mspro_block.c 36 KB

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  1. /*
  2. * Sony MemoryStick Pro storage support
  3. *
  4. * Copyright (C) 2007 Alex Dubov <oakad@yahoo.com>
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License version 2 as
  8. * published by the Free Software Foundation.
  9. *
  10. * Special thanks to Carlos Corbacho for providing various MemoryStick cards
  11. * that made this driver possible.
  12. *
  13. */
  14. #include <linux/blkdev.h>
  15. #include <linux/idr.h>
  16. #include <linux/hdreg.h>
  17. #include <linux/kthread.h>
  18. #include <linux/memstick.h>
  19. #define DRIVER_NAME "mspro_block"
  20. #define DRIVER_VERSION "0.2"
  21. static int major;
  22. module_param(major, int, 0644);
  23. #define MSPRO_BLOCK_MAX_SEGS 32
  24. #define MSPRO_BLOCK_MAX_PAGES ((2 << 16) - 1)
  25. #define MSPRO_BLOCK_SIGNATURE 0xa5c3
  26. #define MSPRO_BLOCK_MAX_ATTRIBUTES 41
  27. enum {
  28. MSPRO_BLOCK_ID_SYSINFO = 0x10,
  29. MSPRO_BLOCK_ID_MODELNAME = 0x15,
  30. MSPRO_BLOCK_ID_MBR = 0x20,
  31. MSPRO_BLOCK_ID_PBR16 = 0x21,
  32. MSPRO_BLOCK_ID_PBR32 = 0x22,
  33. MSPRO_BLOCK_ID_SPECFILEVALUES1 = 0x25,
  34. MSPRO_BLOCK_ID_SPECFILEVALUES2 = 0x26,
  35. MSPRO_BLOCK_ID_DEVINFO = 0x30
  36. };
  37. struct mspro_sys_attr {
  38. size_t size;
  39. void *data;
  40. unsigned char id;
  41. char name[32];
  42. struct device_attribute dev_attr;
  43. };
  44. struct mspro_attr_entry {
  45. unsigned int address;
  46. unsigned int size;
  47. unsigned char id;
  48. unsigned char reserved[3];
  49. } __attribute__((packed));
  50. struct mspro_attribute {
  51. unsigned short signature;
  52. unsigned short version;
  53. unsigned char count;
  54. unsigned char reserved[11];
  55. struct mspro_attr_entry entries[];
  56. } __attribute__((packed));
  57. struct mspro_sys_info {
  58. unsigned char class;
  59. unsigned char reserved0;
  60. unsigned short block_size;
  61. unsigned short block_count;
  62. unsigned short user_block_count;
  63. unsigned short page_size;
  64. unsigned char reserved1[2];
  65. unsigned char assembly_date[8];
  66. unsigned int serial_number;
  67. unsigned char assembly_maker_code;
  68. unsigned char assembly_model_code[3];
  69. unsigned short memory_maker_code;
  70. unsigned short memory_model_code;
  71. unsigned char reserved2[4];
  72. unsigned char vcc;
  73. unsigned char vpp;
  74. unsigned short controller_number;
  75. unsigned short controller_function;
  76. unsigned short start_sector;
  77. unsigned short unit_size;
  78. unsigned char ms_sub_class;
  79. unsigned char reserved3[4];
  80. unsigned char interface_type;
  81. unsigned short controller_code;
  82. unsigned char format_type;
  83. unsigned char reserved4;
  84. unsigned char device_type;
  85. unsigned char reserved5[7];
  86. unsigned char mspro_id[16];
  87. unsigned char reserved6[16];
  88. } __attribute__((packed));
  89. struct mspro_mbr {
  90. unsigned char boot_partition;
  91. unsigned char start_head;
  92. unsigned char start_sector;
  93. unsigned char start_cylinder;
  94. unsigned char partition_type;
  95. unsigned char end_head;
  96. unsigned char end_sector;
  97. unsigned char end_cylinder;
  98. unsigned int start_sectors;
  99. unsigned int sectors_per_partition;
  100. } __attribute__((packed));
  101. struct mspro_devinfo {
  102. unsigned short cylinders;
  103. unsigned short heads;
  104. unsigned short bytes_per_track;
  105. unsigned short bytes_per_sector;
  106. unsigned short sectors_per_track;
  107. unsigned char reserved[6];
  108. } __attribute__((packed));
  109. struct mspro_block_data {
  110. struct memstick_dev *card;
  111. unsigned int usage_count;
  112. struct gendisk *disk;
  113. struct request_queue *queue;
  114. spinlock_t q_lock;
  115. wait_queue_head_t q_wait;
  116. struct task_struct *q_thread;
  117. unsigned short page_size;
  118. unsigned short cylinders;
  119. unsigned short heads;
  120. unsigned short sectors_per_track;
  121. unsigned char system;
  122. unsigned char read_only:1,
  123. active:1,
  124. has_request:1,
  125. data_dir:1;
  126. unsigned char transfer_cmd;
  127. int (*mrq_handler)(struct memstick_dev *card,
  128. struct memstick_request **mrq);
  129. struct attribute_group attr_group;
  130. struct scatterlist req_sg[MSPRO_BLOCK_MAX_SEGS];
  131. unsigned int seg_count;
  132. unsigned int current_seg;
  133. unsigned short current_page;
  134. };
  135. static DEFINE_IDR(mspro_block_disk_idr);
  136. static DEFINE_MUTEX(mspro_block_disk_lock);
  137. /*** Block device ***/
  138. static int mspro_block_bd_open(struct inode *inode, struct file *filp)
  139. {
  140. struct gendisk *disk = inode->i_bdev->bd_disk;
  141. struct mspro_block_data *msb = disk->private_data;
  142. int rc = -ENXIO;
  143. mutex_lock(&mspro_block_disk_lock);
  144. if (msb && msb->card) {
  145. msb->usage_count++;
  146. if ((filp->f_mode & FMODE_WRITE) && msb->read_only)
  147. rc = -EROFS;
  148. else
  149. rc = 0;
  150. }
  151. mutex_unlock(&mspro_block_disk_lock);
  152. return rc;
  153. }
  154. static int mspro_block_disk_release(struct gendisk *disk)
  155. {
  156. struct mspro_block_data *msb = disk->private_data;
  157. int disk_id = disk->first_minor >> MEMSTICK_PART_SHIFT;
  158. mutex_lock(&mspro_block_disk_lock);
  159. if (msb->usage_count) {
  160. msb->usage_count--;
  161. if (!msb->usage_count) {
  162. kfree(msb);
  163. disk->private_data = NULL;
  164. idr_remove(&mspro_block_disk_idr, disk_id);
  165. put_disk(disk);
  166. }
  167. }
  168. mutex_unlock(&mspro_block_disk_lock);
  169. return 0;
  170. }
  171. static int mspro_block_bd_release(struct inode *inode, struct file *filp)
  172. {
  173. struct gendisk *disk = inode->i_bdev->bd_disk;
  174. return mspro_block_disk_release(disk);
  175. }
  176. static int mspro_block_bd_getgeo(struct block_device *bdev,
  177. struct hd_geometry *geo)
  178. {
  179. struct mspro_block_data *msb = bdev->bd_disk->private_data;
  180. geo->heads = msb->heads;
  181. geo->sectors = msb->sectors_per_track;
  182. geo->cylinders = msb->cylinders;
  183. return 0;
  184. }
  185. static struct block_device_operations ms_block_bdops = {
  186. .open = mspro_block_bd_open,
  187. .release = mspro_block_bd_release,
  188. .getgeo = mspro_block_bd_getgeo,
  189. .owner = THIS_MODULE
  190. };
  191. /*** Information ***/
  192. static struct mspro_sys_attr *mspro_from_sysfs_attr(struct attribute *attr)
  193. {
  194. struct device_attribute *dev_attr
  195. = container_of(attr, struct device_attribute, attr);
  196. return container_of(dev_attr, struct mspro_sys_attr, dev_attr);
  197. }
  198. static const char *mspro_block_attr_name(unsigned char tag)
  199. {
  200. switch (tag) {
  201. case MSPRO_BLOCK_ID_SYSINFO:
  202. return "attr_sysinfo";
  203. case MSPRO_BLOCK_ID_MODELNAME:
  204. return "attr_modelname";
  205. case MSPRO_BLOCK_ID_MBR:
  206. return "attr_mbr";
  207. case MSPRO_BLOCK_ID_PBR16:
  208. return "attr_pbr16";
  209. case MSPRO_BLOCK_ID_PBR32:
  210. return "attr_pbr32";
  211. case MSPRO_BLOCK_ID_SPECFILEVALUES1:
  212. return "attr_specfilevalues1";
  213. case MSPRO_BLOCK_ID_SPECFILEVALUES2:
  214. return "attr_specfilevalues2";
  215. case MSPRO_BLOCK_ID_DEVINFO:
  216. return "attr_devinfo";
  217. default:
  218. return NULL;
  219. };
  220. }
  221. typedef ssize_t (*sysfs_show_t)(struct device *dev,
  222. struct device_attribute *attr,
  223. char *buffer);
  224. static ssize_t mspro_block_attr_show_default(struct device *dev,
  225. struct device_attribute *attr,
  226. char *buffer)
  227. {
  228. struct mspro_sys_attr *s_attr = container_of(attr,
  229. struct mspro_sys_attr,
  230. dev_attr);
  231. ssize_t cnt, rc = 0;
  232. for (cnt = 0; cnt < s_attr->size; cnt++) {
  233. if (cnt && !(cnt % 16)) {
  234. if (PAGE_SIZE - rc)
  235. buffer[rc++] = '\n';
  236. }
  237. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "%02x ",
  238. ((unsigned char *)s_attr->data)[cnt]);
  239. }
  240. return rc;
  241. }
  242. static ssize_t mspro_block_attr_show_sysinfo(struct device *dev,
  243. struct device_attribute *attr,
  244. char *buffer)
  245. {
  246. struct mspro_sys_attr *x_attr = container_of(attr,
  247. struct mspro_sys_attr,
  248. dev_attr);
  249. struct mspro_sys_info *x_sys = x_attr->data;
  250. ssize_t rc = 0;
  251. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "class: %x\n",
  252. x_sys->class);
  253. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "block size: %x\n",
  254. be16_to_cpu(x_sys->block_size));
  255. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "block count: %x\n",
  256. be16_to_cpu(x_sys->block_count));
  257. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "user block count: %x\n",
  258. be16_to_cpu(x_sys->user_block_count));
  259. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "page size: %x\n",
  260. be16_to_cpu(x_sys->page_size));
  261. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "assembly date: "
  262. "%d %04u-%02u-%02u %02u:%02u:%02u\n",
  263. x_sys->assembly_date[0],
  264. be16_to_cpu(*(unsigned short *)
  265. &x_sys->assembly_date[1]),
  266. x_sys->assembly_date[3], x_sys->assembly_date[4],
  267. x_sys->assembly_date[5], x_sys->assembly_date[6],
  268. x_sys->assembly_date[7]);
  269. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "serial number: %x\n",
  270. be32_to_cpu(x_sys->serial_number));
  271. rc += scnprintf(buffer + rc, PAGE_SIZE - rc,
  272. "assembly maker code: %x\n",
  273. x_sys->assembly_maker_code);
  274. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "assembly model code: "
  275. "%02x%02x%02x\n", x_sys->assembly_model_code[0],
  276. x_sys->assembly_model_code[1],
  277. x_sys->assembly_model_code[2]);
  278. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "memory maker code: %x\n",
  279. be16_to_cpu(x_sys->memory_maker_code));
  280. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "memory model code: %x\n",
  281. be16_to_cpu(x_sys->memory_model_code));
  282. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "vcc: %x\n",
  283. x_sys->vcc);
  284. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "vpp: %x\n",
  285. x_sys->vpp);
  286. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "controller number: %x\n",
  287. be16_to_cpu(x_sys->controller_number));
  288. rc += scnprintf(buffer + rc, PAGE_SIZE - rc,
  289. "controller function: %x\n",
  290. be16_to_cpu(x_sys->controller_function));
  291. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "start sector: %x\n",
  292. be16_to_cpu(x_sys->start_sector));
  293. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "unit size: %x\n",
  294. be16_to_cpu(x_sys->unit_size));
  295. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "sub class: %x\n",
  296. x_sys->ms_sub_class);
  297. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "interface type: %x\n",
  298. x_sys->interface_type);
  299. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "controller code: %x\n",
  300. be16_to_cpu(x_sys->controller_code));
  301. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "format type: %x\n",
  302. x_sys->format_type);
  303. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "device type: %x\n",
  304. x_sys->device_type);
  305. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "mspro id: %s\n",
  306. x_sys->mspro_id);
  307. return rc;
  308. }
  309. static ssize_t mspro_block_attr_show_modelname(struct device *dev,
  310. struct device_attribute *attr,
  311. char *buffer)
  312. {
  313. struct mspro_sys_attr *s_attr = container_of(attr,
  314. struct mspro_sys_attr,
  315. dev_attr);
  316. return scnprintf(buffer, PAGE_SIZE, "%s", (char *)s_attr->data);
  317. }
  318. static ssize_t mspro_block_attr_show_mbr(struct device *dev,
  319. struct device_attribute *attr,
  320. char *buffer)
  321. {
  322. struct mspro_sys_attr *x_attr = container_of(attr,
  323. struct mspro_sys_attr,
  324. dev_attr);
  325. struct mspro_mbr *x_mbr = x_attr->data;
  326. ssize_t rc = 0;
  327. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "boot partition: %x\n",
  328. x_mbr->boot_partition);
  329. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "start head: %x\n",
  330. x_mbr->start_head);
  331. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "start sector: %x\n",
  332. x_mbr->start_sector);
  333. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "start cylinder: %x\n",
  334. x_mbr->start_cylinder);
  335. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "partition type: %x\n",
  336. x_mbr->partition_type);
  337. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "end head: %x\n",
  338. x_mbr->end_head);
  339. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "end sector: %x\n",
  340. x_mbr->end_sector);
  341. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "end cylinder: %x\n",
  342. x_mbr->end_cylinder);
  343. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "start sectors: %x\n",
  344. x_mbr->start_sectors);
  345. rc += scnprintf(buffer + rc, PAGE_SIZE - rc,
  346. "sectors per partition: %x\n",
  347. x_mbr->sectors_per_partition);
  348. return rc;
  349. }
  350. static ssize_t mspro_block_attr_show_devinfo(struct device *dev,
  351. struct device_attribute *attr,
  352. char *buffer)
  353. {
  354. struct mspro_sys_attr *x_attr = container_of(attr,
  355. struct mspro_sys_attr,
  356. dev_attr);
  357. struct mspro_devinfo *x_devinfo = x_attr->data;
  358. ssize_t rc = 0;
  359. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "cylinders: %x\n",
  360. be16_to_cpu(x_devinfo->cylinders));
  361. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "heads: %x\n",
  362. be16_to_cpu(x_devinfo->heads));
  363. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "bytes per track: %x\n",
  364. be16_to_cpu(x_devinfo->bytes_per_track));
  365. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "bytes per sector: %x\n",
  366. be16_to_cpu(x_devinfo->bytes_per_sector));
  367. rc += scnprintf(buffer + rc, PAGE_SIZE - rc, "sectors per track: %x\n",
  368. be16_to_cpu(x_devinfo->sectors_per_track));
  369. return rc;
  370. }
  371. static sysfs_show_t mspro_block_attr_show(unsigned char tag)
  372. {
  373. switch (tag) {
  374. case MSPRO_BLOCK_ID_SYSINFO:
  375. return mspro_block_attr_show_sysinfo;
  376. case MSPRO_BLOCK_ID_MODELNAME:
  377. return mspro_block_attr_show_modelname;
  378. case MSPRO_BLOCK_ID_MBR:
  379. return mspro_block_attr_show_mbr;
  380. case MSPRO_BLOCK_ID_DEVINFO:
  381. return mspro_block_attr_show_devinfo;
  382. default:
  383. return mspro_block_attr_show_default;
  384. }
  385. }
  386. /*** Protocol handlers ***/
  387. /*
  388. * Functions prefixed with "h_" are protocol callbacks. They can be called from
  389. * interrupt context. Return value of 0 means that request processing is still
  390. * ongoing, while special error value of -EAGAIN means that current request is
  391. * finished (and request processor should come back some time later).
  392. */
  393. static int h_mspro_block_req_init(struct memstick_dev *card,
  394. struct memstick_request **mrq)
  395. {
  396. struct mspro_block_data *msb = memstick_get_drvdata(card);
  397. *mrq = &card->current_mrq;
  398. card->next_request = msb->mrq_handler;
  399. return 0;
  400. }
  401. static int h_mspro_block_default(struct memstick_dev *card,
  402. struct memstick_request **mrq)
  403. {
  404. complete(&card->mrq_complete);
  405. if (!(*mrq)->error)
  406. return -EAGAIN;
  407. else
  408. return (*mrq)->error;
  409. }
  410. static int h_mspro_block_get_ro(struct memstick_dev *card,
  411. struct memstick_request **mrq)
  412. {
  413. struct mspro_block_data *msb = memstick_get_drvdata(card);
  414. if ((*mrq)->error) {
  415. complete(&card->mrq_complete);
  416. return (*mrq)->error;
  417. }
  418. if ((*mrq)->data[offsetof(struct ms_status_register, status0)]
  419. & MEMSTICK_STATUS0_WP)
  420. msb->read_only = 1;
  421. else
  422. msb->read_only = 0;
  423. complete(&card->mrq_complete);
  424. return -EAGAIN;
  425. }
  426. static int h_mspro_block_wait_for_ced(struct memstick_dev *card,
  427. struct memstick_request **mrq)
  428. {
  429. if ((*mrq)->error) {
  430. complete(&card->mrq_complete);
  431. return (*mrq)->error;
  432. }
  433. dev_dbg(&card->dev, "wait for ced: value %x\n", (*mrq)->data[0]);
  434. if ((*mrq)->data[0] & (MEMSTICK_INT_CMDNAK | MEMSTICK_INT_ERR)) {
  435. card->current_mrq.error = -EFAULT;
  436. complete(&card->mrq_complete);
  437. return card->current_mrq.error;
  438. }
  439. if (!((*mrq)->data[0] & MEMSTICK_INT_CED))
  440. return 0;
  441. else {
  442. card->current_mrq.error = 0;
  443. complete(&card->mrq_complete);
  444. return -EAGAIN;
  445. }
  446. }
  447. static int h_mspro_block_transfer_data(struct memstick_dev *card,
  448. struct memstick_request **mrq)
  449. {
  450. struct memstick_host *host = card->host;
  451. struct mspro_block_data *msb = memstick_get_drvdata(card);
  452. unsigned char t_val = 0;
  453. struct scatterlist t_sg = { 0 };
  454. size_t t_offset;
  455. if ((*mrq)->error) {
  456. complete(&card->mrq_complete);
  457. return (*mrq)->error;
  458. }
  459. switch ((*mrq)->tpc) {
  460. case MS_TPC_WRITE_REG:
  461. memstick_init_req(*mrq, MS_TPC_SET_CMD, &msb->transfer_cmd, 1);
  462. (*mrq)->get_int_reg = 1;
  463. return 0;
  464. case MS_TPC_SET_CMD:
  465. t_val = (*mrq)->int_reg;
  466. memstick_init_req(*mrq, MS_TPC_GET_INT, NULL, 1);
  467. if (host->caps & MEMSTICK_CAP_AUTO_GET_INT)
  468. goto has_int_reg;
  469. return 0;
  470. case MS_TPC_GET_INT:
  471. t_val = (*mrq)->data[0];
  472. has_int_reg:
  473. if (t_val & (MEMSTICK_INT_CMDNAK | MEMSTICK_INT_ERR)) {
  474. t_val = MSPRO_CMD_STOP;
  475. memstick_init_req(*mrq, MS_TPC_SET_CMD, &t_val, 1);
  476. card->next_request = h_mspro_block_default;
  477. return 0;
  478. }
  479. if (msb->current_page
  480. == (msb->req_sg[msb->current_seg].length
  481. / msb->page_size)) {
  482. msb->current_page = 0;
  483. msb->current_seg++;
  484. if (msb->current_seg == msb->seg_count) {
  485. if (t_val & MEMSTICK_INT_CED) {
  486. complete(&card->mrq_complete);
  487. return -EAGAIN;
  488. } else {
  489. card->next_request
  490. = h_mspro_block_wait_for_ced;
  491. memstick_init_req(*mrq, MS_TPC_GET_INT,
  492. NULL, 1);
  493. return 0;
  494. }
  495. }
  496. }
  497. if (!(t_val & MEMSTICK_INT_BREQ)) {
  498. memstick_init_req(*mrq, MS_TPC_GET_INT, NULL, 1);
  499. return 0;
  500. }
  501. t_offset = msb->req_sg[msb->current_seg].offset;
  502. t_offset += msb->current_page * msb->page_size;
  503. sg_set_page(&t_sg,
  504. nth_page(sg_page(&(msb->req_sg[msb->current_seg])),
  505. t_offset >> PAGE_SHIFT),
  506. msb->page_size, offset_in_page(t_offset));
  507. memstick_init_req_sg(*mrq, msb->data_dir == READ
  508. ? MS_TPC_READ_LONG_DATA
  509. : MS_TPC_WRITE_LONG_DATA,
  510. &t_sg);
  511. (*mrq)->get_int_reg = 1;
  512. return 0;
  513. case MS_TPC_READ_LONG_DATA:
  514. case MS_TPC_WRITE_LONG_DATA:
  515. msb->current_page++;
  516. if (host->caps & MEMSTICK_CAP_AUTO_GET_INT) {
  517. t_val = (*mrq)->int_reg;
  518. goto has_int_reg;
  519. } else {
  520. memstick_init_req(*mrq, MS_TPC_GET_INT, NULL, 1);
  521. return 0;
  522. }
  523. default:
  524. BUG();
  525. }
  526. }
  527. /*** Data transfer ***/
  528. static void mspro_block_process_request(struct memstick_dev *card,
  529. struct request *req)
  530. {
  531. struct mspro_block_data *msb = memstick_get_drvdata(card);
  532. struct mspro_param_register param;
  533. int rc, chunk, cnt;
  534. unsigned short page_count;
  535. sector_t t_sec;
  536. unsigned long flags;
  537. do {
  538. page_count = 0;
  539. msb->current_seg = 0;
  540. msb->seg_count = blk_rq_map_sg(req->q, req, msb->req_sg);
  541. if (msb->seg_count) {
  542. msb->current_page = 0;
  543. for (rc = 0; rc < msb->seg_count; rc++)
  544. page_count += msb->req_sg[rc].length
  545. / msb->page_size;
  546. t_sec = req->sector;
  547. sector_div(t_sec, msb->page_size >> 9);
  548. param.system = msb->system;
  549. param.data_count = cpu_to_be16(page_count);
  550. param.data_address = cpu_to_be32((uint32_t)t_sec);
  551. param.tpc_param = 0;
  552. msb->data_dir = rq_data_dir(req);
  553. msb->transfer_cmd = msb->data_dir == READ
  554. ? MSPRO_CMD_READ_DATA
  555. : MSPRO_CMD_WRITE_DATA;
  556. dev_dbg(&card->dev, "data transfer: cmd %x, "
  557. "lba %x, count %x\n", msb->transfer_cmd,
  558. be32_to_cpu(param.data_address),
  559. page_count);
  560. card->next_request = h_mspro_block_req_init;
  561. msb->mrq_handler = h_mspro_block_transfer_data;
  562. memstick_init_req(&card->current_mrq, MS_TPC_WRITE_REG,
  563. &param, sizeof(param));
  564. memstick_new_req(card->host);
  565. wait_for_completion(&card->mrq_complete);
  566. rc = card->current_mrq.error;
  567. if (rc || (card->current_mrq.tpc == MSPRO_CMD_STOP)) {
  568. for (cnt = 0; cnt < msb->current_seg; cnt++)
  569. page_count += msb->req_sg[cnt].length
  570. / msb->page_size;
  571. if (msb->current_page)
  572. page_count += msb->current_page - 1;
  573. if (page_count && (msb->data_dir == READ))
  574. rc = msb->page_size * page_count;
  575. else
  576. rc = -EIO;
  577. } else
  578. rc = msb->page_size * page_count;
  579. } else
  580. rc = -EFAULT;
  581. spin_lock_irqsave(&msb->q_lock, flags);
  582. if (rc >= 0)
  583. chunk = __blk_end_request(req, 0, rc);
  584. else
  585. chunk = __blk_end_request(req, rc, 0);
  586. dev_dbg(&card->dev, "end chunk %d, %d\n", rc, chunk);
  587. spin_unlock_irqrestore(&msb->q_lock, flags);
  588. } while (chunk);
  589. }
  590. static int mspro_block_has_request(struct mspro_block_data *msb)
  591. {
  592. int rc = 0;
  593. unsigned long flags;
  594. spin_lock_irqsave(&msb->q_lock, flags);
  595. if (kthread_should_stop() || msb->has_request)
  596. rc = 1;
  597. spin_unlock_irqrestore(&msb->q_lock, flags);
  598. return rc;
  599. }
  600. static int mspro_block_queue_thread(void *data)
  601. {
  602. struct memstick_dev *card = data;
  603. struct memstick_host *host = card->host;
  604. struct mspro_block_data *msb = memstick_get_drvdata(card);
  605. struct request *req;
  606. unsigned long flags;
  607. while (1) {
  608. wait_event(msb->q_wait, mspro_block_has_request(msb));
  609. dev_dbg(&card->dev, "thread iter\n");
  610. spin_lock_irqsave(&msb->q_lock, flags);
  611. req = elv_next_request(msb->queue);
  612. dev_dbg(&card->dev, "next req %p\n", req);
  613. if (!req) {
  614. msb->has_request = 0;
  615. if (kthread_should_stop()) {
  616. spin_unlock_irqrestore(&msb->q_lock, flags);
  617. break;
  618. }
  619. } else
  620. msb->has_request = 1;
  621. spin_unlock_irqrestore(&msb->q_lock, flags);
  622. if (req) {
  623. mutex_lock(&host->lock);
  624. mspro_block_process_request(card, req);
  625. mutex_unlock(&host->lock);
  626. }
  627. }
  628. dev_dbg(&card->dev, "thread finished\n");
  629. return 0;
  630. }
  631. static void mspro_block_request(struct request_queue *q)
  632. {
  633. struct memstick_dev *card = q->queuedata;
  634. struct mspro_block_data *msb = memstick_get_drvdata(card);
  635. struct request *req = NULL;
  636. if (msb->q_thread) {
  637. msb->has_request = 1;
  638. wake_up_all(&msb->q_wait);
  639. } else {
  640. while ((req = elv_next_request(q)) != NULL)
  641. end_queued_request(req, -ENODEV);
  642. }
  643. }
  644. /*** Initialization ***/
  645. static int mspro_block_wait_for_ced(struct memstick_dev *card)
  646. {
  647. struct mspro_block_data *msb = memstick_get_drvdata(card);
  648. card->next_request = h_mspro_block_req_init;
  649. msb->mrq_handler = h_mspro_block_wait_for_ced;
  650. memstick_init_req(&card->current_mrq, MS_TPC_GET_INT, NULL, 1);
  651. memstick_new_req(card->host);
  652. wait_for_completion(&card->mrq_complete);
  653. return card->current_mrq.error;
  654. }
  655. static int mspro_block_switch_to_parallel(struct memstick_dev *card)
  656. {
  657. struct memstick_host *host = card->host;
  658. struct mspro_block_data *msb = memstick_get_drvdata(card);
  659. struct mspro_param_register param = {
  660. .system = 0,
  661. .data_count = 0,
  662. .data_address = 0,
  663. .tpc_param = 0
  664. };
  665. card->next_request = h_mspro_block_req_init;
  666. msb->mrq_handler = h_mspro_block_default;
  667. memstick_init_req(&card->current_mrq, MS_TPC_WRITE_REG, &param,
  668. sizeof(param));
  669. memstick_new_req(host);
  670. wait_for_completion(&card->mrq_complete);
  671. if (card->current_mrq.error)
  672. return card->current_mrq.error;
  673. msb->system = MEMSTICK_SYS_PAR4;
  674. host->set_param(host, MEMSTICK_INTERFACE, MEMSTICK_PAR4);
  675. card->next_request = h_mspro_block_req_init;
  676. msb->mrq_handler = h_mspro_block_default;
  677. memstick_init_req(&card->current_mrq, MS_TPC_GET_INT, NULL, 1);
  678. memstick_new_req(card->host);
  679. wait_for_completion(&card->mrq_complete);
  680. if (card->current_mrq.error) {
  681. msb->system = 0x80;
  682. host->set_param(host, MEMSTICK_INTERFACE, MEMSTICK_SERIAL);
  683. return -EFAULT;
  684. }
  685. return 0;
  686. }
  687. /* Memory allocated for attributes by this function should be freed by
  688. * mspro_block_data_clear, no matter if the initialization process succeded
  689. * or failed.
  690. */
  691. static int mspro_block_read_attributes(struct memstick_dev *card)
  692. {
  693. struct mspro_block_data *msb = memstick_get_drvdata(card);
  694. struct mspro_param_register param = {
  695. .system = msb->system,
  696. .data_count = cpu_to_be16(1),
  697. .data_address = 0,
  698. .tpc_param = 0
  699. };
  700. struct mspro_attribute *attr = NULL;
  701. struct mspro_sys_attr *s_attr = NULL;
  702. unsigned char *buffer = NULL;
  703. int cnt, rc, attr_count;
  704. unsigned int addr;
  705. unsigned short page_count;
  706. attr = kmalloc(msb->page_size, GFP_KERNEL);
  707. if (!attr)
  708. return -ENOMEM;
  709. sg_init_one(&msb->req_sg[0], attr, msb->page_size);
  710. msb->seg_count = 1;
  711. msb->current_seg = 0;
  712. msb->current_page = 0;
  713. msb->data_dir = READ;
  714. msb->transfer_cmd = MSPRO_CMD_READ_ATRB;
  715. card->next_request = h_mspro_block_req_init;
  716. msb->mrq_handler = h_mspro_block_transfer_data;
  717. memstick_init_req(&card->current_mrq, MS_TPC_WRITE_REG, &param,
  718. sizeof(param));
  719. memstick_new_req(card->host);
  720. wait_for_completion(&card->mrq_complete);
  721. if (card->current_mrq.error) {
  722. rc = card->current_mrq.error;
  723. goto out_free_attr;
  724. }
  725. if (be16_to_cpu(attr->signature) != MSPRO_BLOCK_SIGNATURE) {
  726. printk(KERN_ERR "%s: unrecognized device signature %x\n",
  727. card->dev.bus_id, be16_to_cpu(attr->signature));
  728. rc = -ENODEV;
  729. goto out_free_attr;
  730. }
  731. if (attr->count > MSPRO_BLOCK_MAX_ATTRIBUTES) {
  732. printk(KERN_WARNING "%s: way too many attribute entries\n",
  733. card->dev.bus_id);
  734. attr_count = MSPRO_BLOCK_MAX_ATTRIBUTES;
  735. } else
  736. attr_count = attr->count;
  737. msb->attr_group.attrs = kzalloc((attr_count + 1)
  738. * sizeof(struct attribute),
  739. GFP_KERNEL);
  740. if (!msb->attr_group.attrs) {
  741. rc = -ENOMEM;
  742. goto out_free_attr;
  743. }
  744. msb->attr_group.name = "media_attributes";
  745. buffer = kmalloc(msb->page_size, GFP_KERNEL);
  746. if (!buffer) {
  747. rc = -ENOMEM;
  748. goto out_free_attr;
  749. }
  750. memcpy(buffer, (char *)attr, msb->page_size);
  751. page_count = 1;
  752. for (cnt = 0; cnt < attr_count; ++cnt) {
  753. s_attr = kzalloc(sizeof(struct mspro_sys_attr), GFP_KERNEL);
  754. if (!s_attr) {
  755. rc = -ENOMEM;
  756. goto out_free_buffer;
  757. }
  758. msb->attr_group.attrs[cnt] = &s_attr->dev_attr.attr;
  759. addr = be32_to_cpu(attr->entries[cnt].address);
  760. rc = be32_to_cpu(attr->entries[cnt].size);
  761. dev_dbg(&card->dev, "adding attribute %d: id %x, address %x, "
  762. "size %x\n", cnt, attr->entries[cnt].id, addr, rc);
  763. s_attr->id = attr->entries[cnt].id;
  764. if (mspro_block_attr_name(s_attr->id))
  765. snprintf(s_attr->name, sizeof(s_attr->name), "%s",
  766. mspro_block_attr_name(attr->entries[cnt].id));
  767. else
  768. snprintf(s_attr->name, sizeof(s_attr->name),
  769. "attr_x%02x", attr->entries[cnt].id);
  770. s_attr->dev_attr.attr.name = s_attr->name;
  771. s_attr->dev_attr.attr.mode = S_IRUGO;
  772. s_attr->dev_attr.attr.owner = THIS_MODULE;
  773. s_attr->dev_attr.show = mspro_block_attr_show(s_attr->id);
  774. if (!rc)
  775. continue;
  776. s_attr->size = rc;
  777. s_attr->data = kmalloc(rc, GFP_KERNEL);
  778. if (!s_attr->data) {
  779. rc = -ENOMEM;
  780. goto out_free_buffer;
  781. }
  782. if (((addr / msb->page_size)
  783. == be32_to_cpu(param.data_address))
  784. && (((addr + rc - 1) / msb->page_size)
  785. == be32_to_cpu(param.data_address))) {
  786. memcpy(s_attr->data, buffer + addr % msb->page_size,
  787. rc);
  788. continue;
  789. }
  790. if (page_count <= (rc / msb->page_size)) {
  791. kfree(buffer);
  792. page_count = (rc / msb->page_size) + 1;
  793. buffer = kmalloc(page_count * msb->page_size,
  794. GFP_KERNEL);
  795. if (!buffer) {
  796. rc = -ENOMEM;
  797. goto out_free_attr;
  798. }
  799. }
  800. param.system = msb->system;
  801. param.data_count = cpu_to_be16((rc / msb->page_size) + 1);
  802. param.data_address = cpu_to_be32(addr / msb->page_size);
  803. param.tpc_param = 0;
  804. sg_init_one(&msb->req_sg[0], buffer,
  805. be16_to_cpu(param.data_count) * msb->page_size);
  806. msb->seg_count = 1;
  807. msb->current_seg = 0;
  808. msb->current_page = 0;
  809. msb->data_dir = READ;
  810. msb->transfer_cmd = MSPRO_CMD_READ_ATRB;
  811. dev_dbg(&card->dev, "reading attribute pages %x, %x\n",
  812. be32_to_cpu(param.data_address),
  813. be16_to_cpu(param.data_count));
  814. card->next_request = h_mspro_block_req_init;
  815. msb->mrq_handler = h_mspro_block_transfer_data;
  816. memstick_init_req(&card->current_mrq, MS_TPC_WRITE_REG,
  817. (char *)&param, sizeof(param));
  818. memstick_new_req(card->host);
  819. wait_for_completion(&card->mrq_complete);
  820. if (card->current_mrq.error) {
  821. rc = card->current_mrq.error;
  822. goto out_free_buffer;
  823. }
  824. memcpy(s_attr->data, buffer + addr % msb->page_size, rc);
  825. }
  826. rc = 0;
  827. out_free_buffer:
  828. kfree(buffer);
  829. out_free_attr:
  830. kfree(attr);
  831. return rc;
  832. }
  833. static int mspro_block_init_card(struct memstick_dev *card)
  834. {
  835. struct mspro_block_data *msb = memstick_get_drvdata(card);
  836. struct memstick_host *host = card->host;
  837. int rc = 0;
  838. msb->system = MEMSTICK_SYS_SERIAL;
  839. card->reg_addr.r_offset = offsetof(struct mspro_register, status);
  840. card->reg_addr.r_length = sizeof(struct ms_status_register);
  841. card->reg_addr.w_offset = offsetof(struct mspro_register, param);
  842. card->reg_addr.w_length = sizeof(struct mspro_param_register);
  843. if (memstick_set_rw_addr(card))
  844. return -EIO;
  845. if (host->caps & MEMSTICK_CAP_PAR4) {
  846. if (mspro_block_switch_to_parallel(card))
  847. printk(KERN_WARNING "%s: could not switch to "
  848. "parallel interface\n", card->dev.bus_id);
  849. }
  850. rc = mspro_block_wait_for_ced(card);
  851. if (rc)
  852. return rc;
  853. dev_dbg(&card->dev, "card activated\n");
  854. card->next_request = h_mspro_block_req_init;
  855. msb->mrq_handler = h_mspro_block_get_ro;
  856. memstick_init_req(&card->current_mrq, MS_TPC_READ_REG, NULL,
  857. sizeof(struct ms_status_register));
  858. memstick_new_req(card->host);
  859. wait_for_completion(&card->mrq_complete);
  860. if (card->current_mrq.error)
  861. return card->current_mrq.error;
  862. dev_dbg(&card->dev, "card r/w status %d\n", msb->read_only ? 0 : 1);
  863. msb->page_size = 512;
  864. rc = mspro_block_read_attributes(card);
  865. if (rc)
  866. return rc;
  867. dev_dbg(&card->dev, "attributes loaded\n");
  868. return 0;
  869. }
  870. static int mspro_block_init_disk(struct memstick_dev *card)
  871. {
  872. struct mspro_block_data *msb = memstick_get_drvdata(card);
  873. struct memstick_host *host = card->host;
  874. struct mspro_devinfo *dev_info = NULL;
  875. struct mspro_sys_info *sys_info = NULL;
  876. struct mspro_sys_attr *s_attr = NULL;
  877. int rc, disk_id;
  878. u64 limit = BLK_BOUNCE_HIGH;
  879. unsigned long capacity;
  880. if (host->cdev.dev->dma_mask && *(host->cdev.dev->dma_mask))
  881. limit = *(host->cdev.dev->dma_mask);
  882. for (rc = 0; msb->attr_group.attrs[rc]; ++rc) {
  883. s_attr = mspro_from_sysfs_attr(msb->attr_group.attrs[rc]);
  884. if (s_attr->id == MSPRO_BLOCK_ID_DEVINFO)
  885. dev_info = s_attr->data;
  886. else if (s_attr->id == MSPRO_BLOCK_ID_SYSINFO)
  887. sys_info = s_attr->data;
  888. }
  889. if (!dev_info || !sys_info)
  890. return -ENODEV;
  891. msb->cylinders = be16_to_cpu(dev_info->cylinders);
  892. msb->heads = be16_to_cpu(dev_info->heads);
  893. msb->sectors_per_track = be16_to_cpu(dev_info->sectors_per_track);
  894. msb->page_size = be16_to_cpu(sys_info->unit_size);
  895. if (!idr_pre_get(&mspro_block_disk_idr, GFP_KERNEL))
  896. return -ENOMEM;
  897. mutex_lock(&mspro_block_disk_lock);
  898. rc = idr_get_new(&mspro_block_disk_idr, card, &disk_id);
  899. mutex_unlock(&mspro_block_disk_lock);
  900. if (rc)
  901. return rc;
  902. if ((disk_id << MEMSTICK_PART_SHIFT) > 255) {
  903. rc = -ENOSPC;
  904. goto out_release_id;
  905. }
  906. msb->disk = alloc_disk(1 << MEMSTICK_PART_SHIFT);
  907. if (!msb->disk) {
  908. rc = -ENOMEM;
  909. goto out_release_id;
  910. }
  911. spin_lock_init(&msb->q_lock);
  912. init_waitqueue_head(&msb->q_wait);
  913. msb->queue = blk_init_queue(mspro_block_request, &msb->q_lock);
  914. if (!msb->queue) {
  915. rc = -ENOMEM;
  916. goto out_put_disk;
  917. }
  918. msb->queue->queuedata = card;
  919. blk_queue_bounce_limit(msb->queue, limit);
  920. blk_queue_max_sectors(msb->queue, MSPRO_BLOCK_MAX_PAGES);
  921. blk_queue_max_phys_segments(msb->queue, MSPRO_BLOCK_MAX_SEGS);
  922. blk_queue_max_hw_segments(msb->queue, MSPRO_BLOCK_MAX_SEGS);
  923. blk_queue_max_segment_size(msb->queue,
  924. MSPRO_BLOCK_MAX_PAGES * msb->page_size);
  925. msb->disk->major = major;
  926. msb->disk->first_minor = disk_id << MEMSTICK_PART_SHIFT;
  927. msb->disk->fops = &ms_block_bdops;
  928. msb->usage_count = 1;
  929. msb->disk->private_data = msb;
  930. msb->disk->queue = msb->queue;
  931. msb->disk->driverfs_dev = &card->dev;
  932. sprintf(msb->disk->disk_name, "mspblk%d", disk_id);
  933. blk_queue_hardsect_size(msb->queue, msb->page_size);
  934. capacity = be16_to_cpu(sys_info->user_block_count);
  935. capacity *= be16_to_cpu(sys_info->block_size);
  936. capacity *= msb->page_size >> 9;
  937. set_capacity(msb->disk, capacity);
  938. dev_dbg(&card->dev, "capacity set %ld\n", capacity);
  939. msb->q_thread = kthread_run(mspro_block_queue_thread, card,
  940. DRIVER_NAME"d");
  941. if (IS_ERR(msb->q_thread))
  942. goto out_put_disk;
  943. mutex_unlock(&host->lock);
  944. add_disk(msb->disk);
  945. mutex_lock(&host->lock);
  946. msb->active = 1;
  947. return 0;
  948. out_put_disk:
  949. put_disk(msb->disk);
  950. out_release_id:
  951. mutex_lock(&mspro_block_disk_lock);
  952. idr_remove(&mspro_block_disk_idr, disk_id);
  953. mutex_unlock(&mspro_block_disk_lock);
  954. return rc;
  955. }
  956. static void mspro_block_data_clear(struct mspro_block_data *msb)
  957. {
  958. int cnt;
  959. struct mspro_sys_attr *s_attr;
  960. if (msb->attr_group.attrs) {
  961. for (cnt = 0; msb->attr_group.attrs[cnt]; ++cnt) {
  962. s_attr = mspro_from_sysfs_attr(msb->attr_group
  963. .attrs[cnt]);
  964. kfree(s_attr->data);
  965. kfree(s_attr);
  966. }
  967. kfree(msb->attr_group.attrs);
  968. }
  969. msb->card = NULL;
  970. }
  971. static int mspro_block_check_card(struct memstick_dev *card)
  972. {
  973. struct mspro_block_data *msb = memstick_get_drvdata(card);
  974. return (msb->active == 1);
  975. }
  976. static int mspro_block_probe(struct memstick_dev *card)
  977. {
  978. struct mspro_block_data *msb;
  979. int rc = 0;
  980. msb = kzalloc(sizeof(struct mspro_block_data), GFP_KERNEL);
  981. if (!msb)
  982. return -ENOMEM;
  983. memstick_set_drvdata(card, msb);
  984. msb->card = card;
  985. rc = mspro_block_init_card(card);
  986. if (rc)
  987. goto out_free;
  988. rc = sysfs_create_group(&card->dev.kobj, &msb->attr_group);
  989. if (rc)
  990. goto out_free;
  991. rc = mspro_block_init_disk(card);
  992. if (!rc) {
  993. card->check = mspro_block_check_card;
  994. return 0;
  995. }
  996. sysfs_remove_group(&card->dev.kobj, &msb->attr_group);
  997. out_free:
  998. memstick_set_drvdata(card, NULL);
  999. mspro_block_data_clear(msb);
  1000. kfree(msb);
  1001. return rc;
  1002. }
  1003. static void mspro_block_remove(struct memstick_dev *card)
  1004. {
  1005. struct mspro_block_data *msb = memstick_get_drvdata(card);
  1006. struct task_struct *q_thread = NULL;
  1007. unsigned long flags;
  1008. del_gendisk(msb->disk);
  1009. dev_dbg(&card->dev, "mspro block remove\n");
  1010. spin_lock_irqsave(&msb->q_lock, flags);
  1011. q_thread = msb->q_thread;
  1012. msb->q_thread = NULL;
  1013. msb->active = 0;
  1014. spin_unlock_irqrestore(&msb->q_lock, flags);
  1015. if (q_thread) {
  1016. mutex_unlock(&card->host->lock);
  1017. kthread_stop(q_thread);
  1018. mutex_lock(&card->host->lock);
  1019. }
  1020. dev_dbg(&card->dev, "queue thread stopped\n");
  1021. blk_cleanup_queue(msb->queue);
  1022. sysfs_remove_group(&card->dev.kobj, &msb->attr_group);
  1023. mutex_lock(&mspro_block_disk_lock);
  1024. mspro_block_data_clear(msb);
  1025. mutex_unlock(&mspro_block_disk_lock);
  1026. mspro_block_disk_release(msb->disk);
  1027. memstick_set_drvdata(card, NULL);
  1028. }
  1029. #ifdef CONFIG_PM
  1030. static int mspro_block_suspend(struct memstick_dev *card, pm_message_t state)
  1031. {
  1032. struct mspro_block_data *msb = memstick_get_drvdata(card);
  1033. struct task_struct *q_thread = NULL;
  1034. unsigned long flags;
  1035. spin_lock_irqsave(&msb->q_lock, flags);
  1036. q_thread = msb->q_thread;
  1037. msb->q_thread = NULL;
  1038. msb->active = 0;
  1039. blk_stop_queue(msb->queue);
  1040. spin_unlock_irqrestore(&msb->q_lock, flags);
  1041. if (q_thread)
  1042. kthread_stop(q_thread);
  1043. return 0;
  1044. }
  1045. static int mspro_block_resume(struct memstick_dev *card)
  1046. {
  1047. struct mspro_block_data *msb = memstick_get_drvdata(card);
  1048. unsigned long flags;
  1049. int rc = 0;
  1050. #ifdef CONFIG_MEMSTICK_UNSAFE_RESUME
  1051. struct mspro_block_data *new_msb;
  1052. struct memstick_host *host = card->host;
  1053. struct mspro_sys_attr *s_attr, *r_attr;
  1054. unsigned char cnt;
  1055. mutex_lock(&host->lock);
  1056. new_msb = kzalloc(sizeof(struct mspro_block_data), GFP_KERNEL);
  1057. if (!new_msb) {
  1058. rc = -ENOMEM;
  1059. goto out_unlock;
  1060. }
  1061. new_msb->card = card;
  1062. memstick_set_drvdata(card, new_msb);
  1063. if (mspro_block_init_card(card))
  1064. goto out_free;
  1065. for (cnt = 0; new_msb->attr_group.attrs[cnt]
  1066. && msb->attr_group.attrs[cnt]; ++cnt) {
  1067. s_attr = mspro_from_sysfs_attr(new_msb->attr_group.attrs[cnt]);
  1068. r_attr = mspro_from_sysfs_attr(msb->attr_group.attrs[cnt]);
  1069. if (s_attr->id == MSPRO_BLOCK_ID_SYSINFO
  1070. && r_attr->id == s_attr->id) {
  1071. if (memcmp(s_attr->data, r_attr->data, s_attr->size))
  1072. break;
  1073. memstick_set_drvdata(card, msb);
  1074. msb->q_thread = kthread_run(mspro_block_queue_thread,
  1075. card, DRIVER_NAME"d");
  1076. if (IS_ERR(msb->q_thread))
  1077. msb->q_thread = NULL;
  1078. else
  1079. msb->active = 1;
  1080. break;
  1081. }
  1082. }
  1083. out_free:
  1084. memstick_set_drvdata(card, msb);
  1085. mspro_block_data_clear(new_msb);
  1086. kfree(new_msb);
  1087. out_unlock:
  1088. mutex_unlock(&host->lock);
  1089. #endif /* CONFIG_MEMSTICK_UNSAFE_RESUME */
  1090. spin_lock_irqsave(&msb->q_lock, flags);
  1091. blk_start_queue(msb->queue);
  1092. spin_unlock_irqrestore(&msb->q_lock, flags);
  1093. return rc;
  1094. }
  1095. #else
  1096. #define mspro_block_suspend NULL
  1097. #define mspro_block_resume NULL
  1098. #endif /* CONFIG_PM */
  1099. static struct memstick_device_id mspro_block_id_tbl[] = {
  1100. {MEMSTICK_MATCH_ALL, MEMSTICK_TYPE_PRO, MEMSTICK_CATEGORY_STORAGE_DUO,
  1101. MEMSTICK_CLASS_GENERIC_DUO},
  1102. {}
  1103. };
  1104. static struct memstick_driver mspro_block_driver = {
  1105. .driver = {
  1106. .name = DRIVER_NAME,
  1107. .owner = THIS_MODULE
  1108. },
  1109. .id_table = mspro_block_id_tbl,
  1110. .probe = mspro_block_probe,
  1111. .remove = mspro_block_remove,
  1112. .suspend = mspro_block_suspend,
  1113. .resume = mspro_block_resume
  1114. };
  1115. static int __init mspro_block_init(void)
  1116. {
  1117. int rc = -ENOMEM;
  1118. rc = register_blkdev(major, DRIVER_NAME);
  1119. if (rc < 0) {
  1120. printk(KERN_ERR DRIVER_NAME ": failed to register "
  1121. "major %d, error %d\n", major, rc);
  1122. return rc;
  1123. }
  1124. if (!major)
  1125. major = rc;
  1126. rc = memstick_register_driver(&mspro_block_driver);
  1127. if (rc)
  1128. unregister_blkdev(major, DRIVER_NAME);
  1129. return rc;
  1130. }
  1131. static void __exit mspro_block_exit(void)
  1132. {
  1133. memstick_unregister_driver(&mspro_block_driver);
  1134. unregister_blkdev(major, DRIVER_NAME);
  1135. idr_destroy(&mspro_block_disk_idr);
  1136. }
  1137. module_init(mspro_block_init);
  1138. module_exit(mspro_block_exit);
  1139. MODULE_LICENSE("GPL");
  1140. MODULE_AUTHOR("Alex Dubov");
  1141. MODULE_DESCRIPTION("Sony MemoryStickPro block device driver");
  1142. MODULE_DEVICE_TABLE(memstick, mspro_block_id_tbl);
  1143. MODULE_VERSION(DRIVER_VERSION);