smp.c 13.8 KB
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/*
 *  linux/arch/arm/kernel/smp.c
 *
 *  Copyright (C) 2002 ARM Limited, All Rights Reserved.
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 */
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#include <linux/module.h>
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#include <linux/delay.h>
#include <linux/init.h>
#include <linux/spinlock.h>
#include <linux/sched.h>
#include <linux/interrupt.h>
#include <linux/cache.h>
#include <linux/profile.h>
#include <linux/errno.h>
#include <linux/mm.h>
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#include <linux/err.h>
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#include <linux/cpu.h>
#include <linux/smp.h>
#include <linux/seq_file.h>
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#include <linux/irq.h>
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#include <linux/percpu.h>
#include <linux/clockchips.h>
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#include <linux/completion.h>
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#include <linux/atomic.h>
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#include <asm/cacheflush.h>
#include <asm/cpu.h>
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#include <asm/cputype.h>
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#include <asm/exception.h>
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#include <asm/idmap.h>
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#include <asm/topology.h>
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#include <asm/mmu_context.h>
#include <asm/pgtable.h>
#include <asm/pgalloc.h>
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#include <asm/processor.h>
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#include <asm/sections.h>
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#include <asm/tlbflush.h>
#include <asm/ptrace.h>
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#include <asm/localtimer.h>
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#include <asm/smp_plat.h>
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/*
 * as from 2.5, kernels no longer have an init_tasks structure
 * so we need some other way of telling a new secondary core
 * where to place its SVC stack
 */
struct secondary_data secondary_data;

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enum ipi_msg_type {
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	IPI_TIMER = 2,
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	IPI_RESCHEDULE,
	IPI_CALL_FUNC,
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	IPI_CALL_FUNC_SINGLE,
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	IPI_CPU_STOP,
};

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int __cpuinit __cpu_up(unsigned int cpu)
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{
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	struct cpuinfo_arm *ci = &per_cpu(cpu_data, cpu);
	struct task_struct *idle = ci->idle;
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	pgd_t *pgd;
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	int ret;

	/*
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	 * Spawn a new process manually, if not already done.
	 * Grab a pointer to its task struct so we can mess with it
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	 */
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	if (!idle) {
		idle = fork_idle(cpu);
		if (IS_ERR(idle)) {
			printk(KERN_ERR "CPU%u: fork() failed\n", cpu);
			return PTR_ERR(idle);
		}
		ci->idle = idle;
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	} else {
		/*
		 * Since this idle thread is being re-used, call
		 * init_idle() to reinitialize the thread structure.
		 */
		init_idle(idle, cpu);
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	}

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	/*
	 * Allocate initial page tables to allow the new CPU to
	 * enable the MMU safely.  This essentially means a set
	 * of our "standard" page tables, with the addition of
	 * a 1:1 mapping for the physical address of the kernel.
	 */
	pgd = pgd_alloc(&init_mm);
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	if (!pgd)
		return -ENOMEM;

	if (PHYS_OFFSET != PAGE_OFFSET) {
#ifndef CONFIG_HOTPLUG_CPU
		identity_mapping_add(pgd, __pa(__init_begin), __pa(__init_end));
#endif
		identity_mapping_add(pgd, __pa(_stext), __pa(_etext));
		identity_mapping_add(pgd, __pa(_sdata), __pa(_edata));
	}
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	/*
	 * We need to tell the secondary core where to find
	 * its stack and the page tables.
	 */
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	secondary_data.stack = task_stack_page(idle) + THREAD_START_SP;
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	secondary_data.pgdir = virt_to_phys(pgd);
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	secondary_data.swapper_pg_dir = virt_to_phys(swapper_pg_dir);
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	__cpuc_flush_dcache_area(&secondary_data, sizeof(secondary_data));
	outer_clean_range(__pa(&secondary_data), __pa(&secondary_data + 1));
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	/*
	 * Now bring the CPU into our world.
	 */
	ret = boot_secondary(cpu, idle);
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	if (ret == 0) {
		unsigned long timeout;

		/*
		 * CPU was successfully started, wait for it
		 * to come online or time out.
		 */
		timeout = jiffies + HZ;
		while (time_before(jiffies, timeout)) {
			if (cpu_online(cpu))
				break;

			udelay(10);
			barrier();
		}

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		if (!cpu_online(cpu)) {
			pr_crit("CPU%u: failed to come online\n", cpu);
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			ret = -EIO;
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		}
	} else {
		pr_err("CPU%u: failed to boot: %d\n", cpu, ret);
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	}

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	secondary_data.stack = NULL;
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	secondary_data.pgdir = 0;

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	if (PHYS_OFFSET != PAGE_OFFSET) {
#ifndef CONFIG_HOTPLUG_CPU
		identity_mapping_del(pgd, __pa(__init_begin), __pa(__init_end));
#endif
		identity_mapping_del(pgd, __pa(_stext), __pa(_etext));
		identity_mapping_del(pgd, __pa(_sdata), __pa(_edata));
	}

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	pgd_free(&init_mm, pgd);
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	return ret;
}

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#ifdef CONFIG_HOTPLUG_CPU
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static void percpu_timer_stop(void);

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/*
 * __cpu_disable runs on the processor to be shutdown.
 */
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int __cpu_disable(void)
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{
	unsigned int cpu = smp_processor_id();
	struct task_struct *p;
	int ret;

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	ret = platform_cpu_disable(cpu);
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	if (ret)
		return ret;

	/*
	 * Take this CPU offline.  Once we clear this, we can't return,
	 * and we must not schedule until we're ready to give up the cpu.
	 */
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	set_cpu_online(cpu, false);
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	/*
	 * OK - migrate IRQs away from this CPU
	 */
	migrate_irqs();

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	/*
	 * Stop the local timer for this CPU.
	 */
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	percpu_timer_stop();
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	/*
	 * Flush user cache and TLB mappings, and then remove this CPU
	 * from the vm mask set of all processes.
	 */
	flush_cache_all();
	local_flush_tlb_all();

	read_lock(&tasklist_lock);
	for_each_process(p) {
		if (p->mm)
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			cpumask_clear_cpu(cpu, mm_cpumask(p->mm));
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	}
	read_unlock(&tasklist_lock);

	return 0;
}

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static DECLARE_COMPLETION(cpu_died);

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/*
 * called on the thread which is asking for a CPU to be shutdown -
 * waits until shutdown has completed, or it is timed out.
 */
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void __cpu_die(unsigned int cpu)
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{
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	if (!wait_for_completion_timeout(&cpu_died, msecs_to_jiffies(5000))) {
		pr_err("CPU%u: cpu didn't die\n", cpu);
		return;
	}
	printk(KERN_NOTICE "CPU%u: shutdown\n", cpu);

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	if (!platform_cpu_kill(cpu))
		printk("CPU%u: unable to kill\n", cpu);
}

/*
 * Called from the idle thread for the CPU which has been shutdown.
 *
 * Note that we disable IRQs here, but do not re-enable them
 * before returning to the caller. This is also the behaviour
 * of the other hotplug-cpu capable cores, so presumably coming
 * out of idle fixes this.
 */
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void __ref cpu_die(void)
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{
	unsigned int cpu = smp_processor_id();

	idle_task_exit();

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	local_irq_disable();
	mb();

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	/* Tell __cpu_die() that this CPU is now safe to dispose of */
	complete(&cpu_died);

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	/*
	 * actual CPU shutdown procedure is at least platform (if not
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	 * CPU) specific.
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	 */
	platform_cpu_die(cpu);

	/*
	 * Do not return to the idle loop - jump back to the secondary
	 * cpu initialisation.  There's some initialisation which needs
	 * to be repeated to undo the effects of taking the CPU offline.
	 */
	__asm__("mov	sp, %0\n"
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	"	mov	fp, #0\n"
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	"	b	secondary_start_kernel"
		:
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		: "r" (task_stack_page(current) + THREAD_SIZE - 8));
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}
#endif /* CONFIG_HOTPLUG_CPU */

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int __cpu_logical_map[NR_CPUS];

void __init smp_setup_processor_id(void)
{
	int i;
	u32 cpu = is_smp() ? read_cpuid_mpidr() & 0xff : 0;

	cpu_logical_map(0) = cpu;
	for (i = 1; i < NR_CPUS; ++i)
		cpu_logical_map(i) = i == cpu ? 0 : i;

	printk(KERN_INFO "Booting Linux on physical CPU %d\n", cpu);
}

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/*
 * Called by both boot and secondaries to move global data into
 * per-processor storage.
 */
static void __cpuinit smp_store_cpu_info(unsigned int cpuid)
{
	struct cpuinfo_arm *cpu_info = &per_cpu(cpu_data, cpuid);

	cpu_info->loops_per_jiffy = loops_per_jiffy;
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	store_cpu_topology(cpuid);
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}

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/*
 * This is the secondary CPU boot entry.  We're using this CPUs
 * idle thread stack, but a set of temporary page tables.
 */
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asmlinkage void __cpuinit secondary_start_kernel(void)
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{
	struct mm_struct *mm = &init_mm;
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	unsigned int cpu = smp_processor_id();
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	printk("CPU%u: Booted secondary processor\n", cpu);

	/*
	 * All kernel threads share the same mm context; grab a
	 * reference and switch to it.
	 */
	atomic_inc(&mm->mm_count);
	current->active_mm = mm;
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	cpumask_set_cpu(cpu, mm_cpumask(mm));
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	cpu_switch_mm(mm->pgd, mm);
	enter_lazy_tlb(mm, current);
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	local_flush_tlb_all();
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	cpu_init();
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	preempt_disable();
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	trace_hardirqs_off();
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	/*
	 * Give the platform a chance to do its own initialisation.
	 */
	platform_secondary_init(cpu);

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	notify_cpu_starting(cpu);
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	calibrate_delay();

	smp_store_cpu_info(cpu);

	/*
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	 * OK, now it's safe to let the boot CPU continue.  Wait for
	 * the CPU migration code to notice that the CPU is online
	 * before we continue.
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	 */
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	set_cpu_online(cpu, true);
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	/*
	 * Setup the percpu timer for this CPU.
	 */
	percpu_timer_setup();

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	while (!cpu_active(cpu))
		cpu_relax();
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	/*
	 * cpu_active bit is set, so it's safe to enalbe interrupts
	 * now.
	 */
	local_irq_enable();
	local_fiq_enable();

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	/*
	 * OK, it's off to the idle thread for us
	 */
	cpu_idle();
}

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void __init smp_cpus_done(unsigned int max_cpus)
{
	int cpu;
	unsigned long bogosum = 0;

	for_each_online_cpu(cpu)
		bogosum += per_cpu(cpu_data, cpu).loops_per_jiffy;

	printk(KERN_INFO "SMP: Total of %d processors activated "
	       "(%lu.%02lu BogoMIPS).\n",
	       num_online_cpus(),
	       bogosum / (500000/HZ),
	       (bogosum / (5000/HZ)) % 100);
}

void __init smp_prepare_boot_cpu(void)
{
	unsigned int cpu = smp_processor_id();

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	per_cpu(cpu_data, cpu).idle = current;
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}

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void __init smp_prepare_cpus(unsigned int max_cpus)
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{
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	unsigned int ncores = num_possible_cpus();
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	init_cpu_topology();

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	smp_store_cpu_info(smp_processor_id());
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	/*
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	 * are we trying to boot more cores than exist?
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	 */
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	if (max_cpus > ncores)
		max_cpus = ncores;
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	if (ncores > 1 && max_cpus) {
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		/*
		 * Enable the local timer or broadcast device for the
		 * boot CPU, but only if we have more than one CPU.
		 */
		percpu_timer_setup();
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		/*
		 * Initialise the present map, which describes the set of CPUs
		 * actually populated at the present time. A platform should
		 * re-initialize the map in platform_smp_prepare_cpus() if
		 * present != possible (e.g. physical hotplug).
		 */
		init_cpu_present(&cpu_possible_map);

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		/*
		 * Initialise the SCU if there are more than one CPU
		 * and let them know where to start.
		 */
		platform_smp_prepare_cpus(max_cpus);
	}
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}

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static void (*smp_cross_call)(const struct cpumask *, unsigned int);

void __init set_smp_cross_call(void (*fn)(const struct cpumask *, unsigned int))
{
	smp_cross_call = fn;
}

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void arch_send_call_function_ipi_mask(const struct cpumask *mask)
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{
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	smp_cross_call(mask, IPI_CALL_FUNC);
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}

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void arch_send_call_function_single_ipi(int cpu)
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{
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	smp_cross_call(cpumask_of(cpu), IPI_CALL_FUNC_SINGLE);
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}

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static const char *ipi_types[NR_IPI] = {
#define S(x,s)	[x - IPI_TIMER] = s
	S(IPI_TIMER, "Timer broadcast interrupts"),
	S(IPI_RESCHEDULE, "Rescheduling interrupts"),
	S(IPI_CALL_FUNC, "Function call interrupts"),
	S(IPI_CALL_FUNC_SINGLE, "Single function call interrupts"),
	S(IPI_CPU_STOP, "CPU stop interrupts"),
};

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void show_ipi_list(struct seq_file *p, int prec)
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{
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	unsigned int cpu, i;
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	for (i = 0; i < NR_IPI; i++) {
		seq_printf(p, "%*s%u: ", prec - 1, "IPI", i);
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		for_each_present_cpu(cpu)
			seq_printf(p, "%10u ",
				   __get_irq_stat(cpu, ipi_irqs[i]));
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		seq_printf(p, " %s\n", ipi_types[i]);
	}
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}

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u64 smp_irq_stat_cpu(unsigned int cpu)
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{
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	u64 sum = 0;
	int i;
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	for (i = 0; i < NR_IPI; i++)
		sum += __get_irq_stat(cpu, ipi_irqs[i]);
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	return sum;
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}

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/*
 * Timer (local or broadcast) support
 */
static DEFINE_PER_CPU(struct clock_event_device, percpu_clockevent);

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static void ipi_timer(void)
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{
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	struct clock_event_device *evt = &__get_cpu_var(percpu_clockevent);
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	irq_enter();
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	evt->event_handler(evt);
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	irq_exit();
}

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#ifdef CONFIG_GENERIC_CLOCKEVENTS_BROADCAST
static void smp_timer_broadcast(const struct cpumask *mask)
{
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	smp_cross_call(mask, IPI_TIMER);
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}
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#else
#define smp_timer_broadcast	NULL
#endif
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static void broadcast_timer_set_mode(enum clock_event_mode mode,
	struct clock_event_device *evt)
{
}

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static void __cpuinit broadcast_timer_setup(struct clock_event_device *evt)
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{
	evt->name	= "dummy_timer";
	evt->features	= CLOCK_EVT_FEAT_ONESHOT |
			  CLOCK_EVT_FEAT_PERIODIC |
			  CLOCK_EVT_FEAT_DUMMY;
	evt->rating	= 400;
	evt->mult	= 1;
	evt->set_mode	= broadcast_timer_set_mode;

	clockevents_register_device(evt);
}

void __cpuinit percpu_timer_setup(void)
{
	unsigned int cpu = smp_processor_id();
	struct clock_event_device *evt = &per_cpu(percpu_clockevent, cpu);

	evt->cpumask = cpumask_of(cpu);
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	evt->broadcast = smp_timer_broadcast;
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	if (local_timer_setup(evt))
		broadcast_timer_setup(evt);
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}

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#ifdef CONFIG_HOTPLUG_CPU
/*
 * The generic clock events code purposely does not stop the local timer
 * on CPU_DEAD/CPU_DEAD_FROZEN hotplug events, so we have to do it
 * manually here.
 */
static void percpu_timer_stop(void)
{
	unsigned int cpu = smp_processor_id();
	struct clock_event_device *evt = &per_cpu(percpu_clockevent, cpu);

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	local_timer_stop(evt);
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}
#endif

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static DEFINE_RAW_SPINLOCK(stop_lock);
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/*
 * ipi_cpu_stop - handle IPI from smp_send_stop()
 */
static void ipi_cpu_stop(unsigned int cpu)
{
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	if (system_state == SYSTEM_BOOTING ||
	    system_state == SYSTEM_RUNNING) {
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		raw_spin_lock(&stop_lock);
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		printk(KERN_CRIT "CPU%u: stopping\n", cpu);
		dump_stack();
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		raw_spin_unlock(&stop_lock);
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	}
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	set_cpu_online(cpu, false);
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	local_fiq_disable();
	local_irq_disable();

	while (1)
		cpu_relax();
}

/*
 * Main handler for inter-processor interrupts
 */
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asmlinkage void __exception_irq_entry do_IPI(int ipinr, struct pt_regs *regs)
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{
	handle_IPI(ipinr, regs);
}

void handle_IPI(int ipinr, struct pt_regs *regs)
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{
	unsigned int cpu = smp_processor_id();
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	struct pt_regs *old_regs = set_irq_regs(regs);
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	if (ipinr >= IPI_TIMER && ipinr < IPI_TIMER + NR_IPI)
		__inc_irq_stat(cpu, ipi_irqs[ipinr - IPI_TIMER]);
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	switch (ipinr) {
	case IPI_TIMER:
		ipi_timer();
		break;
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	case IPI_RESCHEDULE:
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		scheduler_ipi();
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		break;
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	case IPI_CALL_FUNC:
		generic_smp_call_function_interrupt();
		break;
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	case IPI_CALL_FUNC_SINGLE:
		generic_smp_call_function_single_interrupt();
		break;
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	case IPI_CPU_STOP:
		ipi_cpu_stop(cpu);
		break;
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	default:
		printk(KERN_CRIT "CPU%u: Unknown IPI message 0x%x\n",
		       cpu, ipinr);
		break;
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	}
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	set_irq_regs(old_regs);
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}

void smp_send_reschedule(int cpu)
{
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	smp_cross_call(cpumask_of(cpu), IPI_RESCHEDULE);
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}

void smp_send_stop(void)
{
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	unsigned long timeout;
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	if (num_online_cpus() > 1) {
		cpumask_t mask = cpu_online_map;
		cpu_clear(smp_processor_id(), mask);
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		smp_cross_call(&mask, IPI_CPU_STOP);
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	}
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	/* Wait up to one second for other CPUs to stop */
	timeout = USEC_PER_SEC;
	while (num_online_cpus() > 1 && timeout--)
		udelay(1);
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	if (num_online_cpus() > 1)
		pr_warning("SMP: failed to stop secondary CPUs\n");
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}

/*
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 * not supported here
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 */
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int setup_profiling_timer(unsigned int multiplier)
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{
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	return -EINVAL;
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}