processor_idle.c 38.5 KB
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/*
 * processor_idle - idle state submodule to the ACPI processor driver
 *
 *  Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
 *  Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
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 *  Copyright (C) 2004, 2005 Dominik Brodowski <linux@brodo.de>
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 *  Copyright (C) 2004  Anil S Keshavamurthy <anil.s.keshavamurthy@intel.com>
 *  			- Added processor hotplug support
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 *  Copyright (C) 2005  Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
 *  			- Added support for C3 on SMP
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 *
 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
 *
 *  This program is free software; you can redistribute it and/or modify
 *  it under the terms of the GNU General Public License as published by
 *  the Free Software Foundation; either version 2 of the License, or (at
 *  your option) any later version.
 *
 *  This program is distributed in the hope that it will be useful, but
 *  WITHOUT ANY WARRANTY; without even the implied warranty of
 *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 *  General Public License for more details.
 *
 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
 */
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#define pr_fmt(fmt) "ACPI: " fmt
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#include <linux/module.h>
#include <linux/acpi.h>
#include <linux/dmi.h>
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#include <linux/sched.h>       /* need_resched() */
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#include <linux/tick.h>
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#include <linux/cpuidle.h>
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#include <linux/cpu.h>
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#include <acpi/processor.h>
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/*
 * Include the apic definitions for x86 to have the APIC timer related defines
 * available also for UP (on SMP it gets magically included via linux/smp.h).
 * asm/acpi.h is not an option, as it would require more include magic. Also
 * creating an empty asm-ia64/apic.h would just trade pest vs. cholera.
 */
#ifdef CONFIG_X86
#include <asm/apic.h>
#endif

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#define ACPI_PROCESSOR_CLASS            "processor"
#define _COMPONENT              ACPI_PROCESSOR_COMPONENT
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ACPI_MODULE_NAME("processor_idle");
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#define ACPI_IDLE_STATE_START	(IS_ENABLED(CONFIG_ARCH_HAS_CPU_RELAX) ? 1 : 0)

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static unsigned int max_cstate __read_mostly = ACPI_PROCESSOR_MAX_POWER;
module_param(max_cstate, uint, 0000);
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static unsigned int nocst __read_mostly;
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module_param(nocst, uint, 0000);
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static int bm_check_disable __read_mostly;
module_param(bm_check_disable, uint, 0000);
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static unsigned int latency_factor __read_mostly = 2;
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module_param(latency_factor, uint, 0644);
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static DEFINE_PER_CPU(struct cpuidle_device *, acpi_cpuidle_device);

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struct cpuidle_driver acpi_idle_driver = {
	.name =		"acpi_idle",
	.owner =	THIS_MODULE,
};

#ifdef CONFIG_ACPI_PROCESSOR_CSTATE
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static
DEFINE_PER_CPU(struct acpi_processor_cx * [CPUIDLE_STATE_MAX], acpi_cstate);
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static int disabled_by_idle_boot_param(void)
{
	return boot_option_idle_override == IDLE_POLL ||
		boot_option_idle_override == IDLE_HALT;
}

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/*
 * IBM ThinkPad R40e crashes mysteriously when going into C2 or C3.
 * For now disable this. Probably a bug somewhere else.
 *
 * To skip this limit, boot/load with a large max_cstate limit.
 */
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static int set_max_cstate(const struct dmi_system_id *id)
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{
	if (max_cstate > ACPI_PROCESSOR_MAX_POWER)
		return 0;

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	pr_notice("%s detected - limiting to C%ld max_cstate."
		  " Override with \"processor.max_cstate=%d\"\n", id->ident,
		  (long)id->driver_data, ACPI_PROCESSOR_MAX_POWER + 1);
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	max_cstate = (long)id->driver_data;
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	return 0;
}

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static const struct dmi_system_id processor_power_dmi_table[] = {
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	{ set_max_cstate, "Clevo 5600D", {
	  DMI_MATCH(DMI_BIOS_VENDOR,"Phoenix Technologies LTD"),
	  DMI_MATCH(DMI_BIOS_VERSION,"SHE845M0.86C.0013.D.0302131307")},
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	 (void *)2},
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	{ set_max_cstate, "Pavilion zv5000", {
	  DMI_MATCH(DMI_SYS_VENDOR, "Hewlett-Packard"),
	  DMI_MATCH(DMI_PRODUCT_NAME,"Pavilion zv5000 (DS502A#ABA)")},
	 (void *)1},
	{ set_max_cstate, "Asus L8400B", {
	  DMI_MATCH(DMI_SYS_VENDOR, "ASUSTeK Computer Inc."),
	  DMI_MATCH(DMI_PRODUCT_NAME,"L8400B series Notebook PC")},
	 (void *)1},
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	{},
};

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/*
 * Callers should disable interrupts before the call and enable
 * interrupts after return.
 */
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static void __cpuidle acpi_safe_halt(void)
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{
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	if (!tif_need_resched()) {
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		safe_halt();
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		local_irq_disable();
	}
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}

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#ifdef ARCH_APICTIMER_STOPS_ON_C3

/*
 * Some BIOS implementations switch to C3 in the published C2 state.
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 * This seems to be a common problem on AMD boxen, but other vendors
 * are affected too. We pick the most conservative approach: we assume
 * that the local APIC stops in both C2 and C3.
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 */
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static void lapic_timer_check_state(int state, struct acpi_processor *pr,
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				   struct acpi_processor_cx *cx)
{
	struct acpi_processor_power *pwr = &pr->power;
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	u8 type = local_apic_timer_c2_ok ? ACPI_STATE_C3 : ACPI_STATE_C2;
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	if (cpu_has(&cpu_data(pr->id), X86_FEATURE_ARAT))
		return;

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	if (boot_cpu_has_bug(X86_BUG_AMD_APIC_C1E))
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		type = ACPI_STATE_C1;

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	/*
	 * Check, if one of the previous states already marked the lapic
	 * unstable
	 */
	if (pwr->timer_broadcast_on_state < state)
		return;

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	if (cx->type >= type)
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		pr->power.timer_broadcast_on_state = state;
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}

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static void __lapic_timer_propagate_broadcast(void *arg)
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{
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	struct acpi_processor *pr = (struct acpi_processor *) arg;
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	if (pr->power.timer_broadcast_on_state < INT_MAX)
		tick_broadcast_enable();
	else
		tick_broadcast_disable();
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}

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static void lapic_timer_propagate_broadcast(struct acpi_processor *pr)
{
	smp_call_function_single(pr->id, __lapic_timer_propagate_broadcast,
				 (void *)pr, 1);
}

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/* Power(C) State timer broadcast control */
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static void lapic_timer_state_broadcast(struct acpi_processor *pr,
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				       struct acpi_processor_cx *cx,
				       int broadcast)
{
	int state = cx - pr->power.states;

	if (state >= pr->power.timer_broadcast_on_state) {
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		if (broadcast)
			tick_broadcast_enter();
		else
			tick_broadcast_exit();
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	}
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}

#else

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static void lapic_timer_check_state(int state, struct acpi_processor *pr,
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				   struct acpi_processor_cx *cstate) { }
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static void lapic_timer_propagate_broadcast(struct acpi_processor *pr) { }
static void lapic_timer_state_broadcast(struct acpi_processor *pr,
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				       struct acpi_processor_cx *cx,
				       int broadcast)
{
}
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#endif

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#if defined(CONFIG_X86)
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static void tsc_check_state(int state)
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{
	switch (boot_cpu_data.x86_vendor) {
	case X86_VENDOR_AMD:
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	case X86_VENDOR_INTEL:
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	case X86_VENDOR_CENTAUR:
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		/*
		 * AMD Fam10h TSC will tick in all
		 * C/P/S0/S1 states when this bit is set.
		 */
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		if (boot_cpu_has(X86_FEATURE_NONSTOP_TSC))
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			return;
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		/*FALL THROUGH*/
	default:
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		/* TSC could halt in idle, so notify users */
		if (state > ACPI_STATE_C1)
			mark_tsc_unstable("TSC halts in idle");
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	}
}
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#else
static void tsc_check_state(int state) { return; }
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#endif

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static int acpi_processor_get_power_info_fadt(struct acpi_processor *pr)
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{

	if (!pr->pblk)
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		return -ENODEV;
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	/* if info is obtained from pblk/fadt, type equals state */
	pr->power.states[ACPI_STATE_C2].type = ACPI_STATE_C2;
	pr->power.states[ACPI_STATE_C3].type = ACPI_STATE_C3;

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#ifndef CONFIG_HOTPLUG_CPU
	/*
	 * Check for P_LVL2_UP flag before entering C2 and above on
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	 * an SMP system.
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	 */
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	if ((num_online_cpus() > 1) &&
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	    !(acpi_gbl_FADT.flags & ACPI_FADT_C2_MP_SUPPORTED))
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		return -ENODEV;
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#endif

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	/* determine C2 and C3 address from pblk */
	pr->power.states[ACPI_STATE_C2].address = pr->pblk + 4;
	pr->power.states[ACPI_STATE_C3].address = pr->pblk + 5;

	/* determine latencies from FADT */
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	pr->power.states[ACPI_STATE_C2].latency = acpi_gbl_FADT.c2_latency;
	pr->power.states[ACPI_STATE_C3].latency = acpi_gbl_FADT.c3_latency;
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	/*
	 * FADT specified C2 latency must be less than or equal to
	 * 100 microseconds.
	 */
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	if (acpi_gbl_FADT.c2_latency > ACPI_PROCESSOR_MAX_C2_LATENCY) {
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		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
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			"C2 latency too large [%d]\n", acpi_gbl_FADT.c2_latency));
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		/* invalidate C2 */
		pr->power.states[ACPI_STATE_C2].address = 0;
	}

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	/*
	 * FADT supplied C3 latency must be less than or equal to
	 * 1000 microseconds.
	 */
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	if (acpi_gbl_FADT.c3_latency > ACPI_PROCESSOR_MAX_C3_LATENCY) {
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		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
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			"C3 latency too large [%d]\n", acpi_gbl_FADT.c3_latency));
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		/* invalidate C3 */
		pr->power.states[ACPI_STATE_C3].address = 0;
	}

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	ACPI_DEBUG_PRINT((ACPI_DB_INFO,
			  "lvl2[0x%08x] lvl3[0x%08x]\n",
			  pr->power.states[ACPI_STATE_C2].address,
			  pr->power.states[ACPI_STATE_C3].address));

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	snprintf(pr->power.states[ACPI_STATE_C2].desc,
			 ACPI_CX_DESC_LEN, "ACPI P_LVL2 IOPORT 0x%x",
			 pr->power.states[ACPI_STATE_C2].address);
	snprintf(pr->power.states[ACPI_STATE_C3].desc,
			 ACPI_CX_DESC_LEN, "ACPI P_LVL3 IOPORT 0x%x",
			 pr->power.states[ACPI_STATE_C3].address);

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	return 0;
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}

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static int acpi_processor_get_power_info_default(struct acpi_processor *pr)
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{
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	if (!pr->power.states[ACPI_STATE_C1].valid) {
		/* set the first C-State to C1 */
		/* all processors need to support C1 */
		pr->power.states[ACPI_STATE_C1].type = ACPI_STATE_C1;
		pr->power.states[ACPI_STATE_C1].valid = 1;
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		pr->power.states[ACPI_STATE_C1].entry_method = ACPI_CSTATE_HALT;
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		snprintf(pr->power.states[ACPI_STATE_C1].desc,
			 ACPI_CX_DESC_LEN, "ACPI HLT");
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	}
	/* the C0 state only exists as a filler in our array */
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	pr->power.states[ACPI_STATE_C0].valid = 1;
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	return 0;
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}

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static int acpi_processor_get_power_info_cst(struct acpi_processor *pr)
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{
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	acpi_status status;
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	u64 count;
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	int current_count;
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	int i, ret = 0;
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	struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
	union acpi_object *cst;
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	if (nocst)
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		return -ENODEV;
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	current_count = 0;
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	status = acpi_evaluate_object(pr->handle, "_CST", NULL, &buffer);
	if (ACPI_FAILURE(status)) {
		ACPI_DEBUG_PRINT((ACPI_DB_INFO, "No _CST, giving up\n"));
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		return -ENODEV;
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	}
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	cst = buffer.pointer;
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	/* There must be at least 2 elements */
	if (!cst || (cst->type != ACPI_TYPE_PACKAGE) || cst->package.count < 2) {
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		pr_err("not enough elements in _CST\n");
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		ret = -EFAULT;
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		goto end;
	}

	count = cst->package.elements[0].integer.value;

	/* Validate number of power states. */
	if (count < 1 || count != cst->package.count - 1) {
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		pr_err("count given by _CST is not valid\n");
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		ret = -EFAULT;
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		goto end;
	}

	/* Tell driver that at least _CST is supported. */
	pr->flags.has_cst = 1;

	for (i = 1; i <= count; i++) {
		union acpi_object *element;
		union acpi_object *obj;
		struct acpi_power_register *reg;
		struct acpi_processor_cx cx;

		memset(&cx, 0, sizeof(cx));

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		element = &(cst->package.elements[i]);
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		if (element->type != ACPI_TYPE_PACKAGE)
			continue;

		if (element->package.count != 4)
			continue;

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		obj = &(element->package.elements[0]);
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		if (obj->type != ACPI_TYPE_BUFFER)
			continue;

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		reg = (struct acpi_power_register *)obj->buffer.pointer;
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		if (reg->space_id != ACPI_ADR_SPACE_SYSTEM_IO &&
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		    (reg->space_id != ACPI_ADR_SPACE_FIXED_HARDWARE))
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			continue;

		/* There should be an easy way to extract an integer... */
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		obj = &(element->package.elements[1]);
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		if (obj->type != ACPI_TYPE_INTEGER)
			continue;

		cx.type = obj->integer.value;
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		/*
		 * Some buggy BIOSes won't list C1 in _CST -
		 * Let acpi_processor_get_power_info_default() handle them later
		 */
		if (i == 1 && cx.type != ACPI_STATE_C1)
			current_count++;

		cx.address = reg->address;
		cx.index = current_count + 1;

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		cx.entry_method = ACPI_CSTATE_SYSTEMIO;
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		if (reg->space_id == ACPI_ADR_SPACE_FIXED_HARDWARE) {
			if (acpi_processor_ffh_cstate_probe
					(pr->id, &cx, reg) == 0) {
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				cx.entry_method = ACPI_CSTATE_FFH;
			} else if (cx.type == ACPI_STATE_C1) {
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				/*
				 * C1 is a special case where FIXED_HARDWARE
				 * can be handled in non-MWAIT way as well.
				 * In that case, save this _CST entry info.
				 * Otherwise, ignore this info and continue.
				 */
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				cx.entry_method = ACPI_CSTATE_HALT;
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				snprintf(cx.desc, ACPI_CX_DESC_LEN, "ACPI HLT");
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			} else {
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				continue;
			}
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			if (cx.type == ACPI_STATE_C1 &&
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			    (boot_option_idle_override == IDLE_NOMWAIT)) {
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				/*
				 * In most cases the C1 space_id obtained from
				 * _CST object is FIXED_HARDWARE access mode.
				 * But when the option of idle=halt is added,
				 * the entry_method type should be changed from
				 * CSTATE_FFH to CSTATE_HALT.
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				 * When the option of idle=nomwait is added,
				 * the C1 entry_method type should be
				 * CSTATE_HALT.
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				 */
				cx.entry_method = ACPI_CSTATE_HALT;
				snprintf(cx.desc, ACPI_CX_DESC_LEN, "ACPI HLT");
			}
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		} else {
			snprintf(cx.desc, ACPI_CX_DESC_LEN, "ACPI IOPORT 0x%x",
				 cx.address);
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		}
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		if (cx.type == ACPI_STATE_C1) {
			cx.valid = 1;
		}
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		obj = &(element->package.elements[2]);
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		if (obj->type != ACPI_TYPE_INTEGER)
			continue;

		cx.latency = obj->integer.value;

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		obj = &(element->package.elements[3]);
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		if (obj->type != ACPI_TYPE_INTEGER)
			continue;

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		current_count++;
		memcpy(&(pr->power.states[current_count]), &cx, sizeof(cx));

		/*
		 * We support total ACPI_PROCESSOR_MAX_POWER - 1
		 * (From 1 through ACPI_PROCESSOR_MAX_POWER - 1)
		 */
		if (current_count >= (ACPI_PROCESSOR_MAX_POWER - 1)) {
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			pr_warn("Limiting number of power states to max (%d)\n",
				ACPI_PROCESSOR_MAX_POWER);
			pr_warn("Please increase ACPI_PROCESSOR_MAX_POWER if needed.\n");
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			break;
		}
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	}

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	ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Found %d power states\n",
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			  current_count));
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	/* Validate number of power states discovered */
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	if (current_count < 2)
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		ret = -EFAULT;
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      end:
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	kfree(buffer.pointer);
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	return ret;
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}

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static void acpi_processor_power_verify_c3(struct acpi_processor *pr,
					   struct acpi_processor_cx *cx)
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{
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	static int bm_check_flag = -1;
	static int bm_control_flag = -1;
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	if (!cx->address)
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		return;
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	/*
	 * PIIX4 Erratum #18: We don't support C3 when Type-F (fast)
	 * DMA transfers are used by any ISA device to avoid livelock.
	 * Note that we could disable Type-F DMA (as recommended by
	 * the erratum), but this is known to disrupt certain ISA
	 * devices thus we take the conservative approach.
	 */
	else if (errata.piix4.fdma) {
		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
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				  "C3 not supported on PIIX4 with Type-F DMA\n"));
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		return;
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	}

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	/* All the logic here assumes flags.bm_check is same across all CPUs */
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	if (bm_check_flag == -1) {
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		/* Determine whether bm_check is needed based on CPU  */
		acpi_processor_power_init_bm_check(&(pr->flags), pr->id);
		bm_check_flag = pr->flags.bm_check;
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		bm_control_flag = pr->flags.bm_control;
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	} else {
		pr->flags.bm_check = bm_check_flag;
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		pr->flags.bm_control = bm_control_flag;
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	}

	if (pr->flags.bm_check) {
		if (!pr->flags.bm_control) {
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			if (pr->flags.has_cst != 1) {
				/* bus mastering control is necessary */
				ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					"C3 support requires BM control\n"));
				return;
			} else {
				/* Here we enter C3 without bus mastering */
				ACPI_DEBUG_PRINT((ACPI_DB_INFO,
					"C3 support without BM control\n"));
			}
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		}
	} else {
		/*
		 * WBINVD should be set in fadt, for C3 state to be
		 * supported on when bm_check is not required.
		 */
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		if (!(acpi_gbl_FADT.flags & ACPI_FADT_WBINVD)) {
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			ACPI_DEBUG_PRINT((ACPI_DB_INFO,
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					  "Cache invalidation should work properly"
					  " for C3 to be enabled on SMP systems\n"));
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			return;
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		}
	}

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	/*
	 * Otherwise we've met all of our C3 requirements.
	 * Normalize the C3 latency to expidite policy.  Enable
	 * checking of bus mastering status (bm_check) so we can
	 * use this in our C3 policy
	 */
	cx->valid = 1;
540

541 542 543 544 545 546 547 548
	/*
	 * On older chipsets, BM_RLD needs to be set
	 * in order for Bus Master activity to wake the
	 * system from C3.  Newer chipsets handle DMA
	 * during C3 automatically and BM_RLD is a NOP.
	 * In either case, the proper way to
	 * handle BM_RLD is to set it and leave it set.
	 */
549
	acpi_write_bit_register(ACPI_BITREG_BUS_MASTER_RLD, 1);
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551
	return;
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}

static int acpi_processor_power_verify(struct acpi_processor *pr)
{
	unsigned int i;
	unsigned int working = 0;
558

559
	pr->power.timer_broadcast_on_state = INT_MAX;
560

561
	for (i = 1; i < ACPI_PROCESSOR_MAX_POWER && i <= max_cstate; i++) {
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		struct acpi_processor_cx *cx = &pr->power.states[i];

		switch (cx->type) {
		case ACPI_STATE_C1:
			cx->valid = 1;
			break;

		case ACPI_STATE_C2:
570 571
			if (!cx->address)
				break;
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			cx->valid = 1;
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			break;

		case ACPI_STATE_C3:
			acpi_processor_power_verify_c3(pr, cx);
			break;
		}
579 580
		if (!cx->valid)
			continue;
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582 583 584
		lapic_timer_check_state(i, pr, cx);
		tsc_check_state(cx->type);
		working++;
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585
	}
586

587
	lapic_timer_propagate_broadcast(pr);
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	return (working);
}

592
static int acpi_processor_get_cstate_info(struct acpi_processor *pr)
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{
	unsigned int i;
	int result;


	/* NOTE: the idle thread may not be running while calling
	 * this function */

601 602 603
	/* Zero initialize all the C-states info. */
	memset(pr->power.states, 0, sizeof(pr->power.states));

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	result = acpi_processor_get_power_info_cst(pr);
605
	if (result == -ENODEV)
606
		result = acpi_processor_get_power_info_fadt(pr);
607

608 609 610 611 612
	if (result)
		return result;

	acpi_processor_get_power_info_default(pr);

613
	pr->power.count = acpi_processor_power_verify(pr);
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	/*
	 * if one state of type C2 or C3 is available, mark this
	 * CPU as being "idle manageable"
	 */
	for (i = 1; i < ACPI_PROCESSOR_MAX_POWER; i++) {
620
		if (pr->power.states[i].valid) {
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			pr->power.count = i;
622 623
			if (pr->power.states[i].type >= ACPI_STATE_C2)
				pr->flags.power = 1;
624
		}
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625 626
	}

627
	return 0;
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}

630 631 632 633 634 635 636
/**
 * acpi_idle_bm_check - checks if bus master activity was detected
 */
static int acpi_idle_bm_check(void)
{
	u32 bm_status = 0;

637 638 639
	if (bm_check_disable)
		return 0;

640
	acpi_read_bit_register(ACPI_BITREG_BUS_MASTER_STATUS, &bm_status);
641
	if (bm_status)
642
		acpi_write_bit_register(ACPI_BITREG_BUS_MASTER_STATUS, 1);
643 644 645 646 647 648 649 650 651 652 653 654 655 656
	/*
	 * PIIX4 Erratum #18: Note that BM_STS doesn't always reflect
	 * the true state of bus mastering activity; forcing us to
	 * manually check the BMIDEA bit of each IDE channel.
	 */
	else if (errata.piix4.bmisx) {
		if ((inb_p(errata.piix4.bmisx + 0x02) & 0x01)
		    || (inb_p(errata.piix4.bmisx + 0x0A) & 0x01))
			bm_status = 1;
	}
	return bm_status;
}

/**
657
 * acpi_idle_do_entry - enter idle state using the appropriate method
658
 * @cx: cstate data
659 660
 *
 * Caller disables interrupt before call and enables interrupt after return.
661
 */
662
static void __cpuidle acpi_idle_do_entry(struct acpi_processor_cx *cx)
663
{
664
	if (cx->entry_method == ACPI_CSTATE_FFH) {
665 666
		/* Call into architectural FFH based C-state */
		acpi_processor_ffh_cstate_enter(cx);
667 668
	} else if (cx->entry_method == ACPI_CSTATE_HALT) {
		acpi_safe_halt();
669 670 671 672 673 674
	} else {
		/* IO port based C-state */
		inb(cx->address);
		/* Dummy wait op - must do something useless after P_LVL2 read
		   because chipsets cannot guarantee that STPCLK# signal
		   gets asserted in time to freeze execution properly. */
675
		inl(acpi_gbl_FADT.xpm_timer_block.address);
676 677 678
	}
}

679 680 681 682 683 684 685
/**
 * acpi_idle_play_dead - enters an ACPI state for long-term idle (i.e. off-lining)
 * @dev: the target CPU
 * @index: the index of suggested state
 */
static int acpi_idle_play_dead(struct cpuidle_device *dev, int index)
{
686
	struct acpi_processor_cx *cx = per_cpu(acpi_cstate[index], dev->cpu);
687 688 689 690 691 692

	ACPI_FLUSH_CPU_CACHE();

	while (1) {

		if (cx->entry_method == ACPI_CSTATE_HALT)
693
			safe_halt();
694 695 696 697 698 699 700 701 702 703 704 705
		else if (cx->entry_method == ACPI_CSTATE_SYSTEMIO) {
			inb(cx->address);
			/* See comment in acpi_idle_do_entry() */
			inl(acpi_gbl_FADT.xpm_timer_block.address);
		} else
			return -ENODEV;
	}

	/* Never reached */
	return 0;
}

706 707
static bool acpi_idle_fallback_to_c1(struct acpi_processor *pr)
{
708 709
	return IS_ENABLED(CONFIG_HOTPLUG_CPU) && !pr->flags.has_cst &&
		!(acpi_gbl_FADT.flags & ACPI_FADT_C2_MP_SUPPORTED);
710 711
}

712
static int c3_cpu_count;
713
static DEFINE_RAW_SPINLOCK(c3_lock);
714 715 716

/**
 * acpi_idle_enter_bm - enters C3 with proper BM handling
717 718
 * @pr: Target processor
 * @cx: Target state context
719
 * @timer_bc: Whether or not to change timer mode to broadcast
720
 */
721
static void acpi_idle_enter_bm(struct acpi_processor *pr,
722
			       struct acpi_processor_cx *cx, bool timer_bc)
723
{
724 725
	acpi_unlazy_tlb(smp_processor_id());

726 727 728 729
	/*
	 * Must be done before busmaster disable as we might need to
	 * access HPET !
	 */
730 731
	if (timer_bc)
		lapic_timer_state_broadcast(pr, cx, 1);
732

733 734 735 736 737 738 739 740 741
	/*
	 * disable bus master
	 * bm_check implies we need ARB_DIS
	 * bm_control implies whether we can do ARB_DIS
	 *
	 * That leaves a case where bm_check is set and bm_control is
	 * not set. In that case we cannot do much, we enter C3
	 * without doing anything.
	 */
742
	if (pr->flags.bm_control) {
743
		raw_spin_lock(&c3_lock);
744 745 746
		c3_cpu_count++;
		/* Disable bus master arbitration when all CPUs are in C3 */
		if (c3_cpu_count == num_online_cpus())
747
			acpi_write_bit_register(ACPI_BITREG_ARB_DISABLE, 1);
748
		raw_spin_unlock(&c3_lock);
749
	}
750

751
	acpi_idle_do_entry(cx);
752

753
	/* Re-enable bus master arbitration */
754
	if (pr->flags.bm_control) {
755
		raw_spin_lock(&c3_lock);
756
		acpi_write_bit_register(ACPI_BITREG_ARB_DISABLE, 0);
757
		c3_cpu_count--;
758
		raw_spin_unlock(&c3_lock);
759
	}
760

761 762
	if (timer_bc)
		lapic_timer_state_broadcast(pr, cx, 0);
763 764 765 766 767 768 769 770 771 772 773 774 775
}

static int acpi_idle_enter(struct cpuidle_device *dev,
			   struct cpuidle_driver *drv, int index)
{
	struct acpi_processor_cx *cx = per_cpu(acpi_cstate[index], dev->cpu);
	struct acpi_processor *pr;

	pr = __this_cpu_read(processors);
	if (unlikely(!pr))
		return -EINVAL;

	if (cx->type != ACPI_STATE_C1) {
776
		if (acpi_idle_fallback_to_c1(pr) && num_online_cpus() > 1) {
777
			index = ACPI_IDLE_STATE_START;
778 779 780
			cx = per_cpu(acpi_cstate[index], dev->cpu);
		} else if (cx->type == ACPI_STATE_C3 && pr->flags.bm_check) {
			if (cx->bm_sts_skip || !acpi_idle_bm_check()) {
781
				acpi_idle_enter_bm(pr, cx, true);
782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801
				return index;
			} else if (drv->safe_state_index >= 0) {
				index = drv->safe_state_index;
				cx = per_cpu(acpi_cstate[index], dev->cpu);
			} else {
				acpi_safe_halt();
				return -EBUSY;
			}
		}
	}

	lapic_timer_state_broadcast(pr, cx, 1);

	if (cx->type == ACPI_STATE_C3)
		ACPI_FLUSH_CPU_CACHE();

	acpi_idle_do_entry(cx);

	lapic_timer_state_broadcast(pr, cx, 0);

802
	return index;
803 804
}

805
static void acpi_idle_enter_s2idle(struct cpuidle_device *dev,
806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825
				   struct cpuidle_driver *drv, int index)
{
	struct acpi_processor_cx *cx = per_cpu(acpi_cstate[index], dev->cpu);

	if (cx->type == ACPI_STATE_C3) {
		struct acpi_processor *pr = __this_cpu_read(processors);

		if (unlikely(!pr))
			return;

		if (pr->flags.bm_check) {
			acpi_idle_enter_bm(pr, cx, false);
			return;
		} else {
			ACPI_FLUSH_CPU_CACHE();
		}
	}
	acpi_idle_do_entry(cx);
}

826 827
static int acpi_processor_setup_cpuidle_cx(struct acpi_processor *pr,
					   struct cpuidle_device *dev)
828
{
829
	int i, count = ACPI_IDLE_STATE_START;
830 831
	struct acpi_processor_cx *cx;

832 833 834
	if (max_cstate == 0)
		max_cstate = 1;

835 836 837 838 839 840
	for (i = 1; i < ACPI_PROCESSOR_MAX_POWER && i <= max_cstate; i++) {
		cx = &pr->power.states[i];

		if (!cx->valid)
			continue;

841
		per_cpu(acpi_cstate[count], dev->cpu) = cx;
842

843 844 845 846 847 848 849 850 851 852 853
		count++;
		if (count == CPUIDLE_STATE_MAX)
			break;
	}

	if (!count)
		return -EINVAL;

	return 0;
}

854
static int acpi_processor_setup_cstates(struct acpi_processor *pr)
855
{
856
	int i, count;
857 858 859 860
	struct acpi_processor_cx *cx;
	struct cpuidle_state *state;
	struct cpuidle_driver *drv = &acpi_idle_driver;

861 862 863
	if (max_cstate == 0)
		max_cstate = 1;

864 865 866 867 868 869 870
	if (IS_ENABLED(CONFIG_ARCH_HAS_CPU_RELAX)) {
		cpuidle_poll_state_init(drv);
		count = 1;
	} else {
		count = 0;
	}

871 872 873 874 875 876
	for (i = 1; i < ACPI_PROCESSOR_MAX_POWER && i <= max_cstate; i++) {
		cx = &pr->power.states[i];

		if (!cx->valid)
			continue;

877
		state = &drv->states[count];
878
		snprintf(state->name, CPUIDLE_NAME_LEN, "C%d", i);
879
		strlcpy(state->desc, cx->desc, CPUIDLE_DESC_LEN);
880
		state->exit_latency = cx->latency;
881
		state->target_residency = cx->latency * latency_factor;
882
		state->enter = acpi_idle_enter;
883 884

		state->flags = 0;
885
		if (cx->type == ACPI_STATE_C1 || cx->type == ACPI_STATE_C2) {
886
			state->enter_dead = acpi_idle_play_dead;
887
			drv->safe_state_index = count;
888
		}
889
		/*
890
		 * Halt-induced C1 is not good for ->enter_s2idle, because it
891 892 893 894 895 896
		 * re-enables interrupts on exit.  Moreover, C1 is generally not
		 * particularly interesting from the suspend-to-idle angle, so
		 * avoid C1 and the situations in which we may need to fall back
		 * to it altogether.
		 */
		if (cx->type != ACPI_STATE_C1 && !acpi_idle_fallback_to_c1(pr))
897
			state->enter_s2idle = acpi_idle_enter_s2idle;
898 899

		count++;
900 901
		if (count == CPUIDLE_STATE_MAX)
			break;
902 903
	}

904
	drv->state_count = count;
905 906 907 908 909 910 911

	if (!count)
		return -EINVAL;

	return 0;
}

912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937
static inline void acpi_processor_cstate_first_run_checks(void)
{
	acpi_status status;
	static int first_run;

	if (first_run)
		return;
	dmi_check_system(processor_power_dmi_table);
	max_cstate = acpi_processor_cstate_check(max_cstate);
	if (max_cstate < ACPI_C_STATES_MAX)
		pr_notice("ACPI: processor limited to max C-state %d\n",
			  max_cstate);
	first_run++;

	if (acpi_gbl_FADT.cst_control && !nocst) {
		status = acpi_os_write_port(acpi_gbl_FADT.smi_command,
					    acpi_gbl_FADT.cst_control, 8);
		if (ACPI_FAILURE(status))
			ACPI_EXCEPTION((AE_INFO, status,
					"Notifying BIOS of _CST ability failed"));
	}
}
#else

static inline int disabled_by_idle_boot_param(void) { return 0; }
static inline void acpi_processor_cstate_first_run_checks(void) { }
938
static int acpi_processor_get_cstate_info(struct acpi_processor *pr)
939 940 941 942 943 944 945 946 947 948
{
	return -ENODEV;
}

static int acpi_processor_setup_cpuidle_cx(struct acpi_processor *pr,
					   struct cpuidle_device *dev)
{
	return -EINVAL;
}

949
static int acpi_processor_setup_cstates(struct acpi_processor *pr)
950 951 952 953 954 955
{
	return -EINVAL;
}

#endif /* CONFIG_ACPI_PROCESSOR_CSTATE */

956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 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 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313
struct acpi_lpi_states_array {
	unsigned int size;
	unsigned int composite_states_size;
	struct acpi_lpi_state *entries;
	struct acpi_lpi_state *composite_states[ACPI_PROCESSOR_MAX_POWER];
};

static int obj_get_integer(union acpi_object *obj, u32 *value)
{
	if (obj->type != ACPI_TYPE_INTEGER)
		return -EINVAL;

	*value = obj->integer.value;
	return 0;
}

static int acpi_processor_evaluate_lpi(acpi_handle handle,
				       struct acpi_lpi_states_array *info)
{
	acpi_status status;
	int ret = 0;
	int pkg_count, state_idx = 1, loop;
	struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
	union acpi_object *lpi_data;
	struct acpi_lpi_state *lpi_state;

	status = acpi_evaluate_object(handle, "_LPI", NULL, &buffer);
	if (ACPI_FAILURE(status)) {
		ACPI_DEBUG_PRINT((ACPI_DB_INFO, "No _LPI, giving up\n"));
		return -ENODEV;
	}

	lpi_data = buffer.pointer;

	/* There must be at least 4 elements = 3 elements + 1 package */
	if (!lpi_data || lpi_data->type != ACPI_TYPE_PACKAGE ||
	    lpi_data->package.count < 4) {
		pr_debug("not enough elements in _LPI\n");
		ret = -ENODATA;
		goto end;
	}

	pkg_count = lpi_data->package.elements[2].integer.value;

	/* Validate number of power states. */
	if (pkg_count < 1 || pkg_count != lpi_data->package.count - 3) {
		pr_debug("count given by _LPI is not valid\n");
		ret = -ENODATA;
		goto end;
	}

	lpi_state = kcalloc(pkg_count, sizeof(*lpi_state), GFP_KERNEL);
	if (!lpi_state) {
		ret = -ENOMEM;
		goto end;
	}

	info->size = pkg_count;
	info->entries = lpi_state;

	/* LPI States start at index 3 */
	for (loop = 3; state_idx <= pkg_count; loop++, state_idx++, lpi_state++) {
		union acpi_object *element, *pkg_elem, *obj;

		element = &lpi_data->package.elements[loop];
		if (element->type != ACPI_TYPE_PACKAGE || element->package.count < 7)
			continue;

		pkg_elem = element->package.elements;

		obj = pkg_elem + 6;
		if (obj->type == ACPI_TYPE_BUFFER) {
			struct acpi_power_register *reg;

			reg = (struct acpi_power_register *)obj->buffer.pointer;
			if (reg->space_id != ACPI_ADR_SPACE_SYSTEM_IO &&
			    reg->space_id != ACPI_ADR_SPACE_FIXED_HARDWARE)
				continue;

			lpi_state->address = reg->address;
			lpi_state->entry_method =
				reg->space_id == ACPI_ADR_SPACE_FIXED_HARDWARE ?
				ACPI_CSTATE_FFH : ACPI_CSTATE_SYSTEMIO;
		} else if (obj->type == ACPI_TYPE_INTEGER) {
			lpi_state->entry_method = ACPI_CSTATE_INTEGER;
			lpi_state->address = obj->integer.value;
		} else {
			continue;
		}

		/* elements[7,8] skipped for now i.e. Residency/Usage counter*/

		obj = pkg_elem + 9;
		if (obj->type == ACPI_TYPE_STRING)
			strlcpy(lpi_state->desc, obj->string.pointer,
				ACPI_CX_DESC_LEN);

		lpi_state->index = state_idx;
		if (obj_get_integer(pkg_elem + 0, &lpi_state->min_residency)) {
			pr_debug("No min. residency found, assuming 10 us\n");
			lpi_state->min_residency = 10;
		}

		if (obj_get_integer(pkg_elem + 1, &lpi_state->wake_latency)) {
			pr_debug("No wakeup residency found, assuming 10 us\n");
			lpi_state->wake_latency = 10;
		}

		if (obj_get_integer(pkg_elem + 2, &lpi_state->flags))
			lpi_state->flags = 0;

		if (obj_get_integer(pkg_elem + 3, &lpi_state->arch_flags))
			lpi_state->arch_flags = 0;

		if (obj_get_integer(pkg_elem + 4, &lpi_state->res_cnt_freq))
			lpi_state->res_cnt_freq = 1;

		if (obj_get_integer(pkg_elem + 5, &lpi_state->enable_parent_state))
			lpi_state->enable_parent_state = 0;
	}

	acpi_handle_debug(handle, "Found %d power states\n", state_idx);
end:
	kfree(buffer.pointer);
	return ret;
}

/*
 * flat_state_cnt - the number of composite LPI states after the process of flattening
 */
static int flat_state_cnt;

/**
 * combine_lpi_states - combine local and parent LPI states to form a composite LPI state
 *
 * @local: local LPI state
 * @parent: parent LPI state
 * @result: composite LPI state
 */
static bool combine_lpi_states(struct acpi_lpi_state *local,
			       struct acpi_lpi_state *parent,
			       struct acpi_lpi_state *result)
{
	if (parent->entry_method == ACPI_CSTATE_INTEGER) {
		if (!parent->address) /* 0 means autopromotable */
			return false;
		result->address = local->address + parent->address;
	} else {
		result->address = parent->address;
	}

	result->min_residency = max(local->min_residency, parent->min_residency);
	result->wake_latency = local->wake_latency + parent->wake_latency;
	result->enable_parent_state = parent->enable_parent_state;
	result->entry_method = local->entry_method;

	result->flags = parent->flags;
	result->arch_flags = parent->arch_flags;
	result->index = parent->index;

	strlcpy(result->desc, local->desc, ACPI_CX_DESC_LEN);
	strlcat(result->desc, "+", ACPI_CX_DESC_LEN);
	strlcat(result->desc, parent->desc, ACPI_CX_DESC_LEN);
	return true;
}

#define ACPI_LPI_STATE_FLAGS_ENABLED			BIT(0)

static void stash_composite_state(struct acpi_lpi_states_array *curr_level,
				  struct acpi_lpi_state *t)
{
	curr_level->composite_states[curr_level->composite_states_size++] = t;
}

static int flatten_lpi_states(struct acpi_processor *pr,
			      struct acpi_lpi_states_array *curr_level,
			      struct acpi_lpi_states_array *prev_level)
{
	int i, j, state_count = curr_level->size;
	struct acpi_lpi_state *p, *t = curr_level->entries;

	curr_level->composite_states_size = 0;
	for (j = 0; j < state_count; j++, t++) {
		struct acpi_lpi_state *flpi;

		if (!(t->flags & ACPI_LPI_STATE_FLAGS_ENABLED))
			continue;

		if (flat_state_cnt >= ACPI_PROCESSOR_MAX_POWER) {
			pr_warn("Limiting number of LPI states to max (%d)\n",
				ACPI_PROCESSOR_MAX_POWER);
			pr_warn("Please increase ACPI_PROCESSOR_MAX_POWER if needed.\n");
			break;
		}

		flpi = &pr->power.lpi_states[flat_state_cnt];

		if (!prev_level) { /* leaf/processor node */
			memcpy(flpi, t, sizeof(*t));
			stash_composite_state(curr_level, flpi);
			flat_state_cnt++;
			continue;
		}

		for (i = 0; i < prev_level->composite_states_size; i++) {
			p = prev_level->composite_states[i];
			if (t->index <= p->enable_parent_state &&
			    combine_lpi_states(p, t, flpi)) {
				stash_composite_state(curr_level, flpi);
				flat_state_cnt++;
				flpi++;
			}
		}
	}

	kfree(curr_level->entries);
	return 0;
}

static int acpi_processor_get_lpi_info(struct acpi_processor *pr)
{
	int ret, i;
	acpi_status status;
	acpi_handle handle = pr->handle, pr_ahandle;
	struct acpi_device *d = NULL;
	struct acpi_lpi_states_array info[2], *tmp, *prev, *curr;

	if (!osc_pc_lpi_support_confirmed)
		return -EOPNOTSUPP;

	if (!acpi_has_method(handle, "_LPI"))
		return -EINVAL;

	flat_state_cnt = 0;
	prev = &info[0];
	curr = &info[1];
	handle = pr->handle;
	ret = acpi_processor_evaluate_lpi(handle, prev);
	if (ret)
		return ret;
	flatten_lpi_states(pr, prev, NULL);

	status = acpi_get_parent(handle, &pr_ahandle);
	while (ACPI_SUCCESS(status)) {
		acpi_bus_get_device(pr_ahandle, &d);
		handle = pr_ahandle;

		if (strcmp(acpi_device_hid(d), ACPI_PROCESSOR_CONTAINER_HID))
			break;

		/* can be optional ? */
		if (!acpi_has_method(handle, "_LPI"))
			break;

		ret = acpi_processor_evaluate_lpi(handle, curr);
		if (ret)
			break;

		/* flatten all the LPI states in this level of hierarchy */
		flatten_lpi_states(pr, curr, prev);

		tmp = prev, prev = curr, curr = tmp;

		status = acpi_get_parent(handle, &pr_ahandle);
	}

	pr->power.count = flat_state_cnt;
	/* reset the index after flattening */
	for (i = 0; i < pr->power.count; i++)
		pr->power.lpi_states[i].index = i;

	/* Tell driver that _LPI is supported. */
	pr->flags.has_lpi = 1;
	pr->flags.power = 1;

	return 0;
}

int __weak acpi_processor_ffh_lpi_probe(unsigned int cpu)
{
	return -ENODEV;
}

int __weak acpi_processor_ffh_lpi_enter(struct acpi_lpi_state *lpi)
{
	return -ENODEV;
}

/**
 * acpi_idle_lpi_enter - enters an ACPI any LPI state
 * @dev: the target CPU
 * @drv: cpuidle driver containing cpuidle state info
 * @index: index of target state
 *
 * Return: 0 for success or negative value for error
 */
static int acpi_idle_lpi_enter(struct cpuidle_device *dev,
			       struct cpuidle_driver *drv, int index)
{
	struct acpi_processor *pr;
	struct acpi_lpi_state *lpi;

	pr = __this_cpu_read(processors);

	if (unlikely(!pr))
		return -EINVAL;

	lpi = &pr->power.lpi_states[index];
	if (lpi->entry_method == ACPI_CSTATE_FFH)
		return acpi_processor_ffh_lpi_enter(lpi);

	return -EINVAL;
}

static int acpi_processor_setup_lpi_states(struct acpi_processor *pr)
{
	int i;
	struct acpi_lpi_state *lpi;
	struct cpuidle_state *state;
	struct cpuidle_driver *drv = &acpi_idle_driver;

	if (!pr->flags.has_lpi)
		return -EOPNOTSUPP;

	for (i = 0; i < pr->power.count && i < CPUIDLE_STATE_MAX; i++) {
		lpi = &pr->power.lpi_states[i];

		state = &drv->states[i];
		snprintf(state->name, CPUIDLE_NAME_LEN, "LPI-%d", i);
		strlcpy(state->desc, lpi->desc, CPUIDLE_DESC_LEN);
		state->exit_latency = lpi->wake_latency;
		state->target_residency = lpi->min_residency;
		if (lpi->arch_flags)
			state->flags |= CPUIDLE_FLAG_TIMER_STOP;
		state->enter = acpi_idle_lpi_enter;
		drv->safe_state_index = i;
	}

	drv->state_count = i;

	return 0;
}

/**
 * acpi_processor_setup_cpuidle_states- prepares and configures cpuidle
 * global state data i.e. idle routines
 *
 * @pr: the ACPI processor
 */
static int acpi_processor_setup_cpuidle_states(struct acpi_processor *pr)
{
	int i;
	struct cpuidle_driver *drv = &acpi_idle_driver;

	if (!pr->flags.power_setup_done || !pr->flags.power)
		return -EINVAL;

	drv->safe_state_index = -1;
1314
	for (i = ACPI_IDLE_STATE_START; i < CPUIDLE_STATE_MAX; i++) {
1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
		drv->states[i].name[0] = '\0';
		drv->states[i].desc[0] = '\0';
	}

	if (pr->flags.has_lpi)
		return acpi_processor_setup_lpi_states(pr);

	return acpi_processor_setup_cstates(pr);
}

/**
 * acpi_processor_setup_cpuidle_dev - prepares and configures CPUIDLE
 * device i.e. per-cpu data
 *
 * @pr: the ACPI processor
 * @dev : the cpuidle device
 */
static int acpi_processor_setup_cpuidle_dev(struct acpi_processor *pr,
					    struct cpuidle_device *dev)
{
	if (!pr->flags.power_setup_done || !pr->flags.power || !dev)
		return -EINVAL;

	dev->cpu = pr->id;
	if (pr->flags.has_lpi)
		return acpi_processor_ffh_lpi_probe(pr->id);

	return acpi_processor_setup_cpuidle_cx(pr, dev);
}

static int acpi_processor_get_power_info(struct acpi_processor *pr)
{
	int ret;

	ret = acpi_processor_get_lpi_info(pr);
	if (ret)
		ret = acpi_processor_get_cstate_info(pr);

	return ret;
}

1356
int acpi_processor_hotplug(struct acpi_processor *pr)
1357
{
1358
	int ret = 0;
1359
	struct cpuidle_device *dev;
1360

1361
	if (disabled_by_idle_boot_param())
1362 1363
		return 0;

1364 1365 1366
	if (!pr->flags.power_setup_done)
		return -ENODEV;

1367
	dev = per_cpu(acpi_cpuidle_device, pr->id);
1368
	cpuidle_pause_and_lock();
1369
	cpuidle_disable_device(dev);
1370 1371 1372
	ret = acpi_processor_get_power_info(pr);
	if (!ret && pr->flags.power) {
		acpi_processor_setup_cpuidle_dev(pr, dev);
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		ret = cpuidle_enable_device(dev);
1374
	}
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	cpuidle_resume_and_unlock();

	return ret;
}

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int acpi_processor_power_state_has_changed(struct acpi_processor *pr)
1381 1382 1383
{
	int cpu;
	struct acpi_processor *_pr;
1384
	struct cpuidle_device *dev;
1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397

	if (disabled_by_idle_boot_param())
		return 0;

	if (!pr->flags.power_setup_done)
		return -ENODEV;

	/*
	 * FIXME:  Design the ACPI notification to make it once per
	 * system instead of once per-cpu.  This condition is a hack
	 * to make the code that updates C-States be called once.
	 */

1398
	if (pr->id == 0 && cpuidle_get_driver() == &acpi_idle_driver) {
1399 1400 1401

		/* Protect against cpu-hotplug */
		get_online_cpus();
1402
		cpuidle_pause_and_lock();
1403 1404 1405 1406 1407 1408

		/* Disable all cpuidle devices */
		for_each_online_cpu(cpu) {
			_pr = per_cpu(processors, cpu);
			if (!_pr || !_pr->flags.power_setup_done)
				continue;
1409 1410
			dev = per_cpu(acpi_cpuidle_device, cpu);
			cpuidle_disable_device(dev);
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		}

		/* Populate Updated C-state information */
1414
		acpi_processor_get_power_info(pr);
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		acpi_processor_setup_cpuidle_states(pr);

		/* Enable all cpuidle devices */
		for_each_online_cpu(cpu) {
			_pr = per_cpu(processors, cpu);
			if (!_pr || !_pr->flags.power_setup_done)
				continue;
			acpi_processor_get_power_info(_pr);
			if (_pr->flags.power) {
1424
				dev = per_cpu(acpi_cpuidle_device, cpu);
1425
				acpi_processor_setup_cpuidle_dev(_pr, dev);
1426
				cpuidle_enable_device(dev);
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			}
		}
		cpuidle_resume_and_unlock();
1430
		put_online_cpus();
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	}

	return 0;
}

static int acpi_processor_registered;

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int acpi_processor_power_init(struct acpi_processor *pr)
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{
1440
	int retval;
1441
	struct cpuidle_device *dev;
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1443
	if (disabled_by_idle_boot_param())
1444
		return 0;
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1446
	acpi_processor_cstate_first_run_checks();
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1448 1449
	if (!acpi_processor_get_power_info(pr))
		pr->flags.power_setup_done = 1;
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	/*
	 * Install the idle handler if processor power management is supported.
	 * Note that we use previously set idle handler will be used on
	 * platforms that only support C1.
	 */
1456
	if (pr->flags.power) {
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		/* Register acpi_idle_driver if not already registered */
		if (!acpi_processor_registered) {
			acpi_processor_setup_cpuidle_states(pr);
			retval = cpuidle_register_driver(&acpi_idle_driver);
			if (retval)
				return retval;
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			pr_debug("%s registered with cpuidle\n",
				 acpi_idle_driver.name);
1465
		}
1466 1467 1468 1469 1470 1471

		dev = kzalloc(sizeof(*dev), GFP_KERNEL);
		if (!dev)
			return -ENOMEM;
		per_cpu(acpi_cpuidle_device, pr->id) = dev;

1472
		acpi_processor_setup_cpuidle_dev(pr, dev);
1473

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		/* Register per-cpu cpuidle_device. Cpuidle driver
		 * must already be registered before registering device
		 */
1477
		retval = cpuidle_register_device(dev);
1478 1479 1480 1481 1482 1483
		if (retval) {
			if (acpi_processor_registered == 0)
				cpuidle_unregister_driver(&acpi_idle_driver);
			return retval;
		}
		acpi_processor_registered++;
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	}
1485
	return 0;
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}

1488
int acpi_processor_power_exit(struct acpi_processor *pr)
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{
1490 1491
	struct cpuidle_device *dev = per_cpu(acpi_cpuidle_device, pr->id);

1492
	if (disabled_by_idle_boot_param())
1493 1494
		return 0;

1495
	if (pr->flags.power) {
1496
		cpuidle_unregister_device(dev);
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		acpi_processor_registered--;
		if (acpi_processor_registered == 0)
			cpuidle_unregister_driver(&acpi_idle_driver);
	}
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1502
	pr->flags.power_setup_done = 0;
1503
	return 0;
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}