context; 1199 struct nvmet_port *nport = port->nport; 1200 struct nvmet_rdma_device *ndev; 1201 int inline_page_count; 1202 int inline_sge_count; 1203 int ret; 1204 1205 mutex_lock(&device_list_mutex); 1206 list_for_each_entry(ndev, &device_list, entry) { 1207 if (ndev->device->node_guid == cm_id->device->node_guid && 1208 kref_get_unless_zero(&ndev->ref)) 1209 goto out_unlock; 1210 } 1211 1212 ndev = kzalloc_obj(*ndev); 1213 if (!ndev) 1214 goto out_err; 1215 1216 inline_page_count = num_pages(nport->inline_data_size); 1217 inline_sge_count = max(cm_id->device->attrs.max_sge_rd, 1218 cm_id->device->attrs.max_recv_sge) - 1; 1219 if (inline_page_count > inline_sge_count) { 1220 pr_warn("inline_data_size %d cannot be supported by device %s. Reducing to %lu.\n", 1221 nport->inline_data_size, cm_id->device->name, 1222 inline_sge_count * PAGE_SIZE); 1223 nport->inline_data_size = inline_sge_count * PAGE_SIZE; 1224 inline_page_count = inline_sge_count; 1225 } 1226 ndev->inline_data_size = nport->inline_data_size; 1227 ndev->inline_page_count = inline_page_count; 1228 1229 if (nport->pi_enable && !(cm_id->device->attrs.kernel_cap_flags & 1230 IBK_INTEGRITY_HANDOVER)) { 1231 pr_warn("T10-PI is not supported by device %s. Disabling it\n", 1232 cm_id->device->name); 1233 nport->pi_enable = false; 1234 } 1235 1236 ndev->device = cm_id->device; 1237 kref_init(&ndev->ref); 1238 1239 ndev->pd = ib_alloc_pd(ndev->device, 0); 1240 if (IS_ERR(ndev->pd)) 1241 goto out_free_dev; 1242 1243 if (nvmet_rdma_use_srq) { 1244 ret = nvmet_rdma_init_srqs(ndev); 1245 if (ret) 1246 goto out_free_pd; 1247 } 1248 1249 list_add(&ndev->entry, &device_list); 1250 out_unlock: 1251 mutex_unlock(&device_list_mutex); 1252 pr_debug("added %s.\n", ndev->device->name); 1253 return ndev; 1254 1255 out_free_pd: 1256 ib_dealloc_pd(ndev->pd); 1257 out_free_dev: 1258 kfree(ndev); 1259 out_err: 1260 mutex_unlock(&device_list_mutex); 1261 return NULL; 1262 } 1263 1264 static int nvmet_rdma_create_queue_ib(struct nvmet_rdma_queue *queue) 1265 { 1266 struct ib_qp_init_attr qp_attr = { }; 1267 struct nvmet_rdma_device *ndev = queue->dev; 1268 int nr_cqe, ret, i, factor; 1269 1270 /* 1271 * Reserve CQ slots for RECV + RDMA_READ/RDMA_WRITE + RDMA_SEND. 1272 */ 1273 nr_cqe = queue->recv_queue_size + 2 * queue->send_queue_size; 1274 1275 queue->cq = ib_cq_pool_get(ndev->device, nr_cqe + 1, 1276 queue->comp_vector, IB_POLL_WORKQUEUE); 1277 if (IS_ERR(queue->cq)) { 1278 ret = PTR_ERR(queue->cq); 1279 pr_err("failed to create CQ cqe= %d ret= %d\n", 1280 nr_cqe + 1, ret); 1281 goto out; 1282 } 1283 1284 qp_attr.qp_context = queue; 1285 qp_attr.event_handler = nvmet_rdma_qp_event; 1286 qp_attr.send_cq = queue->cq; 1287 qp_attr.recv_cq = queue->cq; 1288 qp_attr.sq_sig_type = IB_SIGNAL_REQ_WR; 1289 qp_attr.qp_type = IB_QPT_RC; 1290 /* +1 for drain */ 1291 qp_attr.cap.max_send_wr = queue->send_queue_size + 1; 1292 factor = rdma_rw_mr_factor(ndev->device, queue->cm_id->port_num, 1293 1 << NVMET_RDMA_MAX_MDTS); 1294 qp_attr.cap.max_rdma_ctxs = queue->send_queue_size * factor; 1295 qp_attr.cap.max_send_sge = max(ndev->device->attrs.max_sge_rd, 1296 ndev->device->attrs.max_send_sge); 1297 1298 if (queue->nsrq) { 1299 qp_attr.srq = queue->nsrq->srq; 1300 } else { 1301 /* +1 for drain */ 1302 qp_attr.cap.max_recv_wr = 1 + queue->recv_queue_size; 1303 qp_attr.cap.max_recv_sge = 1 + ndev->inline_page_count; 1304 } 1305 1306 if (queue->port->pi_enable && queue->host_qid) 1307 qp_attr.create_flags |= IB_QP_CREATE_INTEGRITY_EN; 1308 1309 ret = rdma_create_qp(queue->cm_id, ndev->pd, &qp_attr); 1310 if (ret) { 1311 pr_err("failed to create_qp ret= %d\n", ret); 1312 goto err_destroy_cq; 1313 } 1314 queue->qp = queue->cm_id->qp; 1315 1316 atomic_set(&queue->sq_wr_avail, qp_attr.cap.max_send_wr); 1317 1318 pr_debug("%s: max_cqe= %d max_sge= %d sq_size = %d cm_id= %p\n", 1319 __func__, queue->cq->cqe, qp_attr.cap.max_send_sge, 1320 qp_attr.cap.max_send_wr, queue->cm_id); 1321 1322 if (!queue->nsrq) { 1323 for (i = 0; i < queue->recv_queue_size; i++) { 1324 queue->cmds[i].queue = queue; 1325 ret = nvmet_rdma_post_recv(ndev, &queue->cmds[i]); 1326 if (ret) 1327 goto err_destroy_qp; 1328 } 1329 } 1330 1331 out: 1332 return ret; 1333 1334 err_destroy_qp: 1335 rdma_destroy_qp(queue->cm_id); 1336 err_destroy_cq: 1337 ib_cq_pool_put(queue->cq, nr_cqe + 1); 1338 goto out; 1339 } 1340 1341 static void nvmet_rdma_destroy_queue_ib(struct nvmet_rdma_queue *queue) 1342 { 1343 ib_drain_qp(queue->qp); 1344 if (queue->cm_id) 1345 rdma_destroy_id(queue->cm_id); 1346 ib_destroy_qp(queue->qp); 1347 ib_cq_pool_put(queue->cq, queue->recv_queue_size + 2 * 1348 queue->send_queue_size + 1); 1349 } 1350 1351 static void nvmet_rdma_free_queue(struct nvmet_rdma_queue *queue) 1352 { 1353 pr_debug("freeing queue %d\n", queue->idx); 1354 1355 nvmet_sq_destroy(&queue->nvme_sq); 1356 nvmet_cq_put(&queue->nvme_cq); 1357 1358 nvmet_rdma_destroy_queue_ib(queue); 1359 if (!queue->nsrq) { 1360 nvmet_rdma_free_cmds(queue->dev, queue->cmds, 1361 queue->recv_queue_size, 1362 !queue->host_qid); 1363 } 1364 nvmet_rdma_free_rsps(queue); 1365 ida_free(&nvmet_rdma_queue_ida, queue->idx); 1366 kfree(queue); 1367 } 1368 1369 static void nvmet_rdma_release_queue_work(struct work_struct *w) 1370 { 1371 struct nvmet_rdma_queue *queue = 1372 container_of(w, struct nvmet_rdma_queue, release_work); 1373 struct nvmet_rdma_device *dev = queue->dev; 1374 1375 nvmet_rdma_free_queue(queue); 1376 1377 kref_put(&dev->ref, nvmet_rdma_free_dev); 1378 } 1379 1380 static int 1381 nvmet_rdma_parse_cm_connect_req(struct rdma_conn_param *conn, 1382 struct nvmet_rdma_queue *queue) 1383 { 1384 struct nvme_rdma_cm_req *req; 1385 1386 req = (struct nvme_rdma_cm_req *)conn->private_data; 1387 if (!req || conn->private_data_len == 0) 1388 return NVME_RDMA_CM_INVALID_LEN; 1389 1390 if (le16_to_cpu(req->recfmt) != NVME_RDMA_CM_FMT_1_0) 1391 return NVME_RDMA_CM_INVALID_RECFMT; 1392 1393 queue->host_qid = le16_to_cpu(req->qid); 1394 1395 /* 1396 * req->hsqsize corresponds to our recv queue size plus 1 1397 * req->hrqsize corresponds to our send queue size 1398 */ 1399 queue->recv_queue_size = le16_to_cpu(req->hsqsize) + 1; 1400 queue->send_queue_size = le16_to_cpu(req->hrqsize); 1401 1402 if (!queue->host_qid && queue->recv_queue_size > NVME_AQ_DEPTH) 1403 return NVME_RDMA_CM_INVALID_HSQSIZE; 1404 1405 /* XXX: Should we enforce some kind of max for IO queues? */ 1406 1407 return 0; 1408 } 1409 1410 static int nvmet_rdma_cm_reject(struct rdma_cm_id *cm_id, 1411 enum nvme_rdma_cm_status status) 1412 { 1413 struct nvme_rdma_cm_rej rej; 1414 1415 pr_debug("rejecting connect request: status %d (%s)\n", 1416 status, nvme_rdma_cm_msg(status)); 1417 1418 rej.recfmt = cpu_to_le16(NVME_RDMA_CM_FMT_1_0); 1419 rej.sts = cpu_to_le16(status); 1420 1421 return rdma_reject(cm_id, (void *)&rej, sizeof(rej), 1422 IB_CM_REJ_CONSUMER_DEFINED); 1423 } 1424 1425 static struct nvmet_rdma_queue * 1426 nvmet_rdma_alloc_queue(struct nvmet_rdma_device *ndev, 1427 struct rdma_cm_id *cm_id, 1428 struct rdma_cm_event *event) 1429 { 1430 struct nvmet_rdma_port *port = cm_id->context; 1431 struct nvmet_rdma_queue *queue; 1432 int ret; 1433 1434 queue = kzalloc_obj(*queue); 1435 if (!queue) { 1436 ret = NVME_RDMA_CM_NO_RSC; 1437 goto out_reject; 1438 } 1439 1440 nvmet_cq_init(&queue->nvme_cq); 1441 ret = nvmet_sq_init(&queue->nvme_sq, &queue->nvme_cq); 1442 if (ret) { 1443 ret = NVME_RDMA_CM_NO_RSC; 1444 goto out_free_queue; 1445 } 1446 1447 ret = nvmet_rdma_parse_cm_connect_req(&event->param.conn, queue); 1448 if (ret) 1449 goto out_destroy_sq; 1450 1451 /* 1452 * Schedules the actual release because calling rdma_destroy_id from 1453 * inside a CM callback would trigger a deadlock. (great API design..) 1454 */ 1455 INIT_WORK(&queue->release_work, nvmet_rdma_release_queue_work); 1456 queue->dev = ndev; 1457 queue->cm_id = cm_id; 1458 queue->port = port->nport; 1459 1460 spin_lock_init(&queue->state_lock); 1461 queue->state = NVMET_RDMA_Q_CONNECTING; 1462 INIT_LIST_HEAD(&queue->rsp_wait_list); 1463 INIT_LIST_HEAD(&queue->rsp_wr_wait_list); 1464 spin_lock_init(&queue->rsp_wr_wait_lock); 1465 INIT_LIST_HEAD(&queue->queue_list); 1466 1467 queue->idx = ida_alloc(&nvmet_rdma_queue_ida, GFP_KERNEL); 1468 if (queue->idx < 0) { 1469 ret = NVME_RDMA_CM_NO_RSC; 1470 goto out_destroy_sq; 1471 } 1472 1473 /* 1474 * Spread the io queues across completion vectors, 1475 * but still keep all admin queues on vector 0. 1476 */ 1477 queue->comp_vector = !queue->host_qid ? 0 : 1478 queue->idx % ndev->device->num_comp_vectors; 1479 1480 1481 ret = nvmet_rdma_alloc_rsps(queue); 1482 if (ret) { 1483 ret = NVME_RDMA_CM_NO_RSC; 1484 goto out_ida_remove; 1485 } 1486 1487 if (ndev->srqs) { 1488 queue->nsrq = ndev->srqs[queue->comp_vector % ndev->srq_count]; 1489 } else { 1490 queue->cmds = nvmet_rdma_alloc_cmds(ndev, 1491 queue->recv_queue_size, 1492 !queue->host_qid); 1493 if (IS_ERR(queue->cmds)) { 1494 ret = NVME_RDMA_CM_NO_RSC; 1495 goto out_free_responses; 1496 } 1497 } 1498 1499 ret = nvmet_rdma_create_queue_ib(queue); 1500 if (ret) { 1501 pr_err("%s: creating RDMA queue failed (%d).\n", 1502 __func__, ret); 1503 ret = NVME_RDMA_CM_NO_RSC; 1504 goto out_free_cmds; 1505 } 1506 1507 return queue; 1508 1509 out_free_cmds: 1510 if (!queue->nsrq) { 1511 nvmet_rdma_free_cmds(queue->dev, queue->cmds, 1512 queue->recv_queue_size, 1513 !queue->host_qid); 1514 } 1515 out_free_responses: 1516 nvmet_rdma_free_rsps(queue); 1517 out_ida_remove: 1518 ida_free(&nvmet_rdma_queue_ida, queue->idx); 1519 out_destroy_sq: 1520 nvmet_sq_destroy(&queue->nvme_sq); 1521 out_free_queue: 1522 nvmet_cq_put(&queue->nvme_cq); 1523 kfree(queue); 1524 out_reject: 1525 nvmet_rdma_cm_reject(cm_id, ret); 1526 return NULL; 1527 } 1528 1529 static void nvmet_rdma_qp_event(struct ib_event *event, void *priv) 1530 { 1531 struct nvmet_rdma_queue *queue = priv; 1532 1533 switch (event->event) { 1534 case IB_EVENT_COMM_EST: 1535 rdma_notify(queue->cm_id, event->event); 1536 break; 1537 case IB_EVENT_QP_LAST_WQE_REACHED: 1538 pr_debug("received last WQE reached event for queue=0x%p\n", 1539 queue); 1540 break; 1541 default: 1542 pr_err("received IB QP event: %s (%d)\n", 1543 ib_event_msg(event->event), event->event); 1544 break; 1545 } 1546 } 1547 1548 static int nvmet_rdma_cm_accept(struct rdma_cm_id *cm_id, 1549 struct nvmet_rdma_queue *queue, 1550 struct rdma_conn_param *p) 1551 { 1552 struct rdma_conn_param param = { }; 1553 struct nvme_rdma_cm_rep priv = { }; 1554 int ret = -ENOMEM; 1555 1556 param.rnr_retry_count = 7; 1557 param.flow_control = 1; 1558 param.initiator_depth = min_t(u8, p->initiator_depth, 1559 queue->dev->device->attrs.max_qp_init_rd_atom); 1560 param.private_data = &priv; 1561 param.private_data_len = sizeof(priv); 1562 priv.recfmt = cpu_to_le16(NVME_RDMA_CM_FMT_1_0); 1563 priv.crqsize = cpu_to_le16(queue->recv_queue_size); 1564 1565 ret = rdma_accept(cm_id, ¶m); 1566 if (ret) 1567 pr_err("rdma_accept failed (error code = %d)\n", ret); 1568 1569 return ret; 1570 } 1571 1572 static int nvmet_rdma_queue_connect(struct rdma_cm_id *cm_id, 1573 struct rdma_cm_event *event) 1574 { 1575 struct nvmet_rdma_device *ndev; 1576 struct nvmet_rdma_queue *queue; 1577 int ret = -EINVAL; 1578 1579 ndev = nvmet_rdma_find_get_device(cm_id); 1580 if (!ndev) { 1581 nvmet_rdma_cm_reject(cm_id, NVME_RDMA_CM_NO_RSC); 1582 return -ECONNREFUSED; 1583 } 1584 1585 queue = nvmet_rdma_alloc_queue(ndev, cm_id, event); 1586 if (!queue) { 1587 ret = -ENOMEM; 1588 goto put_device; 1589 } 1590 1591 if (queue->host_qid == 0) { 1592 struct nvmet_rdma_queue *q; 1593 int pending = 0; 1594 1595 /* Check for pending controller teardown */ 1596 mutex_lock(&nvmet_rdma_queue_mutex); 1597 list_for_each_entry(q, &nvmet_rdma_queue_list, queue_list) { 1598 if (q->nvme_sq.ctrl == queue->nvme_sq.ctrl && 1599 q->state == NVMET_RDMA_Q_DISCONNECTING) 1600 pending++; 1601 } 1602 mutex_unlock(&nvmet_rdma_queue_mutex); 1603 if (pending > NVMET_RDMA_BACKLOG) { 1604 ret = NVME_SC_CONNECT_CTRL_BUSY; 1605 goto put_device; 1606 } 1607 } 1608 1609 ret = nvmet_rdma_cm_accept(cm_id, queue, &event->param.conn); 1610 if (ret) { 1611 /* 1612 * Don't destroy the cm_id in free path, as we implicitly 1613 * destroy the cm_id here with non-zero ret code. 1614 */ 1615 queue->cm_id = NULL; 1616 goto free_queue; 1617 } 1618 1619 mutex_lock(&nvmet_rdma_queue_mutex); 1620 list_add_tail(&queue->queue_list, &nvmet_rdma_queue_list); 1621 mutex_unlock(&nvmet_rdma_queue_mutex); 1622 1623 return 0; 1624 1625 free_queue: 1626 nvmet_rdma_free_queue(queue); 1627 put_device: 1628 kref_put(&ndev->ref, nvmet_rdma_free_dev); 1629 1630 return ret; 1631 } 1632 1633 static void nvmet_rdma_queue_established(struct nvmet_rdma_queue *queue) 1634 { 1635 unsigned long flags; 1636 1637 spin_lock_irqsave(&queue->state_lock, flags); 1638 if (queue->state != NVMET_RDMA_Q_CONNECTING) { 1639 pr_warn("trying to establish a connected queue\n"); 1640 goto out_unlock; 1641 } 1642 queue->state = NVMET_RDMA_Q_LIVE; 1643 1644 while (!list_empty(&queue->rsp_wait_list)) { 1645 struct nvmet_rdma_rsp *cmd; 1646 1647 cmd = list_first_entry(&queue->rsp_wait_list, 1648 struct nvmet_rdma_rsp, wait_list); 1649 list_del(&cmd->wait_list); 1650 1651 spin_unlock_irqrestore(&queue->state_lock, flags); 1652 nvmet_rdma_handle_command(queue, cmd); 1653 spin_lock_irqsave(&queue->state_lock, flags); 1654 } 1655 1656 out_unlock: 1657 spin_unlock_irqrestore(&queue->state_lock, flags); 1658 } 1659 1660 static void __nvmet_rdma_queue_disconnect(struct nvmet_rdma_queue *queue) 1661 { 1662 bool disconnect = false; 1663 unsigned long flags; 1664 1665 pr_debug("cm_id= %p queue->state= %d\n", queue->cm_id, queue->state); 1666 1667 spin_lock_irqsave(&queue->state_lock, flags); 1668 switch (queue->state) { 1669 case NVMET_RDMA_Q_CONNECTING: 1670 while (!list_empty(&queue->rsp_wait_list)) { 1671 struct nvmet_rdma_rsp *rsp; 1672 1673 rsp = list_first_entry(&queue->rsp_wait_list, 1674 struct nvmet_rdma_rsp, 1675 wait_list); 1676 list_del(&rsp->wait_list); 1677 nvmet_rdma_put_rsp(rsp); 1678 } 1679 fallthrough; 1680 case NVMET_RDMA_Q_LIVE: 1681 queue->state = NVMET_RDMA_Q_DISCONNECTING; 1682 disconnect = true; 1683 break; 1684 case NVMET_RDMA_Q_DISCONNECTING: 1685 break; 1686 } 1687 spin_unlock_irqrestore(&queue->state_lock, flags); 1688 1689 if (disconnect) { 1690 rdma_disconnect(queue->cm_id); 1691 queue_work(nvmet_wq, &queue->release_work); 1692 } 1693 } 1694 1695 static void nvmet_rdma_queue_disconnect(struct nvmet_rdma_queue *queue) 1696 { 1697 bool disconnect = false; 1698 1699 mutex_lock(&nvmet_rdma_queue_mutex); 1700 if (!list_empty(&queue->queue_list)) { 1701 list_del_init(&queue->queue_list); 1702 disconnect = true; 1703 } 1704 mutex_unlock(&nvmet_rdma_queue_mutex); 1705 1706 if (disconnect) 1707 __nvmet_rdma_queue_disconnect(queue); 1708 } 1709 1710 static void nvmet_rdma_queue_connect_fail(struct rdma_cm_id *cm_id, 1711 struct nvmet_rdma_queue *queue) 1712 { 1713 WARN_ON_ONCE(queue->state != NVMET_RDMA_Q_CONNECTING); 1714 1715 mutex_lock(&nvmet_rdma_queue_mutex); 1716 if (!list_empty(&queue->queue_list)) 1717 list_del_init(&queue->queue_list); 1718 mutex_unlock(&nvmet_rdma_queue_mutex); 1719 1720 pr_err("failed to connect queue %d\n", queue->idx); 1721 queue_work(nvmet_wq, &queue->release_work); 1722 } 1723 1724 /** 1725 * nvmet_rdma_device_removal() - Handle RDMA device removal 1726 * @cm_id: rdma_cm id, used for nvmet port 1727 * @queue: nvmet rdma queue (cm id qp_context) 1728 * 1729 * DEVICE_REMOVAL event notifies us that the RDMA device is about 1730 * to unplug. Note that this event can be generated on a normal 1731 * queue cm_id and/or a device bound listener cm_id (where in this 1732 * case queue will be null). 1733 * 1734 * We registered an ib_client to handle device removal for queues, 1735 * so we only need to handle the listening port cm_ids. In this case 1736 * we nullify the priv to prevent double cm_id destruction and destroying 1737 * the cm_id implicitly by returning a non-zero rc to the callout. 1738 */ 1739 static int nvmet_rdma_device_removal(struct rdma_cm_id *cm_id, 1740 struct nvmet_rdma_queue *queue) 1741 { 1742 struct nvmet_rdma_port *port; 1743 1744 if (queue) { 1745 /* 1746 * This is a queue cm_id. we have registered 1747 * an ib_client to handle queues removal 1748 * so don't interfere and just return. 1749 */ 1750 return 0; 1751 } 1752 1753 port = cm_id->context; 1754 1755 /* 1756 * This is a listener cm_id. Make sure that 1757 * future remove_port won't invoke a double 1758 * cm_id destroy. use atomic xchg to make sure 1759 * we don't compete with remove_port. 1760 */ 1761 if (xchg(&port->cm_id, NULL) != cm_id) 1762 return 0; 1763 1764 /* 1765 * We need to return 1 so that the core will destroy 1766 * its own ID. What a great API design.. 1767 */ 1768 return 1; 1769 } 1770 1771 static int nvmet_rdma_cm_handler(struct rdma_cm_id *cm_id, 1772 struct rdma_cm_event *event) 1773 { 1774 struct nvmet_rdma_queue *queue = NULL; 1775 int ret = 0; 1776 1777 if (cm_id->qp) 1778 queue = cm_id->qp->qp_context; 1779 1780 pr_debug("%s (%d): status %d id %p\n", 1781 rdma_event_msg(event->event), event->event, 1782 event->status, cm_id); 1783 1784 switch (event->event) { 1785 case RDMA_CM_EVENT_CONNECT_REQUEST: 1786 ret = nvmet_rdma_queue_connect(cm_id, event); 1787 break; 1788 case RDMA_CM_EVENT_ESTABLISHED: 1789 nvmet_rdma_queue_established(queue); 1790 break; 1791 case RDMA_CM_EVENT_ADDR_CHANGE: 1792 if (!queue) { 1793 struct nvmet_rdma_port *port = cm_id->context; 1794 1795 queue_delayed_work(nvmet_wq, &port->repair_work, 0); 1796 break; 1797 } 1798 fallthrough; 1799 case RDMA_CM_EVENT_DISCONNECTED: 1800 case RDMA_CM_EVENT_TIMEWAIT_EXIT: 1801 nvmet_rdma_queue_disconnect(queue); 1802 break; 1803 case RDMA_CM_EVENT_DEVICE_REMOVAL: 1804 ret = nvmet_rdma_device_removal(cm_id, queue); 1805 break; 1806 case RDMA_CM_EVENT_REJECTED: 1807 pr_debug("Connection rejected: %s\n", 1808 rdma_reject_msg(cm_id, event->status)); 1809 fallthrough; 1810 case RDMA_CM_EVENT_UNREACHABLE: 1811 case RDMA_CM_EVENT_CONNECT_ERROR: 1812 nvmet_rdma_queue_connect_fail(cm_id, queue); 1813 break; 1814 default: 1815 pr_err("received unrecognized RDMA CM event %d\n", 1816 event->event); 1817 break; 1818 } 1819 1820 return ret; 1821 } 1822 1823 static void nvmet_rdma_delete_ctrl(struct nvmet_ctrl *ctrl) 1824 { 1825 struct nvmet_rdma_queue *queue, *n; 1826 1827 mutex_lock(&nvmet_rdma_queue_mutex); 1828 list_for_each_entry_safe(queue, n, &nvmet_rdma_queue_list, queue_list) { 1829 if (queue->nvme_sq.ctrl != ctrl) 1830 continue; 1831 list_del_init(&queue->queue_list); 1832 __nvmet_rdma_queue_disconnect(queue); 1833 } 1834 mutex_unlock(&nvmet_rdma_queue_mutex); 1835 } 1836 1837 static void nvmet_rdma_destroy_port_queues(struct nvmet_rdma_port *port) 1838 { 1839 struct nvmet_rdma_queue *queue, *tmp; 1840 struct nvmet_port *nport = port->nport; 1841 1842 mutex_lock(&nvmet_rdma_queue_mutex); 1843 list_for_each_entry_safe(queue, tmp, &nvmet_rdma_queue_list, 1844 queue_list) { 1845 if (queue->port != nport) 1846 continue; 1847 1848 list_del_init(&queue->queue_list); 1849 __nvmet_rdma_queue_disconnect(queue); 1850 } 1851 mutex_unlock(&nvmet_rdma_queue_mutex); 1852 } 1853 1854 static void nvmet_rdma_disable_port(struct nvmet_rdma_port *port) 1855 { 1856 struct rdma_cm_id *cm_id = xchg(&port->cm_id, NULL); 1857 1858 if (cm_id) 1859 rdma_destroy_id(cm_id); 1860 1861 /* 1862 * Destroy the remaining queues, which are not belong to any 1863 * controller yet. Do it here after the RDMA-CM was destroyed 1864 * guarantees that no new queue will be created. 1865 */ 1866 nvmet_rdma_destroy_port_queues(port); 1867 } 1868 1869 static int nvmet_rdma_enable_port(struct nvmet_rdma_port *port) 1870 { 1871 struct sockaddr *addr = (struct sockaddr *)&port->addr; 1872 struct rdma_cm_id *cm_id; 1873 int ret; 1874 1875 cm_id = rdma_create_id(&init_net, nvmet_rdma_cm_handler, port, 1876 RDMA_PS_TCP, IB_QPT_RC); 1877 if (IS_ERR(cm_id)) { 1878 pr_err("CM ID creation failed\n"); 1879 return PTR_ERR(cm_id); 1880 } 1881 1882 /* 1883 * Allow both IPv4 and IPv6 sockets to bind a single port 1884 * at the same time. 1885 */ 1886 ret = rdma_set_afonly(cm_id, 1); 1887 if (ret) { 1888 pr_err("rdma_set_afonly failed (%d)\n", ret); 1889 goto out_destroy_id; 1890 } 1891 1892 ret = rdma_bind_addr(cm_id, addr); 1893 if (ret) { 1894 pr_err("binding CM ID to %pISpcs failed (%d)\n", addr, ret); 1895 goto out_destroy_id; 1896 } 1897 1898 ret = rdma_listen(cm_id, NVMET_RDMA_BACKLOG); 1899 if (ret) { 1900 pr_err("listening to %pISpcs failed (%d)\n", addr, ret); 1901 goto out_destroy_id; 1902 } 1903 1904 port->cm_id = cm_id; 1905 return 0; 1906 1907 out_destroy_id: 1908 rdma_destroy_id(cm_id); 1909 return ret; 1910 } 1911 1912 static void nvmet_rdma_repair_port_work(struct work_struct *w) 1913 { 1914 struct nvmet_rdma_port *port = container_of(to_delayed_work(w), 1915 struct nvmet_rdma_port, repair_work); 1916 int ret; 1917 1918 nvmet_rdma_disable_port(port); 1919 ret = nvmet_rdma_enable_port(port); 1920 if (ret) 1921 queue_delayed_work(nvmet_wq, &port->repair_work, 5 * HZ); 1922 } 1923 1924 static int nvmet_rdma_add_port(struct nvmet_port *nport) 1925 { 1926 struct nvmet_rdma_port *port; 1927 __kernel_sa_family_t af; 1928 int ret; 1929 1930 port = kzalloc_obj(*port); 1931 if (!port) 1932 return -ENOMEM; 1933 1934 nport->priv = port; 1935 port->nport = nport; 1936 INIT_DELAYED_WORK(&port->repair_work, nvmet_rdma_repair_port_work); 1937 1938 switch (nport->disc_addr.adrfam) { 1939 case NVMF_ADDR_FAMILY_IP4: 1940 af = AF_INET; 1941 break; 1942 case NVMF_ADDR_FAMILY_IP6: 1943 af = AF_INET6; 1944 break; 1945 default: 1946 pr_err("address family %d not supported\n", 1947 nport->disc_addr.adrfam); 1948 ret = -EINVAL; 1949 goto out_free_port; 1950 } 1951 1952 if (nport->inline_data_size < 0) { 1953 nport->inline_data_size = NVMET_RDMA_DEFAULT_INLINE_DATA_SIZE; 1954 } else if (nport->inline_data_size > NVMET_RDMA_MAX_INLINE_DATA_SIZE) { 1955 pr_warn("inline_data_size %u is too large, reducing to %u\n", 1956 nport->inline_data_size, 1957 NVMET_RDMA_MAX_INLINE_DATA_SIZE); 1958 nport->inline_data_size = NVMET_RDMA_MAX_INLINE_DATA_SIZE; 1959 } 1960 1961 if (nport->max_queue_size < 0) { 1962 nport->max_queue_size = NVME_RDMA_DEFAULT_QUEUE_SIZE; 1963 } else if (nport->max_queue_size > NVME_RDMA_MAX_QUEUE_SIZE) { 1964 pr_warn("max_queue_size %u is too large, reducing to %u\n", 1965 nport->max_queue_size, NVME_RDMA_MAX_QUEUE_SIZE); 1966 nport->max_queue_size = NVME_RDMA_MAX_QUEUE_SIZE; 1967 } 1968 1969 ret = inet_pton_with_scope(&init_net, af, nport->disc_addr.traddr, 1970 nport->disc_addr.trsvcid, &port->addr); 1971 if (ret) { 1972 pr_err("malformed ip/port passed: %s:%s\n", 1973 nport->disc_addr.traddr, nport->disc_addr.trsvcid); 1974 goto out_free_port; 1975 } 1976 1977 ret = nvmet_rdma_enable_port(port); 1978 if (ret) 1979 goto out_free_port; 1980 1981 pr_info("enabling port %d (%pISpcs)\n", 1982 le16_to_cpu(nport->disc_addr.portid), 1983 (struct sockaddr *)&port->addr); 1984 1985 return 0; 1986 1987 out_free_port: 1988 kfree(port); 1989 return ret; 1990 } 1991 1992 static void nvmet_rdma_remove_port(struct nvmet_port *nport) 1993 { 1994 struct nvmet_rdma_port *port = nport->priv; 1995 1996 cancel_delayed_work_sync(&port->repair_work); 1997 nvmet_rdma_disable_port(port); 1998 kfree(port); 1999 } 2000 2001 static void nvmet_rdma_disc_port_addr(struct nvmet_req *req, 2002 struct nvmet_port *nport, char *traddr) 2003 { 2004 struct nvmet_rdma_port *port = nport->priv; 2005 struct rdma_cm_id *cm_id = port->cm_id; 2006 2007 if (inet_addr_is_any(&cm_id->route.addr.src_addr)) { 2008 struct nvmet_rdma_rsp *rsp = 2009 container_of(req, struct nvmet_rdma_rsp, req); 2010 struct rdma_cm_id *req_cm_id = rsp->queue->cm_id; 2011 struct sockaddr *addr = (void *)&req_cm_id->route.addr.src_addr; 2012 2013 sprintf(traddr, "%pISc", addr); 2014 } else { 2015 memcpy(traddr, nport->disc_addr.traddr, NVMF_TRADDR_SIZE); 2016 } 2017 } 2018 2019 static ssize_t nvmet_rdma_host_port_addr(struct nvmet_ctrl *ctrl, 2020 char *traddr, size_t traddr_len) 2021 { 2022 struct nvmet_sq *nvme_sq = ctrl->sqs[0]; 2023 struct nvmet_rdma_queue *queue = 2024 container_of(nvme_sq, struct nvmet_rdma_queue, nvme_sq); 2025 2026 return snprintf(traddr, traddr_len, "%pISc", 2027 (struct sockaddr *)&queue->cm_id->route.addr.dst_addr); 2028 } 2029 2030 static u8 nvmet_rdma_get_mdts(const struct nvmet_ctrl *ctrl) 2031 { 2032 if (ctrl->pi_support) 2033 return NVMET_RDMA_MAX_METADATA_MDTS; 2034 return NVMET_RDMA_MAX_MDTS; 2035 } 2036 2037 static u16 nvmet_rdma_get_max_queue_size(const struct nvmet_ctrl *ctrl) 2038 { 2039 if (ctrl->pi_support) 2040 return NVME_RDMA_MAX_METADATA_QUEUE_SIZE; 2041 return NVME_RDMA_MAX_QUEUE_SIZE; 2042 } 2043 2044 static const struct nvmet_fabrics_ops nvmet_rdma_ops = { 2045 .owner = THIS_MODULE, 2046 .type = NVMF_TRTYPE_RDMA, 2047 .msdbd = 1, 2048 .flags = NVMF_KEYED_SGLS | NVMF_METADATA_SUPPORTED, 2049 .add_port = nvmet_rdma_add_port, 2050 .remove_port = nvmet_rdma_remove_port, 2051 .queue_response = nvmet_rdma_queue_response, 2052 .delete_ctrl = nvmet_rdma_delete_ctrl, 2053 .disc_traddr = nvmet_rdma_disc_port_addr, 2054 .host_traddr = nvmet_rdma_host_port_addr, 2055 .get_mdts = nvmet_rdma_get_mdts, 2056 .get_max_queue_size = nvmet_rdma_get_max_queue_size, 2057 }; 2058 2059 static void nvmet_rdma_remove_one(struct ib_device *ib_device, void *client_data) 2060 { 2061 struct nvmet_rdma_queue *queue, *tmp; 2062 struct nvmet_rdma_device *ndev; 2063 bool found = false; 2064 2065 mutex_lock(&device_list_mutex); 2066 list_for_each_entry(ndev, &device_list, entry) { 2067 if (ndev->device == ib_device) { 2068 found = true; 2069 break; 2070 } 2071 } 2072 mutex_unlock(&device_list_mutex); 2073 2074 if (!found) 2075 return; 2076 2077 /* 2078 * IB Device that is used by nvmet controllers is being removed, 2079 * delete all queues using this device. 2080 */ 2081 mutex_lock(&nvmet_rdma_queue_mutex); 2082 list_for_each_entry_safe(queue, tmp, &nvmet_rdma_queue_list, 2083 queue_list) { 2084 if (queue->dev->device != ib_device) 2085 continue; 2086 2087 pr_info("Removing queue %d\n", queue->idx); 2088 list_del_init(&queue->queue_list); 2089 __nvmet_rdma_queue_disconnect(queue); 2090 } 2091 mutex_unlock(&nvmet_rdma_queue_mutex); 2092 2093 flush_workqueue(nvmet_wq); 2094 flush_workqueue(nvmet_aen_wq); 2095 } 2096 2097 static struct ib_client nvmet_rdma_ib_client = { 2098 .name = "nvmet_rdma", 2099 .remove = nvmet_rdma_remove_one 2100 }; 2101 2102 static int __init nvmet_rdma_init(void) 2103 { 2104 int ret; 2105 2106 ret = ib_register_client(&nvmet_rdma_ib_client); 2107 if (ret) 2108 return ret; 2109 2110 ret = nvmet_register_transport(&nvmet_rdma_ops); 2111 if (ret) 2112 goto err_ib_client; 2113 2114 return 0; 2115 2116 err_ib_client: 2117 ib_unregister_client(&nvmet_rdma_ib_client); 2118 return ret; 2119 } 2120 2121 static void __exit nvmet_rdma_exit(void) 2122 { 2123 nvmet_unregister_transport(&nvmet_rdma_ops); 2124 ib_unregister_client(&nvmet_rdma_ib_client); 2125 WARN_ON_ONCE(!list_empty(&nvmet_rdma_queue_list)); 2126 ida_destroy(&nvmet_rdma_queue_ida); 2127 } 2128 2129 module_init(nvmet_rdma_init); 2130 module_exit(nvmet_rdma_exit); 2131 2132 MODULE_DESCRIPTION("NVMe target RDMA transport driver"); 2133 MODULE_LICENSE("GPL v2"); 2134 MODULE_ALIAS("nvmet-transport-1"); /* 1 == NVMF_TRTYPE_RDMA */ 2135