pcmciamtd.c 21 KB

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  1. /*
  2. * pcmciamtd.c - MTD driver for PCMCIA flash memory cards
  3. *
  4. * Author: Simon Evans <spse@secret.org.uk>
  5. *
  6. * Copyright (C) 2002 Simon Evans
  7. *
  8. * Licence: GPL
  9. *
  10. */
  11. #include <linux/module.h>
  12. #include <linux/slab.h>
  13. #include <linux/timer.h>
  14. #include <linux/init.h>
  15. #include <asm/io.h>
  16. #include <asm/system.h>
  17. #include <pcmcia/cs.h>
  18. #include <pcmcia/cistpl.h>
  19. #include <pcmcia/ds.h>
  20. #include <linux/mtd/map.h>
  21. #include <linux/mtd/mtd.h>
  22. #ifdef CONFIG_MTD_DEBUG
  23. static int debug = CONFIG_MTD_DEBUG_VERBOSE;
  24. module_param(debug, int, 0);
  25. MODULE_PARM_DESC(debug, "Set Debug Level 0=quiet, 5=noisy");
  26. #undef DEBUG
  27. #define DEBUG(n, format, arg...) \
  28. if (n <= debug) { \
  29. printk(KERN_DEBUG __FILE__ ":%s(): " format "\n", __func__ , ## arg); \
  30. }
  31. #else
  32. #undef DEBUG
  33. #define DEBUG(n, arg...)
  34. static const int debug = 0;
  35. #endif
  36. #define info(format, arg...) printk(KERN_INFO "pcmciamtd: " format "\n" , ## arg)
  37. #define DRIVER_DESC "PCMCIA Flash memory card driver"
  38. /* Size of the PCMCIA address space: 26 bits = 64 MB */
  39. #define MAX_PCMCIA_ADDR 0x4000000
  40. struct pcmciamtd_dev {
  41. struct pcmcia_device *p_dev;
  42. caddr_t win_base; /* ioremapped address of PCMCIA window */
  43. unsigned int win_size; /* size of window */
  44. unsigned int offset; /* offset into card the window currently points at */
  45. struct map_info pcmcia_map;
  46. struct mtd_info *mtd_info;
  47. int vpp;
  48. char mtd_name[sizeof(struct cistpl_vers_1_t)];
  49. };
  50. /* Module parameters */
  51. /* 2 = do 16-bit transfers, 1 = do 8-bit transfers */
  52. static int bankwidth = 2;
  53. /* Speed of memory accesses, in ns */
  54. static int mem_speed;
  55. /* Force the size of an SRAM card */
  56. static int force_size;
  57. /* Force Vpp */
  58. static int vpp;
  59. /* Set Vpp */
  60. static int setvpp;
  61. /* Force card to be treated as FLASH, ROM or RAM */
  62. static int mem_type;
  63. MODULE_LICENSE("GPL");
  64. MODULE_AUTHOR("Simon Evans <spse@secret.org.uk>");
  65. MODULE_DESCRIPTION(DRIVER_DESC);
  66. module_param(bankwidth, int, 0);
  67. MODULE_PARM_DESC(bankwidth, "Set bankwidth (1=8 bit, 2=16 bit, default=2)");
  68. module_param(mem_speed, int, 0);
  69. MODULE_PARM_DESC(mem_speed, "Set memory access speed in ns");
  70. module_param(force_size, int, 0);
  71. MODULE_PARM_DESC(force_size, "Force size of card in MiB (1-64)");
  72. module_param(setvpp, int, 0);
  73. MODULE_PARM_DESC(setvpp, "Set Vpp (0=Never, 1=On writes, 2=Always on, default=0)");
  74. module_param(vpp, int, 0);
  75. MODULE_PARM_DESC(vpp, "Vpp value in 1/10ths eg 33=3.3V 120=12V (Dangerous)");
  76. module_param(mem_type, int, 0);
  77. MODULE_PARM_DESC(mem_type, "Set Memory type (0=Flash, 1=RAM, 2=ROM, default=0)");
  78. /* read/write{8,16} copy_{from,to} routines with window remapping
  79. * to access whole card
  80. */
  81. static caddr_t remap_window(struct map_info *map, unsigned long to)
  82. {
  83. struct pcmciamtd_dev *dev = (struct pcmciamtd_dev *)map->map_priv_1;
  84. window_handle_t win = (window_handle_t)map->map_priv_2;
  85. unsigned int offset;
  86. int ret;
  87. if (!pcmcia_dev_present(dev->p_dev)) {
  88. DEBUG(1, "device removed");
  89. return 0;
  90. }
  91. offset = to & ~(dev->win_size-1);
  92. if (offset != dev->offset) {
  93. DEBUG(2, "Remapping window from 0x%8.8x to 0x%8.8x",
  94. dev->offset, offset);
  95. ret = pcmcia_map_mem_page(dev->p_dev, win, offset);
  96. if (ret != 0)
  97. return NULL;
  98. dev->offset = offset;
  99. }
  100. return dev->win_base + (to & (dev->win_size-1));
  101. }
  102. static map_word pcmcia_read8_remap(struct map_info *map, unsigned long ofs)
  103. {
  104. caddr_t addr;
  105. map_word d = {{0}};
  106. addr = remap_window(map, ofs);
  107. if(!addr)
  108. return d;
  109. d.x[0] = readb(addr);
  110. DEBUG(3, "ofs = 0x%08lx (%p) data = 0x%02lx", ofs, addr, d.x[0]);
  111. return d;
  112. }
  113. static map_word pcmcia_read16_remap(struct map_info *map, unsigned long ofs)
  114. {
  115. caddr_t addr;
  116. map_word d = {{0}};
  117. addr = remap_window(map, ofs);
  118. if(!addr)
  119. return d;
  120. d.x[0] = readw(addr);
  121. DEBUG(3, "ofs = 0x%08lx (%p) data = 0x%04lx", ofs, addr, d.x[0]);
  122. return d;
  123. }
  124. static void pcmcia_copy_from_remap(struct map_info *map, void *to, unsigned long from, ssize_t len)
  125. {
  126. struct pcmciamtd_dev *dev = (struct pcmciamtd_dev *)map->map_priv_1;
  127. unsigned long win_size = dev->win_size;
  128. DEBUG(3, "to = %p from = %lu len = %zd", to, from, len);
  129. while(len) {
  130. int toread = win_size - (from & (win_size-1));
  131. caddr_t addr;
  132. if(toread > len)
  133. toread = len;
  134. addr = remap_window(map, from);
  135. if(!addr)
  136. return;
  137. DEBUG(4, "memcpy from %p to %p len = %d", addr, to, toread);
  138. memcpy_fromio(to, addr, toread);
  139. len -= toread;
  140. to += toread;
  141. from += toread;
  142. }
  143. }
  144. static void pcmcia_write8_remap(struct map_info *map, map_word d, unsigned long adr)
  145. {
  146. caddr_t addr = remap_window(map, adr);
  147. if(!addr)
  148. return;
  149. DEBUG(3, "adr = 0x%08lx (%p) data = 0x%02lx", adr, addr, d.x[0]);
  150. writeb(d.x[0], addr);
  151. }
  152. static void pcmcia_write16_remap(struct map_info *map, map_word d, unsigned long adr)
  153. {
  154. caddr_t addr = remap_window(map, adr);
  155. if(!addr)
  156. return;
  157. DEBUG(3, "adr = 0x%08lx (%p) data = 0x%04lx", adr, addr, d.x[0]);
  158. writew(d.x[0], addr);
  159. }
  160. static void pcmcia_copy_to_remap(struct map_info *map, unsigned long to, const void *from, ssize_t len)
  161. {
  162. struct pcmciamtd_dev *dev = (struct pcmciamtd_dev *)map->map_priv_1;
  163. unsigned long win_size = dev->win_size;
  164. DEBUG(3, "to = %lu from = %p len = %zd", to, from, len);
  165. while(len) {
  166. int towrite = win_size - (to & (win_size-1));
  167. caddr_t addr;
  168. if(towrite > len)
  169. towrite = len;
  170. addr = remap_window(map, to);
  171. if(!addr)
  172. return;
  173. DEBUG(4, "memcpy from %p to %p len = %d", from, addr, towrite);
  174. memcpy_toio(addr, from, towrite);
  175. len -= towrite;
  176. to += towrite;
  177. from += towrite;
  178. }
  179. }
  180. /* read/write{8,16} copy_{from,to} routines with direct access */
  181. #define DEV_REMOVED(x) (!(pcmcia_dev_present(((struct pcmciamtd_dev *)map->map_priv_1)->p_dev)))
  182. static map_word pcmcia_read8(struct map_info *map, unsigned long ofs)
  183. {
  184. caddr_t win_base = (caddr_t)map->map_priv_2;
  185. map_word d = {{0}};
  186. if(DEV_REMOVED(map))
  187. return d;
  188. d.x[0] = readb(win_base + ofs);
  189. DEBUG(3, "ofs = 0x%08lx (%p) data = 0x%02lx",
  190. ofs, win_base + ofs, d.x[0]);
  191. return d;
  192. }
  193. static map_word pcmcia_read16(struct map_info *map, unsigned long ofs)
  194. {
  195. caddr_t win_base = (caddr_t)map->map_priv_2;
  196. map_word d = {{0}};
  197. if(DEV_REMOVED(map))
  198. return d;
  199. d.x[0] = readw(win_base + ofs);
  200. DEBUG(3, "ofs = 0x%08lx (%p) data = 0x%04lx",
  201. ofs, win_base + ofs, d.x[0]);
  202. return d;
  203. }
  204. static void pcmcia_copy_from(struct map_info *map, void *to, unsigned long from, ssize_t len)
  205. {
  206. caddr_t win_base = (caddr_t)map->map_priv_2;
  207. if(DEV_REMOVED(map))
  208. return;
  209. DEBUG(3, "to = %p from = %lu len = %zd", to, from, len);
  210. memcpy_fromio(to, win_base + from, len);
  211. }
  212. static void pcmcia_write8(struct map_info *map, map_word d, unsigned long adr)
  213. {
  214. caddr_t win_base = (caddr_t)map->map_priv_2;
  215. if(DEV_REMOVED(map))
  216. return;
  217. DEBUG(3, "adr = 0x%08lx (%p) data = 0x%02lx",
  218. adr, win_base + adr, d.x[0]);
  219. writeb(d.x[0], win_base + adr);
  220. }
  221. static void pcmcia_write16(struct map_info *map, map_word d, unsigned long adr)
  222. {
  223. caddr_t win_base = (caddr_t)map->map_priv_2;
  224. if(DEV_REMOVED(map))
  225. return;
  226. DEBUG(3, "adr = 0x%08lx (%p) data = 0x%04lx",
  227. adr, win_base + adr, d.x[0]);
  228. writew(d.x[0], win_base + adr);
  229. }
  230. static void pcmcia_copy_to(struct map_info *map, unsigned long to, const void *from, ssize_t len)
  231. {
  232. caddr_t win_base = (caddr_t)map->map_priv_2;
  233. if(DEV_REMOVED(map))
  234. return;
  235. DEBUG(3, "to = %lu from = %p len = %zd", to, from, len);
  236. memcpy_toio(win_base + to, from, len);
  237. }
  238. static void pcmciamtd_set_vpp(struct map_info *map, int on)
  239. {
  240. struct pcmciamtd_dev *dev = (struct pcmciamtd_dev *)map->map_priv_1;
  241. struct pcmcia_device *link = dev->p_dev;
  242. modconf_t mod;
  243. int ret;
  244. mod.Attributes = CONF_VPP1_CHANGE_VALID | CONF_VPP2_CHANGE_VALID;
  245. mod.Vcc = 0;
  246. mod.Vpp1 = mod.Vpp2 = on ? dev->vpp : 0;
  247. DEBUG(2, "dev = %p on = %d vpp = %d\n", dev, on, dev->vpp);
  248. ret = pcmcia_modify_configuration(link, &mod);
  249. }
  250. /* After a card is removed, pcmciamtd_release() will unregister the
  251. * device, and release the PCMCIA configuration. If the device is
  252. * still open, this will be postponed until it is closed.
  253. */
  254. static void pcmciamtd_release(struct pcmcia_device *link)
  255. {
  256. struct pcmciamtd_dev *dev = link->priv;
  257. DEBUG(3, "link = 0x%p", link);
  258. if (link->win) {
  259. if(dev->win_base) {
  260. iounmap(dev->win_base);
  261. dev->win_base = NULL;
  262. }
  263. }
  264. pcmcia_disable_device(link);
  265. }
  266. #ifdef CONFIG_MTD_DEBUG
  267. static int pcmciamtd_cistpl_format(struct pcmcia_device *p_dev,
  268. tuple_t *tuple,
  269. void *priv_data)
  270. {
  271. cisparse_t parse;
  272. if (!pcmcia_parse_tuple(tuple, &parse)) {
  273. cistpl_format_t *t = &parse.format;
  274. (void)t; /* Shut up, gcc */
  275. DEBUG(2, "Format type: %u, Error Detection: %u, offset = %u, length =%u",
  276. t->type, t->edc, t->offset, t->length);
  277. }
  278. return -ENOSPC;
  279. }
  280. static int pcmciamtd_cistpl_jedec(struct pcmcia_device *p_dev,
  281. tuple_t *tuple,
  282. void *priv_data)
  283. {
  284. cisparse_t parse;
  285. int i;
  286. if (!pcmcia_parse_tuple(tuple, &parse)) {
  287. cistpl_jedec_t *t = &parse.jedec;
  288. for (i = 0; i < t->nid; i++)
  289. DEBUG(2, "JEDEC: 0x%02x 0x%02x",
  290. t->id[i].mfr, t->id[i].info);
  291. }
  292. return -ENOSPC;
  293. }
  294. #endif
  295. static int pcmciamtd_cistpl_device(struct pcmcia_device *p_dev,
  296. tuple_t *tuple,
  297. void *priv_data)
  298. {
  299. struct pcmciamtd_dev *dev = priv_data;
  300. cisparse_t parse;
  301. cistpl_device_t *t = &parse.device;
  302. int i;
  303. if (pcmcia_parse_tuple(tuple, &parse))
  304. return -EINVAL;
  305. DEBUG(2, "Common memory:");
  306. dev->pcmcia_map.size = t->dev[0].size;
  307. /* from here on: DEBUG only */
  308. for (i = 0; i < t->ndev; i++) {
  309. DEBUG(2, "Region %d, type = %u", i, t->dev[i].type);
  310. DEBUG(2, "Region %d, wp = %u", i, t->dev[i].wp);
  311. DEBUG(2, "Region %d, speed = %u ns", i, t->dev[i].speed);
  312. DEBUG(2, "Region %d, size = %u bytes", i, t->dev[i].size);
  313. }
  314. return 0;
  315. }
  316. static int pcmciamtd_cistpl_geo(struct pcmcia_device *p_dev,
  317. tuple_t *tuple,
  318. void *priv_data)
  319. {
  320. struct pcmciamtd_dev *dev = priv_data;
  321. cisparse_t parse;
  322. cistpl_device_geo_t *t = &parse.device_geo;
  323. int i;
  324. if (pcmcia_parse_tuple(tuple, &parse))
  325. return -EINVAL;
  326. dev->pcmcia_map.bankwidth = t->geo[0].buswidth;
  327. /* from here on: DEBUG only */
  328. for (i = 0; i < t->ngeo; i++) {
  329. DEBUG(2, "region: %d bankwidth = %u", i, t->geo[i].buswidth);
  330. DEBUG(2, "region: %d erase_block = %u", i, t->geo[i].erase_block);
  331. DEBUG(2, "region: %d read_block = %u", i, t->geo[i].read_block);
  332. DEBUG(2, "region: %d write_block = %u", i, t->geo[i].write_block);
  333. DEBUG(2, "region: %d partition = %u", i, t->geo[i].partition);
  334. DEBUG(2, "region: %d interleave = %u", i, t->geo[i].interleave);
  335. }
  336. return 0;
  337. }
  338. static void card_settings(struct pcmciamtd_dev *dev, struct pcmcia_device *p_dev, int *new_name)
  339. {
  340. int i;
  341. if (p_dev->prod_id[0]) {
  342. dev->mtd_name[0] = '\0';
  343. for (i = 0; i < 4; i++) {
  344. if (i)
  345. strcat(dev->mtd_name, " ");
  346. if (p_dev->prod_id[i])
  347. strcat(dev->mtd_name, p_dev->prod_id[i]);
  348. }
  349. DEBUG(2, "Found name: %s", dev->mtd_name);
  350. }
  351. #ifdef CONFIG_MTD_DEBUG
  352. pcmcia_loop_tuple(p_dev, CISTPL_FORMAT, pcmciamtd_cistpl_format, NULL);
  353. pcmcia_loop_tuple(p_dev, CISTPL_JEDEC_C, pcmciamtd_cistpl_jedec, NULL);
  354. #endif
  355. pcmcia_loop_tuple(p_dev, CISTPL_DEVICE, pcmciamtd_cistpl_device, dev);
  356. pcmcia_loop_tuple(p_dev, CISTPL_DEVICE_GEO, pcmciamtd_cistpl_geo, dev);
  357. if(!dev->pcmcia_map.size)
  358. dev->pcmcia_map.size = MAX_PCMCIA_ADDR;
  359. if(!dev->pcmcia_map.bankwidth)
  360. dev->pcmcia_map.bankwidth = 2;
  361. if(force_size) {
  362. dev->pcmcia_map.size = force_size << 20;
  363. DEBUG(2, "size forced to %dM", force_size);
  364. }
  365. if(bankwidth) {
  366. dev->pcmcia_map.bankwidth = bankwidth;
  367. DEBUG(2, "bankwidth forced to %d", bankwidth);
  368. }
  369. dev->pcmcia_map.name = dev->mtd_name;
  370. if(!dev->mtd_name[0]) {
  371. strcpy(dev->mtd_name, "PCMCIA Memory card");
  372. *new_name = 1;
  373. }
  374. DEBUG(1, "Device: Size: %lu Width:%d Name: %s",
  375. dev->pcmcia_map.size,
  376. dev->pcmcia_map.bankwidth << 3, dev->mtd_name);
  377. }
  378. /* pcmciamtd_config() is scheduled to run after a CARD_INSERTION event
  379. * is received, to configure the PCMCIA socket, and to make the
  380. * MTD device available to the system.
  381. */
  382. static int pcmciamtd_config(struct pcmcia_device *link)
  383. {
  384. struct pcmciamtd_dev *dev = link->priv;
  385. struct mtd_info *mtd = NULL;
  386. win_req_t req;
  387. int ret;
  388. int i;
  389. static char *probes[] = { "jedec_probe", "cfi_probe" };
  390. int new_name = 0;
  391. DEBUG(3, "link=0x%p", link);
  392. card_settings(dev, link, &new_name);
  393. dev->pcmcia_map.phys = NO_XIP;
  394. dev->pcmcia_map.copy_from = pcmcia_copy_from_remap;
  395. dev->pcmcia_map.copy_to = pcmcia_copy_to_remap;
  396. if (dev->pcmcia_map.bankwidth == 1) {
  397. dev->pcmcia_map.read = pcmcia_read8_remap;
  398. dev->pcmcia_map.write = pcmcia_write8_remap;
  399. } else {
  400. dev->pcmcia_map.read = pcmcia_read16_remap;
  401. dev->pcmcia_map.write = pcmcia_write16_remap;
  402. }
  403. if(setvpp == 1)
  404. dev->pcmcia_map.set_vpp = pcmciamtd_set_vpp;
  405. /* Request a memory window for PCMCIA. Some architeures can map windows
  406. * upto the maximum that PCMCIA can support (64MiB) - this is ideal and
  407. * we aim for a window the size of the whole card - otherwise we try
  408. * smaller windows until we succeed
  409. */
  410. req.Attributes = WIN_MEMORY_TYPE_CM | WIN_ENABLE;
  411. req.Attributes |= (dev->pcmcia_map.bankwidth == 1) ? WIN_DATA_WIDTH_8 : WIN_DATA_WIDTH_16;
  412. req.Base = 0;
  413. req.AccessSpeed = mem_speed;
  414. link->win = (window_handle_t)link;
  415. req.Size = (force_size) ? force_size << 20 : MAX_PCMCIA_ADDR;
  416. dev->win_size = 0;
  417. do {
  418. int ret;
  419. DEBUG(2, "requesting window with size = %dKiB memspeed = %d",
  420. req.Size >> 10, req.AccessSpeed);
  421. ret = pcmcia_request_window(link, &req, &link->win);
  422. DEBUG(2, "ret = %d dev->win_size = %d", ret, dev->win_size);
  423. if(ret) {
  424. req.Size >>= 1;
  425. } else {
  426. DEBUG(2, "Got window of size %dKiB", req.Size >> 10);
  427. dev->win_size = req.Size;
  428. break;
  429. }
  430. } while(req.Size >= 0x1000);
  431. DEBUG(2, "dev->win_size = %d", dev->win_size);
  432. if(!dev->win_size) {
  433. dev_err(&dev->p_dev->dev, "Cannot allocate memory window\n");
  434. pcmciamtd_release(link);
  435. return -ENODEV;
  436. }
  437. DEBUG(1, "Allocated a window of %dKiB", dev->win_size >> 10);
  438. /* Get write protect status */
  439. DEBUG(2, "window handle = 0x%8.8lx", (unsigned long)link->win);
  440. dev->win_base = ioremap(req.Base, req.Size);
  441. if(!dev->win_base) {
  442. dev_err(&dev->p_dev->dev, "ioremap(%lu, %u) failed\n",
  443. req.Base, req.Size);
  444. pcmciamtd_release(link);
  445. return -ENODEV;
  446. }
  447. DEBUG(1, "mapped window dev = %p req.base = 0x%lx base = %p size = 0x%x",
  448. dev, req.Base, dev->win_base, req.Size);
  449. dev->offset = 0;
  450. dev->pcmcia_map.map_priv_1 = (unsigned long)dev;
  451. dev->pcmcia_map.map_priv_2 = (unsigned long)link->win;
  452. dev->vpp = (vpp) ? vpp : link->socket->socket.Vpp;
  453. link->conf.Attributes = 0;
  454. if(setvpp == 2) {
  455. link->conf.Vpp = dev->vpp;
  456. } else {
  457. link->conf.Vpp = 0;
  458. }
  459. link->conf.IntType = INT_MEMORY;
  460. link->conf.ConfigIndex = 0;
  461. DEBUG(2, "Setting Configuration");
  462. ret = pcmcia_request_configuration(link, &link->conf);
  463. if (ret != 0) {
  464. if (dev->win_base) {
  465. iounmap(dev->win_base);
  466. dev->win_base = NULL;
  467. }
  468. return -ENODEV;
  469. }
  470. if(mem_type == 1) {
  471. mtd = do_map_probe("map_ram", &dev->pcmcia_map);
  472. } else if(mem_type == 2) {
  473. mtd = do_map_probe("map_rom", &dev->pcmcia_map);
  474. } else {
  475. for(i = 0; i < ARRAY_SIZE(probes); i++) {
  476. DEBUG(1, "Trying %s", probes[i]);
  477. mtd = do_map_probe(probes[i], &dev->pcmcia_map);
  478. if(mtd)
  479. break;
  480. DEBUG(1, "FAILED: %s", probes[i]);
  481. }
  482. }
  483. if(!mtd) {
  484. DEBUG(1, "Can not find an MTD");
  485. pcmciamtd_release(link);
  486. return -ENODEV;
  487. }
  488. dev->mtd_info = mtd;
  489. mtd->owner = THIS_MODULE;
  490. if(new_name) {
  491. int size = 0;
  492. char unit = ' ';
  493. /* Since we are using a default name, make it better by adding
  494. * in the size
  495. */
  496. if(mtd->size < 1048576) { /* <1MiB in size, show size in KiB */
  497. size = mtd->size >> 10;
  498. unit = 'K';
  499. } else {
  500. size = mtd->size >> 20;
  501. unit = 'M';
  502. }
  503. snprintf(dev->mtd_name, sizeof(dev->mtd_name), "%d%ciB %s", size, unit, "PCMCIA Memory card");
  504. }
  505. /* If the memory found is fits completely into the mapped PCMCIA window,
  506. use the faster non-remapping read/write functions */
  507. if(mtd->size <= dev->win_size) {
  508. DEBUG(1, "Using non remapping memory functions");
  509. dev->pcmcia_map.map_priv_2 = (unsigned long)dev->win_base;
  510. if (dev->pcmcia_map.bankwidth == 1) {
  511. dev->pcmcia_map.read = pcmcia_read8;
  512. dev->pcmcia_map.write = pcmcia_write8;
  513. } else {
  514. dev->pcmcia_map.read = pcmcia_read16;
  515. dev->pcmcia_map.write = pcmcia_write16;
  516. }
  517. dev->pcmcia_map.copy_from = pcmcia_copy_from;
  518. dev->pcmcia_map.copy_to = pcmcia_copy_to;
  519. }
  520. if(add_mtd_device(mtd)) {
  521. map_destroy(mtd);
  522. dev->mtd_info = NULL;
  523. dev_err(&dev->p_dev->dev,
  524. "Could not register the MTD device\n");
  525. pcmciamtd_release(link);
  526. return -ENODEV;
  527. }
  528. dev_info(&dev->p_dev->dev, "mtd%d: %s\n", mtd->index, mtd->name);
  529. return 0;
  530. dev_err(&dev->p_dev->dev, "CS Error, exiting\n");
  531. pcmciamtd_release(link);
  532. return -ENODEV;
  533. }
  534. static int pcmciamtd_suspend(struct pcmcia_device *dev)
  535. {
  536. DEBUG(2, "EVENT_PM_RESUME");
  537. /* get_lock(link); */
  538. return 0;
  539. }
  540. static int pcmciamtd_resume(struct pcmcia_device *dev)
  541. {
  542. DEBUG(2, "EVENT_PM_SUSPEND");
  543. /* free_lock(link); */
  544. return 0;
  545. }
  546. /* This deletes a driver "instance". The device is de-registered
  547. * with Card Services. If it has been released, all local data
  548. * structures are freed. Otherwise, the structures will be freed
  549. * when the device is released.
  550. */
  551. static void pcmciamtd_detach(struct pcmcia_device *link)
  552. {
  553. struct pcmciamtd_dev *dev = link->priv;
  554. DEBUG(3, "link=0x%p", link);
  555. if(dev->mtd_info) {
  556. del_mtd_device(dev->mtd_info);
  557. dev_info(&dev->p_dev->dev, "mtd%d: Removing\n",
  558. dev->mtd_info->index);
  559. map_destroy(dev->mtd_info);
  560. }
  561. pcmciamtd_release(link);
  562. }
  563. /* pcmciamtd_attach() creates an "instance" of the driver, allocating
  564. * local data structures for one device. The device is registered
  565. * with Card Services.
  566. */
  567. static int pcmciamtd_probe(struct pcmcia_device *link)
  568. {
  569. struct pcmciamtd_dev *dev;
  570. /* Create new memory card device */
  571. dev = kzalloc(sizeof(*dev), GFP_KERNEL);
  572. if (!dev) return -ENOMEM;
  573. DEBUG(1, "dev=0x%p", dev);
  574. dev->p_dev = link;
  575. link->priv = dev;
  576. link->conf.Attributes = 0;
  577. link->conf.IntType = INT_MEMORY;
  578. return pcmciamtd_config(link);
  579. }
  580. static struct pcmcia_device_id pcmciamtd_ids[] = {
  581. PCMCIA_DEVICE_FUNC_ID(1),
  582. PCMCIA_DEVICE_PROD_ID123("IO DATA", "PCS-2M", "2MB SRAM", 0x547e66dc, 0x1fed36cd, 0x36eadd21),
  583. PCMCIA_DEVICE_PROD_ID12("IBM", "2MB SRAM", 0xb569a6e5, 0x36eadd21),
  584. PCMCIA_DEVICE_PROD_ID12("IBM", "4MB FLASH", 0xb569a6e5, 0x8bc54d2a),
  585. PCMCIA_DEVICE_PROD_ID12("IBM", "8MB FLASH", 0xb569a6e5, 0x6df1be3e),
  586. PCMCIA_DEVICE_PROD_ID12("Intel", "S2E20SW", 0x816cc815, 0xd14c9dcf),
  587. PCMCIA_DEVICE_PROD_ID12("Intel", "S2E8 SW", 0x816cc815, 0xa2d7dedb),
  588. PCMCIA_DEVICE_PROD_ID12("intel", "SERIES2-02 ", 0x40ade711, 0x145cea5c),
  589. PCMCIA_DEVICE_PROD_ID12("intel", "SERIES2-04 ", 0x40ade711, 0x42064dda),
  590. PCMCIA_DEVICE_PROD_ID12("intel", "SERIES2-20 ", 0x40ade711, 0x25ee5cb0),
  591. PCMCIA_DEVICE_PROD_ID12("intel", "VALUE SERIES 100 ", 0x40ade711, 0xdf8506d8),
  592. PCMCIA_DEVICE_PROD_ID12("KINGMAX TECHNOLOGY INC.", "SRAM 256K Bytes", 0x54d0c69c, 0xad12c29c),
  593. PCMCIA_DEVICE_PROD_ID12("Maxtor", "MAXFL MobileMax Flash Memory Card", 0xb68968c8, 0x2dfb47b0),
  594. PCMCIA_DEVICE_PROD_ID123("M-Systems", "M-SYS Flash Memory Card", "(c) M-Systems", 0x7ed2ad87, 0x675dc3fb, 0x7aef3965),
  595. PCMCIA_DEVICE_PROD_ID12("PRETEC", " 2MB SRAM CARD", 0xebf91155, 0x805360ca),
  596. PCMCIA_DEVICE_PROD_ID12("SEIKO EPSON", "WWB101EN20", 0xf9876baf, 0xad0b207b),
  597. PCMCIA_DEVICE_PROD_ID12("SEIKO EPSON", "WWB513EN20", 0xf9876baf, 0xe8d884ad),
  598. PCMCIA_DEVICE_PROD_ID12("SMART Modular Technologies", " 4MB FLASH Card", 0x96fd8277, 0x737a5b05),
  599. PCMCIA_DEVICE_PROD_ID12("Starfish, Inc.", "REX-3000", 0x05ddca47, 0xe7d67bca),
  600. PCMCIA_DEVICE_PROD_ID12("Starfish, Inc.", "REX-4100", 0x05ddca47, 0x7bc32944),
  601. /* the following was commented out in pcmcia-cs-3.2.7 */
  602. /* PCMCIA_DEVICE_PROD_ID12("RATOC Systems,Inc.", "SmartMedia ADAPTER PC Card", 0xf4a2fefe, 0x5885b2ae), */
  603. #ifdef CONFIG_MTD_PCMCIA_ANONYMOUS
  604. { .match_flags = PCMCIA_DEV_ID_MATCH_ANONYMOUS, },
  605. #endif
  606. PCMCIA_DEVICE_NULL
  607. };
  608. MODULE_DEVICE_TABLE(pcmcia, pcmciamtd_ids);
  609. static struct pcmcia_driver pcmciamtd_driver = {
  610. .drv = {
  611. .name = "pcmciamtd"
  612. },
  613. .probe = pcmciamtd_probe,
  614. .remove = pcmciamtd_detach,
  615. .owner = THIS_MODULE,
  616. .id_table = pcmciamtd_ids,
  617. .suspend = pcmciamtd_suspend,
  618. .resume = pcmciamtd_resume,
  619. };
  620. static int __init init_pcmciamtd(void)
  621. {
  622. info(DRIVER_DESC);
  623. if(bankwidth && bankwidth != 1 && bankwidth != 2) {
  624. info("bad bankwidth (%d), using default", bankwidth);
  625. bankwidth = 2;
  626. }
  627. if(force_size && (force_size < 1 || force_size > 64)) {
  628. info("bad force_size (%d), using default", force_size);
  629. force_size = 0;
  630. }
  631. if(mem_type && mem_type != 1 && mem_type != 2) {
  632. info("bad mem_type (%d), using default", mem_type);
  633. mem_type = 0;
  634. }
  635. return pcmcia_register_driver(&pcmciamtd_driver);
  636. }
  637. static void __exit exit_pcmciamtd(void)
  638. {
  639. DEBUG(1, DRIVER_DESC " unloading");
  640. pcmcia_unregister_driver(&pcmciamtd_driver);
  641. }
  642. module_init(init_pcmciamtd);
  643. module_exit(exit_pcmciamtd);