2 * processor_idle - idle state submodule to the ACPI processor 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) 2004 Dominik Brodowski <linux@brodo.de>
7 * Copyright (C) 2004 Anil S Keshavamurthy <anil.s.keshavamurthy@intel.com>
8 * - Added processor hotplug support
9 * Copyright (C) 2005 Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
10 * - Added support for C3 on SMP
12 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
14 * This program is free software; you can redistribute it and/or modify
15 * it under the terms of the GNU General Public License as published by
16 * the Free Software Foundation; either version 2 of the License, or (at
17 * your option) any later version.
19 * This program is distributed in the hope that it will be useful, but
20 * WITHOUT ANY WARRANTY; without even the implied warranty of
21 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
22 * General Public License for more details.
24 * You should have received a copy of the GNU General Public License along
25 * with this program; if not, write to the Free Software Foundation, Inc.,
26 * 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA.
28 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
31 #include <linux/kernel.h>
32 #include <linux/module.h>
33 #include <linux/init.h>
34 #include <linux/cpufreq.h>
35 #include <linux/proc_fs.h>
36 #include <linux/seq_file.h>
37 #include <linux/acpi.h>
38 #include <linux/dmi.h>
39 #include <linux/moduleparam.h>
40 #include <linux/sched.h> /* need_resched() */
43 #include <asm/uaccess.h>
45 #include <acpi/acpi_bus.h>
46 #include <acpi/processor.h>
48 #define ACPI_PROCESSOR_COMPONENT 0x01000000
49 #define ACPI_PROCESSOR_CLASS "processor"
50 #define ACPI_PROCESSOR_DRIVER_NAME "ACPI Processor Driver"
51 #define _COMPONENT ACPI_PROCESSOR_COMPONENT
52 ACPI_MODULE_NAME("acpi_processor")
53 #define ACPI_PROCESSOR_FILE_POWER "power"
54 #define US_TO_PM_TIMER_TICKS(t) ((t * (PM_TIMER_FREQUENCY/1000)) / 1000)
55 #define C2_OVERHEAD 4 /* 1us (3.579 ticks per us) */
56 #define C3_OVERHEAD 4 /* 1us (3.579 ticks per us) */
57 static void (*pm_idle_save
) (void);
58 module_param(max_cstate
, uint
, 0644);
60 static unsigned int nocst
= 0;
61 module_param(nocst
, uint
, 0000);
64 * bm_history -- bit-mask with a bit per jiffy of bus-master activity
65 * 1000 HZ: 0xFFFFFFFF: 32 jiffies = 32ms
66 * 800 HZ: 0xFFFFFFFF: 32 jiffies = 40ms
67 * 100 HZ: 0x0000000F: 4 jiffies = 40ms
68 * reduce history for more aggressive entry into C3
70 static unsigned int bm_history
=
71 (HZ
>= 800 ? 0xFFFFFFFF : ((1U << (HZ
/ 25)) - 1));
72 module_param(bm_history
, uint
, 0644);
73 /* --------------------------------------------------------------------------
75 -------------------------------------------------------------------------- */
78 * IBM ThinkPad R40e crashes mysteriously when going into C2 or C3.
79 * For now disable this. Probably a bug somewhere else.
81 * To skip this limit, boot/load with a large max_cstate limit.
83 static int set_max_cstate(struct dmi_system_id
*id
)
85 if (max_cstate
> ACPI_PROCESSOR_MAX_POWER
)
88 printk(KERN_NOTICE PREFIX
"%s detected - limiting to C%ld max_cstate."
89 " Override with \"processor.max_cstate=%d\"\n", id
->ident
,
90 (long)id
->driver_data
, ACPI_PROCESSOR_MAX_POWER
+ 1);
92 max_cstate
= (long)id
->driver_data
;
97 static struct dmi_system_id __initdata processor_power_dmi_table
[] = {
98 {set_max_cstate
, "IBM ThinkPad R40e", {
99 DMI_MATCH(DMI_BIOS_VENDOR
,
101 DMI_MATCH(DMI_BIOS_VERSION
,
104 {set_max_cstate
, "Medion 41700", {
105 DMI_MATCH(DMI_BIOS_VENDOR
,
106 "Phoenix Technologies LTD"),
107 DMI_MATCH(DMI_BIOS_VERSION
,
108 "R01-A1J")}, (void *)1},
109 {set_max_cstate
, "Clevo 5600D", {
110 DMI_MATCH(DMI_BIOS_VENDOR
,
111 "Phoenix Technologies LTD"),
112 DMI_MATCH(DMI_BIOS_VERSION
,
113 "SHE845M0.86C.0013.D.0302131307")},
118 static inline u32
ticks_elapsed(u32 t1
, u32 t2
)
122 else if (!acpi_fadt
.tmr_val_ext
)
123 return (((0x00FFFFFF - t1
) + t2
) & 0x00FFFFFF);
125 return ((0xFFFFFFFF - t1
) + t2
);
129 acpi_processor_power_activate(struct acpi_processor
*pr
,
130 struct acpi_processor_cx
*new)
132 struct acpi_processor_cx
*old
;
137 old
= pr
->power
.state
;
140 old
->promotion
.count
= 0;
141 new->demotion
.count
= 0;
143 /* Cleanup from old state. */
147 /* Disable bus master reload */
148 if (new->type
!= ACPI_STATE_C3
&& pr
->flags
.bm_check
)
149 acpi_set_register(ACPI_BITREG_BUS_MASTER_RLD
, 0,
150 ACPI_MTX_DO_NOT_LOCK
);
155 /* Prepare to use new state. */
158 /* Enable bus master reload */
159 if (old
->type
!= ACPI_STATE_C3
&& pr
->flags
.bm_check
)
160 acpi_set_register(ACPI_BITREG_BUS_MASTER_RLD
, 1,
161 ACPI_MTX_DO_NOT_LOCK
);
165 pr
->power
.state
= new;
170 static void acpi_safe_halt(void)
172 clear_thread_flag(TIF_POLLING_NRFLAG
);
173 smp_mb__after_clear_bit();
176 set_thread_flag(TIF_POLLING_NRFLAG
);
179 static atomic_t c3_cpu_count
;
181 static void acpi_processor_idle(void)
183 struct acpi_processor
*pr
= NULL
;
184 struct acpi_processor_cx
*cx
= NULL
;
185 struct acpi_processor_cx
*next_state
= NULL
;
189 pr
= processors
[smp_processor_id()];
194 * Interrupts must be disabled during bus mastering calculations and
195 * for C2/C3 transitions.
200 * Check whether we truly need to go idle, or should
203 if (unlikely(need_resched())) {
208 cx
= pr
->power
.state
;
220 * Check for bus mastering activity (if required), record, and check
223 if (pr
->flags
.bm_check
) {
225 unsigned long diff
= jiffies
- pr
->power
.bm_check_timestamp
;
231 /* if we didn't get called, assume there was busmaster activity */
234 pr
->power
.bm_activity
|= 0x1;
235 pr
->power
.bm_activity
<<= 1;
238 acpi_get_register(ACPI_BITREG_BUS_MASTER_STATUS
,
239 &bm_status
, ACPI_MTX_DO_NOT_LOCK
);
241 pr
->power
.bm_activity
++;
242 acpi_set_register(ACPI_BITREG_BUS_MASTER_STATUS
,
243 1, ACPI_MTX_DO_NOT_LOCK
);
246 * PIIX4 Erratum #18: Note that BM_STS doesn't always reflect
247 * the true state of bus mastering activity; forcing us to
248 * manually check the BMIDEA bit of each IDE channel.
250 else if (errata
.piix4
.bmisx
) {
251 if ((inb_p(errata
.piix4
.bmisx
+ 0x02) & 0x01)
252 || (inb_p(errata
.piix4
.bmisx
+ 0x0A) & 0x01))
253 pr
->power
.bm_activity
++;
256 pr
->power
.bm_check_timestamp
= jiffies
;
259 * Apply bus mastering demotion policy. Automatically demote
260 * to avoid a faulty transition. Note that the processor
261 * won't enter a low-power state during this call (to this
262 * funciton) but should upon the next.
264 * TBD: A better policy might be to fallback to the demotion
265 * state (use it for this quantum only) istead of
266 * demoting -- and rely on duration as our sole demotion
267 * qualification. This may, however, introduce DMA
268 * issues (e.g. floppy DMA transfer overrun/underrun).
270 if (pr
->power
.bm_activity
& cx
->demotion
.threshold
.bm
) {
272 next_state
= cx
->demotion
.state
;
277 #ifdef CONFIG_HOTPLUG_CPU
279 * Check for P_LVL2_UP flag before entering C2 and above on
280 * an SMP system. We do it here instead of doing it at _CST/P_LVL
281 * detection phase, to work cleanly with logical CPU hotplug.
283 if ((cx
->type
!= ACPI_STATE_C1
) && (num_online_cpus() > 1) &&
284 !pr
->flags
.has_cst
&& !acpi_fadt
.plvl2_up
)
285 cx
= &pr
->power
.states
[ACPI_STATE_C1
];
293 * Invoke the current Cx state to put the processor to sleep.
295 if (cx
->type
== ACPI_STATE_C2
|| cx
->type
== ACPI_STATE_C3
) {
296 clear_thread_flag(TIF_POLLING_NRFLAG
);
297 smp_mb__after_clear_bit();
298 if (need_resched()) {
299 set_thread_flag(TIF_POLLING_NRFLAG
);
310 * Use the appropriate idle routine, the one that would
311 * be used without acpi C-states.
319 * TBD: Can't get time duration while in C1, as resumes
320 * go to an ISR rather than here. Need to instrument
321 * base interrupt handler.
323 sleep_ticks
= 0xFFFFFFFF;
327 /* Get start time (ticks) */
328 t1
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
331 /* Dummy op - must do something useless after P_LVL2 read */
332 t2
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
333 /* Get end time (ticks) */
334 t2
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
335 /* Re-enable interrupts */
337 set_thread_flag(TIF_POLLING_NRFLAG
);
338 /* Compute time (ticks) that we were actually asleep */
340 ticks_elapsed(t1
, t2
) - cx
->latency_ticks
- C2_OVERHEAD
;
345 if (pr
->flags
.bm_check
) {
346 if (atomic_inc_return(&c3_cpu_count
) ==
349 * All CPUs are trying to go to C3
350 * Disable bus master arbitration
352 acpi_set_register(ACPI_BITREG_ARB_DISABLE
, 1,
353 ACPI_MTX_DO_NOT_LOCK
);
356 /* SMP with no shared cache... Invalidate cache */
357 ACPI_FLUSH_CPU_CACHE();
360 /* Get start time (ticks) */
361 t1
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
364 /* Dummy op - must do something useless after P_LVL3 read */
365 t2
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
366 /* Get end time (ticks) */
367 t2
= inl(acpi_fadt
.xpm_tmr_blk
.address
);
368 if (pr
->flags
.bm_check
) {
369 /* Enable bus master arbitration */
370 atomic_dec(&c3_cpu_count
);
371 acpi_set_register(ACPI_BITREG_ARB_DISABLE
, 0,
372 ACPI_MTX_DO_NOT_LOCK
);
375 /* Re-enable interrupts */
377 set_thread_flag(TIF_POLLING_NRFLAG
);
378 /* Compute time (ticks) that we were actually asleep */
380 ticks_elapsed(t1
, t2
) - cx
->latency_ticks
- C3_OVERHEAD
;
388 next_state
= pr
->power
.state
;
390 #ifdef CONFIG_HOTPLUG_CPU
391 /* Don't do promotion/demotion */
392 if ((cx
->type
== ACPI_STATE_C1
) && (num_online_cpus() > 1) &&
393 !pr
->flags
.has_cst
&& !acpi_fadt
.plvl2_up
) {
402 * Track the number of longs (time asleep is greater than threshold)
403 * and promote when the count threshold is reached. Note that bus
404 * mastering activity may prevent promotions.
405 * Do not promote above max_cstate.
407 if (cx
->promotion
.state
&&
408 ((cx
->promotion
.state
- pr
->power
.states
) <= max_cstate
)) {
409 if (sleep_ticks
> cx
->promotion
.threshold
.ticks
) {
410 cx
->promotion
.count
++;
411 cx
->demotion
.count
= 0;
412 if (cx
->promotion
.count
>=
413 cx
->promotion
.threshold
.count
) {
414 if (pr
->flags
.bm_check
) {
416 (pr
->power
.bm_activity
& cx
->
417 promotion
.threshold
.bm
)) {
423 next_state
= cx
->promotion
.state
;
433 * Track the number of shorts (time asleep is less than time threshold)
434 * and demote when the usage threshold is reached.
436 if (cx
->demotion
.state
) {
437 if (sleep_ticks
< cx
->demotion
.threshold
.ticks
) {
438 cx
->demotion
.count
++;
439 cx
->promotion
.count
= 0;
440 if (cx
->demotion
.count
>= cx
->demotion
.threshold
.count
) {
441 next_state
= cx
->demotion
.state
;
449 * Demote if current state exceeds max_cstate
451 if ((pr
->power
.state
- pr
->power
.states
) > max_cstate
) {
452 if (cx
->demotion
.state
)
453 next_state
= cx
->demotion
.state
;
459 * If we're going to start using a new Cx state we must clean up
460 * from the previous and prepare to use the new.
462 if (next_state
!= pr
->power
.state
)
463 acpi_processor_power_activate(pr
, next_state
);
466 static int acpi_processor_set_power_policy(struct acpi_processor
*pr
)
469 unsigned int state_is_set
= 0;
470 struct acpi_processor_cx
*lower
= NULL
;
471 struct acpi_processor_cx
*higher
= NULL
;
472 struct acpi_processor_cx
*cx
;
474 ACPI_FUNCTION_TRACE("acpi_processor_set_power_policy");
477 return_VALUE(-EINVAL
);
480 * This function sets the default Cx state policy (OS idle handler).
481 * Our scheme is to promote quickly to C2 but more conservatively
482 * to C3. We're favoring C2 for its characteristics of low latency
483 * (quick response), good power savings, and ability to allow bus
484 * mastering activity. Note that the Cx state policy is completely
485 * customizable and can be altered dynamically.
489 for (i
= 1; i
< ACPI_PROCESSOR_MAX_POWER
; i
++) {
490 cx
= &pr
->power
.states
[i
];
495 pr
->power
.state
= cx
;
501 return_VALUE(-ENODEV
);
504 for (i
= 1; i
< ACPI_PROCESSOR_MAX_POWER
; i
++) {
505 cx
= &pr
->power
.states
[i
];
510 cx
->demotion
.state
= lower
;
511 cx
->demotion
.threshold
.ticks
= cx
->latency_ticks
;
512 cx
->demotion
.threshold
.count
= 1;
513 if (cx
->type
== ACPI_STATE_C3
)
514 cx
->demotion
.threshold
.bm
= bm_history
;
521 for (i
= (ACPI_PROCESSOR_MAX_POWER
- 1); i
> 0; i
--) {
522 cx
= &pr
->power
.states
[i
];
527 cx
->promotion
.state
= higher
;
528 cx
->promotion
.threshold
.ticks
= cx
->latency_ticks
;
529 if (cx
->type
>= ACPI_STATE_C2
)
530 cx
->promotion
.threshold
.count
= 4;
532 cx
->promotion
.threshold
.count
= 10;
533 if (higher
->type
== ACPI_STATE_C3
)
534 cx
->promotion
.threshold
.bm
= bm_history
;
543 static int acpi_processor_get_power_info_fadt(struct acpi_processor
*pr
)
545 ACPI_FUNCTION_TRACE("acpi_processor_get_power_info_fadt");
548 return_VALUE(-EINVAL
);
551 return_VALUE(-ENODEV
);
553 memset(pr
->power
.states
, 0, sizeof(pr
->power
.states
));
555 /* if info is obtained from pblk/fadt, type equals state */
556 pr
->power
.states
[ACPI_STATE_C1
].type
= ACPI_STATE_C1
;
557 pr
->power
.states
[ACPI_STATE_C2
].type
= ACPI_STATE_C2
;
558 pr
->power
.states
[ACPI_STATE_C3
].type
= ACPI_STATE_C3
;
560 /* the C0 state only exists as a filler in our array,
561 * and all processors need to support C1 */
562 pr
->power
.states
[ACPI_STATE_C0
].valid
= 1;
563 pr
->power
.states
[ACPI_STATE_C1
].valid
= 1;
565 #ifndef CONFIG_HOTPLUG_CPU
567 * Check for P_LVL2_UP flag before entering C2 and above on
570 if ((num_online_cpus() > 1) && !acpi_fadt
.plvl2_up
)
571 return_VALUE(-ENODEV
);
574 /* determine C2 and C3 address from pblk */
575 pr
->power
.states
[ACPI_STATE_C2
].address
= pr
->pblk
+ 4;
576 pr
->power
.states
[ACPI_STATE_C3
].address
= pr
->pblk
+ 5;
578 /* determine latencies from FADT */
579 pr
->power
.states
[ACPI_STATE_C2
].latency
= acpi_fadt
.plvl2_lat
;
580 pr
->power
.states
[ACPI_STATE_C3
].latency
= acpi_fadt
.plvl3_lat
;
582 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
583 "lvl2[0x%08x] lvl3[0x%08x]\n",
584 pr
->power
.states
[ACPI_STATE_C2
].address
,
585 pr
->power
.states
[ACPI_STATE_C3
].address
));
590 static int acpi_processor_get_power_info_default_c1(struct acpi_processor
*pr
)
592 ACPI_FUNCTION_TRACE("acpi_processor_get_power_info_default_c1");
594 memset(pr
->power
.states
, 0, sizeof(pr
->power
.states
));
596 /* if info is obtained from pblk/fadt, type equals state */
597 pr
->power
.states
[ACPI_STATE_C1
].type
= ACPI_STATE_C1
;
598 pr
->power
.states
[ACPI_STATE_C2
].type
= ACPI_STATE_C2
;
599 pr
->power
.states
[ACPI_STATE_C3
].type
= ACPI_STATE_C3
;
601 /* the C0 state only exists as a filler in our array,
602 * and all processors need to support C1 */
603 pr
->power
.states
[ACPI_STATE_C0
].valid
= 1;
604 pr
->power
.states
[ACPI_STATE_C1
].valid
= 1;
609 static int acpi_processor_get_power_info_cst(struct acpi_processor
*pr
)
611 acpi_status status
= 0;
614 struct acpi_buffer buffer
= { ACPI_ALLOCATE_BUFFER
, NULL
};
615 union acpi_object
*cst
;
617 ACPI_FUNCTION_TRACE("acpi_processor_get_power_info_cst");
620 return_VALUE(-ENODEV
);
623 for (i
= 0; i
< ACPI_PROCESSOR_MAX_POWER
; i
++)
624 memset(&(pr
->power
.states
[i
]), 0,
625 sizeof(struct acpi_processor_cx
));
627 status
= acpi_evaluate_object(pr
->handle
, "_CST", NULL
, &buffer
);
628 if (ACPI_FAILURE(status
)) {
629 ACPI_DEBUG_PRINT((ACPI_DB_INFO
, "No _CST, giving up\n"));
630 return_VALUE(-ENODEV
);
633 cst
= (union acpi_object
*)buffer
.pointer
;
635 /* There must be at least 2 elements */
636 if (!cst
|| (cst
->type
!= ACPI_TYPE_PACKAGE
) || cst
->package
.count
< 2) {
637 ACPI_DEBUG_PRINT((ACPI_DB_ERROR
,
638 "not enough elements in _CST\n"));
643 count
= cst
->package
.elements
[0].integer
.value
;
645 /* Validate number of power states. */
646 if (count
< 1 || count
!= cst
->package
.count
- 1) {
647 ACPI_DEBUG_PRINT((ACPI_DB_ERROR
,
648 "count given by _CST is not valid\n"));
653 /* We support up to ACPI_PROCESSOR_MAX_POWER. */
654 if (count
> ACPI_PROCESSOR_MAX_POWER
) {
656 "Limiting number of power states to max (%d)\n",
657 ACPI_PROCESSOR_MAX_POWER
);
659 "Please increase ACPI_PROCESSOR_MAX_POWER if needed.\n");
660 count
= ACPI_PROCESSOR_MAX_POWER
;
663 /* Tell driver that at least _CST is supported. */
664 pr
->flags
.has_cst
= 1;
666 for (i
= 1; i
<= count
; i
++) {
667 union acpi_object
*element
;
668 union acpi_object
*obj
;
669 struct acpi_power_register
*reg
;
670 struct acpi_processor_cx cx
;
672 memset(&cx
, 0, sizeof(cx
));
674 element
= (union acpi_object
*)&(cst
->package
.elements
[i
]);
675 if (element
->type
!= ACPI_TYPE_PACKAGE
)
678 if (element
->package
.count
!= 4)
681 obj
= (union acpi_object
*)&(element
->package
.elements
[0]);
683 if (obj
->type
!= ACPI_TYPE_BUFFER
)
686 reg
= (struct acpi_power_register
*)obj
->buffer
.pointer
;
688 if (reg
->space_id
!= ACPI_ADR_SPACE_SYSTEM_IO
&&
689 (reg
->space_id
!= ACPI_ADR_SPACE_FIXED_HARDWARE
))
692 cx
.address
= (reg
->space_id
== ACPI_ADR_SPACE_FIXED_HARDWARE
) ?
695 /* There should be an easy way to extract an integer... */
696 obj
= (union acpi_object
*)&(element
->package
.elements
[1]);
697 if (obj
->type
!= ACPI_TYPE_INTEGER
)
700 cx
.type
= obj
->integer
.value
;
702 if ((cx
.type
!= ACPI_STATE_C1
) &&
703 (reg
->space_id
!= ACPI_ADR_SPACE_SYSTEM_IO
))
706 if ((cx
.type
< ACPI_STATE_C1
) || (cx
.type
> ACPI_STATE_C3
))
709 obj
= (union acpi_object
*)&(element
->package
.elements
[2]);
710 if (obj
->type
!= ACPI_TYPE_INTEGER
)
713 cx
.latency
= obj
->integer
.value
;
715 obj
= (union acpi_object
*)&(element
->package
.elements
[3]);
716 if (obj
->type
!= ACPI_TYPE_INTEGER
)
719 cx
.power
= obj
->integer
.value
;
722 memcpy(&(pr
->power
.states
[pr
->power
.count
]), &cx
, sizeof(cx
));
725 ACPI_DEBUG_PRINT((ACPI_DB_INFO
, "Found %d power states\n",
728 /* Validate number of power states discovered */
729 if (pr
->power
.count
< 2)
733 acpi_os_free(buffer
.pointer
);
735 return_VALUE(status
);
738 static void acpi_processor_power_verify_c2(struct acpi_processor_cx
*cx
)
740 ACPI_FUNCTION_TRACE("acpi_processor_get_power_verify_c2");
746 * C2 latency must be less than or equal to 100
749 else if (cx
->latency
> ACPI_PROCESSOR_MAX_C2_LATENCY
) {
750 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
751 "latency too large [%d]\n", cx
->latency
));
756 * Otherwise we've met all of our C2 requirements.
757 * Normalize the C2 latency to expidite policy
760 cx
->latency_ticks
= US_TO_PM_TIMER_TICKS(cx
->latency
);
765 static void acpi_processor_power_verify_c3(struct acpi_processor
*pr
,
766 struct acpi_processor_cx
*cx
)
768 static int bm_check_flag
;
770 ACPI_FUNCTION_TRACE("acpi_processor_get_power_verify_c3");
776 * C3 latency must be less than or equal to 1000
779 else if (cx
->latency
> ACPI_PROCESSOR_MAX_C3_LATENCY
) {
780 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
781 "latency too large [%d]\n", cx
->latency
));
786 * PIIX4 Erratum #18: We don't support C3 when Type-F (fast)
787 * DMA transfers are used by any ISA device to avoid livelock.
788 * Note that we could disable Type-F DMA (as recommended by
789 * the erratum), but this is known to disrupt certain ISA
790 * devices thus we take the conservative approach.
792 else if (errata
.piix4
.fdma
) {
793 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
794 "C3 not supported on PIIX4 with Type-F DMA\n"));
798 /* All the logic here assumes flags.bm_check is same across all CPUs */
799 if (!bm_check_flag
) {
800 /* Determine whether bm_check is needed based on CPU */
801 acpi_processor_power_init_bm_check(&(pr
->flags
), pr
->id
);
802 bm_check_flag
= pr
->flags
.bm_check
;
804 pr
->flags
.bm_check
= bm_check_flag
;
807 if (pr
->flags
.bm_check
) {
808 /* bus mastering control is necessary */
809 if (!pr
->flags
.bm_control
) {
810 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
811 "C3 support requires bus mastering control\n"));
816 * WBINVD should be set in fadt, for C3 state to be
817 * supported on when bm_check is not required.
819 if (acpi_fadt
.wb_invd
!= 1) {
820 ACPI_DEBUG_PRINT((ACPI_DB_INFO
,
821 "Cache invalidation should work properly"
822 " for C3 to be enabled on SMP systems\n"));
825 acpi_set_register(ACPI_BITREG_BUS_MASTER_RLD
,
826 0, ACPI_MTX_DO_NOT_LOCK
);
830 * Otherwise we've met all of our C3 requirements.
831 * Normalize the C3 latency to expidite policy. Enable
832 * checking of bus mastering status (bm_check) so we can
833 * use this in our C3 policy
836 cx
->latency_ticks
= US_TO_PM_TIMER_TICKS(cx
->latency
);
841 static int acpi_processor_power_verify(struct acpi_processor
*pr
)
844 unsigned int working
= 0;
846 for (i
= 1; i
< ACPI_PROCESSOR_MAX_POWER
; i
++) {
847 struct acpi_processor_cx
*cx
= &pr
->power
.states
[i
];
855 acpi_processor_power_verify_c2(cx
);
859 acpi_processor_power_verify_c3(pr
, cx
);
870 static int acpi_processor_get_power_info(struct acpi_processor
*pr
)
875 ACPI_FUNCTION_TRACE("acpi_processor_get_power_info");
877 /* NOTE: the idle thread may not be running while calling
880 result
= acpi_processor_get_power_info_cst(pr
);
881 if (result
== -ENODEV
)
882 result
= acpi_processor_get_power_info_fadt(pr
);
884 if ((result
) || (acpi_processor_power_verify(pr
) < 2))
885 result
= acpi_processor_get_power_info_default_c1(pr
);
890 * Now that we know which states are supported, set the default
891 * policy. Note that this policy can be changed dynamically
892 * (e.g. encourage deeper sleeps to conserve battery life when
895 result
= acpi_processor_set_power_policy(pr
);
897 return_VALUE(result
);
900 * if one state of type C2 or C3 is available, mark this
901 * CPU as being "idle manageable"
903 for (i
= 1; i
< ACPI_PROCESSOR_MAX_POWER
; i
++) {
904 if (pr
->power
.states
[i
].valid
) {
906 if (pr
->power
.states
[i
].type
>= ACPI_STATE_C2
)
914 int acpi_processor_cst_has_changed(struct acpi_processor
*pr
)
918 ACPI_FUNCTION_TRACE("acpi_processor_cst_has_changed");
921 return_VALUE(-EINVAL
);
924 return_VALUE(-ENODEV
);
927 if (!pr
->flags
.power_setup_done
)
928 return_VALUE(-ENODEV
);
930 /* Fall back to the default idle loop */
931 pm_idle
= pm_idle_save
;
932 synchronize_sched(); /* Relies on interrupts forcing exit from idle. */
935 result
= acpi_processor_get_power_info(pr
);
936 if ((pr
->flags
.power
== 1) && (pr
->flags
.power_setup_done
))
937 pm_idle
= acpi_processor_idle
;
939 return_VALUE(result
);
944 static int acpi_processor_power_seq_show(struct seq_file
*seq
, void *offset
)
946 struct acpi_processor
*pr
= (struct acpi_processor
*)seq
->private;
949 ACPI_FUNCTION_TRACE("acpi_processor_power_seq_show");
954 seq_printf(seq
, "active state: C%zd\n"
956 "bus master activity: %08x\n",
957 pr
->power
.state
? pr
->power
.state
- pr
->power
.states
: 0,
958 max_cstate
, (unsigned)pr
->power
.bm_activity
);
960 seq_puts(seq
, "states:\n");
962 for (i
= 1; i
<= pr
->power
.count
; i
++) {
963 seq_printf(seq
, " %cC%d: ",
964 (&pr
->power
.states
[i
] ==
965 pr
->power
.state
? '*' : ' '), i
);
967 if (!pr
->power
.states
[i
].valid
) {
968 seq_puts(seq
, "<not supported>\n");
972 switch (pr
->power
.states
[i
].type
) {
974 seq_printf(seq
, "type[C1] ");
977 seq_printf(seq
, "type[C2] ");
980 seq_printf(seq
, "type[C3] ");
983 seq_printf(seq
, "type[--] ");
987 if (pr
->power
.states
[i
].promotion
.state
)
988 seq_printf(seq
, "promotion[C%zd] ",
989 (pr
->power
.states
[i
].promotion
.state
-
992 seq_puts(seq
, "promotion[--] ");
994 if (pr
->power
.states
[i
].demotion
.state
)
995 seq_printf(seq
, "demotion[C%zd] ",
996 (pr
->power
.states
[i
].demotion
.state
-
999 seq_puts(seq
, "demotion[--] ");
1001 seq_printf(seq
, "latency[%03d] usage[%08d]\n",
1002 pr
->power
.states
[i
].latency
,
1003 pr
->power
.states
[i
].usage
);
1010 static int acpi_processor_power_open_fs(struct inode
*inode
, struct file
*file
)
1012 return single_open(file
, acpi_processor_power_seq_show
,
1016 static struct file_operations acpi_processor_power_fops
= {
1017 .open
= acpi_processor_power_open_fs
,
1019 .llseek
= seq_lseek
,
1020 .release
= single_release
,
1023 int acpi_processor_power_init(struct acpi_processor
*pr
,
1024 struct acpi_device
*device
)
1026 acpi_status status
= 0;
1027 static int first_run
= 0;
1028 struct proc_dir_entry
*entry
= NULL
;
1031 ACPI_FUNCTION_TRACE("acpi_processor_power_init");
1034 dmi_check_system(processor_power_dmi_table
);
1035 if (max_cstate
< ACPI_C_STATES_MAX
)
1037 "ACPI: processor limited to max C-state %d\n",
1043 return_VALUE(-EINVAL
);
1045 if (acpi_fadt
.cst_cnt
&& !nocst
) {
1047 acpi_os_write_port(acpi_fadt
.smi_cmd
, acpi_fadt
.cst_cnt
, 8);
1048 if (ACPI_FAILURE(status
)) {
1049 ACPI_DEBUG_PRINT((ACPI_DB_ERROR
,
1050 "Notifying BIOS of _CST ability failed\n"));
1054 acpi_processor_power_init_pdc(&(pr
->power
), pr
->id
);
1055 acpi_processor_set_pdc(pr
, pr
->power
.pdc
);
1056 acpi_processor_get_power_info(pr
);
1059 * Install the idle handler if processor power management is supported.
1060 * Note that we use previously set idle handler will be used on
1061 * platforms that only support C1.
1063 if ((pr
->flags
.power
) && (!boot_option_idle_override
)) {
1064 printk(KERN_INFO PREFIX
"CPU%d (power states:", pr
->id
);
1065 for (i
= 1; i
<= pr
->power
.count
; i
++)
1066 if (pr
->power
.states
[i
].valid
)
1067 printk(" C%d[C%d]", i
,
1068 pr
->power
.states
[i
].type
);
1072 pm_idle_save
= pm_idle
;
1073 pm_idle
= acpi_processor_idle
;
1078 entry
= create_proc_entry(ACPI_PROCESSOR_FILE_POWER
,
1079 S_IRUGO
, acpi_device_dir(device
));
1081 ACPI_DEBUG_PRINT((ACPI_DB_ERROR
,
1082 "Unable to create '%s' fs entry\n",
1083 ACPI_PROCESSOR_FILE_POWER
));
1085 entry
->proc_fops
= &acpi_processor_power_fops
;
1086 entry
->data
= acpi_driver_data(device
);
1087 entry
->owner
= THIS_MODULE
;
1090 pr
->flags
.power_setup_done
= 1;
1095 int acpi_processor_power_exit(struct acpi_processor
*pr
,
1096 struct acpi_device
*device
)
1098 ACPI_FUNCTION_TRACE("acpi_processor_power_exit");
1100 pr
->flags
.power_setup_done
= 0;
1102 if (acpi_device_dir(device
))
1103 remove_proc_entry(ACPI_PROCESSOR_FILE_POWER
,
1104 acpi_device_dir(device
));
1106 /* Unregister the idle handler when processor #0 is removed. */
1108 pm_idle
= pm_idle_save
;
1111 * We are about to unload the current idle thread pm callback
1112 * (pm_idle), Wait for all processors to update cached/local
1113 * copies of pm_idle before proceeding.