perf_event.c 28.5 KB
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/* Performance event support for sparc64.
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 *
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 * Copyright (C) 2009, 2010 David S. Miller <davem@davemloft.net>
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 *
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 * This code is based almost entirely upon the x86 perf event
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 * code, which is:
 *
 *  Copyright (C) 2008 Thomas Gleixner <tglx@linutronix.de>
 *  Copyright (C) 2008-2009 Red Hat, Inc., Ingo Molnar
 *  Copyright (C) 2009 Jaswinder Singh Rajput
 *  Copyright (C) 2009 Advanced Micro Devices, Inc., Robert Richter
 *  Copyright (C) 2008-2009 Red Hat, Inc., Peter Zijlstra <pzijlstr@redhat.com>
 */

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#include <linux/perf_event.h>
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#include <linux/kprobes.h>
#include <linux/kernel.h>
#include <linux/kdebug.h>
#include <linux/mutex.h>

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#include <asm/stacktrace.h>
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#include <asm/cpudata.h>
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#include <asm/uaccess.h>
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#include <asm/atomic.h>
#include <asm/nmi.h>
#include <asm/pcr.h>

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#include "kstack.h"

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/* Sparc64 chips have two performance counters, 32-bits each, with
 * overflow interrupts generated on transition from 0xffffffff to 0.
 * The counters are accessed in one go using a 64-bit register.
 *
 * Both counters are controlled using a single control register.  The
 * only way to stop all sampling is to clear all of the context (user,
 * supervisor, hypervisor) sampling enable bits.  But these bits apply
 * to both counters, thus the two counters can't be enabled/disabled
 * individually.
 *
 * The control register has two event fields, one for each of the two
 * counters.  It's thus nearly impossible to have one counter going
 * while keeping the other one stopped.  Therefore it is possible to
 * get overflow interrupts for counters not currently "in use" and
 * that condition must be checked in the overflow interrupt handler.
 *
 * So we use a hack, in that we program inactive counters with the
 * "sw_count0" and "sw_count1" events.  These count how many times
 * the instruction "sethi %hi(0xfc000), %g0" is executed.  It's an
 * unusual way to encode a NOP and therefore will not trigger in
 * normal code.
 */

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#define MAX_HWEVENTS			2
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#define MAX_PERIOD			((1UL << 32) - 1)

#define PIC_UPPER_INDEX			0
#define PIC_LOWER_INDEX			1

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struct cpu_hw_events {
	struct perf_event	*events[MAX_HWEVENTS];
	unsigned long		used_mask[BITS_TO_LONGS(MAX_HWEVENTS)];
	unsigned long		active_mask[BITS_TO_LONGS(MAX_HWEVENTS)];
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	u64			pcr;
	int			enabled;
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};
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DEFINE_PER_CPU(struct cpu_hw_events, cpu_hw_events) = { .enabled = 1, };
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struct perf_event_map {
	u16	encoding;
	u8	pic_mask;
#define PIC_NONE	0x00
#define PIC_UPPER	0x01
#define PIC_LOWER	0x02
};

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static unsigned long perf_event_encode(const struct perf_event_map *pmap)
{
	return ((unsigned long) pmap->encoding << 16) | pmap->pic_mask;
}

static void perf_event_decode(unsigned long val, u16 *enc, u8 *msk)
{
	*msk = val & 0xff;
	*enc = val >> 16;
}

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#define C(x) PERF_COUNT_HW_CACHE_##x

#define CACHE_OP_UNSUPPORTED	0xfffe
#define CACHE_OP_NONSENSE	0xffff

typedef struct perf_event_map cache_map_t
				[PERF_COUNT_HW_CACHE_MAX]
				[PERF_COUNT_HW_CACHE_OP_MAX]
				[PERF_COUNT_HW_CACHE_RESULT_MAX];

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struct sparc_pmu {
	const struct perf_event_map	*(*event_map)(int);
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	const cache_map_t		*cache_map;
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	int				max_events;
	int				upper_shift;
	int				lower_shift;
	int				event_mask;
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	int				hv_bit;
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	int				irq_bit;
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	int				upper_nop;
	int				lower_nop;
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};

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static const struct perf_event_map ultra3_perfmon_event_map[] = {
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	[PERF_COUNT_HW_CPU_CYCLES] = { 0x0000, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_INSTRUCTIONS] = { 0x0001, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_CACHE_REFERENCES] = { 0x0009, PIC_LOWER },
	[PERF_COUNT_HW_CACHE_MISSES] = { 0x0009, PIC_UPPER },
};

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static const struct perf_event_map *ultra3_event_map(int event_id)
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{
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	return &ultra3_perfmon_event_map[event_id];
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}

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static const cache_map_t ultra3_cache_map = {
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[C(L1D)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x09, PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x09, PIC_UPPER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { 0x0a, PIC_LOWER },
		[C(RESULT_MISS)] = { 0x0a, PIC_UPPER },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(L1I)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x09, PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x09, PIC_UPPER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_NONSENSE },
		[ C(RESULT_MISS)   ] = { CACHE_OP_NONSENSE },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(LL)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x0c, PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0c, PIC_UPPER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { 0x0c, PIC_LOWER },
		[C(RESULT_MISS)] = { 0x0c, PIC_UPPER },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(DTLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x12, PIC_UPPER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(ITLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x11, PIC_UPPER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(BPU)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
};

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static const struct sparc_pmu ultra3_pmu = {
	.event_map	= ultra3_event_map,
	.cache_map	= &ultra3_cache_map,
	.max_events	= ARRAY_SIZE(ultra3_perfmon_event_map),
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	.upper_shift	= 11,
	.lower_shift	= 4,
	.event_mask	= 0x3f,
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	.upper_nop	= 0x1c,
	.lower_nop	= 0x14,
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};

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/* Niagara1 is very limited.  The upper PIC is hard-locked to count
 * only instructions, so it is free running which creates all kinds of
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 * problems.  Some hardware designs make one wonder if the creator
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 * even looked at how this stuff gets used by software.
 */
static const struct perf_event_map niagara1_perfmon_event_map[] = {
	[PERF_COUNT_HW_CPU_CYCLES] = { 0x00, PIC_UPPER },
	[PERF_COUNT_HW_INSTRUCTIONS] = { 0x00, PIC_UPPER },
	[PERF_COUNT_HW_CACHE_REFERENCES] = { 0, PIC_NONE },
	[PERF_COUNT_HW_CACHE_MISSES] = { 0x03, PIC_LOWER },
};

static const struct perf_event_map *niagara1_event_map(int event_id)
{
	return &niagara1_perfmon_event_map[event_id];
}

static const cache_map_t niagara1_cache_map = {
[C(L1D)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x03, PIC_LOWER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x03, PIC_LOWER, },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(L1I)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x00, PIC_UPPER },
		[C(RESULT_MISS)] = { 0x02, PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_NONSENSE },
		[ C(RESULT_MISS)   ] = { CACHE_OP_NONSENSE },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(LL)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x07, PIC_LOWER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x07, PIC_LOWER, },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(DTLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x05, PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(ITLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x04, PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(BPU)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
};

static const struct sparc_pmu niagara1_pmu = {
	.event_map	= niagara1_event_map,
	.cache_map	= &niagara1_cache_map,
	.max_events	= ARRAY_SIZE(niagara1_perfmon_event_map),
	.upper_shift	= 0,
	.lower_shift	= 4,
	.event_mask	= 0x7,
	.upper_nop	= 0x0,
	.lower_nop	= 0x0,
};

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static const struct perf_event_map niagara2_perfmon_event_map[] = {
	[PERF_COUNT_HW_CPU_CYCLES] = { 0x02ff, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_INSTRUCTIONS] = { 0x02ff, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_CACHE_REFERENCES] = { 0x0208, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_CACHE_MISSES] = { 0x0302, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_BRANCH_INSTRUCTIONS] = { 0x0201, PIC_UPPER | PIC_LOWER },
	[PERF_COUNT_HW_BRANCH_MISSES] = { 0x0202, PIC_UPPER | PIC_LOWER },
};

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static const struct perf_event_map *niagara2_event_map(int event_id)
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{
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	return &niagara2_perfmon_event_map[event_id];
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}

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static const cache_map_t niagara2_cache_map = {
[C(L1D)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x0208, PIC_UPPER | PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0302, PIC_UPPER | PIC_LOWER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { 0x0210, PIC_UPPER | PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0302, PIC_UPPER | PIC_LOWER, },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(L1I)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x02ff, PIC_UPPER | PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0301, PIC_UPPER | PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_NONSENSE },
		[ C(RESULT_MISS)   ] = { CACHE_OP_NONSENSE },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(LL)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { 0x0208, PIC_UPPER | PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0330, PIC_UPPER | PIC_LOWER, },
	},
	[C(OP_WRITE)] = {
		[C(RESULT_ACCESS)] = { 0x0210, PIC_UPPER | PIC_LOWER, },
		[C(RESULT_MISS)] = { 0x0320, PIC_UPPER | PIC_LOWER, },
	},
	[C(OP_PREFETCH)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(DTLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0x0b08, PIC_UPPER | PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(ITLB)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { 0xb04, PIC_UPPER | PIC_LOWER, },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
[C(BPU)] = {
	[C(OP_READ)] = {
		[C(RESULT_ACCESS)] = { CACHE_OP_UNSUPPORTED },
		[C(RESULT_MISS)] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_WRITE) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
	[ C(OP_PREFETCH) ] = {
		[ C(RESULT_ACCESS) ] = { CACHE_OP_UNSUPPORTED },
		[ C(RESULT_MISS)   ] = { CACHE_OP_UNSUPPORTED },
	},
},
};

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static const struct sparc_pmu niagara2_pmu = {
	.event_map	= niagara2_event_map,
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	.cache_map	= &niagara2_cache_map,
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	.max_events	= ARRAY_SIZE(niagara2_perfmon_event_map),
	.upper_shift	= 19,
	.lower_shift	= 6,
	.event_mask	= 0xfff,
	.hv_bit		= 0x8,
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	.irq_bit	= 0x30,
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	.upper_nop	= 0x220,
	.lower_nop	= 0x220,
};

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static const struct sparc_pmu *sparc_pmu __read_mostly;

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static u64 event_encoding(u64 event_id, int idx)
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{
	if (idx == PIC_UPPER_INDEX)
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		event_id <<= sparc_pmu->upper_shift;
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	else
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		event_id <<= sparc_pmu->lower_shift;
	return event_id;
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}

static u64 mask_for_index(int idx)
{
	return event_encoding(sparc_pmu->event_mask, idx);
}

static u64 nop_for_index(int idx)
{
	return event_encoding(idx == PIC_UPPER_INDEX ?
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			      sparc_pmu->upper_nop :
			      sparc_pmu->lower_nop, idx);
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}

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static inline void sparc_pmu_enable_event(struct cpu_hw_events *cpuc, struct hw_perf_event *hwc, int idx)
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{
	u64 val, mask = mask_for_index(idx);

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	val = cpuc->pcr;
	val &= ~mask;
	val |= hwc->config;
	cpuc->pcr = val;

	pcr_ops->write(cpuc->pcr);
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}

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static inline void sparc_pmu_disable_event(struct cpu_hw_events *cpuc, struct hw_perf_event *hwc, int idx)
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{
	u64 mask = mask_for_index(idx);
	u64 nop = nop_for_index(idx);
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	u64 val;
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	val = cpuc->pcr;
	val &= ~mask;
	val |= nop;
	cpuc->pcr = val;

	pcr_ops->write(cpuc->pcr);
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}

void hw_perf_enable(void)
{
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	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
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	u64 val;
	int i;

	if (cpuc->enabled)
		return;

	cpuc->enabled = 1;
	barrier();

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	val = cpuc->pcr;
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	for (i = 0; i < MAX_HWEVENTS; i++) {
		struct perf_event *cp = cpuc->events[i];
		struct hw_perf_event *hwc;
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		if (!cp)
			continue;
		hwc = &cp->hw;
		val |= hwc->config_base;
	}

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	cpuc->pcr = val;

	pcr_ops->write(cpuc->pcr);
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}

void hw_perf_disable(void)
{
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	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
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	u64 val;

	if (!cpuc->enabled)
		return;

	cpuc->enabled = 0;

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	val = cpuc->pcr;
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	val &= ~(PCR_UTRACE | PCR_STRACE |
		 sparc_pmu->hv_bit | sparc_pmu->irq_bit);
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	cpuc->pcr = val;

	pcr_ops->write(cpuc->pcr);
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}

static u32 read_pmc(int idx)
{
	u64 val;

	read_pic(val);
	if (idx == PIC_UPPER_INDEX)
		val >>= 32;

	return val & 0xffffffff;
}

static void write_pmc(int idx, u64 val)
{
	u64 shift, mask, pic;

	shift = 0;
	if (idx == PIC_UPPER_INDEX)
		shift = 32;

	mask = ((u64) 0xffffffff) << shift;
	val <<= shift;

	read_pic(pic);
	pic &= ~mask;
	pic |= val;
	write_pic(pic);
}

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static int sparc_perf_event_set_period(struct perf_event *event,
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				       struct hw_perf_event *hwc, int idx)
575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599
{
	s64 left = atomic64_read(&hwc->period_left);
	s64 period = hwc->sample_period;
	int ret = 0;

	if (unlikely(left <= -period)) {
		left = period;
		atomic64_set(&hwc->period_left, left);
		hwc->last_period = period;
		ret = 1;
	}

	if (unlikely(left <= 0)) {
		left += period;
		atomic64_set(&hwc->period_left, left);
		hwc->last_period = period;
		ret = 1;
	}
	if (left > MAX_PERIOD)
		left = MAX_PERIOD;

	atomic64_set(&hwc->prev_count, (u64)-left);

	write_pmc(idx, (u64)(-left) & 0xffffffff);

600
	perf_event_update_userpage(event);
601 602 603 604

	return ret;
}

605
static int sparc_pmu_enable(struct perf_event *event)
606
{
607 608
	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
	struct hw_perf_event *hwc = &event->hw;
609 610 611 612 613
	int idx = hwc->idx;

	if (test_and_set_bit(idx, cpuc->used_mask))
		return -EAGAIN;

614
	sparc_pmu_disable_event(cpuc, hwc, idx);
615

616
	cpuc->events[idx] = event;
617 618
	set_bit(idx, cpuc->active_mask);

619
	sparc_perf_event_set_period(event, hwc, idx);
620
	sparc_pmu_enable_event(cpuc, hwc, idx);
621
	perf_event_update_userpage(event);
622 623 624
	return 0;
}

625
static u64 sparc_perf_event_update(struct perf_event *event,
626
				   struct hw_perf_event *hwc, int idx)
627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642
{
	int shift = 64 - 32;
	u64 prev_raw_count, new_raw_count;
	s64 delta;

again:
	prev_raw_count = atomic64_read(&hwc->prev_count);
	new_raw_count = read_pmc(idx);

	if (atomic64_cmpxchg(&hwc->prev_count, prev_raw_count,
			     new_raw_count) != prev_raw_count)
		goto again;

	delta = (new_raw_count << shift) - (prev_raw_count << shift);
	delta >>= shift;

643
	atomic64_add(delta, &event->count);
644 645 646 647 648
	atomic64_sub(delta, &hwc->period_left);

	return new_raw_count;
}

649
static void sparc_pmu_disable(struct perf_event *event)
650
{
651 652
	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
	struct hw_perf_event *hwc = &event->hw;
653 654 655
	int idx = hwc->idx;

	clear_bit(idx, cpuc->active_mask);
656
	sparc_pmu_disable_event(cpuc, hwc, idx);
657 658 659

	barrier();

660 661
	sparc_perf_event_update(event, hwc, idx);
	cpuc->events[idx] = NULL;
662 663
	clear_bit(idx, cpuc->used_mask);

664
	perf_event_update_userpage(event);
665 666
}

667
static void sparc_pmu_read(struct perf_event *event)
668
{
669
	struct hw_perf_event *hwc = &event->hw;
670

671
	sparc_perf_event_update(event, hwc, hwc->idx);
672 673
}

674
static void sparc_pmu_unthrottle(struct perf_event *event)
675
{
676
	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
677
	struct hw_perf_event *hwc = &event->hw;
678 679

	sparc_pmu_enable_event(cpuc, hwc, hwc->idx);
680 681
}

682
static atomic_t active_events = ATOMIC_INIT(0);
683 684
static DEFINE_MUTEX(pmc_grab_mutex);

685 686 687 688 689 690 691 692
static void perf_stop_nmi_watchdog(void *unused)
{
	struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);

	stop_nmi_watchdog(NULL);
	cpuc->pcr = pcr_ops->read();
}

693
void perf_event_grab_pmc(void)
694
{
695
	if (atomic_inc_not_zero(&active_events))
696 697 698
		return;

	mutex_lock(&pmc_grab_mutex);
699
	if (atomic_read(&active_events) == 0) {
700
		if (atomic_read(&nmi_active) > 0) {
701
			on_each_cpu(perf_stop_nmi_watchdog, NULL, 1);
702 703
			BUG_ON(atomic_read(&nmi_active) != 0);
		}
704
		atomic_inc(&active_events);
705 706 707 708
	}
	mutex_unlock(&pmc_grab_mutex);
}

709
void perf_event_release_pmc(void)
710
{
711
	if (atomic_dec_and_mutex_lock(&active_events, &pmc_grab_mutex)) {
712 713 714 715 716 717
		if (atomic_read(&nmi_active) == 0)
			on_each_cpu(start_nmi_watchdog, NULL, 1);
		mutex_unlock(&pmc_grab_mutex);
	}
}

718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748
static const struct perf_event_map *sparc_map_cache_event(u64 config)
{
	unsigned int cache_type, cache_op, cache_result;
	const struct perf_event_map *pmap;

	if (!sparc_pmu->cache_map)
		return ERR_PTR(-ENOENT);

	cache_type = (config >>  0) & 0xff;
	if (cache_type >= PERF_COUNT_HW_CACHE_MAX)
		return ERR_PTR(-EINVAL);

	cache_op = (config >>  8) & 0xff;
	if (cache_op >= PERF_COUNT_HW_CACHE_OP_MAX)
		return ERR_PTR(-EINVAL);

	cache_result = (config >> 16) & 0xff;
	if (cache_result >= PERF_COUNT_HW_CACHE_RESULT_MAX)
		return ERR_PTR(-EINVAL);

	pmap = &((*sparc_pmu->cache_map)[cache_type][cache_op][cache_result]);

	if (pmap->encoding == CACHE_OP_UNSUPPORTED)
		return ERR_PTR(-ENOENT);

	if (pmap->encoding == CACHE_OP_NONSENSE)
		return ERR_PTR(-EINVAL);

	return pmap;
}

749
static void hw_perf_event_destroy(struct perf_event *event)
750
{
751
	perf_event_release_pmc();
752 753
}

754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795
/* Make sure all events can be scheduled into the hardware at
 * the same time.  This is simplified by the fact that we only
 * need to support 2 simultaneous HW events.
 */
static int sparc_check_constraints(unsigned long *events, int n_ev)
{
	if (n_ev <= perf_max_events) {
		u8 msk1, msk2;
		u16 dummy;

		if (n_ev == 1)
			return 0;
		BUG_ON(n_ev != 2);
		perf_event_decode(events[0], &dummy, &msk1);
		perf_event_decode(events[1], &dummy, &msk2);

		/* If both events can go on any counter, OK.  */
		if (msk1 == (PIC_UPPER | PIC_LOWER) &&
		    msk2 == (PIC_UPPER | PIC_LOWER))
			return 0;

		/* If one event is limited to a specific counter,
		 * and the other can go on both, OK.
		 */
		if ((msk1 == PIC_UPPER || msk1 == PIC_LOWER) &&
		    msk2 == (PIC_UPPER | PIC_LOWER))
			return 0;
		if ((msk2 == PIC_UPPER || msk2 == PIC_LOWER) &&
		    msk1 == (PIC_UPPER | PIC_LOWER))
			return 0;

		/* If the events are fixed to different counters, OK.  */
		if ((msk1 == PIC_UPPER && msk2 == PIC_LOWER) ||
		    (msk1 == PIC_LOWER && msk2 == PIC_UPPER))
			return 0;

		/* Otherwise, there is a conflict.  */
	}

	return -1;
}

796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824
static int check_excludes(struct perf_event **evts, int n_prev, int n_new)
{
	int eu = 0, ek = 0, eh = 0;
	struct perf_event *event;
	int i, n, first;

	n = n_prev + n_new;
	if (n <= 1)
		return 0;

	first = 1;
	for (i = 0; i < n; i++) {
		event = evts[i];
		if (first) {
			eu = event->attr.exclude_user;
			ek = event->attr.exclude_kernel;
			eh = event->attr.exclude_hv;
			first = 0;
		} else if (event->attr.exclude_user != eu ||
			   event->attr.exclude_kernel != ek ||
			   event->attr.exclude_hv != eh) {
			return -EAGAIN;
		}
	}

	return 0;
}

static int collect_events(struct perf_event *group, int max_count,
825
			  struct perf_event *evts[], unsigned long *events)
826 827 828 829 830 831 832 833
{
	struct perf_event *event;
	int n = 0;

	if (!is_software_event(group)) {
		if (n >= max_count)
			return -1;
		evts[n] = group;
834
		events[n++] = group->hw.event_base;
835 836 837 838 839 840 841
	}
	list_for_each_entry(event, &group->sibling_list, group_entry) {
		if (!is_software_event(event) &&
		    event->state != PERF_EVENT_STATE_OFF) {
			if (n >= max_count)
				return -1;
			evts[n] = event;
842
			events[n++] = event->hw.event_base;
843 844 845 846 847
		}
	}
	return n;
}

848
static int __hw_perf_event_init(struct perf_event *event)
849
{
850
	struct perf_event_attr *attr = &event->attr;
851
	struct perf_event *evts[MAX_HWEVENTS];
852
	struct hw_perf_event *hwc = &event->hw;
853
	unsigned long events[MAX_HWEVENTS];
854
	const struct perf_event_map *pmap;
855
	u64 enc;
856
	int n;
857 858 859 860

	if (atomic_read(&nmi_active) < 0)
		return -ENODEV;

861 862 863 864 865 866 867 868 869
	if (attr->type == PERF_TYPE_HARDWARE) {
		if (attr->config >= sparc_pmu->max_events)
			return -EINVAL;
		pmap = sparc_pmu->event_map(attr->config);
	} else if (attr->type == PERF_TYPE_HW_CACHE) {
		pmap = sparc_map_cache_event(attr->config);
		if (IS_ERR(pmap))
			return PTR_ERR(pmap);
	} else
870 871 872 873 874 875
		return -EOPNOTSUPP;

	/* We save the enable bits in the config_base.  So to
	 * turn off sampling just write 'config', and to enable
	 * things write 'config | config_base'.
	 */
876
	hwc->config_base = sparc_pmu->irq_bit;
877 878 879 880
	if (!attr->exclude_user)
		hwc->config_base |= PCR_UTRACE;
	if (!attr->exclude_kernel)
		hwc->config_base |= PCR_STRACE;
881 882
	if (!attr->exclude_hv)
		hwc->config_base |= sparc_pmu->hv_bit;
883

884 885
	hwc->event_base = perf_event_encode(pmap);

886 887 888 889 890 891 892 893 894 895
	enc = pmap->encoding;

	n = 0;
	if (event->group_leader != event) {
		n = collect_events(event->group_leader,
				   perf_max_events - 1,
				   evts, events);
		if (n < 0)
			return -EINVAL;
	}
896
	events[n] = hwc->event_base;
897 898 899 900 901
	evts[n] = event;

	if (check_excludes(evts, n, 1))
		return -EINVAL;

902 903 904
	if (sparc_check_constraints(events, n + 1))
		return -EINVAL;

905 906 907 908 909 910
	/* Try to do all error checking before this point, as unwinding
	 * state after grabbing the PMC is difficult.
	 */
	perf_event_grab_pmc();
	event->destroy = hw_perf_event_destroy;

911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935
	if (!hwc->sample_period) {
		hwc->sample_period = MAX_PERIOD;
		hwc->last_period = hwc->sample_period;
		atomic64_set(&hwc->period_left, hwc->sample_period);
	}

	if (pmap->pic_mask & PIC_UPPER) {
		hwc->idx = PIC_UPPER_INDEX;
		enc <<= sparc_pmu->upper_shift;
	} else {
		hwc->idx = PIC_LOWER_INDEX;
		enc <<= sparc_pmu->lower_shift;
	}

	hwc->config |= enc;
	return 0;
}

static const struct pmu pmu = {
	.enable		= sparc_pmu_enable,
	.disable	= sparc_pmu_disable,
	.read		= sparc_pmu_read,
	.unthrottle	= sparc_pmu_unthrottle,
};

936
const struct pmu *hw_perf_event_init(struct perf_event *event)
937
{
938
	int err = __hw_perf_event_init(event);
939 940 941 942 943 944

	if (err)
		return ERR_PTR(err);
	return &pmu;
}

945
void perf_event_print_debug(void)
946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967
{
	unsigned long flags;
	u64 pcr, pic;
	int cpu;

	if (!sparc_pmu)
		return;

	local_irq_save(flags);

	cpu = smp_processor_id();

	pcr = pcr_ops->read();
	read_pic(pic);

	pr_info("\n");
	pr_info("CPU#%d: PCR[%016llx] PIC[%016llx]\n",
		cpu, pcr, pic);

	local_irq_restore(flags);
}

968
static int __kprobes perf_event_nmi_handler(struct notifier_block *self,
969
					    unsigned long cmd, void *__args)
970 971 972
{
	struct die_args *args = __args;
	struct perf_sample_data data;
973
	struct cpu_hw_events *cpuc;
974 975 976
	struct pt_regs *regs;
	int idx;

977
	if (!atomic_read(&active_events))
978 979 980 981 982 983 984 985 986 987 988 989 990 991
		return NOTIFY_DONE;

	switch (cmd) {
	case DIE_NMI:
		break;

	default:
		return NOTIFY_DONE;
	}

	regs = args->regs;

	data.addr = 0;

992
	cpuc = &__get_cpu_var(cpu_hw_events);
993 994 995 996 997 998 999 1000 1001 1002 1003

	/* If the PMU has the TOE IRQ enable bits, we need to do a
	 * dummy write to the %pcr to clear the overflow bits and thus
	 * the interrupt.
	 *
	 * Do this before we peek at the counters to determine
	 * overflow so we don't lose any events.
	 */
	if (sparc_pmu->irq_bit)
		pcr_ops->write(cpuc->pcr);

1004 1005 1006
	for (idx = 0; idx < MAX_HWEVENTS; idx++) {
		struct perf_event *event = cpuc->events[idx];
		struct hw_perf_event *hwc;
1007 1008 1009 1010
		u64 val;

		if (!test_bit(idx, cpuc->active_mask))
			continue;
1011 1012
		hwc = &event->hw;
		val = sparc_perf_event_update(event, hwc, idx);
1013 1014 1015
		if (val & (1ULL << 31))
			continue;

1016 1017
		data.period = event->hw.last_period;
		if (!sparc_perf_event_set_period(event, hwc, idx))
1018 1019
			continue;

1020
		if (perf_event_overflow(event, 1, &data, regs))
1021
			sparc_pmu_disable_event(cpuc, hwc, idx);
1022 1023 1024 1025 1026
	}

	return NOTIFY_STOP;
}

1027 1028
static __read_mostly struct notifier_block perf_event_nmi_notifier = {
	.notifier_call		= perf_event_nmi_handler,
1029 1030 1031 1032
};

static bool __init supported_pmu(void)
{
1033 1034 1035 1036 1037
	if (!strcmp(sparc_pmu_type, "ultra3") ||
	    !strcmp(sparc_pmu_type, "ultra3+") ||
	    !strcmp(sparc_pmu_type, "ultra3i") ||
	    !strcmp(sparc_pmu_type, "ultra4+")) {
		sparc_pmu = &ultra3_pmu;
1038 1039
		return true;
	}
1040 1041 1042 1043
	if (!strcmp(sparc_pmu_type, "niagara")) {
		sparc_pmu = &niagara1_pmu;
		return true;
	}
1044 1045 1046 1047
	if (!strcmp(sparc_pmu_type, "niagara2")) {
		sparc_pmu = &niagara2_pmu;
		return true;
	}
1048 1049 1050
	return false;
}

1051
void __init init_hw_perf_events(void)
1052
{
1053
	pr_info("Performance events: ");
1054 1055 1056 1057 1058 1059 1060 1061

	if (!supported_pmu()) {
		pr_cont("No support for PMU type '%s'\n", sparc_pmu_type);
		return;
	}

	pr_cont("Supported PMU type is '%s'\n", sparc_pmu_type);

1062 1063
	/* All sparc64 PMUs currently have 2 events.  But this simple
	 * driver only supports one active event at a time.
1064
	 */
1065
	perf_max_events = 1;
1066

1067
	register_die_notifier(&perf_event_nmi_notifier);
1068
}
1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182

static inline void callchain_store(struct perf_callchain_entry *entry, u64 ip)
{
	if (entry->nr < PERF_MAX_STACK_DEPTH)
		entry->ip[entry->nr++] = ip;
}

static void perf_callchain_kernel(struct pt_regs *regs,
				  struct perf_callchain_entry *entry)
{
	unsigned long ksp, fp;

	callchain_store(entry, PERF_CONTEXT_KERNEL);
	callchain_store(entry, regs->tpc);

	ksp = regs->u_regs[UREG_I6];
	fp = ksp + STACK_BIAS;
	do {
		struct sparc_stackf *sf;
		struct pt_regs *regs;
		unsigned long pc;

		if (!kstack_valid(current_thread_info(), fp))
			break;

		sf = (struct sparc_stackf *) fp;
		regs = (struct pt_regs *) (sf + 1);

		if (kstack_is_trap_frame(current_thread_info(), regs)) {
			if (user_mode(regs))
				break;
			pc = regs->tpc;
			fp = regs->u_regs[UREG_I6] + STACK_BIAS;
		} else {
			pc = sf->callers_pc;
			fp = (unsigned long)sf->fp + STACK_BIAS;
		}
		callchain_store(entry, pc);
	} while (entry->nr < PERF_MAX_STACK_DEPTH);
}

static void perf_callchain_user_64(struct pt_regs *regs,
				   struct perf_callchain_entry *entry)
{
	unsigned long ufp;

	callchain_store(entry, PERF_CONTEXT_USER);
	callchain_store(entry, regs->tpc);

	ufp = regs->u_regs[UREG_I6] + STACK_BIAS;
	do {
		struct sparc_stackf *usf, sf;
		unsigned long pc;

		usf = (struct sparc_stackf *) ufp;
		if (__copy_from_user_inatomic(&sf, usf, sizeof(sf)))
			break;

		pc = sf.callers_pc;
		ufp = (unsigned long)sf.fp + STACK_BIAS;
		callchain_store(entry, pc);
	} while (entry->nr < PERF_MAX_STACK_DEPTH);
}

static void perf_callchain_user_32(struct pt_regs *regs,
				   struct perf_callchain_entry *entry)
{
	unsigned long ufp;

	callchain_store(entry, PERF_CONTEXT_USER);
	callchain_store(entry, regs->tpc);

	ufp = regs->u_regs[UREG_I6];
	do {
		struct sparc_stackf32 *usf, sf;
		unsigned long pc;

		usf = (struct sparc_stackf32 *) ufp;
		if (__copy_from_user_inatomic(&sf, usf, sizeof(sf)))
			break;

		pc = sf.callers_pc;
		ufp = (unsigned long)sf.fp;
		callchain_store(entry, pc);
	} while (entry->nr < PERF_MAX_STACK_DEPTH);
}

/* Like powerpc we can't get PMU interrupts within the PMU handler,
 * so no need for seperate NMI and IRQ chains as on x86.
 */
static DEFINE_PER_CPU(struct perf_callchain_entry, callchain);

struct perf_callchain_entry *perf_callchain(struct pt_regs *regs)
{
	struct perf_callchain_entry *entry = &__get_cpu_var(callchain);

	entry->nr = 0;
	if (!user_mode(regs)) {
		stack_trace_flush();
		perf_callchain_kernel(regs, entry);
		if (current->mm)
			regs = task_pt_regs(current);
		else
			regs = NULL;
	}
	if (regs) {
		flushw_user();
		if (test_thread_flag(TIF_32BIT))
			perf_callchain_user_32(regs, entry);
		else
			perf_callchain_user_64(regs, entry);
	}
	return entry;
}