1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * NVMe over Fabrics common host code. 4 * Copyright (c) 2015-2016 HGST, a Western Digital Company. 5 */ 6 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 7 #include <linux/init.h> 8 #include <linux/miscdevice.h> 9 #include <linux/module.h> 10 #include <linux/mutex.h> 11 #include <linux/parser.h> 12 #include <linux/seq_file.h> 13 #include "nvme.h" 14 #include "fabrics.h" 15 16 static LIST_HEAD(nvmf_transports); 17 static DECLARE_RWSEM(nvmf_transports_rwsem); 18 19 static LIST_HEAD(nvmf_hosts); 20 static DEFINE_MUTEX(nvmf_hosts_mutex); 21 22 static struct nvmf_host *nvmf_default_host; 23 24 static struct nvmf_host *__nvmf_host_find(const char *hostnqn) 25 { 26 struct nvmf_host *host; 27 28 list_for_each_entry(host, &nvmf_hosts, list) { 29 if (!strcmp(host->nqn, hostnqn)) 30 return host; 31 } 32 33 return NULL; 34 } 35 36 static struct nvmf_host *nvmf_host_add(const char *hostnqn) 37 { 38 struct nvmf_host *host; 39 40 mutex_lock(&nvmf_hosts_mutex); 41 host = __nvmf_host_find(hostnqn); 42 if (host) { 43 kref_get(&host->ref); 44 goto out_unlock; 45 } 46 47 host = kmalloc(sizeof(*host), GFP_KERNEL); 48 if (!host) 49 goto out_unlock; 50 51 kref_init(&host->ref); 52 strlcpy(host->nqn, hostnqn, NVMF_NQN_SIZE); 53 54 list_add_tail(&host->list, &nvmf_hosts); 55 out_unlock: 56 mutex_unlock(&nvmf_hosts_mutex); 57 return host; 58 } 59 60 static struct nvmf_host *nvmf_host_default(void) 61 { 62 struct nvmf_host *host; 63 64 host = kmalloc(sizeof(*host), GFP_KERNEL); 65 if (!host) 66 return NULL; 67 68 kref_init(&host->ref); 69 uuid_gen(&host->id); 70 snprintf(host->nqn, NVMF_NQN_SIZE, 71 "nqn.2014-08.org.nvmexpress:uuid:%pUb", &host->id); 72 73 mutex_lock(&nvmf_hosts_mutex); 74 list_add_tail(&host->list, &nvmf_hosts); 75 mutex_unlock(&nvmf_hosts_mutex); 76 77 return host; 78 } 79 80 static void nvmf_host_destroy(struct kref *ref) 81 { 82 struct nvmf_host *host = container_of(ref, struct nvmf_host, ref); 83 84 mutex_lock(&nvmf_hosts_mutex); 85 list_del(&host->list); 86 mutex_unlock(&nvmf_hosts_mutex); 87 88 kfree(host); 89 } 90 91 static void nvmf_host_put(struct nvmf_host *host) 92 { 93 if (host) 94 kref_put(&host->ref, nvmf_host_destroy); 95 } 96 97 /** 98 * nvmf_get_address() - Get address/port 99 * @ctrl: Host NVMe controller instance which we got the address 100 * @buf: OUTPUT parameter that will contain the address/port 101 * @size: buffer size 102 */ 103 int nvmf_get_address(struct nvme_ctrl *ctrl, char *buf, int size) 104 { 105 int len = 0; 106 107 if (ctrl->opts->mask & NVMF_OPT_TRADDR) 108 len += scnprintf(buf, size, "traddr=%s", ctrl->opts->traddr); 109 if (ctrl->opts->mask & NVMF_OPT_TRSVCID) 110 len += scnprintf(buf + len, size - len, "%strsvcid=%s", 111 (len) ? "," : "", ctrl->opts->trsvcid); 112 if (ctrl->opts->mask & NVMF_OPT_HOST_TRADDR) 113 len += scnprintf(buf + len, size - len, "%shost_traddr=%s", 114 (len) ? "," : "", ctrl->opts->host_traddr); 115 if (ctrl->opts->mask & NVMF_OPT_HOST_IFACE) 116 len += scnprintf(buf + len, size - len, "%shost_iface=%s", 117 (len) ? "," : "", ctrl->opts->host_iface); 118 len += scnprintf(buf + len, size - len, "\n"); 119 120 return len; 121 } 122 EXPORT_SYMBOL_GPL(nvmf_get_address); 123 124 /** 125 * nvmf_reg_read32() - NVMe Fabrics "Property Get" API function. 126 * @ctrl: Host NVMe controller instance maintaining the admin 127 * queue used to submit the property read command to 128 * the allocated NVMe controller resource on the target system. 129 * @off: Starting offset value of the targeted property 130 * register (see the fabrics section of the NVMe standard). 131 * @val: OUTPUT parameter that will contain the value of 132 * the property after a successful read. 133 * 134 * Used by the host system to retrieve a 32-bit capsule property value 135 * from an NVMe controller on the target system. 136 * 137 * ("Capsule property" is an "PCIe register concept" applied to the 138 * NVMe fabrics space.) 139 * 140 * Return: 141 * 0: successful read 142 * > 0: NVMe error status code 143 * < 0: Linux errno error code 144 */ 145 int nvmf_reg_read32(struct nvme_ctrl *ctrl, u32 off, u32 *val) 146 { 147 struct nvme_command cmd; 148 union nvme_result res; 149 int ret; 150 151 memset(&cmd, 0, sizeof(cmd)); 152 cmd.prop_get.opcode = nvme_fabrics_command; 153 cmd.prop_get.fctype = nvme_fabrics_type_property_get; 154 cmd.prop_get.offset = cpu_to_le32(off); 155 156 ret = __nvme_submit_sync_cmd(ctrl->fabrics_q, &cmd, &res, NULL, 0, 0, 157 NVME_QID_ANY, 0, 0); 158 159 if (ret >= 0) 160 *val = le64_to_cpu(res.u64); 161 if (unlikely(ret != 0)) 162 dev_err(ctrl->device, 163 "Property Get error: %d, offset %#x\n", 164 ret > 0 ? ret & ~NVME_SC_DNR : ret, off); 165 166 return ret; 167 } 168 EXPORT_SYMBOL_GPL(nvmf_reg_read32); 169 170 /** 171 * nvmf_reg_read64() - NVMe Fabrics "Property Get" API function. 172 * @ctrl: Host NVMe controller instance maintaining the admin 173 * queue used to submit the property read command to 174 * the allocated controller resource on the target system. 175 * @off: Starting offset value of the targeted property 176 * register (see the fabrics section of the NVMe standard). 177 * @val: OUTPUT parameter that will contain the value of 178 * the property after a successful read. 179 * 180 * Used by the host system to retrieve a 64-bit capsule property value 181 * from an NVMe controller on the target system. 182 * 183 * ("Capsule property" is an "PCIe register concept" applied to the 184 * NVMe fabrics space.) 185 * 186 * Return: 187 * 0: successful read 188 * > 0: NVMe error status code 189 * < 0: Linux errno error code 190 */ 191 int nvmf_reg_read64(struct nvme_ctrl *ctrl, u32 off, u64 *val) 192 { 193 struct nvme_command cmd = { }; 194 union nvme_result res; 195 int ret; 196 197 cmd.prop_get.opcode = nvme_fabrics_command; 198 cmd.prop_get.fctype = nvme_fabrics_type_property_get; 199 cmd.prop_get.attrib = 1; 200 cmd.prop_get.offset = cpu_to_le32(off); 201 202 ret = __nvme_submit_sync_cmd(ctrl->fabrics_q, &cmd, &res, NULL, 0, 0, 203 NVME_QID_ANY, 0, 0); 204 205 if (ret >= 0) 206 *val = le64_to_cpu(res.u64); 207 if (unlikely(ret != 0)) 208 dev_err(ctrl->device, 209 "Property Get error: %d, offset %#x\n", 210 ret > 0 ? ret & ~NVME_SC_DNR : ret, off); 211 return ret; 212 } 213 EXPORT_SYMBOL_GPL(nvmf_reg_read64); 214 215 /** 216 * nvmf_reg_write32() - NVMe Fabrics "Property Write" API function. 217 * @ctrl: Host NVMe controller instance maintaining the admin 218 * queue used to submit the property read command to 219 * the allocated NVMe controller resource on the target system. 220 * @off: Starting offset value of the targeted property 221 * register (see the fabrics section of the NVMe standard). 222 * @val: Input parameter that contains the value to be 223 * written to the property. 224 * 225 * Used by the NVMe host system to write a 32-bit capsule property value 226 * to an NVMe controller on the target system. 227 * 228 * ("Capsule property" is an "PCIe register concept" applied to the 229 * NVMe fabrics space.) 230 * 231 * Return: 232 * 0: successful write 233 * > 0: NVMe error status code 234 * < 0: Linux errno error code 235 */ 236 int nvmf_reg_write32(struct nvme_ctrl *ctrl, u32 off, u32 val) 237 { 238 struct nvme_command cmd = { }; 239 int ret; 240 241 cmd.prop_set.opcode = nvme_fabrics_command; 242 cmd.prop_set.fctype = nvme_fabrics_type_property_set; 243 cmd.prop_set.attrib = 0; 244 cmd.prop_set.offset = cpu_to_le32(off); 245 cmd.prop_set.value = cpu_to_le64(val); 246 247 ret = __nvme_submit_sync_cmd(ctrl->fabrics_q, &cmd, NULL, NULL, 0, 0, 248 NVME_QID_ANY, 0, 0); 249 if (unlikely(ret)) 250 dev_err(ctrl->device, 251 "Property Set error: %d, offset %#x\n", 252 ret > 0 ? ret & ~NVME_SC_DNR : ret, off); 253 return ret; 254 } 255 EXPORT_SYMBOL_GPL(nvmf_reg_write32); 256 257 /** 258 * nvmf_log_connect_error() - Error-parsing-diagnostic print out function for 259 * connect() errors. 260 * @ctrl: The specific /dev/nvmeX device that had the error. 261 * @errval: Error code to be decoded in a more human-friendly 262 * printout. 263 * @offset: For use with the NVMe error code 264 * NVME_SC_CONNECT_INVALID_PARAM. 265 * @cmd: This is the SQE portion of a submission capsule. 266 * @data: This is the "Data" portion of a submission capsule. 267 */ 268 static void nvmf_log_connect_error(struct nvme_ctrl *ctrl, 269 int errval, int offset, struct nvme_command *cmd, 270 struct nvmf_connect_data *data) 271 { 272 int err_sctype = errval & ~NVME_SC_DNR; 273 274 switch (err_sctype) { 275 case (NVME_SC_CONNECT_INVALID_PARAM): 276 if (offset >> 16) { 277 char *inv_data = "Connect Invalid Data Parameter"; 278 279 switch (offset & 0xffff) { 280 case (offsetof(struct nvmf_connect_data, cntlid)): 281 dev_err(ctrl->device, 282 "%s, cntlid: %d\n", 283 inv_data, data->cntlid); 284 break; 285 case (offsetof(struct nvmf_connect_data, hostnqn)): 286 dev_err(ctrl->device, 287 "%s, hostnqn \"%s\"\n", 288 inv_data, data->hostnqn); 289 break; 290 case (offsetof(struct nvmf_connect_data, subsysnqn)): 291 dev_err(ctrl->device, 292 "%s, subsysnqn \"%s\"\n", 293 inv_data, data->subsysnqn); 294 break; 295 default: 296 dev_err(ctrl->device, 297 "%s, starting byte offset: %d\n", 298 inv_data, offset & 0xffff); 299 break; 300 } 301 } else { 302 char *inv_sqe = "Connect Invalid SQE Parameter"; 303 304 switch (offset) { 305 case (offsetof(struct nvmf_connect_command, qid)): 306 dev_err(ctrl->device, 307 "%s, qid %d\n", 308 inv_sqe, cmd->connect.qid); 309 break; 310 default: 311 dev_err(ctrl->device, 312 "%s, starting byte offset: %d\n", 313 inv_sqe, offset); 314 } 315 } 316 break; 317 case NVME_SC_CONNECT_INVALID_HOST: 318 dev_err(ctrl->device, 319 "Connect for subsystem %s is not allowed, hostnqn: %s\n", 320 data->subsysnqn, data->hostnqn); 321 break; 322 case NVME_SC_CONNECT_CTRL_BUSY: 323 dev_err(ctrl->device, 324 "Connect command failed: controller is busy or not available\n"); 325 break; 326 case NVME_SC_CONNECT_FORMAT: 327 dev_err(ctrl->device, 328 "Connect incompatible format: %d", 329 cmd->connect.recfmt); 330 break; 331 case NVME_SC_HOST_PATH_ERROR: 332 dev_err(ctrl->device, 333 "Connect command failed: host path error\n"); 334 break; 335 default: 336 dev_err(ctrl->device, 337 "Connect command failed, error wo/DNR bit: %d\n", 338 err_sctype); 339 break; 340 } 341 } 342 343 /** 344 * nvmf_connect_admin_queue() - NVMe Fabrics Admin Queue "Connect" 345 * API function. 346 * @ctrl: Host nvme controller instance used to request 347 * a new NVMe controller allocation on the target 348 * system and establish an NVMe Admin connection to 349 * that controller. 350 * 351 * This function enables an NVMe host device to request a new allocation of 352 * an NVMe controller resource on a target system as well establish a 353 * fabrics-protocol connection of the NVMe Admin queue between the 354 * host system device and the allocated NVMe controller on the 355 * target system via a NVMe Fabrics "Connect" command. 356 * 357 * Return: 358 * 0: success 359 * > 0: NVMe error status code 360 * < 0: Linux errno error code 361 * 362 */ 363 int nvmf_connect_admin_queue(struct nvme_ctrl *ctrl) 364 { 365 struct nvme_command cmd = { }; 366 union nvme_result res; 367 struct nvmf_connect_data *data; 368 int ret; 369 370 cmd.connect.opcode = nvme_fabrics_command; 371 cmd.connect.fctype = nvme_fabrics_type_connect; 372 cmd.connect.qid = 0; 373 cmd.connect.sqsize = cpu_to_le16(NVME_AQ_DEPTH - 1); 374 375 /* 376 * Set keep-alive timeout in seconds granularity (ms * 1000) 377 */ 378 cmd.connect.kato = cpu_to_le32(ctrl->kato * 1000); 379 380 if (ctrl->opts->disable_sqflow) 381 cmd.connect.cattr |= NVME_CONNECT_DISABLE_SQFLOW; 382 383 data = kzalloc(sizeof(*data), GFP_KERNEL); 384 if (!data) 385 return -ENOMEM; 386 387 uuid_copy(&data->hostid, &ctrl->opts->host->id); 388 data->cntlid = cpu_to_le16(0xffff); 389 strncpy(data->subsysnqn, ctrl->opts->subsysnqn, NVMF_NQN_SIZE); 390 strncpy(data->hostnqn, ctrl->opts->host->nqn, NVMF_NQN_SIZE); 391 392 ret = __nvme_submit_sync_cmd(ctrl->fabrics_q, &cmd, &res, 393 data, sizeof(*data), 0, NVME_QID_ANY, 1, 394 BLK_MQ_REQ_RESERVED | BLK_MQ_REQ_NOWAIT); 395 if (ret) { 396 nvmf_log_connect_error(ctrl, ret, le32_to_cpu(res.u32), 397 &cmd, data); 398 goto out_free_data; 399 } 400 401 ctrl->cntlid = le16_to_cpu(res.u16); 402 403 out_free_data: 404 kfree(data); 405 return ret; 406 } 407 EXPORT_SYMBOL_GPL(nvmf_connect_admin_queue); 408 409 /** 410 * nvmf_connect_io_queue() - NVMe Fabrics I/O Queue "Connect" 411 * API function. 412 * @ctrl: Host nvme controller instance used to establish an 413 * NVMe I/O queue connection to the already allocated NVMe 414 * controller on the target system. 415 * @qid: NVMe I/O queue number for the new I/O connection between 416 * host and target (note qid == 0 is illegal as this is 417 * the Admin queue, per NVMe standard). 418 * 419 * This function issues a fabrics-protocol connection 420 * of a NVMe I/O queue (via NVMe Fabrics "Connect" command) 421 * between the host system device and the allocated NVMe controller 422 * on the target system. 423 * 424 * Return: 425 * 0: success 426 * > 0: NVMe error status code 427 * < 0: Linux errno error code 428 */ 429 int nvmf_connect_io_queue(struct nvme_ctrl *ctrl, u16 qid) 430 { 431 struct nvme_command cmd = { }; 432 struct nvmf_connect_data *data; 433 union nvme_result res; 434 int ret; 435 436 cmd.connect.opcode = nvme_fabrics_command; 437 cmd.connect.fctype = nvme_fabrics_type_connect; 438 cmd.connect.qid = cpu_to_le16(qid); 439 cmd.connect.sqsize = cpu_to_le16(ctrl->sqsize); 440 441 if (ctrl->opts->disable_sqflow) 442 cmd.connect.cattr |= NVME_CONNECT_DISABLE_SQFLOW; 443 444 data = kzalloc(sizeof(*data), GFP_KERNEL); 445 if (!data) 446 return -ENOMEM; 447 448 uuid_copy(&data->hostid, &ctrl->opts->host->id); 449 data->cntlid = cpu_to_le16(ctrl->cntlid); 450 strncpy(data->subsysnqn, ctrl->opts->subsysnqn, NVMF_NQN_SIZE); 451 strncpy(data->hostnqn, ctrl->opts->host->nqn, NVMF_NQN_SIZE); 452 453 ret = __nvme_submit_sync_cmd(ctrl->connect_q, &cmd, &res, 454 data, sizeof(*data), 0, qid, 1, 455 BLK_MQ_REQ_RESERVED | BLK_MQ_REQ_NOWAIT); 456 if (ret) { 457 nvmf_log_connect_error(ctrl, ret, le32_to_cpu(res.u32), 458 &cmd, data); 459 } 460 kfree(data); 461 return ret; 462 } 463 EXPORT_SYMBOL_GPL(nvmf_connect_io_queue); 464 465 bool nvmf_should_reconnect(struct nvme_ctrl *ctrl) 466 { 467 if (ctrl->opts->max_reconnects == -1 || 468 ctrl->nr_reconnects < ctrl->opts->max_reconnects) 469 return true; 470 471 return false; 472 } 473 EXPORT_SYMBOL_GPL(nvmf_should_reconnect); 474 475 /** 476 * nvmf_register_transport() - NVMe Fabrics Library registration function. 477 * @ops: Transport ops instance to be registered to the 478 * common fabrics library. 479 * 480 * API function that registers the type of specific transport fabric 481 * being implemented to the common NVMe fabrics library. Part of 482 * the overall init sequence of starting up a fabrics driver. 483 */ 484 int nvmf_register_transport(struct nvmf_transport_ops *ops) 485 { 486 if (!ops->create_ctrl) 487 return -EINVAL; 488 489 down_write(&nvmf_transports_rwsem); 490 list_add_tail(&ops->entry, &nvmf_transports); 491 up_write(&nvmf_transports_rwsem); 492 493 return 0; 494 } 495 EXPORT_SYMBOL_GPL(nvmf_register_transport); 496 497 /** 498 * nvmf_unregister_transport() - NVMe Fabrics Library unregistration function. 499 * @ops: Transport ops instance to be unregistered from the 500 * common fabrics library. 501 * 502 * Fabrics API function that unregisters the type of specific transport 503 * fabric being implemented from the common NVMe fabrics library. 504 * Part of the overall exit sequence of unloading the implemented driver. 505 */ 506 void nvmf_unregister_transport(struct nvmf_transport_ops *ops) 507 { 508 down_write(&nvmf_transports_rwsem); 509 list_del(&ops->entry); 510 up_write(&nvmf_transports_rwsem); 511 } 512 EXPORT_SYMBOL_GPL(nvmf_unregister_transport); 513 514 static struct nvmf_transport_ops *nvmf_lookup_transport( 515 struct nvmf_ctrl_options *opts) 516 { 517 struct nvmf_transport_ops *ops; 518 519 lockdep_assert_held(&nvmf_transports_rwsem); 520 521 list_for_each_entry(ops, &nvmf_transports, entry) { 522 if (strcmp(ops->name, opts->transport) == 0) 523 return ops; 524 } 525 526 return NULL; 527 } 528 529 static const match_table_t opt_tokens = { 530 { NVMF_OPT_TRANSPORT, "transport=%s" }, 531 { NVMF_OPT_TRADDR, "traddr=%s" }, 532 { NVMF_OPT_TRSVCID, "trsvcid=%s" }, 533 { NVMF_OPT_NQN, "nqn=%s" }, 534 { NVMF_OPT_QUEUE_SIZE, "queue_size=%d" }, 535 { NVMF_OPT_NR_IO_QUEUES, "nr_io_queues=%d" }, 536 { NVMF_OPT_RECONNECT_DELAY, "reconnect_delay=%d" }, 537 { NVMF_OPT_CTRL_LOSS_TMO, "ctrl_loss_tmo=%d" }, 538 { NVMF_OPT_KATO, "keep_alive_tmo=%d" }, 539 { NVMF_OPT_HOSTNQN, "hostnqn=%s" }, 540 { NVMF_OPT_HOST_TRADDR, "host_traddr=%s" }, 541 { NVMF_OPT_HOST_IFACE, "host_iface=%s" }, 542 { NVMF_OPT_HOST_ID, "hostid=%s" }, 543 { NVMF_OPT_DUP_CONNECT, "duplicate_connect" }, 544 { NVMF_OPT_DISABLE_SQFLOW, "disable_sqflow" }, 545 { NVMF_OPT_HDR_DIGEST, "hdr_digest" }, 546 { NVMF_OPT_DATA_DIGEST, "data_digest" }, 547 { NVMF_OPT_NR_WRITE_QUEUES, "nr_write_queues=%d" }, 548 { NVMF_OPT_NR_POLL_QUEUES, "nr_poll_queues=%d" }, 549 { NVMF_OPT_TOS, "tos=%d" }, 550 { NVMF_OPT_FAIL_FAST_TMO, "fast_io_fail_tmo=%d" }, 551 { NVMF_OPT_ERR, NULL } 552 }; 553 554 static int nvmf_parse_options(struct nvmf_ctrl_options *opts, 555 const char *buf) 556 { 557 substring_t args[MAX_OPT_ARGS]; 558 char *options, *o, *p; 559 int token, ret = 0; 560 size_t nqnlen = 0; 561 int ctrl_loss_tmo = NVMF_DEF_CTRL_LOSS_TMO; 562 uuid_t hostid; 563 564 /* Set defaults */ 565 opts->queue_size = NVMF_DEF_QUEUE_SIZE; 566 opts->nr_io_queues = num_online_cpus(); 567 opts->reconnect_delay = NVMF_DEF_RECONNECT_DELAY; 568 opts->kato = 0; 569 opts->duplicate_connect = false; 570 opts->fast_io_fail_tmo = NVMF_DEF_FAIL_FAST_TMO; 571 opts->hdr_digest = false; 572 opts->data_digest = false; 573 opts->tos = -1; /* < 0 == use transport default */ 574 575 options = o = kstrdup(buf, GFP_KERNEL); 576 if (!options) 577 return -ENOMEM; 578 579 uuid_gen(&hostid); 580 581 while ((p = strsep(&o, ",\n")) != NULL) { 582 if (!*p) 583 continue; 584 585 token = match_token(p, opt_tokens, args); 586 opts->mask |= token; 587 switch (token) { 588 case NVMF_OPT_TRANSPORT: 589 p = match_strdup(args); 590 if (!p) { 591 ret = -ENOMEM; 592 goto out; 593 } 594 kfree(opts->transport); 595 opts->transport = p; 596 break; 597 case NVMF_OPT_NQN: 598 p = match_strdup(args); 599 if (!p) { 600 ret = -ENOMEM; 601 goto out; 602 } 603 kfree(opts->subsysnqn); 604 opts->subsysnqn = p; 605 nqnlen = strlen(opts->subsysnqn); 606 if (nqnlen >= NVMF_NQN_SIZE) { 607 pr_err("%s needs to be < %d bytes\n", 608 opts->subsysnqn, NVMF_NQN_SIZE); 609 ret = -EINVAL; 610 goto out; 611 } 612 opts->discovery_nqn = 613 !(strcmp(opts->subsysnqn, 614 NVME_DISC_SUBSYS_NAME)); 615 break; 616 case NVMF_OPT_TRADDR: 617 p = match_strdup(args); 618 if (!p) { 619 ret = -ENOMEM; 620 goto out; 621 } 622 kfree(opts->traddr); 623 opts->traddr = p; 624 break; 625 case NVMF_OPT_TRSVCID: 626 p = match_strdup(args); 627 if (!p) { 628 ret = -ENOMEM; 629 goto out; 630 } 631 kfree(opts->trsvcid); 632 opts->trsvcid = p; 633 break; 634 case NVMF_OPT_QUEUE_SIZE: 635 if (match_int(args, &token)) { 636 ret = -EINVAL; 637 goto out; 638 } 639 if (token < NVMF_MIN_QUEUE_SIZE || 640 token > NVMF_MAX_QUEUE_SIZE) { 641 pr_err("Invalid queue_size %d\n", token); 642 ret = -EINVAL; 643 goto out; 644 } 645 opts->queue_size = token; 646 break; 647 case NVMF_OPT_NR_IO_QUEUES: 648 if (match_int(args, &token)) { 649 ret = -EINVAL; 650 goto out; 651 } 652 if (token <= 0) { 653 pr_err("Invalid number of IOQs %d\n", token); 654 ret = -EINVAL; 655 goto out; 656 } 657 if (opts->discovery_nqn) { 658 pr_debug("Ignoring nr_io_queues value for discovery controller\n"); 659 break; 660 } 661 662 opts->nr_io_queues = min_t(unsigned int, 663 num_online_cpus(), token); 664 break; 665 case NVMF_OPT_KATO: 666 if (match_int(args, &token)) { 667 ret = -EINVAL; 668 goto out; 669 } 670 671 if (token < 0) { 672 pr_err("Invalid keep_alive_tmo %d\n", token); 673 ret = -EINVAL; 674 goto out; 675 } else if (token == 0 && !opts->discovery_nqn) { 676 /* Allowed for debug */ 677 pr_warn("keep_alive_tmo 0 won't execute keep alives!!!\n"); 678 } 679 opts->kato = token; 680 break; 681 case NVMF_OPT_CTRL_LOSS_TMO: 682 if (match_int(args, &token)) { 683 ret = -EINVAL; 684 goto out; 685 } 686 687 if (token < 0) 688 pr_warn("ctrl_loss_tmo < 0 will reconnect forever\n"); 689 ctrl_loss_tmo = token; 690 break; 691 case NVMF_OPT_FAIL_FAST_TMO: 692 if (match_int(args, &token)) { 693 ret = -EINVAL; 694 goto out; 695 } 696 697 if (token >= 0) 698 pr_warn("I/O fail on reconnect controller after %d sec\n", 699 token); 700 opts->fast_io_fail_tmo = token; 701 break; 702 case NVMF_OPT_HOSTNQN: 703 if (opts->host) { 704 pr_err("hostnqn already user-assigned: %s\n", 705 opts->host->nqn); 706 ret = -EADDRINUSE; 707 goto out; 708 } 709 p = match_strdup(args); 710 if (!p) { 711 ret = -ENOMEM; 712 goto out; 713 } 714 nqnlen = strlen(p); 715 if (nqnlen >= NVMF_NQN_SIZE) { 716 pr_err("%s needs to be < %d bytes\n", 717 p, NVMF_NQN_SIZE); 718 kfree(p); 719 ret = -EINVAL; 720 goto out; 721 } 722 opts->host = nvmf_host_add(p); 723 kfree(p); 724 if (!opts->host) { 725 ret = -ENOMEM; 726 goto out; 727 } 728 break; 729 case NVMF_OPT_RECONNECT_DELAY: 730 if (match_int(args, &token)) { 731 ret = -EINVAL; 732 goto out; 733 } 734 if (token <= 0) { 735 pr_err("Invalid reconnect_delay %d\n", token); 736 ret = -EINVAL; 737 goto out; 738 } 739 opts->reconnect_delay = token; 740 break; 741 case NVMF_OPT_HOST_TRADDR: 742 p = match_strdup(args); 743 if (!p) { 744 ret = -ENOMEM; 745 goto out; 746 } 747 kfree(opts->host_traddr); 748 opts->host_traddr = p; 749 break; 750 case NVMF_OPT_HOST_IFACE: 751 p = match_strdup(args); 752 if (!p) { 753 ret = -ENOMEM; 754 goto out; 755 } 756 kfree(opts->host_iface); 757 opts->host_iface = p; 758 break; 759 case NVMF_OPT_HOST_ID: 760 p = match_strdup(args); 761 if (!p) { 762 ret = -ENOMEM; 763 goto out; 764 } 765 ret = uuid_parse(p, &hostid); 766 if (ret) { 767 pr_err("Invalid hostid %s\n", p); 768 ret = -EINVAL; 769 kfree(p); 770 goto out; 771 } 772 kfree(p); 773 break; 774 case NVMF_OPT_DUP_CONNECT: 775 opts->duplicate_connect = true; 776 break; 777 case NVMF_OPT_DISABLE_SQFLOW: 778 opts->disable_sqflow = true; 779 break; 780 case NVMF_OPT_HDR_DIGEST: 781 opts->hdr_digest = true; 782 break; 783 case NVMF_OPT_DATA_DIGEST: 784 opts->data_digest = true; 785 break; 786 case NVMF_OPT_NR_WRITE_QUEUES: 787 if (match_int(args, &token)) { 788 ret = -EINVAL; 789 goto out; 790 } 791 if (token <= 0) { 792 pr_err("Invalid nr_write_queues %d\n", token); 793 ret = -EINVAL; 794 goto out; 795 } 796 opts->nr_write_queues = token; 797 break; 798 case NVMF_OPT_NR_POLL_QUEUES: 799 if (match_int(args, &token)) { 800 ret = -EINVAL; 801 goto out; 802 } 803 if (token <= 0) { 804 pr_err("Invalid nr_poll_queues %d\n", token); 805 ret = -EINVAL; 806 goto out; 807 } 808 opts->nr_poll_queues = token; 809 break; 810 case NVMF_OPT_TOS: 811 if (match_int(args, &token)) { 812 ret = -EINVAL; 813 goto out; 814 } 815 if (token < 0) { 816 pr_err("Invalid type of service %d\n", token); 817 ret = -EINVAL; 818 goto out; 819 } 820 if (token > 255) { 821 pr_warn("Clamping type of service to 255\n"); 822 token = 255; 823 } 824 opts->tos = token; 825 break; 826 default: 827 pr_warn("unknown parameter or missing value '%s' in ctrl creation request\n", 828 p); 829 ret = -EINVAL; 830 goto out; 831 } 832 } 833 834 if (opts->discovery_nqn) { 835 opts->nr_io_queues = 0; 836 opts->nr_write_queues = 0; 837 opts->nr_poll_queues = 0; 838 opts->duplicate_connect = true; 839 } else { 840 if (!opts->kato) 841 opts->kato = NVME_DEFAULT_KATO; 842 } 843 if (ctrl_loss_tmo < 0) { 844 opts->max_reconnects = -1; 845 } else { 846 opts->max_reconnects = DIV_ROUND_UP(ctrl_loss_tmo, 847 opts->reconnect_delay); 848 if (ctrl_loss_tmo < opts->fast_io_fail_tmo) 849 pr_warn("failfast tmo (%d) larger than controller loss tmo (%d)\n", 850 opts->fast_io_fail_tmo, ctrl_loss_tmo); 851 } 852 853 if (!opts->host) { 854 kref_get(&nvmf_default_host->ref); 855 opts->host = nvmf_default_host; 856 } 857 858 uuid_copy(&opts->host->id, &hostid); 859 860 out: 861 kfree(options); 862 return ret; 863 } 864 865 static int nvmf_check_required_opts(struct nvmf_ctrl_options *opts, 866 unsigned int required_opts) 867 { 868 if ((opts->mask & required_opts) != required_opts) { 869 int i; 870 871 for (i = 0; i < ARRAY_SIZE(opt_tokens); i++) { 872 if ((opt_tokens[i].token & required_opts) && 873 !(opt_tokens[i].token & opts->mask)) { 874 pr_warn("missing parameter '%s'\n", 875 opt_tokens[i].pattern); 876 } 877 } 878 879 return -EINVAL; 880 } 881 882 return 0; 883 } 884 885 bool nvmf_ip_options_match(struct nvme_ctrl *ctrl, 886 struct nvmf_ctrl_options *opts) 887 { 888 if (!nvmf_ctlr_matches_baseopts(ctrl, opts) || 889 strcmp(opts->traddr, ctrl->opts->traddr) || 890 strcmp(opts->trsvcid, ctrl->opts->trsvcid)) 891 return false; 892 893 /* 894 * Checking the local address is rough. In most cases, none is specified 895 * and the host port is selected by the stack. 896 * 897 * Assume no match if: 898 * - local address is specified and address is not the same 899 * - local address is not specified but remote is, or vice versa 900 * (admin using specific host_traddr when it matters). 901 */ 902 if ((opts->mask & NVMF_OPT_HOST_TRADDR) && 903 (ctrl->opts->mask & NVMF_OPT_HOST_TRADDR)) { 904 if (strcmp(opts->host_traddr, ctrl->opts->host_traddr)) 905 return false; 906 } else if ((opts->mask & NVMF_OPT_HOST_TRADDR) || 907 (ctrl->opts->mask & NVMF_OPT_HOST_TRADDR)) { 908 return false; 909 } 910 911 return true; 912 } 913 EXPORT_SYMBOL_GPL(nvmf_ip_options_match); 914 915 static int nvmf_check_allowed_opts(struct nvmf_ctrl_options *opts, 916 unsigned int allowed_opts) 917 { 918 if (opts->mask & ~allowed_opts) { 919 int i; 920 921 for (i = 0; i < ARRAY_SIZE(opt_tokens); i++) { 922 if ((opt_tokens[i].token & opts->mask) && 923 (opt_tokens[i].token & ~allowed_opts)) { 924 pr_warn("invalid parameter '%s'\n", 925 opt_tokens[i].pattern); 926 } 927 } 928 929 return -EINVAL; 930 } 931 932 return 0; 933 } 934 935 void nvmf_free_options(struct nvmf_ctrl_options *opts) 936 { 937 nvmf_host_put(opts->host); 938 kfree(opts->transport); 939 kfree(opts->traddr); 940 kfree(opts->trsvcid); 941 kfree(opts->subsysnqn); 942 kfree(opts->host_traddr); 943 kfree(opts->host_iface); 944 kfree(opts); 945 } 946 EXPORT_SYMBOL_GPL(nvmf_free_options); 947 948 #define NVMF_REQUIRED_OPTS (NVMF_OPT_TRANSPORT | NVMF_OPT_NQN) 949 #define NVMF_ALLOWED_OPTS (NVMF_OPT_QUEUE_SIZE | NVMF_OPT_NR_IO_QUEUES | \ 950 NVMF_OPT_KATO | NVMF_OPT_HOSTNQN | \ 951 NVMF_OPT_HOST_ID | NVMF_OPT_DUP_CONNECT |\ 952 NVMF_OPT_DISABLE_SQFLOW |\ 953 NVMF_OPT_FAIL_FAST_TMO) 954 955 static struct nvme_ctrl * 956 nvmf_create_ctrl(struct device *dev, const char *buf) 957 { 958 struct nvmf_ctrl_options *opts; 959 struct nvmf_transport_ops *ops; 960 struct nvme_ctrl *ctrl; 961 int ret; 962 963 opts = kzalloc(sizeof(*opts), GFP_KERNEL); 964 if (!opts) 965 return ERR_PTR(-ENOMEM); 966 967 ret = nvmf_parse_options(opts, buf); 968 if (ret) 969 goto out_free_opts; 970 971 972 request_module("nvme-%s", opts->transport); 973 974 /* 975 * Check the generic options first as we need a valid transport for 976 * the lookup below. Then clear the generic flags so that transport 977 * drivers don't have to care about them. 978 */ 979 ret = nvmf_check_required_opts(opts, NVMF_REQUIRED_OPTS); 980 if (ret) 981 goto out_free_opts; 982 opts->mask &= ~NVMF_REQUIRED_OPTS; 983 984 down_read(&nvmf_transports_rwsem); 985 ops = nvmf_lookup_transport(opts); 986 if (!ops) { 987 pr_info("no handler found for transport %s.\n", 988 opts->transport); 989 ret = -EINVAL; 990 goto out_unlock; 991 } 992 993 if (!try_module_get(ops->module)) { 994 ret = -EBUSY; 995 goto out_unlock; 996 } 997 up_read(&nvmf_transports_rwsem); 998 999 ret = nvmf_check_required_opts(opts, ops->required_opts); 1000 if (ret) 1001 goto out_module_put; 1002 ret = nvmf_check_allowed_opts(opts, NVMF_ALLOWED_OPTS | 1003 ops->allowed_opts | ops->required_opts); 1004 if (ret) 1005 goto out_module_put; 1006 1007 ctrl = ops->create_ctrl(dev, opts); 1008 if (IS_ERR(ctrl)) { 1009 ret = PTR_ERR(ctrl); 1010 goto out_module_put; 1011 } 1012 1013 module_put(ops->module); 1014 return ctrl; 1015 1016 out_module_put: 1017 module_put(ops->module); 1018 goto out_free_opts; 1019 out_unlock: 1020 up_read(&nvmf_transports_rwsem); 1021 out_free_opts: 1022 nvmf_free_options(opts); 1023 return ERR_PTR(ret); 1024 } 1025 1026 static struct class *nvmf_class; 1027 static struct device *nvmf_device; 1028 static DEFINE_MUTEX(nvmf_dev_mutex); 1029 1030 static ssize_t nvmf_dev_write(struct file *file, const char __user *ubuf, 1031 size_t count, loff_t *pos) 1032 { 1033 struct seq_file *seq_file = file->private_data; 1034 struct nvme_ctrl *ctrl; 1035 const char *buf; 1036 int ret = 0; 1037 1038 if (count > PAGE_SIZE) 1039 return -ENOMEM; 1040 1041 buf = memdup_user_nul(ubuf, count); 1042 if (IS_ERR(buf)) 1043 return PTR_ERR(buf); 1044 1045 mutex_lock(&nvmf_dev_mutex); 1046 if (seq_file->private) { 1047 ret = -EINVAL; 1048 goto out_unlock; 1049 } 1050 1051 ctrl = nvmf_create_ctrl(nvmf_device, buf); 1052 if (IS_ERR(ctrl)) { 1053 ret = PTR_ERR(ctrl); 1054 goto out_unlock; 1055 } 1056 1057 seq_file->private = ctrl; 1058 1059 out_unlock: 1060 mutex_unlock(&nvmf_dev_mutex); 1061 kfree(buf); 1062 return ret ? ret : count; 1063 } 1064 1065 static int nvmf_dev_show(struct seq_file *seq_file, void *private) 1066 { 1067 struct nvme_ctrl *ctrl; 1068 int ret = 0; 1069 1070 mutex_lock(&nvmf_dev_mutex); 1071 ctrl = seq_file->private; 1072 if (!ctrl) { 1073 ret = -EINVAL; 1074 goto out_unlock; 1075 } 1076 1077 seq_printf(seq_file, "instance=%d,cntlid=%d\n", 1078 ctrl->instance, ctrl->cntlid); 1079 1080 out_unlock: 1081 mutex_unlock(&nvmf_dev_mutex); 1082 return ret; 1083 } 1084 1085 static int nvmf_dev_open(struct inode *inode, struct file *file) 1086 { 1087 /* 1088 * The miscdevice code initializes file->private_data, but doesn't 1089 * make use of it later. 1090 */ 1091 file->private_data = NULL; 1092 return single_open(file, nvmf_dev_show, NULL); 1093 } 1094 1095 static int nvmf_dev_release(struct inode *inode, struct file *file) 1096 { 1097 struct seq_file *seq_file = file->private_data; 1098 struct nvme_ctrl *ctrl = seq_file->private; 1099 1100 if (ctrl) 1101 nvme_put_ctrl(ctrl); 1102 return single_release(inode, file); 1103 } 1104 1105 static const struct file_operations nvmf_dev_fops = { 1106 .owner = THIS_MODULE, 1107 .write = nvmf_dev_write, 1108 .read = seq_read, 1109 .open = nvmf_dev_open, 1110 .release = nvmf_dev_release, 1111 }; 1112 1113 static struct miscdevice nvmf_misc = { 1114 .minor = MISC_DYNAMIC_MINOR, 1115 .name = "nvme-fabrics", 1116 .fops = &nvmf_dev_fops, 1117 }; 1118 1119 static int __init nvmf_init(void) 1120 { 1121 int ret; 1122 1123 nvmf_default_host = nvmf_host_default(); 1124 if (!nvmf_default_host) 1125 return -ENOMEM; 1126 1127 nvmf_class = class_create(THIS_MODULE, "nvme-fabrics"); 1128 if (IS_ERR(nvmf_class)) { 1129 pr_err("couldn't register class nvme-fabrics\n"); 1130 ret = PTR_ERR(nvmf_class); 1131 goto out_free_host; 1132 } 1133 1134 nvmf_device = 1135 device_create(nvmf_class, NULL, MKDEV(0, 0), NULL, "ctl"); 1136 if (IS_ERR(nvmf_device)) { 1137 pr_err("couldn't create nvme-fabris device!\n"); 1138 ret = PTR_ERR(nvmf_device); 1139 goto out_destroy_class; 1140 } 1141 1142 ret = misc_register(&nvmf_misc); 1143 if (ret) { 1144 pr_err("couldn't register misc device: %d\n", ret); 1145 goto out_destroy_device; 1146 } 1147 1148 return 0; 1149 1150 out_destroy_device: 1151 device_destroy(nvmf_class, MKDEV(0, 0)); 1152 out_destroy_class: 1153 class_destroy(nvmf_class); 1154 out_free_host: 1155 nvmf_host_put(nvmf_default_host); 1156 return ret; 1157 } 1158 1159 static void __exit nvmf_exit(void) 1160 { 1161 misc_deregister(&nvmf_misc); 1162 device_destroy(nvmf_class, MKDEV(0, 0)); 1163 class_destroy(nvmf_class); 1164 nvmf_host_put(nvmf_default_host); 1165 1166 BUILD_BUG_ON(sizeof(struct nvmf_common_command) != 64); 1167 BUILD_BUG_ON(sizeof(struct nvmf_connect_command) != 64); 1168 BUILD_BUG_ON(sizeof(struct nvmf_property_get_command) != 64); 1169 BUILD_BUG_ON(sizeof(struct nvmf_property_set_command) != 64); 1170 BUILD_BUG_ON(sizeof(struct nvmf_connect_data) != 1024); 1171 } 1172 1173 MODULE_LICENSE("GPL v2"); 1174 1175 module_init(nvmf_init); 1176 module_exit(nvmf_exit); 1177