smp.c 25.9 KB
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/*
 *  arch/s390/kernel/smp.c
 *
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 *    Copyright IBM Corp. 1999,2007
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 *    Author(s): Denis Joseph Barrow (djbarrow@de.ibm.com,barrow_dj@yahoo.com),
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 *		 Martin Schwidefsky (schwidefsky@de.ibm.com)
 *		 Heiko Carstens (heiko.carstens@de.ibm.com)
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 *
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 *  based on other smp stuff by
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 *    (c) 1995 Alan Cox, CymruNET Ltd  <alan@cymru.net>
 *    (c) 1998 Ingo Molnar
 *
 * We work with logical cpu numbering everywhere we can. The only
 * functions using the real cpu address (got from STAP) are the sigp
 * functions. For all other functions we use the identity mapping.
 * That means that cpu_number_map[i] == i for every cpu. cpu_number_map is
 * used e.g. to find the idle task belonging to a logical cpu. Every array
 * in the kernel is sorted by the logical cpu number and not by the physical
 * one which is causing all the confusion with __cpu_logical_map and
 * cpu_number_map in other architectures.
 */

#include <linux/module.h>
#include <linux/init.h>
#include <linux/mm.h>
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#include <linux/err.h>
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#include <linux/spinlock.h>
#include <linux/kernel_stat.h>
#include <linux/delay.h>
#include <linux/cache.h>
#include <linux/interrupt.h>
#include <linux/cpu.h>
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#include <linux/timex.h>
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#include <linux/bootmem.h>
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#include <asm/ipl.h>
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#include <asm/setup.h>
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#include <asm/sigp.h>
#include <asm/pgalloc.h>
#include <asm/irq.h>
#include <asm/s390_ext.h>
#include <asm/cpcmd.h>
#include <asm/tlbflush.h>
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#include <asm/timer.h>
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#include <asm/lowcore.h>
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#include <asm/sclp.h>
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#include <asm/cpu.h>
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/*
 * An array with a pointer the lowcore of every CPU.
 */
struct _lowcore *lowcore_ptr[NR_CPUS];
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EXPORT_SYMBOL(lowcore_ptr);
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cpumask_t cpu_online_map = CPU_MASK_NONE;
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EXPORT_SYMBOL(cpu_online_map);

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cpumask_t cpu_possible_map = CPU_MASK_NONE;
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EXPORT_SYMBOL(cpu_possible_map);
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static struct task_struct *current_set[NR_CPUS];

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static u8 smp_cpu_type;
static int smp_use_sigp_detection;

enum s390_cpu_state {
	CPU_STATE_STANDBY,
	CPU_STATE_CONFIGURED,
};

#ifdef CONFIG_HOTPLUG_CPU
static DEFINE_MUTEX(smp_cpu_state_mutex);
#endif
static int smp_cpu_state[NR_CPUS];

static DEFINE_PER_CPU(struct cpu, cpu_devices);
DEFINE_PER_CPU(struct s390_idle_data, s390_idle);

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static void smp_ext_bitcall(int, ec_bit_sig);

/*
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 * Structure and data for __smp_call_function_map(). This is designed to
 * minimise static memory requirements. It also looks cleaner.
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 */
static DEFINE_SPINLOCK(call_lock);

struct call_data_struct {
	void (*func) (void *info);
	void *info;
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	cpumask_t started;
	cpumask_t finished;
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	int wait;
};

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static struct call_data_struct *call_data;
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/*
 * 'Call function' interrupt callback
 */
static void do_call_function(void)
{
	void (*func) (void *info) = call_data->func;
	void *info = call_data->info;
	int wait = call_data->wait;

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	cpu_set(smp_processor_id(), call_data->started);
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	(*func)(info);
	if (wait)
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		cpu_set(smp_processor_id(), call_data->finished);;
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}

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static void __smp_call_function_map(void (*func) (void *info), void *info,
				    int nonatomic, int wait, cpumask_t map)
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{
	struct call_data_struct data;
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	int cpu, local = 0;
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	/*
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	 * Can deadlock when interrupts are disabled or if in wrong context.
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	 */
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	WARN_ON(irqs_disabled() || in_irq());
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	/*
	 * Check for local function call. We have to have the same call order
	 * as in on_each_cpu() because of machine_restart_smp().
	 */
	if (cpu_isset(smp_processor_id(), map)) {
		local = 1;
		cpu_clear(smp_processor_id(), map);
	}

	cpus_and(map, map, cpu_online_map);
	if (cpus_empty(map))
		goto out;
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	data.func = func;
	data.info = info;
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	data.started = CPU_MASK_NONE;
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	data.wait = wait;
	if (wait)
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		data.finished = CPU_MASK_NONE;
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	spin_lock(&call_lock);
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	call_data = &data;
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	for_each_cpu_mask(cpu, map)
		smp_ext_bitcall(cpu, ec_call_function);
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	/* Wait for response */
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	while (!cpus_equal(map, data.started))
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		cpu_relax();
	if (wait)
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		while (!cpus_equal(map, data.finished))
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			cpu_relax();
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	spin_unlock(&call_lock);
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out:
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	if (local) {
		local_irq_disable();
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		func(info);
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		local_irq_enable();
	}
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}

/*
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 * smp_call_function:
 * @func: the function to run; this must be fast and non-blocking
 * @info: an arbitrary pointer to pass to the function
 * @nonatomic: unused
 * @wait: if true, wait (atomically) until function has completed on other CPUs
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 *
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 * Run a function on all other CPUs.
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 *
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 * You must not call this function with disabled interrupts, from a
 * hardware interrupt handler or from a bottom half.
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 */
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int smp_call_function(void (*func) (void *info), void *info, int nonatomic,
		      int wait)
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{
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	cpumask_t map;
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	preempt_disable();
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	map = cpu_online_map;
	cpu_clear(smp_processor_id(), map);
	__smp_call_function_map(func, info, nonatomic, wait, map);
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	preempt_enable();
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	return 0;
}
EXPORT_SYMBOL(smp_call_function);
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/*
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 * smp_call_function_single:
 * @cpu: the CPU where func should run
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 * @func: the function to run; this must be fast and non-blocking
 * @info: an arbitrary pointer to pass to the function
 * @nonatomic: unused
 * @wait: if true, wait (atomically) until function has completed on other CPUs
 *
 * Run a function on one processor.
 *
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 * You must not call this function with disabled interrupts, from a
 * hardware interrupt handler or from a bottom half.
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 */
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int smp_call_function_single(int cpu, void (*func) (void *info), void *info,
			     int nonatomic, int wait)
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{
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	preempt_disable();
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	__smp_call_function_map(func, info, nonatomic, wait,
				cpumask_of_cpu(cpu));
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	preempt_enable();
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	return 0;
}
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EXPORT_SYMBOL(smp_call_function_single);
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void smp_send_stop(void)
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{
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	int cpu, rc;
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	/* Disable all interrupts/machine checks */
	__load_psw_mask(psw_kernel_bits & ~PSW_MASK_MCHECK);
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	/* write magic number to zero page (absolute 0) */
	lowcore_ptr[smp_processor_id()]->panic_magic = __PANIC_MAGIC;
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	/* stop all processors */
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	for_each_online_cpu(cpu) {
		if (cpu == smp_processor_id())
			continue;
		do {
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			rc = signal_processor(cpu, sigp_stop);
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		} while (rc == sigp_busy);
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		while (!smp_cpu_not_running(cpu))
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			cpu_relax();
	}
}

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/*
 * Reboot, halt and power_off routines for SMP.
 */
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void machine_restart_smp(char *__unused)
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{
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	smp_send_stop();
	do_reipl();
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}

void machine_halt_smp(void)
{
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	smp_send_stop();
	if (MACHINE_IS_VM && strlen(vmhalt_cmd) > 0)
		__cpcmd(vmhalt_cmd, NULL, 0, NULL);
	signal_processor(smp_processor_id(), sigp_stop_and_store_status);
	for (;;);
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}

void machine_power_off_smp(void)
{
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	smp_send_stop();
	if (MACHINE_IS_VM && strlen(vmpoff_cmd) > 0)
		__cpcmd(vmpoff_cmd, NULL, 0, NULL);
	signal_processor(smp_processor_id(), sigp_stop_and_store_status);
	for (;;);
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}

/*
 * This is the main routine where commands issued by other
 * cpus are handled.
 */

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static void do_ext_call_interrupt(__u16 code)
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{
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	unsigned long bits;
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	/*
	 * handle bit signal external calls
	 *
	 * For the ec_schedule signal we have to do nothing. All the work
	 * is done automatically when we return from the interrupt.
	 */
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	bits = xchg(&S390_lowcore.ext_call_fast, 0);

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	if (test_bit(ec_call_function, &bits))
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		do_call_function();
}

/*
 * Send an external call sigp to another cpu and return without waiting
 * for its completion.
 */
static void smp_ext_bitcall(int cpu, ec_bit_sig sig)
{
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	/*
	 * Set signaling bit in lowcore of target cpu and kick it
	 */
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	set_bit(sig, (unsigned long *) &lowcore_ptr[cpu]->ext_call_fast);
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	while (signal_processor(cpu, sigp_emergency_signal) == sigp_busy)
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		udelay(10);
}

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#ifndef CONFIG_64BIT
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/*
 * this function sends a 'purge tlb' signal to another CPU.
 */
void smp_ptlb_callback(void *info)
{
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	__tlb_flush_local();
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}

void smp_ptlb_all(void)
{
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	on_each_cpu(smp_ptlb_callback, NULL, 0, 1);
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}
EXPORT_SYMBOL(smp_ptlb_all);
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#endif /* ! CONFIG_64BIT */
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/*
 * this function sends a 'reschedule' IPI to another CPU.
 * it goes straight through and wastes no time serializing
 * anything. Worst case is that we lose a reschedule ...
 */
void smp_send_reschedule(int cpu)
{
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	smp_ext_bitcall(cpu, ec_schedule);
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}

/*
 * parameter area for the set/clear control bit callbacks
 */
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struct ec_creg_mask_parms {
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	unsigned long orvals[16];
	unsigned long andvals[16];
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};
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/*
 * callback for setting/clearing control bits
 */
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static void smp_ctl_bit_callback(void *info)
{
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	struct ec_creg_mask_parms *pp = info;
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	unsigned long cregs[16];
	int i;
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	__ctl_store(cregs, 0, 15);
	for (i = 0; i <= 15; i++)
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		cregs[i] = (cregs[i] & pp->andvals[i]) | pp->orvals[i];
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	__ctl_load(cregs, 0, 15);
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}

/*
 * Set a bit in a control register of all cpus
 */
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void smp_ctl_set_bit(int cr, int bit)
{
	struct ec_creg_mask_parms parms;
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	memset(&parms.orvals, 0, sizeof(parms.orvals));
	memset(&parms.andvals, 0xff, sizeof(parms.andvals));
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	parms.orvals[cr] = 1 << bit;
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	on_each_cpu(smp_ctl_bit_callback, &parms, 0, 1);
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}
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EXPORT_SYMBOL(smp_ctl_set_bit);
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/*
 * Clear a bit in a control register of all cpus
 */
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void smp_ctl_clear_bit(int cr, int bit)
{
	struct ec_creg_mask_parms parms;
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	memset(&parms.orvals, 0, sizeof(parms.orvals));
	memset(&parms.andvals, 0xff, sizeof(parms.andvals));
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	parms.andvals[cr] = ~(1L << bit);
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	on_each_cpu(smp_ctl_bit_callback, &parms, 0, 1);
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}
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EXPORT_SYMBOL(smp_ctl_clear_bit);
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/*
 * In early ipl state a temp. logically cpu number is needed, so the sigp
 * functions can be used to sense other cpus. Since NR_CPUS is >= 2 on
 * CONFIG_SMP and the ipl cpu is logical cpu 0, it must be 1.
 */
#define CPU_INIT_NO	1

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#if defined(CONFIG_ZFCPDUMP) || defined(CONFIG_ZFCPDUMP_MODULE)

/*
 * zfcpdump_prefix_array holds prefix registers for the following scenario:
 * 64 bit zfcpdump kernel and 31 bit kernel which is to be dumped. We have to
 * save its prefix registers, since they get lost, when switching from 31 bit
 * to 64 bit.
 */
unsigned int zfcpdump_prefix_array[NR_CPUS + 1] \
	__attribute__((__section__(".data")));

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static void __init smp_get_save_area(unsigned int cpu, unsigned int phy_cpu)
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{
	if (ipl_info.type != IPL_TYPE_FCP_DUMP)
		return;
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	if (cpu >= NR_CPUS) {
		printk(KERN_WARNING "Registers for cpu %i not saved since dump "
		       "kernel was compiled with NR_CPUS=%i\n", cpu, NR_CPUS);
		return;
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	}
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	zfcpdump_save_areas[cpu] = alloc_bootmem(sizeof(union save_area));
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	__cpu_logical_map[CPU_INIT_NO] = (__u16) phy_cpu;
	while (signal_processor(CPU_INIT_NO, sigp_stop_and_store_status) ==
	       sigp_busy)
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		cpu_relax();
	memcpy(zfcpdump_save_areas[cpu],
	       (void *)(unsigned long) store_prefix() + SAVE_AREA_BASE,
	       SAVE_AREA_SIZE);
#ifdef CONFIG_64BIT
	/* copy original prefix register */
	zfcpdump_save_areas[cpu]->s390x.pref_reg = zfcpdump_prefix_array[cpu];
#endif
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}

union save_area *zfcpdump_save_areas[NR_CPUS + 1];
EXPORT_SYMBOL_GPL(zfcpdump_save_areas);

#else
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static inline void smp_get_save_area(unsigned int cpu, unsigned int phy_cpu) { }

#endif /* CONFIG_ZFCPDUMP || CONFIG_ZFCPDUMP_MODULE */
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static int cpu_stopped(int cpu)
{
	__u32 status;

	/* Check for stopped state */
	if (signal_processor_ps(&status, 0, cpu, sigp_sense) ==
	    sigp_status_stored) {
		if (status & 0x40)
			return 1;
	}
	return 0;
}

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/*
 * Lets check how many CPUs we have.
 */
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static void __init smp_count_cpus(unsigned int *configured_cpus,
				  unsigned int *standby_cpus)
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{
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	unsigned int cpu;
	struct sclp_cpu_info *info;
	u16 boot_cpu_addr, cpu_addr;
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	boot_cpu_addr = S390_lowcore.cpu_data.cpu_addr;
	current_thread_info()->cpu = 0;
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	*configured_cpus = 1;
	*standby_cpus = 0;

	info = alloc_bootmem_pages(sizeof(*info));
	if (!info)
		disabled_wait((unsigned long) __builtin_return_address(0));

	/* Use sigp detection algorithm if sclp doesn't work. */
	if (sclp_get_cpu_info(info)) {
		smp_use_sigp_detection = 1;
		for (cpu = 0; cpu <= 65535; cpu++) {
			if (cpu == boot_cpu_addr)
				continue;
			__cpu_logical_map[CPU_INIT_NO] = cpu;
			if (cpu_stopped(CPU_INIT_NO))
				(*configured_cpus)++;
		}
		goto out;
	}

	if (info->has_cpu_type) {
		for (cpu = 0; cpu < info->combined; cpu++) {
			if (info->cpu[cpu].address == boot_cpu_addr) {
				smp_cpu_type = info->cpu[cpu].type;
				break;
			}
		}
	}
	/* Count cpus. */
	for (cpu = 0; cpu < info->combined; cpu++) {
		if (info->has_cpu_type && info->cpu[cpu].type != smp_cpu_type)
			continue;
		cpu_addr = info->cpu[cpu].address;
		if (cpu_addr == boot_cpu_addr)
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			continue;
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		__cpu_logical_map[CPU_INIT_NO] = cpu_addr;
		if (!cpu_stopped(CPU_INIT_NO)) {
			(*standby_cpus)++;
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			continue;
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		}
		smp_get_save_area(*configured_cpus, cpu_addr);
		(*configured_cpus)++;
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	}
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out:
	printk(KERN_INFO "CPUs: %d configured, %d standby\n",
	       *configured_cpus, *standby_cpus);
	free_bootmem((unsigned long) info, sizeof(*info));
}

static int cpu_known(int cpu_id)
{
	int cpu;

	for_each_present_cpu(cpu) {
		if (__cpu_logical_map[cpu] == cpu_id)
			return 1;
	}
	return 0;
}

static int smp_rescan_cpus_sigp(cpumask_t avail)
{
	int cpu_id, logical_cpu;

	logical_cpu = first_cpu(avail);
	if (logical_cpu == NR_CPUS)
		return 0;
	for (cpu_id = 0; cpu_id <= 65535; cpu_id++) {
		if (cpu_known(cpu_id))
			continue;
		__cpu_logical_map[logical_cpu] = cpu_id;
		if (!cpu_stopped(logical_cpu))
			continue;
		cpu_set(logical_cpu, cpu_present_map);
		smp_cpu_state[logical_cpu] = CPU_STATE_CONFIGURED;
		logical_cpu = next_cpu(logical_cpu, avail);
		if (logical_cpu == NR_CPUS)
			break;
	}
	return 0;
}

static int __init_refok smp_rescan_cpus_sclp(cpumask_t avail)
{
	struct sclp_cpu_info *info;
	int cpu_id, logical_cpu, cpu;
	int rc;

	logical_cpu = first_cpu(avail);
	if (logical_cpu == NR_CPUS)
		return 0;
	if (slab_is_available())
		info = kmalloc(sizeof(*info), GFP_KERNEL);
	else
		info = alloc_bootmem(sizeof(*info));
	if (!info)
		return -ENOMEM;
	rc = sclp_get_cpu_info(info);
	if (rc)
		goto out;
	for (cpu = 0; cpu < info->combined; cpu++) {
		if (info->has_cpu_type && info->cpu[cpu].type != smp_cpu_type)
			continue;
		cpu_id = info->cpu[cpu].address;
		if (cpu_known(cpu_id))
			continue;
		__cpu_logical_map[logical_cpu] = cpu_id;
		cpu_set(logical_cpu, cpu_present_map);
		if (cpu >= info->configured)
			smp_cpu_state[logical_cpu] = CPU_STATE_STANDBY;
		else
			smp_cpu_state[logical_cpu] = CPU_STATE_CONFIGURED;
		logical_cpu = next_cpu(logical_cpu, avail);
		if (logical_cpu == NR_CPUS)
			break;
	}
out:
	if (slab_is_available())
		kfree(info);
	else
		free_bootmem((unsigned long) info, sizeof(*info));
	return rc;
}

static int smp_rescan_cpus(void)
{
	cpumask_t avail;

	cpus_setall(avail);
	cpus_and(avail, avail, cpu_possible_map);
	cpus_andnot(avail, avail, cpu_present_map);
	if (smp_use_sigp_detection)
		return smp_rescan_cpus_sigp(avail);
	else
		return smp_rescan_cpus_sclp(avail);
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}

/*
588
 *	Activate a secondary processor.
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 */
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int __cpuinit start_secondary(void *cpuvoid)
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{
592 593
	/* Setup the cpu */
	cpu_init();
594
	preempt_disable();
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	/* Enable TOD clock interrupts on the secondary cpu. */
596
	init_cpu_timer();
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#ifdef CONFIG_VIRT_TIMER
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	/* Enable cpu timer interrupts on the secondary cpu. */
599
	init_cpu_vtimer();
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#endif
	/* Enable pfault pseudo page faults on this cpu. */
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	pfault_init();

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	/* Mark this cpu as online */
	cpu_set(smp_processor_id(), cpu_online_map);
	/* Switch on interrupts */
	local_irq_enable();
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	/* Print info about this processor */
	print_cpu_info(&S390_lowcore.cpu_data);
	/* cpu_idle will call schedule for us */
	cpu_idle();
	return 0;
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}

static void __init smp_create_idle(unsigned int cpu)
{
	struct task_struct *p;

	/*
	 *  don't care about the psw and regs settings since we'll never
	 *  reschedule the forked task.
	 */
	p = fork_idle(cpu);
	if (IS_ERR(p))
		panic("failed fork for CPU %u: %li", cpu, PTR_ERR(p));
	current_set[cpu] = p;
627
	spin_lock_init(&(&per_cpu(s390_idle, cpu))->lock);
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}

/* Upping and downing of CPUs */
631
int __cpu_up(unsigned int cpu)
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{
	struct task_struct *idle;
634
	struct _lowcore *cpu_lowcore;
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	struct stack_frame *sf;
636
	sigp_ccode ccode;
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	if (smp_cpu_state[cpu] != CPU_STATE_CONFIGURED)
		return -EIO;
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	ccode = signal_processor_p((__u32)(unsigned long)(lowcore_ptr[cpu]),
				   cpu, sigp_set_prefix);
643
	if (ccode) {
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		printk("sigp_set_prefix failed for cpu %d "
		       "with condition code %d\n",
		       (int) cpu, (int) ccode);
		return -EIO;
	}

	idle = current_set[cpu];
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	cpu_lowcore = lowcore_ptr[cpu];
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	cpu_lowcore->kernel_stack = (unsigned long)
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		task_stack_page(idle) + THREAD_SIZE;
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	sf = (struct stack_frame *) (cpu_lowcore->kernel_stack
				     - sizeof(struct pt_regs)
				     - sizeof(struct stack_frame));
	memset(sf, 0, sizeof(struct stack_frame));
	sf->gprs[9] = (unsigned long) sf;
	cpu_lowcore->save_area[15] = (unsigned long) sf;
	__ctl_store(cpu_lowcore->cregs_save_area[0], 0, 15);
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	asm volatile(
		"	stam	0,15,0(%0)"
		: : "a" (&cpu_lowcore->access_regs_save_area) : "memory");
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	cpu_lowcore->percpu_offset = __per_cpu_offset[cpu];
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	cpu_lowcore->current_task = (unsigned long) idle;
	cpu_lowcore->cpu_data.cpu_nr = cpu;
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	eieio();
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	while (signal_processor(cpu, sigp_restart) == sigp_busy)
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		udelay(10);
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	while (!cpu_online(cpu))
		cpu_relax();
	return 0;
}

677
static unsigned int __initdata additional_cpus;
678
static unsigned int __initdata possible_cpus;
679 680 681

void __init smp_setup_cpu_possible_map(void)
{
682 683
	unsigned int pos_cpus, cpu;
	unsigned int configured_cpus, standby_cpus;
684

685 686 687
	smp_count_cpus(&configured_cpus, &standby_cpus);
	pos_cpus = min(configured_cpus + standby_cpus + additional_cpus,
		       (unsigned int) NR_CPUS);
688
	if (possible_cpus)
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		pos_cpus = min(possible_cpus, (unsigned int) NR_CPUS);
	for (cpu = 0; cpu < pos_cpus; cpu++)
691
		cpu_set(cpu, cpu_possible_map);
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	cpu_present_map = cpumask_of_cpu(0);
	smp_rescan_cpus();
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}

#ifdef CONFIG_HOTPLUG_CPU

static int __init setup_additional_cpus(char *s)
{
	additional_cpus = simple_strtoul(s, NULL, 0);
	return 0;
}
early_param("additional_cpus", setup_additional_cpus);

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static int __init setup_possible_cpus(char *s)
{
	possible_cpus = simple_strtoul(s, NULL, 0);
	return 0;
}
early_param("possible_cpus", setup_possible_cpus);

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int __cpu_disable(void)
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{
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	struct ec_creg_mask_parms cr_parms;
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	int cpu = smp_processor_id();
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	cpu_clear(cpu, cpu_online_map);
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	/* Disable pfault pseudo page faults on this cpu. */
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	pfault_fini();
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	memset(&cr_parms.orvals, 0, sizeof(cr_parms.orvals));
	memset(&cr_parms.andvals, 0xff, sizeof(cr_parms.andvals));
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	/* disable all external interrupts */
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	cr_parms.orvals[0] = 0;
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	cr_parms.andvals[0] = ~(1 << 15 | 1 << 14 | 1 << 13 | 1 << 12 |
				1 << 11 | 1 << 10 | 1 <<  6 | 1 <<  4);
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	/* disable all I/O interrupts */
	cr_parms.orvals[6] = 0;
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	cr_parms.andvals[6] = ~(1 << 31 | 1 << 30 | 1 << 29 | 1 << 28 |
				1 << 27 | 1 << 26 | 1 << 25 | 1 << 24);
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	/* disable most machine checks */
	cr_parms.orvals[14] = 0;
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	cr_parms.andvals[14] = ~(1 << 28 | 1 << 27 | 1 << 26 |
				 1 << 25 | 1 << 24);
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	smp_ctl_bit_callback(&cr_parms);

	return 0;
}

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void __cpu_die(unsigned int cpu)
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{
	/* Wait until target cpu is down */
	while (!smp_cpu_not_running(cpu))
		cpu_relax();
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	printk(KERN_INFO "Processor %d spun down\n", cpu);
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}

751
void cpu_die(void)
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{
	idle_task_exit();
	signal_processor(smp_processor_id(), sigp_stop);
	BUG();
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	for (;;);
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}

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#endif /* CONFIG_HOTPLUG_CPU */

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/*
 *	Cycle through the processors and setup structures.
 */

void __init smp_prepare_cpus(unsigned int max_cpus)
{
	unsigned long stack;
	unsigned int cpu;
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	int i;

	/* request the 0x1201 emergency signal external interrupt */
	if (register_external_interrupt(0x1201, do_ext_call_interrupt) != 0)
		panic("Couldn't request external interrupt 0x1201");
	memset(lowcore_ptr, 0, sizeof(lowcore_ptr));
	/*
	 *  Initialize prefix pages and stacks for all possible cpus
	 */
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	print_cpu_info(&S390_lowcore.cpu_data);

780
	for_each_possible_cpu(i) {
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		lowcore_ptr[i] = (struct _lowcore *)
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			__get_free_pages(GFP_KERNEL | GFP_DMA,
					 sizeof(void*) == 8 ? 1 : 0);
		stack = __get_free_pages(GFP_KERNEL, ASYNC_ORDER);
		if (!lowcore_ptr[i] || !stack)
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			panic("smp_boot_cpus failed to allocate memory\n");

		*(lowcore_ptr[i]) = S390_lowcore;
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		lowcore_ptr[i]->async_stack = stack + ASYNC_SIZE;
		stack = __get_free_pages(GFP_KERNEL, 0);
		if (!stack)
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			panic("smp_boot_cpus failed to allocate memory\n");
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		lowcore_ptr[i]->panic_stack = stack + PAGE_SIZE;
794
#ifndef CONFIG_64BIT
795 796
		if (MACHINE_HAS_IEEE) {
			lowcore_ptr[i]->extended_save_area_addr =
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				(__u32) __get_free_pages(GFP_KERNEL, 0);
			if (!lowcore_ptr[i]->extended_save_area_addr)
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				panic("smp_boot_cpus failed to "
				      "allocate memory\n");
		}
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#endif
	}
804
#ifndef CONFIG_64BIT
805 806 807
	if (MACHINE_HAS_IEEE)
		ctl_set_bit(14, 29); /* enable extended save area */
#endif
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	set_prefix((u32)(unsigned long) lowcore_ptr[smp_processor_id()]);

810
	for_each_possible_cpu(cpu)
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		if (cpu != smp_processor_id())
			smp_create_idle(cpu);
}

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void __init smp_prepare_boot_cpu(void)
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{
	BUG_ON(smp_processor_id() != 0);

	cpu_set(0, cpu_online_map);
	S390_lowcore.percpu_offset = __per_cpu_offset[0];
	current_set[0] = current;
822
	smp_cpu_state[0] = CPU_STATE_CONFIGURED;
823
	spin_lock_init(&(&__get_cpu_var(s390_idle))->lock);
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}

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void __init smp_cpus_done(unsigned int max_cpus)
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{
}

/*
 * the frequency of the profiling timer can be changed
 * by writing a multiplier value into /proc/profile.
 *
 * usually you want to run this on all CPUs ;)
 */
int setup_profiling_timer(unsigned int multiplier)
{
838
	return 0;
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}

841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913
#ifdef CONFIG_HOTPLUG_CPU
static ssize_t cpu_configure_show(struct sys_device *dev, char *buf)
{
	ssize_t count;

	mutex_lock(&smp_cpu_state_mutex);
	count = sprintf(buf, "%d\n", smp_cpu_state[dev->id]);
	mutex_unlock(&smp_cpu_state_mutex);
	return count;
}

static ssize_t cpu_configure_store(struct sys_device *dev, const char *buf,
				   size_t count)
{
	int cpu = dev->id;
	int val, rc;
	char delim;

	if (sscanf(buf, "%d %c", &val, &delim) != 1)
		return -EINVAL;
	if (val != 0 && val != 1)
		return -EINVAL;

	mutex_lock(&smp_cpu_state_mutex);
	lock_cpu_hotplug();
	rc = -EBUSY;
	if (cpu_online(cpu))
		goto out;
	rc = 0;
	switch (val) {
	case 0:
		if (smp_cpu_state[cpu] == CPU_STATE_CONFIGURED) {
			rc = sclp_cpu_deconfigure(__cpu_logical_map[cpu]);
			if (!rc)
				smp_cpu_state[cpu] = CPU_STATE_STANDBY;
		}
		break;
	case 1:
		if (smp_cpu_state[cpu] == CPU_STATE_STANDBY) {
			rc = sclp_cpu_configure(__cpu_logical_map[cpu]);
			if (!rc)
				smp_cpu_state[cpu] = CPU_STATE_CONFIGURED;
		}
		break;
	default:
		break;
	}
out:
	unlock_cpu_hotplug();
	mutex_unlock(&smp_cpu_state_mutex);
	return rc ? rc : count;
}
static SYSDEV_ATTR(configure, 0644, cpu_configure_show, cpu_configure_store);
#endif /* CONFIG_HOTPLUG_CPU */

static ssize_t show_cpu_address(struct sys_device *dev, char *buf)
{
	return sprintf(buf, "%d\n", __cpu_logical_map[dev->id]);
}
static SYSDEV_ATTR(address, 0444, show_cpu_address, NULL);


static struct attribute *cpu_common_attrs[] = {
#ifdef CONFIG_HOTPLUG_CPU
	&attr_configure.attr,
#endif
	&attr_address.attr,
	NULL,
};

static struct attribute_group cpu_common_attr_group = {
	.attrs = cpu_common_attrs,
};
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915 916 917 918 919 920 921 922 923 924 925 926
static ssize_t show_capability(struct sys_device *dev, char *buf)
{
	unsigned int capability;
	int rc;

	rc = get_cpu_capability(&capability);
	if (rc)
		return rc;
	return sprintf(buf, "%u\n", capability);
}
static SYSDEV_ATTR(capability, 0444, show_capability, NULL);

927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953
static ssize_t show_idle_count(struct sys_device *dev, char *buf)
{
	struct s390_idle_data *idle;
	unsigned long long idle_count;

	idle = &per_cpu(s390_idle, dev->id);
	spin_lock_irq(&idle->lock);
	idle_count = idle->idle_count;
	spin_unlock_irq(&idle->lock);
	return sprintf(buf, "%llu\n", idle_count);
}
static SYSDEV_ATTR(idle_count, 0444, show_idle_count, NULL);

static ssize_t show_idle_time(struct sys_device *dev, char *buf)
{
	struct s390_idle_data *idle;
	unsigned long long new_time;

	idle = &per_cpu(s390_idle, dev->id);
	spin_lock_irq(&idle->lock);
	if (idle->in_idle) {
		new_time = get_clock();
		idle->idle_time += new_time - idle->idle_enter;
		idle->idle_enter = new_time;
	}
	new_time = idle->idle_time;
	spin_unlock_irq(&idle->lock);
954
	return sprintf(buf, "%llu\n", new_time >> 12);
955
}
956
static SYSDEV_ATTR(idle_time_us, 0444, show_idle_time, NULL);
957

958
static struct attribute *cpu_online_attrs[] = {
959 960
	&attr_capability.attr,
	&attr_idle_count.attr,
961
	&attr_idle_time_us.attr,
962 963 964
	NULL,
};

965 966
static struct attribute_group cpu_online_attr_group = {
	.attrs = cpu_online_attrs,
967 968
};

969 970 971 972 973 974
static int __cpuinit smp_cpu_notify(struct notifier_block *self,
				    unsigned long action, void *hcpu)
{
	unsigned int cpu = (unsigned int)(long)hcpu;
	struct cpu *c = &per_cpu(cpu_devices, cpu);
	struct sys_device *s = &c->sysdev;
975
	struct s390_idle_data *idle;
976 977 978

	switch (action) {
	case CPU_ONLINE:
979
	case CPU_ONLINE_FROZEN:
980 981 982 983 984 985
		idle = &per_cpu(s390_idle, cpu);
		spin_lock_irq(&idle->lock);
		idle->idle_enter = 0;
		idle->idle_time = 0;
		idle->idle_count = 0;
		spin_unlock_irq(&idle->lock);
986
		if (sysfs_create_group(&s->kobj, &cpu_online_attr_group))
987 988 989
			return NOTIFY_BAD;
		break;
	case CPU_DEAD:
990
	case CPU_DEAD_FROZEN:
991
		sysfs_remove_group(&s->kobj, &cpu_online_attr_group);
992 993 994 995 996 997
		break;
	}
	return NOTIFY_OK;
}

static struct notifier_block __cpuinitdata smp_cpu_nb = {
998
	.notifier_call = smp_cpu_notify,
999 1000
};

1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056
static int smp_add_present_cpu(int cpu)
{
	struct cpu *c = &per_cpu(cpu_devices, cpu);
	struct sys_device *s = &c->sysdev;
	int rc;

	c->hotpluggable = 1;
	rc = register_cpu(c, cpu);
	if (rc)
		goto out;
	rc = sysfs_create_group(&s->kobj, &cpu_common_attr_group);
	if (rc)
		goto out_cpu;
	if (!cpu_online(cpu))
		goto out;
	rc = sysfs_create_group(&s->kobj, &cpu_online_attr_group);
	if (!rc)
		return 0;
	sysfs_remove_group(&s->kobj, &cpu_common_attr_group);
out_cpu:
#ifdef CONFIG_HOTPLUG_CPU
	unregister_cpu(c);
#endif
out:
	return rc;
}

#ifdef CONFIG_HOTPLUG_CPU
static ssize_t rescan_store(struct sys_device *dev, const char *buf,
			    size_t count)
{
	cpumask_t newcpus;
	int cpu;
	int rc;

	mutex_lock(&smp_cpu_state_mutex);
	lock_cpu_hotplug();
	newcpus = cpu_present_map;
	rc = smp_rescan_cpus();
	if (rc)
		goto out;
	cpus_andnot(newcpus, cpu_present_map, newcpus);
	for_each_cpu_mask(cpu, newcpus) {
		rc = smp_add_present_cpu(cpu);
		if (rc)
			cpu_clear(cpu, cpu_present_map);
	}
	rc = 0;
out:
	unlock_cpu_hotplug();
	mutex_unlock(&smp_cpu_state_mutex);
	return rc ? rc : count;
}
static SYSDEV_ATTR(rescan, 0200, NULL, rescan_store);
#endif /* CONFIG_HOTPLUG_CPU */

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static int __init topology_init(void)
{
	int cpu;
1060
	int rc;
1061 1062

	register_cpu_notifier(&smp_cpu_nb);
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1064 1065 1066 1067 1068 1069 1070 1071
#ifdef CONFIG_HOTPLUG_CPU
	rc = sysfs_create_file(&cpu_sysdev_class.kset.kobj,
			       &attr_rescan.attr);
	if (rc)
		return rc;
#endif
	for_each_present_cpu(cpu) {
		rc = smp_add_present_cpu(cpu);
1072 1073
		if (rc)
			return rc;
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	}
	return 0;
}
subsys_initcall(topology_init);