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    /*
     * processor_perflib.c - ACPI Processor P-States Library ($Revision: 71 $)
     *
     *  Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
     *  Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
     *  Copyright (C) 2004       Dominik Brodowski <linux@brodo.de>
     *  Copyright (C) 2004  Anil S Keshavamurthy <anil.s.keshavamurthy@intel.com>
     *  			- Added processor hotplug support
     *
     *
     * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
     *
     *  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.
     *
     *  You should have received a copy of the GNU General Public License along
     *  with this program; if not, write to the Free Software Foundation, Inc.,
     *  59 Temple Place, Suite 330, Boston, MA 02111-1307 USA.
     *
     */
    
    #include <linux/kernel.h>
    #include <linux/module.h>
    #include <linux/init.h>
    #include <linux/cpufreq.h>
    
    
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    #include <acpi/acpi_bus.h>
    
    #include <acpi/acpi_drivers.h>
    
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    #include <acpi/processor.h>
    
    
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    #define ACPI_PROCESSOR_CLASS		"processor"
    #define ACPI_PROCESSOR_FILE_PERFORMANCE	"performance"
    #define _COMPONENT		ACPI_PROCESSOR_COMPONENT
    
    ACPI_MODULE_NAME("processor_perflib");
    
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    static DEFINE_MUTEX(performance_mutex);
    
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    /* Use cpufreq debug layer for _PPC changes. */
    #define cpufreq_printk(msg...) cpufreq_debug_printk(CPUFREQ_DEBUG_CORE, \
    						"cpufreq-core", msg)
    
    
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    /*
     * _PPC support is implemented as a CPUfreq policy notifier:
     * This means each time a CPUfreq driver registered also with
     * the ACPI core is asked to change the speed policy, the maximum
     * value is adjusted so that it is within the platform limit.
     *
     * Also, when a new platform limit value is detected, the CPUfreq
     * policy is adjusted accordingly.
     */
    
    
    /* ignore_ppc:
     * -1 -> cpufreq low level drivers not initialized -> _PSS, etc. not called yet
     *       ignore _PPC
     *  0 -> cpufreq low level drivers initialized -> consider _PPC values
     *  1 -> ignore _PPC totally -> forced by user through boot param
     */
    
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    static int ignore_ppc = -1;
    
    module_param(ignore_ppc, int, 0644);
    
    MODULE_PARM_DESC(ignore_ppc, "If the frequency of your machine gets wrongly" \
    		 "limited by BIOS, this should help");
    
    
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    #define PPC_REGISTERED   1
    #define PPC_IN_USE       2
    
    
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    static int acpi_processor_ppc_notifier(struct notifier_block *nb,
    
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    				       unsigned long event, void *data)
    
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    {
    	struct cpufreq_policy *policy = data;
    	struct acpi_processor *pr;
    	unsigned int ppc = 0;
    
    
    	if (event == CPUFREQ_START && ignore_ppc <= 0) {
    		ignore_ppc = 0;
    		return 0;
    	}
    
    
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    	if (event != CPUFREQ_INCOMPATIBLE)
    
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    	pr = per_cpu(processors, policy->cpu);
    
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    	if (!pr || !pr->performance)
    		goto out;
    
    
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    	ppc = (unsigned int)pr->performance_platform_limit;
    
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    	if (ppc >= pr->performance->state_count)
    
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    		goto out;
    
    	cpufreq_verify_within_limits(policy, 0,
    
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    				     pr->performance->states[ppc].
    				     core_frequency * 1000);
    
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          out:
    
    	mutex_unlock(&performance_mutex);
    
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    	return 0;
    }
    
    static struct notifier_block acpi_ppc_notifier_block = {
    	.notifier_call = acpi_processor_ppc_notifier,
    };
    
    
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    static int acpi_processor_get_platform_limit(struct acpi_processor *pr)
    
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    {
    
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    	acpi_status status = 0;
    
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    	if (!pr)
    
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    	/*
    	 * _PPC indicates the maximum state currently supported by the platform
    	 * (e.g. 0 = states 0..n; 1 = states 1..n; etc.
    	 */
    	status = acpi_evaluate_integer(pr->handle, "_PPC", NULL, &ppc);
    
    	if (status != AE_NOT_FOUND)
    		acpi_processor_ppc_status |= PPC_IN_USE;
    
    
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    	if (ACPI_FAILURE(status) && status != AE_NOT_FOUND) {
    
    		ACPI_EXCEPTION((AE_INFO, status, "Evaluating _PPC"));
    
    	cpufreq_printk("CPU %d: _PPC is %d - frequency %s limited\n", pr->id,
    		       (int)ppc, ppc ? "" : "not");
    
    
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    	pr->performance_platform_limit = (int)ppc;
    
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    int acpi_processor_ppc_has_changed(struct acpi_processor *pr)
    
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    {
    
    	int ret;
    
    	if (ignore_ppc)
    		return 0;
    
    	ret = acpi_processor_get_platform_limit(pr);
    
    
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    	if (ret < 0)
    		return (ret);
    	else
    		return cpufreq_update_policy(pr->id);
    }
    
    
    int acpi_processor_get_bios_limit(int cpu, unsigned int *limit)
    {
    	struct acpi_processor *pr;
    
    	pr = per_cpu(processors, cpu);
    	if (!pr || !pr->performance || !pr->performance->state_count)
    		return -ENODEV;
    	*limit = pr->performance->states[pr->performance_platform_limit].
    		core_frequency * 1000;
    	return 0;
    }
    EXPORT_SYMBOL(acpi_processor_get_bios_limit);
    
    
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    void acpi_processor_ppc_init(void)
    {
    	if (!cpufreq_register_notifier
    	    (&acpi_ppc_notifier_block, CPUFREQ_POLICY_NOTIFIER))
    
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    		acpi_processor_ppc_status |= PPC_REGISTERED;
    	else
    
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    		printk(KERN_DEBUG
    		       "Warning: Processor Platform Limit not supported.\n");
    
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    void acpi_processor_ppc_exit(void)
    {
    
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    	if (acpi_processor_ppc_status & PPC_REGISTERED)
    
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    		cpufreq_unregister_notifier(&acpi_ppc_notifier_block,
    					    CPUFREQ_POLICY_NOTIFIER);
    
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    	acpi_processor_ppc_status &= ~PPC_REGISTERED;
    }
    
    
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    static int acpi_processor_get_performance_control(struct acpi_processor *pr)
    
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    {
    
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    	int result = 0;
    	acpi_status status = 0;
    	struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
    	union acpi_object *pct = NULL;
    	union acpi_object obj = { 0 };
    
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    	status = acpi_evaluate_object(pr->handle, "_PCT", NULL, &buffer);
    
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    	if (ACPI_FAILURE(status)) {
    
    		ACPI_EXCEPTION((AE_INFO, status, "Evaluating _PCT"));
    
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    	pct = (union acpi_object *)buffer.pointer;
    
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    	if (!pct || (pct->type != ACPI_TYPE_PACKAGE)
    
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    	    || (pct->package.count != 2)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PCT data\n");
    
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    		result = -EFAULT;
    		goto end;
    	}
    
    	/*
    	 * control_register
    	 */
    
    	obj = pct->package.elements[0];
    
    	if ((obj.type != ACPI_TYPE_BUFFER)
    
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    	    || (obj.buffer.length < sizeof(struct acpi_pct_register))
    	    || (obj.buffer.pointer == NULL)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PCT data (control_register)\n");
    
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    		result = -EFAULT;
    		goto end;
    	}
    
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    	memcpy(&pr->performance->control_register, obj.buffer.pointer,
    	       sizeof(struct acpi_pct_register));
    
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    	/*
    	 * status_register
    	 */
    
    	obj = pct->package.elements[1];
    
    	if ((obj.type != ACPI_TYPE_BUFFER)
    
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    	    || (obj.buffer.length < sizeof(struct acpi_pct_register))
    	    || (obj.buffer.pointer == NULL)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PCT data (status_register)\n");
    
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    		result = -EFAULT;
    		goto end;
    	}
    
    
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    	memcpy(&pr->performance->status_register, obj.buffer.pointer,
    	       sizeof(struct acpi_pct_register));
    
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          end:
    
    	kfree(buffer.pointer);
    
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    static int acpi_processor_get_performance_states(struct acpi_processor *pr)
    
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    {
    
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    	int result = 0;
    	acpi_status status = AE_OK;
    	struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
    	struct acpi_buffer format = { sizeof("NNNNNN"), "NNNNNN" };
    	struct acpi_buffer state = { 0, NULL };
    	union acpi_object *pss = NULL;
    	int i;
    
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    	status = acpi_evaluate_object(pr->handle, "_PSS", NULL, &buffer);
    
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    	if (ACPI_FAILURE(status)) {
    
    		ACPI_EXCEPTION((AE_INFO, status, "Evaluating _PSS"));
    
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    	if (!pss || (pss->type != ACPI_TYPE_PACKAGE)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PSS data\n");
    
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    		result = -EFAULT;
    		goto end;
    	}
    
    	ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Found %d performance states\n",
    
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    			  pss->package.count));
    
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    	pr->performance->state_count = pss->package.count;
    
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    	pr->performance->states =
    	    kmalloc(sizeof(struct acpi_processor_px) * pss->package.count,
    		    GFP_KERNEL);
    
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    	if (!pr->performance->states) {
    		result = -ENOMEM;
    		goto end;
    	}
    
    	for (i = 0; i < pr->performance->state_count; i++) {
    
    		struct acpi_processor_px *px = &(pr->performance->states[i]);
    
    		state.length = sizeof(struct acpi_processor_px);
    		state.pointer = px;
    
    		ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Extracting state %d\n", i));
    
    		status = acpi_extract_package(&(pss->package.elements[i]),
    
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    					      &format, &state);
    
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    		if (ACPI_FAILURE(status)) {
    
    			ACPI_EXCEPTION((AE_INFO, status, "Invalid _PSS data"));
    
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    			result = -EFAULT;
    			kfree(pr->performance->states);
    			goto end;
    		}
    
    		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
    
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    				  "State [%d]: core_frequency[%d] power[%d] transition_latency[%d] bus_master_latency[%d] control[0x%x] status[0x%x]\n",
    				  i,
    				  (u32) px->core_frequency,
    				  (u32) px->power,
    				  (u32) px->transition_latency,
    				  (u32) px->bus_master_latency,
    				  (u32) px->control, (u32) px->status));
    
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    		/*
     		 * Check that ACPI's u64 MHz will be valid as u32 KHz in cpufreq
    		 */
    		if (!px->core_frequency ||
    		    ((u32)(px->core_frequency * 1000) !=
    		     (px->core_frequency * 1000))) {
    			printk(KERN_ERR FW_BUG PREFIX
    			       "Invalid BIOS _PSS frequency: 0x%llx MHz\n",
    			       px->core_frequency);
    
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    			result = -EFAULT;
    			kfree(pr->performance->states);
    			goto end;
    		}
    	}
    
    
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          end:
    
    	kfree(buffer.pointer);
    
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    static int acpi_processor_get_performance_info(struct acpi_processor *pr)
    
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    {
    
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    	int result = 0;
    	acpi_status status = AE_OK;
    	acpi_handle handle = NULL;
    
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    	if (!pr || !pr->performance || !pr->handle)
    
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    	status = acpi_get_handle(pr->handle, "_PCT", &handle);
    	if (ACPI_FAILURE(status)) {
    		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
    
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    				  "ACPI-based processor performance control unavailable\n"));
    
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    	}
    
    	result = acpi_processor_get_performance_control(pr);
    	if (result)
    
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    	result = acpi_processor_get_performance_states(pr);
    	if (result)
    
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    	/*
    	 * Having _PPC but missing frequencies (_PSS, _PCT) is a very good hint that
    	 * the BIOS is older than the CPU and does not know its frequencies
    	 */
     update_bios:
    
    	if (ACPI_SUCCESS(acpi_get_handle(pr->handle, "_PPC", &handle))){
    		if(boot_cpu_has(X86_FEATURE_EST))
    			printk(KERN_WARNING FW_BUG "BIOS needs update for CPU "
    			       "frequency support\n");
    	}
    
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    int acpi_processor_notify_smm(struct module *calling_module)
    {
    	acpi_status status;
    	static int is_done = 0;
    
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    	if (!(acpi_processor_ppc_status & PPC_REGISTERED))
    
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    	if (!try_module_get(calling_module))
    
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    	/* is_done is set to negative if an error occured,
    	 * and to postitive if _no_ error occured, but SMM
    	 * was already notified. This avoids double notification
    	 * which might lead to unexpected results...
    	 */
    	if (is_done > 0) {
    		module_put(calling_module);
    
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    	} else if (is_done < 0) {
    
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    		module_put(calling_module);
    
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    	}
    
    	is_done = -EIO;
    
    
    	/* Can't write pstate_control to smi_command if either value is zero */
    
    	if ((!acpi_gbl_FADT.smi_command) || (!acpi_gbl_FADT.pstate_control)) {
    
    		ACPI_DEBUG_PRINT((ACPI_DB_INFO, "No SMI port or pstate_control\n"));
    
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    		module_put(calling_module);
    
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    	ACPI_DEBUG_PRINT((ACPI_DB_INFO,
    
    			  "Writing pstate_control [0x%x] to smi_command [0x%x]\n",
    
    			  acpi_gbl_FADT.pstate_control, acpi_gbl_FADT.smi_command));
    
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    	status = acpi_os_write_port(acpi_gbl_FADT.smi_command,
    				    (u32) acpi_gbl_FADT.pstate_control, 8);
    
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    	if (ACPI_FAILURE(status)) {
    
    		ACPI_EXCEPTION((AE_INFO, status,
    
    				"Failed to write pstate_control [0x%x] to "
    
    				"smi_command [0x%x]", acpi_gbl_FADT.pstate_control,
    				acpi_gbl_FADT.smi_command));
    
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    		module_put(calling_module);
    
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    	}
    
    	/* Success. If there's no _PPC, we need to fear nothing, so
    	 * we can allow the cpufreq driver to be rmmod'ed. */
    	is_done = 1;
    
    	if (!(acpi_processor_ppc_status & PPC_IN_USE))
    		module_put(calling_module);
    
    
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    EXPORT_SYMBOL(acpi_processor_notify_smm);
    
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    static int acpi_processor_get_psd(struct acpi_processor	*pr)
    {
    	int result = 0;
    	acpi_status status = AE_OK;
    	struct acpi_buffer buffer = {ACPI_ALLOCATE_BUFFER, NULL};
    	struct acpi_buffer format = {sizeof("NNNNN"), "NNNNN"};
    	struct acpi_buffer state = {0, NULL};
    	union acpi_object  *psd = NULL;
    	struct acpi_psd_package *pdomain;
    
    	status = acpi_evaluate_object(pr->handle, "_PSD", NULL, &buffer);
    	if (ACPI_FAILURE(status)) {
    
    	if (!psd || (psd->type != ACPI_TYPE_PACKAGE)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PSD data\n");
    
    		result = -EFAULT;
    		goto end;
    	}
    
    	if (psd->package.count != 1) {
    
    		printk(KERN_ERR PREFIX "Invalid _PSD data\n");
    
    		result = -EFAULT;
    		goto end;
    	}
    
    	pdomain = &(pr->performance->domain_info);
    
    	state.length = sizeof(struct acpi_psd_package);
    	state.pointer = pdomain;
    
    	status = acpi_extract_package(&(psd->package.elements[0]),
    		&format, &state);
    	if (ACPI_FAILURE(status)) {
    
    		printk(KERN_ERR PREFIX "Invalid _PSD data\n");
    
    		result = -EFAULT;
    		goto end;
    	}
    
    	if (pdomain->num_entries != ACPI_PSD_REV0_ENTRIES) {
    
    		printk(KERN_ERR PREFIX "Unknown _PSD:num_entries\n");
    
    		result = -EFAULT;
    		goto end;
    	}
    
    	if (pdomain->revision != ACPI_PSD_REV0_REVISION) {
    
    		printk(KERN_ERR PREFIX "Unknown _PSD:revision\n");
    
    	if (pdomain->coord_type != DOMAIN_COORD_TYPE_SW_ALL &&
    	    pdomain->coord_type != DOMAIN_COORD_TYPE_SW_ANY &&
    	    pdomain->coord_type != DOMAIN_COORD_TYPE_HW_ALL) {
    		printk(KERN_ERR PREFIX "Invalid _PSD:coord_type\n");
    		result = -EFAULT;
    		goto end;
    	}
    
    	kfree(buffer.pointer);
    
    }
    
    int acpi_processor_preregister_performance(
    
    		struct acpi_processor_performance *performance)
    
    {
    	int count, count_target;
    	int retval = 0;
    	unsigned int i, j;
    
    	struct acpi_processor *pr;
    	struct acpi_psd_package *pdomain;
    	struct acpi_processor *match_pr;
    	struct acpi_psd_package *match_pdomain;
    
    
    	if (!zalloc_cpumask_var(&covered_cpus, GFP_KERNEL))
    
    	mutex_lock(&performance_mutex);
    
    	/*
    	 * Check if another driver has already registered, and abort before
    	 * changing pr->performance if it has. Check input data as well.
    	 */
    
    		pr = per_cpu(processors, i);
    
    		if (!pr) {
    			/* Look only at processors in ACPI namespace */
    			continue;
    		}
    
    		if (pr->performance) {
    			retval = -EBUSY;
    
    		if (!performance || !per_cpu_ptr(performance, i)) {
    
    	}
    
    	/* Call _PSD for all CPUs */
    	for_each_possible_cpu(i) {
    		pr = per_cpu(processors, i);
    		if (!pr)
    			continue;
    
    		pr->performance = per_cpu_ptr(performance, i);
    
    		cpumask_set_cpu(i, pr->performance->shared_cpu_map);
    
    		if (acpi_processor_get_psd(pr)) {
    			retval = -EINVAL;
    			continue;
    		}
    	}
    	if (retval)
    		goto err_ret;
    
    	/*
    	 * Now that we have _PSD data from all CPUs, lets setup P-state 
    	 * domain info.
    	 */
    
    		pr = per_cpu(processors, i);
    
    		if (cpumask_test_cpu(i, covered_cpus))
    
    			continue;
    
    		pdomain = &(pr->performance->domain_info);
    
    		cpumask_set_cpu(i, pr->performance->shared_cpu_map);
    		cpumask_set_cpu(i, covered_cpus);
    
    		if (pdomain->num_processors <= 1)
    			continue;
    
    		/* Validate the Domain info */
    		count_target = pdomain->num_processors;
    		count = 1;
    
    		if (pdomain->coord_type == DOMAIN_COORD_TYPE_SW_ALL)
    
    			pr->performance->shared_type = CPUFREQ_SHARED_TYPE_ALL;
    
    		else if (pdomain->coord_type == DOMAIN_COORD_TYPE_HW_ALL)
    			pr->performance->shared_type = CPUFREQ_SHARED_TYPE_HW;
    		else if (pdomain->coord_type == DOMAIN_COORD_TYPE_SW_ANY)
    
    			pr->performance->shared_type = CPUFREQ_SHARED_TYPE_ANY;
    
    
    			match_pr = per_cpu(processors, j);
    
    			if (!match_pr)
    				continue;
    
    			match_pdomain = &(match_pr->performance->domain_info);
    			if (match_pdomain->domain != pdomain->domain)
    				continue;
    
    			/* Here i and j are in the same domain */
    
    			if (match_pdomain->num_processors != count_target) {
    				retval = -EINVAL;
    				goto err_ret;
    			}
    
    			if (pdomain->coord_type != match_pdomain->coord_type) {
    				retval = -EINVAL;
    				goto err_ret;
    			}
    
    
    			cpumask_set_cpu(j, covered_cpus);
    			cpumask_set_cpu(j, pr->performance->shared_cpu_map);
    
    			match_pr = per_cpu(processors, j);
    
    			if (!match_pr)
    				continue;
    
    			match_pdomain = &(match_pr->performance->domain_info);
    			if (match_pdomain->domain != pdomain->domain)
    				continue;
    
    			match_pr->performance->shared_type = 
    					pr->performance->shared_type;
    
    			cpumask_copy(match_pr->performance->shared_cpu_map,
    				     pr->performance->shared_cpu_map);
    
    		pr = per_cpu(processors, i);
    
    		if (!pr || !pr->performance)
    			continue;
    
    		/* Assume no coordination on any error parsing domain info */
    		if (retval) {
    
    			cpumask_clear(pr->performance->shared_cpu_map);
    			cpumask_set_cpu(i, pr->performance->shared_cpu_map);
    
    			pr->performance->shared_type = CPUFREQ_SHARED_TYPE_ALL;
    		}
    		pr->performance = NULL; /* Will be set for real in register */
    	}
    
    
    	mutex_unlock(&performance_mutex);
    
    }
    EXPORT_SYMBOL(acpi_processor_preregister_performance);
    
    
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    int
    
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    acpi_processor_register_performance(struct acpi_processor_performance
    				    *performance, unsigned int cpu)
    
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    {
    	struct acpi_processor *pr;
    
    	if (!(acpi_processor_ppc_status & PPC_REGISTERED))
    
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    	mutex_lock(&performance_mutex);
    
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    	pr = per_cpu(processors, cpu);
    
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    	if (!pr) {
    
    		mutex_unlock(&performance_mutex);
    
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    	}
    
    	if (pr->performance) {
    
    		mutex_unlock(&performance_mutex);
    
    	WARN_ON(!performance);
    
    
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    	pr->performance = performance;
    
    	if (acpi_processor_get_performance_info(pr)) {
    		pr->performance = NULL;
    
    		mutex_unlock(&performance_mutex);
    
    	mutex_unlock(&performance_mutex);
    
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    EXPORT_SYMBOL(acpi_processor_register_performance);
    
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    void
    
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    acpi_processor_unregister_performance(struct acpi_processor_performance
    				      *performance, unsigned int cpu)
    
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    {
    	struct acpi_processor *pr;
    
    
    	mutex_lock(&performance_mutex);
    
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    	pr = per_cpu(processors, cpu);
    
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    	if (!pr) {
    
    		mutex_unlock(&performance_mutex);
    
    	if (pr->performance)
    		kfree(pr->performance->states);
    
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    	pr->performance = NULL;
    
    
    	mutex_unlock(&performance_mutex);
    
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    }
    
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    EXPORT_SYMBOL(acpi_processor_unregister_performance);