1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Block Translation Table 4 * Copyright (c) 2014-2015, Intel Corporation. 5 */ 6 #include <linux/highmem.h> 7 #include <linux/debugfs.h> 8 #include <linux/blkdev.h> 9 #include <linux/blk-integrity.h> 10 #include <linux/pagemap.h> 11 #include <linux/module.h> 12 #include <linux/device.h> 13 #include <linux/mutex.h> 14 #include <linux/hdreg.h> 15 #include <linux/sizes.h> 16 #include <linux/ndctl.h> 17 #include <linux/fs.h> 18 #include <linux/nd.h> 19 #include <linux/backing-dev.h> 20 #include <linux/cleanup.h> 21 #include "btt.h" 22 #include "nd.h" 23 24 enum log_ent_request { 25 LOG_NEW_ENT = 0, 26 LOG_OLD_ENT 27 }; 28 29 static struct device *to_dev(struct arena_info *arena) 30 { 31 return &arena->nd_btt->dev; 32 } 33 34 static u64 adjust_initial_offset(struct nd_btt *nd_btt, u64 offset) 35 { 36 return offset + nd_btt->initial_offset; 37 } 38 39 static int arena_read_bytes(struct arena_info *arena, resource_size_t offset, 40 void *buf, size_t n, unsigned long flags) 41 { 42 struct nd_btt *nd_btt = arena->nd_btt; 43 struct nd_namespace_common *ndns = nd_btt->ndns; 44 45 /* arena offsets may be shifted from the base of the device */ 46 offset = adjust_initial_offset(nd_btt, offset); 47 return nvdimm_read_bytes(ndns, offset, buf, n, flags); 48 } 49 50 static int arena_write_bytes(struct arena_info *arena, resource_size_t offset, 51 void *buf, size_t n, unsigned long flags) 52 { 53 struct nd_btt *nd_btt = arena->nd_btt; 54 struct nd_namespace_common *ndns = nd_btt->ndns; 55 56 /* arena offsets may be shifted from the base of the device */ 57 offset = adjust_initial_offset(nd_btt, offset); 58 return nvdimm_write_bytes(ndns, offset, buf, n, flags); 59 } 60 61 static int btt_info_write(struct arena_info *arena, struct btt_sb *super) 62 { 63 int ret; 64 65 /* 66 * infooff and info2off should always be at least 512B aligned. 67 * We rely on that to make sure rw_bytes does error clearing 68 * correctly, so make sure that is the case. 69 */ 70 dev_WARN_ONCE(to_dev(arena), !IS_ALIGNED(arena->infooff, 512), 71 "arena->infooff: %#llx is unaligned\n", arena->infooff); 72 dev_WARN_ONCE(to_dev(arena), !IS_ALIGNED(arena->info2off, 512), 73 "arena->info2off: %#llx is unaligned\n", arena->info2off); 74 75 ret = arena_write_bytes(arena, arena->info2off, super, 76 sizeof(struct btt_sb), 0); 77 if (ret) 78 return ret; 79 80 return arena_write_bytes(arena, arena->infooff, super, 81 sizeof(struct btt_sb), 0); 82 } 83 84 static int btt_info_read(struct arena_info *arena, struct btt_sb *super) 85 { 86 return arena_read_bytes(arena, arena->infooff, super, 87 sizeof(struct btt_sb), 0); 88 } 89 90 /* 91 * 'raw' version of btt_map write 92 * Assumptions: 93 * mapping is in little-endian 94 * mapping contains 'E' and 'Z' flags as desired 95 */ 96 static int __btt_map_write(struct arena_info *arena, u32 lba, __le32 mapping, 97 unsigned long flags) 98 { 99 u64 ns_off = arena->mapoff + (lba * MAP_ENT_SIZE); 100 101 if (unlikely(lba >= arena->external_nlba)) 102 dev_err_ratelimited(to_dev(arena), 103 "%s: lba %#x out of range (max: %#x)\n", 104 __func__, lba, arena->external_nlba); 105 return arena_write_bytes(arena, ns_off, &mapping, MAP_ENT_SIZE, flags); 106 } 107 108 static int btt_map_write(struct arena_info *arena, u32 lba, u32 mapping, 109 u32 z_flag, u32 e_flag, unsigned long rwb_flags) 110 { 111 u32 ze; 112 __le32 mapping_le; 113 114 /* 115 * This 'mapping' is supposed to be just the LBA mapping, without 116 * any flags set, so strip the flag bits. 117 */ 118 mapping = ent_lba(mapping); 119 120 ze = (z_flag << 1) + e_flag; 121 switch (ze) { 122 case 0: 123 /* 124 * We want to set neither of the Z or E flags, and 125 * in the actual layout, this means setting the bit 126 * positions of both to '1' to indicate a 'normal' 127 * map entry 128 */ 129 mapping |= MAP_ENT_NORMAL; 130 break; 131 case 1: 132 mapping |= (1 << MAP_ERR_SHIFT); 133 break; 134 case 2: 135 mapping |= (1 << MAP_TRIM_SHIFT); 136 break; 137 default: 138 /* 139 * The case where Z and E are both sent in as '1' could be 140 * construed as a valid 'normal' case, but we decide not to, 141 * to avoid confusion 142 */ 143 dev_err_ratelimited(to_dev(arena), 144 "Invalid use of Z and E flags\n"); 145 return -EIO; 146 } 147 148 mapping_le = cpu_to_le32(mapping); 149 return __btt_map_write(arena, lba, mapping_le, rwb_flags); 150 } 151 152 static int btt_map_read(struct arena_info *arena, u32 lba, u32 *mapping, 153 int *trim, int *error, unsigned long rwb_flags) 154 { 155 int ret; 156 __le32 in; 157 u32 raw_mapping, postmap, ze, z_flag, e_flag; 158 u64 ns_off = arena->mapoff + (lba * MAP_ENT_SIZE); 159 160 if (unlikely(lba >= arena->external_nlba)) 161 dev_err_ratelimited(to_dev(arena), 162 "%s: lba %#x out of range (max: %#x)\n", 163 __func__, lba, arena->external_nlba); 164 165 ret = arena_read_bytes(arena, ns_off, &in, MAP_ENT_SIZE, rwb_flags); 166 if (ret) 167 return ret; 168 169 raw_mapping = le32_to_cpu(in); 170 171 z_flag = ent_z_flag(raw_mapping); 172 e_flag = ent_e_flag(raw_mapping); 173 ze = (z_flag << 1) + e_flag; 174 postmap = ent_lba(raw_mapping); 175 176 /* Reuse the {z,e}_flag variables for *trim and *error */ 177 z_flag = 0; 178 e_flag = 0; 179 180 switch (ze) { 181 case 0: 182 /* Initial state. Return postmap = premap */ 183 *mapping = lba; 184 break; 185 case 1: 186 *mapping = postmap; 187 e_flag = 1; 188 break; 189 case 2: 190 *mapping = postmap; 191 z_flag = 1; 192 break; 193 case 3: 194 *mapping = postmap; 195 break; 196 default: 197 return -EIO; 198 } 199 200 if (trim) 201 *trim = z_flag; 202 if (error) 203 *error = e_flag; 204 205 return ret; 206 } 207 208 static int btt_log_group_read(struct arena_info *arena, u32 lane, 209 struct log_group *log) 210 { 211 return arena_read_bytes(arena, 212 arena->logoff + (lane * LOG_GRP_SIZE), log, 213 LOG_GRP_SIZE, 0); 214 } 215 216 static struct dentry *debugfs_root; 217 218 static void arena_debugfs_init(struct arena_info *a, struct dentry *parent, 219 int idx) 220 { 221 char dirname[32]; 222 struct dentry *d; 223 224 /* If for some reason, parent bttN was not created, exit */ 225 if (!parent) 226 return; 227 228 snprintf(dirname, 32, "arena%d", idx); 229 d = debugfs_create_dir(dirname, parent); 230 if (IS_ERR_OR_NULL(d)) 231 return; 232 a->debugfs_dir = d; 233 234 debugfs_create_x64("size", S_IRUGO, d, &a->size); 235 debugfs_create_x64("external_lba_start", S_IRUGO, d, 236 &a->external_lba_start); 237 debugfs_create_x32("internal_nlba", S_IRUGO, d, &a->internal_nlba); 238 debugfs_create_u32("internal_lbasize", S_IRUGO, d, 239 &a->internal_lbasize); 240 debugfs_create_x32("external_nlba", S_IRUGO, d, &a->external_nlba); 241 debugfs_create_u32("external_lbasize", S_IRUGO, d, 242 &a->external_lbasize); 243 debugfs_create_u32("nfree", S_IRUGO, d, &a->nfree); 244 debugfs_create_u16("version_major", S_IRUGO, d, &a->version_major); 245 debugfs_create_u16("version_minor", S_IRUGO, d, &a->version_minor); 246 debugfs_create_x64("nextoff", S_IRUGO, d, &a->nextoff); 247 debugfs_create_x64("infooff", S_IRUGO, d, &a->infooff); 248 debugfs_create_x64("dataoff", S_IRUGO, d, &a->dataoff); 249 debugfs_create_x64("mapoff", S_IRUGO, d, &a->mapoff); 250 debugfs_create_x64("logoff", S_IRUGO, d, &a->logoff); 251 debugfs_create_x64("info2off", S_IRUGO, d, &a->info2off); 252 debugfs_create_x32("flags", S_IRUGO, d, &a->flags); 253 debugfs_create_u32("log_index_0", S_IRUGO, d, &a->log_index[0]); 254 debugfs_create_u32("log_index_1", S_IRUGO, d, &a->log_index[1]); 255 } 256 257 static void btt_debugfs_init(struct btt *btt) 258 { 259 int i = 0; 260 struct arena_info *arena; 261 262 btt->debugfs_dir = debugfs_create_dir(dev_name(&btt->nd_btt->dev), 263 debugfs_root); 264 if (IS_ERR_OR_NULL(btt->debugfs_dir)) 265 return; 266 267 list_for_each_entry(arena, &btt->arena_list, list) { 268 arena_debugfs_init(arena, btt->debugfs_dir, i); 269 i++; 270 } 271 } 272 273 static u32 log_seq(struct log_group *log, int log_idx) 274 { 275 return le32_to_cpu(log->ent[log_idx].seq); 276 } 277 278 /* 279 * This function accepts two log entries, and uses the 280 * sequence number to find the 'older' entry. 281 * It also updates the sequence number in this old entry to 282 * make it the 'new' one if the mark_flag is set. 283 * Finally, it returns which of the entries was the older one. 284 * 285 * TODO The logic feels a bit kludge-y. make it better.. 286 */ 287 static int btt_log_get_old(struct arena_info *a, struct log_group *log) 288 { 289 int idx0 = a->log_index[0]; 290 int idx1 = a->log_index[1]; 291 int old; 292 293 /* 294 * the first ever time this is seen, the entry goes into [0] 295 * the next time, the following logic works out to put this 296 * (next) entry into [1] 297 */ 298 if (log_seq(log, idx0) == 0) { 299 log->ent[idx0].seq = cpu_to_le32(1); 300 return 0; 301 } 302 303 if (log_seq(log, idx0) == log_seq(log, idx1)) 304 return -EINVAL; 305 if (log_seq(log, idx0) + log_seq(log, idx1) > 5) 306 return -EINVAL; 307 308 if (log_seq(log, idx0) < log_seq(log, idx1)) { 309 if ((log_seq(log, idx1) - log_seq(log, idx0)) == 1) 310 old = 0; 311 else 312 old = 1; 313 } else { 314 if ((log_seq(log, idx0) - log_seq(log, idx1)) == 1) 315 old = 1; 316 else 317 old = 0; 318 } 319 320 return old; 321 } 322 323 /* 324 * This function copies the desired (old/new) log entry into ent if 325 * it is not NULL. It returns the sub-slot number (0 or 1) 326 * where the desired log entry was found. Negative return values 327 * indicate errors. 328 */ 329 static int btt_log_read(struct arena_info *arena, u32 lane, 330 struct log_entry *ent, int old_flag) 331 { 332 int ret; 333 int old_ent, ret_ent; 334 struct log_group log; 335 336 ret = btt_log_group_read(arena, lane, &log); 337 if (ret) 338 return -EIO; 339 340 old_ent = btt_log_get_old(arena, &log); 341 if (old_ent < 0 || old_ent > 1) { 342 dev_err(to_dev(arena), 343 "log corruption (%d): lane %d seq [%d, %d]\n", 344 old_ent, lane, log.ent[arena->log_index[0]].seq, 345 log.ent[arena->log_index[1]].seq); 346 /* TODO set error state? */ 347 return -EIO; 348 } 349 350 ret_ent = (old_flag ? old_ent : (1 - old_ent)); 351 352 if (ent != NULL) 353 memcpy(ent, &log.ent[arena->log_index[ret_ent]], LOG_ENT_SIZE); 354 355 return ret_ent; 356 } 357 358 /* 359 * This function commits a log entry to media 360 * It does _not_ prepare the freelist entry for the next write 361 * btt_flog_write is the wrapper for updating the freelist elements 362 */ 363 static int __btt_log_write(struct arena_info *arena, u32 lane, 364 u32 sub, struct log_entry *ent, unsigned long flags) 365 { 366 int ret; 367 u32 group_slot = arena->log_index[sub]; 368 unsigned int log_half = LOG_ENT_SIZE / 2; 369 void *src = ent; 370 u64 ns_off; 371 372 ns_off = arena->logoff + (lane * LOG_GRP_SIZE) + 373 (group_slot * LOG_ENT_SIZE); 374 /* split the 16B write into atomic, durable halves */ 375 ret = arena_write_bytes(arena, ns_off, src, log_half, flags); 376 if (ret) 377 return ret; 378 379 ns_off += log_half; 380 src += log_half; 381 return arena_write_bytes(arena, ns_off, src, log_half, flags); 382 } 383 384 static int btt_flog_write(struct arena_info *arena, u32 lane, u32 sub, 385 struct log_entry *ent) 386 { 387 int ret; 388 389 ret = __btt_log_write(arena, lane, sub, ent, NVDIMM_IO_ATOMIC); 390 if (ret) 391 return ret; 392 393 /* prepare the next free entry */ 394 arena->freelist[lane].sub = 1 - arena->freelist[lane].sub; 395 if (++(arena->freelist[lane].seq) == 4) 396 arena->freelist[lane].seq = 1; 397 if (ent_e_flag(le32_to_cpu(ent->old_map))) 398 arena->freelist[lane].has_err = 1; 399 arena->freelist[lane].block = ent_lba(le32_to_cpu(ent->old_map)); 400 401 return ret; 402 } 403 404 /* 405 * This function initializes the BTT map to the initial state, which is 406 * all-zeroes, and indicates an identity mapping 407 */ 408 static int btt_map_init(struct arena_info *arena) 409 { 410 int ret = -EINVAL; 411 void *zerobuf; 412 size_t offset = 0; 413 size_t chunk_size = SZ_2M; 414 size_t mapsize = arena->logoff - arena->mapoff; 415 416 zerobuf = kzalloc(chunk_size, GFP_KERNEL); 417 if (!zerobuf) 418 return -ENOMEM; 419 420 /* 421 * mapoff should always be at least 512B aligned. We rely on that to 422 * make sure rw_bytes does error clearing correctly, so make sure that 423 * is the case. 424 */ 425 dev_WARN_ONCE(to_dev(arena), !IS_ALIGNED(arena->mapoff, 512), 426 "arena->mapoff: %#llx is unaligned\n", arena->mapoff); 427 428 while (mapsize) { 429 size_t size = min(mapsize, chunk_size); 430 431 dev_WARN_ONCE(to_dev(arena), size < 512, 432 "chunk size: %#zx is unaligned\n", size); 433 ret = arena_write_bytes(arena, arena->mapoff + offset, zerobuf, 434 size, 0); 435 if (ret) 436 goto free; 437 438 offset += size; 439 mapsize -= size; 440 cond_resched(); 441 } 442 443 free: 444 kfree(zerobuf); 445 return ret; 446 } 447 448 /* 449 * This function initializes the BTT log with 'fake' entries pointing 450 * to the initial reserved set of blocks as being free 451 */ 452 static int btt_log_init(struct arena_info *arena) 453 { 454 size_t logsize = arena->info2off - arena->logoff; 455 size_t chunk_size = SZ_4K, offset = 0; 456 struct log_entry ent; 457 void *zerobuf; 458 int ret; 459 u32 i; 460 461 zerobuf = kzalloc(chunk_size, GFP_KERNEL); 462 if (!zerobuf) 463 return -ENOMEM; 464 /* 465 * logoff should always be at least 512B aligned. We rely on that to 466 * make sure rw_bytes does error clearing correctly, so make sure that 467 * is the case. 468 */ 469 dev_WARN_ONCE(to_dev(arena), !IS_ALIGNED(arena->logoff, 512), 470 "arena->logoff: %#llx is unaligned\n", arena->logoff); 471 472 while (logsize) { 473 size_t size = min(logsize, chunk_size); 474 475 dev_WARN_ONCE(to_dev(arena), size < 512, 476 "chunk size: %#zx is unaligned\n", size); 477 ret = arena_write_bytes(arena, arena->logoff + offset, zerobuf, 478 size, 0); 479 if (ret) 480 goto free; 481 482 offset += size; 483 logsize -= size; 484 cond_resched(); 485 } 486 487 for (i = 0; i < arena->nfree; i++) { 488 ent.lba = cpu_to_le32(i); 489 ent.old_map = cpu_to_le32(arena->external_nlba + i); 490 ent.new_map = cpu_to_le32(arena->external_nlba + i); 491 ent.seq = cpu_to_le32(LOG_SEQ_INIT); 492 ret = __btt_log_write(arena, i, 0, &ent, 0); 493 if (ret) 494 goto free; 495 } 496 497 free: 498 kfree(zerobuf); 499 return ret; 500 } 501 502 static u64 to_namespace_offset(struct arena_info *arena, u64 lba) 503 { 504 return arena->dataoff + ((u64)lba * arena->internal_lbasize); 505 } 506 507 static int arena_clear_freelist_error(struct arena_info *arena, u32 lane) 508 { 509 int ret = 0; 510 511 if (arena->freelist[lane].has_err) { 512 void *zero_page = page_address(ZERO_PAGE(0)); 513 u32 lba = arena->freelist[lane].block; 514 u64 nsoff = to_namespace_offset(arena, lba); 515 unsigned long len = arena->sector_size; 516 517 mutex_lock(&arena->err_lock); 518 519 while (len) { 520 unsigned long chunk = min(len, PAGE_SIZE); 521 522 ret = arena_write_bytes(arena, nsoff, zero_page, 523 chunk, 0); 524 if (ret) 525 break; 526 len -= chunk; 527 nsoff += chunk; 528 if (len == 0) 529 arena->freelist[lane].has_err = 0; 530 } 531 mutex_unlock(&arena->err_lock); 532 } 533 return ret; 534 } 535 536 static int btt_freelist_init(struct arena_info *arena) 537 { 538 int new, ret; 539 struct log_entry log_new; 540 u32 i, map_entry, log_oldmap, log_newmap; 541 542 arena->freelist = kzalloc_objs(struct free_entry, arena->nfree); 543 if (!arena->freelist) 544 return -ENOMEM; 545 546 for (i = 0; i < arena->nfree; i++) { 547 new = btt_log_read(arena, i, &log_new, LOG_NEW_ENT); 548 if (new < 0) 549 return new; 550 551 /* old and new map entries with any flags stripped out */ 552 log_oldmap = ent_lba(le32_to_cpu(log_new.old_map)); 553 log_newmap = ent_lba(le32_to_cpu(log_new.new_map)); 554 555 /* sub points to the next one to be overwritten */ 556 arena->freelist[i].sub = 1 - new; 557 arena->freelist[i].seq = nd_inc_seq(le32_to_cpu(log_new.seq)); 558 arena->freelist[i].block = log_oldmap; 559 560 /* 561 * FIXME: if error clearing fails during init, we want to make 562 * the BTT read-only 563 */ 564 if (ent_e_flag(le32_to_cpu(log_new.old_map)) && 565 !ent_normal(le32_to_cpu(log_new.old_map))) { 566 arena->freelist[i].has_err = 1; 567 ret = arena_clear_freelist_error(arena, i); 568 if (ret) 569 dev_err_ratelimited(to_dev(arena), 570 "Unable to clear known errors\n"); 571 } 572 573 /* This implies a newly created or untouched flog entry */ 574 if (log_oldmap == log_newmap) 575 continue; 576 577 /* Check if map recovery is needed */ 578 ret = btt_map_read(arena, le32_to_cpu(log_new.lba), &map_entry, 579 NULL, NULL, 0); 580 if (ret) 581 return ret; 582 583 /* 584 * The map_entry from btt_read_map is stripped of any flag bits, 585 * so use the stripped out versions from the log as well for 586 * testing whether recovery is needed. For restoration, use the 587 * 'raw' version of the log entries as that captured what we 588 * were going to write originally. 589 */ 590 if ((log_newmap != map_entry) && (log_oldmap == map_entry)) { 591 /* 592 * Last transaction wrote the flog, but wasn't able 593 * to complete the map write. So fix up the map. 594 */ 595 ret = btt_map_write(arena, le32_to_cpu(log_new.lba), 596 le32_to_cpu(log_new.new_map), 0, 0, 0); 597 if (ret) 598 return ret; 599 } 600 } 601 602 return 0; 603 } 604 605 static bool ent_is_padding(struct log_entry *ent) 606 { 607 return (ent->lba == 0) && (ent->old_map == 0) && (ent->new_map == 0) 608 && (ent->seq == 0); 609 } 610 611 /* 612 * Detecting valid log indices: We read a log group (see the comments in btt.h 613 * for a description of a 'log_group' and its 'slots'), and iterate over its 614 * four slots. We expect that a padding slot will be all-zeroes, and use this 615 * to detect a padding slot vs. an actual entry. 616 * 617 * If a log_group is in the initial state, i.e. hasn't been used since the 618 * creation of this BTT layout, it will have three of the four slots with 619 * zeroes. We skip over these log_groups for the detection of log_index. If 620 * all log_groups are in the initial state (i.e. the BTT has never been 621 * written to), it is safe to assume the 'new format' of log entries in slots 622 * (0, 1). 623 */ 624 static int log_set_indices(struct arena_info *arena) 625 { 626 bool idx_set = false, initial_state = true; 627 int ret, log_index[2] = {-1, -1}; 628 u32 i, j, next_idx = 0; 629 struct log_group log; 630 u32 pad_count = 0; 631 632 for (i = 0; i < arena->nfree; i++) { 633 ret = btt_log_group_read(arena, i, &log); 634 if (ret < 0) 635 return ret; 636 637 for (j = 0; j < 4; j++) { 638 if (!idx_set) { 639 if (ent_is_padding(&log.ent[j])) { 640 pad_count++; 641 continue; 642 } else { 643 /* Skip if index has been recorded */ 644 if ((next_idx == 1) && 645 (j == log_index[0])) 646 continue; 647 /* valid entry, record index */ 648 log_index[next_idx] = j; 649 next_idx++; 650 } 651 if (next_idx == 2) { 652 /* two valid entries found */ 653 idx_set = true; 654 } else if (next_idx > 2) { 655 /* too many valid indices */ 656 return -ENXIO; 657 } 658 } else { 659 /* 660 * once the indices have been set, just verify 661 * that all subsequent log groups are either in 662 * their initial state or follow the same 663 * indices. 664 */ 665 if (j == log_index[0]) { 666 /* entry must be 'valid' */ 667 if (ent_is_padding(&log.ent[j])) 668 return -ENXIO; 669 } else if (j == log_index[1]) { 670 ; 671 /* 672 * log_index[1] can be padding if the 673 * lane never got used and it is still 674 * in the initial state (three 'padding' 675 * entries) 676 */ 677 } else { 678 /* entry must be invalid (padding) */ 679 if (!ent_is_padding(&log.ent[j])) 680 return -ENXIO; 681 } 682 } 683 } 684 /* 685 * If any of the log_groups have more than one valid, 686 * non-padding entry, then the we are no longer in the 687 * initial_state 688 */ 689 if (pad_count < 3) 690 initial_state = false; 691 pad_count = 0; 692 } 693 694 if (!initial_state && !idx_set) 695 return -ENXIO; 696 697 /* 698 * If all the entries in the log were in the initial state, 699 * assume new padding scheme 700 */ 701 if (initial_state) 702 log_index[1] = 1; 703 704 /* 705 * Only allow the known permutations of log/padding indices, 706 * i.e. (0, 1), and (0, 2) 707 */ 708 if ((log_index[0] == 0) && ((log_index[1] == 1) || (log_index[1] == 2))) 709 ; /* known index possibilities */ 710 else { 711 dev_err(to_dev(arena), "Found an unknown padding scheme\n"); 712 return -ENXIO; 713 } 714 715 arena->log_index[0] = log_index[0]; 716 arena->log_index[1] = log_index[1]; 717 dev_dbg(to_dev(arena), "log_index_0 = %d\n", log_index[0]); 718 dev_dbg(to_dev(arena), "log_index_1 = %d\n", log_index[1]); 719 return 0; 720 } 721 722 static int btt_rtt_init(struct arena_info *arena) 723 { 724 arena->rtt = kcalloc(arena->nfree, sizeof(u32), GFP_KERNEL); 725 if (arena->rtt == NULL) 726 return -ENOMEM; 727 728 return 0; 729 } 730 731 static int btt_maplocks_init(struct arena_info *arena) 732 { 733 u32 i; 734 735 arena->map_locks = kzalloc_objs(struct aligned_lock, arena->nfree); 736 if (!arena->map_locks) 737 return -ENOMEM; 738 739 for (i = 0; i < arena->nfree; i++) 740 spin_lock_init(&arena->map_locks[i].lock); 741 742 return 0; 743 } 744 745 static struct arena_info *alloc_arena(struct btt *btt, size_t size, 746 size_t start, size_t arena_off) 747 { 748 struct arena_info *arena; 749 u64 logsize, mapsize, datasize; 750 u64 available = size; 751 752 arena = kzalloc_obj(*arena); 753 if (!arena) 754 return NULL; 755 arena->nd_btt = btt->nd_btt; 756 arena->sector_size = btt->sector_size; 757 mutex_init(&arena->err_lock); 758 759 if (!size) 760 return arena; 761 762 arena->size = size; 763 arena->external_lba_start = start; 764 arena->external_lbasize = btt->lbasize; 765 arena->internal_lbasize = roundup(arena->external_lbasize, 766 INT_LBASIZE_ALIGNMENT); 767 arena->nfree = BTT_DEFAULT_NFREE; 768 arena->version_major = btt->nd_btt->version_major; 769 arena->version_minor = btt->nd_btt->version_minor; 770 771 if (available % BTT_PG_SIZE) 772 available -= (available % BTT_PG_SIZE); 773 774 /* Two pages are reserved for the super block and its copy */ 775 available -= 2 * BTT_PG_SIZE; 776 777 /* The log takes a fixed amount of space based on nfree */ 778 logsize = roundup(arena->nfree * LOG_GRP_SIZE, BTT_PG_SIZE); 779 available -= logsize; 780 781 /* Calculate optimal split between map and data area */ 782 arena->internal_nlba = div_u64(available - BTT_PG_SIZE, 783 arena->internal_lbasize + MAP_ENT_SIZE); 784 arena->external_nlba = arena->internal_nlba - arena->nfree; 785 786 mapsize = roundup((arena->external_nlba * MAP_ENT_SIZE), BTT_PG_SIZE); 787 datasize = available - mapsize; 788 789 /* 'Absolute' values, relative to start of storage space */ 790 arena->infooff = arena_off; 791 arena->dataoff = arena->infooff + BTT_PG_SIZE; 792 arena->mapoff = arena->dataoff + datasize; 793 arena->logoff = arena->mapoff + mapsize; 794 arena->info2off = arena->logoff + logsize; 795 796 /* Default log indices are (0,1) */ 797 arena->log_index[0] = 0; 798 arena->log_index[1] = 1; 799 return arena; 800 } 801 802 static void free_arenas(struct btt *btt) 803 { 804 struct arena_info *arena, *next; 805 806 list_for_each_entry_safe(arena, next, &btt->arena_list, list) { 807 list_del(&arena->list); 808 kfree(arena->rtt); 809 kfree(arena->map_locks); 810 kfree(arena->freelist); 811 debugfs_remove_recursive(arena->debugfs_dir); 812 kfree(arena); 813 } 814 } 815 816 /* 817 * This function reads an existing valid btt superblock and 818 * populates the corresponding arena_info struct 819 */ 820 static void parse_arena_meta(struct arena_info *arena, struct btt_sb *super, 821 u64 arena_off) 822 { 823 arena->internal_nlba = le32_to_cpu(super->internal_nlba); 824 arena->internal_lbasize = le32_to_cpu(super->internal_lbasize); 825 arena->external_nlba = le32_to_cpu(super->external_nlba); 826 arena->external_lbasize = le32_to_cpu(super->external_lbasize); 827 arena->nfree = le32_to_cpu(super->nfree); 828 arena->version_major = le16_to_cpu(super->version_major); 829 arena->version_minor = le16_to_cpu(super->version_minor); 830 831 arena->nextoff = (super->nextoff == 0) ? 0 : (arena_off + 832 le64_to_cpu(super->nextoff)); 833 arena->infooff = arena_off; 834 arena->dataoff = arena_off + le64_to_cpu(super->dataoff); 835 arena->mapoff = arena_off + le64_to_cpu(super->mapoff); 836 arena->logoff = arena_off + le64_to_cpu(super->logoff); 837 arena->info2off = arena_off + le64_to_cpu(super->info2off); 838 839 arena->size = (le64_to_cpu(super->nextoff) > 0) 840 ? (le64_to_cpu(super->nextoff)) 841 : (arena->info2off - arena->infooff + BTT_PG_SIZE); 842 843 arena->flags = le32_to_cpu(super->flags); 844 } 845 846 static int discover_arenas(struct btt *btt) 847 { 848 int ret = 0; 849 struct arena_info *arena; 850 size_t remaining = btt->rawsize; 851 u64 cur_nlba = 0; 852 size_t cur_off = 0; 853 int num_arenas = 0; 854 855 struct btt_sb *super __free(kfree) = kzalloc_obj(*super); 856 if (!super) 857 return -ENOMEM; 858 859 while (remaining) { 860 /* Alloc memory for arena */ 861 arena = alloc_arena(btt, 0, 0, 0); 862 if (!arena) 863 return -ENOMEM; 864 865 arena->infooff = cur_off; 866 ret = btt_info_read(arena, super); 867 if (ret) 868 goto out; 869 870 if (!nd_btt_arena_is_valid(btt->nd_btt, super)) { 871 if (remaining == btt->rawsize) { 872 btt->init_state = INIT_NOTFOUND; 873 dev_info(to_dev(arena), "No existing arenas\n"); 874 goto out; 875 } else { 876 dev_err(to_dev(arena), 877 "Found corrupted metadata!\n"); 878 ret = -ENODEV; 879 goto out; 880 } 881 } 882 883 arena->external_lba_start = cur_nlba; 884 parse_arena_meta(arena, super, cur_off); 885 886 ret = log_set_indices(arena); 887 if (ret) { 888 dev_err(to_dev(arena), 889 "Unable to deduce log/padding indices\n"); 890 goto out; 891 } 892 893 ret = btt_freelist_init(arena); 894 if (ret) 895 goto out; 896 897 ret = btt_rtt_init(arena); 898 if (ret) 899 goto out; 900 901 ret = btt_maplocks_init(arena); 902 if (ret) 903 goto out; 904 905 list_add_tail(&arena->list, &btt->arena_list); 906 907 remaining -= arena->size; 908 cur_off += arena->size; 909 cur_nlba += arena->external_nlba; 910 num_arenas++; 911 912 if (arena->nextoff == 0) 913 break; 914 } 915 btt->num_arenas = num_arenas; 916 btt->nlba = cur_nlba; 917 btt->init_state = INIT_READY; 918 919 return ret; 920 921 out: 922 kfree(arena); 923 free_arenas(btt); 924 return ret; 925 } 926 927 static int create_arenas(struct btt *btt) 928 { 929 size_t remaining = btt->rawsize; 930 size_t cur_off = 0; 931 932 while (remaining) { 933 struct arena_info *arena; 934 size_t arena_size = min_t(u64, ARENA_MAX_SIZE, remaining); 935 936 remaining -= arena_size; 937 if (arena_size < ARENA_MIN_SIZE) 938 break; 939 940 arena = alloc_arena(btt, arena_size, btt->nlba, cur_off); 941 if (!arena) { 942 free_arenas(btt); 943 return -ENOMEM; 944 } 945 btt->nlba += arena->external_nlba; 946 if (remaining >= ARENA_MIN_SIZE) 947 arena->nextoff = arena->size; 948 else 949 arena->nextoff = 0; 950 cur_off += arena_size; 951 list_add_tail(&arena->list, &btt->arena_list); 952 } 953 954 return 0; 955 } 956 957 /* 958 * This function completes arena initialization by writing 959 * all the metadata. 960 * It is only called for an uninitialized arena when a write 961 * to that arena occurs for the first time. 962 */ 963 static int btt_arena_write_layout(struct arena_info *arena) 964 { 965 int ret; 966 u64 sum; 967 struct btt_sb *super; 968 struct nd_btt *nd_btt = arena->nd_btt; 969 const uuid_t *parent_uuid = nd_dev_to_uuid(&nd_btt->ndns->dev); 970 971 ret = btt_map_init(arena); 972 if (ret) 973 return ret; 974 975 ret = btt_log_init(arena); 976 if (ret) 977 return ret; 978 979 super = kzalloc_obj(*super, GFP_NOIO); 980 if (!super) 981 return -ENOMEM; 982 983 strscpy(super->signature, BTT_SIG, sizeof(super->signature)); 984 export_uuid(super->uuid, nd_btt->uuid); 985 export_uuid(super->parent_uuid, parent_uuid); 986 super->flags = cpu_to_le32(arena->flags); 987 super->version_major = cpu_to_le16(arena->version_major); 988 super->version_minor = cpu_to_le16(arena->version_minor); 989 super->external_lbasize = cpu_to_le32(arena->external_lbasize); 990 super->external_nlba = cpu_to_le32(arena->external_nlba); 991 super->internal_lbasize = cpu_to_le32(arena->internal_lbasize); 992 super->internal_nlba = cpu_to_le32(arena->internal_nlba); 993 super->nfree = cpu_to_le32(arena->nfree); 994 super->infosize = cpu_to_le32(sizeof(struct btt_sb)); 995 super->nextoff = cpu_to_le64(arena->nextoff); 996 /* 997 * Subtract arena->infooff (arena start) so numbers are relative 998 * to 'this' arena 999 */ 1000 super->dataoff = cpu_to_le64(arena->dataoff - arena->infooff); 1001 super->mapoff = cpu_to_le64(arena->mapoff - arena->infooff); 1002 super->logoff = cpu_to_le64(arena->logoff - arena->infooff); 1003 super->info2off = cpu_to_le64(arena->info2off - arena->infooff); 1004 1005 super->flags = 0; 1006 sum = nd_sb_checksum((struct nd_gen_sb *) super); 1007 super->checksum = cpu_to_le64(sum); 1008 1009 ret = btt_info_write(arena, super); 1010 1011 kfree(super); 1012 return ret; 1013 } 1014 1015 /* 1016 * This function completes the initialization for the BTT namespace 1017 * such that it is ready to accept IOs 1018 */ 1019 static int btt_meta_init(struct btt *btt) 1020 { 1021 int ret = 0; 1022 struct arena_info *arena; 1023 1024 mutex_lock(&btt->init_lock); 1025 list_for_each_entry(arena, &btt->arena_list, list) { 1026 ret = btt_arena_write_layout(arena); 1027 if (ret) 1028 goto unlock; 1029 1030 ret = btt_freelist_init(arena); 1031 if (ret) 1032 goto unlock; 1033 1034 ret = btt_rtt_init(arena); 1035 if (ret) 1036 goto unlock; 1037 1038 ret = btt_maplocks_init(arena); 1039 if (ret) 1040 goto unlock; 1041 } 1042 1043 btt->init_state = INIT_READY; 1044 1045 unlock: 1046 mutex_unlock(&btt->init_lock); 1047 return ret; 1048 } 1049 1050 static u32 btt_meta_size(struct btt *btt) 1051 { 1052 return btt->lbasize - btt->sector_size; 1053 } 1054 1055 /* 1056 * This function calculates the arena in which the given LBA lies 1057 * by doing a linear walk. This is acceptable since we expect only 1058 * a few arenas. If we have backing devices that get much larger, 1059 * we can construct a balanced binary tree of arenas at init time 1060 * so that this range search becomes faster. 1061 */ 1062 static int lba_to_arena(struct btt *btt, sector_t sector, __u32 *premap, 1063 struct arena_info **arena) 1064 { 1065 struct arena_info *arena_list; 1066 __u64 lba = div_u64(sector << SECTOR_SHIFT, btt->sector_size); 1067 1068 list_for_each_entry(arena_list, &btt->arena_list, list) { 1069 if (lba < arena_list->external_nlba) { 1070 *arena = arena_list; 1071 *premap = lba; 1072 return 0; 1073 } 1074 lba -= arena_list->external_nlba; 1075 } 1076 1077 return -EIO; 1078 } 1079 1080 /* 1081 * The following (lock_map, unlock_map) are mostly just to improve 1082 * readability, since they index into an array of locks 1083 */ 1084 static void lock_map(struct arena_info *arena, u32 premap) 1085 __acquires(&arena->map_locks[idx].lock) 1086 { 1087 u32 idx = (premap * MAP_ENT_SIZE / L1_CACHE_BYTES) % arena->nfree; 1088 1089 spin_lock(&arena->map_locks[idx].lock); 1090 } 1091 1092 static void unlock_map(struct arena_info *arena, u32 premap) 1093 __releases(&arena->map_locks[idx].lock) 1094 { 1095 u32 idx = (premap * MAP_ENT_SIZE / L1_CACHE_BYTES) % arena->nfree; 1096 1097 spin_unlock(&arena->map_locks[idx].lock); 1098 } 1099 1100 static int btt_data_read(struct arena_info *arena, struct page *page, 1101 unsigned int off, u32 lba, u32 len) 1102 { 1103 int ret; 1104 u64 nsoff = to_namespace_offset(arena, lba); 1105 void *mem = kmap_local_page(page); 1106 1107 ret = arena_read_bytes(arena, nsoff, mem + off, len, NVDIMM_IO_ATOMIC); 1108 kunmap_local(mem); 1109 1110 return ret; 1111 } 1112 1113 static int btt_data_write(struct arena_info *arena, u32 lba, 1114 struct page *page, unsigned int off, u32 len) 1115 { 1116 int ret; 1117 u64 nsoff = to_namespace_offset(arena, lba); 1118 void *mem = kmap_local_page(page); 1119 1120 ret = arena_write_bytes(arena, nsoff, mem + off, len, NVDIMM_IO_ATOMIC); 1121 kunmap_local(mem); 1122 1123 return ret; 1124 } 1125 1126 static void zero_fill_data(struct page *page, unsigned int off, u32 len) 1127 { 1128 void *mem = kmap_local_page(page); 1129 1130 memset(mem + off, 0, len); 1131 kunmap_local(mem); 1132 } 1133 1134 #ifdef CONFIG_BLK_DEV_INTEGRITY 1135 static int btt_rw_integrity(struct btt *btt, struct bio_integrity_payload *bip, 1136 struct arena_info *arena, u32 postmap, int rw) 1137 { 1138 unsigned int len = btt_meta_size(btt); 1139 u64 meta_nsoff; 1140 int ret = 0; 1141 1142 if (bip == NULL) 1143 return 0; 1144 1145 meta_nsoff = to_namespace_offset(arena, postmap) + btt->sector_size; 1146 1147 while (len) { 1148 unsigned int cur_len; 1149 struct bio_vec bv; 1150 void *mem; 1151 1152 bv = bvec_iter_bvec(bip->bip_vec, bip->bip_iter); 1153 /* 1154 * The 'bv' obtained from bvec_iter_bvec has its .bv_len and 1155 * .bv_offset already adjusted for iter->bi_bvec_done, and we 1156 * can use those directly 1157 */ 1158 1159 cur_len = min(len, bv.bv_len); 1160 mem = bvec_kmap_local(&bv); 1161 if (rw) 1162 ret = arena_write_bytes(arena, meta_nsoff, mem, cur_len, 1163 NVDIMM_IO_ATOMIC); 1164 else 1165 ret = arena_read_bytes(arena, meta_nsoff, mem, cur_len, 1166 NVDIMM_IO_ATOMIC); 1167 1168 kunmap_local(mem); 1169 if (ret) 1170 return ret; 1171 1172 len -= cur_len; 1173 meta_nsoff += cur_len; 1174 if (!bvec_iter_advance(bip->bip_vec, &bip->bip_iter, cur_len)) 1175 return -EIO; 1176 } 1177 1178 return ret; 1179 } 1180 1181 #else /* CONFIG_BLK_DEV_INTEGRITY */ 1182 static int btt_rw_integrity(struct btt *btt, struct bio_integrity_payload *bip, 1183 struct arena_info *arena, u32 postmap, int rw) 1184 { 1185 return 0; 1186 } 1187 #endif 1188 1189 static int btt_read_pg(struct btt *btt, struct bio_integrity_payload *bip, 1190 struct page *page, unsigned int off, sector_t sector, 1191 unsigned int len) 1192 { 1193 int ret = 0; 1194 int t_flag, e_flag; 1195 struct arena_info *arena = NULL; 1196 u32 lane = 0, premap, postmap; 1197 1198 while (len) { 1199 u32 cur_len; 1200 1201 lane = nd_region_acquire_lane(btt->nd_region); 1202 1203 ret = lba_to_arena(btt, sector, &premap, &arena); 1204 if (ret) 1205 goto out_lane; 1206 1207 cur_len = min(btt->sector_size, len); 1208 1209 ret = btt_map_read(arena, premap, &postmap, &t_flag, &e_flag, 1210 NVDIMM_IO_ATOMIC); 1211 if (ret) 1212 goto out_lane; 1213 1214 /* 1215 * We loop to make sure that the post map LBA didn't change 1216 * from under us between writing the RTT and doing the actual 1217 * read. 1218 */ 1219 while (1) { 1220 u32 new_map; 1221 int new_t, new_e; 1222 1223 if (t_flag) { 1224 zero_fill_data(page, off, cur_len); 1225 goto out_lane; 1226 } 1227 1228 if (e_flag) { 1229 ret = -EIO; 1230 goto out_lane; 1231 } 1232 1233 arena->rtt[lane] = RTT_VALID | postmap; 1234 /* 1235 * Barrier to make sure this write is not reordered 1236 * to do the verification map_read before the RTT store 1237 */ 1238 barrier(); 1239 1240 ret = btt_map_read(arena, premap, &new_map, &new_t, 1241 &new_e, NVDIMM_IO_ATOMIC); 1242 if (ret) 1243 goto out_rtt; 1244 1245 if ((postmap == new_map) && (t_flag == new_t) && 1246 (e_flag == new_e)) 1247 break; 1248 1249 postmap = new_map; 1250 t_flag = new_t; 1251 e_flag = new_e; 1252 } 1253 1254 ret = btt_data_read(arena, page, off, postmap, cur_len); 1255 if (ret) { 1256 /* Media error - set the e_flag */ 1257 if (btt_map_write(arena, premap, postmap, 0, 1, NVDIMM_IO_ATOMIC)) 1258 dev_warn_ratelimited(to_dev(arena), 1259 "Error persistently tracking bad blocks at %#x\n", 1260 premap); 1261 goto out_rtt; 1262 } 1263 1264 if (bip) { 1265 ret = btt_rw_integrity(btt, bip, arena, postmap, READ); 1266 if (ret) 1267 goto out_rtt; 1268 } 1269 1270 arena->rtt[lane] = RTT_INVALID; 1271 nd_region_release_lane(btt->nd_region, lane); 1272 1273 len -= cur_len; 1274 off += cur_len; 1275 sector += btt->sector_size >> SECTOR_SHIFT; 1276 } 1277 1278 return 0; 1279 1280 out_rtt: 1281 arena->rtt[lane] = RTT_INVALID; 1282 out_lane: 1283 nd_region_release_lane(btt->nd_region, lane); 1284 return ret; 1285 } 1286 1287 /* 1288 * Normally, arena_{read,write}_bytes will take care of the initial offset 1289 * adjustment, but in the case of btt_is_badblock, where we query is_bad_pmem, 1290 * we need the final, raw namespace offset here 1291 */ 1292 static bool btt_is_badblock(struct btt *btt, struct arena_info *arena, 1293 u32 postmap) 1294 { 1295 u64 nsoff = adjust_initial_offset(arena->nd_btt, 1296 to_namespace_offset(arena, postmap)); 1297 sector_t phys_sector = nsoff >> 9; 1298 1299 return is_bad_pmem(btt->phys_bb, phys_sector, arena->internal_lbasize); 1300 } 1301 1302 static int btt_write_pg(struct btt *btt, struct bio_integrity_payload *bip, 1303 sector_t sector, struct page *page, unsigned int off, 1304 unsigned int len) 1305 { 1306 int ret = 0; 1307 struct arena_info *arena = NULL; 1308 u32 premap = 0, old_postmap, new_postmap, lane = 0, i; 1309 struct log_entry log; 1310 int sub; 1311 1312 while (len) { 1313 u32 cur_len; 1314 int e_flag; 1315 1316 retry: 1317 lane = nd_region_acquire_lane(btt->nd_region); 1318 1319 ret = lba_to_arena(btt, sector, &premap, &arena); 1320 if (ret) 1321 goto out_lane; 1322 cur_len = min(btt->sector_size, len); 1323 1324 if ((arena->flags & IB_FLAG_ERROR_MASK) != 0) { 1325 ret = -EIO; 1326 goto out_lane; 1327 } 1328 1329 if (btt_is_badblock(btt, arena, arena->freelist[lane].block)) 1330 arena->freelist[lane].has_err = 1; 1331 1332 if (mutex_is_locked(&arena->err_lock) 1333 || arena->freelist[lane].has_err) { 1334 nd_region_release_lane(btt->nd_region, lane); 1335 1336 ret = arena_clear_freelist_error(arena, lane); 1337 if (ret) 1338 return ret; 1339 1340 /* OK to acquire a different lane/free block */ 1341 goto retry; 1342 } 1343 1344 new_postmap = arena->freelist[lane].block; 1345 1346 /* Wait if the new block is being read from */ 1347 for (i = 0; i < arena->nfree; i++) 1348 while (arena->rtt[i] == (RTT_VALID | new_postmap)) 1349 cpu_relax(); 1350 1351 1352 if (new_postmap >= arena->internal_nlba) { 1353 ret = -EIO; 1354 goto out_lane; 1355 } 1356 1357 ret = btt_data_write(arena, new_postmap, page, off, cur_len); 1358 if (ret) 1359 goto out_lane; 1360 1361 if (bip) { 1362 ret = btt_rw_integrity(btt, bip, arena, new_postmap, 1363 WRITE); 1364 if (ret) 1365 goto out_lane; 1366 } 1367 1368 lock_map(arena, premap); 1369 ret = btt_map_read(arena, premap, &old_postmap, NULL, &e_flag, 1370 NVDIMM_IO_ATOMIC); 1371 if (ret) 1372 goto out_map; 1373 if (old_postmap >= arena->internal_nlba) { 1374 ret = -EIO; 1375 goto out_map; 1376 } 1377 if (e_flag) 1378 set_e_flag(old_postmap); 1379 1380 log.lba = cpu_to_le32(premap); 1381 log.old_map = cpu_to_le32(old_postmap); 1382 log.new_map = cpu_to_le32(new_postmap); 1383 log.seq = cpu_to_le32(arena->freelist[lane].seq); 1384 sub = arena->freelist[lane].sub; 1385 ret = btt_flog_write(arena, lane, sub, &log); 1386 if (ret) 1387 goto out_map; 1388 1389 ret = btt_map_write(arena, premap, new_postmap, 0, 0, 1390 NVDIMM_IO_ATOMIC); 1391 if (ret) 1392 goto out_map; 1393 1394 unlock_map(arena, premap); 1395 nd_region_release_lane(btt->nd_region, lane); 1396 1397 if (e_flag) { 1398 ret = arena_clear_freelist_error(arena, lane); 1399 if (ret) 1400 return ret; 1401 } 1402 1403 len -= cur_len; 1404 off += cur_len; 1405 sector += btt->sector_size >> SECTOR_SHIFT; 1406 } 1407 1408 return 0; 1409 1410 out_map: 1411 unlock_map(arena, premap); 1412 out_lane: 1413 nd_region_release_lane(btt->nd_region, lane); 1414 return ret; 1415 } 1416 1417 static int btt_do_bvec(struct btt *btt, struct bio_integrity_payload *bip, 1418 struct page *page, unsigned int len, unsigned int off, 1419 enum req_op op, sector_t sector) 1420 { 1421 int ret; 1422 1423 if (!op_is_write(op)) { 1424 ret = btt_read_pg(btt, bip, page, off, sector, len); 1425 flush_dcache_page(page); 1426 } else { 1427 flush_dcache_page(page); 1428 ret = btt_write_pg(btt, bip, sector, page, off, len); 1429 } 1430 1431 return ret; 1432 } 1433 1434 static void btt_submit_bio(struct bio *bio) 1435 { 1436 struct bio_integrity_payload *bip = bio_integrity(bio); 1437 struct btt *btt = bio->bi_bdev->bd_disk->private_data; 1438 struct bvec_iter iter; 1439 unsigned long start; 1440 struct bio_vec bvec; 1441 int err = 0; 1442 bool do_acct; 1443 1444 if (!bio_integrity_prep(bio)) 1445 return; 1446 1447 do_acct = blk_queue_io_stat(bio->bi_bdev->bd_disk->queue); 1448 if (do_acct) 1449 start = bio_start_io_acct(bio); 1450 bio_for_each_segment(bvec, bio, iter) { 1451 unsigned int len = bvec.bv_len; 1452 1453 if (len > PAGE_SIZE || len < btt->sector_size || 1454 len % btt->sector_size) { 1455 dev_err_ratelimited(&btt->nd_btt->dev, 1456 "unaligned bio segment (len: %d)\n", len); 1457 bio->bi_status = BLK_STS_IOERR; 1458 break; 1459 } 1460 1461 err = btt_do_bvec(btt, bip, bvec.bv_page, len, bvec.bv_offset, 1462 bio_op(bio), iter.bi_sector); 1463 if (err) { 1464 dev_err(&btt->nd_btt->dev, 1465 "io error in %s sector %lld, len %d,\n", 1466 (op_is_write(bio_op(bio))) ? "WRITE" : 1467 "READ", 1468 (unsigned long long) iter.bi_sector, len); 1469 bio->bi_status = errno_to_blk_status(err); 1470 break; 1471 } 1472 } 1473 if (do_acct) 1474 bio_end_io_acct(bio, start); 1475 1476 bio_endio(bio); 1477 } 1478 1479 static int btt_getgeo(struct gendisk *disk, struct hd_geometry *geo) 1480 { 1481 /* some standard values */ 1482 geo->heads = 1 << 6; 1483 geo->sectors = 1 << 5; 1484 geo->cylinders = get_capacity(disk) >> 11; 1485 return 0; 1486 } 1487 1488 static const struct block_device_operations btt_fops = { 1489 .owner = THIS_MODULE, 1490 .submit_bio = btt_submit_bio, 1491 .getgeo = btt_getgeo, 1492 }; 1493 1494 static int btt_blk_init(struct btt *btt) 1495 { 1496 struct nd_btt *nd_btt = btt->nd_btt; 1497 struct nd_namespace_common *ndns = nd_btt->ndns; 1498 struct queue_limits lim = { 1499 .logical_block_size = btt->sector_size, 1500 .max_hw_sectors = UINT_MAX, 1501 .max_integrity_segments = 1, 1502 .features = BLK_FEAT_SYNCHRONOUS, 1503 }; 1504 int rc; 1505 1506 if (btt_meta_size(btt) && IS_ENABLED(CONFIG_BLK_DEV_INTEGRITY)) { 1507 lim.integrity.metadata_size = btt_meta_size(btt); 1508 lim.integrity.tag_size = btt_meta_size(btt); 1509 } 1510 1511 btt->btt_disk = blk_alloc_disk(&lim, NUMA_NO_NODE); 1512 if (IS_ERR(btt->btt_disk)) 1513 return PTR_ERR(btt->btt_disk); 1514 1515 nvdimm_namespace_disk_name(ndns, btt->btt_disk->disk_name); 1516 btt->btt_disk->first_minor = 0; 1517 btt->btt_disk->fops = &btt_fops; 1518 btt->btt_disk->private_data = btt; 1519 1520 set_capacity(btt->btt_disk, btt->nlba * btt->sector_size >> 9); 1521 rc = device_add_disk(&btt->nd_btt->dev, btt->btt_disk, NULL); 1522 if (rc) 1523 goto out_cleanup_disk; 1524 1525 btt->nd_btt->size = btt->nlba * (u64)btt->sector_size; 1526 nvdimm_check_and_set_ro(btt->btt_disk); 1527 1528 return 0; 1529 1530 out_cleanup_disk: 1531 put_disk(btt->btt_disk); 1532 return rc; 1533 } 1534 1535 static void btt_blk_cleanup(struct btt *btt) 1536 { 1537 del_gendisk(btt->btt_disk); 1538 put_disk(btt->btt_disk); 1539 } 1540 1541 /** 1542 * btt_init - initialize a block translation table for the given device 1543 * @nd_btt: device with BTT geometry and backing device info 1544 * @rawsize: raw size in bytes of the backing device 1545 * @lbasize: lba size of the backing device 1546 * @uuid: A uuid for the backing device - this is stored on media 1547 * @nd_region: &struct nd_region for the REGION device 1548 * 1549 * Initialize a Block Translation Table on a backing device to provide 1550 * single sector power fail atomicity. 1551 * 1552 * Context: 1553 * Might sleep. 1554 * 1555 * Returns: 1556 * Pointer to a new struct btt on success, NULL on failure. 1557 */ 1558 static struct btt *btt_init(struct nd_btt *nd_btt, unsigned long long rawsize, 1559 u32 lbasize, uuid_t *uuid, 1560 struct nd_region *nd_region) 1561 { 1562 int ret; 1563 struct btt *btt; 1564 struct nd_namespace_io *nsio; 1565 struct device *dev = &nd_btt->dev; 1566 1567 btt = devm_kzalloc(dev, sizeof(struct btt), GFP_KERNEL); 1568 if (!btt) 1569 return NULL; 1570 1571 btt->nd_btt = nd_btt; 1572 btt->rawsize = rawsize; 1573 btt->lbasize = lbasize; 1574 btt->sector_size = ((lbasize >= 4096) ? 4096 : 512); 1575 INIT_LIST_HEAD(&btt->arena_list); 1576 mutex_init(&btt->init_lock); 1577 btt->nd_region = nd_region; 1578 nsio = to_nd_namespace_io(&nd_btt->ndns->dev); 1579 btt->phys_bb = &nsio->bb; 1580 1581 ret = discover_arenas(btt); 1582 if (ret) { 1583 dev_err(dev, "init: error in arena_discover: %d\n", ret); 1584 return NULL; 1585 } 1586 1587 if (btt->init_state != INIT_READY && nd_region->ro) { 1588 dev_warn(dev, "%s is read-only, unable to init btt metadata\n", 1589 dev_name(&nd_region->dev)); 1590 return NULL; 1591 } else if (btt->init_state != INIT_READY) { 1592 btt->num_arenas = (rawsize / ARENA_MAX_SIZE) + 1593 ((rawsize % ARENA_MAX_SIZE) ? 1 : 0); 1594 dev_dbg(dev, "init: %d arenas for %llu rawsize\n", 1595 btt->num_arenas, rawsize); 1596 1597 ret = create_arenas(btt); 1598 if (ret) { 1599 dev_info(dev, "init: create_arenas: %d\n", ret); 1600 return NULL; 1601 } 1602 1603 ret = btt_meta_init(btt); 1604 if (ret) { 1605 dev_err(dev, "init: error in meta_init: %d\n", ret); 1606 return NULL; 1607 } 1608 } 1609 1610 ret = btt_blk_init(btt); 1611 if (ret) { 1612 dev_err(dev, "init: error in blk_init: %d\n", ret); 1613 return NULL; 1614 } 1615 1616 btt_debugfs_init(btt); 1617 1618 return btt; 1619 } 1620 1621 /** 1622 * btt_fini - de-initialize a BTT 1623 * @btt: the BTT handle that was generated by btt_init 1624 * 1625 * De-initialize a Block Translation Table on device removal 1626 * 1627 * Context: 1628 * Might sleep. 1629 */ 1630 static void btt_fini(struct btt *btt) 1631 { 1632 if (btt) { 1633 btt_blk_cleanup(btt); 1634 free_arenas(btt); 1635 debugfs_remove_recursive(btt->debugfs_dir); 1636 } 1637 } 1638 1639 int nvdimm_namespace_attach_btt(struct nd_namespace_common *ndns) 1640 { 1641 struct nd_btt *nd_btt = to_nd_btt(ndns->claim); 1642 struct nd_region *nd_region; 1643 struct btt_sb *btt_sb; 1644 struct btt *btt; 1645 size_t size, rawsize; 1646 int rc; 1647 1648 if (!nd_btt->uuid || !nd_btt->ndns || !nd_btt->lbasize) { 1649 dev_dbg(&nd_btt->dev, "incomplete btt configuration\n"); 1650 return -ENODEV; 1651 } 1652 1653 btt_sb = devm_kzalloc(&nd_btt->dev, sizeof(*btt_sb), GFP_KERNEL); 1654 if (!btt_sb) 1655 return -ENOMEM; 1656 1657 size = nvdimm_namespace_capacity(ndns); 1658 rc = devm_namespace_enable(&nd_btt->dev, ndns, size); 1659 if (rc) 1660 return rc; 1661 1662 /* 1663 * If this returns < 0, that is ok as it just means there wasn't 1664 * an existing BTT, and we're creating a new one. We still need to 1665 * call this as we need the version dependent fields in nd_btt to be 1666 * set correctly based on the holder class 1667 */ 1668 nd_btt_version(nd_btt, ndns, btt_sb); 1669 1670 rawsize = size - nd_btt->initial_offset; 1671 if (rawsize < ARENA_MIN_SIZE) { 1672 dev_dbg(&nd_btt->dev, "%s must be at least %ld bytes\n", 1673 dev_name(&ndns->dev), 1674 ARENA_MIN_SIZE + nd_btt->initial_offset); 1675 return -ENXIO; 1676 } 1677 nd_region = to_nd_region(nd_btt->dev.parent); 1678 btt = btt_init(nd_btt, rawsize, nd_btt->lbasize, nd_btt->uuid, 1679 nd_region); 1680 if (!btt) 1681 return -ENOMEM; 1682 nd_btt->btt = btt; 1683 1684 return 0; 1685 } 1686 EXPORT_SYMBOL(nvdimm_namespace_attach_btt); 1687 1688 int nvdimm_namespace_detach_btt(struct nd_btt *nd_btt) 1689 { 1690 struct btt *btt = nd_btt->btt; 1691 1692 btt_fini(btt); 1693 nd_btt->btt = NULL; 1694 1695 return 0; 1696 } 1697 EXPORT_SYMBOL(nvdimm_namespace_detach_btt); 1698 1699 static int __init nd_btt_init(void) 1700 { 1701 int rc = 0; 1702 1703 debugfs_root = debugfs_create_dir("btt", NULL); 1704 if (IS_ERR_OR_NULL(debugfs_root)) 1705 rc = -ENXIO; 1706 1707 return rc; 1708 } 1709 1710 static void __exit nd_btt_exit(void) 1711 { 1712 debugfs_remove_recursive(debugfs_root); 1713 } 1714 1715 MODULE_ALIAS_ND_DEVICE(ND_DEVICE_BTT); 1716 MODULE_AUTHOR("Vishal Verma <vishal.l.verma@linux.intel.com>"); 1717 MODULE_DESCRIPTION("NVDIMM Block Translation Table"); 1718 MODULE_LICENSE("GPL v2"); 1719 module_init(nd_btt_init); 1720 module_exit(nd_btt_exit); 1721