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    /*
     * firmware_class.c - Multi purpose firmware loading support
     *
    
     * Copyright (c) 2003 Manuel Estrada Sainz
    
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     *
     * Please see Documentation/firmware_class/ for more information.
     *
     */
    
    
    #include <linux/capability.h>
    
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    #include <linux/device.h>
    #include <linux/module.h>
    #include <linux/init.h>
    #include <linux/timer.h>
    #include <linux/vmalloc.h>
    #include <linux/interrupt.h>
    #include <linux/bitops.h>
    
    #include <linux/mutex.h>
    
    #include <linux/kthread.h>
    
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    #include <linux/firmware.h>
    #include "base.h"
    
    
    #define to_dev(obj) container_of(obj, struct device, kobj)
    
    
    MODULE_AUTHOR("Manuel Estrada Sainz");
    
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    MODULE_DESCRIPTION("Multi purpose firmware loading support");
    MODULE_LICENSE("GPL");
    
    enum {
    	FW_STATUS_LOADING,
    	FW_STATUS_DONE,
    	FW_STATUS_ABORT,
    };
    
    
    static int loading_timeout = 60;	/* In seconds */
    
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    /* fw_lock could be moved to 'struct firmware_priv' but since it is just
     * guarding for corner cases a global lock should be OK */
    
    static DEFINE_MUTEX(fw_lock);
    
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    struct firmware_priv {
    	char fw_id[FIRMWARE_NAME_MAX];
    	struct completion completion;
    	struct bin_attribute attr_data;
    	struct firmware *fw;
    	unsigned long status;
    	int alloc_size;
    	struct timer_list timeout;
    };
    
    
    #ifdef CONFIG_FW_LOADER
    extern struct builtin_fw __start_builtin_fw[];
    extern struct builtin_fw __end_builtin_fw[];
    #else /* Module case. Avoid ifdefs later; it'll all optimise out */
    static struct builtin_fw *__start_builtin_fw;
    static struct builtin_fw *__end_builtin_fw;
    #endif
    
    
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    fw_load_abort(struct firmware_priv *fw_priv)
    {
    	set_bit(FW_STATUS_ABORT, &fw_priv->status);
    	wmb();
    	complete(&fw_priv->completion);
    }
    
    static ssize_t
    firmware_timeout_show(struct class *class, char *buf)
    {
    	return sprintf(buf, "%d\n", loading_timeout);
    }
    
    /**
    
     * firmware_timeout_store - set number of seconds to wait for firmware
     * @class: device class pointer
     * @buf: buffer to scan for timeout value
     * @count: number of bytes in @buf
     *
    
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     *	Sets the number of seconds to wait for the firmware.  Once
    
     *	this expires an error will be returned to the driver and no
    
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     *	firmware will be provided.
     *
    
     *	Note: zero means 'wait forever'.
    
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     **/
    static ssize_t
    firmware_timeout_store(struct class *class, const char *buf, size_t count)
    {
    	loading_timeout = simple_strtol(buf, NULL, 10);
    
    	if (loading_timeout < 0)
    		loading_timeout = 0;
    
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    	return count;
    }
    
    static CLASS_ATTR(timeout, 0644, firmware_timeout_show, firmware_timeout_store);
    
    
    static void fw_dev_release(struct device *dev);
    
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    static int firmware_uevent(struct device *dev, struct kobj_uevent_env *env)
    
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    {
    
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	if (add_uevent_var(env, "FIRMWARE=%s", fw_priv->fw_id))
    
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    		return -ENOMEM;
    
    	if (add_uevent_var(env, "TIMEOUT=%i", loading_timeout))
    
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    	return 0;
    }
    
    
    static struct class firmware_class = {
    	.name		= "firmware",
    
    	.dev_uevent	= firmware_uevent,
    	.dev_release	= fw_dev_release,
    
    static ssize_t firmware_loading_show(struct device *dev,
    				     struct device_attribute *attr, char *buf)
    
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    {
    
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	int loading = test_bit(FW_STATUS_LOADING, &fw_priv->status);
    	return sprintf(buf, "%d\n", loading);
    }
    
    /**
    
     * firmware_loading_store - set value in the 'loading' control file
    
     * @attr: device attribute pointer
    
     * @buf: buffer to scan for loading control value
     * @count: number of bytes in @buf
     *
    
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     *	The relevant values are:
     *
     *	 1: Start a load, discarding any previous partial load.
    
     *	 0: Conclude the load and hand the data to the driver code.
    
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     *	-1: Conclude the load with an error and discard any written data.
     **/
    
    static ssize_t firmware_loading_store(struct device *dev,
    				      struct device_attribute *attr,
    				      const char *buf, size_t count)
    
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    {
    
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	int loading = simple_strtol(buf, NULL, 10);
    
    	switch (loading) {
    	case 1:
    
    		mutex_lock(&fw_lock);
    
    			mutex_unlock(&fw_lock);
    
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    		vfree(fw_priv->fw->data);
    		fw_priv->fw->data = NULL;
    		fw_priv->fw->size = 0;
    		fw_priv->alloc_size = 0;
    		set_bit(FW_STATUS_LOADING, &fw_priv->status);
    
    		mutex_unlock(&fw_lock);
    
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    		break;
    	case 0:
    		if (test_bit(FW_STATUS_LOADING, &fw_priv->status)) {
    			complete(&fw_priv->completion);
    			clear_bit(FW_STATUS_LOADING, &fw_priv->status);
    			break;
    		}
    		/* fallthrough */
    	default:
    
    		printk(KERN_ERR "%s: unexpected value (%d)\n", __func__,
    
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    		       loading);
    		/* fallthrough */
    	case -1:
    		fw_load_abort(fw_priv);
    		break;
    	}
    
    	return count;
    }
    
    
    static DEVICE_ATTR(loading, 0644, firmware_loading_show, firmware_loading_store);
    
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    static ssize_t
    
    firmware_data_read(struct kobject *kobj, struct bin_attribute *bin_attr,
    
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    		   char *buffer, loff_t offset, size_t count)
    {
    
    	struct device *dev = to_dev(kobj);
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	struct firmware *fw;
    
    	ssize_t ret_count;
    
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    	mutex_lock(&fw_lock);
    
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    	fw = fw_priv->fw;
    
    	if (!fw || test_bit(FW_STATUS_DONE, &fw_priv->status)) {
    
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    		ret_count = -ENODEV;
    		goto out;
    	}
    
    	ret_count = memory_read_from_buffer(buffer, count, &offset,
    						fw->data, fw->size);
    
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    out:
    
    	mutex_unlock(&fw_lock);
    
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    	return ret_count;
    }
    
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    static int
    fw_realloc_buffer(struct firmware_priv *fw_priv, int min_size)
    {
    	u8 *new_data;
    
    	int new_size = fw_priv->alloc_size;
    
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    	if (min_size <= fw_priv->alloc_size)
    		return 0;
    
    
    	new_size = ALIGN(min_size, PAGE_SIZE);
    	new_data = vmalloc(new_size);
    
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    	if (!new_data) {
    
    		printk(KERN_ERR "%s: unable to alloc buffer\n", __func__);
    
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    		/* Make sure that we don't keep incomplete data */
    		fw_load_abort(fw_priv);
    		return -ENOMEM;
    	}
    
    	fw_priv->alloc_size = new_size;
    
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    	if (fw_priv->fw->data) {
    		memcpy(new_data, fw_priv->fw->data, fw_priv->fw->size);
    		vfree(fw_priv->fw->data);
    	}
    	fw_priv->fw->data = new_data;
    	BUG_ON(min_size > fw_priv->alloc_size);
    	return 0;
    }
    
    /**
    
     * firmware_data_write - write method for firmware
    
     * @kobj: kobject for the device
    
     * @bin_attr: bin_attr structure
    
     * @buffer: buffer being written
     * @offset: buffer offset for write in total data store area
     * @count: buffer size
    
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     *
    
     *	Data written to the 'data' attribute will be later handed to
    
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     *	the driver as a firmware image.
     **/
    static ssize_t
    
    firmware_data_write(struct kobject *kobj, struct bin_attribute *bin_attr,
    
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    		    char *buffer, loff_t offset, size_t count)
    {
    
    	struct device *dev = to_dev(kobj);
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	struct firmware *fw;
    	ssize_t retval;
    
    	if (!capable(CAP_SYS_RAWIO))
    		return -EPERM;
    
    	mutex_lock(&fw_lock);
    
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    	fw = fw_priv->fw;
    
    	if (!fw || test_bit(FW_STATUS_DONE, &fw_priv->status)) {
    
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    		retval = -ENODEV;
    		goto out;
    	}
    	retval = fw_realloc_buffer(fw_priv, offset + count);
    	if (retval)
    		goto out;
    
    
    	memcpy((u8 *)fw->data + offset, buffer, count);
    
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    	fw->size = max_t(size_t, offset + count, fw->size);
    	retval = count;
    out:
    
    	mutex_unlock(&fw_lock);
    
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    	return retval;
    }
    
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    static struct bin_attribute firmware_attr_data_tmpl = {
    
    	.attr = {.name = "data", .mode = 0644},
    
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    	.size = 0,
    	.read = firmware_data_read,
    	.write = firmware_data_write,
    };
    
    
    static void fw_dev_release(struct device *dev)
    
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    {
    
    	struct firmware_priv *fw_priv = dev_get_drvdata(dev);
    
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    	kfree(fw_priv);
    
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    	module_put(THIS_MODULE);
    }
    
    static void
    firmware_class_timeout(u_long data)
    {
    	struct firmware_priv *fw_priv = (struct firmware_priv *) data;
    	fw_load_abort(fw_priv);
    }
    
    
    static inline void fw_setup_device_id(struct device *f_dev, struct device *dev)
    
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    {
    
    	/* XXX warning we should watch out for name collisions */
    	strlcpy(f_dev->bus_id, dev->bus_id, BUS_ID_SIZE);
    
    static int fw_register_device(struct device **dev_p, const char *fw_name,
    			      struct device *device)
    
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    {
    	int retval;
    
    	struct firmware_priv *fw_priv = kzalloc(sizeof(*fw_priv),
    
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    						GFP_KERNEL);
    
    	struct device *f_dev = kzalloc(sizeof(*f_dev), GFP_KERNEL);
    
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    		printk(KERN_ERR "%s: kmalloc failed\n", __func__);
    
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    		retval = -ENOMEM;
    		goto error_kfree;
    	}
    
    	init_completion(&fw_priv->completion);
    	fw_priv->attr_data = firmware_attr_data_tmpl;
    	strlcpy(fw_priv->fw_id, fw_name, FIRMWARE_NAME_MAX);
    
    	fw_priv->timeout.function = firmware_class_timeout;
    	fw_priv->timeout.data = (u_long) fw_priv;
    	init_timer(&fw_priv->timeout);
    
    
    	fw_setup_device_id(f_dev, device);
    	f_dev->parent = device;
    	f_dev->class = &firmware_class;
    	dev_set_drvdata(f_dev, fw_priv);
    
    	f_dev->uevent_suppress = 1;
    
    	retval = device_register(f_dev);
    
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    	if (retval) {
    
    		printk(KERN_ERR "%s: device_register failed\n",
    
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    		goto error_kfree;
    	}
    
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    	return 0;
    
    error_kfree:
    	kfree(fw_priv);
    
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    	return retval;
    }
    
    
    static int fw_setup_device(struct firmware *fw, struct device **dev_p,
    			   const char *fw_name, struct device *device,
    			   int uevent)
    
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    {
    
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    	struct firmware_priv *fw_priv;
    	int retval;
    
    
    	*dev_p = NULL;
    	retval = fw_register_device(&f_dev, fw_name, device);
    
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    	if (retval)
    		goto out;
    
    	/* Need to pin this module until class device is destroyed */
    	__module_get(THIS_MODULE);
    
    
    	fw_priv = dev_get_drvdata(f_dev);
    
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    	fw_priv->fw = fw;
    
    	retval = sysfs_create_bin_file(&f_dev->kobj, &fw_priv->attr_data);
    
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    	if (retval) {
    		printk(KERN_ERR "%s: sysfs_create_bin_file failed\n",
    
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    		goto error_unreg;
    	}
    
    
    	retval = device_create_file(f_dev, &dev_attr_loading);
    
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    	if (retval) {
    
    		printk(KERN_ERR "%s: device_create_file failed\n",
    
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    		goto error_unreg;
    	}
    
    
    		f_dev->uevent_suppress = 0;
    
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    	goto out;
    
    error_unreg:
    
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    out:
    	return retval;
    }
    
    
    static int
    _request_firmware(const struct firmware **firmware_p, const char *name,
    
    		 struct device *device, int uevent)
    
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    {
    
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    	struct firmware_priv *fw_priv;
    	struct firmware *firmware;
    
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    	int retval;
    
    	if (!firmware_p)
    		return -EINVAL;
    
    
    	*firmware_p = firmware = kzalloc(sizeof(*firmware), GFP_KERNEL);
    
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    	if (!firmware) {
    		printk(KERN_ERR "%s: kmalloc(struct firmware) failed\n",
    
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    		retval = -ENOMEM;
    		goto out;
    	}
    
    
    	for (builtin = __start_builtin_fw; builtin != __end_builtin_fw;
    	     builtin++) {
    		if (strcmp(name, builtin->name))
    			continue;
    		printk(KERN_INFO "firmware: using built-in firmware %s\n",
    		       name);
    		firmware->size = builtin->size;
    		firmware->data = builtin->data;
    		return 0;
    	}
    
    	if (uevent)
    		printk(KERN_INFO "firmware: requesting %s\n", name);
    
    
    	retval = fw_setup_device(firmware, &f_dev, name, device, uevent);
    
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    	if (retval)
    		goto error_kfree_fw;
    
    
    	fw_priv = dev_get_drvdata(f_dev);
    
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    		if (loading_timeout > 0) {
    			fw_priv->timeout.expires = jiffies + loading_timeout * HZ;
    			add_timer(&fw_priv->timeout);
    		}
    
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    		kobject_uevent(&f_dev->kobj, KOBJ_ADD);
    
    		wait_for_completion(&fw_priv->completion);
    		set_bit(FW_STATUS_DONE, &fw_priv->status);
    		del_timer_sync(&fw_priv->timeout);
    	} else
    		wait_for_completion(&fw_priv->completion);
    
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    	mutex_lock(&fw_lock);
    
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    	if (!fw_priv->fw->size || test_bit(FW_STATUS_ABORT, &fw_priv->status)) {
    		retval = -ENOENT;
    		release_firmware(fw_priv->fw);
    		*firmware_p = NULL;
    	}
    	fw_priv->fw = NULL;
    
    	mutex_unlock(&fw_lock);
    
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    	goto out;
    
    error_kfree_fw:
    	kfree(firmware);
    	*firmware_p = NULL;
    out:
    	return retval;
    }
    
    
     * request_firmware: - send firmware request and wait for it
    
     * @firmware_p: pointer to firmware image
     * @name: name of firmware file
     * @device: device for which firmware is being loaded
     *
     *      @firmware_p will be used to return a firmware image by the name
    
     *      of @name for device @device.
     *
     *      Should be called from user context where sleeping is allowed.
     *
    
     *      @name will be used as $FIRMWARE in the uevent environment and
    
     *      should be distinctive enough not to be confused with any other
     *      firmware image for this or any other device.
     **/
    int
    request_firmware(const struct firmware **firmware_p, const char *name,
                     struct device *device)
    {
    
            int uevent = 1;
            return _request_firmware(firmware_p, name, device, uevent);
    
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    /**
     * release_firmware: - release the resource associated with a firmware image
    
     * @fw: firmware resource to release
    
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     **/
    void
    release_firmware(const struct firmware *fw)
    {
    
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    	if (fw) {
    
    		for (builtin = __start_builtin_fw; builtin != __end_builtin_fw;
    		     builtin++) {
    			if (fw->data == builtin->data)
    				goto free_fw;
    		}
    
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    		vfree(fw->data);
    
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    		kfree(fw);
    	}
    }
    
    /* Async support */
    struct firmware_work {
    	struct work_struct work;
    	struct module *module;
    	const char *name;
    	struct device *device;
    	void *context;
    	void (*cont)(const struct firmware *fw, void *context);
    
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    };
    
    static int
    request_firmware_work_func(void *arg)
    {
    	struct firmware_work *fw_work = arg;
    	const struct firmware *fw;
    
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    	if (!arg) {
    		WARN_ON(1);
    		return 0;
    	}
    
    	ret = _request_firmware(&fw, fw_work->name, fw_work->device,
    
    	if (ret < 0)
    		fw_work->cont(NULL, fw_work->context);
    	else {
    		fw_work->cont(fw, fw_work->context);
    		release_firmware(fw);
    	}
    
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    	module_put(fw_work->module);
    	kfree(fw_work);
    
     * request_firmware_nowait: asynchronous version of request_firmware
     * @module: module requesting the firmware
    
     * @uevent: sends uevent to copy the firmware image if this flag
    
     *	is non-zero else the firmware copy must be done manually.
     * @name: name of firmware file
     * @device: device for which firmware is being loaded
     * @context: will be passed over to @cont, and
     *	@fw may be %NULL if firmware request fails.
     * @cont: function will be called asynchronously when the firmware
     *	request is over.
    
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     *
     *	Asynchronous variant of request_firmware() for contexts where
     *	it is not possible to sleep.
     **/
    int
    request_firmware_nowait(
    
    	struct module *module, int uevent,
    
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    	const char *name, struct device *device, void *context,
    	void (*cont)(const struct firmware *fw, void *context))
    {
    
    	struct task_struct *task;
    
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    	struct firmware_work *fw_work = kmalloc(sizeof (struct firmware_work),
    						GFP_ATOMIC);
    
    	if (!fw_work)
    		return -ENOMEM;
    	if (!try_module_get(module)) {
    		kfree(fw_work);
    		return -EFAULT;
    	}
    
    	*fw_work = (struct firmware_work) {
    		.module = module,
    		.name = name,
    		.device = device,
    		.context = context,
    		.cont = cont,
    
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    	};
    
    
    	task = kthread_run(request_firmware_work_func, fw_work,
    			    "firmware/%s", name);
    
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    		fw_work->cont(NULL, fw_work->context);
    
    		module_put(fw_work->module);
    		kfree(fw_work);
    
    		return PTR_ERR(task);
    
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    	}
    	return 0;
    }
    
    static int __init
    firmware_class_init(void)
    {
    	int error;
    	error = class_register(&firmware_class);
    	if (error) {
    
    		printk(KERN_ERR "%s: class_register failed\n", __func__);
    
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    		return error;
    	}
    	error = class_create_file(&firmware_class, &class_attr_timeout);
    	if (error) {
    		printk(KERN_ERR "%s: class_create_file failed\n",
    
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    		class_unregister(&firmware_class);
    	}
    	return error;
    
    }
    static void __exit
    firmware_class_exit(void)
    {
    	class_unregister(&firmware_class);
    }
    
    
    fs_initcall(firmware_class_init);
    
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    module_exit(firmware_class_exit);
    
    EXPORT_SYMBOL(release_firmware);
    EXPORT_SYMBOL(request_firmware);
    EXPORT_SYMBOL(request_firmware_nowait);