cpu_buffer.c 11 KB

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  1. /**
  2. * @file cpu_buffer.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 <barry.kasindorf@amd.com>
  9. * @author Robert Richter <robert.richter@amd.com>
  10. *
  11. * Each CPU has a local buffer that stores PC value/event
  12. * pairs. We also log context switches when we notice them.
  13. * Eventually each CPU's buffer is processed into the global
  14. * event buffer by sync_buffer().
  15. *
  16. * We use a local buffer for two reasons: an NMI or similar
  17. * interrupt cannot synchronise, and high sampling rates
  18. * would lead to catastrophic global synchronisation if
  19. * a global buffer was used.
  20. */
  21. #include <linux/sched.h>
  22. #include <linux/oprofile.h>
  23. #include <linux/vmalloc.h>
  24. #include <linux/errno.h>
  25. #include "event_buffer.h"
  26. #include "cpu_buffer.h"
  27. #include "buffer_sync.h"
  28. #include "oprof.h"
  29. #define OP_BUFFER_FLAGS 0
  30. /*
  31. * Read and write access is using spin locking. Thus, writing to the
  32. * buffer by NMI handler (x86) could occur also during critical
  33. * sections when reading the buffer. To avoid this, there are 2
  34. * buffers for independent read and write access. Read access is in
  35. * process context only, write access only in the NMI handler. If the
  36. * read buffer runs empty, both buffers are swapped atomically. There
  37. * is potentially a small window during swapping where the buffers are
  38. * disabled and samples could be lost.
  39. *
  40. * Using 2 buffers is a little bit overhead, but the solution is clear
  41. * and does not require changes in the ring buffer implementation. It
  42. * can be changed to a single buffer solution when the ring buffer
  43. * access is implemented as non-locking atomic code.
  44. */
  45. static struct ring_buffer *op_ring_buffer_read;
  46. static struct ring_buffer *op_ring_buffer_write;
  47. DEFINE_PER_CPU(struct oprofile_cpu_buffer, cpu_buffer);
  48. static void wq_sync_buffer(struct work_struct *work);
  49. #define DEFAULT_TIMER_EXPIRE (HZ / 10)
  50. static int work_enabled;
  51. unsigned long oprofile_get_cpu_buffer_size(void)
  52. {
  53. return oprofile_cpu_buffer_size;
  54. }
  55. void oprofile_cpu_buffer_inc_smpl_lost(void)
  56. {
  57. struct oprofile_cpu_buffer *cpu_buf
  58. = &__get_cpu_var(cpu_buffer);
  59. cpu_buf->sample_lost_overflow++;
  60. }
  61. void free_cpu_buffers(void)
  62. {
  63. if (op_ring_buffer_read)
  64. ring_buffer_free(op_ring_buffer_read);
  65. op_ring_buffer_read = NULL;
  66. if (op_ring_buffer_write)
  67. ring_buffer_free(op_ring_buffer_write);
  68. op_ring_buffer_write = NULL;
  69. }
  70. int alloc_cpu_buffers(void)
  71. {
  72. int i;
  73. unsigned long buffer_size = oprofile_cpu_buffer_size;
  74. op_ring_buffer_read = ring_buffer_alloc(buffer_size, OP_BUFFER_FLAGS);
  75. if (!op_ring_buffer_read)
  76. goto fail;
  77. op_ring_buffer_write = ring_buffer_alloc(buffer_size, OP_BUFFER_FLAGS);
  78. if (!op_ring_buffer_write)
  79. goto fail;
  80. for_each_possible_cpu(i) {
  81. struct oprofile_cpu_buffer *b = &per_cpu(cpu_buffer, i);
  82. b->last_task = NULL;
  83. b->last_is_kernel = -1;
  84. b->tracing = 0;
  85. b->buffer_size = buffer_size;
  86. b->sample_received = 0;
  87. b->sample_lost_overflow = 0;
  88. b->backtrace_aborted = 0;
  89. b->sample_invalid_eip = 0;
  90. b->cpu = i;
  91. INIT_DELAYED_WORK(&b->work, wq_sync_buffer);
  92. }
  93. return 0;
  94. fail:
  95. free_cpu_buffers();
  96. return -ENOMEM;
  97. }
  98. void start_cpu_work(void)
  99. {
  100. int i;
  101. work_enabled = 1;
  102. for_each_online_cpu(i) {
  103. struct oprofile_cpu_buffer *b = &per_cpu(cpu_buffer, i);
  104. /*
  105. * Spread the work by 1 jiffy per cpu so they dont all
  106. * fire at once.
  107. */
  108. schedule_delayed_work_on(i, &b->work, DEFAULT_TIMER_EXPIRE + i);
  109. }
  110. }
  111. void end_cpu_work(void)
  112. {
  113. int i;
  114. work_enabled = 0;
  115. for_each_online_cpu(i) {
  116. struct oprofile_cpu_buffer *b = &per_cpu(cpu_buffer, i);
  117. cancel_delayed_work(&b->work);
  118. }
  119. flush_scheduled_work();
  120. }
  121. /*
  122. * This function prepares the cpu buffer to write a sample.
  123. *
  124. * Struct op_entry is used during operations on the ring buffer while
  125. * struct op_sample contains the data that is stored in the ring
  126. * buffer. Struct entry can be uninitialized. The function reserves a
  127. * data array that is specified by size. Use
  128. * op_cpu_buffer_write_commit() after preparing the sample. In case of
  129. * errors a null pointer is returned, otherwise the pointer to the
  130. * sample.
  131. *
  132. */
  133. struct op_sample
  134. *op_cpu_buffer_write_reserve(struct op_entry *entry, unsigned long size)
  135. {
  136. entry->event = ring_buffer_lock_reserve
  137. (op_ring_buffer_write, sizeof(struct op_sample) +
  138. size * sizeof(entry->sample->data[0]), &entry->irq_flags);
  139. if (entry->event)
  140. entry->sample = ring_buffer_event_data(entry->event);
  141. else
  142. entry->sample = NULL;
  143. if (!entry->sample)
  144. return NULL;
  145. entry->size = size;
  146. entry->data = entry->sample->data;
  147. return entry->sample;
  148. }
  149. int op_cpu_buffer_write_commit(struct op_entry *entry)
  150. {
  151. return ring_buffer_unlock_commit(op_ring_buffer_write, entry->event,
  152. entry->irq_flags);
  153. }
  154. struct op_sample *op_cpu_buffer_read_entry(struct op_entry *entry, int cpu)
  155. {
  156. struct ring_buffer_event *e;
  157. e = ring_buffer_consume(op_ring_buffer_read, cpu, NULL);
  158. if (e)
  159. goto event;
  160. if (ring_buffer_swap_cpu(op_ring_buffer_read,
  161. op_ring_buffer_write,
  162. cpu))
  163. return NULL;
  164. e = ring_buffer_consume(op_ring_buffer_read, cpu, NULL);
  165. if (e)
  166. goto event;
  167. return NULL;
  168. event:
  169. entry->event = e;
  170. entry->sample = ring_buffer_event_data(e);
  171. entry->size = (ring_buffer_event_length(e) - sizeof(struct op_sample))
  172. / sizeof(entry->sample->data[0]);
  173. entry->data = entry->sample->data;
  174. return entry->sample;
  175. }
  176. unsigned long op_cpu_buffer_entries(int cpu)
  177. {
  178. return ring_buffer_entries_cpu(op_ring_buffer_read, cpu)
  179. + ring_buffer_entries_cpu(op_ring_buffer_write, cpu);
  180. }
  181. static int
  182. op_add_code(struct oprofile_cpu_buffer *cpu_buf, unsigned long backtrace,
  183. int is_kernel, struct task_struct *task)
  184. {
  185. struct op_entry entry;
  186. struct op_sample *sample;
  187. unsigned long flags;
  188. int size;
  189. flags = 0;
  190. if (backtrace)
  191. flags |= TRACE_BEGIN;
  192. /* notice a switch from user->kernel or vice versa */
  193. is_kernel = !!is_kernel;
  194. if (cpu_buf->last_is_kernel != is_kernel) {
  195. cpu_buf->last_is_kernel = is_kernel;
  196. flags |= KERNEL_CTX_SWITCH;
  197. if (is_kernel)
  198. flags |= IS_KERNEL;
  199. }
  200. /* notice a task switch */
  201. if (cpu_buf->last_task != task) {
  202. cpu_buf->last_task = task;
  203. flags |= USER_CTX_SWITCH;
  204. }
  205. if (!flags)
  206. /* nothing to do */
  207. return 0;
  208. if (flags & USER_CTX_SWITCH)
  209. size = 1;
  210. else
  211. size = 0;
  212. sample = op_cpu_buffer_write_reserve(&entry, size);
  213. if (!sample)
  214. return -ENOMEM;
  215. sample->eip = ESCAPE_CODE;
  216. sample->event = flags;
  217. if (size)
  218. op_cpu_buffer_add_data(&entry, (unsigned long)task);
  219. op_cpu_buffer_write_commit(&entry);
  220. return 0;
  221. }
  222. static inline int
  223. op_add_sample(struct oprofile_cpu_buffer *cpu_buf,
  224. unsigned long pc, unsigned long event)
  225. {
  226. struct op_entry entry;
  227. struct op_sample *sample;
  228. sample = op_cpu_buffer_write_reserve(&entry, 0);
  229. if (!sample)
  230. return -ENOMEM;
  231. sample->eip = pc;
  232. sample->event = event;
  233. return op_cpu_buffer_write_commit(&entry);
  234. }
  235. /*
  236. * This must be safe from any context.
  237. *
  238. * is_kernel is needed because on some architectures you cannot
  239. * tell if you are in kernel or user space simply by looking at
  240. * pc. We tag this in the buffer by generating kernel enter/exit
  241. * events whenever is_kernel changes
  242. */
  243. static int
  244. log_sample(struct oprofile_cpu_buffer *cpu_buf, unsigned long pc,
  245. unsigned long backtrace, int is_kernel, unsigned long event)
  246. {
  247. cpu_buf->sample_received++;
  248. if (pc == ESCAPE_CODE) {
  249. cpu_buf->sample_invalid_eip++;
  250. return 0;
  251. }
  252. if (op_add_code(cpu_buf, backtrace, is_kernel, current))
  253. goto fail;
  254. if (op_add_sample(cpu_buf, pc, event))
  255. goto fail;
  256. return 1;
  257. fail:
  258. cpu_buf->sample_lost_overflow++;
  259. return 0;
  260. }
  261. static inline void oprofile_begin_trace(struct oprofile_cpu_buffer *cpu_buf)
  262. {
  263. cpu_buf->tracing = 1;
  264. }
  265. static inline void oprofile_end_trace(struct oprofile_cpu_buffer *cpu_buf)
  266. {
  267. cpu_buf->tracing = 0;
  268. }
  269. static inline void
  270. __oprofile_add_ext_sample(unsigned long pc, struct pt_regs * const regs,
  271. unsigned long event, int is_kernel)
  272. {
  273. struct oprofile_cpu_buffer *cpu_buf = &__get_cpu_var(cpu_buffer);
  274. unsigned long backtrace = oprofile_backtrace_depth;
  275. /*
  276. * if log_sample() fail we can't backtrace since we lost the
  277. * source of this event
  278. */
  279. if (!log_sample(cpu_buf, pc, backtrace, is_kernel, event))
  280. /* failed */
  281. return;
  282. if (!backtrace)
  283. return;
  284. oprofile_begin_trace(cpu_buf);
  285. oprofile_ops.backtrace(regs, backtrace);
  286. oprofile_end_trace(cpu_buf);
  287. }
  288. void oprofile_add_ext_sample(unsigned long pc, struct pt_regs * const regs,
  289. unsigned long event, int is_kernel)
  290. {
  291. __oprofile_add_ext_sample(pc, regs, event, is_kernel);
  292. }
  293. void oprofile_add_sample(struct pt_regs * const regs, unsigned long event)
  294. {
  295. int is_kernel = !user_mode(regs);
  296. unsigned long pc = profile_pc(regs);
  297. __oprofile_add_ext_sample(pc, regs, event, is_kernel);
  298. }
  299. #ifdef CONFIG_OPROFILE_IBS
  300. void oprofile_add_ibs_sample(struct pt_regs * const regs,
  301. unsigned int * const ibs_sample, int ibs_code)
  302. {
  303. int is_kernel = !user_mode(regs);
  304. struct oprofile_cpu_buffer *cpu_buf = &__get_cpu_var(cpu_buffer);
  305. int fail = 0;
  306. cpu_buf->sample_received++;
  307. /* backtraces disabled for ibs */
  308. fail = fail || op_add_code(cpu_buf, 0, is_kernel, current);
  309. fail = fail || op_add_sample(cpu_buf, ESCAPE_CODE, ibs_code);
  310. fail = fail || op_add_sample(cpu_buf, ibs_sample[0], ibs_sample[1]);
  311. fail = fail || op_add_sample(cpu_buf, ibs_sample[2], ibs_sample[3]);
  312. fail = fail || op_add_sample(cpu_buf, ibs_sample[4], ibs_sample[5]);
  313. if (ibs_code == IBS_OP_BEGIN) {
  314. fail = fail || op_add_sample(cpu_buf, ibs_sample[6], ibs_sample[7]);
  315. fail = fail || op_add_sample(cpu_buf, ibs_sample[8], ibs_sample[9]);
  316. fail = fail || op_add_sample(cpu_buf, ibs_sample[10], ibs_sample[11]);
  317. }
  318. if (fail)
  319. cpu_buf->sample_lost_overflow++;
  320. }
  321. #endif
  322. void oprofile_add_pc(unsigned long pc, int is_kernel, unsigned long event)
  323. {
  324. struct oprofile_cpu_buffer *cpu_buf = &__get_cpu_var(cpu_buffer);
  325. log_sample(cpu_buf, pc, 0, is_kernel, event);
  326. }
  327. void oprofile_add_trace(unsigned long pc)
  328. {
  329. struct oprofile_cpu_buffer *cpu_buf = &__get_cpu_var(cpu_buffer);
  330. if (!cpu_buf->tracing)
  331. return;
  332. /*
  333. * broken frame can give an eip with the same value as an
  334. * escape code, abort the trace if we get it
  335. */
  336. if (pc == ESCAPE_CODE)
  337. goto fail;
  338. if (op_add_sample(cpu_buf, pc, 0))
  339. goto fail;
  340. return;
  341. fail:
  342. cpu_buf->tracing = 0;
  343. cpu_buf->backtrace_aborted++;
  344. return;
  345. }
  346. /*
  347. * This serves to avoid cpu buffer overflow, and makes sure
  348. * the task mortuary progresses
  349. *
  350. * By using schedule_delayed_work_on and then schedule_delayed_work
  351. * we guarantee this will stay on the correct cpu
  352. */
  353. static void wq_sync_buffer(struct work_struct *work)
  354. {
  355. struct oprofile_cpu_buffer *b =
  356. container_of(work, struct oprofile_cpu_buffer, work.work);
  357. if (b->cpu != smp_processor_id()) {
  358. printk(KERN_DEBUG "WQ on CPU%d, prefer CPU%d\n",
  359. smp_processor_id(), b->cpu);
  360. if (!cpu_online(b->cpu)) {
  361. cancel_delayed_work(&b->work);
  362. return;
  363. }
  364. }
  365. sync_buffer(b->cpu);
  366. /* don't re-add the work if we're shutting down */
  367. if (work_enabled)
  368. schedule_delayed_work(&b->work, DEFAULT_TIMER_EXPIRE);
  369. }