ram_core.c 11 KB

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  1. /*
  2. * Copyright (C) 2012 Google, Inc.
  3. *
  4. * This software is licensed under the terms of the GNU General Public
  5. * License version 2, as published by the Free Software Foundation, and
  6. * may be copied, distributed, and modified under those terms.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. *
  13. */
  14. #include <linux/device.h>
  15. #include <linux/err.h>
  16. #include <linux/errno.h>
  17. #include <linux/kernel.h>
  18. #include <linux/init.h>
  19. #include <linux/io.h>
  20. #include <linux/list.h>
  21. #include <linux/memblock.h>
  22. #include <linux/rslib.h>
  23. #include <linux/slab.h>
  24. #include <linux/vmalloc.h>
  25. #include <linux/pstore_ram.h>
  26. #include <asm/page.h>
  27. struct persistent_ram_buffer {
  28. uint32_t sig;
  29. atomic_t start;
  30. atomic_t size;
  31. uint8_t data[0];
  32. };
  33. #define PERSISTENT_RAM_SIG (0x43474244) /* DBGC */
  34. static inline size_t buffer_size(struct persistent_ram_zone *prz)
  35. {
  36. return atomic_read(&prz->buffer->size);
  37. }
  38. static inline size_t buffer_start(struct persistent_ram_zone *prz)
  39. {
  40. return atomic_read(&prz->buffer->start);
  41. }
  42. /* increase and wrap the start pointer, returning the old value */
  43. static inline size_t buffer_start_add(struct persistent_ram_zone *prz, size_t a)
  44. {
  45. int old;
  46. int new;
  47. do {
  48. old = atomic_read(&prz->buffer->start);
  49. new = old + a;
  50. while (unlikely(new > prz->buffer_size))
  51. new -= prz->buffer_size;
  52. } while (atomic_cmpxchg(&prz->buffer->start, old, new) != old);
  53. return old;
  54. }
  55. /* increase the size counter until it hits the max size */
  56. static inline void buffer_size_add(struct persistent_ram_zone *prz, size_t a)
  57. {
  58. size_t old;
  59. size_t new;
  60. if (atomic_read(&prz->buffer->size) == prz->buffer_size)
  61. return;
  62. do {
  63. old = atomic_read(&prz->buffer->size);
  64. new = old + a;
  65. if (new > prz->buffer_size)
  66. new = prz->buffer_size;
  67. } while (atomic_cmpxchg(&prz->buffer->size, old, new) != old);
  68. }
  69. static void notrace persistent_ram_encode_rs8(struct persistent_ram_zone *prz,
  70. uint8_t *data, size_t len, uint8_t *ecc)
  71. {
  72. int i;
  73. uint16_t par[prz->ecc_size];
  74. /* Initialize the parity buffer */
  75. memset(par, 0, sizeof(par));
  76. encode_rs8(prz->rs_decoder, data, len, par, 0);
  77. for (i = 0; i < prz->ecc_size; i++)
  78. ecc[i] = par[i];
  79. }
  80. static int persistent_ram_decode_rs8(struct persistent_ram_zone *prz,
  81. void *data, size_t len, uint8_t *ecc)
  82. {
  83. int i;
  84. uint16_t par[prz->ecc_size];
  85. for (i = 0; i < prz->ecc_size; i++)
  86. par[i] = ecc[i];
  87. return decode_rs8(prz->rs_decoder, data, par, len,
  88. NULL, 0, NULL, 0, NULL);
  89. }
  90. static void notrace persistent_ram_update_ecc(struct persistent_ram_zone *prz,
  91. unsigned int start, unsigned int count)
  92. {
  93. struct persistent_ram_buffer *buffer = prz->buffer;
  94. uint8_t *buffer_end = buffer->data + prz->buffer_size;
  95. uint8_t *block;
  96. uint8_t *par;
  97. int ecc_block_size = prz->ecc_block_size;
  98. int ecc_size = prz->ecc_size;
  99. int size = prz->ecc_block_size;
  100. if (!prz->ecc)
  101. return;
  102. block = buffer->data + (start & ~(ecc_block_size - 1));
  103. par = prz->par_buffer + (start / ecc_block_size) * prz->ecc_size;
  104. do {
  105. if (block + ecc_block_size > buffer_end)
  106. size = buffer_end - block;
  107. persistent_ram_encode_rs8(prz, block, size, par);
  108. block += ecc_block_size;
  109. par += ecc_size;
  110. } while (block < buffer->data + start + count);
  111. }
  112. static void persistent_ram_update_header_ecc(struct persistent_ram_zone *prz)
  113. {
  114. struct persistent_ram_buffer *buffer = prz->buffer;
  115. if (!prz->ecc)
  116. return;
  117. persistent_ram_encode_rs8(prz, (uint8_t *)buffer, sizeof(*buffer),
  118. prz->par_header);
  119. }
  120. static void persistent_ram_ecc_old(struct persistent_ram_zone *prz)
  121. {
  122. struct persistent_ram_buffer *buffer = prz->buffer;
  123. uint8_t *block;
  124. uint8_t *par;
  125. if (!prz->ecc)
  126. return;
  127. block = buffer->data;
  128. par = prz->par_buffer;
  129. while (block < buffer->data + buffer_size(prz)) {
  130. int numerr;
  131. int size = prz->ecc_block_size;
  132. if (block + size > buffer->data + prz->buffer_size)
  133. size = buffer->data + prz->buffer_size - block;
  134. numerr = persistent_ram_decode_rs8(prz, block, size, par);
  135. if (numerr > 0) {
  136. pr_devel("persistent_ram: error in block %p, %d\n",
  137. block, numerr);
  138. prz->corrected_bytes += numerr;
  139. } else if (numerr < 0) {
  140. pr_devel("persistent_ram: uncorrectable error in block %p\n",
  141. block);
  142. prz->bad_blocks++;
  143. }
  144. block += prz->ecc_block_size;
  145. par += prz->ecc_size;
  146. }
  147. }
  148. static int persistent_ram_init_ecc(struct persistent_ram_zone *prz,
  149. size_t buffer_size)
  150. {
  151. int numerr;
  152. struct persistent_ram_buffer *buffer = prz->buffer;
  153. int ecc_blocks;
  154. if (!prz->ecc)
  155. return 0;
  156. prz->ecc_block_size = 128;
  157. prz->ecc_size = 16;
  158. prz->ecc_symsize = 8;
  159. prz->ecc_poly = 0x11d;
  160. ecc_blocks = DIV_ROUND_UP(prz->buffer_size, prz->ecc_block_size);
  161. prz->buffer_size -= (ecc_blocks + 1) * prz->ecc_size;
  162. if (prz->buffer_size > buffer_size) {
  163. pr_err("persistent_ram: invalid size %zu, non-ecc datasize %zu\n",
  164. buffer_size, prz->buffer_size);
  165. return -EINVAL;
  166. }
  167. prz->par_buffer = buffer->data + prz->buffer_size;
  168. prz->par_header = prz->par_buffer + ecc_blocks * prz->ecc_size;
  169. /*
  170. * first consecutive root is 0
  171. * primitive element to generate roots = 1
  172. */
  173. prz->rs_decoder = init_rs(prz->ecc_symsize, prz->ecc_poly, 0, 1,
  174. prz->ecc_size);
  175. if (prz->rs_decoder == NULL) {
  176. pr_info("persistent_ram: init_rs failed\n");
  177. return -EINVAL;
  178. }
  179. prz->corrected_bytes = 0;
  180. prz->bad_blocks = 0;
  181. numerr = persistent_ram_decode_rs8(prz, buffer, sizeof(*buffer),
  182. prz->par_header);
  183. if (numerr > 0) {
  184. pr_info("persistent_ram: error in header, %d\n", numerr);
  185. prz->corrected_bytes += numerr;
  186. } else if (numerr < 0) {
  187. pr_info("persistent_ram: uncorrectable error in header\n");
  188. prz->bad_blocks++;
  189. }
  190. return 0;
  191. }
  192. ssize_t persistent_ram_ecc_string(struct persistent_ram_zone *prz,
  193. char *str, size_t len)
  194. {
  195. ssize_t ret;
  196. if (prz->corrected_bytes || prz->bad_blocks)
  197. ret = snprintf(str, len, ""
  198. "\n%d Corrected bytes, %d unrecoverable blocks\n",
  199. prz->corrected_bytes, prz->bad_blocks);
  200. else
  201. ret = snprintf(str, len, "\nNo errors detected\n");
  202. return ret;
  203. }
  204. static void notrace persistent_ram_update(struct persistent_ram_zone *prz,
  205. const void *s, unsigned int start, unsigned int count)
  206. {
  207. struct persistent_ram_buffer *buffer = prz->buffer;
  208. memcpy(buffer->data + start, s, count);
  209. persistent_ram_update_ecc(prz, start, count);
  210. }
  211. void persistent_ram_save_old(struct persistent_ram_zone *prz)
  212. {
  213. struct persistent_ram_buffer *buffer = prz->buffer;
  214. size_t size = buffer_size(prz);
  215. size_t start = buffer_start(prz);
  216. if (!size)
  217. return;
  218. if (!prz->old_log) {
  219. persistent_ram_ecc_old(prz);
  220. prz->old_log = kmalloc(size, GFP_KERNEL);
  221. }
  222. if (!prz->old_log) {
  223. pr_err("persistent_ram: failed to allocate buffer\n");
  224. return;
  225. }
  226. prz->old_log_size = size;
  227. memcpy(prz->old_log, &buffer->data[start], size - start);
  228. memcpy(prz->old_log + size - start, &buffer->data[0], start);
  229. }
  230. int notrace persistent_ram_write(struct persistent_ram_zone *prz,
  231. const void *s, unsigned int count)
  232. {
  233. int rem;
  234. int c = count;
  235. size_t start;
  236. if (unlikely(c > prz->buffer_size)) {
  237. s += c - prz->buffer_size;
  238. c = prz->buffer_size;
  239. }
  240. buffer_size_add(prz, c);
  241. start = buffer_start_add(prz, c);
  242. rem = prz->buffer_size - start;
  243. if (unlikely(rem < c)) {
  244. persistent_ram_update(prz, s, start, rem);
  245. s += rem;
  246. c -= rem;
  247. start = 0;
  248. }
  249. persistent_ram_update(prz, s, start, c);
  250. persistent_ram_update_header_ecc(prz);
  251. return count;
  252. }
  253. size_t persistent_ram_old_size(struct persistent_ram_zone *prz)
  254. {
  255. return prz->old_log_size;
  256. }
  257. void *persistent_ram_old(struct persistent_ram_zone *prz)
  258. {
  259. return prz->old_log;
  260. }
  261. void persistent_ram_free_old(struct persistent_ram_zone *prz)
  262. {
  263. kfree(prz->old_log);
  264. prz->old_log = NULL;
  265. prz->old_log_size = 0;
  266. }
  267. void persistent_ram_zap(struct persistent_ram_zone *prz)
  268. {
  269. atomic_set(&prz->buffer->start, 0);
  270. atomic_set(&prz->buffer->size, 0);
  271. persistent_ram_update_header_ecc(prz);
  272. }
  273. static void *persistent_ram_vmap(phys_addr_t start, size_t size)
  274. {
  275. struct page **pages;
  276. phys_addr_t page_start;
  277. unsigned int page_count;
  278. pgprot_t prot;
  279. unsigned int i;
  280. void *vaddr;
  281. page_start = start - offset_in_page(start);
  282. page_count = DIV_ROUND_UP(size + offset_in_page(start), PAGE_SIZE);
  283. prot = pgprot_noncached(PAGE_KERNEL);
  284. pages = kmalloc(sizeof(struct page *) * page_count, GFP_KERNEL);
  285. if (!pages) {
  286. pr_err("%s: Failed to allocate array for %u pages\n", __func__,
  287. page_count);
  288. return NULL;
  289. }
  290. for (i = 0; i < page_count; i++) {
  291. phys_addr_t addr = page_start + i * PAGE_SIZE;
  292. pages[i] = pfn_to_page(addr >> PAGE_SHIFT);
  293. }
  294. vaddr = vmap(pages, page_count, VM_MAP, prot);
  295. kfree(pages);
  296. return vaddr;
  297. }
  298. static void *persistent_ram_iomap(phys_addr_t start, size_t size)
  299. {
  300. if (!request_mem_region(start, size, "persistent_ram")) {
  301. pr_err("request mem region (0x%llx@0x%llx) failed\n",
  302. (unsigned long long)size, (unsigned long long)start);
  303. return NULL;
  304. }
  305. return ioremap(start, size);
  306. }
  307. static int persistent_ram_buffer_map(phys_addr_t start, phys_addr_t size,
  308. struct persistent_ram_zone *prz)
  309. {
  310. prz->paddr = start;
  311. prz->size = size;
  312. if (pfn_valid(start >> PAGE_SHIFT))
  313. prz->vaddr = persistent_ram_vmap(start, size);
  314. else
  315. prz->vaddr = persistent_ram_iomap(start, size);
  316. if (!prz->vaddr) {
  317. pr_err("%s: Failed to map 0x%llx pages at 0x%llx\n", __func__,
  318. (unsigned long long)size, (unsigned long long)start);
  319. return -ENOMEM;
  320. }
  321. prz->buffer = prz->vaddr + offset_in_page(start);
  322. prz->buffer_size = size - sizeof(struct persistent_ram_buffer);
  323. return 0;
  324. }
  325. static int __init persistent_ram_post_init(struct persistent_ram_zone *prz, bool ecc)
  326. {
  327. int ret;
  328. prz->ecc = ecc;
  329. ret = persistent_ram_init_ecc(prz, prz->buffer_size);
  330. if (ret)
  331. return ret;
  332. if (prz->buffer->sig == PERSISTENT_RAM_SIG) {
  333. if (buffer_size(prz) > prz->buffer_size ||
  334. buffer_start(prz) > buffer_size(prz))
  335. pr_info("persistent_ram: found existing invalid buffer,"
  336. " size %zu, start %zu\n",
  337. buffer_size(prz), buffer_start(prz));
  338. else {
  339. pr_debug("persistent_ram: found existing buffer,"
  340. " size %zu, start %zu\n",
  341. buffer_size(prz), buffer_start(prz));
  342. persistent_ram_save_old(prz);
  343. return 0;
  344. }
  345. } else {
  346. pr_debug("persistent_ram: no valid data in buffer"
  347. " (sig = 0x%08x)\n", prz->buffer->sig);
  348. }
  349. prz->buffer->sig = PERSISTENT_RAM_SIG;
  350. persistent_ram_zap(prz);
  351. return 0;
  352. }
  353. void persistent_ram_free(struct persistent_ram_zone *prz)
  354. {
  355. if (pfn_valid(prz->paddr >> PAGE_SHIFT)) {
  356. vunmap(prz->vaddr);
  357. } else {
  358. iounmap(prz->vaddr);
  359. release_mem_region(prz->paddr, prz->size);
  360. }
  361. persistent_ram_free_old(prz);
  362. kfree(prz);
  363. }
  364. struct persistent_ram_zone * __init persistent_ram_new(phys_addr_t start,
  365. size_t size,
  366. bool ecc)
  367. {
  368. struct persistent_ram_zone *prz;
  369. int ret = -ENOMEM;
  370. prz = kzalloc(sizeof(struct persistent_ram_zone), GFP_KERNEL);
  371. if (!prz) {
  372. pr_err("persistent_ram: failed to allocate persistent ram zone\n");
  373. goto err;
  374. }
  375. ret = persistent_ram_buffer_map(start, size, prz);
  376. if (ret)
  377. goto err;
  378. persistent_ram_post_init(prz, ecc);
  379. return prz;
  380. err:
  381. kfree(prz);
  382. return ERR_PTR(ret);
  383. }