2 * acpi-cpufreq.c - ACPI Processor P-States Driver
4 * Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
5 * Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
6 * Copyright (C) 2002 - 2004 Dominik Brodowski <linux@brodo.de>
7 * Copyright (C) 2006 Denis Sadykov <denis.m.sadykov@intel.com>
9 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
11 * This program is free software; you can redistribute it and/or modify
12 * it under the terms of the GNU General Public License as published by
13 * the Free Software Foundation; either version 2 of the License, or (at
14 * your option) any later version.
16 * This program is distributed in the hope that it will be useful, but
17 * WITHOUT ANY WARRANTY; without even the implied warranty of
18 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
19 * General Public License for more details.
21 * You should have received a copy of the GNU General Public License along
22 * with this program; if not, write to the Free Software Foundation, Inc.,
23 * 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA.
25 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
28 #include <linux/kernel.h>
29 #include <linux/module.h>
30 #include <linux/init.h>
31 #include <linux/smp.h>
32 #include <linux/sched.h>
33 #include <linux/cpufreq.h>
34 #include <linux/compiler.h>
35 #include <linux/dmi.h>
36 #include <linux/slab.h>
38 #include <linux/acpi.h>
40 #include <linux/delay.h>
41 #include <linux/uaccess.h>
43 #include <acpi/processor.h>
46 #include <asm/processor.h>
47 #include <asm/cpufeature.h>
50 MODULE_AUTHOR("Paul Diefenbaugh, Dominik Brodowski");
51 MODULE_DESCRIPTION("ACPI Processor P-States Driver");
52 MODULE_LICENSE("GPL");
54 #define PFX "acpi-cpufreq: "
57 UNDEFINED_CAPABLE
= 0,
58 SYSTEM_INTEL_MSR_CAPABLE
,
59 SYSTEM_AMD_MSR_CAPABLE
,
63 #define INTEL_MSR_RANGE (0xffff)
64 #define AMD_MSR_RANGE (0x7)
66 #define MSR_K7_HWCR_CPB_DIS (1ULL << 25)
68 struct acpi_cpufreq_data
{
69 struct acpi_processor_performance
*acpi_data
;
70 struct cpufreq_frequency_table
*freq_table
;
72 unsigned int cpu_feature
;
73 cpumask_var_t freqdomain_cpus
;
76 static DEFINE_PER_CPU(struct acpi_cpufreq_data
*, acfreq_data
);
78 /* acpi_perf_data is a pointer to percpu data. */
79 static struct acpi_processor_performance __percpu
*acpi_perf_data
;
81 static struct cpufreq_driver acpi_cpufreq_driver
;
83 static unsigned int acpi_pstate_strict
;
84 static bool boost_enabled
, boost_supported
;
85 static struct msr __percpu
*msrs
;
87 static bool boost_state(unsigned int cpu
)
92 switch (boot_cpu_data
.x86_vendor
) {
93 case X86_VENDOR_INTEL
:
94 rdmsr_on_cpu(cpu
, MSR_IA32_MISC_ENABLE
, &lo
, &hi
);
95 msr
= lo
| ((u64
)hi
<< 32);
96 return !(msr
& MSR_IA32_MISC_ENABLE_TURBO_DISABLE
);
98 rdmsr_on_cpu(cpu
, MSR_K7_HWCR
, &lo
, &hi
);
99 msr
= lo
| ((u64
)hi
<< 32);
100 return !(msr
& MSR_K7_HWCR_CPB_DIS
);
105 static void boost_set_msrs(bool enable
, const struct cpumask
*cpumask
)
111 switch (boot_cpu_data
.x86_vendor
) {
112 case X86_VENDOR_INTEL
:
113 msr_addr
= MSR_IA32_MISC_ENABLE
;
114 msr_mask
= MSR_IA32_MISC_ENABLE_TURBO_DISABLE
;
117 msr_addr
= MSR_K7_HWCR
;
118 msr_mask
= MSR_K7_HWCR_CPB_DIS
;
124 rdmsr_on_cpus(cpumask
, msr_addr
, msrs
);
126 for_each_cpu(cpu
, cpumask
) {
127 struct msr
*reg
= per_cpu_ptr(msrs
, cpu
);
134 wrmsr_on_cpus(cpumask
, msr_addr
, msrs
);
137 static ssize_t
_store_boost(const char *buf
, size_t count
)
140 unsigned long val
= 0;
142 if (!boost_supported
)
145 ret
= kstrtoul(buf
, 10, &val
);
146 if (ret
|| (val
> 1))
149 if ((val
&& boost_enabled
) || (!val
&& !boost_enabled
))
154 boost_set_msrs(val
, cpu_online_mask
);
159 pr_debug("Core Boosting %sabled.\n", val
? "en" : "dis");
164 static ssize_t
store_global_boost(struct kobject
*kobj
, struct attribute
*attr
,
165 const char *buf
, size_t count
)
167 return _store_boost(buf
, count
);
170 static ssize_t
show_global_boost(struct kobject
*kobj
,
171 struct attribute
*attr
, char *buf
)
173 return sprintf(buf
, "%u\n", boost_enabled
);
176 static struct global_attr global_boost
= __ATTR(boost
, 0644,
180 static ssize_t
show_freqdomain_cpus(struct cpufreq_policy
*policy
, char *buf
)
182 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, policy
->cpu
);
184 return cpufreq_show_cpus(data
->freqdomain_cpus
, buf
);
187 cpufreq_freq_attr_ro(freqdomain_cpus
);
189 #ifdef CONFIG_X86_ACPI_CPUFREQ_CPB
190 static ssize_t
store_cpb(struct cpufreq_policy
*policy
, const char *buf
,
193 return _store_boost(buf
, count
);
196 static ssize_t
show_cpb(struct cpufreq_policy
*policy
, char *buf
)
198 return sprintf(buf
, "%u\n", boost_enabled
);
201 static struct freq_attr cpb
= __ATTR(cpb
, 0644, show_cpb
, store_cpb
);
204 static int check_est_cpu(unsigned int cpuid
)
206 struct cpuinfo_x86
*cpu
= &cpu_data(cpuid
);
208 return cpu_has(cpu
, X86_FEATURE_EST
);
211 static int check_amd_hwpstate_cpu(unsigned int cpuid
)
213 struct cpuinfo_x86
*cpu
= &cpu_data(cpuid
);
215 return cpu_has(cpu
, X86_FEATURE_HW_PSTATE
);
218 static unsigned extract_io(u32 value
, struct acpi_cpufreq_data
*data
)
220 struct acpi_processor_performance
*perf
;
223 perf
= data
->acpi_data
;
225 for (i
= 0; i
< perf
->state_count
; i
++) {
226 if (value
== perf
->states
[i
].status
)
227 return data
->freq_table
[i
].frequency
;
232 static unsigned extract_msr(u32 msr
, struct acpi_cpufreq_data
*data
)
235 struct acpi_processor_performance
*perf
;
237 if (boot_cpu_data
.x86_vendor
== X86_VENDOR_AMD
)
238 msr
&= AMD_MSR_RANGE
;
240 msr
&= INTEL_MSR_RANGE
;
242 perf
= data
->acpi_data
;
244 for (i
= 0; data
->freq_table
[i
].frequency
!= CPUFREQ_TABLE_END
; i
++) {
245 if (msr
== perf
->states
[data
->freq_table
[i
].driver_data
].status
)
246 return data
->freq_table
[i
].frequency
;
248 return data
->freq_table
[0].frequency
;
251 static unsigned extract_freq(u32 val
, struct acpi_cpufreq_data
*data
)
253 switch (data
->cpu_feature
) {
254 case SYSTEM_INTEL_MSR_CAPABLE
:
255 case SYSTEM_AMD_MSR_CAPABLE
:
256 return extract_msr(val
, data
);
257 case SYSTEM_IO_CAPABLE
:
258 return extract_io(val
, data
);
275 const struct cpumask
*mask
;
283 /* Called via smp_call_function_single(), on the target CPU */
284 static void do_drv_read(void *_cmd
)
286 struct drv_cmd
*cmd
= _cmd
;
290 case SYSTEM_INTEL_MSR_CAPABLE
:
291 case SYSTEM_AMD_MSR_CAPABLE
:
292 rdmsr(cmd
->addr
.msr
.reg
, cmd
->val
, h
);
294 case SYSTEM_IO_CAPABLE
:
295 acpi_os_read_port((acpi_io_address
)cmd
->addr
.io
.port
,
297 (u32
)cmd
->addr
.io
.bit_width
);
304 /* Called via smp_call_function_many(), on the target CPUs */
305 static void do_drv_write(void *_cmd
)
307 struct drv_cmd
*cmd
= _cmd
;
311 case SYSTEM_INTEL_MSR_CAPABLE
:
312 rdmsr(cmd
->addr
.msr
.reg
, lo
, hi
);
313 lo
= (lo
& ~INTEL_MSR_RANGE
) | (cmd
->val
& INTEL_MSR_RANGE
);
314 wrmsr(cmd
->addr
.msr
.reg
, lo
, hi
);
316 case SYSTEM_AMD_MSR_CAPABLE
:
317 wrmsr(cmd
->addr
.msr
.reg
, cmd
->val
, 0);
319 case SYSTEM_IO_CAPABLE
:
320 acpi_os_write_port((acpi_io_address
)cmd
->addr
.io
.port
,
322 (u32
)cmd
->addr
.io
.bit_width
);
329 static void drv_read(struct drv_cmd
*cmd
)
334 err
= smp_call_function_any(cmd
->mask
, do_drv_read
, cmd
, 1);
335 WARN_ON_ONCE(err
); /* smp_call_function_any() was buggy? */
338 static void drv_write(struct drv_cmd
*cmd
)
342 this_cpu
= get_cpu();
343 if (cpumask_test_cpu(this_cpu
, cmd
->mask
))
345 smp_call_function_many(cmd
->mask
, do_drv_write
, cmd
, 1);
349 static u32
get_cur_val(const struct cpumask
*mask
)
351 struct acpi_processor_performance
*perf
;
354 if (unlikely(cpumask_empty(mask
)))
357 switch (per_cpu(acfreq_data
, cpumask_first(mask
))->cpu_feature
) {
358 case SYSTEM_INTEL_MSR_CAPABLE
:
359 cmd
.type
= SYSTEM_INTEL_MSR_CAPABLE
;
360 cmd
.addr
.msr
.reg
= MSR_IA32_PERF_CTL
;
362 case SYSTEM_AMD_MSR_CAPABLE
:
363 cmd
.type
= SYSTEM_AMD_MSR_CAPABLE
;
364 cmd
.addr
.msr
.reg
= MSR_AMD_PERF_CTL
;
366 case SYSTEM_IO_CAPABLE
:
367 cmd
.type
= SYSTEM_IO_CAPABLE
;
368 perf
= per_cpu(acfreq_data
, cpumask_first(mask
))->acpi_data
;
369 cmd
.addr
.io
.port
= perf
->control_register
.address
;
370 cmd
.addr
.io
.bit_width
= perf
->control_register
.bit_width
;
379 pr_debug("get_cur_val = %u\n", cmd
.val
);
384 static unsigned int get_cur_freq_on_cpu(unsigned int cpu
)
386 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, cpu
);
388 unsigned int cached_freq
;
390 pr_debug("get_cur_freq_on_cpu (%d)\n", cpu
);
392 if (unlikely(data
== NULL
||
393 data
->acpi_data
== NULL
|| data
->freq_table
== NULL
)) {
397 cached_freq
= data
->freq_table
[data
->acpi_data
->state
].frequency
;
398 freq
= extract_freq(get_cur_val(cpumask_of(cpu
)), data
);
399 if (freq
!= cached_freq
) {
401 * The dreaded BIOS frequency change behind our back.
402 * Force set the frequency on next target call.
407 pr_debug("cur freq = %u\n", freq
);
412 static unsigned int check_freqs(const struct cpumask
*mask
, unsigned int freq
,
413 struct acpi_cpufreq_data
*data
)
415 unsigned int cur_freq
;
418 for (i
= 0; i
< 100; i
++) {
419 cur_freq
= extract_freq(get_cur_val(mask
), data
);
420 if (cur_freq
== freq
)
427 static int acpi_cpufreq_target(struct cpufreq_policy
*policy
,
428 unsigned int target_freq
, unsigned int relation
)
430 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, policy
->cpu
);
431 struct acpi_processor_performance
*perf
;
432 struct cpufreq_freqs freqs
;
434 unsigned int next_state
= 0; /* Index into freq_table */
435 unsigned int next_perf_state
= 0; /* Index into perf table */
438 pr_debug("acpi_cpufreq_target %d (%d)\n", target_freq
, policy
->cpu
);
440 if (unlikely(data
== NULL
||
441 data
->acpi_data
== NULL
|| data
->freq_table
== NULL
)) {
445 perf
= data
->acpi_data
;
446 result
= cpufreq_frequency_table_target(policy
,
449 relation
, &next_state
);
450 if (unlikely(result
)) {
455 next_perf_state
= data
->freq_table
[next_state
].driver_data
;
456 if (perf
->state
== next_perf_state
) {
457 if (unlikely(data
->resume
)) {
458 pr_debug("Called after resume, resetting to P%d\n",
462 pr_debug("Already at target state (P%d)\n",
468 switch (data
->cpu_feature
) {
469 case SYSTEM_INTEL_MSR_CAPABLE
:
470 cmd
.type
= SYSTEM_INTEL_MSR_CAPABLE
;
471 cmd
.addr
.msr
.reg
= MSR_IA32_PERF_CTL
;
472 cmd
.val
= (u32
) perf
->states
[next_perf_state
].control
;
474 case SYSTEM_AMD_MSR_CAPABLE
:
475 cmd
.type
= SYSTEM_AMD_MSR_CAPABLE
;
476 cmd
.addr
.msr
.reg
= MSR_AMD_PERF_CTL
;
477 cmd
.val
= (u32
) perf
->states
[next_perf_state
].control
;
479 case SYSTEM_IO_CAPABLE
:
480 cmd
.type
= SYSTEM_IO_CAPABLE
;
481 cmd
.addr
.io
.port
= perf
->control_register
.address
;
482 cmd
.addr
.io
.bit_width
= perf
->control_register
.bit_width
;
483 cmd
.val
= (u32
) perf
->states
[next_perf_state
].control
;
490 /* cpufreq holds the hotplug lock, so we are safe from here on */
491 if (policy
->shared_type
!= CPUFREQ_SHARED_TYPE_ANY
)
492 cmd
.mask
= policy
->cpus
;
494 cmd
.mask
= cpumask_of(policy
->cpu
);
496 freqs
.old
= perf
->states
[perf
->state
].core_frequency
* 1000;
497 freqs
.new = data
->freq_table
[next_state
].frequency
;
498 cpufreq_notify_transition(policy
, &freqs
, CPUFREQ_PRECHANGE
);
502 if (acpi_pstate_strict
) {
503 if (!check_freqs(cmd
.mask
, freqs
.new, data
)) {
504 pr_debug("acpi_cpufreq_target failed (%d)\n",
507 freqs
.new = freqs
.old
;
511 cpufreq_notify_transition(policy
, &freqs
, CPUFREQ_POSTCHANGE
);
514 perf
->state
= next_perf_state
;
520 static int acpi_cpufreq_verify(struct cpufreq_policy
*policy
)
522 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, policy
->cpu
);
524 pr_debug("acpi_cpufreq_verify\n");
526 return cpufreq_frequency_table_verify(policy
, data
->freq_table
);
530 acpi_cpufreq_guess_freq(struct acpi_cpufreq_data
*data
, unsigned int cpu
)
532 struct acpi_processor_performance
*perf
= data
->acpi_data
;
535 /* search the closest match to cpu_khz */
538 unsigned long freqn
= perf
->states
[0].core_frequency
* 1000;
540 for (i
= 0; i
< (perf
->state_count
-1); i
++) {
542 freqn
= perf
->states
[i
+1].core_frequency
* 1000;
543 if ((2 * cpu_khz
) > (freqn
+ freq
)) {
548 perf
->state
= perf
->state_count
-1;
551 /* assume CPU is at P0... */
553 return perf
->states
[0].core_frequency
* 1000;
557 static void free_acpi_perf_data(void)
561 /* Freeing a NULL pointer is OK, and alloc_percpu zeroes. */
562 for_each_possible_cpu(i
)
563 free_cpumask_var(per_cpu_ptr(acpi_perf_data
, i
)
565 free_percpu(acpi_perf_data
);
568 static int boost_notify(struct notifier_block
*nb
, unsigned long action
,
571 unsigned cpu
= (long)hcpu
;
572 const struct cpumask
*cpumask
;
574 cpumask
= get_cpu_mask(cpu
);
577 * Clear the boost-disable bit on the CPU_DOWN path so that
578 * this cpu cannot block the remaining ones from boosting. On
579 * the CPU_UP path we simply keep the boost-disable flag in
580 * sync with the current global state.
585 case CPU_UP_PREPARE_FROZEN
:
586 boost_set_msrs(boost_enabled
, cpumask
);
589 case CPU_DOWN_PREPARE
:
590 case CPU_DOWN_PREPARE_FROZEN
:
591 boost_set_msrs(1, cpumask
);
602 static struct notifier_block boost_nb
= {
603 .notifier_call
= boost_notify
,
607 * acpi_cpufreq_early_init - initialize ACPI P-States library
609 * Initialize the ACPI P-States library (drivers/acpi/processor_perflib.c)
610 * in order to determine correct frequency and voltage pairings. We can
611 * do _PDC and _PSD and find out the processor dependency for the
612 * actual init that will happen later...
614 static int __init
acpi_cpufreq_early_init(void)
617 pr_debug("acpi_cpufreq_early_init\n");
619 acpi_perf_data
= alloc_percpu(struct acpi_processor_performance
);
620 if (!acpi_perf_data
) {
621 pr_debug("Memory allocation error for acpi_perf_data.\n");
624 for_each_possible_cpu(i
) {
625 if (!zalloc_cpumask_var_node(
626 &per_cpu_ptr(acpi_perf_data
, i
)->shared_cpu_map
,
627 GFP_KERNEL
, cpu_to_node(i
))) {
629 /* Freeing a NULL pointer is OK: alloc_percpu zeroes. */
630 free_acpi_perf_data();
635 /* Do initialization in ACPI core */
636 acpi_processor_preregister_performance(acpi_perf_data
);
642 * Some BIOSes do SW_ANY coordination internally, either set it up in hw
643 * or do it in BIOS firmware and won't inform about it to OS. If not
644 * detected, this has a side effect of making CPU run at a different speed
645 * than OS intended it to run at. Detect it and handle it cleanly.
647 static int bios_with_sw_any_bug
;
649 static int sw_any_bug_found(const struct dmi_system_id
*d
)
651 bios_with_sw_any_bug
= 1;
655 static const struct dmi_system_id sw_any_bug_dmi_table
[] = {
657 .callback
= sw_any_bug_found
,
658 .ident
= "Supermicro Server X6DLP",
660 DMI_MATCH(DMI_SYS_VENDOR
, "Supermicro"),
661 DMI_MATCH(DMI_BIOS_VERSION
, "080010"),
662 DMI_MATCH(DMI_PRODUCT_NAME
, "X6DLP"),
668 static int acpi_cpufreq_blacklist(struct cpuinfo_x86
*c
)
670 /* Intel Xeon Processor 7100 Series Specification Update
671 * http://www.intel.com/Assets/PDF/specupdate/314554.pdf
672 * AL30: A Machine Check Exception (MCE) Occurring during an
673 * Enhanced Intel SpeedStep Technology Ratio Change May Cause
674 * Both Processor Cores to Lock Up. */
675 if (c
->x86_vendor
== X86_VENDOR_INTEL
) {
676 if ((c
->x86
== 15) &&
677 (c
->x86_model
== 6) &&
678 (c
->x86_mask
== 8)) {
679 printk(KERN_INFO
"acpi-cpufreq: Intel(R) "
680 "Xeon(R) 7100 Errata AL30, processors may "
681 "lock up on frequency changes: disabling "
690 static int acpi_cpufreq_cpu_init(struct cpufreq_policy
*policy
)
693 unsigned int valid_states
= 0;
694 unsigned int cpu
= policy
->cpu
;
695 struct acpi_cpufreq_data
*data
;
696 unsigned int result
= 0;
697 struct cpuinfo_x86
*c
= &cpu_data(policy
->cpu
);
698 struct acpi_processor_performance
*perf
;
700 static int blacklisted
;
703 pr_debug("acpi_cpufreq_cpu_init\n");
708 blacklisted
= acpi_cpufreq_blacklist(c
);
713 data
= kzalloc(sizeof(struct acpi_cpufreq_data
), GFP_KERNEL
);
717 if (!zalloc_cpumask_var(&data
->freqdomain_cpus
, GFP_KERNEL
)) {
722 data
->acpi_data
= per_cpu_ptr(acpi_perf_data
, cpu
);
723 per_cpu(acfreq_data
, cpu
) = data
;
725 if (cpu_has(c
, X86_FEATURE_CONSTANT_TSC
))
726 acpi_cpufreq_driver
.flags
|= CPUFREQ_CONST_LOOPS
;
728 result
= acpi_processor_register_performance(data
->acpi_data
, cpu
);
732 perf
= data
->acpi_data
;
733 policy
->shared_type
= perf
->shared_type
;
736 * Will let policy->cpus know about dependency only when software
737 * coordination is required.
739 if (policy
->shared_type
== CPUFREQ_SHARED_TYPE_ALL
||
740 policy
->shared_type
== CPUFREQ_SHARED_TYPE_ANY
) {
741 cpumask_copy(policy
->cpus
, perf
->shared_cpu_map
);
743 cpumask_copy(data
->freqdomain_cpus
, perf
->shared_cpu_map
);
746 dmi_check_system(sw_any_bug_dmi_table
);
747 if (bios_with_sw_any_bug
&& !policy_is_shared(policy
)) {
748 policy
->shared_type
= CPUFREQ_SHARED_TYPE_ALL
;
749 cpumask_copy(policy
->cpus
, cpu_core_mask(cpu
));
752 if (check_amd_hwpstate_cpu(cpu
) && !acpi_pstate_strict
) {
753 cpumask_clear(policy
->cpus
);
754 cpumask_set_cpu(cpu
, policy
->cpus
);
755 cpumask_copy(data
->freqdomain_cpus
, cpu_sibling_mask(cpu
));
756 policy
->shared_type
= CPUFREQ_SHARED_TYPE_HW
;
757 pr_info_once(PFX
"overriding BIOS provided _PSD data\n");
761 /* capability check */
762 if (perf
->state_count
<= 1) {
763 pr_debug("No P-States\n");
768 if (perf
->control_register
.space_id
!= perf
->status_register
.space_id
) {
773 switch (perf
->control_register
.space_id
) {
774 case ACPI_ADR_SPACE_SYSTEM_IO
:
775 if (boot_cpu_data
.x86_vendor
== X86_VENDOR_AMD
&&
776 boot_cpu_data
.x86
== 0xf) {
777 pr_debug("AMD K8 systems must use native drivers.\n");
781 pr_debug("SYSTEM IO addr space\n");
782 data
->cpu_feature
= SYSTEM_IO_CAPABLE
;
784 case ACPI_ADR_SPACE_FIXED_HARDWARE
:
785 pr_debug("HARDWARE addr space\n");
786 if (check_est_cpu(cpu
)) {
787 data
->cpu_feature
= SYSTEM_INTEL_MSR_CAPABLE
;
790 if (check_amd_hwpstate_cpu(cpu
)) {
791 data
->cpu_feature
= SYSTEM_AMD_MSR_CAPABLE
;
797 pr_debug("Unknown addr space %d\n",
798 (u32
) (perf
->control_register
.space_id
));
803 data
->freq_table
= kmalloc(sizeof(struct cpufreq_frequency_table
) *
804 (perf
->state_count
+1), GFP_KERNEL
);
805 if (!data
->freq_table
) {
810 /* detect transition latency */
811 policy
->cpuinfo
.transition_latency
= 0;
812 for (i
= 0; i
< perf
->state_count
; i
++) {
813 if ((perf
->states
[i
].transition_latency
* 1000) >
814 policy
->cpuinfo
.transition_latency
)
815 policy
->cpuinfo
.transition_latency
=
816 perf
->states
[i
].transition_latency
* 1000;
819 /* Check for high latency (>20uS) from buggy BIOSes, like on T42 */
820 if (perf
->control_register
.space_id
== ACPI_ADR_SPACE_FIXED_HARDWARE
&&
821 policy
->cpuinfo
.transition_latency
> 20 * 1000) {
822 policy
->cpuinfo
.transition_latency
= 20 * 1000;
823 printk_once(KERN_INFO
824 "P-state transition latency capped at 20 uS\n");
828 for (i
= 0; i
< perf
->state_count
; i
++) {
829 if (i
> 0 && perf
->states
[i
].core_frequency
>=
830 data
->freq_table
[valid_states
-1].frequency
/ 1000)
833 data
->freq_table
[valid_states
].driver_data
= i
;
834 data
->freq_table
[valid_states
].frequency
=
835 perf
->states
[i
].core_frequency
* 1000;
838 data
->freq_table
[valid_states
].frequency
= CPUFREQ_TABLE_END
;
841 result
= cpufreq_frequency_table_cpuinfo(policy
, data
->freq_table
);
845 if (perf
->states
[0].core_frequency
* 1000 != policy
->cpuinfo
.max_freq
)
846 printk(KERN_WARNING FW_WARN
"P-state 0 is not max freq\n");
848 switch (perf
->control_register
.space_id
) {
849 case ACPI_ADR_SPACE_SYSTEM_IO
:
850 /* Current speed is unknown and not detectable by IO port */
851 policy
->cur
= acpi_cpufreq_guess_freq(data
, policy
->cpu
);
853 case ACPI_ADR_SPACE_FIXED_HARDWARE
:
854 acpi_cpufreq_driver
.get
= get_cur_freq_on_cpu
;
855 policy
->cur
= get_cur_freq_on_cpu(cpu
);
861 /* notify BIOS that we exist */
862 acpi_processor_notify_smm(THIS_MODULE
);
864 /* Check for APERF/MPERF support in hardware */
865 if (boot_cpu_has(X86_FEATURE_APERFMPERF
))
866 acpi_cpufreq_driver
.getavg
= cpufreq_get_measured_perf
;
868 pr_debug("CPU%u - ACPI performance management activated.\n", cpu
);
869 for (i
= 0; i
< perf
->state_count
; i
++)
870 pr_debug(" %cP%d: %d MHz, %d mW, %d uS\n",
871 (i
== perf
->state
? '*' : ' '), i
,
872 (u32
) perf
->states
[i
].core_frequency
,
873 (u32
) perf
->states
[i
].power
,
874 (u32
) perf
->states
[i
].transition_latency
);
876 cpufreq_frequency_table_get_attr(data
->freq_table
, policy
->cpu
);
879 * the first call to ->target() should result in us actually
880 * writing something to the appropriate registers.
887 kfree(data
->freq_table
);
889 acpi_processor_unregister_performance(perf
, cpu
);
891 free_cpumask_var(data
->freqdomain_cpus
);
894 per_cpu(acfreq_data
, cpu
) = NULL
;
899 static int acpi_cpufreq_cpu_exit(struct cpufreq_policy
*policy
)
901 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, policy
->cpu
);
903 pr_debug("acpi_cpufreq_cpu_exit\n");
906 cpufreq_frequency_table_put_attr(policy
->cpu
);
907 per_cpu(acfreq_data
, policy
->cpu
) = NULL
;
908 acpi_processor_unregister_performance(data
->acpi_data
,
910 free_cpumask_var(data
->freqdomain_cpus
);
911 kfree(data
->freq_table
);
918 static int acpi_cpufreq_resume(struct cpufreq_policy
*policy
)
920 struct acpi_cpufreq_data
*data
= per_cpu(acfreq_data
, policy
->cpu
);
922 pr_debug("acpi_cpufreq_resume\n");
929 static struct freq_attr
*acpi_cpufreq_attr
[] = {
930 &cpufreq_freq_attr_scaling_available_freqs
,
932 NULL
, /* this is a placeholder for cpb, do not remove */
936 static struct cpufreq_driver acpi_cpufreq_driver
= {
937 .verify
= acpi_cpufreq_verify
,
938 .target
= acpi_cpufreq_target
,
939 .bios_limit
= acpi_processor_get_bios_limit
,
940 .init
= acpi_cpufreq_cpu_init
,
941 .exit
= acpi_cpufreq_cpu_exit
,
942 .resume
= acpi_cpufreq_resume
,
943 .name
= "acpi-cpufreq",
944 .owner
= THIS_MODULE
,
945 .attr
= acpi_cpufreq_attr
,
948 static void __init
acpi_cpufreq_boost_init(void)
950 if (boot_cpu_has(X86_FEATURE_CPB
) || boot_cpu_has(X86_FEATURE_IDA
)) {
956 boost_supported
= true;
957 boost_enabled
= boost_state(0);
961 /* Force all MSRs to the same value */
962 boost_set_msrs(boost_enabled
, cpu_online_mask
);
964 register_cpu_notifier(&boost_nb
);
968 global_boost
.attr
.mode
= 0444;
970 /* We create the boost file in any case, though for systems without
971 * hardware support it will be read-only and hardwired to return 0.
973 if (cpufreq_sysfs_create_file(&(global_boost
.attr
)))
974 pr_warn(PFX
"could not register global boost sysfs file\n");
976 pr_debug("registered global boost sysfs file\n");
979 static void __exit
acpi_cpufreq_boost_exit(void)
981 cpufreq_sysfs_remove_file(&(global_boost
.attr
));
984 unregister_cpu_notifier(&boost_nb
);
991 static int __init
acpi_cpufreq_init(void)
998 pr_debug("acpi_cpufreq_init\n");
1000 ret
= acpi_cpufreq_early_init();
1004 #ifdef CONFIG_X86_ACPI_CPUFREQ_CPB
1005 /* this is a sysfs file with a strange name and an even stranger
1006 * semantic - per CPU instantiation, but system global effect.
1007 * Lets enable it only on AMD CPUs for compatibility reasons and
1008 * only if configured. This is considered legacy code, which
1009 * will probably be removed at some point in the future.
1011 if (check_amd_hwpstate_cpu(0)) {
1012 struct freq_attr
**iter
;
1014 pr_debug("adding sysfs entry for cpb\n");
1016 for (iter
= acpi_cpufreq_attr
; *iter
!= NULL
; iter
++)
1019 /* make sure there is a terminator behind it */
1020 if (iter
[1] == NULL
)
1025 ret
= cpufreq_register_driver(&acpi_cpufreq_driver
);
1027 free_acpi_perf_data();
1029 acpi_cpufreq_boost_init();
1034 static void __exit
acpi_cpufreq_exit(void)
1036 pr_debug("acpi_cpufreq_exit\n");
1038 acpi_cpufreq_boost_exit();
1040 cpufreq_unregister_driver(&acpi_cpufreq_driver
);
1042 free_acpi_perf_data();
1045 module_param(acpi_pstate_strict
, uint
, 0644);
1046 MODULE_PARM_DESC(acpi_pstate_strict
,
1047 "value 0 or non-zero. non-zero -> strict ACPI checks are "
1048 "performed during frequency changes.");
1050 late_initcall(acpi_cpufreq_init
);
1051 module_exit(acpi_cpufreq_exit
);
1053 static const struct x86_cpu_id acpi_cpufreq_ids
[] = {
1054 X86_FEATURE_MATCH(X86_FEATURE_ACPI
),
1055 X86_FEATURE_MATCH(X86_FEATURE_HW_PSTATE
),
1058 MODULE_DEVICE_TABLE(x86cpu
, acpi_cpufreq_ids
);
1060 static const struct acpi_device_id processor_device_ids
[] = {
1061 {ACPI_PROCESSOR_OBJECT_HID
, },
1062 {ACPI_PROCESSOR_DEVICE_HID
, },
1065 MODULE_DEVICE_TABLE(acpi
, processor_device_ids
);
1067 MODULE_ALIAS("acpi");