#include <sys/param.h>
#include <sys/systm.h>
#include <sys/kernel.h>
#include <sys/bus.h>
#include <sys/event.h>
#include <bus/pci/pcivar.h>
#include <dev/video/meteor/ioctl_meteor.h>
#include <dev/video/bktr/ioctl_bt848.h>
#include <dev/video/bktr/bktr_reg.h>
#include <dev/video/bktr/bktr_tuner.h>
#include <dev/video/bktr/bktr_card.h>
#include <dev/video/bktr/bktr_core.h>
#if defined( TUNER_AFC )
#define AFC_DELAY 10000
#define AFC_BITS 0x07
#define AFC_FREQ_MINUS_125 0x00
#define AFC_FREQ_MINUS_62 0x01
#define AFC_FREQ_CENTERED 0x02
#define AFC_FREQ_PLUS_62 0x03
#define AFC_FREQ_PLUS_125 0x04
#define AFC_MAX_STEP (5 * FREQFACTOR)
#endif
#define TTYPE_XXX 0
#define TTYPE_NTSC 1
#define TTYPE_NTSC_J 2
#define TTYPE_PAL 3
#define TTYPE_PAL_M 4
#define TTYPE_PAL_N 5
#define TTYPE_SECAM 6
#define TSA552x_CB_MSB (0x80)
#define TSA552x_CB_CP (1<<6)
#define TSA552x_CB_T2 (1<<5)
#define TSA552x_CB_T1 (1<<4)
#define TSA552x_CB_T0 (1<<3)
#define TSA552x_CB_RSA (1<<2)
#define TSA552x_CB_RSB (1<<1)
#define TSA552x_CB_OS (1<<0)
#define TSA552x_RADIO (TSA552x_CB_MSB | \
TSA552x_CB_T0)
#define TSA552x_FCONTROL (TSA552x_CB_MSB | \
TSA552x_CB_CP | \
TSA552x_CB_T0 | \
TSA552x_CB_RSA | \
TSA552x_CB_RSB)
#define TSA552x_SCONTROL (TSA552x_CB_MSB | \
TSA552x_CB_T0 | \
TSA552x_CB_RSA | \
TSA552x_CB_RSB)
#define TSCH5_FCONTROL 0x82
#define TSCH5_RADIO 0x86
#define TSBH1_FCONTROL 0xce
static void mt2032_set_tv_freq(bktr_ptr_t bktr, unsigned int freq);
static const struct TUNER tuners[] = {
{ "<no>",
TTYPE_XXX,
{ 0x00,
0x00,
0x00,
0x00 },
{ 0x00, 0x00 },
{ 0x00, 0x00, 0x00,0x00} },
{ "Temic NTSC",
TTYPE_NTSC,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00},
{ 0x02, 0x04, 0x01, 0x00 } },
{ "Temic PAL",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0x02, 0x04, 0x01, 0x00 } },
{ "Temic SECAM",
TTYPE_SECAM,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0x02, 0x04, 0x01,0x00 } },
{ "Philips NTSC",
TTYPE_NTSC,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30, 0x00 } },
{ "Philips PAL",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30, 0x00 } },
{ "Philips SECAM",
TTYPE_SECAM,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa7, 0x97, 0x37, 0x00 } },
{ "Temic PAL I",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0x02, 0x04, 0x01,0x00 } },
{ "Philips PAL I",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30,0x00 } },
{ "Philips FR1236 NTSC FM",
TTYPE_NTSC,
{ TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_RADIO },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30,0xa4 } },
{ "Philips FR1216 PAL FM" ,
TTYPE_PAL,
{ TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_RADIO },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30, 0xa4 } },
{ "Philips FR1236 SECAM FM",
TTYPE_SECAM,
{ TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_FCONTROL,
TSA552x_RADIO },
{ 0x00, 0x00 },
{ 0xa7, 0x97, 0x37, 0xa4 } },
{ "ALPS TSCH5 NTSC FM",
TTYPE_NTSC,
{ TSCH5_FCONTROL,
TSCH5_FCONTROL,
TSCH5_FCONTROL,
TSCH5_RADIO },
{ 0x00, 0x00 },
{ 0x14, 0x12, 0x11, 0x04 } },
{ "ALPS TSBH1 NTSC",
TTYPE_NTSC,
{ TSBH1_FCONTROL,
TSBH1_FCONTROL,
TSBH1_FCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0x01, 0x02, 0x08, 0x00 } },
{ "MT2032",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30, 0x00 } },
{ "LG TPI8PSB12P PAL",
TTYPE_PAL,
{ TSA552x_SCONTROL,
TSA552x_SCONTROL,
TSA552x_SCONTROL,
0x00 },
{ 0x00, 0x00 },
{ 0xa0, 0x90, 0x30, 0x8e } },
};
#define FREQFACTOR 16
#define OFFSET 6.00
static int nabcst[] = {
83, (int)( 45.75 * FREQFACTOR), 0,
14, (int)(471.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
7, (int)(175.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
5, (int)( 77.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
2, (int)( 55.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef OFFSET
#define OFFSET 6.00
static int irccable[] = {
116, (int)( 45.75 * FREQFACTOR), 0,
100, (int)(649.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
95, (int)( 91.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
23, (int)(217.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
14, (int)(121.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
7, (int)(175.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
5, (int)( 77.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
2, (int)( 55.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef OFFSET
#define OFFSET 6.00
static int hrccable[] = {
116, (int)( 45.75 * FREQFACTOR), 0,
100, (int)(648.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
95, (int)( 90.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
23, (int)(216.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
14, (int)(120.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
7, (int)(174.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
5, (int)( 78.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
2, (int)( 54.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef OFFSET
static int weurope[] = {
121, (int)( 38.90 * FREQFACTOR), 0,
100, (int)(303.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
90, (int)(231.25 * FREQFACTOR), (int)(7.00 * FREQFACTOR),
80, (int)(105.25 * FREQFACTOR), (int)(7.00 * FREQFACTOR),
74, (int)( 69.25 * FREQFACTOR), (int)(7.00 * FREQFACTOR),
21, (int)(471.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
17, (int)(183.25 * FREQFACTOR), (int)(9.00 * FREQFACTOR),
16, (int)(175.25 * FREQFACTOR), (int)(9.00 * FREQFACTOR),
15, (int)(82.25 * FREQFACTOR), (int)(8.50 * FREQFACTOR),
13, (int)(53.75 * FREQFACTOR), (int)(8.50 * FREQFACTOR),
5, (int)(175.25 * FREQFACTOR), (int)(7.00 * FREQFACTOR),
2, (int)(48.25 * FREQFACTOR), (int)(7.00 * FREQFACTOR),
0
};
#define OFFSET 6.00
#define IF_FREQ 45.75
static int jpnbcst[] = {
62, (int)(IF_FREQ * FREQFACTOR), 0,
13, (int)(471.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
8, (int)(193.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
4, (int)(171.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
1, (int)( 91.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef IF_FREQ
#undef OFFSET
#define OFFSET 6.00
#define IF_FREQ 45.75
static int jpncable[] = {
63, (int)(IF_FREQ * FREQFACTOR), 0,
23, (int)(223.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
22, (int)(165.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
13, (int)(109.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
8, (int)(193.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
4, (int)(171.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
1, (int)( 91.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef IF_FREQ
#undef OFFSET
#define IF_FREQ 38.90
static int xussr[] = {
107, (int)(IF_FREQ * FREQFACTOR), 0,
78, (int)(231.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
70, (int)(111.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
35, (int)(583.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
21, (int)(471.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
6, (int)(175.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
3, (int)( 77.25 * FREQFACTOR), (int)(8.00 * FREQFACTOR),
1, (int)( 49.75 * FREQFACTOR), (int)(9.50 * FREQFACTOR),
0
};
#undef IF_FREQ
#define OFFSET 7.00
#define IF_FREQ 38.90
static int australia[] = {
83, (int)(IF_FREQ * FREQFACTOR), 0,
28, (int)(527.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
10, (int)(209.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
6, (int)(175.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
4, (int)( 95.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
3, (int)( 86.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
1, (int)( 57.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef OFFSET
#undef IF_FREQ
#define OFFSET 8.00
#define IF_FREQ 38.90
static int france[] = {
69, (int)(IF_FREQ * FREQFACTOR), 0,
21, (int)(471.25 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
5, (int)(176.00 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
4, (int)( 63.75 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
3, (int)( 60.50 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
1, (int)( 47.75 * FREQFACTOR), (int)(OFFSET * FREQFACTOR),
0
};
#undef OFFSET
#undef IF_FREQ
static struct {
int *ptr;
char name[BT848_MAX_CHNLSET_NAME_LEN];
} freqTable[] = {
{NULL, ""},
{nabcst, "nabcst"},
{irccable, "cableirc"},
{hrccable, "cablehrc"},
{weurope, "weurope"},
{jpnbcst, "jpnbcst"},
{jpncable, "jpncable"},
{xussr, "xussr"},
{australia, "australia"},
{france, "france"},
};
#define TBL_CHNL freqTable[ bktr->tuner.chnlset ].ptr[ x ]
#define TBL_BASE_FREQ freqTable[ bktr->tuner.chnlset ].ptr[ x + 1 ]
#define TBL_OFFSET freqTable[ bktr->tuner.chnlset ].ptr[ x + 2 ]
static int
frequency_lookup( bktr_ptr_t bktr, int channel )
{
int x;
x = 0;
if ( channel > TBL_CHNL )
return( -1 );
for ( x = 3; TBL_CHNL; x += 3 ) {
if ( channel >= TBL_CHNL ) {
return( TBL_BASE_FREQ +
((channel - TBL_CHNL) * TBL_OFFSET) );
}
}
return( -1 );
}
#undef TBL_OFFSET
#undef TBL_BASE_FREQ
#undef TBL_CHNL
#define TBL_IF (bktr->format_params == BT848_IFORM_F_NTSCJ || \
bktr->format_params == BT848_IFORM_F_NTSCM ? \
nabcst[1] : weurope[1])
void select_tuner( bktr_ptr_t bktr, int tuner_type ) {
if (tuner_type < Bt848_MAX_TUNER) {
bktr->card.tuner = &tuners[ tuner_type ];
} else {
bktr->card.tuner = NULL;
}
}
#define LOW_BAND 0
#define MID_BAND 1
#define HIGH_BAND 2
#define FM_RADIO_BAND 3
#define STATUSBIT_COLD 0x80
#define STATUSBIT_LOCK 0x40
#define STATUSBIT_TV 0x20
#define STATUSBIT_STEREO 0x10
#define STATUSBIT_ADC 0x07
int
tv_freq( bktr_ptr_t bktr, int frequency, int type )
{
const struct TUNER* tuner;
u_char addr;
u_char control;
u_char band;
int N;
int band_select = 0;
#if defined( TEST_TUNER_AFC )
int oldFrequency, afcDelta;
#endif
tuner = bktr->card.tuner;
if ( tuner == NULL )
return( -1 );
if (tuner == &tuners[TUNER_MT2032]) {
mt2032_set_tv_freq(bktr, frequency);
return 0;
}
if (type == TV_FREQUENCY) {
if ( frequency < (160 * FREQFACTOR ) )
band_select = LOW_BAND;
else if ( frequency < (454 * FREQFACTOR ) )
band_select = MID_BAND;
else
band_select = HIGH_BAND;
#if defined( TEST_TUNER_AFC )
if ( bktr->tuner.afc )
frequency -= 4;
#endif
N = frequency + TBL_IF;
addr = bktr->card.tuner_pllAddr;
control = tuner->pllControl[ band_select ];
band = tuner->bandAddrs[ band_select ];
if(!(band && control))
return(-1);
if ( frequency > bktr->tuner.frequency ) {
i2cWrite( bktr, addr, (N>>8) & 0x7f, N & 0xff );
i2cWrite( bktr, addr, control, band );
}
else {
i2cWrite( bktr, addr, control, band );
i2cWrite( bktr, addr, (N>>8) & 0x7f, N & 0xff );
}
#if defined( TUNER_AFC )
if ( bktr->tuner.afc == TRUE ) {
#if defined( TEST_TUNER_AFC )
oldFrequency = frequency;
#endif
if ( (N = do_afc( bktr, addr, N )) < 0 ) {
N = frequency + TBL_IF;
#if defined( TEST_TUNER_AFC )
kprintf("%s: do_afc: failed to lock\n",
bktr_name(bktr));
#endif
i2cWrite( bktr, addr, (N>>8) & 0x7f, N & 0xff );
}
else
frequency = N - TBL_IF;
#if defined( TEST_TUNER_AFC )
kprintf("%s: do_afc: returned freq %d (%d %% %d)\n", bktr_name(bktr), frequency, frequency / 16, frequency % 16);
afcDelta = frequency - oldFrequency;
kprintf("%s: changed by: %d clicks (%d mod %d)\n", bktr_name(bktr), afcDelta, afcDelta / 16, afcDelta % 16);
#endif
}
#endif
bktr->tuner.frequency = frequency;
}
if ( type == FM_RADIO_FREQUENCY ) {
band_select = FM_RADIO_BAND;
N = (frequency + 1070)/5;
addr = bktr->card.tuner_pllAddr;
control = tuner->pllControl[ band_select ];
band = tuner->bandAddrs[ band_select ];
if(!(band && control))
return(-1);
band |= bktr->tuner.radio_mode;
i2cWrite( bktr, addr, control, band );
i2cWrite( bktr, addr, (N>>8) & 0x7f, N & 0xff );
bktr->tuner.frequency = (N * 5) - 1070;
}
return( 0 );
}
#if defined( TUNER_AFC )
int
do_afc( bktr_ptr_t bktr, int addr, int frequency )
{
int step;
int status;
int origFrequency;
origFrequency = frequency;
tsleep( BKTR_SLEEP, 0, "tuning", hz/8 );
if ( (status = i2cRead( bktr, addr + 1 )) < 0 )
return( -1 );
#if defined( TEST_TUNER_AFC )
kprintf( "%s: Original freq: %d, status: 0x%02x\n", bktr_name(bktr), frequency, status );
#endif
for ( step = 0; step < AFC_MAX_STEP; ++step ) {
if ( (status = i2cRead( bktr, addr + 1 )) < 0 )
goto fubar;
if ( !(status & 0x40) ) {
#if defined( TEST_TUNER_AFC )
kprintf( "%s: no lock!\n", bktr_name(bktr) );
#endif
goto fubar;
}
switch( status & AFC_BITS ) {
case AFC_FREQ_CENTERED:
#if defined( TEST_TUNER_AFC )
kprintf( "%s: Centered, freq: %d, status: 0x%02x\n", bktr_name(bktr), frequency, status );
#endif
return( frequency );
case AFC_FREQ_MINUS_125:
case AFC_FREQ_MINUS_62:
#if defined( TEST_TUNER_AFC )
kprintf( "%s: Low, freq: %d, status: 0x%02x\n", bktr_name(bktr), frequency, status );
#endif
--frequency;
break;
case AFC_FREQ_PLUS_62:
case AFC_FREQ_PLUS_125:
#if defined( TEST_TUNER_AFC )
kprintf( "%s: Hi, freq: %d, status: 0x%02x\n", bktr_name(bktr), frequency, status );
#endif
++frequency;
break;
}
i2cWrite( bktr, addr,
(frequency>>8) & 0x7f, frequency & 0xff );
DELAY( AFC_DELAY );
}
fubar:
i2cWrite( bktr, addr,
(origFrequency>>8) & 0x7f, origFrequency & 0xff );
return( -1 );
}
#endif
#undef TBL_IF
int get_tuner_status( bktr_ptr_t bktr ) {
if (bktr->card.tuner == &tuners[TUNER_MT2032])
return 0;
return i2cRead( bktr, bktr->card.tuner_pllAddr + 1 );
}
int
tv_channel( bktr_ptr_t bktr, int channel )
{
int frequency;
if ( (frequency = frequency_lookup( bktr, channel )) < 0 )
return( -1 );
if ( tv_freq( bktr, frequency, TV_FREQUENCY ) < 0 )
return( -1 );
return( (bktr->tuner.channel = channel) );
}
int
tuner_getchnlset(struct bktr_chnlset *chnlset)
{
if (( chnlset->index < CHNLSET_MIN ) ||
( chnlset->index > CHNLSET_MAX ))
return( EINVAL );
memcpy(&chnlset->name, &freqTable[chnlset->index].name,
BT848_MAX_CHNLSET_NAME_LEN);
chnlset->max_channel=freqTable[chnlset->index].ptr[0];
return( 0 );
}
#define TDA9887_ADDR 0x86
static int
TDA9887_init(bktr_ptr_t bktr, int output2_enable)
{
u_char addr = TDA9887_ADDR;
i2cWrite(bktr, addr, 0, output2_enable ? 0x50 : 0xd0);
i2cWrite(bktr, addr, 1, 0x6e);
#ifdef MT2032_NTSC
i2cWrite(bktr, addr, 2, 0x04);
#else
i2cWrite(bktr, addr, 2, 0x09);
#endif
return 0;
}
#define MT2032_OPTIMIZE_VCO 1
static int MT2032_XOGC = 4;
#define MT2032_ADDR 0xc0
#ifndef MT2032_ADDR
#define MT2032_ADDR (bktr->card.tuner_pllAddr)
#endif
static int
_MT2032_GetRegister(bktr_ptr_t bktr, u_char regNum)
{
int ch;
if (i2cWrite(bktr, MT2032_ADDR, regNum, -1) == -1) {
if (bootverbose)
kprintf("%s: MT2032 write failed (i2c addr %#x)\n",
bktr_name(bktr), MT2032_ADDR);
return -1;
}
if ((ch = i2cRead(bktr, MT2032_ADDR + 1)) == -1) {
if (bootverbose)
kprintf("%s: MT2032 get register %d failed\n",
bktr_name(bktr), regNum);
return -1;
}
return ch;
}
static void
_MT2032_SetRegister(bktr_ptr_t bktr, u_char regNum, u_char data)
{
i2cWrite(bktr, MT2032_ADDR, regNum, data);
}
#define MT2032_GetRegister(r) _MT2032_GetRegister(bktr,r)
#define MT2032_SetRegister(r,d) _MT2032_SetRegister(bktr,r,d)
int
mt2032_init(bktr_ptr_t bktr)
{
u_char rdbuf[22];
int xogc, xok = 0;
int i;
int x;
TDA9887_init(bktr, 0);
for (i = 0; i < 21; i++) {
if ((x = MT2032_GetRegister(i)) == -1)
break;
rdbuf[i] = x;
}
if (i < 21)
return -1;
kprintf("%s: MT2032: Companycode=%02x%02x Part=%02x Revision=%02x\n",
bktr_name(bktr),
rdbuf[0x11], rdbuf[0x12], rdbuf[0x13], rdbuf[0x14]);
if (rdbuf[0x13] != 4) {
kprintf("%s: MT2032 not found or unknown type\n", bktr_name(bktr));
return -1;
}
MT2032_SetRegister(2, 0xff);
MT2032_SetRegister(3, 0x0f);
MT2032_SetRegister(4, 0x1f);
MT2032_SetRegister(6, 0xe4);
MT2032_SetRegister(7, 0x8f);
MT2032_SetRegister(8, 0xc3);
MT2032_SetRegister(9, 0x4e);
MT2032_SetRegister(10, 0xec);
MT2032_SetRegister(13, 0x32);
xogc = 7;
do {
DELAY(10000);
xok = MT2032_GetRegister(0x0e) & 0x01;
if (xok == 1) {
break;
}
xogc--;
if (xogc == 3) {
xogc = 4;
break;
}
MT2032_SetRegister(7, 0x88 + xogc);
} while (xok != 1);
TDA9887_init(bktr, 1);
MT2032_XOGC = xogc;
return 0;
}
static int
MT2032_SpurCheck(int f1, int f2, int spectrum_from, int spectrum_to)
{
int n1 = 1, n2, f;
f1 = f1 / 1000;
f2 = f2 / 1000;
spectrum_from /= 1000;
spectrum_to /= 1000;
do {
n2 = -n1;
f = n1 * (f1 - f2);
do {
n2--;
f = f - f2;
if ((f > spectrum_from) && (f < spectrum_to)) {
return 1;
}
} while ((f > (f2 - spectrum_to)) || (n2 > -5));
n1++;
} while (n1 < 5);
return 0;
}
static int
MT2032_ComputeFreq(
int rfin,
int if1,
int if2,
int spectrum_from,
int spectrum_to,
unsigned char *buf,
int *ret_sel,
int xogc
)
{
int fref, lo1, lo1n, lo1a, s, sel;
int lo1freq, desired_lo1, desired_lo2, lo2, lo2n, lo2a,
lo2num;
int nLO1adjust;
fref = 5250 * 1000;
desired_lo1 = rfin + if1;
lo1 = (2 * (desired_lo1 / 1000) + (fref / 1000)) / (2 * fref / 1000);
lo1freq = lo1 * fref;
desired_lo2 = lo1freq - rfin - if2;
for (nLO1adjust = 1; nLO1adjust < 3; nLO1adjust++) {
if (!MT2032_SpurCheck(lo1freq, desired_lo2, spectrum_from, spectrum_to)) {
break;
}
if (lo1freq < desired_lo1) {
lo1 += nLO1adjust;
} else {
lo1 -= nLO1adjust;
}
lo1freq = lo1 * fref;
desired_lo2 = lo1freq - rfin - if2;
}
s = lo1freq / 1000 / 1000;
if (MT2032_OPTIMIZE_VCO) {
if (s > 1890) {
sel = 0;
} else if (s > 1720) {
sel = 1;
} else if (s > 1530) {
sel = 2;
} else if (s > 1370) {
sel = 3;
} else {
sel = 4;
}
} else {
if (s > 1790) {
sel = 0;
} else if (s > 1617) {
sel = 1;
} else if (s > 1449) {
sel = 2;
} else if (s > 1291) {
sel = 3;
} else {
sel = 4;
}
}
*ret_sel = sel;
lo1n = lo1 / 8;
lo1a = lo1 - (lo1n * 8);
lo2 = desired_lo2 / fref;
lo2n = lo2 / 8;
lo2a = lo2 - (lo2n * 8);
lo2num = ((desired_lo2 / 1000) % (fref / 1000)) * 3780 / (fref / 1000);
if (lo1a < 0 || lo1a > 7 || lo1n < 17 || lo1n > 48 || lo2a < 0 ||
lo2a > 7 || lo2n < 17 || lo2n > 30) {
kprintf("MT2032: parameter out of range\n");
return -1;
}
buf[0] = lo1n - 1;
buf[1] = lo1a | (sel << 4);
buf[2] = 0x86;
buf[3] = 0x0f;
buf[4] = 0x1f;
buf[5] = (lo2n - 1) | (lo2a << 5);
if (rfin < 400 * 1000 * 1000) {
buf[6] = 0xe4;
} else {
buf[6] = 0xf4;
}
buf[7] = 8 + xogc;
buf[8] = 0xc3;
buf[9] = 0x4e;
buf[10] = 0xec;
buf[11] = (lo2num & 0xff);
buf[12] = (lo2num >> 8) | 0x80;
return 0;
}
static int
MT2032_CheckLOLock(bktr_ptr_t bktr)
{
int t, lock = 0;
for (t = 0; t < 10; t++) {
lock = MT2032_GetRegister(0x0e) & 0x06;
if (lock == 6) {
break;
}
DELAY(1000);
}
return lock;
}
static int
MT2032_OptimizeVCO(bktr_ptr_t bktr, int sel, int lock)
{
int tad1, lo1a;
tad1 = MT2032_GetRegister(0x0f) & 0x07;
if (tad1 == 0) {
return lock;
}
if (tad1 == 1) {
return lock;
}
if (tad1 == 2) {
if (sel == 0) {
return lock;
} else {
sel--;
}
} else {
if (sel < 4) {
sel++;
} else {
return lock;
}
}
lo1a = MT2032_GetRegister(0x01) & 0x07;
MT2032_SetRegister(0x01, lo1a | (sel << 4));
lock = MT2032_CheckLOLock(bktr);
return lock;
}
static int
MT2032_SetIFFreq(bktr_ptr_t bktr, int rfin, int if1, int if2, int from, int to)
{
u_char buf[21];
int lint_try, sel, lock = 0;
if (MT2032_ComputeFreq(rfin, if1, if2, from, to, &buf[0], &sel, MT2032_XOGC) == -1)
return -1;
TDA9887_init(bktr, 0);
MT2032_SetRegister(0, buf[0x00]);
MT2032_SetRegister(1, buf[0x01]);
MT2032_SetRegister(2, buf[0x02]);
MT2032_SetRegister(5, buf[0x05]);
MT2032_SetRegister(6, buf[0x06]);
MT2032_SetRegister(7, buf[0x07]);
MT2032_SetRegister(11, buf[0x0B]);
MT2032_SetRegister(12, buf[0x0C]);
for (lint_try = 0; lint_try < 2; lint_try++) {
lock = MT2032_CheckLOLock(bktr);
if (MT2032_OPTIMIZE_VCO) {
lock = MT2032_OptimizeVCO(bktr, sel, lock);
}
if (lock == 6) {
break;
}
MT2032_SetRegister(7, 0x80 + 8 + MT2032_XOGC);
DELAY(10000);
MT2032_SetRegister(7, 8 + MT2032_XOGC);
}
if (lock != 6)
kprintf("%s: PLL didn't lock\n", bktr_name(bktr));
MT2032_SetRegister(2, 0x20);
TDA9887_init(bktr, 1);
return 0;
}
static void
mt2032_set_tv_freq(bktr_ptr_t bktr, unsigned int freq)
{
int if2,from,to;
int stat, tad;
#ifdef MT2032_NTSC
from=40750*1000;
to=46750*1000;
if2=45750*1000;
#else
from=32900*1000;
to=39900*1000;
if2=38900*1000;
#endif
if (MT2032_SetIFFreq(bktr, freq*62500 ,
1090*1000*1000, if2, from, to) == 0) {
bktr->tuner.frequency = freq;
stat = MT2032_GetRegister(0x0e);
tad = MT2032_GetRegister(0x0f);
if (bootverbose)
kprintf("%s: frequency set to %d, st = %#x, tad = %#x\n",
bktr_name(bktr), freq*62500, stat, tad);
}
}