V4L/DVB (11775): tuner: add support Philips MK5 tuner
[deliverable/linux.git] / drivers / media / common / tuners / xc5000.c
CommitLineData
aacb9d31
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1/*
2 * Driver for Xceive XC5000 "QAM/8VSB single chip tuner"
3 *
4 * Copyright (c) 2007 Xceive Corporation
6d897616 5 * Copyright (c) 2007 Steven Toth <stoth@linuxtv.org>
aacb9d31
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6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation; either version 2 of the License, or
10 * (at your option) any later version.
11 *
12 * This program is distributed in the hope that it will be useful,
13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 *
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#include <linux/module.h>
24#include <linux/moduleparam.h>
4917019d 25#include <linux/videodev2.h>
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26#include <linux/delay.h>
27#include <linux/dvb/frontend.h>
28#include <linux/i2c.h>
29
30#include "dvb_frontend.h"
31
32#include "xc5000.h"
89fd2854 33#include "tuner-i2c.h"
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34
35static int debug;
36module_param(debug, int, 0644);
37MODULE_PARM_DESC(debug, "Turn on/off debugging (default:off).");
38
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39static DEFINE_MUTEX(xc5000_list_mutex);
40static LIST_HEAD(hybrid_tuner_instance_list);
41
8f3cd530 42#define dprintk(level, fmt, arg...) if (debug >= level) \
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43 printk(KERN_INFO "%s: " fmt, "xc5000", ## arg)
44
45#define XC5000_DEFAULT_FIRMWARE "dvb-fe-xc5000-1.1.fw"
71bc9bd9 46#define XC5000_DEFAULT_FIRMWARE_SIZE 12332
aacb9d31 47
ffb41234 48struct xc5000_priv {
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49 struct tuner_i2c_props i2c_props;
50 struct list_head hybrid_tuner_instance_list;
ffb41234 51
2a6003c2 52 u32 if_khz;
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MK
53 u32 freq_hz;
54 u32 bandwidth;
55 u8 video_standard;
56 u8 rf_mode;
ffb41234
MK
57};
58
aacb9d31
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59/* Misc Defines */
60#define MAX_TV_STANDARD 23
61#define XC_MAX_I2C_WRITE_LENGTH 64
62
63/* Signal Types */
64#define XC_RF_MODE_AIR 0
65#define XC_RF_MODE_CABLE 1
66
67/* Result codes */
68#define XC_RESULT_SUCCESS 0
69#define XC_RESULT_RESET_FAILURE 1
70#define XC_RESULT_I2C_WRITE_FAILURE 2
71#define XC_RESULT_I2C_READ_FAILURE 3
72#define XC_RESULT_OUT_OF_RANGE 5
73
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74/* Product id */
75#define XC_PRODUCT_ID_FW_NOT_LOADED 0x2000
76#define XC_PRODUCT_ID_FW_LOADED 0x1388
77
aacb9d31
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78/* Registers */
79#define XREG_INIT 0x00
80#define XREG_VIDEO_MODE 0x01
81#define XREG_AUDIO_MODE 0x02
82#define XREG_RF_FREQ 0x03
83#define XREG_D_CODE 0x04
84#define XREG_IF_OUT 0x05
85#define XREG_SEEK_MODE 0x07
86#define XREG_POWER_DOWN 0x0A
87#define XREG_SIGNALSOURCE 0x0D /* 0=Air, 1=Cable */
88#define XREG_SMOOTHEDCVBS 0x0E
89#define XREG_XTALFREQ 0x0F
90#define XREG_FINERFFREQ 0x10
91#define XREG_DDIMODE 0x11
92
93#define XREG_ADC_ENV 0x00
94#define XREG_QUALITY 0x01
95#define XREG_FRAME_LINES 0x02
96#define XREG_HSYNC_FREQ 0x03
97#define XREG_LOCK 0x04
98#define XREG_FREQ_ERROR 0x05
99#define XREG_SNR 0x06
100#define XREG_VERSION 0x07
101#define XREG_PRODUCT_ID 0x08
102#define XREG_BUSY 0x09
103
104/*
105 Basic firmware description. This will remain with
106 the driver for documentation purposes.
107
108 This represents an I2C firmware file encoded as a
109 string of unsigned char. Format is as follows:
110
111 char[0 ]=len0_MSB -> len = len_MSB * 256 + len_LSB
112 char[1 ]=len0_LSB -> length of first write transaction
113 char[2 ]=data0 -> first byte to be sent
114 char[3 ]=data1
115 char[4 ]=data2
116 char[ ]=...
117 char[M ]=dataN -> last byte to be sent
118 char[M+1]=len1_MSB -> len = len_MSB * 256 + len_LSB
119 char[M+2]=len1_LSB -> length of second write transaction
120 char[M+3]=data0
121 char[M+4]=data1
122 ...
123 etc.
124
125 The [len] value should be interpreted as follows:
126
127 len= len_MSB _ len_LSB
128 len=1111_1111_1111_1111 : End of I2C_SEQUENCE
129 len=0000_0000_0000_0000 : Reset command: Do hardware reset
130 len=0NNN_NNNN_NNNN_NNNN : Normal transaction: number of bytes = {1:32767)
131 len=1WWW_WWWW_WWWW_WWWW : Wait command: wait for {1:32767} ms
132
133 For the RESET and WAIT commands, the two following bytes will contain
134 immediately the length of the following transaction.
135
136*/
8f3cd530 137struct XC_TV_STANDARD {
aacb9d31 138 char *Name;
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139 u16 AudioMode;
140 u16 VideoMode;
8f3cd530 141};
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142
143/* Tuner standards */
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144#define MN_NTSC_PAL_BTSC 0
145#define MN_NTSC_PAL_A2 1
146#define MN_NTSC_PAL_EIAJ 2
147#define MN_NTSC_PAL_Mono 3
148#define BG_PAL_A2 4
149#define BG_PAL_NICAM 5
150#define BG_PAL_MONO 6
151#define I_PAL_NICAM 7
152#define I_PAL_NICAM_MONO 8
153#define DK_PAL_A2 9
154#define DK_PAL_NICAM 10
155#define DK_PAL_MONO 11
156#define DK_SECAM_A2DK1 12
157#define DK_SECAM_A2LDK3 13
158#define DK_SECAM_A2MONO 14
159#define L_SECAM_NICAM 15
160#define LC_SECAM_NICAM 16
161#define DTV6 17
162#define DTV8 18
163#define DTV7_8 19
164#define DTV7 20
165#define FM_Radio_INPUT2 21
166#define FM_Radio_INPUT1 22
aacb9d31 167
8f3cd530 168static struct XC_TV_STANDARD XC5000_Standard[MAX_TV_STANDARD] = {
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169 {"M/N-NTSC/PAL-BTSC", 0x0400, 0x8020},
170 {"M/N-NTSC/PAL-A2", 0x0600, 0x8020},
171 {"M/N-NTSC/PAL-EIAJ", 0x0440, 0x8020},
172 {"M/N-NTSC/PAL-Mono", 0x0478, 0x8020},
173 {"B/G-PAL-A2", 0x0A00, 0x8049},
174 {"B/G-PAL-NICAM", 0x0C04, 0x8049},
175 {"B/G-PAL-MONO", 0x0878, 0x8059},
176 {"I-PAL-NICAM", 0x1080, 0x8009},
177 {"I-PAL-NICAM-MONO", 0x0E78, 0x8009},
178 {"D/K-PAL-A2", 0x1600, 0x8009},
179 {"D/K-PAL-NICAM", 0x0E80, 0x8009},
180 {"D/K-PAL-MONO", 0x1478, 0x8009},
181 {"D/K-SECAM-A2 DK1", 0x1200, 0x8009},
8f3cd530 182 {"D/K-SECAM-A2 L/DK3", 0x0E00, 0x8009},
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183 {"D/K-SECAM-A2 MONO", 0x1478, 0x8009},
184 {"L-SECAM-NICAM", 0x8E82, 0x0009},
185 {"L'-SECAM-NICAM", 0x8E82, 0x4009},
186 {"DTV6", 0x00C0, 0x8002},
187 {"DTV8", 0x00C0, 0x800B},
188 {"DTV7/8", 0x00C0, 0x801B},
189 {"DTV7", 0x00C0, 0x8007},
190 {"FM Radio-INPUT2", 0x9802, 0x9002},
191 {"FM Radio-INPUT1", 0x0208, 0x9002}
192};
193
e470d817 194static int xc5000_is_firmware_loaded(struct dvb_frontend *fe);
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195static int xc5000_writeregs(struct xc5000_priv *priv, u8 *buf, u8 len);
196static int xc5000_readregs(struct xc5000_priv *priv, u8 *buf, u8 len);
197static void xc5000_TunerReset(struct dvb_frontend *fe);
198
e12671cf 199static int xc_send_i2c_data(struct xc5000_priv *priv, u8 *buf, int len)
aacb9d31 200{
e12671cf 201 return xc5000_writeregs(priv, buf, len)
aacb9d31
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202 ? XC_RESULT_I2C_WRITE_FAILURE : XC_RESULT_SUCCESS;
203}
204
e12671cf 205static int xc_read_i2c_data(struct xc5000_priv *priv, u8 *buf, int len)
aacb9d31 206{
e12671cf 207 return xc5000_readregs(priv, buf, len)
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208 ? XC_RESULT_I2C_READ_FAILURE : XC_RESULT_SUCCESS;
209}
210
e12671cf 211static int xc_reset(struct dvb_frontend *fe)
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212{
213 xc5000_TunerReset(fe);
214 return XC_RESULT_SUCCESS;
215}
216
e12671cf 217static void xc_wait(int wait_ms)
aacb9d31 218{
e12671cf 219 msleep(wait_ms);
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ST
220}
221
222static void xc5000_TunerReset(struct dvb_frontend *fe)
223{
224 struct xc5000_priv *priv = fe->tuner_priv;
225 int ret;
226
271ddbf7 227 dprintk(1, "%s()\n", __func__);
aacb9d31 228
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229 if (fe->callback) {
230 ret = fe->callback(((fe->dvb) && (fe->dvb->priv)) ?
30650961
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231 fe->dvb->priv :
232 priv->i2c_props.adap->algo_data,
d7cba043 233 DVB_FRONTEND_COMPONENT_TUNER,
30650961 234 XC5000_TUNER_RESET, 0);
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235 if (ret)
236 printk(KERN_ERR "xc5000: reset failed\n");
237 } else
27c685a4 238 printk(KERN_ERR "xc5000: no tuner reset callback function, fatal\n");
aacb9d31
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239}
240
e12671cf 241static int xc_write_reg(struct xc5000_priv *priv, u16 regAddr, u16 i2cData)
aacb9d31 242{
e12671cf 243 u8 buf[4];
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244 int WatchDogTimer = 5;
245 int result;
246
247 buf[0] = (regAddr >> 8) & 0xFF;
248 buf[1] = regAddr & 0xFF;
249 buf[2] = (i2cData >> 8) & 0xFF;
250 buf[3] = i2cData & 0xFF;
251 result = xc_send_i2c_data(priv, buf, 4);
e12671cf 252 if (result == XC_RESULT_SUCCESS) {
aacb9d31
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253 /* wait for busy flag to clear */
254 while ((WatchDogTimer > 0) && (result == XC_RESULT_SUCCESS)) {
255 buf[0] = 0;
256 buf[1] = XREG_BUSY;
257
258 result = xc_send_i2c_data(priv, buf, 2);
259 if (result == XC_RESULT_SUCCESS) {
260 result = xc_read_i2c_data(priv, buf, 2);
261 if (result == XC_RESULT_SUCCESS) {
262 if ((buf[0] == 0) && (buf[1] == 0)) {
263 /* busy flag cleared */
264 break;
265 } else {
266 xc_wait(100); /* wait 5 ms */
267 WatchDogTimer--;
268 }
269 }
270 }
271 }
272 }
273 if (WatchDogTimer < 0)
274 result = XC_RESULT_I2C_WRITE_FAILURE;
275
276 return result;
277}
278
e12671cf 279static int xc_read_reg(struct xc5000_priv *priv, u16 regAddr, u16 *i2cData)
aacb9d31 280{
e12671cf 281 u8 buf[2];
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282 int result;
283
284 buf[0] = (regAddr >> 8) & 0xFF;
285 buf[1] = regAddr & 0xFF;
286 result = xc_send_i2c_data(priv, buf, 2);
e12671cf 287 if (result != XC_RESULT_SUCCESS)
aacb9d31
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288 return result;
289
290 result = xc_read_i2c_data(priv, buf, 2);
e12671cf 291 if (result != XC_RESULT_SUCCESS)
aacb9d31
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292 return result;
293
294 *i2cData = buf[0] * 256 + buf[1];
295 return result;
296}
297
c63e87e9 298static int xc_load_i2c_sequence(struct dvb_frontend *fe, const u8 *i2c_sequence)
aacb9d31
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299{
300 struct xc5000_priv *priv = fe->tuner_priv;
301
302 int i, nbytes_to_send, result;
303 unsigned int len, pos, index;
e12671cf 304 u8 buf[XC_MAX_I2C_WRITE_LENGTH];
aacb9d31 305
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306 index = 0;
307 while ((i2c_sequence[index] != 0xFF) ||
308 (i2c_sequence[index + 1] != 0xFF)) {
309 len = i2c_sequence[index] * 256 + i2c_sequence[index+1];
e12671cf 310 if (len == 0x0000) {
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311 /* RESET command */
312 result = xc_reset(fe);
313 index += 2;
e12671cf 314 if (result != XC_RESULT_SUCCESS)
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315 return result;
316 } else if (len & 0x8000) {
317 /* WAIT command */
318 xc_wait(len & 0x7FFF);
319 index += 2;
320 } else {
321 /* Send i2c data whilst ensuring individual transactions
322 * do not exceed XC_MAX_I2C_WRITE_LENGTH bytes.
323 */
324 index += 2;
325 buf[0] = i2c_sequence[index];
326 buf[1] = i2c_sequence[index + 1];
327 pos = 2;
328 while (pos < len) {
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ST
329 if ((len - pos) > XC_MAX_I2C_WRITE_LENGTH - 2)
330 nbytes_to_send =
331 XC_MAX_I2C_WRITE_LENGTH;
332 else
aacb9d31 333 nbytes_to_send = (len - pos + 2);
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334 for (i = 2; i < nbytes_to_send; i++) {
335 buf[i] = i2c_sequence[index + pos +
336 i - 2];
aacb9d31 337 }
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ST
338 result = xc_send_i2c_data(priv, buf,
339 nbytes_to_send);
aacb9d31 340
e12671cf 341 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
342 return result;
343
344 pos += nbytes_to_send - 2;
345 }
346 index += len;
347 }
348 }
349 return XC_RESULT_SUCCESS;
350}
351
e12671cf 352static int xc_initialize(struct xc5000_priv *priv)
aacb9d31 353{
271ddbf7 354 dprintk(1, "%s()\n", __func__);
aacb9d31
ST
355 return xc_write_reg(priv, XREG_INIT, 0);
356}
357
e12671cf
ST
358static int xc_SetTVStandard(struct xc5000_priv *priv,
359 u16 VideoMode, u16 AudioMode)
aacb9d31
ST
360{
361 int ret;
271ddbf7 362 dprintk(1, "%s(0x%04x,0x%04x)\n", __func__, VideoMode, AudioMode);
aacb9d31 363 dprintk(1, "%s() Standard = %s\n",
271ddbf7 364 __func__,
aacb9d31
ST
365 XC5000_Standard[priv->video_standard].Name);
366
367 ret = xc_write_reg(priv, XREG_VIDEO_MODE, VideoMode);
368 if (ret == XC_RESULT_SUCCESS)
369 ret = xc_write_reg(priv, XREG_AUDIO_MODE, AudioMode);
370
371 return ret;
372}
373
e12671cf 374static int xc_shutdown(struct xc5000_priv *priv)
aacb9d31 375{
e470d817 376 return XC_RESULT_SUCCESS;
27c685a4
ST
377 /* Fixme: cannot bring tuner back alive once shutdown
378 * without reloading the driver modules.
379 * return xc_write_reg(priv, XREG_POWER_DOWN, 0);
380 */
aacb9d31
ST
381}
382
e12671cf 383static int xc_SetSignalSource(struct xc5000_priv *priv, u16 rf_mode)
aacb9d31 384{
271ddbf7 385 dprintk(1, "%s(%d) Source = %s\n", __func__, rf_mode,
aacb9d31
ST
386 rf_mode == XC_RF_MODE_AIR ? "ANTENNA" : "CABLE");
387
8f3cd530 388 if ((rf_mode != XC_RF_MODE_AIR) && (rf_mode != XC_RF_MODE_CABLE)) {
aacb9d31
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389 rf_mode = XC_RF_MODE_CABLE;
390 printk(KERN_ERR
391 "%s(), Invalid mode, defaulting to CABLE",
271ddbf7 392 __func__);
aacb9d31
ST
393 }
394 return xc_write_reg(priv, XREG_SIGNALSOURCE, rf_mode);
395}
396
e12671cf 397static const struct dvb_tuner_ops xc5000_tuner_ops;
aacb9d31 398
e12671cf
ST
399static int xc_set_RF_frequency(struct xc5000_priv *priv, u32 freq_hz)
400{
401 u16 freq_code;
aacb9d31 402
271ddbf7 403 dprintk(1, "%s(%u)\n", __func__, freq_hz);
aacb9d31 404
e12671cf
ST
405 if ((freq_hz > xc5000_tuner_ops.info.frequency_max) ||
406 (freq_hz < xc5000_tuner_ops.info.frequency_min))
aacb9d31
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407 return XC_RESULT_OUT_OF_RANGE;
408
e12671cf
ST
409 freq_code = (u16)(freq_hz / 15625);
410
411 return xc_write_reg(priv, XREG_RF_FREQ, freq_code);
aacb9d31
ST
412}
413
aacb9d31 414
e12671cf
ST
415static int xc_set_IF_frequency(struct xc5000_priv *priv, u32 freq_khz)
416{
417 u32 freq_code = (freq_khz * 1024)/1000;
418 dprintk(1, "%s(freq_khz = %d) freq_code = 0x%x\n",
271ddbf7 419 __func__, freq_khz, freq_code);
aacb9d31 420
e12671cf 421 return xc_write_reg(priv, XREG_IF_OUT, freq_code);
aacb9d31
ST
422}
423
aacb9d31 424
e12671cf 425static int xc_get_ADC_Envelope(struct xc5000_priv *priv, u16 *adc_envelope)
aacb9d31
ST
426{
427 return xc_read_reg(priv, XREG_ADC_ENV, adc_envelope);
428}
429
e12671cf 430static int xc_get_frequency_error(struct xc5000_priv *priv, u32 *freq_error_hz)
aacb9d31
ST
431{
432 int result;
e12671cf 433 u16 regData;
aacb9d31
ST
434 u32 tmp;
435
436 result = xc_read_reg(priv, XREG_FREQ_ERROR, &regData);
437 if (result)
438 return result;
439
440 tmp = (u32)regData;
e12671cf 441 (*freq_error_hz) = (tmp * 15625) / 1000;
aacb9d31
ST
442 return result;
443}
444
e12671cf 445static int xc_get_lock_status(struct xc5000_priv *priv, u16 *lock_status)
aacb9d31
ST
446{
447 return xc_read_reg(priv, XREG_LOCK, lock_status);
448}
449
e12671cf
ST
450static int xc_get_version(struct xc5000_priv *priv,
451 u8 *hw_majorversion, u8 *hw_minorversion,
452 u8 *fw_majorversion, u8 *fw_minorversion)
aacb9d31 453{
e12671cf 454 u16 data;
aacb9d31
ST
455 int result;
456
457 result = xc_read_reg(priv, XREG_VERSION, &data);
458 if (result)
459 return result;
460
e12671cf
ST
461 (*hw_majorversion) = (data >> 12) & 0x0F;
462 (*hw_minorversion) = (data >> 8) & 0x0F;
463 (*fw_majorversion) = (data >> 4) & 0x0F;
464 (*fw_minorversion) = data & 0x0F;
aacb9d31
ST
465
466 return 0;
467}
468
e12671cf 469static int xc_get_hsync_freq(struct xc5000_priv *priv, u32 *hsync_freq_hz)
aacb9d31 470{
e12671cf 471 u16 regData;
aacb9d31
ST
472 int result;
473
474 result = xc_read_reg(priv, XREG_HSYNC_FREQ, &regData);
475 if (result)
476 return result;
477
478 (*hsync_freq_hz) = ((regData & 0x0fff) * 763)/100;
479 return result;
480}
481
e12671cf 482static int xc_get_frame_lines(struct xc5000_priv *priv, u16 *frame_lines)
aacb9d31
ST
483{
484 return xc_read_reg(priv, XREG_FRAME_LINES, frame_lines);
485}
486
e12671cf 487static int xc_get_quality(struct xc5000_priv *priv, u16 *quality)
aacb9d31
ST
488{
489 return xc_read_reg(priv, XREG_QUALITY, quality);
490}
491
e12671cf 492static u16 WaitForLock(struct xc5000_priv *priv)
aacb9d31 493{
e12671cf 494 u16 lockState = 0;
aacb9d31 495 int watchDogCount = 40;
e12671cf
ST
496
497 while ((lockState == 0) && (watchDogCount > 0)) {
aacb9d31 498 xc_get_lock_status(priv, &lockState);
e12671cf 499 if (lockState != 1) {
aacb9d31
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500 xc_wait(5);
501 watchDogCount--;
502 }
503 }
504 return lockState;
505}
506
e12671cf 507static int xc_tune_channel(struct xc5000_priv *priv, u32 freq_hz)
aacb9d31
ST
508{
509 int found = 0;
510
271ddbf7 511 dprintk(1, "%s(%u)\n", __func__, freq_hz);
aacb9d31 512
e12671cf 513 if (xc_set_RF_frequency(priv, freq_hz) != XC_RESULT_SUCCESS)
aacb9d31
ST
514 return 0;
515
e12671cf 516 if (WaitForLock(priv) == 1)
aacb9d31
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517 found = 1;
518
519 return found;
520}
521
522static int xc5000_readreg(struct xc5000_priv *priv, u16 reg, u16 *val)
523{
524 u8 buf[2] = { reg >> 8, reg & 0xff };
525 u8 bval[2] = { 0, 0 };
526 struct i2c_msg msg[2] = {
89fd2854 527 { .addr = priv->i2c_props.addr,
aacb9d31 528 .flags = 0, .buf = &buf[0], .len = 2 },
89fd2854 529 { .addr = priv->i2c_props.addr,
aacb9d31
ST
530 .flags = I2C_M_RD, .buf = &bval[0], .len = 2 },
531 };
532
89fd2854 533 if (i2c_transfer(priv->i2c_props.adap, msg, 2) != 2) {
27c685a4 534 printk(KERN_WARNING "xc5000: I2C read failed\n");
aacb9d31
ST
535 return -EREMOTEIO;
536 }
537
538 *val = (bval[0] << 8) | bval[1];
539 return 0;
540}
541
542static int xc5000_writeregs(struct xc5000_priv *priv, u8 *buf, u8 len)
543{
89fd2854 544 struct i2c_msg msg = { .addr = priv->i2c_props.addr,
aacb9d31
ST
545 .flags = 0, .buf = buf, .len = len };
546
89fd2854 547 if (i2c_transfer(priv->i2c_props.adap, &msg, 1) != 1) {
27c685a4 548 printk(KERN_ERR "xc5000: I2C write failed (len=%i)\n",
aacb9d31
ST
549 (int)len);
550 return -EREMOTEIO;
551 }
552 return 0;
553}
554
555static int xc5000_readregs(struct xc5000_priv *priv, u8 *buf, u8 len)
556{
89fd2854 557 struct i2c_msg msg = { .addr = priv->i2c_props.addr,
aacb9d31
ST
558 .flags = I2C_M_RD, .buf = buf, .len = len };
559
89fd2854 560 if (i2c_transfer(priv->i2c_props.adap, &msg, 1) != 1) {
8f3cd530 561 printk(KERN_ERR "xc5000 I2C read failed (len=%i)\n", (int)len);
aacb9d31
ST
562 return -EREMOTEIO;
563 }
564 return 0;
565}
566
8f3cd530 567static int xc5000_fwupload(struct dvb_frontend *fe)
aacb9d31
ST
568{
569 struct xc5000_priv *priv = fe->tuner_priv;
570 const struct firmware *fw;
571 int ret;
572
e12671cf
ST
573 /* request the firmware, this will block and timeout */
574 printk(KERN_INFO "xc5000: waiting for firmware upload (%s)...\n",
575 XC5000_DEFAULT_FIRMWARE);
576
8f3cd530 577 ret = request_firmware(&fw, XC5000_DEFAULT_FIRMWARE,
e9785250 578 priv->i2c_props.adap->dev.parent);
aacb9d31
ST
579 if (ret) {
580 printk(KERN_ERR "xc5000: Upload failed. (file not found?)\n");
581 ret = XC_RESULT_RESET_FAILURE;
5ea60531 582 goto out;
aacb9d31 583 } else {
3f51451b
MK
584 printk(KERN_INFO "xc5000: firmware read %Zu bytes.\n",
585 fw->size);
aacb9d31
ST
586 ret = XC_RESULT_SUCCESS;
587 }
588
e12671cf 589 if (fw->size != XC5000_DEFAULT_FIRMWARE_SIZE) {
aacb9d31
ST
590 printk(KERN_ERR "xc5000: firmware incorrect size\n");
591 ret = XC_RESULT_RESET_FAILURE;
592 } else {
593 printk(KERN_INFO "xc5000: firmware upload\n");
8f3cd530 594 ret = xc_load_i2c_sequence(fe, fw->data);
aacb9d31
ST
595 }
596
5ea60531 597out:
aacb9d31
ST
598 release_firmware(fw);
599 return ret;
600}
601
e12671cf 602static void xc_debug_dump(struct xc5000_priv *priv)
aacb9d31 603{
e12671cf
ST
604 u16 adc_envelope;
605 u32 freq_error_hz = 0;
606 u16 lock_status;
607 u32 hsync_freq_hz = 0;
608 u16 frame_lines;
609 u16 quality;
610 u8 hw_majorversion = 0, hw_minorversion = 0;
611 u8 fw_majorversion = 0, fw_minorversion = 0;
aacb9d31
ST
612
613 /* Wait for stats to stabilize.
614 * Frame Lines needs two frame times after initial lock
615 * before it is valid.
616 */
e12671cf 617 xc_wait(100);
aacb9d31 618
e12671cf
ST
619 xc_get_ADC_Envelope(priv, &adc_envelope);
620 dprintk(1, "*** ADC envelope (0-1023) = %d\n", adc_envelope);
aacb9d31 621
e12671cf
ST
622 xc_get_frequency_error(priv, &freq_error_hz);
623 dprintk(1, "*** Frequency error = %d Hz\n", freq_error_hz);
aacb9d31 624
e12671cf
ST
625 xc_get_lock_status(priv, &lock_status);
626 dprintk(1, "*** Lock status (0-Wait, 1-Locked, 2-No-signal) = %d\n",
aacb9d31
ST
627 lock_status);
628
629 xc_get_version(priv, &hw_majorversion, &hw_minorversion,
e12671cf 630 &fw_majorversion, &fw_minorversion);
aacb9d31
ST
631 dprintk(1, "*** HW: V%02x.%02x, FW: V%02x.%02x\n",
632 hw_majorversion, hw_minorversion,
633 fw_majorversion, fw_minorversion);
634
e12671cf
ST
635 xc_get_hsync_freq(priv, &hsync_freq_hz);
636 dprintk(1, "*** Horizontal sync frequency = %d Hz\n", hsync_freq_hz);
aacb9d31 637
e12671cf
ST
638 xc_get_frame_lines(priv, &frame_lines);
639 dprintk(1, "*** Frame lines = %d\n", frame_lines);
aacb9d31 640
e12671cf
ST
641 xc_get_quality(priv, &quality);
642 dprintk(1, "*** Quality (0:<8dB, 7:>56dB) = %d\n", quality);
aacb9d31
ST
643}
644
645static int xc5000_set_params(struct dvb_frontend *fe,
646 struct dvb_frontend_parameters *params)
647{
648 struct xc5000_priv *priv = fe->tuner_priv;
e12671cf 649 int ret;
aacb9d31 650
271ddbf7 651 dprintk(1, "%s() frequency=%d (Hz)\n", __func__, params->frequency);
aacb9d31 652
8f3cd530 653 switch (params->u.vsb.modulation) {
aacb9d31
ST
654 case VSB_8:
655 case VSB_16:
271ddbf7 656 dprintk(1, "%s() VSB modulation\n", __func__);
aacb9d31 657 priv->rf_mode = XC_RF_MODE_AIR;
e12671cf
ST
658 priv->freq_hz = params->frequency - 1750000;
659 priv->bandwidth = BANDWIDTH_6_MHZ;
660 priv->video_standard = DTV6;
aacb9d31
ST
661 break;
662 case QAM_64:
663 case QAM_256:
664 case QAM_AUTO:
271ddbf7 665 dprintk(1, "%s() QAM modulation\n", __func__);
aacb9d31 666 priv->rf_mode = XC_RF_MODE_CABLE;
e12671cf
ST
667 priv->freq_hz = params->frequency - 1750000;
668 priv->bandwidth = BANDWIDTH_6_MHZ;
669 priv->video_standard = DTV6;
aacb9d31
ST
670 break;
671 default:
672 return -EINVAL;
673 }
674
675 dprintk(1, "%s() frequency=%d (compensated)\n",
271ddbf7 676 __func__, priv->freq_hz);
aacb9d31 677
e12671cf
ST
678 ret = xc_SetSignalSource(priv, priv->rf_mode);
679 if (ret != XC_RESULT_SUCCESS) {
680 printk(KERN_ERR
681 "xc5000: xc_SetSignalSource(%d) failed\n",
682 priv->rf_mode);
683 return -EREMOTEIO;
684 }
aacb9d31 685
e12671cf 686 ret = xc_SetTVStandard(priv,
aacb9d31
ST
687 XC5000_Standard[priv->video_standard].VideoMode,
688 XC5000_Standard[priv->video_standard].AudioMode);
e12671cf
ST
689 if (ret != XC_RESULT_SUCCESS) {
690 printk(KERN_ERR "xc5000: xc_SetTVStandard failed\n");
691 return -EREMOTEIO;
692 }
693
2a6003c2 694 ret = xc_set_IF_frequency(priv, priv->if_khz);
e12671cf
ST
695 if (ret != XC_RESULT_SUCCESS) {
696 printk(KERN_ERR "xc5000: xc_Set_IF_frequency(%d) failed\n",
2a6003c2 697 priv->if_khz);
e12671cf
ST
698 return -EIO;
699 }
700
701 xc_tune_channel(priv, priv->freq_hz);
aacb9d31 702
e12671cf
ST
703 if (debug)
704 xc_debug_dump(priv);
aacb9d31
ST
705
706 return 0;
707}
708
e470d817
ST
709static int xc5000_is_firmware_loaded(struct dvb_frontend *fe)
710{
711 struct xc5000_priv *priv = fe->tuner_priv;
712 int ret;
713 u16 id;
714
715 ret = xc5000_readreg(priv, XREG_PRODUCT_ID, &id);
716 if (ret == XC_RESULT_SUCCESS) {
717 if (id == XC_PRODUCT_ID_FW_NOT_LOADED)
718 ret = XC_RESULT_RESET_FAILURE;
719 else
720 ret = XC_RESULT_SUCCESS;
721 }
722
723 dprintk(1, "%s() returns %s id = 0x%x\n", __func__,
724 ret == XC_RESULT_SUCCESS ? "True" : "False", id);
725 return ret;
726}
727
27c685a4
ST
728static int xc_load_fw_and_init_tuner(struct dvb_frontend *fe);
729
730static int xc5000_set_analog_params(struct dvb_frontend *fe,
731 struct analog_parameters *params)
732{
733 struct xc5000_priv *priv = fe->tuner_priv;
734 int ret;
735
e470d817 736 if (xc5000_is_firmware_loaded(fe) != XC_RESULT_SUCCESS)
27c685a4
ST
737 xc_load_fw_and_init_tuner(fe);
738
739 dprintk(1, "%s() frequency=%d (in units of 62.5khz)\n",
271ddbf7 740 __func__, params->frequency);
27c685a4 741
1fab14ed
MCC
742 /* Fix me: it could be air. */
743 priv->rf_mode = params->mode;
744 if (params->mode > XC_RF_MODE_CABLE)
745 priv->rf_mode = XC_RF_MODE_CABLE;
27c685a4
ST
746
747 /* params->frequency is in units of 62.5khz */
748 priv->freq_hz = params->frequency * 62500;
749
750 /* FIX ME: Some video standards may have several possible audio
751 standards. We simply default to one of them here.
752 */
8f3cd530 753 if (params->std & V4L2_STD_MN) {
27c685a4
ST
754 /* default to BTSC audio standard */
755 priv->video_standard = MN_NTSC_PAL_BTSC;
756 goto tune_channel;
757 }
758
8f3cd530 759 if (params->std & V4L2_STD_PAL_BG) {
27c685a4
ST
760 /* default to NICAM audio standard */
761 priv->video_standard = BG_PAL_NICAM;
762 goto tune_channel;
763 }
764
8f3cd530 765 if (params->std & V4L2_STD_PAL_I) {
27c685a4
ST
766 /* default to NICAM audio standard */
767 priv->video_standard = I_PAL_NICAM;
768 goto tune_channel;
769 }
770
8f3cd530 771 if (params->std & V4L2_STD_PAL_DK) {
27c685a4
ST
772 /* default to NICAM audio standard */
773 priv->video_standard = DK_PAL_NICAM;
774 goto tune_channel;
775 }
776
8f3cd530 777 if (params->std & V4L2_STD_SECAM_DK) {
27c685a4
ST
778 /* default to A2 DK1 audio standard */
779 priv->video_standard = DK_SECAM_A2DK1;
780 goto tune_channel;
781 }
782
8f3cd530 783 if (params->std & V4L2_STD_SECAM_L) {
27c685a4
ST
784 priv->video_standard = L_SECAM_NICAM;
785 goto tune_channel;
786 }
787
8f3cd530 788 if (params->std & V4L2_STD_SECAM_LC) {
27c685a4
ST
789 priv->video_standard = LC_SECAM_NICAM;
790 goto tune_channel;
791 }
792
793tune_channel:
794 ret = xc_SetSignalSource(priv, priv->rf_mode);
795 if (ret != XC_RESULT_SUCCESS) {
8f3cd530 796 printk(KERN_ERR
27c685a4
ST
797 "xc5000: xc_SetSignalSource(%d) failed\n",
798 priv->rf_mode);
799 return -EREMOTEIO;
800 }
801
802 ret = xc_SetTVStandard(priv,
803 XC5000_Standard[priv->video_standard].VideoMode,
804 XC5000_Standard[priv->video_standard].AudioMode);
805 if (ret != XC_RESULT_SUCCESS) {
806 printk(KERN_ERR "xc5000: xc_SetTVStandard failed\n");
807 return -EREMOTEIO;
808 }
809
810 xc_tune_channel(priv, priv->freq_hz);
811
812 if (debug)
813 xc_debug_dump(priv);
814
815 return 0;
816}
817
aacb9d31
ST
818static int xc5000_get_frequency(struct dvb_frontend *fe, u32 *freq)
819{
820 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 821 dprintk(1, "%s()\n", __func__);
e12671cf 822 *freq = priv->freq_hz;
aacb9d31
ST
823 return 0;
824}
825
826static int xc5000_get_bandwidth(struct dvb_frontend *fe, u32 *bw)
827{
828 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 829 dprintk(1, "%s()\n", __func__);
27c685a4 830
aacb9d31
ST
831 *bw = priv->bandwidth;
832 return 0;
833}
834
835static int xc5000_get_status(struct dvb_frontend *fe, u32 *status)
836{
837 struct xc5000_priv *priv = fe->tuner_priv;
e12671cf 838 u16 lock_status = 0;
aacb9d31
ST
839
840 xc_get_lock_status(priv, &lock_status);
841
271ddbf7 842 dprintk(1, "%s() lock_status = 0x%08x\n", __func__, lock_status);
aacb9d31
ST
843
844 *status = lock_status;
845
846 return 0;
847}
848
e12671cf 849static int xc_load_fw_and_init_tuner(struct dvb_frontend *fe)
aacb9d31
ST
850{
851 struct xc5000_priv *priv = fe->tuner_priv;
27c685a4 852 int ret = 0;
aacb9d31 853
e470d817 854 if (xc5000_is_firmware_loaded(fe) != XC_RESULT_SUCCESS) {
aacb9d31 855 ret = xc5000_fwupload(fe);
e12671cf
ST
856 if (ret != XC_RESULT_SUCCESS)
857 return ret;
aacb9d31
ST
858 }
859
860 /* Start the tuner self-calibration process */
861 ret |= xc_initialize(priv);
862
863 /* Wait for calibration to complete.
864 * We could continue but XC5000 will clock stretch subsequent
865 * I2C transactions until calibration is complete. This way we
866 * don't have to rely on clock stretching working.
867 */
8f3cd530 868 xc_wait(100);
aacb9d31
ST
869
870 /* Default to "CABLE" mode */
871 ret |= xc_write_reg(priv, XREG_SIGNALSOURCE, XC_RF_MODE_CABLE);
872
873 return ret;
874}
875
e12671cf
ST
876static int xc5000_sleep(struct dvb_frontend *fe)
877{
878 struct xc5000_priv *priv = fe->tuner_priv;
27c685a4
ST
879 int ret;
880
271ddbf7 881 dprintk(1, "%s()\n", __func__);
e12671cf 882
27c685a4
ST
883 /* On Pinnacle PCTV HD 800i, the tuner cannot be reinitialized
884 * once shutdown without reloading the driver. Maybe I am not
885 * doing something right.
886 *
887 */
888
889 ret = xc_shutdown(priv);
8f3cd530 890 if (ret != XC_RESULT_SUCCESS) {
27c685a4
ST
891 printk(KERN_ERR
892 "xc5000: %s() unable to shutdown tuner\n",
271ddbf7 893 __func__);
27c685a4 894 return -EREMOTEIO;
8f3cd530 895 } else
27c685a4 896 return XC_RESULT_SUCCESS;
e12671cf
ST
897}
898
aacb9d31
ST
899static int xc5000_init(struct dvb_frontend *fe)
900{
901 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 902 dprintk(1, "%s()\n", __func__);
aacb9d31 903
e12671cf
ST
904 if (xc_load_fw_and_init_tuner(fe) != XC_RESULT_SUCCESS) {
905 printk(KERN_ERR "xc5000: Unable to initialise tuner\n");
906 return -EREMOTEIO;
907 }
908
909 if (debug)
910 xc_debug_dump(priv);
aacb9d31
ST
911
912 return 0;
913}
914
915static int xc5000_release(struct dvb_frontend *fe)
916{
89fd2854
MK
917 struct xc5000_priv *priv = fe->tuner_priv;
918
271ddbf7 919 dprintk(1, "%s()\n", __func__);
89fd2854
MK
920
921 mutex_lock(&xc5000_list_mutex);
922
923 if (priv)
924 hybrid_tuner_release_state(priv);
925
926 mutex_unlock(&xc5000_list_mutex);
927
aacb9d31 928 fe->tuner_priv = NULL;
89fd2854 929
aacb9d31
ST
930 return 0;
931}
932
933static const struct dvb_tuner_ops xc5000_tuner_ops = {
934 .info = {
935 .name = "Xceive XC5000",
936 .frequency_min = 1000000,
937 .frequency_max = 1023000000,
938 .frequency_step = 50000,
939 },
940
27c685a4
ST
941 .release = xc5000_release,
942 .init = xc5000_init,
943 .sleep = xc5000_sleep,
aacb9d31 944
27c685a4
ST
945 .set_params = xc5000_set_params,
946 .set_analog_params = xc5000_set_analog_params,
947 .get_frequency = xc5000_get_frequency,
948 .get_bandwidth = xc5000_get_bandwidth,
949 .get_status = xc5000_get_status
aacb9d31
ST
950};
951
48723543
MK
952struct dvb_frontend *xc5000_attach(struct dvb_frontend *fe,
953 struct i2c_adapter *i2c,
30650961 954 struct xc5000_config *cfg)
aacb9d31
ST
955{
956 struct xc5000_priv *priv = NULL;
89fd2854 957 int instance;
aacb9d31
ST
958 u16 id = 0;
959
89fd2854
MK
960 dprintk(1, "%s(%d-%04x)\n", __func__,
961 i2c ? i2c_adapter_id(i2c) : -1,
962 cfg ? cfg->i2c_address : -1);
aacb9d31 963
89fd2854 964 mutex_lock(&xc5000_list_mutex);
aacb9d31 965
89fd2854
MK
966 instance = hybrid_tuner_request_state(struct xc5000_priv, priv,
967 hybrid_tuner_instance_list,
968 i2c, cfg->i2c_address, "xc5000");
969 switch (instance) {
970 case 0:
971 goto fail;
972 break;
973 case 1:
974 /* new tuner instance */
89fd2854 975 priv->bandwidth = BANDWIDTH_6_MHZ;
89fd2854
MK
976 fe->tuner_priv = priv;
977 break;
978 default:
979 /* existing tuner instance */
980 fe->tuner_priv = priv;
981 break;
982 }
aacb9d31 983
ea227863
DH
984 if (priv->if_khz == 0) {
985 /* If the IF hasn't been set yet, use the value provided by
986 the caller (occurs in hybrid devices where the analog
987 call to xc5000_attach occurs before the digital side) */
988 priv->if_khz = cfg->if_khz;
989 }
990
27c685a4
ST
991 /* Check if firmware has been loaded. It is possible that another
992 instance of the driver has loaded the firmware.
993 */
89fd2854
MK
994 if (xc5000_readreg(priv, XREG_PRODUCT_ID, &id) != 0)
995 goto fail;
aacb9d31 996
8f3cd530 997 switch (id) {
27c685a4
ST
998 case XC_PRODUCT_ID_FW_LOADED:
999 printk(KERN_INFO
1000 "xc5000: Successfully identified at address 0x%02x\n",
1001 cfg->i2c_address);
1002 printk(KERN_INFO
1003 "xc5000: Firmware has been loaded previously\n");
27c685a4
ST
1004 break;
1005 case XC_PRODUCT_ID_FW_NOT_LOADED:
1006 printk(KERN_INFO
1007 "xc5000: Successfully identified at address 0x%02x\n",
1008 cfg->i2c_address);
1009 printk(KERN_INFO
1010 "xc5000: Firmware has not been loaded previously\n");
27c685a4
ST
1011 break;
1012 default:
aacb9d31
ST
1013 printk(KERN_ERR
1014 "xc5000: Device not found at addr 0x%02x (0x%x)\n",
1015 cfg->i2c_address, id);
89fd2854 1016 goto fail;
aacb9d31
ST
1017 }
1018
89fd2854
MK
1019 mutex_unlock(&xc5000_list_mutex);
1020
aacb9d31
ST
1021 memcpy(&fe->ops.tuner_ops, &xc5000_tuner_ops,
1022 sizeof(struct dvb_tuner_ops));
1023
aacb9d31 1024 return fe;
89fd2854
MK
1025fail:
1026 mutex_unlock(&xc5000_list_mutex);
1027
1028 xc5000_release(fe);
1029 return NULL;
aacb9d31
ST
1030}
1031EXPORT_SYMBOL(xc5000_attach);
1032
1033MODULE_AUTHOR("Steven Toth");
e12671cf 1034MODULE_DESCRIPTION("Xceive xc5000 silicon tuner driver");
aacb9d31 1035MODULE_LICENSE("GPL");
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