1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Add configfs and memory store: Kyungchan Koh <kkc6196@fb.com> and 4 * Shaohua Li <shli@fb.com> 5 */ 6 #include <linux/module.h> 7 8 #include <linux/moduleparam.h> 9 #include <linux/sched.h> 10 #include <linux/fs.h> 11 #include <linux/init.h> 12 #include "null_blk.h" 13 14 #undef pr_fmt 15 #define pr_fmt(fmt) "null_blk: " fmt 16 17 #define FREE_BATCH 16 18 19 #define TICKS_PER_SEC 50ULL 20 #define TIMER_INTERVAL (NSEC_PER_SEC / TICKS_PER_SEC) 21 22 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 23 static DECLARE_FAULT_ATTR(null_timeout_attr); 24 static DECLARE_FAULT_ATTR(null_requeue_attr); 25 static DECLARE_FAULT_ATTR(null_init_hctx_attr); 26 #endif 27 28 static inline u64 mb_per_tick(int mbps) 29 { 30 return (1 << 20) / TICKS_PER_SEC * ((u64) mbps); 31 } 32 33 /* 34 * Status flags for nullb_device. 35 * 36 * CONFIGURED: Device has been configured and turned on. Cannot reconfigure. 37 * UP: Device is currently on and visible in userspace. 38 * THROTTLED: Device is being throttled. 39 * CACHE: Device is using a write-back cache. 40 */ 41 enum nullb_device_flags { 42 NULLB_DEV_FL_CONFIGURED = 0, 43 NULLB_DEV_FL_UP = 1, 44 NULLB_DEV_FL_THROTTLED = 2, 45 NULLB_DEV_FL_CACHE = 3, 46 }; 47 48 #define MAP_SZ ((PAGE_SIZE >> SECTOR_SHIFT) + 2) 49 /* 50 * nullb_page is a page in memory for nullb devices. 51 * 52 * @page: The page holding the data. 53 * @bitmap: The bitmap represents which sector in the page has data. 54 * Each bit represents one block size. For example, sector 8 55 * will use the 7th bit 56 * The highest 2 bits of bitmap are for special purpose. LOCK means the cache 57 * page is being flushing to storage. FREE means the cache page is freed and 58 * should be skipped from flushing to storage. Please see 59 * null_make_cache_space 60 */ 61 struct nullb_page { 62 struct page *page; 63 DECLARE_BITMAP(bitmap, MAP_SZ); 64 }; 65 #define NULLB_PAGE_LOCK (MAP_SZ - 1) 66 #define NULLB_PAGE_FREE (MAP_SZ - 2) 67 68 static LIST_HEAD(nullb_list); 69 static DEFINE_MUTEX(lock); 70 static int null_major; 71 static DEFINE_IDA(nullb_indexes); 72 static struct blk_mq_tag_set tag_set; 73 74 enum { 75 NULL_IRQ_NONE = 0, 76 NULL_IRQ_SOFTIRQ = 1, 77 NULL_IRQ_TIMER = 2, 78 }; 79 80 static bool g_virt_boundary; 81 module_param_named(virt_boundary, g_virt_boundary, bool, 0444); 82 MODULE_PARM_DESC(virt_boundary, "Require a virtual boundary for the device. Default: False"); 83 84 static int g_no_sched; 85 module_param_named(no_sched, g_no_sched, int, 0444); 86 MODULE_PARM_DESC(no_sched, "No io scheduler"); 87 88 static int g_submit_queues = 1; 89 module_param_named(submit_queues, g_submit_queues, int, 0444); 90 MODULE_PARM_DESC(submit_queues, "Number of submission queues"); 91 92 static int g_poll_queues = 1; 93 module_param_named(poll_queues, g_poll_queues, int, 0444); 94 MODULE_PARM_DESC(poll_queues, "Number of IOPOLL submission queues"); 95 96 static int g_home_node = NUMA_NO_NODE; 97 module_param_named(home_node, g_home_node, int, 0444); 98 MODULE_PARM_DESC(home_node, "Home node for the device"); 99 100 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 101 /* 102 * For more details about fault injection, please refer to 103 * Documentation/fault-injection/fault-injection.rst. 104 */ 105 static char g_timeout_str[80]; 106 module_param_string(timeout, g_timeout_str, sizeof(g_timeout_str), 0444); 107 MODULE_PARM_DESC(timeout, "Fault injection. timeout=<interval>,<probability>,<space>,<times>"); 108 109 static char g_requeue_str[80]; 110 module_param_string(requeue, g_requeue_str, sizeof(g_requeue_str), 0444); 111 MODULE_PARM_DESC(requeue, "Fault injection. requeue=<interval>,<probability>,<space>,<times>"); 112 113 static char g_init_hctx_str[80]; 114 module_param_string(init_hctx, g_init_hctx_str, sizeof(g_init_hctx_str), 0444); 115 MODULE_PARM_DESC(init_hctx, "Fault injection to fail hctx init. init_hctx=<interval>,<probability>,<space>,<times>"); 116 #endif 117 118 /* 119 * Historic queue modes. 120 * 121 * These days nothing but NULL_Q_MQ is actually supported, but we keep it the 122 * enum for error reporting. 123 */ 124 enum { 125 NULL_Q_BIO = 0, 126 NULL_Q_RQ = 1, 127 NULL_Q_MQ = 2, 128 }; 129 130 static int g_queue_mode = NULL_Q_MQ; 131 132 static int null_param_store_val(const char *str, int *val, int min, int max) 133 { 134 int ret, new_val; 135 136 ret = kstrtoint(str, 10, &new_val); 137 if (ret) 138 return -EINVAL; 139 140 if (new_val < min || new_val > max) 141 return -EINVAL; 142 143 *val = new_val; 144 return 0; 145 } 146 147 static int null_set_queue_mode(const char *str, const struct kernel_param *kp) 148 { 149 return null_param_store_val(str, &g_queue_mode, NULL_Q_BIO, NULL_Q_MQ); 150 } 151 152 static const struct kernel_param_ops null_queue_mode_param_ops = { 153 .set = null_set_queue_mode, 154 .get = param_get_int, 155 }; 156 157 device_param_cb(queue_mode, &null_queue_mode_param_ops, &g_queue_mode, 0444); 158 MODULE_PARM_DESC(queue_mode, "Block interface to use (0=bio,1=rq,2=multiqueue)"); 159 160 static int g_gb = 250; 161 module_param_named(gb, g_gb, int, 0444); 162 MODULE_PARM_DESC(gb, "Size in GB"); 163 164 static int g_bs = 512; 165 module_param_named(bs, g_bs, int, 0444); 166 MODULE_PARM_DESC(bs, "Block size (in bytes)"); 167 168 static int g_max_sectors; 169 module_param_named(max_sectors, g_max_sectors, int, 0444); 170 MODULE_PARM_DESC(max_sectors, "Maximum size of a command (in 512B sectors)"); 171 172 static unsigned int nr_devices = 1; 173 module_param(nr_devices, uint, 0444); 174 MODULE_PARM_DESC(nr_devices, "Number of devices to register"); 175 176 static bool g_blocking; 177 module_param_named(blocking, g_blocking, bool, 0444); 178 MODULE_PARM_DESC(blocking, "Register as a blocking blk-mq driver device"); 179 180 static bool g_shared_tags; 181 module_param_named(shared_tags, g_shared_tags, bool, 0444); 182 MODULE_PARM_DESC(shared_tags, "Share tag set between devices for blk-mq"); 183 184 static bool g_shared_tag_bitmap; 185 module_param_named(shared_tag_bitmap, g_shared_tag_bitmap, bool, 0444); 186 MODULE_PARM_DESC(shared_tag_bitmap, "Use shared tag bitmap for all submission queues for blk-mq"); 187 188 static int g_irqmode = NULL_IRQ_SOFTIRQ; 189 190 static int null_set_irqmode(const char *str, const struct kernel_param *kp) 191 { 192 return null_param_store_val(str, &g_irqmode, NULL_IRQ_NONE, 193 NULL_IRQ_TIMER); 194 } 195 196 static const struct kernel_param_ops null_irqmode_param_ops = { 197 .set = null_set_irqmode, 198 .get = param_get_int, 199 }; 200 201 device_param_cb(irqmode, &null_irqmode_param_ops, &g_irqmode, 0444); 202 MODULE_PARM_DESC(irqmode, "IRQ completion handler. 0-none, 1-softirq, 2-timer"); 203 204 static unsigned long g_completion_nsec = 10000; 205 module_param_named(completion_nsec, g_completion_nsec, ulong, 0444); 206 MODULE_PARM_DESC(completion_nsec, "Time in ns to complete a request in hardware. Default: 10,000ns"); 207 208 static int g_hw_queue_depth = 64; 209 module_param_named(hw_queue_depth, g_hw_queue_depth, int, 0444); 210 MODULE_PARM_DESC(hw_queue_depth, "Queue depth for each hardware queue. Default: 64"); 211 212 static bool g_use_per_node_hctx; 213 module_param_named(use_per_node_hctx, g_use_per_node_hctx, bool, 0444); 214 MODULE_PARM_DESC(use_per_node_hctx, "Use per-node allocation for hardware context queues. Default: false"); 215 216 static bool g_memory_backed; 217 module_param_named(memory_backed, g_memory_backed, bool, 0444); 218 MODULE_PARM_DESC(memory_backed, "Create a memory-backed block device. Default: false"); 219 220 static bool g_discard; 221 module_param_named(discard, g_discard, bool, 0444); 222 MODULE_PARM_DESC(discard, "Support discard operations (requires memory-backed null_blk device). Default: false"); 223 224 static unsigned long g_cache_size; 225 module_param_named(cache_size, g_cache_size, ulong, 0444); 226 MODULE_PARM_DESC(cache_size, "Cache size in MiB for memory-backed device. Default: 0 (none)"); 227 228 static bool g_fua = true; 229 module_param_named(fua, g_fua, bool, 0444); 230 MODULE_PARM_DESC(fua, "Enable/disable FUA support when cache_size is used. Default: true"); 231 232 static unsigned int g_mbps; 233 module_param_named(mbps, g_mbps, uint, 0444); 234 MODULE_PARM_DESC(mbps, "Limit maximum bandwidth (in MiB/s). Default: 0 (no limit)"); 235 236 static bool g_zoned; 237 module_param_named(zoned, g_zoned, bool, S_IRUGO); 238 MODULE_PARM_DESC(zoned, "Make device as a host-managed zoned block device. Default: false"); 239 240 static unsigned long g_zone_size = 256; 241 module_param_named(zone_size, g_zone_size, ulong, S_IRUGO); 242 MODULE_PARM_DESC(zone_size, "Zone size in MB when block device is zoned. Must be power-of-two: Default: 256"); 243 244 static unsigned long g_zone_capacity; 245 module_param_named(zone_capacity, g_zone_capacity, ulong, 0444); 246 MODULE_PARM_DESC(zone_capacity, "Zone capacity in MB when block device is zoned. Can be less than or equal to zone size. Default: Zone size"); 247 248 static unsigned int g_zone_nr_conv; 249 module_param_named(zone_nr_conv, g_zone_nr_conv, uint, 0444); 250 MODULE_PARM_DESC(zone_nr_conv, "Number of conventional zones when block device is zoned. Default: 0"); 251 252 static unsigned int g_zone_max_open; 253 module_param_named(zone_max_open, g_zone_max_open, uint, 0444); 254 MODULE_PARM_DESC(zone_max_open, "Maximum number of open zones when block device is zoned. Default: 0 (no limit)"); 255 256 static unsigned int g_zone_max_active; 257 module_param_named(zone_max_active, g_zone_max_active, uint, 0444); 258 MODULE_PARM_DESC(zone_max_active, "Maximum number of active zones when block device is zoned. Default: 0 (no limit)"); 259 260 static int g_zone_append_max_sectors = INT_MAX; 261 module_param_named(zone_append_max_sectors, g_zone_append_max_sectors, int, 0444); 262 MODULE_PARM_DESC(zone_append_max_sectors, 263 "Maximum size of a zone append command (in 512B sectors). Specify 0 for zone append emulation"); 264 265 static bool g_zone_full; 266 module_param_named(zone_full, g_zone_full, bool, S_IRUGO); 267 MODULE_PARM_DESC(zone_full, "Initialize the sequential write required zones of a zoned device to be full. Default: false"); 268 269 static bool g_rotational; 270 module_param_named(rotational, g_rotational, bool, S_IRUGO); 271 MODULE_PARM_DESC(rotational, "Set the rotational feature for the device. Default: false"); 272 273 static struct nullb_device *null_alloc_dev(void); 274 static void null_free_dev(struct nullb_device *dev); 275 static void null_del_dev(struct nullb *nullb); 276 static int null_add_dev(struct nullb_device *dev); 277 static struct nullb *null_find_dev_by_name(const char *name); 278 static void null_free_device_storage(struct nullb_device *dev, bool is_cache); 279 280 static inline struct nullb_device *to_nullb_device(struct config_item *item) 281 { 282 return item ? container_of(to_config_group(item), struct nullb_device, group) : NULL; 283 } 284 285 static inline ssize_t nullb_device_uint_attr_show(unsigned int val, char *page) 286 { 287 return snprintf(page, PAGE_SIZE, "%u\n", val); 288 } 289 290 static inline ssize_t nullb_device_ulong_attr_show(unsigned long val, 291 char *page) 292 { 293 return snprintf(page, PAGE_SIZE, "%lu\n", val); 294 } 295 296 static inline ssize_t nullb_device_bool_attr_show(bool val, char *page) 297 { 298 return snprintf(page, PAGE_SIZE, "%u\n", val); 299 } 300 301 static ssize_t nullb_device_uint_attr_store(unsigned int *val, 302 const char *page, size_t count) 303 { 304 unsigned int tmp; 305 int result; 306 307 result = kstrtouint(page, 0, &tmp); 308 if (result < 0) 309 return result; 310 311 *val = tmp; 312 return count; 313 } 314 315 static ssize_t nullb_device_ulong_attr_store(unsigned long *val, 316 const char *page, size_t count) 317 { 318 int result; 319 unsigned long tmp; 320 321 result = kstrtoul(page, 0, &tmp); 322 if (result < 0) 323 return result; 324 325 *val = tmp; 326 return count; 327 } 328 329 static ssize_t nullb_device_bool_attr_store(bool *val, const char *page, 330 size_t count) 331 { 332 bool tmp; 333 int result; 334 335 result = kstrtobool(page, &tmp); 336 if (result < 0) 337 return result; 338 339 *val = tmp; 340 return count; 341 } 342 343 /* 344 * The following macro should only be used with TYPE = {uint, ulong, bool}. 345 * 346 * The device configuration is modified under the global lock to serialize 347 * attribute changes against null_add_dev() and null_del_dev(): without this, 348 * an attribute could be changed while null_add_dev() is running, that is, 349 * before NULLB_DEV_FL_CONFIGURED is set, which would let null_add_dev() 350 * observe inconsistent values for the device configuration. 351 */ 352 #define NULLB_DEVICE_ATTR(NAME, TYPE, APPLY) \ 353 static ssize_t \ 354 nullb_device_##NAME##_show(struct config_item *item, char *page) \ 355 { \ 356 guard(mutex)(&lock); \ 357 return nullb_device_##TYPE##_attr_show( \ 358 to_nullb_device(item)->NAME, page); \ 359 } \ 360 static ssize_t \ 361 nullb_device_##NAME##_store(struct config_item *item, const char *page, \ 362 size_t count) \ 363 { \ 364 int (*apply_fn)(struct nullb_device *dev, TYPE new_value) = APPLY;\ 365 struct nullb_device *dev = to_nullb_device(item); \ 366 TYPE new_value = 0; \ 367 int ret; \ 368 \ 369 ret = nullb_device_##TYPE##_attr_store(&new_value, page, count);\ 370 if (ret < 0) \ 371 return ret; \ 372 guard(mutex)(&lock); \ 373 if (apply_fn) \ 374 ret = apply_fn(dev, new_value); \ 375 else if (test_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags)) \ 376 ret = -EBUSY; \ 377 if (ret < 0) \ 378 return ret; \ 379 dev->NAME = new_value; \ 380 return count; \ 381 } \ 382 CONFIGFS_ATTR(nullb_device_, NAME); 383 384 static int nullb_update_nr_hw_queues(struct nullb_device *dev, 385 unsigned int submit_queues, 386 unsigned int poll_queues) 387 388 { 389 struct blk_mq_tag_set *set; 390 int ret, nr_hw_queues; 391 392 lockdep_assert_held(&lock); 393 394 if (!dev->nullb) 395 return 0; 396 397 /* 398 * A shared tag_set is mapped via the module-wide queue counts, so a 399 * per-device resize is meaningless. On shrink it would also leave 400 * mq_map[] pointing at NULLed hctx slots, causing a NULL deref in 401 * blk_mq_map_swqueue(). Reject it. 402 */ 403 if (dev->shared_tags) 404 return -EINVAL; 405 406 /* 407 * Make sure at least one submit queue exists. 408 */ 409 if (!submit_queues) 410 return -EINVAL; 411 412 /* 413 * Make sure that null_init_hctx() does not access nullb->queues[] past 414 * the end of that array. 415 */ 416 if (submit_queues > nr_cpu_ids || poll_queues > g_poll_queues) 417 return -EINVAL; 418 419 /* 420 * Keep previous and new queue numbers in nullb_device for reference in 421 * the call back function null_map_queues(). 422 */ 423 dev->prev_submit_queues = dev->submit_queues; 424 dev->prev_poll_queues = dev->poll_queues; 425 dev->submit_queues = submit_queues; 426 dev->poll_queues = poll_queues; 427 428 set = dev->nullb->tag_set; 429 nr_hw_queues = submit_queues + poll_queues; 430 blk_mq_update_nr_hw_queues(set, nr_hw_queues); 431 ret = set->nr_hw_queues == nr_hw_queues ? 0 : -ENOMEM; 432 433 if (ret) { 434 /* on error, revert the queue numbers */ 435 dev->submit_queues = dev->prev_submit_queues; 436 dev->poll_queues = dev->prev_poll_queues; 437 } 438 439 return ret; 440 } 441 442 static int nullb_apply_submit_queues(struct nullb_device *dev, 443 unsigned int submit_queues) 444 { 445 return nullb_update_nr_hw_queues(dev, submit_queues, dev->poll_queues); 446 } 447 448 static int nullb_apply_poll_queues(struct nullb_device *dev, 449 unsigned int poll_queues) 450 { 451 return nullb_update_nr_hw_queues(dev, dev->submit_queues, poll_queues); 452 } 453 454 NULLB_DEVICE_ATTR(size, ulong, NULL); 455 NULLB_DEVICE_ATTR(completion_nsec, ulong, NULL); 456 NULLB_DEVICE_ATTR(submit_queues, uint, nullb_apply_submit_queues); 457 NULLB_DEVICE_ATTR(poll_queues, uint, nullb_apply_poll_queues); 458 NULLB_DEVICE_ATTR(home_node, uint, NULL); 459 NULLB_DEVICE_ATTR(queue_mode, uint, NULL); 460 NULLB_DEVICE_ATTR(blocksize, uint, NULL); 461 NULLB_DEVICE_ATTR(max_sectors, uint, NULL); 462 NULLB_DEVICE_ATTR(irqmode, uint, NULL); 463 NULLB_DEVICE_ATTR(hw_queue_depth, uint, NULL); 464 NULLB_DEVICE_ATTR(index, uint, NULL); 465 NULLB_DEVICE_ATTR(blocking, bool, NULL); 466 NULLB_DEVICE_ATTR(use_per_node_hctx, bool, NULL); 467 NULLB_DEVICE_ATTR(memory_backed, bool, NULL); 468 NULLB_DEVICE_ATTR(discard, bool, NULL); 469 NULLB_DEVICE_ATTR(mbps, uint, NULL); 470 NULLB_DEVICE_ATTR(cache_size, ulong, NULL); 471 NULLB_DEVICE_ATTR(zoned, bool, NULL); 472 NULLB_DEVICE_ATTR(zone_size, ulong, NULL); 473 NULLB_DEVICE_ATTR(zone_capacity, ulong, NULL); 474 NULLB_DEVICE_ATTR(zone_nr_conv, uint, NULL); 475 NULLB_DEVICE_ATTR(zone_max_open, uint, NULL); 476 NULLB_DEVICE_ATTR(zone_max_active, uint, NULL); 477 NULLB_DEVICE_ATTR(zone_append_max_sectors, uint, NULL); 478 NULLB_DEVICE_ATTR(zone_full, bool, NULL); 479 NULLB_DEVICE_ATTR(virt_boundary, bool, NULL); 480 NULLB_DEVICE_ATTR(no_sched, bool, NULL); 481 NULLB_DEVICE_ATTR(shared_tags, bool, NULL); 482 NULLB_DEVICE_ATTR(shared_tag_bitmap, bool, NULL); 483 NULLB_DEVICE_ATTR(fua, bool, NULL); 484 NULLB_DEVICE_ATTR(rotational, bool, NULL); 485 NULLB_DEVICE_ATTR(badblocks_once, bool, NULL); 486 NULLB_DEVICE_ATTR(badblocks_partial_io, bool, NULL); 487 488 static ssize_t nullb_device_power_show(struct config_item *item, char *page) 489 { 490 guard(mutex)(&lock); 491 return nullb_device_bool_attr_show(to_nullb_device(item)->power, page); 492 } 493 494 static ssize_t nullb_device_power_store(struct config_item *item, 495 const char *page, size_t count) 496 { 497 struct nullb_device *dev = to_nullb_device(item); 498 bool newp = false; 499 ssize_t ret; 500 501 ret = nullb_device_bool_attr_store(&newp, page, count); 502 if (ret < 0) 503 return ret; 504 505 ret = count; 506 guard(mutex)(&lock); 507 if (!dev->power && newp) { 508 if (test_and_set_bit(NULLB_DEV_FL_UP, &dev->flags)) 509 return ret; 510 511 ret = null_add_dev(dev); 512 if (ret) { 513 clear_bit(NULLB_DEV_FL_UP, &dev->flags); 514 return ret; 515 } 516 517 set_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags); 518 dev->power = newp; 519 ret = count; 520 } else if (dev->power && !newp) { 521 if (test_and_clear_bit(NULLB_DEV_FL_UP, &dev->flags)) { 522 dev->power = newp; 523 null_del_dev(dev->nullb); 524 } 525 clear_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags); 526 } 527 528 return ret; 529 } 530 531 CONFIGFS_ATTR(nullb_device_, power); 532 533 static ssize_t nullb_device_badblocks_show(struct config_item *item, char *page) 534 { 535 struct nullb_device *t_dev = to_nullb_device(item); 536 537 return badblocks_show(&t_dev->badblocks, page, 0); 538 } 539 540 static ssize_t nullb_device_badblocks_store(struct config_item *item, 541 const char *page, size_t count) 542 { 543 struct nullb_device *t_dev = to_nullb_device(item); 544 char *orig, *buf, *tmp; 545 u64 start, end; 546 int ret; 547 548 orig = kstrndup(page, count, GFP_KERNEL); 549 if (!orig) 550 return -ENOMEM; 551 552 buf = strstrip(orig); 553 554 ret = -EINVAL; 555 if (buf[0] != '+' && buf[0] != '-') 556 goto out; 557 tmp = strchr(&buf[1], '-'); 558 if (!tmp) 559 goto out; 560 *tmp = '\0'; 561 ret = kstrtoull(buf + 1, 0, &start); 562 if (ret) 563 goto out; 564 ret = kstrtoull(tmp + 1, 0, &end); 565 if (ret) 566 goto out; 567 ret = -EINVAL; 568 if (start > end) 569 goto out; 570 /* enable badblocks */ 571 cmpxchg(&t_dev->badblocks.shift, -1, 0); 572 if (buf[0] == '+') { 573 if (badblocks_set(&t_dev->badblocks, start, 574 end - start + 1, 1)) 575 ret = count; 576 } else if (badblocks_clear(&t_dev->badblocks, start, 577 end - start + 1)) { 578 ret = count; 579 } 580 out: 581 kfree(orig); 582 return ret; 583 } 584 CONFIGFS_ATTR(nullb_device_, badblocks); 585 586 static ssize_t nullb_device_zone_readonly_store(struct config_item *item, 587 const char *page, size_t count) 588 { 589 struct nullb_device *dev = to_nullb_device(item); 590 591 guard(mutex)(&lock); 592 return zone_cond_store(dev, page, count, BLK_ZONE_COND_READONLY); 593 } 594 CONFIGFS_ATTR_WO(nullb_device_, zone_readonly); 595 596 static ssize_t nullb_device_zone_offline_store(struct config_item *item, 597 const char *page, size_t count) 598 { 599 struct nullb_device *dev = to_nullb_device(item); 600 601 guard(mutex)(&lock); 602 return zone_cond_store(dev, page, count, BLK_ZONE_COND_OFFLINE); 603 } 604 CONFIGFS_ATTR_WO(nullb_device_, zone_offline); 605 606 static struct configfs_attribute *nullb_device_attrs[] = { 607 &nullb_device_attr_badblocks, 608 &nullb_device_attr_badblocks_once, 609 &nullb_device_attr_badblocks_partial_io, 610 &nullb_device_attr_blocking, 611 &nullb_device_attr_blocksize, 612 &nullb_device_attr_cache_size, 613 &nullb_device_attr_completion_nsec, 614 &nullb_device_attr_discard, 615 &nullb_device_attr_fua, 616 &nullb_device_attr_home_node, 617 &nullb_device_attr_hw_queue_depth, 618 &nullb_device_attr_index, 619 &nullb_device_attr_irqmode, 620 &nullb_device_attr_max_sectors, 621 &nullb_device_attr_mbps, 622 &nullb_device_attr_memory_backed, 623 &nullb_device_attr_no_sched, 624 &nullb_device_attr_poll_queues, 625 &nullb_device_attr_power, 626 &nullb_device_attr_queue_mode, 627 &nullb_device_attr_rotational, 628 &nullb_device_attr_shared_tag_bitmap, 629 &nullb_device_attr_shared_tags, 630 &nullb_device_attr_size, 631 &nullb_device_attr_submit_queues, 632 &nullb_device_attr_use_per_node_hctx, 633 &nullb_device_attr_virt_boundary, 634 &nullb_device_attr_zone_append_max_sectors, 635 &nullb_device_attr_zone_capacity, 636 &nullb_device_attr_zone_full, 637 &nullb_device_attr_zone_max_active, 638 &nullb_device_attr_zone_max_open, 639 &nullb_device_attr_zone_nr_conv, 640 &nullb_device_attr_zone_offline, 641 &nullb_device_attr_zone_readonly, 642 &nullb_device_attr_zone_size, 643 &nullb_device_attr_zoned, 644 NULL, 645 }; 646 647 static void nullb_device_release(struct config_item *item) 648 { 649 struct nullb_device *dev = to_nullb_device(item); 650 651 null_free_device_storage(dev, false); 652 null_free_dev(dev); 653 } 654 655 static const struct configfs_item_operations nullb_device_ops = { 656 .release = nullb_device_release, 657 }; 658 659 static const struct config_item_type nullb_device_type = { 660 .ct_item_ops = &nullb_device_ops, 661 .ct_attrs = nullb_device_attrs, 662 .ct_owner = THIS_MODULE, 663 }; 664 665 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 666 667 static void nullb_add_fault_config(struct nullb_device *dev) 668 { 669 fault_config_init(&dev->timeout_config, "timeout_inject"); 670 fault_config_init(&dev->requeue_config, "requeue_inject"); 671 fault_config_init(&dev->init_hctx_fault_config, "init_hctx_fault_inject"); 672 673 configfs_add_default_group(&dev->timeout_config.group, &dev->group); 674 configfs_add_default_group(&dev->requeue_config.group, &dev->group); 675 configfs_add_default_group(&dev->init_hctx_fault_config.group, &dev->group); 676 } 677 678 static void nullb_del_fault_config(struct nullb_device *dev) 679 { 680 config_item_put(&dev->init_hctx_fault_config.group.cg_item); 681 config_item_put(&dev->requeue_config.group.cg_item); 682 config_item_put(&dev->timeout_config.group.cg_item); 683 } 684 685 #else 686 687 static void nullb_add_fault_config(struct nullb_device *dev) 688 { 689 } 690 691 static void nullb_del_fault_config(struct nullb_device *dev) 692 { 693 } 694 #endif 695 696 static struct 697 config_group *nullb_group_make_group(struct config_group *group, const char *name) 698 { 699 struct nullb_device *dev; 700 701 if (null_find_dev_by_name(name)) 702 return ERR_PTR(-EEXIST); 703 704 dev = null_alloc_dev(); 705 if (!dev) 706 return ERR_PTR(-ENOMEM); 707 708 config_group_init_type_name(&dev->group, name, &nullb_device_type); 709 nullb_add_fault_config(dev); 710 711 return &dev->group; 712 } 713 714 static void 715 nullb_group_drop_item(struct config_group *group, struct config_item *item) 716 { 717 struct nullb_device *dev = to_nullb_device(item); 718 719 if (test_and_clear_bit(NULLB_DEV_FL_UP, &dev->flags)) { 720 guard(mutex)(&lock); 721 dev->power = false; 722 null_del_dev(dev->nullb); 723 } 724 nullb_del_fault_config(dev); 725 config_item_put(item); 726 } 727 728 static ssize_t memb_group_features_show(struct config_item *item, char *page) 729 { 730 731 struct configfs_attribute **entry; 732 char delimiter = ','; 733 size_t left = PAGE_SIZE; 734 size_t written = 0; 735 int ret; 736 737 for (entry = &nullb_device_attrs[0]; *entry && left > 0; entry++) { 738 if (!*(entry + 1)) 739 delimiter = '\n'; 740 ret = snprintf(page + written, left, "%s%c", (*entry)->ca_name, 741 delimiter); 742 if (ret >= left) { 743 WARN_ONCE(1, "Too many null_blk features to print\n"); 744 memzero_explicit(page, PAGE_SIZE); 745 return -ENOBUFS; 746 } 747 left -= ret; 748 written += ret; 749 } 750 751 return written; 752 } 753 754 CONFIGFS_ATTR_RO(memb_group_, features); 755 756 static struct configfs_attribute *nullb_group_attrs[] = { 757 &memb_group_attr_features, 758 NULL, 759 }; 760 761 static const struct configfs_group_operations nullb_group_ops = { 762 .make_group = nullb_group_make_group, 763 .drop_item = nullb_group_drop_item, 764 }; 765 766 static const struct config_item_type nullb_group_type = { 767 .ct_group_ops = &nullb_group_ops, 768 .ct_attrs = nullb_group_attrs, 769 .ct_owner = THIS_MODULE, 770 }; 771 772 static struct configfs_subsystem nullb_subsys = { 773 .su_group = { 774 .cg_item = { 775 .ci_namebuf = "nullb", 776 .ci_type = &nullb_group_type, 777 }, 778 }, 779 }; 780 781 static inline int null_cache_active(struct nullb *nullb) 782 { 783 return test_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags); 784 } 785 786 static struct nullb_device *null_alloc_dev(void) 787 { 788 struct nullb_device *dev; 789 790 dev = kzalloc_obj(*dev); 791 if (!dev) 792 return NULL; 793 794 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 795 dev->timeout_config.attr = null_timeout_attr; 796 dev->requeue_config.attr = null_requeue_attr; 797 dev->init_hctx_fault_config.attr = null_init_hctx_attr; 798 #endif 799 800 INIT_RADIX_TREE(&dev->data, GFP_ATOMIC); 801 INIT_RADIX_TREE(&dev->cache, GFP_ATOMIC); 802 if (badblocks_init(&dev->badblocks, 0)) { 803 kfree(dev); 804 return NULL; 805 } 806 807 dev->size = g_gb * 1024; 808 dev->completion_nsec = g_completion_nsec; 809 dev->submit_queues = g_submit_queues; 810 dev->prev_submit_queues = g_submit_queues; 811 dev->poll_queues = g_poll_queues; 812 dev->prev_poll_queues = g_poll_queues; 813 dev->home_node = g_home_node; 814 dev->queue_mode = g_queue_mode; 815 dev->blocksize = g_bs; 816 dev->max_sectors = g_max_sectors; 817 dev->irqmode = g_irqmode; 818 dev->hw_queue_depth = g_hw_queue_depth; 819 dev->blocking = g_blocking; 820 dev->memory_backed = g_memory_backed; 821 dev->discard = g_discard; 822 dev->cache_size = g_cache_size; 823 dev->mbps = g_mbps; 824 dev->use_per_node_hctx = g_use_per_node_hctx; 825 dev->zoned = g_zoned; 826 dev->zone_size = g_zone_size; 827 dev->zone_capacity = g_zone_capacity; 828 dev->zone_nr_conv = g_zone_nr_conv; 829 dev->zone_max_open = g_zone_max_open; 830 dev->zone_max_active = g_zone_max_active; 831 dev->zone_append_max_sectors = g_zone_append_max_sectors; 832 dev->zone_full = g_zone_full; 833 dev->virt_boundary = g_virt_boundary; 834 dev->no_sched = g_no_sched; 835 dev->shared_tags = g_shared_tags; 836 dev->shared_tag_bitmap = g_shared_tag_bitmap; 837 dev->fua = g_fua; 838 dev->rotational = g_rotational; 839 840 return dev; 841 } 842 843 static void null_free_dev(struct nullb_device *dev) 844 { 845 if (!dev) 846 return; 847 848 badblocks_exit(&dev->badblocks); 849 kfree(dev); 850 } 851 852 static enum hrtimer_restart null_cmd_timer_expired(struct hrtimer *timer) 853 { 854 struct nullb_cmd *cmd = container_of(timer, struct nullb_cmd, timer); 855 856 blk_mq_end_request(blk_mq_rq_from_pdu(cmd), cmd->error); 857 return HRTIMER_NORESTART; 858 } 859 860 static void null_cmd_end_timer(struct nullb_cmd *cmd) 861 { 862 ktime_t kt = cmd->nq->dev->completion_nsec; 863 864 hrtimer_start(&cmd->timer, kt, HRTIMER_MODE_REL); 865 } 866 867 static void null_complete_rq(struct request *rq) 868 { 869 struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq); 870 871 blk_mq_end_request(rq, cmd->error); 872 } 873 874 static struct nullb_page *null_alloc_page(void) 875 { 876 struct nullb_page *t_page; 877 878 t_page = kmalloc_obj(struct nullb_page, GFP_NOIO); 879 if (!t_page) 880 return NULL; 881 882 t_page->page = alloc_pages(GFP_NOIO, 0); 883 if (!t_page->page) { 884 kfree(t_page); 885 return NULL; 886 } 887 888 memset(t_page->bitmap, 0, sizeof(t_page->bitmap)); 889 return t_page; 890 } 891 892 static void null_free_page(struct nullb_page *t_page) 893 { 894 __set_bit(NULLB_PAGE_FREE, t_page->bitmap); 895 if (test_bit(NULLB_PAGE_LOCK, t_page->bitmap)) 896 return; 897 __free_page(t_page->page); 898 kfree(t_page); 899 } 900 901 static bool null_page_empty(struct nullb_page *page) 902 { 903 int size = MAP_SZ - 2; 904 905 return find_first_bit(page->bitmap, size) == size; 906 } 907 908 static void null_free_sector(struct nullb *nullb, sector_t sector, 909 bool is_cache) 910 { 911 unsigned int sector_bit; 912 u64 idx; 913 struct nullb_page *t_page, *ret; 914 struct radix_tree_root *root; 915 916 root = is_cache ? &nullb->dev->cache : &nullb->dev->data; 917 idx = sector >> PAGE_SECTORS_SHIFT; 918 sector_bit = (sector & SECTOR_MASK); 919 920 t_page = radix_tree_lookup(root, idx); 921 if (t_page) { 922 __clear_bit(sector_bit, t_page->bitmap); 923 924 if (null_page_empty(t_page)) { 925 ret = radix_tree_delete_item(root, idx, t_page); 926 WARN_ON(ret != t_page); 927 null_free_page(ret); 928 if (is_cache) 929 nullb->dev->curr_cache -= PAGE_SIZE; 930 } 931 } 932 } 933 934 static struct nullb_page *null_radix_tree_insert(struct nullb *nullb, u64 idx, 935 struct nullb_page *t_page, bool is_cache) 936 { 937 struct radix_tree_root *root; 938 939 root = is_cache ? &nullb->dev->cache : &nullb->dev->data; 940 941 if (radix_tree_insert(root, idx, t_page)) { 942 null_free_page(t_page); 943 t_page = radix_tree_lookup(root, idx); 944 WARN_ON(!t_page || t_page->page->private != idx); 945 } else if (is_cache) 946 nullb->dev->curr_cache += PAGE_SIZE; 947 948 return t_page; 949 } 950 951 static void null_free_device_storage(struct nullb_device *dev, bool is_cache) 952 { 953 unsigned long pos = 0; 954 int nr_pages; 955 struct nullb_page *ret, *t_pages[FREE_BATCH]; 956 struct radix_tree_root *root; 957 958 root = is_cache ? &dev->cache : &dev->data; 959 960 do { 961 int i; 962 963 nr_pages = radix_tree_gang_lookup(root, 964 (void **)t_pages, pos, FREE_BATCH); 965 966 for (i = 0; i < nr_pages; i++) { 967 pos = t_pages[i]->page->private; 968 ret = radix_tree_delete_item(root, pos, t_pages[i]); 969 WARN_ON(ret != t_pages[i]); 970 null_free_page(ret); 971 } 972 973 pos++; 974 } while (nr_pages == FREE_BATCH); 975 976 if (is_cache) 977 dev->curr_cache = 0; 978 } 979 980 static struct nullb_page *__null_lookup_page(struct nullb *nullb, 981 sector_t sector, bool for_write, bool is_cache) 982 { 983 unsigned int sector_bit; 984 u64 idx; 985 struct nullb_page *t_page; 986 struct radix_tree_root *root; 987 988 idx = sector >> PAGE_SECTORS_SHIFT; 989 sector_bit = (sector & SECTOR_MASK); 990 991 root = is_cache ? &nullb->dev->cache : &nullb->dev->data; 992 t_page = radix_tree_lookup(root, idx); 993 WARN_ON(t_page && t_page->page->private != idx); 994 995 if (t_page && (for_write || test_bit(sector_bit, t_page->bitmap))) 996 return t_page; 997 998 return NULL; 999 } 1000 1001 static struct nullb_page *null_lookup_page(struct nullb *nullb, 1002 sector_t sector, bool for_write, bool ignore_cache) 1003 { 1004 struct nullb_page *page = NULL; 1005 1006 if (!ignore_cache) 1007 page = __null_lookup_page(nullb, sector, for_write, true); 1008 if (page) 1009 return page; 1010 return __null_lookup_page(nullb, sector, for_write, false); 1011 } 1012 1013 static struct nullb_page *null_insert_page(struct nullb *nullb, 1014 sector_t sector, bool ignore_cache) 1015 __releases(&nullb->lock) 1016 __acquires(&nullb->lock) 1017 { 1018 u64 idx; 1019 struct nullb_page *t_page; 1020 1021 t_page = null_lookup_page(nullb, sector, true, ignore_cache); 1022 if (t_page) 1023 return t_page; 1024 1025 spin_unlock_irq(&nullb->lock); 1026 1027 t_page = null_alloc_page(); 1028 if (!t_page) 1029 goto out_lock; 1030 1031 if (radix_tree_preload(GFP_NOIO)) 1032 goto out_freepage; 1033 1034 spin_lock_irq(&nullb->lock); 1035 idx = sector >> PAGE_SECTORS_SHIFT; 1036 t_page->page->private = idx; 1037 t_page = null_radix_tree_insert(nullb, idx, t_page, !ignore_cache); 1038 radix_tree_preload_end(); 1039 1040 return t_page; 1041 out_freepage: 1042 null_free_page(t_page); 1043 out_lock: 1044 spin_lock_irq(&nullb->lock); 1045 return null_lookup_page(nullb, sector, true, ignore_cache); 1046 } 1047 1048 static int null_flush_cache_page(struct nullb *nullb, struct nullb_page *c_page) 1049 { 1050 int i; 1051 unsigned int offset; 1052 u64 idx; 1053 struct nullb_page *t_page, *ret; 1054 void *dst, *src; 1055 1056 idx = c_page->page->private; 1057 1058 t_page = null_insert_page(nullb, idx << PAGE_SECTORS_SHIFT, true); 1059 1060 __clear_bit(NULLB_PAGE_LOCK, c_page->bitmap); 1061 if (test_bit(NULLB_PAGE_FREE, c_page->bitmap)) { 1062 null_free_page(c_page); 1063 if (t_page && null_page_empty(t_page)) { 1064 ret = radix_tree_delete_item(&nullb->dev->data, 1065 idx, t_page); 1066 null_free_page(t_page); 1067 } 1068 return 0; 1069 } 1070 1071 if (!t_page) 1072 return -ENOMEM; 1073 1074 src = kmap_local_page(c_page->page); 1075 dst = kmap_local_page(t_page->page); 1076 1077 for (i = 0; i < PAGE_SECTORS; 1078 i += (nullb->dev->blocksize >> SECTOR_SHIFT)) { 1079 if (test_bit(i, c_page->bitmap)) { 1080 offset = (i << SECTOR_SHIFT); 1081 memcpy(dst + offset, src + offset, 1082 nullb->dev->blocksize); 1083 __set_bit(i, t_page->bitmap); 1084 } 1085 } 1086 1087 kunmap_local(dst); 1088 kunmap_local(src); 1089 1090 ret = radix_tree_delete_item(&nullb->dev->cache, idx, c_page); 1091 null_free_page(ret); 1092 nullb->dev->curr_cache -= PAGE_SIZE; 1093 1094 return 0; 1095 } 1096 1097 static int null_make_cache_space(struct nullb *nullb, unsigned long n) 1098 { 1099 int i, err, nr_pages; 1100 struct nullb_page *c_pages[FREE_BATCH]; 1101 unsigned long flushed = 0, one_round; 1102 1103 again: 1104 if ((nullb->dev->cache_size * 1024 * 1024) > 1105 nullb->dev->curr_cache + n || nullb->dev->curr_cache == 0) 1106 return 0; 1107 1108 nr_pages = radix_tree_gang_lookup(&nullb->dev->cache, 1109 (void **)c_pages, nullb->cache_flush_pos, FREE_BATCH); 1110 /* 1111 * nullb_flush_cache_page could unlock before using the c_pages. To 1112 * avoid race, we don't allow page free 1113 */ 1114 for (i = 0; i < nr_pages; i++) { 1115 nullb->cache_flush_pos = c_pages[i]->page->private; 1116 /* 1117 * We found the page which is being flushed to disk by other 1118 * threads 1119 */ 1120 if (test_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap)) 1121 c_pages[i] = NULL; 1122 else 1123 __set_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap); 1124 } 1125 1126 one_round = 0; 1127 for (i = 0; i < nr_pages; i++) { 1128 if (c_pages[i] == NULL) 1129 continue; 1130 err = null_flush_cache_page(nullb, c_pages[i]); 1131 if (err) 1132 return err; 1133 one_round++; 1134 } 1135 flushed += one_round << PAGE_SHIFT; 1136 1137 if (n > flushed) { 1138 if (nr_pages == 0) 1139 nullb->cache_flush_pos = 0; 1140 if (one_round == 0) { 1141 /* give other threads a chance */ 1142 spin_unlock_irq(&nullb->lock); 1143 spin_lock_irq(&nullb->lock); 1144 } 1145 goto again; 1146 } 1147 return 0; 1148 } 1149 1150 static blk_status_t copy_to_nullb(struct nullb *nullb, void *source, 1151 loff_t pos, size_t n, bool is_fua) 1152 { 1153 size_t temp, count = 0; 1154 struct nullb_page *t_page; 1155 sector_t sector; 1156 1157 while (count < n) { 1158 temp = min3(nullb->dev->blocksize, n - count, 1159 PAGE_SIZE - offset_in_page(pos)); 1160 sector = pos >> SECTOR_SHIFT; 1161 1162 if (null_cache_active(nullb) && !is_fua) 1163 null_make_cache_space(nullb, PAGE_SIZE); 1164 1165 t_page = null_insert_page(nullb, sector, 1166 !null_cache_active(nullb) || is_fua); 1167 if (!t_page) 1168 return BLK_STS_NOSPC; 1169 1170 memcpy_to_page(t_page->page, offset_in_page(pos), 1171 source + count, temp); 1172 1173 __set_bit(sector & SECTOR_MASK, t_page->bitmap); 1174 1175 if (is_fua) 1176 null_free_sector(nullb, sector, true); 1177 1178 count += temp; 1179 pos += temp; 1180 } 1181 return BLK_STS_OK; 1182 } 1183 1184 static void copy_from_nullb(struct nullb *nullb, void *dest, loff_t pos, 1185 size_t n) 1186 { 1187 size_t temp, count = 0; 1188 struct nullb_page *t_page; 1189 sector_t sector; 1190 1191 while (count < n) { 1192 temp = min3(nullb->dev->blocksize, n - count, 1193 PAGE_SIZE - offset_in_page(pos)); 1194 sector = pos >> SECTOR_SHIFT; 1195 1196 t_page = null_lookup_page(nullb, sector, false, 1197 !null_cache_active(nullb)); 1198 if (t_page) 1199 memcpy_from_page(dest + count, t_page->page, 1200 offset_in_page(pos), temp); 1201 else 1202 memset(dest + count, 0, temp); 1203 1204 count += temp; 1205 pos += temp; 1206 } 1207 } 1208 1209 blk_status_t null_handle_discard(struct nullb_device *dev, 1210 sector_t sector, sector_t nr_sectors) 1211 { 1212 struct nullb *nullb = dev->nullb; 1213 size_t n = nr_sectors << SECTOR_SHIFT; 1214 size_t temp; 1215 1216 spin_lock_irq(&nullb->lock); 1217 while (n > 0) { 1218 temp = min_t(size_t, n, dev->blocksize); 1219 null_free_sector(nullb, sector, false); 1220 if (null_cache_active(nullb)) 1221 null_free_sector(nullb, sector, true); 1222 sector += temp >> SECTOR_SHIFT; 1223 n -= temp; 1224 } 1225 spin_unlock_irq(&nullb->lock); 1226 1227 return BLK_STS_OK; 1228 } 1229 1230 static blk_status_t null_handle_flush(struct nullb *nullb) 1231 { 1232 int err; 1233 1234 if (!null_cache_active(nullb)) 1235 return 0; 1236 1237 spin_lock_irq(&nullb->lock); 1238 while (true) { 1239 err = null_make_cache_space(nullb, 1240 nullb->dev->cache_size * 1024 * 1024); 1241 if (err || nullb->dev->curr_cache == 0) 1242 break; 1243 } 1244 1245 WARN_ON(!radix_tree_empty(&nullb->dev->cache)); 1246 spin_unlock_irq(&nullb->lock); 1247 return errno_to_blk_status(err); 1248 } 1249 1250 static blk_status_t null_transfer(struct nullb *nullb, struct page *page, 1251 unsigned int len, unsigned int off, bool is_write, loff_t pos, 1252 bool is_fua) 1253 { 1254 struct nullb_device *dev = nullb->dev; 1255 blk_status_t err = BLK_STS_OK; 1256 unsigned int valid_len = len; 1257 void *p; 1258 1259 p = kmap_local_page(page) + off; 1260 if (!is_write) { 1261 if (dev->zoned) { 1262 valid_len = null_zone_valid_read_len(nullb, 1263 pos >> SECTOR_SHIFT, len); 1264 if (valid_len && valid_len != len) 1265 valid_len -= pos & (SECTOR_SIZE - 1); 1266 } 1267 1268 if (valid_len) { 1269 copy_from_nullb(nullb, p, pos, valid_len); 1270 off += valid_len; 1271 len -= valid_len; 1272 } 1273 1274 if (len) 1275 memset(p + valid_len, 0xff, len); 1276 flush_dcache_page(page); 1277 } else { 1278 flush_dcache_page(page); 1279 err = copy_to_nullb(nullb, p, pos, len, is_fua); 1280 } 1281 1282 kunmap_local(p); 1283 return err; 1284 } 1285 1286 /* 1287 * Transfer data for the given request. The transfer size is capped with the 1288 * nr_sectors argument. 1289 */ 1290 static blk_status_t null_handle_data_transfer(struct nullb_cmd *cmd, 1291 sector_t nr_sectors) 1292 { 1293 struct request *rq = blk_mq_rq_from_pdu(cmd); 1294 struct nullb *nullb = cmd->nq->dev->nullb; 1295 blk_status_t err = BLK_STS_OK; 1296 unsigned int len; 1297 loff_t pos = blk_rq_pos(rq) << SECTOR_SHIFT; 1298 unsigned int max_bytes = nr_sectors << SECTOR_SHIFT; 1299 unsigned int transferred_bytes = 0; 1300 struct req_iterator iter; 1301 struct bio_vec bvec; 1302 1303 spin_lock_irq(&nullb->lock); 1304 rq_for_each_segment(bvec, rq, iter) { 1305 len = bvec.bv_len; 1306 if (transferred_bytes + len > max_bytes) 1307 len = max_bytes - transferred_bytes; 1308 err = null_transfer(nullb, bvec.bv_page, len, bvec.bv_offset, 1309 op_is_write(req_op(rq)), pos, 1310 rq->cmd_flags & REQ_FUA); 1311 if (err) 1312 break; 1313 pos += len; 1314 transferred_bytes += len; 1315 if (transferred_bytes >= max_bytes) 1316 break; 1317 } 1318 spin_unlock_irq(&nullb->lock); 1319 1320 return err; 1321 } 1322 1323 static inline blk_status_t null_handle_throttled(struct nullb_cmd *cmd) 1324 { 1325 struct nullb_device *dev = cmd->nq->dev; 1326 struct nullb *nullb = dev->nullb; 1327 blk_status_t sts = BLK_STS_OK; 1328 struct request *rq = blk_mq_rq_from_pdu(cmd); 1329 1330 if (!hrtimer_active(&nullb->bw_timer)) 1331 hrtimer_restart(&nullb->bw_timer); 1332 1333 if (atomic_long_sub_return(blk_rq_bytes(rq), &nullb->cur_bytes) < 0) { 1334 blk_mq_stop_hw_queues(nullb->q); 1335 /* race with timer */ 1336 if (atomic_long_read(&nullb->cur_bytes) > 0) 1337 blk_mq_start_stopped_hw_queues(nullb->q, true); 1338 /* requeue request */ 1339 sts = BLK_STS_DEV_RESOURCE; 1340 } 1341 return sts; 1342 } 1343 1344 /* 1345 * Check if the command should fail for the badblocks. If so, return 1346 * BLK_STS_IOERR and return number of partial I/O sectors to be written or read, 1347 * which may be less than the requested number of sectors. 1348 * 1349 * @cmd: The command to handle. 1350 * @sector: The start sector for I/O. 1351 * @nr_sectors: Specifies number of sectors to write or read, and returns the 1352 * number of sectors to be written or read. 1353 */ 1354 blk_status_t null_handle_badblocks(struct nullb_cmd *cmd, sector_t sector, 1355 unsigned int *nr_sectors) 1356 { 1357 struct badblocks *bb = &cmd->nq->dev->badblocks; 1358 struct nullb_device *dev = cmd->nq->dev; 1359 unsigned int block_sectors = dev->blocksize >> SECTOR_SHIFT; 1360 sector_t first_bad, bad_sectors; 1361 unsigned int partial_io_sectors = 0; 1362 1363 if (!badblocks_check(bb, sector, *nr_sectors, &first_bad, &bad_sectors)) 1364 return BLK_STS_OK; 1365 1366 if (cmd->nq->dev->badblocks_once) 1367 badblocks_clear(bb, first_bad, bad_sectors); 1368 1369 if (cmd->nq->dev->badblocks_partial_io) { 1370 if (!IS_ALIGNED(first_bad, block_sectors)) 1371 first_bad = ALIGN_DOWN(first_bad, block_sectors); 1372 if (sector < first_bad) 1373 partial_io_sectors = first_bad - sector; 1374 } 1375 *nr_sectors = partial_io_sectors; 1376 1377 return BLK_STS_IOERR; 1378 } 1379 1380 blk_status_t null_handle_memory_backed(struct nullb_cmd *cmd, enum req_op op, 1381 sector_t sector, sector_t nr_sectors) 1382 { 1383 struct nullb_device *dev = cmd->nq->dev; 1384 1385 if (op == REQ_OP_DISCARD) 1386 return null_handle_discard(dev, sector, nr_sectors); 1387 1388 return null_handle_data_transfer(cmd, nr_sectors); 1389 } 1390 1391 static void nullb_zero_read_cmd_buffer(struct nullb_cmd *cmd) 1392 { 1393 struct request *rq = blk_mq_rq_from_pdu(cmd); 1394 struct nullb_device *dev = cmd->nq->dev; 1395 struct bio *bio; 1396 1397 if (!dev->memory_backed && req_op(rq) == REQ_OP_READ) { 1398 __rq_for_each_bio(bio, rq) 1399 zero_fill_bio(bio); 1400 } 1401 } 1402 1403 static inline void nullb_complete_cmd(struct nullb_cmd *cmd) 1404 { 1405 struct request *rq = blk_mq_rq_from_pdu(cmd); 1406 1407 /* 1408 * Since root privileges are required to configure the null_blk 1409 * driver, it is fine that this driver does not initialize the 1410 * data buffers of read commands. Zero-initialize these buffers 1411 * anyway if KMSAN is enabled to prevent that KMSAN complains 1412 * about null_blk not initializing read data buffers. 1413 */ 1414 if (IS_ENABLED(CONFIG_KMSAN)) 1415 nullb_zero_read_cmd_buffer(cmd); 1416 1417 /* Complete IO by inline, softirq or timer */ 1418 switch (cmd->nq->dev->irqmode) { 1419 case NULL_IRQ_SOFTIRQ: 1420 blk_mq_complete_request(rq); 1421 break; 1422 case NULL_IRQ_NONE: 1423 blk_mq_end_request(rq, cmd->error); 1424 break; 1425 case NULL_IRQ_TIMER: 1426 null_cmd_end_timer(cmd); 1427 break; 1428 } 1429 } 1430 1431 blk_status_t null_process_cmd(struct nullb_cmd *cmd, enum req_op op, 1432 sector_t sector, unsigned int nr_sectors) 1433 { 1434 struct nullb_device *dev = cmd->nq->dev; 1435 blk_status_t badblocks_ret = BLK_STS_OK; 1436 blk_status_t ret; 1437 1438 if (dev->badblocks.shift != -1) 1439 badblocks_ret = null_handle_badblocks(cmd, sector, &nr_sectors); 1440 1441 if (dev->memory_backed && nr_sectors) { 1442 ret = null_handle_memory_backed(cmd, op, sector, nr_sectors); 1443 if (ret != BLK_STS_OK) 1444 return ret; 1445 } 1446 1447 return badblocks_ret; 1448 } 1449 1450 static void null_handle_cmd(struct nullb_cmd *cmd, sector_t sector, 1451 sector_t nr_sectors, enum req_op op) 1452 { 1453 struct nullb_device *dev = cmd->nq->dev; 1454 struct nullb *nullb = dev->nullb; 1455 blk_status_t sts; 1456 1457 if (op == REQ_OP_FLUSH) { 1458 cmd->error = null_handle_flush(nullb); 1459 goto out; 1460 } 1461 1462 if (dev->zoned) 1463 sts = null_process_zoned_cmd(cmd, op, sector, nr_sectors); 1464 else 1465 sts = null_process_cmd(cmd, op, sector, nr_sectors); 1466 1467 /* Do not overwrite errors (e.g. timeout errors) */ 1468 if (cmd->error == BLK_STS_OK) 1469 cmd->error = sts; 1470 1471 out: 1472 nullb_complete_cmd(cmd); 1473 } 1474 1475 static enum hrtimer_restart nullb_bwtimer_fn(struct hrtimer *timer) 1476 { 1477 struct nullb *nullb = container_of(timer, struct nullb, bw_timer); 1478 ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL); 1479 unsigned int mbps = nullb->dev->mbps; 1480 1481 if (atomic_long_read(&nullb->cur_bytes) == mb_per_tick(mbps)) 1482 return HRTIMER_NORESTART; 1483 1484 atomic_long_set(&nullb->cur_bytes, mb_per_tick(mbps)); 1485 blk_mq_start_stopped_hw_queues(nullb->q, true); 1486 1487 hrtimer_forward_now(&nullb->bw_timer, timer_interval); 1488 1489 return HRTIMER_RESTART; 1490 } 1491 1492 static void nullb_setup_bwtimer(struct nullb *nullb) 1493 { 1494 ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL); 1495 1496 hrtimer_setup(&nullb->bw_timer, nullb_bwtimer_fn, CLOCK_MONOTONIC, HRTIMER_MODE_REL); 1497 atomic_long_set(&nullb->cur_bytes, mb_per_tick(nullb->dev->mbps)); 1498 hrtimer_start(&nullb->bw_timer, timer_interval, HRTIMER_MODE_REL); 1499 } 1500 1501 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 1502 1503 static bool should_timeout_request(struct request *rq) 1504 { 1505 struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq); 1506 struct nullb_device *dev = cmd->nq->dev; 1507 1508 return should_fail(&dev->timeout_config.attr, 1); 1509 } 1510 1511 static bool should_requeue_request(struct request *rq) 1512 { 1513 struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq); 1514 struct nullb_device *dev = cmd->nq->dev; 1515 1516 return should_fail(&dev->requeue_config.attr, 1); 1517 } 1518 1519 static bool should_init_hctx_fail(struct nullb_device *dev) 1520 { 1521 return should_fail(&dev->init_hctx_fault_config.attr, 1); 1522 } 1523 1524 #else 1525 1526 static bool should_timeout_request(struct request *rq) 1527 { 1528 return false; 1529 } 1530 1531 static bool should_requeue_request(struct request *rq) 1532 { 1533 return false; 1534 } 1535 1536 static bool should_init_hctx_fail(struct nullb_device *dev) 1537 { 1538 return false; 1539 } 1540 1541 #endif 1542 1543 static void null_map_queues(struct blk_mq_tag_set *set) 1544 { 1545 struct nullb *nullb = set->driver_data; 1546 int i, qoff; 1547 unsigned int submit_queues = g_submit_queues; 1548 unsigned int poll_queues = g_poll_queues; 1549 1550 if (nullb) { 1551 struct nullb_device *dev = nullb->dev; 1552 1553 /* 1554 * Refer nr_hw_queues of the tag set to check if the expected 1555 * number of hardware queues are prepared. If block layer failed 1556 * to prepare them, use previous numbers of submit queues and 1557 * poll queues to map queues. 1558 */ 1559 if (set->nr_hw_queues == 1560 dev->submit_queues + dev->poll_queues) { 1561 submit_queues = dev->submit_queues; 1562 poll_queues = dev->poll_queues; 1563 } else if (set->nr_hw_queues == 1564 dev->prev_submit_queues + dev->prev_poll_queues) { 1565 submit_queues = dev->prev_submit_queues; 1566 poll_queues = dev->prev_poll_queues; 1567 } else { 1568 pr_warn("tag set has unexpected nr_hw_queues: %d\n", 1569 set->nr_hw_queues); 1570 WARN_ON_ONCE(true); 1571 submit_queues = 1; 1572 poll_queues = 0; 1573 } 1574 } 1575 1576 for (i = 0, qoff = 0; i < set->nr_maps; i++) { 1577 struct blk_mq_queue_map *map = &set->map[i]; 1578 1579 switch (i) { 1580 case HCTX_TYPE_DEFAULT: 1581 map->nr_queues = submit_queues; 1582 break; 1583 case HCTX_TYPE_READ: 1584 map->nr_queues = 0; 1585 continue; 1586 case HCTX_TYPE_POLL: 1587 map->nr_queues = poll_queues; 1588 break; 1589 } 1590 map->queue_offset = qoff; 1591 qoff += map->nr_queues; 1592 blk_mq_map_queues(map); 1593 } 1594 } 1595 1596 static int null_poll(struct blk_mq_hw_ctx *hctx, struct io_comp_batch *iob) 1597 { 1598 struct nullb_queue *nq = hctx->driver_data; 1599 LIST_HEAD(list); 1600 int nr = 0; 1601 struct request *rq; 1602 1603 spin_lock(&nq->poll_lock); 1604 list_splice_init(&nq->poll_list, &list); 1605 list_for_each_entry(rq, &list, queuelist) 1606 blk_mq_set_request_complete(rq); 1607 spin_unlock(&nq->poll_lock); 1608 1609 while (!list_empty(&list)) { 1610 struct nullb_cmd *cmd; 1611 struct request *req; 1612 1613 req = list_first_entry(&list, struct request, queuelist); 1614 list_del_init(&req->queuelist); 1615 cmd = blk_mq_rq_to_pdu(req); 1616 cmd->error = null_process_cmd(cmd, req_op(req), blk_rq_pos(req), 1617 blk_rq_sectors(req)); 1618 if (!blk_mq_add_to_batch(req, iob, cmd->error != BLK_STS_OK, 1619 blk_mq_end_request_batch)) 1620 blk_mq_end_request(req, cmd->error); 1621 nr++; 1622 } 1623 1624 return nr; 1625 } 1626 1627 static enum blk_eh_timer_return null_timeout_rq(struct request *rq) 1628 { 1629 struct blk_mq_hw_ctx *hctx = rq->mq_hctx; 1630 struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq); 1631 1632 if (hctx->type == HCTX_TYPE_POLL) { 1633 struct nullb_queue *nq = hctx->driver_data; 1634 1635 spin_lock(&nq->poll_lock); 1636 /* The request may have completed meanwhile. */ 1637 if (blk_mq_request_completed(rq)) { 1638 spin_unlock(&nq->poll_lock); 1639 return BLK_EH_DONE; 1640 } 1641 list_del_init(&rq->queuelist); 1642 spin_unlock(&nq->poll_lock); 1643 } 1644 1645 pr_info("rq %p timed out\n", rq); 1646 1647 /* 1648 * If the device is marked as blocking (i.e. memory backed or zoned 1649 * device), the submission path may be blocked waiting for resources 1650 * and cause real timeouts. For these real timeouts, the submission 1651 * path will complete the request using blk_mq_complete_request(). 1652 * Only fake timeouts need to execute blk_mq_complete_request() here. 1653 */ 1654 cmd->error = BLK_STS_TIMEOUT; 1655 if (cmd->fake_timeout || hctx->type == HCTX_TYPE_POLL) 1656 blk_mq_complete_request(rq); 1657 return BLK_EH_DONE; 1658 } 1659 1660 static blk_status_t null_queue_rq(struct blk_mq_hw_ctx *hctx, 1661 const struct blk_mq_queue_data *bd) 1662 { 1663 struct request *rq = bd->rq; 1664 struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq); 1665 struct nullb_queue *nq = hctx->driver_data; 1666 sector_t nr_sectors = blk_rq_sectors(rq); 1667 sector_t sector = blk_rq_pos(rq); 1668 const bool is_poll = hctx->type == HCTX_TYPE_POLL; 1669 1670 might_sleep_if(hctx->flags & BLK_MQ_F_BLOCKING); 1671 1672 if (!is_poll && nq->dev->irqmode == NULL_IRQ_TIMER) { 1673 hrtimer_setup(&cmd->timer, null_cmd_timer_expired, CLOCK_MONOTONIC, 1674 HRTIMER_MODE_REL); 1675 } 1676 cmd->error = BLK_STS_OK; 1677 cmd->nq = nq; 1678 cmd->fake_timeout = should_timeout_request(rq) || 1679 blk_should_fake_timeout(rq->q); 1680 1681 if (should_requeue_request(rq)) { 1682 /* 1683 * Alternate between hitting the core BUSY path, and the 1684 * driver driven requeue path 1685 */ 1686 nq->requeue_selection++; 1687 if (nq->requeue_selection & 1) 1688 return BLK_STS_RESOURCE; 1689 blk_mq_requeue_request(rq, true); 1690 return BLK_STS_OK; 1691 } 1692 1693 if (test_bit(NULLB_DEV_FL_THROTTLED, &nq->dev->flags)) { 1694 blk_status_t sts = null_handle_throttled(cmd); 1695 1696 if (sts != BLK_STS_OK) 1697 return sts; 1698 } 1699 1700 blk_mq_start_request(rq); 1701 1702 if (is_poll) { 1703 spin_lock(&nq->poll_lock); 1704 list_add_tail(&rq->queuelist, &nq->poll_list); 1705 spin_unlock(&nq->poll_lock); 1706 return BLK_STS_OK; 1707 } 1708 if (cmd->fake_timeout) 1709 return BLK_STS_OK; 1710 1711 null_handle_cmd(cmd, sector, nr_sectors, req_op(rq)); 1712 return BLK_STS_OK; 1713 } 1714 1715 static void null_queue_rqs(struct rq_list *rqlist) 1716 { 1717 struct rq_list requeue_list = {}; 1718 struct blk_mq_queue_data bd = { }; 1719 blk_status_t ret; 1720 1721 do { 1722 struct request *rq = rq_list_pop(rqlist); 1723 1724 bd.rq = rq; 1725 ret = null_queue_rq(rq->mq_hctx, &bd); 1726 if (ret != BLK_STS_OK) 1727 rq_list_add_tail(&requeue_list, rq); 1728 } while (!rq_list_empty(rqlist)); 1729 1730 *rqlist = requeue_list; 1731 } 1732 1733 static void null_init_queue(struct nullb *nullb, struct nullb_queue *nq) 1734 { 1735 nq->dev = nullb->dev; 1736 INIT_LIST_HEAD(&nq->poll_list); 1737 spin_lock_init(&nq->poll_lock); 1738 } 1739 1740 static int null_init_hctx(struct blk_mq_hw_ctx *hctx, void *driver_data, 1741 unsigned int hctx_idx) 1742 { 1743 struct nullb *nullb = hctx->queue->queuedata; 1744 struct nullb_queue *nq; 1745 1746 if (should_init_hctx_fail(nullb->dev)) 1747 return -EFAULT; 1748 1749 nq = &nullb->queues[hctx_idx]; 1750 hctx->driver_data = nq; 1751 null_init_queue(nullb, nq); 1752 1753 return 0; 1754 } 1755 1756 static const struct blk_mq_ops null_mq_ops = { 1757 .queue_rq = null_queue_rq, 1758 .queue_rqs = null_queue_rqs, 1759 .complete = null_complete_rq, 1760 .timeout = null_timeout_rq, 1761 .poll = null_poll, 1762 .map_queues = null_map_queues, 1763 .init_hctx = null_init_hctx, 1764 }; 1765 1766 static void null_del_dev(struct nullb *nullb) 1767 { 1768 struct nullb_device *dev; 1769 1770 if (!nullb) 1771 return; 1772 1773 dev = nullb->dev; 1774 1775 ida_free(&nullb_indexes, nullb->index); 1776 1777 list_del_init(&nullb->list); 1778 1779 del_gendisk(nullb->disk); 1780 1781 if (test_bit(NULLB_DEV_FL_THROTTLED, &dev->flags)) { 1782 hrtimer_cancel(&nullb->bw_timer); 1783 atomic_long_set(&nullb->cur_bytes, LONG_MAX); 1784 blk_mq_start_stopped_hw_queues(nullb->q, true); 1785 } 1786 1787 put_disk(nullb->disk); 1788 null_free_zoned_dev(dev); 1789 if (nullb->tag_set == &nullb->__tag_set) 1790 blk_mq_free_tag_set(nullb->tag_set); 1791 kfree(nullb->queues); 1792 if (null_cache_active(nullb)) 1793 null_free_device_storage(dev, true); 1794 kfree(nullb); 1795 dev->nullb = NULL; 1796 } 1797 1798 static void null_config_discard(struct nullb *nullb, struct queue_limits *lim) 1799 { 1800 if (nullb->dev->discard == false) 1801 return; 1802 1803 if (!nullb->dev->memory_backed) { 1804 nullb->dev->discard = false; 1805 pr_info("discard option is ignored without memory backing\n"); 1806 return; 1807 } 1808 1809 if (nullb->dev->zoned) { 1810 nullb->dev->discard = false; 1811 pr_info("discard option is ignored in zoned mode\n"); 1812 return; 1813 } 1814 1815 lim->max_hw_discard_sectors = UINT_MAX >> 9; 1816 } 1817 1818 static const struct block_device_operations null_ops = { 1819 .owner = THIS_MODULE, 1820 .report_zones = null_report_zones, 1821 }; 1822 1823 static int setup_queues(struct nullb *nullb) 1824 { 1825 int nqueues = nr_cpu_ids; 1826 1827 if (g_poll_queues) 1828 nqueues += g_poll_queues; 1829 1830 nullb->queues = kzalloc_objs(struct nullb_queue, nqueues); 1831 if (!nullb->queues) 1832 return -ENOMEM; 1833 1834 return 0; 1835 } 1836 1837 static int null_init_tag_set(struct blk_mq_tag_set *set, int poll_queues) 1838 { 1839 set->ops = &null_mq_ops; 1840 set->cmd_size = sizeof(struct nullb_cmd); 1841 set->timeout = 5 * HZ; 1842 set->nr_maps = 1; 1843 if (poll_queues) { 1844 set->nr_hw_queues += poll_queues; 1845 set->nr_maps += 2; 1846 } 1847 return blk_mq_alloc_tag_set(set); 1848 } 1849 1850 static int null_init_global_tag_set(void) 1851 { 1852 int error; 1853 1854 if (tag_set.ops) 1855 return 0; 1856 1857 tag_set.nr_hw_queues = g_submit_queues; 1858 tag_set.queue_depth = g_hw_queue_depth; 1859 tag_set.numa_node = g_home_node; 1860 if (g_no_sched) 1861 tag_set.flags |= BLK_MQ_F_NO_SCHED_BY_DEFAULT; 1862 if (g_shared_tag_bitmap) 1863 tag_set.flags |= BLK_MQ_F_TAG_HCTX_SHARED; 1864 if (g_blocking) 1865 tag_set.flags |= BLK_MQ_F_BLOCKING; 1866 1867 error = null_init_tag_set(&tag_set, g_poll_queues); 1868 if (error) 1869 tag_set.ops = NULL; 1870 return error; 1871 } 1872 1873 static int null_setup_tagset(struct nullb *nullb) 1874 { 1875 if (nullb->dev->shared_tags) { 1876 nullb->tag_set = &tag_set; 1877 return null_init_global_tag_set(); 1878 } 1879 1880 nullb->tag_set = &nullb->__tag_set; 1881 nullb->tag_set->driver_data = nullb; 1882 nullb->tag_set->nr_hw_queues = nullb->dev->submit_queues; 1883 nullb->tag_set->queue_depth = nullb->dev->hw_queue_depth; 1884 nullb->tag_set->numa_node = nullb->dev->home_node; 1885 if (nullb->dev->no_sched) 1886 nullb->tag_set->flags |= BLK_MQ_F_NO_SCHED_BY_DEFAULT; 1887 if (nullb->dev->shared_tag_bitmap) 1888 nullb->tag_set->flags |= BLK_MQ_F_TAG_HCTX_SHARED; 1889 if (nullb->dev->blocking) 1890 nullb->tag_set->flags |= BLK_MQ_F_BLOCKING; 1891 return null_init_tag_set(nullb->tag_set, nullb->dev->poll_queues); 1892 } 1893 1894 static int null_validate_conf(struct nullb_device *dev) 1895 { 1896 if (dev->queue_mode == NULL_Q_RQ) { 1897 pr_err("legacy IO path is no longer available\n"); 1898 return -EINVAL; 1899 } 1900 if (dev->queue_mode == NULL_Q_BIO) { 1901 pr_err("BIO-based IO path is no longer available, using blk-mq instead.\n"); 1902 dev->queue_mode = NULL_Q_MQ; 1903 } 1904 1905 if (dev->use_per_node_hctx) { 1906 if (dev->submit_queues != nr_online_nodes) 1907 dev->submit_queues = nr_online_nodes; 1908 } else if (dev->submit_queues > nr_cpu_ids) 1909 dev->submit_queues = nr_cpu_ids; 1910 else if (dev->submit_queues == 0) 1911 dev->submit_queues = 1; 1912 dev->prev_submit_queues = dev->submit_queues; 1913 1914 if (dev->poll_queues > g_poll_queues) 1915 dev->poll_queues = g_poll_queues; 1916 dev->prev_poll_queues = dev->poll_queues; 1917 dev->irqmode = min_t(unsigned int, dev->irqmode, NULL_IRQ_TIMER); 1918 1919 /* Do memory allocation, so set blocking */ 1920 if (dev->memory_backed) 1921 dev->blocking = true; 1922 else /* cache is meaningless */ 1923 dev->cache_size = 0; 1924 dev->cache_size = min_t(unsigned long, ULONG_MAX / 1024 / 1024, 1925 dev->cache_size); 1926 dev->mbps = min_t(unsigned int, 1024 * 40, dev->mbps); 1927 1928 if (dev->zoned && 1929 (!dev->zone_size || !is_power_of_2(dev->zone_size))) { 1930 pr_err("zone_size must be power-of-two\n"); 1931 return -EINVAL; 1932 } 1933 1934 return 0; 1935 } 1936 1937 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 1938 static bool __null_setup_fault(struct fault_attr *attr, char *str) 1939 { 1940 if (!str[0]) 1941 return true; 1942 1943 if (!setup_fault_attr(attr, str)) 1944 return false; 1945 1946 attr->verbose = 0; 1947 return true; 1948 } 1949 #endif 1950 1951 static bool null_setup_fault(void) 1952 { 1953 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION 1954 if (!__null_setup_fault(&null_timeout_attr, g_timeout_str)) 1955 return false; 1956 if (!__null_setup_fault(&null_requeue_attr, g_requeue_str)) 1957 return false; 1958 if (!__null_setup_fault(&null_init_hctx_attr, g_init_hctx_str)) 1959 return false; 1960 #endif 1961 return true; 1962 } 1963 1964 static int null_add_dev(struct nullb_device *dev) 1965 { 1966 struct queue_limits lim = { 1967 .logical_block_size = dev->blocksize, 1968 .physical_block_size = dev->blocksize, 1969 .max_hw_sectors = dev->max_sectors, 1970 .dma_alignment = 1, 1971 }; 1972 1973 struct nullb *nullb; 1974 int rv; 1975 1976 rv = null_validate_conf(dev); 1977 if (rv) 1978 return rv; 1979 1980 nullb = kzalloc_node(sizeof(*nullb), GFP_KERNEL, dev->home_node); 1981 if (!nullb) { 1982 rv = -ENOMEM; 1983 goto out; 1984 } 1985 nullb->dev = dev; 1986 dev->nullb = nullb; 1987 1988 spin_lock_init(&nullb->lock); 1989 1990 rv = setup_queues(nullb); 1991 if (rv) 1992 goto out_free_nullb; 1993 1994 rv = null_setup_tagset(nullb); 1995 if (rv) 1996 goto out_cleanup_queues; 1997 1998 if (dev->virt_boundary) 1999 lim.virt_boundary_mask = PAGE_SIZE - 1; 2000 null_config_discard(nullb, &lim); 2001 if (dev->zoned) { 2002 rv = null_init_zoned_dev(dev, &lim); 2003 if (rv) 2004 goto out_cleanup_tags; 2005 } 2006 2007 if (dev->cache_size > 0) { 2008 set_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags); 2009 lim.features |= BLK_FEAT_WRITE_CACHE; 2010 if (dev->fua) 2011 lim.features |= BLK_FEAT_FUA; 2012 } 2013 2014 if (dev->rotational) 2015 lim.features |= BLK_FEAT_ROTATIONAL; 2016 2017 nullb->disk = blk_mq_alloc_disk(nullb->tag_set, &lim, nullb); 2018 if (IS_ERR(nullb->disk)) { 2019 rv = PTR_ERR(nullb->disk); 2020 goto out_cleanup_zone; 2021 } 2022 nullb->q = nullb->disk->queue; 2023 2024 if (dev->mbps) { 2025 set_bit(NULLB_DEV_FL_THROTTLED, &dev->flags); 2026 nullb_setup_bwtimer(nullb); 2027 } 2028 2029 nullb->q->queuedata = nullb; 2030 2031 rv = ida_alloc(&nullb_indexes, GFP_KERNEL); 2032 if (rv < 0) 2033 goto out_cleanup_disk; 2034 2035 nullb->index = rv; 2036 dev->index = rv; 2037 2038 if (config_item_name(&dev->group.cg_item)) { 2039 /* Use configfs dir name as the device name */ 2040 snprintf(nullb->disk_name, sizeof(nullb->disk_name), 2041 "%s", config_item_name(&dev->group.cg_item)); 2042 } else { 2043 sprintf(nullb->disk_name, "nullb%d", nullb->index); 2044 } 2045 2046 set_capacity(nullb->disk, 2047 ((sector_t)nullb->dev->size * SZ_1M) >> SECTOR_SHIFT); 2048 nullb->disk->major = null_major; 2049 nullb->disk->first_minor = nullb->index; 2050 nullb->disk->minors = 1; 2051 nullb->disk->fops = &null_ops; 2052 nullb->disk->private_data = nullb; 2053 strscpy(nullb->disk->disk_name, nullb->disk_name); 2054 2055 if (nullb->dev->zoned) { 2056 rv = null_register_zoned_dev(nullb); 2057 if (rv) 2058 goto out_ida_free; 2059 } 2060 2061 rv = add_disk(nullb->disk); 2062 if (rv) 2063 goto out_ida_free; 2064 2065 list_add_tail(&nullb->list, &nullb_list); 2066 2067 pr_info("disk %s created\n", nullb->disk_name); 2068 2069 return 0; 2070 2071 out_ida_free: 2072 ida_free(&nullb_indexes, nullb->index); 2073 out_cleanup_disk: 2074 put_disk(nullb->disk); 2075 out_cleanup_zone: 2076 null_free_zoned_dev(dev); 2077 out_cleanup_tags: 2078 if (nullb->tag_set == &nullb->__tag_set) 2079 blk_mq_free_tag_set(nullb->tag_set); 2080 out_cleanup_queues: 2081 kfree(nullb->queues); 2082 out_free_nullb: 2083 kfree(nullb); 2084 dev->nullb = NULL; 2085 out: 2086 return rv; 2087 } 2088 2089 static struct nullb *null_find_dev_by_name(const char *name) 2090 { 2091 struct nullb *nullb = NULL, *nb; 2092 2093 guard(mutex)(&lock); 2094 list_for_each_entry(nb, &nullb_list, list) { 2095 if (strcmp(nb->disk_name, name) == 0) { 2096 nullb = nb; 2097 break; 2098 } 2099 } 2100 2101 return nullb; 2102 } 2103 2104 static int null_create_dev(void) 2105 { 2106 struct nullb_device *dev; 2107 int ret; 2108 2109 dev = null_alloc_dev(); 2110 if (!dev) 2111 return -ENOMEM; 2112 2113 scoped_guard(mutex, &lock) { 2114 ret = null_add_dev(dev); 2115 } 2116 if (ret) { 2117 null_free_dev(dev); 2118 return ret; 2119 } 2120 2121 return 0; 2122 } 2123 2124 static void null_destroy_dev(struct nullb *nullb) 2125 { 2126 struct nullb_device *dev = nullb->dev; 2127 2128 null_del_dev(nullb); 2129 null_free_device_storage(dev, false); 2130 null_free_dev(dev); 2131 } 2132 2133 static int __init null_init(void) 2134 { 2135 int ret = 0; 2136 unsigned int i; 2137 struct nullb *nullb; 2138 2139 if (g_bs > PAGE_SIZE) { 2140 pr_warn("invalid block size\n"); 2141 pr_warn("defaults block size to %lu\n", PAGE_SIZE); 2142 g_bs = PAGE_SIZE; 2143 } 2144 2145 if (g_home_node != NUMA_NO_NODE && g_home_node >= nr_online_nodes) { 2146 pr_err("invalid home_node value\n"); 2147 g_home_node = NUMA_NO_NODE; 2148 } 2149 2150 if (!null_setup_fault()) 2151 return -EINVAL; 2152 2153 if (g_queue_mode == NULL_Q_RQ) { 2154 pr_err("legacy IO path is no longer available\n"); 2155 return -EINVAL; 2156 } 2157 2158 if (g_use_per_node_hctx) { 2159 if (g_submit_queues != nr_online_nodes) { 2160 pr_warn("submit_queues param is set to %u.\n", 2161 nr_online_nodes); 2162 g_submit_queues = nr_online_nodes; 2163 } 2164 } else if (g_submit_queues > nr_cpu_ids) { 2165 g_submit_queues = nr_cpu_ids; 2166 } else if (g_submit_queues <= 0) { 2167 g_submit_queues = 1; 2168 } 2169 2170 config_group_init(&nullb_subsys.su_group); 2171 mutex_init(&nullb_subsys.su_mutex); 2172 2173 null_major = register_blkdev(0, "nullb"); 2174 if (null_major < 0) 2175 return null_major; 2176 2177 for (i = 0; i < nr_devices; i++) { 2178 ret = null_create_dev(); 2179 if (ret) 2180 goto err_dev; 2181 } 2182 2183 ret = configfs_register_subsystem(&nullb_subsys); 2184 if (ret) 2185 goto err_dev; 2186 2187 pr_info("module loaded\n"); 2188 return 0; 2189 2190 err_dev: 2191 while (!list_empty(&nullb_list)) { 2192 nullb = list_entry(nullb_list.next, struct nullb, list); 2193 null_destroy_dev(nullb); 2194 } 2195 unregister_blkdev(null_major, "nullb"); 2196 if (tag_set.ops) 2197 blk_mq_free_tag_set(&tag_set); 2198 return ret; 2199 } 2200 2201 static void __exit null_exit(void) 2202 { 2203 struct nullb *nullb; 2204 2205 configfs_unregister_subsystem(&nullb_subsys); 2206 2207 scoped_guard(mutex, &lock) { 2208 while (!list_empty(&nullb_list)) { 2209 nullb = list_entry(nullb_list.next, struct nullb, list); 2210 null_destroy_dev(nullb); 2211 } 2212 } 2213 2214 unregister_blkdev(null_major, "nullb"); 2215 2216 if (tag_set.ops) 2217 blk_mq_free_tag_set(&tag_set); 2218 } 2219 2220 module_init(null_init); 2221 module_exit(null_exit); 2222 2223 MODULE_AUTHOR("Jens Axboe <axboe@kernel.dk>"); 2224 MODULE_DESCRIPTION("multi queue aware block test driver"); 2225 MODULE_LICENSE("GPL"); 2226