pmem.c 12 KB

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  1. /*
  2. * Persistent Memory Driver
  3. *
  4. * Copyright (c) 2014-2015, Intel Corporation.
  5. * Copyright (c) 2015, Christoph Hellwig <hch@lst.de>.
  6. * Copyright (c) 2015, Boaz Harrosh <boaz@plexistor.com>.
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms and conditions of the GNU General Public License,
  10. * version 2, as published by the Free Software Foundation.
  11. *
  12. * This program is distributed in the hope it will be useful, but WITHOUT
  13. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  14. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  15. * more details.
  16. */
  17. #include <asm/cacheflush.h>
  18. #include <linux/blkdev.h>
  19. #include <linux/hdreg.h>
  20. #include <linux/init.h>
  21. #include <linux/platform_device.h>
  22. #include <linux/module.h>
  23. #include <linux/moduleparam.h>
  24. #include <linux/badblocks.h>
  25. #include <linux/memremap.h>
  26. #include <linux/vmalloc.h>
  27. #include <linux/pfn_t.h>
  28. #include <linux/slab.h>
  29. #include <linux/pmem.h>
  30. #include <linux/nd.h>
  31. #include "pmem.h"
  32. #include "pfn.h"
  33. #include "nd.h"
  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. static struct nd_region *to_region(struct pmem_device *pmem)
  43. {
  44. return to_nd_region(to_dev(pmem)->parent);
  45. }
  46. static int pmem_clear_poison(struct pmem_device *pmem, phys_addr_t offset,
  47. unsigned int len)
  48. {
  49. struct device *dev = to_dev(pmem);
  50. sector_t sector;
  51. long cleared;
  52. int rc = 0;
  53. sector = (offset - pmem->data_offset) / 512;
  54. cleared = nvdimm_clear_poison(dev, pmem->phys_addr + offset, len);
  55. if (cleared < len)
  56. rc = -EIO;
  57. if (cleared > 0 && cleared / 512) {
  58. cleared /= 512;
  59. dev_dbg(dev, "%s: %#llx clear %ld sector%s\n", __func__,
  60. (unsigned long long) sector, cleared,
  61. cleared > 1 ? "s" : "");
  62. badblocks_clear(&pmem->bb, sector, cleared);
  63. }
  64. invalidate_pmem(pmem->virt_addr + offset, len);
  65. return rc;
  66. }
  67. static void write_pmem(void *pmem_addr, struct page *page,
  68. unsigned int off, unsigned int len)
  69. {
  70. void *mem = kmap_atomic(page);
  71. memcpy_to_pmem(pmem_addr, mem + off, len);
  72. kunmap_atomic(mem);
  73. }
  74. static int read_pmem(struct page *page, unsigned int off,
  75. void *pmem_addr, unsigned int len)
  76. {
  77. int rc;
  78. void *mem = kmap_atomic(page);
  79. rc = memcpy_from_pmem(mem + off, pmem_addr, len);
  80. kunmap_atomic(mem);
  81. if (rc)
  82. return -EIO;
  83. return 0;
  84. }
  85. static int pmem_do_bvec(struct pmem_device *pmem, struct page *page,
  86. unsigned int len, unsigned int off, bool is_write,
  87. sector_t sector)
  88. {
  89. int rc = 0;
  90. bool bad_pmem = false;
  91. phys_addr_t pmem_off = sector * 512 + pmem->data_offset;
  92. void *pmem_addr = pmem->virt_addr + pmem_off;
  93. if (unlikely(is_bad_pmem(&pmem->bb, sector, len)))
  94. bad_pmem = true;
  95. if (!is_write) {
  96. if (unlikely(bad_pmem))
  97. rc = -EIO;
  98. else {
  99. rc = read_pmem(page, off, pmem_addr, len);
  100. flush_dcache_page(page);
  101. }
  102. } else {
  103. /*
  104. * Note that we write the data both before and after
  105. * clearing poison. The write before clear poison
  106. * handles situations where the latest written data is
  107. * preserved and the clear poison operation simply marks
  108. * the address range as valid without changing the data.
  109. * In this case application software can assume that an
  110. * interrupted write will either return the new good
  111. * data or an error.
  112. *
  113. * However, if pmem_clear_poison() leaves the data in an
  114. * indeterminate state we need to perform the write
  115. * after clear poison.
  116. */
  117. flush_dcache_page(page);
  118. write_pmem(pmem_addr, page, off, len);
  119. if (unlikely(bad_pmem)) {
  120. rc = pmem_clear_poison(pmem, pmem_off, len);
  121. write_pmem(pmem_addr, page, off, len);
  122. }
  123. }
  124. return rc;
  125. }
  126. /* account for REQ_FLUSH rename, replace with REQ_PREFLUSH after v4.8-rc1 */
  127. #ifndef REQ_FLUSH
  128. #define REQ_FLUSH REQ_PREFLUSH
  129. #endif
  130. static blk_qc_t pmem_make_request(struct request_queue *q, struct bio *bio)
  131. {
  132. int rc = 0;
  133. bool do_acct;
  134. unsigned long start;
  135. struct bio_vec bvec;
  136. struct bvec_iter iter;
  137. struct pmem_device *pmem = q->queuedata;
  138. struct nd_region *nd_region = to_region(pmem);
  139. if (bio->bi_opf & REQ_FLUSH)
  140. nvdimm_flush(nd_region);
  141. do_acct = nd_iostat_start(bio, &start);
  142. bio_for_each_segment(bvec, bio, iter) {
  143. rc = pmem_do_bvec(pmem, bvec.bv_page, bvec.bv_len,
  144. bvec.bv_offset, op_is_write(bio_op(bio)),
  145. iter.bi_sector);
  146. if (rc) {
  147. bio->bi_error = rc;
  148. break;
  149. }
  150. }
  151. if (do_acct)
  152. nd_iostat_end(bio, start);
  153. if (bio->bi_opf & REQ_FUA)
  154. nvdimm_flush(nd_region);
  155. bio_endio(bio);
  156. return BLK_QC_T_NONE;
  157. }
  158. static int pmem_rw_page(struct block_device *bdev, sector_t sector,
  159. struct page *page, bool is_write)
  160. {
  161. struct pmem_device *pmem = bdev->bd_queue->queuedata;
  162. int rc;
  163. rc = pmem_do_bvec(pmem, page, PAGE_SIZE, 0, is_write, sector);
  164. /*
  165. * The ->rw_page interface is subtle and tricky. The core
  166. * retries on any error, so we can only invoke page_endio() in
  167. * the successful completion case. Otherwise, we'll see crashes
  168. * caused by double completion.
  169. */
  170. if (rc == 0)
  171. page_endio(page, is_write, 0);
  172. return rc;
  173. }
  174. /* see "strong" declaration in tools/testing/nvdimm/pmem-dax.c */
  175. __weak long pmem_direct_access(struct block_device *bdev, sector_t sector,
  176. void **kaddr, pfn_t *pfn, long size)
  177. {
  178. struct pmem_device *pmem = bdev->bd_queue->queuedata;
  179. resource_size_t offset = sector * 512 + pmem->data_offset;
  180. if (unlikely(is_bad_pmem(&pmem->bb, sector, size)))
  181. return -EIO;
  182. *kaddr = pmem->virt_addr + offset;
  183. *pfn = phys_to_pfn_t(pmem->phys_addr + offset, pmem->pfn_flags);
  184. /*
  185. * If badblocks are present, limit known good range to the
  186. * requested range.
  187. */
  188. if (unlikely(pmem->bb.count))
  189. return size;
  190. return pmem->size - pmem->pfn_pad - offset;
  191. }
  192. static const struct block_device_operations pmem_fops = {
  193. .owner = THIS_MODULE,
  194. .rw_page = pmem_rw_page,
  195. .direct_access = pmem_direct_access,
  196. .revalidate_disk = nvdimm_revalidate_disk,
  197. };
  198. static void pmem_release_queue(void *q)
  199. {
  200. blk_cleanup_queue(q);
  201. }
  202. static void pmem_release_disk(void *disk)
  203. {
  204. del_gendisk(disk);
  205. put_disk(disk);
  206. }
  207. static int pmem_attach_disk(struct device *dev,
  208. struct nd_namespace_common *ndns)
  209. {
  210. struct nd_namespace_io *nsio = to_nd_namespace_io(&ndns->dev);
  211. struct nd_region *nd_region = to_nd_region(dev->parent);
  212. struct vmem_altmap __altmap, *altmap = NULL;
  213. struct resource *res = &nsio->res;
  214. struct nd_pfn *nd_pfn = NULL;
  215. int nid = dev_to_node(dev);
  216. struct nd_pfn_sb *pfn_sb;
  217. struct pmem_device *pmem;
  218. struct resource pfn_res;
  219. struct request_queue *q;
  220. struct gendisk *disk;
  221. void *addr;
  222. /* while nsio_rw_bytes is active, parse a pfn info block if present */
  223. if (is_nd_pfn(dev)) {
  224. nd_pfn = to_nd_pfn(dev);
  225. altmap = nvdimm_setup_pfn(nd_pfn, &pfn_res, &__altmap);
  226. if (IS_ERR(altmap))
  227. return PTR_ERR(altmap);
  228. }
  229. /* we're attaching a block device, disable raw namespace access */
  230. devm_nsio_disable(dev, nsio);
  231. pmem = devm_kzalloc(dev, sizeof(*pmem), GFP_KERNEL);
  232. if (!pmem)
  233. return -ENOMEM;
  234. dev_set_drvdata(dev, pmem);
  235. pmem->phys_addr = res->start;
  236. pmem->size = resource_size(res);
  237. if (nvdimm_has_flush(nd_region) < 0)
  238. dev_warn(dev, "unable to guarantee persistence of writes\n");
  239. if (!devm_request_mem_region(dev, res->start, resource_size(res),
  240. dev_name(&ndns->dev))) {
  241. dev_warn(dev, "could not reserve region %pR\n", res);
  242. return -EBUSY;
  243. }
  244. q = blk_alloc_queue_node(GFP_KERNEL, dev_to_node(dev));
  245. if (!q)
  246. return -ENOMEM;
  247. pmem->pfn_flags = PFN_DEV;
  248. if (is_nd_pfn(dev)) {
  249. addr = devm_memremap_pages(dev, &pfn_res, &q->q_usage_counter,
  250. altmap);
  251. pfn_sb = nd_pfn->pfn_sb;
  252. pmem->data_offset = le64_to_cpu(pfn_sb->dataoff);
  253. pmem->pfn_pad = resource_size(res) - resource_size(&pfn_res);
  254. pmem->pfn_flags |= PFN_MAP;
  255. res = &pfn_res; /* for badblocks populate */
  256. res->start += pmem->data_offset;
  257. } else if (pmem_should_map_pages(dev)) {
  258. addr = devm_memremap_pages(dev, &nsio->res,
  259. &q->q_usage_counter, NULL);
  260. pmem->pfn_flags |= PFN_MAP;
  261. } else
  262. addr = devm_memremap(dev, pmem->phys_addr,
  263. pmem->size, ARCH_MEMREMAP_PMEM);
  264. /*
  265. * At release time the queue must be dead before
  266. * devm_memremap_pages is unwound
  267. */
  268. if (devm_add_action_or_reset(dev, pmem_release_queue, q))
  269. return -ENOMEM;
  270. if (IS_ERR(addr))
  271. return PTR_ERR(addr);
  272. pmem->virt_addr = addr;
  273. blk_queue_write_cache(q, true, true);
  274. blk_queue_make_request(q, pmem_make_request);
  275. blk_queue_physical_block_size(q, PAGE_SIZE);
  276. blk_queue_max_hw_sectors(q, UINT_MAX);
  277. blk_queue_bounce_limit(q, BLK_BOUNCE_ANY);
  278. queue_flag_set_unlocked(QUEUE_FLAG_NONROT, q);
  279. queue_flag_set_unlocked(QUEUE_FLAG_DAX, q);
  280. q->queuedata = pmem;
  281. disk = alloc_disk_node(0, nid);
  282. if (!disk)
  283. return -ENOMEM;
  284. disk->fops = &pmem_fops;
  285. disk->queue = q;
  286. disk->flags = GENHD_FL_EXT_DEVT;
  287. nvdimm_namespace_disk_name(ndns, disk->disk_name);
  288. set_capacity(disk, (pmem->size - pmem->pfn_pad - pmem->data_offset)
  289. / 512);
  290. if (devm_init_badblocks(dev, &pmem->bb))
  291. return -ENOMEM;
  292. nvdimm_badblocks_populate(nd_region, &pmem->bb, res);
  293. disk->bb = &pmem->bb;
  294. device_add_disk(dev, disk);
  295. if (devm_add_action_or_reset(dev, pmem_release_disk, disk))
  296. return -ENOMEM;
  297. revalidate_disk(disk);
  298. return 0;
  299. }
  300. static int nd_pmem_probe(struct device *dev)
  301. {
  302. struct nd_namespace_common *ndns;
  303. ndns = nvdimm_namespace_common_probe(dev);
  304. if (IS_ERR(ndns))
  305. return PTR_ERR(ndns);
  306. if (devm_nsio_enable(dev, to_nd_namespace_io(&ndns->dev)))
  307. return -ENXIO;
  308. if (is_nd_btt(dev))
  309. return nvdimm_namespace_attach_btt(ndns);
  310. if (is_nd_pfn(dev))
  311. return pmem_attach_disk(dev, ndns);
  312. /* if we find a valid info-block we'll come back as that personality */
  313. if (nd_btt_probe(dev, ndns) == 0 || nd_pfn_probe(dev, ndns) == 0
  314. || nd_dax_probe(dev, ndns) == 0)
  315. return -ENXIO;
  316. /* ...otherwise we're just a raw pmem device */
  317. return pmem_attach_disk(dev, ndns);
  318. }
  319. static int nd_pmem_remove(struct device *dev)
  320. {
  321. if (is_nd_btt(dev))
  322. nvdimm_namespace_detach_btt(to_nd_btt(dev));
  323. nvdimm_flush(to_nd_region(dev->parent));
  324. return 0;
  325. }
  326. static void nd_pmem_shutdown(struct device *dev)
  327. {
  328. nvdimm_flush(to_nd_region(dev->parent));
  329. }
  330. static void nd_pmem_notify(struct device *dev, enum nvdimm_event event)
  331. {
  332. struct pmem_device *pmem = dev_get_drvdata(dev);
  333. struct nd_region *nd_region = to_region(pmem);
  334. resource_size_t offset = 0, end_trunc = 0;
  335. struct nd_namespace_common *ndns;
  336. struct nd_namespace_io *nsio;
  337. struct resource res;
  338. if (event != NVDIMM_REVALIDATE_POISON)
  339. return;
  340. if (is_nd_btt(dev)) {
  341. struct nd_btt *nd_btt = to_nd_btt(dev);
  342. ndns = nd_btt->ndns;
  343. } else if (is_nd_pfn(dev)) {
  344. struct nd_pfn *nd_pfn = to_nd_pfn(dev);
  345. struct nd_pfn_sb *pfn_sb = nd_pfn->pfn_sb;
  346. ndns = nd_pfn->ndns;
  347. offset = pmem->data_offset + __le32_to_cpu(pfn_sb->start_pad);
  348. end_trunc = __le32_to_cpu(pfn_sb->end_trunc);
  349. } else
  350. ndns = to_ndns(dev);
  351. nsio = to_nd_namespace_io(&ndns->dev);
  352. res.start = nsio->res.start + offset;
  353. res.end = nsio->res.end - end_trunc;
  354. nvdimm_badblocks_populate(nd_region, &pmem->bb, &res);
  355. }
  356. MODULE_ALIAS("pmem");
  357. MODULE_ALIAS_ND_DEVICE(ND_DEVICE_NAMESPACE_IO);
  358. MODULE_ALIAS_ND_DEVICE(ND_DEVICE_NAMESPACE_PMEM);
  359. static struct nd_device_driver nd_pmem_driver = {
  360. .probe = nd_pmem_probe,
  361. .remove = nd_pmem_remove,
  362. .notify = nd_pmem_notify,
  363. .shutdown = nd_pmem_shutdown,
  364. .drv = {
  365. .name = "nd_pmem",
  366. },
  367. .type = ND_DRIVER_NAMESPACE_IO | ND_DRIVER_NAMESPACE_PMEM,
  368. };
  369. static int __init pmem_init(void)
  370. {
  371. return nd_driver_register(&nd_pmem_driver);
  372. }
  373. module_init(pmem_init);
  374. static void pmem_exit(void)
  375. {
  376. driver_unregister(&nd_pmem_driver.drv);
  377. }
  378. module_exit(pmem_exit);
  379. MODULE_AUTHOR("Ross Zwisler <ross.zwisler@linux.intel.com>");
  380. MODULE_LICENSE("GPL v2");