buffer_sync.c 13 KB

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  1. /**
  2. * @file buffer_sync.c
  3. *
  4. * @remark Copyright 2002-2009 OProfile authors
  5. * @remark Read the file COPYING
  6. *
  7. * @author John Levon <levon@movementarian.org>
  8. * @author Barry Kasindorf
  9. * @author Robert Richter <robert.richter@amd.com>
  10. *
  11. * This is the core of the buffer management. Each
  12. * CPU buffer is processed and entered into the
  13. * global event buffer. Such processing is necessary
  14. * in several circumstances, mentioned below.
  15. *
  16. * The processing does the job of converting the
  17. * transitory EIP value into a persistent dentry/offset
  18. * value that the profiler can record at its leisure.
  19. *
  20. * See fs/dcookies.c for a description of the dentry/offset
  21. * objects.
  22. */
  23. #include <linux/mm.h>
  24. #include <linux/workqueue.h>
  25. #include <linux/notifier.h>
  26. #include <linux/dcookies.h>
  27. #include <linux/profile.h>
  28. #include <linux/module.h>
  29. #include <linux/fs.h>
  30. #include <linux/oprofile.h>
  31. #include <linux/sched.h>
  32. #include <linux/gfp.h>
  33. #include "oprofile_stats.h"
  34. #include "event_buffer.h"
  35. #include "cpu_buffer.h"
  36. #include "buffer_sync.h"
  37. static LIST_HEAD(dying_tasks);
  38. static LIST_HEAD(dead_tasks);
  39. static cpumask_var_t marked_cpus;
  40. static DEFINE_SPINLOCK(task_mortuary);
  41. static void process_task_mortuary(void);
  42. /* Take ownership of the task struct and place it on the
  43. * list for processing. Only after two full buffer syncs
  44. * does the task eventually get freed, because by then
  45. * we are sure we will not reference it again.
  46. * Can be invoked from softirq via RCU callback due to
  47. * call_rcu() of the task struct, hence the _irqsave.
  48. */
  49. static int
  50. task_free_notify(struct notifier_block *self, unsigned long val, void *data)
  51. {
  52. unsigned long flags;
  53. struct task_struct *task = data;
  54. spin_lock_irqsave(&task_mortuary, flags);
  55. list_add(&task->tasks, &dying_tasks);
  56. spin_unlock_irqrestore(&task_mortuary, flags);
  57. return NOTIFY_OK;
  58. }
  59. /* The task is on its way out. A sync of the buffer means we can catch
  60. * any remaining samples for this task.
  61. */
  62. static int
  63. task_exit_notify(struct notifier_block *self, unsigned long val, void *data)
  64. {
  65. /* To avoid latency problems, we only process the current CPU,
  66. * hoping that most samples for the task are on this CPU
  67. */
  68. sync_buffer(raw_smp_processor_id());
  69. return 0;
  70. }
  71. /* The task is about to try a do_munmap(). We peek at what it's going to
  72. * do, and if it's an executable region, process the samples first, so
  73. * we don't lose any. This does not have to be exact, it's a QoI issue
  74. * only.
  75. */
  76. static int
  77. munmap_notify(struct notifier_block *self, unsigned long val, void *data)
  78. {
  79. unsigned long addr = (unsigned long)data;
  80. struct mm_struct *mm = current->mm;
  81. struct vm_area_struct *mpnt;
  82. down_read(&mm->mmap_sem);
  83. mpnt = find_vma(mm, addr);
  84. if (mpnt && mpnt->vm_file && (mpnt->vm_flags & VM_EXEC)) {
  85. up_read(&mm->mmap_sem);
  86. /* To avoid latency problems, we only process the current CPU,
  87. * hoping that most samples for the task are on this CPU
  88. */
  89. sync_buffer(raw_smp_processor_id());
  90. return 0;
  91. }
  92. up_read(&mm->mmap_sem);
  93. return 0;
  94. }
  95. /* We need to be told about new modules so we don't attribute to a previously
  96. * loaded module, or drop the samples on the floor.
  97. */
  98. static int
  99. module_load_notify(struct notifier_block *self, unsigned long val, void *data)
  100. {
  101. #ifdef CONFIG_MODULES
  102. if (val != MODULE_STATE_COMING)
  103. return 0;
  104. /* FIXME: should we process all CPU buffers ? */
  105. mutex_lock(&buffer_mutex);
  106. add_event_entry(ESCAPE_CODE);
  107. add_event_entry(MODULE_LOADED_CODE);
  108. mutex_unlock(&buffer_mutex);
  109. #endif
  110. return 0;
  111. }
  112. static struct notifier_block task_free_nb = {
  113. .notifier_call = task_free_notify,
  114. };
  115. static struct notifier_block task_exit_nb = {
  116. .notifier_call = task_exit_notify,
  117. };
  118. static struct notifier_block munmap_nb = {
  119. .notifier_call = munmap_notify,
  120. };
  121. static struct notifier_block module_load_nb = {
  122. .notifier_call = module_load_notify,
  123. };
  124. static void free_all_tasks(void)
  125. {
  126. /* make sure we don't leak task structs */
  127. process_task_mortuary();
  128. process_task_mortuary();
  129. }
  130. int sync_start(void)
  131. {
  132. int err;
  133. if (!zalloc_cpumask_var(&marked_cpus, GFP_KERNEL))
  134. return -ENOMEM;
  135. err = task_handoff_register(&task_free_nb);
  136. if (err)
  137. goto out1;
  138. err = profile_event_register(PROFILE_TASK_EXIT, &task_exit_nb);
  139. if (err)
  140. goto out2;
  141. err = profile_event_register(PROFILE_MUNMAP, &munmap_nb);
  142. if (err)
  143. goto out3;
  144. err = register_module_notifier(&module_load_nb);
  145. if (err)
  146. goto out4;
  147. start_cpu_work();
  148. out:
  149. return err;
  150. out4:
  151. profile_event_unregister(PROFILE_MUNMAP, &munmap_nb);
  152. out3:
  153. profile_event_unregister(PROFILE_TASK_EXIT, &task_exit_nb);
  154. out2:
  155. task_handoff_unregister(&task_free_nb);
  156. free_all_tasks();
  157. out1:
  158. free_cpumask_var(marked_cpus);
  159. goto out;
  160. }
  161. void sync_stop(void)
  162. {
  163. end_cpu_work();
  164. unregister_module_notifier(&module_load_nb);
  165. profile_event_unregister(PROFILE_MUNMAP, &munmap_nb);
  166. profile_event_unregister(PROFILE_TASK_EXIT, &task_exit_nb);
  167. task_handoff_unregister(&task_free_nb);
  168. barrier(); /* do all of the above first */
  169. flush_cpu_work();
  170. free_all_tasks();
  171. free_cpumask_var(marked_cpus);
  172. }
  173. /* Optimisation. We can manage without taking the dcookie sem
  174. * because we cannot reach this code without at least one
  175. * dcookie user still being registered (namely, the reader
  176. * of the event buffer). */
  177. static inline unsigned long fast_get_dcookie(struct path *path)
  178. {
  179. unsigned long cookie;
  180. if (path->dentry->d_flags & DCACHE_COOKIE)
  181. return (unsigned long)path->dentry;
  182. get_dcookie(path, &cookie);
  183. return cookie;
  184. }
  185. /* Look up the dcookie for the task's mm->exe_file,
  186. * which corresponds loosely to "application name". This is
  187. * not strictly necessary but allows oprofile to associate
  188. * shared-library samples with particular applications
  189. */
  190. static unsigned long get_exec_dcookie(struct mm_struct *mm)
  191. {
  192. unsigned long cookie = NO_COOKIE;
  193. if (mm && mm->exe_file)
  194. cookie = fast_get_dcookie(&mm->exe_file->f_path);
  195. return cookie;
  196. }
  197. /* Convert the EIP value of a sample into a persistent dentry/offset
  198. * pair that can then be added to the global event buffer. We make
  199. * sure to do this lookup before a mm->mmap modification happens so
  200. * we don't lose track.
  201. */
  202. static unsigned long
  203. lookup_dcookie(struct mm_struct *mm, unsigned long addr, off_t *offset)
  204. {
  205. unsigned long cookie = NO_COOKIE;
  206. struct vm_area_struct *vma;
  207. for (vma = find_vma(mm, addr); vma; vma = vma->vm_next) {
  208. if (addr < vma->vm_start || addr >= vma->vm_end)
  209. continue;
  210. if (vma->vm_file) {
  211. cookie = fast_get_dcookie(&vma->vm_file->f_path);
  212. *offset = (vma->vm_pgoff << PAGE_SHIFT) + addr -
  213. vma->vm_start;
  214. } else {
  215. /* must be an anonymous map */
  216. *offset = addr;
  217. }
  218. break;
  219. }
  220. if (!vma)
  221. cookie = INVALID_COOKIE;
  222. return cookie;
  223. }
  224. static unsigned long last_cookie = INVALID_COOKIE;
  225. static void add_cpu_switch(int i)
  226. {
  227. add_event_entry(ESCAPE_CODE);
  228. add_event_entry(CPU_SWITCH_CODE);
  229. add_event_entry(i);
  230. last_cookie = INVALID_COOKIE;
  231. }
  232. static void add_kernel_ctx_switch(unsigned int in_kernel)
  233. {
  234. add_event_entry(ESCAPE_CODE);
  235. if (in_kernel)
  236. add_event_entry(KERNEL_ENTER_SWITCH_CODE);
  237. else
  238. add_event_entry(KERNEL_EXIT_SWITCH_CODE);
  239. }
  240. static void
  241. add_user_ctx_switch(struct task_struct const *task, unsigned long cookie)
  242. {
  243. add_event_entry(ESCAPE_CODE);
  244. add_event_entry(CTX_SWITCH_CODE);
  245. add_event_entry(task->pid);
  246. add_event_entry(cookie);
  247. /* Another code for daemon back-compat */
  248. add_event_entry(ESCAPE_CODE);
  249. add_event_entry(CTX_TGID_CODE);
  250. add_event_entry(task->tgid);
  251. }
  252. static void add_cookie_switch(unsigned long cookie)
  253. {
  254. add_event_entry(ESCAPE_CODE);
  255. add_event_entry(COOKIE_SWITCH_CODE);
  256. add_event_entry(cookie);
  257. }
  258. static void add_trace_begin(void)
  259. {
  260. add_event_entry(ESCAPE_CODE);
  261. add_event_entry(TRACE_BEGIN_CODE);
  262. }
  263. static void add_data(struct op_entry *entry, struct mm_struct *mm)
  264. {
  265. unsigned long code, pc, val;
  266. unsigned long cookie;
  267. off_t offset;
  268. if (!op_cpu_buffer_get_data(entry, &code))
  269. return;
  270. if (!op_cpu_buffer_get_data(entry, &pc))
  271. return;
  272. if (!op_cpu_buffer_get_size(entry))
  273. return;
  274. if (mm) {
  275. cookie = lookup_dcookie(mm, pc, &offset);
  276. if (cookie == NO_COOKIE)
  277. offset = pc;
  278. if (cookie == INVALID_COOKIE) {
  279. atomic_inc(&oprofile_stats.sample_lost_no_mapping);
  280. offset = pc;
  281. }
  282. if (cookie != last_cookie) {
  283. add_cookie_switch(cookie);
  284. last_cookie = cookie;
  285. }
  286. } else
  287. offset = pc;
  288. add_event_entry(ESCAPE_CODE);
  289. add_event_entry(code);
  290. add_event_entry(offset); /* Offset from Dcookie */
  291. while (op_cpu_buffer_get_data(entry, &val))
  292. add_event_entry(val);
  293. }
  294. static inline void add_sample_entry(unsigned long offset, unsigned long event)
  295. {
  296. add_event_entry(offset);
  297. add_event_entry(event);
  298. }
  299. /*
  300. * Add a sample to the global event buffer. If possible the
  301. * sample is converted into a persistent dentry/offset pair
  302. * for later lookup from userspace. Return 0 on failure.
  303. */
  304. static int
  305. add_sample(struct mm_struct *mm, struct op_sample *s, int in_kernel)
  306. {
  307. unsigned long cookie;
  308. off_t offset;
  309. if (in_kernel) {
  310. add_sample_entry(s->eip, s->event);
  311. return 1;
  312. }
  313. /* add userspace sample */
  314. if (!mm) {
  315. atomic_inc(&oprofile_stats.sample_lost_no_mm);
  316. return 0;
  317. }
  318. cookie = lookup_dcookie(mm, s->eip, &offset);
  319. if (cookie == INVALID_COOKIE) {
  320. atomic_inc(&oprofile_stats.sample_lost_no_mapping);
  321. return 0;
  322. }
  323. if (cookie != last_cookie) {
  324. add_cookie_switch(cookie);
  325. last_cookie = cookie;
  326. }
  327. add_sample_entry(offset, s->event);
  328. return 1;
  329. }
  330. static void release_mm(struct mm_struct *mm)
  331. {
  332. if (!mm)
  333. return;
  334. up_read(&mm->mmap_sem);
  335. mmput(mm);
  336. }
  337. static struct mm_struct *take_tasks_mm(struct task_struct *task)
  338. {
  339. struct mm_struct *mm = get_task_mm(task);
  340. if (mm)
  341. down_read(&mm->mmap_sem);
  342. return mm;
  343. }
  344. static inline int is_code(unsigned long val)
  345. {
  346. return val == ESCAPE_CODE;
  347. }
  348. /* Move tasks along towards death. Any tasks on dead_tasks
  349. * will definitely have no remaining references in any
  350. * CPU buffers at this point, because we use two lists,
  351. * and to have reached the list, it must have gone through
  352. * one full sync already.
  353. */
  354. static void process_task_mortuary(void)
  355. {
  356. unsigned long flags;
  357. LIST_HEAD(local_dead_tasks);
  358. struct task_struct *task;
  359. struct task_struct *ttask;
  360. spin_lock_irqsave(&task_mortuary, flags);
  361. list_splice_init(&dead_tasks, &local_dead_tasks);
  362. list_splice_init(&dying_tasks, &dead_tasks);
  363. spin_unlock_irqrestore(&task_mortuary, flags);
  364. list_for_each_entry_safe(task, ttask, &local_dead_tasks, tasks) {
  365. list_del(&task->tasks);
  366. free_task(task);
  367. }
  368. }
  369. static void mark_done(int cpu)
  370. {
  371. int i;
  372. cpumask_set_cpu(cpu, marked_cpus);
  373. for_each_online_cpu(i) {
  374. if (!cpumask_test_cpu(i, marked_cpus))
  375. return;
  376. }
  377. /* All CPUs have been processed at least once,
  378. * we can process the mortuary once
  379. */
  380. process_task_mortuary();
  381. cpumask_clear(marked_cpus);
  382. }
  383. /* FIXME: this is not sufficient if we implement syscall barrier backtrace
  384. * traversal, the code switch to sb_sample_start at first kernel enter/exit
  385. * switch so we need a fifth state and some special handling in sync_buffer()
  386. */
  387. typedef enum {
  388. sb_bt_ignore = -2,
  389. sb_buffer_start,
  390. sb_bt_start,
  391. sb_sample_start,
  392. } sync_buffer_state;
  393. /* Sync one of the CPU's buffers into the global event buffer.
  394. * Here we need to go through each batch of samples punctuated
  395. * by context switch notes, taking the task's mmap_sem and doing
  396. * lookup in task->mm->mmap to convert EIP into dcookie/offset
  397. * value.
  398. */
  399. void sync_buffer(int cpu)
  400. {
  401. struct mm_struct *mm = NULL;
  402. struct mm_struct *oldmm;
  403. unsigned long val;
  404. struct task_struct *new;
  405. unsigned long cookie = 0;
  406. int in_kernel = 1;
  407. sync_buffer_state state = sb_buffer_start;
  408. unsigned int i;
  409. unsigned long available;
  410. unsigned long flags;
  411. struct op_entry entry;
  412. struct op_sample *sample;
  413. mutex_lock(&buffer_mutex);
  414. add_cpu_switch(cpu);
  415. op_cpu_buffer_reset(cpu);
  416. available = op_cpu_buffer_entries(cpu);
  417. for (i = 0; i < available; ++i) {
  418. sample = op_cpu_buffer_read_entry(&entry, cpu);
  419. if (!sample)
  420. break;
  421. if (is_code(sample->eip)) {
  422. flags = sample->event;
  423. if (flags & TRACE_BEGIN) {
  424. state = sb_bt_start;
  425. add_trace_begin();
  426. }
  427. if (flags & KERNEL_CTX_SWITCH) {
  428. /* kernel/userspace switch */
  429. in_kernel = flags & IS_KERNEL;
  430. if (state == sb_buffer_start)
  431. state = sb_sample_start;
  432. add_kernel_ctx_switch(flags & IS_KERNEL);
  433. }
  434. if (flags & USER_CTX_SWITCH
  435. && op_cpu_buffer_get_data(&entry, &val)) {
  436. /* userspace context switch */
  437. new = (struct task_struct *)val;
  438. oldmm = mm;
  439. release_mm(oldmm);
  440. mm = take_tasks_mm(new);
  441. if (mm != oldmm)
  442. cookie = get_exec_dcookie(mm);
  443. add_user_ctx_switch(new, cookie);
  444. }
  445. if (op_cpu_buffer_get_size(&entry))
  446. add_data(&entry, mm);
  447. continue;
  448. }
  449. if (state < sb_bt_start)
  450. /* ignore sample */
  451. continue;
  452. if (add_sample(mm, sample, in_kernel))
  453. continue;
  454. /* ignore backtraces if failed to add a sample */
  455. if (state == sb_bt_start) {
  456. state = sb_bt_ignore;
  457. atomic_inc(&oprofile_stats.bt_lost_no_mapping);
  458. }
  459. }
  460. release_mm(mm);
  461. mark_done(cpu);
  462. mutex_unlock(&buffer_mutex);
  463. }
  464. /* The function can be used to add a buffer worth of data directly to
  465. * the kernel buffer. The buffer is assumed to be a circular buffer.
  466. * Take the entries from index start and end at index end, wrapping
  467. * at max_entries.
  468. */
  469. void oprofile_put_buff(unsigned long *buf, unsigned int start,
  470. unsigned int stop, unsigned int max)
  471. {
  472. int i;
  473. i = start;
  474. mutex_lock(&buffer_mutex);
  475. while (i != stop) {
  476. add_event_entry(buf[i++]);
  477. if (i >= max)
  478. i = 0;
  479. }
  480. mutex_unlock(&buffer_mutex);
  481. }