hcd.c

来自「优龙2410linux2.6.8内核源代码」· C语言 代码 · 共 1,586 行 · 第 1/3 页

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	}	if (!HCD_IS_SUSPENDED (hcd->state))		length = hcd->driver->hub_status_data (					hcd, urb->transfer_buffer);	/* complete the status urb, or retrigger the timer */	spin_lock (&hcd_data_lock);	if (length > 0) {		hcd->rh_timer.data = 0;		urb->actual_length = length;		urb->status = 0;		urb->hcpriv = NULL;	} else		mod_timer (&hcd->rh_timer, jiffies + HZ/4);	spin_unlock (&hcd_data_lock);	spin_unlock (&urb->lock);	/* local irqs are always blocked in completions */	if (length > 0)		usb_hcd_giveback_urb (hcd, urb, NULL);	local_irq_restore (flags);}/*-------------------------------------------------------------------------*/static int rh_urb_enqueue (struct usb_hcd *hcd, struct urb *urb){	if (usb_pipeint (urb->pipe)) {		int		retval;		unsigned long	flags;		spin_lock_irqsave (&hcd_data_lock, flags);		retval = rh_status_urb (hcd, urb);		spin_unlock_irqrestore (&hcd_data_lock, flags);		return retval;	}	if (usb_pipecontrol (urb->pipe))		return rh_call_control (hcd, urb);	else		return -EINVAL;}/*-------------------------------------------------------------------------*/int usb_rh_status_dequeue (struct usb_hcd *hcd, struct urb *urb){	unsigned long	flags;	/* note:  always a synchronous unlink */	del_timer_sync (&hcd->rh_timer);	hcd->rh_timer.data = 0;	local_irq_save (flags);	urb->hcpriv = NULL;	usb_hcd_giveback_urb (hcd, urb, NULL);	local_irq_restore (flags);	return 0;}/*-------------------------------------------------------------------------*//* exported only within usbcore */struct usb_bus *usb_bus_get (struct usb_bus *bus){	struct class_device *tmp;	if (!bus)		return NULL;	tmp = class_device_get(&bus->class_dev);	if (tmp)        		return to_usb_bus(tmp);	else		return NULL;}/* exported only within usbcore */void usb_bus_put (struct usb_bus *bus){	if (bus)		class_device_put(&bus->class_dev);}/*-------------------------------------------------------------------------*/static void usb_host_release(struct class_device *class_dev){	struct usb_bus *bus = to_usb_bus(class_dev);	if (bus->release)		bus->release(bus);}static struct class usb_host_class = {	.name		= "usb_host",	.release	= &usb_host_release,};int usb_host_init(void){	return class_register(&usb_host_class);}void usb_host_cleanup(void){	class_unregister(&usb_host_class);}/** * usb_bus_init - shared initialization code * @bus: the bus structure being initialized * * This code is used to initialize a usb_bus structure, memory for which is * separately managed. */void usb_bus_init (struct usb_bus *bus){	memset (&bus->devmap, 0, sizeof(struct usb_devmap));	bus->devnum_next = 1;	bus->root_hub = NULL;	bus->hcpriv = NULL;	bus->busnum = -1;	bus->bandwidth_allocated = 0;	bus->bandwidth_int_reqs  = 0;	bus->bandwidth_isoc_reqs = 0;	INIT_LIST_HEAD (&bus->bus_list);}EXPORT_SYMBOL (usb_bus_init);/** * usb_alloc_bus - creates a new USB host controller structure * @op: pointer to a struct usb_operations that this bus structure should use * Context: !in_interrupt() * * Creates a USB host controller bus structure with the specified  * usb_operations and initializes all the necessary internal objects. * * If no memory is available, NULL is returned. * * The caller should call usb_put_bus() when it is finished with the structure. */struct usb_bus *usb_alloc_bus (struct usb_operations *op){	struct usb_bus *bus;	bus = kmalloc (sizeof *bus, GFP_KERNEL);	if (!bus)		return NULL;	memset(bus, 0, sizeof(struct usb_bus));	usb_bus_init (bus);	bus->op = op;	return bus;}EXPORT_SYMBOL (usb_alloc_bus);/*-------------------------------------------------------------------------*//** * usb_register_bus - registers the USB host controller with the usb core * @bus: pointer to the bus to register * Context: !in_interrupt() * * Assigns a bus number, and links the controller into usbcore data * structures so that it can be seen by scanning the bus list. */int usb_register_bus(struct usb_bus *bus){	int busnum;	int retval;	down (&usb_bus_list_lock);	busnum = find_next_zero_bit (busmap.busmap, USB_MAXBUS, 1);	if (busnum < USB_MAXBUS) {		set_bit (busnum, busmap.busmap);		bus->busnum = busnum;	} else {		printk (KERN_ERR "%s: too many buses\n", usbcore_name);		return -E2BIG;	}	snprintf(bus->class_dev.class_id, BUS_ID_SIZE, "usb%d", busnum);	bus->class_dev.class = &usb_host_class;	bus->class_dev.dev = bus->controller;	retval = class_device_register(&bus->class_dev);	if (retval) {		clear_bit(busnum, busmap.busmap);		up(&usb_bus_list_lock);		return retval;	}	/* Add it to the local list of buses */	list_add (&bus->bus_list, &usb_bus_list);	up (&usb_bus_list_lock);	usbfs_add_bus (bus);	dev_info (bus->controller, "new USB bus registered, assigned bus number %d\n", bus->busnum);	return 0;}EXPORT_SYMBOL (usb_register_bus);/** * usb_deregister_bus - deregisters the USB host controller * @bus: pointer to the bus to deregister * Context: !in_interrupt() * * Recycles the bus number, and unlinks the controller from usbcore data * structures so that it won't be seen by scanning the bus list. */void usb_deregister_bus (struct usb_bus *bus){	dev_info (bus->controller, "USB bus %d deregistered\n", bus->busnum);	/*	 * NOTE: make sure that all the devices are removed by the	 * controller code, as well as having it call this when cleaning	 * itself up	 */	down (&usb_bus_list_lock);	list_del (&bus->bus_list);	up (&usb_bus_list_lock);	usbfs_remove_bus (bus);	clear_bit (bus->busnum, busmap.busmap);	class_device_unregister(&bus->class_dev);}EXPORT_SYMBOL (usb_deregister_bus);/** * usb_register_root_hub - called by HCD to register its root hub  * @usb_dev: the usb root hub device to be registered. * @parent_dev: the parent device of this root hub. * * The USB host controller calls this function to register the root hub * properly with the USB subsystem.  It sets up the device properly in * the device tree and stores the root_hub pointer in the bus structure, * then calls usb_new_device() to register the usb device.  It also * assigns the root hub's USB address (always 1). */int usb_register_root_hub (struct usb_device *usb_dev, struct device *parent_dev){	const int devnum = 1;	int retval;	usb_dev->devnum = devnum;	usb_dev->bus->devnum_next = devnum + 1;	memset (&usb_dev->bus->devmap.devicemap, 0,			sizeof usb_dev->bus->devmap.devicemap);	set_bit (devnum, usb_dev->bus->devmap.devicemap);	usb_set_device_state(usb_dev, USB_STATE_ADDRESS);	down (&usb_bus_list_lock);	usb_dev->bus->root_hub = usb_dev;	usb_dev->epmaxpacketin[0] = usb_dev->epmaxpacketout[0] = 64;	retval = usb_get_device_descriptor(usb_dev, USB_DT_DEVICE_SIZE);	if (retval != sizeof usb_dev->descriptor) {		dev_dbg (parent_dev, "can't read %s device descriptor %d\n",				usb_dev->dev.bus_id, retval);		return (retval < 0) ? retval : -EMSGSIZE;	}	down (&usb_dev->serialize);	retval = usb_new_device (usb_dev);	up (&usb_dev->serialize);	if (retval) {		usb_dev->bus->root_hub = NULL;		dev_err (parent_dev, "can't register root hub for %s, %d\n",				usb_dev->dev.bus_id, retval);	}	up (&usb_bus_list_lock);	return retval;}EXPORT_SYMBOL (usb_register_root_hub);/*-------------------------------------------------------------------------*//** * usb_calc_bus_time - approximate periodic transaction time in nanoseconds * @speed: from dev->speed; USB_SPEED_{LOW,FULL,HIGH} * @is_input: true iff the transaction sends data to the host * @isoc: true for isochronous transactions, false for interrupt ones * @bytecount: how many bytes in the transaction. * * Returns approximate bus time in nanoseconds for a periodic transaction. * See USB 2.0 spec section 5.11.3; only periodic transfers need to be * scheduled in software, this function is only used for such scheduling. */long usb_calc_bus_time (int speed, int is_input, int isoc, int bytecount){	unsigned long	tmp;	switch (speed) {	case USB_SPEED_LOW: 	/* INTR only */		if (is_input) {			tmp = (67667L * (31L + 10L * BitTime (bytecount))) / 1000L;			return (64060L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp);		} else {			tmp = (66700L * (31L + 10L * BitTime (bytecount))) / 1000L;			return (64107L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp);		}	case USB_SPEED_FULL:	/* ISOC or INTR */		if (isoc) {			tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;			return (((is_input) ? 7268L : 6265L) + BW_HOST_DELAY + tmp);		} else {			tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;			return (9107L + BW_HOST_DELAY + tmp);		}	case USB_SPEED_HIGH:	/* ISOC or INTR */		// FIXME adjust for input vs output		if (isoc)			tmp = HS_USECS (bytecount);		else			tmp = HS_USECS_ISO (bytecount);		return tmp;	default:		pr_debug ("%s: bogus device speed!\n", usbcore_name);		return -1;	}}EXPORT_SYMBOL (usb_calc_bus_time);/* * usb_check_bandwidth(): * * old_alloc is from host_controller->bandwidth_allocated in microseconds; * bustime is from calc_bus_time(), but converted to microseconds. * * returns <bustime in us> if successful, * or -ENOSPC if bandwidth request fails. * * FIXME: * This initial implementation does not use Endpoint.bInterval * in managing bandwidth allocation. * It probably needs to be expanded to use Endpoint.bInterval. * This can be done as a later enhancement (correction). * * This will also probably require some kind of * frame allocation tracking...meaning, for example, * that if multiple drivers request interrupts every 10 USB frames, * they don't all have to be allocated at * frame numbers N, N+10, N+20, etc.  Some of them could be at * N+11, N+21, N+31, etc., and others at * N+12, N+22, N+32, etc. * * Similarly for isochronous transfers... * * Individual HCDs can schedule more directly ... this logic * is not correct for high speed transfers. */int usb_check_bandwidth (struct usb_device *dev, struct urb *urb){	unsigned int	pipe = urb->pipe;	long		bustime;	int		is_in = usb_pipein (pipe);	int		is_iso = usb_pipeisoc (pipe);	int		old_alloc = dev->bus->bandwidth_allocated;	int		new_alloc;	bustime = NS_TO_US (usb_calc_bus_time (dev->speed, is_in, is_iso,			usb_maxpacket (dev, pipe, !is_in)));	if (is_iso)		bustime /= urb->number_of_packets;	new_alloc = old_alloc + (int) bustime;	if (new_alloc > FRAME_TIME_MAX_USECS_ALLOC) {#ifdef	DEBUG		char	*mode = #ifdef CONFIG_USB_BANDWIDTH			"";#else			"would have ";#endif		dev_dbg (&dev->dev, "usb_check_bandwidth %sFAILED: %d + %ld = %d usec\n",			mode, old_alloc, bustime, new_alloc);#endif#ifdef CONFIG_USB_BANDWIDTH		bustime = -ENOSPC;	/* report error */#endif	}	return bustime;}EXPORT_SYMBOL (usb_check_bandwidth);/** * usb_claim_bandwidth - records bandwidth for a periodic transfer * @dev: source/target of request * @urb: request (urb->dev == dev) * @bustime: bandwidth consumed, in (average) microseconds per frame * @isoc: true iff the request is isochronous * * Bus bandwidth reservations are recorded purely for diagnostic purposes. * HCDs are expected not to overcommit periodic bandwidth, and to record such * reservations whenever endpoints are added to the periodic schedule. * * FIXME averaging per-frame is suboptimal.  Better to sum over the HCD's * entire periodic schedule ... 32 frames for OHCI, 1024 for UHCI, settable * for EHCI (256/512/1024 frames, default 1024) and have the bus expose how * large its periodic schedule is. */void usb_claim_bandwidth (struct usb_device *dev, struct urb *urb, int bustime, int isoc){	dev->bus->bandwidth_allocated += bustime;	if (isoc)		dev->bus->bandwidth_isoc_reqs++;	else		dev->bus->bandwidth_int_reqs++;	urb->bandwidth = bustime;#ifdef USB_BANDWIDTH_MESSAGES	dev_dbg (&dev->dev, "bandwidth alloc increased by %d (%s) to %d for %d requesters\n",		bustime,		isoc ? "ISOC" : "INTR",		dev->bus->bandwidth_allocated,		dev->bus->bandwidth_int_reqs + dev->bus->bandwidth_isoc_reqs);#endif}EXPORT_SYMBOL (usb_claim_bandwidth);/** * usb_release_bandwidth - reverses effect of usb_claim_bandwidth() * @dev: source/target of request * @urb: request (urb->dev == dev) * @isoc: true iff the request is isochronous * * This records that previously allocated bandwidth has been released. * Bandwidth is released when endpoints are removed from the host controller's * periodic schedule. */void usb_release_bandwidth (struct usb_device *dev, struct urb *urb, int isoc){	dev->bus->bandwidth_allocated -= urb->bandwidth;	if (isoc)		dev->bus->bandwidth_isoc_reqs--;	else		dev->bus->bandwidth_int_reqs--;#ifdef USB_BANDWIDTH_MESSAGES	dev_dbg (&dev->dev, "bandwidth alloc reduced by %d (%s) to %d for %d requesters\n",		urb->bandwidth,		isoc ? "ISOC" : "INTR",		dev->bus->bandwidth_allocated,		dev->bus->bandwidth_int_reqs + dev->bus->bandwidth_isoc_reqs);#endif	urb->bandwidth = 0;}EXPORT_SYMBOL (usb_release_bandwidth);/*-------------------------------------------------------------------------*//* * Generic HC operations. *//*-------------------------------------------------------------------------*//* called from khubd, or root hub init threads for hcd-private init */static int hcd_alloc_dev (struct usb_device *udev){	struct hcd_dev		*dev;	struct usb_hcd		*hcd;	unsigned long		flags;	if (!udev || udev->hcpriv)		return -EINVAL;	if (!udev->bus || !udev->bus->hcpriv)		return -ENODEV;	hcd = udev->bus->hcpriv;	if (hcd->state == USB_STATE_QUIESCING)		return -ENOLINK;	dev = (struct hcd_dev *) kmalloc (sizeof *dev, GFP_KERNEL);	if (dev == NULL)		return -ENOMEM;	memset (dev, 0, sizeof *dev);	INIT_LIST_HEAD (&dev->dev_list);	INIT_LIST_HEAD (&dev->urb_list);	spin_lock_irqsave (&hcd_data_lock, flags);	list_add (&dev->dev_list, &hcd->dev_list);	// refcount is implicit	udev->hcpriv = dev;	spin_unlock_irqrestore (&hcd_data_lock, flags);	return 0;}/*-------------------------------------------------------------------------*/static void urb_unlink (struct urb *urb){	unsigned long		flags;	/* Release any periodic transfer bandwidth */	if (urb->bandwidth)		usb_release_bandwidth (urb->dev, urb,			usb_pipeisoc (urb->pipe));	/* clear all state linking urb to this dev (and hcd) */	spin_lock_irqsave (&hcd_data_lock, flags);	list_del_init (&urb->urb_list);	spin_unlock_irqrestore (&hcd_data_lock, flags);	usb_put_dev (urb->dev);}/* may be called in any context with a valid urb->dev usecount * caller surrenders "ownership" of urb * expects usb_submit_urb() to have sanity checked and conditioned all * inputs in the urb */static int hcd_submit_urb (struct urb *urb, int mem_flags){	int			status;

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