dw2102.c 51 KB

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  1. /* DVB USB framework compliant Linux driver for the
  2. * DVBWorld DVB-S 2101, 2102, DVB-S2 2104, DVB-C 3101,
  3. * TeVii S600, S630, S650, S660, S480, S421, S632
  4. * Prof 1100, 7500,
  5. * Geniatech SU3000 Cards
  6. * Copyright (C) 2008-2012 Igor M. Liplianin (liplianin@me.by)
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms of the GNU General Public License as published by the
  10. * Free Software Foundation, version 2.
  11. *
  12. * see Documentation/dvb/README.dvb-usb for more information
  13. */
  14. #include "dw2102.h"
  15. #include "si21xx.h"
  16. #include "stv0299.h"
  17. #include "z0194a.h"
  18. #include "stv0288.h"
  19. #include "stb6000.h"
  20. #include "eds1547.h"
  21. #include "cx24116.h"
  22. #include "tda1002x.h"
  23. #include "mt312.h"
  24. #include "zl10039.h"
  25. #include "ts2020.h"
  26. #include "ds3000.h"
  27. #include "stv0900.h"
  28. #include "stv6110.h"
  29. #include "stb6100.h"
  30. #include "stb6100_proc.h"
  31. #include "m88rs2000.h"
  32. /* Max transfer size done by I2C transfer functions */
  33. #define MAX_XFER_SIZE 64
  34. #ifndef USB_PID_DW2102
  35. #define USB_PID_DW2102 0x2102
  36. #endif
  37. #ifndef USB_PID_DW2104
  38. #define USB_PID_DW2104 0x2104
  39. #endif
  40. #ifndef USB_PID_DW3101
  41. #define USB_PID_DW3101 0x3101
  42. #endif
  43. #ifndef USB_PID_CINERGY_S
  44. #define USB_PID_CINERGY_S 0x0064
  45. #endif
  46. #ifndef USB_PID_TEVII_S630
  47. #define USB_PID_TEVII_S630 0xd630
  48. #endif
  49. #ifndef USB_PID_TEVII_S650
  50. #define USB_PID_TEVII_S650 0xd650
  51. #endif
  52. #ifndef USB_PID_TEVII_S660
  53. #define USB_PID_TEVII_S660 0xd660
  54. #endif
  55. #ifndef USB_PID_TEVII_S480_1
  56. #define USB_PID_TEVII_S480_1 0xd481
  57. #endif
  58. #ifndef USB_PID_TEVII_S480_2
  59. #define USB_PID_TEVII_S480_2 0xd482
  60. #endif
  61. #ifndef USB_PID_PROF_1100
  62. #define USB_PID_PROF_1100 0xb012
  63. #endif
  64. #ifndef USB_PID_TEVII_S421
  65. #define USB_PID_TEVII_S421 0xd421
  66. #endif
  67. #ifndef USB_PID_TEVII_S632
  68. #define USB_PID_TEVII_S632 0xd632
  69. #endif
  70. #ifndef USB_PID_GOTVIEW_SAT_HD
  71. #define USB_PID_GOTVIEW_SAT_HD 0x5456
  72. #endif
  73. #define DW210X_READ_MSG 0
  74. #define DW210X_WRITE_MSG 1
  75. #define REG_1F_SYMBOLRATE_BYTE0 0x1f
  76. #define REG_20_SYMBOLRATE_BYTE1 0x20
  77. #define REG_21_SYMBOLRATE_BYTE2 0x21
  78. /* on my own*/
  79. #define DW2102_VOLTAGE_CTRL (0x1800)
  80. #define SU3000_STREAM_CTRL (0x1900)
  81. #define DW2102_RC_QUERY (0x1a00)
  82. #define DW2102_LED_CTRL (0x1b00)
  83. #define DW2101_FIRMWARE "dvb-usb-dw2101.fw"
  84. #define DW2102_FIRMWARE "dvb-usb-dw2102.fw"
  85. #define DW2104_FIRMWARE "dvb-usb-dw2104.fw"
  86. #define DW3101_FIRMWARE "dvb-usb-dw3101.fw"
  87. #define S630_FIRMWARE "dvb-usb-s630.fw"
  88. #define S660_FIRMWARE "dvb-usb-s660.fw"
  89. #define P1100_FIRMWARE "dvb-usb-p1100.fw"
  90. #define P7500_FIRMWARE "dvb-usb-p7500.fw"
  91. #define err_str "did not find the firmware file. (%s) " \
  92. "Please see linux/Documentation/dvb/ for more details " \
  93. "on firmware-problems."
  94. struct rc_map_dvb_usb_table_table {
  95. struct rc_map_table *rc_keys;
  96. int rc_keys_size;
  97. };
  98. struct su3000_state {
  99. u8 initialized;
  100. };
  101. struct s6x0_state {
  102. int (*old_set_voltage)(struct dvb_frontend *f, fe_sec_voltage_t v);
  103. };
  104. /* debug */
  105. static int dvb_usb_dw2102_debug;
  106. module_param_named(debug, dvb_usb_dw2102_debug, int, 0644);
  107. MODULE_PARM_DESC(debug, "set debugging level (1=info 2=xfer 4=rc(or-able))."
  108. DVB_USB_DEBUG_STATUS);
  109. /* keymaps */
  110. static int ir_keymap;
  111. module_param_named(keymap, ir_keymap, int, 0644);
  112. MODULE_PARM_DESC(keymap, "set keymap 0=default 1=dvbworld 2=tevii 3=tbs ..."
  113. " 256=none");
  114. /* demod probe */
  115. static int demod_probe = 1;
  116. module_param_named(demod, demod_probe, int, 0644);
  117. MODULE_PARM_DESC(demod, "demod to probe (1=cx24116 2=stv0903+stv6110 "
  118. "4=stv0903+stb6100(or-able)).");
  119. DVB_DEFINE_MOD_OPT_ADAPTER_NR(adapter_nr);
  120. static int dw210x_op_rw(struct usb_device *dev, u8 request, u16 value,
  121. u16 index, u8 * data, u16 len, int flags)
  122. {
  123. int ret;
  124. u8 *u8buf;
  125. unsigned int pipe = (flags == DW210X_READ_MSG) ?
  126. usb_rcvctrlpipe(dev, 0) : usb_sndctrlpipe(dev, 0);
  127. u8 request_type = (flags == DW210X_READ_MSG) ? USB_DIR_IN : USB_DIR_OUT;
  128. u8buf = kmalloc(len, GFP_KERNEL);
  129. if (!u8buf)
  130. return -ENOMEM;
  131. if (flags == DW210X_WRITE_MSG)
  132. memcpy(u8buf, data, len);
  133. ret = usb_control_msg(dev, pipe, request, request_type | USB_TYPE_VENDOR,
  134. value, index , u8buf, len, 2000);
  135. if (flags == DW210X_READ_MSG)
  136. memcpy(data, u8buf, len);
  137. kfree(u8buf);
  138. return ret;
  139. }
  140. /* I2C */
  141. static int dw2102_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[],
  142. int num)
  143. {
  144. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  145. int i = 0;
  146. u8 buf6[] = {0x2c, 0x05, 0xc0, 0, 0, 0, 0};
  147. u16 value;
  148. if (!d)
  149. return -ENODEV;
  150. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  151. return -EAGAIN;
  152. switch (num) {
  153. case 2:
  154. /* read stv0299 register */
  155. value = msg[0].buf[0];/* register */
  156. for (i = 0; i < msg[1].len; i++) {
  157. dw210x_op_rw(d->udev, 0xb5, value + i, 0,
  158. buf6, 2, DW210X_READ_MSG);
  159. msg[1].buf[i] = buf6[0];
  160. }
  161. break;
  162. case 1:
  163. switch (msg[0].addr) {
  164. case 0x68:
  165. /* write to stv0299 register */
  166. buf6[0] = 0x2a;
  167. buf6[1] = msg[0].buf[0];
  168. buf6[2] = msg[0].buf[1];
  169. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  170. buf6, 3, DW210X_WRITE_MSG);
  171. break;
  172. case 0x60:
  173. if (msg[0].flags == 0) {
  174. /* write to tuner pll */
  175. buf6[0] = 0x2c;
  176. buf6[1] = 5;
  177. buf6[2] = 0xc0;
  178. buf6[3] = msg[0].buf[0];
  179. buf6[4] = msg[0].buf[1];
  180. buf6[5] = msg[0].buf[2];
  181. buf6[6] = msg[0].buf[3];
  182. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  183. buf6, 7, DW210X_WRITE_MSG);
  184. } else {
  185. /* read from tuner */
  186. dw210x_op_rw(d->udev, 0xb5, 0, 0,
  187. buf6, 1, DW210X_READ_MSG);
  188. msg[0].buf[0] = buf6[0];
  189. }
  190. break;
  191. case (DW2102_RC_QUERY):
  192. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  193. buf6, 2, DW210X_READ_MSG);
  194. msg[0].buf[0] = buf6[0];
  195. msg[0].buf[1] = buf6[1];
  196. break;
  197. case (DW2102_VOLTAGE_CTRL):
  198. buf6[0] = 0x30;
  199. buf6[1] = msg[0].buf[0];
  200. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  201. buf6, 2, DW210X_WRITE_MSG);
  202. break;
  203. }
  204. break;
  205. }
  206. mutex_unlock(&d->i2c_mutex);
  207. return num;
  208. }
  209. static int dw2102_serit_i2c_transfer(struct i2c_adapter *adap,
  210. struct i2c_msg msg[], int num)
  211. {
  212. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  213. u8 buf6[] = {0, 0, 0, 0, 0, 0, 0};
  214. if (!d)
  215. return -ENODEV;
  216. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  217. return -EAGAIN;
  218. switch (num) {
  219. case 2:
  220. /* read si2109 register by number */
  221. buf6[0] = msg[0].addr << 1;
  222. buf6[1] = msg[0].len;
  223. buf6[2] = msg[0].buf[0];
  224. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  225. buf6, msg[0].len + 2, DW210X_WRITE_MSG);
  226. /* read si2109 register */
  227. dw210x_op_rw(d->udev, 0xc3, 0xd0, 0,
  228. buf6, msg[1].len + 2, DW210X_READ_MSG);
  229. memcpy(msg[1].buf, buf6 + 2, msg[1].len);
  230. break;
  231. case 1:
  232. switch (msg[0].addr) {
  233. case 0x68:
  234. /* write to si2109 register */
  235. buf6[0] = msg[0].addr << 1;
  236. buf6[1] = msg[0].len;
  237. memcpy(buf6 + 2, msg[0].buf, msg[0].len);
  238. dw210x_op_rw(d->udev, 0xc2, 0, 0, buf6,
  239. msg[0].len + 2, DW210X_WRITE_MSG);
  240. break;
  241. case(DW2102_RC_QUERY):
  242. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  243. buf6, 2, DW210X_READ_MSG);
  244. msg[0].buf[0] = buf6[0];
  245. msg[0].buf[1] = buf6[1];
  246. break;
  247. case(DW2102_VOLTAGE_CTRL):
  248. buf6[0] = 0x30;
  249. buf6[1] = msg[0].buf[0];
  250. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  251. buf6, 2, DW210X_WRITE_MSG);
  252. break;
  253. }
  254. break;
  255. }
  256. mutex_unlock(&d->i2c_mutex);
  257. return num;
  258. }
  259. static int dw2102_earda_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[], int num)
  260. {
  261. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  262. if (!d)
  263. return -ENODEV;
  264. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  265. return -EAGAIN;
  266. switch (num) {
  267. case 2: {
  268. /* read */
  269. /* first write first register number */
  270. u8 ibuf[MAX_XFER_SIZE], obuf[3];
  271. if (2 + msg[1].len > sizeof(ibuf)) {
  272. warn("i2c rd: len=%d is too big!\n",
  273. msg[1].len);
  274. return -EOPNOTSUPP;
  275. }
  276. obuf[0] = msg[0].addr << 1;
  277. obuf[1] = msg[0].len;
  278. obuf[2] = msg[0].buf[0];
  279. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  280. obuf, msg[0].len + 2, DW210X_WRITE_MSG);
  281. /* second read registers */
  282. dw210x_op_rw(d->udev, 0xc3, 0xd1 , 0,
  283. ibuf, msg[1].len + 2, DW210X_READ_MSG);
  284. memcpy(msg[1].buf, ibuf + 2, msg[1].len);
  285. break;
  286. }
  287. case 1:
  288. switch (msg[0].addr) {
  289. case 0x68: {
  290. /* write to register */
  291. u8 obuf[MAX_XFER_SIZE];
  292. if (2 + msg[0].len > sizeof(obuf)) {
  293. warn("i2c wr: len=%d is too big!\n",
  294. msg[1].len);
  295. return -EOPNOTSUPP;
  296. }
  297. obuf[0] = msg[0].addr << 1;
  298. obuf[1] = msg[0].len;
  299. memcpy(obuf + 2, msg[0].buf, msg[0].len);
  300. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  301. obuf, msg[0].len + 2, DW210X_WRITE_MSG);
  302. break;
  303. }
  304. case 0x61: {
  305. /* write to tuner */
  306. u8 obuf[MAX_XFER_SIZE];
  307. if (2 + msg[0].len > sizeof(obuf)) {
  308. warn("i2c wr: len=%d is too big!\n",
  309. msg[1].len);
  310. return -EOPNOTSUPP;
  311. }
  312. obuf[0] = msg[0].addr << 1;
  313. obuf[1] = msg[0].len;
  314. memcpy(obuf + 2, msg[0].buf, msg[0].len);
  315. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  316. obuf, msg[0].len + 2, DW210X_WRITE_MSG);
  317. break;
  318. }
  319. case(DW2102_RC_QUERY): {
  320. u8 ibuf[2];
  321. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  322. ibuf, 2, DW210X_READ_MSG);
  323. memcpy(msg[0].buf, ibuf , 2);
  324. break;
  325. }
  326. case(DW2102_VOLTAGE_CTRL): {
  327. u8 obuf[2];
  328. obuf[0] = 0x30;
  329. obuf[1] = msg[0].buf[0];
  330. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  331. obuf, 2, DW210X_WRITE_MSG);
  332. break;
  333. }
  334. }
  335. break;
  336. }
  337. mutex_unlock(&d->i2c_mutex);
  338. return num;
  339. }
  340. static int dw2104_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[], int num)
  341. {
  342. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  343. int len, i, j;
  344. if (!d)
  345. return -ENODEV;
  346. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  347. return -EAGAIN;
  348. for (j = 0; j < num; j++) {
  349. switch (msg[j].addr) {
  350. case(DW2102_RC_QUERY): {
  351. u8 ibuf[2];
  352. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  353. ibuf, 2, DW210X_READ_MSG);
  354. memcpy(msg[j].buf, ibuf , 2);
  355. break;
  356. }
  357. case(DW2102_VOLTAGE_CTRL): {
  358. u8 obuf[2];
  359. obuf[0] = 0x30;
  360. obuf[1] = msg[j].buf[0];
  361. dw210x_op_rw(d->udev, 0xb2, 0, 0,
  362. obuf, 2, DW210X_WRITE_MSG);
  363. break;
  364. }
  365. /*case 0x55: cx24116
  366. case 0x6a: stv0903
  367. case 0x68: ds3000, stv0903
  368. case 0x60: ts2020, stv6110, stb6100 */
  369. default: {
  370. if (msg[j].flags == I2C_M_RD) {
  371. /* read registers */
  372. u8 ibuf[MAX_XFER_SIZE];
  373. if (2 + msg[j].len > sizeof(ibuf)) {
  374. warn("i2c rd: len=%d is too big!\n",
  375. msg[j].len);
  376. return -EOPNOTSUPP;
  377. }
  378. dw210x_op_rw(d->udev, 0xc3,
  379. (msg[j].addr << 1) + 1, 0,
  380. ibuf, msg[j].len + 2,
  381. DW210X_READ_MSG);
  382. memcpy(msg[j].buf, ibuf + 2, msg[j].len);
  383. mdelay(10);
  384. } else if (((msg[j].buf[0] == 0xb0) &&
  385. (msg[j].addr == 0x68)) ||
  386. ((msg[j].buf[0] == 0xf7) &&
  387. (msg[j].addr == 0x55))) {
  388. /* write firmware */
  389. u8 obuf[19];
  390. obuf[0] = msg[j].addr << 1;
  391. obuf[1] = (msg[j].len > 15 ? 17 : msg[j].len);
  392. obuf[2] = msg[j].buf[0];
  393. len = msg[j].len - 1;
  394. i = 1;
  395. do {
  396. memcpy(obuf + 3, msg[j].buf + i,
  397. (len > 16 ? 16 : len));
  398. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  399. obuf, (len > 16 ? 16 : len) + 3,
  400. DW210X_WRITE_MSG);
  401. i += 16;
  402. len -= 16;
  403. } while (len > 0);
  404. } else {
  405. /* write registers */
  406. u8 obuf[MAX_XFER_SIZE];
  407. if (2 + msg[j].len > sizeof(obuf)) {
  408. warn("i2c wr: len=%d is too big!\n",
  409. msg[j].len);
  410. return -EOPNOTSUPP;
  411. }
  412. obuf[0] = msg[j].addr << 1;
  413. obuf[1] = msg[j].len;
  414. memcpy(obuf + 2, msg[j].buf, msg[j].len);
  415. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  416. obuf, msg[j].len + 2,
  417. DW210X_WRITE_MSG);
  418. }
  419. break;
  420. }
  421. }
  422. }
  423. mutex_unlock(&d->i2c_mutex);
  424. return num;
  425. }
  426. static int dw3101_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[],
  427. int num)
  428. {
  429. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  430. int i;
  431. if (!d)
  432. return -ENODEV;
  433. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  434. return -EAGAIN;
  435. switch (num) {
  436. case 2: {
  437. /* read */
  438. /* first write first register number */
  439. u8 ibuf[MAX_XFER_SIZE], obuf[3];
  440. if (2 + msg[1].len > sizeof(ibuf)) {
  441. warn("i2c rd: len=%d is too big!\n",
  442. msg[1].len);
  443. return -EOPNOTSUPP;
  444. }
  445. obuf[0] = msg[0].addr << 1;
  446. obuf[1] = msg[0].len;
  447. obuf[2] = msg[0].buf[0];
  448. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  449. obuf, msg[0].len + 2, DW210X_WRITE_MSG);
  450. /* second read registers */
  451. dw210x_op_rw(d->udev, 0xc3, 0x19 , 0,
  452. ibuf, msg[1].len + 2, DW210X_READ_MSG);
  453. memcpy(msg[1].buf, ibuf + 2, msg[1].len);
  454. break;
  455. }
  456. case 1:
  457. switch (msg[0].addr) {
  458. case 0x60:
  459. case 0x0c: {
  460. /* write to register */
  461. u8 obuf[MAX_XFER_SIZE];
  462. if (2 + msg[0].len > sizeof(obuf)) {
  463. warn("i2c wr: len=%d is too big!\n",
  464. msg[0].len);
  465. return -EOPNOTSUPP;
  466. }
  467. obuf[0] = msg[0].addr << 1;
  468. obuf[1] = msg[0].len;
  469. memcpy(obuf + 2, msg[0].buf, msg[0].len);
  470. dw210x_op_rw(d->udev, 0xc2, 0, 0,
  471. obuf, msg[0].len + 2, DW210X_WRITE_MSG);
  472. break;
  473. }
  474. case(DW2102_RC_QUERY): {
  475. u8 ibuf[2];
  476. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  477. ibuf, 2, DW210X_READ_MSG);
  478. memcpy(msg[0].buf, ibuf , 2);
  479. break;
  480. }
  481. }
  482. break;
  483. }
  484. for (i = 0; i < num; i++) {
  485. deb_xfer("%02x:%02x: %s ", i, msg[i].addr,
  486. msg[i].flags == 0 ? ">>>" : "<<<");
  487. debug_dump(msg[i].buf, msg[i].len, deb_xfer);
  488. }
  489. mutex_unlock(&d->i2c_mutex);
  490. return num;
  491. }
  492. static int s6x0_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[],
  493. int num)
  494. {
  495. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  496. struct usb_device *udev;
  497. int len, i, j;
  498. if (!d)
  499. return -ENODEV;
  500. udev = d->udev;
  501. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  502. return -EAGAIN;
  503. for (j = 0; j < num; j++) {
  504. switch (msg[j].addr) {
  505. case (DW2102_RC_QUERY): {
  506. u8 ibuf[5];
  507. dw210x_op_rw(d->udev, 0xb8, 0, 0,
  508. ibuf, 5, DW210X_READ_MSG);
  509. memcpy(msg[j].buf, ibuf + 3, 2);
  510. break;
  511. }
  512. case (DW2102_VOLTAGE_CTRL): {
  513. u8 obuf[2];
  514. obuf[0] = 1;
  515. obuf[1] = msg[j].buf[1];/* off-on */
  516. dw210x_op_rw(d->udev, 0x8a, 0, 0,
  517. obuf, 2, DW210X_WRITE_MSG);
  518. obuf[0] = 3;
  519. obuf[1] = msg[j].buf[0];/* 13v-18v */
  520. dw210x_op_rw(d->udev, 0x8a, 0, 0,
  521. obuf, 2, DW210X_WRITE_MSG);
  522. break;
  523. }
  524. case (DW2102_LED_CTRL): {
  525. u8 obuf[2];
  526. obuf[0] = 5;
  527. obuf[1] = msg[j].buf[0];
  528. dw210x_op_rw(d->udev, 0x8a, 0, 0,
  529. obuf, 2, DW210X_WRITE_MSG);
  530. break;
  531. }
  532. /*case 0x55: cx24116
  533. case 0x6a: stv0903
  534. case 0x68: ds3000, stv0903, rs2000
  535. case 0x60: ts2020, stv6110, stb6100
  536. case 0xa0: eeprom */
  537. default: {
  538. if (msg[j].flags == I2C_M_RD) {
  539. /* read registers */
  540. u8 ibuf[MAX_XFER_SIZE];
  541. if (msg[j].len > sizeof(ibuf)) {
  542. warn("i2c rd: len=%d is too big!\n",
  543. msg[j].len);
  544. return -EOPNOTSUPP;
  545. }
  546. dw210x_op_rw(d->udev, 0x91, 0, 0,
  547. ibuf, msg[j].len,
  548. DW210X_READ_MSG);
  549. memcpy(msg[j].buf, ibuf, msg[j].len);
  550. break;
  551. } else if ((msg[j].buf[0] == 0xb0) &&
  552. (msg[j].addr == 0x68)) {
  553. /* write firmware */
  554. u8 obuf[19];
  555. obuf[0] = (msg[j].len > 16 ?
  556. 18 : msg[j].len + 1);
  557. obuf[1] = msg[j].addr << 1;
  558. obuf[2] = msg[j].buf[0];
  559. len = msg[j].len - 1;
  560. i = 1;
  561. do {
  562. memcpy(obuf + 3, msg[j].buf + i,
  563. (len > 16 ? 16 : len));
  564. dw210x_op_rw(d->udev, 0x80, 0, 0,
  565. obuf, (len > 16 ? 16 : len) + 3,
  566. DW210X_WRITE_MSG);
  567. i += 16;
  568. len -= 16;
  569. } while (len > 0);
  570. } else if (j < (num - 1)) {
  571. /* write register addr before read */
  572. u8 obuf[MAX_XFER_SIZE];
  573. if (2 + msg[j].len > sizeof(obuf)) {
  574. warn("i2c wr: len=%d is too big!\n",
  575. msg[j].len);
  576. return -EOPNOTSUPP;
  577. }
  578. obuf[0] = msg[j + 1].len;
  579. obuf[1] = (msg[j].addr << 1);
  580. memcpy(obuf + 2, msg[j].buf, msg[j].len);
  581. dw210x_op_rw(d->udev,
  582. udev->descriptor.idProduct ==
  583. 0x7500 ? 0x92 : 0x90, 0, 0,
  584. obuf, msg[j].len + 2,
  585. DW210X_WRITE_MSG);
  586. break;
  587. } else {
  588. /* write registers */
  589. u8 obuf[MAX_XFER_SIZE];
  590. if (2 + msg[j].len > sizeof(obuf)) {
  591. warn("i2c wr: len=%d is too big!\n",
  592. msg[j].len);
  593. return -EOPNOTSUPP;
  594. }
  595. obuf[0] = msg[j].len + 1;
  596. obuf[1] = (msg[j].addr << 1);
  597. memcpy(obuf + 2, msg[j].buf, msg[j].len);
  598. dw210x_op_rw(d->udev, 0x80, 0, 0,
  599. obuf, msg[j].len + 2,
  600. DW210X_WRITE_MSG);
  601. break;
  602. }
  603. break;
  604. }
  605. }
  606. }
  607. mutex_unlock(&d->i2c_mutex);
  608. return num;
  609. }
  610. static int su3000_i2c_transfer(struct i2c_adapter *adap, struct i2c_msg msg[],
  611. int num)
  612. {
  613. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  614. u8 obuf[0x40], ibuf[0x40];
  615. if (!d)
  616. return -ENODEV;
  617. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  618. return -EAGAIN;
  619. switch (num) {
  620. case 1:
  621. switch (msg[0].addr) {
  622. case SU3000_STREAM_CTRL:
  623. obuf[0] = msg[0].buf[0] + 0x36;
  624. obuf[1] = 3;
  625. obuf[2] = 0;
  626. if (dvb_usb_generic_rw(d, obuf, 3, ibuf, 0, 0) < 0)
  627. err("i2c transfer failed.");
  628. break;
  629. case DW2102_RC_QUERY:
  630. obuf[0] = 0x10;
  631. if (dvb_usb_generic_rw(d, obuf, 1, ibuf, 2, 0) < 0)
  632. err("i2c transfer failed.");
  633. msg[0].buf[1] = ibuf[0];
  634. msg[0].buf[0] = ibuf[1];
  635. break;
  636. default:
  637. /* always i2c write*/
  638. obuf[0] = 0x08;
  639. obuf[1] = msg[0].addr;
  640. obuf[2] = msg[0].len;
  641. memcpy(&obuf[3], msg[0].buf, msg[0].len);
  642. if (dvb_usb_generic_rw(d, obuf, msg[0].len + 3,
  643. ibuf, 1, 0) < 0)
  644. err("i2c transfer failed.");
  645. }
  646. break;
  647. case 2:
  648. /* always i2c read */
  649. obuf[0] = 0x09;
  650. obuf[1] = msg[0].len;
  651. obuf[2] = msg[1].len;
  652. obuf[3] = msg[0].addr;
  653. memcpy(&obuf[4], msg[0].buf, msg[0].len);
  654. if (dvb_usb_generic_rw(d, obuf, msg[0].len + 4,
  655. ibuf, msg[1].len + 1, 0) < 0)
  656. err("i2c transfer failed.");
  657. memcpy(msg[1].buf, &ibuf[1], msg[1].len);
  658. break;
  659. default:
  660. warn("more than 2 i2c messages at a time is not handled yet.");
  661. break;
  662. }
  663. mutex_unlock(&d->i2c_mutex);
  664. return num;
  665. }
  666. static u32 dw210x_i2c_func(struct i2c_adapter *adapter)
  667. {
  668. return I2C_FUNC_I2C;
  669. }
  670. static struct i2c_algorithm dw2102_i2c_algo = {
  671. .master_xfer = dw2102_i2c_transfer,
  672. .functionality = dw210x_i2c_func,
  673. };
  674. static struct i2c_algorithm dw2102_serit_i2c_algo = {
  675. .master_xfer = dw2102_serit_i2c_transfer,
  676. .functionality = dw210x_i2c_func,
  677. };
  678. static struct i2c_algorithm dw2102_earda_i2c_algo = {
  679. .master_xfer = dw2102_earda_i2c_transfer,
  680. .functionality = dw210x_i2c_func,
  681. };
  682. static struct i2c_algorithm dw2104_i2c_algo = {
  683. .master_xfer = dw2104_i2c_transfer,
  684. .functionality = dw210x_i2c_func,
  685. };
  686. static struct i2c_algorithm dw3101_i2c_algo = {
  687. .master_xfer = dw3101_i2c_transfer,
  688. .functionality = dw210x_i2c_func,
  689. };
  690. static struct i2c_algorithm s6x0_i2c_algo = {
  691. .master_xfer = s6x0_i2c_transfer,
  692. .functionality = dw210x_i2c_func,
  693. };
  694. static struct i2c_algorithm su3000_i2c_algo = {
  695. .master_xfer = su3000_i2c_transfer,
  696. .functionality = dw210x_i2c_func,
  697. };
  698. static int dw210x_read_mac_address(struct dvb_usb_device *d, u8 mac[6])
  699. {
  700. int i;
  701. u8 ibuf[] = {0, 0};
  702. u8 eeprom[256], eepromline[16];
  703. for (i = 0; i < 256; i++) {
  704. if (dw210x_op_rw(d->udev, 0xb6, 0xa0 , i, ibuf, 2, DW210X_READ_MSG) < 0) {
  705. err("read eeprom failed.");
  706. return -1;
  707. } else {
  708. eepromline[i%16] = ibuf[0];
  709. eeprom[i] = ibuf[0];
  710. }
  711. if ((i % 16) == 15) {
  712. deb_xfer("%02x: ", i - 15);
  713. debug_dump(eepromline, 16, deb_xfer);
  714. }
  715. }
  716. memcpy(mac, eeprom + 8, 6);
  717. return 0;
  718. };
  719. static int s6x0_read_mac_address(struct dvb_usb_device *d, u8 mac[6])
  720. {
  721. int i, ret;
  722. u8 ibuf[] = { 0 }, obuf[] = { 0 };
  723. u8 eeprom[256], eepromline[16];
  724. struct i2c_msg msg[] = {
  725. {
  726. .addr = 0xa0 >> 1,
  727. .flags = 0,
  728. .buf = obuf,
  729. .len = 1,
  730. }, {
  731. .addr = 0xa0 >> 1,
  732. .flags = I2C_M_RD,
  733. .buf = ibuf,
  734. .len = 1,
  735. }
  736. };
  737. for (i = 0; i < 256; i++) {
  738. obuf[0] = i;
  739. ret = s6x0_i2c_transfer(&d->i2c_adap, msg, 2);
  740. if (ret != 2) {
  741. err("read eeprom failed.");
  742. return -1;
  743. } else {
  744. eepromline[i % 16] = ibuf[0];
  745. eeprom[i] = ibuf[0];
  746. }
  747. if ((i % 16) == 15) {
  748. deb_xfer("%02x: ", i - 15);
  749. debug_dump(eepromline, 16, deb_xfer);
  750. }
  751. }
  752. memcpy(mac, eeprom + 16, 6);
  753. return 0;
  754. };
  755. static int su3000_streaming_ctrl(struct dvb_usb_adapter *adap, int onoff)
  756. {
  757. static u8 command_start[] = {0x00};
  758. static u8 command_stop[] = {0x01};
  759. struct i2c_msg msg = {
  760. .addr = SU3000_STREAM_CTRL,
  761. .flags = 0,
  762. .buf = onoff ? command_start : command_stop,
  763. .len = 1
  764. };
  765. i2c_transfer(&adap->dev->i2c_adap, &msg, 1);
  766. return 0;
  767. }
  768. static int su3000_power_ctrl(struct dvb_usb_device *d, int i)
  769. {
  770. struct su3000_state *state = (struct su3000_state *)d->priv;
  771. u8 obuf[] = {0xde, 0};
  772. info("%s: %d, initialized %d\n", __func__, i, state->initialized);
  773. if (i && !state->initialized) {
  774. state->initialized = 1;
  775. /* reset board */
  776. dvb_usb_generic_rw(d, obuf, 2, NULL, 0, 0);
  777. }
  778. return 0;
  779. }
  780. static int su3000_read_mac_address(struct dvb_usb_device *d, u8 mac[6])
  781. {
  782. int i;
  783. u8 obuf[] = { 0x1f, 0xf0 };
  784. u8 ibuf[] = { 0 };
  785. struct i2c_msg msg[] = {
  786. {
  787. .addr = 0x51,
  788. .flags = 0,
  789. .buf = obuf,
  790. .len = 2,
  791. }, {
  792. .addr = 0x51,
  793. .flags = I2C_M_RD,
  794. .buf = ibuf,
  795. .len = 1,
  796. }
  797. };
  798. for (i = 0; i < 6; i++) {
  799. obuf[1] = 0xf0 + i;
  800. if (i2c_transfer(&d->i2c_adap, msg, 2) != 2)
  801. break;
  802. else
  803. mac[i] = ibuf[0];
  804. debug_dump(mac, 6, printk);
  805. }
  806. return 0;
  807. }
  808. static int su3000_identify_state(struct usb_device *udev,
  809. struct dvb_usb_device_properties *props,
  810. struct dvb_usb_device_description **desc,
  811. int *cold)
  812. {
  813. info("%s\n", __func__);
  814. *cold = 0;
  815. return 0;
  816. }
  817. static int dw210x_set_voltage(struct dvb_frontend *fe, fe_sec_voltage_t voltage)
  818. {
  819. static u8 command_13v[] = {0x00, 0x01};
  820. static u8 command_18v[] = {0x01, 0x01};
  821. static u8 command_off[] = {0x00, 0x00};
  822. struct i2c_msg msg = {
  823. .addr = DW2102_VOLTAGE_CTRL,
  824. .flags = 0,
  825. .buf = command_off,
  826. .len = 2,
  827. };
  828. struct dvb_usb_adapter *udev_adap =
  829. (struct dvb_usb_adapter *)(fe->dvb->priv);
  830. if (voltage == SEC_VOLTAGE_18)
  831. msg.buf = command_18v;
  832. else if (voltage == SEC_VOLTAGE_13)
  833. msg.buf = command_13v;
  834. i2c_transfer(&udev_adap->dev->i2c_adap, &msg, 1);
  835. return 0;
  836. }
  837. static int s660_set_voltage(struct dvb_frontend *fe, fe_sec_voltage_t voltage)
  838. {
  839. struct dvb_usb_adapter *d =
  840. (struct dvb_usb_adapter *)(fe->dvb->priv);
  841. struct s6x0_state *st = (struct s6x0_state *)d->dev->priv;
  842. dw210x_set_voltage(fe, voltage);
  843. if (st->old_set_voltage)
  844. st->old_set_voltage(fe, voltage);
  845. return 0;
  846. }
  847. static void dw210x_led_ctrl(struct dvb_frontend *fe, int offon)
  848. {
  849. static u8 led_off[] = { 0 };
  850. static u8 led_on[] = { 1 };
  851. struct i2c_msg msg = {
  852. .addr = DW2102_LED_CTRL,
  853. .flags = 0,
  854. .buf = led_off,
  855. .len = 1
  856. };
  857. struct dvb_usb_adapter *udev_adap =
  858. (struct dvb_usb_adapter *)(fe->dvb->priv);
  859. if (offon)
  860. msg.buf = led_on;
  861. i2c_transfer(&udev_adap->dev->i2c_adap, &msg, 1);
  862. }
  863. static struct stv0299_config sharp_z0194a_config = {
  864. .demod_address = 0x68,
  865. .inittab = sharp_z0194a_inittab,
  866. .mclk = 88000000UL,
  867. .invert = 1,
  868. .skip_reinit = 0,
  869. .lock_output = STV0299_LOCKOUTPUT_1,
  870. .volt13_op0_op1 = STV0299_VOLT13_OP1,
  871. .min_delay_ms = 100,
  872. .set_symbol_rate = sharp_z0194a_set_symbol_rate,
  873. };
  874. static struct cx24116_config dw2104_config = {
  875. .demod_address = 0x55,
  876. .mpg_clk_pos_pol = 0x01,
  877. };
  878. static struct si21xx_config serit_sp1511lhb_config = {
  879. .demod_address = 0x68,
  880. .min_delay_ms = 100,
  881. };
  882. static struct tda10023_config dw3101_tda10023_config = {
  883. .demod_address = 0x0c,
  884. .invert = 1,
  885. };
  886. static struct mt312_config zl313_config = {
  887. .demod_address = 0x0e,
  888. };
  889. static struct ds3000_config dw2104_ds3000_config = {
  890. .demod_address = 0x68,
  891. };
  892. static struct ts2020_config dw2104_ts2020_config = {
  893. .tuner_address = 0x60,
  894. .clk_out_div = 1,
  895. .frequency_div = 1060000,
  896. };
  897. static struct ds3000_config s660_ds3000_config = {
  898. .demod_address = 0x68,
  899. .ci_mode = 1,
  900. .set_lock_led = dw210x_led_ctrl,
  901. };
  902. static struct ts2020_config s660_ts2020_config = {
  903. .tuner_address = 0x60,
  904. .clk_out_div = 1,
  905. .frequency_div = 1146000,
  906. };
  907. static struct stv0900_config dw2104a_stv0900_config = {
  908. .demod_address = 0x6a,
  909. .demod_mode = 0,
  910. .xtal = 27000000,
  911. .clkmode = 3,/* 0-CLKI, 2-XTALI, else AUTO */
  912. .diseqc_mode = 2,/* 2/3 PWM */
  913. .tun1_maddress = 0,/* 0x60 */
  914. .tun1_adc = 0,/* 2 Vpp */
  915. .path1_mode = 3,
  916. };
  917. static struct stb6100_config dw2104a_stb6100_config = {
  918. .tuner_address = 0x60,
  919. .refclock = 27000000,
  920. };
  921. static struct stv0900_config dw2104_stv0900_config = {
  922. .demod_address = 0x68,
  923. .demod_mode = 0,
  924. .xtal = 8000000,
  925. .clkmode = 3,
  926. .diseqc_mode = 2,
  927. .tun1_maddress = 0,
  928. .tun1_adc = 1,/* 1 Vpp */
  929. .path1_mode = 3,
  930. };
  931. static struct stv6110_config dw2104_stv6110_config = {
  932. .i2c_address = 0x60,
  933. .mclk = 16000000,
  934. .clk_div = 1,
  935. };
  936. static struct stv0900_config prof_7500_stv0900_config = {
  937. .demod_address = 0x6a,
  938. .demod_mode = 0,
  939. .xtal = 27000000,
  940. .clkmode = 3,/* 0-CLKI, 2-XTALI, else AUTO */
  941. .diseqc_mode = 2,/* 2/3 PWM */
  942. .tun1_maddress = 0,/* 0x60 */
  943. .tun1_adc = 0,/* 2 Vpp */
  944. .path1_mode = 3,
  945. .tun1_type = 3,
  946. .set_lock_led = dw210x_led_ctrl,
  947. };
  948. static struct ds3000_config su3000_ds3000_config = {
  949. .demod_address = 0x68,
  950. .ci_mode = 1,
  951. .set_lock_led = dw210x_led_ctrl,
  952. };
  953. static u8 m88rs2000_inittab[] = {
  954. DEMOD_WRITE, 0x9a, 0x30,
  955. DEMOD_WRITE, 0x00, 0x01,
  956. WRITE_DELAY, 0x19, 0x00,
  957. DEMOD_WRITE, 0x00, 0x00,
  958. DEMOD_WRITE, 0x9a, 0xb0,
  959. DEMOD_WRITE, 0x81, 0xc1,
  960. DEMOD_WRITE, 0x81, 0x81,
  961. DEMOD_WRITE, 0x86, 0xc6,
  962. DEMOD_WRITE, 0x9a, 0x30,
  963. DEMOD_WRITE, 0xf0, 0x80,
  964. DEMOD_WRITE, 0xf1, 0xbf,
  965. DEMOD_WRITE, 0xb0, 0x45,
  966. DEMOD_WRITE, 0xb2, 0x01,
  967. DEMOD_WRITE, 0x9a, 0xb0,
  968. 0xff, 0xaa, 0xff
  969. };
  970. static struct m88rs2000_config s421_m88rs2000_config = {
  971. .demod_addr = 0x68,
  972. .inittab = m88rs2000_inittab,
  973. };
  974. static int dw2104_frontend_attach(struct dvb_usb_adapter *d)
  975. {
  976. struct dvb_tuner_ops *tuner_ops = NULL;
  977. if (demod_probe & 4) {
  978. d->fe_adap[0].fe = dvb_attach(stv0900_attach, &dw2104a_stv0900_config,
  979. &d->dev->i2c_adap, 0);
  980. if (d->fe_adap[0].fe != NULL) {
  981. if (dvb_attach(stb6100_attach, d->fe_adap[0].fe,
  982. &dw2104a_stb6100_config,
  983. &d->dev->i2c_adap)) {
  984. tuner_ops = &d->fe_adap[0].fe->ops.tuner_ops;
  985. tuner_ops->set_frequency = stb6100_set_freq;
  986. tuner_ops->get_frequency = stb6100_get_freq;
  987. tuner_ops->set_bandwidth = stb6100_set_bandw;
  988. tuner_ops->get_bandwidth = stb6100_get_bandw;
  989. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  990. info("Attached STV0900+STB6100!\n");
  991. return 0;
  992. }
  993. }
  994. }
  995. if (demod_probe & 2) {
  996. d->fe_adap[0].fe = dvb_attach(stv0900_attach, &dw2104_stv0900_config,
  997. &d->dev->i2c_adap, 0);
  998. if (d->fe_adap[0].fe != NULL) {
  999. if (dvb_attach(stv6110_attach, d->fe_adap[0].fe,
  1000. &dw2104_stv6110_config,
  1001. &d->dev->i2c_adap)) {
  1002. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1003. info("Attached STV0900+STV6110A!\n");
  1004. return 0;
  1005. }
  1006. }
  1007. }
  1008. if (demod_probe & 1) {
  1009. d->fe_adap[0].fe = dvb_attach(cx24116_attach, &dw2104_config,
  1010. &d->dev->i2c_adap);
  1011. if (d->fe_adap[0].fe != NULL) {
  1012. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1013. info("Attached cx24116!\n");
  1014. return 0;
  1015. }
  1016. }
  1017. d->fe_adap[0].fe = dvb_attach(ds3000_attach, &dw2104_ds3000_config,
  1018. &d->dev->i2c_adap);
  1019. if (d->fe_adap[0].fe != NULL) {
  1020. dvb_attach(ts2020_attach, d->fe_adap[0].fe,
  1021. &dw2104_ts2020_config, &d->dev->i2c_adap);
  1022. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1023. info("Attached DS3000!\n");
  1024. return 0;
  1025. }
  1026. return -EIO;
  1027. }
  1028. static struct dvb_usb_device_properties dw2102_properties;
  1029. static struct dvb_usb_device_properties dw2104_properties;
  1030. static struct dvb_usb_device_properties s6x0_properties;
  1031. static int dw2102_frontend_attach(struct dvb_usb_adapter *d)
  1032. {
  1033. if (dw2102_properties.i2c_algo == &dw2102_serit_i2c_algo) {
  1034. /*dw2102_properties.adapter->tuner_attach = NULL;*/
  1035. d->fe_adap[0].fe = dvb_attach(si21xx_attach, &serit_sp1511lhb_config,
  1036. &d->dev->i2c_adap);
  1037. if (d->fe_adap[0].fe != NULL) {
  1038. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1039. info("Attached si21xx!\n");
  1040. return 0;
  1041. }
  1042. }
  1043. if (dw2102_properties.i2c_algo == &dw2102_earda_i2c_algo) {
  1044. d->fe_adap[0].fe = dvb_attach(stv0288_attach, &earda_config,
  1045. &d->dev->i2c_adap);
  1046. if (d->fe_adap[0].fe != NULL) {
  1047. if (dvb_attach(stb6000_attach, d->fe_adap[0].fe, 0x61,
  1048. &d->dev->i2c_adap)) {
  1049. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1050. info("Attached stv0288!\n");
  1051. return 0;
  1052. }
  1053. }
  1054. }
  1055. if (dw2102_properties.i2c_algo == &dw2102_i2c_algo) {
  1056. /*dw2102_properties.adapter->tuner_attach = dw2102_tuner_attach;*/
  1057. d->fe_adap[0].fe = dvb_attach(stv0299_attach, &sharp_z0194a_config,
  1058. &d->dev->i2c_adap);
  1059. if (d->fe_adap[0].fe != NULL) {
  1060. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1061. info("Attached stv0299!\n");
  1062. return 0;
  1063. }
  1064. }
  1065. return -EIO;
  1066. }
  1067. static int dw3101_frontend_attach(struct dvb_usb_adapter *d)
  1068. {
  1069. d->fe_adap[0].fe = dvb_attach(tda10023_attach, &dw3101_tda10023_config,
  1070. &d->dev->i2c_adap, 0x48);
  1071. if (d->fe_adap[0].fe != NULL) {
  1072. info("Attached tda10023!\n");
  1073. return 0;
  1074. }
  1075. return -EIO;
  1076. }
  1077. static int zl100313_frontend_attach(struct dvb_usb_adapter *d)
  1078. {
  1079. d->fe_adap[0].fe = dvb_attach(mt312_attach, &zl313_config,
  1080. &d->dev->i2c_adap);
  1081. if (d->fe_adap[0].fe != NULL) {
  1082. if (dvb_attach(zl10039_attach, d->fe_adap[0].fe, 0x60,
  1083. &d->dev->i2c_adap)) {
  1084. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1085. info("Attached zl100313+zl10039!\n");
  1086. return 0;
  1087. }
  1088. }
  1089. return -EIO;
  1090. }
  1091. static int stv0288_frontend_attach(struct dvb_usb_adapter *d)
  1092. {
  1093. u8 obuf[] = {7, 1};
  1094. d->fe_adap[0].fe = dvb_attach(stv0288_attach, &earda_config,
  1095. &d->dev->i2c_adap);
  1096. if (d->fe_adap[0].fe == NULL)
  1097. return -EIO;
  1098. if (NULL == dvb_attach(stb6000_attach, d->fe_adap[0].fe, 0x61, &d->dev->i2c_adap))
  1099. return -EIO;
  1100. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1101. dw210x_op_rw(d->dev->udev, 0x8a, 0, 0, obuf, 2, DW210X_WRITE_MSG);
  1102. info("Attached stv0288+stb6000!\n");
  1103. return 0;
  1104. }
  1105. static int ds3000_frontend_attach(struct dvb_usb_adapter *d)
  1106. {
  1107. struct s6x0_state *st = (struct s6x0_state *)d->dev->priv;
  1108. u8 obuf[] = {7, 1};
  1109. d->fe_adap[0].fe = dvb_attach(ds3000_attach, &s660_ds3000_config,
  1110. &d->dev->i2c_adap);
  1111. if (d->fe_adap[0].fe == NULL)
  1112. return -EIO;
  1113. dvb_attach(ts2020_attach, d->fe_adap[0].fe, &s660_ts2020_config,
  1114. &d->dev->i2c_adap);
  1115. st->old_set_voltage = d->fe_adap[0].fe->ops.set_voltage;
  1116. d->fe_adap[0].fe->ops.set_voltage = s660_set_voltage;
  1117. dw210x_op_rw(d->dev->udev, 0x8a, 0, 0, obuf, 2, DW210X_WRITE_MSG);
  1118. info("Attached ds3000+ts2020!\n");
  1119. return 0;
  1120. }
  1121. static int prof_7500_frontend_attach(struct dvb_usb_adapter *d)
  1122. {
  1123. u8 obuf[] = {7, 1};
  1124. d->fe_adap[0].fe = dvb_attach(stv0900_attach, &prof_7500_stv0900_config,
  1125. &d->dev->i2c_adap, 0);
  1126. if (d->fe_adap[0].fe == NULL)
  1127. return -EIO;
  1128. d->fe_adap[0].fe->ops.set_voltage = dw210x_set_voltage;
  1129. dw210x_op_rw(d->dev->udev, 0x8a, 0, 0, obuf, 2, DW210X_WRITE_MSG);
  1130. info("Attached STV0900+STB6100A!\n");
  1131. return 0;
  1132. }
  1133. static int su3000_frontend_attach(struct dvb_usb_adapter *d)
  1134. {
  1135. u8 obuf[3] = { 0xe, 0x80, 0 };
  1136. u8 ibuf[] = { 0 };
  1137. if (dvb_usb_generic_rw(d->dev, obuf, 3, ibuf, 1, 0) < 0)
  1138. err("command 0x0e transfer failed.");
  1139. obuf[0] = 0xe;
  1140. obuf[1] = 0x02;
  1141. obuf[2] = 1;
  1142. if (dvb_usb_generic_rw(d->dev, obuf, 3, ibuf, 1, 0) < 0)
  1143. err("command 0x0e transfer failed.");
  1144. msleep(300);
  1145. obuf[0] = 0xe;
  1146. obuf[1] = 0x83;
  1147. obuf[2] = 0;
  1148. if (dvb_usb_generic_rw(d->dev, obuf, 3, ibuf, 1, 0) < 0)
  1149. err("command 0x0e transfer failed.");
  1150. obuf[0] = 0xe;
  1151. obuf[1] = 0x83;
  1152. obuf[2] = 1;
  1153. if (dvb_usb_generic_rw(d->dev, obuf, 3, ibuf, 1, 0) < 0)
  1154. err("command 0x0e transfer failed.");
  1155. obuf[0] = 0x51;
  1156. if (dvb_usb_generic_rw(d->dev, obuf, 1, ibuf, 1, 0) < 0)
  1157. err("command 0x51 transfer failed.");
  1158. d->fe_adap[0].fe = dvb_attach(ds3000_attach, &su3000_ds3000_config,
  1159. &d->dev->i2c_adap);
  1160. if (d->fe_adap[0].fe == NULL)
  1161. return -EIO;
  1162. if (dvb_attach(ts2020_attach, d->fe_adap[0].fe,
  1163. &dw2104_ts2020_config,
  1164. &d->dev->i2c_adap)) {
  1165. info("Attached DS3000/TS2020!\n");
  1166. return 0;
  1167. }
  1168. info("Failed to attach DS3000/TS2020!\n");
  1169. return -EIO;
  1170. }
  1171. static int m88rs2000_frontend_attach(struct dvb_usb_adapter *d)
  1172. {
  1173. u8 obuf[] = { 0x51 };
  1174. u8 ibuf[] = { 0 };
  1175. if (dvb_usb_generic_rw(d->dev, obuf, 1, ibuf, 1, 0) < 0)
  1176. err("command 0x51 transfer failed.");
  1177. d->fe_adap[0].fe = dvb_attach(m88rs2000_attach, &s421_m88rs2000_config,
  1178. &d->dev->i2c_adap);
  1179. if (d->fe_adap[0].fe == NULL)
  1180. return -EIO;
  1181. if (dvb_attach(ts2020_attach, d->fe_adap[0].fe,
  1182. &dw2104_ts2020_config,
  1183. &d->dev->i2c_adap)) {
  1184. info("Attached RS2000/TS2020!\n");
  1185. return 0;
  1186. }
  1187. info("Failed to attach RS2000/TS2020!\n");
  1188. return -EIO;
  1189. }
  1190. static int dw2102_tuner_attach(struct dvb_usb_adapter *adap)
  1191. {
  1192. dvb_attach(dvb_pll_attach, adap->fe_adap[0].fe, 0x60,
  1193. &adap->dev->i2c_adap, DVB_PLL_OPERA1);
  1194. return 0;
  1195. }
  1196. static int dw3101_tuner_attach(struct dvb_usb_adapter *adap)
  1197. {
  1198. dvb_attach(dvb_pll_attach, adap->fe_adap[0].fe, 0x60,
  1199. &adap->dev->i2c_adap, DVB_PLL_TUA6034);
  1200. return 0;
  1201. }
  1202. static struct rc_map_table rc_map_dw210x_table[] = {
  1203. { 0xf80a, KEY_POWER2 }, /*power*/
  1204. { 0xf80c, KEY_MUTE }, /*mute*/
  1205. { 0xf811, KEY_1 },
  1206. { 0xf812, KEY_2 },
  1207. { 0xf813, KEY_3 },
  1208. { 0xf814, KEY_4 },
  1209. { 0xf815, KEY_5 },
  1210. { 0xf816, KEY_6 },
  1211. { 0xf817, KEY_7 },
  1212. { 0xf818, KEY_8 },
  1213. { 0xf819, KEY_9 },
  1214. { 0xf810, KEY_0 },
  1215. { 0xf81c, KEY_CHANNELUP }, /*ch+*/
  1216. { 0xf80f, KEY_CHANNELDOWN }, /*ch-*/
  1217. { 0xf81a, KEY_VOLUMEUP }, /*vol+*/
  1218. { 0xf80e, KEY_VOLUMEDOWN }, /*vol-*/
  1219. { 0xf804, KEY_RECORD }, /*rec*/
  1220. { 0xf809, KEY_FAVORITES }, /*fav*/
  1221. { 0xf808, KEY_REWIND }, /*rewind*/
  1222. { 0xf807, KEY_FASTFORWARD }, /*fast*/
  1223. { 0xf80b, KEY_PAUSE }, /*pause*/
  1224. { 0xf802, KEY_ESC }, /*cancel*/
  1225. { 0xf803, KEY_TAB }, /*tab*/
  1226. { 0xf800, KEY_UP }, /*up*/
  1227. { 0xf81f, KEY_OK }, /*ok*/
  1228. { 0xf801, KEY_DOWN }, /*down*/
  1229. { 0xf805, KEY_CAMERA }, /*cap*/
  1230. { 0xf806, KEY_STOP }, /*stop*/
  1231. { 0xf840, KEY_ZOOM }, /*full*/
  1232. { 0xf81e, KEY_TV }, /*tvmode*/
  1233. { 0xf81b, KEY_LAST }, /*recall*/
  1234. };
  1235. static struct rc_map_table rc_map_tevii_table[] = {
  1236. { 0xf80a, KEY_POWER },
  1237. { 0xf80c, KEY_MUTE },
  1238. { 0xf811, KEY_1 },
  1239. { 0xf812, KEY_2 },
  1240. { 0xf813, KEY_3 },
  1241. { 0xf814, KEY_4 },
  1242. { 0xf815, KEY_5 },
  1243. { 0xf816, KEY_6 },
  1244. { 0xf817, KEY_7 },
  1245. { 0xf818, KEY_8 },
  1246. { 0xf819, KEY_9 },
  1247. { 0xf810, KEY_0 },
  1248. { 0xf81c, KEY_MENU },
  1249. { 0xf80f, KEY_VOLUMEDOWN },
  1250. { 0xf81a, KEY_LAST },
  1251. { 0xf80e, KEY_OPEN },
  1252. { 0xf804, KEY_RECORD },
  1253. { 0xf809, KEY_VOLUMEUP },
  1254. { 0xf808, KEY_CHANNELUP },
  1255. { 0xf807, KEY_PVR },
  1256. { 0xf80b, KEY_TIME },
  1257. { 0xf802, KEY_RIGHT },
  1258. { 0xf803, KEY_LEFT },
  1259. { 0xf800, KEY_UP },
  1260. { 0xf81f, KEY_OK },
  1261. { 0xf801, KEY_DOWN },
  1262. { 0xf805, KEY_TUNER },
  1263. { 0xf806, KEY_CHANNELDOWN },
  1264. { 0xf840, KEY_PLAYPAUSE },
  1265. { 0xf81e, KEY_REWIND },
  1266. { 0xf81b, KEY_FAVORITES },
  1267. { 0xf81d, KEY_BACK },
  1268. { 0xf84d, KEY_FASTFORWARD },
  1269. { 0xf844, KEY_EPG },
  1270. { 0xf84c, KEY_INFO },
  1271. { 0xf841, KEY_AB },
  1272. { 0xf843, KEY_AUDIO },
  1273. { 0xf845, KEY_SUBTITLE },
  1274. { 0xf84a, KEY_LIST },
  1275. { 0xf846, KEY_F1 },
  1276. { 0xf847, KEY_F2 },
  1277. { 0xf85e, KEY_F3 },
  1278. { 0xf85c, KEY_F4 },
  1279. { 0xf852, KEY_F5 },
  1280. { 0xf85a, KEY_F6 },
  1281. { 0xf856, KEY_MODE },
  1282. { 0xf858, KEY_SWITCHVIDEOMODE },
  1283. };
  1284. static struct rc_map_table rc_map_tbs_table[] = {
  1285. { 0xf884, KEY_POWER },
  1286. { 0xf894, KEY_MUTE },
  1287. { 0xf887, KEY_1 },
  1288. { 0xf886, KEY_2 },
  1289. { 0xf885, KEY_3 },
  1290. { 0xf88b, KEY_4 },
  1291. { 0xf88a, KEY_5 },
  1292. { 0xf889, KEY_6 },
  1293. { 0xf88f, KEY_7 },
  1294. { 0xf88e, KEY_8 },
  1295. { 0xf88d, KEY_9 },
  1296. { 0xf892, KEY_0 },
  1297. { 0xf896, KEY_CHANNELUP },
  1298. { 0xf891, KEY_CHANNELDOWN },
  1299. { 0xf893, KEY_VOLUMEUP },
  1300. { 0xf88c, KEY_VOLUMEDOWN },
  1301. { 0xf883, KEY_RECORD },
  1302. { 0xf898, KEY_PAUSE },
  1303. { 0xf899, KEY_OK },
  1304. { 0xf89a, KEY_SHUFFLE },
  1305. { 0xf881, KEY_UP },
  1306. { 0xf890, KEY_LEFT },
  1307. { 0xf882, KEY_RIGHT },
  1308. { 0xf888, KEY_DOWN },
  1309. { 0xf895, KEY_FAVORITES },
  1310. { 0xf897, KEY_SUBTITLE },
  1311. { 0xf89d, KEY_ZOOM },
  1312. { 0xf89f, KEY_EXIT },
  1313. { 0xf89e, KEY_MENU },
  1314. { 0xf89c, KEY_EPG },
  1315. { 0xf880, KEY_PREVIOUS },
  1316. { 0xf89b, KEY_MODE }
  1317. };
  1318. static struct rc_map_table rc_map_su3000_table[] = {
  1319. { 0x25, KEY_POWER }, /* right-bottom Red */
  1320. { 0x0a, KEY_MUTE }, /* -/-- */
  1321. { 0x01, KEY_1 },
  1322. { 0x02, KEY_2 },
  1323. { 0x03, KEY_3 },
  1324. { 0x04, KEY_4 },
  1325. { 0x05, KEY_5 },
  1326. { 0x06, KEY_6 },
  1327. { 0x07, KEY_7 },
  1328. { 0x08, KEY_8 },
  1329. { 0x09, KEY_9 },
  1330. { 0x00, KEY_0 },
  1331. { 0x20, KEY_UP }, /* CH+ */
  1332. { 0x21, KEY_DOWN }, /* CH+ */
  1333. { 0x12, KEY_VOLUMEUP }, /* Brightness Up */
  1334. { 0x13, KEY_VOLUMEDOWN },/* Brightness Down */
  1335. { 0x1f, KEY_RECORD },
  1336. { 0x17, KEY_PLAY },
  1337. { 0x16, KEY_PAUSE },
  1338. { 0x0b, KEY_STOP },
  1339. { 0x27, KEY_FASTFORWARD },/* >> */
  1340. { 0x26, KEY_REWIND }, /* << */
  1341. { 0x0d, KEY_OK }, /* Mute */
  1342. { 0x11, KEY_LEFT }, /* VOL- */
  1343. { 0x10, KEY_RIGHT }, /* VOL+ */
  1344. { 0x29, KEY_BACK }, /* button under 9 */
  1345. { 0x2c, KEY_MENU }, /* TTX */
  1346. { 0x2b, KEY_EPG }, /* EPG */
  1347. { 0x1e, KEY_RED }, /* OSD */
  1348. { 0x0e, KEY_GREEN }, /* Window */
  1349. { 0x2d, KEY_YELLOW }, /* button under << */
  1350. { 0x0f, KEY_BLUE }, /* bottom yellow button */
  1351. { 0x14, KEY_AUDIO }, /* Snapshot */
  1352. { 0x38, KEY_TV }, /* TV/Radio */
  1353. { 0x0c, KEY_ESC } /* upper Red button */
  1354. };
  1355. static struct rc_map_dvb_usb_table_table keys_tables[] = {
  1356. { rc_map_dw210x_table, ARRAY_SIZE(rc_map_dw210x_table) },
  1357. { rc_map_tevii_table, ARRAY_SIZE(rc_map_tevii_table) },
  1358. { rc_map_tbs_table, ARRAY_SIZE(rc_map_tbs_table) },
  1359. { rc_map_su3000_table, ARRAY_SIZE(rc_map_su3000_table) },
  1360. };
  1361. static int dw2102_rc_query(struct dvb_usb_device *d, u32 *event, int *state)
  1362. {
  1363. struct rc_map_table *keymap = d->props.rc.legacy.rc_map_table;
  1364. int keymap_size = d->props.rc.legacy.rc_map_size;
  1365. u8 key[2];
  1366. struct i2c_msg msg = {
  1367. .addr = DW2102_RC_QUERY,
  1368. .flags = I2C_M_RD,
  1369. .buf = key,
  1370. .len = 2
  1371. };
  1372. int i;
  1373. /* override keymap */
  1374. if ((ir_keymap > 0) && (ir_keymap <= ARRAY_SIZE(keys_tables))) {
  1375. keymap = keys_tables[ir_keymap - 1].rc_keys ;
  1376. keymap_size = keys_tables[ir_keymap - 1].rc_keys_size;
  1377. } else if (ir_keymap > ARRAY_SIZE(keys_tables))
  1378. return 0; /* none */
  1379. *state = REMOTE_NO_KEY_PRESSED;
  1380. if (d->props.i2c_algo->master_xfer(&d->i2c_adap, &msg, 1) == 1) {
  1381. for (i = 0; i < keymap_size ; i++) {
  1382. if (rc5_data(&keymap[i]) == msg.buf[0]) {
  1383. *state = REMOTE_KEY_PRESSED;
  1384. *event = keymap[i].keycode;
  1385. break;
  1386. }
  1387. }
  1388. if ((*state) == REMOTE_KEY_PRESSED)
  1389. deb_rc("%s: found rc key: %x, %x, event: %x\n",
  1390. __func__, key[0], key[1], (*event));
  1391. else if (key[0] != 0xff)
  1392. deb_rc("%s: unknown rc key: %x, %x\n",
  1393. __func__, key[0], key[1]);
  1394. }
  1395. return 0;
  1396. }
  1397. enum dw2102_table_entry {
  1398. CYPRESS_DW2102,
  1399. CYPRESS_DW2101,
  1400. CYPRESS_DW2104,
  1401. TEVII_S650,
  1402. TERRATEC_CINERGY_S,
  1403. CYPRESS_DW3101,
  1404. TEVII_S630,
  1405. PROF_1100,
  1406. TEVII_S660,
  1407. PROF_7500,
  1408. GENIATECH_SU3000,
  1409. TERRATEC_CINERGY_S2,
  1410. TEVII_S480_1,
  1411. TEVII_S480_2,
  1412. X3M_SPC1400HD,
  1413. TEVII_S421,
  1414. TEVII_S632,
  1415. TERRATEC_CINERGY_S2_R2,
  1416. GOTVIEW_SAT_HD,
  1417. };
  1418. static struct usb_device_id dw2102_table[] = {
  1419. [CYPRESS_DW2102] = {USB_DEVICE(USB_VID_CYPRESS, USB_PID_DW2102)},
  1420. [CYPRESS_DW2101] = {USB_DEVICE(USB_VID_CYPRESS, 0x2101)},
  1421. [CYPRESS_DW2104] = {USB_DEVICE(USB_VID_CYPRESS, USB_PID_DW2104)},
  1422. [TEVII_S650] = {USB_DEVICE(0x9022, USB_PID_TEVII_S650)},
  1423. [TERRATEC_CINERGY_S] = {USB_DEVICE(USB_VID_TERRATEC, USB_PID_CINERGY_S)},
  1424. [CYPRESS_DW3101] = {USB_DEVICE(USB_VID_CYPRESS, USB_PID_DW3101)},
  1425. [TEVII_S630] = {USB_DEVICE(0x9022, USB_PID_TEVII_S630)},
  1426. [PROF_1100] = {USB_DEVICE(0x3011, USB_PID_PROF_1100)},
  1427. [TEVII_S660] = {USB_DEVICE(0x9022, USB_PID_TEVII_S660)},
  1428. [PROF_7500] = {USB_DEVICE(0x3034, 0x7500)},
  1429. [GENIATECH_SU3000] = {USB_DEVICE(0x1f4d, 0x3000)},
  1430. [TERRATEC_CINERGY_S2] = {USB_DEVICE(USB_VID_TERRATEC, 0x00a8)},
  1431. [TEVII_S480_1] = {USB_DEVICE(0x9022, USB_PID_TEVII_S480_1)},
  1432. [TEVII_S480_2] = {USB_DEVICE(0x9022, USB_PID_TEVII_S480_2)},
  1433. [X3M_SPC1400HD] = {USB_DEVICE(0x1f4d, 0x3100)},
  1434. [TEVII_S421] = {USB_DEVICE(0x9022, USB_PID_TEVII_S421)},
  1435. [TEVII_S632] = {USB_DEVICE(0x9022, USB_PID_TEVII_S632)},
  1436. [TERRATEC_CINERGY_S2_R2] = {USB_DEVICE(USB_VID_TERRATEC, 0x00b0)},
  1437. [GOTVIEW_SAT_HD] = {USB_DEVICE(0x1FE1, USB_PID_GOTVIEW_SAT_HD)},
  1438. { }
  1439. };
  1440. MODULE_DEVICE_TABLE(usb, dw2102_table);
  1441. static int dw2102_load_firmware(struct usb_device *dev,
  1442. const struct firmware *frmwr)
  1443. {
  1444. u8 *b, *p;
  1445. int ret = 0, i;
  1446. u8 reset;
  1447. u8 reset16[] = {0, 0, 0, 0, 0, 0, 0};
  1448. const struct firmware *fw;
  1449. switch (dev->descriptor.idProduct) {
  1450. case 0x2101:
  1451. ret = request_firmware(&fw, DW2101_FIRMWARE, &dev->dev);
  1452. if (ret != 0) {
  1453. err(err_str, DW2101_FIRMWARE);
  1454. return ret;
  1455. }
  1456. break;
  1457. default:
  1458. fw = frmwr;
  1459. break;
  1460. }
  1461. info("start downloading DW210X firmware");
  1462. p = kmalloc(fw->size, GFP_KERNEL);
  1463. reset = 1;
  1464. /*stop the CPU*/
  1465. dw210x_op_rw(dev, 0xa0, 0x7f92, 0, &reset, 1, DW210X_WRITE_MSG);
  1466. dw210x_op_rw(dev, 0xa0, 0xe600, 0, &reset, 1, DW210X_WRITE_MSG);
  1467. if (p != NULL) {
  1468. memcpy(p, fw->data, fw->size);
  1469. for (i = 0; i < fw->size; i += 0x40) {
  1470. b = (u8 *) p + i;
  1471. if (dw210x_op_rw(dev, 0xa0, i, 0, b , 0x40,
  1472. DW210X_WRITE_MSG) != 0x40) {
  1473. err("error while transferring firmware");
  1474. ret = -EINVAL;
  1475. break;
  1476. }
  1477. }
  1478. /* restart the CPU */
  1479. reset = 0;
  1480. if (ret || dw210x_op_rw(dev, 0xa0, 0x7f92, 0, &reset, 1,
  1481. DW210X_WRITE_MSG) != 1) {
  1482. err("could not restart the USB controller CPU.");
  1483. ret = -EINVAL;
  1484. }
  1485. if (ret || dw210x_op_rw(dev, 0xa0, 0xe600, 0, &reset, 1,
  1486. DW210X_WRITE_MSG) != 1) {
  1487. err("could not restart the USB controller CPU.");
  1488. ret = -EINVAL;
  1489. }
  1490. /* init registers */
  1491. switch (dev->descriptor.idProduct) {
  1492. case USB_PID_TEVII_S650:
  1493. dw2104_properties.rc.legacy.rc_map_table = rc_map_tevii_table;
  1494. dw2104_properties.rc.legacy.rc_map_size =
  1495. ARRAY_SIZE(rc_map_tevii_table);
  1496. case USB_PID_DW2104:
  1497. reset = 1;
  1498. dw210x_op_rw(dev, 0xc4, 0x0000, 0, &reset, 1,
  1499. DW210X_WRITE_MSG);
  1500. /* break omitted intentionally */
  1501. case USB_PID_DW3101:
  1502. reset = 0;
  1503. dw210x_op_rw(dev, 0xbf, 0x0040, 0, &reset, 0,
  1504. DW210X_WRITE_MSG);
  1505. break;
  1506. case USB_PID_CINERGY_S:
  1507. case USB_PID_DW2102:
  1508. dw210x_op_rw(dev, 0xbf, 0x0040, 0, &reset, 0,
  1509. DW210X_WRITE_MSG);
  1510. dw210x_op_rw(dev, 0xb9, 0x0000, 0, &reset16[0], 2,
  1511. DW210X_READ_MSG);
  1512. /* check STV0299 frontend */
  1513. dw210x_op_rw(dev, 0xb5, 0, 0, &reset16[0], 2,
  1514. DW210X_READ_MSG);
  1515. if ((reset16[0] == 0xa1) || (reset16[0] == 0x80)) {
  1516. dw2102_properties.i2c_algo = &dw2102_i2c_algo;
  1517. dw2102_properties.adapter->fe[0].tuner_attach = &dw2102_tuner_attach;
  1518. break;
  1519. } else {
  1520. /* check STV0288 frontend */
  1521. reset16[0] = 0xd0;
  1522. reset16[1] = 1;
  1523. reset16[2] = 0;
  1524. dw210x_op_rw(dev, 0xc2, 0, 0, &reset16[0], 3,
  1525. DW210X_WRITE_MSG);
  1526. dw210x_op_rw(dev, 0xc3, 0xd1, 0, &reset16[0], 3,
  1527. DW210X_READ_MSG);
  1528. if (reset16[2] == 0x11) {
  1529. dw2102_properties.i2c_algo = &dw2102_earda_i2c_algo;
  1530. break;
  1531. }
  1532. }
  1533. case 0x2101:
  1534. dw210x_op_rw(dev, 0xbc, 0x0030, 0, &reset16[0], 2,
  1535. DW210X_READ_MSG);
  1536. dw210x_op_rw(dev, 0xba, 0x0000, 0, &reset16[0], 7,
  1537. DW210X_READ_MSG);
  1538. dw210x_op_rw(dev, 0xba, 0x0000, 0, &reset16[0], 7,
  1539. DW210X_READ_MSG);
  1540. dw210x_op_rw(dev, 0xb9, 0x0000, 0, &reset16[0], 2,
  1541. DW210X_READ_MSG);
  1542. break;
  1543. }
  1544. msleep(100);
  1545. kfree(p);
  1546. }
  1547. return ret;
  1548. }
  1549. static struct dvb_usb_device_properties dw2102_properties = {
  1550. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  1551. .usb_ctrl = DEVICE_SPECIFIC,
  1552. .firmware = DW2102_FIRMWARE,
  1553. .no_reconnect = 1,
  1554. .i2c_algo = &dw2102_serit_i2c_algo,
  1555. .rc.legacy = {
  1556. .rc_map_table = rc_map_dw210x_table,
  1557. .rc_map_size = ARRAY_SIZE(rc_map_dw210x_table),
  1558. .rc_interval = 150,
  1559. .rc_query = dw2102_rc_query,
  1560. },
  1561. .generic_bulk_ctrl_endpoint = 0x81,
  1562. /* parameter for the MPEG2-data transfer */
  1563. .num_adapters = 1,
  1564. .download_firmware = dw2102_load_firmware,
  1565. .read_mac_address = dw210x_read_mac_address,
  1566. .adapter = {
  1567. {
  1568. .num_frontends = 1,
  1569. .fe = {{
  1570. .frontend_attach = dw2102_frontend_attach,
  1571. .stream = {
  1572. .type = USB_BULK,
  1573. .count = 8,
  1574. .endpoint = 0x82,
  1575. .u = {
  1576. .bulk = {
  1577. .buffersize = 4096,
  1578. }
  1579. }
  1580. },
  1581. }},
  1582. }
  1583. },
  1584. .num_device_descs = 3,
  1585. .devices = {
  1586. {"DVBWorld DVB-S 2102 USB2.0",
  1587. {&dw2102_table[CYPRESS_DW2102], NULL},
  1588. {NULL},
  1589. },
  1590. {"DVBWorld DVB-S 2101 USB2.0",
  1591. {&dw2102_table[CYPRESS_DW2101], NULL},
  1592. {NULL},
  1593. },
  1594. {"TerraTec Cinergy S USB",
  1595. {&dw2102_table[TERRATEC_CINERGY_S], NULL},
  1596. {NULL},
  1597. },
  1598. }
  1599. };
  1600. static struct dvb_usb_device_properties dw2104_properties = {
  1601. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  1602. .usb_ctrl = DEVICE_SPECIFIC,
  1603. .firmware = DW2104_FIRMWARE,
  1604. .no_reconnect = 1,
  1605. .i2c_algo = &dw2104_i2c_algo,
  1606. .rc.legacy = {
  1607. .rc_map_table = rc_map_dw210x_table,
  1608. .rc_map_size = ARRAY_SIZE(rc_map_dw210x_table),
  1609. .rc_interval = 150,
  1610. .rc_query = dw2102_rc_query,
  1611. },
  1612. .generic_bulk_ctrl_endpoint = 0x81,
  1613. /* parameter for the MPEG2-data transfer */
  1614. .num_adapters = 1,
  1615. .download_firmware = dw2102_load_firmware,
  1616. .read_mac_address = dw210x_read_mac_address,
  1617. .adapter = {
  1618. {
  1619. .num_frontends = 1,
  1620. .fe = {{
  1621. .frontend_attach = dw2104_frontend_attach,
  1622. .stream = {
  1623. .type = USB_BULK,
  1624. .count = 8,
  1625. .endpoint = 0x82,
  1626. .u = {
  1627. .bulk = {
  1628. .buffersize = 4096,
  1629. }
  1630. }
  1631. },
  1632. }},
  1633. }
  1634. },
  1635. .num_device_descs = 2,
  1636. .devices = {
  1637. { "DVBWorld DW2104 USB2.0",
  1638. {&dw2102_table[CYPRESS_DW2104], NULL},
  1639. {NULL},
  1640. },
  1641. { "TeVii S650 USB2.0",
  1642. {&dw2102_table[TEVII_S650], NULL},
  1643. {NULL},
  1644. },
  1645. }
  1646. };
  1647. static struct dvb_usb_device_properties dw3101_properties = {
  1648. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  1649. .usb_ctrl = DEVICE_SPECIFIC,
  1650. .firmware = DW3101_FIRMWARE,
  1651. .no_reconnect = 1,
  1652. .i2c_algo = &dw3101_i2c_algo,
  1653. .rc.legacy = {
  1654. .rc_map_table = rc_map_dw210x_table,
  1655. .rc_map_size = ARRAY_SIZE(rc_map_dw210x_table),
  1656. .rc_interval = 150,
  1657. .rc_query = dw2102_rc_query,
  1658. },
  1659. .generic_bulk_ctrl_endpoint = 0x81,
  1660. /* parameter for the MPEG2-data transfer */
  1661. .num_adapters = 1,
  1662. .download_firmware = dw2102_load_firmware,
  1663. .read_mac_address = dw210x_read_mac_address,
  1664. .adapter = {
  1665. {
  1666. .num_frontends = 1,
  1667. .fe = {{
  1668. .frontend_attach = dw3101_frontend_attach,
  1669. .tuner_attach = dw3101_tuner_attach,
  1670. .stream = {
  1671. .type = USB_BULK,
  1672. .count = 8,
  1673. .endpoint = 0x82,
  1674. .u = {
  1675. .bulk = {
  1676. .buffersize = 4096,
  1677. }
  1678. }
  1679. },
  1680. }},
  1681. }
  1682. },
  1683. .num_device_descs = 1,
  1684. .devices = {
  1685. { "DVBWorld DVB-C 3101 USB2.0",
  1686. {&dw2102_table[CYPRESS_DW3101], NULL},
  1687. {NULL},
  1688. },
  1689. }
  1690. };
  1691. static struct dvb_usb_device_properties s6x0_properties = {
  1692. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  1693. .usb_ctrl = DEVICE_SPECIFIC,
  1694. .size_of_priv = sizeof(struct s6x0_state),
  1695. .firmware = S630_FIRMWARE,
  1696. .no_reconnect = 1,
  1697. .i2c_algo = &s6x0_i2c_algo,
  1698. .rc.legacy = {
  1699. .rc_map_table = rc_map_tevii_table,
  1700. .rc_map_size = ARRAY_SIZE(rc_map_tevii_table),
  1701. .rc_interval = 150,
  1702. .rc_query = dw2102_rc_query,
  1703. },
  1704. .generic_bulk_ctrl_endpoint = 0x81,
  1705. .num_adapters = 1,
  1706. .download_firmware = dw2102_load_firmware,
  1707. .read_mac_address = s6x0_read_mac_address,
  1708. .adapter = {
  1709. {
  1710. .num_frontends = 1,
  1711. .fe = {{
  1712. .frontend_attach = zl100313_frontend_attach,
  1713. .stream = {
  1714. .type = USB_BULK,
  1715. .count = 8,
  1716. .endpoint = 0x82,
  1717. .u = {
  1718. .bulk = {
  1719. .buffersize = 4096,
  1720. }
  1721. }
  1722. },
  1723. }},
  1724. }
  1725. },
  1726. .num_device_descs = 1,
  1727. .devices = {
  1728. {"TeVii S630 USB",
  1729. {&dw2102_table[TEVII_S630], NULL},
  1730. {NULL},
  1731. },
  1732. }
  1733. };
  1734. struct dvb_usb_device_properties *p1100;
  1735. static struct dvb_usb_device_description d1100 = {
  1736. "Prof 1100 USB ",
  1737. {&dw2102_table[PROF_1100], NULL},
  1738. {NULL},
  1739. };
  1740. struct dvb_usb_device_properties *s660;
  1741. static struct dvb_usb_device_description d660 = {
  1742. "TeVii S660 USB",
  1743. {&dw2102_table[TEVII_S660], NULL},
  1744. {NULL},
  1745. };
  1746. static struct dvb_usb_device_description d480_1 = {
  1747. "TeVii S480.1 USB",
  1748. {&dw2102_table[TEVII_S480_1], NULL},
  1749. {NULL},
  1750. };
  1751. static struct dvb_usb_device_description d480_2 = {
  1752. "TeVii S480.2 USB",
  1753. {&dw2102_table[TEVII_S480_2], NULL},
  1754. {NULL},
  1755. };
  1756. struct dvb_usb_device_properties *p7500;
  1757. static struct dvb_usb_device_description d7500 = {
  1758. "Prof 7500 USB DVB-S2",
  1759. {&dw2102_table[PROF_7500], NULL},
  1760. {NULL},
  1761. };
  1762. struct dvb_usb_device_properties *s421;
  1763. static struct dvb_usb_device_description d421 = {
  1764. "TeVii S421 PCI",
  1765. {&dw2102_table[TEVII_S421], NULL},
  1766. {NULL},
  1767. };
  1768. static struct dvb_usb_device_description d632 = {
  1769. "TeVii S632 USB",
  1770. {&dw2102_table[TEVII_S632], NULL},
  1771. {NULL},
  1772. };
  1773. static struct dvb_usb_device_properties su3000_properties = {
  1774. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  1775. .usb_ctrl = DEVICE_SPECIFIC,
  1776. .size_of_priv = sizeof(struct su3000_state),
  1777. .power_ctrl = su3000_power_ctrl,
  1778. .num_adapters = 1,
  1779. .identify_state = su3000_identify_state,
  1780. .i2c_algo = &su3000_i2c_algo,
  1781. .rc.legacy = {
  1782. .rc_map_table = rc_map_su3000_table,
  1783. .rc_map_size = ARRAY_SIZE(rc_map_su3000_table),
  1784. .rc_interval = 150,
  1785. .rc_query = dw2102_rc_query,
  1786. },
  1787. .read_mac_address = su3000_read_mac_address,
  1788. .generic_bulk_ctrl_endpoint = 0x01,
  1789. .adapter = {
  1790. {
  1791. .num_frontends = 1,
  1792. .fe = {{
  1793. .streaming_ctrl = su3000_streaming_ctrl,
  1794. .frontend_attach = su3000_frontend_attach,
  1795. .stream = {
  1796. .type = USB_BULK,
  1797. .count = 8,
  1798. .endpoint = 0x82,
  1799. .u = {
  1800. .bulk = {
  1801. .buffersize = 4096,
  1802. }
  1803. }
  1804. }
  1805. }},
  1806. }
  1807. },
  1808. .num_device_descs = 5,
  1809. .devices = {
  1810. { "SU3000HD DVB-S USB2.0",
  1811. { &dw2102_table[GENIATECH_SU3000], NULL },
  1812. { NULL },
  1813. },
  1814. { "Terratec Cinergy S2 USB HD",
  1815. { &dw2102_table[TERRATEC_CINERGY_S2], NULL },
  1816. { NULL },
  1817. },
  1818. { "X3M TV SPC1400HD PCI",
  1819. { &dw2102_table[X3M_SPC1400HD], NULL },
  1820. { NULL },
  1821. },
  1822. { "Terratec Cinergy S2 USB HD Rev.2",
  1823. { &dw2102_table[TERRATEC_CINERGY_S2_R2], NULL },
  1824. { NULL },
  1825. },
  1826. { "GOTVIEW Satellite HD",
  1827. { &dw2102_table[GOTVIEW_SAT_HD], NULL },
  1828. { NULL },
  1829. },
  1830. }
  1831. };
  1832. static int dw2102_probe(struct usb_interface *intf,
  1833. const struct usb_device_id *id)
  1834. {
  1835. p1100 = kmemdup(&s6x0_properties,
  1836. sizeof(struct dvb_usb_device_properties), GFP_KERNEL);
  1837. if (!p1100)
  1838. return -ENOMEM;
  1839. /* copy default structure */
  1840. /* fill only different fields */
  1841. p1100->firmware = P1100_FIRMWARE;
  1842. p1100->devices[0] = d1100;
  1843. p1100->rc.legacy.rc_map_table = rc_map_tbs_table;
  1844. p1100->rc.legacy.rc_map_size = ARRAY_SIZE(rc_map_tbs_table);
  1845. p1100->adapter->fe[0].frontend_attach = stv0288_frontend_attach;
  1846. s660 = kmemdup(&s6x0_properties,
  1847. sizeof(struct dvb_usb_device_properties), GFP_KERNEL);
  1848. if (!s660) {
  1849. kfree(p1100);
  1850. return -ENOMEM;
  1851. }
  1852. s660->firmware = S660_FIRMWARE;
  1853. s660->num_device_descs = 3;
  1854. s660->devices[0] = d660;
  1855. s660->devices[1] = d480_1;
  1856. s660->devices[2] = d480_2;
  1857. s660->adapter->fe[0].frontend_attach = ds3000_frontend_attach;
  1858. p7500 = kmemdup(&s6x0_properties,
  1859. sizeof(struct dvb_usb_device_properties), GFP_KERNEL);
  1860. if (!p7500) {
  1861. kfree(p1100);
  1862. kfree(s660);
  1863. return -ENOMEM;
  1864. }
  1865. p7500->firmware = P7500_FIRMWARE;
  1866. p7500->devices[0] = d7500;
  1867. p7500->rc.legacy.rc_map_table = rc_map_tbs_table;
  1868. p7500->rc.legacy.rc_map_size = ARRAY_SIZE(rc_map_tbs_table);
  1869. p7500->adapter->fe[0].frontend_attach = prof_7500_frontend_attach;
  1870. s421 = kmemdup(&su3000_properties,
  1871. sizeof(struct dvb_usb_device_properties), GFP_KERNEL);
  1872. if (!s421) {
  1873. kfree(p1100);
  1874. kfree(s660);
  1875. kfree(p7500);
  1876. return -ENOMEM;
  1877. }
  1878. s421->num_device_descs = 2;
  1879. s421->devices[0] = d421;
  1880. s421->devices[1] = d632;
  1881. s421->adapter->fe[0].frontend_attach = m88rs2000_frontend_attach;
  1882. if (0 == dvb_usb_device_init(intf, &dw2102_properties,
  1883. THIS_MODULE, NULL, adapter_nr) ||
  1884. 0 == dvb_usb_device_init(intf, &dw2104_properties,
  1885. THIS_MODULE, NULL, adapter_nr) ||
  1886. 0 == dvb_usb_device_init(intf, &dw3101_properties,
  1887. THIS_MODULE, NULL, adapter_nr) ||
  1888. 0 == dvb_usb_device_init(intf, &s6x0_properties,
  1889. THIS_MODULE, NULL, adapter_nr) ||
  1890. 0 == dvb_usb_device_init(intf, p1100,
  1891. THIS_MODULE, NULL, adapter_nr) ||
  1892. 0 == dvb_usb_device_init(intf, s660,
  1893. THIS_MODULE, NULL, adapter_nr) ||
  1894. 0 == dvb_usb_device_init(intf, p7500,
  1895. THIS_MODULE, NULL, adapter_nr) ||
  1896. 0 == dvb_usb_device_init(intf, s421,
  1897. THIS_MODULE, NULL, adapter_nr) ||
  1898. 0 == dvb_usb_device_init(intf, &su3000_properties,
  1899. THIS_MODULE, NULL, adapter_nr))
  1900. return 0;
  1901. return -ENODEV;
  1902. }
  1903. static struct usb_driver dw2102_driver = {
  1904. .name = "dw2102",
  1905. .probe = dw2102_probe,
  1906. .disconnect = dvb_usb_device_exit,
  1907. .id_table = dw2102_table,
  1908. };
  1909. module_usb_driver(dw2102_driver);
  1910. MODULE_AUTHOR("Igor M. Liplianin (c) liplianin@me.by");
  1911. MODULE_DESCRIPTION("Driver for DVBWorld DVB-S 2101, 2102, DVB-S2 2104,"
  1912. " DVB-C 3101 USB2.0,"
  1913. " TeVii S600, S630, S650, S660, S480, S421, S632"
  1914. " Prof 1100, 7500 USB2.0,"
  1915. " Geniatech SU3000 devices");
  1916. MODULE_VERSION("0.1");
  1917. MODULE_LICENSE("GPL");
  1918. MODULE_FIRMWARE(DW2101_FIRMWARE);
  1919. MODULE_FIRMWARE(DW2102_FIRMWARE);
  1920. MODULE_FIRMWARE(DW2104_FIRMWARE);
  1921. MODULE_FIRMWARE(DW3101_FIRMWARE);
  1922. MODULE_FIRMWARE(S630_FIRMWARE);
  1923. MODULE_FIRMWARE(S660_FIRMWARE);
  1924. MODULE_FIRMWARE(P1100_FIRMWARE);
  1925. MODULE_FIRMWARE(P7500_FIRMWARE);