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path: root/drivers/media/dvb/frontends/stv0288.c
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/*
	Driver for ST STV0288 demodulator
	Copyright (C) 2006 Georg Acher, BayCom GmbH, acher (at) baycom (dot) de
		for Reel Multimedia
	Copyright (C) 2008 TurboSight.com, Bob Liu <bob@turbosight.com>
	Copyright (C) 2008 Igor M. Liplianin <liplianin@me.by>
		Removed stb6000 specific tuner code and revised some
		procedures.

	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/init.h>
#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/string.h>
#include <linux/slab.h>
#include <linux/jiffies.h>
#include <asm/div64.h>

#include "dvb_frontend.h"
#include "stv0288.h"

struct stv0288_state {
	struct i2c_adapter *i2c;
	const struct stv0288_config *config;
	struct dvb_frontend frontend;

	u8 initialised:1;
	u32 tuner_frequency;
	u32 symbol_rate;
	fe_code_rate_t fec_inner;
	int errmode;
};

#define STATUS_BER 0
#define STATUS_UCBLOCKS 1

static int debug;
static int debug_legacy_dish_switch;
#define dprintk(args...) \
	do { \
		if (debug) \
			printk(KERN_DEBUG "stv0288: " args); \
	} while (0)


static int stv0288_writeregI(struct stv0288_state *state, u8 reg, u8 data)
{
	int ret;
	u8 buf[] = { reg, data };
	struct i2c_msg msg = {
		.addr = state->config->demod_address,
		.flags = 0,
		.buf = buf,
		.len = 2
	};

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

	if (ret != 1)
		dprintk("%s: writereg error (reg == 0x%02x, val == 0x%02x, "
			"ret == %i)\n", __func__, reg, data, ret);

	return (ret != 1) ? -EREMOTEIO : 0;
}

static int stv0288_write(struct dvb_frontend *fe, u8 *buf, int len)
{
	struct stv0288_state *state = fe->demodulator_priv;

	if (len != 2)
		return -EINVAL;

	return stv0288_writeregI(state, buf[0], buf[1]);
}

static u8 stv0288_readreg(struct stv0288_state *state, u8 reg)
{
	int ret;
	u8 b0[] = { reg };
	u8 b1[] = { 0 };
	struct i2c_msg msg[] = {
		{
			.addr = state->config->demod_address,
			.flags = 0,
			.buf = b0,
			.len = 1
		}, {
			.addr = state->config->demod_address,
			.flags = I2C_M_RD,
			.buf = b1,
			.len = 1
		}
	};

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

	if (ret != 2)
		dprintk("%s: readreg error (reg == 0x%02x, ret == %i)\n",
				__func__, reg, ret);

	return b1[0];
}

static int stv0288_set_symbolrate(struct dvb_frontend *fe, u32 srate)
{
	struct stv0288_state *state = fe->demodulator_priv;
	unsigned int temp;
	unsigned char b[3];

	if ((srate < 1000000) || (srate > 45000000))
		return -EINVAL;

	temp = (unsigned int)srate / 1000;

		temp = temp * 32768;
		temp = temp / 25;
		temp = temp / 125;
		b[0] = (unsigned char)((temp >> 12) & 0xff);
		b[1] = (unsigned char)((temp >> 4) & 0xff);
		b[2] = (unsigned char)((temp << 4) & 0xf0);
		stv0288_writeregI(state, 0x28, 0x80); /* SFRH */
		stv0288_writeregI(state, 0x29, 0); /* SFRM */
		stv0288_writeregI(state, 0x2a, 0); /* SFRL */

		stv0288_writeregI(state, 0x28, b[0]);
		stv0288_writeregI(state, 0x29, b[1]);
		stv0288_writeregI(state, 0x2a, b[2]);
		dprintk("stv0288: stv0288_set_symbolrate\n");

	return 0;
}

static int stv0288_send_diseqc_msg(struct dvb_frontend *fe,
				    struct dvb_diseqc_master_cmd *m)
{
	struct stv0288_state *state = fe->demodulator_priv;

	int i;

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

	stv0288_writeregI(state, 0x09, 0);
	msleep(30);
	stv0288_writeregI(state, 0x05, 0x16);

	for (i = 0; i < m->msg_len; i++) {
		if (stv0288_writeregI(state, 0x06, m->msg[i]))
			return -EREMOTEIO;
		msleep(12);
	}

	return 0;
}

static int stv0288_send_diseqc_burst(struct dvb_frontend *fe,
						fe_sec_mini_cmd_t burst)
{
	struct stv0288_state *state = fe->demodulator_priv;

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

	if (stv0288_writeregI(state, 0x05, 0x16))/* burst mode */
		return -EREMOTEIO;

	if (stv0288_writeregI(state, 0x06, burst == SEC_MINI_A ? 0x00 : 0xff))
		return -EREMOTEIO;

	if (stv0288_writeregI(state, 0x06, 0x12))
		return -EREMOTEIO;

	return 0;
}

static int stv0288_set_tone(struct dvb_frontend *fe, fe_sec_tone_mode_t tone)
{
	struct stv0288_state *state = fe->demodulator_priv;

	switch (tone) {
	case SEC_TONE_ON:
		if (stv0288_writeregI(state, 0x05, 0x10))/* burst mode */
			return -EREMOTEIO;
		return stv0288_writeregI(state, 0x06, 0xff);

	case SEC_TONE_OFF:
		if (stv0288_writeregI(state, 0x05, 0x13))/* burst mode */
			return -EREMOTEIO;
		return stv0288_writeregI(state, 0x06, 0x00);

	default:
		return -EINVAL;
	}
}

static u8 stv0288_inittab[] = {
	0x01, 0x15,
	0x02, 0x20,
	0x09, 0x0,
	0x0a, 0x4,
	0x0b, 0x0,
	0x0c, 0x0,
	0x0d, 0x0,
	0x0e, 0xd4,
	0x0f, 0x30,
	0x11, 0x80,
	0x12, 0x03,
	0x13, 0x48,
	0x14, 0x84,
	0x15, 0x45,
	0x16, 0xb7,
	0x17, 0x9c,
	0x18, 0x0,
	0x19, 0xa6,
	0x1a, 0x88,
	0x1b, 0x8f,
	0x1c, 0xf0,
	0x20, 0x0b,
	0x21, 0x54,
	0x22, 0x0,
	0x23, 0x0,
	0x2b, 0xff,
	0x2c, 0xf7,
	0x30, 0x0,
	0x31, 0x1e,
	0x32, 0x14,
	0x33, 0x0f,
	0x34, 0x09,
	0x35, 0x0c,
	0x36, 0x05,
	0x37, 0x2f,
	0x38, 0x16,
	0x39, 0xbe,
	0x3a, 0x0,
	0x3b, 0x13,
	0x3c, 0x11,
	0x3d, 0x30,
	0x40, 0x63,
	0x41, 0x04,
	0x42, 0x60,
	0x43, 0x00,
	0x44, 0x00,
	0x45, 0x00,
	0x46, 0x00,
	0x47, 0x00,
	0x4a, 0x00,
	0x50, 0x10,
	0x51, 0x38,
	0x52, 0x21,
	0x58, 0x54,
	0x59, 0x86,
	0x5a, 0x0,
	0x5b, 0x9b,
	0x5c, 0x08,
	0x5d, 0x7f,
	0x5e, 0x0,
	0x5f, 0xff,
	0x70, 0x0,
	0x71, 0x0,
	0x72, 0x0,
	0x74, 0x0,
	0x75, 0x0,
	0x76, 0x0,
	0x81, 0x0,
	0x82, 0x3f,
	0x83, 0x3f,
	0x84, 0x0,
	0x85, 0x0,
	0x88, 0x0,
	0x89, 0x0,
	0x8a, 0x0,
	0x8b, 0x0,
	0x8c, 0x0,
	0x90, 0x0,
	0x91, 0x0,
	0x92, 0x0,
	0x93, 0x0,
	0x94, 0x1c,
	0x97, 0x0,
	0xa0, 0x48,
	0xa1, 0x0,
	0xb0, 0xb8,
	0xb1, 0x3a,
	0xb2, 0x10,
	0xb3, 0x82,
	0xb4, 0x80,
	0xb5, 0x82,
	0xb6, 0x82,
	0xb7, 0x82,
	0xb8, 0x20,
	0xb9, 0x0,
	0xf0, 0x0,
	0xf1, 0x0,
	0xf2, 0xc0,
	0x51, 0x36,
	0x52, 0x09,
	0x53, 0x94,
	0x54, 0x62,
	0x55, 0x29,
	0x56, 0x64,
	0x57, 0x2b,
	0xff, 0xff,
};

static int stv0288_set_voltage(struct dvb_frontend *fe, fe_sec_voltage_t volt)
{
	dprintk("%s: %s\n", __func__,
		volt == SEC_VOLTAGE_13 ? "SEC_VOLTAGE_13" :
		volt == SEC_VOLTAGE_18 ? "SEC_VOLTAGE_18" : "??");

	return 0;
}

static int stv0288_init(struct dvb_frontend *fe)
{
	struct stv0288_state *state = fe->demodulator_priv;
	int i;
	u8 reg;
	u8 val;

	dprintk("stv0288: init chip\n");
	stv0288_writeregI(state, 0x41, 0x04);
	msleep(50);

	/* we have default inittab */
	if (state->config->inittab == NULL) {
		for (i = 0; !(stv0288_inittab[i] == 0xff &&
				stv0288_inittab[i + 1] == 0xff); i += 2)
			stv0288_writeregI(state, stv0288_inittab[i],
					stv0288_inittab[i + 1]);
	} else {
		for (i = 0; ; i += 2)  {
			reg = state->config->inittab[i];
			val = state->config->inittab[i+1];
			if (reg == 0xff && val == 0xff)
				break;
			stv0288_writeregI(state, reg, val);
		}
	}
	return 0;
}

static int stv0288_read_status(struct dvb_frontend *fe, fe_status_t *status)
{
	struct stv0288_state *state = fe->demodulator_priv;

	u8 sync = stv0288_readreg(state, 0x24);
	if (sync == 255)
		sync = 0;

	dprintk("%s : FE_READ_STATUS : VSTATUS: 0x%02x\n", __func__, sync);

	*status = 0;

	if ((sync & 0x08) == 0x08) {
		*status |= FE_HAS_LOCK;
		dprintk("stv0288 has locked\n");
	}

	return 0;
}

static int stv0288_read_ber(struct dvb_frontend *fe, u32 *ber)
{
	struct stv0288_state *state = fe->demodulator_priv;

	if (state->errmode != STATUS_BER)
		return 0;
	*ber = (stv0288_readreg(state, 0x26) << 8) |
					stv0288_readreg(state, 0x27);
	dprintk("stv0288_read_ber %d\n", *ber);

	return 0;
}


static int stv0288_read_signal_strength(struct dvb_frontend *fe, u16 *strength)
{
	struct stv0288_state *state = fe->demodulator_priv;

	s32 signal =  0xffff - ((stv0288_readreg(state, 0x10) << 8));


	signal = signal * 5 / 4;
	*strength = (signal > 0xffff) ? 0xffff : (signal < 0) ? 0 : signal;
	dprintk("stv0288_read_signal_strength %d\n", *strength);

	return 0;
}
static int stv0288_sleep(struct dvb_frontend *fe)
{
	struct stv0288_state *state = fe->demodulator_priv;

	stv0288_writeregI(state, 0x41, 0x84);
	state->initialised = 0;

	return 0;
}
static int stv0288_read_snr(struct dvb_frontend *fe, u16 *snr)
{
	struct stv0288_state *state = fe->demodulator_priv;

	s32 xsnr = 0xffff - ((stv0288_readreg(state, 0x2d) << 8)
			   | stv0288_readreg(state, 0x2e));
	xsnr = 3 * (xsnr - 0xa100);
	*snr = (xsnr > 0xffff) ? 0xffff : (xsnr < 0) ? 0 : xsnr;
	dprintk("stv0288_read_snr %d\n", *snr);

	return 0;
}

static int stv0288_read_ucblocks(struct dvb_frontend *fe, u32 *ucblocks)
{
	struct stv0288_state *state = fe->demodulator_priv;

	if (state->errmode != STATUS_BER)
		return 0;
	*ucblocks = (stv0288_readreg(state, 0x26) << 8) |
					stv0288_readreg(state, 0x27);
	dprintk("stv0288_read_ber %d\n", *ucblocks);

	return 0;
}

static int stv0288_set_property(struct dvb_frontend *fe, struct dtv_property *p)
{
	dprintk("%s(..)\n", __func__);
	return 0;
}

static int stv0288_get_property(struct dvb_frontend *fe, struct dtv_property *p)
{
	dprintk("%s(..)\n", __func__);
	return 0;
}

static int stv0288_set_frontend(struct dvb_frontend *fe,
					struct dvb_frontend_parameters *dfp)
{
	struct stv0288_state *state = fe->demodulator_priv;
	struct dtv_frontend_properties *c = &fe->dtv_property_cache;

	char tm;
	unsigned char tda[3];

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

	if (c->delivery_system != SYS_DVBS) {
			dprintk("%s: unsupported delivery "
				"system selected (%d)\n",
				__func__, c->delivery_system);
			return -EOPNOTSUPP;
	}

	if (state->config->set_ts_params)
		state->config->set_ts_params(fe, 0);

	/* only frequency & symbol_rate are used for tuner*/
	dfp->frequency = c->frequency;
	dfp->u.qpsk.symbol_rate = c->symbol_rate;
	if (fe->ops.tuner_ops.set_params) {
		fe->ops.tuner_ops.set_params(fe, dfp);
		if (fe->ops.i2c_gate_ctrl)
			fe->ops.i2c_gate_ctrl(fe, 0);
	}

	udelay(10);
	stv0288_set_symbolrate(fe, c->symbol_rate);
	/* Carrier lock control register */
	stv0288_writeregI(state, 0x15, 0xc5);

	tda[0] = 0x2b; /* CFRM */
	tda[2] = 0x0; /* CFRL */
	for (tm = -6; tm < 7;) {
		/* Viterbi status */
		if (stv0288_readreg(state, 0x24) & 0x80)
			break;

		tda[2] += 40;
		if (tda[2] < 40)
			tm++;
		tda[1] = (unsigned char)tm;
		stv0288_writeregI(state, 0x2b, tda[1]);
		stv0288_writeregI(state, 0x2c, tda[2]);
		udelay(30);
	}

	state->tuner_frequency = c->frequency;
	state->fec_inner = FEC_AUTO;
	state->symbol_rate = c->symbol_rate;

	return 0;
}

static int stv0288_i2c_gate_ctrl(struct dvb_frontend *fe, int enable)
{
	struct stv0288_state *state = fe->demodulator_priv;

	if (enable)
		stv0288_writeregI(state, 0x01, 0xb5);
	else
		stv0288_writeregI(state, 0x01, 0x35);

	udelay(1);

	return 0;
}

static void stv0288_release(struct dvb_frontend *fe)
{
	struct stv0288_state *state = fe->demodulator_priv;
	kfree(state);
}

static struct dvb_frontend_ops stv0288_ops = {

	.info = {
		.name			= "ST STV0288 DVB-S",
		.type			= FE_QPSK,
		.frequency_min		= 950000,
		.frequency_max		= 2150000,
		.frequency_stepsize	= 1000,	 /* kHz for QPSK frontends */
		.frequency_tolerance	= 0,
		.symbol_rate_min	= 1000000,
		.symbol_rate_max	= 45000000,
		.symbol_rate_tolerance	= 500,	/* ppm */
		.caps = FE_CAN_FEC_1_2 | FE_CAN_FEC_2_3 | FE_CAN_FEC_3_4 |
		      FE_CAN_FEC_5_6 | FE_CAN_FEC_7_8 |
		      FE_CAN_QPSK |
		      FE_CAN_FEC_AUTO
	},

	.release = stv0288_release,
	.init = stv0288_init,
	.sleep = stv0288_sleep,
	.write = stv0288_write,
	.i2c_gate_ctrl = stv0288_i2c_gate_ctrl,
	.read_status = stv0288_read_status,
	.read_ber = stv0288_read_ber,
	.read_signal_strength = stv0288_read_signal_strength,
	.read_snr = stv0288_read_snr,
	.read_ucblocks = stv0288_read_ucblocks,
	.diseqc_send_master_cmd = stv0288_send_diseqc_msg,
	.diseqc_send_burst = stv0288_send_diseqc_burst,
	.set_tone = stv0288_set_tone,
	.set_voltage = stv0288_set_voltage,

	.set_property = stv0288_set_property,
	.get_property = stv0288_get_property,
	.set_frontend = stv0288_set_frontend,
};

struct dvb_frontend *stv0288_attach(const struct stv0288_config *config,
				    struct i2c_adapter *i2c)
{
	struct stv0288_state *state = NULL;
	int id;

	/* allocate memory for the internal state */
	state = kmalloc(sizeof(struct stv0288_state), GFP_KERNEL);
	if (state == NULL)
		goto error;

	/* setup the state */
	state->config = config;
	state->i2c = i2c;
	state->initialised = 0;
	state->tuner_frequency = 0;
	state->symbol_rate = 0;
	state->fec_inner = 0;
	state->errmode = STATUS_BER;

	stv0288_writeregI(state, 0x41, 0x04);
	msleep(200);
	id = stv0288_readreg(state, 0x00);
	dprintk("stv0288 id %x\n", id);

	/* register 0x00 contains 0x11 for STV0288  */
	if (id != 0x11)
		goto error;

	/* create dvb_frontend */
	memcpy(&state->frontend.ops, &stv0288_ops,
			sizeof(struct dvb_frontend_ops));
	state->frontend.demodulator_priv = state;
	return &state->frontend;

error:
	kfree(state);

	return NULL;
}
EXPORT_SYMBOL(stv0288_attach);

module_param(debug_legacy_dish_switch, int, 0444);
MODULE_PARM_DESC(debug_legacy_dish_switch,
		"Enable timing analysis for Dish Network legacy switches");

module_param(debug, int, 0644);
MODULE_PARM_DESC(debug, "Turn on/off frontend debugging (default:off).");

MODULE_DESCRIPTION("ST STV0288 DVB Demodulator driver");
MODULE_AUTHOR("Georg Acher, Bob Liu, Igor liplianin");
MODULE_LICENSE("GPL");

"hl opt">; #endif module_param(lance_debug, int, 0); MODULE_PARM_DESC(lance_debug, "atarilance debug level (0-3)"); MODULE_LICENSE("GPL"); /* Print debug messages on probing? */ #undef LANCE_DEBUG_PROBE #define DPRINTK(n,a) \ do { \ if (lance_debug >= n) \ printk a; \ } while( 0 ) #ifdef LANCE_DEBUG_PROBE # define PROBE_PRINT(a) printk a #else # define PROBE_PRINT(a) #endif /* These define the number of Rx and Tx buffers as log2. (Only powers * of two are valid) * Much more rx buffers (32) are reserved than tx buffers (8), since receiving * is more time critical then sending and packets may have to remain in the * board's memory when main memory is low. */ #define TX_LOG_RING_SIZE 3 #define RX_LOG_RING_SIZE 5 /* These are the derived values */ #define TX_RING_SIZE (1 << TX_LOG_RING_SIZE) #define TX_RING_LEN_BITS (TX_LOG_RING_SIZE << 5) #define TX_RING_MOD_MASK (TX_RING_SIZE - 1) #define RX_RING_SIZE (1 << RX_LOG_RING_SIZE) #define RX_RING_LEN_BITS (RX_LOG_RING_SIZE << 5) #define RX_RING_MOD_MASK (RX_RING_SIZE - 1) #define TX_TIMEOUT 20 /* The LANCE Rx and Tx ring descriptors. */ struct lance_rx_head { unsigned short base; /* Low word of base addr */ volatile unsigned char flag; unsigned char base_hi; /* High word of base addr (unused) */ short buf_length; /* This length is 2s complement! */ volatile short msg_length; /* This length is "normal". */ }; struct lance_tx_head { unsigned short base; /* Low word of base addr */ volatile unsigned char flag; unsigned char base_hi; /* High word of base addr (unused) */ short length; /* Length is 2s complement! */ volatile short misc; }; struct ringdesc { unsigned short adr_lo; /* Low 16 bits of address */ unsigned char len; /* Length bits */ unsigned char adr_hi; /* High 8 bits of address (unused) */ }; /* The LANCE initialization block, described in databook. */ struct lance_init_block { unsigned short mode; /* Pre-set mode */ unsigned char hwaddr[6]; /* Physical ethernet address */ unsigned filter[2]; /* Multicast filter (unused). */ /* Receive and transmit ring base, along with length bits. */ struct ringdesc rx_ring; struct ringdesc tx_ring; }; /* The whole layout of the Lance shared memory */ struct lance_memory { struct lance_init_block init; struct lance_tx_head tx_head[TX_RING_SIZE]; struct lance_rx_head rx_head[RX_RING_SIZE]; char packet_area[0]; /* packet data follow after the * init block and the ring * descriptors and are located * at runtime */ }; /* RieblCard specifics: * The original TOS driver for these cards reserves the area from offset * 0xee70 to 0xeebb for storing configuration data. Of interest to us is the * Ethernet address there, and the magic for verifying the data's validity. * The reserved area isn't touch by packet buffers. Furthermore, offset 0xfffe * is reserved for the interrupt vector number. */ #define RIEBL_RSVD_START 0xee70 #define RIEBL_RSVD_END 0xeec0 #define RIEBL_MAGIC 0x09051990 #define RIEBL_MAGIC_ADDR ((unsigned long *)(((char *)MEM) + 0xee8a)) #define RIEBL_HWADDR_ADDR ((unsigned char *)(((char *)MEM) + 0xee8e)) #define RIEBL_IVEC_ADDR ((unsigned short *)(((char *)MEM) + 0xfffe)) /* This is a default address for the old RieblCards without a battery * that have no ethernet address at boot time. 00:00:36:04 is the * prefix for Riebl cards, the 00:00 at the end is arbitrary. */ static unsigned char OldRieblDefHwaddr[6] = { 0x00, 0x00, 0x36, 0x04, 0x00, 0x00 }; /* I/O registers of the Lance chip */ struct lance_ioreg { /* base+0x0 */ volatile unsigned short data; /* base+0x2 */ volatile unsigned short addr; unsigned char _dummy1[3]; /* base+0x7 */ volatile unsigned char ivec; unsigned char _dummy2[5]; /* base+0xd */ volatile unsigned char eeprom; unsigned char _dummy3; /* base+0xf */ volatile unsigned char mem; }; /* Types of boards this driver supports */ enum lance_type { OLD_RIEBL, /* old Riebl card without battery */ NEW_RIEBL, /* new Riebl card with battery */ PAM_CARD /* PAM card with EEPROM */ }; static char *lance_names[] = { "Riebl-Card (without battery)", "Riebl-Card (with battery)", "PAM intern card" }; /* The driver's private device structure */ struct lance_private { enum lance_type cardtype; struct lance_ioreg *iobase; struct lance_memory *mem; int cur_rx, cur_tx; /* The next free ring entry */ int dirty_tx; /* Ring entries to be freed. */ /* copy function */ void *(*memcpy_f)( void *, const void *, size_t ); /* This must be long for set_bit() */ long tx_full; spinlock_t devlock; }; /* I/O register access macros */ #define MEM lp->mem #define DREG IO->data #define AREG IO->addr #define REGA(a) (*( AREG = (a), &DREG )) /* Definitions for packet buffer access: */ #define PKT_BUF_SZ 1544 /* Get the address of a packet buffer corresponding to a given buffer head */ #define PKTBUF_ADDR(head) (((unsigned char *)(MEM)) + (head)->base) /* Possible memory/IO addresses for probing */ struct lance_addr { unsigned long memaddr; unsigned long ioaddr; int slow_flag; } lance_addr_list[] = { { 0xfe010000, 0xfe00fff0, 0 }, /* RieblCard VME in TT */ { 0xffc10000, 0xffc0fff0, 0 }, /* RieblCard VME in MegaSTE (highest byte stripped) */ { 0xffe00000, 0xffff7000, 1 }, /* RieblCard in ST (highest byte stripped) */ { 0xffd00000, 0xffff7000, 1 }, /* RieblCard in ST with hw modif. to avoid conflict with ROM (highest byte stripped) */ { 0xffcf0000, 0xffcffff0, 0 }, /* PAMCard VME in TT and MSTE (highest byte stripped) */ { 0xfecf0000, 0xfecffff0, 0 }, /* Rhotron's PAMCard VME in TT and MSTE (highest byte stripped) */ }; #define N_LANCE_ADDR ARRAY_SIZE(lance_addr_list) /* Definitions for the Lance */ /* tx_head flags */ #define TMD1_ENP 0x01 /* end of packet */ #define TMD1_STP 0x02 /* start of packet */ #define TMD1_DEF 0x04 /* deferred */ #define TMD1_ONE 0x08 /* one retry needed */ #define TMD1_MORE 0x10 /* more than one retry needed */ #define TMD1_ERR 0x40 /* error summary */ #define TMD1_OWN 0x80 /* ownership (set: chip owns) */ #define TMD1_OWN_CHIP TMD1_OWN #define TMD1_OWN_HOST 0 /* tx_head misc field */ #define TMD3_TDR 0x03FF /* Time Domain Reflectometry counter */ #define TMD3_RTRY 0x0400 /* failed after 16 retries */ #define TMD3_LCAR 0x0800 /* carrier lost */ #define TMD3_LCOL 0x1000 /* late collision */ #define TMD3_UFLO 0x4000 /* underflow (late memory) */ #define TMD3_BUFF 0x8000 /* buffering error (no ENP) */ /* rx_head flags */ #define RMD1_ENP 0x01 /* end of packet */ #define RMD1_STP 0x02 /* start of packet */ #define RMD1_BUFF 0x04 /* buffer error */ #define RMD1_CRC 0x08 /* CRC error */ #define RMD1_OFLO 0x10 /* overflow */ #define RMD1_FRAM 0x20 /* framing error */ #define RMD1_ERR 0x40 /* error summary */ #define RMD1_OWN 0x80 /* ownership (set: ship owns) */ #define RMD1_OWN_CHIP RMD1_OWN #define RMD1_OWN_HOST 0 /* register names */ #define CSR0 0 /* mode/status */ #define CSR1 1 /* init block addr (low) */ #define CSR2 2 /* init block addr (high) */ #define CSR3 3 /* misc */ #define CSR8 8 /* address filter */ #define CSR15 15 /* promiscuous mode */ /* CSR0 */ /* (R=readable, W=writeable, S=set on write, C=clear on write) */ #define CSR0_INIT 0x0001 /* initialize (RS) */ #define CSR0_STRT 0x0002 /* start (RS) */ #define CSR0_STOP 0x0004 /* stop (RS) */ #define CSR0_TDMD 0x0008 /* transmit demand (RS) */ #define CSR0_TXON 0x0010 /* transmitter on (R) */ #define CSR0_RXON 0x0020 /* receiver on (R) */ #define CSR0_INEA 0x0040 /* interrupt enable (RW) */ #define CSR0_INTR 0x0080 /* interrupt active (R) */ #define CSR0_IDON 0x0100 /* initialization done (RC) */ #define CSR0_TINT 0x0200 /* transmitter interrupt (RC) */ #define CSR0_RINT 0x0400 /* receiver interrupt (RC) */ #define CSR0_MERR 0x0800 /* memory error (RC) */ #define CSR0_MISS 0x1000 /* missed frame (RC) */ #define CSR0_CERR 0x2000 /* carrier error (no heartbeat :-) (RC) */ #define CSR0_BABL 0x4000 /* babble: tx-ed too many bits (RC) */ #define CSR0_ERR 0x8000 /* error (RC) */ /* CSR3 */ #define CSR3_BCON 0x0001 /* byte control */ #define CSR3_ACON 0x0002 /* ALE control */ #define CSR3_BSWP 0x0004 /* byte swap (1=big endian) */ /***************************** Prototypes *****************************/ static int addr_accessible( volatile void *regp, int wordflag, int writeflag ); static unsigned long lance_probe1( struct net_device *dev, struct lance_addr *init_rec ); static int lance_open( struct net_device *dev ); static void lance_init_ring( struct net_device *dev ); static int lance_start_xmit( struct sk_buff *skb, struct net_device *dev ); static irqreturn_t lance_interrupt( int irq, void *dev_id ); static int lance_rx( struct net_device *dev ); static int lance_close( struct net_device *dev ); static void set_multicast_list( struct net_device *dev ); static int lance_set_mac_address( struct net_device *dev, void *addr ); static void lance_tx_timeout (struct net_device *dev); /************************* End of Prototypes **************************/ static void *slow_memcpy( void *dst, const void *src, size_t len ) { char *cto = dst; const char *cfrom = src; while( len-- ) { *cto++ = *cfrom++; MFPDELAY(); } return( dst ); } struct net_device * __init atarilance_probe(int unit) { int i; static int found; struct net_device *dev; int err = -ENODEV; if (!MACH_IS_ATARI || found) /* Assume there's only one board possible... That seems true, since * the Riebl/PAM board's address cannot be changed. */ return ERR_PTR(-ENODEV); dev = alloc_etherdev(sizeof(struct lance_private)); if (!dev) return ERR_PTR(-ENOMEM); if (unit >= 0) { sprintf(dev->name, "eth%d", unit); netdev_boot_setup_check(dev); } for( i = 0; i < N_LANCE_ADDR; ++i ) { if (lance_probe1( dev, &lance_addr_list[i] )) { found = 1; err = register_netdev(dev); if (!err) return dev; free_irq(dev->irq, dev); break; } } free_netdev(dev); return ERR_PTR(err); } /* Derived from hwreg_present() in atari/config.c: */ static int __init addr_accessible( volatile void *regp, int wordflag, int writeflag ) { int ret; long flags; long *vbr, save_berr; local_irq_save(flags); __asm__ __volatile__ ( "movec %/vbr,%0" : "=r" (vbr) : ); save_berr = vbr[2]; __asm__ __volatile__ ( "movel %/sp,%/d1\n\t" "movel #Lberr,%2@\n\t" "moveq #0,%0\n\t" "tstl %3\n\t" "bne 1f\n\t" "moveb %1@,%/d0\n\t" "nop \n\t" "bra 2f\n" "1: movew %1@,%/d0\n\t" "nop \n" "2: tstl %4\n\t" "beq 2f\n\t" "tstl %3\n\t" "bne 1f\n\t" "clrb %1@\n\t" "nop \n\t" "moveb %/d0,%1@\n\t" "nop \n\t" "bra 2f\n" "1: clrw %1@\n\t" "nop \n\t" "movew %/d0,%1@\n\t" "nop \n" "2: moveq #1,%0\n" "Lberr: movel %/d1,%/sp" : "=&d" (ret) : "a" (regp), "a" (&vbr[2]), "rm" (wordflag), "rm" (writeflag) : "d0", "d1", "memory" ); vbr[2] = save_berr; local_irq_restore(flags); return( ret ); } static unsigned long __init lance_probe1( struct net_device *dev, struct lance_addr *init_rec ) { volatile unsigned short *memaddr = (volatile unsigned short *)init_rec->memaddr; volatile unsigned short *ioaddr = (volatile unsigned short *)init_rec->ioaddr; struct lance_private *lp; struct lance_ioreg *IO; int i; static int did_version; unsigned short save1, save2; DECLARE_MAC_BUF(mac); PROBE_PRINT(( "Probing for Lance card at mem %#lx io %#lx\n", (long)memaddr, (long)ioaddr )); /* Test whether memory readable and writable */ PROBE_PRINT(( "lance_probe1: testing memory to be accessible\n" )); if (!addr_accessible( memaddr, 1, 1 )) goto probe_fail; /* Written values should come back... */ PROBE_PRINT(( "lance_probe1: testing memory to be writable (1)\n" )); save1 = *memaddr; *memaddr = 0x0001; if (*memaddr != 0x0001) goto probe_fail; PROBE_PRINT(( "lance_probe1: testing memory to be writable (2)\n" )); *memaddr = 0x0000; if (*memaddr != 0x0000) goto probe_fail; *memaddr = save1; /* First port should be readable and writable */ PROBE_PRINT(( "lance_probe1: testing ioport to be accessible\n" )); if (!addr_accessible( ioaddr, 1, 1 )) goto probe_fail; /* and written values should be readable */ PROBE_PRINT(( "lance_probe1: testing ioport to be writeable\n" )); save2 = ioaddr[1]; ioaddr[1] = 0x0001; if (ioaddr[1] != 0x0001) goto probe_fail; /* The CSR0_INIT bit should not be readable */ PROBE_PRINT(( "lance_probe1: testing CSR0 register function (1)\n" )); save1 = ioaddr[0]; ioaddr[1] = CSR0; ioaddr[0] = CSR0_INIT | CSR0_STOP; if (ioaddr[0] != CSR0_STOP) { ioaddr[0] = save1; ioaddr[1] = save2; goto probe_fail; } PROBE_PRINT(( "lance_probe1: testing CSR0 register function (2)\n" )); ioaddr[0] = CSR0_STOP; if (ioaddr[0] != CSR0_STOP) { ioaddr[0] = save1; ioaddr[1] = save2; goto probe_fail; } /* Now ok... */ PROBE_PRINT(( "lance_probe1: Lance card detected\n" )); goto probe_ok; probe_fail: return( 0 ); probe_ok: lp = (struct lance_private *)dev->priv; MEM = (struct lance_memory *)memaddr; IO = lp->iobase = (struct lance_ioreg *)ioaddr; dev->base_addr = (unsigned long)ioaddr; /* informational only */ lp->memcpy_f = init_rec->slow_flag ? slow_memcpy : memcpy; REGA( CSR0 ) = CSR0_STOP; /* Now test for type: If the eeprom I/O port is readable, it is a * PAM card */ if (addr_accessible( &(IO->eeprom), 0, 0 )) { /* Switch back to Ram */ i = IO->mem; lp->cardtype = PAM_CARD; } else if (*RIEBL_MAGIC_ADDR == RIEBL_MAGIC) { lp->cardtype = NEW_RIEBL; } else lp->cardtype = OLD_RIEBL; if (lp->cardtype == PAM_CARD || memaddr == (unsigned short *)0xffe00000) { /* PAMs card and Riebl on ST use level 5 autovector */ if (request_irq(IRQ_AUTO_5, lance_interrupt, IRQ_TYPE_PRIO, "PAM/Riebl-ST Ethernet", dev)) { printk( "Lance: request for irq %d failed\n", IRQ_AUTO_5 ); return( 0 ); } dev->irq = (unsigned short)IRQ_AUTO_5; } else { /* For VME-RieblCards, request a free VME int; * (This must be unsigned long, since dev->irq is short and the * IRQ_MACHSPEC bit would be cut off...) */ unsigned long irq = atari_register_vme_int(); if (!irq) { printk( "Lance: request for VME interrupt failed\n" ); return( 0 ); } if (request_irq(irq, lance_interrupt, IRQ_TYPE_PRIO, "Riebl-VME Ethernet", dev)) { printk( "Lance: request for irq %ld failed\n", irq ); return( 0 ); } dev->irq = irq; } printk("%s: %s at io %#lx, mem %#lx, irq %d%s, hwaddr ", dev->name, lance_names[lp->cardtype], (unsigned long)ioaddr, (unsigned long)memaddr, dev->irq, init_rec->slow_flag ? " (slow memcpy)" : "" ); /* Get the ethernet address */ switch( lp->cardtype ) { case OLD_RIEBL: /* No ethernet address! (Set some default address) */ memcpy( dev->dev_addr, OldRieblDefHwaddr, 6 ); break; case NEW_RIEBL: lp->memcpy_f( dev->dev_addr, RIEBL_HWADDR_ADDR, 6 ); break; case PAM_CARD: i = IO->eeprom; for( i = 0; i < 6; ++i ) dev->dev_addr[i] = ((((unsigned short *)MEM)[i*2] & 0x0f) << 4) | ((((unsigned short *)MEM)[i*2+1] & 0x0f)); i = IO->mem; break; } printk("%s\n", print_mac(mac, dev->dev_addr)); if (lp->cardtype == OLD_RIEBL) { printk( "%s: Warning: This is a default ethernet address!\n", dev->name ); printk( " Use \"ifconfig hw ether ...\" to set the address.\n" ); } spin_lock_init(&lp->devlock); MEM->init.mode = 0x0000; /* Disable Rx and Tx. */ for( i = 0; i < 6; i++ ) MEM->init.hwaddr[i] = dev->dev_addr[i^1]; /* <- 16 bit swap! */ MEM->init.filter[0] = 0x00000000; MEM->init.filter[1] = 0x00000000; MEM->init.rx_ring.adr_lo = offsetof( struct lance_memory, rx_head ); MEM->init.rx_ring.adr_hi = 0; MEM->init.rx_ring.len = RX_RING_LEN_BITS; MEM->init.tx_ring.adr_lo = offsetof( struct lance_memory, tx_head ); MEM->init.tx_ring.adr_hi = 0; MEM->init.tx_ring.len = TX_RING_LEN_BITS; if (lp->cardtype == PAM_CARD) IO->ivec = IRQ_SOURCE_TO_VECTOR(dev->irq); else *RIEBL_IVEC_ADDR = IRQ_SOURCE_TO_VECTOR(dev->irq); if (did_version++ == 0) DPRINTK( 1, ( version )); /* The LANCE-specific entries in the device structure. */ dev->open = &lance_open; dev->hard_start_xmit = &lance_start_xmit; dev->stop = &lance_close; dev->set_multicast_list = &set_multicast_list; dev->set_mac_address = &lance_set_mac_address; /* XXX MSch */ dev->tx_timeout = lance_tx_timeout; dev->watchdog_timeo = TX_TIMEOUT; return( 1 ); } static int lance_open( struct net_device *dev ) { struct lance_private *lp = (struct lance_private *)dev->priv; struct lance_ioreg *IO = lp->iobase; int i; DPRINTK( 2, ( "%s: lance_open()\n", dev->name )); lance_init_ring(dev); /* Re-initialize the LANCE, and start it when done. */ REGA( CSR3 ) = CSR3_BSWP | (lp->cardtype == PAM_CARD ? CSR3_ACON : 0); REGA( CSR2 ) = 0; REGA( CSR1 ) = 0; REGA( CSR0 ) = CSR0_INIT; /* From now on, AREG is kept to point to CSR0 */ i = 1000000; while (--i > 0) if (DREG & CSR0_IDON) break; if (i < 0 || (DREG & CSR0_ERR)) { DPRINTK( 2, ( "lance_open(): opening %s failed, i=%d, csr0=%04x\n", dev->name, i, DREG )); DREG = CSR0_STOP; return( -EIO ); } DREG = CSR0_IDON; DREG = CSR0_STRT; DREG = CSR0_INEA; netif_start_queue (dev); DPRINTK( 2, ( "%s: LANCE is open, csr0 %04x\n", dev->name, DREG )); return( 0 ); } /* Initialize the LANCE Rx and Tx rings. */ static void lance_init_ring( struct net_device *dev ) { struct lance_private *lp = (struct lance_private *)dev->priv; int i; unsigned offset; lp->tx_full = 0; lp->cur_rx = lp->cur_tx = 0; lp->dirty_tx = 0; offset = offsetof( struct lance_memory, packet_area ); /* If the packet buffer at offset 'o' would conflict with the reserved area * of RieblCards, advance it */ #define CHECK_OFFSET(o) \ do { \ if (lp->cardtype == OLD_RIEBL || lp->cardtype == NEW_RIEBL) { \ if (((o) < RIEBL_RSVD_START) ? (o)+PKT_BUF_SZ > RIEBL_RSVD_START \ : (o) < RIEBL_RSVD_END) \ (o) = RIEBL_RSVD_END; \ } \ } while(0) for( i = 0; i < TX_RING_SIZE; i++ ) { CHECK_OFFSET(offset); MEM->tx_head[i].base = offset; MEM->tx_head[i].flag = TMD1_OWN_HOST; MEM->tx_head[i].base_hi = 0; MEM->tx_head[i].length = 0; MEM->tx_head[i].misc = 0; offset += PKT_BUF_SZ; } for( i = 0; i < RX_RING_SIZE; i++ ) { CHECK_OFFSET(offset); MEM->rx_head[i].base = offset; MEM->rx_head[i].flag = TMD1_OWN_CHIP; MEM->rx_head[i].base_hi = 0; MEM->rx_head[i].buf_length = -PKT_BUF_SZ; MEM->rx_head[i].msg_length = 0; offset += PKT_BUF_SZ; } } /* XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX */ static void lance_tx_timeout (struct net_device *dev) { struct lance_private *lp = (struct lance_private *) dev->priv; struct lance_ioreg *IO = lp->iobase; AREG = CSR0; DPRINTK( 1, ( "%s: transmit timed out, status %04x, resetting.\n", dev->name, DREG )); DREG = CSR0_STOP; /* * Always set BSWP after a STOP as STOP puts it back into * little endian mode. */ REGA( CSR3 ) = CSR3_BSWP | (lp->cardtype == PAM_CARD ? CSR3_ACON : 0); dev->stats.tx_errors++; #ifndef final_version { int i; DPRINTK( 2, ( "Ring data: dirty_tx %d cur_tx %d%s cur_rx %d\n", lp->dirty_tx, lp->cur_tx, lp->tx_full ? " (full)" : "", lp->cur_rx )); for( i = 0 ; i < RX_RING_SIZE; i++ ) DPRINTK( 2, ( "rx #%d: base=%04x blen=%04x mlen=%04x\n", i, MEM->rx_head[i].base, -MEM->rx_head[i].buf_length, MEM->rx_head[i].msg_length )); for( i = 0 ; i < TX_RING_SIZE; i++ ) DPRINTK( 2, ( "tx #%d: base=%04x len=%04x misc=%04x\n", i, MEM->tx_head[i].base, -MEM->tx_head[i].length, MEM->tx_head[i].misc )); } #endif /* XXX MSch: maybe purge/reinit ring here */ /* lance_restart, essentially */ lance_init_ring(dev); REGA( CSR0 ) = CSR0_INEA | CSR0_INIT | CSR0_STRT; dev->trans_start = jiffies; netif_wake_queue (dev); } /* XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX */ static int lance_start_xmit( struct sk_buff *skb, struct net_device *dev ) { struct lance_private *lp = (struct lance_private *)dev->priv; struct lance_ioreg *IO = lp->iobase; int entry, len; struct lance_tx_head *head; unsigned long flags; DECLARE_MAC_BUF(mac); DECLARE_MAC_BUF(mac2); DPRINTK( 2, ( "%s: lance_start_xmit() called, csr0 %4.4x.\n", dev->name, DREG )); /* The old LANCE chips doesn't automatically pad buffers to min. size. */ len = skb->len; if (len < ETH_ZLEN) len = ETH_ZLEN; /* PAM-Card has a bug: Can only send packets with even number of bytes! */ else if (lp->cardtype == PAM_CARD && (len & 1)) ++len; if (len > skb->len) { if (skb_padto(skb, len)) return 0; } netif_stop_queue (dev); /* Fill in a Tx ring entry */ if (lance_debug >= 3) { printk( "%s: TX pkt type 0x%04x from " "%s to %s" " data at 0x%08x len %d\n", dev->name, ((u_short *)skb->data)[6], print_mac(mac, &skb->data[6]), print_mac(mac2, skb->data),