intel_pstate.c 29.1 KB
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/*
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 * intel_pstate.c: Native P state management for Intel processors
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 *
 * (C) Copyright 2012 Intel Corporation
 * Author: Dirk Brandewie <dirk.j.brandewie@intel.com>
 *
 * 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; version 2
 * of the License.
 */

#include <linux/kernel.h>
#include <linux/kernel_stat.h>
#include <linux/module.h>
#include <linux/ktime.h>
#include <linux/hrtimer.h>
#include <linux/tick.h>
#include <linux/slab.h>
#include <linux/sched.h>
#include <linux/list.h>
#include <linux/cpu.h>
#include <linux/cpufreq.h>
#include <linux/sysfs.h>
#include <linux/types.h>
#include <linux/fs.h>
#include <linux/debugfs.h>
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#include <linux/acpi.h>
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#include <linux/vmalloc.h>
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#include <trace/events/power.h>

#include <asm/div64.h>
#include <asm/msr.h>
#include <asm/cpu_device_id.h>
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#include <asm/cpufeature.h>
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#define BYT_RATIOS		0x66a
#define BYT_VIDS		0x66b
#define BYT_TURBO_RATIOS	0x66c
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#define BYT_TURBO_VIDS		0x66d
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#define FRAC_BITS 8
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#define int_tofp(X) ((int64_t)(X) << FRAC_BITS)
#define fp_toint(X) ((X) >> FRAC_BITS)
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static inline int32_t mul_fp(int32_t x, int32_t y)
{
	return ((int64_t)x * (int64_t)y) >> FRAC_BITS;
}

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static inline int32_t div_fp(s64 x, s64 y)
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{
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	return div64_s64((int64_t)x << FRAC_BITS, y);
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}

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static inline int ceiling_fp(int32_t x)
{
	int mask, ret;

	ret = fp_toint(x);
	mask = (1 << FRAC_BITS) - 1;
	if (x & mask)
		ret += 1;
	return ret;
}

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struct sample {
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	int32_t core_pct_busy;
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	u64 aperf;
	u64 mperf;
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	u64 tsc;
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	int freq;
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	ktime_t time;
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};

struct pstate_data {
	int	current_pstate;
	int	min_pstate;
	int	max_pstate;
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	int	scaling;
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	int	turbo_pstate;
};

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struct vid_data {
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	int min;
	int max;
	int turbo;
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	int32_t ratio;
};

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struct _pid {
	int setpoint;
	int32_t integral;
	int32_t p_gain;
	int32_t i_gain;
	int32_t d_gain;
	int deadband;
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	int32_t last_err;
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};

struct cpudata {
	int cpu;

	struct timer_list timer;

	struct pstate_data pstate;
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	struct vid_data vid;
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	struct _pid pid;

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	ktime_t last_sample_time;
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	u64	prev_aperf;
	u64	prev_mperf;
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	u64	prev_tsc;
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	struct sample sample;
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};

static struct cpudata **all_cpu_data;
struct pstate_adjust_policy {
	int sample_rate_ms;
	int deadband;
	int setpoint;
	int p_gain_pct;
	int d_gain_pct;
	int i_gain_pct;
};

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struct pstate_funcs {
	int (*get_max)(void);
	int (*get_min)(void);
	int (*get_turbo)(void);
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	int (*get_scaling)(void);
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	void (*set)(struct cpudata*, int pstate);
	void (*get_vid)(struct cpudata *);
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};

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struct cpu_defaults {
	struct pstate_adjust_policy pid_policy;
	struct pstate_funcs funcs;
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};

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static struct pstate_adjust_policy pid_params;
static struct pstate_funcs pstate_funcs;
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static int hwp_active;
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struct perf_limits {
	int no_turbo;
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	int turbo_disabled;
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	int max_perf_pct;
	int min_perf_pct;
	int32_t max_perf;
	int32_t min_perf;
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	int max_policy_pct;
	int max_sysfs_pct;
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	int min_policy_pct;
	int min_sysfs_pct;
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};

static struct perf_limits limits = {
	.no_turbo = 0,
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	.turbo_disabled = 0,
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	.max_perf_pct = 100,
	.max_perf = int_tofp(1),
	.min_perf_pct = 0,
	.min_perf = 0,
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	.max_policy_pct = 100,
	.max_sysfs_pct = 100,
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	.min_policy_pct = 0,
	.min_sysfs_pct = 0,
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};

static inline void pid_reset(struct _pid *pid, int setpoint, int busy,
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			     int deadband, int integral) {
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	pid->setpoint = setpoint;
	pid->deadband  = deadband;
	pid->integral  = int_tofp(integral);
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	pid->last_err  = int_tofp(setpoint) - int_tofp(busy);
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}

static inline void pid_p_gain_set(struct _pid *pid, int percent)
{
	pid->p_gain = div_fp(int_tofp(percent), int_tofp(100));
}

static inline void pid_i_gain_set(struct _pid *pid, int percent)
{
	pid->i_gain = div_fp(int_tofp(percent), int_tofp(100));
}

static inline void pid_d_gain_set(struct _pid *pid, int percent)
{
	pid->d_gain = div_fp(int_tofp(percent), int_tofp(100));
}

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static signed int pid_calc(struct _pid *pid, int32_t busy)
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{
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	signed int result;
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	int32_t pterm, dterm, fp_error;
	int32_t integral_limit;

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	fp_error = int_tofp(pid->setpoint) - busy;
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	if (abs(fp_error) <= int_tofp(pid->deadband))
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		return 0;

	pterm = mul_fp(pid->p_gain, fp_error);

	pid->integral += fp_error;

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	/*
	 * We limit the integral here so that it will never
	 * get higher than 30.  This prevents it from becoming
	 * too large an input over long periods of time and allows
	 * it to get factored out sooner.
	 *
	 * The value of 30 was chosen through experimentation.
	 */
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	integral_limit = int_tofp(30);
	if (pid->integral > integral_limit)
		pid->integral = integral_limit;
	if (pid->integral < -integral_limit)
		pid->integral = -integral_limit;

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	dterm = mul_fp(pid->d_gain, fp_error - pid->last_err);
	pid->last_err = fp_error;
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	result = pterm + mul_fp(pid->integral, pid->i_gain) + dterm;
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	result = result + (1 << (FRAC_BITS-1));
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	return (signed int)fp_toint(result);
}

static inline void intel_pstate_busy_pid_reset(struct cpudata *cpu)
{
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	pid_p_gain_set(&cpu->pid, pid_params.p_gain_pct);
	pid_d_gain_set(&cpu->pid, pid_params.d_gain_pct);
	pid_i_gain_set(&cpu->pid, pid_params.i_gain_pct);
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	pid_reset(&cpu->pid, pid_params.setpoint, 100, pid_params.deadband, 0);
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}

static inline void intel_pstate_reset_all_pid(void)
{
	unsigned int cpu;
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	for_each_online_cpu(cpu) {
		if (all_cpu_data[cpu])
			intel_pstate_busy_pid_reset(all_cpu_data[cpu]);
	}
}

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static inline void update_turbo_state(void)
{
	u64 misc_en;
	struct cpudata *cpu;

	cpu = all_cpu_data[0];
	rdmsrl(MSR_IA32_MISC_ENABLE, misc_en);
	limits.turbo_disabled =
		(misc_en & MSR_IA32_MISC_ENABLE_TURBO_DISABLE ||
		 cpu->pstate.max_pstate == cpu->pstate.turbo_pstate);
}

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#define PCT_TO_HWP(x) (x * 255 / 100)
static void intel_pstate_hwp_set(void)
{
	int min, max, cpu;
	u64 value, freq;

	get_online_cpus();

	for_each_online_cpu(cpu) {
		rdmsrl_on_cpu(cpu, MSR_HWP_REQUEST, &value);
		min = PCT_TO_HWP(limits.min_perf_pct);
		value &= ~HWP_MIN_PERF(~0L);
		value |= HWP_MIN_PERF(min);

		max = PCT_TO_HWP(limits.max_perf_pct);
		if (limits.no_turbo) {
			rdmsrl( MSR_HWP_CAPABILITIES, freq);
			max = HWP_GUARANTEED_PERF(freq);
		}

		value &= ~HWP_MAX_PERF(~0L);
		value |= HWP_MAX_PERF(max);
		wrmsrl_on_cpu(cpu, MSR_HWP_REQUEST, value);
	}

	put_online_cpus();
}

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/************************** debugfs begin ************************/
static int pid_param_set(void *data, u64 val)
{
	*(u32 *)data = val;
	intel_pstate_reset_all_pid();
	return 0;
}
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static int pid_param_get(void *data, u64 *val)
{
	*val = *(u32 *)data;
	return 0;
}
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DEFINE_SIMPLE_ATTRIBUTE(fops_pid_param, pid_param_get, pid_param_set, "%llu\n");
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struct pid_param {
	char *name;
	void *value;
};

static struct pid_param pid_files[] = {
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	{"sample_rate_ms", &pid_params.sample_rate_ms},
	{"d_gain_pct", &pid_params.d_gain_pct},
	{"i_gain_pct", &pid_params.i_gain_pct},
	{"deadband", &pid_params.deadband},
	{"setpoint", &pid_params.setpoint},
	{"p_gain_pct", &pid_params.p_gain_pct},
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	{NULL, NULL}
};

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static void __init intel_pstate_debug_expose_params(void)
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{
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	struct dentry *debugfs_parent;
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	int i = 0;

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	if (hwp_active)
		return;
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	debugfs_parent = debugfs_create_dir("pstate_snb", NULL);
	if (IS_ERR_OR_NULL(debugfs_parent))
		return;
	while (pid_files[i].name) {
		debugfs_create_file(pid_files[i].name, 0660,
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				    debugfs_parent, pid_files[i].value,
				    &fops_pid_param);
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		i++;
	}
}

/************************** debugfs end ************************/

/************************** sysfs begin ************************/
#define show_one(file_name, object)					\
	static ssize_t show_##file_name					\
	(struct kobject *kobj, struct attribute *attr, char *buf)	\
	{								\
		return sprintf(buf, "%u\n", limits.object);		\
	}

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static ssize_t show_turbo_pct(struct kobject *kobj,
				struct attribute *attr, char *buf)
{
	struct cpudata *cpu;
	int total, no_turbo, turbo_pct;
	uint32_t turbo_fp;

	cpu = all_cpu_data[0];

	total = cpu->pstate.turbo_pstate - cpu->pstate.min_pstate + 1;
	no_turbo = cpu->pstate.max_pstate - cpu->pstate.min_pstate + 1;
	turbo_fp = div_fp(int_tofp(no_turbo), int_tofp(total));
	turbo_pct = 100 - fp_toint(mul_fp(turbo_fp, int_tofp(100)));
	return sprintf(buf, "%u\n", turbo_pct);
}

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static ssize_t show_num_pstates(struct kobject *kobj,
				struct attribute *attr, char *buf)
{
	struct cpudata *cpu;
	int total;

	cpu = all_cpu_data[0];
	total = cpu->pstate.turbo_pstate - cpu->pstate.min_pstate + 1;
	return sprintf(buf, "%u\n", total);
}

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static ssize_t show_no_turbo(struct kobject *kobj,
			     struct attribute *attr, char *buf)
{
	ssize_t ret;

	update_turbo_state();
	if (limits.turbo_disabled)
		ret = sprintf(buf, "%u\n", limits.turbo_disabled);
	else
		ret = sprintf(buf, "%u\n", limits.no_turbo);

	return ret;
}

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static ssize_t store_no_turbo(struct kobject *a, struct attribute *b,
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			      const char *buf, size_t count)
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{
	unsigned int input;
	int ret;
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	ret = sscanf(buf, "%u", &input);
	if (ret != 1)
		return -EINVAL;
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	update_turbo_state();
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	if (limits.turbo_disabled) {
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		pr_warn("intel_pstate: Turbo disabled by BIOS or unavailable on processor\n");
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		return -EPERM;
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	}
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	limits.no_turbo = clamp_t(int, input, 0, 1);

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	if (hwp_active)
		intel_pstate_hwp_set();

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	return count;
}

static ssize_t store_max_perf_pct(struct kobject *a, struct attribute *b,
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				  const char *buf, size_t count)
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{
	unsigned int input;
	int ret;
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	ret = sscanf(buf, "%u", &input);
	if (ret != 1)
		return -EINVAL;

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	limits.max_sysfs_pct = clamp_t(int, input, 0 , 100);
	limits.max_perf_pct = min(limits.max_policy_pct, limits.max_sysfs_pct);
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	limits.max_perf = div_fp(int_tofp(limits.max_perf_pct), int_tofp(100));
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	if (hwp_active)
		intel_pstate_hwp_set();
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	return count;
}

static ssize_t store_min_perf_pct(struct kobject *a, struct attribute *b,
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				  const char *buf, size_t count)
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{
	unsigned int input;
	int ret;
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	ret = sscanf(buf, "%u", &input);
	if (ret != 1)
		return -EINVAL;
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	limits.min_sysfs_pct = clamp_t(int, input, 0 , 100);
	limits.min_perf_pct = max(limits.min_policy_pct, limits.min_sysfs_pct);
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	limits.min_perf = div_fp(int_tofp(limits.min_perf_pct), int_tofp(100));

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	if (hwp_active)
		intel_pstate_hwp_set();
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	return count;
}

show_one(max_perf_pct, max_perf_pct);
show_one(min_perf_pct, min_perf_pct);

define_one_global_rw(no_turbo);
define_one_global_rw(max_perf_pct);
define_one_global_rw(min_perf_pct);
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define_one_global_ro(turbo_pct);
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define_one_global_ro(num_pstates);
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static struct attribute *intel_pstate_attributes[] = {
	&no_turbo.attr,
	&max_perf_pct.attr,
	&min_perf_pct.attr,
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	&turbo_pct.attr,
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	&num_pstates.attr,
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	NULL
};

static struct attribute_group intel_pstate_attr_group = {
	.attrs = intel_pstate_attributes,
};

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static void __init intel_pstate_sysfs_expose_params(void)
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{
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	struct kobject *intel_pstate_kobject;
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	int rc;

	intel_pstate_kobject = kobject_create_and_add("intel_pstate",
						&cpu_subsys.dev_root->kobj);
	BUG_ON(!intel_pstate_kobject);
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	rc = sysfs_create_group(intel_pstate_kobject, &intel_pstate_attr_group);
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	BUG_ON(rc);
}
/************************** sysfs end ************************/
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static void intel_pstate_hwp_enable(void)
{
	hwp_active++;
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	pr_info("intel_pstate: HWP enabled\n");
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	wrmsrl( MSR_PM_ENABLE, 0x1);
}

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static int byt_get_min_pstate(void)
{
	u64 value;
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	rdmsrl(BYT_RATIOS, value);
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	return (value >> 8) & 0x7F;
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}

static int byt_get_max_pstate(void)
{
	u64 value;
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	rdmsrl(BYT_RATIOS, value);
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	return (value >> 16) & 0x7F;
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}
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static int byt_get_turbo_pstate(void)
{
	u64 value;
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	rdmsrl(BYT_TURBO_RATIOS, value);
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	return value & 0x7F;
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}

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static void byt_set_pstate(struct cpudata *cpudata, int pstate)
{
	u64 val;
	int32_t vid_fp;
	u32 vid;

	val = pstate << 8;
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	if (limits.no_turbo && !limits.turbo_disabled)
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		val |= (u64)1 << 32;

	vid_fp = cpudata->vid.min + mul_fp(
		int_tofp(pstate - cpudata->pstate.min_pstate),
		cpudata->vid.ratio);

	vid_fp = clamp_t(int32_t, vid_fp, cpudata->vid.min, cpudata->vid.max);
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	vid = ceiling_fp(vid_fp);
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	if (pstate > cpudata->pstate.max_pstate)
		vid = cpudata->vid.turbo;

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	val |= vid;

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	wrmsrl_on_cpu(cpudata->cpu, MSR_IA32_PERF_CTL, val);
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}

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#define BYT_BCLK_FREQS 5
static int byt_freq_table[BYT_BCLK_FREQS] = { 833, 1000, 1333, 1167, 800};

static int byt_get_scaling(void)
{
	u64 value;
	int i;

	rdmsrl(MSR_FSB_FREQ, value);
	i = value & 0x3;

	BUG_ON(i > BYT_BCLK_FREQS);

	return byt_freq_table[i] * 100;
}

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static void byt_get_vid(struct cpudata *cpudata)
{
	u64 value;

	rdmsrl(BYT_VIDS, value);
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	cpudata->vid.min = int_tofp((value >> 8) & 0x7f);
	cpudata->vid.max = int_tofp((value >> 16) & 0x7f);
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	cpudata->vid.ratio = div_fp(
		cpudata->vid.max - cpudata->vid.min,
		int_tofp(cpudata->pstate.max_pstate -
			cpudata->pstate.min_pstate));
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	rdmsrl(BYT_TURBO_VIDS, value);
	cpudata->vid.turbo = value & 0x7f;
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}

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static int core_get_min_pstate(void)
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{
	u64 value;
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	rdmsrl(MSR_PLATFORM_INFO, value);
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	return (value >> 40) & 0xFF;
}

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static int core_get_max_pstate(void)
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{
	u64 value;
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	rdmsrl(MSR_PLATFORM_INFO, value);
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	return (value >> 8) & 0xFF;
}

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static int core_get_turbo_pstate(void)
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{
	u64 value;
	int nont, ret;
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	rdmsrl(MSR_NHM_TURBO_RATIO_LIMIT, value);
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	nont = core_get_max_pstate();
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	ret = (value) & 255;
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	if (ret <= nont)
		ret = nont;
	return ret;
}

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static inline int core_get_scaling(void)
{
	return 100000;
}

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static void core_set_pstate(struct cpudata *cpudata, int pstate)
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{
	u64 val;

	val = pstate << 8;
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	if (limits.no_turbo && !limits.turbo_disabled)
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		val |= (u64)1 << 32;

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	wrmsrl_on_cpu(cpudata->cpu, MSR_IA32_PERF_CTL, val);
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}

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static int knl_get_turbo_pstate(void)
{
	u64 value;
	int nont, ret;

	rdmsrl(MSR_NHM_TURBO_RATIO_LIMIT, value);
	nont = core_get_max_pstate();
	ret = (((value) >> 8) & 0xFF);
	if (ret <= nont)
		ret = nont;
	return ret;
}

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static struct cpu_defaults core_params = {
	.pid_policy = {
		.sample_rate_ms = 10,
		.deadband = 0,
		.setpoint = 97,
		.p_gain_pct = 20,
		.d_gain_pct = 0,
		.i_gain_pct = 0,
	},
	.funcs = {
		.get_max = core_get_max_pstate,
		.get_min = core_get_min_pstate,
		.get_turbo = core_get_turbo_pstate,
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		.get_scaling = core_get_scaling,
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		.set = core_set_pstate,
	},
};

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static struct cpu_defaults byt_params = {
	.pid_policy = {
		.sample_rate_ms = 10,
		.deadband = 0,
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		.setpoint = 60,
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		.p_gain_pct = 14,
		.d_gain_pct = 0,
		.i_gain_pct = 4,
	},
	.funcs = {
		.get_max = byt_get_max_pstate,
		.get_min = byt_get_min_pstate,
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		.get_turbo = byt_get_turbo_pstate,
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		.set = byt_set_pstate,
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		.get_scaling = byt_get_scaling,
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		.get_vid = byt_get_vid,
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	},
};

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static struct cpu_defaults knl_params = {
	.pid_policy = {
		.sample_rate_ms = 10,
		.deadband = 0,
		.setpoint = 97,
		.p_gain_pct = 20,
		.d_gain_pct = 0,
		.i_gain_pct = 0,
	},
	.funcs = {
		.get_max = core_get_max_pstate,
		.get_min = core_get_min_pstate,
		.get_turbo = knl_get_turbo_pstate,
		.set = core_set_pstate,
	},
};

688 689 690
static void intel_pstate_get_min_max(struct cpudata *cpu, int *min, int *max)
{
	int max_perf = cpu->pstate.turbo_pstate;
691
	int max_perf_adj;
692
	int min_perf;
693

694
	if (limits.no_turbo || limits.turbo_disabled)
695 696
		max_perf = cpu->pstate.max_pstate;

697 698 699 700 701
	/*
	 * performance can be limited by user through sysfs, by cpufreq
	 * policy, or by cpu specific default values determined through
	 * experimentation.
	 */
702 703
	max_perf_adj = fp_toint(mul_fp(int_tofp(max_perf), limits.max_perf));
	*max = clamp_t(int, max_perf_adj,
704 705 706
			cpu->pstate.min_pstate, cpu->pstate.turbo_pstate);

	min_perf = fp_toint(mul_fp(int_tofp(max_perf), limits.min_perf));
707
	*min = clamp_t(int, min_perf, cpu->pstate.min_pstate, max_perf);
708 709
}

710
static void intel_pstate_set_pstate(struct cpudata *cpu, int pstate, bool force)
711 712 713
{
	int max_perf, min_perf;

714 715
	if (force) {
		update_turbo_state();
716

717
		intel_pstate_get_min_max(cpu, &min_perf, &max_perf);
718

719
		pstate = clamp_t(int, pstate, min_perf, max_perf);
720

721 722 723
		if (pstate == cpu->pstate.current_pstate)
			return;
	}
724
	trace_cpu_frequency(pstate * cpu->pstate.scaling, cpu->cpu);
725

726 727
	cpu->pstate.current_pstate = pstate;

728
	pstate_funcs.set(cpu, pstate);
729 730 731 732
}

static void intel_pstate_get_cpu_pstates(struct cpudata *cpu)
{
733 734 735
	cpu->pstate.min_pstate = pstate_funcs.get_min();
	cpu->pstate.max_pstate = pstate_funcs.get_max();
	cpu->pstate.turbo_pstate = pstate_funcs.get_turbo();
736
	cpu->pstate.scaling = pstate_funcs.get_scaling();
737

738 739
	if (pstate_funcs.get_vid)
		pstate_funcs.get_vid(cpu);
740
	intel_pstate_set_pstate(cpu, cpu->pstate.min_pstate, false);
741 742
}

743
static inline void intel_pstate_calc_busy(struct cpudata *cpu)
744
{
745
	struct sample *sample = &cpu->sample;
746
	int64_t core_pct;
747

748
	core_pct = int_tofp(sample->aperf) * int_tofp(100);
749
	core_pct = div64_u64(core_pct, int_tofp(sample->mperf));
750

751
	sample->freq = fp_toint(
752 753 754
		mul_fp(int_tofp(
			cpu->pstate.max_pstate * cpu->pstate.scaling / 100),
			core_pct));
755

756
	sample->core_pct_busy = (int32_t)core_pct;
757 758 759 760 761
}

static inline void intel_pstate_sample(struct cpudata *cpu)
{
	u64 aperf, mperf;
762
	unsigned long flags;
763
	u64 tsc;
764

765
	local_irq_save(flags);
766 767
	rdmsrl(MSR_IA32_APERF, aperf);
	rdmsrl(MSR_IA32_MPERF, mperf);
768
	tsc = native_read_tsc();
769
	local_irq_restore(flags);
770

771 772
	cpu->last_sample_time = cpu->sample.time;
	cpu->sample.time = ktime_get();
773 774
	cpu->sample.aperf = aperf;
	cpu->sample.mperf = mperf;
775
	cpu->sample.tsc =  tsc;
776 777
	cpu->sample.aperf -= cpu->prev_aperf;
	cpu->sample.mperf -= cpu->prev_mperf;
778
	cpu->sample.tsc -= cpu->prev_tsc;
779

780
	intel_pstate_calc_busy(cpu);
781 782 783

	cpu->prev_aperf = aperf;
	cpu->prev_mperf = mperf;
784
	cpu->prev_tsc = tsc;
785 786
}

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787 788 789 790 791 792 793 794
static inline void intel_hwp_set_sample_time(struct cpudata *cpu)
{
	int delay;

	delay = msecs_to_jiffies(50);
	mod_timer_pinned(&cpu->timer, jiffies + delay);
}

795 796
static inline void intel_pstate_set_sample_time(struct cpudata *cpu)
{
797
	int delay;
798

799
	delay = msecs_to_jiffies(pid_params.sample_rate_ms);
800 801 802
	mod_timer_pinned(&cpu->timer, jiffies + delay);
}

803
static inline int32_t intel_pstate_get_scaled_busy(struct cpudata *cpu)
804
{
805
	int32_t core_busy, max_pstate, current_pstate, sample_ratio;
806
	s64 duration_us;
807
	u32 sample_time;
808

809 810 811 812 813 814 815 816 817 818 819
	/*
	 * core_busy is the ratio of actual performance to max
	 * max_pstate is the max non turbo pstate available
	 * current_pstate was the pstate that was requested during
	 * 	the last sample period.
	 *
	 * We normalize core_busy, which was our actual percent
	 * performance to what we requested during the last sample
	 * period. The result will be a percentage of busy at a
	 * specified pstate.
	 */
820
	core_busy = cpu->sample.core_pct_busy;
821
	max_pstate = int_tofp(cpu->pstate.max_pstate);
822
	current_pstate = int_tofp(cpu->pstate.current_pstate);
823
	core_busy = mul_fp(core_busy, div_fp(max_pstate, current_pstate));
824

825 826 827 828 829 830 831
	/*
	 * Since we have a deferred timer, it will not fire unless
	 * we are in C0.  So, determine if the actual elapsed time
	 * is significantly greater (3x) than our sample interval.  If it
	 * is, then we were idle for a long enough period of time
	 * to adjust our busyness.
	 */
832
	sample_time = pid_params.sample_rate_ms  * USEC_PER_MSEC;
833 834
	duration_us = ktime_us_delta(cpu->sample.time,
				     cpu->last_sample_time);
835 836
	if (duration_us > sample_time * 3) {
		sample_ratio = div_fp(int_tofp(sample_time),
837
				      int_tofp(duration_us));
838 839 840
		core_busy = mul_fp(core_busy, sample_ratio);
	}

841
	return core_busy;
842 843 844 845
}

static inline void intel_pstate_adjust_busy_pstate(struct cpudata *cpu)
{
846
	int32_t busy_scaled;
847
	struct _pid *pid;
848
	signed int ctl;
849 850 851 852
	int from;
	struct sample *sample;

	from = cpu->pstate.current_pstate;
853 854 855 856 857 858

	pid = &cpu->pid;
	busy_scaled = intel_pstate_get_scaled_busy(cpu);

	ctl = pid_calc(pid, busy_scaled);

859
	/* Negative values of ctl increase the pstate and vice versa */
860
	intel_pstate_set_pstate(cpu, cpu->pstate.current_pstate - ctl, true);
861 862 863 864 865 866 867 868 869 870

	sample = &cpu->sample;
	trace_pstate_sample(fp_toint(sample->core_pct_busy),
		fp_toint(busy_scaled),
		from,
		cpu->pstate.current_pstate,
		sample->mperf,
		sample->aperf,
		sample->tsc,
		sample->freq);
871 872
}

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873 874 875 876 877 878 879 880
static void intel_hwp_timer_func(unsigned long __data)
{
	struct cpudata *cpu = (struct cpudata *) __data;

	intel_pstate_sample(cpu);
	intel_hwp_set_sample_time(cpu);
}

881 882 883 884 885
static void intel_pstate_timer_func(unsigned long __data)
{
	struct cpudata *cpu = (struct cpudata *) __data;

	intel_pstate_sample(cpu);
886

887
	intel_pstate_adjust_busy_pstate(cpu);
888

889 890 891 892
	intel_pstate_set_sample_time(cpu);
}

#define ICPU(model, policy) \
893 894
	{ X86_VENDOR_INTEL, 6, model, X86_FEATURE_APERFMPERF,\
			(unsigned long)&policy }
895 896

static const struct x86_cpu_id intel_pstate_cpu_ids[] = {
897 898
	ICPU(0x2a, core_params),
	ICPU(0x2d, core_params),
899
	ICPU(0x37, byt_params),
900 901
	ICPU(0x3a, core_params),
	ICPU(0x3c, core_params),
902
	ICPU(0x3d, core_params),
903 904 905 906
	ICPU(0x3e, core_params),
	ICPU(0x3f, core_params),
	ICPU(0x45, core_params),
	ICPU(0x46, core_params),
907
	ICPU(0x47, core_params),
908
	ICPU(0x4c, byt_params),
909
	ICPU(0x4e, core_params),
910 911
	ICPU(0x4f, core_params),
	ICPU(0x56, core_params),
912
	ICPU(0x57, knl_params),
913 914 915 916
	{}
};
MODULE_DEVICE_TABLE(x86cpu, intel_pstate_cpu_ids);

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917 918 919 920 921
static const struct x86_cpu_id intel_pstate_cpu_oob_ids[] = {
	ICPU(0x56, core_params),
	{}
};

922 923 924 925
static int intel_pstate_init_cpu(unsigned int cpunum)
{
	struct cpudata *cpu;

926 927 928
	if (!all_cpu_data[cpunum])
		all_cpu_data[cpunum] = kzalloc(sizeof(struct cpudata),
					       GFP_KERNEL);
929 930 931 932 933 934
	if (!all_cpu_data[cpunum])
		return -ENOMEM;

	cpu = all_cpu_data[cpunum];

	cpu->cpu = cpunum;
935
	intel_pstate_get_cpu_pstates(cpu);
936

937
	init_timer_deferrable(&cpu->timer);
938
	cpu->timer.data = (unsigned long)cpu;
939
	cpu->timer.expires = jiffies + HZ/100;
D
Dirk Brandewie 已提交
940 941 942 943 944 945

	if (!hwp_active)
		cpu->timer.function = intel_pstate_timer_func;
	else
		cpu->timer.function = intel_hwp_timer_func;

946 947 948 949 950
	intel_pstate_busy_pid_reset(cpu);
	intel_pstate_sample(cpu);

	add_timer_on(&cpu->timer, cpunum);

951
	pr_debug("intel_pstate: controlling: cpu %d\n", cpunum);
952 953 954 955 956 957 958 959 960 961 962 963

	return 0;
}

static unsigned int intel_pstate_get(unsigned int cpu_num)
{
	struct sample *sample;
	struct cpudata *cpu;

	cpu = all_cpu_data[cpu_num];
	if (!cpu)
		return 0;
964
	sample = &cpu->sample;
965 966 967 968 969
	return sample->freq;
}

static int intel_pstate_set_policy(struct cpufreq_policy *policy)
{
970 971 972
	if (!policy->cpuinfo.max_freq)
		return -ENODEV;

973 974
	if (policy->policy == CPUFREQ_POLICY_PERFORMANCE &&
	    policy->max >= policy->cpuinfo.max_freq) {
975
		limits.min_policy_pct = 100;
976 977
		limits.min_perf_pct = 100;
		limits.min_perf = int_tofp(1);
978
		limits.max_policy_pct = 100;
979 980
		limits.max_perf_pct = 100;
		limits.max_perf = int_tofp(1);
981
		limits.no_turbo = 0;
982
		return 0;
983
	}
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Dirk Brandewie 已提交
984

985 986 987
	limits.min_policy_pct = (policy->min * 100) / policy->cpuinfo.max_freq;
	limits.min_policy_pct = clamp_t(int, limits.min_policy_pct, 0 , 100);
	limits.min_perf_pct = max(limits.min_policy_pct, limits.min_sysfs_pct);
988 989
	limits.min_perf = div_fp(int_tofp(limits.min_perf_pct), int_tofp(100));

990
	limits.max_policy_pct = (policy->max * 100) / policy->cpuinfo.max_freq;
991 992
	limits.max_policy_pct = clamp_t(int, limits.max_policy_pct, 0 , 100);
	limits.max_perf_pct = min(limits.max_policy_pct, limits.max_sysfs_pct);
993
	limits.max_perf = div_fp(int_tofp(limits.max_perf_pct), int_tofp(100));
994

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995 996 997
	if (hwp_active)
		intel_pstate_hwp_set();

998 999 1000 1001 1002
	return 0;
}

static int intel_pstate_verify_policy(struct cpufreq_policy *policy)
{
1003
	cpufreq_verify_within_cpu_limits(policy);
1004

1005
	if (policy->policy != CPUFREQ_POLICY_POWERSAVE &&
1006
	    policy->policy != CPUFREQ_POLICY_PERFORMANCE)
1007 1008 1009 1010 1011
		return -EINVAL;

	return 0;
}

1012
static void intel_pstate_stop_cpu(struct cpufreq_policy *policy)
1013
{
1014 1015
	int cpu_num = policy->cpu;
	struct cpudata *cpu = all_cpu_data[cpu_num];
1016

1017
	pr_debug("intel_pstate: CPU %d exiting\n", cpu_num);
1018

1019
	del_timer_sync(&all_cpu_data[cpu_num]->timer);
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Dirk Brandewie 已提交
1020 1021 1022
	if (hwp_active)
		return;

1023
	intel_pstate_set_pstate(cpu, cpu->pstate.min_pstate, false);
1024 1025
}

1026
static int intel_pstate_cpu_init(struct cpufreq_policy *policy)
1027 1028
{
	struct cpudata *cpu;
1029
	int rc;
1030 1031 1032 1033 1034 1035 1036

	rc = intel_pstate_init_cpu(policy->cpu);
	if (rc)
		return rc;

	cpu = all_cpu_data[policy->cpu];

1037
	if (limits.min_perf_pct == 100 && limits.max_perf_pct == 100)
1038 1039 1040 1041
		policy->policy = CPUFREQ_POLICY_PERFORMANCE;
	else
		policy->policy = CPUFREQ_POLICY_POWERSAVE;

1042 1043
	policy->min = cpu->pstate.min_pstate * cpu->pstate.scaling;
	policy->max = cpu->pstate.turbo_pstate * cpu->pstate.scaling;
1044 1045

	/* cpuinfo and default policy values */
1046 1047 1048
	policy->cpuinfo.min_freq = cpu->pstate.min_pstate * cpu->pstate.scaling;
	policy->cpuinfo.max_freq =
		cpu->pstate.turbo_pstate * cpu->pstate.scaling;
1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060
	policy->cpuinfo.transition_latency = CPUFREQ_ETERNAL;
	cpumask_set_cpu(policy->cpu, policy->cpus);

	return 0;
}

static struct cpufreq_driver intel_pstate_driver = {
	.flags		= CPUFREQ_CONST_LOOPS,
	.verify		= intel_pstate_verify_policy,
	.setpolicy	= intel_pstate_set_policy,
	.get		= intel_pstate_get,
	.init		= intel_pstate_cpu_init,
1061
	.stop_cpu	= intel_pstate_stop_cpu,
1062 1063 1064
	.name		= "intel_pstate",
};

1065
static int __initdata no_load;
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Dirk Brandewie 已提交
1066
static int __initdata no_hwp;
1067
static int __initdata hwp_only;
1068
static unsigned int force_load;
1069

1070 1071
static int intel_pstate_msrs_not_valid(void)
{
1072
	if (!pstate_funcs.get_max() ||
1073 1074
	    !pstate_funcs.get_min() ||
	    !pstate_funcs.get_turbo())
1075 1076 1077 1078
		return -ENODEV;

	return 0;
}
1079

1080
static void copy_pid_params(struct pstate_adjust_policy *policy)
1081 1082 1083 1084 1085 1086 1087 1088 1089
{
	pid_params.sample_rate_ms = policy->sample_rate_ms;
	pid_params.p_gain_pct = policy->p_gain_pct;
	pid_params.i_gain_pct = policy->i_gain_pct;
	pid_params.d_gain_pct = policy->d_gain_pct;
	pid_params.deadband = policy->deadband;
	pid_params.setpoint = policy->setpoint;
}

1090
static void copy_cpu_funcs(struct pstate_funcs *funcs)
1091 1092 1093 1094
{
	pstate_funcs.get_max   = funcs->get_max;
	pstate_funcs.get_min   = funcs->get_min;
	pstate_funcs.get_turbo = funcs->get_turbo;
1095
	pstate_funcs.get_scaling = funcs->get_scaling;
1096
	pstate_funcs.set       = funcs->set;
1097
	pstate_funcs.get_vid   = funcs->get_vid;
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
#if IS_ENABLED(CONFIG_ACPI)
#include <acpi/processor.h>

static bool intel_pstate_no_acpi_pss(void)
{
	int i;

	for_each_possible_cpu(i) {
		acpi_status status;
		union acpi_object *pss;
		struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
		struct acpi_processor *pr = per_cpu(processors, i);

		if (!pr)
			continue;

		status = acpi_evaluate_object(pr->handle, "_PSS", NULL, &buffer);
		if (ACPI_FAILURE(status))
			continue;

		pss = buffer.pointer;
		if (pss && pss->type == ACPI_TYPE_PACKAGE) {
			kfree(pss);
			return false;
		}

		kfree(pss);
	}

	return true;
}

1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151
static bool intel_pstate_has_acpi_ppc(void)
{
	int i;

	for_each_possible_cpu(i) {
		struct acpi_processor *pr = per_cpu(processors, i);

		if (!pr)
			continue;
		if (acpi_has_method(pr->handle, "_PPC"))
			return true;
	}
	return false;
}

enum {
	PSS,
	PPC,
};

1152 1153 1154 1155
struct hw_vendor_info {
	u16  valid;
	char oem_id[ACPI_OEM_ID_SIZE];
	char oem_table_id[ACPI_OEM_TABLE_ID_SIZE];
1156
	int  oem_pwr_table;
1157 1158 1159 1160
};

/* Hardware vendor-specific info that has its own power management modes */
static struct hw_vendor_info vendor_info[] = {
1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171
	{1, "HP    ", "ProLiant", PSS},
	{1, "ORACLE", "X4-2    ", PPC},
	{1, "ORACLE", "X4-2L   ", PPC},
	{1, "ORACLE", "X4-2B   ", PPC},
	{1, "ORACLE", "X3-2    ", PPC},
	{1, "ORACLE", "X3-2L   ", PPC},
	{1, "ORACLE", "X3-2B   ", PPC},
	{1, "ORACLE", "X4470M2 ", PPC},
	{1, "ORACLE", "X4270M3 ", PPC},
	{1, "ORACLE", "X4270M2 ", PPC},
	{1, "ORACLE", "X4170M2 ", PPC},
1172 1173 1174 1175 1176 1177 1178
	{0, "", ""},
};

static bool intel_pstate_platform_pwr_mgmt_exists(void)
{
	struct acpi_table_header hdr;
	struct hw_vendor_info *v_info;
D
Dirk Brandewie 已提交
1179 1180 1181 1182 1183 1184 1185 1186 1187
	const struct x86_cpu_id *id;
	u64 misc_pwr;

	id = x86_match_cpu(intel_pstate_cpu_oob_ids);
	if (id) {
		rdmsrl(MSR_MISC_PWR_MGMT, misc_pwr);
		if ( misc_pwr & (1 << 8))
			return true;
	}
1188

1189 1190
	if (acpi_disabled ||
	    ACPI_FAILURE(acpi_get_table_header(ACPI_SIG_FADT, 0, &hdr)))
1191 1192 1193
		return false;

	for (v_info = vendor_info; v_info->valid; v_info++) {
1194
		if (!strncmp(hdr.oem_id, v_info->oem_id, ACPI_OEM_ID_SIZE) &&
1195 1196 1197 1198 1199 1200
			!strncmp(hdr.oem_table_id, v_info->oem_table_id,
						ACPI_OEM_TABLE_ID_SIZE))
			switch (v_info->oem_pwr_table) {
			case PSS:
				return intel_pstate_no_acpi_pss();
			case PPC:
1201 1202
				return intel_pstate_has_acpi_ppc() &&
					(!force_load);
1203
			}
1204 1205 1206 1207 1208 1209
	}

	return false;
}
#else /* CONFIG_ACPI not enabled */
static inline bool intel_pstate_platform_pwr_mgmt_exists(void) { return false; }
1210
static inline bool intel_pstate_has_acpi_ppc(void) { return false; }
1211 1212
#endif /* CONFIG_ACPI */

1213 1214
static int __init intel_pstate_init(void)
{
1215
	int cpu, rc = 0;
1216
	const struct x86_cpu_id *id;
1217
	struct cpu_defaults *cpu_def;
1218

1219 1220 1221
	if (no_load)
		return -ENODEV;

1222 1223 1224 1225
	id = x86_match_cpu(intel_pstate_cpu_ids);
	if (!id)
		return -ENODEV;

1226 1227 1228 1229 1230 1231 1232
	/*
	 * The Intel pstate driver will be ignored if the platform
	 * firmware has its own power management modes.
	 */
	if (intel_pstate_platform_pwr_mgmt_exists())
		return -ENODEV;

1233
	cpu_def = (struct cpu_defaults *)id->driver_data;
1234

1235 1236
	copy_pid_params(&cpu_def->pid_policy);
	copy_cpu_funcs(&cpu_def->funcs);
1237

1238 1239 1240
	if (intel_pstate_msrs_not_valid())
		return -ENODEV;

1241 1242
	pr_info("Intel P-state driver initializing.\n");

1243
	all_cpu_data = vzalloc(sizeof(void *) * num_possible_cpus());
1244 1245 1246
	if (!all_cpu_data)
		return -ENOMEM;

1247
	if (static_cpu_has_safe(X86_FEATURE_HWP) && !no_hwp)
D
Dirk Brandewie 已提交
1248 1249
		intel_pstate_hwp_enable();

1250 1251 1252
	if (!hwp_active && hwp_only)
		goto out;

1253 1254 1255 1256 1257 1258
	rc = cpufreq_register_driver(&intel_pstate_driver);
	if (rc)
		goto out;

	intel_pstate_debug_expose_params();
	intel_pstate_sysfs_expose_params();
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	return rc;
out:
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	get_online_cpus();
	for_each_online_cpu(cpu) {
		if (all_cpu_data[cpu]) {
			del_timer_sync(&all_cpu_data[cpu]->timer);
			kfree(all_cpu_data[cpu]);
		}
	}

	put_online_cpus();
	vfree(all_cpu_data);
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	return -ENODEV;
}
device_initcall(intel_pstate_init);

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static int __init intel_pstate_setup(char *str)
{
	if (!str)
		return -EINVAL;

	if (!strcmp(str, "disable"))
		no_load = 1;
D
Dirk Brandewie 已提交
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	if (!strcmp(str, "no_hwp"))
		no_hwp = 1;
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	if (!strcmp(str, "force"))
		force_load = 1;
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	if (!strcmp(str, "hwp_only"))
		hwp_only = 1;
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	return 0;
}
early_param("intel_pstate", intel_pstate_setup);

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MODULE_AUTHOR("Dirk Brandewie <dirk.j.brandewie@intel.com>");
MODULE_DESCRIPTION("'intel_pstate' - P state driver Intel Core processors");
MODULE_LICENSE("GPL");