af9013.c 31 KB

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  1. /*
  2. * Afatech AF9013 demodulator driver
  3. *
  4. * Copyright (C) 2007 Antti Palosaari <crope@iki.fi>
  5. * Copyright (C) 2011 Antti Palosaari <crope@iki.fi>
  6. *
  7. * Thanks to Afatech who kindly provided information.
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software
  21. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  22. *
  23. */
  24. #include "af9013_priv.h"
  25. int af9013_debug;
  26. module_param_named(debug, af9013_debug, int, 0644);
  27. MODULE_PARM_DESC(debug, "Turn on/off frontend debugging (default:off).");
  28. struct af9013_state {
  29. struct i2c_adapter *i2c;
  30. struct dvb_frontend fe;
  31. struct af9013_config config;
  32. /* tuner/demod RF and IF AGC limits used for signal strength calc */
  33. u8 signal_strength_en, rf_50, rf_80, if_50, if_80;
  34. u16 signal_strength;
  35. u32 ber;
  36. u32 ucblocks;
  37. u16 snr;
  38. u32 bandwidth_hz;
  39. fe_status_t fe_status;
  40. unsigned long set_frontend_jiffies;
  41. unsigned long read_status_jiffies;
  42. bool first_tune;
  43. bool i2c_gate_state;
  44. unsigned int statistics_step:3;
  45. struct delayed_work statistics_work;
  46. };
  47. /* write multiple registers */
  48. static int af9013_wr_regs_i2c(struct af9013_state *priv, u8 mbox, u16 reg,
  49. const u8 *val, int len)
  50. {
  51. int ret;
  52. u8 buf[3+len];
  53. struct i2c_msg msg[1] = {
  54. {
  55. .addr = priv->config.i2c_addr,
  56. .flags = 0,
  57. .len = sizeof(buf),
  58. .buf = buf,
  59. }
  60. };
  61. buf[0] = (reg >> 8) & 0xff;
  62. buf[1] = (reg >> 0) & 0xff;
  63. buf[2] = mbox;
  64. memcpy(&buf[3], val, len);
  65. ret = i2c_transfer(priv->i2c, msg, 1);
  66. if (ret == 1) {
  67. ret = 0;
  68. } else {
  69. warn("i2c wr failed=%d reg=%04x len=%d", ret, reg, len);
  70. ret = -EREMOTEIO;
  71. }
  72. return ret;
  73. }
  74. /* read multiple registers */
  75. static int af9013_rd_regs_i2c(struct af9013_state *priv, u8 mbox, u16 reg,
  76. u8 *val, int len)
  77. {
  78. int ret;
  79. u8 buf[3];
  80. struct i2c_msg msg[2] = {
  81. {
  82. .addr = priv->config.i2c_addr,
  83. .flags = 0,
  84. .len = 3,
  85. .buf = buf,
  86. }, {
  87. .addr = priv->config.i2c_addr,
  88. .flags = I2C_M_RD,
  89. .len = len,
  90. .buf = val,
  91. }
  92. };
  93. buf[0] = (reg >> 8) & 0xff;
  94. buf[1] = (reg >> 0) & 0xff;
  95. buf[2] = mbox;
  96. ret = i2c_transfer(priv->i2c, msg, 2);
  97. if (ret == 2) {
  98. ret = 0;
  99. } else {
  100. warn("i2c rd failed=%d reg=%04x len=%d", ret, reg, len);
  101. ret = -EREMOTEIO;
  102. }
  103. return ret;
  104. }
  105. /* write multiple registers */
  106. static int af9013_wr_regs(struct af9013_state *priv, u16 reg, const u8 *val,
  107. int len)
  108. {
  109. int ret, i;
  110. u8 mbox = (0 << 7)|(0 << 6)|(1 << 1)|(1 << 0);
  111. if ((priv->config.ts_mode == AF9013_TS_USB) &
  112. ((reg & 0xff00) != 0xff00) & ((reg & 0xff00) != 0xae00)) {
  113. mbox |= ((len - 1) << 2);
  114. ret = af9013_wr_regs_i2c(priv, mbox, reg, val, len);
  115. } else {
  116. for (i = 0; i < len; i++) {
  117. ret = af9013_wr_regs_i2c(priv, mbox, reg+i, val+i, 1);
  118. if (ret)
  119. goto err;
  120. }
  121. }
  122. err:
  123. return 0;
  124. }
  125. /* read multiple registers */
  126. static int af9013_rd_regs(struct af9013_state *priv, u16 reg, u8 *val, int len)
  127. {
  128. int ret, i;
  129. u8 mbox = (0 << 7)|(0 << 6)|(1 << 1)|(0 << 0);
  130. if ((priv->config.ts_mode == AF9013_TS_USB) &
  131. ((reg & 0xff00) != 0xff00) & ((reg & 0xff00) != 0xae00)) {
  132. mbox |= ((len - 1) << 2);
  133. ret = af9013_rd_regs_i2c(priv, mbox, reg, val, len);
  134. } else {
  135. for (i = 0; i < len; i++) {
  136. ret = af9013_rd_regs_i2c(priv, mbox, reg+i, val+i, 1);
  137. if (ret)
  138. goto err;
  139. }
  140. }
  141. err:
  142. return 0;
  143. }
  144. /* write single register */
  145. static int af9013_wr_reg(struct af9013_state *priv, u16 reg, u8 val)
  146. {
  147. return af9013_wr_regs(priv, reg, &val, 1);
  148. }
  149. /* read single register */
  150. static int af9013_rd_reg(struct af9013_state *priv, u16 reg, u8 *val)
  151. {
  152. return af9013_rd_regs(priv, reg, val, 1);
  153. }
  154. static int af9013_write_ofsm_regs(struct af9013_state *state, u16 reg, u8 *val,
  155. u8 len)
  156. {
  157. u8 mbox = (1 << 7)|(1 << 6)|((len - 1) << 2)|(1 << 1)|(1 << 0);
  158. return af9013_wr_regs_i2c(state, mbox, reg, val, len);
  159. }
  160. static int af9013_wr_reg_bits(struct af9013_state *state, u16 reg, int pos,
  161. int len, u8 val)
  162. {
  163. int ret;
  164. u8 tmp, mask;
  165. /* no need for read if whole reg is written */
  166. if (len != 8) {
  167. ret = af9013_rd_reg(state, reg, &tmp);
  168. if (ret)
  169. return ret;
  170. mask = (0xff >> (8 - len)) << pos;
  171. val <<= pos;
  172. tmp &= ~mask;
  173. val |= tmp;
  174. }
  175. return af9013_wr_reg(state, reg, val);
  176. }
  177. static int af9013_rd_reg_bits(struct af9013_state *state, u16 reg, int pos,
  178. int len, u8 *val)
  179. {
  180. int ret;
  181. u8 tmp;
  182. ret = af9013_rd_reg(state, reg, &tmp);
  183. if (ret)
  184. return ret;
  185. *val = (tmp >> pos);
  186. *val &= (0xff >> (8 - len));
  187. return 0;
  188. }
  189. static int af9013_set_gpio(struct af9013_state *state, u8 gpio, u8 gpioval)
  190. {
  191. int ret;
  192. u8 pos;
  193. u16 addr;
  194. dbg("%s: gpio=%d gpioval=%02x", __func__, gpio, gpioval);
  195. /*
  196. * GPIO0 & GPIO1 0xd735
  197. * GPIO2 & GPIO3 0xd736
  198. */
  199. switch (gpio) {
  200. case 0:
  201. case 1:
  202. addr = 0xd735;
  203. break;
  204. case 2:
  205. case 3:
  206. addr = 0xd736;
  207. break;
  208. default:
  209. err("invalid gpio:%d\n", gpio);
  210. ret = -EINVAL;
  211. goto err;
  212. };
  213. switch (gpio) {
  214. case 0:
  215. case 2:
  216. pos = 0;
  217. break;
  218. case 1:
  219. case 3:
  220. default:
  221. pos = 4;
  222. break;
  223. };
  224. ret = af9013_wr_reg_bits(state, addr, pos, 4, gpioval);
  225. if (ret)
  226. goto err;
  227. return ret;
  228. err:
  229. dbg("%s: failed=%d", __func__, ret);
  230. return ret;
  231. }
  232. static u32 af913_div(u32 a, u32 b, u32 x)
  233. {
  234. u32 r = 0, c = 0, i;
  235. dbg("%s: a=%d b=%d x=%d", __func__, a, b, x);
  236. if (a > b) {
  237. c = a / b;
  238. a = a - c * b;
  239. }
  240. for (i = 0; i < x; i++) {
  241. if (a >= b) {
  242. r += 1;
  243. a -= b;
  244. }
  245. a <<= 1;
  246. r <<= 1;
  247. }
  248. r = (c << (u32)x) + r;
  249. dbg("%s: a=%d b=%d x=%d r=%x", __func__, a, b, x, r);
  250. return r;
  251. }
  252. static int af9013_power_ctrl(struct af9013_state *state, u8 onoff)
  253. {
  254. int ret, i;
  255. u8 tmp;
  256. dbg("%s: onoff=%d", __func__, onoff);
  257. /* enable reset */
  258. ret = af9013_wr_reg_bits(state, 0xd417, 4, 1, 1);
  259. if (ret)
  260. goto err;
  261. /* start reset mechanism */
  262. ret = af9013_wr_reg(state, 0xaeff, 1);
  263. if (ret)
  264. goto err;
  265. /* wait reset performs */
  266. for (i = 0; i < 150; i++) {
  267. ret = af9013_rd_reg_bits(state, 0xd417, 1, 1, &tmp);
  268. if (ret)
  269. goto err;
  270. if (tmp)
  271. break; /* reset done */
  272. usleep_range(5000, 25000);
  273. }
  274. if (!tmp)
  275. return -ETIMEDOUT;
  276. if (onoff) {
  277. /* clear reset */
  278. ret = af9013_wr_reg_bits(state, 0xd417, 1, 1, 0);
  279. if (ret)
  280. goto err;
  281. /* disable reset */
  282. ret = af9013_wr_reg_bits(state, 0xd417, 4, 1, 0);
  283. /* power on */
  284. ret = af9013_wr_reg_bits(state, 0xd73a, 3, 1, 0);
  285. } else {
  286. /* power off */
  287. ret = af9013_wr_reg_bits(state, 0xd73a, 3, 1, 1);
  288. }
  289. return ret;
  290. err:
  291. dbg("%s: failed=%d", __func__, ret);
  292. return ret;
  293. }
  294. static int af9013_statistics_ber_unc_start(struct dvb_frontend *fe)
  295. {
  296. struct af9013_state *state = fe->demodulator_priv;
  297. int ret;
  298. dbg("%s", __func__);
  299. /* reset and start BER counter */
  300. ret = af9013_wr_reg_bits(state, 0xd391, 4, 1, 1);
  301. if (ret)
  302. goto err;
  303. return ret;
  304. err:
  305. dbg("%s: failed=%d", __func__, ret);
  306. return ret;
  307. }
  308. static int af9013_statistics_ber_unc_result(struct dvb_frontend *fe)
  309. {
  310. struct af9013_state *state = fe->demodulator_priv;
  311. int ret;
  312. u8 buf[5];
  313. dbg("%s", __func__);
  314. /* check if error bit count is ready */
  315. ret = af9013_rd_reg_bits(state, 0xd391, 4, 1, &buf[0]);
  316. if (ret)
  317. goto err;
  318. if (!buf[0]) {
  319. dbg("%s: not ready", __func__);
  320. return 0;
  321. }
  322. ret = af9013_rd_regs(state, 0xd387, buf, 5);
  323. if (ret)
  324. goto err;
  325. state->ber = (buf[2] << 16) | (buf[1] << 8) | buf[0];
  326. state->ucblocks += (buf[4] << 8) | buf[3];
  327. return ret;
  328. err:
  329. dbg("%s: failed=%d", __func__, ret);
  330. return ret;
  331. }
  332. static int af9013_statistics_snr_start(struct dvb_frontend *fe)
  333. {
  334. struct af9013_state *state = fe->demodulator_priv;
  335. int ret;
  336. dbg("%s", __func__);
  337. /* start SNR meas */
  338. ret = af9013_wr_reg_bits(state, 0xd2e1, 3, 1, 1);
  339. if (ret)
  340. goto err;
  341. return ret;
  342. err:
  343. dbg("%s: failed=%d", __func__, ret);
  344. return ret;
  345. }
  346. static int af9013_statistics_snr_result(struct dvb_frontend *fe)
  347. {
  348. struct af9013_state *state = fe->demodulator_priv;
  349. int ret, i, len;
  350. u8 buf[3], tmp;
  351. u32 snr_val;
  352. const struct af9013_snr *uninitialized_var(snr_lut);
  353. dbg("%s", __func__);
  354. /* check if SNR ready */
  355. ret = af9013_rd_reg_bits(state, 0xd2e1, 3, 1, &tmp);
  356. if (ret)
  357. goto err;
  358. if (!tmp) {
  359. dbg("%s: not ready", __func__);
  360. return 0;
  361. }
  362. /* read value */
  363. ret = af9013_rd_regs(state, 0xd2e3, buf, 3);
  364. if (ret)
  365. goto err;
  366. snr_val = (buf[2] << 16) | (buf[1] << 8) | buf[0];
  367. /* read current modulation */
  368. ret = af9013_rd_reg(state, 0xd3c1, &tmp);
  369. if (ret)
  370. goto err;
  371. switch ((tmp >> 6) & 3) {
  372. case 0:
  373. len = ARRAY_SIZE(qpsk_snr_lut);
  374. snr_lut = qpsk_snr_lut;
  375. break;
  376. case 1:
  377. len = ARRAY_SIZE(qam16_snr_lut);
  378. snr_lut = qam16_snr_lut;
  379. break;
  380. case 2:
  381. len = ARRAY_SIZE(qam64_snr_lut);
  382. snr_lut = qam64_snr_lut;
  383. break;
  384. default:
  385. goto err;
  386. break;
  387. }
  388. for (i = 0; i < len; i++) {
  389. tmp = snr_lut[i].snr;
  390. if (snr_val < snr_lut[i].val)
  391. break;
  392. }
  393. state->snr = tmp * 10; /* dB/10 */
  394. return ret;
  395. err:
  396. dbg("%s: failed=%d", __func__, ret);
  397. return ret;
  398. }
  399. static int af9013_statistics_signal_strength(struct dvb_frontend *fe)
  400. {
  401. struct af9013_state *state = fe->demodulator_priv;
  402. int ret = 0;
  403. u8 buf[2], rf_gain, if_gain;
  404. int signal_strength;
  405. dbg("%s", __func__);
  406. if (!state->signal_strength_en)
  407. return 0;
  408. ret = af9013_rd_regs(state, 0xd07c, buf, 2);
  409. if (ret)
  410. goto err;
  411. rf_gain = buf[0];
  412. if_gain = buf[1];
  413. signal_strength = (0xffff / \
  414. (9 * (state->rf_50 + state->if_50) - \
  415. 11 * (state->rf_80 + state->if_80))) * \
  416. (10 * (rf_gain + if_gain) - \
  417. 11 * (state->rf_80 + state->if_80));
  418. if (signal_strength < 0)
  419. signal_strength = 0;
  420. else if (signal_strength > 0xffff)
  421. signal_strength = 0xffff;
  422. state->signal_strength = signal_strength;
  423. return ret;
  424. err:
  425. dbg("%s: failed=%d", __func__, ret);
  426. return ret;
  427. }
  428. static void af9013_statistics_work(struct work_struct *work)
  429. {
  430. int ret;
  431. struct af9013_state *state = container_of(work,
  432. struct af9013_state, statistics_work.work);
  433. unsigned int next_msec;
  434. /* update only signal strength when demod is not locked */
  435. if (!(state->fe_status & FE_HAS_LOCK)) {
  436. state->statistics_step = 0;
  437. state->ber = 0;
  438. state->snr = 0;
  439. }
  440. switch (state->statistics_step) {
  441. default:
  442. state->statistics_step = 0;
  443. case 0:
  444. ret = af9013_statistics_signal_strength(&state->fe);
  445. state->statistics_step++;
  446. next_msec = 300;
  447. break;
  448. case 1:
  449. ret = af9013_statistics_snr_start(&state->fe);
  450. state->statistics_step++;
  451. next_msec = 200;
  452. break;
  453. case 2:
  454. ret = af9013_statistics_ber_unc_start(&state->fe);
  455. state->statistics_step++;
  456. next_msec = 1000;
  457. break;
  458. case 3:
  459. ret = af9013_statistics_snr_result(&state->fe);
  460. state->statistics_step++;
  461. next_msec = 400;
  462. break;
  463. case 4:
  464. ret = af9013_statistics_ber_unc_result(&state->fe);
  465. state->statistics_step++;
  466. next_msec = 100;
  467. break;
  468. }
  469. schedule_delayed_work(&state->statistics_work,
  470. msecs_to_jiffies(next_msec));
  471. return;
  472. }
  473. static int af9013_get_tune_settings(struct dvb_frontend *fe,
  474. struct dvb_frontend_tune_settings *fesettings)
  475. {
  476. fesettings->min_delay_ms = 800;
  477. fesettings->step_size = 0;
  478. fesettings->max_drift = 0;
  479. return 0;
  480. }
  481. static int af9013_set_frontend(struct dvb_frontend *fe,
  482. struct dvb_frontend_parameters *p)
  483. {
  484. struct af9013_state *state = fe->demodulator_priv;
  485. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  486. int ret, i, sampling_freq;
  487. bool auto_mode, spec_inv;
  488. u8 buf[6];
  489. u32 if_frequency, freq_cw;
  490. dbg("%s: frequency=%d bandwidth_hz=%d", __func__,
  491. c->frequency, c->bandwidth_hz);
  492. /* program tuner */
  493. if (fe->ops.tuner_ops.set_params)
  494. fe->ops.tuner_ops.set_params(fe);
  495. /* program CFOE coefficients */
  496. if (c->bandwidth_hz != state->bandwidth_hz) {
  497. for (i = 0; i < ARRAY_SIZE(coeff_lut); i++) {
  498. if (coeff_lut[i].clock == state->config.clock &&
  499. coeff_lut[i].bandwidth_hz == c->bandwidth_hz) {
  500. break;
  501. }
  502. }
  503. ret = af9013_wr_regs(state, 0xae00, coeff_lut[i].val,
  504. sizeof(coeff_lut[i].val));
  505. }
  506. /* program frequency control */
  507. if (c->bandwidth_hz != state->bandwidth_hz || state->first_tune) {
  508. /* get used IF frequency */
  509. if (fe->ops.tuner_ops.get_if_frequency)
  510. fe->ops.tuner_ops.get_if_frequency(fe, &if_frequency);
  511. else
  512. if_frequency = state->config.if_frequency;
  513. sampling_freq = if_frequency;
  514. while (sampling_freq > (state->config.clock / 2))
  515. sampling_freq -= state->config.clock;
  516. if (sampling_freq < 0) {
  517. sampling_freq *= -1;
  518. spec_inv = state->config.spec_inv;
  519. } else {
  520. spec_inv = !state->config.spec_inv;
  521. }
  522. freq_cw = af913_div(sampling_freq, state->config.clock, 23);
  523. if (spec_inv)
  524. freq_cw = 0x800000 - freq_cw;
  525. buf[0] = (freq_cw >> 0) & 0xff;
  526. buf[1] = (freq_cw >> 8) & 0xff;
  527. buf[2] = (freq_cw >> 16) & 0x7f;
  528. freq_cw = 0x800000 - freq_cw;
  529. buf[3] = (freq_cw >> 0) & 0xff;
  530. buf[4] = (freq_cw >> 8) & 0xff;
  531. buf[5] = (freq_cw >> 16) & 0x7f;
  532. ret = af9013_wr_regs(state, 0xd140, buf, 3);
  533. if (ret)
  534. goto err;
  535. ret = af9013_wr_regs(state, 0x9be7, buf, 6);
  536. if (ret)
  537. goto err;
  538. }
  539. /* clear TPS lock flag */
  540. ret = af9013_wr_reg_bits(state, 0xd330, 3, 1, 1);
  541. if (ret)
  542. goto err;
  543. /* clear MPEG2 lock flag */
  544. ret = af9013_wr_reg_bits(state, 0xd507, 6, 1, 0);
  545. if (ret)
  546. goto err;
  547. /* empty channel function */
  548. ret = af9013_wr_reg_bits(state, 0x9bfe, 0, 1, 0);
  549. if (ret)
  550. goto err;
  551. /* empty DVB-T channel function */
  552. ret = af9013_wr_reg_bits(state, 0x9bc2, 0, 1, 0);
  553. if (ret)
  554. goto err;
  555. /* transmission parameters */
  556. auto_mode = false;
  557. memset(buf, 0, 3);
  558. switch (c->transmission_mode) {
  559. case TRANSMISSION_MODE_AUTO:
  560. auto_mode = 1;
  561. break;
  562. case TRANSMISSION_MODE_2K:
  563. break;
  564. case TRANSMISSION_MODE_8K:
  565. buf[0] |= (1 << 0);
  566. break;
  567. default:
  568. dbg("%s: invalid transmission_mode", __func__);
  569. auto_mode = 1;
  570. }
  571. switch (c->guard_interval) {
  572. case GUARD_INTERVAL_AUTO:
  573. auto_mode = 1;
  574. break;
  575. case GUARD_INTERVAL_1_32:
  576. break;
  577. case GUARD_INTERVAL_1_16:
  578. buf[0] |= (1 << 2);
  579. break;
  580. case GUARD_INTERVAL_1_8:
  581. buf[0] |= (2 << 2);
  582. break;
  583. case GUARD_INTERVAL_1_4:
  584. buf[0] |= (3 << 2);
  585. break;
  586. default:
  587. dbg("%s: invalid guard_interval", __func__);
  588. auto_mode = 1;
  589. }
  590. switch (c->hierarchy) {
  591. case HIERARCHY_AUTO:
  592. auto_mode = 1;
  593. break;
  594. case HIERARCHY_NONE:
  595. break;
  596. case HIERARCHY_1:
  597. buf[0] |= (1 << 4);
  598. break;
  599. case HIERARCHY_2:
  600. buf[0] |= (2 << 4);
  601. break;
  602. case HIERARCHY_4:
  603. buf[0] |= (3 << 4);
  604. break;
  605. default:
  606. dbg("%s: invalid hierarchy", __func__);
  607. auto_mode = 1;
  608. };
  609. switch (c->modulation) {
  610. case QAM_AUTO:
  611. auto_mode = 1;
  612. break;
  613. case QPSK:
  614. break;
  615. case QAM_16:
  616. buf[1] |= (1 << 6);
  617. break;
  618. case QAM_64:
  619. buf[1] |= (2 << 6);
  620. break;
  621. default:
  622. dbg("%s: invalid modulation", __func__);
  623. auto_mode = 1;
  624. }
  625. /* Use HP. How and which case we can switch to LP? */
  626. buf[1] |= (1 << 4);
  627. switch (c->code_rate_HP) {
  628. case FEC_AUTO:
  629. auto_mode = 1;
  630. break;
  631. case FEC_1_2:
  632. break;
  633. case FEC_2_3:
  634. buf[2] |= (1 << 0);
  635. break;
  636. case FEC_3_4:
  637. buf[2] |= (2 << 0);
  638. break;
  639. case FEC_5_6:
  640. buf[2] |= (3 << 0);
  641. break;
  642. case FEC_7_8:
  643. buf[2] |= (4 << 0);
  644. break;
  645. default:
  646. dbg("%s: invalid code_rate_HP", __func__);
  647. auto_mode = 1;
  648. }
  649. switch (c->code_rate_LP) {
  650. case FEC_AUTO:
  651. auto_mode = 1;
  652. break;
  653. case FEC_1_2:
  654. break;
  655. case FEC_2_3:
  656. buf[2] |= (1 << 3);
  657. break;
  658. case FEC_3_4:
  659. buf[2] |= (2 << 3);
  660. break;
  661. case FEC_5_6:
  662. buf[2] |= (3 << 3);
  663. break;
  664. case FEC_7_8:
  665. buf[2] |= (4 << 3);
  666. break;
  667. case FEC_NONE:
  668. break;
  669. default:
  670. dbg("%s: invalid code_rate_LP", __func__);
  671. auto_mode = 1;
  672. }
  673. switch (c->bandwidth_hz) {
  674. case 6000000:
  675. break;
  676. case 7000000:
  677. buf[1] |= (1 << 2);
  678. break;
  679. case 8000000:
  680. buf[1] |= (2 << 2);
  681. break;
  682. default:
  683. dbg("%s: invalid bandwidth_hz", __func__);
  684. ret = -EINVAL;
  685. goto err;
  686. }
  687. ret = af9013_wr_regs(state, 0xd3c0, buf, 3);
  688. if (ret)
  689. goto err;
  690. if (auto_mode) {
  691. /* clear easy mode flag */
  692. ret = af9013_wr_reg(state, 0xaefd, 0);
  693. if (ret)
  694. goto err;
  695. dbg("%s: auto params", __func__);
  696. } else {
  697. /* set easy mode flag */
  698. ret = af9013_wr_reg(state, 0xaefd, 1);
  699. if (ret)
  700. goto err;
  701. ret = af9013_wr_reg(state, 0xaefe, 0);
  702. if (ret)
  703. goto err;
  704. dbg("%s: manual params", __func__);
  705. }
  706. /* tune */
  707. ret = af9013_wr_reg(state, 0xffff, 0);
  708. if (ret)
  709. goto err;
  710. state->bandwidth_hz = c->bandwidth_hz;
  711. state->set_frontend_jiffies = jiffies;
  712. state->first_tune = false;
  713. return ret;
  714. err:
  715. dbg("%s: failed=%d", __func__, ret);
  716. return ret;
  717. }
  718. static int af9013_get_frontend(struct dvb_frontend *fe,
  719. struct dvb_frontend_parameters *p)
  720. {
  721. struct af9013_state *state = fe->demodulator_priv;
  722. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  723. int ret;
  724. u8 buf[3];
  725. dbg("%s", __func__);
  726. ret = af9013_rd_regs(state, 0xd3c0, buf, 3);
  727. if (ret)
  728. goto err;
  729. switch ((buf[1] >> 6) & 3) {
  730. case 0:
  731. c->modulation = QPSK;
  732. break;
  733. case 1:
  734. c->modulation = QAM_16;
  735. break;
  736. case 2:
  737. c->modulation = QAM_64;
  738. break;
  739. }
  740. switch ((buf[0] >> 0) & 3) {
  741. case 0:
  742. c->transmission_mode = TRANSMISSION_MODE_2K;
  743. break;
  744. case 1:
  745. c->transmission_mode = TRANSMISSION_MODE_8K;
  746. }
  747. switch ((buf[0] >> 2) & 3) {
  748. case 0:
  749. c->transmission_mode = GUARD_INTERVAL_1_32;
  750. break;
  751. case 1:
  752. c->transmission_mode = GUARD_INTERVAL_1_16;
  753. break;
  754. case 2:
  755. c->transmission_mode = GUARD_INTERVAL_1_8;
  756. break;
  757. case 3:
  758. c->transmission_mode = GUARD_INTERVAL_1_4;
  759. break;
  760. }
  761. switch ((buf[0] >> 4) & 7) {
  762. case 0:
  763. c->hierarchy = HIERARCHY_NONE;
  764. break;
  765. case 1:
  766. c->hierarchy = HIERARCHY_1;
  767. break;
  768. case 2:
  769. c->hierarchy = HIERARCHY_2;
  770. break;
  771. case 3:
  772. c->hierarchy = HIERARCHY_4;
  773. break;
  774. }
  775. switch ((buf[2] >> 0) & 7) {
  776. case 0:
  777. c->code_rate_HP = FEC_1_2;
  778. break;
  779. case 1:
  780. c->code_rate_HP = FEC_2_3;
  781. break;
  782. case 2:
  783. c->code_rate_HP = FEC_3_4;
  784. break;
  785. case 3:
  786. c->code_rate_HP = FEC_5_6;
  787. break;
  788. case 4:
  789. c->code_rate_HP = FEC_7_8;
  790. break;
  791. }
  792. switch ((buf[2] >> 3) & 7) {
  793. case 0:
  794. c->code_rate_LP = FEC_1_2;
  795. break;
  796. case 1:
  797. c->code_rate_LP = FEC_2_3;
  798. break;
  799. case 2:
  800. c->code_rate_LP = FEC_3_4;
  801. break;
  802. case 3:
  803. c->code_rate_LP = FEC_5_6;
  804. break;
  805. case 4:
  806. c->code_rate_LP = FEC_7_8;
  807. break;
  808. }
  809. switch ((buf[1] >> 2) & 3) {
  810. case 0:
  811. c->bandwidth_hz = 6000000;
  812. break;
  813. case 1:
  814. c->bandwidth_hz = 7000000;
  815. break;
  816. case 2:
  817. c->bandwidth_hz = 8000000;
  818. break;
  819. }
  820. return ret;
  821. err:
  822. dbg("%s: failed=%d", __func__, ret);
  823. return ret;
  824. }
  825. static int af9013_read_status(struct dvb_frontend *fe, fe_status_t *status)
  826. {
  827. struct af9013_state *state = fe->demodulator_priv;
  828. int ret;
  829. u8 tmp;
  830. /*
  831. * Return status from the cache if it is younger than 2000ms with the
  832. * exception of last tune is done during 4000ms.
  833. */
  834. if (time_is_after_jiffies(
  835. state->read_status_jiffies + msecs_to_jiffies(2000)) &&
  836. time_is_before_jiffies(
  837. state->set_frontend_jiffies + msecs_to_jiffies(4000))
  838. ) {
  839. *status = state->fe_status;
  840. return 0;
  841. } else {
  842. *status = 0;
  843. }
  844. /* MPEG2 lock */
  845. ret = af9013_rd_reg_bits(state, 0xd507, 6, 1, &tmp);
  846. if (ret)
  847. goto err;
  848. if (tmp)
  849. *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER | FE_HAS_VITERBI |
  850. FE_HAS_SYNC | FE_HAS_LOCK;
  851. if (!*status) {
  852. /* TPS lock */
  853. ret = af9013_rd_reg_bits(state, 0xd330, 3, 1, &tmp);
  854. if (ret)
  855. goto err;
  856. if (tmp)
  857. *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER |
  858. FE_HAS_VITERBI;
  859. }
  860. state->fe_status = *status;
  861. state->read_status_jiffies = jiffies;
  862. return ret;
  863. err:
  864. dbg("%s: failed=%d", __func__, ret);
  865. return ret;
  866. }
  867. static int af9013_read_snr(struct dvb_frontend *fe, u16 *snr)
  868. {
  869. struct af9013_state *state = fe->demodulator_priv;
  870. *snr = state->snr;
  871. return 0;
  872. }
  873. static int af9013_read_signal_strength(struct dvb_frontend *fe, u16 *strength)
  874. {
  875. struct af9013_state *state = fe->demodulator_priv;
  876. *strength = state->signal_strength;
  877. return 0;
  878. }
  879. static int af9013_read_ber(struct dvb_frontend *fe, u32 *ber)
  880. {
  881. struct af9013_state *state = fe->demodulator_priv;
  882. *ber = state->ber;
  883. return 0;
  884. }
  885. static int af9013_read_ucblocks(struct dvb_frontend *fe, u32 *ucblocks)
  886. {
  887. struct af9013_state *state = fe->demodulator_priv;
  888. *ucblocks = state->ucblocks;
  889. return 0;
  890. }
  891. static int af9013_init(struct dvb_frontend *fe)
  892. {
  893. struct af9013_state *state = fe->demodulator_priv;
  894. int ret, i, len;
  895. u8 buf[3], tmp;
  896. u32 adc_cw;
  897. const struct af9013_reg_bit *init;
  898. dbg("%s", __func__);
  899. /* power on */
  900. ret = af9013_power_ctrl(state, 1);
  901. if (ret)
  902. goto err;
  903. /* enable ADC */
  904. ret = af9013_wr_reg(state, 0xd73a, 0xa4);
  905. if (ret)
  906. goto err;
  907. /* write API version to firmware */
  908. ret = af9013_wr_regs(state, 0x9bf2, state->config.api_version, 4);
  909. if (ret)
  910. goto err;
  911. /* program ADC control */
  912. switch (state->config.clock) {
  913. case 28800000: /* 28.800 MHz */
  914. tmp = 0;
  915. break;
  916. case 20480000: /* 20.480 MHz */
  917. tmp = 1;
  918. break;
  919. case 28000000: /* 28.000 MHz */
  920. tmp = 2;
  921. break;
  922. case 25000000: /* 25.000 MHz */
  923. tmp = 3;
  924. break;
  925. default:
  926. err("invalid clock");
  927. return -EINVAL;
  928. }
  929. adc_cw = af913_div(state->config.clock, 1000000ul, 19);
  930. buf[0] = (adc_cw >> 0) & 0xff;
  931. buf[1] = (adc_cw >> 8) & 0xff;
  932. buf[2] = (adc_cw >> 16) & 0xff;
  933. ret = af9013_wr_regs(state, 0xd180, buf, 3);
  934. if (ret)
  935. goto err;
  936. ret = af9013_wr_reg_bits(state, 0x9bd2, 0, 4, tmp);
  937. if (ret)
  938. goto err;
  939. /* set I2C master clock */
  940. ret = af9013_wr_reg(state, 0xd416, 0x14);
  941. if (ret)
  942. goto err;
  943. /* set 16 embx */
  944. ret = af9013_wr_reg_bits(state, 0xd700, 1, 1, 1);
  945. if (ret)
  946. goto err;
  947. /* set no trigger */
  948. ret = af9013_wr_reg_bits(state, 0xd700, 2, 1, 0);
  949. if (ret)
  950. goto err;
  951. /* set read-update bit for constellation */
  952. ret = af9013_wr_reg_bits(state, 0xd371, 1, 1, 1);
  953. if (ret)
  954. goto err;
  955. /* settings for mp2if */
  956. if (state->config.ts_mode == AF9013_TS_USB) {
  957. /* AF9015 split PSB to 1.5k + 0.5k */
  958. ret = af9013_wr_reg_bits(state, 0xd50b, 2, 1, 1);
  959. if (ret)
  960. goto err;
  961. } else {
  962. /* AF9013 change the output bit to data7 */
  963. ret = af9013_wr_reg_bits(state, 0xd500, 3, 1, 1);
  964. if (ret)
  965. goto err;
  966. /* AF9013 set mpeg to full speed */
  967. ret = af9013_wr_reg_bits(state, 0xd502, 4, 1, 1);
  968. if (ret)
  969. goto err;
  970. }
  971. ret = af9013_wr_reg_bits(state, 0xd520, 4, 1, 1);
  972. if (ret)
  973. goto err;
  974. /* load OFSM settings */
  975. dbg("%s: load ofsm settings", __func__);
  976. len = ARRAY_SIZE(ofsm_init);
  977. init = ofsm_init;
  978. for (i = 0; i < len; i++) {
  979. ret = af9013_wr_reg_bits(state, init[i].addr, init[i].pos,
  980. init[i].len, init[i].val);
  981. if (ret)
  982. goto err;
  983. }
  984. /* load tuner specific settings */
  985. dbg("%s: load tuner specific settings", __func__);
  986. switch (state->config.tuner) {
  987. case AF9013_TUNER_MXL5003D:
  988. len = ARRAY_SIZE(tuner_init_mxl5003d);
  989. init = tuner_init_mxl5003d;
  990. break;
  991. case AF9013_TUNER_MXL5005D:
  992. case AF9013_TUNER_MXL5005R:
  993. case AF9013_TUNER_MXL5007T:
  994. len = ARRAY_SIZE(tuner_init_mxl5005);
  995. init = tuner_init_mxl5005;
  996. break;
  997. case AF9013_TUNER_ENV77H11D5:
  998. len = ARRAY_SIZE(tuner_init_env77h11d5);
  999. init = tuner_init_env77h11d5;
  1000. break;
  1001. case AF9013_TUNER_MT2060:
  1002. len = ARRAY_SIZE(tuner_init_mt2060);
  1003. init = tuner_init_mt2060;
  1004. break;
  1005. case AF9013_TUNER_MC44S803:
  1006. len = ARRAY_SIZE(tuner_init_mc44s803);
  1007. init = tuner_init_mc44s803;
  1008. break;
  1009. case AF9013_TUNER_QT1010:
  1010. case AF9013_TUNER_QT1010A:
  1011. len = ARRAY_SIZE(tuner_init_qt1010);
  1012. init = tuner_init_qt1010;
  1013. break;
  1014. case AF9013_TUNER_MT2060_2:
  1015. len = ARRAY_SIZE(tuner_init_mt2060_2);
  1016. init = tuner_init_mt2060_2;
  1017. break;
  1018. case AF9013_TUNER_TDA18271:
  1019. case AF9013_TUNER_TDA18218:
  1020. len = ARRAY_SIZE(tuner_init_tda18271);
  1021. init = tuner_init_tda18271;
  1022. break;
  1023. case AF9013_TUNER_UNKNOWN:
  1024. default:
  1025. len = ARRAY_SIZE(tuner_init_unknown);
  1026. init = tuner_init_unknown;
  1027. break;
  1028. }
  1029. for (i = 0; i < len; i++) {
  1030. ret = af9013_wr_reg_bits(state, init[i].addr, init[i].pos,
  1031. init[i].len, init[i].val);
  1032. if (ret)
  1033. goto err;
  1034. }
  1035. /* TS mode */
  1036. ret = af9013_wr_reg_bits(state, 0xd500, 1, 2, state->config.ts_mode);
  1037. if (ret)
  1038. goto err;
  1039. /* enable lock led */
  1040. ret = af9013_wr_reg_bits(state, 0xd730, 0, 1, 1);
  1041. if (ret)
  1042. goto err;
  1043. /* check if we support signal strength */
  1044. if (!state->signal_strength_en) {
  1045. ret = af9013_rd_reg_bits(state, 0x9bee, 0, 1,
  1046. &state->signal_strength_en);
  1047. if (ret)
  1048. goto err;
  1049. }
  1050. /* read values needed for signal strength calculation */
  1051. if (state->signal_strength_en && !state->rf_50) {
  1052. ret = af9013_rd_reg(state, 0x9bbd, &state->rf_50);
  1053. if (ret)
  1054. goto err;
  1055. ret = af9013_rd_reg(state, 0x9bd0, &state->rf_80);
  1056. if (ret)
  1057. goto err;
  1058. ret = af9013_rd_reg(state, 0x9be2, &state->if_50);
  1059. if (ret)
  1060. goto err;
  1061. ret = af9013_rd_reg(state, 0x9be4, &state->if_80);
  1062. if (ret)
  1063. goto err;
  1064. }
  1065. /* SNR */
  1066. ret = af9013_wr_reg(state, 0xd2e2, 1);
  1067. if (ret)
  1068. goto err;
  1069. /* BER / UCB */
  1070. buf[0] = (10000 >> 0) & 0xff;
  1071. buf[1] = (10000 >> 8) & 0xff;
  1072. ret = af9013_wr_regs(state, 0xd385, buf, 2);
  1073. if (ret)
  1074. goto err;
  1075. /* enable FEC monitor */
  1076. ret = af9013_wr_reg_bits(state, 0xd392, 1, 1, 1);
  1077. if (ret)
  1078. goto err;
  1079. state->first_tune = true;
  1080. schedule_delayed_work(&state->statistics_work, msecs_to_jiffies(400));
  1081. return ret;
  1082. err:
  1083. dbg("%s: failed=%d", __func__, ret);
  1084. return ret;
  1085. }
  1086. static int af9013_sleep(struct dvb_frontend *fe)
  1087. {
  1088. struct af9013_state *state = fe->demodulator_priv;
  1089. int ret;
  1090. dbg("%s", __func__);
  1091. /* stop statistics polling */
  1092. cancel_delayed_work_sync(&state->statistics_work);
  1093. /* disable lock led */
  1094. ret = af9013_wr_reg_bits(state, 0xd730, 0, 1, 0);
  1095. if (ret)
  1096. goto err;
  1097. /* power off */
  1098. ret = af9013_power_ctrl(state, 0);
  1099. if (ret)
  1100. goto err;
  1101. return ret;
  1102. err:
  1103. dbg("%s: failed=%d", __func__, ret);
  1104. return ret;
  1105. }
  1106. static int af9013_i2c_gate_ctrl(struct dvb_frontend *fe, int enable)
  1107. {
  1108. int ret;
  1109. struct af9013_state *state = fe->demodulator_priv;
  1110. dbg("%s: enable=%d", __func__, enable);
  1111. /* gate already open or close */
  1112. if (state->i2c_gate_state == enable)
  1113. return 0;
  1114. if (state->config.ts_mode == AF9013_TS_USB)
  1115. ret = af9013_wr_reg_bits(state, 0xd417, 3, 1, enable);
  1116. else
  1117. ret = af9013_wr_reg_bits(state, 0xd607, 2, 1, enable);
  1118. if (ret)
  1119. goto err;
  1120. state->i2c_gate_state = enable;
  1121. return ret;
  1122. err:
  1123. dbg("%s: failed=%d", __func__, ret);
  1124. return ret;
  1125. }
  1126. static void af9013_release(struct dvb_frontend *fe)
  1127. {
  1128. struct af9013_state *state = fe->demodulator_priv;
  1129. kfree(state);
  1130. }
  1131. static struct dvb_frontend_ops af9013_ops;
  1132. static int af9013_download_firmware(struct af9013_state *state)
  1133. {
  1134. int i, len, remaining, ret;
  1135. const struct firmware *fw;
  1136. u16 checksum = 0;
  1137. u8 val;
  1138. u8 fw_params[4];
  1139. u8 *fw_file = AF9013_DEFAULT_FIRMWARE;
  1140. msleep(100);
  1141. /* check whether firmware is already running */
  1142. ret = af9013_rd_reg(state, 0x98be, &val);
  1143. if (ret)
  1144. goto err;
  1145. else
  1146. dbg("%s: firmware status=%02x", __func__, val);
  1147. if (val == 0x0c) /* fw is running, no need for download */
  1148. goto exit;
  1149. info("found a '%s' in cold state, will try to load a firmware",
  1150. af9013_ops.info.name);
  1151. /* request the firmware, this will block and timeout */
  1152. ret = request_firmware(&fw, fw_file, state->i2c->dev.parent);
  1153. if (ret) {
  1154. err("did not find the firmware file. (%s) "
  1155. "Please see linux/Documentation/dvb/ for more details" \
  1156. " on firmware-problems. (%d)",
  1157. fw_file, ret);
  1158. goto err;
  1159. }
  1160. info("downloading firmware from file '%s'", fw_file);
  1161. /* calc checksum */
  1162. for (i = 0; i < fw->size; i++)
  1163. checksum += fw->data[i];
  1164. fw_params[0] = checksum >> 8;
  1165. fw_params[1] = checksum & 0xff;
  1166. fw_params[2] = fw->size >> 8;
  1167. fw_params[3] = fw->size & 0xff;
  1168. /* write fw checksum & size */
  1169. ret = af9013_write_ofsm_regs(state, 0x50fc,
  1170. fw_params, sizeof(fw_params));
  1171. if (ret)
  1172. goto err_release;
  1173. #define FW_ADDR 0x5100 /* firmware start address */
  1174. #define LEN_MAX 16 /* max packet size */
  1175. for (remaining = fw->size; remaining > 0; remaining -= LEN_MAX) {
  1176. len = remaining;
  1177. if (len > LEN_MAX)
  1178. len = LEN_MAX;
  1179. ret = af9013_write_ofsm_regs(state,
  1180. FW_ADDR + fw->size - remaining,
  1181. (u8 *) &fw->data[fw->size - remaining], len);
  1182. if (ret) {
  1183. err("firmware download failed:%d", ret);
  1184. goto err_release;
  1185. }
  1186. }
  1187. /* request boot firmware */
  1188. ret = af9013_wr_reg(state, 0xe205, 1);
  1189. if (ret)
  1190. goto err_release;
  1191. for (i = 0; i < 15; i++) {
  1192. msleep(100);
  1193. /* check firmware status */
  1194. ret = af9013_rd_reg(state, 0x98be, &val);
  1195. if (ret)
  1196. goto err_release;
  1197. dbg("%s: firmware status=%02x", __func__, val);
  1198. if (val == 0x0c || val == 0x04) /* success or fail */
  1199. break;
  1200. }
  1201. if (val == 0x04) {
  1202. err("firmware did not run");
  1203. ret = -ENODEV;
  1204. } else if (val != 0x0c) {
  1205. err("firmware boot timeout");
  1206. ret = -ENODEV;
  1207. }
  1208. err_release:
  1209. release_firmware(fw);
  1210. err:
  1211. exit:
  1212. if (!ret)
  1213. info("found a '%s' in warm state.", af9013_ops.info.name);
  1214. return ret;
  1215. }
  1216. struct dvb_frontend *af9013_attach(const struct af9013_config *config,
  1217. struct i2c_adapter *i2c)
  1218. {
  1219. int ret;
  1220. struct af9013_state *state = NULL;
  1221. u8 buf[4], i;
  1222. /* allocate memory for the internal state */
  1223. state = kzalloc(sizeof(struct af9013_state), GFP_KERNEL);
  1224. if (state == NULL)
  1225. goto err;
  1226. /* setup the state */
  1227. state->i2c = i2c;
  1228. memcpy(&state->config, config, sizeof(struct af9013_config));
  1229. /* download firmware */
  1230. if (state->config.ts_mode != AF9013_TS_USB) {
  1231. ret = af9013_download_firmware(state);
  1232. if (ret)
  1233. goto err;
  1234. }
  1235. /* firmware version */
  1236. ret = af9013_rd_regs(state, 0x5103, buf, 4);
  1237. if (ret)
  1238. goto err;
  1239. info("firmware version %d.%d.%d.%d", buf[0], buf[1], buf[2], buf[3]);
  1240. /* set GPIOs */
  1241. for (i = 0; i < sizeof(state->config.gpio); i++) {
  1242. ret = af9013_set_gpio(state, i, state->config.gpio[i]);
  1243. if (ret)
  1244. goto err;
  1245. }
  1246. /* create dvb_frontend */
  1247. memcpy(&state->fe.ops, &af9013_ops,
  1248. sizeof(struct dvb_frontend_ops));
  1249. state->fe.demodulator_priv = state;
  1250. INIT_DELAYED_WORK(&state->statistics_work, af9013_statistics_work);
  1251. return &state->fe;
  1252. err:
  1253. kfree(state);
  1254. return NULL;
  1255. }
  1256. EXPORT_SYMBOL(af9013_attach);
  1257. static struct dvb_frontend_ops af9013_ops = {
  1258. .info = {
  1259. .name = "Afatech AF9013",
  1260. .type = FE_OFDM,
  1261. .frequency_min = 174000000,
  1262. .frequency_max = 862000000,
  1263. .frequency_stepsize = 250000,
  1264. .frequency_tolerance = 0,
  1265. .caps = FE_CAN_FEC_1_2 |
  1266. FE_CAN_FEC_2_3 |
  1267. FE_CAN_FEC_3_4 |
  1268. FE_CAN_FEC_5_6 |
  1269. FE_CAN_FEC_7_8 |
  1270. FE_CAN_FEC_AUTO |
  1271. FE_CAN_QPSK |
  1272. FE_CAN_QAM_16 |
  1273. FE_CAN_QAM_64 |
  1274. FE_CAN_QAM_AUTO |
  1275. FE_CAN_TRANSMISSION_MODE_AUTO |
  1276. FE_CAN_GUARD_INTERVAL_AUTO |
  1277. FE_CAN_HIERARCHY_AUTO |
  1278. FE_CAN_RECOVER |
  1279. FE_CAN_MUTE_TS
  1280. },
  1281. .release = af9013_release,
  1282. .init = af9013_init,
  1283. .sleep = af9013_sleep,
  1284. .get_tune_settings = af9013_get_tune_settings,
  1285. .set_frontend_legacy = af9013_set_frontend,
  1286. .get_frontend_legacy = af9013_get_frontend,
  1287. .read_status = af9013_read_status,
  1288. .read_snr = af9013_read_snr,
  1289. .read_signal_strength = af9013_read_signal_strength,
  1290. .read_ber = af9013_read_ber,
  1291. .read_ucblocks = af9013_read_ucblocks,
  1292. .i2c_gate_ctrl = af9013_i2c_gate_ctrl,
  1293. };
  1294. MODULE_AUTHOR("Antti Palosaari <crope@iki.fi>");
  1295. MODULE_DESCRIPTION("Afatech AF9013 DVB-T demodulator driver");
  1296. MODULE_LICENSE("GPL");