[media] tvp5150: fix kernel crash if chip is unavailable
[GitHub/mt8127/android_kernel_alcatel_ttab.git] / drivers / media / common / tuners / xc5000.c
CommitLineData
aacb9d31
ST
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>
e80858e8 6 * Copyright (c) 2009 Devin Heitmueller <dheitmueller@kernellabs.com>
aacb9d31
ST
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 *
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 <linux/module.h>
25#include <linux/moduleparam.h>
4917019d 26#include <linux/videodev2.h>
aacb9d31
ST
27#include <linux/delay.h>
28#include <linux/dvb/frontend.h>
29#include <linux/i2c.h>
30
31#include "dvb_frontend.h"
32
33#include "xc5000.h"
89fd2854 34#include "tuner-i2c.h"
aacb9d31
ST
35
36static int debug;
37module_param(debug, int, 0644);
38MODULE_PARM_DESC(debug, "Turn on/off debugging (default:off).");
39
b6bd5eb8
DH
40static int no_poweroff;
41module_param(no_poweroff, int, 0644);
42MODULE_PARM_DESC(no_poweroff, "0 (default) powers device off when not used.\n"
43 "\t\t1 keep device energized and with tuner ready all the times.\n"
44 "\t\tFaster, but consumes more power and keeps the device hotter");
45
89fd2854
MK
46static DEFINE_MUTEX(xc5000_list_mutex);
47static LIST_HEAD(hybrid_tuner_instance_list);
48
8f3cd530 49#define dprintk(level, fmt, arg...) if (debug >= level) \
aacb9d31
ST
50 printk(KERN_INFO "%s: " fmt, "xc5000", ## arg)
51
ffb41234 52struct xc5000_priv {
89fd2854
MK
53 struct tuner_i2c_props i2c_props;
54 struct list_head hybrid_tuner_instance_list;
ffb41234 55
2a6003c2 56 u32 if_khz;
409328a4 57 u16 xtal_khz;
ffb41234
MK
58 u32 freq_hz;
59 u32 bandwidth;
60 u8 video_standard;
61 u8 rf_mode;
496e9057 62 u8 radio_input;
76efb0ba 63
6fab81df 64 int chip_id;
ffb41234
MK
65};
66
aacb9d31 67/* Misc Defines */
724dcbfa 68#define MAX_TV_STANDARD 24
aacb9d31
ST
69#define XC_MAX_I2C_WRITE_LENGTH 64
70
71/* Signal Types */
72#define XC_RF_MODE_AIR 0
73#define XC_RF_MODE_CABLE 1
74
75/* Result codes */
76#define XC_RESULT_SUCCESS 0
77#define XC_RESULT_RESET_FAILURE 1
78#define XC_RESULT_I2C_WRITE_FAILURE 2
79#define XC_RESULT_I2C_READ_FAILURE 3
80#define XC_RESULT_OUT_OF_RANGE 5
81
27c685a4
ST
82/* Product id */
83#define XC_PRODUCT_ID_FW_NOT_LOADED 0x2000
84#define XC_PRODUCT_ID_FW_LOADED 0x1388
85
aacb9d31
ST
86/* Registers */
87#define XREG_INIT 0x00
88#define XREG_VIDEO_MODE 0x01
89#define XREG_AUDIO_MODE 0x02
90#define XREG_RF_FREQ 0x03
91#define XREG_D_CODE 0x04
92#define XREG_IF_OUT 0x05
93#define XREG_SEEK_MODE 0x07
7f05b530 94#define XREG_POWER_DOWN 0x0A /* Obsolete */
724dcbfa
DB
95/* Set the output amplitude - SIF for analog, DTVP/DTVN for digital */
96#define XREG_OUTPUT_AMP 0x0B
aacb9d31
ST
97#define XREG_SIGNALSOURCE 0x0D /* 0=Air, 1=Cable */
98#define XREG_SMOOTHEDCVBS 0x0E
99#define XREG_XTALFREQ 0x0F
81c4dfe7 100#define XREG_FINERFREQ 0x10
aacb9d31
ST
101#define XREG_DDIMODE 0x11
102
103#define XREG_ADC_ENV 0x00
104#define XREG_QUALITY 0x01
105#define XREG_FRAME_LINES 0x02
106#define XREG_HSYNC_FREQ 0x03
107#define XREG_LOCK 0x04
108#define XREG_FREQ_ERROR 0x05
109#define XREG_SNR 0x06
110#define XREG_VERSION 0x07
111#define XREG_PRODUCT_ID 0x08
112#define XREG_BUSY 0x09
bae7b7d7 113#define XREG_BUILD 0x0D
aacb9d31
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114
115/*
116 Basic firmware description. This will remain with
117 the driver for documentation purposes.
118
119 This represents an I2C firmware file encoded as a
120 string of unsigned char. Format is as follows:
121
122 char[0 ]=len0_MSB -> len = len_MSB * 256 + len_LSB
123 char[1 ]=len0_LSB -> length of first write transaction
124 char[2 ]=data0 -> first byte to be sent
125 char[3 ]=data1
126 char[4 ]=data2
127 char[ ]=...
128 char[M ]=dataN -> last byte to be sent
129 char[M+1]=len1_MSB -> len = len_MSB * 256 + len_LSB
130 char[M+2]=len1_LSB -> length of second write transaction
131 char[M+3]=data0
132 char[M+4]=data1
133 ...
134 etc.
135
136 The [len] value should be interpreted as follows:
137
138 len= len_MSB _ len_LSB
139 len=1111_1111_1111_1111 : End of I2C_SEQUENCE
140 len=0000_0000_0000_0000 : Reset command: Do hardware reset
141 len=0NNN_NNNN_NNNN_NNNN : Normal transaction: number of bytes = {1:32767)
142 len=1WWW_WWWW_WWWW_WWWW : Wait command: wait for {1:32767} ms
143
144 For the RESET and WAIT commands, the two following bytes will contain
145 immediately the length of the following transaction.
146
147*/
8f3cd530 148struct XC_TV_STANDARD {
aacb9d31 149 char *Name;
e12671cf
ST
150 u16 AudioMode;
151 u16 VideoMode;
8f3cd530 152};
aacb9d31
ST
153
154/* Tuner standards */
27c685a4
ST
155#define MN_NTSC_PAL_BTSC 0
156#define MN_NTSC_PAL_A2 1
157#define MN_NTSC_PAL_EIAJ 2
158#define MN_NTSC_PAL_Mono 3
159#define BG_PAL_A2 4
160#define BG_PAL_NICAM 5
161#define BG_PAL_MONO 6
162#define I_PAL_NICAM 7
163#define I_PAL_NICAM_MONO 8
164#define DK_PAL_A2 9
165#define DK_PAL_NICAM 10
166#define DK_PAL_MONO 11
167#define DK_SECAM_A2DK1 12
168#define DK_SECAM_A2LDK3 13
169#define DK_SECAM_A2MONO 14
170#define L_SECAM_NICAM 15
171#define LC_SECAM_NICAM 16
172#define DTV6 17
173#define DTV8 18
174#define DTV7_8 19
175#define DTV7 20
176#define FM_Radio_INPUT2 21
177#define FM_Radio_INPUT1 22
724dcbfa 178#define FM_Radio_INPUT1_MONO 23
aacb9d31 179
8f3cd530 180static struct XC_TV_STANDARD XC5000_Standard[MAX_TV_STANDARD] = {
aacb9d31
ST
181 {"M/N-NTSC/PAL-BTSC", 0x0400, 0x8020},
182 {"M/N-NTSC/PAL-A2", 0x0600, 0x8020},
183 {"M/N-NTSC/PAL-EIAJ", 0x0440, 0x8020},
184 {"M/N-NTSC/PAL-Mono", 0x0478, 0x8020},
185 {"B/G-PAL-A2", 0x0A00, 0x8049},
186 {"B/G-PAL-NICAM", 0x0C04, 0x8049},
187 {"B/G-PAL-MONO", 0x0878, 0x8059},
188 {"I-PAL-NICAM", 0x1080, 0x8009},
189 {"I-PAL-NICAM-MONO", 0x0E78, 0x8009},
190 {"D/K-PAL-A2", 0x1600, 0x8009},
191 {"D/K-PAL-NICAM", 0x0E80, 0x8009},
192 {"D/K-PAL-MONO", 0x1478, 0x8009},
193 {"D/K-SECAM-A2 DK1", 0x1200, 0x8009},
8f3cd530 194 {"D/K-SECAM-A2 L/DK3", 0x0E00, 0x8009},
aacb9d31
ST
195 {"D/K-SECAM-A2 MONO", 0x1478, 0x8009},
196 {"L-SECAM-NICAM", 0x8E82, 0x0009},
197 {"L'-SECAM-NICAM", 0x8E82, 0x4009},
198 {"DTV6", 0x00C0, 0x8002},
199 {"DTV8", 0x00C0, 0x800B},
200 {"DTV7/8", 0x00C0, 0x801B},
201 {"DTV7", 0x00C0, 0x8007},
202 {"FM Radio-INPUT2", 0x9802, 0x9002},
724dcbfa
DB
203 {"FM Radio-INPUT1", 0x0208, 0x9002},
204 {"FM Radio-INPUT1_MONO", 0x0278, 0x9002}
aacb9d31
ST
205};
206
ddea427f
MK
207
208struct xc5000_fw_cfg {
209 char *name;
210 u16 size;
211};
212
a3db60bc 213static const struct xc5000_fw_cfg xc5000a_1_6_114 = {
76efb0ba
MK
214 .name = "dvb-fe-xc5000-1.6.114.fw",
215 .size = 12401,
216};
217
7d3d0d8d
MK
218static const struct xc5000_fw_cfg xc5000c_41_024_5 = {
219 .name = "dvb-fe-xc5000c-41.024.5.fw",
220 .size = 16497,
d8398805
MK
221};
222
a3db60bc 223static inline const struct xc5000_fw_cfg *xc5000_assign_firmware(int chip_id)
ddea427f 224{
6fab81df 225 switch (chip_id) {
ddea427f 226 default:
6fab81df 227 case XC5000A:
ddea427f 228 return &xc5000a_1_6_114;
6fab81df 229 case XC5000C:
7d3d0d8d 230 return &xc5000c_41_024_5;
ddea427f
MK
231 }
232}
233
8e4c6797 234static int xc_load_fw_and_init_tuner(struct dvb_frontend *fe);
91bd625e 235static int xc5000_is_firmware_loaded(struct dvb_frontend *fe);
bdd33563 236static int xc5000_readreg(struct xc5000_priv *priv, u16 reg, u16 *val);
91bd625e 237static int xc5000_TunerReset(struct dvb_frontend *fe);
aacb9d31 238
e12671cf 239static int xc_send_i2c_data(struct xc5000_priv *priv, u8 *buf, int len)
aacb9d31 240{
d7800d4e
DH
241 struct i2c_msg msg = { .addr = priv->i2c_props.addr,
242 .flags = 0, .buf = buf, .len = len };
243
244 if (i2c_transfer(priv->i2c_props.adap, &msg, 1) != 1) {
245 printk(KERN_ERR "xc5000: I2C write failed (len=%i)\n", len);
246 return XC_RESULT_I2C_WRITE_FAILURE;
247 }
248 return XC_RESULT_SUCCESS;
aacb9d31
ST
249}
250
1cdffda7 251#if 0
bdd33563
DH
252/* This routine is never used because the only time we read data from the
253 i2c bus is when we read registers, and we want that to be an atomic i2c
254 transaction in case we are on a multi-master bus */
e12671cf 255static int xc_read_i2c_data(struct xc5000_priv *priv, u8 *buf, int len)
aacb9d31 256{
bdd33563
DH
257 struct i2c_msg msg = { .addr = priv->i2c_props.addr,
258 .flags = I2C_M_RD, .buf = buf, .len = len };
259
260 if (i2c_transfer(priv->i2c_props.adap, &msg, 1) != 1) {
261 printk(KERN_ERR "xc5000 I2C read failed (len=%i)\n", len);
262 return -EREMOTEIO;
263 }
264 return 0;
aacb9d31 265}
1cdffda7 266#endif
aacb9d31 267
4743319f
DB
268static int xc5000_readreg(struct xc5000_priv *priv, u16 reg, u16 *val)
269{
270 u8 buf[2] = { reg >> 8, reg & 0xff };
271 u8 bval[2] = { 0, 0 };
272 struct i2c_msg msg[2] = {
273 { .addr = priv->i2c_props.addr,
274 .flags = 0, .buf = &buf[0], .len = 2 },
275 { .addr = priv->i2c_props.addr,
276 .flags = I2C_M_RD, .buf = &bval[0], .len = 2 },
277 };
278
279 if (i2c_transfer(priv->i2c_props.adap, msg, 2) != 2) {
280 printk(KERN_WARNING "xc5000: I2C read failed\n");
281 return -EREMOTEIO;
282 }
283
284 *val = (bval[0] << 8) | bval[1];
285 return XC_RESULT_SUCCESS;
286}
287
e12671cf 288static void xc_wait(int wait_ms)
aacb9d31 289{
e12671cf 290 msleep(wait_ms);
aacb9d31
ST
291}
292
91bd625e 293static int xc5000_TunerReset(struct dvb_frontend *fe)
aacb9d31
ST
294{
295 struct xc5000_priv *priv = fe->tuner_priv;
296 int ret;
297
271ddbf7 298 dprintk(1, "%s()\n", __func__);
aacb9d31 299
d7cba043
MK
300 if (fe->callback) {
301 ret = fe->callback(((fe->dvb) && (fe->dvb->priv)) ?
30650961
MK
302 fe->dvb->priv :
303 priv->i2c_props.adap->algo_data,
d7cba043 304 DVB_FRONTEND_COMPONENT_TUNER,
30650961 305 XC5000_TUNER_RESET, 0);
91bd625e 306 if (ret) {
aacb9d31 307 printk(KERN_ERR "xc5000: reset failed\n");
91bd625e
DH
308 return XC_RESULT_RESET_FAILURE;
309 }
310 } else {
27c685a4 311 printk(KERN_ERR "xc5000: no tuner reset callback function, fatal\n");
91bd625e
DH
312 return XC_RESULT_RESET_FAILURE;
313 }
314 return XC_RESULT_SUCCESS;
aacb9d31
ST
315}
316
e12671cf 317static int xc_write_reg(struct xc5000_priv *priv, u16 regAddr, u16 i2cData)
aacb9d31 318{
e12671cf 319 u8 buf[4];
a37791c5 320 int WatchDogTimer = 100;
aacb9d31
ST
321 int result;
322
323 buf[0] = (regAddr >> 8) & 0xFF;
324 buf[1] = regAddr & 0xFF;
325 buf[2] = (i2cData >> 8) & 0xFF;
326 buf[3] = i2cData & 0xFF;
327 result = xc_send_i2c_data(priv, buf, 4);
e12671cf 328 if (result == XC_RESULT_SUCCESS) {
aacb9d31
ST
329 /* wait for busy flag to clear */
330 while ((WatchDogTimer > 0) && (result == XC_RESULT_SUCCESS)) {
1cdffda7 331 result = xc5000_readreg(priv, XREG_BUSY, (u16 *)buf);
aacb9d31 332 if (result == XC_RESULT_SUCCESS) {
4743319f
DB
333 if ((buf[0] == 0) && (buf[1] == 0)) {
334 /* busy flag cleared */
aacb9d31 335 break;
4743319f
DB
336 } else {
337 xc_wait(5); /* wait 5 ms */
338 WatchDogTimer--;
aacb9d31
ST
339 }
340 }
341 }
342 }
343 if (WatchDogTimer < 0)
344 result = XC_RESULT_I2C_WRITE_FAILURE;
345
346 return result;
347}
348
c63e87e9 349static int xc_load_i2c_sequence(struct dvb_frontend *fe, const u8 *i2c_sequence)
aacb9d31
ST
350{
351 struct xc5000_priv *priv = fe->tuner_priv;
352
353 int i, nbytes_to_send, result;
354 unsigned int len, pos, index;
e12671cf 355 u8 buf[XC_MAX_I2C_WRITE_LENGTH];
aacb9d31 356
8f3cd530
ST
357 index = 0;
358 while ((i2c_sequence[index] != 0xFF) ||
359 (i2c_sequence[index + 1] != 0xFF)) {
360 len = i2c_sequence[index] * 256 + i2c_sequence[index+1];
e12671cf 361 if (len == 0x0000) {
aacb9d31 362 /* RESET command */
91bd625e 363 result = xc5000_TunerReset(fe);
aacb9d31 364 index += 2;
e12671cf 365 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
366 return result;
367 } else if (len & 0x8000) {
368 /* WAIT command */
369 xc_wait(len & 0x7FFF);
370 index += 2;
371 } else {
372 /* Send i2c data whilst ensuring individual transactions
373 * do not exceed XC_MAX_I2C_WRITE_LENGTH bytes.
374 */
375 index += 2;
376 buf[0] = i2c_sequence[index];
377 buf[1] = i2c_sequence[index + 1];
378 pos = 2;
379 while (pos < len) {
8f3cd530
ST
380 if ((len - pos) > XC_MAX_I2C_WRITE_LENGTH - 2)
381 nbytes_to_send =
382 XC_MAX_I2C_WRITE_LENGTH;
383 else
aacb9d31 384 nbytes_to_send = (len - pos + 2);
8f3cd530
ST
385 for (i = 2; i < nbytes_to_send; i++) {
386 buf[i] = i2c_sequence[index + pos +
387 i - 2];
aacb9d31 388 }
8f3cd530
ST
389 result = xc_send_i2c_data(priv, buf,
390 nbytes_to_send);
aacb9d31 391
e12671cf 392 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
393 return result;
394
395 pos += nbytes_to_send - 2;
396 }
397 index += len;
398 }
399 }
400 return XC_RESULT_SUCCESS;
401}
402
e12671cf 403static int xc_initialize(struct xc5000_priv *priv)
aacb9d31 404{
271ddbf7 405 dprintk(1, "%s()\n", __func__);
aacb9d31
ST
406 return xc_write_reg(priv, XREG_INIT, 0);
407}
408
e12671cf
ST
409static int xc_SetTVStandard(struct xc5000_priv *priv,
410 u16 VideoMode, u16 AudioMode)
aacb9d31
ST
411{
412 int ret;
271ddbf7 413 dprintk(1, "%s(0x%04x,0x%04x)\n", __func__, VideoMode, AudioMode);
aacb9d31 414 dprintk(1, "%s() Standard = %s\n",
271ddbf7 415 __func__,
aacb9d31
ST
416 XC5000_Standard[priv->video_standard].Name);
417
418 ret = xc_write_reg(priv, XREG_VIDEO_MODE, VideoMode);
419 if (ret == XC_RESULT_SUCCESS)
420 ret = xc_write_reg(priv, XREG_AUDIO_MODE, AudioMode);
421
422 return ret;
423}
424
e12671cf 425static int xc_SetSignalSource(struct xc5000_priv *priv, u16 rf_mode)
aacb9d31 426{
271ddbf7 427 dprintk(1, "%s(%d) Source = %s\n", __func__, rf_mode,
aacb9d31
ST
428 rf_mode == XC_RF_MODE_AIR ? "ANTENNA" : "CABLE");
429
8f3cd530 430 if ((rf_mode != XC_RF_MODE_AIR) && (rf_mode != XC_RF_MODE_CABLE)) {
aacb9d31
ST
431 rf_mode = XC_RF_MODE_CABLE;
432 printk(KERN_ERR
433 "%s(), Invalid mode, defaulting to CABLE",
271ddbf7 434 __func__);
aacb9d31
ST
435 }
436 return xc_write_reg(priv, XREG_SIGNALSOURCE, rf_mode);
437}
438
e12671cf 439static const struct dvb_tuner_ops xc5000_tuner_ops;
aacb9d31 440
e12671cf
ST
441static int xc_set_RF_frequency(struct xc5000_priv *priv, u32 freq_hz)
442{
443 u16 freq_code;
aacb9d31 444
271ddbf7 445 dprintk(1, "%s(%u)\n", __func__, freq_hz);
aacb9d31 446
e12671cf
ST
447 if ((freq_hz > xc5000_tuner_ops.info.frequency_max) ||
448 (freq_hz < xc5000_tuner_ops.info.frequency_min))
aacb9d31
ST
449 return XC_RESULT_OUT_OF_RANGE;
450
e12671cf
ST
451 freq_code = (u16)(freq_hz / 15625);
452
81c4dfe7
DH
453 /* Starting in firmware version 1.1.44, Xceive recommends using the
454 FINERFREQ for all normal tuning (the doc indicates reg 0x03 should
455 only be used for fast scanning for channel lock) */
456 return xc_write_reg(priv, XREG_FINERFREQ, freq_code);
aacb9d31
ST
457}
458
aacb9d31 459
e12671cf
ST
460static int xc_set_IF_frequency(struct xc5000_priv *priv, u32 freq_khz)
461{
462 u32 freq_code = (freq_khz * 1024)/1000;
463 dprintk(1, "%s(freq_khz = %d) freq_code = 0x%x\n",
271ddbf7 464 __func__, freq_khz, freq_code);
aacb9d31 465
e12671cf 466 return xc_write_reg(priv, XREG_IF_OUT, freq_code);
aacb9d31
ST
467}
468
aacb9d31 469
e12671cf 470static int xc_get_ADC_Envelope(struct xc5000_priv *priv, u16 *adc_envelope)
aacb9d31 471{
bdd33563 472 return xc5000_readreg(priv, XREG_ADC_ENV, adc_envelope);
aacb9d31
ST
473}
474
e12671cf 475static int xc_get_frequency_error(struct xc5000_priv *priv, u32 *freq_error_hz)
aacb9d31
ST
476{
477 int result;
e12671cf 478 u16 regData;
aacb9d31
ST
479 u32 tmp;
480
bdd33563 481 result = xc5000_readreg(priv, XREG_FREQ_ERROR, &regData);
7988fc21 482 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
483 return result;
484
485 tmp = (u32)regData;
e12671cf 486 (*freq_error_hz) = (tmp * 15625) / 1000;
aacb9d31
ST
487 return result;
488}
489
e12671cf 490static int xc_get_lock_status(struct xc5000_priv *priv, u16 *lock_status)
aacb9d31 491{
bdd33563 492 return xc5000_readreg(priv, XREG_LOCK, lock_status);
aacb9d31
ST
493}
494
e12671cf
ST
495static int xc_get_version(struct xc5000_priv *priv,
496 u8 *hw_majorversion, u8 *hw_minorversion,
497 u8 *fw_majorversion, u8 *fw_minorversion)
aacb9d31 498{
e12671cf 499 u16 data;
aacb9d31
ST
500 int result;
501
bdd33563 502 result = xc5000_readreg(priv, XREG_VERSION, &data);
7988fc21 503 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
504 return result;
505
e12671cf
ST
506 (*hw_majorversion) = (data >> 12) & 0x0F;
507 (*hw_minorversion) = (data >> 8) & 0x0F;
508 (*fw_majorversion) = (data >> 4) & 0x0F;
509 (*fw_minorversion) = data & 0x0F;
aacb9d31
ST
510
511 return 0;
512}
513
bae7b7d7
DH
514static int xc_get_buildversion(struct xc5000_priv *priv, u16 *buildrev)
515{
516 return xc5000_readreg(priv, XREG_BUILD, buildrev);
517}
518
e12671cf 519static int xc_get_hsync_freq(struct xc5000_priv *priv, u32 *hsync_freq_hz)
aacb9d31 520{
e12671cf 521 u16 regData;
aacb9d31
ST
522 int result;
523
bdd33563 524 result = xc5000_readreg(priv, XREG_HSYNC_FREQ, &regData);
7988fc21 525 if (result != XC_RESULT_SUCCESS)
aacb9d31
ST
526 return result;
527
528 (*hsync_freq_hz) = ((regData & 0x0fff) * 763)/100;
529 return result;
530}
531
e12671cf 532static int xc_get_frame_lines(struct xc5000_priv *priv, u16 *frame_lines)
aacb9d31 533{
bdd33563 534 return xc5000_readreg(priv, XREG_FRAME_LINES, frame_lines);
aacb9d31
ST
535}
536
e12671cf 537static int xc_get_quality(struct xc5000_priv *priv, u16 *quality)
aacb9d31 538{
bdd33563 539 return xc5000_readreg(priv, XREG_QUALITY, quality);
aacb9d31
ST
540}
541
e12671cf 542static u16 WaitForLock(struct xc5000_priv *priv)
aacb9d31 543{
e12671cf 544 u16 lockState = 0;
aacb9d31 545 int watchDogCount = 40;
e12671cf
ST
546
547 while ((lockState == 0) && (watchDogCount > 0)) {
aacb9d31 548 xc_get_lock_status(priv, &lockState);
e12671cf 549 if (lockState != 1) {
aacb9d31
ST
550 xc_wait(5);
551 watchDogCount--;
552 }
553 }
554 return lockState;
555}
556
a78baacf
DH
557#define XC_TUNE_ANALOG 0
558#define XC_TUNE_DIGITAL 1
559static int xc_tune_channel(struct xc5000_priv *priv, u32 freq_hz, int mode)
aacb9d31
ST
560{
561 int found = 0;
562
271ddbf7 563 dprintk(1, "%s(%u)\n", __func__, freq_hz);
aacb9d31 564
e12671cf 565 if (xc_set_RF_frequency(priv, freq_hz) != XC_RESULT_SUCCESS)
aacb9d31
ST
566 return 0;
567
a78baacf
DH
568 if (mode == XC_TUNE_ANALOG) {
569 if (WaitForLock(priv) == 1)
570 found = 1;
571 }
aacb9d31
ST
572
573 return found;
574}
575
7d3d0d8d
MK
576static int xc_set_xtal(struct dvb_frontend *fe)
577{
578 struct xc5000_priv *priv = fe->tuner_priv;
579 int ret = XC_RESULT_SUCCESS;
580
581 switch (priv->chip_id) {
582 default:
583 case XC5000A:
584 /* 32.000 MHz xtal is default */
585 break;
586 case XC5000C:
587 switch (priv->xtal_khz) {
588 default:
589 case 32000:
590 /* 32.000 MHz xtal is default */
591 break;
592 case 31875:
593 /* 31.875 MHz xtal configuration */
594 ret = xc_write_reg(priv, 0x000f, 0x8081);
595 break;
596 }
597 break;
598 }
599 return ret;
600}
aacb9d31 601
8f3cd530 602static int xc5000_fwupload(struct dvb_frontend *fe)
aacb9d31
ST
603{
604 struct xc5000_priv *priv = fe->tuner_priv;
605 const struct firmware *fw;
606 int ret;
a3db60bc
MK
607 const struct xc5000_fw_cfg *desired_fw =
608 xc5000_assign_firmware(priv->chip_id);
aacb9d31 609
e12671cf
ST
610 /* request the firmware, this will block and timeout */
611 printk(KERN_INFO "xc5000: waiting for firmware upload (%s)...\n",
6fab81df 612 desired_fw->name);
e12671cf 613
6fab81df 614 ret = request_firmware(&fw, desired_fw->name,
e9785250 615 priv->i2c_props.adap->dev.parent);
aacb9d31
ST
616 if (ret) {
617 printk(KERN_ERR "xc5000: Upload failed. (file not found?)\n");
618 ret = XC_RESULT_RESET_FAILURE;
5ea60531 619 goto out;
aacb9d31 620 } else {
34a0db92 621 printk(KERN_DEBUG "xc5000: firmware read %Zu bytes.\n",
3f51451b 622 fw->size);
aacb9d31
ST
623 ret = XC_RESULT_SUCCESS;
624 }
625
6fab81df 626 if (fw->size != desired_fw->size) {
aacb9d31
ST
627 printk(KERN_ERR "xc5000: firmware incorrect size\n");
628 ret = XC_RESULT_RESET_FAILURE;
629 } else {
34a0db92 630 printk(KERN_INFO "xc5000: firmware uploading...\n");
8f3cd530 631 ret = xc_load_i2c_sequence(fe, fw->data);
7d3d0d8d
MK
632 if (XC_RESULT_SUCCESS == ret)
633 ret = xc_set_xtal(fe);
35320676
MK
634 if (XC_RESULT_SUCCESS == ret)
635 printk(KERN_INFO "xc5000: firmware upload complete...\n");
636 else
637 printk(KERN_ERR "xc5000: firmware upload failed...\n");
aacb9d31
ST
638 }
639
5ea60531 640out:
aacb9d31
ST
641 release_firmware(fw);
642 return ret;
643}
644
e12671cf 645static void xc_debug_dump(struct xc5000_priv *priv)
aacb9d31 646{
e12671cf
ST
647 u16 adc_envelope;
648 u32 freq_error_hz = 0;
649 u16 lock_status;
650 u32 hsync_freq_hz = 0;
651 u16 frame_lines;
652 u16 quality;
653 u8 hw_majorversion = 0, hw_minorversion = 0;
654 u8 fw_majorversion = 0, fw_minorversion = 0;
bae7b7d7 655 u16 fw_buildversion = 0;
aacb9d31
ST
656
657 /* Wait for stats to stabilize.
658 * Frame Lines needs two frame times after initial lock
659 * before it is valid.
660 */
e12671cf 661 xc_wait(100);
aacb9d31 662
e12671cf
ST
663 xc_get_ADC_Envelope(priv, &adc_envelope);
664 dprintk(1, "*** ADC envelope (0-1023) = %d\n", adc_envelope);
aacb9d31 665
e12671cf
ST
666 xc_get_frequency_error(priv, &freq_error_hz);
667 dprintk(1, "*** Frequency error = %d Hz\n", freq_error_hz);
aacb9d31 668
e12671cf
ST
669 xc_get_lock_status(priv, &lock_status);
670 dprintk(1, "*** Lock status (0-Wait, 1-Locked, 2-No-signal) = %d\n",
aacb9d31
ST
671 lock_status);
672
673 xc_get_version(priv, &hw_majorversion, &hw_minorversion,
e12671cf 674 &fw_majorversion, &fw_minorversion);
bae7b7d7
DH
675 xc_get_buildversion(priv, &fw_buildversion);
676 dprintk(1, "*** HW: V%02x.%02x, FW: V%02x.%02x.%04x\n",
aacb9d31 677 hw_majorversion, hw_minorversion,
bae7b7d7 678 fw_majorversion, fw_minorversion, fw_buildversion);
aacb9d31 679
e12671cf
ST
680 xc_get_hsync_freq(priv, &hsync_freq_hz);
681 dprintk(1, "*** Horizontal sync frequency = %d Hz\n", hsync_freq_hz);
aacb9d31 682
e12671cf
ST
683 xc_get_frame_lines(priv, &frame_lines);
684 dprintk(1, "*** Frame lines = %d\n", frame_lines);
aacb9d31 685
e12671cf
ST
686 xc_get_quality(priv, &quality);
687 dprintk(1, "*** Quality (0:<8dB, 7:>56dB) = %d\n", quality);
aacb9d31
ST
688}
689
14d24d14 690static int xc5000_set_params(struct dvb_frontend *fe)
aacb9d31 691{
fd66c45d 692 int ret, b;
aacb9d31 693 struct xc5000_priv *priv = fe->tuner_priv;
fd66c45d
MCC
694 u32 bw = fe->dtv_property_cache.bandwidth_hz;
695 u32 freq = fe->dtv_property_cache.frequency;
696 u32 delsys = fe->dtv_property_cache.delivery_system;
aacb9d31 697
760c466c
DH
698 if (xc5000_is_firmware_loaded(fe) != XC_RESULT_SUCCESS) {
699 if (xc_load_fw_and_init_tuner(fe) != XC_RESULT_SUCCESS) {
700 dprintk(1, "Unable to load firmware and init tuner\n");
701 return -EINVAL;
702 }
703 }
8e4c6797 704
fd66c45d 705 dprintk(1, "%s() frequency=%d (Hz)\n", __func__, freq);
aacb9d31 706
fd66c45d
MCC
707 switch (delsys) {
708 case SYS_ATSC:
709 dprintk(1, "%s() VSB modulation\n", __func__);
710 priv->rf_mode = XC_RF_MODE_AIR;
711 priv->freq_hz = freq - 1750000;
fd66c45d
MCC
712 priv->video_standard = DTV6;
713 break;
714 case SYS_DVBC_ANNEX_B:
715 dprintk(1, "%s() QAM modulation\n", __func__);
716 priv->rf_mode = XC_RF_MODE_CABLE;
717 priv->freq_hz = freq - 1750000;
fd66c45d
MCC
718 priv->video_standard = DTV6;
719 break;
720 case SYS_DVBT:
721 case SYS_DVBT2:
6c99080d 722 dprintk(1, "%s() OFDM\n", __func__);
fd66c45d
MCC
723 switch (bw) {
724 case 6000000:
6c99080d 725 priv->video_standard = DTV6;
fd66c45d 726 priv->freq_hz = freq - 1750000;
6c99080d 727 break;
fd66c45d 728 case 7000000:
0433cd28 729 priv->video_standard = DTV7;
fd66c45d 730 priv->freq_hz = freq - 2250000;
0433cd28 731 break;
fd66c45d 732 case 8000000:
6c99080d 733 priv->video_standard = DTV8;
fd66c45d 734 priv->freq_hz = freq - 2750000;
6c99080d
DW
735 break;
736 default:
737 printk(KERN_ERR "xc5000 bandwidth not set!\n");
738 return -EINVAL;
739 }
aacb9d31 740 priv->rf_mode = XC_RF_MODE_AIR;
fd66c45d
MCC
741 case SYS_DVBC_ANNEX_A:
742 case SYS_DVBC_ANNEX_C:
743 dprintk(1, "%s() QAM modulation\n", __func__);
744 priv->rf_mode = XC_RF_MODE_CABLE;
745 if (bw <= 6000000) {
fd66c45d
MCC
746 priv->video_standard = DTV6;
747 priv->freq_hz = freq - 1750000;
748 b = 6;
749 } else if (bw <= 7000000) {
fd66c45d
MCC
750 priv->video_standard = DTV7;
751 priv->freq_hz = freq - 2250000;
752 b = 7;
753 } else {
fd66c45d
MCC
754 priv->video_standard = DTV7_8;
755 priv->freq_hz = freq - 2750000;
756 b = 8;
e80edce1 757 }
fd66c45d
MCC
758 dprintk(1, "%s() Bandwidth %dMHz (%d)\n", __func__,
759 b, bw);
760 break;
761 default:
762 printk(KERN_ERR "xc5000: delivery system is not supported!\n");
aacb9d31
ST
763 return -EINVAL;
764 }
765
fd66c45d
MCC
766 dprintk(1, "%s() frequency=%d (compensated to %d)\n",
767 __func__, freq, priv->freq_hz);
aacb9d31 768
e12671cf
ST
769 ret = xc_SetSignalSource(priv, priv->rf_mode);
770 if (ret != XC_RESULT_SUCCESS) {
771 printk(KERN_ERR
772 "xc5000: xc_SetSignalSource(%d) failed\n",
773 priv->rf_mode);
774 return -EREMOTEIO;
775 }
aacb9d31 776
e12671cf 777 ret = xc_SetTVStandard(priv,
aacb9d31
ST
778 XC5000_Standard[priv->video_standard].VideoMode,
779 XC5000_Standard[priv->video_standard].AudioMode);
e12671cf
ST
780 if (ret != XC_RESULT_SUCCESS) {
781 printk(KERN_ERR "xc5000: xc_SetTVStandard failed\n");
782 return -EREMOTEIO;
783 }
784
2a6003c2 785 ret = xc_set_IF_frequency(priv, priv->if_khz);
e12671cf
ST
786 if (ret != XC_RESULT_SUCCESS) {
787 printk(KERN_ERR "xc5000: xc_Set_IF_frequency(%d) failed\n",
2a6003c2 788 priv->if_khz);
e12671cf
ST
789 return -EIO;
790 }
791
724dcbfa
DB
792 xc_write_reg(priv, XREG_OUTPUT_AMP, 0x8a);
793
a78baacf 794 xc_tune_channel(priv, priv->freq_hz, XC_TUNE_DIGITAL);
aacb9d31 795
e12671cf
ST
796 if (debug)
797 xc_debug_dump(priv);
aacb9d31 798
c6f56e7d
MCC
799 priv->bandwidth = bw;
800
aacb9d31
ST
801 return 0;
802}
803
e470d817
ST
804static int xc5000_is_firmware_loaded(struct dvb_frontend *fe)
805{
806 struct xc5000_priv *priv = fe->tuner_priv;
807 int ret;
808 u16 id;
809
810 ret = xc5000_readreg(priv, XREG_PRODUCT_ID, &id);
811 if (ret == XC_RESULT_SUCCESS) {
812 if (id == XC_PRODUCT_ID_FW_NOT_LOADED)
813 ret = XC_RESULT_RESET_FAILURE;
814 else
815 ret = XC_RESULT_SUCCESS;
816 }
817
818 dprintk(1, "%s() returns %s id = 0x%x\n", __func__,
819 ret == XC_RESULT_SUCCESS ? "True" : "False", id);
820 return ret;
821}
822
d7009cdc 823static int xc5000_set_tv_freq(struct dvb_frontend *fe,
27c685a4
ST
824 struct analog_parameters *params)
825{
826 struct xc5000_priv *priv = fe->tuner_priv;
827 int ret;
828
27c685a4 829 dprintk(1, "%s() frequency=%d (in units of 62.5khz)\n",
271ddbf7 830 __func__, params->frequency);
27c685a4 831
1fab14ed
MCC
832 /* Fix me: it could be air. */
833 priv->rf_mode = params->mode;
834 if (params->mode > XC_RF_MODE_CABLE)
835 priv->rf_mode = XC_RF_MODE_CABLE;
27c685a4
ST
836
837 /* params->frequency is in units of 62.5khz */
838 priv->freq_hz = params->frequency * 62500;
839
840 /* FIX ME: Some video standards may have several possible audio
841 standards. We simply default to one of them here.
842 */
8f3cd530 843 if (params->std & V4L2_STD_MN) {
27c685a4
ST
844 /* default to BTSC audio standard */
845 priv->video_standard = MN_NTSC_PAL_BTSC;
846 goto tune_channel;
847 }
848
8f3cd530 849 if (params->std & V4L2_STD_PAL_BG) {
27c685a4
ST
850 /* default to NICAM audio standard */
851 priv->video_standard = BG_PAL_NICAM;
852 goto tune_channel;
853 }
854
8f3cd530 855 if (params->std & V4L2_STD_PAL_I) {
27c685a4
ST
856 /* default to NICAM audio standard */
857 priv->video_standard = I_PAL_NICAM;
858 goto tune_channel;
859 }
860
8f3cd530 861 if (params->std & V4L2_STD_PAL_DK) {
27c685a4
ST
862 /* default to NICAM audio standard */
863 priv->video_standard = DK_PAL_NICAM;
864 goto tune_channel;
865 }
866
8f3cd530 867 if (params->std & V4L2_STD_SECAM_DK) {
27c685a4
ST
868 /* default to A2 DK1 audio standard */
869 priv->video_standard = DK_SECAM_A2DK1;
870 goto tune_channel;
871 }
872
8f3cd530 873 if (params->std & V4L2_STD_SECAM_L) {
27c685a4
ST
874 priv->video_standard = L_SECAM_NICAM;
875 goto tune_channel;
876 }
877
8f3cd530 878 if (params->std & V4L2_STD_SECAM_LC) {
27c685a4
ST
879 priv->video_standard = LC_SECAM_NICAM;
880 goto tune_channel;
881 }
882
883tune_channel:
884 ret = xc_SetSignalSource(priv, priv->rf_mode);
885 if (ret != XC_RESULT_SUCCESS) {
8f3cd530 886 printk(KERN_ERR
27c685a4
ST
887 "xc5000: xc_SetSignalSource(%d) failed\n",
888 priv->rf_mode);
889 return -EREMOTEIO;
890 }
891
892 ret = xc_SetTVStandard(priv,
893 XC5000_Standard[priv->video_standard].VideoMode,
894 XC5000_Standard[priv->video_standard].AudioMode);
895 if (ret != XC_RESULT_SUCCESS) {
896 printk(KERN_ERR "xc5000: xc_SetTVStandard failed\n");
897 return -EREMOTEIO;
898 }
899
724dcbfa
DB
900 xc_write_reg(priv, XREG_OUTPUT_AMP, 0x09);
901
a78baacf 902 xc_tune_channel(priv, priv->freq_hz, XC_TUNE_ANALOG);
27c685a4
ST
903
904 if (debug)
905 xc_debug_dump(priv);
906
907 return 0;
908}
909
d7009cdc
BILDB
910static int xc5000_set_radio_freq(struct dvb_frontend *fe,
911 struct analog_parameters *params)
912{
913 struct xc5000_priv *priv = fe->tuner_priv;
914 int ret = -EINVAL;
496e9057 915 u8 radio_input;
d7009cdc
BILDB
916
917 dprintk(1, "%s() frequency=%d (in units of khz)\n",
918 __func__, params->frequency);
919
496e9057
DH
920 if (priv->radio_input == XC5000_RADIO_NOT_CONFIGURED) {
921 dprintk(1, "%s() radio input not configured\n", __func__);
922 return -EINVAL;
923 }
924
925 if (priv->radio_input == XC5000_RADIO_FM1)
926 radio_input = FM_Radio_INPUT1;
927 else if (priv->radio_input == XC5000_RADIO_FM2)
928 radio_input = FM_Radio_INPUT2;
724dcbfa
DB
929 else if (priv->radio_input == XC5000_RADIO_FM1_MONO)
930 radio_input = FM_Radio_INPUT1_MONO;
496e9057
DH
931 else {
932 dprintk(1, "%s() unknown radio input %d\n", __func__,
933 priv->radio_input);
934 return -EINVAL;
935 }
936
d7009cdc
BILDB
937 priv->freq_hz = params->frequency * 125 / 2;
938
939 priv->rf_mode = XC_RF_MODE_AIR;
940
496e9057
DH
941 ret = xc_SetTVStandard(priv, XC5000_Standard[radio_input].VideoMode,
942 XC5000_Standard[radio_input].AudioMode);
d7009cdc
BILDB
943
944 if (ret != XC_RESULT_SUCCESS) {
945 printk(KERN_ERR "xc5000: xc_SetTVStandard failed\n");
946 return -EREMOTEIO;
947 }
948
949 ret = xc_SetSignalSource(priv, priv->rf_mode);
950 if (ret != XC_RESULT_SUCCESS) {
951 printk(KERN_ERR
952 "xc5000: xc_SetSignalSource(%d) failed\n",
953 priv->rf_mode);
954 return -EREMOTEIO;
955 }
956
724dcbfa
DB
957 if ((priv->radio_input == XC5000_RADIO_FM1) ||
958 (priv->radio_input == XC5000_RADIO_FM2))
959 xc_write_reg(priv, XREG_OUTPUT_AMP, 0x09);
960 else if (priv->radio_input == XC5000_RADIO_FM1_MONO)
961 xc_write_reg(priv, XREG_OUTPUT_AMP, 0x06);
962
d7009cdc
BILDB
963 xc_tune_channel(priv, priv->freq_hz, XC_TUNE_ANALOG);
964
965 return 0;
966}
967
968static int xc5000_set_analog_params(struct dvb_frontend *fe,
969 struct analog_parameters *params)
970{
971 struct xc5000_priv *priv = fe->tuner_priv;
972 int ret = -EINVAL;
973
974 if (priv->i2c_props.adap == NULL)
975 return -EINVAL;
976
760c466c
DH
977 if (xc5000_is_firmware_loaded(fe) != XC_RESULT_SUCCESS) {
978 if (xc_load_fw_and_init_tuner(fe) != XC_RESULT_SUCCESS) {
979 dprintk(1, "Unable to load firmware and init tuner\n");
980 return -EINVAL;
981 }
982 }
d7009cdc
BILDB
983
984 switch (params->mode) {
985 case V4L2_TUNER_RADIO:
986 ret = xc5000_set_radio_freq(fe, params);
987 break;
988 case V4L2_TUNER_ANALOG_TV:
989 case V4L2_TUNER_DIGITAL_TV:
990 ret = xc5000_set_tv_freq(fe, params);
991 break;
992 }
993
994 return ret;
995}
996
997
aacb9d31
ST
998static int xc5000_get_frequency(struct dvb_frontend *fe, u32 *freq)
999{
1000 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 1001 dprintk(1, "%s()\n", __func__);
e12671cf 1002 *freq = priv->freq_hz;
aacb9d31
ST
1003 return 0;
1004}
1005
35621030
MCC
1006static int xc5000_get_if_frequency(struct dvb_frontend *fe, u32 *freq)
1007{
1008 struct xc5000_priv *priv = fe->tuner_priv;
1009 dprintk(1, "%s()\n", __func__);
1010 *freq = priv->if_khz * 1000;
1011 return 0;
1012}
1013
aacb9d31
ST
1014static int xc5000_get_bandwidth(struct dvb_frontend *fe, u32 *bw)
1015{
1016 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 1017 dprintk(1, "%s()\n", __func__);
27c685a4 1018
aacb9d31
ST
1019 *bw = priv->bandwidth;
1020 return 0;
1021}
1022
1023static int xc5000_get_status(struct dvb_frontend *fe, u32 *status)
1024{
1025 struct xc5000_priv *priv = fe->tuner_priv;
e12671cf 1026 u16 lock_status = 0;
aacb9d31
ST
1027
1028 xc_get_lock_status(priv, &lock_status);
1029
271ddbf7 1030 dprintk(1, "%s() lock_status = 0x%08x\n", __func__, lock_status);
aacb9d31
ST
1031
1032 *status = lock_status;
1033
1034 return 0;
1035}
1036
e12671cf 1037static int xc_load_fw_and_init_tuner(struct dvb_frontend *fe)
aacb9d31
ST
1038{
1039 struct xc5000_priv *priv = fe->tuner_priv;
27c685a4 1040 int ret = 0;
aacb9d31 1041
e470d817 1042 if (xc5000_is_firmware_loaded(fe) != XC_RESULT_SUCCESS) {
aacb9d31 1043 ret = xc5000_fwupload(fe);
e12671cf
ST
1044 if (ret != XC_RESULT_SUCCESS)
1045 return ret;
aacb9d31
ST
1046 }
1047
1048 /* Start the tuner self-calibration process */
1049 ret |= xc_initialize(priv);
1050
1051 /* Wait for calibration to complete.
1052 * We could continue but XC5000 will clock stretch subsequent
1053 * I2C transactions until calibration is complete. This way we
1054 * don't have to rely on clock stretching working.
1055 */
8f3cd530 1056 xc_wait(100);
aacb9d31
ST
1057
1058 /* Default to "CABLE" mode */
1059 ret |= xc_write_reg(priv, XREG_SIGNALSOURCE, XC_RF_MODE_CABLE);
1060
1061 return ret;
1062}
1063
e12671cf
ST
1064static int xc5000_sleep(struct dvb_frontend *fe)
1065{
27c685a4
ST
1066 int ret;
1067
271ddbf7 1068 dprintk(1, "%s()\n", __func__);
e12671cf 1069
b6bd5eb8
DH
1070 /* Avoid firmware reload on slow devices */
1071 if (no_poweroff)
1072 return 0;
1073
7f05b530
DH
1074 /* According to Xceive technical support, the "powerdown" register
1075 was removed in newer versions of the firmware. The "supported"
1076 way to sleep the tuner is to pull the reset pin low for 10ms */
1077 ret = xc5000_TunerReset(fe);
8f3cd530 1078 if (ret != XC_RESULT_SUCCESS) {
27c685a4
ST
1079 printk(KERN_ERR
1080 "xc5000: %s() unable to shutdown tuner\n",
271ddbf7 1081 __func__);
27c685a4 1082 return -EREMOTEIO;
8f3cd530 1083 } else
27c685a4 1084 return XC_RESULT_SUCCESS;
e12671cf
ST
1085}
1086
aacb9d31
ST
1087static int xc5000_init(struct dvb_frontend *fe)
1088{
1089 struct xc5000_priv *priv = fe->tuner_priv;
271ddbf7 1090 dprintk(1, "%s()\n", __func__);
aacb9d31 1091
e12671cf
ST
1092 if (xc_load_fw_and_init_tuner(fe) != XC_RESULT_SUCCESS) {
1093 printk(KERN_ERR "xc5000: Unable to initialise tuner\n");
1094 return -EREMOTEIO;
1095 }
1096
1097 if (debug)
1098 xc_debug_dump(priv);
aacb9d31
ST
1099
1100 return 0;
1101}
1102
1103static int xc5000_release(struct dvb_frontend *fe)
1104{
89fd2854
MK
1105 struct xc5000_priv *priv = fe->tuner_priv;
1106
271ddbf7 1107 dprintk(1, "%s()\n", __func__);
89fd2854
MK
1108
1109 mutex_lock(&xc5000_list_mutex);
1110
1111 if (priv)
1112 hybrid_tuner_release_state(priv);
1113
1114 mutex_unlock(&xc5000_list_mutex);
1115
aacb9d31 1116 fe->tuner_priv = NULL;
89fd2854 1117
aacb9d31
ST
1118 return 0;
1119}
1120
724dcbfa
DB
1121static int xc5000_set_config(struct dvb_frontend *fe, void *priv_cfg)
1122{
1123 struct xc5000_priv *priv = fe->tuner_priv;
1124 struct xc5000_config *p = priv_cfg;
1125
1126 dprintk(1, "%s()\n", __func__);
1127
1128 if (p->if_khz)
1129 priv->if_khz = p->if_khz;
1130
1131 if (p->radio_input)
1132 priv->radio_input = p->radio_input;
1133
1134 return 0;
1135}
1136
1137
aacb9d31
ST
1138static const struct dvb_tuner_ops xc5000_tuner_ops = {
1139 .info = {
1140 .name = "Xceive XC5000",
1141 .frequency_min = 1000000,
1142 .frequency_max = 1023000000,
1143 .frequency_step = 50000,
1144 },
1145
27c685a4
ST
1146 .release = xc5000_release,
1147 .init = xc5000_init,
1148 .sleep = xc5000_sleep,
aacb9d31 1149
724dcbfa 1150 .set_config = xc5000_set_config,
27c685a4
ST
1151 .set_params = xc5000_set_params,
1152 .set_analog_params = xc5000_set_analog_params,
1153 .get_frequency = xc5000_get_frequency,
35621030 1154 .get_if_frequency = xc5000_get_if_frequency,
27c685a4
ST
1155 .get_bandwidth = xc5000_get_bandwidth,
1156 .get_status = xc5000_get_status
aacb9d31
ST
1157};
1158
48723543
MK
1159struct dvb_frontend *xc5000_attach(struct dvb_frontend *fe,
1160 struct i2c_adapter *i2c,
2e4e98e7 1161 const struct xc5000_config *cfg)
aacb9d31
ST
1162{
1163 struct xc5000_priv *priv = NULL;
89fd2854 1164 int instance;
aacb9d31
ST
1165 u16 id = 0;
1166
89fd2854
MK
1167 dprintk(1, "%s(%d-%04x)\n", __func__,
1168 i2c ? i2c_adapter_id(i2c) : -1,
1169 cfg ? cfg->i2c_address : -1);
aacb9d31 1170
89fd2854 1171 mutex_lock(&xc5000_list_mutex);
aacb9d31 1172
89fd2854
MK
1173 instance = hybrid_tuner_request_state(struct xc5000_priv, priv,
1174 hybrid_tuner_instance_list,
1175 i2c, cfg->i2c_address, "xc5000");
1176 switch (instance) {
1177 case 0:
1178 goto fail;
1179 break;
1180 case 1:
1181 /* new tuner instance */
c6f56e7d 1182 priv->bandwidth = 6000000;
89fd2854
MK
1183 fe->tuner_priv = priv;
1184 break;
1185 default:
1186 /* existing tuner instance */
1187 fe->tuner_priv = priv;
1188 break;
1189 }
aacb9d31 1190
ea227863
DH
1191 if (priv->if_khz == 0) {
1192 /* If the IF hasn't been set yet, use the value provided by
1193 the caller (occurs in hybrid devices where the analog
1194 call to xc5000_attach occurs before the digital side) */
1195 priv->if_khz = cfg->if_khz;
1196 }
1197
7d3d0d8d
MK
1198 if (priv->xtal_khz == 0)
1199 priv->xtal_khz = cfg->xtal_khz;
1200
496e9057
DH
1201 if (priv->radio_input == 0)
1202 priv->radio_input = cfg->radio_input;
1203
6fab81df 1204 /* don't override chip id if it's already been set
76efb0ba 1205 unless explicitly specified */
6fab81df
MK
1206 if ((priv->chip_id == 0) || (cfg->chip_id))
1207 /* use default chip id if none specified, set to 0 so
1208 it can be overridden if this is a hybrid driver */
1209 priv->chip_id = (cfg->chip_id) ? cfg->chip_id : 0;
76efb0ba 1210
27c685a4
ST
1211 /* Check if firmware has been loaded. It is possible that another
1212 instance of the driver has loaded the firmware.
1213 */
7988fc21 1214 if (xc5000_readreg(priv, XREG_PRODUCT_ID, &id) != XC_RESULT_SUCCESS)
89fd2854 1215 goto fail;
aacb9d31 1216
8f3cd530 1217 switch (id) {
27c685a4
ST
1218 case XC_PRODUCT_ID_FW_LOADED:
1219 printk(KERN_INFO
1220 "xc5000: Successfully identified at address 0x%02x\n",
1221 cfg->i2c_address);
1222 printk(KERN_INFO
1223 "xc5000: Firmware has been loaded previously\n");
27c685a4
ST
1224 break;
1225 case XC_PRODUCT_ID_FW_NOT_LOADED:
1226 printk(KERN_INFO
1227 "xc5000: Successfully identified at address 0x%02x\n",
1228 cfg->i2c_address);
1229 printk(KERN_INFO
1230 "xc5000: Firmware has not been loaded previously\n");
27c685a4
ST
1231 break;
1232 default:
aacb9d31
ST
1233 printk(KERN_ERR
1234 "xc5000: Device not found at addr 0x%02x (0x%x)\n",
1235 cfg->i2c_address, id);
89fd2854 1236 goto fail;
aacb9d31
ST
1237 }
1238
89fd2854
MK
1239 mutex_unlock(&xc5000_list_mutex);
1240
aacb9d31
ST
1241 memcpy(&fe->ops.tuner_ops, &xc5000_tuner_ops,
1242 sizeof(struct dvb_tuner_ops));
1243
aacb9d31 1244 return fe;
89fd2854
MK
1245fail:
1246 mutex_unlock(&xc5000_list_mutex);
1247
1248 xc5000_release(fe);
1249 return NULL;
aacb9d31
ST
1250}
1251EXPORT_SYMBOL(xc5000_attach);
1252
1253MODULE_AUTHOR("Steven Toth");
e12671cf 1254MODULE_DESCRIPTION("Xceive xc5000 silicon tuner driver");
aacb9d31 1255MODULE_LICENSE("GPL");