powernow-k8.c 39.7 KB
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/*
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 *   (c) 2003-2010 Advanced Micro Devices, Inc.
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 *  Your use of this code is subject to the terms and conditions of the
 *  GNU general public license version 2. See "COPYING" or
 *  http://www.gnu.org/licenses/gpl.html
 *
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 *  Support : mark.langsdorf@amd.com
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 *
 *  Based on the powernow-k7.c module written by Dave Jones.
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 *  (C) 2003 Dave Jones on behalf of SuSE Labs
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 *  (C) 2004 Dominik Brodowski <linux@brodo.de>
 *  (C) 2004 Pavel Machek <pavel@suse.cz>
 *  Licensed under the terms of the GNU GPL License version 2.
 *  Based upon datasheets & sample CPUs kindly provided by AMD.
 *
 *  Valuable input gratefully received from Dave Jones, Pavel Machek,
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 *  Dominik Brodowski, Jacob Shin, and others.
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 *  Originally developed by Paul Devriendt.
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 *  Processor information obtained from Chapter 9 (Power and Thermal Management)
 *  of the "BIOS and Kernel Developer's Guide for the AMD Athlon 64 and AMD
 *  Opteron Processors" available for download from www.amd.com
 *
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 *  Tables for specific CPUs can be inferred from
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 *     http://www.amd.com/us-en/assets/content_type/white_papers_and_tech_docs/30430.pdf
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 */

#include <linux/kernel.h>
#include <linux/smp.h>
#include <linux/module.h>
#include <linux/init.h>
#include <linux/cpufreq.h>
#include <linux/slab.h>
#include <linux/string.h>
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#include <linux/cpumask.h>
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#include <linux/sched.h>	/* for current / set_cpus_allowed() */
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#include <linux/io.h>
#include <linux/delay.h>
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#include <asm/msr.h>

#include <linux/acpi.h>
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#include <linux/mutex.h>
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#include <acpi/processor.h>

#define PFX "powernow-k8: "
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#define VERSION "version 2.20.00"
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#include "powernow-k8.h"
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#include "mperf.h"
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/* serialize freq changes  */
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static DEFINE_MUTEX(fidvid_mutex);
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static DEFINE_PER_CPU(struct powernow_k8_data *, powernow_data);
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static int cpu_family = CPU_OPTERON;

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/* core performance boost */
static bool cpb_capable, cpb_enabled;
static struct msr __percpu *msrs;

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static struct cpufreq_driver cpufreq_amd64_driver;

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#ifndef CONFIG_SMP
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static inline const struct cpumask *cpu_core_mask(int cpu)
{
	return cpumask_of(0);
}
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#endif

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/* Return a frequency in MHz, given an input fid */
static u32 find_freq_from_fid(u32 fid)
{
	return 800 + (fid * 100);
}

/* Return a frequency in KHz, given an input fid */
static u32 find_khz_freq_from_fid(u32 fid)
{
	return 1000 * find_freq_from_fid(fid);
}

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static u32 find_khz_freq_from_pstate(struct cpufreq_frequency_table *data,
		u32 pstate)
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{
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	return data[pstate].frequency;
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}

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/* Return the vco fid for an input fid
 *
 * Each "low" fid has corresponding "high" fid, and you can get to "low" fids
 * only from corresponding high fids. This returns "high" fid corresponding to
 * "low" one.
 */
static u32 convert_fid_to_vco_fid(u32 fid)
{
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	if (fid < HI_FID_TABLE_BOTTOM)
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		return 8 + (2 * fid);
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	else
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		return fid;
}

/*
 * Return 1 if the pending bit is set. Unless we just instructed the processor
 * to transition to a new state, seeing this bit set is really bad news.
 */
static int pending_bit_stuck(void)
{
	u32 lo, hi;

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	if (cpu_family == CPU_HW_PSTATE)
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		return 0;

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	rdmsr(MSR_FIDVID_STATUS, lo, hi);
	return lo & MSR_S_LO_CHANGE_PENDING ? 1 : 0;
}

/*
 * Update the global current fid / vid values from the status msr.
 * Returns 1 on error.
 */
static int query_current_values_with_pending_wait(struct powernow_k8_data *data)
{
	u32 lo, hi;
	u32 i = 0;

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	if (cpu_family == CPU_HW_PSTATE) {
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		rdmsr(MSR_PSTATE_STATUS, lo, hi);
		i = lo & HW_PSTATE_MASK;
		data->currpstate = i;

		/*
		 * a workaround for family 11h erratum 311 might cause
		 * an "out-of-range Pstate if the core is in Pstate-0
		 */
		if ((boot_cpu_data.x86 == 0x11) && (i >= data->numps))
			data->currpstate = HW_PSTATE_0;

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		return 0;
	}
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	do {
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		if (i++ > 10000) {
			dprintk("detected change pending stuck\n");
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			return 1;
		}
		rdmsr(MSR_FIDVID_STATUS, lo, hi);
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	} while (lo & MSR_S_LO_CHANGE_PENDING);
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	data->currvid = hi & MSR_S_HI_CURRENT_VID;
	data->currfid = lo & MSR_S_LO_CURRENT_FID;

	return 0;
}

/* the isochronous relief time */
static void count_off_irt(struct powernow_k8_data *data)
{
	udelay((1 << data->irt) * 10);
	return;
}

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/* the voltage stabilization time */
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static void count_off_vst(struct powernow_k8_data *data)
{
	udelay(data->vstable * VST_UNITS_20US);
	return;
}

/* need to init the control msr to a safe value (for each cpu) */
static void fidvid_msr_init(void)
{
	u32 lo, hi;
	u8 fid, vid;

	rdmsr(MSR_FIDVID_STATUS, lo, hi);
	vid = hi & MSR_S_HI_CURRENT_VID;
	fid = lo & MSR_S_LO_CURRENT_FID;
	lo = fid | (vid << MSR_C_LO_VID_SHIFT);
	hi = MSR_C_HI_STP_GNT_BENIGN;
	dprintk("cpu%d, init lo 0x%x, hi 0x%x\n", smp_processor_id(), lo, hi);
	wrmsr(MSR_FIDVID_CTL, lo, hi);
}

/* write the new fid value along with the other control fields to the msr */
static int write_new_fid(struct powernow_k8_data *data, u32 fid)
{
	u32 lo;
	u32 savevid = data->currvid;
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	u32 i = 0;
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	if ((fid & INVALID_FID_MASK) || (data->currvid & INVALID_VID_MASK)) {
		printk(KERN_ERR PFX "internal error - overflow on fid write\n");
		return 1;
	}

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	lo = fid;
	lo |= (data->currvid << MSR_C_LO_VID_SHIFT);
	lo |= MSR_C_LO_INIT_FID_VID;
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	dprintk("writing fid 0x%x, lo 0x%x, hi 0x%x\n",
		fid, lo, data->plllock * PLL_LOCK_CONVERSION);

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	do {
		wrmsr(MSR_FIDVID_CTL, lo, data->plllock * PLL_LOCK_CONVERSION);
		if (i++ > 100) {
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			printk(KERN_ERR PFX
				"Hardware error - pending bit very stuck - "
				"no further pstate changes possible\n");
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			return 1;
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		}
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	} while (query_current_values_with_pending_wait(data));
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	count_off_irt(data);

	if (savevid != data->currvid) {
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		printk(KERN_ERR PFX
			"vid change on fid trans, old 0x%x, new 0x%x\n",
			savevid, data->currvid);
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		return 1;
	}

	if (fid != data->currfid) {
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		printk(KERN_ERR PFX
			"fid trans failed, fid 0x%x, curr 0x%x\n", fid,
			data->currfid);
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		return 1;
	}

	return 0;
}

/* Write a new vid to the hardware */
static int write_new_vid(struct powernow_k8_data *data, u32 vid)
{
	u32 lo;
	u32 savefid = data->currfid;
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	int i = 0;
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	if ((data->currfid & INVALID_FID_MASK) || (vid & INVALID_VID_MASK)) {
		printk(KERN_ERR PFX "internal error - overflow on vid write\n");
		return 1;
	}

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	lo = data->currfid;
	lo |= (vid << MSR_C_LO_VID_SHIFT);
	lo |= MSR_C_LO_INIT_FID_VID;
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	dprintk("writing vid 0x%x, lo 0x%x, hi 0x%x\n",
		vid, lo, STOP_GRANT_5NS);

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	do {
		wrmsr(MSR_FIDVID_CTL, lo, STOP_GRANT_5NS);
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		if (i++ > 100) {
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			printk(KERN_ERR PFX "internal error - pending bit "
					"very stuck - no further pstate "
					"changes possible\n");
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			return 1;
		}
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	} while (query_current_values_with_pending_wait(data));
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	if (savefid != data->currfid) {
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		printk(KERN_ERR PFX "fid changed on vid trans, old "
			"0x%x new 0x%x\n",
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		       savefid, data->currfid);
		return 1;
	}

	if (vid != data->currvid) {
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		printk(KERN_ERR PFX "vid trans failed, vid 0x%x, "
				"curr 0x%x\n",
				vid, data->currvid);
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		return 1;
	}

	return 0;
}

/*
 * Reduce the vid by the max of step or reqvid.
 * Decreasing vid codes represent increasing voltages:
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 * vid of 0 is 1.550V, vid of 0x1e is 0.800V, vid of VID_OFF is off.
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 */
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static int decrease_vid_code_by_step(struct powernow_k8_data *data,
		u32 reqvid, u32 step)
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{
	if ((data->currvid - reqvid) > step)
		reqvid = data->currvid - step;

	if (write_new_vid(data, reqvid))
		return 1;

	count_off_vst(data);

	return 0;
}

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/* Change hardware pstate by single MSR write */
static int transition_pstate(struct powernow_k8_data *data, u32 pstate)
{
	wrmsr(MSR_PSTATE_CTRL, pstate, 0);
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	data->currpstate = pstate;
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	return 0;
}

/* Change Opteron/Athlon64 fid and vid, by the 3 phases. */
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static int transition_fid_vid(struct powernow_k8_data *data,
		u32 reqfid, u32 reqvid)
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{
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	if (core_voltage_pre_transition(data, reqvid, reqfid))
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		return 1;

	if (core_frequency_transition(data, reqfid))
		return 1;

	if (core_voltage_post_transition(data, reqvid))
		return 1;

	if (query_current_values_with_pending_wait(data))
		return 1;

	if ((reqfid != data->currfid) || (reqvid != data->currvid)) {
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		printk(KERN_ERR PFX "failed (cpu%d): req 0x%x 0x%x, "
				"curr 0x%x 0x%x\n",
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				smp_processor_id(),
				reqfid, reqvid, data->currfid, data->currvid);
		return 1;
	}

	dprintk("transitioned (cpu%d): new fid 0x%x, vid 0x%x\n",
		smp_processor_id(), data->currfid, data->currvid);

	return 0;
}

/* Phase 1 - core voltage transition ... setup voltage */
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static int core_voltage_pre_transition(struct powernow_k8_data *data,
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		u32 reqvid, u32 reqfid)
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{
	u32 rvosteps = data->rvo;
	u32 savefid = data->currfid;
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	u32 maxvid, lo, rvomult = 1;
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	dprintk("ph1 (cpu%d): start, currfid 0x%x, currvid 0x%x, "
		"reqvid 0x%x, rvo 0x%x\n",
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		smp_processor_id(),
		data->currfid, data->currvid, reqvid, data->rvo);

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	if ((savefid < LO_FID_TABLE_TOP) && (reqfid < LO_FID_TABLE_TOP))
		rvomult = 2;
	rvosteps *= rvomult;
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	rdmsr(MSR_FIDVID_STATUS, lo, maxvid);
	maxvid = 0x1f & (maxvid >> 16);
	dprintk("ph1 maxvid=0x%x\n", maxvid);
	if (reqvid < maxvid) /* lower numbers are higher voltages */
		reqvid = maxvid;

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	while (data->currvid > reqvid) {
		dprintk("ph1: curr 0x%x, req vid 0x%x\n",
			data->currvid, reqvid);
		if (decrease_vid_code_by_step(data, reqvid, data->vidmvs))
			return 1;
	}

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	while ((rvosteps > 0) &&
			((rvomult * data->rvo + data->currvid) > reqvid)) {
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		if (data->currvid == maxvid) {
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			rvosteps = 0;
		} else {
			dprintk("ph1: changing vid for rvo, req 0x%x\n",
				data->currvid - 1);
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			if (decrease_vid_code_by_step(data, data->currvid-1, 1))
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				return 1;
			rvosteps--;
		}
	}

	if (query_current_values_with_pending_wait(data))
		return 1;

	if (savefid != data->currfid) {
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		printk(KERN_ERR PFX "ph1 err, currfid changed 0x%x\n",
				data->currfid);
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		return 1;
	}

	dprintk("ph1 complete, currfid 0x%x, currvid 0x%x\n",
		data->currfid, data->currvid);

	return 0;
}

/* Phase 2 - core frequency transition */
static int core_frequency_transition(struct powernow_k8_data *data, u32 reqfid)
{
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	u32 vcoreqfid, vcocurrfid, vcofiddiff;
	u32 fid_interval, savevid = data->currvid;
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	if (data->currfid == reqfid) {
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		printk(KERN_ERR PFX "ph2 null fid transition 0x%x\n",
				data->currfid);
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		return 0;
	}

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	dprintk("ph2 (cpu%d): starting, currfid 0x%x, currvid 0x%x, "
		"reqfid 0x%x\n",
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		smp_processor_id(),
		data->currfid, data->currvid, reqfid);

	vcoreqfid = convert_fid_to_vco_fid(reqfid);
	vcocurrfid = convert_fid_to_vco_fid(data->currfid);
	vcofiddiff = vcocurrfid > vcoreqfid ? vcocurrfid - vcoreqfid
	    : vcoreqfid - vcocurrfid;

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	if ((reqfid <= LO_FID_TABLE_TOP) && (data->currfid <= LO_FID_TABLE_TOP))
		vcofiddiff = 0;

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	while (vcofiddiff > 2) {
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		(data->currfid & 1) ? (fid_interval = 1) : (fid_interval = 2);

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		if (reqfid > data->currfid) {
			if (data->currfid > LO_FID_TABLE_TOP) {
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				if (write_new_fid(data,
						data->currfid + fid_interval))
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					return 1;
			} else {
				if (write_new_fid
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				    (data,
				     2 + convert_fid_to_vco_fid(data->currfid)))
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					return 1;
			}
		} else {
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			if (write_new_fid(data, data->currfid - fid_interval))
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				return 1;
		}

		vcocurrfid = convert_fid_to_vco_fid(data->currfid);
		vcofiddiff = vcocurrfid > vcoreqfid ? vcocurrfid - vcoreqfid
		    : vcoreqfid - vcocurrfid;
	}

	if (write_new_fid(data, reqfid))
		return 1;

	if (query_current_values_with_pending_wait(data))
		return 1;

	if (data->currfid != reqfid) {
		printk(KERN_ERR PFX
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			"ph2: mismatch, failed fid transition, "
			"curr 0x%x, req 0x%x\n",
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			data->currfid, reqfid);
		return 1;
	}

	if (savevid != data->currvid) {
		printk(KERN_ERR PFX "ph2: vid changed, save 0x%x, curr 0x%x\n",
			savevid, data->currvid);
		return 1;
	}

	dprintk("ph2 complete, currfid 0x%x, currvid 0x%x\n",
		data->currfid, data->currvid);

	return 0;
}

/* Phase 3 - core voltage transition flow ... jump to the final vid. */
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static int core_voltage_post_transition(struct powernow_k8_data *data,
		u32 reqvid)
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{
	u32 savefid = data->currfid;
	u32 savereqvid = reqvid;

	dprintk("ph3 (cpu%d): starting, currfid 0x%x, currvid 0x%x\n",
		smp_processor_id(),
		data->currfid, data->currvid);

	if (reqvid != data->currvid) {
		if (write_new_vid(data, reqvid))
			return 1;

		if (savefid != data->currfid) {
			printk(KERN_ERR PFX
			       "ph3: bad fid change, save 0x%x, curr 0x%x\n",
			       savefid, data->currfid);
			return 1;
		}

		if (data->currvid != reqvid) {
			printk(KERN_ERR PFX
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			       "ph3: failed vid transition\n, "
			       "req 0x%x, curr 0x%x",
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			       reqvid, data->currvid);
			return 1;
		}
	}

	if (query_current_values_with_pending_wait(data))
		return 1;

	if (savereqvid != data->currvid) {
		dprintk("ph3 failed, currvid 0x%x\n", data->currvid);
		return 1;
	}

	if (savefid != data->currfid) {
		dprintk("ph3 failed, currfid changed 0x%x\n",
			data->currfid);
		return 1;
	}

	dprintk("ph3 complete, currfid 0x%x, currvid 0x%x\n",
		data->currfid, data->currvid);

	return 0;
}

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static void check_supported_cpu(void *_rc)
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{
	u32 eax, ebx, ecx, edx;
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	int *rc = _rc;
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	*rc = -ENODEV;
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	if (current_cpu_data.x86_vendor != X86_VENDOR_AMD)
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		return;
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	eax = cpuid_eax(CPUID_PROCESSOR_SIGNATURE);
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	if (((eax & CPUID_XFAM) != CPUID_XFAM_K8) &&
	    ((eax & CPUID_XFAM) < CPUID_XFAM_10H))
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		return;
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	if ((eax & CPUID_XFAM) == CPUID_XFAM_K8) {
		if (((eax & CPUID_USE_XFAM_XMOD) != CPUID_USE_XFAM_XMOD) ||
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		    ((eax & CPUID_XMOD) > CPUID_XMOD_REV_MASK)) {
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			printk(KERN_INFO PFX
				"Processor cpuid %x not supported\n", eax);
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			return;
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		}
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		eax = cpuid_eax(CPUID_GET_MAX_CAPABILITIES);
		if (eax < CPUID_FREQ_VOLT_CAPABILITIES) {
			printk(KERN_INFO PFX
			       "No frequency change capabilities detected\n");
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			return;
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		}
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		cpuid(CPUID_FREQ_VOLT_CAPABILITIES, &eax, &ebx, &ecx, &edx);
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		if ((edx & P_STATE_TRANSITION_CAPABLE)
			!= P_STATE_TRANSITION_CAPABLE) {
			printk(KERN_INFO PFX
				"Power state transitions not supported\n");
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			return;
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		}
	} else { /* must be a HW Pstate capable processor */
		cpuid(CPUID_FREQ_VOLT_CAPABILITIES, &eax, &ebx, &ecx, &edx);
		if ((edx & USE_HW_PSTATE) == USE_HW_PSTATE)
			cpu_family = CPU_HW_PSTATE;
		else
559
			return;
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	}

562
	*rc = 0;
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}

565 566
static int check_pst_table(struct powernow_k8_data *data, struct pst_s *pst,
		u8 maxvid)
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{
	unsigned int j;
	u8 lastfid = 0xff;

	for (j = 0; j < data->numps; j++) {
		if (pst[j].vid > LEAST_VID) {
573 574
			printk(KERN_ERR FW_BUG PFX "vid %d invalid : 0x%x\n",
			       j, pst[j].vid);
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			return -EINVAL;
		}
577 578
		if (pst[j].vid < data->rvo) {
			/* vid + rvo >= 0 */
579 580
			printk(KERN_ERR FW_BUG PFX "0 vid exceeded with pstate"
			       " %d\n", j);
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			return -ENODEV;
		}
583 584
		if (pst[j].vid < maxvid + data->rvo) {
			/* vid + rvo >= maxvid */
585 586
			printk(KERN_ERR FW_BUG PFX "maxvid exceeded with pstate"
			       " %d\n", j);
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			return -ENODEV;
		}
589
		if (pst[j].fid > MAX_FID) {
590 591
			printk(KERN_ERR FW_BUG PFX "maxfid exceeded with pstate"
			       " %d\n", j);
592 593 594
			return -ENODEV;
		}
		if (j && (pst[j].fid < HI_FID_TABLE_BOTTOM)) {
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			/* Only first fid is allowed to be in "low" range */
596 597
			printk(KERN_ERR FW_BUG PFX "two low fids - %d : "
			       "0x%x\n", j, pst[j].fid);
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			return -EINVAL;
		}
		if (pst[j].fid < lastfid)
			lastfid = pst[j].fid;
	}
	if (lastfid & 1) {
604
		printk(KERN_ERR FW_BUG PFX "lastfid invalid\n");
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		return -EINVAL;
	}
	if (lastfid > LO_FID_TABLE_TOP)
608 609
		printk(KERN_INFO FW_BUG PFX
			"first fid not from lo freq table\n");
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	return 0;
}

614 615
static void invalidate_entry(struct cpufreq_frequency_table *powernow_table,
		unsigned int entry)
616
{
617
	powernow_table[entry].frequency = CPUFREQ_ENTRY_INVALID;
618 619
}

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static void print_basics(struct powernow_k8_data *data)
{
	int j;
	for (j = 0; j < data->numps; j++) {
624 625
		if (data->powernow_table[j].frequency !=
				CPUFREQ_ENTRY_INVALID) {
626
			if (cpu_family == CPU_HW_PSTATE) {
627 628
				printk(KERN_INFO PFX
					"   %d : pstate %d (%d MHz)\n", j,
629
					data->powernow_table[j].index,
630
					data->powernow_table[j].frequency/1000);
631
			} else {
632 633
				printk(KERN_INFO PFX
					"   %d : fid 0x%x (%d MHz), vid 0x%x\n",
634 635 636 637
					j,
					data->powernow_table[j].index & 0xff,
					data->powernow_table[j].frequency/1000,
					data->powernow_table[j].index >> 8);
638 639
			}
		}
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	}
	if (data->batps)
642 643
		printk(KERN_INFO PFX "Only %d pstates on battery\n",
				data->batps);
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}

646 647 648 649 650 651 652 653 654 655 656 657 658 659
static u32 freq_from_fid_did(u32 fid, u32 did)
{
	u32 mhz = 0;

	if (boot_cpu_data.x86 == 0x10)
		mhz = (100 * (fid + 0x10)) >> did;
	else if (boot_cpu_data.x86 == 0x11)
		mhz = (100 * (fid + 8)) >> did;
	else
		BUG();

	return mhz * 1000;
}

660 661
static int fill_powernow_table(struct powernow_k8_data *data,
		struct pst_s *pst, u8 maxvid)
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{
	struct cpufreq_frequency_table *powernow_table;
	unsigned int j;

666 667 668 669 670
	if (data->batps) {
		/* use ACPI support to get full speed on mains power */
		printk(KERN_WARNING PFX
			"Only %d pstates usable (use ACPI driver for full "
			"range\n", data->batps);
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		data->numps = data->batps;
	}

674
	for (j = 1; j < data->numps; j++) {
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		if (pst[j-1].fid >= pst[j].fid) {
			printk(KERN_ERR PFX "PST out of sequence\n");
			return -EINVAL;
		}
	}

	if (data->numps < 2) {
		printk(KERN_ERR PFX "no p states to transition\n");
		return -ENODEV;
	}

	if (check_pst_table(data, pst, maxvid))
		return -EINVAL;

	powernow_table = kmalloc((sizeof(struct cpufreq_frequency_table)
		* (data->numps + 1)), GFP_KERNEL);
	if (!powernow_table) {
		printk(KERN_ERR PFX "powernow_table memory alloc failure\n");
		return -ENOMEM;
	}

	for (j = 0; j < data->numps; j++) {
697
		int freq;
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		powernow_table[j].index = pst[j].fid; /* lower 8 bits */
		powernow_table[j].index |= (pst[j].vid << 8); /* upper 8 bits */
700 701
		freq = find_khz_freq_from_fid(pst[j].fid);
		powernow_table[j].frequency = freq;
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	}
	powernow_table[data->numps].frequency = CPUFREQ_TABLE_END;
	powernow_table[data->numps].index = 0;

	if (query_current_values_with_pending_wait(data)) {
		kfree(powernow_table);
		return -EIO;
	}

	dprintk("cfid 0x%x, cvid 0x%x\n", data->currfid, data->currvid);
	data->powernow_table = powernow_table;
713
	if (cpumask_first(cpu_core_mask(data->cpu)) == data->cpu)
714
		print_basics(data);
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	for (j = 0; j < data->numps; j++)
717 718
		if ((pst[j].fid == data->currfid) &&
		    (pst[j].vid == data->currvid))
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			return 0;

	dprintk("currfid/vid do not match PST, ignoring\n");
	return 0;
}

/* Find and validate the PSB/PST table in BIOS. */
static int find_psb_table(struct powernow_k8_data *data)
{
	struct psb_s *psb;
	unsigned int i;
	u32 mvs;
	u8 maxvid;
	u32 cpst = 0;
	u32 thiscpuid;

	for (i = 0xc0000; i < 0xffff0; i += 0x10) {
		/* Scan BIOS looking for the signature. */
		/* It can not be at ffff0 - it is too big. */

		psb = phys_to_virt(i);
		if (memcmp(psb, PSB_ID_STRING, PSB_ID_STRING_LEN) != 0)
			continue;

		dprintk("found PSB header at 0x%p\n", psb);

		dprintk("table vers: 0x%x\n", psb->tableversion);
		if (psb->tableversion != PSB_VERSION_1_4) {
747
			printk(KERN_ERR FW_BUG PFX "PSB table is not v1.4\n");
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			return -ENODEV;
		}

		dprintk("flags: 0x%x\n", psb->flags1);
		if (psb->flags1) {
753
			printk(KERN_ERR FW_BUG PFX "unknown flags\n");
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			return -ENODEV;
		}

		data->vstable = psb->vstable;
758 759
		dprintk("voltage stabilization time: %d(*20us)\n",
				data->vstable);
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		dprintk("flags2: 0x%x\n", psb->flags2);
		data->rvo = psb->flags2 & 3;
		data->irt = ((psb->flags2) >> 2) & 3;
		mvs = ((psb->flags2) >> 4) & 3;
		data->vidmvs = 1 << mvs;
		data->batps = ((psb->flags2) >> 6) & 3;

		dprintk("ramp voltage offset: %d\n", data->rvo);
		dprintk("isochronous relief time: %d\n", data->irt);
		dprintk("maximum voltage step: %d - 0x%x\n", mvs, data->vidmvs);

		dprintk("numpst: 0x%x\n", psb->num_tables);
		cpst = psb->num_tables;
774 775
		if ((psb->cpuid == 0x00000fc0) ||
		    (psb->cpuid == 0x00000fe0)) {
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			thiscpuid = cpuid_eax(CPUID_PROCESSOR_SIGNATURE);
777 778
			if ((thiscpuid == 0x00000fc0) ||
			    (thiscpuid == 0x00000fe0))
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				cpst = 1;
		}
		if (cpst != 1) {
782
			printk(KERN_ERR FW_BUG PFX "numpst must be 1\n");
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			return -ENODEV;
		}

		data->plllock = psb->plllocktime;
		dprintk("plllocktime: 0x%x (units 1us)\n", psb->plllocktime);
		dprintk("maxfid: 0x%x\n", psb->maxfid);
		dprintk("maxvid: 0x%x\n", psb->maxvid);
		maxvid = psb->maxvid;

		data->numps = psb->numps;
		dprintk("numpstates: 0x%x\n", data->numps);
794 795
		return fill_powernow_table(data,
				(struct pst_s *)(psb+1), maxvid);
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	}
	/*
	 * If you see this message, complain to BIOS manufacturer. If
	 * he tells you "we do not support Linux" or some similar
	 * nonsense, remember that Windows 2000 uses the same legacy
	 * mechanism that the old Linux PSB driver uses. Tell them it
	 * is broken with Windows 2000.
	 *
	 * The reference to the AMD documentation is chapter 9 in the
	 * BIOS and Kernel Developer's Guide, which is available on
	 * www.amd.com
	 */
808
	printk(KERN_ERR FW_BUG PFX "No PSB or ACPI _PSS objects\n");
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	return -ENODEV;
}

812 813
static void powernow_k8_acpi_pst_values(struct powernow_k8_data *data,
		unsigned int index)
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{
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	u64 control;
816

817
	if (!data->acpi_data.state_count || (cpu_family == CPU_HW_PSTATE))
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		return;

820 821 822 823 824 825 826 827
	control = data->acpi_data.states[index].control;
	data->irt = (control >> IRT_SHIFT) & IRT_MASK;
	data->rvo = (control >> RVO_SHIFT) & RVO_MASK;
	data->exttype = (control >> EXT_TYPE_SHIFT) & EXT_TYPE_MASK;
	data->plllock = (control >> PLL_L_SHIFT) & PLL_L_MASK;
	data->vidmvs = 1 << ((control >> MVS_SHIFT) & MVS_MASK);
	data->vstable = (control >> VST_SHIFT) & VST_MASK;
}
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static int powernow_k8_cpu_init_acpi(struct powernow_k8_data *data)
{
	struct cpufreq_frequency_table *powernow_table;
832
	int ret_val = -ENODEV;
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	u64 control, status;
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835
	if (acpi_processor_register_performance(&data->acpi_data, data->cpu)) {
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		dprintk("register performance failed: bad ACPI data\n");
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		return -EIO;
	}

	/* verify the data contained in the ACPI structures */
841
	if (data->acpi_data.state_count <= 1) {
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		dprintk("No ACPI P-States\n");
		goto err_out;
	}

846 847 848 849 850
	control = data->acpi_data.control_register.space_id;
	status = data->acpi_data.status_register.space_id;

	if ((control != ACPI_ADR_SPACE_FIXED_HARDWARE) ||
	    (status != ACPI_ADR_SPACE_FIXED_HARDWARE)) {
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		dprintk("Invalid control/status registers (%x - %x)\n",
852
			control, status);
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		goto err_out;
	}

	/* fill in data->powernow_table */
	powernow_table = kmalloc((sizeof(struct cpufreq_frequency_table)
858
		* (data->acpi_data.state_count + 1)), GFP_KERNEL);
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	if (!powernow_table) {
		dprintk("powernow_table memory alloc failure\n");
		goto err_out;
	}

864 865 866 867
	/* fill in data */
	data->numps = data->acpi_data.state_count;
	powernow_k8_acpi_pst_values(data, 0);

868
	if (cpu_family == CPU_HW_PSTATE)
869 870 871 872 873 874
		ret_val = fill_powernow_table_pstate(data, powernow_table);
	else
		ret_val = fill_powernow_table_fidvid(data, powernow_table);
	if (ret_val)
		goto err_out_mem;

875 876
	powernow_table[data->acpi_data.state_count].frequency =
		CPUFREQ_TABLE_END;
877
	powernow_table[data->acpi_data.state_count].index = 0;
878 879
	data->powernow_table = powernow_table;

880
	if (cpumask_first(cpu_core_mask(data->cpu)) == data->cpu)
881
		print_basics(data);
882 883 884 885

	/* notify BIOS that we exist */
	acpi_processor_notify_smm(THIS_MODULE);

886
	if (!zalloc_cpumask_var(&data->acpi_data.shared_cpu_map, GFP_KERNEL)) {
887 888 889 890 891 892
		printk(KERN_ERR PFX
				"unable to alloc powernow_k8_data cpumask\n");
		ret_val = -ENOMEM;
		goto err_out_mem;
	}

893 894 895 896 897 898
	return 0;

err_out_mem:
	kfree(powernow_table);

err_out:
899
	acpi_processor_unregister_performance(&data->acpi_data, data->cpu);
900

901 902
	/* data->acpi_data.state_count informs us at ->exit()
	 * whether ACPI was used */
903
	data->acpi_data.state_count = 0;
904

905
	return ret_val;
906 907
}

908 909
static int fill_powernow_table_pstate(struct powernow_k8_data *data,
		struct cpufreq_frequency_table *powernow_table)
910 911
{
	int i;
912 913 914
	u32 hi = 0, lo = 0;
	rdmsr(MSR_PSTATE_CUR_LIMIT, hi, lo);
	data->max_hw_pstate = (hi & HW_PSTATE_MAX_MASK) >> HW_PSTATE_MAX_SHIFT;
915

916
	for (i = 0; i < data->acpi_data.state_count; i++) {
917 918
		u32 index;

919
		index = data->acpi_data.states[i].control & HW_PSTATE_MASK;
920
		if (index > data->max_hw_pstate) {
921 922 923 924
			printk(KERN_ERR PFX "invalid pstate %d - "
					"bad value %d.\n", i, index);
			printk(KERN_ERR PFX "Please report to BIOS "
					"manufacturer\n");
925
			invalidate_entry(powernow_table, i);
926
			continue;
927 928 929 930
		}
		rdmsr(MSR_PSTATE_DEF_BASE + index, lo, hi);
		if (!(hi & HW_PSTATE_VALID_MASK)) {
			dprintk("invalid pstate %d, ignoring\n", index);
931
			invalidate_entry(powernow_table, i);
932 933 934
			continue;
		}

935
		powernow_table[i].index = index;
936

937
		/* Frequency may be rounded for these */
938 939
		if ((boot_cpu_data.x86 == 0x10 && boot_cpu_data.x86_model < 10)
				 || boot_cpu_data.x86 == 0x11) {
940 941 942 943 944
			powernow_table[i].frequency =
				freq_from_fid_did(lo & 0x3f, (lo >> 6) & 7);
		} else
			powernow_table[i].frequency =
				data->acpi_data.states[i].core_frequency * 1000;
945 946 947 948
	}
	return 0;
}

949 950
static int fill_powernow_table_fidvid(struct powernow_k8_data *data,
		struct cpufreq_frequency_table *powernow_table)
951 952
{
	int i;
953

954
	for (i = 0; i < data->acpi_data.state_count; i++) {
955 956
		u32 fid;
		u32 vid;
957
		u32 freq, index;
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		u64 status, control;
959 960

		if (data->exttype) {
961 962 963
			status =  data->acpi_data.states[i].status;
			fid = status & EXT_FID_MASK;
			vid = (status >> VID_SHIFT) & EXT_VID_MASK;
964
		} else {
965 966 967
			control =  data->acpi_data.states[i].control;
			fid = control & FID_MASK;
			vid = (control >> VID_SHIFT) & VID_MASK;
968
		}
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		dprintk("   %d : fid 0x%x, vid 0x%x\n", i, fid, vid);

972 973 974 975 976
		index = fid | (vid<<8);
		powernow_table[i].index = index;

		freq = find_khz_freq_from_fid(fid);
		powernow_table[i].frequency = freq;
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		/* verify frequency is OK */
979 980
		if ((freq > (MAX_FREQ * 1000)) || (freq < (MIN_FREQ * 1000))) {
			dprintk("invalid freq %u kHz, ignoring\n", freq);
981
			invalidate_entry(powernow_table, i);
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			continue;
		}

985 986
		/* verify voltage is OK -
		 * BIOSs are using "off" to indicate invalid */
987
		if (vid == VID_OFF) {
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			dprintk("invalid vid %u, ignoring\n", vid);
989
			invalidate_entry(powernow_table, i);
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			continue;
		}

993 994 995 996 997 998
		if (freq != (data->acpi_data.states[i].core_frequency * 1000)) {
			printk(KERN_INFO PFX "invalid freq entries "
				"%u kHz vs. %u kHz\n", freq,
				(unsigned int)
				(data->acpi_data.states[i].core_frequency
				 * 1000));
999
			invalidate_entry(powernow_table, i);
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			continue;
		}
	}
	return 0;
}

static void powernow_k8_cpu_exit_acpi(struct powernow_k8_data *data)
{
1008
	if (data->acpi_data.state_count)
1009 1010
		acpi_processor_unregister_performance(&data->acpi_data,
				data->cpu);
1011
	free_cpumask_var(data->acpi_data.shared_cpu_map);
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}

1014 1015 1016 1017 1018 1019 1020 1021 1022 1023
static int get_transition_latency(struct powernow_k8_data *data)
{
	int max_latency = 0;
	int i;
	for (i = 0; i < data->acpi_data.state_count; i++) {
		int cur_latency = data->acpi_data.states[i].transition_latency
			+ data->acpi_data.states[i].bus_master_latency;
		if (cur_latency > max_latency)
			max_latency = cur_latency;
	}
1024 1025
	if (max_latency == 0) {
		/*
1026 1027 1028 1029
		 * Fam 11h and later may return 0 as transition latency. This
		 * is intended and means "very fast". While cpufreq core and
		 * governors currently can handle that gracefully, better set it
		 * to 1 to avoid problems in the future.
1030
		 */
1031
		if (boot_cpu_data.x86 < 0x11)
1032 1033 1034 1035
			printk(KERN_ERR FW_WARN PFX "Invalid zero transition "
				"latency\n");
		max_latency = 1;
	}
1036 1037 1038 1039
	/* value in usecs, needs to be in nanoseconds */
	return 1000 * max_latency;
}

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/* Take a frequency, and issue the fid/vid transition command */
1041 1042
static int transition_frequency_fidvid(struct powernow_k8_data *data,
		unsigned int index)
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{
1044 1045
	u32 fid = 0;
	u32 vid = 0;
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	int res, i;
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	struct cpufreq_freqs freqs;

	dprintk("cpu %d transition to index %u\n", smp_processor_id(), index);

1051
	/* fid/vid correctness check for k8 */
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	/* fid are the lower 8 bits of the index we stored into
1053 1054
	 * the cpufreq frequency table in find_psb_table, vid
	 * are the upper 8 bits.
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	 */
	fid = data->powernow_table[index].index & 0xFF;
	vid = (data->powernow_table[index].index & 0xFF00) >> 8;

	dprintk("table matched fid 0x%x, giving vid 0x%x\n", fid, vid);

	if (query_current_values_with_pending_wait(data))
		return 1;

	if ((data->currvid == vid) && (data->currfid == fid)) {
		dprintk("target matches current values (fid 0x%x, vid 0x%x)\n",
			fid, vid);
		return 0;
	}

	dprintk("cpu %d, changing to fid 0x%x, vid 0x%x\n",
		smp_processor_id(), fid, vid);
	freqs.old = find_khz_freq_from_fid(data->currfid);
	freqs.new = find_khz_freq_from_fid(fid);
1074

1075
	for_each_cpu(i, data->available_cores) {
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		freqs.cpu = i;
		cpufreq_notify_transition(&freqs, CPUFREQ_PRECHANGE);
	}
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	res = transition_fid_vid(data, fid, vid);
	freqs.new = find_khz_freq_from_fid(data->currfid);
1082

1083
	for_each_cpu(i, data->available_cores) {
1084 1085 1086 1087 1088 1089 1090
		freqs.cpu = i;
		cpufreq_notify_transition(&freqs, CPUFREQ_POSTCHANGE);
	}
	return res;
}

/* Take a frequency, and issue the hardware pstate transition command */
1091 1092
static int transition_frequency_pstate(struct powernow_k8_data *data,
		unsigned int index)
1093 1094 1095 1096 1097 1098 1099
{
	u32 pstate = 0;
	int res, i;
	struct cpufreq_freqs freqs;

	dprintk("cpu %d transition to index %u\n", smp_processor_id(), index);

1100
	/* get MSR index for hardware pstate transition */
1101
	pstate = index & HW_PSTATE_MASK;
1102
	if (pstate > data->max_hw_pstate)
1103
		return 0;
1104 1105
	freqs.old = find_khz_freq_from_pstate(data->powernow_table,
			data->currpstate);
1106
	freqs.new = find_khz_freq_from_pstate(data->powernow_table, pstate);
1107

1108
	for_each_cpu(i, data->available_cores) {
1109 1110 1111 1112 1113
		freqs.cpu = i;
		cpufreq_notify_transition(&freqs, CPUFREQ_PRECHANGE);
	}

	res = transition_pstate(data, pstate);
1114
	freqs.new = find_khz_freq_from_pstate(data->powernow_table, pstate);
1115

1116
	for_each_cpu(i, data->available_cores) {
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		freqs.cpu = i;
		cpufreq_notify_transition(&freqs, CPUFREQ_POSTCHANGE);
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	}
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	return res;
}

/* Driver entry point to switch to the target frequency */
1124 1125
static int powernowk8_target(struct cpufreq_policy *pol,
		unsigned targfreq, unsigned relation)
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{
1127
	cpumask_var_t oldmask;
1128
	struct powernow_k8_data *data = per_cpu(powernow_data, pol->cpu);
1129 1130
	u32 checkfid;
	u32 checkvid;
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	unsigned int newstate;
	int ret = -EIO;

1134 1135 1136
	if (!data)
		return -EINVAL;

1137 1138 1139
	checkfid = data->currfid;
	checkvid = data->currvid;

1140 1141 1142 1143 1144
	/* only run on specific CPU from here on. */
	/* This is poor form: use a workqueue or smp_call_function_single */
	if (!alloc_cpumask_var(&oldmask, GFP_KERNEL))
		return -ENOMEM;

1145
	cpumask_copy(oldmask, tsk_cpus_allowed(current));
1146
	set_cpus_allowed_ptr(current, cpumask_of(pol->cpu));
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	if (smp_processor_id() != pol->cpu) {
1149
		printk(KERN_ERR PFX "limiting to cpu %u failed\n", pol->cpu);
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		goto err_out;
	}

	if (pending_bit_stuck()) {
		printk(KERN_ERR PFX "failing targ, change pending bit set\n");
		goto err_out;
	}

	dprintk("targ: cpu %d, %d kHz, min %d, max %d, relation %d\n",
		pol->cpu, targfreq, pol->min, pol->max, relation);

1161
	if (query_current_values_with_pending_wait(data))
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		goto err_out;

1164
	if (cpu_family != CPU_HW_PSTATE) {
1165
		dprintk("targ: curr fid 0x%x, vid 0x%x\n",
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		data->currfid, data->currvid);

1168 1169
		if ((checkvid != data->currvid) ||
		    (checkfid != data->currfid)) {
1170
			printk(KERN_INFO PFX
1171 1172 1173 1174
				"error - out of sync, fix 0x%x 0x%x, "
				"vid 0x%x 0x%x\n",
				checkfid, data->currfid,
				checkvid, data->currvid);
1175
		}
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	}

1178 1179
	if (cpufreq_frequency_table_target(pol, data->powernow_table,
				targfreq, relation, &newstate))
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		goto err_out;

1182
	mutex_lock(&fidvid_mutex);
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1183

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	powernow_k8_acpi_pst_values(data, newstate);

1186
	if (cpu_family == CPU_HW_PSTATE)
1187 1188 1189 1190
		ret = transition_frequency_pstate(data, newstate);
	else
		ret = transition_frequency_fidvid(data, newstate);
	if (ret) {
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		printk(KERN_ERR PFX "transition frequency failed\n");
		ret = 1;
1193
		mutex_unlock(&fidvid_mutex);
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		goto err_out;
	}
1196
	mutex_unlock(&fidvid_mutex);
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1197

1198
	if (cpu_family == CPU_HW_PSTATE)
1199 1200
		pol->cur = find_khz_freq_from_pstate(data->powernow_table,
				newstate);
1201 1202
	else
		pol->cur = find_khz_freq_from_fid(data->currfid);
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	ret = 0;

err_out:
1206 1207
	set_cpus_allowed_ptr(current, oldmask);
	free_cpumask_var(oldmask);
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	return ret;
}

/* Driver entry point to verify the policy and range of frequencies */
static int powernowk8_verify(struct cpufreq_policy *pol)
{
1214
	struct powernow_k8_data *data = per_cpu(powernow_data, pol->cpu);
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1216 1217 1218
	if (!data)
		return -EINVAL;

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	return cpufreq_frequency_table_verify(pol, data->powernow_table);
}

1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247
struct init_on_cpu {
	struct powernow_k8_data *data;
	int rc;
};

static void __cpuinit powernowk8_cpu_init_on_cpu(void *_init_on_cpu)
{
	struct init_on_cpu *init_on_cpu = _init_on_cpu;

	if (pending_bit_stuck()) {
		printk(KERN_ERR PFX "failing init, change pending bit set\n");
		init_on_cpu->rc = -ENODEV;
		return;
	}

	if (query_current_values_with_pending_wait(init_on_cpu->data)) {
		init_on_cpu->rc = -ENODEV;
		return;
	}

	if (cpu_family == CPU_OPTERON)
		fidvid_msr_init();

	init_on_cpu->rc = 0;
}

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/* per CPU init entry point to the driver */
1249
static int __cpuinit powernowk8_cpu_init(struct cpufreq_policy *pol)
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{
1251 1252
	static const char ACPI_PSS_BIOS_BUG_MSG[] =
		KERN_ERR FW_BUG PFX "No compatible ACPI _PSS objects found.\n"
1253
		FW_BUG PFX "Try again with latest BIOS.\n";
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	struct powernow_k8_data *data;
1255
	struct init_on_cpu init_on_cpu;
1256
	int rc;
1257
	struct cpuinfo_x86 *c = &cpu_data(pol->cpu);
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1259 1260 1261
	if (!cpu_online(pol->cpu))
		return -ENODEV;

1262 1263
	smp_call_function_single(pol->cpu, check_supported_cpu, &rc, 1);
	if (rc)
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		return -ENODEV;

1266
	data = kzalloc(sizeof(struct powernow_k8_data), GFP_KERNEL);
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	if (!data) {
		printk(KERN_ERR PFX "unable to alloc powernow_k8_data");
		return -ENOMEM;
	}

	data->cpu = pol->cpu;
1273
	data->currpstate = HW_PSTATE_INVALID;
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1274

1275
	if (powernow_k8_cpu_init_acpi(data)) {
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		/*
		 * Use the PSB BIOS structure. This is only availabe on
		 * an UP version, and is deprecated by AMD.
		 */
1280
		if (num_online_cpus() != 1) {
1281
			printk_once(ACPI_PSS_BIOS_BUG_MSG);
1282
			goto err_out;
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		}
		if (pol->cpu != 0) {
1285 1286 1287
			printk(KERN_ERR FW_BUG PFX "No ACPI _PSS objects for "
			       "CPU other than CPU0. Complain to your BIOS "
			       "vendor.\n");
1288
			goto err_out;
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		}
		rc = find_psb_table(data);
1291 1292 1293
		if (rc)
			goto err_out;

1294 1295 1296 1297 1298 1299 1300
		/* Take a crude guess here.
		 * That guess was in microseconds, so multiply with 1000 */
		pol->cpuinfo.transition_latency = (
			 ((data->rvo + 8) * data->vstable * VST_UNITS_20US) +
			 ((1 << data->irt) * 30)) * 1000;
	} else /* ACPI _PSS objects available */
		pol->cpuinfo.transition_latency = get_transition_latency(data);
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	/* only run on specific CPU from here on */
1303 1304 1305 1306 1307 1308
	init_on_cpu.data = data;
	smp_call_function_single(data->cpu, powernowk8_cpu_init_on_cpu,
				 &init_on_cpu, 1);
	rc = init_on_cpu.rc;
	if (rc != 0)
		goto err_out_exit_acpi;
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1310
	if (cpu_family == CPU_HW_PSTATE)
1311
		cpumask_copy(pol->cpus, cpumask_of(pol->cpu));
1312
	else
1313
		cpumask_copy(pol->cpus, cpu_core_mask(pol->cpu));
1314
	data->available_cores = pol->cpus;
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1316
	if (cpu_family == CPU_HW_PSTATE)
1317 1318
		pol->cur = find_khz_freq_from_pstate(data->powernow_table,
				data->currpstate);
1319 1320
	else
		pol->cur = find_khz_freq_from_fid(data->currfid);
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	dprintk("policy current frequency %d kHz\n", pol->cur);

	/* min/max the cpu is capable of */
	if (cpufreq_frequency_table_cpuinfo(pol, data->powernow_table)) {
1325
		printk(KERN_ERR FW_BUG PFX "invalid powernow_table\n");
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		powernow_k8_cpu_exit_acpi(data);
		kfree(data->powernow_table);
		kfree(data);
		return -EINVAL;
	}

1332 1333 1334 1335
	/* Check for APERF/MPERF support in hardware */
	if (cpu_has(c, X86_FEATURE_APERFMPERF))
		cpufreq_amd64_driver.getavg = cpufreq_get_measured_perf;

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	cpufreq_frequency_table_get_attr(data->powernow_table, pol->cpu);

1338
	if (cpu_family == CPU_HW_PSTATE)
1339 1340
		dprintk("cpu_init done, current pstate 0x%x\n",
				data->currpstate);
1341 1342 1343
	else
		dprintk("cpu_init done, current fid 0x%x, vid 0x%x\n",
			data->currfid, data->currvid);
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1345
	per_cpu(powernow_data, pol->cpu) = data;
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	return 0;

1349
err_out_exit_acpi:
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	powernow_k8_cpu_exit_acpi(data);

1352
err_out:
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	kfree(data);
	return -ENODEV;
}

1357
static int __devexit powernowk8_cpu_exit(struct cpufreq_policy *pol)
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{
1359
	struct powernow_k8_data *data = per_cpu(powernow_data, pol->cpu);
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	if (!data)
		return -EINVAL;

	powernow_k8_cpu_exit_acpi(data);

	cpufreq_frequency_table_put_attr(pol->cpu);

	kfree(data->powernow_table);
	kfree(data);
1370
	per_cpu(powernow_data, pol->cpu) = NULL;
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	return 0;
}

1375 1376 1377 1378 1379 1380 1381 1382
static void query_values_on_cpu(void *_err)
{
	int *err = _err;
	struct powernow_k8_data *data = __get_cpu_var(powernow_data);

	*err = query_current_values_with_pending_wait(data);
}

1383
static unsigned int powernowk8_get(unsigned int cpu)
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{
1385
	struct powernow_k8_data *data = per_cpu(powernow_data, cpu);
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	unsigned int khz = 0;
1387
	int err;
1388 1389

	if (!data)
1390
		return 0;
1391

1392 1393
	smp_call_function_single(cpu, query_values_on_cpu, &err, true);
	if (err)
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		goto out;

1396
	if (cpu_family == CPU_HW_PSTATE)
1397 1398
		khz = find_khz_freq_from_pstate(data->powernow_table,
						data->currpstate);
1399 1400 1401
	else
		khz = find_khz_freq_from_fid(data->currfid);

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1403
out:
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	return khz;
}

1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474
static void _cpb_toggle_msrs(bool t)
{
	int cpu;

	get_online_cpus();

	rdmsr_on_cpus(cpu_online_mask, MSR_K7_HWCR, msrs);

	for_each_cpu(cpu, cpu_online_mask) {
		struct msr *reg = per_cpu_ptr(msrs, cpu);
		if (t)
			reg->l &= ~BIT(25);
		else
			reg->l |= BIT(25);
	}
	wrmsr_on_cpus(cpu_online_mask, MSR_K7_HWCR, msrs);

	put_online_cpus();
}

/*
 * Switch on/off core performance boosting.
 *
 * 0=disable
 * 1=enable.
 */
static void cpb_toggle(bool t)
{
	if (!cpb_capable)
		return;

	if (t && !cpb_enabled) {
		cpb_enabled = true;
		_cpb_toggle_msrs(t);
		printk(KERN_INFO PFX "Core Boosting enabled.\n");
	} else if (!t && cpb_enabled) {
		cpb_enabled = false;
		_cpb_toggle_msrs(t);
		printk(KERN_INFO PFX "Core Boosting disabled.\n");
	}
}

static ssize_t store_cpb(struct cpufreq_policy *policy, const char *buf,
				 size_t count)
{
	int ret = -EINVAL;
	unsigned long val = 0;

	ret = strict_strtoul(buf, 10, &val);
	if (!ret && (val == 0 || val == 1) && cpb_capable)
		cpb_toggle(val);
	else
		return -EINVAL;

	return count;
}

static ssize_t show_cpb(struct cpufreq_policy *policy, char *buf)
{
	return sprintf(buf, "%u\n", cpb_enabled);
}

#define define_one_rw(_name) \
static struct freq_attr _name = \
__ATTR(_name, 0644, show_##_name, store_##_name)

define_one_rw(cpb);

1475
static struct freq_attr *powernow_k8_attr[] = {
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	&cpufreq_freq_attr_scaling_available_freqs,
1477
	&cpb,
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	NULL,
};

1481
static struct cpufreq_driver cpufreq_amd64_driver = {
1482 1483 1484 1485 1486 1487 1488 1489 1490
	.verify		= powernowk8_verify,
	.target		= powernowk8_target,
	.bios_limit	= acpi_processor_get_bios_limit,
	.init		= powernowk8_cpu_init,
	.exit		= __devexit_p(powernowk8_cpu_exit),
	.get		= powernowk8_get,
	.name		= "powernow-k8",
	.owner		= THIS_MODULE,
	.attr		= powernow_k8_attr,
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};

1493 1494 1495 1496 1497 1498
/*
 * Clear the boost-disable flag on the CPU_DOWN path so that this cpu
 * cannot block the remaining ones from boosting. On the CPU_UP path we
 * simply keep the boost-disable flag in sync with the current global
 * state.
 */
1499 1500
static int cpb_notify(struct notifier_block *nb, unsigned long action,
		      void *hcpu)
1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529
{
	unsigned cpu = (long)hcpu;
	u32 lo, hi;

	switch (action) {
	case CPU_UP_PREPARE:
	case CPU_UP_PREPARE_FROZEN:

		if (!cpb_enabled) {
			rdmsr_on_cpu(cpu, MSR_K7_HWCR, &lo, &hi);
			lo |= BIT(25);
			wrmsr_on_cpu(cpu, MSR_K7_HWCR, lo, hi);
		}
		break;

	case CPU_DOWN_PREPARE:
	case CPU_DOWN_PREPARE_FROZEN:
		rdmsr_on_cpu(cpu, MSR_K7_HWCR, &lo, &hi);
		lo &= ~BIT(25);
		wrmsr_on_cpu(cpu, MSR_K7_HWCR, lo, hi);
		break;

	default:
		break;
	}

	return NOTIFY_OK;
}

1530
static struct notifier_block cpb_nb = {
1531 1532 1533
	.notifier_call		= cpb_notify,
};

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/* driver entry point for init */
1535
static int __cpuinit powernowk8_init(void)
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{
1537
	unsigned int i, supported_cpus = 0, cpu;
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1538

1539
	for_each_online_cpu(i) {
1540 1541 1542
		int rc;
		smp_call_function_single(i, check_supported_cpu, &rc, 1);
		if (rc == 0)
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			supported_cpus++;
	}

1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572
	if (supported_cpus != num_online_cpus())
		return -ENODEV;

	printk(KERN_INFO PFX "Found %d %s (%d cpu cores) (" VERSION ")\n",
		num_online_nodes(), boot_cpu_data.x86_model_id, supported_cpus);

	if (boot_cpu_has(X86_FEATURE_CPB)) {

		cpb_capable = true;

		register_cpu_notifier(&cpb_nb);

		msrs = msrs_alloc();
		if (!msrs) {
			printk(KERN_ERR "%s: Error allocating msrs!\n", __func__);
			return -ENOMEM;
		}

		rdmsr_on_cpus(cpu_online_mask, MSR_K7_HWCR, msrs);

		for_each_cpu(cpu, cpu_online_mask) {
			struct msr *reg = per_cpu_ptr(msrs, cpu);
			cpb_enabled |= !(!!(reg->l & BIT(25)));
		}

		printk(KERN_INFO PFX "Core Performance Boosting: %s.\n",
			(cpb_enabled ? "on" : "off"));
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	}

1575
	return cpufreq_register_driver(&cpufreq_amd64_driver);
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}

/* driver entry point for term */
static void __exit powernowk8_exit(void)
{
	dprintk("exit\n");

1583 1584 1585 1586 1587 1588 1589
	if (boot_cpu_has(X86_FEATURE_CPB)) {
		msrs_free(msrs);
		msrs = NULL;

		unregister_cpu_notifier(&cpb_nb);
	}

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	cpufreq_unregister_driver(&cpufreq_amd64_driver);
}

1593 1594
MODULE_AUTHOR("Paul Devriendt <paul.devriendt@amd.com> and "
		"Mark Langsdorf <mark.langsdorf@amd.com>");
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MODULE_DESCRIPTION("AMD Athlon 64 and Opteron processor frequency driver.");
MODULE_LICENSE("GPL");

late_initcall(powernowk8_init);
module_exit(powernowk8_exit);