Line data Source code
1 : /* SPDX-License-Identifier: BSD-3-Clause
2 : * Copyright (C) 2016 Intel Corporation. All rights reserved.
3 : * Copyright (c) 2019 Mellanox Technologies LTD. All rights reserved.
4 : * Copyright (c) 2021-2024 NVIDIA CORPORATION & AFFILIATES. All rights reserved.
5 : * Copyright (c) 2022 Dell Inc, or its subsidiaries. All rights reserved.
6 : */
7 :
8 : #include "spdk/stdinc.h"
9 :
10 : #include "bdev_nvme.h"
11 :
12 : #include "spdk/accel.h"
13 : #include "spdk/config.h"
14 : #include "spdk/endian.h"
15 : #include "spdk/bdev.h"
16 : #include "spdk/json.h"
17 : #include "spdk/keyring.h"
18 : #include "spdk/likely.h"
19 : #include "spdk/nvme.h"
20 : #include "spdk/nvme_ocssd.h"
21 : #include "spdk/nvme_zns.h"
22 : #include "spdk/opal.h"
23 : #include "spdk/thread.h"
24 : #include "spdk/trace.h"
25 : #include "spdk/string.h"
26 : #include "spdk/util.h"
27 : #include "spdk/uuid.h"
28 :
29 : #include "spdk/bdev_module.h"
30 : #include "spdk/log.h"
31 :
32 : #include "spdk_internal/usdt.h"
33 : #include "spdk_internal/trace_defs.h"
34 :
35 : #define CTRLR_STRING(nvme_ctrlr) \
36 : (spdk_nvme_trtype_is_fabrics(nvme_ctrlr->active_path_id->trid.trtype) ? \
37 : nvme_ctrlr->active_path_id->trid.subnqn : nvme_ctrlr->active_path_id->trid.traddr)
38 :
39 : #define CTRLR_ID(nvme_ctrlr) (spdk_nvme_ctrlr_get_id(nvme_ctrlr->ctrlr))
40 :
41 : #define NVME_CTRLR_ERRLOG(ctrlr, format, ...) \
42 : SPDK_ERRLOG("[%s, %u] " format, CTRLR_STRING(ctrlr), CTRLR_ID(ctrlr), ##__VA_ARGS__);
43 :
44 : #define NVME_CTRLR_WARNLOG(ctrlr, format, ...) \
45 : SPDK_WARNLOG("[%s, %u] " format, CTRLR_STRING(ctrlr), CTRLR_ID(ctrlr), ##__VA_ARGS__);
46 :
47 : #define NVME_CTRLR_NOTICELOG(ctrlr, format, ...) \
48 : SPDK_NOTICELOG("[%s, %u] " format, CTRLR_STRING(ctrlr), CTRLR_ID(ctrlr), ##__VA_ARGS__);
49 :
50 : #define NVME_CTRLR_INFOLOG(ctrlr, format, ...) \
51 : SPDK_INFOLOG(bdev_nvme, "[%s, %u] " format, CTRLR_STRING(ctrlr), CTRLR_ID(ctrlr), ##__VA_ARGS__);
52 :
53 : #ifdef DEBUG
54 : #define NVME_CTRLR_DEBUGLOG(ctrlr, format, ...) \
55 : SPDK_DEBUGLOG(bdev_nvme, "[%s, %u] " format, CTRLR_STRING(ctrlr), CTRLR_ID(ctrlr), ##__VA_ARGS__);
56 : #else
57 : #define NVME_CTRLR_DEBUGLOG(ctrlr, ...) do { } while (0)
58 : #endif
59 :
60 : #define BDEV_STRING(nbdev) (nbdev->disk.name)
61 :
62 : #define NVME_BDEV_ERRLOG(nbdev, format, ...) \
63 : SPDK_ERRLOG("[%s] " format, BDEV_STRING(nbdev), ##__VA_ARGS__);
64 :
65 : #define NVME_BDEV_WARNLOG(nbdev, format, ...) \
66 : SPDK_WARNLOG("[%s] " format, BDEV_STRING(nbdev), ##__VA_ARGS__);
67 :
68 : #define NVME_BDEV_NOTICELOG(nbdev, format, ...) \
69 : SPDK_NOTICELOG("[%s] " format, BDEV_STRING(nbdev), ##__VA_ARGS__);
70 :
71 : #define NVME_BDEV_INFOLOG(nbdev, format, ...) \
72 : SPDK_INFOLOG(bdev_nvme, "[%s] " format, BDEV_STRING(nbdev), ##__VA_ARGS__);
73 :
74 : #define SPDK_BDEV_NVME_DEFAULT_DELAY_CMD_SUBMIT true
75 : #define SPDK_BDEV_NVME_DEFAULT_KEEP_ALIVE_TIMEOUT_IN_MS (10000)
76 :
77 : #define NSID_STR_LEN 10
78 :
79 : #define SPDK_CONTROLLER_NAME_MAX 512
80 :
81 : static int bdev_nvme_config_json(struct spdk_json_write_ctx *w);
82 :
83 : struct nvme_bdev_io {
84 : /** array of iovecs to transfer. */
85 : struct iovec *iovs;
86 :
87 : /** Number of iovecs in iovs array. */
88 : int iovcnt;
89 :
90 : /** Current iovec position. */
91 : int iovpos;
92 :
93 : /** Offset in current iovec. */
94 : uint32_t iov_offset;
95 :
96 : /** Offset in current iovec. */
97 : uint32_t fused_iov_offset;
98 :
99 : /** array of iovecs to transfer. */
100 : struct iovec *fused_iovs;
101 :
102 : /** Number of iovecs in iovs array. */
103 : int fused_iovcnt;
104 :
105 : /** Current iovec position. */
106 : int fused_iovpos;
107 :
108 : /** I/O path the current I/O or admin passthrough is submitted on, or the I/O path
109 : * being reset in a reset I/O.
110 : */
111 : struct nvme_io_path *io_path;
112 :
113 : /** Saved status for admin passthru completion event, PI error verification, or intermediate compare-and-write status */
114 : struct spdk_nvme_cpl cpl;
115 :
116 : /** Extended IO opts passed by the user to bdev layer and mapped to NVME format */
117 : struct spdk_nvme_ns_cmd_ext_io_opts ext_opts;
118 :
119 : /** Keeps track if first of fused commands was submitted */
120 : bool first_fused_submitted;
121 :
122 : /** Keeps track if first of fused commands was completed */
123 : bool first_fused_completed;
124 :
125 : /* How many times the current I/O was retried. */
126 : int32_t retry_count;
127 :
128 : /** Expiration value in ticks to retry the current I/O. */
129 : uint64_t retry_ticks;
130 :
131 : /** Temporary pointer to zone report buffer */
132 : struct spdk_nvme_zns_zone_report *zone_report_buf;
133 :
134 : /** Keep track of how many zones that have been copied to the spdk_bdev_zone_info struct */
135 : uint64_t handled_zones;
136 :
137 : /* Current tsc at submit time. */
138 : uint64_t submit_tsc;
139 :
140 : /* Used to put nvme_bdev_io into the list */
141 : TAILQ_ENTRY(nvme_bdev_io) retry_link;
142 : };
143 :
144 : struct nvme_probe_skip_entry {
145 : struct spdk_nvme_transport_id trid;
146 : TAILQ_ENTRY(nvme_probe_skip_entry) tailq;
147 : };
148 : /* All the controllers deleted by users via RPC are skipped by hotplug monitor */
149 : static TAILQ_HEAD(, nvme_probe_skip_entry) g_skipped_nvme_ctrlrs = TAILQ_HEAD_INITIALIZER(
150 : g_skipped_nvme_ctrlrs);
151 :
152 : #define BDEV_NVME_DEFAULT_DIGESTS (SPDK_BIT(SPDK_NVMF_DHCHAP_HASH_SHA256) | \
153 : SPDK_BIT(SPDK_NVMF_DHCHAP_HASH_SHA384) | \
154 : SPDK_BIT(SPDK_NVMF_DHCHAP_HASH_SHA512))
155 :
156 : #define BDEV_NVME_DEFAULT_DHGROUPS (SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_NULL) | \
157 : SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_2048) | \
158 : SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_3072) | \
159 : SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_4096) | \
160 : SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_6144) | \
161 : SPDK_BIT(SPDK_NVMF_DHCHAP_DHGROUP_8192))
162 :
163 : static struct spdk_bdev_nvme_opts g_opts = {
164 : .action_on_timeout = SPDK_BDEV_NVME_TIMEOUT_ACTION_NONE,
165 : .timeout_us = 0,
166 : .timeout_admin_us = 0,
167 : .keep_alive_timeout_ms = SPDK_BDEV_NVME_DEFAULT_KEEP_ALIVE_TIMEOUT_IN_MS,
168 : .transport_retry_count = 4,
169 : .arbitration_burst = 0,
170 : .low_priority_weight = 0,
171 : .medium_priority_weight = 0,
172 : .high_priority_weight = 0,
173 : .nvme_adminq_poll_period_us = 10000ULL,
174 : .nvme_ioq_poll_period_us = 0,
175 : .io_queue_requests = 0,
176 : .delay_cmd_submit = SPDK_BDEV_NVME_DEFAULT_DELAY_CMD_SUBMIT,
177 : .bdev_retry_count = 3,
178 : .transport_ack_timeout = 0,
179 : .ctrlr_loss_timeout_sec = 0,
180 : .reconnect_delay_sec = 0,
181 : .fast_io_fail_timeout_sec = 0,
182 : .disable_auto_failback = false,
183 : .generate_uuids = false,
184 : .transport_tos = 0,
185 : .nvme_error_stat = false,
186 : .io_path_stat = false,
187 : .allow_accel_sequence = false,
188 : .dhchap_digests = BDEV_NVME_DEFAULT_DIGESTS,
189 : .dhchap_dhgroups = BDEV_NVME_DEFAULT_DHGROUPS,
190 : };
191 :
192 : #define NVME_HOTPLUG_POLL_PERIOD_MAX 10000000ULL
193 : #define NVME_HOTPLUG_POLL_PERIOD_DEFAULT 100000ULL
194 :
195 : static int g_hot_insert_nvme_controller_index = 0;
196 : static uint64_t g_nvme_hotplug_poll_period_us = NVME_HOTPLUG_POLL_PERIOD_DEFAULT;
197 : static bool g_nvme_hotplug_enabled = false;
198 : struct spdk_thread *g_bdev_nvme_init_thread;
199 : static struct spdk_poller *g_hotplug_poller;
200 : static struct spdk_poller *g_hotplug_probe_poller;
201 : static struct spdk_nvme_probe_ctx *g_hotplug_probe_ctx;
202 :
203 : static void nvme_ctrlr_populate_namespaces(struct nvme_ctrlr *nvme_ctrlr,
204 : struct nvme_async_probe_ctx *ctx);
205 : static void nvme_ctrlr_populate_namespaces_done(struct nvme_ctrlr *nvme_ctrlr,
206 : struct nvme_async_probe_ctx *ctx);
207 : static int bdev_nvme_library_init(void);
208 : static void bdev_nvme_library_fini(void);
209 : static void _bdev_nvme_submit_request(struct nvme_bdev_channel *nbdev_ch,
210 : struct spdk_bdev_io *bdev_io);
211 : static void bdev_nvme_submit_request(struct spdk_io_channel *ch,
212 : struct spdk_bdev_io *bdev_io);
213 : static int bdev_nvme_readv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
214 : void *md, uint64_t lba_count, uint64_t lba,
215 : uint32_t flags, struct spdk_memory_domain *domain, void *domain_ctx,
216 : struct spdk_accel_sequence *seq);
217 : static int bdev_nvme_no_pi_readv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
218 : void *md, uint64_t lba_count, uint64_t lba);
219 : static int bdev_nvme_writev(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
220 : void *md, uint64_t lba_count, uint64_t lba,
221 : uint32_t flags, struct spdk_memory_domain *domain, void *domain_ctx,
222 : struct spdk_accel_sequence *seq,
223 : union spdk_bdev_nvme_cdw12 cdw12, union spdk_bdev_nvme_cdw13 cdw13);
224 : static int bdev_nvme_zone_appendv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
225 : void *md, uint64_t lba_count,
226 : uint64_t zslba, uint32_t flags);
227 : static int bdev_nvme_comparev(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
228 : void *md, uint64_t lba_count, uint64_t lba,
229 : uint32_t flags);
230 : static int bdev_nvme_comparev_and_writev(struct nvme_bdev_io *bio,
231 : struct iovec *cmp_iov, int cmp_iovcnt, struct iovec *write_iov,
232 : int write_iovcnt, void *md, uint64_t lba_count, uint64_t lba,
233 : uint32_t flags);
234 : static int bdev_nvme_get_zone_info(struct nvme_bdev_io *bio, uint64_t zone_id,
235 : uint32_t num_zones, struct spdk_bdev_zone_info *info);
236 : static int bdev_nvme_zone_management(struct nvme_bdev_io *bio, uint64_t zone_id,
237 : enum spdk_bdev_zone_action action);
238 : static void bdev_nvme_admin_passthru(struct nvme_bdev_channel *nbdev_ch,
239 : struct nvme_bdev_io *bio,
240 : struct spdk_nvme_cmd *cmd, void *buf, size_t nbytes);
241 : static int bdev_nvme_io_passthru(struct nvme_bdev_io *bio, struct spdk_nvme_cmd *cmd,
242 : void *buf, size_t nbytes);
243 : static int bdev_nvme_io_passthru_md(struct nvme_bdev_io *bio, struct spdk_nvme_cmd *cmd,
244 : void *buf, size_t nbytes, void *md_buf, size_t md_len);
245 : static int bdev_nvme_iov_passthru_md(struct nvme_bdev_io *bio, struct spdk_nvme_cmd *cmd,
246 : struct iovec *iov, int iovcnt, size_t nbytes,
247 : void *md_buf, size_t md_len);
248 : static void bdev_nvme_abort(struct nvme_bdev_channel *nbdev_ch,
249 : struct nvme_bdev_io *bio, struct nvme_bdev_io *bio_to_abort);
250 : static void bdev_nvme_reset_io(struct nvme_bdev *nbdev, struct nvme_bdev_io *bio);
251 : static int bdev_nvme_reset_ctrlr(struct nvme_ctrlr *nvme_ctrlr);
252 : static int bdev_nvme_failover_ctrlr(struct nvme_ctrlr *nvme_ctrlr);
253 : static void remove_cb(void *cb_ctx, struct spdk_nvme_ctrlr *ctrlr);
254 : static int nvme_ctrlr_read_ana_log_page(struct nvme_ctrlr *nvme_ctrlr);
255 :
256 : static struct nvme_ns *nvme_ns_alloc(void);
257 : static void nvme_ns_free(struct nvme_ns *ns);
258 :
259 : static int
260 176 : nvme_ns_cmp(struct nvme_ns *ns1, struct nvme_ns *ns2)
261 : {
262 176 : return ns1->id < ns2->id ? -1 : ns1->id > ns2->id;
263 : }
264 :
265 951 : RB_GENERATE_STATIC(nvme_ns_tree, nvme_ns, node, nvme_ns_cmp);
266 :
267 : struct spdk_nvme_qpair *
268 1 : bdev_nvme_get_io_qpair(struct spdk_io_channel *ctrlr_io_ch)
269 : {
270 : struct nvme_ctrlr_channel *ctrlr_ch;
271 :
272 1 : assert(ctrlr_io_ch != NULL);
273 :
274 1 : ctrlr_ch = spdk_io_channel_get_ctx(ctrlr_io_ch);
275 :
276 1 : return ctrlr_ch->qpair->qpair;
277 : }
278 :
279 : static int
280 0 : bdev_nvme_get_ctx_size(void)
281 : {
282 0 : return sizeof(struct nvme_bdev_io);
283 : }
284 :
285 : static struct spdk_bdev_module nvme_if = {
286 : .name = "nvme",
287 : .async_fini = true,
288 : .module_init = bdev_nvme_library_init,
289 : .module_fini = bdev_nvme_library_fini,
290 : .config_json = bdev_nvme_config_json,
291 : .get_ctx_size = bdev_nvme_get_ctx_size,
292 :
293 : };
294 1 : SPDK_BDEV_MODULE_REGISTER(nvme, &nvme_if)
295 :
296 : struct nvme_bdev_ctrlrs g_nvme_bdev_ctrlrs = TAILQ_HEAD_INITIALIZER(g_nvme_bdev_ctrlrs);
297 : pthread_mutex_t g_bdev_nvme_mutex = PTHREAD_MUTEX_INITIALIZER;
298 : bool g_bdev_nvme_module_finish;
299 :
300 : struct nvme_bdev_ctrlr *
301 333 : nvme_bdev_ctrlr_get_by_name(const char *name)
302 : {
303 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
304 :
305 333 : TAILQ_FOREACH(nbdev_ctrlr, &g_nvme_bdev_ctrlrs, tailq) {
306 171 : if (strcmp(name, nbdev_ctrlr->name) == 0) {
307 171 : break;
308 : }
309 : }
310 :
311 333 : return nbdev_ctrlr;
312 : }
313 :
314 : static struct nvme_ctrlr *
315 59 : nvme_bdev_ctrlr_get_ctrlr(struct nvme_bdev_ctrlr *nbdev_ctrlr,
316 : const struct spdk_nvme_transport_id *trid, const char *hostnqn)
317 : {
318 : const struct spdk_nvme_ctrlr_opts *opts;
319 : struct nvme_ctrlr *nvme_ctrlr;
320 :
321 100 : TAILQ_FOREACH(nvme_ctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
322 75 : opts = spdk_nvme_ctrlr_get_opts(nvme_ctrlr->ctrlr);
323 75 : if (spdk_nvme_transport_id_compare(trid, &nvme_ctrlr->active_path_id->trid) == 0 &&
324 34 : strcmp(hostnqn, opts->hostnqn) == 0) {
325 34 : break;
326 : }
327 : }
328 :
329 59 : return nvme_ctrlr;
330 : }
331 :
332 : struct nvme_ctrlr *
333 0 : nvme_bdev_ctrlr_get_ctrlr_by_id(struct nvme_bdev_ctrlr *nbdev_ctrlr,
334 : uint16_t cntlid)
335 : {
336 : struct nvme_ctrlr *nvme_ctrlr;
337 : const struct spdk_nvme_ctrlr_data *cdata;
338 :
339 0 : TAILQ_FOREACH(nvme_ctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
340 0 : cdata = spdk_nvme_ctrlr_get_data(nvme_ctrlr->ctrlr);
341 0 : if (cdata->cntlid == cntlid) {
342 0 : break;
343 : }
344 : }
345 :
346 0 : return nvme_ctrlr;
347 : }
348 :
349 : static struct nvme_bdev *
350 75 : nvme_bdev_ctrlr_get_bdev(struct nvme_bdev_ctrlr *nbdev_ctrlr, uint32_t nsid)
351 : {
352 : struct nvme_bdev *bdev;
353 :
354 75 : pthread_mutex_lock(&g_bdev_nvme_mutex);
355 109 : TAILQ_FOREACH(bdev, &nbdev_ctrlr->bdevs, tailq) {
356 69 : if (bdev->nsid == nsid) {
357 35 : break;
358 : }
359 : }
360 75 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
361 :
362 75 : return bdev;
363 : }
364 :
365 : struct nvme_ns *
366 145 : nvme_ctrlr_get_ns(struct nvme_ctrlr *nvme_ctrlr, uint32_t nsid)
367 : {
368 145 : struct nvme_ns ns;
369 :
370 145 : assert(nsid > 0);
371 :
372 145 : ns.id = nsid;
373 145 : return RB_FIND(nvme_ns_tree, &nvme_ctrlr->namespaces, &ns);
374 : }
375 :
376 : struct nvme_ns *
377 165 : nvme_ctrlr_get_first_active_ns(struct nvme_ctrlr *nvme_ctrlr)
378 : {
379 165 : return RB_MIN(nvme_ns_tree, &nvme_ctrlr->namespaces);
380 : }
381 :
382 : struct nvme_ns *
383 74 : nvme_ctrlr_get_next_active_ns(struct nvme_ctrlr *nvme_ctrlr, struct nvme_ns *ns)
384 : {
385 74 : if (ns == NULL) {
386 0 : return NULL;
387 : }
388 :
389 74 : return RB_NEXT(nvme_ns_tree, &nvme_ctrlr->namespaces, ns);
390 : }
391 :
392 : static struct nvme_ctrlr *
393 53 : nvme_ctrlr_get(const struct spdk_nvme_transport_id *trid, const char *hostnqn)
394 : {
395 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
396 53 : struct nvme_ctrlr *nvme_ctrlr = NULL;
397 :
398 53 : pthread_mutex_lock(&g_bdev_nvme_mutex);
399 72 : TAILQ_FOREACH(nbdev_ctrlr, &g_nvme_bdev_ctrlrs, tailq) {
400 19 : nvme_ctrlr = nvme_bdev_ctrlr_get_ctrlr(nbdev_ctrlr, trid, hostnqn);
401 19 : if (nvme_ctrlr != NULL) {
402 0 : break;
403 : }
404 : }
405 53 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
406 :
407 53 : return nvme_ctrlr;
408 : }
409 :
410 : struct nvme_ctrlr *
411 126 : nvme_ctrlr_get_by_name(const char *name)
412 : {
413 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
414 126 : struct nvme_ctrlr *nvme_ctrlr = NULL;
415 :
416 126 : if (name == NULL) {
417 0 : return NULL;
418 : }
419 :
420 126 : pthread_mutex_lock(&g_bdev_nvme_mutex);
421 126 : nbdev_ctrlr = nvme_bdev_ctrlr_get_by_name(name);
422 126 : if (nbdev_ctrlr != NULL) {
423 60 : nvme_ctrlr = TAILQ_FIRST(&nbdev_ctrlr->ctrlrs);
424 : }
425 126 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
426 :
427 126 : return nvme_ctrlr;
428 : }
429 :
430 : void
431 0 : nvme_bdev_ctrlr_for_each(nvme_bdev_ctrlr_for_each_fn fn, void *ctx)
432 : {
433 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
434 :
435 0 : pthread_mutex_lock(&g_bdev_nvme_mutex);
436 0 : TAILQ_FOREACH(nbdev_ctrlr, &g_nvme_bdev_ctrlrs, tailq) {
437 0 : fn(nbdev_ctrlr, ctx);
438 : }
439 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
440 0 : }
441 :
442 : struct nvme_ctrlr_channel_iter {
443 : nvme_ctrlr_for_each_channel_msg fn;
444 : nvme_ctrlr_for_each_channel_done cpl;
445 : struct spdk_io_channel_iter *i;
446 : void *ctx;
447 : };
448 :
449 : void
450 166 : nvme_ctrlr_for_each_channel_continue(struct nvme_ctrlr_channel_iter *iter, int status)
451 : {
452 166 : spdk_for_each_channel_continue(iter->i, status);
453 166 : }
454 :
455 : static void
456 166 : nvme_ctrlr_each_channel_msg(struct spdk_io_channel_iter *i)
457 : {
458 166 : struct nvme_ctrlr_channel_iter *iter = spdk_io_channel_iter_get_ctx(i);
459 166 : struct nvme_ctrlr *nvme_ctrlr = spdk_io_channel_iter_get_io_device(i);
460 166 : struct spdk_io_channel *ch = spdk_io_channel_iter_get_channel(i);
461 166 : struct nvme_ctrlr_channel *ctrlr_ch = spdk_io_channel_get_ctx(ch);
462 :
463 166 : iter->i = i;
464 166 : iter->fn(iter, nvme_ctrlr, ctrlr_ch, iter->ctx);
465 166 : }
466 :
467 : static void
468 97 : nvme_ctrlr_each_channel_cpl(struct spdk_io_channel_iter *i, int status)
469 : {
470 97 : struct nvme_ctrlr_channel_iter *iter = spdk_io_channel_iter_get_ctx(i);
471 97 : struct nvme_ctrlr *nvme_ctrlr = spdk_io_channel_iter_get_io_device(i);
472 :
473 97 : iter->i = i;
474 97 : iter->cpl(nvme_ctrlr, iter->ctx, status);
475 :
476 97 : free(iter);
477 97 : }
478 :
479 : void
480 97 : nvme_ctrlr_for_each_channel(struct nvme_ctrlr *nvme_ctrlr,
481 : nvme_ctrlr_for_each_channel_msg fn, void *ctx,
482 : nvme_ctrlr_for_each_channel_done cpl)
483 : {
484 : struct nvme_ctrlr_channel_iter *iter;
485 :
486 97 : assert(nvme_ctrlr != NULL && fn != NULL);
487 :
488 97 : iter = calloc(1, sizeof(struct nvme_ctrlr_channel_iter));
489 97 : if (iter == NULL) {
490 0 : SPDK_ERRLOG("Unable to allocate iterator\n");
491 0 : assert(false);
492 : return;
493 : }
494 :
495 97 : iter->fn = fn;
496 97 : iter->cpl = cpl;
497 97 : iter->ctx = ctx;
498 :
499 97 : spdk_for_each_channel(nvme_ctrlr, nvme_ctrlr_each_channel_msg,
500 : iter, nvme_ctrlr_each_channel_cpl);
501 : }
502 :
503 : struct nvme_bdev_channel_iter {
504 : nvme_bdev_for_each_channel_msg fn;
505 : nvme_bdev_for_each_channel_done cpl;
506 : struct spdk_io_channel_iter *i;
507 : void *ctx;
508 : };
509 :
510 : void
511 69 : nvme_bdev_for_each_channel_continue(struct nvme_bdev_channel_iter *iter, int status)
512 : {
513 69 : spdk_for_each_channel_continue(iter->i, status);
514 69 : }
515 :
516 : static void
517 69 : nvme_bdev_each_channel_msg(struct spdk_io_channel_iter *i)
518 : {
519 69 : struct nvme_bdev_channel_iter *iter = spdk_io_channel_iter_get_ctx(i);
520 69 : struct nvme_bdev *nbdev = spdk_io_channel_iter_get_io_device(i);
521 69 : struct spdk_io_channel *ch = spdk_io_channel_iter_get_channel(i);
522 69 : struct nvme_bdev_channel *nbdev_ch = spdk_io_channel_get_ctx(ch);
523 :
524 69 : iter->i = i;
525 69 : iter->fn(iter, nbdev, nbdev_ch, iter->ctx);
526 69 : }
527 :
528 : static void
529 60 : nvme_bdev_each_channel_cpl(struct spdk_io_channel_iter *i, int status)
530 : {
531 60 : struct nvme_bdev_channel_iter *iter = spdk_io_channel_iter_get_ctx(i);
532 60 : struct nvme_bdev *nbdev = spdk_io_channel_iter_get_io_device(i);
533 :
534 60 : iter->i = i;
535 60 : iter->cpl(nbdev, iter->ctx, status);
536 :
537 60 : free(iter);
538 60 : }
539 :
540 : void
541 60 : nvme_bdev_for_each_channel(struct nvme_bdev *nbdev,
542 : nvme_bdev_for_each_channel_msg fn, void *ctx,
543 : nvme_bdev_for_each_channel_done cpl)
544 : {
545 : struct nvme_bdev_channel_iter *iter;
546 :
547 60 : assert(nbdev != NULL && fn != NULL);
548 :
549 60 : iter = calloc(1, sizeof(struct nvme_bdev_channel_iter));
550 60 : if (iter == NULL) {
551 0 : SPDK_ERRLOG("Unable to allocate iterator\n");
552 0 : assert(false);
553 : return;
554 : }
555 :
556 60 : iter->fn = fn;
557 60 : iter->cpl = cpl;
558 60 : iter->ctx = ctx;
559 :
560 60 : spdk_for_each_channel(nbdev, nvme_bdev_each_channel_msg, iter,
561 : nvme_bdev_each_channel_cpl);
562 : }
563 :
564 : void
565 0 : nvme_bdev_dump_trid_json(const struct spdk_nvme_transport_id *trid, struct spdk_json_write_ctx *w)
566 : {
567 : const char *trtype_str;
568 : const char *adrfam_str;
569 :
570 0 : trtype_str = spdk_nvme_transport_id_trtype_str(trid->trtype);
571 0 : if (trtype_str) {
572 0 : spdk_json_write_named_string(w, "trtype", trtype_str);
573 : }
574 :
575 0 : adrfam_str = spdk_nvme_transport_id_adrfam_str(trid->adrfam);
576 0 : if (adrfam_str) {
577 0 : spdk_json_write_named_string(w, "adrfam", adrfam_str);
578 : }
579 :
580 0 : if (trid->traddr[0] != '\0') {
581 0 : spdk_json_write_named_string(w, "traddr", trid->traddr);
582 : }
583 :
584 0 : if (trid->trsvcid[0] != '\0') {
585 0 : spdk_json_write_named_string(w, "trsvcid", trid->trsvcid);
586 : }
587 :
588 0 : if (trid->subnqn[0] != '\0') {
589 0 : spdk_json_write_named_string(w, "subnqn", trid->subnqn);
590 : }
591 0 : }
592 :
593 : static void
594 61 : nvme_bdev_ctrlr_delete(struct nvme_bdev_ctrlr *nbdev_ctrlr,
595 : struct nvme_ctrlr *nvme_ctrlr)
596 : {
597 : SPDK_DTRACE_PROBE1(bdev_nvme_ctrlr_delete, nvme_ctrlr->nbdev_ctrlr->name);
598 61 : pthread_mutex_lock(&g_bdev_nvme_mutex);
599 :
600 61 : TAILQ_REMOVE(&nbdev_ctrlr->ctrlrs, nvme_ctrlr, tailq);
601 61 : if (!TAILQ_EMPTY(&nbdev_ctrlr->ctrlrs)) {
602 15 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
603 :
604 15 : return;
605 : }
606 46 : TAILQ_REMOVE(&g_nvme_bdev_ctrlrs, nbdev_ctrlr, tailq);
607 :
608 46 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
609 :
610 46 : assert(TAILQ_EMPTY(&nbdev_ctrlr->bdevs));
611 :
612 46 : free(nbdev_ctrlr->name);
613 46 : free(nbdev_ctrlr);
614 : }
615 :
616 : static void
617 62 : _nvme_ctrlr_delete(struct nvme_ctrlr *nvme_ctrlr)
618 : {
619 : struct nvme_path_id *path_id, *tmp_path;
620 : struct nvme_ns *ns, *tmp_ns;
621 :
622 62 : free(nvme_ctrlr->copied_ana_desc);
623 62 : spdk_free(nvme_ctrlr->ana_log_page);
624 :
625 62 : if (nvme_ctrlr->opal_dev) {
626 0 : spdk_opal_dev_destruct(nvme_ctrlr->opal_dev);
627 0 : nvme_ctrlr->opal_dev = NULL;
628 : }
629 :
630 62 : if (nvme_ctrlr->nbdev_ctrlr) {
631 61 : nvme_bdev_ctrlr_delete(nvme_ctrlr->nbdev_ctrlr, nvme_ctrlr);
632 : }
633 :
634 62 : RB_FOREACH_SAFE(ns, nvme_ns_tree, &nvme_ctrlr->namespaces, tmp_ns) {
635 0 : RB_REMOVE(nvme_ns_tree, &nvme_ctrlr->namespaces, ns);
636 0 : nvme_ns_free(ns);
637 : }
638 :
639 124 : TAILQ_FOREACH_SAFE(path_id, &nvme_ctrlr->trids, link, tmp_path) {
640 62 : TAILQ_REMOVE(&nvme_ctrlr->trids, path_id, link);
641 62 : free(path_id);
642 : }
643 :
644 62 : pthread_mutex_destroy(&nvme_ctrlr->mutex);
645 62 : spdk_keyring_put_key(nvme_ctrlr->psk);
646 62 : spdk_keyring_put_key(nvme_ctrlr->dhchap_key);
647 62 : spdk_keyring_put_key(nvme_ctrlr->dhchap_ctrlr_key);
648 62 : free(nvme_ctrlr);
649 :
650 62 : pthread_mutex_lock(&g_bdev_nvme_mutex);
651 62 : if (g_bdev_nvme_module_finish && TAILQ_EMPTY(&g_nvme_bdev_ctrlrs)) {
652 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
653 0 : spdk_io_device_unregister(&g_nvme_bdev_ctrlrs, NULL);
654 0 : spdk_bdev_module_fini_done();
655 0 : return;
656 : }
657 62 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
658 : }
659 :
660 : static int
661 62 : nvme_detach_poller(void *arg)
662 : {
663 62 : struct nvme_ctrlr *nvme_ctrlr = arg;
664 : int rc;
665 :
666 62 : rc = spdk_nvme_detach_poll_async(nvme_ctrlr->detach_ctx);
667 62 : if (rc != -EAGAIN) {
668 62 : spdk_poller_unregister(&nvme_ctrlr->reset_detach_poller);
669 62 : _nvme_ctrlr_delete(nvme_ctrlr);
670 : }
671 :
672 62 : return SPDK_POLLER_BUSY;
673 : }
674 :
675 : static void
676 62 : nvme_ctrlr_delete(struct nvme_ctrlr *nvme_ctrlr)
677 : {
678 : int rc;
679 :
680 62 : spdk_poller_unregister(&nvme_ctrlr->reconnect_delay_timer);
681 :
682 62 : if (spdk_interrupt_mode_is_enabled()) {
683 0 : spdk_interrupt_unregister(&nvme_ctrlr->intr);
684 : }
685 :
686 : /* First, unregister the adminq poller, as the driver will poll adminq if necessary */
687 62 : spdk_poller_unregister(&nvme_ctrlr->adminq_timer_poller);
688 :
689 : /* If we got here, the reset/detach poller cannot be active */
690 62 : assert(nvme_ctrlr->reset_detach_poller == NULL);
691 62 : nvme_ctrlr->reset_detach_poller = SPDK_POLLER_REGISTER(nvme_detach_poller,
692 : nvme_ctrlr, 1000);
693 62 : if (nvme_ctrlr->reset_detach_poller == NULL) {
694 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to register detach poller\n");
695 0 : goto error;
696 : }
697 :
698 62 : rc = spdk_nvme_detach_async(nvme_ctrlr->ctrlr, &nvme_ctrlr->detach_ctx);
699 62 : if (rc != 0) {
700 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to detach the NVMe controller\n");
701 0 : goto error;
702 : }
703 :
704 62 : return;
705 0 : error:
706 : /* We don't have a good way to handle errors here, so just do what we can and delete the
707 : * controller without detaching the underlying NVMe device.
708 : */
709 0 : spdk_poller_unregister(&nvme_ctrlr->reset_detach_poller);
710 0 : _nvme_ctrlr_delete(nvme_ctrlr);
711 : }
712 :
713 : static void
714 61 : nvme_ctrlr_unregister_cb(void *io_device)
715 : {
716 61 : struct nvme_ctrlr *nvme_ctrlr = io_device;
717 :
718 61 : nvme_ctrlr_delete(nvme_ctrlr);
719 61 : }
720 :
721 : static void
722 61 : nvme_ctrlr_unregister(void *ctx)
723 : {
724 61 : struct nvme_ctrlr *nvme_ctrlr = ctx;
725 :
726 61 : spdk_io_device_unregister(nvme_ctrlr, nvme_ctrlr_unregister_cb);
727 61 : }
728 :
729 : static bool
730 249 : nvme_ctrlr_can_be_unregistered(struct nvme_ctrlr *nvme_ctrlr)
731 : {
732 249 : if (!nvme_ctrlr->destruct) {
733 131 : return false;
734 : }
735 :
736 118 : if (nvme_ctrlr->ref > 0) {
737 57 : return false;
738 : }
739 :
740 61 : if (nvme_ctrlr->resetting) {
741 0 : return false;
742 : }
743 :
744 61 : if (nvme_ctrlr->ana_log_page_updating) {
745 0 : return false;
746 : }
747 :
748 61 : if (nvme_ctrlr->io_path_cache_clearing) {
749 0 : return false;
750 : }
751 :
752 61 : return true;
753 : }
754 :
755 : static void
756 172 : nvme_ctrlr_put_ref(struct nvme_ctrlr *nvme_ctrlr)
757 : {
758 172 : pthread_mutex_lock(&nvme_ctrlr->mutex);
759 : SPDK_DTRACE_PROBE2(bdev_nvme_ctrlr_release, nvme_ctrlr->nbdev_ctrlr->name, nvme_ctrlr->ref);
760 :
761 172 : assert(nvme_ctrlr->ref > 0);
762 172 : nvme_ctrlr->ref--;
763 :
764 172 : if (!nvme_ctrlr_can_be_unregistered(nvme_ctrlr)) {
765 111 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
766 111 : return;
767 : }
768 :
769 61 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
770 :
771 61 : spdk_thread_exec_msg(nvme_ctrlr->thread, nvme_ctrlr_unregister, nvme_ctrlr);
772 : }
773 :
774 : static void
775 111 : nvme_ctrlr_get_ref(struct nvme_ctrlr *nvme_ctrlr)
776 : {
777 111 : pthread_mutex_lock(&nvme_ctrlr->mutex);
778 111 : nvme_ctrlr->ref++;
779 111 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
780 111 : }
781 :
782 : static void
783 259 : bdev_nvme_clear_current_io_path(struct nvme_bdev_channel *nbdev_ch)
784 : {
785 259 : nbdev_ch->current_io_path = NULL;
786 259 : nbdev_ch->rr_counter = 0;
787 259 : }
788 :
789 : static struct nvme_io_path *
790 8 : _bdev_nvme_get_io_path(struct nvme_bdev_channel *nbdev_ch, struct nvme_ns *nvme_ns)
791 : {
792 : struct nvme_io_path *io_path;
793 :
794 16 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
795 15 : if (io_path->nvme_ns == nvme_ns) {
796 7 : break;
797 : }
798 : }
799 :
800 8 : return io_path;
801 : }
802 :
803 : static struct nvme_io_path *
804 39 : nvme_io_path_alloc(void)
805 : {
806 : struct nvme_io_path *io_path;
807 :
808 39 : io_path = calloc(1, sizeof(*io_path));
809 39 : if (io_path == NULL) {
810 0 : SPDK_ERRLOG("Failed to alloc io_path.\n");
811 0 : return NULL;
812 : }
813 :
814 39 : if (g_opts.io_path_stat) {
815 0 : io_path->stat = calloc(1, sizeof(struct spdk_bdev_io_stat));
816 0 : if (io_path->stat == NULL) {
817 0 : free(io_path);
818 0 : SPDK_ERRLOG("Failed to alloc io_path stat.\n");
819 0 : return NULL;
820 : }
821 0 : spdk_bdev_reset_io_stat(io_path->stat, SPDK_BDEV_RESET_STAT_MAXMIN);
822 : }
823 :
824 39 : return io_path;
825 : }
826 :
827 : static void
828 39 : nvme_io_path_free(struct nvme_io_path *io_path)
829 : {
830 39 : free(io_path->stat);
831 39 : free(io_path);
832 39 : }
833 :
834 : static int
835 39 : _bdev_nvme_add_io_path(struct nvme_bdev_channel *nbdev_ch, struct nvme_ns *nvme_ns)
836 : {
837 : struct nvme_io_path *io_path;
838 : struct spdk_io_channel *ch;
839 : struct nvme_ctrlr_channel *ctrlr_ch;
840 : struct nvme_qpair *nvme_qpair;
841 :
842 39 : io_path = nvme_io_path_alloc();
843 39 : if (io_path == NULL) {
844 0 : return -ENOMEM;
845 : }
846 :
847 39 : io_path->nvme_ns = nvme_ns;
848 :
849 39 : ch = spdk_get_io_channel(nvme_ns->ctrlr);
850 39 : if (ch == NULL) {
851 0 : nvme_io_path_free(io_path);
852 0 : SPDK_ERRLOG("Failed to alloc io_channel.\n");
853 0 : return -ENOMEM;
854 : }
855 :
856 39 : ctrlr_ch = spdk_io_channel_get_ctx(ch);
857 :
858 39 : nvme_qpair = ctrlr_ch->qpair;
859 39 : assert(nvme_qpair != NULL);
860 :
861 39 : io_path->qpair = nvme_qpair;
862 39 : TAILQ_INSERT_TAIL(&nvme_qpair->io_path_list, io_path, tailq);
863 :
864 39 : io_path->nbdev_ch = nbdev_ch;
865 39 : STAILQ_INSERT_TAIL(&nbdev_ch->io_path_list, io_path, stailq);
866 :
867 39 : bdev_nvme_clear_current_io_path(nbdev_ch);
868 :
869 39 : return 0;
870 : }
871 :
872 : static void
873 39 : bdev_nvme_clear_retry_io_path(struct nvme_bdev_channel *nbdev_ch,
874 : struct nvme_io_path *io_path)
875 : {
876 : struct nvme_bdev_io *bio;
877 :
878 40 : TAILQ_FOREACH(bio, &nbdev_ch->retry_io_list, retry_link) {
879 1 : if (bio->io_path == io_path) {
880 1 : bio->io_path = NULL;
881 : }
882 : }
883 39 : }
884 :
885 : static void
886 39 : _bdev_nvme_delete_io_path(struct nvme_bdev_channel *nbdev_ch, struct nvme_io_path *io_path)
887 : {
888 : struct spdk_io_channel *ch;
889 : struct nvme_qpair *nvme_qpair;
890 : struct nvme_ctrlr_channel *ctrlr_ch;
891 : struct nvme_bdev *nbdev;
892 :
893 39 : nbdev = spdk_io_channel_get_io_device(spdk_io_channel_from_ctx(nbdev_ch));
894 :
895 : /* Add the statistics to nvme_ns before this path is destroyed. */
896 39 : pthread_mutex_lock(&nbdev->mutex);
897 39 : if (nbdev->ref != 0 && io_path->nvme_ns->stat != NULL && io_path->stat != NULL) {
898 0 : spdk_bdev_add_io_stat(io_path->nvme_ns->stat, io_path->stat);
899 : }
900 39 : pthread_mutex_unlock(&nbdev->mutex);
901 :
902 39 : bdev_nvme_clear_current_io_path(nbdev_ch);
903 39 : bdev_nvme_clear_retry_io_path(nbdev_ch, io_path);
904 :
905 39 : STAILQ_REMOVE(&nbdev_ch->io_path_list, io_path, nvme_io_path, stailq);
906 39 : io_path->nbdev_ch = NULL;
907 :
908 39 : nvme_qpair = io_path->qpair;
909 39 : assert(nvme_qpair != NULL);
910 :
911 39 : ctrlr_ch = nvme_qpair->ctrlr_ch;
912 39 : assert(ctrlr_ch != NULL);
913 :
914 39 : ch = spdk_io_channel_from_ctx(ctrlr_ch);
915 39 : spdk_put_io_channel(ch);
916 :
917 : /* After an io_path is removed, I/Os submitted to it may complete and update statistics
918 : * of the io_path. To avoid heap-use-after-free error from this case, do not free the
919 : * io_path here but free the io_path when the associated qpair is freed. It is ensured
920 : * that all I/Os submitted to the io_path are completed when the associated qpair is freed.
921 : */
922 39 : }
923 :
924 : static void
925 26 : _bdev_nvme_delete_io_paths(struct nvme_bdev_channel *nbdev_ch)
926 : {
927 : struct nvme_io_path *io_path, *tmp_io_path;
928 :
929 63 : STAILQ_FOREACH_SAFE(io_path, &nbdev_ch->io_path_list, stailq, tmp_io_path) {
930 37 : _bdev_nvme_delete_io_path(nbdev_ch, io_path);
931 : }
932 26 : }
933 :
934 : static int
935 26 : bdev_nvme_create_bdev_channel_cb(void *io_device, void *ctx_buf)
936 : {
937 26 : struct nvme_bdev_channel *nbdev_ch = ctx_buf;
938 26 : struct nvme_bdev *nbdev = io_device;
939 : struct nvme_ns *nvme_ns;
940 : int rc;
941 :
942 26 : STAILQ_INIT(&nbdev_ch->io_path_list);
943 26 : TAILQ_INIT(&nbdev_ch->retry_io_list);
944 :
945 26 : pthread_mutex_lock(&nbdev->mutex);
946 :
947 26 : nbdev_ch->mp_policy = nbdev->mp_policy;
948 26 : nbdev_ch->mp_selector = nbdev->mp_selector;
949 26 : nbdev_ch->rr_min_io = nbdev->rr_min_io;
950 :
951 63 : TAILQ_FOREACH(nvme_ns, &nbdev->nvme_ns_list, tailq) {
952 37 : rc = _bdev_nvme_add_io_path(nbdev_ch, nvme_ns);
953 37 : if (rc != 0) {
954 0 : pthread_mutex_unlock(&nbdev->mutex);
955 :
956 0 : _bdev_nvme_delete_io_paths(nbdev_ch);
957 0 : return rc;
958 : }
959 : }
960 26 : pthread_mutex_unlock(&nbdev->mutex);
961 :
962 26 : return 0;
963 : }
964 :
965 : /* If cpl != NULL, complete the bdev_io with nvme status based on 'cpl'.
966 : * If cpl == NULL, complete the bdev_io with bdev status based on 'status'.
967 : */
968 : static inline void
969 58 : __bdev_nvme_io_complete(struct spdk_bdev_io *bdev_io, enum spdk_bdev_io_status status,
970 : const struct spdk_nvme_cpl *cpl)
971 : {
972 58 : spdk_trace_record(TRACE_BDEV_NVME_IO_DONE, 0, 0, (uintptr_t)bdev_io->driver_ctx,
973 : (uintptr_t)bdev_io);
974 58 : if (cpl) {
975 29 : spdk_bdev_io_complete_nvme_status(bdev_io, cpl->cdw0, cpl->status.sct, cpl->status.sc);
976 : } else {
977 29 : spdk_bdev_io_complete(bdev_io, status);
978 : }
979 58 : }
980 :
981 : static void bdev_nvme_abort_retry_ios(struct nvme_bdev_channel *nbdev_ch);
982 :
983 : static void
984 26 : bdev_nvme_destroy_bdev_channel_cb(void *io_device, void *ctx_buf)
985 : {
986 26 : struct nvme_bdev_channel *nbdev_ch = ctx_buf;
987 :
988 26 : bdev_nvme_abort_retry_ios(nbdev_ch);
989 26 : _bdev_nvme_delete_io_paths(nbdev_ch);
990 26 : }
991 :
992 : static inline bool
993 62 : bdev_nvme_io_type_is_admin(enum spdk_bdev_io_type io_type)
994 : {
995 62 : switch (io_type) {
996 5 : case SPDK_BDEV_IO_TYPE_RESET:
997 : case SPDK_BDEV_IO_TYPE_NVME_ADMIN:
998 : case SPDK_BDEV_IO_TYPE_ABORT:
999 5 : return true;
1000 57 : default:
1001 57 : break;
1002 : }
1003 :
1004 57 : return false;
1005 : }
1006 :
1007 : static inline bool
1008 98 : nvme_ns_is_active(struct nvme_ns *nvme_ns)
1009 : {
1010 98 : if (spdk_unlikely(nvme_ns->ana_state_updating)) {
1011 1 : return false;
1012 : }
1013 :
1014 97 : if (spdk_unlikely(nvme_ns->ns == NULL)) {
1015 0 : return false;
1016 : }
1017 :
1018 97 : return true;
1019 : }
1020 :
1021 : static inline bool
1022 86 : nvme_ns_is_accessible(struct nvme_ns *nvme_ns)
1023 : {
1024 86 : if (spdk_unlikely(!nvme_ns_is_active(nvme_ns))) {
1025 1 : return false;
1026 : }
1027 :
1028 85 : switch (nvme_ns->ana_state) {
1029 76 : case SPDK_NVME_ANA_OPTIMIZED_STATE:
1030 : case SPDK_NVME_ANA_NON_OPTIMIZED_STATE:
1031 76 : return true;
1032 9 : default:
1033 9 : break;
1034 : }
1035 :
1036 9 : return false;
1037 : }
1038 :
1039 : static inline bool
1040 128 : nvme_qpair_is_connected(struct nvme_qpair *nvme_qpair)
1041 : {
1042 128 : if (spdk_unlikely(nvme_qpair->qpair == NULL)) {
1043 23 : return false;
1044 : }
1045 :
1046 105 : if (spdk_unlikely(spdk_nvme_qpair_get_failure_reason(nvme_qpair->qpair) !=
1047 : SPDK_NVME_QPAIR_FAILURE_NONE)) {
1048 2 : return false;
1049 : }
1050 :
1051 103 : if (spdk_unlikely(nvme_qpair->ctrlr_ch->reset_iter != NULL)) {
1052 0 : return false;
1053 : }
1054 :
1055 103 : return true;
1056 : }
1057 :
1058 : static inline bool
1059 102 : nvme_io_path_is_available(struct nvme_io_path *io_path)
1060 : {
1061 102 : if (spdk_unlikely(!nvme_qpair_is_connected(io_path->qpair))) {
1062 16 : return false;
1063 : }
1064 :
1065 86 : if (spdk_unlikely(!nvme_ns_is_accessible(io_path->nvme_ns))) {
1066 10 : return false;
1067 : }
1068 :
1069 76 : return true;
1070 : }
1071 :
1072 : static inline bool
1073 9 : nvme_ctrlr_is_failed(struct nvme_ctrlr *nvme_ctrlr)
1074 : {
1075 9 : if (nvme_ctrlr->destruct) {
1076 0 : return true;
1077 : }
1078 :
1079 9 : if (nvme_ctrlr->fast_io_fail_timedout) {
1080 2 : return true;
1081 : }
1082 :
1083 7 : if (nvme_ctrlr->resetting) {
1084 5 : if (nvme_ctrlr->opts.reconnect_delay_sec != 0) {
1085 5 : return false;
1086 : } else {
1087 0 : return true;
1088 : }
1089 : }
1090 :
1091 2 : if (nvme_ctrlr->reconnect_is_delayed) {
1092 2 : return false;
1093 : }
1094 :
1095 0 : if (nvme_ctrlr->disabled) {
1096 0 : return true;
1097 : }
1098 :
1099 0 : if (spdk_nvme_ctrlr_is_failed(nvme_ctrlr->ctrlr)) {
1100 0 : return true;
1101 : } else {
1102 0 : return false;
1103 : }
1104 : }
1105 :
1106 : static bool
1107 20 : nvme_ctrlr_is_available(struct nvme_ctrlr *nvme_ctrlr)
1108 : {
1109 20 : if (nvme_ctrlr->destruct) {
1110 0 : return false;
1111 : }
1112 :
1113 20 : if (spdk_nvme_ctrlr_is_failed(nvme_ctrlr->ctrlr)) {
1114 3 : return false;
1115 : }
1116 :
1117 17 : if (nvme_ctrlr->resetting || nvme_ctrlr->reconnect_is_delayed) {
1118 1 : return false;
1119 : }
1120 :
1121 16 : if (nvme_ctrlr->disabled) {
1122 0 : return false;
1123 : }
1124 :
1125 16 : return true;
1126 : }
1127 :
1128 : /* Simulate circular linked list. */
1129 : static inline struct nvme_io_path *
1130 99 : nvme_io_path_get_next(struct nvme_bdev_channel *nbdev_ch, struct nvme_io_path *prev_path)
1131 : {
1132 : struct nvme_io_path *next_path;
1133 :
1134 99 : if (prev_path != NULL) {
1135 39 : next_path = STAILQ_NEXT(prev_path, stailq);
1136 39 : if (next_path != NULL) {
1137 14 : return next_path;
1138 : }
1139 : }
1140 :
1141 85 : return STAILQ_FIRST(&nbdev_ch->io_path_list);
1142 : }
1143 :
1144 : static struct nvme_io_path *
1145 67 : _bdev_nvme_find_io_path(struct nvme_bdev_channel *nbdev_ch)
1146 : {
1147 67 : struct nvme_io_path *io_path, *start, *non_optimized = NULL;
1148 :
1149 67 : start = nvme_io_path_get_next(nbdev_ch, nbdev_ch->current_io_path);
1150 :
1151 67 : io_path = start;
1152 : do {
1153 79 : if (spdk_likely(nvme_io_path_is_available(io_path))) {
1154 57 : switch (io_path->nvme_ns->ana_state) {
1155 47 : case SPDK_NVME_ANA_OPTIMIZED_STATE:
1156 47 : nbdev_ch->current_io_path = io_path;
1157 47 : return io_path;
1158 10 : case SPDK_NVME_ANA_NON_OPTIMIZED_STATE:
1159 10 : if (non_optimized == NULL) {
1160 7 : non_optimized = io_path;
1161 : }
1162 10 : break;
1163 0 : default:
1164 0 : assert(false);
1165 : break;
1166 : }
1167 : }
1168 32 : io_path = nvme_io_path_get_next(nbdev_ch, io_path);
1169 32 : } while (io_path != start);
1170 :
1171 20 : if (nbdev_ch->mp_policy == BDEV_NVME_MP_POLICY_ACTIVE_ACTIVE) {
1172 : /* We come here only if there is no optimized path. Cache even non_optimized
1173 : * path for load balance across multiple non_optimized paths.
1174 : */
1175 1 : nbdev_ch->current_io_path = non_optimized;
1176 : }
1177 :
1178 20 : return non_optimized;
1179 : }
1180 :
1181 : static struct nvme_io_path *
1182 4 : _bdev_nvme_find_io_path_min_qd(struct nvme_bdev_channel *nbdev_ch)
1183 : {
1184 : struct nvme_io_path *io_path;
1185 4 : struct nvme_io_path *optimized = NULL, *non_optimized = NULL;
1186 4 : uint32_t opt_min_qd = UINT32_MAX, non_opt_min_qd = UINT32_MAX;
1187 : uint32_t num_outstanding_reqs;
1188 :
1189 16 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
1190 12 : if (spdk_unlikely(!nvme_qpair_is_connected(io_path->qpair))) {
1191 : /* The device is currently resetting. */
1192 0 : continue;
1193 : }
1194 :
1195 12 : if (spdk_unlikely(!nvme_ns_is_active(io_path->nvme_ns))) {
1196 0 : continue;
1197 : }
1198 :
1199 12 : num_outstanding_reqs = spdk_nvme_qpair_get_num_outstanding_reqs(io_path->qpair->qpair);
1200 12 : switch (io_path->nvme_ns->ana_state) {
1201 6 : case SPDK_NVME_ANA_OPTIMIZED_STATE:
1202 6 : if (num_outstanding_reqs < opt_min_qd) {
1203 5 : opt_min_qd = num_outstanding_reqs;
1204 5 : optimized = io_path;
1205 : }
1206 6 : break;
1207 3 : case SPDK_NVME_ANA_NON_OPTIMIZED_STATE:
1208 3 : if (num_outstanding_reqs < non_opt_min_qd) {
1209 3 : non_opt_min_qd = num_outstanding_reqs;
1210 3 : non_optimized = io_path;
1211 : }
1212 3 : break;
1213 3 : default:
1214 3 : break;
1215 : }
1216 : }
1217 :
1218 : /* don't cache io path for BDEV_NVME_MP_SELECTOR_QUEUE_DEPTH selector */
1219 4 : if (optimized != NULL) {
1220 3 : return optimized;
1221 : }
1222 :
1223 1 : return non_optimized;
1224 : }
1225 :
1226 : static inline struct nvme_io_path *
1227 105 : bdev_nvme_find_io_path(struct nvme_bdev_channel *nbdev_ch)
1228 : {
1229 105 : if (spdk_likely(nbdev_ch->current_io_path != NULL)) {
1230 41 : if (nbdev_ch->mp_policy == BDEV_NVME_MP_POLICY_ACTIVE_PASSIVE) {
1231 31 : return nbdev_ch->current_io_path;
1232 10 : } else if (nbdev_ch->mp_selector == BDEV_NVME_MP_SELECTOR_ROUND_ROBIN) {
1233 10 : if (++nbdev_ch->rr_counter < nbdev_ch->rr_min_io) {
1234 3 : return nbdev_ch->current_io_path;
1235 : }
1236 7 : nbdev_ch->rr_counter = 0;
1237 : }
1238 : }
1239 :
1240 71 : if (nbdev_ch->mp_policy == BDEV_NVME_MP_POLICY_ACTIVE_PASSIVE ||
1241 14 : nbdev_ch->mp_selector == BDEV_NVME_MP_SELECTOR_ROUND_ROBIN) {
1242 67 : return _bdev_nvme_find_io_path(nbdev_ch);
1243 : } else {
1244 4 : return _bdev_nvme_find_io_path_min_qd(nbdev_ch);
1245 : }
1246 : }
1247 :
1248 : /* Return true if there is any io_path whose qpair is active or ctrlr is not failed,
1249 : * or false otherwise.
1250 : *
1251 : * If any io_path has an active qpair but find_io_path() returned NULL, its namespace
1252 : * is likely to be non-accessible now but may become accessible.
1253 : *
1254 : * If any io_path has an unfailed ctrlr but find_io_path() returned NULL, the ctrlr
1255 : * is likely to be resetting now but the reset may succeed. A ctrlr is set to unfailed
1256 : * when starting to reset it but it is set to failed when the reset failed. Hence, if
1257 : * a ctrlr is unfailed, it is likely that it works fine or is resetting.
1258 : */
1259 : static bool
1260 15 : any_io_path_may_become_available(struct nvme_bdev_channel *nbdev_ch)
1261 : {
1262 : struct nvme_io_path *io_path;
1263 :
1264 15 : if (nbdev_ch->resetting) {
1265 1 : return false;
1266 : }
1267 :
1268 16 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
1269 14 : if (io_path->nvme_ns->ana_transition_timedout) {
1270 0 : continue;
1271 : }
1272 :
1273 14 : if (nvme_qpair_is_connected(io_path->qpair) ||
1274 9 : !nvme_ctrlr_is_failed(io_path->qpair->ctrlr)) {
1275 12 : return true;
1276 : }
1277 : }
1278 :
1279 2 : return false;
1280 : }
1281 :
1282 : static void
1283 14 : bdev_nvme_retry_io(struct nvme_bdev_channel *nbdev_ch, struct spdk_bdev_io *bdev_io)
1284 : {
1285 14 : struct nvme_bdev_io *nbdev_io = (struct nvme_bdev_io *)bdev_io->driver_ctx;
1286 : struct spdk_io_channel *ch;
1287 :
1288 14 : if (nbdev_io->io_path != NULL && nvme_io_path_is_available(nbdev_io->io_path)) {
1289 3 : _bdev_nvme_submit_request(nbdev_ch, bdev_io);
1290 : } else {
1291 11 : ch = spdk_io_channel_from_ctx(nbdev_ch);
1292 11 : bdev_nvme_submit_request(ch, bdev_io);
1293 : }
1294 14 : }
1295 :
1296 : static int
1297 14 : bdev_nvme_retry_ios(void *arg)
1298 : {
1299 14 : struct nvme_bdev_channel *nbdev_ch = arg;
1300 : struct nvme_bdev_io *bio, *tmp_bio;
1301 : uint64_t now, delay_us;
1302 :
1303 14 : now = spdk_get_ticks();
1304 :
1305 28 : TAILQ_FOREACH_SAFE(bio, &nbdev_ch->retry_io_list, retry_link, tmp_bio) {
1306 15 : if (bio->retry_ticks > now) {
1307 1 : break;
1308 : }
1309 :
1310 14 : TAILQ_REMOVE(&nbdev_ch->retry_io_list, bio, retry_link);
1311 :
1312 14 : bdev_nvme_retry_io(nbdev_ch, spdk_bdev_io_from_ctx(bio));
1313 : }
1314 :
1315 14 : spdk_poller_unregister(&nbdev_ch->retry_io_poller);
1316 :
1317 14 : bio = TAILQ_FIRST(&nbdev_ch->retry_io_list);
1318 14 : if (bio != NULL) {
1319 4 : delay_us = (bio->retry_ticks - now) * SPDK_SEC_TO_USEC / spdk_get_ticks_hz();
1320 :
1321 4 : nbdev_ch->retry_io_poller = SPDK_POLLER_REGISTER(bdev_nvme_retry_ios, nbdev_ch,
1322 : delay_us);
1323 : }
1324 :
1325 14 : return SPDK_POLLER_BUSY;
1326 : }
1327 :
1328 : static void
1329 16 : bdev_nvme_queue_retry_io(struct nvme_bdev_channel *nbdev_ch,
1330 : struct nvme_bdev_io *bio, uint64_t delay_ms)
1331 : {
1332 : struct nvme_bdev_io *tmp_bio;
1333 :
1334 16 : bio->retry_ticks = spdk_get_ticks() + delay_ms * spdk_get_ticks_hz() / 1000ULL;
1335 :
1336 16 : TAILQ_FOREACH_REVERSE(tmp_bio, &nbdev_ch->retry_io_list, retry_io_head, retry_link) {
1337 1 : if (tmp_bio->retry_ticks <= bio->retry_ticks) {
1338 1 : TAILQ_INSERT_AFTER(&nbdev_ch->retry_io_list, tmp_bio, bio,
1339 : retry_link);
1340 1 : return;
1341 : }
1342 : }
1343 :
1344 : /* No earlier I/Os were found. This I/O must be the new head. */
1345 15 : TAILQ_INSERT_HEAD(&nbdev_ch->retry_io_list, bio, retry_link);
1346 :
1347 15 : spdk_poller_unregister(&nbdev_ch->retry_io_poller);
1348 :
1349 15 : nbdev_ch->retry_io_poller = SPDK_POLLER_REGISTER(bdev_nvme_retry_ios, nbdev_ch,
1350 : delay_ms * 1000ULL);
1351 : }
1352 :
1353 : static void
1354 58 : bdev_nvme_abort_retry_ios(struct nvme_bdev_channel *nbdev_ch)
1355 : {
1356 : struct nvme_bdev_io *bio, *tmp_bio;
1357 :
1358 59 : TAILQ_FOREACH_SAFE(bio, &nbdev_ch->retry_io_list, retry_link, tmp_bio) {
1359 1 : TAILQ_REMOVE(&nbdev_ch->retry_io_list, bio, retry_link);
1360 1 : __bdev_nvme_io_complete(spdk_bdev_io_from_ctx(bio), SPDK_BDEV_IO_STATUS_ABORTED, NULL);
1361 : }
1362 :
1363 58 : spdk_poller_unregister(&nbdev_ch->retry_io_poller);
1364 58 : }
1365 :
1366 : static int
1367 6 : bdev_nvme_abort_retry_io(struct nvme_bdev_channel *nbdev_ch,
1368 : struct nvme_bdev_io *bio_to_abort)
1369 : {
1370 : struct nvme_bdev_io *bio;
1371 :
1372 6 : TAILQ_FOREACH(bio, &nbdev_ch->retry_io_list, retry_link) {
1373 1 : if (bio == bio_to_abort) {
1374 1 : TAILQ_REMOVE(&nbdev_ch->retry_io_list, bio, retry_link);
1375 1 : __bdev_nvme_io_complete(spdk_bdev_io_from_ctx(bio), SPDK_BDEV_IO_STATUS_ABORTED, NULL);
1376 1 : return 0;
1377 : }
1378 : }
1379 :
1380 5 : return -ENOENT;
1381 : }
1382 :
1383 : static void
1384 12 : bdev_nvme_update_nvme_error_stat(struct spdk_bdev_io *bdev_io, const struct spdk_nvme_cpl *cpl)
1385 : {
1386 : struct nvme_bdev *nbdev;
1387 : uint16_t sct, sc;
1388 :
1389 12 : assert(spdk_nvme_cpl_is_error(cpl));
1390 :
1391 12 : nbdev = bdev_io->bdev->ctxt;
1392 :
1393 12 : if (nbdev->err_stat == NULL) {
1394 12 : return;
1395 : }
1396 :
1397 0 : sct = cpl->status.sct;
1398 0 : sc = cpl->status.sc;
1399 :
1400 0 : pthread_mutex_lock(&nbdev->mutex);
1401 :
1402 0 : nbdev->err_stat->status_type[sct]++;
1403 0 : switch (sct) {
1404 0 : case SPDK_NVME_SCT_GENERIC:
1405 : case SPDK_NVME_SCT_COMMAND_SPECIFIC:
1406 : case SPDK_NVME_SCT_MEDIA_ERROR:
1407 : case SPDK_NVME_SCT_PATH:
1408 0 : nbdev->err_stat->status[sct][sc]++;
1409 0 : break;
1410 0 : default:
1411 0 : break;
1412 : }
1413 :
1414 0 : pthread_mutex_unlock(&nbdev->mutex);
1415 : }
1416 :
1417 : static inline void
1418 20 : bdev_nvme_update_io_path_stat(struct nvme_bdev_io *bio)
1419 : {
1420 20 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
1421 20 : uint64_t num_blocks = bdev_io->u.bdev.num_blocks;
1422 20 : uint32_t blocklen = bdev_io->bdev->blocklen;
1423 : struct spdk_bdev_io_stat *stat;
1424 : uint64_t tsc_diff;
1425 :
1426 20 : if (bio->io_path->stat == NULL) {
1427 20 : return;
1428 : }
1429 :
1430 0 : tsc_diff = spdk_get_ticks() - bio->submit_tsc;
1431 0 : stat = bio->io_path->stat;
1432 :
1433 0 : switch (bdev_io->type) {
1434 0 : case SPDK_BDEV_IO_TYPE_READ:
1435 0 : stat->bytes_read += num_blocks * blocklen;
1436 0 : stat->num_read_ops++;
1437 0 : stat->read_latency_ticks += tsc_diff;
1438 0 : if (stat->max_read_latency_ticks < tsc_diff) {
1439 0 : stat->max_read_latency_ticks = tsc_diff;
1440 : }
1441 0 : if (stat->min_read_latency_ticks > tsc_diff) {
1442 0 : stat->min_read_latency_ticks = tsc_diff;
1443 : }
1444 0 : break;
1445 0 : case SPDK_BDEV_IO_TYPE_WRITE:
1446 0 : stat->bytes_written += num_blocks * blocklen;
1447 0 : stat->num_write_ops++;
1448 0 : stat->write_latency_ticks += tsc_diff;
1449 0 : if (stat->max_write_latency_ticks < tsc_diff) {
1450 0 : stat->max_write_latency_ticks = tsc_diff;
1451 : }
1452 0 : if (stat->min_write_latency_ticks > tsc_diff) {
1453 0 : stat->min_write_latency_ticks = tsc_diff;
1454 : }
1455 0 : break;
1456 0 : case SPDK_BDEV_IO_TYPE_UNMAP:
1457 0 : stat->bytes_unmapped += num_blocks * blocklen;
1458 0 : stat->num_unmap_ops++;
1459 0 : stat->unmap_latency_ticks += tsc_diff;
1460 0 : if (stat->max_unmap_latency_ticks < tsc_diff) {
1461 0 : stat->max_unmap_latency_ticks = tsc_diff;
1462 : }
1463 0 : if (stat->min_unmap_latency_ticks > tsc_diff) {
1464 0 : stat->min_unmap_latency_ticks = tsc_diff;
1465 : }
1466 0 : break;
1467 0 : case SPDK_BDEV_IO_TYPE_ZCOPY:
1468 : /* Track the data in the start phase only */
1469 0 : if (!bdev_io->u.bdev.zcopy.start) {
1470 0 : break;
1471 : }
1472 0 : if (bdev_io->u.bdev.zcopy.populate) {
1473 0 : stat->bytes_read += num_blocks * blocklen;
1474 0 : stat->num_read_ops++;
1475 0 : stat->read_latency_ticks += tsc_diff;
1476 0 : if (stat->max_read_latency_ticks < tsc_diff) {
1477 0 : stat->max_read_latency_ticks = tsc_diff;
1478 : }
1479 0 : if (stat->min_read_latency_ticks > tsc_diff) {
1480 0 : stat->min_read_latency_ticks = tsc_diff;
1481 : }
1482 : } else {
1483 0 : stat->bytes_written += num_blocks * blocklen;
1484 0 : stat->num_write_ops++;
1485 0 : stat->write_latency_ticks += tsc_diff;
1486 0 : if (stat->max_write_latency_ticks < tsc_diff) {
1487 0 : stat->max_write_latency_ticks = tsc_diff;
1488 : }
1489 0 : if (stat->min_write_latency_ticks > tsc_diff) {
1490 0 : stat->min_write_latency_ticks = tsc_diff;
1491 : }
1492 : }
1493 0 : break;
1494 0 : case SPDK_BDEV_IO_TYPE_COPY:
1495 0 : stat->bytes_copied += num_blocks * blocklen;
1496 0 : stat->num_copy_ops++;
1497 0 : stat->copy_latency_ticks += tsc_diff;
1498 0 : if (stat->max_copy_latency_ticks < tsc_diff) {
1499 0 : stat->max_copy_latency_ticks = tsc_diff;
1500 : }
1501 0 : if (stat->min_copy_latency_ticks > tsc_diff) {
1502 0 : stat->min_copy_latency_ticks = tsc_diff;
1503 : }
1504 0 : break;
1505 0 : default:
1506 0 : break;
1507 : }
1508 : }
1509 :
1510 : static bool
1511 7 : bdev_nvme_check_retry_io(struct nvme_bdev_io *bio,
1512 : const struct spdk_nvme_cpl *cpl,
1513 : struct nvme_bdev_channel *nbdev_ch,
1514 : uint64_t *_delay_ms)
1515 : {
1516 7 : struct nvme_io_path *io_path = bio->io_path;
1517 7 : struct nvme_ctrlr *nvme_ctrlr = io_path->qpair->ctrlr;
1518 : const struct spdk_nvme_ctrlr_data *cdata;
1519 :
1520 7 : if (spdk_nvme_cpl_is_path_error(cpl) ||
1521 5 : spdk_nvme_cpl_is_aborted_sq_deletion(cpl) ||
1522 4 : !nvme_io_path_is_available(io_path) ||
1523 4 : !nvme_ctrlr_is_available(nvme_ctrlr)) {
1524 3 : bdev_nvme_clear_current_io_path(nbdev_ch);
1525 3 : bio->io_path = NULL;
1526 3 : if (spdk_nvme_cpl_is_ana_error(cpl)) {
1527 1 : if (nvme_ctrlr_read_ana_log_page(nvme_ctrlr) == 0) {
1528 1 : io_path->nvme_ns->ana_state_updating = true;
1529 : }
1530 : }
1531 3 : if (!any_io_path_may_become_available(nbdev_ch)) {
1532 0 : return false;
1533 : }
1534 3 : *_delay_ms = 0;
1535 : } else {
1536 4 : bio->retry_count++;
1537 :
1538 4 : cdata = spdk_nvme_ctrlr_get_data(nvme_ctrlr->ctrlr);
1539 :
1540 4 : if (cpl->status.crd != 0) {
1541 1 : *_delay_ms = cdata->crdt[cpl->status.crd] * 100;
1542 : } else {
1543 3 : *_delay_ms = 0;
1544 : }
1545 : }
1546 :
1547 7 : return true;
1548 : }
1549 :
1550 : static inline void
1551 32 : bdev_nvme_io_complete_nvme_status(struct nvme_bdev_io *bio,
1552 : const struct spdk_nvme_cpl *cpl)
1553 : {
1554 32 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
1555 : struct nvme_bdev_channel *nbdev_ch;
1556 32 : uint64_t delay_ms;
1557 :
1558 32 : assert(!bdev_nvme_io_type_is_admin(bdev_io->type));
1559 :
1560 32 : if (spdk_likely(spdk_nvme_cpl_is_success(cpl))) {
1561 20 : bdev_nvme_update_io_path_stat(bio);
1562 20 : goto complete;
1563 : }
1564 :
1565 : /* Update error counts before deciding if retry is needed.
1566 : * Hence, error counts may be more than the number of I/O errors.
1567 : */
1568 12 : bdev_nvme_update_nvme_error_stat(bdev_io, cpl);
1569 :
1570 12 : if (cpl->status.dnr != 0 || spdk_nvme_cpl_is_aborted_by_request(cpl) ||
1571 8 : (g_opts.bdev_retry_count != -1 && bio->retry_count >= g_opts.bdev_retry_count)) {
1572 5 : goto complete;
1573 : }
1574 :
1575 : /* At this point we don't know whether the sequence was successfully executed or not, so we
1576 : * cannot retry the IO */
1577 7 : if (bdev_io->u.bdev.accel_sequence != NULL) {
1578 0 : goto complete;
1579 : }
1580 :
1581 7 : nbdev_ch = spdk_io_channel_get_ctx(spdk_bdev_io_get_io_channel(bdev_io));
1582 :
1583 7 : if (bdev_nvme_check_retry_io(bio, cpl, nbdev_ch, &delay_ms)) {
1584 7 : bdev_nvme_queue_retry_io(nbdev_ch, bio, delay_ms);
1585 7 : return;
1586 : }
1587 :
1588 25 : complete:
1589 25 : bio->retry_count = 0;
1590 25 : bio->submit_tsc = 0;
1591 25 : bdev_io->u.bdev.accel_sequence = NULL;
1592 25 : __bdev_nvme_io_complete(bdev_io, 0, cpl);
1593 : }
1594 :
1595 : static inline void
1596 13 : bdev_nvme_io_complete(struct nvme_bdev_io *bio, int rc)
1597 : {
1598 13 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
1599 : struct nvme_bdev_channel *nbdev_ch;
1600 : enum spdk_bdev_io_status io_status;
1601 :
1602 13 : assert(!bdev_nvme_io_type_is_admin(bdev_io->type));
1603 :
1604 13 : switch (rc) {
1605 1 : case 0:
1606 1 : io_status = SPDK_BDEV_IO_STATUS_SUCCESS;
1607 1 : break;
1608 0 : case -ENOMEM:
1609 0 : io_status = SPDK_BDEV_IO_STATUS_NOMEM;
1610 0 : break;
1611 12 : case -ENXIO:
1612 12 : if (g_opts.bdev_retry_count == -1 || bio->retry_count < g_opts.bdev_retry_count) {
1613 12 : nbdev_ch = spdk_io_channel_get_ctx(spdk_bdev_io_get_io_channel(bdev_io));
1614 :
1615 12 : bdev_nvme_clear_current_io_path(nbdev_ch);
1616 12 : bio->io_path = NULL;
1617 :
1618 12 : if (any_io_path_may_become_available(nbdev_ch)) {
1619 9 : bdev_nvme_queue_retry_io(nbdev_ch, bio, 1000ULL);
1620 9 : return;
1621 : }
1622 : }
1623 :
1624 : /* fallthrough */
1625 : default:
1626 3 : spdk_accel_sequence_abort(bdev_io->u.bdev.accel_sequence);
1627 3 : bdev_io->u.bdev.accel_sequence = NULL;
1628 3 : io_status = SPDK_BDEV_IO_STATUS_FAILED;
1629 3 : break;
1630 : }
1631 :
1632 4 : bio->retry_count = 0;
1633 4 : bio->submit_tsc = 0;
1634 4 : __bdev_nvme_io_complete(bdev_io, io_status, NULL);
1635 : }
1636 :
1637 : static inline void
1638 4 : bdev_nvme_admin_complete(struct nvme_bdev_io *bio, int rc)
1639 : {
1640 4 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
1641 : enum spdk_bdev_io_status io_status;
1642 :
1643 4 : switch (rc) {
1644 1 : case 0:
1645 1 : io_status = SPDK_BDEV_IO_STATUS_SUCCESS;
1646 1 : break;
1647 0 : case -ENOMEM:
1648 0 : io_status = SPDK_BDEV_IO_STATUS_NOMEM;
1649 0 : break;
1650 3 : case -ENXIO:
1651 : /* fallthrough */
1652 : default:
1653 3 : io_status = SPDK_BDEV_IO_STATUS_FAILED;
1654 3 : break;
1655 : }
1656 :
1657 4 : __bdev_nvme_io_complete(bdev_io, io_status, NULL);
1658 4 : }
1659 :
1660 : static void
1661 3 : bdev_nvme_clear_io_path_caches_done(struct nvme_ctrlr *nvme_ctrlr,
1662 : void *ctx, int status)
1663 : {
1664 3 : pthread_mutex_lock(&nvme_ctrlr->mutex);
1665 :
1666 3 : assert(nvme_ctrlr->io_path_cache_clearing == true);
1667 3 : nvme_ctrlr->io_path_cache_clearing = false;
1668 :
1669 3 : if (!nvme_ctrlr_can_be_unregistered(nvme_ctrlr)) {
1670 3 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
1671 3 : return;
1672 : }
1673 :
1674 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
1675 :
1676 0 : nvme_ctrlr_unregister(nvme_ctrlr);
1677 : }
1678 :
1679 : static void
1680 416 : _bdev_nvme_clear_io_path_cache(struct nvme_qpair *nvme_qpair)
1681 : {
1682 : struct nvme_io_path *io_path;
1683 :
1684 651 : TAILQ_FOREACH(io_path, &nvme_qpair->io_path_list, tailq) {
1685 235 : if (io_path->nbdev_ch == NULL) {
1686 72 : continue;
1687 : }
1688 163 : bdev_nvme_clear_current_io_path(io_path->nbdev_ch);
1689 : }
1690 416 : }
1691 :
1692 : static void
1693 1 : bdev_nvme_clear_io_path_cache(struct nvme_ctrlr_channel_iter *i,
1694 : struct nvme_ctrlr *nvme_ctrlr,
1695 : struct nvme_ctrlr_channel *ctrlr_ch,
1696 : void *ctx)
1697 : {
1698 1 : assert(ctrlr_ch->qpair != NULL);
1699 :
1700 1 : _bdev_nvme_clear_io_path_cache(ctrlr_ch->qpair);
1701 :
1702 1 : nvme_ctrlr_for_each_channel_continue(i, 0);
1703 1 : }
1704 :
1705 : static void
1706 3 : bdev_nvme_clear_io_path_caches(struct nvme_ctrlr *nvme_ctrlr)
1707 : {
1708 3 : pthread_mutex_lock(&nvme_ctrlr->mutex);
1709 3 : if (!nvme_ctrlr_is_available(nvme_ctrlr) ||
1710 : nvme_ctrlr->io_path_cache_clearing) {
1711 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
1712 0 : return;
1713 : }
1714 :
1715 3 : nvme_ctrlr->io_path_cache_clearing = true;
1716 3 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
1717 :
1718 3 : nvme_ctrlr_for_each_channel(nvme_ctrlr,
1719 : bdev_nvme_clear_io_path_cache,
1720 : NULL,
1721 : bdev_nvme_clear_io_path_caches_done);
1722 : }
1723 :
1724 : static struct nvme_qpair *
1725 121 : nvme_poll_group_get_qpair(struct nvme_poll_group *group, struct spdk_nvme_qpair *qpair)
1726 : {
1727 : struct nvme_qpair *nvme_qpair;
1728 :
1729 138 : TAILQ_FOREACH(nvme_qpair, &group->qpair_list, tailq) {
1730 138 : if (nvme_qpair->qpair == qpair) {
1731 121 : break;
1732 : }
1733 : }
1734 :
1735 121 : return nvme_qpair;
1736 : }
1737 :
1738 : static void nvme_qpair_delete(struct nvme_qpair *nvme_qpair);
1739 :
1740 : static void
1741 121 : bdev_nvme_disconnected_qpair_cb(struct spdk_nvme_qpair *qpair, void *poll_group_ctx)
1742 : {
1743 121 : struct nvme_poll_group *group = poll_group_ctx;
1744 : struct nvme_qpair *nvme_qpair;
1745 : struct nvme_ctrlr *nvme_ctrlr;
1746 : struct nvme_ctrlr_channel *ctrlr_ch;
1747 : int status;
1748 :
1749 121 : nvme_qpair = nvme_poll_group_get_qpair(group, qpair);
1750 121 : if (nvme_qpair == NULL) {
1751 0 : return;
1752 : }
1753 :
1754 121 : if (nvme_qpair->qpair != NULL) {
1755 121 : spdk_nvme_ctrlr_free_io_qpair(nvme_qpair->qpair);
1756 121 : nvme_qpair->qpair = NULL;
1757 : }
1758 :
1759 121 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
1760 :
1761 121 : nvme_ctrlr = nvme_qpair->ctrlr;
1762 121 : ctrlr_ch = nvme_qpair->ctrlr_ch;
1763 :
1764 121 : if (ctrlr_ch != NULL) {
1765 74 : if (ctrlr_ch->reset_iter != NULL) {
1766 : /* We are in a full reset sequence. */
1767 69 : if (ctrlr_ch->connect_poller != NULL) {
1768 : /* qpair was failed to connect. Abort the reset sequence. */
1769 0 : NVME_CTRLR_INFOLOG(nvme_ctrlr,
1770 : "qpair %p was failed to connect. abort the reset ctrlr sequence.\n",
1771 : qpair);
1772 0 : spdk_poller_unregister(&ctrlr_ch->connect_poller);
1773 0 : status = -1;
1774 : } else {
1775 : /* qpair was completed to disconnect. Just move to the next ctrlr_channel. */
1776 69 : NVME_CTRLR_INFOLOG(nvme_ctrlr,
1777 : "qpair %p was disconnected and freed in a reset ctrlr sequence.\n",
1778 : qpair);
1779 69 : status = 0;
1780 : }
1781 69 : nvme_ctrlr_for_each_channel_continue(ctrlr_ch->reset_iter, status);
1782 69 : ctrlr_ch->reset_iter = NULL;
1783 : } else {
1784 : /* qpair was disconnected unexpectedly. Reset controller for recovery. */
1785 5 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "qpair %p was disconnected and freed. reset controller.\n",
1786 : qpair);
1787 5 : bdev_nvme_failover_ctrlr(nvme_ctrlr);
1788 : }
1789 : } else {
1790 : /* In this case, ctrlr_channel is already deleted. */
1791 47 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "qpair %p was disconnected and freed. delete nvme_qpair.\n",
1792 : qpair);
1793 47 : nvme_qpair_delete(nvme_qpair);
1794 : }
1795 : }
1796 :
1797 : static void
1798 0 : bdev_nvme_check_io_qpairs(struct nvme_poll_group *group)
1799 : {
1800 : struct nvme_qpair *nvme_qpair;
1801 :
1802 0 : TAILQ_FOREACH(nvme_qpair, &group->qpair_list, tailq) {
1803 0 : if (nvme_qpair->qpair == NULL || nvme_qpair->ctrlr_ch == NULL) {
1804 0 : continue;
1805 : }
1806 :
1807 0 : if (spdk_nvme_qpair_get_failure_reason(nvme_qpair->qpair) !=
1808 : SPDK_NVME_QPAIR_FAILURE_NONE) {
1809 0 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
1810 : }
1811 : }
1812 0 : }
1813 :
1814 : static int
1815 1209 : bdev_nvme_poll(void *arg)
1816 : {
1817 1209 : struct nvme_poll_group *group = arg;
1818 : int64_t num_completions;
1819 :
1820 1209 : if (group->collect_spin_stat && group->start_ticks == 0) {
1821 0 : group->start_ticks = spdk_get_ticks();
1822 : }
1823 :
1824 1209 : num_completions = spdk_nvme_poll_group_process_completions(group->group, 0,
1825 : bdev_nvme_disconnected_qpair_cb);
1826 1209 : if (group->collect_spin_stat) {
1827 0 : if (num_completions > 0) {
1828 0 : if (group->end_ticks != 0) {
1829 0 : group->spin_ticks += (group->end_ticks - group->start_ticks);
1830 0 : group->end_ticks = 0;
1831 : }
1832 0 : group->start_ticks = 0;
1833 : } else {
1834 0 : group->end_ticks = spdk_get_ticks();
1835 : }
1836 : }
1837 :
1838 1209 : if (spdk_unlikely(num_completions < 0)) {
1839 0 : bdev_nvme_check_io_qpairs(group);
1840 : }
1841 :
1842 1209 : return num_completions > 0 ? SPDK_POLLER_BUSY : SPDK_POLLER_IDLE;
1843 : }
1844 :
1845 : static int bdev_nvme_poll_adminq(void *arg);
1846 :
1847 : static void
1848 142 : bdev_nvme_change_adminq_poll_period(struct nvme_ctrlr *nvme_ctrlr, uint64_t new_period_us)
1849 : {
1850 142 : if (spdk_interrupt_mode_is_enabled()) {
1851 0 : return;
1852 : }
1853 :
1854 142 : spdk_poller_unregister(&nvme_ctrlr->adminq_timer_poller);
1855 :
1856 142 : nvme_ctrlr->adminq_timer_poller = SPDK_POLLER_REGISTER(bdev_nvme_poll_adminq,
1857 : nvme_ctrlr, new_period_us);
1858 : }
1859 :
1860 : static int
1861 191 : bdev_nvme_poll_adminq(void *arg)
1862 : {
1863 : int32_t rc;
1864 191 : struct nvme_ctrlr *nvme_ctrlr = arg;
1865 : nvme_ctrlr_disconnected_cb disconnected_cb;
1866 :
1867 191 : assert(nvme_ctrlr != NULL);
1868 :
1869 191 : rc = spdk_nvme_ctrlr_process_admin_completions(nvme_ctrlr->ctrlr);
1870 191 : if (rc < 0) {
1871 86 : disconnected_cb = nvme_ctrlr->disconnected_cb;
1872 86 : nvme_ctrlr->disconnected_cb = NULL;
1873 :
1874 86 : if (disconnected_cb != NULL) {
1875 71 : bdev_nvme_change_adminq_poll_period(nvme_ctrlr,
1876 : g_opts.nvme_adminq_poll_period_us);
1877 71 : disconnected_cb(nvme_ctrlr);
1878 : } else {
1879 15 : bdev_nvme_failover_ctrlr(nvme_ctrlr);
1880 : }
1881 105 : } else if (spdk_nvme_ctrlr_get_admin_qp_failure_reason(nvme_ctrlr->ctrlr) !=
1882 : SPDK_NVME_QPAIR_FAILURE_NONE) {
1883 0 : bdev_nvme_clear_io_path_caches(nvme_ctrlr);
1884 : }
1885 :
1886 191 : return rc == 0 ? SPDK_POLLER_IDLE : SPDK_POLLER_BUSY;
1887 : }
1888 :
1889 : static void
1890 39 : nvme_bdev_free(void *io_device)
1891 : {
1892 39 : struct nvme_bdev *nvme_disk = io_device;
1893 :
1894 39 : pthread_mutex_destroy(&nvme_disk->mutex);
1895 39 : free(nvme_disk->disk.name);
1896 39 : free(nvme_disk->err_stat);
1897 39 : free(nvme_disk);
1898 39 : }
1899 :
1900 : static int
1901 38 : bdev_nvme_destruct(void *ctx)
1902 : {
1903 38 : struct nvme_bdev *nvme_disk = ctx;
1904 : struct nvme_ns *nvme_ns, *tmp_nvme_ns;
1905 :
1906 : SPDK_DTRACE_PROBE2(bdev_nvme_destruct, nvme_disk->nbdev_ctrlr->name, nvme_disk->nsid);
1907 :
1908 77 : TAILQ_FOREACH_SAFE(nvme_ns, &nvme_disk->nvme_ns_list, tailq, tmp_nvme_ns) {
1909 39 : pthread_mutex_lock(&nvme_ns->ctrlr->mutex);
1910 :
1911 39 : nvme_ns->bdev = NULL;
1912 :
1913 39 : assert(nvme_ns->id > 0);
1914 :
1915 39 : if (nvme_ctrlr_get_ns(nvme_ns->ctrlr, nvme_ns->id) == NULL) {
1916 0 : pthread_mutex_unlock(&nvme_ns->ctrlr->mutex);
1917 :
1918 0 : nvme_ctrlr_put_ref(nvme_ns->ctrlr);
1919 0 : nvme_ns_free(nvme_ns);
1920 : } else {
1921 39 : pthread_mutex_unlock(&nvme_ns->ctrlr->mutex);
1922 : }
1923 : }
1924 :
1925 38 : pthread_mutex_lock(&g_bdev_nvme_mutex);
1926 38 : TAILQ_REMOVE(&nvme_disk->nbdev_ctrlr->bdevs, nvme_disk, tailq);
1927 38 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
1928 :
1929 38 : spdk_io_device_unregister(nvme_disk, nvme_bdev_free);
1930 :
1931 38 : return 0;
1932 : }
1933 :
1934 : static int
1935 122 : bdev_nvme_create_qpair(struct nvme_qpair *nvme_qpair)
1936 : {
1937 : struct nvme_ctrlr *nvme_ctrlr;
1938 122 : struct spdk_nvme_io_qpair_opts opts;
1939 : struct spdk_nvme_qpair *qpair;
1940 : int rc;
1941 :
1942 122 : nvme_ctrlr = nvme_qpair->ctrlr;
1943 :
1944 122 : spdk_nvme_ctrlr_get_default_io_qpair_opts(nvme_ctrlr->ctrlr, &opts, sizeof(opts));
1945 122 : opts.create_only = true;
1946 : /* In interrupt mode qpairs must be created in sync mode, else it will never be connected.
1947 : * delay_cmd_submit must be false as in interrupt mode requests cannot be submitted in
1948 : * completion context.
1949 : */
1950 122 : if (!spdk_interrupt_mode_is_enabled()) {
1951 122 : opts.async_mode = true;
1952 122 : opts.delay_cmd_submit = g_opts.delay_cmd_submit;
1953 : }
1954 122 : opts.io_queue_requests = spdk_max(g_opts.io_queue_requests, opts.io_queue_requests);
1955 122 : g_opts.io_queue_requests = opts.io_queue_requests;
1956 :
1957 122 : qpair = spdk_nvme_ctrlr_alloc_io_qpair(nvme_ctrlr->ctrlr, &opts, sizeof(opts));
1958 122 : if (qpair == NULL) {
1959 0 : return -1;
1960 : }
1961 :
1962 : SPDK_DTRACE_PROBE3(bdev_nvme_create_qpair, nvme_ctrlr->nbdev_ctrlr->name,
1963 : spdk_nvme_qpair_get_id(qpair), spdk_thread_get_id(nvme_ctrlr->thread));
1964 :
1965 122 : assert(nvme_qpair->group != NULL);
1966 :
1967 122 : rc = spdk_nvme_poll_group_add(nvme_qpair->group->group, qpair);
1968 122 : if (rc != 0) {
1969 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Unable to begin polling on NVMe Channel.\n");
1970 0 : goto err;
1971 : }
1972 :
1973 122 : rc = spdk_nvme_ctrlr_connect_io_qpair(nvme_ctrlr->ctrlr, qpair);
1974 122 : if (rc != 0) {
1975 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Unable to connect I/O qpair.\n");
1976 0 : goto err;
1977 : }
1978 :
1979 122 : nvme_qpair->qpair = qpair;
1980 :
1981 122 : if (!g_opts.disable_auto_failback) {
1982 85 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
1983 : }
1984 :
1985 122 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Connecting qpair %p:%u started.\n",
1986 : qpair, spdk_nvme_qpair_get_id(qpair));
1987 :
1988 122 : return 0;
1989 :
1990 0 : err:
1991 0 : spdk_nvme_ctrlr_free_io_qpair(qpair);
1992 :
1993 0 : return rc;
1994 : }
1995 :
1996 : static void bdev_nvme_reset_io_continue(void *cb_arg, int rc);
1997 :
1998 : static void
1999 71 : bdev_nvme_complete_pending_resets(struct nvme_ctrlr *nvme_ctrlr, bool success)
2000 : {
2001 71 : int rc = 0;
2002 : struct nvme_bdev_io *bio;
2003 :
2004 71 : if (!success) {
2005 33 : rc = -1;
2006 : }
2007 :
2008 83 : while (!TAILQ_EMPTY(&nvme_ctrlr->pending_resets)) {
2009 12 : bio = TAILQ_FIRST(&nvme_ctrlr->pending_resets);
2010 12 : TAILQ_REMOVE(&nvme_ctrlr->pending_resets, bio, retry_link);
2011 :
2012 12 : bdev_nvme_reset_io_continue(bio, rc);
2013 : }
2014 71 : }
2015 :
2016 : /* This function marks the current trid as failed by storing the current ticks
2017 : * and then sets the next trid to the active trid within a controller if exists.
2018 : *
2019 : * The purpose of the boolean return value is to request the caller to disconnect
2020 : * the current trid now to try connecting the next trid.
2021 : */
2022 : static bool
2023 62 : bdev_nvme_failover_trid(struct nvme_ctrlr *nvme_ctrlr, bool remove, bool start)
2024 : {
2025 : struct nvme_path_id *path_id, *next_path;
2026 : int rc __attribute__((unused));
2027 :
2028 62 : path_id = TAILQ_FIRST(&nvme_ctrlr->trids);
2029 62 : assert(path_id);
2030 62 : assert(path_id == nvme_ctrlr->active_path_id);
2031 62 : next_path = TAILQ_NEXT(path_id, link);
2032 :
2033 : /* Update the last failed time. It means the trid is failed if its last
2034 : * failed time is non-zero.
2035 : */
2036 62 : path_id->last_failed_tsc = spdk_get_ticks();
2037 :
2038 62 : if (next_path == NULL) {
2039 : /* There is no alternate trid within a controller. */
2040 51 : return false;
2041 : }
2042 :
2043 11 : if (!start && nvme_ctrlr->opts.reconnect_delay_sec == 0) {
2044 : /* Connect is not retried in a controller reset sequence. Connecting
2045 : * the next trid will be done by the next bdev_nvme_failover_ctrlr() call.
2046 : */
2047 3 : return false;
2048 : }
2049 :
2050 8 : assert(path_id->trid.trtype != SPDK_NVME_TRANSPORT_PCIE);
2051 :
2052 8 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Start failover from %s:%s to %s:%s\n",
2053 : path_id->trid.traddr, path_id->trid.trsvcid,
2054 : next_path->trid.traddr, next_path->trid.trsvcid);
2055 :
2056 8 : spdk_nvme_ctrlr_fail(nvme_ctrlr->ctrlr);
2057 8 : nvme_ctrlr->active_path_id = next_path;
2058 8 : rc = spdk_nvme_ctrlr_set_trid(nvme_ctrlr->ctrlr, &next_path->trid);
2059 8 : assert(rc == 0);
2060 8 : TAILQ_REMOVE(&nvme_ctrlr->trids, path_id, link);
2061 8 : if (!remove) {
2062 : /** Shuffle the old trid to the end of the list and use the new one.
2063 : * Allows for round robin through multiple connections.
2064 : */
2065 6 : TAILQ_INSERT_TAIL(&nvme_ctrlr->trids, path_id, link);
2066 : } else {
2067 2 : free(path_id);
2068 : }
2069 :
2070 8 : if (start || next_path->last_failed_tsc == 0) {
2071 : /* bdev_nvme_failover_ctrlr() is just called or the next trid is not failed
2072 : * or used yet. Try the next trid now.
2073 : */
2074 7 : return true;
2075 : }
2076 :
2077 1 : if (spdk_get_ticks() > next_path->last_failed_tsc + spdk_get_ticks_hz() *
2078 1 : nvme_ctrlr->opts.reconnect_delay_sec) {
2079 : /* Enough backoff passed since the next trid failed. Try the next trid now. */
2080 0 : return true;
2081 : }
2082 :
2083 : /* The next trid will be tried after reconnect_delay_sec seconds. */
2084 1 : return false;
2085 : }
2086 :
2087 : static bool
2088 89 : bdev_nvme_check_ctrlr_loss_timeout(struct nvme_ctrlr *nvme_ctrlr)
2089 : {
2090 : int32_t elapsed;
2091 :
2092 89 : if (nvme_ctrlr->opts.ctrlr_loss_timeout_sec == 0 ||
2093 37 : nvme_ctrlr->opts.ctrlr_loss_timeout_sec == -1) {
2094 63 : return false;
2095 : }
2096 :
2097 26 : elapsed = (spdk_get_ticks() - nvme_ctrlr->reset_start_tsc) / spdk_get_ticks_hz();
2098 26 : if (elapsed >= nvme_ctrlr->opts.ctrlr_loss_timeout_sec) {
2099 6 : return true;
2100 : } else {
2101 20 : return false;
2102 : }
2103 : }
2104 :
2105 : static bool
2106 12 : bdev_nvme_check_fast_io_fail_timeout(struct nvme_ctrlr *nvme_ctrlr)
2107 : {
2108 : uint32_t elapsed;
2109 :
2110 12 : if (nvme_ctrlr->opts.fast_io_fail_timeout_sec == 0) {
2111 8 : return false;
2112 : }
2113 :
2114 4 : elapsed = (spdk_get_ticks() - nvme_ctrlr->reset_start_tsc) / spdk_get_ticks_hz();
2115 4 : if (elapsed >= nvme_ctrlr->opts.fast_io_fail_timeout_sec) {
2116 2 : return true;
2117 : } else {
2118 2 : return false;
2119 : }
2120 : }
2121 :
2122 : static void bdev_nvme_reset_ctrlr_complete(struct nvme_ctrlr *nvme_ctrlr, bool success);
2123 :
2124 : static void
2125 72 : nvme_ctrlr_disconnect(struct nvme_ctrlr *nvme_ctrlr, nvme_ctrlr_disconnected_cb cb_fn)
2126 : {
2127 : int rc;
2128 :
2129 72 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Start disconnecting ctrlr.\n");
2130 :
2131 72 : rc = spdk_nvme_ctrlr_disconnect(nvme_ctrlr->ctrlr);
2132 72 : if (rc != 0) {
2133 1 : NVME_CTRLR_WARNLOG(nvme_ctrlr, "disconnecting ctrlr failed.\n");
2134 :
2135 : /* Disconnect fails if ctrlr is already resetting or removed. In this case,
2136 : * fail the reset sequence immediately.
2137 : */
2138 1 : bdev_nvme_reset_ctrlr_complete(nvme_ctrlr, false);
2139 1 : return;
2140 : }
2141 :
2142 : /* spdk_nvme_ctrlr_disconnect() may complete asynchronously later by polling adminq.
2143 : * Set callback here to execute the specified operation after ctrlr is really disconnected.
2144 : */
2145 71 : assert(nvme_ctrlr->disconnected_cb == NULL);
2146 71 : nvme_ctrlr->disconnected_cb = cb_fn;
2147 :
2148 : /* During disconnection, reduce the period to poll adminq more often. */
2149 71 : bdev_nvme_change_adminq_poll_period(nvme_ctrlr, 0);
2150 : }
2151 :
2152 : enum bdev_nvme_op_after_reset {
2153 : OP_NONE,
2154 : OP_COMPLETE_PENDING_DESTRUCT,
2155 : OP_DESTRUCT,
2156 : OP_DELAYED_RECONNECT,
2157 : OP_FAILOVER,
2158 : };
2159 :
2160 : typedef enum bdev_nvme_op_after_reset _bdev_nvme_op_after_reset;
2161 :
2162 : static _bdev_nvme_op_after_reset
2163 71 : bdev_nvme_check_op_after_reset(struct nvme_ctrlr *nvme_ctrlr, bool success)
2164 : {
2165 71 : if (nvme_ctrlr_can_be_unregistered(nvme_ctrlr)) {
2166 : /* Complete pending destruct after reset completes. */
2167 0 : return OP_COMPLETE_PENDING_DESTRUCT;
2168 71 : } else if (nvme_ctrlr->pending_failover) {
2169 3 : nvme_ctrlr->pending_failover = false;
2170 3 : nvme_ctrlr->reset_start_tsc = 0;
2171 3 : return OP_FAILOVER;
2172 68 : } else if (success || nvme_ctrlr->opts.reconnect_delay_sec == 0) {
2173 54 : nvme_ctrlr->reset_start_tsc = 0;
2174 54 : return OP_NONE;
2175 14 : } else if (bdev_nvme_check_ctrlr_loss_timeout(nvme_ctrlr)) {
2176 2 : return OP_DESTRUCT;
2177 : } else {
2178 12 : if (bdev_nvme_check_fast_io_fail_timeout(nvme_ctrlr)) {
2179 2 : nvme_ctrlr->fast_io_fail_timedout = true;
2180 : }
2181 12 : return OP_DELAYED_RECONNECT;
2182 : }
2183 : }
2184 :
2185 : static int bdev_nvme_delete_ctrlr(struct nvme_ctrlr *nvme_ctrlr, bool hotplug);
2186 : static void bdev_nvme_reconnect_ctrlr(struct nvme_ctrlr *nvme_ctrlr);
2187 :
2188 : static int
2189 9 : bdev_nvme_reconnect_delay_timer_expired(void *ctx)
2190 : {
2191 9 : struct nvme_ctrlr *nvme_ctrlr = ctx;
2192 :
2193 : SPDK_DTRACE_PROBE1(bdev_nvme_ctrlr_reconnect_delay, nvme_ctrlr->nbdev_ctrlr->name);
2194 9 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2195 :
2196 9 : spdk_poller_unregister(&nvme_ctrlr->reconnect_delay_timer);
2197 :
2198 9 : if (!nvme_ctrlr->reconnect_is_delayed) {
2199 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2200 0 : return SPDK_POLLER_BUSY;
2201 : }
2202 :
2203 9 : nvme_ctrlr->reconnect_is_delayed = false;
2204 :
2205 9 : if (nvme_ctrlr->destruct) {
2206 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2207 0 : return SPDK_POLLER_BUSY;
2208 : }
2209 :
2210 9 : assert(nvme_ctrlr->resetting == false);
2211 9 : nvme_ctrlr->resetting = true;
2212 :
2213 9 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2214 :
2215 9 : spdk_poller_resume(nvme_ctrlr->adminq_timer_poller);
2216 :
2217 9 : bdev_nvme_reconnect_ctrlr(nvme_ctrlr);
2218 9 : return SPDK_POLLER_BUSY;
2219 : }
2220 :
2221 : static void
2222 12 : bdev_nvme_start_reconnect_delay_timer(struct nvme_ctrlr *nvme_ctrlr)
2223 : {
2224 12 : spdk_poller_pause(nvme_ctrlr->adminq_timer_poller);
2225 :
2226 12 : assert(nvme_ctrlr->reconnect_is_delayed == false);
2227 12 : nvme_ctrlr->reconnect_is_delayed = true;
2228 :
2229 12 : assert(nvme_ctrlr->reconnect_delay_timer == NULL);
2230 12 : nvme_ctrlr->reconnect_delay_timer = SPDK_POLLER_REGISTER(bdev_nvme_reconnect_delay_timer_expired,
2231 : nvme_ctrlr,
2232 : nvme_ctrlr->opts.reconnect_delay_sec * SPDK_SEC_TO_USEC);
2233 12 : }
2234 :
2235 : static void remove_discovery_entry(struct nvme_ctrlr *nvme_ctrlr);
2236 :
2237 : static void
2238 71 : bdev_nvme_reset_ctrlr_complete(struct nvme_ctrlr *nvme_ctrlr, bool success)
2239 : {
2240 71 : bdev_nvme_ctrlr_op_cb ctrlr_op_cb_fn = nvme_ctrlr->ctrlr_op_cb_fn;
2241 71 : void *ctrlr_op_cb_arg = nvme_ctrlr->ctrlr_op_cb_arg;
2242 : enum bdev_nvme_op_after_reset op_after_reset;
2243 :
2244 71 : assert(nvme_ctrlr->thread == spdk_get_thread());
2245 :
2246 71 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2247 71 : if (!success) {
2248 : /* Connecting the active trid failed. Set the next alternate trid to the
2249 : * active trid if it exists.
2250 : */
2251 35 : if (bdev_nvme_failover_trid(nvme_ctrlr, false, false)) {
2252 : /* The next alternate trid exists and is ready to try. Try it now. */
2253 2 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2254 :
2255 2 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Try the next alternate trid %s:%s now.\n",
2256 : nvme_ctrlr->active_path_id->trid.traddr,
2257 : nvme_ctrlr->active_path_id->trid.trsvcid);
2258 :
2259 2 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_reconnect_ctrlr);
2260 2 : return;
2261 : }
2262 :
2263 : /* We came here if there is no alternate trid or if the next trid exists but
2264 : * is not ready to try. We will try the active trid after reconnect_delay_sec
2265 : * seconds if it is non-zero or at the next reset call otherwise.
2266 : */
2267 : } else {
2268 : /* Connecting the active trid succeeded. Clear the last failed time because it
2269 : * means the trid is failed if its last failed time is non-zero.
2270 : */
2271 36 : nvme_ctrlr->active_path_id->last_failed_tsc = 0;
2272 : }
2273 :
2274 69 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Clear pending resets.\n");
2275 :
2276 : /* Make sure we clear any pending resets before returning. */
2277 69 : bdev_nvme_complete_pending_resets(nvme_ctrlr, success);
2278 :
2279 69 : if (!success) {
2280 33 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Resetting controller failed.\n");
2281 : } else {
2282 36 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Resetting controller successful.\n");
2283 : }
2284 :
2285 69 : nvme_ctrlr->resetting = false;
2286 69 : nvme_ctrlr->dont_retry = false;
2287 69 : nvme_ctrlr->in_failover = false;
2288 :
2289 69 : nvme_ctrlr->ctrlr_op_cb_fn = NULL;
2290 69 : nvme_ctrlr->ctrlr_op_cb_arg = NULL;
2291 :
2292 69 : op_after_reset = bdev_nvme_check_op_after_reset(nvme_ctrlr, success);
2293 69 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2294 :
2295 : /* Delay callbacks when the next operation is a failover. */
2296 69 : if (ctrlr_op_cb_fn && op_after_reset != OP_FAILOVER) {
2297 17 : ctrlr_op_cb_fn(ctrlr_op_cb_arg, success ? 0 : -1);
2298 : }
2299 :
2300 69 : switch (op_after_reset) {
2301 0 : case OP_COMPLETE_PENDING_DESTRUCT:
2302 0 : nvme_ctrlr_unregister(nvme_ctrlr);
2303 0 : break;
2304 2 : case OP_DESTRUCT:
2305 2 : bdev_nvme_delete_ctrlr(nvme_ctrlr, false);
2306 2 : remove_discovery_entry(nvme_ctrlr);
2307 2 : break;
2308 12 : case OP_DELAYED_RECONNECT:
2309 12 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_start_reconnect_delay_timer);
2310 12 : break;
2311 3 : case OP_FAILOVER:
2312 3 : nvme_ctrlr->ctrlr_op_cb_fn = ctrlr_op_cb_fn;
2313 3 : nvme_ctrlr->ctrlr_op_cb_arg = ctrlr_op_cb_arg;
2314 3 : bdev_nvme_failover_ctrlr(nvme_ctrlr);
2315 3 : break;
2316 52 : default:
2317 52 : break;
2318 : }
2319 : }
2320 :
2321 : static void
2322 0 : bdev_nvme_reset_create_qpairs_failed(struct nvme_ctrlr *nvme_ctrlr, void *ctx, int status)
2323 : {
2324 0 : bdev_nvme_reset_ctrlr_complete(nvme_ctrlr, false);
2325 0 : }
2326 :
2327 : static void
2328 104 : bdev_nvme_reset_destroy_qpair(struct nvme_ctrlr_channel_iter *i,
2329 : struct nvme_ctrlr *nvme_ctrlr,
2330 : struct nvme_ctrlr_channel *ctrlr_ch, void *ctx)
2331 : {
2332 : struct nvme_qpair *nvme_qpair;
2333 : struct spdk_nvme_qpair *qpair;
2334 :
2335 104 : nvme_qpair = ctrlr_ch->qpair;
2336 104 : assert(nvme_qpair != NULL);
2337 :
2338 104 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
2339 :
2340 104 : qpair = nvme_qpair->qpair;
2341 104 : if (qpair != NULL) {
2342 69 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Start disconnecting qpair %p:%u.\n",
2343 : qpair, spdk_nvme_qpair_get_id(qpair));
2344 :
2345 69 : if (nvme_qpair->ctrlr->dont_retry) {
2346 53 : spdk_nvme_qpair_set_abort_dnr(qpair, true);
2347 : }
2348 69 : spdk_nvme_ctrlr_disconnect_io_qpair(qpair);
2349 :
2350 : /* The current full reset sequence will move to the next
2351 : * ctrlr_channel after the qpair is actually disconnected.
2352 : */
2353 69 : assert(ctrlr_ch->reset_iter == NULL);
2354 69 : ctrlr_ch->reset_iter = i;
2355 : } else {
2356 35 : nvme_ctrlr_for_each_channel_continue(i, 0);
2357 : }
2358 104 : }
2359 :
2360 : static void
2361 36 : bdev_nvme_reset_create_qpairs_done(struct nvme_ctrlr *nvme_ctrlr, void *ctx, int status)
2362 : {
2363 36 : if (status == 0) {
2364 36 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "qpairs were created after ctrlr reset.\n");
2365 :
2366 36 : bdev_nvme_reset_ctrlr_complete(nvme_ctrlr, true);
2367 : } else {
2368 0 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "qpairs were failed to create after ctrlr reset.\n");
2369 :
2370 : /* Delete the added qpairs and quiesce ctrlr to make the states clean. */
2371 0 : nvme_ctrlr_for_each_channel(nvme_ctrlr,
2372 : bdev_nvme_reset_destroy_qpair,
2373 : NULL,
2374 : bdev_nvme_reset_create_qpairs_failed);
2375 : }
2376 36 : }
2377 :
2378 : static int
2379 61 : bdev_nvme_reset_check_qpair_connected(void *ctx)
2380 : {
2381 61 : struct nvme_ctrlr_channel *ctrlr_ch = ctx;
2382 61 : struct nvme_qpair *nvme_qpair = ctrlr_ch->qpair;
2383 : struct spdk_nvme_qpair *qpair;
2384 :
2385 61 : if (ctrlr_ch->reset_iter == NULL) {
2386 : /* qpair was already failed to connect and the reset sequence is being aborted. */
2387 0 : assert(ctrlr_ch->connect_poller == NULL);
2388 0 : assert(nvme_qpair->qpair == NULL);
2389 :
2390 0 : NVME_CTRLR_INFOLOG(nvme_qpair->ctrlr,
2391 : "qpair was already failed to connect. reset is being aborted.\n");
2392 0 : return SPDK_POLLER_BUSY;
2393 : }
2394 :
2395 61 : qpair = nvme_qpair->qpair;
2396 61 : assert(qpair != NULL);
2397 :
2398 61 : if (!spdk_nvme_qpair_is_connected(qpair)) {
2399 0 : return SPDK_POLLER_BUSY;
2400 : }
2401 :
2402 61 : NVME_CTRLR_INFOLOG(nvme_qpair->ctrlr, "qpair %p:%u was connected.\n",
2403 : qpair, spdk_nvme_qpair_get_id(qpair));
2404 :
2405 61 : spdk_poller_unregister(&ctrlr_ch->connect_poller);
2406 :
2407 : /* qpair was completed to connect. Move to the next ctrlr_channel */
2408 61 : nvme_ctrlr_for_each_channel_continue(ctrlr_ch->reset_iter, 0);
2409 61 : ctrlr_ch->reset_iter = NULL;
2410 :
2411 61 : if (!g_opts.disable_auto_failback) {
2412 44 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
2413 : }
2414 :
2415 61 : return SPDK_POLLER_BUSY;
2416 : }
2417 :
2418 : static void
2419 61 : bdev_nvme_reset_create_qpair(struct nvme_ctrlr_channel_iter *i,
2420 : struct nvme_ctrlr *nvme_ctrlr,
2421 : struct nvme_ctrlr_channel *ctrlr_ch,
2422 : void *ctx)
2423 : {
2424 61 : struct nvme_qpair *nvme_qpair = ctrlr_ch->qpair;
2425 : struct spdk_nvme_qpair *qpair;
2426 61 : int rc = 0;
2427 :
2428 61 : if (nvme_qpair->qpair == NULL) {
2429 61 : rc = bdev_nvme_create_qpair(nvme_qpair);
2430 : }
2431 61 : if (rc == 0) {
2432 61 : ctrlr_ch->connect_poller = SPDK_POLLER_REGISTER(bdev_nvme_reset_check_qpair_connected,
2433 : ctrlr_ch, 0);
2434 :
2435 61 : qpair = nvme_qpair->qpair;
2436 :
2437 61 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Start checking qpair %p:%u to be connected.\n",
2438 : qpair, spdk_nvme_qpair_get_id(qpair));
2439 :
2440 : /* The current full reset sequence will move to the next
2441 : * ctrlr_channel after the qpair is actually connected.
2442 : */
2443 61 : assert(ctrlr_ch->reset_iter == NULL);
2444 61 : ctrlr_ch->reset_iter = i;
2445 : } else {
2446 0 : nvme_ctrlr_for_each_channel_continue(i, rc);
2447 : }
2448 61 : }
2449 :
2450 : static void
2451 36 : nvme_ctrlr_check_namespaces(struct nvme_ctrlr *nvme_ctrlr)
2452 : {
2453 36 : struct spdk_nvme_ctrlr *ctrlr = nvme_ctrlr->ctrlr;
2454 : struct nvme_ns *nvme_ns;
2455 :
2456 36 : for (nvme_ns = nvme_ctrlr_get_first_active_ns(nvme_ctrlr);
2457 57 : nvme_ns != NULL;
2458 21 : nvme_ns = nvme_ctrlr_get_next_active_ns(nvme_ctrlr, nvme_ns)) {
2459 21 : if (!spdk_nvme_ctrlr_is_active_ns(ctrlr, nvme_ns->id)) {
2460 1 : SPDK_DEBUGLOG(bdev_nvme, "NSID %u was removed during reset.\n", nvme_ns->id);
2461 : /* NS can be added again. Just nullify nvme_ns->ns. */
2462 1 : nvme_ns->ns = NULL;
2463 : }
2464 : }
2465 36 : }
2466 :
2467 :
2468 : static int
2469 70 : bdev_nvme_reconnect_ctrlr_poll(void *arg)
2470 : {
2471 70 : struct nvme_ctrlr *nvme_ctrlr = arg;
2472 : struct spdk_nvme_transport_id *trid;
2473 70 : int rc = -ETIMEDOUT;
2474 :
2475 70 : if (bdev_nvme_check_ctrlr_loss_timeout(nvme_ctrlr)) {
2476 : /* Mark the ctrlr as failed. The next call to
2477 : * spdk_nvme_ctrlr_reconnect_poll_async() will then
2478 : * do the necessary cleanup and return failure.
2479 : */
2480 2 : spdk_nvme_ctrlr_fail(nvme_ctrlr->ctrlr);
2481 : }
2482 :
2483 70 : rc = spdk_nvme_ctrlr_reconnect_poll_async(nvme_ctrlr->ctrlr);
2484 70 : if (rc == -EAGAIN) {
2485 0 : return SPDK_POLLER_BUSY;
2486 : }
2487 :
2488 70 : spdk_poller_unregister(&nvme_ctrlr->reset_detach_poller);
2489 70 : if (rc == 0) {
2490 36 : trid = &nvme_ctrlr->active_path_id->trid;
2491 :
2492 36 : if (spdk_nvme_trtype_is_fabrics(trid->trtype)) {
2493 36 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "ctrlr was connected to %s:%s. Create qpairs.\n",
2494 : trid->traddr, trid->trsvcid);
2495 : } else {
2496 0 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "ctrlr was connected. Create qpairs.\n");
2497 : }
2498 :
2499 36 : nvme_ctrlr_check_namespaces(nvme_ctrlr);
2500 :
2501 : /* Recreate all of the I/O queue pairs */
2502 36 : nvme_ctrlr_for_each_channel(nvme_ctrlr,
2503 : bdev_nvme_reset_create_qpair,
2504 : NULL,
2505 : bdev_nvme_reset_create_qpairs_done);
2506 : } else {
2507 34 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "ctrlr could not be connected.\n");
2508 :
2509 34 : bdev_nvme_reset_ctrlr_complete(nvme_ctrlr, false);
2510 : }
2511 70 : return SPDK_POLLER_BUSY;
2512 : }
2513 :
2514 : static void
2515 70 : bdev_nvme_reconnect_ctrlr(struct nvme_ctrlr *nvme_ctrlr)
2516 : {
2517 70 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Start reconnecting ctrlr.\n");
2518 :
2519 70 : spdk_nvme_ctrlr_reconnect_async(nvme_ctrlr->ctrlr);
2520 :
2521 : SPDK_DTRACE_PROBE1(bdev_nvme_ctrlr_reconnect, nvme_ctrlr->nbdev_ctrlr->name);
2522 70 : assert(nvme_ctrlr->reset_detach_poller == NULL);
2523 70 : nvme_ctrlr->reset_detach_poller = SPDK_POLLER_REGISTER(bdev_nvme_reconnect_ctrlr_poll,
2524 : nvme_ctrlr, 0);
2525 70 : }
2526 :
2527 : static void
2528 57 : bdev_nvme_reset_destroy_qpair_done(struct nvme_ctrlr *nvme_ctrlr, void *ctx, int status)
2529 : {
2530 : SPDK_DTRACE_PROBE1(bdev_nvme_ctrlr_reset, nvme_ctrlr->nbdev_ctrlr->name);
2531 57 : assert(status == 0);
2532 :
2533 57 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "qpairs were deleted.\n");
2534 :
2535 57 : if (!spdk_nvme_ctrlr_is_fabrics(nvme_ctrlr->ctrlr)) {
2536 0 : bdev_nvme_reconnect_ctrlr(nvme_ctrlr);
2537 : } else {
2538 57 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_reconnect_ctrlr);
2539 : }
2540 57 : }
2541 :
2542 : static void
2543 57 : bdev_nvme_reset_destroy_qpairs(struct nvme_ctrlr *nvme_ctrlr)
2544 : {
2545 57 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Delete qpairs for reset.\n");
2546 :
2547 57 : nvme_ctrlr_for_each_channel(nvme_ctrlr,
2548 : bdev_nvme_reset_destroy_qpair,
2549 : NULL,
2550 : bdev_nvme_reset_destroy_qpair_done);
2551 57 : }
2552 :
2553 : static void
2554 3 : bdev_nvme_reconnect_ctrlr_now(void *ctx)
2555 : {
2556 3 : struct nvme_ctrlr *nvme_ctrlr = ctx;
2557 :
2558 3 : assert(nvme_ctrlr->resetting == true);
2559 3 : assert(nvme_ctrlr->thread == spdk_get_thread());
2560 :
2561 3 : spdk_poller_unregister(&nvme_ctrlr->reconnect_delay_timer);
2562 :
2563 3 : spdk_poller_resume(nvme_ctrlr->adminq_timer_poller);
2564 :
2565 3 : bdev_nvme_reconnect_ctrlr(nvme_ctrlr);
2566 3 : }
2567 :
2568 : static void
2569 57 : _bdev_nvme_reset_ctrlr(void *ctx)
2570 : {
2571 57 : struct nvme_ctrlr *nvme_ctrlr = ctx;
2572 :
2573 57 : assert(nvme_ctrlr->resetting == true);
2574 57 : assert(nvme_ctrlr->thread == spdk_get_thread());
2575 :
2576 57 : if (!spdk_nvme_ctrlr_is_fabrics(nvme_ctrlr->ctrlr)) {
2577 0 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_reset_destroy_qpairs);
2578 : } else {
2579 57 : bdev_nvme_reset_destroy_qpairs(nvme_ctrlr);
2580 : }
2581 57 : }
2582 :
2583 : static int
2584 50 : bdev_nvme_reset_ctrlr_unsafe(struct nvme_ctrlr *nvme_ctrlr, spdk_msg_fn *msg_fn)
2585 : {
2586 50 : if (nvme_ctrlr->destruct) {
2587 3 : return -ENXIO;
2588 : }
2589 :
2590 47 : if (nvme_ctrlr->resetting) {
2591 14 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Unable to perform reset, already in progress.\n");
2592 14 : return -EBUSY;
2593 : }
2594 :
2595 33 : if (nvme_ctrlr->disabled) {
2596 1 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Unable to perform reset. Controller is disabled.\n");
2597 1 : return -EALREADY;
2598 : }
2599 :
2600 32 : nvme_ctrlr->resetting = true;
2601 32 : nvme_ctrlr->dont_retry = true;
2602 :
2603 32 : if (nvme_ctrlr->reconnect_is_delayed) {
2604 1 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "Reconnect is already scheduled.\n");
2605 1 : *msg_fn = bdev_nvme_reconnect_ctrlr_now;
2606 1 : nvme_ctrlr->reconnect_is_delayed = false;
2607 : } else {
2608 31 : *msg_fn = _bdev_nvme_reset_ctrlr;
2609 31 : assert(nvme_ctrlr->reset_start_tsc == 0);
2610 : }
2611 :
2612 32 : nvme_ctrlr->reset_start_tsc = spdk_get_ticks();
2613 :
2614 32 : return 0;
2615 : }
2616 :
2617 : static int
2618 24 : bdev_nvme_reset_ctrlr(struct nvme_ctrlr *nvme_ctrlr)
2619 : {
2620 24 : spdk_msg_fn msg_fn;
2621 : int rc;
2622 :
2623 24 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2624 24 : rc = bdev_nvme_reset_ctrlr_unsafe(nvme_ctrlr, &msg_fn);
2625 24 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2626 :
2627 24 : if (rc == 0) {
2628 19 : spdk_thread_send_msg(nvme_ctrlr->thread, msg_fn, nvme_ctrlr);
2629 : }
2630 :
2631 24 : return rc;
2632 : }
2633 :
2634 : static int
2635 3 : bdev_nvme_enable_ctrlr(struct nvme_ctrlr *nvme_ctrlr)
2636 : {
2637 3 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2638 3 : if (nvme_ctrlr->destruct) {
2639 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2640 0 : return -ENXIO;
2641 : }
2642 :
2643 3 : if (nvme_ctrlr->resetting) {
2644 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2645 0 : return -EBUSY;
2646 : }
2647 :
2648 3 : if (!nvme_ctrlr->disabled) {
2649 1 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2650 1 : return -EALREADY;
2651 : }
2652 :
2653 2 : nvme_ctrlr->disabled = false;
2654 2 : nvme_ctrlr->resetting = true;
2655 :
2656 2 : nvme_ctrlr->reset_start_tsc = spdk_get_ticks();
2657 :
2658 2 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2659 :
2660 2 : spdk_thread_send_msg(nvme_ctrlr->thread, bdev_nvme_reconnect_ctrlr_now, nvme_ctrlr);
2661 2 : return 0;
2662 : }
2663 :
2664 : static void
2665 2 : bdev_nvme_disable_ctrlr_complete(struct nvme_ctrlr *nvme_ctrlr)
2666 : {
2667 2 : bdev_nvme_ctrlr_op_cb ctrlr_op_cb_fn = nvme_ctrlr->ctrlr_op_cb_fn;
2668 2 : void *ctrlr_op_cb_arg = nvme_ctrlr->ctrlr_op_cb_arg;
2669 : enum bdev_nvme_op_after_reset op_after_disable;
2670 :
2671 2 : assert(nvme_ctrlr->thread == spdk_get_thread());
2672 :
2673 2 : nvme_ctrlr->ctrlr_op_cb_fn = NULL;
2674 2 : nvme_ctrlr->ctrlr_op_cb_arg = NULL;
2675 :
2676 2 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2677 :
2678 2 : nvme_ctrlr->resetting = false;
2679 2 : nvme_ctrlr->dont_retry = false;
2680 :
2681 2 : op_after_disable = bdev_nvme_check_op_after_reset(nvme_ctrlr, true);
2682 :
2683 2 : nvme_ctrlr->disabled = true;
2684 2 : spdk_poller_pause(nvme_ctrlr->adminq_timer_poller);
2685 :
2686 : /* Make sure we clear any pending resets before returning. */
2687 2 : bdev_nvme_complete_pending_resets(nvme_ctrlr, true);
2688 :
2689 2 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2690 :
2691 2 : if (ctrlr_op_cb_fn) {
2692 0 : ctrlr_op_cb_fn(ctrlr_op_cb_arg, 0);
2693 : }
2694 :
2695 2 : switch (op_after_disable) {
2696 0 : case OP_COMPLETE_PENDING_DESTRUCT:
2697 0 : nvme_ctrlr_unregister(nvme_ctrlr);
2698 0 : break;
2699 2 : default:
2700 2 : break;
2701 : }
2702 2 : }
2703 :
2704 : static void
2705 1 : bdev_nvme_disable_destroy_qpairs_done(struct nvme_ctrlr *nvme_ctrlr, void *ctx, int status)
2706 : {
2707 1 : assert(status == 0);
2708 :
2709 1 : if (!spdk_nvme_ctrlr_is_fabrics(nvme_ctrlr->ctrlr)) {
2710 0 : bdev_nvme_disable_ctrlr_complete(nvme_ctrlr);
2711 : } else {
2712 1 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_disable_ctrlr_complete);
2713 : }
2714 1 : }
2715 :
2716 : static void
2717 1 : bdev_nvme_disable_destroy_qpairs(struct nvme_ctrlr *nvme_ctrlr)
2718 : {
2719 1 : nvme_ctrlr_for_each_channel(nvme_ctrlr,
2720 : bdev_nvme_reset_destroy_qpair,
2721 : NULL,
2722 : bdev_nvme_disable_destroy_qpairs_done);
2723 1 : }
2724 :
2725 : static void
2726 1 : _bdev_nvme_cancel_reconnect_and_disable_ctrlr(void *ctx)
2727 : {
2728 1 : struct nvme_ctrlr *nvme_ctrlr = ctx;
2729 :
2730 1 : assert(nvme_ctrlr->resetting == true);
2731 1 : assert(nvme_ctrlr->thread == spdk_get_thread());
2732 :
2733 1 : spdk_poller_unregister(&nvme_ctrlr->reconnect_delay_timer);
2734 :
2735 1 : bdev_nvme_disable_ctrlr_complete(nvme_ctrlr);
2736 1 : }
2737 :
2738 : static void
2739 1 : _bdev_nvme_disconnect_and_disable_ctrlr(void *ctx)
2740 : {
2741 1 : struct nvme_ctrlr *nvme_ctrlr = ctx;
2742 :
2743 1 : assert(nvme_ctrlr->resetting == true);
2744 1 : assert(nvme_ctrlr->thread == spdk_get_thread());
2745 :
2746 1 : if (!spdk_nvme_ctrlr_is_fabrics(nvme_ctrlr->ctrlr)) {
2747 0 : nvme_ctrlr_disconnect(nvme_ctrlr, bdev_nvme_disable_destroy_qpairs);
2748 : } else {
2749 1 : bdev_nvme_disable_destroy_qpairs(nvme_ctrlr);
2750 : }
2751 1 : }
2752 :
2753 : static int
2754 5 : bdev_nvme_disable_ctrlr(struct nvme_ctrlr *nvme_ctrlr)
2755 : {
2756 : spdk_msg_fn msg_fn;
2757 :
2758 5 : pthread_mutex_lock(&nvme_ctrlr->mutex);
2759 5 : if (nvme_ctrlr->destruct) {
2760 1 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2761 1 : return -ENXIO;
2762 : }
2763 :
2764 4 : if (nvme_ctrlr->resetting) {
2765 1 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2766 1 : return -EBUSY;
2767 : }
2768 :
2769 3 : if (nvme_ctrlr->disabled) {
2770 1 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2771 1 : return -EALREADY;
2772 : }
2773 :
2774 2 : nvme_ctrlr->resetting = true;
2775 2 : nvme_ctrlr->dont_retry = true;
2776 :
2777 2 : if (nvme_ctrlr->reconnect_is_delayed) {
2778 1 : msg_fn = _bdev_nvme_cancel_reconnect_and_disable_ctrlr;
2779 1 : nvme_ctrlr->reconnect_is_delayed = false;
2780 : } else {
2781 1 : msg_fn = _bdev_nvme_disconnect_and_disable_ctrlr;
2782 : }
2783 :
2784 2 : nvme_ctrlr->reset_start_tsc = spdk_get_ticks();
2785 :
2786 2 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
2787 :
2788 2 : spdk_thread_send_msg(nvme_ctrlr->thread, msg_fn, nvme_ctrlr);
2789 2 : return 0;
2790 : }
2791 :
2792 : static int
2793 6 : nvme_ctrlr_op(struct nvme_ctrlr *nvme_ctrlr, enum nvme_ctrlr_op op,
2794 : bdev_nvme_ctrlr_op_cb cb_fn, void *cb_arg)
2795 : {
2796 : int rc;
2797 :
2798 6 : switch (op) {
2799 5 : case NVME_CTRLR_OP_RESET:
2800 5 : rc = bdev_nvme_reset_ctrlr(nvme_ctrlr);
2801 5 : break;
2802 0 : case NVME_CTRLR_OP_ENABLE:
2803 0 : rc = bdev_nvme_enable_ctrlr(nvme_ctrlr);
2804 0 : break;
2805 0 : case NVME_CTRLR_OP_DISABLE:
2806 0 : rc = bdev_nvme_disable_ctrlr(nvme_ctrlr);
2807 0 : break;
2808 1 : default:
2809 1 : rc = -EINVAL;
2810 1 : break;
2811 : }
2812 :
2813 6 : if (rc == 0) {
2814 3 : assert(nvme_ctrlr->ctrlr_op_cb_fn == NULL);
2815 3 : assert(nvme_ctrlr->ctrlr_op_cb_arg == NULL);
2816 3 : nvme_ctrlr->ctrlr_op_cb_fn = cb_fn;
2817 3 : nvme_ctrlr->ctrlr_op_cb_arg = cb_arg;
2818 : }
2819 6 : return rc;
2820 : }
2821 :
2822 : struct nvme_ctrlr_op_rpc_ctx {
2823 : struct nvme_ctrlr *nvme_ctrlr;
2824 : struct spdk_thread *orig_thread;
2825 : enum nvme_ctrlr_op op;
2826 : int rc;
2827 : bdev_nvme_ctrlr_op_cb cb_fn;
2828 : void *cb_arg;
2829 : };
2830 :
2831 : static void
2832 4 : _nvme_ctrlr_op_rpc_complete(void *_ctx)
2833 : {
2834 4 : struct nvme_ctrlr_op_rpc_ctx *ctx = _ctx;
2835 :
2836 4 : assert(ctx != NULL);
2837 4 : assert(ctx->cb_fn != NULL);
2838 :
2839 4 : ctx->cb_fn(ctx->cb_arg, ctx->rc);
2840 :
2841 4 : free(ctx);
2842 4 : }
2843 :
2844 : static void
2845 4 : nvme_ctrlr_op_rpc_complete(void *cb_arg, int rc)
2846 : {
2847 4 : struct nvme_ctrlr_op_rpc_ctx *ctx = cb_arg;
2848 :
2849 4 : ctx->rc = rc;
2850 :
2851 4 : spdk_thread_send_msg(ctx->orig_thread, _nvme_ctrlr_op_rpc_complete, ctx);
2852 4 : }
2853 :
2854 : void
2855 4 : nvme_ctrlr_op_rpc(struct nvme_ctrlr *nvme_ctrlr, enum nvme_ctrlr_op op,
2856 : bdev_nvme_ctrlr_op_cb cb_fn, void *cb_arg)
2857 : {
2858 : struct nvme_ctrlr_op_rpc_ctx *ctx;
2859 : int rc;
2860 :
2861 4 : assert(cb_fn != NULL);
2862 :
2863 4 : ctx = calloc(1, sizeof(*ctx));
2864 4 : if (ctx == NULL) {
2865 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to allocate nvme_ctrlr_op_rpc_ctx.\n");
2866 0 : cb_fn(cb_arg, -ENOMEM);
2867 0 : return;
2868 : }
2869 :
2870 4 : ctx->orig_thread = spdk_get_thread();
2871 4 : ctx->cb_fn = cb_fn;
2872 4 : ctx->cb_arg = cb_arg;
2873 :
2874 4 : rc = nvme_ctrlr_op(nvme_ctrlr, op, nvme_ctrlr_op_rpc_complete, ctx);
2875 4 : if (rc == 0) {
2876 1 : return;
2877 3 : } else if (rc == -EALREADY) {
2878 0 : rc = 0;
2879 : }
2880 :
2881 3 : nvme_ctrlr_op_rpc_complete(ctx, rc);
2882 : }
2883 :
2884 : static void nvme_bdev_ctrlr_op_rpc_continue(void *cb_arg, int rc);
2885 :
2886 : static void
2887 2 : _nvme_bdev_ctrlr_op_rpc_continue(void *_ctx)
2888 : {
2889 2 : struct nvme_ctrlr_op_rpc_ctx *ctx = _ctx;
2890 : struct nvme_ctrlr *prev_nvme_ctrlr, *next_nvme_ctrlr;
2891 : int rc;
2892 :
2893 2 : prev_nvme_ctrlr = ctx->nvme_ctrlr;
2894 2 : ctx->nvme_ctrlr = NULL;
2895 :
2896 2 : if (ctx->rc != 0) {
2897 0 : goto complete;
2898 : }
2899 :
2900 2 : next_nvme_ctrlr = TAILQ_NEXT(prev_nvme_ctrlr, tailq);
2901 2 : if (next_nvme_ctrlr == NULL) {
2902 1 : goto complete;
2903 : }
2904 :
2905 1 : rc = nvme_ctrlr_op(next_nvme_ctrlr, ctx->op, nvme_bdev_ctrlr_op_rpc_continue, ctx);
2906 1 : if (rc == 0) {
2907 1 : ctx->nvme_ctrlr = next_nvme_ctrlr;
2908 1 : return;
2909 0 : } else if (rc == -EALREADY) {
2910 0 : ctx->nvme_ctrlr = next_nvme_ctrlr;
2911 0 : rc = 0;
2912 : }
2913 :
2914 0 : ctx->rc = rc;
2915 :
2916 1 : complete:
2917 1 : ctx->cb_fn(ctx->cb_arg, ctx->rc);
2918 1 : free(ctx);
2919 : }
2920 :
2921 : static void
2922 2 : nvme_bdev_ctrlr_op_rpc_continue(void *cb_arg, int rc)
2923 : {
2924 2 : struct nvme_ctrlr_op_rpc_ctx *ctx = cb_arg;
2925 :
2926 2 : ctx->rc = rc;
2927 :
2928 2 : spdk_thread_send_msg(ctx->orig_thread, _nvme_bdev_ctrlr_op_rpc_continue, ctx);
2929 2 : }
2930 :
2931 : void
2932 1 : nvme_bdev_ctrlr_op_rpc(struct nvme_bdev_ctrlr *nbdev_ctrlr, enum nvme_ctrlr_op op,
2933 : bdev_nvme_ctrlr_op_cb cb_fn, void *cb_arg)
2934 : {
2935 : struct nvme_ctrlr_op_rpc_ctx *ctx;
2936 : struct nvme_ctrlr *nvme_ctrlr;
2937 : int rc;
2938 :
2939 1 : assert(cb_fn != NULL);
2940 :
2941 1 : ctx = calloc(1, sizeof(*ctx));
2942 1 : if (ctx == NULL) {
2943 0 : SPDK_ERRLOG("Failed to allocate nvme_ctrlr_op_rpc_ctx.\n");
2944 0 : cb_fn(cb_arg, -ENOMEM);
2945 0 : return;
2946 : }
2947 :
2948 1 : ctx->orig_thread = spdk_get_thread();
2949 1 : ctx->op = op;
2950 1 : ctx->cb_fn = cb_fn;
2951 1 : ctx->cb_arg = cb_arg;
2952 :
2953 1 : nvme_ctrlr = TAILQ_FIRST(&nbdev_ctrlr->ctrlrs);
2954 1 : assert(nvme_ctrlr != NULL);
2955 :
2956 1 : rc = nvme_ctrlr_op(nvme_ctrlr, op, nvme_bdev_ctrlr_op_rpc_continue, ctx);
2957 1 : if (rc == 0) {
2958 1 : ctx->nvme_ctrlr = nvme_ctrlr;
2959 1 : return;
2960 0 : } else if (rc == -EALREADY) {
2961 0 : ctx->nvme_ctrlr = nvme_ctrlr;
2962 0 : rc = 0;
2963 : }
2964 :
2965 0 : nvme_bdev_ctrlr_op_rpc_continue(ctx, rc);
2966 : }
2967 :
2968 : static int _bdev_nvme_reset_io(struct nvme_io_path *io_path, struct nvme_bdev_io *bio);
2969 :
2970 : static void
2971 16 : bdev_nvme_unfreeze_bdev_channel_done(struct nvme_bdev *nbdev, void *ctx, int status)
2972 : {
2973 16 : struct nvme_bdev_io *bio = ctx;
2974 : enum spdk_bdev_io_status io_status;
2975 :
2976 16 : if (bio->cpl.cdw0 == 0) {
2977 12 : io_status = SPDK_BDEV_IO_STATUS_SUCCESS;
2978 : } else {
2979 4 : io_status = SPDK_BDEV_IO_STATUS_FAILED;
2980 : }
2981 :
2982 16 : NVME_BDEV_INFOLOG(nbdev, "reset_io %p completed, status:%d\n", bio, io_status);
2983 :
2984 16 : __bdev_nvme_io_complete(spdk_bdev_io_from_ctx(bio), io_status, NULL);
2985 16 : }
2986 :
2987 : static void
2988 32 : bdev_nvme_unfreeze_bdev_channel(struct nvme_bdev_channel_iter *i,
2989 : struct nvme_bdev *nbdev,
2990 : struct nvme_bdev_channel *nbdev_ch, void *ctx)
2991 : {
2992 32 : bdev_nvme_abort_retry_ios(nbdev_ch);
2993 32 : nbdev_ch->resetting = false;
2994 :
2995 32 : nvme_bdev_for_each_channel_continue(i, 0);
2996 32 : }
2997 :
2998 : static void
2999 16 : bdev_nvme_reset_io_complete(struct nvme_bdev_io *bio)
3000 : {
3001 16 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
3002 16 : struct nvme_bdev *nbdev = (struct nvme_bdev *)bdev_io->bdev->ctxt;
3003 :
3004 : /* Abort all queued I/Os for retry. */
3005 16 : nvme_bdev_for_each_channel(nbdev,
3006 : bdev_nvme_unfreeze_bdev_channel,
3007 : bio,
3008 : bdev_nvme_unfreeze_bdev_channel_done);
3009 16 : }
3010 :
3011 : static void
3012 26 : _bdev_nvme_reset_io_continue(void *ctx)
3013 : {
3014 26 : struct nvme_bdev_io *bio = ctx;
3015 : struct nvme_io_path *prev_io_path, *next_io_path;
3016 : int rc;
3017 :
3018 26 : prev_io_path = bio->io_path;
3019 26 : bio->io_path = NULL;
3020 :
3021 26 : next_io_path = STAILQ_NEXT(prev_io_path, stailq);
3022 26 : if (next_io_path == NULL) {
3023 16 : goto complete;
3024 : }
3025 :
3026 10 : rc = _bdev_nvme_reset_io(next_io_path, bio);
3027 10 : if (rc == 0) {
3028 10 : return;
3029 : }
3030 :
3031 0 : complete:
3032 16 : bdev_nvme_reset_io_complete(bio);
3033 : }
3034 :
3035 : static void
3036 26 : bdev_nvme_reset_io_continue(void *cb_arg, int rc)
3037 : {
3038 26 : struct nvme_bdev_io *bio = cb_arg;
3039 26 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
3040 26 : struct nvme_bdev *nbdev = (struct nvme_bdev *)bdev_io->bdev->ctxt;
3041 :
3042 26 : NVME_BDEV_INFOLOG(nbdev, "continue reset_io %p, rc:%d\n", bio, rc);
3043 :
3044 : /* Reset status is initialized as "failed". Set to "success" once we have at least one
3045 : * successfully reset nvme_ctrlr.
3046 : */
3047 26 : if (rc == 0) {
3048 16 : bio->cpl.cdw0 = 0;
3049 : }
3050 :
3051 26 : spdk_thread_send_msg(spdk_bdev_io_get_thread(bdev_io), _bdev_nvme_reset_io_continue, bio);
3052 26 : }
3053 :
3054 : static int
3055 26 : _bdev_nvme_reset_io(struct nvme_io_path *io_path, struct nvme_bdev_io *bio)
3056 : {
3057 26 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
3058 26 : struct nvme_bdev *nbdev = (struct nvme_bdev *)bdev_io->bdev->ctxt;
3059 26 : struct nvme_ctrlr *nvme_ctrlr = io_path->qpair->ctrlr;
3060 26 : spdk_msg_fn msg_fn;
3061 : int rc;
3062 :
3063 26 : assert(bio->io_path == NULL);
3064 26 : bio->io_path = io_path;
3065 :
3066 26 : pthread_mutex_lock(&nvme_ctrlr->mutex);
3067 26 : rc = bdev_nvme_reset_ctrlr_unsafe(nvme_ctrlr, &msg_fn);
3068 26 : if (rc == -EBUSY) {
3069 : /*
3070 : * Reset call is queued only if it is from the app framework. This is on purpose so that
3071 : * we don't interfere with the app framework reset strategy. i.e. we are deferring to the
3072 : * upper level. If they are in the middle of a reset, we won't try to schedule another one.
3073 : */
3074 12 : TAILQ_INSERT_TAIL(&nvme_ctrlr->pending_resets, bio, retry_link);
3075 : }
3076 26 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
3077 :
3078 26 : if (rc == 0) {
3079 13 : assert(nvme_ctrlr->ctrlr_op_cb_fn == NULL);
3080 13 : assert(nvme_ctrlr->ctrlr_op_cb_arg == NULL);
3081 13 : nvme_ctrlr->ctrlr_op_cb_fn = bdev_nvme_reset_io_continue;
3082 13 : nvme_ctrlr->ctrlr_op_cb_arg = bio;
3083 :
3084 13 : spdk_thread_send_msg(nvme_ctrlr->thread, msg_fn, nvme_ctrlr);
3085 :
3086 13 : NVME_BDEV_INFOLOG(nbdev, "reset_io %p started resetting ctrlr [%s, %u].\n",
3087 : bio, CTRLR_STRING(nvme_ctrlr), CTRLR_ID(nvme_ctrlr));
3088 13 : } else if (rc == -EBUSY) {
3089 12 : rc = 0;
3090 :
3091 12 : NVME_BDEV_INFOLOG(nbdev, "reset_io %p was queued to ctrlr [%s, %u].\n",
3092 : bio, CTRLR_STRING(nvme_ctrlr), CTRLR_ID(nvme_ctrlr));
3093 : } else {
3094 1 : NVME_BDEV_INFOLOG(nbdev, "reset_io %p could not reset ctrlr [%s, %u], rc:%d\n",
3095 : bio, CTRLR_STRING(nvme_ctrlr), CTRLR_ID(nvme_ctrlr), rc);
3096 : }
3097 :
3098 26 : return rc;
3099 : }
3100 :
3101 : static void
3102 16 : bdev_nvme_freeze_bdev_channel_done(struct nvme_bdev *nbdev, void *ctx, int status)
3103 : {
3104 16 : struct nvme_bdev_io *bio = ctx;
3105 16 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
3106 : struct nvme_bdev_channel *nbdev_ch;
3107 : struct nvme_io_path *io_path;
3108 : int rc;
3109 :
3110 16 : nbdev_ch = spdk_io_channel_get_ctx(spdk_bdev_io_get_io_channel(bdev_io));
3111 :
3112 : /* Initialize with failed status. With multipath it is enough to have at least one successful
3113 : * nvme_ctrlr reset. If there is none, reset status will remain failed.
3114 : */
3115 16 : bio->cpl.cdw0 = 1;
3116 :
3117 : /* Reset all nvme_ctrlrs of a bdev controller sequentially. */
3118 16 : io_path = STAILQ_FIRST(&nbdev_ch->io_path_list);
3119 16 : assert(io_path != NULL);
3120 :
3121 16 : rc = _bdev_nvme_reset_io(io_path, bio);
3122 16 : if (rc != 0) {
3123 : /* If the current nvme_ctrlr is disabled, skip it and move to the next nvme_ctrlr. */
3124 1 : rc = (rc == -EALREADY) ? 0 : rc;
3125 :
3126 1 : bdev_nvme_reset_io_continue(bio, rc);
3127 : }
3128 16 : }
3129 :
3130 : static void
3131 30 : bdev_nvme_freeze_bdev_channel(struct nvme_bdev_channel_iter *i,
3132 : struct nvme_bdev *nbdev,
3133 : struct nvme_bdev_channel *nbdev_ch, void *ctx)
3134 : {
3135 30 : nbdev_ch->resetting = true;
3136 :
3137 30 : nvme_bdev_for_each_channel_continue(i, 0);
3138 30 : }
3139 :
3140 : static void
3141 15 : bdev_nvme_reset_io(struct nvme_bdev *nbdev, struct nvme_bdev_io *bio)
3142 : {
3143 15 : NVME_BDEV_INFOLOG(nbdev, "reset_io %p started.\n", bio);
3144 :
3145 15 : nvme_bdev_for_each_channel(nbdev,
3146 : bdev_nvme_freeze_bdev_channel,
3147 : bio,
3148 : bdev_nvme_freeze_bdev_channel_done);
3149 15 : }
3150 :
3151 : static int
3152 32 : bdev_nvme_failover_ctrlr_unsafe(struct nvme_ctrlr *nvme_ctrlr, bool remove)
3153 : {
3154 32 : if (nvme_ctrlr->destruct) {
3155 : /* Don't bother resetting if the controller is in the process of being destructed. */
3156 2 : return -ENXIO;
3157 : }
3158 :
3159 30 : if (nvme_ctrlr->resetting) {
3160 3 : if (!nvme_ctrlr->in_failover) {
3161 3 : NVME_CTRLR_NOTICELOG(nvme_ctrlr,
3162 : "Reset is already in progress. Defer failover until reset completes.\n");
3163 :
3164 : /* Defer failover until reset completes. */
3165 3 : nvme_ctrlr->pending_failover = true;
3166 3 : return -EINPROGRESS;
3167 : } else {
3168 0 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Unable to perform failover, already in progress.\n");
3169 0 : return -EBUSY;
3170 : }
3171 : }
3172 :
3173 27 : bdev_nvme_failover_trid(nvme_ctrlr, remove, true);
3174 :
3175 27 : if (nvme_ctrlr->reconnect_is_delayed) {
3176 1 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Reconnect is already scheduled.\n");
3177 :
3178 : /* We rely on the next reconnect for the failover. */
3179 1 : return -EALREADY;
3180 : }
3181 :
3182 26 : if (nvme_ctrlr->disabled) {
3183 0 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Controller is disabled.\n");
3184 :
3185 : /* We rely on the enablement for the failover. */
3186 0 : return -EALREADY;
3187 : }
3188 :
3189 26 : nvme_ctrlr->resetting = true;
3190 26 : nvme_ctrlr->in_failover = true;
3191 :
3192 26 : assert(nvme_ctrlr->reset_start_tsc == 0);
3193 26 : nvme_ctrlr->reset_start_tsc = spdk_get_ticks();
3194 :
3195 26 : return 0;
3196 : }
3197 :
3198 : static int
3199 30 : bdev_nvme_failover_ctrlr(struct nvme_ctrlr *nvme_ctrlr)
3200 : {
3201 : int rc;
3202 :
3203 30 : pthread_mutex_lock(&nvme_ctrlr->mutex);
3204 30 : rc = bdev_nvme_failover_ctrlr_unsafe(nvme_ctrlr, false);
3205 30 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
3206 :
3207 30 : if (rc == 0) {
3208 25 : spdk_thread_send_msg(nvme_ctrlr->thread, _bdev_nvme_reset_ctrlr, nvme_ctrlr);
3209 5 : } else if (rc == -EALREADY) {
3210 0 : rc = 0;
3211 : }
3212 :
3213 30 : return rc;
3214 : }
3215 :
3216 : static int bdev_nvme_unmap(struct nvme_bdev_io *bio, uint64_t offset_blocks,
3217 : uint64_t num_blocks);
3218 :
3219 : static int bdev_nvme_write_zeroes(struct nvme_bdev_io *bio, uint64_t offset_blocks,
3220 : uint64_t num_blocks);
3221 :
3222 : static int bdev_nvme_copy(struct nvme_bdev_io *bio, uint64_t dst_offset_blocks,
3223 : uint64_t src_offset_blocks,
3224 : uint64_t num_blocks);
3225 :
3226 : static void
3227 1 : bdev_nvme_get_buf_cb(struct spdk_io_channel *ch, struct spdk_bdev_io *bdev_io,
3228 : bool success)
3229 : {
3230 1 : struct nvme_bdev_io *bio = (struct nvme_bdev_io *)bdev_io->driver_ctx;
3231 : int ret;
3232 :
3233 1 : if (!success) {
3234 0 : ret = -EINVAL;
3235 0 : goto exit;
3236 : }
3237 :
3238 1 : if (spdk_unlikely(!nvme_io_path_is_available(bio->io_path))) {
3239 0 : ret = -ENXIO;
3240 0 : goto exit;
3241 : }
3242 :
3243 1 : ret = bdev_nvme_readv(bio,
3244 : bdev_io->u.bdev.iovs,
3245 : bdev_io->u.bdev.iovcnt,
3246 : bdev_io->u.bdev.md_buf,
3247 : bdev_io->u.bdev.num_blocks,
3248 : bdev_io->u.bdev.offset_blocks,
3249 : bdev_io->u.bdev.dif_check_flags,
3250 : bdev_io->u.bdev.memory_domain,
3251 : bdev_io->u.bdev.memory_domain_ctx,
3252 : bdev_io->u.bdev.accel_sequence);
3253 :
3254 1 : exit:
3255 1 : if (spdk_unlikely(ret != 0)) {
3256 0 : bdev_nvme_io_complete(bio, ret);
3257 : }
3258 1 : }
3259 :
3260 : static inline void
3261 59 : _bdev_nvme_submit_request(struct nvme_bdev_channel *nbdev_ch, struct spdk_bdev_io *bdev_io)
3262 : {
3263 59 : struct nvme_bdev_io *nbdev_io = (struct nvme_bdev_io *)bdev_io->driver_ctx;
3264 59 : struct spdk_bdev *bdev = bdev_io->bdev;
3265 : struct nvme_bdev_io *nbdev_io_to_abort;
3266 59 : int rc = 0;
3267 :
3268 59 : switch (bdev_io->type) {
3269 3 : case SPDK_BDEV_IO_TYPE_READ:
3270 3 : if (bdev_io->u.bdev.iovs && bdev_io->u.bdev.iovs[0].iov_base) {
3271 :
3272 2 : rc = bdev_nvme_readv(nbdev_io,
3273 : bdev_io->u.bdev.iovs,
3274 : bdev_io->u.bdev.iovcnt,
3275 : bdev_io->u.bdev.md_buf,
3276 : bdev_io->u.bdev.num_blocks,
3277 : bdev_io->u.bdev.offset_blocks,
3278 : bdev_io->u.bdev.dif_check_flags,
3279 : bdev_io->u.bdev.memory_domain,
3280 : bdev_io->u.bdev.memory_domain_ctx,
3281 : bdev_io->u.bdev.accel_sequence);
3282 : } else {
3283 1 : spdk_bdev_io_get_buf(bdev_io, bdev_nvme_get_buf_cb,
3284 1 : bdev_io->u.bdev.num_blocks * bdev->blocklen);
3285 1 : rc = 0;
3286 : }
3287 3 : break;
3288 25 : case SPDK_BDEV_IO_TYPE_WRITE:
3289 25 : rc = bdev_nvme_writev(nbdev_io,
3290 : bdev_io->u.bdev.iovs,
3291 : bdev_io->u.bdev.iovcnt,
3292 : bdev_io->u.bdev.md_buf,
3293 : bdev_io->u.bdev.num_blocks,
3294 : bdev_io->u.bdev.offset_blocks,
3295 : bdev_io->u.bdev.dif_check_flags,
3296 : bdev_io->u.bdev.memory_domain,
3297 : bdev_io->u.bdev.memory_domain_ctx,
3298 : bdev_io->u.bdev.accel_sequence,
3299 : bdev_io->u.bdev.nvme_cdw12,
3300 : bdev_io->u.bdev.nvme_cdw13);
3301 25 : break;
3302 1 : case SPDK_BDEV_IO_TYPE_COMPARE:
3303 1 : rc = bdev_nvme_comparev(nbdev_io,
3304 : bdev_io->u.bdev.iovs,
3305 : bdev_io->u.bdev.iovcnt,
3306 : bdev_io->u.bdev.md_buf,
3307 : bdev_io->u.bdev.num_blocks,
3308 : bdev_io->u.bdev.offset_blocks,
3309 : bdev_io->u.bdev.dif_check_flags);
3310 1 : break;
3311 2 : case SPDK_BDEV_IO_TYPE_COMPARE_AND_WRITE:
3312 2 : rc = bdev_nvme_comparev_and_writev(nbdev_io,
3313 : bdev_io->u.bdev.iovs,
3314 : bdev_io->u.bdev.iovcnt,
3315 : bdev_io->u.bdev.fused_iovs,
3316 : bdev_io->u.bdev.fused_iovcnt,
3317 : bdev_io->u.bdev.md_buf,
3318 : bdev_io->u.bdev.num_blocks,
3319 : bdev_io->u.bdev.offset_blocks,
3320 : bdev_io->u.bdev.dif_check_flags);
3321 2 : break;
3322 1 : case SPDK_BDEV_IO_TYPE_UNMAP:
3323 1 : rc = bdev_nvme_unmap(nbdev_io,
3324 : bdev_io->u.bdev.offset_blocks,
3325 : bdev_io->u.bdev.num_blocks);
3326 1 : break;
3327 0 : case SPDK_BDEV_IO_TYPE_WRITE_ZEROES:
3328 0 : rc = bdev_nvme_write_zeroes(nbdev_io,
3329 : bdev_io->u.bdev.offset_blocks,
3330 : bdev_io->u.bdev.num_blocks);
3331 0 : break;
3332 15 : case SPDK_BDEV_IO_TYPE_RESET:
3333 15 : nbdev_io->io_path = NULL;
3334 15 : bdev_nvme_reset_io(bdev->ctxt, nbdev_io);
3335 15 : return;
3336 :
3337 1 : case SPDK_BDEV_IO_TYPE_FLUSH:
3338 1 : bdev_nvme_io_complete(nbdev_io, 0);
3339 1 : return;
3340 :
3341 0 : case SPDK_BDEV_IO_TYPE_ZONE_APPEND:
3342 0 : rc = bdev_nvme_zone_appendv(nbdev_io,
3343 : bdev_io->u.bdev.iovs,
3344 : bdev_io->u.bdev.iovcnt,
3345 : bdev_io->u.bdev.md_buf,
3346 : bdev_io->u.bdev.num_blocks,
3347 : bdev_io->u.bdev.offset_blocks,
3348 : bdev_io->u.bdev.dif_check_flags);
3349 0 : break;
3350 0 : case SPDK_BDEV_IO_TYPE_GET_ZONE_INFO:
3351 0 : rc = bdev_nvme_get_zone_info(nbdev_io,
3352 : bdev_io->u.zone_mgmt.zone_id,
3353 : bdev_io->u.zone_mgmt.num_zones,
3354 0 : bdev_io->u.zone_mgmt.buf);
3355 0 : break;
3356 0 : case SPDK_BDEV_IO_TYPE_ZONE_MANAGEMENT:
3357 0 : rc = bdev_nvme_zone_management(nbdev_io,
3358 : bdev_io->u.zone_mgmt.zone_id,
3359 : bdev_io->u.zone_mgmt.zone_action);
3360 0 : break;
3361 5 : case SPDK_BDEV_IO_TYPE_NVME_ADMIN:
3362 5 : nbdev_io->io_path = NULL;
3363 5 : bdev_nvme_admin_passthru(nbdev_ch,
3364 : nbdev_io,
3365 : &bdev_io->u.nvme_passthru.cmd,
3366 : bdev_io->u.nvme_passthru.buf,
3367 : bdev_io->u.nvme_passthru.nbytes);
3368 5 : return;
3369 :
3370 0 : case SPDK_BDEV_IO_TYPE_NVME_IO:
3371 0 : rc = bdev_nvme_io_passthru(nbdev_io,
3372 : &bdev_io->u.nvme_passthru.cmd,
3373 : bdev_io->u.nvme_passthru.buf,
3374 : bdev_io->u.nvme_passthru.nbytes);
3375 0 : break;
3376 0 : case SPDK_BDEV_IO_TYPE_NVME_IO_MD:
3377 0 : rc = bdev_nvme_io_passthru_md(nbdev_io,
3378 : &bdev_io->u.nvme_passthru.cmd,
3379 : bdev_io->u.nvme_passthru.buf,
3380 : bdev_io->u.nvme_passthru.nbytes,
3381 : bdev_io->u.nvme_passthru.md_buf,
3382 : bdev_io->u.nvme_passthru.md_len);
3383 0 : break;
3384 0 : case SPDK_BDEV_IO_TYPE_NVME_IOV_MD:
3385 0 : rc = bdev_nvme_iov_passthru_md(nbdev_io,
3386 : &bdev_io->u.nvme_passthru.cmd,
3387 : bdev_io->u.nvme_passthru.iovs,
3388 : bdev_io->u.nvme_passthru.iovcnt,
3389 : bdev_io->u.nvme_passthru.nbytes,
3390 : bdev_io->u.nvme_passthru.md_buf,
3391 : bdev_io->u.nvme_passthru.md_len);
3392 0 : break;
3393 6 : case SPDK_BDEV_IO_TYPE_ABORT:
3394 6 : nbdev_io->io_path = NULL;
3395 6 : nbdev_io_to_abort = (struct nvme_bdev_io *)bdev_io->u.abort.bio_to_abort->driver_ctx;
3396 6 : bdev_nvme_abort(nbdev_ch,
3397 : nbdev_io,
3398 : nbdev_io_to_abort);
3399 6 : return;
3400 :
3401 0 : case SPDK_BDEV_IO_TYPE_COPY:
3402 0 : rc = bdev_nvme_copy(nbdev_io,
3403 : bdev_io->u.bdev.offset_blocks,
3404 : bdev_io->u.bdev.copy.src_offset_blocks,
3405 : bdev_io->u.bdev.num_blocks);
3406 0 : break;
3407 0 : default:
3408 0 : rc = -EINVAL;
3409 0 : break;
3410 : }
3411 :
3412 32 : if (spdk_unlikely(rc != 0)) {
3413 0 : bdev_nvme_io_complete(nbdev_io, rc);
3414 : }
3415 : }
3416 :
3417 : static void
3418 68 : bdev_nvme_submit_request(struct spdk_io_channel *ch, struct spdk_bdev_io *bdev_io)
3419 : {
3420 68 : struct nvme_bdev_channel *nbdev_ch = spdk_io_channel_get_ctx(ch);
3421 68 : struct nvme_bdev_io *nbdev_io = (struct nvme_bdev_io *)bdev_io->driver_ctx;
3422 :
3423 68 : if (spdk_likely(nbdev_io->submit_tsc == 0)) {
3424 68 : nbdev_io->submit_tsc = spdk_bdev_io_get_submit_tsc(bdev_io);
3425 : } else {
3426 : /* There are cases where submit_tsc != 0, i.e. retry I/O.
3427 : * We need to update submit_tsc here.
3428 : */
3429 0 : nbdev_io->submit_tsc = spdk_get_ticks();
3430 : }
3431 :
3432 68 : spdk_trace_record(TRACE_BDEV_NVME_IO_START, 0, 0, (uintptr_t)nbdev_io, (uintptr_t)bdev_io);
3433 68 : nbdev_io->io_path = bdev_nvme_find_io_path(nbdev_ch);
3434 68 : if (spdk_unlikely(!nbdev_io->io_path)) {
3435 13 : if (!bdev_nvme_io_type_is_admin(bdev_io->type)) {
3436 12 : bdev_nvme_io_complete(nbdev_io, -ENXIO);
3437 12 : return;
3438 : }
3439 :
3440 : /* Admin commands do not use the optimal I/O path.
3441 : * Simply fall through even if it is not found.
3442 : */
3443 : }
3444 :
3445 56 : _bdev_nvme_submit_request(nbdev_ch, bdev_io);
3446 : }
3447 :
3448 : static bool
3449 0 : bdev_nvme_is_supported_csi(enum spdk_nvme_csi csi)
3450 : {
3451 0 : switch (csi) {
3452 0 : case SPDK_NVME_CSI_NVM:
3453 0 : return true;
3454 0 : case SPDK_NVME_CSI_ZNS:
3455 0 : return true;
3456 0 : default:
3457 0 : return false;
3458 : }
3459 : }
3460 :
3461 : static bool
3462 0 : bdev_nvme_io_type_supported(void *ctx, enum spdk_bdev_io_type io_type)
3463 : {
3464 0 : struct nvme_bdev *nbdev = ctx;
3465 : struct nvme_ns *nvme_ns;
3466 : struct spdk_nvme_ns *ns;
3467 : struct spdk_nvme_ctrlr *ctrlr;
3468 : const struct spdk_nvme_ctrlr_data *cdata;
3469 :
3470 0 : nvme_ns = TAILQ_FIRST(&nbdev->nvme_ns_list);
3471 0 : assert(nvme_ns != NULL);
3472 0 : ns = nvme_ns->ns;
3473 0 : if (ns == NULL) {
3474 0 : return false;
3475 : }
3476 :
3477 0 : if (!bdev_nvme_is_supported_csi(spdk_nvme_ns_get_csi(ns))) {
3478 0 : switch (io_type) {
3479 0 : case SPDK_BDEV_IO_TYPE_NVME_ADMIN:
3480 : case SPDK_BDEV_IO_TYPE_NVME_IO:
3481 0 : return true;
3482 :
3483 0 : case SPDK_BDEV_IO_TYPE_NVME_IO_MD:
3484 0 : return spdk_nvme_ns_get_md_size(ns) ? true : false;
3485 :
3486 0 : default:
3487 0 : return false;
3488 : }
3489 : }
3490 :
3491 0 : ctrlr = spdk_nvme_ns_get_ctrlr(ns);
3492 :
3493 0 : switch (io_type) {
3494 0 : case SPDK_BDEV_IO_TYPE_READ:
3495 : case SPDK_BDEV_IO_TYPE_WRITE:
3496 : case SPDK_BDEV_IO_TYPE_RESET:
3497 : case SPDK_BDEV_IO_TYPE_FLUSH:
3498 : case SPDK_BDEV_IO_TYPE_NVME_ADMIN:
3499 : case SPDK_BDEV_IO_TYPE_NVME_IO:
3500 : case SPDK_BDEV_IO_TYPE_ABORT:
3501 0 : return true;
3502 :
3503 0 : case SPDK_BDEV_IO_TYPE_COMPARE:
3504 0 : return spdk_nvme_ns_supports_compare(ns);
3505 :
3506 0 : case SPDK_BDEV_IO_TYPE_NVME_IO_MD:
3507 0 : return spdk_nvme_ns_get_md_size(ns) ? true : false;
3508 :
3509 0 : case SPDK_BDEV_IO_TYPE_UNMAP:
3510 0 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
3511 0 : return cdata->oncs.dsm;
3512 :
3513 0 : case SPDK_BDEV_IO_TYPE_WRITE_ZEROES:
3514 0 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
3515 0 : return cdata->oncs.write_zeroes;
3516 :
3517 0 : case SPDK_BDEV_IO_TYPE_COMPARE_AND_WRITE:
3518 0 : if (spdk_nvme_ctrlr_get_flags(ctrlr) &
3519 : SPDK_NVME_CTRLR_COMPARE_AND_WRITE_SUPPORTED) {
3520 0 : return true;
3521 : }
3522 0 : return false;
3523 :
3524 0 : case SPDK_BDEV_IO_TYPE_GET_ZONE_INFO:
3525 : case SPDK_BDEV_IO_TYPE_ZONE_MANAGEMENT:
3526 0 : return spdk_nvme_ns_get_csi(ns) == SPDK_NVME_CSI_ZNS;
3527 :
3528 0 : case SPDK_BDEV_IO_TYPE_ZONE_APPEND:
3529 0 : return spdk_nvme_ns_get_csi(ns) == SPDK_NVME_CSI_ZNS &&
3530 0 : spdk_nvme_ctrlr_get_flags(ctrlr) & SPDK_NVME_CTRLR_ZONE_APPEND_SUPPORTED;
3531 :
3532 0 : case SPDK_BDEV_IO_TYPE_COPY:
3533 0 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
3534 0 : return cdata->oncs.copy;
3535 :
3536 0 : default:
3537 0 : return false;
3538 : }
3539 : }
3540 :
3541 : static int
3542 61 : nvme_qpair_create(struct nvme_ctrlr *nvme_ctrlr, struct nvme_ctrlr_channel *ctrlr_ch)
3543 : {
3544 : struct nvme_qpair *nvme_qpair;
3545 : struct spdk_io_channel *pg_ch;
3546 : int rc;
3547 :
3548 61 : nvme_qpair = calloc(1, sizeof(*nvme_qpair));
3549 61 : if (!nvme_qpair) {
3550 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to alloc nvme_qpair.\n");
3551 0 : return -1;
3552 : }
3553 :
3554 61 : TAILQ_INIT(&nvme_qpair->io_path_list);
3555 :
3556 61 : nvme_qpair->ctrlr = nvme_ctrlr;
3557 61 : nvme_qpair->ctrlr_ch = ctrlr_ch;
3558 :
3559 61 : pg_ch = spdk_get_io_channel(&g_nvme_bdev_ctrlrs);
3560 61 : if (!pg_ch) {
3561 0 : free(nvme_qpair);
3562 0 : return -1;
3563 : }
3564 :
3565 61 : nvme_qpair->group = spdk_io_channel_get_ctx(pg_ch);
3566 :
3567 : #ifdef SPDK_CONFIG_VTUNE
3568 : nvme_qpair->group->collect_spin_stat = true;
3569 : #else
3570 61 : nvme_qpair->group->collect_spin_stat = false;
3571 : #endif
3572 :
3573 61 : if (!nvme_ctrlr->disabled) {
3574 : /* If a nvme_ctrlr is disabled, don't try to create qpair for it. Qpair will
3575 : * be created when it's enabled.
3576 : */
3577 61 : rc = bdev_nvme_create_qpair(nvme_qpair);
3578 61 : if (rc != 0) {
3579 : /* nvme_ctrlr can't create IO qpair if connection is down.
3580 : * If reconnect_delay_sec is non-zero, creating IO qpair is retried
3581 : * after reconnect_delay_sec seconds. If bdev_retry_count is non-zero,
3582 : * submitted IO will be queued until IO qpair is successfully created.
3583 : *
3584 : * Hence, if both are satisfied, ignore the failure.
3585 : */
3586 0 : if (nvme_ctrlr->opts.reconnect_delay_sec == 0 || g_opts.bdev_retry_count == 0) {
3587 0 : spdk_put_io_channel(pg_ch);
3588 0 : free(nvme_qpair);
3589 0 : return rc;
3590 : }
3591 : }
3592 : }
3593 :
3594 61 : TAILQ_INSERT_TAIL(&nvme_qpair->group->qpair_list, nvme_qpair, tailq);
3595 :
3596 61 : ctrlr_ch->qpair = nvme_qpair;
3597 :
3598 61 : nvme_ctrlr_get_ref(nvme_ctrlr);
3599 :
3600 61 : return 0;
3601 : }
3602 :
3603 : static int
3604 61 : bdev_nvme_create_ctrlr_channel_cb(void *io_device, void *ctx_buf)
3605 : {
3606 61 : struct nvme_ctrlr *nvme_ctrlr = io_device;
3607 61 : struct nvme_ctrlr_channel *ctrlr_ch = ctx_buf;
3608 :
3609 61 : return nvme_qpair_create(nvme_ctrlr, ctrlr_ch);
3610 : }
3611 :
3612 : static void
3613 61 : nvme_qpair_delete(struct nvme_qpair *nvme_qpair)
3614 : {
3615 : struct nvme_io_path *io_path, *next;
3616 :
3617 61 : assert(nvme_qpair->group != NULL);
3618 :
3619 100 : TAILQ_FOREACH_SAFE(io_path, &nvme_qpair->io_path_list, tailq, next) {
3620 39 : TAILQ_REMOVE(&nvme_qpair->io_path_list, io_path, tailq);
3621 39 : nvme_io_path_free(io_path);
3622 : }
3623 :
3624 61 : TAILQ_REMOVE(&nvme_qpair->group->qpair_list, nvme_qpair, tailq);
3625 :
3626 61 : spdk_put_io_channel(spdk_io_channel_from_ctx(nvme_qpair->group));
3627 :
3628 61 : nvme_ctrlr_put_ref(nvme_qpair->ctrlr);
3629 :
3630 61 : free(nvme_qpair);
3631 61 : }
3632 :
3633 : static void
3634 61 : bdev_nvme_destroy_ctrlr_channel_cb(void *io_device, void *ctx_buf)
3635 : {
3636 61 : struct nvme_ctrlr_channel *ctrlr_ch = ctx_buf;
3637 : struct nvme_qpair *nvme_qpair;
3638 :
3639 61 : nvme_qpair = ctrlr_ch->qpair;
3640 61 : assert(nvme_qpair != NULL);
3641 :
3642 61 : _bdev_nvme_clear_io_path_cache(nvme_qpair);
3643 :
3644 61 : if (nvme_qpair->qpair != NULL) {
3645 47 : if (ctrlr_ch->reset_iter == NULL) {
3646 47 : spdk_nvme_ctrlr_disconnect_io_qpair(nvme_qpair->qpair);
3647 : } else {
3648 : /* Skip current ctrlr_channel in a full reset sequence because
3649 : * it is being deleted now. The qpair is already being disconnected.
3650 : * We do not have to restart disconnecting it.
3651 : */
3652 0 : nvme_ctrlr_for_each_channel_continue(ctrlr_ch->reset_iter, 0);
3653 : }
3654 :
3655 : /* We cannot release a reference to the poll group now.
3656 : * The qpair may be disconnected asynchronously later.
3657 : * We need to poll it until it is actually disconnected.
3658 : * Just detach the qpair from the deleting ctrlr_channel.
3659 : */
3660 47 : nvme_qpair->ctrlr_ch = NULL;
3661 : } else {
3662 14 : assert(ctrlr_ch->reset_iter == NULL);
3663 :
3664 14 : nvme_qpair_delete(nvme_qpair);
3665 : }
3666 61 : }
3667 :
3668 : static inline struct spdk_io_channel *
3669 0 : bdev_nvme_get_accel_channel(struct nvme_poll_group *group)
3670 : {
3671 0 : if (spdk_unlikely(!group->accel_channel)) {
3672 0 : group->accel_channel = spdk_accel_get_io_channel();
3673 0 : if (!group->accel_channel) {
3674 0 : SPDK_ERRLOG("Cannot get the accel_channel for bdev nvme polling group=%p\n",
3675 : group);
3676 0 : return NULL;
3677 : }
3678 : }
3679 :
3680 0 : return group->accel_channel;
3681 : }
3682 :
3683 : static void
3684 0 : bdev_nvme_finish_sequence(void *seq, spdk_nvme_accel_completion_cb cb_fn, void *cb_arg)
3685 : {
3686 0 : spdk_accel_sequence_finish(seq, cb_fn, cb_arg);
3687 0 : }
3688 :
3689 : static void
3690 0 : bdev_nvme_abort_sequence(void *seq)
3691 : {
3692 0 : spdk_accel_sequence_abort(seq);
3693 0 : }
3694 :
3695 : static void
3696 0 : bdev_nvme_reverse_sequence(void *seq)
3697 : {
3698 0 : spdk_accel_sequence_reverse(seq);
3699 0 : }
3700 :
3701 : static int
3702 0 : bdev_nvme_append_crc32c(void *ctx, void **seq, uint32_t *dst, struct iovec *iovs, uint32_t iovcnt,
3703 : struct spdk_memory_domain *domain, void *domain_ctx, uint32_t seed,
3704 : spdk_nvme_accel_step_cb cb_fn, void *cb_arg)
3705 : {
3706 : struct spdk_io_channel *ch;
3707 0 : struct nvme_poll_group *group = ctx;
3708 :
3709 0 : ch = bdev_nvme_get_accel_channel(group);
3710 0 : if (spdk_unlikely(ch == NULL)) {
3711 0 : return -ENOMEM;
3712 : }
3713 :
3714 0 : return spdk_accel_append_crc32c((struct spdk_accel_sequence **)seq, ch, dst, iovs, iovcnt,
3715 : domain, domain_ctx, seed, cb_fn, cb_arg);
3716 : }
3717 :
3718 : static int
3719 0 : bdev_nvme_append_copy(void *ctx, void **seq, struct iovec *dst_iovs, uint32_t dst_iovcnt,
3720 : struct spdk_memory_domain *dst_domain, void *dst_domain_ctx,
3721 : struct iovec *src_iovs, uint32_t src_iovcnt,
3722 : struct spdk_memory_domain *src_domain, void *src_domain_ctx,
3723 : spdk_nvme_accel_step_cb cb_fn, void *cb_arg)
3724 : {
3725 : struct spdk_io_channel *ch;
3726 0 : struct nvme_poll_group *group = ctx;
3727 :
3728 0 : ch = bdev_nvme_get_accel_channel(group);
3729 0 : if (spdk_unlikely(ch == NULL)) {
3730 0 : return -ENOMEM;
3731 : }
3732 :
3733 0 : return spdk_accel_append_copy((struct spdk_accel_sequence **)seq, ch,
3734 : dst_iovs, dst_iovcnt, dst_domain, dst_domain_ctx,
3735 : src_iovs, src_iovcnt, src_domain, src_domain_ctx,
3736 : cb_fn, cb_arg);
3737 : }
3738 :
3739 : static struct spdk_nvme_accel_fn_table g_bdev_nvme_accel_fn_table = {
3740 : .table_size = sizeof(struct spdk_nvme_accel_fn_table),
3741 : .append_crc32c = bdev_nvme_append_crc32c,
3742 : .append_copy = bdev_nvme_append_copy,
3743 : .finish_sequence = bdev_nvme_finish_sequence,
3744 : .reverse_sequence = bdev_nvme_reverse_sequence,
3745 : .abort_sequence = bdev_nvme_abort_sequence,
3746 : };
3747 :
3748 : static int
3749 0 : bdev_nvme_interrupt_wrapper(void *ctx)
3750 : {
3751 : int num_events;
3752 0 : struct nvme_poll_group *group = ctx;
3753 :
3754 0 : num_events = spdk_nvme_poll_group_wait(group->group, bdev_nvme_disconnected_qpair_cb);
3755 0 : if (spdk_unlikely(num_events < 0)) {
3756 0 : bdev_nvme_check_io_qpairs(group);
3757 : }
3758 :
3759 0 : return num_events;
3760 : }
3761 :
3762 : static int
3763 46 : bdev_nvme_create_poll_group_cb(void *io_device, void *ctx_buf)
3764 : {
3765 46 : struct nvme_poll_group *group = ctx_buf;
3766 : uint64_t period;
3767 : int fd;
3768 :
3769 46 : TAILQ_INIT(&group->qpair_list);
3770 :
3771 46 : group->group = spdk_nvme_poll_group_create(group, &g_bdev_nvme_accel_fn_table);
3772 46 : if (group->group == NULL) {
3773 0 : return -1;
3774 : }
3775 :
3776 46 : period = spdk_interrupt_mode_is_enabled() ? 0 : g_opts.nvme_ioq_poll_period_us;
3777 46 : group->poller = SPDK_POLLER_REGISTER(bdev_nvme_poll, group, period);
3778 :
3779 46 : if (group->poller == NULL) {
3780 0 : spdk_nvme_poll_group_destroy(group->group);
3781 0 : return -1;
3782 : }
3783 :
3784 46 : if (spdk_interrupt_mode_is_enabled()) {
3785 0 : spdk_poller_register_interrupt(group->poller, NULL, NULL);
3786 :
3787 0 : fd = spdk_nvme_poll_group_get_fd(group->group);
3788 0 : if (fd < 0) {
3789 0 : spdk_nvme_poll_group_destroy(group->group);
3790 0 : return -1;
3791 : }
3792 :
3793 0 : group->intr = SPDK_INTERRUPT_REGISTER(fd, bdev_nvme_interrupt_wrapper, group);
3794 0 : if (!group->intr) {
3795 0 : spdk_nvme_poll_group_destroy(group->group);
3796 0 : return -1;
3797 : }
3798 : }
3799 :
3800 46 : return 0;
3801 : }
3802 :
3803 : static void
3804 46 : bdev_nvme_destroy_poll_group_cb(void *io_device, void *ctx_buf)
3805 : {
3806 46 : struct nvme_poll_group *group = ctx_buf;
3807 :
3808 46 : assert(TAILQ_EMPTY(&group->qpair_list));
3809 :
3810 46 : if (group->accel_channel) {
3811 0 : spdk_put_io_channel(group->accel_channel);
3812 : }
3813 :
3814 46 : if (spdk_interrupt_mode_is_enabled()) {
3815 0 : spdk_interrupt_unregister(&group->intr);
3816 : }
3817 :
3818 46 : spdk_poller_unregister(&group->poller);
3819 46 : if (spdk_nvme_poll_group_destroy(group->group)) {
3820 0 : SPDK_ERRLOG("Unable to destroy a poll group for the NVMe bdev module.\n");
3821 0 : assert(false);
3822 : }
3823 46 : }
3824 :
3825 : static struct spdk_io_channel *
3826 0 : bdev_nvme_get_io_channel(void *ctx)
3827 : {
3828 0 : struct nvme_bdev *nvme_bdev = ctx;
3829 :
3830 0 : return spdk_get_io_channel(nvme_bdev);
3831 : }
3832 :
3833 : static void *
3834 0 : bdev_nvme_get_module_ctx(void *ctx)
3835 : {
3836 0 : struct nvme_bdev *nvme_bdev = ctx;
3837 : struct nvme_ns *nvme_ns;
3838 :
3839 0 : if (!nvme_bdev || nvme_bdev->disk.module != &nvme_if) {
3840 0 : return NULL;
3841 : }
3842 :
3843 0 : nvme_ns = TAILQ_FIRST(&nvme_bdev->nvme_ns_list);
3844 0 : if (!nvme_ns) {
3845 0 : return NULL;
3846 : }
3847 :
3848 0 : return nvme_ns->ns;
3849 : }
3850 :
3851 : static const char *
3852 0 : _nvme_ana_state_str(enum spdk_nvme_ana_state ana_state)
3853 : {
3854 0 : switch (ana_state) {
3855 0 : case SPDK_NVME_ANA_OPTIMIZED_STATE:
3856 0 : return "optimized";
3857 0 : case SPDK_NVME_ANA_NON_OPTIMIZED_STATE:
3858 0 : return "non_optimized";
3859 0 : case SPDK_NVME_ANA_INACCESSIBLE_STATE:
3860 0 : return "inaccessible";
3861 0 : case SPDK_NVME_ANA_PERSISTENT_LOSS_STATE:
3862 0 : return "persistent_loss";
3863 0 : case SPDK_NVME_ANA_CHANGE_STATE:
3864 0 : return "change";
3865 0 : default:
3866 0 : return NULL;
3867 : }
3868 : }
3869 :
3870 : static int
3871 8 : bdev_nvme_get_memory_domains(void *ctx, struct spdk_memory_domain **domains, int array_size)
3872 : {
3873 8 : struct spdk_memory_domain **_domains = NULL;
3874 8 : struct nvme_bdev *nbdev = ctx;
3875 : struct nvme_ns *nvme_ns;
3876 8 : int i = 0, _array_size = array_size;
3877 8 : int rc = 0;
3878 :
3879 22 : TAILQ_FOREACH(nvme_ns, &nbdev->nvme_ns_list, tailq) {
3880 14 : if (domains && array_size >= i) {
3881 11 : _domains = &domains[i];
3882 : } else {
3883 3 : _domains = NULL;
3884 : }
3885 14 : rc = spdk_nvme_ctrlr_get_memory_domains(nvme_ns->ctrlr->ctrlr, _domains, _array_size);
3886 14 : if (rc > 0) {
3887 13 : i += rc;
3888 13 : if (_array_size >= rc) {
3889 9 : _array_size -= rc;
3890 : } else {
3891 4 : _array_size = 0;
3892 : }
3893 1 : } else if (rc < 0) {
3894 0 : return rc;
3895 : }
3896 : }
3897 :
3898 8 : return i;
3899 : }
3900 :
3901 : static const char *
3902 0 : nvme_ctrlr_get_state_str(struct nvme_ctrlr *nvme_ctrlr)
3903 : {
3904 0 : if (nvme_ctrlr->destruct) {
3905 0 : return "deleting";
3906 0 : } else if (spdk_nvme_ctrlr_is_failed(nvme_ctrlr->ctrlr)) {
3907 0 : return "failed";
3908 0 : } else if (nvme_ctrlr->resetting) {
3909 0 : return "resetting";
3910 0 : } else if (nvme_ctrlr->reconnect_is_delayed > 0) {
3911 0 : return "reconnect_is_delayed";
3912 0 : } else if (nvme_ctrlr->disabled) {
3913 0 : return "disabled";
3914 : } else {
3915 0 : return "enabled";
3916 : }
3917 : }
3918 :
3919 : void
3920 0 : nvme_ctrlr_info_json(struct spdk_json_write_ctx *w, struct nvme_ctrlr *nvme_ctrlr)
3921 0 : {
3922 : struct spdk_nvme_transport_id *trid;
3923 : const struct spdk_nvme_ctrlr_opts *opts;
3924 : const struct spdk_nvme_ctrlr_data *cdata;
3925 : struct nvme_path_id *path_id;
3926 : int32_t numa_id;
3927 :
3928 0 : spdk_json_write_object_begin(w);
3929 :
3930 0 : spdk_json_write_named_string(w, "state", nvme_ctrlr_get_state_str(nvme_ctrlr));
3931 :
3932 : #ifdef SPDK_CONFIG_NVME_CUSE
3933 0 : size_t cuse_name_size = 128;
3934 0 : char cuse_name[cuse_name_size];
3935 :
3936 0 : int rc = spdk_nvme_cuse_get_ctrlr_name(nvme_ctrlr->ctrlr, cuse_name, &cuse_name_size);
3937 0 : if (rc == 0) {
3938 0 : spdk_json_write_named_string(w, "cuse_device", cuse_name);
3939 : }
3940 : #endif
3941 0 : trid = &nvme_ctrlr->active_path_id->trid;
3942 0 : spdk_json_write_named_object_begin(w, "trid");
3943 0 : nvme_bdev_dump_trid_json(trid, w);
3944 0 : spdk_json_write_object_end(w);
3945 :
3946 0 : path_id = TAILQ_NEXT(nvme_ctrlr->active_path_id, link);
3947 0 : if (path_id != NULL) {
3948 0 : spdk_json_write_named_array_begin(w, "alternate_trids");
3949 : do {
3950 0 : trid = &path_id->trid;
3951 0 : spdk_json_write_object_begin(w);
3952 0 : nvme_bdev_dump_trid_json(trid, w);
3953 0 : spdk_json_write_object_end(w);
3954 :
3955 0 : path_id = TAILQ_NEXT(path_id, link);
3956 0 : } while (path_id != NULL);
3957 0 : spdk_json_write_array_end(w);
3958 : }
3959 :
3960 0 : cdata = spdk_nvme_ctrlr_get_data(nvme_ctrlr->ctrlr);
3961 0 : spdk_json_write_named_uint16(w, "cntlid", cdata->cntlid);
3962 :
3963 0 : opts = spdk_nvme_ctrlr_get_opts(nvme_ctrlr->ctrlr);
3964 0 : spdk_json_write_named_object_begin(w, "host");
3965 0 : spdk_json_write_named_string(w, "nqn", opts->hostnqn);
3966 0 : spdk_json_write_named_string(w, "addr", opts->src_addr);
3967 0 : spdk_json_write_named_string(w, "svcid", opts->src_svcid);
3968 0 : spdk_json_write_object_end(w);
3969 :
3970 0 : numa_id = spdk_nvme_ctrlr_get_numa_id(nvme_ctrlr->ctrlr);
3971 0 : if (numa_id != SPDK_ENV_NUMA_ID_ANY) {
3972 0 : spdk_json_write_named_uint32(w, "numa_id", numa_id);
3973 : }
3974 0 : spdk_json_write_object_end(w);
3975 0 : }
3976 :
3977 : static void
3978 0 : nvme_namespace_info_json(struct spdk_json_write_ctx *w,
3979 : struct nvme_ns *nvme_ns)
3980 0 : {
3981 : struct spdk_nvme_ns *ns;
3982 : struct spdk_nvme_ctrlr *ctrlr;
3983 : const struct spdk_nvme_ctrlr_data *cdata;
3984 : const struct spdk_nvme_transport_id *trid;
3985 : union spdk_nvme_vs_register vs;
3986 : const struct spdk_nvme_ns_data *nsdata;
3987 0 : char buf[128];
3988 :
3989 0 : ns = nvme_ns->ns;
3990 0 : if (ns == NULL) {
3991 0 : return;
3992 : }
3993 :
3994 0 : ctrlr = spdk_nvme_ns_get_ctrlr(ns);
3995 :
3996 0 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
3997 0 : trid = spdk_nvme_ctrlr_get_transport_id(ctrlr);
3998 0 : vs = spdk_nvme_ctrlr_get_regs_vs(ctrlr);
3999 :
4000 0 : spdk_json_write_object_begin(w);
4001 :
4002 0 : if (trid->trtype == SPDK_NVME_TRANSPORT_PCIE) {
4003 0 : spdk_json_write_named_string(w, "pci_address", trid->traddr);
4004 : }
4005 :
4006 0 : spdk_json_write_named_object_begin(w, "trid");
4007 :
4008 0 : nvme_bdev_dump_trid_json(trid, w);
4009 :
4010 0 : spdk_json_write_object_end(w);
4011 :
4012 : #ifdef SPDK_CONFIG_NVME_CUSE
4013 0 : size_t cuse_name_size = 128;
4014 0 : char cuse_name[cuse_name_size];
4015 :
4016 0 : int rc = spdk_nvme_cuse_get_ns_name(ctrlr, spdk_nvme_ns_get_id(ns),
4017 : cuse_name, &cuse_name_size);
4018 0 : if (rc == 0) {
4019 0 : spdk_json_write_named_string(w, "cuse_device", cuse_name);
4020 : }
4021 : #endif
4022 :
4023 0 : spdk_json_write_named_object_begin(w, "ctrlr_data");
4024 :
4025 0 : spdk_json_write_named_uint16(w, "cntlid", cdata->cntlid);
4026 :
4027 0 : spdk_json_write_named_string_fmt(w, "vendor_id", "0x%04x", cdata->vid);
4028 :
4029 0 : snprintf(buf, sizeof(cdata->mn) + 1, "%s", cdata->mn);
4030 0 : spdk_str_trim(buf);
4031 0 : spdk_json_write_named_string(w, "model_number", buf);
4032 :
4033 0 : snprintf(buf, sizeof(cdata->sn) + 1, "%s", cdata->sn);
4034 0 : spdk_str_trim(buf);
4035 0 : spdk_json_write_named_string(w, "serial_number", buf);
4036 :
4037 0 : snprintf(buf, sizeof(cdata->fr) + 1, "%s", cdata->fr);
4038 0 : spdk_str_trim(buf);
4039 0 : spdk_json_write_named_string(w, "firmware_revision", buf);
4040 :
4041 0 : if (cdata->subnqn[0] != '\0') {
4042 0 : spdk_json_write_named_string(w, "subnqn", cdata->subnqn);
4043 : }
4044 :
4045 0 : spdk_json_write_named_object_begin(w, "oacs");
4046 :
4047 0 : spdk_json_write_named_uint32(w, "security", cdata->oacs.security);
4048 0 : spdk_json_write_named_uint32(w, "format", cdata->oacs.format);
4049 0 : spdk_json_write_named_uint32(w, "firmware", cdata->oacs.firmware);
4050 0 : spdk_json_write_named_uint32(w, "ns_manage", cdata->oacs.ns_manage);
4051 :
4052 0 : spdk_json_write_object_end(w);
4053 :
4054 0 : spdk_json_write_named_bool(w, "multi_ctrlr", cdata->cmic.multi_ctrlr);
4055 0 : spdk_json_write_named_bool(w, "ana_reporting", cdata->cmic.ana_reporting);
4056 :
4057 0 : spdk_json_write_object_end(w);
4058 :
4059 0 : spdk_json_write_named_object_begin(w, "vs");
4060 :
4061 0 : spdk_json_write_name(w, "nvme_version");
4062 0 : if (vs.bits.ter) {
4063 0 : spdk_json_write_string_fmt(w, "%u.%u.%u", vs.bits.mjr, vs.bits.mnr, vs.bits.ter);
4064 : } else {
4065 0 : spdk_json_write_string_fmt(w, "%u.%u", vs.bits.mjr, vs.bits.mnr);
4066 : }
4067 :
4068 0 : spdk_json_write_object_end(w);
4069 :
4070 0 : nsdata = spdk_nvme_ns_get_data(ns);
4071 :
4072 0 : spdk_json_write_named_object_begin(w, "ns_data");
4073 :
4074 0 : spdk_json_write_named_uint32(w, "id", spdk_nvme_ns_get_id(ns));
4075 :
4076 0 : if (cdata->cmic.ana_reporting) {
4077 0 : spdk_json_write_named_string(w, "ana_state",
4078 : _nvme_ana_state_str(nvme_ns->ana_state));
4079 : }
4080 :
4081 0 : spdk_json_write_named_bool(w, "can_share", nsdata->nmic.can_share);
4082 :
4083 0 : spdk_json_write_object_end(w);
4084 :
4085 0 : if (cdata->oacs.security) {
4086 0 : spdk_json_write_named_object_begin(w, "security");
4087 :
4088 0 : spdk_json_write_named_bool(w, "opal", nvme_ns->bdev->opal);
4089 :
4090 0 : spdk_json_write_object_end(w);
4091 : }
4092 :
4093 0 : spdk_json_write_object_end(w);
4094 : }
4095 :
4096 : static const char *
4097 0 : nvme_bdev_get_mp_policy_str(struct nvme_bdev *nbdev)
4098 : {
4099 0 : switch (nbdev->mp_policy) {
4100 0 : case BDEV_NVME_MP_POLICY_ACTIVE_PASSIVE:
4101 0 : return "active_passive";
4102 0 : case BDEV_NVME_MP_POLICY_ACTIVE_ACTIVE:
4103 0 : return "active_active";
4104 0 : default:
4105 0 : assert(false);
4106 : return "invalid";
4107 : }
4108 : }
4109 :
4110 : static const char *
4111 0 : nvme_bdev_get_mp_selector_str(struct nvme_bdev *nbdev)
4112 : {
4113 0 : switch (nbdev->mp_selector) {
4114 0 : case BDEV_NVME_MP_SELECTOR_ROUND_ROBIN:
4115 0 : return "round_robin";
4116 0 : case BDEV_NVME_MP_SELECTOR_QUEUE_DEPTH:
4117 0 : return "queue_depth";
4118 0 : default:
4119 0 : assert(false);
4120 : return "invalid";
4121 : }
4122 : }
4123 :
4124 : static int
4125 0 : bdev_nvme_dump_info_json(void *ctx, struct spdk_json_write_ctx *w)
4126 : {
4127 0 : struct nvme_bdev *nvme_bdev = ctx;
4128 : struct nvme_ns *nvme_ns;
4129 :
4130 0 : pthread_mutex_lock(&nvme_bdev->mutex);
4131 0 : spdk_json_write_named_array_begin(w, "nvme");
4132 0 : TAILQ_FOREACH(nvme_ns, &nvme_bdev->nvme_ns_list, tailq) {
4133 0 : nvme_namespace_info_json(w, nvme_ns);
4134 : }
4135 0 : spdk_json_write_array_end(w);
4136 0 : spdk_json_write_named_string(w, "mp_policy", nvme_bdev_get_mp_policy_str(nvme_bdev));
4137 0 : if (nvme_bdev->mp_policy == BDEV_NVME_MP_POLICY_ACTIVE_ACTIVE) {
4138 0 : spdk_json_write_named_string(w, "selector", nvme_bdev_get_mp_selector_str(nvme_bdev));
4139 0 : if (nvme_bdev->mp_selector == BDEV_NVME_MP_SELECTOR_ROUND_ROBIN) {
4140 0 : spdk_json_write_named_uint32(w, "rr_min_io", nvme_bdev->rr_min_io);
4141 : }
4142 : }
4143 0 : pthread_mutex_unlock(&nvme_bdev->mutex);
4144 :
4145 0 : return 0;
4146 : }
4147 :
4148 : static void
4149 0 : bdev_nvme_write_config_json(struct spdk_bdev *bdev, struct spdk_json_write_ctx *w)
4150 : {
4151 : /* No config per bdev needed */
4152 0 : }
4153 :
4154 : static uint64_t
4155 0 : bdev_nvme_get_spin_time(struct spdk_io_channel *ch)
4156 : {
4157 0 : struct nvme_bdev_channel *nbdev_ch = spdk_io_channel_get_ctx(ch);
4158 : struct nvme_io_path *io_path;
4159 : struct nvme_poll_group *group;
4160 0 : uint64_t spin_time = 0;
4161 :
4162 0 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
4163 0 : group = io_path->qpair->group;
4164 :
4165 0 : if (!group || !group->collect_spin_stat) {
4166 0 : continue;
4167 : }
4168 :
4169 0 : if (group->end_ticks != 0) {
4170 0 : group->spin_ticks += (group->end_ticks - group->start_ticks);
4171 0 : group->end_ticks = 0;
4172 : }
4173 :
4174 0 : spin_time += group->spin_ticks;
4175 0 : group->start_ticks = 0;
4176 0 : group->spin_ticks = 0;
4177 : }
4178 :
4179 0 : return (spin_time * 1000000ULL) / spdk_get_ticks_hz();
4180 : }
4181 :
4182 : static void
4183 0 : bdev_nvme_reset_device_stat(void *ctx)
4184 : {
4185 0 : struct nvme_bdev *nbdev = ctx;
4186 :
4187 0 : if (nbdev->err_stat != NULL) {
4188 0 : memset(nbdev->err_stat, 0, sizeof(struct nvme_error_stat));
4189 : }
4190 0 : }
4191 :
4192 : /* JSON string should be lowercases and underscore delimited string. */
4193 : static void
4194 0 : bdev_nvme_format_nvme_status(char *dst, const char *src)
4195 : {
4196 0 : char tmp[256];
4197 :
4198 0 : spdk_strcpy_replace(dst, 256, src, " - ", "_");
4199 0 : spdk_strcpy_replace(tmp, 256, dst, "-", "_");
4200 0 : spdk_strcpy_replace(dst, 256, tmp, " ", "_");
4201 0 : spdk_strlwr(dst);
4202 0 : }
4203 :
4204 : static void
4205 0 : bdev_nvme_dump_device_stat_json(void *ctx, struct spdk_json_write_ctx *w)
4206 : {
4207 0 : struct nvme_bdev *nbdev = ctx;
4208 0 : struct spdk_nvme_status status = {};
4209 : uint16_t sct, sc;
4210 0 : char status_json[256];
4211 : const char *status_str;
4212 :
4213 0 : if (nbdev->err_stat == NULL) {
4214 0 : return;
4215 : }
4216 :
4217 0 : spdk_json_write_named_object_begin(w, "nvme_error");
4218 :
4219 0 : spdk_json_write_named_object_begin(w, "status_type");
4220 0 : for (sct = 0; sct < 8; sct++) {
4221 0 : if (nbdev->err_stat->status_type[sct] == 0) {
4222 0 : continue;
4223 : }
4224 0 : status.sct = sct;
4225 :
4226 0 : status_str = spdk_nvme_cpl_get_status_type_string(&status);
4227 0 : assert(status_str != NULL);
4228 0 : bdev_nvme_format_nvme_status(status_json, status_str);
4229 :
4230 0 : spdk_json_write_named_uint32(w, status_json, nbdev->err_stat->status_type[sct]);
4231 : }
4232 0 : spdk_json_write_object_end(w);
4233 :
4234 0 : spdk_json_write_named_object_begin(w, "status_code");
4235 0 : for (sct = 0; sct < 4; sct++) {
4236 0 : status.sct = sct;
4237 0 : for (sc = 0; sc < 256; sc++) {
4238 0 : if (nbdev->err_stat->status[sct][sc] == 0) {
4239 0 : continue;
4240 : }
4241 0 : status.sc = sc;
4242 :
4243 0 : status_str = spdk_nvme_cpl_get_status_string(&status);
4244 0 : assert(status_str != NULL);
4245 0 : bdev_nvme_format_nvme_status(status_json, status_str);
4246 :
4247 0 : spdk_json_write_named_uint32(w, status_json, nbdev->err_stat->status[sct][sc]);
4248 : }
4249 : }
4250 0 : spdk_json_write_object_end(w);
4251 :
4252 0 : spdk_json_write_object_end(w);
4253 : }
4254 :
4255 : static bool
4256 0 : bdev_nvme_accel_sequence_supported(void *ctx, enum spdk_bdev_io_type type)
4257 : {
4258 0 : struct nvme_bdev *nbdev = ctx;
4259 : struct nvme_ns *nvme_ns;
4260 : struct spdk_nvme_ctrlr *ctrlr;
4261 :
4262 0 : if (!g_opts.allow_accel_sequence) {
4263 0 : return false;
4264 : }
4265 :
4266 0 : switch (type) {
4267 0 : case SPDK_BDEV_IO_TYPE_WRITE:
4268 : case SPDK_BDEV_IO_TYPE_READ:
4269 0 : break;
4270 0 : default:
4271 0 : return false;
4272 : }
4273 :
4274 0 : nvme_ns = TAILQ_FIRST(&nbdev->nvme_ns_list);
4275 0 : assert(nvme_ns != NULL);
4276 :
4277 0 : ctrlr = nvme_ns->ctrlr->ctrlr;
4278 0 : assert(ctrlr != NULL);
4279 :
4280 0 : return spdk_nvme_ctrlr_get_flags(ctrlr) & SPDK_NVME_CTRLR_ACCEL_SEQUENCE_SUPPORTED;
4281 : }
4282 :
4283 : static const struct spdk_bdev_fn_table nvmelib_fn_table = {
4284 : .destruct = bdev_nvme_destruct,
4285 : .submit_request = bdev_nvme_submit_request,
4286 : .io_type_supported = bdev_nvme_io_type_supported,
4287 : .get_io_channel = bdev_nvme_get_io_channel,
4288 : .dump_info_json = bdev_nvme_dump_info_json,
4289 : .write_config_json = bdev_nvme_write_config_json,
4290 : .get_spin_time = bdev_nvme_get_spin_time,
4291 : .get_module_ctx = bdev_nvme_get_module_ctx,
4292 : .get_memory_domains = bdev_nvme_get_memory_domains,
4293 : .accel_sequence_supported = bdev_nvme_accel_sequence_supported,
4294 : .reset_device_stat = bdev_nvme_reset_device_stat,
4295 : .dump_device_stat_json = bdev_nvme_dump_device_stat_json,
4296 : };
4297 :
4298 : typedef int (*bdev_nvme_parse_ana_log_page_cb)(
4299 : const struct spdk_nvme_ana_group_descriptor *desc, void *cb_arg);
4300 :
4301 : static int
4302 42 : bdev_nvme_parse_ana_log_page(struct nvme_ctrlr *nvme_ctrlr,
4303 : bdev_nvme_parse_ana_log_page_cb cb_fn, void *cb_arg)
4304 : {
4305 : struct spdk_nvme_ana_group_descriptor *copied_desc;
4306 : uint8_t *orig_desc;
4307 : uint32_t i, desc_size, copy_len;
4308 42 : int rc = 0;
4309 :
4310 42 : if (nvme_ctrlr->ana_log_page == NULL) {
4311 0 : return -EINVAL;
4312 : }
4313 :
4314 42 : copied_desc = nvme_ctrlr->copied_ana_desc;
4315 :
4316 42 : orig_desc = (uint8_t *)nvme_ctrlr->ana_log_page + sizeof(struct spdk_nvme_ana_page);
4317 42 : copy_len = nvme_ctrlr->max_ana_log_page_size - sizeof(struct spdk_nvme_ana_page);
4318 :
4319 72 : for (i = 0; i < nvme_ctrlr->ana_log_page->num_ana_group_desc; i++) {
4320 67 : memcpy(copied_desc, orig_desc, copy_len);
4321 :
4322 67 : rc = cb_fn(copied_desc, cb_arg);
4323 67 : if (rc != 0) {
4324 37 : break;
4325 : }
4326 :
4327 30 : desc_size = sizeof(struct spdk_nvme_ana_group_descriptor) +
4328 30 : copied_desc->num_of_nsid * sizeof(uint32_t);
4329 30 : orig_desc += desc_size;
4330 30 : copy_len -= desc_size;
4331 : }
4332 :
4333 42 : return rc;
4334 : }
4335 :
4336 : static int
4337 5 : nvme_ns_ana_transition_timedout(void *ctx)
4338 : {
4339 5 : struct nvme_ns *nvme_ns = ctx;
4340 :
4341 5 : spdk_poller_unregister(&nvme_ns->anatt_timer);
4342 5 : nvme_ns->ana_transition_timedout = true;
4343 :
4344 5 : return SPDK_POLLER_BUSY;
4345 : }
4346 :
4347 : static void
4348 46 : _nvme_ns_set_ana_state(struct nvme_ns *nvme_ns,
4349 : const struct spdk_nvme_ana_group_descriptor *desc)
4350 : {
4351 : const struct spdk_nvme_ctrlr_data *cdata;
4352 :
4353 46 : nvme_ns->ana_group_id = desc->ana_group_id;
4354 46 : nvme_ns->ana_state = desc->ana_state;
4355 46 : nvme_ns->ana_state_updating = false;
4356 :
4357 46 : switch (nvme_ns->ana_state) {
4358 39 : case SPDK_NVME_ANA_OPTIMIZED_STATE:
4359 : case SPDK_NVME_ANA_NON_OPTIMIZED_STATE:
4360 39 : nvme_ns->ana_transition_timedout = false;
4361 39 : spdk_poller_unregister(&nvme_ns->anatt_timer);
4362 39 : break;
4363 :
4364 6 : case SPDK_NVME_ANA_INACCESSIBLE_STATE:
4365 : case SPDK_NVME_ANA_CHANGE_STATE:
4366 6 : if (nvme_ns->anatt_timer != NULL) {
4367 1 : break;
4368 : }
4369 :
4370 5 : cdata = spdk_nvme_ctrlr_get_data(nvme_ns->ctrlr->ctrlr);
4371 5 : nvme_ns->anatt_timer = SPDK_POLLER_REGISTER(nvme_ns_ana_transition_timedout,
4372 : nvme_ns,
4373 : cdata->anatt * SPDK_SEC_TO_USEC);
4374 5 : break;
4375 1 : default:
4376 1 : break;
4377 : }
4378 46 : }
4379 :
4380 : static int
4381 60 : nvme_ns_set_ana_state(const struct spdk_nvme_ana_group_descriptor *desc, void *cb_arg)
4382 : {
4383 60 : struct nvme_ns *nvme_ns = cb_arg;
4384 : uint32_t i;
4385 :
4386 60 : assert(nvme_ns->ns != NULL);
4387 :
4388 82 : for (i = 0; i < desc->num_of_nsid; i++) {
4389 59 : if (desc->nsid[i] != spdk_nvme_ns_get_id(nvme_ns->ns)) {
4390 22 : continue;
4391 : }
4392 :
4393 37 : _nvme_ns_set_ana_state(nvme_ns, desc);
4394 37 : return 1;
4395 : }
4396 :
4397 23 : return 0;
4398 : }
4399 :
4400 : static int
4401 5 : nvme_generate_uuid(const char *sn, uint32_t nsid, struct spdk_uuid *uuid)
4402 : {
4403 5 : int rc = 0;
4404 5 : struct spdk_uuid new_uuid, namespace_uuid;
4405 5 : char merged_str[SPDK_NVME_CTRLR_SN_LEN + NSID_STR_LEN + 1] = {'\0'};
4406 : /* This namespace UUID was generated using uuid_generate() method. */
4407 5 : const char *namespace_str = {"edaed2de-24bc-4b07-b559-f47ecbe730fd"};
4408 : int size;
4409 :
4410 5 : assert(strlen(sn) <= SPDK_NVME_CTRLR_SN_LEN);
4411 :
4412 5 : spdk_uuid_set_null(&new_uuid);
4413 5 : spdk_uuid_set_null(&namespace_uuid);
4414 :
4415 5 : size = snprintf(merged_str, sizeof(merged_str), "%s%"PRIu32, sn, nsid);
4416 5 : if (size <= 0 || (unsigned long)size >= sizeof(merged_str)) {
4417 0 : return -EINVAL;
4418 : }
4419 :
4420 5 : spdk_uuid_parse(&namespace_uuid, namespace_str);
4421 :
4422 5 : rc = spdk_uuid_generate_sha1(&new_uuid, &namespace_uuid, merged_str, size);
4423 5 : if (rc == 0) {
4424 5 : memcpy(uuid, &new_uuid, sizeof(struct spdk_uuid));
4425 : }
4426 :
4427 5 : return rc;
4428 : }
4429 :
4430 : static int
4431 39 : nvme_disk_create(struct spdk_bdev *disk, const char *base_name,
4432 : struct spdk_nvme_ctrlr *ctrlr, struct spdk_nvme_ns *ns,
4433 : struct spdk_bdev_nvme_ctrlr_opts *bdev_opts, void *ctx)
4434 : {
4435 : const struct spdk_uuid *uuid;
4436 : const uint8_t *nguid;
4437 : const struct spdk_nvme_ctrlr_data *cdata;
4438 : const struct spdk_nvme_ns_data *nsdata;
4439 : const struct spdk_nvme_ctrlr_opts *opts;
4440 : enum spdk_nvme_csi csi;
4441 : uint32_t atomic_bs, phys_bs, bs;
4442 39 : char sn_tmp[SPDK_NVME_CTRLR_SN_LEN + 1] = {'\0'};
4443 : int rc;
4444 :
4445 39 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
4446 39 : csi = spdk_nvme_ns_get_csi(ns);
4447 39 : opts = spdk_nvme_ctrlr_get_opts(ctrlr);
4448 :
4449 39 : switch (csi) {
4450 39 : case SPDK_NVME_CSI_NVM:
4451 39 : disk->product_name = "NVMe disk";
4452 39 : break;
4453 0 : case SPDK_NVME_CSI_ZNS:
4454 0 : disk->product_name = "NVMe ZNS disk";
4455 0 : disk->zoned = true;
4456 0 : disk->zone_size = spdk_nvme_zns_ns_get_zone_size_sectors(ns);
4457 0 : disk->max_zone_append_size = spdk_nvme_zns_ctrlr_get_max_zone_append_size(ctrlr) /
4458 0 : spdk_nvme_ns_get_extended_sector_size(ns);
4459 0 : disk->max_open_zones = spdk_nvme_zns_ns_get_max_open_zones(ns);
4460 0 : disk->max_active_zones = spdk_nvme_zns_ns_get_max_active_zones(ns);
4461 0 : break;
4462 0 : default:
4463 0 : if (bdev_opts->allow_unrecognized_csi) {
4464 0 : disk->product_name = "NVMe Passthrough disk";
4465 0 : break;
4466 : }
4467 0 : SPDK_ERRLOG("unsupported CSI: %u\n", csi);
4468 0 : return -ENOTSUP;
4469 : }
4470 :
4471 39 : nguid = spdk_nvme_ns_get_nguid(ns);
4472 39 : if (!nguid) {
4473 39 : uuid = spdk_nvme_ns_get_uuid(ns);
4474 39 : if (uuid) {
4475 12 : disk->uuid = *uuid;
4476 27 : } else if (g_opts.generate_uuids) {
4477 0 : spdk_strcpy_pad(sn_tmp, cdata->sn, SPDK_NVME_CTRLR_SN_LEN, '\0');
4478 0 : rc = nvme_generate_uuid(sn_tmp, spdk_nvme_ns_get_id(ns), &disk->uuid);
4479 0 : if (rc < 0) {
4480 0 : SPDK_ERRLOG("UUID generation failed (%s)\n", spdk_strerror(-rc));
4481 0 : return rc;
4482 : }
4483 : }
4484 : } else {
4485 0 : memcpy(&disk->uuid, nguid, sizeof(disk->uuid));
4486 : }
4487 :
4488 39 : disk->name = spdk_sprintf_alloc("%sn%d", base_name, spdk_nvme_ns_get_id(ns));
4489 39 : if (!disk->name) {
4490 0 : return -ENOMEM;
4491 : }
4492 :
4493 39 : disk->write_cache = 0;
4494 39 : if (cdata->vwc.present) {
4495 : /* Enable if the Volatile Write Cache exists */
4496 0 : disk->write_cache = 1;
4497 : }
4498 39 : if (cdata->oncs.write_zeroes) {
4499 0 : disk->max_write_zeroes = UINT16_MAX + 1;
4500 : }
4501 39 : disk->blocklen = spdk_nvme_ns_get_extended_sector_size(ns);
4502 39 : disk->blockcnt = spdk_nvme_ns_get_num_sectors(ns);
4503 39 : disk->max_segment_size = spdk_nvme_ctrlr_get_max_xfer_size(ctrlr);
4504 39 : disk->ctratt.raw = cdata->ctratt.raw;
4505 39 : disk->nsid = spdk_nvme_ns_get_id(ns);
4506 : /* NVMe driver will split one request into multiple requests
4507 : * based on MDTS and stripe boundary, the bdev layer will use
4508 : * max_segment_size and max_num_segments to split one big IO
4509 : * into multiple requests, then small request can't run out
4510 : * of NVMe internal requests data structure.
4511 : */
4512 39 : if (opts && opts->io_queue_requests) {
4513 0 : disk->max_num_segments = opts->io_queue_requests / 2;
4514 : }
4515 39 : if (spdk_nvme_ctrlr_get_flags(ctrlr) & SPDK_NVME_CTRLR_SGL_SUPPORTED) {
4516 : /* The nvme driver will try to split I/O that have too many
4517 : * SGEs, but it doesn't work if that last SGE doesn't end on
4518 : * an aggregate total that is block aligned. The bdev layer has
4519 : * a more robust splitting framework, so use that instead for
4520 : * this case. (See issue #3269.)
4521 : */
4522 0 : uint16_t max_sges = spdk_nvme_ctrlr_get_max_sges(ctrlr);
4523 :
4524 0 : if (disk->max_num_segments == 0) {
4525 0 : disk->max_num_segments = max_sges;
4526 : } else {
4527 0 : disk->max_num_segments = spdk_min(disk->max_num_segments, max_sges);
4528 : }
4529 : }
4530 39 : disk->optimal_io_boundary = spdk_nvme_ns_get_optimal_io_boundary(ns);
4531 :
4532 39 : nsdata = spdk_nvme_ns_get_data(ns);
4533 39 : bs = spdk_nvme_ns_get_sector_size(ns);
4534 39 : atomic_bs = bs;
4535 39 : phys_bs = bs;
4536 39 : if (nsdata->nabo == 0) {
4537 39 : if (nsdata->nsfeat.ns_atomic_write_unit && nsdata->nawupf) {
4538 0 : atomic_bs = bs * (1 + nsdata->nawupf);
4539 : } else {
4540 39 : atomic_bs = bs * (1 + cdata->awupf);
4541 : }
4542 : }
4543 39 : if (nsdata->nsfeat.optperf) {
4544 0 : phys_bs = bs * (1 + nsdata->npwg);
4545 : }
4546 39 : disk->phys_blocklen = spdk_min(phys_bs, atomic_bs);
4547 :
4548 39 : disk->md_len = spdk_nvme_ns_get_md_size(ns);
4549 39 : if (disk->md_len != 0) {
4550 0 : disk->md_interleave = nsdata->flbas.extended;
4551 0 : disk->dif_type = (enum spdk_dif_type)spdk_nvme_ns_get_pi_type(ns);
4552 0 : if (disk->dif_type != SPDK_DIF_DISABLE) {
4553 0 : disk->dif_is_head_of_md = nsdata->dps.md_start;
4554 0 : disk->dif_check_flags = bdev_opts->prchk_flags;
4555 0 : disk->dif_pi_format = (enum spdk_dif_pi_format)spdk_nvme_ns_get_pi_format(ns);
4556 : }
4557 : }
4558 :
4559 39 : if (!(spdk_nvme_ctrlr_get_flags(ctrlr) &
4560 : SPDK_NVME_CTRLR_COMPARE_AND_WRITE_SUPPORTED)) {
4561 39 : disk->acwu = 0;
4562 0 : } else if (nsdata->nsfeat.ns_atomic_write_unit) {
4563 0 : disk->acwu = nsdata->nacwu + 1; /* 0-based */
4564 : } else {
4565 0 : disk->acwu = cdata->acwu + 1; /* 0-based */
4566 : }
4567 :
4568 39 : if (cdata->oncs.copy) {
4569 : /* For now bdev interface allows only single segment copy */
4570 0 : disk->max_copy = nsdata->mssrl;
4571 : }
4572 :
4573 39 : disk->ctxt = ctx;
4574 39 : disk->fn_table = &nvmelib_fn_table;
4575 39 : disk->module = &nvme_if;
4576 :
4577 39 : disk->numa.id_valid = 1;
4578 39 : disk->numa.id = spdk_nvme_ctrlr_get_numa_id(ctrlr);
4579 :
4580 39 : return 0;
4581 : }
4582 :
4583 : static struct nvme_bdev *
4584 39 : nvme_bdev_alloc(void)
4585 : {
4586 : struct nvme_bdev *bdev;
4587 : int rc;
4588 :
4589 39 : bdev = calloc(1, sizeof(*bdev));
4590 39 : if (!bdev) {
4591 0 : SPDK_ERRLOG("bdev calloc() failed\n");
4592 0 : return NULL;
4593 : }
4594 :
4595 39 : if (g_opts.nvme_error_stat) {
4596 0 : bdev->err_stat = calloc(1, sizeof(struct nvme_error_stat));
4597 0 : if (!bdev->err_stat) {
4598 0 : SPDK_ERRLOG("err_stat calloc() failed\n");
4599 0 : free(bdev);
4600 0 : return NULL;
4601 : }
4602 : }
4603 :
4604 39 : rc = pthread_mutex_init(&bdev->mutex, NULL);
4605 39 : if (rc != 0) {
4606 0 : free(bdev->err_stat);
4607 0 : free(bdev);
4608 0 : return NULL;
4609 : }
4610 :
4611 39 : bdev->ref = 1;
4612 39 : bdev->mp_policy = BDEV_NVME_MP_POLICY_ACTIVE_PASSIVE;
4613 39 : bdev->mp_selector = BDEV_NVME_MP_SELECTOR_ROUND_ROBIN;
4614 39 : bdev->rr_min_io = UINT32_MAX;
4615 39 : TAILQ_INIT(&bdev->nvme_ns_list);
4616 :
4617 39 : return bdev;
4618 : }
4619 :
4620 : static int
4621 39 : nvme_bdev_create(struct nvme_ctrlr *nvme_ctrlr, struct nvme_ns *nvme_ns)
4622 : {
4623 : struct nvme_bdev *bdev;
4624 39 : struct nvme_bdev_ctrlr *nbdev_ctrlr = nvme_ctrlr->nbdev_ctrlr;
4625 : int rc;
4626 :
4627 39 : bdev = nvme_bdev_alloc();
4628 39 : if (bdev == NULL) {
4629 0 : SPDK_ERRLOG("Failed to allocate NVMe bdev\n");
4630 0 : return -ENOMEM;
4631 : }
4632 :
4633 39 : bdev->opal = nvme_ctrlr->opal_dev != NULL;
4634 :
4635 39 : rc = nvme_disk_create(&bdev->disk, nbdev_ctrlr->name, nvme_ctrlr->ctrlr,
4636 : nvme_ns->ns, &nvme_ctrlr->opts, bdev);
4637 39 : if (rc != 0) {
4638 0 : SPDK_ERRLOG("Failed to create NVMe disk\n");
4639 0 : nvme_bdev_free(bdev);
4640 0 : return rc;
4641 : }
4642 :
4643 39 : spdk_io_device_register(bdev,
4644 : bdev_nvme_create_bdev_channel_cb,
4645 : bdev_nvme_destroy_bdev_channel_cb,
4646 : sizeof(struct nvme_bdev_channel),
4647 39 : bdev->disk.name);
4648 :
4649 39 : nvme_ns->bdev = bdev;
4650 39 : bdev->nsid = nvme_ns->id;
4651 39 : TAILQ_INSERT_TAIL(&bdev->nvme_ns_list, nvme_ns, tailq);
4652 :
4653 39 : bdev->nbdev_ctrlr = nbdev_ctrlr;
4654 39 : TAILQ_INSERT_TAIL(&nbdev_ctrlr->bdevs, bdev, tailq);
4655 :
4656 39 : rc = spdk_bdev_register(&bdev->disk);
4657 39 : if (rc != 0) {
4658 1 : SPDK_ERRLOG("spdk_bdev_register() failed\n");
4659 1 : spdk_io_device_unregister(bdev, NULL);
4660 1 : nvme_ns->bdev = NULL;
4661 1 : TAILQ_REMOVE(&nbdev_ctrlr->bdevs, bdev, tailq);
4662 1 : nvme_bdev_free(bdev);
4663 1 : return rc;
4664 : }
4665 :
4666 38 : return 0;
4667 : }
4668 :
4669 : static bool
4670 23 : bdev_nvme_compare_ns(struct spdk_nvme_ns *ns1, struct spdk_nvme_ns *ns2)
4671 : {
4672 : const struct spdk_nvme_ns_data *nsdata1, *nsdata2;
4673 : const struct spdk_uuid *uuid1, *uuid2;
4674 :
4675 23 : nsdata1 = spdk_nvme_ns_get_data(ns1);
4676 23 : nsdata2 = spdk_nvme_ns_get_data(ns2);
4677 23 : uuid1 = spdk_nvme_ns_get_uuid(ns1);
4678 23 : uuid2 = spdk_nvme_ns_get_uuid(ns2);
4679 :
4680 45 : return memcmp(nsdata1->nguid, nsdata2->nguid, sizeof(nsdata1->nguid)) == 0 &&
4681 22 : nsdata1->eui64 == nsdata2->eui64 &&
4682 21 : ((uuid1 == NULL && uuid2 == NULL) ||
4683 59 : (uuid1 != NULL && uuid2 != NULL && spdk_uuid_compare(uuid1, uuid2) == 0)) &&
4684 18 : spdk_nvme_ns_get_csi(ns1) == spdk_nvme_ns_get_csi(ns2);
4685 : }
4686 :
4687 : static bool
4688 0 : hotplug_probe_cb(void *cb_ctx, const struct spdk_nvme_transport_id *trid,
4689 : struct spdk_nvme_ctrlr_opts *opts)
4690 : {
4691 : struct nvme_probe_skip_entry *entry;
4692 :
4693 0 : TAILQ_FOREACH(entry, &g_skipped_nvme_ctrlrs, tailq) {
4694 0 : if (spdk_nvme_transport_id_compare(trid, &entry->trid) == 0) {
4695 0 : return false;
4696 : }
4697 : }
4698 :
4699 0 : opts->arbitration_burst = (uint8_t)g_opts.arbitration_burst;
4700 0 : opts->low_priority_weight = (uint8_t)g_opts.low_priority_weight;
4701 0 : opts->medium_priority_weight = (uint8_t)g_opts.medium_priority_weight;
4702 0 : opts->high_priority_weight = (uint8_t)g_opts.high_priority_weight;
4703 0 : opts->disable_read_ana_log_page = true;
4704 :
4705 0 : SPDK_DEBUGLOG(bdev_nvme, "Attaching to %s\n", trid->traddr);
4706 :
4707 0 : return true;
4708 : }
4709 :
4710 : static void
4711 0 : nvme_abort_cpl(void *ctx, const struct spdk_nvme_cpl *cpl)
4712 : {
4713 0 : struct nvme_ctrlr *nvme_ctrlr = ctx;
4714 :
4715 0 : if (spdk_nvme_cpl_is_error(cpl)) {
4716 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr, "Abort failed. Resetting controller. sc is %u, sct is %u.\n",
4717 : cpl->status.sc, cpl->status.sct);
4718 0 : bdev_nvme_reset_ctrlr(nvme_ctrlr);
4719 0 : } else if (cpl->cdw0 & 0x1) {
4720 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr, "Specified command could not be aborted.\n");
4721 0 : bdev_nvme_reset_ctrlr(nvme_ctrlr);
4722 : }
4723 0 : }
4724 :
4725 : static void
4726 0 : timeout_cb(void *cb_arg, struct spdk_nvme_ctrlr *ctrlr,
4727 : struct spdk_nvme_qpair *qpair, uint16_t cid)
4728 : {
4729 0 : struct nvme_ctrlr *nvme_ctrlr = cb_arg;
4730 : union spdk_nvme_csts_register csts;
4731 : int rc;
4732 :
4733 0 : assert(nvme_ctrlr->ctrlr == ctrlr);
4734 :
4735 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr, "Warning: Detected a timeout. ctrlr=%p qpair=%p cid=%u\n",
4736 : ctrlr, qpair, cid);
4737 :
4738 : /* Only try to read CSTS if it's a PCIe controller or we have a timeout on an I/O
4739 : * queue. (Note: qpair == NULL when there's an admin cmd timeout.) Otherwise we
4740 : * would submit another fabrics cmd on the admin queue to read CSTS and check for its
4741 : * completion recursively.
4742 : */
4743 0 : if (nvme_ctrlr->active_path_id->trid.trtype == SPDK_NVME_TRANSPORT_PCIE || qpair != NULL) {
4744 0 : csts = spdk_nvme_ctrlr_get_regs_csts(ctrlr);
4745 0 : if (csts.bits.cfs) {
4746 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Controller Fatal Status, reset required\n");
4747 0 : bdev_nvme_reset_ctrlr(nvme_ctrlr);
4748 0 : return;
4749 : }
4750 : }
4751 :
4752 0 : switch (g_opts.action_on_timeout) {
4753 0 : case SPDK_BDEV_NVME_TIMEOUT_ACTION_ABORT:
4754 0 : if (qpair) {
4755 : /* Don't send abort to ctrlr when ctrlr is not available. */
4756 0 : pthread_mutex_lock(&nvme_ctrlr->mutex);
4757 0 : if (!nvme_ctrlr_is_available(nvme_ctrlr)) {
4758 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
4759 0 : NVME_CTRLR_NOTICELOG(nvme_ctrlr, "Quit abort. Ctrlr is not available.\n");
4760 0 : return;
4761 : }
4762 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
4763 :
4764 0 : rc = spdk_nvme_ctrlr_cmd_abort(ctrlr, qpair, cid,
4765 : nvme_abort_cpl, nvme_ctrlr);
4766 0 : if (rc == 0) {
4767 0 : return;
4768 : }
4769 :
4770 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Unable to send abort. Resetting, rc is %d.\n", rc);
4771 : }
4772 :
4773 : /* FALLTHROUGH */
4774 : case SPDK_BDEV_NVME_TIMEOUT_ACTION_RESET:
4775 0 : bdev_nvme_reset_ctrlr(nvme_ctrlr);
4776 0 : break;
4777 0 : case SPDK_BDEV_NVME_TIMEOUT_ACTION_NONE:
4778 0 : NVME_CTRLR_DEBUGLOG(nvme_ctrlr, "No action for nvme controller timeout.\n");
4779 0 : break;
4780 0 : default:
4781 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "An invalid timeout action value is found.\n");
4782 0 : break;
4783 : }
4784 : }
4785 :
4786 : static struct nvme_ns *
4787 52 : nvme_ns_alloc(void)
4788 : {
4789 : struct nvme_ns *nvme_ns;
4790 :
4791 52 : nvme_ns = calloc(1, sizeof(struct nvme_ns));
4792 52 : if (nvme_ns == NULL) {
4793 0 : return NULL;
4794 : }
4795 :
4796 52 : if (g_opts.io_path_stat) {
4797 0 : nvme_ns->stat = calloc(1, sizeof(struct spdk_bdev_io_stat));
4798 0 : if (nvme_ns->stat == NULL) {
4799 0 : free(nvme_ns);
4800 0 : return NULL;
4801 : }
4802 0 : spdk_bdev_reset_io_stat(nvme_ns->stat, SPDK_BDEV_RESET_STAT_MAXMIN);
4803 : }
4804 :
4805 52 : return nvme_ns;
4806 : }
4807 :
4808 : static void
4809 52 : nvme_ns_free(struct nvme_ns *nvme_ns)
4810 : {
4811 52 : free(nvme_ns->stat);
4812 52 : free(nvme_ns);
4813 52 : }
4814 :
4815 : static void
4816 52 : nvme_ctrlr_populate_namespace_done(struct nvme_ns *nvme_ns, int rc)
4817 : {
4818 52 : struct nvme_ctrlr *nvme_ctrlr = nvme_ns->ctrlr;
4819 52 : struct nvme_async_probe_ctx *ctx = nvme_ns->probe_ctx;
4820 :
4821 52 : if (rc == 0) {
4822 50 : nvme_ns->probe_ctx = NULL;
4823 50 : nvme_ctrlr_get_ref(nvme_ctrlr);
4824 : } else {
4825 2 : RB_REMOVE(nvme_ns_tree, &nvme_ctrlr->namespaces, nvme_ns);
4826 2 : nvme_ns_free(nvme_ns);
4827 : }
4828 :
4829 52 : if (ctx) {
4830 51 : ctx->populates_in_progress--;
4831 51 : if (ctx->populates_in_progress == 0) {
4832 12 : nvme_ctrlr_populate_namespaces_done(nvme_ctrlr, ctx);
4833 : }
4834 : }
4835 52 : }
4836 :
4837 : static void
4838 2 : bdev_nvme_add_io_path(struct nvme_bdev_channel_iter *i,
4839 : struct nvme_bdev *nbdev,
4840 : struct nvme_bdev_channel *nbdev_ch, void *ctx)
4841 : {
4842 2 : struct nvme_ns *nvme_ns = ctx;
4843 : int rc;
4844 :
4845 2 : rc = _bdev_nvme_add_io_path(nbdev_ch, nvme_ns);
4846 2 : if (rc != 0) {
4847 0 : SPDK_ERRLOG("Failed to add I/O path to bdev_channel dynamically.\n");
4848 : }
4849 :
4850 2 : nvme_bdev_for_each_channel_continue(i, rc);
4851 2 : }
4852 :
4853 : static void
4854 2 : bdev_nvme_delete_io_path(struct nvme_bdev_channel_iter *i,
4855 : struct nvme_bdev *nbdev,
4856 : struct nvme_bdev_channel *nbdev_ch, void *ctx)
4857 : {
4858 2 : struct nvme_ns *nvme_ns = ctx;
4859 : struct nvme_io_path *io_path;
4860 :
4861 2 : io_path = _bdev_nvme_get_io_path(nbdev_ch, nvme_ns);
4862 2 : if (io_path != NULL) {
4863 2 : _bdev_nvme_delete_io_path(nbdev_ch, io_path);
4864 : }
4865 :
4866 2 : nvme_bdev_for_each_channel_continue(i, 0);
4867 2 : }
4868 :
4869 : static void
4870 0 : bdev_nvme_add_io_path_failed(struct nvme_bdev *nbdev, void *ctx, int status)
4871 : {
4872 0 : struct nvme_ns *nvme_ns = ctx;
4873 :
4874 0 : nvme_ctrlr_populate_namespace_done(nvme_ns, -1);
4875 0 : }
4876 :
4877 : static void
4878 12 : bdev_nvme_add_io_path_done(struct nvme_bdev *nbdev, void *ctx, int status)
4879 : {
4880 12 : struct nvme_ns *nvme_ns = ctx;
4881 :
4882 12 : if (status == 0) {
4883 12 : nvme_ctrlr_populate_namespace_done(nvme_ns, 0);
4884 : } else {
4885 : /* Delete the added io_paths and fail populating the namespace. */
4886 0 : nvme_bdev_for_each_channel(nbdev,
4887 : bdev_nvme_delete_io_path,
4888 : nvme_ns,
4889 : bdev_nvme_add_io_path_failed);
4890 : }
4891 12 : }
4892 :
4893 : static int
4894 13 : nvme_bdev_add_ns(struct nvme_bdev *bdev, struct nvme_ns *nvme_ns)
4895 : {
4896 : struct nvme_ns *tmp_ns;
4897 : const struct spdk_nvme_ns_data *nsdata;
4898 :
4899 13 : nsdata = spdk_nvme_ns_get_data(nvme_ns->ns);
4900 13 : if (!nsdata->nmic.can_share) {
4901 0 : SPDK_ERRLOG("Namespace cannot be shared.\n");
4902 0 : return -EINVAL;
4903 : }
4904 :
4905 13 : pthread_mutex_lock(&bdev->mutex);
4906 :
4907 13 : tmp_ns = TAILQ_FIRST(&bdev->nvme_ns_list);
4908 13 : assert(tmp_ns != NULL);
4909 :
4910 13 : if (tmp_ns->ns != NULL && !bdev_nvme_compare_ns(nvme_ns->ns, tmp_ns->ns)) {
4911 1 : pthread_mutex_unlock(&bdev->mutex);
4912 1 : SPDK_ERRLOG("Namespaces are not identical.\n");
4913 1 : return -EINVAL;
4914 : }
4915 :
4916 12 : bdev->ref++;
4917 12 : TAILQ_INSERT_TAIL(&bdev->nvme_ns_list, nvme_ns, tailq);
4918 12 : nvme_ns->bdev = bdev;
4919 :
4920 12 : pthread_mutex_unlock(&bdev->mutex);
4921 :
4922 : /* Add nvme_io_path to nvme_bdev_channels dynamically. */
4923 12 : nvme_bdev_for_each_channel(bdev,
4924 : bdev_nvme_add_io_path,
4925 : nvme_ns,
4926 : bdev_nvme_add_io_path_done);
4927 :
4928 12 : return 0;
4929 : }
4930 :
4931 : static void
4932 52 : nvme_ctrlr_populate_namespace(struct nvme_ctrlr *nvme_ctrlr, struct nvme_ns *nvme_ns)
4933 : {
4934 : struct spdk_nvme_ns *ns;
4935 : struct nvme_bdev *bdev;
4936 52 : int rc = 0;
4937 :
4938 52 : ns = spdk_nvme_ctrlr_get_ns(nvme_ctrlr->ctrlr, nvme_ns->id);
4939 52 : if (!ns) {
4940 0 : NVME_CTRLR_DEBUGLOG(nvme_ctrlr, "Invalid NS %d\n", nvme_ns->id);
4941 0 : rc = -EINVAL;
4942 0 : goto done;
4943 : }
4944 :
4945 52 : nvme_ns->ns = ns;
4946 52 : nvme_ns->ana_state = SPDK_NVME_ANA_OPTIMIZED_STATE;
4947 :
4948 52 : if (nvme_ctrlr->ana_log_page != NULL) {
4949 38 : bdev_nvme_parse_ana_log_page(nvme_ctrlr, nvme_ns_set_ana_state, nvme_ns);
4950 : }
4951 :
4952 52 : bdev = nvme_bdev_ctrlr_get_bdev(nvme_ctrlr->nbdev_ctrlr, nvme_ns->id);
4953 52 : if (bdev == NULL) {
4954 39 : rc = nvme_bdev_create(nvme_ctrlr, nvme_ns);
4955 : } else {
4956 13 : rc = nvme_bdev_add_ns(bdev, nvme_ns);
4957 13 : if (rc == 0) {
4958 12 : return;
4959 : }
4960 : }
4961 1 : done:
4962 40 : nvme_ctrlr_populate_namespace_done(nvme_ns, rc);
4963 : }
4964 :
4965 : static void
4966 50 : nvme_ctrlr_depopulate_namespace_done(struct nvme_ns *nvme_ns)
4967 : {
4968 50 : struct nvme_ctrlr *nvme_ctrlr = nvme_ns->ctrlr;
4969 :
4970 50 : assert(nvme_ctrlr != NULL);
4971 :
4972 50 : pthread_mutex_lock(&nvme_ctrlr->mutex);
4973 :
4974 50 : RB_REMOVE(nvme_ns_tree, &nvme_ctrlr->namespaces, nvme_ns);
4975 :
4976 50 : if (nvme_ns->bdev != NULL) {
4977 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
4978 0 : return;
4979 : }
4980 :
4981 50 : nvme_ns_free(nvme_ns);
4982 50 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
4983 :
4984 50 : nvme_ctrlr_put_ref(nvme_ctrlr);
4985 : }
4986 :
4987 : static void
4988 11 : bdev_nvme_delete_io_path_done(struct nvme_bdev *nbdev, void *ctx, int status)
4989 : {
4990 11 : struct nvme_ns *nvme_ns = ctx;
4991 :
4992 11 : nvme_ctrlr_depopulate_namespace_done(nvme_ns);
4993 11 : }
4994 :
4995 : static void
4996 50 : nvme_ctrlr_depopulate_namespace(struct nvme_ctrlr *nvme_ctrlr, struct nvme_ns *nvme_ns)
4997 : {
4998 : struct nvme_bdev *bdev;
4999 :
5000 50 : spdk_poller_unregister(&nvme_ns->anatt_timer);
5001 :
5002 50 : bdev = nvme_ns->bdev;
5003 50 : if (bdev != NULL) {
5004 46 : pthread_mutex_lock(&bdev->mutex);
5005 :
5006 46 : assert(bdev->ref > 0);
5007 46 : bdev->ref--;
5008 46 : if (bdev->ref == 0) {
5009 35 : pthread_mutex_unlock(&bdev->mutex);
5010 :
5011 35 : spdk_bdev_unregister(&bdev->disk, NULL, NULL);
5012 : } else {
5013 : /* spdk_bdev_unregister() is not called until the last nvme_ns is
5014 : * depopulated. Hence we need to remove nvme_ns from bdev->nvme_ns_list
5015 : * and clear nvme_ns->bdev here.
5016 : */
5017 11 : TAILQ_REMOVE(&bdev->nvme_ns_list, nvme_ns, tailq);
5018 11 : nvme_ns->bdev = NULL;
5019 :
5020 11 : pthread_mutex_unlock(&bdev->mutex);
5021 :
5022 : /* Delete nvme_io_paths from nvme_bdev_channels dynamically. After that,
5023 : * we call depopulate_namespace_done() to avoid use-after-free.
5024 : */
5025 11 : nvme_bdev_for_each_channel(bdev,
5026 : bdev_nvme_delete_io_path,
5027 : nvme_ns,
5028 : bdev_nvme_delete_io_path_done);
5029 11 : return;
5030 : }
5031 : }
5032 :
5033 39 : nvme_ctrlr_depopulate_namespace_done(nvme_ns);
5034 : }
5035 :
5036 : static void
5037 63 : nvme_ctrlr_populate_namespaces(struct nvme_ctrlr *nvme_ctrlr,
5038 : struct nvme_async_probe_ctx *ctx)
5039 : {
5040 63 : struct spdk_nvme_ctrlr *ctrlr = nvme_ctrlr->ctrlr;
5041 : struct nvme_ns *nvme_ns, *next;
5042 : struct spdk_nvme_ns *ns;
5043 : struct nvme_bdev *bdev;
5044 : uint32_t nsid;
5045 : int rc;
5046 : uint64_t num_sectors;
5047 :
5048 63 : if (ctx) {
5049 : /* Initialize this count to 1 to handle the populate functions
5050 : * calling nvme_ctrlr_populate_namespace_done() immediately.
5051 : */
5052 47 : ctx->populates_in_progress = 1;
5053 : }
5054 :
5055 : /* First loop over our existing namespaces and see if they have been
5056 : * removed. */
5057 63 : nvme_ns = nvme_ctrlr_get_first_active_ns(nvme_ctrlr);
5058 67 : while (nvme_ns != NULL) {
5059 4 : next = nvme_ctrlr_get_next_active_ns(nvme_ctrlr, nvme_ns);
5060 :
5061 4 : if (spdk_nvme_ctrlr_is_active_ns(ctrlr, nvme_ns->id)) {
5062 : /* NS is still there or added again. Its attributes may have changed. */
5063 3 : ns = spdk_nvme_ctrlr_get_ns(ctrlr, nvme_ns->id);
5064 3 : if (nvme_ns->ns != ns) {
5065 1 : assert(nvme_ns->ns == NULL);
5066 1 : nvme_ns->ns = ns;
5067 1 : NVME_CTRLR_DEBUGLOG(nvme_ctrlr, "NSID %u was added\n", nvme_ns->id);
5068 : }
5069 :
5070 3 : num_sectors = spdk_nvme_ns_get_num_sectors(ns);
5071 3 : bdev = nvme_ns->bdev;
5072 3 : assert(bdev != NULL);
5073 3 : if (bdev->disk.blockcnt != num_sectors) {
5074 1 : NVME_CTRLR_NOTICELOG(nvme_ctrlr,
5075 : "NSID %u is resized: bdev name %s, old size %" PRIu64 ", new size %" PRIu64 "\n",
5076 : nvme_ns->id,
5077 : bdev->disk.name,
5078 : bdev->disk.blockcnt,
5079 : num_sectors);
5080 1 : rc = spdk_bdev_notify_blockcnt_change(&bdev->disk, num_sectors);
5081 1 : if (rc != 0) {
5082 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr,
5083 : "Could not change num blocks for nvme bdev: name %s, errno: %d.\n",
5084 : bdev->disk.name, rc);
5085 : }
5086 : }
5087 : } else {
5088 : /* Namespace was removed */
5089 1 : nvme_ctrlr_depopulate_namespace(nvme_ctrlr, nvme_ns);
5090 : }
5091 :
5092 4 : nvme_ns = next;
5093 : }
5094 :
5095 : /* Loop through all of the namespaces at the nvme level and see if any of them are new */
5096 63 : nsid = spdk_nvme_ctrlr_get_first_active_ns(ctrlr);
5097 118 : while (nsid != 0) {
5098 55 : nvme_ns = nvme_ctrlr_get_ns(nvme_ctrlr, nsid);
5099 :
5100 55 : if (nvme_ns == NULL) {
5101 : /* Found a new one */
5102 52 : nvme_ns = nvme_ns_alloc();
5103 52 : if (nvme_ns == NULL) {
5104 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to allocate namespace\n");
5105 : /* This just fails to attach the namespace. It may work on a future attempt. */
5106 0 : continue;
5107 : }
5108 :
5109 52 : nvme_ns->id = nsid;
5110 52 : nvme_ns->ctrlr = nvme_ctrlr;
5111 :
5112 52 : nvme_ns->bdev = NULL;
5113 :
5114 52 : if (ctx) {
5115 51 : ctx->populates_in_progress++;
5116 : }
5117 52 : nvme_ns->probe_ctx = ctx;
5118 :
5119 52 : RB_INSERT(nvme_ns_tree, &nvme_ctrlr->namespaces, nvme_ns);
5120 :
5121 52 : nvme_ctrlr_populate_namespace(nvme_ctrlr, nvme_ns);
5122 : }
5123 :
5124 55 : nsid = spdk_nvme_ctrlr_get_next_active_ns(ctrlr, nsid);
5125 : }
5126 :
5127 63 : if (ctx) {
5128 : /* Decrement this count now that the loop is over to account
5129 : * for the one we started with. If the count is then 0, we
5130 : * know any populate_namespace functions completed immediately,
5131 : * so we'll kick the callback here.
5132 : */
5133 47 : ctx->populates_in_progress--;
5134 47 : if (ctx->populates_in_progress == 0) {
5135 35 : nvme_ctrlr_populate_namespaces_done(nvme_ctrlr, ctx);
5136 : }
5137 : }
5138 :
5139 63 : }
5140 :
5141 : static void
5142 62 : nvme_ctrlr_depopulate_namespaces(struct nvme_ctrlr *nvme_ctrlr)
5143 : {
5144 : struct nvme_ns *nvme_ns, *tmp;
5145 :
5146 111 : RB_FOREACH_SAFE(nvme_ns, nvme_ns_tree, &nvme_ctrlr->namespaces, tmp) {
5147 49 : nvme_ctrlr_depopulate_namespace(nvme_ctrlr, nvme_ns);
5148 : }
5149 62 : }
5150 :
5151 : static uint32_t
5152 37 : nvme_ctrlr_get_ana_log_page_size(struct nvme_ctrlr *nvme_ctrlr)
5153 : {
5154 37 : struct spdk_nvme_ctrlr *ctrlr = nvme_ctrlr->ctrlr;
5155 : const struct spdk_nvme_ctrlr_data *cdata;
5156 37 : uint32_t nsid, ns_count = 0;
5157 :
5158 37 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
5159 :
5160 37 : for (nsid = spdk_nvme_ctrlr_get_first_active_ns(ctrlr);
5161 82 : nsid != 0; nsid = spdk_nvme_ctrlr_get_next_active_ns(ctrlr, nsid)) {
5162 45 : ns_count++;
5163 : }
5164 :
5165 37 : return sizeof(struct spdk_nvme_ana_page) + cdata->nanagrpid *
5166 37 : sizeof(struct spdk_nvme_ana_group_descriptor) + ns_count *
5167 : sizeof(uint32_t);
5168 : }
5169 :
5170 : static int
5171 7 : nvme_ctrlr_set_ana_states(const struct spdk_nvme_ana_group_descriptor *desc,
5172 : void *cb_arg)
5173 : {
5174 7 : struct nvme_ctrlr *nvme_ctrlr = cb_arg;
5175 : struct nvme_ns *nvme_ns;
5176 : uint32_t i, nsid;
5177 :
5178 13 : for (i = 0; i < desc->num_of_nsid; i++) {
5179 6 : nsid = desc->nsid[i];
5180 6 : if (nsid == 0) {
5181 0 : continue;
5182 : }
5183 :
5184 6 : nvme_ns = nvme_ctrlr_get_ns(nvme_ctrlr, nsid);
5185 :
5186 6 : if (nvme_ns == NULL) {
5187 : /* Target told us that an inactive namespace had an ANA change */
5188 1 : continue;
5189 : }
5190 :
5191 5 : _nvme_ns_set_ana_state(nvme_ns, desc);
5192 : }
5193 :
5194 7 : return 0;
5195 : }
5196 :
5197 : static void
5198 0 : bdev_nvme_disable_read_ana_log_page(struct nvme_ctrlr *nvme_ctrlr)
5199 : {
5200 : struct nvme_ns *nvme_ns;
5201 :
5202 0 : spdk_free(nvme_ctrlr->ana_log_page);
5203 0 : nvme_ctrlr->ana_log_page = NULL;
5204 :
5205 0 : for (nvme_ns = nvme_ctrlr_get_first_active_ns(nvme_ctrlr);
5206 0 : nvme_ns != NULL;
5207 0 : nvme_ns = nvme_ctrlr_get_next_active_ns(nvme_ctrlr, nvme_ns)) {
5208 0 : nvme_ns->ana_state_updating = false;
5209 0 : nvme_ns->ana_state = SPDK_NVME_ANA_OPTIMIZED_STATE;
5210 : }
5211 0 : }
5212 :
5213 : static void
5214 3 : nvme_ctrlr_read_ana_log_page_done(void *ctx, const struct spdk_nvme_cpl *cpl)
5215 : {
5216 3 : struct nvme_ctrlr *nvme_ctrlr = ctx;
5217 :
5218 3 : if (cpl != NULL && spdk_nvme_cpl_is_success(cpl)) {
5219 3 : bdev_nvme_parse_ana_log_page(nvme_ctrlr, nvme_ctrlr_set_ana_states,
5220 : nvme_ctrlr);
5221 : } else {
5222 0 : bdev_nvme_disable_read_ana_log_page(nvme_ctrlr);
5223 : }
5224 :
5225 3 : pthread_mutex_lock(&nvme_ctrlr->mutex);
5226 :
5227 3 : assert(nvme_ctrlr->ana_log_page_updating == true);
5228 3 : nvme_ctrlr->ana_log_page_updating = false;
5229 :
5230 3 : if (nvme_ctrlr_can_be_unregistered(nvme_ctrlr)) {
5231 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
5232 :
5233 0 : nvme_ctrlr_unregister(nvme_ctrlr);
5234 : } else {
5235 3 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
5236 :
5237 3 : bdev_nvme_clear_io_path_caches(nvme_ctrlr);
5238 : }
5239 3 : }
5240 :
5241 : static int
5242 6 : nvme_ctrlr_read_ana_log_page(struct nvme_ctrlr *nvme_ctrlr)
5243 : {
5244 : uint32_t ana_log_page_size;
5245 : int rc;
5246 :
5247 6 : if (nvme_ctrlr->ana_log_page == NULL) {
5248 0 : return -EINVAL;
5249 : }
5250 :
5251 6 : ana_log_page_size = nvme_ctrlr_get_ana_log_page_size(nvme_ctrlr);
5252 :
5253 6 : if (ana_log_page_size > nvme_ctrlr->max_ana_log_page_size) {
5254 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr,
5255 : "ANA log page size %" PRIu32 " is larger than allowed %" PRIu32 "\n",
5256 : ana_log_page_size, nvme_ctrlr->max_ana_log_page_size);
5257 0 : return -EINVAL;
5258 : }
5259 :
5260 6 : pthread_mutex_lock(&nvme_ctrlr->mutex);
5261 6 : if (!nvme_ctrlr_is_available(nvme_ctrlr) ||
5262 : nvme_ctrlr->ana_log_page_updating) {
5263 3 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
5264 3 : return -EBUSY;
5265 : }
5266 :
5267 3 : nvme_ctrlr->ana_log_page_updating = true;
5268 3 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
5269 :
5270 3 : rc = spdk_nvme_ctrlr_cmd_get_log_page(nvme_ctrlr->ctrlr,
5271 : SPDK_NVME_LOG_ASYMMETRIC_NAMESPACE_ACCESS,
5272 : SPDK_NVME_GLOBAL_NS_TAG,
5273 3 : nvme_ctrlr->ana_log_page,
5274 : ana_log_page_size, 0,
5275 : nvme_ctrlr_read_ana_log_page_done,
5276 : nvme_ctrlr);
5277 3 : if (rc != 0) {
5278 0 : nvme_ctrlr_read_ana_log_page_done(nvme_ctrlr, NULL);
5279 : }
5280 :
5281 3 : return rc;
5282 : }
5283 :
5284 : static void
5285 0 : dummy_bdev_event_cb(enum spdk_bdev_event_type type, struct spdk_bdev *bdev, void *ctx)
5286 : {
5287 0 : }
5288 :
5289 : struct bdev_nvme_set_preferred_path_ctx {
5290 : struct spdk_bdev_desc *desc;
5291 : struct nvme_ns *nvme_ns;
5292 : bdev_nvme_set_preferred_path_cb cb_fn;
5293 : void *cb_arg;
5294 : };
5295 :
5296 : static void
5297 3 : bdev_nvme_set_preferred_path_done(struct nvme_bdev *nbdev, void *_ctx, int status)
5298 : {
5299 3 : struct bdev_nvme_set_preferred_path_ctx *ctx = _ctx;
5300 :
5301 3 : assert(ctx != NULL);
5302 3 : assert(ctx->desc != NULL);
5303 3 : assert(ctx->cb_fn != NULL);
5304 :
5305 3 : spdk_bdev_close(ctx->desc);
5306 :
5307 3 : ctx->cb_fn(ctx->cb_arg, status);
5308 :
5309 3 : free(ctx);
5310 3 : }
5311 :
5312 : static void
5313 2 : _bdev_nvme_set_preferred_path(struct nvme_bdev_channel_iter *i,
5314 : struct nvme_bdev *nbdev,
5315 : struct nvme_bdev_channel *nbdev_ch, void *_ctx)
5316 : {
5317 2 : struct bdev_nvme_set_preferred_path_ctx *ctx = _ctx;
5318 : struct nvme_io_path *io_path, *prev;
5319 :
5320 2 : prev = NULL;
5321 3 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
5322 3 : if (io_path->nvme_ns == ctx->nvme_ns) {
5323 2 : break;
5324 : }
5325 1 : prev = io_path;
5326 : }
5327 :
5328 2 : if (io_path != NULL) {
5329 2 : if (prev != NULL) {
5330 1 : STAILQ_REMOVE_AFTER(&nbdev_ch->io_path_list, prev, stailq);
5331 1 : STAILQ_INSERT_HEAD(&nbdev_ch->io_path_list, io_path, stailq);
5332 : }
5333 :
5334 : /* We can set io_path to nbdev_ch->current_io_path directly here.
5335 : * However, it needs to be conditional. To simplify the code,
5336 : * just clear nbdev_ch->current_io_path and let find_io_path()
5337 : * fill it.
5338 : *
5339 : * Automatic failback may be disabled. Hence even if the io_path is
5340 : * already at the head, clear nbdev_ch->current_io_path.
5341 : */
5342 2 : bdev_nvme_clear_current_io_path(nbdev_ch);
5343 : }
5344 :
5345 2 : nvme_bdev_for_each_channel_continue(i, 0);
5346 2 : }
5347 :
5348 : static struct nvme_ns *
5349 3 : bdev_nvme_set_preferred_ns(struct nvme_bdev *nbdev, uint16_t cntlid)
5350 : {
5351 : struct nvme_ns *nvme_ns, *prev;
5352 : const struct spdk_nvme_ctrlr_data *cdata;
5353 :
5354 3 : prev = NULL;
5355 6 : TAILQ_FOREACH(nvme_ns, &nbdev->nvme_ns_list, tailq) {
5356 6 : cdata = spdk_nvme_ctrlr_get_data(nvme_ns->ctrlr->ctrlr);
5357 :
5358 6 : if (cdata->cntlid == cntlid) {
5359 3 : break;
5360 : }
5361 3 : prev = nvme_ns;
5362 : }
5363 :
5364 3 : if (nvme_ns != NULL && prev != NULL) {
5365 2 : TAILQ_REMOVE(&nbdev->nvme_ns_list, nvme_ns, tailq);
5366 2 : TAILQ_INSERT_HEAD(&nbdev->nvme_ns_list, nvme_ns, tailq);
5367 : }
5368 :
5369 3 : return nvme_ns;
5370 : }
5371 :
5372 : /* This function supports only multipath mode. There is only a single I/O path
5373 : * for each NVMe-oF controller. Hence, just move the matched I/O path to the
5374 : * head of the I/O path list for each NVMe bdev channel.
5375 : *
5376 : * NVMe bdev channel may be acquired after completing this function. move the
5377 : * matched namespace to the head of the namespace list for the NVMe bdev too.
5378 : */
5379 : void
5380 3 : bdev_nvme_set_preferred_path(const char *name, uint16_t cntlid,
5381 : bdev_nvme_set_preferred_path_cb cb_fn, void *cb_arg)
5382 : {
5383 : struct bdev_nvme_set_preferred_path_ctx *ctx;
5384 : struct spdk_bdev *bdev;
5385 : struct nvme_bdev *nbdev;
5386 3 : int rc = 0;
5387 :
5388 3 : assert(cb_fn != NULL);
5389 :
5390 3 : ctx = calloc(1, sizeof(*ctx));
5391 3 : if (ctx == NULL) {
5392 0 : SPDK_ERRLOG("Failed to alloc context.\n");
5393 0 : rc = -ENOMEM;
5394 0 : goto err_alloc;
5395 : }
5396 :
5397 3 : ctx->cb_fn = cb_fn;
5398 3 : ctx->cb_arg = cb_arg;
5399 :
5400 3 : rc = spdk_bdev_open_ext(name, false, dummy_bdev_event_cb, NULL, &ctx->desc);
5401 3 : if (rc != 0) {
5402 0 : SPDK_ERRLOG("Failed to open bdev %s.\n", name);
5403 0 : goto err_open;
5404 : }
5405 :
5406 3 : bdev = spdk_bdev_desc_get_bdev(ctx->desc);
5407 :
5408 3 : if (bdev->module != &nvme_if) {
5409 0 : SPDK_ERRLOG("bdev %s is not registered in this module.\n", name);
5410 0 : rc = -ENODEV;
5411 0 : goto err_bdev;
5412 : }
5413 :
5414 3 : nbdev = SPDK_CONTAINEROF(bdev, struct nvme_bdev, disk);
5415 :
5416 3 : pthread_mutex_lock(&nbdev->mutex);
5417 :
5418 3 : ctx->nvme_ns = bdev_nvme_set_preferred_ns(nbdev, cntlid);
5419 3 : if (ctx->nvme_ns == NULL) {
5420 0 : pthread_mutex_unlock(&nbdev->mutex);
5421 :
5422 0 : SPDK_ERRLOG("bdev %s does not have namespace to controller %u.\n", name, cntlid);
5423 0 : rc = -ENODEV;
5424 0 : goto err_bdev;
5425 : }
5426 :
5427 3 : pthread_mutex_unlock(&nbdev->mutex);
5428 :
5429 3 : nvme_bdev_for_each_channel(nbdev,
5430 : _bdev_nvme_set_preferred_path,
5431 : ctx,
5432 : bdev_nvme_set_preferred_path_done);
5433 3 : return;
5434 :
5435 0 : err_bdev:
5436 0 : spdk_bdev_close(ctx->desc);
5437 0 : err_open:
5438 0 : free(ctx);
5439 0 : err_alloc:
5440 0 : cb_fn(cb_arg, rc);
5441 : }
5442 :
5443 : struct bdev_nvme_set_multipath_policy_ctx {
5444 : struct spdk_bdev_desc *desc;
5445 : spdk_bdev_nvme_set_multipath_policy_cb cb_fn;
5446 : void *cb_arg;
5447 : };
5448 :
5449 : static void
5450 3 : bdev_nvme_set_multipath_policy_done(struct nvme_bdev *nbdev, void *_ctx, int status)
5451 : {
5452 3 : struct bdev_nvme_set_multipath_policy_ctx *ctx = _ctx;
5453 :
5454 3 : assert(ctx != NULL);
5455 3 : assert(ctx->desc != NULL);
5456 3 : assert(ctx->cb_fn != NULL);
5457 :
5458 3 : spdk_bdev_close(ctx->desc);
5459 :
5460 3 : ctx->cb_fn(ctx->cb_arg, status);
5461 :
5462 3 : free(ctx);
5463 3 : }
5464 :
5465 : static void
5466 1 : _bdev_nvme_set_multipath_policy(struct nvme_bdev_channel_iter *i,
5467 : struct nvme_bdev *nbdev,
5468 : struct nvme_bdev_channel *nbdev_ch, void *ctx)
5469 : {
5470 1 : nbdev_ch->mp_policy = nbdev->mp_policy;
5471 1 : nbdev_ch->mp_selector = nbdev->mp_selector;
5472 1 : nbdev_ch->rr_min_io = nbdev->rr_min_io;
5473 1 : bdev_nvme_clear_current_io_path(nbdev_ch);
5474 :
5475 1 : nvme_bdev_for_each_channel_continue(i, 0);
5476 1 : }
5477 :
5478 : void
5479 3 : spdk_bdev_nvme_set_multipath_policy(const char *name, enum spdk_bdev_nvme_multipath_policy policy,
5480 : enum spdk_bdev_nvme_multipath_selector selector, uint32_t rr_min_io,
5481 : spdk_bdev_nvme_set_multipath_policy_cb cb_fn, void *cb_arg)
5482 : {
5483 : struct bdev_nvme_set_multipath_policy_ctx *ctx;
5484 : struct spdk_bdev *bdev;
5485 : struct nvme_bdev *nbdev;
5486 : int rc;
5487 :
5488 3 : assert(cb_fn != NULL);
5489 :
5490 3 : switch (policy) {
5491 1 : case BDEV_NVME_MP_POLICY_ACTIVE_PASSIVE:
5492 1 : break;
5493 2 : case BDEV_NVME_MP_POLICY_ACTIVE_ACTIVE:
5494 : switch (selector) {
5495 1 : case BDEV_NVME_MP_SELECTOR_ROUND_ROBIN:
5496 1 : if (rr_min_io == UINT32_MAX) {
5497 0 : rr_min_io = 1;
5498 1 : } else if (rr_min_io == 0) {
5499 0 : rc = -EINVAL;
5500 0 : goto exit;
5501 : }
5502 1 : break;
5503 1 : case BDEV_NVME_MP_SELECTOR_QUEUE_DEPTH:
5504 1 : break;
5505 0 : default:
5506 0 : rc = -EINVAL;
5507 0 : goto exit;
5508 : }
5509 2 : break;
5510 0 : default:
5511 0 : rc = -EINVAL;
5512 0 : goto exit;
5513 : }
5514 :
5515 3 : ctx = calloc(1, sizeof(*ctx));
5516 3 : if (ctx == NULL) {
5517 0 : SPDK_ERRLOG("Failed to alloc context.\n");
5518 0 : rc = -ENOMEM;
5519 0 : goto exit;
5520 : }
5521 :
5522 3 : ctx->cb_fn = cb_fn;
5523 3 : ctx->cb_arg = cb_arg;
5524 :
5525 3 : rc = spdk_bdev_open_ext(name, false, dummy_bdev_event_cb, NULL, &ctx->desc);
5526 3 : if (rc != 0) {
5527 0 : SPDK_ERRLOG("Failed to open bdev %s.\n", name);
5528 0 : rc = -ENODEV;
5529 0 : goto err_open;
5530 : }
5531 :
5532 3 : bdev = spdk_bdev_desc_get_bdev(ctx->desc);
5533 3 : if (bdev->module != &nvme_if) {
5534 0 : SPDK_ERRLOG("bdev %s is not registered in this module.\n", name);
5535 0 : rc = -ENODEV;
5536 0 : goto err_module;
5537 : }
5538 3 : nbdev = SPDK_CONTAINEROF(bdev, struct nvme_bdev, disk);
5539 :
5540 3 : pthread_mutex_lock(&nbdev->mutex);
5541 3 : nbdev->mp_policy = policy;
5542 3 : nbdev->mp_selector = selector;
5543 3 : nbdev->rr_min_io = rr_min_io;
5544 3 : pthread_mutex_unlock(&nbdev->mutex);
5545 :
5546 3 : nvme_bdev_for_each_channel(nbdev,
5547 : _bdev_nvme_set_multipath_policy,
5548 : ctx,
5549 : bdev_nvme_set_multipath_policy_done);
5550 3 : return;
5551 :
5552 0 : err_module:
5553 0 : spdk_bdev_close(ctx->desc);
5554 0 : err_open:
5555 0 : free(ctx);
5556 0 : exit:
5557 0 : cb_fn(cb_arg, rc);
5558 : }
5559 :
5560 : static void
5561 3 : aer_cb(void *arg, const struct spdk_nvme_cpl *cpl)
5562 : {
5563 3 : struct nvme_ctrlr *nvme_ctrlr = arg;
5564 : union spdk_nvme_async_event_completion event;
5565 :
5566 3 : if (spdk_nvme_cpl_is_error(cpl)) {
5567 0 : SPDK_WARNLOG("AER request execute failed\n");
5568 0 : return;
5569 : }
5570 :
5571 3 : event.raw = cpl->cdw0;
5572 3 : if ((event.bits.async_event_type == SPDK_NVME_ASYNC_EVENT_TYPE_NOTICE) &&
5573 3 : (event.bits.async_event_info == SPDK_NVME_ASYNC_EVENT_NS_ATTR_CHANGED)) {
5574 2 : nvme_ctrlr_populate_namespaces(nvme_ctrlr, NULL);
5575 1 : } else if ((event.bits.async_event_type == SPDK_NVME_ASYNC_EVENT_TYPE_NOTICE) &&
5576 1 : (event.bits.async_event_info == SPDK_NVME_ASYNC_EVENT_ANA_CHANGE)) {
5577 1 : nvme_ctrlr_read_ana_log_page(nvme_ctrlr);
5578 : }
5579 : }
5580 :
5581 : static void
5582 53 : free_nvme_async_probe_ctx(struct nvme_async_probe_ctx *ctx)
5583 : {
5584 53 : spdk_keyring_put_key(ctx->drv_opts.tls_psk);
5585 53 : spdk_keyring_put_key(ctx->drv_opts.dhchap_key);
5586 53 : spdk_keyring_put_key(ctx->drv_opts.dhchap_ctrlr_key);
5587 53 : free(ctx);
5588 53 : }
5589 :
5590 : static void
5591 53 : populate_namespaces_cb(struct nvme_async_probe_ctx *ctx, int rc)
5592 : {
5593 53 : if (ctx->cb_fn) {
5594 53 : ctx->cb_fn(ctx->cb_ctx, ctx->reported_bdevs, rc);
5595 : }
5596 :
5597 53 : ctx->namespaces_populated = true;
5598 53 : if (ctx->probe_done) {
5599 : /* The probe was already completed, so we need to free the context
5600 : * here. This can happen for cases like OCSSD, where we need to
5601 : * send additional commands to the SSD after attach.
5602 : */
5603 32 : free_nvme_async_probe_ctx(ctx);
5604 : }
5605 53 : }
5606 :
5607 : static int
5608 20 : bdev_nvme_remove_poller(void *ctx)
5609 : {
5610 20 : struct spdk_nvme_transport_id trid_pcie;
5611 :
5612 20 : if (TAILQ_EMPTY(&g_nvme_bdev_ctrlrs)) {
5613 1 : spdk_poller_unregister(&g_hotplug_poller);
5614 1 : return SPDK_POLLER_IDLE;
5615 : }
5616 :
5617 19 : memset(&trid_pcie, 0, sizeof(trid_pcie));
5618 19 : spdk_nvme_trid_populate_transport(&trid_pcie, SPDK_NVME_TRANSPORT_PCIE);
5619 :
5620 19 : if (spdk_nvme_scan_attached(&trid_pcie)) {
5621 0 : SPDK_ERRLOG_RATELIMIT("spdk_nvme_scan_attached() failed\n");
5622 : }
5623 :
5624 19 : return SPDK_POLLER_BUSY;
5625 : }
5626 :
5627 : static void
5628 61 : nvme_ctrlr_create_done(struct nvme_ctrlr *nvme_ctrlr,
5629 : struct nvme_async_probe_ctx *ctx)
5630 : {
5631 61 : struct spdk_nvme_transport_id *trid = &nvme_ctrlr->active_path_id->trid;
5632 :
5633 61 : if (spdk_nvme_trtype_is_fabrics(trid->trtype)) {
5634 61 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "ctrlr was created to %s:%s\n",
5635 : trid->traddr, trid->trsvcid);
5636 : } else {
5637 0 : NVME_CTRLR_INFOLOG(nvme_ctrlr, "ctrlr was created\n");
5638 : }
5639 :
5640 61 : spdk_io_device_register(nvme_ctrlr,
5641 : bdev_nvme_create_ctrlr_channel_cb,
5642 : bdev_nvme_destroy_ctrlr_channel_cb,
5643 : sizeof(struct nvme_ctrlr_channel),
5644 61 : nvme_ctrlr->nbdev_ctrlr->name);
5645 :
5646 61 : nvme_ctrlr_populate_namespaces(nvme_ctrlr, ctx);
5647 :
5648 61 : if (g_hotplug_poller == NULL) {
5649 2 : g_hotplug_poller = SPDK_POLLER_REGISTER(bdev_nvme_remove_poller, NULL,
5650 : NVME_HOTPLUG_POLL_PERIOD_DEFAULT);
5651 : }
5652 61 : }
5653 :
5654 : static void
5655 31 : nvme_ctrlr_init_ana_log_page_done(void *_ctx, const struct spdk_nvme_cpl *cpl)
5656 : {
5657 31 : struct nvme_ctrlr *nvme_ctrlr = _ctx;
5658 31 : struct nvme_async_probe_ctx *ctx = nvme_ctrlr->probe_ctx;
5659 :
5660 31 : nvme_ctrlr->probe_ctx = NULL;
5661 :
5662 31 : if (spdk_nvme_cpl_is_error(cpl)) {
5663 0 : nvme_ctrlr_delete(nvme_ctrlr);
5664 :
5665 0 : if (ctx != NULL) {
5666 0 : ctx->reported_bdevs = 0;
5667 0 : populate_namespaces_cb(ctx, -1);
5668 : }
5669 0 : return;
5670 : }
5671 :
5672 31 : nvme_ctrlr_create_done(nvme_ctrlr, ctx);
5673 : }
5674 :
5675 : static int
5676 31 : nvme_ctrlr_init_ana_log_page(struct nvme_ctrlr *nvme_ctrlr,
5677 : struct nvme_async_probe_ctx *ctx)
5678 : {
5679 31 : struct spdk_nvme_ctrlr *ctrlr = nvme_ctrlr->ctrlr;
5680 : const struct spdk_nvme_ctrlr_data *cdata;
5681 : uint32_t ana_log_page_size;
5682 :
5683 31 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
5684 :
5685 : /* Set buffer size enough to include maximum number of allowed namespaces. */
5686 31 : ana_log_page_size = sizeof(struct spdk_nvme_ana_page) + cdata->nanagrpid *
5687 31 : sizeof(struct spdk_nvme_ana_group_descriptor) + cdata->mnan *
5688 : sizeof(uint32_t);
5689 :
5690 31 : nvme_ctrlr->ana_log_page = spdk_zmalloc(ana_log_page_size, 64, NULL,
5691 : SPDK_ENV_NUMA_ID_ANY, SPDK_MALLOC_DMA);
5692 31 : if (nvme_ctrlr->ana_log_page == NULL) {
5693 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "could not allocate ANA log page buffer\n");
5694 0 : return -ENXIO;
5695 : }
5696 :
5697 : /* Each descriptor in a ANA log page is not ensured to be 8-bytes aligned.
5698 : * Hence copy each descriptor to a temporary area when parsing it.
5699 : *
5700 : * Allocate a buffer whose size is as large as ANA log page buffer because
5701 : * we do not know the size of a descriptor until actually reading it.
5702 : */
5703 31 : nvme_ctrlr->copied_ana_desc = calloc(1, ana_log_page_size);
5704 31 : if (nvme_ctrlr->copied_ana_desc == NULL) {
5705 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "could not allocate a buffer to parse ANA descriptor\n");
5706 0 : return -ENOMEM;
5707 : }
5708 :
5709 31 : nvme_ctrlr->max_ana_log_page_size = ana_log_page_size;
5710 :
5711 31 : nvme_ctrlr->probe_ctx = ctx;
5712 :
5713 : /* Then, set the read size only to include the current active namespaces. */
5714 31 : ana_log_page_size = nvme_ctrlr_get_ana_log_page_size(nvme_ctrlr);
5715 :
5716 31 : if (ana_log_page_size > nvme_ctrlr->max_ana_log_page_size) {
5717 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "ANA log page size %" PRIu32 " is larger than allowed %" PRIu32 "\n",
5718 : ana_log_page_size, nvme_ctrlr->max_ana_log_page_size);
5719 0 : return -EINVAL;
5720 : }
5721 :
5722 31 : return spdk_nvme_ctrlr_cmd_get_log_page(ctrlr,
5723 : SPDK_NVME_LOG_ASYMMETRIC_NAMESPACE_ACCESS,
5724 : SPDK_NVME_GLOBAL_NS_TAG,
5725 31 : nvme_ctrlr->ana_log_page,
5726 : ana_log_page_size, 0,
5727 : nvme_ctrlr_init_ana_log_page_done,
5728 : nvme_ctrlr);
5729 : }
5730 :
5731 : /* hostnqn and subnqn were already verified before attaching a controller.
5732 : * Hence check only the multipath capability and cntlid here.
5733 : */
5734 : static bool
5735 16 : bdev_nvme_check_multipath(struct nvme_bdev_ctrlr *nbdev_ctrlr, struct spdk_nvme_ctrlr *ctrlr)
5736 : {
5737 : struct nvme_ctrlr *tmp;
5738 : const struct spdk_nvme_ctrlr_data *cdata, *tmp_cdata;
5739 :
5740 16 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
5741 :
5742 16 : if (!cdata->cmic.multi_ctrlr) {
5743 0 : SPDK_ERRLOG("Ctrlr%u does not support multipath.\n", cdata->cntlid);
5744 0 : return false;
5745 : }
5746 :
5747 33 : TAILQ_FOREACH(tmp, &nbdev_ctrlr->ctrlrs, tailq) {
5748 18 : tmp_cdata = spdk_nvme_ctrlr_get_data(tmp->ctrlr);
5749 :
5750 18 : if (!tmp_cdata->cmic.multi_ctrlr) {
5751 0 : NVME_CTRLR_ERRLOG(tmp, "Ctrlr%u does not support multipath.\n", cdata->cntlid);
5752 0 : return false;
5753 : }
5754 18 : if (cdata->cntlid == tmp_cdata->cntlid) {
5755 1 : NVME_CTRLR_ERRLOG(tmp, "cntlid %u are duplicated.\n", tmp_cdata->cntlid);
5756 1 : return false;
5757 : }
5758 : }
5759 :
5760 15 : return true;
5761 : }
5762 :
5763 :
5764 : static int
5765 62 : nvme_bdev_ctrlr_create(const char *name, struct nvme_ctrlr *nvme_ctrlr)
5766 : {
5767 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
5768 62 : struct spdk_nvme_ctrlr *ctrlr = nvme_ctrlr->ctrlr;
5769 : struct nvme_ctrlr *nctrlr;
5770 62 : int rc = 0;
5771 :
5772 62 : pthread_mutex_lock(&g_bdev_nvme_mutex);
5773 :
5774 62 : nbdev_ctrlr = nvme_bdev_ctrlr_get_by_name(name);
5775 62 : if (nbdev_ctrlr != NULL) {
5776 16 : if (!bdev_nvme_check_multipath(nbdev_ctrlr, ctrlr)) {
5777 1 : rc = -EINVAL;
5778 1 : goto exit;
5779 : }
5780 32 : TAILQ_FOREACH(nctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
5781 17 : if (nctrlr->opts.multipath != nvme_ctrlr->opts.multipath) {
5782 : /* All controllers with the same name must be configured the same
5783 : * way, either for multipath or failover. If the configuration doesn't
5784 : * match - report error.
5785 : */
5786 0 : rc = -EINVAL;
5787 0 : goto exit;
5788 : }
5789 : }
5790 : } else {
5791 46 : nbdev_ctrlr = calloc(1, sizeof(*nbdev_ctrlr));
5792 46 : if (nbdev_ctrlr == NULL) {
5793 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to allocate nvme_bdev_ctrlr.\n");
5794 0 : rc = -ENOMEM;
5795 0 : goto exit;
5796 : }
5797 46 : nbdev_ctrlr->name = strdup(name);
5798 46 : if (nbdev_ctrlr->name == NULL) {
5799 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "Failed to allocate name of nvme_bdev_ctrlr.\n");
5800 0 : free(nbdev_ctrlr);
5801 0 : goto exit;
5802 : }
5803 46 : TAILQ_INIT(&nbdev_ctrlr->ctrlrs);
5804 46 : TAILQ_INIT(&nbdev_ctrlr->bdevs);
5805 46 : TAILQ_INSERT_TAIL(&g_nvme_bdev_ctrlrs, nbdev_ctrlr, tailq);
5806 : }
5807 61 : nvme_ctrlr->nbdev_ctrlr = nbdev_ctrlr;
5808 61 : TAILQ_INSERT_TAIL(&nbdev_ctrlr->ctrlrs, nvme_ctrlr, tailq);
5809 62 : exit:
5810 62 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
5811 62 : return rc;
5812 : }
5813 :
5814 : static int
5815 62 : nvme_ctrlr_create(struct spdk_nvme_ctrlr *ctrlr,
5816 : const char *name,
5817 : const struct spdk_nvme_transport_id *trid,
5818 : struct nvme_async_probe_ctx *ctx)
5819 : {
5820 : struct nvme_ctrlr *nvme_ctrlr;
5821 : struct nvme_path_id *path_id;
5822 : const struct spdk_nvme_ctrlr_data *cdata;
5823 62 : struct spdk_event_handler_opts opts = {
5824 : .opts_size = SPDK_SIZEOF(&opts, fd_type),
5825 : };
5826 : uint64_t period;
5827 : int fd, rc;
5828 :
5829 62 : nvme_ctrlr = calloc(1, sizeof(*nvme_ctrlr));
5830 62 : if (nvme_ctrlr == NULL) {
5831 0 : SPDK_ERRLOG("Failed to allocate device struct\n");
5832 0 : return -ENOMEM;
5833 : }
5834 :
5835 62 : rc = pthread_mutex_init(&nvme_ctrlr->mutex, NULL);
5836 62 : if (rc != 0) {
5837 0 : free(nvme_ctrlr);
5838 0 : return rc;
5839 : }
5840 :
5841 62 : TAILQ_INIT(&nvme_ctrlr->trids);
5842 62 : TAILQ_INIT(&nvme_ctrlr->pending_resets);
5843 62 : RB_INIT(&nvme_ctrlr->namespaces);
5844 :
5845 : /* Get another reference to the key, so the first one can be released from probe_ctx */
5846 62 : if (ctx != NULL) {
5847 48 : if (ctx->drv_opts.tls_psk != NULL) {
5848 0 : nvme_ctrlr->psk = spdk_keyring_get_key(
5849 : spdk_key_get_name(ctx->drv_opts.tls_psk));
5850 0 : if (nvme_ctrlr->psk == NULL) {
5851 : /* Could only happen if the key was removed in the meantime */
5852 0 : SPDK_ERRLOG("Couldn't get a reference to the key '%s'\n",
5853 : spdk_key_get_name(ctx->drv_opts.tls_psk));
5854 0 : rc = -ENOKEY;
5855 0 : goto err;
5856 : }
5857 : }
5858 :
5859 48 : if (ctx->drv_opts.dhchap_key != NULL) {
5860 0 : nvme_ctrlr->dhchap_key = spdk_keyring_get_key(
5861 : spdk_key_get_name(ctx->drv_opts.dhchap_key));
5862 0 : if (nvme_ctrlr->dhchap_key == NULL) {
5863 0 : SPDK_ERRLOG("Couldn't get a reference to the key '%s'\n",
5864 : spdk_key_get_name(ctx->drv_opts.dhchap_key));
5865 0 : rc = -ENOKEY;
5866 0 : goto err;
5867 : }
5868 : }
5869 :
5870 48 : if (ctx->drv_opts.dhchap_ctrlr_key != NULL) {
5871 0 : nvme_ctrlr->dhchap_ctrlr_key =
5872 0 : spdk_keyring_get_key(
5873 : spdk_key_get_name(ctx->drv_opts.dhchap_ctrlr_key));
5874 0 : if (nvme_ctrlr->dhchap_ctrlr_key == NULL) {
5875 0 : SPDK_ERRLOG("Couldn't get a reference to the key '%s'\n",
5876 : spdk_key_get_name(ctx->drv_opts.dhchap_ctrlr_key));
5877 0 : rc = -ENOKEY;
5878 0 : goto err;
5879 : }
5880 : }
5881 : }
5882 :
5883 : /* Check if we manage to enable interrupts on the controller. */
5884 62 : if (spdk_interrupt_mode_is_enabled() && ctx != NULL && !ctx->drv_opts.enable_interrupts) {
5885 0 : SPDK_ERRLOG("Failed to enable interrupts on the controller\n");
5886 0 : rc = -ENOTSUP;
5887 0 : goto err;
5888 : }
5889 :
5890 62 : path_id = calloc(1, sizeof(*path_id));
5891 62 : if (path_id == NULL) {
5892 0 : SPDK_ERRLOG("Failed to allocate trid entry pointer\n");
5893 0 : rc = -ENOMEM;
5894 0 : goto err;
5895 : }
5896 :
5897 62 : path_id->trid = *trid;
5898 62 : if (ctx != NULL) {
5899 48 : memcpy(path_id->hostid.hostaddr, ctx->drv_opts.src_addr, sizeof(path_id->hostid.hostaddr));
5900 48 : memcpy(path_id->hostid.hostsvcid, ctx->drv_opts.src_svcid, sizeof(path_id->hostid.hostsvcid));
5901 : }
5902 62 : nvme_ctrlr->active_path_id = path_id;
5903 62 : TAILQ_INSERT_HEAD(&nvme_ctrlr->trids, path_id, link);
5904 :
5905 62 : nvme_ctrlr->thread = spdk_get_thread();
5906 62 : nvme_ctrlr->ctrlr = ctrlr;
5907 62 : nvme_ctrlr->ref = 1;
5908 :
5909 62 : if (spdk_nvme_ctrlr_is_ocssd_supported(ctrlr)) {
5910 0 : SPDK_ERRLOG("OCSSDs are not supported");
5911 0 : rc = -ENOTSUP;
5912 0 : goto err;
5913 : }
5914 :
5915 62 : if (ctx != NULL) {
5916 48 : memcpy(&nvme_ctrlr->opts, &ctx->bdev_opts, sizeof(ctx->bdev_opts));
5917 : } else {
5918 14 : spdk_bdev_nvme_get_default_ctrlr_opts(&nvme_ctrlr->opts);
5919 : }
5920 :
5921 62 : period = spdk_interrupt_mode_is_enabled() ? 0 : g_opts.nvme_adminq_poll_period_us;
5922 :
5923 62 : nvme_ctrlr->adminq_timer_poller = SPDK_POLLER_REGISTER(bdev_nvme_poll_adminq, nvme_ctrlr,
5924 : period);
5925 :
5926 62 : if (spdk_interrupt_mode_is_enabled()) {
5927 0 : spdk_poller_register_interrupt(nvme_ctrlr->adminq_timer_poller, NULL, NULL);
5928 :
5929 0 : fd = spdk_nvme_ctrlr_get_admin_qp_fd(nvme_ctrlr->ctrlr, &opts);
5930 0 : if (fd < 0) {
5931 0 : rc = fd;
5932 0 : goto err;
5933 : }
5934 :
5935 0 : nvme_ctrlr->intr = SPDK_INTERRUPT_REGISTER_EXT(fd, bdev_nvme_poll_adminq,
5936 : nvme_ctrlr, &opts);
5937 0 : if (!nvme_ctrlr->intr) {
5938 0 : rc = -EINVAL;
5939 0 : goto err;
5940 : }
5941 : }
5942 :
5943 62 : if (g_opts.timeout_us > 0) {
5944 : /* Register timeout callback. Timeout values for IO vs. admin reqs can be different. */
5945 : /* If timeout_admin_us is 0 (not specified), admin uses same timeout as IO. */
5946 0 : uint64_t adm_timeout_us = (g_opts.timeout_admin_us == 0) ?
5947 0 : g_opts.timeout_us : g_opts.timeout_admin_us;
5948 0 : spdk_nvme_ctrlr_register_timeout_callback(ctrlr, g_opts.timeout_us,
5949 : adm_timeout_us, timeout_cb, nvme_ctrlr);
5950 : }
5951 :
5952 62 : spdk_nvme_ctrlr_register_aer_callback(ctrlr, aer_cb, nvme_ctrlr);
5953 62 : spdk_nvme_ctrlr_set_remove_cb(ctrlr, remove_cb, nvme_ctrlr);
5954 :
5955 62 : if (spdk_nvme_ctrlr_get_flags(ctrlr) &
5956 : SPDK_NVME_CTRLR_SECURITY_SEND_RECV_SUPPORTED) {
5957 0 : nvme_ctrlr->opal_dev = spdk_opal_dev_construct(ctrlr);
5958 : }
5959 :
5960 62 : rc = nvme_bdev_ctrlr_create(name, nvme_ctrlr);
5961 62 : if (rc != 0) {
5962 1 : goto err;
5963 : }
5964 :
5965 61 : cdata = spdk_nvme_ctrlr_get_data(ctrlr);
5966 :
5967 61 : if (cdata->cmic.ana_reporting) {
5968 31 : rc = nvme_ctrlr_init_ana_log_page(nvme_ctrlr, ctx);
5969 31 : if (rc == 0) {
5970 31 : return 0;
5971 : }
5972 : } else {
5973 30 : nvme_ctrlr_create_done(nvme_ctrlr, ctx);
5974 30 : return 0;
5975 : }
5976 :
5977 1 : err:
5978 1 : nvme_ctrlr_delete(nvme_ctrlr);
5979 1 : return rc;
5980 : }
5981 :
5982 : void
5983 34 : spdk_bdev_nvme_get_default_ctrlr_opts(struct spdk_bdev_nvme_ctrlr_opts *opts)
5984 : {
5985 34 : opts->prchk_flags = 0;
5986 34 : opts->ctrlr_loss_timeout_sec = g_opts.ctrlr_loss_timeout_sec;
5987 34 : opts->reconnect_delay_sec = g_opts.reconnect_delay_sec;
5988 34 : opts->fast_io_fail_timeout_sec = g_opts.fast_io_fail_timeout_sec;
5989 34 : opts->multipath = true;
5990 34 : }
5991 :
5992 : static void
5993 0 : attach_cb(void *cb_ctx, const struct spdk_nvme_transport_id *trid,
5994 : struct spdk_nvme_ctrlr *ctrlr, const struct spdk_nvme_ctrlr_opts *drv_opts)
5995 : {
5996 : char *name;
5997 :
5998 0 : name = spdk_sprintf_alloc("HotInNvme%d", g_hot_insert_nvme_controller_index++);
5999 0 : if (!name) {
6000 0 : SPDK_ERRLOG("Failed to assign name to NVMe device\n");
6001 0 : return;
6002 : }
6003 :
6004 0 : if (nvme_ctrlr_create(ctrlr, name, trid, NULL) == 0) {
6005 0 : SPDK_DEBUGLOG(bdev_nvme, "Attached to %s (%s)\n", trid->traddr, name);
6006 : } else {
6007 0 : SPDK_ERRLOG("Failed to attach to %s (%s)\n", trid->traddr, name);
6008 : }
6009 :
6010 0 : free(name);
6011 : }
6012 :
6013 : static void
6014 61 : _nvme_ctrlr_destruct(void *ctx)
6015 : {
6016 61 : struct nvme_ctrlr *nvme_ctrlr = ctx;
6017 :
6018 61 : nvme_ctrlr_depopulate_namespaces(nvme_ctrlr);
6019 61 : nvme_ctrlr_put_ref(nvme_ctrlr);
6020 61 : }
6021 :
6022 : static int
6023 58 : bdev_nvme_delete_ctrlr_unsafe(struct nvme_ctrlr *nvme_ctrlr, bool hotplug)
6024 : {
6025 : struct nvme_probe_skip_entry *entry;
6026 :
6027 : /* The controller's destruction was already started */
6028 58 : if (nvme_ctrlr->destruct) {
6029 0 : return -EALREADY;
6030 : }
6031 :
6032 58 : if (!hotplug &&
6033 58 : nvme_ctrlr->active_path_id->trid.trtype == SPDK_NVME_TRANSPORT_PCIE) {
6034 0 : entry = calloc(1, sizeof(*entry));
6035 0 : if (!entry) {
6036 0 : return -ENOMEM;
6037 : }
6038 0 : entry->trid = nvme_ctrlr->active_path_id->trid;
6039 0 : TAILQ_INSERT_TAIL(&g_skipped_nvme_ctrlrs, entry, tailq);
6040 : }
6041 :
6042 58 : nvme_ctrlr->destruct = true;
6043 58 : return 0;
6044 : }
6045 :
6046 : static int
6047 2 : bdev_nvme_delete_ctrlr(struct nvme_ctrlr *nvme_ctrlr, bool hotplug)
6048 : {
6049 : int rc;
6050 :
6051 2 : pthread_mutex_lock(&nvme_ctrlr->mutex);
6052 2 : rc = bdev_nvme_delete_ctrlr_unsafe(nvme_ctrlr, hotplug);
6053 2 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
6054 :
6055 2 : if (rc == 0) {
6056 2 : _nvme_ctrlr_destruct(nvme_ctrlr);
6057 0 : } else if (rc == -EALREADY) {
6058 0 : rc = 0;
6059 : }
6060 :
6061 2 : return rc;
6062 : }
6063 :
6064 : static void
6065 0 : remove_cb(void *cb_ctx, struct spdk_nvme_ctrlr *ctrlr)
6066 : {
6067 0 : struct nvme_ctrlr *nvme_ctrlr = cb_ctx;
6068 :
6069 0 : bdev_nvme_delete_ctrlr(nvme_ctrlr, true);
6070 0 : }
6071 :
6072 : static int
6073 0 : bdev_nvme_hotplug_probe(void *arg)
6074 : {
6075 0 : if (g_hotplug_probe_ctx == NULL) {
6076 0 : spdk_poller_unregister(&g_hotplug_probe_poller);
6077 0 : return SPDK_POLLER_IDLE;
6078 : }
6079 :
6080 0 : if (spdk_nvme_probe_poll_async(g_hotplug_probe_ctx) != -EAGAIN) {
6081 0 : g_hotplug_probe_ctx = NULL;
6082 0 : spdk_poller_unregister(&g_hotplug_probe_poller);
6083 : }
6084 :
6085 0 : return SPDK_POLLER_BUSY;
6086 : }
6087 :
6088 : static int
6089 0 : bdev_nvme_hotplug(void *arg)
6090 : {
6091 0 : struct spdk_nvme_transport_id trid_pcie;
6092 :
6093 0 : if (g_hotplug_probe_ctx) {
6094 0 : return SPDK_POLLER_BUSY;
6095 : }
6096 :
6097 0 : memset(&trid_pcie, 0, sizeof(trid_pcie));
6098 0 : spdk_nvme_trid_populate_transport(&trid_pcie, SPDK_NVME_TRANSPORT_PCIE);
6099 :
6100 0 : g_hotplug_probe_ctx = spdk_nvme_probe_async(&trid_pcie, NULL,
6101 : hotplug_probe_cb, attach_cb, NULL);
6102 :
6103 0 : if (g_hotplug_probe_ctx) {
6104 0 : assert(g_hotplug_probe_poller == NULL);
6105 0 : g_hotplug_probe_poller = SPDK_POLLER_REGISTER(bdev_nvme_hotplug_probe, NULL, 1000);
6106 : }
6107 :
6108 0 : return SPDK_POLLER_BUSY;
6109 : }
6110 :
6111 : void
6112 0 : bdev_nvme_get_opts(struct spdk_bdev_nvme_opts *opts)
6113 : {
6114 0 : *opts = g_opts;
6115 0 : }
6116 :
6117 : static bool bdev_nvme_check_io_error_resiliency_params(int32_t ctrlr_loss_timeout_sec,
6118 : uint32_t reconnect_delay_sec,
6119 : uint32_t fast_io_fail_timeout_sec);
6120 :
6121 : static int
6122 0 : bdev_nvme_validate_opts(const struct spdk_bdev_nvme_opts *opts)
6123 : {
6124 0 : if ((opts->timeout_us == 0) && (opts->timeout_admin_us != 0)) {
6125 : /* Can't set timeout_admin_us without also setting timeout_us */
6126 0 : SPDK_WARNLOG("Invalid options: Can't have (timeout_us == 0) with (timeout_admin_us > 0)\n");
6127 0 : return -EINVAL;
6128 : }
6129 :
6130 0 : if (opts->bdev_retry_count < -1) {
6131 0 : SPDK_WARNLOG("Invalid option: bdev_retry_count can't be less than -1.\n");
6132 0 : return -EINVAL;
6133 : }
6134 :
6135 0 : if (!bdev_nvme_check_io_error_resiliency_params(opts->ctrlr_loss_timeout_sec,
6136 0 : opts->reconnect_delay_sec,
6137 0 : opts->fast_io_fail_timeout_sec)) {
6138 0 : return -EINVAL;
6139 : }
6140 :
6141 0 : return 0;
6142 : }
6143 :
6144 : int
6145 0 : bdev_nvme_set_opts(const struct spdk_bdev_nvme_opts *opts)
6146 : {
6147 : int ret;
6148 :
6149 0 : ret = bdev_nvme_validate_opts(opts);
6150 0 : if (ret) {
6151 0 : SPDK_WARNLOG("Failed to set nvme opts.\n");
6152 0 : return ret;
6153 : }
6154 :
6155 0 : if (g_bdev_nvme_init_thread != NULL) {
6156 0 : if (!TAILQ_EMPTY(&g_nvme_bdev_ctrlrs)) {
6157 0 : return -EPERM;
6158 : }
6159 : }
6160 :
6161 0 : if (opts->rdma_srq_size != 0 ||
6162 0 : opts->rdma_max_cq_size != 0 ||
6163 0 : opts->rdma_cm_event_timeout_ms != 0) {
6164 0 : struct spdk_nvme_transport_opts drv_opts;
6165 :
6166 0 : spdk_nvme_transport_get_opts(&drv_opts, sizeof(drv_opts));
6167 0 : if (opts->rdma_srq_size != 0) {
6168 0 : drv_opts.rdma_srq_size = opts->rdma_srq_size;
6169 : }
6170 0 : if (opts->rdma_max_cq_size != 0) {
6171 0 : drv_opts.rdma_max_cq_size = opts->rdma_max_cq_size;
6172 : }
6173 0 : if (opts->rdma_cm_event_timeout_ms != 0) {
6174 0 : drv_opts.rdma_cm_event_timeout_ms = opts->rdma_cm_event_timeout_ms;
6175 : }
6176 :
6177 0 : ret = spdk_nvme_transport_set_opts(&drv_opts, sizeof(drv_opts));
6178 0 : if (ret) {
6179 0 : SPDK_ERRLOG("Failed to set NVMe transport opts.\n");
6180 0 : return ret;
6181 : }
6182 : }
6183 :
6184 0 : g_opts = *opts;
6185 :
6186 0 : return 0;
6187 : }
6188 :
6189 : struct set_nvme_hotplug_ctx {
6190 : uint64_t period_us;
6191 : bool enabled;
6192 : spdk_msg_fn fn;
6193 : void *fn_ctx;
6194 : };
6195 :
6196 : static void
6197 0 : set_nvme_hotplug_period_cb(void *_ctx)
6198 : {
6199 0 : struct set_nvme_hotplug_ctx *ctx = _ctx;
6200 :
6201 0 : spdk_poller_unregister(&g_hotplug_poller);
6202 0 : if (ctx->enabled) {
6203 0 : g_hotplug_poller = SPDK_POLLER_REGISTER(bdev_nvme_hotplug, NULL, ctx->period_us);
6204 : } else {
6205 0 : g_hotplug_poller = SPDK_POLLER_REGISTER(bdev_nvme_remove_poller, NULL,
6206 : NVME_HOTPLUG_POLL_PERIOD_DEFAULT);
6207 : }
6208 :
6209 0 : g_nvme_hotplug_poll_period_us = ctx->period_us;
6210 0 : g_nvme_hotplug_enabled = ctx->enabled;
6211 0 : if (ctx->fn) {
6212 0 : ctx->fn(ctx->fn_ctx);
6213 : }
6214 :
6215 0 : free(ctx);
6216 0 : }
6217 :
6218 : int
6219 0 : bdev_nvme_set_hotplug(bool enabled, uint64_t period_us, spdk_msg_fn cb, void *cb_ctx)
6220 : {
6221 : struct set_nvme_hotplug_ctx *ctx;
6222 :
6223 0 : if (enabled == true && !spdk_process_is_primary()) {
6224 0 : return -EPERM;
6225 : }
6226 :
6227 0 : ctx = calloc(1, sizeof(*ctx));
6228 0 : if (ctx == NULL) {
6229 0 : return -ENOMEM;
6230 : }
6231 :
6232 0 : period_us = period_us == 0 ? NVME_HOTPLUG_POLL_PERIOD_DEFAULT : period_us;
6233 0 : ctx->period_us = spdk_min(period_us, NVME_HOTPLUG_POLL_PERIOD_MAX);
6234 0 : ctx->enabled = enabled;
6235 0 : ctx->fn = cb;
6236 0 : ctx->fn_ctx = cb_ctx;
6237 :
6238 0 : spdk_thread_send_msg(g_bdev_nvme_init_thread, set_nvme_hotplug_period_cb, ctx);
6239 0 : return 0;
6240 : }
6241 :
6242 : static void
6243 47 : nvme_ctrlr_populate_namespaces_done(struct nvme_ctrlr *nvme_ctrlr,
6244 : struct nvme_async_probe_ctx *ctx)
6245 : {
6246 : struct nvme_ns *nvme_ns;
6247 : struct nvme_bdev *nvme_bdev;
6248 : size_t j;
6249 :
6250 47 : assert(nvme_ctrlr != NULL);
6251 :
6252 47 : if (ctx->names == NULL) {
6253 0 : ctx->reported_bdevs = 0;
6254 0 : populate_namespaces_cb(ctx, 0);
6255 0 : return;
6256 : }
6257 :
6258 : /*
6259 : * Report the new bdevs that were created in this call.
6260 : * There can be more than one bdev per NVMe controller.
6261 : */
6262 47 : j = 0;
6263 47 : nvme_ns = nvme_ctrlr_get_first_active_ns(nvme_ctrlr);
6264 96 : while (nvme_ns != NULL) {
6265 49 : nvme_bdev = nvme_ns->bdev;
6266 49 : if (j < ctx->max_bdevs) {
6267 49 : ctx->names[j] = nvme_bdev->disk.name;
6268 49 : j++;
6269 : } else {
6270 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr,
6271 : "Maximum number of namespaces supported per NVMe controller is %du. "
6272 : "Unable to return all names of created bdevs\n",
6273 : ctx->max_bdevs);
6274 0 : ctx->reported_bdevs = 0;
6275 0 : populate_namespaces_cb(ctx, -ERANGE);
6276 0 : return;
6277 : }
6278 :
6279 49 : nvme_ns = nvme_ctrlr_get_next_active_ns(nvme_ctrlr, nvme_ns);
6280 : }
6281 :
6282 47 : ctx->reported_bdevs = j;
6283 47 : populate_namespaces_cb(ctx, 0);
6284 : }
6285 :
6286 : static int
6287 9 : bdev_nvme_check_secondary_trid(struct nvme_ctrlr *nvme_ctrlr,
6288 : struct spdk_nvme_ctrlr *new_ctrlr,
6289 : struct spdk_nvme_transport_id *trid)
6290 : {
6291 : struct nvme_path_id *tmp_trid;
6292 :
6293 9 : if (trid->trtype == SPDK_NVME_TRANSPORT_PCIE) {
6294 0 : NVME_CTRLR_ERRLOG(nvme_ctrlr, "PCIe failover is not supported.\n");
6295 0 : return -ENOTSUP;
6296 : }
6297 :
6298 : /* Currently we only support failover to the same transport type. */
6299 9 : if (nvme_ctrlr->active_path_id->trid.trtype != trid->trtype) {
6300 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr,
6301 : "Failover from trtype: %s to a different trtype: %s is not supported currently\n",
6302 : spdk_nvme_transport_id_trtype_str(nvme_ctrlr->active_path_id->trid.trtype),
6303 : spdk_nvme_transport_id_trtype_str(trid->trtype));
6304 0 : return -EINVAL;
6305 : }
6306 :
6307 :
6308 : /* Currently we only support failover to the same NQN. */
6309 9 : if (strncmp(trid->subnqn, nvme_ctrlr->active_path_id->trid.subnqn, SPDK_NVMF_NQN_MAX_LEN)) {
6310 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr,
6311 : "Failover from subnqn: %s to a different subnqn: %s is not supported currently\n",
6312 : nvme_ctrlr->active_path_id->trid.subnqn, trid->subnqn);
6313 0 : return -EINVAL;
6314 : }
6315 :
6316 : /* Skip all the other checks if we've already registered this path. */
6317 21 : TAILQ_FOREACH(tmp_trid, &nvme_ctrlr->trids, link) {
6318 12 : if (!spdk_nvme_transport_id_compare(&tmp_trid->trid, trid)) {
6319 0 : NVME_CTRLR_WARNLOG(nvme_ctrlr, "This path (traddr: %s subnqn: %s) is already registered\n",
6320 : trid->traddr, trid->subnqn);
6321 0 : return -EALREADY;
6322 : }
6323 : }
6324 :
6325 9 : return 0;
6326 : }
6327 :
6328 : static int
6329 9 : bdev_nvme_check_secondary_namespace(struct nvme_ctrlr *nvme_ctrlr,
6330 : struct spdk_nvme_ctrlr *new_ctrlr)
6331 : {
6332 : struct nvme_ns *nvme_ns;
6333 : struct spdk_nvme_ns *new_ns;
6334 :
6335 9 : nvme_ns = nvme_ctrlr_get_first_active_ns(nvme_ctrlr);
6336 9 : while (nvme_ns != NULL) {
6337 0 : new_ns = spdk_nvme_ctrlr_get_ns(new_ctrlr, nvme_ns->id);
6338 0 : assert(new_ns != NULL);
6339 :
6340 0 : if (!bdev_nvme_compare_ns(nvme_ns->ns, new_ns)) {
6341 0 : return -EINVAL;
6342 : }
6343 :
6344 0 : nvme_ns = nvme_ctrlr_get_next_active_ns(nvme_ctrlr, nvme_ns);
6345 : }
6346 :
6347 9 : return 0;
6348 : }
6349 :
6350 : static int
6351 9 : _bdev_nvme_add_secondary_trid(struct nvme_ctrlr *nvme_ctrlr,
6352 : struct spdk_nvme_transport_id *trid)
6353 : {
6354 : struct nvme_path_id *active_id, *new_trid, *tmp_trid;
6355 :
6356 9 : new_trid = calloc(1, sizeof(*new_trid));
6357 9 : if (new_trid == NULL) {
6358 0 : return -ENOMEM;
6359 : }
6360 9 : new_trid->trid = *trid;
6361 :
6362 9 : active_id = nvme_ctrlr->active_path_id;
6363 9 : assert(active_id != NULL);
6364 9 : assert(active_id == TAILQ_FIRST(&nvme_ctrlr->trids));
6365 :
6366 : /* Skip the active trid not to replace it until it is failed. */
6367 9 : tmp_trid = TAILQ_NEXT(active_id, link);
6368 9 : if (tmp_trid == NULL) {
6369 6 : goto add_tail;
6370 : }
6371 :
6372 : /* It means the trid is faled if its last failed time is non-zero.
6373 : * Insert the new alternate trid before any failed trid.
6374 : */
6375 5 : TAILQ_FOREACH_FROM(tmp_trid, &nvme_ctrlr->trids, link) {
6376 3 : if (tmp_trid->last_failed_tsc != 0) {
6377 1 : TAILQ_INSERT_BEFORE(tmp_trid, new_trid, link);
6378 1 : return 0;
6379 : }
6380 : }
6381 :
6382 2 : add_tail:
6383 8 : TAILQ_INSERT_TAIL(&nvme_ctrlr->trids, new_trid, link);
6384 8 : return 0;
6385 : }
6386 :
6387 : /* This is the case that a secondary path is added to an existing
6388 : * nvme_ctrlr for failover. After checking if it can access the same
6389 : * namespaces as the primary path, it is disconnected until failover occurs.
6390 : */
6391 : static int
6392 9 : bdev_nvme_add_secondary_trid(struct nvme_ctrlr *nvme_ctrlr,
6393 : struct spdk_nvme_ctrlr *new_ctrlr,
6394 : struct spdk_nvme_transport_id *trid)
6395 : {
6396 : int rc;
6397 :
6398 9 : assert(nvme_ctrlr != NULL);
6399 :
6400 9 : pthread_mutex_lock(&nvme_ctrlr->mutex);
6401 :
6402 9 : rc = bdev_nvme_check_secondary_trid(nvme_ctrlr, new_ctrlr, trid);
6403 9 : if (rc != 0) {
6404 0 : goto exit;
6405 : }
6406 :
6407 9 : rc = bdev_nvme_check_secondary_namespace(nvme_ctrlr, new_ctrlr);
6408 9 : if (rc != 0) {
6409 0 : goto exit;
6410 : }
6411 :
6412 9 : rc = _bdev_nvme_add_secondary_trid(nvme_ctrlr, trid);
6413 :
6414 9 : exit:
6415 9 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
6416 :
6417 9 : spdk_nvme_detach(new_ctrlr);
6418 :
6419 9 : return rc;
6420 : }
6421 :
6422 : static void
6423 48 : connect_attach_cb(void *cb_ctx, const struct spdk_nvme_transport_id *trid,
6424 : struct spdk_nvme_ctrlr *ctrlr, const struct spdk_nvme_ctrlr_opts *opts)
6425 : {
6426 48 : struct spdk_nvme_ctrlr_opts *user_opts = cb_ctx;
6427 : struct nvme_async_probe_ctx *ctx;
6428 : int rc;
6429 :
6430 48 : ctx = SPDK_CONTAINEROF(user_opts, struct nvme_async_probe_ctx, drv_opts);
6431 48 : ctx->ctrlr_attached = true;
6432 :
6433 48 : rc = nvme_ctrlr_create(ctrlr, ctx->base_name, &ctx->trid, ctx);
6434 48 : if (rc != 0) {
6435 1 : ctx->reported_bdevs = 0;
6436 1 : populate_namespaces_cb(ctx, rc);
6437 : }
6438 48 : }
6439 :
6440 :
6441 : static void
6442 4 : connect_set_failover_cb(void *cb_ctx, const struct spdk_nvme_transport_id *trid,
6443 : struct spdk_nvme_ctrlr *ctrlr,
6444 : const struct spdk_nvme_ctrlr_opts *opts)
6445 : {
6446 4 : struct spdk_nvme_ctrlr_opts *user_opts = cb_ctx;
6447 : struct nvme_ctrlr *nvme_ctrlr;
6448 : struct nvme_async_probe_ctx *ctx;
6449 : int rc;
6450 :
6451 4 : ctx = SPDK_CONTAINEROF(user_opts, struct nvme_async_probe_ctx, drv_opts);
6452 4 : ctx->ctrlr_attached = true;
6453 :
6454 4 : nvme_ctrlr = nvme_ctrlr_get_by_name(ctx->base_name);
6455 4 : if (nvme_ctrlr) {
6456 4 : rc = bdev_nvme_add_secondary_trid(nvme_ctrlr, ctrlr, &ctx->trid);
6457 : } else {
6458 0 : rc = -ENODEV;
6459 : }
6460 :
6461 4 : ctx->reported_bdevs = 0;
6462 4 : populate_namespaces_cb(ctx, rc);
6463 4 : }
6464 :
6465 : static int
6466 53 : bdev_nvme_async_poll(void *arg)
6467 : {
6468 53 : struct nvme_async_probe_ctx *ctx = arg;
6469 : int rc;
6470 :
6471 53 : rc = spdk_nvme_probe_poll_async(ctx->probe_ctx);
6472 53 : if (spdk_unlikely(rc != -EAGAIN)) {
6473 53 : ctx->probe_done = true;
6474 53 : spdk_poller_unregister(&ctx->poller);
6475 53 : if (!ctx->ctrlr_attached) {
6476 : /* The probe is done, but no controller was attached.
6477 : * That means we had a failure, so report -EIO back to
6478 : * the caller (usually the RPC). populate_namespaces_cb()
6479 : * will take care of freeing the nvme_async_probe_ctx.
6480 : */
6481 1 : ctx->reported_bdevs = 0;
6482 1 : populate_namespaces_cb(ctx, -EIO);
6483 52 : } else if (ctx->namespaces_populated) {
6484 : /* The namespaces for the attached controller were all
6485 : * populated and the response was already sent to the
6486 : * caller (usually the RPC). So free the context here.
6487 : */
6488 21 : free_nvme_async_probe_ctx(ctx);
6489 : }
6490 : }
6491 :
6492 53 : return SPDK_POLLER_BUSY;
6493 : }
6494 :
6495 : static bool
6496 72 : bdev_nvme_check_io_error_resiliency_params(int32_t ctrlr_loss_timeout_sec,
6497 : uint32_t reconnect_delay_sec,
6498 : uint32_t fast_io_fail_timeout_sec)
6499 : {
6500 72 : if (ctrlr_loss_timeout_sec < -1) {
6501 1 : SPDK_ERRLOG("ctrlr_loss_timeout_sec can't be less than -1.\n");
6502 1 : return false;
6503 71 : } else if (ctrlr_loss_timeout_sec == -1) {
6504 14 : if (reconnect_delay_sec == 0) {
6505 1 : SPDK_ERRLOG("reconnect_delay_sec can't be 0 if ctrlr_loss_timeout_sec is not 0.\n");
6506 1 : return false;
6507 13 : } else if (fast_io_fail_timeout_sec != 0 &&
6508 : fast_io_fail_timeout_sec < reconnect_delay_sec) {
6509 1 : SPDK_ERRLOG("reconnect_delay_sec can't be more than fast_io-fail_timeout_sec.\n");
6510 1 : return false;
6511 : }
6512 57 : } else if (ctrlr_loss_timeout_sec != 0) {
6513 11 : if (reconnect_delay_sec == 0) {
6514 1 : SPDK_ERRLOG("reconnect_delay_sec can't be 0 if ctrlr_loss_timeout_sec is not 0.\n");
6515 1 : return false;
6516 10 : } else if (reconnect_delay_sec > (uint32_t)ctrlr_loss_timeout_sec) {
6517 1 : SPDK_ERRLOG("reconnect_delay_sec can't be more than ctrlr_loss_timeout_sec.\n");
6518 1 : return false;
6519 9 : } else if (fast_io_fail_timeout_sec != 0) {
6520 6 : if (fast_io_fail_timeout_sec < reconnect_delay_sec) {
6521 1 : SPDK_ERRLOG("reconnect_delay_sec can't be more than fast_io_fail_timeout_sec.\n");
6522 1 : return false;
6523 5 : } else if (fast_io_fail_timeout_sec > (uint32_t)ctrlr_loss_timeout_sec) {
6524 1 : SPDK_ERRLOG("fast_io_fail_timeout_sec can't be more than ctrlr_loss_timeout_sec.\n");
6525 1 : return false;
6526 : }
6527 : }
6528 46 : } else if (reconnect_delay_sec != 0 || fast_io_fail_timeout_sec != 0) {
6529 2 : SPDK_ERRLOG("Both reconnect_delay_sec and fast_io_fail_timeout_sec must be 0 if ctrlr_loss_timeout_sec is 0.\n");
6530 2 : return false;
6531 : }
6532 :
6533 63 : return true;
6534 : }
6535 :
6536 : int
6537 53 : spdk_bdev_nvme_create(struct spdk_nvme_transport_id *trid,
6538 : const char *base_name,
6539 : const char **names,
6540 : uint32_t count,
6541 : spdk_bdev_nvme_create_cb cb_fn,
6542 : void *cb_ctx,
6543 : struct spdk_nvme_ctrlr_opts *drv_opts,
6544 : struct spdk_bdev_nvme_ctrlr_opts *bdev_opts)
6545 : {
6546 : struct nvme_probe_skip_entry *entry, *tmp;
6547 : struct nvme_async_probe_ctx *ctx;
6548 : spdk_nvme_attach_cb attach_cb;
6549 : struct nvme_ctrlr *nvme_ctrlr;
6550 : int len;
6551 :
6552 : /* TODO expand this check to include both the host and target TRIDs.
6553 : * Only if both are the same should we fail.
6554 : */
6555 53 : if (nvme_ctrlr_get(trid, drv_opts->hostnqn) != NULL) {
6556 0 : SPDK_ERRLOG("A controller with the provided trid (traddr: %s, hostnqn: %s) "
6557 : "already exists.\n", trid->traddr, drv_opts->hostnqn);
6558 0 : return -EEXIST;
6559 : }
6560 :
6561 53 : len = strnlen(base_name, SPDK_CONTROLLER_NAME_MAX);
6562 :
6563 53 : if (len == 0 || len == SPDK_CONTROLLER_NAME_MAX) {
6564 0 : SPDK_ERRLOG("controller name must be between 1 and %d characters\n", SPDK_CONTROLLER_NAME_MAX - 1);
6565 0 : return -EINVAL;
6566 : }
6567 :
6568 53 : if (bdev_opts != NULL &&
6569 53 : !bdev_nvme_check_io_error_resiliency_params(bdev_opts->ctrlr_loss_timeout_sec,
6570 : bdev_opts->reconnect_delay_sec,
6571 : bdev_opts->fast_io_fail_timeout_sec)) {
6572 0 : return -EINVAL;
6573 : }
6574 :
6575 53 : ctx = calloc(1, sizeof(*ctx));
6576 53 : if (!ctx) {
6577 0 : return -ENOMEM;
6578 : }
6579 53 : ctx->base_name = base_name;
6580 53 : ctx->names = names;
6581 53 : ctx->max_bdevs = count;
6582 53 : ctx->cb_fn = cb_fn;
6583 53 : ctx->cb_ctx = cb_ctx;
6584 53 : ctx->trid = *trid;
6585 :
6586 53 : if (bdev_opts) {
6587 53 : memcpy(&ctx->bdev_opts, bdev_opts, sizeof(*bdev_opts));
6588 : } else {
6589 0 : spdk_bdev_nvme_get_default_ctrlr_opts(&ctx->bdev_opts);
6590 : }
6591 :
6592 53 : if (trid->trtype == SPDK_NVME_TRANSPORT_PCIE) {
6593 0 : TAILQ_FOREACH_SAFE(entry, &g_skipped_nvme_ctrlrs, tailq, tmp) {
6594 0 : if (spdk_nvme_transport_id_compare(trid, &entry->trid) == 0) {
6595 0 : TAILQ_REMOVE(&g_skipped_nvme_ctrlrs, entry, tailq);
6596 0 : free(entry);
6597 0 : break;
6598 : }
6599 : }
6600 : }
6601 :
6602 53 : memcpy(&ctx->drv_opts, drv_opts, sizeof(*drv_opts));
6603 53 : ctx->drv_opts.transport_retry_count = g_opts.transport_retry_count;
6604 53 : ctx->drv_opts.transport_ack_timeout = g_opts.transport_ack_timeout;
6605 53 : ctx->drv_opts.keep_alive_timeout_ms = g_opts.keep_alive_timeout_ms;
6606 53 : ctx->drv_opts.disable_read_ana_log_page = true;
6607 53 : ctx->drv_opts.transport_tos = g_opts.transport_tos;
6608 :
6609 53 : if (spdk_interrupt_mode_is_enabled()) {
6610 0 : if (trid->trtype == SPDK_NVME_TRANSPORT_PCIE) {
6611 0 : ctx->drv_opts.enable_interrupts = true;
6612 : } else {
6613 0 : SPDK_ERRLOG("Interrupt mode is only supported with PCIe transport\n");
6614 0 : free_nvme_async_probe_ctx(ctx);
6615 0 : return -ENOTSUP;
6616 : }
6617 : }
6618 :
6619 53 : if (ctx->bdev_opts.psk != NULL) {
6620 0 : ctx->drv_opts.tls_psk = spdk_keyring_get_key(ctx->bdev_opts.psk);
6621 0 : if (ctx->drv_opts.tls_psk == NULL) {
6622 0 : SPDK_ERRLOG("Could not load PSK: %s\n", ctx->bdev_opts.psk);
6623 0 : free_nvme_async_probe_ctx(ctx);
6624 0 : return -ENOKEY;
6625 : }
6626 : }
6627 :
6628 53 : if (ctx->bdev_opts.dhchap_key != NULL) {
6629 0 : ctx->drv_opts.dhchap_key = spdk_keyring_get_key(ctx->bdev_opts.dhchap_key);
6630 0 : if (ctx->drv_opts.dhchap_key == NULL) {
6631 0 : SPDK_ERRLOG("Could not load DH-HMAC-CHAP key: %s\n",
6632 : ctx->bdev_opts.dhchap_key);
6633 0 : free_nvme_async_probe_ctx(ctx);
6634 0 : return -ENOKEY;
6635 : }
6636 :
6637 0 : ctx->drv_opts.dhchap_digests = g_opts.dhchap_digests;
6638 0 : ctx->drv_opts.dhchap_dhgroups = g_opts.dhchap_dhgroups;
6639 : }
6640 53 : if (ctx->bdev_opts.dhchap_ctrlr_key != NULL) {
6641 0 : ctx->drv_opts.dhchap_ctrlr_key =
6642 0 : spdk_keyring_get_key(ctx->bdev_opts.dhchap_ctrlr_key);
6643 0 : if (ctx->drv_opts.dhchap_ctrlr_key == NULL) {
6644 0 : SPDK_ERRLOG("Could not load DH-HMAC-CHAP controller key: %s\n",
6645 : ctx->bdev_opts.dhchap_ctrlr_key);
6646 0 : free_nvme_async_probe_ctx(ctx);
6647 0 : return -ENOKEY;
6648 : }
6649 : }
6650 :
6651 53 : if (nvme_bdev_ctrlr_get_by_name(base_name) == NULL || ctx->bdev_opts.multipath) {
6652 49 : attach_cb = connect_attach_cb;
6653 : } else {
6654 4 : attach_cb = connect_set_failover_cb;
6655 : }
6656 :
6657 53 : nvme_ctrlr = nvme_ctrlr_get_by_name(ctx->base_name);
6658 53 : if (nvme_ctrlr && nvme_ctrlr->opts.multipath != ctx->bdev_opts.multipath) {
6659 : /* All controllers with the same name must be configured the same
6660 : * way, either for multipath or failover. If the configuration doesn't
6661 : * match - report error.
6662 : */
6663 0 : free_nvme_async_probe_ctx(ctx);
6664 0 : return -EINVAL;
6665 : }
6666 :
6667 53 : ctx->probe_ctx = spdk_nvme_connect_async(trid, &ctx->drv_opts, attach_cb);
6668 53 : if (ctx->probe_ctx == NULL) {
6669 0 : SPDK_ERRLOG("No controller was found with provided trid (traddr: %s)\n", trid->traddr);
6670 0 : free_nvme_async_probe_ctx(ctx);
6671 0 : return -ENODEV;
6672 : }
6673 53 : ctx->poller = SPDK_POLLER_REGISTER(bdev_nvme_async_poll, ctx, 1000);
6674 :
6675 53 : return 0;
6676 : }
6677 :
6678 : struct bdev_nvme_delete_ctx {
6679 : char *name;
6680 : struct nvme_path_id path_id;
6681 : bdev_nvme_delete_done_fn delete_done;
6682 : void *delete_done_ctx;
6683 : uint64_t timeout_ticks;
6684 : struct spdk_poller *poller;
6685 : };
6686 :
6687 : static void
6688 2 : free_bdev_nvme_delete_ctx(struct bdev_nvme_delete_ctx *ctx)
6689 : {
6690 2 : if (ctx != NULL) {
6691 1 : free(ctx->name);
6692 1 : free(ctx);
6693 : }
6694 2 : }
6695 :
6696 : static bool
6697 76 : nvme_path_id_compare(struct nvme_path_id *p, const struct nvme_path_id *path_id)
6698 : {
6699 76 : if (path_id->trid.trtype != 0) {
6700 21 : if (path_id->trid.trtype == SPDK_NVME_TRANSPORT_CUSTOM) {
6701 0 : if (strcasecmp(path_id->trid.trstring, p->trid.trstring) != 0) {
6702 0 : return false;
6703 : }
6704 : } else {
6705 21 : if (path_id->trid.trtype != p->trid.trtype) {
6706 0 : return false;
6707 : }
6708 : }
6709 : }
6710 :
6711 76 : if (!spdk_mem_all_zero(path_id->trid.traddr, sizeof(path_id->trid.traddr))) {
6712 21 : if (strcasecmp(path_id->trid.traddr, p->trid.traddr) != 0) {
6713 11 : return false;
6714 : }
6715 : }
6716 :
6717 65 : if (path_id->trid.adrfam != 0) {
6718 0 : if (path_id->trid.adrfam != p->trid.adrfam) {
6719 0 : return false;
6720 : }
6721 : }
6722 :
6723 65 : if (!spdk_mem_all_zero(path_id->trid.trsvcid, sizeof(path_id->trid.trsvcid))) {
6724 10 : if (strcasecmp(path_id->trid.trsvcid, p->trid.trsvcid) != 0) {
6725 0 : return false;
6726 : }
6727 : }
6728 :
6729 65 : if (!spdk_mem_all_zero(path_id->trid.subnqn, sizeof(path_id->trid.subnqn))) {
6730 10 : if (strcmp(path_id->trid.subnqn, p->trid.subnqn) != 0) {
6731 0 : return false;
6732 : }
6733 : }
6734 :
6735 65 : if (!spdk_mem_all_zero(path_id->hostid.hostaddr, sizeof(path_id->hostid.hostaddr))) {
6736 0 : if (strcmp(path_id->hostid.hostaddr, p->hostid.hostaddr) != 0) {
6737 0 : return false;
6738 : }
6739 : }
6740 :
6741 65 : if (!spdk_mem_all_zero(path_id->hostid.hostsvcid, sizeof(path_id->hostid.hostsvcid))) {
6742 0 : if (strcmp(path_id->hostid.hostsvcid, p->hostid.hostsvcid) != 0) {
6743 0 : return false;
6744 : }
6745 : }
6746 :
6747 65 : return true;
6748 : }
6749 :
6750 : static bool
6751 2 : nvme_path_id_exists(const char *name, const struct nvme_path_id *path_id)
6752 : {
6753 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
6754 : struct nvme_ctrlr *ctrlr;
6755 : struct nvme_path_id *p;
6756 :
6757 2 : pthread_mutex_lock(&g_bdev_nvme_mutex);
6758 2 : nbdev_ctrlr = nvme_bdev_ctrlr_get_by_name(name);
6759 2 : if (!nbdev_ctrlr) {
6760 1 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6761 1 : return false;
6762 : }
6763 :
6764 1 : TAILQ_FOREACH(ctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
6765 1 : pthread_mutex_lock(&ctrlr->mutex);
6766 1 : TAILQ_FOREACH(p, &ctrlr->trids, link) {
6767 1 : if (nvme_path_id_compare(p, path_id)) {
6768 1 : pthread_mutex_unlock(&ctrlr->mutex);
6769 1 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6770 1 : return true;
6771 : }
6772 : }
6773 0 : pthread_mutex_unlock(&ctrlr->mutex);
6774 : }
6775 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6776 :
6777 0 : return false;
6778 : }
6779 :
6780 : static int
6781 2 : bdev_nvme_delete_complete_poll(void *arg)
6782 : {
6783 2 : struct bdev_nvme_delete_ctx *ctx = arg;
6784 2 : int rc = 0;
6785 :
6786 2 : if (nvme_path_id_exists(ctx->name, &ctx->path_id)) {
6787 1 : if (ctx->timeout_ticks > spdk_get_ticks()) {
6788 1 : return SPDK_POLLER_BUSY;
6789 : }
6790 :
6791 0 : SPDK_ERRLOG("NVMe path '%s' still exists after delete\n", ctx->name);
6792 0 : rc = -ETIMEDOUT;
6793 : }
6794 :
6795 1 : spdk_poller_unregister(&ctx->poller);
6796 :
6797 1 : ctx->delete_done(ctx->delete_done_ctx, rc);
6798 1 : free_bdev_nvme_delete_ctx(ctx);
6799 :
6800 1 : return SPDK_POLLER_BUSY;
6801 : }
6802 :
6803 : static int
6804 65 : _bdev_nvme_delete(struct nvme_ctrlr *nvme_ctrlr, const struct nvme_path_id *path_id)
6805 : {
6806 : struct nvme_path_id *p, *t;
6807 : spdk_msg_fn msg_fn;
6808 65 : int rc = -ENXIO;
6809 :
6810 65 : pthread_mutex_lock(&nvme_ctrlr->mutex);
6811 :
6812 75 : TAILQ_FOREACH_REVERSE_SAFE(p, &nvme_ctrlr->trids, nvme_paths, link, t) {
6813 75 : if (p == TAILQ_FIRST(&nvme_ctrlr->trids)) {
6814 65 : break;
6815 : }
6816 :
6817 10 : if (!nvme_path_id_compare(p, path_id)) {
6818 3 : continue;
6819 : }
6820 :
6821 : /* We are not using the specified path. */
6822 7 : TAILQ_REMOVE(&nvme_ctrlr->trids, p, link);
6823 7 : free(p);
6824 7 : rc = 0;
6825 : }
6826 :
6827 65 : if (p == NULL || !nvme_path_id_compare(p, path_id)) {
6828 8 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
6829 8 : return rc;
6830 : }
6831 :
6832 : /* If we made it here, then this path is a match! Now we need to remove it. */
6833 :
6834 : /* This is the active path in use right now. The active path is always the first in the list. */
6835 57 : assert(p == nvme_ctrlr->active_path_id);
6836 :
6837 57 : if (!TAILQ_NEXT(p, link)) {
6838 : /* The current path is the only path. */
6839 56 : msg_fn = _nvme_ctrlr_destruct;
6840 56 : rc = bdev_nvme_delete_ctrlr_unsafe(nvme_ctrlr, false);
6841 : } else {
6842 : /* There is an alternative path. */
6843 1 : msg_fn = _bdev_nvme_reset_ctrlr;
6844 1 : rc = bdev_nvme_failover_ctrlr_unsafe(nvme_ctrlr, true);
6845 : }
6846 :
6847 57 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
6848 :
6849 57 : if (rc == 0) {
6850 57 : spdk_thread_send_msg(nvme_ctrlr->thread, msg_fn, nvme_ctrlr);
6851 0 : } else if (rc == -EALREADY) {
6852 0 : rc = 0;
6853 : }
6854 :
6855 57 : return rc;
6856 : }
6857 :
6858 : int
6859 50 : bdev_nvme_delete(const char *name, const struct nvme_path_id *path_id,
6860 : bdev_nvme_delete_done_fn delete_done, void *delete_done_ctx)
6861 : {
6862 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
6863 : struct nvme_ctrlr *nvme_ctrlr, *tmp_nvme_ctrlr;
6864 50 : struct bdev_nvme_delete_ctx *ctx = NULL;
6865 50 : int rc = -ENXIO, _rc;
6866 :
6867 50 : if (name == NULL || path_id == NULL) {
6868 0 : rc = -EINVAL;
6869 0 : goto exit;
6870 : }
6871 :
6872 50 : pthread_mutex_lock(&g_bdev_nvme_mutex);
6873 :
6874 50 : nbdev_ctrlr = nvme_bdev_ctrlr_get_by_name(name);
6875 50 : if (nbdev_ctrlr == NULL) {
6876 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6877 :
6878 0 : SPDK_ERRLOG("Failed to find NVMe bdev controller\n");
6879 0 : rc = -ENODEV;
6880 0 : goto exit;
6881 : }
6882 :
6883 115 : TAILQ_FOREACH_SAFE(nvme_ctrlr, &nbdev_ctrlr->ctrlrs, tailq, tmp_nvme_ctrlr) {
6884 65 : _rc = _bdev_nvme_delete(nvme_ctrlr, path_id);
6885 65 : if (_rc < 0 && _rc != -ENXIO) {
6886 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6887 0 : rc = _rc;
6888 0 : goto exit;
6889 65 : } else if (_rc == 0) {
6890 : /* We traverse all remaining nvme_ctrlrs even if one nvme_ctrlr
6891 : * was deleted successfully. To remember the successful deletion,
6892 : * overwrite rc only if _rc is zero.
6893 : */
6894 59 : rc = 0;
6895 : }
6896 : }
6897 :
6898 50 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
6899 :
6900 50 : if (rc != 0 || delete_done == NULL) {
6901 49 : goto exit;
6902 : }
6903 :
6904 1 : ctx = calloc(1, sizeof(*ctx));
6905 1 : if (ctx == NULL) {
6906 0 : SPDK_ERRLOG("Failed to allocate context for bdev_nvme_delete\n");
6907 0 : rc = -ENOMEM;
6908 0 : goto exit;
6909 : }
6910 :
6911 1 : ctx->name = strdup(name);
6912 1 : if (ctx->name == NULL) {
6913 0 : SPDK_ERRLOG("Failed to copy controller name for deletion\n");
6914 0 : rc = -ENOMEM;
6915 0 : goto exit;
6916 : }
6917 :
6918 1 : ctx->delete_done = delete_done;
6919 1 : ctx->delete_done_ctx = delete_done_ctx;
6920 1 : ctx->path_id = *path_id;
6921 1 : ctx->timeout_ticks = spdk_get_ticks() + 10 * spdk_get_ticks_hz();
6922 1 : ctx->poller = SPDK_POLLER_REGISTER(bdev_nvme_delete_complete_poll, ctx, 1000);
6923 1 : if (ctx->poller == NULL) {
6924 0 : SPDK_ERRLOG("Failed to register bdev_nvme_delete poller\n");
6925 0 : rc = -ENOMEM;
6926 0 : goto exit;
6927 : }
6928 :
6929 1 : exit:
6930 50 : if (rc != 0) {
6931 1 : free_bdev_nvme_delete_ctx(ctx);
6932 : }
6933 :
6934 50 : return rc;
6935 : }
6936 :
6937 : #define DISCOVERY_INFOLOG(ctx, format, ...) \
6938 : SPDK_INFOLOG(bdev_nvme, "Discovery[%s:%s] " format, ctx->trid.traddr, ctx->trid.trsvcid, ##__VA_ARGS__);
6939 :
6940 : #define DISCOVERY_ERRLOG(ctx, format, ...) \
6941 : SPDK_ERRLOG("Discovery[%s:%s] " format, ctx->trid.traddr, ctx->trid.trsvcid, ##__VA_ARGS__);
6942 :
6943 : struct discovery_entry_ctx {
6944 : char name[128];
6945 : struct spdk_nvme_transport_id trid;
6946 : struct spdk_nvme_ctrlr_opts drv_opts;
6947 : struct spdk_nvmf_discovery_log_page_entry entry;
6948 : TAILQ_ENTRY(discovery_entry_ctx) tailq;
6949 : struct discovery_ctx *ctx;
6950 : };
6951 :
6952 : struct discovery_ctx {
6953 : char *name;
6954 : spdk_bdev_nvme_start_discovery_fn start_cb_fn;
6955 : spdk_bdev_nvme_stop_discovery_fn stop_cb_fn;
6956 : void *cb_ctx;
6957 : struct spdk_nvme_probe_ctx *probe_ctx;
6958 : struct spdk_nvme_detach_ctx *detach_ctx;
6959 : struct spdk_nvme_ctrlr *ctrlr;
6960 : struct spdk_nvme_transport_id trid;
6961 : struct discovery_entry_ctx *entry_ctx_in_use;
6962 : struct spdk_poller *poller;
6963 : struct spdk_nvme_ctrlr_opts drv_opts;
6964 : struct spdk_bdev_nvme_ctrlr_opts bdev_opts;
6965 : struct spdk_nvmf_discovery_log_page *log_page;
6966 : TAILQ_ENTRY(discovery_ctx) tailq;
6967 : TAILQ_HEAD(, discovery_entry_ctx) nvm_entry_ctxs;
6968 : TAILQ_HEAD(, discovery_entry_ctx) discovery_entry_ctxs;
6969 : int rc;
6970 : bool wait_for_attach;
6971 : uint64_t timeout_ticks;
6972 : /* Denotes that the discovery service is being started. We're waiting
6973 : * for the initial connection to the discovery controller to be
6974 : * established and attach discovered NVM ctrlrs.
6975 : */
6976 : bool initializing;
6977 : /* Denotes if a discovery is currently in progress for this context.
6978 : * That includes connecting to newly discovered subsystems. Used to
6979 : * ensure we do not start a new discovery until an existing one is
6980 : * complete.
6981 : */
6982 : bool in_progress;
6983 :
6984 : /* Denotes if another discovery is needed after the one in progress
6985 : * completes. Set when we receive an AER completion while a discovery
6986 : * is already in progress.
6987 : */
6988 : bool pending;
6989 :
6990 : /* Signal to the discovery context poller that it should stop the
6991 : * discovery service, including detaching from the current discovery
6992 : * controller.
6993 : */
6994 : bool stop;
6995 :
6996 : struct spdk_thread *calling_thread;
6997 : uint32_t index;
6998 : uint32_t attach_in_progress;
6999 : char *hostnqn;
7000 :
7001 : /* Denotes if the discovery service was started by the mdns discovery.
7002 : */
7003 : bool from_mdns_discovery_service;
7004 : };
7005 :
7006 : TAILQ_HEAD(discovery_ctxs, discovery_ctx);
7007 : static struct discovery_ctxs g_discovery_ctxs = TAILQ_HEAD_INITIALIZER(g_discovery_ctxs);
7008 :
7009 : static void get_discovery_log_page(struct discovery_ctx *ctx);
7010 :
7011 : static void
7012 0 : free_discovery_ctx(struct discovery_ctx *ctx)
7013 : {
7014 0 : free(ctx->log_page);
7015 0 : free(ctx->hostnqn);
7016 0 : free(ctx->name);
7017 0 : free(ctx);
7018 0 : }
7019 :
7020 : static void
7021 0 : discovery_complete(struct discovery_ctx *ctx)
7022 : {
7023 0 : ctx->initializing = false;
7024 0 : ctx->in_progress = false;
7025 0 : if (ctx->pending) {
7026 0 : ctx->pending = false;
7027 0 : get_discovery_log_page(ctx);
7028 : }
7029 0 : }
7030 :
7031 : static void
7032 0 : build_trid_from_log_page_entry(struct spdk_nvme_transport_id *trid,
7033 : struct spdk_nvmf_discovery_log_page_entry *entry)
7034 : {
7035 : char *space;
7036 :
7037 0 : trid->trtype = entry->trtype;
7038 0 : trid->adrfam = entry->adrfam;
7039 0 : memcpy(trid->traddr, entry->traddr, sizeof(entry->traddr));
7040 0 : memcpy(trid->trsvcid, entry->trsvcid, sizeof(entry->trsvcid));
7041 : /* Because the source buffer (entry->subnqn) is longer than trid->subnqn, and
7042 : * before call to this function trid->subnqn is zeroed out, we need
7043 : * to copy sizeof(trid->subnqn) minus one byte to make sure the last character
7044 : * remains 0. Then we can shorten the string (replace ' ' with 0) if required
7045 : */
7046 0 : memcpy(trid->subnqn, entry->subnqn, sizeof(trid->subnqn) - 1);
7047 :
7048 : /* We want the traddr, trsvcid and subnqn fields to be NULL-terminated.
7049 : * But the log page entries typically pad them with spaces, not zeroes.
7050 : * So add a NULL terminator to each of these fields at the appropriate
7051 : * location.
7052 : */
7053 0 : space = strchr(trid->traddr, ' ');
7054 0 : if (space) {
7055 0 : *space = 0;
7056 : }
7057 0 : space = strchr(trid->trsvcid, ' ');
7058 0 : if (space) {
7059 0 : *space = 0;
7060 : }
7061 0 : space = strchr(trid->subnqn, ' ');
7062 0 : if (space) {
7063 0 : *space = 0;
7064 : }
7065 0 : }
7066 :
7067 : static void
7068 0 : _stop_discovery(void *_ctx)
7069 : {
7070 0 : struct discovery_ctx *ctx = _ctx;
7071 :
7072 0 : if (ctx->attach_in_progress > 0) {
7073 0 : spdk_thread_send_msg(spdk_get_thread(), _stop_discovery, ctx);
7074 0 : return;
7075 : }
7076 :
7077 0 : ctx->stop = true;
7078 :
7079 0 : while (!TAILQ_EMPTY(&ctx->nvm_entry_ctxs)) {
7080 : struct discovery_entry_ctx *entry_ctx;
7081 0 : struct nvme_path_id path = {};
7082 :
7083 0 : entry_ctx = TAILQ_FIRST(&ctx->nvm_entry_ctxs);
7084 0 : path.trid = entry_ctx->trid;
7085 0 : bdev_nvme_delete(entry_ctx->name, &path, NULL, NULL);
7086 0 : TAILQ_REMOVE(&ctx->nvm_entry_ctxs, entry_ctx, tailq);
7087 0 : free(entry_ctx);
7088 : }
7089 :
7090 0 : while (!TAILQ_EMPTY(&ctx->discovery_entry_ctxs)) {
7091 : struct discovery_entry_ctx *entry_ctx;
7092 :
7093 0 : entry_ctx = TAILQ_FIRST(&ctx->discovery_entry_ctxs);
7094 0 : TAILQ_REMOVE(&ctx->discovery_entry_ctxs, entry_ctx, tailq);
7095 0 : free(entry_ctx);
7096 : }
7097 :
7098 0 : free(ctx->entry_ctx_in_use);
7099 0 : ctx->entry_ctx_in_use = NULL;
7100 : }
7101 :
7102 : static void
7103 0 : stop_discovery(struct discovery_ctx *ctx, spdk_bdev_nvme_stop_discovery_fn cb_fn, void *cb_ctx)
7104 : {
7105 0 : ctx->stop_cb_fn = cb_fn;
7106 0 : ctx->cb_ctx = cb_ctx;
7107 :
7108 0 : if (ctx->attach_in_progress > 0) {
7109 0 : DISCOVERY_INFOLOG(ctx, "stopping discovery with attach_in_progress: %"PRIu32"\n",
7110 : ctx->attach_in_progress);
7111 : }
7112 :
7113 0 : _stop_discovery(ctx);
7114 0 : }
7115 :
7116 : static void
7117 2 : remove_discovery_entry(struct nvme_ctrlr *nvme_ctrlr)
7118 : {
7119 : struct discovery_ctx *d_ctx;
7120 : struct nvme_path_id *path_id;
7121 2 : struct spdk_nvme_transport_id trid = {};
7122 : struct discovery_entry_ctx *entry_ctx, *tmp;
7123 :
7124 2 : path_id = TAILQ_FIRST(&nvme_ctrlr->trids);
7125 :
7126 2 : TAILQ_FOREACH(d_ctx, &g_discovery_ctxs, tailq) {
7127 0 : TAILQ_FOREACH_SAFE(entry_ctx, &d_ctx->nvm_entry_ctxs, tailq, tmp) {
7128 0 : build_trid_from_log_page_entry(&trid, &entry_ctx->entry);
7129 0 : if (spdk_nvme_transport_id_compare(&trid, &path_id->trid) != 0) {
7130 0 : continue;
7131 : }
7132 :
7133 0 : TAILQ_REMOVE(&d_ctx->nvm_entry_ctxs, entry_ctx, tailq);
7134 0 : free(entry_ctx);
7135 0 : DISCOVERY_INFOLOG(d_ctx, "Remove discovery entry: %s:%s:%s\n",
7136 : trid.subnqn, trid.traddr, trid.trsvcid);
7137 :
7138 : /* Fail discovery ctrlr to force reattach attempt */
7139 0 : spdk_nvme_ctrlr_fail(d_ctx->ctrlr);
7140 : }
7141 : }
7142 2 : }
7143 :
7144 : static void
7145 0 : discovery_remove_controllers(struct discovery_ctx *ctx)
7146 : {
7147 0 : struct spdk_nvmf_discovery_log_page *log_page = ctx->log_page;
7148 : struct discovery_entry_ctx *entry_ctx, *tmp;
7149 : struct spdk_nvmf_discovery_log_page_entry *new_entry, *old_entry;
7150 0 : struct spdk_nvme_transport_id old_trid = {};
7151 : uint64_t numrec, i;
7152 : bool found;
7153 :
7154 0 : numrec = from_le64(&log_page->numrec);
7155 0 : TAILQ_FOREACH_SAFE(entry_ctx, &ctx->nvm_entry_ctxs, tailq, tmp) {
7156 0 : found = false;
7157 0 : old_entry = &entry_ctx->entry;
7158 0 : build_trid_from_log_page_entry(&old_trid, old_entry);
7159 0 : for (i = 0; i < numrec; i++) {
7160 0 : new_entry = &log_page->entries[i];
7161 0 : if (!memcmp(old_entry, new_entry, sizeof(*old_entry))) {
7162 0 : DISCOVERY_INFOLOG(ctx, "NVM %s:%s:%s found again\n",
7163 : old_trid.subnqn, old_trid.traddr, old_trid.trsvcid);
7164 0 : found = true;
7165 0 : break;
7166 : }
7167 : }
7168 0 : if (!found) {
7169 0 : struct nvme_path_id path = {};
7170 :
7171 0 : DISCOVERY_INFOLOG(ctx, "NVM %s:%s:%s not found\n",
7172 : old_trid.subnqn, old_trid.traddr, old_trid.trsvcid);
7173 :
7174 0 : path.trid = entry_ctx->trid;
7175 0 : bdev_nvme_delete(entry_ctx->name, &path, NULL, NULL);
7176 0 : TAILQ_REMOVE(&ctx->nvm_entry_ctxs, entry_ctx, tailq);
7177 0 : free(entry_ctx);
7178 : }
7179 : }
7180 0 : free(log_page);
7181 0 : ctx->log_page = NULL;
7182 0 : discovery_complete(ctx);
7183 0 : }
7184 :
7185 : static void
7186 0 : complete_discovery_start(struct discovery_ctx *ctx, int status)
7187 : {
7188 0 : ctx->timeout_ticks = 0;
7189 0 : ctx->rc = status;
7190 0 : if (ctx->start_cb_fn) {
7191 0 : ctx->start_cb_fn(ctx->cb_ctx, status);
7192 0 : ctx->start_cb_fn = NULL;
7193 0 : ctx->cb_ctx = NULL;
7194 : }
7195 0 : }
7196 :
7197 : static void
7198 0 : discovery_attach_controller_done(void *cb_ctx, size_t bdev_count, int rc)
7199 : {
7200 0 : struct discovery_entry_ctx *entry_ctx = cb_ctx;
7201 0 : struct discovery_ctx *ctx = entry_ctx->ctx;
7202 :
7203 0 : DISCOVERY_INFOLOG(ctx, "attach %s done\n", entry_ctx->name);
7204 0 : ctx->attach_in_progress--;
7205 0 : if (ctx->attach_in_progress == 0) {
7206 0 : complete_discovery_start(ctx, ctx->rc);
7207 0 : if (ctx->initializing && ctx->rc != 0) {
7208 0 : DISCOVERY_ERRLOG(ctx, "stopping discovery due to errors: %d\n", ctx->rc);
7209 0 : stop_discovery(ctx, NULL, ctx->cb_ctx);
7210 : } else {
7211 0 : discovery_remove_controllers(ctx);
7212 : }
7213 : }
7214 0 : }
7215 :
7216 : static struct discovery_entry_ctx *
7217 0 : create_discovery_entry_ctx(struct discovery_ctx *ctx, struct spdk_nvme_transport_id *trid)
7218 : {
7219 : struct discovery_entry_ctx *new_ctx;
7220 :
7221 0 : new_ctx = calloc(1, sizeof(*new_ctx));
7222 0 : if (new_ctx == NULL) {
7223 0 : DISCOVERY_ERRLOG(ctx, "could not allocate new entry_ctx\n");
7224 0 : return NULL;
7225 : }
7226 :
7227 0 : new_ctx->ctx = ctx;
7228 0 : memcpy(&new_ctx->trid, trid, sizeof(*trid));
7229 0 : spdk_nvme_ctrlr_get_default_ctrlr_opts(&new_ctx->drv_opts, sizeof(new_ctx->drv_opts));
7230 0 : snprintf(new_ctx->drv_opts.hostnqn, sizeof(new_ctx->drv_opts.hostnqn), "%s", ctx->hostnqn);
7231 0 : return new_ctx;
7232 : }
7233 :
7234 : static void
7235 0 : discovery_log_page_cb(void *cb_arg, int rc, const struct spdk_nvme_cpl *cpl,
7236 : struct spdk_nvmf_discovery_log_page *log_page)
7237 : {
7238 0 : struct discovery_ctx *ctx = cb_arg;
7239 : struct discovery_entry_ctx *entry_ctx, *tmp;
7240 : struct spdk_nvmf_discovery_log_page_entry *new_entry, *old_entry;
7241 : uint64_t numrec, i;
7242 : bool found;
7243 :
7244 0 : if (rc || spdk_nvme_cpl_is_error(cpl)) {
7245 0 : DISCOVERY_ERRLOG(ctx, "could not get discovery log page\n");
7246 0 : return;
7247 : }
7248 :
7249 0 : ctx->log_page = log_page;
7250 0 : assert(ctx->attach_in_progress == 0);
7251 0 : numrec = from_le64(&log_page->numrec);
7252 0 : TAILQ_FOREACH_SAFE(entry_ctx, &ctx->discovery_entry_ctxs, tailq, tmp) {
7253 0 : TAILQ_REMOVE(&ctx->discovery_entry_ctxs, entry_ctx, tailq);
7254 0 : free(entry_ctx);
7255 : }
7256 0 : for (i = 0; i < numrec; i++) {
7257 0 : found = false;
7258 0 : new_entry = &log_page->entries[i];
7259 0 : if (new_entry->subtype == SPDK_NVMF_SUBTYPE_DISCOVERY_CURRENT ||
7260 0 : new_entry->subtype == SPDK_NVMF_SUBTYPE_DISCOVERY) {
7261 : struct discovery_entry_ctx *new_ctx;
7262 0 : struct spdk_nvme_transport_id trid = {};
7263 :
7264 0 : build_trid_from_log_page_entry(&trid, new_entry);
7265 0 : new_ctx = create_discovery_entry_ctx(ctx, &trid);
7266 0 : if (new_ctx == NULL) {
7267 0 : DISCOVERY_ERRLOG(ctx, "could not allocate new entry_ctx\n");
7268 0 : break;
7269 : }
7270 :
7271 0 : TAILQ_INSERT_TAIL(&ctx->discovery_entry_ctxs, new_ctx, tailq);
7272 0 : continue;
7273 : }
7274 0 : TAILQ_FOREACH(entry_ctx, &ctx->nvm_entry_ctxs, tailq) {
7275 0 : old_entry = &entry_ctx->entry;
7276 0 : if (!memcmp(new_entry, old_entry, sizeof(*new_entry))) {
7277 0 : found = true;
7278 0 : break;
7279 : }
7280 : }
7281 0 : if (!found) {
7282 0 : struct discovery_entry_ctx *subnqn_ctx = NULL, *new_ctx;
7283 : struct discovery_ctx *d_ctx;
7284 :
7285 0 : TAILQ_FOREACH(d_ctx, &g_discovery_ctxs, tailq) {
7286 0 : TAILQ_FOREACH(subnqn_ctx, &d_ctx->nvm_entry_ctxs, tailq) {
7287 0 : if (!memcmp(subnqn_ctx->entry.subnqn, new_entry->subnqn,
7288 : sizeof(new_entry->subnqn))) {
7289 0 : break;
7290 : }
7291 : }
7292 0 : if (subnqn_ctx) {
7293 0 : break;
7294 : }
7295 : }
7296 :
7297 0 : new_ctx = calloc(1, sizeof(*new_ctx));
7298 0 : if (new_ctx == NULL) {
7299 0 : DISCOVERY_ERRLOG(ctx, "could not allocate new entry_ctx\n");
7300 0 : break;
7301 : }
7302 :
7303 0 : new_ctx->ctx = ctx;
7304 0 : memcpy(&new_ctx->entry, new_entry, sizeof(*new_entry));
7305 0 : build_trid_from_log_page_entry(&new_ctx->trid, new_entry);
7306 0 : if (subnqn_ctx) {
7307 0 : snprintf(new_ctx->name, sizeof(new_ctx->name), "%s", subnqn_ctx->name);
7308 0 : DISCOVERY_INFOLOG(ctx, "NVM %s:%s:%s new path for %s\n",
7309 : new_ctx->trid.subnqn, new_ctx->trid.traddr, new_ctx->trid.trsvcid,
7310 : new_ctx->name);
7311 : } else {
7312 0 : snprintf(new_ctx->name, sizeof(new_ctx->name), "%s%d", ctx->name, ctx->index++);
7313 0 : DISCOVERY_INFOLOG(ctx, "NVM %s:%s:%s new subsystem %s\n",
7314 : new_ctx->trid.subnqn, new_ctx->trid.traddr, new_ctx->trid.trsvcid,
7315 : new_ctx->name);
7316 : }
7317 0 : spdk_nvme_ctrlr_get_default_ctrlr_opts(&new_ctx->drv_opts, sizeof(new_ctx->drv_opts));
7318 0 : snprintf(new_ctx->drv_opts.hostnqn, sizeof(new_ctx->drv_opts.hostnqn), "%s", ctx->hostnqn);
7319 0 : rc = spdk_bdev_nvme_create(&new_ctx->trid, new_ctx->name, NULL, 0,
7320 : discovery_attach_controller_done, new_ctx,
7321 : &new_ctx->drv_opts, &ctx->bdev_opts);
7322 0 : if (rc == 0) {
7323 0 : TAILQ_INSERT_TAIL(&ctx->nvm_entry_ctxs, new_ctx, tailq);
7324 0 : ctx->attach_in_progress++;
7325 : } else {
7326 0 : DISCOVERY_ERRLOG(ctx, "spdk_bdev_nvme_create failed (%s)\n", spdk_strerror(-rc));
7327 : }
7328 : }
7329 : }
7330 :
7331 0 : if (ctx->attach_in_progress == 0) {
7332 0 : discovery_remove_controllers(ctx);
7333 : }
7334 : }
7335 :
7336 : static void
7337 0 : get_discovery_log_page(struct discovery_ctx *ctx)
7338 : {
7339 : int rc;
7340 :
7341 0 : assert(ctx->in_progress == false);
7342 0 : ctx->in_progress = true;
7343 0 : rc = spdk_nvme_ctrlr_get_discovery_log_page(ctx->ctrlr, discovery_log_page_cb, ctx);
7344 0 : if (rc != 0) {
7345 0 : DISCOVERY_ERRLOG(ctx, "could not get discovery log page\n");
7346 : }
7347 0 : DISCOVERY_INFOLOG(ctx, "sent discovery log page command\n");
7348 0 : }
7349 :
7350 : static void
7351 0 : discovery_aer_cb(void *arg, const struct spdk_nvme_cpl *cpl)
7352 : {
7353 0 : struct discovery_ctx *ctx = arg;
7354 0 : uint32_t log_page_id = (cpl->cdw0 & 0xFF0000) >> 16;
7355 :
7356 0 : if (spdk_nvme_cpl_is_error(cpl)) {
7357 0 : DISCOVERY_ERRLOG(ctx, "aer failed\n");
7358 0 : return;
7359 : }
7360 :
7361 0 : if (log_page_id != SPDK_NVME_LOG_DISCOVERY) {
7362 0 : DISCOVERY_ERRLOG(ctx, "unexpected log page 0x%x\n", log_page_id);
7363 0 : return;
7364 : }
7365 :
7366 0 : DISCOVERY_INFOLOG(ctx, "got aer\n");
7367 0 : if (ctx->in_progress) {
7368 0 : ctx->pending = true;
7369 0 : return;
7370 : }
7371 :
7372 0 : get_discovery_log_page(ctx);
7373 : }
7374 :
7375 : static void
7376 0 : discovery_attach_cb(void *cb_ctx, const struct spdk_nvme_transport_id *trid,
7377 : struct spdk_nvme_ctrlr *ctrlr, const struct spdk_nvme_ctrlr_opts *opts)
7378 : {
7379 0 : struct spdk_nvme_ctrlr_opts *user_opts = cb_ctx;
7380 : struct discovery_ctx *ctx;
7381 :
7382 0 : ctx = SPDK_CONTAINEROF(user_opts, struct discovery_ctx, drv_opts);
7383 :
7384 0 : DISCOVERY_INFOLOG(ctx, "discovery ctrlr attached\n");
7385 0 : ctx->probe_ctx = NULL;
7386 0 : ctx->ctrlr = ctrlr;
7387 :
7388 0 : if (ctx->rc != 0) {
7389 0 : DISCOVERY_ERRLOG(ctx, "encountered error while attaching discovery ctrlr: %d\n",
7390 : ctx->rc);
7391 0 : return;
7392 : }
7393 :
7394 0 : spdk_nvme_ctrlr_register_aer_callback(ctx->ctrlr, discovery_aer_cb, ctx);
7395 : }
7396 :
7397 : static int
7398 0 : discovery_poller(void *arg)
7399 : {
7400 0 : struct discovery_ctx *ctx = arg;
7401 : struct spdk_nvme_transport_id *trid;
7402 : int rc;
7403 :
7404 0 : if (ctx->detach_ctx) {
7405 0 : rc = spdk_nvme_detach_poll_async(ctx->detach_ctx);
7406 0 : if (rc != -EAGAIN) {
7407 0 : ctx->detach_ctx = NULL;
7408 0 : ctx->ctrlr = NULL;
7409 : }
7410 0 : } else if (ctx->stop) {
7411 0 : if (ctx->ctrlr != NULL) {
7412 0 : rc = spdk_nvme_detach_async(ctx->ctrlr, &ctx->detach_ctx);
7413 0 : if (rc == 0) {
7414 0 : return SPDK_POLLER_BUSY;
7415 : }
7416 0 : DISCOVERY_ERRLOG(ctx, "could not detach discovery ctrlr\n");
7417 : }
7418 0 : spdk_poller_unregister(&ctx->poller);
7419 0 : TAILQ_REMOVE(&g_discovery_ctxs, ctx, tailq);
7420 0 : assert(ctx->start_cb_fn == NULL);
7421 0 : if (ctx->stop_cb_fn != NULL) {
7422 0 : ctx->stop_cb_fn(ctx->cb_ctx);
7423 : }
7424 0 : free_discovery_ctx(ctx);
7425 0 : } else if (ctx->probe_ctx == NULL && ctx->ctrlr == NULL) {
7426 0 : if (ctx->timeout_ticks != 0 && ctx->timeout_ticks < spdk_get_ticks()) {
7427 0 : DISCOVERY_ERRLOG(ctx, "timed out while attaching discovery ctrlr\n");
7428 0 : assert(ctx->initializing);
7429 0 : spdk_poller_unregister(&ctx->poller);
7430 0 : TAILQ_REMOVE(&g_discovery_ctxs, ctx, tailq);
7431 0 : complete_discovery_start(ctx, -ETIMEDOUT);
7432 0 : stop_discovery(ctx, NULL, NULL);
7433 0 : free_discovery_ctx(ctx);
7434 0 : return SPDK_POLLER_BUSY;
7435 : }
7436 :
7437 0 : assert(ctx->entry_ctx_in_use == NULL);
7438 0 : ctx->entry_ctx_in_use = TAILQ_FIRST(&ctx->discovery_entry_ctxs);
7439 0 : TAILQ_REMOVE(&ctx->discovery_entry_ctxs, ctx->entry_ctx_in_use, tailq);
7440 0 : trid = &ctx->entry_ctx_in_use->trid;
7441 :
7442 : /* All controllers must be configured explicitely either for multipath or failover.
7443 : * While discovery use multipath mode, we need to set this in bdev options as well.
7444 : */
7445 0 : ctx->bdev_opts.multipath = true;
7446 :
7447 0 : ctx->probe_ctx = spdk_nvme_connect_async(trid, &ctx->drv_opts, discovery_attach_cb);
7448 0 : if (ctx->probe_ctx) {
7449 0 : spdk_poller_unregister(&ctx->poller);
7450 0 : ctx->poller = SPDK_POLLER_REGISTER(discovery_poller, ctx, 1000);
7451 : } else {
7452 0 : DISCOVERY_ERRLOG(ctx, "could not start discovery connect\n");
7453 0 : TAILQ_INSERT_TAIL(&ctx->discovery_entry_ctxs, ctx->entry_ctx_in_use, tailq);
7454 0 : ctx->entry_ctx_in_use = NULL;
7455 : }
7456 0 : } else if (ctx->probe_ctx) {
7457 0 : if (ctx->timeout_ticks != 0 && ctx->timeout_ticks < spdk_get_ticks()) {
7458 0 : DISCOVERY_ERRLOG(ctx, "timed out while attaching discovery ctrlr\n");
7459 0 : complete_discovery_start(ctx, -ETIMEDOUT);
7460 0 : return SPDK_POLLER_BUSY;
7461 : }
7462 :
7463 0 : rc = spdk_nvme_probe_poll_async(ctx->probe_ctx);
7464 0 : if (rc != -EAGAIN) {
7465 0 : if (ctx->rc != 0) {
7466 0 : assert(ctx->initializing);
7467 0 : stop_discovery(ctx, NULL, ctx->cb_ctx);
7468 : } else {
7469 0 : assert(rc == 0);
7470 0 : DISCOVERY_INFOLOG(ctx, "discovery ctrlr connected\n");
7471 0 : ctx->rc = rc;
7472 0 : get_discovery_log_page(ctx);
7473 : }
7474 : }
7475 : } else {
7476 0 : if (ctx->timeout_ticks != 0 && ctx->timeout_ticks < spdk_get_ticks()) {
7477 0 : DISCOVERY_ERRLOG(ctx, "timed out while attaching NVM ctrlrs\n");
7478 0 : complete_discovery_start(ctx, -ETIMEDOUT);
7479 : /* We need to wait until all NVM ctrlrs are attached before we stop the
7480 : * discovery service to make sure we don't detach a ctrlr that is still
7481 : * being attached.
7482 : */
7483 0 : if (ctx->attach_in_progress == 0) {
7484 0 : stop_discovery(ctx, NULL, ctx->cb_ctx);
7485 0 : return SPDK_POLLER_BUSY;
7486 : }
7487 : }
7488 :
7489 0 : rc = spdk_nvme_ctrlr_process_admin_completions(ctx->ctrlr);
7490 0 : if (rc < 0) {
7491 0 : spdk_poller_unregister(&ctx->poller);
7492 0 : ctx->poller = SPDK_POLLER_REGISTER(discovery_poller, ctx, 1000 * 1000);
7493 0 : TAILQ_INSERT_TAIL(&ctx->discovery_entry_ctxs, ctx->entry_ctx_in_use, tailq);
7494 0 : ctx->entry_ctx_in_use = NULL;
7495 :
7496 0 : rc = spdk_nvme_detach_async(ctx->ctrlr, &ctx->detach_ctx);
7497 0 : if (rc != 0) {
7498 0 : DISCOVERY_ERRLOG(ctx, "could not detach discovery ctrlr\n");
7499 0 : ctx->ctrlr = NULL;
7500 : }
7501 : }
7502 : }
7503 :
7504 0 : return SPDK_POLLER_BUSY;
7505 : }
7506 :
7507 : static void
7508 0 : start_discovery_poller(void *arg)
7509 : {
7510 0 : struct discovery_ctx *ctx = arg;
7511 :
7512 0 : TAILQ_INSERT_TAIL(&g_discovery_ctxs, ctx, tailq);
7513 0 : ctx->poller = SPDK_POLLER_REGISTER(discovery_poller, ctx, 1000 * 1000);
7514 0 : }
7515 :
7516 : int
7517 0 : bdev_nvme_start_discovery(struct spdk_nvme_transport_id *trid,
7518 : const char *base_name,
7519 : struct spdk_nvme_ctrlr_opts *drv_opts,
7520 : struct spdk_bdev_nvme_ctrlr_opts *bdev_opts,
7521 : uint64_t attach_timeout,
7522 : bool from_mdns,
7523 : spdk_bdev_nvme_start_discovery_fn cb_fn, void *cb_ctx)
7524 : {
7525 : struct discovery_ctx *ctx;
7526 : struct discovery_entry_ctx *discovery_entry_ctx;
7527 :
7528 0 : snprintf(trid->subnqn, sizeof(trid->subnqn), "%s", SPDK_NVMF_DISCOVERY_NQN);
7529 0 : TAILQ_FOREACH(ctx, &g_discovery_ctxs, tailq) {
7530 0 : if (strcmp(ctx->name, base_name) == 0) {
7531 0 : return -EEXIST;
7532 : }
7533 :
7534 0 : if (ctx->entry_ctx_in_use != NULL) {
7535 0 : if (!spdk_nvme_transport_id_compare(trid, &ctx->entry_ctx_in_use->trid)) {
7536 0 : return -EEXIST;
7537 : }
7538 : }
7539 :
7540 0 : TAILQ_FOREACH(discovery_entry_ctx, &ctx->discovery_entry_ctxs, tailq) {
7541 0 : if (!spdk_nvme_transport_id_compare(trid, &discovery_entry_ctx->trid)) {
7542 0 : return -EEXIST;
7543 : }
7544 : }
7545 : }
7546 :
7547 0 : ctx = calloc(1, sizeof(*ctx));
7548 0 : if (ctx == NULL) {
7549 0 : return -ENOMEM;
7550 : }
7551 :
7552 0 : ctx->name = strdup(base_name);
7553 0 : if (ctx->name == NULL) {
7554 0 : free_discovery_ctx(ctx);
7555 0 : return -ENOMEM;
7556 : }
7557 0 : memcpy(&ctx->drv_opts, drv_opts, sizeof(*drv_opts));
7558 0 : memcpy(&ctx->bdev_opts, bdev_opts, sizeof(*bdev_opts));
7559 0 : ctx->from_mdns_discovery_service = from_mdns;
7560 0 : ctx->bdev_opts.from_discovery_service = true;
7561 0 : ctx->calling_thread = spdk_get_thread();
7562 0 : ctx->start_cb_fn = cb_fn;
7563 0 : ctx->cb_ctx = cb_ctx;
7564 0 : ctx->initializing = true;
7565 0 : if (ctx->start_cb_fn) {
7566 : /* We can use this when dumping json to denote if this RPC parameter
7567 : * was specified or not.
7568 : */
7569 0 : ctx->wait_for_attach = true;
7570 : }
7571 0 : if (attach_timeout != 0) {
7572 0 : ctx->timeout_ticks = spdk_get_ticks() + attach_timeout *
7573 0 : spdk_get_ticks_hz() / 1000ull;
7574 : }
7575 0 : TAILQ_INIT(&ctx->nvm_entry_ctxs);
7576 0 : TAILQ_INIT(&ctx->discovery_entry_ctxs);
7577 0 : memcpy(&ctx->trid, trid, sizeof(*trid));
7578 : /* Even if user did not specify hostnqn, we can still strdup("\0"); */
7579 0 : ctx->hostnqn = strdup(ctx->drv_opts.hostnqn);
7580 0 : if (ctx->hostnqn == NULL) {
7581 0 : free_discovery_ctx(ctx);
7582 0 : return -ENOMEM;
7583 : }
7584 0 : discovery_entry_ctx = create_discovery_entry_ctx(ctx, trid);
7585 0 : if (discovery_entry_ctx == NULL) {
7586 0 : DISCOVERY_ERRLOG(ctx, "could not allocate new entry_ctx\n");
7587 0 : free_discovery_ctx(ctx);
7588 0 : return -ENOMEM;
7589 : }
7590 :
7591 0 : TAILQ_INSERT_TAIL(&ctx->discovery_entry_ctxs, discovery_entry_ctx, tailq);
7592 0 : spdk_thread_send_msg(g_bdev_nvme_init_thread, start_discovery_poller, ctx);
7593 0 : return 0;
7594 : }
7595 :
7596 : int
7597 0 : bdev_nvme_stop_discovery(const char *name, spdk_bdev_nvme_stop_discovery_fn cb_fn, void *cb_ctx)
7598 : {
7599 : struct discovery_ctx *ctx;
7600 :
7601 0 : TAILQ_FOREACH(ctx, &g_discovery_ctxs, tailq) {
7602 0 : if (strcmp(name, ctx->name) == 0) {
7603 0 : if (ctx->stop) {
7604 0 : return -EALREADY;
7605 : }
7606 : /* If we're still starting the discovery service and ->rc is non-zero, we're
7607 : * going to stop it as soon as we can
7608 : */
7609 0 : if (ctx->initializing && ctx->rc != 0) {
7610 0 : return -EALREADY;
7611 : }
7612 0 : stop_discovery(ctx, cb_fn, cb_ctx);
7613 0 : return 0;
7614 : }
7615 : }
7616 :
7617 0 : return -ENOENT;
7618 : }
7619 :
7620 : static int
7621 1 : bdev_nvme_library_init(void)
7622 : {
7623 1 : g_bdev_nvme_init_thread = spdk_get_thread();
7624 :
7625 1 : spdk_io_device_register(&g_nvme_bdev_ctrlrs, bdev_nvme_create_poll_group_cb,
7626 : bdev_nvme_destroy_poll_group_cb,
7627 : sizeof(struct nvme_poll_group), "nvme_poll_groups");
7628 :
7629 1 : return 0;
7630 : }
7631 :
7632 : static void
7633 1 : bdev_nvme_fini_destruct_ctrlrs(void)
7634 : {
7635 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
7636 : struct nvme_ctrlr *nvme_ctrlr;
7637 :
7638 1 : pthread_mutex_lock(&g_bdev_nvme_mutex);
7639 1 : TAILQ_FOREACH(nbdev_ctrlr, &g_nvme_bdev_ctrlrs, tailq) {
7640 0 : TAILQ_FOREACH(nvme_ctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
7641 0 : pthread_mutex_lock(&nvme_ctrlr->mutex);
7642 0 : if (nvme_ctrlr->destruct) {
7643 : /* This controller's destruction was already started
7644 : * before the application started shutting down
7645 : */
7646 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
7647 0 : continue;
7648 : }
7649 0 : nvme_ctrlr->destruct = true;
7650 0 : pthread_mutex_unlock(&nvme_ctrlr->mutex);
7651 :
7652 0 : spdk_thread_send_msg(nvme_ctrlr->thread, _nvme_ctrlr_destruct,
7653 : nvme_ctrlr);
7654 : }
7655 : }
7656 :
7657 1 : g_bdev_nvme_module_finish = true;
7658 1 : if (TAILQ_EMPTY(&g_nvme_bdev_ctrlrs)) {
7659 1 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
7660 1 : spdk_io_device_unregister(&g_nvme_bdev_ctrlrs, NULL);
7661 1 : spdk_bdev_module_fini_done();
7662 1 : return;
7663 : }
7664 :
7665 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
7666 : }
7667 :
7668 : static void
7669 0 : check_discovery_fini(void *arg)
7670 : {
7671 0 : if (TAILQ_EMPTY(&g_discovery_ctxs)) {
7672 0 : bdev_nvme_fini_destruct_ctrlrs();
7673 : }
7674 0 : }
7675 :
7676 : static void
7677 1 : bdev_nvme_library_fini(void)
7678 : {
7679 : struct nvme_probe_skip_entry *entry, *entry_tmp;
7680 : struct discovery_ctx *ctx;
7681 :
7682 1 : spdk_poller_unregister(&g_hotplug_poller);
7683 1 : free(g_hotplug_probe_ctx);
7684 1 : g_hotplug_probe_ctx = NULL;
7685 :
7686 1 : TAILQ_FOREACH_SAFE(entry, &g_skipped_nvme_ctrlrs, tailq, entry_tmp) {
7687 0 : TAILQ_REMOVE(&g_skipped_nvme_ctrlrs, entry, tailq);
7688 0 : free(entry);
7689 : }
7690 :
7691 1 : assert(spdk_get_thread() == g_bdev_nvme_init_thread);
7692 1 : if (TAILQ_EMPTY(&g_discovery_ctxs)) {
7693 1 : bdev_nvme_fini_destruct_ctrlrs();
7694 : } else {
7695 0 : TAILQ_FOREACH(ctx, &g_discovery_ctxs, tailq) {
7696 0 : stop_discovery(ctx, check_discovery_fini, NULL);
7697 : }
7698 : }
7699 1 : }
7700 :
7701 : static void
7702 0 : bdev_nvme_verify_pi_error(struct nvme_bdev_io *bio)
7703 : {
7704 0 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
7705 0 : struct spdk_bdev *bdev = bdev_io->bdev;
7706 0 : struct spdk_dif_ctx dif_ctx;
7707 0 : struct spdk_dif_error err_blk = {};
7708 : int rc;
7709 0 : struct spdk_dif_ctx_init_ext_opts dif_opts;
7710 :
7711 0 : dif_opts.size = SPDK_SIZEOF(&dif_opts, dif_pi_format);
7712 0 : dif_opts.dif_pi_format = bdev->dif_pi_format;
7713 0 : rc = spdk_dif_ctx_init(&dif_ctx,
7714 0 : bdev->blocklen, bdev->md_len, bdev->md_interleave,
7715 0 : bdev->dif_is_head_of_md, bdev->dif_type,
7716 : bdev_io->u.bdev.dif_check_flags,
7717 0 : bdev_io->u.bdev.offset_blocks, 0, 0, 0, 0, &dif_opts);
7718 0 : if (rc != 0) {
7719 0 : SPDK_ERRLOG("Initialization of DIF context failed\n");
7720 0 : return;
7721 : }
7722 :
7723 0 : if (bdev->md_interleave) {
7724 0 : rc = spdk_dif_verify(bdev_io->u.bdev.iovs, bdev_io->u.bdev.iovcnt,
7725 0 : bdev_io->u.bdev.num_blocks, &dif_ctx, &err_blk);
7726 : } else {
7727 0 : struct iovec md_iov = {
7728 0 : .iov_base = bdev_io->u.bdev.md_buf,
7729 0 : .iov_len = bdev_io->u.bdev.num_blocks * bdev->md_len,
7730 : };
7731 :
7732 0 : rc = spdk_dix_verify(bdev_io->u.bdev.iovs, bdev_io->u.bdev.iovcnt,
7733 0 : &md_iov, bdev_io->u.bdev.num_blocks, &dif_ctx, &err_blk);
7734 : }
7735 :
7736 0 : if (rc != 0) {
7737 0 : SPDK_ERRLOG("DIF error detected. type=%d, offset=%" PRIu32 "\n",
7738 : err_blk.err_type, err_blk.err_offset);
7739 : } else {
7740 0 : SPDK_ERRLOG("Hardware reported PI error but SPDK could not find any.\n");
7741 : }
7742 : }
7743 :
7744 : static void
7745 0 : bdev_nvme_no_pi_readv_done(void *ref, const struct spdk_nvme_cpl *cpl)
7746 : {
7747 0 : struct nvme_bdev_io *bio = ref;
7748 :
7749 0 : if (spdk_nvme_cpl_is_success(cpl)) {
7750 : /* Run PI verification for read data buffer. */
7751 0 : bdev_nvme_verify_pi_error(bio);
7752 : }
7753 :
7754 : /* Return original completion status */
7755 0 : bdev_nvme_io_complete_nvme_status(bio, &bio->cpl);
7756 0 : }
7757 :
7758 : static void
7759 3 : bdev_nvme_readv_done(void *ref, const struct spdk_nvme_cpl *cpl)
7760 : {
7761 3 : struct nvme_bdev_io *bio = ref;
7762 3 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
7763 : int ret;
7764 :
7765 3 : if (spdk_unlikely(spdk_nvme_cpl_is_pi_error(cpl))) {
7766 0 : SPDK_ERRLOG("readv completed with PI error (sct=%d, sc=%d)\n",
7767 : cpl->status.sct, cpl->status.sc);
7768 :
7769 : /* Save completion status to use after verifying PI error. */
7770 0 : bio->cpl = *cpl;
7771 :
7772 0 : if (spdk_likely(nvme_io_path_is_available(bio->io_path))) {
7773 : /* Read without PI checking to verify PI error. */
7774 0 : ret = bdev_nvme_no_pi_readv(bio,
7775 : bdev_io->u.bdev.iovs,
7776 : bdev_io->u.bdev.iovcnt,
7777 : bdev_io->u.bdev.md_buf,
7778 : bdev_io->u.bdev.num_blocks,
7779 : bdev_io->u.bdev.offset_blocks);
7780 0 : if (ret == 0) {
7781 0 : return;
7782 : }
7783 : }
7784 : }
7785 :
7786 3 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7787 : }
7788 :
7789 : static void
7790 25 : bdev_nvme_writev_done(void *ref, const struct spdk_nvme_cpl *cpl)
7791 : {
7792 25 : struct nvme_bdev_io *bio = ref;
7793 :
7794 25 : if (spdk_unlikely(spdk_nvme_cpl_is_pi_error(cpl))) {
7795 0 : SPDK_ERRLOG("writev completed with PI error (sct=%d, sc=%d)\n",
7796 : cpl->status.sct, cpl->status.sc);
7797 : /* Run PI verification for write data buffer if PI error is detected. */
7798 0 : bdev_nvme_verify_pi_error(bio);
7799 : }
7800 :
7801 25 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7802 25 : }
7803 :
7804 : static void
7805 0 : bdev_nvme_zone_appendv_done(void *ref, const struct spdk_nvme_cpl *cpl)
7806 : {
7807 0 : struct nvme_bdev_io *bio = ref;
7808 0 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
7809 :
7810 : /* spdk_bdev_io_get_append_location() requires that the ALBA is stored in offset_blocks.
7811 : * Additionally, offset_blocks has to be set before calling bdev_nvme_verify_pi_error().
7812 : */
7813 0 : bdev_io->u.bdev.offset_blocks = *(uint64_t *)&cpl->cdw0;
7814 :
7815 0 : if (spdk_nvme_cpl_is_pi_error(cpl)) {
7816 0 : SPDK_ERRLOG("zone append completed with PI error (sct=%d, sc=%d)\n",
7817 : cpl->status.sct, cpl->status.sc);
7818 : /* Run PI verification for zone append data buffer if PI error is detected. */
7819 0 : bdev_nvme_verify_pi_error(bio);
7820 : }
7821 :
7822 0 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7823 0 : }
7824 :
7825 : static void
7826 1 : bdev_nvme_comparev_done(void *ref, const struct spdk_nvme_cpl *cpl)
7827 : {
7828 1 : struct nvme_bdev_io *bio = ref;
7829 :
7830 1 : if (spdk_nvme_cpl_is_pi_error(cpl)) {
7831 0 : SPDK_ERRLOG("comparev completed with PI error (sct=%d, sc=%d)\n",
7832 : cpl->status.sct, cpl->status.sc);
7833 : /* Run PI verification for compare data buffer if PI error is detected. */
7834 0 : bdev_nvme_verify_pi_error(bio);
7835 : }
7836 :
7837 1 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7838 1 : }
7839 :
7840 : static void
7841 4 : bdev_nvme_comparev_and_writev_done(void *ref, const struct spdk_nvme_cpl *cpl)
7842 : {
7843 4 : struct nvme_bdev_io *bio = ref;
7844 :
7845 : /* Compare operation completion */
7846 4 : if (!bio->first_fused_completed) {
7847 : /* Save compare result for write callback */
7848 2 : bio->cpl = *cpl;
7849 2 : bio->first_fused_completed = true;
7850 2 : return;
7851 : }
7852 :
7853 : /* Write operation completion */
7854 2 : if (spdk_nvme_cpl_is_error(&bio->cpl)) {
7855 : /* If bio->cpl is already an error, it means the compare operation failed. In that case,
7856 : * complete the IO with the compare operation's status.
7857 : */
7858 1 : if (!spdk_nvme_cpl_is_error(cpl)) {
7859 1 : SPDK_ERRLOG("Unexpected write success after compare failure.\n");
7860 : }
7861 :
7862 1 : bdev_nvme_io_complete_nvme_status(bio, &bio->cpl);
7863 : } else {
7864 1 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7865 : }
7866 : }
7867 :
7868 : static void
7869 1 : bdev_nvme_queued_done(void *ref, const struct spdk_nvme_cpl *cpl)
7870 : {
7871 1 : struct nvme_bdev_io *bio = ref;
7872 :
7873 1 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7874 1 : }
7875 :
7876 : static int
7877 0 : fill_zone_from_report(struct spdk_bdev_zone_info *info, struct spdk_nvme_zns_zone_desc *desc)
7878 : {
7879 0 : switch (desc->zt) {
7880 0 : case SPDK_NVME_ZONE_TYPE_SEQWR:
7881 0 : info->type = SPDK_BDEV_ZONE_TYPE_SEQWR;
7882 0 : break;
7883 0 : default:
7884 0 : SPDK_ERRLOG("Invalid zone type: %#x in zone report\n", desc->zt);
7885 0 : return -EIO;
7886 : }
7887 :
7888 0 : switch (desc->zs) {
7889 0 : case SPDK_NVME_ZONE_STATE_EMPTY:
7890 0 : info->state = SPDK_BDEV_ZONE_STATE_EMPTY;
7891 0 : break;
7892 0 : case SPDK_NVME_ZONE_STATE_IOPEN:
7893 0 : info->state = SPDK_BDEV_ZONE_STATE_IMP_OPEN;
7894 0 : break;
7895 0 : case SPDK_NVME_ZONE_STATE_EOPEN:
7896 0 : info->state = SPDK_BDEV_ZONE_STATE_EXP_OPEN;
7897 0 : break;
7898 0 : case SPDK_NVME_ZONE_STATE_CLOSED:
7899 0 : info->state = SPDK_BDEV_ZONE_STATE_CLOSED;
7900 0 : break;
7901 0 : case SPDK_NVME_ZONE_STATE_RONLY:
7902 0 : info->state = SPDK_BDEV_ZONE_STATE_READ_ONLY;
7903 0 : break;
7904 0 : case SPDK_NVME_ZONE_STATE_FULL:
7905 0 : info->state = SPDK_BDEV_ZONE_STATE_FULL;
7906 0 : break;
7907 0 : case SPDK_NVME_ZONE_STATE_OFFLINE:
7908 0 : info->state = SPDK_BDEV_ZONE_STATE_OFFLINE;
7909 0 : break;
7910 0 : default:
7911 0 : SPDK_ERRLOG("Invalid zone state: %#x in zone report\n", desc->zs);
7912 0 : return -EIO;
7913 : }
7914 :
7915 0 : info->zone_id = desc->zslba;
7916 0 : info->write_pointer = desc->wp;
7917 0 : info->capacity = desc->zcap;
7918 :
7919 0 : return 0;
7920 : }
7921 :
7922 : static void
7923 0 : bdev_nvme_get_zone_info_done(void *ref, const struct spdk_nvme_cpl *cpl)
7924 : {
7925 0 : struct nvme_bdev_io *bio = ref;
7926 0 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
7927 0 : uint64_t zone_id = bdev_io->u.zone_mgmt.zone_id;
7928 0 : uint32_t zones_to_copy = bdev_io->u.zone_mgmt.num_zones;
7929 0 : struct spdk_bdev_zone_info *info = bdev_io->u.zone_mgmt.buf;
7930 : uint64_t max_zones_per_buf, i;
7931 : uint32_t zone_report_bufsize;
7932 : struct spdk_nvme_ns *ns;
7933 : struct spdk_nvme_qpair *qpair;
7934 : int ret;
7935 :
7936 0 : if (spdk_nvme_cpl_is_error(cpl)) {
7937 0 : goto out_complete_io_nvme_cpl;
7938 : }
7939 :
7940 0 : if (spdk_unlikely(!nvme_io_path_is_available(bio->io_path))) {
7941 0 : ret = -ENXIO;
7942 0 : goto out_complete_io_ret;
7943 : }
7944 :
7945 0 : ns = bio->io_path->nvme_ns->ns;
7946 0 : qpair = bio->io_path->qpair->qpair;
7947 :
7948 0 : zone_report_bufsize = spdk_nvme_ns_get_max_io_xfer_size(ns);
7949 0 : max_zones_per_buf = (zone_report_bufsize - sizeof(*bio->zone_report_buf)) /
7950 : sizeof(bio->zone_report_buf->descs[0]);
7951 :
7952 0 : if (bio->zone_report_buf->nr_zones > max_zones_per_buf) {
7953 0 : ret = -EINVAL;
7954 0 : goto out_complete_io_ret;
7955 : }
7956 :
7957 0 : if (!bio->zone_report_buf->nr_zones) {
7958 0 : ret = -EINVAL;
7959 0 : goto out_complete_io_ret;
7960 : }
7961 :
7962 0 : for (i = 0; i < bio->zone_report_buf->nr_zones && bio->handled_zones < zones_to_copy; i++) {
7963 0 : ret = fill_zone_from_report(&info[bio->handled_zones],
7964 0 : &bio->zone_report_buf->descs[i]);
7965 0 : if (ret) {
7966 0 : goto out_complete_io_ret;
7967 : }
7968 0 : bio->handled_zones++;
7969 : }
7970 :
7971 0 : if (bio->handled_zones < zones_to_copy) {
7972 0 : uint64_t zone_size_lba = spdk_nvme_zns_ns_get_zone_size_sectors(ns);
7973 0 : uint64_t slba = zone_id + (zone_size_lba * bio->handled_zones);
7974 :
7975 0 : memset(bio->zone_report_buf, 0, zone_report_bufsize);
7976 0 : ret = spdk_nvme_zns_report_zones(ns, qpair,
7977 0 : bio->zone_report_buf, zone_report_bufsize,
7978 : slba, SPDK_NVME_ZRA_LIST_ALL, true,
7979 : bdev_nvme_get_zone_info_done, bio);
7980 0 : if (!ret) {
7981 0 : return;
7982 : } else {
7983 0 : goto out_complete_io_ret;
7984 : }
7985 : }
7986 :
7987 0 : out_complete_io_nvme_cpl:
7988 0 : free(bio->zone_report_buf);
7989 0 : bio->zone_report_buf = NULL;
7990 0 : bdev_nvme_io_complete_nvme_status(bio, cpl);
7991 0 : return;
7992 :
7993 0 : out_complete_io_ret:
7994 0 : free(bio->zone_report_buf);
7995 0 : bio->zone_report_buf = NULL;
7996 0 : bdev_nvme_io_complete(bio, ret);
7997 : }
7998 :
7999 : static void
8000 0 : bdev_nvme_zone_management_done(void *ref, const struct spdk_nvme_cpl *cpl)
8001 : {
8002 0 : struct nvme_bdev_io *bio = ref;
8003 :
8004 0 : bdev_nvme_io_complete_nvme_status(bio, cpl);
8005 0 : }
8006 :
8007 : static void
8008 4 : bdev_nvme_admin_passthru_complete_nvme_status(void *ctx)
8009 : {
8010 4 : struct nvme_bdev_io *bio = ctx;
8011 4 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
8012 4 : const struct spdk_nvme_cpl *cpl = &bio->cpl;
8013 :
8014 4 : assert(bdev_nvme_io_type_is_admin(bdev_io->type));
8015 :
8016 4 : __bdev_nvme_io_complete(bdev_io, 0, cpl);
8017 4 : }
8018 :
8019 : static void
8020 3 : bdev_nvme_abort_complete(void *ctx)
8021 : {
8022 3 : struct nvme_bdev_io *bio = ctx;
8023 3 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
8024 :
8025 3 : if (spdk_nvme_cpl_is_abort_success(&bio->cpl)) {
8026 3 : __bdev_nvme_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_SUCCESS, NULL);
8027 : } else {
8028 0 : __bdev_nvme_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED, NULL);
8029 : }
8030 3 : }
8031 :
8032 : static void
8033 3 : bdev_nvme_abort_done(void *ref, const struct spdk_nvme_cpl *cpl)
8034 : {
8035 3 : struct nvme_bdev_io *bio = ref;
8036 3 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
8037 :
8038 3 : bio->cpl = *cpl;
8039 3 : spdk_thread_send_msg(spdk_bdev_io_get_thread(bdev_io), bdev_nvme_abort_complete, bio);
8040 3 : }
8041 :
8042 : static void
8043 4 : bdev_nvme_admin_passthru_done(void *ref, const struct spdk_nvme_cpl *cpl)
8044 : {
8045 4 : struct nvme_bdev_io *bio = ref;
8046 4 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
8047 :
8048 4 : bio->cpl = *cpl;
8049 4 : spdk_thread_send_msg(spdk_bdev_io_get_thread(bdev_io),
8050 : bdev_nvme_admin_passthru_complete_nvme_status, bio);
8051 4 : }
8052 :
8053 : static void
8054 0 : bdev_nvme_queued_reset_sgl(void *ref, uint32_t sgl_offset)
8055 : {
8056 0 : struct nvme_bdev_io *bio = ref;
8057 : struct iovec *iov;
8058 :
8059 0 : bio->iov_offset = sgl_offset;
8060 0 : for (bio->iovpos = 0; bio->iovpos < bio->iovcnt; bio->iovpos++) {
8061 0 : iov = &bio->iovs[bio->iovpos];
8062 0 : if (bio->iov_offset < iov->iov_len) {
8063 0 : break;
8064 : }
8065 :
8066 0 : bio->iov_offset -= iov->iov_len;
8067 : }
8068 0 : }
8069 :
8070 : static int
8071 0 : bdev_nvme_queued_next_sge(void *ref, void **address, uint32_t *length)
8072 : {
8073 0 : struct nvme_bdev_io *bio = ref;
8074 : struct iovec *iov;
8075 :
8076 0 : assert(bio->iovpos < bio->iovcnt);
8077 :
8078 0 : iov = &bio->iovs[bio->iovpos];
8079 :
8080 0 : *address = iov->iov_base;
8081 0 : *length = iov->iov_len;
8082 :
8083 0 : if (bio->iov_offset) {
8084 0 : assert(bio->iov_offset <= iov->iov_len);
8085 0 : *address += bio->iov_offset;
8086 0 : *length -= bio->iov_offset;
8087 : }
8088 :
8089 0 : bio->iov_offset += *length;
8090 0 : if (bio->iov_offset == iov->iov_len) {
8091 0 : bio->iovpos++;
8092 0 : bio->iov_offset = 0;
8093 : }
8094 :
8095 0 : return 0;
8096 : }
8097 :
8098 : static void
8099 0 : bdev_nvme_queued_reset_fused_sgl(void *ref, uint32_t sgl_offset)
8100 : {
8101 0 : struct nvme_bdev_io *bio = ref;
8102 : struct iovec *iov;
8103 :
8104 0 : bio->fused_iov_offset = sgl_offset;
8105 0 : for (bio->fused_iovpos = 0; bio->fused_iovpos < bio->fused_iovcnt; bio->fused_iovpos++) {
8106 0 : iov = &bio->fused_iovs[bio->fused_iovpos];
8107 0 : if (bio->fused_iov_offset < iov->iov_len) {
8108 0 : break;
8109 : }
8110 :
8111 0 : bio->fused_iov_offset -= iov->iov_len;
8112 : }
8113 0 : }
8114 :
8115 : static int
8116 0 : bdev_nvme_queued_next_fused_sge(void *ref, void **address, uint32_t *length)
8117 : {
8118 0 : struct nvme_bdev_io *bio = ref;
8119 : struct iovec *iov;
8120 :
8121 0 : assert(bio->fused_iovpos < bio->fused_iovcnt);
8122 :
8123 0 : iov = &bio->fused_iovs[bio->fused_iovpos];
8124 :
8125 0 : *address = iov->iov_base;
8126 0 : *length = iov->iov_len;
8127 :
8128 0 : if (bio->fused_iov_offset) {
8129 0 : assert(bio->fused_iov_offset <= iov->iov_len);
8130 0 : *address += bio->fused_iov_offset;
8131 0 : *length -= bio->fused_iov_offset;
8132 : }
8133 :
8134 0 : bio->fused_iov_offset += *length;
8135 0 : if (bio->fused_iov_offset == iov->iov_len) {
8136 0 : bio->fused_iovpos++;
8137 0 : bio->fused_iov_offset = 0;
8138 : }
8139 :
8140 0 : return 0;
8141 : }
8142 :
8143 : static int
8144 0 : bdev_nvme_no_pi_readv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
8145 : void *md, uint64_t lba_count, uint64_t lba)
8146 : {
8147 : int rc;
8148 :
8149 0 : SPDK_DEBUGLOG(bdev_nvme, "read %" PRIu64 " blocks with offset %#" PRIx64 " without PI check\n",
8150 : lba_count, lba);
8151 :
8152 0 : bio->iovs = iov;
8153 0 : bio->iovcnt = iovcnt;
8154 0 : bio->iovpos = 0;
8155 0 : bio->iov_offset = 0;
8156 :
8157 0 : rc = spdk_nvme_ns_cmd_readv_with_md(bio->io_path->nvme_ns->ns,
8158 0 : bio->io_path->qpair->qpair,
8159 : lba, lba_count,
8160 : bdev_nvme_no_pi_readv_done, bio, 0,
8161 : bdev_nvme_queued_reset_sgl, bdev_nvme_queued_next_sge,
8162 : md, 0, 0);
8163 :
8164 0 : if (rc != 0 && rc != -ENOMEM) {
8165 0 : SPDK_ERRLOG("no_pi_readv failed: rc = %d\n", rc);
8166 : }
8167 0 : return rc;
8168 : }
8169 :
8170 : static int
8171 3 : bdev_nvme_readv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
8172 : void *md, uint64_t lba_count, uint64_t lba, uint32_t flags,
8173 : struct spdk_memory_domain *domain, void *domain_ctx,
8174 : struct spdk_accel_sequence *seq)
8175 : {
8176 3 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8177 3 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8178 : int rc;
8179 :
8180 3 : SPDK_DEBUGLOG(bdev_nvme, "read %" PRIu64 " blocks with offset %#" PRIx64 "\n",
8181 : lba_count, lba);
8182 :
8183 3 : bio->iovs = iov;
8184 3 : bio->iovcnt = iovcnt;
8185 3 : bio->iovpos = 0;
8186 3 : bio->iov_offset = 0;
8187 :
8188 3 : if (domain != NULL || seq != NULL) {
8189 1 : bio->ext_opts.size = SPDK_SIZEOF(&bio->ext_opts, accel_sequence);
8190 1 : bio->ext_opts.memory_domain = domain;
8191 1 : bio->ext_opts.memory_domain_ctx = domain_ctx;
8192 1 : bio->ext_opts.io_flags = flags;
8193 1 : bio->ext_opts.metadata = md;
8194 1 : bio->ext_opts.accel_sequence = seq;
8195 :
8196 1 : if (iovcnt == 1) {
8197 1 : rc = spdk_nvme_ns_cmd_read_ext(ns, qpair, iov[0].iov_base, lba, lba_count, bdev_nvme_readv_done,
8198 : bio, &bio->ext_opts);
8199 : } else {
8200 0 : rc = spdk_nvme_ns_cmd_readv_ext(ns, qpair, lba, lba_count,
8201 : bdev_nvme_readv_done, bio,
8202 : bdev_nvme_queued_reset_sgl,
8203 : bdev_nvme_queued_next_sge,
8204 : &bio->ext_opts);
8205 : }
8206 2 : } else if (iovcnt == 1) {
8207 2 : rc = spdk_nvme_ns_cmd_read_with_md(ns, qpair, iov[0].iov_base,
8208 : md, lba, lba_count, bdev_nvme_readv_done,
8209 : bio, flags, 0, 0);
8210 : } else {
8211 0 : rc = spdk_nvme_ns_cmd_readv_with_md(ns, qpair, lba, lba_count,
8212 : bdev_nvme_readv_done, bio, flags,
8213 : bdev_nvme_queued_reset_sgl,
8214 : bdev_nvme_queued_next_sge, md, 0, 0);
8215 : }
8216 :
8217 3 : if (spdk_unlikely(rc != 0 && rc != -ENOMEM)) {
8218 0 : SPDK_ERRLOG("readv failed: rc = %d\n", rc);
8219 : }
8220 3 : return rc;
8221 : }
8222 :
8223 : static int
8224 25 : bdev_nvme_writev(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
8225 : void *md, uint64_t lba_count, uint64_t lba, uint32_t flags,
8226 : struct spdk_memory_domain *domain, void *domain_ctx,
8227 : struct spdk_accel_sequence *seq,
8228 : union spdk_bdev_nvme_cdw12 cdw12, union spdk_bdev_nvme_cdw13 cdw13)
8229 : {
8230 25 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8231 25 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8232 : int rc;
8233 :
8234 25 : SPDK_DEBUGLOG(bdev_nvme, "write %" PRIu64 " blocks with offset %#" PRIx64 "\n",
8235 : lba_count, lba);
8236 :
8237 25 : bio->iovs = iov;
8238 25 : bio->iovcnt = iovcnt;
8239 25 : bio->iovpos = 0;
8240 25 : bio->iov_offset = 0;
8241 :
8242 25 : if (domain != NULL || seq != NULL) {
8243 0 : bio->ext_opts.size = SPDK_SIZEOF(&bio->ext_opts, accel_sequence);
8244 0 : bio->ext_opts.memory_domain = domain;
8245 0 : bio->ext_opts.memory_domain_ctx = domain_ctx;
8246 0 : bio->ext_opts.io_flags = flags | SPDK_NVME_IO_FLAGS_DIRECTIVE(cdw12.write.dtype);
8247 0 : bio->ext_opts.cdw13 = cdw13.raw;
8248 0 : bio->ext_opts.metadata = md;
8249 0 : bio->ext_opts.accel_sequence = seq;
8250 :
8251 0 : if (iovcnt == 1) {
8252 0 : rc = spdk_nvme_ns_cmd_write_ext(ns, qpair, iov[0].iov_base, lba, lba_count, bdev_nvme_writev_done,
8253 : bio, &bio->ext_opts);
8254 : } else {
8255 0 : rc = spdk_nvme_ns_cmd_writev_ext(ns, qpair, lba, lba_count,
8256 : bdev_nvme_writev_done, bio,
8257 : bdev_nvme_queued_reset_sgl,
8258 : bdev_nvme_queued_next_sge,
8259 : &bio->ext_opts);
8260 : }
8261 25 : } else if (iovcnt == 1) {
8262 25 : rc = spdk_nvme_ns_cmd_write_with_md(ns, qpair, iov[0].iov_base,
8263 : md, lba, lba_count, bdev_nvme_writev_done,
8264 : bio, flags, 0, 0);
8265 : } else {
8266 0 : rc = spdk_nvme_ns_cmd_writev_with_md(ns, qpair, lba, lba_count,
8267 : bdev_nvme_writev_done, bio, flags,
8268 : bdev_nvme_queued_reset_sgl,
8269 : bdev_nvme_queued_next_sge, md, 0, 0);
8270 : }
8271 :
8272 25 : if (spdk_unlikely(rc != 0 && rc != -ENOMEM)) {
8273 0 : SPDK_ERRLOG("writev failed: rc = %d\n", rc);
8274 : }
8275 25 : return rc;
8276 : }
8277 :
8278 : static int
8279 0 : bdev_nvme_zone_appendv(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
8280 : void *md, uint64_t lba_count, uint64_t zslba,
8281 : uint32_t flags)
8282 : {
8283 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8284 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8285 : int rc;
8286 :
8287 0 : SPDK_DEBUGLOG(bdev_nvme, "zone append %" PRIu64 " blocks to zone start lba %#" PRIx64 "\n",
8288 : lba_count, zslba);
8289 :
8290 0 : bio->iovs = iov;
8291 0 : bio->iovcnt = iovcnt;
8292 0 : bio->iovpos = 0;
8293 0 : bio->iov_offset = 0;
8294 :
8295 0 : if (iovcnt == 1) {
8296 0 : rc = spdk_nvme_zns_zone_append_with_md(ns, qpair, iov[0].iov_base, md, zslba,
8297 : lba_count,
8298 : bdev_nvme_zone_appendv_done, bio,
8299 : flags,
8300 : 0, 0);
8301 : } else {
8302 0 : rc = spdk_nvme_zns_zone_appendv_with_md(ns, qpair, zslba, lba_count,
8303 : bdev_nvme_zone_appendv_done, bio, flags,
8304 : bdev_nvme_queued_reset_sgl, bdev_nvme_queued_next_sge,
8305 : md, 0, 0);
8306 : }
8307 :
8308 0 : if (rc != 0 && rc != -ENOMEM) {
8309 0 : SPDK_ERRLOG("zone append failed: rc = %d\n", rc);
8310 : }
8311 0 : return rc;
8312 : }
8313 :
8314 : static int
8315 1 : bdev_nvme_comparev(struct nvme_bdev_io *bio, struct iovec *iov, int iovcnt,
8316 : void *md, uint64_t lba_count, uint64_t lba,
8317 : uint32_t flags)
8318 : {
8319 : int rc;
8320 :
8321 1 : SPDK_DEBUGLOG(bdev_nvme, "compare %" PRIu64 " blocks with offset %#" PRIx64 "\n",
8322 : lba_count, lba);
8323 :
8324 1 : bio->iovs = iov;
8325 1 : bio->iovcnt = iovcnt;
8326 1 : bio->iovpos = 0;
8327 1 : bio->iov_offset = 0;
8328 :
8329 1 : rc = spdk_nvme_ns_cmd_comparev_with_md(bio->io_path->nvme_ns->ns,
8330 1 : bio->io_path->qpair->qpair,
8331 : lba, lba_count,
8332 : bdev_nvme_comparev_done, bio, flags,
8333 : bdev_nvme_queued_reset_sgl, bdev_nvme_queued_next_sge,
8334 : md, 0, 0);
8335 :
8336 1 : if (rc != 0 && rc != -ENOMEM) {
8337 0 : SPDK_ERRLOG("comparev failed: rc = %d\n", rc);
8338 : }
8339 1 : return rc;
8340 : }
8341 :
8342 : static int
8343 2 : bdev_nvme_comparev_and_writev(struct nvme_bdev_io *bio, struct iovec *cmp_iov, int cmp_iovcnt,
8344 : struct iovec *write_iov, int write_iovcnt,
8345 : void *md, uint64_t lba_count, uint64_t lba, uint32_t flags)
8346 : {
8347 2 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8348 2 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8349 2 : struct spdk_bdev_io *bdev_io = spdk_bdev_io_from_ctx(bio);
8350 : int rc;
8351 :
8352 2 : SPDK_DEBUGLOG(bdev_nvme, "compare and write %" PRIu64 " blocks with offset %#" PRIx64 "\n",
8353 : lba_count, lba);
8354 :
8355 2 : bio->iovs = cmp_iov;
8356 2 : bio->iovcnt = cmp_iovcnt;
8357 2 : bio->iovpos = 0;
8358 2 : bio->iov_offset = 0;
8359 2 : bio->fused_iovs = write_iov;
8360 2 : bio->fused_iovcnt = write_iovcnt;
8361 2 : bio->fused_iovpos = 0;
8362 2 : bio->fused_iov_offset = 0;
8363 :
8364 2 : if (bdev_io->num_retries == 0) {
8365 2 : bio->first_fused_submitted = false;
8366 2 : bio->first_fused_completed = false;
8367 : }
8368 :
8369 2 : if (!bio->first_fused_submitted) {
8370 2 : flags |= SPDK_NVME_IO_FLAGS_FUSE_FIRST;
8371 2 : memset(&bio->cpl, 0, sizeof(bio->cpl));
8372 :
8373 2 : rc = spdk_nvme_ns_cmd_comparev_with_md(ns, qpair, lba, lba_count,
8374 : bdev_nvme_comparev_and_writev_done, bio, flags,
8375 : bdev_nvme_queued_reset_sgl, bdev_nvme_queued_next_sge, md, 0, 0);
8376 2 : if (rc == 0) {
8377 2 : bio->first_fused_submitted = true;
8378 2 : flags &= ~SPDK_NVME_IO_FLAGS_FUSE_FIRST;
8379 : } else {
8380 0 : if (rc != -ENOMEM) {
8381 0 : SPDK_ERRLOG("compare failed: rc = %d\n", rc);
8382 : }
8383 0 : return rc;
8384 : }
8385 : }
8386 :
8387 2 : flags |= SPDK_NVME_IO_FLAGS_FUSE_SECOND;
8388 :
8389 2 : rc = spdk_nvme_ns_cmd_writev_with_md(ns, qpair, lba, lba_count,
8390 : bdev_nvme_comparev_and_writev_done, bio, flags,
8391 : bdev_nvme_queued_reset_fused_sgl, bdev_nvme_queued_next_fused_sge, md, 0, 0);
8392 2 : if (rc != 0 && rc != -ENOMEM) {
8393 0 : SPDK_ERRLOG("write failed: rc = %d\n", rc);
8394 0 : rc = 0;
8395 : }
8396 :
8397 2 : return rc;
8398 : }
8399 :
8400 : static int
8401 1 : bdev_nvme_unmap(struct nvme_bdev_io *bio, uint64_t offset_blocks, uint64_t num_blocks)
8402 : {
8403 1 : struct spdk_nvme_dsm_range dsm_ranges[SPDK_NVME_DATASET_MANAGEMENT_MAX_RANGES];
8404 : struct spdk_nvme_dsm_range *range;
8405 : uint64_t offset, remaining;
8406 : uint64_t num_ranges_u64;
8407 : uint16_t num_ranges;
8408 : int rc;
8409 :
8410 1 : num_ranges_u64 = (num_blocks + SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS - 1) /
8411 : SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS;
8412 1 : if (num_ranges_u64 > SPDK_COUNTOF(dsm_ranges)) {
8413 0 : SPDK_ERRLOG("Unmap request for %" PRIu64 " blocks is too large\n", num_blocks);
8414 0 : return -EINVAL;
8415 : }
8416 1 : num_ranges = (uint16_t)num_ranges_u64;
8417 :
8418 1 : offset = offset_blocks;
8419 1 : remaining = num_blocks;
8420 1 : range = &dsm_ranges[0];
8421 :
8422 : /* Fill max-size ranges until the remaining blocks fit into one range */
8423 1 : while (remaining > SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS) {
8424 0 : range->attributes.raw = 0;
8425 0 : range->length = SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS;
8426 0 : range->starting_lba = offset;
8427 :
8428 0 : offset += SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS;
8429 0 : remaining -= SPDK_NVME_DATASET_MANAGEMENT_RANGE_MAX_BLOCKS;
8430 0 : range++;
8431 : }
8432 :
8433 : /* Final range describes the remaining blocks */
8434 1 : range->attributes.raw = 0;
8435 1 : range->length = remaining;
8436 1 : range->starting_lba = offset;
8437 :
8438 1 : rc = spdk_nvme_ns_cmd_dataset_management(bio->io_path->nvme_ns->ns,
8439 1 : bio->io_path->qpair->qpair,
8440 : SPDK_NVME_DSM_ATTR_DEALLOCATE,
8441 : dsm_ranges, num_ranges,
8442 : bdev_nvme_queued_done, bio);
8443 :
8444 1 : return rc;
8445 : }
8446 :
8447 : static int
8448 0 : bdev_nvme_write_zeroes(struct nvme_bdev_io *bio, uint64_t offset_blocks, uint64_t num_blocks)
8449 : {
8450 0 : if (num_blocks > UINT16_MAX + 1) {
8451 0 : SPDK_ERRLOG("NVMe write zeroes is limited to 16-bit block count\n");
8452 0 : return -EINVAL;
8453 : }
8454 :
8455 0 : return spdk_nvme_ns_cmd_write_zeroes(bio->io_path->nvme_ns->ns,
8456 0 : bio->io_path->qpair->qpair,
8457 : offset_blocks, num_blocks,
8458 : bdev_nvme_queued_done, bio,
8459 : 0);
8460 : }
8461 :
8462 : static int
8463 0 : bdev_nvme_get_zone_info(struct nvme_bdev_io *bio, uint64_t zone_id, uint32_t num_zones,
8464 : struct spdk_bdev_zone_info *info)
8465 : {
8466 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8467 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8468 0 : uint32_t zone_report_bufsize = spdk_nvme_ns_get_max_io_xfer_size(ns);
8469 0 : uint64_t zone_size = spdk_nvme_zns_ns_get_zone_size_sectors(ns);
8470 0 : uint64_t total_zones = spdk_nvme_zns_ns_get_num_zones(ns);
8471 :
8472 0 : if (zone_id % zone_size != 0) {
8473 0 : return -EINVAL;
8474 : }
8475 :
8476 0 : if (num_zones > total_zones || !num_zones) {
8477 0 : return -EINVAL;
8478 : }
8479 :
8480 0 : assert(!bio->zone_report_buf);
8481 0 : bio->zone_report_buf = calloc(1, zone_report_bufsize);
8482 0 : if (!bio->zone_report_buf) {
8483 0 : return -ENOMEM;
8484 : }
8485 :
8486 0 : bio->handled_zones = 0;
8487 :
8488 0 : return spdk_nvme_zns_report_zones(ns, qpair, bio->zone_report_buf, zone_report_bufsize,
8489 : zone_id, SPDK_NVME_ZRA_LIST_ALL, true,
8490 : bdev_nvme_get_zone_info_done, bio);
8491 : }
8492 :
8493 : static int
8494 0 : bdev_nvme_zone_management(struct nvme_bdev_io *bio, uint64_t zone_id,
8495 : enum spdk_bdev_zone_action action)
8496 : {
8497 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8498 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8499 :
8500 0 : switch (action) {
8501 0 : case SPDK_BDEV_ZONE_CLOSE:
8502 0 : return spdk_nvme_zns_close_zone(ns, qpair, zone_id, false,
8503 : bdev_nvme_zone_management_done, bio);
8504 0 : case SPDK_BDEV_ZONE_FINISH:
8505 0 : return spdk_nvme_zns_finish_zone(ns, qpair, zone_id, false,
8506 : bdev_nvme_zone_management_done, bio);
8507 0 : case SPDK_BDEV_ZONE_OPEN:
8508 0 : return spdk_nvme_zns_open_zone(ns, qpair, zone_id, false,
8509 : bdev_nvme_zone_management_done, bio);
8510 0 : case SPDK_BDEV_ZONE_RESET:
8511 0 : return spdk_nvme_zns_reset_zone(ns, qpair, zone_id, false,
8512 : bdev_nvme_zone_management_done, bio);
8513 0 : case SPDK_BDEV_ZONE_OFFLINE:
8514 0 : return spdk_nvme_zns_offline_zone(ns, qpair, zone_id, false,
8515 : bdev_nvme_zone_management_done, bio);
8516 0 : default:
8517 0 : return -EINVAL;
8518 : }
8519 : }
8520 :
8521 : static void
8522 5 : bdev_nvme_admin_passthru(struct nvme_bdev_channel *nbdev_ch, struct nvme_bdev_io *bio,
8523 : struct spdk_nvme_cmd *cmd, void *buf, size_t nbytes)
8524 : {
8525 : struct nvme_io_path *io_path;
8526 : struct nvme_ctrlr *nvme_ctrlr;
8527 : uint32_t max_xfer_size;
8528 5 : int rc = -ENXIO;
8529 :
8530 : /* Choose the first ctrlr which is not failed. */
8531 8 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
8532 7 : nvme_ctrlr = io_path->qpair->ctrlr;
8533 :
8534 : /* We should skip any unavailable nvme_ctrlr rather than checking
8535 : * if the return value of spdk_nvme_ctrlr_cmd_admin_raw() is -ENXIO.
8536 : */
8537 7 : if (!nvme_ctrlr_is_available(nvme_ctrlr)) {
8538 3 : continue;
8539 : }
8540 :
8541 4 : max_xfer_size = spdk_nvme_ctrlr_get_max_xfer_size(nvme_ctrlr->ctrlr);
8542 :
8543 4 : if (nbytes > max_xfer_size) {
8544 0 : SPDK_ERRLOG("nbytes is greater than MDTS %" PRIu32 ".\n", max_xfer_size);
8545 0 : rc = -EINVAL;
8546 0 : goto err;
8547 : }
8548 :
8549 4 : rc = spdk_nvme_ctrlr_cmd_admin_raw(nvme_ctrlr->ctrlr, cmd, buf, (uint32_t)nbytes,
8550 : bdev_nvme_admin_passthru_done, bio);
8551 4 : if (rc == 0) {
8552 4 : return;
8553 : }
8554 : }
8555 :
8556 1 : err:
8557 1 : bdev_nvme_admin_complete(bio, rc);
8558 : }
8559 :
8560 : static int
8561 0 : bdev_nvme_io_passthru(struct nvme_bdev_io *bio, struct spdk_nvme_cmd *cmd,
8562 : void *buf, size_t nbytes)
8563 : {
8564 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8565 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8566 0 : uint32_t max_xfer_size = spdk_nvme_ns_get_max_io_xfer_size(ns);
8567 0 : struct spdk_nvme_ctrlr *ctrlr = spdk_nvme_ns_get_ctrlr(ns);
8568 :
8569 0 : if (nbytes > max_xfer_size) {
8570 0 : SPDK_ERRLOG("nbytes is greater than MDTS %" PRIu32 ".\n", max_xfer_size);
8571 0 : return -EINVAL;
8572 : }
8573 :
8574 : /*
8575 : * Each NVMe bdev is a specific namespace, and all NVMe I/O commands require a nsid,
8576 : * so fill it out automatically.
8577 : */
8578 0 : cmd->nsid = spdk_nvme_ns_get_id(ns);
8579 :
8580 0 : return spdk_nvme_ctrlr_cmd_io_raw(ctrlr, qpair, cmd, buf,
8581 : (uint32_t)nbytes, bdev_nvme_queued_done, bio);
8582 : }
8583 :
8584 : static int
8585 0 : bdev_nvme_io_passthru_md(struct nvme_bdev_io *bio, struct spdk_nvme_cmd *cmd,
8586 : void *buf, size_t nbytes, void *md_buf, size_t md_len)
8587 : {
8588 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8589 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8590 0 : size_t nr_sectors = nbytes / spdk_nvme_ns_get_extended_sector_size(ns);
8591 0 : uint32_t max_xfer_size = spdk_nvme_ns_get_max_io_xfer_size(ns);
8592 0 : struct spdk_nvme_ctrlr *ctrlr = spdk_nvme_ns_get_ctrlr(ns);
8593 :
8594 0 : if (nbytes > max_xfer_size) {
8595 0 : SPDK_ERRLOG("nbytes is greater than MDTS %" PRIu32 ".\n", max_xfer_size);
8596 0 : return -EINVAL;
8597 : }
8598 :
8599 0 : if (md_len != nr_sectors * spdk_nvme_ns_get_md_size(ns)) {
8600 0 : SPDK_ERRLOG("invalid meta data buffer size\n");
8601 0 : return -EINVAL;
8602 : }
8603 :
8604 : /*
8605 : * Each NVMe bdev is a specific namespace, and all NVMe I/O commands require a nsid,
8606 : * so fill it out automatically.
8607 : */
8608 0 : cmd->nsid = spdk_nvme_ns_get_id(ns);
8609 :
8610 0 : return spdk_nvme_ctrlr_cmd_io_raw_with_md(ctrlr, qpair, cmd, buf,
8611 : (uint32_t)nbytes, md_buf, bdev_nvme_queued_done, bio);
8612 : }
8613 :
8614 : static int
8615 0 : bdev_nvme_iov_passthru_md(struct nvme_bdev_io *bio,
8616 : struct spdk_nvme_cmd *cmd, struct iovec *iov, int iovcnt,
8617 : size_t nbytes, void *md_buf, size_t md_len)
8618 : {
8619 0 : struct spdk_nvme_ns *ns = bio->io_path->nvme_ns->ns;
8620 0 : struct spdk_nvme_qpair *qpair = bio->io_path->qpair->qpair;
8621 0 : size_t nr_sectors = nbytes / spdk_nvme_ns_get_extended_sector_size(ns);
8622 0 : uint32_t max_xfer_size = spdk_nvme_ns_get_max_io_xfer_size(ns);
8623 0 : struct spdk_nvme_ctrlr *ctrlr = spdk_nvme_ns_get_ctrlr(ns);
8624 :
8625 0 : bio->iovs = iov;
8626 0 : bio->iovcnt = iovcnt;
8627 0 : bio->iovpos = 0;
8628 0 : bio->iov_offset = 0;
8629 :
8630 0 : if (nbytes > max_xfer_size) {
8631 0 : SPDK_ERRLOG("nbytes is greater than MDTS %" PRIu32 ".\n", max_xfer_size);
8632 0 : return -EINVAL;
8633 : }
8634 :
8635 0 : if (md_len != nr_sectors * spdk_nvme_ns_get_md_size(ns)) {
8636 0 : SPDK_ERRLOG("invalid meta data buffer size\n");
8637 0 : return -EINVAL;
8638 : }
8639 :
8640 : /*
8641 : * Each NVMe bdev is a specific namespace, and all NVMe I/O commands
8642 : * require a nsid, so fill it out automatically.
8643 : */
8644 0 : cmd->nsid = spdk_nvme_ns_get_id(ns);
8645 :
8646 0 : return spdk_nvme_ctrlr_cmd_iov_raw_with_md(
8647 : ctrlr, qpair, cmd, (uint32_t)nbytes, md_buf, bdev_nvme_queued_done, bio,
8648 : bdev_nvme_queued_reset_sgl, bdev_nvme_queued_next_sge);
8649 : }
8650 :
8651 : static void
8652 6 : bdev_nvme_abort(struct nvme_bdev_channel *nbdev_ch, struct nvme_bdev_io *bio,
8653 : struct nvme_bdev_io *bio_to_abort)
8654 : {
8655 : struct nvme_io_path *io_path;
8656 6 : int rc = 0;
8657 :
8658 6 : rc = bdev_nvme_abort_retry_io(nbdev_ch, bio_to_abort);
8659 6 : if (rc == 0) {
8660 1 : bdev_nvme_admin_complete(bio, 0);
8661 1 : return;
8662 : }
8663 :
8664 5 : io_path = bio_to_abort->io_path;
8665 5 : if (io_path != NULL) {
8666 3 : rc = spdk_nvme_ctrlr_cmd_abort_ext(io_path->qpair->ctrlr->ctrlr,
8667 3 : io_path->qpair->qpair,
8668 : bio_to_abort,
8669 : bdev_nvme_abort_done, bio);
8670 : } else {
8671 3 : STAILQ_FOREACH(io_path, &nbdev_ch->io_path_list, stailq) {
8672 2 : rc = spdk_nvme_ctrlr_cmd_abort_ext(io_path->qpair->ctrlr->ctrlr,
8673 : NULL,
8674 : bio_to_abort,
8675 : bdev_nvme_abort_done, bio);
8676 :
8677 2 : if (rc != -ENOENT) {
8678 1 : break;
8679 : }
8680 : }
8681 : }
8682 :
8683 5 : if (rc != 0) {
8684 : /* If no command was found or there was any error, complete the abort
8685 : * request with failure.
8686 : */
8687 2 : bdev_nvme_admin_complete(bio, rc);
8688 : }
8689 : }
8690 :
8691 : static int
8692 0 : bdev_nvme_copy(struct nvme_bdev_io *bio, uint64_t dst_offset_blocks, uint64_t src_offset_blocks,
8693 : uint64_t num_blocks)
8694 : {
8695 0 : struct spdk_nvme_scc_source_range range = {
8696 : .slba = src_offset_blocks,
8697 0 : .nlb = num_blocks - 1
8698 : };
8699 :
8700 0 : return spdk_nvme_ns_cmd_copy(bio->io_path->nvme_ns->ns,
8701 0 : bio->io_path->qpair->qpair,
8702 : &range, 1, dst_offset_blocks,
8703 : bdev_nvme_queued_done, bio);
8704 : }
8705 :
8706 : static void
8707 0 : bdev_nvme_opts_config_json(struct spdk_json_write_ctx *w)
8708 : {
8709 : const char *action;
8710 : uint32_t i;
8711 :
8712 0 : if (g_opts.action_on_timeout == SPDK_BDEV_NVME_TIMEOUT_ACTION_RESET) {
8713 0 : action = "reset";
8714 0 : } else if (g_opts.action_on_timeout == SPDK_BDEV_NVME_TIMEOUT_ACTION_ABORT) {
8715 0 : action = "abort";
8716 : } else {
8717 0 : action = "none";
8718 : }
8719 :
8720 0 : spdk_json_write_object_begin(w);
8721 :
8722 0 : spdk_json_write_named_string(w, "method", "bdev_nvme_set_options");
8723 :
8724 0 : spdk_json_write_named_object_begin(w, "params");
8725 0 : spdk_json_write_named_string(w, "action_on_timeout", action);
8726 0 : spdk_json_write_named_uint64(w, "timeout_us", g_opts.timeout_us);
8727 0 : spdk_json_write_named_uint64(w, "timeout_admin_us", g_opts.timeout_admin_us);
8728 0 : spdk_json_write_named_uint32(w, "keep_alive_timeout_ms", g_opts.keep_alive_timeout_ms);
8729 0 : spdk_json_write_named_uint32(w, "arbitration_burst", g_opts.arbitration_burst);
8730 0 : spdk_json_write_named_uint32(w, "low_priority_weight", g_opts.low_priority_weight);
8731 0 : spdk_json_write_named_uint32(w, "medium_priority_weight", g_opts.medium_priority_weight);
8732 0 : spdk_json_write_named_uint32(w, "high_priority_weight", g_opts.high_priority_weight);
8733 0 : spdk_json_write_named_uint64(w, "nvme_adminq_poll_period_us", g_opts.nvme_adminq_poll_period_us);
8734 0 : spdk_json_write_named_uint64(w, "nvme_ioq_poll_period_us", g_opts.nvme_ioq_poll_period_us);
8735 0 : spdk_json_write_named_uint32(w, "io_queue_requests", g_opts.io_queue_requests);
8736 0 : spdk_json_write_named_bool(w, "delay_cmd_submit", g_opts.delay_cmd_submit);
8737 0 : spdk_json_write_named_uint32(w, "transport_retry_count", g_opts.transport_retry_count);
8738 0 : spdk_json_write_named_int32(w, "bdev_retry_count", g_opts.bdev_retry_count);
8739 0 : spdk_json_write_named_uint8(w, "transport_ack_timeout", g_opts.transport_ack_timeout);
8740 0 : spdk_json_write_named_int32(w, "ctrlr_loss_timeout_sec", g_opts.ctrlr_loss_timeout_sec);
8741 0 : spdk_json_write_named_uint32(w, "reconnect_delay_sec", g_opts.reconnect_delay_sec);
8742 0 : spdk_json_write_named_uint32(w, "fast_io_fail_timeout_sec", g_opts.fast_io_fail_timeout_sec);
8743 0 : spdk_json_write_named_bool(w, "disable_auto_failback", g_opts.disable_auto_failback);
8744 0 : spdk_json_write_named_bool(w, "generate_uuids", g_opts.generate_uuids);
8745 0 : spdk_json_write_named_uint8(w, "transport_tos", g_opts.transport_tos);
8746 0 : spdk_json_write_named_bool(w, "nvme_error_stat", g_opts.nvme_error_stat);
8747 0 : spdk_json_write_named_uint32(w, "rdma_srq_size", g_opts.rdma_srq_size);
8748 0 : spdk_json_write_named_bool(w, "io_path_stat", g_opts.io_path_stat);
8749 0 : spdk_json_write_named_bool(w, "allow_accel_sequence", g_opts.allow_accel_sequence);
8750 0 : spdk_json_write_named_uint32(w, "rdma_max_cq_size", g_opts.rdma_max_cq_size);
8751 0 : spdk_json_write_named_uint16(w, "rdma_cm_event_timeout_ms", g_opts.rdma_cm_event_timeout_ms);
8752 0 : spdk_json_write_named_array_begin(w, "dhchap_digests");
8753 0 : for (i = 0; i < 32; ++i) {
8754 0 : if (g_opts.dhchap_digests & SPDK_BIT(i)) {
8755 0 : spdk_json_write_string(w, spdk_nvme_dhchap_get_digest_name(i));
8756 : }
8757 : }
8758 0 : spdk_json_write_array_end(w);
8759 0 : spdk_json_write_named_array_begin(w, "dhchap_dhgroups");
8760 0 : for (i = 0; i < 32; ++i) {
8761 0 : if (g_opts.dhchap_dhgroups & SPDK_BIT(i)) {
8762 0 : spdk_json_write_string(w, spdk_nvme_dhchap_get_dhgroup_name(i));
8763 : }
8764 : }
8765 :
8766 0 : spdk_json_write_array_end(w);
8767 0 : spdk_json_write_object_end(w);
8768 :
8769 0 : spdk_json_write_object_end(w);
8770 0 : }
8771 :
8772 : static void
8773 0 : bdev_nvme_discovery_config_json(struct spdk_json_write_ctx *w, struct discovery_ctx *ctx)
8774 : {
8775 0 : struct spdk_nvme_transport_id trid;
8776 :
8777 0 : spdk_json_write_object_begin(w);
8778 :
8779 0 : spdk_json_write_named_string(w, "method", "bdev_nvme_start_discovery");
8780 :
8781 0 : spdk_json_write_named_object_begin(w, "params");
8782 0 : spdk_json_write_named_string(w, "name", ctx->name);
8783 0 : spdk_json_write_named_string(w, "hostnqn", ctx->hostnqn);
8784 :
8785 0 : trid = ctx->trid;
8786 0 : memset(trid.subnqn, 0, sizeof(trid.subnqn));
8787 0 : nvme_bdev_dump_trid_json(&trid, w);
8788 :
8789 0 : spdk_json_write_named_bool(w, "wait_for_attach", ctx->wait_for_attach);
8790 0 : spdk_json_write_named_int32(w, "ctrlr_loss_timeout_sec", ctx->bdev_opts.ctrlr_loss_timeout_sec);
8791 0 : spdk_json_write_named_uint32(w, "reconnect_delay_sec", ctx->bdev_opts.reconnect_delay_sec);
8792 0 : spdk_json_write_named_uint32(w, "fast_io_fail_timeout_sec",
8793 : ctx->bdev_opts.fast_io_fail_timeout_sec);
8794 0 : spdk_json_write_object_end(w);
8795 :
8796 0 : spdk_json_write_object_end(w);
8797 0 : }
8798 :
8799 : #ifdef SPDK_CONFIG_NVME_CUSE
8800 : static void
8801 0 : nvme_ctrlr_cuse_config_json(struct spdk_json_write_ctx *w,
8802 : struct nvme_ctrlr *nvme_ctrlr)
8803 0 : {
8804 0 : size_t cuse_name_size = 128;
8805 0 : char cuse_name[cuse_name_size];
8806 :
8807 0 : if (spdk_nvme_cuse_get_ctrlr_name(nvme_ctrlr->ctrlr,
8808 : cuse_name, &cuse_name_size) != 0) {
8809 0 : return;
8810 : }
8811 :
8812 0 : spdk_json_write_object_begin(w);
8813 :
8814 0 : spdk_json_write_named_string(w, "method", "bdev_nvme_cuse_register");
8815 :
8816 0 : spdk_json_write_named_object_begin(w, "params");
8817 0 : spdk_json_write_named_string(w, "name", nvme_ctrlr->nbdev_ctrlr->name);
8818 0 : spdk_json_write_object_end(w);
8819 :
8820 0 : spdk_json_write_object_end(w);
8821 : }
8822 : #endif
8823 :
8824 : static void
8825 0 : nvme_ctrlr_config_json(struct spdk_json_write_ctx *w,
8826 : struct nvme_ctrlr *nvme_ctrlr,
8827 : struct nvme_path_id *path_id)
8828 : {
8829 : struct spdk_nvme_transport_id *trid;
8830 : const struct spdk_nvme_ctrlr_opts *opts;
8831 :
8832 0 : if (nvme_ctrlr->opts.from_discovery_service) {
8833 : /* Do not emit an RPC for this - it will be implicitly
8834 : * covered by a separate bdev_nvme_start_discovery or
8835 : * bdev_nvme_start_mdns_discovery RPC.
8836 : */
8837 0 : return;
8838 : }
8839 :
8840 0 : trid = &path_id->trid;
8841 :
8842 0 : spdk_json_write_object_begin(w);
8843 :
8844 0 : spdk_json_write_named_string(w, "method", "bdev_nvme_attach_controller");
8845 :
8846 0 : spdk_json_write_named_object_begin(w, "params");
8847 0 : spdk_json_write_named_string(w, "name", nvme_ctrlr->nbdev_ctrlr->name);
8848 0 : nvme_bdev_dump_trid_json(trid, w);
8849 0 : spdk_json_write_named_bool(w, "prchk_reftag",
8850 0 : (nvme_ctrlr->opts.prchk_flags & SPDK_NVME_IO_FLAGS_PRCHK_REFTAG) != 0);
8851 0 : spdk_json_write_named_bool(w, "prchk_guard",
8852 0 : (nvme_ctrlr->opts.prchk_flags & SPDK_NVME_IO_FLAGS_PRCHK_GUARD) != 0);
8853 0 : spdk_json_write_named_int32(w, "ctrlr_loss_timeout_sec", nvme_ctrlr->opts.ctrlr_loss_timeout_sec);
8854 0 : spdk_json_write_named_uint32(w, "reconnect_delay_sec", nvme_ctrlr->opts.reconnect_delay_sec);
8855 0 : spdk_json_write_named_uint32(w, "fast_io_fail_timeout_sec",
8856 : nvme_ctrlr->opts.fast_io_fail_timeout_sec);
8857 0 : if (nvme_ctrlr->psk != NULL) {
8858 0 : spdk_json_write_named_string(w, "psk", spdk_key_get_name(nvme_ctrlr->psk));
8859 : }
8860 0 : if (nvme_ctrlr->dhchap_key != NULL) {
8861 0 : spdk_json_write_named_string(w, "dhchap_key",
8862 : spdk_key_get_name(nvme_ctrlr->dhchap_key));
8863 : }
8864 0 : if (nvme_ctrlr->dhchap_ctrlr_key != NULL) {
8865 0 : spdk_json_write_named_string(w, "dhchap_ctrlr_key",
8866 : spdk_key_get_name(nvme_ctrlr->dhchap_ctrlr_key));
8867 : }
8868 0 : opts = spdk_nvme_ctrlr_get_opts(nvme_ctrlr->ctrlr);
8869 0 : spdk_json_write_named_string(w, "hostnqn", opts->hostnqn);
8870 0 : spdk_json_write_named_bool(w, "hdgst", opts->header_digest);
8871 0 : spdk_json_write_named_bool(w, "ddgst", opts->data_digest);
8872 0 : if (opts->src_addr[0] != '\0') {
8873 0 : spdk_json_write_named_string(w, "hostaddr", opts->src_addr);
8874 : }
8875 0 : if (opts->src_svcid[0] != '\0') {
8876 0 : spdk_json_write_named_string(w, "hostsvcid", opts->src_svcid);
8877 : }
8878 :
8879 0 : if (nvme_ctrlr->opts.multipath) {
8880 0 : spdk_json_write_named_string(w, "multipath", "multipath");
8881 : }
8882 0 : spdk_json_write_object_end(w);
8883 :
8884 0 : spdk_json_write_object_end(w);
8885 : }
8886 :
8887 : static void
8888 0 : bdev_nvme_hotplug_config_json(struct spdk_json_write_ctx *w)
8889 : {
8890 0 : spdk_json_write_object_begin(w);
8891 0 : spdk_json_write_named_string(w, "method", "bdev_nvme_set_hotplug");
8892 :
8893 0 : spdk_json_write_named_object_begin(w, "params");
8894 0 : spdk_json_write_named_uint64(w, "period_us", g_nvme_hotplug_poll_period_us);
8895 0 : spdk_json_write_named_bool(w, "enable", g_nvme_hotplug_enabled);
8896 0 : spdk_json_write_object_end(w);
8897 :
8898 0 : spdk_json_write_object_end(w);
8899 0 : }
8900 :
8901 : static int
8902 0 : bdev_nvme_config_json(struct spdk_json_write_ctx *w)
8903 : {
8904 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
8905 : struct nvme_ctrlr *nvme_ctrlr;
8906 : struct discovery_ctx *ctx;
8907 : struct nvme_path_id *path_id;
8908 :
8909 0 : bdev_nvme_opts_config_json(w);
8910 :
8911 0 : pthread_mutex_lock(&g_bdev_nvme_mutex);
8912 :
8913 0 : TAILQ_FOREACH(nbdev_ctrlr, &g_nvme_bdev_ctrlrs, tailq) {
8914 0 : TAILQ_FOREACH(nvme_ctrlr, &nbdev_ctrlr->ctrlrs, tailq) {
8915 0 : path_id = nvme_ctrlr->active_path_id;
8916 0 : assert(path_id == TAILQ_FIRST(&nvme_ctrlr->trids));
8917 0 : nvme_ctrlr_config_json(w, nvme_ctrlr, path_id);
8918 :
8919 0 : path_id = TAILQ_NEXT(path_id, link);
8920 0 : while (path_id != NULL) {
8921 0 : nvme_ctrlr_config_json(w, nvme_ctrlr, path_id);
8922 0 : path_id = TAILQ_NEXT(path_id, link);
8923 : }
8924 :
8925 : #ifdef SPDK_CONFIG_NVME_CUSE
8926 0 : nvme_ctrlr_cuse_config_json(w, nvme_ctrlr);
8927 : #endif
8928 : }
8929 : }
8930 :
8931 0 : TAILQ_FOREACH(ctx, &g_discovery_ctxs, tailq) {
8932 0 : if (!ctx->from_mdns_discovery_service) {
8933 0 : bdev_nvme_discovery_config_json(w, ctx);
8934 : }
8935 : }
8936 :
8937 0 : bdev_nvme_mdns_discovery_config_json(w);
8938 :
8939 : /* Dump as last parameter to give all NVMe bdevs chance to be constructed
8940 : * before enabling hotplug poller.
8941 : */
8942 0 : bdev_nvme_hotplug_config_json(w);
8943 :
8944 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
8945 0 : return 0;
8946 : }
8947 :
8948 : struct spdk_nvme_ctrlr *
8949 1 : bdev_nvme_get_ctrlr(struct spdk_bdev *bdev)
8950 : {
8951 : struct nvme_bdev *nbdev;
8952 : struct nvme_ns *nvme_ns;
8953 :
8954 1 : if (!bdev || bdev->module != &nvme_if) {
8955 0 : return NULL;
8956 : }
8957 :
8958 1 : nbdev = SPDK_CONTAINEROF(bdev, struct nvme_bdev, disk);
8959 1 : nvme_ns = TAILQ_FIRST(&nbdev->nvme_ns_list);
8960 1 : assert(nvme_ns != NULL);
8961 :
8962 1 : return nvme_ns->ctrlr->ctrlr;
8963 : }
8964 :
8965 : static bool
8966 12 : nvme_io_path_is_current(struct nvme_io_path *io_path)
8967 : {
8968 : const struct nvme_bdev_channel *nbdev_ch;
8969 : bool current;
8970 :
8971 12 : if (!nvme_io_path_is_available(io_path)) {
8972 4 : return false;
8973 : }
8974 :
8975 8 : nbdev_ch = io_path->nbdev_ch;
8976 8 : if (nbdev_ch == NULL) {
8977 1 : current = false;
8978 7 : } else if (nbdev_ch->mp_policy == BDEV_NVME_MP_POLICY_ACTIVE_ACTIVE) {
8979 3 : struct nvme_io_path *optimized_io_path = NULL;
8980 :
8981 6 : STAILQ_FOREACH(optimized_io_path, &nbdev_ch->io_path_list, stailq) {
8982 5 : if (optimized_io_path->nvme_ns->ana_state == SPDK_NVME_ANA_OPTIMIZED_STATE) {
8983 2 : break;
8984 : }
8985 : }
8986 :
8987 : /* A non-optimized path is only current if there are no optimized paths. */
8988 3 : current = (io_path->nvme_ns->ana_state == SPDK_NVME_ANA_OPTIMIZED_STATE) ||
8989 : (optimized_io_path == NULL);
8990 : } else {
8991 4 : if (nbdev_ch->current_io_path) {
8992 1 : current = (io_path == nbdev_ch->current_io_path);
8993 : } else {
8994 : struct nvme_io_path *first_path;
8995 :
8996 : /* We arrived here as there are no optimized paths for active-passive
8997 : * mode. Check if this io_path is the first one available on the list.
8998 : */
8999 3 : current = false;
9000 3 : STAILQ_FOREACH(first_path, &nbdev_ch->io_path_list, stailq) {
9001 3 : if (nvme_io_path_is_available(first_path)) {
9002 3 : current = (io_path == first_path);
9003 3 : break;
9004 : }
9005 : }
9006 : }
9007 : }
9008 :
9009 8 : return current;
9010 : }
9011 :
9012 : static struct nvme_ctrlr *
9013 0 : bdev_nvme_next_ctrlr_unsafe(struct nvme_bdev_ctrlr *nbdev_ctrlr, struct nvme_ctrlr *prev)
9014 : {
9015 : struct nvme_ctrlr *next;
9016 :
9017 : /* Must be called under g_bdev_nvme_mutex */
9018 0 : next = prev != NULL ? TAILQ_NEXT(prev, tailq) : TAILQ_FIRST(&nbdev_ctrlr->ctrlrs);
9019 0 : while (next != NULL) {
9020 : /* ref can be 0 when the ctrlr was released, but hasn't been detached yet */
9021 0 : pthread_mutex_lock(&next->mutex);
9022 0 : if (next->ref > 0) {
9023 0 : next->ref++;
9024 0 : pthread_mutex_unlock(&next->mutex);
9025 0 : return next;
9026 : }
9027 :
9028 0 : pthread_mutex_unlock(&next->mutex);
9029 0 : next = TAILQ_NEXT(next, tailq);
9030 : }
9031 :
9032 0 : return NULL;
9033 : }
9034 :
9035 : struct bdev_nvme_set_keys_ctx {
9036 : struct nvme_ctrlr *nctrlr;
9037 : struct spdk_key *dhchap_key;
9038 : struct spdk_key *dhchap_ctrlr_key;
9039 : struct spdk_thread *thread;
9040 : bdev_nvme_set_keys_cb cb_fn;
9041 : void *cb_ctx;
9042 : int status;
9043 : };
9044 :
9045 : static void
9046 0 : bdev_nvme_free_set_keys_ctx(struct bdev_nvme_set_keys_ctx *ctx)
9047 : {
9048 0 : if (ctx == NULL) {
9049 0 : return;
9050 : }
9051 :
9052 0 : spdk_keyring_put_key(ctx->dhchap_key);
9053 0 : spdk_keyring_put_key(ctx->dhchap_ctrlr_key);
9054 0 : free(ctx);
9055 : }
9056 :
9057 : static void
9058 0 : _bdev_nvme_set_keys_done(void *_ctx)
9059 : {
9060 0 : struct bdev_nvme_set_keys_ctx *ctx = _ctx;
9061 :
9062 0 : ctx->cb_fn(ctx->cb_ctx, ctx->status);
9063 :
9064 0 : if (ctx->nctrlr != NULL) {
9065 0 : nvme_ctrlr_put_ref(ctx->nctrlr);
9066 : }
9067 0 : bdev_nvme_free_set_keys_ctx(ctx);
9068 0 : }
9069 :
9070 : static void
9071 0 : bdev_nvme_set_keys_done(struct bdev_nvme_set_keys_ctx *ctx, int status)
9072 : {
9073 0 : ctx->status = status;
9074 0 : spdk_thread_exec_msg(ctx->thread, _bdev_nvme_set_keys_done, ctx);
9075 0 : }
9076 :
9077 : static void bdev_nvme_authenticate_ctrlr(struct bdev_nvme_set_keys_ctx *ctx);
9078 :
9079 : static void
9080 0 : bdev_nvme_authenticate_ctrlr_continue(struct bdev_nvme_set_keys_ctx *ctx)
9081 : {
9082 : struct nvme_ctrlr *next;
9083 :
9084 0 : pthread_mutex_lock(&g_bdev_nvme_mutex);
9085 0 : next = bdev_nvme_next_ctrlr_unsafe(NULL, ctx->nctrlr);
9086 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
9087 :
9088 0 : nvme_ctrlr_put_ref(ctx->nctrlr);
9089 0 : ctx->nctrlr = next;
9090 :
9091 0 : if (next == NULL) {
9092 0 : bdev_nvme_set_keys_done(ctx, 0);
9093 : } else {
9094 0 : bdev_nvme_authenticate_ctrlr(ctx);
9095 : }
9096 0 : }
9097 :
9098 : static void
9099 0 : bdev_nvme_authenticate_qpairs_done(struct spdk_io_channel_iter *i, int status)
9100 : {
9101 0 : struct bdev_nvme_set_keys_ctx *ctx = spdk_io_channel_iter_get_ctx(i);
9102 :
9103 0 : if (status != 0) {
9104 0 : bdev_nvme_set_keys_done(ctx, status);
9105 0 : return;
9106 : }
9107 0 : bdev_nvme_authenticate_ctrlr_continue(ctx);
9108 : }
9109 :
9110 : static void
9111 0 : bdev_nvme_authenticate_qpair_done(void *ctx, int status)
9112 : {
9113 0 : spdk_for_each_channel_continue(ctx, status);
9114 0 : }
9115 :
9116 : static void
9117 0 : bdev_nvme_authenticate_qpair(struct spdk_io_channel_iter *i)
9118 : {
9119 0 : struct spdk_io_channel *ch = spdk_io_channel_iter_get_channel(i);
9120 0 : struct nvme_ctrlr_channel *ctrlr_ch = spdk_io_channel_get_ctx(ch);
9121 0 : struct nvme_qpair *qpair = ctrlr_ch->qpair;
9122 : int rc;
9123 :
9124 0 : if (!nvme_qpair_is_connected(qpair)) {
9125 0 : spdk_for_each_channel_continue(i, 0);
9126 0 : return;
9127 : }
9128 :
9129 0 : rc = spdk_nvme_qpair_authenticate(qpair->qpair, bdev_nvme_authenticate_qpair_done, i);
9130 0 : if (rc != 0) {
9131 0 : spdk_for_each_channel_continue(i, rc);
9132 : }
9133 : }
9134 :
9135 : static void
9136 0 : bdev_nvme_authenticate_ctrlr_done(void *_ctx, int status)
9137 : {
9138 0 : struct bdev_nvme_set_keys_ctx *ctx = _ctx;
9139 :
9140 0 : if (status != 0) {
9141 0 : bdev_nvme_set_keys_done(ctx, status);
9142 0 : return;
9143 : }
9144 :
9145 0 : spdk_for_each_channel(ctx->nctrlr, bdev_nvme_authenticate_qpair, ctx,
9146 : bdev_nvme_authenticate_qpairs_done);
9147 : }
9148 :
9149 : static void
9150 0 : bdev_nvme_authenticate_ctrlr(struct bdev_nvme_set_keys_ctx *ctx)
9151 : {
9152 0 : struct spdk_nvme_ctrlr_key_opts opts = {};
9153 0 : struct nvme_ctrlr *nctrlr = ctx->nctrlr;
9154 : int rc;
9155 :
9156 0 : opts.size = SPDK_SIZEOF(&opts, dhchap_ctrlr_key);
9157 0 : opts.dhchap_key = ctx->dhchap_key;
9158 0 : opts.dhchap_ctrlr_key = ctx->dhchap_ctrlr_key;
9159 0 : rc = spdk_nvme_ctrlr_set_keys(nctrlr->ctrlr, &opts);
9160 0 : if (rc != 0) {
9161 0 : bdev_nvme_set_keys_done(ctx, rc);
9162 0 : return;
9163 : }
9164 :
9165 0 : if (ctx->dhchap_key != NULL) {
9166 0 : rc = spdk_nvme_ctrlr_authenticate(nctrlr->ctrlr,
9167 : bdev_nvme_authenticate_ctrlr_done, ctx);
9168 0 : if (rc != 0) {
9169 0 : bdev_nvme_set_keys_done(ctx, rc);
9170 : }
9171 : } else {
9172 0 : bdev_nvme_authenticate_ctrlr_continue(ctx);
9173 : }
9174 : }
9175 :
9176 : int
9177 0 : bdev_nvme_set_keys(const char *name, const char *dhchap_key, const char *dhchap_ctrlr_key,
9178 : bdev_nvme_set_keys_cb cb_fn, void *cb_ctx)
9179 : {
9180 : struct bdev_nvme_set_keys_ctx *ctx;
9181 : struct nvme_bdev_ctrlr *nbdev_ctrlr;
9182 : struct nvme_ctrlr *nctrlr;
9183 :
9184 0 : ctx = calloc(1, sizeof(*ctx));
9185 0 : if (ctx == NULL) {
9186 0 : return -ENOMEM;
9187 : }
9188 :
9189 0 : if (dhchap_key != NULL) {
9190 0 : ctx->dhchap_key = spdk_keyring_get_key(dhchap_key);
9191 0 : if (ctx->dhchap_key == NULL) {
9192 0 : SPDK_ERRLOG("Could not find key %s for bdev %s\n", dhchap_key, name);
9193 0 : bdev_nvme_free_set_keys_ctx(ctx);
9194 0 : return -ENOKEY;
9195 : }
9196 : }
9197 0 : if (dhchap_ctrlr_key != NULL) {
9198 0 : ctx->dhchap_ctrlr_key = spdk_keyring_get_key(dhchap_ctrlr_key);
9199 0 : if (ctx->dhchap_ctrlr_key == NULL) {
9200 0 : SPDK_ERRLOG("Could not find key %s for bdev %s\n", dhchap_ctrlr_key, name);
9201 0 : bdev_nvme_free_set_keys_ctx(ctx);
9202 0 : return -ENOKEY;
9203 : }
9204 : }
9205 :
9206 0 : pthread_mutex_lock(&g_bdev_nvme_mutex);
9207 0 : nbdev_ctrlr = nvme_bdev_ctrlr_get_by_name(name);
9208 0 : if (nbdev_ctrlr == NULL) {
9209 0 : SPDK_ERRLOG("Could not find bdev_ctrlr %s\n", name);
9210 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
9211 0 : bdev_nvme_free_set_keys_ctx(ctx);
9212 0 : return -ENODEV;
9213 : }
9214 0 : nctrlr = bdev_nvme_next_ctrlr_unsafe(nbdev_ctrlr, NULL);
9215 0 : if (nctrlr == NULL) {
9216 0 : SPDK_ERRLOG("Could not find any nvme_ctrlrs on bdev_ctrlr %s\n", name);
9217 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
9218 0 : bdev_nvme_free_set_keys_ctx(ctx);
9219 0 : return -ENODEV;
9220 : }
9221 0 : pthread_mutex_unlock(&g_bdev_nvme_mutex);
9222 :
9223 0 : ctx->nctrlr = nctrlr;
9224 0 : ctx->cb_fn = cb_fn;
9225 0 : ctx->cb_ctx = cb_ctx;
9226 0 : ctx->thread = spdk_get_thread();
9227 :
9228 0 : bdev_nvme_authenticate_ctrlr(ctx);
9229 :
9230 0 : return 0;
9231 : }
9232 :
9233 : void
9234 0 : nvme_io_path_info_json(struct spdk_json_write_ctx *w, struct nvme_io_path *io_path)
9235 : {
9236 0 : struct nvme_ns *nvme_ns = io_path->nvme_ns;
9237 0 : struct nvme_ctrlr *nvme_ctrlr = io_path->qpair->ctrlr;
9238 : const struct spdk_nvme_ctrlr_data *cdata;
9239 : const struct spdk_nvme_transport_id *trid;
9240 : const char *adrfam_str;
9241 :
9242 0 : spdk_json_write_object_begin(w);
9243 :
9244 0 : spdk_json_write_named_string(w, "bdev_name", nvme_ns->bdev->disk.name);
9245 :
9246 0 : cdata = spdk_nvme_ctrlr_get_data(nvme_ctrlr->ctrlr);
9247 0 : trid = spdk_nvme_ctrlr_get_transport_id(nvme_ctrlr->ctrlr);
9248 :
9249 0 : spdk_json_write_named_uint32(w, "cntlid", cdata->cntlid);
9250 0 : spdk_json_write_named_bool(w, "current", nvme_io_path_is_current(io_path));
9251 0 : spdk_json_write_named_bool(w, "connected", nvme_qpair_is_connected(io_path->qpair));
9252 0 : spdk_json_write_named_bool(w, "accessible", nvme_ns_is_accessible(nvme_ns));
9253 :
9254 0 : spdk_json_write_named_object_begin(w, "transport");
9255 0 : spdk_json_write_named_string(w, "trtype", trid->trstring);
9256 0 : spdk_json_write_named_string(w, "traddr", trid->traddr);
9257 0 : if (trid->trsvcid[0] != '\0') {
9258 0 : spdk_json_write_named_string(w, "trsvcid", trid->trsvcid);
9259 : }
9260 0 : adrfam_str = spdk_nvme_transport_id_adrfam_str(trid->adrfam);
9261 0 : if (adrfam_str) {
9262 0 : spdk_json_write_named_string(w, "adrfam", adrfam_str);
9263 : }
9264 0 : spdk_json_write_object_end(w);
9265 :
9266 0 : spdk_json_write_object_end(w);
9267 0 : }
9268 :
9269 : void
9270 0 : bdev_nvme_get_discovery_info(struct spdk_json_write_ctx *w)
9271 : {
9272 : struct discovery_ctx *ctx;
9273 : struct discovery_entry_ctx *entry_ctx;
9274 :
9275 0 : spdk_json_write_array_begin(w);
9276 0 : TAILQ_FOREACH(ctx, &g_discovery_ctxs, tailq) {
9277 0 : spdk_json_write_object_begin(w);
9278 0 : spdk_json_write_named_string(w, "name", ctx->name);
9279 :
9280 0 : spdk_json_write_named_object_begin(w, "trid");
9281 0 : nvme_bdev_dump_trid_json(&ctx->trid, w);
9282 0 : spdk_json_write_object_end(w);
9283 :
9284 0 : spdk_json_write_named_array_begin(w, "referrals");
9285 0 : TAILQ_FOREACH(entry_ctx, &ctx->discovery_entry_ctxs, tailq) {
9286 0 : spdk_json_write_object_begin(w);
9287 0 : spdk_json_write_named_object_begin(w, "trid");
9288 0 : nvme_bdev_dump_trid_json(&entry_ctx->trid, w);
9289 0 : spdk_json_write_object_end(w);
9290 0 : spdk_json_write_object_end(w);
9291 : }
9292 0 : spdk_json_write_array_end(w);
9293 :
9294 0 : spdk_json_write_object_end(w);
9295 : }
9296 0 : spdk_json_write_array_end(w);
9297 0 : }
9298 :
9299 1 : SPDK_LOG_REGISTER_COMPONENT(bdev_nvme)
9300 :
9301 : static void
9302 0 : bdev_nvme_trace(void)
9303 : {
9304 0 : struct spdk_trace_tpoint_opts opts[] = {
9305 : {
9306 : "BDEV_NVME_IO_START", TRACE_BDEV_NVME_IO_START,
9307 : OWNER_TYPE_NONE, OBJECT_BDEV_NVME_IO, 1,
9308 : {{ "ctx", SPDK_TRACE_ARG_TYPE_PTR, 8 }}
9309 : },
9310 : {
9311 : "BDEV_NVME_IO_DONE", TRACE_BDEV_NVME_IO_DONE,
9312 : OWNER_TYPE_NONE, OBJECT_BDEV_NVME_IO, 0,
9313 : {{ "ctx", SPDK_TRACE_ARG_TYPE_PTR, 8 }}
9314 : }
9315 : };
9316 :
9317 :
9318 0 : spdk_trace_register_object(OBJECT_BDEV_NVME_IO, 'N');
9319 0 : spdk_trace_register_description_ext(opts, SPDK_COUNTOF(opts));
9320 0 : spdk_trace_tpoint_register_relation(TRACE_NVME_PCIE_SUBMIT, OBJECT_BDEV_NVME_IO, 0);
9321 0 : spdk_trace_tpoint_register_relation(TRACE_NVME_TCP_SUBMIT, OBJECT_BDEV_NVME_IO, 0);
9322 0 : spdk_trace_tpoint_register_relation(TRACE_NVME_PCIE_COMPLETE, OBJECT_BDEV_NVME_IO, 0);
9323 0 : spdk_trace_tpoint_register_relation(TRACE_NVME_TCP_COMPLETE, OBJECT_BDEV_NVME_IO, 0);
9324 0 : }
9325 1 : SPDK_TRACE_REGISTER_FN(bdev_nvme_trace, "bdev_nvme", TRACE_GROUP_BDEV_NVME)
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