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acpi_cpu_md.c revision 1.33
      1  1.33  jruoho /* $NetBSD: acpi_cpu_md.c,v 1.33 2010/08/24 10:29:53 jruoho Exp $ */
      2   1.1  jruoho 
      3   1.1  jruoho /*-
      4   1.1  jruoho  * Copyright (c) 2010 Jukka Ruohonen <jruohonen (at) iki.fi>
      5   1.1  jruoho  * All rights reserved.
      6   1.1  jruoho  *
      7   1.1  jruoho  * Redistribution and use in source and binary forms, with or without
      8   1.1  jruoho  * modification, are permitted provided that the following conditions
      9   1.1  jruoho  * are met:
     10   1.1  jruoho  *
     11   1.1  jruoho  * 1. Redistributions of source code must retain the above copyright
     12   1.1  jruoho  *    notice, this list of conditions and the following disclaimer.
     13   1.1  jruoho  * 2. Redistributions in binary form must reproduce the above copyright
     14   1.1  jruoho  *    notice, this list of conditions and the following disclaimer in the
     15   1.1  jruoho  *    documentation and/or other materials provided with the distribution.
     16   1.1  jruoho  *
     17   1.1  jruoho  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     18   1.1  jruoho  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     19   1.1  jruoho  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     20   1.1  jruoho  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     21   1.1  jruoho  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     22   1.1  jruoho  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     23   1.1  jruoho  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     24   1.1  jruoho  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     25   1.1  jruoho  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     26   1.1  jruoho  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     27   1.1  jruoho  * SUCH DAMAGE.
     28   1.1  jruoho  */
     29   1.1  jruoho #include <sys/cdefs.h>
     30  1.33  jruoho __KERNEL_RCSID(0, "$NetBSD: acpi_cpu_md.c,v 1.33 2010/08/24 10:29:53 jruoho Exp $");
     31   1.1  jruoho 
     32   1.1  jruoho #include <sys/param.h>
     33   1.1  jruoho #include <sys/bus.h>
     34   1.1  jruoho #include <sys/kcore.h>
     35   1.5  jruoho #include <sys/sysctl.h>
     36   1.4  jruoho #include <sys/xcall.h>
     37   1.1  jruoho 
     38   1.1  jruoho #include <x86/cpu.h>
     39   1.5  jruoho #include <x86/cpufunc.h>
     40   1.5  jruoho #include <x86/cputypes.h>
     41   1.1  jruoho #include <x86/cpuvar.h>
     42   1.5  jruoho #include <x86/cpu_msr.h>
     43   1.1  jruoho #include <x86/machdep.h>
     44   1.1  jruoho 
     45   1.1  jruoho #include <dev/acpi/acpica.h>
     46   1.1  jruoho #include <dev/acpi/acpi_cpu.h>
     47   1.1  jruoho 
     48  1.12  jruoho #include <dev/pci/pcivar.h>
     49  1.12  jruoho #include <dev/pci/pcidevs.h>
     50  1.12  jruoho 
     51  1.33  jruoho #define ACPICPU_P_STATE_STATUS	0
     52  1.33  jruoho 
     53  1.32  jruoho /*
     54  1.32  jruoho  * AMD families 10h and 11h.
     55  1.32  jruoho  */
     56  1.32  jruoho #define MSR_10H_LIMIT		0xc0010061
     57  1.32  jruoho #define MSR_10H_CONTROL		0xc0010062
     58  1.32  jruoho #define MSR_10H_STATUS		0xc0010063
     59  1.32  jruoho #define MSR_10H_CONFIG		0xc0010064
     60  1.22  jruoho 
     61  1.32  jruoho /*
     62  1.32  jruoho  * AMD family 0Fh.
     63  1.32  jruoho  */
     64  1.32  jruoho #define MSR_0FH_CONTROL		0xc0010041
     65  1.17  jruoho #define MSR_0FH_STATUS		0xc0010042
     66  1.17  jruoho 
     67  1.32  jruoho #define MSR_0FH_STATUS_CFID	__BITS( 0,  5)
     68  1.32  jruoho #define MSR_0FH_STATUS_CVID	__BITS(32, 36)
     69  1.32  jruoho #define MSR_0FH_STATUS_PENDING	__BITS(31, 31)
     70  1.32  jruoho 
     71  1.32  jruoho #define MSR_0FH_CONTROL_FID	__BITS( 0,  5)
     72  1.32  jruoho #define MSR_0FH_CONTROL_VID	__BITS( 8, 12)
     73  1.32  jruoho #define MSR_0FH_CONTROL_CHG	__BITS(16, 16)
     74  1.32  jruoho #define MSR_0FH_CONTROL_CNT	__BITS(32, 51)
     75  1.32  jruoho 
     76  1.32  jruoho #define ACPI_0FH_STATUS_FID	__BITS( 0,  5)
     77  1.32  jruoho #define ACPI_0FH_STATUS_VID	__BITS( 6, 10)
     78  1.32  jruoho 
     79  1.32  jruoho #define ACPI_0FH_CONTROL_FID	__BITS( 0,  5)
     80  1.32  jruoho #define ACPI_0FH_CONTROL_VID	__BITS( 6, 10)
     81  1.32  jruoho #define ACPI_0FH_CONTROL_VST	__BITS(11, 17)
     82  1.32  jruoho #define ACPI_0FH_CONTROL_MVS	__BITS(18, 19)
     83  1.32  jruoho #define ACPI_0FH_CONTROL_PLL	__BITS(20, 26)
     84  1.32  jruoho #define ACPI_0FH_CONTROL_RVO	__BITS(28, 29)
     85  1.32  jruoho #define ACPI_0FH_CONTROL_IRT	__BITS(30, 31)
     86  1.32  jruoho 
     87  1.32  jruoho #define FID_TO_VCO_FID(fidd)	(((fid) < 8) ? (8 + ((fid) << 1)) : (fid))
     88  1.17  jruoho 
     89   1.5  jruoho static char	  native_idle_text[16];
     90   1.5  jruoho void		(*native_idle)(void) = NULL;
     91   1.1  jruoho 
     92  1.12  jruoho static int	 acpicpu_md_quirks_piix4(struct pci_attach_args *);
     93  1.19  jruoho static void	 acpicpu_md_pstate_status(void *, void *);
     94  1.32  jruoho static int	 acpicpu_md_pstate_fidvid_get(struct acpicpu_softc *,
     95  1.32  jruoho                                               uint32_t *);
     96  1.32  jruoho static int	 acpicpu_md_pstate_fidvid_set(struct acpicpu_pstate *);
     97  1.32  jruoho static int	 acpicpu_md_pstate_fidvid_read(uint32_t *, uint32_t *);
     98  1.32  jruoho static void	 acpicpu_md_pstate_fidvid_write(uint32_t, uint32_t,
     99  1.32  jruoho 					        uint32_t, uint32_t);
    100  1.19  jruoho static void	 acpicpu_md_tstate_status(void *, void *);
    101  1.19  jruoho static int	 acpicpu_md_pstate_sysctl_init(void);
    102   1.5  jruoho static int	 acpicpu_md_pstate_sysctl_get(SYSCTLFN_PROTO);
    103   1.5  jruoho static int	 acpicpu_md_pstate_sysctl_set(SYSCTLFN_PROTO);
    104   1.5  jruoho static int	 acpicpu_md_pstate_sysctl_all(SYSCTLFN_PROTO);
    105   1.5  jruoho 
    106   1.5  jruoho extern uint32_t cpus_running;
    107   1.5  jruoho extern struct acpicpu_softc **acpicpu_sc;
    108  1.19  jruoho static struct sysctllog *acpicpu_log = NULL;
    109   1.1  jruoho 
    110   1.1  jruoho uint32_t
    111   1.1  jruoho acpicpu_md_cap(void)
    112   1.1  jruoho {
    113   1.1  jruoho 	struct cpu_info *ci = curcpu();
    114   1.1  jruoho 	uint32_t val = 0;
    115   1.1  jruoho 
    116  1.17  jruoho 	if (cpu_vendor != CPUVENDOR_IDT &&
    117  1.17  jruoho 	    cpu_vendor != CPUVENDOR_INTEL)
    118   1.1  jruoho 		return val;
    119   1.1  jruoho 
    120   1.1  jruoho 	/*
    121   1.1  jruoho 	 * Basic SMP C-states (required for _CST).
    122   1.1  jruoho 	 */
    123   1.1  jruoho 	val |= ACPICPU_PDC_C_C1PT | ACPICPU_PDC_C_C2C3;
    124   1.1  jruoho 
    125   1.1  jruoho         /*
    126   1.1  jruoho 	 * If MONITOR/MWAIT is available, announce
    127   1.1  jruoho 	 * support for native instructions in all C-states.
    128   1.1  jruoho 	 */
    129   1.1  jruoho         if ((ci->ci_feat_val[1] & CPUID2_MONITOR) != 0)
    130   1.1  jruoho 		val |= ACPICPU_PDC_C_C1_FFH | ACPICPU_PDC_C_C2C3_FFH;
    131   1.1  jruoho 
    132   1.5  jruoho 	/*
    133  1.10  jruoho 	 * Set native P- and T-states, if available.
    134   1.5  jruoho 	 */
    135   1.5  jruoho         if ((ci->ci_feat_val[1] & CPUID2_EST) != 0)
    136   1.5  jruoho 		val |= ACPICPU_PDC_P_FFH;
    137   1.5  jruoho 
    138  1.10  jruoho 	if ((ci->ci_feat_val[0] & CPUID_ACPI) != 0)
    139  1.10  jruoho 		val |= ACPICPU_PDC_T_FFH;
    140  1.10  jruoho 
    141   1.1  jruoho 	return val;
    142   1.1  jruoho }
    143   1.1  jruoho 
    144   1.1  jruoho uint32_t
    145   1.1  jruoho acpicpu_md_quirks(void)
    146   1.1  jruoho {
    147   1.1  jruoho 	struct cpu_info *ci = curcpu();
    148  1.12  jruoho 	struct pci_attach_args pa;
    149  1.18  jruoho 	uint32_t family, val = 0;
    150  1.21  jruoho 	uint32_t regs[4];
    151   1.1  jruoho 
    152   1.1  jruoho 	if (acpicpu_md_cpus_running() == 1)
    153   1.1  jruoho 		val |= ACPICPU_FLAG_C_BM;
    154   1.1  jruoho 
    155   1.1  jruoho 	if ((ci->ci_feat_val[1] & CPUID2_MONITOR) != 0)
    156   1.5  jruoho 		val |= ACPICPU_FLAG_C_FFH;
    157   1.1  jruoho 
    158  1.25  jruoho 	val |= ACPICPU_FLAG_C_APIC | ACPICPU_FLAG_C_TSC;
    159  1.22  jruoho 
    160   1.1  jruoho 	switch (cpu_vendor) {
    161   1.1  jruoho 
    162  1.17  jruoho 	case CPUVENDOR_IDT:
    163  1.22  jruoho 
    164  1.22  jruoho 		if ((ci->ci_feat_val[1] & CPUID2_EST) != 0)
    165  1.22  jruoho 			val |= ACPICPU_FLAG_P_FFH;
    166  1.22  jruoho 
    167  1.22  jruoho 		if ((ci->ci_feat_val[0] & CPUID_ACPI) != 0)
    168  1.22  jruoho 			val |= ACPICPU_FLAG_T_FFH;
    169  1.22  jruoho 
    170  1.22  jruoho 		break;
    171  1.22  jruoho 
    172   1.1  jruoho 	case CPUVENDOR_INTEL:
    173  1.17  jruoho 
    174  1.22  jruoho 		val |= ACPICPU_FLAG_C_BM | ACPICPU_FLAG_C_ARB;
    175  1.22  jruoho 
    176   1.5  jruoho 		if ((ci->ci_feat_val[1] & CPUID2_EST) != 0)
    177   1.5  jruoho 			val |= ACPICPU_FLAG_P_FFH;
    178   1.5  jruoho 
    179  1.10  jruoho 		if ((ci->ci_feat_val[0] & CPUID_ACPI) != 0)
    180  1.10  jruoho 			val |= ACPICPU_FLAG_T_FFH;
    181  1.10  jruoho 
    182  1.22  jruoho 		/*
    183  1.25  jruoho 		 * Check whether MSR_APERF, MSR_MPERF, and Turbo
    184  1.25  jruoho 		 * Boost are available. Also see if we might have
    185  1.25  jruoho 		 * an invariant local APIC timer ("ARAT").
    186  1.23  jruoho 		 */
    187  1.23  jruoho 		if (cpuid_level >= 0x06) {
    188  1.23  jruoho 
    189  1.23  jruoho 			x86_cpuid(0x06, regs);
    190  1.23  jruoho 
    191  1.25  jruoho 			if ((regs[2] & __BIT(0)) != 0)		/* ECX.06[0] */
    192  1.23  jruoho 				val |= ACPICPU_FLAG_P_HW;
    193  1.23  jruoho 
    194  1.25  jruoho 			if ((regs[0] & __BIT(1)) != 0)		/* EAX.06[1] */
    195  1.24  jruoho 				val |= ACPICPU_FLAG_P_TURBO;
    196  1.25  jruoho 
    197  1.25  jruoho 			if ((regs[0] & __BIT(2)) != 0)		/* EAX.06[2] */
    198  1.25  jruoho 				val &= ~ACPICPU_FLAG_C_APIC;
    199  1.23  jruoho 		}
    200  1.23  jruoho 
    201  1.23  jruoho 		/*
    202  1.22  jruoho 		 * Detect whether TSC is invariant. If it is not,
    203  1.22  jruoho 		 * we keep the flag to note that TSC will not run
    204  1.22  jruoho 		 * at constant rate. Depending on the CPU, this may
    205  1.22  jruoho 		 * affect P- and T-state changes, but especially
    206  1.22  jruoho 		 * relevant are C-states; with variant TSC, states
    207  1.24  jruoho 		 * larger than C1 may completely stop the counter.
    208  1.22  jruoho 		 */
    209  1.22  jruoho 		x86_cpuid(0x80000000, regs);
    210  1.22  jruoho 
    211  1.22  jruoho 		if (regs[0] >= 0x80000007) {
    212  1.22  jruoho 
    213  1.22  jruoho 			x86_cpuid(0x80000007, regs);
    214  1.22  jruoho 
    215  1.32  jruoho 			if ((regs[3] & __BIT(8)) != 0)
    216  1.22  jruoho 				val &= ~ACPICPU_FLAG_C_TSC;
    217  1.22  jruoho 		}
    218  1.22  jruoho 
    219  1.17  jruoho 		break;
    220  1.12  jruoho 
    221  1.17  jruoho 	case CPUVENDOR_AMD:
    222  1.17  jruoho 
    223  1.32  jruoho 		x86_cpuid(0x80000000, regs);
    224  1.32  jruoho 
    225  1.32  jruoho 		if (regs[0] < 0x80000007)
    226  1.32  jruoho 			break;
    227  1.32  jruoho 
    228  1.32  jruoho 		x86_cpuid(0x80000007, regs);
    229  1.32  jruoho 
    230  1.18  jruoho 		family = CPUID2FAMILY(ci->ci_signature);
    231  1.18  jruoho 
    232  1.18  jruoho 		if (family == 0xf)
    233  1.18  jruoho 			family += CPUID2EXTFAMILY(ci->ci_signature);
    234  1.18  jruoho 
    235  1.32  jruoho     		switch (family) {
    236   1.1  jruoho 
    237  1.22  jruoho 		case 0x0f:
    238  1.32  jruoho 
    239  1.32  jruoho 			if ((regs[3] & CPUID_APM_FID) == 0)
    240  1.32  jruoho 				break;
    241  1.32  jruoho 
    242  1.32  jruoho 			if ((regs[3] & CPUID_APM_VID) == 0)
    243  1.32  jruoho 				break;
    244  1.32  jruoho 
    245  1.32  jruoho 			val |= ACPICPU_FLAG_P_FFH | ACPICPU_FLAG_P_FIDVID;
    246  1.32  jruoho 			break;
    247  1.32  jruoho 
    248  1.17  jruoho 		case 0x10:
    249  1.17  jruoho 		case 0x11:
    250   1.1  jruoho 
    251  1.22  jruoho 			if ((regs[3] & CPUID_APM_TSC) != 0)
    252  1.22  jruoho 				val &= ~ACPICPU_FLAG_C_TSC;
    253  1.22  jruoho 
    254  1.21  jruoho 			if ((regs[3] & CPUID_APM_HWP) != 0)
    255  1.17  jruoho 				val |= ACPICPU_FLAG_P_FFH;
    256  1.21  jruoho 
    257  1.21  jruoho 			if ((regs[3] & CPUID_APM_CPB) != 0)
    258  1.21  jruoho 				val |= ACPICPU_FLAG_P_TURBO;
    259  1.17  jruoho 		}
    260   1.1  jruoho 
    261   1.1  jruoho 		break;
    262   1.1  jruoho 	}
    263   1.1  jruoho 
    264  1.12  jruoho 	/*
    265  1.12  jruoho 	 * There are several erratums for PIIX4.
    266  1.12  jruoho 	 */
    267  1.12  jruoho 	if (pci_find_device(&pa, acpicpu_md_quirks_piix4) != 0)
    268  1.12  jruoho 		val |= ACPICPU_FLAG_PIIX4;
    269  1.12  jruoho 
    270   1.1  jruoho 	return val;
    271   1.1  jruoho }
    272   1.1  jruoho 
    273  1.12  jruoho static int
    274  1.12  jruoho acpicpu_md_quirks_piix4(struct pci_attach_args *pa)
    275  1.12  jruoho {
    276  1.12  jruoho 
    277  1.12  jruoho 	/*
    278  1.12  jruoho 	 * XXX: The pci_find_device(9) function only
    279  1.12  jruoho 	 *	deals with attached devices. Change this
    280  1.12  jruoho 	 *	to use something like pci_device_foreach().
    281  1.12  jruoho 	 */
    282  1.12  jruoho 	if (PCI_VENDOR(pa->pa_id) != PCI_VENDOR_INTEL)
    283  1.12  jruoho 		return 0;
    284  1.12  jruoho 
    285  1.12  jruoho 	if (PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_INTEL_82371AB_ISA ||
    286  1.12  jruoho 	    PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_INTEL_82440MX_PMC)
    287  1.12  jruoho 		return 1;
    288  1.12  jruoho 
    289  1.12  jruoho 	return 0;
    290  1.12  jruoho }
    291  1.12  jruoho 
    292   1.1  jruoho uint32_t
    293   1.1  jruoho acpicpu_md_cpus_running(void)
    294   1.1  jruoho {
    295   1.1  jruoho 
    296   1.1  jruoho 	return popcount32(cpus_running);
    297   1.1  jruoho }
    298   1.1  jruoho 
    299   1.1  jruoho int
    300  1.31  jruoho acpicpu_md_idle_start(struct acpicpu_softc *sc)
    301   1.1  jruoho {
    302   1.1  jruoho 	const size_t size = sizeof(native_idle_text);
    303  1.31  jruoho 	struct acpicpu_cstate *cs;
    304  1.31  jruoho 	bool ipi = false;
    305  1.31  jruoho 	int i;
    306   1.1  jruoho 
    307   1.1  jruoho 	x86_cpu_idle_get(&native_idle, native_idle_text, size);
    308  1.31  jruoho 
    309  1.31  jruoho 	for (i = 0; i < ACPI_C_STATE_COUNT; i++) {
    310  1.31  jruoho 
    311  1.31  jruoho 		cs = &sc->sc_cstate[i];
    312  1.31  jruoho 
    313  1.31  jruoho 		if (cs->cs_method == ACPICPU_C_STATE_HALT) {
    314  1.31  jruoho 			ipi = true;
    315  1.31  jruoho 			break;
    316  1.31  jruoho 		}
    317  1.31  jruoho 	}
    318  1.31  jruoho 
    319  1.31  jruoho 	x86_cpu_idle_set(acpicpu_cstate_idle, "acpi", ipi);
    320   1.1  jruoho 
    321   1.1  jruoho 	return 0;
    322   1.1  jruoho }
    323   1.1  jruoho 
    324   1.1  jruoho int
    325   1.1  jruoho acpicpu_md_idle_stop(void)
    326   1.1  jruoho {
    327   1.4  jruoho 	uint64_t xc;
    328  1.31  jruoho 	bool ipi;
    329   1.1  jruoho 
    330  1.31  jruoho 	ipi = (native_idle != x86_cpu_idle_halt) ? false : true;
    331  1.31  jruoho 	x86_cpu_idle_set(native_idle, native_idle_text, ipi);
    332   1.1  jruoho 
    333   1.4  jruoho 	/*
    334   1.4  jruoho 	 * Run a cross-call to ensure that all CPUs are
    335   1.4  jruoho 	 * out from the ACPI idle-loop before detachment.
    336   1.4  jruoho 	 */
    337   1.4  jruoho 	xc = xc_broadcast(0, (xcfunc_t)nullop, NULL, NULL);
    338   1.4  jruoho 	xc_wait(xc);
    339   1.1  jruoho 
    340   1.1  jruoho 	return 0;
    341   1.1  jruoho }
    342   1.1  jruoho 
    343   1.3  jruoho /*
    344  1.31  jruoho  * Called with interrupts disabled.
    345  1.31  jruoho  * Caller should enable interrupts after return.
    346   1.3  jruoho  */
    347   1.1  jruoho void
    348   1.1  jruoho acpicpu_md_idle_enter(int method, int state)
    349   1.1  jruoho {
    350   1.3  jruoho 	struct cpu_info *ci = curcpu();
    351   1.1  jruoho 
    352   1.1  jruoho 	switch (method) {
    353   1.1  jruoho 
    354   1.1  jruoho 	case ACPICPU_C_STATE_FFH:
    355   1.3  jruoho 
    356   1.3  jruoho 		x86_enable_intr();
    357   1.3  jruoho 		x86_monitor(&ci->ci_want_resched, 0, 0);
    358   1.3  jruoho 
    359  1.31  jruoho 		if (__predict_false(ci->ci_want_resched != 0))
    360   1.3  jruoho 			return;
    361   1.3  jruoho 
    362   1.1  jruoho 		x86_mwait((state - 1) << 4, 0);
    363   1.1  jruoho 		break;
    364   1.1  jruoho 
    365   1.1  jruoho 	case ACPICPU_C_STATE_HALT:
    366   1.3  jruoho 
    367  1.31  jruoho 		if (__predict_false(ci->ci_want_resched != 0))
    368   1.3  jruoho 			return;
    369   1.3  jruoho 
    370   1.1  jruoho 		x86_stihlt();
    371   1.1  jruoho 		break;
    372   1.1  jruoho 	}
    373   1.1  jruoho }
    374   1.5  jruoho 
    375   1.5  jruoho int
    376   1.5  jruoho acpicpu_md_pstate_start(void)
    377   1.5  jruoho {
    378  1.20  jruoho 	const uint64_t est = __BIT(16);
    379  1.20  jruoho 	uint64_t val;
    380  1.20  jruoho 
    381  1.20  jruoho 	switch (cpu_vendor) {
    382  1.20  jruoho 
    383  1.20  jruoho 	case CPUVENDOR_IDT:
    384  1.20  jruoho 	case CPUVENDOR_INTEL:
    385  1.20  jruoho 
    386  1.20  jruoho 		val = rdmsr(MSR_MISC_ENABLE);
    387  1.20  jruoho 
    388  1.20  jruoho 		if ((val & est) == 0) {
    389  1.20  jruoho 
    390  1.20  jruoho 			val |= est;
    391  1.20  jruoho 
    392  1.20  jruoho 			wrmsr(MSR_MISC_ENABLE, val);
    393  1.20  jruoho 			val = rdmsr(MSR_MISC_ENABLE);
    394  1.20  jruoho 
    395  1.20  jruoho 			if ((val & est) == 0)
    396  1.20  jruoho 				return ENOTTY;
    397  1.20  jruoho 		}
    398  1.20  jruoho 	}
    399   1.9  jruoho 
    400  1.19  jruoho 	return acpicpu_md_pstate_sysctl_init();
    401   1.5  jruoho }
    402   1.5  jruoho 
    403   1.5  jruoho int
    404   1.5  jruoho acpicpu_md_pstate_stop(void)
    405   1.5  jruoho {
    406   1.5  jruoho 
    407  1.19  jruoho 	if (acpicpu_log != NULL)
    408  1.19  jruoho 		sysctl_teardown(&acpicpu_log);
    409   1.5  jruoho 
    410   1.5  jruoho 	return 0;
    411   1.5  jruoho }
    412   1.5  jruoho 
    413   1.5  jruoho int
    414  1.15  jruoho acpicpu_md_pstate_pss(struct acpicpu_softc *sc)
    415   1.5  jruoho {
    416  1.15  jruoho 	struct acpicpu_pstate *ps, msr;
    417  1.17  jruoho 	struct cpu_info *ci = curcpu();
    418  1.18  jruoho 	uint32_t family, i = 0;
    419  1.13  jruoho 
    420  1.15  jruoho 	(void)memset(&msr, 0, sizeof(struct acpicpu_pstate));
    421  1.13  jruoho 
    422   1.5  jruoho 	switch (cpu_vendor) {
    423   1.5  jruoho 
    424  1.17  jruoho 	case CPUVENDOR_IDT:
    425   1.5  jruoho 	case CPUVENDOR_INTEL:
    426  1.33  jruoho 
    427  1.33  jruoho 		/*
    428  1.33  jruoho 		 * If the so-called Turbo Boost is present,
    429  1.33  jruoho 		 * the P0-state is always the "turbo state".
    430  1.33  jruoho 		 *
    431  1.33  jruoho 		 * For discussion, see:
    432  1.33  jruoho 		 *
    433  1.33  jruoho 		 *	Intel Corporation: Intel Turbo Boost Technology
    434  1.33  jruoho 		 *	in Intel Core(tm) Microarchitectures (Nehalem)
    435  1.33  jruoho 		 *	Based Processors. White Paper, November 2008.
    436  1.33  jruoho 		 */
    437  1.33  jruoho 		if ((sc->sc_flags & ACPICPU_FLAG_P_TURBO) != 0)
    438  1.33  jruoho 			sc->sc_pstate[0].ps_flags |= ACPICPU_FLAG_P_TURBO;
    439  1.33  jruoho 
    440  1.15  jruoho 		msr.ps_control_addr = MSR_PERF_CTL;
    441  1.15  jruoho 		msr.ps_control_mask = __BITS(0, 15);
    442  1.15  jruoho 
    443  1.15  jruoho 		msr.ps_status_addr  = MSR_PERF_STATUS;
    444  1.15  jruoho 		msr.ps_status_mask  = __BITS(0, 15);
    445  1.13  jruoho 		break;
    446  1.13  jruoho 
    447  1.13  jruoho 	case CPUVENDOR_AMD:
    448  1.13  jruoho 
    449  1.33  jruoho 		if ((sc->sc_flags & ACPICPU_FLAG_P_FIDVID) != 0)
    450  1.33  jruoho 			msr.ps_flags |= ACPICPU_FLAG_P_FIDVID;
    451  1.33  jruoho 
    452  1.18  jruoho 		family = CPUID2FAMILY(ci->ci_signature);
    453  1.18  jruoho 
    454  1.18  jruoho 		if (family == 0xf)
    455  1.18  jruoho 			family += CPUID2EXTFAMILY(ci->ci_signature);
    456  1.18  jruoho 
    457  1.18  jruoho 		switch (family) {
    458  1.17  jruoho 
    459  1.32  jruoho 		case 0x0f:
    460  1.32  jruoho 			msr.ps_control_addr = MSR_0FH_CONTROL;
    461  1.32  jruoho 			msr.ps_status_addr  = MSR_0FH_STATUS;
    462  1.32  jruoho 			break;
    463  1.32  jruoho 
    464  1.17  jruoho 		case 0x10:
    465  1.17  jruoho 		case 0x11:
    466  1.17  jruoho 			msr.ps_control_addr = MSR_10H_CONTROL;
    467  1.17  jruoho 			msr.ps_control_mask = __BITS(0, 2);
    468  1.17  jruoho 
    469  1.17  jruoho 			msr.ps_status_addr  = MSR_10H_STATUS;
    470  1.17  jruoho 			msr.ps_status_mask  = __BITS(0, 2);
    471  1.17  jruoho 			break;
    472  1.17  jruoho 
    473  1.17  jruoho 		default:
    474  1.17  jruoho 
    475  1.17  jruoho 			if ((sc->sc_flags & ACPICPU_FLAG_P_XPSS) == 0)
    476  1.17  jruoho 				return EOPNOTSUPP;
    477  1.17  jruoho 		}
    478  1.13  jruoho 
    479  1.13  jruoho 		break;
    480  1.13  jruoho 
    481  1.13  jruoho 	default:
    482  1.13  jruoho 		return ENODEV;
    483  1.13  jruoho 	}
    484   1.5  jruoho 
    485  1.26  jruoho 	/*
    486  1.26  jruoho 	 * Fill the P-state structures with MSR addresses that are
    487  1.27  jruoho 	 * known to be correct. If we do not know the addresses,
    488  1.27  jruoho 	 * leave the values intact. If a vendor uses XPSS, we do
    489  1.27  jruoho 	 * not necessary need to do anything to support new CPUs.
    490  1.26  jruoho 	 */
    491  1.15  jruoho 	while (i < sc->sc_pstate_count) {
    492  1.15  jruoho 
    493  1.15  jruoho 		ps = &sc->sc_pstate[i];
    494  1.15  jruoho 
    495  1.32  jruoho 		if (msr.ps_flags != 0)
    496  1.32  jruoho 			ps->ps_flags |= msr.ps_flags;
    497  1.32  jruoho 
    498  1.27  jruoho 		if (msr.ps_status_addr != 0)
    499  1.15  jruoho 			ps->ps_status_addr = msr.ps_status_addr;
    500  1.15  jruoho 
    501  1.27  jruoho 		if (msr.ps_status_mask != 0)
    502  1.15  jruoho 			ps->ps_status_mask = msr.ps_status_mask;
    503  1.15  jruoho 
    504  1.27  jruoho 		if (msr.ps_control_addr != 0)
    505  1.15  jruoho 			ps->ps_control_addr = msr.ps_control_addr;
    506  1.15  jruoho 
    507  1.27  jruoho 		if (msr.ps_control_mask != 0)
    508  1.15  jruoho 			ps->ps_control_mask = msr.ps_control_mask;
    509  1.15  jruoho 
    510  1.15  jruoho 		i++;
    511  1.15  jruoho 	}
    512  1.15  jruoho 
    513  1.15  jruoho 	return 0;
    514  1.15  jruoho }
    515  1.15  jruoho 
    516  1.15  jruoho int
    517  1.15  jruoho acpicpu_md_pstate_get(struct acpicpu_softc *sc, uint32_t *freq)
    518  1.15  jruoho {
    519  1.15  jruoho 	struct acpicpu_pstate *ps = NULL;
    520  1.15  jruoho 	uint64_t val;
    521  1.15  jruoho 	uint32_t i;
    522  1.15  jruoho 
    523  1.32  jruoho 	if ((sc->sc_flags & ACPICPU_FLAG_P_FIDVID) != 0)
    524  1.32  jruoho 		return acpicpu_md_pstate_fidvid_get(sc, freq);
    525  1.32  jruoho 
    526  1.15  jruoho 	for (i = 0; i < sc->sc_pstate_count; i++) {
    527  1.15  jruoho 
    528  1.15  jruoho 		ps = &sc->sc_pstate[i];
    529  1.15  jruoho 
    530  1.32  jruoho 		if (__predict_true(ps->ps_freq != 0))
    531  1.15  jruoho 			break;
    532  1.15  jruoho 	}
    533  1.15  jruoho 
    534  1.15  jruoho 	if (__predict_false(ps == NULL))
    535  1.17  jruoho 		return ENODEV;
    536  1.15  jruoho 
    537  1.28  jruoho 	if (__predict_false(ps->ps_status_addr == 0))
    538  1.13  jruoho 		return EINVAL;
    539   1.5  jruoho 
    540  1.13  jruoho 	val = rdmsr(ps->ps_status_addr);
    541   1.5  jruoho 
    542  1.28  jruoho 	if (__predict_true(ps->ps_status_mask != 0))
    543  1.13  jruoho 		val = val & ps->ps_status_mask;
    544   1.5  jruoho 
    545  1.13  jruoho 	for (i = 0; i < sc->sc_pstate_count; i++) {
    546   1.5  jruoho 
    547  1.13  jruoho 		ps = &sc->sc_pstate[i];
    548   1.5  jruoho 
    549  1.32  jruoho 		if (__predict_false(ps->ps_freq == 0))
    550  1.13  jruoho 			continue;
    551   1.5  jruoho 
    552  1.29  jruoho 		if (val == ps->ps_status) {
    553  1.13  jruoho 			*freq = ps->ps_freq;
    554  1.13  jruoho 			return 0;
    555  1.13  jruoho 		}
    556   1.5  jruoho 	}
    557   1.5  jruoho 
    558  1.13  jruoho 	return EIO;
    559   1.5  jruoho }
    560   1.5  jruoho 
    561   1.5  jruoho int
    562   1.5  jruoho acpicpu_md_pstate_set(struct acpicpu_pstate *ps)
    563   1.5  jruoho {
    564   1.5  jruoho 	struct msr_rw_info msr;
    565  1.14  jruoho 	uint64_t xc;
    566  1.14  jruoho 	int rv = 0;
    567   1.5  jruoho 
    568  1.32  jruoho 	if ((ps->ps_flags & ACPICPU_FLAG_P_FIDVID) != 0)
    569  1.32  jruoho 		return acpicpu_md_pstate_fidvid_set(ps);
    570  1.32  jruoho 
    571  1.13  jruoho 	msr.msr_read  = false;
    572  1.13  jruoho 	msr.msr_type  = ps->ps_control_addr;
    573  1.13  jruoho 	msr.msr_value = ps->ps_control;
    574  1.13  jruoho 
    575  1.24  jruoho 	if (__predict_true(ps->ps_control_mask != 0)) {
    576  1.13  jruoho 		msr.msr_mask = ps->ps_control_mask;
    577  1.13  jruoho 		msr.msr_read = true;
    578  1.13  jruoho 	}
    579  1.13  jruoho 
    580   1.5  jruoho 	xc = xc_broadcast(0, (xcfunc_t)x86_msr_xcall, &msr, NULL);
    581   1.5  jruoho 	xc_wait(xc);
    582   1.5  jruoho 
    583  1.33  jruoho 	if (ACPICPU_P_STATE_STATUS == 0) {
    584  1.33  jruoho 		DELAY(ps->ps_latency);
    585  1.33  jruoho 		return 0;
    586  1.33  jruoho 	}
    587  1.13  jruoho 
    588  1.14  jruoho 	xc = xc_broadcast(0, (xcfunc_t)acpicpu_md_pstate_status, ps, &rv);
    589  1.14  jruoho 	xc_wait(xc);
    590  1.14  jruoho 
    591  1.14  jruoho 	return rv;
    592  1.14  jruoho }
    593  1.14  jruoho 
    594  1.14  jruoho static void
    595  1.14  jruoho acpicpu_md_pstate_status(void *arg1, void *arg2)
    596  1.14  jruoho {
    597  1.14  jruoho 	struct acpicpu_pstate *ps = arg1;
    598  1.14  jruoho 	uint64_t val;
    599  1.14  jruoho 	int i;
    600  1.14  jruoho 
    601   1.5  jruoho 	for (i = val = 0; i < ACPICPU_P_STATE_RETRY; i++) {
    602   1.5  jruoho 
    603  1.13  jruoho 		val = rdmsr(ps->ps_status_addr);
    604  1.13  jruoho 
    605  1.24  jruoho 		if (__predict_true(ps->ps_status_mask != 0))
    606  1.13  jruoho 			val = val & ps->ps_status_mask;
    607   1.5  jruoho 
    608  1.29  jruoho 		if (val == ps->ps_status)
    609  1.14  jruoho 			return;
    610   1.5  jruoho 
    611   1.5  jruoho 		DELAY(ps->ps_latency);
    612   1.5  jruoho 	}
    613   1.5  jruoho 
    614  1.14  jruoho 	*(uintptr_t *)arg2 = EAGAIN;
    615   1.5  jruoho }
    616  1.10  jruoho 
    617  1.32  jruoho static int
    618  1.32  jruoho acpicpu_md_pstate_fidvid_get(struct acpicpu_softc *sc, uint32_t *freq)
    619  1.32  jruoho {
    620  1.32  jruoho 	struct acpicpu_pstate *ps;
    621  1.32  jruoho 	uint32_t fid, i, vid;
    622  1.32  jruoho 	uint32_t cfid, cvid;
    623  1.32  jruoho 	int rv;
    624  1.32  jruoho 
    625  1.32  jruoho 	/*
    626  1.32  jruoho 	 * AMD family 0Fh needs special treatment.
    627  1.32  jruoho 	 * While it wants to use ACPI, it does not
    628  1.32  jruoho 	 * comply with the ACPI specifications.
    629  1.32  jruoho 	 */
    630  1.32  jruoho 	rv = acpicpu_md_pstate_fidvid_read(&cfid, &cvid);
    631  1.32  jruoho 
    632  1.32  jruoho 	if (rv != 0)
    633  1.32  jruoho 		return rv;
    634  1.32  jruoho 
    635  1.32  jruoho 	for (i = 0; i < sc->sc_pstate_count; i++) {
    636  1.32  jruoho 
    637  1.32  jruoho 		ps = &sc->sc_pstate[i];
    638  1.32  jruoho 
    639  1.32  jruoho 		if (__predict_false(ps->ps_freq == 0))
    640  1.32  jruoho 			continue;
    641  1.32  jruoho 
    642  1.32  jruoho 		fid = __SHIFTOUT(ps->ps_status, ACPI_0FH_STATUS_FID);
    643  1.32  jruoho 		vid = __SHIFTOUT(ps->ps_status, ACPI_0FH_STATUS_VID);
    644  1.32  jruoho 
    645  1.32  jruoho 		if (cfid == fid && cvid == vid) {
    646  1.32  jruoho 			*freq = ps->ps_freq;
    647  1.32  jruoho 			return 0;
    648  1.32  jruoho 		}
    649  1.32  jruoho 	}
    650  1.32  jruoho 
    651  1.32  jruoho 	return EIO;
    652  1.32  jruoho }
    653  1.32  jruoho 
    654  1.32  jruoho static int
    655  1.32  jruoho acpicpu_md_pstate_fidvid_set(struct acpicpu_pstate *ps)
    656  1.32  jruoho {
    657  1.32  jruoho 	const uint64_t ctrl = ps->ps_control;
    658  1.32  jruoho 	uint32_t cfid, cvid, fid, i, irt;
    659  1.32  jruoho 	uint32_t pll, vco_cfid, vco_fid;
    660  1.32  jruoho 	uint32_t val, vid, vst;
    661  1.32  jruoho 	int rv;
    662  1.32  jruoho 
    663  1.32  jruoho 	rv = acpicpu_md_pstate_fidvid_read(&cfid, &cvid);
    664  1.32  jruoho 
    665  1.32  jruoho 	if (rv != 0)
    666  1.32  jruoho 		return rv;
    667  1.32  jruoho 
    668  1.32  jruoho 	fid = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_FID);
    669  1.32  jruoho 	vid = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_VID);
    670  1.32  jruoho 	irt = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_IRT);
    671  1.32  jruoho 	vst = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_VST);
    672  1.32  jruoho 	pll = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_PLL);
    673  1.32  jruoho 
    674  1.32  jruoho 	vst = vst * 20;
    675  1.32  jruoho 	pll = pll * 1000 / 5;
    676  1.32  jruoho 	irt = 10 * __BIT(irt);
    677  1.32  jruoho 
    678  1.32  jruoho 	/*
    679  1.32  jruoho 	 * Phase 1.
    680  1.32  jruoho 	 */
    681  1.32  jruoho 	while (cvid > vid) {
    682  1.32  jruoho 
    683  1.32  jruoho 		val = 1 << __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_MVS);
    684  1.32  jruoho 		val = (val > cvid) ? 0 : cvid - val;
    685  1.32  jruoho 
    686  1.32  jruoho 		acpicpu_md_pstate_fidvid_write(cfid, val, 1, vst);
    687  1.32  jruoho 		rv = acpicpu_md_pstate_fidvid_read(NULL, &cvid);
    688  1.32  jruoho 
    689  1.32  jruoho 		if (rv != 0)
    690  1.32  jruoho 			return rv;
    691  1.32  jruoho 	}
    692  1.32  jruoho 
    693  1.32  jruoho 	i = __SHIFTOUT(ctrl, ACPI_0FH_CONTROL_RVO);
    694  1.32  jruoho 
    695  1.32  jruoho 	for (; i > 0 && cvid > 0; --i) {
    696  1.32  jruoho 
    697  1.32  jruoho 		acpicpu_md_pstate_fidvid_write(cfid, cvid - 1, 1, vst);
    698  1.32  jruoho 		rv = acpicpu_md_pstate_fidvid_read(NULL, &cvid);
    699  1.32  jruoho 
    700  1.32  jruoho 		if (rv != 0)
    701  1.32  jruoho 			return rv;
    702  1.32  jruoho 	}
    703  1.32  jruoho 
    704  1.32  jruoho 	/*
    705  1.32  jruoho 	 * Phase 2.
    706  1.32  jruoho 	 */
    707  1.32  jruoho 	if (cfid != fid) {
    708  1.32  jruoho 
    709  1.32  jruoho 		vco_fid  = FID_TO_VCO_FID(fid);
    710  1.32  jruoho 		vco_cfid = FID_TO_VCO_FID(cfid);
    711  1.32  jruoho 
    712  1.32  jruoho 		while (abs(vco_fid - vco_cfid) > 2) {
    713  1.32  jruoho 
    714  1.32  jruoho 			if (fid <= cfid)
    715  1.32  jruoho 				val = cfid - 2;
    716  1.32  jruoho 			else {
    717  1.32  jruoho 				val = (cfid > 6) ? cfid + 2 :
    718  1.32  jruoho 				    FID_TO_VCO_FID(cfid) + 2;
    719  1.32  jruoho 			}
    720  1.32  jruoho 
    721  1.32  jruoho 			acpicpu_md_pstate_fidvid_write(val, cvid, pll, irt);
    722  1.32  jruoho 			rv = acpicpu_md_pstate_fidvid_read(&cfid, NULL);
    723  1.32  jruoho 
    724  1.32  jruoho 			if (rv != 0)
    725  1.32  jruoho 				return rv;
    726  1.32  jruoho 
    727  1.32  jruoho 			vco_cfid = FID_TO_VCO_FID(cfid);
    728  1.32  jruoho 		}
    729  1.32  jruoho 
    730  1.32  jruoho 		acpicpu_md_pstate_fidvid_write(fid, cvid, pll, irt);
    731  1.32  jruoho 		rv = acpicpu_md_pstate_fidvid_read(&cfid, NULL);
    732  1.32  jruoho 
    733  1.32  jruoho 		if (rv != 0)
    734  1.32  jruoho 			return rv;
    735  1.32  jruoho 	}
    736  1.32  jruoho 
    737  1.32  jruoho 	/*
    738  1.32  jruoho 	 * Phase 3.
    739  1.32  jruoho 	 */
    740  1.32  jruoho 	if (cvid != vid) {
    741  1.32  jruoho 
    742  1.32  jruoho 		acpicpu_md_pstate_fidvid_write(cfid, vid, 1, vst);
    743  1.32  jruoho 		rv = acpicpu_md_pstate_fidvid_read(NULL, &cvid);
    744  1.32  jruoho 
    745  1.32  jruoho 		if (rv != 0)
    746  1.32  jruoho 			return rv;
    747  1.32  jruoho 	}
    748  1.32  jruoho 
    749  1.32  jruoho 	if (cfid != fid || cvid != vid)
    750  1.32  jruoho 		return EIO;
    751  1.32  jruoho 
    752  1.32  jruoho 	return 0;
    753  1.32  jruoho }
    754  1.32  jruoho 
    755  1.32  jruoho static int
    756  1.32  jruoho acpicpu_md_pstate_fidvid_read(uint32_t *cfid, uint32_t *cvid)
    757  1.32  jruoho {
    758  1.32  jruoho 	int i = ACPICPU_P_STATE_RETRY * 100;
    759  1.32  jruoho 	uint64_t val;
    760  1.32  jruoho 
    761  1.32  jruoho 	do {
    762  1.32  jruoho 		val = rdmsr(MSR_0FH_STATUS);
    763  1.32  jruoho 
    764  1.32  jruoho 	} while (__SHIFTOUT(val, MSR_0FH_STATUS_PENDING) != 0 && --i >= 0);
    765  1.32  jruoho 
    766  1.32  jruoho 	if (i == 0)
    767  1.32  jruoho 		return EAGAIN;
    768  1.32  jruoho 
    769  1.32  jruoho 	if (cfid != NULL)
    770  1.32  jruoho 		*cfid = __SHIFTOUT(val, MSR_0FH_STATUS_CFID);
    771  1.32  jruoho 
    772  1.32  jruoho 	if (cvid != NULL)
    773  1.32  jruoho 		*cvid = __SHIFTOUT(val, MSR_0FH_STATUS_CVID);
    774  1.32  jruoho 
    775  1.32  jruoho 	return 0;
    776  1.32  jruoho }
    777  1.32  jruoho 
    778  1.32  jruoho static void
    779  1.32  jruoho acpicpu_md_pstate_fidvid_write(uint32_t fid,
    780  1.32  jruoho     uint32_t vid, uint32_t cnt, uint32_t tmo)
    781  1.32  jruoho {
    782  1.32  jruoho 	struct msr_rw_info msr;
    783  1.32  jruoho 	uint64_t xc;
    784  1.32  jruoho 
    785  1.32  jruoho 	msr.msr_read  = false;
    786  1.32  jruoho 	msr.msr_type  = MSR_0FH_CONTROL;
    787  1.32  jruoho 	msr.msr_value = 0;
    788  1.32  jruoho 
    789  1.32  jruoho 	msr.msr_value |= __SHIFTIN(fid, MSR_0FH_CONTROL_FID);
    790  1.32  jruoho 	msr.msr_value |= __SHIFTIN(vid, MSR_0FH_CONTROL_VID);
    791  1.32  jruoho 	msr.msr_value |= __SHIFTIN(cnt, MSR_0FH_CONTROL_CNT);
    792  1.32  jruoho 	msr.msr_value |= __SHIFTIN(0x1, MSR_0FH_CONTROL_CHG);
    793  1.32  jruoho 
    794  1.32  jruoho 	xc = xc_broadcast(0, (xcfunc_t)x86_msr_xcall, &msr, NULL);
    795  1.32  jruoho 	xc_wait(xc);
    796  1.32  jruoho 
    797  1.32  jruoho 	DELAY(tmo);
    798  1.32  jruoho }
    799  1.32  jruoho 
    800  1.10  jruoho int
    801  1.10  jruoho acpicpu_md_tstate_get(struct acpicpu_softc *sc, uint32_t *percent)
    802  1.10  jruoho {
    803  1.10  jruoho 	struct acpicpu_tstate *ts;
    804  1.14  jruoho 	uint64_t val;
    805  1.10  jruoho 	uint32_t i;
    806  1.10  jruoho 
    807  1.14  jruoho 	val = rdmsr(MSR_THERM_CONTROL);
    808  1.10  jruoho 
    809  1.10  jruoho 	for (i = 0; i < sc->sc_tstate_count; i++) {
    810  1.10  jruoho 
    811  1.10  jruoho 		ts = &sc->sc_tstate[i];
    812  1.10  jruoho 
    813  1.10  jruoho 		if (ts->ts_percent == 0)
    814  1.10  jruoho 			continue;
    815  1.10  jruoho 
    816  1.29  jruoho 		if (val == ts->ts_status) {
    817  1.10  jruoho 			*percent = ts->ts_percent;
    818  1.10  jruoho 			return 0;
    819  1.10  jruoho 		}
    820  1.10  jruoho 	}
    821  1.10  jruoho 
    822  1.10  jruoho 	return EIO;
    823  1.10  jruoho }
    824  1.10  jruoho 
    825  1.10  jruoho int
    826  1.10  jruoho acpicpu_md_tstate_set(struct acpicpu_tstate *ts)
    827  1.10  jruoho {
    828  1.10  jruoho 	struct msr_rw_info msr;
    829  1.14  jruoho 	uint64_t xc;
    830  1.14  jruoho 	int rv = 0;
    831  1.10  jruoho 
    832  1.14  jruoho 	msr.msr_read  = true;
    833  1.14  jruoho 	msr.msr_type  = MSR_THERM_CONTROL;
    834  1.14  jruoho 	msr.msr_value = ts->ts_control;
    835  1.14  jruoho 	msr.msr_mask = __BITS(1, 4);
    836  1.10  jruoho 
    837  1.10  jruoho 	xc = xc_broadcast(0, (xcfunc_t)x86_msr_xcall, &msr, NULL);
    838  1.10  jruoho 	xc_wait(xc);
    839  1.10  jruoho 
    840  1.30  jruoho 	if (ts->ts_status == 0) {
    841  1.30  jruoho 		DELAY(ts->ts_latency);
    842  1.10  jruoho 		return 0;
    843  1.30  jruoho 	}
    844  1.10  jruoho 
    845  1.14  jruoho 	xc = xc_broadcast(0, (xcfunc_t)acpicpu_md_tstate_status, ts, &rv);
    846  1.14  jruoho 	xc_wait(xc);
    847  1.14  jruoho 
    848  1.14  jruoho 	return rv;
    849  1.14  jruoho }
    850  1.14  jruoho 
    851  1.14  jruoho static void
    852  1.14  jruoho acpicpu_md_tstate_status(void *arg1, void *arg2)
    853  1.14  jruoho {
    854  1.14  jruoho 	struct acpicpu_tstate *ts = arg1;
    855  1.14  jruoho 	uint64_t val;
    856  1.14  jruoho 	int i;
    857  1.14  jruoho 
    858  1.10  jruoho 	for (i = val = 0; i < ACPICPU_T_STATE_RETRY; i++) {
    859  1.10  jruoho 
    860  1.14  jruoho 		val = rdmsr(MSR_THERM_CONTROL);
    861  1.10  jruoho 
    862  1.29  jruoho 		if (val == ts->ts_status)
    863  1.14  jruoho 			return;
    864  1.10  jruoho 
    865  1.10  jruoho 		DELAY(ts->ts_latency);
    866  1.10  jruoho 	}
    867  1.10  jruoho 
    868  1.14  jruoho 	*(uintptr_t *)arg2 = EAGAIN;
    869  1.10  jruoho }
    870  1.19  jruoho 
    871  1.19  jruoho /*
    872  1.19  jruoho  * A kludge for backwards compatibility.
    873  1.19  jruoho  */
    874  1.19  jruoho static int
    875  1.19  jruoho acpicpu_md_pstate_sysctl_init(void)
    876  1.19  jruoho {
    877  1.19  jruoho 	const struct sysctlnode	*fnode, *mnode, *rnode;
    878  1.19  jruoho 	const char *str;
    879  1.19  jruoho 	int rv;
    880  1.19  jruoho 
    881  1.19  jruoho 	switch (cpu_vendor) {
    882  1.19  jruoho 
    883  1.19  jruoho 	case CPUVENDOR_IDT:
    884  1.19  jruoho 	case CPUVENDOR_INTEL:
    885  1.19  jruoho 		str = "est";
    886  1.19  jruoho 		break;
    887  1.19  jruoho 
    888  1.19  jruoho 	case CPUVENDOR_AMD:
    889  1.19  jruoho 		str = "powernow";
    890  1.19  jruoho 		break;
    891  1.19  jruoho 
    892  1.19  jruoho 	default:
    893  1.19  jruoho 		return ENODEV;
    894  1.19  jruoho 	}
    895  1.19  jruoho 
    896  1.19  jruoho 
    897  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, NULL, &rnode,
    898  1.19  jruoho 	    CTLFLAG_PERMANENT, CTLTYPE_NODE, "machdep", NULL,
    899  1.19  jruoho 	    NULL, 0, NULL, 0, CTL_MACHDEP, CTL_EOL);
    900  1.19  jruoho 
    901  1.19  jruoho 	if (rv != 0)
    902  1.19  jruoho 		goto fail;
    903  1.19  jruoho 
    904  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, &rnode, &mnode,
    905  1.19  jruoho 	    0, CTLTYPE_NODE, str, NULL,
    906  1.19  jruoho 	    NULL, 0, NULL, 0, CTL_CREATE, CTL_EOL);
    907  1.19  jruoho 
    908  1.19  jruoho 	if (rv != 0)
    909  1.19  jruoho 		goto fail;
    910  1.19  jruoho 
    911  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, &mnode, &fnode,
    912  1.19  jruoho 	    0, CTLTYPE_NODE, "frequency", NULL,
    913  1.19  jruoho 	    NULL, 0, NULL, 0, CTL_CREATE, CTL_EOL);
    914  1.19  jruoho 
    915  1.19  jruoho 	if (rv != 0)
    916  1.19  jruoho 		goto fail;
    917  1.19  jruoho 
    918  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, &fnode, &rnode,
    919  1.19  jruoho 	    CTLFLAG_READWRITE, CTLTYPE_INT, "target", NULL,
    920  1.19  jruoho 	    acpicpu_md_pstate_sysctl_set, 0, NULL, 0, CTL_CREATE, CTL_EOL);
    921  1.19  jruoho 
    922  1.19  jruoho 	if (rv != 0)
    923  1.19  jruoho 		goto fail;
    924  1.19  jruoho 
    925  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, &fnode, &rnode,
    926  1.19  jruoho 	    CTLFLAG_READONLY, CTLTYPE_INT, "current", NULL,
    927  1.19  jruoho 	    acpicpu_md_pstate_sysctl_get, 0, NULL, 0, CTL_CREATE, CTL_EOL);
    928  1.19  jruoho 
    929  1.19  jruoho 	if (rv != 0)
    930  1.19  jruoho 		goto fail;
    931  1.19  jruoho 
    932  1.19  jruoho 	rv = sysctl_createv(&acpicpu_log, 0, &fnode, &rnode,
    933  1.19  jruoho 	    CTLFLAG_READONLY, CTLTYPE_STRING, "available", NULL,
    934  1.19  jruoho 	    acpicpu_md_pstate_sysctl_all, 0, NULL, 0, CTL_CREATE, CTL_EOL);
    935  1.19  jruoho 
    936  1.19  jruoho 	if (rv != 0)
    937  1.19  jruoho 		goto fail;
    938  1.19  jruoho 
    939  1.19  jruoho 	return 0;
    940  1.19  jruoho 
    941  1.19  jruoho fail:
    942  1.19  jruoho 	if (acpicpu_log != NULL) {
    943  1.19  jruoho 		sysctl_teardown(&acpicpu_log);
    944  1.19  jruoho 		acpicpu_log = NULL;
    945  1.19  jruoho 	}
    946  1.19  jruoho 
    947  1.19  jruoho 	return rv;
    948  1.19  jruoho }
    949  1.19  jruoho 
    950  1.19  jruoho static int
    951  1.19  jruoho acpicpu_md_pstate_sysctl_get(SYSCTLFN_ARGS)
    952  1.19  jruoho {
    953  1.19  jruoho 	struct cpu_info *ci = curcpu();
    954  1.19  jruoho 	struct acpicpu_softc *sc;
    955  1.19  jruoho 	struct sysctlnode node;
    956  1.19  jruoho 	uint32_t freq;
    957  1.19  jruoho 	int err;
    958  1.19  jruoho 
    959  1.19  jruoho 	sc = acpicpu_sc[ci->ci_acpiid];
    960  1.19  jruoho 
    961  1.19  jruoho 	if (sc == NULL)
    962  1.19  jruoho 		return ENXIO;
    963  1.19  jruoho 
    964  1.19  jruoho 	err = acpicpu_pstate_get(sc, &freq);
    965  1.19  jruoho 
    966  1.19  jruoho 	if (err != 0)
    967  1.19  jruoho 		return err;
    968  1.19  jruoho 
    969  1.19  jruoho 	node = *rnode;
    970  1.19  jruoho 	node.sysctl_data = &freq;
    971  1.19  jruoho 
    972  1.19  jruoho 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
    973  1.19  jruoho 
    974  1.19  jruoho 	if (err != 0 || newp == NULL)
    975  1.19  jruoho 		return err;
    976  1.19  jruoho 
    977  1.19  jruoho 	return 0;
    978  1.19  jruoho }
    979  1.19  jruoho 
    980  1.19  jruoho static int
    981  1.19  jruoho acpicpu_md_pstate_sysctl_set(SYSCTLFN_ARGS)
    982  1.19  jruoho {
    983  1.19  jruoho 	struct cpu_info *ci = curcpu();
    984  1.19  jruoho 	struct acpicpu_softc *sc;
    985  1.19  jruoho 	struct sysctlnode node;
    986  1.19  jruoho 	uint32_t freq;
    987  1.19  jruoho 	int err;
    988  1.19  jruoho 
    989  1.19  jruoho 	sc = acpicpu_sc[ci->ci_acpiid];
    990  1.19  jruoho 
    991  1.19  jruoho 	if (sc == NULL)
    992  1.19  jruoho 		return ENXIO;
    993  1.19  jruoho 
    994  1.19  jruoho 	err = acpicpu_pstate_get(sc, &freq);
    995  1.19  jruoho 
    996  1.19  jruoho 	if (err != 0)
    997  1.19  jruoho 		return err;
    998  1.19  jruoho 
    999  1.19  jruoho 	node = *rnode;
   1000  1.19  jruoho 	node.sysctl_data = &freq;
   1001  1.19  jruoho 
   1002  1.19  jruoho 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   1003  1.19  jruoho 
   1004  1.19  jruoho 	if (err != 0 || newp == NULL)
   1005  1.19  jruoho 		return err;
   1006  1.19  jruoho 
   1007  1.19  jruoho 	err = acpicpu_pstate_set(sc, freq);
   1008  1.19  jruoho 
   1009  1.19  jruoho 	if (err != 0)
   1010  1.19  jruoho 		return err;
   1011  1.19  jruoho 
   1012  1.19  jruoho 	return 0;
   1013  1.19  jruoho }
   1014  1.19  jruoho 
   1015  1.19  jruoho static int
   1016  1.19  jruoho acpicpu_md_pstate_sysctl_all(SYSCTLFN_ARGS)
   1017  1.19  jruoho {
   1018  1.19  jruoho 	struct cpu_info *ci = curcpu();
   1019  1.19  jruoho 	struct acpicpu_softc *sc;
   1020  1.19  jruoho 	struct sysctlnode node;
   1021  1.19  jruoho 	char buf[1024];
   1022  1.19  jruoho 	size_t len;
   1023  1.19  jruoho 	uint32_t i;
   1024  1.19  jruoho 	int err;
   1025  1.19  jruoho 
   1026  1.19  jruoho 	sc = acpicpu_sc[ci->ci_acpiid];
   1027  1.19  jruoho 
   1028  1.19  jruoho 	if (sc == NULL)
   1029  1.19  jruoho 		return ENXIO;
   1030  1.19  jruoho 
   1031  1.19  jruoho 	(void)memset(&buf, 0, sizeof(buf));
   1032  1.19  jruoho 
   1033  1.19  jruoho 	mutex_enter(&sc->sc_mtx);
   1034  1.19  jruoho 
   1035  1.19  jruoho 	for (len = 0, i = sc->sc_pstate_max; i < sc->sc_pstate_count; i++) {
   1036  1.19  jruoho 
   1037  1.19  jruoho 		if (sc->sc_pstate[i].ps_freq == 0)
   1038  1.19  jruoho 			continue;
   1039  1.19  jruoho 
   1040  1.19  jruoho 		len += snprintf(buf + len, sizeof(buf) - len, "%u%s",
   1041  1.19  jruoho 		    sc->sc_pstate[i].ps_freq,
   1042  1.19  jruoho 		    i < (sc->sc_pstate_count - 1) ? " " : "");
   1043  1.19  jruoho 	}
   1044  1.19  jruoho 
   1045  1.19  jruoho 	mutex_exit(&sc->sc_mtx);
   1046  1.19  jruoho 
   1047  1.19  jruoho 	node = *rnode;
   1048  1.19  jruoho 	node.sysctl_data = buf;
   1049  1.19  jruoho 
   1050  1.19  jruoho 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   1051  1.19  jruoho 
   1052  1.19  jruoho 	if (err != 0 || newp == NULL)
   1053  1.19  jruoho 		return err;
   1054  1.19  jruoho 
   1055  1.19  jruoho 	return 0;
   1056  1.19  jruoho }
   1057  1.19  jruoho 
   1058