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Antti Palosaari825b9672008-09-15 15:01:52 -03001/*
Antti Palosaaric89f66f2010-06-17 21:19:13 -03002 * Afatech AF9013 demodulator driver
Antti Palosaari825b9672008-09-15 15:01:52 -03003 *
4 * Copyright (C) 2007 Antti Palosaari <crope@iki.fi>
5 *
6 * Thanks to Afatech who kindly provided information.
7 *
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License as published by
10 * the Free Software Foundation; either version 2 of the License, or
11 * (at your option) any later version.
12 *
13 * This program is distributed in the hope that it will be useful,
14 * but WITHOUT ANY WARRANTY; without even the implied warranty of
15 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 * GNU General Public License for more details.
17 *
18 * You should have received a copy of the GNU General Public License
19 * along with this program; if not, write to the Free Software
20 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
21 *
22 */
23
24#include <linux/kernel.h>
25#include <linux/module.h>
26#include <linux/moduleparam.h>
27#include <linux/init.h>
28#include <linux/delay.h>
29#include <linux/string.h>
30#include <linux/slab.h>
31#include <linux/firmware.h>
32
33#include "dvb_frontend.h"
34#include "af9013_priv.h"
35#include "af9013.h"
36
37int af9013_debug;
38
39struct af9013_state {
40 struct i2c_adapter *i2c;
41 struct dvb_frontend frontend;
42
43 struct af9013_config config;
44
45 u16 signal_strength;
46 u32 ber;
47 u32 ucblocks;
48 u16 snr;
49 u32 frequency;
50 unsigned long next_statistics_check;
51};
52
53static u8 regmask[8] = { 0x01, 0x03, 0x07, 0x0f, 0x1f, 0x3f, 0x7f, 0xff };
54
55static int af9013_write_regs(struct af9013_state *state, u8 mbox, u16 reg,
56 u8 *val, u8 len)
57{
58 u8 buf[3+len];
59 struct i2c_msg msg = {
60 .addr = state->config.demod_address,
61 .flags = 0,
62 .len = sizeof(buf),
63 .buf = buf };
64
65 buf[0] = reg >> 8;
66 buf[1] = reg & 0xff;
67 buf[2] = mbox;
68 memcpy(&buf[3], val, len);
69
70 if (i2c_transfer(state->i2c, &msg, 1) != 1) {
71 warn("I2C write failed reg:%04x len:%d", reg, len);
72 return -EREMOTEIO;
73 }
74 return 0;
75}
76
77static int af9013_write_ofdm_regs(struct af9013_state *state, u16 reg, u8 *val,
78 u8 len)
79{
80 u8 mbox = (1 << 0)|(1 << 1)|((len - 1) << 2)|(0 << 6)|(0 << 7);
81 return af9013_write_regs(state, mbox, reg, val, len);
82}
83
84static int af9013_write_ofsm_regs(struct af9013_state *state, u16 reg, u8 *val,
85 u8 len)
86{
87 u8 mbox = (1 << 0)|(1 << 1)|((len - 1) << 2)|(1 << 6)|(1 << 7);
88 return af9013_write_regs(state, mbox, reg, val, len);
89}
90
91/* write single register */
92static int af9013_write_reg(struct af9013_state *state, u16 reg, u8 val)
93{
94 return af9013_write_ofdm_regs(state, reg, &val, 1);
95}
96
97/* read single register */
98static int af9013_read_reg(struct af9013_state *state, u16 reg, u8 *val)
99{
100 u8 obuf[3] = { reg >> 8, reg & 0xff, 0 };
101 u8 ibuf[1];
102 struct i2c_msg msg[2] = {
103 {
104 .addr = state->config.demod_address,
105 .flags = 0,
106 .len = sizeof(obuf),
107 .buf = obuf
108 }, {
109 .addr = state->config.demod_address,
110 .flags = I2C_M_RD,
111 .len = sizeof(ibuf),
112 .buf = ibuf
113 }
114 };
115
116 if (i2c_transfer(state->i2c, msg, 2) != 2) {
117 warn("I2C read failed reg:%04x", reg);
118 return -EREMOTEIO;
119 }
120 *val = ibuf[0];
121 return 0;
122}
123
124static int af9013_write_reg_bits(struct af9013_state *state, u16 reg, u8 pos,
125 u8 len, u8 val)
126{
127 int ret;
128 u8 tmp, mask;
129
130 ret = af9013_read_reg(state, reg, &tmp);
131 if (ret)
132 return ret;
133
134 mask = regmask[len - 1] << pos;
135 tmp = (tmp & ~mask) | ((val << pos) & mask);
136
137 return af9013_write_reg(state, reg, tmp);
138}
139
140static int af9013_read_reg_bits(struct af9013_state *state, u16 reg, u8 pos,
141 u8 len, u8 *val)
142{
143 int ret;
144 u8 tmp;
145
146 ret = af9013_read_reg(state, reg, &tmp);
147 if (ret)
148 return ret;
149 *val = (tmp >> pos) & regmask[len - 1];
150 return 0;
151}
152
153static int af9013_set_gpio(struct af9013_state *state, u8 gpio, u8 gpioval)
154{
155 int ret;
156 u8 pos;
157 u16 addr;
158 deb_info("%s: gpio:%d gpioval:%02x\n", __func__, gpio, gpioval);
159
160/* GPIO0 & GPIO1 0xd735
161 GPIO2 & GPIO3 0xd736 */
162
163 switch (gpio) {
164 case 0:
165 case 1:
166 addr = 0xd735;
167 break;
168 case 2:
169 case 3:
170 addr = 0xd736;
171 break;
172
173 default:
174 err("invalid gpio:%d\n", gpio);
175 ret = -EINVAL;
176 goto error;
177 };
178
179 switch (gpio) {
180 case 0:
181 case 2:
182 pos = 0;
183 break;
184 case 1:
185 case 3:
186 default:
187 pos = 4;
188 break;
189 };
190
191 ret = af9013_write_reg_bits(state, addr, pos, 4, gpioval);
192
193error:
194 return ret;
195}
196
197static u32 af913_div(u32 a, u32 b, u32 x)
198{
199 u32 r = 0, c = 0, i;
200 deb_info("%s: a:%d b:%d x:%d\n", __func__, a, b, x);
201
202 if (a > b) {
203 c = a / b;
204 a = a - c * b;
205 }
206
207 for (i = 0; i < x; i++) {
208 if (a >= b) {
209 r += 1;
210 a -= b;
211 }
212 a <<= 1;
213 r <<= 1;
214 }
215 r = (c << (u32)x) + r;
216
217 deb_info("%s: a:%d b:%d x:%d r:%d r:%x\n", __func__, a, b, x, r, r);
218 return r;
219}
220
221static int af9013_set_coeff(struct af9013_state *state, fe_bandwidth_t bw)
222{
223 int ret = 0;
224 u8 i = 0;
225 u8 buf[24];
Mauro Carvalho Chehab4d543092008-12-29 23:18:31 -0300226 u32 uninitialized_var(ns_coeff1_2048nu);
227 u32 uninitialized_var(ns_coeff1_8191nu);
228 u32 uninitialized_var(ns_coeff1_8192nu);
229 u32 uninitialized_var(ns_coeff1_8193nu);
230 u32 uninitialized_var(ns_coeff2_2k);
231 u32 uninitialized_var(ns_coeff2_8k);
Antti Palosaari825b9672008-09-15 15:01:52 -0300232
233 deb_info("%s: adc_clock:%d bw:%d\n", __func__,
234 state->config.adc_clock, bw);
235
236 switch (state->config.adc_clock) {
237 case 28800: /* 28.800 MHz */
238 switch (bw) {
239 case BANDWIDTH_6_MHZ:
240 ns_coeff1_2048nu = 0x01e79e7a;
241 ns_coeff1_8191nu = 0x0079eb6e;
242 ns_coeff1_8192nu = 0x0079e79e;
243 ns_coeff1_8193nu = 0x0079e3cf;
244 ns_coeff2_2k = 0x00f3cf3d;
245 ns_coeff2_8k = 0x003cf3cf;
246 break;
247 case BANDWIDTH_7_MHZ:
248 ns_coeff1_2048nu = 0x0238e38e;
249 ns_coeff1_8191nu = 0x008e3d55;
250 ns_coeff1_8192nu = 0x008e38e4;
251 ns_coeff1_8193nu = 0x008e3472;
252 ns_coeff2_2k = 0x011c71c7;
253 ns_coeff2_8k = 0x00471c72;
254 break;
255 case BANDWIDTH_8_MHZ:
256 ns_coeff1_2048nu = 0x028a28a3;
257 ns_coeff1_8191nu = 0x00a28f3d;
258 ns_coeff1_8192nu = 0x00a28a29;
259 ns_coeff1_8193nu = 0x00a28514;
260 ns_coeff2_2k = 0x01451451;
261 ns_coeff2_8k = 0x00514514;
262 break;
263 default:
264 ret = -EINVAL;
265 }
266 break;
267 case 20480: /* 20.480 MHz */
268 switch (bw) {
269 case BANDWIDTH_6_MHZ:
270 ns_coeff1_2048nu = 0x02adb6dc;
271 ns_coeff1_8191nu = 0x00ab7313;
272 ns_coeff1_8192nu = 0x00ab6db7;
273 ns_coeff1_8193nu = 0x00ab685c;
274 ns_coeff2_2k = 0x0156db6e;
275 ns_coeff2_8k = 0x0055b6dc;
276 break;
277 case BANDWIDTH_7_MHZ:
278 ns_coeff1_2048nu = 0x03200001;
279 ns_coeff1_8191nu = 0x00c80640;
280 ns_coeff1_8192nu = 0x00c80000;
281 ns_coeff1_8193nu = 0x00c7f9c0;
282 ns_coeff2_2k = 0x01900000;
283 ns_coeff2_8k = 0x00640000;
284 break;
285 case BANDWIDTH_8_MHZ:
286 ns_coeff1_2048nu = 0x03924926;
287 ns_coeff1_8191nu = 0x00e4996e;
288 ns_coeff1_8192nu = 0x00e49249;
289 ns_coeff1_8193nu = 0x00e48b25;
290 ns_coeff2_2k = 0x01c92493;
291 ns_coeff2_8k = 0x00724925;
292 break;
293 default:
294 ret = -EINVAL;
295 }
296 break;
297 case 28000: /* 28.000 MHz */
298 switch (bw) {
299 case BANDWIDTH_6_MHZ:
300 ns_coeff1_2048nu = 0x01f58d10;
301 ns_coeff1_8191nu = 0x007d672f;
302 ns_coeff1_8192nu = 0x007d6344;
303 ns_coeff1_8193nu = 0x007d5f59;
304 ns_coeff2_2k = 0x00fac688;
305 ns_coeff2_8k = 0x003eb1a2;
306 break;
307 case BANDWIDTH_7_MHZ:
308 ns_coeff1_2048nu = 0x02492492;
309 ns_coeff1_8191nu = 0x00924db7;
310 ns_coeff1_8192nu = 0x00924925;
311 ns_coeff1_8193nu = 0x00924492;
312 ns_coeff2_2k = 0x01249249;
313 ns_coeff2_8k = 0x00492492;
314 break;
315 case BANDWIDTH_8_MHZ:
316 ns_coeff1_2048nu = 0x029cbc15;
317 ns_coeff1_8191nu = 0x00a7343f;
318 ns_coeff1_8192nu = 0x00a72f05;
319 ns_coeff1_8193nu = 0x00a729cc;
320 ns_coeff2_2k = 0x014e5e0a;
321 ns_coeff2_8k = 0x00539783;
322 break;
323 default:
324 ret = -EINVAL;
325 }
326 break;
327 case 25000: /* 25.000 MHz */
328 switch (bw) {
329 case BANDWIDTH_6_MHZ:
330 ns_coeff1_2048nu = 0x0231bcb5;
331 ns_coeff1_8191nu = 0x008c7391;
332 ns_coeff1_8192nu = 0x008c6f2d;
333 ns_coeff1_8193nu = 0x008c6aca;
334 ns_coeff2_2k = 0x0118de5b;
335 ns_coeff2_8k = 0x00463797;
336 break;
337 case BANDWIDTH_7_MHZ:
338 ns_coeff1_2048nu = 0x028f5c29;
339 ns_coeff1_8191nu = 0x00a3dc29;
340 ns_coeff1_8192nu = 0x00a3d70a;
341 ns_coeff1_8193nu = 0x00a3d1ec;
342 ns_coeff2_2k = 0x0147ae14;
343 ns_coeff2_8k = 0x0051eb85;
344 break;
345 case BANDWIDTH_8_MHZ:
346 ns_coeff1_2048nu = 0x02ecfb9d;
347 ns_coeff1_8191nu = 0x00bb44c1;
348 ns_coeff1_8192nu = 0x00bb3ee7;
349 ns_coeff1_8193nu = 0x00bb390d;
350 ns_coeff2_2k = 0x01767dce;
351 ns_coeff2_8k = 0x005d9f74;
352 break;
353 default:
354 ret = -EINVAL;
355 }
356 break;
357 default:
358 err("invalid xtal");
359 return -EINVAL;
360 }
361 if (ret) {
362 err("invalid bandwidth");
363 return ret;
364 }
365
366 buf[i++] = (u8) ((ns_coeff1_2048nu & 0x03000000) >> 24);
367 buf[i++] = (u8) ((ns_coeff1_2048nu & 0x00ff0000) >> 16);
368 buf[i++] = (u8) ((ns_coeff1_2048nu & 0x0000ff00) >> 8);
369 buf[i++] = (u8) ((ns_coeff1_2048nu & 0x000000ff));
370 buf[i++] = (u8) ((ns_coeff2_2k & 0x01c00000) >> 22);
371 buf[i++] = (u8) ((ns_coeff2_2k & 0x003fc000) >> 14);
372 buf[i++] = (u8) ((ns_coeff2_2k & 0x00003fc0) >> 6);
373 buf[i++] = (u8) ((ns_coeff2_2k & 0x0000003f));
374 buf[i++] = (u8) ((ns_coeff1_8191nu & 0x03000000) >> 24);
375 buf[i++] = (u8) ((ns_coeff1_8191nu & 0x00ffc000) >> 16);
376 buf[i++] = (u8) ((ns_coeff1_8191nu & 0x0000ff00) >> 8);
377 buf[i++] = (u8) ((ns_coeff1_8191nu & 0x000000ff));
378 buf[i++] = (u8) ((ns_coeff1_8192nu & 0x03000000) >> 24);
379 buf[i++] = (u8) ((ns_coeff1_8192nu & 0x00ffc000) >> 16);
380 buf[i++] = (u8) ((ns_coeff1_8192nu & 0x0000ff00) >> 8);
381 buf[i++] = (u8) ((ns_coeff1_8192nu & 0x000000ff));
382 buf[i++] = (u8) ((ns_coeff1_8193nu & 0x03000000) >> 24);
383 buf[i++] = (u8) ((ns_coeff1_8193nu & 0x00ffc000) >> 16);
384 buf[i++] = (u8) ((ns_coeff1_8193nu & 0x0000ff00) >> 8);
385 buf[i++] = (u8) ((ns_coeff1_8193nu & 0x000000ff));
386 buf[i++] = (u8) ((ns_coeff2_8k & 0x01c00000) >> 22);
387 buf[i++] = (u8) ((ns_coeff2_8k & 0x003fc000) >> 14);
388 buf[i++] = (u8) ((ns_coeff2_8k & 0x00003fc0) >> 6);
389 buf[i++] = (u8) ((ns_coeff2_8k & 0x0000003f));
390
391 deb_info("%s: coeff:", __func__);
392 debug_dump(buf, sizeof(buf), deb_info);
393
394 /* program */
395 for (i = 0; i < sizeof(buf); i++) {
396 ret = af9013_write_reg(state, 0xae00 + i, buf[i]);
397 if (ret)
398 break;
399 }
400
401 return ret;
402}
403
404static int af9013_set_adc_ctrl(struct af9013_state *state)
405{
406 int ret;
407 u8 buf[3], tmp, i;
408 u32 adc_cw;
409
410 deb_info("%s: adc_clock:%d\n", __func__, state->config.adc_clock);
411
412 /* adc frequency type */
413 switch (state->config.adc_clock) {
414 case 28800: /* 28.800 MHz */
415 tmp = 0;
416 break;
417 case 20480: /* 20.480 MHz */
418 tmp = 1;
419 break;
420 case 28000: /* 28.000 MHz */
421 tmp = 2;
422 break;
423 case 25000: /* 25.000 MHz */
424 tmp = 3;
425 break;
426 default:
427 err("invalid xtal");
428 return -EINVAL;
429 }
430
431 adc_cw = af913_div(state->config.adc_clock*1000, 1000000ul, 19ul);
432
433 buf[0] = (u8) ((adc_cw & 0x000000ff));
434 buf[1] = (u8) ((adc_cw & 0x0000ff00) >> 8);
435 buf[2] = (u8) ((adc_cw & 0x00ff0000) >> 16);
436
437 deb_info("%s: adc_cw:", __func__);
438 debug_dump(buf, sizeof(buf), deb_info);
439
440 /* program */
441 for (i = 0; i < sizeof(buf); i++) {
442 ret = af9013_write_reg(state, 0xd180 + i, buf[i]);
443 if (ret)
444 goto error;
445 }
446 ret = af9013_write_reg_bits(state, 0x9bd2, 0, 4, tmp);
447error:
448 return ret;
449}
450
451static int af9013_set_freq_ctrl(struct af9013_state *state, fe_bandwidth_t bw)
452{
453 int ret;
454 u16 addr;
455 u8 buf[3], i, j;
456 u32 adc_freq, freq_cw;
457 s8 bfs_spec_inv;
458 int if_sample_freq;
459
460 for (j = 0; j < 3; j++) {
461 if (j == 0) {
462 addr = 0xd140; /* fcw normal */
463 bfs_spec_inv = state->config.rf_spec_inv ? -1 : 1;
464 } else if (j == 1) {
465 addr = 0x9be7; /* fcw dummy ram */
466 bfs_spec_inv = state->config.rf_spec_inv ? -1 : 1;
467 } else {
468 addr = 0x9bea; /* fcw inverted */
469 bfs_spec_inv = state->config.rf_spec_inv ? 1 : -1;
470 }
471
472 adc_freq = state->config.adc_clock * 1000;
473 if_sample_freq = state->config.tuner_if * 1000;
474
475 /* TDA18271 uses different sampling freq for every bw */
476 if (state->config.tuner == AF9013_TUNER_TDA18271) {
477 switch (bw) {
478 case BANDWIDTH_6_MHZ:
479 if_sample_freq = 3300000; /* 3.3 MHz */
480 break;
481 case BANDWIDTH_7_MHZ:
482 if_sample_freq = 3800000; /* 3.8 MHz */
483 break;
484 case BANDWIDTH_8_MHZ:
485 default:
486 if_sample_freq = 4300000; /* 4.3 MHz */
487 break;
488 }
Antti Palosaari2158e502010-08-13 03:49:24 -0300489 } else if (state->config.tuner == AF9013_TUNER_TDA18218) {
490 switch (bw) {
491 case BANDWIDTH_6_MHZ:
492 if_sample_freq = 3000000; /* 3 MHz */
493 break;
494 case BANDWIDTH_7_MHZ:
495 if_sample_freq = 3500000; /* 3.5 MHz */
496 break;
497 case BANDWIDTH_8_MHZ:
498 default:
499 if_sample_freq = 4000000; /* 4 MHz */
500 break;
501 }
Antti Palosaari825b9672008-09-15 15:01:52 -0300502 }
503
504 while (if_sample_freq > (adc_freq / 2))
505 if_sample_freq = if_sample_freq - adc_freq;
506
507 if (if_sample_freq >= 0)
508 bfs_spec_inv = bfs_spec_inv * (-1);
509 else
510 if_sample_freq = if_sample_freq * (-1);
511
512 freq_cw = af913_div(if_sample_freq, adc_freq, 23ul);
513
514 if (bfs_spec_inv == -1)
515 freq_cw = 0x00800000 - freq_cw;
516
517 buf[0] = (u8) ((freq_cw & 0x000000ff));
518 buf[1] = (u8) ((freq_cw & 0x0000ff00) >> 8);
519 buf[2] = (u8) ((freq_cw & 0x007f0000) >> 16);
520
521
522 deb_info("%s: freq_cw:", __func__);
523 debug_dump(buf, sizeof(buf), deb_info);
524
525 /* program */
526 for (i = 0; i < sizeof(buf); i++) {
527 ret = af9013_write_reg(state, addr++, buf[i]);
528 if (ret)
529 goto error;
530 }
531 }
532error:
533 return ret;
534}
535
536static int af9013_set_ofdm_params(struct af9013_state *state,
537 struct dvb_ofdm_parameters *params, u8 *auto_mode)
538{
539 int ret;
540 u8 i, buf[3] = {0, 0, 0};
541 *auto_mode = 0; /* set if parameters are requested to auto set */
542
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300543 /* Try auto-detect transmission parameters in case of AUTO requested or
544 garbage parameters given by application for compatibility.
545 MPlayer seems to provide garbage parameters currently. */
546
Antti Palosaari825b9672008-09-15 15:01:52 -0300547 switch (params->transmission_mode) {
548 case TRANSMISSION_MODE_AUTO:
549 *auto_mode = 1;
550 case TRANSMISSION_MODE_2K:
551 break;
552 case TRANSMISSION_MODE_8K:
553 buf[0] |= (1 << 0);
554 break;
555 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300556 deb_info("%s: invalid transmission_mode\n", __func__);
557 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300558 }
559
560 switch (params->guard_interval) {
561 case GUARD_INTERVAL_AUTO:
562 *auto_mode = 1;
563 case GUARD_INTERVAL_1_32:
564 break;
565 case GUARD_INTERVAL_1_16:
566 buf[0] |= (1 << 2);
567 break;
568 case GUARD_INTERVAL_1_8:
569 buf[0] |= (2 << 2);
570 break;
571 case GUARD_INTERVAL_1_4:
572 buf[0] |= (3 << 2);
573 break;
574 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300575 deb_info("%s: invalid guard_interval\n", __func__);
576 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300577 }
578
579 switch (params->hierarchy_information) {
580 case HIERARCHY_AUTO:
581 *auto_mode = 1;
582 case HIERARCHY_NONE:
583 break;
584 case HIERARCHY_1:
585 buf[0] |= (1 << 4);
586 break;
587 case HIERARCHY_2:
588 buf[0] |= (2 << 4);
589 break;
590 case HIERARCHY_4:
591 buf[0] |= (3 << 4);
592 break;
593 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300594 deb_info("%s: invalid hierarchy_information\n", __func__);
595 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300596 };
597
598 switch (params->constellation) {
599 case QAM_AUTO:
600 *auto_mode = 1;
601 case QPSK:
602 break;
603 case QAM_16:
604 buf[1] |= (1 << 6);
605 break;
606 case QAM_64:
607 buf[1] |= (2 << 6);
608 break;
609 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300610 deb_info("%s: invalid constellation\n", __func__);
611 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300612 }
613
614 /* Use HP. How and which case we can switch to LP? */
615 buf[1] |= (1 << 4);
616
617 switch (params->code_rate_HP) {
618 case FEC_AUTO:
619 *auto_mode = 1;
620 case FEC_1_2:
621 break;
622 case FEC_2_3:
623 buf[2] |= (1 << 0);
624 break;
625 case FEC_3_4:
626 buf[2] |= (2 << 0);
627 break;
628 case FEC_5_6:
629 buf[2] |= (3 << 0);
630 break;
631 case FEC_7_8:
632 buf[2] |= (4 << 0);
633 break;
634 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300635 deb_info("%s: invalid code_rate_HP\n", __func__);
636 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300637 }
638
639 switch (params->code_rate_LP) {
640 case FEC_AUTO:
641 /* if HIERARCHY_NONE and FEC_NONE then LP FEC is set to FEC_AUTO
642 by dvb_frontend.c for compatibility */
643 if (params->hierarchy_information != HIERARCHY_NONE)
644 *auto_mode = 1;
645 case FEC_1_2:
646 break;
647 case FEC_2_3:
648 buf[2] |= (1 << 3);
649 break;
650 case FEC_3_4:
651 buf[2] |= (2 << 3);
652 break;
653 case FEC_5_6:
654 buf[2] |= (3 << 3);
655 break;
656 case FEC_7_8:
657 buf[2] |= (4 << 3);
658 break;
659 case FEC_NONE:
660 if (params->hierarchy_information == HIERARCHY_AUTO)
661 break;
662 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300663 deb_info("%s: invalid code_rate_LP\n", __func__);
664 *auto_mode = 1;
Antti Palosaari825b9672008-09-15 15:01:52 -0300665 }
666
667 switch (params->bandwidth) {
668 case BANDWIDTH_6_MHZ:
669 break;
670 case BANDWIDTH_7_MHZ:
671 buf[1] |= (1 << 2);
672 break;
673 case BANDWIDTH_8_MHZ:
674 buf[1] |= (2 << 2);
675 break;
676 default:
Antti Palosaaria2f5a812009-07-10 20:03:43 -0300677 deb_info("%s: invalid bandwidth\n", __func__);
678 buf[1] |= (2 << 2); /* cannot auto-detect BW, try 8 MHz */
Antti Palosaari825b9672008-09-15 15:01:52 -0300679 }
680
681 /* program */
682 for (i = 0; i < sizeof(buf); i++) {
683 ret = af9013_write_reg(state, 0xd3c0 + i, buf[i]);
684 if (ret)
685 break;
686 }
687
688 return ret;
689}
690
691static int af9013_reset(struct af9013_state *state, u8 sleep)
692{
693 int ret;
694 u8 tmp, i;
695 deb_info("%s\n", __func__);
696
697 /* enable OFDM reset */
698 ret = af9013_write_reg_bits(state, 0xd417, 4, 1, 1);
699 if (ret)
700 goto error;
701
702 /* start reset mechanism */
703 ret = af9013_write_reg(state, 0xaeff, 1);
704 if (ret)
705 goto error;
706
707 /* reset is done when bit 1 is set */
708 for (i = 0; i < 150; i++) {
709 ret = af9013_read_reg_bits(state, 0xd417, 1, 1, &tmp);
710 if (ret)
711 goto error;
712 if (tmp)
713 break; /* reset done */
714 msleep(10);
715 }
716 if (!tmp)
717 return -ETIMEDOUT;
718
719 /* don't clear reset when going to sleep */
720 if (!sleep) {
721 /* clear OFDM reset */
722 ret = af9013_write_reg_bits(state, 0xd417, 1, 1, 0);
723 if (ret)
724 goto error;
725
726 /* disable OFDM reset */
727 ret = af9013_write_reg_bits(state, 0xd417, 4, 1, 0);
728 }
729error:
730 return ret;
731}
732
733static int af9013_power_ctrl(struct af9013_state *state, u8 onoff)
734{
735 int ret;
736 deb_info("%s: onoff:%d\n", __func__, onoff);
737
738 if (onoff) {
739 /* power on */
740 ret = af9013_write_reg_bits(state, 0xd73a, 3, 1, 0);
741 if (ret)
742 goto error;
743 ret = af9013_write_reg_bits(state, 0xd417, 1, 1, 0);
744 if (ret)
745 goto error;
746 ret = af9013_write_reg_bits(state, 0xd417, 4, 1, 0);
747 } else {
748 /* power off */
749 ret = af9013_reset(state, 1);
750 if (ret)
751 goto error;
752 ret = af9013_write_reg_bits(state, 0xd73a, 3, 1, 1);
753 }
754error:
755 return ret;
756}
757
758static int af9013_lock_led(struct af9013_state *state, u8 onoff)
759{
760 deb_info("%s: onoff:%d\n", __func__, onoff);
761
762 return af9013_write_reg_bits(state, 0xd730, 0, 1, onoff);
763}
764
765static int af9013_set_frontend(struct dvb_frontend *fe,
766 struct dvb_frontend_parameters *params)
767{
768 struct af9013_state *state = fe->demodulator_priv;
769 int ret;
770 u8 auto_mode; /* auto set TPS */
771
772 deb_info("%s: freq:%d bw:%d\n", __func__, params->frequency,
773 params->u.ofdm.bandwidth);
774
775 state->frequency = params->frequency;
776
Antti Palosaari737fabf2010-06-16 16:43:40 -0300777 /* program tuner */
778 if (fe->ops.tuner_ops.set_params)
779 fe->ops.tuner_ops.set_params(fe, params);
780
Antti Palosaari825b9672008-09-15 15:01:52 -0300781 /* program CFOE coefficients */
782 ret = af9013_set_coeff(state, params->u.ofdm.bandwidth);
783 if (ret)
784 goto error;
785
786 /* program frequency control */
787 ret = af9013_set_freq_ctrl(state, params->u.ofdm.bandwidth);
788 if (ret)
789 goto error;
790
791 /* clear TPS lock flag (inverted flag) */
792 ret = af9013_write_reg_bits(state, 0xd330, 3, 1, 1);
793 if (ret)
794 goto error;
795
796 /* clear MPEG2 lock flag */
797 ret = af9013_write_reg_bits(state, 0xd507, 6, 1, 0);
798 if (ret)
799 goto error;
800
801 /* empty channel function */
802 ret = af9013_write_reg_bits(state, 0x9bfe, 0, 1, 0);
803 if (ret)
804 goto error;
805
806 /* empty DVB-T channel function */
807 ret = af9013_write_reg_bits(state, 0x9bc2, 0, 1, 0);
808 if (ret)
809 goto error;
810
Antti Palosaari825b9672008-09-15 15:01:52 -0300811 /* program TPS and bandwidth, check if auto mode needed */
812 ret = af9013_set_ofdm_params(state, &params->u.ofdm, &auto_mode);
813 if (ret)
814 goto error;
815
816 if (auto_mode) {
817 /* clear easy mode flag */
818 ret = af9013_write_reg(state, 0xaefd, 0);
819 deb_info("%s: auto TPS\n", __func__);
820 } else {
821 /* set easy mode flag */
822 ret = af9013_write_reg(state, 0xaefd, 1);
823 if (ret)
824 goto error;
825 ret = af9013_write_reg(state, 0xaefe, 0);
826 deb_info("%s: manual TPS\n", __func__);
827 }
828 if (ret)
829 goto error;
830
831 /* everything is set, lets try to receive channel - OFSM GO! */
832 ret = af9013_write_reg(state, 0xffff, 0);
833 if (ret)
834 goto error;
835
836error:
837 return ret;
838}
839
840static int af9013_get_frontend(struct dvb_frontend *fe,
841 struct dvb_frontend_parameters *p)
842{
843 struct af9013_state *state = fe->demodulator_priv;
844 int ret;
845 u8 i, buf[3];
846 deb_info("%s\n", __func__);
847
848 /* read TPS registers */
849 for (i = 0; i < 3; i++) {
850 ret = af9013_read_reg(state, 0xd3c0 + i, &buf[i]);
851 if (ret)
852 goto error;
853 }
854
855 switch ((buf[1] >> 6) & 3) {
856 case 0:
857 p->u.ofdm.constellation = QPSK;
858 break;
859 case 1:
860 p->u.ofdm.constellation = QAM_16;
861 break;
862 case 2:
863 p->u.ofdm.constellation = QAM_64;
864 break;
865 }
866
867 switch ((buf[0] >> 0) & 3) {
868 case 0:
869 p->u.ofdm.transmission_mode = TRANSMISSION_MODE_2K;
870 break;
871 case 1:
872 p->u.ofdm.transmission_mode = TRANSMISSION_MODE_8K;
873 }
874
875 switch ((buf[0] >> 2) & 3) {
876 case 0:
877 p->u.ofdm.guard_interval = GUARD_INTERVAL_1_32;
878 break;
879 case 1:
880 p->u.ofdm.guard_interval = GUARD_INTERVAL_1_16;
881 break;
882 case 2:
883 p->u.ofdm.guard_interval = GUARD_INTERVAL_1_8;
884 break;
885 case 3:
886 p->u.ofdm.guard_interval = GUARD_INTERVAL_1_4;
887 break;
888 }
889
890 switch ((buf[0] >> 4) & 7) {
891 case 0:
892 p->u.ofdm.hierarchy_information = HIERARCHY_NONE;
893 break;
894 case 1:
895 p->u.ofdm.hierarchy_information = HIERARCHY_1;
896 break;
897 case 2:
898 p->u.ofdm.hierarchy_information = HIERARCHY_2;
899 break;
900 case 3:
901 p->u.ofdm.hierarchy_information = HIERARCHY_4;
902 break;
903 }
904
905 switch ((buf[2] >> 0) & 7) {
906 case 0:
907 p->u.ofdm.code_rate_HP = FEC_1_2;
908 break;
909 case 1:
910 p->u.ofdm.code_rate_HP = FEC_2_3;
911 break;
912 case 2:
913 p->u.ofdm.code_rate_HP = FEC_3_4;
914 break;
915 case 3:
916 p->u.ofdm.code_rate_HP = FEC_5_6;
917 break;
918 case 4:
919 p->u.ofdm.code_rate_HP = FEC_7_8;
920 break;
921 }
922
923 switch ((buf[2] >> 3) & 7) {
924 case 0:
925 p->u.ofdm.code_rate_LP = FEC_1_2;
926 break;
927 case 1:
928 p->u.ofdm.code_rate_LP = FEC_2_3;
929 break;
930 case 2:
931 p->u.ofdm.code_rate_LP = FEC_3_4;
932 break;
933 case 3:
934 p->u.ofdm.code_rate_LP = FEC_5_6;
935 break;
936 case 4:
937 p->u.ofdm.code_rate_LP = FEC_7_8;
938 break;
939 }
940
941 switch ((buf[1] >> 2) & 3) {
942 case 0:
943 p->u.ofdm.bandwidth = BANDWIDTH_6_MHZ;
944 break;
945 case 1:
946 p->u.ofdm.bandwidth = BANDWIDTH_7_MHZ;
947 break;
948 case 2:
949 p->u.ofdm.bandwidth = BANDWIDTH_8_MHZ;
950 break;
951 }
952
953 p->inversion = INVERSION_AUTO;
954 p->frequency = state->frequency;
955
956error:
957 return ret;
958}
959
960static int af9013_update_ber_unc(struct dvb_frontend *fe)
961{
962 struct af9013_state *state = fe->demodulator_priv;
963 int ret;
964 u8 buf[3], i;
965 u32 error_bit_count = 0;
966 u32 total_bit_count = 0;
967 u32 abort_packet_count = 0;
Antti Palosaari825b9672008-09-15 15:01:52 -0300968
969 state->ber = 0;
970
971 /* check if error bit count is ready */
972 ret = af9013_read_reg_bits(state, 0xd391, 4, 1, &buf[0]);
973 if (ret)
974 goto error;
975 if (!buf[0])
976 goto exit;
977
978 /* get RSD packet abort count */
979 for (i = 0; i < 2; i++) {
980 ret = af9013_read_reg(state, 0xd38a + i, &buf[i]);
981 if (ret)
982 goto error;
983 }
984 abort_packet_count = (buf[1] << 8) + buf[0];
985
986 /* get error bit count */
987 for (i = 0; i < 3; i++) {
988 ret = af9013_read_reg(state, 0xd387 + i, &buf[i]);
989 if (ret)
990 goto error;
991 }
992 error_bit_count = (buf[2] << 16) + (buf[1] << 8) + buf[0];
993 error_bit_count = error_bit_count - abort_packet_count * 8 * 8;
994
995 /* get used RSD counting period (10000 RSD packets used) */
996 for (i = 0; i < 2; i++) {
997 ret = af9013_read_reg(state, 0xd385 + i, &buf[i]);
998 if (ret)
999 goto error;
1000 }
1001 total_bit_count = (buf[1] << 8) + buf[0];
1002 total_bit_count = total_bit_count - abort_packet_count;
1003 total_bit_count = total_bit_count * 204 * 8;
1004
Antti Palosaari28f947a2008-09-16 14:22:43 -03001005 if (total_bit_count)
1006 state->ber = error_bit_count * 1000000000 / total_bit_count;
Antti Palosaari825b9672008-09-15 15:01:52 -03001007
1008 state->ucblocks += abort_packet_count;
1009
1010 deb_info("%s: err bits:%d total bits:%d abort count:%d\n", __func__,
1011 error_bit_count, total_bit_count, abort_packet_count);
1012
1013 /* set BER counting range */
1014 ret = af9013_write_reg(state, 0xd385, 10000 & 0xff);
1015 if (ret)
1016 goto error;
1017 ret = af9013_write_reg(state, 0xd386, 10000 >> 8);
1018 if (ret)
1019 goto error;
1020 /* reset and start BER counter */
1021 ret = af9013_write_reg_bits(state, 0xd391, 4, 1, 1);
1022 if (ret)
1023 goto error;
1024
1025exit:
1026error:
1027 return ret;
1028}
1029
1030static int af9013_update_snr(struct dvb_frontend *fe)
1031{
1032 struct af9013_state *state = fe->demodulator_priv;
1033 int ret;
1034 u8 buf[3], i, len;
1035 u32 quant = 0;
Mauro Carvalho Chehab4d543092008-12-29 23:18:31 -03001036 struct snr_table *uninitialized_var(snr_table);
Antti Palosaari825b9672008-09-15 15:01:52 -03001037
1038 /* check if quantizer ready (for snr) */
1039 ret = af9013_read_reg_bits(state, 0xd2e1, 3, 1, &buf[0]);
1040 if (ret)
1041 goto error;
1042 if (buf[0]) {
1043 /* quantizer ready - read it */
1044 for (i = 0; i < 3; i++) {
1045 ret = af9013_read_reg(state, 0xd2e3 + i, &buf[i]);
1046 if (ret)
1047 goto error;
1048 }
1049 quant = (buf[2] << 16) + (buf[1] << 8) + buf[0];
1050
1051 /* read current constellation */
1052 ret = af9013_read_reg(state, 0xd3c1, &buf[0]);
1053 if (ret)
1054 goto error;
1055
1056 switch ((buf[0] >> 6) & 3) {
1057 case 0:
1058 len = ARRAY_SIZE(qpsk_snr_table);
1059 snr_table = qpsk_snr_table;
1060 break;
1061 case 1:
1062 len = ARRAY_SIZE(qam16_snr_table);
1063 snr_table = qam16_snr_table;
1064 break;
1065 case 2:
1066 len = ARRAY_SIZE(qam64_snr_table);
1067 snr_table = qam64_snr_table;
1068 break;
1069 default:
1070 len = 0;
1071 break;
1072 }
1073
1074 if (len) {
1075 for (i = 0; i < len; i++) {
1076 if (quant < snr_table[i].val) {
1077 state->snr = snr_table[i].snr * 10;
1078 break;
1079 }
1080 }
1081 }
1082
1083 /* set quantizer super frame count */
1084 ret = af9013_write_reg(state, 0xd2e2, 1);
1085 if (ret)
1086 goto error;
1087
1088 /* check quantizer availability */
1089 for (i = 0; i < 10; i++) {
1090 msleep(10);
1091 ret = af9013_read_reg_bits(state, 0xd2e6, 0, 1,
1092 &buf[0]);
1093 if (ret)
1094 goto error;
1095 if (!buf[0])
1096 break;
1097 }
1098
1099 /* reset quantizer */
1100 ret = af9013_write_reg_bits(state, 0xd2e1, 3, 1, 1);
1101 if (ret)
1102 goto error;
1103 }
1104
1105error:
1106 return ret;
1107}
1108
1109static int af9013_update_signal_strength(struct dvb_frontend *fe)
1110{
1111 struct af9013_state *state = fe->demodulator_priv;
1112 int ret;
1113 u8 tmp0;
1114 u8 rf_gain, rf_50, rf_80, if_gain, if_50, if_80;
1115 int signal_strength;
1116
1117 deb_info("%s\n", __func__);
1118
1119 state->signal_strength = 0;
1120
1121 ret = af9013_read_reg_bits(state, 0x9bee, 0, 1, &tmp0);
1122 if (ret)
1123 goto error;
1124 if (tmp0) {
1125 ret = af9013_read_reg(state, 0x9bbd, &rf_50);
1126 if (ret)
1127 goto error;
1128 ret = af9013_read_reg(state, 0x9bd0, &rf_80);
1129 if (ret)
1130 goto error;
1131 ret = af9013_read_reg(state, 0x9be2, &if_50);
1132 if (ret)
1133 goto error;
1134 ret = af9013_read_reg(state, 0x9be4, &if_80);
1135 if (ret)
1136 goto error;
1137 ret = af9013_read_reg(state, 0xd07c, &rf_gain);
1138 if (ret)
1139 goto error;
1140 ret = af9013_read_reg(state, 0xd07d, &if_gain);
1141 if (ret)
1142 goto error;
1143 signal_strength = (0xffff / (9 * (rf_50 + if_50) - \
1144 11 * (rf_80 + if_80))) * (10 * (rf_gain + if_gain) - \
1145 11 * (rf_80 + if_80));
1146 if (signal_strength < 0)
1147 signal_strength = 0;
1148 else if (signal_strength > 0xffff)
1149 signal_strength = 0xffff;
1150
1151 state->signal_strength = signal_strength;
1152 }
1153
1154error:
1155 return ret;
1156}
1157
1158static int af9013_update_statistics(struct dvb_frontend *fe)
1159{
1160 struct af9013_state *state = fe->demodulator_priv;
1161 int ret;
1162
1163 if (time_before(jiffies, state->next_statistics_check))
1164 return 0;
1165
1166 /* set minimum statistic update interval */
1167 state->next_statistics_check = jiffies + msecs_to_jiffies(1200);
1168
1169 ret = af9013_update_signal_strength(fe);
1170 if (ret)
1171 goto error;
1172 ret = af9013_update_snr(fe);
1173 if (ret)
1174 goto error;
1175 ret = af9013_update_ber_unc(fe);
1176 if (ret)
1177 goto error;
1178
1179error:
1180 return ret;
1181}
1182
1183static int af9013_get_tune_settings(struct dvb_frontend *fe,
1184 struct dvb_frontend_tune_settings *fesettings)
1185{
1186 fesettings->min_delay_ms = 800;
1187 fesettings->step_size = 0;
1188 fesettings->max_drift = 0;
1189
1190 return 0;
1191}
1192
1193static int af9013_read_status(struct dvb_frontend *fe, fe_status_t *status)
1194{
1195 struct af9013_state *state = fe->demodulator_priv;
1196 int ret = 0;
1197 u8 tmp;
1198 *status = 0;
1199
Antti Palosaari825b9672008-09-15 15:01:52 -03001200 /* MPEG2 lock */
1201 ret = af9013_read_reg_bits(state, 0xd507, 6, 1, &tmp);
1202 if (ret)
1203 goto error;
1204 if (tmp)
Antti Palosaari8af5e382010-06-17 20:56:27 -03001205 *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER | FE_HAS_VITERBI |
1206 FE_HAS_SYNC | FE_HAS_LOCK;
Antti Palosaari825b9672008-09-15 15:01:52 -03001207
Antti Palosaari8af5e382010-06-17 20:56:27 -03001208 if (!*status) {
1209 /* TPS lock */
1210 ret = af9013_read_reg_bits(state, 0xd330, 3, 1, &tmp);
1211 if (ret)
1212 goto error;
1213 if (tmp)
1214 *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER |
1215 FE_HAS_VITERBI;
1216 }
1217
1218 if (!*status) {
1219 /* CFO lock */
1220 ret = af9013_read_reg_bits(state, 0xd333, 7, 1, &tmp);
1221 if (ret)
1222 goto error;
1223 if (tmp)
1224 *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER;
1225 }
1226
1227 if (!*status) {
1228 /* SFOE lock */
1229 ret = af9013_read_reg_bits(state, 0xd334, 6, 1, &tmp);
1230 if (ret)
1231 goto error;
1232 if (tmp)
1233 *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER;
1234 }
1235
1236 if (!*status) {
Antti Palosaari825b9672008-09-15 15:01:52 -03001237 /* AGC lock */
1238 ret = af9013_read_reg_bits(state, 0xd1a0, 6, 1, &tmp);
1239 if (ret)
1240 goto error;
1241 if (tmp)
1242 *status |= FE_HAS_SIGNAL;
1243 }
1244
Antti Palosaari825b9672008-09-15 15:01:52 -03001245 ret = af9013_update_statistics(fe);
1246
1247error:
1248 return ret;
1249}
1250
1251
1252static int af9013_read_ber(struct dvb_frontend *fe, u32 *ber)
1253{
1254 struct af9013_state *state = fe->demodulator_priv;
1255 int ret;
1256 ret = af9013_update_statistics(fe);
1257 *ber = state->ber;
1258 return ret;
1259}
1260
1261static int af9013_read_signal_strength(struct dvb_frontend *fe, u16 *strength)
1262{
1263 struct af9013_state *state = fe->demodulator_priv;
1264 int ret;
1265 ret = af9013_update_statistics(fe);
1266 *strength = state->signal_strength;
1267 return ret;
1268}
1269
1270static int af9013_read_snr(struct dvb_frontend *fe, u16 *snr)
1271{
1272 struct af9013_state *state = fe->demodulator_priv;
1273 int ret;
1274 ret = af9013_update_statistics(fe);
1275 *snr = state->snr;
1276 return ret;
1277}
1278
1279static int af9013_read_ucblocks(struct dvb_frontend *fe, u32 *ucblocks)
1280{
1281 struct af9013_state *state = fe->demodulator_priv;
1282 int ret;
1283 ret = af9013_update_statistics(fe);
1284 *ucblocks = state->ucblocks;
1285 return ret;
1286}
1287
1288static int af9013_sleep(struct dvb_frontend *fe)
1289{
1290 struct af9013_state *state = fe->demodulator_priv;
1291 int ret;
1292 deb_info("%s\n", __func__);
1293
1294 ret = af9013_lock_led(state, 0);
1295 if (ret)
1296 goto error;
1297
1298 ret = af9013_power_ctrl(state, 0);
1299error:
1300 return ret;
1301}
1302
1303static int af9013_init(struct dvb_frontend *fe)
1304{
1305 struct af9013_state *state = fe->demodulator_priv;
1306 int ret, i, len;
1307 u8 tmp0, tmp1;
1308 struct regdesc *init;
1309 deb_info("%s\n", __func__);
1310
1311 /* reset OFDM */
1312 ret = af9013_reset(state, 0);
1313 if (ret)
1314 goto error;
1315
1316 /* power on */
1317 ret = af9013_power_ctrl(state, 1);
1318 if (ret)
1319 goto error;
1320
1321 /* enable ADC */
1322 ret = af9013_write_reg(state, 0xd73a, 0xa4);
1323 if (ret)
1324 goto error;
1325
1326 /* write API version to firmware */
1327 for (i = 0; i < sizeof(state->config.api_version); i++) {
1328 ret = af9013_write_reg(state, 0x9bf2 + i,
1329 state->config.api_version[i]);
1330 if (ret)
1331 goto error;
1332 }
1333
1334 /* program ADC control */
1335 ret = af9013_set_adc_ctrl(state);
1336 if (ret)
1337 goto error;
1338
1339 /* set I2C master clock */
1340 ret = af9013_write_reg(state, 0xd416, 0x14);
1341 if (ret)
1342 goto error;
1343
1344 /* set 16 embx */
1345 ret = af9013_write_reg_bits(state, 0xd700, 1, 1, 1);
1346 if (ret)
1347 goto error;
1348
1349 /* set no trigger */
1350 ret = af9013_write_reg_bits(state, 0xd700, 2, 1, 0);
1351 if (ret)
1352 goto error;
1353
1354 /* set read-update bit for constellation */
1355 ret = af9013_write_reg_bits(state, 0xd371, 1, 1, 1);
1356 if (ret)
1357 goto error;
1358
1359 /* enable FEC monitor */
1360 ret = af9013_write_reg_bits(state, 0xd392, 1, 1, 1);
1361 if (ret)
1362 goto error;
1363
1364 /* load OFSM settings */
1365 deb_info("%s: load ofsm settings\n", __func__);
1366 len = ARRAY_SIZE(ofsm_init);
1367 init = ofsm_init;
1368 for (i = 0; i < len; i++) {
1369 ret = af9013_write_reg_bits(state, init[i].addr, init[i].pos,
1370 init[i].len, init[i].val);
1371 if (ret)
1372 goto error;
1373 }
1374
1375 /* load tuner specific settings */
1376 deb_info("%s: load tuner specific settings\n", __func__);
1377 switch (state->config.tuner) {
1378 case AF9013_TUNER_MXL5003D:
1379 len = ARRAY_SIZE(tuner_init_mxl5003d);
1380 init = tuner_init_mxl5003d;
1381 break;
1382 case AF9013_TUNER_MXL5005D:
1383 case AF9013_TUNER_MXL5005R:
Antti Palosaaria4f31d02010-09-09 14:53:59 -03001384 case AF9013_TUNER_MXL5007T:
Antti Palosaari825b9672008-09-15 15:01:52 -03001385 len = ARRAY_SIZE(tuner_init_mxl5005);
1386 init = tuner_init_mxl5005;
1387 break;
1388 case AF9013_TUNER_ENV77H11D5:
1389 len = ARRAY_SIZE(tuner_init_env77h11d5);
1390 init = tuner_init_env77h11d5;
1391 break;
1392 case AF9013_TUNER_MT2060:
1393 len = ARRAY_SIZE(tuner_init_mt2060);
1394 init = tuner_init_mt2060;
1395 break;
1396 case AF9013_TUNER_MC44S803:
1397 len = ARRAY_SIZE(tuner_init_mc44s803);
1398 init = tuner_init_mc44s803;
1399 break;
1400 case AF9013_TUNER_QT1010:
1401 case AF9013_TUNER_QT1010A:
1402 len = ARRAY_SIZE(tuner_init_qt1010);
1403 init = tuner_init_qt1010;
1404 break;
1405 case AF9013_TUNER_MT2060_2:
1406 len = ARRAY_SIZE(tuner_init_mt2060_2);
1407 init = tuner_init_mt2060_2;
1408 break;
1409 case AF9013_TUNER_TDA18271:
Antti Palosaari2158e502010-08-13 03:49:24 -03001410 case AF9013_TUNER_TDA18218:
Antti Palosaari825b9672008-09-15 15:01:52 -03001411 len = ARRAY_SIZE(tuner_init_tda18271);
1412 init = tuner_init_tda18271;
1413 break;
1414 case AF9013_TUNER_UNKNOWN:
1415 default:
1416 len = ARRAY_SIZE(tuner_init_unknown);
1417 init = tuner_init_unknown;
1418 break;
1419 }
1420
1421 for (i = 0; i < len; i++) {
1422 ret = af9013_write_reg_bits(state, init[i].addr, init[i].pos,
1423 init[i].len, init[i].val);
1424 if (ret)
1425 goto error;
1426 }
1427
1428 /* set TS mode */
1429 deb_info("%s: setting ts mode\n", __func__);
1430 tmp0 = 0; /* parallel mode */
1431 tmp1 = 0; /* serial mode */
1432 switch (state->config.output_mode) {
1433 case AF9013_OUTPUT_MODE_PARALLEL:
1434 tmp0 = 1;
1435 break;
1436 case AF9013_OUTPUT_MODE_SERIAL:
1437 tmp1 = 1;
1438 break;
1439 case AF9013_OUTPUT_MODE_USB:
1440 /* usb mode for AF9015 */
1441 default:
1442 break;
1443 }
1444 ret = af9013_write_reg_bits(state, 0xd500, 1, 1, tmp0); /* parallel */
1445 if (ret)
1446 goto error;
1447 ret = af9013_write_reg_bits(state, 0xd500, 2, 1, tmp1); /* serial */
1448 if (ret)
1449 goto error;
1450
1451 /* enable lock led */
1452 ret = af9013_lock_led(state, 1);
1453 if (ret)
1454 goto error;
1455
1456error:
1457 return ret;
1458}
1459
1460static struct dvb_frontend_ops af9013_ops;
1461
1462static int af9013_download_firmware(struct af9013_state *state)
1463{
1464 int i, len, packets, remainder, ret;
1465 const struct firmware *fw;
1466 u16 addr = 0x5100; /* firmware start address */
1467 u16 checksum = 0;
1468 u8 val;
1469 u8 fw_params[4];
1470 u8 *data;
1471 u8 *fw_file = AF9013_DEFAULT_FIRMWARE;
1472
1473 msleep(100);
1474 /* check whether firmware is already running */
1475 ret = af9013_read_reg(state, 0x98be, &val);
1476 if (ret)
1477 goto error;
1478 else
1479 deb_info("%s: firmware status:%02x\n", __func__, val);
1480
1481 if (val == 0x0c) /* fw is running, no need for download */
1482 goto exit;
1483
1484 info("found a '%s' in cold state, will try to load a firmware",
1485 af9013_ops.info.name);
1486
1487 /* request the firmware, this will block and timeout */
Jean Delvaree9785252009-04-26 05:43:59 -03001488 ret = request_firmware(&fw, fw_file, state->i2c->dev.parent);
Antti Palosaari825b9672008-09-15 15:01:52 -03001489 if (ret) {
1490 err("did not find the firmware file. (%s) "
1491 "Please see linux/Documentation/dvb/ for more details" \
1492 " on firmware-problems. (%d)",
1493 fw_file, ret);
1494 goto error;
1495 }
1496
1497 info("downloading firmware from file '%s'", fw_file);
1498
1499 /* calc checksum */
1500 for (i = 0; i < fw->size; i++)
1501 checksum += fw->data[i];
1502
1503 fw_params[0] = checksum >> 8;
1504 fw_params[1] = checksum & 0xff;
1505 fw_params[2] = fw->size >> 8;
1506 fw_params[3] = fw->size & 0xff;
1507
1508 /* write fw checksum & size */
1509 ret = af9013_write_ofsm_regs(state, 0x50fc,
1510 fw_params, sizeof(fw_params));
1511 if (ret)
1512 goto error_release;
1513
1514 #define FW_PACKET_MAX_DATA 16
1515
1516 packets = fw->size / FW_PACKET_MAX_DATA;
1517 remainder = fw->size % FW_PACKET_MAX_DATA;
1518 len = FW_PACKET_MAX_DATA;
1519 for (i = 0; i <= packets; i++) {
1520 if (i == packets) /* set size of the last packet */
1521 len = remainder;
1522
Antti Palosaari541dfa82008-10-06 13:57:45 -03001523 data = (u8 *)(fw->data + i * FW_PACKET_MAX_DATA);
Antti Palosaari825b9672008-09-15 15:01:52 -03001524 ret = af9013_write_ofsm_regs(state, addr, data, len);
1525 addr += FW_PACKET_MAX_DATA;
1526
1527 if (ret) {
1528 err("firmware download failed at %d with %d", i, ret);
1529 goto error_release;
1530 }
1531 }
1532
Antti Palosaari825b9672008-09-15 15:01:52 -03001533 /* request boot firmware */
1534 ret = af9013_write_reg(state, 0xe205, 1);
1535 if (ret)
1536 goto error_release;
1537
1538 for (i = 0; i < 15; i++) {
1539 msleep(100);
1540
1541 /* check firmware status */
1542 ret = af9013_read_reg(state, 0x98be, &val);
1543 if (ret)
1544 goto error_release;
1545
1546 deb_info("%s: firmware status:%02x\n", __func__, val);
1547
1548 if (val == 0x0c || val == 0x04) /* success or fail */
1549 break;
1550 }
1551
1552 if (val == 0x04) {
1553 err("firmware did not run");
1554 ret = -1;
1555 } else if (val != 0x0c) {
1556 err("firmware boot timeout");
1557 ret = -1;
1558 }
1559
1560error_release:
1561 release_firmware(fw);
1562error:
1563exit:
1564 if (!ret)
1565 info("found a '%s' in warm state.", af9013_ops.info.name);
1566 return ret;
1567}
1568
1569static int af9013_i2c_gate_ctrl(struct dvb_frontend *fe, int enable)
1570{
1571 int ret;
1572 struct af9013_state *state = fe->demodulator_priv;
1573 deb_info("%s: enable:%d\n", __func__, enable);
1574
1575 if (state->config.output_mode == AF9013_OUTPUT_MODE_USB)
1576 ret = af9013_write_reg_bits(state, 0xd417, 3, 1, enable);
1577 else
1578 ret = af9013_write_reg_bits(state, 0xd607, 2, 1, enable);
1579
1580 return ret;
1581}
1582
1583static void af9013_release(struct dvb_frontend *fe)
1584{
1585 struct af9013_state *state = fe->demodulator_priv;
1586 kfree(state);
1587}
1588
1589static struct dvb_frontend_ops af9013_ops;
1590
1591struct dvb_frontend *af9013_attach(const struct af9013_config *config,
1592 struct i2c_adapter *i2c)
1593{
1594 int ret;
1595 struct af9013_state *state = NULL;
Antti Palosaarice99efa2010-06-17 21:16:12 -03001596 u8 buf[4], i;
Antti Palosaari825b9672008-09-15 15:01:52 -03001597
1598 /* allocate memory for the internal state */
1599 state = kzalloc(sizeof(struct af9013_state), GFP_KERNEL);
1600 if (state == NULL)
1601 goto error;
1602
1603 /* setup the state */
1604 state->i2c = i2c;
1605 memcpy(&state->config, config, sizeof(struct af9013_config));
1606
1607 /* chip version */
1608 ret = af9013_read_reg_bits(state, 0xd733, 4, 4, &buf[2]);
1609 if (ret)
1610 goto error;
1611
1612 /* ROM version */
1613 for (i = 0; i < 2; i++) {
1614 ret = af9013_read_reg(state, 0x116b + i, &buf[i]);
1615 if (ret)
1616 goto error;
1617 }
1618 deb_info("%s: chip version:%d ROM version:%d.%d\n", __func__,
1619 buf[2], buf[0], buf[1]);
1620
1621 /* download firmware */
1622 if (state->config.output_mode != AF9013_OUTPUT_MODE_USB) {
1623 ret = af9013_download_firmware(state);
1624 if (ret)
1625 goto error;
1626 }
1627
1628 /* firmware version */
Antti Palosaarice99efa2010-06-17 21:16:12 -03001629 for (i = 0; i < 4; i++) {
Antti Palosaari825b9672008-09-15 15:01:52 -03001630 ret = af9013_read_reg(state, 0x5103 + i, &buf[i]);
1631 if (ret)
1632 goto error;
1633 }
Antti Palosaarice99efa2010-06-17 21:16:12 -03001634 info("firmware version:%d.%d.%d.%d", buf[0], buf[1], buf[2], buf[3]);
Antti Palosaari825b9672008-09-15 15:01:52 -03001635
1636 /* settings for mp2if */
1637 if (state->config.output_mode == AF9013_OUTPUT_MODE_USB) {
1638 /* AF9015 split PSB to 1.5k + 0.5k */
1639 ret = af9013_write_reg_bits(state, 0xd50b, 2, 1, 1);
1640 } else {
1641 /* AF9013 change the output bit to data7 */
1642 ret = af9013_write_reg_bits(state, 0xd500, 3, 1, 1);
1643 if (ret)
1644 goto error;
1645 /* AF9013 set mpeg to full speed */
1646 ret = af9013_write_reg_bits(state, 0xd502, 4, 1, 1);
1647 }
1648 if (ret)
1649 goto error;
1650 ret = af9013_write_reg_bits(state, 0xd520, 4, 1, 1);
1651 if (ret)
1652 goto error;
1653
1654 /* set GPIOs */
1655 for (i = 0; i < sizeof(state->config.gpio); i++) {
1656 ret = af9013_set_gpio(state, i, state->config.gpio[i]);
1657 if (ret)
1658 goto error;
1659 }
1660
1661 /* create dvb_frontend */
1662 memcpy(&state->frontend.ops, &af9013_ops,
1663 sizeof(struct dvb_frontend_ops));
1664 state->frontend.demodulator_priv = state;
1665
1666 return &state->frontend;
1667error:
1668 kfree(state);
1669 return NULL;
1670}
1671EXPORT_SYMBOL(af9013_attach);
1672
1673static struct dvb_frontend_ops af9013_ops = {
1674 .info = {
1675 .name = "Afatech AF9013 DVB-T",
1676 .type = FE_OFDM,
1677 .frequency_min = 174000000,
1678 .frequency_max = 862000000,
1679 .frequency_stepsize = 250000,
1680 .frequency_tolerance = 0,
1681 .caps =
1682 FE_CAN_FEC_1_2 | FE_CAN_FEC_2_3 | FE_CAN_FEC_3_4 |
1683 FE_CAN_FEC_5_6 | FE_CAN_FEC_7_8 | FE_CAN_FEC_AUTO |
1684 FE_CAN_QPSK | FE_CAN_QAM_16 |
1685 FE_CAN_QAM_64 | FE_CAN_QAM_AUTO |
1686 FE_CAN_TRANSMISSION_MODE_AUTO |
1687 FE_CAN_GUARD_INTERVAL_AUTO |
1688 FE_CAN_HIERARCHY_AUTO |
1689 FE_CAN_RECOVER |
1690 FE_CAN_MUTE_TS
1691 },
1692
1693 .release = af9013_release,
1694 .init = af9013_init,
1695 .sleep = af9013_sleep,
1696 .i2c_gate_ctrl = af9013_i2c_gate_ctrl,
1697
1698 .set_frontend = af9013_set_frontend,
1699 .get_frontend = af9013_get_frontend,
1700
1701 .get_tune_settings = af9013_get_tune_settings,
1702
1703 .read_status = af9013_read_status,
1704 .read_ber = af9013_read_ber,
1705 .read_signal_strength = af9013_read_signal_strength,
1706 .read_snr = af9013_read_snr,
1707 .read_ucblocks = af9013_read_ucblocks,
1708};
1709
1710module_param_named(debug, af9013_debug, int, 0644);
1711MODULE_PARM_DESC(debug, "Turn on/off frontend debugging (default:off).");
1712
1713MODULE_AUTHOR("Antti Palosaari <crope@iki.fi>");
1714MODULE_DESCRIPTION("Afatech AF9013 DVB-T demodulator driver");
1715MODULE_LICENSE("GPL");