1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright(c) 2013-2015 Intel Corporation. All rights reserved. 4 */ 5 #include <linux/device.h> 6 #include <linux/ndctl.h> 7 #include <linux/uuid.h> 8 #include <linux/slab.h> 9 #include <linux/io.h> 10 #include <linux/nd.h> 11 #include "nd-core.h" 12 #include "label.h" 13 #include "nd.h" 14 15 static guid_t nvdimm_btt_guid; 16 static guid_t nvdimm_btt2_guid; 17 static guid_t nvdimm_pfn_guid; 18 static guid_t nvdimm_dax_guid; 19 20 static uuid_t nvdimm_btt_uuid; 21 static uuid_t nvdimm_btt2_uuid; 22 static uuid_t nvdimm_pfn_uuid; 23 static uuid_t nvdimm_dax_uuid; 24 25 static uuid_t cxl_region_uuid; 26 static uuid_t cxl_namespace_uuid; 27 28 static const char NSINDEX_SIGNATURE[] = "NAMESPACE_INDEX\0"; 29 30 static u32 best_seq(u32 a, u32 b) 31 { 32 a &= NSINDEX_SEQ_MASK; 33 b &= NSINDEX_SEQ_MASK; 34 35 if (a == 0 || a == b) 36 return b; 37 else if (b == 0) 38 return a; 39 else if (nd_inc_seq(a) == b) 40 return b; 41 else 42 return a; 43 } 44 45 unsigned sizeof_namespace_label(struct nvdimm_drvdata *ndd) 46 { 47 return ndd->nslabel_size; 48 } 49 50 static size_t __sizeof_namespace_index(u32 nslot) 51 { 52 return ALIGN(sizeof(struct nd_namespace_index) + DIV_ROUND_UP(nslot, 8), 53 NSINDEX_ALIGN); 54 } 55 56 static int __nvdimm_num_label_slots(struct nvdimm_drvdata *ndd, 57 size_t index_size) 58 { 59 return (ndd->nsarea.config_size - index_size * 2) / 60 sizeof_namespace_label(ndd); 61 } 62 63 int nvdimm_num_label_slots(struct nvdimm_drvdata *ndd) 64 { 65 u32 tmp_nslot, n; 66 67 tmp_nslot = ndd->nsarea.config_size / sizeof_namespace_label(ndd); 68 n = __sizeof_namespace_index(tmp_nslot) / NSINDEX_ALIGN; 69 70 return __nvdimm_num_label_slots(ndd, NSINDEX_ALIGN * n); 71 } 72 73 size_t sizeof_namespace_index(struct nvdimm_drvdata *ndd) 74 { 75 u32 nslot, space, size; 76 77 /* 78 * Per UEFI 2.7, the minimum size of the Label Storage Area is large 79 * enough to hold 2 index blocks and 2 labels. The minimum index 80 * block size is 256 bytes. The label size is 128 for namespaces 81 * prior to version 1.2 and at minimum 256 for version 1.2 and later. 82 */ 83 nslot = nvdimm_num_label_slots(ndd); 84 space = ndd->nsarea.config_size - nslot * sizeof_namespace_label(ndd); 85 size = __sizeof_namespace_index(nslot) * 2; 86 if (size <= space && nslot >= 2) 87 return size / 2; 88 89 dev_err(ndd->dev, "label area (%d) too small to host (%d byte) labels\n", 90 ndd->nsarea.config_size, sizeof_namespace_label(ndd)); 91 return 0; 92 } 93 94 static int __nd_label_validate(struct nvdimm_drvdata *ndd) 95 { 96 /* 97 * On media label format consists of two index blocks followed 98 * by an array of labels. None of these structures are ever 99 * updated in place. A sequence number tracks the current 100 * active index and the next one to write, while labels are 101 * written to free slots. 102 * 103 * +------------+ 104 * | | 105 * | nsindex0 | 106 * | | 107 * +------------+ 108 * | | 109 * | nsindex1 | 110 * | | 111 * +------------+ 112 * | label0 | 113 * +------------+ 114 * | label1 | 115 * +------------+ 116 * | | 117 * ....nslot... 118 * | | 119 * +------------+ 120 * | labelN | 121 * +------------+ 122 */ 123 struct nd_namespace_index *nsindex[] = { 124 to_namespace_index(ndd, 0), 125 to_namespace_index(ndd, 1), 126 }; 127 const int num_index = ARRAY_SIZE(nsindex); 128 struct device *dev = ndd->dev; 129 bool valid[2] = { 0 }; 130 int i, num_valid = 0; 131 u32 seq; 132 133 for (i = 0; i < num_index; i++) { 134 u32 nslot; 135 u8 sig[NSINDEX_SIG_LEN]; 136 u64 sum_save, sum, size; 137 unsigned int version, labelsize; 138 139 memcpy(sig, nsindex[i]->sig, NSINDEX_SIG_LEN); 140 if (memcmp(sig, NSINDEX_SIGNATURE, NSINDEX_SIG_LEN) != 0) { 141 dev_dbg(dev, "nsindex%d signature invalid\n", i); 142 continue; 143 } 144 145 /* label sizes larger than 128 arrived with v1.2 */ 146 version = __le16_to_cpu(nsindex[i]->major) * 100 147 + __le16_to_cpu(nsindex[i]->minor); 148 if (version >= 102) { 149 /* 150 * labelsize feeds the shift below; only 0 (128-byte) 151 * and 1 (256-byte) are valid -- a larger value would 152 * overflow or exceed the width of int. 153 */ 154 if (nsindex[i]->labelsize > 1) { 155 dev_dbg(dev, "nsindex%d labelsize: %d invalid\n", 156 i, nsindex[i]->labelsize); 157 continue; 158 } 159 labelsize = 1 << (7 + nsindex[i]->labelsize); 160 } else { 161 labelsize = 128; 162 } 163 164 if (labelsize != sizeof_namespace_label(ndd)) { 165 dev_dbg(dev, "nsindex%d labelsize %d invalid\n", 166 i, nsindex[i]->labelsize); 167 continue; 168 } 169 170 sum_save = __le64_to_cpu(nsindex[i]->checksum); 171 nsindex[i]->checksum = __cpu_to_le64(0); 172 sum = nd_fletcher64(nsindex[i], sizeof_namespace_index(ndd), 1); 173 nsindex[i]->checksum = __cpu_to_le64(sum_save); 174 if (sum != sum_save) { 175 dev_dbg(dev, "nsindex%d checksum invalid\n", i); 176 continue; 177 } 178 179 seq = __le32_to_cpu(nsindex[i]->seq); 180 if ((seq & NSINDEX_SEQ_MASK) == 0) { 181 dev_dbg(dev, "nsindex%d sequence: %#x invalid\n", i, seq); 182 continue; 183 } 184 185 /* sanity check the index against expected values */ 186 if (__le64_to_cpu(nsindex[i]->myoff) 187 != i * sizeof_namespace_index(ndd)) { 188 dev_dbg(dev, "nsindex%d myoff: %#llx invalid\n", 189 i, (unsigned long long) 190 __le64_to_cpu(nsindex[i]->myoff)); 191 continue; 192 } 193 if (__le64_to_cpu(nsindex[i]->otheroff) 194 != (!i) * sizeof_namespace_index(ndd)) { 195 dev_dbg(dev, "nsindex%d otheroff: %#llx invalid\n", 196 i, (unsigned long long) 197 __le64_to_cpu(nsindex[i]->otheroff)); 198 continue; 199 } 200 if (__le64_to_cpu(nsindex[i]->labeloff) 201 != 2 * sizeof_namespace_index(ndd)) { 202 dev_dbg(dev, "nsindex%d labeloff: %#llx invalid\n", 203 i, (unsigned long long) 204 __le64_to_cpu(nsindex[i]->labeloff)); 205 continue; 206 } 207 208 size = __le64_to_cpu(nsindex[i]->mysize); 209 if (size > sizeof_namespace_index(ndd) 210 || size < sizeof(struct nd_namespace_index)) { 211 dev_dbg(dev, "nsindex%d mysize: %#llx invalid\n", i, size); 212 continue; 213 } 214 215 nslot = __le32_to_cpu(nsindex[i]->nslot); 216 if ((u64)nslot * sizeof_namespace_label(ndd) 217 + 2 * sizeof_namespace_index(ndd) 218 > ndd->nsarea.config_size) { 219 dev_dbg(dev, "nsindex%d nslot: %u invalid, config_size: %#x\n", 220 i, nslot, ndd->nsarea.config_size); 221 continue; 222 } 223 valid[i] = true; 224 num_valid++; 225 } 226 227 switch (num_valid) { 228 case 0: 229 break; 230 case 1: 231 for (i = 0; i < num_index; i++) 232 if (valid[i]) 233 return i; 234 /* can't have num_valid > 0 but valid[] = { false, false } */ 235 WARN_ON(1); 236 break; 237 default: 238 /* pick the best index... */ 239 seq = best_seq(__le32_to_cpu(nsindex[0]->seq), 240 __le32_to_cpu(nsindex[1]->seq)); 241 if (seq == (__le32_to_cpu(nsindex[1]->seq) & NSINDEX_SEQ_MASK)) 242 return 1; 243 else 244 return 0; 245 break; 246 } 247 248 return -1; 249 } 250 251 static int nd_label_validate(struct nvdimm_drvdata *ndd) 252 { 253 /* 254 * In order to probe for and validate namespace index blocks we 255 * need to know the size of the labels, and we can't trust the 256 * size of the labels until we validate the index blocks. 257 * Resolve this dependency loop by probing for known label 258 * sizes, but default to v1.2 256-byte namespace labels if 259 * discovery fails. 260 */ 261 int label_size[] = { 128, 256 }; 262 int i, rc; 263 264 for (i = 0; i < ARRAY_SIZE(label_size); i++) { 265 ndd->nslabel_size = label_size[i]; 266 rc = __nd_label_validate(ndd); 267 if (rc >= 0) 268 return rc; 269 } 270 271 return -1; 272 } 273 274 static void nd_label_copy(struct nvdimm_drvdata *ndd, 275 struct nd_namespace_index *dst, 276 struct nd_namespace_index *src) 277 { 278 /* just exit if either destination or source is NULL */ 279 if (!dst || !src) 280 return; 281 282 memcpy(dst, src, sizeof_namespace_index(ndd)); 283 } 284 285 static struct nd_namespace_label *nd_label_base(struct nvdimm_drvdata *ndd) 286 { 287 void *base = to_namespace_index(ndd, 0); 288 289 return base + 2 * sizeof_namespace_index(ndd); 290 } 291 292 static int to_slot(struct nvdimm_drvdata *ndd, 293 struct nd_namespace_label *nd_label) 294 { 295 unsigned long label, base; 296 297 label = (unsigned long) nd_label; 298 base = (unsigned long) nd_label_base(ndd); 299 300 return (label - base) / sizeof_namespace_label(ndd); 301 } 302 303 static struct nd_namespace_label *to_label(struct nvdimm_drvdata *ndd, int slot) 304 { 305 unsigned long label, base; 306 307 base = (unsigned long) nd_label_base(ndd); 308 label = base + sizeof_namespace_label(ndd) * slot; 309 310 return (struct nd_namespace_label *) label; 311 } 312 313 #define for_each_clear_bit_le(bit, addr, size) \ 314 for ((bit) = find_next_zero_bit_le((addr), (size), 0); \ 315 (bit) < (size); \ 316 (bit) = find_next_zero_bit_le((addr), (size), (bit) + 1)) 317 318 /** 319 * preamble_index - common variable initialization for nd_label_* routines 320 * @ndd: dimm container for the relevant label set 321 * @idx: namespace_index index 322 * @nsindex_out: on return set to the currently active namespace index 323 * @free: on return set to the free label bitmap in the index 324 * @nslot: on return set to the number of slots in the label space 325 */ 326 static bool preamble_index(struct nvdimm_drvdata *ndd, int idx, 327 struct nd_namespace_index **nsindex_out, 328 unsigned long **free, u32 *nslot) 329 { 330 struct nd_namespace_index *nsindex; 331 332 nsindex = to_namespace_index(ndd, idx); 333 if (nsindex == NULL) 334 return false; 335 336 *free = (unsigned long *) nsindex->free; 337 *nslot = __le32_to_cpu(nsindex->nslot); 338 *nsindex_out = nsindex; 339 340 return true; 341 } 342 343 char *nd_label_gen_id(struct nd_label_id *label_id, const uuid_t *uuid, 344 u32 flags) 345 { 346 if (!label_id || !uuid) 347 return NULL; 348 snprintf(label_id->id, ND_LABEL_ID_SIZE, "pmem-%pUb", uuid); 349 return label_id->id; 350 } 351 352 static bool preamble_current(struct nvdimm_drvdata *ndd, 353 struct nd_namespace_index **nsindex, 354 unsigned long **free, u32 *nslot) 355 { 356 return preamble_index(ndd, ndd->ns_current, nsindex, 357 free, nslot); 358 } 359 360 static bool preamble_next(struct nvdimm_drvdata *ndd, 361 struct nd_namespace_index **nsindex, 362 unsigned long **free, u32 *nslot) 363 { 364 return preamble_index(ndd, ndd->ns_next, nsindex, 365 free, nslot); 366 } 367 368 static bool nsl_validate_checksum(struct nvdimm_drvdata *ndd, 369 struct nd_namespace_label *nd_label) 370 { 371 u64 sum, sum_save; 372 373 if (!ndd->cxl && !efi_namespace_label_has(ndd, checksum)) 374 return true; 375 376 sum_save = nsl_get_checksum(ndd, nd_label); 377 nsl_set_checksum(ndd, nd_label, 0); 378 sum = nd_fletcher64(nd_label, sizeof_namespace_label(ndd), 1); 379 nsl_set_checksum(ndd, nd_label, sum_save); 380 return sum == sum_save; 381 } 382 383 static void nsl_calculate_checksum(struct nvdimm_drvdata *ndd, 384 struct nd_namespace_label *nd_label) 385 { 386 u64 sum; 387 388 if (!ndd->cxl && !efi_namespace_label_has(ndd, checksum)) 389 return; 390 nsl_set_checksum(ndd, nd_label, 0); 391 sum = nd_fletcher64(nd_label, sizeof_namespace_label(ndd), 1); 392 nsl_set_checksum(ndd, nd_label, sum); 393 } 394 395 static bool slot_valid(struct nvdimm_drvdata *ndd, 396 struct nd_namespace_label *nd_label, u32 slot) 397 { 398 bool valid; 399 400 /* check that we are written where we expect to be written */ 401 if (slot != nsl_get_slot(ndd, nd_label)) 402 return false; 403 valid = nsl_validate_checksum(ndd, nd_label); 404 if (!valid) 405 dev_dbg(ndd->dev, "fail checksum. slot: %d\n", slot); 406 return valid; 407 } 408 409 int nd_label_reserve_dpa(struct nvdimm_drvdata *ndd) 410 { 411 struct nd_namespace_index *nsindex; 412 unsigned long *free; 413 u32 nslot, slot; 414 415 if (!preamble_current(ndd, &nsindex, &free, &nslot)) 416 return 0; /* no label, nothing to reserve */ 417 418 for_each_clear_bit_le(slot, free, nslot) { 419 struct nd_namespace_label *nd_label; 420 struct nd_region *nd_region = NULL; 421 struct nd_label_id label_id; 422 struct resource *res; 423 uuid_t label_uuid; 424 u32 flags; 425 426 nd_label = to_label(ndd, slot); 427 428 if (!slot_valid(ndd, nd_label, slot)) 429 continue; 430 431 nsl_get_uuid(ndd, nd_label, &label_uuid); 432 flags = nsl_get_flags(ndd, nd_label); 433 nd_label_gen_id(&label_id, &label_uuid, flags); 434 res = nvdimm_allocate_dpa(ndd, &label_id, 435 nsl_get_dpa(ndd, nd_label), 436 nsl_get_rawsize(ndd, nd_label)); 437 nd_dbg_dpa(nd_region, ndd, res, "reserve\n"); 438 if (!res) 439 return -EBUSY; 440 } 441 442 return 0; 443 } 444 445 int nd_label_data_init(struct nvdimm_drvdata *ndd) 446 { 447 size_t config_size, read_size, max_xfer, offset; 448 struct nd_namespace_index *nsindex; 449 unsigned int i; 450 int rc = 0; 451 u32 nslot; 452 453 if (ndd->data) 454 return 0; 455 456 if (ndd->nsarea.status || ndd->nsarea.max_xfer == 0 || 457 ndd->nsarea.config_size == 0) { 458 dev_dbg(ndd->dev, "failed to init config data area: (%u:%u)\n", 459 ndd->nsarea.max_xfer, ndd->nsarea.config_size); 460 return -ENXIO; 461 } 462 463 /* 464 * We need to determine the maximum index area as this is the section 465 * we must read and validate before we can start processing labels. 466 * 467 * If the area is too small to contain the two indexes and 2 labels 468 * then we abort. 469 * 470 * Start at a label size of 128 as this should result in the largest 471 * possible namespace index size. 472 */ 473 ndd->nslabel_size = 128; 474 read_size = sizeof_namespace_index(ndd) * 2; 475 if (!read_size) 476 return -ENXIO; 477 478 /* Allocate config data */ 479 config_size = ndd->nsarea.config_size; 480 ndd->data = kvzalloc(config_size, GFP_KERNEL); 481 if (!ndd->data) 482 return -ENOMEM; 483 484 /* 485 * We want to guarantee as few reads as possible while conserving 486 * memory. To do that we figure out how much unused space will be left 487 * in the last read, divide that by the total number of reads it is 488 * going to take given our maximum transfer size, and then reduce our 489 * maximum transfer size based on that result. 490 */ 491 max_xfer = min_t(size_t, ndd->nsarea.max_xfer, config_size); 492 if (read_size < max_xfer) { 493 /* trim waste */ 494 max_xfer -= ((max_xfer - 1) - (config_size - 1) % max_xfer) / 495 DIV_ROUND_UP(config_size, max_xfer); 496 /* make certain we read indexes in exactly 1 read */ 497 if (max_xfer < read_size) 498 max_xfer = read_size; 499 } 500 501 /* Make our initial read size a multiple of max_xfer size */ 502 read_size = min(DIV_ROUND_UP(read_size, max_xfer) * max_xfer, 503 config_size); 504 505 /* Read the index data */ 506 rc = nvdimm_get_config_data(ndd, ndd->data, 0, read_size); 507 if (rc) 508 goto out_err; 509 510 /* Validate index data, if not valid assume all labels are invalid */ 511 ndd->ns_current = nd_label_validate(ndd); 512 if (ndd->ns_current < 0) 513 return 0; 514 515 /* Record our index values */ 516 ndd->ns_next = nd_label_next_nsindex(ndd->ns_current); 517 518 /* Copy "current" index on top of the "next" index */ 519 nsindex = to_current_namespace_index(ndd); 520 nd_label_copy(ndd, to_next_namespace_index(ndd), nsindex); 521 522 /* Determine starting offset for label data */ 523 offset = __le64_to_cpu(nsindex->labeloff); 524 nslot = __le32_to_cpu(nsindex->nslot); 525 526 /* Loop through the free list pulling in any active labels */ 527 for (i = 0; i < nslot; i++, offset += ndd->nslabel_size) { 528 size_t label_read_size; 529 530 /* zero out the unused labels */ 531 if (test_bit_le(i, nsindex->free)) { 532 memset(ndd->data + offset, 0, ndd->nslabel_size); 533 continue; 534 } 535 536 /* if we already read past here then just continue */ 537 if (offset + ndd->nslabel_size <= read_size) 538 continue; 539 540 /* if we haven't read in a while reset our read_size offset */ 541 if (read_size < offset) 542 read_size = offset; 543 544 /* determine how much more will be read after this next call. */ 545 label_read_size = offset + ndd->nslabel_size - read_size; 546 label_read_size = DIV_ROUND_UP(label_read_size, max_xfer) * 547 max_xfer; 548 549 /* truncate last read if needed */ 550 if (read_size + label_read_size > config_size) 551 label_read_size = config_size - read_size; 552 553 /* Read the label data */ 554 rc = nvdimm_get_config_data(ndd, ndd->data + read_size, 555 read_size, label_read_size); 556 if (rc) 557 goto out_err; 558 559 /* push read_size to next read offset */ 560 read_size += label_read_size; 561 } 562 563 dev_dbg(ndd->dev, "len: %zu rc: %d\n", offset, rc); 564 out_err: 565 return rc; 566 } 567 568 int nd_label_active_count(struct nvdimm_drvdata *ndd) 569 { 570 struct nd_namespace_index *nsindex; 571 unsigned long *free; 572 u32 nslot, slot; 573 int count = 0; 574 575 if (!preamble_current(ndd, &nsindex, &free, &nslot)) 576 return 0; 577 578 for_each_clear_bit_le(slot, free, nslot) { 579 struct nd_namespace_label *nd_label; 580 581 nd_label = to_label(ndd, slot); 582 583 if (!slot_valid(ndd, nd_label, slot)) { 584 u32 label_slot = nsl_get_slot(ndd, nd_label); 585 u64 size = nsl_get_rawsize(ndd, nd_label); 586 u64 dpa = nsl_get_dpa(ndd, nd_label); 587 588 dev_dbg(ndd->dev, 589 "slot%d invalid slot: %d dpa: %llx size: %llx\n", 590 slot, label_slot, dpa, size); 591 continue; 592 } 593 count++; 594 } 595 return count; 596 } 597 598 struct nd_namespace_label *nd_label_active(struct nvdimm_drvdata *ndd, int n) 599 { 600 struct nd_namespace_index *nsindex; 601 unsigned long *free; 602 u32 nslot, slot; 603 604 if (!preamble_current(ndd, &nsindex, &free, &nslot)) 605 return NULL; 606 607 for_each_clear_bit_le(slot, free, nslot) { 608 struct nd_namespace_label *nd_label; 609 610 nd_label = to_label(ndd, slot); 611 if (!slot_valid(ndd, nd_label, slot)) 612 continue; 613 614 if (n-- == 0) 615 return to_label(ndd, slot); 616 } 617 618 return NULL; 619 } 620 621 u32 nd_label_alloc_slot(struct nvdimm_drvdata *ndd) 622 { 623 struct nd_namespace_index *nsindex; 624 unsigned long *free; 625 u32 nslot, slot; 626 627 if (!preamble_next(ndd, &nsindex, &free, &nslot)) 628 return UINT_MAX; 629 630 WARN_ON(!is_nvdimm_bus_locked(ndd->dev)); 631 632 slot = find_next_bit_le(free, nslot, 0); 633 if (slot == nslot) 634 return UINT_MAX; 635 636 clear_bit_le(slot, free); 637 638 return slot; 639 } 640 641 bool nd_label_free_slot(struct nvdimm_drvdata *ndd, u32 slot) 642 { 643 struct nd_namespace_index *nsindex; 644 unsigned long *free; 645 u32 nslot; 646 647 if (!preamble_next(ndd, &nsindex, &free, &nslot)) 648 return false; 649 650 WARN_ON(!is_nvdimm_bus_locked(ndd->dev)); 651 652 if (slot < nslot) 653 return !test_and_set_bit_le(slot, free); 654 return false; 655 } 656 657 u32 nd_label_nfree(struct nvdimm_drvdata *ndd) 658 { 659 struct nd_namespace_index *nsindex; 660 unsigned long *free; 661 u32 nslot; 662 663 WARN_ON(!is_nvdimm_bus_locked(ndd->dev)); 664 665 if (!preamble_next(ndd, &nsindex, &free, &nslot)) 666 return nvdimm_num_label_slots(ndd); 667 668 return bitmap_weight(free, nslot); 669 } 670 671 static int nd_label_write_index(struct nvdimm_drvdata *ndd, int index, u32 seq, 672 unsigned long flags) 673 { 674 struct nd_namespace_index *nsindex; 675 unsigned long offset; 676 u64 checksum; 677 u32 nslot; 678 int rc; 679 680 nsindex = to_namespace_index(ndd, index); 681 if (flags & ND_NSINDEX_INIT) 682 nslot = nvdimm_num_label_slots(ndd); 683 else 684 nslot = __le32_to_cpu(nsindex->nslot); 685 686 memcpy(nsindex->sig, NSINDEX_SIGNATURE, NSINDEX_SIG_LEN); 687 memset(&nsindex->flags, 0, 3); 688 nsindex->labelsize = sizeof_namespace_label(ndd) >> 8; 689 nsindex->seq = __cpu_to_le32(seq); 690 offset = (unsigned long) nsindex 691 - (unsigned long) to_namespace_index(ndd, 0); 692 nsindex->myoff = __cpu_to_le64(offset); 693 nsindex->mysize = __cpu_to_le64(sizeof_namespace_index(ndd)); 694 offset = (unsigned long) to_namespace_index(ndd, 695 nd_label_next_nsindex(index)) 696 - (unsigned long) to_namespace_index(ndd, 0); 697 nsindex->otheroff = __cpu_to_le64(offset); 698 offset = (unsigned long) nd_label_base(ndd) 699 - (unsigned long) to_namespace_index(ndd, 0); 700 nsindex->labeloff = __cpu_to_le64(offset); 701 nsindex->nslot = __cpu_to_le32(nslot); 702 nsindex->major = __cpu_to_le16(1); 703 if (sizeof_namespace_label(ndd) < 256) 704 nsindex->minor = __cpu_to_le16(1); 705 else 706 nsindex->minor = __cpu_to_le16(2); 707 nsindex->checksum = __cpu_to_le64(0); 708 if (flags & ND_NSINDEX_INIT) { 709 unsigned long *free = (unsigned long *) nsindex->free; 710 u32 nfree = ALIGN(nslot, BITS_PER_LONG); 711 int last_bits, i; 712 713 memset(nsindex->free, 0xff, nfree / 8); 714 for (i = 0, last_bits = nfree - nslot; i < last_bits; i++) 715 clear_bit_le(nslot + i, free); 716 } 717 checksum = nd_fletcher64(nsindex, sizeof_namespace_index(ndd), 1); 718 nsindex->checksum = __cpu_to_le64(checksum); 719 rc = nvdimm_set_config_data(ndd, __le64_to_cpu(nsindex->myoff), 720 nsindex, sizeof_namespace_index(ndd)); 721 if (rc < 0) 722 return rc; 723 724 if (flags & ND_NSINDEX_INIT) 725 return 0; 726 727 /* copy the index we just wrote to the new 'next' */ 728 WARN_ON(index != ndd->ns_next); 729 nd_label_copy(ndd, to_current_namespace_index(ndd), nsindex); 730 ndd->ns_current = nd_label_next_nsindex(ndd->ns_current); 731 ndd->ns_next = nd_label_next_nsindex(ndd->ns_next); 732 WARN_ON(ndd->ns_current == ndd->ns_next); 733 734 return 0; 735 } 736 737 static unsigned long nd_label_offset(struct nvdimm_drvdata *ndd, 738 struct nd_namespace_label *nd_label) 739 { 740 return (unsigned long) nd_label 741 - (unsigned long) to_namespace_index(ndd, 0); 742 } 743 744 static enum nvdimm_claim_class guid_to_nvdimm_cclass(guid_t *guid) 745 { 746 if (guid_equal(guid, &nvdimm_btt_guid)) 747 return NVDIMM_CCLASS_BTT; 748 else if (guid_equal(guid, &nvdimm_btt2_guid)) 749 return NVDIMM_CCLASS_BTT2; 750 else if (guid_equal(guid, &nvdimm_pfn_guid)) 751 return NVDIMM_CCLASS_PFN; 752 else if (guid_equal(guid, &nvdimm_dax_guid)) 753 return NVDIMM_CCLASS_DAX; 754 else if (guid_equal(guid, &guid_null)) 755 return NVDIMM_CCLASS_NONE; 756 757 return NVDIMM_CCLASS_UNKNOWN; 758 } 759 760 /* CXL labels store UUIDs instead of GUIDs for the same data */ 761 static enum nvdimm_claim_class uuid_to_nvdimm_cclass(uuid_t *uuid) 762 { 763 if (uuid_equal(uuid, &nvdimm_btt_uuid)) 764 return NVDIMM_CCLASS_BTT; 765 else if (uuid_equal(uuid, &nvdimm_btt2_uuid)) 766 return NVDIMM_CCLASS_BTT2; 767 else if (uuid_equal(uuid, &nvdimm_pfn_uuid)) 768 return NVDIMM_CCLASS_PFN; 769 else if (uuid_equal(uuid, &nvdimm_dax_uuid)) 770 return NVDIMM_CCLASS_DAX; 771 else if (uuid_equal(uuid, &uuid_null)) 772 return NVDIMM_CCLASS_NONE; 773 774 return NVDIMM_CCLASS_UNKNOWN; 775 } 776 777 static const guid_t *to_abstraction_guid(enum nvdimm_claim_class claim_class, 778 guid_t *target) 779 { 780 if (claim_class == NVDIMM_CCLASS_BTT) 781 return &nvdimm_btt_guid; 782 else if (claim_class == NVDIMM_CCLASS_BTT2) 783 return &nvdimm_btt2_guid; 784 else if (claim_class == NVDIMM_CCLASS_PFN) 785 return &nvdimm_pfn_guid; 786 else if (claim_class == NVDIMM_CCLASS_DAX) 787 return &nvdimm_dax_guid; 788 else if (claim_class == NVDIMM_CCLASS_UNKNOWN) { 789 /* 790 * If we're modifying a namespace for which we don't 791 * know the claim_class, don't touch the existing guid. 792 */ 793 return target; 794 } else 795 return &guid_null; 796 } 797 798 /* CXL labels store UUIDs instead of GUIDs for the same data */ 799 static const uuid_t *to_abstraction_uuid(enum nvdimm_claim_class claim_class, 800 uuid_t *target) 801 { 802 if (claim_class == NVDIMM_CCLASS_BTT) 803 return &nvdimm_btt_uuid; 804 else if (claim_class == NVDIMM_CCLASS_BTT2) 805 return &nvdimm_btt2_uuid; 806 else if (claim_class == NVDIMM_CCLASS_PFN) 807 return &nvdimm_pfn_uuid; 808 else if (claim_class == NVDIMM_CCLASS_DAX) 809 return &nvdimm_dax_uuid; 810 else if (claim_class == NVDIMM_CCLASS_UNKNOWN) { 811 /* 812 * If we're modifying a namespace for which we don't 813 * know the claim_class, don't touch the existing uuid. 814 */ 815 return target; 816 } else 817 return &uuid_null; 818 } 819 820 static void reap_victim(struct nd_mapping *nd_mapping, 821 struct nd_label_ent *victim) 822 { 823 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 824 u32 slot = to_slot(ndd, victim->label); 825 826 dev_dbg(ndd->dev, "free: %d\n", slot); 827 nd_label_free_slot(ndd, slot); 828 victim->label = NULL; 829 } 830 831 static void nsl_set_type_guid(struct nvdimm_drvdata *ndd, 832 struct nd_namespace_label *nd_label, guid_t *guid) 833 { 834 if (efi_namespace_label_has(ndd, type_guid)) 835 guid_copy(&nd_label->efi.type_guid, guid); 836 } 837 838 bool nsl_validate_type_guid(struct nvdimm_drvdata *ndd, 839 struct nd_namespace_label *nd_label, guid_t *guid) 840 { 841 if (ndd->cxl || !efi_namespace_label_has(ndd, type_guid)) 842 return true; 843 if (!guid_equal(&nd_label->efi.type_guid, guid)) { 844 dev_dbg(ndd->dev, "expect type_guid %pUb got %pUb\n", guid, 845 &nd_label->efi.type_guid); 846 return false; 847 } 848 return true; 849 } 850 851 static void nsl_set_claim_class(struct nvdimm_drvdata *ndd, 852 struct nd_namespace_label *nd_label, 853 enum nvdimm_claim_class claim_class) 854 { 855 if (ndd->cxl) { 856 uuid_t uuid; 857 858 import_uuid(&uuid, nd_label->cxl.abstraction_uuid); 859 export_uuid(nd_label->cxl.abstraction_uuid, 860 to_abstraction_uuid(claim_class, &uuid)); 861 return; 862 } 863 864 if (!efi_namespace_label_has(ndd, abstraction_guid)) 865 return; 866 guid_copy(&nd_label->efi.abstraction_guid, 867 to_abstraction_guid(claim_class, 868 &nd_label->efi.abstraction_guid)); 869 } 870 871 enum nvdimm_claim_class nsl_get_claim_class(struct nvdimm_drvdata *ndd, 872 struct nd_namespace_label *nd_label) 873 { 874 if (ndd->cxl) { 875 uuid_t uuid; 876 877 import_uuid(&uuid, nd_label->cxl.abstraction_uuid); 878 return uuid_to_nvdimm_cclass(&uuid); 879 } 880 if (!efi_namespace_label_has(ndd, abstraction_guid)) 881 return NVDIMM_CCLASS_NONE; 882 return guid_to_nvdimm_cclass(&nd_label->efi.abstraction_guid); 883 } 884 885 static int __pmem_label_update(struct nd_region *nd_region, 886 struct nd_mapping *nd_mapping, struct nd_namespace_pmem *nspm, 887 int pos, unsigned long flags) 888 { 889 struct nd_namespace_common *ndns = &nspm->nsio.common; 890 struct nd_interleave_set *nd_set = nd_region->nd_set; 891 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 892 struct nd_namespace_label *nd_label; 893 struct nd_namespace_index *nsindex; 894 struct nd_label_ent *label_ent; 895 struct nd_label_id label_id; 896 struct resource *res; 897 unsigned long *free; 898 u32 nslot, slot; 899 size_t offset; 900 u64 cookie; 901 int rc; 902 903 if (!preamble_next(ndd, &nsindex, &free, &nslot)) 904 return -ENXIO; 905 906 cookie = nd_region_interleave_set_cookie(nd_region, nsindex); 907 nd_label_gen_id(&label_id, nspm->uuid, 0); 908 for_each_dpa_resource(ndd, res) 909 if (strcmp(res->name, label_id.id) == 0) 910 break; 911 912 if (!res) { 913 WARN_ON_ONCE(1); 914 return -ENXIO; 915 } 916 917 /* allocate and write the label to the staging (next) index */ 918 slot = nd_label_alloc_slot(ndd); 919 if (slot == UINT_MAX) 920 return -ENXIO; 921 dev_dbg(ndd->dev, "allocated: %d\n", slot); 922 923 nd_label = to_label(ndd, slot); 924 memset(nd_label, 0, sizeof_namespace_label(ndd)); 925 nsl_set_uuid(ndd, nd_label, nspm->uuid); 926 nsl_set_name(ndd, nd_label, nspm->alt_name); 927 nsl_set_flags(ndd, nd_label, flags); 928 nsl_set_nlabel(ndd, nd_label, nd_region->ndr_mappings); 929 nsl_set_nrange(ndd, nd_label, 1); 930 nsl_set_position(ndd, nd_label, pos); 931 nsl_set_isetcookie(ndd, nd_label, cookie); 932 nsl_set_rawsize(ndd, nd_label, resource_size(res)); 933 nsl_set_lbasize(ndd, nd_label, nspm->lbasize); 934 nsl_set_dpa(ndd, nd_label, res->start); 935 nsl_set_slot(ndd, nd_label, slot); 936 nsl_set_type_guid(ndd, nd_label, &nd_set->type_guid); 937 nsl_set_claim_class(ndd, nd_label, ndns->claim_class); 938 nsl_calculate_checksum(ndd, nd_label); 939 nd_dbg_dpa(nd_region, ndd, res, "\n"); 940 941 /* update label */ 942 offset = nd_label_offset(ndd, nd_label); 943 rc = nvdimm_set_config_data(ndd, offset, nd_label, 944 sizeof_namespace_label(ndd)); 945 if (rc < 0) 946 return rc; 947 948 /* Garbage collect the previous label */ 949 mutex_lock(&nd_mapping->lock); 950 list_for_each_entry(label_ent, &nd_mapping->labels, list) { 951 if (!label_ent->label) 952 continue; 953 if (test_and_clear_bit(ND_LABEL_REAP, &label_ent->flags) || 954 nsl_uuid_equal(ndd, label_ent->label, nspm->uuid)) 955 reap_victim(nd_mapping, label_ent); 956 } 957 958 /* update index */ 959 rc = nd_label_write_index(ndd, ndd->ns_next, 960 nd_inc_seq(__le32_to_cpu(nsindex->seq)), 0); 961 if (rc == 0) { 962 list_for_each_entry(label_ent, &nd_mapping->labels, list) 963 if (!label_ent->label) { 964 label_ent->label = nd_label; 965 nd_label = NULL; 966 break; 967 } 968 dev_WARN_ONCE(&nspm->nsio.common.dev, nd_label, 969 "failed to track label: %d\n", 970 to_slot(ndd, nd_label)); 971 if (nd_label) 972 rc = -ENXIO; 973 } 974 mutex_unlock(&nd_mapping->lock); 975 976 return rc; 977 } 978 979 static int init_labels(struct nd_mapping *nd_mapping, int num_labels) 980 { 981 int i, old_num_labels = 0; 982 struct nd_label_ent *label_ent; 983 struct nd_namespace_index *nsindex; 984 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 985 986 mutex_lock(&nd_mapping->lock); 987 list_for_each_entry(label_ent, &nd_mapping->labels, list) 988 old_num_labels++; 989 mutex_unlock(&nd_mapping->lock); 990 991 /* 992 * We need to preserve all the old labels for the mapping so 993 * they can be garbage collected after writing the new labels. 994 */ 995 for (i = old_num_labels; i < num_labels; i++) { 996 label_ent = kzalloc_obj(*label_ent); 997 if (!label_ent) 998 return -ENOMEM; 999 mutex_lock(&nd_mapping->lock); 1000 list_add_tail(&label_ent->list, &nd_mapping->labels); 1001 mutex_unlock(&nd_mapping->lock); 1002 } 1003 1004 if (ndd->ns_current == -1 || ndd->ns_next == -1) 1005 /* pass */; 1006 else 1007 return max(num_labels, old_num_labels); 1008 1009 nsindex = to_namespace_index(ndd, 0); 1010 memset(nsindex, 0, ndd->nsarea.config_size); 1011 for (i = 0; i < 2; i++) { 1012 int rc = nd_label_write_index(ndd, i, 3 - i, ND_NSINDEX_INIT); 1013 1014 if (rc) 1015 return rc; 1016 } 1017 ndd->ns_next = 1; 1018 ndd->ns_current = 0; 1019 1020 return max(num_labels, old_num_labels); 1021 } 1022 1023 static int del_labels(struct nd_mapping *nd_mapping, uuid_t *uuid) 1024 { 1025 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 1026 struct nd_label_ent *label_ent, *e; 1027 struct nd_namespace_index *nsindex; 1028 unsigned long *free; 1029 LIST_HEAD(list); 1030 u32 nslot, slot; 1031 int active = 0; 1032 1033 if (!uuid) 1034 return 0; 1035 1036 /* no index || no labels == nothing to delete */ 1037 if (!preamble_next(ndd, &nsindex, &free, &nslot)) 1038 return 0; 1039 1040 mutex_lock(&nd_mapping->lock); 1041 list_for_each_entry_safe(label_ent, e, &nd_mapping->labels, list) { 1042 struct nd_namespace_label *nd_label = label_ent->label; 1043 1044 if (!nd_label) 1045 continue; 1046 active++; 1047 if (!nsl_uuid_equal(ndd, nd_label, uuid)) 1048 continue; 1049 active--; 1050 slot = to_slot(ndd, nd_label); 1051 nd_label_free_slot(ndd, slot); 1052 dev_dbg(ndd->dev, "free: %d\n", slot); 1053 list_move_tail(&label_ent->list, &list); 1054 label_ent->label = NULL; 1055 } 1056 list_splice_tail_init(&list, &nd_mapping->labels); 1057 1058 if (active == 0) { 1059 nd_mapping_free_labels(nd_mapping); 1060 dev_dbg(ndd->dev, "no more active labels\n"); 1061 } 1062 mutex_unlock(&nd_mapping->lock); 1063 1064 return nd_label_write_index(ndd, ndd->ns_next, 1065 nd_inc_seq(__le32_to_cpu(nsindex->seq)), 0); 1066 } 1067 1068 int nd_pmem_namespace_label_update(struct nd_region *nd_region, 1069 struct nd_namespace_pmem *nspm, resource_size_t size) 1070 { 1071 int i, rc; 1072 1073 for (i = 0; i < nd_region->ndr_mappings; i++) { 1074 struct nd_mapping *nd_mapping = &nd_region->mapping[i]; 1075 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 1076 struct resource *res; 1077 int count = 0; 1078 1079 if (size == 0) { 1080 rc = del_labels(nd_mapping, nspm->uuid); 1081 if (rc) 1082 return rc; 1083 continue; 1084 } 1085 1086 for_each_dpa_resource(ndd, res) 1087 if (strncmp(res->name, "pmem", 4) == 0) 1088 count++; 1089 WARN_ON_ONCE(!count); 1090 1091 rc = init_labels(nd_mapping, count); 1092 if (rc < 0) 1093 return rc; 1094 1095 rc = __pmem_label_update(nd_region, nd_mapping, nspm, i, 1096 NSLABEL_FLAG_UPDATING); 1097 if (rc) 1098 return rc; 1099 } 1100 1101 if (size == 0) 1102 return 0; 1103 1104 /* Clear the UPDATING flag per UEFI 2.7 expectations */ 1105 for (i = 0; i < nd_region->ndr_mappings; i++) { 1106 struct nd_mapping *nd_mapping = &nd_region->mapping[i]; 1107 1108 rc = __pmem_label_update(nd_region, nd_mapping, nspm, i, 0); 1109 if (rc) 1110 return rc; 1111 } 1112 1113 return 0; 1114 } 1115 1116 int __init nd_label_init(void) 1117 { 1118 WARN_ON(guid_parse(NVDIMM_BTT_GUID, &nvdimm_btt_guid)); 1119 WARN_ON(guid_parse(NVDIMM_BTT2_GUID, &nvdimm_btt2_guid)); 1120 WARN_ON(guid_parse(NVDIMM_PFN_GUID, &nvdimm_pfn_guid)); 1121 WARN_ON(guid_parse(NVDIMM_DAX_GUID, &nvdimm_dax_guid)); 1122 1123 WARN_ON(uuid_parse(NVDIMM_BTT_GUID, &nvdimm_btt_uuid)); 1124 WARN_ON(uuid_parse(NVDIMM_BTT2_GUID, &nvdimm_btt2_uuid)); 1125 WARN_ON(uuid_parse(NVDIMM_PFN_GUID, &nvdimm_pfn_uuid)); 1126 WARN_ON(uuid_parse(NVDIMM_DAX_GUID, &nvdimm_dax_uuid)); 1127 1128 WARN_ON(uuid_parse(CXL_REGION_UUID, &cxl_region_uuid)); 1129 WARN_ON(uuid_parse(CXL_NAMESPACE_UUID, &cxl_namespace_uuid)); 1130 1131 return 0; 1132 } 1133