sched.h 10 KB

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  1. #undef TRACE_SYSTEM
  2. #define TRACE_SYSTEM sched
  3. #if !defined(_TRACE_SCHED_H) || defined(TRACE_HEADER_MULTI_READ)
  4. #define _TRACE_SCHED_H
  5. #include <linux/sched.h>
  6. #include <linux/tracepoint.h>
  7. /*
  8. * Tracepoint for calling kthread_stop, performed to end a kthread:
  9. */
  10. TRACE_EVENT(sched_kthread_stop,
  11. TP_PROTO(struct task_struct *t),
  12. TP_ARGS(t),
  13. TP_STRUCT__entry(
  14. __array( char, comm, TASK_COMM_LEN )
  15. __field( pid_t, pid )
  16. ),
  17. TP_fast_assign(
  18. memcpy(__entry->comm, t->comm, TASK_COMM_LEN);
  19. __entry->pid = t->pid;
  20. ),
  21. TP_printk("task %s:%d", __entry->comm, __entry->pid)
  22. );
  23. /*
  24. * Tracepoint for the return value of the kthread stopping:
  25. */
  26. TRACE_EVENT(sched_kthread_stop_ret,
  27. TP_PROTO(int ret),
  28. TP_ARGS(ret),
  29. TP_STRUCT__entry(
  30. __field( int, ret )
  31. ),
  32. TP_fast_assign(
  33. __entry->ret = ret;
  34. ),
  35. TP_printk("ret %d", __entry->ret)
  36. );
  37. /*
  38. * Tracepoint for waiting on task to unschedule:
  39. *
  40. * (NOTE: the 'rq' argument is not used by generic trace events,
  41. * but used by the latency tracer plugin. )
  42. */
  43. TRACE_EVENT(sched_wait_task,
  44. TP_PROTO(struct rq *rq, struct task_struct *p),
  45. TP_ARGS(rq, p),
  46. TP_STRUCT__entry(
  47. __array( char, comm, TASK_COMM_LEN )
  48. __field( pid_t, pid )
  49. __field( int, prio )
  50. ),
  51. TP_fast_assign(
  52. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  53. __entry->pid = p->pid;
  54. __entry->prio = p->prio;
  55. ),
  56. TP_printk("task %s:%d [%d]",
  57. __entry->comm, __entry->pid, __entry->prio)
  58. );
  59. /*
  60. * Tracepoint for waking up a task:
  61. *
  62. * (NOTE: the 'rq' argument is not used by generic trace events,
  63. * but used by the latency tracer plugin. )
  64. */
  65. TRACE_EVENT(sched_wakeup,
  66. TP_PROTO(struct rq *rq, struct task_struct *p, int success),
  67. TP_ARGS(rq, p, success),
  68. TP_STRUCT__entry(
  69. __array( char, comm, TASK_COMM_LEN )
  70. __field( pid_t, pid )
  71. __field( int, prio )
  72. __field( int, success )
  73. __field( int, cpu )
  74. ),
  75. TP_fast_assign(
  76. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  77. __entry->pid = p->pid;
  78. __entry->prio = p->prio;
  79. __entry->success = success;
  80. __entry->cpu = task_cpu(p);
  81. ),
  82. TP_printk("task %s:%d [%d] success=%d [%03d]",
  83. __entry->comm, __entry->pid, __entry->prio,
  84. __entry->success, __entry->cpu)
  85. );
  86. /*
  87. * Tracepoint for waking up a new task:
  88. *
  89. * (NOTE: the 'rq' argument is not used by generic trace events,
  90. * but used by the latency tracer plugin. )
  91. */
  92. TRACE_EVENT(sched_wakeup_new,
  93. TP_PROTO(struct rq *rq, struct task_struct *p, int success),
  94. TP_ARGS(rq, p, success),
  95. TP_STRUCT__entry(
  96. __array( char, comm, TASK_COMM_LEN )
  97. __field( pid_t, pid )
  98. __field( int, prio )
  99. __field( int, success )
  100. __field( int, cpu )
  101. ),
  102. TP_fast_assign(
  103. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  104. __entry->pid = p->pid;
  105. __entry->prio = p->prio;
  106. __entry->success = success;
  107. __entry->cpu = task_cpu(p);
  108. ),
  109. TP_printk("task %s:%d [%d] success=%d [%03d]",
  110. __entry->comm, __entry->pid, __entry->prio,
  111. __entry->success, __entry->cpu)
  112. );
  113. /*
  114. * Tracepoint for task switches, performed by the scheduler:
  115. *
  116. * (NOTE: the 'rq' argument is not used by generic trace events,
  117. * but used by the latency tracer plugin. )
  118. */
  119. TRACE_EVENT(sched_switch,
  120. TP_PROTO(struct rq *rq, struct task_struct *prev,
  121. struct task_struct *next),
  122. TP_ARGS(rq, prev, next),
  123. TP_STRUCT__entry(
  124. __array( char, prev_comm, TASK_COMM_LEN )
  125. __field( pid_t, prev_pid )
  126. __field( int, prev_prio )
  127. __field( long, prev_state )
  128. __array( char, next_comm, TASK_COMM_LEN )
  129. __field( pid_t, next_pid )
  130. __field( int, next_prio )
  131. ),
  132. TP_fast_assign(
  133. memcpy(__entry->next_comm, next->comm, TASK_COMM_LEN);
  134. __entry->prev_pid = prev->pid;
  135. __entry->prev_prio = prev->prio;
  136. __entry->prev_state = prev->state;
  137. memcpy(__entry->prev_comm, prev->comm, TASK_COMM_LEN);
  138. __entry->next_pid = next->pid;
  139. __entry->next_prio = next->prio;
  140. ),
  141. TP_printk("task %s:%d [%d] (%s) ==> %s:%d [%d]",
  142. __entry->prev_comm, __entry->prev_pid, __entry->prev_prio,
  143. __entry->prev_state ?
  144. __print_flags(__entry->prev_state, "|",
  145. { 1, "S"} , { 2, "D" }, { 4, "T" }, { 8, "t" },
  146. { 16, "Z" }, { 32, "X" }, { 64, "x" },
  147. { 128, "W" }) : "R",
  148. __entry->next_comm, __entry->next_pid, __entry->next_prio)
  149. );
  150. /*
  151. * Tracepoint for a task being migrated:
  152. */
  153. TRACE_EVENT(sched_migrate_task,
  154. TP_PROTO(struct task_struct *p, int dest_cpu),
  155. TP_ARGS(p, dest_cpu),
  156. TP_STRUCT__entry(
  157. __array( char, comm, TASK_COMM_LEN )
  158. __field( pid_t, pid )
  159. __field( int, prio )
  160. __field( int, orig_cpu )
  161. __field( int, dest_cpu )
  162. ),
  163. TP_fast_assign(
  164. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  165. __entry->pid = p->pid;
  166. __entry->prio = p->prio;
  167. __entry->orig_cpu = task_cpu(p);
  168. __entry->dest_cpu = dest_cpu;
  169. ),
  170. TP_printk("task %s:%d [%d] from: %d to: %d",
  171. __entry->comm, __entry->pid, __entry->prio,
  172. __entry->orig_cpu, __entry->dest_cpu)
  173. );
  174. /*
  175. * Tracepoint for freeing a task:
  176. */
  177. TRACE_EVENT(sched_process_free,
  178. TP_PROTO(struct task_struct *p),
  179. TP_ARGS(p),
  180. TP_STRUCT__entry(
  181. __array( char, comm, TASK_COMM_LEN )
  182. __field( pid_t, pid )
  183. __field( int, prio )
  184. ),
  185. TP_fast_assign(
  186. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  187. __entry->pid = p->pid;
  188. __entry->prio = p->prio;
  189. ),
  190. TP_printk("task %s:%d [%d]",
  191. __entry->comm, __entry->pid, __entry->prio)
  192. );
  193. /*
  194. * Tracepoint for a task exiting:
  195. */
  196. TRACE_EVENT(sched_process_exit,
  197. TP_PROTO(struct task_struct *p),
  198. TP_ARGS(p),
  199. TP_STRUCT__entry(
  200. __array( char, comm, TASK_COMM_LEN )
  201. __field( pid_t, pid )
  202. __field( int, prio )
  203. ),
  204. TP_fast_assign(
  205. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  206. __entry->pid = p->pid;
  207. __entry->prio = p->prio;
  208. ),
  209. TP_printk("task %s:%d [%d]",
  210. __entry->comm, __entry->pid, __entry->prio)
  211. );
  212. /*
  213. * Tracepoint for a waiting task:
  214. */
  215. TRACE_EVENT(sched_process_wait,
  216. TP_PROTO(struct pid *pid),
  217. TP_ARGS(pid),
  218. TP_STRUCT__entry(
  219. __array( char, comm, TASK_COMM_LEN )
  220. __field( pid_t, pid )
  221. __field( int, prio )
  222. ),
  223. TP_fast_assign(
  224. memcpy(__entry->comm, current->comm, TASK_COMM_LEN);
  225. __entry->pid = pid_nr(pid);
  226. __entry->prio = current->prio;
  227. ),
  228. TP_printk("task %s:%d [%d]",
  229. __entry->comm, __entry->pid, __entry->prio)
  230. );
  231. /*
  232. * Tracepoint for do_fork:
  233. */
  234. TRACE_EVENT(sched_process_fork,
  235. TP_PROTO(struct task_struct *parent, struct task_struct *child),
  236. TP_ARGS(parent, child),
  237. TP_STRUCT__entry(
  238. __array( char, parent_comm, TASK_COMM_LEN )
  239. __field( pid_t, parent_pid )
  240. __array( char, child_comm, TASK_COMM_LEN )
  241. __field( pid_t, child_pid )
  242. ),
  243. TP_fast_assign(
  244. memcpy(__entry->parent_comm, parent->comm, TASK_COMM_LEN);
  245. __entry->parent_pid = parent->pid;
  246. memcpy(__entry->child_comm, child->comm, TASK_COMM_LEN);
  247. __entry->child_pid = child->pid;
  248. ),
  249. TP_printk("parent %s:%d child %s:%d",
  250. __entry->parent_comm, __entry->parent_pid,
  251. __entry->child_comm, __entry->child_pid)
  252. );
  253. /*
  254. * Tracepoint for sending a signal:
  255. */
  256. TRACE_EVENT(sched_signal_send,
  257. TP_PROTO(int sig, struct task_struct *p),
  258. TP_ARGS(sig, p),
  259. TP_STRUCT__entry(
  260. __field( int, sig )
  261. __array( char, comm, TASK_COMM_LEN )
  262. __field( pid_t, pid )
  263. ),
  264. TP_fast_assign(
  265. memcpy(__entry->comm, p->comm, TASK_COMM_LEN);
  266. __entry->pid = p->pid;
  267. __entry->sig = sig;
  268. ),
  269. TP_printk("sig: %d task %s:%d",
  270. __entry->sig, __entry->comm, __entry->pid)
  271. );
  272. /*
  273. * XXX the below sched_stat tracepoints only apply to SCHED_OTHER/BATCH/IDLE
  274. * adding sched_stat support to SCHED_FIFO/RR would be welcome.
  275. */
  276. /*
  277. * Tracepoint for accounting wait time (time the task is runnable
  278. * but not actually running due to scheduler contention).
  279. */
  280. TRACE_EVENT(sched_stat_wait,
  281. TP_PROTO(struct task_struct *tsk, u64 delay),
  282. TP_ARGS(tsk, delay),
  283. TP_STRUCT__entry(
  284. __array( char, comm, TASK_COMM_LEN )
  285. __field( pid_t, pid )
  286. __field( u64, delay )
  287. ),
  288. TP_fast_assign(
  289. memcpy(__entry->comm, tsk->comm, TASK_COMM_LEN);
  290. __entry->pid = tsk->pid;
  291. __entry->delay = delay;
  292. )
  293. TP_perf_assign(
  294. __perf_count(delay);
  295. ),
  296. TP_printk("task: %s:%d wait: %Lu [ns]",
  297. __entry->comm, __entry->pid,
  298. (unsigned long long)__entry->delay)
  299. );
  300. /*
  301. * Tracepoint for accounting runtime (time the task is executing
  302. * on a CPU).
  303. */
  304. TRACE_EVENT(sched_stat_runtime,
  305. TP_PROTO(struct task_struct *tsk, u64 runtime, u64 vruntime),
  306. TP_ARGS(tsk, runtime, vruntime),
  307. TP_STRUCT__entry(
  308. __array( char, comm, TASK_COMM_LEN )
  309. __field( pid_t, pid )
  310. __field( u64, runtime )
  311. __field( u64, vruntime )
  312. ),
  313. TP_fast_assign(
  314. memcpy(__entry->comm, tsk->comm, TASK_COMM_LEN);
  315. __entry->pid = tsk->pid;
  316. __entry->runtime = runtime;
  317. __entry->vruntime = vruntime;
  318. )
  319. TP_perf_assign(
  320. __perf_count(runtime);
  321. ),
  322. TP_printk("task: %s:%d runtime: %Lu [ns], vruntime: %Lu [ns]",
  323. __entry->comm, __entry->pid,
  324. (unsigned long long)__entry->runtime,
  325. (unsigned long long)__entry->vruntime)
  326. );
  327. /*
  328. * Tracepoint for accounting sleep time (time the task is not runnable,
  329. * including iowait, see below).
  330. */
  331. TRACE_EVENT(sched_stat_sleep,
  332. TP_PROTO(struct task_struct *tsk, u64 delay),
  333. TP_ARGS(tsk, delay),
  334. TP_STRUCT__entry(
  335. __array( char, comm, TASK_COMM_LEN )
  336. __field( pid_t, pid )
  337. __field( u64, delay )
  338. ),
  339. TP_fast_assign(
  340. memcpy(__entry->comm, tsk->comm, TASK_COMM_LEN);
  341. __entry->pid = tsk->pid;
  342. __entry->delay = delay;
  343. )
  344. TP_perf_assign(
  345. __perf_count(delay);
  346. ),
  347. TP_printk("task: %s:%d sleep: %Lu [ns]",
  348. __entry->comm, __entry->pid,
  349. (unsigned long long)__entry->delay)
  350. );
  351. /*
  352. * Tracepoint for accounting iowait time (time the task is not runnable
  353. * due to waiting on IO to complete).
  354. */
  355. TRACE_EVENT(sched_stat_iowait,
  356. TP_PROTO(struct task_struct *tsk, u64 delay),
  357. TP_ARGS(tsk, delay),
  358. TP_STRUCT__entry(
  359. __array( char, comm, TASK_COMM_LEN )
  360. __field( pid_t, pid )
  361. __field( u64, delay )
  362. ),
  363. TP_fast_assign(
  364. memcpy(__entry->comm, tsk->comm, TASK_COMM_LEN);
  365. __entry->pid = tsk->pid;
  366. __entry->delay = delay;
  367. )
  368. TP_perf_assign(
  369. __perf_count(delay);
  370. ),
  371. TP_printk("task: %s:%d iowait: %Lu [ns]",
  372. __entry->comm, __entry->pid,
  373. (unsigned long long)__entry->delay)
  374. );
  375. #endif /* _TRACE_SCHED_H */
  376. /* This part must be outside protection */
  377. #include <trace/define_trace.h>