tda18271-fe.c 29 KB

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  1. /*
  2. tda18271-fe.c - driver for the Philips / NXP TDA18271 silicon tuner
  3. Copyright (C) 2007, 2008 Michael Krufky <mkrufky@linuxtv.org>
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the Free Software
  14. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  15. */
  16. #include <linux/delay.h>
  17. #include <linux/videodev2.h>
  18. #include "tda18271-priv.h"
  19. int tda18271_debug;
  20. module_param_named(debug, tda18271_debug, int, 0644);
  21. MODULE_PARM_DESC(debug, "set debug level "
  22. "(info=1, map=2, reg=4, adv=8, cal=16 (or-able))");
  23. static int tda18271_cal_on_startup;
  24. module_param_named(cal, tda18271_cal_on_startup, int, 0644);
  25. MODULE_PARM_DESC(cal, "perform RF tracking filter calibration on startup");
  26. static DEFINE_MUTEX(tda18271_list_mutex);
  27. static LIST_HEAD(hybrid_tuner_instance_list);
  28. /*---------------------------------------------------------------------*/
  29. static inline int charge_pump_source(struct dvb_frontend *fe, int force)
  30. {
  31. struct tda18271_priv *priv = fe->tuner_priv;
  32. return tda18271_charge_pump_source(fe,
  33. (priv->role == TDA18271_SLAVE) ?
  34. TDA18271_CAL_PLL :
  35. TDA18271_MAIN_PLL, force);
  36. }
  37. static inline void tda18271_set_if_notch(struct dvb_frontend *fe)
  38. {
  39. struct tda18271_priv *priv = fe->tuner_priv;
  40. unsigned char *regs = priv->tda18271_regs;
  41. switch (priv->mode) {
  42. case TDA18271_ANALOG:
  43. regs[R_MPD] &= ~0x80; /* IF notch = 0 */
  44. break;
  45. case TDA18271_DIGITAL:
  46. regs[R_MPD] |= 0x80; /* IF notch = 1 */
  47. break;
  48. }
  49. }
  50. static int tda18271_channel_configuration(struct dvb_frontend *fe,
  51. struct tda18271_std_map_item *map,
  52. u32 freq, u32 bw)
  53. {
  54. struct tda18271_priv *priv = fe->tuner_priv;
  55. unsigned char *regs = priv->tda18271_regs;
  56. int ret;
  57. u32 N;
  58. /* update TV broadcast parameters */
  59. /* set standard */
  60. regs[R_EP3] &= ~0x1f; /* clear std bits */
  61. regs[R_EP3] |= (map->agc_mode << 3) | map->std;
  62. if (priv->id == TDA18271HDC2) {
  63. /* set rfagc to high speed mode */
  64. regs[R_EP3] &= ~0x04;
  65. }
  66. /* set cal mode to normal */
  67. regs[R_EP4] &= ~0x03;
  68. /* update IF output level */
  69. regs[R_EP4] &= ~0x1c; /* clear if level bits */
  70. regs[R_EP4] |= (map->if_lvl << 2);
  71. /* update FM_RFn */
  72. regs[R_EP4] &= ~0x80;
  73. regs[R_EP4] |= map->fm_rfn << 7;
  74. /* update rf top / if top */
  75. regs[R_EB22] = 0x00;
  76. regs[R_EB22] |= map->rfagc_top;
  77. ret = tda18271_write_regs(fe, R_EB22, 1);
  78. if (tda_fail(ret))
  79. goto fail;
  80. /* --------------------------------------------------------------- */
  81. /* disable Power Level Indicator */
  82. regs[R_EP1] |= 0x40;
  83. /* make sure thermometer is off */
  84. regs[R_TM] &= ~0x10;
  85. /* frequency dependent parameters */
  86. tda18271_calc_ir_measure(fe, &freq);
  87. tda18271_calc_bp_filter(fe, &freq);
  88. tda18271_calc_rf_band(fe, &freq);
  89. tda18271_calc_gain_taper(fe, &freq);
  90. /* --------------------------------------------------------------- */
  91. /* dual tuner and agc1 extra configuration */
  92. switch (priv->role) {
  93. case TDA18271_MASTER:
  94. regs[R_EB1] |= 0x04; /* main vco */
  95. break;
  96. case TDA18271_SLAVE:
  97. regs[R_EB1] &= ~0x04; /* cal vco */
  98. break;
  99. }
  100. /* agc1 always active */
  101. regs[R_EB1] &= ~0x02;
  102. /* agc1 has priority on agc2 */
  103. regs[R_EB1] &= ~0x01;
  104. ret = tda18271_write_regs(fe, R_EB1, 1);
  105. if (tda_fail(ret))
  106. goto fail;
  107. /* --------------------------------------------------------------- */
  108. N = map->if_freq * 1000 + freq;
  109. switch (priv->role) {
  110. case TDA18271_MASTER:
  111. tda18271_calc_main_pll(fe, N);
  112. tda18271_set_if_notch(fe);
  113. tda18271_write_regs(fe, R_MPD, 4);
  114. break;
  115. case TDA18271_SLAVE:
  116. tda18271_calc_cal_pll(fe, N);
  117. tda18271_write_regs(fe, R_CPD, 4);
  118. regs[R_MPD] = regs[R_CPD] & 0x7f;
  119. tda18271_set_if_notch(fe);
  120. tda18271_write_regs(fe, R_MPD, 1);
  121. break;
  122. }
  123. ret = tda18271_write_regs(fe, R_TM, 7);
  124. if (tda_fail(ret))
  125. goto fail;
  126. /* force charge pump source */
  127. charge_pump_source(fe, 1);
  128. msleep(1);
  129. /* return pll to normal operation */
  130. charge_pump_source(fe, 0);
  131. msleep(20);
  132. if (priv->id == TDA18271HDC2) {
  133. /* set rfagc to normal speed mode */
  134. if (map->fm_rfn)
  135. regs[R_EP3] &= ~0x04;
  136. else
  137. regs[R_EP3] |= 0x04;
  138. ret = tda18271_write_regs(fe, R_EP3, 1);
  139. }
  140. fail:
  141. return ret;
  142. }
  143. static int tda18271_read_thermometer(struct dvb_frontend *fe)
  144. {
  145. struct tda18271_priv *priv = fe->tuner_priv;
  146. unsigned char *regs = priv->tda18271_regs;
  147. int tm;
  148. /* switch thermometer on */
  149. regs[R_TM] |= 0x10;
  150. tda18271_write_regs(fe, R_TM, 1);
  151. /* read thermometer info */
  152. tda18271_read_regs(fe);
  153. if ((((regs[R_TM] & 0x0f) == 0x00) && ((regs[R_TM] & 0x20) == 0x20)) ||
  154. (((regs[R_TM] & 0x0f) == 0x08) && ((regs[R_TM] & 0x20) == 0x00))) {
  155. if ((regs[R_TM] & 0x20) == 0x20)
  156. regs[R_TM] &= ~0x20;
  157. else
  158. regs[R_TM] |= 0x20;
  159. tda18271_write_regs(fe, R_TM, 1);
  160. msleep(10); /* temperature sensing */
  161. /* read thermometer info */
  162. tda18271_read_regs(fe);
  163. }
  164. tm = tda18271_lookup_thermometer(fe);
  165. /* switch thermometer off */
  166. regs[R_TM] &= ~0x10;
  167. tda18271_write_regs(fe, R_TM, 1);
  168. /* set CAL mode to normal */
  169. regs[R_EP4] &= ~0x03;
  170. tda18271_write_regs(fe, R_EP4, 1);
  171. return tm;
  172. }
  173. /* ------------------------------------------------------------------ */
  174. static int tda18271c2_rf_tracking_filters_correction(struct dvb_frontend *fe,
  175. u32 freq)
  176. {
  177. struct tda18271_priv *priv = fe->tuner_priv;
  178. struct tda18271_rf_tracking_filter_cal *map = priv->rf_cal_state;
  179. unsigned char *regs = priv->tda18271_regs;
  180. int tm_current, rfcal_comp, approx, i, ret;
  181. u8 dc_over_dt, rf_tab;
  182. /* power up */
  183. ret = tda18271_set_standby_mode(fe, 0, 0, 0);
  184. if (tda_fail(ret))
  185. goto fail;
  186. /* read die current temperature */
  187. tm_current = tda18271_read_thermometer(fe);
  188. /* frequency dependent parameters */
  189. tda18271_calc_rf_cal(fe, &freq);
  190. rf_tab = regs[R_EB14];
  191. i = tda18271_lookup_rf_band(fe, &freq, NULL);
  192. if (tda_fail(i))
  193. return i;
  194. if ((0 == map[i].rf3) || (freq / 1000 < map[i].rf2)) {
  195. approx = map[i].rf_a1 *
  196. (freq / 1000 - map[i].rf1) + map[i].rf_b1 + rf_tab;
  197. } else {
  198. approx = map[i].rf_a2 *
  199. (freq / 1000 - map[i].rf2) + map[i].rf_b2 + rf_tab;
  200. }
  201. if (approx < 0)
  202. approx = 0;
  203. if (approx > 255)
  204. approx = 255;
  205. tda18271_lookup_map(fe, RF_CAL_DC_OVER_DT, &freq, &dc_over_dt);
  206. /* calculate temperature compensation */
  207. rfcal_comp = dc_over_dt * (tm_current - priv->tm_rfcal);
  208. regs[R_EB14] = approx + rfcal_comp;
  209. ret = tda18271_write_regs(fe, R_EB14, 1);
  210. fail:
  211. return ret;
  212. }
  213. static int tda18271_por(struct dvb_frontend *fe)
  214. {
  215. struct tda18271_priv *priv = fe->tuner_priv;
  216. unsigned char *regs = priv->tda18271_regs;
  217. int ret;
  218. /* power up detector 1 */
  219. regs[R_EB12] &= ~0x20;
  220. ret = tda18271_write_regs(fe, R_EB12, 1);
  221. if (tda_fail(ret))
  222. goto fail;
  223. regs[R_EB18] &= ~0x80; /* turn agc1 loop on */
  224. regs[R_EB18] &= ~0x03; /* set agc1_gain to 6 dB */
  225. ret = tda18271_write_regs(fe, R_EB18, 1);
  226. if (tda_fail(ret))
  227. goto fail;
  228. regs[R_EB21] |= 0x03; /* set agc2_gain to -6 dB */
  229. /* POR mode */
  230. ret = tda18271_set_standby_mode(fe, 1, 0, 0);
  231. if (tda_fail(ret))
  232. goto fail;
  233. /* disable 1.5 MHz low pass filter */
  234. regs[R_EB23] &= ~0x04; /* forcelp_fc2_en = 0 */
  235. regs[R_EB23] &= ~0x02; /* XXX: lp_fc[2] = 0 */
  236. ret = tda18271_write_regs(fe, R_EB21, 3);
  237. fail:
  238. return ret;
  239. }
  240. static int tda18271_calibrate_rf(struct dvb_frontend *fe, u32 freq)
  241. {
  242. struct tda18271_priv *priv = fe->tuner_priv;
  243. unsigned char *regs = priv->tda18271_regs;
  244. u32 N;
  245. /* set CAL mode to normal */
  246. regs[R_EP4] &= ~0x03;
  247. tda18271_write_regs(fe, R_EP4, 1);
  248. /* switch off agc1 */
  249. regs[R_EP3] |= 0x40; /* sm_lt = 1 */
  250. regs[R_EB18] |= 0x03; /* set agc1_gain to 15 dB */
  251. tda18271_write_regs(fe, R_EB18, 1);
  252. /* frequency dependent parameters */
  253. tda18271_calc_bp_filter(fe, &freq);
  254. tda18271_calc_gain_taper(fe, &freq);
  255. tda18271_calc_rf_band(fe, &freq);
  256. tda18271_calc_km(fe, &freq);
  257. tda18271_write_regs(fe, R_EP1, 3);
  258. tda18271_write_regs(fe, R_EB13, 1);
  259. /* main pll charge pump source */
  260. tda18271_charge_pump_source(fe, TDA18271_MAIN_PLL, 1);
  261. /* cal pll charge pump source */
  262. tda18271_charge_pump_source(fe, TDA18271_CAL_PLL, 1);
  263. /* force dcdc converter to 0 V */
  264. regs[R_EB14] = 0x00;
  265. tda18271_write_regs(fe, R_EB14, 1);
  266. /* disable plls lock */
  267. regs[R_EB20] &= ~0x20;
  268. tda18271_write_regs(fe, R_EB20, 1);
  269. /* set CAL mode to RF tracking filter calibration */
  270. regs[R_EP4] |= 0x03;
  271. tda18271_write_regs(fe, R_EP4, 2);
  272. /* --------------------------------------------------------------- */
  273. /* set the internal calibration signal */
  274. N = freq;
  275. tda18271_calc_cal_pll(fe, N);
  276. tda18271_write_regs(fe, R_CPD, 4);
  277. /* downconvert internal calibration */
  278. N += 1000000;
  279. tda18271_calc_main_pll(fe, N);
  280. tda18271_write_regs(fe, R_MPD, 4);
  281. msleep(5);
  282. tda18271_write_regs(fe, R_EP2, 1);
  283. tda18271_write_regs(fe, R_EP1, 1);
  284. tda18271_write_regs(fe, R_EP2, 1);
  285. tda18271_write_regs(fe, R_EP1, 1);
  286. /* --------------------------------------------------------------- */
  287. /* normal operation for the main pll */
  288. tda18271_charge_pump_source(fe, TDA18271_MAIN_PLL, 0);
  289. /* normal operation for the cal pll */
  290. tda18271_charge_pump_source(fe, TDA18271_CAL_PLL, 0);
  291. msleep(10); /* plls locking */
  292. /* launch the rf tracking filters calibration */
  293. regs[R_EB20] |= 0x20;
  294. tda18271_write_regs(fe, R_EB20, 1);
  295. msleep(60); /* calibration */
  296. /* --------------------------------------------------------------- */
  297. /* set CAL mode to normal */
  298. regs[R_EP4] &= ~0x03;
  299. /* switch on agc1 */
  300. regs[R_EP3] &= ~0x40; /* sm_lt = 0 */
  301. regs[R_EB18] &= ~0x03; /* set agc1_gain to 6 dB */
  302. tda18271_write_regs(fe, R_EB18, 1);
  303. tda18271_write_regs(fe, R_EP3, 2);
  304. /* synchronization */
  305. tda18271_write_regs(fe, R_EP1, 1);
  306. /* get calibration result */
  307. tda18271_read_extended(fe);
  308. return regs[R_EB14];
  309. }
  310. static int tda18271_powerscan(struct dvb_frontend *fe,
  311. u32 *freq_in, u32 *freq_out)
  312. {
  313. struct tda18271_priv *priv = fe->tuner_priv;
  314. unsigned char *regs = priv->tda18271_regs;
  315. int sgn, bcal, count, wait, ret;
  316. u8 cid_target;
  317. u16 count_limit;
  318. u32 freq;
  319. freq = *freq_in;
  320. tda18271_calc_rf_band(fe, &freq);
  321. tda18271_calc_rf_cal(fe, &freq);
  322. tda18271_calc_gain_taper(fe, &freq);
  323. tda18271_lookup_cid_target(fe, &freq, &cid_target, &count_limit);
  324. tda18271_write_regs(fe, R_EP2, 1);
  325. tda18271_write_regs(fe, R_EB14, 1);
  326. /* downconvert frequency */
  327. freq += 1000000;
  328. tda18271_calc_main_pll(fe, freq);
  329. tda18271_write_regs(fe, R_MPD, 4);
  330. msleep(5); /* pll locking */
  331. /* detection mode */
  332. regs[R_EP4] &= ~0x03;
  333. regs[R_EP4] |= 0x01;
  334. tda18271_write_regs(fe, R_EP4, 1);
  335. /* launch power detection measurement */
  336. tda18271_write_regs(fe, R_EP2, 1);
  337. /* read power detection info, stored in EB10 */
  338. ret = tda18271_read_extended(fe);
  339. if (tda_fail(ret))
  340. return ret;
  341. /* algorithm initialization */
  342. sgn = 1;
  343. *freq_out = *freq_in;
  344. bcal = 0;
  345. count = 0;
  346. wait = false;
  347. while ((regs[R_EB10] & 0x3f) < cid_target) {
  348. /* downconvert updated freq to 1 MHz */
  349. freq = *freq_in + (sgn * count) + 1000000;
  350. tda18271_calc_main_pll(fe, freq);
  351. tda18271_write_regs(fe, R_MPD, 4);
  352. if (wait) {
  353. msleep(5); /* pll locking */
  354. wait = false;
  355. } else
  356. udelay(100); /* pll locking */
  357. /* launch power detection measurement */
  358. tda18271_write_regs(fe, R_EP2, 1);
  359. /* read power detection info, stored in EB10 */
  360. ret = tda18271_read_extended(fe);
  361. if (tda_fail(ret))
  362. return ret;
  363. count += 200;
  364. if (count <= count_limit)
  365. continue;
  366. if (sgn <= 0)
  367. break;
  368. sgn = -1 * sgn;
  369. count = 200;
  370. wait = true;
  371. }
  372. if ((regs[R_EB10] & 0x3f) >= cid_target) {
  373. bcal = 1;
  374. *freq_out = freq - 1000000;
  375. } else
  376. bcal = 0;
  377. tda_cal("bcal = %d, freq_in = %d, freq_out = %d (freq = %d)\n",
  378. bcal, *freq_in, *freq_out, freq);
  379. return bcal;
  380. }
  381. static int tda18271_powerscan_init(struct dvb_frontend *fe)
  382. {
  383. struct tda18271_priv *priv = fe->tuner_priv;
  384. unsigned char *regs = priv->tda18271_regs;
  385. int ret;
  386. /* set standard to digital */
  387. regs[R_EP3] &= ~0x1f; /* clear std bits */
  388. regs[R_EP3] |= 0x12;
  389. /* set cal mode to normal */
  390. regs[R_EP4] &= ~0x03;
  391. /* update IF output level */
  392. regs[R_EP4] &= ~0x1c; /* clear if level bits */
  393. ret = tda18271_write_regs(fe, R_EP3, 2);
  394. if (tda_fail(ret))
  395. goto fail;
  396. regs[R_EB18] &= ~0x03; /* set agc1_gain to 6 dB */
  397. ret = tda18271_write_regs(fe, R_EB18, 1);
  398. if (tda_fail(ret))
  399. goto fail;
  400. regs[R_EB21] &= ~0x03; /* set agc2_gain to -15 dB */
  401. /* 1.5 MHz low pass filter */
  402. regs[R_EB23] |= 0x04; /* forcelp_fc2_en = 1 */
  403. regs[R_EB23] |= 0x02; /* lp_fc[2] = 1 */
  404. ret = tda18271_write_regs(fe, R_EB21, 3);
  405. fail:
  406. return ret;
  407. }
  408. static int tda18271_rf_tracking_filters_init(struct dvb_frontend *fe, u32 freq)
  409. {
  410. struct tda18271_priv *priv = fe->tuner_priv;
  411. struct tda18271_rf_tracking_filter_cal *map = priv->rf_cal_state;
  412. unsigned char *regs = priv->tda18271_regs;
  413. int bcal, rf, i;
  414. #define RF1 0
  415. #define RF2 1
  416. #define RF3 2
  417. u32 rf_default[3];
  418. u32 rf_freq[3];
  419. u8 prog_cal[3];
  420. u8 prog_tab[3];
  421. i = tda18271_lookup_rf_band(fe, &freq, NULL);
  422. if (tda_fail(i))
  423. return i;
  424. rf_default[RF1] = 1000 * map[i].rf1_def;
  425. rf_default[RF2] = 1000 * map[i].rf2_def;
  426. rf_default[RF3] = 1000 * map[i].rf3_def;
  427. for (rf = RF1; rf <= RF3; rf++) {
  428. if (0 == rf_default[rf])
  429. return 0;
  430. tda_cal("freq = %d, rf = %d\n", freq, rf);
  431. /* look for optimized calibration frequency */
  432. bcal = tda18271_powerscan(fe, &rf_default[rf], &rf_freq[rf]);
  433. if (tda_fail(bcal))
  434. return bcal;
  435. tda18271_calc_rf_cal(fe, &rf_freq[rf]);
  436. prog_tab[rf] = regs[R_EB14];
  437. if (1 == bcal)
  438. prog_cal[rf] = tda18271_calibrate_rf(fe, rf_freq[rf]);
  439. else
  440. prog_cal[rf] = prog_tab[rf];
  441. switch (rf) {
  442. case RF1:
  443. map[i].rf_a1 = 0;
  444. map[i].rf_b1 = prog_cal[RF1] - prog_tab[RF1];
  445. map[i].rf1 = rf_freq[RF1] / 1000;
  446. break;
  447. case RF2:
  448. map[i].rf_a1 = (prog_cal[RF2] - prog_tab[RF2] -
  449. prog_cal[RF1] + prog_tab[RF1]) /
  450. ((rf_freq[RF2] - rf_freq[RF1]) / 1000);
  451. map[i].rf2 = rf_freq[RF2] / 1000;
  452. break;
  453. case RF3:
  454. map[i].rf_a2 = (prog_cal[RF3] - prog_tab[RF3] -
  455. prog_cal[RF2] + prog_tab[RF2]) /
  456. ((rf_freq[RF3] - rf_freq[RF2]) / 1000);
  457. map[i].rf_b2 = prog_cal[RF2] - prog_tab[RF2];
  458. map[i].rf3 = rf_freq[RF3] / 1000;
  459. break;
  460. default:
  461. BUG();
  462. }
  463. }
  464. return 0;
  465. }
  466. static int tda18271_calc_rf_filter_curve(struct dvb_frontend *fe)
  467. {
  468. struct tda18271_priv *priv = fe->tuner_priv;
  469. unsigned int i;
  470. int ret;
  471. tda_info("tda18271: performing RF tracking filter calibration\n");
  472. /* wait for die temperature stabilization */
  473. msleep(200);
  474. ret = tda18271_powerscan_init(fe);
  475. if (tda_fail(ret))
  476. goto fail;
  477. /* rf band calibration */
  478. for (i = 0; priv->rf_cal_state[i].rfmax != 0; i++) {
  479. ret =
  480. tda18271_rf_tracking_filters_init(fe, 1000 *
  481. priv->rf_cal_state[i].rfmax);
  482. if (tda_fail(ret))
  483. goto fail;
  484. }
  485. priv->tm_rfcal = tda18271_read_thermometer(fe);
  486. fail:
  487. return ret;
  488. }
  489. /* ------------------------------------------------------------------ */
  490. static int tda18271c2_rf_cal_init(struct dvb_frontend *fe)
  491. {
  492. struct tda18271_priv *priv = fe->tuner_priv;
  493. unsigned char *regs = priv->tda18271_regs;
  494. int ret;
  495. /* test RF_CAL_OK to see if we need init */
  496. if ((regs[R_EP1] & 0x10) == 0)
  497. priv->cal_initialized = false;
  498. if (priv->cal_initialized)
  499. return 0;
  500. ret = tda18271_calc_rf_filter_curve(fe);
  501. if (tda_fail(ret))
  502. goto fail;
  503. ret = tda18271_por(fe);
  504. if (tda_fail(ret))
  505. goto fail;
  506. tda_info("tda18271: RF tracking filter calibration complete\n");
  507. priv->cal_initialized = true;
  508. goto end;
  509. fail:
  510. tda_info("tda18271: RF tracking filter calibration failed!\n");
  511. end:
  512. return ret;
  513. }
  514. static int tda18271c1_rf_tracking_filter_calibration(struct dvb_frontend *fe,
  515. u32 freq, u32 bw)
  516. {
  517. struct tda18271_priv *priv = fe->tuner_priv;
  518. unsigned char *regs = priv->tda18271_regs;
  519. int ret;
  520. u32 N = 0;
  521. /* calculate bp filter */
  522. tda18271_calc_bp_filter(fe, &freq);
  523. tda18271_write_regs(fe, R_EP1, 1);
  524. regs[R_EB4] &= 0x07;
  525. regs[R_EB4] |= 0x60;
  526. tda18271_write_regs(fe, R_EB4, 1);
  527. regs[R_EB7] = 0x60;
  528. tda18271_write_regs(fe, R_EB7, 1);
  529. regs[R_EB14] = 0x00;
  530. tda18271_write_regs(fe, R_EB14, 1);
  531. regs[R_EB20] = 0xcc;
  532. tda18271_write_regs(fe, R_EB20, 1);
  533. /* set cal mode to RF tracking filter calibration */
  534. regs[R_EP4] |= 0x03;
  535. /* calculate cal pll */
  536. switch (priv->mode) {
  537. case TDA18271_ANALOG:
  538. N = freq - 1250000;
  539. break;
  540. case TDA18271_DIGITAL:
  541. N = freq + bw / 2;
  542. break;
  543. }
  544. tda18271_calc_cal_pll(fe, N);
  545. /* calculate main pll */
  546. switch (priv->mode) {
  547. case TDA18271_ANALOG:
  548. N = freq - 250000;
  549. break;
  550. case TDA18271_DIGITAL:
  551. N = freq + bw / 2 + 1000000;
  552. break;
  553. }
  554. tda18271_calc_main_pll(fe, N);
  555. ret = tda18271_write_regs(fe, R_EP3, 11);
  556. if (tda_fail(ret))
  557. return ret;
  558. msleep(5); /* RF tracking filter calibration initialization */
  559. /* search for K,M,CO for RF calibration */
  560. tda18271_calc_km(fe, &freq);
  561. tda18271_write_regs(fe, R_EB13, 1);
  562. /* search for rf band */
  563. tda18271_calc_rf_band(fe, &freq);
  564. /* search for gain taper */
  565. tda18271_calc_gain_taper(fe, &freq);
  566. tda18271_write_regs(fe, R_EP2, 1);
  567. tda18271_write_regs(fe, R_EP1, 1);
  568. tda18271_write_regs(fe, R_EP2, 1);
  569. tda18271_write_regs(fe, R_EP1, 1);
  570. regs[R_EB4] &= 0x07;
  571. regs[R_EB4] |= 0x40;
  572. tda18271_write_regs(fe, R_EB4, 1);
  573. regs[R_EB7] = 0x40;
  574. tda18271_write_regs(fe, R_EB7, 1);
  575. msleep(10); /* pll locking */
  576. regs[R_EB20] = 0xec;
  577. tda18271_write_regs(fe, R_EB20, 1);
  578. msleep(60); /* RF tracking filter calibration completion */
  579. regs[R_EP4] &= ~0x03; /* set cal mode to normal */
  580. tda18271_write_regs(fe, R_EP4, 1);
  581. tda18271_write_regs(fe, R_EP1, 1);
  582. /* RF tracking filter correction for VHF_Low band */
  583. if (0 == tda18271_calc_rf_cal(fe, &freq))
  584. tda18271_write_regs(fe, R_EB14, 1);
  585. return 0;
  586. }
  587. /* ------------------------------------------------------------------ */
  588. static int tda18271_ir_cal_init(struct dvb_frontend *fe)
  589. {
  590. struct tda18271_priv *priv = fe->tuner_priv;
  591. unsigned char *regs = priv->tda18271_regs;
  592. int ret;
  593. ret = tda18271_read_regs(fe);
  594. if (tda_fail(ret))
  595. goto fail;
  596. /* test IR_CAL_OK to see if we need init */
  597. if ((regs[R_EP1] & 0x08) == 0)
  598. ret = tda18271_init_regs(fe);
  599. fail:
  600. return ret;
  601. }
  602. static int tda18271_init(struct dvb_frontend *fe)
  603. {
  604. struct tda18271_priv *priv = fe->tuner_priv;
  605. int ret;
  606. mutex_lock(&priv->lock);
  607. /* power up */
  608. ret = tda18271_set_standby_mode(fe, 0, 0, 0);
  609. if (tda_fail(ret))
  610. goto fail;
  611. /* initialization */
  612. ret = tda18271_ir_cal_init(fe);
  613. if (tda_fail(ret))
  614. goto fail;
  615. if (priv->id == TDA18271HDC2)
  616. tda18271c2_rf_cal_init(fe);
  617. fail:
  618. mutex_unlock(&priv->lock);
  619. return ret;
  620. }
  621. static int tda18271_tune(struct dvb_frontend *fe,
  622. struct tda18271_std_map_item *map, u32 freq, u32 bw)
  623. {
  624. struct tda18271_priv *priv = fe->tuner_priv;
  625. int ret;
  626. tda_dbg("freq = %d, ifc = %d, bw = %d, agc_mode = %d, std = %d\n",
  627. freq, map->if_freq, bw, map->agc_mode, map->std);
  628. ret = tda18271_init(fe);
  629. if (tda_fail(ret))
  630. goto fail;
  631. mutex_lock(&priv->lock);
  632. switch (priv->id) {
  633. case TDA18271HDC1:
  634. tda18271c1_rf_tracking_filter_calibration(fe, freq, bw);
  635. break;
  636. case TDA18271HDC2:
  637. tda18271c2_rf_tracking_filters_correction(fe, freq);
  638. break;
  639. }
  640. ret = tda18271_channel_configuration(fe, map, freq, bw);
  641. mutex_unlock(&priv->lock);
  642. fail:
  643. return ret;
  644. }
  645. /* ------------------------------------------------------------------ */
  646. static int tda18271_set_params(struct dvb_frontend *fe,
  647. struct dvb_frontend_parameters *params)
  648. {
  649. struct tda18271_priv *priv = fe->tuner_priv;
  650. struct tda18271_std_map *std_map = &priv->std;
  651. struct tda18271_std_map_item *map;
  652. int ret;
  653. u32 bw, freq = params->frequency;
  654. priv->mode = TDA18271_DIGITAL;
  655. if (fe->ops.info.type == FE_ATSC) {
  656. switch (params->u.vsb.modulation) {
  657. case VSB_8:
  658. case VSB_16:
  659. map = &std_map->atsc_6;
  660. break;
  661. case QAM_64:
  662. case QAM_256:
  663. map = &std_map->qam_6;
  664. break;
  665. default:
  666. tda_warn("modulation not set!\n");
  667. return -EINVAL;
  668. }
  669. #if 0
  670. /* userspace request is already center adjusted */
  671. freq += 1750000; /* Adjust to center (+1.75MHZ) */
  672. #endif
  673. bw = 6000000;
  674. } else if (fe->ops.info.type == FE_OFDM) {
  675. switch (params->u.ofdm.bandwidth) {
  676. case BANDWIDTH_6_MHZ:
  677. bw = 6000000;
  678. map = &std_map->dvbt_6;
  679. break;
  680. case BANDWIDTH_7_MHZ:
  681. bw = 7000000;
  682. map = &std_map->dvbt_7;
  683. break;
  684. case BANDWIDTH_8_MHZ:
  685. bw = 8000000;
  686. map = &std_map->dvbt_8;
  687. break;
  688. default:
  689. tda_warn("bandwidth not set!\n");
  690. return -EINVAL;
  691. }
  692. } else {
  693. tda_warn("modulation type not supported!\n");
  694. return -EINVAL;
  695. }
  696. /* When tuning digital, the analog demod must be tri-stated */
  697. if (fe->ops.analog_ops.standby)
  698. fe->ops.analog_ops.standby(fe);
  699. ret = tda18271_tune(fe, map, freq, bw);
  700. if (tda_fail(ret))
  701. goto fail;
  702. priv->frequency = freq;
  703. priv->bandwidth = (fe->ops.info.type == FE_OFDM) ?
  704. params->u.ofdm.bandwidth : 0;
  705. fail:
  706. return ret;
  707. }
  708. static int tda18271_set_analog_params(struct dvb_frontend *fe,
  709. struct analog_parameters *params)
  710. {
  711. struct tda18271_priv *priv = fe->tuner_priv;
  712. struct tda18271_std_map *std_map = &priv->std;
  713. struct tda18271_std_map_item *map;
  714. char *mode;
  715. int ret;
  716. u32 freq = params->frequency * 62500;
  717. priv->mode = TDA18271_ANALOG;
  718. if (params->mode == V4L2_TUNER_RADIO) {
  719. freq = freq / 1000;
  720. map = &std_map->fm_radio;
  721. mode = "fm";
  722. } else if (params->std & V4L2_STD_MN) {
  723. map = &std_map->atv_mn;
  724. mode = "MN";
  725. } else if (params->std & V4L2_STD_B) {
  726. map = &std_map->atv_b;
  727. mode = "B";
  728. } else if (params->std & V4L2_STD_GH) {
  729. map = &std_map->atv_gh;
  730. mode = "GH";
  731. } else if (params->std & V4L2_STD_PAL_I) {
  732. map = &std_map->atv_i;
  733. mode = "I";
  734. } else if (params->std & V4L2_STD_DK) {
  735. map = &std_map->atv_dk;
  736. mode = "DK";
  737. } else if (params->std & V4L2_STD_SECAM_L) {
  738. map = &std_map->atv_l;
  739. mode = "L";
  740. } else if (params->std & V4L2_STD_SECAM_LC) {
  741. map = &std_map->atv_lc;
  742. mode = "L'";
  743. } else {
  744. map = &std_map->atv_i;
  745. mode = "xx";
  746. }
  747. tda_dbg("setting tda18271 to system %s\n", mode);
  748. ret = tda18271_tune(fe, map, freq, 0);
  749. if (tda_fail(ret))
  750. goto fail;
  751. priv->frequency = freq;
  752. priv->bandwidth = 0;
  753. fail:
  754. return ret;
  755. }
  756. static int tda18271_sleep(struct dvb_frontend *fe)
  757. {
  758. struct tda18271_priv *priv = fe->tuner_priv;
  759. int ret;
  760. mutex_lock(&priv->lock);
  761. /* standby mode w/ slave tuner output
  762. * & loop thru & xtal oscillator on */
  763. ret = tda18271_set_standby_mode(fe, 1, 0, 0);
  764. mutex_unlock(&priv->lock);
  765. return ret;
  766. }
  767. static int tda18271_release(struct dvb_frontend *fe)
  768. {
  769. struct tda18271_priv *priv = fe->tuner_priv;
  770. mutex_lock(&tda18271_list_mutex);
  771. if (priv)
  772. hybrid_tuner_release_state(priv);
  773. mutex_unlock(&tda18271_list_mutex);
  774. fe->tuner_priv = NULL;
  775. return 0;
  776. }
  777. static int tda18271_get_frequency(struct dvb_frontend *fe, u32 *frequency)
  778. {
  779. struct tda18271_priv *priv = fe->tuner_priv;
  780. *frequency = priv->frequency;
  781. return 0;
  782. }
  783. static int tda18271_get_bandwidth(struct dvb_frontend *fe, u32 *bandwidth)
  784. {
  785. struct tda18271_priv *priv = fe->tuner_priv;
  786. *bandwidth = priv->bandwidth;
  787. return 0;
  788. }
  789. /* ------------------------------------------------------------------ */
  790. #define tda18271_update_std(std_cfg, name) do { \
  791. if (map->std_cfg.if_freq + \
  792. map->std_cfg.agc_mode + map->std_cfg.std + \
  793. map->std_cfg.if_lvl + map->std_cfg.rfagc_top > 0) { \
  794. tda_dbg("Using custom std config for %s\n", name); \
  795. memcpy(&std->std_cfg, &map->std_cfg, \
  796. sizeof(struct tda18271_std_map_item)); \
  797. } } while (0)
  798. #define tda18271_dump_std_item(std_cfg, name) do { \
  799. tda_dbg("(%s) if_freq = %d, agc_mode = %d, std = %d, " \
  800. "if_lvl = %d, rfagc_top = 0x%02x\n", \
  801. name, std->std_cfg.if_freq, \
  802. std->std_cfg.agc_mode, std->std_cfg.std, \
  803. std->std_cfg.if_lvl, std->std_cfg.rfagc_top); \
  804. } while (0)
  805. static int tda18271_dump_std_map(struct dvb_frontend *fe)
  806. {
  807. struct tda18271_priv *priv = fe->tuner_priv;
  808. struct tda18271_std_map *std = &priv->std;
  809. tda_dbg("========== STANDARD MAP SETTINGS ==========\n");
  810. tda18271_dump_std_item(fm_radio, " fm ");
  811. tda18271_dump_std_item(atv_b, "atv b ");
  812. tda18271_dump_std_item(atv_dk, "atv dk");
  813. tda18271_dump_std_item(atv_gh, "atv gh");
  814. tda18271_dump_std_item(atv_i, "atv i ");
  815. tda18271_dump_std_item(atv_l, "atv l ");
  816. tda18271_dump_std_item(atv_lc, "atv l'");
  817. tda18271_dump_std_item(atv_mn, "atv mn");
  818. tda18271_dump_std_item(atsc_6, "atsc 6");
  819. tda18271_dump_std_item(dvbt_6, "dvbt 6");
  820. tda18271_dump_std_item(dvbt_7, "dvbt 7");
  821. tda18271_dump_std_item(dvbt_8, "dvbt 8");
  822. tda18271_dump_std_item(qam_6, "qam 6 ");
  823. tda18271_dump_std_item(qam_8, "qam 8 ");
  824. return 0;
  825. }
  826. static int tda18271_update_std_map(struct dvb_frontend *fe,
  827. struct tda18271_std_map *map)
  828. {
  829. struct tda18271_priv *priv = fe->tuner_priv;
  830. struct tda18271_std_map *std = &priv->std;
  831. if (!map)
  832. return -EINVAL;
  833. tda18271_update_std(fm_radio, "fm");
  834. tda18271_update_std(atv_b, "atv b");
  835. tda18271_update_std(atv_dk, "atv dk");
  836. tda18271_update_std(atv_gh, "atv gh");
  837. tda18271_update_std(atv_i, "atv i");
  838. tda18271_update_std(atv_l, "atv l");
  839. tda18271_update_std(atv_lc, "atv l'");
  840. tda18271_update_std(atv_mn, "atv mn");
  841. tda18271_update_std(atsc_6, "atsc 6");
  842. tda18271_update_std(dvbt_6, "dvbt 6");
  843. tda18271_update_std(dvbt_7, "dvbt 7");
  844. tda18271_update_std(dvbt_8, "dvbt 8");
  845. tda18271_update_std(qam_6, "qam 6");
  846. tda18271_update_std(qam_8, "qam 8");
  847. return 0;
  848. }
  849. static int tda18271_get_id(struct dvb_frontend *fe)
  850. {
  851. struct tda18271_priv *priv = fe->tuner_priv;
  852. unsigned char *regs = priv->tda18271_regs;
  853. char *name;
  854. int ret = 0;
  855. mutex_lock(&priv->lock);
  856. tda18271_read_regs(fe);
  857. mutex_unlock(&priv->lock);
  858. switch (regs[R_ID] & 0x7f) {
  859. case 3:
  860. name = "TDA18271HD/C1";
  861. priv->id = TDA18271HDC1;
  862. break;
  863. case 4:
  864. name = "TDA18271HD/C2";
  865. priv->id = TDA18271HDC2;
  866. break;
  867. default:
  868. name = "Unknown device";
  869. ret = -EINVAL;
  870. break;
  871. }
  872. tda_info("%s detected @ %d-%04x%s\n", name,
  873. i2c_adapter_id(priv->i2c_props.adap),
  874. priv->i2c_props.addr,
  875. (0 == ret) ? "" : ", device not supported.");
  876. return ret;
  877. }
  878. static struct dvb_tuner_ops tda18271_tuner_ops = {
  879. .info = {
  880. .name = "NXP TDA18271HD",
  881. .frequency_min = 45000000,
  882. .frequency_max = 864000000,
  883. .frequency_step = 62500
  884. },
  885. .init = tda18271_init,
  886. .sleep = tda18271_sleep,
  887. .set_params = tda18271_set_params,
  888. .set_analog_params = tda18271_set_analog_params,
  889. .release = tda18271_release,
  890. .get_frequency = tda18271_get_frequency,
  891. .get_bandwidth = tda18271_get_bandwidth,
  892. };
  893. struct dvb_frontend *tda18271_attach(struct dvb_frontend *fe, u8 addr,
  894. struct i2c_adapter *i2c,
  895. struct tda18271_config *cfg)
  896. {
  897. struct tda18271_priv *priv = NULL;
  898. int instance;
  899. mutex_lock(&tda18271_list_mutex);
  900. instance = hybrid_tuner_request_state(struct tda18271_priv, priv,
  901. hybrid_tuner_instance_list,
  902. i2c, addr, "tda18271");
  903. switch (instance) {
  904. case 0:
  905. goto fail;
  906. case 1:
  907. /* new tuner instance */
  908. priv->gate = (cfg) ? cfg->gate : TDA18271_GATE_AUTO;
  909. priv->role = (cfg) ? cfg->role : TDA18271_MASTER;
  910. priv->cal_initialized = false;
  911. mutex_init(&priv->lock);
  912. fe->tuner_priv = priv;
  913. if (cfg)
  914. priv->small_i2c = cfg->small_i2c;
  915. if (tda_fail(tda18271_get_id(fe)))
  916. goto fail;
  917. if (tda_fail(tda18271_assign_map_layout(fe)))
  918. goto fail;
  919. mutex_lock(&priv->lock);
  920. tda18271_init_regs(fe);
  921. if ((tda18271_cal_on_startup) && (priv->id == TDA18271HDC2))
  922. tda18271c2_rf_cal_init(fe);
  923. mutex_unlock(&priv->lock);
  924. break;
  925. default:
  926. /* existing tuner instance */
  927. fe->tuner_priv = priv;
  928. /* allow dvb driver to override i2c gate setting */
  929. if ((cfg) && (cfg->gate != TDA18271_GATE_ANALOG))
  930. priv->gate = cfg->gate;
  931. break;
  932. }
  933. /* override default std map with values in config struct */
  934. if ((cfg) && (cfg->std_map))
  935. tda18271_update_std_map(fe, cfg->std_map);
  936. mutex_unlock(&tda18271_list_mutex);
  937. memcpy(&fe->ops.tuner_ops, &tda18271_tuner_ops,
  938. sizeof(struct dvb_tuner_ops));
  939. if (tda18271_debug & (DBG_MAP | DBG_ADV))
  940. tda18271_dump_std_map(fe);
  941. return fe;
  942. fail:
  943. mutex_unlock(&tda18271_list_mutex);
  944. tda18271_release(fe);
  945. return NULL;
  946. }
  947. EXPORT_SYMBOL_GPL(tda18271_attach);
  948. MODULE_DESCRIPTION("NXP TDA18271HD analog / digital tuner driver");
  949. MODULE_AUTHOR("Michael Krufky <mkrufky@linuxtv.org>");
  950. MODULE_LICENSE("GPL");
  951. MODULE_VERSION("0.3");
  952. /*
  953. * Overrides for Emacs so that we follow Linus's tabbing style.
  954. * ---------------------------------------------------------------------------
  955. * Local variables:
  956. * c-basic-offset: 8
  957. * End:
  958. */