builtin-timechart.c 30.4 KB
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/*
 * builtin-timechart.c - make an svg timechart of system activity
 *
 * (C) Copyright 2009 Intel Corporation
 *
 * Authors:
 *     Arjan van de Ven <arjan@linux.intel.com>
 *
 * This program is free software; you can redistribute it and/or
 * modify it under the terms of the GNU General Public License
 * as published by the Free Software Foundation; version 2
 * of the License.
 */

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#include <traceevent/event-parse.h>

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#include "builtin.h"

#include "util/util.h"

#include "util/color.h"
#include <linux/list.h>
#include "util/cache.h"
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#include "util/evlist.h"
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#include "util/evsel.h"
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#include <linux/rbtree.h>
#include "util/symbol.h"
#include "util/callchain.h"
#include "util/strlist.h"

#include "perf.h"
#include "util/header.h"
#include "util/parse-options.h"
#include "util/parse-events.h"
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#include "util/event.h"
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#include "util/session.h"
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#include "util/svghelper.h"
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#include "util/tool.h"
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#include "util/data.h"
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#define SUPPORT_OLD_POWER_EVENTS 1
#define PWR_EVENT_EXIT -1

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struct per_pid;
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struct power_event;
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struct wake_event;
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struct timechart {
	struct perf_tool	tool;
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	struct per_pid		*all_data;
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	struct power_event	*power_events;
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	struct wake_event	*wake_events;
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	int			proc_num;
	unsigned int		numcpus;
	u64			min_freq,	/* Lowest CPU frequency seen */
				max_freq,	/* Highest CPU frequency seen */
				turbo_frequency,
				first_time, last_time;
	bool			power_only,
				tasks_only,
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				with_backtrace,
				topology;
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};
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struct per_pidcomm;
struct cpu_sample;

/*
 * Datastructure layout:
 * We keep an list of "pid"s, matching the kernels notion of a task struct.
 * Each "pid" entry, has a list of "comm"s.
 *	this is because we want to track different programs different, while
 *	exec will reuse the original pid (by design).
 * Each comm has a list of samples that will be used to draw
 * final graph.
 */

struct per_pid {
	struct per_pid *next;

	int		pid;
	int		ppid;

	u64		start_time;
	u64		end_time;
	u64		total_time;
	int		display;

	struct per_pidcomm *all;
	struct per_pidcomm *current;
};


struct per_pidcomm {
	struct per_pidcomm *next;

	u64		start_time;
	u64		end_time;
	u64		total_time;

	int		Y;
	int		display;

	long		state;
	u64		state_since;

	char		*comm;

	struct cpu_sample *samples;
};

struct sample_wrapper {
	struct sample_wrapper *next;

	u64		timestamp;
	unsigned char	data[0];
};

#define TYPE_NONE	0
#define TYPE_RUNNING	1
#define TYPE_WAITING	2
#define TYPE_BLOCKED	3

struct cpu_sample {
	struct cpu_sample *next;

	u64 start_time;
	u64 end_time;
	int type;
	int cpu;
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	const char *backtrace;
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};

#define CSTATE 1
#define PSTATE 2

struct power_event {
	struct power_event *next;
	int type;
	int state;
	u64 start_time;
	u64 end_time;
	int cpu;
};

struct wake_event {
	struct wake_event *next;
	int waker;
	int wakee;
	u64 time;
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	const char *backtrace;
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};

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struct process_filter {
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	char			*name;
	int			pid;
	struct process_filter	*next;
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};

static struct process_filter *process_filter;


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static struct per_pid *find_create_pid(struct timechart *tchart, int pid)
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{
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	struct per_pid *cursor = tchart->all_data;
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	while (cursor) {
		if (cursor->pid == pid)
			return cursor;
		cursor = cursor->next;
	}
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	cursor = zalloc(sizeof(*cursor));
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	assert(cursor != NULL);
	cursor->pid = pid;
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	cursor->next = tchart->all_data;
	tchart->all_data = cursor;
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	return cursor;
}

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static void pid_set_comm(struct timechart *tchart, int pid, char *comm)
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{
	struct per_pid *p;
	struct per_pidcomm *c;
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	p = find_create_pid(tchart, pid);
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	c = p->all;
	while (c) {
		if (c->comm && strcmp(c->comm, comm) == 0) {
			p->current = c;
			return;
		}
		if (!c->comm) {
			c->comm = strdup(comm);
			p->current = c;
			return;
		}
		c = c->next;
	}
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	c = zalloc(sizeof(*c));
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	assert(c != NULL);
	c->comm = strdup(comm);
	p->current = c;
	c->next = p->all;
	p->all = c;
}

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static void pid_fork(struct timechart *tchart, int pid, int ppid, u64 timestamp)
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{
	struct per_pid *p, *pp;
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	p = find_create_pid(tchart, pid);
	pp = find_create_pid(tchart, ppid);
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	p->ppid = ppid;
	if (pp->current && pp->current->comm && !p->current)
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		pid_set_comm(tchart, pid, pp->current->comm);
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	p->start_time = timestamp;
	if (p->current) {
		p->current->start_time = timestamp;
		p->current->state_since = timestamp;
	}
}

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static void pid_exit(struct timechart *tchart, int pid, u64 timestamp)
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{
	struct per_pid *p;
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	p = find_create_pid(tchart, pid);
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	p->end_time = timestamp;
	if (p->current)
		p->current->end_time = timestamp;
}

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static void pid_put_sample(struct timechart *tchart, int pid, int type,
			   unsigned int cpu, u64 start, u64 end,
			   const char *backtrace)
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{
	struct per_pid *p;
	struct per_pidcomm *c;
	struct cpu_sample *sample;

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	p = find_create_pid(tchart, pid);
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	c = p->current;
	if (!c) {
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		c = zalloc(sizeof(*c));
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		assert(c != NULL);
		p->current = c;
		c->next = p->all;
		p->all = c;
	}

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	sample = zalloc(sizeof(*sample));
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	assert(sample != NULL);
	sample->start_time = start;
	sample->end_time = end;
	sample->type = type;
	sample->next = c->samples;
	sample->cpu = cpu;
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	sample->backtrace = backtrace;
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	c->samples = sample;

	if (sample->type == TYPE_RUNNING && end > start && start > 0) {
		c->total_time += (end-start);
		p->total_time += (end-start);
	}

	if (c->start_time == 0 || c->start_time > start)
		c->start_time = start;
	if (p->start_time == 0 || p->start_time > start)
		p->start_time = start;
}

#define MAX_CPUS 4096

static u64 cpus_cstate_start_times[MAX_CPUS];
static int cpus_cstate_state[MAX_CPUS];
static u64 cpus_pstate_start_times[MAX_CPUS];
static u64 cpus_pstate_state[MAX_CPUS];

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static int process_comm_event(struct perf_tool *tool,
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			      union perf_event *event,
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			      struct perf_sample *sample __maybe_unused,
			      struct machine *machine __maybe_unused)
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{
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	struct timechart *tchart = container_of(tool, struct timechart, tool);
	pid_set_comm(tchart, event->comm.tid, event->comm.comm);
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	return 0;
}
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static int process_fork_event(struct perf_tool *tool,
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			      union perf_event *event,
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			      struct perf_sample *sample __maybe_unused,
			      struct machine *machine __maybe_unused)
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{
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	struct timechart *tchart = container_of(tool, struct timechart, tool);
	pid_fork(tchart, event->fork.pid, event->fork.ppid, event->fork.time);
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	return 0;
}

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static int process_exit_event(struct perf_tool *tool,
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			      union perf_event *event,
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			      struct perf_sample *sample __maybe_unused,
			      struct machine *machine __maybe_unused)
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{
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	struct timechart *tchart = container_of(tool, struct timechart, tool);
	pid_exit(tchart, event->fork.pid, event->fork.time);
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	return 0;
}

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#ifdef SUPPORT_OLD_POWER_EVENTS
static int use_old_power_events;
#endif

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static void c_state_start(int cpu, u64 timestamp, int state)
{
	cpus_cstate_start_times[cpu] = timestamp;
	cpus_cstate_state[cpu] = state;
}

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static void c_state_end(struct timechart *tchart, int cpu, u64 timestamp)
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{
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	struct power_event *pwr = zalloc(sizeof(*pwr));

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	if (!pwr)
		return;

	pwr->state = cpus_cstate_state[cpu];
	pwr->start_time = cpus_cstate_start_times[cpu];
	pwr->end_time = timestamp;
	pwr->cpu = cpu;
	pwr->type = CSTATE;
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	pwr->next = tchart->power_events;
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	tchart->power_events = pwr;
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}

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static void p_state_change(struct timechart *tchart, int cpu, u64 timestamp, u64 new_freq)
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{
	struct power_event *pwr;

	if (new_freq > 8000000) /* detect invalid data */
		return;

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	pwr = zalloc(sizeof(*pwr));
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	if (!pwr)
		return;

	pwr->state = cpus_pstate_state[cpu];
	pwr->start_time = cpus_pstate_start_times[cpu];
	pwr->end_time = timestamp;
	pwr->cpu = cpu;
	pwr->type = PSTATE;
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	pwr->next = tchart->power_events;
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	if (!pwr->start_time)
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		pwr->start_time = tchart->first_time;
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	tchart->power_events = pwr;
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	cpus_pstate_state[cpu] = new_freq;
	cpus_pstate_start_times[cpu] = timestamp;

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	if ((u64)new_freq > tchart->max_freq)
		tchart->max_freq = new_freq;
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	if (new_freq < tchart->min_freq || tchart->min_freq == 0)
		tchart->min_freq = new_freq;
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	if (new_freq == tchart->max_freq - 1000)
		tchart->turbo_frequency = tchart->max_freq;
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}

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static void sched_wakeup(struct timechart *tchart, int cpu, u64 timestamp,
			 int waker, int wakee, u8 flags, const char *backtrace)
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{
	struct per_pid *p;
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	struct wake_event *we = zalloc(sizeof(*we));
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	if (!we)
		return;

	we->time = timestamp;
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	we->waker = waker;
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	we->backtrace = backtrace;
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	if ((flags & TRACE_FLAG_HARDIRQ) || (flags & TRACE_FLAG_SOFTIRQ))
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		we->waker = -1;

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	we->wakee = wakee;
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	we->next = tchart->wake_events;
	tchart->wake_events = we;
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	p = find_create_pid(tchart, we->wakee);
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	if (p && p->current && p->current->state == TYPE_NONE) {
		p->current->state_since = timestamp;
		p->current->state = TYPE_WAITING;
	}
	if (p && p->current && p->current->state == TYPE_BLOCKED) {
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		pid_put_sample(tchart, p->pid, p->current->state, cpu,
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			       p->current->state_since, timestamp, NULL);
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		p->current->state_since = timestamp;
		p->current->state = TYPE_WAITING;
	}
}

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static void sched_switch(struct timechart *tchart, int cpu, u64 timestamp,
			 int prev_pid, int next_pid, u64 prev_state,
			 const char *backtrace)
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{
	struct per_pid *p = NULL, *prev_p;

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	prev_p = find_create_pid(tchart, prev_pid);
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	p = find_create_pid(tchart, next_pid);
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	if (prev_p->current && prev_p->current->state != TYPE_NONE)
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		pid_put_sample(tchart, prev_pid, TYPE_RUNNING, cpu,
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			       prev_p->current->state_since, timestamp,
			       backtrace);
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	if (p && p->current) {
		if (p->current->state != TYPE_NONE)
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			pid_put_sample(tchart, next_pid, p->current->state, cpu,
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				       p->current->state_since, timestamp,
				       backtrace);
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		p->current->state_since = timestamp;
		p->current->state = TYPE_RUNNING;
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	}

	if (prev_p->current) {
		prev_p->current->state = TYPE_NONE;
		prev_p->current->state_since = timestamp;
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		if (prev_state & 2)
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			prev_p->current->state = TYPE_BLOCKED;
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		if (prev_state == 0)
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			prev_p->current->state = TYPE_WAITING;
	}
}

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static const char *cat_backtrace(union perf_event *event,
				 struct perf_sample *sample,
				 struct machine *machine)
{
	struct addr_location al;
	unsigned int i;
	char *p = NULL;
	size_t p_len;
	u8 cpumode = PERF_RECORD_MISC_USER;
	struct addr_location tal;
	struct ip_callchain *chain = sample->callchain;
	FILE *f = open_memstream(&p, &p_len);

	if (!f) {
		perror("open_memstream error");
		return NULL;
	}

	if (!chain)
		goto exit;

	if (perf_event__preprocess_sample(event, machine, &al, sample) < 0) {
		fprintf(stderr, "problem processing %d event, skipping it.\n",
			event->header.type);
		goto exit;
	}

	for (i = 0; i < chain->nr; i++) {
		u64 ip;

		if (callchain_param.order == ORDER_CALLEE)
			ip = chain->ips[i];
		else
			ip = chain->ips[chain->nr - i - 1];

		if (ip >= PERF_CONTEXT_MAX) {
			switch (ip) {
			case PERF_CONTEXT_HV:
				cpumode = PERF_RECORD_MISC_HYPERVISOR;
				break;
			case PERF_CONTEXT_KERNEL:
				cpumode = PERF_RECORD_MISC_KERNEL;
				break;
			case PERF_CONTEXT_USER:
				cpumode = PERF_RECORD_MISC_USER;
				break;
			default:
				pr_debug("invalid callchain context: "
					 "%"PRId64"\n", (s64) ip);

				/*
				 * It seems the callchain is corrupted.
				 * Discard all.
				 */
				free(p);
				p = NULL;
				goto exit;
			}
			continue;
		}

		tal.filtered = false;
		thread__find_addr_location(al.thread, machine, cpumode,
					   MAP__FUNCTION, ip, &tal);

		if (tal.sym)
			fprintf(f, "..... %016" PRIx64 " %s\n", ip,
				tal.sym->name);
		else
			fprintf(f, "..... %016" PRIx64 "\n", ip);
	}

exit:
	fclose(f);

	return p;
}

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typedef int (*tracepoint_handler)(struct timechart *tchart,
				  struct perf_evsel *evsel,
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				  struct perf_sample *sample,
				  const char *backtrace);
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static int process_sample_event(struct perf_tool *tool,
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				union perf_event *event,
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				struct perf_sample *sample,
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				struct perf_evsel *evsel,
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				struct machine *machine)
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{
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	struct timechart *tchart = container_of(tool, struct timechart, tool);

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	if (evsel->attr.sample_type & PERF_SAMPLE_TIME) {
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		if (!tchart->first_time || tchart->first_time > sample->time)
			tchart->first_time = sample->time;
		if (tchart->last_time < sample->time)
			tchart->last_time = sample->time;
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	}
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	if (evsel->handler != NULL) {
		tracepoint_handler f = evsel->handler;
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		return f(tchart, evsel, sample,
			 cat_backtrace(event, sample, machine));
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	}

	return 0;
}

static int
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process_sample_cpu_idle(struct timechart *tchart __maybe_unused,
			struct perf_evsel *evsel,
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			struct perf_sample *sample,
			const char *backtrace __maybe_unused)
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{
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	u32 state = perf_evsel__intval(evsel, sample, "state");
	u32 cpu_id = perf_evsel__intval(evsel, sample, "cpu_id");
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	if (state == (u32)PWR_EVENT_EXIT)
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		c_state_end(tchart, cpu_id, sample->time);
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	else
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		c_state_start(cpu_id, sample->time, state);
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	return 0;
}

static int
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process_sample_cpu_frequency(struct timechart *tchart,
			     struct perf_evsel *evsel,
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			     struct perf_sample *sample,
			     const char *backtrace __maybe_unused)
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{
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	u32 state = perf_evsel__intval(evsel, sample, "state");
	u32 cpu_id = perf_evsel__intval(evsel, sample, "cpu_id");
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	p_state_change(tchart, cpu_id, sample->time, state);
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	return 0;
}

static int
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process_sample_sched_wakeup(struct timechart *tchart,
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			    struct perf_evsel *evsel,
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			    struct perf_sample *sample,
			    const char *backtrace)
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{
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	u8 flags = perf_evsel__intval(evsel, sample, "common_flags");
	int waker = perf_evsel__intval(evsel, sample, "common_pid");
	int wakee = perf_evsel__intval(evsel, sample, "pid");
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	sched_wakeup(tchart, sample->cpu, sample->time, waker, wakee, flags, backtrace);
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	return 0;
}
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static int
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process_sample_sched_switch(struct timechart *tchart,
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			    struct perf_evsel *evsel,
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			    struct perf_sample *sample,
			    const char *backtrace)
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{
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	int prev_pid = perf_evsel__intval(evsel, sample, "prev_pid");
	int next_pid = perf_evsel__intval(evsel, sample, "next_pid");
	u64 prev_state = perf_evsel__intval(evsel, sample, "prev_state");
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	sched_switch(tchart, sample->cpu, sample->time, prev_pid, next_pid,
		     prev_state, backtrace);
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	return 0;
}
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#ifdef SUPPORT_OLD_POWER_EVENTS
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static int
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process_sample_power_start(struct timechart *tchart __maybe_unused,
			   struct perf_evsel *evsel,
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			   struct perf_sample *sample,
			   const char *backtrace __maybe_unused)
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{
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	u64 cpu_id = perf_evsel__intval(evsel, sample, "cpu_id");
	u64 value = perf_evsel__intval(evsel, sample, "value");
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	c_state_start(cpu_id, sample->time, value);
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	return 0;
}

static int
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process_sample_power_end(struct timechart *tchart,
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			 struct perf_evsel *evsel __maybe_unused,
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			 struct perf_sample *sample,
			 const char *backtrace __maybe_unused)
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{
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	c_state_end(tchart, sample->cpu, sample->time);
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	return 0;
}

static int
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process_sample_power_frequency(struct timechart *tchart,
			       struct perf_evsel *evsel,
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			       struct perf_sample *sample,
			       const char *backtrace __maybe_unused)
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{
632 633
	u64 cpu_id = perf_evsel__intval(evsel, sample, "cpu_id");
	u64 value = perf_evsel__intval(evsel, sample, "value");
634

635
	p_state_change(tchart, cpu_id, sample->time, value);
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	return 0;
}
638
#endif /* SUPPORT_OLD_POWER_EVENTS */
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/*
 * After the last sample we need to wrap up the current C/P state
 * and close out each CPU for these.
 */
644
static void end_sample_processing(struct timechart *tchart)
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{
	u64 cpu;
	struct power_event *pwr;

649
	for (cpu = 0; cpu <= tchart->numcpus; cpu++) {
650 651 652
		/* C state */
#if 0
		pwr = zalloc(sizeof(*pwr));
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		if (!pwr)
			return;

		pwr->state = cpus_cstate_state[cpu];
		pwr->start_time = cpus_cstate_start_times[cpu];
658
		pwr->end_time = tchart->last_time;
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		pwr->cpu = cpu;
		pwr->type = CSTATE;
661
		pwr->next = tchart->power_events;
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662

663
		tchart->power_events = pwr;
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#endif
		/* P state */

667
		pwr = zalloc(sizeof(*pwr));
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		if (!pwr)
			return;

		pwr->state = cpus_pstate_state[cpu];
		pwr->start_time = cpus_pstate_start_times[cpu];
673
		pwr->end_time = tchart->last_time;
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		pwr->cpu = cpu;
		pwr->type = PSTATE;
676
		pwr->next = tchart->power_events;
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		if (!pwr->start_time)
679
			pwr->start_time = tchart->first_time;
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680
		if (!pwr->state)
681
			pwr->state = tchart->min_freq;
682
		tchart->power_events = pwr;
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	}
}

/*
 * Sort the pid datastructure
 */
689
static void sort_pids(struct timechart *tchart)
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{
	struct per_pid *new_list, *p, *cursor, *prev;
	/* sort by ppid first, then by pid, lowest to highest */

	new_list = NULL;

696 697 698
	while (tchart->all_data) {
		p = tchart->all_data;
		tchart->all_data = p->next;
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		p->next = NULL;

		if (new_list == NULL) {
			new_list = p;
			p->next = NULL;
			continue;
		}
		prev = NULL;
		cursor = new_list;
		while (cursor) {
			if (cursor->ppid > p->ppid ||
				(cursor->ppid == p->ppid && cursor->pid > p->pid)) {
				/* must insert before */
				if (prev) {
					p->next = prev->next;
					prev->next = p;
					cursor = NULL;
					continue;
				} else {
					p->next = new_list;
					new_list = p;
					cursor = NULL;
					continue;
				}
			}

			prev = cursor;
			cursor = cursor->next;
			if (!cursor)
				prev->next = p;
		}
	}
731
	tchart->all_data = new_list;
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}


735
static void draw_c_p_states(struct timechart *tchart)
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{
	struct power_event *pwr;
738
	pwr = tchart->power_events;
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	/*
	 * two pass drawing so that the P state bars are on top of the C state blocks
	 */
	while (pwr) {
		if (pwr->type == CSTATE)
			svg_cstate(pwr->cpu, pwr->start_time, pwr->end_time, pwr->state);
		pwr = pwr->next;
	}

749
	pwr = tchart->power_events;
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	while (pwr) {
		if (pwr->type == PSTATE) {
			if (!pwr->state)
753
				pwr->state = tchart->min_freq;
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			svg_pstate(pwr->cpu, pwr->start_time, pwr->end_time, pwr->state);
		}
		pwr = pwr->next;
	}
}

760
static void draw_wakeups(struct timechart *tchart)
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{
	struct wake_event *we;
	struct per_pid *p;
	struct per_pidcomm *c;

766
	we = tchart->wake_events;
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	while (we) {
		int from = 0, to = 0;
769
		char *task_from = NULL, *task_to = NULL;
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		/* locate the column of the waker and wakee */
772
		p = tchart->all_data;
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		while (p) {
			if (p->pid == we->waker || p->pid == we->wakee) {
				c = p->all;
				while (c) {
					if (c->Y && c->start_time <= we->time && c->end_time >= we->time) {
778
						if (p->pid == we->waker && !from) {
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779
							from = c->Y;
780
							task_from = strdup(c->comm);
781
						}
782
						if (p->pid == we->wakee && !to) {
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783
							to = c->Y;
784
							task_to = strdup(c->comm);
785
						}
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786 787 788
					}
					c = c->next;
				}
789 790 791 792 793 794 795 796 797 798 799 800
				c = p->all;
				while (c) {
					if (p->pid == we->waker && !from) {
						from = c->Y;
						task_from = strdup(c->comm);
					}
					if (p->pid == we->wakee && !to) {
						to = c->Y;
						task_to = strdup(c->comm);
					}
					c = c->next;
				}
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801 802 803 804
			}
			p = p->next;
		}

805 806 807 808 809 810 811 812 813
		if (!task_from) {
			task_from = malloc(40);
			sprintf(task_from, "[%i]", we->waker);
		}
		if (!task_to) {
			task_to = malloc(40);
			sprintf(task_to, "[%i]", we->wakee);
		}

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814
		if (we->waker == -1)
815
			svg_interrupt(we->time, to, we->backtrace);
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816
		else if (from && to && abs(from - to) == 1)
817
			svg_wakeline(we->time, from, to, we->backtrace);
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818
		else
819 820
			svg_partial_wakeline(we->time, from, task_from, to,
					     task_to, we->backtrace);
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Arjan van de Ven 已提交
821
		we = we->next;
822 823 824

		free(task_from);
		free(task_to);
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825 826 827
	}
}

828
static void draw_cpu_usage(struct timechart *tchart)
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{
	struct per_pid *p;
	struct per_pidcomm *c;
	struct cpu_sample *sample;
833
	p = tchart->all_data;
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834 835 836 837 838
	while (p) {
		c = p->all;
		while (c) {
			sample = c->samples;
			while (sample) {
839 840 841 842
				if (sample->type == TYPE_RUNNING) {
					svg_process(sample->cpu,
						    sample->start_time,
						    sample->end_time,
843
						    p->pid,
844 845 846
						    c->comm,
						    sample->backtrace);
				}
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847 848 849 850 851 852 853 854 855

				sample = sample->next;
			}
			c = c->next;
		}
		p = p->next;
	}
}

856
static void draw_process_bars(struct timechart *tchart)
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857 858 859 860 861 862
{
	struct per_pid *p;
	struct per_pidcomm *c;
	struct cpu_sample *sample;
	int Y = 0;

863
	Y = 2 * tchart->numcpus + 2;
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Arjan van de Ven 已提交
864

865
	p = tchart->all_data;
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866 867 868 869 870 871 872 873 874
	while (p) {
		c = p->all;
		while (c) {
			if (!c->display) {
				c->Y = 0;
				c = c->next;
				continue;
			}

875
			svg_box(Y, c->start_time, c->end_time, "process");
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876 877 878
			sample = c->samples;
			while (sample) {
				if (sample->type == TYPE_RUNNING)
879 880 881 882
					svg_running(Y, sample->cpu,
						    sample->start_time,
						    sample->end_time,
						    sample->backtrace);
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883
				if (sample->type == TYPE_BLOCKED)
884 885 886 887
					svg_blocked(Y, sample->cpu,
						    sample->start_time,
						    sample->end_time,
						    sample->backtrace);
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888
				if (sample->type == TYPE_WAITING)
889 890 891 892
					svg_waiting(Y, sample->cpu,
						    sample->start_time,
						    sample->end_time,
						    sample->backtrace);
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				sample = sample->next;
			}

			if (c->comm) {
				char comm[256];
				if (c->total_time > 5000000000) /* 5 seconds */
					sprintf(comm, "%s:%i (%2.2fs)", c->comm, p->pid, c->total_time / 1000000000.0);
				else
					sprintf(comm, "%s:%i (%3.1fms)", c->comm, p->pid, c->total_time / 1000000.0);

				svg_text(Y, c->start_time, comm);
			}
			c->Y = Y;
			Y++;
			c = c->next;
		}
		p = p->next;
	}
}

913 914
static void add_process_filter(const char *string)
{
915 916
	int pid = strtoull(string, NULL, 10);
	struct process_filter *filt = malloc(sizeof(*filt));
917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944

	if (!filt)
		return;

	filt->name = strdup(string);
	filt->pid  = pid;
	filt->next = process_filter;

	process_filter = filt;
}

static int passes_filter(struct per_pid *p, struct per_pidcomm *c)
{
	struct process_filter *filt;
	if (!process_filter)
		return 1;

	filt = process_filter;
	while (filt) {
		if (filt->pid && p->pid == filt->pid)
			return 1;
		if (strcmp(filt->name, c->comm) == 0)
			return 1;
		filt = filt->next;
	}
	return 0;
}

945
static int determine_display_tasks_filtered(struct timechart *tchart)
946 947 948 949 950
{
	struct per_pid *p;
	struct per_pidcomm *c;
	int count = 0;

951
	p = tchart->all_data;
952 953 954
	while (p) {
		p->display = 0;
		if (p->start_time == 1)
955
			p->start_time = tchart->first_time;
956 957 958

		/* no exit marker, task kept running to the end */
		if (p->end_time == 0)
959
			p->end_time = tchart->last_time;
960 961 962 963 964 965 966

		c = p->all;

		while (c) {
			c->display = 0;

			if (c->start_time == 1)
967
				c->start_time = tchart->first_time;
968 969 970 971 972 973 974 975

			if (passes_filter(p, c)) {
				c->display = 1;
				p->display = 1;
				count++;
			}

			if (c->end_time == 0)
976
				c->end_time = tchart->last_time;
977 978 979 980 981 982 983 984

			c = c->next;
		}
		p = p->next;
	}
	return count;
}

985
static int determine_display_tasks(struct timechart *tchart, u64 threshold)
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986 987 988 989 990
{
	struct per_pid *p;
	struct per_pidcomm *c;
	int count = 0;

991
	if (process_filter)
992
		return determine_display_tasks_filtered(tchart);
993

994
	p = tchart->all_data;
A
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995 996 997
	while (p) {
		p->display = 0;
		if (p->start_time == 1)
998
			p->start_time = tchart->first_time;
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999 1000 1001

		/* no exit marker, task kept running to the end */
		if (p->end_time == 0)
1002
			p->end_time = tchart->last_time;
1003
		if (p->total_time >= threshold)
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1004 1005 1006 1007 1008 1009 1010 1011
			p->display = 1;

		c = p->all;

		while (c) {
			c->display = 0;

			if (c->start_time == 1)
1012
				c->start_time = tchart->first_time;
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1013

1014
			if (c->total_time >= threshold) {
A
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1015 1016 1017 1018 1019
				c->display = 1;
				count++;
			}

			if (c->end_time == 0)
1020
				c->end_time = tchart->last_time;
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1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032

			c = c->next;
		}
		p = p->next;
	}
	return count;
}



#define TIME_THRESH 10000000

1033
static void write_svg_file(struct timechart *tchart, const char *filename)
A
Arjan van de Ven 已提交
1034 1035 1036
{
	u64 i;
	int count;
1037
	int thresh = TIME_THRESH;
A
Arjan van de Ven 已提交
1038

1039 1040
	if (tchart->power_only)
		tchart->proc_num = 0;
A
Arjan van de Ven 已提交
1041

1042 1043 1044
	/* We'd like to show at least proc_num tasks;
	 * be less picky if we have fewer */
	do {
1045
		count = determine_display_tasks(tchart, thresh);
1046
		thresh /= 10;
1047
	} while (!process_filter && thresh && count < tchart->proc_num);
A
Arjan van de Ven 已提交
1048

1049
	open_svg(filename, tchart->numcpus, count, tchart->first_time, tchart->last_time);
A
Arjan van de Ven 已提交
1050

1051
	svg_time_grid();
A
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1052 1053
	svg_legenda();

1054 1055
	for (i = 0; i < tchart->numcpus; i++)
		svg_cpu_box(i, tchart->max_freq, tchart->turbo_frequency);
A
Arjan van de Ven 已提交
1056

1057
	draw_cpu_usage(tchart);
1058 1059 1060 1061 1062
	if (tchart->proc_num)
		draw_process_bars(tchart);
	if (!tchart->tasks_only)
		draw_c_p_states(tchart);
	if (tchart->proc_num)
1063
		draw_wakeups(tchart);
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1064 1065 1066 1067

	svg_close();
}

1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079
static int process_header(struct perf_file_section *section __maybe_unused,
			  struct perf_header *ph,
			  int feat,
			  int fd __maybe_unused,
			  void *data)
{
	struct timechart *tchart = data;

	switch (feat) {
	case HEADER_NRCPUS:
		tchart->numcpus = ph->env.nr_cpus_avail;
		break;
1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091

	case HEADER_CPU_TOPOLOGY:
		if (!tchart->topology)
			break;

		if (svg_build_topology_map(ph->env.sibling_cores,
					   ph->env.nr_sibling_cores,
					   ph->env.sibling_threads,
					   ph->env.nr_sibling_threads))
			fprintf(stderr, "problem building topology\n");
		break;

1092 1093 1094 1095 1096 1097 1098
	default:
		break;
	}

	return 0;
}

1099
static int __cmd_timechart(struct timechart *tchart, const char *output_name)
1100
{
1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111
	const struct perf_evsel_str_handler power_tracepoints[] = {
		{ "power:cpu_idle",		process_sample_cpu_idle },
		{ "power:cpu_frequency",	process_sample_cpu_frequency },
		{ "sched:sched_wakeup",		process_sample_sched_wakeup },
		{ "sched:sched_switch",		process_sample_sched_switch },
#ifdef SUPPORT_OLD_POWER_EVENTS
		{ "power:power_start",		process_sample_power_start },
		{ "power:power_end",		process_sample_power_end },
		{ "power:power_frequency",	process_sample_power_frequency },
#endif
	};
1112 1113 1114 1115 1116 1117
	struct perf_data_file file = {
		.path = input_name,
		.mode = PERF_DATA_MODE_READ,
	};

	struct perf_session *session = perf_session__new(&file, false,
1118
							 &tchart->tool);
1119
	int ret = -EINVAL;
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Arjan van de Ven 已提交
1120

1121 1122 1123
	if (session == NULL)
		return -ENOMEM;

1124 1125 1126 1127 1128
	(void)perf_header__process_sections(&session->header,
					    perf_data_file__fd(session->file),
					    tchart,
					    process_header);

1129 1130 1131
	if (!perf_session__has_traces(session, "timechart record"))
		goto out_delete;

1132 1133 1134 1135 1136 1137
	if (perf_session__set_tracepoints_handlers(session,
						   power_tracepoints)) {
		pr_err("Initializing session tracepoint handlers failed\n");
		goto out_delete;
	}

1138
	ret = perf_session__process_events(session, &tchart->tool);
1139
	if (ret)
1140
		goto out_delete;
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Arjan van de Ven 已提交
1141

1142
	end_sample_processing(tchart);
A
Arjan van de Ven 已提交
1143

1144
	sort_pids(tchart);
A
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1145

1146
	write_svg_file(tchart, output_name);
A
Arjan van de Ven 已提交
1147

1148
	pr_info("Written %2.1f seconds of trace to %s.\n",
1149
		(tchart->last_time - tchart->first_time) / 1000000000.0, output_name);
1150 1151 1152
out_delete:
	perf_session__delete(session);
	return ret;
A
Arjan van de Ven 已提交
1153 1154
}

1155
static int timechart__record(struct timechart *tchart, int argc, const char **argv)
1156
{
1157 1158 1159 1160 1161 1162
	unsigned int rec_argc, i, j;
	const char **rec_argv;
	const char **p;
	unsigned int record_elems;

	const char * const common_args[] = {
1163
		"record", "-a", "-R", "-c", "1",
1164 1165 1166
	};
	unsigned int common_args_nr = ARRAY_SIZE(common_args);

1167 1168 1169 1170 1171
	const char * const backtrace_args[] = {
		"-g",
	};
	unsigned int backtrace_args_no = ARRAY_SIZE(backtrace_args);

1172 1173 1174 1175 1176 1177 1178 1179
	const char * const power_args[] = {
		"-e", "power:cpu_frequency",
		"-e", "power:cpu_idle",
	};
	unsigned int power_args_nr = ARRAY_SIZE(power_args);

	const char * const old_power_args[] = {
#ifdef SUPPORT_OLD_POWER_EVENTS
1180 1181 1182 1183
		"-e", "power:power_start",
		"-e", "power:power_end",
		"-e", "power:power_frequency",
#endif
1184 1185 1186 1187
	};
	unsigned int old_power_args_nr = ARRAY_SIZE(old_power_args);

	const char * const tasks_args[] = {
1188 1189 1190
		"-e", "sched:sched_wakeup",
		"-e", "sched:sched_switch",
	};
1191
	unsigned int tasks_args_nr = ARRAY_SIZE(tasks_args);
1192 1193 1194 1195 1196

#ifdef SUPPORT_OLD_POWER_EVENTS
	if (!is_valid_tracepoint("power:cpu_idle") &&
	    is_valid_tracepoint("power:power_start")) {
		use_old_power_events = 1;
1197 1198 1199
		power_args_nr = 0;
	} else {
		old_power_args_nr = 0;
1200 1201
	}
#endif
1202

1203
	if (tchart->power_only)
1204 1205
		tasks_args_nr = 0;

1206
	if (tchart->tasks_only) {
1207 1208 1209 1210
		power_args_nr = 0;
		old_power_args_nr = 0;
	}

1211
	if (!tchart->with_backtrace)
1212 1213
		backtrace_args_no = 0;

1214
	record_elems = common_args_nr + tasks_args_nr +
1215
		power_args_nr + old_power_args_nr + backtrace_args_no;
1216 1217

	rec_argc = record_elems + argc;
1218 1219
	rec_argv = calloc(rec_argc + 1, sizeof(char *));

1220 1221 1222
	if (rec_argv == NULL)
		return -ENOMEM;

1223 1224 1225 1226
	p = rec_argv;
	for (i = 0; i < common_args_nr; i++)
		*p++ = strdup(common_args[i]);

1227 1228 1229
	for (i = 0; i < backtrace_args_no; i++)
		*p++ = strdup(backtrace_args[i]);

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	for (i = 0; i < tasks_args_nr; i++)
		*p++ = strdup(tasks_args[i]);

	for (i = 0; i < power_args_nr; i++)
		*p++ = strdup(power_args[i]);
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	for (i = 0; i < old_power_args_nr; i++)
		*p++ = strdup(old_power_args[i]);
1238

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	for (j = 1; j < (unsigned int)argc; j++)
		*p++ = argv[j];

	return cmd_record(rec_argc, rec_argv, NULL);
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}

1245
static int
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parse_process(const struct option *opt __maybe_unused, const char *arg,
	      int __maybe_unused unset)
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{
	if (arg)
		add_process_filter(arg);
	return 0;
}

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static int
parse_highlight(const struct option *opt __maybe_unused, const char *arg,
		int __maybe_unused unset)
{
	unsigned long duration = strtoul(arg, NULL, 0);

	if (svg_highlight || svg_highlight_name)
		return -1;

	if (duration)
		svg_highlight = duration;
	else
		svg_highlight_name = strdup(arg);

	return 0;
}

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int cmd_timechart(int argc, const char **argv,
		  const char *prefix __maybe_unused)
{
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	struct timechart tchart = {
		.tool = {
			.comm		 = process_comm_event,
			.fork		 = process_fork_event,
			.exit		 = process_exit_event,
			.sample		 = process_sample_event,
			.ordered_samples = true,
		},
		.proc_num = 15,
	};
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	const char *output_name = "output.svg";
1285
	const struct option timechart_options[] = {
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	OPT_STRING('i', "input", &input_name, "file", "input file name"),
	OPT_STRING('o', "output", &output_name, "file", "output file name"),
	OPT_INTEGER('w', "width", &svg_page_width, "page width"),
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	OPT_CALLBACK(0, "highlight", NULL, "duration or task name",
		      "highlight tasks. Pass duration in ns or process name.",
		       parse_highlight),
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	OPT_BOOLEAN('P', "power-only", &tchart.power_only, "output power data only"),
	OPT_BOOLEAN('T', "tasks-only", &tchart.tasks_only,
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		    "output processes data only"),
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	OPT_CALLBACK('p', "process", NULL, "process",
		      "process selector. Pass a pid or process name.",
		       parse_process),
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	OPT_STRING(0, "symfs", &symbol_conf.symfs, "directory",
		    "Look for files with symbols relative to this directory"),
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	OPT_INTEGER('n', "proc-num", &tchart.proc_num,
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		    "min. number of tasks to print"),
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	OPT_BOOLEAN('t', "topology", &tchart.topology,
		    "sort CPUs according to topology"),
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	OPT_END()
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	};
	const char * const timechart_usage[] = {
		"perf timechart [<options>] {record}",
		NULL
	};
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	const struct option record_options[] = {
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	OPT_BOOLEAN('P', "power-only", &tchart.power_only, "output power data only"),
	OPT_BOOLEAN('T', "tasks-only", &tchart.tasks_only,
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		    "output processes data only"),
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	OPT_BOOLEAN('g', "callchain", &tchart.with_backtrace, "record callchain"),
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	OPT_END()
	};
	const char * const record_usage[] = {
		"perf timechart record [<options>]",
		NULL
	};
	argc = parse_options(argc, argv, timechart_options, timechart_usage,
1323
			PARSE_OPT_STOP_AT_NON_OPTION);
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1325
	if (tchart.power_only && tchart.tasks_only) {
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		pr_err("-P and -T options cannot be used at the same time.\n");
		return -1;
	}

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	symbol__init();

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	if (argc && !strncmp(argv[0], "rec", 3)) {
		argc = parse_options(argc, argv, record_options, record_usage,
				     PARSE_OPT_STOP_AT_NON_OPTION);

1336
		if (tchart.power_only && tchart.tasks_only) {
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			pr_err("-P and -T options cannot be used at the same time.\n");
			return -1;
		}

1341
		return timechart__record(&tchart, argc, argv);
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	} else if (argc)
		usage_with_options(timechart_usage, timechart_options);
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	setup_pager();

1347
	return __cmd_timechart(&tchart, output_name);
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}