acpi_cpu.c revision 129021
1/*-
2 * Copyright (c) 2003 Nate Lawson (SDG)
3 * Copyright (c) 2001 Michael Smith
4 * All rights reserved.
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 * 1. Redistributions of source code must retain the above copyright
10 *    notice, this list of conditions and the following disclaimer.
11 * 2. Redistributions in binary form must reproduce the above copyright
12 *    notice, this list of conditions and the following disclaimer in the
13 *    documentation and/or other materials provided with the distribution.
14 *
15 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
16 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
19 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
20 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
21 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
23 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25 * SUCH DAMAGE.
26 */
27
28#include <sys/cdefs.h>
29__FBSDID("$FreeBSD: head/sys/dev/acpica/acpi_cpu.c 129021 2004-05-07 05:22:38Z njl $");
30
31#include "opt_acpi.h"
32#include <sys/param.h>
33#include <sys/bus.h>
34#include <sys/kernel.h>
35#include <sys/malloc.h>
36#include <sys/pcpu.h>
37#include <sys/power.h>
38#include <sys/proc.h>
39#include <sys/sbuf.h>
40#include <sys/smp.h>
41
42#include <dev/pci/pcivar.h>
43#include <machine/atomic.h>
44#include <machine/bus.h>
45#ifdef __ia64__
46#include <machine/pal.h>
47#endif
48#include <sys/rman.h>
49
50#include "acpi.h"
51#include <dev/acpica/acpivar.h>
52
53/*
54 * Support for ACPI Processor devices, including ACPI 2.0 throttling
55 * and C[1-3] sleep states.
56 *
57 * TODO: implement scans of all CPUs to be sure all Cx states are
58 * equivalent.
59 */
60
61/* Hooks for the ACPI CA debugging infrastructure */
62#define _COMPONENT	ACPI_PROCESSOR
63ACPI_MODULE_NAME("PROCESSOR")
64
65struct acpi_cx {
66    struct resource	*p_lvlx;	/* Register to read to enter state. */
67    uint32_t		 type;		/* C1-3 (C4 and up treated as C3). */
68    uint32_t		 trans_lat;	/* Transition latency (usec). */
69    uint32_t		 power;		/* Power consumed (mW). */
70};
71#define MAX_CX_STATES	 8
72
73struct acpi_cx_stats {
74    int			 long_slp;	/* Count of sleeps >= trans_lat. */
75    int			 short_slp;	/* Count of sleeps < trans_lat. */
76};
77
78struct acpi_cpu_softc {
79    device_t		 cpu_dev;
80    ACPI_HANDLE		 cpu_handle;
81    uint32_t		 acpi_id;	/* ACPI processor id */
82    uint32_t		 cpu_p_blk;	/* ACPI P_BLK location */
83    uint32_t		 cpu_p_blk_len;	/* P_BLK length (must be 6). */
84    struct resource	*cpu_p_cnt;	/* Throttling control register */
85    struct acpi_cx	 cpu_cx_states[MAX_CX_STATES];
86    int			 cpu_cx_count;	/* Number of valid Cx states. */
87};
88
89#define CPU_GET_REG(reg, width) 					\
90    (bus_space_read_ ## width(rman_get_bustag((reg)), 			\
91		      rman_get_bushandle((reg)), 0))
92#define CPU_SET_REG(reg, width, val)					\
93    (bus_space_write_ ## width(rman_get_bustag((reg)), 			\
94		       rman_get_bushandle((reg)), 0, (val)))
95
96/*
97 * Speeds are stored in counts, from 1 to CPU_MAX_SPEED, and
98 * reported to the user in tenths of a percent.
99 */
100static uint32_t		 cpu_duty_offset;
101static uint32_t		 cpu_duty_width;
102#define CPU_MAX_SPEED		(1 << cpu_duty_width)
103#define CPU_SPEED_PERCENT(x)	((1000 * (x)) / CPU_MAX_SPEED)
104#define CPU_SPEED_PRINTABLE(x)	(CPU_SPEED_PERCENT(x) / 10),	\
105				(CPU_SPEED_PERCENT(x) % 10)
106#define CPU_P_CNT_THT_EN (1<<4)
107#define PM_USEC(x)	 ((x) >> 2)	/* ~4 clocks per usec (3.57955 Mhz) */
108
109#define ACPI_CPU_NOTIFY_PERF_STATES	0x80	/* _PSS changed. */
110#define ACPI_CPU_NOTIFY_CX_STATES	0x81	/* _CST changed. */
111
112#define CPU_QUIRK_NO_C3		0x0001	/* C3-type states are not usable. */
113#define CPU_QUIRK_NO_THROTTLE	0x0002	/* Throttling is not usable. */
114
115#define PCI_VENDOR_INTEL	0x8086
116#define PCI_DEVICE_82371AB_3	0x7113	/* PIIX4 chipset for quirks. */
117#define PCI_REVISION_A_STEP	0
118#define PCI_REVISION_B_STEP	1
119#define PCI_REVISION_4E		2
120#define PCI_REVISION_4M		3
121
122/* Platform hardware resource information. */
123static uint32_t		 cpu_smi_cmd;	/* Value to write to SMI_CMD. */
124static uint8_t		 cpu_pstate_cnt;/* Register to take over throttling. */
125static uint8_t		 cpu_cst_cnt;	/* Indicate we are _CST aware. */
126static uint32_t		 cpu_rid;	/* Driver-wide resource id. */
127static uint32_t		 cpu_quirks;	/* Indicate any hardware bugs. */
128
129/* Runtime state. */
130static int		 cpu_cx_count;	/* Number of valid states */
131static uint32_t		 cpu_cx_next;	/* State to use for next sleep. */
132static uint32_t		 cpu_non_c3;	/* Index of lowest non-C3 state. */
133static struct acpi_cx_stats cpu_cx_stats[MAX_CX_STATES];
134static int		 cpu_idle_busy;	/* Count of CPUs in acpi_cpu_idle. */
135
136/* Values for sysctl. */
137static uint32_t		 cpu_throttle_state;
138static uint32_t		 cpu_throttle_max;
139static int		 cpu_cx_lowest;
140static char 		 cpu_cx_supported[64];
141
142static device_t		*cpu_devices;
143static int		 cpu_ndevices;
144static struct acpi_cpu_softc **cpu_softc;
145
146static struct sysctl_ctx_list	acpi_cpu_sysctl_ctx;
147static struct sysctl_oid	*acpi_cpu_sysctl_tree;
148
149static int	acpi_cpu_probe(device_t dev);
150static int	acpi_cpu_attach(device_t dev);
151static int	acpi_pcpu_get_id(uint32_t idx, uint32_t *acpi_id,
152				 uint32_t *cpu_id);
153static int	acpi_cpu_shutdown(device_t dev);
154static int	acpi_cpu_throttle_probe(struct acpi_cpu_softc *sc);
155static int	acpi_cpu_cx_probe(struct acpi_cpu_softc *sc);
156static int	acpi_cpu_cx_cst(struct acpi_cpu_softc *sc);
157static void	acpi_cpu_startup(void *arg);
158static void	acpi_cpu_startup_throttling(void);
159static void	acpi_cpu_startup_cx(void);
160static void	acpi_cpu_throttle_set(uint32_t speed);
161static void	acpi_cpu_idle(void);
162static void	acpi_cpu_c1(void);
163static void	acpi_cpu_notify(ACPI_HANDLE h, UINT32 notify, void *context);
164static int	acpi_cpu_quirks(struct acpi_cpu_softc *sc);
165static int	acpi_cpu_throttle_sysctl(SYSCTL_HANDLER_ARGS);
166static int	acpi_cpu_history_sysctl(SYSCTL_HANDLER_ARGS);
167static int	acpi_cpu_cx_lowest_sysctl(SYSCTL_HANDLER_ARGS);
168
169static device_method_t acpi_cpu_methods[] = {
170    /* Device interface */
171    DEVMETHOD(device_probe,	acpi_cpu_probe),
172    DEVMETHOD(device_attach,	acpi_cpu_attach),
173    DEVMETHOD(device_shutdown,	acpi_cpu_shutdown),
174
175    {0, 0}
176};
177
178static driver_t acpi_cpu_driver = {
179    "cpu",
180    acpi_cpu_methods,
181    sizeof(struct acpi_cpu_softc),
182};
183
184static devclass_t acpi_cpu_devclass;
185DRIVER_MODULE(cpu, acpi, acpi_cpu_driver, acpi_cpu_devclass, 0, 0);
186MODULE_DEPEND(cpu, acpi, 1, 1, 1);
187
188static int
189acpi_cpu_probe(device_t dev)
190{
191    int			   acpi_id, cpu_id, cx_count;
192    ACPI_BUFFER		   buf;
193    ACPI_HANDLE		   handle;
194    char		   msg[32];
195    ACPI_OBJECT		   *obj;
196    ACPI_STATUS		   status;
197
198    if (acpi_disabled("cpu") || acpi_get_type(dev) != ACPI_TYPE_PROCESSOR)
199	return (ENXIO);
200
201    handle = acpi_get_handle(dev);
202    if (cpu_softc == NULL)
203	cpu_softc = malloc(sizeof(struct acpi_cpu_softc *) *
204	    (mp_maxid + 1), M_TEMP /* XXX */, M_WAITOK | M_ZERO);
205
206    /* Get our Processor object. */
207    buf.Pointer = NULL;
208    buf.Length = ACPI_ALLOCATE_BUFFER;
209    status = AcpiEvaluateObject(handle, NULL, NULL, &buf);
210    if (ACPI_FAILURE(status)) {
211	device_printf(dev, "probe failed to get Processor obj - %s\n",
212		      AcpiFormatException(status));
213	return (ENXIO);
214    }
215    obj = (ACPI_OBJECT *)buf.Pointer;
216    if (obj->Type != ACPI_TYPE_PROCESSOR) {
217	device_printf(dev, "Processor object has bad type %d\n", obj->Type);
218	AcpiOsFree(obj);
219	return (ENXIO);
220    }
221
222    /*
223     * Find the processor associated with our unit.  We could use the
224     * ProcId as a key, however, some boxes do not have the same values
225     * in their Processor object as the ProcId values in the MADT.
226     */
227    acpi_id = obj->Processor.ProcId;
228    AcpiOsFree(obj);
229    if (acpi_pcpu_get_id(device_get_unit(dev), &acpi_id, &cpu_id) != 0)
230	return (ENXIO);
231
232    /*
233     * Check if we already probed this processor.  We scan the bus twice
234     * so it's possible we've already seen this one.
235     */
236    if (cpu_softc[cpu_id] != NULL)
237	return (ENXIO);
238
239    /* Get a count of Cx states for our device string. */
240    cx_count = 0;
241    buf.Pointer = NULL;
242    buf.Length = ACPI_ALLOCATE_BUFFER;
243    status = AcpiEvaluateObject(handle, "_CST", NULL, &buf);
244    if (ACPI_SUCCESS(status)) {
245	obj = (ACPI_OBJECT *)buf.Pointer;
246	if (ACPI_PKG_VALID(obj, 2))
247	    acpi_PkgInt32(obj, 0, &cx_count);
248	AcpiOsFree(obj);
249    } else {
250	if (AcpiGbl_FADT->Plvl2Lat <= 100)
251	    cx_count++;
252	if (AcpiGbl_FADT->Plvl3Lat <= 1000)
253	    cx_count++;
254	if (cx_count > 0)
255	    cx_count++;
256    }
257    if (cx_count > 0)
258	snprintf(msg, sizeof(msg), "ACPI CPU (%d Cx states)", cx_count);
259    else
260	strlcpy(msg, "ACPI CPU", sizeof(msg));
261    device_set_desc_copy(dev, msg);
262
263    /* Mark this processor as in-use and save our derived id for attach. */
264    cpu_softc[cpu_id] = (void *)1;
265    acpi_set_magic(dev, cpu_id);
266
267    return (0);
268}
269
270static int
271acpi_cpu_attach(device_t dev)
272{
273    ACPI_BUFFER		   buf;
274    ACPI_OBJECT		   *obj;
275    struct acpi_cpu_softc *sc;
276    struct acpi_softc	  *acpi_sc;
277    ACPI_STATUS		   status;
278    int			   thr_ret, cx_ret;
279
280    ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
281
282    ACPI_ASSERTLOCK;
283
284    sc = device_get_softc(dev);
285    sc->cpu_dev = dev;
286    sc->cpu_handle = acpi_get_handle(dev);
287    cpu_softc[acpi_get_magic(dev)] = sc;
288
289    buf.Pointer = NULL;
290    buf.Length = ACPI_ALLOCATE_BUFFER;
291    status = AcpiEvaluateObject(sc->cpu_handle, NULL, NULL, &buf);
292    if (ACPI_FAILURE(status)) {
293	device_printf(dev, "attach failed to get Processor obj - %s\n",
294		      AcpiFormatException(status));
295	return (ENXIO);
296    }
297    obj = (ACPI_OBJECT *)buf.Pointer;
298    sc->cpu_p_blk = obj->Processor.PblkAddress;
299    sc->cpu_p_blk_len = obj->Processor.PblkLength;
300    sc->acpi_id = obj->Processor.ProcId;
301    AcpiOsFree(obj);
302    ACPI_DEBUG_PRINT((ACPI_DB_INFO, "acpi_cpu%d: P_BLK at %#x/%d\n",
303		     device_get_unit(dev), sc->cpu_p_blk, sc->cpu_p_blk_len));
304
305    acpi_sc = acpi_device_get_parent_softc(dev);
306    sysctl_ctx_init(&acpi_cpu_sysctl_ctx);
307    acpi_cpu_sysctl_tree = SYSCTL_ADD_NODE(&acpi_cpu_sysctl_ctx,
308				SYSCTL_CHILDREN(acpi_sc->acpi_sysctl_tree),
309				OID_AUTO, "cpu", CTLFLAG_RD, 0, "");
310
311    /* If this is the first device probed, check for quirks. */
312    if (device_get_unit(dev) == 0)
313	acpi_cpu_quirks(sc);
314
315    /*
316     * Probe for throttling and Cx state support.
317     * If none of these is present, free up unused resources.
318     */
319    thr_ret = acpi_cpu_throttle_probe(sc);
320    cx_ret = acpi_cpu_cx_probe(sc);
321    if (thr_ret == 0 || cx_ret == 0) {
322	status = AcpiInstallNotifyHandler(sc->cpu_handle, ACPI_DEVICE_NOTIFY,
323					  acpi_cpu_notify, sc);
324	if (device_get_unit(dev) == 0)
325	    AcpiOsQueueForExecution(OSD_PRIORITY_LO, acpi_cpu_startup, NULL);
326    } else {
327	sysctl_ctx_free(&acpi_cpu_sysctl_ctx);
328    }
329
330    return_VALUE (0);
331}
332
333/*
334 * Find the nth present CPU and return its pc_cpuid as well as set the
335 * pc_acpi_id from the most reliable source.
336 */
337static int
338acpi_pcpu_get_id(uint32_t idx, uint32_t *acpi_id, uint32_t *cpu_id)
339{
340    struct pcpu	*pcpu_data;
341    uint32_t	 i;
342
343    KASSERT(acpi_id != NULL, ("Null acpi_id"));
344    KASSERT(cpu_id != NULL, ("Null cpu_id"));
345    for (i = 0; i <= mp_maxid; i++) {
346	if (CPU_ABSENT(i))
347	    continue;
348	pcpu_data = pcpu_find(i);
349	KASSERT(pcpu_data != NULL, ("no pcpu data for %d", i));
350	if (idx-- == 0) {
351	    /*
352	     * If pc_acpi_id was not initialized (e.g., a non-APIC UP box)
353	     * override it with the value from the ASL.  Otherwise, if the
354	     * two don't match, prefer the MADT-derived value.  Finally,
355	     * return the pc_cpuid to reference this processor.
356	     */
357	    if (pcpu_data->pc_acpi_id == 0xffffffff)
358		 pcpu_data->pc_acpi_id = *acpi_id;
359	    else if (pcpu_data->pc_acpi_id != *acpi_id)
360		*acpi_id = pcpu_data->pc_acpi_id;
361	    *cpu_id = pcpu_data->pc_cpuid;
362	    return (0);
363	}
364    }
365
366    return (ESRCH);
367}
368
369static int
370acpi_cpu_shutdown(device_t dev)
371{
372    ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
373
374    /* Disable any entry to the idle function. */
375    cpu_cx_count = 0;
376
377    /* Wait for all processors to exit acpi_cpu_idle(). */
378    smp_rendezvous(NULL, NULL, NULL, NULL);
379    while (cpu_idle_busy > 0)
380	DELAY(1);
381
382    return_VALUE (0);
383}
384
385static int
386acpi_cpu_throttle_probe(struct acpi_cpu_softc *sc)
387{
388    uint32_t		 duty_end;
389    ACPI_BUFFER		 buf;
390    ACPI_OBJECT		 obj;
391    ACPI_GENERIC_ADDRESS gas;
392    ACPI_STATUS		 status;
393
394    ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
395
396    ACPI_ASSERTLOCK;
397
398    /* Get throttling parameters from the FADT.  0 means not supported. */
399    if (device_get_unit(sc->cpu_dev) == 0) {
400	cpu_smi_cmd = AcpiGbl_FADT->SmiCmd;
401	cpu_pstate_cnt = AcpiGbl_FADT->PstateCnt;
402	cpu_cst_cnt = AcpiGbl_FADT->CstCnt;
403	cpu_duty_offset = AcpiGbl_FADT->DutyOffset;
404	cpu_duty_width = AcpiGbl_FADT->DutyWidth;
405    }
406    if (cpu_duty_width == 0 || (cpu_quirks & CPU_QUIRK_NO_THROTTLE) != 0)
407	return (ENXIO);
408
409    /* Validate the duty offset/width. */
410    duty_end = cpu_duty_offset + cpu_duty_width - 1;
411    if (duty_end > 31) {
412	device_printf(sc->cpu_dev, "CLK_VAL field overflows P_CNT register\n");
413	return (ENXIO);
414    }
415    if (cpu_duty_offset <= 4 && duty_end >= 4) {
416	device_printf(sc->cpu_dev, "CLK_VAL field overlaps THT_EN bit\n");
417	return (ENXIO);
418    }
419
420    /*
421     * If not present, fall back to using the processor's P_BLK to find
422     * the P_CNT register.
423     *
424     * Note that some systems seem to duplicate the P_BLK pointer
425     * across multiple CPUs, so not getting the resource is not fatal.
426     */
427    buf.Pointer = &obj;
428    buf.Length = sizeof(obj);
429    status = AcpiEvaluateObject(sc->cpu_handle, "_PTC", NULL, &buf);
430    if (ACPI_SUCCESS(status)) {
431	if (obj.Buffer.Length < sizeof(ACPI_GENERIC_ADDRESS) + 3) {
432	    device_printf(sc->cpu_dev, "_PTC buffer too small\n");
433	    return (ENXIO);
434	}
435	memcpy(&gas, obj.Buffer.Pointer + 3, sizeof(gas));
436	sc->cpu_p_cnt = acpi_bus_alloc_gas(sc->cpu_dev, &cpu_rid, &gas);
437	if (sc->cpu_p_cnt != NULL) {
438	    ACPI_DEBUG_PRINT((ACPI_DB_INFO, "acpi_cpu%d: P_CNT from _PTC\n",
439			     device_get_unit(sc->cpu_dev)));
440	}
441    }
442
443    /* If _PTC not present or other failure, try the P_BLK. */
444    if (sc->cpu_p_cnt == NULL) {
445	/*
446	 * The spec says P_BLK must be 6 bytes long.  However, some
447	 * systems use it to indicate a fractional set of features
448	 * present so we take anything >= 4.
449	 */
450	if (sc->cpu_p_blk_len < 4)
451	    return (ENXIO);
452	gas.Address = sc->cpu_p_blk;
453	gas.AddressSpaceId = ACPI_ADR_SPACE_SYSTEM_IO;
454	gas.RegisterBitWidth = 32;
455	sc->cpu_p_cnt = acpi_bus_alloc_gas(sc->cpu_dev, &cpu_rid, &gas);
456	if (sc->cpu_p_cnt != NULL) {
457	    ACPI_DEBUG_PRINT((ACPI_DB_INFO, "acpi_cpu%d: P_CNT from P_BLK\n",
458			     device_get_unit(sc->cpu_dev)));
459	} else {
460	    device_printf(sc->cpu_dev, "Failed to attach throttling P_CNT\n");
461	    return (ENXIO);
462	}
463    }
464    cpu_rid++;
465
466    return (0);
467}
468
469static int
470acpi_cpu_cx_probe(struct acpi_cpu_softc *sc)
471{
472    ACPI_GENERIC_ADDRESS gas;
473    struct acpi_cx	*cx_ptr;
474    int			 error;
475
476    ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
477
478    /* Bus mastering arbitration control is needed for C3. */
479    if (AcpiGbl_FADT->V1_Pm2CntBlk == 0 || AcpiGbl_FADT->Pm2CntLen == 0) {
480	cpu_quirks |= CPU_QUIRK_NO_C3;
481	ACPI_DEBUG_PRINT((ACPI_DB_INFO,
482			 "acpi_cpu%d: No BM control, C3 disabled\n",
483			 device_get_unit(sc->cpu_dev)));
484    }
485
486    /*
487     * First, check for the ACPI 2.0 _CST sleep states object.
488     * If not usable, fall back to the P_BLK's P_LVL2 and P_LVL3.
489     */
490    sc->cpu_cx_count = 0;
491    error = acpi_cpu_cx_cst(sc);
492    if (error != 0) {
493	cx_ptr = sc->cpu_cx_states;
494
495	/* C1 has been required since just after ACPI 1.0 */
496	cx_ptr->type = ACPI_STATE_C1;
497	cx_ptr->trans_lat = 0;
498	cpu_non_c3 = 0;
499	cx_ptr++;
500	sc->cpu_cx_count++;
501
502	/*
503	 * The spec says P_BLK must be 6 bytes long.  However, some systems
504	 * use it to indicate a fractional set of features present so we
505	 * take 5 as C2.  Some may also have a value of 7 to indicate
506	 * another C3 but most use _CST for this (as required) and having
507	 * "only" C1-C3 is not a hardship.
508	 */
509	if (sc->cpu_p_blk_len < 5)
510	    goto done;
511
512	/* Validate and allocate resources for C2 (P_LVL2). */
513	gas.AddressSpaceId = ACPI_ADR_SPACE_SYSTEM_IO;
514	gas.RegisterBitWidth = 8;
515	if (AcpiGbl_FADT->Plvl2Lat <= 100) {
516	    gas.Address = sc->cpu_p_blk + 4;
517	    cx_ptr->p_lvlx = acpi_bus_alloc_gas(sc->cpu_dev, &cpu_rid, &gas);
518	    if (cx_ptr->p_lvlx != NULL) {
519		cpu_rid++;
520		cx_ptr->type = ACPI_STATE_C2;
521		cx_ptr->trans_lat = AcpiGbl_FADT->Plvl2Lat;
522		cpu_non_c3 = 1;
523		cx_ptr++;
524		sc->cpu_cx_count++;
525	    }
526	}
527	if (sc->cpu_p_blk_len < 6)
528	    goto done;
529
530	/* Validate and allocate resources for C3 (P_LVL3). */
531	if (AcpiGbl_FADT->Plvl3Lat <= 1000 &&
532	    (cpu_quirks & CPU_QUIRK_NO_C3) == 0) {
533
534	    gas.Address = sc->cpu_p_blk + 5;
535	    cx_ptr->p_lvlx = acpi_bus_alloc_gas(sc->cpu_dev, &cpu_rid, &gas);
536	    if (cx_ptr->p_lvlx != NULL) {
537		cpu_rid++;
538		cx_ptr->type = ACPI_STATE_C3;
539		cx_ptr->trans_lat = AcpiGbl_FADT->Plvl3Lat;
540		cx_ptr++;
541		sc->cpu_cx_count++;
542	    }
543	}
544    }
545
546done:
547    /* If no valid registers were found, don't attach. */
548    if (sc->cpu_cx_count == 0)
549	return (ENXIO);
550
551    return (0);
552}
553
554/*
555 * Parse a _CST package and set up its Cx states.  Since the _CST object
556 * can change dynamically, our notify handler may call this function
557 * to clean up and probe the new _CST package.
558 */
559static int
560acpi_cpu_cx_cst(struct acpi_cpu_softc *sc)
561{
562    struct	 acpi_cx *cx_ptr;
563    ACPI_STATUS	 status;
564    ACPI_BUFFER	 buf;
565    ACPI_OBJECT	*top;
566    ACPI_OBJECT	*pkg;
567    uint32_t	 count;
568    int		 i;
569
570    ACPI_FUNCTION_TRACE((char *)(uintptr_t)__func__);
571
572    buf.Pointer = NULL;
573    buf.Length = ACPI_ALLOCATE_BUFFER;
574    status = AcpiEvaluateObject(sc->cpu_handle, "_CST", NULL, &buf);
575    if (ACPI_FAILURE(status))
576	return (ENXIO);
577
578    /* _CST is a package with a count and at least one Cx package. */
579    top = (ACPI_OBJECT *)buf.Pointer;
580    if (!ACPI_PKG_VALID(top, 2) || acpi_PkgInt32(top, 0, &count) != 0) {
581	device_printf(sc->cpu_dev, "Invalid _CST package\n");
582	AcpiOsFree(buf.Pointer);
583	return (ENXIO);
584    }
585    if (count != top->Package.Count - 1) {
586	device_printf(sc->cpu_dev, "Invalid _CST state count (%d != %d)\n",
587	       count, top->Package.Count - 1);
588	count = top->Package.Count - 1;
589    }
590    if (count > MAX_CX_STATES) {
591	device_printf(sc->cpu_dev, "_CST has too many states (%d)\n", count);
592	count = MAX_CX_STATES;
593    }
594
595    /* Set up all valid states. */
596    sc->cpu_cx_count = 0;
597    cx_ptr = sc->cpu_cx_states;
598    for (i = 0; i < count; i++) {
599	pkg = &top->Package.Elements[i + 1];
600	if (!ACPI_PKG_VALID(pkg, 4) ||
601	    acpi_PkgInt32(pkg, 1, &cx_ptr->type) != 0 ||
602	    acpi_PkgInt32(pkg, 2, &cx_ptr->trans_lat) != 0 ||
603	    acpi_PkgInt32(pkg, 3, &cx_ptr->power) != 0) {
604
605	    device_printf(sc->cpu_dev, "Skipping invalid Cx state package\n");
606	    continue;
607	}
608
609	/* Validate the state to see if we should use it. */
610	switch (cx_ptr->type) {
611	case ACPI_STATE_C1:
612	    cpu_non_c3 = i;
613	    cx_ptr++;
614	    sc->cpu_cx_count++;
615	    continue;
616	case ACPI_STATE_C2:
617	    if (cx_ptr->trans_lat > 100) {
618		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
619				 "acpi_cpu%d: C2[%d] not available.\n",
620				 device_get_unit(sc->cpu_dev), i));
621		continue;
622	    }
623	    cpu_non_c3 = i;
624	    break;
625	case ACPI_STATE_C3:
626	default:
627	    if (cx_ptr->trans_lat > 1000 ||
628		(cpu_quirks & CPU_QUIRK_NO_C3) != 0) {
629
630		ACPI_DEBUG_PRINT((ACPI_DB_INFO,
631				 "acpi_cpu%d: C3[%d] not available.\n",
632				 device_get_unit(sc->cpu_dev), i));
633		continue;
634	    }
635	    break;
636	}
637
638#ifdef notyet
639	/* Free up any previous register. */
640	if (cx_ptr->p_lvlx != NULL) {
641	    bus_release_resource(sc->cpu_dev, 0, 0, cx_ptr->p_lvlx);
642	    cx_ptr->p_lvlx = NULL;
643	}
644#endif
645
646	/* Allocate the control register for C2 or C3. */
647	acpi_PkgGas(sc->cpu_dev, pkg, 0, &cpu_rid, &cx_ptr->p_lvlx);
648	if (cx_ptr->p_lvlx != NULL) {
649	    cpu_rid++;
650	    ACPI_DEBUG_PRINT((ACPI_DB_INFO,
651			     "acpi_cpu%d: Got C%d - %d latency\n",
652			     device_get_unit(sc->cpu_dev), cx_ptr->type,
653			     cx_ptr->trans_lat));
654	    cx_ptr++;
655	    sc->cpu_cx_count++;
656	}
657    }
658    AcpiOsFree(buf.Pointer);
659
660    return (0);
661}
662
663/*
664 * Call this *after* all CPUs have been attached.
665 */
666static void
667acpi_cpu_startup(void *arg)
668{
669    struct acpi_cpu_softc *sc;
670    int count, i;
671
672    /* Get set of CPU devices */
673    devclass_get_devices(acpi_cpu_devclass, &cpu_devices, &cpu_ndevices);
674
675    /*
676     * Make sure all the processors' Cx counts match.  We should probably
677     * also check the contents of each.  However, no known systems have
678     * non-matching Cx counts so we'll deal with this later.
679     */
680    count = MAX_CX_STATES;
681    for (i = 0; i < cpu_ndevices; i++) {
682	sc = device_get_softc(cpu_devices[i]);
683	count = min(sc->cpu_cx_count, count);
684    }
685    cpu_cx_count = count;
686
687    /* Perform throttling and Cx final initialization. */
688    sc = device_get_softc(cpu_devices[0]);
689    if (sc->cpu_p_cnt != NULL)
690	acpi_cpu_startup_throttling();
691    if (cpu_cx_count > 0)
692	acpi_cpu_startup_cx();
693}
694
695/*
696 * Takes the ACPI lock to avoid fighting anyone over the SMI command
697 * port.
698 */
699static void
700acpi_cpu_startup_throttling()
701{
702    ACPI_LOCK_DECL;
703
704    /* Initialise throttling states */
705    cpu_throttle_max = CPU_MAX_SPEED;
706    cpu_throttle_state = CPU_MAX_SPEED;
707
708    SYSCTL_ADD_INT(&acpi_cpu_sysctl_ctx,
709		   SYSCTL_CHILDREN(acpi_cpu_sysctl_tree),
710		   OID_AUTO, "throttle_max", CTLFLAG_RD,
711		   &cpu_throttle_max, 0, "maximum CPU speed");
712    SYSCTL_ADD_PROC(&acpi_cpu_sysctl_ctx,
713		    SYSCTL_CHILDREN(acpi_cpu_sysctl_tree),
714		    OID_AUTO, "throttle_state",
715		    CTLTYPE_INT | CTLFLAG_RW, &cpu_throttle_state,
716		    0, acpi_cpu_throttle_sysctl, "I", "current CPU speed");
717
718    /* If ACPI 2.0+, signal platform that we are taking over throttling. */
719    ACPI_LOCK;
720    if (cpu_pstate_cnt != 0)
721	AcpiOsWritePort(cpu_smi_cmd, cpu_pstate_cnt, 8);
722
723    /* Set initial speed to maximum. */
724    acpi_cpu_throttle_set(cpu_throttle_max);
725    ACPI_UNLOCK;
726
727    printf("acpi_cpu: throttling enabled, %d steps (100%% to %d.%d%%), "
728	   "currently %d.%d%%\n", CPU_MAX_SPEED, CPU_SPEED_PRINTABLE(1),
729	   CPU_SPEED_PRINTABLE(cpu_throttle_state));
730}
731
732static void
733acpi_cpu_startup_cx()
734{
735    struct acpi_cpu_softc *sc;
736    struct sbuf		 sb;
737    int i;
738    ACPI_LOCK_DECL;
739
740    sc = device_get_softc(cpu_devices[0]);
741    sbuf_new(&sb, cpu_cx_supported, sizeof(cpu_cx_supported), SBUF_FIXEDLEN);
742    for (i = 0; i < cpu_cx_count; i++)
743	sbuf_printf(&sb, "C%d/%d ", i + 1, sc->cpu_cx_states[i].trans_lat);
744    sbuf_trim(&sb);
745    sbuf_finish(&sb);
746    SYSCTL_ADD_STRING(&acpi_cpu_sysctl_ctx,
747		      SYSCTL_CHILDREN(acpi_cpu_sysctl_tree),
748		      OID_AUTO, "cx_supported", CTLFLAG_RD, cpu_cx_supported,
749		      0, "Cx/microsecond values for supported Cx states");
750    SYSCTL_ADD_PROC(&acpi_cpu_sysctl_ctx,
751		    SYSCTL_CHILDREN(acpi_cpu_sysctl_tree),
752		    OID_AUTO, "cx_lowest", CTLTYPE_STRING | CTLFLAG_RW,
753		    NULL, 0, acpi_cpu_cx_lowest_sysctl, "A",
754		    "lowest Cx sleep state to use");
755    SYSCTL_ADD_PROC(&acpi_cpu_sysctl_ctx,
756		    SYSCTL_CHILDREN(acpi_cpu_sysctl_tree),
757		    OID_AUTO, "cx_history", CTLTYPE_STRING | CTLFLAG_RD,
758		    NULL, 0, acpi_cpu_history_sysctl, "A",
759		    "count of full sleeps for Cx state / short sleeps");
760
761#ifdef notyet
762    /* Signal platform that we can handle _CST notification. */
763    if (cpu_cst_cnt != 0) {
764	ACPI_LOCK;
765	AcpiOsWritePort(cpu_smi_cmd, cpu_cst_cnt, 8);
766	ACPI_UNLOCK;
767    }
768#endif
769
770    /* Take over idling from cpu_idle_default(). */
771    cpu_cx_next = cpu_cx_lowest;
772    cpu_idle_hook = acpi_cpu_idle;
773}
774
775/*
776 * Set CPUs to the new state.
777 *
778 * Must be called with the ACPI lock held.
779 */
780static void
781acpi_cpu_throttle_set(uint32_t speed)
782{
783    struct acpi_cpu_softc	*sc;
784    int				i;
785    uint32_t			p_cnt, clk_val;
786
787    ACPI_ASSERTLOCK;
788
789    /* Iterate over processors */
790    for (i = 0; i < cpu_ndevices; i++) {
791	sc = device_get_softc(cpu_devices[i]);
792	if (sc->cpu_p_cnt == NULL)
793	    continue;
794
795	/* Get the current P_CNT value and disable throttling */
796	p_cnt = CPU_GET_REG(sc->cpu_p_cnt, 4);
797	p_cnt &= ~CPU_P_CNT_THT_EN;
798	CPU_SET_REG(sc->cpu_p_cnt, 4, p_cnt);
799
800	/* If we're at maximum speed, that's all */
801	if (speed < CPU_MAX_SPEED) {
802	    /* Mask the old CLK_VAL off and or-in the new value */
803	    clk_val = (CPU_MAX_SPEED - 1) << cpu_duty_offset;
804	    p_cnt &= ~clk_val;
805	    p_cnt |= (speed << cpu_duty_offset);
806
807	    /* Write the new P_CNT value and then enable throttling */
808	    CPU_SET_REG(sc->cpu_p_cnt, 4, p_cnt);
809	    p_cnt |= CPU_P_CNT_THT_EN;
810	    CPU_SET_REG(sc->cpu_p_cnt, 4, p_cnt);
811	}
812	ACPI_VPRINT(sc->cpu_dev, acpi_device_get_parent_softc(sc->cpu_dev),
813		    "set speed to %d.%d%%\n", CPU_SPEED_PRINTABLE(speed));
814    }
815    cpu_throttle_state = speed;
816}
817
818/*
819 * Idle the CPU in the lowest state possible.
820 * This function is called with interrupts disabled.
821 */
822static void
823acpi_cpu_idle()
824{
825    struct	acpi_cpu_softc *sc;
826    struct	acpi_cx *cx_next;
827    uint32_t	start_time, end_time;
828    int		bm_active, i, asleep;
829
830    /* If disabled, return immediately. */
831    if (cpu_cx_count == 0) {
832	ACPI_ENABLE_IRQS();
833	return;
834    }
835
836    /*
837     * Look up our CPU id to get our softc.  If it's NULL, we'll use C1
838     * since there is no ACPI processor object for this CPU.  This occurs
839     * for logical CPUs in the HTT case.
840     */
841    sc = cpu_softc[PCPU_GET(cpuid)];
842    if (sc == NULL) {
843	acpi_cpu_c1();
844	return;
845    }
846
847    /* Record that a CPU is in the idle function. */
848    atomic_add_int(&cpu_idle_busy, 1);
849
850    /*
851     * Check for bus master activity.  If there was activity, clear
852     * the bit and use the lowest non-C3 state.  Note that the USB
853     * driver polling for new devices keeps this bit set all the
854     * time if USB is enabled.
855     */
856    AcpiGetRegister(ACPI_BITREG_BUS_MASTER_STATUS, &bm_active,
857		    ACPI_MTX_DO_NOT_LOCK);
858    if (bm_active != 0) {
859	AcpiSetRegister(ACPI_BITREG_BUS_MASTER_STATUS, 1,
860			ACPI_MTX_DO_NOT_LOCK);
861	cpu_cx_next = min(cpu_cx_next, cpu_non_c3);
862    }
863
864    /* Perform the actual sleep based on the Cx-specific semantics. */
865    cx_next = &sc->cpu_cx_states[cpu_cx_next];
866    switch (cx_next->type) {
867    case ACPI_STATE_C0:
868	panic("acpi_cpu_idle: attempting to sleep in C0");
869	/* NOTREACHED */
870    case ACPI_STATE_C1:
871	/* Execute HLT (or equivalent) and wait for an interrupt. */
872	acpi_cpu_c1();
873
874	/*
875	 * We can't calculate the time spent in C1 since the place we
876	 * wake up is an ISR.  Use a constant time of 1 ms.
877	 */
878	start_time = 0;
879	end_time = 1000;
880	break;
881    case ACPI_STATE_C2:
882	/*
883	 * Read from P_LVLx to enter C2, checking time spent asleep.
884	 * Use the ACPI timer for measuring sleep time.  Since we need to
885	 * get the time very close to the CPU start/stop clock logic, this
886	 * is the only reliable time source.
887	 */
888	AcpiHwLowLevelRead(32, &start_time, &AcpiGbl_FADT->XPmTmrBlk);
889	CPU_GET_REG(cx_next->p_lvlx, 1);
890
891	/*
892	 * Read the end time twice.  Since it may take an arbitrary time
893	 * to enter the idle state, the first read may be executed before
894	 * the processor has stopped.  Doing it again provides enough
895	 * margin that we are certain to have a correct value.
896	 */
897	AcpiHwLowLevelRead(32, &end_time, &AcpiGbl_FADT->XPmTmrBlk);
898	AcpiHwLowLevelRead(32, &end_time, &AcpiGbl_FADT->XPmTmrBlk);
899	ACPI_ENABLE_IRQS();
900	break;
901    case ACPI_STATE_C3:
902    default:
903	/* Disable bus master arbitration and enable bus master wakeup. */
904	AcpiSetRegister(ACPI_BITREG_ARB_DISABLE, 1, ACPI_MTX_DO_NOT_LOCK);
905	AcpiSetRegister(ACPI_BITREG_BUS_MASTER_RLD, 1, ACPI_MTX_DO_NOT_LOCK);
906
907	/* Read from P_LVLx to enter C3, checking time spent asleep. */
908	AcpiHwLowLevelRead(32, &start_time, &AcpiGbl_FADT->XPmTmrBlk);
909	CPU_GET_REG(cx_next->p_lvlx, 1);
910
911	/* Read the end time twice.  See comment for C2 above. */
912	AcpiHwLowLevelRead(32, &end_time, &AcpiGbl_FADT->XPmTmrBlk);
913	AcpiHwLowLevelRead(32, &end_time, &AcpiGbl_FADT->XPmTmrBlk);
914
915	/* Enable bus master arbitration and disable bus master wakeup. */
916	AcpiSetRegister(ACPI_BITREG_ARB_DISABLE, 0, ACPI_MTX_DO_NOT_LOCK);
917	AcpiSetRegister(ACPI_BITREG_BUS_MASTER_RLD, 0, ACPI_MTX_DO_NOT_LOCK);
918	ACPI_ENABLE_IRQS();
919	break;
920    }
921
922    /* Find the actual time asleep in microseconds, minus overhead. */
923    end_time = acpi_TimerDelta(end_time, start_time);
924    asleep = PM_USEC(end_time) - cx_next->trans_lat;
925
926    /* Record statistics */
927    if (asleep < cx_next->trans_lat)
928	cpu_cx_stats[cpu_cx_next].short_slp++;
929    else
930	cpu_cx_stats[cpu_cx_next].long_slp++;
931
932    /*
933     * If we slept 100 us or more, use the lowest Cx state.
934     * Otherwise, find the lowest state that has a latency less than
935     * or equal to the length of our last sleep.
936     */
937    if (asleep >= 100)
938	cpu_cx_next = cpu_cx_lowest;
939    else {
940	for (i = cpu_cx_lowest; i >= 0; i--) {
941	    if (sc->cpu_cx_states[i].trans_lat <= asleep) {
942		cpu_cx_next = i;
943		break;
944	    }
945	}
946    }
947
948    /* Decrement reference count checked by acpi_cpu_shutdown(). */
949    atomic_subtract_int(&cpu_idle_busy, 1);
950}
951
952/* Put the CPU in C1 in a machine-dependant way. */
953static void
954acpi_cpu_c1()
955{
956#ifdef __ia64__
957    ia64_call_pal_static(PAL_HALT_LIGHT, 0, 0, 0);
958#else
959    __asm __volatile("sti; hlt");
960#endif
961}
962
963/*
964 * Re-evaluate the _PSS and _CST objects when we are notified that they
965 * have changed.
966 *
967 * XXX Re-evaluation disabled until locking is done.
968 */
969static void
970acpi_cpu_notify(ACPI_HANDLE h, UINT32 notify, void *context)
971{
972    struct acpi_cpu_softc *sc = (struct acpi_cpu_softc *)context;
973
974    switch (notify) {
975    case ACPI_CPU_NOTIFY_PERF_STATES:
976	device_printf(sc->cpu_dev, "Performance states changed\n");
977	/* acpi_cpu_px_available(sc); */
978	break;
979    case ACPI_CPU_NOTIFY_CX_STATES:
980	device_printf(sc->cpu_dev, "Cx states changed\n");
981	/* acpi_cpu_cx_cst(sc); */
982	break;
983    default:
984	device_printf(sc->cpu_dev, "Unknown notify %#x\n", notify);
985	break;
986    }
987}
988
989static int
990acpi_cpu_quirks(struct acpi_cpu_softc *sc)
991{
992
993    /*
994     * C3 is not supported on multiple CPUs since this would require
995     * flushing all caches which is currently too expensive.
996     */
997    if (mp_ncpus > 1)
998	cpu_quirks |= CPU_QUIRK_NO_C3;
999
1000#ifdef notyet
1001    /* Look for various quirks of the PIIX4 part. */
1002    acpi_dev = pci_find_device(PCI_VENDOR_INTEL, PCI_DEVICE_82371AB_3);
1003    if (acpi_dev != NULL) {
1004	switch (pci_get_revid(acpi_dev)) {
1005	/*
1006	 * Disable throttling control on PIIX4 A and B-step.
1007	 * See specification changes #13 ("Manual Throttle Duty Cycle")
1008	 * and #14 ("Enabling and Disabling Manual Throttle"), plus
1009	 * erratum #5 ("STPCLK# Deassertion Time") from the January
1010	 * 2002 PIIX4 specification update.  Note that few (if any)
1011	 * mobile systems ever used this part.
1012	 */
1013	case PCI_REVISION_A_STEP:
1014	case PCI_REVISION_B_STEP:
1015	    cpu_quirks |= CPU_QUIRK_NO_THROTTLE;
1016	    /* FALLTHROUGH */
1017	/*
1018	 * Disable C3 support for all PIIX4 chipsets.  Some of these parts
1019	 * do not report the BMIDE status to the BM status register and
1020	 * others have a livelock bug if Type-F DMA is enabled.  Linux
1021	 * works around the BMIDE bug by reading the BM status directly
1022	 * but we take the simpler approach of disabling C3 for these
1023	 * parts.
1024	 *
1025	 * See erratum #18 ("C3 Power State/BMIDE and Type-F DMA
1026	 * Livelock") from the January 2002 PIIX4 specification update.
1027	 * Applies to all PIIX4 models.
1028	 */
1029	case PCI_REVISION_4E:
1030	case PCI_REVISION_4M:
1031	    cpu_quirks |= CPU_QUIRK_NO_C3;
1032	    break;
1033	default:
1034	    break;
1035	}
1036    }
1037#endif
1038
1039    return (0);
1040}
1041
1042/* Handle changes in the CPU throttling setting. */
1043static int
1044acpi_cpu_throttle_sysctl(SYSCTL_HANDLER_ARGS)
1045{
1046    uint32_t	*argp;
1047    uint32_t	 arg;
1048    int		 error;
1049    ACPI_LOCK_DECL;
1050
1051    argp = (uint32_t *)oidp->oid_arg1;
1052    arg = *argp;
1053    error = sysctl_handle_int(oidp, &arg, 0, req);
1054
1055    /* Error or no new value */
1056    if (error != 0 || req->newptr == NULL)
1057	return (error);
1058    if (arg < 1 || arg > cpu_throttle_max)
1059	return (EINVAL);
1060
1061    /* If throttling changed, notify the BIOS of the new rate. */
1062    ACPI_LOCK;
1063    if (*argp != arg) {
1064	*argp = arg;
1065	acpi_cpu_throttle_set(arg);
1066    }
1067    ACPI_UNLOCK;
1068
1069    return (0);
1070}
1071
1072static int
1073acpi_cpu_history_sysctl(SYSCTL_HANDLER_ARGS)
1074{
1075    struct sbuf	 sb;
1076    char	 buf[128];
1077    int		 i;
1078
1079    sbuf_new(&sb, buf, sizeof(buf), SBUF_FIXEDLEN);
1080    for (i = 0; i < cpu_cx_count; i++) {
1081	sbuf_printf(&sb, "%u/%u ", cpu_cx_stats[i].long_slp,
1082		    cpu_cx_stats[i].short_slp);
1083    }
1084    sbuf_trim(&sb);
1085    sbuf_finish(&sb);
1086    sysctl_handle_string(oidp, sbuf_data(&sb), sbuf_len(&sb), req);
1087    sbuf_delete(&sb);
1088
1089    return (0);
1090}
1091
1092static int
1093acpi_cpu_cx_lowest_sysctl(SYSCTL_HANDLER_ARGS)
1094{
1095    struct	 acpi_cpu_softc *sc;
1096    char	 state[8];
1097    int		 val, error, i;
1098
1099    sc = device_get_softc(cpu_devices[0]);
1100    snprintf(state, sizeof(state), "C%d", cpu_cx_lowest + 1);
1101    error = sysctl_handle_string(oidp, state, sizeof(state), req);
1102    if (error != 0 || req->newptr == NULL)
1103	return (error);
1104    if (strlen(state) < 2 || toupper(state[0]) != 'C')
1105	return (EINVAL);
1106    val = (int) strtol(state + 1, NULL, 10) - 1;
1107    if (val < 0 || val > cpu_cx_count - 1)
1108	return (EINVAL);
1109
1110    /* Use the new value for the next idle slice. */
1111    cpu_cx_lowest = val;
1112    cpu_cx_next = val;
1113
1114    /* If not disabling, cache the new lowest non-C3 state. */
1115    cpu_non_c3 = 0;
1116    for (i = cpu_cx_lowest; i >= 0; i--) {
1117	if (sc->cpu_cx_states[i].type < ACPI_STATE_C3) {
1118	    cpu_non_c3 = i;
1119	    break;
1120	}
1121    }
1122
1123    /* Reset the statistics counters. */
1124    memset(cpu_cx_stats, 0, sizeof(cpu_cx_stats));
1125
1126    return (0);
1127}
1128