target_core_rd.c 12 KB

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  1. /*******************************************************************************
  2. * Filename: target_core_rd.c
  3. *
  4. * This file contains the Storage Engine <-> Ramdisk transport
  5. * specific functions.
  6. *
  7. * (c) Copyright 2003-2013 Datera, Inc.
  8. *
  9. * Nicholas A. Bellinger <nab@kernel.org>
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or
  14. * (at your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, write to the Free Software
  23. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  24. *
  25. ******************************************************************************/
  26. #include <linux/string.h>
  27. #include <linux/parser.h>
  28. #include <linux/timer.h>
  29. #include <linux/slab.h>
  30. #include <linux/spinlock.h>
  31. #include <scsi/scsi.h>
  32. #include <scsi/scsi_host.h>
  33. #include <target/target_core_base.h>
  34. #include <target/target_core_backend.h>
  35. #include "target_core_rd.h"
  36. static inline struct rd_dev *RD_DEV(struct se_device *dev)
  37. {
  38. return container_of(dev, struct rd_dev, dev);
  39. }
  40. /* rd_attach_hba(): (Part of se_subsystem_api_t template)
  41. *
  42. *
  43. */
  44. static int rd_attach_hba(struct se_hba *hba, u32 host_id)
  45. {
  46. struct rd_host *rd_host;
  47. rd_host = kzalloc(sizeof(struct rd_host), GFP_KERNEL);
  48. if (!rd_host) {
  49. pr_err("Unable to allocate memory for struct rd_host\n");
  50. return -ENOMEM;
  51. }
  52. rd_host->rd_host_id = host_id;
  53. hba->hba_ptr = rd_host;
  54. pr_debug("CORE_HBA[%d] - TCM Ramdisk HBA Driver %s on"
  55. " Generic Target Core Stack %s\n", hba->hba_id,
  56. RD_HBA_VERSION, TARGET_CORE_MOD_VERSION);
  57. return 0;
  58. }
  59. static void rd_detach_hba(struct se_hba *hba)
  60. {
  61. struct rd_host *rd_host = hba->hba_ptr;
  62. pr_debug("CORE_HBA[%d] - Detached Ramdisk HBA: %u from"
  63. " Generic Target Core\n", hba->hba_id, rd_host->rd_host_id);
  64. kfree(rd_host);
  65. hba->hba_ptr = NULL;
  66. }
  67. /* rd_release_device_space():
  68. *
  69. *
  70. */
  71. static void rd_release_device_space(struct rd_dev *rd_dev)
  72. {
  73. u32 i, j, page_count = 0, sg_per_table;
  74. struct rd_dev_sg_table *sg_table;
  75. struct page *pg;
  76. struct scatterlist *sg;
  77. if (!rd_dev->sg_table_array || !rd_dev->sg_table_count)
  78. return;
  79. sg_table = rd_dev->sg_table_array;
  80. for (i = 0; i < rd_dev->sg_table_count; i++) {
  81. sg = sg_table[i].sg_table;
  82. sg_per_table = sg_table[i].rd_sg_count;
  83. for (j = 0; j < sg_per_table; j++) {
  84. pg = sg_page(&sg[j]);
  85. if (pg) {
  86. __free_page(pg);
  87. page_count++;
  88. }
  89. }
  90. kfree(sg);
  91. }
  92. pr_debug("CORE_RD[%u] - Released device space for Ramdisk"
  93. " Device ID: %u, pages %u in %u tables total bytes %lu\n",
  94. rd_dev->rd_host->rd_host_id, rd_dev->rd_dev_id, page_count,
  95. rd_dev->sg_table_count, (unsigned long)page_count * PAGE_SIZE);
  96. kfree(sg_table);
  97. rd_dev->sg_table_array = NULL;
  98. rd_dev->sg_table_count = 0;
  99. }
  100. /* rd_build_device_space():
  101. *
  102. *
  103. */
  104. static int rd_build_device_space(struct rd_dev *rd_dev)
  105. {
  106. u32 i = 0, j, page_offset = 0, sg_per_table, sg_tables, total_sg_needed;
  107. u32 max_sg_per_table = (RD_MAX_ALLOCATION_SIZE /
  108. sizeof(struct scatterlist));
  109. struct rd_dev_sg_table *sg_table;
  110. struct page *pg;
  111. struct scatterlist *sg;
  112. if (rd_dev->rd_page_count <= 0) {
  113. pr_err("Illegal page count: %u for Ramdisk device\n",
  114. rd_dev->rd_page_count);
  115. return -EINVAL;
  116. }
  117. /* Don't need backing pages for NULLIO */
  118. if (rd_dev->rd_flags & RDF_NULLIO)
  119. return 0;
  120. total_sg_needed = rd_dev->rd_page_count;
  121. sg_tables = (total_sg_needed / max_sg_per_table) + 1;
  122. sg_table = kzalloc(sg_tables * sizeof(struct rd_dev_sg_table), GFP_KERNEL);
  123. if (!sg_table) {
  124. pr_err("Unable to allocate memory for Ramdisk"
  125. " scatterlist tables\n");
  126. return -ENOMEM;
  127. }
  128. rd_dev->sg_table_array = sg_table;
  129. rd_dev->sg_table_count = sg_tables;
  130. while (total_sg_needed) {
  131. sg_per_table = (total_sg_needed > max_sg_per_table) ?
  132. max_sg_per_table : total_sg_needed;
  133. sg = kzalloc(sg_per_table * sizeof(struct scatterlist),
  134. GFP_KERNEL);
  135. if (!sg) {
  136. pr_err("Unable to allocate scatterlist array"
  137. " for struct rd_dev\n");
  138. return -ENOMEM;
  139. }
  140. sg_init_table(sg, sg_per_table);
  141. sg_table[i].sg_table = sg;
  142. sg_table[i].rd_sg_count = sg_per_table;
  143. sg_table[i].page_start_offset = page_offset;
  144. sg_table[i++].page_end_offset = (page_offset + sg_per_table)
  145. - 1;
  146. for (j = 0; j < sg_per_table; j++) {
  147. pg = alloc_pages(GFP_KERNEL, 0);
  148. if (!pg) {
  149. pr_err("Unable to allocate scatterlist"
  150. " pages for struct rd_dev_sg_table\n");
  151. return -ENOMEM;
  152. }
  153. sg_assign_page(&sg[j], pg);
  154. sg[j].length = PAGE_SIZE;
  155. }
  156. page_offset += sg_per_table;
  157. total_sg_needed -= sg_per_table;
  158. }
  159. pr_debug("CORE_RD[%u] - Built Ramdisk Device ID: %u space of"
  160. " %u pages in %u tables\n", rd_dev->rd_host->rd_host_id,
  161. rd_dev->rd_dev_id, rd_dev->rd_page_count,
  162. rd_dev->sg_table_count);
  163. return 0;
  164. }
  165. static struct se_device *rd_alloc_device(struct se_hba *hba, const char *name)
  166. {
  167. struct rd_dev *rd_dev;
  168. struct rd_host *rd_host = hba->hba_ptr;
  169. rd_dev = kzalloc(sizeof(struct rd_dev), GFP_KERNEL);
  170. if (!rd_dev) {
  171. pr_err("Unable to allocate memory for struct rd_dev\n");
  172. return NULL;
  173. }
  174. rd_dev->rd_host = rd_host;
  175. return &rd_dev->dev;
  176. }
  177. static int rd_configure_device(struct se_device *dev)
  178. {
  179. struct rd_dev *rd_dev = RD_DEV(dev);
  180. struct rd_host *rd_host = dev->se_hba->hba_ptr;
  181. int ret;
  182. if (!(rd_dev->rd_flags & RDF_HAS_PAGE_COUNT)) {
  183. pr_debug("Missing rd_pages= parameter\n");
  184. return -EINVAL;
  185. }
  186. ret = rd_build_device_space(rd_dev);
  187. if (ret < 0)
  188. goto fail;
  189. dev->dev_attrib.hw_block_size = RD_BLOCKSIZE;
  190. dev->dev_attrib.hw_max_sectors = UINT_MAX;
  191. dev->dev_attrib.hw_queue_depth = RD_MAX_DEVICE_QUEUE_DEPTH;
  192. rd_dev->rd_dev_id = rd_host->rd_host_dev_id_count++;
  193. pr_debug("CORE_RD[%u] - Added TCM MEMCPY Ramdisk Device ID: %u of"
  194. " %u pages in %u tables, %lu total bytes\n",
  195. rd_host->rd_host_id, rd_dev->rd_dev_id, rd_dev->rd_page_count,
  196. rd_dev->sg_table_count,
  197. (unsigned long)(rd_dev->rd_page_count * PAGE_SIZE));
  198. return 0;
  199. fail:
  200. rd_release_device_space(rd_dev);
  201. return ret;
  202. }
  203. static void rd_free_device(struct se_device *dev)
  204. {
  205. struct rd_dev *rd_dev = RD_DEV(dev);
  206. rd_release_device_space(rd_dev);
  207. kfree(rd_dev);
  208. }
  209. static struct rd_dev_sg_table *rd_get_sg_table(struct rd_dev *rd_dev, u32 page)
  210. {
  211. struct rd_dev_sg_table *sg_table;
  212. u32 i, sg_per_table = (RD_MAX_ALLOCATION_SIZE /
  213. sizeof(struct scatterlist));
  214. i = page / sg_per_table;
  215. if (i < rd_dev->sg_table_count) {
  216. sg_table = &rd_dev->sg_table_array[i];
  217. if ((sg_table->page_start_offset <= page) &&
  218. (sg_table->page_end_offset >= page))
  219. return sg_table;
  220. }
  221. pr_err("Unable to locate struct rd_dev_sg_table for page: %u\n",
  222. page);
  223. return NULL;
  224. }
  225. static sense_reason_t
  226. rd_execute_rw(struct se_cmd *cmd, struct scatterlist *sgl, u32 sgl_nents,
  227. enum dma_data_direction data_direction)
  228. {
  229. struct se_device *se_dev = cmd->se_dev;
  230. struct rd_dev *dev = RD_DEV(se_dev);
  231. struct rd_dev_sg_table *table;
  232. struct scatterlist *rd_sg;
  233. struct sg_mapping_iter m;
  234. u32 rd_offset;
  235. u32 rd_size;
  236. u32 rd_page;
  237. u32 src_len;
  238. u64 tmp;
  239. if (dev->rd_flags & RDF_NULLIO) {
  240. target_complete_cmd(cmd, SAM_STAT_GOOD);
  241. return 0;
  242. }
  243. tmp = cmd->t_task_lba * se_dev->dev_attrib.block_size;
  244. rd_offset = do_div(tmp, PAGE_SIZE);
  245. rd_page = tmp;
  246. rd_size = cmd->data_length;
  247. table = rd_get_sg_table(dev, rd_page);
  248. if (!table)
  249. return TCM_LOGICAL_UNIT_COMMUNICATION_FAILURE;
  250. rd_sg = &table->sg_table[rd_page - table->page_start_offset];
  251. pr_debug("RD[%u]: %s LBA: %llu, Size: %u Page: %u, Offset: %u\n",
  252. dev->rd_dev_id,
  253. data_direction == DMA_FROM_DEVICE ? "Read" : "Write",
  254. cmd->t_task_lba, rd_size, rd_page, rd_offset);
  255. src_len = PAGE_SIZE - rd_offset;
  256. sg_miter_start(&m, sgl, sgl_nents,
  257. data_direction == DMA_FROM_DEVICE ?
  258. SG_MITER_TO_SG : SG_MITER_FROM_SG);
  259. while (rd_size) {
  260. u32 len;
  261. void *rd_addr;
  262. sg_miter_next(&m);
  263. if (!(u32)m.length) {
  264. pr_debug("RD[%u]: invalid sgl %p len %zu\n",
  265. dev->rd_dev_id, m.addr, m.length);
  266. sg_miter_stop(&m);
  267. return TCM_INCORRECT_AMOUNT_OF_DATA;
  268. }
  269. len = min((u32)m.length, src_len);
  270. if (len > rd_size) {
  271. pr_debug("RD[%u]: size underrun page %d offset %d "
  272. "size %d\n", dev->rd_dev_id,
  273. rd_page, rd_offset, rd_size);
  274. len = rd_size;
  275. }
  276. m.consumed = len;
  277. rd_addr = sg_virt(rd_sg) + rd_offset;
  278. if (data_direction == DMA_FROM_DEVICE)
  279. memcpy(m.addr, rd_addr, len);
  280. else
  281. memcpy(rd_addr, m.addr, len);
  282. rd_size -= len;
  283. if (!rd_size)
  284. continue;
  285. src_len -= len;
  286. if (src_len) {
  287. rd_offset += len;
  288. continue;
  289. }
  290. /* rd page completed, next one please */
  291. rd_page++;
  292. rd_offset = 0;
  293. src_len = PAGE_SIZE;
  294. if (rd_page <= table->page_end_offset) {
  295. rd_sg++;
  296. continue;
  297. }
  298. table = rd_get_sg_table(dev, rd_page);
  299. if (!table) {
  300. sg_miter_stop(&m);
  301. return TCM_LOGICAL_UNIT_COMMUNICATION_FAILURE;
  302. }
  303. /* since we increment, the first sg entry is correct */
  304. rd_sg = table->sg_table;
  305. }
  306. sg_miter_stop(&m);
  307. target_complete_cmd(cmd, SAM_STAT_GOOD);
  308. return 0;
  309. }
  310. enum {
  311. Opt_rd_pages, Opt_rd_nullio, Opt_err
  312. };
  313. static match_table_t tokens = {
  314. {Opt_rd_pages, "rd_pages=%d"},
  315. {Opt_rd_nullio, "rd_nullio=%d"},
  316. {Opt_err, NULL}
  317. };
  318. static ssize_t rd_set_configfs_dev_params(struct se_device *dev,
  319. const char *page, ssize_t count)
  320. {
  321. struct rd_dev *rd_dev = RD_DEV(dev);
  322. char *orig, *ptr, *opts;
  323. substring_t args[MAX_OPT_ARGS];
  324. int ret = 0, arg, token;
  325. opts = kstrdup(page, GFP_KERNEL);
  326. if (!opts)
  327. return -ENOMEM;
  328. orig = opts;
  329. while ((ptr = strsep(&opts, ",\n")) != NULL) {
  330. if (!*ptr)
  331. continue;
  332. token = match_token(ptr, tokens, args);
  333. switch (token) {
  334. case Opt_rd_pages:
  335. match_int(args, &arg);
  336. rd_dev->rd_page_count = arg;
  337. pr_debug("RAMDISK: Referencing Page"
  338. " Count: %u\n", rd_dev->rd_page_count);
  339. rd_dev->rd_flags |= RDF_HAS_PAGE_COUNT;
  340. break;
  341. case Opt_rd_nullio:
  342. match_int(args, &arg);
  343. if (arg != 1)
  344. break;
  345. pr_debug("RAMDISK: Setting NULLIO flag: %d\n", arg);
  346. rd_dev->rd_flags |= RDF_NULLIO;
  347. break;
  348. default:
  349. break;
  350. }
  351. }
  352. kfree(orig);
  353. return (!ret) ? count : ret;
  354. }
  355. static ssize_t rd_show_configfs_dev_params(struct se_device *dev, char *b)
  356. {
  357. struct rd_dev *rd_dev = RD_DEV(dev);
  358. ssize_t bl = sprintf(b, "TCM RamDisk ID: %u RamDisk Makeup: rd_mcp\n",
  359. rd_dev->rd_dev_id);
  360. bl += sprintf(b + bl, " PAGES/PAGE_SIZE: %u*%lu"
  361. " SG_table_count: %u nullio: %d\n", rd_dev->rd_page_count,
  362. PAGE_SIZE, rd_dev->sg_table_count,
  363. !!(rd_dev->rd_flags & RDF_NULLIO));
  364. return bl;
  365. }
  366. static sector_t rd_get_blocks(struct se_device *dev)
  367. {
  368. struct rd_dev *rd_dev = RD_DEV(dev);
  369. unsigned long long blocks_long = ((rd_dev->rd_page_count * PAGE_SIZE) /
  370. dev->dev_attrib.block_size) - 1;
  371. return blocks_long;
  372. }
  373. static struct sbc_ops rd_sbc_ops = {
  374. .execute_rw = rd_execute_rw,
  375. };
  376. static sense_reason_t
  377. rd_parse_cdb(struct se_cmd *cmd)
  378. {
  379. return sbc_parse_cdb(cmd, &rd_sbc_ops);
  380. }
  381. static struct se_subsystem_api rd_mcp_template = {
  382. .name = "rd_mcp",
  383. .inquiry_prod = "RAMDISK-MCP",
  384. .inquiry_rev = RD_MCP_VERSION,
  385. .transport_type = TRANSPORT_PLUGIN_VHBA_VDEV,
  386. .attach_hba = rd_attach_hba,
  387. .detach_hba = rd_detach_hba,
  388. .alloc_device = rd_alloc_device,
  389. .configure_device = rd_configure_device,
  390. .free_device = rd_free_device,
  391. .parse_cdb = rd_parse_cdb,
  392. .set_configfs_dev_params = rd_set_configfs_dev_params,
  393. .show_configfs_dev_params = rd_show_configfs_dev_params,
  394. .get_device_type = sbc_get_device_type,
  395. .get_blocks = rd_get_blocks,
  396. };
  397. int __init rd_module_init(void)
  398. {
  399. int ret;
  400. ret = transport_subsystem_register(&rd_mcp_template);
  401. if (ret < 0) {
  402. return ret;
  403. }
  404. return 0;
  405. }
  406. void rd_module_exit(void)
  407. {
  408. transport_subsystem_release(&rd_mcp_template);
  409. }