1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Persistent Memory Driver 4 * 5 * Copyright (c) 2014-2015, Intel Corporation. 6 * Copyright (c) 2015, Christoph Hellwig <hch@lst.de>. 7 * Copyright (c) 2015, Boaz Harrosh <boaz@plexistor.com>. 8 */ 9 10 #include <linux/blkdev.h> 11 #include <linux/pagemap.h> 12 #include <linux/hdreg.h> 13 #include <linux/init.h> 14 #include <linux/platform_device.h> 15 #include <linux/set_memory.h> 16 #include <linux/module.h> 17 #include <linux/moduleparam.h> 18 #include <linux/badblocks.h> 19 #include <linux/memremap.h> 20 #include <linux/kstrtox.h> 21 #include <linux/vmalloc.h> 22 #include <linux/blk-mq.h> 23 #include <linux/slab.h> 24 #include <linux/uio.h> 25 #include <linux/dax.h> 26 #include <linux/nd.h> 27 #include <linux/mm.h> 28 #include <asm/cacheflush.h> 29 #include "pmem.h" 30 #include "btt.h" 31 #include "pfn.h" 32 #include "nd.h" 33 34 static struct device *to_dev(struct pmem_device *pmem) 35 { 36 /* 37 * nvdimm bus services need a 'dev' parameter, and we record the device 38 * at init in bb.dev. 39 */ 40 return pmem->bb.dev; 41 } 42 43 static struct nd_region *to_region(struct pmem_device *pmem) 44 { 45 return to_nd_region(to_dev(pmem)->parent); 46 } 47 48 static phys_addr_t pmem_to_phys(struct pmem_device *pmem, phys_addr_t offset) 49 { 50 return pmem->phys_addr + offset; 51 } 52 53 static sector_t to_sect(struct pmem_device *pmem, phys_addr_t offset) 54 { 55 return (offset - pmem->data_offset) >> SECTOR_SHIFT; 56 } 57 58 static phys_addr_t to_offset(struct pmem_device *pmem, sector_t sector) 59 { 60 return (sector << SECTOR_SHIFT) + pmem->data_offset; 61 } 62 63 static void pmem_mkpage_present(struct pmem_device *pmem, phys_addr_t offset, 64 unsigned int len) 65 { 66 phys_addr_t phys = pmem_to_phys(pmem, offset); 67 unsigned long pfn_start, pfn_end, pfn; 68 69 /* only pmem in the linear map supports HWPoison */ 70 if (is_vmalloc_addr(pmem->virt_addr)) 71 return; 72 73 pfn_start = PHYS_PFN(phys); 74 pfn_end = pfn_start + PHYS_PFN(len); 75 for (pfn = pfn_start; pfn < pfn_end; pfn++) { 76 struct page *page = pfn_to_page(pfn); 77 78 /* 79 * Note, no need to hold a get_dev_pagemap() reference 80 * here since we're in the driver I/O path and 81 * outstanding I/O requests pin the dev_pagemap. 82 */ 83 if (test_and_clear_pmem_poison(page)) 84 clear_mce_nospec(pfn); 85 } 86 } 87 88 static void pmem_clear_bb(struct pmem_device *pmem, sector_t sector, long blks) 89 { 90 if (blks == 0) 91 return; 92 badblocks_clear(&pmem->bb, sector, blks); 93 if (pmem->bb_state) 94 sysfs_notify_dirent(pmem->bb_state); 95 } 96 97 static long __pmem_clear_poison(struct pmem_device *pmem, 98 phys_addr_t offset, unsigned int len) 99 { 100 phys_addr_t phys = pmem_to_phys(pmem, offset); 101 long cleared = nvdimm_clear_poison(to_dev(pmem), phys, len); 102 103 if (cleared > 0) { 104 pmem_mkpage_present(pmem, offset, cleared); 105 arch_invalidate_pmem(pmem->virt_addr + offset, len); 106 } 107 return cleared; 108 } 109 110 static blk_status_t pmem_clear_poison(struct pmem_device *pmem, 111 phys_addr_t offset, unsigned int len) 112 { 113 long cleared = __pmem_clear_poison(pmem, offset, len); 114 115 if (cleared < 0) 116 return BLK_STS_IOERR; 117 118 pmem_clear_bb(pmem, to_sect(pmem, offset), cleared >> SECTOR_SHIFT); 119 if (cleared < len) 120 return BLK_STS_IOERR; 121 return BLK_STS_OK; 122 } 123 124 static void write_pmem(void *pmem_addr, struct page *page, 125 unsigned int off, unsigned int len) 126 { 127 unsigned int chunk; 128 void *mem; 129 130 while (len) { 131 mem = kmap_local_page(page); 132 chunk = min_t(unsigned int, len, PAGE_SIZE - off); 133 memcpy_flushcache(pmem_addr, mem + off, chunk); 134 kunmap_local(mem); 135 len -= chunk; 136 off = 0; 137 page++; 138 pmem_addr += chunk; 139 } 140 } 141 142 static blk_status_t read_pmem(struct page *page, unsigned int off, 143 void *pmem_addr, unsigned int len) 144 { 145 unsigned int chunk; 146 unsigned long rem; 147 void *mem; 148 149 while (len) { 150 mem = kmap_local_page(page); 151 chunk = min_t(unsigned int, len, PAGE_SIZE - off); 152 rem = copy_mc_to_kernel(mem + off, pmem_addr, chunk); 153 kunmap_local(mem); 154 if (rem) 155 return BLK_STS_IOERR; 156 len -= chunk; 157 off = 0; 158 page++; 159 pmem_addr += chunk; 160 } 161 return BLK_STS_OK; 162 } 163 164 static blk_status_t pmem_do_read(struct pmem_device *pmem, 165 struct page *page, unsigned int page_off, 166 sector_t sector, unsigned int len) 167 { 168 blk_status_t rc; 169 phys_addr_t pmem_off = to_offset(pmem, sector); 170 void *pmem_addr = pmem->virt_addr + pmem_off; 171 172 if (unlikely(is_bad_pmem(&pmem->bb, sector, len))) 173 return BLK_STS_IOERR; 174 175 rc = read_pmem(page, page_off, pmem_addr, len); 176 flush_dcache_page(page); 177 return rc; 178 } 179 180 static blk_status_t pmem_do_write(struct pmem_device *pmem, 181 struct page *page, unsigned int page_off, 182 sector_t sector, unsigned int len) 183 { 184 phys_addr_t pmem_off = to_offset(pmem, sector); 185 void *pmem_addr = pmem->virt_addr + pmem_off; 186 187 if (unlikely(is_bad_pmem(&pmem->bb, sector, len))) { 188 blk_status_t rc = pmem_clear_poison(pmem, pmem_off, len); 189 190 if (rc != BLK_STS_OK) 191 return rc; 192 } 193 194 flush_dcache_page(page); 195 write_pmem(pmem_addr, page, page_off, len); 196 197 return BLK_STS_OK; 198 } 199 200 static void pmem_submit_bio(struct bio *bio) 201 { 202 int ret = 0; 203 blk_status_t rc = 0; 204 bool do_acct; 205 unsigned long start; 206 struct bio_vec bvec; 207 struct bvec_iter iter; 208 struct pmem_device *pmem = bio->bi_bdev->bd_disk->private_data; 209 struct nd_region *nd_region = to_region(pmem); 210 211 if (bio->bi_opf & REQ_PREFLUSH) { 212 ret = nvdimm_flush(nd_region, NULL); 213 if (ret) { 214 bio->bi_status = errno_to_blk_status(ret); 215 bio_endio(bio); 216 return; 217 } 218 } 219 220 if (bio_has_data(bio)) { 221 do_acct = blk_queue_io_stat(bio->bi_bdev->bd_disk->queue); 222 if (do_acct) 223 start = bio_start_io_acct(bio); 224 bio_for_each_segment(bvec, bio, iter) { 225 if (op_is_write(bio_op(bio))) 226 rc = pmem_do_write(pmem, bvec.bv_page, 227 bvec.bv_offset, 228 iter.bi_sector, 229 bvec.bv_len); 230 else 231 rc = pmem_do_read(pmem, bvec.bv_page, 232 bvec.bv_offset, 233 iter.bi_sector, 234 bvec.bv_len); 235 if (rc) { 236 bio->bi_status = rc; 237 break; 238 } 239 } 240 if (do_acct) 241 bio_end_io_acct(bio, start); 242 } 243 244 if ((bio->bi_opf & REQ_FUA) && !bio->bi_status) { 245 ret = nvdimm_flush(nd_region, bio); 246 if (ret == NVDIMM_FLUSH_ASYNC) 247 return; 248 } 249 250 if (ret) 251 bio->bi_status = errno_to_blk_status(ret); 252 253 bio_endio(bio); 254 } 255 256 /* see "strong" declaration in tools/testing/nvdimm/pmem-dax.c */ 257 __weak long __pmem_direct_access(struct pmem_device *pmem, pgoff_t pgoff, 258 long nr_pages, enum dax_access_mode mode, void **kaddr, 259 unsigned long *pfn) 260 { 261 resource_size_t offset = PFN_PHYS(pgoff) + pmem->data_offset; 262 sector_t sector = PFN_PHYS(pgoff) >> SECTOR_SHIFT; 263 unsigned int num = PFN_PHYS(nr_pages) >> SECTOR_SHIFT; 264 struct badblocks *bb = &pmem->bb; 265 sector_t first_bad; 266 sector_t num_bad; 267 268 if (kaddr) 269 *kaddr = pmem->virt_addr + offset; 270 if (pfn) 271 *pfn = PHYS_PFN(pmem->phys_addr + offset); 272 273 if (bb->count && 274 badblocks_check(bb, sector, num, &first_bad, &num_bad)) { 275 long actual_nr; 276 277 if (mode != DAX_RECOVERY_WRITE) 278 return -EHWPOISON; 279 280 /* 281 * Set the recovery stride is set to kernel page size because 282 * the underlying driver and firmware clear poison functions 283 * don't appear to handle large chunk(such as 2MiB) reliably. 284 */ 285 actual_nr = PHYS_PFN( 286 PAGE_ALIGN((first_bad - sector) << SECTOR_SHIFT)); 287 dev_dbg(pmem->bb.dev, "start sector(%llu), nr_pages(%ld), first_bad(%llu), actual_nr(%ld)\n", 288 sector, nr_pages, first_bad, actual_nr); 289 if (actual_nr) 290 return actual_nr; 291 return 1; 292 } 293 294 /* 295 * If badblocks are present but not in the range, limit known good range 296 * to the requested range. 297 */ 298 if (bb->count) 299 return nr_pages; 300 return PHYS_PFN(pmem->size - pmem->pfn_pad - offset); 301 } 302 303 static const struct block_device_operations pmem_fops = { 304 .owner = THIS_MODULE, 305 .submit_bio = pmem_submit_bio, 306 }; 307 308 static int pmem_dax_zero_page_range(struct dax_device *dax_dev, pgoff_t pgoff, 309 size_t nr_pages) 310 { 311 struct pmem_device *pmem = dax_get_private(dax_dev); 312 313 return blk_status_to_errno(pmem_do_write(pmem, ZERO_PAGE(0), 0, 314 PFN_PHYS(pgoff) >> SECTOR_SHIFT, 315 PAGE_SIZE)); 316 } 317 318 static long pmem_dax_direct_access(struct dax_device *dax_dev, 319 pgoff_t pgoff, long nr_pages, enum dax_access_mode mode, 320 void **kaddr, unsigned long *pfn) 321 { 322 struct pmem_device *pmem = dax_get_private(dax_dev); 323 324 return __pmem_direct_access(pmem, pgoff, nr_pages, mode, kaddr, pfn); 325 } 326 327 /* 328 * The recovery write thread started out as a normal pwrite thread and 329 * when the filesystem was told about potential media error in the 330 * range, filesystem turns the normal pwrite to a dax_recovery_write. 331 * 332 * The recovery write consists of clearing media poison, clearing page 333 * HWPoison bit, re-enable page-wide read-write permission, flush the 334 * caches and finally write. A competing pread thread will be held 335 * off during the recovery process since data read back might not be 336 * valid, and this is achieved by clearing the badblock records after 337 * the recovery write is complete. Competing recovery write threads 338 * are already serialized by writer lock held by dax_iomap_rw(). 339 */ 340 static size_t pmem_recovery_write(struct dax_device *dax_dev, pgoff_t pgoff, 341 void *addr, size_t bytes, struct iov_iter *i) 342 { 343 struct pmem_device *pmem = dax_get_private(dax_dev); 344 size_t olen, len, off; 345 phys_addr_t pmem_off; 346 struct device *dev = pmem->bb.dev; 347 long cleared; 348 349 off = offset_in_page(addr); 350 len = PFN_PHYS(PFN_UP(off + bytes)); 351 if (!is_bad_pmem(&pmem->bb, PFN_PHYS(pgoff) >> SECTOR_SHIFT, len)) 352 return _copy_from_iter_flushcache(addr, bytes, i); 353 354 /* 355 * Not page-aligned range cannot be recovered. This should not 356 * happen unless something else went wrong. 357 */ 358 if (off || !PAGE_ALIGNED(bytes)) { 359 dev_dbg(dev, "Found poison, but addr(%p) or bytes(%#zx) not page aligned\n", 360 addr, bytes); 361 return 0; 362 } 363 364 pmem_off = PFN_PHYS(pgoff) + pmem->data_offset; 365 cleared = __pmem_clear_poison(pmem, pmem_off, len); 366 if (cleared > 0 && cleared < len) { 367 dev_dbg(dev, "poison cleared only %ld out of %zu bytes\n", 368 cleared, len); 369 return 0; 370 } 371 if (cleared < 0) { 372 dev_dbg(dev, "poison clear failed: %ld\n", cleared); 373 return 0; 374 } 375 376 olen = _copy_from_iter_flushcache(addr, bytes, i); 377 pmem_clear_bb(pmem, to_sect(pmem, pmem_off), cleared >> SECTOR_SHIFT); 378 379 return olen; 380 } 381 382 static const struct dax_operations pmem_dax_ops = { 383 .direct_access = pmem_dax_direct_access, 384 .zero_page_range = pmem_dax_zero_page_range, 385 .recovery_write = pmem_recovery_write, 386 }; 387 388 static ssize_t write_cache_show(struct device *dev, 389 struct device_attribute *attr, char *buf) 390 { 391 struct pmem_device *pmem = dev_to_disk(dev)->private_data; 392 393 return sprintf(buf, "%d\n", !!dax_write_cache_enabled(pmem->dax_dev)); 394 } 395 396 static ssize_t write_cache_store(struct device *dev, 397 struct device_attribute *attr, const char *buf, size_t len) 398 { 399 struct pmem_device *pmem = dev_to_disk(dev)->private_data; 400 bool write_cache; 401 int rc; 402 403 rc = kstrtobool(buf, &write_cache); 404 if (rc) 405 return rc; 406 dax_write_cache(pmem->dax_dev, write_cache); 407 return len; 408 } 409 static DEVICE_ATTR_RW(write_cache); 410 411 static umode_t dax_visible(struct kobject *kobj, struct attribute *a, int n) 412 { 413 #ifndef CONFIG_ARCH_HAS_PMEM_API 414 if (a == &dev_attr_write_cache.attr) 415 return 0; 416 #endif 417 return a->mode; 418 } 419 420 static struct attribute *dax_attributes[] = { 421 &dev_attr_write_cache.attr, 422 NULL, 423 }; 424 425 static const struct attribute_group dax_attribute_group = { 426 .name = "dax", 427 .attrs = dax_attributes, 428 .is_visible = dax_visible, 429 }; 430 431 static const struct attribute_group *pmem_attribute_groups[] = { 432 &dax_attribute_group, 433 NULL, 434 }; 435 436 static void pmem_release_disk(void *__pmem) 437 { 438 struct pmem_device *pmem = __pmem; 439 440 dax_remove_host(pmem->disk); 441 kill_dax(pmem->dax_dev); 442 put_dax(pmem->dax_dev); 443 del_gendisk(pmem->disk); 444 445 put_disk(pmem->disk); 446 } 447 448 static int pmem_pagemap_memory_failure(struct dev_pagemap *pgmap, 449 unsigned long pfn, unsigned long nr_pages, int mf_flags) 450 { 451 struct pmem_device *pmem = 452 container_of(pgmap, struct pmem_device, pgmap); 453 u64 offset = PFN_PHYS(pfn) - pmem->phys_addr - pmem->data_offset; 454 u64 len = nr_pages << PAGE_SHIFT; 455 456 return dax_holder_notify_failure(pmem->dax_dev, offset, len, mf_flags); 457 } 458 459 static const struct dev_pagemap_ops fsdax_pagemap_ops = { 460 .memory_failure = pmem_pagemap_memory_failure, 461 }; 462 463 static int pmem_attach_disk(struct device *dev, 464 struct nd_namespace_common *ndns) 465 { 466 struct nd_namespace_io *nsio = to_nd_namespace_io(&ndns->dev); 467 struct nd_region *nd_region = to_nd_region(dev->parent); 468 struct queue_limits lim = { 469 .logical_block_size = pmem_sector_size(ndns), 470 .physical_block_size = PAGE_SIZE, 471 .max_hw_sectors = UINT_MAX, 472 .features = BLK_FEAT_WRITE_CACHE | 473 BLK_FEAT_SYNCHRONOUS, 474 }; 475 int nid = dev_to_node(dev), fua; 476 struct resource *res = &nsio->res; 477 struct range bb_range; 478 struct nd_pfn *nd_pfn = NULL; 479 struct dax_device *dax_dev; 480 struct nd_pfn_sb *pfn_sb; 481 struct pmem_device *pmem; 482 struct gendisk *disk; 483 void *addr; 484 int rc; 485 486 pmem = devm_kzalloc(dev, sizeof(*pmem), GFP_KERNEL); 487 if (!pmem) 488 return -ENOMEM; 489 490 rc = devm_namespace_enable(dev, ndns, nd_info_block_reserve()); 491 if (rc) 492 return rc; 493 494 /* while nsio_rw_bytes is active, parse a pfn info block if present */ 495 if (is_nd_pfn(dev)) { 496 nd_pfn = to_nd_pfn(dev); 497 rc = nvdimm_setup_pfn(nd_pfn, &pmem->pgmap); 498 if (rc) 499 return rc; 500 } 501 502 /* we're attaching a block device, disable raw namespace access */ 503 devm_namespace_disable(dev, ndns); 504 505 dev_set_drvdata(dev, pmem); 506 pmem->phys_addr = res->start; 507 pmem->size = resource_size(res); 508 fua = nvdimm_has_flush(nd_region); 509 if (!IS_ENABLED(CONFIG_ARCH_HAS_UACCESS_FLUSHCACHE) || fua < 0) { 510 dev_warn(dev, "unable to guarantee persistence of writes\n"); 511 fua = 0; 512 } 513 if (fua) 514 lim.features |= BLK_FEAT_FUA; 515 if (is_nd_pfn(dev) || pmem_should_map_pages(dev)) 516 lim.features |= BLK_FEAT_DAX; 517 518 if (!devm_request_mem_region(dev, res->start, resource_size(res), 519 dev_name(&ndns->dev))) { 520 dev_warn(dev, "could not reserve region %pR\n", res); 521 return -EBUSY; 522 } 523 524 disk = blk_alloc_disk(&lim, nid); 525 if (IS_ERR(disk)) 526 return PTR_ERR(disk); 527 528 pmem->disk = disk; 529 pmem->pgmap.owner = pmem; 530 if (is_nd_pfn(dev)) { 531 pmem->pgmap.type = MEMORY_DEVICE_FS_DAX; 532 pmem->pgmap.ops = &fsdax_pagemap_ops; 533 addr = devm_memremap_pages(dev, &pmem->pgmap); 534 pfn_sb = nd_pfn->pfn_sb; 535 pmem->data_offset = le64_to_cpu(pfn_sb->dataoff); 536 pmem->pfn_pad = resource_size(res) - 537 range_len(&pmem->pgmap.range); 538 bb_range = pmem->pgmap.range; 539 bb_range.start += pmem->data_offset; 540 } else if (pmem_should_map_pages(dev)) { 541 pmem->pgmap.range.start = res->start; 542 pmem->pgmap.range.end = res->end; 543 pmem->pgmap.nr_range = 1; 544 pmem->pgmap.type = MEMORY_DEVICE_FS_DAX; 545 pmem->pgmap.ops = &fsdax_pagemap_ops; 546 addr = devm_memremap_pages(dev, &pmem->pgmap); 547 bb_range = pmem->pgmap.range; 548 } else { 549 addr = devm_memremap(dev, pmem->phys_addr, 550 pmem->size, ARCH_MEMREMAP_PMEM); 551 bb_range.start = res->start; 552 bb_range.end = res->end; 553 } 554 555 if (IS_ERR(addr)) { 556 rc = PTR_ERR(addr); 557 goto out; 558 } 559 pmem->virt_addr = addr; 560 561 disk->fops = &pmem_fops; 562 disk->private_data = pmem; 563 nvdimm_namespace_disk_name(ndns, disk->disk_name); 564 set_capacity(disk, (pmem->size - pmem->pfn_pad - pmem->data_offset) 565 / 512); 566 if (devm_init_badblocks(dev, &pmem->bb)) 567 return -ENOMEM; 568 nvdimm_badblocks_populate(nd_region, &pmem->bb, &bb_range); 569 disk->bb = &pmem->bb; 570 571 dax_dev = alloc_dax(pmem, &pmem_dax_ops); 572 if (IS_ERR(dax_dev)) { 573 rc = PTR_ERR(dax_dev); 574 if (rc != -EOPNOTSUPP) 575 goto out; 576 } else { 577 set_dax_nocache(dax_dev); 578 set_dax_nomc(dax_dev); 579 if (is_nvdimm_sync(nd_region)) 580 set_dax_synchronous(dax_dev); 581 pmem->dax_dev = dax_dev; 582 rc = dax_add_host(dax_dev, disk); 583 if (rc) 584 goto out_cleanup_dax; 585 dax_write_cache(dax_dev, nvdimm_has_cache(nd_region)); 586 } 587 rc = device_add_disk(dev, disk, pmem_attribute_groups); 588 if (rc) 589 goto out_remove_host; 590 if (devm_add_action_or_reset(dev, pmem_release_disk, pmem)) 591 return -ENOMEM; 592 593 nvdimm_check_and_set_ro(disk); 594 595 pmem->bb_state = sysfs_get_dirent(disk_to_dev(disk)->kobj.sd, 596 "badblocks"); 597 if (!pmem->bb_state) 598 dev_warn(dev, "'badblocks' notification disabled\n"); 599 return 0; 600 601 out_remove_host: 602 dax_remove_host(pmem->disk); 603 out_cleanup_dax: 604 kill_dax(pmem->dax_dev); 605 put_dax(pmem->dax_dev); 606 out: 607 put_disk(pmem->disk); 608 return rc; 609 } 610 611 static int nd_pmem_probe(struct device *dev) 612 { 613 int ret; 614 struct nd_namespace_common *ndns; 615 616 ndns = nvdimm_namespace_common_probe(dev); 617 if (IS_ERR(ndns)) 618 return PTR_ERR(ndns); 619 620 if (is_nd_btt(dev)) 621 return nvdimm_namespace_attach_btt(ndns); 622 623 if (is_nd_pfn(dev)) 624 return pmem_attach_disk(dev, ndns); 625 626 ret = devm_namespace_enable(dev, ndns, nd_info_block_reserve()); 627 if (ret) 628 return ret; 629 630 ret = nd_btt_probe(dev, ndns); 631 if (ret == 0) 632 return -ENXIO; 633 634 /* 635 * We have two failure conditions here, there is no 636 * info reserver block or we found a valid info reserve block 637 * but failed to initialize the pfn superblock. 638 * 639 * For the first case consider namespace as a raw pmem namespace 640 * and attach a disk. 641 * 642 * For the latter, consider this a success and advance the namespace 643 * seed. 644 */ 645 ret = nd_pfn_probe(dev, ndns); 646 if (ret == 0) 647 return -ENXIO; 648 else if (ret == -EOPNOTSUPP) 649 return ret; 650 651 ret = nd_dax_probe(dev, ndns); 652 if (ret == 0) 653 return -ENXIO; 654 else if (ret == -EOPNOTSUPP) 655 return ret; 656 657 /* probe complete, attach handles namespace enabling */ 658 devm_namespace_disable(dev, ndns); 659 660 return pmem_attach_disk(dev, ndns); 661 } 662 663 static void nd_pmem_remove(struct device *dev) 664 { 665 struct pmem_device *pmem = dev_get_drvdata(dev); 666 667 if (is_nd_btt(dev)) 668 nvdimm_namespace_detach_btt(to_nd_btt(dev)); 669 else { 670 /* 671 * Note, this assumes device_lock() context to not 672 * race nd_pmem_notify() 673 */ 674 sysfs_put(pmem->bb_state); 675 pmem->bb_state = NULL; 676 } 677 nvdimm_flush(to_nd_region(dev->parent), NULL); 678 } 679 680 static void nd_pmem_shutdown(struct device *dev) 681 { 682 nvdimm_flush(to_nd_region(dev->parent), NULL); 683 } 684 685 static void pmem_revalidate_poison(struct device *dev) 686 { 687 struct nd_region *nd_region; 688 resource_size_t offset = 0, end_trunc = 0; 689 struct nd_namespace_common *ndns; 690 struct nd_namespace_io *nsio; 691 struct badblocks *bb; 692 struct range range; 693 struct kernfs_node *bb_state; 694 695 if (is_nd_btt(dev)) { 696 struct nd_btt *nd_btt = to_nd_btt(dev); 697 698 ndns = nd_btt->ndns; 699 nd_region = to_nd_region(ndns->dev.parent); 700 nsio = to_nd_namespace_io(&ndns->dev); 701 bb = &nsio->bb; 702 bb_state = NULL; 703 } else { 704 struct pmem_device *pmem = dev_get_drvdata(dev); 705 706 nd_region = to_region(pmem); 707 bb = &pmem->bb; 708 bb_state = pmem->bb_state; 709 710 if (is_nd_pfn(dev)) { 711 struct nd_pfn *nd_pfn = to_nd_pfn(dev); 712 struct nd_pfn_sb *pfn_sb = nd_pfn->pfn_sb; 713 714 ndns = nd_pfn->ndns; 715 offset = pmem->data_offset + 716 __le32_to_cpu(pfn_sb->start_pad); 717 end_trunc = __le32_to_cpu(pfn_sb->end_trunc); 718 } else { 719 ndns = to_ndns(dev); 720 } 721 722 nsio = to_nd_namespace_io(&ndns->dev); 723 } 724 725 range.start = nsio->res.start + offset; 726 range.end = nsio->res.end - end_trunc; 727 nvdimm_badblocks_populate(nd_region, bb, &range); 728 if (bb_state) 729 sysfs_notify_dirent(bb_state); 730 } 731 732 static void pmem_revalidate_region(struct device *dev) 733 { 734 struct pmem_device *pmem; 735 736 if (is_nd_btt(dev)) { 737 struct nd_btt *nd_btt = to_nd_btt(dev); 738 struct btt *btt = nd_btt->btt; 739 740 nvdimm_check_and_set_ro(btt->btt_disk); 741 return; 742 } 743 744 pmem = dev_get_drvdata(dev); 745 nvdimm_check_and_set_ro(pmem->disk); 746 } 747 748 static void nd_pmem_notify(struct device *dev, enum nvdimm_event event) 749 { 750 switch (event) { 751 case NVDIMM_REVALIDATE_POISON: 752 pmem_revalidate_poison(dev); 753 break; 754 case NVDIMM_REVALIDATE_REGION: 755 pmem_revalidate_region(dev); 756 break; 757 default: 758 dev_WARN_ONCE(dev, 1, "notify: unknown event: %d\n", event); 759 break; 760 } 761 } 762 763 MODULE_ALIAS("pmem"); 764 MODULE_ALIAS_ND_DEVICE(ND_DEVICE_NAMESPACE_IO); 765 MODULE_ALIAS_ND_DEVICE(ND_DEVICE_NAMESPACE_PMEM); 766 static struct nd_device_driver nd_pmem_driver = { 767 .probe = nd_pmem_probe, 768 .remove = nd_pmem_remove, 769 .notify = nd_pmem_notify, 770 .shutdown = nd_pmem_shutdown, 771 .drv = { 772 .name = "nd_pmem", 773 }, 774 .type = ND_DRIVER_NAMESPACE_IO | ND_DRIVER_NAMESPACE_PMEM, 775 }; 776 777 module_nd_driver(nd_pmem_driver); 778 779 MODULE_AUTHOR("Ross Zwisler <ross.zwisler@linux.intel.com>"); 780 MODULE_DESCRIPTION("NVDIMM Persistent Memory Driver"); 781 MODULE_LICENSE("GPL v2"); 782