cm4000_cs.c 48 KB

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  1. /*
  2. * A driver for the PCMCIA Smartcard Reader "Omnikey CardMan Mobile 4000"
  3. *
  4. * cm4000_cs.c support.linux@omnikey.com
  5. *
  6. * Tue Oct 23 11:32:43 GMT 2001 herp - cleaned up header files
  7. * Sun Jan 20 10:11:15 MET 2002 herp - added modversion header files
  8. * Thu Nov 14 16:34:11 GMT 2002 mh - added PPS functionality
  9. * Tue Nov 19 16:36:27 GMT 2002 mh - added SUSPEND/RESUME functionailty
  10. * Wed Jul 28 12:55:01 CEST 2004 mh - kernel 2.6 adjustments
  11. *
  12. * current version: 2.4.0gm4
  13. *
  14. * (C) 2000,2001,2002,2003,2004 Omnikey AG
  15. *
  16. * (C) 2005-2006 Harald Welte <laforge@gnumonks.org>
  17. * - Adhere to Kernel CodingStyle
  18. * - Port to 2.6.13 "new" style PCMCIA
  19. * - Check for copy_{from,to}_user return values
  20. * - Use nonseekable_open()
  21. * - add class interface for udev device creation
  22. *
  23. * All rights reserved. Licensed under dual BSD/GPL license.
  24. */
  25. #include <linux/kernel.h>
  26. #include <linux/module.h>
  27. #include <linux/slab.h>
  28. #include <linux/init.h>
  29. #include <linux/fs.h>
  30. #include <linux/delay.h>
  31. #include <linux/bitrev.h>
  32. #include <linux/smp_lock.h>
  33. #include <linux/uaccess.h>
  34. #include <linux/io.h>
  35. #include <pcmcia/cistpl.h>
  36. #include <pcmcia/cisreg.h>
  37. #include <pcmcia/ciscode.h>
  38. #include <pcmcia/ds.h>
  39. #include <linux/cm4000_cs.h>
  40. /* #define ATR_CSUM */
  41. #define reader_to_dev(x) (&x->p_dev->dev)
  42. /* n (debug level) is ignored */
  43. /* additional debug output may be enabled by re-compiling with
  44. * CM4000_DEBUG set */
  45. /* #define CM4000_DEBUG */
  46. #define DEBUGP(n, rdr, x, args...) do { \
  47. dev_dbg(reader_to_dev(rdr), "%s:" x, \
  48. __func__ , ## args); \
  49. } while (0)
  50. #define T_1SEC (HZ)
  51. #define T_10MSEC msecs_to_jiffies(10)
  52. #define T_20MSEC msecs_to_jiffies(20)
  53. #define T_40MSEC msecs_to_jiffies(40)
  54. #define T_50MSEC msecs_to_jiffies(50)
  55. #define T_100MSEC msecs_to_jiffies(100)
  56. #define T_500MSEC msecs_to_jiffies(500)
  57. static void cm4000_release(struct pcmcia_device *link);
  58. static int major; /* major number we get from the kernel */
  59. /* note: the first state has to have number 0 always */
  60. #define M_FETCH_ATR 0
  61. #define M_TIMEOUT_WAIT 1
  62. #define M_READ_ATR_LEN 2
  63. #define M_READ_ATR 3
  64. #define M_ATR_PRESENT 4
  65. #define M_BAD_CARD 5
  66. #define M_CARDOFF 6
  67. #define LOCK_IO 0
  68. #define LOCK_MONITOR 1
  69. #define IS_AUTOPPS_ACT 6
  70. #define IS_PROCBYTE_PRESENT 7
  71. #define IS_INVREV 8
  72. #define IS_ANY_T0 9
  73. #define IS_ANY_T1 10
  74. #define IS_ATR_PRESENT 11
  75. #define IS_ATR_VALID 12
  76. #define IS_CMM_ABSENT 13
  77. #define IS_BAD_LENGTH 14
  78. #define IS_BAD_CSUM 15
  79. #define IS_BAD_CARD 16
  80. #define REG_FLAGS0(x) (x + 0)
  81. #define REG_FLAGS1(x) (x + 1)
  82. #define REG_NUM_BYTES(x) (x + 2)
  83. #define REG_BUF_ADDR(x) (x + 3)
  84. #define REG_BUF_DATA(x) (x + 4)
  85. #define REG_NUM_SEND(x) (x + 5)
  86. #define REG_BAUDRATE(x) (x + 6)
  87. #define REG_STOPBITS(x) (x + 7)
  88. struct cm4000_dev {
  89. struct pcmcia_device *p_dev;
  90. unsigned char atr[MAX_ATR];
  91. unsigned char rbuf[512];
  92. unsigned char sbuf[512];
  93. wait_queue_head_t devq; /* when removing cardman must not be
  94. zeroed! */
  95. wait_queue_head_t ioq; /* if IO is locked, wait on this Q */
  96. wait_queue_head_t atrq; /* wait for ATR valid */
  97. wait_queue_head_t readq; /* used by write to wake blk.read */
  98. /* warning: do not move this fields.
  99. * initialising to zero depends on it - see ZERO_DEV below. */
  100. unsigned char atr_csum;
  101. unsigned char atr_len_retry;
  102. unsigned short atr_len;
  103. unsigned short rlen; /* bytes avail. after write */
  104. unsigned short rpos; /* latest read pos. write zeroes */
  105. unsigned char procbyte; /* T=0 procedure byte */
  106. unsigned char mstate; /* state of card monitor */
  107. unsigned char cwarn; /* slow down warning */
  108. unsigned char flags0; /* cardman IO-flags 0 */
  109. unsigned char flags1; /* cardman IO-flags 1 */
  110. unsigned int mdelay; /* variable monitor speeds, in jiffies */
  111. unsigned int baudv; /* baud value for speed */
  112. unsigned char ta1;
  113. unsigned char proto; /* T=0, T=1, ... */
  114. unsigned long flags; /* lock+flags (MONITOR,IO,ATR) * for concurrent
  115. access */
  116. unsigned char pts[4];
  117. struct timer_list timer; /* used to keep monitor running */
  118. int monitor_running;
  119. };
  120. #define ZERO_DEV(dev) \
  121. memset(&dev->atr_csum,0, \
  122. sizeof(struct cm4000_dev) - \
  123. offsetof(struct cm4000_dev, atr_csum))
  124. static struct pcmcia_device *dev_table[CM4000_MAX_DEV];
  125. static struct class *cmm_class;
  126. /* This table doesn't use spaces after the comma between fields and thus
  127. * violates CodingStyle. However, I don't really think wrapping it around will
  128. * make it any clearer to read -HW */
  129. static unsigned char fi_di_table[10][14] = {
  130. /*FI 00 01 02 03 04 05 06 07 08 09 10 11 12 13 */
  131. /*DI */
  132. /* 0 */ {0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11},
  133. /* 1 */ {0x01,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x91,0x11,0x11,0x11,0x11},
  134. /* 2 */ {0x02,0x12,0x22,0x32,0x11,0x11,0x11,0x11,0x11,0x92,0xA2,0xB2,0x11,0x11},
  135. /* 3 */ {0x03,0x13,0x23,0x33,0x43,0x53,0x63,0x11,0x11,0x93,0xA3,0xB3,0xC3,0xD3},
  136. /* 4 */ {0x04,0x14,0x24,0x34,0x44,0x54,0x64,0x11,0x11,0x94,0xA4,0xB4,0xC4,0xD4},
  137. /* 5 */ {0x00,0x15,0x25,0x35,0x45,0x55,0x65,0x11,0x11,0x95,0xA5,0xB5,0xC5,0xD5},
  138. /* 6 */ {0x06,0x16,0x26,0x36,0x46,0x56,0x66,0x11,0x11,0x96,0xA6,0xB6,0xC6,0xD6},
  139. /* 7 */ {0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11,0x11},
  140. /* 8 */ {0x08,0x11,0x28,0x38,0x48,0x58,0x68,0x11,0x11,0x98,0xA8,0xB8,0xC8,0xD8},
  141. /* 9 */ {0x09,0x19,0x29,0x39,0x49,0x59,0x69,0x11,0x11,0x99,0xA9,0xB9,0xC9,0xD9}
  142. };
  143. #ifndef CM4000_DEBUG
  144. #define xoutb outb
  145. #define xinb inb
  146. #else
  147. static inline void xoutb(unsigned char val, unsigned short port)
  148. {
  149. pr_debug("outb(val=%.2x,port=%.4x)\n", val, port);
  150. outb(val, port);
  151. }
  152. static inline unsigned char xinb(unsigned short port)
  153. {
  154. unsigned char val;
  155. val = inb(port);
  156. pr_debug("%.2x=inb(%.4x)\n", val, port);
  157. return val;
  158. }
  159. #endif
  160. static inline unsigned char invert_revert(unsigned char ch)
  161. {
  162. return bitrev8(~ch);
  163. }
  164. static void str_invert_revert(unsigned char *b, int len)
  165. {
  166. int i;
  167. for (i = 0; i < len; i++)
  168. b[i] = invert_revert(b[i]);
  169. }
  170. #define ATRLENCK(dev,pos) \
  171. if (pos>=dev->atr_len || pos>=MAX_ATR) \
  172. goto return_0;
  173. static unsigned int calc_baudv(unsigned char fidi)
  174. {
  175. unsigned int wcrcf, wbrcf, fi_rfu, di_rfu;
  176. fi_rfu = 372;
  177. di_rfu = 1;
  178. /* FI */
  179. switch ((fidi >> 4) & 0x0F) {
  180. case 0x00:
  181. wcrcf = 372;
  182. break;
  183. case 0x01:
  184. wcrcf = 372;
  185. break;
  186. case 0x02:
  187. wcrcf = 558;
  188. break;
  189. case 0x03:
  190. wcrcf = 744;
  191. break;
  192. case 0x04:
  193. wcrcf = 1116;
  194. break;
  195. case 0x05:
  196. wcrcf = 1488;
  197. break;
  198. case 0x06:
  199. wcrcf = 1860;
  200. break;
  201. case 0x07:
  202. wcrcf = fi_rfu;
  203. break;
  204. case 0x08:
  205. wcrcf = fi_rfu;
  206. break;
  207. case 0x09:
  208. wcrcf = 512;
  209. break;
  210. case 0x0A:
  211. wcrcf = 768;
  212. break;
  213. case 0x0B:
  214. wcrcf = 1024;
  215. break;
  216. case 0x0C:
  217. wcrcf = 1536;
  218. break;
  219. case 0x0D:
  220. wcrcf = 2048;
  221. break;
  222. default:
  223. wcrcf = fi_rfu;
  224. break;
  225. }
  226. /* DI */
  227. switch (fidi & 0x0F) {
  228. case 0x00:
  229. wbrcf = di_rfu;
  230. break;
  231. case 0x01:
  232. wbrcf = 1;
  233. break;
  234. case 0x02:
  235. wbrcf = 2;
  236. break;
  237. case 0x03:
  238. wbrcf = 4;
  239. break;
  240. case 0x04:
  241. wbrcf = 8;
  242. break;
  243. case 0x05:
  244. wbrcf = 16;
  245. break;
  246. case 0x06:
  247. wbrcf = 32;
  248. break;
  249. case 0x07:
  250. wbrcf = di_rfu;
  251. break;
  252. case 0x08:
  253. wbrcf = 12;
  254. break;
  255. case 0x09:
  256. wbrcf = 20;
  257. break;
  258. default:
  259. wbrcf = di_rfu;
  260. break;
  261. }
  262. return (wcrcf / wbrcf);
  263. }
  264. static unsigned short io_read_num_rec_bytes(unsigned int iobase,
  265. unsigned short *s)
  266. {
  267. unsigned short tmp;
  268. tmp = *s = 0;
  269. do {
  270. *s = tmp;
  271. tmp = inb(REG_NUM_BYTES(iobase)) |
  272. (inb(REG_FLAGS0(iobase)) & 4 ? 0x100 : 0);
  273. } while (tmp != *s);
  274. return *s;
  275. }
  276. static int parse_atr(struct cm4000_dev *dev)
  277. {
  278. unsigned char any_t1, any_t0;
  279. unsigned char ch, ifno;
  280. int ix, done;
  281. DEBUGP(3, dev, "-> parse_atr: dev->atr_len = %i\n", dev->atr_len);
  282. if (dev->atr_len < 3) {
  283. DEBUGP(5, dev, "parse_atr: atr_len < 3\n");
  284. return 0;
  285. }
  286. if (dev->atr[0] == 0x3f)
  287. set_bit(IS_INVREV, &dev->flags);
  288. else
  289. clear_bit(IS_INVREV, &dev->flags);
  290. ix = 1;
  291. ifno = 1;
  292. ch = dev->atr[1];
  293. dev->proto = 0; /* XXX PROTO */
  294. any_t1 = any_t0 = done = 0;
  295. dev->ta1 = 0x11; /* defaults to 9600 baud */
  296. do {
  297. if (ifno == 1 && (ch & 0x10)) {
  298. /* read first interface byte and TA1 is present */
  299. dev->ta1 = dev->atr[2];
  300. DEBUGP(5, dev, "Card says FiDi is 0x%.2x\n", dev->ta1);
  301. ifno++;
  302. } else if ((ifno == 2) && (ch & 0x10)) { /* TA(2) */
  303. dev->ta1 = 0x11;
  304. ifno++;
  305. }
  306. DEBUGP(5, dev, "Yi=%.2x\n", ch & 0xf0);
  307. ix += ((ch & 0x10) >> 4) /* no of int.face chars */
  308. +((ch & 0x20) >> 5)
  309. + ((ch & 0x40) >> 6)
  310. + ((ch & 0x80) >> 7);
  311. /* ATRLENCK(dev,ix); */
  312. if (ch & 0x80) { /* TDi */
  313. ch = dev->atr[ix];
  314. if ((ch & 0x0f)) {
  315. any_t1 = 1;
  316. DEBUGP(5, dev, "card is capable of T=1\n");
  317. } else {
  318. any_t0 = 1;
  319. DEBUGP(5, dev, "card is capable of T=0\n");
  320. }
  321. } else
  322. done = 1;
  323. } while (!done);
  324. DEBUGP(5, dev, "ix=%d noHist=%d any_t1=%d\n",
  325. ix, dev->atr[1] & 15, any_t1);
  326. if (ix + 1 + (dev->atr[1] & 0x0f) + any_t1 != dev->atr_len) {
  327. DEBUGP(5, dev, "length error\n");
  328. return 0;
  329. }
  330. if (any_t0)
  331. set_bit(IS_ANY_T0, &dev->flags);
  332. if (any_t1) { /* compute csum */
  333. dev->atr_csum = 0;
  334. #ifdef ATR_CSUM
  335. for (i = 1; i < dev->atr_len; i++)
  336. dev->atr_csum ^= dev->atr[i];
  337. if (dev->atr_csum) {
  338. set_bit(IS_BAD_CSUM, &dev->flags);
  339. DEBUGP(5, dev, "bad checksum\n");
  340. goto return_0;
  341. }
  342. #endif
  343. if (any_t0 == 0)
  344. dev->proto = 1; /* XXX PROTO */
  345. set_bit(IS_ANY_T1, &dev->flags);
  346. }
  347. return 1;
  348. }
  349. struct card_fixup {
  350. char atr[12];
  351. u_int8_t atr_len;
  352. u_int8_t stopbits;
  353. };
  354. static struct card_fixup card_fixups[] = {
  355. { /* ACOS */
  356. .atr = { 0x3b, 0xb3, 0x11, 0x00, 0x00, 0x41, 0x01 },
  357. .atr_len = 7,
  358. .stopbits = 0x03,
  359. },
  360. { /* Motorola */
  361. .atr = {0x3b, 0x76, 0x13, 0x00, 0x00, 0x80, 0x62, 0x07,
  362. 0x41, 0x81, 0x81 },
  363. .atr_len = 11,
  364. .stopbits = 0x04,
  365. },
  366. };
  367. static void set_cardparameter(struct cm4000_dev *dev)
  368. {
  369. int i;
  370. unsigned int iobase = dev->p_dev->resource[0]->start;
  371. u_int8_t stopbits = 0x02; /* ISO default */
  372. DEBUGP(3, dev, "-> set_cardparameter\n");
  373. dev->flags1 = dev->flags1 | (((dev->baudv - 1) & 0x0100) >> 8);
  374. xoutb(dev->flags1, REG_FLAGS1(iobase));
  375. DEBUGP(5, dev, "flags1 = 0x%02x\n", dev->flags1);
  376. /* set baudrate */
  377. xoutb((unsigned char)((dev->baudv - 1) & 0xFF), REG_BAUDRATE(iobase));
  378. DEBUGP(5, dev, "baudv = %i -> write 0x%02x\n", dev->baudv,
  379. ((dev->baudv - 1) & 0xFF));
  380. /* set stopbits */
  381. for (i = 0; i < ARRAY_SIZE(card_fixups); i++) {
  382. if (!memcmp(dev->atr, card_fixups[i].atr,
  383. card_fixups[i].atr_len))
  384. stopbits = card_fixups[i].stopbits;
  385. }
  386. xoutb(stopbits, REG_STOPBITS(iobase));
  387. DEBUGP(3, dev, "<- set_cardparameter\n");
  388. }
  389. static int set_protocol(struct cm4000_dev *dev, struct ptsreq *ptsreq)
  390. {
  391. unsigned long tmp, i;
  392. unsigned short num_bytes_read;
  393. unsigned char pts_reply[4];
  394. ssize_t rc;
  395. unsigned int iobase = dev->p_dev->resource[0]->start;
  396. rc = 0;
  397. DEBUGP(3, dev, "-> set_protocol\n");
  398. DEBUGP(5, dev, "ptsreq->Protocol = 0x%.8x, ptsreq->Flags=0x%.8x, "
  399. "ptsreq->pts1=0x%.2x, ptsreq->pts2=0x%.2x, "
  400. "ptsreq->pts3=0x%.2x\n", (unsigned int)ptsreq->protocol,
  401. (unsigned int)ptsreq->flags, ptsreq->pts1, ptsreq->pts2,
  402. ptsreq->pts3);
  403. /* Fill PTS structure */
  404. dev->pts[0] = 0xff;
  405. dev->pts[1] = 0x00;
  406. tmp = ptsreq->protocol;
  407. while ((tmp = (tmp >> 1)) > 0)
  408. dev->pts[1]++;
  409. dev->proto = dev->pts[1]; /* Set new protocol */
  410. dev->pts[1] = (0x01 << 4) | (dev->pts[1]);
  411. /* Correct Fi/Di according to CM4000 Fi/Di table */
  412. DEBUGP(5, dev, "Ta(1) from ATR is 0x%.2x\n", dev->ta1);
  413. /* set Fi/Di according to ATR TA(1) */
  414. dev->pts[2] = fi_di_table[dev->ta1 & 0x0F][(dev->ta1 >> 4) & 0x0F];
  415. /* Calculate PCK character */
  416. dev->pts[3] = dev->pts[0] ^ dev->pts[1] ^ dev->pts[2];
  417. DEBUGP(5, dev, "pts0=%.2x, pts1=%.2x, pts2=%.2x, pts3=%.2x\n",
  418. dev->pts[0], dev->pts[1], dev->pts[2], dev->pts[3]);
  419. /* check card convention */
  420. if (test_bit(IS_INVREV, &dev->flags))
  421. str_invert_revert(dev->pts, 4);
  422. /* reset SM */
  423. xoutb(0x80, REG_FLAGS0(iobase));
  424. /* Enable access to the message buffer */
  425. DEBUGP(5, dev, "Enable access to the messages buffer\n");
  426. dev->flags1 = 0x20 /* T_Active */
  427. | (test_bit(IS_INVREV, &dev->flags) ? 0x02 : 0x00) /* inv parity */
  428. | ((dev->baudv >> 8) & 0x01); /* MSB-baud */
  429. xoutb(dev->flags1, REG_FLAGS1(iobase));
  430. DEBUGP(5, dev, "Enable message buffer -> flags1 = 0x%.2x\n",
  431. dev->flags1);
  432. /* write challenge to the buffer */
  433. DEBUGP(5, dev, "Write challenge to buffer: ");
  434. for (i = 0; i < 4; i++) {
  435. xoutb(i, REG_BUF_ADDR(iobase));
  436. xoutb(dev->pts[i], REG_BUF_DATA(iobase)); /* buf data */
  437. #ifdef CM4000_DEBUG
  438. pr_debug("0x%.2x ", dev->pts[i]);
  439. }
  440. pr_debug("\n");
  441. #else
  442. }
  443. #endif
  444. /* set number of bytes to write */
  445. DEBUGP(5, dev, "Set number of bytes to write\n");
  446. xoutb(0x04, REG_NUM_SEND(iobase));
  447. /* Trigger CARDMAN CONTROLLER */
  448. xoutb(0x50, REG_FLAGS0(iobase));
  449. /* Monitor progress */
  450. /* wait for xmit done */
  451. DEBUGP(5, dev, "Waiting for NumRecBytes getting valid\n");
  452. for (i = 0; i < 100; i++) {
  453. if (inb(REG_FLAGS0(iobase)) & 0x08) {
  454. DEBUGP(5, dev, "NumRecBytes is valid\n");
  455. break;
  456. }
  457. mdelay(10);
  458. }
  459. if (i == 100) {
  460. DEBUGP(5, dev, "Timeout waiting for NumRecBytes getting "
  461. "valid\n");
  462. rc = -EIO;
  463. goto exit_setprotocol;
  464. }
  465. DEBUGP(5, dev, "Reading NumRecBytes\n");
  466. for (i = 0; i < 100; i++) {
  467. io_read_num_rec_bytes(iobase, &num_bytes_read);
  468. if (num_bytes_read >= 4) {
  469. DEBUGP(2, dev, "NumRecBytes = %i\n", num_bytes_read);
  470. break;
  471. }
  472. mdelay(10);
  473. }
  474. /* check whether it is a short PTS reply? */
  475. if (num_bytes_read == 3)
  476. i = 0;
  477. if (i == 100) {
  478. DEBUGP(5, dev, "Timeout reading num_bytes_read\n");
  479. rc = -EIO;
  480. goto exit_setprotocol;
  481. }
  482. DEBUGP(5, dev, "Reset the CARDMAN CONTROLLER\n");
  483. xoutb(0x80, REG_FLAGS0(iobase));
  484. /* Read PPS reply */
  485. DEBUGP(5, dev, "Read PPS reply\n");
  486. for (i = 0; i < num_bytes_read; i++) {
  487. xoutb(i, REG_BUF_ADDR(iobase));
  488. pts_reply[i] = inb(REG_BUF_DATA(iobase));
  489. }
  490. #ifdef CM4000_DEBUG
  491. DEBUGP(2, dev, "PTSreply: ");
  492. for (i = 0; i < num_bytes_read; i++) {
  493. pr_debug("0x%.2x ", pts_reply[i]);
  494. }
  495. pr_debug("\n");
  496. #endif /* CM4000_DEBUG */
  497. DEBUGP(5, dev, "Clear Tactive in Flags1\n");
  498. xoutb(0x20, REG_FLAGS1(iobase));
  499. /* Compare ptsreq and ptsreply */
  500. if ((dev->pts[0] == pts_reply[0]) &&
  501. (dev->pts[1] == pts_reply[1]) &&
  502. (dev->pts[2] == pts_reply[2]) && (dev->pts[3] == pts_reply[3])) {
  503. /* setcardparameter according to PPS */
  504. dev->baudv = calc_baudv(dev->pts[2]);
  505. set_cardparameter(dev);
  506. } else if ((dev->pts[0] == pts_reply[0]) &&
  507. ((dev->pts[1] & 0xef) == pts_reply[1]) &&
  508. ((pts_reply[0] ^ pts_reply[1]) == pts_reply[2])) {
  509. /* short PTS reply, set card parameter to default values */
  510. dev->baudv = calc_baudv(0x11);
  511. set_cardparameter(dev);
  512. } else
  513. rc = -EIO;
  514. exit_setprotocol:
  515. DEBUGP(3, dev, "<- set_protocol\n");
  516. return rc;
  517. }
  518. static int io_detect_cm4000(unsigned int iobase, struct cm4000_dev *dev)
  519. {
  520. /* note: statemachine is assumed to be reset */
  521. if (inb(REG_FLAGS0(iobase)) & 8) {
  522. clear_bit(IS_ATR_VALID, &dev->flags);
  523. set_bit(IS_CMM_ABSENT, &dev->flags);
  524. return 0; /* detect CMM = 1 -> failure */
  525. }
  526. /* xoutb(0x40, REG_FLAGS1(iobase)); detectCMM */
  527. xoutb(dev->flags1 | 0x40, REG_FLAGS1(iobase));
  528. if ((inb(REG_FLAGS0(iobase)) & 8) == 0) {
  529. clear_bit(IS_ATR_VALID, &dev->flags);
  530. set_bit(IS_CMM_ABSENT, &dev->flags);
  531. return 0; /* detect CMM=0 -> failure */
  532. }
  533. /* clear detectCMM again by restoring original flags1 */
  534. xoutb(dev->flags1, REG_FLAGS1(iobase));
  535. return 1;
  536. }
  537. static void terminate_monitor(struct cm4000_dev *dev)
  538. {
  539. /* tell the monitor to stop and wait until
  540. * it terminates.
  541. */
  542. DEBUGP(3, dev, "-> terminate_monitor\n");
  543. wait_event_interruptible(dev->devq,
  544. test_and_set_bit(LOCK_MONITOR,
  545. (void *)&dev->flags));
  546. /* now, LOCK_MONITOR has been set.
  547. * allow a last cycle in the monitor.
  548. * the monitor will indicate that it has
  549. * finished by clearing this bit.
  550. */
  551. DEBUGP(5, dev, "Now allow last cycle of monitor!\n");
  552. while (test_bit(LOCK_MONITOR, (void *)&dev->flags))
  553. msleep(25);
  554. DEBUGP(5, dev, "Delete timer\n");
  555. del_timer_sync(&dev->timer);
  556. #ifdef CM4000_DEBUG
  557. dev->monitor_running = 0;
  558. #endif
  559. DEBUGP(3, dev, "<- terminate_monitor\n");
  560. }
  561. /*
  562. * monitor the card every 50msec. as a side-effect, retrieve the
  563. * atr once a card is inserted. another side-effect of retrieving the
  564. * atr is that the card will be powered on, so there is no need to
  565. * power on the card explictely from the application: the driver
  566. * is already doing that for you.
  567. */
  568. static void monitor_card(unsigned long p)
  569. {
  570. struct cm4000_dev *dev = (struct cm4000_dev *) p;
  571. unsigned int iobase = dev->p_dev->resource[0]->start;
  572. unsigned short s;
  573. struct ptsreq ptsreq;
  574. int i, atrc;
  575. DEBUGP(7, dev, "-> monitor_card\n");
  576. /* if someone has set the lock for us: we're done! */
  577. if (test_and_set_bit(LOCK_MONITOR, &dev->flags)) {
  578. DEBUGP(4, dev, "About to stop monitor\n");
  579. /* no */
  580. dev->rlen =
  581. dev->rpos =
  582. dev->atr_csum = dev->atr_len_retry = dev->cwarn = 0;
  583. dev->mstate = M_FETCH_ATR;
  584. clear_bit(LOCK_MONITOR, &dev->flags);
  585. /* close et al. are sleeping on devq, so wake it */
  586. wake_up_interruptible(&dev->devq);
  587. DEBUGP(2, dev, "<- monitor_card (we are done now)\n");
  588. return;
  589. }
  590. /* try to lock io: if it is already locked, just add another timer */
  591. if (test_and_set_bit(LOCK_IO, (void *)&dev->flags)) {
  592. DEBUGP(4, dev, "Couldn't get IO lock\n");
  593. goto return_with_timer;
  594. }
  595. /* is a card/a reader inserted at all ? */
  596. dev->flags0 = xinb(REG_FLAGS0(iobase));
  597. DEBUGP(7, dev, "dev->flags0 = 0x%2x\n", dev->flags0);
  598. DEBUGP(7, dev, "smartcard present: %s\n",
  599. dev->flags0 & 1 ? "yes" : "no");
  600. DEBUGP(7, dev, "cardman present: %s\n",
  601. dev->flags0 == 0xff ? "no" : "yes");
  602. if ((dev->flags0 & 1) == 0 /* no smartcard inserted */
  603. || dev->flags0 == 0xff) { /* no cardman inserted */
  604. /* no */
  605. dev->rlen =
  606. dev->rpos =
  607. dev->atr_csum = dev->atr_len_retry = dev->cwarn = 0;
  608. dev->mstate = M_FETCH_ATR;
  609. dev->flags &= 0x000000ff; /* only keep IO and MONITOR locks */
  610. if (dev->flags0 == 0xff) {
  611. DEBUGP(4, dev, "set IS_CMM_ABSENT bit\n");
  612. set_bit(IS_CMM_ABSENT, &dev->flags);
  613. } else if (test_bit(IS_CMM_ABSENT, &dev->flags)) {
  614. DEBUGP(4, dev, "clear IS_CMM_ABSENT bit "
  615. "(card is removed)\n");
  616. clear_bit(IS_CMM_ABSENT, &dev->flags);
  617. }
  618. goto release_io;
  619. } else if ((dev->flags0 & 1) && test_bit(IS_CMM_ABSENT, &dev->flags)) {
  620. /* cardman and card present but cardman was absent before
  621. * (after suspend with inserted card) */
  622. DEBUGP(4, dev, "clear IS_CMM_ABSENT bit (card is inserted)\n");
  623. clear_bit(IS_CMM_ABSENT, &dev->flags);
  624. }
  625. if (test_bit(IS_ATR_VALID, &dev->flags) == 1) {
  626. DEBUGP(7, dev, "believe ATR is already valid (do nothing)\n");
  627. goto release_io;
  628. }
  629. switch (dev->mstate) {
  630. unsigned char flags0;
  631. case M_CARDOFF:
  632. DEBUGP(4, dev, "M_CARDOFF\n");
  633. flags0 = inb(REG_FLAGS0(iobase));
  634. if (flags0 & 0x02) {
  635. /* wait until Flags0 indicate power is off */
  636. dev->mdelay = T_10MSEC;
  637. } else {
  638. /* Flags0 indicate power off and no card inserted now;
  639. * Reset CARDMAN CONTROLLER */
  640. xoutb(0x80, REG_FLAGS0(iobase));
  641. /* prepare for fetching ATR again: after card off ATR
  642. * is read again automatically */
  643. dev->rlen =
  644. dev->rpos =
  645. dev->atr_csum =
  646. dev->atr_len_retry = dev->cwarn = 0;
  647. dev->mstate = M_FETCH_ATR;
  648. /* minimal gap between CARDOFF and read ATR is 50msec */
  649. dev->mdelay = T_50MSEC;
  650. }
  651. break;
  652. case M_FETCH_ATR:
  653. DEBUGP(4, dev, "M_FETCH_ATR\n");
  654. xoutb(0x80, REG_FLAGS0(iobase));
  655. DEBUGP(4, dev, "Reset BAUDV to 9600\n");
  656. dev->baudv = 0x173; /* 9600 */
  657. xoutb(0x02, REG_STOPBITS(iobase)); /* stopbits=2 */
  658. xoutb(0x73, REG_BAUDRATE(iobase)); /* baud value */
  659. xoutb(0x21, REG_FLAGS1(iobase)); /* T_Active=1, baud
  660. value */
  661. /* warm start vs. power on: */
  662. xoutb(dev->flags0 & 2 ? 0x46 : 0x44, REG_FLAGS0(iobase));
  663. dev->mdelay = T_40MSEC;
  664. dev->mstate = M_TIMEOUT_WAIT;
  665. break;
  666. case M_TIMEOUT_WAIT:
  667. DEBUGP(4, dev, "M_TIMEOUT_WAIT\n");
  668. /* numRecBytes */
  669. io_read_num_rec_bytes(iobase, &dev->atr_len);
  670. dev->mdelay = T_10MSEC;
  671. dev->mstate = M_READ_ATR_LEN;
  672. break;
  673. case M_READ_ATR_LEN:
  674. DEBUGP(4, dev, "M_READ_ATR_LEN\n");
  675. /* infinite loop possible, since there is no timeout */
  676. #define MAX_ATR_LEN_RETRY 100
  677. if (dev->atr_len == io_read_num_rec_bytes(iobase, &s)) {
  678. if (dev->atr_len_retry++ >= MAX_ATR_LEN_RETRY) { /* + XX msec */
  679. dev->mdelay = T_10MSEC;
  680. dev->mstate = M_READ_ATR;
  681. }
  682. } else {
  683. dev->atr_len = s;
  684. dev->atr_len_retry = 0; /* set new timeout */
  685. }
  686. DEBUGP(4, dev, "Current ATR_LEN = %i\n", dev->atr_len);
  687. break;
  688. case M_READ_ATR:
  689. DEBUGP(4, dev, "M_READ_ATR\n");
  690. xoutb(0x80, REG_FLAGS0(iobase)); /* reset SM */
  691. for (i = 0; i < dev->atr_len; i++) {
  692. xoutb(i, REG_BUF_ADDR(iobase));
  693. dev->atr[i] = inb(REG_BUF_DATA(iobase));
  694. }
  695. /* Deactivate T_Active flags */
  696. DEBUGP(4, dev, "Deactivate T_Active flags\n");
  697. dev->flags1 = 0x01;
  698. xoutb(dev->flags1, REG_FLAGS1(iobase));
  699. /* atr is present (which doesnt mean it's valid) */
  700. set_bit(IS_ATR_PRESENT, &dev->flags);
  701. if (dev->atr[0] == 0x03)
  702. str_invert_revert(dev->atr, dev->atr_len);
  703. atrc = parse_atr(dev);
  704. if (atrc == 0) { /* atr invalid */
  705. dev->mdelay = 0;
  706. dev->mstate = M_BAD_CARD;
  707. } else {
  708. dev->mdelay = T_50MSEC;
  709. dev->mstate = M_ATR_PRESENT;
  710. set_bit(IS_ATR_VALID, &dev->flags);
  711. }
  712. if (test_bit(IS_ATR_VALID, &dev->flags) == 1) {
  713. DEBUGP(4, dev, "monitor_card: ATR valid\n");
  714. /* if ta1 == 0x11, no PPS necessary (default values) */
  715. /* do not do PPS with multi protocol cards */
  716. if ((test_bit(IS_AUTOPPS_ACT, &dev->flags) == 0) &&
  717. (dev->ta1 != 0x11) &&
  718. !(test_bit(IS_ANY_T0, &dev->flags) &&
  719. test_bit(IS_ANY_T1, &dev->flags))) {
  720. DEBUGP(4, dev, "Perform AUTOPPS\n");
  721. set_bit(IS_AUTOPPS_ACT, &dev->flags);
  722. ptsreq.protocol = ptsreq.protocol =
  723. (0x01 << dev->proto);
  724. ptsreq.flags = 0x01;
  725. ptsreq.pts1 = 0x00;
  726. ptsreq.pts2 = 0x00;
  727. ptsreq.pts3 = 0x00;
  728. if (set_protocol(dev, &ptsreq) == 0) {
  729. DEBUGP(4, dev, "AUTOPPS ret SUCC\n");
  730. clear_bit(IS_AUTOPPS_ACT, &dev->flags);
  731. wake_up_interruptible(&dev->atrq);
  732. } else {
  733. DEBUGP(4, dev, "AUTOPPS failed: "
  734. "repower using defaults\n");
  735. /* prepare for repowering */
  736. clear_bit(IS_ATR_PRESENT, &dev->flags);
  737. clear_bit(IS_ATR_VALID, &dev->flags);
  738. dev->rlen =
  739. dev->rpos =
  740. dev->atr_csum =
  741. dev->atr_len_retry = dev->cwarn = 0;
  742. dev->mstate = M_FETCH_ATR;
  743. dev->mdelay = T_50MSEC;
  744. }
  745. } else {
  746. /* for cards which use slightly different
  747. * params (extra guard time) */
  748. set_cardparameter(dev);
  749. if (test_bit(IS_AUTOPPS_ACT, &dev->flags) == 1)
  750. DEBUGP(4, dev, "AUTOPPS already active "
  751. "2nd try:use default values\n");
  752. if (dev->ta1 == 0x11)
  753. DEBUGP(4, dev, "No AUTOPPS necessary "
  754. "TA(1)==0x11\n");
  755. if (test_bit(IS_ANY_T0, &dev->flags)
  756. && test_bit(IS_ANY_T1, &dev->flags))
  757. DEBUGP(4, dev, "Do NOT perform AUTOPPS "
  758. "with multiprotocol cards\n");
  759. clear_bit(IS_AUTOPPS_ACT, &dev->flags);
  760. wake_up_interruptible(&dev->atrq);
  761. }
  762. } else {
  763. DEBUGP(4, dev, "ATR invalid\n");
  764. wake_up_interruptible(&dev->atrq);
  765. }
  766. break;
  767. case M_BAD_CARD:
  768. DEBUGP(4, dev, "M_BAD_CARD\n");
  769. /* slow down warning, but prompt immediately after insertion */
  770. if (dev->cwarn == 0 || dev->cwarn == 10) {
  771. set_bit(IS_BAD_CARD, &dev->flags);
  772. dev_warn(&dev->p_dev->dev, MODULE_NAME ": ");
  773. if (test_bit(IS_BAD_CSUM, &dev->flags)) {
  774. DEBUGP(4, dev, "ATR checksum (0x%.2x, should "
  775. "be zero) failed\n", dev->atr_csum);
  776. }
  777. #ifdef CM4000_DEBUG
  778. else if (test_bit(IS_BAD_LENGTH, &dev->flags)) {
  779. DEBUGP(4, dev, "ATR length error\n");
  780. } else {
  781. DEBUGP(4, dev, "card damaged or wrong way "
  782. "inserted\n");
  783. }
  784. #endif
  785. dev->cwarn = 0;
  786. wake_up_interruptible(&dev->atrq); /* wake open */
  787. }
  788. dev->cwarn++;
  789. dev->mdelay = T_100MSEC;
  790. dev->mstate = M_FETCH_ATR;
  791. break;
  792. default:
  793. DEBUGP(7, dev, "Unknown action\n");
  794. break; /* nothing */
  795. }
  796. release_io:
  797. DEBUGP(7, dev, "release_io\n");
  798. clear_bit(LOCK_IO, &dev->flags);
  799. wake_up_interruptible(&dev->ioq); /* whoever needs IO */
  800. return_with_timer:
  801. DEBUGP(7, dev, "<- monitor_card (returns with timer)\n");
  802. mod_timer(&dev->timer, jiffies + dev->mdelay);
  803. clear_bit(LOCK_MONITOR, &dev->flags);
  804. }
  805. /* Interface to userland (file_operations) */
  806. static ssize_t cmm_read(struct file *filp, __user char *buf, size_t count,
  807. loff_t *ppos)
  808. {
  809. struct cm4000_dev *dev = filp->private_data;
  810. unsigned int iobase = dev->p_dev->resource[0]->start;
  811. ssize_t rc;
  812. int i, j, k;
  813. DEBUGP(2, dev, "-> cmm_read(%s,%d)\n", current->comm, current->pid);
  814. if (count == 0) /* according to manpage */
  815. return 0;
  816. if (!pcmcia_dev_present(dev->p_dev) || /* device removed */
  817. test_bit(IS_CMM_ABSENT, &dev->flags))
  818. return -ENODEV;
  819. if (test_bit(IS_BAD_CSUM, &dev->flags))
  820. return -EIO;
  821. /* also see the note about this in cmm_write */
  822. if (wait_event_interruptible
  823. (dev->atrq,
  824. ((filp->f_flags & O_NONBLOCK)
  825. || (test_bit(IS_ATR_PRESENT, (void *)&dev->flags) != 0)))) {
  826. if (filp->f_flags & O_NONBLOCK)
  827. return -EAGAIN;
  828. return -ERESTARTSYS;
  829. }
  830. if (test_bit(IS_ATR_VALID, &dev->flags) == 0)
  831. return -EIO;
  832. /* this one implements blocking IO */
  833. if (wait_event_interruptible
  834. (dev->readq,
  835. ((filp->f_flags & O_NONBLOCK) || (dev->rpos < dev->rlen)))) {
  836. if (filp->f_flags & O_NONBLOCK)
  837. return -EAGAIN;
  838. return -ERESTARTSYS;
  839. }
  840. /* lock io */
  841. if (wait_event_interruptible
  842. (dev->ioq,
  843. ((filp->f_flags & O_NONBLOCK)
  844. || (test_and_set_bit(LOCK_IO, (void *)&dev->flags) == 0)))) {
  845. if (filp->f_flags & O_NONBLOCK)
  846. return -EAGAIN;
  847. return -ERESTARTSYS;
  848. }
  849. rc = 0;
  850. dev->flags0 = inb(REG_FLAGS0(iobase));
  851. if ((dev->flags0 & 1) == 0 /* no smartcard inserted */
  852. || dev->flags0 == 0xff) { /* no cardman inserted */
  853. clear_bit(IS_ATR_VALID, &dev->flags);
  854. if (dev->flags0 & 1) {
  855. set_bit(IS_CMM_ABSENT, &dev->flags);
  856. rc = -ENODEV;
  857. }
  858. rc = -EIO;
  859. goto release_io;
  860. }
  861. DEBUGP(4, dev, "begin read answer\n");
  862. j = min(count, (size_t)(dev->rlen - dev->rpos));
  863. k = dev->rpos;
  864. if (k + j > 255)
  865. j = 256 - k;
  866. DEBUGP(4, dev, "read1 j=%d\n", j);
  867. for (i = 0; i < j; i++) {
  868. xoutb(k++, REG_BUF_ADDR(iobase));
  869. dev->rbuf[i] = xinb(REG_BUF_DATA(iobase));
  870. }
  871. j = min(count, (size_t)(dev->rlen - dev->rpos));
  872. if (k + j > 255) {
  873. DEBUGP(4, dev, "read2 j=%d\n", j);
  874. dev->flags1 |= 0x10; /* MSB buf addr set */
  875. xoutb(dev->flags1, REG_FLAGS1(iobase));
  876. for (; i < j; i++) {
  877. xoutb(k++, REG_BUF_ADDR(iobase));
  878. dev->rbuf[i] = xinb(REG_BUF_DATA(iobase));
  879. }
  880. }
  881. if (dev->proto == 0 && count > dev->rlen - dev->rpos && i) {
  882. DEBUGP(4, dev, "T=0 and count > buffer\n");
  883. dev->rbuf[i] = dev->rbuf[i - 1];
  884. dev->rbuf[i - 1] = dev->procbyte;
  885. j++;
  886. }
  887. count = j;
  888. dev->rpos = dev->rlen + 1;
  889. /* Clear T1Active */
  890. DEBUGP(4, dev, "Clear T1Active\n");
  891. dev->flags1 &= 0xdf;
  892. xoutb(dev->flags1, REG_FLAGS1(iobase));
  893. xoutb(0, REG_FLAGS1(iobase)); /* clear detectCMM */
  894. /* last check before exit */
  895. if (!io_detect_cm4000(iobase, dev)) {
  896. rc = -ENODEV;
  897. goto release_io;
  898. }
  899. if (test_bit(IS_INVREV, &dev->flags) && count > 0)
  900. str_invert_revert(dev->rbuf, count);
  901. if (copy_to_user(buf, dev->rbuf, count))
  902. rc = -EFAULT;
  903. release_io:
  904. clear_bit(LOCK_IO, &dev->flags);
  905. wake_up_interruptible(&dev->ioq);
  906. DEBUGP(2, dev, "<- cmm_read returns: rc = %Zi\n",
  907. (rc < 0 ? rc : count));
  908. return rc < 0 ? rc : count;
  909. }
  910. static ssize_t cmm_write(struct file *filp, const char __user *buf,
  911. size_t count, loff_t *ppos)
  912. {
  913. struct cm4000_dev *dev = filp->private_data;
  914. unsigned int iobase = dev->p_dev->resource[0]->start;
  915. unsigned short s;
  916. unsigned char tmp;
  917. unsigned char infolen;
  918. unsigned char sendT0;
  919. unsigned short nsend;
  920. unsigned short nr;
  921. ssize_t rc;
  922. int i;
  923. DEBUGP(2, dev, "-> cmm_write(%s,%d)\n", current->comm, current->pid);
  924. if (count == 0) /* according to manpage */
  925. return 0;
  926. if (dev->proto == 0 && count < 4) {
  927. /* T0 must have at least 4 bytes */
  928. DEBUGP(4, dev, "T0 short write\n");
  929. return -EIO;
  930. }
  931. nr = count & 0x1ff; /* max bytes to write */
  932. sendT0 = dev->proto ? 0 : nr > 5 ? 0x08 : 0;
  933. if (!pcmcia_dev_present(dev->p_dev) || /* device removed */
  934. test_bit(IS_CMM_ABSENT, &dev->flags))
  935. return -ENODEV;
  936. if (test_bit(IS_BAD_CSUM, &dev->flags)) {
  937. DEBUGP(4, dev, "bad csum\n");
  938. return -EIO;
  939. }
  940. /*
  941. * wait for atr to become valid.
  942. * note: it is important to lock this code. if we dont, the monitor
  943. * could be run between test_bit and the call to sleep on the
  944. * atr-queue. if *then* the monitor detects atr valid, it will wake up
  945. * any process on the atr-queue, *but* since we have been interrupted,
  946. * we do not yet sleep on this queue. this would result in a missed
  947. * wake_up and the calling process would sleep forever (until
  948. * interrupted). also, do *not* restore_flags before sleep_on, because
  949. * this could result in the same situation!
  950. */
  951. if (wait_event_interruptible
  952. (dev->atrq,
  953. ((filp->f_flags & O_NONBLOCK)
  954. || (test_bit(IS_ATR_PRESENT, (void *)&dev->flags) != 0)))) {
  955. if (filp->f_flags & O_NONBLOCK)
  956. return -EAGAIN;
  957. return -ERESTARTSYS;
  958. }
  959. if (test_bit(IS_ATR_VALID, &dev->flags) == 0) { /* invalid atr */
  960. DEBUGP(4, dev, "invalid ATR\n");
  961. return -EIO;
  962. }
  963. /* lock io */
  964. if (wait_event_interruptible
  965. (dev->ioq,
  966. ((filp->f_flags & O_NONBLOCK)
  967. || (test_and_set_bit(LOCK_IO, (void *)&dev->flags) == 0)))) {
  968. if (filp->f_flags & O_NONBLOCK)
  969. return -EAGAIN;
  970. return -ERESTARTSYS;
  971. }
  972. if (copy_from_user(dev->sbuf, buf, ((count > 512) ? 512 : count)))
  973. return -EFAULT;
  974. rc = 0;
  975. dev->flags0 = inb(REG_FLAGS0(iobase));
  976. if ((dev->flags0 & 1) == 0 /* no smartcard inserted */
  977. || dev->flags0 == 0xff) { /* no cardman inserted */
  978. clear_bit(IS_ATR_VALID, &dev->flags);
  979. if (dev->flags0 & 1) {
  980. set_bit(IS_CMM_ABSENT, &dev->flags);
  981. rc = -ENODEV;
  982. } else {
  983. DEBUGP(4, dev, "IO error\n");
  984. rc = -EIO;
  985. }
  986. goto release_io;
  987. }
  988. xoutb(0x80, REG_FLAGS0(iobase)); /* reset SM */
  989. if (!io_detect_cm4000(iobase, dev)) {
  990. rc = -ENODEV;
  991. goto release_io;
  992. }
  993. /* reflect T=0 send/read mode in flags1 */
  994. dev->flags1 |= (sendT0);
  995. set_cardparameter(dev);
  996. /* dummy read, reset flag procedure received */
  997. tmp = inb(REG_FLAGS1(iobase));
  998. dev->flags1 = 0x20 /* T_Active */
  999. | (sendT0)
  1000. | (test_bit(IS_INVREV, &dev->flags) ? 2 : 0)/* inverse parity */
  1001. | (((dev->baudv - 1) & 0x0100) >> 8); /* MSB-Baud */
  1002. DEBUGP(1, dev, "set dev->flags1 = 0x%.2x\n", dev->flags1);
  1003. xoutb(dev->flags1, REG_FLAGS1(iobase));
  1004. /* xmit data */
  1005. DEBUGP(4, dev, "Xmit data\n");
  1006. for (i = 0; i < nr; i++) {
  1007. if (i >= 256) {
  1008. dev->flags1 = 0x20 /* T_Active */
  1009. | (sendT0) /* SendT0 */
  1010. /* inverse parity: */
  1011. | (test_bit(IS_INVREV, &dev->flags) ? 2 : 0)
  1012. | (((dev->baudv - 1) & 0x0100) >> 8) /* MSB-Baud */
  1013. | 0x10; /* set address high */
  1014. DEBUGP(4, dev, "dev->flags = 0x%.2x - set address "
  1015. "high\n", dev->flags1);
  1016. xoutb(dev->flags1, REG_FLAGS1(iobase));
  1017. }
  1018. if (test_bit(IS_INVREV, &dev->flags)) {
  1019. DEBUGP(4, dev, "Apply inverse convention for 0x%.2x "
  1020. "-> 0x%.2x\n", (unsigned char)dev->sbuf[i],
  1021. invert_revert(dev->sbuf[i]));
  1022. xoutb(i, REG_BUF_ADDR(iobase));
  1023. xoutb(invert_revert(dev->sbuf[i]),
  1024. REG_BUF_DATA(iobase));
  1025. } else {
  1026. xoutb(i, REG_BUF_ADDR(iobase));
  1027. xoutb(dev->sbuf[i], REG_BUF_DATA(iobase));
  1028. }
  1029. }
  1030. DEBUGP(4, dev, "Xmit done\n");
  1031. if (dev->proto == 0) {
  1032. /* T=0 proto: 0 byte reply */
  1033. if (nr == 4) {
  1034. DEBUGP(4, dev, "T=0 assumes 0 byte reply\n");
  1035. xoutb(i, REG_BUF_ADDR(iobase));
  1036. if (test_bit(IS_INVREV, &dev->flags))
  1037. xoutb(0xff, REG_BUF_DATA(iobase));
  1038. else
  1039. xoutb(0x00, REG_BUF_DATA(iobase));
  1040. }
  1041. /* numSendBytes */
  1042. if (sendT0)
  1043. nsend = nr;
  1044. else {
  1045. if (nr == 4)
  1046. nsend = 5;
  1047. else {
  1048. nsend = 5 + (unsigned char)dev->sbuf[4];
  1049. if (dev->sbuf[4] == 0)
  1050. nsend += 0x100;
  1051. }
  1052. }
  1053. } else
  1054. nsend = nr;
  1055. /* T0: output procedure byte */
  1056. if (test_bit(IS_INVREV, &dev->flags)) {
  1057. DEBUGP(4, dev, "T=0 set Procedure byte (inverse-reverse) "
  1058. "0x%.2x\n", invert_revert(dev->sbuf[1]));
  1059. xoutb(invert_revert(dev->sbuf[1]), REG_NUM_BYTES(iobase));
  1060. } else {
  1061. DEBUGP(4, dev, "T=0 set Procedure byte 0x%.2x\n", dev->sbuf[1]);
  1062. xoutb(dev->sbuf[1], REG_NUM_BYTES(iobase));
  1063. }
  1064. DEBUGP(1, dev, "set NumSendBytes = 0x%.2x\n",
  1065. (unsigned char)(nsend & 0xff));
  1066. xoutb((unsigned char)(nsend & 0xff), REG_NUM_SEND(iobase));
  1067. DEBUGP(1, dev, "Trigger CARDMAN CONTROLLER (0x%.2x)\n",
  1068. 0x40 /* SM_Active */
  1069. | (dev->flags0 & 2 ? 0 : 4) /* power on if needed */
  1070. |(dev->proto ? 0x10 : 0x08) /* T=1/T=0 */
  1071. |(nsend & 0x100) >> 8 /* MSB numSendBytes */ );
  1072. xoutb(0x40 /* SM_Active */
  1073. | (dev->flags0 & 2 ? 0 : 4) /* power on if needed */
  1074. |(dev->proto ? 0x10 : 0x08) /* T=1/T=0 */
  1075. |(nsend & 0x100) >> 8, /* MSB numSendBytes */
  1076. REG_FLAGS0(iobase));
  1077. /* wait for xmit done */
  1078. if (dev->proto == 1) {
  1079. DEBUGP(4, dev, "Wait for xmit done\n");
  1080. for (i = 0; i < 1000; i++) {
  1081. if (inb(REG_FLAGS0(iobase)) & 0x08)
  1082. break;
  1083. msleep_interruptible(10);
  1084. }
  1085. if (i == 1000) {
  1086. DEBUGP(4, dev, "timeout waiting for xmit done\n");
  1087. rc = -EIO;
  1088. goto release_io;
  1089. }
  1090. }
  1091. /* T=1: wait for infoLen */
  1092. infolen = 0;
  1093. if (dev->proto) {
  1094. /* wait until infoLen is valid */
  1095. for (i = 0; i < 6000; i++) { /* max waiting time of 1 min */
  1096. io_read_num_rec_bytes(iobase, &s);
  1097. if (s >= 3) {
  1098. infolen = inb(REG_FLAGS1(iobase));
  1099. DEBUGP(4, dev, "infolen=%d\n", infolen);
  1100. break;
  1101. }
  1102. msleep_interruptible(10);
  1103. }
  1104. if (i == 6000) {
  1105. DEBUGP(4, dev, "timeout waiting for infoLen\n");
  1106. rc = -EIO;
  1107. goto release_io;
  1108. }
  1109. } else
  1110. clear_bit(IS_PROCBYTE_PRESENT, &dev->flags);
  1111. /* numRecBytes | bit9 of numRecytes */
  1112. io_read_num_rec_bytes(iobase, &dev->rlen);
  1113. for (i = 0; i < 600; i++) { /* max waiting time of 2 sec */
  1114. if (dev->proto) {
  1115. if (dev->rlen >= infolen + 4)
  1116. break;
  1117. }
  1118. msleep_interruptible(10);
  1119. /* numRecBytes | bit9 of numRecytes */
  1120. io_read_num_rec_bytes(iobase, &s);
  1121. if (s > dev->rlen) {
  1122. DEBUGP(1, dev, "NumRecBytes inc (reset timeout)\n");
  1123. i = 0; /* reset timeout */
  1124. dev->rlen = s;
  1125. }
  1126. /* T=0: we are done when numRecBytes doesn't
  1127. * increment any more and NoProcedureByte
  1128. * is set and numRecBytes == bytes sent + 6
  1129. * (header bytes + data + 1 for sw2)
  1130. * except when the card replies an error
  1131. * which means, no data will be sent back.
  1132. */
  1133. else if (dev->proto == 0) {
  1134. if ((inb(REG_BUF_ADDR(iobase)) & 0x80)) {
  1135. /* no procedure byte received since last read */
  1136. DEBUGP(1, dev, "NoProcedure byte set\n");
  1137. /* i=0; */
  1138. } else {
  1139. /* procedure byte received since last read */
  1140. DEBUGP(1, dev, "NoProcedure byte unset "
  1141. "(reset timeout)\n");
  1142. dev->procbyte = inb(REG_FLAGS1(iobase));
  1143. DEBUGP(1, dev, "Read procedure byte 0x%.2x\n",
  1144. dev->procbyte);
  1145. i = 0; /* resettimeout */
  1146. }
  1147. if (inb(REG_FLAGS0(iobase)) & 0x08) {
  1148. DEBUGP(1, dev, "T0Done flag (read reply)\n");
  1149. break;
  1150. }
  1151. }
  1152. if (dev->proto)
  1153. infolen = inb(REG_FLAGS1(iobase));
  1154. }
  1155. if (i == 600) {
  1156. DEBUGP(1, dev, "timeout waiting for numRecBytes\n");
  1157. rc = -EIO;
  1158. goto release_io;
  1159. } else {
  1160. if (dev->proto == 0) {
  1161. DEBUGP(1, dev, "Wait for T0Done bit to be set\n");
  1162. for (i = 0; i < 1000; i++) {
  1163. if (inb(REG_FLAGS0(iobase)) & 0x08)
  1164. break;
  1165. msleep_interruptible(10);
  1166. }
  1167. if (i == 1000) {
  1168. DEBUGP(1, dev, "timeout waiting for T0Done\n");
  1169. rc = -EIO;
  1170. goto release_io;
  1171. }
  1172. dev->procbyte = inb(REG_FLAGS1(iobase));
  1173. DEBUGP(4, dev, "Read procedure byte 0x%.2x\n",
  1174. dev->procbyte);
  1175. io_read_num_rec_bytes(iobase, &dev->rlen);
  1176. DEBUGP(4, dev, "Read NumRecBytes = %i\n", dev->rlen);
  1177. }
  1178. }
  1179. /* T=1: read offset=zero, T=0: read offset=after challenge */
  1180. dev->rpos = dev->proto ? 0 : nr == 4 ? 5 : nr > dev->rlen ? 5 : nr;
  1181. DEBUGP(4, dev, "dev->rlen = %i, dev->rpos = %i, nr = %i\n",
  1182. dev->rlen, dev->rpos, nr);
  1183. release_io:
  1184. DEBUGP(4, dev, "Reset SM\n");
  1185. xoutb(0x80, REG_FLAGS0(iobase)); /* reset SM */
  1186. if (rc < 0) {
  1187. DEBUGP(4, dev, "Write failed but clear T_Active\n");
  1188. dev->flags1 &= 0xdf;
  1189. xoutb(dev->flags1, REG_FLAGS1(iobase));
  1190. }
  1191. clear_bit(LOCK_IO, &dev->flags);
  1192. wake_up_interruptible(&dev->ioq);
  1193. wake_up_interruptible(&dev->readq); /* tell read we have data */
  1194. /* ITSEC E2: clear write buffer */
  1195. memset((char *)dev->sbuf, 0, 512);
  1196. /* return error or actually written bytes */
  1197. DEBUGP(2, dev, "<- cmm_write\n");
  1198. return rc < 0 ? rc : nr;
  1199. }
  1200. static void start_monitor(struct cm4000_dev *dev)
  1201. {
  1202. DEBUGP(3, dev, "-> start_monitor\n");
  1203. if (!dev->monitor_running) {
  1204. DEBUGP(5, dev, "create, init and add timer\n");
  1205. setup_timer(&dev->timer, monitor_card, (unsigned long)dev);
  1206. dev->monitor_running = 1;
  1207. mod_timer(&dev->timer, jiffies);
  1208. } else
  1209. DEBUGP(5, dev, "monitor already running\n");
  1210. DEBUGP(3, dev, "<- start_monitor\n");
  1211. }
  1212. static void stop_monitor(struct cm4000_dev *dev)
  1213. {
  1214. DEBUGP(3, dev, "-> stop_monitor\n");
  1215. if (dev->monitor_running) {
  1216. DEBUGP(5, dev, "stopping monitor\n");
  1217. terminate_monitor(dev);
  1218. /* reset monitor SM */
  1219. clear_bit(IS_ATR_VALID, &dev->flags);
  1220. clear_bit(IS_ATR_PRESENT, &dev->flags);
  1221. } else
  1222. DEBUGP(5, dev, "monitor already stopped\n");
  1223. DEBUGP(3, dev, "<- stop_monitor\n");
  1224. }
  1225. static long cmm_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
  1226. {
  1227. struct cm4000_dev *dev = filp->private_data;
  1228. unsigned int iobase = dev->p_dev->resource[0]->start;
  1229. struct inode *inode = filp->f_path.dentry->d_inode;
  1230. struct pcmcia_device *link;
  1231. int size;
  1232. int rc;
  1233. void __user *argp = (void __user *)arg;
  1234. #ifdef CM4000_DEBUG
  1235. char *ioctl_names[CM_IOC_MAXNR + 1] = {
  1236. [_IOC_NR(CM_IOCGSTATUS)] "CM_IOCGSTATUS",
  1237. [_IOC_NR(CM_IOCGATR)] "CM_IOCGATR",
  1238. [_IOC_NR(CM_IOCARDOFF)] "CM_IOCARDOFF",
  1239. [_IOC_NR(CM_IOCSPTS)] "CM_IOCSPTS",
  1240. [_IOC_NR(CM_IOSDBGLVL)] "CM4000_DBGLVL",
  1241. };
  1242. DEBUGP(3, dev, "cmm_ioctl(device=%d.%d) %s\n", imajor(inode),
  1243. iminor(inode), ioctl_names[_IOC_NR(cmd)]);
  1244. #endif
  1245. lock_kernel();
  1246. rc = -ENODEV;
  1247. link = dev_table[iminor(inode)];
  1248. if (!pcmcia_dev_present(link)) {
  1249. DEBUGP(4, dev, "DEV_OK false\n");
  1250. goto out;
  1251. }
  1252. if (test_bit(IS_CMM_ABSENT, &dev->flags)) {
  1253. DEBUGP(4, dev, "CMM_ABSENT flag set\n");
  1254. goto out;
  1255. }
  1256. rc = -EINVAL;
  1257. if (_IOC_TYPE(cmd) != CM_IOC_MAGIC) {
  1258. DEBUGP(4, dev, "ioctype mismatch\n");
  1259. goto out;
  1260. }
  1261. if (_IOC_NR(cmd) > CM_IOC_MAXNR) {
  1262. DEBUGP(4, dev, "iocnr mismatch\n");
  1263. goto out;
  1264. }
  1265. size = _IOC_SIZE(cmd);
  1266. rc = -EFAULT;
  1267. DEBUGP(4, dev, "iocdir=%.4x iocr=%.4x iocw=%.4x iocsize=%d cmd=%.4x\n",
  1268. _IOC_DIR(cmd), _IOC_READ, _IOC_WRITE, size, cmd);
  1269. if (_IOC_DIR(cmd) & _IOC_READ) {
  1270. if (!access_ok(VERIFY_WRITE, argp, size))
  1271. goto out;
  1272. }
  1273. if (_IOC_DIR(cmd) & _IOC_WRITE) {
  1274. if (!access_ok(VERIFY_READ, argp, size))
  1275. goto out;
  1276. }
  1277. rc = 0;
  1278. switch (cmd) {
  1279. case CM_IOCGSTATUS:
  1280. DEBUGP(4, dev, " ... in CM_IOCGSTATUS\n");
  1281. {
  1282. int status;
  1283. /* clear other bits, but leave inserted & powered as
  1284. * they are */
  1285. status = dev->flags0 & 3;
  1286. if (test_bit(IS_ATR_PRESENT, &dev->flags))
  1287. status |= CM_ATR_PRESENT;
  1288. if (test_bit(IS_ATR_VALID, &dev->flags))
  1289. status |= CM_ATR_VALID;
  1290. if (test_bit(IS_CMM_ABSENT, &dev->flags))
  1291. status |= CM_NO_READER;
  1292. if (test_bit(IS_BAD_CARD, &dev->flags))
  1293. status |= CM_BAD_CARD;
  1294. if (copy_to_user(argp, &status, sizeof(int)))
  1295. rc = -EFAULT;
  1296. }
  1297. break;
  1298. case CM_IOCGATR:
  1299. DEBUGP(4, dev, "... in CM_IOCGATR\n");
  1300. {
  1301. struct atreq __user *atreq = argp;
  1302. int tmp;
  1303. /* allow nonblocking io and being interrupted */
  1304. if (wait_event_interruptible
  1305. (dev->atrq,
  1306. ((filp->f_flags & O_NONBLOCK)
  1307. || (test_bit(IS_ATR_PRESENT, (void *)&dev->flags)
  1308. != 0)))) {
  1309. if (filp->f_flags & O_NONBLOCK)
  1310. rc = -EAGAIN;
  1311. else
  1312. rc = -ERESTARTSYS;
  1313. break;
  1314. }
  1315. rc = -EFAULT;
  1316. if (test_bit(IS_ATR_VALID, &dev->flags) == 0) {
  1317. tmp = -1;
  1318. if (copy_to_user(&(atreq->atr_len), &tmp,
  1319. sizeof(int)))
  1320. break;
  1321. } else {
  1322. if (copy_to_user(atreq->atr, dev->atr,
  1323. dev->atr_len))
  1324. break;
  1325. tmp = dev->atr_len;
  1326. if (copy_to_user(&(atreq->atr_len), &tmp, sizeof(int)))
  1327. break;
  1328. }
  1329. rc = 0;
  1330. break;
  1331. }
  1332. case CM_IOCARDOFF:
  1333. #ifdef CM4000_DEBUG
  1334. DEBUGP(4, dev, "... in CM_IOCARDOFF\n");
  1335. if (dev->flags0 & 0x01) {
  1336. DEBUGP(4, dev, " Card inserted\n");
  1337. } else {
  1338. DEBUGP(2, dev, " No card inserted\n");
  1339. }
  1340. if (dev->flags0 & 0x02) {
  1341. DEBUGP(4, dev, " Card powered\n");
  1342. } else {
  1343. DEBUGP(2, dev, " Card not powered\n");
  1344. }
  1345. #endif
  1346. /* is a card inserted and powered? */
  1347. if ((dev->flags0 & 0x01) && (dev->flags0 & 0x02)) {
  1348. /* get IO lock */
  1349. if (wait_event_interruptible
  1350. (dev->ioq,
  1351. ((filp->f_flags & O_NONBLOCK)
  1352. || (test_and_set_bit(LOCK_IO, (void *)&dev->flags)
  1353. == 0)))) {
  1354. if (filp->f_flags & O_NONBLOCK)
  1355. rc = -EAGAIN;
  1356. else
  1357. rc = -ERESTARTSYS;
  1358. break;
  1359. }
  1360. /* Set Flags0 = 0x42 */
  1361. DEBUGP(4, dev, "Set Flags0=0x42 \n");
  1362. xoutb(0x42, REG_FLAGS0(iobase));
  1363. clear_bit(IS_ATR_PRESENT, &dev->flags);
  1364. clear_bit(IS_ATR_VALID, &dev->flags);
  1365. dev->mstate = M_CARDOFF;
  1366. clear_bit(LOCK_IO, &dev->flags);
  1367. if (wait_event_interruptible
  1368. (dev->atrq,
  1369. ((filp->f_flags & O_NONBLOCK)
  1370. || (test_bit(IS_ATR_VALID, (void *)&dev->flags) !=
  1371. 0)))) {
  1372. if (filp->f_flags & O_NONBLOCK)
  1373. rc = -EAGAIN;
  1374. else
  1375. rc = -ERESTARTSYS;
  1376. break;
  1377. }
  1378. }
  1379. /* release lock */
  1380. clear_bit(LOCK_IO, &dev->flags);
  1381. wake_up_interruptible(&dev->ioq);
  1382. rc = 0;
  1383. break;
  1384. case CM_IOCSPTS:
  1385. {
  1386. struct ptsreq krnptsreq;
  1387. if (copy_from_user(&krnptsreq, argp,
  1388. sizeof(struct ptsreq))) {
  1389. rc = -EFAULT;
  1390. break;
  1391. }
  1392. rc = 0;
  1393. DEBUGP(4, dev, "... in CM_IOCSPTS\n");
  1394. /* wait for ATR to get valid */
  1395. if (wait_event_interruptible
  1396. (dev->atrq,
  1397. ((filp->f_flags & O_NONBLOCK)
  1398. || (test_bit(IS_ATR_PRESENT, (void *)&dev->flags)
  1399. != 0)))) {
  1400. if (filp->f_flags & O_NONBLOCK)
  1401. rc = -EAGAIN;
  1402. else
  1403. rc = -ERESTARTSYS;
  1404. break;
  1405. }
  1406. /* get IO lock */
  1407. if (wait_event_interruptible
  1408. (dev->ioq,
  1409. ((filp->f_flags & O_NONBLOCK)
  1410. || (test_and_set_bit(LOCK_IO, (void *)&dev->flags)
  1411. == 0)))) {
  1412. if (filp->f_flags & O_NONBLOCK)
  1413. rc = -EAGAIN;
  1414. else
  1415. rc = -ERESTARTSYS;
  1416. break;
  1417. }
  1418. if ((rc = set_protocol(dev, &krnptsreq)) != 0) {
  1419. /* auto power_on again */
  1420. dev->mstate = M_FETCH_ATR;
  1421. clear_bit(IS_ATR_VALID, &dev->flags);
  1422. }
  1423. /* release lock */
  1424. clear_bit(LOCK_IO, &dev->flags);
  1425. wake_up_interruptible(&dev->ioq);
  1426. }
  1427. break;
  1428. #ifdef CM4000_DEBUG
  1429. case CM_IOSDBGLVL:
  1430. rc = -ENOTTY;
  1431. break;
  1432. #endif
  1433. default:
  1434. DEBUGP(4, dev, "... in default (unknown IOCTL code)\n");
  1435. rc = -ENOTTY;
  1436. }
  1437. out:
  1438. unlock_kernel();
  1439. return rc;
  1440. }
  1441. static int cmm_open(struct inode *inode, struct file *filp)
  1442. {
  1443. struct cm4000_dev *dev;
  1444. struct pcmcia_device *link;
  1445. int minor = iminor(inode);
  1446. int ret;
  1447. if (minor >= CM4000_MAX_DEV)
  1448. return -ENODEV;
  1449. lock_kernel();
  1450. link = dev_table[minor];
  1451. if (link == NULL || !pcmcia_dev_present(link)) {
  1452. ret = -ENODEV;
  1453. goto out;
  1454. }
  1455. if (link->open) {
  1456. ret = -EBUSY;
  1457. goto out;
  1458. }
  1459. dev = link->priv;
  1460. filp->private_data = dev;
  1461. DEBUGP(2, dev, "-> cmm_open(device=%d.%d process=%s,%d)\n",
  1462. imajor(inode), minor, current->comm, current->pid);
  1463. /* init device variables, they may be "polluted" after close
  1464. * or, the device may never have been closed (i.e. open failed)
  1465. */
  1466. ZERO_DEV(dev);
  1467. /* opening will always block since the
  1468. * monitor will be started by open, which
  1469. * means we have to wait for ATR becoming
  1470. * vaild = block until valid (or card
  1471. * inserted)
  1472. */
  1473. if (filp->f_flags & O_NONBLOCK) {
  1474. ret = -EAGAIN;
  1475. goto out;
  1476. }
  1477. dev->mdelay = T_50MSEC;
  1478. /* start monitoring the cardstatus */
  1479. start_monitor(dev);
  1480. link->open = 1; /* only one open per device */
  1481. DEBUGP(2, dev, "<- cmm_open\n");
  1482. ret = nonseekable_open(inode, filp);
  1483. out:
  1484. unlock_kernel();
  1485. return ret;
  1486. }
  1487. static int cmm_close(struct inode *inode, struct file *filp)
  1488. {
  1489. struct cm4000_dev *dev;
  1490. struct pcmcia_device *link;
  1491. int minor = iminor(inode);
  1492. if (minor >= CM4000_MAX_DEV)
  1493. return -ENODEV;
  1494. link = dev_table[minor];
  1495. if (link == NULL)
  1496. return -ENODEV;
  1497. dev = link->priv;
  1498. DEBUGP(2, dev, "-> cmm_close(maj/min=%d.%d)\n",
  1499. imajor(inode), minor);
  1500. stop_monitor(dev);
  1501. ZERO_DEV(dev);
  1502. link->open = 0; /* only one open per device */
  1503. wake_up(&dev->devq); /* socket removed? */
  1504. DEBUGP(2, dev, "cmm_close\n");
  1505. return 0;
  1506. }
  1507. static void cmm_cm4000_release(struct pcmcia_device * link)
  1508. {
  1509. struct cm4000_dev *dev = link->priv;
  1510. /* dont terminate the monitor, rather rely on
  1511. * close doing that for us.
  1512. */
  1513. DEBUGP(3, dev, "-> cmm_cm4000_release\n");
  1514. while (link->open) {
  1515. printk(KERN_INFO MODULE_NAME ": delaying release until "
  1516. "process has terminated\n");
  1517. /* note: don't interrupt us:
  1518. * close the applications which own
  1519. * the devices _first_ !
  1520. */
  1521. wait_event(dev->devq, (link->open == 0));
  1522. }
  1523. /* dev->devq=NULL; this cannot be zeroed earlier */
  1524. DEBUGP(3, dev, "<- cmm_cm4000_release\n");
  1525. return;
  1526. }
  1527. /*==== Interface to PCMCIA Layer =======================================*/
  1528. static int cm4000_config_check(struct pcmcia_device *p_dev, void *priv_data)
  1529. {
  1530. return pcmcia_request_io(p_dev);
  1531. }
  1532. static int cm4000_config(struct pcmcia_device * link, int devno)
  1533. {
  1534. struct cm4000_dev *dev;
  1535. link->config_flags |= CONF_AUTO_SET_IO;
  1536. /* read the config-tuples */
  1537. if (pcmcia_loop_config(link, cm4000_config_check, NULL))
  1538. goto cs_release;
  1539. if (pcmcia_enable_device(link))
  1540. goto cs_release;
  1541. dev = link->priv;
  1542. return 0;
  1543. cs_release:
  1544. cm4000_release(link);
  1545. return -ENODEV;
  1546. }
  1547. static int cm4000_suspend(struct pcmcia_device *link)
  1548. {
  1549. struct cm4000_dev *dev;
  1550. dev = link->priv;
  1551. stop_monitor(dev);
  1552. return 0;
  1553. }
  1554. static int cm4000_resume(struct pcmcia_device *link)
  1555. {
  1556. struct cm4000_dev *dev;
  1557. dev = link->priv;
  1558. if (link->open)
  1559. start_monitor(dev);
  1560. return 0;
  1561. }
  1562. static void cm4000_release(struct pcmcia_device *link)
  1563. {
  1564. cmm_cm4000_release(link); /* delay release until device closed */
  1565. pcmcia_disable_device(link);
  1566. }
  1567. static int cm4000_probe(struct pcmcia_device *link)
  1568. {
  1569. struct cm4000_dev *dev;
  1570. int i, ret;
  1571. for (i = 0; i < CM4000_MAX_DEV; i++)
  1572. if (dev_table[i] == NULL)
  1573. break;
  1574. if (i == CM4000_MAX_DEV) {
  1575. printk(KERN_NOTICE MODULE_NAME ": all devices in use\n");
  1576. return -ENODEV;
  1577. }
  1578. /* create a new cm4000_cs device */
  1579. dev = kzalloc(sizeof(struct cm4000_dev), GFP_KERNEL);
  1580. if (dev == NULL)
  1581. return -ENOMEM;
  1582. dev->p_dev = link;
  1583. link->priv = dev;
  1584. dev_table[i] = link;
  1585. init_waitqueue_head(&dev->devq);
  1586. init_waitqueue_head(&dev->ioq);
  1587. init_waitqueue_head(&dev->atrq);
  1588. init_waitqueue_head(&dev->readq);
  1589. ret = cm4000_config(link, i);
  1590. if (ret) {
  1591. dev_table[i] = NULL;
  1592. kfree(dev);
  1593. return ret;
  1594. }
  1595. device_create(cmm_class, NULL, MKDEV(major, i), NULL, "cmm%d", i);
  1596. return 0;
  1597. }
  1598. static void cm4000_detach(struct pcmcia_device *link)
  1599. {
  1600. struct cm4000_dev *dev = link->priv;
  1601. int devno;
  1602. /* find device */
  1603. for (devno = 0; devno < CM4000_MAX_DEV; devno++)
  1604. if (dev_table[devno] == link)
  1605. break;
  1606. if (devno == CM4000_MAX_DEV)
  1607. return;
  1608. stop_monitor(dev);
  1609. cm4000_release(link);
  1610. dev_table[devno] = NULL;
  1611. kfree(dev);
  1612. device_destroy(cmm_class, MKDEV(major, devno));
  1613. return;
  1614. }
  1615. static const struct file_operations cm4000_fops = {
  1616. .owner = THIS_MODULE,
  1617. .read = cmm_read,
  1618. .write = cmm_write,
  1619. .unlocked_ioctl = cmm_ioctl,
  1620. .open = cmm_open,
  1621. .release= cmm_close,
  1622. };
  1623. static struct pcmcia_device_id cm4000_ids[] = {
  1624. PCMCIA_DEVICE_MANF_CARD(0x0223, 0x0002),
  1625. PCMCIA_DEVICE_PROD_ID12("CardMan", "4000", 0x2FB368CA, 0xA2BD8C39),
  1626. PCMCIA_DEVICE_NULL,
  1627. };
  1628. MODULE_DEVICE_TABLE(pcmcia, cm4000_ids);
  1629. static struct pcmcia_driver cm4000_driver = {
  1630. .owner = THIS_MODULE,
  1631. .name = "cm4000_cs",
  1632. .probe = cm4000_probe,
  1633. .remove = cm4000_detach,
  1634. .suspend = cm4000_suspend,
  1635. .resume = cm4000_resume,
  1636. .id_table = cm4000_ids,
  1637. };
  1638. static int __init cmm_init(void)
  1639. {
  1640. int rc;
  1641. cmm_class = class_create(THIS_MODULE, "cardman_4000");
  1642. if (IS_ERR(cmm_class))
  1643. return PTR_ERR(cmm_class);
  1644. major = register_chrdev(0, DEVICE_NAME, &cm4000_fops);
  1645. if (major < 0) {
  1646. printk(KERN_WARNING MODULE_NAME
  1647. ": could not get major number\n");
  1648. class_destroy(cmm_class);
  1649. return major;
  1650. }
  1651. rc = pcmcia_register_driver(&cm4000_driver);
  1652. if (rc < 0) {
  1653. unregister_chrdev(major, DEVICE_NAME);
  1654. class_destroy(cmm_class);
  1655. return rc;
  1656. }
  1657. return 0;
  1658. }
  1659. static void __exit cmm_exit(void)
  1660. {
  1661. pcmcia_unregister_driver(&cm4000_driver);
  1662. unregister_chrdev(major, DEVICE_NAME);
  1663. class_destroy(cmm_class);
  1664. };
  1665. module_init(cmm_init);
  1666. module_exit(cmm_exit);
  1667. MODULE_LICENSE("Dual BSD/GPL");