Port ring buffer to userspace, part 1
[lttng-ust.git] / libringbuffer / ring_buffer_frontend.c
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1/*
2 * ring_buffer_frontend.c
3 *
4 * (C) Copyright 2005-2010 - Mathieu Desnoyers <mathieu.desnoyers@efficios.com>
5 *
6 * Ring buffer wait-free buffer synchronization. Producer-consumer and flight
7 * recorder (overwrite) modes. See thesis:
8 *
9 * Desnoyers, Mathieu (2009), "Low-Impact Operating System Tracing", Ph.D.
10 * dissertation, Ecole Polytechnique de Montreal.
11 * http://www.lttng.org/pub/thesis/desnoyers-dissertation-2009-12.pdf
12 *
13 * - Algorithm presentation in Chapter 5:
14 * "Lockless Multi-Core High-Throughput Buffering".
15 * - Algorithm formal verification in Section 8.6:
16 * "Formal verification of LTTng"
17 *
18 * Author:
19 * Mathieu Desnoyers <mathieu.desnoyers@efficios.com>
20 *
21 * Inspired from LTT and RelayFS:
22 * Karim Yaghmour <karim@opersys.com>
23 * Tom Zanussi <zanussi@us.ibm.com>
24 * Bob Wisniewski <bob@watson.ibm.com>
25 * And from K42 :
26 * Bob Wisniewski <bob@watson.ibm.com>
27 *
28 * Buffer reader semantic :
29 *
30 * - get_subbuf_size
31 * while buffer is not finalized and empty
32 * - get_subbuf
33 * - if return value != 0, continue
34 * - splice one subbuffer worth of data to a pipe
35 * - splice the data from pipe to disk/network
36 * - put_subbuf
37 *
38 * Dual LGPL v2.1/GPL v2 license.
39 */
40
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41#include <urcu/compiler.h>
42
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43#include "config.h"
44#include "backend.h"
45#include "frontend.h"
46#include "iterator.h"
47#include "nohz.h"
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48
49/*
50 * Internal structure representing offsets to use at a sub-buffer switch.
51 */
52struct switch_offsets {
53 unsigned long begin, end, old;
54 size_t pre_header_padding, size;
55 unsigned int switch_new_start:1, switch_new_end:1, switch_old_start:1,
56 switch_old_end:1;
57};
58
59#ifdef CONFIG_NO_HZ
60enum tick_nohz_val {
61 TICK_NOHZ_STOP,
62 TICK_NOHZ_FLUSH,
63 TICK_NOHZ_RESTART,
64};
65
66static ATOMIC_NOTIFIER_HEAD(tick_nohz_notifier);
67#endif /* CONFIG_NO_HZ */
68
69static DEFINE_PER_CPU(spinlock_t, ring_buffer_nohz_lock);
70
71DEFINE_PER_CPU(unsigned int, lib_ring_buffer_nesting);
72EXPORT_PER_CPU_SYMBOL(lib_ring_buffer_nesting);
73
74static
75void lib_ring_buffer_print_errors(struct channel *chan,
76 struct lib_ring_buffer *buf, int cpu);
77
78/*
79 * Must be called under cpu hotplug protection.
80 */
81void lib_ring_buffer_free(struct lib_ring_buffer *buf)
82{
83 struct channel *chan = buf->backend.chan;
84
85 lib_ring_buffer_print_errors(chan, buf, buf->backend.cpu);
86 kfree(buf->commit_hot);
87 kfree(buf->commit_cold);
88
89 lib_ring_buffer_backend_free(&buf->backend);
90}
91
92/**
93 * lib_ring_buffer_reset - Reset ring buffer to initial values.
94 * @buf: Ring buffer.
95 *
96 * Effectively empty the ring buffer. Should be called when the buffer is not
97 * used for writing. The ring buffer can be opened for reading, but the reader
98 * should not be using the iterator concurrently with reset. The previous
99 * current iterator record is reset.
100 */
101void lib_ring_buffer_reset(struct lib_ring_buffer *buf)
102{
103 struct channel *chan = buf->backend.chan;
104 const struct lib_ring_buffer_config *config = chan->backend.config;
105 unsigned int i;
106
107 /*
108 * Reset iterator first. It will put the subbuffer if it currently holds
109 * it.
110 */
111 lib_ring_buffer_iterator_reset(buf);
112 v_set(config, &buf->offset, 0);
113 for (i = 0; i < chan->backend.num_subbuf; i++) {
114 v_set(config, &buf->commit_hot[i].cc, 0);
115 v_set(config, &buf->commit_hot[i].seq, 0);
116 v_set(config, &buf->commit_cold[i].cc_sb, 0);
117 }
118 atomic_long_set(&buf->consumed, 0);
119 atomic_set(&buf->record_disabled, 0);
120 v_set(config, &buf->last_tsc, 0);
121 lib_ring_buffer_backend_reset(&buf->backend);
122 /* Don't reset number of active readers */
123 v_set(config, &buf->records_lost_full, 0);
124 v_set(config, &buf->records_lost_wrap, 0);
125 v_set(config, &buf->records_lost_big, 0);
126 v_set(config, &buf->records_count, 0);
127 v_set(config, &buf->records_overrun, 0);
128 buf->finalized = 0;
129}
130EXPORT_SYMBOL_GPL(lib_ring_buffer_reset);
131
132/**
133 * channel_reset - Reset channel to initial values.
134 * @chan: Channel.
135 *
136 * Effectively empty the channel. Should be called when the channel is not used
137 * for writing. The channel can be opened for reading, but the reader should not
138 * be using the iterator concurrently with reset. The previous current iterator
139 * record is reset.
140 */
141void channel_reset(struct channel *chan)
142{
143 /*
144 * Reset iterators first. Will put the subbuffer if held for reading.
145 */
146 channel_iterator_reset(chan);
147 atomic_set(&chan->record_disabled, 0);
148 /* Don't reset commit_count_mask, still valid */
149 channel_backend_reset(&chan->backend);
150 /* Don't reset switch/read timer interval */
151 /* Don't reset notifiers and notifier enable bits */
152 /* Don't reset reader reference count */
153}
154EXPORT_SYMBOL_GPL(channel_reset);
155
156/*
157 * Must be called under cpu hotplug protection.
158 */
159int lib_ring_buffer_create(struct lib_ring_buffer *buf,
160 struct channel_backend *chanb, int cpu)
161{
162 const struct lib_ring_buffer_config *config = chanb->config;
14641deb 163 struct channel *chan = caa_container_of(chanb, struct channel, backend);
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164 void *priv = chanb->priv;
165 unsigned int num_subbuf;
166 size_t subbuf_header_size;
167 u64 tsc;
168 int ret;
169
170 /* Test for cpu hotplug */
171 if (buf->backend.allocated)
172 return 0;
173
174 /*
175 * Paranoia: per cpu dynamic allocation is not officially documented as
176 * zeroing the memory, so let's do it here too, just in case.
177 */
178 memset(buf, 0, sizeof(*buf));
179
180 ret = lib_ring_buffer_backend_create(&buf->backend, &chan->backend, cpu);
181 if (ret)
182 return ret;
183
184 buf->commit_hot =
185 kzalloc_node(ALIGN(sizeof(*buf->commit_hot)
186 * chan->backend.num_subbuf,
187 1 << INTERNODE_CACHE_SHIFT),
188 GFP_KERNEL, cpu_to_node(max(cpu, 0)));
189 if (!buf->commit_hot) {
190 ret = -ENOMEM;
191 goto free_chanbuf;
192 }
193
194 buf->commit_cold =
195 kzalloc_node(ALIGN(sizeof(*buf->commit_cold)
196 * chan->backend.num_subbuf,
197 1 << INTERNODE_CACHE_SHIFT),
198 GFP_KERNEL, cpu_to_node(max(cpu, 0)));
199 if (!buf->commit_cold) {
200 ret = -ENOMEM;
201 goto free_commit;
202 }
203
204 num_subbuf = chan->backend.num_subbuf;
205 init_waitqueue_head(&buf->read_wait);
206 raw_spin_lock_init(&buf->raw_tick_nohz_spinlock);
207
208 /*
209 * Write the subbuffer header for first subbuffer so we know the total
210 * duration of data gathering.
211 */
212 subbuf_header_size = config->cb.subbuffer_header_size();
213 v_set(config, &buf->offset, subbuf_header_size);
214 subbuffer_id_clear_noref(config, &buf->backend.buf_wsb[0].id);
215 tsc = config->cb.ring_buffer_clock_read(buf->backend.chan);
216 config->cb.buffer_begin(buf, tsc, 0);
217 v_add(config, subbuf_header_size, &buf->commit_hot[0].cc);
218
219 if (config->cb.buffer_create) {
220 ret = config->cb.buffer_create(buf, priv, cpu, chanb->name);
221 if (ret)
222 goto free_init;
223 }
224
225 /*
226 * Ensure the buffer is ready before setting it to allocated and setting
227 * the cpumask.
228 * Used for cpu hotplug vs cpumask iteration.
229 */
230 smp_wmb();
231 buf->backend.allocated = 1;
232
233 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU) {
234 CHAN_WARN_ON(chan, cpumask_test_cpu(cpu,
235 chan->backend.cpumask));
236 cpumask_set_cpu(cpu, chan->backend.cpumask);
237 }
238
239 return 0;
240
241 /* Error handling */
242free_init:
243 kfree(buf->commit_cold);
244free_commit:
245 kfree(buf->commit_hot);
246free_chanbuf:
247 lib_ring_buffer_backend_free(&buf->backend);
248 return ret;
249}
250
251static void switch_buffer_timer(unsigned long data)
252{
253 struct lib_ring_buffer *buf = (struct lib_ring_buffer *)data;
254 struct channel *chan = buf->backend.chan;
255 const struct lib_ring_buffer_config *config = chan->backend.config;
256
257 /*
258 * Only flush buffers periodically if readers are active.
259 */
260 if (atomic_long_read(&buf->active_readers))
261 lib_ring_buffer_switch_slow(buf, SWITCH_ACTIVE);
262
263 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU)
264 mod_timer_pinned(&buf->switch_timer,
265 jiffies + chan->switch_timer_interval);
266 else
267 mod_timer(&buf->switch_timer,
268 jiffies + chan->switch_timer_interval);
269}
270
271/*
272 * Called with ring_buffer_nohz_lock held for per-cpu buffers.
273 */
274static void lib_ring_buffer_start_switch_timer(struct lib_ring_buffer *buf)
275{
276 struct channel *chan = buf->backend.chan;
277 const struct lib_ring_buffer_config *config = chan->backend.config;
278
279 if (!chan->switch_timer_interval || buf->switch_timer_enabled)
280 return;
281 init_timer(&buf->switch_timer);
282 buf->switch_timer.function = switch_buffer_timer;
283 buf->switch_timer.expires = jiffies + chan->switch_timer_interval;
284 buf->switch_timer.data = (unsigned long)buf;
285 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU)
286 add_timer_on(&buf->switch_timer, buf->backend.cpu);
287 else
288 add_timer(&buf->switch_timer);
289 buf->switch_timer_enabled = 1;
290}
291
292/*
293 * Called with ring_buffer_nohz_lock held for per-cpu buffers.
294 */
295static void lib_ring_buffer_stop_switch_timer(struct lib_ring_buffer *buf)
296{
297 struct channel *chan = buf->backend.chan;
298
299 if (!chan->switch_timer_interval || !buf->switch_timer_enabled)
300 return;
301
302 del_timer_sync(&buf->switch_timer);
303 buf->switch_timer_enabled = 0;
304}
305
306/*
307 * Polling timer to check the channels for data.
308 */
309static void read_buffer_timer(unsigned long data)
310{
311 struct lib_ring_buffer *buf = (struct lib_ring_buffer *)data;
312 struct channel *chan = buf->backend.chan;
313 const struct lib_ring_buffer_config *config = chan->backend.config;
314
315 CHAN_WARN_ON(chan, !buf->backend.allocated);
316
317 if (atomic_long_read(&buf->active_readers)
318 && lib_ring_buffer_poll_deliver(config, buf, chan)) {
319 wake_up_interruptible(&buf->read_wait);
320 wake_up_interruptible(&chan->read_wait);
321 }
322
323 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU)
324 mod_timer_pinned(&buf->read_timer,
325 jiffies + chan->read_timer_interval);
326 else
327 mod_timer(&buf->read_timer,
328 jiffies + chan->read_timer_interval);
329}
330
331/*
332 * Called with ring_buffer_nohz_lock held for per-cpu buffers.
333 */
334static void lib_ring_buffer_start_read_timer(struct lib_ring_buffer *buf)
335{
336 struct channel *chan = buf->backend.chan;
337 const struct lib_ring_buffer_config *config = chan->backend.config;
338
339 if (config->wakeup != RING_BUFFER_WAKEUP_BY_TIMER
340 || !chan->read_timer_interval
341 || buf->read_timer_enabled)
342 return;
343
344 init_timer(&buf->read_timer);
345 buf->read_timer.function = read_buffer_timer;
346 buf->read_timer.expires = jiffies + chan->read_timer_interval;
347 buf->read_timer.data = (unsigned long)buf;
348
349 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU)
350 add_timer_on(&buf->read_timer, buf->backend.cpu);
351 else
352 add_timer(&buf->read_timer);
353 buf->read_timer_enabled = 1;
354}
355
356/*
357 * Called with ring_buffer_nohz_lock held for per-cpu buffers.
358 */
359static void lib_ring_buffer_stop_read_timer(struct lib_ring_buffer *buf)
360{
361 struct channel *chan = buf->backend.chan;
362 const struct lib_ring_buffer_config *config = chan->backend.config;
363
364 if (config->wakeup != RING_BUFFER_WAKEUP_BY_TIMER
365 || !chan->read_timer_interval
366 || !buf->read_timer_enabled)
367 return;
368
369 del_timer_sync(&buf->read_timer);
370 /*
371 * do one more check to catch data that has been written in the last
372 * timer period.
373 */
374 if (lib_ring_buffer_poll_deliver(config, buf, chan)) {
375 wake_up_interruptible(&buf->read_wait);
376 wake_up_interruptible(&chan->read_wait);
377 }
378 buf->read_timer_enabled = 0;
379}
380
381#ifdef CONFIG_HOTPLUG_CPU
382/**
383 * lib_ring_buffer_cpu_hp_callback - CPU hotplug callback
384 * @nb: notifier block
385 * @action: hotplug action to take
386 * @hcpu: CPU number
387 *
388 * Returns the success/failure of the operation. (%NOTIFY_OK, %NOTIFY_BAD)
389 */
390static
391int __cpuinit lib_ring_buffer_cpu_hp_callback(struct notifier_block *nb,
392 unsigned long action,
393 void *hcpu)
394{
395 unsigned int cpu = (unsigned long)hcpu;
14641deb 396 struct channel *chan = caa_container_of(nb, struct channel,
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397 cpu_hp_notifier);
398 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf, cpu);
399 const struct lib_ring_buffer_config *config = chan->backend.config;
400
401 if (!chan->cpu_hp_enable)
402 return NOTIFY_DONE;
403
404 CHAN_WARN_ON(chan, config->alloc == RING_BUFFER_ALLOC_GLOBAL);
405
406 switch (action) {
407 case CPU_DOWN_FAILED:
408 case CPU_DOWN_FAILED_FROZEN:
409 case CPU_ONLINE:
410 case CPU_ONLINE_FROZEN:
411 wake_up_interruptible(&chan->hp_wait);
412 lib_ring_buffer_start_switch_timer(buf);
413 lib_ring_buffer_start_read_timer(buf);
414 return NOTIFY_OK;
415
416 case CPU_DOWN_PREPARE:
417 case CPU_DOWN_PREPARE_FROZEN:
418 lib_ring_buffer_stop_switch_timer(buf);
419 lib_ring_buffer_stop_read_timer(buf);
420 return NOTIFY_OK;
421
422 case CPU_DEAD:
423 case CPU_DEAD_FROZEN:
424 /*
425 * Performing a buffer switch on a remote CPU. Performed by
426 * the CPU responsible for doing the hotunplug after the target
427 * CPU stopped running completely. Ensures that all data
428 * from that remote CPU is flushed.
429 */
430 lib_ring_buffer_switch_slow(buf, SWITCH_ACTIVE);
431 return NOTIFY_OK;
432
433 default:
434 return NOTIFY_DONE;
435 }
436}
437#endif
438
439#if defined(CONFIG_NO_HZ) && defined(CONFIG_LIB_RING_BUFFER)
440/*
441 * For per-cpu buffers, call the reader wakeups before switching the buffer, so
442 * that wake-up-tracing generated events are flushed before going idle (in
443 * tick_nohz). We test if the spinlock is locked to deal with the race where
444 * readers try to sample the ring buffer before we perform the switch. We let
445 * the readers retry in that case. If there is data in the buffer, the wake up
446 * is going to forbid the CPU running the reader thread from going idle.
447 */
448static int notrace ring_buffer_tick_nohz_callback(struct notifier_block *nb,
449 unsigned long val,
450 void *data)
451{
14641deb 452 struct channel *chan = caa_container_of(nb, struct channel,
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453 tick_nohz_notifier);
454 const struct lib_ring_buffer_config *config = chan->backend.config;
455 struct lib_ring_buffer *buf;
456 int cpu = smp_processor_id();
457
458 if (config->alloc != RING_BUFFER_ALLOC_PER_CPU) {
459 /*
460 * We don't support keeping the system idle with global buffers
461 * and streaming active. In order to do so, we would need to
462 * sample a non-nohz-cpumask racelessly with the nohz updates
463 * without adding synchronization overhead to nohz. Leave this
464 * use-case out for now.
465 */
466 return 0;
467 }
468
469 buf = channel_get_ring_buffer(config, chan, cpu);
470 switch (val) {
471 case TICK_NOHZ_FLUSH:
472 raw_spin_lock(&buf->raw_tick_nohz_spinlock);
473 if (config->wakeup == RING_BUFFER_WAKEUP_BY_TIMER
474 && chan->read_timer_interval
475 && atomic_long_read(&buf->active_readers)
476 && (lib_ring_buffer_poll_deliver(config, buf, chan)
477 || lib_ring_buffer_pending_data(config, buf, chan))) {
478 wake_up_interruptible(&buf->read_wait);
479 wake_up_interruptible(&chan->read_wait);
480 }
481 if (chan->switch_timer_interval)
482 lib_ring_buffer_switch_slow(buf, SWITCH_ACTIVE);
483 raw_spin_unlock(&buf->raw_tick_nohz_spinlock);
484 break;
485 case TICK_NOHZ_STOP:
486 spin_lock(&__get_cpu_var(ring_buffer_nohz_lock));
487 lib_ring_buffer_stop_switch_timer(buf);
488 lib_ring_buffer_stop_read_timer(buf);
489 spin_unlock(&__get_cpu_var(ring_buffer_nohz_lock));
490 break;
491 case TICK_NOHZ_RESTART:
492 spin_lock(&__get_cpu_var(ring_buffer_nohz_lock));
493 lib_ring_buffer_start_read_timer(buf);
494 lib_ring_buffer_start_switch_timer(buf);
495 spin_unlock(&__get_cpu_var(ring_buffer_nohz_lock));
496 break;
497 }
498
499 return 0;
500}
501
502void notrace lib_ring_buffer_tick_nohz_flush(void)
503{
504 atomic_notifier_call_chain(&tick_nohz_notifier, TICK_NOHZ_FLUSH,
505 NULL);
506}
507
508void notrace lib_ring_buffer_tick_nohz_stop(void)
509{
510 atomic_notifier_call_chain(&tick_nohz_notifier, TICK_NOHZ_STOP,
511 NULL);
512}
513
514void notrace lib_ring_buffer_tick_nohz_restart(void)
515{
516 atomic_notifier_call_chain(&tick_nohz_notifier, TICK_NOHZ_RESTART,
517 NULL);
518}
519#endif /* defined(CONFIG_NO_HZ) && defined(CONFIG_LIB_RING_BUFFER) */
520
521/*
522 * Holds CPU hotplug.
523 */
524static void channel_unregister_notifiers(struct channel *chan)
525{
526 const struct lib_ring_buffer_config *config = chan->backend.config;
527 int cpu;
528
529 channel_iterator_unregister_notifiers(chan);
530 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU) {
531#ifdef CONFIG_NO_HZ
532 /*
533 * Remove the nohz notifier first, so we are certain we stop
534 * the timers.
535 */
536 atomic_notifier_chain_unregister(&tick_nohz_notifier,
537 &chan->tick_nohz_notifier);
538 /*
539 * ring_buffer_nohz_lock will not be needed below, because
540 * we just removed the notifiers, which were the only source of
541 * concurrency.
542 */
543#endif /* CONFIG_NO_HZ */
544#ifdef CONFIG_HOTPLUG_CPU
545 get_online_cpus();
546 chan->cpu_hp_enable = 0;
547 for_each_online_cpu(cpu) {
548 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf,
549 cpu);
550 lib_ring_buffer_stop_switch_timer(buf);
551 lib_ring_buffer_stop_read_timer(buf);
552 }
553 put_online_cpus();
554 unregister_cpu_notifier(&chan->cpu_hp_notifier);
555#else
556 for_each_possible_cpu(cpu) {
557 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf,
558 cpu);
559 lib_ring_buffer_stop_switch_timer(buf);
560 lib_ring_buffer_stop_read_timer(buf);
561 }
562#endif
563 } else {
564 struct lib_ring_buffer *buf = chan->backend.buf;
565
566 lib_ring_buffer_stop_switch_timer(buf);
567 lib_ring_buffer_stop_read_timer(buf);
568 }
569 channel_backend_unregister_notifiers(&chan->backend);
570}
571
572static void channel_free(struct channel *chan)
573{
574 channel_iterator_free(chan);
575 channel_backend_free(&chan->backend);
576 kfree(chan);
577}
578
579/**
580 * channel_create - Create channel.
581 * @config: ring buffer instance configuration
582 * @name: name of the channel
583 * @priv: ring buffer client private data
584 * @buf_addr: pointer the the beginning of the preallocated buffer contiguous
585 * address mapping. It is used only by RING_BUFFER_STATIC
586 * configuration. It can be set to NULL for other backends.
587 * @subbuf_size: subbuffer size
588 * @num_subbuf: number of subbuffers
589 * @switch_timer_interval: Time interval (in us) to fill sub-buffers with
590 * padding to let readers get those sub-buffers.
591 * Used for live streaming.
592 * @read_timer_interval: Time interval (in us) to wake up pending readers.
593 *
594 * Holds cpu hotplug.
595 * Returns NULL on failure.
596 */
597struct channel *channel_create(const struct lib_ring_buffer_config *config,
598 const char *name, void *priv, void *buf_addr,
599 size_t subbuf_size,
600 size_t num_subbuf, unsigned int switch_timer_interval,
601 unsigned int read_timer_interval)
602{
603 int ret, cpu;
604 struct channel *chan;
605
606 if (lib_ring_buffer_check_config(config, switch_timer_interval,
607 read_timer_interval))
608 return NULL;
609
610 chan = kzalloc(sizeof(struct channel), GFP_KERNEL);
611 if (!chan)
612 return NULL;
613
614 ret = channel_backend_init(&chan->backend, name, config, priv,
615 subbuf_size, num_subbuf);
616 if (ret)
617 goto error;
618
619 ret = channel_iterator_init(chan);
620 if (ret)
621 goto error_free_backend;
622
623 chan->commit_count_mask = (~0UL >> chan->backend.num_subbuf_order);
624 chan->switch_timer_interval = usecs_to_jiffies(switch_timer_interval);
625 chan->read_timer_interval = usecs_to_jiffies(read_timer_interval);
626 kref_init(&chan->ref);
627 init_waitqueue_head(&chan->read_wait);
628 init_waitqueue_head(&chan->hp_wait);
629
630 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU) {
631#if defined(CONFIG_NO_HZ) && defined(CONFIG_LIB_RING_BUFFER)
632 /* Only benefit from NO_HZ idle with per-cpu buffers for now. */
633 chan->tick_nohz_notifier.notifier_call =
634 ring_buffer_tick_nohz_callback;
635 chan->tick_nohz_notifier.priority = ~0U;
636 atomic_notifier_chain_register(&tick_nohz_notifier,
637 &chan->tick_nohz_notifier);
638#endif /* defined(CONFIG_NO_HZ) && defined(CONFIG_LIB_RING_BUFFER) */
639
640 /*
641 * In case of non-hotplug cpu, if the ring-buffer is allocated
642 * in early initcall, it will not be notified of secondary cpus.
643 * In that off case, we need to allocate for all possible cpus.
644 */
645#ifdef CONFIG_HOTPLUG_CPU
646 chan->cpu_hp_notifier.notifier_call =
647 lib_ring_buffer_cpu_hp_callback;
648 chan->cpu_hp_notifier.priority = 6;
649 register_cpu_notifier(&chan->cpu_hp_notifier);
650
651 get_online_cpus();
652 for_each_online_cpu(cpu) {
653 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf,
654 cpu);
655 spin_lock(&per_cpu(ring_buffer_nohz_lock, cpu));
656 lib_ring_buffer_start_switch_timer(buf);
657 lib_ring_buffer_start_read_timer(buf);
658 spin_unlock(&per_cpu(ring_buffer_nohz_lock, cpu));
659 }
660 chan->cpu_hp_enable = 1;
661 put_online_cpus();
662#else
663 for_each_possible_cpu(cpu) {
664 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf,
665 cpu);
666 spin_lock(&per_cpu(ring_buffer_nohz_lock, cpu));
667 lib_ring_buffer_start_switch_timer(buf);
668 lib_ring_buffer_start_read_timer(buf);
669 spin_unlock(&per_cpu(ring_buffer_nohz_lock, cpu));
670 }
671#endif
672 } else {
673 struct lib_ring_buffer *buf = chan->backend.buf;
674
675 lib_ring_buffer_start_switch_timer(buf);
676 lib_ring_buffer_start_read_timer(buf);
677 }
678
679 return chan;
680
681error_free_backend:
682 channel_backend_free(&chan->backend);
683error:
684 kfree(chan);
685 return NULL;
686}
687EXPORT_SYMBOL_GPL(channel_create);
688
689static
690void channel_release(struct kref *kref)
691{
14641deb 692 struct channel *chan = caa_container_of(kref, struct channel, ref);
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693 channel_free(chan);
694}
695
696/**
697 * channel_destroy - Finalize, wait for q.s. and destroy channel.
698 * @chan: channel to destroy
699 *
700 * Holds cpu hotplug.
701 * Call "destroy" callback, finalize channels, wait for readers to release their
702 * reference, then destroy ring buffer data. Note that when readers have
703 * completed data consumption of finalized channels, get_subbuf() will return
704 * -ENODATA. They should release their handle at that point.
705 * Returns the private data pointer.
706 */
707void *channel_destroy(struct channel *chan)
708{
709 int cpu;
710 const struct lib_ring_buffer_config *config = chan->backend.config;
711 void *priv;
712
713 channel_unregister_notifiers(chan);
714
715 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU) {
716 /*
717 * No need to hold cpu hotplug, because all notifiers have been
718 * unregistered.
719 */
720 for_each_channel_cpu(cpu, chan) {
721 struct lib_ring_buffer *buf = per_cpu_ptr(chan->backend.buf,
722 cpu);
723
724 if (config->cb.buffer_finalize)
725 config->cb.buffer_finalize(buf,
726 chan->backend.priv,
727 cpu);
728 if (buf->backend.allocated)
729 lib_ring_buffer_switch_slow(buf, SWITCH_FLUSH);
730 /*
731 * Perform flush before writing to finalized.
732 */
733 smp_wmb();
14641deb 734 CMM_ACCESS_ONCE(buf->finalized) = 1;
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735 wake_up_interruptible(&buf->read_wait);
736 }
737 } else {
738 struct lib_ring_buffer *buf = chan->backend.buf;
739
740 if (config->cb.buffer_finalize)
741 config->cb.buffer_finalize(buf, chan->backend.priv, -1);
742 if (buf->backend.allocated)
743 lib_ring_buffer_switch_slow(buf, SWITCH_FLUSH);
744 /*
745 * Perform flush before writing to finalized.
746 */
747 smp_wmb();
14641deb 748 CMM_ACCESS_ONCE(buf->finalized) = 1;
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749 wake_up_interruptible(&buf->read_wait);
750 }
14641deb 751 CMM_ACCESS_ONCE(chan->finalized) = 1;
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752 wake_up_interruptible(&chan->hp_wait);
753 wake_up_interruptible(&chan->read_wait);
754 kref_put(&chan->ref, channel_release);
755 priv = chan->backend.priv;
756 return priv;
757}
758EXPORT_SYMBOL_GPL(channel_destroy);
759
760struct lib_ring_buffer *channel_get_ring_buffer(
761 const struct lib_ring_buffer_config *config,
762 struct channel *chan, int cpu)
763{
764 if (config->alloc == RING_BUFFER_ALLOC_GLOBAL)
765 return chan->backend.buf;
766 else
767 return per_cpu_ptr(chan->backend.buf, cpu);
768}
769EXPORT_SYMBOL_GPL(channel_get_ring_buffer);
770
771int lib_ring_buffer_open_read(struct lib_ring_buffer *buf)
772{
773 struct channel *chan = buf->backend.chan;
774
775 if (!atomic_long_add_unless(&buf->active_readers, 1, 1))
776 return -EBUSY;
777 kref_get(&chan->ref);
778 smp_mb__after_atomic_inc();
779 return 0;
780}
781EXPORT_SYMBOL_GPL(lib_ring_buffer_open_read);
782
783void lib_ring_buffer_release_read(struct lib_ring_buffer *buf)
784{
785 struct channel *chan = buf->backend.chan;
786
787 CHAN_WARN_ON(chan, atomic_long_read(&buf->active_readers) != 1);
788 smp_mb__before_atomic_dec();
789 atomic_long_dec(&buf->active_readers);
790 kref_put(&chan->ref, channel_release);
791}
792EXPORT_SYMBOL_GPL(lib_ring_buffer_release_read);
793
794/*
795 * Promote compiler barrier to a smp_mb().
796 * For the specific ring buffer case, this IPI call should be removed if the
797 * architecture does not reorder writes. This should eventually be provided by
798 * a separate architecture-specific infrastructure.
799 */
800static void remote_mb(void *info)
801{
802 smp_mb();
803}
804
805/**
806 * lib_ring_buffer_snapshot - save subbuffer position snapshot (for read)
807 * @buf: ring buffer
808 * @consumed: consumed count indicating the position where to read
809 * @produced: produced count, indicates position when to stop reading
810 *
811 * Returns -ENODATA if buffer is finalized, -EAGAIN if there is currently no
812 * data to read at consumed position, or 0 if the get operation succeeds.
813 * Busy-loop trying to get data if the tick_nohz sequence lock is held.
814 */
815
816int lib_ring_buffer_snapshot(struct lib_ring_buffer *buf,
817 unsigned long *consumed, unsigned long *produced)
818{
819 struct channel *chan = buf->backend.chan;
820 const struct lib_ring_buffer_config *config = chan->backend.config;
821 unsigned long consumed_cur, write_offset;
822 int finalized;
823
824retry:
14641deb 825 finalized = CMM_ACCESS_ONCE(buf->finalized);
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826 /*
827 * Read finalized before counters.
828 */
829 smp_rmb();
830 consumed_cur = atomic_long_read(&buf->consumed);
831 /*
832 * No need to issue a memory barrier between consumed count read and
833 * write offset read, because consumed count can only change
834 * concurrently in overwrite mode, and we keep a sequence counter
835 * identifier derived from the write offset to check we are getting
836 * the same sub-buffer we are expecting (the sub-buffers are atomically
837 * "tagged" upon writes, tags are checked upon read).
838 */
839 write_offset = v_read(config, &buf->offset);
840
841 /*
842 * Check that we are not about to read the same subbuffer in
843 * which the writer head is.
844 */
845 if (subbuf_trunc(write_offset, chan) - subbuf_trunc(consumed_cur, chan)
846 == 0)
847 goto nodata;
848
849 *consumed = consumed_cur;
850 *produced = subbuf_trunc(write_offset, chan);
851
852 return 0;
853
854nodata:
855 /*
856 * The memory barriers __wait_event()/wake_up_interruptible() take care
857 * of "raw_spin_is_locked" memory ordering.
858 */
859 if (finalized)
860 return -ENODATA;
861 else if (raw_spin_is_locked(&buf->raw_tick_nohz_spinlock))
862 goto retry;
863 else
864 return -EAGAIN;
865}
866EXPORT_SYMBOL_GPL(lib_ring_buffer_snapshot);
867
868/**
869 * lib_ring_buffer_put_snapshot - move consumed counter forward
870 * @buf: ring buffer
871 * @consumed_new: new consumed count value
872 */
873void lib_ring_buffer_move_consumer(struct lib_ring_buffer *buf,
874 unsigned long consumed_new)
875{
876 struct lib_ring_buffer_backend *bufb = &buf->backend;
877 struct channel *chan = bufb->chan;
878 unsigned long consumed;
879
880 CHAN_WARN_ON(chan, atomic_long_read(&buf->active_readers) != 1);
881
882 /*
883 * Only push the consumed value forward.
884 * If the consumed cmpxchg fails, this is because we have been pushed by
885 * the writer in flight recorder mode.
886 */
887 consumed = atomic_long_read(&buf->consumed);
888 while ((long) consumed - (long) consumed_new < 0)
889 consumed = atomic_long_cmpxchg(&buf->consumed, consumed,
890 consumed_new);
891}
892EXPORT_SYMBOL_GPL(lib_ring_buffer_move_consumer);
893
894/**
895 * lib_ring_buffer_get_subbuf - get exclusive access to subbuffer for reading
896 * @buf: ring buffer
897 * @consumed: consumed count indicating the position where to read
898 *
899 * Returns -ENODATA if buffer is finalized, -EAGAIN if there is currently no
900 * data to read at consumed position, or 0 if the get operation succeeds.
901 * Busy-loop trying to get data if the tick_nohz sequence lock is held.
902 */
903int lib_ring_buffer_get_subbuf(struct lib_ring_buffer *buf,
904 unsigned long consumed)
905{
906 struct channel *chan = buf->backend.chan;
907 const struct lib_ring_buffer_config *config = chan->backend.config;
908 unsigned long consumed_cur, consumed_idx, commit_count, write_offset;
909 int ret;
910 int finalized;
911
912retry:
14641deb 913 finalized = CMM_ACCESS_ONCE(buf->finalized);
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914 /*
915 * Read finalized before counters.
916 */
917 smp_rmb();
918 consumed_cur = atomic_long_read(&buf->consumed);
919 consumed_idx = subbuf_index(consumed, chan);
920 commit_count = v_read(config, &buf->commit_cold[consumed_idx].cc_sb);
921 /*
922 * Make sure we read the commit count before reading the buffer
923 * data and the write offset. Correct consumed offset ordering
924 * wrt commit count is insured by the use of cmpxchg to update
925 * the consumed offset.
926 * smp_call_function_single can fail if the remote CPU is offline,
927 * this is OK because then there is no wmb to execute there.
928 * If our thread is executing on the same CPU as the on the buffers
929 * belongs to, we don't have to synchronize it at all. If we are
930 * migrated, the scheduler will take care of the memory barriers.
931 * Normally, smp_call_function_single() should ensure program order when
932 * executing the remote function, which implies that it surrounds the
933 * function execution with :
934 * smp_mb()
935 * send IPI
936 * csd_lock_wait
937 * recv IPI
938 * smp_mb()
939 * exec. function
940 * smp_mb()
941 * csd unlock
942 * smp_mb()
943 *
944 * However, smp_call_function_single() does not seem to clearly execute
945 * such barriers. It depends on spinlock semantic to provide the barrier
946 * before executing the IPI and, when busy-looping, csd_lock_wait only
947 * executes smp_mb() when it has to wait for the other CPU.
948 *
949 * I don't trust this code. Therefore, let's add the smp_mb() sequence
950 * required ourself, even if duplicated. It has no performance impact
951 * anyway.
952 *
953 * smp_mb() is needed because smp_rmb() and smp_wmb() only order read vs
954 * read and write vs write. They do not ensure core synchronization. We
955 * really have to ensure total order between the 3 barriers running on
956 * the 2 CPUs.
957 */
958 if (config->ipi == RING_BUFFER_IPI_BARRIER) {
959 if (config->sync == RING_BUFFER_SYNC_PER_CPU
960 && config->alloc == RING_BUFFER_ALLOC_PER_CPU) {
961 if (raw_smp_processor_id() != buf->backend.cpu) {
962 /* Total order with IPI handler smp_mb() */
963 smp_mb();
964 smp_call_function_single(buf->backend.cpu,
965 remote_mb, NULL, 1);
966 /* Total order with IPI handler smp_mb() */
967 smp_mb();
968 }
969 } else {
970 /* Total order with IPI handler smp_mb() */
971 smp_mb();
972 smp_call_function(remote_mb, NULL, 1);
973 /* Total order with IPI handler smp_mb() */
974 smp_mb();
975 }
976 } else {
977 /*
978 * Local rmb to match the remote wmb to read the commit count
979 * before the buffer data and the write offset.
980 */
981 smp_rmb();
982 }
983
984 write_offset = v_read(config, &buf->offset);
985
986 /*
987 * Check that the buffer we are getting is after or at consumed_cur
988 * position.
989 */
990 if ((long) subbuf_trunc(consumed, chan)
991 - (long) subbuf_trunc(consumed_cur, chan) < 0)
992 goto nodata;
993
994 /*
995 * Check that the subbuffer we are trying to consume has been
996 * already fully committed.
997 */
998 if (((commit_count - chan->backend.subbuf_size)
999 & chan->commit_count_mask)
1000 - (buf_trunc(consumed_cur, chan)
1001 >> chan->backend.num_subbuf_order)
1002 != 0)
1003 goto nodata;
1004
1005 /*
1006 * Check that we are not about to read the same subbuffer in
1007 * which the writer head is.
1008 */
1009 if (subbuf_trunc(write_offset, chan) - subbuf_trunc(consumed_cur, chan)
1010 == 0)
1011 goto nodata;
1012
1013 /*
1014 * Failure to get the subbuffer causes a busy-loop retry without going
1015 * to a wait queue. These are caused by short-lived race windows where
1016 * the writer is getting access to a subbuffer we were trying to get
1017 * access to. Also checks that the "consumed" buffer count we are
1018 * looking for matches the one contained in the subbuffer id.
1019 */
1020 ret = update_read_sb_index(config, &buf->backend, &chan->backend,
1021 consumed_idx, buf_trunc_val(consumed, chan));
1022 if (ret)
1023 goto retry;
1024 subbuffer_id_clear_noref(config, &buf->backend.buf_rsb.id);
1025
1026 buf->get_subbuf_consumed = consumed;
1027 buf->get_subbuf = 1;
1028
1029 return 0;
1030
1031nodata:
1032 /*
1033 * The memory barriers __wait_event()/wake_up_interruptible() take care
1034 * of "raw_spin_is_locked" memory ordering.
1035 */
1036 if (finalized)
1037 return -ENODATA;
1038 else if (raw_spin_is_locked(&buf->raw_tick_nohz_spinlock))
1039 goto retry;
1040 else
1041 return -EAGAIN;
1042}
1043EXPORT_SYMBOL_GPL(lib_ring_buffer_get_subbuf);
1044
1045/**
1046 * lib_ring_buffer_put_subbuf - release exclusive subbuffer access
1047 * @buf: ring buffer
1048 */
1049void lib_ring_buffer_put_subbuf(struct lib_ring_buffer *buf)
1050{
1051 struct lib_ring_buffer_backend *bufb = &buf->backend;
1052 struct channel *chan = bufb->chan;
1053 const struct lib_ring_buffer_config *config = chan->backend.config;
1054 unsigned long read_sb_bindex, consumed_idx, consumed;
1055
1056 CHAN_WARN_ON(chan, atomic_long_read(&buf->active_readers) != 1);
1057
1058 if (!buf->get_subbuf) {
1059 /*
1060 * Reader puts a subbuffer it did not get.
1061 */
1062 CHAN_WARN_ON(chan, 1);
1063 return;
1064 }
1065 consumed = buf->get_subbuf_consumed;
1066 buf->get_subbuf = 0;
1067
1068 /*
1069 * Clear the records_unread counter. (overruns counter)
1070 * Can still be non-zero if a file reader simply grabbed the data
1071 * without using iterators.
1072 * Can be below zero if an iterator is used on a snapshot more than
1073 * once.
1074 */
1075 read_sb_bindex = subbuffer_id_get_index(config, bufb->buf_rsb.id);
1076 v_add(config, v_read(config,
1077 &bufb->array[read_sb_bindex]->records_unread),
1078 &bufb->records_read);
1079 v_set(config, &bufb->array[read_sb_bindex]->records_unread, 0);
1080 CHAN_WARN_ON(chan, config->mode == RING_BUFFER_OVERWRITE
1081 && subbuffer_id_is_noref(config, bufb->buf_rsb.id));
1082 subbuffer_id_set_noref(config, &bufb->buf_rsb.id);
1083
1084 /*
1085 * Exchange the reader subbuffer with the one we put in its place in the
1086 * writer subbuffer table. Expect the original consumed count. If
1087 * update_read_sb_index fails, this is because the writer updated the
1088 * subbuffer concurrently. We should therefore keep the subbuffer we
1089 * currently have: it has become invalid to try reading this sub-buffer
1090 * consumed count value anyway.
1091 */
1092 consumed_idx = subbuf_index(consumed, chan);
1093 update_read_sb_index(config, &buf->backend, &chan->backend,
1094 consumed_idx, buf_trunc_val(consumed, chan));
1095 /*
1096 * update_read_sb_index return value ignored. Don't exchange sub-buffer
1097 * if the writer concurrently updated it.
1098 */
1099}
1100EXPORT_SYMBOL_GPL(lib_ring_buffer_put_subbuf);
1101
1102/*
1103 * cons_offset is an iterator on all subbuffer offsets between the reader
1104 * position and the writer position. (inclusive)
1105 */
1106static
1107void lib_ring_buffer_print_subbuffer_errors(struct lib_ring_buffer *buf,
1108 struct channel *chan,
1109 unsigned long cons_offset,
1110 int cpu)
1111{
1112 const struct lib_ring_buffer_config *config = chan->backend.config;
1113 unsigned long cons_idx, commit_count, commit_count_sb;
1114
1115 cons_idx = subbuf_index(cons_offset, chan);
1116 commit_count = v_read(config, &buf->commit_hot[cons_idx].cc);
1117 commit_count_sb = v_read(config, &buf->commit_cold[cons_idx].cc_sb);
1118
1119 if (subbuf_offset(commit_count, chan) != 0)
1120 printk(KERN_WARNING
1121 "ring buffer %s, cpu %d: "
1122 "commit count in subbuffer %lu,\n"
1123 "expecting multiples of %lu bytes\n"
1124 " [ %lu bytes committed, %lu bytes reader-visible ]\n",
1125 chan->backend.name, cpu, cons_idx,
1126 chan->backend.subbuf_size,
1127 commit_count, commit_count_sb);
1128
1129 printk(KERN_DEBUG "ring buffer: %s, cpu %d: %lu bytes committed\n",
1130 chan->backend.name, cpu, commit_count);
1131}
1132
1133static
1134void lib_ring_buffer_print_buffer_errors(struct lib_ring_buffer *buf,
1135 struct channel *chan,
1136 void *priv, int cpu)
1137{
1138 const struct lib_ring_buffer_config *config = chan->backend.config;
1139 unsigned long write_offset, cons_offset;
1140
1141 /*
1142 * Can be called in the error path of allocation when
1143 * trans_channel_data is not yet set.
1144 */
1145 if (!chan)
1146 return;
1147 /*
1148 * No need to order commit_count, write_offset and cons_offset reads
1149 * because we execute at teardown when no more writer nor reader
1150 * references are left.
1151 */
1152 write_offset = v_read(config, &buf->offset);
1153 cons_offset = atomic_long_read(&buf->consumed);
1154 if (write_offset != cons_offset)
1155 printk(KERN_WARNING
1156 "ring buffer %s, cpu %d: "
1157 "non-consumed data\n"
1158 " [ %lu bytes written, %lu bytes read ]\n",
1159 chan->backend.name, cpu, write_offset, cons_offset);
1160
1161 for (cons_offset = atomic_long_read(&buf->consumed);
1162 (long) (subbuf_trunc((unsigned long) v_read(config, &buf->offset),
1163 chan)
1164 - cons_offset) > 0;
1165 cons_offset = subbuf_align(cons_offset, chan))
1166 lib_ring_buffer_print_subbuffer_errors(buf, chan, cons_offset,
1167 cpu);
1168}
1169
1170static
1171void lib_ring_buffer_print_errors(struct channel *chan,
1172 struct lib_ring_buffer *buf, int cpu)
1173{
1174 const struct lib_ring_buffer_config *config = chan->backend.config;
1175 void *priv = chan->backend.priv;
1176
1177 printk(KERN_DEBUG "ring buffer %s, cpu %d: %lu records written, "
1178 "%lu records overrun\n",
1179 chan->backend.name, cpu,
1180 v_read(config, &buf->records_count),
1181 v_read(config, &buf->records_overrun));
1182
1183 if (v_read(config, &buf->records_lost_full)
1184 || v_read(config, &buf->records_lost_wrap)
1185 || v_read(config, &buf->records_lost_big))
1186 printk(KERN_WARNING
1187 "ring buffer %s, cpu %d: records were lost. Caused by:\n"
1188 " [ %lu buffer full, %lu nest buffer wrap-around, "
1189 "%lu event too big ]\n",
1190 chan->backend.name, cpu,
1191 v_read(config, &buf->records_lost_full),
1192 v_read(config, &buf->records_lost_wrap),
1193 v_read(config, &buf->records_lost_big));
1194
1195 lib_ring_buffer_print_buffer_errors(buf, chan, priv, cpu);
1196}
1197
1198/*
1199 * lib_ring_buffer_switch_old_start: Populate old subbuffer header.
1200 *
1201 * Only executed when the buffer is finalized, in SWITCH_FLUSH.
1202 */
1203static
1204void lib_ring_buffer_switch_old_start(struct lib_ring_buffer *buf,
1205 struct channel *chan,
1206 struct switch_offsets *offsets,
1207 u64 tsc)
1208{
1209 const struct lib_ring_buffer_config *config = chan->backend.config;
1210 unsigned long oldidx = subbuf_index(offsets->old, chan);
1211 unsigned long commit_count;
1212
1213 config->cb.buffer_begin(buf, tsc, oldidx);
1214
1215 /*
1216 * Order all writes to buffer before the commit count update that will
1217 * determine that the subbuffer is full.
1218 */
1219 if (config->ipi == RING_BUFFER_IPI_BARRIER) {
1220 /*
1221 * Must write slot data before incrementing commit count. This
1222 * compiler barrier is upgraded into a smp_mb() by the IPI sent
1223 * by get_subbuf().
1224 */
1225 barrier();
1226 } else
1227 smp_wmb();
1228 v_add(config, config->cb.subbuffer_header_size(),
1229 &buf->commit_hot[oldidx].cc);
1230 commit_count = v_read(config, &buf->commit_hot[oldidx].cc);
1231 /* Check if the written buffer has to be delivered */
1232 lib_ring_buffer_check_deliver(config, buf, chan, offsets->old,
1233 commit_count, oldidx);
1234 lib_ring_buffer_write_commit_counter(config, buf, chan, oldidx,
1235 offsets->old, commit_count,
1236 config->cb.subbuffer_header_size());
1237}
1238
1239/*
1240 * lib_ring_buffer_switch_old_end: switch old subbuffer
1241 *
1242 * Note : offset_old should never be 0 here. It is ok, because we never perform
1243 * buffer switch on an empty subbuffer in SWITCH_ACTIVE mode. The caller
1244 * increments the offset_old value when doing a SWITCH_FLUSH on an empty
1245 * subbuffer.
1246 */
1247static
1248void lib_ring_buffer_switch_old_end(struct lib_ring_buffer *buf,
1249 struct channel *chan,
1250 struct switch_offsets *offsets,
1251 u64 tsc)
1252{
1253 const struct lib_ring_buffer_config *config = chan->backend.config;
1254 unsigned long oldidx = subbuf_index(offsets->old - 1, chan);
1255 unsigned long commit_count, padding_size, data_size;
1256
1257 data_size = subbuf_offset(offsets->old - 1, chan) + 1;
1258 padding_size = chan->backend.subbuf_size - data_size;
1259 subbuffer_set_data_size(config, &buf->backend, oldidx, data_size);
1260
1261 /*
1262 * Order all writes to buffer before the commit count update that will
1263 * determine that the subbuffer is full.
1264 */
1265 if (config->ipi == RING_BUFFER_IPI_BARRIER) {
1266 /*
1267 * Must write slot data before incrementing commit count. This
1268 * compiler barrier is upgraded into a smp_mb() by the IPI sent
1269 * by get_subbuf().
1270 */
1271 barrier();
1272 } else
1273 smp_wmb();
1274 v_add(config, padding_size, &buf->commit_hot[oldidx].cc);
1275 commit_count = v_read(config, &buf->commit_hot[oldidx].cc);
1276 lib_ring_buffer_check_deliver(config, buf, chan, offsets->old - 1,
1277 commit_count, oldidx);
1278 lib_ring_buffer_write_commit_counter(config, buf, chan, oldidx,
1279 offsets->old, commit_count,
1280 padding_size);
1281}
1282
1283/*
1284 * lib_ring_buffer_switch_new_start: Populate new subbuffer.
1285 *
1286 * This code can be executed unordered : writers may already have written to the
1287 * sub-buffer before this code gets executed, caution. The commit makes sure
1288 * that this code is executed before the deliver of this sub-buffer.
1289 */
1290static
1291void lib_ring_buffer_switch_new_start(struct lib_ring_buffer *buf,
1292 struct channel *chan,
1293 struct switch_offsets *offsets,
1294 u64 tsc)
1295{
1296 const struct lib_ring_buffer_config *config = chan->backend.config;
1297 unsigned long beginidx = subbuf_index(offsets->begin, chan);
1298 unsigned long commit_count;
1299
1300 config->cb.buffer_begin(buf, tsc, beginidx);
1301
1302 /*
1303 * Order all writes to buffer before the commit count update that will
1304 * determine that the subbuffer is full.
1305 */
1306 if (config->ipi == RING_BUFFER_IPI_BARRIER) {
1307 /*
1308 * Must write slot data before incrementing commit count. This
1309 * compiler barrier is upgraded into a smp_mb() by the IPI sent
1310 * by get_subbuf().
1311 */
1312 barrier();
1313 } else
1314 smp_wmb();
1315 v_add(config, config->cb.subbuffer_header_size(),
1316 &buf->commit_hot[beginidx].cc);
1317 commit_count = v_read(config, &buf->commit_hot[beginidx].cc);
1318 /* Check if the written buffer has to be delivered */
1319 lib_ring_buffer_check_deliver(config, buf, chan, offsets->begin,
1320 commit_count, beginidx);
1321 lib_ring_buffer_write_commit_counter(config, buf, chan, beginidx,
1322 offsets->begin, commit_count,
1323 config->cb.subbuffer_header_size());
1324}
1325
1326/*
1327 * lib_ring_buffer_switch_new_end: finish switching current subbuffer
1328 *
1329 * The only remaining threads could be the ones with pending commits. They will
1330 * have to do the deliver themselves.
1331 */
1332static
1333void lib_ring_buffer_switch_new_end(struct lib_ring_buffer *buf,
1334 struct channel *chan,
1335 struct switch_offsets *offsets,
1336 u64 tsc)
1337{
1338 const struct lib_ring_buffer_config *config = chan->backend.config;
1339 unsigned long endidx = subbuf_index(offsets->end - 1, chan);
1340 unsigned long commit_count, padding_size, data_size;
1341
1342 data_size = subbuf_offset(offsets->end - 1, chan) + 1;
1343 padding_size = chan->backend.subbuf_size - data_size;
1344 subbuffer_set_data_size(config, &buf->backend, endidx, data_size);
1345
1346 /*
1347 * Order all writes to buffer before the commit count update that will
1348 * determine that the subbuffer is full.
1349 */
1350 if (config->ipi == RING_BUFFER_IPI_BARRIER) {
1351 /*
1352 * Must write slot data before incrementing commit count. This
1353 * compiler barrier is upgraded into a smp_mb() by the IPI sent
1354 * by get_subbuf().
1355 */
1356 barrier();
1357 } else
1358 smp_wmb();
1359 v_add(config, padding_size, &buf->commit_hot[endidx].cc);
1360 commit_count = v_read(config, &buf->commit_hot[endidx].cc);
1361 lib_ring_buffer_check_deliver(config, buf, chan, offsets->end - 1,
1362 commit_count, endidx);
1363 lib_ring_buffer_write_commit_counter(config, buf, chan, endidx,
1364 offsets->end, commit_count,
1365 padding_size);
1366}
1367
1368/*
1369 * Returns :
1370 * 0 if ok
1371 * !0 if execution must be aborted.
1372 */
1373static
1374int lib_ring_buffer_try_switch_slow(enum switch_mode mode,
1375 struct lib_ring_buffer *buf,
1376 struct channel *chan,
1377 struct switch_offsets *offsets,
1378 u64 *tsc)
1379{
1380 const struct lib_ring_buffer_config *config = chan->backend.config;
1381 unsigned long off;
1382
1383 offsets->begin = v_read(config, &buf->offset);
1384 offsets->old = offsets->begin;
1385 offsets->switch_old_start = 0;
1386 off = subbuf_offset(offsets->begin, chan);
1387
1388 *tsc = config->cb.ring_buffer_clock_read(chan);
1389
1390 /*
1391 * Ensure we flush the header of an empty subbuffer when doing the
1392 * finalize (SWITCH_FLUSH). This ensures that we end up knowing the
1393 * total data gathering duration even if there were no records saved
1394 * after the last buffer switch.
1395 * In SWITCH_ACTIVE mode, switch the buffer when it contains events.
1396 * SWITCH_ACTIVE only flushes the current subbuffer, dealing with end of
1397 * subbuffer header as appropriate.
1398 * The next record that reserves space will be responsible for
1399 * populating the following subbuffer header. We choose not to populate
1400 * the next subbuffer header here because we want to be able to use
1401 * SWITCH_ACTIVE for periodical buffer flush and CPU tick_nohz stop
1402 * buffer flush, which must guarantee that all the buffer content
1403 * (records and header timestamps) are visible to the reader. This is
1404 * required for quiescence guarantees for the fusion merge.
1405 */
1406 if (mode == SWITCH_FLUSH || off > 0) {
1407 if (unlikely(off == 0)) {
1408 /*
1409 * The client does not save any header information.
1410 * Don't switch empty subbuffer on finalize, because it
1411 * is invalid to deliver a completely empty subbuffer.
1412 */
1413 if (!config->cb.subbuffer_header_size())
1414 return -1;
1415 /*
1416 * Need to write the subbuffer start header on finalize.
1417 */
1418 offsets->switch_old_start = 1;
1419 }
1420 offsets->begin = subbuf_align(offsets->begin, chan);
1421 } else
1422 return -1; /* we do not have to switch : buffer is empty */
1423 /* Note: old points to the next subbuf at offset 0 */
1424 offsets->end = offsets->begin;
1425 return 0;
1426}
1427
1428/*
1429 * Force a sub-buffer switch. This operation is completely reentrant : can be
1430 * called while tracing is active with absolutely no lock held.
1431 *
1432 * Note, however, that as a v_cmpxchg is used for some atomic
1433 * operations, this function must be called from the CPU which owns the buffer
1434 * for a ACTIVE flush.
1435 */
1436void lib_ring_buffer_switch_slow(struct lib_ring_buffer *buf, enum switch_mode mode)
1437{
1438 struct channel *chan = buf->backend.chan;
1439 const struct lib_ring_buffer_config *config = chan->backend.config;
1440 struct switch_offsets offsets;
1441 unsigned long oldidx;
1442 u64 tsc;
1443
1444 offsets.size = 0;
1445
1446 /*
1447 * Perform retryable operations.
1448 */
1449 do {
1450 if (lib_ring_buffer_try_switch_slow(mode, buf, chan, &offsets,
1451 &tsc))
1452 return; /* Switch not needed */
1453 } while (v_cmpxchg(config, &buf->offset, offsets.old, offsets.end)
1454 != offsets.old);
1455
1456 /*
1457 * Atomically update last_tsc. This update races against concurrent
1458 * atomic updates, but the race will always cause supplementary full TSC
1459 * records, never the opposite (missing a full TSC record when it would
1460 * be needed).
1461 */
1462 save_last_tsc(config, buf, tsc);
1463
1464 /*
1465 * Push the reader if necessary
1466 */
1467 lib_ring_buffer_reserve_push_reader(buf, chan, offsets.old);
1468
1469 oldidx = subbuf_index(offsets.old, chan);
1470 lib_ring_buffer_clear_noref(config, &buf->backend, oldidx);
1471
1472 /*
1473 * May need to populate header start on SWITCH_FLUSH.
1474 */
1475 if (offsets.switch_old_start) {
1476 lib_ring_buffer_switch_old_start(buf, chan, &offsets, tsc);
1477 offsets.old += config->cb.subbuffer_header_size();
1478 }
1479
1480 /*
1481 * Switch old subbuffer.
1482 */
1483 lib_ring_buffer_switch_old_end(buf, chan, &offsets, tsc);
1484}
1485EXPORT_SYMBOL_GPL(lib_ring_buffer_switch_slow);
1486
1487/*
1488 * Returns :
1489 * 0 if ok
1490 * -ENOSPC if event size is too large for packet.
1491 * -ENOBUFS if there is currently not enough space in buffer for the event.
1492 * -EIO if data cannot be written into the buffer for any other reason.
1493 */
1494static
1495int lib_ring_buffer_try_reserve_slow(struct lib_ring_buffer *buf,
1496 struct channel *chan,
1497 struct switch_offsets *offsets,
1498 struct lib_ring_buffer_ctx *ctx)
1499{
1500 const struct lib_ring_buffer_config *config = chan->backend.config;
1501 unsigned long reserve_commit_diff;
1502
1503 offsets->begin = v_read(config, &buf->offset);
1504 offsets->old = offsets->begin;
1505 offsets->switch_new_start = 0;
1506 offsets->switch_new_end = 0;
1507 offsets->switch_old_end = 0;
1508 offsets->pre_header_padding = 0;
1509
1510 ctx->tsc = config->cb.ring_buffer_clock_read(chan);
1511 if ((int64_t) ctx->tsc == -EIO)
1512 return -EIO;
1513
1514 if (last_tsc_overflow(config, buf, ctx->tsc))
1515 ctx->rflags |= RING_BUFFER_RFLAG_FULL_TSC;
1516
1517 if (unlikely(subbuf_offset(offsets->begin, ctx->chan) == 0)) {
1518 offsets->switch_new_start = 1; /* For offsets->begin */
1519 } else {
1520 offsets->size = config->cb.record_header_size(config, chan,
1521 offsets->begin,
1522 &offsets->pre_header_padding,
1523 ctx);
1524 offsets->size +=
1525 lib_ring_buffer_align(offsets->begin + offsets->size,
1526 ctx->largest_align)
1527 + ctx->data_size;
1528 if (unlikely(subbuf_offset(offsets->begin, chan) +
1529 offsets->size > chan->backend.subbuf_size)) {
1530 offsets->switch_old_end = 1; /* For offsets->old */
1531 offsets->switch_new_start = 1; /* For offsets->begin */
1532 }
1533 }
1534 if (unlikely(offsets->switch_new_start)) {
1535 unsigned long sb_index;
1536
1537 /*
1538 * We are typically not filling the previous buffer completely.
1539 */
1540 if (likely(offsets->switch_old_end))
1541 offsets->begin = subbuf_align(offsets->begin, chan);
1542 offsets->begin = offsets->begin
1543 + config->cb.subbuffer_header_size();
1544 /* Test new buffer integrity */
1545 sb_index = subbuf_index(offsets->begin, chan);
1546 reserve_commit_diff =
1547 (buf_trunc(offsets->begin, chan)
1548 >> chan->backend.num_subbuf_order)
1549 - ((unsigned long) v_read(config,
1550 &buf->commit_cold[sb_index].cc_sb)
1551 & chan->commit_count_mask);
1552 if (likely(reserve_commit_diff == 0)) {
1553 /* Next subbuffer not being written to. */
1554 if (unlikely(config->mode != RING_BUFFER_OVERWRITE &&
1555 subbuf_trunc(offsets->begin, chan)
1556 - subbuf_trunc((unsigned long)
1557 atomic_long_read(&buf->consumed), chan)
1558 >= chan->backend.buf_size)) {
1559 /*
1560 * We do not overwrite non consumed buffers
1561 * and we are full : record is lost.
1562 */
1563 v_inc(config, &buf->records_lost_full);
1564 return -ENOBUFS;
1565 } else {
1566 /*
1567 * Next subbuffer not being written to, and we
1568 * are either in overwrite mode or the buffer is
1569 * not full. It's safe to write in this new
1570 * subbuffer.
1571 */
1572 }
1573 } else {
1574 /*
1575 * Next subbuffer reserve offset does not match the
1576 * commit offset. Drop record in producer-consumer and
1577 * overwrite mode. Caused by either a writer OOPS or too
1578 * many nested writes over a reserve/commit pair.
1579 */
1580 v_inc(config, &buf->records_lost_wrap);
1581 return -EIO;
1582 }
1583 offsets->size =
1584 config->cb.record_header_size(config, chan,
1585 offsets->begin,
1586 &offsets->pre_header_padding,
1587 ctx);
1588 offsets->size +=
1589 lib_ring_buffer_align(offsets->begin + offsets->size,
1590 ctx->largest_align)
1591 + ctx->data_size;
1592 if (unlikely(subbuf_offset(offsets->begin, chan)
1593 + offsets->size > chan->backend.subbuf_size)) {
1594 /*
1595 * Record too big for subbuffers, report error, don't
1596 * complete the sub-buffer switch.
1597 */
1598 v_inc(config, &buf->records_lost_big);
1599 return -ENOSPC;
1600 } else {
1601 /*
1602 * We just made a successful buffer switch and the
1603 * record fits in the new subbuffer. Let's write.
1604 */
1605 }
1606 } else {
1607 /*
1608 * Record fits in the current buffer and we are not on a switch
1609 * boundary. It's safe to write.
1610 */
1611 }
1612 offsets->end = offsets->begin + offsets->size;
1613
1614 if (unlikely(subbuf_offset(offsets->end, chan) == 0)) {
1615 /*
1616 * The offset_end will fall at the very beginning of the next
1617 * subbuffer.
1618 */
1619 offsets->switch_new_end = 1; /* For offsets->begin */
1620 }
1621 return 0;
1622}
1623
1624/**
1625 * lib_ring_buffer_reserve_slow - Atomic slot reservation in a buffer.
1626 * @ctx: ring buffer context.
1627 *
1628 * Return : -NOBUFS if not enough space, -ENOSPC if event size too large,
1629 * -EIO for other errors, else returns 0.
1630 * It will take care of sub-buffer switching.
1631 */
1632int lib_ring_buffer_reserve_slow(struct lib_ring_buffer_ctx *ctx)
1633{
1634 struct channel *chan = ctx->chan;
1635 const struct lib_ring_buffer_config *config = chan->backend.config;
1636 struct lib_ring_buffer *buf;
1637 struct switch_offsets offsets;
1638 int ret;
1639
1640 if (config->alloc == RING_BUFFER_ALLOC_PER_CPU)
1641 buf = per_cpu_ptr(chan->backend.buf, ctx->cpu);
1642 else
1643 buf = chan->backend.buf;
1644 ctx->buf = buf;
1645
1646 offsets.size = 0;
1647
1648 do {
1649 ret = lib_ring_buffer_try_reserve_slow(buf, chan, &offsets,
1650 ctx);
1651 if (unlikely(ret))
1652 return ret;
1653 } while (unlikely(v_cmpxchg(config, &buf->offset, offsets.old,
1654 offsets.end)
1655 != offsets.old));
1656
1657 /*
1658 * Atomically update last_tsc. This update races against concurrent
1659 * atomic updates, but the race will always cause supplementary full TSC
1660 * records, never the opposite (missing a full TSC record when it would
1661 * be needed).
1662 */
1663 save_last_tsc(config, buf, ctx->tsc);
1664
1665 /*
1666 * Push the reader if necessary
1667 */
1668 lib_ring_buffer_reserve_push_reader(buf, chan, offsets.end - 1);
1669
1670 /*
1671 * Clear noref flag for this subbuffer.
1672 */
1673 lib_ring_buffer_clear_noref(config, &buf->backend,
1674 subbuf_index(offsets.end - 1, chan));
1675
1676 /*
1677 * Switch old subbuffer if needed.
1678 */
1679 if (unlikely(offsets.switch_old_end)) {
1680 lib_ring_buffer_clear_noref(config, &buf->backend,
1681 subbuf_index(offsets.old - 1, chan));
1682 lib_ring_buffer_switch_old_end(buf, chan, &offsets, ctx->tsc);
1683 }
1684
1685 /*
1686 * Populate new subbuffer.
1687 */
1688 if (unlikely(offsets.switch_new_start))
1689 lib_ring_buffer_switch_new_start(buf, chan, &offsets, ctx->tsc);
1690
1691 if (unlikely(offsets.switch_new_end))
1692 lib_ring_buffer_switch_new_end(buf, chan, &offsets, ctx->tsc);
1693
1694 ctx->slot_size = offsets.size;
1695 ctx->pre_offset = offsets.begin;
1696 ctx->buf_offset = offsets.begin + offsets.pre_header_padding;
1697 return 0;
1698}
1699EXPORT_SYMBOL_GPL(lib_ring_buffer_reserve_slow);
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