This adds proper support for turbo and super-low-frequency modes. Calculation of the p-states has been rewritten and moved into an extra file speedstep.c so it can be used for non-acpi stuff like EMTTM table generation. It has been tested with a Core2Duo T9400 (Penryn) and a Core Duo T2300 (Yonah) processor. Change-Id: I5f7104fc921ba67d85794254f11d486b6688ecec Signed-off-by: Nico Huber <nico.huber@secunet.com> Reviewed-on: http://review.coreboot.org/1658 Tested-by: build bot (Jenkins) Reviewed-by: Stefan Reinauer <stefan.reinauer@coreboot.org>
190 lines
6.2 KiB
C
190 lines
6.2 KiB
C
/*
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* This file is part of the coreboot project.
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*
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* Copyright (C) 2012 secunet Security Networks AG
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License as
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* published by the Free Software Foundation; version 2 of
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* 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., 51 Franklin St, Fifth Floor, Boston,
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* MA 02110-1301 USA
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*/
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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 <console/console.h>
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#include <cpu/intel/speedstep.h>
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/**
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* @brief Gather speedstep limits for current processor
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*
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* At least power limits are processor type specific. Penryn introduced half
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* steps in bus ratios. Don't know about Atom processors.
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*/
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static void speedstep_get_limits(sst_params_t *const params)
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{
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msr_t msr;
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const uint16_t cpu_id = (cpuid_eax(1) >> 4) & 0xffff;
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const uint32_t state_mask =
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/* Penryn supports non integer (i.e. half) ratios. */
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((cpu_id == 0x1067) ? SPEEDSTEP_RATIO_NONINT : 0)
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| SPEEDSTEP_RATIO_VALUE_MASK | SPEEDSTEP_VID_MASK;
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/* Initialize params to zero. */
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memset(params, '\0', sizeof(*params));
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/* Read Super-LFM parameters. */
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if (((rdmsr(MSR_EXTENDED_CONFIG).lo >> 27) & 3) == 3) {/*supported and
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enabled bits */
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msr = rdmsr(MSR_FSB_CLOCK_VCC);
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params->slfm = SPEEDSTEP_STATE_FROM_MSR(msr.lo, state_mask);
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params->slfm.dynfsb = 1;
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params->slfm.is_slfm = 1;
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}
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/* Read normal minimum parameters. */
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msr = rdmsr(MSR_THERM2_CTL);
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params->min = SPEEDSTEP_STATE_FROM_MSR(msr.lo, state_mask);
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/* Read normal maximum parameters. */
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/* Newer CPUs provide the normal maximum settings in
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IA32_PLATFORM_ID. The values in IA32_PERF_STS change
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when using turbo mode. */
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msr = rdmsr(IA32_PLATFORM_ID);
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params->max = SPEEDSTEP_STATE_FROM_MSR(msr.lo, state_mask);
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if (cpu_id == 0x006e) {
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/* Looks like Yonah CPUs don't have the frequency ratio in
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IA32_PLATFORM_ID. Use IA32_PERF_STS instead, the reading
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should be reliable as those CPUs don't have turbo mode. */
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msr = rdmsr(IA32_PERF_STS);
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params->max.ratio = (msr.hi & SPEEDSTEP_RATIO_VALUE_MASK)
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>> SPEEDSTEP_RATIO_SHIFT;
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}
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/* Read turbo parameters. */
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msr = rdmsr(MSR_FSB_CLOCK_VCC);
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if ((msr.hi & (1 << (63 - 32))) &&
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/* supported and */
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!(rdmsr(IA32_MISC_ENABLES).hi & (1 << (38 - 32)))) {
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/* not disabled */
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params->turbo = SPEEDSTEP_STATE_FROM_MSR(msr.hi, state_mask);
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params->turbo.is_turbo = 1;
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}
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/* Set power limits by processor type. */
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/* Defined values match the normal voltage versions only. But
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they are only a hint for OSPM, so this should not hurt much. */
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switch (cpu_id) {
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case 0x006e:
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/* Yonah */
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params->min.power = SPEEDSTEP_MIN_POWER_YONAH;
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params->max.power = SPEEDSTEP_MAX_POWER_YONAH;
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break;
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case 0x1067:
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/* Penryn */
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params->slfm.power = SPEEDSTEP_SLFM_POWER_PENRYN;
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params->min.power = SPEEDSTEP_MIN_POWER_PENRYN;
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params->max.power = SPEEDSTEP_MAX_POWER_PENRYN;
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params->turbo.power = SPEEDSTEP_MAX_POWER_PENRYN;
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break;
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case 0x006f:
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/* Merom */
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default:
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/* Use Merom values by default (as before). */
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params->slfm.power = SPEEDSTEP_SLFM_POWER_MEROM;
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params->min.power = SPEEDSTEP_MIN_POWER_MEROM;
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params->max.power = SPEEDSTEP_MAX_POWER_MEROM;
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params->turbo.power = SPEEDSTEP_MAX_POWER_MEROM;
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break;
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}
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}
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/**
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* @brief Generate full p-states table from processor parameters
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*
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* This is generic code and should work at least for Merom and Penryn
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* processors. It is used to generate acpi tables and configure EMTTM.
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*/
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void speedstep_gen_pstates(sst_table_t *const table)
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{
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sst_params_t params;
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/* Gather speedstep limits. */
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speedstep_get_limits(¶ms);
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/*\ First, find the number of normal states: \*/
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/* Calculate with doubled values to work
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around non-integer (.5) bus ratios. */
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const int power_diff2 = (params.max.power - params.min.power) * 2;
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const int vid_diff2 = (params.max.vid - params.min.vid) * 2;
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const int max_ratio2 = SPEEDSTEP_DOUBLE_RATIO(params.max);
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const int min_ratio2 = SPEEDSTEP_DOUBLE_RATIO(params.min);
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const int ratio_diff2 = max_ratio2 - min_ratio2;
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/* Calculate number of normal states (LFM to HFM, min to max). */
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/* Increase step size, until all states fit into the table.
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(Note: First try should always work, if
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SPEEDSTEP_MAX_NORMAL_STATES is set correctly.) */
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int states, step2 = 0;
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do {
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step2 += 2 * 2; /* Must be a multiple of 2 (doubled). */
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states = ratio_diff2 / step2 + 1;
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} while (states > SPEEDSTEP_MAX_NORMAL_STATES);
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if (step2 > 4)
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printk(BIOS_INFO, "Enhanced Speedstep processor with "
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"more than %d possible p-states.\n",
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SPEEDSTEP_MAX_NORMAL_STATES);
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if (states < 2) /* Report at least two normal states. */
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states = 2;
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/*\ Now, fill the table: \*/
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table->num_states = 0;
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/* Add turbo state if supported. */
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if (params.turbo.is_turbo)
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table->states[table->num_states++] = params.turbo;
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/* Add HFM first. */
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table->states[table->num_states] = params.max;
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/* Work around HFM and LFM having the same bus ratio. */
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if ((params.max.dynfsb == params.min.dynfsb) &&
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(params.max.nonint == params.min.nonint) &&
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(params.max.ratio == params.min.ratio))
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table->states[table->num_states].vid = params.min.vid;
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++table->num_states;
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--states;
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/* Now, add all other normal states based on LFM (min). */
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const int power_step = (power_diff2 / states) / 2;
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const int vid_step = (vid_diff2 / states) / 2;
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const int ratio_step = step2 / 2;
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int power = params.min.power + (states - 1) * power_step;
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int vid = params.min.vid + (states - 1) * vid_step;
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int ratio = params.min.ratio + (states - 1) * ratio_step;
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for (; states > 0; --states) {
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table->states[table->num_states++] =
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(sst_state_t){ 0, 0, ratio, vid, 0, 0, power };
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power -= power_step;
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vid -= vid_step;
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ratio -= ratio_step;
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}
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/* At last, add Super-LFM state if supported. */
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if (params.slfm.is_slfm)
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table->states[table->num_states++] = params.slfm;
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}
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