au8522_dig.c 19.2 KB
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/*
    Auvitek AU8522 QAM/8VSB demodulator driver

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    Copyright (C) 2008 Steven Toth <stoth@linuxtv.org>
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    This program is free software; you can redistribute it and/or modify
    it under the terms of the GNU General Public License as published by
    the Free Software Foundation; either version 2 of the License, or
    (at your option) any later version.

    This program is distributed in the hope that it will be useful,
    but WITHOUT ANY WARRANTY; without even the implied warranty of
    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
    GNU General Public License for more details.

    You should have received a copy of the GNU General Public License
    along with this program; if not, write to the Free Software
    Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.

*/

#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/module.h>
#include <linux/string.h>
#include <linux/slab.h>
#include <linux/delay.h>
#include "dvb_frontend.h"
#include "au8522.h"
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#include "au8522_priv.h"
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static int debug;

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/* Despite the name "hybrid_tuner", the framework works just as well for
   hybrid demodulators as well... */
static LIST_HEAD(hybrid_tuner_instance_list);

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#define dprintk(arg...) do {		\
	if (debug) 			\
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		 printk(arg); 		\
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	} while (0)
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/* 16 bit registers, 8 bit values */
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int au8522_writereg(struct au8522_state *state, u16 reg, u8 data)
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{
	int ret;
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	u8 buf [] = { (reg >> 8) | 0x80, reg & 0xff, data };
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	struct i2c_msg msg = { .addr = state->config->demod_address,
			       .flags = 0, .buf = buf, .len = 3 };

	ret = i2c_transfer(state->i2c, &msg, 1);

	if (ret != 1)
		printk("%s: writereg error (reg == 0x%02x, val == 0x%04x, "
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		       "ret == %i)\n", __func__, reg, data, ret);
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	return (ret != 1) ? -1 : 0;
}

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u8 au8522_readreg(struct au8522_state *state, u16 reg)
62 63
{
	int ret;
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	u8 b0 [] = { (reg >> 8) | 0x40, reg & 0xff };
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	u8 b1 [] = { 0 };

	struct i2c_msg msg [] = {
		{ .addr = state->config->demod_address, .flags = 0,
		  .buf = b0, .len = 2 },
		{ .addr = state->config->demod_address, .flags = I2C_M_RD,
		  .buf = b1, .len = 1 } };

	ret = i2c_transfer(state->i2c, msg, 2);

	if (ret != 2)
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		printk(KERN_ERR "%s: readreg error (ret == %i)\n",
		       __func__, ret);
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	return b1[0];
}

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static int au8522_i2c_gate_ctrl(struct dvb_frontend *fe, int enable)
82
{
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	struct au8522_state *state = fe->demodulator_priv;
84

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	dprintk("%s(%d)\n", __func__, enable);
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	if (enable)
		return au8522_writereg(state, 0x106, 1);
	else
		return au8522_writereg(state, 0x106, 0);
}

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struct mse2snr_tab {
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	u16 val;
	u16 data;
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};

/* VSB SNR lookup table */
static struct mse2snr_tab vsb_mse2snr_tab[] = {
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	{   0, 270 },
	{   2, 250 },
	{   3, 240 },
	{   5, 230 },
	{   7, 220 },
	{   9, 210 },
	{  12, 200 },
	{  13, 195 },
	{  15, 190 },
	{  17, 185 },
	{  19, 180 },
	{  21, 175 },
	{  24, 170 },
	{  27, 165 },
	{  31, 160 },
	{  32, 158 },
	{  33, 156 },
	{  36, 152 },
	{  37, 150 },
	{  39, 148 },
	{  40, 146 },
	{  41, 144 },
	{  43, 142 },
	{  44, 140 },
	{  48, 135 },
	{  50, 130 },
	{  43, 142 },
	{  53, 125 },
	{  56, 120 },
	{ 256, 115 },
};

/* QAM64 SNR lookup table */
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static struct mse2snr_tab qam64_mse2snr_tab[] = {
134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213
	{  15,   0 },
	{  16, 290 },
	{  17, 288 },
	{  18, 286 },
	{  19, 284 },
	{  20, 282 },
	{  21, 281 },
	{  22, 279 },
	{  23, 277 },
	{  24, 275 },
	{  25, 273 },
	{  26, 271 },
	{  27, 269 },
	{  28, 268 },
	{  29, 266 },
	{  30, 264 },
	{  31, 262 },
	{  32, 260 },
	{  33, 259 },
	{  34, 258 },
	{  35, 256 },
	{  36, 255 },
	{  37, 254 },
	{  38, 252 },
	{  39, 251 },
	{  40, 250 },
	{  41, 249 },
	{  42, 248 },
	{  43, 246 },
	{  44, 245 },
	{  45, 244 },
	{  46, 242 },
	{  47, 241 },
	{  48, 240 },
	{  50, 239 },
	{  51, 238 },
	{  53, 237 },
	{  54, 236 },
	{  56, 235 },
	{  57, 234 },
	{  59, 233 },
	{  60, 232 },
	{  62, 231 },
	{  63, 230 },
	{  65, 229 },
	{  67, 228 },
	{  68, 227 },
	{  70, 226 },
	{  71, 225 },
	{  73, 224 },
	{  74, 223 },
	{  76, 222 },
	{  78, 221 },
	{  80, 220 },
	{  82, 219 },
	{  85, 218 },
	{  88, 217 },
	{  90, 216 },
	{  92, 215 },
	{  93, 214 },
	{  94, 212 },
	{  95, 211 },
	{  97, 210 },
	{  99, 209 },
	{ 101, 208 },
	{ 102, 207 },
	{ 104, 206 },
	{ 107, 205 },
	{ 111, 204 },
	{ 114, 203 },
	{ 118, 202 },
	{ 122, 201 },
	{ 125, 200 },
	{ 128, 199 },
	{ 130, 198 },
	{ 132, 197 },
	{ 256, 190 },
};

/* QAM256 SNR lookup table */
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static struct mse2snr_tab qam256_mse2snr_tab[] = {
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	{  16,   0 },
	{  17, 400 },
	{  18, 398 },
	{  19, 396 },
	{  20, 394 },
	{  21, 392 },
	{  22, 390 },
	{  23, 388 },
	{  24, 386 },
	{  25, 384 },
	{  26, 382 },
	{  27, 380 },
	{  28, 379 },
	{  29, 378 },
	{  30, 377 },
	{  31, 376 },
	{  32, 375 },
	{  33, 374 },
	{  34, 373 },
	{  35, 372 },
	{  36, 371 },
	{  37, 370 },
	{  38, 362 },
	{  39, 354 },
	{  40, 346 },
	{  41, 338 },
	{  42, 330 },
	{  43, 328 },
	{  44, 326 },
	{  45, 324 },
	{  46, 322 },
	{  47, 320 },
	{  48, 319 },
	{  49, 318 },
	{  50, 317 },
	{  51, 316 },
	{  52, 315 },
	{  53, 314 },
	{  54, 313 },
	{  55, 312 },
	{  56, 311 },
	{  57, 310 },
	{  58, 308 },
	{  59, 306 },
	{  60, 304 },
	{  61, 302 },
	{  62, 300 },
	{  63, 298 },
	{  65, 295 },
	{  68, 294 },
	{  70, 293 },
	{  73, 292 },
	{  76, 291 },
	{  78, 290 },
	{  79, 289 },
	{  81, 288 },
	{  82, 287 },
	{  83, 286 },
	{  84, 285 },
	{  85, 284 },
	{  86, 283 },
	{  88, 282 },
	{  89, 281 },
	{ 256, 280 },
};

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static int au8522_mse2snr_lookup(struct mse2snr_tab *tab, int sz, int mse,
				 u16 *snr)
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{
	int i, ret = -EINVAL;
	dprintk("%s()\n", __func__);

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	for (i = 0; i < sz; i++) {
		if (mse < tab[i].val) {
			*snr = tab[i].data;
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			ret = 0;
			break;
		}
	}
	dprintk("%s() snr=%d\n", __func__, *snr);
	return ret;
}

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static int au8522_set_if(struct dvb_frontend *fe, enum au8522_if_freq if_freq)
{
	struct au8522_state *state = fe->demodulator_priv;
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	u8 r0b5, r0b6, r0b7;
	char *ifmhz;
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	switch (if_freq) {
	case AU8522_IF_3_25MHZ:
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		ifmhz = "3.25";
		r0b5 = 0x00;
		r0b6 = 0x3d;
		r0b7 = 0xa0;
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		break;
	case AU8522_IF_4MHZ:
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		ifmhz = "4.00";
		r0b5 = 0x00;
		r0b6 = 0x4b;
		r0b7 = 0xd9;
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		break;
	case AU8522_IF_6MHZ:
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		ifmhz = "6.00";
		r0b5 = 0xfb;
		r0b6 = 0x8e;
		r0b7 = 0x39;
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		break;
	default:
		dprintk("%s() IF Frequency not supported\n", __func__);
		return -EINVAL;
	}
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	dprintk("%s() %s MHz\n", __func__, ifmhz);
	au8522_writereg(state, 0x80b5, r0b5);
	au8522_writereg(state, 0x80b6, r0b6);
	au8522_writereg(state, 0x80b7, r0b7);

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	return 0;
}

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/* VSB Modulation table */
static struct {
	u16 reg;
	u16 data;
} VSB_mod_tab[] = {
	{ 0x8090, 0x84 },
	{ 0x4092, 0x11 },
	{ 0x2005, 0x00 },
	{ 0x8091, 0x80 },
	{ 0x80a3, 0x0c },
	{ 0x80a4, 0xe8 },
	{ 0x8081, 0xc4 },
	{ 0x80a5, 0x40 },
	{ 0x80a7, 0x40 },
	{ 0x80a6, 0x67 },
	{ 0x8262, 0x20 },
	{ 0x821c, 0x30 },
	{ 0x80d8, 0x1a },
	{ 0x8227, 0xa0 },
	{ 0x8121, 0xff },
	{ 0x80a8, 0xf0 },
	{ 0x80a9, 0x05 },
	{ 0x80aa, 0x77 },
	{ 0x80ab, 0xf0 },
	{ 0x80ac, 0x05 },
	{ 0x80ad, 0x77 },
	{ 0x80ae, 0x41 },
	{ 0x80af, 0x66 },
	{ 0x821b, 0xcc },
	{ 0x821d, 0x80 },
	{ 0x80a4, 0xe8 },
	{ 0x8231, 0x13 },
};

/* QAM Modulation table */
static struct {
	u16 reg;
	u16 data;
} QAM_mod_tab[] = {
	{ 0x80a3, 0x09 },
	{ 0x80a4, 0x00 },
	{ 0x8081, 0xc4 },
	{ 0x80a5, 0x40 },
	{ 0x80aa, 0x77 },
	{ 0x80ad, 0x77 },
	{ 0x80a6, 0x67 },
	{ 0x8262, 0x20 },
	{ 0x821c, 0x30 },
	{ 0x80b8, 0x3e },
	{ 0x80b9, 0xf0 },
	{ 0x80ba, 0x01 },
	{ 0x80bb, 0x18 },
	{ 0x80bc, 0x50 },
	{ 0x80bd, 0x00 },
	{ 0x80be, 0xea },
	{ 0x80bf, 0xef },
	{ 0x80c0, 0xfc },
	{ 0x80c1, 0xbd },
	{ 0x80c2, 0x1f },
	{ 0x80c3, 0xfc },
	{ 0x80c4, 0xdd },
	{ 0x80c5, 0xaf },
	{ 0x80c6, 0x00 },
	{ 0x80c7, 0x38 },
	{ 0x80c8, 0x30 },
	{ 0x80c9, 0x05 },
	{ 0x80ca, 0x4a },
	{ 0x80cb, 0xd0 },
	{ 0x80cc, 0x01 },
	{ 0x80cd, 0xd9 },
	{ 0x80ce, 0x6f },
	{ 0x80cf, 0xf9 },
	{ 0x80d0, 0x70 },
	{ 0x80d1, 0xdf },
	{ 0x80d2, 0xf7 },
	{ 0x80d3, 0xc2 },
	{ 0x80d4, 0xdf },
	{ 0x80d5, 0x02 },
	{ 0x80d6, 0x9a },
	{ 0x80d7, 0xd0 },
	{ 0x8250, 0x0d },
	{ 0x8251, 0xcd },
	{ 0x8252, 0xe0 },
	{ 0x8253, 0x05 },
	{ 0x8254, 0xa7 },
	{ 0x8255, 0xff },
	{ 0x8256, 0xed },
	{ 0x8257, 0x5b },
	{ 0x8258, 0xae },
	{ 0x8259, 0xe6 },
	{ 0x825a, 0x3d },
	{ 0x825b, 0x0f },
	{ 0x825c, 0x0d },
	{ 0x825d, 0xea },
	{ 0x825e, 0xf2 },
	{ 0x825f, 0x51 },
	{ 0x8260, 0xf5 },
	{ 0x8261, 0x06 },
	{ 0x821a, 0x00 },
	{ 0x8546, 0x40 },
	{ 0x8210, 0x26 },
	{ 0x8211, 0xf6 },
	{ 0x8212, 0x84 },
	{ 0x8213, 0x02 },
	{ 0x8502, 0x01 },
	{ 0x8121, 0x04 },
	{ 0x8122, 0x04 },
	{ 0x852e, 0x10 },
	{ 0x80a4, 0xca },
	{ 0x80a7, 0x40 },
	{ 0x8526, 0x01 },
};

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static int au8522_enable_modulation(struct dvb_frontend *fe,
				    fe_modulation_t m)
450
{
451
	struct au8522_state *state = fe->demodulator_priv;
452
	int i;
453

454
	dprintk("%s(0x%08x)\n", __func__, m);
455

456
	switch (m) {
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	case VSB_8:
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		dprintk("%s() VSB_8\n", __func__);
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		for (i = 0; i < ARRAY_SIZE(VSB_mod_tab); i++)
			au8522_writereg(state,
				VSB_mod_tab[i].reg,
				VSB_mod_tab[i].data);
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		au8522_set_if(fe, state->config->vsb_if);
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		break;
	case QAM_64:
	case QAM_256:
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		dprintk("%s() QAM 64/256\n", __func__);
		for (i = 0; i < ARRAY_SIZE(QAM_mod_tab); i++)
			au8522_writereg(state,
				QAM_mod_tab[i].reg,
				QAM_mod_tab[i].data);
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		au8522_set_if(fe, state->config->qam_if);
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		break;
	default:
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		dprintk("%s() Invalid modulation\n", __func__);
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		return -EINVAL;
	}

	state->current_modulation = m;

	return 0;
}

/* Talk to the demod, set the FEC, GUARD, QAM settings etc */
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static int au8522_set_frontend(struct dvb_frontend *fe,
			       struct dvb_frontend_parameters *p)
487
{
488
	struct au8522_state *state = fe->demodulator_priv;
489
	int ret = -EINVAL;
490

491
	dprintk("%s(frequency=%d)\n", __func__, p->frequency);
492

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	if ((state->current_frequency == p->frequency) &&
	    (state->current_modulation == p->u.vsb.modulation))
		return 0;
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	au8522_enable_modulation(fe, p->u.vsb.modulation);

	/* Allow the demod to settle */
	msleep(100);

	if (fe->ops.tuner_ops.set_params) {
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		if (fe->ops.i2c_gate_ctrl)
			fe->ops.i2c_gate_ctrl(fe, 1);
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		ret = fe->ops.tuner_ops.set_params(fe, p);
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		if (fe->ops.i2c_gate_ctrl)
			fe->ops.i2c_gate_ctrl(fe, 0);
508 509
	}

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	if (ret < 0)
		return ret;

	state->current_frequency = p->frequency;

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	return 0;
}

/* Reset the demod hardware and reset all of the configuration registers
   to a default state. */
520
int au8522_init(struct dvb_frontend *fe)
521
{
522
	struct au8522_state *state = fe->demodulator_priv;
523
	dprintk("%s()\n", __func__);
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	au8522_writereg(state, 0xa4, 1 << 5);

	au8522_i2c_gate_ctrl(fe, 1);

	return 0;
}

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static int au8522_led_gpio_enable(struct au8522_state *state, int onoff)
{
	struct au8522_led_config *led_config = state->config->led_cfg;
	u8 val;

	/* bail out if we cant control an LED */
	if (!led_config || !led_config->gpio_output ||
	    !led_config->gpio_output_enable || !led_config->gpio_output_disable)
		return 0;

	val = au8522_readreg(state, 0x4000 |
			     (led_config->gpio_output & ~0xc000));
	if (onoff) {
		/* enable GPIO output */
		val &= ~((led_config->gpio_output_enable >> 8) & 0xff);
		val |=  (led_config->gpio_output_enable & 0xff);
	} else {
		/* disable GPIO output */
		val &= ~((led_config->gpio_output_disable >> 8) & 0xff);
		val |=  (led_config->gpio_output_disable & 0xff);
	}
	return au8522_writereg(state, 0x8000 |
			       (led_config->gpio_output & ~0xc000), val);
}

/* led = 0 | off
 * led = 1 | signal ok
 * led = 2 | signal strong
 * led < 0 | only light led if leds are currently off
 */
static int au8522_led_ctrl(struct au8522_state *state, int led)
{
	struct au8522_led_config *led_config = state->config->led_cfg;
	int i, ret = 0;

	/* bail out if we cant control an LED */
	if (!led_config || !led_config->gpio_leds ||
	    !led_config->num_led_states || !led_config->led_states)
		return 0;

	if (led < 0) {
		/* if LED is already lit, then leave it as-is */
		if (state->led_state)
			return 0;
		else
			led *= -1;
	}

	/* toggle LED if changing state */
	if (state->led_state != led) {
		u8 val;

		dprintk("%s: %d\n", __func__, led);

		au8522_led_gpio_enable(state, 1);

		val = au8522_readreg(state, 0x4000 |
				     (led_config->gpio_leds & ~0xc000));

		/* start with all leds off */
		for (i = 0; i < led_config->num_led_states; i++)
			val &= ~led_config->led_states[i];

		/* set selected LED state */
		if (led < led_config->num_led_states)
			val |= led_config->led_states[led];
		else if (led_config->num_led_states)
			val |=
			led_config->led_states[led_config->num_led_states - 1];

		ret = au8522_writereg(state, 0x8000 |
				      (led_config->gpio_leds & ~0xc000), val);
		if (ret < 0)
			return ret;

		state->led_state = led;

		if (led == 0)
			au8522_led_gpio_enable(state, 0);
	}

	return 0;
}

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int au8522_sleep(struct dvb_frontend *fe)
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{
	struct au8522_state *state = fe->demodulator_priv;
	dprintk("%s()\n", __func__);

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	/* turn off led */
	au8522_led_ctrl(state, 0);

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	/* Power down the chip */
	au8522_writereg(state, 0xa4, 1 << 5);

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	state->current_frequency = 0;

	return 0;
}

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static int au8522_read_status(struct dvb_frontend *fe, fe_status_t *status)
633
{
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	struct au8522_state *state = fe->demodulator_priv;
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	u8 reg;
	u32 tuner_status = 0;

	*status = 0;

	if (state->current_modulation == VSB_8) {
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		dprintk("%s() Checking VSB_8\n", __func__);
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		reg = au8522_readreg(state, 0x4088);
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		if ((reg & 0x03) == 0x03)
			*status |= FE_HAS_LOCK | FE_HAS_SYNC | FE_HAS_VITERBI;
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	} else {
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		dprintk("%s() Checking QAM\n", __func__);
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		reg = au8522_readreg(state, 0x4541);
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		if (reg & 0x80)
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			*status |= FE_HAS_VITERBI;
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		if (reg & 0x20)
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			*status |= FE_HAS_LOCK | FE_HAS_SYNC;
	}

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	switch (state->config->status_mode) {
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	case AU8522_DEMODLOCKING:
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		dprintk("%s() DEMODLOCKING\n", __func__);
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		if (*status & FE_HAS_VITERBI)
			*status |= FE_HAS_CARRIER | FE_HAS_SIGNAL;
		break;
	case AU8522_TUNERLOCKING:
		/* Get the tuner status */
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		dprintk("%s() TUNERLOCKING\n", __func__);
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		if (fe->ops.tuner_ops.get_status) {
			if (fe->ops.i2c_gate_ctrl)
				fe->ops.i2c_gate_ctrl(fe, 1);

			fe->ops.tuner_ops.get_status(fe, &tuner_status);

			if (fe->ops.i2c_gate_ctrl)
				fe->ops.i2c_gate_ctrl(fe, 0);
		}
		if (tuner_status)
			*status |= FE_HAS_CARRIER | FE_HAS_SIGNAL;
		break;
	}
676 677 678 679 680 681 682 683
	state->fe_status = *status;

	if (*status & FE_HAS_LOCK)
		/* turn on LED, if it isn't on already */
		au8522_led_ctrl(state, -1);
	else
		/* turn off LED */
		au8522_led_ctrl(state, 0);
684

685
	dprintk("%s() status 0x%08x\n", __func__, *status);
686 687 688 689

	return 0;
}

690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722
static int au8522_led_status(struct au8522_state *state, const u16 *snr)
{
	struct au8522_led_config *led_config = state->config->led_cfg;
	int led;
	u16 strong;

	/* bail out if we cant control an LED */
	if (!led_config)
		return 0;

	if (0 == (state->fe_status & FE_HAS_LOCK))
		return au8522_led_ctrl(state, 0);
	else if (state->current_modulation == QAM_256)
		strong = led_config->qam256_strong;
	else if (state->current_modulation == QAM_64)
		strong = led_config->qam64_strong;
	else /* (state->current_modulation == VSB_8) */
		strong = led_config->vsb8_strong;

	if (*snr >= strong)
		led = 2;
	else
		led = 1;

	if ((state->led_state) &&
	    (((strong < *snr) ? (*snr - strong) : (strong - *snr)) <= 10))
		/* snr didn't change enough to bother
		 * changing the color of the led */
		return 0;

	return au8522_led_ctrl(state, led);
}

723
static int au8522_read_snr(struct dvb_frontend *fe, u16 *snr)
724 725
{
	struct au8522_state *state = fe->demodulator_priv;
726
	int ret = -EINVAL;
727

728
	dprintk("%s()\n", __func__);
729

730
	if (state->current_modulation == QAM_256)
731 732 733 734
		ret = au8522_mse2snr_lookup(qam256_mse2snr_tab,
					    ARRAY_SIZE(qam256_mse2snr_tab),
					    au8522_readreg(state, 0x4522),
					    snr);
735
	else if (state->current_modulation == QAM_64)
736 737 738 739
		ret = au8522_mse2snr_lookup(qam64_mse2snr_tab,
					    ARRAY_SIZE(qam64_mse2snr_tab),
					    au8522_readreg(state, 0x4522),
					    snr);
740
	else /* VSB_8 */
741 742 743 744
		ret = au8522_mse2snr_lookup(vsb_mse2snr_tab,
					    ARRAY_SIZE(vsb_mse2snr_tab),
					    au8522_readreg(state, 0x4311),
					    snr);
745

746 747 748
	if (state->config->led_cfg)
		au8522_led_status(state, snr);

749
	return ret;
750 751
}

752 753
static int au8522_read_signal_strength(struct dvb_frontend *fe,
				       u16 *signal_strength)
754 755 756 757
{
	return au8522_read_snr(fe, signal_strength);
}

758
static int au8522_read_ucblocks(struct dvb_frontend *fe, u32 *ucblocks)
759
{
760
	struct au8522_state *state = fe->demodulator_priv;
761

762 763 764 765
	if (state->current_modulation == VSB_8)
		*ucblocks = au8522_readreg(state, 0x4087);
	else
		*ucblocks = au8522_readreg(state, 0x4543);
766 767 768 769

	return 0;
}

770
static int au8522_read_ber(struct dvb_frontend *fe, u32 *ber)
771 772 773 774
{
	return au8522_read_ucblocks(fe, ber);
}

775
static int au8522_get_frontend(struct dvb_frontend *fe,
776 777
				struct dvb_frontend_parameters *p)
{
778
	struct au8522_state *state = fe->demodulator_priv;
779 780 781 782 783 784 785

	p->frequency = state->current_frequency;
	p->u.vsb.modulation = state->current_modulation;

	return 0;
}

786 787
static int au8522_get_tune_settings(struct dvb_frontend *fe,
				    struct dvb_frontend_tune_settings *tune)
788 789 790 791 792
{
	tune->min_delay_ms = 1000;
	return 0;
}

793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809
static struct dvb_frontend_ops au8522_ops;

int au8522_get_state(struct au8522_state **state, struct i2c_adapter *i2c,
		     u8 client_address)
{
	return hybrid_tuner_request_state(struct au8522_state, (*state),
					  hybrid_tuner_instance_list,
					  i2c, client_address, "au8522");
}

void au8522_release_state(struct au8522_state *state)
{
	if (state != NULL)
		hybrid_tuner_release_state(state);
}


810
static void au8522_release(struct dvb_frontend *fe)
811
{
812
	struct au8522_state *state = fe->demodulator_priv;
813
	au8522_release_state(state);
814 815
}

816 817
struct dvb_frontend *au8522_attach(const struct au8522_config *config,
				   struct i2c_adapter *i2c)
818
{
819
	struct au8522_state *state = NULL;
820
	int instance;
821 822

	/* allocate memory for the internal state */
823 824 825 826 827 828 829 830 831 832 833 834 835 836
	instance = au8522_get_state(&state, i2c, config->demod_address);
	switch (instance) {
	case 0:
		dprintk("%s state allocation failed\n", __func__);
		break;
	case 1:
		/* new demod instance */
		dprintk("%s using new instance\n", __func__);
		break;
	default:
		/* existing demod instance */
		dprintk("%s using existing instance\n", __func__);
		break;
	}
837 838 839 840 841 842 843 844 845 846 847

	/* setup the state */
	state->config = config;
	state->i2c = i2c;
	/* create dvb_frontend */
	memcpy(&state->frontend.ops, &au8522_ops,
	       sizeof(struct dvb_frontend_ops));
	state->frontend.demodulator_priv = state;

	if (au8522_init(&state->frontend) != 0) {
		printk(KERN_ERR "%s: Failed to initialize correctly\n",
848
			__func__);
849 850 851 852 853 854 855 856 857
		goto error;
	}

	/* Note: Leaving the I2C gate open here. */
	au8522_i2c_gate_ctrl(&state->frontend, 1);

	return &state->frontend;

error:
858
	au8522_release_state(state);
859 860
	return NULL;
}
861
EXPORT_SYMBOL(au8522_attach);
862 863 864 865 866 867 868 869 870 871 872 873 874

static struct dvb_frontend_ops au8522_ops = {

	.info = {
		.name			= "Auvitek AU8522 QAM/8VSB Frontend",
		.type			= FE_ATSC,
		.frequency_min		= 54000000,
		.frequency_max		= 858000000,
		.frequency_stepsize	= 62500,
		.caps = FE_CAN_QAM_64 | FE_CAN_QAM_256 | FE_CAN_8VSB
	},

	.init                 = au8522_init,
875
	.sleep                = au8522_sleep,
876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893
	.i2c_gate_ctrl        = au8522_i2c_gate_ctrl,
	.set_frontend         = au8522_set_frontend,
	.get_frontend         = au8522_get_frontend,
	.get_tune_settings    = au8522_get_tune_settings,
	.read_status          = au8522_read_status,
	.read_ber             = au8522_read_ber,
	.read_signal_strength = au8522_read_signal_strength,
	.read_snr             = au8522_read_snr,
	.read_ucblocks        = au8522_read_ucblocks,
	.release              = au8522_release,
};

module_param(debug, int, 0644);
MODULE_PARM_DESC(debug, "Enable verbose debug messages");

MODULE_DESCRIPTION("Auvitek AU8522 QAM-B/ATSC Demodulator driver");
MODULE_AUTHOR("Steven Toth");
MODULE_LICENSE("GPL");