oprofile: add op_cpu_buffer_get_data()
[linux-2.6/mini2440.git] / drivers / oprofile / buffer_sync.c
blobf9031d31eeb7eceab4872b2496c8f13d986e1e04
1 /**
2 * @file buffer_sync.c
4 * @remark Copyright 2002-2009 OProfile authors
5 * @remark Read the file COPYING
7 * @author John Levon <levon@movementarian.org>
8 * @author Barry Kasindorf
9 * @author Robert Richter <robert.richter@amd.com>
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.
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.
20 * See fs/dcookies.c for a description of the dentry/offset
21 * objects.
24 #include <linux/mm.h>
25 #include <linux/workqueue.h>
26 #include <linux/notifier.h>
27 #include <linux/dcookies.h>
28 #include <linux/profile.h>
29 #include <linux/module.h>
30 #include <linux/fs.h>
31 #include <linux/oprofile.h>
32 #include <linux/sched.h>
34 #include "oprofile_stats.h"
35 #include "event_buffer.h"
36 #include "cpu_buffer.h"
37 #include "buffer_sync.h"
39 static LIST_HEAD(dying_tasks);
40 static LIST_HEAD(dead_tasks);
41 static cpumask_t marked_cpus = CPU_MASK_NONE;
42 static DEFINE_SPINLOCK(task_mortuary);
43 static void process_task_mortuary(void);
45 /* Take ownership of the task struct and place it on the
46 * list for processing. Only after two full buffer syncs
47 * does the task eventually get freed, because by then
48 * we are sure we will not reference it again.
49 * Can be invoked from softirq via RCU callback due to
50 * call_rcu() of the task struct, hence the _irqsave.
52 static int
53 task_free_notify(struct notifier_block *self, unsigned long val, void *data)
55 unsigned long flags;
56 struct task_struct *task = data;
57 spin_lock_irqsave(&task_mortuary, flags);
58 list_add(&task->tasks, &dying_tasks);
59 spin_unlock_irqrestore(&task_mortuary, flags);
60 return NOTIFY_OK;
64 /* The task is on its way out. A sync of the buffer means we can catch
65 * any remaining samples for this task.
67 static int
68 task_exit_notify(struct notifier_block *self, unsigned long val, void *data)
70 /* To avoid latency problems, we only process the current CPU,
71 * hoping that most samples for the task are on this CPU
73 sync_buffer(raw_smp_processor_id());
74 return 0;
78 /* The task is about to try a do_munmap(). We peek at what it's going to
79 * do, and if it's an executable region, process the samples first, so
80 * we don't lose any. This does not have to be exact, it's a QoI issue
81 * only.
83 static int
84 munmap_notify(struct notifier_block *self, unsigned long val, void *data)
86 unsigned long addr = (unsigned long)data;
87 struct mm_struct *mm = current->mm;
88 struct vm_area_struct *mpnt;
90 down_read(&mm->mmap_sem);
92 mpnt = find_vma(mm, addr);
93 if (mpnt && mpnt->vm_file && (mpnt->vm_flags & VM_EXEC)) {
94 up_read(&mm->mmap_sem);
95 /* To avoid latency problems, we only process the current CPU,
96 * hoping that most samples for the task are on this CPU
98 sync_buffer(raw_smp_processor_id());
99 return 0;
102 up_read(&mm->mmap_sem);
103 return 0;
107 /* We need to be told about new modules so we don't attribute to a previously
108 * loaded module, or drop the samples on the floor.
110 static int
111 module_load_notify(struct notifier_block *self, unsigned long val, void *data)
113 #ifdef CONFIG_MODULES
114 if (val != MODULE_STATE_COMING)
115 return 0;
117 /* FIXME: should we process all CPU buffers ? */
118 mutex_lock(&buffer_mutex);
119 add_event_entry(ESCAPE_CODE);
120 add_event_entry(MODULE_LOADED_CODE);
121 mutex_unlock(&buffer_mutex);
122 #endif
123 return 0;
127 static struct notifier_block task_free_nb = {
128 .notifier_call = task_free_notify,
131 static struct notifier_block task_exit_nb = {
132 .notifier_call = task_exit_notify,
135 static struct notifier_block munmap_nb = {
136 .notifier_call = munmap_notify,
139 static struct notifier_block module_load_nb = {
140 .notifier_call = module_load_notify,
144 static void end_sync(void)
146 end_cpu_work();
147 /* make sure we don't leak task structs */
148 process_task_mortuary();
149 process_task_mortuary();
153 int sync_start(void)
155 int err;
157 start_cpu_work();
159 err = task_handoff_register(&task_free_nb);
160 if (err)
161 goto out1;
162 err = profile_event_register(PROFILE_TASK_EXIT, &task_exit_nb);
163 if (err)
164 goto out2;
165 err = profile_event_register(PROFILE_MUNMAP, &munmap_nb);
166 if (err)
167 goto out3;
168 err = register_module_notifier(&module_load_nb);
169 if (err)
170 goto out4;
172 out:
173 return err;
174 out4:
175 profile_event_unregister(PROFILE_MUNMAP, &munmap_nb);
176 out3:
177 profile_event_unregister(PROFILE_TASK_EXIT, &task_exit_nb);
178 out2:
179 task_handoff_unregister(&task_free_nb);
180 out1:
181 end_sync();
182 goto out;
186 void sync_stop(void)
188 unregister_module_notifier(&module_load_nb);
189 profile_event_unregister(PROFILE_MUNMAP, &munmap_nb);
190 profile_event_unregister(PROFILE_TASK_EXIT, &task_exit_nb);
191 task_handoff_unregister(&task_free_nb);
192 end_sync();
196 /* Optimisation. We can manage without taking the dcookie sem
197 * because we cannot reach this code without at least one
198 * dcookie user still being registered (namely, the reader
199 * of the event buffer). */
200 static inline unsigned long fast_get_dcookie(struct path *path)
202 unsigned long cookie;
204 if (path->dentry->d_cookie)
205 return (unsigned long)path->dentry;
206 get_dcookie(path, &cookie);
207 return cookie;
211 /* Look up the dcookie for the task's first VM_EXECUTABLE mapping,
212 * which corresponds loosely to "application name". This is
213 * not strictly necessary but allows oprofile to associate
214 * shared-library samples with particular applications
216 static unsigned long get_exec_dcookie(struct mm_struct *mm)
218 unsigned long cookie = NO_COOKIE;
219 struct vm_area_struct *vma;
221 if (!mm)
222 goto out;
224 for (vma = mm->mmap; vma; vma = vma->vm_next) {
225 if (!vma->vm_file)
226 continue;
227 if (!(vma->vm_flags & VM_EXECUTABLE))
228 continue;
229 cookie = fast_get_dcookie(&vma->vm_file->f_path);
230 break;
233 out:
234 return cookie;
238 /* Convert the EIP value of a sample into a persistent dentry/offset
239 * pair that can then be added to the global event buffer. We make
240 * sure to do this lookup before a mm->mmap modification happens so
241 * we don't lose track.
243 static unsigned long
244 lookup_dcookie(struct mm_struct *mm, unsigned long addr, off_t *offset)
246 unsigned long cookie = NO_COOKIE;
247 struct vm_area_struct *vma;
249 for (vma = find_vma(mm, addr); vma; vma = vma->vm_next) {
251 if (addr < vma->vm_start || addr >= vma->vm_end)
252 continue;
254 if (vma->vm_file) {
255 cookie = fast_get_dcookie(&vma->vm_file->f_path);
256 *offset = (vma->vm_pgoff << PAGE_SHIFT) + addr -
257 vma->vm_start;
258 } else {
259 /* must be an anonymous map */
260 *offset = addr;
263 break;
266 if (!vma)
267 cookie = INVALID_COOKIE;
269 return cookie;
272 static unsigned long last_cookie = INVALID_COOKIE;
274 static void add_cpu_switch(int i)
276 add_event_entry(ESCAPE_CODE);
277 add_event_entry(CPU_SWITCH_CODE);
278 add_event_entry(i);
279 last_cookie = INVALID_COOKIE;
282 static void add_kernel_ctx_switch(unsigned int in_kernel)
284 add_event_entry(ESCAPE_CODE);
285 if (in_kernel)
286 add_event_entry(KERNEL_ENTER_SWITCH_CODE);
287 else
288 add_event_entry(KERNEL_EXIT_SWITCH_CODE);
291 static void
292 add_user_ctx_switch(struct task_struct const *task, unsigned long cookie)
294 add_event_entry(ESCAPE_CODE);
295 add_event_entry(CTX_SWITCH_CODE);
296 add_event_entry(task->pid);
297 add_event_entry(cookie);
298 /* Another code for daemon back-compat */
299 add_event_entry(ESCAPE_CODE);
300 add_event_entry(CTX_TGID_CODE);
301 add_event_entry(task->tgid);
305 static void add_cookie_switch(unsigned long cookie)
307 add_event_entry(ESCAPE_CODE);
308 add_event_entry(COOKIE_SWITCH_CODE);
309 add_event_entry(cookie);
313 static void add_trace_begin(void)
315 add_event_entry(ESCAPE_CODE);
316 add_event_entry(TRACE_BEGIN_CODE);
319 #ifdef CONFIG_OPROFILE_IBS
321 #define IBS_FETCH_CODE_SIZE 2
322 #define IBS_OP_CODE_SIZE 5
325 * Add IBS fetch and op entries to event buffer
327 static void add_ibs_begin(int cpu, int code, struct mm_struct *mm)
329 unsigned long pc;
330 int i, count;
331 unsigned long cookie = 0;
332 off_t offset;
333 struct op_entry entry;
334 struct op_sample *sample;
336 sample = op_cpu_buffer_read_entry(&entry, cpu);
337 if (!sample)
338 return;
339 pc = sample->eip;
341 #ifdef __LP64__
342 pc += sample->event << 32;
343 #endif
345 if (mm) {
346 cookie = lookup_dcookie(mm, pc, &offset);
348 if (cookie == NO_COOKIE)
349 offset = pc;
350 if (cookie == INVALID_COOKIE) {
351 atomic_inc(&oprofile_stats.sample_lost_no_mapping);
352 offset = pc;
354 if (cookie != last_cookie) {
355 add_cookie_switch(cookie);
356 last_cookie = cookie;
358 } else
359 offset = pc;
361 add_event_entry(ESCAPE_CODE);
362 add_event_entry(code);
363 add_event_entry(offset); /* Offset from Dcookie */
365 /* we send the Dcookie offset, but send the raw Linear Add also*/
366 add_event_entry(sample->eip);
367 add_event_entry(sample->event);
369 if (code == IBS_FETCH_CODE)
370 count = IBS_FETCH_CODE_SIZE; /*IBS FETCH is 2 int64s*/
371 else
372 count = IBS_OP_CODE_SIZE; /*IBS OP is 5 int64s*/
374 for (i = 0; i < count; i++) {
375 sample = op_cpu_buffer_read_entry(&entry, cpu);
376 if (!sample)
377 return;
378 add_event_entry(sample->eip);
379 add_event_entry(sample->event);
382 return;
385 #endif
387 static inline void add_sample_entry(unsigned long offset, unsigned long event)
389 add_event_entry(offset);
390 add_event_entry(event);
395 * Add a sample to the global event buffer. If possible the
396 * sample is converted into a persistent dentry/offset pair
397 * for later lookup from userspace. Return 0 on failure.
399 static int
400 add_sample(struct mm_struct *mm, struct op_sample *s, int in_kernel)
402 unsigned long cookie;
403 off_t offset;
405 if (in_kernel) {
406 add_sample_entry(s->eip, s->event);
407 return 1;
410 /* add userspace sample */
412 if (!mm) {
413 atomic_inc(&oprofile_stats.sample_lost_no_mm);
414 return 0;
417 cookie = lookup_dcookie(mm, s->eip, &offset);
419 if (cookie == INVALID_COOKIE) {
420 atomic_inc(&oprofile_stats.sample_lost_no_mapping);
421 return 0;
424 if (cookie != last_cookie) {
425 add_cookie_switch(cookie);
426 last_cookie = cookie;
429 add_sample_entry(offset, s->event);
431 return 1;
435 static void release_mm(struct mm_struct *mm)
437 if (!mm)
438 return;
439 up_read(&mm->mmap_sem);
440 mmput(mm);
444 static struct mm_struct *take_tasks_mm(struct task_struct *task)
446 struct mm_struct *mm = get_task_mm(task);
447 if (mm)
448 down_read(&mm->mmap_sem);
449 return mm;
453 static inline int is_code(unsigned long val)
455 return val == ESCAPE_CODE;
459 /* Move tasks along towards death. Any tasks on dead_tasks
460 * will definitely have no remaining references in any
461 * CPU buffers at this point, because we use two lists,
462 * and to have reached the list, it must have gone through
463 * one full sync already.
465 static void process_task_mortuary(void)
467 unsigned long flags;
468 LIST_HEAD(local_dead_tasks);
469 struct task_struct *task;
470 struct task_struct *ttask;
472 spin_lock_irqsave(&task_mortuary, flags);
474 list_splice_init(&dead_tasks, &local_dead_tasks);
475 list_splice_init(&dying_tasks, &dead_tasks);
477 spin_unlock_irqrestore(&task_mortuary, flags);
479 list_for_each_entry_safe(task, ttask, &local_dead_tasks, tasks) {
480 list_del(&task->tasks);
481 free_task(task);
486 static void mark_done(int cpu)
488 int i;
490 cpu_set(cpu, marked_cpus);
492 for_each_online_cpu(i) {
493 if (!cpu_isset(i, marked_cpus))
494 return;
497 /* All CPUs have been processed at least once,
498 * we can process the mortuary once
500 process_task_mortuary();
502 cpus_clear(marked_cpus);
506 /* FIXME: this is not sufficient if we implement syscall barrier backtrace
507 * traversal, the code switch to sb_sample_start at first kernel enter/exit
508 * switch so we need a fifth state and some special handling in sync_buffer()
510 typedef enum {
511 sb_bt_ignore = -2,
512 sb_buffer_start,
513 sb_bt_start,
514 sb_sample_start,
515 } sync_buffer_state;
517 /* Sync one of the CPU's buffers into the global event buffer.
518 * Here we need to go through each batch of samples punctuated
519 * by context switch notes, taking the task's mmap_sem and doing
520 * lookup in task->mm->mmap to convert EIP into dcookie/offset
521 * value.
523 void sync_buffer(int cpu)
525 struct mm_struct *mm = NULL;
526 struct mm_struct *oldmm;
527 unsigned long val;
528 struct task_struct *new;
529 unsigned long cookie = 0;
530 int in_kernel = 1;
531 sync_buffer_state state = sb_buffer_start;
532 unsigned int i;
533 unsigned long available;
534 unsigned long flags;
535 struct op_entry entry;
536 struct op_sample *sample;
538 mutex_lock(&buffer_mutex);
540 add_cpu_switch(cpu);
542 op_cpu_buffer_reset(cpu);
543 available = op_cpu_buffer_entries(cpu);
545 for (i = 0; i < available; ++i) {
546 sample = op_cpu_buffer_read_entry(&entry, cpu);
547 if (!sample)
548 break;
550 if (is_code(sample->eip)) {
551 flags = sample->event;
552 if (flags & TRACE_BEGIN) {
553 state = sb_bt_start;
554 add_trace_begin();
556 if (flags & KERNEL_CTX_SWITCH) {
557 /* kernel/userspace switch */
558 in_kernel = flags & IS_KERNEL;
559 if (state == sb_buffer_start)
560 state = sb_sample_start;
561 add_kernel_ctx_switch(flags & IS_KERNEL);
563 if (flags & USER_CTX_SWITCH
564 && op_cpu_buffer_get_data(&entry, &val)) {
565 /* userspace context switch */
566 new = (struct task_struct *)val;
567 oldmm = mm;
568 release_mm(oldmm);
569 mm = take_tasks_mm(new);
570 if (mm != oldmm)
571 cookie = get_exec_dcookie(mm);
572 add_user_ctx_switch(new, cookie);
574 #ifdef CONFIG_OPROFILE_IBS
575 if (flags & IBS_FETCH_BEGIN)
576 add_ibs_begin(cpu, IBS_FETCH_CODE, mm);
577 if (flags & IBS_OP_BEGIN)
578 add_ibs_begin(cpu, IBS_OP_CODE, mm);
579 #endif
580 continue;
583 if (state < sb_bt_start)
584 /* ignore sample */
585 continue;
587 if (add_sample(mm, sample, in_kernel))
588 continue;
590 /* ignore backtraces if failed to add a sample */
591 if (state == sb_bt_start) {
592 state = sb_bt_ignore;
593 atomic_inc(&oprofile_stats.bt_lost_no_mapping);
596 release_mm(mm);
598 mark_done(cpu);
600 mutex_unlock(&buffer_mutex);
603 /* The function can be used to add a buffer worth of data directly to
604 * the kernel buffer. The buffer is assumed to be a circular buffer.
605 * Take the entries from index start and end at index end, wrapping
606 * at max_entries.
608 void oprofile_put_buff(unsigned long *buf, unsigned int start,
609 unsigned int stop, unsigned int max)
611 int i;
613 i = start;
615 mutex_lock(&buffer_mutex);
616 while (i != stop) {
617 add_event_entry(buf[i++]);
619 if (i >= max)
620 i = 0;
623 mutex_unlock(&buffer_mutex);