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path: root/drivers/acpi/thermal.c
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/*
 *  acpi_thermal.c - ACPI Thermal Zone Driver ($Revision: 41 $)
 *
 *  Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
 *  Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
 *
 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
 *
 *  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.,
 *  59 Temple Place, Suite 330, Boston, MA 02111-1307 USA.
 *
 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
 *
 *  This driver fully implements the ACPI thermal policy as described in the
 *  ACPI 2.0 Specification.
 *
 *  TBD: 1. Implement passive cooling hysteresis.
 *       2. Enhance passive cooling (CPU) states/limit interface to support
 *          concepts of 'multiple limiters', upper/lower limits, etc.
 *
 */

#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/dmi.h>
#include <linux/init.h>
#include <linux/slab.h>
#include <linux/types.h>
#include <linux/proc_fs.h>
#include <linux/jiffies.h>
#include <linux/kmod.h>
#include <linux/seq_file.h>
#include <linux/reboot.h>
#include <linux/device.h>
#include <asm/uaccess.h>
#include <linux/thermal.h>
#include <acpi/acpi_bus.h>
#include <acpi/acpi_drivers.h>

#define PREFIX "ACPI: "

#define ACPI_THERMAL_CLASS		"thermal_zone"
#define ACPI_THERMAL_DEVICE_NAME	"Thermal Zone"
#define ACPI_THERMAL_FILE_STATE		"state"
#define ACPI_THERMAL_FILE_TEMPERATURE	"temperature"
#define ACPI_THERMAL_FILE_TRIP_POINTS	"trip_points"
#define ACPI_THERMAL_FILE_COOLING_MODE	"cooling_mode"
#define ACPI_THERMAL_FILE_POLLING_FREQ	"polling_frequency"
#define ACPI_THERMAL_NOTIFY_TEMPERATURE	0x80
#define ACPI_THERMAL_NOTIFY_THRESHOLDS	0x81
#define ACPI_THERMAL_NOTIFY_DEVICES	0x82
#define ACPI_THERMAL_NOTIFY_CRITICAL	0xF0
#define ACPI_THERMAL_NOTIFY_HOT		0xF1
#define ACPI_THERMAL_MODE_ACTIVE	0x00

#define ACPI_THERMAL_MAX_ACTIVE	10
#define ACPI_THERMAL_MAX_LIMIT_STR_LEN 65

#define _COMPONENT		ACPI_THERMAL_COMPONENT
ACPI_MODULE_NAME("thermal");

MODULE_AUTHOR("Paul Diefenbaugh");
MODULE_DESCRIPTION("ACPI Thermal Zone Driver");
MODULE_LICENSE("GPL");

static int act;
module_param(act, int, 0644);
MODULE_PARM_DESC(act, "Disable or override all lowest active trip points.");

static int crt;
module_param(crt, int, 0644);
MODULE_PARM_DESC(crt, "Disable or lower all critical trip points.");

static int tzp;
module_param(tzp, int, 0444);
MODULE_PARM_DESC(tzp, "Thermal zone polling frequency, in 1/10 seconds.");

static int nocrt;
module_param(nocrt, int, 0);
MODULE_PARM_DESC(nocrt, "Set to take no action upon ACPI thermal zone critical trips points.");

static int off;
module_param(off, int, 0);
MODULE_PARM_DESC(off, "Set to disable ACPI thermal support.");

static int psv;
module_param(psv, int, 0644);
MODULE_PARM_DESC(psv, "Disable or override all passive trip points.");

static int acpi_thermal_add(struct acpi_device *device);
static int acpi_thermal_remove(struct acpi_device *device, int type);
static int acpi_thermal_resume(struct acpi_device *device);
static void acpi_thermal_notify(struct acpi_device *device, u32 event);
static int acpi_thermal_state_open_fs(struct inode *inode, struct file *file);
static int acpi_thermal_temp_open_fs(struct inode *inode, struct file *file);
static int acpi_thermal_trip_open_fs(struct inode *inode, struct file *file);
static int acpi_thermal_cooling_open_fs(struct inode *inode, struct file *file);
static ssize_t acpi_thermal_write_cooling_mode(struct file *,
					       const char __user *, size_t,
					       loff_t *);
static int acpi_thermal_polling_open_fs(struct inode *inode, struct file *file);
static ssize_t acpi_thermal_write_polling(struct file *, const char __user *,
					  size_t, loff_t *);

static const struct acpi_device_id  thermal_device_ids[] = {
	{ACPI_THERMAL_HID, 0},
	{"", 0},
};
MODULE_DEVICE_TABLE(acpi, thermal_device_ids);

static struct acpi_driver acpi_thermal_driver = {
	.name = "thermal",
	.class = ACPI_THERMAL_CLASS,
	.ids = thermal_device_ids,
	.ops = {
		.add = acpi_thermal_add,
		.remove = acpi_thermal_remove,
		.resume = acpi_thermal_resume,
		.notify = acpi_thermal_notify,
		},
};

struct acpi_thermal_state {
	u8 critical:1;
	u8 hot:1;
	u8 passive:1;
	u8 active:1;
	u8 reserved:4;
	int active_index;
};

struct acpi_thermal_state_flags {
	u8 valid:1;
	u8 enabled:1;
	u8 reserved:6;
};

struct acpi_thermal_critical {
	struct acpi_thermal_state_flags flags;
	unsigned long temperature;
};

struct acpi_thermal_hot {
	struct acpi_thermal_state_flags flags;
	unsigned long temperature;
};

struct acpi_thermal_passive {
	struct acpi_thermal_state_flags flags;
	unsigned long temperature;
	unsigned long tc1;
	unsigned long tc2;
	unsigned long tsp;
	struct acpi_handle_list devices;
};

struct acpi_thermal_active {
	struct acpi_thermal_state_flags flags;
	unsigned long temperature;
	struct acpi_handle_list devices;
};

struct acpi_thermal_trips {
	struct acpi_thermal_critical critical;
	struct acpi_thermal_hot hot;
	struct acpi_thermal_passive passive;
	struct acpi_thermal_active active[ACPI_THERMAL_MAX_ACTIVE];
};

struct acpi_thermal_flags {
	u8 cooling_mode:1;	/* _SCP */
	u8 devices:1;		/* _TZD */
	u8 reserved:6;
};

struct acpi_thermal {
	struct acpi_device * device;
	acpi_bus_id name;
	unsigned long temperature;
	unsigned long last_temperature;
	unsigned long polling_frequency;
	volatile u8 zombie;
	struct acpi_thermal_flags flags;
	struct acpi_thermal_state state;
	struct acpi_thermal_trips trips;
	struct acpi_handle_list devices;
	struct thermal_zone_device *thermal_zone;
	int tz_enabled;
	int kelvin_offset;
	struct mutex lock;
};

static const struct file_operations acpi_thermal_state_fops = {
	.owner = THIS_MODULE,
	.open = acpi_thermal_state_open_fs,
	.read = seq_read,
	.llseek = seq_lseek,
	.release = single_release,
};

static const struct file_operations acpi_thermal_temp_fops = {
	.owner = THIS_MODULE,
	.open = acpi_thermal_temp_open_fs,
	.read = seq_read,
	.llseek = seq_lseek,
	.release = single_release,
};

static const struct file_operations acpi_thermal_trip_fops = {
	.owner = THIS_MODULE,
	.open = acpi_thermal_trip_open_fs,
	.read = seq_read,
	.llseek = seq_lseek,
	.release = single_release,
};

static const struct file_operations acpi_thermal_cooling_fops = {
	.owner = THIS_MODULE,
	.open = acpi_thermal_cooling_open_fs,
	.read = seq_read,
	.write = acpi_thermal_write_cooling_mode,
	.llseek = seq_lseek,
	.release = single_release,
};

static const struct file_operations acpi_thermal_polling_fops = {
	.owner = THIS_MODULE,
	.open = acpi_thermal_polling_open_fs,
	.read = seq_read,
	.write = acpi_thermal_write_polling,
	.llseek = seq_lseek,
	.release = single_release,
};

/* --------------------------------------------------------------------------
                             Thermal Zone Management
   -------------------------------------------------------------------------- */

static int acpi_thermal_get_temperature(struct acpi_thermal *tz)
{
	acpi_status status = AE_OK;
	unsigned long long tmp;

	if (!tz)
		return -EINVAL;

	tz->last_temperature = tz->temperature;

	status = acpi_evaluate_integer(tz->device->handle, "_TMP", NULL, &tmp);
	if (ACPI_FAILURE(status))
		return -ENODEV;

	tz->temperature = tmp;
	ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Temperature is %lu dK\n",
			  tz->temperature));

	return 0;
}

static int acpi_thermal_get_polling_frequency(struct acpi_thermal *tz)
{
	acpi_status status = AE_OK;
	unsigned long long tmp;

	if (!tz)
		return -EINVAL;

	status = acpi_evaluate_integer(tz->device->handle, "_TZP", NULL, &tmp);
	if (ACPI_FAILURE(status))
		return -ENODEV;

	tz->polling_frequency = tmp;
	ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Polling frequency is %lu dS\n",
			  tz->polling_frequency));

	return 0;
}

static int acpi_thermal_set_polling(struct acpi_thermal *tz, int seconds)
{

	if (!tz)
		return -EINVAL;

	tz->polling_frequency = seconds * 10;	/* Convert value to deci-seconds */

	tz->thermal_zone->polling_delay = seconds * 1000;

	if (tz->tz_enabled)
		thermal_zone_device_update(tz->thermal_zone);

	ACPI_DEBUG_PRINT((ACPI_DB_INFO,
			  "Polling frequency set to %lu seconds\n",
			  tz->polling_frequency/10));

	return 0;
}

static int acpi_thermal_set_cooling_mode(struct acpi_thermal *tz, int mode)
{
	acpi_status status = AE_OK;
	union acpi_object arg0 = { ACPI_TYPE_INTEGER };
	struct acpi_object_list arg_list = { 1, &arg0 };
	acpi_handle handle = NULL;


	if (!tz)
		return -EINVAL;

	status = acpi_get_handle(tz->device->handle, "_SCP", &handle);
	if (ACPI_FAILURE(status)) {
		ACPI_DEBUG_PRINT((ACPI_DB_INFO, "_SCP not present\n"));
		return -ENODEV;
	}

	arg0.integer.value = mode;

	status = acpi_evaluate_object(handle, NULL, &arg_list, NULL);
	if (ACPI_FAILURE(status))
		return -ENODEV;

	return 0;
}

#define ACPI_TRIPS_CRITICAL	0x01
#define ACPI_TRIPS_HOT		0x02
#define ACPI_TRIPS_PASSIVE	0x04
#define ACPI_TRIPS_ACTIVE	0x08
#define ACPI_TRIPS_DEVICES	0x10

#define ACPI_TRIPS_REFRESH_THRESHOLDS	(ACPI_TRIPS_PASSIVE | ACPI_TRIPS_ACTIVE)
#define ACPI_TRIPS_REFRESH_DEVICES	ACPI_TRIPS_DEVICES

#define ACPI_TRIPS_INIT      (ACPI_TRIPS_CRITICAL | ACPI_TRIPS_HOT |	\
			      ACPI_TRIPS_PASSIVE | ACPI_TRIPS_ACTIVE |	\
			      ACPI_TRIPS_DEVICES)

/*
 * This exception is thrown out in two cases:
 * 1.An invalid trip point becomes invalid or a valid trip point becomes invalid
 *   when re-evaluating the AML code.
 * 2.TODO: Devices listed in _PSL, _ALx, _TZD may change.
 *   We need to re-bind the cooling devices of a thermal zone when this occurs.
 */
#define ACPI_THERMAL_TRIPS_EXCEPTION(flags, str)	\
do {	\
	if (flags != ACPI_TRIPS_INIT)	\
		ACPI_EXCEPTION((AE_INFO, AE_ERROR,	\
		"ACPI thermal trip point %s changed\n"	\
		"Please send acpidump to linux-acpi@vger.kernel.org\n", str)); \
} while (0)

static int acpi_thermal_trips_update(struct acpi_thermal *tz, int flag)
{
	acpi_status status = AE_OK;
	unsigned long long tmp;
	struct acpi_handle_list devices;
	int valid = 0;
	int i;

	/* Critical Shutdown */
	if (flag & ACPI_TRIPS_CRITICAL) {
		status = acpi_evaluate_integer(tz->device->handle,
				"_CRT", NULL, &tmp);
		tz->trips.critical.temperature = tmp;
		/*
		 * Treat freezing temperatures as invalid as well; some
		 * BIOSes return really low values and cause reboots at startup.
		 * Below zero (Celsius) values clearly aren't right for sure..
		 * ... so lets discard those as invalid.
		 */
		if (ACPI_FAILURE(status)) {
			tz->trips.critical.flags.valid = 0;
			ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					  "No critical threshold\n"));
		} else if (tmp <= 2732) {
			printk(KERN_WARNING FW_BUG "Invalid critical threshold "
			       "(%llu)\n", tmp);
			tz->trips.critical.flags.valid = 0;
		} else {
			tz->trips.critical.flags.valid = 1;
			ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					  "Found critical threshold [%lu]\n",
					  tz->trips.critical.temperature));
		}
		if (tz->trips.critical.flags.valid == 1) {
			if (crt == -1) {
				tz->trips.critical.flags.valid = 0;
			} else if (crt > 0) {
				unsigned long crt_k = CELSIUS_TO_KELVIN(crt);
				/*
				 * Allow override critical threshold
				 */
				if (crt_k > tz->trips.critical.temperature)
					printk(KERN_WARNING PREFIX
						"Critical threshold %d C\n", crt);
				tz->trips.critical.temperature = crt_k;
			}
		}
	}

	/* Critical Sleep (optional) */
	if (flag & ACPI_TRIPS_HOT) {
		status = acpi_evaluate_integer(tz->device->handle,
				"_HOT", NULL, &tmp);
		if (ACPI_FAILURE(status)) {
			tz->trips.hot.flags.valid = 0;
			ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					"No hot threshold\n"));
		} else {
			tz->trips.hot.temperature = tmp;
			tz->trips.hot.flags.valid = 1;
			ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					"Found hot threshold [%lu]\n",
					tz->trips.critical.temperature));
		}
	}

	/* Passive (optional) */
	if (((flag & ACPI_TRIPS_PASSIVE) && tz->trips.passive.flags.valid) ||
		(flag == ACPI_TRIPS_INIT)) {
		valid = tz->trips.passive.flags.valid;
		if (psv == -1) {
			status = AE_SUPPORT;
		} else if (psv > 0) {
			tmp = CELSIUS_TO_KELVIN(psv);
			status = AE_OK;
		} else {
			status = acpi_evaluate_integer(tz->device->handle,
				"_PSV", NULL, &tmp);
		}

		if (ACPI_FAILURE(status))
			tz->trips.passive.flags.valid = 0;
		else {
			tz->trips.passive.temperature = tmp;
			tz->trips.passive.flags.valid = 1;
			if (flag == ACPI_TRIPS_INIT) {
				status = acpi_evaluate_integer(
						tz->device->handle, "_TC1",
						NULL, &tmp);
				if (ACPI_FAILURE(status))
					tz->trips.passive.flags.valid = 0;
				else
					tz->trips.passive.tc1 = tmp;
				status = acpi_evaluate_integer(
						tz->device->handle, "_TC2",
						NULL, &tmp);
				if (ACPI_FAILURE(status))
					tz->trips.passive.flags.valid = 0;
				else
					tz->trips.passive.tc2 = tmp;
				status = acpi_evaluate_integer(
						tz->device->handle, "_TSP",
						NULL, &tmp);
				if (ACPI_FAILURE(status))
					tz->trips.passive.flags.valid = 0;
				else
					tz->trips.passive.tsp = tmp;
			}
		}
	}
	if ((flag & ACPI_TRIPS_DEVICES) && tz->trips.passive.flags.valid) {
		memset(&devices, 0, sizeof(struct acpi_handle_list));
		status = acpi_evaluate_reference(tz->device->handle, "_PSL",
							NULL, &devices);
		if (ACPI_FAILURE(status)) {
			printk(KERN_WARNING PREFIX
				"Invalid passive threshold\n");
			tz->trips.passive.flags.valid = 0;
		}
		else
			tz->trips.passive.flags.valid = 1;

		if (memcmp(&tz->trips.passive.devices, &devices,
				sizeof(struct acpi_handle_list))) {
			memcpy(&tz->trips.passive.devices, &devices,
				sizeof(struct acpi_handle_list));
			ACPI_THERMAL_TRIPS_EXCEPTION(flag, "device");
		}
	}
	if ((flag & ACPI_TRIPS_PASSIVE) || (flag & ACPI_TRIPS_DEVICES)) {
		if (valid != tz->trips.passive.flags.valid)
				ACPI_THERMAL_TRIPS_EXCEPTION(flag, "state");
	}

	/* Active (optional) */
	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE; i++) {
		char name[5] = { '_', 'A', 'C', ('0' + i), '\0' };
		valid = tz->trips.active[i].flags.valid;

		if (act == -1)
			break; /* disable all active trip points */

		if ((flag == ACPI_TRIPS_INIT) || ((flag & ACPI_TRIPS_ACTIVE) &&
			tz->trips.active[i].flags.valid)) {
			status = acpi_evaluate_integer(tz->device->handle,
							name, NULL, &tmp);
			if (ACPI_FAILURE(status)) {
				tz->trips.active[i].flags.valid = 0;
				if (i == 0)
					break;
				if (act <= 0)
					break;
				if (i == 1)
					tz->trips.active[0].temperature =
						CELSIUS_TO_KELVIN(act);
				else
					/*
					 * Don't allow override higher than
					 * the next higher trip point
					 */
					tz->trips.active[i - 1].temperature =
						(tz->trips.active[i - 2].temperature <
						CELSIUS_TO_KELVIN(act) ?
						tz->trips.active[i - 2].temperature :
						CELSIUS_TO_KELVIN(act));
				break;
			} else {
				tz->trips.active[i].temperature = tmp;
				tz->trips.active[i].flags.valid = 1;
			}
		}

		name[2] = 'L';
		if ((flag & ACPI_TRIPS_DEVICES) && tz->trips.active[i].flags.valid ) {
			memset(&devices, 0, sizeof(struct acpi_handle_list));
			status = acpi_evaluate_reference(tz->device->handle,
						name, NULL, &devices);
			if (ACPI_FAILURE(status)) {
				printk(KERN_WARNING PREFIX
					"Invalid active%d threshold\n", i);
				tz->trips.active[i].flags.valid = 0;
			}
			else
				tz->trips.active[i].flags.valid = 1;

			if (memcmp(&tz->trips.active[i].devices, &devices,
					sizeof(struct acpi_handle_list))) {
				memcpy(&tz->trips.active[i].devices, &devices,
					sizeof(struct acpi_handle_list));
				ACPI_THERMAL_TRIPS_EXCEPTION(flag, "device");
			}
		}
		if ((flag & ACPI_TRIPS_ACTIVE) || (flag & ACPI_TRIPS_DEVICES))
			if (valid != tz->trips.active[i].flags.valid)
				ACPI_THERMAL_TRIPS_EXCEPTION(flag, "state");

		if (!tz->trips.active[i].flags.valid)
			break;
	}

	if (flag & ACPI_TRIPS_DEVICES) {
		memset(&devices, 0, sizeof(struct acpi_handle_list));
		status = acpi_evaluate_reference(tz->device->handle, "_TZD",
						NULL, &devices);
		if (memcmp(&tz->devices, &devices,
				sizeof(struct acpi_handle_list))) {
			memcpy(&tz->devices, &devices,
				sizeof(struct acpi_handle_list));
			ACPI_THERMAL_TRIPS_EXCEPTION(flag, "device");
		}
	}

	return 0;
}

static int acpi_thermal_get_trip_points(struct acpi_thermal *tz)
{
	int i, valid, ret = acpi_thermal_trips_update(tz, ACPI_TRIPS_INIT);

	if (ret)
		return ret;

	valid = tz->trips.critical.flags.valid |
		tz->trips.hot.flags.valid |
		tz->trips.passive.flags.valid;

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE; i++)
		valid |= tz->trips.active[i].flags.valid;

	if (!valid) {
		printk(KERN_WARNING FW_BUG "No valid trip found\n");
		return -ENODEV;
	}
	return 0;
}

static void acpi_thermal_check(void *data)
{
	struct acpi_thermal *tz = data;

	thermal_zone_device_update(tz->thermal_zone);
}

/* sys I/F for generic thermal sysfs support */
#define KELVIN_TO_MILLICELSIUS(t, off) (((t) - (off)) * 100)

static int thermal_get_temp(struct thermal_zone_device *thermal,
			    unsigned long *temp)
{
	struct acpi_thermal *tz = thermal->devdata;
	int result;

	if (!tz)
		return -EINVAL;

	result = acpi_thermal_get_temperature(tz);
	if (result)
		return result;

	*temp = KELVIN_TO_MILLICELSIUS(tz->temperature, tz->kelvin_offset);
	return 0;
}

static const char enabled[] = "kernel";
static const char disabled[] = "user";
static int thermal_get_mode(struct thermal_zone_device *thermal,
				enum thermal_device_mode *mode)
{
	struct acpi_thermal *tz = thermal->devdata;

	if (!tz)
		return -EINVAL;

	*mode = tz->tz_enabled ? THERMAL_DEVICE_ENABLED :
		THERMAL_DEVICE_DISABLED;

	return 0;
}

static int thermal_set_mode(struct thermal_zone_device *thermal,
				enum thermal_device_mode mode)
{
	struct acpi_thermal *tz = thermal->devdata;
	int enable;

	if (!tz)
		return -EINVAL;

	/*
	 * enable/disable thermal management from ACPI thermal driver
	 */
	if (mode == THERMAL_DEVICE_ENABLED)
		enable = 1;
	else if (mode == THERMAL_DEVICE_DISABLED)
		enable = 0;
	else
		return -EINVAL;

	if (enable != tz->tz_enabled) {
		tz->tz_enabled = enable;
		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
			"%s ACPI thermal control\n",
			tz->tz_enabled ? enabled : disabled));
		acpi_thermal_check(tz);
	}
	return 0;
}

static int thermal_get_trip_type(struct thermal_zone_device *thermal,
				 int trip, enum thermal_trip_type *type)
{
	struct acpi_thermal *tz = thermal->devdata;
	int i;

	if (!tz || trip < 0)
		return -EINVAL;

	if (tz->trips.critical.flags.valid) {
		if (!trip) {
			*type = THERMAL_TRIP_CRITICAL;
			return 0;
		}
		trip--;
	}

	if (tz->trips.hot.flags.valid) {
		if (!trip) {
			*type = THERMAL_TRIP_HOT;
			return 0;
		}
		trip--;
	}

	if (tz->trips.passive.flags.valid) {
		if (!trip) {
			*type = THERMAL_TRIP_PASSIVE;
			return 0;
		}
		trip--;
	}

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE &&
		tz->trips.active[i].flags.valid; i++) {
		if (!trip) {
			*type = THERMAL_TRIP_ACTIVE;
			return 0;
		}
		trip--;
	}

	return -EINVAL;
}

static int thermal_get_trip_temp(struct thermal_zone_device *thermal,
				 int trip, unsigned long *temp)
{
	struct acpi_thermal *tz = thermal->devdata;
	int i;

	if (!tz || trip < 0)
		return -EINVAL;

	if (tz->trips.critical.flags.valid) {
		if (!trip) {
			*temp = KELVIN_TO_MILLICELSIUS(
				tz->trips.critical.temperature,
				tz->kelvin_offset);
			return 0;
		}
		trip--;
	}

	if (tz->trips.hot.flags.valid) {
		if (!trip) {
			*temp = KELVIN_TO_MILLICELSIUS(
				tz->trips.hot.temperature,
				tz->kelvin_offset);
			return 0;
		}
		trip--;
	}

	if (tz->trips.passive.flags.valid) {
		if (!trip) {
			*temp = KELVIN_TO_MILLICELSIUS(
				tz->trips.passive.temperature,
				tz->kelvin_offset);
			return 0;
		}
		trip--;
	}

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE &&
		tz->trips.active[i].flags.valid; i++) {
		if (!trip) {
			*temp = KELVIN_TO_MILLICELSIUS(
				tz->trips.active[i].temperature,
				tz->kelvin_offset);
			return 0;
		}
		trip--;
	}

	return -EINVAL;
}

static int thermal_get_crit_temp(struct thermal_zone_device *thermal,
				unsigned long *temperature) {
	struct acpi_thermal *tz = thermal->devdata;

	if (tz->trips.critical.flags.valid) {
		*temperature = KELVIN_TO_MILLICELSIUS(
				tz->trips.critical.temperature,
				tz->kelvin_offset);
		return 0;
	} else
		return -EINVAL;
}

static int thermal_notify(struct thermal_zone_device *thermal, int trip,
			   enum thermal_trip_type trip_type)
{
	u8 type = 0;
	struct acpi_thermal *tz = thermal->devdata;

	if (trip_type == THERMAL_TRIP_CRITICAL)
		type = ACPI_THERMAL_NOTIFY_CRITICAL;
	else if (trip_type == THERMAL_TRIP_HOT)
		type = ACPI_THERMAL_NOTIFY_HOT;
	else
		return 0;

	acpi_bus_generate_proc_event(tz->device, type, 1);
	acpi_bus_generate_netlink_event(tz->device->pnp.device_class,
					dev_name(&tz->device->dev), type, 1);

	if (trip_type == THERMAL_TRIP_CRITICAL && nocrt)
		return 1;

	return 0;
}

typedef int (*cb)(struct thermal_zone_device *, int,
		  struct thermal_cooling_device *);
static int acpi_thermal_cooling_device_cb(struct thermal_zone_device *thermal,
					struct thermal_cooling_device *cdev,
					cb action)
{
	struct acpi_device *device = cdev->devdata;
	struct acpi_thermal *tz = thermal->devdata;
	struct acpi_device *dev;
	acpi_status status;
	acpi_handle handle;
	int i;
	int j;
	int trip = -1;
	int result = 0;

	if (tz->trips.critical.flags.valid)
		trip++;

	if (tz->trips.hot.flags.valid)
		trip++;

	if (tz->trips.passive.flags.valid) {
		trip++;
		for (i = 0; i < tz->trips.passive.devices.count;
		    i++) {
			handle = tz->trips.passive.devices.handles[i];
			status = acpi_bus_get_device(handle, &dev);
			if (ACPI_SUCCESS(status) && (dev == device)) {
				result = action(thermal, trip, cdev);
				if (result)
					goto failed;
			}
		}
	}

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE; i++) {
		if (!tz->trips.active[i].flags.valid)
			break;
		trip++;
		for (j = 0;
		    j < tz->trips.active[i].devices.count;
		    j++) {
			handle = tz->trips.active[i].devices.handles[j];
			status = acpi_bus_get_device(handle, &dev);
			if (ACPI_SUCCESS(status) && (dev == device)) {
				result = action(thermal, trip, cdev);
				if (result)
					goto failed;
			}
		}
	}

	for (i = 0; i < tz->devices.count; i++) {
		handle = tz->devices.handles[i];
		status = acpi_bus_get_device(handle, &dev);
		if (ACPI_SUCCESS(status) && (dev == device)) {
			result = action(thermal, -1, cdev);
			if (result)
				goto failed;
		}
	}

failed:
	return result;
}

static int
acpi_thermal_bind_cooling_device(struct thermal_zone_device *thermal,
					struct thermal_cooling_device *cdev)
{
	return acpi_thermal_cooling_device_cb(thermal, cdev,
				thermal_zone_bind_cooling_device);
}

static int
acpi_thermal_unbind_cooling_device(struct thermal_zone_device *thermal,
					struct thermal_cooling_device *cdev)
{
	return acpi_thermal_cooling_device_cb(thermal, cdev,
				thermal_zone_unbind_cooling_device);
}

static struct thermal_zone_device_ops acpi_thermal_zone_ops = {
	.bind = acpi_thermal_bind_cooling_device,
	.unbind	= acpi_thermal_unbind_cooling_device,
	.get_temp = thermal_get_temp,
	.get_mode = thermal_get_mode,
	.set_mode = thermal_set_mode,
	.get_trip_type = thermal_get_trip_type,
	.get_trip_temp = thermal_get_trip_temp,
	.get_crit_temp = thermal_get_crit_temp,
	.notify = thermal_notify,
};

static int acpi_thermal_register_thermal_zone(struct acpi_thermal *tz)
{
	int trips = 0;
	int result;
	acpi_status status;
	int i;

	if (tz->trips.critical.flags.valid)
		trips++;

	if (tz->trips.hot.flags.valid)
		trips++;

	if (tz->trips.passive.flags.valid)
		trips++;

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE &&
			tz->trips.active[i].flags.valid; i++, trips++);

	if (tz->trips.passive.flags.valid)
		tz->thermal_zone =
			thermal_zone_device_register("acpitz", trips, tz,
						     &acpi_thermal_zone_ops,
						     tz->trips.passive.tc1,
						     tz->trips.passive.tc2,
						     tz->trips.passive.tsp*100,
						     tz->polling_frequency*100);
	else
		tz->thermal_zone =
			thermal_zone_device_register("acpitz", trips, tz,
						     &acpi_thermal_zone_ops,
						     0, 0, 0,
						     tz->polling_frequency*100);
	if (IS_ERR(tz->thermal_zone))
		return -ENODEV;

	result = sysfs_create_link(&tz->device->dev.kobj,
				   &tz->thermal_zone->device.kobj, "thermal_zone");
	if (result)
		return result;

	result = sysfs_create_link(&tz->thermal_zone->device.kobj,
				   &tz->device->dev.kobj, "device");
	if (result)
		return result;

	status = acpi_attach_data(tz->device->handle,
				  acpi_bus_private_data_handler,
				  tz->thermal_zone);
	if (ACPI_FAILURE(status)) {
		printk(KERN_ERR PREFIX
				"Error attaching device data\n");
		return -ENODEV;
	}

	tz->tz_enabled = 1;

	dev_info(&tz->device->dev, "registered as thermal_zone%d\n",
		 tz->thermal_zone->id);
	return 0;
}

static void acpi_thermal_unregister_thermal_zone(struct acpi_thermal *tz)
{
	sysfs_remove_link(&tz->device->dev.kobj, "thermal_zone");
	sysfs_remove_link(&tz->thermal_zone->device.kobj, "device");
	thermal_zone_device_unregister(tz->thermal_zone);
	tz->thermal_zone = NULL;
	acpi_detach_data(tz->device->handle, acpi_bus_private_data_handler);
}


/* --------------------------------------------------------------------------
                              FS Interface (/proc)
   -------------------------------------------------------------------------- */

static struct proc_dir_entry *acpi_thermal_dir;

static int acpi_thermal_state_seq_show(struct seq_file *seq, void *offset)
{
	struct acpi_thermal *tz = seq->private;


	if (!tz)
		goto end;

	seq_puts(seq, "state:                   ");

	if (!tz->state.critical && !tz->state.hot && !tz->state.passive
	    && !tz->state.active)
		seq_puts(seq, "ok\n");
	else {
		if (tz->state.critical)
			seq_puts(seq, "critical ");
		if (tz->state.hot)
			seq_puts(seq, "hot ");
		if (tz->state.passive)
			seq_puts(seq, "passive ");
		if (tz->state.active)
			seq_printf(seq, "active[%d]", tz->state.active_index);
		seq_puts(seq, "\n");
	}

      end:
	return 0;
}

static int acpi_thermal_state_open_fs(struct inode *inode, struct file *file)
{
	return single_open(file, acpi_thermal_state_seq_show, PDE(inode)->data);
}

static int acpi_thermal_temp_seq_show(struct seq_file *seq, void *offset)
{
	int result = 0;
	struct acpi_thermal *tz = seq->private;


	if (!tz)
		goto end;

	result = acpi_thermal_get_temperature(tz);
	if (result)
		goto end;

	seq_printf(seq, "temperature:             %ld C\n",
		   KELVIN_TO_CELSIUS(tz->temperature));

      end:
	return 0;
}

static int acpi_thermal_temp_open_fs(struct inode *inode, struct file *file)
{
	return single_open(file, acpi_thermal_temp_seq_show, PDE(inode)->data);
}

static int acpi_thermal_trip_seq_show(struct seq_file *seq, void *offset)
{
	struct acpi_thermal *tz = seq->private;
	struct acpi_device *device;
	acpi_status status;

	int i = 0;
	int j = 0;


	if (!tz)
		goto end;

	if (tz->trips.critical.flags.valid)
		seq_printf(seq, "critical (S5):           %ld C%s",
			   KELVIN_TO_CELSIUS(tz->trips.critical.temperature),
			   nocrt ? " <disabled>\n" : "\n");

	if (tz->trips.hot.flags.valid)
		seq_printf(seq, "hot (S4):                %ld C%s",
			   KELVIN_TO_CELSIUS(tz->trips.hot.temperature),
			   nocrt ? " <disabled>\n" : "\n");

	if (tz->trips.passive.flags.valid) {
		seq_printf(seq,
			   "passive:                 %ld C: tc1=%lu tc2=%lu tsp=%lu devices=",
			   KELVIN_TO_CELSIUS(tz->trips.passive.temperature),
			   tz->trips.passive.tc1, tz->trips.passive.tc2,
			   tz->trips.passive.tsp);
		for (j = 0; j < tz->trips.passive.devices.count; j++) {
			status = acpi_bus_get_device(tz->trips.passive.devices.
						     handles[j], &device);
			seq_printf(seq, "%4.4s ", status ? "" :
				   acpi_device_bid(device));
		}
		seq_puts(seq, "\n");
	} else {
		seq_printf(seq, "passive (forced):");
		if (tz->thermal_zone->forced_passive)
			seq_printf(seq, "        %i C\n",
				   tz->thermal_zone->forced_passive / 1000);
		else
			seq_printf(seq, "<not set>\n");
	}

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE; i++) {
		if (!(tz->trips.active[i].flags.valid))
			break;
		seq_printf(seq, "active[%d]:               %ld C: devices=",
			   i,
			   KELVIN_TO_CELSIUS(tz->trips.active[i].temperature));
		for (j = 0; j < tz->trips.active[i].devices.count; j++){
			status = acpi_bus_get_device(tz->trips.active[i].
						     devices.handles[j],
						     &device);
			seq_printf(seq, "%4.4s ", status ? "" :
				   acpi_device_bid(device));
		}
		seq_puts(seq, "\n");
	}

      end:
	return 0;
}

static int acpi_thermal_trip_open_fs(struct inode *inode, struct file *file)
{
	return single_open(file, acpi_thermal_trip_seq_show, PDE(inode)->data);
}

static int acpi_thermal_cooling_seq_show(struct seq_file *seq, void *offset)
{
	struct acpi_thermal *tz = seq->private;


	if (!tz)
		goto end;

	if (!tz->flags.cooling_mode)
		seq_puts(seq, "<setting not supported>\n");
	else
		seq_puts(seq, "0 - Active; 1 - Passive\n");

      end:
	return 0;
}

static int acpi_thermal_cooling_open_fs(struct inode *inode, struct file *file)
{
	return single_open(file, acpi_thermal_cooling_seq_show,
			   PDE(inode)->data);
}

static ssize_t
acpi_thermal_write_cooling_mode(struct file *file,
				const char __user * buffer,
				size_t count, loff_t * ppos)
{
	struct seq_file *m = file->private_data;
	struct acpi_thermal *tz = m->private;
	int result = 0;
	char mode_string[12] = { '\0' };


	if (!tz || (count > sizeof(mode_string) - 1))
		return -EINVAL;

	if (!tz->flags.cooling_mode)
		return -ENODEV;

	if (copy_from_user(mode_string, buffer, count))
		return -EFAULT;

	mode_string[count] = '\0';

	result = acpi_thermal_set_cooling_mode(tz,
					       simple_strtoul(mode_string, NULL,
							      0));
	if (result)
		return result;

	acpi_thermal_check(tz);

	return count;
}

static int acpi_thermal_polling_seq_show(struct seq_file *seq, void *offset)
{
	struct acpi_thermal *tz = seq->private;


	if (!tz)
		goto end;

	if (!tz->thermal_zone->polling_delay) {
		seq_puts(seq, "<polling disabled>\n");
		goto end;
	}

	seq_printf(seq, "polling frequency:       %d seconds\n",
		   (tz->thermal_zone->polling_delay / 1000));

      end:
	return 0;
}

static int acpi_thermal_polling_open_fs(struct inode *inode, struct file *file)
{
	return single_open(file, acpi_thermal_polling_seq_show,
			   PDE(inode)->data);
}

static ssize_t
acpi_thermal_write_polling(struct file *file,
			   const char __user * buffer,
			   size_t count, loff_t * ppos)
{
	struct seq_file *m = file->private_data;
	struct acpi_thermal *tz = m->private;
	int result = 0;
	char polling_string[12] = { '\0' };
	int seconds = 0;


	if (!tz || (count > sizeof(polling_string) - 1))
		return -EINVAL;

	if (copy_from_user(polling_string, buffer, count))
		return -EFAULT;

	polling_string[count] = '\0';

	seconds = simple_strtoul(polling_string, NULL, 0);

	result = acpi_thermal_set_polling(tz, seconds);
	if (result)
		return result;

	acpi_thermal_check(tz);

	return count;
}

static int acpi_thermal_add_fs(struct acpi_device *device)
{
	struct proc_dir_entry *entry = NULL;


	if (!acpi_device_dir(device)) {
		acpi_device_dir(device) = proc_mkdir(acpi_device_bid(device),
						     acpi_thermal_dir);
		if (!acpi_device_dir(device))
			return -ENODEV;
	}

	/* 'state' [R] */
	entry = proc_create_data(ACPI_THERMAL_FILE_STATE,
				 S_IRUGO, acpi_device_dir(device),
				 &acpi_thermal_state_fops,
				 acpi_driver_data(device));
	if (!entry)
		return -ENODEV;

	/* 'temperature' [R] */
	entry = proc_create_data(ACPI_THERMAL_FILE_TEMPERATURE,
				 S_IRUGO, acpi_device_dir(device),
				 &acpi_thermal_temp_fops,
				 acpi_driver_data(device));
	if (!entry)
		return -ENODEV;

	/* 'trip_points' [R] */
	entry = proc_create_data(ACPI_THERMAL_FILE_TRIP_POINTS,
				 S_IRUGO,
				 acpi_device_dir(device),
				 &acpi_thermal_trip_fops,
				 acpi_driver_data(device));
	if (!entry)
		return -ENODEV;

	/* 'cooling_mode' [R/W] */
	entry = proc_create_data(ACPI_THERMAL_FILE_COOLING_MODE,
				 S_IFREG | S_IRUGO | S_IWUSR,
				 acpi_device_dir(device),
				 &acpi_thermal_cooling_fops,
				 acpi_driver_data(device));
	if (!entry)
		return -ENODEV;

	/* 'polling_frequency' [R/W] */
	entry = proc_create_data(ACPI_THERMAL_FILE_POLLING_FREQ,
				 S_IFREG | S_IRUGO | S_IWUSR,
				 acpi_device_dir(device),
				 &acpi_thermal_polling_fops,
				 acpi_driver_data(device));
	if (!entry)
		return -ENODEV;
	return 0;
}

static int acpi_thermal_remove_fs(struct acpi_device *device)
{

	if (acpi_device_dir(device)) {
		remove_proc_entry(ACPI_THERMAL_FILE_POLLING_FREQ,
				  acpi_device_dir(device));
		remove_proc_entry(ACPI_THERMAL_FILE_COOLING_MODE,
				  acpi_device_dir(device));
		remove_proc_entry(ACPI_THERMAL_FILE_TRIP_POINTS,
				  acpi_device_dir(device));
		remove_proc_entry(ACPI_THERMAL_FILE_TEMPERATURE,
				  acpi_device_dir(device));
		remove_proc_entry(ACPI_THERMAL_FILE_STATE,
				  acpi_device_dir(device));
		remove_proc_entry(acpi_device_bid(device), acpi_thermal_dir);
		acpi_device_dir(device) = NULL;
	}

	return 0;
}

/* --------------------------------------------------------------------------
                                 Driver Interface
   -------------------------------------------------------------------------- */

static void acpi_thermal_notify(struct acpi_device *device, u32 event)
{
	struct acpi_thermal *tz = acpi_driver_data(device);


	if (!tz)
		return;

	switch (event) {
	case ACPI_THERMAL_NOTIFY_TEMPERATURE:
		acpi_thermal_check(tz);
		break;
	case ACPI_THERMAL_NOTIFY_THRESHOLDS:
		acpi_thermal_trips_update(tz, ACPI_TRIPS_REFRESH_THRESHOLDS);
		acpi_thermal_check(tz);
		acpi_bus_generate_proc_event(device, event, 0);
		acpi_bus_generate_netlink_event(device->pnp.device_class,
						  dev_name(&device->dev), event, 0);
		break;
	case ACPI_THERMAL_NOTIFY_DEVICES:
		acpi_thermal_trips_update(tz, ACPI_TRIPS_REFRESH_DEVICES);
		acpi_thermal_check(tz);
		acpi_bus_generate_proc_event(device, event, 0);
		acpi_bus_generate_netlink_event(device->pnp.device_class,
						  dev_name(&device->dev), event, 0);
		break;
	default:
		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
				  "Unsupported event [0x%x]\n", event));
		break;
	}
}

static int acpi_thermal_get_info(struct acpi_thermal *tz)
{
	int result = 0;


	if (!tz)
		return -EINVAL;

	/* Get temperature [_TMP] (required) */
	result = acpi_thermal_get_temperature(tz);
	if (result)
		return result;

	/* Get trip points [_CRT, _PSV, etc.] (required) */
	result = acpi_thermal_get_trip_points(tz);
	if (result)
		return result;

	/* Set the cooling mode [_SCP] to active cooling (default) */
	result = acpi_thermal_set_cooling_mode(tz, ACPI_THERMAL_MODE_ACTIVE);
	if (!result)
		tz->flags.cooling_mode = 1;

	/* Get default polling frequency [_TZP] (optional) */
	if (tzp)
		tz->polling_frequency = tzp;
	else
		acpi_thermal_get_polling_frequency(tz);

	return 0;
}

/*
 * The exact offset between Kelvin and degree Celsius is 273.15. However ACPI
 * handles temperature values with a single decimal place. As a consequence,
 * some implementations use an offset of 273.1 and others use an offset of
 * 273.2. Try to find out which one is being used, to present the most
 * accurate and visually appealing number.
 *
 * The heuristic below should work for all ACPI thermal zones which have a
 * critical trip point with a value being a multiple of 0.5 degree Celsius.
 */
static void acpi_thermal_guess_offset(struct acpi_thermal *tz)
{
	if (tz->trips.critical.flags.valid &&
	    (tz->trips.critical.temperature % 5) == 1)
		tz->kelvin_offset = 2731;
	else
		tz->kelvin_offset = 2732;
}

static int acpi_thermal_add(struct acpi_device *device)
{
	int result = 0;
	struct acpi_thermal *tz = NULL;


	if (!device)
		return -EINVAL;

	tz = kzalloc(sizeof(struct acpi_thermal), GFP_KERNEL);
	if (!tz)
		return -ENOMEM;

	tz->device = device;
	strcpy(tz->name, device->pnp.bus_id);
	strcpy(acpi_device_name(device), ACPI_THERMAL_DEVICE_NAME);
	strcpy(acpi_device_class(device), ACPI_THERMAL_CLASS);
	device->driver_data = tz;
	mutex_init(&tz->lock);


	result = acpi_thermal_get_info(tz);
	if (result)
		goto free_memory;

	acpi_thermal_guess_offset(tz);

	result = acpi_thermal_register_thermal_zone(tz);
	if (result)
		goto free_memory;

	result = acpi_thermal_add_fs(device);
	if (result)
		goto unregister_thermal_zone;

	printk(KERN_INFO PREFIX "%s [%s] (%ld C)\n",
	       acpi_device_name(device), acpi_device_bid(device),
	       KELVIN_TO_CELSIUS(tz->temperature));
	goto end;

unregister_thermal_zone:
	thermal_zone_device_unregister(tz->thermal_zone);
free_memory:
	kfree(tz);
end:
	return result;
}

static int acpi_thermal_remove(struct acpi_device *device, int type)
{
	struct acpi_thermal *tz = NULL;

	if (!device || !acpi_driver_data(device))
		return -EINVAL;

	tz = acpi_driver_data(device);

	acpi_thermal_remove_fs(device);
	acpi_thermal_unregister_thermal_zone(tz);
	mutex_destroy(&tz->lock);
	kfree(tz);
	return 0;
}

static int acpi_thermal_resume(struct acpi_device *device)
{
	struct acpi_thermal *tz = NULL;
	int i, j, power_state, result;


	if (!device || !acpi_driver_data(device))
		return -EINVAL;

	tz = acpi_driver_data(device);

	for (i = 0; i < ACPI_THERMAL_MAX_ACTIVE; i++) {
		if (!(&tz->trips.active[i]))
			break;
		if (!tz->trips.active[i].flags.valid)
			break;
		tz->trips.active[i].flags.enabled = 1;
		for (j = 0; j < tz->trips.active[i].devices.count; j++) {
			result = acpi_bus_get_power(tz->trips.active[i].devices.
			    handles[j], &power_state);
			if (result || (power_state != ACPI_STATE_D0)) {
				tz->trips.active[i].flags.enabled = 0;
				break;
			}
		}
		tz->state.active |= tz->trips.active[i].flags.enabled;
	}

	acpi_thermal_check(tz);

	return AE_OK;
}

static int thermal_act(const struct dmi_system_id *d) {

	if (act == 0) {
		printk(KERN_NOTICE "ACPI: %s detected: "
			"disabling all active thermal trip points\n", d->ident);
		act = -1;
	}
	return 0;
}
static int thermal_nocrt(const struct dmi_system_id *d) {

	printk(KERN_NOTICE "ACPI: %s detected: "
		"disabling all critical thermal trip point actions.\n", d->ident);
	nocrt = 1;
	return 0;
}
static int thermal_tzp(const struct dmi_system_id *d) {

	if (tzp == 0) {
		printk(KERN_NOTICE "ACPI: %s detected: "
			"enabling thermal zone polling\n", d->ident);
		tzp = 300;	/* 300 dS = 30 Seconds */
	}
	return 0;
}
static int thermal_psv(const struct dmi_system_id *d) {

	if (psv == 0) {
		printk(KERN_NOTICE "ACPI: %s detected: "
			"disabling all passive thermal trip points\n", d->ident);
		psv = -1;
	}
	return 0;
}

static struct dmi_system_id thermal_dmi_table[] __initdata = {
	/*
	 * Award BIOS on this AOpen makes thermal control almost worthless.
	 * http://bugzilla.kernel.org/show_bug.cgi?id=8842
	 */
	{
	 .callback = thermal_act,
	 .ident = "AOpen i915GMm-HFS",
	 .matches = {
		DMI_MATCH(DMI_BOARD_VENDOR, "AOpen"),
		DMI_MATCH(DMI_BOARD_NAME, "i915GMm-HFS"),
		},
	},
	{
	 .callback = thermal_psv,
	 .ident = "AOpen i915GMm-HFS",
	 .matches = {
		DMI_MATCH(DMI_BOARD_VENDOR, "AOpen"),
		DMI_MATCH(DMI_BOARD_NAME, "i915GMm-HFS"),
		},
	},
	{
	 .callback = thermal_tzp,
	 .ident = "AOpen i915GMm-HFS",
	 .matches = {
		DMI_MATCH(DMI_BOARD_VENDOR, "AOpen"),
		DMI_MATCH(DMI_BOARD_NAME, "i915GMm-HFS"),
		},
	},
	{
	 .callback = thermal_nocrt,
	 .ident = "Gigabyte GA-7ZX",
	 .matches = {
		DMI_MATCH(DMI_BOARD_VENDOR, "Gigabyte Technology Co., Ltd."),
		DMI_MATCH(DMI_BOARD_NAME, "7ZX"),
		},
	},
	{}
};

static int __init acpi_thermal_init(void)
{
	int result = 0;

	dmi_check_system(thermal_dmi_table);

	if (off) {
		printk(KERN_NOTICE "ACPI: thermal control disabled\n");
		return -ENODEV;
	}
	acpi_thermal_dir = proc_mkdir(ACPI_THERMAL_CLASS, acpi_root_dir);
	if (!acpi_thermal_dir)
		return -ENODEV;

	result = acpi_bus_register_driver(&acpi_thermal_driver);
	if (result < 0) {
		remove_proc_entry(ACPI_THERMAL_CLASS, acpi_root_dir);
		return -ENODEV;
	}

	return 0;
}

static void __exit acpi_thermal_exit(void)
{

	acpi_bus_unregister_driver(&acpi_thermal_driver);

	remove_proc_entry(ACPI_THERMAL_CLASS, acpi_root_dir);

	return;
}

module_init(acpi_thermal_init);
module_exit(acpi_thermal_exit);
t = av7110_av_start_record(av7110, RP_AUDIO, dvbdmxfeed); if (dvbdmxfeed->pes_type == 1 && !(dvbdmx->pids[1] & 0x8000)) ret = av7110_av_start_record(av7110, RP_VIDEO, dvbdmxfeed); } return ret; } static int dvb_feed_stop_pid(struct dvb_demux_feed *dvbdmxfeed) { struct dvb_demux *dvbdmx = dvbdmxfeed->demux; struct av7110 *av7110 = dvbdmx->priv; u16 *pid = dvbdmx->pids, npids[5]; int i; int ret = 0; dprintk(4, "%p\n", av7110); if (dvbdmxfeed->pes_type <= 1) { ret = av7110_av_stop(av7110, dvbdmxfeed->pes_type ? RP_VIDEO : RP_AUDIO); if (ret) return ret; if (!av7110->rec_mode) dvbdmx->recording = 0; if (!av7110->playing) dvbdmx->playing = 0; } npids[0] = npids[1] = npids[2] = npids[3] = npids[4] = 0xffff; i = dvbdmxfeed->pes_type; switch (i) { case 2: //teletext if (dvbdmxfeed->ts_type & TS_PACKET) ret = StopHWFilter(dvbdmxfeed->filter); npids[2] = 0; break; case 0: case 1: case 4: if (!pids_off) return 0; npids[i] = (pid[i]&0x8000) ? 0 : pid[i]; break; } if (!ret) ret = ChangePIDs(av7110, npids[1], npids[0], npids[2], npids[3], npids[4]); return ret; } static int av7110_start_feed(struct dvb_demux_feed *feed) { struct dvb_demux *demux = feed->demux; struct av7110 *av7110 = demux->priv; int ret = 0; dprintk(4, "%p\n", av7110); if (!demux->dmx.frontend) return -EINVAL; if (!av7110->full_ts && feed->pid > 0x1fff) return -EINVAL; if (feed->type == DMX_TYPE_TS) { if ((feed->ts_type & TS_DECODER) && (feed->pes_type < DMX_TS_PES_OTHER)) { switch (demux->dmx.frontend->source) { case DMX_MEMORY_FE: if (feed->ts_type & TS_DECODER) if (feed->pes_type < 2 && !(demux->pids[0] & 0x8000) && !(demux->pids[1] & 0x8000)) { dvb_ringbuffer_flush_spinlock_wakeup(&av7110->avout); dvb_ringbuffer_flush_spinlock_wakeup(&av7110->aout); ret = av7110_av_start_play(av7110,RP_AV); if (!ret) demux->playing = 1; } break; default: ret = dvb_feed_start_pid(feed); break; } } else if ((feed->ts_type & TS_PACKET) && (demux->dmx.frontend->source != DMX_MEMORY_FE)) { ret = StartHWFilter(feed->filter); } } if (av7110->full_ts) { budget_start_feed(feed); return ret; } if (feed->type == DMX_TYPE_SEC) { int i; for (i = 0; i < demux->filternum; i++) { if (demux->filter[i].state != DMX_STATE_READY) continue; if (demux->filter[i].type != DMX_TYPE_SEC) continue; if (demux->filter[i].filter.parent != &feed->feed.sec) continue; demux->filter[i].state = DMX_STATE_GO; if (demux->dmx.frontend->source != DMX_MEMORY_FE) { ret = StartHWFilter(&demux->filter[i]); if (ret) break; } } } return ret; } static int av7110_stop_feed(struct dvb_demux_feed *feed) { struct dvb_demux *demux = feed->demux; struct av7110 *av7110 = demux->priv; int i, rc, ret = 0; dprintk(4, "%p\n", av7110); if (feed->type == DMX_TYPE_TS) { if (feed->ts_type & TS_DECODER) { if (feed->pes_type >= DMX_TS_PES_OTHER || !demux->pesfilter[feed->pes_type]) return -EINVAL; demux->pids[feed->pes_type] |= 0x8000; demux->pesfilter[feed->pes_type] = NULL; } if (feed->ts_type & TS_DECODER && feed->pes_type < DMX_TS_PES_OTHER) { ret = dvb_feed_stop_pid(feed); } else if ((feed->ts_type & TS_PACKET) && (demux->dmx.frontend->source != DMX_MEMORY_FE)) ret = StopHWFilter(feed->filter); } if (av7110->full_ts) { budget_stop_feed(feed); return ret; } if (feed->type == DMX_TYPE_SEC) { for (i = 0; i<demux->filternum; i++) { if (demux->filter[i].state == DMX_STATE_GO && demux->filter[i].filter.parent == &feed->feed.sec) { demux->filter[i].state = DMX_STATE_READY; if (demux->dmx.frontend->source != DMX_MEMORY_FE) { rc = StopHWFilter(&demux->filter[i]); if (!ret) ret = rc; /* keep going, stop as many filters as possible */ } } } } return ret; } static void restart_feeds(struct av7110 *av7110) { struct dvb_demux *dvbdmx = &av7110->demux; struct dvb_demux_feed *feed; int mode; int feeding; int i, j; dprintk(4, "%p\n", av7110); mode = av7110->playing; av7110->playing = 0; av7110->rec_mode = 0; feeding = av7110->feeding1; /* full_ts mod */ for (i = 0; i < dvbdmx->feednum; i++) { feed = &dvbdmx->feed[i]; if (feed->state == DMX_STATE_GO) { if (feed->type == DMX_TYPE_SEC) { for (j = 0; j < dvbdmx->filternum; j++) { if (dvbdmx->filter[j].type != DMX_TYPE_SEC) continue; if (dvbdmx->filter[j].filter.parent != &feed->feed.sec) continue; if (dvbdmx->filter[j].state == DMX_STATE_GO) dvbdmx->filter[j].state = DMX_STATE_READY; } } av7110_start_feed(feed); } } av7110->feeding1 = feeding; /* full_ts mod */ if (mode) av7110_av_start_play(av7110, mode); } static int dvb_get_stc(struct dmx_demux *demux, unsigned int num, uint64_t *stc, unsigned int *base) { int ret; u16 fwstc[4]; u16 tag = ((COMTYPE_REQUEST << 8) + ReqSTC); struct dvb_demux *dvbdemux; struct av7110 *av7110; /* pointer casting paranoia... */ BUG_ON(!demux); dvbdemux = demux->priv; BUG_ON(!dvbdemux); av7110 = dvbdemux->priv; dprintk(4, "%p\n", av7110); if (num != 0) return -EINVAL; ret = av7110_fw_request(av7110, &tag, 0, fwstc, 4); if (ret) { printk(KERN_ERR "%s: av7110_fw_request error\n", __func__); return ret; } dprintk(2, "fwstc = %04hx %04hx %04hx %04hx\n", fwstc[0], fwstc[1], fwstc[2], fwstc[3]); *stc = (((uint64_t) ((fwstc[3] & 0x8000) >> 15)) << 32) | (((uint64_t) fwstc[1]) << 16) | ((uint64_t) fwstc[0]); *base = 1; dprintk(4, "stc = %lu\n", (unsigned long)*stc); return 0; } /****************************************************************************** * SEC device file operations ******************************************************************************/ static int av7110_set_tone(struct dvb_frontend* fe, fe_sec_tone_mode_t tone) { struct av7110* av7110 = fe->dvb->priv; switch (tone) { case SEC_TONE_ON: return Set22K(av7110, 1); case SEC_TONE_OFF: return Set22K(av7110, 0); default: return -EINVAL; } } static int av7110_diseqc_send_master_cmd(struct dvb_frontend* fe, struct dvb_diseqc_master_cmd* cmd) { struct av7110* av7110 = fe->dvb->priv; return av7110_diseqc_send(av7110, cmd->msg_len, cmd->msg, -1); } static int av7110_diseqc_send_burst(struct dvb_frontend* fe, fe_sec_mini_cmd_t minicmd) { struct av7110* av7110 = fe->dvb->priv; return av7110_diseqc_send(av7110, 0, NULL, minicmd); } /* simplified code from budget-core.c */ static int stop_ts_capture(struct av7110 *budget) { dprintk(2, "budget: %p\n", budget); if (--budget->feeding1) return budget->feeding1; saa7146_write(budget->dev, MC1, MASK_20); /* DMA3 off */ SAA7146_IER_DISABLE(budget->dev, MASK_10); SAA7146_ISR_CLEAR(budget->dev, MASK_10); return 0; } static int start_ts_capture(struct av7110 *budget) { dprintk(2, "budget: %p\n", budget); if (budget->feeding1) return ++budget->feeding1; memset(budget->grabbing, 0x00, TS_BUFLEN); budget->ttbp = 0; SAA7146_ISR_CLEAR(budget->dev, MASK_10); /* VPE */ SAA7146_IER_ENABLE(budget->dev, MASK_10); /* VPE */ saa7146_write(budget->dev, MC1, (MASK_04 | MASK_20)); /* DMA3 on */ return ++budget->feeding1; } static int budget_start_feed(struct dvb_demux_feed *feed) { struct dvb_demux *demux = feed->demux; struct av7110 *budget = demux->priv; int status; dprintk(2, "av7110: %p\n", budget); spin_lock(&budget->feedlock1); feed->pusi_seen = 0; /* have a clean section start */ status = start_ts_capture(budget); spin_unlock(&budget->feedlock1); return status; } static int budget_stop_feed(struct dvb_demux_feed *feed) { struct dvb_demux *demux = feed->demux; struct av7110 *budget = demux->priv; int status; dprintk(2, "budget: %p\n", budget); spin_lock(&budget->feedlock1); status = stop_ts_capture(budget); spin_unlock(&budget->feedlock1); return status; } static void vpeirq(unsigned long cookie) { struct av7110 *budget = (struct av7110 *)cookie; u8 *mem = (u8 *) (budget->grabbing); u32 olddma = budget->ttbp; u32 newdma = saa7146_read(budget->dev, PCI_VDP3); struct dvb_demux *demux = budget->full_ts ? &budget->demux : &budget->demux1; /* nearest lower position divisible by 188 */ newdma -= newdma % 188; if (newdma >= TS_BUFLEN) return; budget->ttbp = newdma; if (!budget->feeding1 || (newdma == olddma)) return; /* Ensure streamed PCI data is synced to CPU */ pci_dma_sync_sg_for_cpu(budget->dev->pci, budget->pt.slist, budget->pt.nents, PCI_DMA_FROMDEVICE); #if 0 /* track rps1 activity */ printk("vpeirq: %02x Event Counter 1 0x%04x\n", mem[olddma], saa7146_read(budget->dev, EC1R) & 0x3fff); #endif if (newdma > olddma) /* no wraparound, dump olddma..newdma */ dvb_dmx_swfilter_packets(demux, mem + olddma, (newdma - olddma) / 188); else { /* wraparound, dump olddma..buflen and 0..newdma */ dvb_dmx_swfilter_packets(demux, mem + olddma, (TS_BUFLEN - olddma) / 188); dvb_dmx_swfilter_packets(demux, mem, newdma / 188); } } static int av7110_register(struct av7110 *av7110) { int ret, i; struct dvb_demux *dvbdemux = &av7110->demux; struct dvb_demux *dvbdemux1 = &av7110->demux1; dprintk(4, "%p\n", av7110); if (av7110->registered) return -1; av7110->registered = 1; dvbdemux->priv = (void *) av7110; for (i = 0; i < 32; i++) av7110->handle2filter[i] = NULL; dvbdemux->filternum = (av7110->full_ts) ? 256 : 32; dvbdemux->feednum = (av7110->full_ts) ? 256 : 32; dvbdemux->start_feed = av7110_start_feed; dvbdemux->stop_feed = av7110_stop_feed; dvbdemux->write_to_decoder = av7110_write_to_decoder; dvbdemux->dmx.capabilities = (DMX_TS_FILTERING | DMX_SECTION_FILTERING | DMX_MEMORY_BASED_FILTERING); dvb_dmx_init(&av7110->demux); av7110->demux.dmx.get_stc = dvb_get_stc; av7110->dmxdev.filternum = (av7110->full_ts) ? 256 : 32; av7110->dmxdev.demux = &dvbdemux->dmx; av7110->dmxdev.capabilities = 0; dvb_dmxdev_init(&av7110->dmxdev, &av7110->dvb_adapter); av7110->hw_frontend.source = DMX_FRONTEND_0; ret = dvbdemux->dmx.add_frontend(&dvbdemux->dmx, &av7110->hw_frontend); if (ret < 0) return ret; av7110->mem_frontend.source = DMX_MEMORY_FE; ret = dvbdemux->dmx.add_frontend(&dvbdemux->dmx, &av7110->mem_frontend); if (ret < 0) return ret; ret = dvbdemux->dmx.connect_frontend(&dvbdemux->dmx, &av7110->hw_frontend); if (ret < 0) return ret; av7110_av_register(av7110); av7110_ca_register(av7110); #ifdef CONFIG_DVB_AV7110_OSD dvb_register_device(&av7110->dvb_adapter, &av7110->osd_dev, &dvbdev_osd, av7110, DVB_DEVICE_OSD); #endif dvb_net_init(&av7110->dvb_adapter, &av7110->dvb_net, &dvbdemux->dmx); if (budgetpatch) { /* initialize software demux1 without its own frontend * demux1 hardware is connected to frontend0 of demux0 */ dvbdemux1->priv = (void *) av7110; dvbdemux1->filternum = 256; dvbdemux1->feednum = 256; dvbdemux1->start_feed = budget_start_feed; dvbdemux1->stop_feed = budget_stop_feed; dvbdemux1->write_to_decoder = NULL; dvbdemux1->dmx.capabilities = (DMX_TS_FILTERING | DMX_SECTION_FILTERING | DMX_MEMORY_BASED_FILTERING); dvb_dmx_init(&av7110->demux1); av7110->dmxdev1.filternum = 256; av7110->dmxdev1.demux = &dvbdemux1->dmx; av7110->dmxdev1.capabilities = 0; dvb_dmxdev_init(&av7110->dmxdev1, &av7110->dvb_adapter); dvb_net_init(&av7110->dvb_adapter, &av7110->dvb_net1, &dvbdemux1->dmx); printk("dvb-ttpci: additional demux1 for budget-patch registered\n"); } return 0; } static void dvb_unregister(struct av7110 *av7110) { struct dvb_demux *dvbdemux = &av7110->demux; struct dvb_demux *dvbdemux1 = &av7110->demux1; dprintk(4, "%p\n", av7110); if (!av7110->registered) return; if (budgetpatch) { dvb_net_release(&av7110->dvb_net1); dvbdemux->dmx.close(&dvbdemux1->dmx); dvb_dmxdev_release(&av7110->dmxdev1); dvb_dmx_release(&av7110->demux1); } dvb_net_release(&av7110->dvb_net); dvbdemux->dmx.close(&dvbdemux->dmx); dvbdemux->dmx.remove_frontend(&dvbdemux->dmx, &av7110->hw_frontend); dvbdemux->dmx.remove_frontend(&dvbdemux->dmx, &av7110->mem_frontend); dvb_dmxdev_release(&av7110->dmxdev); dvb_dmx_release(&av7110->demux); if (av7110->fe != NULL) { dvb_unregister_frontend(av7110->fe); dvb_frontend_detach(av7110->fe); } dvb_unregister_device(av7110->osd_dev); av7110_av_unregister(av7110); av7110_ca_unregister(av7110); } /**************************************************************************** * I2C client commands ****************************************************************************/ int i2c_writereg(struct av7110 *av7110, u8 id, u8 reg, u8 val) { u8 msg[2] = { reg, val }; struct i2c_msg msgs; msgs.flags = 0; msgs.addr = id / 2; msgs.len = 2; msgs.buf = msg; return i2c_transfer(&av7110->i2c_adap, &msgs, 1); } u8 i2c_readreg(struct av7110 *av7110, u8 id, u8 reg) { u8 mm1[] = {0x00}; u8 mm2[] = {0x00}; struct i2c_msg msgs[2]; msgs[0].flags = 0; msgs[1].flags = I2C_M_RD; msgs[0].addr = msgs[1].addr = id / 2; mm1[0] = reg; msgs[0].len = 1; msgs[1].len = 1; msgs[0].buf = mm1; msgs[1].buf = mm2; i2c_transfer(&av7110->i2c_adap, msgs, 2); return mm2[0]; } /**************************************************************************** * INITIALIZATION ****************************************************************************/ static int check_firmware(struct av7110* av7110) { u32 crc = 0, len = 0; unsigned char *ptr; /* check for firmware magic */ ptr = av7110->bin_fw; if (ptr[0] != 'A' || ptr[1] != 'V' || ptr[2] != 'F' || ptr[3] != 'W') { printk("dvb-ttpci: this is not an av7110 firmware\n"); return -EINVAL; } ptr += 4; /* check dpram file */ crc = get_unaligned_be32(ptr); ptr += 4; len = get_unaligned_be32(ptr); ptr += 4; if (len >= 512) { printk("dvb-ttpci: dpram file is way too big.\n"); return -EINVAL; } if (crc != crc32_le(0, ptr, len)) { printk("dvb-ttpci: crc32 of dpram file does not match.\n"); return -EINVAL; } av7110->bin_dpram = ptr; av7110->size_dpram = len; ptr += len; /* check root file */ crc = get_unaligned_be32(ptr); ptr += 4; len = get_unaligned_be32(ptr); ptr += 4; if (len <= 200000 || len >= 300000 || len > ((av7110->bin_fw + av7110->size_fw) - ptr)) { printk("dvb-ttpci: root file has strange size (%d). aborting.\n", len); return -EINVAL; } if( crc != crc32_le(0, ptr, len)) { printk("dvb-ttpci: crc32 of root file does not match.\n"); return -EINVAL; } av7110->bin_root = ptr; av7110->size_root = len; return 0; } static void put_firmware(struct av7110* av7110) { vfree(av7110->bin_fw); } static int get_firmware(struct av7110* av7110) { int ret; const struct firmware *fw; /* request the av7110 firmware, this will block until someone uploads it */ ret = request_firmware(&fw, "dvb-ttpci-01.fw", &av7110->dev->pci->dev); if (ret) { if (ret == -ENOENT) { printk(KERN_ERR "dvb-ttpci: could not load firmware," " file not found: dvb-ttpci-01.fw\n"); printk(KERN_ERR "dvb-ttpci: usually this should be in " "/usr/lib/hotplug/firmware or /lib/firmware\n"); printk(KERN_ERR "dvb-ttpci: and can be downloaded from" " http://www.linuxtv.org/download/dvb/firmware/\n"); } else printk(KERN_ERR "dvb-ttpci: cannot request firmware" " (error %i)\n", ret); return -EINVAL; } if (fw->size <= 200000) { printk("dvb-ttpci: this firmware is way too small.\n"); release_firmware(fw); return -EINVAL; } /* check if the firmware is available */ av7110->bin_fw = vmalloc(fw->size); if (NULL == av7110->bin_fw) { dprintk(1, "out of memory\n"); release_firmware(fw); return -ENOMEM; } memcpy(av7110->bin_fw, fw->data, fw->size); av7110->size_fw = fw->size; if ((ret = check_firmware(av7110))) vfree(av7110->bin_fw); release_firmware(fw); return ret; } static int alps_bsrv2_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u8 pwr = 0; u8 buf[4]; struct i2c_msg msg = { .addr = 0x61, .flags = 0, .buf = buf, .len = sizeof(buf) }; u32 div = (params->frequency + 479500) / 125; if (params->frequency > 2000000) pwr = 3; else if (params->frequency > 1800000) pwr = 2; else if (params->frequency > 1600000) pwr = 1; else if (params->frequency > 1200000) pwr = 0; else if (params->frequency >= 1100000) pwr = 1; else pwr = 2; buf[0] = (div >> 8) & 0x7f; buf[1] = div & 0xff; buf[2] = ((div & 0x18000) >> 10) | 0x95; buf[3] = (pwr << 6) | 0x30; // NOTE: since we're using a prescaler of 2, we set the // divisor frequency to 62.5kHz and divide by 125 above if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer (&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static struct ves1x93_config alps_bsrv2_config = { .demod_address = 0x08, .xin = 90100000UL, .invert_pwm = 0, }; static int alps_tdbe2_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div; u8 data[4]; struct i2c_msg msg = { .addr = 0x62, .flags = 0, .buf = data, .len = sizeof(data) }; div = (params->frequency + 35937500 + 31250) / 62500; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = 0x85 | ((div >> 10) & 0x60); data[3] = (params->frequency < 174000000 ? 0x88 : params->frequency < 470000000 ? 0x84 : 0x81); if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static struct ves1820_config alps_tdbe2_config = { .demod_address = 0x09, .xin = 57840000UL, .invert = 1, .selagc = VES1820_SELAGC_SIGNAMPERR, }; static int grundig_29504_451_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div; u8 data[4]; struct i2c_msg msg = { .addr = 0x61, .flags = 0, .buf = data, .len = sizeof(data) }; div = params->frequency / 125; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = 0x8e; data[3] = 0x00; if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static struct tda8083_config grundig_29504_451_config = { .demod_address = 0x68, }; static int philips_cd1516_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div; u32 f = params->frequency; u8 data[4]; struct i2c_msg msg = { .addr = 0x61, .flags = 0, .buf = data, .len = sizeof(data) }; div = (f + 36125000 + 31250) / 62500; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = 0x8e; data[3] = (f < 174000000 ? 0xa1 : f < 470000000 ? 0x92 : 0x34); if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static struct ves1820_config philips_cd1516_config = { .demod_address = 0x09, .xin = 57840000UL, .invert = 1, .selagc = VES1820_SELAGC_SIGNAMPERR, }; static int alps_tdlb7_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div, pwr; u8 data[4]; struct i2c_msg msg = { .addr = 0x60, .flags = 0, .buf = data, .len = sizeof(data) }; div = (params->frequency + 36200000) / 166666; if (params->frequency <= 782000000) pwr = 1; else pwr = 2; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = 0x85; data[3] = pwr << 6; if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static int alps_tdlb7_request_firmware(struct dvb_frontend* fe, const struct firmware **fw, char* name) { #if defined(CONFIG_DVB_SP8870) || defined(CONFIG_DVB_SP8870_MODULE) struct av7110* av7110 = fe->dvb->priv; return request_firmware(fw, name, &av7110->dev->pci->dev); #else return -EINVAL; #endif } static struct sp8870_config alps_tdlb7_config = { .demod_address = 0x71, .request_firmware = alps_tdlb7_request_firmware, }; static u8 nexusca_stv0297_inittab[] = { 0x80, 0x01, 0x80, 0x00, 0x81, 0x01, 0x81, 0x00, 0x00, 0x09, 0x01, 0x69, 0x03, 0x00, 0x04, 0x00, 0x07, 0x00, 0x08, 0x00, 0x20, 0x00, 0x21, 0x40, 0x22, 0x00, 0x23, 0x00, 0x24, 0x40, 0x25, 0x88, 0x30, 0xff, 0x31, 0x00, 0x32, 0xff, 0x33, 0x00, 0x34, 0x50, 0x35, 0x7f, 0x36, 0x00, 0x37, 0x20, 0x38, 0x00, 0x40, 0x1c, 0x41, 0xff, 0x42, 0x29, 0x43, 0x00, 0x44, 0xff, 0x45, 0x00, 0x46, 0x00, 0x49, 0x04, 0x4a, 0x00, 0x4b, 0x7b, 0x52, 0x30, 0x55, 0xae, 0x56, 0x47, 0x57, 0xe1, 0x58, 0x3a, 0x5a, 0x1e, 0x5b, 0x34, 0x60, 0x00, 0x63, 0x00, 0x64, 0x00, 0x65, 0x00, 0x66, 0x00, 0x67, 0x00, 0x68, 0x00, 0x69, 0x00, 0x6a, 0x02, 0x6b, 0x00, 0x70, 0xff, 0x71, 0x00, 0x72, 0x00, 0x73, 0x00, 0x74, 0x0c, 0x80, 0x00, 0x81, 0x00, 0x82, 0x00, 0x83, 0x00, 0x84, 0x04, 0x85, 0x80, 0x86, 0x24, 0x87, 0x78, 0x88, 0x10, 0x89, 0x00, 0x90, 0x01, 0x91, 0x01, 0xa0, 0x04, 0xa1, 0x00, 0xa2, 0x00, 0xb0, 0x91, 0xb1, 0x0b, 0xc0, 0x53, 0xc1, 0x70, 0xc2, 0x12, 0xd0, 0x00, 0xd1, 0x00, 0xd2, 0x00, 0xd3, 0x00, 0xd4, 0x00, 0xd5, 0x00, 0xde, 0x00, 0xdf, 0x00, 0x61, 0x49, 0x62, 0x0b, 0x53, 0x08, 0x59, 0x08, 0xff, 0xff, }; static int nexusca_stv0297_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div; u8 data[4]; struct i2c_msg msg = { .addr = 0x63, .flags = 0, .buf = data, .len = sizeof(data) }; struct i2c_msg readmsg = { .addr = 0x63, .flags = I2C_M_RD, .buf = data, .len = 1 }; int i; div = (params->frequency + 36150000 + 31250) / 62500; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = 0xce; if (params->frequency < 45000000) return -EINVAL; else if (params->frequency < 137000000) data[3] = 0x01; else if (params->frequency < 403000000) data[3] = 0x02; else if (params->frequency < 860000000) data[3] = 0x04; else return -EINVAL; if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &msg, 1) != 1) { printk("nexusca: pll transfer failed!\n"); return -EIO; } // wait for PLL lock for(i = 0; i < 20; i++) { if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer(&av7110->i2c_adap, &readmsg, 1) == 1) if (data[0] & 0x40) break; msleep(10); } return 0; } static struct stv0297_config nexusca_stv0297_config = { .demod_address = 0x1C, .inittab = nexusca_stv0297_inittab, .invert = 1, .stop_during_read = 1, }; static int grundig_29504_401_tuner_set_params(struct dvb_frontend* fe, struct dvb_frontend_parameters *params) { struct av7110* av7110 = fe->dvb->priv; u32 div; u8 cfg, cpump, band_select; u8 data[4]; struct i2c_msg msg = { .addr = 0x61, .flags = 0, .buf = data, .len = sizeof(data) }; div = (36125000 + params->frequency) / 166666; cfg = 0x88; if (params->frequency < 175000000) cpump = 2; else if (params->frequency < 390000000) cpump = 1; else if (params->frequency < 470000000) cpump = 2; else if (params->frequency < 750000000) cpump = 1; else cpump = 3; if (params->frequency < 175000000) band_select = 0x0e; else if (params->frequency < 470000000) band_select = 0x05; else band_select = 0x03; data[0] = (div >> 8) & 0x7f; data[1] = div & 0xff; data[2] = ((div >> 10) & 0x60) | cfg; data[3] = (cpump << 6) | band_select; if (fe->ops.i2c_gate_ctrl) fe->ops.i2c_gate_ctrl(fe, 1); if (i2c_transfer (&av7110->i2c_adap, &msg, 1) != 1) return -EIO; return 0; } static struct l64781_config grundig_29504_401_config = { .demod_address = 0x55, }; static int av7110_fe_lock_fix(struct av7110* av7110, fe_status_t status) { int ret = 0; int synced = (status & FE_HAS_LOCK) ? 1 : 0; av7110->fe_status = status; if (av7110->fe_synced == synced) return 0; if (av7110->playing) { av7110->fe_synced = synced; return 0; } if (mutex_lock_interruptible(&av7110->pid_mutex)) return -ERESTARTSYS; if (synced) { ret = SetPIDs(av7110, av7110->pids[DMX_PES_VIDEO], av7110->pids[DMX_PES_AUDIO], av7110->pids[DMX_PES_TELETEXT], 0, av7110->pids[DMX_PES_PCR]); if (!ret) ret = av7110_fw_cmd(av7110, COMTYPE_PIDFILTER, Scan, 0); } else { ret = SetPIDs(av7110, 0, 0, 0, 0, 0); if (!ret) { ret = av7110_fw_cmd(av7110, COMTYPE_PID_FILTER, FlushTSQueue, 0); if (!ret) ret = av7110_wait_msgstate(av7110, GPMQBusy); } } if (!ret) av7110->fe_synced = synced; mutex_unlock(&av7110->pid_mutex); return ret; } static int av7110_fe_set_frontend(struct dvb_frontend* fe, struct dvb_frontend_parameters* params) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) { av7110->saved_fe_params = *params; ret = av7110->fe_set_frontend(fe, params); } return ret; } static int av7110_fe_init(struct dvb_frontend* fe) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) ret = av7110->fe_init(fe); return ret; } static int av7110_fe_read_status(struct dvb_frontend* fe, fe_status_t* status) { struct av7110* av7110 = fe->dvb->priv; /* call the real implementation */ int ret = av7110->fe_read_status(fe, status); if (!ret) if (((*status ^ av7110->fe_status) & FE_HAS_LOCK) && (*status & FE_HAS_LOCK)) ret = av7110_fe_lock_fix(av7110, *status); return ret; } static int av7110_fe_diseqc_reset_overload(struct dvb_frontend* fe) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) ret = av7110->fe_diseqc_reset_overload(fe); return ret; } static int av7110_fe_diseqc_send_master_cmd(struct dvb_frontend* fe, struct dvb_diseqc_master_cmd* cmd) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) { av7110->saved_master_cmd = *cmd; ret = av7110->fe_diseqc_send_master_cmd(fe, cmd); } return ret; } static int av7110_fe_diseqc_send_burst(struct dvb_frontend* fe, fe_sec_mini_cmd_t minicmd) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) { av7110->saved_minicmd = minicmd; ret = av7110->fe_diseqc_send_burst(fe, minicmd); } return ret; } static int av7110_fe_set_tone(struct dvb_frontend* fe, fe_sec_tone_mode_t tone) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) { av7110->saved_tone = tone; ret = av7110->fe_set_tone(fe, tone); } return ret; } static int av7110_fe_set_voltage(struct dvb_frontend* fe, fe_sec_voltage_t voltage) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) { av7110->saved_voltage = voltage; ret = av7110->fe_set_voltage(fe, voltage); } return ret; } static int av7110_fe_dishnetwork_send_legacy_command(struct dvb_frontend* fe, unsigned long cmd) { struct av7110* av7110 = fe->dvb->priv; int ret = av7110_fe_lock_fix(av7110, 0); if (!ret) ret = av7110->fe_dishnetwork_send_legacy_command(fe, cmd); return ret; } static void dvb_s_recover(struct av7110* av7110) { av7110_fe_init(av7110->fe); av7110_fe_set_voltage(av7110->fe, av7110->saved_voltage); if (av7110->saved_master_cmd.msg_len) { msleep(20); av7110_fe_diseqc_send_master_cmd(av7110->fe, &av7110->saved_master_cmd); } msleep(20); av7110_fe_diseqc_send_burst(av7110->fe, av7110->saved_minicmd); msleep(20); av7110_fe_set_tone(av7110->fe, av7110->saved_tone); av7110_fe_set_frontend(av7110->fe, &av7110->saved_fe_params); } static u8 read_pwm(struct av7110* av7110) { u8 b = 0xff; u8 pwm; struct i2c_msg msg[] = { { .addr = 0x50,.flags = 0,.buf = &b,.len = 1 }, { .addr = 0x50,.flags = I2C_M_RD,.buf = &pwm,.len = 1} }; if ((i2c_transfer(&av7110->i2c_adap, msg, 2) != 2) || (pwm == 0xff)) pwm = 0x48; return pwm; } static int frontend_init(struct av7110 *av7110) { int ret; if (av7110->dev->pci->subsystem_vendor == 0x110a) { switch(av7110->dev->pci->subsystem_device) { case 0x0000: // Fujitsu/Siemens DVB-Cable (ves1820/Philips CD1516(??)) av7110->fe = dvb_attach(ves1820_attach, &philips_cd1516_config, &av7110->i2c_adap, read_pwm(av7110)); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = philips_cd1516_tuner_set_params; } break; } } else if (av7110->dev->pci->subsystem_vendor == 0x13c2) { switch(av7110->dev->pci->subsystem_device) { case 0x0000: // Hauppauge/TT WinTV DVB-S rev1.X case 0x0003: // Hauppauge/TT WinTV Nexus-S Rev 2.X case 0x1002: // Hauppauge/TT WinTV DVB-S rev1.3SE // try the ALPS BSRV2 first of all av7110->fe = dvb_attach(ves1x93_attach, &alps_bsrv2_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_bsrv2_tuner_set_params; av7110->fe->ops.diseqc_send_master_cmd = av7110_diseqc_send_master_cmd; av7110->fe->ops.diseqc_send_burst = av7110_diseqc_send_burst; av7110->fe->ops.set_tone = av7110_set_tone; av7110->recover = dvb_s_recover; break; } // try the ALPS BSRU6 now av7110->fe = dvb_attach(stv0299_attach, &alps_bsru6_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_bsru6_tuner_set_params; av7110->fe->tuner_priv = &av7110->i2c_adap; av7110->fe->ops.diseqc_send_master_cmd = av7110_diseqc_send_master_cmd; av7110->fe->ops.diseqc_send_burst = av7110_diseqc_send_burst; av7110->fe->ops.set_tone = av7110_set_tone; av7110->recover = dvb_s_recover; break; } // Try the grundig 29504-451 av7110->fe = dvb_attach(tda8083_attach, &grundig_29504_451_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = grundig_29504_451_tuner_set_params; av7110->fe->ops.diseqc_send_master_cmd = av7110_diseqc_send_master_cmd; av7110->fe->ops.diseqc_send_burst = av7110_diseqc_send_burst; av7110->fe->ops.set_tone = av7110_set_tone; av7110->recover = dvb_s_recover; break; } /* Try DVB-C cards */ switch(av7110->dev->pci->subsystem_device) { case 0x0000: /* Siemens DVB-C (full-length card) VES1820/Philips CD1516 */ av7110->fe = dvb_attach(ves1820_attach, &philips_cd1516_config, &av7110->i2c_adap, read_pwm(av7110)); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = philips_cd1516_tuner_set_params; } break; case 0x0003: /* Hauppauge DVB-C 2.1 VES1820/ALPS TDBE2 */ av7110->fe = dvb_attach(ves1820_attach, &alps_tdbe2_config, &av7110->i2c_adap, read_pwm(av7110)); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_tdbe2_tuner_set_params; } break; } break; case 0x0001: // Hauppauge/TT Nexus-T premium rev1.X // try ALPS TDLB7 first, then Grundig 29504-401 av7110->fe = dvb_attach(sp8870_attach, &alps_tdlb7_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_tdlb7_tuner_set_params; break; } /* fall-thru */ case 0x0008: // Hauppauge/TT DVB-T // Grundig 29504-401 av7110->fe = dvb_attach(l64781_attach, &grundig_29504_401_config, &av7110->i2c_adap); if (av7110->fe) av7110->fe->ops.tuner_ops.set_params = grundig_29504_401_tuner_set_params; break; case 0x0002: // Hauppauge/TT DVB-C premium rev2.X av7110->fe = dvb_attach(ves1820_attach, &alps_tdbe2_config, &av7110->i2c_adap, read_pwm(av7110)); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_tdbe2_tuner_set_params; } break; case 0x0004: // Galaxis DVB-S rev1.3 /* ALPS BSRV2 */ av7110->fe = dvb_attach(ves1x93_attach, &alps_bsrv2_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_bsrv2_tuner_set_params; av7110->fe->ops.diseqc_send_master_cmd = av7110_diseqc_send_master_cmd; av7110->fe->ops.diseqc_send_burst = av7110_diseqc_send_burst; av7110->fe->ops.set_tone = av7110_set_tone; av7110->recover = dvb_s_recover; } break; case 0x0006: /* Fujitsu-Siemens DVB-S rev 1.6 */ /* Grundig 29504-451 */ av7110->fe = dvb_attach(tda8083_attach, &grundig_29504_451_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = grundig_29504_451_tuner_set_params; av7110->fe->ops.diseqc_send_master_cmd = av7110_diseqc_send_master_cmd; av7110->fe->ops.diseqc_send_burst = av7110_diseqc_send_burst; av7110->fe->ops.set_tone = av7110_set_tone; av7110->recover = dvb_s_recover; } break; case 0x000A: // Hauppauge/TT Nexus-CA rev1.X av7110->fe = dvb_attach(stv0297_attach, &nexusca_stv0297_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = nexusca_stv0297_tuner_set_params; /* set TDA9819 into DVB mode */ saa7146_setgpio(av7110->dev, 1, SAA7146_GPIO_OUTLO); // TDA9819 pin9(STD) saa7146_setgpio(av7110->dev, 3, SAA7146_GPIO_OUTLO); // TDA9819 pin30(VIF) /* tuner on this needs a slower i2c bus speed */ av7110->dev->i2c_bitrate = SAA7146_I2C_BUS_BIT_RATE_240; break; } break; case 0x000E: /* Hauppauge/TT Nexus-S rev 2.3 */ /* ALPS BSBE1 */ av7110->fe = dvb_attach(stv0299_attach, &alps_bsbe1_config, &av7110->i2c_adap); if (av7110->fe) { av7110->fe->ops.tuner_ops.set_params = alps_bsbe1_tuner_set_params; av7110->fe->tuner_priv = &av7110->i2c_adap; if (dvb_attach(lnbp21_attach, av7110->fe, &av7110->i2c_adap, 0, 0) == NULL) { printk("dvb-ttpci: LNBP21 not found!\n"); if (av7110->fe->ops.release) av7110->fe->ops.release(av7110->fe); av7110->fe = NULL; } else { av7110->fe->ops.dishnetwork_send_legacy_command = NULL; av7110->recover = dvb_s_recover; } } break; } } if (!av7110->fe) { /* FIXME: propagate the failure code from the lower layers */ ret = -ENOMEM; printk("dvb-ttpci: A frontend driver was not found for device [%04x:%04x] subsystem [%04x:%04x]\n", av7110->dev->pci->vendor, av7110->dev->pci->device, av7110->dev->pci->subsystem_vendor, av7110->dev->pci->subsystem_device); } else { FE_FUNC_OVERRIDE(av7110->fe->ops.init, av7110->fe_init, av7110_fe_init); FE_FUNC_OVERRIDE(av7110->fe->ops.read_status, av7110->fe_read_status, av7110_fe_read_status); FE_FUNC_OVERRIDE(av7110->fe->ops.diseqc_reset_overload, av7110->fe_diseqc_reset_overload, av7110_fe_diseqc_reset_overload); FE_FUNC_OVERRIDE(av7110->fe->ops.diseqc_send_master_cmd, av7110->fe_diseqc_send_master_cmd, av7110_fe_diseqc_send_master_cmd); FE_FUNC_OVERRIDE(av7110->fe->ops.diseqc_send_burst, av7110->fe_diseqc_send_burst, av7110_fe_diseqc_send_burst); FE_FUNC_OVERRIDE(av7110->fe->ops.set_tone, av7110->fe_set_tone, av7110_fe_set_tone); FE_FUNC_OVERRIDE(av7110->fe->ops.set_voltage, av7110->fe_set_voltage, av7110_fe_set_voltage); FE_FUNC_OVERRIDE(av7110->fe->ops.dishnetwork_send_legacy_command, av7110->fe_dishnetwork_send_legacy_command, av7110_fe_dishnetwork_send_legacy_command); FE_FUNC_OVERRIDE(av7110->fe->ops.set_frontend, av7110->fe_set_frontend, av7110_fe_set_frontend); ret = dvb_register_frontend(&av7110->dvb_adapter, av7110->fe); if (ret < 0) { printk("av7110: Frontend registration failed!\n"); dvb_frontend_detach(av7110->fe); av7110->fe = NULL; } } return ret; } /* Budgetpatch note: * Original hardware design by Roberto Deza: * There is a DVB_Wiki at * http://212.227.36.83/linuxtv/wiki/index.php/Main_Page * where is described this 'DVB TT Budget Patch', on Card Modding: * http://212.227.36.83/linuxtv/wiki/index.php/DVB_TT_Budget_Patch * On the short description there is also a link to a external file, * with more details: * http://perso.wanadoo.es/jesussolano/Ttf_tsc1.zip * * New software triggering design by Emard that works on * original Roberto Deza's hardware: * * rps1 code for budgetpatch will copy internal HS event to GPIO3 pin. * GPIO3 is in budget-patch hardware connectd to port B VSYNC * HS is an internal event of 7146, accessible with RPS * and temporarily raised high every n lines * (n in defined in the RPS_THRESH1 counter threshold) * I think HS is raised high on the beginning of the n-th line * and remains high until this n-th line that triggered * it is completely received. When the receiption of n-th line * ends, HS is lowered. * * To transmit data over DMA, 7146 needs changing state at * port B VSYNC pin. Any changing of port B VSYNC will * cause some DMA data transfer, with more or less packets loss. * It depends on the phase and frequency of VSYNC and * the way of 7146 is instructed to trigger on port B (defined * in DD1_INIT register, 3rd nibble from the right valid * numbers are 0-7, see datasheet) * * The correct triggering can minimize packet loss, * dvbtraffic should give this stable bandwidths: * 22k transponder = 33814 kbit/s * 27.5k transponder = 38045 kbit/s * by experiment it is found that the best results * (stable bandwidths and almost no packet loss) * are obtained using DD1_INIT triggering number 2 * (Va at rising edge of VS Fa = HS x VS-failing forced toggle) * and a VSYNC phase that occurs in the middle of DMA transfer * (about byte 188*512=96256 in the DMA window). * * Phase of HS is still not clear to me how to control, * It just happens to be so. It can be seen if one enables * RPS_IRQ and print Event Counter 1 in vpeirq(). Every * time RPS_INTERRUPT is called, the Event Counter 1 will * increment. That's how the 7146 is programmed to do event * counting in this budget-patch.c * I *think* HPS setting has something to do with the phase * of HS but I cant be 100% sure in that. * * hardware debug note: a working budget card (including budget patch) * with vpeirq() interrupt setup in mode "0x90" (every 64K) will * generate 3 interrupts per 25-Hz DMA frame of 2*188*512 bytes * and that means 3*25=75 Hz of interrupt freqency, as seen by * watch cat /proc/interrupts * * If this frequency is 3x lower (and data received in the DMA * buffer don't start with 0x47, but in the middle of packets, * whose lengths appear to be like 188 292 188 104 etc. * this means VSYNC line is not connected in the hardware. * (check soldering pcb and pins) * The same behaviour of missing VSYNC can be duplicated on budget * cards, by seting DD1_INIT trigger mode 7 in 3rd nibble. */ static int __devinit av7110_attach(struct saa7146_dev* dev, struct saa7146_pci_extension_data *pci_ext) { const int length = TS_WIDTH * TS_HEIGHT; struct pci_dev *pdev = dev->pci; struct av7110 *av7110; struct task_struct *thread; int ret, count = 0; dprintk(4, "dev: %p\n", dev); /* Set RPS_IRQ to 1 to track rps1 activity. * Enabling this won't send any interrupt to PC CPU. */ #define RPS_IRQ 0 if (budgetpatch == 1) { budgetpatch = 0; /* autodetect the presence of budget patch * this only works if saa7146 has been recently * reset with with MASK_31 to MC1 * * will wait for VBI_B event (vertical blank at port B) * and will reset GPIO3 after VBI_B is detected. * (GPIO3 should be raised high by CPU to * test if GPIO3 will generate vertical blank signal * in budget patch GPIO3 is connected to VSYNC_B */ /* RESET SAA7146 */ saa7146_write(dev, MC1, MASK_31); /* autodetection success seems to be time-dependend after reset */ /* Fix VSYNC level */ saa7146_setgpio(dev, 3, SAA7146_GPIO_OUTLO); /* set vsync_b triggering */ saa7146_write(dev, DD1_STREAM_B, 0); /* port B VSYNC at rising edge */ saa7146_write(dev, DD1_INIT, 0x00000200); saa7146_write(dev, BRS_CTRL, 0x00000000); // VBI saa7146_write(dev, MC2, 1 * (MASK_08 | MASK_24) | // BRS control 0 * (MASK_09 | MASK_25) | // a 1 * (MASK_10 | MASK_26) | // b 0 * (MASK_06 | MASK_22) | // HPS_CTRL1 0 * (MASK_05 | MASK_21) | // HPS_CTRL2 0 * (MASK_01 | MASK_15) // DEBI ); /* start writing RPS1 code from beginning */ count = 0; /* Disable RPS1 */ saa7146_write(dev, MC1, MASK_29); /* RPS1 timeout disable */ saa7146_write(dev, RPS_TOV1, 0); WRITE_RPS1(CMD_PAUSE | EVT_VBI_B); WRITE_RPS1(CMD_WR_REG_MASK | (GPIO_CTRL>>2)); WRITE_RPS1(GPIO3_MSK); WRITE_RPS1(SAA7146_GPIO_OUTLO<<24); #if RPS_IRQ /* issue RPS1 interrupt to increment counter */ WRITE_RPS1(CMD_INTERRUPT); #endif WRITE_RPS1(CMD_STOP); /* Jump to begin of RPS program as safety measure (p37) */ WRITE_RPS1(CMD_JUMP); WRITE_RPS1(dev->d_rps1.dma_handle); #if RPS_IRQ /* set event counter 1 source as RPS1 interrupt (0x03) (rE4 p53) * use 0x03 to track RPS1 interrupts - increase by 1 every gpio3 is toggled * use 0x15 to track VPE interrupts - increase by 1 every vpeirq() is called */ saa7146_write(dev, EC1SSR, (0x03<<2) | 3 ); /* set event counter 1 threshold to maximum allowed value (rEC p55) */ saa7146_write(dev, ECT1R, 0x3fff ); #endif /* Set RPS1 Address register to point to RPS code (r108 p42) */ saa7146_write(dev, RPS_ADDR1, dev->d_rps1.dma_handle); /* Enable RPS1, (rFC p33) */ saa7146_write(dev, MC1, (MASK_13 | MASK_29 )); mdelay(10); /* now send VSYNC_B to rps1 by rising GPIO3 */ saa7146_setgpio(dev, 3, SAA7146_GPIO_OUTHI); mdelay(10); /* if rps1 responded by lowering the GPIO3, * then we have budgetpatch hardware */ if ((saa7146_read(dev, GPIO_CTRL) & 0x10000000) == 0) { budgetpatch = 1; printk("dvb-ttpci: BUDGET-PATCH DETECTED.\n"); } /* Disable RPS1 */ saa7146_write(dev, MC1, ( MASK_29 )); #if RPS_IRQ printk("dvb-ttpci: Event Counter 1 0x%04x\n", saa7146_read(dev, EC1R) & 0x3fff ); #endif } /* prepare the av7110 device struct */ av7110 = kzalloc(sizeof(struct av7110), GFP_KERNEL); if (!av7110) { dprintk(1, "out of memory\n"); return -ENOMEM; } av7110->card_name = (char*) pci_ext->ext_priv; av7110->dev = dev; dev->ext_priv = av7110; ret = get_firmware(av7110); if (ret < 0) goto err_kfree_0; ret = dvb_register_adapter(&av7110->dvb_adapter, av7110->card_name, THIS_MODULE, &dev->pci->dev, adapter_nr); if (ret < 0) goto err_put_firmware_1; /* the Siemens DVB needs this if you want to have the i2c chips get recognized before the main driver is fully loaded */ saa7146_write(dev, GPIO_CTRL, 0x500000); av7110->i2c_adap.class = I2C_CLASS_TV_DIGITAL; strlcpy(av7110->i2c_adap.name, pci_ext->ext_priv, sizeof(av7110->i2c_adap.name)); saa7146_i2c_adapter_prepare(dev, &av7110->i2c_adap, SAA7146_I2C_BUS_BIT_RATE_120); /* 275 kHz */ ret = i2c_add_adapter(&av7110->i2c_adap); if (ret < 0) goto err_dvb_unregister_adapter_2; ttpci_eeprom_parse_mac(&av7110->i2c_adap, av7110->dvb_adapter.proposed_mac); ret = -ENOMEM; /* full-ts mod? */ if (full_ts) av7110->full_ts = true; /* check for full-ts flag in eeprom */ if (i2c_readreg(av7110, 0xaa, 0) == 0x4f && i2c_readreg(av7110, 0xaa, 1) == 0x45) { u8 flags = i2c_readreg(av7110, 0xaa, 2); if (flags != 0xff && (flags & 0x01)) av7110->full_ts = true; } if (av7110->full_ts) { printk(KERN_INFO "dvb-ttpci: full-ts mode enabled for saa7146 port B\n"); spin_lock_init(&av7110->feedlock1); av7110->grabbing = saa7146_vmalloc_build_pgtable(pdev, length, &av7110->pt); if (!av7110->grabbing) goto err_i2c_del_3; saa7146_write(dev, DD1_STREAM_B, 0x00000000); saa7146_write(dev, MC2, (MASK_10 | MASK_26)); saa7146_write(dev, DD1_INIT, 0x00000600); saa7146_write(dev, MC2, (MASK_09 | MASK_25 | MASK_10 | MASK_26)); saa7146_write(dev, BRS_CTRL, 0x60000000); saa7146_write(dev, MC2, MASK_08 | MASK_24); /* dma3 */ saa7146_write(dev, PCI_BT_V1, 0x001c0000 | (saa7146_read(dev, PCI_BT_V1) & ~0x001f0000)); saa7146_write(dev, BASE_ODD3, 0); saa7146_write(dev, BASE_EVEN3, 0); saa7146_write(dev, PROT_ADDR3, TS_WIDTH * TS_HEIGHT); saa7146_write(dev, PITCH3, TS_WIDTH); saa7146_write(dev, BASE_PAGE3, av7110->pt.dma | ME1 | 0x90); saa7146_write(dev, NUM_LINE_BYTE3, (TS_HEIGHT << 16) | TS_WIDTH); saa7146_write(dev, MC2, MASK_04 | MASK_20); tasklet_init(&av7110->vpe_tasklet, vpeirq, (unsigned long) av7110); } else if (budgetpatch) { spin_lock_init(&av7110->feedlock1); av7110->grabbing = saa7146_vmalloc_build_pgtable(pdev, length, &av7110->pt); if (!av7110->grabbing) goto err_i2c_del_3; saa7146_write(dev, PCI_BT_V1, 0x1c1f101f); saa7146_write(dev, BCS_CTRL, 0x80400040); /* set dd1 stream a & b */ saa7146_write(dev, DD1_STREAM_B, 0x00000000); saa7146_write(dev, DD1_INIT, 0x03000200); saa7146_write(dev, MC2, (MASK_09 | MASK_25 | MASK_10 | MASK_26)); saa7146_write(dev, BRS_CTRL, 0x60000000); saa7146_write(dev, BASE_ODD3, 0); saa7146_write(dev, BASE_EVEN3, 0); saa7146_write(dev, PROT_ADDR3, TS_WIDTH * TS_HEIGHT); saa7146_write(dev, BASE_PAGE3, av7110->pt.dma | ME1 | 0x90); saa7146_write(dev, PITCH3, TS_WIDTH); saa7146_write(dev, NUM_LINE_BYTE3, (TS_HEIGHT << 16) | TS_WIDTH); /* upload all */ saa7146_write(dev, MC2, 0x077c077c); saa7146_write(dev, GPIO_CTRL, 0x000000); #if RPS_IRQ /* set event counter 1 source as RPS1 interrupt (0x03) (rE4 p53) * use 0x03 to track RPS1 interrupts - increase by 1 every gpio3 is toggled * use 0x15 to track VPE interrupts - increase by 1 every vpeirq() is called */ saa7146_write(dev, EC1SSR, (0x03<<2) | 3 ); /* set event counter 1 threshold to maximum allowed value (rEC p55) */ saa7146_write(dev, ECT1R, 0x3fff ); #endif /* Setup BUDGETPATCH MAIN RPS1 "program" (p35) */ count = 0; /* Wait Source Line Counter Threshold (p36) */ WRITE_RPS1(CMD_PAUSE | EVT_HS); /* Set GPIO3=1 (p42) */ WRITE_RPS1(CMD_WR_REG_MASK | (GPIO_CTRL>>2)); WRITE_RPS1(GPIO3_MSK); WRITE_RPS1(SAA7146_GPIO_OUTHI<<24); #if RPS_IRQ /* issue RPS1 interrupt */ WRITE_RPS1(CMD_INTERRUPT); #endif /* Wait reset Source Line Counter Threshold (p36) */ WRITE_RPS1(CMD_PAUSE | RPS_INV | EVT_HS); /* Set GPIO3=0 (p42) */ WRITE_RPS1(CMD_WR_REG_MASK | (GPIO_CTRL>>2)); WRITE_RPS1(GPIO3_MSK); WRITE_RPS1(SAA7146_GPIO_OUTLO<<24); #if RPS_IRQ /* issue RPS1 interrupt */ WRITE_RPS1(CMD_INTERRUPT); #endif /* Jump to begin of RPS program (p37) */ WRITE_RPS1(CMD_JUMP); WRITE_RPS1(dev->d_rps1.dma_handle); /* Fix VSYNC level */ saa7146_setgpio(dev, 3, SAA7146_GPIO_OUTLO); /* Set RPS1 Address register to point to RPS code (r108 p42) */ saa7146_write(dev, RPS_ADDR1, dev->d_rps1.dma_handle); /* Set Source Line Counter Threshold, using BRS (rCC p43) * It generates HS event every TS_HEIGHT lines * this is related to TS_WIDTH set in register * NUM_LINE_BYTE3. If NUM_LINE_BYTE low 16 bits * are set to TS_WIDTH bytes (TS_WIDTH=2*188), * then RPS_THRESH1 should be set to trigger * every TS_HEIGHT (512) lines. */ saa7146_write(dev, RPS_THRESH1, (TS_HEIGHT*1) | MASK_12 ); /* Enable RPS1 (rFC p33) */ saa7146_write(dev, MC1, (MASK_13 | MASK_29)); /* end of budgetpatch register initialization */ tasklet_init (&av7110->vpe_tasklet, vpeirq, (unsigned long) av7110); } else { saa7146_write(dev, PCI_BT_V1, 0x1c00101f); saa7146_write(dev, BCS_CTRL, 0x80400040); /* set dd1 stream a & b */ saa7146_write(dev, DD1_STREAM_B, 0x00000000); saa7146_write(dev, DD1_INIT, 0x03000000); saa7146_write(dev, MC2, (MASK_09 | MASK_25 | MASK_10 | MASK_26)); /* upload all */ saa7146_write(dev, MC2, 0x077c077c); saa7146_write(dev, GPIO_CTRL, 0x000000); } tasklet_init (&av7110->debi_tasklet, debiirq, (unsigned long) av7110); tasklet_init (&av7110->gpio_tasklet, gpioirq, (unsigned long) av7110); mutex_init(&av7110->pid_mutex); /* locks for data transfers from/to AV7110 */ spin_lock_init(&av7110->debilock); mutex_init(&av7110->dcomlock); av7110->debitype = -1; /* default OSD window */ av7110->osdwin = 1; mutex_init(&av7110->osd_mutex); /* TV standard */ av7110->vidmode = tv_standard == 1 ? AV7110_VIDEO_MODE_NTSC : AV7110_VIDEO_MODE_PAL; /* ARM "watchdog" */ init_waitqueue_head(&av7110->arm_wait); av7110->arm_thread = NULL; /* allocate and init buffers */ av7110->debi_virt = pci_alloc_consistent(pdev, 8192, &av7110->debi_bus); if (!av7110->debi_virt) goto err_saa71466_vfree_4; av7110->iobuf = vmalloc(AVOUTLEN+AOUTLEN+BMPLEN+4*IPACKS); if (!av7110->iobuf) goto err_pci_free_5; ret = av7110_av_init(av7110); if (ret < 0) goto err_iobuf_vfree_6; /* init BMP buffer */ av7110->bmpbuf = av7110->iobuf+AVOUTLEN+AOUTLEN; init_waitqueue_head(&av7110->bmpq); ret = av7110_ca_init(av7110); if (ret < 0) goto err_av7110_av_exit_7; /* load firmware into AV7110 cards */ ret = av7110_bootarm(av7110); if (ret < 0) goto err_av7110_ca_exit_8; ret = av7110_firmversion(av7110); if (ret < 0) goto err_stop_arm_9; if (FW_VERSION(av7110->arm_app)<0x2501) printk ("dvb-ttpci: Warning, firmware version 0x%04x is too old. " "System might be unstable!\n", FW_VERSION(av7110->arm_app)); thread = kthread_run(arm_thread, (void *) av7110, "arm_mon"); if (IS_ERR(thread)) { ret = PTR_ERR(thread); goto err_stop_arm_9; } av7110->arm_thread = thread; /* set initial volume in mixer struct */ av7110->mixer.volume_left = volume; av7110->mixer.volume_right = volume; ret = av7110_register(av7110); if (ret < 0) goto err_arm_thread_stop_10; init_av7110_av(av7110); /* special case DVB-C: these cards have an analog tuner plus need some special handling, so we have separate saa7146_ext_vv data for these... */ ret = av7110_init_v4l(av7110); if (ret < 0) goto err_av7110_unregister_11; av7110->dvb_adapter.priv = av7110; ret = frontend_init(av7110); if (ret < 0) goto err_av7110_exit_v4l_12; #if defined(CONFIG_INPUT_EVDEV) || defined(CONFIG_INPUT_EVDEV_MODULE) av7110_ir_init(av7110); #endif printk(KERN_INFO "dvb-ttpci: found av7110-%d.\n", av7110_num); av7110_num++; out: return ret; err_av7110_exit_v4l_12: av7110_exit_v4l(av7110); err_av7110_unregister_11: dvb_unregister(av7110); err_arm_thread_stop_10: av7110_arm_sync(av7110); err_stop_arm_9: /* Nothing to do. Rejoice. */ err_av7110_ca_exit_8: av7110_ca_exit(av7110); err_av7110_av_exit_7: av7110_av_exit(av7110); err_iobuf_vfree_6: vfree(av7110->iobuf); err_pci_free_5: pci_free_consistent(pdev, 8192, av7110->debi_virt, av7110->debi_bus); err_saa71466_vfree_4: if (av7110->grabbing) saa7146_vfree_destroy_pgtable(pdev, av7110->grabbing, &av7110->pt); err_i2c_del_3: i2c_del_adapter(&av7110->i2c_adap); err_dvb_unregister_adapter_2: dvb_unregister_adapter(&av7110->dvb_adapter); err_put_firmware_1: put_firmware(av7110); err_kfree_0: kfree(av7110); goto out; } static int __devexit av7110_detach(struct saa7146_dev* saa) { struct av7110 *av7110 = saa->ext_priv; dprintk(4, "%p\n", av7110); #if defined(CONFIG_INPUT_EVDEV) || defined(CONFIG_INPUT_EVDEV_MODULE) av7110_ir_exit(av7110); #endif if (budgetpatch || av7110->full_ts) { if (budgetpatch) { /* Disable RPS1 */ saa7146_write(saa, MC1, MASK_29); /* VSYNC LOW (inactive) */ saa7146_setgpio(saa, 3, SAA7146_GPIO_OUTLO); } saa7146_write(saa, MC1, MASK_20); /* DMA3 off */ SAA7146_IER_DISABLE(saa, MASK_10); SAA7146_ISR_CLEAR(saa, MASK_10); msleep(50); tasklet_kill(&av7110->vpe_tasklet); saa7146_vfree_destroy_pgtable(saa->pci, av7110->grabbing, &av7110->pt); } av7110_exit_v4l(av7110); av7110_arm_sync(av7110); tasklet_kill(&av7110->debi_tasklet); tasklet_kill(&av7110->gpio_tasklet); dvb_unregister(av7110); SAA7146_IER_DISABLE(saa, MASK_19 | MASK_03); SAA7146_ISR_CLEAR(saa, MASK_19 | MASK_03); av7110_ca_exit(av7110); av7110_av_exit(av7110); vfree(av7110->iobuf); pci_free_consistent(saa->pci, 8192, av7110->debi_virt, av7110->debi_bus); i2c_del_adapter(&av7110->i2c_adap); dvb_unregister_adapter (&av7110->dvb_adapter); av7110_num--; put_firmware(av7110); kfree(av7110); saa->ext_priv = NULL; return 0; } static void av7110_irq(struct saa7146_dev* dev, u32 *isr) { struct av7110 *av7110 = dev->ext_priv; //print_time("av7110_irq"); /* Note: Don't try to handle the DEBI error irq (MASK_18), in * intel mode the timeout is asserted all the time... */ if (*isr & MASK_19) { //printk("av7110_irq: DEBI\n"); /* Note 1: The DEBI irq is level triggered: We must enable it * only after we started a DMA xfer, and disable it here * immediately, or it will be signalled all the time while * DEBI is idle. * Note 2: You would think that an irq which is masked is * not signalled by the hardware. Not so for the SAA7146: * An irq is signalled as long as the corresponding bit * in the ISR is set, and disabling irqs just prevents the * hardware from setting the ISR bit. This means a) that we * must clear the ISR *after* disabling the irq (which is why * we must do it here even though saa7146_core did it already), * and b) that if we were to disable an edge triggered irq * (like the gpio irqs sadly are) temporarily we would likely * loose some. This sucks :-( */ SAA7146_IER_DISABLE(av7110->dev, MASK_19); SAA7146_ISR_CLEAR(av7110->dev, MASK_19); tasklet_schedule(&av7110->debi_tasklet); } if (*isr & MASK_03) { //printk("av7110_irq: GPIO\n"); tasklet_schedule(&av7110->gpio_tasklet); } if (*isr & MASK_10) tasklet_schedule(&av7110->vpe_tasklet); } static struct saa7146_extension av7110_extension_driver; #define MAKE_AV7110_INFO(x_var,x_name) \ static struct saa7146_pci_extension_data x_var = { \ .ext_priv = x_name, \ .ext = &av7110_extension_driver } MAKE_AV7110_INFO(tts_1_X_fsc,"Technotrend/Hauppauge WinTV DVB-S rev1.X or Fujitsu Siemens DVB-C"); MAKE_AV7110_INFO(ttt_1_X, "Technotrend/Hauppauge WinTV DVB-T rev1.X"); MAKE_AV7110_INFO(ttc_1_X, "Technotrend/Hauppauge WinTV Nexus-CA rev1.X"); MAKE_AV7110_INFO(ttc_2_X, "Technotrend/Hauppauge WinTV DVB-C rev2.X"); MAKE_AV7110_INFO(tts_2_X, "Technotrend/Hauppauge WinTV Nexus-S rev2.X"); MAKE_AV7110_INFO(tts_2_3, "Technotrend/Hauppauge WinTV Nexus-S rev2.3"); MAKE_AV7110_INFO(tts_1_3se, "Technotrend/Hauppauge WinTV DVB-S rev1.3 SE"); MAKE_AV7110_INFO(ttt, "Technotrend/Hauppauge DVB-T"); MAKE_AV7110_INFO(fsc, "Fujitsu Siemens DVB-C"); MAKE_AV7110_INFO(fss, "Fujitsu Siemens DVB-S rev1.6"); MAKE_AV7110_INFO(gxs_1_3, "Galaxis DVB-S rev1.3"); static struct pci_device_id pci_tbl[] = { MAKE_EXTENSION_PCI(fsc, 0x110a, 0x0000), MAKE_EXTENSION_PCI(tts_1_X_fsc, 0x13c2, 0x0000), MAKE_EXTENSION_PCI(ttt_1_X, 0x13c2, 0x0001), MAKE_EXTENSION_PCI(ttc_2_X, 0x13c2, 0x0002), MAKE_EXTENSION_PCI(tts_2_X, 0x13c2, 0x0003), MAKE_EXTENSION_PCI(gxs_1_3, 0x13c2, 0x0004), MAKE_EXTENSION_PCI(fss, 0x13c2, 0x0006), MAKE_EXTENSION_PCI(ttt, 0x13c2, 0x0008), MAKE_EXTENSION_PCI(ttc_1_X, 0x13c2, 0x000a), MAKE_EXTENSION_PCI(tts_2_3, 0x13c2, 0x000e), MAKE_EXTENSION_PCI(tts_1_3se, 0x13c2, 0x1002), /* MAKE_EXTENSION_PCI(???, 0x13c2, 0x0005), UNDEFINED CARD */ // Technisat SkyStar1 /* MAKE_EXTENSION_PCI(???, 0x13c2, 0x0009), UNDEFINED CARD */ // TT/Hauppauge WinTV Nexus-CA v???? { .vendor = 0, } }; MODULE_DEVICE_TABLE(pci, pci_tbl); static struct saa7146_extension av7110_extension_driver = { .name = "dvb", .flags = SAA7146_USE_I2C_IRQ, .module = THIS_MODULE, .pci_tbl = &pci_tbl[0], .attach = av7110_attach, .detach = __devexit_p(av7110_detach), .irq_mask = MASK_19 | MASK_03 | MASK_10, .irq_func = av7110_irq, }; static int __init av7110_init(void) { int retval; retval = saa7146_register_extension(&av7110_extension_driver); return retval; } static void __exit av7110_exit(void) { saa7146_unregister_extension(&av7110_extension_driver); } module_init(av7110_init); module_exit(av7110_exit); MODULE_DESCRIPTION("driver for the SAA7146 based AV110 PCI DVB cards by " "Siemens, Technotrend, Hauppauge"); MODULE_AUTHOR("Ralph Metzler, Marcus Metzler, others"); MODULE_LICENSE("GPL");