1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Copyright (C) 2015 Google, Inc. 4 * 5 * Author: Sami Tolvanen <samitolvanen@google.com> 6 */ 7 8 #include "dm-verity-fec.h" 9 #include <linux/math64.h> 10 11 #define DM_MSG_PREFIX "verity-fec" 12 13 /* 14 * If error correction has been configured, returns true. 15 */ 16 bool verity_fec_is_enabled(struct dm_verity *v) 17 { 18 return v->fec && v->fec->dev; 19 } 20 21 /* 22 * Return a pointer to dm_verity_fec_io after dm_verity_io and its variable 23 * length fields. 24 */ 25 static inline struct dm_verity_fec_io *fec_io(struct dm_verity_io *io) 26 { 27 return (struct dm_verity_fec_io *) 28 ((char *)io + io->v->ti->per_io_data_size - sizeof(struct dm_verity_fec_io)); 29 } 30 31 /* 32 * Return an interleaved offset for a byte in RS block. 33 */ 34 static inline u64 fec_interleave(struct dm_verity *v, u64 offset) 35 { 36 u32 mod; 37 38 mod = do_div(offset, v->fec->rsn); 39 return offset + mod * (v->fec->rounds << v->data_dev_block_bits); 40 } 41 42 /* 43 * Read error-correcting codes for the requested RS block. Returns a pointer 44 * to the data block. Caller is responsible for releasing buf. 45 */ 46 static u8 *fec_read_parity(struct dm_verity *v, u64 rsb, int index, 47 unsigned int *offset, unsigned int par_buf_offset, 48 struct dm_buffer **buf, unsigned short ioprio) 49 { 50 u64 position, block, rem; 51 u8 *res; 52 53 /* We have already part of parity bytes read, skip to the next block */ 54 if (par_buf_offset) 55 index++; 56 57 position = (index + rsb) * v->fec->roots; 58 block = div64_u64_rem(position, v->fec->io_size, &rem); 59 *offset = par_buf_offset ? 0 : (unsigned int)rem; 60 61 res = dm_bufio_read_with_ioprio(v->fec->bufio, block, buf, ioprio); 62 if (IS_ERR(res)) { 63 DMERR("%s: FEC %llu: parity read failed (block %llu): %ld", 64 v->data_dev->name, (unsigned long long)rsb, 65 (unsigned long long)block, PTR_ERR(res)); 66 *buf = NULL; 67 } 68 69 return res; 70 } 71 72 /* Loop over each preallocated buffer slot. */ 73 #define fec_for_each_prealloc_buffer(__i) \ 74 for (__i = 0; __i < DM_VERITY_FEC_BUF_PREALLOC; __i++) 75 76 /* Loop over each extra buffer slot. */ 77 #define fec_for_each_extra_buffer(io, __i) \ 78 for (__i = DM_VERITY_FEC_BUF_PREALLOC; __i < DM_VERITY_FEC_BUF_MAX; __i++) 79 80 /* Loop over each allocated buffer. */ 81 #define fec_for_each_buffer(io, __i) \ 82 for (__i = 0; __i < (io)->nbufs; __i++) 83 84 /* Loop over each RS block in each allocated buffer. */ 85 #define fec_for_each_buffer_rs_block(io, __i, __j) \ 86 fec_for_each_buffer(io, __i) \ 87 for (__j = 0; __j < 1 << DM_VERITY_FEC_BUF_RS_BITS; __j++) 88 89 /* 90 * Return a pointer to the current RS block when called inside 91 * fec_for_each_buffer_rs_block. 92 */ 93 static inline u8 *fec_buffer_rs_block(struct dm_verity *v, 94 struct dm_verity_fec_io *fio, 95 unsigned int i, unsigned int j) 96 { 97 return &fio->bufs[i][j * v->fec->rsn]; 98 } 99 100 /* 101 * Return an index to the current RS block when called inside 102 * fec_for_each_buffer_rs_block. 103 */ 104 static inline unsigned int fec_buffer_rs_index(unsigned int i, unsigned int j) 105 { 106 return (i << DM_VERITY_FEC_BUF_RS_BITS) + j; 107 } 108 109 /* 110 * Decode all RS blocks from buffers and copy corrected bytes into fio->output 111 * starting from block_offset. 112 */ 113 static int fec_decode_bufs(struct dm_verity *v, struct dm_verity_io *io, 114 struct dm_verity_fec_io *fio, u64 rsb, int byte_index, 115 unsigned int block_offset, int neras) 116 { 117 int r, corrected = 0, res; 118 struct dm_buffer *buf; 119 unsigned int n, i, j, offset, par_buf_offset = 0; 120 uint16_t par_buf[DM_VERITY_FEC_RSM - DM_VERITY_FEC_MIN_RSN]; 121 u8 *par, *block; 122 struct bio *bio = dm_bio_from_per_bio_data(io, v->ti->per_io_data_size); 123 124 par = fec_read_parity(v, rsb, block_offset, &offset, 125 par_buf_offset, &buf, bio->bi_ioprio); 126 if (IS_ERR(par)) 127 return PTR_ERR(par); 128 129 /* 130 * Decode the RS blocks we have in bufs. Each RS block results in 131 * one corrected target byte and consumes fec->roots parity bytes. 132 */ 133 fec_for_each_buffer_rs_block(fio, n, i) { 134 block = fec_buffer_rs_block(v, fio, n, i); 135 for (j = 0; j < v->fec->roots - par_buf_offset; j++) 136 par_buf[par_buf_offset + j] = par[offset + j]; 137 /* Decode an RS block using Reed-Solomon */ 138 res = decode_rs8(fio->rs, block, par_buf, v->fec->rsn, 139 NULL, neras, fio->erasures, 0, NULL); 140 if (res < 0) { 141 r = res; 142 goto error; 143 } 144 145 corrected += res; 146 fio->output[block_offset] = block[byte_index]; 147 148 block_offset++; 149 if (block_offset >= 1 << v->data_dev_block_bits) 150 goto done; 151 152 /* Read the next block when we run out of parity bytes */ 153 offset += (v->fec->roots - par_buf_offset); 154 /* Check if parity bytes are split between blocks */ 155 if (offset < v->fec->io_size && (offset + v->fec->roots) > v->fec->io_size) { 156 par_buf_offset = v->fec->io_size - offset; 157 for (j = 0; j < par_buf_offset; j++) 158 par_buf[j] = par[offset + j]; 159 offset += par_buf_offset; 160 } else 161 par_buf_offset = 0; 162 163 if (offset >= v->fec->io_size) { 164 dm_bufio_release(buf); 165 166 par = fec_read_parity(v, rsb, block_offset, &offset, 167 par_buf_offset, &buf, bio->bi_ioprio); 168 if (IS_ERR(par)) 169 return PTR_ERR(par); 170 } 171 } 172 done: 173 r = corrected; 174 error: 175 dm_bufio_release(buf); 176 177 if (r < 0 && neras) 178 DMERR_LIMIT("%s: FEC %llu: failed to correct: %d", 179 v->data_dev->name, (unsigned long long)rsb, r); 180 else if (r > 0) { 181 DMWARN_LIMIT("%s: FEC %llu: corrected %d errors", 182 v->data_dev->name, (unsigned long long)rsb, r); 183 atomic64_inc(&v->fec->corrected); 184 } 185 186 return r; 187 } 188 189 /* 190 * Locate data block erasures using verity hashes. 191 */ 192 static int fec_is_erasure(struct dm_verity *v, struct dm_verity_io *io, 193 const u8 *want_digest, const u8 *data) 194 { 195 if (unlikely(verity_hash(v, io, data, 1 << v->data_dev_block_bits, 196 io->tmp_digest))) 197 return 0; 198 199 return memcmp(io->tmp_digest, want_digest, v->digest_size) != 0; 200 } 201 202 /* 203 * Read data blocks that are part of the RS block and deinterleave as much as 204 * fits into buffers. Check for erasure locations if @neras is non-NULL. 205 */ 206 static int fec_read_bufs(struct dm_verity *v, struct dm_verity_io *io, 207 u64 rsb, u64 target, unsigned int block_offset, 208 int *neras) 209 { 210 bool is_zero; 211 int i, j, target_index = -1; 212 struct dm_buffer *buf; 213 struct dm_bufio_client *bufio; 214 struct dm_verity_fec_io *fio = fec_io(io); 215 u64 block, ileaved; 216 u8 *bbuf, *rs_block; 217 u8 want_digest[HASH_MAX_DIGESTSIZE]; 218 unsigned int n, k; 219 struct bio *bio = dm_bio_from_per_bio_data(io, v->ti->per_io_data_size); 220 221 if (neras) 222 *neras = 0; 223 224 if (WARN_ON(v->digest_size > sizeof(want_digest))) 225 return -EINVAL; 226 227 /* 228 * read each of the rsn data blocks that are part of the RS block, and 229 * interleave contents to available bufs 230 */ 231 for (i = 0; i < v->fec->rsn; i++) { 232 ileaved = fec_interleave(v, rsb * v->fec->rsn + i); 233 234 /* 235 * target is the data block we want to correct, target_index is 236 * the index of this block within the rsn RS blocks 237 */ 238 if (ileaved == target) 239 target_index = i; 240 241 block = ileaved >> v->data_dev_block_bits; 242 bufio = v->fec->data_bufio; 243 244 if (block >= v->data_blocks) { 245 block -= v->data_blocks; 246 247 /* 248 * blocks outside the area were assumed to contain 249 * zeros when encoding data was generated 250 */ 251 if (unlikely(block >= v->fec->hash_blocks)) 252 continue; 253 254 block += v->hash_start; 255 bufio = v->bufio; 256 } 257 258 bbuf = dm_bufio_read_with_ioprio(bufio, block, &buf, bio->bi_ioprio); 259 if (IS_ERR(bbuf)) { 260 DMWARN_LIMIT("%s: FEC %llu: read failed (%llu): %ld", 261 v->data_dev->name, 262 (unsigned long long)rsb, 263 (unsigned long long)block, PTR_ERR(bbuf)); 264 265 /* assume the block is corrupted */ 266 if (neras && *neras <= v->fec->roots) 267 fio->erasures[(*neras)++] = i; 268 269 continue; 270 } 271 272 /* locate erasures if the block is on the data device */ 273 if (bufio == v->fec->data_bufio && 274 verity_hash_for_block(v, io, block, want_digest, 275 &is_zero) == 0) { 276 /* skip known zero blocks entirely */ 277 if (is_zero) 278 goto done; 279 280 /* 281 * skip if we have already found the theoretical 282 * maximum number (i.e. fec->roots) of erasures 283 */ 284 if (neras && *neras <= v->fec->roots && 285 fec_is_erasure(v, io, want_digest, bbuf)) 286 fio->erasures[(*neras)++] = i; 287 } 288 289 /* 290 * deinterleave and copy the bytes that fit into bufs, 291 * starting from block_offset 292 */ 293 fec_for_each_buffer_rs_block(fio, n, j) { 294 k = fec_buffer_rs_index(n, j) + block_offset; 295 296 if (k >= 1 << v->data_dev_block_bits) 297 goto done; 298 299 rs_block = fec_buffer_rs_block(v, fio, n, j); 300 rs_block[i] = bbuf[k]; 301 } 302 done: 303 dm_bufio_release(buf); 304 } 305 306 return target_index; 307 } 308 309 /* 310 * Allocate RS control structure and FEC buffers from preallocated mempools, 311 * and attempt to allocate as many extra buffers as available. 312 */ 313 static int fec_alloc_bufs(struct dm_verity *v, struct dm_verity_fec_io *fio) 314 { 315 unsigned int n; 316 317 if (!fio->rs) 318 fio->rs = mempool_alloc(&v->fec->rs_pool, GFP_NOIO); 319 320 fec_for_each_prealloc_buffer(n) { 321 if (fio->bufs[n]) 322 continue; 323 324 fio->bufs[n] = mempool_alloc(&v->fec->prealloc_pool, GFP_NOIO); 325 } 326 327 /* try to allocate the maximum number of buffers */ 328 fec_for_each_extra_buffer(fio, n) { 329 if (fio->bufs[n]) 330 continue; 331 332 fio->bufs[n] = kmem_cache_alloc(v->fec->cache, GFP_NOWAIT); 333 /* we can manage with even one buffer if necessary */ 334 if (unlikely(!fio->bufs[n])) 335 break; 336 } 337 fio->nbufs = n; 338 339 if (!fio->output) 340 fio->output = mempool_alloc(&v->fec->output_pool, GFP_NOIO); 341 342 return 0; 343 } 344 345 /* 346 * Initialize buffers and clear erasures. fec_read_bufs() assumes buffers are 347 * zeroed before deinterleaving. 348 */ 349 static void fec_init_bufs(struct dm_verity *v, struct dm_verity_fec_io *fio) 350 { 351 unsigned int n; 352 353 fec_for_each_buffer(fio, n) 354 memset(fio->bufs[n], 0, v->fec->rsn << DM_VERITY_FEC_BUF_RS_BITS); 355 356 memset(fio->erasures, 0, sizeof(fio->erasures)); 357 } 358 359 /* 360 * Decode all RS blocks in a single data block and return the target block 361 * (indicated by @offset) in fio->output. If @use_erasures is non-zero, uses 362 * hashes to locate erasures. 363 */ 364 static int fec_decode_rsb(struct dm_verity *v, struct dm_verity_io *io, 365 struct dm_verity_fec_io *fio, u64 rsb, u64 offset, 366 const u8 *want_digest, bool use_erasures) 367 { 368 int r, neras = 0; 369 unsigned int pos; 370 371 r = fec_alloc_bufs(v, fio); 372 if (unlikely(r < 0)) 373 return r; 374 375 for (pos = 0; pos < 1 << v->data_dev_block_bits; ) { 376 fec_init_bufs(v, fio); 377 378 r = fec_read_bufs(v, io, rsb, offset, pos, 379 use_erasures ? &neras : NULL); 380 if (unlikely(r < 0)) 381 return r; 382 383 r = fec_decode_bufs(v, io, fio, rsb, r, pos, neras); 384 if (r < 0) 385 return r; 386 387 pos += fio->nbufs << DM_VERITY_FEC_BUF_RS_BITS; 388 } 389 390 /* Always re-validate the corrected block against the expected hash */ 391 r = verity_hash(v, io, fio->output, 1 << v->data_dev_block_bits, 392 io->tmp_digest); 393 if (unlikely(r < 0)) 394 return r; 395 396 if (memcmp(io->tmp_digest, want_digest, v->digest_size)) { 397 DMERR_LIMIT("%s: FEC %llu: failed to correct (%d erasures)", 398 v->data_dev->name, (unsigned long long)rsb, neras); 399 return -EILSEQ; 400 } 401 402 return 0; 403 } 404 405 /* Correct errors in a block. Copies corrected block to dest. */ 406 int verity_fec_decode(struct dm_verity *v, struct dm_verity_io *io, 407 enum verity_block_type type, const u8 *want_digest, 408 sector_t block, u8 *dest) 409 { 410 int r; 411 struct dm_verity_fec_io *fio = fec_io(io); 412 u64 offset, res, rsb; 413 414 if (!verity_fec_is_enabled(v)) 415 return -EOPNOTSUPP; 416 417 if (fio->level) 418 return -EIO; 419 420 fio->level++; 421 422 if (type == DM_VERITY_BLOCK_TYPE_METADATA) 423 block = block - v->hash_start + v->data_blocks; 424 425 /* 426 * For RS(M, N), the continuous FEC data is divided into blocks of N 427 * bytes. Since block size may not be divisible by N, the last block 428 * is zero padded when decoding. 429 * 430 * Each byte of the block is covered by a different RS(M, N) code, 431 * and each code is interleaved over N blocks to make it less likely 432 * that bursty corruption will leave us in unrecoverable state. 433 */ 434 435 offset = block << v->data_dev_block_bits; 436 res = div64_u64(offset, v->fec->rounds << v->data_dev_block_bits); 437 438 /* 439 * The base RS block we can feed to the interleaver to find out all 440 * blocks required for decoding. 441 */ 442 rsb = offset - res * (v->fec->rounds << v->data_dev_block_bits); 443 444 /* 445 * Locating erasures is slow, so attempt to recover the block without 446 * them first. Do a second attempt with erasures if the corruption is 447 * bad enough. 448 */ 449 r = fec_decode_rsb(v, io, fio, rsb, offset, want_digest, false); 450 if (r < 0) { 451 r = fec_decode_rsb(v, io, fio, rsb, offset, want_digest, true); 452 if (r < 0) 453 goto done; 454 } 455 456 memcpy(dest, fio->output, 1 << v->data_dev_block_bits); 457 458 done: 459 fio->level--; 460 return r; 461 } 462 463 /* 464 * Clean up per-bio data. 465 */ 466 void verity_fec_finish_io(struct dm_verity_io *io) 467 { 468 unsigned int n; 469 struct dm_verity_fec *f = io->v->fec; 470 struct dm_verity_fec_io *fio = fec_io(io); 471 472 if (!verity_fec_is_enabled(io->v)) 473 return; 474 475 mempool_free(fio->rs, &f->rs_pool); 476 477 fec_for_each_prealloc_buffer(n) 478 mempool_free(fio->bufs[n], &f->prealloc_pool); 479 480 fec_for_each_extra_buffer(fio, n) 481 if (fio->bufs[n]) 482 kmem_cache_free(f->cache, fio->bufs[n]); 483 484 mempool_free(fio->output, &f->output_pool); 485 } 486 487 /* 488 * Initialize per-bio data. 489 */ 490 void verity_fec_init_io(struct dm_verity_io *io) 491 { 492 struct dm_verity_fec_io *fio = fec_io(io); 493 494 if (!verity_fec_is_enabled(io->v)) 495 return; 496 497 fio->rs = NULL; 498 memset(fio->bufs, 0, sizeof(fio->bufs)); 499 fio->nbufs = 0; 500 fio->output = NULL; 501 fio->level = 0; 502 } 503 504 /* 505 * Append feature arguments and values to the status table. 506 */ 507 unsigned int verity_fec_status_table(struct dm_verity *v, unsigned int sz, 508 char *result, unsigned int maxlen) 509 { 510 if (!verity_fec_is_enabled(v)) 511 return sz; 512 513 DMEMIT(" " DM_VERITY_OPT_FEC_DEV " %s " 514 DM_VERITY_OPT_FEC_BLOCKS " %llu " 515 DM_VERITY_OPT_FEC_START " %llu " 516 DM_VERITY_OPT_FEC_ROOTS " %d", 517 v->fec->dev->name, 518 (unsigned long long)v->fec->blocks, 519 (unsigned long long)v->fec->start, 520 v->fec->roots); 521 522 return sz; 523 } 524 525 void verity_fec_dtr(struct dm_verity *v) 526 { 527 struct dm_verity_fec *f = v->fec; 528 529 if (!verity_fec_is_enabled(v)) 530 goto out; 531 532 mempool_exit(&f->rs_pool); 533 mempool_exit(&f->prealloc_pool); 534 mempool_exit(&f->output_pool); 535 kmem_cache_destroy(f->cache); 536 537 if (f->data_bufio) 538 dm_bufio_client_destroy(f->data_bufio); 539 if (f->bufio) 540 dm_bufio_client_destroy(f->bufio); 541 542 if (f->dev) 543 dm_put_device(v->ti, f->dev); 544 out: 545 kfree(f); 546 v->fec = NULL; 547 } 548 549 static void *fec_rs_alloc(gfp_t gfp_mask, void *pool_data) 550 { 551 struct dm_verity *v = pool_data; 552 553 return init_rs_gfp(8, 0x11d, 0, 1, v->fec->roots, gfp_mask); 554 } 555 556 static void fec_rs_free(void *element, void *pool_data) 557 { 558 struct rs_control *rs = element; 559 560 if (rs) 561 free_rs(rs); 562 } 563 564 bool verity_is_fec_opt_arg(const char *arg_name) 565 { 566 return (!strcasecmp(arg_name, DM_VERITY_OPT_FEC_DEV) || 567 !strcasecmp(arg_name, DM_VERITY_OPT_FEC_BLOCKS) || 568 !strcasecmp(arg_name, DM_VERITY_OPT_FEC_START) || 569 !strcasecmp(arg_name, DM_VERITY_OPT_FEC_ROOTS)); 570 } 571 572 int verity_fec_parse_opt_args(struct dm_arg_set *as, struct dm_verity *v, 573 unsigned int *argc, const char *arg_name) 574 { 575 int r; 576 struct dm_target *ti = v->ti; 577 const char *arg_value; 578 unsigned long long num_ll; 579 unsigned char num_c; 580 char dummy; 581 582 if (!*argc) { 583 ti->error = "FEC feature arguments require a value"; 584 return -EINVAL; 585 } 586 587 arg_value = dm_shift_arg(as); 588 (*argc)--; 589 590 if (!strcasecmp(arg_name, DM_VERITY_OPT_FEC_DEV)) { 591 if (v->fec->dev) { 592 ti->error = "FEC device already specified"; 593 return -EINVAL; 594 } 595 r = dm_get_device(ti, arg_value, BLK_OPEN_READ, &v->fec->dev); 596 if (r) { 597 ti->error = "FEC device lookup failed"; 598 return r; 599 } 600 601 } else if (!strcasecmp(arg_name, DM_VERITY_OPT_FEC_BLOCKS)) { 602 if (sscanf(arg_value, "%llu%c", &num_ll, &dummy) != 1 || 603 ((sector_t)(num_ll << (v->data_dev_block_bits - SECTOR_SHIFT)) 604 >> (v->data_dev_block_bits - SECTOR_SHIFT) != num_ll)) { 605 ti->error = "Invalid " DM_VERITY_OPT_FEC_BLOCKS; 606 return -EINVAL; 607 } 608 v->fec->blocks = num_ll; 609 610 } else if (!strcasecmp(arg_name, DM_VERITY_OPT_FEC_START)) { 611 if (sscanf(arg_value, "%llu%c", &num_ll, &dummy) != 1 || 612 ((sector_t)(num_ll << (v->data_dev_block_bits - SECTOR_SHIFT)) >> 613 (v->data_dev_block_bits - SECTOR_SHIFT) != num_ll)) { 614 ti->error = "Invalid " DM_VERITY_OPT_FEC_START; 615 return -EINVAL; 616 } 617 v->fec->start = num_ll; 618 619 } else if (!strcasecmp(arg_name, DM_VERITY_OPT_FEC_ROOTS)) { 620 if (sscanf(arg_value, "%hhu%c", &num_c, &dummy) != 1 || !num_c || 621 num_c < (DM_VERITY_FEC_RSM - DM_VERITY_FEC_MAX_RSN) || 622 num_c > (DM_VERITY_FEC_RSM - DM_VERITY_FEC_MIN_RSN)) { 623 ti->error = "Invalid " DM_VERITY_OPT_FEC_ROOTS; 624 return -EINVAL; 625 } 626 v->fec->roots = num_c; 627 628 } else { 629 ti->error = "Unrecognized verity FEC feature request"; 630 return -EINVAL; 631 } 632 633 return 0; 634 } 635 636 /* 637 * Allocate dm_verity_fec for v->fec. Must be called before verity_fec_ctr. 638 */ 639 int verity_fec_ctr_alloc(struct dm_verity *v) 640 { 641 struct dm_verity_fec *f; 642 643 f = kzalloc(sizeof(struct dm_verity_fec), GFP_KERNEL); 644 if (!f) { 645 v->ti->error = "Cannot allocate FEC structure"; 646 return -ENOMEM; 647 } 648 v->fec = f; 649 650 return 0; 651 } 652 653 /* 654 * Validate arguments and preallocate memory. Must be called after arguments 655 * have been parsed using verity_fec_parse_opt_args. 656 */ 657 int verity_fec_ctr(struct dm_verity *v) 658 { 659 struct dm_verity_fec *f = v->fec; 660 struct dm_target *ti = v->ti; 661 u64 hash_blocks, fec_blocks; 662 int ret; 663 664 if (!verity_fec_is_enabled(v)) { 665 verity_fec_dtr(v); 666 return 0; 667 } 668 669 /* 670 * FEC is computed over data blocks, possible metadata, and 671 * hash blocks. In other words, FEC covers total of fec_blocks 672 * blocks consisting of the following: 673 * 674 * data blocks | hash blocks | metadata (optional) 675 * 676 * We allow metadata after hash blocks to support a use case 677 * where all data is stored on the same device and FEC covers 678 * the entire area. 679 * 680 * If metadata is included, we require it to be available on the 681 * hash device after the hash blocks. 682 */ 683 684 hash_blocks = v->hash_blocks - v->hash_start; 685 686 /* 687 * Require matching block sizes for data and hash devices for 688 * simplicity. 689 */ 690 if (v->data_dev_block_bits != v->hash_dev_block_bits) { 691 ti->error = "Block sizes must match to use FEC"; 692 return -EINVAL; 693 } 694 695 if (!f->roots) { 696 ti->error = "Missing " DM_VERITY_OPT_FEC_ROOTS; 697 return -EINVAL; 698 } 699 f->rsn = DM_VERITY_FEC_RSM - f->roots; 700 701 if (!f->blocks) { 702 ti->error = "Missing " DM_VERITY_OPT_FEC_BLOCKS; 703 return -EINVAL; 704 } 705 706 f->rounds = f->blocks; 707 if (sector_div(f->rounds, f->rsn)) 708 f->rounds++; 709 710 /* 711 * Due to optional metadata, f->blocks can be larger than 712 * data_blocks and hash_blocks combined. 713 */ 714 if (f->blocks < v->data_blocks + hash_blocks || !f->rounds) { 715 ti->error = "Invalid " DM_VERITY_OPT_FEC_BLOCKS; 716 return -EINVAL; 717 } 718 719 /* 720 * Metadata is accessed through the hash device, so we require 721 * it to be large enough. 722 */ 723 f->hash_blocks = f->blocks - v->data_blocks; 724 if (dm_bufio_get_device_size(v->bufio) < f->hash_blocks) { 725 ti->error = "Hash device is too small for " 726 DM_VERITY_OPT_FEC_BLOCKS; 727 return -E2BIG; 728 } 729 730 f->io_size = 1 << v->data_dev_block_bits; 731 732 f->bufio = dm_bufio_client_create(f->dev->bdev, 733 f->io_size, 734 1, 0, NULL, NULL, 0); 735 if (IS_ERR(f->bufio)) { 736 ti->error = "Cannot initialize FEC bufio client"; 737 return PTR_ERR(f->bufio); 738 } 739 740 dm_bufio_set_sector_offset(f->bufio, f->start << (v->data_dev_block_bits - SECTOR_SHIFT)); 741 742 fec_blocks = div64_u64(f->rounds * f->roots, v->fec->roots << SECTOR_SHIFT); 743 if (dm_bufio_get_device_size(f->bufio) < fec_blocks) { 744 ti->error = "FEC device is too small"; 745 return -E2BIG; 746 } 747 748 f->data_bufio = dm_bufio_client_create(v->data_dev->bdev, 749 1 << v->data_dev_block_bits, 750 1, 0, NULL, NULL, 0); 751 if (IS_ERR(f->data_bufio)) { 752 ti->error = "Cannot initialize FEC data bufio client"; 753 return PTR_ERR(f->data_bufio); 754 } 755 756 if (dm_bufio_get_device_size(f->data_bufio) < v->data_blocks) { 757 ti->error = "Data device is too small"; 758 return -E2BIG; 759 } 760 761 /* Preallocate an rs_control structure for each worker thread */ 762 ret = mempool_init(&f->rs_pool, num_online_cpus(), fec_rs_alloc, 763 fec_rs_free, (void *) v); 764 if (ret) { 765 ti->error = "Cannot allocate RS pool"; 766 return ret; 767 } 768 769 f->cache = kmem_cache_create("dm_verity_fec_buffers", 770 f->rsn << DM_VERITY_FEC_BUF_RS_BITS, 771 0, 0, NULL); 772 if (!f->cache) { 773 ti->error = "Cannot create FEC buffer cache"; 774 return -ENOMEM; 775 } 776 777 /* Preallocate DM_VERITY_FEC_BUF_PREALLOC buffers for each thread */ 778 ret = mempool_init_slab_pool(&f->prealloc_pool, num_online_cpus() * 779 DM_VERITY_FEC_BUF_PREALLOC, 780 f->cache); 781 if (ret) { 782 ti->error = "Cannot allocate FEC buffer prealloc pool"; 783 return ret; 784 } 785 786 /* Preallocate an output buffer for each thread */ 787 ret = mempool_init_kmalloc_pool(&f->output_pool, num_online_cpus(), 788 1 << v->data_dev_block_bits); 789 if (ret) { 790 ti->error = "Cannot allocate FEC output pool"; 791 return ret; 792 } 793 794 /* Reserve space for our per-bio data */ 795 ti->per_io_data_size += sizeof(struct dm_verity_fec_io); 796 797 return 0; 798 } 799