1 /* SPDX-License-Identifier: BSD-3-Clause 2 * Copyright (C) 2019 Intel Corporation. 3 * All rights reserved. 4 * Copyright (c) 2021 NVIDIA CORPORATION & AFFILIATES. All rights reserved. 5 */ 6 7 #include "spdk/stdinc.h" 8 9 #include "vbdev_delay.h" 10 #include "spdk/rpc.h" 11 #include "spdk/env.h" 12 #include "spdk/endian.h" 13 #include "spdk/string.h" 14 #include "spdk/thread.h" 15 #include "spdk/util.h" 16 17 #include "spdk/bdev_module.h" 18 #include "spdk/log.h" 19 20 21 static int vbdev_delay_init(void); 22 static int vbdev_delay_get_ctx_size(void); 23 static void vbdev_delay_examine(struct spdk_bdev *bdev); 24 static void vbdev_delay_finish(void); 25 static int vbdev_delay_config_json(struct spdk_json_write_ctx *w); 26 27 static struct spdk_bdev_module delay_if = { 28 .name = "delay", 29 .module_init = vbdev_delay_init, 30 .get_ctx_size = vbdev_delay_get_ctx_size, 31 .examine_config = vbdev_delay_examine, 32 .module_fini = vbdev_delay_finish, 33 .config_json = vbdev_delay_config_json 34 }; 35 36 SPDK_BDEV_MODULE_REGISTER(delay, &delay_if) 37 38 /* Associative list to be used in examine */ 39 struct bdev_association { 40 char *vbdev_name; 41 char *bdev_name; 42 uint64_t avg_read_latency; 43 uint64_t p99_read_latency; 44 uint64_t avg_write_latency; 45 uint64_t p99_write_latency; 46 TAILQ_ENTRY(bdev_association) link; 47 }; 48 static TAILQ_HEAD(, bdev_association) g_bdev_associations = TAILQ_HEAD_INITIALIZER( 49 g_bdev_associations); 50 51 /* List of virtual bdevs and associated info for each. */ 52 struct vbdev_delay { 53 struct spdk_bdev *base_bdev; /* the thing we're attaching to */ 54 struct spdk_bdev_desc *base_desc; /* its descriptor we get from open */ 55 struct spdk_bdev delay_bdev; /* the delay virtual bdev */ 56 uint64_t average_read_latency_ticks; /* the average read delay */ 57 uint64_t p99_read_latency_ticks; /* the p99 read delay */ 58 uint64_t average_write_latency_ticks; /* the average write delay */ 59 uint64_t p99_write_latency_ticks; /* the p99 write delay */ 60 TAILQ_ENTRY(vbdev_delay) link; 61 struct spdk_thread *thread; /* thread where base device is opened */ 62 }; 63 static TAILQ_HEAD(, vbdev_delay) g_delay_nodes = TAILQ_HEAD_INITIALIZER(g_delay_nodes); 64 65 struct delay_bdev_io { 66 int status; 67 68 uint64_t completion_tick; 69 70 enum delay_io_type type; 71 72 struct spdk_io_channel *ch; 73 74 struct spdk_bdev_io_wait_entry bdev_io_wait; 75 76 struct spdk_bdev_io *zcopy_bdev_io; 77 78 STAILQ_ENTRY(delay_bdev_io) link; 79 }; 80 81 struct delay_io_channel { 82 struct spdk_io_channel *base_ch; /* IO channel of base device */ 83 STAILQ_HEAD(, delay_bdev_io) avg_read_io; 84 STAILQ_HEAD(, delay_bdev_io) p99_read_io; 85 STAILQ_HEAD(, delay_bdev_io) avg_write_io; 86 STAILQ_HEAD(, delay_bdev_io) p99_write_io; 87 struct spdk_poller *io_poller; 88 unsigned int rand_seed; 89 }; 90 91 static void vbdev_delay_submit_request(struct spdk_io_channel *ch, struct spdk_bdev_io *bdev_io); 92 93 94 /* Callback for unregistering the IO device. */ 95 static void 96 _device_unregister_cb(void *io_device) 97 { 98 struct vbdev_delay *delay_node = io_device; 99 100 /* Done with this delay_node. */ 101 free(delay_node->delay_bdev.name); 102 free(delay_node); 103 } 104 105 static void 106 _vbdev_delay_destruct(void *ctx) 107 { 108 struct spdk_bdev_desc *desc = ctx; 109 110 spdk_bdev_close(desc); 111 } 112 113 static int 114 vbdev_delay_destruct(void *ctx) 115 { 116 struct vbdev_delay *delay_node = (struct vbdev_delay *)ctx; 117 118 /* It is important to follow this exact sequence of steps for destroying 119 * a vbdev... 120 */ 121 122 TAILQ_REMOVE(&g_delay_nodes, delay_node, link); 123 124 /* Unclaim the underlying bdev. */ 125 spdk_bdev_module_release_bdev(delay_node->base_bdev); 126 127 /* Close the underlying bdev on its same opened thread. */ 128 if (delay_node->thread && delay_node->thread != spdk_get_thread()) { 129 spdk_thread_send_msg(delay_node->thread, _vbdev_delay_destruct, delay_node->base_desc); 130 } else { 131 spdk_bdev_close(delay_node->base_desc); 132 } 133 134 /* Unregister the io_device. */ 135 spdk_io_device_unregister(delay_node, _device_unregister_cb); 136 137 return 0; 138 } 139 140 static int 141 _process_io_stailq(void *arg, uint64_t ticks) 142 { 143 STAILQ_HEAD(, delay_bdev_io) *head = arg; 144 struct delay_bdev_io *io_ctx, *tmp; 145 int completions = 0; 146 147 STAILQ_FOREACH_SAFE(io_ctx, head, link, tmp) { 148 if (io_ctx->completion_tick <= ticks) { 149 STAILQ_REMOVE(head, io_ctx, delay_bdev_io, link); 150 spdk_bdev_io_complete(spdk_bdev_io_from_ctx(io_ctx), io_ctx->status); 151 completions++; 152 } else { 153 /* In the general case, I/O will become ready in an fifo order. When timeouts are dynamically 154 * changed, this is not necessarily the case. However, the normal behavior will be restored 155 * after the outstanding I/O at the time of the change have been completed. 156 * This essentially means that moving from a high to low latency creates a dam for the new I/O 157 * submitted after the latency change. This is considered desirable behavior for the use case where 158 * we are trying to trigger a pre-defined timeout on an initiator. 159 */ 160 break; 161 } 162 } 163 164 return completions; 165 } 166 167 static int 168 _delay_finish_io(void *arg) 169 { 170 struct delay_io_channel *delay_ch = arg; 171 uint64_t ticks = spdk_get_ticks(); 172 int completions = 0; 173 174 completions += _process_io_stailq(&delay_ch->avg_read_io, ticks); 175 completions += _process_io_stailq(&delay_ch->avg_write_io, ticks); 176 completions += _process_io_stailq(&delay_ch->p99_read_io, ticks); 177 completions += _process_io_stailq(&delay_ch->p99_write_io, ticks); 178 179 return completions == 0 ? SPDK_POLLER_IDLE : SPDK_POLLER_BUSY; 180 } 181 182 /* Completion callback for IO that were issued from this bdev. The original bdev_io 183 * is passed in as an arg so we'll complete that one with the appropriate status 184 * and then free the one that this module issued. 185 */ 186 static void 187 _delay_complete_io(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg) 188 { 189 struct spdk_bdev_io *orig_io = cb_arg; 190 struct vbdev_delay *delay_node = SPDK_CONTAINEROF(orig_io->bdev, struct vbdev_delay, delay_bdev); 191 struct delay_bdev_io *io_ctx = (struct delay_bdev_io *)orig_io->driver_ctx; 192 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(io_ctx->ch); 193 194 io_ctx->status = success ? SPDK_BDEV_IO_STATUS_SUCCESS : SPDK_BDEV_IO_STATUS_FAILED; 195 196 if (bdev_io->type == SPDK_BDEV_IO_TYPE_ZCOPY && bdev_io->u.bdev.zcopy.start && success) { 197 io_ctx->zcopy_bdev_io = bdev_io; 198 } else { 199 assert(io_ctx->zcopy_bdev_io == NULL || io_ctx->zcopy_bdev_io == bdev_io); 200 io_ctx->zcopy_bdev_io = NULL; 201 spdk_bdev_free_io(bdev_io); 202 } 203 204 /* Put the I/O into the proper list for processing by the channel poller. */ 205 switch (io_ctx->type) { 206 case DELAY_AVG_READ: 207 io_ctx->completion_tick = spdk_get_ticks() + delay_node->average_read_latency_ticks; 208 STAILQ_INSERT_TAIL(&delay_ch->avg_read_io, io_ctx, link); 209 break; 210 case DELAY_AVG_WRITE: 211 io_ctx->completion_tick = spdk_get_ticks() + delay_node->average_write_latency_ticks; 212 STAILQ_INSERT_TAIL(&delay_ch->avg_write_io, io_ctx, link); 213 break; 214 case DELAY_P99_READ: 215 io_ctx->completion_tick = spdk_get_ticks() + delay_node->p99_read_latency_ticks; 216 STAILQ_INSERT_TAIL(&delay_ch->p99_read_io, io_ctx, link); 217 break; 218 case DELAY_P99_WRITE: 219 io_ctx->completion_tick = spdk_get_ticks() + delay_node->p99_write_latency_ticks; 220 STAILQ_INSERT_TAIL(&delay_ch->p99_write_io, io_ctx, link); 221 break; 222 case DELAY_NONE: 223 default: 224 spdk_bdev_io_complete(orig_io, io_ctx->status); 225 break; 226 } 227 } 228 229 static void 230 vbdev_delay_resubmit_io(void *arg) 231 { 232 struct spdk_bdev_io *bdev_io = (struct spdk_bdev_io *)arg; 233 struct delay_bdev_io *io_ctx = (struct delay_bdev_io *)bdev_io->driver_ctx; 234 235 vbdev_delay_submit_request(io_ctx->ch, bdev_io); 236 } 237 238 static void 239 vbdev_delay_queue_io(struct spdk_bdev_io *bdev_io) 240 { 241 struct delay_bdev_io *io_ctx = (struct delay_bdev_io *)bdev_io->driver_ctx; 242 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(io_ctx->ch); 243 int rc; 244 245 io_ctx->bdev_io_wait.bdev = bdev_io->bdev; 246 io_ctx->bdev_io_wait.cb_fn = vbdev_delay_resubmit_io; 247 io_ctx->bdev_io_wait.cb_arg = bdev_io; 248 249 rc = spdk_bdev_queue_io_wait(bdev_io->bdev, delay_ch->base_ch, &io_ctx->bdev_io_wait); 250 if (rc != 0) { 251 SPDK_ERRLOG("Queue io failed in vbdev_delay_queue_io, rc=%d.\n", rc); 252 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 253 } 254 } 255 256 static void 257 delay_read_get_buf_cb(struct spdk_io_channel *ch, struct spdk_bdev_io *bdev_io, bool success) 258 { 259 struct vbdev_delay *delay_node = SPDK_CONTAINEROF(bdev_io->bdev, struct vbdev_delay, 260 delay_bdev); 261 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(ch); 262 int rc; 263 264 if (!success) { 265 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 266 return; 267 } 268 269 rc = spdk_bdev_readv_blocks_ext(delay_node->base_desc, delay_ch->base_ch, bdev_io->u.bdev.iovs, 270 bdev_io->u.bdev.iovcnt, bdev_io->u.bdev.offset_blocks, 271 bdev_io->u.bdev.num_blocks, _delay_complete_io, 272 bdev_io, bdev_io->u.bdev.ext_opts); 273 274 if (rc == -ENOMEM) { 275 SPDK_ERRLOG("No memory, start to queue io for delay.\n"); 276 vbdev_delay_queue_io(bdev_io); 277 } else if (rc != 0) { 278 SPDK_ERRLOG("ERROR on bdev_io submission!\n"); 279 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 280 } 281 } 282 283 static void 284 vbdev_delay_reset_dev(struct spdk_io_channel_iter *i, int status) 285 { 286 struct spdk_bdev_io *bdev_io = spdk_io_channel_iter_get_ctx(i); 287 struct delay_bdev_io *io_ctx = (struct delay_bdev_io *)bdev_io->driver_ctx; 288 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(io_ctx->ch); 289 struct vbdev_delay *delay_node = spdk_io_channel_iter_get_io_device(i); 290 int rc; 291 292 rc = spdk_bdev_reset(delay_node->base_desc, delay_ch->base_ch, 293 _delay_complete_io, bdev_io); 294 295 if (rc == -ENOMEM) { 296 SPDK_ERRLOG("No memory, start to queue io for delay.\n"); 297 vbdev_delay_queue_io(bdev_io); 298 } else if (rc != 0) { 299 SPDK_ERRLOG("ERROR on bdev_io submission!\n"); 300 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 301 } 302 } 303 304 static void 305 abort_zcopy_io(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg) 306 { 307 spdk_bdev_free_io(bdev_io); 308 } 309 310 static void 311 _abort_all_delayed_io(void *arg) 312 { 313 STAILQ_HEAD(, delay_bdev_io) *head = arg; 314 struct delay_bdev_io *io_ctx, *tmp; 315 316 STAILQ_FOREACH_SAFE(io_ctx, head, link, tmp) { 317 STAILQ_REMOVE(head, io_ctx, delay_bdev_io, link); 318 if (io_ctx->zcopy_bdev_io != NULL) { 319 spdk_bdev_zcopy_end(io_ctx->zcopy_bdev_io, false, abort_zcopy_io, NULL); 320 } 321 spdk_bdev_io_complete(spdk_bdev_io_from_ctx(io_ctx), SPDK_BDEV_IO_STATUS_ABORTED); 322 } 323 } 324 325 static void 326 vbdev_delay_reset_channel(struct spdk_io_channel_iter *i) 327 { 328 struct spdk_io_channel *ch = spdk_io_channel_iter_get_channel(i); 329 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(ch); 330 331 _abort_all_delayed_io(&delay_ch->avg_read_io); 332 _abort_all_delayed_io(&delay_ch->avg_write_io); 333 _abort_all_delayed_io(&delay_ch->p99_read_io); 334 _abort_all_delayed_io(&delay_ch->p99_write_io); 335 336 spdk_for_each_channel_continue(i, 0); 337 } 338 339 static bool 340 abort_delayed_io(void *_head, struct spdk_bdev_io *bio_to_abort) 341 { 342 STAILQ_HEAD(, delay_bdev_io) *head = _head; 343 struct delay_bdev_io *io_ctx_to_abort = (struct delay_bdev_io *)bio_to_abort->driver_ctx; 344 struct delay_bdev_io *io_ctx; 345 346 STAILQ_FOREACH(io_ctx, head, link) { 347 if (io_ctx == io_ctx_to_abort) { 348 STAILQ_REMOVE(head, io_ctx_to_abort, delay_bdev_io, link); 349 if (io_ctx->zcopy_bdev_io != NULL) { 350 spdk_bdev_zcopy_end(io_ctx->zcopy_bdev_io, false, abort_zcopy_io, NULL); 351 } 352 spdk_bdev_io_complete(bio_to_abort, SPDK_BDEV_IO_STATUS_ABORTED); 353 return true; 354 } 355 } 356 357 return false; 358 } 359 360 static int 361 vbdev_delay_abort(struct vbdev_delay *delay_node, struct delay_io_channel *delay_ch, 362 struct spdk_bdev_io *bdev_io) 363 { 364 struct spdk_bdev_io *bio_to_abort = bdev_io->u.abort.bio_to_abort; 365 366 if (abort_delayed_io(&delay_ch->avg_read_io, bio_to_abort) || 367 abort_delayed_io(&delay_ch->avg_write_io, bio_to_abort) || 368 abort_delayed_io(&delay_ch->p99_read_io, bio_to_abort) || 369 abort_delayed_io(&delay_ch->p99_write_io, bio_to_abort)) { 370 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_SUCCESS); 371 return 0; 372 } 373 374 return spdk_bdev_abort(delay_node->base_desc, delay_ch->base_ch, bio_to_abort, 375 _delay_complete_io, bdev_io); 376 } 377 378 static void 379 vbdev_delay_submit_request(struct spdk_io_channel *ch, struct spdk_bdev_io *bdev_io) 380 { 381 struct vbdev_delay *delay_node = SPDK_CONTAINEROF(bdev_io->bdev, struct vbdev_delay, delay_bdev); 382 struct delay_io_channel *delay_ch = spdk_io_channel_get_ctx(ch); 383 struct delay_bdev_io *io_ctx = (struct delay_bdev_io *)bdev_io->driver_ctx; 384 int rc = 0; 385 bool is_p99; 386 387 is_p99 = rand_r(&delay_ch->rand_seed) % 100 == 0 ? true : false; 388 389 io_ctx->ch = ch; 390 io_ctx->type = DELAY_NONE; 391 if (bdev_io->type != SPDK_BDEV_IO_TYPE_ZCOPY || bdev_io->u.bdev.zcopy.start) { 392 io_ctx->zcopy_bdev_io = NULL; 393 } 394 395 switch (bdev_io->type) { 396 case SPDK_BDEV_IO_TYPE_READ: 397 io_ctx->type = is_p99 ? DELAY_P99_READ : DELAY_AVG_READ; 398 spdk_bdev_io_get_buf(bdev_io, delay_read_get_buf_cb, 399 bdev_io->u.bdev.num_blocks * bdev_io->bdev->blocklen); 400 break; 401 case SPDK_BDEV_IO_TYPE_WRITE: 402 io_ctx->type = is_p99 ? DELAY_P99_WRITE : DELAY_AVG_WRITE; 403 rc = spdk_bdev_writev_blocks_ext(delay_node->base_desc, delay_ch->base_ch, bdev_io->u.bdev.iovs, 404 bdev_io->u.bdev.iovcnt, bdev_io->u.bdev.offset_blocks, 405 bdev_io->u.bdev.num_blocks, _delay_complete_io, 406 bdev_io, bdev_io->u.bdev.ext_opts); 407 break; 408 case SPDK_BDEV_IO_TYPE_WRITE_ZEROES: 409 rc = spdk_bdev_write_zeroes_blocks(delay_node->base_desc, delay_ch->base_ch, 410 bdev_io->u.bdev.offset_blocks, 411 bdev_io->u.bdev.num_blocks, 412 _delay_complete_io, bdev_io); 413 break; 414 case SPDK_BDEV_IO_TYPE_UNMAP: 415 rc = spdk_bdev_unmap_blocks(delay_node->base_desc, delay_ch->base_ch, 416 bdev_io->u.bdev.offset_blocks, 417 bdev_io->u.bdev.num_blocks, 418 _delay_complete_io, bdev_io); 419 break; 420 case SPDK_BDEV_IO_TYPE_FLUSH: 421 rc = spdk_bdev_flush_blocks(delay_node->base_desc, delay_ch->base_ch, 422 bdev_io->u.bdev.offset_blocks, 423 bdev_io->u.bdev.num_blocks, 424 _delay_complete_io, bdev_io); 425 break; 426 case SPDK_BDEV_IO_TYPE_RESET: 427 /* During reset, the generic bdev layer aborts all new I/Os and queues all new resets. 428 * Hence we can simply abort all I/Os delayed to complete. 429 */ 430 spdk_for_each_channel(delay_node, vbdev_delay_reset_channel, bdev_io, 431 vbdev_delay_reset_dev); 432 break; 433 case SPDK_BDEV_IO_TYPE_ABORT: 434 rc = vbdev_delay_abort(delay_node, delay_ch, bdev_io); 435 break; 436 case SPDK_BDEV_IO_TYPE_ZCOPY: 437 if (bdev_io->u.bdev.zcopy.commit) { 438 io_ctx->type = is_p99 ? DELAY_P99_WRITE : DELAY_AVG_WRITE; 439 } else if (bdev_io->u.bdev.zcopy.populate) { 440 io_ctx->type = is_p99 ? DELAY_P99_READ : DELAY_AVG_READ; 441 } 442 if (bdev_io->u.bdev.zcopy.start) { 443 rc = spdk_bdev_zcopy_start(delay_node->base_desc, delay_ch->base_ch, 444 bdev_io->u.bdev.iovs, bdev_io->u.bdev.iovcnt, 445 bdev_io->u.bdev.offset_blocks, 446 bdev_io->u.bdev.num_blocks, 447 bdev_io->u.bdev.zcopy.populate, 448 _delay_complete_io, bdev_io); 449 } else { 450 rc = spdk_bdev_zcopy_end(io_ctx->zcopy_bdev_io, bdev_io->u.bdev.zcopy.commit, 451 _delay_complete_io, bdev_io); 452 } 453 break; 454 default: 455 SPDK_ERRLOG("delay: unknown I/O type %d\n", bdev_io->type); 456 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 457 return; 458 } 459 460 if (rc == -ENOMEM) { 461 SPDK_ERRLOG("No memory, start to queue io for delay.\n"); 462 vbdev_delay_queue_io(bdev_io); 463 } else if (rc != 0) { 464 SPDK_ERRLOG("ERROR on bdev_io submission!\n"); 465 spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_FAILED); 466 } 467 } 468 469 static bool 470 vbdev_delay_io_type_supported(void *ctx, enum spdk_bdev_io_type io_type) 471 { 472 struct vbdev_delay *delay_node = (struct vbdev_delay *)ctx; 473 474 return spdk_bdev_io_type_supported(delay_node->base_bdev, io_type); 475 } 476 477 static struct spdk_io_channel * 478 vbdev_delay_get_io_channel(void *ctx) 479 { 480 struct vbdev_delay *delay_node = (struct vbdev_delay *)ctx; 481 struct spdk_io_channel *delay_ch = NULL; 482 483 delay_ch = spdk_get_io_channel(delay_node); 484 485 return delay_ch; 486 } 487 488 static void 489 _delay_write_conf_values(struct vbdev_delay *delay_node, struct spdk_json_write_ctx *w) 490 { 491 spdk_json_write_named_string(w, "name", spdk_bdev_get_name(&delay_node->delay_bdev)); 492 spdk_json_write_named_string(w, "base_bdev_name", spdk_bdev_get_name(delay_node->base_bdev)); 493 spdk_json_write_named_int64(w, "avg_read_latency", 494 delay_node->average_read_latency_ticks * SPDK_SEC_TO_USEC / spdk_get_ticks_hz()); 495 spdk_json_write_named_int64(w, "p99_read_latency", 496 delay_node->p99_read_latency_ticks * SPDK_SEC_TO_USEC / spdk_get_ticks_hz()); 497 spdk_json_write_named_int64(w, "avg_write_latency", 498 delay_node->average_write_latency_ticks * SPDK_SEC_TO_USEC / spdk_get_ticks_hz()); 499 spdk_json_write_named_int64(w, "p99_write_latency", 500 delay_node->p99_write_latency_ticks * SPDK_SEC_TO_USEC / spdk_get_ticks_hz()); 501 } 502 503 static int 504 vbdev_delay_dump_info_json(void *ctx, struct spdk_json_write_ctx *w) 505 { 506 struct vbdev_delay *delay_node = (struct vbdev_delay *)ctx; 507 508 spdk_json_write_name(w, "delay"); 509 spdk_json_write_object_begin(w); 510 _delay_write_conf_values(delay_node, w); 511 spdk_json_write_object_end(w); 512 513 return 0; 514 } 515 516 /* This is used to generate JSON that can configure this module to its current state. */ 517 static int 518 vbdev_delay_config_json(struct spdk_json_write_ctx *w) 519 { 520 struct vbdev_delay *delay_node; 521 522 TAILQ_FOREACH(delay_node, &g_delay_nodes, link) { 523 spdk_json_write_object_begin(w); 524 spdk_json_write_named_string(w, "method", "bdev_delay_create"); 525 spdk_json_write_named_object_begin(w, "params"); 526 _delay_write_conf_values(delay_node, w); 527 spdk_json_write_object_end(w); 528 spdk_json_write_object_end(w); 529 } 530 return 0; 531 } 532 533 /* We provide this callback for the SPDK channel code to create a channel using 534 * the channel struct we provided in our module get_io_channel() entry point. Here 535 * we get and save off an underlying base channel of the device below us so that 536 * we can communicate with the base bdev on a per channel basis. If we needed 537 * our own poller for this vbdev, we'd register it here. 538 */ 539 static int 540 delay_bdev_ch_create_cb(void *io_device, void *ctx_buf) 541 { 542 struct delay_io_channel *delay_ch = ctx_buf; 543 struct vbdev_delay *delay_node = io_device; 544 545 STAILQ_INIT(&delay_ch->avg_read_io); 546 STAILQ_INIT(&delay_ch->p99_read_io); 547 STAILQ_INIT(&delay_ch->avg_write_io); 548 STAILQ_INIT(&delay_ch->p99_write_io); 549 550 delay_ch->io_poller = SPDK_POLLER_REGISTER(_delay_finish_io, delay_ch, 0); 551 delay_ch->base_ch = spdk_bdev_get_io_channel(delay_node->base_desc); 552 delay_ch->rand_seed = time(NULL); 553 554 return 0; 555 } 556 557 /* We provide this callback for the SPDK channel code to destroy a channel 558 * created with our create callback. We just need to undo anything we did 559 * when we created. If this bdev used its own poller, we'd unregister it here. 560 */ 561 static void 562 delay_bdev_ch_destroy_cb(void *io_device, void *ctx_buf) 563 { 564 struct delay_io_channel *delay_ch = ctx_buf; 565 566 spdk_poller_unregister(&delay_ch->io_poller); 567 spdk_put_io_channel(delay_ch->base_ch); 568 } 569 570 /* Create the delay association from the bdev and vbdev name and insert 571 * on the global list. */ 572 static int 573 vbdev_delay_insert_association(const char *bdev_name, const char *vbdev_name, 574 uint64_t avg_read_latency, uint64_t p99_read_latency, 575 uint64_t avg_write_latency, uint64_t p99_write_latency) 576 { 577 struct bdev_association *assoc; 578 579 TAILQ_FOREACH(assoc, &g_bdev_associations, link) { 580 if (strcmp(vbdev_name, assoc->vbdev_name) == 0) { 581 SPDK_ERRLOG("delay bdev %s already exists\n", vbdev_name); 582 return -EEXIST; 583 } 584 } 585 586 assoc = calloc(1, sizeof(struct bdev_association)); 587 if (!assoc) { 588 SPDK_ERRLOG("could not allocate bdev_association\n"); 589 return -ENOMEM; 590 } 591 592 assoc->bdev_name = strdup(bdev_name); 593 if (!assoc->bdev_name) { 594 SPDK_ERRLOG("could not allocate assoc->bdev_name\n"); 595 free(assoc); 596 return -ENOMEM; 597 } 598 599 assoc->vbdev_name = strdup(vbdev_name); 600 if (!assoc->vbdev_name) { 601 SPDK_ERRLOG("could not allocate assoc->vbdev_name\n"); 602 free(assoc->bdev_name); 603 free(assoc); 604 return -ENOMEM; 605 } 606 607 assoc->avg_read_latency = avg_read_latency; 608 assoc->p99_read_latency = p99_read_latency; 609 assoc->avg_write_latency = avg_write_latency; 610 assoc->p99_write_latency = p99_write_latency; 611 612 TAILQ_INSERT_TAIL(&g_bdev_associations, assoc, link); 613 614 return 0; 615 } 616 617 int 618 vbdev_delay_update_latency_value(char *delay_name, uint64_t latency_us, enum delay_io_type type) 619 { 620 struct vbdev_delay *delay_node; 621 uint64_t ticks_mhz = spdk_get_ticks_hz() / SPDK_SEC_TO_USEC; 622 623 TAILQ_FOREACH(delay_node, &g_delay_nodes, link) { 624 if (strcmp(delay_node->delay_bdev.name, delay_name) == 0) { 625 break; 626 } 627 } 628 629 if (delay_node == NULL) { 630 return -ENODEV; 631 } 632 633 switch (type) { 634 case DELAY_AVG_READ: 635 delay_node->average_read_latency_ticks = ticks_mhz * latency_us; 636 break; 637 case DELAY_AVG_WRITE: 638 delay_node->average_write_latency_ticks = ticks_mhz * latency_us; 639 break; 640 case DELAY_P99_READ: 641 delay_node->p99_read_latency_ticks = ticks_mhz * latency_us; 642 break; 643 case DELAY_P99_WRITE: 644 delay_node->p99_write_latency_ticks = ticks_mhz * latency_us; 645 break; 646 default: 647 return -EINVAL; 648 } 649 650 return 0; 651 } 652 653 static int 654 vbdev_delay_init(void) 655 { 656 /* Not allowing for .ini style configuration. */ 657 return 0; 658 } 659 660 static void 661 vbdev_delay_finish(void) 662 { 663 struct bdev_association *assoc; 664 665 while ((assoc = TAILQ_FIRST(&g_bdev_associations))) { 666 TAILQ_REMOVE(&g_bdev_associations, assoc, link); 667 free(assoc->bdev_name); 668 free(assoc->vbdev_name); 669 free(assoc); 670 } 671 } 672 673 static int 674 vbdev_delay_get_ctx_size(void) 675 { 676 return sizeof(struct delay_bdev_io); 677 } 678 679 static void 680 vbdev_delay_write_config_json(struct spdk_bdev *bdev, struct spdk_json_write_ctx *w) 681 { 682 /* No config per bdev needed */ 683 } 684 685 static int 686 vbdev_delay_get_memory_domains(void *ctx, struct spdk_memory_domain **domains, int array_size) 687 { 688 struct vbdev_delay *delay_node = (struct vbdev_delay *)ctx; 689 690 /* Delay bdev doesn't work with data buffers, so it supports any memory domain used by base_bdev */ 691 return spdk_bdev_get_memory_domains(delay_node->base_bdev, domains, array_size); 692 } 693 694 /* When we register our bdev this is how we specify our entry points. */ 695 static const struct spdk_bdev_fn_table vbdev_delay_fn_table = { 696 .destruct = vbdev_delay_destruct, 697 .submit_request = vbdev_delay_submit_request, 698 .io_type_supported = vbdev_delay_io_type_supported, 699 .get_io_channel = vbdev_delay_get_io_channel, 700 .dump_info_json = vbdev_delay_dump_info_json, 701 .write_config_json = vbdev_delay_write_config_json, 702 .get_memory_domains = vbdev_delay_get_memory_domains, 703 }; 704 705 static void 706 vbdev_delay_base_bdev_hotremove_cb(struct spdk_bdev *bdev_find) 707 { 708 struct vbdev_delay *delay_node, *tmp; 709 710 TAILQ_FOREACH_SAFE(delay_node, &g_delay_nodes, link, tmp) { 711 if (bdev_find == delay_node->base_bdev) { 712 spdk_bdev_unregister(&delay_node->delay_bdev, NULL, NULL); 713 } 714 } 715 } 716 717 /* Called when the underlying base bdev triggers asynchronous event such as bdev removal. */ 718 static void 719 vbdev_delay_base_bdev_event_cb(enum spdk_bdev_event_type type, struct spdk_bdev *bdev, 720 void *event_ctx) 721 { 722 switch (type) { 723 case SPDK_BDEV_EVENT_REMOVE: 724 vbdev_delay_base_bdev_hotremove_cb(bdev); 725 break; 726 default: 727 SPDK_NOTICELOG("Unsupported bdev event: type %d\n", type); 728 break; 729 } 730 } 731 732 /* Create and register the delay vbdev if we find it in our list of bdev names. 733 * This can be called either by the examine path or RPC method. 734 */ 735 static int 736 vbdev_delay_register(const char *bdev_name) 737 { 738 struct bdev_association *assoc; 739 struct vbdev_delay *delay_node; 740 struct spdk_bdev *bdev; 741 uint64_t ticks_mhz = spdk_get_ticks_hz() / SPDK_SEC_TO_USEC; 742 int rc = 0; 743 744 /* Check our list of names from config versus this bdev and if 745 * there's a match, create the delay_node & bdev accordingly. 746 */ 747 TAILQ_FOREACH(assoc, &g_bdev_associations, link) { 748 if (strcmp(assoc->bdev_name, bdev_name) != 0) { 749 continue; 750 } 751 752 delay_node = calloc(1, sizeof(struct vbdev_delay)); 753 if (!delay_node) { 754 rc = -ENOMEM; 755 SPDK_ERRLOG("could not allocate delay_node\n"); 756 break; 757 } 758 delay_node->delay_bdev.name = strdup(assoc->vbdev_name); 759 if (!delay_node->delay_bdev.name) { 760 rc = -ENOMEM; 761 SPDK_ERRLOG("could not allocate delay_bdev name\n"); 762 free(delay_node); 763 break; 764 } 765 delay_node->delay_bdev.product_name = "delay"; 766 767 /* The base bdev that we're attaching to. */ 768 rc = spdk_bdev_open_ext(bdev_name, true, vbdev_delay_base_bdev_event_cb, 769 NULL, &delay_node->base_desc); 770 if (rc) { 771 if (rc != -ENODEV) { 772 SPDK_ERRLOG("could not open bdev %s\n", bdev_name); 773 } 774 free(delay_node->delay_bdev.name); 775 free(delay_node); 776 break; 777 } 778 779 bdev = spdk_bdev_desc_get_bdev(delay_node->base_desc); 780 delay_node->base_bdev = bdev; 781 782 delay_node->delay_bdev.write_cache = bdev->write_cache; 783 delay_node->delay_bdev.required_alignment = bdev->required_alignment; 784 delay_node->delay_bdev.optimal_io_boundary = bdev->optimal_io_boundary; 785 delay_node->delay_bdev.blocklen = bdev->blocklen; 786 delay_node->delay_bdev.blockcnt = bdev->blockcnt; 787 788 delay_node->delay_bdev.ctxt = delay_node; 789 delay_node->delay_bdev.fn_table = &vbdev_delay_fn_table; 790 delay_node->delay_bdev.module = &delay_if; 791 792 /* Store the number of ticks you need to add to get the I/O expiration time. */ 793 delay_node->average_read_latency_ticks = ticks_mhz * assoc->avg_read_latency; 794 delay_node->p99_read_latency_ticks = ticks_mhz * assoc->p99_read_latency; 795 delay_node->average_write_latency_ticks = ticks_mhz * assoc->avg_write_latency; 796 delay_node->p99_write_latency_ticks = ticks_mhz * assoc->p99_write_latency; 797 798 spdk_io_device_register(delay_node, delay_bdev_ch_create_cb, delay_bdev_ch_destroy_cb, 799 sizeof(struct delay_io_channel), 800 assoc->vbdev_name); 801 802 /* Save the thread where the base device is opened */ 803 delay_node->thread = spdk_get_thread(); 804 805 rc = spdk_bdev_module_claim_bdev(bdev, delay_node->base_desc, delay_node->delay_bdev.module); 806 if (rc) { 807 SPDK_ERRLOG("could not claim bdev %s\n", bdev_name); 808 goto error_close; 809 } 810 811 rc = spdk_bdev_register(&delay_node->delay_bdev); 812 if (rc) { 813 SPDK_ERRLOG("could not register delay_bdev\n"); 814 spdk_bdev_module_release_bdev(delay_node->base_bdev); 815 goto error_close; 816 } 817 818 TAILQ_INSERT_TAIL(&g_delay_nodes, delay_node, link); 819 } 820 821 return rc; 822 823 error_close: 824 spdk_bdev_close(delay_node->base_desc); 825 spdk_io_device_unregister(delay_node, NULL); 826 free(delay_node->delay_bdev.name); 827 free(delay_node); 828 return rc; 829 } 830 831 int 832 create_delay_disk(const char *bdev_name, const char *vbdev_name, uint64_t avg_read_latency, 833 uint64_t p99_read_latency, uint64_t avg_write_latency, uint64_t p99_write_latency) 834 { 835 int rc = 0; 836 837 if (p99_read_latency < avg_read_latency || p99_write_latency < avg_write_latency) { 838 SPDK_ERRLOG("Unable to create a delay bdev where p99 latency is less than average latency.\n"); 839 return -EINVAL; 840 } 841 842 rc = vbdev_delay_insert_association(bdev_name, vbdev_name, avg_read_latency, p99_read_latency, 843 avg_write_latency, p99_write_latency); 844 if (rc) { 845 return rc; 846 } 847 848 rc = vbdev_delay_register(bdev_name); 849 if (rc == -ENODEV) { 850 /* This is not an error, we tracked the name above and it still 851 * may show up later. 852 */ 853 SPDK_NOTICELOG("vbdev creation deferred pending base bdev arrival\n"); 854 rc = 0; 855 } 856 857 return rc; 858 } 859 860 void 861 delete_delay_disk(const char *vbdev_name, spdk_bdev_unregister_cb cb_fn, void *cb_arg) 862 { 863 struct bdev_association *assoc; 864 int rc; 865 866 rc = spdk_bdev_unregister_by_name(vbdev_name, &delay_if, cb_fn, cb_arg); 867 if (rc == 0) { 868 TAILQ_FOREACH(assoc, &g_bdev_associations, link) { 869 if (strcmp(assoc->vbdev_name, vbdev_name) == 0) { 870 TAILQ_REMOVE(&g_bdev_associations, assoc, link); 871 free(assoc->bdev_name); 872 free(assoc->vbdev_name); 873 free(assoc); 874 break; 875 } 876 } 877 } else { 878 cb_fn(cb_arg, rc); 879 } 880 } 881 882 static void 883 vbdev_delay_examine(struct spdk_bdev *bdev) 884 { 885 vbdev_delay_register(bdev->name); 886 887 spdk_bdev_module_examine_done(&delay_if); 888 } 889 890 SPDK_LOG_REGISTER_COMPONENT(vbdev_delay) 891