1 2 /* 3 rbd.c -- Export ceph rados objects as a Linux block device 4 5 6 based on drivers/block/osdblk.c: 7 8 Copyright 2009 Red Hat, Inc. 9 10 This program is free software; you can redistribute it and/or modify 11 it under the terms of the GNU General Public License as published by 12 the Free Software Foundation. 13 14 This program is distributed in the hope that it will be useful, 15 but WITHOUT ANY WARRANTY; without even the implied warranty of 16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 17 GNU General Public License for more details. 18 19 You should have received a copy of the GNU General Public License 20 along with this program; see the file COPYING. If not, write to 21 the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA. 22 23 24 25 For usage instructions, please refer to: 26 27 Documentation/ABI/testing/sysfs-bus-rbd 28 29 */ 30 31 #include <linux/ceph/libceph.h> 32 #include <linux/ceph/osd_client.h> 33 #include <linux/ceph/mon_client.h> 34 #include <linux/ceph/cls_lock_client.h> 35 #include <linux/ceph/striper.h> 36 #include <linux/ceph/decode.h> 37 #include <linux/fs_parser.h> 38 #include <linux/bsearch.h> 39 40 #include <linux/kernel.h> 41 #include <linux/device.h> 42 #include <linux/module.h> 43 #include <linux/blk-mq.h> 44 #include <linux/fs.h> 45 #include <linux/blkdev.h> 46 #include <linux/slab.h> 47 #include <linux/idr.h> 48 #include <linux/workqueue.h> 49 50 #include "rbd_types.h" 51 52 #define RBD_DEBUG /* Activate rbd_assert() calls */ 53 54 /* 55 * Increment the given counter and return its updated value. 56 * If the counter is already 0 it will not be incremented. 57 * If the counter is already at its maximum value returns 58 * -EINVAL without updating it. 59 */ 60 static int atomic_inc_return_safe(atomic_t *v) 61 { 62 unsigned int counter; 63 64 counter = (unsigned int)atomic_fetch_add_unless(v, 1, 0); 65 if (counter <= (unsigned int)INT_MAX) 66 return (int)counter; 67 68 atomic_dec(v); 69 70 return -EINVAL; 71 } 72 73 /* Decrement the counter. Return the resulting value, or -EINVAL */ 74 static int atomic_dec_return_safe(atomic_t *v) 75 { 76 int counter; 77 78 counter = atomic_dec_return(v); 79 if (counter >= 0) 80 return counter; 81 82 atomic_inc(v); 83 84 return -EINVAL; 85 } 86 87 #define RBD_DRV_NAME "rbd" 88 89 #define RBD_MINORS_PER_MAJOR 256 90 #define RBD_SINGLE_MAJOR_PART_SHIFT 4 91 92 #define RBD_MAX_PARENT_CHAIN_LEN 16 93 94 #define RBD_SNAP_DEV_NAME_PREFIX "snap_" 95 #define RBD_MAX_SNAP_NAME_LEN \ 96 (NAME_MAX - (sizeof (RBD_SNAP_DEV_NAME_PREFIX) - 1)) 97 98 #define RBD_MAX_SNAP_COUNT 510 /* allows max snapc to fit in 4KB */ 99 100 #define RBD_SNAP_HEAD_NAME "-" 101 102 #define BAD_SNAP_INDEX U32_MAX /* invalid index into snap array */ 103 104 /* This allows a single page to hold an image name sent by OSD */ 105 #define RBD_IMAGE_NAME_LEN_MAX (PAGE_SIZE - sizeof (__le32) - 1) 106 #define RBD_IMAGE_ID_LEN_MAX 64 107 108 #define RBD_OBJ_PREFIX_LEN_MAX 64 109 110 #define RBD_NOTIFY_TIMEOUT 5 /* seconds */ 111 #define RBD_RETRY_DELAY msecs_to_jiffies(1000) 112 113 /* Feature bits */ 114 115 #define RBD_FEATURE_LAYERING (1ULL<<0) 116 #define RBD_FEATURE_STRIPINGV2 (1ULL<<1) 117 #define RBD_FEATURE_EXCLUSIVE_LOCK (1ULL<<2) 118 #define RBD_FEATURE_OBJECT_MAP (1ULL<<3) 119 #define RBD_FEATURE_FAST_DIFF (1ULL<<4) 120 #define RBD_FEATURE_DEEP_FLATTEN (1ULL<<5) 121 #define RBD_FEATURE_DATA_POOL (1ULL<<7) 122 #define RBD_FEATURE_OPERATIONS (1ULL<<8) 123 124 #define RBD_FEATURES_ALL (RBD_FEATURE_LAYERING | \ 125 RBD_FEATURE_STRIPINGV2 | \ 126 RBD_FEATURE_EXCLUSIVE_LOCK | \ 127 RBD_FEATURE_OBJECT_MAP | \ 128 RBD_FEATURE_FAST_DIFF | \ 129 RBD_FEATURE_DEEP_FLATTEN | \ 130 RBD_FEATURE_DATA_POOL | \ 131 RBD_FEATURE_OPERATIONS) 132 133 /* Features supported by this (client software) implementation. */ 134 135 #define RBD_FEATURES_SUPPORTED (RBD_FEATURES_ALL) 136 137 /* 138 * An RBD device name will be "rbd#", where the "rbd" comes from 139 * RBD_DRV_NAME above, and # is a unique integer identifier. 140 */ 141 #define DEV_NAME_LEN 32 142 143 /* 144 * block device image metadata (in-memory version) 145 */ 146 struct rbd_image_header { 147 /* These six fields never change for a given rbd image */ 148 char *object_prefix; 149 __u8 obj_order; 150 u64 stripe_unit; 151 u64 stripe_count; 152 s64 data_pool_id; 153 u64 features; /* Might be changeable someday? */ 154 155 /* The remaining fields need to be updated occasionally */ 156 u64 image_size; 157 struct ceph_snap_context *snapc; 158 char *snap_names; /* format 1 only */ 159 u64 *snap_sizes; /* format 1 only */ 160 }; 161 162 /* 163 * An rbd image specification. 164 * 165 * The tuple (pool_id, image_id, snap_id) is sufficient to uniquely 166 * identify an image. Each rbd_dev structure includes a pointer to 167 * an rbd_spec structure that encapsulates this identity. 168 * 169 * Each of the id's in an rbd_spec has an associated name. For a 170 * user-mapped image, the names are supplied and the id's associated 171 * with them are looked up. For a layered image, a parent image is 172 * defined by the tuple, and the names are looked up. 173 * 174 * An rbd_dev structure contains a parent_spec pointer which is 175 * non-null if the image it represents is a child in a layered 176 * image. This pointer will refer to the rbd_spec structure used 177 * by the parent rbd_dev for its own identity (i.e., the structure 178 * is shared between the parent and child). 179 * 180 * Since these structures are populated once, during the discovery 181 * phase of image construction, they are effectively immutable so 182 * we make no effort to synchronize access to them. 183 * 184 * Note that code herein does not assume the image name is known (it 185 * could be a null pointer). 186 */ 187 struct rbd_spec { 188 u64 pool_id; 189 const char *pool_name; 190 const char *pool_ns; /* NULL if default, never "" */ 191 192 const char *image_id; 193 const char *image_name; 194 195 u64 snap_id; 196 const char *snap_name; 197 198 struct kref kref; 199 }; 200 201 /* 202 * an instance of the client. multiple devices may share an rbd client. 203 */ 204 struct rbd_client { 205 struct ceph_client *client; 206 struct kref kref; 207 struct list_head node; 208 }; 209 210 struct pending_result { 211 int result; /* first nonzero result */ 212 int num_pending; 213 }; 214 215 struct rbd_img_request; 216 217 enum obj_request_type { 218 OBJ_REQUEST_NODATA = 1, 219 OBJ_REQUEST_BIO, /* pointer into provided bio (list) */ 220 OBJ_REQUEST_BVECS, /* pointer into provided bio_vec array */ 221 OBJ_REQUEST_OWN_BVECS, /* private bio_vec array, doesn't own pages */ 222 }; 223 224 enum obj_operation_type { 225 OBJ_OP_READ = 1, 226 OBJ_OP_WRITE, 227 OBJ_OP_DISCARD, 228 OBJ_OP_ZEROOUT, 229 }; 230 231 #define RBD_OBJ_FLAG_DELETION (1U << 0) 232 #define RBD_OBJ_FLAG_COPYUP_ENABLED (1U << 1) 233 #define RBD_OBJ_FLAG_COPYUP_ZEROS (1U << 2) 234 #define RBD_OBJ_FLAG_MAY_EXIST (1U << 3) 235 #define RBD_OBJ_FLAG_NOOP_FOR_NONEXISTENT (1U << 4) 236 237 enum rbd_obj_read_state { 238 RBD_OBJ_READ_START = 1, 239 RBD_OBJ_READ_OBJECT, 240 RBD_OBJ_READ_PARENT, 241 }; 242 243 /* 244 * Writes go through the following state machine to deal with 245 * layering: 246 * 247 * . . . . . RBD_OBJ_WRITE_GUARD. . . . . . . . . . . . . . 248 * . | . 249 * . v . 250 * . RBD_OBJ_WRITE_READ_FROM_PARENT. . . . 251 * . | . . 252 * . v v (deep-copyup . 253 * (image . RBD_OBJ_WRITE_COPYUP_EMPTY_SNAPC . not needed) . 254 * flattened) v | . . 255 * . v . . 256 * . . . .RBD_OBJ_WRITE_COPYUP_OPS. . . . . (copyup . 257 * | not needed) v 258 * v . 259 * done . . . . . . . . . . . . . . . . . . 260 * ^ 261 * | 262 * RBD_OBJ_WRITE_FLAT 263 * 264 * Writes start in RBD_OBJ_WRITE_GUARD or _FLAT, depending on whether 265 * assert_exists guard is needed or not (in some cases it's not needed 266 * even if there is a parent). 267 */ 268 enum rbd_obj_write_state { 269 RBD_OBJ_WRITE_START = 1, 270 RBD_OBJ_WRITE_PRE_OBJECT_MAP, 271 RBD_OBJ_WRITE_OBJECT, 272 __RBD_OBJ_WRITE_COPYUP, 273 RBD_OBJ_WRITE_COPYUP, 274 RBD_OBJ_WRITE_POST_OBJECT_MAP, 275 }; 276 277 enum rbd_obj_copyup_state { 278 RBD_OBJ_COPYUP_START = 1, 279 RBD_OBJ_COPYUP_READ_PARENT, 280 __RBD_OBJ_COPYUP_OBJECT_MAPS, 281 RBD_OBJ_COPYUP_OBJECT_MAPS, 282 __RBD_OBJ_COPYUP_WRITE_OBJECT, 283 RBD_OBJ_COPYUP_WRITE_OBJECT, 284 }; 285 286 struct rbd_obj_request { 287 struct ceph_object_extent ex; 288 unsigned int flags; /* RBD_OBJ_FLAG_* */ 289 union { 290 enum rbd_obj_read_state read_state; /* for reads */ 291 enum rbd_obj_write_state write_state; /* for writes */ 292 }; 293 294 struct rbd_img_request *img_request; 295 struct ceph_file_extent *img_extents; 296 u32 num_img_extents; 297 298 union { 299 struct ceph_bio_iter bio_pos; 300 struct { 301 struct ceph_bvec_iter bvec_pos; 302 u32 bvec_count; 303 u32 bvec_idx; 304 }; 305 }; 306 307 enum rbd_obj_copyup_state copyup_state; 308 struct bio_vec *copyup_bvecs; 309 u32 copyup_bvec_count; 310 311 struct list_head osd_reqs; /* w/ r_private_item */ 312 313 struct mutex state_mutex; 314 struct pending_result pending; 315 struct kref kref; 316 }; 317 318 enum img_req_flags { 319 IMG_REQ_CHILD, /* initiator: block = 0, child image = 1 */ 320 IMG_REQ_LAYERED, /* ENOENT handling: normal = 0, layered = 1 */ 321 }; 322 323 enum rbd_img_state { 324 RBD_IMG_START = 1, 325 RBD_IMG_EXCLUSIVE_LOCK, 326 __RBD_IMG_OBJECT_REQUESTS, 327 RBD_IMG_OBJECT_REQUESTS, 328 }; 329 330 struct rbd_img_request { 331 struct rbd_device *rbd_dev; 332 enum obj_operation_type op_type; 333 enum obj_request_type data_type; 334 unsigned long flags; 335 enum rbd_img_state state; 336 union { 337 u64 snap_id; /* for reads */ 338 struct ceph_snap_context *snapc; /* for writes */ 339 }; 340 struct rbd_obj_request *obj_request; /* obj req initiator */ 341 342 struct list_head lock_item; 343 struct list_head object_extents; /* obj_req.ex structs */ 344 345 struct mutex state_mutex; 346 struct pending_result pending; 347 struct work_struct work; 348 int work_result; 349 }; 350 351 #define for_each_obj_request(ireq, oreq) \ 352 list_for_each_entry(oreq, &(ireq)->object_extents, ex.oe_item) 353 #define for_each_obj_request_safe(ireq, oreq, n) \ 354 list_for_each_entry_safe(oreq, n, &(ireq)->object_extents, ex.oe_item) 355 356 enum rbd_watch_state { 357 RBD_WATCH_STATE_UNREGISTERED, 358 RBD_WATCH_STATE_REGISTERED, 359 RBD_WATCH_STATE_ERROR, 360 }; 361 362 enum rbd_lock_state { 363 RBD_LOCK_STATE_UNLOCKED, 364 RBD_LOCK_STATE_LOCKED, 365 RBD_LOCK_STATE_QUIESCING, 366 }; 367 368 /* WatchNotify::ClientId */ 369 struct rbd_client_id { 370 u64 gid; 371 u64 handle; 372 }; 373 374 struct rbd_mapping { 375 u64 size; 376 }; 377 378 /* 379 * a single device 380 */ 381 struct rbd_device { 382 int dev_id; /* blkdev unique id */ 383 384 int major; /* blkdev assigned major */ 385 int minor; 386 struct gendisk *disk; /* blkdev's gendisk and rq */ 387 388 u32 image_format; /* Either 1 or 2 */ 389 struct rbd_client *rbd_client; 390 391 char name[DEV_NAME_LEN]; /* blkdev name, e.g. rbd3 */ 392 393 spinlock_t lock; /* queue, flags, open_count */ 394 395 struct rbd_image_header header; 396 unsigned long flags; /* possibly lock protected */ 397 struct rbd_spec *spec; 398 struct rbd_options *opts; 399 char *config_info; /* add{,_single_major} string */ 400 401 struct ceph_object_id header_oid; 402 struct ceph_object_locator header_oloc; 403 404 struct ceph_file_layout layout; /* used for all rbd requests */ 405 406 struct mutex watch_mutex; 407 enum rbd_watch_state watch_state; 408 struct ceph_osd_linger_request *watch_handle; 409 u64 watch_cookie; 410 struct delayed_work watch_dwork; 411 412 struct rw_semaphore lock_rwsem; 413 enum rbd_lock_state lock_state; 414 char lock_cookie[32]; 415 struct rbd_client_id owner_cid; 416 struct work_struct acquired_lock_work; 417 struct work_struct released_lock_work; 418 struct delayed_work lock_dwork; 419 struct work_struct unlock_work; 420 spinlock_t lock_lists_lock; 421 struct list_head acquiring_list; 422 struct list_head running_list; 423 struct completion acquire_wait; 424 int acquire_err; 425 struct completion quiescing_wait; 426 427 spinlock_t object_map_lock; 428 u8 *object_map; 429 u64 object_map_size; /* in objects */ 430 u64 object_map_flags; 431 432 struct workqueue_struct *task_wq; 433 434 struct rbd_spec *parent_spec; 435 u64 parent_overlap; 436 atomic_t parent_ref; 437 struct rbd_device *parent; 438 439 /* Block layer tags. */ 440 struct blk_mq_tag_set tag_set; 441 442 /* protects updating the header */ 443 struct rw_semaphore header_rwsem; 444 445 struct rbd_mapping mapping; 446 447 struct list_head node; 448 449 /* sysfs related */ 450 struct device dev; 451 unsigned long open_count; /* protected by lock */ 452 }; 453 454 /* 455 * Flag bits for rbd_dev->flags: 456 * - REMOVING (which is coupled with rbd_dev->open_count) is protected 457 * by rbd_dev->lock 458 */ 459 enum rbd_dev_flags { 460 RBD_DEV_FLAG_EXISTS, /* rbd_dev_device_setup() ran */ 461 RBD_DEV_FLAG_REMOVING, /* this mapping is being removed */ 462 RBD_DEV_FLAG_READONLY, /* -o ro or snapshot */ 463 }; 464 465 static DEFINE_MUTEX(client_mutex); /* Serialize client creation */ 466 467 static LIST_HEAD(rbd_dev_list); /* devices */ 468 static DEFINE_SPINLOCK(rbd_dev_list_lock); 469 470 static LIST_HEAD(rbd_client_list); /* clients */ 471 static DEFINE_SPINLOCK(rbd_client_list_lock); 472 473 /* Slab caches for frequently-allocated structures */ 474 475 static struct kmem_cache *rbd_img_request_cache; 476 static struct kmem_cache *rbd_obj_request_cache; 477 478 static int rbd_major; 479 static DEFINE_IDA(rbd_dev_id_ida); 480 481 static struct workqueue_struct *rbd_wq; 482 483 static struct ceph_snap_context rbd_empty_snapc = { 484 .nref = REFCOUNT_INIT(1), 485 }; 486 487 /* 488 * single-major requires >= 0.75 version of userspace rbd utility. 489 */ 490 static bool single_major = true; 491 module_param(single_major, bool, 0444); 492 MODULE_PARM_DESC(single_major, "Use a single major number for all rbd devices (default: true)"); 493 494 static ssize_t add_store(const struct bus_type *bus, const char *buf, size_t count); 495 static ssize_t remove_store(const struct bus_type *bus, const char *buf, 496 size_t count); 497 static ssize_t add_single_major_store(const struct bus_type *bus, const char *buf, 498 size_t count); 499 static ssize_t remove_single_major_store(const struct bus_type *bus, const char *buf, 500 size_t count); 501 static int rbd_dev_image_probe(struct rbd_device *rbd_dev, int depth); 502 503 static int rbd_dev_id_to_minor(int dev_id) 504 { 505 return dev_id << RBD_SINGLE_MAJOR_PART_SHIFT; 506 } 507 508 static int minor_to_rbd_dev_id(int minor) 509 { 510 return minor >> RBD_SINGLE_MAJOR_PART_SHIFT; 511 } 512 513 static bool rbd_is_ro(struct rbd_device *rbd_dev) 514 { 515 return test_bit(RBD_DEV_FLAG_READONLY, &rbd_dev->flags); 516 } 517 518 static bool rbd_is_snap(struct rbd_device *rbd_dev) 519 { 520 return rbd_dev->spec->snap_id != CEPH_NOSNAP; 521 } 522 523 static bool __rbd_is_lock_owner(struct rbd_device *rbd_dev) 524 { 525 lockdep_assert_held(&rbd_dev->lock_rwsem); 526 527 return rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED || 528 rbd_dev->lock_state == RBD_LOCK_STATE_QUIESCING; 529 } 530 531 static bool rbd_is_lock_owner(struct rbd_device *rbd_dev) 532 { 533 bool is_lock_owner; 534 535 down_read(&rbd_dev->lock_rwsem); 536 is_lock_owner = __rbd_is_lock_owner(rbd_dev); 537 up_read(&rbd_dev->lock_rwsem); 538 return is_lock_owner; 539 } 540 541 static ssize_t supported_features_show(const struct bus_type *bus, char *buf) 542 { 543 return sprintf(buf, "0x%llx\n", RBD_FEATURES_SUPPORTED); 544 } 545 546 static BUS_ATTR_WO(add); 547 static BUS_ATTR_WO(remove); 548 static BUS_ATTR_WO(add_single_major); 549 static BUS_ATTR_WO(remove_single_major); 550 static BUS_ATTR_RO(supported_features); 551 552 static struct attribute *rbd_bus_attrs[] = { 553 &bus_attr_add.attr, 554 &bus_attr_remove.attr, 555 &bus_attr_add_single_major.attr, 556 &bus_attr_remove_single_major.attr, 557 &bus_attr_supported_features.attr, 558 NULL, 559 }; 560 561 static umode_t rbd_bus_is_visible(struct kobject *kobj, 562 struct attribute *attr, int index) 563 { 564 if (!single_major && 565 (attr == &bus_attr_add_single_major.attr || 566 attr == &bus_attr_remove_single_major.attr)) 567 return 0; 568 569 return attr->mode; 570 } 571 572 static const struct attribute_group rbd_bus_group = { 573 .attrs = rbd_bus_attrs, 574 .is_visible = rbd_bus_is_visible, 575 }; 576 __ATTRIBUTE_GROUPS(rbd_bus); 577 578 static const struct bus_type rbd_bus_type = { 579 .name = "rbd", 580 .bus_groups = rbd_bus_groups, 581 }; 582 583 static struct device *rbd_root_dev; 584 585 static __printf(2, 3) 586 void rbd_warn(struct rbd_device *rbd_dev, const char *fmt, ...) 587 { 588 struct va_format vaf; 589 va_list args; 590 591 va_start(args, fmt); 592 vaf.fmt = fmt; 593 vaf.va = &args; 594 595 if (!rbd_dev) 596 printk(KERN_WARNING "%s: %pV\n", RBD_DRV_NAME, &vaf); 597 else if (rbd_dev->disk) 598 printk(KERN_WARNING "%s: %s: %pV\n", 599 RBD_DRV_NAME, rbd_dev->disk->disk_name, &vaf); 600 else if (rbd_dev->spec && rbd_dev->spec->image_name) 601 printk(KERN_WARNING "%s: image %s: %pV\n", 602 RBD_DRV_NAME, rbd_dev->spec->image_name, &vaf); 603 else if (rbd_dev->spec && rbd_dev->spec->image_id) 604 printk(KERN_WARNING "%s: id %s: %pV\n", 605 RBD_DRV_NAME, rbd_dev->spec->image_id, &vaf); 606 else /* punt */ 607 printk(KERN_WARNING "%s: rbd_dev %p: %pV\n", 608 RBD_DRV_NAME, rbd_dev, &vaf); 609 va_end(args); 610 } 611 612 #ifdef RBD_DEBUG 613 #define rbd_assert(expr) \ 614 if (unlikely(!(expr))) { \ 615 printk(KERN_ERR "\nAssertion failure in %s() " \ 616 "at line %d:\n\n" \ 617 "\trbd_assert(%s);\n\n", \ 618 __func__, __LINE__, #expr); \ 619 BUG(); \ 620 } 621 #else /* !RBD_DEBUG */ 622 # define rbd_assert(expr) ((void) 0) 623 #endif /* !RBD_DEBUG */ 624 625 static void rbd_dev_remove_parent(struct rbd_device *rbd_dev); 626 627 static int rbd_dev_refresh(struct rbd_device *rbd_dev); 628 static int rbd_dev_v2_header_onetime(struct rbd_device *rbd_dev, 629 struct rbd_image_header *header); 630 static const char *rbd_dev_v2_snap_name(struct rbd_device *rbd_dev, 631 u64 snap_id); 632 static int _rbd_dev_v2_snap_size(struct rbd_device *rbd_dev, u64 snap_id, 633 u8 *order, u64 *snap_size); 634 static int rbd_dev_v2_get_flags(struct rbd_device *rbd_dev); 635 636 static void rbd_obj_handle_request(struct rbd_obj_request *obj_req, int result); 637 static void rbd_img_handle_request(struct rbd_img_request *img_req, int result); 638 639 /* 640 * Return true if nothing else is pending. 641 */ 642 static bool pending_result_dec(struct pending_result *pending, int *result) 643 { 644 rbd_assert(pending->num_pending > 0); 645 646 if (*result && !pending->result) 647 pending->result = *result; 648 if (--pending->num_pending) 649 return false; 650 651 *result = pending->result; 652 return true; 653 } 654 655 static int rbd_open(struct gendisk *disk, blk_mode_t mode) 656 { 657 struct rbd_device *rbd_dev = disk->private_data; 658 bool removing = false; 659 660 spin_lock_irq(&rbd_dev->lock); 661 if (test_bit(RBD_DEV_FLAG_REMOVING, &rbd_dev->flags)) 662 removing = true; 663 else 664 rbd_dev->open_count++; 665 spin_unlock_irq(&rbd_dev->lock); 666 if (removing) 667 return -ENOENT; 668 669 (void) get_device(&rbd_dev->dev); 670 671 return 0; 672 } 673 674 static void rbd_release(struct gendisk *disk) 675 { 676 struct rbd_device *rbd_dev = disk->private_data; 677 unsigned long open_count_before; 678 679 spin_lock_irq(&rbd_dev->lock); 680 open_count_before = rbd_dev->open_count--; 681 spin_unlock_irq(&rbd_dev->lock); 682 rbd_assert(open_count_before > 0); 683 684 put_device(&rbd_dev->dev); 685 } 686 687 static const struct block_device_operations rbd_bd_ops = { 688 .owner = THIS_MODULE, 689 .open = rbd_open, 690 .release = rbd_release, 691 }; 692 693 /* 694 * Initialize an rbd client instance. Success or not, this function 695 * consumes ceph_opts. Caller holds client_mutex. 696 */ 697 static struct rbd_client *rbd_client_create(struct ceph_options *ceph_opts) 698 { 699 struct rbd_client *rbdc; 700 int ret = -ENOMEM; 701 702 dout("%s:\n", __func__); 703 rbdc = kmalloc_obj(struct rbd_client); 704 if (!rbdc) 705 goto out_opt; 706 707 kref_init(&rbdc->kref); 708 INIT_LIST_HEAD(&rbdc->node); 709 710 rbdc->client = ceph_create_client(ceph_opts, rbdc); 711 if (IS_ERR(rbdc->client)) 712 goto out_rbdc; 713 ceph_opts = NULL; /* Now rbdc->client is responsible for ceph_opts */ 714 715 ret = ceph_open_session(rbdc->client); 716 if (ret < 0) 717 goto out_client; 718 719 spin_lock(&rbd_client_list_lock); 720 list_add_tail(&rbdc->node, &rbd_client_list); 721 spin_unlock(&rbd_client_list_lock); 722 723 dout("%s: rbdc %p\n", __func__, rbdc); 724 725 return rbdc; 726 out_client: 727 ceph_destroy_client(rbdc->client); 728 out_rbdc: 729 kfree(rbdc); 730 out_opt: 731 if (ceph_opts) 732 ceph_destroy_options(ceph_opts); 733 dout("%s: error %d\n", __func__, ret); 734 735 return ERR_PTR(ret); 736 } 737 738 static struct rbd_client *__rbd_get_client(struct rbd_client *rbdc) 739 { 740 kref_get(&rbdc->kref); 741 742 return rbdc; 743 } 744 745 /* 746 * Find a ceph client with specific addr and configuration. If 747 * found, bump its reference count. 748 */ 749 static struct rbd_client *rbd_client_find(struct ceph_options *ceph_opts) 750 { 751 struct rbd_client *rbdc = NULL, *iter; 752 753 if (ceph_opts->flags & CEPH_OPT_NOSHARE) 754 return NULL; 755 756 spin_lock(&rbd_client_list_lock); 757 list_for_each_entry(iter, &rbd_client_list, node) { 758 if (!ceph_compare_options(ceph_opts, iter->client)) { 759 __rbd_get_client(iter); 760 761 rbdc = iter; 762 break; 763 } 764 } 765 spin_unlock(&rbd_client_list_lock); 766 767 return rbdc; 768 } 769 770 /* 771 * (Per device) rbd map options 772 */ 773 enum { 774 Opt_queue_depth, 775 Opt_alloc_size, 776 Opt_lock_timeout, 777 /* int args above */ 778 Opt_pool_ns, 779 Opt_compression_hint, 780 /* string args above */ 781 Opt_read_only, 782 Opt_read_write, 783 Opt_lock_on_read, 784 Opt_exclusive, 785 Opt_notrim, 786 }; 787 788 enum { 789 Opt_compression_hint_none, 790 Opt_compression_hint_compressible, 791 Opt_compression_hint_incompressible, 792 }; 793 794 static const struct constant_table rbd_param_compression_hint[] = { 795 {"none", Opt_compression_hint_none}, 796 {"compressible", Opt_compression_hint_compressible}, 797 {"incompressible", Opt_compression_hint_incompressible}, 798 {} 799 }; 800 801 static const struct fs_parameter_spec rbd_parameters[] = { 802 fsparam_u32 ("alloc_size", Opt_alloc_size), 803 fsparam_enum ("compression_hint", Opt_compression_hint, 804 rbd_param_compression_hint), 805 fsparam_flag ("exclusive", Opt_exclusive), 806 fsparam_flag ("lock_on_read", Opt_lock_on_read), 807 fsparam_u32 ("lock_timeout", Opt_lock_timeout), 808 fsparam_flag ("notrim", Opt_notrim), 809 fsparam_string ("_pool_ns", Opt_pool_ns), 810 fsparam_u32 ("queue_depth", Opt_queue_depth), 811 fsparam_flag ("read_only", Opt_read_only), 812 fsparam_flag ("read_write", Opt_read_write), 813 fsparam_flag ("ro", Opt_read_only), 814 fsparam_flag ("rw", Opt_read_write), 815 {} 816 }; 817 818 struct rbd_options { 819 int queue_depth; 820 int alloc_size; 821 unsigned long lock_timeout; 822 bool read_only; 823 bool lock_on_read; 824 bool exclusive; 825 bool trim; 826 827 u32 alloc_hint_flags; /* CEPH_OSD_OP_ALLOC_HINT_FLAG_* */ 828 }; 829 830 #define RBD_QUEUE_DEPTH_DEFAULT BLKDEV_DEFAULT_RQ 831 #define RBD_ALLOC_SIZE_DEFAULT (64 * 1024) 832 #define RBD_LOCK_TIMEOUT_DEFAULT 0 /* no timeout */ 833 #define RBD_READ_ONLY_DEFAULT false 834 #define RBD_LOCK_ON_READ_DEFAULT false 835 #define RBD_EXCLUSIVE_DEFAULT false 836 #define RBD_TRIM_DEFAULT true 837 838 struct rbd_parse_opts_ctx { 839 struct rbd_spec *spec; 840 struct ceph_options *copts; 841 struct rbd_options *opts; 842 }; 843 844 static char* obj_op_name(enum obj_operation_type op_type) 845 { 846 switch (op_type) { 847 case OBJ_OP_READ: 848 return "read"; 849 case OBJ_OP_WRITE: 850 return "write"; 851 case OBJ_OP_DISCARD: 852 return "discard"; 853 case OBJ_OP_ZEROOUT: 854 return "zeroout"; 855 default: 856 return "???"; 857 } 858 } 859 860 /* 861 * Destroy ceph client 862 * 863 * Caller must hold rbd_client_list_lock. 864 */ 865 static void rbd_client_release(struct kref *kref) 866 { 867 struct rbd_client *rbdc = container_of(kref, struct rbd_client, kref); 868 869 dout("%s: rbdc %p\n", __func__, rbdc); 870 spin_lock(&rbd_client_list_lock); 871 list_del(&rbdc->node); 872 spin_unlock(&rbd_client_list_lock); 873 874 ceph_destroy_client(rbdc->client); 875 kfree(rbdc); 876 } 877 878 /* 879 * Drop reference to ceph client node. If it's not referenced anymore, release 880 * it. 881 */ 882 static void rbd_put_client(struct rbd_client *rbdc) 883 { 884 if (rbdc) 885 kref_put(&rbdc->kref, rbd_client_release); 886 } 887 888 /* 889 * Get a ceph client with specific addr and configuration, if one does 890 * not exist create it. Either way, ceph_opts is consumed by this 891 * function. 892 */ 893 static struct rbd_client *rbd_get_client(struct ceph_options *ceph_opts) 894 { 895 struct rbd_client *rbdc; 896 int ret; 897 898 mutex_lock(&client_mutex); 899 rbdc = rbd_client_find(ceph_opts); 900 if (rbdc) { 901 ceph_destroy_options(ceph_opts); 902 903 /* 904 * Using an existing client. Make sure ->pg_pools is up to 905 * date before we look up the pool id in do_rbd_add(). 906 */ 907 ret = ceph_wait_for_latest_osdmap(rbdc->client, 908 rbdc->client->options->mount_timeout); 909 if (ret) { 910 rbd_warn(NULL, "failed to get latest osdmap: %d", ret); 911 rbd_put_client(rbdc); 912 rbdc = ERR_PTR(ret); 913 } 914 } else { 915 rbdc = rbd_client_create(ceph_opts); 916 } 917 mutex_unlock(&client_mutex); 918 919 return rbdc; 920 } 921 922 static bool rbd_image_format_valid(u32 image_format) 923 { 924 return image_format == 1 || image_format == 2; 925 } 926 927 static bool rbd_dev_ondisk_valid(struct rbd_image_header_ondisk *ondisk) 928 { 929 size_t size; 930 u32 snap_count; 931 932 /* The header has to start with the magic rbd header text */ 933 if (memcmp(&ondisk->text, RBD_HEADER_TEXT, sizeof (RBD_HEADER_TEXT))) 934 return false; 935 936 /* The bio layer requires at least sector-sized I/O */ 937 938 if (ondisk->options.order < SECTOR_SHIFT) 939 return false; 940 941 /* If we use u64 in a few spots we may be able to loosen this */ 942 943 if (ondisk->options.order > 8 * sizeof (int) - 1) 944 return false; 945 946 /* 947 * The size of a snapshot header has to fit in a size_t, and 948 * that limits the number of snapshots. 949 */ 950 snap_count = le32_to_cpu(ondisk->snap_count); 951 size = SIZE_MAX - sizeof (struct ceph_snap_context); 952 if (snap_count > size / sizeof (__le64)) 953 return false; 954 955 /* 956 * Not only that, but the size of the entire the snapshot 957 * header must also be representable in a size_t. 958 */ 959 size -= snap_count * sizeof (__le64); 960 if ((u64) size < le64_to_cpu(ondisk->snap_names_len)) 961 return false; 962 963 return true; 964 } 965 966 /* 967 * returns the size of an object in the image 968 */ 969 static u32 rbd_obj_bytes(struct rbd_image_header *header) 970 { 971 return 1U << header->obj_order; 972 } 973 974 static void rbd_init_layout(struct rbd_device *rbd_dev) 975 { 976 if (rbd_dev->header.stripe_unit == 0 || 977 rbd_dev->header.stripe_count == 0) { 978 rbd_dev->header.stripe_unit = rbd_obj_bytes(&rbd_dev->header); 979 rbd_dev->header.stripe_count = 1; 980 } 981 982 rbd_dev->layout.stripe_unit = rbd_dev->header.stripe_unit; 983 rbd_dev->layout.stripe_count = rbd_dev->header.stripe_count; 984 rbd_dev->layout.object_size = rbd_obj_bytes(&rbd_dev->header); 985 rbd_dev->layout.pool_id = rbd_dev->header.data_pool_id == CEPH_NOPOOL ? 986 rbd_dev->spec->pool_id : rbd_dev->header.data_pool_id; 987 RCU_INIT_POINTER(rbd_dev->layout.pool_ns, NULL); 988 } 989 990 static void rbd_image_header_cleanup(struct rbd_image_header *header) 991 { 992 kfree(header->object_prefix); 993 ceph_put_snap_context(header->snapc); 994 kfree(header->snap_sizes); 995 kfree(header->snap_names); 996 997 memset(header, 0, sizeof(*header)); 998 } 999 1000 /* 1001 * Fill an rbd image header with information from the given format 1 1002 * on-disk header. 1003 */ 1004 static int rbd_header_from_disk(struct rbd_image_header *header, 1005 struct rbd_image_header_ondisk *ondisk, 1006 bool first_time) 1007 { 1008 struct ceph_snap_context *snapc; 1009 char *object_prefix = NULL; 1010 char *snap_names = NULL; 1011 u64 *snap_sizes = NULL; 1012 u32 snap_count; 1013 int ret = -ENOMEM; 1014 u32 i; 1015 1016 /* Allocate this now to avoid having to handle failure below */ 1017 1018 if (first_time) { 1019 object_prefix = kstrndup(ondisk->object_prefix, 1020 sizeof(ondisk->object_prefix), 1021 GFP_KERNEL); 1022 if (!object_prefix) 1023 return -ENOMEM; 1024 } 1025 1026 /* Allocate the snapshot context and fill it in */ 1027 1028 snap_count = le32_to_cpu(ondisk->snap_count); 1029 snapc = ceph_create_snap_context(snap_count, GFP_KERNEL); 1030 if (!snapc) 1031 goto out_err; 1032 snapc->seq = le64_to_cpu(ondisk->snap_seq); 1033 if (snap_count) { 1034 struct rbd_image_snap_ondisk *snaps; 1035 u64 snap_names_len = le64_to_cpu(ondisk->snap_names_len); 1036 1037 /* We'll keep a copy of the snapshot names... */ 1038 1039 if (snap_names_len > (u64)SIZE_MAX) 1040 goto out_2big; 1041 snap_names = kmalloc(snap_names_len, GFP_KERNEL); 1042 if (!snap_names) 1043 goto out_err; 1044 1045 /* ...as well as the array of their sizes. */ 1046 snap_sizes = kmalloc_array(snap_count, 1047 sizeof(*header->snap_sizes), 1048 GFP_KERNEL); 1049 if (!snap_sizes) 1050 goto out_err; 1051 1052 /* 1053 * Copy the names, and fill in each snapshot's id 1054 * and size. 1055 * 1056 * Note that rbd_dev_v1_header_info() guarantees the 1057 * ondisk buffer we're working with has 1058 * snap_names_len bytes beyond the end of the 1059 * snapshot id array, this memcpy() is safe. 1060 */ 1061 memcpy(snap_names, &ondisk->snaps[snap_count], snap_names_len); 1062 snaps = ondisk->snaps; 1063 for (i = 0; i < snap_count; i++) { 1064 snapc->snaps[i] = le64_to_cpu(snaps[i].id); 1065 snap_sizes[i] = le64_to_cpu(snaps[i].image_size); 1066 } 1067 } 1068 1069 /* We won't fail any more, fill in the header */ 1070 1071 if (first_time) { 1072 header->object_prefix = object_prefix; 1073 header->obj_order = ondisk->options.order; 1074 } 1075 1076 /* The remaining fields always get updated (when we refresh) */ 1077 1078 header->image_size = le64_to_cpu(ondisk->image_size); 1079 header->snapc = snapc; 1080 header->snap_names = snap_names; 1081 header->snap_sizes = snap_sizes; 1082 1083 return 0; 1084 out_2big: 1085 ret = -EIO; 1086 out_err: 1087 kfree(snap_sizes); 1088 kfree(snap_names); 1089 ceph_put_snap_context(snapc); 1090 kfree(object_prefix); 1091 1092 return ret; 1093 } 1094 1095 static const char *_rbd_dev_v1_snap_name(struct rbd_device *rbd_dev, u32 which) 1096 { 1097 const char *snap_name; 1098 1099 rbd_assert(which < rbd_dev->header.snapc->num_snaps); 1100 1101 /* Skip over names until we find the one we are looking for */ 1102 1103 snap_name = rbd_dev->header.snap_names; 1104 while (which--) 1105 snap_name += strlen(snap_name) + 1; 1106 1107 return kstrdup(snap_name, GFP_KERNEL); 1108 } 1109 1110 /* 1111 * Snapshot id comparison function for use with qsort()/bsearch(). 1112 * Note that result is for snapshots in *descending* order. 1113 */ 1114 static int snapid_compare_reverse(const void *s1, const void *s2) 1115 { 1116 u64 snap_id1 = *(u64 *)s1; 1117 u64 snap_id2 = *(u64 *)s2; 1118 1119 if (snap_id1 < snap_id2) 1120 return 1; 1121 return snap_id1 == snap_id2 ? 0 : -1; 1122 } 1123 1124 /* 1125 * Search a snapshot context to see if the given snapshot id is 1126 * present. 1127 * 1128 * Returns the position of the snapshot id in the array if it's found, 1129 * or BAD_SNAP_INDEX otherwise. 1130 * 1131 * Note: The snapshot array is in kept sorted (by the osd) in 1132 * reverse order, highest snapshot id first. 1133 */ 1134 static u32 rbd_dev_snap_index(struct rbd_device *rbd_dev, u64 snap_id) 1135 { 1136 struct ceph_snap_context *snapc = rbd_dev->header.snapc; 1137 u64 *found; 1138 1139 found = bsearch(&snap_id, &snapc->snaps, snapc->num_snaps, 1140 sizeof (snap_id), snapid_compare_reverse); 1141 1142 return found ? (u32)(found - &snapc->snaps[0]) : BAD_SNAP_INDEX; 1143 } 1144 1145 static const char *rbd_dev_v1_snap_name(struct rbd_device *rbd_dev, 1146 u64 snap_id) 1147 { 1148 u32 which; 1149 const char *snap_name; 1150 1151 which = rbd_dev_snap_index(rbd_dev, snap_id); 1152 if (which == BAD_SNAP_INDEX) 1153 return ERR_PTR(-ENOENT); 1154 1155 snap_name = _rbd_dev_v1_snap_name(rbd_dev, which); 1156 return snap_name ? snap_name : ERR_PTR(-ENOMEM); 1157 } 1158 1159 static const char *rbd_snap_name(struct rbd_device *rbd_dev, u64 snap_id) 1160 { 1161 if (snap_id == CEPH_NOSNAP) 1162 return RBD_SNAP_HEAD_NAME; 1163 1164 rbd_assert(rbd_image_format_valid(rbd_dev->image_format)); 1165 if (rbd_dev->image_format == 1) 1166 return rbd_dev_v1_snap_name(rbd_dev, snap_id); 1167 1168 return rbd_dev_v2_snap_name(rbd_dev, snap_id); 1169 } 1170 1171 static int rbd_snap_size(struct rbd_device *rbd_dev, u64 snap_id, 1172 u64 *snap_size) 1173 { 1174 rbd_assert(rbd_image_format_valid(rbd_dev->image_format)); 1175 if (snap_id == CEPH_NOSNAP) { 1176 *snap_size = rbd_dev->header.image_size; 1177 } else if (rbd_dev->image_format == 1) { 1178 u32 which; 1179 1180 which = rbd_dev_snap_index(rbd_dev, snap_id); 1181 if (which == BAD_SNAP_INDEX) 1182 return -ENOENT; 1183 1184 *snap_size = rbd_dev->header.snap_sizes[which]; 1185 } else { 1186 u64 size = 0; 1187 int ret; 1188 1189 ret = _rbd_dev_v2_snap_size(rbd_dev, snap_id, NULL, &size); 1190 if (ret) 1191 return ret; 1192 1193 *snap_size = size; 1194 } 1195 return 0; 1196 } 1197 1198 static int rbd_dev_mapping_set(struct rbd_device *rbd_dev) 1199 { 1200 u64 snap_id = rbd_dev->spec->snap_id; 1201 u64 size = 0; 1202 int ret; 1203 1204 ret = rbd_snap_size(rbd_dev, snap_id, &size); 1205 if (ret) 1206 return ret; 1207 1208 rbd_dev->mapping.size = size; 1209 return 0; 1210 } 1211 1212 static void rbd_dev_mapping_clear(struct rbd_device *rbd_dev) 1213 { 1214 rbd_dev->mapping.size = 0; 1215 } 1216 1217 static void zero_bios(struct ceph_bio_iter *bio_pos, u32 off, u32 bytes) 1218 { 1219 struct ceph_bio_iter it = *bio_pos; 1220 1221 ceph_bio_iter_advance(&it, off); 1222 ceph_bio_iter_advance_step(&it, bytes, ({ 1223 memzero_bvec(&bv); 1224 })); 1225 } 1226 1227 static void zero_bvecs(struct ceph_bvec_iter *bvec_pos, u32 off, u32 bytes) 1228 { 1229 struct ceph_bvec_iter it = *bvec_pos; 1230 1231 ceph_bvec_iter_advance(&it, off); 1232 ceph_bvec_iter_advance_step(&it, bytes, ({ 1233 memzero_bvec(&bv); 1234 })); 1235 } 1236 1237 /* 1238 * Zero a range in @obj_req data buffer defined by a bio (list) or 1239 * (private) bio_vec array. 1240 * 1241 * @off is relative to the start of the data buffer. 1242 */ 1243 static void rbd_obj_zero_range(struct rbd_obj_request *obj_req, u32 off, 1244 u32 bytes) 1245 { 1246 dout("%s %p data buf %u~%u\n", __func__, obj_req, off, bytes); 1247 1248 switch (obj_req->img_request->data_type) { 1249 case OBJ_REQUEST_BIO: 1250 zero_bios(&obj_req->bio_pos, off, bytes); 1251 break; 1252 case OBJ_REQUEST_BVECS: 1253 case OBJ_REQUEST_OWN_BVECS: 1254 zero_bvecs(&obj_req->bvec_pos, off, bytes); 1255 break; 1256 default: 1257 BUG(); 1258 } 1259 } 1260 1261 static void rbd_obj_request_destroy(struct kref *kref); 1262 static void rbd_obj_request_put(struct rbd_obj_request *obj_request) 1263 { 1264 rbd_assert(obj_request != NULL); 1265 dout("%s: obj %p (was %d)\n", __func__, obj_request, 1266 kref_read(&obj_request->kref)); 1267 kref_put(&obj_request->kref, rbd_obj_request_destroy); 1268 } 1269 1270 static inline void rbd_img_obj_request_add(struct rbd_img_request *img_request, 1271 struct rbd_obj_request *obj_request) 1272 { 1273 rbd_assert(obj_request->img_request == NULL); 1274 1275 /* Image request now owns object's original reference */ 1276 obj_request->img_request = img_request; 1277 dout("%s: img %p obj %p\n", __func__, img_request, obj_request); 1278 } 1279 1280 static inline void rbd_img_obj_request_del(struct rbd_img_request *img_request, 1281 struct rbd_obj_request *obj_request) 1282 { 1283 dout("%s: img %p obj %p\n", __func__, img_request, obj_request); 1284 list_del(&obj_request->ex.oe_item); 1285 rbd_assert(obj_request->img_request == img_request); 1286 rbd_obj_request_put(obj_request); 1287 } 1288 1289 static void rbd_osd_submit(struct ceph_osd_request *osd_req) 1290 { 1291 struct rbd_obj_request *obj_req = osd_req->r_priv; 1292 1293 dout("%s osd_req %p for obj_req %p objno %llu %llu~%llu\n", 1294 __func__, osd_req, obj_req, obj_req->ex.oe_objno, 1295 obj_req->ex.oe_off, obj_req->ex.oe_len); 1296 ceph_osdc_start_request(osd_req->r_osdc, osd_req); 1297 } 1298 1299 /* 1300 * The default/initial value for all image request flags is 0. Each 1301 * is conditionally set to 1 at image request initialization time 1302 * and currently never change thereafter. 1303 */ 1304 static void img_request_layered_set(struct rbd_img_request *img_request) 1305 { 1306 set_bit(IMG_REQ_LAYERED, &img_request->flags); 1307 } 1308 1309 static bool img_request_layered_test(struct rbd_img_request *img_request) 1310 { 1311 return test_bit(IMG_REQ_LAYERED, &img_request->flags) != 0; 1312 } 1313 1314 static bool rbd_obj_is_entire(struct rbd_obj_request *obj_req) 1315 { 1316 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 1317 1318 return !obj_req->ex.oe_off && 1319 obj_req->ex.oe_len == rbd_dev->layout.object_size; 1320 } 1321 1322 static bool rbd_obj_is_tail(struct rbd_obj_request *obj_req) 1323 { 1324 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 1325 1326 return obj_req->ex.oe_off + obj_req->ex.oe_len == 1327 rbd_dev->layout.object_size; 1328 } 1329 1330 /* 1331 * Must be called after rbd_obj_calc_img_extents(). 1332 */ 1333 static void rbd_obj_set_copyup_enabled(struct rbd_obj_request *obj_req) 1334 { 1335 rbd_assert(obj_req->img_request->snapc); 1336 1337 if (obj_req->img_request->op_type == OBJ_OP_DISCARD) { 1338 dout("%s %p objno %llu discard\n", __func__, obj_req, 1339 obj_req->ex.oe_objno); 1340 return; 1341 } 1342 1343 if (!obj_req->num_img_extents) { 1344 dout("%s %p objno %llu not overlapping\n", __func__, obj_req, 1345 obj_req->ex.oe_objno); 1346 return; 1347 } 1348 1349 if (rbd_obj_is_entire(obj_req) && 1350 !obj_req->img_request->snapc->num_snaps) { 1351 dout("%s %p objno %llu entire\n", __func__, obj_req, 1352 obj_req->ex.oe_objno); 1353 return; 1354 } 1355 1356 obj_req->flags |= RBD_OBJ_FLAG_COPYUP_ENABLED; 1357 } 1358 1359 static u64 rbd_obj_img_extents_bytes(struct rbd_obj_request *obj_req) 1360 { 1361 return ceph_file_extents_bytes(obj_req->img_extents, 1362 obj_req->num_img_extents); 1363 } 1364 1365 static bool rbd_img_is_write(struct rbd_img_request *img_req) 1366 { 1367 switch (img_req->op_type) { 1368 case OBJ_OP_READ: 1369 return false; 1370 case OBJ_OP_WRITE: 1371 case OBJ_OP_DISCARD: 1372 case OBJ_OP_ZEROOUT: 1373 return true; 1374 default: 1375 BUG(); 1376 } 1377 } 1378 1379 static void rbd_osd_req_callback(struct ceph_osd_request *osd_req) 1380 { 1381 struct rbd_obj_request *obj_req = osd_req->r_priv; 1382 int result; 1383 1384 dout("%s osd_req %p result %d for obj_req %p\n", __func__, osd_req, 1385 osd_req->r_result, obj_req); 1386 1387 /* 1388 * Writes aren't allowed to return a data payload. In some 1389 * guarded write cases (e.g. stat + zero on an empty object) 1390 * a stat response makes it through, but we don't care. 1391 */ 1392 if (osd_req->r_result > 0 && rbd_img_is_write(obj_req->img_request)) 1393 result = 0; 1394 else 1395 result = osd_req->r_result; 1396 1397 rbd_obj_handle_request(obj_req, result); 1398 } 1399 1400 static void rbd_osd_format_read(struct ceph_osd_request *osd_req) 1401 { 1402 struct rbd_obj_request *obj_request = osd_req->r_priv; 1403 struct rbd_device *rbd_dev = obj_request->img_request->rbd_dev; 1404 struct ceph_options *opt = rbd_dev->rbd_client->client->options; 1405 1406 osd_req->r_flags = CEPH_OSD_FLAG_READ | opt->read_from_replica; 1407 osd_req->r_snapid = obj_request->img_request->snap_id; 1408 } 1409 1410 static void rbd_osd_format_write(struct ceph_osd_request *osd_req) 1411 { 1412 struct rbd_obj_request *obj_request = osd_req->r_priv; 1413 1414 osd_req->r_flags = CEPH_OSD_FLAG_WRITE; 1415 ktime_get_real_ts64(&osd_req->r_mtime); 1416 osd_req->r_data_offset = obj_request->ex.oe_off; 1417 } 1418 1419 static struct ceph_osd_request * 1420 __rbd_obj_add_osd_request(struct rbd_obj_request *obj_req, 1421 struct ceph_snap_context *snapc, int num_ops) 1422 { 1423 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 1424 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 1425 struct ceph_osd_request *req; 1426 const char *name_format = rbd_dev->image_format == 1 ? 1427 RBD_V1_DATA_FORMAT : RBD_V2_DATA_FORMAT; 1428 int ret; 1429 1430 req = ceph_osdc_alloc_request(osdc, snapc, num_ops, false, GFP_NOIO); 1431 if (!req) 1432 return ERR_PTR(-ENOMEM); 1433 1434 list_add_tail(&req->r_private_item, &obj_req->osd_reqs); 1435 req->r_callback = rbd_osd_req_callback; 1436 req->r_priv = obj_req; 1437 1438 /* 1439 * Data objects may be stored in a separate pool, but always in 1440 * the same namespace in that pool as the header in its pool. 1441 */ 1442 ceph_oloc_copy(&req->r_base_oloc, &rbd_dev->header_oloc); 1443 req->r_base_oloc.pool = rbd_dev->layout.pool_id; 1444 1445 ret = ceph_oid_aprintf(&req->r_base_oid, GFP_NOIO, name_format, 1446 rbd_dev->header.object_prefix, 1447 obj_req->ex.oe_objno); 1448 if (ret) 1449 return ERR_PTR(ret); 1450 1451 return req; 1452 } 1453 1454 static struct ceph_osd_request * 1455 rbd_obj_add_osd_request(struct rbd_obj_request *obj_req, int num_ops) 1456 { 1457 rbd_assert(obj_req->img_request->snapc); 1458 return __rbd_obj_add_osd_request(obj_req, obj_req->img_request->snapc, 1459 num_ops); 1460 } 1461 1462 static struct rbd_obj_request *rbd_obj_request_create(void) 1463 { 1464 struct rbd_obj_request *obj_request; 1465 1466 obj_request = kmem_cache_zalloc(rbd_obj_request_cache, GFP_NOIO); 1467 if (!obj_request) 1468 return NULL; 1469 1470 ceph_object_extent_init(&obj_request->ex); 1471 INIT_LIST_HEAD(&obj_request->osd_reqs); 1472 mutex_init(&obj_request->state_mutex); 1473 kref_init(&obj_request->kref); 1474 1475 dout("%s %p\n", __func__, obj_request); 1476 return obj_request; 1477 } 1478 1479 static void rbd_obj_request_destroy(struct kref *kref) 1480 { 1481 struct rbd_obj_request *obj_request; 1482 struct ceph_osd_request *osd_req; 1483 u32 i; 1484 1485 obj_request = container_of(kref, struct rbd_obj_request, kref); 1486 1487 dout("%s: obj %p\n", __func__, obj_request); 1488 1489 while (!list_empty(&obj_request->osd_reqs)) { 1490 osd_req = list_first_entry(&obj_request->osd_reqs, 1491 struct ceph_osd_request, r_private_item); 1492 list_del_init(&osd_req->r_private_item); 1493 ceph_osdc_put_request(osd_req); 1494 } 1495 1496 switch (obj_request->img_request->data_type) { 1497 case OBJ_REQUEST_NODATA: 1498 case OBJ_REQUEST_BIO: 1499 case OBJ_REQUEST_BVECS: 1500 break; /* Nothing to do */ 1501 case OBJ_REQUEST_OWN_BVECS: 1502 kfree(obj_request->bvec_pos.bvecs); 1503 break; 1504 default: 1505 BUG(); 1506 } 1507 1508 kfree(obj_request->img_extents); 1509 if (obj_request->copyup_bvecs) { 1510 for (i = 0; i < obj_request->copyup_bvec_count; i++) { 1511 if (obj_request->copyup_bvecs[i].bv_page) 1512 __free_page(obj_request->copyup_bvecs[i].bv_page); 1513 } 1514 kfree(obj_request->copyup_bvecs); 1515 } 1516 1517 kmem_cache_free(rbd_obj_request_cache, obj_request); 1518 } 1519 1520 /* It's OK to call this for a device with no parent */ 1521 1522 static void rbd_spec_put(struct rbd_spec *spec); 1523 static void rbd_dev_unparent(struct rbd_device *rbd_dev) 1524 { 1525 rbd_dev_remove_parent(rbd_dev); 1526 rbd_spec_put(rbd_dev->parent_spec); 1527 rbd_dev->parent_spec = NULL; 1528 rbd_dev->parent_overlap = 0; 1529 } 1530 1531 /* 1532 * Parent image reference counting is used to determine when an 1533 * image's parent fields can be safely torn down--after there are no 1534 * more in-flight requests to the parent image. When the last 1535 * reference is dropped, cleaning them up is safe. 1536 */ 1537 static void rbd_dev_parent_put(struct rbd_device *rbd_dev) 1538 { 1539 int counter; 1540 1541 if (!rbd_dev->parent_spec) 1542 return; 1543 1544 counter = atomic_dec_return_safe(&rbd_dev->parent_ref); 1545 if (counter > 0) 1546 return; 1547 1548 /* Last reference; clean up parent data structures */ 1549 1550 if (!counter) 1551 rbd_dev_unparent(rbd_dev); 1552 else 1553 rbd_warn(rbd_dev, "parent reference underflow"); 1554 } 1555 1556 /* 1557 * If an image has a non-zero parent overlap, get a reference to its 1558 * parent. 1559 * 1560 * Returns true if the rbd device has a parent with a non-zero 1561 * overlap and a reference for it was successfully taken, or 1562 * false otherwise. 1563 */ 1564 static bool rbd_dev_parent_get(struct rbd_device *rbd_dev) 1565 { 1566 int counter = 0; 1567 1568 if (!rbd_dev->parent_spec) 1569 return false; 1570 1571 if (rbd_dev->parent_overlap) 1572 counter = atomic_inc_return_safe(&rbd_dev->parent_ref); 1573 1574 if (counter < 0) 1575 rbd_warn(rbd_dev, "parent reference overflow"); 1576 1577 return counter > 0; 1578 } 1579 1580 static void rbd_img_request_init(struct rbd_img_request *img_request, 1581 struct rbd_device *rbd_dev, 1582 enum obj_operation_type op_type) 1583 { 1584 memset(img_request, 0, sizeof(*img_request)); 1585 1586 img_request->rbd_dev = rbd_dev; 1587 img_request->op_type = op_type; 1588 1589 INIT_LIST_HEAD(&img_request->lock_item); 1590 INIT_LIST_HEAD(&img_request->object_extents); 1591 mutex_init(&img_request->state_mutex); 1592 } 1593 1594 /* 1595 * Only snap_id is captured here, for reads. For writes, snapshot 1596 * context is captured in rbd_img_object_requests() after exclusive 1597 * lock is ensured to be held. 1598 */ 1599 static void rbd_img_capture_header(struct rbd_img_request *img_req) 1600 { 1601 struct rbd_device *rbd_dev = img_req->rbd_dev; 1602 1603 lockdep_assert_held(&rbd_dev->header_rwsem); 1604 1605 if (!rbd_img_is_write(img_req)) 1606 img_req->snap_id = rbd_dev->spec->snap_id; 1607 1608 if (rbd_dev_parent_get(rbd_dev)) 1609 img_request_layered_set(img_req); 1610 } 1611 1612 static void rbd_img_request_destroy(struct rbd_img_request *img_request) 1613 { 1614 struct rbd_obj_request *obj_request; 1615 struct rbd_obj_request *next_obj_request; 1616 1617 dout("%s: img %p\n", __func__, img_request); 1618 1619 WARN_ON(!list_empty(&img_request->lock_item)); 1620 for_each_obj_request_safe(img_request, obj_request, next_obj_request) 1621 rbd_img_obj_request_del(img_request, obj_request); 1622 1623 if (img_request_layered_test(img_request)) 1624 rbd_dev_parent_put(img_request->rbd_dev); 1625 1626 if (rbd_img_is_write(img_request)) 1627 ceph_put_snap_context(img_request->snapc); 1628 1629 if (test_bit(IMG_REQ_CHILD, &img_request->flags)) 1630 kmem_cache_free(rbd_img_request_cache, img_request); 1631 } 1632 1633 #define BITS_PER_OBJ 2 1634 #define OBJS_PER_BYTE (BITS_PER_BYTE / BITS_PER_OBJ) 1635 #define OBJ_MASK ((1 << BITS_PER_OBJ) - 1) 1636 1637 static void __rbd_object_map_index(struct rbd_device *rbd_dev, u64 objno, 1638 u64 *index, u8 *shift) 1639 { 1640 u32 off; 1641 1642 rbd_assert(objno < rbd_dev->object_map_size); 1643 *index = div_u64_rem(objno, OBJS_PER_BYTE, &off); 1644 *shift = (OBJS_PER_BYTE - off - 1) * BITS_PER_OBJ; 1645 } 1646 1647 static u8 __rbd_object_map_get(struct rbd_device *rbd_dev, u64 objno) 1648 { 1649 u64 index; 1650 u8 shift; 1651 1652 lockdep_assert_held(&rbd_dev->object_map_lock); 1653 __rbd_object_map_index(rbd_dev, objno, &index, &shift); 1654 return (rbd_dev->object_map[index] >> shift) & OBJ_MASK; 1655 } 1656 1657 static void __rbd_object_map_set(struct rbd_device *rbd_dev, u64 objno, u8 val) 1658 { 1659 u64 index; 1660 u8 shift; 1661 u8 *p; 1662 1663 lockdep_assert_held(&rbd_dev->object_map_lock); 1664 rbd_assert(!(val & ~OBJ_MASK)); 1665 1666 __rbd_object_map_index(rbd_dev, objno, &index, &shift); 1667 p = &rbd_dev->object_map[index]; 1668 *p = (*p & ~(OBJ_MASK << shift)) | (val << shift); 1669 } 1670 1671 static u8 rbd_object_map_get(struct rbd_device *rbd_dev, u64 objno) 1672 { 1673 u8 state; 1674 1675 spin_lock(&rbd_dev->object_map_lock); 1676 state = __rbd_object_map_get(rbd_dev, objno); 1677 spin_unlock(&rbd_dev->object_map_lock); 1678 return state; 1679 } 1680 1681 static bool use_object_map(struct rbd_device *rbd_dev) 1682 { 1683 /* 1684 * An image mapped read-only can't use the object map -- it isn't 1685 * loaded because the header lock isn't acquired. Someone else can 1686 * write to the image and update the object map behind our back. 1687 * 1688 * A snapshot can't be written to, so using the object map is always 1689 * safe. 1690 */ 1691 if (!rbd_is_snap(rbd_dev) && rbd_is_ro(rbd_dev)) 1692 return false; 1693 1694 return ((rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP) && 1695 !(rbd_dev->object_map_flags & RBD_FLAG_OBJECT_MAP_INVALID)); 1696 } 1697 1698 static bool rbd_object_map_may_exist(struct rbd_device *rbd_dev, u64 objno) 1699 { 1700 u8 state; 1701 1702 /* fall back to default logic if object map is disabled or invalid */ 1703 if (!use_object_map(rbd_dev)) 1704 return true; 1705 1706 state = rbd_object_map_get(rbd_dev, objno); 1707 return state != OBJECT_NONEXISTENT; 1708 } 1709 1710 static void rbd_object_map_name(struct rbd_device *rbd_dev, u64 snap_id, 1711 struct ceph_object_id *oid) 1712 { 1713 if (snap_id == CEPH_NOSNAP) 1714 ceph_oid_printf(oid, "%s%s", RBD_OBJECT_MAP_PREFIX, 1715 rbd_dev->spec->image_id); 1716 else 1717 ceph_oid_printf(oid, "%s%s.%016llx", RBD_OBJECT_MAP_PREFIX, 1718 rbd_dev->spec->image_id, snap_id); 1719 } 1720 1721 static int rbd_object_map_lock(struct rbd_device *rbd_dev) 1722 { 1723 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 1724 CEPH_DEFINE_OID_ONSTACK(oid); 1725 u8 lock_type; 1726 char *lock_tag; 1727 struct ceph_locker *lockers; 1728 u32 num_lockers; 1729 bool broke_lock = false; 1730 int ret; 1731 1732 rbd_object_map_name(rbd_dev, CEPH_NOSNAP, &oid); 1733 1734 again: 1735 ret = ceph_cls_lock(osdc, &oid, &rbd_dev->header_oloc, RBD_LOCK_NAME, 1736 CEPH_CLS_LOCK_EXCLUSIVE, "", "", "", 0); 1737 if (ret != -EBUSY || broke_lock) { 1738 if (ret == -EEXIST) 1739 ret = 0; /* already locked by myself */ 1740 if (ret) 1741 rbd_warn(rbd_dev, "failed to lock object map: %d", ret); 1742 return ret; 1743 } 1744 1745 ret = ceph_cls_lock_info(osdc, &oid, &rbd_dev->header_oloc, 1746 RBD_LOCK_NAME, &lock_type, &lock_tag, 1747 &lockers, &num_lockers); 1748 if (ret) { 1749 if (ret == -ENOENT) 1750 goto again; 1751 1752 rbd_warn(rbd_dev, "failed to get object map lockers: %d", ret); 1753 return ret; 1754 } 1755 1756 kfree(lock_tag); 1757 if (num_lockers == 0) 1758 goto again; 1759 1760 rbd_warn(rbd_dev, "breaking object map lock owned by %s%llu", 1761 ENTITY_NAME(lockers[0].id.name)); 1762 1763 ret = ceph_cls_break_lock(osdc, &oid, &rbd_dev->header_oloc, 1764 RBD_LOCK_NAME, lockers[0].id.cookie, 1765 &lockers[0].id.name); 1766 ceph_free_lockers(lockers, num_lockers); 1767 if (ret) { 1768 if (ret == -ENOENT) 1769 goto again; 1770 1771 rbd_warn(rbd_dev, "failed to break object map lock: %d", ret); 1772 return ret; 1773 } 1774 1775 broke_lock = true; 1776 goto again; 1777 } 1778 1779 static void rbd_object_map_unlock(struct rbd_device *rbd_dev) 1780 { 1781 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 1782 CEPH_DEFINE_OID_ONSTACK(oid); 1783 int ret; 1784 1785 rbd_object_map_name(rbd_dev, CEPH_NOSNAP, &oid); 1786 1787 ret = ceph_cls_unlock(osdc, &oid, &rbd_dev->header_oloc, RBD_LOCK_NAME, 1788 ""); 1789 if (ret && ret != -ENOENT) 1790 rbd_warn(rbd_dev, "failed to unlock object map: %d", ret); 1791 } 1792 1793 static int decode_object_map_header(void **p, void *end, u64 *object_map_size) 1794 { 1795 u8 struct_v; 1796 u32 struct_len; 1797 u32 header_len; 1798 void *header_end; 1799 int ret; 1800 1801 ceph_decode_32_safe(p, end, header_len, e_inval); 1802 header_end = *p + header_len; 1803 1804 ret = ceph_start_decoding(p, end, 1, "BitVector header", &struct_v, 1805 &struct_len); 1806 if (ret) 1807 return ret; 1808 1809 ceph_decode_64_safe(p, end, *object_map_size, e_inval); 1810 1811 *p = header_end; 1812 return 0; 1813 1814 e_inval: 1815 return -EINVAL; 1816 } 1817 1818 static int __rbd_object_map_load(struct rbd_device *rbd_dev) 1819 { 1820 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 1821 CEPH_DEFINE_OID_ONSTACK(oid); 1822 struct page **pages; 1823 void *p, *end; 1824 size_t reply_len; 1825 u64 num_objects; 1826 u64 object_map_bytes; 1827 u64 object_map_size; 1828 int num_pages; 1829 int ret; 1830 1831 rbd_assert(!rbd_dev->object_map && !rbd_dev->object_map_size); 1832 1833 num_objects = ceph_get_num_objects(&rbd_dev->layout, 1834 rbd_dev->mapping.size); 1835 object_map_bytes = DIV_ROUND_UP_ULL(num_objects * BITS_PER_OBJ, 1836 BITS_PER_BYTE); 1837 num_pages = calc_pages_for(0, object_map_bytes) + 1; 1838 pages = ceph_alloc_page_vector(num_pages, GFP_KERNEL); 1839 if (IS_ERR(pages)) 1840 return PTR_ERR(pages); 1841 1842 reply_len = num_pages * PAGE_SIZE; 1843 rbd_object_map_name(rbd_dev, rbd_dev->spec->snap_id, &oid); 1844 ret = ceph_osdc_call(osdc, &oid, &rbd_dev->header_oloc, 1845 "rbd", "object_map_load", CEPH_OSD_FLAG_READ, 1846 NULL, 0, pages, &reply_len); 1847 if (ret) 1848 goto out; 1849 1850 p = page_address(pages[0]); 1851 end = p + min(reply_len, (size_t)PAGE_SIZE); 1852 ret = decode_object_map_header(&p, end, &object_map_size); 1853 if (ret) 1854 goto out; 1855 1856 if (object_map_size != num_objects) { 1857 rbd_warn(rbd_dev, "object map size mismatch: %llu vs %llu", 1858 object_map_size, num_objects); 1859 ret = -EINVAL; 1860 goto out; 1861 } 1862 1863 if (offset_in_page(p) + object_map_bytes > reply_len) { 1864 ret = -EINVAL; 1865 goto out; 1866 } 1867 1868 rbd_dev->object_map = kvmalloc(object_map_bytes, GFP_KERNEL); 1869 if (!rbd_dev->object_map) { 1870 ret = -ENOMEM; 1871 goto out; 1872 } 1873 1874 rbd_dev->object_map_size = object_map_size; 1875 ceph_copy_from_page_vector(pages, rbd_dev->object_map, 1876 offset_in_page(p), object_map_bytes); 1877 1878 out: 1879 ceph_release_page_vector(pages, num_pages); 1880 return ret; 1881 } 1882 1883 static void rbd_object_map_free(struct rbd_device *rbd_dev) 1884 { 1885 kvfree(rbd_dev->object_map); 1886 rbd_dev->object_map = NULL; 1887 rbd_dev->object_map_size = 0; 1888 } 1889 1890 static int rbd_object_map_load(struct rbd_device *rbd_dev) 1891 { 1892 int ret; 1893 1894 ret = __rbd_object_map_load(rbd_dev); 1895 if (ret) 1896 return ret; 1897 1898 ret = rbd_dev_v2_get_flags(rbd_dev); 1899 if (ret) { 1900 rbd_object_map_free(rbd_dev); 1901 return ret; 1902 } 1903 1904 if (rbd_dev->object_map_flags & RBD_FLAG_OBJECT_MAP_INVALID) 1905 rbd_warn(rbd_dev, "object map is invalid"); 1906 1907 return 0; 1908 } 1909 1910 static int rbd_object_map_open(struct rbd_device *rbd_dev) 1911 { 1912 int ret; 1913 1914 ret = rbd_object_map_lock(rbd_dev); 1915 if (ret) 1916 return ret; 1917 1918 ret = rbd_object_map_load(rbd_dev); 1919 if (ret) { 1920 rbd_object_map_unlock(rbd_dev); 1921 return ret; 1922 } 1923 1924 return 0; 1925 } 1926 1927 static void rbd_object_map_close(struct rbd_device *rbd_dev) 1928 { 1929 rbd_object_map_free(rbd_dev); 1930 rbd_object_map_unlock(rbd_dev); 1931 } 1932 1933 /* 1934 * This function needs snap_id (or more precisely just something to 1935 * distinguish between HEAD and snapshot object maps), new_state and 1936 * current_state that were passed to rbd_object_map_update(). 1937 * 1938 * To avoid allocating and stashing a context we piggyback on the OSD 1939 * request. A HEAD update has two ops (assert_locked). For new_state 1940 * and current_state we decode our own object_map_update op, encoded in 1941 * rbd_cls_object_map_update(). 1942 */ 1943 static int rbd_object_map_update_finish(struct rbd_obj_request *obj_req, 1944 struct ceph_osd_request *osd_req) 1945 { 1946 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 1947 struct ceph_osd_data *osd_data; 1948 u64 objno; 1949 u8 state, new_state, current_state; 1950 bool has_current_state; 1951 void *p; 1952 1953 if (osd_req->r_result) 1954 return osd_req->r_result; 1955 1956 /* 1957 * Nothing to do for a snapshot object map. 1958 */ 1959 if (osd_req->r_num_ops == 1) 1960 return 0; 1961 1962 /* 1963 * Update in-memory HEAD object map. 1964 */ 1965 rbd_assert(osd_req->r_num_ops == 2); 1966 osd_data = osd_req_op_data(osd_req, 1, cls, request_data); 1967 rbd_assert(osd_data->type == CEPH_OSD_DATA_TYPE_PAGES); 1968 1969 p = page_address(osd_data->pages[0]); 1970 objno = ceph_decode_64(&p); 1971 rbd_assert(objno == obj_req->ex.oe_objno); 1972 rbd_assert(ceph_decode_64(&p) == objno + 1); 1973 new_state = ceph_decode_8(&p); 1974 has_current_state = ceph_decode_8(&p); 1975 if (has_current_state) 1976 current_state = ceph_decode_8(&p); 1977 1978 spin_lock(&rbd_dev->object_map_lock); 1979 state = __rbd_object_map_get(rbd_dev, objno); 1980 if (!has_current_state || current_state == state || 1981 (current_state == OBJECT_EXISTS && state == OBJECT_EXISTS_CLEAN)) 1982 __rbd_object_map_set(rbd_dev, objno, new_state); 1983 spin_unlock(&rbd_dev->object_map_lock); 1984 1985 return 0; 1986 } 1987 1988 static void rbd_object_map_callback(struct ceph_osd_request *osd_req) 1989 { 1990 struct rbd_obj_request *obj_req = osd_req->r_priv; 1991 int result; 1992 1993 dout("%s osd_req %p result %d for obj_req %p\n", __func__, osd_req, 1994 osd_req->r_result, obj_req); 1995 1996 result = rbd_object_map_update_finish(obj_req, osd_req); 1997 rbd_obj_handle_request(obj_req, result); 1998 } 1999 2000 static bool update_needed(struct rbd_device *rbd_dev, u64 objno, u8 new_state) 2001 { 2002 u8 state = rbd_object_map_get(rbd_dev, objno); 2003 2004 if (state == new_state || 2005 (new_state == OBJECT_PENDING && state == OBJECT_NONEXISTENT) || 2006 (new_state == OBJECT_NONEXISTENT && state != OBJECT_PENDING)) 2007 return false; 2008 2009 return true; 2010 } 2011 2012 static int rbd_cls_object_map_update(struct ceph_osd_request *req, 2013 int which, u64 objno, u8 new_state, 2014 const u8 *current_state) 2015 { 2016 struct page **pages; 2017 void *p, *start; 2018 int ret; 2019 2020 ret = osd_req_op_cls_init(req, which, "rbd", "object_map_update"); 2021 if (ret) 2022 return ret; 2023 2024 pages = ceph_alloc_page_vector(1, GFP_NOIO); 2025 if (IS_ERR(pages)) 2026 return PTR_ERR(pages); 2027 2028 p = start = page_address(pages[0]); 2029 ceph_encode_64(&p, objno); 2030 ceph_encode_64(&p, objno + 1); 2031 ceph_encode_8(&p, new_state); 2032 if (current_state) { 2033 ceph_encode_8(&p, 1); 2034 ceph_encode_8(&p, *current_state); 2035 } else { 2036 ceph_encode_8(&p, 0); 2037 } 2038 2039 osd_req_op_cls_request_data_pages(req, which, pages, p - start, 0, 2040 false, true); 2041 return 0; 2042 } 2043 2044 /* 2045 * Return: 2046 * 0 - object map update sent 2047 * 1 - object map update isn't needed 2048 * <0 - error 2049 */ 2050 static int rbd_object_map_update(struct rbd_obj_request *obj_req, u64 snap_id, 2051 u8 new_state, const u8 *current_state) 2052 { 2053 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2054 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 2055 struct ceph_osd_request *req; 2056 int num_ops = 1; 2057 int which = 0; 2058 int ret; 2059 2060 if (snap_id == CEPH_NOSNAP) { 2061 if (!update_needed(rbd_dev, obj_req->ex.oe_objno, new_state)) 2062 return 1; 2063 2064 num_ops++; /* assert_locked */ 2065 } 2066 2067 req = ceph_osdc_alloc_request(osdc, NULL, num_ops, false, GFP_NOIO); 2068 if (!req) 2069 return -ENOMEM; 2070 2071 list_add_tail(&req->r_private_item, &obj_req->osd_reqs); 2072 req->r_callback = rbd_object_map_callback; 2073 req->r_priv = obj_req; 2074 2075 rbd_object_map_name(rbd_dev, snap_id, &req->r_base_oid); 2076 ceph_oloc_copy(&req->r_base_oloc, &rbd_dev->header_oloc); 2077 req->r_flags = CEPH_OSD_FLAG_WRITE; 2078 ktime_get_real_ts64(&req->r_mtime); 2079 2080 if (snap_id == CEPH_NOSNAP) { 2081 /* 2082 * Protect against possible race conditions during lock 2083 * ownership transitions. 2084 */ 2085 ret = ceph_cls_assert_locked(req, which++, RBD_LOCK_NAME, 2086 CEPH_CLS_LOCK_EXCLUSIVE, "", ""); 2087 if (ret) 2088 return ret; 2089 } 2090 2091 ret = rbd_cls_object_map_update(req, which, obj_req->ex.oe_objno, 2092 new_state, current_state); 2093 if (ret) 2094 return ret; 2095 2096 ret = ceph_osdc_alloc_messages(req, GFP_NOIO); 2097 if (ret) 2098 return ret; 2099 2100 ceph_osdc_start_request(osdc, req); 2101 return 0; 2102 } 2103 2104 static void prune_extents(struct ceph_file_extent *img_extents, 2105 u32 *num_img_extents, u64 overlap) 2106 { 2107 u32 cnt = *num_img_extents; 2108 2109 /* drop extents completely beyond the overlap */ 2110 while (cnt && img_extents[cnt - 1].fe_off >= overlap) 2111 cnt--; 2112 2113 if (cnt) { 2114 struct ceph_file_extent *ex = &img_extents[cnt - 1]; 2115 2116 /* trim final overlapping extent */ 2117 if (ex->fe_off + ex->fe_len > overlap) 2118 ex->fe_len = overlap - ex->fe_off; 2119 } 2120 2121 *num_img_extents = cnt; 2122 } 2123 2124 /* 2125 * Determine the byte range(s) covered by either just the object extent 2126 * or the entire object in the parent image. 2127 */ 2128 static int rbd_obj_calc_img_extents(struct rbd_obj_request *obj_req, 2129 bool entire) 2130 { 2131 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2132 int ret; 2133 2134 if (!rbd_dev->parent_overlap) 2135 return 0; 2136 2137 ret = ceph_extent_to_file(&rbd_dev->layout, obj_req->ex.oe_objno, 2138 entire ? 0 : obj_req->ex.oe_off, 2139 entire ? rbd_dev->layout.object_size : 2140 obj_req->ex.oe_len, 2141 &obj_req->img_extents, 2142 &obj_req->num_img_extents); 2143 if (ret) 2144 return ret; 2145 2146 prune_extents(obj_req->img_extents, &obj_req->num_img_extents, 2147 rbd_dev->parent_overlap); 2148 return 0; 2149 } 2150 2151 static void rbd_osd_setup_data(struct ceph_osd_request *osd_req, int which) 2152 { 2153 struct rbd_obj_request *obj_req = osd_req->r_priv; 2154 2155 switch (obj_req->img_request->data_type) { 2156 case OBJ_REQUEST_BIO: 2157 osd_req_op_extent_osd_data_bio(osd_req, which, 2158 &obj_req->bio_pos, 2159 obj_req->ex.oe_len); 2160 break; 2161 case OBJ_REQUEST_BVECS: 2162 case OBJ_REQUEST_OWN_BVECS: 2163 rbd_assert(obj_req->bvec_pos.iter.bi_size == 2164 obj_req->ex.oe_len); 2165 rbd_assert(obj_req->bvec_idx == obj_req->bvec_count); 2166 osd_req_op_extent_osd_data_bvec_pos(osd_req, which, 2167 &obj_req->bvec_pos); 2168 break; 2169 default: 2170 BUG(); 2171 } 2172 } 2173 2174 static int rbd_osd_setup_stat(struct ceph_osd_request *osd_req, int which) 2175 { 2176 struct page **pages; 2177 2178 /* 2179 * The response data for a STAT call consists of: 2180 * le64 length; 2181 * struct { 2182 * le32 tv_sec; 2183 * le32 tv_nsec; 2184 * } mtime; 2185 */ 2186 pages = ceph_alloc_page_vector(1, GFP_NOIO); 2187 if (IS_ERR(pages)) 2188 return PTR_ERR(pages); 2189 2190 osd_req_op_init(osd_req, which, CEPH_OSD_OP_STAT, 0); 2191 osd_req_op_raw_data_in_pages(osd_req, which, pages, 2192 8 + sizeof(struct ceph_timespec), 2193 0, false, true); 2194 return 0; 2195 } 2196 2197 static int rbd_osd_setup_copyup(struct ceph_osd_request *osd_req, int which, 2198 u32 bytes) 2199 { 2200 struct rbd_obj_request *obj_req = osd_req->r_priv; 2201 int ret; 2202 2203 ret = osd_req_op_cls_init(osd_req, which, "rbd", "copyup"); 2204 if (ret) 2205 return ret; 2206 2207 osd_req_op_cls_request_data_bvecs(osd_req, which, obj_req->copyup_bvecs, 2208 obj_req->copyup_bvec_count, bytes); 2209 return 0; 2210 } 2211 2212 static int rbd_obj_init_read(struct rbd_obj_request *obj_req) 2213 { 2214 obj_req->read_state = RBD_OBJ_READ_START; 2215 return 0; 2216 } 2217 2218 static void __rbd_osd_setup_write_ops(struct ceph_osd_request *osd_req, 2219 int which) 2220 { 2221 struct rbd_obj_request *obj_req = osd_req->r_priv; 2222 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2223 u16 opcode; 2224 2225 if (!use_object_map(rbd_dev) || 2226 !(obj_req->flags & RBD_OBJ_FLAG_MAY_EXIST)) { 2227 osd_req_op_alloc_hint_init(osd_req, which++, 2228 rbd_dev->layout.object_size, 2229 rbd_dev->layout.object_size, 2230 rbd_dev->opts->alloc_hint_flags); 2231 } 2232 2233 if (rbd_obj_is_entire(obj_req)) 2234 opcode = CEPH_OSD_OP_WRITEFULL; 2235 else 2236 opcode = CEPH_OSD_OP_WRITE; 2237 2238 osd_req_op_extent_init(osd_req, which, opcode, 2239 obj_req->ex.oe_off, obj_req->ex.oe_len, 0, 0); 2240 rbd_osd_setup_data(osd_req, which); 2241 } 2242 2243 static int rbd_obj_init_write(struct rbd_obj_request *obj_req) 2244 { 2245 int ret; 2246 2247 /* reverse map the entire object onto the parent */ 2248 ret = rbd_obj_calc_img_extents(obj_req, true); 2249 if (ret) 2250 return ret; 2251 2252 obj_req->write_state = RBD_OBJ_WRITE_START; 2253 return 0; 2254 } 2255 2256 static u16 truncate_or_zero_opcode(struct rbd_obj_request *obj_req) 2257 { 2258 return rbd_obj_is_tail(obj_req) ? CEPH_OSD_OP_TRUNCATE : 2259 CEPH_OSD_OP_ZERO; 2260 } 2261 2262 static void __rbd_osd_setup_discard_ops(struct ceph_osd_request *osd_req, 2263 int which) 2264 { 2265 struct rbd_obj_request *obj_req = osd_req->r_priv; 2266 2267 if (rbd_obj_is_entire(obj_req) && !obj_req->num_img_extents) { 2268 rbd_assert(obj_req->flags & RBD_OBJ_FLAG_DELETION); 2269 osd_req_op_init(osd_req, which, CEPH_OSD_OP_DELETE, 0); 2270 } else { 2271 osd_req_op_extent_init(osd_req, which, 2272 truncate_or_zero_opcode(obj_req), 2273 obj_req->ex.oe_off, obj_req->ex.oe_len, 2274 0, 0); 2275 } 2276 } 2277 2278 static int rbd_obj_init_discard(struct rbd_obj_request *obj_req) 2279 { 2280 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2281 u64 off, next_off; 2282 int ret; 2283 2284 /* 2285 * Align the range to alloc_size boundary and punt on discards 2286 * that are too small to free up any space. 2287 * 2288 * alloc_size == object_size && is_tail() is a special case for 2289 * filestore with filestore_punch_hole = false, needed to allow 2290 * truncate (in addition to delete). 2291 */ 2292 if (rbd_dev->opts->alloc_size != rbd_dev->layout.object_size || 2293 !rbd_obj_is_tail(obj_req)) { 2294 off = round_up(obj_req->ex.oe_off, rbd_dev->opts->alloc_size); 2295 next_off = round_down(obj_req->ex.oe_off + obj_req->ex.oe_len, 2296 rbd_dev->opts->alloc_size); 2297 if (off >= next_off) 2298 return 1; 2299 2300 dout("%s %p %llu~%llu -> %llu~%llu\n", __func__, 2301 obj_req, obj_req->ex.oe_off, obj_req->ex.oe_len, 2302 off, next_off - off); 2303 obj_req->ex.oe_off = off; 2304 obj_req->ex.oe_len = next_off - off; 2305 } 2306 2307 /* reverse map the entire object onto the parent */ 2308 ret = rbd_obj_calc_img_extents(obj_req, true); 2309 if (ret) 2310 return ret; 2311 2312 obj_req->flags |= RBD_OBJ_FLAG_NOOP_FOR_NONEXISTENT; 2313 if (rbd_obj_is_entire(obj_req) && !obj_req->num_img_extents) 2314 obj_req->flags |= RBD_OBJ_FLAG_DELETION; 2315 2316 obj_req->write_state = RBD_OBJ_WRITE_START; 2317 return 0; 2318 } 2319 2320 static void __rbd_osd_setup_zeroout_ops(struct ceph_osd_request *osd_req, 2321 int which) 2322 { 2323 struct rbd_obj_request *obj_req = osd_req->r_priv; 2324 u16 opcode; 2325 2326 if (rbd_obj_is_entire(obj_req)) { 2327 if (obj_req->num_img_extents) { 2328 if (!(obj_req->flags & RBD_OBJ_FLAG_COPYUP_ENABLED)) 2329 osd_req_op_init(osd_req, which++, 2330 CEPH_OSD_OP_CREATE, 0); 2331 opcode = CEPH_OSD_OP_TRUNCATE; 2332 } else { 2333 rbd_assert(obj_req->flags & RBD_OBJ_FLAG_DELETION); 2334 osd_req_op_init(osd_req, which++, 2335 CEPH_OSD_OP_DELETE, 0); 2336 opcode = 0; 2337 } 2338 } else { 2339 opcode = truncate_or_zero_opcode(obj_req); 2340 } 2341 2342 if (opcode) 2343 osd_req_op_extent_init(osd_req, which, opcode, 2344 obj_req->ex.oe_off, obj_req->ex.oe_len, 2345 0, 0); 2346 } 2347 2348 static int rbd_obj_init_zeroout(struct rbd_obj_request *obj_req) 2349 { 2350 int ret; 2351 2352 /* reverse map the entire object onto the parent */ 2353 ret = rbd_obj_calc_img_extents(obj_req, true); 2354 if (ret) 2355 return ret; 2356 2357 if (!obj_req->num_img_extents) { 2358 obj_req->flags |= RBD_OBJ_FLAG_NOOP_FOR_NONEXISTENT; 2359 if (rbd_obj_is_entire(obj_req)) 2360 obj_req->flags |= RBD_OBJ_FLAG_DELETION; 2361 } 2362 2363 obj_req->write_state = RBD_OBJ_WRITE_START; 2364 return 0; 2365 } 2366 2367 static int count_write_ops(struct rbd_obj_request *obj_req) 2368 { 2369 struct rbd_img_request *img_req = obj_req->img_request; 2370 2371 switch (img_req->op_type) { 2372 case OBJ_OP_WRITE: 2373 if (!use_object_map(img_req->rbd_dev) || 2374 !(obj_req->flags & RBD_OBJ_FLAG_MAY_EXIST)) 2375 return 2; /* setallochint + write/writefull */ 2376 2377 return 1; /* write/writefull */ 2378 case OBJ_OP_DISCARD: 2379 return 1; /* delete/truncate/zero */ 2380 case OBJ_OP_ZEROOUT: 2381 if (rbd_obj_is_entire(obj_req) && obj_req->num_img_extents && 2382 !(obj_req->flags & RBD_OBJ_FLAG_COPYUP_ENABLED)) 2383 return 2; /* create + truncate */ 2384 2385 return 1; /* delete/truncate/zero */ 2386 default: 2387 BUG(); 2388 } 2389 } 2390 2391 static void rbd_osd_setup_write_ops(struct ceph_osd_request *osd_req, 2392 int which) 2393 { 2394 struct rbd_obj_request *obj_req = osd_req->r_priv; 2395 2396 switch (obj_req->img_request->op_type) { 2397 case OBJ_OP_WRITE: 2398 __rbd_osd_setup_write_ops(osd_req, which); 2399 break; 2400 case OBJ_OP_DISCARD: 2401 __rbd_osd_setup_discard_ops(osd_req, which); 2402 break; 2403 case OBJ_OP_ZEROOUT: 2404 __rbd_osd_setup_zeroout_ops(osd_req, which); 2405 break; 2406 default: 2407 BUG(); 2408 } 2409 } 2410 2411 /* 2412 * Prune the list of object requests (adjust offset and/or length, drop 2413 * redundant requests). Prepare object request state machines and image 2414 * request state machine for execution. 2415 */ 2416 static int __rbd_img_fill_request(struct rbd_img_request *img_req) 2417 { 2418 struct rbd_obj_request *obj_req, *next_obj_req; 2419 int ret; 2420 2421 for_each_obj_request_safe(img_req, obj_req, next_obj_req) { 2422 switch (img_req->op_type) { 2423 case OBJ_OP_READ: 2424 ret = rbd_obj_init_read(obj_req); 2425 break; 2426 case OBJ_OP_WRITE: 2427 ret = rbd_obj_init_write(obj_req); 2428 break; 2429 case OBJ_OP_DISCARD: 2430 ret = rbd_obj_init_discard(obj_req); 2431 break; 2432 case OBJ_OP_ZEROOUT: 2433 ret = rbd_obj_init_zeroout(obj_req); 2434 break; 2435 default: 2436 BUG(); 2437 } 2438 if (ret < 0) 2439 return ret; 2440 if (ret > 0) { 2441 rbd_img_obj_request_del(img_req, obj_req); 2442 continue; 2443 } 2444 } 2445 2446 img_req->state = RBD_IMG_START; 2447 return 0; 2448 } 2449 2450 union rbd_img_fill_iter { 2451 struct ceph_bio_iter bio_iter; 2452 struct ceph_bvec_iter bvec_iter; 2453 }; 2454 2455 struct rbd_img_fill_ctx { 2456 enum obj_request_type pos_type; 2457 union rbd_img_fill_iter *pos; 2458 union rbd_img_fill_iter iter; 2459 ceph_object_extent_fn_t set_pos_fn; 2460 ceph_object_extent_fn_t count_fn; 2461 ceph_object_extent_fn_t copy_fn; 2462 }; 2463 2464 static struct ceph_object_extent *alloc_object_extent(void *arg) 2465 { 2466 struct rbd_img_request *img_req = arg; 2467 struct rbd_obj_request *obj_req; 2468 2469 obj_req = rbd_obj_request_create(); 2470 if (!obj_req) 2471 return NULL; 2472 2473 rbd_img_obj_request_add(img_req, obj_req); 2474 return &obj_req->ex; 2475 } 2476 2477 /* 2478 * While su != os && sc == 1 is technically not fancy (it's the same 2479 * layout as su == os && sc == 1), we can't use the nocopy path for it 2480 * because ->set_pos_fn() should be called only once per object. 2481 * ceph_file_to_extents() invokes action_fn once per stripe unit, so 2482 * treat su != os && sc == 1 as fancy. 2483 */ 2484 static bool rbd_layout_is_fancy(struct ceph_file_layout *l) 2485 { 2486 return l->stripe_unit != l->object_size; 2487 } 2488 2489 static int rbd_img_fill_request_nocopy(struct rbd_img_request *img_req, 2490 struct ceph_file_extent *img_extents, 2491 u32 num_img_extents, 2492 struct rbd_img_fill_ctx *fctx) 2493 { 2494 u32 i; 2495 int ret; 2496 2497 img_req->data_type = fctx->pos_type; 2498 2499 /* 2500 * Create object requests and set each object request's starting 2501 * position in the provided bio (list) or bio_vec array. 2502 */ 2503 fctx->iter = *fctx->pos; 2504 for (i = 0; i < num_img_extents; i++) { 2505 ret = ceph_file_to_extents(&img_req->rbd_dev->layout, 2506 img_extents[i].fe_off, 2507 img_extents[i].fe_len, 2508 &img_req->object_extents, 2509 alloc_object_extent, img_req, 2510 fctx->set_pos_fn, &fctx->iter); 2511 if (ret) 2512 return ret; 2513 } 2514 2515 return __rbd_img_fill_request(img_req); 2516 } 2517 2518 /* 2519 * Map a list of image extents to a list of object extents, create the 2520 * corresponding object requests (normally each to a different object, 2521 * but not always) and add them to @img_req. For each object request, 2522 * set up its data descriptor to point to the corresponding chunk(s) of 2523 * @fctx->pos data buffer. 2524 * 2525 * Because ceph_file_to_extents() will merge adjacent object extents 2526 * together, each object request's data descriptor may point to multiple 2527 * different chunks of @fctx->pos data buffer. 2528 * 2529 * @fctx->pos data buffer is assumed to be large enough. 2530 */ 2531 static int rbd_img_fill_request(struct rbd_img_request *img_req, 2532 struct ceph_file_extent *img_extents, 2533 u32 num_img_extents, 2534 struct rbd_img_fill_ctx *fctx) 2535 { 2536 struct rbd_device *rbd_dev = img_req->rbd_dev; 2537 struct rbd_obj_request *obj_req; 2538 u32 i; 2539 int ret; 2540 2541 if (fctx->pos_type == OBJ_REQUEST_NODATA || 2542 !rbd_layout_is_fancy(&rbd_dev->layout)) 2543 return rbd_img_fill_request_nocopy(img_req, img_extents, 2544 num_img_extents, fctx); 2545 2546 img_req->data_type = OBJ_REQUEST_OWN_BVECS; 2547 2548 /* 2549 * Create object requests and determine ->bvec_count for each object 2550 * request. Note that ->bvec_count sum over all object requests may 2551 * be greater than the number of bio_vecs in the provided bio (list) 2552 * or bio_vec array because when mapped, those bio_vecs can straddle 2553 * stripe unit boundaries. 2554 */ 2555 fctx->iter = *fctx->pos; 2556 for (i = 0; i < num_img_extents; i++) { 2557 ret = ceph_file_to_extents(&rbd_dev->layout, 2558 img_extents[i].fe_off, 2559 img_extents[i].fe_len, 2560 &img_req->object_extents, 2561 alloc_object_extent, img_req, 2562 fctx->count_fn, &fctx->iter); 2563 if (ret) 2564 return ret; 2565 } 2566 2567 for_each_obj_request(img_req, obj_req) { 2568 obj_req->bvec_pos.bvecs = kmalloc_objs(*obj_req->bvec_pos.bvecs, 2569 obj_req->bvec_count, 2570 GFP_NOIO); 2571 if (!obj_req->bvec_pos.bvecs) 2572 return -ENOMEM; 2573 } 2574 2575 /* 2576 * Fill in each object request's private bio_vec array, splitting and 2577 * rearranging the provided bio_vecs in stripe unit chunks as needed. 2578 */ 2579 fctx->iter = *fctx->pos; 2580 for (i = 0; i < num_img_extents; i++) { 2581 ret = ceph_iterate_extents(&rbd_dev->layout, 2582 img_extents[i].fe_off, 2583 img_extents[i].fe_len, 2584 &img_req->object_extents, 2585 fctx->copy_fn, &fctx->iter); 2586 if (ret) 2587 return ret; 2588 } 2589 2590 return __rbd_img_fill_request(img_req); 2591 } 2592 2593 static int rbd_img_fill_nodata(struct rbd_img_request *img_req, 2594 u64 off, u64 len) 2595 { 2596 struct ceph_file_extent ex = { off, len }; 2597 union rbd_img_fill_iter dummy = {}; 2598 struct rbd_img_fill_ctx fctx = { 2599 .pos_type = OBJ_REQUEST_NODATA, 2600 .pos = &dummy, 2601 }; 2602 2603 return rbd_img_fill_request(img_req, &ex, 1, &fctx); 2604 } 2605 2606 static void set_bio_pos(struct ceph_object_extent *ex, u32 bytes, void *arg) 2607 { 2608 struct rbd_obj_request *obj_req = 2609 container_of(ex, struct rbd_obj_request, ex); 2610 struct ceph_bio_iter *it = arg; 2611 2612 dout("%s objno %llu bytes %u\n", __func__, ex->oe_objno, bytes); 2613 obj_req->bio_pos = *it; 2614 ceph_bio_iter_advance(it, bytes); 2615 } 2616 2617 static void count_bio_bvecs(struct ceph_object_extent *ex, u32 bytes, void *arg) 2618 { 2619 struct rbd_obj_request *obj_req = 2620 container_of(ex, struct rbd_obj_request, ex); 2621 struct ceph_bio_iter *it = arg; 2622 2623 dout("%s objno %llu bytes %u\n", __func__, ex->oe_objno, bytes); 2624 ceph_bio_iter_advance_step(it, bytes, ({ 2625 obj_req->bvec_count++; 2626 })); 2627 2628 } 2629 2630 static void copy_bio_bvecs(struct ceph_object_extent *ex, u32 bytes, void *arg) 2631 { 2632 struct rbd_obj_request *obj_req = 2633 container_of(ex, struct rbd_obj_request, ex); 2634 struct ceph_bio_iter *it = arg; 2635 2636 dout("%s objno %llu bytes %u\n", __func__, ex->oe_objno, bytes); 2637 ceph_bio_iter_advance_step(it, bytes, ({ 2638 obj_req->bvec_pos.bvecs[obj_req->bvec_idx++] = bv; 2639 obj_req->bvec_pos.iter.bi_size += bv.bv_len; 2640 })); 2641 } 2642 2643 static int __rbd_img_fill_from_bio(struct rbd_img_request *img_req, 2644 struct ceph_file_extent *img_extents, 2645 u32 num_img_extents, 2646 struct ceph_bio_iter *bio_pos) 2647 { 2648 struct rbd_img_fill_ctx fctx = { 2649 .pos_type = OBJ_REQUEST_BIO, 2650 .pos = (union rbd_img_fill_iter *)bio_pos, 2651 .set_pos_fn = set_bio_pos, 2652 .count_fn = count_bio_bvecs, 2653 .copy_fn = copy_bio_bvecs, 2654 }; 2655 2656 return rbd_img_fill_request(img_req, img_extents, num_img_extents, 2657 &fctx); 2658 } 2659 2660 static int rbd_img_fill_from_bio(struct rbd_img_request *img_req, 2661 u64 off, u64 len, struct bio *bio) 2662 { 2663 struct ceph_file_extent ex = { off, len }; 2664 struct ceph_bio_iter it = { .bio = bio, .iter = bio->bi_iter }; 2665 2666 return __rbd_img_fill_from_bio(img_req, &ex, 1, &it); 2667 } 2668 2669 static void set_bvec_pos(struct ceph_object_extent *ex, u32 bytes, void *arg) 2670 { 2671 struct rbd_obj_request *obj_req = 2672 container_of(ex, struct rbd_obj_request, ex); 2673 struct ceph_bvec_iter *it = arg; 2674 2675 obj_req->bvec_pos = *it; 2676 ceph_bvec_iter_shorten(&obj_req->bvec_pos, bytes); 2677 ceph_bvec_iter_advance(it, bytes); 2678 } 2679 2680 static void count_bvecs(struct ceph_object_extent *ex, u32 bytes, void *arg) 2681 { 2682 struct rbd_obj_request *obj_req = 2683 container_of(ex, struct rbd_obj_request, ex); 2684 struct ceph_bvec_iter *it = arg; 2685 2686 ceph_bvec_iter_advance_step(it, bytes, ({ 2687 obj_req->bvec_count++; 2688 })); 2689 } 2690 2691 static void copy_bvecs(struct ceph_object_extent *ex, u32 bytes, void *arg) 2692 { 2693 struct rbd_obj_request *obj_req = 2694 container_of(ex, struct rbd_obj_request, ex); 2695 struct ceph_bvec_iter *it = arg; 2696 2697 ceph_bvec_iter_advance_step(it, bytes, ({ 2698 obj_req->bvec_pos.bvecs[obj_req->bvec_idx++] = bv; 2699 obj_req->bvec_pos.iter.bi_size += bv.bv_len; 2700 })); 2701 } 2702 2703 static int __rbd_img_fill_from_bvecs(struct rbd_img_request *img_req, 2704 struct ceph_file_extent *img_extents, 2705 u32 num_img_extents, 2706 struct ceph_bvec_iter *bvec_pos) 2707 { 2708 struct rbd_img_fill_ctx fctx = { 2709 .pos_type = OBJ_REQUEST_BVECS, 2710 .pos = (union rbd_img_fill_iter *)bvec_pos, 2711 .set_pos_fn = set_bvec_pos, 2712 .count_fn = count_bvecs, 2713 .copy_fn = copy_bvecs, 2714 }; 2715 2716 return rbd_img_fill_request(img_req, img_extents, num_img_extents, 2717 &fctx); 2718 } 2719 2720 static int rbd_img_fill_from_bvecs(struct rbd_img_request *img_req, 2721 struct ceph_file_extent *img_extents, 2722 u32 num_img_extents, 2723 struct bio_vec *bvecs) 2724 { 2725 struct ceph_bvec_iter it = { 2726 .bvecs = bvecs, 2727 .iter = { .bi_size = ceph_file_extents_bytes(img_extents, 2728 num_img_extents) }, 2729 }; 2730 2731 return __rbd_img_fill_from_bvecs(img_req, img_extents, num_img_extents, 2732 &it); 2733 } 2734 2735 static void rbd_img_handle_request_work(struct work_struct *work) 2736 { 2737 struct rbd_img_request *img_req = 2738 container_of(work, struct rbd_img_request, work); 2739 2740 rbd_img_handle_request(img_req, img_req->work_result); 2741 } 2742 2743 static void rbd_img_schedule(struct rbd_img_request *img_req, int result) 2744 { 2745 INIT_WORK(&img_req->work, rbd_img_handle_request_work); 2746 img_req->work_result = result; 2747 queue_work(rbd_wq, &img_req->work); 2748 } 2749 2750 static bool rbd_obj_may_exist(struct rbd_obj_request *obj_req) 2751 { 2752 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2753 2754 if (rbd_object_map_may_exist(rbd_dev, obj_req->ex.oe_objno)) { 2755 obj_req->flags |= RBD_OBJ_FLAG_MAY_EXIST; 2756 return true; 2757 } 2758 2759 dout("%s %p objno %llu assuming dne\n", __func__, obj_req, 2760 obj_req->ex.oe_objno); 2761 return false; 2762 } 2763 2764 static int rbd_obj_read_object(struct rbd_obj_request *obj_req) 2765 { 2766 struct ceph_osd_request *osd_req; 2767 int ret; 2768 2769 osd_req = __rbd_obj_add_osd_request(obj_req, NULL, 1); 2770 if (IS_ERR(osd_req)) 2771 return PTR_ERR(osd_req); 2772 2773 osd_req_op_extent_init(osd_req, 0, CEPH_OSD_OP_READ, 2774 obj_req->ex.oe_off, obj_req->ex.oe_len, 0, 0); 2775 rbd_osd_setup_data(osd_req, 0); 2776 rbd_osd_format_read(osd_req); 2777 2778 ret = ceph_osdc_alloc_messages(osd_req, GFP_NOIO); 2779 if (ret) 2780 return ret; 2781 2782 rbd_osd_submit(osd_req); 2783 return 0; 2784 } 2785 2786 static int rbd_obj_read_from_parent(struct rbd_obj_request *obj_req) 2787 { 2788 struct rbd_img_request *img_req = obj_req->img_request; 2789 struct rbd_device *parent = img_req->rbd_dev->parent; 2790 struct rbd_img_request *child_img_req; 2791 int ret; 2792 2793 child_img_req = kmem_cache_alloc(rbd_img_request_cache, GFP_NOIO); 2794 if (!child_img_req) 2795 return -ENOMEM; 2796 2797 rbd_img_request_init(child_img_req, parent, OBJ_OP_READ); 2798 __set_bit(IMG_REQ_CHILD, &child_img_req->flags); 2799 child_img_req->obj_request = obj_req; 2800 2801 down_read(&parent->header_rwsem); 2802 rbd_img_capture_header(child_img_req); 2803 up_read(&parent->header_rwsem); 2804 2805 dout("%s child_img_req %p for obj_req %p\n", __func__, child_img_req, 2806 obj_req); 2807 2808 if (!rbd_img_is_write(img_req)) { 2809 switch (img_req->data_type) { 2810 case OBJ_REQUEST_BIO: 2811 ret = __rbd_img_fill_from_bio(child_img_req, 2812 obj_req->img_extents, 2813 obj_req->num_img_extents, 2814 &obj_req->bio_pos); 2815 break; 2816 case OBJ_REQUEST_BVECS: 2817 case OBJ_REQUEST_OWN_BVECS: 2818 ret = __rbd_img_fill_from_bvecs(child_img_req, 2819 obj_req->img_extents, 2820 obj_req->num_img_extents, 2821 &obj_req->bvec_pos); 2822 break; 2823 default: 2824 BUG(); 2825 } 2826 } else { 2827 ret = rbd_img_fill_from_bvecs(child_img_req, 2828 obj_req->img_extents, 2829 obj_req->num_img_extents, 2830 obj_req->copyup_bvecs); 2831 } 2832 if (ret) { 2833 rbd_img_request_destroy(child_img_req); 2834 return ret; 2835 } 2836 2837 /* avoid parent chain recursion */ 2838 rbd_img_schedule(child_img_req, 0); 2839 return 0; 2840 } 2841 2842 static bool rbd_obj_advance_read(struct rbd_obj_request *obj_req, int *result) 2843 { 2844 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2845 int ret; 2846 2847 again: 2848 switch (obj_req->read_state) { 2849 case RBD_OBJ_READ_START: 2850 rbd_assert(!*result); 2851 2852 if (!rbd_obj_may_exist(obj_req)) { 2853 *result = -ENOENT; 2854 obj_req->read_state = RBD_OBJ_READ_OBJECT; 2855 goto again; 2856 } 2857 2858 ret = rbd_obj_read_object(obj_req); 2859 if (ret) { 2860 *result = ret; 2861 return true; 2862 } 2863 obj_req->read_state = RBD_OBJ_READ_OBJECT; 2864 return false; 2865 case RBD_OBJ_READ_OBJECT: 2866 if (*result == -ENOENT && rbd_dev->parent_overlap) { 2867 /* reverse map this object extent onto the parent */ 2868 ret = rbd_obj_calc_img_extents(obj_req, false); 2869 if (ret) { 2870 *result = ret; 2871 return true; 2872 } 2873 if (obj_req->num_img_extents) { 2874 ret = rbd_obj_read_from_parent(obj_req); 2875 if (ret) { 2876 *result = ret; 2877 return true; 2878 } 2879 obj_req->read_state = RBD_OBJ_READ_PARENT; 2880 return false; 2881 } 2882 } 2883 2884 /* 2885 * -ENOENT means a hole in the image -- zero-fill the entire 2886 * length of the request. A short read also implies zero-fill 2887 * to the end of the request. 2888 */ 2889 if (*result == -ENOENT) { 2890 rbd_obj_zero_range(obj_req, 0, obj_req->ex.oe_len); 2891 *result = 0; 2892 } else if (*result >= 0) { 2893 if (*result < obj_req->ex.oe_len) 2894 rbd_obj_zero_range(obj_req, *result, 2895 obj_req->ex.oe_len - *result); 2896 else 2897 rbd_assert(*result == obj_req->ex.oe_len); 2898 *result = 0; 2899 } 2900 return true; 2901 case RBD_OBJ_READ_PARENT: 2902 /* 2903 * The parent image is read only up to the overlap -- zero-fill 2904 * from the overlap to the end of the request. 2905 */ 2906 if (!*result) { 2907 u32 obj_overlap = rbd_obj_img_extents_bytes(obj_req); 2908 2909 if (obj_overlap < obj_req->ex.oe_len) 2910 rbd_obj_zero_range(obj_req, obj_overlap, 2911 obj_req->ex.oe_len - obj_overlap); 2912 } 2913 return true; 2914 default: 2915 BUG(); 2916 } 2917 } 2918 2919 static bool rbd_obj_write_is_noop(struct rbd_obj_request *obj_req) 2920 { 2921 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2922 2923 if (rbd_object_map_may_exist(rbd_dev, obj_req->ex.oe_objno)) 2924 obj_req->flags |= RBD_OBJ_FLAG_MAY_EXIST; 2925 2926 if (!(obj_req->flags & RBD_OBJ_FLAG_MAY_EXIST) && 2927 (obj_req->flags & RBD_OBJ_FLAG_NOOP_FOR_NONEXISTENT)) { 2928 dout("%s %p noop for nonexistent\n", __func__, obj_req); 2929 return true; 2930 } 2931 2932 return false; 2933 } 2934 2935 /* 2936 * Return: 2937 * 0 - object map update sent 2938 * 1 - object map update isn't needed 2939 * <0 - error 2940 */ 2941 static int rbd_obj_write_pre_object_map(struct rbd_obj_request *obj_req) 2942 { 2943 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 2944 u8 new_state; 2945 2946 if (!(rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP)) 2947 return 1; 2948 2949 if (obj_req->flags & RBD_OBJ_FLAG_DELETION) 2950 new_state = OBJECT_PENDING; 2951 else 2952 new_state = OBJECT_EXISTS; 2953 2954 return rbd_object_map_update(obj_req, CEPH_NOSNAP, new_state, NULL); 2955 } 2956 2957 static int rbd_obj_write_object(struct rbd_obj_request *obj_req) 2958 { 2959 struct ceph_osd_request *osd_req; 2960 int num_ops = count_write_ops(obj_req); 2961 int which = 0; 2962 int ret; 2963 2964 if (obj_req->flags & RBD_OBJ_FLAG_COPYUP_ENABLED) 2965 num_ops++; /* stat */ 2966 2967 osd_req = rbd_obj_add_osd_request(obj_req, num_ops); 2968 if (IS_ERR(osd_req)) 2969 return PTR_ERR(osd_req); 2970 2971 if (obj_req->flags & RBD_OBJ_FLAG_COPYUP_ENABLED) { 2972 ret = rbd_osd_setup_stat(osd_req, which++); 2973 if (ret) 2974 return ret; 2975 } 2976 2977 rbd_osd_setup_write_ops(osd_req, which); 2978 rbd_osd_format_write(osd_req); 2979 2980 ret = ceph_osdc_alloc_messages(osd_req, GFP_NOIO); 2981 if (ret) 2982 return ret; 2983 2984 rbd_osd_submit(osd_req); 2985 return 0; 2986 } 2987 2988 /* 2989 * copyup_bvecs pages are never highmem pages 2990 */ 2991 static bool is_zero_bvecs(struct bio_vec *bvecs, u32 bytes) 2992 { 2993 struct ceph_bvec_iter it = { 2994 .bvecs = bvecs, 2995 .iter = { .bi_size = bytes }, 2996 }; 2997 2998 ceph_bvec_iter_advance_step(&it, bytes, ({ 2999 if (memchr_inv(bvec_virt(&bv), 0, bv.bv_len)) 3000 return false; 3001 })); 3002 return true; 3003 } 3004 3005 #define MODS_ONLY U32_MAX 3006 3007 static int rbd_obj_copyup_empty_snapc(struct rbd_obj_request *obj_req, 3008 u32 bytes) 3009 { 3010 struct ceph_osd_request *osd_req; 3011 int ret; 3012 3013 dout("%s obj_req %p bytes %u\n", __func__, obj_req, bytes); 3014 rbd_assert(bytes > 0 && bytes != MODS_ONLY); 3015 3016 osd_req = __rbd_obj_add_osd_request(obj_req, &rbd_empty_snapc, 1); 3017 if (IS_ERR(osd_req)) 3018 return PTR_ERR(osd_req); 3019 3020 ret = rbd_osd_setup_copyup(osd_req, 0, bytes); 3021 if (ret) 3022 return ret; 3023 3024 rbd_osd_format_write(osd_req); 3025 3026 ret = ceph_osdc_alloc_messages(osd_req, GFP_NOIO); 3027 if (ret) 3028 return ret; 3029 3030 rbd_osd_submit(osd_req); 3031 return 0; 3032 } 3033 3034 static int rbd_obj_copyup_current_snapc(struct rbd_obj_request *obj_req, 3035 u32 bytes) 3036 { 3037 struct ceph_osd_request *osd_req; 3038 int num_ops = count_write_ops(obj_req); 3039 int which = 0; 3040 int ret; 3041 3042 dout("%s obj_req %p bytes %u\n", __func__, obj_req, bytes); 3043 3044 if (bytes != MODS_ONLY) 3045 num_ops++; /* copyup */ 3046 3047 osd_req = rbd_obj_add_osd_request(obj_req, num_ops); 3048 if (IS_ERR(osd_req)) 3049 return PTR_ERR(osd_req); 3050 3051 if (bytes != MODS_ONLY) { 3052 ret = rbd_osd_setup_copyup(osd_req, which++, bytes); 3053 if (ret) 3054 return ret; 3055 } 3056 3057 rbd_osd_setup_write_ops(osd_req, which); 3058 rbd_osd_format_write(osd_req); 3059 3060 ret = ceph_osdc_alloc_messages(osd_req, GFP_NOIO); 3061 if (ret) 3062 return ret; 3063 3064 rbd_osd_submit(osd_req); 3065 return 0; 3066 } 3067 3068 static int setup_copyup_bvecs(struct rbd_obj_request *obj_req, u64 obj_overlap) 3069 { 3070 u32 i; 3071 3072 rbd_assert(!obj_req->copyup_bvecs); 3073 obj_req->copyup_bvec_count = calc_pages_for(0, obj_overlap); 3074 obj_req->copyup_bvecs = kzalloc_objs(*obj_req->copyup_bvecs, 3075 obj_req->copyup_bvec_count, 3076 GFP_NOIO); 3077 if (!obj_req->copyup_bvecs) 3078 return -ENOMEM; 3079 3080 for (i = 0; i < obj_req->copyup_bvec_count; i++) { 3081 unsigned int len = min(obj_overlap, (u64)PAGE_SIZE); 3082 struct page *page = alloc_page(GFP_NOIO); 3083 3084 if (!page) 3085 return -ENOMEM; 3086 3087 bvec_set_page(&obj_req->copyup_bvecs[i], page, len, 0); 3088 obj_overlap -= len; 3089 } 3090 3091 rbd_assert(!obj_overlap); 3092 return 0; 3093 } 3094 3095 /* 3096 * The target object doesn't exist. Read the data for the entire 3097 * target object up to the overlap point (if any) from the parent, 3098 * so we can use it for a copyup. 3099 */ 3100 static int rbd_obj_copyup_read_parent(struct rbd_obj_request *obj_req) 3101 { 3102 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 3103 int ret; 3104 3105 rbd_assert(obj_req->num_img_extents); 3106 prune_extents(obj_req->img_extents, &obj_req->num_img_extents, 3107 rbd_dev->parent_overlap); 3108 if (!obj_req->num_img_extents) { 3109 /* 3110 * The overlap has become 0 (most likely because the 3111 * image has been flattened). Re-submit the original write 3112 * request -- pass MODS_ONLY since the copyup isn't needed 3113 * anymore. 3114 */ 3115 return rbd_obj_copyup_current_snapc(obj_req, MODS_ONLY); 3116 } 3117 3118 ret = setup_copyup_bvecs(obj_req, rbd_obj_img_extents_bytes(obj_req)); 3119 if (ret) 3120 return ret; 3121 3122 return rbd_obj_read_from_parent(obj_req); 3123 } 3124 3125 static void rbd_obj_copyup_object_maps(struct rbd_obj_request *obj_req) 3126 { 3127 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 3128 struct ceph_snap_context *snapc = obj_req->img_request->snapc; 3129 u8 new_state; 3130 u32 i; 3131 int ret; 3132 3133 rbd_assert(!obj_req->pending.result && !obj_req->pending.num_pending); 3134 3135 if (!(rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP)) 3136 return; 3137 3138 if (obj_req->flags & RBD_OBJ_FLAG_COPYUP_ZEROS) 3139 return; 3140 3141 for (i = 0; i < snapc->num_snaps; i++) { 3142 if ((rbd_dev->header.features & RBD_FEATURE_FAST_DIFF) && 3143 i + 1 < snapc->num_snaps) 3144 new_state = OBJECT_EXISTS_CLEAN; 3145 else 3146 new_state = OBJECT_EXISTS; 3147 3148 ret = rbd_object_map_update(obj_req, snapc->snaps[i], 3149 new_state, NULL); 3150 if (ret < 0) { 3151 obj_req->pending.result = ret; 3152 return; 3153 } 3154 3155 rbd_assert(!ret); 3156 obj_req->pending.num_pending++; 3157 } 3158 } 3159 3160 static void rbd_obj_copyup_write_object(struct rbd_obj_request *obj_req) 3161 { 3162 u32 bytes = rbd_obj_img_extents_bytes(obj_req); 3163 int ret; 3164 3165 rbd_assert(!obj_req->pending.result && !obj_req->pending.num_pending); 3166 3167 /* 3168 * Only send non-zero copyup data to save some I/O and network 3169 * bandwidth -- zero copyup data is equivalent to the object not 3170 * existing. 3171 */ 3172 if (obj_req->flags & RBD_OBJ_FLAG_COPYUP_ZEROS) 3173 bytes = 0; 3174 3175 if (obj_req->img_request->snapc->num_snaps && bytes > 0) { 3176 /* 3177 * Send a copyup request with an empty snapshot context to 3178 * deep-copyup the object through all existing snapshots. 3179 * A second request with the current snapshot context will be 3180 * sent for the actual modification. 3181 */ 3182 ret = rbd_obj_copyup_empty_snapc(obj_req, bytes); 3183 if (ret) { 3184 obj_req->pending.result = ret; 3185 return; 3186 } 3187 3188 obj_req->pending.num_pending++; 3189 bytes = MODS_ONLY; 3190 } 3191 3192 ret = rbd_obj_copyup_current_snapc(obj_req, bytes); 3193 if (ret) { 3194 obj_req->pending.result = ret; 3195 return; 3196 } 3197 3198 obj_req->pending.num_pending++; 3199 } 3200 3201 static bool rbd_obj_advance_copyup(struct rbd_obj_request *obj_req, int *result) 3202 { 3203 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 3204 int ret; 3205 3206 again: 3207 switch (obj_req->copyup_state) { 3208 case RBD_OBJ_COPYUP_START: 3209 rbd_assert(!*result); 3210 3211 ret = rbd_obj_copyup_read_parent(obj_req); 3212 if (ret) { 3213 *result = ret; 3214 return true; 3215 } 3216 if (obj_req->num_img_extents) 3217 obj_req->copyup_state = RBD_OBJ_COPYUP_READ_PARENT; 3218 else 3219 obj_req->copyup_state = RBD_OBJ_COPYUP_WRITE_OBJECT; 3220 return false; 3221 case RBD_OBJ_COPYUP_READ_PARENT: 3222 if (*result) 3223 return true; 3224 3225 if (is_zero_bvecs(obj_req->copyup_bvecs, 3226 rbd_obj_img_extents_bytes(obj_req))) { 3227 dout("%s %p detected zeros\n", __func__, obj_req); 3228 obj_req->flags |= RBD_OBJ_FLAG_COPYUP_ZEROS; 3229 } 3230 3231 rbd_obj_copyup_object_maps(obj_req); 3232 if (!obj_req->pending.num_pending) { 3233 *result = obj_req->pending.result; 3234 obj_req->copyup_state = RBD_OBJ_COPYUP_OBJECT_MAPS; 3235 goto again; 3236 } 3237 obj_req->copyup_state = __RBD_OBJ_COPYUP_OBJECT_MAPS; 3238 return false; 3239 case __RBD_OBJ_COPYUP_OBJECT_MAPS: 3240 if (!pending_result_dec(&obj_req->pending, result)) 3241 return false; 3242 fallthrough; 3243 case RBD_OBJ_COPYUP_OBJECT_MAPS: 3244 if (*result) { 3245 rbd_warn(rbd_dev, "snap object map update failed: %d", 3246 *result); 3247 return true; 3248 } 3249 3250 rbd_obj_copyup_write_object(obj_req); 3251 if (!obj_req->pending.num_pending) { 3252 *result = obj_req->pending.result; 3253 obj_req->copyup_state = RBD_OBJ_COPYUP_WRITE_OBJECT; 3254 goto again; 3255 } 3256 obj_req->copyup_state = __RBD_OBJ_COPYUP_WRITE_OBJECT; 3257 return false; 3258 case __RBD_OBJ_COPYUP_WRITE_OBJECT: 3259 if (!pending_result_dec(&obj_req->pending, result)) 3260 return false; 3261 fallthrough; 3262 case RBD_OBJ_COPYUP_WRITE_OBJECT: 3263 return true; 3264 default: 3265 BUG(); 3266 } 3267 } 3268 3269 /* 3270 * Return: 3271 * 0 - object map update sent 3272 * 1 - object map update isn't needed 3273 * <0 - error 3274 */ 3275 static int rbd_obj_write_post_object_map(struct rbd_obj_request *obj_req) 3276 { 3277 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 3278 u8 current_state = OBJECT_PENDING; 3279 3280 if (!(rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP)) 3281 return 1; 3282 3283 if (!(obj_req->flags & RBD_OBJ_FLAG_DELETION)) 3284 return 1; 3285 3286 return rbd_object_map_update(obj_req, CEPH_NOSNAP, OBJECT_NONEXISTENT, 3287 ¤t_state); 3288 } 3289 3290 static bool rbd_obj_advance_write(struct rbd_obj_request *obj_req, int *result) 3291 { 3292 struct rbd_device *rbd_dev = obj_req->img_request->rbd_dev; 3293 int ret; 3294 3295 again: 3296 switch (obj_req->write_state) { 3297 case RBD_OBJ_WRITE_START: 3298 rbd_assert(!*result); 3299 3300 rbd_obj_set_copyup_enabled(obj_req); 3301 if (rbd_obj_write_is_noop(obj_req)) 3302 return true; 3303 3304 ret = rbd_obj_write_pre_object_map(obj_req); 3305 if (ret < 0) { 3306 *result = ret; 3307 return true; 3308 } 3309 obj_req->write_state = RBD_OBJ_WRITE_PRE_OBJECT_MAP; 3310 if (ret > 0) 3311 goto again; 3312 return false; 3313 case RBD_OBJ_WRITE_PRE_OBJECT_MAP: 3314 if (*result) { 3315 rbd_warn(rbd_dev, "pre object map update failed: %d", 3316 *result); 3317 return true; 3318 } 3319 ret = rbd_obj_write_object(obj_req); 3320 if (ret) { 3321 *result = ret; 3322 return true; 3323 } 3324 obj_req->write_state = RBD_OBJ_WRITE_OBJECT; 3325 return false; 3326 case RBD_OBJ_WRITE_OBJECT: 3327 if (*result == -ENOENT) { 3328 if (obj_req->flags & RBD_OBJ_FLAG_COPYUP_ENABLED) { 3329 *result = 0; 3330 obj_req->copyup_state = RBD_OBJ_COPYUP_START; 3331 obj_req->write_state = __RBD_OBJ_WRITE_COPYUP; 3332 goto again; 3333 } 3334 /* 3335 * On a non-existent object: 3336 * delete - -ENOENT, truncate/zero - 0 3337 */ 3338 if (obj_req->flags & RBD_OBJ_FLAG_DELETION) 3339 *result = 0; 3340 } 3341 if (*result) 3342 return true; 3343 3344 obj_req->write_state = RBD_OBJ_WRITE_COPYUP; 3345 goto again; 3346 case __RBD_OBJ_WRITE_COPYUP: 3347 if (!rbd_obj_advance_copyup(obj_req, result)) 3348 return false; 3349 fallthrough; 3350 case RBD_OBJ_WRITE_COPYUP: 3351 if (*result) { 3352 rbd_warn(rbd_dev, "copyup failed: %d", *result); 3353 return true; 3354 } 3355 ret = rbd_obj_write_post_object_map(obj_req); 3356 if (ret < 0) { 3357 *result = ret; 3358 return true; 3359 } 3360 obj_req->write_state = RBD_OBJ_WRITE_POST_OBJECT_MAP; 3361 if (ret > 0) 3362 goto again; 3363 return false; 3364 case RBD_OBJ_WRITE_POST_OBJECT_MAP: 3365 if (*result) 3366 rbd_warn(rbd_dev, "post object map update failed: %d", 3367 *result); 3368 return true; 3369 default: 3370 BUG(); 3371 } 3372 } 3373 3374 /* 3375 * Return true if @obj_req is completed. 3376 */ 3377 static bool __rbd_obj_handle_request(struct rbd_obj_request *obj_req, 3378 int *result) 3379 { 3380 struct rbd_img_request *img_req = obj_req->img_request; 3381 struct rbd_device *rbd_dev = img_req->rbd_dev; 3382 bool done; 3383 3384 mutex_lock(&obj_req->state_mutex); 3385 if (!rbd_img_is_write(img_req)) 3386 done = rbd_obj_advance_read(obj_req, result); 3387 else 3388 done = rbd_obj_advance_write(obj_req, result); 3389 mutex_unlock(&obj_req->state_mutex); 3390 3391 if (done && *result) { 3392 rbd_assert(*result < 0); 3393 rbd_warn(rbd_dev, "%s at objno %llu %llu~%llu result %d", 3394 obj_op_name(img_req->op_type), obj_req->ex.oe_objno, 3395 obj_req->ex.oe_off, obj_req->ex.oe_len, *result); 3396 } 3397 return done; 3398 } 3399 3400 /* 3401 * This is open-coded in rbd_img_handle_request() to avoid parent chain 3402 * recursion. 3403 */ 3404 static void rbd_obj_handle_request(struct rbd_obj_request *obj_req, int result) 3405 { 3406 if (__rbd_obj_handle_request(obj_req, &result)) 3407 rbd_img_handle_request(obj_req->img_request, result); 3408 } 3409 3410 static bool need_exclusive_lock(struct rbd_img_request *img_req) 3411 { 3412 struct rbd_device *rbd_dev = img_req->rbd_dev; 3413 3414 if (!(rbd_dev->header.features & RBD_FEATURE_EXCLUSIVE_LOCK)) 3415 return false; 3416 3417 if (rbd_is_ro(rbd_dev)) 3418 return false; 3419 3420 rbd_assert(!test_bit(IMG_REQ_CHILD, &img_req->flags)); 3421 if (rbd_dev->opts->lock_on_read || 3422 (rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP)) 3423 return true; 3424 3425 return rbd_img_is_write(img_req); 3426 } 3427 3428 static bool rbd_lock_add_request(struct rbd_img_request *img_req) 3429 { 3430 struct rbd_device *rbd_dev = img_req->rbd_dev; 3431 bool locked; 3432 3433 lockdep_assert_held(&rbd_dev->lock_rwsem); 3434 locked = rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED; 3435 spin_lock(&rbd_dev->lock_lists_lock); 3436 rbd_assert(list_empty(&img_req->lock_item)); 3437 if (!locked) 3438 list_add_tail(&img_req->lock_item, &rbd_dev->acquiring_list); 3439 else 3440 list_add_tail(&img_req->lock_item, &rbd_dev->running_list); 3441 spin_unlock(&rbd_dev->lock_lists_lock); 3442 return locked; 3443 } 3444 3445 static void rbd_lock_del_request(struct rbd_img_request *img_req) 3446 { 3447 struct rbd_device *rbd_dev = img_req->rbd_dev; 3448 bool need_wakeup = false; 3449 3450 lockdep_assert_held(&rbd_dev->lock_rwsem); 3451 spin_lock(&rbd_dev->lock_lists_lock); 3452 if (!list_empty(&img_req->lock_item)) { 3453 rbd_assert(!list_empty(&rbd_dev->running_list)); 3454 list_del_init(&img_req->lock_item); 3455 need_wakeup = (rbd_dev->lock_state == RBD_LOCK_STATE_QUIESCING && 3456 list_empty(&rbd_dev->running_list)); 3457 } 3458 spin_unlock(&rbd_dev->lock_lists_lock); 3459 if (need_wakeup) 3460 complete(&rbd_dev->quiescing_wait); 3461 } 3462 3463 static int rbd_img_exclusive_lock(struct rbd_img_request *img_req) 3464 { 3465 struct rbd_device *rbd_dev = img_req->rbd_dev; 3466 3467 if (!need_exclusive_lock(img_req)) 3468 return 1; 3469 3470 if (rbd_lock_add_request(img_req)) 3471 return 1; 3472 3473 /* 3474 * Note the use of mod_delayed_work() in rbd_acquire_lock() 3475 * and cancel_delayed_work() in wake_lock_waiters(). 3476 */ 3477 dout("%s rbd_dev %p queueing lock_dwork\n", __func__, rbd_dev); 3478 queue_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 0); 3479 return 0; 3480 } 3481 3482 static void rbd_img_object_requests(struct rbd_img_request *img_req) 3483 { 3484 struct rbd_device *rbd_dev = img_req->rbd_dev; 3485 struct rbd_obj_request *obj_req; 3486 3487 rbd_assert(!img_req->pending.result && !img_req->pending.num_pending); 3488 rbd_assert(!need_exclusive_lock(img_req) || 3489 __rbd_is_lock_owner(rbd_dev)); 3490 3491 if (test_bit(IMG_REQ_CHILD, &img_req->flags)) { 3492 rbd_assert(!rbd_img_is_write(img_req)); 3493 } else { 3494 struct request *rq = blk_mq_rq_from_pdu(img_req); 3495 u64 off = (u64)blk_rq_pos(rq) << SECTOR_SHIFT; 3496 u64 len = blk_rq_bytes(rq); 3497 u64 mapping_size; 3498 3499 down_read(&rbd_dev->header_rwsem); 3500 mapping_size = rbd_dev->mapping.size; 3501 if (rbd_img_is_write(img_req)) { 3502 rbd_assert(!img_req->snapc); 3503 img_req->snapc = 3504 ceph_get_snap_context(rbd_dev->header.snapc); 3505 } 3506 up_read(&rbd_dev->header_rwsem); 3507 3508 if (unlikely(off + len > mapping_size)) { 3509 rbd_warn(rbd_dev, "beyond EOD (%llu~%llu > %llu)", 3510 off, len, mapping_size); 3511 img_req->pending.result = -EIO; 3512 return; 3513 } 3514 } 3515 3516 for_each_obj_request(img_req, obj_req) { 3517 int result = 0; 3518 3519 if (__rbd_obj_handle_request(obj_req, &result)) { 3520 if (result) { 3521 img_req->pending.result = result; 3522 return; 3523 } 3524 } else { 3525 img_req->pending.num_pending++; 3526 } 3527 } 3528 } 3529 3530 static bool rbd_img_advance(struct rbd_img_request *img_req, int *result) 3531 { 3532 int ret; 3533 3534 again: 3535 switch (img_req->state) { 3536 case RBD_IMG_START: 3537 rbd_assert(!*result); 3538 3539 ret = rbd_img_exclusive_lock(img_req); 3540 if (ret < 0) { 3541 *result = ret; 3542 return true; 3543 } 3544 img_req->state = RBD_IMG_EXCLUSIVE_LOCK; 3545 if (ret > 0) 3546 goto again; 3547 return false; 3548 case RBD_IMG_EXCLUSIVE_LOCK: 3549 if (*result) 3550 return true; 3551 3552 rbd_img_object_requests(img_req); 3553 if (!img_req->pending.num_pending) { 3554 *result = img_req->pending.result; 3555 img_req->state = RBD_IMG_OBJECT_REQUESTS; 3556 goto again; 3557 } 3558 img_req->state = __RBD_IMG_OBJECT_REQUESTS; 3559 return false; 3560 case __RBD_IMG_OBJECT_REQUESTS: 3561 if (!pending_result_dec(&img_req->pending, result)) 3562 return false; 3563 fallthrough; 3564 case RBD_IMG_OBJECT_REQUESTS: 3565 return true; 3566 default: 3567 BUG(); 3568 } 3569 } 3570 3571 /* 3572 * Return true if @img_req is completed. 3573 */ 3574 static bool __rbd_img_handle_request(struct rbd_img_request *img_req, 3575 int *result) 3576 { 3577 struct rbd_device *rbd_dev = img_req->rbd_dev; 3578 bool done; 3579 3580 if (need_exclusive_lock(img_req)) { 3581 down_read(&rbd_dev->lock_rwsem); 3582 mutex_lock(&img_req->state_mutex); 3583 done = rbd_img_advance(img_req, result); 3584 if (done) 3585 rbd_lock_del_request(img_req); 3586 mutex_unlock(&img_req->state_mutex); 3587 up_read(&rbd_dev->lock_rwsem); 3588 } else { 3589 mutex_lock(&img_req->state_mutex); 3590 done = rbd_img_advance(img_req, result); 3591 mutex_unlock(&img_req->state_mutex); 3592 } 3593 3594 if (done && *result) { 3595 rbd_assert(*result < 0); 3596 rbd_warn(rbd_dev, "%s%s result %d", 3597 test_bit(IMG_REQ_CHILD, &img_req->flags) ? "child " : "", 3598 obj_op_name(img_req->op_type), *result); 3599 } 3600 return done; 3601 } 3602 3603 static void rbd_img_handle_request(struct rbd_img_request *img_req, int result) 3604 { 3605 again: 3606 if (!__rbd_img_handle_request(img_req, &result)) 3607 return; 3608 3609 if (test_bit(IMG_REQ_CHILD, &img_req->flags)) { 3610 struct rbd_obj_request *obj_req = img_req->obj_request; 3611 3612 rbd_img_request_destroy(img_req); 3613 if (__rbd_obj_handle_request(obj_req, &result)) { 3614 img_req = obj_req->img_request; 3615 goto again; 3616 } 3617 } else { 3618 struct request *rq = blk_mq_rq_from_pdu(img_req); 3619 3620 rbd_img_request_destroy(img_req); 3621 blk_mq_end_request(rq, errno_to_blk_status(result)); 3622 } 3623 } 3624 3625 static const struct rbd_client_id rbd_empty_cid; 3626 3627 static bool rbd_cid_equal(const struct rbd_client_id *lhs, 3628 const struct rbd_client_id *rhs) 3629 { 3630 return lhs->gid == rhs->gid && lhs->handle == rhs->handle; 3631 } 3632 3633 static struct rbd_client_id rbd_get_cid(struct rbd_device *rbd_dev) 3634 { 3635 struct rbd_client_id cid; 3636 3637 mutex_lock(&rbd_dev->watch_mutex); 3638 cid.gid = ceph_client_gid(rbd_dev->rbd_client->client); 3639 cid.handle = rbd_dev->watch_cookie; 3640 mutex_unlock(&rbd_dev->watch_mutex); 3641 return cid; 3642 } 3643 3644 /* 3645 * lock_rwsem must be held for write 3646 */ 3647 static void rbd_set_owner_cid(struct rbd_device *rbd_dev, 3648 const struct rbd_client_id *cid) 3649 { 3650 dout("%s rbd_dev %p %llu-%llu -> %llu-%llu\n", __func__, rbd_dev, 3651 rbd_dev->owner_cid.gid, rbd_dev->owner_cid.handle, 3652 cid->gid, cid->handle); 3653 rbd_dev->owner_cid = *cid; /* struct */ 3654 } 3655 3656 static void format_lock_cookie(struct rbd_device *rbd_dev, char *buf) 3657 { 3658 mutex_lock(&rbd_dev->watch_mutex); 3659 sprintf(buf, "%s %llu", RBD_LOCK_COOKIE_PREFIX, rbd_dev->watch_cookie); 3660 mutex_unlock(&rbd_dev->watch_mutex); 3661 } 3662 3663 static void __rbd_lock(struct rbd_device *rbd_dev, const char *cookie) 3664 { 3665 struct rbd_client_id cid = rbd_get_cid(rbd_dev); 3666 3667 rbd_dev->lock_state = RBD_LOCK_STATE_LOCKED; 3668 strscpy(rbd_dev->lock_cookie, cookie); 3669 rbd_set_owner_cid(rbd_dev, &cid); 3670 queue_work(rbd_dev->task_wq, &rbd_dev->acquired_lock_work); 3671 } 3672 3673 /* 3674 * lock_rwsem must be held for write 3675 */ 3676 static int rbd_lock(struct rbd_device *rbd_dev) 3677 { 3678 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 3679 char cookie[32]; 3680 int ret; 3681 3682 WARN_ON(__rbd_is_lock_owner(rbd_dev) || 3683 rbd_dev->lock_cookie[0] != '\0'); 3684 3685 format_lock_cookie(rbd_dev, cookie); 3686 ret = ceph_cls_lock(osdc, &rbd_dev->header_oid, &rbd_dev->header_oloc, 3687 RBD_LOCK_NAME, CEPH_CLS_LOCK_EXCLUSIVE, cookie, 3688 RBD_LOCK_TAG, "", 0); 3689 if (ret && ret != -EEXIST) 3690 return ret; 3691 3692 __rbd_lock(rbd_dev, cookie); 3693 return 0; 3694 } 3695 3696 /* 3697 * lock_rwsem must be held for write 3698 */ 3699 static void rbd_unlock(struct rbd_device *rbd_dev) 3700 { 3701 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 3702 int ret; 3703 3704 WARN_ON(!__rbd_is_lock_owner(rbd_dev) || 3705 rbd_dev->lock_cookie[0] == '\0'); 3706 3707 ret = ceph_cls_unlock(osdc, &rbd_dev->header_oid, &rbd_dev->header_oloc, 3708 RBD_LOCK_NAME, rbd_dev->lock_cookie); 3709 if (ret && ret != -ENOENT) 3710 rbd_warn(rbd_dev, "failed to unlock header: %d", ret); 3711 3712 /* treat errors as the image is unlocked */ 3713 rbd_dev->lock_state = RBD_LOCK_STATE_UNLOCKED; 3714 rbd_dev->lock_cookie[0] = '\0'; 3715 rbd_set_owner_cid(rbd_dev, &rbd_empty_cid); 3716 queue_work(rbd_dev->task_wq, &rbd_dev->released_lock_work); 3717 } 3718 3719 static int __rbd_notify_op_lock(struct rbd_device *rbd_dev, 3720 enum rbd_notify_op notify_op, 3721 struct page ***preply_pages, 3722 size_t *preply_len) 3723 { 3724 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 3725 struct rbd_client_id cid = rbd_get_cid(rbd_dev); 3726 char buf[4 + 8 + 8 + CEPH_ENCODING_START_BLK_LEN]; 3727 int buf_size = sizeof(buf); 3728 void *p = buf; 3729 3730 dout("%s rbd_dev %p notify_op %d\n", __func__, rbd_dev, notify_op); 3731 3732 /* encode *LockPayload NotifyMessage (op + ClientId) */ 3733 ceph_start_encoding(&p, 2, 1, buf_size - CEPH_ENCODING_START_BLK_LEN); 3734 ceph_encode_32(&p, notify_op); 3735 ceph_encode_64(&p, cid.gid); 3736 ceph_encode_64(&p, cid.handle); 3737 3738 return ceph_osdc_notify(osdc, &rbd_dev->header_oid, 3739 &rbd_dev->header_oloc, buf, buf_size, 3740 RBD_NOTIFY_TIMEOUT, preply_pages, preply_len); 3741 } 3742 3743 static void rbd_notify_op_lock(struct rbd_device *rbd_dev, 3744 enum rbd_notify_op notify_op) 3745 { 3746 __rbd_notify_op_lock(rbd_dev, notify_op, NULL, NULL); 3747 } 3748 3749 static void rbd_notify_acquired_lock(struct work_struct *work) 3750 { 3751 struct rbd_device *rbd_dev = container_of(work, struct rbd_device, 3752 acquired_lock_work); 3753 3754 rbd_notify_op_lock(rbd_dev, RBD_NOTIFY_OP_ACQUIRED_LOCK); 3755 } 3756 3757 static void rbd_notify_released_lock(struct work_struct *work) 3758 { 3759 struct rbd_device *rbd_dev = container_of(work, struct rbd_device, 3760 released_lock_work); 3761 3762 rbd_notify_op_lock(rbd_dev, RBD_NOTIFY_OP_RELEASED_LOCK); 3763 } 3764 3765 static int rbd_request_lock(struct rbd_device *rbd_dev) 3766 { 3767 struct page **reply_pages; 3768 size_t reply_len; 3769 bool lock_owner_responded = false; 3770 int ret; 3771 3772 dout("%s rbd_dev %p\n", __func__, rbd_dev); 3773 3774 ret = __rbd_notify_op_lock(rbd_dev, RBD_NOTIFY_OP_REQUEST_LOCK, 3775 &reply_pages, &reply_len); 3776 if (ret && ret != -ETIMEDOUT) { 3777 rbd_warn(rbd_dev, "failed to request lock: %d", ret); 3778 goto out; 3779 } 3780 3781 if (reply_len > 0 && reply_len <= PAGE_SIZE) { 3782 void *p = page_address(reply_pages[0]); 3783 void *const end = p + reply_len; 3784 u32 n; 3785 3786 ceph_decode_32_safe(&p, end, n, e_inval); /* num_acks */ 3787 while (n--) { 3788 u8 struct_v; 3789 u32 len; 3790 3791 ceph_decode_need(&p, end, 8 + 8, e_inval); 3792 p += 8 + 8; /* skip gid and cookie */ 3793 3794 ceph_decode_32_safe(&p, end, len, e_inval); 3795 if (!len) 3796 continue; 3797 3798 if (lock_owner_responded) { 3799 rbd_warn(rbd_dev, 3800 "duplicate lock owners detected"); 3801 ret = -EIO; 3802 goto out; 3803 } 3804 3805 lock_owner_responded = true; 3806 ret = ceph_start_decoding(&p, end, 1, "ResponseMessage", 3807 &struct_v, &len); 3808 if (ret) { 3809 rbd_warn(rbd_dev, 3810 "failed to decode ResponseMessage: %d", 3811 ret); 3812 goto e_inval; 3813 } 3814 3815 ret = ceph_decode_32(&p); 3816 } 3817 } 3818 3819 if (!lock_owner_responded) { 3820 rbd_warn(rbd_dev, "no lock owners detected"); 3821 ret = -ETIMEDOUT; 3822 } 3823 3824 out: 3825 ceph_release_page_vector(reply_pages, calc_pages_for(0, reply_len)); 3826 return ret; 3827 3828 e_inval: 3829 ret = -EINVAL; 3830 goto out; 3831 } 3832 3833 /* 3834 * Either image request state machine(s) or rbd_add_acquire_lock() 3835 * (i.e. "rbd map"). 3836 */ 3837 static void wake_lock_waiters(struct rbd_device *rbd_dev, int result) 3838 { 3839 struct rbd_img_request *img_req; 3840 3841 dout("%s rbd_dev %p result %d\n", __func__, rbd_dev, result); 3842 lockdep_assert_held_write(&rbd_dev->lock_rwsem); 3843 3844 cancel_delayed_work(&rbd_dev->lock_dwork); 3845 if (!completion_done(&rbd_dev->acquire_wait)) { 3846 rbd_assert(list_empty(&rbd_dev->acquiring_list) && 3847 list_empty(&rbd_dev->running_list)); 3848 rbd_dev->acquire_err = result; 3849 complete_all(&rbd_dev->acquire_wait); 3850 return; 3851 } 3852 3853 while (!list_empty(&rbd_dev->acquiring_list)) { 3854 img_req = list_first_entry(&rbd_dev->acquiring_list, 3855 struct rbd_img_request, lock_item); 3856 mutex_lock(&img_req->state_mutex); 3857 rbd_assert(img_req->state == RBD_IMG_EXCLUSIVE_LOCK); 3858 if (!result) 3859 list_move_tail(&img_req->lock_item, 3860 &rbd_dev->running_list); 3861 else 3862 list_del_init(&img_req->lock_item); 3863 rbd_img_schedule(img_req, result); 3864 mutex_unlock(&img_req->state_mutex); 3865 } 3866 } 3867 3868 static bool locker_equal(const struct ceph_locker *lhs, 3869 const struct ceph_locker *rhs) 3870 { 3871 return lhs->id.name.type == rhs->id.name.type && 3872 lhs->id.name.num == rhs->id.name.num && 3873 !strcmp(lhs->id.cookie, rhs->id.cookie) && 3874 ceph_addr_equal_no_type(&lhs->info.addr, &rhs->info.addr); 3875 } 3876 3877 static void free_locker(struct ceph_locker *locker) 3878 { 3879 if (locker) 3880 ceph_free_lockers(locker, 1); 3881 } 3882 3883 static struct ceph_locker *get_lock_owner_info(struct rbd_device *rbd_dev) 3884 { 3885 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 3886 struct ceph_locker *lockers; 3887 u32 num_lockers; 3888 u8 lock_type; 3889 char *lock_tag; 3890 u64 handle; 3891 int ret; 3892 3893 ret = ceph_cls_lock_info(osdc, &rbd_dev->header_oid, 3894 &rbd_dev->header_oloc, RBD_LOCK_NAME, 3895 &lock_type, &lock_tag, &lockers, &num_lockers); 3896 if (ret) { 3897 rbd_warn(rbd_dev, "failed to get header lockers: %d", ret); 3898 return ERR_PTR(ret); 3899 } 3900 3901 if (num_lockers == 0) { 3902 dout("%s rbd_dev %p no lockers detected\n", __func__, rbd_dev); 3903 lockers = NULL; 3904 goto out; 3905 } 3906 3907 if (strcmp(lock_tag, RBD_LOCK_TAG)) { 3908 rbd_warn(rbd_dev, "locked by external mechanism, tag %s", 3909 lock_tag); 3910 goto err_busy; 3911 } 3912 3913 if (lock_type != CEPH_CLS_LOCK_EXCLUSIVE) { 3914 rbd_warn(rbd_dev, "incompatible lock type detected"); 3915 goto err_busy; 3916 } 3917 3918 WARN_ON(num_lockers != 1); 3919 ret = sscanf(lockers[0].id.cookie, RBD_LOCK_COOKIE_PREFIX " %llu", 3920 &handle); 3921 if (ret != 1) { 3922 rbd_warn(rbd_dev, "locked by external mechanism, cookie %s", 3923 lockers[0].id.cookie); 3924 goto err_busy; 3925 } 3926 if (ceph_addr_is_blank(&lockers[0].info.addr)) { 3927 rbd_warn(rbd_dev, "locker has a blank address"); 3928 goto err_busy; 3929 } 3930 3931 dout("%s rbd_dev %p got locker %s%llu@%pISpc/%u handle %llu\n", 3932 __func__, rbd_dev, ENTITY_NAME(lockers[0].id.name), 3933 &lockers[0].info.addr.in_addr, 3934 le32_to_cpu(lockers[0].info.addr.nonce), handle); 3935 3936 out: 3937 kfree(lock_tag); 3938 return lockers; 3939 3940 err_busy: 3941 kfree(lock_tag); 3942 ceph_free_lockers(lockers, num_lockers); 3943 return ERR_PTR(-EBUSY); 3944 } 3945 3946 static int find_watcher(struct rbd_device *rbd_dev, 3947 const struct ceph_locker *locker) 3948 { 3949 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 3950 struct ceph_watch_item *watchers; 3951 u32 num_watchers; 3952 u64 cookie; 3953 int i; 3954 int ret; 3955 3956 ret = ceph_osdc_list_watchers(osdc, &rbd_dev->header_oid, 3957 &rbd_dev->header_oloc, &watchers, 3958 &num_watchers); 3959 if (ret) { 3960 rbd_warn(rbd_dev, "failed to get watchers: %d", ret); 3961 return ret; 3962 } 3963 3964 sscanf(locker->id.cookie, RBD_LOCK_COOKIE_PREFIX " %llu", &cookie); 3965 for (i = 0; i < num_watchers; i++) { 3966 /* 3967 * Ignore addr->type while comparing. This mimics 3968 * entity_addr_t::get_legacy_str() + strcmp(). 3969 */ 3970 if (ceph_addr_equal_no_type(&watchers[i].addr, 3971 &locker->info.addr) && 3972 watchers[i].cookie == cookie) { 3973 struct rbd_client_id cid = { 3974 .gid = le64_to_cpu(watchers[i].name.num), 3975 .handle = cookie, 3976 }; 3977 3978 dout("%s rbd_dev %p found cid %llu-%llu\n", __func__, 3979 rbd_dev, cid.gid, cid.handle); 3980 rbd_set_owner_cid(rbd_dev, &cid); 3981 ret = 1; 3982 goto out; 3983 } 3984 } 3985 3986 dout("%s rbd_dev %p no watchers\n", __func__, rbd_dev); 3987 ret = 0; 3988 out: 3989 kfree(watchers); 3990 return ret; 3991 } 3992 3993 /* 3994 * lock_rwsem must be held for write 3995 */ 3996 static int rbd_try_lock(struct rbd_device *rbd_dev) 3997 { 3998 struct ceph_client *client = rbd_dev->rbd_client->client; 3999 struct ceph_locker *locker, *refreshed_locker; 4000 int ret; 4001 4002 for (;;) { 4003 locker = refreshed_locker = NULL; 4004 4005 ret = rbd_lock(rbd_dev); 4006 if (!ret) 4007 goto out; 4008 if (ret != -EBUSY) { 4009 rbd_warn(rbd_dev, "failed to lock header: %d", ret); 4010 goto out; 4011 } 4012 4013 /* determine if the current lock holder is still alive */ 4014 locker = get_lock_owner_info(rbd_dev); 4015 if (IS_ERR(locker)) { 4016 ret = PTR_ERR(locker); 4017 locker = NULL; 4018 goto out; 4019 } 4020 if (!locker) 4021 goto again; 4022 4023 ret = find_watcher(rbd_dev, locker); 4024 if (ret) 4025 goto out; /* request lock or error */ 4026 4027 refreshed_locker = get_lock_owner_info(rbd_dev); 4028 if (IS_ERR(refreshed_locker)) { 4029 ret = PTR_ERR(refreshed_locker); 4030 refreshed_locker = NULL; 4031 goto out; 4032 } 4033 if (!refreshed_locker || 4034 !locker_equal(locker, refreshed_locker)) 4035 goto again; 4036 4037 rbd_warn(rbd_dev, "breaking header lock owned by %s%llu", 4038 ENTITY_NAME(locker->id.name)); 4039 4040 ret = ceph_monc_blocklist_add(&client->monc, 4041 &locker->info.addr); 4042 if (ret) { 4043 rbd_warn(rbd_dev, "failed to blocklist %s%llu: %d", 4044 ENTITY_NAME(locker->id.name), ret); 4045 goto out; 4046 } 4047 4048 ret = ceph_cls_break_lock(&client->osdc, &rbd_dev->header_oid, 4049 &rbd_dev->header_oloc, RBD_LOCK_NAME, 4050 locker->id.cookie, &locker->id.name); 4051 if (ret && ret != -ENOENT) { 4052 rbd_warn(rbd_dev, "failed to break header lock: %d", 4053 ret); 4054 goto out; 4055 } 4056 4057 again: 4058 free_locker(refreshed_locker); 4059 free_locker(locker); 4060 } 4061 4062 out: 4063 free_locker(refreshed_locker); 4064 free_locker(locker); 4065 return ret; 4066 } 4067 4068 static int rbd_post_acquire_action(struct rbd_device *rbd_dev) 4069 { 4070 int ret; 4071 4072 ret = rbd_dev_refresh(rbd_dev); 4073 if (ret) 4074 return ret; 4075 4076 if (rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP) { 4077 ret = rbd_object_map_open(rbd_dev); 4078 if (ret) 4079 return ret; 4080 } 4081 4082 return 0; 4083 } 4084 4085 /* 4086 * Return: 4087 * 0 - lock acquired 4088 * 1 - caller should call rbd_request_lock() 4089 * <0 - error 4090 */ 4091 static int rbd_try_acquire_lock(struct rbd_device *rbd_dev) 4092 { 4093 int ret; 4094 4095 down_read(&rbd_dev->lock_rwsem); 4096 dout("%s rbd_dev %p read lock_state %d\n", __func__, rbd_dev, 4097 rbd_dev->lock_state); 4098 if (__rbd_is_lock_owner(rbd_dev)) { 4099 up_read(&rbd_dev->lock_rwsem); 4100 return 0; 4101 } 4102 4103 up_read(&rbd_dev->lock_rwsem); 4104 down_write(&rbd_dev->lock_rwsem); 4105 dout("%s rbd_dev %p write lock_state %d\n", __func__, rbd_dev, 4106 rbd_dev->lock_state); 4107 if (__rbd_is_lock_owner(rbd_dev)) { 4108 up_write(&rbd_dev->lock_rwsem); 4109 return 0; 4110 } 4111 4112 ret = rbd_try_lock(rbd_dev); 4113 if (ret < 0) { 4114 rbd_warn(rbd_dev, "failed to acquire lock: %d", ret); 4115 goto out; 4116 } 4117 if (ret > 0) { 4118 up_write(&rbd_dev->lock_rwsem); 4119 return ret; 4120 } 4121 4122 rbd_assert(rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED); 4123 rbd_assert(list_empty(&rbd_dev->running_list)); 4124 4125 ret = rbd_post_acquire_action(rbd_dev); 4126 if (ret) { 4127 rbd_warn(rbd_dev, "post-acquire action failed: %d", ret); 4128 /* 4129 * Can't stay in RBD_LOCK_STATE_LOCKED because 4130 * rbd_lock_add_request() would let the request through, 4131 * assuming that e.g. object map is locked and loaded. 4132 */ 4133 rbd_unlock(rbd_dev); 4134 } 4135 4136 out: 4137 wake_lock_waiters(rbd_dev, ret); 4138 up_write(&rbd_dev->lock_rwsem); 4139 return ret; 4140 } 4141 4142 static void rbd_acquire_lock(struct work_struct *work) 4143 { 4144 struct rbd_device *rbd_dev = container_of(to_delayed_work(work), 4145 struct rbd_device, lock_dwork); 4146 int ret; 4147 4148 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4149 again: 4150 ret = rbd_try_acquire_lock(rbd_dev); 4151 if (ret <= 0) { 4152 dout("%s rbd_dev %p ret %d - done\n", __func__, rbd_dev, ret); 4153 return; 4154 } 4155 4156 ret = rbd_request_lock(rbd_dev); 4157 if (ret == -ETIMEDOUT) { 4158 goto again; /* treat this as a dead client */ 4159 } else if (ret == -EROFS) { 4160 rbd_warn(rbd_dev, "peer will not release lock"); 4161 down_write(&rbd_dev->lock_rwsem); 4162 wake_lock_waiters(rbd_dev, ret); 4163 up_write(&rbd_dev->lock_rwsem); 4164 } else if (ret < 0) { 4165 rbd_warn(rbd_dev, "error requesting lock: %d", ret); 4166 mod_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 4167 RBD_RETRY_DELAY); 4168 } else { 4169 /* 4170 * lock owner acked, but resend if we don't see them 4171 * release the lock 4172 */ 4173 dout("%s rbd_dev %p requeuing lock_dwork\n", __func__, 4174 rbd_dev); 4175 mod_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 4176 msecs_to_jiffies(2 * RBD_NOTIFY_TIMEOUT * MSEC_PER_SEC)); 4177 } 4178 } 4179 4180 static bool rbd_quiesce_lock(struct rbd_device *rbd_dev) 4181 { 4182 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4183 lockdep_assert_held_write(&rbd_dev->lock_rwsem); 4184 4185 if (rbd_dev->lock_state != RBD_LOCK_STATE_LOCKED) 4186 return false; 4187 4188 /* 4189 * Ensure that all in-flight IO is flushed. 4190 */ 4191 rbd_dev->lock_state = RBD_LOCK_STATE_QUIESCING; 4192 rbd_assert(!completion_done(&rbd_dev->quiescing_wait)); 4193 if (list_empty(&rbd_dev->running_list)) 4194 return true; 4195 4196 up_write(&rbd_dev->lock_rwsem); 4197 wait_for_completion(&rbd_dev->quiescing_wait); 4198 4199 down_write(&rbd_dev->lock_rwsem); 4200 if (rbd_dev->lock_state != RBD_LOCK_STATE_QUIESCING) 4201 return false; 4202 4203 rbd_assert(list_empty(&rbd_dev->running_list)); 4204 return true; 4205 } 4206 4207 static void rbd_pre_release_action(struct rbd_device *rbd_dev) 4208 { 4209 if (rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP) 4210 rbd_object_map_close(rbd_dev); 4211 } 4212 4213 static void __rbd_release_lock(struct rbd_device *rbd_dev) 4214 { 4215 rbd_assert(list_empty(&rbd_dev->running_list)); 4216 4217 rbd_pre_release_action(rbd_dev); 4218 rbd_unlock(rbd_dev); 4219 } 4220 4221 /* 4222 * lock_rwsem must be held for write 4223 */ 4224 static void rbd_release_lock(struct rbd_device *rbd_dev) 4225 { 4226 if (!rbd_quiesce_lock(rbd_dev)) 4227 return; 4228 4229 __rbd_release_lock(rbd_dev); 4230 4231 /* 4232 * Give others a chance to grab the lock - we would re-acquire 4233 * almost immediately if we got new IO while draining the running 4234 * list otherwise. We need to ack our own notifications, so this 4235 * lock_dwork will be requeued from rbd_handle_released_lock() by 4236 * way of maybe_kick_acquire(). 4237 */ 4238 cancel_delayed_work(&rbd_dev->lock_dwork); 4239 } 4240 4241 static void rbd_release_lock_work(struct work_struct *work) 4242 { 4243 struct rbd_device *rbd_dev = container_of(work, struct rbd_device, 4244 unlock_work); 4245 4246 down_write(&rbd_dev->lock_rwsem); 4247 rbd_release_lock(rbd_dev); 4248 up_write(&rbd_dev->lock_rwsem); 4249 } 4250 4251 static void maybe_kick_acquire(struct rbd_device *rbd_dev) 4252 { 4253 bool have_requests; 4254 4255 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4256 if (__rbd_is_lock_owner(rbd_dev)) 4257 return; 4258 4259 spin_lock(&rbd_dev->lock_lists_lock); 4260 have_requests = !list_empty(&rbd_dev->acquiring_list); 4261 spin_unlock(&rbd_dev->lock_lists_lock); 4262 if (have_requests || delayed_work_pending(&rbd_dev->lock_dwork)) { 4263 dout("%s rbd_dev %p kicking lock_dwork\n", __func__, rbd_dev); 4264 mod_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 0); 4265 } 4266 } 4267 4268 static void rbd_handle_acquired_lock(struct rbd_device *rbd_dev, u8 struct_v, 4269 void **p) 4270 { 4271 struct rbd_client_id cid = { 0 }; 4272 4273 if (struct_v >= 2) { 4274 cid.gid = ceph_decode_64(p); 4275 cid.handle = ceph_decode_64(p); 4276 } 4277 4278 dout("%s rbd_dev %p cid %llu-%llu\n", __func__, rbd_dev, cid.gid, 4279 cid.handle); 4280 if (!rbd_cid_equal(&cid, &rbd_empty_cid)) { 4281 down_write(&rbd_dev->lock_rwsem); 4282 if (rbd_cid_equal(&cid, &rbd_dev->owner_cid)) { 4283 dout("%s rbd_dev %p cid %llu-%llu == owner_cid\n", 4284 __func__, rbd_dev, cid.gid, cid.handle); 4285 } else { 4286 rbd_set_owner_cid(rbd_dev, &cid); 4287 } 4288 downgrade_write(&rbd_dev->lock_rwsem); 4289 } else { 4290 down_read(&rbd_dev->lock_rwsem); 4291 } 4292 4293 maybe_kick_acquire(rbd_dev); 4294 up_read(&rbd_dev->lock_rwsem); 4295 } 4296 4297 static void rbd_handle_released_lock(struct rbd_device *rbd_dev, u8 struct_v, 4298 void **p) 4299 { 4300 struct rbd_client_id cid = { 0 }; 4301 4302 if (struct_v >= 2) { 4303 cid.gid = ceph_decode_64(p); 4304 cid.handle = ceph_decode_64(p); 4305 } 4306 4307 dout("%s rbd_dev %p cid %llu-%llu\n", __func__, rbd_dev, cid.gid, 4308 cid.handle); 4309 if (!rbd_cid_equal(&cid, &rbd_empty_cid)) { 4310 down_write(&rbd_dev->lock_rwsem); 4311 if (!rbd_cid_equal(&cid, &rbd_dev->owner_cid)) { 4312 dout("%s rbd_dev %p cid %llu-%llu != owner_cid %llu-%llu\n", 4313 __func__, rbd_dev, cid.gid, cid.handle, 4314 rbd_dev->owner_cid.gid, rbd_dev->owner_cid.handle); 4315 } else { 4316 rbd_set_owner_cid(rbd_dev, &rbd_empty_cid); 4317 } 4318 downgrade_write(&rbd_dev->lock_rwsem); 4319 } else { 4320 down_read(&rbd_dev->lock_rwsem); 4321 } 4322 4323 maybe_kick_acquire(rbd_dev); 4324 up_read(&rbd_dev->lock_rwsem); 4325 } 4326 4327 /* 4328 * Returns result for ResponseMessage to be encoded (<= 0), or 1 if no 4329 * ResponseMessage is needed. 4330 */ 4331 static int rbd_handle_request_lock(struct rbd_device *rbd_dev, u8 struct_v, 4332 void **p) 4333 { 4334 struct rbd_client_id my_cid = rbd_get_cid(rbd_dev); 4335 struct rbd_client_id cid = { 0 }; 4336 int result = 1; 4337 4338 if (struct_v >= 2) { 4339 cid.gid = ceph_decode_64(p); 4340 cid.handle = ceph_decode_64(p); 4341 } 4342 4343 dout("%s rbd_dev %p cid %llu-%llu\n", __func__, rbd_dev, cid.gid, 4344 cid.handle); 4345 if (rbd_cid_equal(&cid, &my_cid)) 4346 return result; 4347 4348 down_read(&rbd_dev->lock_rwsem); 4349 if (__rbd_is_lock_owner(rbd_dev)) { 4350 if (rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED && 4351 rbd_cid_equal(&rbd_dev->owner_cid, &rbd_empty_cid)) 4352 goto out_unlock; 4353 4354 /* 4355 * encode ResponseMessage(0) so the peer can detect 4356 * a missing owner 4357 */ 4358 result = 0; 4359 4360 if (rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED) { 4361 if (!rbd_dev->opts->exclusive) { 4362 dout("%s rbd_dev %p queueing unlock_work\n", 4363 __func__, rbd_dev); 4364 queue_work(rbd_dev->task_wq, 4365 &rbd_dev->unlock_work); 4366 } else { 4367 /* refuse to release the lock */ 4368 result = -EROFS; 4369 } 4370 } 4371 } 4372 4373 out_unlock: 4374 up_read(&rbd_dev->lock_rwsem); 4375 return result; 4376 } 4377 4378 static void __rbd_acknowledge_notify(struct rbd_device *rbd_dev, 4379 u64 notify_id, u64 cookie, s32 *result) 4380 { 4381 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4382 char buf[4 + CEPH_ENCODING_START_BLK_LEN]; 4383 int buf_size = sizeof(buf); 4384 int ret; 4385 4386 if (result) { 4387 void *p = buf; 4388 4389 /* encode ResponseMessage */ 4390 ceph_start_encoding(&p, 1, 1, 4391 buf_size - CEPH_ENCODING_START_BLK_LEN); 4392 ceph_encode_32(&p, *result); 4393 } else { 4394 buf_size = 0; 4395 } 4396 4397 ret = ceph_osdc_notify_ack(osdc, &rbd_dev->header_oid, 4398 &rbd_dev->header_oloc, notify_id, cookie, 4399 buf, buf_size); 4400 if (ret) 4401 rbd_warn(rbd_dev, "acknowledge_notify failed: %d", ret); 4402 } 4403 4404 static void rbd_acknowledge_notify(struct rbd_device *rbd_dev, u64 notify_id, 4405 u64 cookie) 4406 { 4407 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4408 __rbd_acknowledge_notify(rbd_dev, notify_id, cookie, NULL); 4409 } 4410 4411 static void rbd_acknowledge_notify_result(struct rbd_device *rbd_dev, 4412 u64 notify_id, u64 cookie, s32 result) 4413 { 4414 dout("%s rbd_dev %p result %d\n", __func__, rbd_dev, result); 4415 __rbd_acknowledge_notify(rbd_dev, notify_id, cookie, &result); 4416 } 4417 4418 static void rbd_watch_cb(void *arg, u64 notify_id, u64 cookie, 4419 u64 notifier_id, void *data, size_t data_len) 4420 { 4421 struct rbd_device *rbd_dev = arg; 4422 void *p = data; 4423 void *const end = p + data_len; 4424 u8 struct_v = 0; 4425 u32 len; 4426 u32 notify_op; 4427 int ret; 4428 4429 dout("%s rbd_dev %p cookie %llu notify_id %llu data_len %zu\n", 4430 __func__, rbd_dev, cookie, notify_id, data_len); 4431 if (data_len) { 4432 ret = ceph_start_decoding(&p, end, 1, "NotifyMessage", 4433 &struct_v, &len); 4434 if (ret) { 4435 rbd_warn(rbd_dev, "failed to decode NotifyMessage: %d", 4436 ret); 4437 return; 4438 } 4439 4440 notify_op = ceph_decode_32(&p); 4441 } else { 4442 /* legacy notification for header updates */ 4443 notify_op = RBD_NOTIFY_OP_HEADER_UPDATE; 4444 len = 0; 4445 } 4446 4447 dout("%s rbd_dev %p notify_op %u\n", __func__, rbd_dev, notify_op); 4448 switch (notify_op) { 4449 case RBD_NOTIFY_OP_ACQUIRED_LOCK: 4450 rbd_handle_acquired_lock(rbd_dev, struct_v, &p); 4451 rbd_acknowledge_notify(rbd_dev, notify_id, cookie); 4452 break; 4453 case RBD_NOTIFY_OP_RELEASED_LOCK: 4454 rbd_handle_released_lock(rbd_dev, struct_v, &p); 4455 rbd_acknowledge_notify(rbd_dev, notify_id, cookie); 4456 break; 4457 case RBD_NOTIFY_OP_REQUEST_LOCK: 4458 ret = rbd_handle_request_lock(rbd_dev, struct_v, &p); 4459 if (ret <= 0) 4460 rbd_acknowledge_notify_result(rbd_dev, notify_id, 4461 cookie, ret); 4462 else 4463 rbd_acknowledge_notify(rbd_dev, notify_id, cookie); 4464 break; 4465 case RBD_NOTIFY_OP_HEADER_UPDATE: 4466 ret = rbd_dev_refresh(rbd_dev); 4467 if (ret) 4468 rbd_warn(rbd_dev, "refresh failed: %d", ret); 4469 4470 rbd_acknowledge_notify(rbd_dev, notify_id, cookie); 4471 break; 4472 default: 4473 if (rbd_is_lock_owner(rbd_dev)) 4474 rbd_acknowledge_notify_result(rbd_dev, notify_id, 4475 cookie, -EOPNOTSUPP); 4476 else 4477 rbd_acknowledge_notify(rbd_dev, notify_id, cookie); 4478 break; 4479 } 4480 } 4481 4482 static void __rbd_unregister_watch(struct rbd_device *rbd_dev); 4483 4484 static void rbd_watch_errcb(void *arg, u64 cookie, int err) 4485 { 4486 struct rbd_device *rbd_dev = arg; 4487 4488 rbd_warn(rbd_dev, "encountered watch error: %d", err); 4489 4490 down_write(&rbd_dev->lock_rwsem); 4491 rbd_set_owner_cid(rbd_dev, &rbd_empty_cid); 4492 up_write(&rbd_dev->lock_rwsem); 4493 4494 mutex_lock(&rbd_dev->watch_mutex); 4495 if (rbd_dev->watch_state == RBD_WATCH_STATE_REGISTERED) { 4496 __rbd_unregister_watch(rbd_dev); 4497 rbd_dev->watch_state = RBD_WATCH_STATE_ERROR; 4498 4499 queue_delayed_work(rbd_dev->task_wq, &rbd_dev->watch_dwork, 0); 4500 } 4501 mutex_unlock(&rbd_dev->watch_mutex); 4502 } 4503 4504 /* 4505 * watch_mutex must be locked 4506 */ 4507 static int __rbd_register_watch(struct rbd_device *rbd_dev) 4508 { 4509 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4510 struct ceph_osd_linger_request *handle; 4511 4512 rbd_assert(!rbd_dev->watch_handle); 4513 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4514 4515 handle = ceph_osdc_watch(osdc, &rbd_dev->header_oid, 4516 &rbd_dev->header_oloc, rbd_watch_cb, 4517 rbd_watch_errcb, rbd_dev); 4518 if (IS_ERR(handle)) 4519 return PTR_ERR(handle); 4520 4521 rbd_dev->watch_handle = handle; 4522 return 0; 4523 } 4524 4525 /* 4526 * watch_mutex must be locked 4527 */ 4528 static void __rbd_unregister_watch(struct rbd_device *rbd_dev) 4529 { 4530 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4531 int ret; 4532 4533 rbd_assert(rbd_dev->watch_handle); 4534 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4535 4536 ret = ceph_osdc_unwatch(osdc, rbd_dev->watch_handle); 4537 if (ret) 4538 rbd_warn(rbd_dev, "failed to unwatch: %d", ret); 4539 4540 rbd_dev->watch_handle = NULL; 4541 } 4542 4543 static int rbd_register_watch(struct rbd_device *rbd_dev) 4544 { 4545 int ret; 4546 4547 mutex_lock(&rbd_dev->watch_mutex); 4548 rbd_assert(rbd_dev->watch_state == RBD_WATCH_STATE_UNREGISTERED); 4549 ret = __rbd_register_watch(rbd_dev); 4550 if (ret) 4551 goto out; 4552 4553 rbd_dev->watch_state = RBD_WATCH_STATE_REGISTERED; 4554 rbd_dev->watch_cookie = rbd_dev->watch_handle->linger_id; 4555 4556 out: 4557 mutex_unlock(&rbd_dev->watch_mutex); 4558 return ret; 4559 } 4560 4561 /* 4562 * header_rwsem must not be held to avoid a deadlock with 4563 * rbd_dev_refresh() when flushing notifies. 4564 */ 4565 static void rbd_unregister_watch(struct rbd_device *rbd_dev) 4566 { 4567 mutex_lock(&rbd_dev->watch_mutex); 4568 if (rbd_dev->watch_state == RBD_WATCH_STATE_REGISTERED) 4569 __rbd_unregister_watch(rbd_dev); 4570 rbd_dev->watch_state = RBD_WATCH_STATE_UNREGISTERED; 4571 mutex_unlock(&rbd_dev->watch_mutex); 4572 4573 cancel_delayed_work_sync(&rbd_dev->watch_dwork); 4574 ceph_osdc_flush_notifies(&rbd_dev->rbd_client->client->osdc); 4575 } 4576 4577 /* 4578 * lock_rwsem must be held for write 4579 */ 4580 static void rbd_reacquire_lock(struct rbd_device *rbd_dev) 4581 { 4582 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4583 char cookie[32]; 4584 int ret; 4585 4586 if (!rbd_quiesce_lock(rbd_dev)) 4587 return; 4588 4589 format_lock_cookie(rbd_dev, cookie); 4590 ret = ceph_cls_set_cookie(osdc, &rbd_dev->header_oid, 4591 &rbd_dev->header_oloc, RBD_LOCK_NAME, 4592 CEPH_CLS_LOCK_EXCLUSIVE, rbd_dev->lock_cookie, 4593 RBD_LOCK_TAG, cookie); 4594 if (ret) { 4595 if (ret != -EOPNOTSUPP) 4596 rbd_warn(rbd_dev, "failed to update lock cookie: %d", 4597 ret); 4598 4599 if (rbd_dev->opts->exclusive) 4600 rbd_warn(rbd_dev, 4601 "temporarily releasing lock on exclusive mapping"); 4602 4603 /* 4604 * Lock cookie cannot be updated on older OSDs, so do 4605 * a manual release and queue an acquire. 4606 */ 4607 __rbd_release_lock(rbd_dev); 4608 queue_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 0); 4609 } else { 4610 __rbd_lock(rbd_dev, cookie); 4611 wake_lock_waiters(rbd_dev, 0); 4612 } 4613 } 4614 4615 static void rbd_reregister_watch(struct work_struct *work) 4616 { 4617 struct rbd_device *rbd_dev = container_of(to_delayed_work(work), 4618 struct rbd_device, watch_dwork); 4619 int ret; 4620 4621 dout("%s rbd_dev %p\n", __func__, rbd_dev); 4622 4623 mutex_lock(&rbd_dev->watch_mutex); 4624 if (rbd_dev->watch_state != RBD_WATCH_STATE_ERROR) { 4625 mutex_unlock(&rbd_dev->watch_mutex); 4626 return; 4627 } 4628 4629 ret = __rbd_register_watch(rbd_dev); 4630 if (ret) { 4631 rbd_warn(rbd_dev, "failed to reregister watch: %d", ret); 4632 if (ret != -EBLOCKLISTED && ret != -ENOENT) { 4633 queue_delayed_work(rbd_dev->task_wq, 4634 &rbd_dev->watch_dwork, 4635 RBD_RETRY_DELAY); 4636 mutex_unlock(&rbd_dev->watch_mutex); 4637 return; 4638 } 4639 4640 mutex_unlock(&rbd_dev->watch_mutex); 4641 down_write(&rbd_dev->lock_rwsem); 4642 wake_lock_waiters(rbd_dev, ret); 4643 up_write(&rbd_dev->lock_rwsem); 4644 return; 4645 } 4646 4647 rbd_dev->watch_state = RBD_WATCH_STATE_REGISTERED; 4648 rbd_dev->watch_cookie = rbd_dev->watch_handle->linger_id; 4649 mutex_unlock(&rbd_dev->watch_mutex); 4650 4651 down_write(&rbd_dev->lock_rwsem); 4652 if (rbd_dev->lock_state == RBD_LOCK_STATE_LOCKED) 4653 rbd_reacquire_lock(rbd_dev); 4654 up_write(&rbd_dev->lock_rwsem); 4655 4656 ret = rbd_dev_refresh(rbd_dev); 4657 if (ret) 4658 rbd_warn(rbd_dev, "reregistration refresh failed: %d", ret); 4659 } 4660 4661 /* 4662 * Synchronous osd object method call. Returns the number of bytes 4663 * returned in the outbound buffer, or a negative error code. 4664 */ 4665 static int rbd_obj_method_sync(struct rbd_device *rbd_dev, 4666 struct ceph_object_id *oid, 4667 struct ceph_object_locator *oloc, 4668 const char *method_name, 4669 const void *outbound, 4670 size_t outbound_size, 4671 void *inbound, 4672 size_t inbound_size) 4673 { 4674 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4675 struct page *req_page = NULL; 4676 struct page *reply_page; 4677 int ret; 4678 4679 /* 4680 * Method calls are ultimately read operations. The result 4681 * should placed into the inbound buffer provided. They 4682 * also supply outbound data--parameters for the object 4683 * method. Currently if this is present it will be a 4684 * snapshot id. 4685 */ 4686 if (outbound) { 4687 if (outbound_size > PAGE_SIZE) 4688 return -E2BIG; 4689 4690 req_page = alloc_page(GFP_KERNEL); 4691 if (!req_page) 4692 return -ENOMEM; 4693 4694 memcpy(page_address(req_page), outbound, outbound_size); 4695 } 4696 4697 reply_page = alloc_page(GFP_KERNEL); 4698 if (!reply_page) { 4699 if (req_page) 4700 __free_page(req_page); 4701 return -ENOMEM; 4702 } 4703 4704 ret = ceph_osdc_call(osdc, oid, oloc, RBD_DRV_NAME, method_name, 4705 CEPH_OSD_FLAG_READ, req_page, outbound_size, 4706 &reply_page, &inbound_size); 4707 if (!ret) { 4708 memcpy(inbound, page_address(reply_page), inbound_size); 4709 ret = inbound_size; 4710 } 4711 4712 if (req_page) 4713 __free_page(req_page); 4714 __free_page(reply_page); 4715 return ret; 4716 } 4717 4718 static void rbd_queue_workfn(struct work_struct *work) 4719 { 4720 struct rbd_img_request *img_request = 4721 container_of(work, struct rbd_img_request, work); 4722 struct rbd_device *rbd_dev = img_request->rbd_dev; 4723 enum obj_operation_type op_type = img_request->op_type; 4724 struct request *rq = blk_mq_rq_from_pdu(img_request); 4725 u64 offset = (u64)blk_rq_pos(rq) << SECTOR_SHIFT; 4726 u64 length = blk_rq_bytes(rq); 4727 int result; 4728 4729 /* Ignore/skip any zero-length requests */ 4730 if (!length) { 4731 dout("%s: zero-length request\n", __func__); 4732 result = 0; 4733 goto err_img_request; 4734 } 4735 4736 blk_mq_start_request(rq); 4737 4738 down_read(&rbd_dev->header_rwsem); 4739 rbd_img_capture_header(img_request); 4740 up_read(&rbd_dev->header_rwsem); 4741 4742 dout("%s rbd_dev %p img_req %p %s %llu~%llu\n", __func__, rbd_dev, 4743 img_request, obj_op_name(op_type), offset, length); 4744 4745 if (op_type == OBJ_OP_DISCARD || op_type == OBJ_OP_ZEROOUT) 4746 result = rbd_img_fill_nodata(img_request, offset, length); 4747 else 4748 result = rbd_img_fill_from_bio(img_request, offset, length, 4749 rq->bio); 4750 if (result) 4751 goto err_img_request; 4752 4753 rbd_img_handle_request(img_request, 0); 4754 return; 4755 4756 err_img_request: 4757 rbd_img_request_destroy(img_request); 4758 if (result) 4759 rbd_warn(rbd_dev, "%s %llx at %llx result %d", 4760 obj_op_name(op_type), length, offset, result); 4761 blk_mq_end_request(rq, errno_to_blk_status(result)); 4762 } 4763 4764 static blk_status_t rbd_queue_rq(struct blk_mq_hw_ctx *hctx, 4765 const struct blk_mq_queue_data *bd) 4766 { 4767 struct rbd_device *rbd_dev = hctx->queue->queuedata; 4768 struct rbd_img_request *img_req = blk_mq_rq_to_pdu(bd->rq); 4769 enum obj_operation_type op_type; 4770 4771 switch (req_op(bd->rq)) { 4772 case REQ_OP_DISCARD: 4773 op_type = OBJ_OP_DISCARD; 4774 break; 4775 case REQ_OP_WRITE_ZEROES: 4776 op_type = OBJ_OP_ZEROOUT; 4777 break; 4778 case REQ_OP_WRITE: 4779 op_type = OBJ_OP_WRITE; 4780 break; 4781 case REQ_OP_READ: 4782 op_type = OBJ_OP_READ; 4783 break; 4784 default: 4785 rbd_warn(rbd_dev, "unknown req_op %d", req_op(bd->rq)); 4786 return BLK_STS_IOERR; 4787 } 4788 4789 rbd_img_request_init(img_req, rbd_dev, op_type); 4790 4791 if (rbd_img_is_write(img_req)) { 4792 if (rbd_is_ro(rbd_dev)) { 4793 rbd_warn(rbd_dev, "%s on read-only mapping", 4794 obj_op_name(img_req->op_type)); 4795 return BLK_STS_IOERR; 4796 } 4797 rbd_assert(!rbd_is_snap(rbd_dev)); 4798 } 4799 4800 INIT_WORK(&img_req->work, rbd_queue_workfn); 4801 queue_work(rbd_wq, &img_req->work); 4802 return BLK_STS_OK; 4803 } 4804 4805 static void rbd_free_disk(struct rbd_device *rbd_dev) 4806 { 4807 put_disk(rbd_dev->disk); 4808 blk_mq_free_tag_set(&rbd_dev->tag_set); 4809 rbd_dev->disk = NULL; 4810 } 4811 4812 static int rbd_obj_read_sync(struct rbd_device *rbd_dev, 4813 struct ceph_object_id *oid, 4814 struct ceph_object_locator *oloc, 4815 void *buf, int buf_len) 4816 4817 { 4818 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 4819 struct ceph_osd_request *req; 4820 struct page **pages; 4821 int num_pages = calc_pages_for(0, buf_len); 4822 int ret; 4823 4824 req = ceph_osdc_alloc_request(osdc, NULL, 1, false, GFP_KERNEL); 4825 if (!req) 4826 return -ENOMEM; 4827 4828 ceph_oid_copy(&req->r_base_oid, oid); 4829 ceph_oloc_copy(&req->r_base_oloc, oloc); 4830 req->r_flags = CEPH_OSD_FLAG_READ; 4831 4832 pages = ceph_alloc_page_vector(num_pages, GFP_KERNEL); 4833 if (IS_ERR(pages)) { 4834 ret = PTR_ERR(pages); 4835 goto out_req; 4836 } 4837 4838 osd_req_op_extent_init(req, 0, CEPH_OSD_OP_READ, 0, buf_len, 0, 0); 4839 osd_req_op_extent_osd_data_pages(req, 0, pages, buf_len, 0, false, 4840 true); 4841 4842 ret = ceph_osdc_alloc_messages(req, GFP_KERNEL); 4843 if (ret) 4844 goto out_req; 4845 4846 ceph_osdc_start_request(osdc, req); 4847 ret = ceph_osdc_wait_request(osdc, req); 4848 if (ret >= 0) 4849 ceph_copy_from_page_vector(pages, buf, 0, ret); 4850 4851 out_req: 4852 ceph_osdc_put_request(req); 4853 return ret; 4854 } 4855 4856 /* 4857 * Read the complete header for the given rbd device. On successful 4858 * return, the rbd_dev->header field will contain up-to-date 4859 * information about the image. 4860 */ 4861 static int rbd_dev_v1_header_info(struct rbd_device *rbd_dev, 4862 struct rbd_image_header *header, 4863 bool first_time) 4864 { 4865 struct rbd_image_header_ondisk *ondisk = NULL; 4866 u32 snap_count = 0; 4867 u64 names_size = 0; 4868 u32 want_count; 4869 int ret; 4870 4871 /* 4872 * The complete header will include an array of its 64-bit 4873 * snapshot ids, followed by the names of those snapshots as 4874 * a contiguous block of NUL-terminated strings. Note that 4875 * the number of snapshots could change by the time we read 4876 * it in, in which case we re-read it. 4877 */ 4878 do { 4879 size_t size; 4880 4881 kfree(ondisk); 4882 4883 size = sizeof (*ondisk); 4884 size += snap_count * sizeof (struct rbd_image_snap_ondisk); 4885 size += names_size; 4886 ondisk = kmalloc(size, GFP_KERNEL); 4887 if (!ondisk) 4888 return -ENOMEM; 4889 4890 ret = rbd_obj_read_sync(rbd_dev, &rbd_dev->header_oid, 4891 &rbd_dev->header_oloc, ondisk, size); 4892 if (ret < 0) 4893 goto out; 4894 if ((size_t)ret < size) { 4895 ret = -ENXIO; 4896 rbd_warn(rbd_dev, "short header read (want %zd got %d)", 4897 size, ret); 4898 goto out; 4899 } 4900 if (!rbd_dev_ondisk_valid(ondisk)) { 4901 ret = -ENXIO; 4902 rbd_warn(rbd_dev, "invalid header"); 4903 goto out; 4904 } 4905 4906 names_size = le64_to_cpu(ondisk->snap_names_len); 4907 want_count = snap_count; 4908 snap_count = le32_to_cpu(ondisk->snap_count); 4909 } while (snap_count != want_count); 4910 4911 ret = rbd_header_from_disk(header, ondisk, first_time); 4912 out: 4913 kfree(ondisk); 4914 4915 return ret; 4916 } 4917 4918 static void rbd_dev_update_size(struct rbd_device *rbd_dev) 4919 { 4920 sector_t size; 4921 4922 /* 4923 * If EXISTS is not set, rbd_dev->disk may be NULL, so don't 4924 * try to update its size. If REMOVING is set, updating size 4925 * is just useless work since the device can't be opened. 4926 */ 4927 if (test_bit(RBD_DEV_FLAG_EXISTS, &rbd_dev->flags) && 4928 !test_bit(RBD_DEV_FLAG_REMOVING, &rbd_dev->flags)) { 4929 size = (sector_t)rbd_dev->mapping.size / SECTOR_SIZE; 4930 dout("setting size to %llu sectors", (unsigned long long)size); 4931 set_capacity_and_notify(rbd_dev->disk, size); 4932 } 4933 } 4934 4935 static const struct blk_mq_ops rbd_mq_ops = { 4936 .queue_rq = rbd_queue_rq, 4937 }; 4938 4939 static int rbd_init_disk(struct rbd_device *rbd_dev) 4940 { 4941 struct gendisk *disk; 4942 unsigned int objset_bytes = 4943 rbd_dev->layout.object_size * rbd_dev->layout.stripe_count; 4944 struct queue_limits lim = { 4945 .max_hw_sectors = objset_bytes >> SECTOR_SHIFT, 4946 .io_opt = objset_bytes, 4947 .io_min = rbd_dev->opts->alloc_size, 4948 .max_segments = USHRT_MAX, 4949 .max_segment_size = UINT_MAX, 4950 }; 4951 int err; 4952 4953 memset(&rbd_dev->tag_set, 0, sizeof(rbd_dev->tag_set)); 4954 rbd_dev->tag_set.ops = &rbd_mq_ops; 4955 rbd_dev->tag_set.queue_depth = rbd_dev->opts->queue_depth; 4956 rbd_dev->tag_set.numa_node = NUMA_NO_NODE; 4957 rbd_dev->tag_set.nr_hw_queues = num_present_cpus(); 4958 rbd_dev->tag_set.cmd_size = sizeof(struct rbd_img_request); 4959 4960 err = blk_mq_alloc_tag_set(&rbd_dev->tag_set); 4961 if (err) 4962 return err; 4963 4964 if (rbd_dev->opts->trim) { 4965 lim.discard_granularity = rbd_dev->opts->alloc_size; 4966 lim.max_hw_discard_sectors = objset_bytes >> SECTOR_SHIFT; 4967 lim.max_write_zeroes_sectors = objset_bytes >> SECTOR_SHIFT; 4968 } 4969 4970 if (!ceph_test_opt(rbd_dev->rbd_client->client, NOCRC)) 4971 lim.features |= BLK_FEAT_STABLE_WRITES; 4972 4973 disk = blk_mq_alloc_disk(&rbd_dev->tag_set, &lim, rbd_dev); 4974 if (IS_ERR(disk)) { 4975 err = PTR_ERR(disk); 4976 goto out_tag_set; 4977 } 4978 4979 snprintf(disk->disk_name, sizeof(disk->disk_name), RBD_DRV_NAME "%d", 4980 rbd_dev->dev_id); 4981 disk->major = rbd_dev->major; 4982 disk->first_minor = rbd_dev->minor; 4983 if (single_major) 4984 disk->minors = (1 << RBD_SINGLE_MAJOR_PART_SHIFT); 4985 else 4986 disk->minors = RBD_MINORS_PER_MAJOR; 4987 disk->fops = &rbd_bd_ops; 4988 disk->private_data = rbd_dev; 4989 rbd_dev->disk = disk; 4990 4991 return 0; 4992 out_tag_set: 4993 blk_mq_free_tag_set(&rbd_dev->tag_set); 4994 return err; 4995 } 4996 4997 /* 4998 sysfs 4999 */ 5000 5001 static struct rbd_device *dev_to_rbd_dev(struct device *dev) 5002 { 5003 return container_of(dev, struct rbd_device, dev); 5004 } 5005 5006 static ssize_t rbd_size_show(struct device *dev, 5007 struct device_attribute *attr, char *buf) 5008 { 5009 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5010 5011 return sprintf(buf, "%llu\n", 5012 (unsigned long long)rbd_dev->mapping.size); 5013 } 5014 5015 static ssize_t rbd_features_show(struct device *dev, 5016 struct device_attribute *attr, char *buf) 5017 { 5018 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5019 5020 return sprintf(buf, "0x%016llx\n", rbd_dev->header.features); 5021 } 5022 5023 static ssize_t rbd_major_show(struct device *dev, 5024 struct device_attribute *attr, char *buf) 5025 { 5026 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5027 5028 if (rbd_dev->major) 5029 return sprintf(buf, "%d\n", rbd_dev->major); 5030 5031 return sprintf(buf, "(none)\n"); 5032 } 5033 5034 static ssize_t rbd_minor_show(struct device *dev, 5035 struct device_attribute *attr, char *buf) 5036 { 5037 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5038 5039 return sprintf(buf, "%d\n", rbd_dev->minor); 5040 } 5041 5042 static ssize_t rbd_client_addr_show(struct device *dev, 5043 struct device_attribute *attr, char *buf) 5044 { 5045 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5046 struct ceph_entity_addr *client_addr = 5047 ceph_client_addr(rbd_dev->rbd_client->client); 5048 5049 return sprintf(buf, "%pISpc/%u\n", &client_addr->in_addr, 5050 le32_to_cpu(client_addr->nonce)); 5051 } 5052 5053 static ssize_t rbd_client_id_show(struct device *dev, 5054 struct device_attribute *attr, char *buf) 5055 { 5056 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5057 5058 return sprintf(buf, "client%lld\n", 5059 ceph_client_gid(rbd_dev->rbd_client->client)); 5060 } 5061 5062 static ssize_t rbd_cluster_fsid_show(struct device *dev, 5063 struct device_attribute *attr, char *buf) 5064 { 5065 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5066 5067 return sprintf(buf, "%pU\n", &rbd_dev->rbd_client->client->fsid); 5068 } 5069 5070 static ssize_t rbd_config_info_show(struct device *dev, 5071 struct device_attribute *attr, char *buf) 5072 { 5073 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5074 5075 if (!capable(CAP_SYS_ADMIN)) 5076 return -EPERM; 5077 5078 return sprintf(buf, "%s\n", rbd_dev->config_info); 5079 } 5080 5081 static ssize_t rbd_pool_show(struct device *dev, 5082 struct device_attribute *attr, char *buf) 5083 { 5084 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5085 5086 return sprintf(buf, "%s\n", rbd_dev->spec->pool_name); 5087 } 5088 5089 static ssize_t rbd_pool_id_show(struct device *dev, 5090 struct device_attribute *attr, char *buf) 5091 { 5092 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5093 5094 return sprintf(buf, "%llu\n", 5095 (unsigned long long) rbd_dev->spec->pool_id); 5096 } 5097 5098 static ssize_t rbd_pool_ns_show(struct device *dev, 5099 struct device_attribute *attr, char *buf) 5100 { 5101 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5102 5103 return sprintf(buf, "%s\n", rbd_dev->spec->pool_ns ?: ""); 5104 } 5105 5106 static ssize_t rbd_name_show(struct device *dev, 5107 struct device_attribute *attr, char *buf) 5108 { 5109 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5110 5111 if (rbd_dev->spec->image_name) 5112 return sprintf(buf, "%s\n", rbd_dev->spec->image_name); 5113 5114 return sprintf(buf, "(unknown)\n"); 5115 } 5116 5117 static ssize_t rbd_image_id_show(struct device *dev, 5118 struct device_attribute *attr, char *buf) 5119 { 5120 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5121 5122 return sprintf(buf, "%s\n", rbd_dev->spec->image_id); 5123 } 5124 5125 /* 5126 * Shows the name of the currently-mapped snapshot (or 5127 * RBD_SNAP_HEAD_NAME for the base image). 5128 */ 5129 static ssize_t rbd_snap_show(struct device *dev, 5130 struct device_attribute *attr, 5131 char *buf) 5132 { 5133 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5134 5135 return sprintf(buf, "%s\n", rbd_dev->spec->snap_name); 5136 } 5137 5138 static ssize_t rbd_snap_id_show(struct device *dev, 5139 struct device_attribute *attr, char *buf) 5140 { 5141 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5142 5143 return sprintf(buf, "%llu\n", rbd_dev->spec->snap_id); 5144 } 5145 5146 /* 5147 * For a v2 image, shows the chain of parent images, separated by empty 5148 * lines. For v1 images or if there is no parent, shows "(no parent 5149 * image)". 5150 */ 5151 static ssize_t rbd_parent_show(struct device *dev, 5152 struct device_attribute *attr, 5153 char *buf) 5154 { 5155 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5156 ssize_t count = 0; 5157 5158 if (!rbd_dev->parent) 5159 return sprintf(buf, "(no parent image)\n"); 5160 5161 for ( ; rbd_dev->parent; rbd_dev = rbd_dev->parent) { 5162 struct rbd_spec *spec = rbd_dev->parent_spec; 5163 5164 count += sprintf(&buf[count], "%s" 5165 "pool_id %llu\npool_name %s\n" 5166 "pool_ns %s\n" 5167 "image_id %s\nimage_name %s\n" 5168 "snap_id %llu\nsnap_name %s\n" 5169 "overlap %llu\n", 5170 !count ? "" : "\n", /* first? */ 5171 spec->pool_id, spec->pool_name, 5172 spec->pool_ns ?: "", 5173 spec->image_id, spec->image_name ?: "(unknown)", 5174 spec->snap_id, spec->snap_name, 5175 rbd_dev->parent_overlap); 5176 } 5177 5178 return count; 5179 } 5180 5181 static ssize_t rbd_image_refresh(struct device *dev, 5182 struct device_attribute *attr, 5183 const char *buf, 5184 size_t size) 5185 { 5186 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5187 int ret; 5188 5189 if (!capable(CAP_SYS_ADMIN)) 5190 return -EPERM; 5191 5192 ret = rbd_dev_refresh(rbd_dev); 5193 if (ret) 5194 return ret; 5195 5196 return size; 5197 } 5198 5199 static DEVICE_ATTR(size, 0444, rbd_size_show, NULL); 5200 static DEVICE_ATTR(features, 0444, rbd_features_show, NULL); 5201 static DEVICE_ATTR(major, 0444, rbd_major_show, NULL); 5202 static DEVICE_ATTR(minor, 0444, rbd_minor_show, NULL); 5203 static DEVICE_ATTR(client_addr, 0444, rbd_client_addr_show, NULL); 5204 static DEVICE_ATTR(client_id, 0444, rbd_client_id_show, NULL); 5205 static DEVICE_ATTR(cluster_fsid, 0444, rbd_cluster_fsid_show, NULL); 5206 static DEVICE_ATTR(config_info, 0400, rbd_config_info_show, NULL); 5207 static DEVICE_ATTR(pool, 0444, rbd_pool_show, NULL); 5208 static DEVICE_ATTR(pool_id, 0444, rbd_pool_id_show, NULL); 5209 static DEVICE_ATTR(pool_ns, 0444, rbd_pool_ns_show, NULL); 5210 static DEVICE_ATTR(name, 0444, rbd_name_show, NULL); 5211 static DEVICE_ATTR(image_id, 0444, rbd_image_id_show, NULL); 5212 static DEVICE_ATTR(refresh, 0200, NULL, rbd_image_refresh); 5213 static DEVICE_ATTR(current_snap, 0444, rbd_snap_show, NULL); 5214 static DEVICE_ATTR(snap_id, 0444, rbd_snap_id_show, NULL); 5215 static DEVICE_ATTR(parent, 0444, rbd_parent_show, NULL); 5216 5217 static struct attribute *rbd_attrs[] = { 5218 &dev_attr_size.attr, 5219 &dev_attr_features.attr, 5220 &dev_attr_major.attr, 5221 &dev_attr_minor.attr, 5222 &dev_attr_client_addr.attr, 5223 &dev_attr_client_id.attr, 5224 &dev_attr_cluster_fsid.attr, 5225 &dev_attr_config_info.attr, 5226 &dev_attr_pool.attr, 5227 &dev_attr_pool_id.attr, 5228 &dev_attr_pool_ns.attr, 5229 &dev_attr_name.attr, 5230 &dev_attr_image_id.attr, 5231 &dev_attr_current_snap.attr, 5232 &dev_attr_snap_id.attr, 5233 &dev_attr_parent.attr, 5234 &dev_attr_refresh.attr, 5235 NULL 5236 }; 5237 5238 static struct attribute_group rbd_attr_group = { 5239 .attrs = rbd_attrs, 5240 }; 5241 5242 static const struct attribute_group *rbd_attr_groups[] = { 5243 &rbd_attr_group, 5244 NULL 5245 }; 5246 5247 static void rbd_dev_release(struct device *dev); 5248 5249 static const struct device_type rbd_device_type = { 5250 .name = "rbd", 5251 .groups = rbd_attr_groups, 5252 .release = rbd_dev_release, 5253 }; 5254 5255 static struct rbd_spec *rbd_spec_get(struct rbd_spec *spec) 5256 { 5257 kref_get(&spec->kref); 5258 5259 return spec; 5260 } 5261 5262 static void rbd_spec_free(struct kref *kref); 5263 static void rbd_spec_put(struct rbd_spec *spec) 5264 { 5265 if (spec) 5266 kref_put(&spec->kref, rbd_spec_free); 5267 } 5268 5269 static struct rbd_spec *rbd_spec_alloc(void) 5270 { 5271 struct rbd_spec *spec; 5272 5273 spec = kzalloc_obj(*spec); 5274 if (!spec) 5275 return NULL; 5276 5277 spec->pool_id = CEPH_NOPOOL; 5278 spec->snap_id = CEPH_NOSNAP; 5279 kref_init(&spec->kref); 5280 5281 return spec; 5282 } 5283 5284 static void rbd_spec_free(struct kref *kref) 5285 { 5286 struct rbd_spec *spec = container_of(kref, struct rbd_spec, kref); 5287 5288 kfree(spec->pool_name); 5289 kfree(spec->pool_ns); 5290 kfree(spec->image_id); 5291 kfree(spec->image_name); 5292 kfree(spec->snap_name); 5293 kfree(spec); 5294 } 5295 5296 static void rbd_dev_free(struct rbd_device *rbd_dev) 5297 { 5298 WARN_ON(rbd_dev->watch_state != RBD_WATCH_STATE_UNREGISTERED); 5299 WARN_ON(rbd_dev->lock_state != RBD_LOCK_STATE_UNLOCKED); 5300 5301 ceph_oid_destroy(&rbd_dev->header_oid); 5302 ceph_oloc_destroy(&rbd_dev->header_oloc); 5303 kfree(rbd_dev->config_info); 5304 5305 rbd_put_client(rbd_dev->rbd_client); 5306 rbd_spec_put(rbd_dev->spec); 5307 kfree(rbd_dev->opts); 5308 kfree(rbd_dev); 5309 } 5310 5311 static void rbd_dev_release(struct device *dev) 5312 { 5313 struct rbd_device *rbd_dev = dev_to_rbd_dev(dev); 5314 bool need_put = !!rbd_dev->opts; 5315 5316 if (need_put) { 5317 destroy_workqueue(rbd_dev->task_wq); 5318 ida_free(&rbd_dev_id_ida, rbd_dev->dev_id); 5319 } 5320 5321 rbd_dev_free(rbd_dev); 5322 5323 /* 5324 * This is racy, but way better than putting module outside of 5325 * the release callback. The race window is pretty small, so 5326 * doing something similar to dm (dm-builtin.c) is overkill. 5327 */ 5328 if (need_put) 5329 module_put(THIS_MODULE); 5330 } 5331 5332 static struct rbd_device *__rbd_dev_create(struct rbd_spec *spec) 5333 { 5334 struct rbd_device *rbd_dev; 5335 5336 rbd_dev = kzalloc_obj(*rbd_dev); 5337 if (!rbd_dev) 5338 return NULL; 5339 5340 spin_lock_init(&rbd_dev->lock); 5341 INIT_LIST_HEAD(&rbd_dev->node); 5342 init_rwsem(&rbd_dev->header_rwsem); 5343 5344 rbd_dev->header.data_pool_id = CEPH_NOPOOL; 5345 ceph_oid_init(&rbd_dev->header_oid); 5346 rbd_dev->header_oloc.pool = spec->pool_id; 5347 if (spec->pool_ns) { 5348 WARN_ON(!*spec->pool_ns); 5349 rbd_dev->header_oloc.pool_ns = 5350 ceph_find_or_create_string(spec->pool_ns, 5351 strlen(spec->pool_ns)); 5352 } 5353 5354 mutex_init(&rbd_dev->watch_mutex); 5355 rbd_dev->watch_state = RBD_WATCH_STATE_UNREGISTERED; 5356 INIT_DELAYED_WORK(&rbd_dev->watch_dwork, rbd_reregister_watch); 5357 5358 init_rwsem(&rbd_dev->lock_rwsem); 5359 rbd_dev->lock_state = RBD_LOCK_STATE_UNLOCKED; 5360 INIT_WORK(&rbd_dev->acquired_lock_work, rbd_notify_acquired_lock); 5361 INIT_WORK(&rbd_dev->released_lock_work, rbd_notify_released_lock); 5362 INIT_DELAYED_WORK(&rbd_dev->lock_dwork, rbd_acquire_lock); 5363 INIT_WORK(&rbd_dev->unlock_work, rbd_release_lock_work); 5364 spin_lock_init(&rbd_dev->lock_lists_lock); 5365 INIT_LIST_HEAD(&rbd_dev->acquiring_list); 5366 INIT_LIST_HEAD(&rbd_dev->running_list); 5367 init_completion(&rbd_dev->acquire_wait); 5368 init_completion(&rbd_dev->quiescing_wait); 5369 5370 spin_lock_init(&rbd_dev->object_map_lock); 5371 5372 rbd_dev->dev.bus = &rbd_bus_type; 5373 rbd_dev->dev.type = &rbd_device_type; 5374 rbd_dev->dev.parent = rbd_root_dev; 5375 device_initialize(&rbd_dev->dev); 5376 5377 return rbd_dev; 5378 } 5379 5380 /* 5381 * Create a mapping rbd_dev. 5382 */ 5383 static struct rbd_device *rbd_dev_create(struct rbd_client *rbdc, 5384 struct rbd_spec *spec, 5385 struct rbd_options *opts) 5386 { 5387 struct rbd_device *rbd_dev; 5388 5389 rbd_dev = __rbd_dev_create(spec); 5390 if (!rbd_dev) 5391 return NULL; 5392 5393 /* get an id and fill in device name */ 5394 rbd_dev->dev_id = ida_alloc_max(&rbd_dev_id_ida, 5395 minor_to_rbd_dev_id(1 << MINORBITS) - 1, 5396 GFP_KERNEL); 5397 if (rbd_dev->dev_id < 0) 5398 goto fail_rbd_dev; 5399 5400 sprintf(rbd_dev->name, RBD_DRV_NAME "%d", rbd_dev->dev_id); 5401 rbd_dev->task_wq = alloc_ordered_workqueue("%s-tasks", WQ_MEM_RECLAIM, 5402 rbd_dev->name); 5403 if (!rbd_dev->task_wq) 5404 goto fail_dev_id; 5405 5406 /* we have a ref from do_rbd_add() */ 5407 __module_get(THIS_MODULE); 5408 5409 rbd_dev->rbd_client = rbdc; 5410 rbd_dev->spec = spec; 5411 rbd_dev->opts = opts; 5412 5413 dout("%s rbd_dev %p dev_id %d\n", __func__, rbd_dev, rbd_dev->dev_id); 5414 return rbd_dev; 5415 5416 fail_dev_id: 5417 ida_free(&rbd_dev_id_ida, rbd_dev->dev_id); 5418 fail_rbd_dev: 5419 rbd_dev_free(rbd_dev); 5420 return NULL; 5421 } 5422 5423 static void rbd_dev_destroy(struct rbd_device *rbd_dev) 5424 { 5425 if (rbd_dev) 5426 put_device(&rbd_dev->dev); 5427 } 5428 5429 /* 5430 * Get the size and object order for an image snapshot, or if 5431 * snap_id is CEPH_NOSNAP, gets this information for the base 5432 * image. 5433 */ 5434 static int _rbd_dev_v2_snap_size(struct rbd_device *rbd_dev, u64 snap_id, 5435 u8 *order, u64 *snap_size) 5436 { 5437 __le64 snapid = cpu_to_le64(snap_id); 5438 int ret; 5439 struct { 5440 u8 order; 5441 __le64 size; 5442 } __attribute__ ((packed)) size_buf = { 0 }; 5443 5444 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5445 &rbd_dev->header_oloc, "get_size", 5446 &snapid, sizeof(snapid), 5447 &size_buf, sizeof(size_buf)); 5448 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 5449 if (ret < 0) 5450 return ret; 5451 if (ret < sizeof (size_buf)) 5452 return -ERANGE; 5453 5454 if (order) { 5455 *order = size_buf.order; 5456 dout(" order %u", (unsigned int)*order); 5457 } 5458 *snap_size = le64_to_cpu(size_buf.size); 5459 5460 dout(" snap_id 0x%016llx snap_size = %llu\n", 5461 (unsigned long long)snap_id, 5462 (unsigned long long)*snap_size); 5463 5464 return 0; 5465 } 5466 5467 static int rbd_dev_v2_object_prefix(struct rbd_device *rbd_dev, 5468 char **pobject_prefix) 5469 { 5470 size_t size; 5471 void *reply_buf; 5472 char *object_prefix; 5473 int ret; 5474 void *p; 5475 5476 /* Response will be an encoded string, which includes a length */ 5477 size = sizeof(__le32) + RBD_OBJ_PREFIX_LEN_MAX; 5478 reply_buf = kzalloc(size, GFP_KERNEL); 5479 if (!reply_buf) 5480 return -ENOMEM; 5481 5482 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5483 &rbd_dev->header_oloc, "get_object_prefix", 5484 NULL, 0, reply_buf, size); 5485 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 5486 if (ret < 0) 5487 goto out; 5488 5489 p = reply_buf; 5490 object_prefix = ceph_extract_encoded_string(&p, p + ret, NULL, 5491 GFP_NOIO); 5492 if (IS_ERR(object_prefix)) { 5493 ret = PTR_ERR(object_prefix); 5494 goto out; 5495 } 5496 ret = 0; 5497 5498 *pobject_prefix = object_prefix; 5499 dout(" object_prefix = %s\n", object_prefix); 5500 out: 5501 kfree(reply_buf); 5502 5503 return ret; 5504 } 5505 5506 static int _rbd_dev_v2_snap_features(struct rbd_device *rbd_dev, u64 snap_id, 5507 bool read_only, u64 *snap_features) 5508 { 5509 struct { 5510 __le64 snap_id; 5511 u8 read_only; 5512 } features_in; 5513 struct { 5514 __le64 features; 5515 __le64 incompat; 5516 } __attribute__ ((packed)) features_buf = { 0 }; 5517 u64 unsup; 5518 int ret; 5519 5520 features_in.snap_id = cpu_to_le64(snap_id); 5521 features_in.read_only = read_only; 5522 5523 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5524 &rbd_dev->header_oloc, "get_features", 5525 &features_in, sizeof(features_in), 5526 &features_buf, sizeof(features_buf)); 5527 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 5528 if (ret < 0) 5529 return ret; 5530 if (ret < sizeof (features_buf)) 5531 return -ERANGE; 5532 5533 unsup = le64_to_cpu(features_buf.incompat) & ~RBD_FEATURES_SUPPORTED; 5534 if (unsup) { 5535 rbd_warn(rbd_dev, "image uses unsupported features: 0x%llx", 5536 unsup); 5537 return -ENXIO; 5538 } 5539 5540 *snap_features = le64_to_cpu(features_buf.features); 5541 5542 dout(" snap_id 0x%016llx features = 0x%016llx incompat = 0x%016llx\n", 5543 (unsigned long long)snap_id, 5544 (unsigned long long)*snap_features, 5545 (unsigned long long)le64_to_cpu(features_buf.incompat)); 5546 5547 return 0; 5548 } 5549 5550 /* 5551 * These are generic image flags, but since they are used only for 5552 * object map, store them in rbd_dev->object_map_flags. 5553 * 5554 * For the same reason, this function is called only on object map 5555 * (re)load and not on header refresh. 5556 */ 5557 static int rbd_dev_v2_get_flags(struct rbd_device *rbd_dev) 5558 { 5559 __le64 snapid = cpu_to_le64(rbd_dev->spec->snap_id); 5560 __le64 flags; 5561 int ret; 5562 5563 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5564 &rbd_dev->header_oloc, "get_flags", 5565 &snapid, sizeof(snapid), 5566 &flags, sizeof(flags)); 5567 if (ret < 0) 5568 return ret; 5569 if (ret < sizeof(flags)) 5570 return -EBADMSG; 5571 5572 rbd_dev->object_map_flags = le64_to_cpu(flags); 5573 return 0; 5574 } 5575 5576 struct parent_image_info { 5577 u64 pool_id; 5578 const char *pool_ns; 5579 const char *image_id; 5580 u64 snap_id; 5581 5582 bool has_overlap; 5583 u64 overlap; 5584 }; 5585 5586 static void rbd_parent_info_cleanup(struct parent_image_info *pii) 5587 { 5588 kfree(pii->pool_ns); 5589 kfree(pii->image_id); 5590 5591 memset(pii, 0, sizeof(*pii)); 5592 } 5593 5594 /* 5595 * The caller is responsible for @pii. 5596 */ 5597 static int decode_parent_image_spec(void **p, void *end, 5598 struct parent_image_info *pii) 5599 { 5600 u8 struct_v; 5601 u32 struct_len; 5602 int ret; 5603 5604 ret = ceph_start_decoding(p, end, 1, "ParentImageSpec", 5605 &struct_v, &struct_len); 5606 if (ret) 5607 return ret; 5608 5609 ceph_decode_64_safe(p, end, pii->pool_id, e_inval); 5610 pii->pool_ns = ceph_extract_encoded_string(p, end, NULL, GFP_KERNEL); 5611 if (IS_ERR(pii->pool_ns)) { 5612 ret = PTR_ERR(pii->pool_ns); 5613 pii->pool_ns = NULL; 5614 return ret; 5615 } 5616 pii->image_id = ceph_extract_encoded_string(p, end, NULL, GFP_KERNEL); 5617 if (IS_ERR(pii->image_id)) { 5618 ret = PTR_ERR(pii->image_id); 5619 pii->image_id = NULL; 5620 return ret; 5621 } 5622 ceph_decode_64_safe(p, end, pii->snap_id, e_inval); 5623 return 0; 5624 5625 e_inval: 5626 return -EINVAL; 5627 } 5628 5629 static int __get_parent_info(struct rbd_device *rbd_dev, 5630 struct page *req_page, 5631 struct page *reply_page, 5632 struct parent_image_info *pii) 5633 { 5634 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 5635 size_t reply_len = PAGE_SIZE; 5636 void *p, *end; 5637 int ret; 5638 5639 ret = ceph_osdc_call(osdc, &rbd_dev->header_oid, &rbd_dev->header_oloc, 5640 "rbd", "parent_get", CEPH_OSD_FLAG_READ, 5641 req_page, sizeof(u64), &reply_page, &reply_len); 5642 if (ret) 5643 return ret == -EOPNOTSUPP ? 1 : ret; 5644 5645 p = page_address(reply_page); 5646 end = p + reply_len; 5647 ret = decode_parent_image_spec(&p, end, pii); 5648 if (ret) 5649 return ret; 5650 5651 ret = ceph_osdc_call(osdc, &rbd_dev->header_oid, &rbd_dev->header_oloc, 5652 "rbd", "parent_overlap_get", CEPH_OSD_FLAG_READ, 5653 req_page, sizeof(u64), &reply_page, &reply_len); 5654 if (ret) 5655 return ret; 5656 5657 p = page_address(reply_page); 5658 end = p + reply_len; 5659 ceph_decode_8_safe(&p, end, pii->has_overlap, e_inval); 5660 if (pii->has_overlap) 5661 ceph_decode_64_safe(&p, end, pii->overlap, e_inval); 5662 5663 dout("%s pool_id %llu pool_ns %s image_id %s snap_id %llu has_overlap %d overlap %llu\n", 5664 __func__, pii->pool_id, pii->pool_ns, pii->image_id, pii->snap_id, 5665 pii->has_overlap, pii->overlap); 5666 return 0; 5667 5668 e_inval: 5669 return -EINVAL; 5670 } 5671 5672 /* 5673 * The caller is responsible for @pii. 5674 */ 5675 static int __get_parent_info_legacy(struct rbd_device *rbd_dev, 5676 struct page *req_page, 5677 struct page *reply_page, 5678 struct parent_image_info *pii) 5679 { 5680 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 5681 size_t reply_len = PAGE_SIZE; 5682 void *p, *end; 5683 int ret; 5684 5685 ret = ceph_osdc_call(osdc, &rbd_dev->header_oid, &rbd_dev->header_oloc, 5686 "rbd", "get_parent", CEPH_OSD_FLAG_READ, 5687 req_page, sizeof(u64), &reply_page, &reply_len); 5688 if (ret) 5689 return ret; 5690 5691 p = page_address(reply_page); 5692 end = p + reply_len; 5693 ceph_decode_64_safe(&p, end, pii->pool_id, e_inval); 5694 pii->image_id = ceph_extract_encoded_string(&p, end, NULL, GFP_KERNEL); 5695 if (IS_ERR(pii->image_id)) { 5696 ret = PTR_ERR(pii->image_id); 5697 pii->image_id = NULL; 5698 return ret; 5699 } 5700 ceph_decode_64_safe(&p, end, pii->snap_id, e_inval); 5701 pii->has_overlap = true; 5702 ceph_decode_64_safe(&p, end, pii->overlap, e_inval); 5703 5704 dout("%s pool_id %llu pool_ns %s image_id %s snap_id %llu has_overlap %d overlap %llu\n", 5705 __func__, pii->pool_id, pii->pool_ns, pii->image_id, pii->snap_id, 5706 pii->has_overlap, pii->overlap); 5707 return 0; 5708 5709 e_inval: 5710 return -EINVAL; 5711 } 5712 5713 static int rbd_dev_v2_parent_info(struct rbd_device *rbd_dev, 5714 struct parent_image_info *pii) 5715 { 5716 struct page *req_page, *reply_page; 5717 void *p; 5718 int ret; 5719 5720 req_page = alloc_page(GFP_KERNEL); 5721 if (!req_page) 5722 return -ENOMEM; 5723 5724 reply_page = alloc_page(GFP_KERNEL); 5725 if (!reply_page) { 5726 __free_page(req_page); 5727 return -ENOMEM; 5728 } 5729 5730 p = page_address(req_page); 5731 ceph_encode_64(&p, rbd_dev->spec->snap_id); 5732 ret = __get_parent_info(rbd_dev, req_page, reply_page, pii); 5733 if (ret > 0) 5734 ret = __get_parent_info_legacy(rbd_dev, req_page, reply_page, 5735 pii); 5736 5737 __free_page(req_page); 5738 __free_page(reply_page); 5739 return ret; 5740 } 5741 5742 static int rbd_dev_setup_parent(struct rbd_device *rbd_dev) 5743 { 5744 struct rbd_spec *parent_spec; 5745 struct parent_image_info pii = { 0 }; 5746 int ret; 5747 5748 parent_spec = rbd_spec_alloc(); 5749 if (!parent_spec) 5750 return -ENOMEM; 5751 5752 ret = rbd_dev_v2_parent_info(rbd_dev, &pii); 5753 if (ret) 5754 goto out_err; 5755 5756 if (pii.pool_id == CEPH_NOPOOL || !pii.has_overlap) 5757 goto out; /* No parent? No problem. */ 5758 5759 /* The ceph file layout needs to fit pool id in 32 bits */ 5760 5761 ret = -EIO; 5762 if (pii.pool_id > (u64)U32_MAX) { 5763 rbd_warn(NULL, "parent pool id too large (%llu > %u)", 5764 (unsigned long long)pii.pool_id, U32_MAX); 5765 goto out_err; 5766 } 5767 5768 /* 5769 * The parent won't change except when the clone is flattened, 5770 * so we only need to record the parent image spec once. 5771 */ 5772 parent_spec->pool_id = pii.pool_id; 5773 if (pii.pool_ns && *pii.pool_ns) { 5774 parent_spec->pool_ns = pii.pool_ns; 5775 pii.pool_ns = NULL; 5776 } 5777 parent_spec->image_id = pii.image_id; 5778 pii.image_id = NULL; 5779 parent_spec->snap_id = pii.snap_id; 5780 5781 rbd_assert(!rbd_dev->parent_spec); 5782 rbd_dev->parent_spec = parent_spec; 5783 parent_spec = NULL; /* rbd_dev now owns this */ 5784 5785 /* 5786 * Record the parent overlap. If it's zero, issue a warning as 5787 * we will proceed as if there is no parent. 5788 */ 5789 if (!pii.overlap) 5790 rbd_warn(rbd_dev, "clone is standalone (overlap 0)"); 5791 rbd_dev->parent_overlap = pii.overlap; 5792 5793 out: 5794 ret = 0; 5795 out_err: 5796 rbd_parent_info_cleanup(&pii); 5797 rbd_spec_put(parent_spec); 5798 return ret; 5799 } 5800 5801 static int rbd_dev_v2_striping_info(struct rbd_device *rbd_dev, 5802 u64 *stripe_unit, u64 *stripe_count) 5803 { 5804 struct { 5805 __le64 stripe_unit; 5806 __le64 stripe_count; 5807 } __attribute__ ((packed)) striping_info_buf = { 0 }; 5808 size_t size = sizeof (striping_info_buf); 5809 int ret; 5810 5811 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5812 &rbd_dev->header_oloc, "get_stripe_unit_count", 5813 NULL, 0, &striping_info_buf, size); 5814 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 5815 if (ret < 0) 5816 return ret; 5817 if (ret < size) 5818 return -ERANGE; 5819 5820 *stripe_unit = le64_to_cpu(striping_info_buf.stripe_unit); 5821 *stripe_count = le64_to_cpu(striping_info_buf.stripe_count); 5822 dout(" stripe_unit = %llu stripe_count = %llu\n", *stripe_unit, 5823 *stripe_count); 5824 5825 return 0; 5826 } 5827 5828 static int rbd_dev_v2_data_pool(struct rbd_device *rbd_dev, s64 *data_pool_id) 5829 { 5830 __le64 data_pool_buf; 5831 int ret; 5832 5833 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 5834 &rbd_dev->header_oloc, "get_data_pool", 5835 NULL, 0, &data_pool_buf, 5836 sizeof(data_pool_buf)); 5837 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 5838 if (ret < 0) 5839 return ret; 5840 if (ret < sizeof(data_pool_buf)) 5841 return -EBADMSG; 5842 5843 *data_pool_id = le64_to_cpu(data_pool_buf); 5844 dout(" data_pool_id = %lld\n", *data_pool_id); 5845 WARN_ON(*data_pool_id == CEPH_NOPOOL); 5846 5847 return 0; 5848 } 5849 5850 static char *rbd_dev_image_name(struct rbd_device *rbd_dev) 5851 { 5852 CEPH_DEFINE_OID_ONSTACK(oid); 5853 size_t image_id_size; 5854 char *image_id; 5855 void *p; 5856 void *end; 5857 size_t size; 5858 void *reply_buf = NULL; 5859 size_t len = 0; 5860 char *image_name = NULL; 5861 int ret; 5862 5863 rbd_assert(!rbd_dev->spec->image_name); 5864 5865 len = strlen(rbd_dev->spec->image_id); 5866 image_id_size = sizeof (__le32) + len; 5867 image_id = kmalloc(image_id_size, GFP_KERNEL); 5868 if (!image_id) 5869 return NULL; 5870 5871 p = image_id; 5872 end = image_id + image_id_size; 5873 ceph_encode_string(&p, end, rbd_dev->spec->image_id, (u32)len); 5874 5875 size = sizeof (__le32) + RBD_IMAGE_NAME_LEN_MAX; 5876 reply_buf = kmalloc(size, GFP_KERNEL); 5877 if (!reply_buf) 5878 goto out; 5879 5880 ceph_oid_printf(&oid, "%s", RBD_DIRECTORY); 5881 ret = rbd_obj_method_sync(rbd_dev, &oid, &rbd_dev->header_oloc, 5882 "dir_get_name", image_id, image_id_size, 5883 reply_buf, size); 5884 if (ret < 0) 5885 goto out; 5886 p = reply_buf; 5887 end = reply_buf + ret; 5888 5889 image_name = ceph_extract_encoded_string(&p, end, &len, GFP_KERNEL); 5890 if (IS_ERR(image_name)) 5891 image_name = NULL; 5892 else 5893 dout("%s: name is %s len is %zd\n", __func__, image_name, len); 5894 out: 5895 kfree(reply_buf); 5896 kfree(image_id); 5897 5898 return image_name; 5899 } 5900 5901 static u64 rbd_v1_snap_id_by_name(struct rbd_device *rbd_dev, const char *name) 5902 { 5903 struct ceph_snap_context *snapc = rbd_dev->header.snapc; 5904 const char *snap_name; 5905 u32 which = 0; 5906 5907 /* Skip over names until we find the one we are looking for */ 5908 5909 snap_name = rbd_dev->header.snap_names; 5910 while (which < snapc->num_snaps) { 5911 if (!strcmp(name, snap_name)) 5912 return snapc->snaps[which]; 5913 snap_name += strlen(snap_name) + 1; 5914 which++; 5915 } 5916 return CEPH_NOSNAP; 5917 } 5918 5919 static u64 rbd_v2_snap_id_by_name(struct rbd_device *rbd_dev, const char *name) 5920 { 5921 struct ceph_snap_context *snapc = rbd_dev->header.snapc; 5922 u32 which; 5923 bool found = false; 5924 u64 snap_id; 5925 5926 for (which = 0; !found && which < snapc->num_snaps; which++) { 5927 const char *snap_name; 5928 5929 snap_id = snapc->snaps[which]; 5930 snap_name = rbd_dev_v2_snap_name(rbd_dev, snap_id); 5931 if (IS_ERR(snap_name)) { 5932 /* ignore no-longer existing snapshots */ 5933 if (PTR_ERR(snap_name) == -ENOENT) 5934 continue; 5935 else 5936 break; 5937 } 5938 found = !strcmp(name, snap_name); 5939 kfree(snap_name); 5940 } 5941 return found ? snap_id : CEPH_NOSNAP; 5942 } 5943 5944 /* 5945 * Assumes name is never RBD_SNAP_HEAD_NAME; returns CEPH_NOSNAP if 5946 * no snapshot by that name is found, or if an error occurs. 5947 */ 5948 static u64 rbd_snap_id_by_name(struct rbd_device *rbd_dev, const char *name) 5949 { 5950 if (rbd_dev->image_format == 1) 5951 return rbd_v1_snap_id_by_name(rbd_dev, name); 5952 5953 return rbd_v2_snap_id_by_name(rbd_dev, name); 5954 } 5955 5956 /* 5957 * An image being mapped will have everything but the snap id. 5958 */ 5959 static int rbd_spec_fill_snap_id(struct rbd_device *rbd_dev) 5960 { 5961 struct rbd_spec *spec = rbd_dev->spec; 5962 5963 rbd_assert(spec->pool_id != CEPH_NOPOOL && spec->pool_name); 5964 rbd_assert(spec->image_id && spec->image_name); 5965 rbd_assert(spec->snap_name); 5966 5967 if (strcmp(spec->snap_name, RBD_SNAP_HEAD_NAME)) { 5968 u64 snap_id; 5969 5970 snap_id = rbd_snap_id_by_name(rbd_dev, spec->snap_name); 5971 if (snap_id == CEPH_NOSNAP) 5972 return -ENOENT; 5973 5974 spec->snap_id = snap_id; 5975 } else { 5976 spec->snap_id = CEPH_NOSNAP; 5977 } 5978 5979 return 0; 5980 } 5981 5982 /* 5983 * A parent image will have all ids but none of the names. 5984 * 5985 * All names in an rbd spec are dynamically allocated. It's OK if we 5986 * can't figure out the name for an image id. 5987 */ 5988 static int rbd_spec_fill_names(struct rbd_device *rbd_dev) 5989 { 5990 struct ceph_osd_client *osdc = &rbd_dev->rbd_client->client->osdc; 5991 struct rbd_spec *spec = rbd_dev->spec; 5992 const char *pool_name; 5993 const char *image_name; 5994 const char *snap_name; 5995 int ret; 5996 5997 rbd_assert(spec->pool_id != CEPH_NOPOOL); 5998 rbd_assert(spec->image_id); 5999 rbd_assert(spec->snap_id != CEPH_NOSNAP); 6000 6001 /* Get the pool name; we have to make our own copy of this */ 6002 6003 pool_name = ceph_pg_pool_name_by_id(osdc->osdmap, spec->pool_id); 6004 if (!pool_name) { 6005 rbd_warn(rbd_dev, "no pool with id %llu", spec->pool_id); 6006 return -EIO; 6007 } 6008 pool_name = kstrdup(pool_name, GFP_KERNEL); 6009 if (!pool_name) 6010 return -ENOMEM; 6011 6012 /* Fetch the image name; tolerate failure here */ 6013 6014 image_name = rbd_dev_image_name(rbd_dev); 6015 if (!image_name) 6016 rbd_warn(rbd_dev, "unable to get image name"); 6017 6018 /* Fetch the snapshot name */ 6019 6020 snap_name = rbd_snap_name(rbd_dev, spec->snap_id); 6021 if (IS_ERR(snap_name)) { 6022 ret = PTR_ERR(snap_name); 6023 goto out_err; 6024 } 6025 6026 spec->pool_name = pool_name; 6027 spec->image_name = image_name; 6028 spec->snap_name = snap_name; 6029 6030 return 0; 6031 6032 out_err: 6033 kfree(image_name); 6034 kfree(pool_name); 6035 return ret; 6036 } 6037 6038 static int rbd_dev_v2_snap_context(struct rbd_device *rbd_dev, 6039 struct ceph_snap_context **psnapc) 6040 { 6041 size_t size; 6042 int ret; 6043 void *reply_buf; 6044 void *p; 6045 void *end; 6046 u64 seq; 6047 u32 snap_count; 6048 struct ceph_snap_context *snapc; 6049 u32 i; 6050 6051 /* 6052 * We'll need room for the seq value (maximum snapshot id), 6053 * snapshot count, and array of that many snapshot ids. 6054 * For now we have a fixed upper limit on the number we're 6055 * prepared to receive. 6056 */ 6057 size = sizeof (__le64) + sizeof (__le32) + 6058 RBD_MAX_SNAP_COUNT * sizeof (__le64); 6059 reply_buf = kzalloc(size, GFP_KERNEL); 6060 if (!reply_buf) 6061 return -ENOMEM; 6062 6063 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 6064 &rbd_dev->header_oloc, "get_snapcontext", 6065 NULL, 0, reply_buf, size); 6066 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 6067 if (ret < 0) 6068 goto out; 6069 6070 p = reply_buf; 6071 end = reply_buf + ret; 6072 ret = -ERANGE; 6073 ceph_decode_64_safe(&p, end, seq, out); 6074 ceph_decode_32_safe(&p, end, snap_count, out); 6075 6076 /* 6077 * Make sure the reported number of snapshot ids wouldn't go 6078 * beyond the end of our buffer. 6079 */ 6080 if (snap_count > RBD_MAX_SNAP_COUNT) { 6081 ret = -EINVAL; 6082 goto out; 6083 } 6084 if (!ceph_has_room(&p, end, snap_count * sizeof (__le64))) 6085 goto out; 6086 ret = 0; 6087 6088 snapc = ceph_create_snap_context(snap_count, GFP_KERNEL); 6089 if (!snapc) { 6090 ret = -ENOMEM; 6091 goto out; 6092 } 6093 snapc->seq = seq; 6094 for (i = 0; i < snap_count; i++) 6095 snapc->snaps[i] = ceph_decode_64(&p); 6096 6097 *psnapc = snapc; 6098 dout(" snap context seq = %llu, snap_count = %u\n", 6099 (unsigned long long)seq, (unsigned int)snap_count); 6100 out: 6101 kfree(reply_buf); 6102 6103 return ret; 6104 } 6105 6106 static const char *rbd_dev_v2_snap_name(struct rbd_device *rbd_dev, 6107 u64 snap_id) 6108 { 6109 size_t size; 6110 void *reply_buf; 6111 __le64 snapid; 6112 int ret; 6113 void *p; 6114 void *end; 6115 char *snap_name; 6116 6117 size = sizeof (__le32) + RBD_MAX_SNAP_NAME_LEN; 6118 reply_buf = kmalloc(size, GFP_KERNEL); 6119 if (!reply_buf) 6120 return ERR_PTR(-ENOMEM); 6121 6122 snapid = cpu_to_le64(snap_id); 6123 ret = rbd_obj_method_sync(rbd_dev, &rbd_dev->header_oid, 6124 &rbd_dev->header_oloc, "get_snapshot_name", 6125 &snapid, sizeof(snapid), reply_buf, size); 6126 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 6127 if (ret < 0) { 6128 snap_name = ERR_PTR(ret); 6129 goto out; 6130 } 6131 6132 p = reply_buf; 6133 end = reply_buf + ret; 6134 snap_name = ceph_extract_encoded_string(&p, end, NULL, GFP_KERNEL); 6135 if (IS_ERR(snap_name)) 6136 goto out; 6137 6138 dout(" snap_id 0x%016llx snap_name = %s\n", 6139 (unsigned long long)snap_id, snap_name); 6140 out: 6141 kfree(reply_buf); 6142 6143 return snap_name; 6144 } 6145 6146 static int rbd_dev_v2_header_info(struct rbd_device *rbd_dev, 6147 struct rbd_image_header *header, 6148 bool first_time) 6149 { 6150 int ret; 6151 6152 ret = _rbd_dev_v2_snap_size(rbd_dev, CEPH_NOSNAP, 6153 first_time ? &header->obj_order : NULL, 6154 &header->image_size); 6155 if (ret) 6156 return ret; 6157 6158 if (first_time) { 6159 ret = rbd_dev_v2_header_onetime(rbd_dev, header); 6160 if (ret) 6161 return ret; 6162 } 6163 6164 ret = rbd_dev_v2_snap_context(rbd_dev, &header->snapc); 6165 if (ret) 6166 return ret; 6167 6168 return 0; 6169 } 6170 6171 static int rbd_dev_header_info(struct rbd_device *rbd_dev, 6172 struct rbd_image_header *header, 6173 bool first_time) 6174 { 6175 rbd_assert(rbd_image_format_valid(rbd_dev->image_format)); 6176 rbd_assert(!header->object_prefix && !header->snapc); 6177 6178 if (rbd_dev->image_format == 1) 6179 return rbd_dev_v1_header_info(rbd_dev, header, first_time); 6180 6181 return rbd_dev_v2_header_info(rbd_dev, header, first_time); 6182 } 6183 6184 /* 6185 * Skips over white space at *buf, and updates *buf to point to the 6186 * first found non-space character (if any). Returns the length of 6187 * the token (string of non-white space characters) found. Note 6188 * that *buf must be terminated with '\0'. 6189 */ 6190 static inline size_t next_token(const char **buf) 6191 { 6192 /* 6193 * These are the characters that produce nonzero for 6194 * isspace() in the "C" and "POSIX" locales. 6195 */ 6196 static const char spaces[] = " \f\n\r\t\v"; 6197 6198 *buf += strspn(*buf, spaces); /* Find start of token */ 6199 6200 return strcspn(*buf, spaces); /* Return token length */ 6201 } 6202 6203 /* 6204 * Finds the next token in *buf, dynamically allocates a buffer big 6205 * enough to hold a copy of it, and copies the token into the new 6206 * buffer. The copy is guaranteed to be terminated with '\0'. Note 6207 * that a duplicate buffer is created even for a zero-length token. 6208 * 6209 * Returns a pointer to the newly-allocated duplicate, or a null 6210 * pointer if memory for the duplicate was not available. If 6211 * the lenp argument is a non-null pointer, the length of the token 6212 * (not including the '\0') is returned in *lenp. 6213 * 6214 * If successful, the *buf pointer will be updated to point beyond 6215 * the end of the found token. 6216 * 6217 * Note: uses GFP_KERNEL for allocation. 6218 */ 6219 static inline char *dup_token(const char **buf, size_t *lenp) 6220 { 6221 char *dup; 6222 size_t len; 6223 6224 len = next_token(buf); 6225 dup = kmemdup(*buf, len + 1, GFP_KERNEL); 6226 if (!dup) 6227 return NULL; 6228 *(dup + len) = '\0'; 6229 *buf += len; 6230 6231 if (lenp) 6232 *lenp = len; 6233 6234 return dup; 6235 } 6236 6237 static int rbd_parse_param(struct fs_parameter *param, 6238 struct rbd_parse_opts_ctx *pctx) 6239 { 6240 struct rbd_options *opt = pctx->opts; 6241 struct fs_parse_result result; 6242 struct p_log log = {.prefix = "rbd"}; 6243 int token, ret; 6244 6245 ret = ceph_parse_param(param, pctx->copts, NULL); 6246 if (ret != -ENOPARAM) 6247 return ret; 6248 6249 token = __fs_parse(&log, rbd_parameters, param, &result); 6250 dout("%s fs_parse '%s' token %d\n", __func__, param->key, token); 6251 if (token < 0) { 6252 if (token == -ENOPARAM) 6253 return inval_plog(&log, "Unknown parameter '%s'", 6254 param->key); 6255 return token; 6256 } 6257 6258 switch (token) { 6259 case Opt_queue_depth: 6260 if (result.uint_32 < 1) 6261 goto out_of_range; 6262 opt->queue_depth = result.uint_32; 6263 break; 6264 case Opt_alloc_size: 6265 if (result.uint_32 < SECTOR_SIZE) 6266 goto out_of_range; 6267 if (!is_power_of_2(result.uint_32)) 6268 return inval_plog(&log, "alloc_size must be a power of 2"); 6269 opt->alloc_size = result.uint_32; 6270 break; 6271 case Opt_lock_timeout: 6272 /* 0 is "wait forever" (i.e. infinite timeout) */ 6273 if (result.uint_32 > INT_MAX / 1000) 6274 goto out_of_range; 6275 opt->lock_timeout = msecs_to_jiffies(result.uint_32 * 1000); 6276 break; 6277 case Opt_pool_ns: 6278 kfree(pctx->spec->pool_ns); 6279 pctx->spec->pool_ns = param->string; 6280 param->string = NULL; 6281 break; 6282 case Opt_compression_hint: 6283 switch (result.uint_32) { 6284 case Opt_compression_hint_none: 6285 opt->alloc_hint_flags &= 6286 ~(CEPH_OSD_ALLOC_HINT_FLAG_COMPRESSIBLE | 6287 CEPH_OSD_ALLOC_HINT_FLAG_INCOMPRESSIBLE); 6288 break; 6289 case Opt_compression_hint_compressible: 6290 opt->alloc_hint_flags |= 6291 CEPH_OSD_ALLOC_HINT_FLAG_COMPRESSIBLE; 6292 opt->alloc_hint_flags &= 6293 ~CEPH_OSD_ALLOC_HINT_FLAG_INCOMPRESSIBLE; 6294 break; 6295 case Opt_compression_hint_incompressible: 6296 opt->alloc_hint_flags |= 6297 CEPH_OSD_ALLOC_HINT_FLAG_INCOMPRESSIBLE; 6298 opt->alloc_hint_flags &= 6299 ~CEPH_OSD_ALLOC_HINT_FLAG_COMPRESSIBLE; 6300 break; 6301 default: 6302 BUG(); 6303 } 6304 break; 6305 case Opt_read_only: 6306 opt->read_only = true; 6307 break; 6308 case Opt_read_write: 6309 opt->read_only = false; 6310 break; 6311 case Opt_lock_on_read: 6312 opt->lock_on_read = true; 6313 break; 6314 case Opt_exclusive: 6315 opt->exclusive = true; 6316 break; 6317 case Opt_notrim: 6318 opt->trim = false; 6319 break; 6320 default: 6321 BUG(); 6322 } 6323 6324 return 0; 6325 6326 out_of_range: 6327 return inval_plog(&log, "%s out of range", param->key); 6328 } 6329 6330 /* 6331 * This duplicates most of generic_parse_monolithic(), untying it from 6332 * fs_context and skipping standard superblock and security options. 6333 */ 6334 static int rbd_parse_options(char *options, struct rbd_parse_opts_ctx *pctx) 6335 { 6336 char *key; 6337 int ret = 0; 6338 6339 dout("%s '%s'\n", __func__, options); 6340 while ((key = strsep(&options, ",")) != NULL) { 6341 if (*key) { 6342 struct fs_parameter param = { 6343 .key = key, 6344 .type = fs_value_is_flag, 6345 }; 6346 char *value = strchr(key, '='); 6347 size_t v_len = 0; 6348 6349 if (value) { 6350 if (value == key) 6351 continue; 6352 *value++ = 0; 6353 v_len = strlen(value); 6354 param.string = kmemdup_nul(value, v_len, 6355 GFP_KERNEL); 6356 if (!param.string) 6357 return -ENOMEM; 6358 param.type = fs_value_is_string; 6359 } 6360 param.size = v_len; 6361 6362 ret = rbd_parse_param(¶m, pctx); 6363 kfree(param.string); 6364 if (ret) 6365 break; 6366 } 6367 } 6368 6369 return ret; 6370 } 6371 6372 /* 6373 * Parse the options provided for an "rbd add" (i.e., rbd image 6374 * mapping) request. These arrive via a write to /sys/bus/rbd/add, 6375 * and the data written is passed here via a NUL-terminated buffer. 6376 * Returns 0 if successful or an error code otherwise. 6377 * 6378 * The information extracted from these options is recorded in 6379 * the other parameters which return dynamically-allocated 6380 * structures: 6381 * ceph_opts 6382 * The address of a pointer that will refer to a ceph options 6383 * structure. Caller must release the returned pointer using 6384 * ceph_destroy_options() when it is no longer needed. 6385 * rbd_opts 6386 * Address of an rbd options pointer. Fully initialized by 6387 * this function; caller must release with kfree(). 6388 * spec 6389 * Address of an rbd image specification pointer. Fully 6390 * initialized by this function based on parsed options. 6391 * Caller must release with rbd_spec_put(). 6392 * 6393 * The options passed take this form: 6394 * <mon_addrs> <options> <pool_name> <image_name> [<snap_id>] 6395 * where: 6396 * <mon_addrs> 6397 * A comma-separated list of one or more monitor addresses. 6398 * A monitor address is an ip address, optionally followed 6399 * by a port number (separated by a colon). 6400 * I.e.: ip1[:port1][,ip2[:port2]...] 6401 * <options> 6402 * A comma-separated list of ceph and/or rbd options. 6403 * <pool_name> 6404 * The name of the rados pool containing the rbd image. 6405 * <image_name> 6406 * The name of the image in that pool to map. 6407 * <snap_id> 6408 * An optional snapshot id. If provided, the mapping will 6409 * present data from the image at the time that snapshot was 6410 * created. The image head is used if no snapshot id is 6411 * provided. Snapshot mappings are always read-only. 6412 */ 6413 static int rbd_add_parse_args(const char *buf, 6414 struct ceph_options **ceph_opts, 6415 struct rbd_options **opts, 6416 struct rbd_spec **rbd_spec) 6417 { 6418 size_t len; 6419 char *options; 6420 const char *mon_addrs; 6421 char *snap_name; 6422 size_t mon_addrs_size; 6423 struct rbd_parse_opts_ctx pctx = { 0 }; 6424 int ret; 6425 6426 /* The first four tokens are required */ 6427 6428 len = next_token(&buf); 6429 if (!len) { 6430 rbd_warn(NULL, "no monitor address(es) provided"); 6431 return -EINVAL; 6432 } 6433 mon_addrs = buf; 6434 mon_addrs_size = len; 6435 buf += len; 6436 6437 ret = -EINVAL; 6438 options = dup_token(&buf, NULL); 6439 if (!options) 6440 return -ENOMEM; 6441 if (!*options) { 6442 rbd_warn(NULL, "no options provided"); 6443 goto out_err; 6444 } 6445 6446 pctx.spec = rbd_spec_alloc(); 6447 if (!pctx.spec) 6448 goto out_mem; 6449 6450 pctx.spec->pool_name = dup_token(&buf, NULL); 6451 if (!pctx.spec->pool_name) 6452 goto out_mem; 6453 if (!*pctx.spec->pool_name) { 6454 rbd_warn(NULL, "no pool name provided"); 6455 goto out_err; 6456 } 6457 6458 pctx.spec->image_name = dup_token(&buf, NULL); 6459 if (!pctx.spec->image_name) 6460 goto out_mem; 6461 if (!*pctx.spec->image_name) { 6462 rbd_warn(NULL, "no image name provided"); 6463 goto out_err; 6464 } 6465 6466 /* 6467 * Snapshot name is optional; default is to use "-" 6468 * (indicating the head/no snapshot). 6469 */ 6470 len = next_token(&buf); 6471 if (!len) { 6472 buf = RBD_SNAP_HEAD_NAME; /* No snapshot supplied */ 6473 len = sizeof (RBD_SNAP_HEAD_NAME) - 1; 6474 } else if (len > RBD_MAX_SNAP_NAME_LEN) { 6475 ret = -ENAMETOOLONG; 6476 goto out_err; 6477 } 6478 snap_name = kmemdup(buf, len + 1, GFP_KERNEL); 6479 if (!snap_name) 6480 goto out_mem; 6481 *(snap_name + len) = '\0'; 6482 pctx.spec->snap_name = snap_name; 6483 6484 pctx.copts = ceph_alloc_options(); 6485 if (!pctx.copts) 6486 goto out_mem; 6487 6488 /* Initialize all rbd options to the defaults */ 6489 6490 pctx.opts = kzalloc_obj(*pctx.opts); 6491 if (!pctx.opts) 6492 goto out_mem; 6493 6494 pctx.opts->read_only = RBD_READ_ONLY_DEFAULT; 6495 pctx.opts->queue_depth = RBD_QUEUE_DEPTH_DEFAULT; 6496 pctx.opts->alloc_size = RBD_ALLOC_SIZE_DEFAULT; 6497 pctx.opts->lock_timeout = RBD_LOCK_TIMEOUT_DEFAULT; 6498 pctx.opts->lock_on_read = RBD_LOCK_ON_READ_DEFAULT; 6499 pctx.opts->exclusive = RBD_EXCLUSIVE_DEFAULT; 6500 pctx.opts->trim = RBD_TRIM_DEFAULT; 6501 6502 ret = ceph_parse_mon_ips(mon_addrs, mon_addrs_size, pctx.copts, NULL, 6503 ','); 6504 if (ret) 6505 goto out_err; 6506 6507 ret = rbd_parse_options(options, &pctx); 6508 if (ret) 6509 goto out_err; 6510 6511 *ceph_opts = pctx.copts; 6512 *opts = pctx.opts; 6513 *rbd_spec = pctx.spec; 6514 kfree(options); 6515 return 0; 6516 6517 out_mem: 6518 ret = -ENOMEM; 6519 out_err: 6520 kfree(pctx.opts); 6521 ceph_destroy_options(pctx.copts); 6522 rbd_spec_put(pctx.spec); 6523 kfree(options); 6524 return ret; 6525 } 6526 6527 static void rbd_dev_image_unlock(struct rbd_device *rbd_dev) 6528 { 6529 dout("%s rbd_dev %p\n", __func__, rbd_dev); 6530 6531 disable_delayed_work_sync(&rbd_dev->lock_dwork); 6532 disable_work_sync(&rbd_dev->unlock_work); 6533 6534 down_write(&rbd_dev->lock_rwsem); 6535 if (__rbd_is_lock_owner(rbd_dev)) 6536 __rbd_release_lock(rbd_dev); 6537 up_write(&rbd_dev->lock_rwsem); 6538 6539 flush_work(&rbd_dev->acquired_lock_work); 6540 flush_work(&rbd_dev->released_lock_work); 6541 } 6542 6543 /* 6544 * If the wait is interrupted, an error is returned even if the lock 6545 * was successfully acquired. rbd_dev_image_unlock() will release it 6546 * if needed. 6547 */ 6548 static int rbd_add_acquire_lock(struct rbd_device *rbd_dev) 6549 { 6550 long ret; 6551 6552 if (!(rbd_dev->header.features & RBD_FEATURE_EXCLUSIVE_LOCK)) { 6553 if (!rbd_dev->opts->exclusive && !rbd_dev->opts->lock_on_read) 6554 return 0; 6555 6556 rbd_warn(rbd_dev, "exclusive-lock feature is not enabled"); 6557 return -EINVAL; 6558 } 6559 6560 if (rbd_is_ro(rbd_dev)) 6561 return 0; 6562 6563 rbd_assert(!rbd_is_lock_owner(rbd_dev)); 6564 queue_delayed_work(rbd_dev->task_wq, &rbd_dev->lock_dwork, 0); 6565 ret = wait_for_completion_killable_timeout(&rbd_dev->acquire_wait, 6566 ceph_timeout_jiffies(rbd_dev->opts->lock_timeout)); 6567 if (ret > 0) { 6568 ret = rbd_dev->acquire_err; 6569 } else { 6570 cancel_delayed_work_sync(&rbd_dev->lock_dwork); 6571 if (!ret) 6572 ret = -ETIMEDOUT; 6573 6574 rbd_warn(rbd_dev, "failed to acquire lock: %ld", ret); 6575 } 6576 if (ret) 6577 return ret; 6578 6579 return 0; 6580 } 6581 6582 /* 6583 * An rbd format 2 image has a unique identifier, distinct from the 6584 * name given to it by the user. Internally, that identifier is 6585 * what's used to specify the names of objects related to the image. 6586 * 6587 * A special "rbd id" object is used to map an rbd image name to its 6588 * id. If that object doesn't exist, then there is no v2 rbd image 6589 * with the supplied name. 6590 * 6591 * This function will record the given rbd_dev's image_id field if 6592 * it can be determined, and in that case will return 0. If any 6593 * errors occur a negative errno will be returned and the rbd_dev's 6594 * image_id field will be unchanged (and should be NULL). 6595 */ 6596 static int rbd_dev_image_id(struct rbd_device *rbd_dev) 6597 { 6598 int ret; 6599 size_t size; 6600 CEPH_DEFINE_OID_ONSTACK(oid); 6601 void *response; 6602 char *image_id; 6603 6604 /* 6605 * When probing a parent image, the image id is already 6606 * known (and the image name likely is not). There's no 6607 * need to fetch the image id again in this case. We 6608 * do still need to set the image format though. 6609 */ 6610 if (rbd_dev->spec->image_id) { 6611 rbd_dev->image_format = *rbd_dev->spec->image_id ? 2 : 1; 6612 6613 return 0; 6614 } 6615 6616 /* 6617 * First, see if the format 2 image id file exists, and if 6618 * so, get the image's persistent id from it. 6619 */ 6620 ret = ceph_oid_aprintf(&oid, GFP_KERNEL, "%s%s", RBD_ID_PREFIX, 6621 rbd_dev->spec->image_name); 6622 if (ret) 6623 return ret; 6624 6625 dout("rbd id object name is %s\n", oid.name); 6626 6627 /* Response will be an encoded string, which includes a length */ 6628 size = sizeof (__le32) + RBD_IMAGE_ID_LEN_MAX; 6629 response = kzalloc(size, GFP_NOIO); 6630 if (!response) { 6631 ret = -ENOMEM; 6632 goto out; 6633 } 6634 6635 /* If it doesn't exist we'll assume it's a format 1 image */ 6636 6637 ret = rbd_obj_method_sync(rbd_dev, &oid, &rbd_dev->header_oloc, 6638 "get_id", NULL, 0, 6639 response, size); 6640 dout("%s: rbd_obj_method_sync returned %d\n", __func__, ret); 6641 if (ret == -ENOENT) { 6642 image_id = kstrdup("", GFP_KERNEL); 6643 ret = image_id ? 0 : -ENOMEM; 6644 if (!ret) 6645 rbd_dev->image_format = 1; 6646 } else if (ret >= 0) { 6647 void *p = response; 6648 6649 image_id = ceph_extract_encoded_string(&p, p + ret, 6650 NULL, GFP_NOIO); 6651 ret = PTR_ERR_OR_ZERO(image_id); 6652 if (!ret) 6653 rbd_dev->image_format = 2; 6654 } 6655 6656 if (!ret) { 6657 rbd_dev->spec->image_id = image_id; 6658 dout("image_id is %s\n", image_id); 6659 } 6660 out: 6661 kfree(response); 6662 ceph_oid_destroy(&oid); 6663 return ret; 6664 } 6665 6666 /* 6667 * Undo whatever state changes are made by v1 or v2 header info 6668 * call. 6669 */ 6670 static void rbd_dev_unprobe(struct rbd_device *rbd_dev) 6671 { 6672 rbd_dev_parent_put(rbd_dev); 6673 rbd_object_map_free(rbd_dev); 6674 rbd_dev_mapping_clear(rbd_dev); 6675 6676 /* Free dynamic fields from the header, then zero it out */ 6677 6678 rbd_image_header_cleanup(&rbd_dev->header); 6679 } 6680 6681 static int rbd_dev_v2_header_onetime(struct rbd_device *rbd_dev, 6682 struct rbd_image_header *header) 6683 { 6684 int ret; 6685 6686 ret = rbd_dev_v2_object_prefix(rbd_dev, &header->object_prefix); 6687 if (ret) 6688 return ret; 6689 6690 /* 6691 * Get the and check features for the image. Currently the 6692 * features are assumed to never change. 6693 */ 6694 ret = _rbd_dev_v2_snap_features(rbd_dev, CEPH_NOSNAP, 6695 rbd_is_ro(rbd_dev), &header->features); 6696 if (ret) 6697 return ret; 6698 6699 /* If the image supports fancy striping, get its parameters */ 6700 6701 if (header->features & RBD_FEATURE_STRIPINGV2) { 6702 ret = rbd_dev_v2_striping_info(rbd_dev, &header->stripe_unit, 6703 &header->stripe_count); 6704 if (ret) 6705 return ret; 6706 } 6707 6708 if (header->features & RBD_FEATURE_DATA_POOL) { 6709 ret = rbd_dev_v2_data_pool(rbd_dev, &header->data_pool_id); 6710 if (ret) 6711 return ret; 6712 } 6713 6714 return 0; 6715 } 6716 6717 /* 6718 * @depth is rbd_dev_image_probe() -> rbd_dev_probe_parent() -> 6719 * rbd_dev_image_probe() recursion depth, which means it's also the 6720 * length of the already discovered part of the parent chain. 6721 */ 6722 static int rbd_dev_probe_parent(struct rbd_device *rbd_dev, int depth) 6723 { 6724 struct rbd_device *parent = NULL; 6725 int ret; 6726 6727 if (!rbd_dev->parent_spec) 6728 return 0; 6729 6730 if (++depth > RBD_MAX_PARENT_CHAIN_LEN) { 6731 pr_info("parent chain is too long (%d)\n", depth); 6732 ret = -EINVAL; 6733 goto out_err; 6734 } 6735 6736 parent = __rbd_dev_create(rbd_dev->parent_spec); 6737 if (!parent) { 6738 ret = -ENOMEM; 6739 goto out_err; 6740 } 6741 6742 /* 6743 * Images related by parent/child relationships always share 6744 * rbd_client and spec/parent_spec, so bump their refcounts. 6745 */ 6746 parent->rbd_client = __rbd_get_client(rbd_dev->rbd_client); 6747 parent->spec = rbd_spec_get(rbd_dev->parent_spec); 6748 6749 __set_bit(RBD_DEV_FLAG_READONLY, &parent->flags); 6750 6751 ret = rbd_dev_image_probe(parent, depth); 6752 if (ret < 0) 6753 goto out_err; 6754 6755 rbd_dev->parent = parent; 6756 atomic_set(&rbd_dev->parent_ref, 1); 6757 return 0; 6758 6759 out_err: 6760 rbd_dev_unparent(rbd_dev); 6761 rbd_dev_destroy(parent); 6762 return ret; 6763 } 6764 6765 static void rbd_dev_device_release(struct rbd_device *rbd_dev) 6766 { 6767 clear_bit(RBD_DEV_FLAG_EXISTS, &rbd_dev->flags); 6768 rbd_free_disk(rbd_dev); 6769 if (!single_major) 6770 unregister_blkdev(rbd_dev->major, rbd_dev->name); 6771 } 6772 6773 /* 6774 * rbd_dev->header_rwsem must be locked for write and will be unlocked 6775 * upon return. 6776 */ 6777 static int rbd_dev_device_setup(struct rbd_device *rbd_dev) 6778 { 6779 int ret; 6780 6781 /* Record our major and minor device numbers. */ 6782 6783 if (!single_major) { 6784 ret = register_blkdev(0, rbd_dev->name); 6785 if (ret < 0) 6786 goto err_out_unlock; 6787 6788 rbd_dev->major = ret; 6789 rbd_dev->minor = 0; 6790 } else { 6791 rbd_dev->major = rbd_major; 6792 rbd_dev->minor = rbd_dev_id_to_minor(rbd_dev->dev_id); 6793 } 6794 6795 /* Set up the blkdev mapping. */ 6796 6797 ret = rbd_init_disk(rbd_dev); 6798 if (ret) 6799 goto err_out_blkdev; 6800 6801 set_capacity(rbd_dev->disk, rbd_dev->mapping.size / SECTOR_SIZE); 6802 set_disk_ro(rbd_dev->disk, rbd_is_ro(rbd_dev)); 6803 6804 ret = dev_set_name(&rbd_dev->dev, "%d", rbd_dev->dev_id); 6805 if (ret) 6806 goto err_out_disk; 6807 6808 set_bit(RBD_DEV_FLAG_EXISTS, &rbd_dev->flags); 6809 up_write(&rbd_dev->header_rwsem); 6810 return 0; 6811 6812 err_out_disk: 6813 rbd_free_disk(rbd_dev); 6814 err_out_blkdev: 6815 if (!single_major) 6816 unregister_blkdev(rbd_dev->major, rbd_dev->name); 6817 err_out_unlock: 6818 up_write(&rbd_dev->header_rwsem); 6819 return ret; 6820 } 6821 6822 static int rbd_dev_header_name(struct rbd_device *rbd_dev) 6823 { 6824 struct rbd_spec *spec = rbd_dev->spec; 6825 int ret; 6826 6827 /* Record the header object name for this rbd image. */ 6828 6829 rbd_assert(rbd_image_format_valid(rbd_dev->image_format)); 6830 if (rbd_dev->image_format == 1) 6831 ret = ceph_oid_aprintf(&rbd_dev->header_oid, GFP_KERNEL, "%s%s", 6832 spec->image_name, RBD_SUFFIX); 6833 else 6834 ret = ceph_oid_aprintf(&rbd_dev->header_oid, GFP_KERNEL, "%s%s", 6835 RBD_HEADER_PREFIX, spec->image_id); 6836 6837 return ret; 6838 } 6839 6840 static void rbd_print_dne(struct rbd_device *rbd_dev, bool is_snap) 6841 { 6842 if (!is_snap) { 6843 pr_info("image %s/%s%s%s does not exist\n", 6844 rbd_dev->spec->pool_name, 6845 rbd_dev->spec->pool_ns ?: "", 6846 rbd_dev->spec->pool_ns ? "/" : "", 6847 rbd_dev->spec->image_name); 6848 } else { 6849 pr_info("snap %s/%s%s%s@%s does not exist\n", 6850 rbd_dev->spec->pool_name, 6851 rbd_dev->spec->pool_ns ?: "", 6852 rbd_dev->spec->pool_ns ? "/" : "", 6853 rbd_dev->spec->image_name, 6854 rbd_dev->spec->snap_name); 6855 } 6856 } 6857 6858 static void rbd_dev_image_release(struct rbd_device *rbd_dev) 6859 { 6860 if (!rbd_is_ro(rbd_dev)) 6861 rbd_unregister_watch(rbd_dev); 6862 6863 rbd_dev_unprobe(rbd_dev); 6864 rbd_dev->image_format = 0; 6865 kfree(rbd_dev->spec->image_id); 6866 rbd_dev->spec->image_id = NULL; 6867 } 6868 6869 /* 6870 * Probe for the existence of the header object for the given rbd 6871 * device. If this image is the one being mapped (i.e., not a 6872 * parent), initiate a watch on its header object before using that 6873 * object to get detailed information about the rbd image. 6874 * 6875 * On success, returns with header_rwsem held for write if called 6876 * with @depth == 0. 6877 */ 6878 static int rbd_dev_image_probe(struct rbd_device *rbd_dev, int depth) 6879 { 6880 bool need_watch = !rbd_is_ro(rbd_dev); 6881 int ret; 6882 6883 /* 6884 * Get the id from the image id object. Unless there's an 6885 * error, rbd_dev->spec->image_id will be filled in with 6886 * a dynamically-allocated string, and rbd_dev->image_format 6887 * will be set to either 1 or 2. 6888 */ 6889 ret = rbd_dev_image_id(rbd_dev); 6890 if (ret) 6891 return ret; 6892 6893 ret = rbd_dev_header_name(rbd_dev); 6894 if (ret) 6895 goto err_out_format; 6896 6897 if (need_watch) { 6898 ret = rbd_register_watch(rbd_dev); 6899 if (ret) { 6900 if (ret == -ENOENT) 6901 rbd_print_dne(rbd_dev, false); 6902 goto err_out_format; 6903 } 6904 } 6905 6906 if (!depth) 6907 down_write(&rbd_dev->header_rwsem); 6908 6909 ret = rbd_dev_header_info(rbd_dev, &rbd_dev->header, true); 6910 if (ret) { 6911 if (ret == -ENOENT && !need_watch) 6912 rbd_print_dne(rbd_dev, false); 6913 goto err_out_probe; 6914 } 6915 6916 rbd_init_layout(rbd_dev); 6917 6918 /* 6919 * If this image is the one being mapped, we have pool name and 6920 * id, image name and id, and snap name - need to fill snap id. 6921 * Otherwise this is a parent image, identified by pool, image 6922 * and snap ids - need to fill in names for those ids. 6923 */ 6924 if (!depth) 6925 ret = rbd_spec_fill_snap_id(rbd_dev); 6926 else 6927 ret = rbd_spec_fill_names(rbd_dev); 6928 if (ret) { 6929 if (ret == -ENOENT) 6930 rbd_print_dne(rbd_dev, true); 6931 goto err_out_probe; 6932 } 6933 6934 ret = rbd_dev_mapping_set(rbd_dev); 6935 if (ret) 6936 goto err_out_probe; 6937 6938 if (rbd_is_snap(rbd_dev) && 6939 (rbd_dev->header.features & RBD_FEATURE_OBJECT_MAP)) { 6940 ret = rbd_object_map_load(rbd_dev); 6941 if (ret) 6942 goto err_out_probe; 6943 } 6944 6945 if (rbd_dev->header.features & RBD_FEATURE_LAYERING) { 6946 ret = rbd_dev_setup_parent(rbd_dev); 6947 if (ret) 6948 goto err_out_probe; 6949 } 6950 6951 ret = rbd_dev_probe_parent(rbd_dev, depth); 6952 if (ret) 6953 goto err_out_probe; 6954 6955 dout("discovered format %u image, header name is %s\n", 6956 rbd_dev->image_format, rbd_dev->header_oid.name); 6957 return 0; 6958 6959 err_out_probe: 6960 if (!depth) 6961 up_write(&rbd_dev->header_rwsem); 6962 if (need_watch) 6963 rbd_unregister_watch(rbd_dev); 6964 rbd_dev_unprobe(rbd_dev); 6965 err_out_format: 6966 rbd_dev->image_format = 0; 6967 kfree(rbd_dev->spec->image_id); 6968 rbd_dev->spec->image_id = NULL; 6969 return ret; 6970 } 6971 6972 static void rbd_dev_update_header(struct rbd_device *rbd_dev, 6973 struct rbd_image_header *header) 6974 { 6975 rbd_assert(rbd_image_format_valid(rbd_dev->image_format)); 6976 rbd_assert(rbd_dev->header.object_prefix); /* !first_time */ 6977 6978 if (rbd_dev->header.image_size != header->image_size) { 6979 rbd_dev->header.image_size = header->image_size; 6980 6981 if (!rbd_is_snap(rbd_dev)) { 6982 rbd_dev->mapping.size = header->image_size; 6983 rbd_dev_update_size(rbd_dev); 6984 } 6985 } 6986 6987 ceph_put_snap_context(rbd_dev->header.snapc); 6988 rbd_dev->header.snapc = header->snapc; 6989 header->snapc = NULL; 6990 6991 if (rbd_dev->image_format == 1) { 6992 kfree(rbd_dev->header.snap_names); 6993 rbd_dev->header.snap_names = header->snap_names; 6994 header->snap_names = NULL; 6995 6996 kfree(rbd_dev->header.snap_sizes); 6997 rbd_dev->header.snap_sizes = header->snap_sizes; 6998 header->snap_sizes = NULL; 6999 } 7000 } 7001 7002 static void rbd_dev_update_parent(struct rbd_device *rbd_dev, 7003 struct parent_image_info *pii) 7004 { 7005 if (pii->pool_id == CEPH_NOPOOL || !pii->has_overlap) { 7006 /* 7007 * Either the parent never existed, or we have 7008 * record of it but the image got flattened so it no 7009 * longer has a parent. When the parent of a 7010 * layered image disappears we immediately set the 7011 * overlap to 0. The effect of this is that all new 7012 * requests will be treated as if the image had no 7013 * parent. 7014 * 7015 * If !pii.has_overlap, the parent image spec is not 7016 * applicable. It's there to avoid duplication in each 7017 * snapshot record. 7018 */ 7019 if (rbd_dev->parent_overlap) { 7020 rbd_dev->parent_overlap = 0; 7021 rbd_dev_parent_put(rbd_dev); 7022 pr_info("%s: clone has been flattened\n", 7023 rbd_dev->disk->disk_name); 7024 } 7025 } else { 7026 rbd_assert(rbd_dev->parent_spec); 7027 7028 /* 7029 * Update the parent overlap. If it became zero, issue 7030 * a warning as we will proceed as if there is no parent. 7031 */ 7032 if (!pii->overlap && rbd_dev->parent_overlap) 7033 rbd_warn(rbd_dev, 7034 "clone has become standalone (overlap 0)"); 7035 rbd_dev->parent_overlap = pii->overlap; 7036 } 7037 } 7038 7039 static int rbd_dev_refresh(struct rbd_device *rbd_dev) 7040 { 7041 struct rbd_image_header header = { 0 }; 7042 struct parent_image_info pii = { 0 }; 7043 int ret; 7044 7045 dout("%s rbd_dev %p\n", __func__, rbd_dev); 7046 7047 ret = rbd_dev_header_info(rbd_dev, &header, false); 7048 if (ret) 7049 goto out; 7050 7051 /* 7052 * If there is a parent, see if it has disappeared due to the 7053 * mapped image getting flattened. 7054 */ 7055 if (rbd_dev->parent) { 7056 ret = rbd_dev_v2_parent_info(rbd_dev, &pii); 7057 if (ret) 7058 goto out; 7059 } 7060 7061 down_write(&rbd_dev->header_rwsem); 7062 rbd_dev_update_header(rbd_dev, &header); 7063 if (rbd_dev->parent) 7064 rbd_dev_update_parent(rbd_dev, &pii); 7065 up_write(&rbd_dev->header_rwsem); 7066 7067 out: 7068 rbd_parent_info_cleanup(&pii); 7069 rbd_image_header_cleanup(&header); 7070 return ret; 7071 } 7072 7073 static ssize_t do_rbd_add(const char *buf, size_t count) 7074 { 7075 struct rbd_device *rbd_dev = NULL; 7076 struct ceph_options *ceph_opts = NULL; 7077 struct rbd_options *rbd_opts = NULL; 7078 struct rbd_spec *spec = NULL; 7079 struct rbd_client *rbdc; 7080 int rc; 7081 7082 if (!capable(CAP_SYS_ADMIN)) 7083 return -EPERM; 7084 7085 if (!try_module_get(THIS_MODULE)) 7086 return -ENODEV; 7087 7088 /* parse add command */ 7089 rc = rbd_add_parse_args(buf, &ceph_opts, &rbd_opts, &spec); 7090 if (rc < 0) 7091 goto out; 7092 7093 rbdc = rbd_get_client(ceph_opts); 7094 if (IS_ERR(rbdc)) { 7095 rc = PTR_ERR(rbdc); 7096 goto err_out_args; 7097 } 7098 7099 /* pick the pool */ 7100 rc = ceph_pg_poolid_by_name(rbdc->client->osdc.osdmap, spec->pool_name); 7101 if (rc < 0) { 7102 if (rc == -ENOENT) 7103 pr_info("pool %s does not exist\n", spec->pool_name); 7104 goto err_out_client; 7105 } 7106 spec->pool_id = (u64)rc; 7107 7108 rbd_dev = rbd_dev_create(rbdc, spec, rbd_opts); 7109 if (!rbd_dev) { 7110 rc = -ENOMEM; 7111 goto err_out_client; 7112 } 7113 rbdc = NULL; /* rbd_dev now owns this */ 7114 spec = NULL; /* rbd_dev now owns this */ 7115 rbd_opts = NULL; /* rbd_dev now owns this */ 7116 7117 /* if we are mapping a snapshot it will be a read-only mapping */ 7118 if (rbd_dev->opts->read_only || 7119 strcmp(rbd_dev->spec->snap_name, RBD_SNAP_HEAD_NAME)) 7120 __set_bit(RBD_DEV_FLAG_READONLY, &rbd_dev->flags); 7121 7122 rbd_dev->config_info = kstrdup(buf, GFP_KERNEL); 7123 if (!rbd_dev->config_info) { 7124 rc = -ENOMEM; 7125 goto err_out_rbd_dev; 7126 } 7127 7128 rc = rbd_dev_image_probe(rbd_dev, 0); 7129 if (rc < 0) 7130 goto err_out_rbd_dev; 7131 7132 if (rbd_dev->opts->alloc_size > rbd_dev->layout.object_size) { 7133 rbd_warn(rbd_dev, "alloc_size adjusted to %u", 7134 rbd_dev->layout.object_size); 7135 rbd_dev->opts->alloc_size = rbd_dev->layout.object_size; 7136 } 7137 7138 rc = rbd_dev_device_setup(rbd_dev); 7139 if (rc) 7140 goto err_out_image_probe; 7141 7142 rc = rbd_add_acquire_lock(rbd_dev); 7143 if (rc) 7144 goto err_out_image_lock; 7145 7146 /* Everything's ready. Announce the disk to the world. */ 7147 7148 rc = device_add(&rbd_dev->dev); 7149 if (rc) 7150 goto err_out_image_lock; 7151 7152 rc = device_add_disk(&rbd_dev->dev, rbd_dev->disk, NULL); 7153 if (rc) 7154 goto err_out_device; 7155 7156 spin_lock(&rbd_dev_list_lock); 7157 list_add_tail(&rbd_dev->node, &rbd_dev_list); 7158 spin_unlock(&rbd_dev_list_lock); 7159 7160 pr_info("%s: capacity %llu features 0x%llx\n", rbd_dev->disk->disk_name, 7161 (unsigned long long)get_capacity(rbd_dev->disk) << SECTOR_SHIFT, 7162 rbd_dev->header.features); 7163 rc = count; 7164 out: 7165 module_put(THIS_MODULE); 7166 return rc; 7167 7168 err_out_device: 7169 device_del(&rbd_dev->dev); 7170 err_out_image_lock: 7171 rbd_dev_image_unlock(rbd_dev); 7172 rbd_dev_device_release(rbd_dev); 7173 err_out_image_probe: 7174 rbd_dev_image_release(rbd_dev); 7175 err_out_rbd_dev: 7176 rbd_dev_destroy(rbd_dev); 7177 err_out_client: 7178 rbd_put_client(rbdc); 7179 err_out_args: 7180 rbd_spec_put(spec); 7181 kfree(rbd_opts); 7182 goto out; 7183 } 7184 7185 static ssize_t add_store(const struct bus_type *bus, const char *buf, size_t count) 7186 { 7187 if (single_major) 7188 return -EINVAL; 7189 7190 return do_rbd_add(buf, count); 7191 } 7192 7193 static ssize_t add_single_major_store(const struct bus_type *bus, const char *buf, 7194 size_t count) 7195 { 7196 return do_rbd_add(buf, count); 7197 } 7198 7199 static void rbd_dev_remove_parent(struct rbd_device *rbd_dev) 7200 { 7201 while (rbd_dev->parent) { 7202 struct rbd_device *first = rbd_dev; 7203 struct rbd_device *second = first->parent; 7204 struct rbd_device *third; 7205 7206 /* 7207 * Follow to the parent with no grandparent and 7208 * remove it. 7209 */ 7210 while (second && (third = second->parent)) { 7211 first = second; 7212 second = third; 7213 } 7214 rbd_assert(second); 7215 rbd_dev_image_release(second); 7216 rbd_dev_destroy(second); 7217 first->parent = NULL; 7218 first->parent_overlap = 0; 7219 7220 rbd_assert(first->parent_spec); 7221 rbd_spec_put(first->parent_spec); 7222 first->parent_spec = NULL; 7223 } 7224 } 7225 7226 static ssize_t do_rbd_remove(const char *buf, size_t count) 7227 { 7228 struct rbd_device *rbd_dev = NULL; 7229 int dev_id; 7230 char opt_buf[6]; 7231 bool force = false; 7232 int ret; 7233 7234 if (!capable(CAP_SYS_ADMIN)) 7235 return -EPERM; 7236 7237 dev_id = -1; 7238 opt_buf[0] = '\0'; 7239 sscanf(buf, "%d %5s", &dev_id, opt_buf); 7240 if (dev_id < 0) { 7241 pr_err("dev_id out of range\n"); 7242 return -EINVAL; 7243 } 7244 if (opt_buf[0] != '\0') { 7245 if (!strcmp(opt_buf, "force")) { 7246 force = true; 7247 } else { 7248 pr_err("bad remove option at '%s'\n", opt_buf); 7249 return -EINVAL; 7250 } 7251 } 7252 7253 ret = -ENOENT; 7254 spin_lock(&rbd_dev_list_lock); 7255 list_for_each_entry(rbd_dev, &rbd_dev_list, node) { 7256 if (rbd_dev->dev_id == dev_id) { 7257 ret = 0; 7258 break; 7259 } 7260 } 7261 if (!ret) { 7262 spin_lock_irq(&rbd_dev->lock); 7263 if (rbd_dev->open_count && !force) 7264 ret = -EBUSY; 7265 else if (test_and_set_bit(RBD_DEV_FLAG_REMOVING, 7266 &rbd_dev->flags)) 7267 ret = -EINPROGRESS; 7268 spin_unlock_irq(&rbd_dev->lock); 7269 } 7270 spin_unlock(&rbd_dev_list_lock); 7271 if (ret) 7272 return ret; 7273 7274 if (force) { 7275 /* 7276 * Prevent new IO from being queued and wait for existing 7277 * IO to complete/fail. 7278 */ 7279 unsigned int memflags = blk_mq_freeze_queue(rbd_dev->disk->queue); 7280 7281 blk_mark_disk_dead(rbd_dev->disk); 7282 blk_mq_unfreeze_queue(rbd_dev->disk->queue, memflags); 7283 } 7284 7285 del_gendisk(rbd_dev->disk); 7286 spin_lock(&rbd_dev_list_lock); 7287 list_del_init(&rbd_dev->node); 7288 spin_unlock(&rbd_dev_list_lock); 7289 device_del(&rbd_dev->dev); 7290 7291 rbd_dev_image_unlock(rbd_dev); 7292 rbd_dev_device_release(rbd_dev); 7293 rbd_dev_image_release(rbd_dev); 7294 rbd_dev_destroy(rbd_dev); 7295 return count; 7296 } 7297 7298 static ssize_t remove_store(const struct bus_type *bus, const char *buf, size_t count) 7299 { 7300 if (single_major) 7301 return -EINVAL; 7302 7303 return do_rbd_remove(buf, count); 7304 } 7305 7306 static ssize_t remove_single_major_store(const struct bus_type *bus, const char *buf, 7307 size_t count) 7308 { 7309 return do_rbd_remove(buf, count); 7310 } 7311 7312 /* 7313 * create control files in sysfs 7314 * /sys/bus/rbd/... 7315 */ 7316 static int __init rbd_sysfs_init(void) 7317 { 7318 int ret; 7319 7320 rbd_root_dev = root_device_register("rbd"); 7321 if (IS_ERR(rbd_root_dev)) 7322 return PTR_ERR(rbd_root_dev); 7323 7324 ret = bus_register(&rbd_bus_type); 7325 if (ret < 0) 7326 root_device_unregister(rbd_root_dev); 7327 7328 return ret; 7329 } 7330 7331 static void __exit rbd_sysfs_cleanup(void) 7332 { 7333 bus_unregister(&rbd_bus_type); 7334 root_device_unregister(rbd_root_dev); 7335 } 7336 7337 static int __init rbd_slab_init(void) 7338 { 7339 rbd_assert(!rbd_img_request_cache); 7340 rbd_img_request_cache = KMEM_CACHE(rbd_img_request, 0); 7341 if (!rbd_img_request_cache) 7342 return -ENOMEM; 7343 7344 rbd_assert(!rbd_obj_request_cache); 7345 rbd_obj_request_cache = KMEM_CACHE(rbd_obj_request, 0); 7346 if (!rbd_obj_request_cache) 7347 goto out_err; 7348 7349 return 0; 7350 7351 out_err: 7352 kmem_cache_destroy(rbd_img_request_cache); 7353 rbd_img_request_cache = NULL; 7354 return -ENOMEM; 7355 } 7356 7357 static void rbd_slab_exit(void) 7358 { 7359 rbd_assert(rbd_obj_request_cache); 7360 kmem_cache_destroy(rbd_obj_request_cache); 7361 rbd_obj_request_cache = NULL; 7362 7363 rbd_assert(rbd_img_request_cache); 7364 kmem_cache_destroy(rbd_img_request_cache); 7365 rbd_img_request_cache = NULL; 7366 } 7367 7368 static int __init rbd_init(void) 7369 { 7370 int rc; 7371 7372 if (!libceph_compatible(NULL)) { 7373 rbd_warn(NULL, "libceph incompatibility (quitting)"); 7374 return -EINVAL; 7375 } 7376 7377 rc = rbd_slab_init(); 7378 if (rc) 7379 return rc; 7380 7381 /* 7382 * The number of active work items is limited by the number of 7383 * rbd devices * queue depth, so leave @max_active at default. 7384 */ 7385 rbd_wq = alloc_workqueue(RBD_DRV_NAME, WQ_MEM_RECLAIM | WQ_PERCPU, 0); 7386 if (!rbd_wq) { 7387 rc = -ENOMEM; 7388 goto err_out_slab; 7389 } 7390 7391 if (single_major) { 7392 rbd_major = register_blkdev(0, RBD_DRV_NAME); 7393 if (rbd_major < 0) { 7394 rc = rbd_major; 7395 goto err_out_wq; 7396 } 7397 } 7398 7399 rc = rbd_sysfs_init(); 7400 if (rc) 7401 goto err_out_blkdev; 7402 7403 if (single_major) 7404 pr_info("loaded (major %d)\n", rbd_major); 7405 else 7406 pr_info("loaded\n"); 7407 7408 return 0; 7409 7410 err_out_blkdev: 7411 if (single_major) 7412 unregister_blkdev(rbd_major, RBD_DRV_NAME); 7413 err_out_wq: 7414 destroy_workqueue(rbd_wq); 7415 err_out_slab: 7416 rbd_slab_exit(); 7417 return rc; 7418 } 7419 7420 static void __exit rbd_exit(void) 7421 { 7422 ida_destroy(&rbd_dev_id_ida); 7423 rbd_sysfs_cleanup(); 7424 if (single_major) 7425 unregister_blkdev(rbd_major, RBD_DRV_NAME); 7426 destroy_workqueue(rbd_wq); 7427 rbd_slab_exit(); 7428 } 7429 7430 module_init(rbd_init); 7431 module_exit(rbd_exit); 7432 7433 MODULE_AUTHOR("Alex Elder <elder@inktank.com>"); 7434 MODULE_AUTHOR("Sage Weil <sage@newdream.net>"); 7435 MODULE_AUTHOR("Yehuda Sadeh <yehuda@hq.newdream.net>"); 7436 /* following authorship retained from original osdblk.c */ 7437 MODULE_AUTHOR("Jeff Garzik <jeff@garzik.org>"); 7438 7439 MODULE_DESCRIPTION("RADOS Block Device (RBD) driver"); 7440 MODULE_LICENSE("GPL"); 7441