af9035.c 29 KB

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  1. /*
  2. * Afatech AF9035 DVB USB driver
  3. *
  4. * Copyright (C) 2009 Antti Palosaari <crope@iki.fi>
  5. * Copyright (C) 2012 Antti Palosaari <crope@iki.fi>
  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 along
  18. * with this program; if not, write to the Free Software Foundation, Inc.,
  19. * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
  20. */
  21. #include "af9035.h"
  22. DVB_DEFINE_MOD_OPT_ADAPTER_NR(adapter_nr);
  23. static DEFINE_MUTEX(af9035_usb_mutex);
  24. static struct dvb_usb_device_properties af9035_properties[2];
  25. static int af9035_properties_count = ARRAY_SIZE(af9035_properties);
  26. static u16 af9035_checksum(const u8 *buf, size_t len)
  27. {
  28. size_t i;
  29. u16 checksum = 0;
  30. for (i = 1; i < len; i++) {
  31. if (i % 2)
  32. checksum += buf[i] << 8;
  33. else
  34. checksum += buf[i];
  35. }
  36. checksum = ~checksum;
  37. return checksum;
  38. }
  39. static int af9035_ctrl_msg(struct usb_device *udev, struct usb_req *req)
  40. {
  41. #define BUF_LEN 64
  42. #define REQ_HDR_LEN 4 /* send header size */
  43. #define ACK_HDR_LEN 3 /* rece header size */
  44. #define CHECKSUM_LEN 2
  45. #define USB_TIMEOUT 2000
  46. int ret, msg_len, act_len;
  47. u8 buf[BUF_LEN];
  48. static u8 seq; /* packet sequence number */
  49. u16 checksum, tmp_checksum;
  50. /* buffer overflow check */
  51. if (req->wlen > (BUF_LEN - REQ_HDR_LEN - CHECKSUM_LEN) ||
  52. req->rlen > (BUF_LEN - ACK_HDR_LEN - CHECKSUM_LEN)) {
  53. pr_debug("%s: too much data wlen=%d rlen=%d\n", __func__,
  54. req->wlen, req->rlen);
  55. return -EINVAL;
  56. }
  57. if (mutex_lock_interruptible(&af9035_usb_mutex) < 0)
  58. return -EAGAIN;
  59. buf[0] = REQ_HDR_LEN + req->wlen + CHECKSUM_LEN - 1;
  60. buf[1] = req->mbox;
  61. buf[2] = req->cmd;
  62. buf[3] = seq++;
  63. if (req->wlen)
  64. memcpy(&buf[4], req->wbuf, req->wlen);
  65. /* calc and add checksum */
  66. checksum = af9035_checksum(buf, buf[0] - 1);
  67. buf[buf[0] - 1] = (checksum >> 8);
  68. buf[buf[0] - 0] = (checksum & 0xff);
  69. msg_len = REQ_HDR_LEN + req->wlen + CHECKSUM_LEN ;
  70. /* send req */
  71. ret = usb_bulk_msg(udev, usb_sndbulkpipe(udev, 0x02), buf, msg_len,
  72. &act_len, USB_TIMEOUT);
  73. if (ret < 0)
  74. err("bulk message failed=%d (%d/%d)", ret, msg_len, act_len);
  75. else
  76. if (act_len != msg_len)
  77. ret = -EIO; /* all data is not send */
  78. if (ret < 0)
  79. goto err_mutex_unlock;
  80. /* no ack for those packets */
  81. if (req->cmd == CMD_FW_DL)
  82. goto exit_mutex_unlock;
  83. /* receive ack and data if read req */
  84. msg_len = ACK_HDR_LEN + req->rlen + CHECKSUM_LEN;
  85. ret = usb_bulk_msg(udev, usb_rcvbulkpipe(udev, 0x81), buf, msg_len,
  86. &act_len, USB_TIMEOUT);
  87. if (ret < 0) {
  88. err("recv bulk message failed=%d", ret);
  89. ret = -EIO;
  90. goto err_mutex_unlock;
  91. }
  92. if (act_len != msg_len) {
  93. err("recv bulk message truncated (%d != %d)", act_len, msg_len);
  94. ret = -EIO;
  95. goto err_mutex_unlock;
  96. }
  97. /* verify checksum */
  98. checksum = af9035_checksum(buf, act_len - 2);
  99. tmp_checksum = (buf[act_len - 2] << 8) | buf[act_len - 1];
  100. if (tmp_checksum != checksum) {
  101. err("%s: command=%02x checksum mismatch (%04x != %04x)",
  102. __func__, req->cmd, tmp_checksum, checksum);
  103. ret = -EIO;
  104. goto err_mutex_unlock;
  105. }
  106. /* check status */
  107. if (buf[2]) {
  108. pr_debug("%s: command=%02x failed fw error=%d\n", __func__,
  109. req->cmd, buf[2]);
  110. ret = -EIO;
  111. goto err_mutex_unlock;
  112. }
  113. /* read request, copy returned data to return buf */
  114. if (req->rlen)
  115. memcpy(req->rbuf, &buf[ACK_HDR_LEN], req->rlen);
  116. err_mutex_unlock:
  117. exit_mutex_unlock:
  118. mutex_unlock(&af9035_usb_mutex);
  119. return ret;
  120. }
  121. /* write multiple registers */
  122. static int af9035_wr_regs(struct dvb_usb_device *d, u32 reg, u8 *val, int len)
  123. {
  124. u8 wbuf[6 + len];
  125. u8 mbox = (reg >> 16) & 0xff;
  126. struct usb_req req = { CMD_MEM_WR, mbox, sizeof(wbuf), wbuf, 0, NULL };
  127. wbuf[0] = len;
  128. wbuf[1] = 2;
  129. wbuf[2] = 0;
  130. wbuf[3] = 0;
  131. wbuf[4] = (reg >> 8) & 0xff;
  132. wbuf[5] = (reg >> 0) & 0xff;
  133. memcpy(&wbuf[6], val, len);
  134. return af9035_ctrl_msg(d->udev, &req);
  135. }
  136. /* read multiple registers */
  137. static int af9035_rd_regs(struct dvb_usb_device *d, u32 reg, u8 *val, int len)
  138. {
  139. u8 wbuf[] = { len, 2, 0, 0, (reg >> 8) & 0xff, reg & 0xff };
  140. u8 mbox = (reg >> 16) & 0xff;
  141. struct usb_req req = { CMD_MEM_RD, mbox, sizeof(wbuf), wbuf, len, val };
  142. return af9035_ctrl_msg(d->udev, &req);
  143. }
  144. /* write single register */
  145. static int af9035_wr_reg(struct dvb_usb_device *d, u32 reg, u8 val)
  146. {
  147. return af9035_wr_regs(d, reg, &val, 1);
  148. }
  149. /* read single register */
  150. static int af9035_rd_reg(struct dvb_usb_device *d, u32 reg, u8 *val)
  151. {
  152. return af9035_rd_regs(d, reg, val, 1);
  153. }
  154. /* write single register with mask */
  155. static int af9035_wr_reg_mask(struct dvb_usb_device *d, u32 reg, u8 val,
  156. u8 mask)
  157. {
  158. int ret;
  159. u8 tmp;
  160. /* no need for read if whole reg is written */
  161. if (mask != 0xff) {
  162. ret = af9035_rd_regs(d, reg, &tmp, 1);
  163. if (ret)
  164. return ret;
  165. val &= mask;
  166. tmp &= ~mask;
  167. val |= tmp;
  168. }
  169. return af9035_wr_regs(d, reg, &val, 1);
  170. }
  171. static int af9035_i2c_master_xfer(struct i2c_adapter *adap,
  172. struct i2c_msg msg[], int num)
  173. {
  174. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  175. struct state *state = d->priv;
  176. int ret;
  177. if (mutex_lock_interruptible(&d->i2c_mutex) < 0)
  178. return -EAGAIN;
  179. /*
  180. * I2C sub header is 5 bytes long. Meaning of those bytes are:
  181. * 0: data len
  182. * 1: I2C addr << 1
  183. * 2: reg addr len
  184. * byte 3 and 4 can be used as reg addr
  185. * 3: reg addr MSB
  186. * used when reg addr len is set to 2
  187. * 4: reg addr LSB
  188. * used when reg addr len is set to 1 or 2
  189. *
  190. * For the simplify we do not use register addr at all.
  191. * NOTE: As a firmware knows tuner type there is very small possibility
  192. * there could be some tuner I2C hacks done by firmware and this may
  193. * lead problems if firmware expects those bytes are used.
  194. */
  195. if (num == 2 && !(msg[0].flags & I2C_M_RD) &&
  196. (msg[1].flags & I2C_M_RD)) {
  197. if (msg[0].len > 40 || msg[1].len > 40) {
  198. /* TODO: correct limits > 40 */
  199. ret = -EOPNOTSUPP;
  200. } else if (msg[0].addr == state->af9033_config[0].i2c_addr) {
  201. /* integrated demod */
  202. u32 reg = msg[0].buf[0] << 16 | msg[0].buf[1] << 8 |
  203. msg[0].buf[2];
  204. ret = af9035_rd_regs(d, reg, &msg[1].buf[0],
  205. msg[1].len);
  206. } else {
  207. /* I2C */
  208. u8 buf[5 + msg[0].len];
  209. struct usb_req req = { CMD_I2C_RD, 0, sizeof(buf),
  210. buf, msg[1].len, msg[1].buf };
  211. buf[0] = msg[1].len;
  212. buf[1] = msg[0].addr << 1;
  213. buf[2] = 0x00; /* reg addr len */
  214. buf[3] = 0x00; /* reg addr MSB */
  215. buf[4] = 0x00; /* reg addr LSB */
  216. memcpy(&buf[5], msg[0].buf, msg[0].len);
  217. ret = af9035_ctrl_msg(d->udev, &req);
  218. }
  219. } else if (num == 1 && !(msg[0].flags & I2C_M_RD)) {
  220. if (msg[0].len > 40) {
  221. /* TODO: correct limits > 40 */
  222. ret = -EOPNOTSUPP;
  223. } else if (msg[0].addr == state->af9033_config[0].i2c_addr) {
  224. /* integrated demod */
  225. u32 reg = msg[0].buf[0] << 16 | msg[0].buf[1] << 8 |
  226. msg[0].buf[2];
  227. ret = af9035_wr_regs(d, reg, &msg[0].buf[3],
  228. msg[0].len - 3);
  229. } else {
  230. /* I2C */
  231. u8 buf[5 + msg[0].len];
  232. struct usb_req req = { CMD_I2C_WR, 0, sizeof(buf), buf,
  233. 0, NULL };
  234. buf[0] = msg[0].len;
  235. buf[1] = msg[0].addr << 1;
  236. buf[2] = 0x00; /* reg addr len */
  237. buf[3] = 0x00; /* reg addr MSB */
  238. buf[4] = 0x00; /* reg addr LSB */
  239. memcpy(&buf[5], msg[0].buf, msg[0].len);
  240. ret = af9035_ctrl_msg(d->udev, &req);
  241. }
  242. } else {
  243. /*
  244. * We support only two kind of I2C transactions:
  245. * 1) 1 x read + 1 x write
  246. * 2) 1 x write
  247. */
  248. ret = -EOPNOTSUPP;
  249. }
  250. mutex_unlock(&d->i2c_mutex);
  251. if (ret < 0)
  252. return ret;
  253. else
  254. return num;
  255. }
  256. static u32 af9035_i2c_functionality(struct i2c_adapter *adapter)
  257. {
  258. return I2C_FUNC_I2C;
  259. }
  260. static struct i2c_algorithm af9035_i2c_algo = {
  261. .master_xfer = af9035_i2c_master_xfer,
  262. .functionality = af9035_i2c_functionality,
  263. };
  264. #define AF9035_POLL 250
  265. static int af9035_rc_query(struct dvb_usb_device *d)
  266. {
  267. unsigned int key;
  268. unsigned char b[4];
  269. int ret;
  270. struct usb_req req = { CMD_IR_GET, 0, 0, NULL, 4, b };
  271. ret = af9035_ctrl_msg(d->udev, &req);
  272. if (ret < 0)
  273. goto err;
  274. if ((b[2] + b[3]) == 0xff) {
  275. if ((b[0] + b[1]) == 0xff) {
  276. /* NEC */
  277. key = b[0] << 8 | b[2];
  278. } else {
  279. /* ext. NEC */
  280. key = b[0] << 16 | b[1] << 8 | b[2];
  281. }
  282. } else {
  283. key = b[0] << 24 | b[1] << 16 | b[2] << 8 | b[3];
  284. }
  285. rc_keydown(d->rc_dev, key, 0);
  286. err:
  287. /* ignore errors */
  288. return 0;
  289. }
  290. static int af9035_init(struct dvb_usb_device *d)
  291. {
  292. struct state *state = d->priv;
  293. int ret, i;
  294. u16 frame_size = 87 * 188 / 4;
  295. u8 packet_size = 512 / 4;
  296. struct reg_val_mask tab[] = {
  297. { 0x80f99d, 0x01, 0x01 },
  298. { 0x80f9a4, 0x01, 0x01 },
  299. { 0x00dd11, 0x00, 0x20 },
  300. { 0x00dd11, 0x00, 0x40 },
  301. { 0x00dd13, 0x00, 0x20 },
  302. { 0x00dd13, 0x00, 0x40 },
  303. { 0x00dd11, 0x20, 0x20 },
  304. { 0x00dd88, (frame_size >> 0) & 0xff, 0xff},
  305. { 0x00dd89, (frame_size >> 8) & 0xff, 0xff},
  306. { 0x00dd0c, packet_size, 0xff},
  307. { 0x00dd11, state->dual_mode << 6, 0x40 },
  308. { 0x00dd8a, (frame_size >> 0) & 0xff, 0xff},
  309. { 0x00dd8b, (frame_size >> 8) & 0xff, 0xff},
  310. { 0x00dd0d, packet_size, 0xff },
  311. { 0x80f9a3, 0x00, 0x01 },
  312. { 0x80f9cd, 0x00, 0x01 },
  313. { 0x80f99d, 0x00, 0x01 },
  314. { 0x80f9a4, 0x00, 0x01 },
  315. };
  316. pr_debug("%s: USB speed=%d frame_size=%04x packet_size=%02x\n",
  317. __func__, d->udev->speed, frame_size, packet_size);
  318. /* init endpoints */
  319. for (i = 0; i < ARRAY_SIZE(tab); i++) {
  320. ret = af9035_wr_reg_mask(d, tab[i].reg, tab[i].val,
  321. tab[i].mask);
  322. if (ret < 0)
  323. goto err;
  324. }
  325. return 0;
  326. err:
  327. pr_debug("%s: failed=%d\n", __func__, ret);
  328. return ret;
  329. }
  330. static int af9035_identify_state(struct usb_device *udev,
  331. struct dvb_usb_device_properties *props,
  332. struct dvb_usb_device_description **desc,
  333. int *cold)
  334. {
  335. int ret;
  336. u8 wbuf[1] = { 1 };
  337. u8 rbuf[4];
  338. struct usb_req req = { CMD_FW_QUERYINFO, 0, sizeof(wbuf), wbuf,
  339. sizeof(rbuf), rbuf };
  340. ret = af9035_ctrl_msg(udev, &req);
  341. if (ret < 0)
  342. goto err;
  343. pr_debug("%s: reply=%02x %02x %02x %02x\n", __func__,
  344. rbuf[0], rbuf[1], rbuf[2], rbuf[3]);
  345. if (rbuf[0] || rbuf[1] || rbuf[2] || rbuf[3])
  346. *cold = 0;
  347. else
  348. *cold = 1;
  349. return 0;
  350. err:
  351. pr_debug("%s: failed=%d\n", __func__, ret);
  352. return ret;
  353. }
  354. static int af9035_download_firmware(struct usb_device *udev,
  355. const struct firmware *fw)
  356. {
  357. int ret, i, j, len;
  358. u8 wbuf[1];
  359. u8 rbuf[4];
  360. struct usb_req req = { 0, 0, 0, NULL, 0, NULL };
  361. struct usb_req req_fw_dl = { CMD_FW_DL, 0, 0, wbuf, 0, NULL };
  362. struct usb_req req_fw_ver = { CMD_FW_QUERYINFO, 0, 1, wbuf, 4, rbuf } ;
  363. u8 hdr_core;
  364. u16 hdr_addr, hdr_data_len, hdr_checksum;
  365. #define MAX_DATA 58
  366. #define HDR_SIZE 7
  367. /*
  368. * Thanks to Daniel Glöckner <daniel-gl@gmx.net> about that info!
  369. *
  370. * byte 0: MCS 51 core
  371. * There are two inside the AF9035 (1=Link and 2=OFDM) with separate
  372. * address spaces
  373. * byte 1-2: Big endian destination address
  374. * byte 3-4: Big endian number of data bytes following the header
  375. * byte 5-6: Big endian header checksum, apparently ignored by the chip
  376. * Calculated as ~(h[0]*256+h[1]+h[2]*256+h[3]+h[4]*256)
  377. */
  378. for (i = fw->size; i > HDR_SIZE;) {
  379. hdr_core = fw->data[fw->size - i + 0];
  380. hdr_addr = fw->data[fw->size - i + 1] << 8;
  381. hdr_addr |= fw->data[fw->size - i + 2] << 0;
  382. hdr_data_len = fw->data[fw->size - i + 3] << 8;
  383. hdr_data_len |= fw->data[fw->size - i + 4] << 0;
  384. hdr_checksum = fw->data[fw->size - i + 5] << 8;
  385. hdr_checksum |= fw->data[fw->size - i + 6] << 0;
  386. pr_debug("%s: core=%d addr=%04x data_len=%d checksum=%04x\n",
  387. __func__, hdr_core, hdr_addr, hdr_data_len,
  388. hdr_checksum);
  389. if (((hdr_core != 1) && (hdr_core != 2)) ||
  390. (hdr_data_len > i)) {
  391. pr_debug("%s: bad firmware\n", __func__);
  392. break;
  393. }
  394. /* download begin packet */
  395. req.cmd = CMD_FW_DL_BEGIN;
  396. ret = af9035_ctrl_msg(udev, &req);
  397. if (ret < 0)
  398. goto err;
  399. /* download firmware packet(s) */
  400. for (j = HDR_SIZE + hdr_data_len; j > 0; j -= MAX_DATA) {
  401. len = j;
  402. if (len > MAX_DATA)
  403. len = MAX_DATA;
  404. req_fw_dl.wlen = len;
  405. req_fw_dl.wbuf = (u8 *) &fw->data[fw->size - i +
  406. HDR_SIZE + hdr_data_len - j];
  407. ret = af9035_ctrl_msg(udev, &req_fw_dl);
  408. if (ret < 0)
  409. goto err;
  410. }
  411. /* download end packet */
  412. req.cmd = CMD_FW_DL_END;
  413. ret = af9035_ctrl_msg(udev, &req);
  414. if (ret < 0)
  415. goto err;
  416. i -= hdr_data_len + HDR_SIZE;
  417. pr_debug("%s: data uploaded=%zu\n", __func__, fw->size - i);
  418. }
  419. /* firmware loaded, request boot */
  420. req.cmd = CMD_FW_BOOT;
  421. ret = af9035_ctrl_msg(udev, &req);
  422. if (ret < 0)
  423. goto err;
  424. /* ensure firmware starts */
  425. wbuf[0] = 1;
  426. ret = af9035_ctrl_msg(udev, &req_fw_ver);
  427. if (ret < 0)
  428. goto err;
  429. if (!(rbuf[0] || rbuf[1] || rbuf[2] || rbuf[3])) {
  430. info("firmware did not run");
  431. ret = -ENODEV;
  432. goto err;
  433. }
  434. info("firmware version=%d.%d.%d.%d", rbuf[0], rbuf[1], rbuf[2],
  435. rbuf[3]);
  436. return 0;
  437. err:
  438. pr_debug("%s: failed=%d\n", __func__, ret);
  439. return ret;
  440. }
  441. static int af9035_download_firmware_it9135(struct usb_device *udev,
  442. const struct firmware *fw)
  443. {
  444. int ret, i, i_prev;
  445. u8 wbuf[1];
  446. u8 rbuf[4];
  447. struct usb_req req = { 0, 0, 0, NULL, 0, NULL };
  448. struct usb_req req_fw_dl = { CMD_FW_SCATTER_WR, 0, 0, NULL, 0, NULL };
  449. struct usb_req req_fw_ver = { CMD_FW_QUERYINFO, 0, 1, wbuf, 4, rbuf } ;
  450. #define HDR_SIZE 7
  451. /*
  452. * There seems to be following firmware header. Meaning of bytes 0-3
  453. * is unknown.
  454. *
  455. * 0: 3
  456. * 1: 0, 1
  457. * 2: 0
  458. * 3: 1, 2, 3
  459. * 4: addr MSB
  460. * 5: addr LSB
  461. * 6: count of data bytes ?
  462. */
  463. for (i = HDR_SIZE, i_prev = 0; i <= fw->size; i++) {
  464. if (i == fw->size ||
  465. (fw->data[i + 0] == 0x03 &&
  466. (fw->data[i + 1] == 0x00 ||
  467. fw->data[i + 1] == 0x01) &&
  468. fw->data[i + 2] == 0x00)) {
  469. req_fw_dl.wlen = i - i_prev;
  470. req_fw_dl.wbuf = (u8 *) &fw->data[i_prev];
  471. i_prev = i;
  472. ret = af9035_ctrl_msg(udev, &req_fw_dl);
  473. if (ret < 0)
  474. goto err;
  475. pr_debug("%s: data uploaded=%d\n", __func__, i);
  476. }
  477. }
  478. /* firmware loaded, request boot */
  479. req.cmd = CMD_FW_BOOT;
  480. ret = af9035_ctrl_msg(udev, &req);
  481. if (ret < 0)
  482. goto err;
  483. /* ensure firmware starts */
  484. wbuf[0] = 1;
  485. ret = af9035_ctrl_msg(udev, &req_fw_ver);
  486. if (ret < 0)
  487. goto err;
  488. if (!(rbuf[0] || rbuf[1] || rbuf[2] || rbuf[3])) {
  489. info("firmware did not run");
  490. ret = -ENODEV;
  491. goto err;
  492. }
  493. info("firmware version=%d.%d.%d.%d", rbuf[0], rbuf[1], rbuf[2],
  494. rbuf[3]);
  495. return 0;
  496. err:
  497. pr_debug("%s: failed=%d\n", __func__, ret);
  498. return ret;
  499. }
  500. /* abuse that callback as there is no better one for reading eeprom */
  501. static int af9035_read_mac_address(struct dvb_usb_device *d, u8 mac[6])
  502. {
  503. struct state *state = d->priv;
  504. int ret, i, eeprom_shift = 0;
  505. u8 tmp;
  506. u16 tmp16;
  507. /* check if there is dual tuners */
  508. ret = af9035_rd_reg(d, EEPROM_DUAL_MODE, &tmp);
  509. if (ret < 0)
  510. goto err;
  511. state->dual_mode = tmp;
  512. pr_debug("%s: dual mode=%d\n", __func__, state->dual_mode);
  513. for (i = 0; i < af9035_properties[0].num_adapters; i++) {
  514. /* tuner */
  515. ret = af9035_rd_reg(d, EEPROM_1_TUNER_ID + eeprom_shift, &tmp);
  516. if (ret < 0)
  517. goto err;
  518. state->af9033_config[i].tuner = tmp;
  519. pr_debug("%s: [%d]tuner=%02x\n", __func__, i, tmp);
  520. switch (tmp) {
  521. case AF9033_TUNER_TUA9001:
  522. case AF9033_TUNER_FC0011:
  523. case AF9033_TUNER_MXL5007T:
  524. case AF9033_TUNER_TDA18218:
  525. state->af9033_config[i].spec_inv = 1;
  526. break;
  527. default:
  528. warn("tuner ID=%02x not supported, please report!",
  529. tmp);
  530. };
  531. /* tuner IF frequency */
  532. ret = af9035_rd_reg(d, EEPROM_1_IFFREQ_L + eeprom_shift, &tmp);
  533. if (ret < 0)
  534. goto err;
  535. tmp16 = tmp;
  536. ret = af9035_rd_reg(d, EEPROM_1_IFFREQ_H + eeprom_shift, &tmp);
  537. if (ret < 0)
  538. goto err;
  539. tmp16 |= tmp << 8;
  540. pr_debug("%s: [%d]IF=%d\n", __func__, i, tmp16);
  541. eeprom_shift = 0x10; /* shift for the 2nd tuner params */
  542. }
  543. /* get demod clock */
  544. ret = af9035_rd_reg(d, 0x00d800, &tmp);
  545. if (ret < 0)
  546. goto err;
  547. tmp = (tmp >> 0) & 0x0f;
  548. for (i = 0; i < af9035_properties[0].num_adapters; i++)
  549. state->af9033_config[i].clock = clock_lut[tmp];
  550. ret = af9035_rd_reg(d, EEPROM_IR_MODE, &tmp);
  551. if (ret < 0)
  552. goto err;
  553. pr_debug("%s: ir_mode=%02x\n", __func__, tmp);
  554. /* don't activate rc if in HID mode or if not available */
  555. if (tmp == 5) {
  556. ret = af9035_rd_reg(d, EEPROM_IR_TYPE, &tmp);
  557. if (ret < 0)
  558. goto err;
  559. pr_debug("%s: ir_type=%02x\n", __func__, tmp);
  560. switch (tmp) {
  561. case 0: /* NEC */
  562. default:
  563. d->props.rc.core.protocol = RC_TYPE_NEC;
  564. d->props.rc.core.allowed_protos = RC_TYPE_NEC;
  565. break;
  566. case 1: /* RC6 */
  567. d->props.rc.core.protocol = RC_TYPE_RC6;
  568. d->props.rc.core.allowed_protos = RC_TYPE_RC6;
  569. break;
  570. }
  571. d->props.rc.core.rc_query = af9035_rc_query;
  572. }
  573. return 0;
  574. err:
  575. pr_debug("%s: failed=%d\n", __func__, ret);
  576. return ret;
  577. }
  578. /* abuse that callback as there is no better one for reading eeprom */
  579. static int af9035_read_mac_address_it9135(struct dvb_usb_device *d, u8 mac[6])
  580. {
  581. struct state *state = d->priv;
  582. int ret, i;
  583. u8 tmp;
  584. state->dual_mode = false;
  585. /* get demod clock */
  586. ret = af9035_rd_reg(d, 0x00d800, &tmp);
  587. if (ret < 0)
  588. goto err;
  589. tmp = (tmp >> 0) & 0x0f;
  590. for (i = 0; i < af9035_properties[0].num_adapters; i++)
  591. state->af9033_config[i].clock = clock_lut_it9135[tmp];
  592. return 0;
  593. err:
  594. pr_debug("%s: failed=%d\n", __func__, ret);
  595. return ret;
  596. }
  597. static int af9035_fc0011_tuner_callback(struct dvb_usb_device *d,
  598. int cmd, int arg)
  599. {
  600. int ret;
  601. switch (cmd) {
  602. case FC0011_FE_CALLBACK_POWER:
  603. /* Tuner enable */
  604. ret = af9035_wr_reg_mask(d, 0xd8eb, 1, 1);
  605. if (ret < 0)
  606. goto err;
  607. ret = af9035_wr_reg_mask(d, 0xd8ec, 1, 1);
  608. if (ret < 0)
  609. goto err;
  610. ret = af9035_wr_reg_mask(d, 0xd8ed, 1, 1);
  611. if (ret < 0)
  612. goto err;
  613. /* LED */
  614. ret = af9035_wr_reg_mask(d, 0xd8d0, 1, 1);
  615. if (ret < 0)
  616. goto err;
  617. ret = af9035_wr_reg_mask(d, 0xd8d1, 1, 1);
  618. if (ret < 0)
  619. goto err;
  620. usleep_range(10000, 50000);
  621. break;
  622. case FC0011_FE_CALLBACK_RESET:
  623. ret = af9035_wr_reg(d, 0xd8e9, 1);
  624. if (ret < 0)
  625. goto err;
  626. ret = af9035_wr_reg(d, 0xd8e8, 1);
  627. if (ret < 0)
  628. goto err;
  629. ret = af9035_wr_reg(d, 0xd8e7, 1);
  630. if (ret < 0)
  631. goto err;
  632. usleep_range(10000, 20000);
  633. ret = af9035_wr_reg(d, 0xd8e7, 0);
  634. if (ret < 0)
  635. goto err;
  636. usleep_range(10000, 20000);
  637. break;
  638. default:
  639. ret = -EINVAL;
  640. goto err;
  641. }
  642. return 0;
  643. err:
  644. pr_debug("%s: failed=%d\n", __func__, ret);
  645. return ret;
  646. }
  647. static int af9035_tuner_callback(struct dvb_usb_device *d, int cmd, int arg)
  648. {
  649. struct state *state = d->priv;
  650. switch (state->af9033_config[0].tuner) {
  651. case AF9033_TUNER_FC0011:
  652. return af9035_fc0011_tuner_callback(d, cmd, arg);
  653. default:
  654. break;
  655. }
  656. return -ENODEV;
  657. }
  658. static int af9035_frontend_callback(void *adapter_priv, int component,
  659. int cmd, int arg)
  660. {
  661. struct i2c_adapter *adap = adapter_priv;
  662. struct dvb_usb_device *d = i2c_get_adapdata(adap);
  663. switch (component) {
  664. case DVB_FRONTEND_COMPONENT_TUNER:
  665. return af9035_tuner_callback(d, cmd, arg);
  666. default:
  667. break;
  668. }
  669. return -EINVAL;
  670. }
  671. static int af9035_frontend_attach(struct dvb_usb_adapter *adap)
  672. {
  673. struct state *state = adap->dev->priv;
  674. int ret;
  675. if (!state->af9033_config[adap->id].tuner) {
  676. /* unsupported tuner */
  677. ret = -ENODEV;
  678. goto err;
  679. }
  680. if (adap->id == 0) {
  681. state->af9033_config[0].ts_mode = AF9033_TS_MODE_USB;
  682. state->af9033_config[1].ts_mode = AF9033_TS_MODE_SERIAL;
  683. ret = af9035_wr_reg(adap->dev, 0x00417f,
  684. state->af9033_config[1].i2c_addr);
  685. if (ret < 0)
  686. goto err;
  687. ret = af9035_wr_reg(adap->dev, 0x00d81a,
  688. state->dual_mode);
  689. if (ret < 0)
  690. goto err;
  691. }
  692. /* attach demodulator */
  693. adap->fe_adap[0].fe = dvb_attach(af9033_attach,
  694. &state->af9033_config[adap->id], &adap->dev->i2c_adap);
  695. if (adap->fe_adap[0].fe == NULL) {
  696. ret = -ENODEV;
  697. goto err;
  698. }
  699. /* disable I2C-gate */
  700. adap->fe_adap[0].fe->ops.i2c_gate_ctrl = NULL;
  701. adap->fe_adap[0].fe->callback = af9035_frontend_callback;
  702. return 0;
  703. err:
  704. pr_debug("%s: failed=%d\n", __func__, ret);
  705. return ret;
  706. }
  707. static struct tua9001_config af9035_tua9001_config = {
  708. .i2c_addr = 0x60,
  709. };
  710. static const struct fc0011_config af9035_fc0011_config = {
  711. .i2c_address = 0x60,
  712. };
  713. static struct mxl5007t_config af9035_mxl5007t_config = {
  714. .xtal_freq_hz = MxL_XTAL_24_MHZ,
  715. .if_freq_hz = MxL_IF_4_57_MHZ,
  716. .invert_if = 0,
  717. .loop_thru_enable = 0,
  718. .clk_out_enable = 0,
  719. .clk_out_amp = MxL_CLKOUT_AMP_0_94V,
  720. };
  721. static struct tda18218_config af9035_tda18218_config = {
  722. .i2c_address = 0x60,
  723. .i2c_wr_max = 21,
  724. };
  725. static int af9035_tuner_attach(struct dvb_usb_adapter *adap)
  726. {
  727. struct state *state = adap->dev->priv;
  728. int ret;
  729. struct dvb_frontend *fe;
  730. switch (state->af9033_config[adap->id].tuner) {
  731. case AF9033_TUNER_TUA9001:
  732. /* AF9035 gpiot3 = TUA9001 RESETN
  733. AF9035 gpiot2 = TUA9001 RXEN */
  734. /* configure gpiot2 and gpiot2 as output */
  735. ret = af9035_wr_reg_mask(adap->dev, 0x00d8ec, 0x01, 0x01);
  736. if (ret < 0)
  737. goto err;
  738. ret = af9035_wr_reg_mask(adap->dev, 0x00d8ed, 0x01, 0x01);
  739. if (ret < 0)
  740. goto err;
  741. ret = af9035_wr_reg_mask(adap->dev, 0x00d8e8, 0x01, 0x01);
  742. if (ret < 0)
  743. goto err;
  744. ret = af9035_wr_reg_mask(adap->dev, 0x00d8e9, 0x01, 0x01);
  745. if (ret < 0)
  746. goto err;
  747. /* reset tuner */
  748. ret = af9035_wr_reg_mask(adap->dev, 0x00d8e7, 0x00, 0x01);
  749. if (ret < 0)
  750. goto err;
  751. usleep_range(2000, 20000);
  752. ret = af9035_wr_reg_mask(adap->dev, 0x00d8e7, 0x01, 0x01);
  753. if (ret < 0)
  754. goto err;
  755. /* activate tuner RX */
  756. /* TODO: use callback for TUA9001 RXEN */
  757. ret = af9035_wr_reg_mask(adap->dev, 0x00d8eb, 0x01, 0x01);
  758. if (ret < 0)
  759. goto err;
  760. /* attach tuner */
  761. fe = dvb_attach(tua9001_attach, adap->fe_adap[0].fe,
  762. &adap->dev->i2c_adap, &af9035_tua9001_config);
  763. break;
  764. case AF9033_TUNER_FC0011:
  765. fe = dvb_attach(fc0011_attach, adap->fe_adap[0].fe,
  766. &adap->dev->i2c_adap, &af9035_fc0011_config);
  767. break;
  768. case AF9033_TUNER_MXL5007T:
  769. ret = af9035_wr_reg(adap->dev, 0x00d8e0, 1);
  770. if (ret < 0)
  771. goto err;
  772. ret = af9035_wr_reg(adap->dev, 0x00d8e1, 1);
  773. if (ret < 0)
  774. goto err;
  775. ret = af9035_wr_reg(adap->dev, 0x00d8df, 0);
  776. if (ret < 0)
  777. goto err;
  778. msleep(30);
  779. ret = af9035_wr_reg(adap->dev, 0x00d8df, 1);
  780. if (ret < 0)
  781. goto err;
  782. msleep(300);
  783. ret = af9035_wr_reg(adap->dev, 0x00d8c0, 1);
  784. if (ret < 0)
  785. goto err;
  786. ret = af9035_wr_reg(adap->dev, 0x00d8c1, 1);
  787. if (ret < 0)
  788. goto err;
  789. ret = af9035_wr_reg(adap->dev, 0x00d8bf, 0);
  790. if (ret < 0)
  791. goto err;
  792. ret = af9035_wr_reg(adap->dev, 0x00d8b4, 1);
  793. if (ret < 0)
  794. goto err;
  795. ret = af9035_wr_reg(adap->dev, 0x00d8b5, 1);
  796. if (ret < 0)
  797. goto err;
  798. ret = af9035_wr_reg(adap->dev, 0x00d8b3, 1);
  799. if (ret < 0)
  800. goto err;
  801. /* attach tuner */
  802. fe = dvb_attach(mxl5007t_attach, adap->fe_adap[0].fe,
  803. &adap->dev->i2c_adap, 0x60, &af9035_mxl5007t_config);
  804. break;
  805. case AF9033_TUNER_TDA18218:
  806. /* attach tuner */
  807. fe = dvb_attach(tda18218_attach, adap->fe_adap[0].fe,
  808. &adap->dev->i2c_adap, &af9035_tda18218_config);
  809. break;
  810. default:
  811. fe = NULL;
  812. }
  813. if (fe == NULL) {
  814. ret = -ENODEV;
  815. goto err;
  816. }
  817. return 0;
  818. err:
  819. pr_debug("%s: failed=%d\n", __func__, ret);
  820. return ret;
  821. }
  822. enum af9035_id_entry {
  823. AF9035_15A4_9035,
  824. AF9035_15A4_1000,
  825. AF9035_15A4_1001,
  826. AF9035_15A4_1002,
  827. AF9035_15A4_1003,
  828. AF9035_0CCD_0093,
  829. AF9035_07CA_A835,
  830. AF9035_07CA_B835,
  831. AF9035_07CA_1867,
  832. AF9035_07CA_A867,
  833. AF9035_07CA_0825,
  834. };
  835. static struct usb_device_id af9035_id[] = {
  836. [AF9035_15A4_9035] = {
  837. USB_DEVICE(USB_VID_AFATECH, USB_PID_AFATECH_AF9035_9035)},
  838. [AF9035_15A4_1000] = {
  839. USB_DEVICE(USB_VID_AFATECH, USB_PID_AFATECH_AF9035_1000)},
  840. [AF9035_15A4_1001] = {
  841. USB_DEVICE(USB_VID_AFATECH, USB_PID_AFATECH_AF9035_1001)},
  842. [AF9035_15A4_1002] = {
  843. USB_DEVICE(USB_VID_AFATECH, USB_PID_AFATECH_AF9035_1002)},
  844. [AF9035_15A4_1003] = {
  845. USB_DEVICE(USB_VID_AFATECH, USB_PID_AFATECH_AF9035_1003)},
  846. [AF9035_0CCD_0093] = {
  847. USB_DEVICE(USB_VID_TERRATEC, USB_PID_TERRATEC_CINERGY_T_STICK)},
  848. [AF9035_07CA_A835] = {
  849. USB_DEVICE(USB_VID_AVERMEDIA, USB_PID_AVERMEDIA_A835)},
  850. [AF9035_07CA_B835] = {
  851. USB_DEVICE(USB_VID_AVERMEDIA, USB_PID_AVERMEDIA_B835)},
  852. [AF9035_07CA_1867] = {
  853. USB_DEVICE(USB_VID_AVERMEDIA, USB_PID_AVERMEDIA_1867)},
  854. [AF9035_07CA_A867] = {
  855. USB_DEVICE(USB_VID_AVERMEDIA, USB_PID_AVERMEDIA_A867)},
  856. [AF9035_07CA_0825] = {
  857. USB_DEVICE(USB_VID_AVERMEDIA, USB_PID_AVERMEDIA_TWINSTAR)},
  858. {},
  859. };
  860. MODULE_DEVICE_TABLE(usb, af9035_id);
  861. static struct dvb_usb_device_properties af9035_properties[] = {
  862. {
  863. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  864. .usb_ctrl = DEVICE_SPECIFIC,
  865. .download_firmware = af9035_download_firmware,
  866. .firmware = "dvb-usb-af9035-02.fw",
  867. .no_reconnect = 1,
  868. .size_of_priv = sizeof(struct state),
  869. .num_adapters = 1,
  870. .adapter = {
  871. {
  872. .num_frontends = 1,
  873. .fe = {
  874. {
  875. .frontend_attach = af9035_frontend_attach,
  876. .tuner_attach = af9035_tuner_attach,
  877. .stream = {
  878. .type = USB_BULK,
  879. .count = 6,
  880. .endpoint = 0x84,
  881. .u = {
  882. .bulk = {
  883. .buffersize = (87 * 188),
  884. }
  885. }
  886. }
  887. }
  888. }
  889. }
  890. },
  891. .identify_state = af9035_identify_state,
  892. .read_mac_address = af9035_read_mac_address,
  893. .i2c_algo = &af9035_i2c_algo,
  894. .rc.core = {
  895. .protocol = RC_TYPE_UNKNOWN,
  896. .module_name = "af9035",
  897. .rc_query = NULL,
  898. .rc_interval = AF9035_POLL,
  899. .allowed_protos = RC_TYPE_UNKNOWN,
  900. .rc_codes = RC_MAP_EMPTY,
  901. },
  902. .num_device_descs = 5,
  903. .devices = {
  904. {
  905. .name = "Afatech AF9035 reference design",
  906. .cold_ids = {
  907. &af9035_id[AF9035_15A4_9035],
  908. &af9035_id[AF9035_15A4_1000],
  909. &af9035_id[AF9035_15A4_1001],
  910. &af9035_id[AF9035_15A4_1002],
  911. &af9035_id[AF9035_15A4_1003],
  912. },
  913. }, {
  914. .name = "TerraTec Cinergy T Stick",
  915. .cold_ids = {
  916. &af9035_id[AF9035_0CCD_0093],
  917. },
  918. }, {
  919. .name = "AVerMedia AVerTV Volar HD/PRO (A835)",
  920. .cold_ids = {
  921. &af9035_id[AF9035_07CA_A835],
  922. &af9035_id[AF9035_07CA_B835],
  923. },
  924. }, {
  925. .name = "AVerMedia HD Volar (A867)",
  926. .cold_ids = {
  927. &af9035_id[AF9035_07CA_1867],
  928. &af9035_id[AF9035_07CA_A867],
  929. },
  930. }, {
  931. .name = "AVerMedia Twinstar (A825)",
  932. .cold_ids = {
  933. &af9035_id[AF9035_07CA_0825],
  934. },
  935. },
  936. }
  937. },
  938. {
  939. .caps = DVB_USB_IS_AN_I2C_ADAPTER,
  940. .usb_ctrl = DEVICE_SPECIFIC,
  941. .download_firmware = af9035_download_firmware_it9135,
  942. .firmware = "dvb-usb-it9135-01.fw",
  943. .no_reconnect = 1,
  944. .size_of_priv = sizeof(struct state),
  945. .num_adapters = 1,
  946. .adapter = {
  947. {
  948. .num_frontends = 1,
  949. .fe = {
  950. {
  951. .frontend_attach = af9035_frontend_attach,
  952. .tuner_attach = af9035_tuner_attach,
  953. .stream = {
  954. .type = USB_BULK,
  955. .count = 6,
  956. .endpoint = 0x84,
  957. .u = {
  958. .bulk = {
  959. .buffersize = (87 * 188),
  960. }
  961. }
  962. }
  963. }
  964. }
  965. }
  966. },
  967. .identify_state = af9035_identify_state,
  968. .read_mac_address = af9035_read_mac_address_it9135,
  969. .i2c_algo = &af9035_i2c_algo,
  970. .num_device_descs = 0, /* disabled as no support for IT9135 */
  971. .devices = {
  972. {
  973. .name = "ITE Tech. IT9135 reference design",
  974. },
  975. }
  976. },
  977. };
  978. static int af9035_usb_probe(struct usb_interface *intf,
  979. const struct usb_device_id *id)
  980. {
  981. int ret, i;
  982. struct dvb_usb_device *d = NULL;
  983. struct usb_device *udev;
  984. bool found;
  985. pr_debug("%s: interface=%d\n", __func__,
  986. intf->cur_altsetting->desc.bInterfaceNumber);
  987. /* interface 0 is used by DVB-T receiver and
  988. interface 1 is for remote controller (HID) */
  989. if (intf->cur_altsetting->desc.bInterfaceNumber != 0)
  990. return 0;
  991. /* Dynamic USB ID support. Replaces first device ID with current one. */
  992. udev = interface_to_usbdev(intf);
  993. for (i = 0, found = false; i < ARRAY_SIZE(af9035_id) - 1; i++) {
  994. if (af9035_id[i].idVendor ==
  995. le16_to_cpu(udev->descriptor.idVendor) &&
  996. af9035_id[i].idProduct ==
  997. le16_to_cpu(udev->descriptor.idProduct)) {
  998. found = true;
  999. break;
  1000. }
  1001. }
  1002. if (!found) {
  1003. pr_debug("%s: using dynamic ID %04x:%04x\n", __func__,
  1004. le16_to_cpu(udev->descriptor.idVendor),
  1005. le16_to_cpu(udev->descriptor.idProduct));
  1006. af9035_properties[0].devices[0].cold_ids[0]->idVendor =
  1007. le16_to_cpu(udev->descriptor.idVendor);
  1008. af9035_properties[0].devices[0].cold_ids[0]->idProduct =
  1009. le16_to_cpu(udev->descriptor.idProduct);
  1010. }
  1011. for (i = 0; i < af9035_properties_count; i++) {
  1012. ret = dvb_usb_device_init(intf, &af9035_properties[i],
  1013. THIS_MODULE, &d, adapter_nr);
  1014. if (ret == -ENODEV)
  1015. continue;
  1016. else
  1017. break;
  1018. }
  1019. if (ret < 0)
  1020. goto err;
  1021. if (d) {
  1022. ret = af9035_init(d);
  1023. if (ret < 0)
  1024. goto err;
  1025. }
  1026. return 0;
  1027. err:
  1028. pr_debug("%s: failed=%d\n", __func__, ret);
  1029. return ret;
  1030. }
  1031. /* usb specific object needed to register this driver with the usb subsystem */
  1032. static struct usb_driver af9035_usb_driver = {
  1033. .name = "dvb_usb_af9035",
  1034. .probe = af9035_usb_probe,
  1035. .disconnect = dvb_usb_device_exit,
  1036. .id_table = af9035_id,
  1037. };
  1038. module_usb_driver(af9035_usb_driver);
  1039. MODULE_AUTHOR("Antti Palosaari <crope@iki.fi>");
  1040. MODULE_DESCRIPTION("Afatech AF9035 driver");
  1041. MODULE_LICENSE("GPL");