perf script: Provide additional sample information on generic events
[linux-2.6-block.git] / tools / perf / builtin-sched.c
CommitLineData
0a02ad93 1#include "builtin.h"
b1ffe8f3 2#include "perf.h"
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3
4#include "util/util.h"
ee29be62 5#include "util/evlist.h"
0a02ad93 6#include "util/cache.h"
e3f42609 7#include "util/evsel.h"
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8#include "util/symbol.h"
9#include "util/thread.h"
10#include "util/header.h"
94c744b6 11#include "util/session.h"
45694aa7 12#include "util/tool.h"
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13
14#include "util/parse-options.h"
b1ffe8f3 15#include "util/trace-event.h"
0a02ad93 16
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17#include "util/debug.h"
18
b1ffe8f3 19#include <sys/prctl.h>
7b78f136 20#include <sys/resource.h>
0a02ad93 21
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22#include <semaphore.h>
23#include <pthread.h>
24#include <math.h>
419ab0d6 25
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26#define PR_SET_NAME 15 /* Set process name */
27#define MAX_CPUS 4096
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28#define COMM_LEN 20
29#define SYM_LEN 129
b1ffe8f3 30#define MAX_PID 65536
ec156764 31
39aeb52f 32struct sched_atom;
ec156764 33
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34struct task_desc {
35 unsigned long nr;
36 unsigned long pid;
37 char comm[COMM_LEN];
ec156764 38
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39 unsigned long nr_events;
40 unsigned long curr_event;
39aeb52f 41 struct sched_atom **atoms;
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42
43 pthread_t thread;
44 sem_t sleep_sem;
ec156764 45
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46 sem_t ready_for_work;
47 sem_t work_done_sem;
48
49 u64 cpu_usage;
50};
51
52enum sched_event_type {
53 SCHED_EVENT_RUN,
54 SCHED_EVENT_SLEEP,
55 SCHED_EVENT_WAKEUP,
55ffb7a6 56 SCHED_EVENT_MIGRATION,
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57};
58
39aeb52f 59struct sched_atom {
b1ffe8f3 60 enum sched_event_type type;
eed05fe7 61 int specific_wait;
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62 u64 timestamp;
63 u64 duration;
64 unsigned long nr;
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65 sem_t *wait_sem;
66 struct task_desc *wakee;
67};
68
e936e8e4 69#define TASK_STATE_TO_CHAR_STR "RSDTtZXxKWP"
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70
71enum thread_state {
72 THREAD_SLEEPING = 0,
73 THREAD_WAIT_CPU,
74 THREAD_SCHED_IN,
75 THREAD_IGNORE
76};
77
78struct work_atom {
79 struct list_head list;
80 enum thread_state state;
aa1ab9d2 81 u64 sched_out_time;
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82 u64 wake_up_time;
83 u64 sched_in_time;
84 u64 runtime;
85};
86
39aeb52f 87struct work_atoms {
88 struct list_head work_list;
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89 struct thread *thread;
90 struct rb_node node;
91 u64 max_lat;
3786310a 92 u64 max_lat_at;
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93 u64 total_lat;
94 u64 nb_atoms;
95 u64 total_runtime;
96};
97
39aeb52f 98typedef int (*sort_fn_t)(struct work_atoms *, struct work_atoms *);
b1ffe8f3 99
9ec3f4e4 100struct perf_sched;
0e9b07e5 101
9ec3f4e4
ACM
102struct trace_sched_handler {
103 int (*switch_event)(struct perf_sched *sched, struct perf_evsel *evsel,
104 struct perf_sample *sample, struct machine *machine);
0e9b07e5 105
9ec3f4e4
ACM
106 int (*runtime_event)(struct perf_sched *sched, struct perf_evsel *evsel,
107 struct perf_sample *sample, struct machine *machine);
0e9b07e5 108
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ACM
109 int (*wakeup_event)(struct perf_sched *sched, struct perf_evsel *evsel,
110 struct perf_sample *sample, struct machine *machine);
0e9b07e5 111
cb627505
DA
112 /* PERF_RECORD_FORK event, not sched_process_fork tracepoint */
113 int (*fork_event)(struct perf_sched *sched, union perf_event *event,
114 struct machine *machine);
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ACM
115
116 int (*migrate_task_event)(struct perf_sched *sched,
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ACM
117 struct perf_evsel *evsel,
118 struct perf_sample *sample,
119 struct machine *machine);
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ACM
120};
121
122struct perf_sched {
123 struct perf_tool tool;
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ACM
124 const char *sort_order;
125 unsigned long nr_tasks;
126 struct task_desc *pid_to_task[MAX_PID];
127 struct task_desc **tasks;
128 const struct trace_sched_handler *tp_handler;
129 pthread_mutex_t start_work_mutex;
130 pthread_mutex_t work_done_wait_mutex;
131 int profile_cpu;
132/*
133 * Track the current task - that way we can know whether there's any
134 * weird events, such as a task being switched away that is not current.
135 */
136 int max_cpu;
137 u32 curr_pid[MAX_CPUS];
138 struct thread *curr_thread[MAX_CPUS];
139 char next_shortname1;
140 char next_shortname2;
141 unsigned int replay_repeat;
142 unsigned long nr_run_events;
143 unsigned long nr_sleep_events;
144 unsigned long nr_wakeup_events;
145 unsigned long nr_sleep_corrections;
146 unsigned long nr_run_events_optimized;
147 unsigned long targetless_wakeups;
148 unsigned long multitarget_wakeups;
149 unsigned long nr_runs;
150 unsigned long nr_timestamps;
151 unsigned long nr_unordered_timestamps;
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ACM
152 unsigned long nr_context_switch_bugs;
153 unsigned long nr_events;
154 unsigned long nr_lost_chunks;
155 unsigned long nr_lost_events;
156 u64 run_measurement_overhead;
157 u64 sleep_measurement_overhead;
158 u64 start_time;
159 u64 cpu_usage;
160 u64 runavg_cpu_usage;
161 u64 parent_cpu_usage;
162 u64 runavg_parent_cpu_usage;
163 u64 sum_runtime;
164 u64 sum_fluct;
165 u64 run_avg;
166 u64 all_runtime;
167 u64 all_count;
168 u64 cpu_last_switched[MAX_CPUS];
169 struct rb_root atom_root, sorted_atom_root;
170 struct list_head sort_list, cmp_pid;
171};
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172
173static u64 get_nsecs(void)
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174{
175 struct timespec ts;
176
177 clock_gettime(CLOCK_MONOTONIC, &ts);
178
179 return ts.tv_sec * 1000000000ULL + ts.tv_nsec;
180}
181
0e9b07e5 182static void burn_nsecs(struct perf_sched *sched, u64 nsecs)
ec156764 183{
b1ffe8f3 184 u64 T0 = get_nsecs(), T1;
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185
186 do {
187 T1 = get_nsecs();
0e9b07e5 188 } while (T1 + sched->run_measurement_overhead < T0 + nsecs);
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189}
190
b1ffe8f3 191static void sleep_nsecs(u64 nsecs)
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192{
193 struct timespec ts;
194
195 ts.tv_nsec = nsecs % 999999999;
196 ts.tv_sec = nsecs / 999999999;
197
198 nanosleep(&ts, NULL);
199}
200
0e9b07e5 201static void calibrate_run_measurement_overhead(struct perf_sched *sched)
ec156764 202{
b1ffe8f3 203 u64 T0, T1, delta, min_delta = 1000000000ULL;
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204 int i;
205
206 for (i = 0; i < 10; i++) {
207 T0 = get_nsecs();
0e9b07e5 208 burn_nsecs(sched, 0);
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209 T1 = get_nsecs();
210 delta = T1-T0;
211 min_delta = min(min_delta, delta);
212 }
0e9b07e5 213 sched->run_measurement_overhead = min_delta;
ec156764 214
9486aa38 215 printf("run measurement overhead: %" PRIu64 " nsecs\n", min_delta);
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216}
217
0e9b07e5 218static void calibrate_sleep_measurement_overhead(struct perf_sched *sched)
ec156764 219{
b1ffe8f3 220 u64 T0, T1, delta, min_delta = 1000000000ULL;
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221 int i;
222
223 for (i = 0; i < 10; i++) {
224 T0 = get_nsecs();
225 sleep_nsecs(10000);
226 T1 = get_nsecs();
227 delta = T1-T0;
228 min_delta = min(min_delta, delta);
229 }
230 min_delta -= 10000;
0e9b07e5 231 sched->sleep_measurement_overhead = min_delta;
ec156764 232
9486aa38 233 printf("sleep measurement overhead: %" PRIu64 " nsecs\n", min_delta);
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234}
235
39aeb52f 236static struct sched_atom *
b1ffe8f3 237get_new_event(struct task_desc *task, u64 timestamp)
ec156764 238{
36479484 239 struct sched_atom *event = zalloc(sizeof(*event));
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240 unsigned long idx = task->nr_events;
241 size_t size;
242
243 event->timestamp = timestamp;
244 event->nr = idx;
245
246 task->nr_events++;
39aeb52f 247 size = sizeof(struct sched_atom *) * task->nr_events;
248 task->atoms = realloc(task->atoms, size);
249 BUG_ON(!task->atoms);
ec156764 250
39aeb52f 251 task->atoms[idx] = event;
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252
253 return event;
254}
255
39aeb52f 256static struct sched_atom *last_event(struct task_desc *task)
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257{
258 if (!task->nr_events)
259 return NULL;
260
39aeb52f 261 return task->atoms[task->nr_events - 1];
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262}
263
0e9b07e5
ACM
264static void add_sched_event_run(struct perf_sched *sched, struct task_desc *task,
265 u64 timestamp, u64 duration)
ec156764 266{
39aeb52f 267 struct sched_atom *event, *curr_event = last_event(task);
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268
269 /*
fbf94829
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270 * optimize an existing RUN event by merging this one
271 * to it:
272 */
ec156764 273 if (curr_event && curr_event->type == SCHED_EVENT_RUN) {
0e9b07e5 274 sched->nr_run_events_optimized++;
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275 curr_event->duration += duration;
276 return;
277 }
278
279 event = get_new_event(task, timestamp);
280
281 event->type = SCHED_EVENT_RUN;
282 event->duration = duration;
283
0e9b07e5 284 sched->nr_run_events++;
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285}
286
0e9b07e5
ACM
287static void add_sched_event_wakeup(struct perf_sched *sched, struct task_desc *task,
288 u64 timestamp, struct task_desc *wakee)
ec156764 289{
39aeb52f 290 struct sched_atom *event, *wakee_event;
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291
292 event = get_new_event(task, timestamp);
293 event->type = SCHED_EVENT_WAKEUP;
294 event->wakee = wakee;
295
296 wakee_event = last_event(wakee);
297 if (!wakee_event || wakee_event->type != SCHED_EVENT_SLEEP) {
0e9b07e5 298 sched->targetless_wakeups++;
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299 return;
300 }
301 if (wakee_event->wait_sem) {
0e9b07e5 302 sched->multitarget_wakeups++;
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303 return;
304 }
305
36479484 306 wakee_event->wait_sem = zalloc(sizeof(*wakee_event->wait_sem));
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307 sem_init(wakee_event->wait_sem, 0, 0);
308 wakee_event->specific_wait = 1;
309 event->wait_sem = wakee_event->wait_sem;
310
0e9b07e5 311 sched->nr_wakeup_events++;
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312}
313
0e9b07e5
ACM
314static void add_sched_event_sleep(struct perf_sched *sched, struct task_desc *task,
315 u64 timestamp, u64 task_state __maybe_unused)
ec156764 316{
39aeb52f 317 struct sched_atom *event = get_new_event(task, timestamp);
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318
319 event->type = SCHED_EVENT_SLEEP;
320
0e9b07e5 321 sched->nr_sleep_events++;
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322}
323
0e9b07e5
ACM
324static struct task_desc *register_pid(struct perf_sched *sched,
325 unsigned long pid, const char *comm)
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326{
327 struct task_desc *task;
328
329 BUG_ON(pid >= MAX_PID);
330
0e9b07e5 331 task = sched->pid_to_task[pid];
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332
333 if (task)
334 return task;
335
36479484 336 task = zalloc(sizeof(*task));
ec156764 337 task->pid = pid;
0e9b07e5 338 task->nr = sched->nr_tasks;
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339 strcpy(task->comm, comm);
340 /*
341 * every task starts in sleeping state - this gets ignored
342 * if there's no wakeup pointing to this sleep state:
343 */
0e9b07e5 344 add_sched_event_sleep(sched, task, 0, 0);
ec156764 345
0e9b07e5
ACM
346 sched->pid_to_task[pid] = task;
347 sched->nr_tasks++;
348 sched->tasks = realloc(sched->tasks, sched->nr_tasks * sizeof(struct task_task *));
349 BUG_ON(!sched->tasks);
350 sched->tasks[task->nr] = task;
ec156764 351
ad236fd2 352 if (verbose)
0e9b07e5 353 printf("registered task #%ld, PID %ld (%s)\n", sched->nr_tasks, pid, comm);
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354
355 return task;
356}
357
358
0e9b07e5 359static void print_task_traces(struct perf_sched *sched)
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360{
361 struct task_desc *task;
362 unsigned long i;
363
0e9b07e5
ACM
364 for (i = 0; i < sched->nr_tasks; i++) {
365 task = sched->tasks[i];
ad236fd2 366 printf("task %6ld (%20s:%10ld), nr_events: %ld\n",
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367 task->nr, task->comm, task->pid, task->nr_events);
368 }
369}
370
0e9b07e5 371static void add_cross_task_wakeups(struct perf_sched *sched)
ec156764
IM
372{
373 struct task_desc *task1, *task2;
374 unsigned long i, j;
375
0e9b07e5
ACM
376 for (i = 0; i < sched->nr_tasks; i++) {
377 task1 = sched->tasks[i];
ec156764 378 j = i + 1;
0e9b07e5 379 if (j == sched->nr_tasks)
ec156764 380 j = 0;
0e9b07e5
ACM
381 task2 = sched->tasks[j];
382 add_sched_event_wakeup(sched, task1, 0, task2);
ec156764
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383 }
384}
385
0e9b07e5
ACM
386static void perf_sched__process_event(struct perf_sched *sched,
387 struct sched_atom *atom)
ec156764
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388{
389 int ret = 0;
ec156764 390
39aeb52f 391 switch (atom->type) {
ec156764 392 case SCHED_EVENT_RUN:
0e9b07e5 393 burn_nsecs(sched, atom->duration);
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394 break;
395 case SCHED_EVENT_SLEEP:
39aeb52f 396 if (atom->wait_sem)
397 ret = sem_wait(atom->wait_sem);
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398 BUG_ON(ret);
399 break;
400 case SCHED_EVENT_WAKEUP:
39aeb52f 401 if (atom->wait_sem)
402 ret = sem_post(atom->wait_sem);
ec156764
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403 BUG_ON(ret);
404 break;
55ffb7a6
MG
405 case SCHED_EVENT_MIGRATION:
406 break;
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407 default:
408 BUG_ON(1);
409 }
410}
411
b1ffe8f3 412static u64 get_cpu_usage_nsec_parent(void)
ec156764
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413{
414 struct rusage ru;
b1ffe8f3 415 u64 sum;
ec156764
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416 int err;
417
418 err = getrusage(RUSAGE_SELF, &ru);
419 BUG_ON(err);
420
421 sum = ru.ru_utime.tv_sec*1e9 + ru.ru_utime.tv_usec*1e3;
422 sum += ru.ru_stime.tv_sec*1e9 + ru.ru_stime.tv_usec*1e3;
423
424 return sum;
425}
426
c0c9e721 427static int self_open_counters(void)
ec156764 428{
c0c9e721
XG
429 struct perf_event_attr attr;
430 int fd;
ec156764 431
c0c9e721 432 memset(&attr, 0, sizeof(attr));
ec156764 433
c0c9e721
XG
434 attr.type = PERF_TYPE_SOFTWARE;
435 attr.config = PERF_COUNT_SW_TASK_CLOCK;
ec156764 436
c0c9e721
XG
437 fd = sys_perf_event_open(&attr, 0, -1, -1, 0);
438
439 if (fd < 0)
60b7d14a
NK
440 pr_err("Error: sys_perf_event_open() syscall returned "
441 "with %d (%s)\n", fd, strerror(errno));
c0c9e721
XG
442 return fd;
443}
444
445static u64 get_cpu_usage_nsec_self(int fd)
446{
447 u64 runtime;
448 int ret;
449
450 ret = read(fd, &runtime, sizeof(runtime));
451 BUG_ON(ret != sizeof(runtime));
452
453 return runtime;
ec156764
IM
454}
455
0e9b07e5
ACM
456struct sched_thread_parms {
457 struct task_desc *task;
458 struct perf_sched *sched;
459};
460
ec156764
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461static void *thread_func(void *ctx)
462{
0e9b07e5
ACM
463 struct sched_thread_parms *parms = ctx;
464 struct task_desc *this_task = parms->task;
465 struct perf_sched *sched = parms->sched;
b1ffe8f3 466 u64 cpu_usage_0, cpu_usage_1;
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467 unsigned long i, ret;
468 char comm2[22];
c0c9e721 469 int fd;
ec156764 470
74cf249d 471 zfree(&parms);
0e9b07e5 472
ec156764
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473 sprintf(comm2, ":%s", this_task->comm);
474 prctl(PR_SET_NAME, comm2);
c0c9e721 475 fd = self_open_counters();
a116e05d
ACM
476 if (fd < 0)
477 return NULL;
ec156764
IM
478again:
479 ret = sem_post(&this_task->ready_for_work);
480 BUG_ON(ret);
0e9b07e5 481 ret = pthread_mutex_lock(&sched->start_work_mutex);
ec156764 482 BUG_ON(ret);
0e9b07e5 483 ret = pthread_mutex_unlock(&sched->start_work_mutex);
ec156764 484 BUG_ON(ret);
ec156764 485
c0c9e721 486 cpu_usage_0 = get_cpu_usage_nsec_self(fd);
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IM
487
488 for (i = 0; i < this_task->nr_events; i++) {
489 this_task->curr_event = i;
0e9b07e5 490 perf_sched__process_event(sched, this_task->atoms[i]);
ec156764
IM
491 }
492
c0c9e721 493 cpu_usage_1 = get_cpu_usage_nsec_self(fd);
ec156764 494 this_task->cpu_usage = cpu_usage_1 - cpu_usage_0;
ec156764
IM
495 ret = sem_post(&this_task->work_done_sem);
496 BUG_ON(ret);
ec156764 497
0e9b07e5 498 ret = pthread_mutex_lock(&sched->work_done_wait_mutex);
ec156764 499 BUG_ON(ret);
0e9b07e5 500 ret = pthread_mutex_unlock(&sched->work_done_wait_mutex);
ec156764 501 BUG_ON(ret);
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IM
502
503 goto again;
504}
505
0e9b07e5 506static void create_tasks(struct perf_sched *sched)
ec156764
IM
507{
508 struct task_desc *task;
509 pthread_attr_t attr;
510 unsigned long i;
511 int err;
512
513 err = pthread_attr_init(&attr);
514 BUG_ON(err);
12f7e036
JP
515 err = pthread_attr_setstacksize(&attr,
516 (size_t) max(16 * 1024, PTHREAD_STACK_MIN));
ec156764 517 BUG_ON(err);
0e9b07e5 518 err = pthread_mutex_lock(&sched->start_work_mutex);
ec156764 519 BUG_ON(err);
0e9b07e5 520 err = pthread_mutex_lock(&sched->work_done_wait_mutex);
ec156764 521 BUG_ON(err);
0e9b07e5
ACM
522 for (i = 0; i < sched->nr_tasks; i++) {
523 struct sched_thread_parms *parms = malloc(sizeof(*parms));
524 BUG_ON(parms == NULL);
525 parms->task = task = sched->tasks[i];
526 parms->sched = sched;
ec156764
IM
527 sem_init(&task->sleep_sem, 0, 0);
528 sem_init(&task->ready_for_work, 0, 0);
529 sem_init(&task->work_done_sem, 0, 0);
530 task->curr_event = 0;
0e9b07e5 531 err = pthread_create(&task->thread, &attr, thread_func, parms);
ec156764
IM
532 BUG_ON(err);
533 }
534}
535
0e9b07e5 536static void wait_for_tasks(struct perf_sched *sched)
ec156764 537{
b1ffe8f3 538 u64 cpu_usage_0, cpu_usage_1;
ec156764
IM
539 struct task_desc *task;
540 unsigned long i, ret;
541
0e9b07e5
ACM
542 sched->start_time = get_nsecs();
543 sched->cpu_usage = 0;
544 pthread_mutex_unlock(&sched->work_done_wait_mutex);
ec156764 545
0e9b07e5
ACM
546 for (i = 0; i < sched->nr_tasks; i++) {
547 task = sched->tasks[i];
ec156764
IM
548 ret = sem_wait(&task->ready_for_work);
549 BUG_ON(ret);
550 sem_init(&task->ready_for_work, 0, 0);
551 }
0e9b07e5 552 ret = pthread_mutex_lock(&sched->work_done_wait_mutex);
ec156764
IM
553 BUG_ON(ret);
554
555 cpu_usage_0 = get_cpu_usage_nsec_parent();
556
0e9b07e5 557 pthread_mutex_unlock(&sched->start_work_mutex);
ec156764 558
0e9b07e5
ACM
559 for (i = 0; i < sched->nr_tasks; i++) {
560 task = sched->tasks[i];
ec156764
IM
561 ret = sem_wait(&task->work_done_sem);
562 BUG_ON(ret);
563 sem_init(&task->work_done_sem, 0, 0);
0e9b07e5 564 sched->cpu_usage += task->cpu_usage;
ec156764
IM
565 task->cpu_usage = 0;
566 }
567
568 cpu_usage_1 = get_cpu_usage_nsec_parent();
0e9b07e5
ACM
569 if (!sched->runavg_cpu_usage)
570 sched->runavg_cpu_usage = sched->cpu_usage;
571 sched->runavg_cpu_usage = (sched->runavg_cpu_usage * 9 + sched->cpu_usage) / 10;
ec156764 572
0e9b07e5
ACM
573 sched->parent_cpu_usage = cpu_usage_1 - cpu_usage_0;
574 if (!sched->runavg_parent_cpu_usage)
575 sched->runavg_parent_cpu_usage = sched->parent_cpu_usage;
576 sched->runavg_parent_cpu_usage = (sched->runavg_parent_cpu_usage * 9 +
577 sched->parent_cpu_usage)/10;
ec156764 578
0e9b07e5 579 ret = pthread_mutex_lock(&sched->start_work_mutex);
ec156764
IM
580 BUG_ON(ret);
581
0e9b07e5
ACM
582 for (i = 0; i < sched->nr_tasks; i++) {
583 task = sched->tasks[i];
ec156764
IM
584 sem_init(&task->sleep_sem, 0, 0);
585 task->curr_event = 0;
586 }
587}
588
0e9b07e5 589static void run_one_test(struct perf_sched *sched)
ec156764 590{
fb7d0b3c 591 u64 T0, T1, delta, avg_delta, fluct;
ec156764
IM
592
593 T0 = get_nsecs();
0e9b07e5 594 wait_for_tasks(sched);
ec156764
IM
595 T1 = get_nsecs();
596
597 delta = T1 - T0;
0e9b07e5
ACM
598 sched->sum_runtime += delta;
599 sched->nr_runs++;
ec156764 600
0e9b07e5 601 avg_delta = sched->sum_runtime / sched->nr_runs;
ec156764
IM
602 if (delta < avg_delta)
603 fluct = avg_delta - delta;
604 else
605 fluct = delta - avg_delta;
0e9b07e5
ACM
606 sched->sum_fluct += fluct;
607 if (!sched->run_avg)
608 sched->run_avg = delta;
609 sched->run_avg = (sched->run_avg * 9 + delta) / 10;
ec156764 610
0e9b07e5 611 printf("#%-3ld: %0.3f, ", sched->nr_runs, (double)delta / 1000000.0);
ec156764 612
0e9b07e5 613 printf("ravg: %0.2f, ", (double)sched->run_avg / 1e6);
ec156764 614
ad236fd2 615 printf("cpu: %0.2f / %0.2f",
0e9b07e5 616 (double)sched->cpu_usage / 1e6, (double)sched->runavg_cpu_usage / 1e6);
ec156764
IM
617
618#if 0
619 /*
fbf94829 620 * rusage statistics done by the parent, these are less
0e9b07e5 621 * accurate than the sched->sum_exec_runtime based statistics:
fbf94829 622 */
ad236fd2 623 printf(" [%0.2f / %0.2f]",
0e9b07e5
ACM
624 (double)sched->parent_cpu_usage/1e6,
625 (double)sched->runavg_parent_cpu_usage/1e6);
ec156764
IM
626#endif
627
ad236fd2 628 printf("\n");
ec156764 629
0e9b07e5
ACM
630 if (sched->nr_sleep_corrections)
631 printf(" (%ld sleep corrections)\n", sched->nr_sleep_corrections);
632 sched->nr_sleep_corrections = 0;
ec156764
IM
633}
634
0e9b07e5 635static void test_calibrations(struct perf_sched *sched)
ec156764 636{
b1ffe8f3 637 u64 T0, T1;
ec156764
IM
638
639 T0 = get_nsecs();
0e9b07e5 640 burn_nsecs(sched, 1e6);
ec156764
IM
641 T1 = get_nsecs();
642
9486aa38 643 printf("the run test took %" PRIu64 " nsecs\n", T1 - T0);
ec156764
IM
644
645 T0 = get_nsecs();
646 sleep_nsecs(1e6);
647 T1 = get_nsecs();
648
9486aa38 649 printf("the sleep test took %" PRIu64 " nsecs\n", T1 - T0);
ec156764
IM
650}
651
a116e05d 652static int
0e9b07e5 653replay_wakeup_event(struct perf_sched *sched,
9ec3f4e4
ACM
654 struct perf_evsel *evsel, struct perf_sample *sample,
655 struct machine *machine __maybe_unused)
419ab0d6 656{
9ec3f4e4
ACM
657 const char *comm = perf_evsel__strval(evsel, sample, "comm");
658 const u32 pid = perf_evsel__intval(evsel, sample, "pid");
419ab0d6 659 struct task_desc *waker, *wakee;
fbf94829 660
ad236fd2 661 if (verbose) {
2b7fcbc5 662 printf("sched_wakeup event %p\n", evsel);
fbf94829 663
9ec3f4e4 664 printf(" ... pid %d woke up %s/%d\n", sample->tid, comm, pid);
ad236fd2 665 }
fbf94829 666
2b7fcbc5 667 waker = register_pid(sched, sample->tid, "<unknown>");
9ec3f4e4 668 wakee = register_pid(sched, pid, comm);
fbf94829 669
0e9b07e5 670 add_sched_event_wakeup(sched, waker, sample->time, wakee);
a116e05d 671 return 0;
ec156764
IM
672}
673
9ec3f4e4
ACM
674static int replay_switch_event(struct perf_sched *sched,
675 struct perf_evsel *evsel,
676 struct perf_sample *sample,
677 struct machine *machine __maybe_unused)
ec156764 678{
9ec3f4e4
ACM
679 const char *prev_comm = perf_evsel__strval(evsel, sample, "prev_comm"),
680 *next_comm = perf_evsel__strval(evsel, sample, "next_comm");
681 const u32 prev_pid = perf_evsel__intval(evsel, sample, "prev_pid"),
682 next_pid = perf_evsel__intval(evsel, sample, "next_pid");
683 const u64 prev_state = perf_evsel__intval(evsel, sample, "prev_state");
1d037ca1 684 struct task_desc *prev, __maybe_unused *next;
7f7f8d0b
ACM
685 u64 timestamp0, timestamp = sample->time;
686 int cpu = sample->cpu;
fbf94829
IM
687 s64 delta;
688
ad236fd2 689 if (verbose)
2b7fcbc5 690 printf("sched_switch event %p\n", evsel);
ad236fd2 691
fbf94829 692 if (cpu >= MAX_CPUS || cpu < 0)
a116e05d 693 return 0;
fbf94829 694
0e9b07e5 695 timestamp0 = sched->cpu_last_switched[cpu];
fbf94829
IM
696 if (timestamp0)
697 delta = timestamp - timestamp0;
698 else
699 delta = 0;
700
a116e05d 701 if (delta < 0) {
60b7d14a 702 pr_err("hm, delta: %" PRIu64 " < 0 ?\n", delta);
a116e05d
ACM
703 return -1;
704 }
fbf94829 705
9ec3f4e4
ACM
706 pr_debug(" ... switch from %s/%d to %s/%d [ran %" PRIu64 " nsecs]\n",
707 prev_comm, prev_pid, next_comm, next_pid, delta);
fbf94829 708
9ec3f4e4
ACM
709 prev = register_pid(sched, prev_pid, prev_comm);
710 next = register_pid(sched, next_pid, next_comm);
fbf94829 711
0e9b07e5 712 sched->cpu_last_switched[cpu] = timestamp;
fbf94829 713
0e9b07e5 714 add_sched_event_run(sched, prev, timestamp, delta);
9ec3f4e4 715 add_sched_event_sleep(sched, prev, timestamp, prev_state);
a116e05d
ACM
716
717 return 0;
fbf94829
IM
718}
719
cb627505
DA
720static int replay_fork_event(struct perf_sched *sched,
721 union perf_event *event,
722 struct machine *machine)
419ab0d6 723{
cb627505
DA
724 struct thread *child, *parent;
725
314add6b
AH
726 child = machine__findnew_thread(machine, event->fork.pid,
727 event->fork.tid);
728 parent = machine__findnew_thread(machine, event->fork.ppid,
729 event->fork.ptid);
cb627505
DA
730
731 if (child == NULL || parent == NULL) {
732 pr_debug("thread does not exist on fork event: child %p, parent %p\n",
733 child, parent);
734 return 0;
735 }
9ec3f4e4 736
419ab0d6 737 if (verbose) {
cb627505 738 printf("fork event\n");
b9c5143a
FW
739 printf("... parent: %s/%d\n", thread__comm_str(parent), parent->tid);
740 printf("... child: %s/%d\n", thread__comm_str(child), child->tid);
419ab0d6 741 }
9ec3f4e4 742
b9c5143a
FW
743 register_pid(sched, parent->tid, thread__comm_str(parent));
744 register_pid(sched, child->tid, thread__comm_str(child));
a116e05d 745 return 0;
419ab0d6 746}
fbf94829 747
b1ffe8f3
IM
748struct sort_dimension {
749 const char *name;
b5fae128 750 sort_fn_t cmp;
b1ffe8f3
IM
751 struct list_head list;
752};
753
daa1d7a5 754static int
39aeb52f 755thread_lat_cmp(struct list_head *list, struct work_atoms *l, struct work_atoms *r)
daa1d7a5
FW
756{
757 struct sort_dimension *sort;
758 int ret = 0;
759
b5fae128
IM
760 BUG_ON(list_empty(list));
761
daa1d7a5
FW
762 list_for_each_entry(sort, list, list) {
763 ret = sort->cmp(l, r);
764 if (ret)
765 return ret;
766 }
767
768 return ret;
769}
770
39aeb52f 771static struct work_atoms *
b5fae128
IM
772thread_atoms_search(struct rb_root *root, struct thread *thread,
773 struct list_head *sort_list)
774{
775 struct rb_node *node = root->rb_node;
39aeb52f 776 struct work_atoms key = { .thread = thread };
b5fae128
IM
777
778 while (node) {
39aeb52f 779 struct work_atoms *atoms;
b5fae128
IM
780 int cmp;
781
39aeb52f 782 atoms = container_of(node, struct work_atoms, node);
b5fae128
IM
783
784 cmp = thread_lat_cmp(sort_list, &key, atoms);
785 if (cmp > 0)
786 node = node->rb_left;
787 else if (cmp < 0)
788 node = node->rb_right;
789 else {
790 BUG_ON(thread != atoms->thread);
791 return atoms;
792 }
793 }
794 return NULL;
795}
796
cdce9d73 797static void
39aeb52f 798__thread_latency_insert(struct rb_root *root, struct work_atoms *data,
daa1d7a5 799 struct list_head *sort_list)
cdce9d73
FW
800{
801 struct rb_node **new = &(root->rb_node), *parent = NULL;
802
803 while (*new) {
39aeb52f 804 struct work_atoms *this;
daa1d7a5 805 int cmp;
cdce9d73 806
39aeb52f 807 this = container_of(*new, struct work_atoms, node);
cdce9d73 808 parent = *new;
daa1d7a5
FW
809
810 cmp = thread_lat_cmp(sort_list, data, this);
811
812 if (cmp > 0)
cdce9d73 813 new = &((*new)->rb_left);
cdce9d73 814 else
daa1d7a5 815 new = &((*new)->rb_right);
cdce9d73
FW
816 }
817
818 rb_link_node(&data->node, parent, new);
819 rb_insert_color(&data->node, root);
820}
821
0e9b07e5 822static int thread_atoms_insert(struct perf_sched *sched, struct thread *thread)
cdce9d73 823{
36479484 824 struct work_atoms *atoms = zalloc(sizeof(*atoms));
a116e05d
ACM
825 if (!atoms) {
826 pr_err("No memory at %s\n", __func__);
827 return -1;
828 }
cdce9d73 829
17562205 830 atoms->thread = thread;
39aeb52f 831 INIT_LIST_HEAD(&atoms->work_list);
0e9b07e5 832 __thread_latency_insert(&sched->atom_root, atoms, &sched->cmp_pid);
a116e05d 833 return 0;
cdce9d73
FW
834}
835
9ec3f4e4 836static char sched_out_state(u64 prev_state)
cdce9d73
FW
837{
838 const char *str = TASK_STATE_TO_CHAR_STR;
839
9ec3f4e4 840 return str[prev_state];
cdce9d73
FW
841}
842
a116e05d 843static int
39aeb52f 844add_sched_out_event(struct work_atoms *atoms,
845 char run_state,
846 u64 timestamp)
cdce9d73 847{
36479484 848 struct work_atom *atom = zalloc(sizeof(*atom));
a116e05d
ACM
849 if (!atom) {
850 pr_err("Non memory at %s", __func__);
851 return -1;
852 }
cdce9d73 853
aa1ab9d2
FW
854 atom->sched_out_time = timestamp;
855
39aeb52f 856 if (run_state == 'R') {
b1ffe8f3 857 atom->state = THREAD_WAIT_CPU;
aa1ab9d2 858 atom->wake_up_time = atom->sched_out_time;
c6ced611
FW
859 }
860
39aeb52f 861 list_add_tail(&atom->list, &atoms->work_list);
a116e05d 862 return 0;
cdce9d73
FW
863}
864
865static void
1d037ca1
IT
866add_runtime_event(struct work_atoms *atoms, u64 delta,
867 u64 timestamp __maybe_unused)
39aeb52f 868{
869 struct work_atom *atom;
870
871 BUG_ON(list_empty(&atoms->work_list));
872
873 atom = list_entry(atoms->work_list.prev, struct work_atom, list);
874
875 atom->runtime += delta;
876 atoms->total_runtime += delta;
877}
878
879static void
880add_sched_in_event(struct work_atoms *atoms, u64 timestamp)
cdce9d73 881{
b1ffe8f3 882 struct work_atom *atom;
66685678 883 u64 delta;
cdce9d73 884
39aeb52f 885 if (list_empty(&atoms->work_list))
cdce9d73
FW
886 return;
887
39aeb52f 888 atom = list_entry(atoms->work_list.prev, struct work_atom, list);
cdce9d73 889
b1ffe8f3 890 if (atom->state != THREAD_WAIT_CPU)
cdce9d73
FW
891 return;
892
b1ffe8f3
IM
893 if (timestamp < atom->wake_up_time) {
894 atom->state = THREAD_IGNORE;
cdce9d73
FW
895 return;
896 }
897
b1ffe8f3
IM
898 atom->state = THREAD_SCHED_IN;
899 atom->sched_in_time = timestamp;
66685678 900
b1ffe8f3 901 delta = atom->sched_in_time - atom->wake_up_time;
66685678 902 atoms->total_lat += delta;
3786310a 903 if (delta > atoms->max_lat) {
66685678 904 atoms->max_lat = delta;
3786310a
FW
905 atoms->max_lat_at = timestamp;
906 }
66685678 907 atoms->nb_atoms++;
cdce9d73
FW
908}
909
9ec3f4e4
ACM
910static int latency_switch_event(struct perf_sched *sched,
911 struct perf_evsel *evsel,
912 struct perf_sample *sample,
913 struct machine *machine)
cdce9d73 914{
9ec3f4e4
ACM
915 const u32 prev_pid = perf_evsel__intval(evsel, sample, "prev_pid"),
916 next_pid = perf_evsel__intval(evsel, sample, "next_pid");
917 const u64 prev_state = perf_evsel__intval(evsel, sample, "prev_state");
39aeb52f 918 struct work_atoms *out_events, *in_events;
cdce9d73 919 struct thread *sched_out, *sched_in;
7f7f8d0b
ACM
920 u64 timestamp0, timestamp = sample->time;
921 int cpu = sample->cpu;
ea92ed5a
IM
922 s64 delta;
923
39aeb52f 924 BUG_ON(cpu >= MAX_CPUS || cpu < 0);
ea92ed5a 925
0e9b07e5
ACM
926 timestamp0 = sched->cpu_last_switched[cpu];
927 sched->cpu_last_switched[cpu] = timestamp;
ea92ed5a
IM
928 if (timestamp0)
929 delta = timestamp - timestamp0;
930 else
931 delta = 0;
932
a116e05d
ACM
933 if (delta < 0) {
934 pr_err("hm, delta: %" PRIu64 " < 0 ?\n", delta);
935 return -1;
936 }
cdce9d73 937
314add6b
AH
938 sched_out = machine__findnew_thread(machine, 0, prev_pid);
939 sched_in = machine__findnew_thread(machine, 0, next_pid);
cdce9d73 940
0e9b07e5 941 out_events = thread_atoms_search(&sched->atom_root, sched_out, &sched->cmp_pid);
39aeb52f 942 if (!out_events) {
0e9b07e5 943 if (thread_atoms_insert(sched, sched_out))
a116e05d 944 return -1;
0e9b07e5 945 out_events = thread_atoms_search(&sched->atom_root, sched_out, &sched->cmp_pid);
a116e05d
ACM
946 if (!out_events) {
947 pr_err("out-event: Internal tree error");
948 return -1;
949 }
39aeb52f 950 }
9ec3f4e4 951 if (add_sched_out_event(out_events, sched_out_state(prev_state), timestamp))
a116e05d 952 return -1;
39aeb52f 953
0e9b07e5 954 in_events = thread_atoms_search(&sched->atom_root, sched_in, &sched->cmp_pid);
39aeb52f 955 if (!in_events) {
0e9b07e5 956 if (thread_atoms_insert(sched, sched_in))
a116e05d 957 return -1;
0e9b07e5 958 in_events = thread_atoms_search(&sched->atom_root, sched_in, &sched->cmp_pid);
a116e05d
ACM
959 if (!in_events) {
960 pr_err("in-event: Internal tree error");
961 return -1;
962 }
39aeb52f 963 /*
964 * Take came in we have not heard about yet,
965 * add in an initial atom in runnable state:
966 */
a116e05d
ACM
967 if (add_sched_out_event(in_events, 'R', timestamp))
968 return -1;
cdce9d73 969 }
39aeb52f 970 add_sched_in_event(in_events, timestamp);
a116e05d
ACM
971
972 return 0;
39aeb52f 973}
cdce9d73 974
9ec3f4e4
ACM
975static int latency_runtime_event(struct perf_sched *sched,
976 struct perf_evsel *evsel,
977 struct perf_sample *sample,
978 struct machine *machine)
39aeb52f 979{
9ec3f4e4
ACM
980 const u32 pid = perf_evsel__intval(evsel, sample, "pid");
981 const u64 runtime = perf_evsel__intval(evsel, sample, "runtime");
314add6b 982 struct thread *thread = machine__findnew_thread(machine, 0, pid);
0e9b07e5 983 struct work_atoms *atoms = thread_atoms_search(&sched->atom_root, thread, &sched->cmp_pid);
7f7f8d0b
ACM
984 u64 timestamp = sample->time;
985 int cpu = sample->cpu;
39aeb52f 986
987 BUG_ON(cpu >= MAX_CPUS || cpu < 0);
39aeb52f 988 if (!atoms) {
0e9b07e5 989 if (thread_atoms_insert(sched, thread))
a116e05d 990 return -1;
0e9b07e5 991 atoms = thread_atoms_search(&sched->atom_root, thread, &sched->cmp_pid);
a116e05d 992 if (!atoms) {
60b7d14a 993 pr_err("in-event: Internal tree error");
a116e05d
ACM
994 return -1;
995 }
996 if (add_sched_out_event(atoms, 'R', timestamp))
997 return -1;
cdce9d73
FW
998 }
999
9ec3f4e4 1000 add_runtime_event(atoms, runtime, timestamp);
a116e05d 1001 return 0;
cdce9d73
FW
1002}
1003
9ec3f4e4
ACM
1004static int latency_wakeup_event(struct perf_sched *sched,
1005 struct perf_evsel *evsel,
1006 struct perf_sample *sample,
1007 struct machine *machine)
cdce9d73 1008{
0680ee7d 1009 const u32 pid = perf_evsel__intval(evsel, sample, "pid");
39aeb52f 1010 struct work_atoms *atoms;
b1ffe8f3 1011 struct work_atom *atom;
cdce9d73 1012 struct thread *wakee;
7f7f8d0b 1013 u64 timestamp = sample->time;
cdce9d73 1014
314add6b 1015 wakee = machine__findnew_thread(machine, 0, pid);
0e9b07e5 1016 atoms = thread_atoms_search(&sched->atom_root, wakee, &sched->cmp_pid);
17562205 1017 if (!atoms) {
0e9b07e5 1018 if (thread_atoms_insert(sched, wakee))
a116e05d 1019 return -1;
0e9b07e5 1020 atoms = thread_atoms_search(&sched->atom_root, wakee, &sched->cmp_pid);
a116e05d 1021 if (!atoms) {
60b7d14a 1022 pr_err("wakeup-event: Internal tree error");
a116e05d
ACM
1023 return -1;
1024 }
1025 if (add_sched_out_event(atoms, 'S', timestamp))
1026 return -1;
cdce9d73
FW
1027 }
1028
39aeb52f 1029 BUG_ON(list_empty(&atoms->work_list));
cdce9d73 1030
39aeb52f 1031 atom = list_entry(atoms->work_list.prev, struct work_atom, list);
cdce9d73 1032
55ffb7a6 1033 /*
67d6259d
DY
1034 * As we do not guarantee the wakeup event happens when
1035 * task is out of run queue, also may happen when task is
1036 * on run queue and wakeup only change ->state to TASK_RUNNING,
1037 * then we should not set the ->wake_up_time when wake up a
1038 * task which is on run queue.
1039 *
55ffb7a6
MG
1040 * You WILL be missing events if you've recorded only
1041 * one CPU, or are only looking at only one, so don't
67d6259d 1042 * skip in this case.
55ffb7a6 1043 */
0e9b07e5 1044 if (sched->profile_cpu == -1 && atom->state != THREAD_SLEEPING)
67d6259d 1045 return 0;
cdce9d73 1046
0e9b07e5 1047 sched->nr_timestamps++;
ea57c4f5 1048 if (atom->sched_out_time > timestamp) {
0e9b07e5 1049 sched->nr_unordered_timestamps++;
a116e05d 1050 return 0;
ea57c4f5 1051 }
aa1ab9d2 1052
b1ffe8f3
IM
1053 atom->state = THREAD_WAIT_CPU;
1054 atom->wake_up_time = timestamp;
a116e05d 1055 return 0;
cdce9d73
FW
1056}
1057
9ec3f4e4
ACM
1058static int latency_migrate_task_event(struct perf_sched *sched,
1059 struct perf_evsel *evsel,
1060 struct perf_sample *sample,
1061 struct machine *machine)
55ffb7a6 1062{
9ec3f4e4 1063 const u32 pid = perf_evsel__intval(evsel, sample, "pid");
7f7f8d0b 1064 u64 timestamp = sample->time;
55ffb7a6
MG
1065 struct work_atoms *atoms;
1066 struct work_atom *atom;
1067 struct thread *migrant;
1068
1069 /*
1070 * Only need to worry about migration when profiling one CPU.
1071 */
0e9b07e5 1072 if (sched->profile_cpu == -1)
a116e05d 1073 return 0;
55ffb7a6 1074
314add6b 1075 migrant = machine__findnew_thread(machine, 0, pid);
0e9b07e5 1076 atoms = thread_atoms_search(&sched->atom_root, migrant, &sched->cmp_pid);
55ffb7a6 1077 if (!atoms) {
0e9b07e5 1078 if (thread_atoms_insert(sched, migrant))
a116e05d 1079 return -1;
b9c5143a 1080 register_pid(sched, migrant->tid, thread__comm_str(migrant));
0e9b07e5 1081 atoms = thread_atoms_search(&sched->atom_root, migrant, &sched->cmp_pid);
a116e05d 1082 if (!atoms) {
60b7d14a 1083 pr_err("migration-event: Internal tree error");
a116e05d
ACM
1084 return -1;
1085 }
1086 if (add_sched_out_event(atoms, 'R', timestamp))
1087 return -1;
55ffb7a6
MG
1088 }
1089
1090 BUG_ON(list_empty(&atoms->work_list));
1091
1092 atom = list_entry(atoms->work_list.prev, struct work_atom, list);
1093 atom->sched_in_time = atom->sched_out_time = atom->wake_up_time = timestamp;
1094
0e9b07e5 1095 sched->nr_timestamps++;
55ffb7a6
MG
1096
1097 if (atom->sched_out_time > timestamp)
0e9b07e5 1098 sched->nr_unordered_timestamps++;
a116e05d
ACM
1099
1100 return 0;
55ffb7a6
MG
1101}
1102
0e9b07e5 1103static void output_lat_thread(struct perf_sched *sched, struct work_atoms *work_list)
cdce9d73 1104{
cdce9d73
FW
1105 int i;
1106 int ret;
66685678 1107 u64 avg;
cdce9d73 1108
39aeb52f 1109 if (!work_list->nb_atoms)
cdce9d73 1110 return;
ea57c4f5
IM
1111 /*
1112 * Ignore idle threads:
1113 */
b9c5143a 1114 if (!strcmp(thread__comm_str(work_list->thread), "swapper"))
ea57c4f5 1115 return;
cdce9d73 1116
0e9b07e5
ACM
1117 sched->all_runtime += work_list->total_runtime;
1118 sched->all_count += work_list->nb_atoms;
66685678 1119
b9c5143a 1120 ret = printf(" %s:%d ", thread__comm_str(work_list->thread), work_list->thread->tid);
cdce9d73 1121
08f69e6c 1122 for (i = 0; i < 24 - ret; i++)
cdce9d73
FW
1123 printf(" ");
1124
39aeb52f 1125 avg = work_list->total_lat / work_list->nb_atoms;
cdce9d73 1126
80790e0b 1127 printf("|%11.3f ms |%9" PRIu64 " | avg:%9.3f ms | max:%9.3f ms | max at: %13.6f s\n",
39aeb52f 1128 (double)work_list->total_runtime / 1e6,
1129 work_list->nb_atoms, (double)avg / 1e6,
3786310a
FW
1130 (double)work_list->max_lat / 1e6,
1131 (double)work_list->max_lat_at / 1e9);
cdce9d73
FW
1132}
1133
39aeb52f 1134static int pid_cmp(struct work_atoms *l, struct work_atoms *r)
daa1d7a5 1135{
38051234 1136 if (l->thread->tid < r->thread->tid)
daa1d7a5 1137 return -1;
38051234 1138 if (l->thread->tid > r->thread->tid)
daa1d7a5
FW
1139 return 1;
1140
1141 return 0;
1142}
1143
39aeb52f 1144static int avg_cmp(struct work_atoms *l, struct work_atoms *r)
daa1d7a5
FW
1145{
1146 u64 avgl, avgr;
1147
1148 if (!l->nb_atoms)
1149 return -1;
1150
1151 if (!r->nb_atoms)
1152 return 1;
1153
1154 avgl = l->total_lat / l->nb_atoms;
1155 avgr = r->total_lat / r->nb_atoms;
1156
1157 if (avgl < avgr)
1158 return -1;
1159 if (avgl > avgr)
1160 return 1;
1161
1162 return 0;
1163}
1164
39aeb52f 1165static int max_cmp(struct work_atoms *l, struct work_atoms *r)
daa1d7a5
FW
1166{
1167 if (l->max_lat < r->max_lat)
1168 return -1;
1169 if (l->max_lat > r->max_lat)
1170 return 1;
1171
1172 return 0;
1173}
1174
39aeb52f 1175static int switch_cmp(struct work_atoms *l, struct work_atoms *r)
daa1d7a5
FW
1176{
1177 if (l->nb_atoms < r->nb_atoms)
1178 return -1;
1179 if (l->nb_atoms > r->nb_atoms)
1180 return 1;
1181
1182 return 0;
1183}
1184
39aeb52f 1185static int runtime_cmp(struct work_atoms *l, struct work_atoms *r)
daa1d7a5
FW
1186{
1187 if (l->total_runtime < r->total_runtime)
1188 return -1;
1189 if (l->total_runtime > r->total_runtime)
1190 return 1;
1191
1192 return 0;
1193}
1194
cbef79a8 1195static int sort_dimension__add(const char *tok, struct list_head *list)
daa1d7a5 1196{
0e9b07e5
ACM
1197 size_t i;
1198 static struct sort_dimension avg_sort_dimension = {
1199 .name = "avg",
1200 .cmp = avg_cmp,
1201 };
1202 static struct sort_dimension max_sort_dimension = {
1203 .name = "max",
1204 .cmp = max_cmp,
1205 };
1206 static struct sort_dimension pid_sort_dimension = {
1207 .name = "pid",
1208 .cmp = pid_cmp,
1209 };
1210 static struct sort_dimension runtime_sort_dimension = {
1211 .name = "runtime",
1212 .cmp = runtime_cmp,
1213 };
1214 static struct sort_dimension switch_sort_dimension = {
1215 .name = "switch",
1216 .cmp = switch_cmp,
1217 };
1218 struct sort_dimension *available_sorts[] = {
1219 &pid_sort_dimension,
1220 &avg_sort_dimension,
1221 &max_sort_dimension,
1222 &switch_sort_dimension,
1223 &runtime_sort_dimension,
1224 };
daa1d7a5 1225
0e9b07e5 1226 for (i = 0; i < ARRAY_SIZE(available_sorts); i++) {
daa1d7a5
FW
1227 if (!strcmp(available_sorts[i]->name, tok)) {
1228 list_add_tail(&available_sorts[i]->list, list);
1229
1230 return 0;
1231 }
1232 }
1233
1234 return -1;
1235}
1236
0e9b07e5 1237static void perf_sched__sort_lat(struct perf_sched *sched)
daa1d7a5
FW
1238{
1239 struct rb_node *node;
1240
1241 for (;;) {
39aeb52f 1242 struct work_atoms *data;
0e9b07e5 1243 node = rb_first(&sched->atom_root);
daa1d7a5
FW
1244 if (!node)
1245 break;
1246
0e9b07e5 1247 rb_erase(node, &sched->atom_root);
39aeb52f 1248 data = rb_entry(node, struct work_atoms, node);
0e9b07e5 1249 __thread_latency_insert(&sched->sorted_atom_root, data, &sched->sort_list);
daa1d7a5
FW
1250 }
1251}
1252
0e9b07e5 1253static int process_sched_wakeup_event(struct perf_tool *tool,
2b7fcbc5 1254 struct perf_evsel *evsel,
1d037ca1 1255 struct perf_sample *sample,
4218e673 1256 struct machine *machine)
419ab0d6 1257{
0e9b07e5 1258 struct perf_sched *sched = container_of(tool, struct perf_sched, tool);
419ab0d6 1259
9ec3f4e4
ACM
1260 if (sched->tp_handler->wakeup_event)
1261 return sched->tp_handler->wakeup_event(sched, evsel, sample, machine);
a116e05d 1262
2b7fcbc5 1263 return 0;
419ab0d6
FW
1264}
1265
9ec3f4e4
ACM
1266static int map_switch_event(struct perf_sched *sched, struct perf_evsel *evsel,
1267 struct perf_sample *sample, struct machine *machine)
0ec04e16 1268{
9d372ca5
DY
1269 const u32 next_pid = perf_evsel__intval(evsel, sample, "next_pid");
1270 struct thread *sched_in;
0ec04e16 1271 int new_shortname;
7f7f8d0b 1272 u64 timestamp0, timestamp = sample->time;
0ec04e16 1273 s64 delta;
7f7f8d0b 1274 int cpu, this_cpu = sample->cpu;
0ec04e16
IM
1275
1276 BUG_ON(this_cpu >= MAX_CPUS || this_cpu < 0);
1277
0e9b07e5
ACM
1278 if (this_cpu > sched->max_cpu)
1279 sched->max_cpu = this_cpu;
0ec04e16 1280
0e9b07e5
ACM
1281 timestamp0 = sched->cpu_last_switched[this_cpu];
1282 sched->cpu_last_switched[this_cpu] = timestamp;
0ec04e16
IM
1283 if (timestamp0)
1284 delta = timestamp - timestamp0;
1285 else
1286 delta = 0;
1287
a116e05d 1288 if (delta < 0) {
60b7d14a 1289 pr_err("hm, delta: %" PRIu64 " < 0 ?\n", delta);
a116e05d
ACM
1290 return -1;
1291 }
0ec04e16 1292
314add6b 1293 sched_in = machine__findnew_thread(machine, 0, next_pid);
0ec04e16 1294
0e9b07e5 1295 sched->curr_thread[this_cpu] = sched_in;
0ec04e16
IM
1296
1297 printf(" ");
1298
1299 new_shortname = 0;
1300 if (!sched_in->shortname[0]) {
6bcab4e1
D
1301 if (!strcmp(thread__comm_str(sched_in), "swapper")) {
1302 /*
1303 * Don't allocate a letter-number for swapper:0
1304 * as a shortname. Instead, we use '.' for it.
1305 */
1306 sched_in->shortname[0] = '.';
1307 sched_in->shortname[1] = ' ';
0ec04e16 1308 } else {
6bcab4e1
D
1309 sched_in->shortname[0] = sched->next_shortname1;
1310 sched_in->shortname[1] = sched->next_shortname2;
1311
1312 if (sched->next_shortname1 < 'Z') {
1313 sched->next_shortname1++;
0ec04e16 1314 } else {
6bcab4e1
D
1315 sched->next_shortname1 = 'A';
1316 if (sched->next_shortname2 < '9')
1317 sched->next_shortname2++;
1318 else
1319 sched->next_shortname2 = '0';
0ec04e16
IM
1320 }
1321 }
1322 new_shortname = 1;
1323 }
1324
0e9b07e5 1325 for (cpu = 0; cpu <= sched->max_cpu; cpu++) {
0ec04e16
IM
1326 if (cpu != this_cpu)
1327 printf(" ");
1328 else
1329 printf("*");
1330
6bcab4e1
D
1331 if (sched->curr_thread[cpu])
1332 printf("%2s ", sched->curr_thread[cpu]->shortname);
1333 else
0ec04e16
IM
1334 printf(" ");
1335 }
1336
1337 printf(" %12.6f secs ", (double)timestamp/1e9);
1338 if (new_shortname) {
1339 printf("%s => %s:%d\n",
b9c5143a 1340 sched_in->shortname, thread__comm_str(sched_in), sched_in->tid);
0ec04e16
IM
1341 } else {
1342 printf("\n");
1343 }
a116e05d
ACM
1344
1345 return 0;
0ec04e16
IM
1346}
1347
0e9b07e5 1348static int process_sched_switch_event(struct perf_tool *tool,
2b7fcbc5 1349 struct perf_evsel *evsel,
1d037ca1 1350 struct perf_sample *sample,
4218e673 1351 struct machine *machine)
419ab0d6 1352{
0e9b07e5 1353 struct perf_sched *sched = container_of(tool, struct perf_sched, tool);
a116e05d 1354 int this_cpu = sample->cpu, err = 0;
2b7fcbc5
ACM
1355 u32 prev_pid = perf_evsel__intval(evsel, sample, "prev_pid"),
1356 next_pid = perf_evsel__intval(evsel, sample, "next_pid");
419ab0d6 1357
0e9b07e5 1358 if (sched->curr_pid[this_cpu] != (u32)-1) {
c8a37751
IM
1359 /*
1360 * Are we trying to switch away a PID that is
1361 * not current?
1362 */
2b7fcbc5 1363 if (sched->curr_pid[this_cpu] != prev_pid)
0e9b07e5 1364 sched->nr_context_switch_bugs++;
c8a37751 1365 }
c8a37751 1366
9ec3f4e4
ACM
1367 if (sched->tp_handler->switch_event)
1368 err = sched->tp_handler->switch_event(sched, evsel, sample, machine);
2b7fcbc5
ACM
1369
1370 sched->curr_pid[this_cpu] = next_pid;
a116e05d 1371 return err;
419ab0d6
FW
1372}
1373
0e9b07e5 1374static int process_sched_runtime_event(struct perf_tool *tool,
2b7fcbc5 1375 struct perf_evsel *evsel,
1d037ca1 1376 struct perf_sample *sample,
4218e673 1377 struct machine *machine)
39aeb52f 1378{
0e9b07e5 1379 struct perf_sched *sched = container_of(tool, struct perf_sched, tool);
39aeb52f 1380
9ec3f4e4
ACM
1381 if (sched->tp_handler->runtime_event)
1382 return sched->tp_handler->runtime_event(sched, evsel, sample, machine);
a116e05d 1383
2b7fcbc5 1384 return 0;
39aeb52f 1385}
1386
cb627505
DA
1387static int perf_sched__process_fork_event(struct perf_tool *tool,
1388 union perf_event *event,
1389 struct perf_sample *sample,
1390 struct machine *machine)
fbf94829 1391{
0e9b07e5 1392 struct perf_sched *sched = container_of(tool, struct perf_sched, tool);
46538818 1393
cb627505
DA
1394 /* run the fork event through the perf machineruy */
1395 perf_event__process_fork(tool, event, sample, machine);
1396
1397 /* and then run additional processing needed for this command */
9ec3f4e4 1398 if (sched->tp_handler->fork_event)
cb627505 1399 return sched->tp_handler->fork_event(sched, event, machine);
a116e05d 1400
2b7fcbc5 1401 return 0;
fbf94829
IM
1402}
1403
0e9b07e5 1404static int process_sched_migrate_task_event(struct perf_tool *tool,
2b7fcbc5 1405 struct perf_evsel *evsel,
1d037ca1 1406 struct perf_sample *sample,
4218e673 1407 struct machine *machine)
55ffb7a6 1408{
0e9b07e5 1409 struct perf_sched *sched = container_of(tool, struct perf_sched, tool);
55ffb7a6 1410
9ec3f4e4
ACM
1411 if (sched->tp_handler->migrate_task_event)
1412 return sched->tp_handler->migrate_task_event(sched, evsel, sample, machine);
a116e05d 1413
2b7fcbc5 1414 return 0;
55ffb7a6
MG
1415}
1416
a116e05d 1417typedef int (*tracepoint_handler)(struct perf_tool *tool,
2b7fcbc5 1418 struct perf_evsel *evsel,
a116e05d 1419 struct perf_sample *sample,
4218e673 1420 struct machine *machine);
ec156764 1421
1d037ca1
IT
1422static int perf_sched__process_tracepoint_sample(struct perf_tool *tool __maybe_unused,
1423 union perf_event *event __maybe_unused,
ee29be62
ACM
1424 struct perf_sample *sample,
1425 struct perf_evsel *evsel,
1426 struct machine *machine)
0a02ad93 1427{
a116e05d 1428 int err = 0;
0a02ad93 1429
ee29be62 1430 evsel->hists.stats.total_period += sample->period;
1844dbcb 1431 hists__inc_nr_samples(&evsel->hists, true);
f39cdf25 1432
744a9719
ACM
1433 if (evsel->handler != NULL) {
1434 tracepoint_handler f = evsel->handler;
2b7fcbc5 1435 err = f(tool, evsel, sample, machine);
ee29be62 1436 }
0a02ad93 1437
a116e05d 1438 return err;
0a02ad93
IM
1439}
1440
ad9def7c 1441static int perf_sched__read_events(struct perf_sched *sched,
0e9b07e5 1442 struct perf_session **psession)
0a02ad93 1443{
ee29be62
ACM
1444 const struct perf_evsel_str_handler handlers[] = {
1445 { "sched:sched_switch", process_sched_switch_event, },
1446 { "sched:sched_stat_runtime", process_sched_runtime_event, },
1447 { "sched:sched_wakeup", process_sched_wakeup_event, },
1448 { "sched:sched_wakeup_new", process_sched_wakeup_event, },
ee29be62
ACM
1449 { "sched:sched_migrate_task", process_sched_migrate_task_event, },
1450 };
da378962 1451 struct perf_session *session;
f5fc1412
JO
1452 struct perf_data_file file = {
1453 .path = input_name,
1454 .mode = PERF_DATA_MODE_READ,
1455 };
da378962 1456
f5fc1412 1457 session = perf_session__new(&file, false, &sched->tool);
a116e05d
ACM
1458 if (session == NULL) {
1459 pr_debug("No Memory for session\n");
1460 return -1;
1461 }
94c744b6 1462
a116e05d
ACM
1463 if (perf_session__set_tracepoints_handlers(session, handlers))
1464 goto out_delete;
ee29be62 1465
cee75ac7 1466 if (perf_session__has_traces(session, "record -R")) {
0e9b07e5 1467 int err = perf_session__process_events(session, &sched->tool);
a116e05d
ACM
1468 if (err) {
1469 pr_err("Failed to process events, error %d", err);
1470 goto out_delete;
1471 }
4c09bafa 1472
28a6b6aa
ACM
1473 sched->nr_events = session->stats.nr_events[0];
1474 sched->nr_lost_events = session->stats.total_lost;
1475 sched->nr_lost_chunks = session->stats.nr_events[PERF_RECORD_LOST];
cee75ac7 1476 }
d549c769 1477
4c09bafa
JO
1478 if (psession)
1479 *psession = session;
ad9def7c
DA
1480 else
1481 perf_session__delete(session);
a116e05d
ACM
1482
1483 return 0;
1484
1485out_delete:
1486 perf_session__delete(session);
1487 return -1;
0a02ad93
IM
1488}
1489
0e9b07e5 1490static void print_bad_events(struct perf_sched *sched)
0ec04e16 1491{
0e9b07e5 1492 if (sched->nr_unordered_timestamps && sched->nr_timestamps) {
0ec04e16 1493 printf(" INFO: %.3f%% unordered timestamps (%ld out of %ld)\n",
0e9b07e5
ACM
1494 (double)sched->nr_unordered_timestamps/(double)sched->nr_timestamps*100.0,
1495 sched->nr_unordered_timestamps, sched->nr_timestamps);
0ec04e16 1496 }
0e9b07e5 1497 if (sched->nr_lost_events && sched->nr_events) {
0ec04e16 1498 printf(" INFO: %.3f%% lost events (%ld out of %ld, in %ld chunks)\n",
0e9b07e5
ACM
1499 (double)sched->nr_lost_events/(double)sched->nr_events * 100.0,
1500 sched->nr_lost_events, sched->nr_events, sched->nr_lost_chunks);
0ec04e16 1501 }
0e9b07e5 1502 if (sched->nr_context_switch_bugs && sched->nr_timestamps) {
0ec04e16 1503 printf(" INFO: %.3f%% context switch bugs (%ld out of %ld)",
0e9b07e5
ACM
1504 (double)sched->nr_context_switch_bugs/(double)sched->nr_timestamps*100.0,
1505 sched->nr_context_switch_bugs, sched->nr_timestamps);
1506 if (sched->nr_lost_events)
0ec04e16
IM
1507 printf(" (due to lost events?)");
1508 printf("\n");
1509 }
1510}
1511
0e9b07e5 1512static int perf_sched__lat(struct perf_sched *sched)
0ec04e16
IM
1513{
1514 struct rb_node *next;
4c09bafa 1515 struct perf_session *session;
0ec04e16
IM
1516
1517 setup_pager();
ad9def7c
DA
1518
1519 /* save session -- references to threads are held in work_list */
1520 if (perf_sched__read_events(sched, &session))
a116e05d 1521 return -1;
ad9def7c 1522
0e9b07e5 1523 perf_sched__sort_lat(sched);
0ec04e16 1524
80790e0b
RR
1525 printf("\n -----------------------------------------------------------------------------------------------------------------\n");
1526 printf(" Task | Runtime ms | Switches | Average delay ms | Maximum delay ms | Maximum delay at |\n");
1527 printf(" -----------------------------------------------------------------------------------------------------------------\n");
0ec04e16 1528
0e9b07e5 1529 next = rb_first(&sched->sorted_atom_root);
0ec04e16
IM
1530
1531 while (next) {
1532 struct work_atoms *work_list;
1533
1534 work_list = rb_entry(next, struct work_atoms, node);
0e9b07e5 1535 output_lat_thread(sched, work_list);
0ec04e16
IM
1536 next = rb_next(next);
1537 }
1538
80790e0b 1539 printf(" -----------------------------------------------------------------------------------------------------------------\n");
9486aa38 1540 printf(" TOTAL: |%11.3f ms |%9" PRIu64 " |\n",
0e9b07e5 1541 (double)sched->all_runtime / 1e6, sched->all_count);
0ec04e16
IM
1542
1543 printf(" ---------------------------------------------------\n");
1544
0e9b07e5 1545 print_bad_events(sched);
0ec04e16
IM
1546 printf("\n");
1547
4c09bafa 1548 perf_session__delete(session);
a116e05d 1549 return 0;
0ec04e16
IM
1550}
1551
0e9b07e5 1552static int perf_sched__map(struct perf_sched *sched)
0ec04e16 1553{
0e9b07e5 1554 sched->max_cpu = sysconf(_SC_NPROCESSORS_CONF);
40749d0f 1555
0ec04e16 1556 setup_pager();
ad9def7c 1557 if (perf_sched__read_events(sched, NULL))
a116e05d 1558 return -1;
0e9b07e5 1559 print_bad_events(sched);
a116e05d 1560 return 0;
0ec04e16
IM
1561}
1562
0e9b07e5 1563static int perf_sched__replay(struct perf_sched *sched)
0ec04e16
IM
1564{
1565 unsigned long i;
1566
0e9b07e5
ACM
1567 calibrate_run_measurement_overhead(sched);
1568 calibrate_sleep_measurement_overhead(sched);
0ec04e16 1569
0e9b07e5 1570 test_calibrations(sched);
0ec04e16 1571
ad9def7c 1572 if (perf_sched__read_events(sched, NULL))
a116e05d 1573 return -1;
0ec04e16 1574
0e9b07e5
ACM
1575 printf("nr_run_events: %ld\n", sched->nr_run_events);
1576 printf("nr_sleep_events: %ld\n", sched->nr_sleep_events);
1577 printf("nr_wakeup_events: %ld\n", sched->nr_wakeup_events);
0ec04e16 1578
0e9b07e5
ACM
1579 if (sched->targetless_wakeups)
1580 printf("target-less wakeups: %ld\n", sched->targetless_wakeups);
1581 if (sched->multitarget_wakeups)
1582 printf("multi-target wakeups: %ld\n", sched->multitarget_wakeups);
1583 if (sched->nr_run_events_optimized)
0ec04e16 1584 printf("run atoms optimized: %ld\n",
0e9b07e5 1585 sched->nr_run_events_optimized);
0ec04e16 1586
0e9b07e5
ACM
1587 print_task_traces(sched);
1588 add_cross_task_wakeups(sched);
0ec04e16 1589
0e9b07e5 1590 create_tasks(sched);
0ec04e16 1591 printf("------------------------------------------------------------\n");
0e9b07e5
ACM
1592 for (i = 0; i < sched->replay_repeat; i++)
1593 run_one_test(sched);
a116e05d
ACM
1594
1595 return 0;
0ec04e16
IM
1596}
1597
0e9b07e5
ACM
1598static void setup_sorting(struct perf_sched *sched, const struct option *options,
1599 const char * const usage_msg[])
daa1d7a5 1600{
0e9b07e5 1601 char *tmp, *tok, *str = strdup(sched->sort_order);
daa1d7a5
FW
1602
1603 for (tok = strtok_r(str, ", ", &tmp);
1604 tok; tok = strtok_r(NULL, ", ", &tmp)) {
0e9b07e5 1605 if (sort_dimension__add(tok, &sched->sort_list) < 0) {
daa1d7a5 1606 error("Unknown --sort key: `%s'", tok);
0e9b07e5 1607 usage_with_options(usage_msg, options);
daa1d7a5
FW
1608 }
1609 }
1610
1611 free(str);
1612
0e9b07e5 1613 sort_dimension__add("pid", &sched->cmp_pid);
daa1d7a5
FW
1614}
1615
1fc35b29
IM
1616static int __cmd_record(int argc, const char **argv)
1617{
1618 unsigned int rec_argc, i, j;
1619 const char **rec_argv;
0e9b07e5
ACM
1620 const char * const record_args[] = {
1621 "record",
1622 "-a",
1623 "-R",
0e9b07e5
ACM
1624 "-m", "1024",
1625 "-c", "1",
1626 "-e", "sched:sched_switch",
1627 "-e", "sched:sched_stat_wait",
1628 "-e", "sched:sched_stat_sleep",
1629 "-e", "sched:sched_stat_iowait",
1630 "-e", "sched:sched_stat_runtime",
0e9b07e5
ACM
1631 "-e", "sched:sched_process_fork",
1632 "-e", "sched:sched_wakeup",
7fff9597 1633 "-e", "sched:sched_wakeup_new",
0e9b07e5
ACM
1634 "-e", "sched:sched_migrate_task",
1635 };
1fc35b29
IM
1636
1637 rec_argc = ARRAY_SIZE(record_args) + argc - 1;
1638 rec_argv = calloc(rec_argc + 1, sizeof(char *));
1639
e462dc55 1640 if (rec_argv == NULL)
ce47dc56
CS
1641 return -ENOMEM;
1642
1fc35b29
IM
1643 for (i = 0; i < ARRAY_SIZE(record_args); i++)
1644 rec_argv[i] = strdup(record_args[i]);
1645
1646 for (j = 1; j < (unsigned int)argc; j++, i++)
1647 rec_argv[i] = argv[j];
1648
1649 BUG_ON(i != rec_argc);
1650
1651 return cmd_record(i, rec_argv, NULL);
1652}
1653
1d037ca1 1654int cmd_sched(int argc, const char **argv, const char *prefix __maybe_unused)
0a02ad93 1655{
8a39df8f
AH
1656 const char default_sort_order[] = "avg, max, switch, runtime";
1657 struct perf_sched sched = {
1658 .tool = {
1659 .sample = perf_sched__process_tracepoint_sample,
1660 .comm = perf_event__process_comm,
1661 .lost = perf_event__process_lost,
1662 .fork = perf_sched__process_fork_event,
1663 .ordered_samples = true,
1664 },
1665 .cmp_pid = LIST_HEAD_INIT(sched.cmp_pid),
1666 .sort_list = LIST_HEAD_INIT(sched.sort_list),
1667 .start_work_mutex = PTHREAD_MUTEX_INITIALIZER,
1668 .work_done_wait_mutex = PTHREAD_MUTEX_INITIALIZER,
8a39df8f
AH
1669 .sort_order = default_sort_order,
1670 .replay_repeat = 10,
1671 .profile_cpu = -1,
1672 .next_shortname1 = 'A',
1673 .next_shortname2 = '0',
1674 };
0e9b07e5
ACM
1675 const struct option latency_options[] = {
1676 OPT_STRING('s', "sort", &sched.sort_order, "key[,key2...]",
1677 "sort by key(s): runtime, switch, avg, max"),
1678 OPT_INCR('v', "verbose", &verbose,
1679 "be more verbose (show symbol address, etc)"),
1680 OPT_INTEGER('C', "CPU", &sched.profile_cpu,
1681 "CPU to profile on"),
1682 OPT_BOOLEAN('D', "dump-raw-trace", &dump_trace,
1683 "dump raw trace in ASCII"),
1684 OPT_END()
1685 };
1686 const struct option replay_options[] = {
1687 OPT_UINTEGER('r', "repeat", &sched.replay_repeat,
1688 "repeat the workload replay N times (-1: infinite)"),
1689 OPT_INCR('v', "verbose", &verbose,
1690 "be more verbose (show symbol address, etc)"),
1691 OPT_BOOLEAN('D', "dump-raw-trace", &dump_trace,
1692 "dump raw trace in ASCII"),
1693 OPT_END()
1694 };
1695 const struct option sched_options[] = {
70cb4e96 1696 OPT_STRING('i', "input", &input_name, "file",
0e9b07e5
ACM
1697 "input file name"),
1698 OPT_INCR('v', "verbose", &verbose,
1699 "be more verbose (show symbol address, etc)"),
1700 OPT_BOOLEAN('D', "dump-raw-trace", &dump_trace,
1701 "dump raw trace in ASCII"),
1702 OPT_END()
1703 };
1704 const char * const latency_usage[] = {
1705 "perf sched latency [<options>]",
1706 NULL
1707 };
1708 const char * const replay_usage[] = {
1709 "perf sched replay [<options>]",
1710 NULL
1711 };
a83edb2d
RR
1712 const char *const sched_subcommands[] = { "record", "latency", "map",
1713 "replay", "script", NULL };
1714 const char *sched_usage[] = {
1715 NULL,
0e9b07e5
ACM
1716 NULL
1717 };
1718 struct trace_sched_handler lat_ops = {
1719 .wakeup_event = latency_wakeup_event,
1720 .switch_event = latency_switch_event,
1721 .runtime_event = latency_runtime_event,
0e9b07e5
ACM
1722 .migrate_task_event = latency_migrate_task_event,
1723 };
1724 struct trace_sched_handler map_ops = {
1725 .switch_event = map_switch_event,
1726 };
1727 struct trace_sched_handler replay_ops = {
1728 .wakeup_event = replay_wakeup_event,
1729 .switch_event = replay_switch_event,
1730 .fork_event = replay_fork_event,
1731 };
156a2b02
AH
1732 unsigned int i;
1733
1734 for (i = 0; i < ARRAY_SIZE(sched.curr_pid); i++)
1735 sched.curr_pid[i] = -1;
0e9b07e5 1736
a83edb2d
RR
1737 argc = parse_options_subcommand(argc, argv, sched_options, sched_subcommands,
1738 sched_usage, PARSE_OPT_STOP_AT_NON_OPTION);
f2858d8a
IM
1739 if (!argc)
1740 usage_with_options(sched_usage, sched_options);
0a02ad93 1741
c0777c5a 1742 /*
133dc4c3 1743 * Aliased to 'perf script' for now:
c0777c5a 1744 */
133dc4c3
IM
1745 if (!strcmp(argv[0], "script"))
1746 return cmd_script(argc, argv, prefix);
c0777c5a 1747
75be6cf4 1748 symbol__init();
1fc35b29
IM
1749 if (!strncmp(argv[0], "rec", 3)) {
1750 return __cmd_record(argc, argv);
1751 } else if (!strncmp(argv[0], "lat", 3)) {
0e9b07e5 1752 sched.tp_handler = &lat_ops;
f2858d8a
IM
1753 if (argc > 1) {
1754 argc = parse_options(argc, argv, latency_options, latency_usage, 0);
1755 if (argc)
1756 usage_with_options(latency_usage, latency_options);
f2858d8a 1757 }
0e9b07e5
ACM
1758 setup_sorting(&sched, latency_options, latency_usage);
1759 return perf_sched__lat(&sched);
0ec04e16 1760 } else if (!strcmp(argv[0], "map")) {
0e9b07e5
ACM
1761 sched.tp_handler = &map_ops;
1762 setup_sorting(&sched, latency_options, latency_usage);
1763 return perf_sched__map(&sched);
f2858d8a 1764 } else if (!strncmp(argv[0], "rep", 3)) {
0e9b07e5 1765 sched.tp_handler = &replay_ops;
f2858d8a
IM
1766 if (argc) {
1767 argc = parse_options(argc, argv, replay_options, replay_usage, 0);
1768 if (argc)
1769 usage_with_options(replay_usage, replay_options);
1770 }
0e9b07e5 1771 return perf_sched__replay(&sched);
f2858d8a
IM
1772 } else {
1773 usage_with_options(sched_usage, sched_options);
1774 }
1775
ec156764 1776 return 0;
0a02ad93 1777}