71e0ac858e
Instead of using a hard-coded value leverage the existing definitions to perform GPE0 block length calculations. There are 4 pairs of 32-bit status/enable registers. BUG=chrome-os-partner:43522 BRANCH=None TEST=Built and booted glados. Original-Change-Id: I14d08298b5750c91ce0ac3fa33569813396f7089 Original-Signed-off-by: Aaron Durbin <adurbin@chromium.org> Original-Reviewed-on: https://chromium-review.googlesource.com/291932 Original-Reviewed-by: Duncan Laurie <dlaurie@chromium.org> Change-Id: I127f026f15180fa79625d4cad96d5e35f85e5090 Signed-off-by: Aaron Durbin <adurbin@chromium.org> Reviewed-on: http://review.coreboot.org/11205 Tested-by: build bot (Jenkins) Reviewed-by: Patrick Georgi <pgeorgi@google.com>
590 lines
15 KiB
C
590 lines
15 KiB
C
/*
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* This file is part of the coreboot project.
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*
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* Copyright (C) 2009 coresystems GmbH
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* Copyright (C) 2014 Google Inc.
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* Copyright (C) 2015 Intel Corporation.
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; version 2 of the License.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc.
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*/
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#include <arch/acpi.h>
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#include <arch/acpigen.h>
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#include <arch/io.h>
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#include <arch/smp/mpspec.h>
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#include <cbmem.h>
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#include <chip.h>
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#include <console/console.h>
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#include <cpu/cpu.h>
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#include <cpu/x86/smm.h>
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#include <types.h>
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#include <string.h>
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#include <arch/cpu.h>
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#include <cpu/x86/msr.h>
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#include <cpu/x86/tsc.h>
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#include <cpu/intel/turbo.h>
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#include <ec/google/chromeec/ec.h>
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#include <vendorcode/google/chromeos/gnvs.h>
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#include <soc/acpi.h>
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#include <soc/cpu.h>
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#include <soc/iomap.h>
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#include <soc/lpc.h>
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#include <soc/msr.h>
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#include <soc/pci_devs.h>
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#include <soc/pm.h>
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/*
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* List of suported C-states in this processor.
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*/
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enum {
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C_STATE_C0, /* 0 */
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C_STATE_C1, /* 1 */
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C_STATE_C1E, /* 2 */
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C_STATE_C3, /* 3 */
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C_STATE_C6_SHORT_LAT, /* 4 */
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C_STATE_C6_LONG_LAT, /* 5 */
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C_STATE_C7_SHORT_LAT, /* 6 */
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C_STATE_C7_LONG_LAT, /* 7 */
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C_STATE_C7S_SHORT_LAT, /* 8 */
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C_STATE_C7S_LONG_LAT, /* 9 */
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C_STATE_C8, /* 10 */
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C_STATE_C9, /* 11 */
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C_STATE_C10, /* 12 */
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NUM_C_STATES
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};
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#define MWAIT_RES(state, sub_state) \
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{ \
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.addrl = (((state) << 4) | (sub_state)), \
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.space_id = ACPI_ADDRESS_SPACE_FIXED, \
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.bit_width = ACPI_FFIXEDHW_VENDOR_INTEL, \
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.bit_offset = ACPI_FFIXEDHW_CLASS_MWAIT, \
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.access_size = ACPI_FFIXEDHW_FLAG_HW_COORD, \
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}
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static acpi_cstate_t cstate_map[NUM_C_STATES] = {
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[C_STATE_C0] = { },
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[C_STATE_C1] = {
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.latency = 0,
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.power = 1000,
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.resource = MWAIT_RES(0, 0),
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},
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[C_STATE_C1E] = {
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.latency = 0,
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.power = 1000,
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.resource = MWAIT_RES(0, 1),
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},
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[C_STATE_C3] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(0),
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.power = 500,
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.resource = MWAIT_RES(1, 0),
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},
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[C_STATE_C6_SHORT_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(1),
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.power = 350,
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.resource = MWAIT_RES(2, 0),
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},
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[C_STATE_C6_LONG_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(2),
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.power = 350,
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.resource = MWAIT_RES(2, 1),
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},
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[C_STATE_C7_SHORT_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(1),
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.power = 200,
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.resource = MWAIT_RES(3, 0),
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},
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[C_STATE_C7_LONG_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(2),
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.power = 200,
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.resource = MWAIT_RES(3, 1),
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},
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[C_STATE_C7S_SHORT_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(1),
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.power = 200,
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.resource = MWAIT_RES(3, 2),
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},
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[C_STATE_C7S_LONG_LAT] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(2),
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.power = 200,
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.resource = MWAIT_RES(3, 3),
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},
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[C_STATE_C8] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(3),
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.power = 200,
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.resource = MWAIT_RES(4, 0),
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},
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[C_STATE_C9] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(4),
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.power = 200,
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.resource = MWAIT_RES(5, 0),
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},
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[C_STATE_C10] = {
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.latency = C_STATE_LATENCY_FROM_LAT_REG(5),
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.power = 200,
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.resource = MWAIT_RES(6, 0),
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},
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};
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static int cstate_set_s0ix[] = {
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C_STATE_C1E,
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C_STATE_C7S_LONG_LAT,
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C_STATE_C10
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};
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static int cstate_set_non_s0ix[] = {
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C_STATE_C1E,
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C_STATE_C3,
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C_STATE_C7S_LONG_LAT,
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C_STATE_C8,
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C_STATE_C9,
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C_STATE_C10
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};
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static int get_cores_per_package(void)
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{
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struct cpuinfo_x86 c;
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struct cpuid_result result;
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int cores = 1;
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get_fms(&c, cpuid_eax(1));
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if (c.x86 != 6)
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return 1;
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result = cpuid_ext(0xb, 1);
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cores = result.ebx & 0xff;
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return cores;
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}
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void acpi_init_gnvs(global_nvs_t *gnvs)
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{
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/* Set unknown wake source */
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gnvs->pm1i = -1;
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/* CPU core count */
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gnvs->pcnt = dev_count_cpu();
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#if IS_ENABLED(CONFIG_CONSOLE_CBMEM)
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/* Update the mem console pointer. */
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gnvs->cbmc = (u32)cbmem_find(CBMEM_ID_CONSOLE);
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#endif
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#if IS_ENABLED(CONFIG_CHROMEOS)
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/* Initialize Verified Boot data */
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chromeos_init_vboot(&(gnvs->chromeos));
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#if IS_ENABLED(CONFIG_EC_GOOGLE_CHROMEEC)
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gnvs->chromeos.vbt2 = google_ec_running_ro() ?
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ACTIVE_ECFW_RO : ACTIVE_ECFW_RW;
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#endif
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gnvs->chromeos.vbt2 = ACTIVE_ECFW_RO;
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#endif
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}
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unsigned long acpi_fill_mcfg(unsigned long current)
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{
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current += acpi_create_mcfg_mmconfig((acpi_mcfg_mmconfig_t *)current,
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MCFG_BASE_ADDRESS, 0, 0, 255);
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return current;
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}
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void acpi_fill_in_fadt(acpi_fadt_t *fadt)
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{
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const uint16_t pmbase = ACPI_BASE_ADDRESS;
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fadt->sci_int = acpi_sci_irq();
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fadt->smi_cmd = APM_CNT;
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fadt->acpi_enable = APM_CNT_ACPI_ENABLE;
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fadt->acpi_disable = APM_CNT_ACPI_DISABLE;
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fadt->s4bios_req = 0x0;
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fadt->pstate_cnt = 0;
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fadt->pm1a_evt_blk = pmbase + PM1_STS;
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fadt->pm1b_evt_blk = 0x0;
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fadt->pm1a_cnt_blk = pmbase + PM1_CNT;
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fadt->pm1b_cnt_blk = 0x0;
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fadt->pm2_cnt_blk = pmbase + PM2_CNT;
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fadt->pm_tmr_blk = pmbase + PM1_TMR;
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fadt->gpe0_blk = pmbase + GPE0_STS(0);
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fadt->gpe1_blk = 0;
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fadt->pm1_evt_len = 4;
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fadt->pm1_cnt_len = 2;
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fadt->pm2_cnt_len = 1;
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fadt->pm_tmr_len = 4;
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/* There are 4 GPE0 STS/EN pairs each 32 bits wide. */
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fadt->gpe0_blk_len = 2 * GPE0_REG_MAX * sizeof(uint32_t);
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fadt->gpe1_blk_len = 0;
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fadt->gpe1_base = 0;
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fadt->cst_cnt = 0;
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fadt->p_lvl2_lat = 1;
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fadt->p_lvl3_lat = 87;
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fadt->flush_size = 1024;
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fadt->flush_stride = 16;
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fadt->duty_offset = 1;
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fadt->duty_width = 0;
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fadt->day_alrm = 0xd;
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fadt->mon_alrm = 0x00;
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fadt->century = 0x00;
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fadt->iapc_boot_arch = ACPI_FADT_LEGACY_DEVICES | ACPI_FADT_8042;
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fadt->flags = ACPI_FADT_WBINVD | ACPI_FADT_C1_SUPPORTED |
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ACPI_FADT_C2_MP_SUPPORTED | ACPI_FADT_SLEEP_BUTTON |
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ACPI_FADT_RESET_REGISTER | ACPI_FADT_SEALED_CASE |
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ACPI_FADT_S4_RTC_WAKE | ACPI_FADT_PLATFORM_CLOCK;
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fadt->reset_reg.space_id = 1;
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fadt->reset_reg.bit_width = 8;
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fadt->reset_reg.bit_offset = 0;
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fadt->reset_reg.resv = 0;
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fadt->reset_reg.addrl = 0xcf9;
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fadt->reset_reg.addrh = 0;
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fadt->reset_value = 6;
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fadt->x_pm1a_evt_blk.space_id = 1;
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fadt->x_pm1a_evt_blk.bit_width = fadt->pm1_evt_len * 8;
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fadt->x_pm1a_evt_blk.bit_offset = 0;
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fadt->x_pm1a_evt_blk.resv = 0;
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fadt->x_pm1a_evt_blk.addrl = pmbase + PM1_STS;
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fadt->x_pm1a_evt_blk.addrh = 0x0;
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fadt->x_pm1b_evt_blk.space_id = 1;
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fadt->x_pm1b_evt_blk.bit_width = 0;
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fadt->x_pm1b_evt_blk.bit_offset = 0;
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fadt->x_pm1b_evt_blk.resv = 0;
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fadt->x_pm1b_evt_blk.addrl = 0x0;
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fadt->x_pm1b_evt_blk.addrh = 0x0;
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fadt->x_pm1a_cnt_blk.space_id = 1;
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fadt->x_pm1a_cnt_blk.bit_width = fadt->pm1_cnt_len * 8;
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fadt->x_pm1a_cnt_blk.bit_offset = 0;
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fadt->x_pm1a_cnt_blk.resv = 0;
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fadt->x_pm1a_cnt_blk.addrl = pmbase + PM1_CNT;
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fadt->x_pm1a_cnt_blk.addrh = 0x0;
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fadt->x_pm1b_cnt_blk.space_id = 1;
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fadt->x_pm1b_cnt_blk.bit_width = 0;
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fadt->x_pm1b_cnt_blk.bit_offset = 0;
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fadt->x_pm1b_cnt_blk.resv = 0;
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fadt->x_pm1b_cnt_blk.addrl = 0x0;
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fadt->x_pm1b_cnt_blk.addrh = 0x0;
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fadt->x_pm2_cnt_blk.space_id = 1;
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fadt->x_pm2_cnt_blk.bit_width = fadt->pm2_cnt_len * 8;
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fadt->x_pm2_cnt_blk.bit_offset = 0;
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fadt->x_pm2_cnt_blk.resv = 0;
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fadt->x_pm2_cnt_blk.addrl = pmbase + PM2_CNT;
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fadt->x_pm2_cnt_blk.addrh = 0x0;
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fadt->x_pm_tmr_blk.space_id = 1;
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fadt->x_pm_tmr_blk.bit_width = fadt->pm_tmr_len * 8;
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fadt->x_pm_tmr_blk.bit_offset = 0;
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fadt->x_pm_tmr_blk.resv = 0;
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fadt->x_pm_tmr_blk.addrl = pmbase + PM1_TMR;
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fadt->x_pm_tmr_blk.addrh = 0x0;
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fadt->x_gpe0_blk.space_id = 0;
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fadt->x_gpe0_blk.bit_width = 0;
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fadt->x_gpe0_blk.bit_offset = 0;
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fadt->x_gpe0_blk.resv = 0;
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fadt->x_gpe0_blk.addrl = 0;
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fadt->x_gpe0_blk.addrh = 0;
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fadt->x_gpe1_blk.space_id = 1;
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fadt->x_gpe1_blk.bit_width = 0;
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fadt->x_gpe1_blk.bit_offset = 0;
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fadt->x_gpe1_blk.resv = 0;
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fadt->x_gpe1_blk.addrl = 0x0;
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fadt->x_gpe1_blk.addrh = 0x0;
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}
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static void generate_c_state_entries(int s0ix_enable, int max_cstate)
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{
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acpi_cstate_t map[max_cstate];
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int *set;
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int i;
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if (s0ix_enable)
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set = cstate_set_s0ix;
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else
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set = cstate_set_non_s0ix;
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for (i = 0; i < max_cstate; i++) {
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memcpy(&map[i], &cstate_map[set[i]], sizeof(acpi_cstate_t));
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map[i].ctype = i + 1;
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}
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/* Generate C-state tables */
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acpigen_write_CST_package(map, ARRAY_SIZE(map));
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}
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static int calculate_power(int tdp, int p1_ratio, int ratio)
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{
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u32 m;
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u32 power;
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/*
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* M = ((1.1 - ((p1_ratio - ratio) * 0.00625)) / 1.1) ^ 2
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*
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* Power = (ratio / p1_ratio) * m * tdp
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*/
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m = (110000 - ((p1_ratio - ratio) * 625)) / 11;
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m = (m * m) / 1000;
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power = ((ratio * 100000 / p1_ratio) / 100);
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power *= (m / 100) * (tdp / 1000);
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power /= 1000;
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return (int)power;
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}
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static void generate_p_state_entries(int core, int cores_per_package)
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{
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int ratio_min, ratio_max, ratio_turbo, ratio_step;
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int coord_type, power_max, power_unit, num_entries;
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int ratio, power, clock, clock_max;
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msr_t msr;
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/* Determine P-state coordination type from MISC_PWR_MGMT[0] */
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msr = rdmsr(MSR_MISC_PWR_MGMT);
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if (msr.lo & MISC_PWR_MGMT_EIST_HW_DIS)
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coord_type = SW_ANY;
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else
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coord_type = HW_ALL;
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/* Get bus ratio limits and calculate clock speeds */
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msr = rdmsr(MSR_PLATFORM_INFO);
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ratio_min = (msr.hi >> (40-32)) & 0xff; /* Max Efficiency Ratio */
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/* Determine if this CPU has configurable TDP */
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if (cpu_config_tdp_levels()) {
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/* Set max ratio to nominal TDP ratio */
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msr = rdmsr(MSR_CONFIG_TDP_NOMINAL);
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ratio_max = msr.lo & 0xff;
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} else {
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/* Max Non-Turbo Ratio */
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ratio_max = (msr.lo >> 8) & 0xff;
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}
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clock_max = ratio_max * CPU_BCLK;
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/* Calculate CPU TDP in mW */
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msr = rdmsr(MSR_PKG_POWER_SKU_UNIT);
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power_unit = 2 << ((msr.lo & 0xf) - 1);
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msr = rdmsr(MSR_PKG_POWER_SKU);
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power_max = ((msr.lo & 0x7fff) / power_unit) * 1000;
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/* Write _PCT indicating use of FFixedHW */
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acpigen_write_empty_PCT();
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/* Write _PPC with no limit on supported P-state */
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acpigen_write_PPC_NVS();
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/* Write PSD indicating configured coordination type */
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acpigen_write_PSD_package(core, 1, coord_type);
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/* Add P-state entries in _PSS table */
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acpigen_write_name("_PSS");
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/* Determine ratio points */
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ratio_step = PSS_RATIO_STEP;
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num_entries = ((ratio_max - ratio_min) / ratio_step) + 1;
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if (num_entries > PSS_MAX_ENTRIES) {
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ratio_step += 1;
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num_entries = ((ratio_max - ratio_min) / ratio_step) + 1;
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}
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/* P[T] is Turbo state if enabled */
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if (get_turbo_state() == TURBO_ENABLED) {
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/* _PSS package count including Turbo */
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acpigen_write_package(num_entries + 2);
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msr = rdmsr(MSR_TURBO_RATIO_LIMIT);
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ratio_turbo = msr.lo & 0xff;
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/* Add entry for Turbo ratio */
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acpigen_write_PSS_package(
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clock_max + 1, /* MHz */
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power_max, /* mW */
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PSS_LATENCY_TRANSITION, /* lat1 */
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PSS_LATENCY_BUSMASTER, /* lat2 */
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ratio_turbo << 8, /* control */
|
|
ratio_turbo << 8); /* status */
|
|
} else {
|
|
/* _PSS package count without Turbo */
|
|
acpigen_write_package(num_entries + 1);
|
|
}
|
|
|
|
/* First regular entry is max non-turbo ratio */
|
|
acpigen_write_PSS_package(
|
|
clock_max, /* MHz */
|
|
power_max, /* mW */
|
|
PSS_LATENCY_TRANSITION, /* lat1 */
|
|
PSS_LATENCY_BUSMASTER, /* lat2 */
|
|
ratio_max << 8, /* control */
|
|
ratio_max << 8); /* status */
|
|
|
|
/* Generate the remaining entries */
|
|
for (ratio = ratio_min + ((num_entries - 1) * ratio_step);
|
|
ratio >= ratio_min; ratio -= ratio_step) {
|
|
|
|
/* Calculate power at this ratio */
|
|
power = calculate_power(power_max, ratio_max, ratio);
|
|
clock = ratio * CPU_BCLK;
|
|
|
|
acpigen_write_PSS_package(
|
|
clock, /* MHz */
|
|
power, /* mW */
|
|
PSS_LATENCY_TRANSITION, /* lat1 */
|
|
PSS_LATENCY_BUSMASTER, /* lat2 */
|
|
ratio << 8, /* control */
|
|
ratio << 8); /* status */
|
|
}
|
|
|
|
/* Fix package length */
|
|
acpigen_pop_len();
|
|
}
|
|
|
|
void generate_cpu_entries(device_t device)
|
|
{
|
|
int core_id, cpu_id, pcontrol_blk = ACPI_BASE_ADDRESS, plen = 6;
|
|
int totalcores = dev_count_cpu();
|
|
int cores_per_package = get_cores_per_package();
|
|
int numcpus = totalcores/cores_per_package;
|
|
device_t dev = SA_DEV_ROOT;
|
|
config_t *config = dev->chip_info;
|
|
int is_s0ix_enable = config->s0ix_enable;
|
|
int max_c_state;
|
|
|
|
if (is_s0ix_enable)
|
|
max_c_state = ARRAY_SIZE(cstate_set_s0ix);
|
|
else
|
|
max_c_state = ARRAY_SIZE(cstate_set_non_s0ix);
|
|
|
|
printk(BIOS_DEBUG, "Found %d CPU(s) with %d core(s) each.\n",
|
|
numcpus, cores_per_package);
|
|
|
|
for (cpu_id = 0; cpu_id < numcpus; cpu_id++) {
|
|
for (core_id = 0; core_id < cores_per_package; core_id++) {
|
|
if (core_id > 0) {
|
|
pcontrol_blk = 0;
|
|
plen = 0;
|
|
}
|
|
|
|
/* Generate processor \_PR.CPUx */
|
|
acpigen_write_processor(
|
|
cpu_id*cores_per_package+core_id,
|
|
pcontrol_blk, plen);
|
|
/* Generate C-state tables */
|
|
generate_c_state_entries(is_s0ix_enable,
|
|
max_c_state);
|
|
|
|
/* Generate P-state tables */
|
|
generate_p_state_entries(core_id,
|
|
cores_per_package);
|
|
|
|
acpigen_pop_len();
|
|
}
|
|
}
|
|
}
|
|
|
|
unsigned long acpi_madt_irq_overrides(unsigned long current)
|
|
{
|
|
int sci = acpi_sci_irq();
|
|
acpi_madt_irqoverride_t *irqovr;
|
|
uint16_t flags = MP_IRQ_TRIGGER_LEVEL;
|
|
|
|
/* INT_SRC_OVR */
|
|
irqovr = (void *)current;
|
|
current += acpi_create_madt_irqoverride(irqovr, 0, 0, 2, 0);
|
|
|
|
if (sci >= 20)
|
|
flags |= MP_IRQ_POLARITY_LOW;
|
|
else
|
|
flags |= MP_IRQ_POLARITY_HIGH;
|
|
|
|
/* SCI */
|
|
irqovr = (void *)current;
|
|
current += acpi_create_madt_irqoverride(irqovr, 0, sci, sci, flags);
|
|
|
|
return current;
|
|
}
|
|
|
|
#define ALIGN_CURRENT current = (ALIGN(current, 16))
|
|
|
|
unsigned long southcluster_write_acpi_tables(device_t device,
|
|
unsigned long current,
|
|
struct acpi_rsdp *rsdp)
|
|
{
|
|
acpi_header_t *ssdt2;
|
|
|
|
current = acpi_write_hpet(device, current, rsdp);
|
|
ALIGN_CURRENT;
|
|
|
|
#if CONFIG_GOP_SUPPORT
|
|
igd_opregion_t *opregion;
|
|
|
|
printk(BIOS_DEBUG, "ACPI: * IGD OpRegion\n");
|
|
opregion = (igd_opregion_t *)current;
|
|
init_igd_opregion(opregion);
|
|
current += sizeof(igd_opregion_t);
|
|
ALIGN_CURRENT;
|
|
#endif
|
|
|
|
ssdt2 = (acpi_header_t *)current;
|
|
memset(ssdt2, 0, sizeof(acpi_header_t));
|
|
acpi_create_serialio_ssdt(ssdt2);
|
|
if (ssdt2->length) {
|
|
current += ssdt2->length;
|
|
acpi_add_table(rsdp, ssdt2);
|
|
printk(BIOS_DEBUG, "ACPI: * SSDT2 @ %p Length %x\n",ssdt2,
|
|
ssdt2->length);
|
|
ALIGN_CURRENT;
|
|
} else {
|
|
ssdt2 = NULL;
|
|
printk(BIOS_DEBUG, "ACPI: * SSDT2 not generated.\n");
|
|
}
|
|
|
|
printk(BIOS_DEBUG, "current = %lx\n", current);
|
|
|
|
return current;
|
|
}
|
|
|
|
void southcluster_inject_dsdt(device_t device)
|
|
{
|
|
global_nvs_t *gnvs;
|
|
|
|
gnvs = cbmem_find(CBMEM_ID_ACPI_GNVS);
|
|
if (!gnvs) {
|
|
gnvs = cbmem_add(CBMEM_ID_ACPI_GNVS, sizeof (*gnvs));
|
|
if (gnvs)
|
|
memset(gnvs, 0, sizeof(*gnvs));
|
|
}
|
|
|
|
if (gnvs) {
|
|
acpi_create_gnvs(gnvs);
|
|
acpi_save_gnvs((unsigned long)gnvs);
|
|
/* And tell SMI about it */
|
|
smm_setup_structures(gnvs, NULL, NULL);
|
|
|
|
/* Add it to DSDT. */
|
|
acpigen_write_scope("\\");
|
|
acpigen_write_name_dword("NVSA", (u32) gnvs);
|
|
acpigen_pop_len();
|
|
}
|
|
}
|
|
|
|
__attribute__((weak)) void acpi_create_serialio_ssdt(acpi_header_t *ssdt)
|
|
{
|
|
}
|