chip.c 17.0 KB
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/*
 * linux/kernel/irq/chip.c
 *
 * Copyright (C) 1992, 1998-2006 Linus Torvalds, Ingo Molnar
 * Copyright (C) 2005-2006, Thomas Gleixner, Russell King
 *
 * This file contains the core interrupt handling code, for irq-chip
 * based architectures.
 *
 * Detailed information is available in Documentation/DocBook/genericirq
 */

#include <linux/irq.h>
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#include <linux/msi.h>
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#include <linux/module.h>
#include <linux/interrupt.h>
#include <linux/kernel_stat.h>

#include "internals.h"

/**
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 *	irq_set_chip - set the irq chip for an irq
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 *	@irq:	irq number
 *	@chip:	pointer to irq chip description structure
 */
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int irq_set_chip(unsigned int irq, struct irq_chip *chip)
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{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;

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	if (!desc) {
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		WARN(1, KERN_ERR "Trying to install chip for IRQ%d\n", irq);
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		return -EINVAL;
	}

	if (!chip)
		chip = &no_irq_chip;

39
	raw_spin_lock_irqsave(&desc->lock, flags);
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	irq_chip_set_defaults(chip);
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	desc->irq_data.chip = chip;
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	return 0;
}
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EXPORT_SYMBOL(irq_set_chip);
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/**
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 *	irq_set_type - set the irq trigger type for an irq
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 *	@irq:	irq number
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 *	@type:	IRQ_TYPE_{LEVEL,EDGE}_* value - see include/linux/irq.h
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 */
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int irq_set_irq_type(unsigned int irq, unsigned int type)
54
{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;
	int ret = -ENXIO;

59
	if (!desc) {
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		printk(KERN_ERR "Trying to set irq type for IRQ%d\n", irq);
		return -ENODEV;
	}

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	type &= IRQ_TYPE_SENSE_MASK;
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	if (type == IRQ_TYPE_NONE)
		return 0;

68
	chip_bus_lock(desc);
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	raw_spin_lock_irqsave(&desc->lock, flags);
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	ret = __irq_set_trigger(desc, irq, type);
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	chip_bus_sync_unlock(desc);
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	return ret;
}
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EXPORT_SYMBOL(irq_set_irq_type);
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/**
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 *	irq_set_handler_data - set irq handler data for an irq
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 *	@irq:	Interrupt number
 *	@data:	Pointer to interrupt specific data
 *
 *	Set the hardware irq controller data for an irq
 */
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int irq_set_handler_data(unsigned int irq, void *data)
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{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;

89
	if (!desc) {
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		printk(KERN_ERR
		       "Trying to install controller data for IRQ%d\n", irq);
		return -EINVAL;
	}

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	raw_spin_lock_irqsave(&desc->lock, flags);
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	desc->irq_data.handler_data = data;
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	return 0;
}
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EXPORT_SYMBOL(irq_set_handler_data);
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/**
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 *	irq_set_msi_desc - set MSI descriptor data for an irq
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 *	@irq:	Interrupt number
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 *	@entry:	Pointer to MSI descriptor data
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 *
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 *	Set the MSI descriptor entry for an irq
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 */
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int irq_set_msi_desc(unsigned int irq, struct msi_desc *entry)
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{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;

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	if (!desc) {
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		printk(KERN_ERR
		       "Trying to install msi data for IRQ%d\n", irq);
		return -EINVAL;
	}
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	raw_spin_lock_irqsave(&desc->lock, flags);
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	desc->irq_data.msi_desc = entry;
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	if (entry)
		entry->irq = irq;
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	return 0;
}

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/**
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 *	irq_set_chip_data - set irq chip data for an irq
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 *	@irq:	Interrupt number
 *	@data:	Pointer to chip specific data
 *
 *	Set the hardware irq chip data for an irq
 */
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int irq_set_chip_data(unsigned int irq, void *data)
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{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;

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	if (!desc) {
		printk(KERN_ERR
		       "Trying to install chip data for IRQ%d\n", irq);
		return -EINVAL;
	}

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	if (!desc->irq_data.chip) {
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		printk(KERN_ERR "BUG: bad set_irq_chip_data(IRQ#%d)\n", irq);
		return -EINVAL;
	}

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	raw_spin_lock_irqsave(&desc->lock, flags);
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	desc->irq_data.chip_data = data;
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	return 0;
}
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EXPORT_SYMBOL(irq_set_chip_data);
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struct irq_data *irq_get_irq_data(unsigned int irq)
{
	struct irq_desc *desc = irq_to_desc(irq);

	return desc ? &desc->irq_data : NULL;
}
EXPORT_SYMBOL_GPL(irq_get_irq_data);

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static void irq_state_clr_disabled(struct irq_desc *desc)
{
	desc->istate &= ~IRQS_DISABLED;
	irq_compat_clr_disabled(desc);
}

static void irq_state_set_disabled(struct irq_desc *desc)
{
	desc->istate |= IRQS_DISABLED;
	irq_compat_set_disabled(desc);
}

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int irq_startup(struct irq_desc *desc)
{
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	irq_state_clr_disabled(desc);
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	desc->depth = 0;

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	if (desc->irq_data.chip->irq_startup) {
		int ret = desc->irq_data.chip->irq_startup(&desc->irq_data);
		desc->status &= ~IRQ_MASKED;
		return ret;
	}
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190
	irq_enable(desc);
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	return 0;
}

void irq_shutdown(struct irq_desc *desc)
{
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	irq_state_set_disabled(desc);
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	desc->depth = 1;
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	if (desc->irq_data.chip->irq_shutdown)
		desc->irq_data.chip->irq_shutdown(&desc->irq_data);
	if (desc->irq_data.chip->irq_disable)
		desc->irq_data.chip->irq_disable(&desc->irq_data);
	else
		desc->irq_data.chip->irq_mask(&desc->irq_data);
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	desc->status |= IRQ_MASKED;
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}

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void irq_enable(struct irq_desc *desc)
{
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	irq_state_clr_disabled(desc);
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	if (desc->irq_data.chip->irq_enable)
		desc->irq_data.chip->irq_enable(&desc->irq_data);
	else
		desc->irq_data.chip->irq_unmask(&desc->irq_data);
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	desc->status &= ~IRQ_MASKED;
}

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void irq_disable(struct irq_desc *desc)
218
{
219
	irq_state_set_disabled(desc);
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	if (desc->irq_data.chip->irq_disable) {
		desc->irq_data.chip->irq_disable(&desc->irq_data);
		desc->status |= IRQ_MASKED;
	}
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}

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#ifndef CONFIG_GENERIC_HARDIRQS_NO_DEPRECATED
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/* Temporary migration helpers */
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static void compat_irq_mask(struct irq_data *data)
{
	data->chip->mask(data->irq);
}

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static void compat_irq_unmask(struct irq_data *data)
{
	data->chip->unmask(data->irq);
}

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static void compat_irq_ack(struct irq_data *data)
{
	data->chip->ack(data->irq);
}

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static void compat_irq_mask_ack(struct irq_data *data)
{
	data->chip->mask_ack(data->irq);
}

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static void compat_irq_eoi(struct irq_data *data)
{
	data->chip->eoi(data->irq);
}

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static void compat_irq_enable(struct irq_data *data)
{
	data->chip->enable(data->irq);
}

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static void compat_irq_disable(struct irq_data *data)
{
	data->chip->disable(data->irq);
}

static void compat_irq_shutdown(struct irq_data *data)
{
	data->chip->shutdown(data->irq);
}

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static unsigned int compat_irq_startup(struct irq_data *data)
{
	return data->chip->startup(data->irq);
}

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static int compat_irq_set_affinity(struct irq_data *data,
				   const struct cpumask *dest, bool force)
{
	return data->chip->set_affinity(data->irq, dest);
}

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static int compat_irq_set_type(struct irq_data *data, unsigned int type)
{
	return data->chip->set_type(data->irq, type);
}

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static int compat_irq_set_wake(struct irq_data *data, unsigned int on)
{
	return data->chip->set_wake(data->irq, on);
}

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static int compat_irq_retrigger(struct irq_data *data)
{
	return data->chip->retrigger(data->irq);
}

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static void compat_bus_lock(struct irq_data *data)
{
	data->chip->bus_lock(data->irq);
}

static void compat_bus_sync_unlock(struct irq_data *data)
{
	data->chip->bus_sync_unlock(data->irq);
}
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#endif
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/*
 * Fixup enable/disable function pointers
 */
void irq_chip_set_defaults(struct irq_chip *chip)
{
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#ifndef CONFIG_GENERIC_HARDIRQS_NO_DEPRECATED
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	if (chip->enable)
		chip->irq_enable = compat_irq_enable;
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	if (chip->disable)
		chip->irq_disable = compat_irq_disable;
	if (chip->shutdown)
		chip->irq_shutdown = compat_irq_shutdown;
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	if (chip->startup)
		chip->irq_startup = compat_irq_startup;
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	if (!chip->end)
		chip->end = dummy_irq_chip.end;
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	if (chip->bus_lock)
		chip->irq_bus_lock = compat_bus_lock;
	if (chip->bus_sync_unlock)
		chip->irq_bus_sync_unlock = compat_bus_sync_unlock;
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	if (chip->mask)
		chip->irq_mask = compat_irq_mask;
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	if (chip->unmask)
		chip->irq_unmask = compat_irq_unmask;
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	if (chip->ack)
		chip->irq_ack = compat_irq_ack;
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	if (chip->mask_ack)
		chip->irq_mask_ack = compat_irq_mask_ack;
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	if (chip->eoi)
		chip->irq_eoi = compat_irq_eoi;
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	if (chip->set_affinity)
		chip->irq_set_affinity = compat_irq_set_affinity;
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	if (chip->set_type)
		chip->irq_set_type = compat_irq_set_type;
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	if (chip->set_wake)
		chip->irq_set_wake = compat_irq_set_wake;
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	if (chip->retrigger)
		chip->irq_retrigger = compat_irq_retrigger;
343
#endif
344 345
}

346
static inline void mask_ack_irq(struct irq_desc *desc)
347
{
348 349
	if (desc->irq_data.chip->irq_mask_ack)
		desc->irq_data.chip->irq_mask_ack(&desc->irq_data);
350
	else {
351
		desc->irq_data.chip->irq_mask(&desc->irq_data);
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		if (desc->irq_data.chip->irq_ack)
			desc->irq_data.chip->irq_ack(&desc->irq_data);
354
	}
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	desc->status |= IRQ_MASKED;
}

358
static inline void mask_irq(struct irq_desc *desc)
359
{
360 361
	if (desc->irq_data.chip->irq_mask) {
		desc->irq_data.chip->irq_mask(&desc->irq_data);
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		desc->status |= IRQ_MASKED;
	}
}

366
static inline void unmask_irq(struct irq_desc *desc)
367
{
368 369
	if (desc->irq_data.chip->irq_unmask) {
		desc->irq_data.chip->irq_unmask(&desc->irq_data);
370 371
		desc->status &= ~IRQ_MASKED;
	}
372 373
}

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/*
 *	handle_nested_irq - Handle a nested irq from a irq thread
 *	@irq:	the interrupt number
 *
 *	Handle interrupts which are nested into a threaded interrupt
 *	handler. The handler function is called inside the calling
 *	threads context.
 */
void handle_nested_irq(unsigned int irq)
{
	struct irq_desc *desc = irq_to_desc(irq);
	struct irqaction *action;
	irqreturn_t action_ret;

	might_sleep();

390
	raw_spin_lock_irq(&desc->lock);
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	kstat_incr_irqs_this_cpu(irq, desc);

	action = desc->action;
395
	if (unlikely(!action || (desc->istate & IRQS_DISABLED)))
396 397
		goto out_unlock;

398 399
	irq_compat_set_progress(desc);
	desc->istate |= IRQS_INPROGRESS;
400
	raw_spin_unlock_irq(&desc->lock);
401 402 403 404 405

	action_ret = action->thread_fn(action->irq, action->dev_id);
	if (!noirqdebug)
		note_interrupt(irq, desc, action_ret);

406
	raw_spin_lock_irq(&desc->lock);
407 408
	desc->istate &= ~IRQS_INPROGRESS;
	irq_compat_clr_progress(desc);
409 410

out_unlock:
411
	raw_spin_unlock_irq(&desc->lock);
412 413 414
}
EXPORT_SYMBOL_GPL(handle_nested_irq);

415 416
static bool irq_check_poll(struct irq_desc *desc)
{
417
	if (!(desc->istate & IRQS_POLL_INPROGRESS))
418 419 420 421
		return false;
	return irq_wait_for_poll(desc);
}

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/**
 *	handle_simple_irq - Simple and software-decoded IRQs.
 *	@irq:	the interrupt number
 *	@desc:	the interrupt description structure for this irq
 *
 *	Simple interrupts are either sent from a demultiplexing interrupt
 *	handler or come from hardware, where no interrupt hardware control
 *	is necessary.
 *
 *	Note: The caller is expected to handle the ack, clear, mask and
 *	unmask issues if necessary.
 */
434
void
435
handle_simple_irq(unsigned int irq, struct irq_desc *desc)
436
{
437
	raw_spin_lock(&desc->lock);
438

439
	if (unlikely(desc->istate & IRQS_INPROGRESS))
440 441 442
		if (!irq_check_poll(desc))
			goto out_unlock;

443
	desc->istate &= ~(IRQS_REPLAY | IRQS_WAITING);
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	kstat_incr_irqs_this_cpu(irq, desc);
445

446
	if (unlikely(!desc->action || (desc->istate & IRQS_DISABLED)))
447 448
		goto out_unlock;

449
	handle_irq_event(desc);
450 451

out_unlock:
452
	raw_spin_unlock(&desc->lock);
453 454 455 456 457 458 459 460 461 462 463 464
}

/**
 *	handle_level_irq - Level type irq handler
 *	@irq:	the interrupt number
 *	@desc:	the interrupt description structure for this irq
 *
 *	Level type interrupts are active as long as the hardware line has
 *	the active level. This may require to mask the interrupt and unmask
 *	it after the associated handler has acknowledged the device, so the
 *	interrupt line is back to inactive.
 */
465
void
466
handle_level_irq(unsigned int irq, struct irq_desc *desc)
467
{
468
	raw_spin_lock(&desc->lock);
469
	mask_ack_irq(desc);
470

471
	if (unlikely(desc->istate & IRQS_INPROGRESS))
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		if (!irq_check_poll(desc))
			goto out_unlock;

475
	desc->istate &= ~(IRQS_REPLAY | IRQS_WAITING);
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	kstat_incr_irqs_this_cpu(irq, desc);
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	/*
	 * If its disabled or no action available
	 * keep it masked and get out of here
	 */
482
	if (unlikely(!desc->action || (desc->istate & IRQS_DISABLED)))
483
		goto out_unlock;
484

485
	handle_irq_event(desc);
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486

487
	if (!(desc->istate & (IRQS_DISABLED | IRQS_ONESHOT)))
488
		unmask_irq(desc);
489
out_unlock:
490
	raw_spin_unlock(&desc->lock);
491
}
492
EXPORT_SYMBOL_GPL(handle_level_irq);
493 494

/**
495
 *	handle_fasteoi_irq - irq handler for transparent controllers
496 497 498
 *	@irq:	the interrupt number
 *	@desc:	the interrupt description structure for this irq
 *
499
 *	Only a single callback will be issued to the chip: an ->eoi()
500 501 502 503
 *	call when the interrupt has been serviced. This enables support
 *	for modern forms of interrupt handlers, which handle the flow
 *	details in hardware, transparently.
 */
504
void
505
handle_fasteoi_irq(unsigned int irq, struct irq_desc *desc)
506
{
507
	raw_spin_lock(&desc->lock);
508

509
	if (unlikely(desc->istate & IRQS_INPROGRESS))
510 511
		if (!irq_check_poll(desc))
			goto out;
512

513
	desc->istate &= ~(IRQS_REPLAY | IRQS_WAITING);
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	kstat_incr_irqs_this_cpu(irq, desc);
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	/*
	 * If its disabled or no action available
518
	 * then mask it and get out of here:
519
	 */
520
	if (unlikely(!desc->action || (desc->istate & IRQS_DISABLED))) {
521
		desc->status |= IRQ_PENDING;
522
		mask_irq(desc);
523
		goto out;
524
	}
525
	handle_irq_event(desc);
526
out:
527
	desc->irq_data.chip->irq_eoi(&desc->irq_data);
528
	raw_spin_unlock(&desc->lock);
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}

/**
 *	handle_edge_irq - edge type IRQ handler
 *	@irq:	the interrupt number
 *	@desc:	the interrupt description structure for this irq
 *
 *	Interrupt occures on the falling and/or rising edge of a hardware
 *	signal. The occurence is latched into the irq controller hardware
 *	and must be acked in order to be reenabled. After the ack another
 *	interrupt can happen on the same source even before the first one
540
 *	is handled by the associated event handler. If this happens it
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 *	might be necessary to disable (mask) the interrupt depending on the
 *	controller hardware. This requires to reenable the interrupt inside
 *	of the loop which handles the interrupts which have arrived while
 *	the handler was running. If all pending interrupts are handled, the
 *	loop is left.
 */
547
void
548
handle_edge_irq(unsigned int irq, struct irq_desc *desc)
549
{
550
	raw_spin_lock(&desc->lock);
551

552
	desc->istate &= ~(IRQS_REPLAY | IRQS_WAITING);
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	/*
	 * If we're currently running this IRQ, or its disabled,
	 * we shouldn't process the IRQ. Mark it pending, handle
	 * the necessary masking and go out
	 */
558 559
	if (unlikely((desc->istate & (IRQS_DISABLED | IRQS_INPROGRESS) ||
		      !desc->action))) {
560
		if (!irq_check_poll(desc)) {
561
			desc->status |= IRQ_PENDING;
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			mask_ack_irq(desc);
			goto out_unlock;
		}
565
	}
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	kstat_incr_irqs_this_cpu(irq, desc);
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	/* Start handling the irq */
569
	desc->irq_data.chip->irq_ack(&desc->irq_data);
570 571

	do {
572
		if (unlikely(!desc->action)) {
573
			mask_irq(desc);
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			goto out_unlock;
		}

		/*
		 * When another irq arrived while we were handling
		 * one, we could have masked the irq.
		 * Renable it, if it was not disabled in meantime.
		 */
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		if (unlikely(desc->status & IRQ_PENDING)) {
			if (!(desc->istate & IRQS_DISABLED) &&
			    (desc->status & IRQ_MASKED))
				unmask_irq(desc);
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		}

588
		handle_irq_event(desc);
589

590 591
	} while ((desc->status & IRQ_PENDING) &&
		 !(desc->istate & IRQS_DISABLED));
592 593

out_unlock:
594
	raw_spin_unlock(&desc->lock);
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}

/**
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 *	handle_percpu_irq - Per CPU local irq handler
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 *	@irq:	the interrupt number
 *	@desc:	the interrupt description structure for this irq
 *
 *	Per CPU interrupts on SMP machines without locking requirements
 */
604
void
605
handle_percpu_irq(unsigned int irq, struct irq_desc *desc)
606
{
607
	struct irq_chip *chip = irq_desc_get_chip(desc);
608

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	kstat_incr_irqs_this_cpu(irq, desc);
610

611 612
	if (chip->irq_ack)
		chip->irq_ack(&desc->irq_data);
613

614
	handle_irq_event_percpu(desc, desc->action);
615

616 617
	if (chip->irq_eoi)
		chip->irq_eoi(&desc->irq_data);
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}

void
621 622
__set_irq_handler(unsigned int irq, irq_flow_handler_t handle, int is_chained,
		  const char *name)
623
{
624
	struct irq_desc *desc = irq_to_desc(irq);
625 626
	unsigned long flags;

627
	if (!desc) {
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		printk(KERN_ERR
		       "Trying to install type control for IRQ%d\n", irq);
		return;
	}

	if (!handle)
		handle = handle_bad_irq;
635
	else if (desc->irq_data.chip == &no_irq_chip) {
636
		printk(KERN_WARNING "Trying to install %sinterrupt handler "
637
		       "for IRQ%d\n", is_chained ? "chained " : "", irq);
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		/*
		 * Some ARM implementations install a handler for really dumb
		 * interrupt hardware without setting an irq_chip. This worked
		 * with the ARM no_irq_chip but the check in setup_irq would
		 * prevent us to setup the interrupt at all. Switch it to
		 * dummy_irq_chip for easy transition.
		 */
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		desc->irq_data.chip = &dummy_irq_chip;
646
	}
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648
	chip_bus_lock(desc);
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	raw_spin_lock_irqsave(&desc->lock, flags);
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	/* Uninstall? */
	if (handle == handle_bad_irq) {
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		if (desc->irq_data.chip != &no_irq_chip)
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			mask_ack_irq(desc);
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		irq_compat_set_disabled(desc);
		desc->istate |= IRQS_DISABLED;
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		desc->depth = 1;
	}
	desc->handle_irq = handle;
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	desc->name = name;
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	if (handle != handle_bad_irq && is_chained) {
		desc->status |= IRQ_NOREQUEST | IRQ_NOPROBE;
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		irq_startup(desc);
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	}
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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	chip_bus_sync_unlock(desc);
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}
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EXPORT_SYMBOL_GPL(__set_irq_handler);
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void
set_irq_chip_and_handler(unsigned int irq, struct irq_chip *chip,
673
			 irq_flow_handler_t handle)
674
{
675
	irq_set_chip(irq, chip);
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	__set_irq_handler(irq, handle, 0, NULL);
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}

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void
set_irq_chip_and_handler_name(unsigned int irq, struct irq_chip *chip,
			      irq_flow_handler_t handle, const char *name)
682
{
683
	irq_set_chip(irq, chip);
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	__set_irq_handler(irq, handle, 0, name);
685
}
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void irq_modify_status(unsigned int irq, unsigned long clr, unsigned long set)
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{
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	struct irq_desc *desc = irq_to_desc(irq);
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	unsigned long flags;

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	if (!desc)
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		return;

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	/* Sanitize flags */
	set &= IRQF_MODIFY_MASK;
	clr &= IRQF_MODIFY_MASK;
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	raw_spin_lock_irqsave(&desc->lock, flags);
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	desc->status &= ~clr;
	desc->status |= set;
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	raw_spin_unlock_irqrestore(&desc->lock, flags);
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}