ds2490.c 22 KB

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  1. /*
  2. * dscore.c
  3. *
  4. * Copyright (c) 2004 Evgeniy Polyakov <johnpol@2ka.mipt.ru>
  5. *
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. */
  21. #include <linux/module.h>
  22. #include <linux/kernel.h>
  23. #include <linux/mod_devicetable.h>
  24. #include <linux/usb.h>
  25. #include "../w1_int.h"
  26. #include "../w1.h"
  27. /* COMMAND TYPE CODES */
  28. #define CONTROL_CMD 0x00
  29. #define COMM_CMD 0x01
  30. #define MODE_CMD 0x02
  31. /* CONTROL COMMAND CODES */
  32. #define CTL_RESET_DEVICE 0x0000
  33. #define CTL_START_EXE 0x0001
  34. #define CTL_RESUME_EXE 0x0002
  35. #define CTL_HALT_EXE_IDLE 0x0003
  36. #define CTL_HALT_EXE_DONE 0x0004
  37. #define CTL_FLUSH_COMM_CMDS 0x0007
  38. #define CTL_FLUSH_RCV_BUFFER 0x0008
  39. #define CTL_FLUSH_XMT_BUFFER 0x0009
  40. #define CTL_GET_COMM_CMDS 0x000A
  41. /* MODE COMMAND CODES */
  42. #define MOD_PULSE_EN 0x0000
  43. #define MOD_SPEED_CHANGE_EN 0x0001
  44. #define MOD_1WIRE_SPEED 0x0002
  45. #define MOD_STRONG_PU_DURATION 0x0003
  46. #define MOD_PULLDOWN_SLEWRATE 0x0004
  47. #define MOD_PROG_PULSE_DURATION 0x0005
  48. #define MOD_WRITE1_LOWTIME 0x0006
  49. #define MOD_DSOW0_TREC 0x0007
  50. /* COMMUNICATION COMMAND CODES */
  51. #define COMM_ERROR_ESCAPE 0x0601
  52. #define COMM_SET_DURATION 0x0012
  53. #define COMM_BIT_IO 0x0020
  54. #define COMM_PULSE 0x0030
  55. #define COMM_1_WIRE_RESET 0x0042
  56. #define COMM_BYTE_IO 0x0052
  57. #define COMM_MATCH_ACCESS 0x0064
  58. #define COMM_BLOCK_IO 0x0074
  59. #define COMM_READ_STRAIGHT 0x0080
  60. #define COMM_DO_RELEASE 0x6092
  61. #define COMM_SET_PATH 0x00A2
  62. #define COMM_WRITE_SRAM_PAGE 0x00B2
  63. #define COMM_WRITE_EPROM 0x00C4
  64. #define COMM_READ_CRC_PROT_PAGE 0x00D4
  65. #define COMM_READ_REDIRECT_PAGE_CRC 0x21E4
  66. #define COMM_SEARCH_ACCESS 0x00F4
  67. /* Communication command bits */
  68. #define COMM_TYPE 0x0008
  69. #define COMM_SE 0x0008
  70. #define COMM_D 0x0008
  71. #define COMM_Z 0x0008
  72. #define COMM_CH 0x0008
  73. #define COMM_SM 0x0008
  74. #define COMM_R 0x0008
  75. #define COMM_IM 0x0001
  76. #define COMM_PS 0x4000
  77. #define COMM_PST 0x4000
  78. #define COMM_CIB 0x4000
  79. #define COMM_RTS 0x4000
  80. #define COMM_DT 0x2000
  81. #define COMM_SPU 0x1000
  82. #define COMM_F 0x0800
  83. #define COMM_NTP 0x0400
  84. #define COMM_ICP 0x0200
  85. #define COMM_RST 0x0100
  86. #define PULSE_PROG 0x01
  87. #define PULSE_SPUE 0x02
  88. #define BRANCH_MAIN 0xCC
  89. #define BRANCH_AUX 0x33
  90. /* Status flags */
  91. #define ST_SPUA 0x01 /* Strong Pull-up is active */
  92. #define ST_PRGA 0x02 /* 12V programming pulse is being generated */
  93. #define ST_12VP 0x04 /* external 12V programming voltage is present */
  94. #define ST_PMOD 0x08 /* DS2490 powered from USB and external sources */
  95. #define ST_HALT 0x10 /* DS2490 is currently halted */
  96. #define ST_IDLE 0x20 /* DS2490 is currently idle */
  97. #define ST_EPOF 0x80
  98. /* Result Register flags */
  99. #define RR_DETECT 0xA5 /* New device detected */
  100. #define RR_NRS 0x01 /* Reset no presence or ... */
  101. #define RR_SH 0x02 /* short on reset or set path */
  102. #define RR_APP 0x04 /* alarming presence on reset */
  103. #define RR_VPP 0x08 /* 12V expected not seen */
  104. #define RR_CMP 0x10 /* compare error */
  105. #define RR_CRC 0x20 /* CRC error detected */
  106. #define RR_RDP 0x40 /* redirected page */
  107. #define RR_EOS 0x80 /* end of search error */
  108. #define SPEED_NORMAL 0x00
  109. #define SPEED_FLEXIBLE 0x01
  110. #define SPEED_OVERDRIVE 0x02
  111. #define NUM_EP 4
  112. #define EP_CONTROL 0
  113. #define EP_STATUS 1
  114. #define EP_DATA_OUT 2
  115. #define EP_DATA_IN 3
  116. struct ds_device
  117. {
  118. struct list_head ds_entry;
  119. struct usb_device *udev;
  120. struct usb_interface *intf;
  121. int ep[NUM_EP];
  122. /* Strong PullUp
  123. * 0: pullup not active, else duration in milliseconds
  124. */
  125. int spu_sleep;
  126. struct w1_bus_master master;
  127. };
  128. struct ds_status
  129. {
  130. u8 enable;
  131. u8 speed;
  132. u8 pullup_dur;
  133. u8 ppuls_dur;
  134. u8 pulldown_slew;
  135. u8 write1_time;
  136. u8 write0_time;
  137. u8 reserved0;
  138. u8 status;
  139. u8 command0;
  140. u8 command1;
  141. u8 command_buffer_status;
  142. u8 data_out_buffer_status;
  143. u8 data_in_buffer_status;
  144. u8 reserved1;
  145. u8 reserved2;
  146. };
  147. static struct usb_device_id ds_id_table [] = {
  148. { USB_DEVICE(0x04fa, 0x2490) },
  149. { },
  150. };
  151. MODULE_DEVICE_TABLE(usb, ds_id_table);
  152. static int ds_probe(struct usb_interface *, const struct usb_device_id *);
  153. static void ds_disconnect(struct usb_interface *);
  154. static int ds_send_control(struct ds_device *, u16, u16);
  155. static int ds_send_control_cmd(struct ds_device *, u16, u16);
  156. static LIST_HEAD(ds_devices);
  157. static DEFINE_MUTEX(ds_mutex);
  158. static struct usb_driver ds_driver = {
  159. .name = "DS9490R",
  160. .probe = ds_probe,
  161. .disconnect = ds_disconnect,
  162. .id_table = ds_id_table,
  163. };
  164. static int ds_send_control_cmd(struct ds_device *dev, u16 value, u16 index)
  165. {
  166. int err;
  167. err = usb_control_msg(dev->udev, usb_sndctrlpipe(dev->udev, dev->ep[EP_CONTROL]),
  168. CONTROL_CMD, 0x40, value, index, NULL, 0, 1000);
  169. if (err < 0) {
  170. printk(KERN_ERR "Failed to send command control message %x.%x: err=%d.\n",
  171. value, index, err);
  172. return err;
  173. }
  174. return err;
  175. }
  176. static int ds_send_control_mode(struct ds_device *dev, u16 value, u16 index)
  177. {
  178. int err;
  179. err = usb_control_msg(dev->udev, usb_sndctrlpipe(dev->udev, dev->ep[EP_CONTROL]),
  180. MODE_CMD, 0x40, value, index, NULL, 0, 1000);
  181. if (err < 0) {
  182. printk(KERN_ERR "Failed to send mode control message %x.%x: err=%d.\n",
  183. value, index, err);
  184. return err;
  185. }
  186. return err;
  187. }
  188. static int ds_send_control(struct ds_device *dev, u16 value, u16 index)
  189. {
  190. int err;
  191. err = usb_control_msg(dev->udev, usb_sndctrlpipe(dev->udev, dev->ep[EP_CONTROL]),
  192. COMM_CMD, 0x40, value, index, NULL, 0, 1000);
  193. if (err < 0) {
  194. printk(KERN_ERR "Failed to send control message %x.%x: err=%d.\n",
  195. value, index, err);
  196. return err;
  197. }
  198. return err;
  199. }
  200. static int ds_recv_status_nodump(struct ds_device *dev, struct ds_status *st,
  201. unsigned char *buf, int size)
  202. {
  203. int count, err;
  204. memset(st, 0, sizeof(*st));
  205. count = 0;
  206. err = usb_bulk_msg(dev->udev, usb_rcvbulkpipe(dev->udev, dev->ep[EP_STATUS]), buf, size, &count, 100);
  207. if (err < 0) {
  208. printk(KERN_ERR "Failed to read 1-wire data from 0x%x: err=%d.\n", dev->ep[EP_STATUS], err);
  209. return err;
  210. }
  211. if (count >= sizeof(*st))
  212. memcpy(st, buf, sizeof(*st));
  213. return count;
  214. }
  215. static inline void ds_print_msg(unsigned char *buf, unsigned char *str, int off)
  216. {
  217. printk(KERN_INFO "%45s: %8x\n", str, buf[off]);
  218. }
  219. static void ds_dump_status(struct ds_device *dev, unsigned char *buf, int count)
  220. {
  221. int i;
  222. printk(KERN_INFO "0x%x: count=%d, status: ", dev->ep[EP_STATUS], count);
  223. for (i=0; i<count; ++i)
  224. printk("%02x ", buf[i]);
  225. printk(KERN_INFO "\n");
  226. if (count >= 16) {
  227. ds_print_msg(buf, "enable flag", 0);
  228. ds_print_msg(buf, "1-wire speed", 1);
  229. ds_print_msg(buf, "strong pullup duration", 2);
  230. ds_print_msg(buf, "programming pulse duration", 3);
  231. ds_print_msg(buf, "pulldown slew rate control", 4);
  232. ds_print_msg(buf, "write-1 low time", 5);
  233. ds_print_msg(buf, "data sample offset/write-0 recovery time",
  234. 6);
  235. ds_print_msg(buf, "reserved (test register)", 7);
  236. ds_print_msg(buf, "device status flags", 8);
  237. ds_print_msg(buf, "communication command byte 1", 9);
  238. ds_print_msg(buf, "communication command byte 2", 10);
  239. ds_print_msg(buf, "communication command buffer status", 11);
  240. ds_print_msg(buf, "1-wire data output buffer status", 12);
  241. ds_print_msg(buf, "1-wire data input buffer status", 13);
  242. ds_print_msg(buf, "reserved", 14);
  243. ds_print_msg(buf, "reserved", 15);
  244. }
  245. for (i = 16; i < count; ++i) {
  246. if (buf[i] == RR_DETECT) {
  247. ds_print_msg(buf, "new device detect", i);
  248. continue;
  249. }
  250. ds_print_msg(buf, "Result Register Value: ", i);
  251. if (buf[i] & RR_NRS)
  252. printk(KERN_INFO "NRS: Reset no presence or ...\n");
  253. if (buf[i] & RR_SH)
  254. printk(KERN_INFO "SH: short on reset or set path\n");
  255. if (buf[i] & RR_APP)
  256. printk(KERN_INFO "APP: alarming presence on reset\n");
  257. if (buf[i] & RR_VPP)
  258. printk(KERN_INFO "VPP: 12V expected not seen\n");
  259. if (buf[i] & RR_CMP)
  260. printk(KERN_INFO "CMP: compare error\n");
  261. if (buf[i] & RR_CRC)
  262. printk(KERN_INFO "CRC: CRC error detected\n");
  263. if (buf[i] & RR_RDP)
  264. printk(KERN_INFO "RDP: redirected page\n");
  265. if (buf[i] & RR_EOS)
  266. printk(KERN_INFO "EOS: end of search error\n");
  267. }
  268. }
  269. static int ds_recv_data(struct ds_device *dev, unsigned char *buf, int size)
  270. {
  271. int count, err;
  272. struct ds_status st;
  273. count = 0;
  274. err = usb_bulk_msg(dev->udev, usb_rcvbulkpipe(dev->udev, dev->ep[EP_DATA_IN]),
  275. buf, size, &count, 1000);
  276. if (err < 0) {
  277. u8 buf[0x20];
  278. int count;
  279. printk(KERN_INFO "Clearing ep0x%x.\n", dev->ep[EP_DATA_IN]);
  280. usb_clear_halt(dev->udev, usb_rcvbulkpipe(dev->udev, dev->ep[EP_DATA_IN]));
  281. count = ds_recv_status_nodump(dev, &st, buf, sizeof(buf));
  282. ds_dump_status(dev, buf, count);
  283. return err;
  284. }
  285. #if 0
  286. {
  287. int i;
  288. printk("%s: count=%d: ", __func__, count);
  289. for (i=0; i<count; ++i)
  290. printk("%02x ", buf[i]);
  291. printk("\n");
  292. }
  293. #endif
  294. return count;
  295. }
  296. static int ds_send_data(struct ds_device *dev, unsigned char *buf, int len)
  297. {
  298. int count, err;
  299. count = 0;
  300. err = usb_bulk_msg(dev->udev, usb_sndbulkpipe(dev->udev, dev->ep[EP_DATA_OUT]), buf, len, &count, 1000);
  301. if (err < 0) {
  302. printk(KERN_ERR "Failed to write 1-wire data to ep0x%x: "
  303. "err=%d.\n", dev->ep[EP_DATA_OUT], err);
  304. return err;
  305. }
  306. return err;
  307. }
  308. #if 0
  309. int ds_stop_pulse(struct ds_device *dev, int limit)
  310. {
  311. struct ds_status st;
  312. int count = 0, err = 0;
  313. u8 buf[0x20];
  314. do {
  315. err = ds_send_control(dev, CTL_HALT_EXE_IDLE, 0);
  316. if (err)
  317. break;
  318. err = ds_send_control(dev, CTL_RESUME_EXE, 0);
  319. if (err)
  320. break;
  321. err = ds_recv_status_nodump(dev, &st, buf, sizeof(buf));
  322. if (err)
  323. break;
  324. if ((st.status & ST_SPUA) == 0) {
  325. err = ds_send_control_mode(dev, MOD_PULSE_EN, 0);
  326. if (err)
  327. break;
  328. }
  329. } while(++count < limit);
  330. return err;
  331. }
  332. int ds_detect(struct ds_device *dev, struct ds_status *st)
  333. {
  334. int err;
  335. err = ds_send_control_cmd(dev, CTL_RESET_DEVICE, 0);
  336. if (err)
  337. return err;
  338. err = ds_send_control(dev, COMM_SET_DURATION | COMM_IM, 0);
  339. if (err)
  340. return err;
  341. err = ds_send_control(dev, COMM_SET_DURATION | COMM_IM | COMM_TYPE, 0x40);
  342. if (err)
  343. return err;
  344. err = ds_send_control_mode(dev, MOD_PULSE_EN, PULSE_PROG);
  345. if (err)
  346. return err;
  347. err = ds_dump_status(dev, st);
  348. return err;
  349. }
  350. #endif /* 0 */
  351. static int ds_wait_status(struct ds_device *dev, struct ds_status *st)
  352. {
  353. u8 buf[0x20];
  354. int err, count = 0;
  355. do {
  356. err = ds_recv_status_nodump(dev, st, buf, sizeof(buf));
  357. #if 0
  358. if (err >= 0) {
  359. int i;
  360. printk("0x%x: count=%d, status: ", dev->ep[EP_STATUS], err);
  361. for (i=0; i<err; ++i)
  362. printk("%02x ", buf[i]);
  363. printk("\n");
  364. }
  365. #endif
  366. } while(!(buf[0x08] & 0x20) && !(err < 0) && ++count < 100);
  367. if (err >= 16 && st->status & ST_EPOF) {
  368. printk(KERN_INFO "Resetting device after ST_EPOF.\n");
  369. ds_send_control_cmd(dev, CTL_RESET_DEVICE, 0);
  370. /* Always dump the device status. */
  371. count = 101;
  372. }
  373. /* Dump the status for errors or if there is extended return data.
  374. * The extended status includes new device detection (maybe someone
  375. * can do something with it).
  376. */
  377. if (err > 16 || count >= 100 || err < 0)
  378. ds_dump_status(dev, buf, err);
  379. /* Extended data isn't an error. Well, a short is, but the dump
  380. * would have already told the user that and we can't do anything
  381. * about it in software anyway.
  382. */
  383. if (count >= 100 || err < 0)
  384. return -1;
  385. else
  386. return 0;
  387. }
  388. static int ds_reset(struct ds_device *dev, struct ds_status *st)
  389. {
  390. int err;
  391. //err = ds_send_control(dev, COMM_1_WIRE_RESET | COMM_F | COMM_IM | COMM_SE, SPEED_FLEXIBLE);
  392. err = ds_send_control(dev, 0x43, SPEED_NORMAL);
  393. if (err)
  394. return err;
  395. ds_wait_status(dev, st);
  396. #if 0
  397. if (st->command_buffer_status) {
  398. printk(KERN_INFO "Short circuit.\n");
  399. return -EIO;
  400. }
  401. #endif
  402. return 0;
  403. }
  404. #if 0
  405. static int ds_set_speed(struct ds_device *dev, int speed)
  406. {
  407. int err;
  408. if (speed != SPEED_NORMAL && speed != SPEED_FLEXIBLE && speed != SPEED_OVERDRIVE)
  409. return -EINVAL;
  410. if (speed != SPEED_OVERDRIVE)
  411. speed = SPEED_FLEXIBLE;
  412. speed &= 0xff;
  413. err = ds_send_control_mode(dev, MOD_1WIRE_SPEED, speed);
  414. if (err)
  415. return err;
  416. return err;
  417. }
  418. #endif /* 0 */
  419. static int ds_set_pullup(struct ds_device *dev, int delay)
  420. {
  421. int err;
  422. u8 del = 1 + (u8)(delay >> 4);
  423. dev->spu_sleep = 0;
  424. err = ds_send_control_mode(dev, MOD_PULSE_EN, delay ? PULSE_SPUE : 0);
  425. if (err)
  426. return err;
  427. if (delay) {
  428. err = ds_send_control(dev, COMM_SET_DURATION | COMM_IM, del);
  429. if (err)
  430. return err;
  431. /* Just storing delay would not get the trunication and
  432. * roundup.
  433. */
  434. dev->spu_sleep = del<<4;
  435. }
  436. return err;
  437. }
  438. static int ds_touch_bit(struct ds_device *dev, u8 bit, u8 *tbit)
  439. {
  440. int err;
  441. struct ds_status st;
  442. err = ds_send_control(dev, COMM_BIT_IO | COMM_IM | (bit ? COMM_D : 0),
  443. 0);
  444. if (err)
  445. return err;
  446. ds_wait_status(dev, &st);
  447. err = ds_recv_data(dev, tbit, sizeof(*tbit));
  448. if (err < 0)
  449. return err;
  450. return 0;
  451. }
  452. #if 0
  453. static int ds_write_bit(struct ds_device *dev, u8 bit)
  454. {
  455. int err;
  456. struct ds_status st;
  457. /* Set COMM_ICP to write without a readback. Note, this will
  458. * produce one time slot, a down followed by an up with COMM_D
  459. * only determing the timing.
  460. */
  461. err = ds_send_control(dev, COMM_BIT_IO | COMM_IM | COMM_ICP |
  462. (bit ? COMM_D : 0), 0);
  463. if (err)
  464. return err;
  465. ds_wait_status(dev, &st);
  466. return 0;
  467. }
  468. #endif
  469. static int ds_write_byte(struct ds_device *dev, u8 byte)
  470. {
  471. int err;
  472. struct ds_status st;
  473. u8 rbyte;
  474. err = ds_send_control(dev, COMM_BYTE_IO | COMM_IM | COMM_SPU, byte);
  475. if (err)
  476. return err;
  477. if (dev->spu_sleep)
  478. msleep(dev->spu_sleep);
  479. err = ds_wait_status(dev, &st);
  480. if (err)
  481. return err;
  482. err = ds_recv_data(dev, &rbyte, sizeof(rbyte));
  483. if (err < 0)
  484. return err;
  485. return !(byte == rbyte);
  486. }
  487. static int ds_read_byte(struct ds_device *dev, u8 *byte)
  488. {
  489. int err;
  490. struct ds_status st;
  491. err = ds_send_control(dev, COMM_BYTE_IO | COMM_IM , 0xff);
  492. if (err)
  493. return err;
  494. ds_wait_status(dev, &st);
  495. err = ds_recv_data(dev, byte, sizeof(*byte));
  496. if (err < 0)
  497. return err;
  498. return 0;
  499. }
  500. static int ds_read_block(struct ds_device *dev, u8 *buf, int len)
  501. {
  502. struct ds_status st;
  503. int err;
  504. if (len > 64*1024)
  505. return -E2BIG;
  506. memset(buf, 0xFF, len);
  507. err = ds_send_data(dev, buf, len);
  508. if (err < 0)
  509. return err;
  510. err = ds_send_control(dev, COMM_BLOCK_IO | COMM_IM, len);
  511. if (err)
  512. return err;
  513. ds_wait_status(dev, &st);
  514. memset(buf, 0x00, len);
  515. err = ds_recv_data(dev, buf, len);
  516. return err;
  517. }
  518. static int ds_write_block(struct ds_device *dev, u8 *buf, int len)
  519. {
  520. int err;
  521. struct ds_status st;
  522. err = ds_send_data(dev, buf, len);
  523. if (err < 0)
  524. return err;
  525. ds_wait_status(dev, &st);
  526. err = ds_send_control(dev, COMM_BLOCK_IO | COMM_IM | COMM_SPU, len);
  527. if (err)
  528. return err;
  529. if (dev->spu_sleep)
  530. msleep(dev->spu_sleep);
  531. ds_wait_status(dev, &st);
  532. err = ds_recv_data(dev, buf, len);
  533. if (err < 0)
  534. return err;
  535. return !(err == len);
  536. }
  537. #if 0
  538. static int ds_search(struct ds_device *dev, u64 init, u64 *buf, u8 id_number, int conditional_search)
  539. {
  540. int err;
  541. u16 value, index;
  542. struct ds_status st;
  543. memset(buf, 0, sizeof(buf));
  544. err = ds_send_data(ds_dev, (unsigned char *)&init, 8);
  545. if (err)
  546. return err;
  547. ds_wait_status(ds_dev, &st);
  548. value = COMM_SEARCH_ACCESS | COMM_IM | COMM_SM | COMM_F | COMM_RTS;
  549. index = (conditional_search ? 0xEC : 0xF0) | (id_number << 8);
  550. err = ds_send_control(ds_dev, value, index);
  551. if (err)
  552. return err;
  553. ds_wait_status(ds_dev, &st);
  554. err = ds_recv_data(ds_dev, (unsigned char *)buf, 8*id_number);
  555. if (err < 0)
  556. return err;
  557. return err/8;
  558. }
  559. static int ds_match_access(struct ds_device *dev, u64 init)
  560. {
  561. int err;
  562. struct ds_status st;
  563. err = ds_send_data(dev, (unsigned char *)&init, sizeof(init));
  564. if (err)
  565. return err;
  566. ds_wait_status(dev, &st);
  567. err = ds_send_control(dev, COMM_MATCH_ACCESS | COMM_IM | COMM_RST, 0x0055);
  568. if (err)
  569. return err;
  570. ds_wait_status(dev, &st);
  571. return 0;
  572. }
  573. static int ds_set_path(struct ds_device *dev, u64 init)
  574. {
  575. int err;
  576. struct ds_status st;
  577. u8 buf[9];
  578. memcpy(buf, &init, 8);
  579. buf[8] = BRANCH_MAIN;
  580. err = ds_send_data(dev, buf, sizeof(buf));
  581. if (err)
  582. return err;
  583. ds_wait_status(dev, &st);
  584. err = ds_send_control(dev, COMM_SET_PATH | COMM_IM | COMM_RST, 0);
  585. if (err)
  586. return err;
  587. ds_wait_status(dev, &st);
  588. return 0;
  589. }
  590. #endif /* 0 */
  591. static u8 ds9490r_touch_bit(void *data, u8 bit)
  592. {
  593. u8 ret;
  594. struct ds_device *dev = data;
  595. if (ds_touch_bit(dev, bit, &ret))
  596. return 0;
  597. return ret;
  598. }
  599. #if 0
  600. static void ds9490r_write_bit(void *data, u8 bit)
  601. {
  602. struct ds_device *dev = data;
  603. ds_write_bit(dev, bit);
  604. }
  605. static u8 ds9490r_read_bit(void *data)
  606. {
  607. struct ds_device *dev = data;
  608. int err;
  609. u8 bit = 0;
  610. err = ds_touch_bit(dev, 1, &bit);
  611. if (err)
  612. return 0;
  613. return bit & 1;
  614. }
  615. #endif
  616. static void ds9490r_write_byte(void *data, u8 byte)
  617. {
  618. struct ds_device *dev = data;
  619. ds_write_byte(dev, byte);
  620. }
  621. static u8 ds9490r_read_byte(void *data)
  622. {
  623. struct ds_device *dev = data;
  624. int err;
  625. u8 byte = 0;
  626. err = ds_read_byte(dev, &byte);
  627. if (err)
  628. return 0;
  629. return byte;
  630. }
  631. static void ds9490r_write_block(void *data, const u8 *buf, int len)
  632. {
  633. struct ds_device *dev = data;
  634. ds_write_block(dev, (u8 *)buf, len);
  635. }
  636. static u8 ds9490r_read_block(void *data, u8 *buf, int len)
  637. {
  638. struct ds_device *dev = data;
  639. int err;
  640. err = ds_read_block(dev, buf, len);
  641. if (err < 0)
  642. return 0;
  643. return len;
  644. }
  645. static u8 ds9490r_reset(void *data)
  646. {
  647. struct ds_device *dev = data;
  648. struct ds_status st;
  649. int err;
  650. memset(&st, 0, sizeof(st));
  651. err = ds_reset(dev, &st);
  652. if (err)
  653. return 1;
  654. return 0;
  655. }
  656. static u8 ds9490r_set_pullup(void *data, int delay)
  657. {
  658. struct ds_device *dev = data;
  659. if (ds_set_pullup(dev, delay))
  660. return 1;
  661. return 0;
  662. }
  663. static int ds_w1_init(struct ds_device *dev)
  664. {
  665. memset(&dev->master, 0, sizeof(struct w1_bus_master));
  666. dev->master.data = dev;
  667. dev->master.touch_bit = &ds9490r_touch_bit;
  668. /* read_bit and write_bit in w1_bus_master are expected to set and
  669. * sample the line level. For write_bit that means it is expected to
  670. * set it to that value and leave it there. ds2490 only supports an
  671. * individual time slot at the lowest level. The requirement from
  672. * pulling the bus state down to reading the state is 15us, something
  673. * that isn't realistic on the USB bus anyway.
  674. dev->master.read_bit = &ds9490r_read_bit;
  675. dev->master.write_bit = &ds9490r_write_bit;
  676. */
  677. dev->master.read_byte = &ds9490r_read_byte;
  678. dev->master.write_byte = &ds9490r_write_byte;
  679. dev->master.read_block = &ds9490r_read_block;
  680. dev->master.write_block = &ds9490r_write_block;
  681. dev->master.reset_bus = &ds9490r_reset;
  682. dev->master.set_pullup = &ds9490r_set_pullup;
  683. return w1_add_master_device(&dev->master);
  684. }
  685. static void ds_w1_fini(struct ds_device *dev)
  686. {
  687. w1_remove_master_device(&dev->master);
  688. }
  689. static int ds_probe(struct usb_interface *intf,
  690. const struct usb_device_id *udev_id)
  691. {
  692. struct usb_device *udev = interface_to_usbdev(intf);
  693. struct usb_endpoint_descriptor *endpoint;
  694. struct usb_host_interface *iface_desc;
  695. struct ds_device *dev;
  696. int i, err;
  697. dev = kmalloc(sizeof(struct ds_device), GFP_KERNEL);
  698. if (!dev) {
  699. printk(KERN_INFO "Failed to allocate new DS9490R structure.\n");
  700. return -ENOMEM;
  701. }
  702. dev->spu_sleep = 0;
  703. dev->udev = usb_get_dev(udev);
  704. if (!dev->udev) {
  705. err = -ENOMEM;
  706. goto err_out_free;
  707. }
  708. memset(dev->ep, 0, sizeof(dev->ep));
  709. usb_set_intfdata(intf, dev);
  710. err = usb_set_interface(dev->udev, intf->altsetting[0].desc.bInterfaceNumber, 3);
  711. if (err) {
  712. printk(KERN_ERR "Failed to set alternative setting 3 for %d interface: err=%d.\n",
  713. intf->altsetting[0].desc.bInterfaceNumber, err);
  714. goto err_out_clear;
  715. }
  716. err = usb_reset_configuration(dev->udev);
  717. if (err) {
  718. printk(KERN_ERR "Failed to reset configuration: err=%d.\n", err);
  719. goto err_out_clear;
  720. }
  721. iface_desc = &intf->altsetting[0];
  722. if (iface_desc->desc.bNumEndpoints != NUM_EP-1) {
  723. printk(KERN_INFO "Num endpoints=%d. It is not DS9490R.\n", iface_desc->desc.bNumEndpoints);
  724. err = -EINVAL;
  725. goto err_out_clear;
  726. }
  727. /*
  728. * This loop doesn'd show control 0 endpoint,
  729. * so we will fill only 1-3 endpoints entry.
  730. */
  731. for (i = 0; i < iface_desc->desc.bNumEndpoints; ++i) {
  732. endpoint = &iface_desc->endpoint[i].desc;
  733. dev->ep[i+1] = endpoint->bEndpointAddress;
  734. #if 0
  735. printk("%d: addr=%x, size=%d, dir=%s, type=%x\n",
  736. i, endpoint->bEndpointAddress, le16_to_cpu(endpoint->wMaxPacketSize),
  737. (endpoint->bEndpointAddress & USB_DIR_IN)?"IN":"OUT",
  738. endpoint->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK);
  739. #endif
  740. }
  741. err = ds_w1_init(dev);
  742. if (err)
  743. goto err_out_clear;
  744. mutex_lock(&ds_mutex);
  745. list_add_tail(&dev->ds_entry, &ds_devices);
  746. mutex_unlock(&ds_mutex);
  747. return 0;
  748. err_out_clear:
  749. usb_set_intfdata(intf, NULL);
  750. usb_put_dev(dev->udev);
  751. err_out_free:
  752. kfree(dev);
  753. return err;
  754. }
  755. static void ds_disconnect(struct usb_interface *intf)
  756. {
  757. struct ds_device *dev;
  758. dev = usb_get_intfdata(intf);
  759. if (!dev)
  760. return;
  761. mutex_lock(&ds_mutex);
  762. list_del(&dev->ds_entry);
  763. mutex_unlock(&ds_mutex);
  764. ds_w1_fini(dev);
  765. usb_set_intfdata(intf, NULL);
  766. usb_put_dev(dev->udev);
  767. kfree(dev);
  768. }
  769. static int ds_init(void)
  770. {
  771. int err;
  772. err = usb_register(&ds_driver);
  773. if (err) {
  774. printk(KERN_INFO "Failed to register DS9490R USB device: err=%d.\n", err);
  775. return err;
  776. }
  777. return 0;
  778. }
  779. static void ds_fini(void)
  780. {
  781. usb_deregister(&ds_driver);
  782. }
  783. module_init(ds_init);
  784. module_exit(ds_fini);
  785. MODULE_LICENSE("GPL");
  786. MODULE_AUTHOR("Evgeniy Polyakov <johnpol@2ka.mipt.ru>");
  787. MODULE_DESCRIPTION("DS2490 USB <-> W1 bus master driver (DS9490*)");