1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2016-2017 Red Hat, Inc. All rights reserved. 4 * Copyright (C) 2016-2017 Milan Broz 5 * Copyright (C) 2016-2017 Mikulas Patocka 6 * 7 * This file is released under the GPL. 8 */ 9 10 #include "dm-bio-record.h" 11 12 #include <linux/compiler.h> 13 #include <linux/module.h> 14 #include <linux/device-mapper.h> 15 #include <linux/dm-io.h> 16 #include <linux/vmalloc.h> 17 #include <linux/sort.h> 18 #include <linux/rbtree.h> 19 #include <linux/delay.h> 20 #include <linux/hex.h> 21 #include <linux/random.h> 22 #include <linux/reboot.h> 23 #include <crypto/hash.h> 24 #include <crypto/skcipher.h> 25 #include <crypto/utils.h> 26 #include <linux/async_tx.h> 27 #include <linux/dm-bufio.h> 28 29 #include "dm-audit.h" 30 31 #define DM_MSG_PREFIX "integrity" 32 33 #define DEFAULT_INTERLEAVE_SECTORS 32768 34 #define DEFAULT_JOURNAL_SIZE_FACTOR 7 35 #define DEFAULT_SECTORS_PER_BITMAP_BIT 32768 36 #define DEFAULT_BUFFER_SECTORS 128 37 #define DEFAULT_JOURNAL_WATERMARK 50 38 #define DEFAULT_SYNC_MSEC 10000 39 #define DEFAULT_MAX_JOURNAL_SECTORS (IS_ENABLED(CONFIG_64BIT) ? 131072 : 8192) 40 #define MIN_LOG2_INTERLEAVE_SECTORS 3 41 #define MAX_LOG2_INTERLEAVE_SECTORS 31 42 #define METADATA_WORKQUEUE_MAX_ACTIVE 16 43 #define RECALC_SECTORS (IS_ENABLED(CONFIG_64BIT) ? 32768 : 2048) 44 #define RECALC_WRITE_SUPER 16 45 #define BITMAP_BLOCK_SIZE 4096 /* don't change it */ 46 #define BITMAP_FLUSH_INTERVAL (10 * HZ) 47 #define DISCARD_FILLER 0xf6 48 #define SALT_SIZE 16 49 #define RECHECK_POOL_SIZE 256 50 51 /* 52 * Warning - DEBUG_PRINT prints security-sensitive data to the log, 53 * so it should not be enabled in the official kernel 54 */ 55 //#define DEBUG_PRINT 56 //#define INTERNAL_VERIFY 57 58 /* 59 * On disk structures 60 */ 61 62 #define SB_MAGIC "integrt" 63 #define SB_VERSION_1 1 64 #define SB_VERSION_2 2 65 #define SB_VERSION_3 3 66 #define SB_VERSION_4 4 67 #define SB_VERSION_5 5 68 #define SB_VERSION_6 6 69 #define SB_VERSION_7 7 70 #define SB_SECTORS 8 71 #define MAX_SECTORS_PER_BLOCK 8 72 73 struct superblock { 74 __u8 magic[8]; 75 __u8 version; 76 __u8 log2_interleave_sectors; 77 __le16 integrity_tag_size; 78 __le32 journal_sections; 79 __le64 provided_data_sectors; /* userspace uses this value */ 80 __le32 flags; 81 __u8 log2_sectors_per_block; 82 __u8 log2_blocks_per_bitmap_bit; 83 __u8 pad[2]; 84 __le64 recalc_sector; 85 __u8 pad2[8]; 86 __u8 salt[SALT_SIZE]; 87 }; 88 89 #define SB_FLAG_HAVE_JOURNAL_MAC 0x1 90 #define SB_FLAG_RECALCULATING 0x2 91 #define SB_FLAG_DIRTY_BITMAP 0x4 92 #define SB_FLAG_FIXED_PADDING 0x8 93 #define SB_FLAG_FIXED_HMAC 0x10 94 #define SB_FLAG_INLINE 0x20 95 #define SB_FLAG_DISCARD_KEYED 0x40 96 97 #define JOURNAL_ENTRY_ROUNDUP 8 98 99 typedef __le64 commit_id_t; 100 #define JOURNAL_MAC_PER_SECTOR 8 101 102 struct journal_entry { 103 union { 104 struct { 105 __le32 sector_lo; 106 __le32 sector_hi; 107 } s; 108 __le64 sector; 109 } u; 110 commit_id_t last_bytes[]; 111 /* __u8 tag[0]; */ 112 }; 113 114 #define journal_entry_tag(ic, je) ((__u8 *)&(je)->last_bytes[(ic)->sectors_per_block]) 115 116 #if BITS_PER_LONG == 64 117 #define journal_entry_set_sector(je, x) do { smp_wmb(); WRITE_ONCE((je)->u.sector, cpu_to_le64(x)); } while (0) 118 #else 119 #define journal_entry_set_sector(je, x) do { (je)->u.s.sector_lo = cpu_to_le32(x); smp_wmb(); WRITE_ONCE((je)->u.s.sector_hi, cpu_to_le32((x) >> 32)); } while (0) 120 #endif 121 #define journal_entry_get_sector(je) le64_to_cpu((je)->u.sector) 122 #define journal_entry_is_unused(je) ((je)->u.s.sector_hi == cpu_to_le32(-1)) 123 #define journal_entry_set_unused(je) ((je)->u.s.sector_hi = cpu_to_le32(-1)) 124 #define journal_entry_is_inprogress(je) ((je)->u.s.sector_hi == cpu_to_le32(-2)) 125 #define journal_entry_set_inprogress(je) ((je)->u.s.sector_hi = cpu_to_le32(-2)) 126 127 #define JOURNAL_BLOCK_SECTORS 8 128 #define JOURNAL_SECTOR_DATA ((1 << SECTOR_SHIFT) - sizeof(commit_id_t)) 129 #define JOURNAL_MAC_SIZE (JOURNAL_MAC_PER_SECTOR * JOURNAL_BLOCK_SECTORS) 130 131 struct journal_sector { 132 struct_group(sectors, 133 __u8 entries[JOURNAL_SECTOR_DATA - JOURNAL_MAC_PER_SECTOR]; 134 __u8 mac[JOURNAL_MAC_PER_SECTOR]; 135 ); 136 commit_id_t commit_id; 137 }; 138 139 #define MAX_TAG_SIZE 255 140 141 #define METADATA_PADDING_SECTORS 8 142 143 #define N_COMMIT_IDS 4 144 145 static unsigned char prev_commit_seq(unsigned char seq) 146 { 147 return (seq + N_COMMIT_IDS - 1) % N_COMMIT_IDS; 148 } 149 150 static unsigned char next_commit_seq(unsigned char seq) 151 { 152 return (seq + 1) % N_COMMIT_IDS; 153 } 154 155 /* 156 * In-memory structures 157 */ 158 159 struct journal_node { 160 struct rb_node node; 161 sector_t sector; 162 }; 163 164 struct alg_spec { 165 char *alg_string; 166 char *key_string; 167 __u8 *key; 168 unsigned int key_size; 169 }; 170 171 struct dm_integrity_c { 172 struct dm_dev *dev; 173 struct dm_dev *meta_dev; 174 unsigned int tag_size; 175 __s8 log2_tag_size; 176 unsigned int tuple_size; 177 sector_t start; 178 mempool_t journal_io_mempool; 179 struct dm_io_client *io; 180 struct dm_bufio_client *bufio; 181 struct workqueue_struct *metadata_wq; 182 struct superblock *sb; 183 unsigned int journal_pages; 184 unsigned int n_bitmap_blocks; 185 186 struct page_list *journal; 187 struct page_list *journal_io; 188 struct page_list *journal_xor; 189 struct page_list *recalc_bitmap; 190 struct page_list *may_write_bitmap; 191 struct bitmap_block_status *bbs; 192 unsigned int bitmap_flush_interval; 193 int synchronous_mode; 194 struct bio_list synchronous_bios; 195 struct delayed_work bitmap_flush_work; 196 197 struct crypto_skcipher *journal_crypt; 198 struct scatterlist **journal_scatterlist; 199 struct scatterlist **journal_io_scatterlist; 200 struct skcipher_request **sk_requests; 201 202 struct crypto_shash *journal_mac; 203 204 struct journal_node *journal_tree; 205 struct rb_root journal_tree_root; 206 207 sector_t provided_data_sectors; 208 209 unsigned short journal_entry_size; 210 unsigned char journal_entries_per_sector; 211 unsigned char journal_section_entries; 212 unsigned short journal_section_sectors; 213 unsigned int journal_sections; 214 unsigned int journal_entries; 215 sector_t data_device_sectors; 216 sector_t meta_device_sectors; 217 unsigned int initial_sectors; 218 unsigned int metadata_run; 219 __s8 log2_metadata_run; 220 __u8 log2_buffer_sectors; 221 __u8 sectors_per_block; 222 __u8 log2_blocks_per_bitmap_bit; 223 224 unsigned char mode; 225 bool internal_hash; 226 227 int failed; 228 229 struct crypto_shash *internal_shash; 230 struct crypto_ahash *internal_ahash; 231 unsigned int internal_hash_digestsize; 232 233 struct dm_target *ti; 234 235 /* these variables are locked with endio_wait.lock */ 236 struct rb_root in_progress; 237 struct list_head wait_list; 238 wait_queue_head_t endio_wait; 239 struct workqueue_struct *wait_wq; 240 struct workqueue_struct *offload_wq; 241 242 unsigned char commit_seq; 243 commit_id_t commit_ids[N_COMMIT_IDS]; 244 245 unsigned int committed_section; 246 unsigned int n_committed_sections; 247 248 unsigned int uncommitted_section; 249 unsigned int n_uncommitted_sections; 250 251 unsigned int free_section; 252 unsigned char free_section_entry; 253 unsigned int free_sectors; 254 255 unsigned int free_sectors_threshold; 256 257 struct workqueue_struct *commit_wq; 258 struct work_struct commit_work; 259 260 struct workqueue_struct *writer_wq; 261 struct work_struct writer_work; 262 263 struct workqueue_struct *recalc_wq; 264 struct work_struct recalc_work; 265 266 struct bio_list flush_bio_list; 267 268 unsigned long autocommit_jiffies; 269 struct timer_list autocommit_timer; 270 unsigned int autocommit_msec; 271 272 wait_queue_head_t copy_to_journal_wait; 273 274 struct completion crypto_backoff; 275 276 bool wrote_to_journal; 277 bool journal_uptodate; 278 bool just_formatted; 279 bool recalculate_flag; 280 bool reset_recalculate_flag; 281 bool discard; 282 bool discard_keyed; 283 bool fix_padding; 284 bool fix_hmac; 285 bool legacy_recalculate; 286 287 mempool_t ahash_req_pool; 288 struct ahash_request *journal_ahash_req; 289 290 struct alg_spec internal_hash_alg; 291 struct alg_spec journal_crypt_alg; 292 struct alg_spec journal_mac_alg; 293 294 atomic64_t number_of_mismatches; 295 296 mempool_t recheck_pool; 297 struct bio_set recheck_bios; 298 struct bio_set recalc_bios; 299 300 struct notifier_block reboot_notifier; 301 }; 302 303 struct dm_integrity_range { 304 sector_t logical_sector; 305 sector_t n_sectors; 306 bool waiting; 307 union { 308 struct rb_node node; 309 struct { 310 struct task_struct *task; 311 struct list_head wait_entry; 312 }; 313 }; 314 }; 315 316 struct dm_integrity_io { 317 struct work_struct work; 318 319 struct dm_integrity_c *ic; 320 enum req_op op; 321 bool fua; 322 323 struct dm_integrity_range range; 324 325 sector_t metadata_block; 326 unsigned int metadata_offset; 327 328 atomic_t in_flight; 329 blk_status_t bi_status; 330 331 struct completion *completion; 332 333 struct dm_bio_details bio_details; 334 335 char *integrity_payload; 336 unsigned payload_len; 337 bool integrity_payload_from_mempool; 338 bool integrity_range_locked; 339 340 struct ahash_request *ahash_req; 341 }; 342 343 struct journal_completion { 344 struct dm_integrity_c *ic; 345 atomic_t in_flight; 346 struct completion comp; 347 }; 348 349 struct journal_io { 350 struct dm_integrity_range range; 351 struct journal_completion *comp; 352 }; 353 354 struct bitmap_block_status { 355 struct work_struct work; 356 struct dm_integrity_c *ic; 357 unsigned int idx; 358 unsigned long *bitmap; 359 struct bio_list bio_queue; 360 spinlock_t bio_queue_lock; 361 362 }; 363 364 static struct kmem_cache *journal_io_cache; 365 366 #define JOURNAL_IO_MEMPOOL 32 367 #define AHASH_MEMPOOL 32 368 369 #ifdef DEBUG_PRINT 370 #define DEBUG_print(x, ...) printk(KERN_DEBUG x, ##__VA_ARGS__) 371 #define DEBUG_bytes(bytes, len, msg, ...) printk(KERN_DEBUG msg "%s%*ph\n", ##__VA_ARGS__, \ 372 len ? ": " : "", len, bytes) 373 #else 374 #define DEBUG_print(x, ...) do { } while (0) 375 #define DEBUG_bytes(bytes, len, msg, ...) do { } while (0) 376 #endif 377 378 static void dm_integrity_map_continue(struct dm_integrity_io *dio, bool from_map); 379 static int dm_integrity_map_inline(struct dm_integrity_io *dio, bool from_map); 380 static void integrity_bio_wait(struct work_struct *w); 381 static void dm_integrity_dtr(struct dm_target *ti); 382 383 static void dm_integrity_io_error(struct dm_integrity_c *ic, const char *msg, int err) 384 { 385 if (err == -EILSEQ) 386 atomic64_inc(&ic->number_of_mismatches); 387 if (!cmpxchg(&ic->failed, 0, err)) 388 DMERR("Error on %s: %d", msg, err); 389 } 390 391 static int dm_integrity_failed(struct dm_integrity_c *ic) 392 { 393 return READ_ONCE(ic->failed); 394 } 395 396 static bool dm_integrity_disable_recalculate(struct dm_integrity_c *ic) 397 { 398 if (ic->legacy_recalculate) 399 return false; 400 if (!(ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) ? 401 ic->internal_hash_alg.key || ic->journal_mac_alg.key : 402 ic->internal_hash_alg.key && !ic->journal_mac_alg.key) 403 return true; 404 return false; 405 } 406 407 static commit_id_t dm_integrity_commit_id(struct dm_integrity_c *ic, unsigned int i, 408 unsigned int j, unsigned char seq) 409 { 410 /* 411 * Xor the number with section and sector, so that if a piece of 412 * journal is written at wrong place, it is detected. 413 */ 414 return ic->commit_ids[seq] ^ cpu_to_le64(((__u64)i << 32) ^ j); 415 } 416 417 static void get_area_and_offset(struct dm_integrity_c *ic, sector_t data_sector, 418 sector_t *area, sector_t *offset) 419 { 420 if (!ic->meta_dev) { 421 __u8 log2_interleave_sectors = ic->sb->log2_interleave_sectors; 422 *area = data_sector >> log2_interleave_sectors; 423 *offset = (unsigned int)data_sector & ((1U << log2_interleave_sectors) - 1); 424 } else { 425 *area = 0; 426 *offset = data_sector; 427 } 428 } 429 430 #define sector_to_block(ic, n) \ 431 do { \ 432 BUG_ON((n) & (unsigned int)((ic)->sectors_per_block - 1)); \ 433 (n) >>= (ic)->sb->log2_sectors_per_block; \ 434 } while (0) 435 436 static __u64 get_metadata_sector_and_offset(struct dm_integrity_c *ic, sector_t area, 437 sector_t offset, unsigned int *metadata_offset) 438 { 439 __u64 ms; 440 unsigned int mo; 441 442 ms = area << ic->sb->log2_interleave_sectors; 443 if (likely(ic->log2_metadata_run >= 0)) 444 ms += area << ic->log2_metadata_run; 445 else 446 ms += area * ic->metadata_run; 447 ms >>= ic->log2_buffer_sectors; 448 449 sector_to_block(ic, offset); 450 451 if (likely(ic->log2_tag_size >= 0)) { 452 ms += offset >> (SECTOR_SHIFT + ic->log2_buffer_sectors - ic->log2_tag_size); 453 mo = (offset << ic->log2_tag_size) & ((1U << SECTOR_SHIFT << ic->log2_buffer_sectors) - 1); 454 } else { 455 ms += (__u64)offset * ic->tag_size >> (SECTOR_SHIFT + ic->log2_buffer_sectors); 456 mo = (offset * ic->tag_size) & ((1U << SECTOR_SHIFT << ic->log2_buffer_sectors) - 1); 457 } 458 *metadata_offset = mo; 459 return ms; 460 } 461 462 static sector_t get_data_sector(struct dm_integrity_c *ic, sector_t area, sector_t offset) 463 { 464 sector_t result; 465 466 if (ic->meta_dev) 467 return offset; 468 469 result = area << ic->sb->log2_interleave_sectors; 470 if (likely(ic->log2_metadata_run >= 0)) 471 result += (area + 1) << ic->log2_metadata_run; 472 else 473 result += (area + 1) * ic->metadata_run; 474 475 result += (sector_t)ic->initial_sectors + offset; 476 result += ic->start; 477 478 return result; 479 } 480 481 static void wraparound_section(struct dm_integrity_c *ic, unsigned int *sec_ptr) 482 { 483 if (unlikely(*sec_ptr >= ic->journal_sections)) 484 *sec_ptr -= ic->journal_sections; 485 } 486 487 static void sb_set_version(struct dm_integrity_c *ic) 488 { 489 if (ic->sb->flags & cpu_to_le32(SB_FLAG_DISCARD_KEYED)) 490 ic->sb->version = SB_VERSION_7; 491 else if (ic->sb->flags & cpu_to_le32(SB_FLAG_INLINE)) 492 ic->sb->version = SB_VERSION_6; 493 else if (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) 494 ic->sb->version = SB_VERSION_5; 495 else if (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_PADDING)) 496 ic->sb->version = SB_VERSION_4; 497 else if (ic->mode == 'B' || ic->sb->flags & cpu_to_le32(SB_FLAG_DIRTY_BITMAP)) 498 ic->sb->version = SB_VERSION_3; 499 else if (ic->meta_dev || ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) 500 ic->sb->version = SB_VERSION_2; 501 else 502 ic->sb->version = SB_VERSION_1; 503 } 504 505 static int sb_mac(struct dm_integrity_c *ic, bool wr) 506 { 507 SHASH_DESC_ON_STACK(desc, ic->journal_mac); 508 int r; 509 unsigned int mac_size = crypto_shash_digestsize(ic->journal_mac); 510 __u8 *sb = (__u8 *)ic->sb; 511 __u8 *mac = sb + (1 << SECTOR_SHIFT) - mac_size; 512 513 if (sizeof(struct superblock) + mac_size > 1 << SECTOR_SHIFT || 514 mac_size > HASH_MAX_DIGESTSIZE) { 515 dm_integrity_io_error(ic, "digest is too long", -EINVAL); 516 return -EINVAL; 517 } 518 519 desc->tfm = ic->journal_mac; 520 521 if (likely(wr)) { 522 r = crypto_shash_digest(desc, sb, mac - sb, mac); 523 if (unlikely(r < 0)) { 524 dm_integrity_io_error(ic, "crypto_shash_digest", r); 525 return r; 526 } 527 } else { 528 __u8 actual_mac[HASH_MAX_DIGESTSIZE]; 529 530 r = crypto_shash_digest(desc, sb, mac - sb, actual_mac); 531 if (unlikely(r < 0)) { 532 dm_integrity_io_error(ic, "crypto_shash_digest", r); 533 return r; 534 } 535 if (crypto_memneq(mac, actual_mac, mac_size)) { 536 dm_integrity_io_error(ic, "superblock mac", -EILSEQ); 537 dm_audit_log_target(DM_MSG_PREFIX, "mac-superblock", ic->ti, 0); 538 return -EILSEQ; 539 } 540 } 541 542 return 0; 543 } 544 545 static int sync_rw_sb(struct dm_integrity_c *ic, blk_opf_t opf) 546 { 547 struct dm_io_request io_req; 548 struct dm_io_region io_loc; 549 const enum req_op op = opf & REQ_OP_MASK; 550 int r; 551 552 io_req.bi_opf = opf; 553 io_req.mem.type = DM_IO_KMEM; 554 io_req.mem.ptr.addr = ic->sb; 555 io_req.notify.fn = NULL; 556 io_req.client = ic->io; 557 io_loc.bdev = ic->meta_dev ? ic->meta_dev->bdev : ic->dev->bdev; 558 io_loc.sector = ic->start; 559 io_loc.count = SB_SECTORS; 560 561 if (op == REQ_OP_WRITE) { 562 sb_set_version(ic); 563 if (ic->journal_mac && ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) { 564 r = sb_mac(ic, true); 565 if (unlikely(r)) 566 return r; 567 } 568 } 569 570 r = dm_io(&io_req, 1, &io_loc, NULL, NULL, IOPRIO_DEFAULT); 571 if (unlikely(r)) 572 return r; 573 574 if (op == REQ_OP_READ) { 575 if (ic->mode != 'R' && ic->journal_mac && ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) { 576 r = sb_mac(ic, false); 577 if (unlikely(r)) 578 return r; 579 } 580 } 581 582 return 0; 583 } 584 585 #define BITMAP_OP_TEST_ALL_SET 0 586 #define BITMAP_OP_TEST_ALL_CLEAR 1 587 #define BITMAP_OP_SET 2 588 #define BITMAP_OP_CLEAR 3 589 590 static bool block_bitmap_op(struct dm_integrity_c *ic, struct page_list *bitmap, 591 sector_t sector, sector_t n_sectors, int mode) 592 { 593 unsigned long bit, end_bit, this_end_bit, page, end_page; 594 unsigned long *data; 595 596 if (unlikely(((sector | n_sectors) & ((1 << ic->sb->log2_sectors_per_block) - 1)) != 0)) { 597 DMCRIT("invalid bitmap access (%llx,%llx,%d,%d,%d)", 598 sector, 599 n_sectors, 600 ic->sb->log2_sectors_per_block, 601 ic->log2_blocks_per_bitmap_bit, 602 mode); 603 BUG(); 604 } 605 606 if (unlikely(!n_sectors)) 607 return true; 608 609 bit = sector >> (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 610 end_bit = (sector + n_sectors - 1) >> 611 (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 612 613 page = bit / (PAGE_SIZE * 8); 614 bit %= PAGE_SIZE * 8; 615 616 end_page = end_bit / (PAGE_SIZE * 8); 617 end_bit %= PAGE_SIZE * 8; 618 619 repeat: 620 if (page < end_page) 621 this_end_bit = PAGE_SIZE * 8 - 1; 622 else 623 this_end_bit = end_bit; 624 625 data = lowmem_page_address(bitmap[page].page); 626 627 if (mode == BITMAP_OP_TEST_ALL_SET) { 628 while (bit <= this_end_bit) { 629 if (!(bit % BITS_PER_LONG) && this_end_bit >= bit + BITS_PER_LONG - 1) { 630 do { 631 if (data[bit / BITS_PER_LONG] != -1) 632 return false; 633 bit += BITS_PER_LONG; 634 } while (this_end_bit >= bit + BITS_PER_LONG - 1); 635 continue; 636 } 637 if (!test_bit(bit, data)) 638 return false; 639 bit++; 640 } 641 } else if (mode == BITMAP_OP_TEST_ALL_CLEAR) { 642 while (bit <= this_end_bit) { 643 if (!(bit % BITS_PER_LONG) && this_end_bit >= bit + BITS_PER_LONG - 1) { 644 do { 645 if (data[bit / BITS_PER_LONG] != 0) 646 return false; 647 bit += BITS_PER_LONG; 648 } while (this_end_bit >= bit + BITS_PER_LONG - 1); 649 continue; 650 } 651 if (test_bit(bit, data)) 652 return false; 653 bit++; 654 } 655 } else if (mode == BITMAP_OP_SET) { 656 while (bit <= this_end_bit) { 657 if (!(bit % BITS_PER_LONG) && this_end_bit >= bit + BITS_PER_LONG - 1) { 658 do { 659 data[bit / BITS_PER_LONG] = -1; 660 bit += BITS_PER_LONG; 661 } while (this_end_bit >= bit + BITS_PER_LONG - 1); 662 continue; 663 } 664 __set_bit(bit, data); 665 bit++; 666 } 667 } else if (mode == BITMAP_OP_CLEAR) { 668 if (!bit && this_end_bit == PAGE_SIZE * 8 - 1) 669 clear_page(data); 670 else { 671 while (bit <= this_end_bit) { 672 if (!(bit % BITS_PER_LONG) && this_end_bit >= bit + BITS_PER_LONG - 1) { 673 do { 674 data[bit / BITS_PER_LONG] = 0; 675 bit += BITS_PER_LONG; 676 } while (this_end_bit >= bit + BITS_PER_LONG - 1); 677 continue; 678 } 679 __clear_bit(bit, data); 680 bit++; 681 } 682 } 683 } else { 684 BUG(); 685 } 686 687 if (unlikely(page < end_page)) { 688 bit = 0; 689 page++; 690 goto repeat; 691 } 692 693 return true; 694 } 695 696 static void block_bitmap_copy(struct dm_integrity_c *ic, struct page_list *dst, struct page_list *src) 697 { 698 unsigned int n_bitmap_pages = DIV_ROUND_UP(ic->n_bitmap_blocks, PAGE_SIZE / BITMAP_BLOCK_SIZE); 699 unsigned int i; 700 701 for (i = 0; i < n_bitmap_pages; i++) { 702 unsigned long *dst_data = lowmem_page_address(dst[i].page); 703 unsigned long *src_data = lowmem_page_address(src[i].page); 704 705 copy_page(dst_data, src_data); 706 } 707 } 708 709 static struct bitmap_block_status *sector_to_bitmap_block(struct dm_integrity_c *ic, sector_t sector) 710 { 711 unsigned int bit = sector >> (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 712 unsigned int bitmap_block = bit / (BITMAP_BLOCK_SIZE * 8); 713 714 BUG_ON(bitmap_block >= ic->n_bitmap_blocks); 715 return &ic->bbs[bitmap_block]; 716 } 717 718 static void access_journal_check(struct dm_integrity_c *ic, unsigned int section, unsigned int offset, 719 bool e, const char *function) 720 { 721 #if defined(CONFIG_DM_DEBUG) || defined(INTERNAL_VERIFY) 722 unsigned int limit = e ? ic->journal_section_entries : ic->journal_section_sectors; 723 724 if (unlikely(section >= ic->journal_sections) || 725 unlikely(offset >= limit)) { 726 DMCRIT("%s: invalid access at (%u,%u), limit (%u,%u)", 727 function, section, offset, ic->journal_sections, limit); 728 BUG(); 729 } 730 #endif 731 } 732 733 static void page_list_location(struct dm_integrity_c *ic, unsigned int section, unsigned int offset, 734 unsigned int *pl_index, unsigned int *pl_offset) 735 { 736 unsigned int sector; 737 738 access_journal_check(ic, section, offset, false, "page_list_location"); 739 740 sector = section * ic->journal_section_sectors + offset; 741 742 *pl_index = sector >> (PAGE_SHIFT - SECTOR_SHIFT); 743 *pl_offset = (sector << SECTOR_SHIFT) & (PAGE_SIZE - 1); 744 } 745 746 static struct journal_sector *access_page_list(struct dm_integrity_c *ic, struct page_list *pl, 747 unsigned int section, unsigned int offset, unsigned int *n_sectors) 748 { 749 unsigned int pl_index, pl_offset; 750 char *va; 751 752 page_list_location(ic, section, offset, &pl_index, &pl_offset); 753 754 if (n_sectors) 755 *n_sectors = (PAGE_SIZE - pl_offset) >> SECTOR_SHIFT; 756 757 va = lowmem_page_address(pl[pl_index].page); 758 759 return (struct journal_sector *)(va + pl_offset); 760 } 761 762 static struct journal_sector *access_journal(struct dm_integrity_c *ic, unsigned int section, unsigned int offset) 763 { 764 return access_page_list(ic, ic->journal, section, offset, NULL); 765 } 766 767 static struct journal_entry *access_journal_entry(struct dm_integrity_c *ic, unsigned int section, unsigned int n) 768 { 769 unsigned int rel_sector, offset; 770 struct journal_sector *js; 771 772 access_journal_check(ic, section, n, true, "access_journal_entry"); 773 774 rel_sector = n % JOURNAL_BLOCK_SECTORS; 775 offset = n / JOURNAL_BLOCK_SECTORS; 776 777 js = access_journal(ic, section, rel_sector); 778 return (struct journal_entry *)((char *)js + offset * ic->journal_entry_size); 779 } 780 781 static struct journal_sector *access_journal_data(struct dm_integrity_c *ic, unsigned int section, unsigned int n) 782 { 783 n <<= ic->sb->log2_sectors_per_block; 784 785 n += JOURNAL_BLOCK_SECTORS; 786 787 access_journal_check(ic, section, n, false, "access_journal_data"); 788 789 return access_journal(ic, section, n); 790 } 791 792 static void section_mac(struct dm_integrity_c *ic, unsigned int section, __u8 result[JOURNAL_MAC_SIZE]) 793 { 794 SHASH_DESC_ON_STACK(desc, ic->journal_mac); 795 int r; 796 unsigned int j, size; 797 798 desc->tfm = ic->journal_mac; 799 800 r = crypto_shash_init(desc); 801 if (unlikely(r < 0)) { 802 dm_integrity_io_error(ic, "crypto_shash_init", r); 803 goto err; 804 } 805 806 if (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) { 807 __le64 section_le; 808 809 r = crypto_shash_update(desc, (__u8 *)&ic->sb->salt, SALT_SIZE); 810 if (unlikely(r < 0)) { 811 dm_integrity_io_error(ic, "crypto_shash_update", r); 812 goto err; 813 } 814 815 section_le = cpu_to_le64(section); 816 r = crypto_shash_update(desc, (__u8 *)§ion_le, sizeof(section_le)); 817 if (unlikely(r < 0)) { 818 dm_integrity_io_error(ic, "crypto_shash_update", r); 819 goto err; 820 } 821 } 822 823 for (j = 0; j < ic->journal_section_entries; j++) { 824 struct journal_entry *je = access_journal_entry(ic, section, j); 825 826 r = crypto_shash_update(desc, (__u8 *)&je->u.sector, sizeof(je->u.sector)); 827 if (unlikely(r < 0)) { 828 dm_integrity_io_error(ic, "crypto_shash_update", r); 829 goto err; 830 } 831 } 832 833 size = crypto_shash_digestsize(ic->journal_mac); 834 835 if (likely(size <= JOURNAL_MAC_SIZE)) { 836 r = crypto_shash_final(desc, result); 837 if (unlikely(r < 0)) { 838 dm_integrity_io_error(ic, "crypto_shash_final", r); 839 goto err; 840 } 841 memset(result + size, 0, JOURNAL_MAC_SIZE - size); 842 } else { 843 __u8 digest[HASH_MAX_DIGESTSIZE]; 844 845 if (WARN_ON(size > sizeof(digest))) { 846 dm_integrity_io_error(ic, "digest_size", -EINVAL); 847 goto err; 848 } 849 r = crypto_shash_final(desc, digest); 850 if (unlikely(r < 0)) { 851 dm_integrity_io_error(ic, "crypto_shash_final", r); 852 goto err; 853 } 854 memcpy(result, digest, JOURNAL_MAC_SIZE); 855 } 856 857 return; 858 err: 859 memset(result, 0, JOURNAL_MAC_SIZE); 860 } 861 862 static void rw_section_mac(struct dm_integrity_c *ic, unsigned int section, bool wr) 863 { 864 __u8 result[JOURNAL_MAC_SIZE]; 865 unsigned int j; 866 867 if (!ic->journal_mac) 868 return; 869 870 section_mac(ic, section, result); 871 872 for (j = 0; j < JOURNAL_BLOCK_SECTORS; j++) { 873 struct journal_sector *js = access_journal(ic, section, j); 874 875 if (likely(wr)) 876 memcpy(&js->mac, result + (j * JOURNAL_MAC_PER_SECTOR), JOURNAL_MAC_PER_SECTOR); 877 else { 878 if (crypto_memneq(&js->mac, result + (j * JOURNAL_MAC_PER_SECTOR), JOURNAL_MAC_PER_SECTOR)) { 879 dm_integrity_io_error(ic, "journal mac", -EILSEQ); 880 dm_audit_log_target(DM_MSG_PREFIX, "mac-journal", ic->ti, 0); 881 } 882 } 883 } 884 } 885 886 static void complete_journal_op(void *context) 887 { 888 struct journal_completion *comp = context; 889 890 BUG_ON(!atomic_read(&comp->in_flight)); 891 if (likely(atomic_dec_and_test(&comp->in_flight))) 892 complete(&comp->comp); 893 } 894 895 static void xor_journal(struct dm_integrity_c *ic, bool encrypt, unsigned int section, 896 unsigned int n_sections, struct journal_completion *comp) 897 { 898 struct async_submit_ctl submit; 899 size_t n_bytes = (size_t)(n_sections * ic->journal_section_sectors) << SECTOR_SHIFT; 900 unsigned int pl_index, pl_offset, section_index; 901 struct page_list *source_pl, *target_pl; 902 903 if (likely(encrypt)) { 904 source_pl = ic->journal; 905 target_pl = ic->journal_io; 906 } else { 907 source_pl = ic->journal_io; 908 target_pl = ic->journal; 909 } 910 911 page_list_location(ic, section, 0, &pl_index, &pl_offset); 912 913 atomic_add(roundup(pl_offset + n_bytes, PAGE_SIZE) >> PAGE_SHIFT, &comp->in_flight); 914 915 init_async_submit(&submit, ASYNC_TX_XOR_ZERO_DST, NULL, complete_journal_op, comp, NULL); 916 917 section_index = pl_index; 918 919 do { 920 size_t this_step; 921 struct page *src_pages[2]; 922 struct page *dst_page; 923 924 while (unlikely(pl_index == section_index)) { 925 unsigned int dummy; 926 927 if (likely(encrypt)) 928 rw_section_mac(ic, section, true); 929 section++; 930 n_sections--; 931 if (!n_sections) 932 break; 933 page_list_location(ic, section, 0, §ion_index, &dummy); 934 } 935 936 this_step = min(n_bytes, (size_t)PAGE_SIZE - pl_offset); 937 dst_page = target_pl[pl_index].page; 938 src_pages[0] = source_pl[pl_index].page; 939 src_pages[1] = ic->journal_xor[pl_index].page; 940 941 async_xor(dst_page, src_pages, pl_offset, 2, this_step, &submit); 942 943 pl_index++; 944 pl_offset = 0; 945 n_bytes -= this_step; 946 } while (n_bytes); 947 948 BUG_ON(n_sections); 949 950 async_tx_issue_pending_all(); 951 } 952 953 static void complete_journal_encrypt(void *data, int err) 954 { 955 struct journal_completion *comp = data; 956 957 if (unlikely(err)) { 958 if (likely(err == -EINPROGRESS)) { 959 complete(&comp->ic->crypto_backoff); 960 return; 961 } 962 dm_integrity_io_error(comp->ic, "asynchronous encrypt", err); 963 } 964 complete_journal_op(comp); 965 } 966 967 static bool do_crypt(bool encrypt, struct skcipher_request *req, struct journal_completion *comp) 968 { 969 int r; 970 971 skcipher_request_set_callback(req, CRYPTO_TFM_REQ_MAY_BACKLOG, 972 complete_journal_encrypt, comp); 973 if (likely(encrypt)) 974 r = crypto_skcipher_encrypt(req); 975 else 976 r = crypto_skcipher_decrypt(req); 977 if (likely(!r)) 978 return false; 979 if (likely(r == -EINPROGRESS)) 980 return true; 981 if (likely(r == -EBUSY)) { 982 wait_for_completion(&comp->ic->crypto_backoff); 983 reinit_completion(&comp->ic->crypto_backoff); 984 return true; 985 } 986 dm_integrity_io_error(comp->ic, "encrypt", r); 987 return false; 988 } 989 990 static void crypt_journal(struct dm_integrity_c *ic, bool encrypt, unsigned int section, 991 unsigned int n_sections, struct journal_completion *comp) 992 { 993 struct scatterlist **source_sg; 994 struct scatterlist **target_sg; 995 996 atomic_add(2, &comp->in_flight); 997 998 if (likely(encrypt)) { 999 source_sg = ic->journal_scatterlist; 1000 target_sg = ic->journal_io_scatterlist; 1001 } else { 1002 source_sg = ic->journal_io_scatterlist; 1003 target_sg = ic->journal_scatterlist; 1004 } 1005 1006 do { 1007 struct skcipher_request *req; 1008 unsigned int ivsize; 1009 char *iv; 1010 1011 if (likely(encrypt)) 1012 rw_section_mac(ic, section, true); 1013 1014 req = ic->sk_requests[section]; 1015 ivsize = crypto_skcipher_ivsize(ic->journal_crypt); 1016 iv = req->iv; 1017 1018 memcpy(iv, iv + ivsize, ivsize); 1019 1020 req->src = source_sg[section]; 1021 req->dst = target_sg[section]; 1022 1023 if (unlikely(do_crypt(encrypt, req, comp))) 1024 atomic_inc(&comp->in_flight); 1025 1026 section++; 1027 n_sections--; 1028 } while (n_sections); 1029 1030 atomic_dec(&comp->in_flight); 1031 complete_journal_op(comp); 1032 } 1033 1034 static void encrypt_journal(struct dm_integrity_c *ic, bool encrypt, unsigned int section, 1035 unsigned int n_sections, struct journal_completion *comp) 1036 { 1037 if (ic->journal_xor) 1038 return xor_journal(ic, encrypt, section, n_sections, comp); 1039 else 1040 return crypt_journal(ic, encrypt, section, n_sections, comp); 1041 } 1042 1043 static void complete_journal_io(unsigned long error, unsigned long unsup, void *context) 1044 { 1045 struct journal_completion *comp = context; 1046 1047 if (unlikely(error != 0)) 1048 dm_integrity_io_error(comp->ic, "writing journal", -EIO); 1049 else if (unlikely(unsup != 0)) 1050 dm_integrity_io_error(comp->ic, "writing journal", -EOPNOTSUPP); 1051 complete_journal_op(comp); 1052 } 1053 1054 static void rw_journal_sectors(struct dm_integrity_c *ic, blk_opf_t opf, 1055 unsigned int sector, unsigned int n_sectors, 1056 struct journal_completion *comp) 1057 { 1058 struct dm_io_request io_req; 1059 struct dm_io_region io_loc; 1060 unsigned int pl_index, pl_offset; 1061 int r; 1062 1063 if (unlikely(dm_integrity_failed(ic))) { 1064 if (comp) 1065 complete_journal_io(-1UL, -1UL, comp); 1066 return; 1067 } 1068 1069 pl_index = sector >> (PAGE_SHIFT - SECTOR_SHIFT); 1070 pl_offset = (sector << SECTOR_SHIFT) & (PAGE_SIZE - 1); 1071 1072 io_req.bi_opf = opf; 1073 io_req.mem.type = DM_IO_PAGE_LIST; 1074 if (ic->journal_io) 1075 io_req.mem.ptr.pl = &ic->journal_io[pl_index]; 1076 else 1077 io_req.mem.ptr.pl = &ic->journal[pl_index]; 1078 io_req.mem.offset = pl_offset; 1079 if (likely(comp != NULL)) { 1080 io_req.notify.fn = complete_journal_io; 1081 io_req.notify.context = comp; 1082 } else { 1083 io_req.notify.fn = NULL; 1084 } 1085 io_req.client = ic->io; 1086 io_loc.bdev = ic->meta_dev ? ic->meta_dev->bdev : ic->dev->bdev; 1087 io_loc.sector = ic->start + SB_SECTORS + sector; 1088 io_loc.count = n_sectors; 1089 1090 r = dm_io(&io_req, 1, &io_loc, NULL, NULL, IOPRIO_DEFAULT); 1091 if (unlikely(r)) { 1092 dm_integrity_io_error(ic, (opf & REQ_OP_MASK) == REQ_OP_READ ? 1093 "reading journal" : "writing journal", r); 1094 if (comp) { 1095 WARN_ONCE(1, "asynchronous dm_io failed: %d", r); 1096 complete_journal_io(-1UL, -1UL, comp); 1097 } 1098 } 1099 } 1100 1101 static void rw_journal(struct dm_integrity_c *ic, blk_opf_t opf, 1102 unsigned int section, unsigned int n_sections, 1103 struct journal_completion *comp) 1104 { 1105 unsigned int sector, n_sectors; 1106 1107 sector = section * ic->journal_section_sectors; 1108 n_sectors = n_sections * ic->journal_section_sectors; 1109 1110 rw_journal_sectors(ic, opf, sector, n_sectors, comp); 1111 } 1112 1113 static void write_journal(struct dm_integrity_c *ic, unsigned int commit_start, unsigned int commit_sections) 1114 { 1115 struct journal_completion io_comp; 1116 struct journal_completion crypt_comp_1; 1117 struct journal_completion crypt_comp_2; 1118 unsigned int i; 1119 1120 io_comp.ic = ic; 1121 init_completion(&io_comp.comp); 1122 1123 if (commit_start + commit_sections <= ic->journal_sections) { 1124 io_comp.in_flight = (atomic_t)ATOMIC_INIT(1); 1125 if (ic->journal_io) { 1126 crypt_comp_1.ic = ic; 1127 init_completion(&crypt_comp_1.comp); 1128 crypt_comp_1.in_flight = (atomic_t)ATOMIC_INIT(0); 1129 encrypt_journal(ic, true, commit_start, commit_sections, &crypt_comp_1); 1130 wait_for_completion_io(&crypt_comp_1.comp); 1131 } else { 1132 for (i = 0; i < commit_sections; i++) 1133 rw_section_mac(ic, commit_start + i, true); 1134 } 1135 rw_journal(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, commit_start, 1136 commit_sections, &io_comp); 1137 } else { 1138 unsigned int to_end; 1139 1140 io_comp.in_flight = (atomic_t)ATOMIC_INIT(2); 1141 to_end = ic->journal_sections - commit_start; 1142 if (ic->journal_io) { 1143 crypt_comp_1.ic = ic; 1144 init_completion(&crypt_comp_1.comp); 1145 crypt_comp_1.in_flight = (atomic_t)ATOMIC_INIT(0); 1146 encrypt_journal(ic, true, commit_start, to_end, &crypt_comp_1); 1147 if (try_wait_for_completion(&crypt_comp_1.comp)) { 1148 rw_journal(ic, REQ_OP_WRITE | REQ_FUA, 1149 commit_start, to_end, &io_comp); 1150 reinit_completion(&crypt_comp_1.comp); 1151 crypt_comp_1.in_flight = (atomic_t)ATOMIC_INIT(0); 1152 encrypt_journal(ic, true, 0, commit_sections - to_end, &crypt_comp_1); 1153 wait_for_completion_io(&crypt_comp_1.comp); 1154 } else { 1155 crypt_comp_2.ic = ic; 1156 init_completion(&crypt_comp_2.comp); 1157 crypt_comp_2.in_flight = (atomic_t)ATOMIC_INIT(0); 1158 encrypt_journal(ic, true, 0, commit_sections - to_end, &crypt_comp_2); 1159 wait_for_completion_io(&crypt_comp_1.comp); 1160 rw_journal(ic, REQ_OP_WRITE | REQ_FUA, commit_start, to_end, &io_comp); 1161 wait_for_completion_io(&crypt_comp_2.comp); 1162 } 1163 } else { 1164 for (i = 0; i < to_end; i++) 1165 rw_section_mac(ic, commit_start + i, true); 1166 rw_journal(ic, REQ_OP_WRITE | REQ_FUA, commit_start, to_end, &io_comp); 1167 for (i = 0; i < commit_sections - to_end; i++) 1168 rw_section_mac(ic, i, true); 1169 } 1170 rw_journal(ic, REQ_OP_WRITE | REQ_FUA, 0, commit_sections - to_end, &io_comp); 1171 } 1172 1173 wait_for_completion_io(&io_comp.comp); 1174 } 1175 1176 static void copy_from_journal(struct dm_integrity_c *ic, unsigned int section, unsigned int offset, 1177 unsigned int n_sectors, sector_t target, io_notify_fn fn, void *data) 1178 { 1179 struct dm_io_request io_req; 1180 struct dm_io_region io_loc; 1181 int r; 1182 unsigned int sector, pl_index, pl_offset; 1183 1184 BUG_ON((target | n_sectors | offset) & (unsigned int)(ic->sectors_per_block - 1)); 1185 1186 if (unlikely(dm_integrity_failed(ic))) { 1187 fn(-1UL, -1UL, data); 1188 return; 1189 } 1190 1191 sector = section * ic->journal_section_sectors + JOURNAL_BLOCK_SECTORS + offset; 1192 1193 pl_index = sector >> (PAGE_SHIFT - SECTOR_SHIFT); 1194 pl_offset = (sector << SECTOR_SHIFT) & (PAGE_SIZE - 1); 1195 1196 io_req.bi_opf = REQ_OP_WRITE; 1197 io_req.mem.type = DM_IO_PAGE_LIST; 1198 io_req.mem.ptr.pl = &ic->journal[pl_index]; 1199 io_req.mem.offset = pl_offset; 1200 io_req.notify.fn = fn; 1201 io_req.notify.context = data; 1202 io_req.client = ic->io; 1203 io_loc.bdev = ic->dev->bdev; 1204 io_loc.sector = target; 1205 io_loc.count = n_sectors; 1206 1207 r = dm_io(&io_req, 1, &io_loc, NULL, NULL, IOPRIO_DEFAULT); 1208 if (unlikely(r)) { 1209 WARN_ONCE(1, "asynchronous dm_io failed: %d", r); 1210 fn(-1UL, -1UL, data); 1211 } 1212 } 1213 1214 static bool ranges_overlap(struct dm_integrity_range *range1, struct dm_integrity_range *range2) 1215 { 1216 return range1->logical_sector < range2->logical_sector + range2->n_sectors && 1217 range1->logical_sector + range1->n_sectors > range2->logical_sector; 1218 } 1219 1220 static bool add_new_range(struct dm_integrity_c *ic, struct dm_integrity_range *new_range, bool check_waiting) 1221 { 1222 struct rb_node **n = &ic->in_progress.rb_node; 1223 struct rb_node *parent; 1224 1225 BUG_ON((new_range->logical_sector | new_range->n_sectors) & (unsigned int)(ic->sectors_per_block - 1)); 1226 1227 if (likely(check_waiting)) { 1228 struct dm_integrity_range *range; 1229 1230 list_for_each_entry(range, &ic->wait_list, wait_entry) { 1231 if (unlikely(ranges_overlap(range, new_range))) 1232 return false; 1233 } 1234 } 1235 1236 parent = NULL; 1237 1238 while (*n) { 1239 struct dm_integrity_range *range = container_of(*n, struct dm_integrity_range, node); 1240 1241 parent = *n; 1242 if (new_range->logical_sector + new_range->n_sectors <= range->logical_sector) 1243 n = &range->node.rb_left; 1244 else if (new_range->logical_sector >= range->logical_sector + range->n_sectors) 1245 n = &range->node.rb_right; 1246 else 1247 return false; 1248 } 1249 1250 rb_link_node(&new_range->node, parent, n); 1251 rb_insert_color(&new_range->node, &ic->in_progress); 1252 1253 return true; 1254 } 1255 1256 static void remove_range_unlocked(struct dm_integrity_c *ic, struct dm_integrity_range *range) 1257 { 1258 rb_erase(&range->node, &ic->in_progress); 1259 while (unlikely(!list_empty(&ic->wait_list))) { 1260 struct dm_integrity_range *last_range = 1261 list_first_entry(&ic->wait_list, struct dm_integrity_range, wait_entry); 1262 struct task_struct *last_range_task; 1263 1264 last_range_task = last_range->task; 1265 list_del(&last_range->wait_entry); 1266 if (!add_new_range(ic, last_range, false)) { 1267 last_range->task = last_range_task; 1268 list_add(&last_range->wait_entry, &ic->wait_list); 1269 break; 1270 } 1271 last_range->waiting = false; 1272 wake_up_process(last_range_task); 1273 } 1274 } 1275 1276 static void remove_range(struct dm_integrity_c *ic, struct dm_integrity_range *range) 1277 { 1278 unsigned long flags; 1279 1280 spin_lock_irqsave(&ic->endio_wait.lock, flags); 1281 remove_range_unlocked(ic, range); 1282 spin_unlock_irqrestore(&ic->endio_wait.lock, flags); 1283 } 1284 1285 static void wait_and_add_new_range(struct dm_integrity_c *ic, struct dm_integrity_range *new_range) 1286 { 1287 new_range->waiting = true; 1288 list_add_tail(&new_range->wait_entry, &ic->wait_list); 1289 new_range->task = current; 1290 do { 1291 __set_current_state(TASK_UNINTERRUPTIBLE); 1292 spin_unlock_irq(&ic->endio_wait.lock); 1293 io_schedule(); 1294 spin_lock_irq(&ic->endio_wait.lock); 1295 } while (unlikely(new_range->waiting)); 1296 } 1297 1298 static void add_new_range_and_wait(struct dm_integrity_c *ic, struct dm_integrity_range *new_range) 1299 { 1300 if (unlikely(!add_new_range(ic, new_range, true))) 1301 wait_and_add_new_range(ic, new_range); 1302 } 1303 1304 static void init_journal_node(struct journal_node *node) 1305 { 1306 RB_CLEAR_NODE(&node->node); 1307 node->sector = (sector_t)-1; 1308 } 1309 1310 static void add_journal_node(struct dm_integrity_c *ic, struct journal_node *node, sector_t sector) 1311 { 1312 struct rb_node **link; 1313 struct rb_node *parent; 1314 1315 node->sector = sector; 1316 BUG_ON(!RB_EMPTY_NODE(&node->node)); 1317 1318 link = &ic->journal_tree_root.rb_node; 1319 parent = NULL; 1320 1321 while (*link) { 1322 struct journal_node *j; 1323 1324 parent = *link; 1325 j = container_of(parent, struct journal_node, node); 1326 if (sector < j->sector) 1327 link = &j->node.rb_left; 1328 else 1329 link = &j->node.rb_right; 1330 } 1331 1332 rb_link_node(&node->node, parent, link); 1333 rb_insert_color(&node->node, &ic->journal_tree_root); 1334 } 1335 1336 static void remove_journal_node(struct dm_integrity_c *ic, struct journal_node *node) 1337 { 1338 BUG_ON(RB_EMPTY_NODE(&node->node)); 1339 rb_erase(&node->node, &ic->journal_tree_root); 1340 init_journal_node(node); 1341 } 1342 1343 #define NOT_FOUND (-1U) 1344 1345 static unsigned int find_journal_node(struct dm_integrity_c *ic, sector_t sector, sector_t *next_sector) 1346 { 1347 struct rb_node *n = ic->journal_tree_root.rb_node; 1348 unsigned int found = NOT_FOUND; 1349 1350 *next_sector = (sector_t)-1; 1351 while (n) { 1352 struct journal_node *j = container_of(n, struct journal_node, node); 1353 1354 if (sector == j->sector) 1355 found = j - ic->journal_tree; 1356 1357 if (sector < j->sector) { 1358 *next_sector = j->sector; 1359 n = j->node.rb_left; 1360 } else 1361 n = j->node.rb_right; 1362 } 1363 1364 return found; 1365 } 1366 1367 static bool test_journal_node(struct dm_integrity_c *ic, unsigned int pos, sector_t sector) 1368 { 1369 struct journal_node *node, *next_node; 1370 struct rb_node *next; 1371 1372 if (unlikely(pos >= ic->journal_entries)) 1373 return false; 1374 node = &ic->journal_tree[pos]; 1375 if (unlikely(RB_EMPTY_NODE(&node->node))) 1376 return false; 1377 if (unlikely(node->sector != sector)) 1378 return false; 1379 1380 next = rb_next(&node->node); 1381 if (unlikely(!next)) 1382 return true; 1383 1384 next_node = container_of(next, struct journal_node, node); 1385 return next_node->sector != sector; 1386 } 1387 1388 static bool find_newer_committed_node(struct dm_integrity_c *ic, struct journal_node *node) 1389 { 1390 struct rb_node *next; 1391 struct journal_node *next_node; 1392 unsigned int next_section; 1393 1394 BUG_ON(RB_EMPTY_NODE(&node->node)); 1395 1396 next = rb_next(&node->node); 1397 if (unlikely(!next)) 1398 return false; 1399 1400 next_node = container_of(next, struct journal_node, node); 1401 1402 if (next_node->sector != node->sector) 1403 return false; 1404 1405 next_section = (unsigned int)(next_node - ic->journal_tree) / ic->journal_section_entries; 1406 if (next_section >= ic->committed_section && 1407 next_section < ic->committed_section + ic->n_committed_sections) 1408 return true; 1409 if (next_section + ic->journal_sections < ic->committed_section + ic->n_committed_sections) 1410 return true; 1411 1412 return false; 1413 } 1414 1415 #define TAG_READ 0 1416 #define TAG_WRITE 1 1417 #define TAG_CMP 2 1418 1419 static int dm_integrity_rw_tag(struct dm_integrity_c *ic, unsigned char *tag, sector_t *metadata_block, 1420 unsigned int *metadata_offset, unsigned int total_size, int op) 1421 { 1422 unsigned int hash_offset = 0; 1423 unsigned char mismatch_hash = 0; 1424 unsigned char mismatch_filler = !ic->discard || ic->discard_keyed; 1425 1426 do { 1427 unsigned char *data, *dp; 1428 struct dm_buffer *b; 1429 unsigned int to_copy; 1430 int r; 1431 1432 r = dm_integrity_failed(ic); 1433 if (unlikely(r)) 1434 return r; 1435 1436 data = dm_bufio_read(ic->bufio, *metadata_block, &b); 1437 if (IS_ERR(data)) 1438 return PTR_ERR(data); 1439 1440 to_copy = min((1U << SECTOR_SHIFT << ic->log2_buffer_sectors) - *metadata_offset, total_size); 1441 dp = data + *metadata_offset; 1442 if (op == TAG_READ) { 1443 memcpy(tag, dp, to_copy); 1444 } else if (op == TAG_WRITE) { 1445 if (crypto_memneq(dp, tag, to_copy)) { 1446 memcpy(dp, tag, to_copy); 1447 dm_bufio_mark_partial_buffer_dirty(b, *metadata_offset, *metadata_offset + to_copy); 1448 } 1449 } else { 1450 /* e.g.: op == TAG_CMP */ 1451 1452 if (likely(is_power_of_2(ic->tag_size))) { 1453 if (unlikely(crypto_memneq(dp, tag, to_copy))) 1454 goto thorough_test; 1455 } else { 1456 unsigned int i, ts; 1457 thorough_test: 1458 ts = total_size; 1459 1460 for (i = 0; i < to_copy; i++, ts--) { 1461 /* 1462 * Warning: the control flow must not be 1463 * dependent on match/mismatch of 1464 * individual bytes. 1465 */ 1466 mismatch_hash |= dp[i] ^ tag[i]; 1467 mismatch_filler |= dp[i] ^ DISCARD_FILLER; 1468 hash_offset++; 1469 if (unlikely(hash_offset == ic->tag_size)) { 1470 if (unlikely(mismatch_hash) && unlikely(mismatch_filler)) { 1471 dm_bufio_release(b); 1472 return ts; 1473 } 1474 hash_offset = 0; 1475 mismatch_hash = 0; 1476 mismatch_filler = !ic->discard || ic->discard_keyed; 1477 } 1478 } 1479 } 1480 } 1481 dm_bufio_release(b); 1482 1483 tag += to_copy; 1484 *metadata_offset += to_copy; 1485 if (unlikely(*metadata_offset == 1U << SECTOR_SHIFT << ic->log2_buffer_sectors)) { 1486 (*metadata_block)++; 1487 *metadata_offset = 0; 1488 } 1489 1490 total_size -= to_copy; 1491 } while (unlikely(total_size)); 1492 1493 return 0; 1494 } 1495 1496 struct flush_request { 1497 struct dm_io_request io_req; 1498 struct dm_io_region io_reg; 1499 struct dm_integrity_c *ic; 1500 struct completion comp; 1501 }; 1502 1503 static void flush_notify(unsigned long error, unsigned long unsup, void *fr_) 1504 { 1505 struct flush_request *fr = fr_; 1506 1507 if (unlikely(error != 0)) 1508 dm_integrity_io_error(fr->ic, "flushing disk cache", -EIO); 1509 else if (unlikely(unsup != 0)) 1510 dm_integrity_io_error(fr->ic, "flushing disk cache", -EOPNOTSUPP); 1511 complete(&fr->comp); 1512 } 1513 1514 static void dm_integrity_flush_buffers(struct dm_integrity_c *ic, bool flush_data) 1515 { 1516 int r; 1517 struct flush_request fr; 1518 1519 if (!ic->meta_dev) 1520 flush_data = false; 1521 if (flush_data) { 1522 fr.io_req.bi_opf = REQ_OP_WRITE | REQ_PREFLUSH | REQ_SYNC; 1523 fr.io_req.mem.type = DM_IO_KMEM; 1524 fr.io_req.mem.ptr.addr = NULL; 1525 fr.io_req.notify.fn = flush_notify; 1526 fr.io_req.notify.context = &fr; 1527 fr.io_req.client = dm_bufio_get_dm_io_client(ic->bufio); 1528 fr.io_reg.bdev = ic->dev->bdev; 1529 fr.io_reg.sector = 0; 1530 fr.io_reg.count = 0; 1531 fr.ic = ic; 1532 init_completion(&fr.comp); 1533 r = dm_io(&fr.io_req, 1, &fr.io_reg, NULL, NULL, IOPRIO_DEFAULT); 1534 BUG_ON(r); 1535 } 1536 1537 r = dm_bufio_write_dirty_buffers(ic->bufio); 1538 if (unlikely(r)) 1539 dm_integrity_io_error(ic, "writing tags", r); 1540 1541 if (flush_data) 1542 wait_for_completion(&fr.comp); 1543 } 1544 1545 static void sleep_on_endio_wait(struct dm_integrity_c *ic) 1546 { 1547 DECLARE_WAITQUEUE(wait, current); 1548 1549 __add_wait_queue(&ic->endio_wait, &wait); 1550 __set_current_state(TASK_UNINTERRUPTIBLE); 1551 spin_unlock_irq(&ic->endio_wait.lock); 1552 io_schedule(); 1553 spin_lock_irq(&ic->endio_wait.lock); 1554 __remove_wait_queue(&ic->endio_wait, &wait); 1555 } 1556 1557 static void autocommit_fn(struct timer_list *t) 1558 { 1559 struct dm_integrity_c *ic = timer_container_of(ic, t, 1560 autocommit_timer); 1561 1562 if (likely(!dm_integrity_failed(ic))) 1563 queue_work(ic->commit_wq, &ic->commit_work); 1564 } 1565 1566 static void schedule_autocommit(struct dm_integrity_c *ic) 1567 { 1568 if (!timer_pending(&ic->autocommit_timer)) 1569 mod_timer(&ic->autocommit_timer, jiffies + ic->autocommit_jiffies); 1570 } 1571 1572 static void submit_flush_bio(struct dm_integrity_c *ic, struct dm_integrity_io *dio) 1573 { 1574 struct bio *bio; 1575 unsigned long flags; 1576 1577 spin_lock_irqsave(&ic->endio_wait.lock, flags); 1578 bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 1579 bio_list_add(&ic->flush_bio_list, bio); 1580 spin_unlock_irqrestore(&ic->endio_wait.lock, flags); 1581 1582 queue_work(ic->commit_wq, &ic->commit_work); 1583 } 1584 1585 static void do_endio(struct dm_integrity_c *ic, struct bio *bio) 1586 { 1587 int r; 1588 1589 r = dm_integrity_failed(ic); 1590 if (unlikely(r) && !bio->bi_status) 1591 bio->bi_status = errno_to_blk_status(r); 1592 if (unlikely(ic->synchronous_mode) && bio_op(bio) == REQ_OP_WRITE) { 1593 unsigned long flags; 1594 1595 spin_lock_irqsave(&ic->endio_wait.lock, flags); 1596 bio_list_add(&ic->synchronous_bios, bio); 1597 queue_delayed_work(ic->commit_wq, &ic->bitmap_flush_work, 0); 1598 spin_unlock_irqrestore(&ic->endio_wait.lock, flags); 1599 return; 1600 } 1601 bio_endio(bio); 1602 } 1603 1604 static void do_endio_flush(struct dm_integrity_c *ic, struct dm_integrity_io *dio) 1605 { 1606 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 1607 1608 if (unlikely(dio->fua) && likely(!bio->bi_status) && likely(!dm_integrity_failed(ic))) 1609 submit_flush_bio(ic, dio); 1610 else 1611 do_endio(ic, bio); 1612 } 1613 1614 static void dec_in_flight(struct dm_integrity_io *dio) 1615 { 1616 if (atomic_dec_and_test(&dio->in_flight)) { 1617 struct dm_integrity_c *ic = dio->ic; 1618 struct bio *bio; 1619 1620 remove_range(ic, &dio->range); 1621 1622 if (dio->op == REQ_OP_WRITE || unlikely(dio->op == REQ_OP_DISCARD)) 1623 schedule_autocommit(ic); 1624 1625 bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 1626 if (unlikely(dio->bi_status) && !bio->bi_status) 1627 bio->bi_status = dio->bi_status; 1628 if (likely(!bio->bi_status) && unlikely(bio_sectors(bio) != dio->range.n_sectors)) { 1629 dio->range.logical_sector += dio->range.n_sectors; 1630 bio_advance(bio, dio->range.n_sectors << SECTOR_SHIFT); 1631 INIT_WORK(&dio->work, integrity_bio_wait); 1632 queue_work(ic->offload_wq, &dio->work); 1633 return; 1634 } 1635 do_endio_flush(ic, dio); 1636 } 1637 } 1638 1639 static void integrity_end_io(struct bio *bio) 1640 { 1641 struct dm_integrity_io *dio = dm_per_bio_data(bio, sizeof(struct dm_integrity_io)); 1642 1643 dm_bio_restore(&dio->bio_details, bio); 1644 if (bio->bi_integrity) 1645 bio->bi_opf |= REQ_INTEGRITY; 1646 1647 if (dio->completion) 1648 complete(dio->completion); 1649 1650 dec_in_flight(dio); 1651 } 1652 1653 static void integrity_sector_checksum_shash(struct dm_integrity_c *ic, sector_t sector, 1654 const char *data, unsigned offset, 1655 unsigned int len, char *result) 1656 { 1657 __le64 sector_le = cpu_to_le64(sector); 1658 SHASH_DESC_ON_STACK(req, ic->internal_shash); 1659 int r; 1660 unsigned int digest_size; 1661 1662 req->tfm = ic->internal_shash; 1663 1664 r = crypto_shash_init(req); 1665 if (unlikely(r < 0)) { 1666 dm_integrity_io_error(ic, "crypto_shash_init", r); 1667 goto failed; 1668 } 1669 1670 if (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) { 1671 r = crypto_shash_update(req, (__u8 *)&ic->sb->salt, SALT_SIZE); 1672 if (unlikely(r < 0)) { 1673 dm_integrity_io_error(ic, "crypto_shash_update", r); 1674 goto failed; 1675 } 1676 } 1677 1678 r = crypto_shash_update(req, (const __u8 *)§or_le, sizeof(sector_le)); 1679 if (unlikely(r < 0)) { 1680 dm_integrity_io_error(ic, "crypto_shash_update", r); 1681 goto failed; 1682 } 1683 1684 if (likely(len)) { 1685 r = crypto_shash_update(req, data + offset, len); 1686 if (unlikely(r < 0)) { 1687 dm_integrity_io_error(ic, "crypto_shash_update", r); 1688 goto failed; 1689 } 1690 } 1691 1692 r = crypto_shash_final(req, result); 1693 if (unlikely(r < 0)) { 1694 dm_integrity_io_error(ic, "crypto_shash_final", r); 1695 goto failed; 1696 } 1697 1698 digest_size = ic->internal_hash_digestsize; 1699 if (unlikely(digest_size < ic->tag_size)) 1700 memset(result + digest_size, 0, ic->tag_size - digest_size); 1701 1702 return; 1703 1704 failed: 1705 /* this shouldn't happen anyway, the hash functions have no reason to fail */ 1706 get_random_bytes(result, ic->tag_size); 1707 } 1708 1709 static void integrity_sector_checksum_ahash(struct dm_integrity_c *ic, struct ahash_request **ahash_req, 1710 sector_t sector, struct page *page, unsigned offset, 1711 unsigned int len, char *result) 1712 { 1713 __le64 sector_le = cpu_to_le64(sector); 1714 struct ahash_request *req; 1715 DECLARE_CRYPTO_WAIT(wait); 1716 struct scatterlist sg[3], *s = sg; 1717 int r; 1718 unsigned int digest_size; 1719 unsigned int nbytes = 0; 1720 unsigned int nents = 1 + (len ? 1 : 0); 1721 1722 might_sleep(); 1723 1724 req = *ahash_req; 1725 if (unlikely(!req)) { 1726 req = mempool_alloc(&ic->ahash_req_pool, GFP_NOIO); 1727 *ahash_req = req; 1728 } 1729 1730 ahash_request_set_tfm(req, ic->internal_ahash); 1731 ahash_request_set_callback(req, CRYPTO_TFM_REQ_MAY_SLEEP, crypto_req_done, &wait); 1732 1733 if (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) { 1734 sg_init_table(sg, nents + 1); 1735 sg_set_buf(s, (const __u8 *)&ic->sb->salt, SALT_SIZE); 1736 nbytes += SALT_SIZE; 1737 s++; 1738 } else { 1739 sg_init_table(sg, nents); 1740 } 1741 1742 if (likely(!is_vmalloc_addr(§or_le))) { 1743 sg_set_buf(s, §or_le, sizeof(sector_le)); 1744 } else { 1745 struct page *sec_page = vmalloc_to_page(§or_le); 1746 unsigned int sec_off = offset_in_page(§or_le); 1747 sg_set_page(s, sec_page, sizeof(sector_le), sec_off); 1748 } 1749 nbytes += sizeof(sector_le); 1750 s++; 1751 1752 if (likely(len)) { 1753 sg_set_page(s, page, len, offset); 1754 nbytes += len; 1755 } 1756 1757 ahash_request_set_crypt(req, sg, result, nbytes); 1758 1759 r = crypto_wait_req(crypto_ahash_digest(req), &wait); 1760 if (unlikely(r)) { 1761 dm_integrity_io_error(ic, "crypto_ahash_digest", r); 1762 goto failed; 1763 } 1764 1765 digest_size = ic->internal_hash_digestsize; 1766 if (unlikely(digest_size < ic->tag_size)) 1767 memset(result + digest_size, 0, ic->tag_size - digest_size); 1768 1769 return; 1770 1771 failed: 1772 /* this shouldn't happen anyway, the hash functions have no reason to fail */ 1773 get_random_bytes(result, ic->tag_size); 1774 } 1775 1776 static void integrity_sector_checksum(struct dm_integrity_c *ic, struct ahash_request **ahash_req, 1777 sector_t sector, const char *data, unsigned offset, char *result) 1778 { 1779 unsigned int len = ic->sectors_per_block << SECTOR_SHIFT; 1780 1781 if (likely(ic->internal_shash != NULL)) 1782 integrity_sector_checksum_shash(ic, sector, data, offset, len, result); 1783 else 1784 integrity_sector_checksum_ahash(ic, ahash_req, sector, (struct page *)data, 1785 offset, len, result); 1786 } 1787 1788 /* 1789 * Authenticated marker for a discarded block: HMAC_key(salt || sector), with 1790 * no data payload. Because a real data tag's input always covers a full 1791 * block, its length differs from this marker's, so the two can never 1792 * collide structurally, regardless of block content. 1793 */ 1794 static void integrity_discard_checksum(struct dm_integrity_c *ic, struct ahash_request **ahash_req, 1795 sector_t sector, char *result) 1796 { 1797 if (likely(ic->internal_shash != NULL)) 1798 integrity_sector_checksum_shash(ic, sector, NULL, 0, 0, result); 1799 else 1800 integrity_sector_checksum_ahash(ic, ahash_req, sector, NULL, 0, 0, result); 1801 } 1802 1803 static void integrity_discard_fill_tags(struct dm_integrity_c *ic, struct ahash_request **ahash_req, 1804 unsigned char *checksums, sector_t *sector, 1805 unsigned int blocks) 1806 { 1807 unsigned int i; 1808 1809 for (i = 0; i < blocks; i++) { 1810 integrity_discard_checksum(ic, ahash_req, *sector, checksums + i * ic->tag_size); 1811 *sector += ic->sectors_per_block; 1812 } 1813 } 1814 1815 static void *integrity_kmap(struct dm_integrity_c *ic, struct page *p) 1816 { 1817 if (likely(ic->internal_shash != NULL)) 1818 return kmap_local_page(p); 1819 else 1820 return p; 1821 } 1822 1823 static void integrity_kunmap(struct dm_integrity_c *ic, const void *ptr) 1824 { 1825 if (likely(ic->internal_shash != NULL)) 1826 kunmap_local(ptr); 1827 } 1828 1829 static void *integrity_identity(struct dm_integrity_c *ic, void *data) 1830 { 1831 #ifdef CONFIG_DEBUG_SG 1832 BUG_ON(offset_in_page(data)); 1833 BUG_ON(!virt_addr_valid(data)); 1834 #endif 1835 if (likely(ic->internal_shash != NULL)) 1836 return data; 1837 else 1838 return virt_to_page(data); 1839 } 1840 1841 static int integrity_recheck_verify_tag(struct dm_integrity_io *dio, char *checksum, 1842 char *on_disk_tag, sector_t logical_sector) 1843 { 1844 struct dm_integrity_c *ic = dio->ic; 1845 int r; 1846 1847 if (!ic->discard_keyed) 1848 return dm_integrity_rw_tag(ic, checksum, &dio->metadata_block, 1849 &dio->metadata_offset, ic->tag_size, TAG_CMP); 1850 1851 r = dm_integrity_rw_tag(ic, on_disk_tag, &dio->metadata_block, 1852 &dio->metadata_offset, ic->tag_size, TAG_READ); 1853 if (unlikely(r)) 1854 return r; 1855 1856 r = crypto_memneq(on_disk_tag, checksum, ic->tag_size); 1857 if (unlikely(r)) { 1858 integrity_discard_checksum(ic, &dio->ahash_req, logical_sector, checksum); 1859 r = crypto_memneq(on_disk_tag, checksum, ic->tag_size); 1860 } 1861 return r; 1862 } 1863 1864 static noinline void integrity_recheck(struct dm_integrity_io *dio, char *checksum) 1865 { 1866 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 1867 struct dm_integrity_c *ic = dio->ic; 1868 struct bvec_iter iter; 1869 struct bio_vec bv; 1870 sector_t sector, logical_sector, area, offset; 1871 struct page *page; 1872 1873 get_area_and_offset(ic, dio->range.logical_sector, &area, &offset); 1874 dio->metadata_block = get_metadata_sector_and_offset(ic, area, offset, 1875 &dio->metadata_offset); 1876 sector = get_data_sector(ic, area, offset); 1877 logical_sector = dio->range.logical_sector; 1878 1879 page = mempool_alloc(&ic->recheck_pool, GFP_NOIO); 1880 1881 __bio_for_each_segment(bv, bio, iter, dio->bio_details.bi_iter) { 1882 unsigned pos = 0; 1883 1884 do { 1885 sector_t alignment; 1886 char *mem; 1887 char *buffer = page_to_virt(page); 1888 unsigned int buffer_offset; 1889 char on_disk_tag[MAX_T(size_t, HASH_MAX_DIGESTSIZE, MAX_TAG_SIZE)]; 1890 int r; 1891 struct dm_io_request io_req; 1892 struct dm_io_region io_loc; 1893 io_req.bi_opf = REQ_OP_READ; 1894 io_req.mem.type = DM_IO_KMEM; 1895 io_req.mem.ptr.addr = buffer; 1896 io_req.notify.fn = NULL; 1897 io_req.client = ic->io; 1898 io_loc.bdev = ic->dev->bdev; 1899 io_loc.sector = sector; 1900 io_loc.count = ic->sectors_per_block; 1901 1902 /* Align the bio to logical block size */ 1903 alignment = dio->range.logical_sector | bio_sectors(bio) | (PAGE_SIZE >> SECTOR_SHIFT); 1904 alignment &= -alignment; 1905 io_loc.sector = round_down(io_loc.sector, alignment); 1906 io_loc.count += sector - io_loc.sector; 1907 buffer_offset = (sector - io_loc.sector) << SECTOR_SHIFT; 1908 io_loc.count = round_up(io_loc.count, alignment); 1909 1910 r = dm_io(&io_req, 1, &io_loc, NULL, NULL, IOPRIO_DEFAULT); 1911 if (unlikely(r)) { 1912 dio->bi_status = errno_to_blk_status(r); 1913 goto free_ret; 1914 } 1915 1916 integrity_sector_checksum(ic, &dio->ahash_req, logical_sector, integrity_identity(ic, buffer), buffer_offset, checksum); 1917 r = integrity_recheck_verify_tag(dio, checksum, on_disk_tag, 1918 logical_sector); 1919 if (r) { 1920 if (r > 0) { 1921 DMERR_LIMIT("%pg: Checksum failed at sector 0x%llx", 1922 bio->bi_bdev, logical_sector); 1923 atomic64_inc(&ic->number_of_mismatches); 1924 dm_audit_log_bio(DM_MSG_PREFIX, "integrity-checksum", 1925 bio, logical_sector, 0); 1926 r = -EILSEQ; 1927 } 1928 dio->bi_status = errno_to_blk_status(r); 1929 goto free_ret; 1930 } 1931 1932 mem = bvec_kmap_local(&bv); 1933 memcpy(mem + pos, buffer + buffer_offset, ic->sectors_per_block << SECTOR_SHIFT); 1934 kunmap_local(mem); 1935 1936 pos += ic->sectors_per_block << SECTOR_SHIFT; 1937 sector += ic->sectors_per_block; 1938 logical_sector += ic->sectors_per_block; 1939 } while (pos < bv.bv_len); 1940 } 1941 free_ret: 1942 mempool_free(page, &ic->recheck_pool); 1943 } 1944 1945 static void integrity_metadata(struct work_struct *w) 1946 { 1947 struct dm_integrity_io *dio = container_of(w, struct dm_integrity_io, work); 1948 struct dm_integrity_c *ic = dio->ic; 1949 1950 int r; 1951 1952 if (ic->internal_hash) { 1953 struct bvec_iter iter; 1954 struct bio_vec bv; 1955 unsigned int digest_size = ic->internal_hash_digestsize; 1956 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 1957 char *checksums; 1958 unsigned int extra_space = unlikely(digest_size > ic->tag_size) ? digest_size - ic->tag_size : 0; 1959 char checksums_onstack[MAX_T(size_t, HASH_MAX_DIGESTSIZE, MAX_TAG_SIZE)]; 1960 sector_t sector; 1961 unsigned int sectors_to_process; 1962 1963 if (unlikely(ic->mode == 'R')) 1964 goto skip_io; 1965 1966 if (likely(dio->op != REQ_OP_DISCARD)) 1967 checksums = kmalloc((PAGE_SIZE >> SECTOR_SHIFT >> ic->sb->log2_sectors_per_block) * ic->tag_size + extra_space, 1968 GFP_NOIO | __GFP_NORETRY | __GFP_NOWARN); 1969 else 1970 checksums = kmalloc(PAGE_SIZE, GFP_NOIO | __GFP_NORETRY | __GFP_NOWARN); 1971 if (!checksums) { 1972 checksums = checksums_onstack; 1973 if (WARN_ON(extra_space && 1974 digest_size > sizeof(checksums_onstack))) { 1975 r = -EINVAL; 1976 goto error; 1977 } 1978 } 1979 1980 if (unlikely(dio->op == REQ_OP_DISCARD)) { 1981 unsigned int bi_size = dio->bio_details.bi_iter.bi_size; 1982 unsigned int max_size = likely(checksums != checksums_onstack) ? PAGE_SIZE : HASH_MAX_DIGESTSIZE; 1983 unsigned int max_blocks = max_size / ic->tag_size; 1984 sector_t sector = dio->range.logical_sector; 1985 1986 if (!ic->discard_keyed) 1987 memset(checksums, DISCARD_FILLER, max_size); 1988 1989 while (bi_size) { 1990 unsigned int this_step_blocks = bi_size >> (SECTOR_SHIFT + ic->sb->log2_sectors_per_block); 1991 1992 this_step_blocks = min(this_step_blocks, max_blocks); 1993 if (ic->discard_keyed) 1994 integrity_discard_fill_tags(ic, &dio->ahash_req, checksums, 1995 §or, this_step_blocks); 1996 r = dm_integrity_rw_tag(ic, checksums, &dio->metadata_block, &dio->metadata_offset, 1997 this_step_blocks * ic->tag_size, TAG_WRITE); 1998 if (unlikely(r)) { 1999 if (likely(checksums != checksums_onstack)) 2000 kfree(checksums); 2001 goto error; 2002 } 2003 2004 bi_size -= this_step_blocks << (SECTOR_SHIFT + ic->sb->log2_sectors_per_block); 2005 } 2006 2007 if (likely(checksums != checksums_onstack)) 2008 kfree(checksums); 2009 goto skip_io; 2010 } 2011 2012 sector = dio->range.logical_sector; 2013 sectors_to_process = dio->range.n_sectors; 2014 2015 __bio_for_each_segment(bv, bio, iter, dio->bio_details.bi_iter) { 2016 struct bio_vec bv_copy = bv; 2017 unsigned int pos; 2018 char *mem, *checksums_ptr; 2019 2020 again: 2021 mem = integrity_kmap(ic, bv_copy.bv_page); 2022 pos = 0; 2023 checksums_ptr = checksums; 2024 do { 2025 integrity_sector_checksum(ic, &dio->ahash_req, sector, mem, bv_copy.bv_offset + pos, checksums_ptr); 2026 checksums_ptr += ic->tag_size; 2027 sectors_to_process -= ic->sectors_per_block; 2028 pos += ic->sectors_per_block << SECTOR_SHIFT; 2029 sector += ic->sectors_per_block; 2030 } while (pos < bv_copy.bv_len && sectors_to_process && checksums != checksums_onstack); 2031 integrity_kunmap(ic, mem); 2032 2033 r = dm_integrity_rw_tag(ic, checksums, &dio->metadata_block, &dio->metadata_offset, 2034 checksums_ptr - checksums, dio->op == REQ_OP_READ ? TAG_CMP : TAG_WRITE); 2035 if (unlikely(r)) { 2036 if (likely(checksums != checksums_onstack)) 2037 kfree(checksums); 2038 if (r > 0) { 2039 integrity_recheck(dio, checksums_onstack); 2040 goto skip_io; 2041 } 2042 goto error; 2043 } 2044 2045 if (!sectors_to_process) 2046 break; 2047 2048 if (unlikely(pos < bv_copy.bv_len)) { 2049 bv_copy.bv_offset += pos; 2050 bv_copy.bv_len -= pos; 2051 goto again; 2052 } 2053 } 2054 2055 if (likely(checksums != checksums_onstack)) 2056 kfree(checksums); 2057 } else { 2058 struct bio_integrity_payload *bip = dio->bio_details.bi_integrity; 2059 2060 if (bip) { 2061 struct bio_vec biv; 2062 struct bvec_iter iter; 2063 unsigned int data_to_process = dio->range.n_sectors; 2064 2065 sector_to_block(ic, data_to_process); 2066 data_to_process *= ic->tag_size; 2067 2068 bip_for_each_vec(biv, bip, iter) { 2069 unsigned char *tag; 2070 unsigned int this_len; 2071 2072 BUG_ON(PageHighMem(biv.bv_page)); 2073 tag = bvec_virt(&biv); 2074 this_len = min(biv.bv_len, data_to_process); 2075 r = dm_integrity_rw_tag(ic, tag, &dio->metadata_block, &dio->metadata_offset, 2076 this_len, dio->op == REQ_OP_READ ? TAG_READ : TAG_WRITE); 2077 if (unlikely(r)) 2078 goto error; 2079 data_to_process -= this_len; 2080 if (!data_to_process) 2081 break; 2082 } 2083 } 2084 } 2085 skip_io: 2086 dec_in_flight(dio); 2087 return; 2088 error: 2089 dio->bi_status = errno_to_blk_status(r); 2090 dec_in_flight(dio); 2091 } 2092 2093 static inline bool dm_integrity_check_limits(struct dm_integrity_c *ic, sector_t logical_sector, struct bio *bio) 2094 { 2095 if (unlikely(logical_sector + bio_sectors(bio) > ic->provided_data_sectors)) { 2096 DMERR("Too big sector number: 0x%llx + 0x%x > 0x%llx", 2097 logical_sector, bio_sectors(bio), 2098 ic->provided_data_sectors); 2099 return false; 2100 } 2101 if (unlikely((logical_sector | bio_sectors(bio)) & (unsigned int)(ic->sectors_per_block - 1))) { 2102 DMERR("Bio not aligned on %u sectors: 0x%llx, 0x%x", 2103 ic->sectors_per_block, 2104 logical_sector, bio_sectors(bio)); 2105 return false; 2106 } 2107 if (ic->sectors_per_block > 1 && likely(bio_op(bio) != REQ_OP_DISCARD)) { 2108 struct bvec_iter iter; 2109 struct bio_vec bv; 2110 2111 bio_for_each_segment(bv, bio, iter) { 2112 if (unlikely(bv.bv_len & ((ic->sectors_per_block << SECTOR_SHIFT) - 1))) { 2113 DMERR("Bio vector (%u,%u) is not aligned on %u-sector boundary", 2114 bv.bv_offset, bv.bv_len, ic->sectors_per_block); 2115 return false; 2116 } 2117 } 2118 } 2119 return true; 2120 } 2121 2122 static int dm_integrity_map(struct dm_target *ti, struct bio *bio) 2123 { 2124 struct dm_integrity_c *ic = ti->private; 2125 struct dm_integrity_io *dio = dm_per_bio_data(bio, sizeof(struct dm_integrity_io)); 2126 struct bio_integrity_payload *bip; 2127 2128 sector_t area, offset; 2129 2130 dio->ic = ic; 2131 dio->bi_status = 0; 2132 dio->op = bio_op(bio); 2133 dio->ahash_req = NULL; 2134 2135 if (ic->mode == 'I') { 2136 bio->bi_iter.bi_sector = dm_target_offset(ic->ti, bio->bi_iter.bi_sector); 2137 dio->integrity_payload = NULL; 2138 dio->integrity_payload_from_mempool = false; 2139 dio->integrity_range_locked = false; 2140 return dm_integrity_map_inline(dio, true); 2141 } 2142 2143 if (unlikely(dio->op == REQ_OP_DISCARD)) { 2144 if (ti->max_io_len) { 2145 sector_t sec = dm_target_offset(ti, bio->bi_iter.bi_sector); 2146 unsigned int log2_max_io_len = __fls(ti->max_io_len); 2147 sector_t start_boundary = sec >> log2_max_io_len; 2148 sector_t end_boundary = (sec + bio_sectors(bio) - 1) >> log2_max_io_len; 2149 2150 if (start_boundary < end_boundary) { 2151 sector_t len = ti->max_io_len - (sec & (ti->max_io_len - 1)); 2152 2153 dm_accept_partial_bio(bio, len); 2154 } 2155 } 2156 } 2157 2158 if (unlikely(bio->bi_opf & REQ_PREFLUSH)) { 2159 submit_flush_bio(ic, dio); 2160 return DM_MAPIO_SUBMITTED; 2161 } 2162 2163 dio->range.logical_sector = dm_target_offset(ti, bio->bi_iter.bi_sector); 2164 dio->fua = dio->op == REQ_OP_WRITE && bio->bi_opf & REQ_FUA; 2165 if (unlikely(dio->fua)) { 2166 /* 2167 * Don't pass down the FUA flag because we have to flush 2168 * disk cache anyway. 2169 */ 2170 bio->bi_opf &= ~REQ_FUA; 2171 } 2172 if (unlikely(!dm_integrity_check_limits(ic, dio->range.logical_sector, bio))) 2173 return DM_MAPIO_KILL; 2174 2175 bip = bio_integrity(bio); 2176 if (!ic->internal_hash) { 2177 if (bip) { 2178 unsigned int wanted_tag_size = bio_sectors(bio) >> ic->sb->log2_sectors_per_block; 2179 2180 if (ic->log2_tag_size >= 0) 2181 wanted_tag_size <<= ic->log2_tag_size; 2182 else 2183 wanted_tag_size *= ic->tag_size; 2184 if (unlikely(wanted_tag_size != bip->bip_iter.bi_size)) { 2185 DMERR("Invalid integrity data size %u, expected %u", 2186 bip->bip_iter.bi_size, wanted_tag_size); 2187 return DM_MAPIO_KILL; 2188 } 2189 } 2190 } else { 2191 if (unlikely(bip != NULL)) { 2192 DMERR("Unexpected integrity data when using internal hash"); 2193 return DM_MAPIO_KILL; 2194 } 2195 } 2196 2197 if (unlikely(ic->mode == 'R') && unlikely(dio->op != REQ_OP_READ)) 2198 return DM_MAPIO_KILL; 2199 2200 get_area_and_offset(ic, dio->range.logical_sector, &area, &offset); 2201 dio->metadata_block = get_metadata_sector_and_offset(ic, area, offset, &dio->metadata_offset); 2202 bio->bi_iter.bi_sector = get_data_sector(ic, area, offset); 2203 2204 dm_integrity_map_continue(dio, true); 2205 return DM_MAPIO_SUBMITTED; 2206 } 2207 2208 static bool __journal_read_write(struct dm_integrity_io *dio, struct bio *bio, 2209 unsigned int journal_section, unsigned int journal_entry) 2210 { 2211 struct dm_integrity_c *ic = dio->ic; 2212 sector_t logical_sector; 2213 unsigned int n_sectors; 2214 2215 logical_sector = dio->range.logical_sector; 2216 n_sectors = dio->range.n_sectors; 2217 do { 2218 struct bio_vec bv = bio_iovec(bio); 2219 char *mem; 2220 2221 if (unlikely(bv.bv_len >> SECTOR_SHIFT > n_sectors)) 2222 bv.bv_len = n_sectors << SECTOR_SHIFT; 2223 n_sectors -= bv.bv_len >> SECTOR_SHIFT; 2224 bio_advance_iter(bio, &bio->bi_iter, bv.bv_len); 2225 retry_kmap: 2226 mem = kmap_local_page(bv.bv_page); 2227 if (likely(dio->op == REQ_OP_WRITE)) 2228 flush_dcache_page(bv.bv_page); 2229 2230 do { 2231 struct journal_entry *je = access_journal_entry(ic, journal_section, journal_entry); 2232 2233 if (unlikely(dio->op == REQ_OP_READ)) { 2234 struct journal_sector *js; 2235 char *mem_ptr; 2236 unsigned int s; 2237 2238 if (unlikely(journal_entry_is_inprogress(je))) { 2239 flush_dcache_page(bv.bv_page); 2240 kunmap_local(mem); 2241 2242 __io_wait_event(ic->copy_to_journal_wait, !journal_entry_is_inprogress(je)); 2243 goto retry_kmap; 2244 } 2245 smp_rmb(); 2246 BUG_ON(journal_entry_get_sector(je) != logical_sector); 2247 js = access_journal_data(ic, journal_section, journal_entry); 2248 mem_ptr = mem + bv.bv_offset; 2249 s = 0; 2250 do { 2251 memcpy(mem_ptr, js, JOURNAL_SECTOR_DATA); 2252 *(commit_id_t *)(mem_ptr + JOURNAL_SECTOR_DATA) = je->last_bytes[s]; 2253 js++; 2254 mem_ptr += 1 << SECTOR_SHIFT; 2255 } while (++s < ic->sectors_per_block); 2256 } 2257 2258 if (!ic->internal_hash) { 2259 struct bio_integrity_payload *bip = bio_integrity(bio); 2260 unsigned int tag_todo = ic->tag_size; 2261 char *tag_ptr = journal_entry_tag(ic, je); 2262 2263 if (bip) { 2264 do { 2265 struct bio_vec biv = bvec_iter_bvec(bip->bip_vec, bip->bip_iter); 2266 unsigned int tag_now = min(biv.bv_len, tag_todo); 2267 char *tag_addr; 2268 2269 BUG_ON(PageHighMem(biv.bv_page)); 2270 tag_addr = bvec_virt(&biv); 2271 if (likely(dio->op == REQ_OP_WRITE)) 2272 memcpy(tag_ptr, tag_addr, tag_now); 2273 else 2274 memcpy(tag_addr, tag_ptr, tag_now); 2275 bvec_iter_advance(bip->bip_vec, &bip->bip_iter, tag_now); 2276 tag_ptr += tag_now; 2277 tag_todo -= tag_now; 2278 } while (unlikely(tag_todo)); 2279 } else if (likely(dio->op == REQ_OP_WRITE)) 2280 memset(tag_ptr, 0, tag_todo); 2281 } 2282 2283 if (likely(dio->op == REQ_OP_WRITE)) { 2284 struct journal_sector *js; 2285 unsigned int s; 2286 2287 js = access_journal_data(ic, journal_section, journal_entry); 2288 memcpy(js, mem + bv.bv_offset, ic->sectors_per_block << SECTOR_SHIFT); 2289 2290 s = 0; 2291 do { 2292 je->last_bytes[s] = js[s].commit_id; 2293 } while (++s < ic->sectors_per_block); 2294 2295 if (ic->internal_hash) { 2296 unsigned int digest_size = ic->internal_hash_digestsize; 2297 void *js_page = integrity_identity(ic, (char *)js - offset_in_page(js)); 2298 unsigned js_offset = offset_in_page(js); 2299 2300 if (unlikely(digest_size > ic->tag_size)) { 2301 char checksums_onstack[HASH_MAX_DIGESTSIZE]; 2302 2303 integrity_sector_checksum(ic, &dio->ahash_req, logical_sector, js_page, js_offset, checksums_onstack); 2304 memcpy(journal_entry_tag(ic, je), checksums_onstack, ic->tag_size); 2305 } else 2306 integrity_sector_checksum(ic, &dio->ahash_req, logical_sector, js_page, js_offset, journal_entry_tag(ic, je)); 2307 } 2308 2309 journal_entry_set_sector(je, logical_sector); 2310 } 2311 logical_sector += ic->sectors_per_block; 2312 2313 journal_entry++; 2314 if (unlikely(journal_entry == ic->journal_section_entries)) { 2315 journal_entry = 0; 2316 journal_section++; 2317 wraparound_section(ic, &journal_section); 2318 } 2319 2320 bv.bv_offset += ic->sectors_per_block << SECTOR_SHIFT; 2321 } while (bv.bv_len -= ic->sectors_per_block << SECTOR_SHIFT); 2322 2323 if (unlikely(dio->op == REQ_OP_READ)) 2324 flush_dcache_page(bv.bv_page); 2325 kunmap_local(mem); 2326 } while (n_sectors); 2327 2328 if (likely(dio->op == REQ_OP_WRITE)) { 2329 smp_mb(); 2330 if (unlikely(waitqueue_active(&ic->copy_to_journal_wait))) 2331 wake_up(&ic->copy_to_journal_wait); 2332 if (READ_ONCE(ic->free_sectors) <= ic->free_sectors_threshold) 2333 queue_work(ic->commit_wq, &ic->commit_work); 2334 else 2335 schedule_autocommit(ic); 2336 } else 2337 remove_range(ic, &dio->range); 2338 2339 if (unlikely(bio->bi_iter.bi_size)) { 2340 sector_t area, offset; 2341 2342 dio->range.logical_sector = logical_sector; 2343 get_area_and_offset(ic, dio->range.logical_sector, &area, &offset); 2344 dio->metadata_block = get_metadata_sector_and_offset(ic, area, offset, &dio->metadata_offset); 2345 return true; 2346 } 2347 2348 return false; 2349 } 2350 2351 static void dm_integrity_map_continue(struct dm_integrity_io *dio, bool from_map) 2352 { 2353 struct dm_integrity_c *ic = dio->ic; 2354 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2355 unsigned int journal_section, journal_entry; 2356 unsigned int journal_read_pos; 2357 sector_t recalc_sector; 2358 struct completion read_comp; 2359 bool discard_retried = false; 2360 bool need_sync_io = ic->internal_hash && dio->op == REQ_OP_READ; 2361 2362 if (unlikely(dio->op == REQ_OP_DISCARD) && ic->mode != 'D') 2363 need_sync_io = true; 2364 2365 if (need_sync_io && from_map) { 2366 INIT_WORK(&dio->work, integrity_bio_wait); 2367 queue_work(ic->offload_wq, &dio->work); 2368 return; 2369 } 2370 2371 lock_retry: 2372 spin_lock_irq(&ic->endio_wait.lock); 2373 retry: 2374 if (unlikely(dm_integrity_failed(ic))) { 2375 spin_unlock_irq(&ic->endio_wait.lock); 2376 do_endio(ic, bio); 2377 return; 2378 } 2379 dio->range.n_sectors = bio_sectors(bio); 2380 journal_read_pos = NOT_FOUND; 2381 if (ic->mode == 'J' && likely(dio->op != REQ_OP_DISCARD)) { 2382 if (dio->op == REQ_OP_WRITE) { 2383 unsigned int next_entry, i, pos; 2384 unsigned int ws, we, range_sectors; 2385 2386 dio->range.n_sectors = min(dio->range.n_sectors, 2387 (sector_t)ic->free_sectors << ic->sb->log2_sectors_per_block); 2388 if (unlikely(!dio->range.n_sectors)) { 2389 if (from_map) 2390 goto offload_to_thread; 2391 sleep_on_endio_wait(ic); 2392 goto retry; 2393 } 2394 range_sectors = dio->range.n_sectors >> ic->sb->log2_sectors_per_block; 2395 ic->free_sectors -= range_sectors; 2396 journal_section = ic->free_section; 2397 journal_entry = ic->free_section_entry; 2398 2399 next_entry = ic->free_section_entry + range_sectors; 2400 ic->free_section_entry = next_entry % ic->journal_section_entries; 2401 ic->free_section += next_entry / ic->journal_section_entries; 2402 ic->n_uncommitted_sections += next_entry / ic->journal_section_entries; 2403 wraparound_section(ic, &ic->free_section); 2404 2405 pos = journal_section * ic->journal_section_entries + journal_entry; 2406 ws = journal_section; 2407 we = journal_entry; 2408 i = 0; 2409 do { 2410 struct journal_entry *je; 2411 2412 add_journal_node(ic, &ic->journal_tree[pos], dio->range.logical_sector + i); 2413 pos++; 2414 if (unlikely(pos >= ic->journal_entries)) 2415 pos = 0; 2416 2417 je = access_journal_entry(ic, ws, we); 2418 BUG_ON(!journal_entry_is_unused(je)); 2419 journal_entry_set_inprogress(je); 2420 we++; 2421 if (unlikely(we == ic->journal_section_entries)) { 2422 we = 0; 2423 ws++; 2424 wraparound_section(ic, &ws); 2425 } 2426 } while ((i += ic->sectors_per_block) < dio->range.n_sectors); 2427 2428 spin_unlock_irq(&ic->endio_wait.lock); 2429 goto journal_read_write; 2430 } else { 2431 sector_t next_sector; 2432 2433 journal_read_pos = find_journal_node(ic, dio->range.logical_sector, &next_sector); 2434 if (likely(journal_read_pos == NOT_FOUND)) { 2435 if (unlikely(dio->range.n_sectors > next_sector - dio->range.logical_sector)) 2436 dio->range.n_sectors = next_sector - dio->range.logical_sector; 2437 } else { 2438 unsigned int i; 2439 unsigned int jp = journal_read_pos + 1; 2440 2441 for (i = ic->sectors_per_block; i < dio->range.n_sectors; i += ic->sectors_per_block, jp++) { 2442 if (!test_journal_node(ic, jp, dio->range.logical_sector + i)) 2443 break; 2444 } 2445 dio->range.n_sectors = i; 2446 } 2447 } 2448 } 2449 if (unlikely(!add_new_range(ic, &dio->range, true))) { 2450 /* 2451 * We must not sleep in the request routine because it could 2452 * stall bios on current->bio_list. 2453 * So, we offload the bio to a workqueue if we have to sleep. 2454 */ 2455 if (from_map) { 2456 offload_to_thread: 2457 spin_unlock_irq(&ic->endio_wait.lock); 2458 INIT_WORK(&dio->work, integrity_bio_wait); 2459 queue_work(ic->wait_wq, &dio->work); 2460 return; 2461 } 2462 if (journal_read_pos != NOT_FOUND) 2463 dio->range.n_sectors = ic->sectors_per_block; 2464 wait_and_add_new_range(ic, &dio->range); 2465 /* 2466 * wait_and_add_new_range drops the spinlock, so the journal 2467 * may have been changed arbitrarily. We need to recheck. 2468 * To simplify the code, we restrict I/O size to just one block. 2469 */ 2470 if (journal_read_pos != NOT_FOUND) { 2471 sector_t next_sector; 2472 unsigned int new_pos; 2473 2474 new_pos = find_journal_node(ic, dio->range.logical_sector, &next_sector); 2475 if (unlikely(new_pos != journal_read_pos)) { 2476 remove_range_unlocked(ic, &dio->range); 2477 goto retry; 2478 } 2479 } 2480 } 2481 if (ic->mode == 'J' && likely(dio->op == REQ_OP_DISCARD) && !discard_retried) { 2482 sector_t next_sector; 2483 unsigned int new_pos; 2484 2485 new_pos = find_journal_node(ic, dio->range.logical_sector, &next_sector); 2486 if (unlikely(new_pos != NOT_FOUND) || 2487 unlikely(next_sector < dio->range.logical_sector + dio->range.n_sectors)) { 2488 remove_range_unlocked(ic, &dio->range); 2489 spin_unlock_irq(&ic->endio_wait.lock); 2490 queue_work(ic->commit_wq, &ic->commit_work); 2491 flush_workqueue(ic->commit_wq); 2492 queue_work(ic->writer_wq, &ic->writer_work); 2493 flush_workqueue(ic->writer_wq); 2494 discard_retried = true; 2495 goto lock_retry; 2496 } 2497 } 2498 recalc_sector = le64_to_cpu(ic->sb->recalc_sector); 2499 spin_unlock_irq(&ic->endio_wait.lock); 2500 2501 if (unlikely(journal_read_pos != NOT_FOUND)) { 2502 journal_section = journal_read_pos / ic->journal_section_entries; 2503 journal_entry = journal_read_pos % ic->journal_section_entries; 2504 goto journal_read_write; 2505 } 2506 2507 if (ic->mode == 'B' && (dio->op == REQ_OP_WRITE || unlikely(dio->op == REQ_OP_DISCARD))) { 2508 if (!block_bitmap_op(ic, ic->may_write_bitmap, dio->range.logical_sector, 2509 dio->range.n_sectors, BITMAP_OP_TEST_ALL_SET)) { 2510 struct bitmap_block_status *bbs; 2511 2512 bbs = sector_to_bitmap_block(ic, dio->range.logical_sector); 2513 spin_lock(&bbs->bio_queue_lock); 2514 bio_list_add(&bbs->bio_queue, bio); 2515 spin_unlock(&bbs->bio_queue_lock); 2516 queue_work(ic->writer_wq, &bbs->work); 2517 return; 2518 } 2519 } 2520 2521 dio->in_flight = (atomic_t)ATOMIC_INIT(2); 2522 2523 if (need_sync_io) { 2524 init_completion(&read_comp); 2525 dio->completion = &read_comp; 2526 } else 2527 dio->completion = NULL; 2528 2529 dm_bio_record(&dio->bio_details, bio); 2530 bio_set_dev(bio, ic->dev->bdev); 2531 bio->bi_integrity = NULL; 2532 bio->bi_opf &= ~REQ_INTEGRITY; 2533 bio->bi_end_io = integrity_end_io; 2534 bio->bi_iter.bi_size = dio->range.n_sectors << SECTOR_SHIFT; 2535 2536 if (unlikely(dio->op == REQ_OP_DISCARD) && likely(ic->mode != 'D')) { 2537 integrity_metadata(&dio->work); 2538 dm_integrity_flush_buffers(ic, false); 2539 2540 dio->in_flight = (atomic_t)ATOMIC_INIT(1); 2541 dio->completion = NULL; 2542 2543 submit_bio_noacct(bio); 2544 2545 return; 2546 } 2547 2548 submit_bio_noacct(bio); 2549 2550 if (need_sync_io) { 2551 wait_for_completion_io(&read_comp); 2552 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING) && 2553 dio->range.logical_sector + dio->range.n_sectors > recalc_sector) 2554 goto skip_check; 2555 if (ic->mode == 'B') { 2556 if (!block_bitmap_op(ic, ic->recalc_bitmap, dio->range.logical_sector, 2557 dio->range.n_sectors, BITMAP_OP_TEST_ALL_CLEAR)) 2558 goto skip_check; 2559 } 2560 2561 if (likely(!bio->bi_status)) 2562 integrity_metadata(&dio->work); 2563 else 2564 skip_check: 2565 dec_in_flight(dio); 2566 } else { 2567 INIT_WORK(&dio->work, integrity_metadata); 2568 queue_work(ic->metadata_wq, &dio->work); 2569 } 2570 2571 return; 2572 2573 journal_read_write: 2574 if (unlikely(__journal_read_write(dio, bio, journal_section, journal_entry))) 2575 goto lock_retry; 2576 2577 do_endio_flush(ic, dio); 2578 } 2579 2580 static int dm_integrity_map_inline(struct dm_integrity_io *dio, bool from_map) 2581 { 2582 struct dm_integrity_c *ic = dio->ic; 2583 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2584 struct bio_integrity_payload *bip; 2585 unsigned ret; 2586 sector_t recalc_sector; 2587 2588 if (unlikely(bio_integrity(bio))) { 2589 bio->bi_status = BLK_STS_NOTSUPP; 2590 bio_endio(bio); 2591 return DM_MAPIO_SUBMITTED; 2592 } 2593 2594 bio_set_dev(bio, ic->dev->bdev); 2595 if (unlikely((bio->bi_opf & REQ_PREFLUSH) != 0)) 2596 return DM_MAPIO_REMAPPED; 2597 2598 if (unlikely(!dm_integrity_check_limits(ic, bio->bi_iter.bi_sector, bio))) 2599 return DM_MAPIO_KILL; 2600 2601 retry: 2602 if (!dio->integrity_payload) { 2603 unsigned digest_size, extra_size; 2604 dio->payload_len = ic->tuple_size * (bio_sectors(bio) >> ic->sb->log2_sectors_per_block); 2605 digest_size = ic->internal_hash_digestsize; 2606 extra_size = unlikely(digest_size > ic->tag_size) ? digest_size - ic->tag_size : 0; 2607 dio->payload_len += extra_size; 2608 dio->integrity_payload = kmalloc(dio->payload_len, GFP_NOIO | __GFP_NORETRY | __GFP_NOMEMALLOC | __GFP_NOWARN); 2609 if (unlikely(!dio->integrity_payload)) { 2610 const unsigned x_size = PAGE_SIZE << 1; 2611 if (dio->payload_len > x_size) { 2612 unsigned sectors = ((x_size - extra_size) / ic->tuple_size) << ic->sb->log2_sectors_per_block; 2613 if (WARN_ON(!sectors || sectors >= bio_sectors(bio))) { 2614 bio->bi_status = BLK_STS_NOTSUPP; 2615 bio_endio(bio); 2616 return DM_MAPIO_SUBMITTED; 2617 } 2618 dm_accept_partial_bio(bio, sectors); 2619 goto retry; 2620 } 2621 } 2622 } 2623 2624 dio->range.logical_sector = bio->bi_iter.bi_sector; 2625 dio->range.n_sectors = bio_sectors(bio); 2626 2627 if (!(ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING))) 2628 goto skip_spinlock; 2629 #ifdef CONFIG_64BIT 2630 /* 2631 * On 64-bit CPUs we can optimize the lock away (so that it won't cause 2632 * cache line bouncing) and use acquire/release barriers instead. 2633 * 2634 * Paired with smp_store_release in integrity_recalc_inline. 2635 */ 2636 recalc_sector = le64_to_cpu(smp_load_acquire(&ic->sb->recalc_sector)); 2637 if (likely(dio->range.logical_sector + dio->range.n_sectors <= recalc_sector)) 2638 goto skip_spinlock; 2639 #endif 2640 spin_lock_irq(&ic->endio_wait.lock); 2641 recalc_sector = le64_to_cpu(ic->sb->recalc_sector); 2642 if (dio->range.logical_sector + dio->range.n_sectors <= recalc_sector) 2643 goto skip_unlock; 2644 if (unlikely(!add_new_range(ic, &dio->range, true))) { 2645 if (from_map) { 2646 spin_unlock_irq(&ic->endio_wait.lock); 2647 INIT_WORK(&dio->work, integrity_bio_wait); 2648 queue_work(ic->wait_wq, &dio->work); 2649 return DM_MAPIO_SUBMITTED; 2650 } 2651 wait_and_add_new_range(ic, &dio->range); 2652 } 2653 dio->integrity_range_locked = true; 2654 skip_unlock: 2655 spin_unlock_irq(&ic->endio_wait.lock); 2656 skip_spinlock: 2657 2658 if (unlikely(!dio->integrity_payload)) { 2659 dio->integrity_payload = page_to_virt((struct page *)mempool_alloc(&ic->recheck_pool, GFP_NOIO)); 2660 dio->integrity_payload_from_mempool = true; 2661 } 2662 2663 dio->bio_details.bi_iter = bio->bi_iter; 2664 2665 bio->bi_iter.bi_sector += ic->start + SB_SECTORS; 2666 2667 bip = bio_integrity_alloc(bio, GFP_NOIO, 1); 2668 if (IS_ERR(bip)) { 2669 bio->bi_status = errno_to_blk_status(PTR_ERR(bip)); 2670 bio_endio(bio); 2671 return DM_MAPIO_SUBMITTED; 2672 } 2673 2674 if (dio->op == REQ_OP_WRITE) { 2675 unsigned pos = 0; 2676 while (dio->bio_details.bi_iter.bi_size) { 2677 struct bio_vec bv = bio_iter_iovec(bio, dio->bio_details.bi_iter); 2678 const char *mem = integrity_kmap(ic, bv.bv_page); 2679 if (ic->tag_size < ic->tuple_size) 2680 memset(dio->integrity_payload + pos + ic->tag_size, 0, ic->tuple_size - ic->tag_size); 2681 integrity_sector_checksum(ic, &dio->ahash_req, dio->bio_details.bi_iter.bi_sector, mem, bv.bv_offset, dio->integrity_payload + pos); 2682 integrity_kunmap(ic, mem); 2683 pos += ic->tuple_size; 2684 bio_advance_iter_single(bio, &dio->bio_details.bi_iter, ic->sectors_per_block << SECTOR_SHIFT); 2685 } 2686 } 2687 2688 ret = bio_integrity_add_page(bio, virt_to_page(dio->integrity_payload), 2689 dio->payload_len, offset_in_page(dio->integrity_payload)); 2690 if (unlikely(ret != dio->payload_len)) { 2691 bio->bi_status = BLK_STS_RESOURCE; 2692 bio_endio(bio); 2693 return DM_MAPIO_SUBMITTED; 2694 } 2695 2696 return DM_MAPIO_REMAPPED; 2697 } 2698 2699 static inline void dm_integrity_free_payload(struct dm_integrity_io *dio) 2700 { 2701 struct dm_integrity_c *ic = dio->ic; 2702 if (unlikely(dio->integrity_payload_from_mempool)) 2703 mempool_free(virt_to_page(dio->integrity_payload), &ic->recheck_pool); 2704 else 2705 kfree(dio->integrity_payload); 2706 dio->integrity_payload = NULL; 2707 dio->integrity_payload_from_mempool = false; 2708 } 2709 2710 static void dm_integrity_inline_recheck(struct work_struct *w) 2711 { 2712 struct dm_integrity_io *dio = container_of(w, struct dm_integrity_io, work); 2713 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2714 struct dm_integrity_c *ic = dio->ic; 2715 struct bio *outgoing_bio; 2716 void *outgoing_data; 2717 2718 dio->integrity_payload = page_to_virt((struct page *)mempool_alloc(&ic->recheck_pool, GFP_NOIO)); 2719 dio->integrity_payload_from_mempool = true; 2720 2721 outgoing_data = dio->integrity_payload + PAGE_SIZE; 2722 2723 while (dio->bio_details.bi_iter.bi_size) { 2724 char digest[HASH_MAX_DIGESTSIZE]; 2725 int r; 2726 struct bio_integrity_payload *bip; 2727 struct bio_vec bv; 2728 char *mem; 2729 2730 outgoing_bio = bio_alloc_bioset(ic->dev->bdev, 1, REQ_OP_READ, GFP_NOIO, &ic->recheck_bios); 2731 bio_add_virt_nofail(outgoing_bio, outgoing_data, 2732 ic->sectors_per_block << SECTOR_SHIFT); 2733 2734 bip = bio_integrity_alloc(outgoing_bio, GFP_NOIO, 1); 2735 if (IS_ERR(bip)) { 2736 bio_put(outgoing_bio); 2737 bio->bi_status = errno_to_blk_status(PTR_ERR(bip)); 2738 bio_endio(bio); 2739 return; 2740 } 2741 2742 r = bio_integrity_add_page(outgoing_bio, virt_to_page(dio->integrity_payload), ic->tuple_size, 0); 2743 if (unlikely(r != ic->tuple_size)) { 2744 bio_put(outgoing_bio); 2745 bio->bi_status = BLK_STS_RESOURCE; 2746 bio_endio(bio); 2747 return; 2748 } 2749 2750 outgoing_bio->bi_iter.bi_sector = dio->bio_details.bi_iter.bi_sector + ic->start + SB_SECTORS; 2751 2752 r = submit_bio_wait(outgoing_bio); 2753 if (unlikely(r != 0)) { 2754 bio_put(outgoing_bio); 2755 bio->bi_status = errno_to_blk_status(r); 2756 bio_endio(bio); 2757 return; 2758 } 2759 bio_put(outgoing_bio); 2760 2761 integrity_sector_checksum(ic, &dio->ahash_req, dio->bio_details.bi_iter.bi_sector, integrity_identity(ic, outgoing_data), 0, digest); 2762 if (unlikely(crypto_memneq(digest, dio->integrity_payload, min(ic->internal_hash_digestsize, ic->tag_size)))) { 2763 DMERR_LIMIT("%pg: Checksum failed at sector 0x%llx", 2764 ic->dev->bdev, dio->bio_details.bi_iter.bi_sector); 2765 atomic64_inc(&ic->number_of_mismatches); 2766 dm_audit_log_bio(DM_MSG_PREFIX, "integrity-checksum", 2767 bio, dio->bio_details.bi_iter.bi_sector, 0); 2768 2769 bio->bi_status = BLK_STS_PROTECTION; 2770 bio_endio(bio); 2771 return; 2772 } 2773 2774 bv = bio_iter_iovec(bio, dio->bio_details.bi_iter); 2775 mem = bvec_kmap_local(&bv); 2776 memcpy(mem, outgoing_data, ic->sectors_per_block << SECTOR_SHIFT); 2777 kunmap_local(mem); 2778 2779 bio_advance_iter_single(bio, &dio->bio_details.bi_iter, ic->sectors_per_block << SECTOR_SHIFT); 2780 } 2781 2782 bio_endio(bio); 2783 } 2784 2785 static inline bool dm_integrity_check(struct dm_integrity_c *ic, struct dm_integrity_io *dio) 2786 { 2787 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2788 unsigned pos = 0; 2789 2790 while (dio->bio_details.bi_iter.bi_size) { 2791 char digest[HASH_MAX_DIGESTSIZE]; 2792 struct bio_vec bv = bio_iter_iovec(bio, dio->bio_details.bi_iter); 2793 char *mem = integrity_kmap(ic, bv.bv_page); 2794 integrity_sector_checksum(ic, &dio->ahash_req, dio->bio_details.bi_iter.bi_sector, mem, bv.bv_offset, digest); 2795 if (unlikely(crypto_memneq(digest, dio->integrity_payload + pos, 2796 min(ic->internal_hash_digestsize, ic->tag_size)))) { 2797 integrity_kunmap(ic, mem); 2798 dm_integrity_free_payload(dio); 2799 INIT_WORK(&dio->work, dm_integrity_inline_recheck); 2800 queue_work(ic->offload_wq, &dio->work); 2801 return false; 2802 } 2803 integrity_kunmap(ic, mem); 2804 pos += ic->tuple_size; 2805 bio_advance_iter_single(bio, &dio->bio_details.bi_iter, ic->sectors_per_block << SECTOR_SHIFT); 2806 } 2807 2808 return true; 2809 } 2810 2811 static void dm_integrity_inline_async_check(struct work_struct *w) 2812 { 2813 struct dm_integrity_io *dio = container_of(w, struct dm_integrity_io, work); 2814 struct dm_integrity_c *ic = dio->ic; 2815 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2816 2817 if (likely(dm_integrity_check(ic, dio))) 2818 bio_endio(bio); 2819 } 2820 2821 static int dm_integrity_end_io(struct dm_target *ti, struct bio *bio, blk_status_t *status) 2822 { 2823 struct dm_integrity_c *ic = ti->private; 2824 struct dm_integrity_io *dio = dm_per_bio_data(bio, sizeof(struct dm_integrity_io)); 2825 if (ic->mode == 'I') { 2826 if (dio->op == REQ_OP_READ && likely(*status == BLK_STS_OK) && likely(dio->bio_details.bi_iter.bi_size != 0)) { 2827 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING) && 2828 unlikely(dio->integrity_range_locked)) 2829 goto skip_check; 2830 if (likely(ic->internal_shash != NULL)) { 2831 if (unlikely(!dm_integrity_check(ic, dio))) 2832 return DM_ENDIO_INCOMPLETE; 2833 } else { 2834 INIT_WORK(&dio->work, dm_integrity_inline_async_check); 2835 queue_work(ic->offload_wq, &dio->work); 2836 return DM_ENDIO_INCOMPLETE; 2837 } 2838 } 2839 skip_check: 2840 dm_integrity_free_payload(dio); 2841 if (unlikely(dio->integrity_range_locked)) 2842 remove_range(ic, &dio->range); 2843 } 2844 if (unlikely(dio->ahash_req)) 2845 mempool_free(dio->ahash_req, &ic->ahash_req_pool); 2846 return DM_ENDIO_DONE; 2847 } 2848 2849 static void integrity_bio_wait(struct work_struct *w) 2850 { 2851 struct dm_integrity_io *dio = container_of(w, struct dm_integrity_io, work); 2852 struct dm_integrity_c *ic = dio->ic; 2853 2854 if (ic->mode == 'I') { 2855 struct bio *bio = dm_bio_from_per_bio_data(dio, sizeof(struct dm_integrity_io)); 2856 int r = dm_integrity_map_inline(dio, false); 2857 switch (r) { 2858 case DM_MAPIO_KILL: 2859 bio->bi_status = BLK_STS_IOERR; 2860 bio_endio(bio); 2861 return; 2862 case DM_MAPIO_REMAPPED: 2863 submit_bio_noacct(bio); 2864 fallthrough; 2865 case DM_MAPIO_SUBMITTED: 2866 return; 2867 default: 2868 BUG(); 2869 } 2870 } else { 2871 dm_integrity_map_continue(dio, false); 2872 } 2873 } 2874 2875 static void pad_uncommitted(struct dm_integrity_c *ic) 2876 { 2877 if (ic->free_section_entry) { 2878 ic->free_sectors -= ic->journal_section_entries - ic->free_section_entry; 2879 ic->free_section_entry = 0; 2880 ic->free_section++; 2881 wraparound_section(ic, &ic->free_section); 2882 ic->n_uncommitted_sections++; 2883 } 2884 if (WARN_ON(ic->journal_sections * ic->journal_section_entries != 2885 (ic->n_uncommitted_sections + ic->n_committed_sections) * 2886 ic->journal_section_entries + ic->free_sectors)) { 2887 DMCRIT("journal_sections %u, journal_section_entries %u, " 2888 "n_uncommitted_sections %u, n_committed_sections %u, " 2889 "journal_section_entries %u, free_sectors %u", 2890 ic->journal_sections, ic->journal_section_entries, 2891 ic->n_uncommitted_sections, ic->n_committed_sections, 2892 ic->journal_section_entries, ic->free_sectors); 2893 } 2894 } 2895 2896 static void integrity_commit(struct work_struct *w) 2897 { 2898 struct dm_integrity_c *ic = container_of(w, struct dm_integrity_c, commit_work); 2899 unsigned int commit_start, commit_sections; 2900 unsigned int i, j, n; 2901 struct bio *flushes; 2902 2903 timer_delete(&ic->autocommit_timer); 2904 2905 if (ic->mode == 'I') 2906 return; 2907 2908 spin_lock_irq(&ic->endio_wait.lock); 2909 flushes = bio_list_get(&ic->flush_bio_list); 2910 if (unlikely(ic->mode != 'J')) { 2911 spin_unlock_irq(&ic->endio_wait.lock); 2912 dm_integrity_flush_buffers(ic, true); 2913 goto release_flush_bios; 2914 } 2915 2916 pad_uncommitted(ic); 2917 commit_start = ic->uncommitted_section; 2918 commit_sections = ic->n_uncommitted_sections; 2919 spin_unlock_irq(&ic->endio_wait.lock); 2920 2921 if (!commit_sections) 2922 goto release_flush_bios; 2923 2924 ic->wrote_to_journal = true; 2925 2926 i = commit_start; 2927 for (n = 0; n < commit_sections; n++) { 2928 for (j = 0; j < ic->journal_section_entries; j++) { 2929 struct journal_entry *je; 2930 2931 je = access_journal_entry(ic, i, j); 2932 io_wait_event(ic->copy_to_journal_wait, !journal_entry_is_inprogress(je)); 2933 } 2934 for (j = 0; j < ic->journal_section_sectors; j++) { 2935 struct journal_sector *js; 2936 2937 js = access_journal(ic, i, j); 2938 js->commit_id = dm_integrity_commit_id(ic, i, j, ic->commit_seq); 2939 } 2940 i++; 2941 if (unlikely(i >= ic->journal_sections)) 2942 ic->commit_seq = next_commit_seq(ic->commit_seq); 2943 wraparound_section(ic, &i); 2944 } 2945 smp_rmb(); 2946 2947 write_journal(ic, commit_start, commit_sections); 2948 2949 spin_lock_irq(&ic->endio_wait.lock); 2950 ic->uncommitted_section += commit_sections; 2951 wraparound_section(ic, &ic->uncommitted_section); 2952 ic->n_uncommitted_sections -= commit_sections; 2953 ic->n_committed_sections += commit_sections; 2954 spin_unlock_irq(&ic->endio_wait.lock); 2955 2956 if (READ_ONCE(ic->free_sectors) <= ic->free_sectors_threshold) 2957 queue_work(ic->writer_wq, &ic->writer_work); 2958 2959 release_flush_bios: 2960 while (flushes) { 2961 struct bio *next = flushes->bi_next; 2962 2963 flushes->bi_next = NULL; 2964 do_endio(ic, flushes); 2965 flushes = next; 2966 } 2967 } 2968 2969 static void complete_copy_from_journal(unsigned long error, unsigned long unsup, void *context) 2970 { 2971 struct journal_io *io = context; 2972 struct journal_completion *comp = io->comp; 2973 struct dm_integrity_c *ic = comp->ic; 2974 2975 remove_range(ic, &io->range); 2976 mempool_free(io, &ic->journal_io_mempool); 2977 if (unlikely(error != 0)) 2978 dm_integrity_io_error(ic, "copying from journal", -EIO); 2979 else if (unlikely(unsup != 0)) 2980 dm_integrity_io_error(ic, "copying from journal", -EOPNOTSUPP); 2981 complete_journal_op(comp); 2982 } 2983 2984 static void restore_last_bytes(struct dm_integrity_c *ic, struct journal_sector *js, 2985 struct journal_entry *je) 2986 { 2987 unsigned int s = 0; 2988 2989 do { 2990 js->commit_id = je->last_bytes[s]; 2991 js++; 2992 } while (++s < ic->sectors_per_block); 2993 } 2994 2995 static void do_journal_write(struct dm_integrity_c *ic, unsigned int write_start, 2996 unsigned int write_sections, bool from_replay) 2997 { 2998 unsigned int i, j, n; 2999 struct journal_completion comp; 3000 struct blk_plug plug; 3001 3002 blk_start_plug(&plug); 3003 3004 comp.ic = ic; 3005 comp.in_flight = (atomic_t)ATOMIC_INIT(1); 3006 init_completion(&comp.comp); 3007 3008 i = write_start; 3009 for (n = 0; n < write_sections; n++, i++, wraparound_section(ic, &i)) { 3010 #ifndef INTERNAL_VERIFY 3011 if (unlikely(from_replay)) 3012 #endif 3013 rw_section_mac(ic, i, false); 3014 for (j = 0; j < ic->journal_section_entries; j++) { 3015 struct journal_entry *je = access_journal_entry(ic, i, j); 3016 sector_t sec, area, offset; 3017 unsigned int k, l, next_loop; 3018 sector_t metadata_block; 3019 unsigned int metadata_offset; 3020 struct journal_io *io; 3021 3022 if (journal_entry_is_unused(je)) 3023 continue; 3024 BUG_ON(unlikely(journal_entry_is_inprogress(je)) && !from_replay); 3025 sec = journal_entry_get_sector(je); 3026 if (unlikely(from_replay)) { 3027 if (unlikely(sec & (unsigned int)(ic->sectors_per_block - 1))) { 3028 dm_integrity_io_error(ic, "invalid sector in journal", -EIO); 3029 sec &= ~(sector_t)(ic->sectors_per_block - 1); 3030 } 3031 if (unlikely(sec >= ic->provided_data_sectors)) { 3032 journal_entry_set_unused(je); 3033 continue; 3034 } 3035 } 3036 get_area_and_offset(ic, sec, &area, &offset); 3037 restore_last_bytes(ic, access_journal_data(ic, i, j), je); 3038 for (k = j + 1; k < ic->journal_section_entries; k++) { 3039 struct journal_entry *je2 = access_journal_entry(ic, i, k); 3040 sector_t sec2, area2, offset2; 3041 3042 if (journal_entry_is_unused(je2)) 3043 break; 3044 BUG_ON(unlikely(journal_entry_is_inprogress(je2)) && !from_replay); 3045 sec2 = journal_entry_get_sector(je2); 3046 if (unlikely(sec2 >= ic->provided_data_sectors)) 3047 break; 3048 get_area_and_offset(ic, sec2, &area2, &offset2); 3049 if (area2 != area || offset2 != offset + ((k - j) << ic->sb->log2_sectors_per_block)) 3050 break; 3051 restore_last_bytes(ic, access_journal_data(ic, i, k), je2); 3052 } 3053 next_loop = k - 1; 3054 3055 io = mempool_alloc(&ic->journal_io_mempool, GFP_NOIO); 3056 io->comp = ∁ 3057 io->range.logical_sector = sec; 3058 io->range.n_sectors = (k - j) << ic->sb->log2_sectors_per_block; 3059 3060 spin_lock_irq(&ic->endio_wait.lock); 3061 add_new_range_and_wait(ic, &io->range); 3062 3063 if (likely(!from_replay)) { 3064 struct journal_node *section_node = &ic->journal_tree[i * ic->journal_section_entries]; 3065 3066 /* don't write if there is newer committed sector */ 3067 while (j < k && find_newer_committed_node(ic, §ion_node[j])) { 3068 struct journal_entry *je2 = access_journal_entry(ic, i, j); 3069 3070 journal_entry_set_unused(je2); 3071 remove_journal_node(ic, §ion_node[j]); 3072 j++; 3073 sec += ic->sectors_per_block; 3074 offset += ic->sectors_per_block; 3075 } 3076 while (j < k && find_newer_committed_node(ic, §ion_node[k - 1])) { 3077 struct journal_entry *je2 = access_journal_entry(ic, i, k - 1); 3078 3079 journal_entry_set_unused(je2); 3080 remove_journal_node(ic, §ion_node[k - 1]); 3081 k--; 3082 } 3083 if (j == k) { 3084 remove_range_unlocked(ic, &io->range); 3085 spin_unlock_irq(&ic->endio_wait.lock); 3086 mempool_free(io, &ic->journal_io_mempool); 3087 goto skip_io; 3088 } 3089 for (l = j; l < k; l++) 3090 remove_journal_node(ic, §ion_node[l]); 3091 } 3092 spin_unlock_irq(&ic->endio_wait.lock); 3093 3094 metadata_block = get_metadata_sector_and_offset(ic, area, offset, &metadata_offset); 3095 for (l = j; l < k; l++) { 3096 int r; 3097 struct journal_entry *je2 = access_journal_entry(ic, i, l); 3098 3099 if ( 3100 #ifndef INTERNAL_VERIFY 3101 unlikely(from_replay) && 3102 #endif 3103 ic->internal_hash) { 3104 char test_tag[MAX_T(size_t, HASH_MAX_DIGESTSIZE, MAX_TAG_SIZE)]; 3105 struct journal_sector *js = access_journal_data(ic, i, l); 3106 void *js_page = integrity_identity(ic, (char *)js - offset_in_page(js)); 3107 unsigned js_offset = offset_in_page(js); 3108 3109 integrity_sector_checksum(ic, &ic->journal_ahash_req, sec + ((l - j) << ic->sb->log2_sectors_per_block), 3110 js_page, js_offset, test_tag); 3111 if (unlikely(crypto_memneq(test_tag, journal_entry_tag(ic, je2), ic->tag_size))) { 3112 dm_integrity_io_error(ic, "tag mismatch when replaying journal", -EILSEQ); 3113 dm_audit_log_target(DM_MSG_PREFIX, "integrity-replay-journal", ic->ti, 0); 3114 } 3115 } 3116 3117 journal_entry_set_unused(je2); 3118 r = dm_integrity_rw_tag(ic, journal_entry_tag(ic, je2), &metadata_block, &metadata_offset, 3119 ic->tag_size, TAG_WRITE); 3120 if (unlikely(r)) 3121 dm_integrity_io_error(ic, "writing tags", r); 3122 } 3123 3124 atomic_inc(&comp.in_flight); 3125 copy_from_journal(ic, i, j << ic->sb->log2_sectors_per_block, 3126 (k - j) << ic->sb->log2_sectors_per_block, 3127 get_data_sector(ic, area, offset), 3128 complete_copy_from_journal, io); 3129 skip_io: 3130 j = next_loop; 3131 } 3132 } 3133 3134 dm_bufio_write_dirty_buffers_async(ic->bufio); 3135 3136 blk_finish_plug(&plug); 3137 3138 complete_journal_op(&comp); 3139 wait_for_completion_io(&comp.comp); 3140 3141 dm_integrity_flush_buffers(ic, true); 3142 } 3143 3144 static void integrity_writer(struct work_struct *w) 3145 { 3146 struct dm_integrity_c *ic = container_of(w, struct dm_integrity_c, writer_work); 3147 unsigned int write_start, write_sections; 3148 unsigned int prev_free_sectors; 3149 3150 spin_lock_irq(&ic->endio_wait.lock); 3151 write_start = ic->committed_section; 3152 write_sections = ic->n_committed_sections; 3153 spin_unlock_irq(&ic->endio_wait.lock); 3154 3155 if (!write_sections) 3156 return; 3157 3158 do_journal_write(ic, write_start, write_sections, false); 3159 3160 spin_lock_irq(&ic->endio_wait.lock); 3161 3162 ic->committed_section += write_sections; 3163 wraparound_section(ic, &ic->committed_section); 3164 ic->n_committed_sections -= write_sections; 3165 3166 prev_free_sectors = ic->free_sectors; 3167 ic->free_sectors += write_sections * ic->journal_section_entries; 3168 if (unlikely(!prev_free_sectors)) 3169 wake_up_locked(&ic->endio_wait); 3170 3171 spin_unlock_irq(&ic->endio_wait.lock); 3172 } 3173 3174 static void recalc_write_super(struct dm_integrity_c *ic) 3175 { 3176 int r; 3177 3178 dm_integrity_flush_buffers(ic, false); 3179 if (dm_integrity_failed(ic)) 3180 return; 3181 3182 r = sync_rw_sb(ic, REQ_OP_WRITE); 3183 if (unlikely(r)) 3184 dm_integrity_io_error(ic, "writing superblock", r); 3185 } 3186 3187 static void integrity_recalc(struct work_struct *w) 3188 { 3189 struct dm_integrity_c *ic = container_of(w, struct dm_integrity_c, recalc_work); 3190 size_t recalc_tags_size; 3191 u8 *recalc_buffer = NULL; 3192 u8 *recalc_tags = NULL; 3193 struct ahash_request *ahash_req = NULL; 3194 struct dm_integrity_range range; 3195 struct dm_io_request io_req; 3196 struct dm_io_region io_loc; 3197 sector_t area, offset; 3198 sector_t metadata_block; 3199 unsigned int metadata_offset; 3200 sector_t logical_sector, n_sectors; 3201 __u8 *t; 3202 unsigned int i; 3203 int r; 3204 unsigned int super_counter = 0; 3205 unsigned recalc_sectors = RECALC_SECTORS; 3206 3207 retry: 3208 recalc_buffer = kmalloc(recalc_sectors << SECTOR_SHIFT, GFP_NOIO | __GFP_NOWARN); 3209 if (!recalc_buffer) { 3210 oom: 3211 recalc_sectors >>= 1; 3212 if (recalc_sectors >= 1U << ic->sb->log2_sectors_per_block) 3213 goto retry; 3214 DMCRIT("out of memory for recalculate buffer - recalculation disabled"); 3215 goto free_ret; 3216 } 3217 recalc_tags_size = (recalc_sectors >> ic->sb->log2_sectors_per_block) * ic->tag_size; 3218 if (ic->internal_hash_digestsize > ic->tag_size) 3219 recalc_tags_size += ic->internal_hash_digestsize - ic->tag_size; 3220 recalc_tags = kvmalloc(recalc_tags_size, GFP_NOIO); 3221 if (!recalc_tags) { 3222 kfree(recalc_buffer); 3223 recalc_buffer = NULL; 3224 goto oom; 3225 } 3226 3227 DEBUG_print("start recalculation... (position %llx)\n", le64_to_cpu(ic->sb->recalc_sector)); 3228 3229 spin_lock_irq(&ic->endio_wait.lock); 3230 3231 next_chunk: 3232 3233 if (unlikely(dm_post_suspending(ic->ti))) 3234 goto unlock_ret; 3235 3236 range.logical_sector = le64_to_cpu(ic->sb->recalc_sector); 3237 if (unlikely(range.logical_sector >= ic->provided_data_sectors)) { 3238 if (ic->mode == 'B') { 3239 block_bitmap_op(ic, ic->recalc_bitmap, 0, ic->provided_data_sectors, BITMAP_OP_CLEAR); 3240 DEBUG_print("queue_delayed_work: bitmap_flush_work\n"); 3241 queue_delayed_work(ic->commit_wq, &ic->bitmap_flush_work, 0); 3242 } 3243 goto unlock_ret; 3244 } 3245 3246 get_area_and_offset(ic, range.logical_sector, &area, &offset); 3247 range.n_sectors = min((sector_t)recalc_sectors, ic->provided_data_sectors - range.logical_sector); 3248 if (!ic->meta_dev) 3249 range.n_sectors = min(range.n_sectors, ((sector_t)1U << ic->sb->log2_interleave_sectors) - (unsigned int)offset); 3250 3251 add_new_range_and_wait(ic, &range); 3252 spin_unlock_irq(&ic->endio_wait.lock); 3253 logical_sector = range.logical_sector; 3254 n_sectors = range.n_sectors; 3255 3256 if (ic->mode == 'B') { 3257 if (block_bitmap_op(ic, ic->recalc_bitmap, logical_sector, n_sectors, BITMAP_OP_TEST_ALL_CLEAR)) 3258 goto advance_and_next; 3259 3260 while (block_bitmap_op(ic, ic->recalc_bitmap, logical_sector, 3261 ic->sectors_per_block, BITMAP_OP_TEST_ALL_CLEAR)) { 3262 logical_sector += ic->sectors_per_block; 3263 n_sectors -= ic->sectors_per_block; 3264 cond_resched(); 3265 } 3266 while (block_bitmap_op(ic, ic->recalc_bitmap, logical_sector + n_sectors - ic->sectors_per_block, 3267 ic->sectors_per_block, BITMAP_OP_TEST_ALL_CLEAR)) { 3268 n_sectors -= ic->sectors_per_block; 3269 cond_resched(); 3270 } 3271 get_area_and_offset(ic, logical_sector, &area, &offset); 3272 } 3273 3274 DEBUG_print("recalculating: %llx, %llx\n", logical_sector, n_sectors); 3275 3276 if (unlikely(++super_counter == RECALC_WRITE_SUPER)) { 3277 recalc_write_super(ic); 3278 if (ic->mode == 'B') 3279 queue_delayed_work(ic->commit_wq, &ic->bitmap_flush_work, ic->bitmap_flush_interval); 3280 3281 super_counter = 0; 3282 } 3283 3284 if (unlikely(dm_integrity_failed(ic))) 3285 goto err; 3286 3287 io_req.bi_opf = REQ_OP_READ; 3288 io_req.mem.type = DM_IO_KMEM; 3289 io_req.mem.ptr.addr = recalc_buffer; 3290 io_req.notify.fn = NULL; 3291 io_req.client = ic->io; 3292 io_loc.bdev = ic->dev->bdev; 3293 io_loc.sector = get_data_sector(ic, area, offset); 3294 io_loc.count = n_sectors; 3295 3296 r = dm_io(&io_req, 1, &io_loc, NULL, NULL, IOPRIO_DEFAULT); 3297 if (unlikely(r)) { 3298 dm_integrity_io_error(ic, "reading data", r); 3299 goto err; 3300 } 3301 3302 t = recalc_tags; 3303 for (i = 0; i < n_sectors; i += ic->sectors_per_block) { 3304 void *ptr = recalc_buffer + (i << SECTOR_SHIFT); 3305 void *ptr_page = integrity_identity(ic, (char *)ptr - offset_in_page(ptr)); 3306 unsigned ptr_offset = offset_in_page(ptr); 3307 integrity_sector_checksum(ic, &ahash_req, logical_sector + i, ptr_page, ptr_offset, t); 3308 t += ic->tag_size; 3309 } 3310 3311 metadata_block = get_metadata_sector_and_offset(ic, area, offset, &metadata_offset); 3312 3313 r = dm_integrity_rw_tag(ic, recalc_tags, &metadata_block, &metadata_offset, t - recalc_tags, TAG_WRITE); 3314 if (unlikely(r)) { 3315 dm_integrity_io_error(ic, "writing tags", r); 3316 goto err; 3317 } 3318 3319 if (ic->mode == 'B') { 3320 sector_t start, end; 3321 3322 start = (range.logical_sector >> 3323 (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit)) << 3324 (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 3325 end = ((range.logical_sector + range.n_sectors) >> 3326 (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit)) << 3327 (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 3328 block_bitmap_op(ic, ic->recalc_bitmap, start, end - start, BITMAP_OP_CLEAR); 3329 } 3330 3331 advance_and_next: 3332 cond_resched(); 3333 3334 spin_lock_irq(&ic->endio_wait.lock); 3335 remove_range_unlocked(ic, &range); 3336 ic->sb->recalc_sector = cpu_to_le64(range.logical_sector + range.n_sectors); 3337 goto next_chunk; 3338 3339 err: 3340 remove_range(ic, &range); 3341 goto free_ret; 3342 3343 unlock_ret: 3344 spin_unlock_irq(&ic->endio_wait.lock); 3345 3346 recalc_write_super(ic); 3347 3348 free_ret: 3349 kfree(recalc_buffer); 3350 kvfree(recalc_tags); 3351 mempool_free(ahash_req, &ic->ahash_req_pool); 3352 } 3353 3354 static void integrity_recalc_inline(struct work_struct *w) 3355 { 3356 struct dm_integrity_c *ic = container_of(w, struct dm_integrity_c, recalc_work); 3357 size_t recalc_tags_size; 3358 u8 *recalc_buffer = NULL; 3359 u8 *recalc_tags = NULL; 3360 struct ahash_request *ahash_req = NULL; 3361 struct dm_integrity_range range; 3362 struct bio *bio; 3363 struct bio_integrity_payload *bip; 3364 __u8 *t; 3365 unsigned int i; 3366 int r; 3367 unsigned ret; 3368 unsigned int super_counter = 0; 3369 unsigned recalc_sectors = RECALC_SECTORS; 3370 3371 retry: 3372 recalc_buffer = kmalloc(recalc_sectors << SECTOR_SHIFT, GFP_NOIO | __GFP_NOWARN); 3373 if (!recalc_buffer) { 3374 oom: 3375 recalc_sectors >>= 1; 3376 if (recalc_sectors >= 1U << ic->sb->log2_sectors_per_block) 3377 goto retry; 3378 DMCRIT("out of memory for recalculate buffer - recalculation disabled"); 3379 goto free_ret; 3380 } 3381 3382 recalc_tags_size = (recalc_sectors >> ic->sb->log2_sectors_per_block) * ic->tuple_size; 3383 if (ic->internal_hash_digestsize > ic->tuple_size) 3384 recalc_tags_size += ic->internal_hash_digestsize - ic->tuple_size; 3385 recalc_tags = kmalloc(recalc_tags_size, GFP_NOIO | __GFP_NOWARN); 3386 if (!recalc_tags) { 3387 kfree(recalc_buffer); 3388 recalc_buffer = NULL; 3389 goto oom; 3390 } 3391 3392 spin_lock_irq(&ic->endio_wait.lock); 3393 3394 next_chunk: 3395 if (unlikely(dm_post_suspending(ic->ti))) 3396 goto unlock_ret; 3397 3398 range.logical_sector = le64_to_cpu(ic->sb->recalc_sector); 3399 if (unlikely(range.logical_sector >= ic->provided_data_sectors)) 3400 goto unlock_ret; 3401 range.n_sectors = min((sector_t)recalc_sectors, ic->provided_data_sectors - range.logical_sector); 3402 3403 add_new_range_and_wait(ic, &range); 3404 spin_unlock_irq(&ic->endio_wait.lock); 3405 3406 if (unlikely(++super_counter == RECALC_WRITE_SUPER)) { 3407 recalc_write_super(ic); 3408 super_counter = 0; 3409 } 3410 3411 if (unlikely(dm_integrity_failed(ic))) 3412 goto err; 3413 3414 DEBUG_print("recalculating: %llx - %llx\n", range.logical_sector, range.n_sectors); 3415 3416 bio = bio_alloc_bioset(ic->dev->bdev, 1, REQ_OP_READ, GFP_NOIO, &ic->recalc_bios); 3417 bio->bi_iter.bi_sector = ic->start + SB_SECTORS + range.logical_sector; 3418 bio_add_virt_nofail(bio, recalc_buffer, 3419 range.n_sectors << SECTOR_SHIFT); 3420 r = submit_bio_wait(bio); 3421 bio_put(bio); 3422 if (unlikely(r)) { 3423 dm_integrity_io_error(ic, "reading data", r); 3424 goto err; 3425 } 3426 3427 t = recalc_tags; 3428 for (i = 0; i < range.n_sectors; i += ic->sectors_per_block) { 3429 void *ptr = recalc_buffer + (i << SECTOR_SHIFT); 3430 void *ptr_page = integrity_identity(ic, (char *)ptr - offset_in_page(ptr)); 3431 unsigned ptr_offset = offset_in_page(ptr); 3432 memset(t, 0, ic->tuple_size); 3433 integrity_sector_checksum(ic, &ahash_req, range.logical_sector + i, ptr_page, ptr_offset, t); 3434 t += ic->tuple_size; 3435 } 3436 3437 bio = bio_alloc_bioset(ic->dev->bdev, 1, REQ_OP_WRITE, GFP_NOIO, &ic->recalc_bios); 3438 bio->bi_iter.bi_sector = ic->start + SB_SECTORS + range.logical_sector; 3439 bio_add_virt_nofail(bio, recalc_buffer, 3440 range.n_sectors << SECTOR_SHIFT); 3441 3442 bip = bio_integrity_alloc(bio, GFP_NOIO, 1); 3443 if (unlikely(IS_ERR(bip))) { 3444 bio_put(bio); 3445 DMCRIT("out of memory for bio integrity payload - recalculation disabled"); 3446 goto err; 3447 } 3448 ret = bio_integrity_add_page(bio, virt_to_page(recalc_tags), t - recalc_tags, offset_in_page(recalc_tags)); 3449 if (unlikely(ret != t - recalc_tags)) { 3450 bio_put(bio); 3451 dm_integrity_io_error(ic, "attaching integrity tags", -ENOMEM); 3452 goto err; 3453 } 3454 3455 r = submit_bio_wait(bio); 3456 bio_put(bio); 3457 if (unlikely(r)) { 3458 dm_integrity_io_error(ic, "writing data", r); 3459 goto err; 3460 } 3461 3462 cond_resched(); 3463 spin_lock_irq(&ic->endio_wait.lock); 3464 remove_range_unlocked(ic, &range); 3465 #ifdef CONFIG_64BIT 3466 /* Paired with smp_load_acquire in dm_integrity_map_inline. */ 3467 smp_store_release(&ic->sb->recalc_sector, cpu_to_le64(range.logical_sector + range.n_sectors)); 3468 #else 3469 ic->sb->recalc_sector = cpu_to_le64(range.logical_sector + range.n_sectors); 3470 #endif 3471 goto next_chunk; 3472 3473 err: 3474 remove_range(ic, &range); 3475 goto free_ret; 3476 3477 unlock_ret: 3478 spin_unlock_irq(&ic->endio_wait.lock); 3479 3480 recalc_write_super(ic); 3481 3482 free_ret: 3483 kfree(recalc_buffer); 3484 kfree(recalc_tags); 3485 mempool_free(ahash_req, &ic->ahash_req_pool); 3486 } 3487 3488 static void bitmap_block_work(struct work_struct *w) 3489 { 3490 struct bitmap_block_status *bbs = container_of(w, struct bitmap_block_status, work); 3491 struct dm_integrity_c *ic = bbs->ic; 3492 struct bio *bio; 3493 struct bio_list bio_queue; 3494 struct bio_list waiting; 3495 3496 bio_list_init(&waiting); 3497 3498 spin_lock(&bbs->bio_queue_lock); 3499 bio_queue = bbs->bio_queue; 3500 bio_list_init(&bbs->bio_queue); 3501 spin_unlock(&bbs->bio_queue_lock); 3502 3503 while ((bio = bio_list_pop(&bio_queue))) { 3504 struct dm_integrity_io *dio; 3505 3506 dio = dm_per_bio_data(bio, sizeof(struct dm_integrity_io)); 3507 3508 if (block_bitmap_op(ic, ic->may_write_bitmap, dio->range.logical_sector, 3509 dio->range.n_sectors, BITMAP_OP_TEST_ALL_SET)) { 3510 remove_range(ic, &dio->range); 3511 INIT_WORK(&dio->work, integrity_bio_wait); 3512 queue_work(ic->offload_wq, &dio->work); 3513 } else { 3514 block_bitmap_op(ic, ic->journal, dio->range.logical_sector, 3515 dio->range.n_sectors, BITMAP_OP_SET); 3516 bio_list_add(&waiting, bio); 3517 } 3518 } 3519 3520 if (bio_list_empty(&waiting)) 3521 return; 3522 3523 rw_journal_sectors(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, 3524 bbs->idx * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), 3525 BITMAP_BLOCK_SIZE >> SECTOR_SHIFT, NULL); 3526 3527 while ((bio = bio_list_pop(&waiting))) { 3528 struct dm_integrity_io *dio = dm_per_bio_data(bio, sizeof(struct dm_integrity_io)); 3529 3530 block_bitmap_op(ic, ic->may_write_bitmap, dio->range.logical_sector, 3531 dio->range.n_sectors, BITMAP_OP_SET); 3532 3533 remove_range(ic, &dio->range); 3534 INIT_WORK(&dio->work, integrity_bio_wait); 3535 queue_work(ic->offload_wq, &dio->work); 3536 } 3537 3538 queue_delayed_work(ic->commit_wq, &ic->bitmap_flush_work, ic->bitmap_flush_interval); 3539 } 3540 3541 static void bitmap_flush_work(struct work_struct *work) 3542 { 3543 struct dm_integrity_c *ic = container_of(work, struct dm_integrity_c, bitmap_flush_work.work); 3544 struct dm_integrity_range range; 3545 unsigned long limit; 3546 struct bio *bio; 3547 3548 dm_integrity_flush_buffers(ic, false); 3549 3550 range.logical_sector = 0; 3551 range.n_sectors = ic->provided_data_sectors; 3552 3553 spin_lock_irq(&ic->endio_wait.lock); 3554 add_new_range_and_wait(ic, &range); 3555 spin_unlock_irq(&ic->endio_wait.lock); 3556 3557 dm_integrity_flush_buffers(ic, true); 3558 3559 limit = ic->provided_data_sectors; 3560 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) { 3561 limit = le64_to_cpu(ic->sb->recalc_sector) 3562 >> (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit) 3563 << (ic->sb->log2_sectors_per_block + ic->log2_blocks_per_bitmap_bit); 3564 } 3565 /*DEBUG_print("zeroing journal\n");*/ 3566 block_bitmap_op(ic, ic->journal, 0, limit, BITMAP_OP_CLEAR); 3567 block_bitmap_op(ic, ic->may_write_bitmap, 0, limit, BITMAP_OP_CLEAR); 3568 3569 rw_journal_sectors(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, 0, 3570 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3571 3572 spin_lock_irq(&ic->endio_wait.lock); 3573 remove_range_unlocked(ic, &range); 3574 while (unlikely((bio = bio_list_pop(&ic->synchronous_bios)) != NULL)) { 3575 bio_endio(bio); 3576 spin_unlock_irq(&ic->endio_wait.lock); 3577 spin_lock_irq(&ic->endio_wait.lock); 3578 } 3579 spin_unlock_irq(&ic->endio_wait.lock); 3580 } 3581 3582 3583 static void init_journal(struct dm_integrity_c *ic, unsigned int start_section, 3584 unsigned int n_sections, unsigned char commit_seq) 3585 { 3586 unsigned int i, j, n; 3587 3588 if (!n_sections) 3589 return; 3590 3591 for (n = 0; n < n_sections; n++) { 3592 i = start_section + n; 3593 wraparound_section(ic, &i); 3594 for (j = 0; j < ic->journal_section_sectors; j++) { 3595 struct journal_sector *js = access_journal(ic, i, j); 3596 3597 BUILD_BUG_ON(sizeof(js->sectors) != JOURNAL_SECTOR_DATA); 3598 memset(&js->sectors, 0, sizeof(js->sectors)); 3599 js->commit_id = dm_integrity_commit_id(ic, i, j, commit_seq); 3600 } 3601 for (j = 0; j < ic->journal_section_entries; j++) { 3602 struct journal_entry *je = access_journal_entry(ic, i, j); 3603 3604 journal_entry_set_unused(je); 3605 } 3606 } 3607 3608 write_journal(ic, start_section, n_sections); 3609 } 3610 3611 static int find_commit_seq(struct dm_integrity_c *ic, unsigned int i, unsigned int j, commit_id_t id) 3612 { 3613 unsigned char k; 3614 3615 for (k = 0; k < N_COMMIT_IDS; k++) { 3616 if (dm_integrity_commit_id(ic, i, j, k) == id) 3617 return k; 3618 } 3619 dm_integrity_io_error(ic, "journal commit id", -EIO); 3620 return -EIO; 3621 } 3622 3623 static void replay_journal(struct dm_integrity_c *ic) 3624 { 3625 unsigned int i, j; 3626 bool used_commit_ids[N_COMMIT_IDS]; 3627 unsigned int max_commit_id_sections[N_COMMIT_IDS]; 3628 unsigned int write_start, write_sections; 3629 unsigned int continue_section; 3630 bool journal_empty; 3631 unsigned char unused, last_used, want_commit_seq; 3632 3633 if (ic->mode == 'R') 3634 return; 3635 3636 if (ic->journal_uptodate) 3637 return; 3638 3639 last_used = 0; 3640 write_start = 0; 3641 3642 if (!ic->just_formatted) { 3643 DEBUG_print("reading journal\n"); 3644 rw_journal(ic, REQ_OP_READ, 0, ic->journal_sections, NULL); 3645 if (ic->journal_io) 3646 DEBUG_bytes(lowmem_page_address(ic->journal_io[0].page), 64, "read journal"); 3647 if (ic->journal_io) { 3648 struct journal_completion crypt_comp; 3649 3650 crypt_comp.ic = ic; 3651 init_completion(&crypt_comp.comp); 3652 crypt_comp.in_flight = (atomic_t)ATOMIC_INIT(0); 3653 encrypt_journal(ic, false, 0, ic->journal_sections, &crypt_comp); 3654 wait_for_completion(&crypt_comp.comp); 3655 } 3656 DEBUG_bytes(lowmem_page_address(ic->journal[0].page), 64, "decrypted journal"); 3657 } 3658 3659 if (dm_integrity_failed(ic)) 3660 goto clear_journal; 3661 3662 journal_empty = true; 3663 memset(used_commit_ids, 0, sizeof(used_commit_ids)); 3664 memset(max_commit_id_sections, 0, sizeof(max_commit_id_sections)); 3665 for (i = 0; i < ic->journal_sections; i++) { 3666 for (j = 0; j < ic->journal_section_sectors; j++) { 3667 int k; 3668 struct journal_sector *js = access_journal(ic, i, j); 3669 3670 k = find_commit_seq(ic, i, j, js->commit_id); 3671 if (k < 0) 3672 goto clear_journal; 3673 used_commit_ids[k] = true; 3674 max_commit_id_sections[k] = i; 3675 } 3676 if (journal_empty) { 3677 for (j = 0; j < ic->journal_section_entries; j++) { 3678 struct journal_entry *je = access_journal_entry(ic, i, j); 3679 3680 if (!journal_entry_is_unused(je)) { 3681 journal_empty = false; 3682 break; 3683 } 3684 } 3685 } 3686 } 3687 3688 if (!used_commit_ids[N_COMMIT_IDS - 1]) { 3689 unused = N_COMMIT_IDS - 1; 3690 while (unused && !used_commit_ids[unused - 1]) 3691 unused--; 3692 } else { 3693 for (unused = 0; unused < N_COMMIT_IDS; unused++) 3694 if (!used_commit_ids[unused]) 3695 break; 3696 if (unused == N_COMMIT_IDS) { 3697 dm_integrity_io_error(ic, "journal commit ids", -EIO); 3698 goto clear_journal; 3699 } 3700 } 3701 DEBUG_print("first unused commit seq %d [%d,%d,%d,%d]\n", 3702 unused, used_commit_ids[0], used_commit_ids[1], 3703 used_commit_ids[2], used_commit_ids[3]); 3704 3705 last_used = prev_commit_seq(unused); 3706 want_commit_seq = prev_commit_seq(last_used); 3707 3708 if (!used_commit_ids[want_commit_seq] && used_commit_ids[prev_commit_seq(want_commit_seq)]) 3709 journal_empty = true; 3710 3711 write_start = max_commit_id_sections[last_used] + 1; 3712 if (unlikely(write_start >= ic->journal_sections)) 3713 want_commit_seq = next_commit_seq(want_commit_seq); 3714 wraparound_section(ic, &write_start); 3715 3716 i = write_start; 3717 for (write_sections = 0; write_sections < ic->journal_sections; write_sections++) { 3718 for (j = 0; j < ic->journal_section_sectors; j++) { 3719 struct journal_sector *js = access_journal(ic, i, j); 3720 3721 if (js->commit_id != dm_integrity_commit_id(ic, i, j, want_commit_seq)) { 3722 /* 3723 * This could be caused by crash during writing. 3724 * We won't replay the inconsistent part of the 3725 * journal. 3726 */ 3727 DEBUG_print("commit id mismatch at position (%u, %u): %d != %d\n", 3728 i, j, find_commit_seq(ic, i, j, js->commit_id), want_commit_seq); 3729 goto brk; 3730 } 3731 } 3732 i++; 3733 if (unlikely(i >= ic->journal_sections)) 3734 want_commit_seq = next_commit_seq(want_commit_seq); 3735 wraparound_section(ic, &i); 3736 } 3737 brk: 3738 3739 if (!journal_empty) { 3740 DEBUG_print("replaying %u sections, starting at %u, commit seq %d\n", 3741 write_sections, write_start, want_commit_seq); 3742 do_journal_write(ic, write_start, write_sections, true); 3743 } 3744 3745 if (write_sections == ic->journal_sections && (ic->mode == 'J' || journal_empty)) { 3746 continue_section = write_start; 3747 ic->commit_seq = want_commit_seq; 3748 DEBUG_print("continuing from section %u, commit seq %d\n", write_start, ic->commit_seq); 3749 } else { 3750 unsigned int s; 3751 unsigned char erase_seq; 3752 3753 clear_journal: 3754 DEBUG_print("clearing journal\n"); 3755 3756 erase_seq = prev_commit_seq(prev_commit_seq(last_used)); 3757 s = write_start; 3758 init_journal(ic, s, 1, erase_seq); 3759 s++; 3760 wraparound_section(ic, &s); 3761 if (ic->journal_sections >= 2) { 3762 init_journal(ic, s, ic->journal_sections - 2, erase_seq); 3763 s += ic->journal_sections - 2; 3764 wraparound_section(ic, &s); 3765 init_journal(ic, s, 1, erase_seq); 3766 } 3767 3768 continue_section = 0; 3769 ic->commit_seq = next_commit_seq(erase_seq); 3770 } 3771 3772 ic->committed_section = continue_section; 3773 ic->n_committed_sections = 0; 3774 3775 ic->uncommitted_section = continue_section; 3776 ic->n_uncommitted_sections = 0; 3777 3778 ic->free_section = continue_section; 3779 ic->free_section_entry = 0; 3780 ic->free_sectors = ic->journal_entries; 3781 3782 ic->journal_tree_root = RB_ROOT; 3783 for (i = 0; i < ic->journal_entries; i++) 3784 init_journal_node(&ic->journal_tree[i]); 3785 } 3786 3787 static void dm_integrity_enter_synchronous_mode(struct dm_integrity_c *ic) 3788 { 3789 DEBUG_print("%s\n", __func__); 3790 3791 if (ic->mode == 'B') { 3792 ic->bitmap_flush_interval = msecs_to_jiffies(10) + 1; 3793 ic->synchronous_mode = 1; 3794 3795 cancel_delayed_work_sync(&ic->bitmap_flush_work); 3796 queue_delayed_work(ic->commit_wq, &ic->bitmap_flush_work, 0); 3797 flush_workqueue(ic->commit_wq); 3798 } 3799 } 3800 3801 static int dm_integrity_reboot(struct notifier_block *n, unsigned long code, void *x) 3802 { 3803 struct dm_integrity_c *ic = container_of(n, struct dm_integrity_c, reboot_notifier); 3804 3805 DEBUG_print("%s\n", __func__); 3806 3807 dm_integrity_enter_synchronous_mode(ic); 3808 3809 return NOTIFY_DONE; 3810 } 3811 3812 static void dm_integrity_postsuspend(struct dm_target *ti) 3813 { 3814 struct dm_integrity_c *ic = ti->private; 3815 int r; 3816 3817 WARN_ON(unregister_reboot_notifier(&ic->reboot_notifier)); 3818 3819 timer_delete_sync(&ic->autocommit_timer); 3820 3821 if (ic->recalc_wq) 3822 drain_workqueue(ic->recalc_wq); 3823 3824 if (ic->mode == 'B') 3825 cancel_delayed_work_sync(&ic->bitmap_flush_work); 3826 3827 queue_work(ic->commit_wq, &ic->commit_work); 3828 drain_workqueue(ic->commit_wq); 3829 3830 if (ic->mode == 'J') { 3831 queue_work(ic->writer_wq, &ic->writer_work); 3832 drain_workqueue(ic->writer_wq); 3833 dm_integrity_flush_buffers(ic, true); 3834 if (ic->wrote_to_journal) { 3835 init_journal(ic, ic->free_section, 3836 ic->journal_sections - ic->free_section, ic->commit_seq); 3837 if (ic->free_section) { 3838 init_journal(ic, 0, ic->free_section, 3839 next_commit_seq(ic->commit_seq)); 3840 } 3841 } 3842 } 3843 3844 if (ic->mode == 'B') { 3845 dm_integrity_flush_buffers(ic, true); 3846 #if 1 3847 /* set to 0 to test bitmap replay code */ 3848 init_journal(ic, 0, ic->journal_sections, 0); 3849 ic->sb->flags &= ~cpu_to_le32(SB_FLAG_DIRTY_BITMAP); 3850 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 3851 if (unlikely(r)) 3852 dm_integrity_io_error(ic, "writing superblock", r); 3853 #endif 3854 } 3855 3856 BUG_ON(!RB_EMPTY_ROOT(&ic->in_progress)); 3857 3858 ic->journal_uptodate = true; 3859 } 3860 3861 static void dm_integrity_resume(struct dm_target *ti) 3862 { 3863 struct dm_integrity_c *ic = ti->private; 3864 __u64 old_provided_data_sectors = le64_to_cpu(ic->sb->provided_data_sectors); 3865 int r; 3866 __le32 flags; 3867 3868 DEBUG_print("resume\n"); 3869 3870 ic->wrote_to_journal = false; 3871 3872 flags = ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING); 3873 if (ic->discard_keyed) 3874 flags |= cpu_to_le32(SB_FLAG_DISCARD_KEYED); 3875 r = sync_rw_sb(ic, REQ_OP_READ); 3876 if (r) 3877 dm_integrity_io_error(ic, "reading superblock", r); 3878 if ((ic->sb->flags & flags) != flags) { 3879 ic->sb->flags |= flags; 3880 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 3881 if (unlikely(r)) 3882 dm_integrity_io_error(ic, "writing superblock", r); 3883 } 3884 3885 if (ic->provided_data_sectors != old_provided_data_sectors) { 3886 if (ic->provided_data_sectors > old_provided_data_sectors && 3887 ic->mode == 'B' && 3888 ic->sb->flags & cpu_to_le32(SB_FLAG_DIRTY_BITMAP) && 3889 ic->sb->log2_blocks_per_bitmap_bit == ic->log2_blocks_per_bitmap_bit) { 3890 rw_journal_sectors(ic, REQ_OP_READ, 0, 3891 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3892 block_bitmap_op(ic, ic->journal, old_provided_data_sectors, 3893 ic->provided_data_sectors - old_provided_data_sectors, BITMAP_OP_SET); 3894 rw_journal_sectors(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, 0, 3895 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3896 } 3897 3898 ic->sb->provided_data_sectors = cpu_to_le64(ic->provided_data_sectors); 3899 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 3900 if (unlikely(r)) 3901 dm_integrity_io_error(ic, "writing superblock", r); 3902 } 3903 3904 if (ic->sb->flags & cpu_to_le32(SB_FLAG_DIRTY_BITMAP)) { 3905 DEBUG_print("resume dirty_bitmap\n"); 3906 rw_journal_sectors(ic, REQ_OP_READ, 0, 3907 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3908 if (ic->mode == 'B') { 3909 if (ic->sb->log2_blocks_per_bitmap_bit == ic->log2_blocks_per_bitmap_bit && 3910 !ic->reset_recalculate_flag) { 3911 block_bitmap_copy(ic, ic->recalc_bitmap, ic->journal); 3912 block_bitmap_copy(ic, ic->may_write_bitmap, ic->journal); 3913 if (!block_bitmap_op(ic, ic->journal, 0, ic->provided_data_sectors, 3914 BITMAP_OP_TEST_ALL_CLEAR)) { 3915 ic->sb->flags |= cpu_to_le32(SB_FLAG_RECALCULATING); 3916 ic->sb->recalc_sector = cpu_to_le64(0); 3917 } 3918 } else { 3919 DEBUG_print("non-matching blocks_per_bitmap_bit: %u, %u\n", 3920 ic->sb->log2_blocks_per_bitmap_bit, ic->log2_blocks_per_bitmap_bit); 3921 ic->sb->log2_blocks_per_bitmap_bit = ic->log2_blocks_per_bitmap_bit; 3922 block_bitmap_op(ic, ic->recalc_bitmap, 0, ic->provided_data_sectors, BITMAP_OP_SET); 3923 block_bitmap_op(ic, ic->may_write_bitmap, 0, ic->provided_data_sectors, BITMAP_OP_SET); 3924 block_bitmap_op(ic, ic->journal, 0, ic->provided_data_sectors, BITMAP_OP_SET); 3925 rw_journal_sectors(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, 0, 3926 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3927 ic->sb->flags |= cpu_to_le32(SB_FLAG_RECALCULATING); 3928 ic->sb->recalc_sector = cpu_to_le64(0); 3929 } 3930 } else { 3931 if (!(ic->sb->log2_blocks_per_bitmap_bit == ic->log2_blocks_per_bitmap_bit && 3932 block_bitmap_op(ic, ic->journal, 0, ic->provided_data_sectors, BITMAP_OP_TEST_ALL_CLEAR)) || 3933 ic->reset_recalculate_flag) { 3934 ic->sb->flags |= cpu_to_le32(SB_FLAG_RECALCULATING); 3935 ic->sb->recalc_sector = cpu_to_le64(0); 3936 } 3937 init_journal(ic, 0, ic->journal_sections, 0); 3938 replay_journal(ic); 3939 ic->sb->flags &= ~cpu_to_le32(SB_FLAG_DIRTY_BITMAP); 3940 } 3941 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 3942 if (unlikely(r)) 3943 dm_integrity_io_error(ic, "writing superblock", r); 3944 } else { 3945 replay_journal(ic); 3946 if (ic->reset_recalculate_flag) { 3947 ic->sb->flags |= cpu_to_le32(SB_FLAG_RECALCULATING); 3948 ic->sb->recalc_sector = cpu_to_le64(0); 3949 } 3950 if (ic->mode == 'B') { 3951 ic->sb->flags |= cpu_to_le32(SB_FLAG_DIRTY_BITMAP); 3952 ic->sb->log2_blocks_per_bitmap_bit = ic->log2_blocks_per_bitmap_bit; 3953 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 3954 if (unlikely(r)) 3955 dm_integrity_io_error(ic, "writing superblock", r); 3956 3957 block_bitmap_op(ic, ic->journal, 0, ic->provided_data_sectors, BITMAP_OP_CLEAR); 3958 block_bitmap_op(ic, ic->recalc_bitmap, 0, ic->provided_data_sectors, BITMAP_OP_CLEAR); 3959 block_bitmap_op(ic, ic->may_write_bitmap, 0, ic->provided_data_sectors, BITMAP_OP_CLEAR); 3960 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING) && 3961 le64_to_cpu(ic->sb->recalc_sector) < ic->provided_data_sectors) { 3962 block_bitmap_op(ic, ic->journal, le64_to_cpu(ic->sb->recalc_sector), 3963 ic->provided_data_sectors - le64_to_cpu(ic->sb->recalc_sector), BITMAP_OP_SET); 3964 block_bitmap_op(ic, ic->recalc_bitmap, le64_to_cpu(ic->sb->recalc_sector), 3965 ic->provided_data_sectors - le64_to_cpu(ic->sb->recalc_sector), BITMAP_OP_SET); 3966 block_bitmap_op(ic, ic->may_write_bitmap, le64_to_cpu(ic->sb->recalc_sector), 3967 ic->provided_data_sectors - le64_to_cpu(ic->sb->recalc_sector), BITMAP_OP_SET); 3968 } 3969 rw_journal_sectors(ic, REQ_OP_WRITE | REQ_FUA | REQ_SYNC, 0, 3970 ic->n_bitmap_blocks * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT), NULL); 3971 } 3972 } 3973 3974 DEBUG_print("testing recalc: %x\n", ic->sb->flags); 3975 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) { 3976 __u64 recalc_pos = le64_to_cpu(ic->sb->recalc_sector); 3977 3978 DEBUG_print("recalc pos: %llx / %llx\n", recalc_pos, ic->provided_data_sectors); 3979 if (recalc_pos < ic->provided_data_sectors) { 3980 queue_work(ic->recalc_wq, &ic->recalc_work); 3981 } else if (recalc_pos > ic->provided_data_sectors) { 3982 ic->sb->recalc_sector = cpu_to_le64(ic->provided_data_sectors); 3983 recalc_write_super(ic); 3984 } 3985 } 3986 3987 ic->reboot_notifier.notifier_call = dm_integrity_reboot; 3988 ic->reboot_notifier.next = NULL; 3989 ic->reboot_notifier.priority = INT_MAX - 1; /* be notified after md and before hardware drivers */ 3990 WARN_ON(register_reboot_notifier(&ic->reboot_notifier)); 3991 3992 #if 0 3993 /* set to 1 to stress test synchronous mode */ 3994 dm_integrity_enter_synchronous_mode(ic); 3995 #endif 3996 } 3997 3998 static void dm_integrity_status(struct dm_target *ti, status_type_t type, 3999 unsigned int status_flags, char *result, unsigned int maxlen) 4000 { 4001 struct dm_integrity_c *ic = ti->private; 4002 unsigned int arg_count; 4003 size_t sz = 0; 4004 4005 switch (type) { 4006 case STATUSTYPE_INFO: 4007 DMEMIT("%llu %llu", 4008 (unsigned long long)atomic64_read(&ic->number_of_mismatches), 4009 ic->provided_data_sectors); 4010 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) 4011 DMEMIT(" %llu", le64_to_cpu(ic->sb->recalc_sector)); 4012 else 4013 DMEMIT(" -"); 4014 break; 4015 4016 case STATUSTYPE_TABLE: { 4017 arg_count = 1; /* buffer_sectors */ 4018 arg_count += !!ic->meta_dev; 4019 arg_count += ic->sectors_per_block != 1; 4020 arg_count += !!(ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)); 4021 arg_count += ic->reset_recalculate_flag; 4022 arg_count += ic->discard && !ic->discard_keyed; 4023 arg_count += ic->discard_keyed; 4024 arg_count += ic->mode != 'I'; /* interleave_sectors */ 4025 arg_count += ic->mode == 'J'; /* journal_sectors */ 4026 arg_count += ic->mode == 'J'; /* journal_watermark */ 4027 arg_count += ic->mode == 'J'; /* commit_time */ 4028 arg_count += ic->mode == 'B'; /* sectors_per_bit */ 4029 arg_count += ic->mode == 'B'; /* bitmap_flush_interval */ 4030 arg_count += !!ic->internal_hash_alg.alg_string; 4031 arg_count += !!ic->journal_crypt_alg.alg_string; 4032 arg_count += !!ic->journal_mac_alg.alg_string; 4033 arg_count += (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_PADDING)) != 0; 4034 arg_count += (ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) != 0; 4035 arg_count += ic->legacy_recalculate; 4036 DMEMIT("%s %llu %u %c %u", ic->dev->name, ic->start, 4037 ic->tag_size, ic->mode, arg_count); 4038 if (ic->meta_dev) 4039 DMEMIT(" meta_device:%s", ic->meta_dev->name); 4040 if (ic->sectors_per_block != 1) 4041 DMEMIT(" block_size:%u", ic->sectors_per_block << SECTOR_SHIFT); 4042 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) 4043 DMEMIT(" recalculate"); 4044 if (ic->reset_recalculate_flag) 4045 DMEMIT(" reset_recalculate"); 4046 if (ic->discard && !ic->discard_keyed) 4047 DMEMIT(" allow_discards"); 4048 if (ic->discard_keyed) 4049 DMEMIT(" allow_discards_keyed"); 4050 if (ic->mode != 'I') 4051 DMEMIT(" interleave_sectors:%u", 1U << ic->sb->log2_interleave_sectors); 4052 DMEMIT(" buffer_sectors:%u", 1U << ic->log2_buffer_sectors); 4053 if (ic->mode == 'J') { 4054 __u64 watermark_percentage = (__u64)(ic->journal_entries - ic->free_sectors_threshold) * 100; 4055 4056 watermark_percentage += ic->journal_entries / 2; 4057 do_div(watermark_percentage, ic->journal_entries); 4058 DMEMIT(" journal_sectors:%u", ic->initial_sectors - SB_SECTORS); 4059 DMEMIT(" journal_watermark:%u", (unsigned int)watermark_percentage); 4060 DMEMIT(" commit_time:%u", ic->autocommit_msec); 4061 } 4062 if (ic->mode == 'B') { 4063 DMEMIT(" sectors_per_bit:%llu", (sector_t)ic->sectors_per_block << ic->log2_blocks_per_bitmap_bit); 4064 DMEMIT(" bitmap_flush_interval:%u", jiffies_to_msecs(ic->bitmap_flush_interval)); 4065 } 4066 if ((ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_PADDING)) != 0) 4067 DMEMIT(" fix_padding"); 4068 if ((ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) != 0) 4069 DMEMIT(" fix_hmac"); 4070 if (ic->legacy_recalculate) 4071 DMEMIT(" legacy_recalculate"); 4072 4073 #define EMIT_ALG(a, n) \ 4074 do { \ 4075 if (ic->a.alg_string) { \ 4076 DMEMIT(" %s:%s", n, ic->a.alg_string); \ 4077 if (ic->a.key_string) \ 4078 DMEMIT(":%s", ic->a.key_string);\ 4079 } \ 4080 } while (0) 4081 EMIT_ALG(internal_hash_alg, "internal_hash"); 4082 EMIT_ALG(journal_crypt_alg, "journal_crypt"); 4083 EMIT_ALG(journal_mac_alg, "journal_mac"); 4084 break; 4085 } 4086 case STATUSTYPE_IMA: 4087 DMEMIT_TARGET_NAME_VERSION(ti->type); 4088 DMEMIT(",dev_name=%s,start=%llu,tag_size=%u,mode=%c", 4089 ic->dev->name, ic->start, ic->tag_size, ic->mode); 4090 4091 if (ic->meta_dev) 4092 DMEMIT(",meta_device=%s", ic->meta_dev->name); 4093 if (ic->sectors_per_block != 1) 4094 DMEMIT(",block_size=%u", ic->sectors_per_block << SECTOR_SHIFT); 4095 4096 DMEMIT(",recalculate=%c", (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) ? 4097 'y' : 'n'); 4098 DMEMIT(",allow_discards=%c", ic->discard ? 'y' : 'n'); 4099 DMEMIT(",allow_discards_keyed=%c", ic->discard_keyed ? 'y' : 'n'); 4100 DMEMIT(",fix_padding=%c", 4101 ((ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_PADDING)) != 0) ? 'y' : 'n'); 4102 DMEMIT(",fix_hmac=%c", 4103 ((ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) != 0) ? 'y' : 'n'); 4104 DMEMIT(",legacy_recalculate=%c", ic->legacy_recalculate ? 'y' : 'n'); 4105 4106 DMEMIT(",journal_sectors=%u", ic->initial_sectors - SB_SECTORS); 4107 DMEMIT(",interleave_sectors=%u", 1U << ic->sb->log2_interleave_sectors); 4108 DMEMIT(",buffer_sectors=%u", 1U << ic->log2_buffer_sectors); 4109 DMEMIT(";"); 4110 break; 4111 } 4112 } 4113 4114 static int dm_integrity_iterate_devices(struct dm_target *ti, 4115 iterate_devices_callout_fn fn, void *data) 4116 { 4117 struct dm_integrity_c *ic = ti->private; 4118 4119 if (!ic->meta_dev) 4120 return fn(ti, ic->dev, ic->start + ic->initial_sectors + ic->metadata_run, ti->len, data); 4121 else 4122 return fn(ti, ic->dev, 0, ti->len, data); 4123 } 4124 4125 static void dm_integrity_io_hints(struct dm_target *ti, struct queue_limits *limits) 4126 { 4127 struct dm_integrity_c *ic = ti->private; 4128 4129 dm_stack_bs_limits(limits, ic->sectors_per_block << SECTOR_SHIFT); 4130 limits->dma_alignment = limits->logical_block_size - 1; 4131 limits->discard_granularity = ic->sectors_per_block << SECTOR_SHIFT; 4132 4133 if (!ic->internal_hash) { 4134 struct blk_integrity *bi = &limits->integrity; 4135 4136 memset(bi, 0, sizeof(*bi)); 4137 bi->metadata_size = ic->tag_size; 4138 bi->tag_size = bi->metadata_size; 4139 bi->interval_exp = 4140 ic->sb->log2_sectors_per_block + SECTOR_SHIFT; 4141 } 4142 4143 limits->max_integrity_segments = USHRT_MAX; 4144 } 4145 4146 static void calculate_journal_section_size(struct dm_integrity_c *ic) 4147 { 4148 unsigned int sector_space = JOURNAL_SECTOR_DATA; 4149 4150 ic->journal_sections = le32_to_cpu(ic->sb->journal_sections); 4151 ic->journal_entry_size = roundup(offsetof(struct journal_entry, last_bytes[ic->sectors_per_block]) + ic->tag_size, 4152 JOURNAL_ENTRY_ROUNDUP); 4153 4154 if (ic->sb->flags & cpu_to_le32(SB_FLAG_HAVE_JOURNAL_MAC)) 4155 sector_space -= JOURNAL_MAC_PER_SECTOR; 4156 ic->journal_entries_per_sector = sector_space / ic->journal_entry_size; 4157 ic->journal_section_entries = ic->journal_entries_per_sector * JOURNAL_BLOCK_SECTORS; 4158 ic->journal_section_sectors = (ic->journal_section_entries << ic->sb->log2_sectors_per_block) + JOURNAL_BLOCK_SECTORS; 4159 ic->journal_entries = ic->journal_section_entries * ic->journal_sections; 4160 } 4161 4162 static int calculate_device_limits(struct dm_integrity_c *ic) 4163 { 4164 __u64 initial_sectors; 4165 4166 calculate_journal_section_size(ic); 4167 initial_sectors = SB_SECTORS + (__u64)ic->journal_section_sectors * ic->journal_sections; 4168 if (initial_sectors + METADATA_PADDING_SECTORS >= ic->meta_device_sectors || initial_sectors > UINT_MAX) 4169 return -EINVAL; 4170 ic->initial_sectors = initial_sectors; 4171 4172 if (ic->mode == 'I') { 4173 if (ic->initial_sectors + ic->provided_data_sectors > ic->meta_device_sectors) 4174 return -EINVAL; 4175 } else if (!ic->meta_dev) { 4176 sector_t last_sector, last_area, last_offset; 4177 4178 /* we have to maintain excessive padding for compatibility with existing volumes */ 4179 __u64 metadata_run_padding = 4180 ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_PADDING) ? 4181 (__u64)(METADATA_PADDING_SECTORS << SECTOR_SHIFT) : 4182 (__u64)(1 << SECTOR_SHIFT << METADATA_PADDING_SECTORS); 4183 4184 ic->metadata_run = round_up((__u64)ic->tag_size << (ic->sb->log2_interleave_sectors - ic->sb->log2_sectors_per_block), 4185 metadata_run_padding) >> SECTOR_SHIFT; 4186 if (!(ic->metadata_run & (ic->metadata_run - 1))) 4187 ic->log2_metadata_run = __ffs(ic->metadata_run); 4188 else 4189 ic->log2_metadata_run = -1; 4190 4191 get_area_and_offset(ic, ic->provided_data_sectors - 1, &last_area, &last_offset); 4192 last_sector = get_data_sector(ic, last_area, last_offset); 4193 if (last_sector < ic->start || last_sector >= ic->meta_device_sectors) 4194 return -EINVAL; 4195 } else { 4196 __u64 meta_size = (ic->provided_data_sectors >> ic->sb->log2_sectors_per_block) * ic->tag_size; 4197 4198 meta_size = (meta_size + ((1U << (ic->log2_buffer_sectors + SECTOR_SHIFT)) - 1)) 4199 >> (ic->log2_buffer_sectors + SECTOR_SHIFT); 4200 meta_size <<= ic->log2_buffer_sectors; 4201 if (ic->initial_sectors + meta_size < ic->initial_sectors || 4202 ic->initial_sectors + meta_size > ic->meta_device_sectors) 4203 return -EINVAL; 4204 ic->metadata_run = 1; 4205 ic->log2_metadata_run = 0; 4206 } 4207 4208 return 0; 4209 } 4210 4211 static void get_provided_data_sectors(struct dm_integrity_c *ic) 4212 { 4213 if (!ic->meta_dev) { 4214 int test_bit; 4215 4216 ic->provided_data_sectors = 0; 4217 for (test_bit = fls64(ic->meta_device_sectors) - 1; test_bit >= 3; test_bit--) { 4218 __u64 prev_data_sectors = ic->provided_data_sectors; 4219 4220 ic->provided_data_sectors |= (sector_t)1 << test_bit; 4221 if (calculate_device_limits(ic)) 4222 ic->provided_data_sectors = prev_data_sectors; 4223 } 4224 } else { 4225 ic->provided_data_sectors = ic->data_device_sectors; 4226 ic->provided_data_sectors &= ~(sector_t)(ic->sectors_per_block - 1); 4227 } 4228 } 4229 4230 static int initialize_superblock(struct dm_integrity_c *ic, 4231 unsigned int journal_sectors, unsigned int interleave_sectors) 4232 { 4233 unsigned int journal_sections; 4234 int test_bit; 4235 4236 memset(ic->sb, 0, SB_SECTORS << SECTOR_SHIFT); 4237 memcpy(ic->sb->magic, SB_MAGIC, 8); 4238 if (ic->mode == 'I') 4239 ic->sb->flags |= cpu_to_le32(SB_FLAG_INLINE); 4240 ic->sb->integrity_tag_size = cpu_to_le16(ic->tag_size); 4241 ic->sb->log2_sectors_per_block = __ffs(ic->sectors_per_block); 4242 if (ic->journal_mac_alg.alg_string) 4243 ic->sb->flags |= cpu_to_le32(SB_FLAG_HAVE_JOURNAL_MAC); 4244 4245 calculate_journal_section_size(ic); 4246 journal_sections = journal_sectors / ic->journal_section_sectors; 4247 if (!journal_sections) 4248 journal_sections = 1; 4249 if (ic->mode == 'I') 4250 journal_sections = 0; 4251 4252 if (ic->fix_hmac && (ic->internal_hash_alg.alg_string || ic->journal_mac_alg.alg_string)) { 4253 ic->sb->flags |= cpu_to_le32(SB_FLAG_FIXED_HMAC); 4254 get_random_bytes(ic->sb->salt, SALT_SIZE); 4255 } 4256 4257 if (ic->discard_keyed) 4258 ic->sb->flags |= cpu_to_le32(SB_FLAG_DISCARD_KEYED); 4259 4260 if (!ic->meta_dev) { 4261 if (ic->fix_padding) 4262 ic->sb->flags |= cpu_to_le32(SB_FLAG_FIXED_PADDING); 4263 ic->sb->journal_sections = cpu_to_le32(journal_sections); 4264 if (!interleave_sectors) 4265 interleave_sectors = DEFAULT_INTERLEAVE_SECTORS; 4266 ic->sb->log2_interleave_sectors = __fls(interleave_sectors); 4267 ic->sb->log2_interleave_sectors = max_t(__u8, MIN_LOG2_INTERLEAVE_SECTORS, ic->sb->log2_interleave_sectors); 4268 ic->sb->log2_interleave_sectors = min_t(__u8, MAX_LOG2_INTERLEAVE_SECTORS, ic->sb->log2_interleave_sectors); 4269 4270 get_provided_data_sectors(ic); 4271 if (!ic->provided_data_sectors) 4272 return -EINVAL; 4273 } else { 4274 ic->sb->log2_interleave_sectors = 0; 4275 4276 get_provided_data_sectors(ic); 4277 if (!ic->provided_data_sectors) 4278 return -EINVAL; 4279 4280 try_smaller_buffer: 4281 ic->sb->journal_sections = cpu_to_le32(0); 4282 for (test_bit = fls(journal_sections) - 1; test_bit >= 0; test_bit--) { 4283 __u32 prev_journal_sections = le32_to_cpu(ic->sb->journal_sections); 4284 __u32 test_journal_sections = prev_journal_sections | (1U << test_bit); 4285 4286 if (test_journal_sections > journal_sections) 4287 continue; 4288 ic->sb->journal_sections = cpu_to_le32(test_journal_sections); 4289 if (calculate_device_limits(ic)) 4290 ic->sb->journal_sections = cpu_to_le32(prev_journal_sections); 4291 4292 } 4293 if (!le32_to_cpu(ic->sb->journal_sections)) { 4294 if (ic->log2_buffer_sectors > 3) { 4295 ic->log2_buffer_sectors--; 4296 goto try_smaller_buffer; 4297 } 4298 return -EINVAL; 4299 } 4300 } 4301 4302 ic->sb->provided_data_sectors = cpu_to_le64(ic->provided_data_sectors); 4303 4304 sb_set_version(ic); 4305 4306 return 0; 4307 } 4308 4309 static void dm_integrity_free_page_list(struct page_list *pl) 4310 { 4311 unsigned int i; 4312 4313 if (!pl) 4314 return; 4315 for (i = 0; pl[i].page; i++) 4316 __free_page(pl[i].page); 4317 kvfree(pl); 4318 } 4319 4320 static struct page_list *dm_integrity_alloc_page_list(unsigned int n_pages) 4321 { 4322 struct page_list *pl; 4323 unsigned int i; 4324 4325 pl = kvmalloc_objs(struct page_list, n_pages + 1, 4326 GFP_KERNEL | __GFP_ZERO); 4327 if (!pl) 4328 return NULL; 4329 4330 for (i = 0; i < n_pages; i++) { 4331 pl[i].page = alloc_page(GFP_KERNEL); 4332 if (!pl[i].page) { 4333 dm_integrity_free_page_list(pl); 4334 return NULL; 4335 } 4336 if (i) 4337 pl[i - 1].next = &pl[i]; 4338 } 4339 pl[i].page = NULL; 4340 pl[i].next = NULL; 4341 4342 return pl; 4343 } 4344 4345 static void dm_integrity_free_journal_scatterlist(struct dm_integrity_c *ic, struct scatterlist **sl) 4346 { 4347 unsigned int i; 4348 4349 for (i = 0; i < ic->journal_sections; i++) 4350 kvfree(sl[i]); 4351 kvfree(sl); 4352 } 4353 4354 static struct scatterlist **dm_integrity_alloc_journal_scatterlist(struct dm_integrity_c *ic, 4355 struct page_list *pl) 4356 { 4357 struct scatterlist **sl; 4358 unsigned int i; 4359 4360 sl = kvmalloc_objs(struct scatterlist *, ic->journal_sections, 4361 GFP_KERNEL | __GFP_ZERO); 4362 if (!sl) 4363 return NULL; 4364 4365 for (i = 0; i < ic->journal_sections; i++) { 4366 struct scatterlist *s; 4367 unsigned int start_index, start_offset; 4368 unsigned int end_index, end_offset; 4369 unsigned int n_pages; 4370 unsigned int idx; 4371 4372 page_list_location(ic, i, 0, &start_index, &start_offset); 4373 page_list_location(ic, i, ic->journal_section_sectors - 1, 4374 &end_index, &end_offset); 4375 4376 n_pages = (end_index - start_index + 1); 4377 4378 s = kvmalloc_objs(struct scatterlist, n_pages); 4379 if (!s) { 4380 dm_integrity_free_journal_scatterlist(ic, sl); 4381 return NULL; 4382 } 4383 4384 sg_init_table(s, n_pages); 4385 for (idx = start_index; idx <= end_index; idx++) { 4386 char *va = lowmem_page_address(pl[idx].page); 4387 unsigned int start = 0, end = PAGE_SIZE; 4388 4389 if (idx == start_index) 4390 start = start_offset; 4391 if (idx == end_index) 4392 end = end_offset + (1 << SECTOR_SHIFT); 4393 sg_set_buf(&s[idx - start_index], va + start, end - start); 4394 } 4395 4396 sl[i] = s; 4397 } 4398 4399 return sl; 4400 } 4401 4402 static void free_alg(struct alg_spec *a) 4403 { 4404 kfree_sensitive(a->alg_string); 4405 kfree_sensitive(a->key); 4406 memset(a, 0, sizeof(*a)); 4407 } 4408 4409 static int get_alg_and_key(const char *arg, struct alg_spec *a, char **error, char *error_inval) 4410 { 4411 char *k; 4412 4413 free_alg(a); 4414 4415 a->alg_string = kstrdup(strchr(arg, ':') + 1, GFP_KERNEL); 4416 if (!a->alg_string) 4417 goto nomem; 4418 4419 k = strchr(a->alg_string, ':'); 4420 if (k) { 4421 *k = 0; 4422 a->key_string = k + 1; 4423 if (strlen(a->key_string) & 1) 4424 goto inval; 4425 4426 a->key_size = strlen(a->key_string) / 2; 4427 a->key = kmalloc(a->key_size, GFP_KERNEL); 4428 if (!a->key) 4429 goto nomem; 4430 if (hex2bin(a->key, a->key_string, a->key_size)) 4431 goto inval; 4432 } 4433 4434 return 0; 4435 inval: 4436 *error = error_inval; 4437 return -EINVAL; 4438 nomem: 4439 *error = "Out of memory for an argument"; 4440 return -ENOMEM; 4441 } 4442 4443 static int get_mac(struct crypto_shash **shash, struct crypto_ahash **ahash, 4444 struct alg_spec *a, char **error, char *error_alg, char *error_key) 4445 { 4446 int r; 4447 4448 if (a->alg_string) { 4449 if (shash) { 4450 *shash = crypto_alloc_shash(a->alg_string, 0, CRYPTO_ALG_ALLOCATES_MEMORY); 4451 if (IS_ERR(*shash)) { 4452 *shash = NULL; 4453 goto try_ahash; 4454 } 4455 if (a->key) { 4456 r = crypto_shash_setkey(*shash, a->key, a->key_size); 4457 if (r) { 4458 *error = error_key; 4459 return r; 4460 } 4461 } else if (crypto_shash_get_flags(*shash) & CRYPTO_TFM_NEED_KEY) { 4462 *error = error_key; 4463 return -ENOKEY; 4464 } 4465 return 0; 4466 } 4467 try_ahash: 4468 if (ahash) { 4469 *ahash = crypto_alloc_ahash(a->alg_string, 0, CRYPTO_ALG_ALLOCATES_MEMORY); 4470 if (IS_ERR(*ahash)) { 4471 *error = error_alg; 4472 r = PTR_ERR(*ahash); 4473 *ahash = NULL; 4474 return r; 4475 } 4476 if (a->key) { 4477 r = crypto_ahash_setkey(*ahash, a->key, a->key_size); 4478 if (r) { 4479 *error = error_key; 4480 return r; 4481 } 4482 } else if (crypto_ahash_get_flags(*ahash) & CRYPTO_TFM_NEED_KEY) { 4483 *error = error_key; 4484 return -ENOKEY; 4485 } 4486 return 0; 4487 } 4488 *error = error_alg; 4489 return -ENOENT; 4490 } 4491 4492 return 0; 4493 } 4494 4495 static int create_journal(struct dm_integrity_c *ic, char **error) 4496 { 4497 int r = 0; 4498 unsigned int i; 4499 __u64 journal_pages, journal_desc_size, journal_tree_size; 4500 unsigned char *crypt_data = NULL, *crypt_iv = NULL; 4501 struct skcipher_request *req = NULL; 4502 4503 ic->commit_ids[0] = cpu_to_le64(0x1111111111111111ULL); 4504 ic->commit_ids[1] = cpu_to_le64(0x2222222222222222ULL); 4505 ic->commit_ids[2] = cpu_to_le64(0x3333333333333333ULL); 4506 ic->commit_ids[3] = cpu_to_le64(0x4444444444444444ULL); 4507 4508 journal_pages = roundup((__u64)ic->journal_sections * ic->journal_section_sectors, 4509 PAGE_SIZE >> SECTOR_SHIFT) >> (PAGE_SHIFT - SECTOR_SHIFT); 4510 journal_desc_size = journal_pages * sizeof(struct page_list); 4511 if (journal_pages >= totalram_pages() - totalhigh_pages() || journal_desc_size > ULONG_MAX) { 4512 *error = "Journal doesn't fit into memory"; 4513 r = -ENOMEM; 4514 goto bad; 4515 } 4516 ic->journal_pages = journal_pages; 4517 4518 ic->journal = dm_integrity_alloc_page_list(ic->journal_pages); 4519 if (!ic->journal) { 4520 *error = "Could not allocate memory for journal"; 4521 r = -ENOMEM; 4522 goto bad; 4523 } 4524 if (ic->journal_crypt_alg.alg_string) { 4525 unsigned int ivsize, blocksize; 4526 struct journal_completion comp; 4527 4528 comp.ic = ic; 4529 ic->journal_crypt = crypto_alloc_skcipher(ic->journal_crypt_alg.alg_string, 0, CRYPTO_ALG_ALLOCATES_MEMORY); 4530 if (IS_ERR(ic->journal_crypt)) { 4531 *error = "Invalid journal cipher"; 4532 r = PTR_ERR(ic->journal_crypt); 4533 ic->journal_crypt = NULL; 4534 goto bad; 4535 } 4536 ivsize = crypto_skcipher_ivsize(ic->journal_crypt); 4537 blocksize = crypto_skcipher_blocksize(ic->journal_crypt); 4538 4539 if (ic->journal_crypt_alg.key) { 4540 r = crypto_skcipher_setkey(ic->journal_crypt, ic->journal_crypt_alg.key, 4541 ic->journal_crypt_alg.key_size); 4542 if (r) { 4543 *error = "Error setting encryption key"; 4544 goto bad; 4545 } 4546 } 4547 DEBUG_print("cipher %s, block size %u iv size %u\n", 4548 ic->journal_crypt_alg.alg_string, blocksize, ivsize); 4549 4550 ic->journal_io = dm_integrity_alloc_page_list(ic->journal_pages); 4551 if (!ic->journal_io) { 4552 *error = "Could not allocate memory for journal io"; 4553 r = -ENOMEM; 4554 goto bad; 4555 } 4556 4557 if (blocksize == 1) { 4558 struct scatterlist *sg; 4559 4560 req = skcipher_request_alloc(ic->journal_crypt, GFP_KERNEL); 4561 if (!req) { 4562 *error = "Could not allocate crypt request"; 4563 r = -ENOMEM; 4564 goto bad; 4565 } 4566 4567 crypt_iv = kzalloc(ivsize, GFP_KERNEL); 4568 if (!crypt_iv) { 4569 *error = "Could not allocate iv"; 4570 r = -ENOMEM; 4571 goto bad; 4572 } 4573 4574 ic->journal_xor = dm_integrity_alloc_page_list(ic->journal_pages); 4575 if (!ic->journal_xor) { 4576 *error = "Could not allocate memory for journal xor"; 4577 r = -ENOMEM; 4578 goto bad; 4579 } 4580 4581 sg = kvmalloc_objs(struct scatterlist, 4582 ic->journal_pages + 1); 4583 if (!sg) { 4584 *error = "Unable to allocate sg list"; 4585 r = -ENOMEM; 4586 goto bad; 4587 } 4588 sg_init_table(sg, ic->journal_pages + 1); 4589 for (i = 0; i < ic->journal_pages; i++) { 4590 char *va = lowmem_page_address(ic->journal_xor[i].page); 4591 4592 clear_page(va); 4593 sg_set_buf(&sg[i], va, PAGE_SIZE); 4594 } 4595 sg_set_buf(&sg[i], &ic->commit_ids, sizeof(ic->commit_ids)); 4596 4597 skcipher_request_set_crypt(req, sg, sg, 4598 PAGE_SIZE * ic->journal_pages + sizeof(ic->commit_ids), crypt_iv); 4599 init_completion(&comp.comp); 4600 comp.in_flight = (atomic_t)ATOMIC_INIT(1); 4601 if (do_crypt(true, req, &comp)) 4602 wait_for_completion(&comp.comp); 4603 kvfree(sg); 4604 r = dm_integrity_failed(ic); 4605 if (r) { 4606 *error = "Unable to encrypt journal"; 4607 goto bad; 4608 } 4609 DEBUG_bytes(lowmem_page_address(ic->journal_xor[0].page), 64, "xor data"); 4610 4611 crypto_free_skcipher(ic->journal_crypt); 4612 ic->journal_crypt = NULL; 4613 } else { 4614 unsigned int crypt_len = roundup(ivsize, blocksize); 4615 4616 req = skcipher_request_alloc(ic->journal_crypt, GFP_KERNEL); 4617 if (!req) { 4618 *error = "Could not allocate crypt request"; 4619 r = -ENOMEM; 4620 goto bad; 4621 } 4622 4623 crypt_iv = kmalloc(ivsize, GFP_KERNEL); 4624 if (!crypt_iv) { 4625 *error = "Could not allocate iv"; 4626 r = -ENOMEM; 4627 goto bad; 4628 } 4629 4630 crypt_data = kmalloc(crypt_len, GFP_KERNEL); 4631 if (!crypt_data) { 4632 *error = "Unable to allocate crypt data"; 4633 r = -ENOMEM; 4634 goto bad; 4635 } 4636 4637 ic->journal_scatterlist = dm_integrity_alloc_journal_scatterlist(ic, ic->journal); 4638 if (!ic->journal_scatterlist) { 4639 *error = "Unable to allocate sg list"; 4640 r = -ENOMEM; 4641 goto bad; 4642 } 4643 ic->journal_io_scatterlist = dm_integrity_alloc_journal_scatterlist(ic, ic->journal_io); 4644 if (!ic->journal_io_scatterlist) { 4645 *error = "Unable to allocate sg list"; 4646 r = -ENOMEM; 4647 goto bad; 4648 } 4649 ic->sk_requests = kvmalloc_objs(struct skcipher_request *, 4650 ic->journal_sections, 4651 GFP_KERNEL | __GFP_ZERO); 4652 if (!ic->sk_requests) { 4653 *error = "Unable to allocate sk requests"; 4654 r = -ENOMEM; 4655 goto bad; 4656 } 4657 for (i = 0; i < ic->journal_sections; i++) { 4658 struct scatterlist sg; 4659 struct skcipher_request *section_req; 4660 __le32 section_le = cpu_to_le32(i); 4661 4662 memset(crypt_iv, 0x00, ivsize); 4663 memset(crypt_data, 0x00, crypt_len); 4664 memcpy(crypt_data, §ion_le, min_t(size_t, crypt_len, sizeof(section_le))); 4665 4666 sg_init_one(&sg, crypt_data, crypt_len); 4667 skcipher_request_set_crypt(req, &sg, &sg, crypt_len, crypt_iv); 4668 init_completion(&comp.comp); 4669 comp.in_flight = (atomic_t)ATOMIC_INIT(1); 4670 if (do_crypt(true, req, &comp)) 4671 wait_for_completion(&comp.comp); 4672 4673 r = dm_integrity_failed(ic); 4674 if (r) { 4675 *error = "Unable to generate iv"; 4676 goto bad; 4677 } 4678 4679 section_req = skcipher_request_alloc(ic->journal_crypt, GFP_KERNEL); 4680 if (!section_req) { 4681 *error = "Unable to allocate crypt request"; 4682 r = -ENOMEM; 4683 goto bad; 4684 } 4685 section_req->iv = kmalloc_array(ivsize, 2, 4686 GFP_KERNEL); 4687 if (!section_req->iv) { 4688 skcipher_request_free(section_req); 4689 *error = "Unable to allocate iv"; 4690 r = -ENOMEM; 4691 goto bad; 4692 } 4693 memcpy(section_req->iv + ivsize, crypt_data, ivsize); 4694 section_req->cryptlen = (size_t)ic->journal_section_sectors << SECTOR_SHIFT; 4695 ic->sk_requests[i] = section_req; 4696 DEBUG_bytes(crypt_data, ivsize, "iv(%u)", i); 4697 } 4698 } 4699 } 4700 4701 for (i = 0; i < N_COMMIT_IDS; i++) { 4702 unsigned int j; 4703 4704 retest_commit_id: 4705 for (j = 0; j < i; j++) { 4706 if (ic->commit_ids[j] == ic->commit_ids[i]) { 4707 ic->commit_ids[i] = cpu_to_le64(le64_to_cpu(ic->commit_ids[i]) + 1); 4708 goto retest_commit_id; 4709 } 4710 } 4711 DEBUG_print("commit id %u: %016llx\n", i, ic->commit_ids[i]); 4712 } 4713 4714 journal_tree_size = (__u64)ic->journal_entries * sizeof(struct journal_node); 4715 if (journal_tree_size > ULONG_MAX) { 4716 *error = "Journal doesn't fit into memory"; 4717 r = -ENOMEM; 4718 goto bad; 4719 } 4720 ic->journal_tree = kvmalloc(journal_tree_size, GFP_KERNEL); 4721 if (!ic->journal_tree) { 4722 *error = "Could not allocate memory for journal tree"; 4723 r = -ENOMEM; 4724 goto bad; 4725 } 4726 bad: 4727 kfree(crypt_data); 4728 kfree(crypt_iv); 4729 skcipher_request_free(req); 4730 4731 return r; 4732 } 4733 4734 /* 4735 * Construct a integrity mapping 4736 * 4737 * Arguments: 4738 * device 4739 * offset from the start of the device 4740 * tag size 4741 * D - direct writes, J - journal writes, B - bitmap mode, R - recovery mode 4742 * number of optional arguments 4743 * optional arguments: 4744 * journal_sectors 4745 * interleave_sectors 4746 * buffer_sectors 4747 * journal_watermark 4748 * commit_time 4749 * meta_device 4750 * block_size 4751 * sectors_per_bit 4752 * bitmap_flush_interval 4753 * internal_hash 4754 * journal_crypt 4755 * journal_mac 4756 * recalculate 4757 */ 4758 static int dm_integrity_ctr(struct dm_target *ti, unsigned int argc, char **argv) 4759 { 4760 struct dm_integrity_c *ic; 4761 char dummy; 4762 int r; 4763 unsigned int extra_args; 4764 struct dm_arg_set as; 4765 static const struct dm_arg _args[] = { 4766 {0, 18, "Invalid number of feature args"}, 4767 }; 4768 unsigned int journal_sectors, interleave_sectors, buffer_sectors, journal_watermark, sync_msec; 4769 bool should_write_sb; 4770 __u64 threshold; 4771 unsigned long long start; 4772 __s8 log2_sectors_per_bitmap_bit = -1; 4773 __s8 log2_blocks_per_bitmap_bit; 4774 __u64 bits_in_journal; 4775 __u64 n_bitmap_bits; 4776 4777 #define DIRECT_ARGUMENTS 4 4778 4779 if (argc <= DIRECT_ARGUMENTS) { 4780 ti->error = "Invalid argument count"; 4781 return -EINVAL; 4782 } 4783 4784 ic = kzalloc_obj(struct dm_integrity_c); 4785 if (!ic) { 4786 ti->error = "Cannot allocate integrity context"; 4787 return -ENOMEM; 4788 } 4789 ti->private = ic; 4790 ti->per_io_data_size = sizeof(struct dm_integrity_io); 4791 ic->ti = ti; 4792 4793 ic->in_progress = RB_ROOT; 4794 INIT_LIST_HEAD(&ic->wait_list); 4795 init_waitqueue_head(&ic->endio_wait); 4796 bio_list_init(&ic->flush_bio_list); 4797 init_waitqueue_head(&ic->copy_to_journal_wait); 4798 init_completion(&ic->crypto_backoff); 4799 atomic64_set(&ic->number_of_mismatches, 0); 4800 ic->bitmap_flush_interval = BITMAP_FLUSH_INTERVAL; 4801 4802 r = dm_get_device(ti, argv[0], dm_table_get_mode(ti->table), &ic->dev); 4803 if (r) { 4804 ti->error = "Device lookup failed"; 4805 goto bad; 4806 } 4807 4808 if (sscanf(argv[1], "%llu%c", &start, &dummy) != 1 || start != (sector_t)start) { 4809 ti->error = "Invalid starting offset"; 4810 r = -EINVAL; 4811 goto bad; 4812 } 4813 ic->start = start; 4814 4815 if (strcmp(argv[2], "-")) { 4816 if (sscanf(argv[2], "%u%c", &ic->tag_size, &dummy) != 1 || !ic->tag_size) { 4817 ti->error = "Invalid tag size"; 4818 r = -EINVAL; 4819 goto bad; 4820 } 4821 } 4822 4823 if (!strcmp(argv[3], "J") || !strcmp(argv[3], "B") || 4824 !strcmp(argv[3], "D") || !strcmp(argv[3], "R") || 4825 !strcmp(argv[3], "I")) { 4826 ic->mode = argv[3][0]; 4827 } else { 4828 ti->error = "Invalid mode (expecting J, B, D, R, I)"; 4829 r = -EINVAL; 4830 goto bad; 4831 } 4832 4833 journal_sectors = 0; 4834 interleave_sectors = DEFAULT_INTERLEAVE_SECTORS; 4835 buffer_sectors = DEFAULT_BUFFER_SECTORS; 4836 journal_watermark = DEFAULT_JOURNAL_WATERMARK; 4837 sync_msec = DEFAULT_SYNC_MSEC; 4838 ic->sectors_per_block = 1; 4839 4840 as.argc = argc - DIRECT_ARGUMENTS; 4841 as.argv = argv + DIRECT_ARGUMENTS; 4842 r = dm_read_arg_group(_args, &as, &extra_args, &ti->error); 4843 if (r) 4844 goto bad; 4845 4846 while (extra_args--) { 4847 const char *opt_string; 4848 unsigned int val; 4849 unsigned long long llval; 4850 4851 opt_string = dm_shift_arg(&as); 4852 if (!opt_string) { 4853 r = -EINVAL; 4854 ti->error = "Not enough feature arguments"; 4855 goto bad; 4856 } 4857 if (sscanf(opt_string, "journal_sectors:%u%c", &val, &dummy) == 1) 4858 journal_sectors = val ? val : 1; 4859 else if (sscanf(opt_string, "interleave_sectors:%u%c", &val, &dummy) == 1) 4860 interleave_sectors = val; 4861 else if (sscanf(opt_string, "buffer_sectors:%u%c", &val, &dummy) == 1) 4862 buffer_sectors = val; 4863 else if (sscanf(opt_string, "journal_watermark:%u%c", &val, &dummy) == 1 && val <= 100) 4864 journal_watermark = val; 4865 else if (sscanf(opt_string, "commit_time:%u%c", &val, &dummy) == 1) 4866 sync_msec = val; 4867 else if (!strncmp(opt_string, "meta_device:", strlen("meta_device:"))) { 4868 if (ic->meta_dev) { 4869 dm_put_device(ti, ic->meta_dev); 4870 ic->meta_dev = NULL; 4871 } 4872 r = dm_get_device(ti, strchr(opt_string, ':') + 1, 4873 dm_table_get_mode(ti->table), &ic->meta_dev); 4874 if (r) { 4875 ti->error = "Device lookup failed"; 4876 goto bad; 4877 } 4878 } else if (sscanf(opt_string, "block_size:%u%c", &val, &dummy) == 1) { 4879 if (val < 1 << SECTOR_SHIFT || 4880 val > MAX_SECTORS_PER_BLOCK << SECTOR_SHIFT || 4881 (val & (val - 1))) { 4882 r = -EINVAL; 4883 ti->error = "Invalid block_size argument"; 4884 goto bad; 4885 } 4886 ic->sectors_per_block = val >> SECTOR_SHIFT; 4887 } else if (sscanf(opt_string, "sectors_per_bit:%llu%c", &llval, &dummy) == 1) { 4888 log2_sectors_per_bitmap_bit = !llval ? 0 : __ilog2_u64(llval); 4889 } else if (sscanf(opt_string, "bitmap_flush_interval:%u%c", &val, &dummy) == 1) { 4890 if ((uint64_t)val >= (uint64_t)UINT_MAX * 1000 / HZ) { 4891 r = -EINVAL; 4892 ti->error = "Invalid bitmap_flush_interval argument"; 4893 goto bad; 4894 } 4895 ic->bitmap_flush_interval = msecs_to_jiffies(val); 4896 } else if (!strncmp(opt_string, "internal_hash:", strlen("internal_hash:"))) { 4897 r = get_alg_and_key(opt_string, &ic->internal_hash_alg, &ti->error, 4898 "Invalid internal_hash argument"); 4899 if (r) 4900 goto bad; 4901 } else if (!strncmp(opt_string, "journal_crypt:", strlen("journal_crypt:"))) { 4902 r = get_alg_and_key(opt_string, &ic->journal_crypt_alg, &ti->error, 4903 "Invalid journal_crypt argument"); 4904 if (r) 4905 goto bad; 4906 } else if (!strncmp(opt_string, "journal_mac:", strlen("journal_mac:"))) { 4907 r = get_alg_and_key(opt_string, &ic->journal_mac_alg, &ti->error, 4908 "Invalid journal_mac argument"); 4909 if (r) 4910 goto bad; 4911 } else if (!strcmp(opt_string, "recalculate")) { 4912 ic->recalculate_flag = true; 4913 } else if (!strcmp(opt_string, "reset_recalculate")) { 4914 ic->recalculate_flag = true; 4915 ic->reset_recalculate_flag = true; 4916 } else if (!strcmp(opt_string, "allow_discards")) { 4917 ic->discard = true; 4918 } else if (!strcmp(opt_string, "allow_discards_keyed")) { 4919 ic->discard = true; 4920 ic->discard_keyed = true; 4921 } else if (!strcmp(opt_string, "fix_padding")) { 4922 ic->fix_padding = true; 4923 } else if (!strcmp(opt_string, "fix_hmac")) { 4924 ic->fix_hmac = true; 4925 } else if (!strcmp(opt_string, "legacy_recalculate")) { 4926 ic->legacy_recalculate = true; 4927 } else { 4928 r = -EINVAL; 4929 ti->error = "Invalid argument"; 4930 goto bad; 4931 } 4932 } 4933 4934 ic->data_device_sectors = bdev_nr_sectors(ic->dev->bdev); 4935 if (!ic->meta_dev) 4936 ic->meta_device_sectors = ic->data_device_sectors; 4937 else 4938 ic->meta_device_sectors = bdev_nr_sectors(ic->meta_dev->bdev); 4939 4940 if (!journal_sectors) { 4941 journal_sectors = min((sector_t)DEFAULT_MAX_JOURNAL_SECTORS, 4942 ic->data_device_sectors >> DEFAULT_JOURNAL_SIZE_FACTOR); 4943 } 4944 4945 if (!buffer_sectors) 4946 buffer_sectors = 1; 4947 ic->log2_buffer_sectors = min((int)__fls(buffer_sectors), 31 - SECTOR_SHIFT); 4948 4949 r = get_mac(&ic->internal_shash, &ic->internal_ahash, &ic->internal_hash_alg, &ti->error, 4950 "Invalid internal hash", "Error setting internal hash key"); 4951 if (r) 4952 goto bad; 4953 if (ic->internal_shash) { 4954 ic->internal_hash = true; 4955 ic->internal_hash_digestsize = crypto_shash_digestsize(ic->internal_shash); 4956 } 4957 if (ic->internal_ahash) { 4958 ic->internal_hash = true; 4959 ic->internal_hash_digestsize = crypto_ahash_digestsize(ic->internal_ahash); 4960 r = mempool_init_kmalloc_pool(&ic->ahash_req_pool, AHASH_MEMPOOL, 4961 sizeof(struct ahash_request) + crypto_ahash_reqsize(ic->internal_ahash)); 4962 if (r) { 4963 ti->error = "Cannot allocate mempool"; 4964 goto bad; 4965 } 4966 } 4967 4968 r = get_mac(&ic->journal_mac, NULL, &ic->journal_mac_alg, &ti->error, 4969 "Invalid journal mac", "Error setting journal mac key"); 4970 if (r) 4971 goto bad; 4972 4973 if (!ic->tag_size) { 4974 if (!ic->internal_hash) { 4975 ti->error = "Unknown tag size"; 4976 r = -EINVAL; 4977 goto bad; 4978 } 4979 ic->tag_size = ic->internal_hash_digestsize; 4980 } 4981 if (ic->tag_size > MAX_TAG_SIZE) { 4982 ti->error = "Too big tag size"; 4983 r = -EINVAL; 4984 goto bad; 4985 } 4986 if (!(ic->tag_size & (ic->tag_size - 1))) 4987 ic->log2_tag_size = __ffs(ic->tag_size); 4988 else 4989 ic->log2_tag_size = -1; 4990 4991 if (ic->mode == 'I') { 4992 struct blk_integrity *bi; 4993 if (ic->meta_dev) { 4994 r = -EINVAL; 4995 ti->error = "Metadata device not supported in inline mode"; 4996 goto bad; 4997 } 4998 if (!ic->internal_hash_alg.alg_string) { 4999 r = -EINVAL; 5000 ti->error = "Internal hash not set in inline mode"; 5001 goto bad; 5002 } 5003 if (ic->journal_crypt_alg.alg_string || ic->journal_mac_alg.alg_string) { 5004 r = -EINVAL; 5005 ti->error = "Journal crypt not supported in inline mode"; 5006 goto bad; 5007 } 5008 if (ic->discard) { 5009 r = -EINVAL; 5010 ti->error = "Discards not supported in inline mode"; 5011 goto bad; 5012 } 5013 bi = blk_get_integrity(ic->dev->bdev->bd_disk); 5014 if (!bi || bi->csum_type != BLK_INTEGRITY_CSUM_NONE) { 5015 r = -EINVAL; 5016 ti->error = "Integrity profile not supported"; 5017 goto bad; 5018 } 5019 /*printk("tag_size: %u, metadata_size: %u\n", bi->tag_size, bi->metadata_size);*/ 5020 if (bi->metadata_size < ic->tag_size) { 5021 r = -EINVAL; 5022 ti->error = "The integrity profile is smaller than tag size"; 5023 goto bad; 5024 } 5025 if ((unsigned long)bi->metadata_size > PAGE_SIZE / 2) { 5026 r = -EINVAL; 5027 ti->error = "Too big tuple size"; 5028 goto bad; 5029 } 5030 ic->tuple_size = bi->metadata_size; 5031 if (1 << bi->interval_exp != ic->sectors_per_block << SECTOR_SHIFT) { 5032 r = -EINVAL; 5033 ti->error = "Integrity profile sector size mismatch"; 5034 goto bad; 5035 } 5036 } 5037 5038 if (ic->mode == 'B' && !ic->internal_hash) { 5039 r = -EINVAL; 5040 ti->error = "Bitmap mode can be only used with internal hash"; 5041 goto bad; 5042 } 5043 5044 if (ic->discard && !ic->internal_hash) { 5045 r = -EINVAL; 5046 ti->error = "Discard can be only used with internal hash"; 5047 goto bad; 5048 } 5049 if (ic->discard_keyed && !ic->internal_hash_alg.key) { 5050 r = -EINVAL; 5051 ti->error = "Keyed discard can only be used with keyed internal hash"; 5052 goto bad; 5053 } 5054 5055 ic->autocommit_jiffies = msecs_to_jiffies(sync_msec); 5056 ic->autocommit_msec = sync_msec; 5057 timer_setup(&ic->autocommit_timer, autocommit_fn, 0); 5058 5059 ic->io = dm_io_client_create(); 5060 if (IS_ERR(ic->io)) { 5061 r = PTR_ERR(ic->io); 5062 ic->io = NULL; 5063 ti->error = "Cannot allocate dm io"; 5064 goto bad; 5065 } 5066 5067 r = mempool_init_slab_pool(&ic->journal_io_mempool, JOURNAL_IO_MEMPOOL, journal_io_cache); 5068 if (r) { 5069 ti->error = "Cannot allocate mempool"; 5070 goto bad; 5071 } 5072 5073 r = mempool_init_page_pool(&ic->recheck_pool, 1, ic->mode == 'I' ? 1 : 0); 5074 if (r) { 5075 ti->error = "Cannot allocate mempool"; 5076 goto bad; 5077 } 5078 5079 if (ic->mode == 'I') { 5080 r = bioset_init(&ic->recheck_bios, RECHECK_POOL_SIZE, 0, BIOSET_NEED_BVECS); 5081 if (r) { 5082 ti->error = "Cannot allocate bio set"; 5083 goto bad; 5084 } 5085 r = bioset_init(&ic->recalc_bios, 1, 0, BIOSET_NEED_BVECS); 5086 if (r) { 5087 ti->error = "Cannot allocate bio set"; 5088 goto bad; 5089 } 5090 } 5091 5092 ic->metadata_wq = alloc_workqueue("dm-integrity-metadata", 5093 WQ_MEM_RECLAIM | WQ_PERCPU, 5094 METADATA_WORKQUEUE_MAX_ACTIVE); 5095 if (!ic->metadata_wq) { 5096 ti->error = "Cannot allocate workqueue"; 5097 r = -ENOMEM; 5098 goto bad; 5099 } 5100 5101 /* 5102 * If this workqueue weren't ordered, it would cause bio reordering 5103 * and reduced performance. 5104 */ 5105 ic->wait_wq = alloc_ordered_workqueue("dm-integrity-wait", WQ_MEM_RECLAIM); 5106 if (!ic->wait_wq) { 5107 ti->error = "Cannot allocate workqueue"; 5108 r = -ENOMEM; 5109 goto bad; 5110 } 5111 5112 ic->offload_wq = alloc_workqueue("dm-integrity-offload", 5113 WQ_MEM_RECLAIM | WQ_PERCPU, 5114 METADATA_WORKQUEUE_MAX_ACTIVE); 5115 if (!ic->offload_wq) { 5116 ti->error = "Cannot allocate workqueue"; 5117 r = -ENOMEM; 5118 goto bad; 5119 } 5120 5121 ic->commit_wq = alloc_workqueue("dm-integrity-commit", 5122 WQ_MEM_RECLAIM | WQ_PERCPU, 1); 5123 if (!ic->commit_wq) { 5124 ti->error = "Cannot allocate workqueue"; 5125 r = -ENOMEM; 5126 goto bad; 5127 } 5128 INIT_WORK(&ic->commit_work, integrity_commit); 5129 5130 if (ic->mode == 'J' || ic->mode == 'B') { 5131 ic->writer_wq = alloc_workqueue("dm-integrity-writer", 5132 WQ_MEM_RECLAIM | WQ_PERCPU, 1); 5133 if (!ic->writer_wq) { 5134 ti->error = "Cannot allocate workqueue"; 5135 r = -ENOMEM; 5136 goto bad; 5137 } 5138 INIT_WORK(&ic->writer_work, integrity_writer); 5139 } 5140 5141 ic->sb = alloc_pages_exact(SB_SECTORS << SECTOR_SHIFT, GFP_KERNEL); 5142 if (!ic->sb) { 5143 r = -ENOMEM; 5144 ti->error = "Cannot allocate superblock area"; 5145 goto bad; 5146 } 5147 5148 r = sync_rw_sb(ic, REQ_OP_READ); 5149 if (r) { 5150 ti->error = "Error reading superblock"; 5151 goto bad; 5152 } 5153 should_write_sb = false; 5154 if (memcmp(ic->sb->magic, SB_MAGIC, 8)) { 5155 if (ic->mode != 'R') { 5156 if (memchr_inv(ic->sb, 0, SB_SECTORS << SECTOR_SHIFT)) { 5157 r = -EINVAL; 5158 ti->error = "The device is not initialized"; 5159 goto bad; 5160 } 5161 } 5162 5163 r = initialize_superblock(ic, journal_sectors, interleave_sectors); 5164 if (r) { 5165 ti->error = "Could not initialize superblock"; 5166 goto bad; 5167 } 5168 if (ic->mode != 'R') 5169 should_write_sb = true; 5170 } 5171 5172 if (!ic->sb->version || ic->sb->version > SB_VERSION_7) { 5173 r = -EINVAL; 5174 ti->error = "Unknown version"; 5175 goto bad; 5176 } 5177 if (!!(ic->sb->flags & cpu_to_le32(SB_FLAG_INLINE)) != (ic->mode == 'I')) { 5178 r = -EINVAL; 5179 ti->error = "Inline flag mismatch"; 5180 goto bad; 5181 } 5182 if (le16_to_cpu(ic->sb->integrity_tag_size) != ic->tag_size) { 5183 r = -EINVAL; 5184 ti->error = "Tag size doesn't match the information in superblock"; 5185 goto bad; 5186 } 5187 if (ic->sb->log2_sectors_per_block != __ffs(ic->sectors_per_block)) { 5188 r = -EINVAL; 5189 ti->error = "Block size doesn't match the information in superblock"; 5190 goto bad; 5191 } 5192 if (ic->mode != 'I') { 5193 if (!le32_to_cpu(ic->sb->journal_sections)) { 5194 r = -EINVAL; 5195 ti->error = "Corrupted superblock, journal_sections is 0"; 5196 goto bad; 5197 } 5198 } else { 5199 if (le32_to_cpu(ic->sb->journal_sections)) { 5200 r = -EINVAL; 5201 ti->error = "Corrupted superblock, journal_sections is not 0"; 5202 goto bad; 5203 } 5204 } 5205 /* make sure that ti->max_io_len doesn't overflow */ 5206 if (!ic->meta_dev) { 5207 if (ic->sb->log2_interleave_sectors < MIN_LOG2_INTERLEAVE_SECTORS || 5208 ic->sb->log2_interleave_sectors > MAX_LOG2_INTERLEAVE_SECTORS) { 5209 r = -EINVAL; 5210 ti->error = "Invalid interleave_sectors in the superblock"; 5211 goto bad; 5212 } 5213 } else { 5214 if (ic->sb->log2_interleave_sectors) { 5215 r = -EINVAL; 5216 ti->error = "Invalid interleave_sectors in the superblock"; 5217 goto bad; 5218 } 5219 } 5220 if (!ic->discard_keyed && (ic->sb->flags & cpu_to_le32(SB_FLAG_DISCARD_KEYED))) { 5221 r = -EINVAL; 5222 ti->error = "Keyed discard cannot be disabled once enabled"; 5223 goto bad; 5224 } 5225 if (!!(ic->sb->flags & cpu_to_le32(SB_FLAG_HAVE_JOURNAL_MAC)) != !!ic->journal_mac_alg.alg_string) { 5226 r = -EINVAL; 5227 ti->error = "Journal mac mismatch"; 5228 goto bad; 5229 } 5230 if (ic->fix_hmac && !(ic->sb->flags & cpu_to_le32(SB_FLAG_FIXED_HMAC)) && ic->journal_mac_alg.key_string) { 5231 /* 5232 * If this happens, it may be either because someone tampered 5233 * with the device or it may be due to a bug in the 5234 * integritysetup tool. 5235 * 5236 * In the latter case, upgrade to integritysetup 2.8.7 and use 5237 * the argument --integrity-legacy-hmac when using the open 5238 * command. 5239 */ 5240 r = -EINVAL; 5241 ti->error = "fix_hmac is on the command line but not in the superblock"; 5242 goto bad; 5243 } 5244 5245 get_provided_data_sectors(ic); 5246 if (!ic->provided_data_sectors) { 5247 r = -EINVAL; 5248 ti->error = "The device is too small"; 5249 goto bad; 5250 } 5251 5252 try_smaller_buffer: 5253 r = calculate_device_limits(ic); 5254 if (r) { 5255 if (ic->meta_dev) { 5256 if (ic->log2_buffer_sectors > 3) { 5257 ic->log2_buffer_sectors--; 5258 goto try_smaller_buffer; 5259 } 5260 } 5261 ti->error = "The device is too small"; 5262 goto bad; 5263 } 5264 5265 if (log2_sectors_per_bitmap_bit < 0) 5266 log2_sectors_per_bitmap_bit = __fls(DEFAULT_SECTORS_PER_BITMAP_BIT); 5267 if (log2_sectors_per_bitmap_bit < ic->sb->log2_sectors_per_block) 5268 log2_sectors_per_bitmap_bit = ic->sb->log2_sectors_per_block; 5269 5270 bits_in_journal = ((__u64)ic->journal_section_sectors * ic->journal_sections) << (SECTOR_SHIFT + 3); 5271 if (bits_in_journal > UINT_MAX) 5272 bits_in_journal = UINT_MAX; 5273 if (bits_in_journal) 5274 while (bits_in_journal < (ic->provided_data_sectors + ((sector_t)1 << log2_sectors_per_bitmap_bit) - 1) >> log2_sectors_per_bitmap_bit) 5275 log2_sectors_per_bitmap_bit++; 5276 5277 log2_blocks_per_bitmap_bit = log2_sectors_per_bitmap_bit - ic->sb->log2_sectors_per_block; 5278 ic->log2_blocks_per_bitmap_bit = log2_blocks_per_bitmap_bit; 5279 if (should_write_sb) 5280 ic->sb->log2_blocks_per_bitmap_bit = log2_blocks_per_bitmap_bit; 5281 5282 n_bitmap_bits = ((ic->provided_data_sectors >> ic->sb->log2_sectors_per_block) 5283 + (((sector_t)1 << log2_blocks_per_bitmap_bit) - 1)) >> log2_blocks_per_bitmap_bit; 5284 ic->n_bitmap_blocks = DIV_ROUND_UP(n_bitmap_bits, BITMAP_BLOCK_SIZE * 8); 5285 5286 if (!ic->meta_dev) 5287 ic->log2_buffer_sectors = min(ic->log2_buffer_sectors, (__u8)__ffs(ic->metadata_run)); 5288 5289 if (ti->len > ic->provided_data_sectors) { 5290 r = -EINVAL; 5291 ti->error = "Not enough provided sectors for requested mapping size"; 5292 goto bad; 5293 } 5294 5295 threshold = (__u64)ic->journal_entries * (100 - journal_watermark); 5296 threshold += 50; 5297 do_div(threshold, 100); 5298 ic->free_sectors_threshold = threshold; 5299 5300 DEBUG_print("initialized:\n"); 5301 DEBUG_print(" integrity_tag_size %u\n", le16_to_cpu(ic->sb->integrity_tag_size)); 5302 DEBUG_print(" journal_entry_size %u\n", ic->journal_entry_size); 5303 DEBUG_print(" journal_entries_per_sector %u\n", ic->journal_entries_per_sector); 5304 DEBUG_print(" journal_section_entries %u\n", ic->journal_section_entries); 5305 DEBUG_print(" journal_section_sectors %u\n", ic->journal_section_sectors); 5306 DEBUG_print(" journal_sections %u\n", (unsigned int)le32_to_cpu(ic->sb->journal_sections)); 5307 DEBUG_print(" journal_entries %u\n", ic->journal_entries); 5308 DEBUG_print(" log2_interleave_sectors %d\n", ic->sb->log2_interleave_sectors); 5309 DEBUG_print(" data_device_sectors 0x%llx\n", bdev_nr_sectors(ic->dev->bdev)); 5310 DEBUG_print(" initial_sectors 0x%x\n", ic->initial_sectors); 5311 DEBUG_print(" metadata_run 0x%x\n", ic->metadata_run); 5312 DEBUG_print(" log2_metadata_run %d\n", ic->log2_metadata_run); 5313 DEBUG_print(" provided_data_sectors 0x%llx (%llu)\n", ic->provided_data_sectors, ic->provided_data_sectors); 5314 DEBUG_print(" log2_buffer_sectors %u\n", ic->log2_buffer_sectors); 5315 DEBUG_print(" bits_in_journal %llu\n", bits_in_journal); 5316 5317 if (ic->recalculate_flag && !(ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING))) { 5318 ic->sb->flags |= cpu_to_le32(SB_FLAG_RECALCULATING); 5319 ic->sb->recalc_sector = cpu_to_le64(0); 5320 } 5321 5322 if (ic->internal_hash) { 5323 ic->recalc_wq = alloc_workqueue("dm-integrity-recalc", 5324 WQ_MEM_RECLAIM | WQ_PERCPU, 1); 5325 if (!ic->recalc_wq) { 5326 ti->error = "Cannot allocate workqueue"; 5327 r = -ENOMEM; 5328 goto bad; 5329 } 5330 INIT_WORK(&ic->recalc_work, ic->mode == 'I' ? integrity_recalc_inline : integrity_recalc); 5331 } else { 5332 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING)) { 5333 ti->error = "Recalculate can only be specified with internal_hash"; 5334 r = -EINVAL; 5335 goto bad; 5336 } 5337 } 5338 5339 if (ic->sb->flags & cpu_to_le32(SB_FLAG_RECALCULATING) && 5340 le64_to_cpu(ic->sb->recalc_sector) < ic->provided_data_sectors && 5341 dm_integrity_disable_recalculate(ic)) { 5342 ti->error = "Recalculating with HMAC is disabled for security reasons - if you really need it, use the argument \"legacy_recalculate\""; 5343 r = -EOPNOTSUPP; 5344 goto bad; 5345 } 5346 5347 ic->bufio = dm_bufio_client_create(ic->meta_dev ? ic->meta_dev->bdev : ic->dev->bdev, 5348 1U << (SECTOR_SHIFT + ic->log2_buffer_sectors), 1, 0, NULL, NULL, 0); 5349 if (IS_ERR(ic->bufio)) { 5350 r = PTR_ERR(ic->bufio); 5351 ti->error = "Cannot initialize dm-bufio"; 5352 ic->bufio = NULL; 5353 goto bad; 5354 } 5355 dm_bufio_set_sector_offset(ic->bufio, ic->start + ic->initial_sectors); 5356 5357 if (ic->mode != 'R' && ic->mode != 'I') { 5358 r = create_journal(ic, &ti->error); 5359 if (r) 5360 goto bad; 5361 5362 } 5363 5364 if (ic->mode == 'B') { 5365 unsigned int i; 5366 unsigned int n_bitmap_pages = DIV_ROUND_UP(ic->n_bitmap_blocks, PAGE_SIZE / BITMAP_BLOCK_SIZE); 5367 5368 ic->recalc_bitmap = dm_integrity_alloc_page_list(n_bitmap_pages); 5369 if (!ic->recalc_bitmap) { 5370 ti->error = "Could not allocate memory for bitmap"; 5371 r = -ENOMEM; 5372 goto bad; 5373 } 5374 ic->may_write_bitmap = dm_integrity_alloc_page_list(n_bitmap_pages); 5375 if (!ic->may_write_bitmap) { 5376 ti->error = "Could not allocate memory for bitmap"; 5377 r = -ENOMEM; 5378 goto bad; 5379 } 5380 ic->bbs = kvmalloc_objs(struct bitmap_block_status, 5381 ic->n_bitmap_blocks); 5382 if (!ic->bbs) { 5383 ti->error = "Could not allocate memory for bitmap"; 5384 r = -ENOMEM; 5385 goto bad; 5386 } 5387 INIT_DELAYED_WORK(&ic->bitmap_flush_work, bitmap_flush_work); 5388 for (i = 0; i < ic->n_bitmap_blocks; i++) { 5389 struct bitmap_block_status *bbs = &ic->bbs[i]; 5390 unsigned int sector, pl_index, pl_offset; 5391 5392 INIT_WORK(&bbs->work, bitmap_block_work); 5393 bbs->ic = ic; 5394 bbs->idx = i; 5395 bio_list_init(&bbs->bio_queue); 5396 spin_lock_init(&bbs->bio_queue_lock); 5397 5398 sector = i * (BITMAP_BLOCK_SIZE >> SECTOR_SHIFT); 5399 pl_index = sector >> (PAGE_SHIFT - SECTOR_SHIFT); 5400 pl_offset = (sector << SECTOR_SHIFT) & (PAGE_SIZE - 1); 5401 5402 bbs->bitmap = lowmem_page_address(ic->journal[pl_index].page) + pl_offset; 5403 } 5404 } 5405 5406 if (should_write_sb) { 5407 init_journal(ic, 0, ic->journal_sections, 0); 5408 r = dm_integrity_failed(ic); 5409 if (unlikely(r)) { 5410 ti->error = "Error initializing journal"; 5411 goto bad; 5412 } 5413 r = sync_rw_sb(ic, REQ_OP_WRITE | REQ_FUA); 5414 if (r) { 5415 ti->error = "Error initializing superblock"; 5416 goto bad; 5417 } 5418 ic->just_formatted = true; 5419 } 5420 5421 if (!ic->meta_dev && ic->mode != 'I') { 5422 r = dm_set_target_max_io_len(ti, 1U << ic->sb->log2_interleave_sectors); 5423 if (r) 5424 goto bad; 5425 } 5426 if (ic->mode == 'B') { 5427 unsigned int max_io_len; 5428 5429 max_io_len = ((sector_t)ic->sectors_per_block << ic->log2_blocks_per_bitmap_bit) * (BITMAP_BLOCK_SIZE * 8); 5430 if (!max_io_len) 5431 max_io_len = 1U << 31; 5432 DEBUG_print("max_io_len: old %u, new %u\n", ti->max_io_len, max_io_len); 5433 if (!ti->max_io_len || ti->max_io_len > max_io_len) { 5434 r = dm_set_target_max_io_len(ti, max_io_len); 5435 if (r) 5436 goto bad; 5437 } 5438 } 5439 5440 ti->num_flush_bios = 1; 5441 ti->flush_supported = true; 5442 if (ic->discard) 5443 ti->num_discard_bios = 1; 5444 5445 if (ic->mode == 'I') 5446 ti->mempool_needs_integrity = true; 5447 5448 dm_audit_log_ctr(DM_MSG_PREFIX, ti, 1); 5449 return 0; 5450 5451 bad: 5452 dm_audit_log_ctr(DM_MSG_PREFIX, ti, 0); 5453 dm_integrity_dtr(ti); 5454 return r; 5455 } 5456 5457 static void dm_integrity_dtr(struct dm_target *ti) 5458 { 5459 struct dm_integrity_c *ic = ti->private; 5460 5461 BUG_ON(!RB_EMPTY_ROOT(&ic->in_progress)); 5462 BUG_ON(!list_empty(&ic->wait_list)); 5463 5464 if (ic->mode == 'B' && ic->bitmap_flush_work.work.func) 5465 cancel_delayed_work_sync(&ic->bitmap_flush_work); 5466 if (ic->metadata_wq) 5467 destroy_workqueue(ic->metadata_wq); 5468 if (ic->wait_wq) 5469 destroy_workqueue(ic->wait_wq); 5470 if (ic->offload_wq) 5471 destroy_workqueue(ic->offload_wq); 5472 if (ic->commit_wq) 5473 destroy_workqueue(ic->commit_wq); 5474 if (ic->writer_wq) 5475 destroy_workqueue(ic->writer_wq); 5476 if (ic->recalc_wq) 5477 destroy_workqueue(ic->recalc_wq); 5478 kvfree(ic->bbs); 5479 if (ic->bufio) 5480 dm_bufio_client_destroy(ic->bufio); 5481 mempool_free(ic->journal_ahash_req, &ic->ahash_req_pool); 5482 mempool_exit(&ic->ahash_req_pool); 5483 bioset_exit(&ic->recalc_bios); 5484 bioset_exit(&ic->recheck_bios); 5485 mempool_exit(&ic->recheck_pool); 5486 mempool_exit(&ic->journal_io_mempool); 5487 if (ic->io) 5488 dm_io_client_destroy(ic->io); 5489 if (ic->dev) 5490 dm_put_device(ti, ic->dev); 5491 if (ic->meta_dev) 5492 dm_put_device(ti, ic->meta_dev); 5493 dm_integrity_free_page_list(ic->journal); 5494 dm_integrity_free_page_list(ic->journal_io); 5495 dm_integrity_free_page_list(ic->journal_xor); 5496 dm_integrity_free_page_list(ic->recalc_bitmap); 5497 dm_integrity_free_page_list(ic->may_write_bitmap); 5498 if (ic->journal_scatterlist) 5499 dm_integrity_free_journal_scatterlist(ic, ic->journal_scatterlist); 5500 if (ic->journal_io_scatterlist) 5501 dm_integrity_free_journal_scatterlist(ic, ic->journal_io_scatterlist); 5502 if (ic->sk_requests) { 5503 unsigned int i; 5504 5505 for (i = 0; i < ic->journal_sections; i++) { 5506 struct skcipher_request *req; 5507 5508 req = ic->sk_requests[i]; 5509 if (req) { 5510 kfree_sensitive(req->iv); 5511 skcipher_request_free(req); 5512 } 5513 } 5514 kvfree(ic->sk_requests); 5515 } 5516 kvfree(ic->journal_tree); 5517 if (ic->sb) 5518 free_pages_exact(ic->sb, SB_SECTORS << SECTOR_SHIFT); 5519 5520 if (ic->internal_shash) 5521 crypto_free_shash(ic->internal_shash); 5522 if (ic->internal_ahash) 5523 crypto_free_ahash(ic->internal_ahash); 5524 free_alg(&ic->internal_hash_alg); 5525 5526 if (ic->journal_crypt) 5527 crypto_free_skcipher(ic->journal_crypt); 5528 free_alg(&ic->journal_crypt_alg); 5529 5530 if (ic->journal_mac) 5531 crypto_free_shash(ic->journal_mac); 5532 free_alg(&ic->journal_mac_alg); 5533 5534 kfree(ic); 5535 dm_audit_log_dtr(DM_MSG_PREFIX, ti, 1); 5536 } 5537 5538 static struct target_type integrity_target = { 5539 .name = "integrity", 5540 .version = {1, 15, 0}, 5541 .module = THIS_MODULE, 5542 .features = DM_TARGET_SINGLETON | DM_TARGET_INTEGRITY, 5543 .ctr = dm_integrity_ctr, 5544 .dtr = dm_integrity_dtr, 5545 .map = dm_integrity_map, 5546 .end_io = dm_integrity_end_io, 5547 .postsuspend = dm_integrity_postsuspend, 5548 .resume = dm_integrity_resume, 5549 .status = dm_integrity_status, 5550 .iterate_devices = dm_integrity_iterate_devices, 5551 .io_hints = dm_integrity_io_hints, 5552 }; 5553 5554 static int __init dm_integrity_init(void) 5555 { 5556 int r; 5557 5558 journal_io_cache = kmem_cache_create("integrity_journal_io", 5559 sizeof(struct journal_io), 0, 0, NULL); 5560 if (!journal_io_cache) { 5561 DMERR("can't allocate journal io cache"); 5562 return -ENOMEM; 5563 } 5564 5565 r = dm_register_target(&integrity_target); 5566 if (r < 0) { 5567 kmem_cache_destroy(journal_io_cache); 5568 return r; 5569 } 5570 5571 return 0; 5572 } 5573 5574 static void __exit dm_integrity_exit(void) 5575 { 5576 dm_unregister_target(&integrity_target); 5577 kmem_cache_destroy(journal_io_cache); 5578 } 5579 5580 module_init(dm_integrity_init); 5581 module_exit(dm_integrity_exit); 5582 5583 MODULE_AUTHOR("Milan Broz"); 5584 MODULE_AUTHOR("Mikulas Patocka"); 5585 MODULE_DESCRIPTION(DM_NAME " target for integrity tags extension"); 5586 MODULE_LICENSE("GPL"); 5587