1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Generic ring buffer
4 *
5 * Copyright (C) 2008 Steven Rostedt <srostedt@redhat.com>
6 */
7 #include <linux/ring_buffer_types.h>
8 #include <linux/sched/isolation.h>
9 #include <linux/trace_recursion.h>
10 #include <linux/panic_notifier.h>
11 #include <linux/trace_events.h>
12 #include <linux/ring_buffer.h>
13 #include <linux/trace_clock.h>
14 #include <linux/sched/clock.h>
15 #include <linux/cacheflush.h>
16 #include <linux/trace_seq.h>
17 #include <linux/spinlock.h>
18 #include <linux/irq_work.h>
19 #include <linux/security.h>
20 #include <linux/uaccess.h>
21 #include <linux/hardirq.h>
22 #include <linux/kthread.h> /* for self test */
23 #include <linux/module.h>
24 #include <linux/percpu.h>
25 #include <linux/mutex.h>
26 #include <linux/delay.h>
27 #include <linux/slab.h>
28 #include <linux/init.h>
29 #include <linux/hash.h>
30 #include <linux/list.h>
31 #include <linux/cpu.h>
32 #include <linux/oom.h>
33 #include <linux/mm.h>
34
35 #include <asm/ring_buffer.h>
36 #include <asm/local64.h>
37 #include <asm/local.h>
38 #include <asm/setup.h>
39
40 #include "trace.h"
41
42 /*
43 * The "absolute" timestamp in the buffer is only 59 bits.
44 * If a clock has the 5 MSBs set, it needs to be saved and
45 * reinserted.
46 */
47 #define TS_MSB (0xf8ULL << 56)
48 #define ABS_TS_MASK (~TS_MSB)
49
50 static void update_pages_handler(struct work_struct *work);
51
52 #define RING_BUFFER_META_MAGIC 0xBADFEED
53
54 struct ring_buffer_meta {
55 int magic;
56 int struct_sizes;
57 unsigned long total_size;
58 unsigned long buffers_offset;
59 };
60
61 struct ring_buffer_cpu_meta {
62 unsigned long first_buffer;
63 unsigned long head_buffer;
64 unsigned long commit_buffer;
65 __u32 subbuf_size;
66 __u32 nr_subbufs;
67 #ifdef CONFIG_RING_BUFFER_PERSISTENT_INJECT
68 __u32 nr_invalid;
69 __u32 entry_bytes;
70 #endif
71 int buffers[];
72 };
73
74 /*
75 * The ring buffer header is special. We must manually up keep it.
76 */
ring_buffer_print_entry_header(struct trace_seq * s)77 int ring_buffer_print_entry_header(struct trace_seq *s)
78 {
79 trace_seq_puts(s, "# compressed entry header\n");
80 trace_seq_puts(s, "\ttype_len : 5 bits\n");
81 trace_seq_puts(s, "\ttime_delta : 27 bits\n");
82 trace_seq_puts(s, "\tarray : 32 bits\n");
83 trace_seq_putc(s, '\n');
84 trace_seq_printf(s, "\tpadding : type == %d\n",
85 RINGBUF_TYPE_PADDING);
86 trace_seq_printf(s, "\ttime_extend : type == %d\n",
87 RINGBUF_TYPE_TIME_EXTEND);
88 trace_seq_printf(s, "\ttime_stamp : type == %d\n",
89 RINGBUF_TYPE_TIME_STAMP);
90 trace_seq_printf(s, "\tdata max type_len == %d\n",
91 RINGBUF_TYPE_DATA_TYPE_LEN_MAX);
92
93 return !trace_seq_has_overflowed(s);
94 }
95
96 /*
97 * The ring buffer is made up of a list of pages. A separate list of pages is
98 * allocated for each CPU. A writer may only write to a buffer that is
99 * associated with the CPU it is currently executing on. A reader may read
100 * from any per cpu buffer.
101 *
102 * The reader is special. For each per cpu buffer, the reader has its own
103 * reader page. When a reader has read the entire reader page, this reader
104 * page is swapped with another page in the ring buffer.
105 *
106 * Now, as long as the writer is off the reader page, the reader can do what
107 * ever it wants with that page. The writer will never write to that page
108 * again (as long as it is out of the ring buffer).
109 *
110 * Here's some silly ASCII art.
111 *
112 * +------+
113 * |reader| RING BUFFER
114 * |page |
115 * +------+ +---+ +---+ +---+
116 * | |-->| |-->| |
117 * +---+ +---+ +---+
118 * ^ |
119 * | |
120 * +---------------+
121 *
122 *
123 * +------+
124 * |reader| RING BUFFER
125 * |page |------------------v
126 * +------+ +---+ +---+ +---+
127 * | |-->| |-->| |
128 * +---+ +---+ +---+
129 * ^ |
130 * | |
131 * +---------------+
132 *
133 *
134 * +------+
135 * |reader| RING BUFFER
136 * |page |------------------v
137 * +------+ +---+ +---+ +---+
138 * ^ | |-->| |-->| |
139 * | +---+ +---+ +---+
140 * | |
141 * | |
142 * +------------------------------+
143 *
144 *
145 * +------+
146 * |buffer| RING BUFFER
147 * |page |------------------v
148 * +------+ +---+ +---+ +---+
149 * ^ | | | |-->| |
150 * | New +---+ +---+ +---+
151 * | Reader------^ |
152 * | page |
153 * +------------------------------+
154 *
155 *
156 * After we make this swap, the reader can hand this page off to the splice
157 * code and be done with it. It can even allocate a new page if it needs to
158 * and swap that into the ring buffer.
159 *
160 * We will be using cmpxchg soon to make all this lockless.
161 *
162 */
163
164 /* Used for individual buffers (after the counter) */
165 #define RB_BUFFER_OFF (1 << 20)
166
167 /* define RINGBUF_TYPE_DATA for 'case RINGBUF_TYPE_DATA:' */
168 #define RINGBUF_TYPE_DATA 0 ... RINGBUF_TYPE_DATA_TYPE_LEN_MAX
169
170 enum {
171 RB_LEN_TIME_EXTEND = 8,
172 RB_LEN_TIME_STAMP = 8,
173 };
174
175 #define skip_time_extend(event) \
176 ((struct ring_buffer_event *)((char *)event + RB_LEN_TIME_EXTEND))
177
178 #define extended_time(event) \
179 (event->type_len >= RINGBUF_TYPE_TIME_EXTEND)
180
rb_null_event(struct ring_buffer_event * event)181 static inline bool rb_null_event(struct ring_buffer_event *event)
182 {
183 return event->type_len == RINGBUF_TYPE_PADDING && !event->time_delta;
184 }
185
rb_event_set_padding(struct ring_buffer_event * event)186 static void rb_event_set_padding(struct ring_buffer_event *event)
187 {
188 /* padding has a NULL time_delta */
189 event->type_len = RINGBUF_TYPE_PADDING;
190 event->time_delta = 0;
191 }
192
193 static unsigned
rb_event_data_length(struct ring_buffer_event * event)194 rb_event_data_length(struct ring_buffer_event *event)
195 {
196 unsigned length;
197
198 if (event->type_len)
199 length = event->type_len * RB_ALIGNMENT;
200 else
201 length = event->array[0];
202 return length + RB_EVNT_HDR_SIZE;
203 }
204
205 /*
206 * Return the length of the given event. Will return
207 * the length of the time extend if the event is a
208 * time extend.
209 */
210 static inline unsigned
rb_event_length(struct ring_buffer_event * event)211 rb_event_length(struct ring_buffer_event *event)
212 {
213 switch (event->type_len) {
214 case RINGBUF_TYPE_PADDING:
215 if (rb_null_event(event))
216 /* undefined */
217 return -1;
218 return event->array[0] + RB_EVNT_HDR_SIZE;
219
220 case RINGBUF_TYPE_TIME_EXTEND:
221 return RB_LEN_TIME_EXTEND;
222
223 case RINGBUF_TYPE_TIME_STAMP:
224 return RB_LEN_TIME_STAMP;
225
226 case RINGBUF_TYPE_DATA:
227 return rb_event_data_length(event);
228 default:
229 WARN_ON_ONCE(1);
230 }
231 /* not hit */
232 return 0;
233 }
234
235 /*
236 * Return total length of time extend and data,
237 * or just the event length for all other events.
238 */
239 static inline unsigned
rb_event_ts_length(struct ring_buffer_event * event)240 rb_event_ts_length(struct ring_buffer_event *event)
241 {
242 unsigned len = 0;
243
244 if (extended_time(event)) {
245 /* time extends include the data event after it */
246 len = RB_LEN_TIME_EXTEND;
247 event = skip_time_extend(event);
248 }
249 return len + rb_event_length(event);
250 }
251
252 /**
253 * ring_buffer_event_length - return the length of the event
254 * @event: the event to get the length of
255 *
256 * Returns the size of the data load of a data event.
257 * If the event is something other than a data event, it
258 * returns the size of the event itself. With the exception
259 * of a TIME EXTEND, where it still returns the size of the
260 * data load of the data event after it.
261 */
ring_buffer_event_length(struct ring_buffer_event * event)262 unsigned ring_buffer_event_length(struct ring_buffer_event *event)
263 {
264 unsigned length;
265
266 if (extended_time(event))
267 event = skip_time_extend(event);
268
269 length = rb_event_length(event);
270 if (event->type_len > RINGBUF_TYPE_DATA_TYPE_LEN_MAX)
271 return length;
272 length -= RB_EVNT_HDR_SIZE;
273 if (length > RB_MAX_SMALL_DATA + sizeof(event->array[0]) ||
274 RB_FORCE_8BYTE_ALIGNMENT)
275 length -= sizeof(event->array[0]);
276 return length;
277 }
278 EXPORT_SYMBOL_GPL(ring_buffer_event_length);
279
280 /* inline for ring buffer fast paths */
281 static __always_inline void *
rb_event_data(struct ring_buffer_event * event)282 rb_event_data(struct ring_buffer_event *event)
283 {
284 if (extended_time(event))
285 event = skip_time_extend(event);
286 WARN_ON_ONCE(event->type_len > RINGBUF_TYPE_DATA_TYPE_LEN_MAX);
287 /* If length is in len field, then array[0] has the data */
288 if (event->type_len)
289 return (void *)&event->array[0];
290 /* Otherwise length is in array[0] and array[1] has the data */
291 return (void *)&event->array[1];
292 }
293
294 /**
295 * ring_buffer_event_data - return the data of the event
296 * @event: the event to get the data from
297 */
ring_buffer_event_data(struct ring_buffer_event * event)298 void *ring_buffer_event_data(struct ring_buffer_event *event)
299 {
300 return rb_event_data(event);
301 }
302 EXPORT_SYMBOL_GPL(ring_buffer_event_data);
303
304 #define for_each_buffer_cpu(buffer, cpu) \
305 for_each_cpu(cpu, buffer->cpumask)
306
307 #define for_each_online_buffer_cpu(buffer, cpu) \
308 for_each_cpu_and(cpu, buffer->cpumask, cpu_online_mask)
309
rb_event_time_stamp(struct ring_buffer_event * event)310 static u64 rb_event_time_stamp(struct ring_buffer_event *event)
311 {
312 u64 ts;
313
314 ts = event->array[0];
315 ts <<= TS_SHIFT;
316 ts += event->time_delta;
317
318 return ts;
319 }
320
321 /* Flag when events were overwritten */
322 #define RB_MISSED_EVENTS (1 << 31)
323 /* Missed count stored at end */
324 #define RB_MISSED_STORED (1 << 30)
325
326 #define RB_MISSED_MASK (3 << 30)
327
328 struct buffer_data_read_page {
329 unsigned order; /* order of the page */
330 struct buffer_data_page *data; /* actual data, stored in this page */
331 };
332
333 /*
334 * Note, the buffer_page list must be first. The buffer pages
335 * are allocated in cache lines, which means that each buffer
336 * page will be at the beginning of a cache line, and thus
337 * the least significant bits will be zero. We use this to
338 * add flags in the list struct pointers, to make the ring buffer
339 * lockless.
340 */
341 struct buffer_page {
342 struct list_head list; /* list of buffer pages */
343 local_t write; /* index for next write */
344 unsigned read; /* index for next read */
345 local_t entries; /* entries on this page */
346 unsigned long real_end; /* real end of data */
347 unsigned order; /* order of the page */
348 u32 id:30; /* ID for external mapping */
349 u32 range:1; /* Mapped via a range */
350 struct buffer_data_page *page; /* Actual data page */
351 };
352
353 /*
354 * The buffer page counters, write and entries, must be reset
355 * atomically when crossing page boundaries. To synchronize this
356 * update, two counters are inserted into the number. One is
357 * the actual counter for the write position or count on the page.
358 *
359 * The other is a counter of updaters. Before an update happens
360 * the update partition of the counter is incremented. This will
361 * allow the updater to update the counter atomically.
362 *
363 * The counter is 20 bits, and the state data is 12.
364 */
365 #define RB_WRITE_MASK 0xfffff
366 #define RB_WRITE_INTCNT (1 << 20)
367
rb_init_data_page(struct buffer_data_page * bpage)368 static void rb_init_data_page(struct buffer_data_page *bpage)
369 {
370 local_set(&bpage->commit, 0);
371 bpage->time_stamp = 0;
372 }
373
rb_data_page_commit(struct buffer_data_page * dpage)374 static __always_inline long rb_data_page_commit(struct buffer_data_page *dpage)
375 {
376 return local_read(&dpage->commit);
377 }
378
rb_data_page_size(struct buffer_data_page * dpage)379 static __always_inline long rb_data_page_size(struct buffer_data_page *dpage)
380 {
381 return rb_data_page_commit(dpage) & ~RB_MISSED_MASK;
382 }
383
rb_page_commit(struct buffer_page * bpage)384 static __always_inline unsigned int rb_page_commit(struct buffer_page *bpage)
385 {
386 return rb_data_page_commit(bpage->page);
387 }
388
rb_page_size(struct buffer_page * bpage)389 static __always_inline unsigned int rb_page_size(struct buffer_page *bpage)
390 {
391 return rb_data_page_size(bpage->page);
392 }
393
394 /**
395 * rb_page_capacity - Get the capacity of a buffer page
396 * @bpage: The buffer page
397 *
398 * Return: The maximum size available for events in the given buffer page.
399 */
rb_page_capacity(struct buffer_page * bpage)400 static __always_inline unsigned int rb_page_capacity(struct buffer_page *bpage)
401 {
402 return (PAGE_SIZE << bpage->order) - BUF_PAGE_HDR_SIZE;
403 }
404
free_buffer_page(struct buffer_page * bpage)405 static void free_buffer_page(struct buffer_page *bpage)
406 {
407 /* Range pages are not to be freed */
408 if (!bpage->range)
409 free_pages((unsigned long)bpage->page, bpage->order);
410 kfree(bpage);
411 }
412
413 /*
414 * For best performance, allocate cpu buffer data cache line sized
415 * and per CPU.
416 */
417 #define alloc_cpu_buffer(cpu) (struct ring_buffer_per_cpu *) \
418 kzalloc_node(ALIGN(sizeof(struct ring_buffer_per_cpu), \
419 cache_line_size()), GFP_KERNEL, cpu_to_node(cpu))
420
421 #define alloc_cpu_page(cpu) (struct buffer_page *) \
422 kzalloc_node(ALIGN(sizeof(struct buffer_page), \
423 cache_line_size()), GFP_KERNEL, cpu_to_node(cpu))
424
alloc_cpu_data(int cpu,int order)425 static struct buffer_data_page *alloc_cpu_data(int cpu, int order)
426 {
427 struct buffer_data_page *dpage;
428 struct page *page;
429 gfp_t mflags;
430
431 /*
432 * __GFP_RETRY_MAYFAIL flag makes sure that the allocation fails
433 * gracefully without invoking oom-killer and the system is not
434 * destabilized.
435 */
436 mflags = GFP_KERNEL | __GFP_RETRY_MAYFAIL | __GFP_COMP | __GFP_ZERO;
437
438 page = alloc_pages_node(cpu_to_node(cpu), mflags, order);
439 if (!page)
440 return NULL;
441
442 dpage = page_address(page);
443 rb_init_data_page(dpage);
444
445 return dpage;
446 }
447
448 struct rb_irq_work {
449 struct irq_work work;
450 wait_queue_head_t waiters;
451 wait_queue_head_t full_waiters;
452 atomic_t seq;
453 bool waiters_pending;
454 bool full_waiters_pending;
455 bool wakeup_full;
456 };
457
458 /*
459 * Structure to hold event state and handle nested events.
460 */
461 struct rb_event_info {
462 u64 ts;
463 u64 delta;
464 u64 before;
465 u64 after;
466 unsigned long length;
467 struct buffer_page *tail_page;
468 int add_timestamp;
469 };
470
471 /*
472 * Used for the add_timestamp
473 * NONE
474 * EXTEND - wants a time extend
475 * ABSOLUTE - the buffer requests all events to have absolute time stamps
476 * FORCE - force a full time stamp.
477 */
478 enum {
479 RB_ADD_STAMP_NONE = 0,
480 RB_ADD_STAMP_EXTEND = BIT(1),
481 RB_ADD_STAMP_ABSOLUTE = BIT(2),
482 RB_ADD_STAMP_FORCE = BIT(3)
483 };
484 /*
485 * Used for which event context the event is in.
486 * TRANSITION = 0
487 * NMI = 1
488 * IRQ = 2
489 * SOFTIRQ = 3
490 * NORMAL = 4
491 *
492 * See trace_recursive_lock() comment below for more details.
493 */
494 enum {
495 RB_CTX_TRANSITION,
496 RB_CTX_NMI,
497 RB_CTX_IRQ,
498 RB_CTX_SOFTIRQ,
499 RB_CTX_NORMAL,
500 RB_CTX_MAX
501 };
502
503 struct rb_time_struct {
504 local64_t time;
505 };
506 typedef struct rb_time_struct rb_time_t;
507
508 #define MAX_NEST 5
509
510 /*
511 * head_page == tail_page && head == tail then buffer is empty.
512 */
513 struct ring_buffer_per_cpu {
514 int cpu;
515 atomic_t record_disabled;
516 atomic_t resize_disabled;
517 struct trace_buffer *buffer;
518 raw_spinlock_t reader_lock; /* serialize readers */
519 arch_spinlock_t lock;
520 struct lock_class_key lock_key;
521 struct buffer_data_read_page free_page;
522 unsigned long nr_pages;
523 unsigned int current_context;
524 struct list_head *pages;
525 /* pages generation counter, incremented when the list changes */
526 unsigned long cnt;
527 struct buffer_page *head_page; /* read from head */
528 struct buffer_page *tail_page; /* write to tail */
529 struct buffer_page *commit_page; /* committed pages */
530 struct buffer_page *reader_page;
531 unsigned long lost_events;
532 unsigned long last_overrun;
533 unsigned long nest;
534 local_t entries_bytes;
535 local_t entries;
536 local_t overrun;
537 local_t commit_overrun;
538 local_t dropped_events;
539 local_t committing;
540 local_t commits;
541 local_t pages_touched;
542 local_t pages_lost;
543 local_t pages_read;
544 long last_pages_touch;
545 size_t shortest_full;
546 unsigned long read;
547 unsigned long read_bytes;
548 rb_time_t write_stamp;
549 rb_time_t before_stamp;
550 u64 event_stamp[MAX_NEST];
551 u64 read_stamp;
552 /* pages removed since last reset */
553 unsigned long pages_removed;
554
555 unsigned int user_mapped; /* user space mapping */
556 struct mutex mapping_lock;
557 struct buffer_page **subbuf_ids; /* ID to subbuf VA */
558 struct trace_buffer_meta *meta_page;
559 struct ring_buffer_cpu_meta *ring_meta;
560
561 struct ring_buffer_remote *remote;
562
563 /* ring buffer pages to update, > 0 to add, < 0 to remove */
564 long nr_pages_to_update;
565 struct list_head new_pages; /* new pages to add */
566 struct work_struct update_pages_work;
567 struct completion update_done;
568
569 struct rb_irq_work irq_work;
570 };
571
572 struct trace_buffer {
573 unsigned flags;
574 atomic_t record_disabled;
575 atomic_t resizing;
576 cpumask_var_t cpumask;
577
578 struct lock_class_key *reader_lock_key;
579
580 struct mutex mutex;
581
582 struct ring_buffer_per_cpu **buffers;
583
584 struct ring_buffer_remote *remote;
585
586 struct hlist_node node;
587 u64 (*clock)(void);
588
589 struct rb_irq_work irq_work;
590 bool time_stamp_abs;
591
592 unsigned long range_addr_start;
593 unsigned long range_addr_end;
594 struct notifier_block flush_nb;
595
596 struct ring_buffer_meta *meta;
597
598 unsigned int subbuf_order;
599 };
600
rb_subbuf_size(struct trace_buffer * buffer)601 static __always_inline unsigned int rb_subbuf_size(struct trace_buffer *buffer)
602 {
603 return PAGE_SIZE << buffer->subbuf_order;
604 }
605
606 /**
607 * rb_subbuf_capacity - Get the capacity of a subbuffer
608 * @buffer: A trace buffer
609 *
610 * Unsafe to use without holding trace_buffer::mutex or with resizing enabled.
611 * Consider rb_page_capacity() instead.
612 *
613 * Return: The maximum size available for events in a trace buffer subbuffer.
614 */
rb_subbuf_capacity(struct trace_buffer * buffer)615 static __always_inline unsigned int rb_subbuf_capacity(struct trace_buffer *buffer)
616 {
617 return rb_subbuf_size(buffer) - BUF_PAGE_HDR_SIZE;
618 }
619
620 /**
621 * rb_subbuf_max_data_size - Get the maximum payload size of a single event
622 * @buffer: A trace buffer
623 *
624 * Return: The maximum data payload size that can be stored in a single event.
625 */
rb_subbuf_max_data_size(struct trace_buffer * buffer)626 static __always_inline unsigned int rb_subbuf_max_data_size(struct trace_buffer *buffer)
627 {
628 struct ring_buffer_event *event;
629
630 /*
631 * surely rb_subbuf_capacity() is bigger than
632 * RINGBUF_TYPE_DATA_TYPE_LEN_MAX (see ring_buffer_event_length).
633 */
634 return rb_subbuf_capacity(buffer) - RB_EVNT_HDR_SIZE - sizeof(event->array[0]);
635 }
636
637 /**
638 * rb_subbuf_start - Get the start address of a subbuffer
639 * @buffer: A trace buffer
640 * @addr: An address of an event on a subbuffer
641 *
642 * Return: The start of the subbuffer for where @addr sits
643 */
644 static __always_inline
rb_subbuf_start(struct trace_buffer * buffer,unsigned long addr)645 unsigned long rb_subbuf_start(struct trace_buffer *buffer, unsigned long addr)
646 {
647 return addr & ~((unsigned long)(rb_subbuf_size(buffer) - 1));
648 }
649
rb_is_static(struct ring_buffer_per_cpu * cpu_buffer)650 static bool rb_is_static(struct ring_buffer_per_cpu *cpu_buffer)
651 {
652 return cpu_buffer->user_mapped || cpu_buffer->remote || cpu_buffer->ring_meta;
653 }
654
655 struct ring_buffer_iter {
656 struct ring_buffer_per_cpu *cpu_buffer;
657 unsigned long head;
658 unsigned long next_event;
659 struct buffer_page *head_page;
660 struct buffer_page *cache_reader_page;
661 unsigned long cache_read;
662 unsigned long cache_pages_removed;
663 u64 read_stamp;
664 u64 page_stamp;
665 struct ring_buffer_event *event;
666 size_t event_size;
667 int missed_events;
668 };
669
ring_buffer_print_page_header(struct trace_buffer * buffer,struct trace_seq * s)670 int ring_buffer_print_page_header(struct trace_buffer *buffer, struct trace_seq *s)
671 {
672 struct buffer_data_page field;
673
674 trace_seq_printf(s, "\tfield: u64 timestamp;\t"
675 "offset:0;\tsize:%u;\tsigned:%u;\n",
676 (unsigned int)sizeof(field.time_stamp),
677 (unsigned int)is_signed_type(u64));
678
679 trace_seq_printf(s, "\tfield: local_t commit;\t"
680 "offset:%u;\tsize:%u;\tsigned:%u;\n",
681 (unsigned int)offsetof(typeof(field), commit),
682 (unsigned int)sizeof(field.commit),
683 (unsigned int)is_signed_type(long));
684
685 trace_seq_printf(s, "\tfield: char overwrite;\t"
686 "offset:%u;\tsize:%u;\tsigned:%u;\n",
687 (unsigned int)offsetof(typeof(field), commit),
688 1,
689 (unsigned int)is_signed_type(char));
690
691 trace_seq_printf(s, "\tfield: char data;\t"
692 "offset:%u;\tsize:%u;\tsigned:%u;\n",
693 (unsigned int)offsetof(typeof(field), data),
694 (unsigned int)(buffer ? rb_subbuf_capacity(buffer) :
695 PAGE_SIZE - BUF_PAGE_HDR_SIZE),
696 (unsigned int)is_signed_type(char));
697
698 return !trace_seq_has_overflowed(s);
699 }
700
rb_time_read(rb_time_t * t,u64 * ret)701 static inline void rb_time_read(rb_time_t *t, u64 *ret)
702 {
703 *ret = local64_read(&t->time);
704 }
rb_time_set(rb_time_t * t,u64 val)705 static void rb_time_set(rb_time_t *t, u64 val)
706 {
707 local64_set(&t->time, val);
708 }
709
710 /*
711 * Enable this to make sure that the event passed to
712 * ring_buffer_event_time_stamp() is not committed and also
713 * is on the buffer that it passed in.
714 */
715 //#define RB_VERIFY_EVENT
716 #ifdef RB_VERIFY_EVENT
717 static struct list_head *rb_list_head(struct list_head *list);
verify_event(struct ring_buffer_per_cpu * cpu_buffer,void * event)718 static void verify_event(struct ring_buffer_per_cpu *cpu_buffer,
719 void *event)
720 {
721 struct buffer_page *page = cpu_buffer->commit_page;
722 struct buffer_page *tail_page = READ_ONCE(cpu_buffer->tail_page);
723 struct list_head *next;
724 long commit, write;
725 unsigned long addr = (unsigned long)event;
726 bool done = false;
727 int stop = 0;
728
729 /* Make sure the event exists and is not committed yet */
730 do {
731 if (page == tail_page || WARN_ON_ONCE(stop++ > 100))
732 done = true;
733 commit = rb_page_commit(page);
734 write = local_read(&page->write);
735 if (addr >= (unsigned long)&page->page->data[commit] &&
736 addr < (unsigned long)&page->page->data[write])
737 return;
738
739 next = rb_list_head(page->list.next);
740 page = list_entry(next, struct buffer_page, list);
741 } while (!done);
742 WARN_ON_ONCE(1);
743 }
744 #else
verify_event(struct ring_buffer_per_cpu * cpu_buffer,void * event)745 static inline void verify_event(struct ring_buffer_per_cpu *cpu_buffer,
746 void *event)
747 {
748 }
749 #endif
750
751 /*
752 * The absolute time stamp drops the 5 MSBs and some clocks may
753 * require them. The rb_fix_abs_ts() will take a previous full
754 * time stamp, and add the 5 MSB of that time stamp on to the
755 * saved absolute time stamp. Then they are compared in case of
756 * the unlikely event that the latest time stamp incremented
757 * the 5 MSB.
758 */
rb_fix_abs_ts(u64 abs,u64 save_ts)759 static inline u64 rb_fix_abs_ts(u64 abs, u64 save_ts)
760 {
761 if (save_ts & TS_MSB) {
762 abs |= save_ts & TS_MSB;
763 /* Check for overflow */
764 if (unlikely(abs < save_ts))
765 abs += 1ULL << 59;
766 }
767 return abs;
768 }
769
770 static inline u64 rb_time_stamp(struct trace_buffer *buffer);
771
772 /**
773 * ring_buffer_event_time_stamp - return the event's current time stamp
774 * @buffer: The buffer that the event is on
775 * @event: the event to get the time stamp of
776 *
777 * Note, this must be called after @event is reserved, and before it is
778 * committed to the ring buffer. And must be called from the same
779 * context where the event was reserved (normal, softirq, irq, etc).
780 *
781 * Returns the time stamp associated with the current event.
782 * If the event has an extended time stamp, then that is used as
783 * the time stamp to return.
784 * In the highly unlikely case that the event was nested more than
785 * the max nesting, then the write_stamp of the buffer is returned,
786 * otherwise current time is returned, but that really neither of
787 * the last two cases should ever happen.
788 */
ring_buffer_event_time_stamp(struct trace_buffer * buffer,struct ring_buffer_event * event)789 u64 ring_buffer_event_time_stamp(struct trace_buffer *buffer,
790 struct ring_buffer_event *event)
791 {
792 struct ring_buffer_per_cpu *cpu_buffer = buffer->buffers[smp_processor_id()];
793 unsigned int nest;
794 u64 ts;
795
796 /* If the event includes an absolute time, then just use that */
797 if (event->type_len == RINGBUF_TYPE_TIME_STAMP) {
798 ts = rb_event_time_stamp(event);
799 return rb_fix_abs_ts(ts, cpu_buffer->tail_page->page->time_stamp);
800 }
801
802 nest = local_read(&cpu_buffer->committing);
803 verify_event(cpu_buffer, event);
804 if (WARN_ON_ONCE(!nest))
805 goto fail;
806
807 /* Read the current saved nesting level time stamp */
808 if (likely(--nest < MAX_NEST))
809 return cpu_buffer->event_stamp[nest];
810
811 /* Shouldn't happen, warn if it does */
812 WARN_ONCE(1, "nest (%d) greater than max", nest);
813
814 fail:
815 rb_time_read(&cpu_buffer->write_stamp, &ts);
816
817 return ts;
818 }
819
820 /**
821 * ring_buffer_nr_dirty_pages - get the number of used pages in the ring buffer
822 * @buffer: The ring_buffer to get the number of pages from
823 * @cpu: The cpu of the ring_buffer to get the number of pages from
824 *
825 * Returns the number of pages that have content in the ring buffer.
826 */
ring_buffer_nr_dirty_pages(struct trace_buffer * buffer,int cpu)827 size_t ring_buffer_nr_dirty_pages(struct trace_buffer *buffer, int cpu)
828 {
829 size_t read;
830 size_t lost;
831 size_t cnt;
832
833 read = local_read(&buffer->buffers[cpu]->pages_read);
834 lost = local_read(&buffer->buffers[cpu]->pages_lost);
835 cnt = local_read(&buffer->buffers[cpu]->pages_touched);
836
837 if (WARN_ON_ONCE(cnt < lost))
838 return 0;
839
840 cnt -= lost;
841
842 /* The reader can read an empty page, but not more than that */
843 if (cnt < read) {
844 WARN_ON_ONCE(read > cnt + 1);
845 return 0;
846 }
847
848 return cnt - read;
849 }
850
full_hit(struct trace_buffer * buffer,int cpu,int full)851 static __always_inline bool full_hit(struct trace_buffer *buffer, int cpu, int full)
852 {
853 struct ring_buffer_per_cpu *cpu_buffer = buffer->buffers[cpu];
854 size_t nr_pages;
855 size_t dirty;
856
857 nr_pages = cpu_buffer->nr_pages;
858 if (!nr_pages || !full)
859 return true;
860
861 /*
862 * Add one as dirty will never equal nr_pages, as the sub-buffer
863 * that the writer is on is not counted as dirty.
864 * This is needed if "buffer_percent" is set to 100.
865 */
866 dirty = ring_buffer_nr_dirty_pages(buffer, cpu) + 1;
867
868 return (dirty * 100) >= (full * nr_pages);
869 }
870
871 /*
872 * rb_wake_up_waiters - wake up tasks waiting for ring buffer input
873 *
874 * Schedules a delayed work to wake up any task that is blocked on the
875 * ring buffer waiters queue.
876 */
rb_wake_up_waiters(struct irq_work * work)877 static void rb_wake_up_waiters(struct irq_work *work)
878 {
879 struct rb_irq_work *rbwork = container_of(work, struct rb_irq_work, work);
880
881 /* For waiters waiting for the first wake up */
882 (void)atomic_fetch_inc_release(&rbwork->seq);
883
884 wake_up_all(&rbwork->waiters);
885 if (rbwork->full_waiters_pending || rbwork->wakeup_full) {
886 /* Only cpu_buffer sets the above flags */
887 struct ring_buffer_per_cpu *cpu_buffer =
888 container_of(rbwork, struct ring_buffer_per_cpu, irq_work);
889
890 /* Called from interrupt context */
891 raw_spin_lock(&cpu_buffer->reader_lock);
892 rbwork->wakeup_full = false;
893 rbwork->full_waiters_pending = false;
894
895 /* Waking up all waiters, they will reset the shortest full */
896 cpu_buffer->shortest_full = 0;
897 raw_spin_unlock(&cpu_buffer->reader_lock);
898
899 wake_up_all(&rbwork->full_waiters);
900 }
901 }
902
903 /**
904 * ring_buffer_wake_waiters - wake up any waiters on this ring buffer
905 * @buffer: The ring buffer to wake waiters on
906 * @cpu: The CPU buffer to wake waiters on
907 *
908 * In the case of a file that represents a ring buffer is closing,
909 * it is prudent to wake up any waiters that are on this.
910 */
ring_buffer_wake_waiters(struct trace_buffer * buffer,int cpu)911 void ring_buffer_wake_waiters(struct trace_buffer *buffer, int cpu)
912 {
913 struct ring_buffer_per_cpu *cpu_buffer;
914 struct rb_irq_work *rbwork;
915
916 if (!buffer)
917 return;
918
919 if (cpu == RING_BUFFER_ALL_CPUS) {
920
921 /* Wake up individual ones too. One level recursion */
922 for_each_buffer_cpu(buffer, cpu)
923 ring_buffer_wake_waiters(buffer, cpu);
924
925 rbwork = &buffer->irq_work;
926 } else {
927 if (WARN_ON_ONCE(!buffer->buffers))
928 return;
929 if (WARN_ON_ONCE(cpu >= nr_cpu_ids))
930 return;
931
932 cpu_buffer = buffer->buffers[cpu];
933 /* The CPU buffer may not have been initialized yet */
934 if (!cpu_buffer)
935 return;
936 rbwork = &cpu_buffer->irq_work;
937 }
938
939 /* This can be called in any context */
940 irq_work_queue(&rbwork->work);
941 }
942
rb_watermark_hit(struct trace_buffer * buffer,int cpu,int full)943 static bool rb_watermark_hit(struct trace_buffer *buffer, int cpu, int full)
944 {
945 struct ring_buffer_per_cpu *cpu_buffer;
946 bool ret = false;
947
948 /* Reads of all CPUs always waits for any data */
949 if (cpu == RING_BUFFER_ALL_CPUS)
950 return !ring_buffer_empty(buffer);
951
952 cpu_buffer = buffer->buffers[cpu];
953
954 if (!ring_buffer_empty_cpu(buffer, cpu)) {
955 unsigned long flags;
956 bool pagebusy;
957
958 if (!full)
959 return true;
960
961 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
962 pagebusy = cpu_buffer->reader_page == cpu_buffer->commit_page;
963 ret = !pagebusy && full_hit(buffer, cpu, full);
964
965 if (!ret && (!cpu_buffer->shortest_full ||
966 cpu_buffer->shortest_full > full)) {
967 cpu_buffer->shortest_full = full;
968 }
969 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
970 }
971 return ret;
972 }
973
974 static inline bool
rb_wait_cond(struct rb_irq_work * rbwork,struct trace_buffer * buffer,int cpu,int full,ring_buffer_cond_fn cond,void * data)975 rb_wait_cond(struct rb_irq_work *rbwork, struct trace_buffer *buffer,
976 int cpu, int full, ring_buffer_cond_fn cond, void *data)
977 {
978 if (rb_watermark_hit(buffer, cpu, full))
979 return true;
980
981 if (cond(data))
982 return true;
983
984 /*
985 * The events can happen in critical sections where
986 * checking a work queue can cause deadlocks.
987 * After adding a task to the queue, this flag is set
988 * only to notify events to try to wake up the queue
989 * using irq_work.
990 *
991 * We don't clear it even if the buffer is no longer
992 * empty. The flag only causes the next event to run
993 * irq_work to do the work queue wake up. The worse
994 * that can happen if we race with !trace_empty() is that
995 * an event will cause an irq_work to try to wake up
996 * an empty queue.
997 *
998 * There's no reason to protect this flag either, as
999 * the work queue and irq_work logic will do the necessary
1000 * synchronization for the wake ups. The only thing
1001 * that is necessary is that the wake up happens after
1002 * a task has been queued. It's OK for spurious wake ups.
1003 */
1004 if (full)
1005 rbwork->full_waiters_pending = true;
1006 else
1007 rbwork->waiters_pending = true;
1008
1009 return false;
1010 }
1011
1012 struct rb_wait_data {
1013 struct rb_irq_work *irq_work;
1014 int seq;
1015 };
1016
1017 /*
1018 * The default wait condition for ring_buffer_wait() is to just to exit the
1019 * wait loop the first time it is woken up.
1020 */
rb_wait_once(void * data)1021 static bool rb_wait_once(void *data)
1022 {
1023 struct rb_wait_data *rdata = data;
1024 struct rb_irq_work *rbwork = rdata->irq_work;
1025
1026 return atomic_read_acquire(&rbwork->seq) != rdata->seq;
1027 }
1028
1029 /**
1030 * ring_buffer_wait - wait for input to the ring buffer
1031 * @buffer: buffer to wait on
1032 * @cpu: the cpu buffer to wait on
1033 * @full: wait until the percentage of pages are available, if @cpu != RING_BUFFER_ALL_CPUS
1034 * @cond: condition function to break out of wait (NULL to run once)
1035 * @data: the data to pass to @cond.
1036 *
1037 * If @cpu == RING_BUFFER_ALL_CPUS then the task will wake up as soon
1038 * as data is added to any of the @buffer's cpu buffers. Otherwise
1039 * it will wait for data to be added to a specific cpu buffer.
1040 */
ring_buffer_wait(struct trace_buffer * buffer,int cpu,int full,ring_buffer_cond_fn cond,void * data)1041 int ring_buffer_wait(struct trace_buffer *buffer, int cpu, int full,
1042 ring_buffer_cond_fn cond, void *data)
1043 {
1044 struct ring_buffer_per_cpu *cpu_buffer;
1045 struct wait_queue_head *waitq;
1046 struct rb_irq_work *rbwork;
1047 struct rb_wait_data rdata;
1048 int ret = 0;
1049
1050 /*
1051 * Depending on what the caller is waiting for, either any
1052 * data in any cpu buffer, or a specific buffer, put the
1053 * caller on the appropriate wait queue.
1054 */
1055 if (cpu == RING_BUFFER_ALL_CPUS) {
1056 rbwork = &buffer->irq_work;
1057 /* Full only makes sense on per cpu reads */
1058 full = 0;
1059 } else {
1060 if (!cpumask_test_cpu(cpu, buffer->cpumask))
1061 return -ENODEV;
1062 cpu_buffer = buffer->buffers[cpu];
1063 rbwork = &cpu_buffer->irq_work;
1064 }
1065
1066 if (full)
1067 waitq = &rbwork->full_waiters;
1068 else
1069 waitq = &rbwork->waiters;
1070
1071 /* Set up to exit loop as soon as it is woken */
1072 if (!cond) {
1073 cond = rb_wait_once;
1074 rdata.irq_work = rbwork;
1075 rdata.seq = atomic_read_acquire(&rbwork->seq);
1076 data = &rdata;
1077 }
1078
1079 ret = wait_event_interruptible((*waitq),
1080 rb_wait_cond(rbwork, buffer, cpu, full, cond, data));
1081
1082 return ret;
1083 }
1084
1085 /**
1086 * ring_buffer_poll_wait - poll on buffer input
1087 * @buffer: buffer to wait on
1088 * @cpu: the cpu buffer to wait on
1089 * @filp: the file descriptor
1090 * @poll_table: The poll descriptor
1091 * @full: wait until the percentage of pages are available, if @cpu != RING_BUFFER_ALL_CPUS
1092 *
1093 * If @cpu == RING_BUFFER_ALL_CPUS then the task will wake up as soon
1094 * as data is added to any of the @buffer's cpu buffers. Otherwise
1095 * it will wait for data to be added to a specific cpu buffer.
1096 *
1097 * Returns EPOLLIN | EPOLLRDNORM if data exists in the buffers,
1098 * zero otherwise.
1099 */
ring_buffer_poll_wait(struct trace_buffer * buffer,int cpu,struct file * filp,poll_table * poll_table,int full)1100 __poll_t ring_buffer_poll_wait(struct trace_buffer *buffer, int cpu,
1101 struct file *filp, poll_table *poll_table, int full)
1102 {
1103 struct ring_buffer_per_cpu *cpu_buffer;
1104 struct rb_irq_work *rbwork;
1105
1106 if (cpu == RING_BUFFER_ALL_CPUS) {
1107 rbwork = &buffer->irq_work;
1108 full = 0;
1109 } else {
1110 if (!cpumask_test_cpu(cpu, buffer->cpumask))
1111 return EPOLLERR;
1112
1113 cpu_buffer = buffer->buffers[cpu];
1114 rbwork = &cpu_buffer->irq_work;
1115 }
1116
1117 if (full) {
1118 poll_wait(filp, &rbwork->full_waiters, poll_table);
1119
1120 if (rb_watermark_hit(buffer, cpu, full))
1121 return EPOLLIN | EPOLLRDNORM;
1122 /*
1123 * Only allow full_waiters_pending update to be seen after
1124 * the shortest_full is set (in rb_watermark_hit). If the
1125 * writer sees the full_waiters_pending flag set, it will
1126 * compare the amount in the ring buffer to shortest_full.
1127 * If the amount in the ring buffer is greater than the
1128 * shortest_full percent, it will call the irq_work handler
1129 * to wake up this list. The irq_handler will reset shortest_full
1130 * back to zero. That's done under the reader_lock, but
1131 * the below smp_mb() makes sure that the update to
1132 * full_waiters_pending doesn't leak up into the above.
1133 */
1134 smp_mb();
1135 rbwork->full_waiters_pending = true;
1136 return 0;
1137 }
1138
1139 poll_wait(filp, &rbwork->waiters, poll_table);
1140 rbwork->waiters_pending = true;
1141
1142 /*
1143 * There's a tight race between setting the waiters_pending and
1144 * checking if the ring buffer is empty. Once the waiters_pending bit
1145 * is set, the next event will wake the task up, but we can get stuck
1146 * if there's only a single event in.
1147 *
1148 * FIXME: Ideally, we need a memory barrier on the writer side as well,
1149 * but adding a memory barrier to all events will cause too much of a
1150 * performance hit in the fast path. We only need a memory barrier when
1151 * the buffer goes from empty to having content. But as this race is
1152 * extremely small, and it's not a problem if another event comes in, we
1153 * will fix it later.
1154 */
1155 smp_mb();
1156
1157 if ((cpu == RING_BUFFER_ALL_CPUS && !ring_buffer_empty(buffer)) ||
1158 (cpu != RING_BUFFER_ALL_CPUS && !ring_buffer_empty_cpu(buffer, cpu)))
1159 return EPOLLIN | EPOLLRDNORM;
1160 return 0;
1161 }
1162
1163 /* buffer may be either ring_buffer or ring_buffer_per_cpu */
1164 #define RB_WARN_ON(b, cond) \
1165 ({ \
1166 int _____ret = unlikely(cond); \
1167 if (_____ret) { \
1168 if (__same_type(*(b), struct ring_buffer_per_cpu)) { \
1169 struct ring_buffer_per_cpu *__b = \
1170 (void *)b; \
1171 atomic_inc(&__b->buffer->record_disabled); \
1172 } else \
1173 atomic_inc(&b->record_disabled); \
1174 WARN_ON(1); \
1175 } \
1176 _____ret; \
1177 })
1178
1179 /* Up this if you want to test the TIME_EXTENTS and normalization */
1180 #define DEBUG_SHIFT 0
1181
rb_time_stamp(struct trace_buffer * buffer)1182 static inline u64 rb_time_stamp(struct trace_buffer *buffer)
1183 {
1184 u64 ts;
1185
1186 /* Skip retpolines :-( */
1187 if (IS_ENABLED(CONFIG_MITIGATION_RETPOLINE) && likely(buffer->clock == trace_clock_local))
1188 ts = trace_clock_local();
1189 else
1190 ts = buffer->clock();
1191
1192 /* shift to debug/test normalization and TIME_EXTENTS */
1193 return ts << DEBUG_SHIFT;
1194 }
1195
ring_buffer_time_stamp(struct trace_buffer * buffer)1196 u64 ring_buffer_time_stamp(struct trace_buffer *buffer)
1197 {
1198 u64 time;
1199
1200 preempt_disable_notrace();
1201 time = rb_time_stamp(buffer);
1202 preempt_enable_notrace();
1203
1204 return time;
1205 }
1206 EXPORT_SYMBOL_GPL(ring_buffer_time_stamp);
1207
ring_buffer_normalize_time_stamp(struct trace_buffer * buffer,int cpu,u64 * ts)1208 void ring_buffer_normalize_time_stamp(struct trace_buffer *buffer,
1209 int cpu, u64 *ts)
1210 {
1211 /* Just stupid testing the normalize function and deltas */
1212 *ts >>= DEBUG_SHIFT;
1213 }
1214 EXPORT_SYMBOL_GPL(ring_buffer_normalize_time_stamp);
1215
1216 /*
1217 * Making the ring buffer lockless makes things tricky.
1218 * Although writes only happen on the CPU that they are on,
1219 * and they only need to worry about interrupts. Reads can
1220 * happen on any CPU.
1221 *
1222 * The reader page is always off the ring buffer, but when the
1223 * reader finishes with a page, it needs to swap its page with
1224 * a new one from the buffer. The reader needs to take from
1225 * the head (writes go to the tail). But if a writer is in overwrite
1226 * mode and wraps, it must push the head page forward.
1227 *
1228 * Here lies the problem.
1229 *
1230 * The reader must be careful to replace only the head page, and
1231 * not another one. As described at the top of the file in the
1232 * ASCII art, the reader sets its old page to point to the next
1233 * page after head. It then sets the page after head to point to
1234 * the old reader page. But if the writer moves the head page
1235 * during this operation, the reader could end up with the tail.
1236 *
1237 * We use cmpxchg to help prevent this race. We also do something
1238 * special with the page before head. We set the LSB to 1.
1239 *
1240 * When the writer must push the page forward, it will clear the
1241 * bit that points to the head page, move the head, and then set
1242 * the bit that points to the new head page.
1243 *
1244 * We also don't want an interrupt coming in and moving the head
1245 * page on another writer. Thus we use the second LSB to catch
1246 * that too. Thus:
1247 *
1248 * head->list->prev->next bit 1 bit 0
1249 * ------- -------
1250 * Normal page 0 0
1251 * Points to head page 0 1
1252 * New head page 1 0
1253 *
1254 * Note we can not trust the prev pointer of the head page, because:
1255 *
1256 * +----+ +-----+ +-----+
1257 * | |------>| T |---X--->| N |
1258 * | |<------| | | |
1259 * +----+ +-----+ +-----+
1260 * ^ ^ |
1261 * | +-----+ | |
1262 * +----------| R |----------+ |
1263 * | |<-----------+
1264 * +-----+
1265 *
1266 * Key: ---X--> HEAD flag set in pointer
1267 * T Tail page
1268 * R Reader page
1269 * N Next page
1270 *
1271 * (see __rb_reserve_next() to see where this happens)
1272 *
1273 * What the above shows is that the reader just swapped out
1274 * the reader page with a page in the buffer, but before it
1275 * could make the new header point back to the new page added
1276 * it was preempted by a writer. The writer moved forward onto
1277 * the new page added by the reader and is about to move forward
1278 * again.
1279 *
1280 * You can see, it is legitimate for the previous pointer of
1281 * the head (or any page) not to point back to itself. But only
1282 * temporarily.
1283 */
1284
1285 #define RB_PAGE_NORMAL 0UL
1286 #define RB_PAGE_HEAD 1UL
1287 #define RB_PAGE_UPDATE 2UL
1288
1289
1290 #define RB_FLAG_MASK 3UL
1291
1292 /* PAGE_MOVED is not part of the mask */
1293 #define RB_PAGE_MOVED 4UL
1294
1295 /*
1296 * rb_list_head - remove any bit
1297 */
rb_list_head(struct list_head * list)1298 static struct list_head *rb_list_head(struct list_head *list)
1299 {
1300 unsigned long val = (unsigned long)list;
1301
1302 return (struct list_head *)(val & ~RB_FLAG_MASK);
1303 }
1304
1305 /*
1306 * rb_is_head_page - test if the given page is the head page
1307 *
1308 * Because the reader may move the head_page pointer, we can
1309 * not trust what the head page is (it may be pointing to
1310 * the reader page). But if the next page is a header page,
1311 * its flags will be non zero.
1312 */
1313 static inline int
rb_is_head_page(struct buffer_page * page,struct list_head * list)1314 rb_is_head_page(struct buffer_page *page, struct list_head *list)
1315 {
1316 unsigned long val;
1317
1318 val = (unsigned long)list->next;
1319
1320 if ((val & ~RB_FLAG_MASK) != (unsigned long)&page->list)
1321 return RB_PAGE_MOVED;
1322
1323 return val & RB_FLAG_MASK;
1324 }
1325
1326 /*
1327 * rb_is_reader_page
1328 *
1329 * The unique thing about the reader page, is that, if the
1330 * writer is ever on it, the previous pointer never points
1331 * back to the reader page.
1332 */
rb_is_reader_page(struct buffer_page * page)1333 static bool rb_is_reader_page(struct buffer_page *page)
1334 {
1335 struct list_head *list = page->list.prev;
1336
1337 return rb_list_head(list->next) != &page->list;
1338 }
1339
1340 /*
1341 * rb_set_list_to_head - set a list_head to be pointing to head.
1342 */
rb_set_list_to_head(struct list_head * list)1343 static void rb_set_list_to_head(struct list_head *list)
1344 {
1345 unsigned long *ptr;
1346
1347 ptr = (unsigned long *)&list->next;
1348 *ptr |= RB_PAGE_HEAD;
1349 *ptr &= ~RB_PAGE_UPDATE;
1350 }
1351
1352 /*
1353 * rb_head_page_activate - sets up head page
1354 */
rb_head_page_activate(struct ring_buffer_per_cpu * cpu_buffer)1355 static void rb_head_page_activate(struct ring_buffer_per_cpu *cpu_buffer)
1356 {
1357 struct buffer_page *head;
1358
1359 head = cpu_buffer->head_page;
1360 if (!head)
1361 return;
1362
1363 /*
1364 * Set the previous list pointer to have the HEAD flag.
1365 */
1366 rb_set_list_to_head(head->list.prev);
1367
1368 if (cpu_buffer->ring_meta) {
1369 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
1370 meta->head_buffer = (unsigned long)head->page;
1371 }
1372 }
1373
rb_list_head_clear(struct list_head * list)1374 static void rb_list_head_clear(struct list_head *list)
1375 {
1376 unsigned long *ptr = (unsigned long *)&list->next;
1377
1378 *ptr &= ~RB_FLAG_MASK;
1379 }
1380
1381 /*
1382 * rb_head_page_deactivate - clears head page ptr (for free list)
1383 */
1384 static void
rb_head_page_deactivate(struct ring_buffer_per_cpu * cpu_buffer)1385 rb_head_page_deactivate(struct ring_buffer_per_cpu *cpu_buffer)
1386 {
1387 struct list_head *hd;
1388
1389 /* Go through the whole list and clear any pointers found. */
1390 rb_list_head_clear(cpu_buffer->pages);
1391
1392 list_for_each(hd, cpu_buffer->pages)
1393 rb_list_head_clear(hd);
1394 }
1395
rb_head_page_set(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * head,struct buffer_page * prev,int old_flag,int new_flag)1396 static int rb_head_page_set(struct ring_buffer_per_cpu *cpu_buffer,
1397 struct buffer_page *head,
1398 struct buffer_page *prev,
1399 int old_flag, int new_flag)
1400 {
1401 struct list_head *list;
1402 unsigned long val = (unsigned long)&head->list;
1403 unsigned long ret;
1404
1405 list = &prev->list;
1406
1407 val &= ~RB_FLAG_MASK;
1408
1409 ret = cmpxchg((unsigned long *)&list->next,
1410 val | old_flag, val | new_flag);
1411
1412 /* check if the reader took the page */
1413 if ((ret & ~RB_FLAG_MASK) != val)
1414 return RB_PAGE_MOVED;
1415
1416 return ret & RB_FLAG_MASK;
1417 }
1418
rb_head_page_set_update(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * head,struct buffer_page * prev,int old_flag)1419 static int rb_head_page_set_update(struct ring_buffer_per_cpu *cpu_buffer,
1420 struct buffer_page *head,
1421 struct buffer_page *prev,
1422 int old_flag)
1423 {
1424 return rb_head_page_set(cpu_buffer, head, prev,
1425 old_flag, RB_PAGE_UPDATE);
1426 }
1427
rb_head_page_set_head(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * head,struct buffer_page * prev,int old_flag)1428 static int rb_head_page_set_head(struct ring_buffer_per_cpu *cpu_buffer,
1429 struct buffer_page *head,
1430 struct buffer_page *prev,
1431 int old_flag)
1432 {
1433 return rb_head_page_set(cpu_buffer, head, prev,
1434 old_flag, RB_PAGE_HEAD);
1435 }
1436
rb_head_page_set_normal(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * head,struct buffer_page * prev,int old_flag)1437 static int rb_head_page_set_normal(struct ring_buffer_per_cpu *cpu_buffer,
1438 struct buffer_page *head,
1439 struct buffer_page *prev,
1440 int old_flag)
1441 {
1442 return rb_head_page_set(cpu_buffer, head, prev,
1443 old_flag, RB_PAGE_NORMAL);
1444 }
1445
rb_inc_page(struct buffer_page ** bpage)1446 static inline void rb_inc_page(struct buffer_page **bpage)
1447 {
1448 struct list_head *p = rb_list_head((*bpage)->list.next);
1449
1450 *bpage = list_entry(p, struct buffer_page, list);
1451 }
1452
rb_dec_page(struct buffer_page ** bpage)1453 static inline void rb_dec_page(struct buffer_page **bpage)
1454 {
1455 struct list_head *p = rb_list_head((*bpage)->list.prev);
1456
1457 *bpage = list_entry(p, struct buffer_page, list);
1458 }
1459
1460 static struct buffer_page *
rb_set_head_page(struct ring_buffer_per_cpu * cpu_buffer)1461 rb_set_head_page(struct ring_buffer_per_cpu *cpu_buffer)
1462 {
1463 struct buffer_page *head;
1464 struct buffer_page *page;
1465 struct list_head *list;
1466 int i;
1467
1468 if (RB_WARN_ON(cpu_buffer, !cpu_buffer->head_page))
1469 return NULL;
1470
1471 /* sanity check */
1472 list = cpu_buffer->pages;
1473 if (RB_WARN_ON(cpu_buffer, rb_list_head(list->prev->next) != list))
1474 return NULL;
1475
1476 page = head = cpu_buffer->head_page;
1477 /*
1478 * It is possible that the writer moves the header behind
1479 * where we started, and we miss in one loop.
1480 * A second loop should grab the header, but we'll do
1481 * three loops just because I'm paranoid.
1482 */
1483 for (i = 0; i < 3; i++) {
1484 do {
1485 if (rb_is_head_page(page, page->list.prev)) {
1486 cpu_buffer->head_page = page;
1487 return page;
1488 }
1489 rb_inc_page(&page);
1490 } while (page != head);
1491 }
1492
1493 RB_WARN_ON(cpu_buffer, 1);
1494
1495 return NULL;
1496 }
1497
rb_head_page_replace(struct buffer_page * old,struct buffer_page * new)1498 static bool rb_head_page_replace(struct buffer_page *old,
1499 struct buffer_page *new)
1500 {
1501 unsigned long *ptr = (unsigned long *)&old->list.prev->next;
1502 unsigned long val;
1503
1504 val = *ptr & ~RB_FLAG_MASK;
1505 val |= RB_PAGE_HEAD;
1506
1507 return try_cmpxchg(ptr, &val, (unsigned long)&new->list);
1508 }
1509
1510 /*
1511 * rb_tail_page_update - move the tail page forward
1512 */
rb_tail_page_update(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * tail_page,struct buffer_page * next_page)1513 static void rb_tail_page_update(struct ring_buffer_per_cpu *cpu_buffer,
1514 struct buffer_page *tail_page,
1515 struct buffer_page *next_page)
1516 {
1517 unsigned long old_entries;
1518 unsigned long old_write;
1519
1520 /*
1521 * The tail page now needs to be moved forward.
1522 *
1523 * We need to reset the tail page, but without messing
1524 * with possible erasing of data brought in by interrupts
1525 * that have moved the tail page and are currently on it.
1526 *
1527 * We add a counter to the write field to denote this.
1528 */
1529 old_write = local_add_return(RB_WRITE_INTCNT, &next_page->write);
1530 old_entries = local_add_return(RB_WRITE_INTCNT, &next_page->entries);
1531
1532 /*
1533 * Just make sure we have seen our old_write and synchronize
1534 * with any interrupts that come in.
1535 */
1536 barrier();
1537
1538 /*
1539 * If the tail page is still the same as what we think
1540 * it is, then it is up to us to update the tail
1541 * pointer.
1542 */
1543 if (tail_page == READ_ONCE(cpu_buffer->tail_page)) {
1544 /* Zero the write counter */
1545 unsigned long val = old_write & ~RB_WRITE_MASK;
1546 unsigned long eval = old_entries & ~RB_WRITE_MASK;
1547
1548 /*
1549 * This will only succeed if an interrupt did
1550 * not come in and change it. In which case, we
1551 * do not want to modify it.
1552 *
1553 * We add (void) to let the compiler know that we do not care
1554 * about the return value of these functions. We use the
1555 * cmpxchg to only update if an interrupt did not already
1556 * do it for us. If the cmpxchg fails, we don't care.
1557 */
1558 (void)local_cmpxchg(&next_page->write, old_write, val);
1559 (void)local_cmpxchg(&next_page->entries, old_entries, eval);
1560
1561 /*
1562 * No need to worry about races with clearing out the commit.
1563 * it only can increment when a commit takes place. But that
1564 * only happens in the outer most nested commit.
1565 */
1566 local_set(&next_page->page->commit, 0);
1567
1568 /* Either we update tail_page or an interrupt does */
1569 if (try_cmpxchg(&cpu_buffer->tail_page, &tail_page, next_page))
1570 local_inc(&cpu_buffer->pages_touched);
1571 }
1572 }
1573
rb_check_bpage(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * bpage)1574 static void rb_check_bpage(struct ring_buffer_per_cpu *cpu_buffer,
1575 struct buffer_page *bpage)
1576 {
1577 unsigned long val = (unsigned long)bpage;
1578
1579 RB_WARN_ON(cpu_buffer, val & RB_FLAG_MASK);
1580 }
1581
rb_check_links(struct ring_buffer_per_cpu * cpu_buffer,struct list_head * list)1582 static bool rb_check_links(struct ring_buffer_per_cpu *cpu_buffer,
1583 struct list_head *list)
1584 {
1585 if (RB_WARN_ON(cpu_buffer,
1586 rb_list_head(rb_list_head(list->next)->prev) != list))
1587 return false;
1588
1589 if (RB_WARN_ON(cpu_buffer,
1590 rb_list_head(rb_list_head(list->prev)->next) != list))
1591 return false;
1592
1593 return true;
1594 }
1595
1596 /**
1597 * rb_check_pages - integrity check of buffer pages
1598 * @cpu_buffer: CPU buffer with pages to test
1599 *
1600 * As a safety measure we check to make sure the data pages have not
1601 * been corrupted.
1602 */
rb_check_pages(struct ring_buffer_per_cpu * cpu_buffer)1603 static void rb_check_pages(struct ring_buffer_per_cpu *cpu_buffer)
1604 {
1605 struct list_head *head, *tmp;
1606 unsigned long buffer_cnt;
1607 unsigned long flags;
1608 int nr_loops = 0;
1609
1610 /*
1611 * Walk the linked list underpinning the ring buffer and validate all
1612 * its next and prev links.
1613 *
1614 * The check acquires the reader_lock to avoid concurrent processing
1615 * with code that could be modifying the list. However, the lock cannot
1616 * be held for the entire duration of the walk, as this would make the
1617 * time when interrupts are disabled non-deterministic, dependent on the
1618 * ring buffer size. Therefore, the code releases and re-acquires the
1619 * lock after checking each page. The ring_buffer_per_cpu.cnt variable
1620 * is then used to detect if the list was modified while the lock was
1621 * not held, in which case the check needs to be restarted.
1622 *
1623 * The code attempts to perform the check at most three times before
1624 * giving up. This is acceptable because this is only a self-validation
1625 * to detect problems early on. In practice, the list modification
1626 * operations are fairly spaced, and so this check typically succeeds at
1627 * most on the second try.
1628 */
1629 again:
1630 if (++nr_loops > 3)
1631 return;
1632
1633 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
1634 head = rb_list_head(cpu_buffer->pages);
1635 if (!rb_check_links(cpu_buffer, head))
1636 goto out_locked;
1637 buffer_cnt = cpu_buffer->cnt;
1638 tmp = head;
1639 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
1640
1641 while (true) {
1642 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
1643
1644 if (buffer_cnt != cpu_buffer->cnt) {
1645 /* The list was updated, try again. */
1646 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
1647 goto again;
1648 }
1649
1650 tmp = rb_list_head(tmp->next);
1651 if (tmp == head)
1652 /* The iteration circled back, all is done. */
1653 goto out_locked;
1654
1655 if (!rb_check_links(cpu_buffer, tmp))
1656 goto out_locked;
1657
1658 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
1659 }
1660
1661 out_locked:
1662 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
1663 }
1664
1665 /*
1666 * Take an address, add the meta data size as well as the array of
1667 * array subbuffer indexes, then align it to a subbuffer size.
1668 *
1669 * This is used to help find the next per cpu subbuffer within a mapped range.
1670 */
1671 static unsigned long
rb_range_align_subbuf(unsigned long addr,int subbuf_size,int nr_subbufs)1672 rb_range_align_subbuf(unsigned long addr, int subbuf_size, int nr_subbufs)
1673 {
1674 addr += sizeof(struct ring_buffer_cpu_meta) +
1675 sizeof(int) * nr_subbufs;
1676 return ALIGN(addr, subbuf_size);
1677 }
1678
1679 /*
1680 * Return the ring_buffer_meta for a given @cpu.
1681 */
rb_range_meta(struct trace_buffer * buffer,int nr_pages,int cpu)1682 static void *rb_range_meta(struct trace_buffer *buffer, int nr_pages, int cpu)
1683 {
1684 int subbuf_size = rb_subbuf_size(buffer);
1685 struct ring_buffer_cpu_meta *meta;
1686 struct ring_buffer_meta *bmeta;
1687 unsigned long ptr;
1688 int nr_subbufs;
1689
1690 bmeta = buffer->meta;
1691 if (!bmeta)
1692 return NULL;
1693
1694 ptr = (unsigned long)bmeta + bmeta->buffers_offset;
1695 meta = (struct ring_buffer_cpu_meta *)ptr;
1696
1697 /* When nr_pages passed in is zero, the first meta has already been initialized */
1698 if (!nr_pages) {
1699 nr_subbufs = meta->nr_subbufs;
1700 } else {
1701 /* Include the reader page */
1702 nr_subbufs = nr_pages + 1;
1703 }
1704
1705 /*
1706 * The first chunk may not be subbuffer aligned, where as
1707 * the rest of the chunks are.
1708 */
1709 if (cpu) {
1710 ptr = rb_range_align_subbuf(ptr, subbuf_size, nr_subbufs);
1711 ptr += subbuf_size * nr_subbufs;
1712
1713 /* We can use multiplication to find chunks greater than 1 */
1714 if (cpu > 1) {
1715 unsigned long size;
1716 unsigned long p;
1717
1718 /* Save the beginning of this CPU chunk */
1719 p = ptr;
1720 ptr = rb_range_align_subbuf(ptr, subbuf_size, nr_subbufs);
1721 ptr += subbuf_size * nr_subbufs;
1722
1723 /* Now all chunks after this are the same size */
1724 size = ptr - p;
1725 ptr += size * (cpu - 2);
1726 }
1727 }
1728 return (void *)ptr;
1729 }
1730
1731 /* Return the start of subbufs given the meta pointer */
rb_subbufs_from_meta(struct ring_buffer_cpu_meta * meta)1732 static void *rb_subbufs_from_meta(struct ring_buffer_cpu_meta *meta)
1733 {
1734 int subbuf_size = meta->subbuf_size;
1735 unsigned long ptr;
1736
1737 ptr = (unsigned long)meta;
1738 ptr = rb_range_align_subbuf(ptr, subbuf_size, meta->nr_subbufs);
1739
1740 return (void *)ptr;
1741 }
1742
1743 /*
1744 * Return a specific sub-buffer for a given @cpu defined by @idx.
1745 */
rb_range_buffer(struct ring_buffer_per_cpu * cpu_buffer,int idx)1746 static void *rb_range_buffer(struct ring_buffer_per_cpu *cpu_buffer, int idx)
1747 {
1748 struct ring_buffer_cpu_meta *meta;
1749 unsigned long ptr;
1750 int subbuf_size;
1751
1752 meta = rb_range_meta(cpu_buffer->buffer, 0, cpu_buffer->cpu);
1753 if (!meta)
1754 return NULL;
1755
1756 if (WARN_ON_ONCE(idx >= meta->nr_subbufs))
1757 return NULL;
1758
1759 subbuf_size = meta->subbuf_size;
1760
1761 /* Map this buffer to the order that's in meta->buffers[] */
1762 idx = meta->buffers[idx];
1763
1764 ptr = (unsigned long)rb_subbufs_from_meta(meta);
1765
1766 ptr += subbuf_size * idx;
1767 if (ptr + subbuf_size > cpu_buffer->buffer->range_addr_end)
1768 return NULL;
1769
1770 return (void *)ptr;
1771 }
1772
1773 /*
1774 * See if the existing memory contains a valid meta section.
1775 * if so, use that, otherwise initialize it.
1776 */
rb_meta_init(struct trace_buffer * buffer,int scratch_size)1777 static bool rb_meta_init(struct trace_buffer *buffer, int scratch_size)
1778 {
1779 unsigned long ptr = buffer->range_addr_start;
1780 struct ring_buffer_meta *bmeta;
1781 unsigned long total_size;
1782 int struct_sizes;
1783
1784 bmeta = (struct ring_buffer_meta *)ptr;
1785 buffer->meta = bmeta;
1786
1787 total_size = buffer->range_addr_end - buffer->range_addr_start;
1788
1789 struct_sizes = sizeof(struct ring_buffer_cpu_meta);
1790 struct_sizes |= sizeof(*bmeta) << 16;
1791
1792 /* The first buffer will start word size after the meta page */
1793 ptr += sizeof(*bmeta);
1794 ptr = ALIGN(ptr, sizeof(long));
1795 ptr += scratch_size;
1796
1797 if (bmeta->magic != RING_BUFFER_META_MAGIC) {
1798 pr_info("Ring buffer boot meta mismatch of magic\n");
1799 goto init;
1800 }
1801
1802 if (bmeta->struct_sizes != struct_sizes) {
1803 pr_info("Ring buffer boot meta mismatch of struct size\n");
1804 goto init;
1805 }
1806
1807 if (bmeta->total_size != total_size) {
1808 pr_info("Ring buffer boot meta mismatch of total size\n");
1809 goto init;
1810 }
1811
1812 if (bmeta->buffers_offset > bmeta->total_size) {
1813 pr_info("Ring buffer boot meta mismatch of offset outside of total size\n");
1814 goto init;
1815 }
1816
1817 if (bmeta->buffers_offset != (void *)ptr - (void *)bmeta) {
1818 pr_info("Ring buffer boot meta mismatch of first buffer offset\n");
1819 goto init;
1820 }
1821
1822 return true;
1823
1824 init:
1825 bmeta->magic = RING_BUFFER_META_MAGIC;
1826 bmeta->struct_sizes = struct_sizes;
1827 bmeta->total_size = total_size;
1828 bmeta->buffers_offset = (void *)ptr - (void *)bmeta;
1829
1830 /* Zero out the scratch pad */
1831 memset((void *)bmeta + sizeof(*bmeta), 0, bmeta->buffers_offset - sizeof(*bmeta));
1832
1833 return false;
1834 }
1835
1836 /*
1837 * See if the existing memory contains valid ring buffer data.
1838 * As the previous kernel must be the same as this kernel, all
1839 * the calculations (size of buffers and number of buffers)
1840 * must be the same.
1841 */
rb_cpu_meta_valid(struct ring_buffer_cpu_meta * meta,int cpu,struct trace_buffer * buffer,int nr_pages,unsigned long * subbuf_mask)1842 static bool rb_cpu_meta_valid(struct ring_buffer_cpu_meta *meta, int cpu,
1843 struct trace_buffer *buffer, int nr_pages,
1844 unsigned long *subbuf_mask)
1845 {
1846 int subbuf_size = PAGE_SIZE;
1847 unsigned long buffers_start;
1848 unsigned long buffers_end;
1849 int i;
1850
1851 if (!subbuf_mask)
1852 return false;
1853
1854 if (meta->subbuf_size != PAGE_SIZE) {
1855 pr_info("Ring buffer boot meta [%d] invalid subbuf_size\n", cpu);
1856 return false;
1857 }
1858
1859 buffers_start = meta->first_buffer;
1860 buffers_end = meta->first_buffer + (subbuf_size * meta->nr_subbufs);
1861
1862 /* Is the head and commit buffers within the range of buffers? */
1863 if (meta->head_buffer < buffers_start ||
1864 meta->head_buffer >= buffers_end) {
1865 pr_info("Ring buffer boot meta [%d] head buffer out of range\n", cpu);
1866 return false;
1867 }
1868
1869 if (meta->commit_buffer < buffers_start ||
1870 meta->commit_buffer >= buffers_end) {
1871 pr_info("Ring buffer boot meta [%d] commit buffer out of range\n", cpu);
1872 return false;
1873 }
1874
1875 bitmap_clear(subbuf_mask, 0, meta->nr_subbufs);
1876
1877 /*
1878 * Ensure the meta::buffers array has correct data. The data in each subbufs
1879 * are checked later in rb_meta_validate_events().
1880 */
1881 for (i = 0; i < meta->nr_subbufs; i++) {
1882 if (meta->buffers[i] < 0 ||
1883 meta->buffers[i] >= meta->nr_subbufs) {
1884 pr_info("Ring buffer boot meta [%d] array out of range\n", cpu);
1885 return false;
1886 }
1887
1888 if (test_bit(meta->buffers[i], subbuf_mask)) {
1889 pr_info("Ring buffer boot meta [%d] array has duplicates\n", cpu);
1890 return false;
1891 }
1892
1893 set_bit(meta->buffers[i], subbuf_mask);
1894 }
1895
1896 return true;
1897 }
1898
1899 static int rb_meta_subbuf_idx(struct ring_buffer_cpu_meta *meta, void *subbuf);
1900
rb_read_data_buffer(struct buffer_data_page * dpage,int tail,int cpu,unsigned long long * timestamp,u64 * delta_ptr)1901 static int rb_read_data_buffer(struct buffer_data_page *dpage, int tail, int cpu,
1902 unsigned long long *timestamp, u64 *delta_ptr)
1903 {
1904 struct ring_buffer_event *event;
1905 u64 ts, delta;
1906 int events = 0;
1907 int len;
1908 int e;
1909
1910 *delta_ptr = 0;
1911 *timestamp = 0;
1912
1913 ts = dpage->time_stamp;
1914
1915 for (e = 0; e < tail; e += len) {
1916
1917 event = (struct ring_buffer_event *)(dpage->data + e);
1918 len = rb_event_length(event);
1919 if (len <= 0 || len > tail - e)
1920 return -1;
1921
1922 switch (event->type_len) {
1923
1924 case RINGBUF_TYPE_TIME_EXTEND:
1925 delta = rb_event_time_stamp(event);
1926 ts += delta;
1927 break;
1928
1929 case RINGBUF_TYPE_TIME_STAMP:
1930 delta = rb_event_time_stamp(event);
1931 delta = rb_fix_abs_ts(delta, ts);
1932 if (delta < ts) {
1933 *delta_ptr = delta;
1934 *timestamp = ts;
1935 return -1;
1936 }
1937 ts = delta;
1938 break;
1939
1940 case RINGBUF_TYPE_PADDING:
1941 if (event->time_delta == 1)
1942 break;
1943 fallthrough;
1944 case RINGBUF_TYPE_DATA:
1945 events++;
1946 ts += event->time_delta;
1947 break;
1948
1949 default:
1950 return -1;
1951 }
1952 }
1953 *timestamp = ts;
1954 return events;
1955 }
1956
1957 struct rb_validation_state {
1958 unsigned long entries;
1959 unsigned long entry_bytes;
1960 int discarded;
1961 u64 ts;
1962 };
1963
__rb_validate_buffer(struct buffer_page * bpage,int cpu,struct ring_buffer_cpu_meta * meta,u64 prev_ts,u64 next_ts)1964 static int __rb_validate_buffer(struct buffer_page *bpage, int cpu,
1965 struct ring_buffer_cpu_meta *meta,
1966 u64 prev_ts, u64 next_ts)
1967 {
1968 struct buffer_data_page *dpage = bpage->page;
1969 unsigned long long ts;
1970 unsigned long tail;
1971 u64 delta;
1972 int ret;
1973
1974 /*
1975 * When a sub-buffer is recovered from a read, the commit value may
1976 * have RB_MISSED_* bits set, as these bits are reset on reuse.
1977 * Even after clearing these bits, a commit value greater than the
1978 * subbuf_size is considered invalid.
1979 */
1980 tail = rb_data_page_commit(dpage);
1981 if (tail <= meta->subbuf_size - BUF_PAGE_HDR_SIZE)
1982 ret = rb_read_data_buffer(dpage, tail, cpu, &ts, &delta);
1983 else
1984 ret = -1;
1985
1986 /*
1987 * The timestamp must be greater than @prev_ts and smaller than @next_ts.
1988 * Since this function works in both forward (verify) and reverse (unwind)
1989 * loop, we don't know both @prev_ts and @next_ts at the same time.
1990 * So use the known boundary as the boundary.
1991 */
1992 if (ret < 0 || (prev_ts && prev_ts > ts) || (next_ts && ts > next_ts)) {
1993 local_set(&bpage->entries, 0);
1994 /*
1995 * Note, the RB_MISSED_EVENTS is only set inside the main write
1996 * buffer by this verification logic. The normal ring buffer
1997 * has this bit set when the page is read and passed to the
1998 * consumers.
1999 */
2000 local_set(&dpage->commit, RB_MISSED_EVENTS);
2001 dpage->time_stamp = prev_ts ? prev_ts : next_ts;
2002 ret = -1;
2003 } else {
2004 local_set(&bpage->entries, ret);
2005 }
2006
2007 return ret;
2008 }
2009
2010 /**
2011 * rb_validate_buffer - validates a single buffer page and updates the state.
2012 * @bpage: buffer page to validate
2013 * @cpu_buffer: cpu_buffer this page belongs to
2014 * @meta: meta of the cpu_buffer
2015 * @state: validation state
2016 * @prev_ts: previous buffer's timestamp (optional)
2017 * @next_ts: next buffer's timestamp (optional)
2018 *
2019 * If the page is invalid (wrong event length or timestamp), it increments the
2020 * discarded counter and warns it. Otherwise, it updates the validation state.
2021 */
rb_validate_buffer(struct buffer_page * bpage,struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_cpu_meta * meta,struct rb_validation_state * state,u64 prev_ts,u64 next_ts)2022 static void rb_validate_buffer(struct buffer_page *bpage,
2023 struct ring_buffer_per_cpu *cpu_buffer,
2024 struct ring_buffer_cpu_meta *meta,
2025 struct rb_validation_state *state,
2026 u64 prev_ts, u64 next_ts)
2027 {
2028 int ret;
2029
2030 ret = __rb_validate_buffer(bpage, cpu_buffer->cpu, meta, prev_ts, next_ts);
2031 if (ret < 0) {
2032 if (!state->discarded)
2033 pr_info("Ring buffer meta [%d] invalid buffer page detected\n",
2034 cpu_buffer->cpu);
2035 state->discarded++;
2036 } else {
2037 /* If the buffer has content, update pages_touched */
2038 if (ret)
2039 local_inc(&cpu_buffer->pages_touched);
2040
2041 state->entries += ret;
2042 state->entry_bytes += rb_page_size(bpage);
2043 state->ts = bpage->page->time_stamp;
2044 }
2045 }
2046
rb_meta_inject_reader_page(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_cpu_meta * meta,struct buffer_page * orig_head,struct buffer_page * head_page)2047 static void rb_meta_inject_reader_page(struct ring_buffer_per_cpu *cpu_buffer,
2048 struct ring_buffer_cpu_meta *meta,
2049 struct buffer_page *orig_head,
2050 struct buffer_page *head_page)
2051 {
2052 struct buffer_page *bpage = orig_head;
2053 int i;
2054
2055 rb_dec_page(&bpage);
2056 /*
2057 * Insert the reader_page before the original head page.
2058 * Since the list encode RB_PAGE flags, general list
2059 * operations should be avoided.
2060 */
2061 cpu_buffer->reader_page->list.next = &orig_head->list;
2062 cpu_buffer->reader_page->list.prev = orig_head->list.prev;
2063 orig_head->list.prev = &cpu_buffer->reader_page->list;
2064 bpage->list.next = &cpu_buffer->reader_page->list;
2065
2066 /* Make the head_page the reader page */
2067 cpu_buffer->reader_page = head_page;
2068 bpage = head_page;
2069 rb_inc_page(&head_page);
2070 head_page->list.prev = bpage->list.prev;
2071 rb_dec_page(&bpage);
2072 bpage->list.next = &head_page->list;
2073 rb_set_list_to_head(&bpage->list);
2074 cpu_buffer->pages = &head_page->list;
2075
2076 cpu_buffer->head_page = head_page;
2077 meta->head_buffer = (unsigned long)head_page->page;
2078
2079 /* Reset all the indexes */
2080 bpage = cpu_buffer->reader_page;
2081 meta->buffers[0] = rb_meta_subbuf_idx(meta, bpage->page);
2082 bpage->id = 0;
2083
2084 for (i = 1, bpage = head_page; i < meta->nr_subbufs;
2085 i++, rb_inc_page(&bpage)) {
2086 meta->buffers[i] = rb_meta_subbuf_idx(meta, bpage->page);
2087 bpage->id = i;
2088 }
2089 }
2090
2091 /* If the meta data has been validated, now validate the events */
rb_meta_validate_events(struct ring_buffer_per_cpu * cpu_buffer)2092 static void rb_meta_validate_events(struct ring_buffer_per_cpu *cpu_buffer)
2093 {
2094 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
2095 struct buffer_page *head_page, *orig_head, *orig_reader;
2096 struct rb_validation_state state = { 0 };
2097 bool skip = false;
2098 int ret;
2099 int i;
2100
2101 if (!meta || !meta->head_buffer)
2102 return;
2103
2104 orig_head = head_page = cpu_buffer->head_page;
2105 orig_reader = cpu_buffer->reader_page;
2106
2107 /* Do the head page first */
2108 ret = __rb_validate_buffer(head_page, cpu_buffer->cpu, meta, 0, 0);
2109 if (ret < 0) {
2110 pr_info("Ring buffer meta [%d] invalid head page detected\n",
2111 cpu_buffer->cpu);
2112 /* Don't bother rewinding */
2113 skip = true;
2114 state.ts = 0;
2115 } else {
2116 state.ts = head_page->page->time_stamp;
2117 }
2118
2119 /* Do the reader page - reader must be previous to head. */
2120 rb_validate_buffer(orig_reader, cpu_buffer, meta, &state, 0, state.ts);
2121
2122 if (skip)
2123 goto skip_rewind;
2124
2125 /*
2126 * Try to rewind the head so that we can read the pages which are already
2127 * read in the previous boot.
2128 */
2129 if (head_page == cpu_buffer->tail_page)
2130 goto skip_rewind;
2131
2132 rb_dec_page(&head_page);
2133 for (i = 0; i < meta->nr_subbufs + 1; i++, rb_dec_page(&head_page)) {
2134
2135 /* Rewind until tail (writer) page. */
2136 if (head_page == cpu_buffer->tail_page)
2137 break;
2138
2139 /* Rewind until unused page (no timestamp, no commit). */
2140 if (!head_page->page->time_stamp && rb_page_commit(head_page) == 0)
2141 break;
2142
2143 /*
2144 * Skip if the page is invalid, or its timestamp is newer than the
2145 * previous valid page.
2146 */
2147 rb_validate_buffer(head_page, cpu_buffer, meta, &state, 0, state.ts);
2148 }
2149 if (i)
2150 pr_info("Ring buffer [%d] rewound %d pages\n", cpu_buffer->cpu, i);
2151
2152 /* The last rewound page must be skipped. */
2153 if (head_page != orig_head)
2154 rb_inc_page(&head_page);
2155
2156 /*
2157 * If the ring buffer was rewound, then inject the reader page
2158 * into the location just before the original head page.
2159 */
2160 if (head_page != orig_head) {
2161 rb_meta_inject_reader_page(cpu_buffer, meta, orig_head, head_page);
2162 /* We'll restart verifying from orig_head */
2163 head_page = orig_head;
2164 }
2165
2166 skip_rewind:
2167 /* If the commit_buffer is the reader page, update the commit page */
2168 if (meta->commit_buffer == (unsigned long)cpu_buffer->reader_page->page) {
2169 cpu_buffer->commit_page = cpu_buffer->reader_page;
2170 /* Nothing more to do, the only page is the reader page */
2171 goto done;
2172 }
2173 state.ts = head_page->page->time_stamp;
2174
2175 /* Iterate until finding the commit page */
2176 for (i = 0; i < meta->nr_subbufs + 1; i++, rb_inc_page(&head_page)) {
2177
2178 /* The original reader page has already been checked/counted. */
2179 if (head_page == orig_reader)
2180 continue;
2181
2182 rb_validate_buffer(head_page, cpu_buffer, meta, &state, state.ts, 0);
2183
2184 if (head_page == cpu_buffer->commit_page)
2185 break;
2186 }
2187
2188 if (head_page != cpu_buffer->commit_page) {
2189 pr_info("Ring buffer meta [%d] commit page not found\n",
2190 cpu_buffer->cpu);
2191 goto invalid;
2192 }
2193 done:
2194 local_set(&cpu_buffer->entries, state.entries);
2195 local_set(&cpu_buffer->entries_bytes, state.entry_bytes);
2196
2197 pr_info("Ring buffer meta [%d] is from previous boot!", cpu_buffer->cpu);
2198 if (state.discarded)
2199 pr_cont(" (%d pages discarded)", state.discarded);
2200 pr_cont("\n");
2201
2202 #ifdef CONFIG_RING_BUFFER_PERSISTENT_INJECT
2203 if (meta->nr_invalid)
2204 pr_warn("Ring buffer testing [%d] invalid pages: %s (%d/%d)\n",
2205 cpu_buffer->cpu,
2206 (state.discarded == meta->nr_invalid) ? "PASSED" : "FAILED",
2207 state.discarded, meta->nr_invalid);
2208 if (meta->entry_bytes)
2209 pr_warn("Ring buffer testing [%d] entry_bytes: %s (%ld/%ld)\n",
2210 cpu_buffer->cpu,
2211 (state.entry_bytes == meta->entry_bytes) ? "PASSED" : "FAILED",
2212 (long)state.entry_bytes, (long)meta->entry_bytes);
2213 meta->nr_invalid = 0;
2214 meta->entry_bytes = 0;
2215 #endif
2216 return;
2217
2218 invalid:
2219 /* The content of the buffers are invalid, reset the meta data */
2220 meta->head_buffer = 0;
2221 meta->commit_buffer = 0;
2222
2223 /* Reset the reader page */
2224 local_set(&cpu_buffer->reader_page->entries, 0);
2225 rb_init_data_page(cpu_buffer->reader_page->page);
2226
2227 /* Reset all the subbuffers */
2228 for (i = 0; i < meta->nr_subbufs - 1; i++, rb_inc_page(&head_page)) {
2229 local_set(&head_page->entries, 0);
2230 rb_init_data_page(head_page->page);
2231 }
2232 }
2233
rb_range_meta_init(struct trace_buffer * buffer,int nr_pages,int scratch_size)2234 static void rb_range_meta_init(struct trace_buffer *buffer, int nr_pages, int scratch_size)
2235 {
2236 struct ring_buffer_cpu_meta *meta;
2237 unsigned long *subbuf_mask;
2238 unsigned long delta;
2239 void *subbuf;
2240 bool valid = false;
2241 int cpu;
2242 int i;
2243
2244 /* Create a mask to test the subbuf array */
2245 subbuf_mask = bitmap_alloc(nr_pages + 1, GFP_KERNEL);
2246 /* If subbuf_mask fails to allocate, then rb_meta_valid() will return false */
2247
2248 if (rb_meta_init(buffer, scratch_size))
2249 valid = true;
2250
2251 for (cpu = 0; cpu < nr_cpu_ids; cpu++) {
2252 void *next_meta;
2253
2254 meta = rb_range_meta(buffer, nr_pages, cpu);
2255
2256 if (valid && rb_cpu_meta_valid(meta, cpu, buffer, nr_pages, subbuf_mask)) {
2257 /* Make the mappings match the current address */
2258 subbuf = rb_subbufs_from_meta(meta);
2259 delta = (unsigned long)subbuf - meta->first_buffer;
2260 meta->first_buffer += delta;
2261 meta->head_buffer += delta;
2262 meta->commit_buffer += delta;
2263 continue;
2264 }
2265
2266 if (cpu < nr_cpu_ids - 1)
2267 next_meta = rb_range_meta(buffer, nr_pages, cpu + 1);
2268 else
2269 next_meta = (void *)buffer->range_addr_end;
2270
2271 memset(meta, 0, next_meta - (void *)meta);
2272
2273 meta->nr_subbufs = nr_pages + 1;
2274 meta->subbuf_size = PAGE_SIZE;
2275
2276 subbuf = rb_subbufs_from_meta(meta);
2277
2278 meta->first_buffer = (unsigned long)subbuf;
2279
2280 /*
2281 * The buffers[] array holds the order of the sub-buffers
2282 * that are after the meta data. The sub-buffers may
2283 * be swapped out when read and inserted into a different
2284 * location of the ring buffer. Although their addresses
2285 * remain the same, the buffers[] array contains the
2286 * index into the sub-buffers holding their actual order.
2287 */
2288 for (i = 0; i < meta->nr_subbufs; i++) {
2289 meta->buffers[i] = i;
2290 rb_init_data_page(subbuf);
2291 subbuf += meta->subbuf_size;
2292 }
2293 }
2294 bitmap_free(subbuf_mask);
2295 }
2296
rbm_start(struct seq_file * m,loff_t * pos)2297 static void *rbm_start(struct seq_file *m, loff_t *pos)
2298 {
2299 struct ring_buffer_per_cpu *cpu_buffer = m->private;
2300 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
2301 unsigned long val;
2302
2303 if (!meta)
2304 return NULL;
2305
2306 if (*pos > meta->nr_subbufs)
2307 return NULL;
2308
2309 val = *pos;
2310 val++;
2311
2312 return (void *)val;
2313 }
2314
rbm_next(struct seq_file * m,void * v,loff_t * pos)2315 static void *rbm_next(struct seq_file *m, void *v, loff_t *pos)
2316 {
2317 (*pos)++;
2318
2319 return rbm_start(m, pos);
2320 }
2321
rbm_show(struct seq_file * m,void * v)2322 static int rbm_show(struct seq_file *m, void *v)
2323 {
2324 struct ring_buffer_per_cpu *cpu_buffer = m->private;
2325 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
2326 unsigned long val = (unsigned long)v;
2327 struct buffer_data_page *dpage;
2328
2329 if (val == 1) {
2330 seq_printf(m, "head_buffer: %d\n",
2331 rb_meta_subbuf_idx(meta, (void *)meta->head_buffer));
2332 seq_printf(m, "commit_buffer: %d\n",
2333 rb_meta_subbuf_idx(meta, (void *)meta->commit_buffer));
2334 seq_printf(m, "subbuf_size: %d\n", meta->subbuf_size);
2335 seq_printf(m, "nr_subbufs: %d\n", meta->nr_subbufs);
2336 return 0;
2337 }
2338
2339 val -= 2;
2340 dpage = rb_range_buffer(cpu_buffer, val);
2341 seq_printf(m, "buffer[%ld]: %d (commit: %ld)\n",
2342 val, meta->buffers[val], dpage ? rb_data_page_commit(dpage) : -1);
2343
2344 return 0;
2345 }
2346
rbm_stop(struct seq_file * m,void * p)2347 static void rbm_stop(struct seq_file *m, void *p)
2348 {
2349 }
2350
2351 static const struct seq_operations rb_meta_seq_ops = {
2352 .start = rbm_start,
2353 .next = rbm_next,
2354 .show = rbm_show,
2355 .stop = rbm_stop,
2356 };
2357
ring_buffer_meta_seq_init(struct file * file,struct trace_buffer * buffer,int cpu)2358 int ring_buffer_meta_seq_init(struct file *file, struct trace_buffer *buffer, int cpu)
2359 {
2360 struct seq_file *m;
2361 int ret;
2362
2363 ret = seq_open(file, &rb_meta_seq_ops);
2364 if (ret)
2365 return ret;
2366
2367 m = file->private_data;
2368 m->private = buffer->buffers[cpu];
2369
2370 return 0;
2371 }
2372
2373 /* Map the buffer_pages to the previous head and commit pages */
rb_meta_buffer_update(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * bpage)2374 static void rb_meta_buffer_update(struct ring_buffer_per_cpu *cpu_buffer,
2375 struct buffer_page *bpage)
2376 {
2377 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
2378
2379 if (meta->head_buffer == (unsigned long)bpage->page)
2380 cpu_buffer->head_page = bpage;
2381
2382 if (meta->commit_buffer == (unsigned long)bpage->page) {
2383 cpu_buffer->commit_page = bpage;
2384 cpu_buffer->tail_page = bpage;
2385 }
2386 }
2387
ring_buffer_desc(struct trace_buffer_desc * trace_desc,int cpu)2388 static struct ring_buffer_desc *ring_buffer_desc(struct trace_buffer_desc *trace_desc, int cpu)
2389 {
2390 struct ring_buffer_desc *desc, *end;
2391 size_t len;
2392 int i;
2393
2394 if (!trace_desc || !trace_desc->nr_cpus)
2395 return NULL;
2396
2397 end = (struct ring_buffer_desc *)((void *)trace_desc + trace_desc->struct_len);
2398 desc = __first_ring_buffer_desc(trace_desc);
2399 len = struct_size(desc, page_va, desc->nr_page_va);
2400 desc = (struct ring_buffer_desc *)((void *)desc + (len * cpu));
2401
2402 if (desc < end && desc->cpu == cpu)
2403 return desc;
2404
2405 /* Missing CPUs, need to linear search */
2406 for_each_ring_buffer_desc(desc, i, trace_desc) {
2407 if (desc->cpu == cpu)
2408 return desc;
2409 }
2410
2411 return NULL;
2412 }
2413
ring_buffer_desc_page(struct ring_buffer_desc * desc,unsigned int page_id)2414 static void *ring_buffer_desc_page(struct ring_buffer_desc *desc, unsigned int page_id)
2415 {
2416 return page_id >= desc->nr_page_va ? NULL : (void *)desc->page_va[page_id];
2417 }
2418
__rb_allocate_pages(struct ring_buffer_per_cpu * cpu_buffer,long nr_pages,struct list_head * pages)2419 static int __rb_allocate_pages(struct ring_buffer_per_cpu *cpu_buffer,
2420 long nr_pages, struct list_head *pages)
2421 {
2422 struct trace_buffer *buffer = cpu_buffer->buffer;
2423 struct ring_buffer_cpu_meta *meta = NULL;
2424 struct buffer_page *bpage, *tmp;
2425 bool user_thread = current->mm != NULL;
2426 struct ring_buffer_desc *desc = NULL;
2427 long i;
2428
2429 /*
2430 * Check if the available memory is there first.
2431 * Note, si_mem_available() only gives us a rough estimate of available
2432 * memory. It may not be accurate. But we don't care, we just want
2433 * to prevent doing any allocation when it is obvious that it is
2434 * not going to succeed.
2435 */
2436 i = si_mem_available();
2437 if (i < nr_pages)
2438 return -ENOMEM;
2439
2440 /*
2441 * If a user thread allocates too much, and si_mem_available()
2442 * reports there's enough memory, even though there is not.
2443 * Make sure the OOM killer kills this thread. This can happen
2444 * even with RETRY_MAYFAIL because another task may be doing
2445 * an allocation after this task has taken all memory.
2446 * This is the task the OOM killer needs to take out during this
2447 * loop, even if it was triggered by an allocation somewhere else.
2448 */
2449 if (user_thread)
2450 set_current_oom_origin();
2451
2452 if (buffer->range_addr_start)
2453 meta = rb_range_meta(buffer, nr_pages, cpu_buffer->cpu);
2454
2455 if (buffer->remote) {
2456 desc = ring_buffer_desc(buffer->remote->desc, cpu_buffer->cpu);
2457 if (!desc || WARN_ON(desc->nr_page_va != (nr_pages + 1)))
2458 return -EINVAL;
2459 }
2460
2461 for (i = 0; i < nr_pages; i++) {
2462
2463 bpage = alloc_cpu_page(cpu_buffer->cpu);
2464 if (!bpage)
2465 goto free_pages;
2466
2467 rb_check_bpage(cpu_buffer, bpage);
2468
2469 /*
2470 * Append the pages as for mapped buffers we want to keep
2471 * the order
2472 */
2473 list_add_tail(&bpage->list, pages);
2474
2475 if (meta) {
2476 /* A range was given. Use that for the buffer page */
2477 bpage->page = rb_range_buffer(cpu_buffer, i + 1);
2478 if (!bpage->page)
2479 goto free_pages;
2480 /* If this is valid from a previous boot */
2481 if (meta->head_buffer)
2482 rb_meta_buffer_update(cpu_buffer, bpage);
2483 bpage->range = 1;
2484 bpage->id = i + 1;
2485 } else if (desc) {
2486 void *p = ring_buffer_desc_page(desc, i + 1);
2487
2488 if (WARN_ON(!p))
2489 goto free_pages;
2490
2491 bpage->page = p;
2492 bpage->range = 1; /* bpage->page can't be freed */
2493 bpage->id = i + 1;
2494 cpu_buffer->subbuf_ids[i + 1] = bpage;
2495 } else {
2496 bpage->page = alloc_cpu_data(cpu_buffer->cpu,
2497 cpu_buffer->buffer->subbuf_order);
2498 if (!bpage->page)
2499 goto free_pages;
2500 }
2501 bpage->order = cpu_buffer->buffer->subbuf_order;
2502
2503 if (user_thread && fatal_signal_pending(current))
2504 goto free_pages;
2505 }
2506 if (user_thread)
2507 clear_current_oom_origin();
2508
2509 return 0;
2510
2511 free_pages:
2512 list_for_each_entry_safe(bpage, tmp, pages, list) {
2513 list_del_init(&bpage->list);
2514 free_buffer_page(bpage);
2515 }
2516 if (user_thread)
2517 clear_current_oom_origin();
2518
2519 return -ENOMEM;
2520 }
2521
rb_allocate_pages(struct ring_buffer_per_cpu * cpu_buffer,unsigned long nr_pages)2522 static int rb_allocate_pages(struct ring_buffer_per_cpu *cpu_buffer,
2523 unsigned long nr_pages)
2524 {
2525 LIST_HEAD(pages);
2526
2527 WARN_ON(!nr_pages);
2528
2529 if (__rb_allocate_pages(cpu_buffer, nr_pages, &pages))
2530 return -ENOMEM;
2531
2532 /*
2533 * The ring buffer page list is a circular list that does not
2534 * start and end with a list head. All page list items point to
2535 * other pages.
2536 */
2537 cpu_buffer->pages = pages.next;
2538 list_del(&pages);
2539
2540 cpu_buffer->nr_pages = nr_pages;
2541
2542 rb_check_pages(cpu_buffer);
2543
2544 return 0;
2545 }
2546
2547 static struct ring_buffer_per_cpu *
rb_allocate_cpu_buffer(struct trace_buffer * buffer,long nr_pages,int cpu)2548 rb_allocate_cpu_buffer(struct trace_buffer *buffer, long nr_pages, int cpu)
2549 {
2550 struct ring_buffer_per_cpu *cpu_buffer __free(kfree) =
2551 alloc_cpu_buffer(cpu);
2552 struct ring_buffer_cpu_meta *meta;
2553 struct buffer_page *bpage;
2554 int ret;
2555
2556 if (!cpu_buffer)
2557 return NULL;
2558
2559 cpu_buffer->cpu = cpu;
2560 cpu_buffer->buffer = buffer;
2561 raw_spin_lock_init(&cpu_buffer->reader_lock);
2562 lockdep_set_class(&cpu_buffer->reader_lock, buffer->reader_lock_key);
2563 cpu_buffer->lock = (arch_spinlock_t)__ARCH_SPIN_LOCK_UNLOCKED;
2564 INIT_WORK(&cpu_buffer->update_pages_work, update_pages_handler);
2565 init_completion(&cpu_buffer->update_done);
2566 init_irq_work(&cpu_buffer->irq_work.work, rb_wake_up_waiters);
2567 init_waitqueue_head(&cpu_buffer->irq_work.waiters);
2568 init_waitqueue_head(&cpu_buffer->irq_work.full_waiters);
2569 mutex_init(&cpu_buffer->mapping_lock);
2570
2571 bpage = alloc_cpu_page(cpu);
2572 if (!bpage)
2573 return NULL;
2574 bpage->order = cpu_buffer->buffer->subbuf_order;
2575
2576 rb_check_bpage(cpu_buffer, bpage);
2577
2578 cpu_buffer->reader_page = bpage;
2579
2580 if (buffer->range_addr_start) {
2581 /*
2582 * Range mapped buffers have the same restrictions as memory
2583 * mapped ones do.
2584 */
2585 cpu_buffer->ring_meta = rb_range_meta(buffer, nr_pages, cpu);
2586 bpage->page = rb_range_buffer(cpu_buffer, 0);
2587 if (!bpage->page)
2588 goto fail_free_reader;
2589 if (cpu_buffer->ring_meta->head_buffer)
2590 rb_meta_buffer_update(cpu_buffer, bpage);
2591 bpage->range = 1;
2592
2593 atomic_inc(&cpu_buffer->resize_disabled);
2594 } else if (buffer->remote) {
2595 struct ring_buffer_desc *desc = ring_buffer_desc(buffer->remote->desc, cpu);
2596
2597 if (!desc)
2598 goto fail_free_reader;
2599
2600 cpu_buffer->remote = buffer->remote;
2601 cpu_buffer->meta_page = (struct trace_buffer_meta *)(void *)desc->meta_va;
2602 cpu_buffer->nr_pages = nr_pages;
2603 cpu_buffer->subbuf_ids = kcalloc(cpu_buffer->nr_pages + 1,
2604 sizeof(*cpu_buffer->subbuf_ids), GFP_KERNEL);
2605 if (!cpu_buffer->subbuf_ids)
2606 goto fail_free_reader;
2607
2608 /* Remote buffers are read-only and immutable */
2609 atomic_inc(&cpu_buffer->record_disabled);
2610 atomic_inc(&cpu_buffer->resize_disabled);
2611
2612 bpage->page = ring_buffer_desc_page(desc, cpu_buffer->meta_page->reader.id);
2613 if (!bpage->page)
2614 goto fail_free_reader;
2615
2616 bpage->range = 1;
2617 cpu_buffer->subbuf_ids[0] = bpage;
2618 } else {
2619 bpage->page = alloc_cpu_data(cpu, bpage->order);
2620 if (!bpage->page)
2621 goto fail_free_reader;
2622 }
2623
2624 INIT_LIST_HEAD(&cpu_buffer->reader_page->list);
2625 INIT_LIST_HEAD(&cpu_buffer->new_pages);
2626
2627 ret = rb_allocate_pages(cpu_buffer, nr_pages);
2628 if (ret < 0)
2629 goto fail_free_reader;
2630
2631 rb_meta_validate_events(cpu_buffer);
2632
2633 /* If the boot meta was valid then this has already been updated */
2634 meta = cpu_buffer->ring_meta;
2635 if (!meta || !meta->head_buffer ||
2636 !cpu_buffer->head_page || !cpu_buffer->commit_page || !cpu_buffer->tail_page) {
2637 if (meta && meta->head_buffer &&
2638 (cpu_buffer->head_page || cpu_buffer->commit_page || cpu_buffer->tail_page)) {
2639 pr_warn("Ring buffer meta buffers not all mapped\n");
2640 if (!cpu_buffer->head_page)
2641 pr_warn(" Missing head_page\n");
2642 if (!cpu_buffer->commit_page)
2643 pr_warn(" Missing commit_page\n");
2644 if (!cpu_buffer->tail_page)
2645 pr_warn(" Missing tail_page\n");
2646 }
2647
2648 cpu_buffer->head_page
2649 = list_entry(cpu_buffer->pages, struct buffer_page, list);
2650 cpu_buffer->tail_page = cpu_buffer->commit_page = cpu_buffer->head_page;
2651
2652 rb_head_page_activate(cpu_buffer);
2653
2654 if (cpu_buffer->ring_meta)
2655 meta->commit_buffer = meta->head_buffer;
2656 } else {
2657 /* The valid meta buffer still needs to activate the head page */
2658 rb_head_page_activate(cpu_buffer);
2659 }
2660
2661 return_ptr(cpu_buffer);
2662
2663 fail_free_reader:
2664 kfree(cpu_buffer->subbuf_ids);
2665 free_buffer_page(cpu_buffer->reader_page);
2666
2667 return NULL;
2668 }
2669
rb_free_cpu_buffer(struct ring_buffer_per_cpu * cpu_buffer)2670 static void rb_free_cpu_buffer(struct ring_buffer_per_cpu *cpu_buffer)
2671 {
2672 struct list_head *head = cpu_buffer->pages;
2673 struct buffer_page *bpage, *tmp;
2674
2675 irq_work_sync(&cpu_buffer->irq_work.work);
2676
2677 if (cpu_buffer->remote)
2678 kfree(cpu_buffer->subbuf_ids);
2679
2680 free_buffer_page(cpu_buffer->reader_page);
2681
2682 if (head) {
2683 rb_head_page_deactivate(cpu_buffer);
2684
2685 list_for_each_entry_safe(bpage, tmp, head, list) {
2686 list_del_init(&bpage->list);
2687 free_buffer_page(bpage);
2688 }
2689 bpage = list_entry(head, struct buffer_page, list);
2690 free_buffer_page(bpage);
2691 }
2692
2693 free_pages((unsigned long)cpu_buffer->free_page.data, cpu_buffer->free_page.order);
2694
2695 kfree(cpu_buffer);
2696 }
2697
2698 #ifdef CONFIG_RING_BUFFER_PERSISTENT_INJECT
rb_test_inject_invalid_pages(struct trace_buffer * buffer)2699 static void rb_test_inject_invalid_pages(struct trace_buffer *buffer)
2700 {
2701 struct ring_buffer_per_cpu *cpu_buffer;
2702 struct ring_buffer_cpu_meta *meta;
2703 struct buffer_data_page *dpage;
2704 unsigned long entry_bytes = 0;
2705 unsigned long ptr;
2706 int subbuf_size;
2707 int invalid = 0;
2708 int cpu;
2709 int i;
2710
2711 if (!(buffer->flags & RB_FL_TESTING))
2712 return;
2713
2714 guard(preempt)();
2715 cpu = smp_processor_id();
2716
2717 cpu_buffer = buffer->buffers[cpu];
2718 if (!cpu_buffer)
2719 return;
2720 meta = cpu_buffer->ring_meta;
2721 if (!meta)
2722 return;
2723
2724 ptr = (unsigned long)rb_subbufs_from_meta(meta);
2725 subbuf_size = meta->subbuf_size;
2726
2727 for (i = 0; i < meta->nr_subbufs; i++) {
2728 unsigned long idx = meta->buffers[i];
2729
2730 dpage = (void *)(ptr + idx * subbuf_size);
2731 /* Skip unused pages */
2732 if (!rb_data_page_commit(dpage))
2733 continue;
2734
2735 /*
2736 * Invalidate even pages or multiples of 5. This will cause 3
2737 * contiguous invalidated(empty) pages.
2738 */
2739 if (!(i & 0x1) || !(i % 5)) {
2740 local_add(subbuf_size + 1, &dpage->commit);
2741 invalid++;
2742 } else {
2743 /* Count total commit bytes. */
2744 entry_bytes += rb_data_page_size(dpage);
2745 }
2746 }
2747
2748 pr_info("Inject invalidated %d pages on CPU%d, total size: %ld\n",
2749 invalid, cpu, (long)entry_bytes);
2750 meta->nr_invalid = invalid;
2751 meta->entry_bytes = entry_bytes;
2752 }
2753 #else /* !CONFIG_RING_BUFFER_PERSISTENT_INJECT */
2754 #define rb_test_inject_invalid_pages(buffer) do { } while (0)
2755 #endif
2756
2757 /* Stop recording on a persistent buffer and flush cache if needed. */
rb_flush_buffer_cb(struct notifier_block * nb,unsigned long event,void * data)2758 static int rb_flush_buffer_cb(struct notifier_block *nb, unsigned long event, void *data)
2759 {
2760 struct trace_buffer *buffer = container_of(nb, struct trace_buffer, flush_nb);
2761
2762 ring_buffer_record_off(buffer);
2763 rb_test_inject_invalid_pages(buffer);
2764 arch_ring_buffer_flush_range(buffer->range_addr_start, buffer->range_addr_end);
2765 return NOTIFY_DONE;
2766 }
2767
alloc_buffer(unsigned long size,unsigned flags,int order,unsigned long start,unsigned long end,unsigned long scratch_size,struct lock_class_key * key,struct ring_buffer_remote * remote)2768 static struct trace_buffer *alloc_buffer(unsigned long size, unsigned flags,
2769 int order, unsigned long start,
2770 unsigned long end,
2771 unsigned long scratch_size,
2772 struct lock_class_key *key,
2773 struct ring_buffer_remote *remote)
2774 {
2775 struct trace_buffer *buffer __free(kfree) = NULL;
2776 long nr_pages;
2777 int subbuf_size;
2778 int bsize;
2779 int cpu;
2780 int ret;
2781
2782 /* keep it in its own cache line */
2783 buffer = kzalloc(ALIGN(sizeof(*buffer), cache_line_size()),
2784 GFP_KERNEL);
2785 if (!buffer)
2786 return NULL;
2787
2788 if (!zalloc_cpumask_var(&buffer->cpumask, GFP_KERNEL))
2789 return NULL;
2790
2791 buffer->subbuf_order = order;
2792 subbuf_size = (PAGE_SIZE << order);
2793
2794 buffer->flags = flags;
2795 buffer->clock = trace_clock_local;
2796 buffer->reader_lock_key = key;
2797
2798 init_irq_work(&buffer->irq_work.work, rb_wake_up_waiters);
2799 init_waitqueue_head(&buffer->irq_work.waiters);
2800
2801
2802 bsize = sizeof(void *) * nr_cpu_ids;
2803 buffer->buffers = kzalloc(ALIGN(bsize, cache_line_size()),
2804 GFP_KERNEL);
2805 if (!buffer->buffers)
2806 goto fail_free_cpumask;
2807
2808 cpu = raw_smp_processor_id();
2809
2810 /* If start/end are specified, then that overrides size */
2811 if (start && end) {
2812 unsigned long buffers_start;
2813 unsigned long ptr;
2814 int n;
2815
2816 /* Make sure that start is word aligned */
2817 start = ALIGN(start, sizeof(long));
2818
2819 /* scratch_size needs to be aligned too */
2820 scratch_size = ALIGN(scratch_size, sizeof(long));
2821
2822 /* Subtract the buffer meta data and word aligned */
2823 buffers_start = start + sizeof(struct ring_buffer_cpu_meta);
2824 buffers_start = ALIGN(buffers_start, sizeof(long));
2825 buffers_start += scratch_size;
2826
2827 /* Calculate the size for the per CPU data */
2828 size = end - buffers_start;
2829 size = size / nr_cpu_ids;
2830
2831 /*
2832 * The number of sub-buffers (nr_pages) is determined by the
2833 * total size allocated minus the meta data size.
2834 * Then that is divided by the number of per CPU buffers
2835 * needed, plus account for the integer array index that
2836 * will be appended to the meta data.
2837 */
2838 nr_pages = (size - sizeof(struct ring_buffer_cpu_meta)) /
2839 (subbuf_size + sizeof(int));
2840 /* Need at least two pages plus the reader page */
2841 if (nr_pages < 3)
2842 goto fail_free_buffers;
2843
2844 again:
2845 /* Make sure that the size fits aligned */
2846 for (n = 0, ptr = buffers_start; n < nr_cpu_ids; n++) {
2847 ptr += sizeof(struct ring_buffer_cpu_meta) +
2848 sizeof(int) * nr_pages;
2849 ptr = ALIGN(ptr, subbuf_size);
2850 ptr += subbuf_size * nr_pages;
2851 }
2852 if (ptr > end) {
2853 if (nr_pages <= 3)
2854 goto fail_free_buffers;
2855 nr_pages--;
2856 goto again;
2857 }
2858
2859 /* nr_pages should not count the reader page */
2860 nr_pages--;
2861 buffer->range_addr_start = start;
2862 buffer->range_addr_end = end;
2863
2864 rb_range_meta_init(buffer, nr_pages, scratch_size);
2865 } else if (remote) {
2866 struct ring_buffer_desc *desc = ring_buffer_desc(remote->desc, cpu);
2867
2868 buffer->remote = remote;
2869 /* The writer is remote. This ring-buffer is read-only */
2870 atomic_inc(&buffer->record_disabled);
2871 nr_pages = desc->nr_page_va - 1;
2872 if (nr_pages < 2)
2873 goto fail_free_buffers;
2874 } else {
2875 /* need at least two pages */
2876 nr_pages = DIV_ROUND_UP(size, rb_subbuf_capacity(buffer));
2877 if (nr_pages < 2)
2878 nr_pages = 2;
2879 }
2880
2881 cpumask_set_cpu(cpu, buffer->cpumask);
2882 buffer->buffers[cpu] = rb_allocate_cpu_buffer(buffer, nr_pages, cpu);
2883 if (!buffer->buffers[cpu])
2884 goto fail_free_buffers;
2885
2886 ret = cpuhp_state_add_instance(CPUHP_TRACE_RB_PREPARE, &buffer->node);
2887 if (ret < 0)
2888 goto fail_free_buffers;
2889
2890 mutex_init(&buffer->mutex);
2891
2892 /* Persistent ring buffer needs to flush cache before reboot. */
2893 if (start && end) {
2894 buffer->flush_nb.notifier_call = rb_flush_buffer_cb;
2895 atomic_notifier_chain_register(&panic_notifier_list, &buffer->flush_nb);
2896 }
2897
2898 return_ptr(buffer);
2899
2900 fail_free_buffers:
2901 for_each_buffer_cpu(buffer, cpu) {
2902 if (buffer->buffers[cpu])
2903 rb_free_cpu_buffer(buffer->buffers[cpu]);
2904 }
2905 kfree(buffer->buffers);
2906
2907 fail_free_cpumask:
2908 free_cpumask_var(buffer->cpumask);
2909
2910 return NULL;
2911 }
2912
2913 /**
2914 * __ring_buffer_alloc - allocate a new ring_buffer
2915 * @size: the size in bytes per cpu that is needed.
2916 * @flags: attributes to set for the ring buffer.
2917 * @key: ring buffer reader_lock_key.
2918 *
2919 * Currently the only flag that is available is the RB_FL_OVERWRITE
2920 * flag. This flag means that the buffer will overwrite old data
2921 * when the buffer wraps. If this flag is not set, the buffer will
2922 * drop data when the tail hits the head.
2923 */
__ring_buffer_alloc(unsigned long size,unsigned flags,struct lock_class_key * key)2924 struct trace_buffer *__ring_buffer_alloc(unsigned long size, unsigned flags,
2925 struct lock_class_key *key)
2926 {
2927 /* Default buffer page size - one system page */
2928 return alloc_buffer(size, flags, 0, 0, 0, 0, key, NULL);
2929
2930 }
2931 EXPORT_SYMBOL_GPL(__ring_buffer_alloc);
2932
2933 /**
2934 * __ring_buffer_alloc_range - allocate a new ring_buffer from existing memory
2935 * @size: the size in bytes per cpu that is needed.
2936 * @flags: attributes to set for the ring buffer.
2937 * @order: sub-buffer order
2938 * @start: start of allocated range
2939 * @range_size: size of allocated range
2940 * @scratch_size: size of scratch area (for preallocated memory buffers)
2941 * @key: ring buffer reader_lock_key.
2942 *
2943 * Currently the only flag that is available is the RB_FL_OVERWRITE
2944 * flag. This flag means that the buffer will overwrite old data
2945 * when the buffer wraps. If this flag is not set, the buffer will
2946 * drop data when the tail hits the head.
2947 */
__ring_buffer_alloc_range(unsigned long size,unsigned flags,int order,unsigned long start,unsigned long range_size,unsigned long scratch_size,struct lock_class_key * key)2948 struct trace_buffer *__ring_buffer_alloc_range(unsigned long size, unsigned flags,
2949 int order, unsigned long start,
2950 unsigned long range_size,
2951 unsigned long scratch_size,
2952 struct lock_class_key *key)
2953 {
2954 return alloc_buffer(size, flags, order, start, start + range_size,
2955 scratch_size, key, NULL);
2956 }
2957
2958 /**
2959 * __ring_buffer_alloc_remote - allocate a new ring_buffer from a remote
2960 * @remote: Contains a description of the ring-buffer pages and remote callbacks.
2961 * @key: ring buffer reader_lock_key.
2962 */
__ring_buffer_alloc_remote(struct ring_buffer_remote * remote,struct lock_class_key * key)2963 struct trace_buffer *__ring_buffer_alloc_remote(struct ring_buffer_remote *remote,
2964 struct lock_class_key *key)
2965 {
2966 return alloc_buffer(0, 0, 0, 0, 0, 0, key, remote);
2967 }
2968
ring_buffer_meta_scratch(struct trace_buffer * buffer,unsigned int * size)2969 void *ring_buffer_meta_scratch(struct trace_buffer *buffer, unsigned int *size)
2970 {
2971 struct ring_buffer_meta *meta;
2972 void *ptr;
2973
2974 if (!buffer || !buffer->meta)
2975 return NULL;
2976
2977 meta = buffer->meta;
2978
2979 ptr = (void *)ALIGN((unsigned long)meta + sizeof(*meta), sizeof(long));
2980
2981 if (size)
2982 *size = (void *)meta + meta->buffers_offset - ptr;
2983
2984 return ptr;
2985 }
2986
2987 /**
2988 * ring_buffer_free - free a ring buffer.
2989 * @buffer: the buffer to free.
2990 */
2991 void
ring_buffer_free(struct trace_buffer * buffer)2992 ring_buffer_free(struct trace_buffer *buffer)
2993 {
2994 int cpu;
2995
2996 if (buffer->range_addr_start && buffer->range_addr_end)
2997 atomic_notifier_chain_unregister(&panic_notifier_list, &buffer->flush_nb);
2998
2999 cpuhp_state_remove_instance(CPUHP_TRACE_RB_PREPARE, &buffer->node);
3000
3001 irq_work_sync(&buffer->irq_work.work);
3002
3003 for_each_buffer_cpu(buffer, cpu)
3004 rb_free_cpu_buffer(buffer->buffers[cpu]);
3005
3006 kfree(buffer->buffers);
3007 free_cpumask_var(buffer->cpumask);
3008
3009 kfree(buffer);
3010 }
3011 EXPORT_SYMBOL_GPL(ring_buffer_free);
3012
ring_buffer_set_clock(struct trace_buffer * buffer,u64 (* clock)(void))3013 void ring_buffer_set_clock(struct trace_buffer *buffer,
3014 u64 (*clock)(void))
3015 {
3016 buffer->clock = clock;
3017 }
3018
ring_buffer_set_time_stamp_abs(struct trace_buffer * buffer,bool abs)3019 void ring_buffer_set_time_stamp_abs(struct trace_buffer *buffer, bool abs)
3020 {
3021 buffer->time_stamp_abs = abs;
3022 }
3023
ring_buffer_time_stamp_abs(struct trace_buffer * buffer)3024 bool ring_buffer_time_stamp_abs(struct trace_buffer *buffer)
3025 {
3026 return buffer->time_stamp_abs;
3027 }
3028
rb_page_entries(struct buffer_page * bpage)3029 static inline unsigned long rb_page_entries(struct buffer_page *bpage)
3030 {
3031 return local_read(&bpage->entries) & RB_WRITE_MASK;
3032 }
3033
rb_page_write(struct buffer_page * bpage)3034 static inline unsigned long rb_page_write(struct buffer_page *bpage)
3035 {
3036 return local_read(&bpage->write) & RB_WRITE_MASK;
3037 }
3038
3039 static bool
rb_remove_pages(struct ring_buffer_per_cpu * cpu_buffer,unsigned long nr_pages)3040 rb_remove_pages(struct ring_buffer_per_cpu *cpu_buffer, unsigned long nr_pages)
3041 {
3042 struct list_head *tail_page, *to_remove, *next_page;
3043 struct buffer_page *to_remove_page, *tmp_iter_page;
3044 struct buffer_page *last_page, *first_page;
3045 unsigned long nr_removed;
3046 unsigned long head_bit;
3047 int page_entries;
3048
3049 head_bit = 0;
3050
3051 raw_spin_lock_irq(&cpu_buffer->reader_lock);
3052 atomic_inc(&cpu_buffer->record_disabled);
3053 /*
3054 * We don't race with the readers since we have acquired the reader
3055 * lock. We also don't race with writers after disabling recording.
3056 * This makes it easy to figure out the first and the last page to be
3057 * removed from the list. We unlink all the pages in between including
3058 * the first and last pages. This is done in a busy loop so that we
3059 * lose the least number of traces.
3060 * The pages are freed after we restart recording and unlock readers.
3061 */
3062 tail_page = &cpu_buffer->tail_page->list;
3063
3064 /*
3065 * tail page might be on reader page, we remove the next page
3066 * from the ring buffer
3067 */
3068 if (cpu_buffer->tail_page == cpu_buffer->reader_page)
3069 tail_page = rb_list_head(tail_page->next);
3070 to_remove = tail_page;
3071
3072 /* start of pages to remove */
3073 first_page = list_entry(rb_list_head(to_remove->next),
3074 struct buffer_page, list);
3075
3076 for (nr_removed = 0; nr_removed < nr_pages; nr_removed++) {
3077 to_remove = rb_list_head(to_remove)->next;
3078 head_bit |= (unsigned long)to_remove & RB_PAGE_HEAD;
3079 }
3080 /* Read iterators need to reset themselves when some pages removed */
3081 cpu_buffer->pages_removed += nr_removed;
3082
3083 next_page = rb_list_head(to_remove)->next;
3084
3085 /*
3086 * Now we remove all pages between tail_page and next_page.
3087 * Make sure that we have head_bit value preserved for the
3088 * next page
3089 */
3090 tail_page->next = (struct list_head *)((unsigned long)next_page |
3091 head_bit);
3092 next_page = rb_list_head(next_page);
3093 next_page->prev = tail_page;
3094
3095 /* make sure pages points to a valid page in the ring buffer */
3096 cpu_buffer->pages = next_page;
3097 cpu_buffer->cnt++;
3098
3099 /* update head page */
3100 if (head_bit)
3101 cpu_buffer->head_page = list_entry(next_page,
3102 struct buffer_page, list);
3103
3104 /* pages are removed, resume tracing and then free the pages */
3105 atomic_dec(&cpu_buffer->record_disabled);
3106 raw_spin_unlock_irq(&cpu_buffer->reader_lock);
3107
3108 RB_WARN_ON(cpu_buffer, list_empty(cpu_buffer->pages));
3109
3110 /* last buffer page to remove */
3111 last_page = list_entry(rb_list_head(to_remove), struct buffer_page,
3112 list);
3113 tmp_iter_page = first_page;
3114
3115 do {
3116 cond_resched();
3117
3118 to_remove_page = tmp_iter_page;
3119 rb_inc_page(&tmp_iter_page);
3120
3121 /* update the counters */
3122 page_entries = rb_page_entries(to_remove_page);
3123 if (page_entries) {
3124 /*
3125 * If something was added to this page, it was full
3126 * since it is not the tail page. So we deduct the
3127 * bytes consumed in ring buffer from here.
3128 * Increment overrun to account for the lost events.
3129 */
3130 local_add(page_entries, &cpu_buffer->overrun);
3131 local_sub(rb_page_commit(to_remove_page), &cpu_buffer->entries_bytes);
3132 local_inc(&cpu_buffer->pages_lost);
3133 }
3134
3135 /*
3136 * We have already removed references to this list item, just
3137 * free up the buffer_page and its page
3138 */
3139 free_buffer_page(to_remove_page);
3140 nr_removed--;
3141
3142 } while (to_remove_page != last_page);
3143
3144 RB_WARN_ON(cpu_buffer, nr_removed);
3145
3146 return nr_removed == 0;
3147 }
3148
3149 static bool
rb_insert_pages(struct ring_buffer_per_cpu * cpu_buffer)3150 rb_insert_pages(struct ring_buffer_per_cpu *cpu_buffer)
3151 {
3152 struct list_head *pages = &cpu_buffer->new_pages;
3153 unsigned long flags;
3154 bool success;
3155 int retries;
3156
3157 /* Can be called at early boot up, where interrupts must not been enabled */
3158 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
3159 /*
3160 * We are holding the reader lock, so the reader page won't be swapped
3161 * in the ring buffer. Now we are racing with the writer trying to
3162 * move head page and the tail page.
3163 * We are going to adapt the reader page update process where:
3164 * 1. We first splice the start and end of list of new pages between
3165 * the head page and its previous page.
3166 * 2. We cmpxchg the prev_page->next to point from head page to the
3167 * start of new pages list.
3168 * 3. Finally, we update the head->prev to the end of new list.
3169 *
3170 * We will try this process 10 times, to make sure that we don't keep
3171 * spinning.
3172 */
3173 retries = 10;
3174 success = false;
3175 while (retries--) {
3176 struct list_head *head_page, *prev_page;
3177 struct list_head *last_page, *first_page;
3178 struct list_head *head_page_with_bit;
3179 struct buffer_page *hpage = rb_set_head_page(cpu_buffer);
3180
3181 if (!hpage)
3182 break;
3183 head_page = &hpage->list;
3184 prev_page = head_page->prev;
3185
3186 first_page = pages->next;
3187 last_page = pages->prev;
3188
3189 head_page_with_bit = (struct list_head *)
3190 ((unsigned long)head_page | RB_PAGE_HEAD);
3191
3192 last_page->next = head_page_with_bit;
3193 first_page->prev = prev_page;
3194
3195 /* caution: head_page_with_bit gets updated on cmpxchg failure */
3196 if (try_cmpxchg(&prev_page->next,
3197 &head_page_with_bit, first_page)) {
3198 /*
3199 * yay, we replaced the page pointer to our new list,
3200 * now, we just have to update to head page's prev
3201 * pointer to point to end of list
3202 */
3203 head_page->prev = last_page;
3204 cpu_buffer->cnt++;
3205 success = true;
3206 break;
3207 }
3208 }
3209
3210 if (success)
3211 INIT_LIST_HEAD(pages);
3212 /*
3213 * If we weren't successful in adding in new pages, warn and stop
3214 * tracing
3215 */
3216 RB_WARN_ON(cpu_buffer, !success);
3217 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
3218
3219 /* free pages if they weren't inserted */
3220 if (!success) {
3221 struct buffer_page *bpage, *tmp;
3222 list_for_each_entry_safe(bpage, tmp, &cpu_buffer->new_pages,
3223 list) {
3224 list_del_init(&bpage->list);
3225 free_buffer_page(bpage);
3226 }
3227 }
3228 return success;
3229 }
3230
rb_update_pages(struct ring_buffer_per_cpu * cpu_buffer)3231 static void rb_update_pages(struct ring_buffer_per_cpu *cpu_buffer)
3232 {
3233 bool success;
3234
3235 if (cpu_buffer->nr_pages_to_update > 0)
3236 success = rb_insert_pages(cpu_buffer);
3237 else
3238 success = rb_remove_pages(cpu_buffer,
3239 -cpu_buffer->nr_pages_to_update);
3240
3241 if (success)
3242 cpu_buffer->nr_pages += cpu_buffer->nr_pages_to_update;
3243 }
3244
update_pages_handler(struct work_struct * work)3245 static void update_pages_handler(struct work_struct *work)
3246 {
3247 struct ring_buffer_per_cpu *cpu_buffer = container_of(work,
3248 struct ring_buffer_per_cpu, update_pages_work);
3249 rb_update_pages(cpu_buffer);
3250 complete(&cpu_buffer->update_done);
3251 }
3252
3253 /**
3254 * ring_buffer_resize - resize the ring buffer
3255 * @buffer: the buffer to resize.
3256 * @size: the new size.
3257 * @cpu_id: the cpu buffer to resize
3258 *
3259 * Minimum size is 2 * rb_subbuf_capacity(buffer).
3260 *
3261 * Returns 0 on success and < 0 on failure.
3262 */
ring_buffer_resize(struct trace_buffer * buffer,unsigned long size,int cpu_id)3263 int ring_buffer_resize(struct trace_buffer *buffer, unsigned long size,
3264 int cpu_id)
3265 {
3266 struct ring_buffer_per_cpu *cpu_buffer;
3267 unsigned long nr_pages;
3268 int cpu, err;
3269
3270 /*
3271 * Always succeed at resizing a non-existent buffer:
3272 */
3273 if (!buffer)
3274 return 0;
3275
3276 /* Make sure the requested buffer exists */
3277 if (cpu_id != RING_BUFFER_ALL_CPUS &&
3278 !cpumask_test_cpu(cpu_id, buffer->cpumask))
3279 return 0;
3280
3281 /*
3282 * Keep CPUs from coming online while resizing to synchronize
3283 * with new per CPU buffers being created.
3284 */
3285 guard(cpus_read_lock)();
3286
3287 /* prevent another thread from changing buffer sizes */
3288 mutex_lock(&buffer->mutex);
3289 atomic_inc(&buffer->resizing);
3290
3291 nr_pages = DIV_ROUND_UP(size, rb_subbuf_capacity(buffer));
3292
3293 /* we need a minimum of two pages */
3294 if (nr_pages < 2)
3295 nr_pages = 2;
3296
3297 if (cpu_id == RING_BUFFER_ALL_CPUS) {
3298 /*
3299 * Don't succeed if resizing is disabled, as a reader might be
3300 * manipulating the ring buffer and is expecting a sane state while
3301 * this is true.
3302 */
3303 for_each_buffer_cpu(buffer, cpu) {
3304 cpu_buffer = buffer->buffers[cpu];
3305 if (atomic_read(&cpu_buffer->resize_disabled)) {
3306 err = -EBUSY;
3307 goto out_err_unlock;
3308 }
3309 }
3310
3311 /* calculate the pages to update */
3312 for_each_buffer_cpu(buffer, cpu) {
3313 cpu_buffer = buffer->buffers[cpu];
3314
3315 cpu_buffer->nr_pages_to_update = nr_pages -
3316 cpu_buffer->nr_pages;
3317 /*
3318 * nothing more to do for removing pages or no update
3319 */
3320 if (cpu_buffer->nr_pages_to_update <= 0)
3321 continue;
3322 /*
3323 * to add pages, make sure all new pages can be
3324 * allocated without receiving ENOMEM
3325 */
3326 INIT_LIST_HEAD(&cpu_buffer->new_pages);
3327 if (__rb_allocate_pages(cpu_buffer, cpu_buffer->nr_pages_to_update,
3328 &cpu_buffer->new_pages)) {
3329 /* not enough memory for new pages */
3330 err = -ENOMEM;
3331 goto out_err;
3332 }
3333
3334 cond_resched();
3335 }
3336
3337 /*
3338 * Fire off all the required work handlers
3339 * We can't schedule on offline CPUs, but it's not necessary
3340 * since we can change their buffer sizes without any race.
3341 */
3342 for_each_buffer_cpu(buffer, cpu) {
3343 cpu_buffer = buffer->buffers[cpu];
3344 if (!cpu_buffer->nr_pages_to_update)
3345 continue;
3346
3347 /* Can't run something on an offline CPU. */
3348 if (!cpu_online(cpu)) {
3349 rb_update_pages(cpu_buffer);
3350 cpu_buffer->nr_pages_to_update = 0;
3351 } else {
3352 /* Run directly if possible. */
3353 migrate_disable();
3354 if (cpu != smp_processor_id()) {
3355 migrate_enable();
3356 schedule_work_on(cpu,
3357 &cpu_buffer->update_pages_work);
3358 } else {
3359 update_pages_handler(&cpu_buffer->update_pages_work);
3360 migrate_enable();
3361 }
3362 }
3363 }
3364
3365 /* wait for all the updates to complete */
3366 for_each_buffer_cpu(buffer, cpu) {
3367 cpu_buffer = buffer->buffers[cpu];
3368 if (!cpu_buffer->nr_pages_to_update)
3369 continue;
3370
3371 if (cpu_online(cpu))
3372 wait_for_completion(&cpu_buffer->update_done);
3373 cpu_buffer->nr_pages_to_update = 0;
3374 }
3375
3376 } else {
3377 cpu_buffer = buffer->buffers[cpu_id];
3378
3379 if (nr_pages == cpu_buffer->nr_pages)
3380 goto out;
3381
3382 /*
3383 * Don't succeed if resizing is disabled, as a reader might be
3384 * manipulating the ring buffer and is expecting a sane state while
3385 * this is true.
3386 */
3387 if (atomic_read(&cpu_buffer->resize_disabled)) {
3388 err = -EBUSY;
3389 goto out_err_unlock;
3390 }
3391
3392 cpu_buffer->nr_pages_to_update = nr_pages -
3393 cpu_buffer->nr_pages;
3394
3395 INIT_LIST_HEAD(&cpu_buffer->new_pages);
3396 if (cpu_buffer->nr_pages_to_update > 0 &&
3397 __rb_allocate_pages(cpu_buffer, cpu_buffer->nr_pages_to_update,
3398 &cpu_buffer->new_pages)) {
3399 err = -ENOMEM;
3400 goto out_err;
3401 }
3402
3403 /* Can't run something on an offline CPU. */
3404 if (!cpu_online(cpu_id))
3405 rb_update_pages(cpu_buffer);
3406 else {
3407 /* Run directly if possible. */
3408 migrate_disable();
3409 if (cpu_id == smp_processor_id()) {
3410 rb_update_pages(cpu_buffer);
3411 migrate_enable();
3412 } else {
3413 migrate_enable();
3414 schedule_work_on(cpu_id,
3415 &cpu_buffer->update_pages_work);
3416 wait_for_completion(&cpu_buffer->update_done);
3417 }
3418 }
3419
3420 cpu_buffer->nr_pages_to_update = 0;
3421 }
3422
3423 out:
3424 /*
3425 * The ring buffer resize can happen with the ring buffer
3426 * enabled, so that the update disturbs the tracing as little
3427 * as possible. But if the buffer is disabled, we do not need
3428 * to worry about that, and we can take the time to verify
3429 * that the buffer is not corrupt.
3430 */
3431 if (atomic_read(&buffer->record_disabled)) {
3432 atomic_inc(&buffer->record_disabled);
3433 /*
3434 * Even though the buffer was disabled, we must make sure
3435 * that it is truly disabled before calling rb_check_pages.
3436 * There could have been a race between checking
3437 * record_disable and incrementing it.
3438 */
3439 synchronize_rcu();
3440 for_each_buffer_cpu(buffer, cpu) {
3441 cpu_buffer = buffer->buffers[cpu];
3442 rb_check_pages(cpu_buffer);
3443 }
3444 atomic_dec(&buffer->record_disabled);
3445 }
3446
3447 atomic_dec(&buffer->resizing);
3448 mutex_unlock(&buffer->mutex);
3449 return 0;
3450
3451 out_err:
3452 for_each_buffer_cpu(buffer, cpu) {
3453 struct buffer_page *bpage, *tmp;
3454
3455 cpu_buffer = buffer->buffers[cpu];
3456 cpu_buffer->nr_pages_to_update = 0;
3457
3458 if (list_empty(&cpu_buffer->new_pages))
3459 continue;
3460
3461 list_for_each_entry_safe(bpage, tmp, &cpu_buffer->new_pages,
3462 list) {
3463 list_del_init(&bpage->list);
3464 free_buffer_page(bpage);
3465
3466 cond_resched();
3467 }
3468 }
3469 out_err_unlock:
3470 atomic_dec(&buffer->resizing);
3471 mutex_unlock(&buffer->mutex);
3472 return err;
3473 }
3474 EXPORT_SYMBOL_GPL(ring_buffer_resize);
3475
ring_buffer_change_overwrite(struct trace_buffer * buffer,int val)3476 void ring_buffer_change_overwrite(struct trace_buffer *buffer, int val)
3477 {
3478 mutex_lock(&buffer->mutex);
3479 if (val)
3480 buffer->flags |= RB_FL_OVERWRITE;
3481 else
3482 buffer->flags &= ~RB_FL_OVERWRITE;
3483 mutex_unlock(&buffer->mutex);
3484 }
3485 EXPORT_SYMBOL_GPL(ring_buffer_change_overwrite);
3486
__rb_page_index(struct buffer_page * bpage,unsigned index)3487 static __always_inline void *__rb_page_index(struct buffer_page *bpage, unsigned index)
3488 {
3489 return bpage->page->data + index;
3490 }
3491
3492 static __always_inline struct ring_buffer_event *
rb_reader_event(struct ring_buffer_per_cpu * cpu_buffer)3493 rb_reader_event(struct ring_buffer_per_cpu *cpu_buffer)
3494 {
3495 return __rb_page_index(cpu_buffer->reader_page,
3496 cpu_buffer->reader_page->read);
3497 }
3498
3499 static struct ring_buffer_event *
rb_iter_head_event(struct ring_buffer_iter * iter)3500 rb_iter_head_event(struct ring_buffer_iter *iter)
3501 {
3502 struct ring_buffer_event *event;
3503 struct buffer_page *iter_head_page = iter->head_page;
3504 unsigned long commit;
3505 unsigned length;
3506
3507 if (iter->head != iter->next_event)
3508 return iter->event;
3509
3510 /*
3511 * When the writer goes across pages, it issues a cmpxchg which
3512 * is a mb(), which will synchronize with the rmb here.
3513 * (see rb_tail_page_update() and __rb_reserve_next())
3514 */
3515 commit = rb_page_size(iter_head_page);
3516 smp_rmb();
3517
3518 /* An event needs to be at least 8 bytes in size */
3519 if (iter->head > commit - 8)
3520 goto reset;
3521
3522 event = __rb_page_index(iter_head_page, iter->head);
3523 length = rb_event_length(event);
3524
3525 /*
3526 * READ_ONCE() doesn't work on functions and we don't want the
3527 * compiler doing any crazy optimizations with length.
3528 */
3529 barrier();
3530
3531 if ((iter->head + length) > commit || length > iter->event_size)
3532 /* Writer corrupted the read? */
3533 goto reset;
3534
3535 memcpy(iter->event, event, length);
3536 /*
3537 * If the page stamp is still the same after this rmb() then the
3538 * event was safely copied without the writer entering the page.
3539 */
3540 smp_rmb();
3541
3542 /* Make sure the page didn't change since we read this */
3543 if (iter->page_stamp != iter_head_page->page->time_stamp ||
3544 commit > rb_page_size(iter_head_page))
3545 goto reset;
3546
3547 iter->next_event = iter->head + length;
3548 return iter->event;
3549 reset:
3550 /* Reset to the beginning */
3551 iter->page_stamp = iter->read_stamp = iter->head_page->page->time_stamp;
3552 iter->head = 0;
3553 iter->next_event = 0;
3554 iter->missed_events = 1;
3555 return NULL;
3556 }
3557
3558 static __always_inline unsigned
rb_commit_index(struct ring_buffer_per_cpu * cpu_buffer)3559 rb_commit_index(struct ring_buffer_per_cpu *cpu_buffer)
3560 {
3561 return rb_page_commit(cpu_buffer->commit_page);
3562 }
3563
3564 static __always_inline unsigned
rb_event_index(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event)3565 rb_event_index(struct ring_buffer_per_cpu *cpu_buffer, struct ring_buffer_event *event)
3566 {
3567 unsigned long addr = (unsigned long)event;
3568
3569 addr &= (unsigned long)rb_subbuf_size(cpu_buffer->buffer) - 1;
3570
3571 return addr - BUF_PAGE_HDR_SIZE;
3572 }
3573
rb_inc_iter(struct ring_buffer_iter * iter)3574 static void rb_inc_iter(struct ring_buffer_iter *iter)
3575 {
3576 struct ring_buffer_per_cpu *cpu_buffer = iter->cpu_buffer;
3577
3578 /*
3579 * The iterator could be on the reader page (it starts there).
3580 * But the head could have moved, since the reader was
3581 * found. Check for this case and assign the iterator
3582 * to the head page instead of next.
3583 */
3584 if (iter->head_page == cpu_buffer->reader_page)
3585 iter->head_page = rb_set_head_page(cpu_buffer);
3586 else
3587 rb_inc_page(&iter->head_page);
3588
3589 if (rb_page_commit(iter->head_page) & RB_MISSED_EVENTS)
3590 iter->missed_events = -1;
3591
3592 iter->page_stamp = iter->read_stamp = iter->head_page->page->time_stamp;
3593 iter->head = 0;
3594 iter->next_event = 0;
3595 }
3596
3597 /* Return the index into the sub-buffers for a given sub-buffer */
rb_meta_subbuf_idx(struct ring_buffer_cpu_meta * meta,void * subbuf)3598 static int rb_meta_subbuf_idx(struct ring_buffer_cpu_meta *meta, void *subbuf)
3599 {
3600 void *subbuf_array;
3601
3602 subbuf_array = (void *)meta + sizeof(int) * meta->nr_subbufs;
3603 subbuf_array = (void *)ALIGN((unsigned long)subbuf_array, meta->subbuf_size);
3604 return (subbuf - subbuf_array) / meta->subbuf_size;
3605 }
3606
rb_update_meta_head(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * next_page)3607 static void rb_update_meta_head(struct ring_buffer_per_cpu *cpu_buffer,
3608 struct buffer_page *next_page)
3609 {
3610 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
3611 unsigned long old_head = (unsigned long)next_page->page;
3612 unsigned long new_head;
3613
3614 rb_inc_page(&next_page);
3615 new_head = (unsigned long)next_page->page;
3616
3617 /*
3618 * Only move it forward once, if something else came in and
3619 * moved it forward, then we don't want to touch it.
3620 */
3621 (void)cmpxchg(&meta->head_buffer, old_head, new_head);
3622 }
3623
rb_update_meta_reader(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * reader)3624 static void rb_update_meta_reader(struct ring_buffer_per_cpu *cpu_buffer,
3625 struct buffer_page *reader)
3626 {
3627 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
3628 void *old_reader = cpu_buffer->reader_page->page;
3629 void *new_reader = reader->page;
3630 int id;
3631
3632 id = reader->id;
3633 cpu_buffer->reader_page->id = id;
3634 reader->id = 0;
3635
3636 meta->buffers[0] = rb_meta_subbuf_idx(meta, new_reader);
3637 meta->buffers[id] = rb_meta_subbuf_idx(meta, old_reader);
3638
3639 /* The head pointer is the one after the reader */
3640 rb_update_meta_head(cpu_buffer, reader);
3641 }
3642
3643 /*
3644 * rb_handle_head_page - writer hit the head page
3645 *
3646 * Returns: +1 to retry page
3647 * 0 to continue
3648 * -1 on error
3649 */
3650 static int
rb_handle_head_page(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * tail_page,struct buffer_page * next_page)3651 rb_handle_head_page(struct ring_buffer_per_cpu *cpu_buffer,
3652 struct buffer_page *tail_page,
3653 struct buffer_page *next_page)
3654 {
3655 struct buffer_page *new_head;
3656 int entries;
3657 int type;
3658 int ret;
3659
3660 entries = rb_page_entries(next_page);
3661
3662 /*
3663 * The hard part is here. We need to move the head
3664 * forward, and protect against both readers on
3665 * other CPUs and writers coming in via interrupts.
3666 */
3667 type = rb_head_page_set_update(cpu_buffer, next_page, tail_page,
3668 RB_PAGE_HEAD);
3669
3670 /*
3671 * type can be one of four:
3672 * NORMAL - an interrupt already moved it for us
3673 * HEAD - we are the first to get here.
3674 * UPDATE - we are the interrupt interrupting
3675 * a current move.
3676 * MOVED - a reader on another CPU moved the next
3677 * pointer to its reader page. Give up
3678 * and try again.
3679 */
3680
3681 switch (type) {
3682 case RB_PAGE_HEAD:
3683 /*
3684 * We changed the head to UPDATE, thus
3685 * it is our responsibility to update
3686 * the counters.
3687 */
3688 local_add(entries, &cpu_buffer->overrun);
3689 local_sub(rb_page_commit(next_page), &cpu_buffer->entries_bytes);
3690 local_inc(&cpu_buffer->pages_lost);
3691
3692 if (cpu_buffer->ring_meta)
3693 rb_update_meta_head(cpu_buffer, next_page);
3694 /*
3695 * The entries will be zeroed out when we move the
3696 * tail page.
3697 */
3698
3699 /* still more to do */
3700 break;
3701
3702 case RB_PAGE_UPDATE:
3703 /*
3704 * This is an interrupt that interrupt the
3705 * previous update. Still more to do.
3706 */
3707 break;
3708 case RB_PAGE_NORMAL:
3709 /*
3710 * An interrupt came in before the update
3711 * and processed this for us.
3712 * Nothing left to do.
3713 */
3714 return 1;
3715 case RB_PAGE_MOVED:
3716 /*
3717 * The reader is on another CPU and just did
3718 * a swap with our next_page.
3719 * Try again.
3720 */
3721 return 1;
3722 default:
3723 RB_WARN_ON(cpu_buffer, 1); /* WTF??? */
3724 return -1;
3725 }
3726
3727 /*
3728 * Now that we are here, the old head pointer is
3729 * set to UPDATE. This will keep the reader from
3730 * swapping the head page with the reader page.
3731 * The reader (on another CPU) will spin till
3732 * we are finished.
3733 *
3734 * We just need to protect against interrupts
3735 * doing the job. We will set the next pointer
3736 * to HEAD. After that, we set the old pointer
3737 * to NORMAL, but only if it was HEAD before.
3738 * otherwise we are an interrupt, and only
3739 * want the outer most commit to reset it.
3740 */
3741 new_head = next_page;
3742 rb_inc_page(&new_head);
3743
3744 ret = rb_head_page_set_head(cpu_buffer, new_head, next_page,
3745 RB_PAGE_NORMAL);
3746
3747 /*
3748 * Valid returns are:
3749 * HEAD - an interrupt came in and already set it.
3750 * NORMAL - One of two things:
3751 * 1) We really set it.
3752 * 2) A bunch of interrupts came in and moved
3753 * the page forward again.
3754 */
3755 switch (ret) {
3756 case RB_PAGE_HEAD:
3757 case RB_PAGE_NORMAL:
3758 /* OK */
3759 break;
3760 default:
3761 RB_WARN_ON(cpu_buffer, 1);
3762 return -1;
3763 }
3764
3765 /*
3766 * It is possible that an interrupt came in,
3767 * set the head up, then more interrupts came in
3768 * and moved it again. When we get back here,
3769 * the page would have been set to NORMAL but we
3770 * just set it back to HEAD.
3771 *
3772 * How do you detect this? Well, if that happened
3773 * the tail page would have moved.
3774 */
3775 if (ret == RB_PAGE_NORMAL) {
3776 struct buffer_page *buffer_tail_page;
3777
3778 buffer_tail_page = READ_ONCE(cpu_buffer->tail_page);
3779 /*
3780 * If the tail had moved passed next, then we need
3781 * to reset the pointer.
3782 */
3783 if (buffer_tail_page != tail_page &&
3784 buffer_tail_page != next_page)
3785 rb_head_page_set_normal(cpu_buffer, new_head,
3786 next_page,
3787 RB_PAGE_HEAD);
3788 }
3789
3790 /*
3791 * If this was the outer most commit (the one that
3792 * changed the original pointer from HEAD to UPDATE),
3793 * then it is up to us to reset it to NORMAL.
3794 */
3795 if (type == RB_PAGE_HEAD) {
3796 ret = rb_head_page_set_normal(cpu_buffer, next_page,
3797 tail_page,
3798 RB_PAGE_UPDATE);
3799 if (RB_WARN_ON(cpu_buffer,
3800 ret != RB_PAGE_UPDATE))
3801 return -1;
3802 }
3803
3804 return 0;
3805 }
3806
3807 static inline void
rb_reset_tail(struct ring_buffer_per_cpu * cpu_buffer,unsigned long tail,struct rb_event_info * info)3808 rb_reset_tail(struct ring_buffer_per_cpu *cpu_buffer,
3809 unsigned long tail, struct rb_event_info *info)
3810 {
3811 struct buffer_page *tail_page = info->tail_page;
3812 unsigned long bsize = rb_page_capacity(tail_page);
3813 struct ring_buffer_event *event;
3814 unsigned long length = info->length;
3815
3816 /*
3817 * Only the event that crossed the page boundary
3818 * must fill the old tail_page with padding.
3819 */
3820 if (tail >= bsize) {
3821 /*
3822 * If the page was filled, then we still need
3823 * to update the real_end. Reset it to zero
3824 * and the reader will ignore it.
3825 */
3826 if (tail == bsize)
3827 tail_page->real_end = 0;
3828
3829 local_sub(length, &tail_page->write);
3830 return;
3831 }
3832
3833 event = __rb_page_index(tail_page, tail);
3834
3835 /*
3836 * Save the original length to the meta data.
3837 * This will be used by the reader to add lost event
3838 * counter.
3839 */
3840 tail_page->real_end = tail;
3841
3842 /*
3843 * If this event is bigger than the minimum size, then
3844 * we need to be careful that we don't subtract the
3845 * write counter enough to allow another writer to slip
3846 * in on this page.
3847 * We put in a discarded commit instead, to make sure
3848 * that this space is not used again, and this space will
3849 * not be accounted into 'entries_bytes'.
3850 *
3851 * If we are less than the minimum size, we don't need to
3852 * worry about it.
3853 */
3854 if (tail > (bsize - RB_EVNT_MIN_SIZE)) {
3855 /* No room for any events */
3856
3857 /* Mark the rest of the page with padding */
3858 rb_event_set_padding(event);
3859
3860 /* Make sure the padding is visible before the write update */
3861 smp_wmb();
3862
3863 /* Set the write back to the previous setting */
3864 local_sub(length, &tail_page->write);
3865 return;
3866 }
3867
3868 /* Put in a discarded event */
3869 event->array[0] = (bsize - tail) - RB_EVNT_HDR_SIZE;
3870 event->type_len = RINGBUF_TYPE_PADDING;
3871 /* time delta must be non zero */
3872 event->time_delta = 1;
3873
3874 /* account for padding bytes */
3875 local_add(bsize - tail, &cpu_buffer->entries_bytes);
3876
3877 /* Make sure the padding is visible before the tail_page->write update */
3878 smp_wmb();
3879
3880 /* Set write to end of buffer */
3881 length = (tail + length) - bsize;
3882 local_sub(length, &tail_page->write);
3883 }
3884
3885 static inline void rb_end_commit(struct ring_buffer_per_cpu *cpu_buffer);
3886
3887 /*
3888 * This is the slow path, force gcc not to inline it.
3889 */
3890 static noinline struct ring_buffer_event *
rb_move_tail(struct ring_buffer_per_cpu * cpu_buffer,unsigned long tail,struct rb_event_info * info)3891 rb_move_tail(struct ring_buffer_per_cpu *cpu_buffer,
3892 unsigned long tail, struct rb_event_info *info)
3893 {
3894 struct buffer_page *tail_page = info->tail_page;
3895 struct buffer_page *commit_page = cpu_buffer->commit_page;
3896 struct trace_buffer *buffer = cpu_buffer->buffer;
3897 struct buffer_page *next_page;
3898 int ret;
3899
3900 next_page = tail_page;
3901
3902 rb_inc_page(&next_page);
3903
3904 /*
3905 * If for some reason, we had an interrupt storm that made
3906 * it all the way around the buffer, bail, and warn
3907 * about it.
3908 */
3909 if (unlikely(next_page == commit_page)) {
3910 local_inc(&cpu_buffer->commit_overrun);
3911 goto out_reset;
3912 }
3913
3914 /*
3915 * This is where the fun begins!
3916 *
3917 * We are fighting against races between a reader that
3918 * could be on another CPU trying to swap its reader
3919 * page with the buffer head.
3920 *
3921 * We are also fighting against interrupts coming in and
3922 * moving the head or tail on us as well.
3923 *
3924 * If the next page is the head page then we have filled
3925 * the buffer, unless the commit page is still on the
3926 * reader page.
3927 */
3928 if (rb_is_head_page(next_page, &tail_page->list)) {
3929
3930 /*
3931 * If the commit is not on the reader page, then
3932 * move the header page.
3933 */
3934 if (!rb_is_reader_page(cpu_buffer->commit_page)) {
3935 /*
3936 * If we are not in overwrite mode,
3937 * this is easy, just stop here.
3938 */
3939 if (!(buffer->flags & RB_FL_OVERWRITE)) {
3940 local_inc(&cpu_buffer->dropped_events);
3941 goto out_reset;
3942 }
3943
3944 ret = rb_handle_head_page(cpu_buffer,
3945 tail_page,
3946 next_page);
3947 if (ret < 0)
3948 goto out_reset;
3949 if (ret)
3950 goto out_again;
3951 } else {
3952 /*
3953 * We need to be careful here too. The
3954 * commit page could still be on the reader
3955 * page. We could have a small buffer, and
3956 * have filled up the buffer with events
3957 * from interrupts and such, and wrapped.
3958 *
3959 * Note, if the tail page is also on the
3960 * reader_page, we let it move out.
3961 */
3962 if (unlikely((cpu_buffer->commit_page !=
3963 cpu_buffer->tail_page) &&
3964 (cpu_buffer->commit_page ==
3965 cpu_buffer->reader_page))) {
3966 local_inc(&cpu_buffer->commit_overrun);
3967 goto out_reset;
3968 }
3969 }
3970 }
3971
3972 rb_tail_page_update(cpu_buffer, tail_page, next_page);
3973
3974 out_again:
3975
3976 rb_reset_tail(cpu_buffer, tail, info);
3977
3978 /* Commit what we have for now. */
3979 rb_end_commit(cpu_buffer);
3980 /* rb_end_commit() decs committing */
3981 local_inc(&cpu_buffer->committing);
3982
3983 /* fail and let the caller try again */
3984 return ERR_PTR(-EAGAIN);
3985
3986 out_reset:
3987 /* reset write */
3988 rb_reset_tail(cpu_buffer, tail, info);
3989
3990 return NULL;
3991 }
3992
3993 /* Slow path */
3994 static struct ring_buffer_event *
rb_add_time_stamp(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event,u64 delta,bool abs)3995 rb_add_time_stamp(struct ring_buffer_per_cpu *cpu_buffer,
3996 struct ring_buffer_event *event, u64 delta, bool abs)
3997 {
3998 if (abs)
3999 event->type_len = RINGBUF_TYPE_TIME_STAMP;
4000 else
4001 event->type_len = RINGBUF_TYPE_TIME_EXTEND;
4002
4003 /* Not the first event on the page, or not delta? */
4004 if (abs || rb_event_index(cpu_buffer, event)) {
4005 event->time_delta = delta & TS_MASK;
4006 event->array[0] = delta >> TS_SHIFT;
4007 } else {
4008 /* nope, just zero it */
4009 event->time_delta = 0;
4010 event->array[0] = 0;
4011 }
4012
4013 return skip_time_extend(event);
4014 }
4015
4016 static void
rb_check_timestamp(struct ring_buffer_per_cpu * cpu_buffer,struct rb_event_info * info)4017 rb_check_timestamp(struct ring_buffer_per_cpu *cpu_buffer,
4018 struct rb_event_info *info)
4019 {
4020 u64 write_stamp;
4021
4022 WARN_ONCE(1, "Delta way too big! %llu ts=%llu before=%llu after=%llu write stamp=%llu\n%s",
4023 (unsigned long long)info->delta,
4024 (unsigned long long)info->ts,
4025 (unsigned long long)info->before,
4026 (unsigned long long)info->after,
4027 (unsigned long long)({rb_time_read(&cpu_buffer->write_stamp, &write_stamp); write_stamp;}),
4028 sched_clock_stable() ? "" :
4029 "If you just came from a suspend/resume,\n"
4030 "please switch to the trace global clock:\n"
4031 " echo global > /sys/kernel/tracing/trace_clock\n"
4032 "or add trace_clock=global to the kernel command line\n");
4033 }
4034
rb_add_timestamp(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event ** event,struct rb_event_info * info,u64 * delta,unsigned int * length)4035 static void rb_add_timestamp(struct ring_buffer_per_cpu *cpu_buffer,
4036 struct ring_buffer_event **event,
4037 struct rb_event_info *info,
4038 u64 *delta,
4039 unsigned int *length)
4040 {
4041 bool abs = info->add_timestamp &
4042 (RB_ADD_STAMP_FORCE | RB_ADD_STAMP_ABSOLUTE);
4043
4044 if (unlikely(info->delta > (1ULL << 59))) {
4045 /*
4046 * Some timers can use more than 59 bits, and when a timestamp
4047 * is added to the buffer, it will lose those bits.
4048 */
4049 if (abs && (info->ts & TS_MSB)) {
4050 info->delta &= ABS_TS_MASK;
4051
4052 /* did the clock go backwards */
4053 } else if (info->before == info->after && info->before > info->ts) {
4054 /* not interrupted */
4055 static int once;
4056
4057 /*
4058 * This is possible with a recalibrating of the TSC.
4059 * Do not produce a call stack, but just report it.
4060 */
4061 if (!once) {
4062 once++;
4063 pr_warn("Ring buffer clock went backwards: %llu -> %llu\n",
4064 info->before, info->ts);
4065 }
4066 } else
4067 rb_check_timestamp(cpu_buffer, info);
4068 if (!abs)
4069 info->delta = 0;
4070 }
4071 *event = rb_add_time_stamp(cpu_buffer, *event, info->delta, abs);
4072 *length -= RB_LEN_TIME_EXTEND;
4073 *delta = 0;
4074 }
4075
4076 /**
4077 * rb_update_event - update event type and data
4078 * @cpu_buffer: The per cpu buffer of the @event
4079 * @event: the event to update
4080 * @info: The info to update the @event with (contains length and delta)
4081 *
4082 * Update the type and data fields of the @event. The length
4083 * is the actual size that is written to the ring buffer,
4084 * and with this, we can determine what to place into the
4085 * data field.
4086 */
4087 static void
rb_update_event(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event,struct rb_event_info * info)4088 rb_update_event(struct ring_buffer_per_cpu *cpu_buffer,
4089 struct ring_buffer_event *event,
4090 struct rb_event_info *info)
4091 {
4092 unsigned length = info->length;
4093 u64 delta = info->delta;
4094 unsigned int nest = local_read(&cpu_buffer->committing) - 1;
4095
4096 if (!WARN_ON_ONCE(nest >= MAX_NEST))
4097 cpu_buffer->event_stamp[nest] = info->ts;
4098
4099 /*
4100 * If we need to add a timestamp, then we
4101 * add it to the start of the reserved space.
4102 */
4103 if (unlikely(info->add_timestamp))
4104 rb_add_timestamp(cpu_buffer, &event, info, &delta, &length);
4105
4106 event->time_delta = delta;
4107 length -= RB_EVNT_HDR_SIZE;
4108 if (length > RB_MAX_SMALL_DATA || RB_FORCE_8BYTE_ALIGNMENT) {
4109 event->type_len = 0;
4110 event->array[0] = length;
4111 } else
4112 event->type_len = DIV_ROUND_UP(length, RB_ALIGNMENT);
4113 }
4114
rb_calculate_event_length(unsigned length)4115 static unsigned rb_calculate_event_length(unsigned length)
4116 {
4117 struct ring_buffer_event event; /* Used only for sizeof array */
4118
4119 /* zero length can cause confusions */
4120 if (!length)
4121 length++;
4122
4123 if (length > RB_MAX_SMALL_DATA || RB_FORCE_8BYTE_ALIGNMENT)
4124 length += sizeof(event.array[0]);
4125
4126 length += RB_EVNT_HDR_SIZE;
4127 length = ALIGN(length, RB_ARCH_ALIGNMENT);
4128
4129 /*
4130 * In case the time delta is larger than the 27 bits for it
4131 * in the header, we need to add a timestamp. If another
4132 * event comes in when trying to discard this one to increase
4133 * the length, then the timestamp will be added in the allocated
4134 * space of this event. If length is bigger than the size needed
4135 * for the TIME_EXTEND, then padding has to be used. The events
4136 * length must be either RB_LEN_TIME_EXTEND, or greater than or equal
4137 * to RB_LEN_TIME_EXTEND + 8, as 8 is the minimum size for padding.
4138 * As length is a multiple of 4, we only need to worry if it
4139 * is 12 (RB_LEN_TIME_EXTEND + 4).
4140 */
4141 if (length == RB_LEN_TIME_EXTEND + RB_ALIGNMENT)
4142 length += RB_ALIGNMENT;
4143
4144 return length;
4145 }
4146
4147 static inline bool
rb_try_to_discard(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event)4148 rb_try_to_discard(struct ring_buffer_per_cpu *cpu_buffer,
4149 struct ring_buffer_event *event)
4150 {
4151 unsigned long new_index, old_index;
4152 struct buffer_page *bpage;
4153 unsigned long addr;
4154
4155 new_index = rb_event_index(cpu_buffer, event);
4156 old_index = new_index + rb_event_ts_length(event);
4157 addr = rb_subbuf_start(cpu_buffer->buffer, (unsigned long)event);
4158
4159 bpage = READ_ONCE(cpu_buffer->tail_page);
4160
4161 /*
4162 * Make sure the tail_page is still the same and
4163 * the next write location is the end of this event
4164 */
4165 if (bpage->page == (void *)addr && rb_page_write(bpage) == old_index) {
4166 unsigned long write_mask =
4167 local_read(&bpage->write) & ~RB_WRITE_MASK;
4168 unsigned long event_length = rb_event_length(event);
4169
4170 /*
4171 * For the before_stamp to be different than the write_stamp
4172 * to make sure that the next event adds an absolute
4173 * value and does not rely on the saved write stamp, which
4174 * is now going to be bogus.
4175 *
4176 * By setting the before_stamp to zero, the next event
4177 * is not going to use the write_stamp and will instead
4178 * create an absolute timestamp. This means there's no
4179 * reason to update the wirte_stamp!
4180 */
4181 rb_time_set(&cpu_buffer->before_stamp, 0);
4182
4183 /*
4184 * If an event were to come in now, it would see that the
4185 * write_stamp and the before_stamp are different, and assume
4186 * that this event just added itself before updating
4187 * the write stamp. The interrupting event will fix the
4188 * write stamp for us, and use an absolute timestamp.
4189 */
4190
4191 /*
4192 * This is on the tail page. It is possible that
4193 * a write could come in and move the tail page
4194 * and write to the next page. That is fine
4195 * because we just shorten what is on this page.
4196 */
4197 old_index += write_mask;
4198 new_index += write_mask;
4199
4200 /* caution: old_index gets updated on cmpxchg failure */
4201 if (local_try_cmpxchg(&bpage->write, &old_index, new_index)) {
4202 /* update counters */
4203 local_sub(event_length, &cpu_buffer->entries_bytes);
4204 return true;
4205 }
4206 }
4207
4208 /* could not discard */
4209 return false;
4210 }
4211
rb_start_commit(struct ring_buffer_per_cpu * cpu_buffer)4212 static void rb_start_commit(struct ring_buffer_per_cpu *cpu_buffer)
4213 {
4214 local_inc(&cpu_buffer->committing);
4215 local_inc(&cpu_buffer->commits);
4216 }
4217
4218 static __always_inline void
rb_set_commit_to_write(struct ring_buffer_per_cpu * cpu_buffer)4219 rb_set_commit_to_write(struct ring_buffer_per_cpu *cpu_buffer)
4220 {
4221 unsigned long max_count;
4222
4223 /*
4224 * We only race with interrupts and NMIs on this CPU.
4225 * If we own the commit event, then we can commit
4226 * all others that interrupted us, since the interruptions
4227 * are in stack format (they finish before they come
4228 * back to us). This allows us to do a simple loop to
4229 * assign the commit to the tail.
4230 */
4231 again:
4232 max_count = cpu_buffer->nr_pages * 100;
4233
4234 while (cpu_buffer->commit_page != READ_ONCE(cpu_buffer->tail_page)) {
4235 if (RB_WARN_ON(cpu_buffer, !(--max_count)))
4236 return;
4237 if (RB_WARN_ON(cpu_buffer,
4238 rb_is_reader_page(cpu_buffer->tail_page)))
4239 return;
4240 /*
4241 * No need for a memory barrier here, as the update
4242 * of the tail_page did it for this page.
4243 */
4244 local_set(&cpu_buffer->commit_page->page->commit,
4245 rb_page_write(cpu_buffer->commit_page));
4246 rb_inc_page(&cpu_buffer->commit_page);
4247 if (cpu_buffer->ring_meta) {
4248 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
4249 meta->commit_buffer = (unsigned long)cpu_buffer->commit_page->page;
4250 }
4251 /* add barrier to keep gcc from optimizing too much */
4252 barrier();
4253 }
4254 while (rb_commit_index(cpu_buffer) !=
4255 rb_page_write(cpu_buffer->commit_page)) {
4256
4257 /* Make sure the readers see the content of what is committed. */
4258 smp_wmb();
4259 local_set(&cpu_buffer->commit_page->page->commit,
4260 rb_page_write(cpu_buffer->commit_page));
4261 RB_WARN_ON(cpu_buffer,
4262 rb_page_commit(cpu_buffer->commit_page) & ~RB_WRITE_MASK);
4263 barrier();
4264 }
4265
4266 /* again, keep gcc from optimizing */
4267 barrier();
4268
4269 /*
4270 * If an interrupt came in just after the first while loop
4271 * and pushed the tail page forward, we will be left with
4272 * a dangling commit that will never go forward.
4273 */
4274 if (unlikely(cpu_buffer->commit_page != READ_ONCE(cpu_buffer->tail_page)))
4275 goto again;
4276 }
4277
rb_end_commit(struct ring_buffer_per_cpu * cpu_buffer)4278 static __always_inline void rb_end_commit(struct ring_buffer_per_cpu *cpu_buffer)
4279 {
4280 unsigned long commits;
4281
4282 if (RB_WARN_ON(cpu_buffer,
4283 !local_read(&cpu_buffer->committing)))
4284 return;
4285
4286 again:
4287 commits = local_read(&cpu_buffer->commits);
4288 /* synchronize with interrupts */
4289 barrier();
4290 if (local_read(&cpu_buffer->committing) == 1)
4291 rb_set_commit_to_write(cpu_buffer);
4292
4293 local_dec(&cpu_buffer->committing);
4294
4295 /* synchronize with interrupts */
4296 barrier();
4297
4298 /*
4299 * Need to account for interrupts coming in between the
4300 * updating of the commit page and the clearing of the
4301 * committing counter.
4302 */
4303 if (unlikely(local_read(&cpu_buffer->commits) != commits) &&
4304 !local_read(&cpu_buffer->committing)) {
4305 local_inc(&cpu_buffer->committing);
4306 goto again;
4307 }
4308 }
4309
rb_event_discard(struct ring_buffer_event * event)4310 static inline void rb_event_discard(struct ring_buffer_event *event)
4311 {
4312 if (extended_time(event))
4313 event = skip_time_extend(event);
4314
4315 /* array[0] holds the actual length for the discarded event */
4316 event->array[0] = rb_event_data_length(event) - RB_EVNT_HDR_SIZE;
4317 event->type_len = RINGBUF_TYPE_PADDING;
4318 /* time delta must be non zero */
4319 if (!event->time_delta)
4320 event->time_delta = 1;
4321 }
4322
rb_commit(struct ring_buffer_per_cpu * cpu_buffer)4323 static void rb_commit(struct ring_buffer_per_cpu *cpu_buffer)
4324 {
4325 local_inc(&cpu_buffer->entries);
4326 rb_end_commit(cpu_buffer);
4327 }
4328
4329 static bool
rb_irq_work_queue(struct rb_irq_work * irq_work)4330 rb_irq_work_queue(struct rb_irq_work *irq_work)
4331 {
4332 int cpu;
4333
4334 /* irq_work_queue_on() is not NMI-safe */
4335 if (unlikely(in_nmi()))
4336 return irq_work_queue(&irq_work->work);
4337
4338 /*
4339 * If CPU isolation is not active, cpu is always the current
4340 * CPU, and the following is equivallent to irq_work_queue().
4341 */
4342 cpu = housekeeping_any_cpu(HK_TYPE_KERNEL_NOISE);
4343 return irq_work_queue_on(&irq_work->work, cpu);
4344 }
4345
4346 static __always_inline void
rb_wakeups(struct trace_buffer * buffer,struct ring_buffer_per_cpu * cpu_buffer)4347 rb_wakeups(struct trace_buffer *buffer, struct ring_buffer_per_cpu *cpu_buffer)
4348 {
4349 if (buffer->irq_work.waiters_pending) {
4350 buffer->irq_work.waiters_pending = false;
4351 /* irq_work_queue() supplies it's own memory barriers */
4352 rb_irq_work_queue(&buffer->irq_work);
4353 }
4354
4355 if (cpu_buffer->irq_work.waiters_pending) {
4356 cpu_buffer->irq_work.waiters_pending = false;
4357 /* irq_work_queue() supplies it's own memory barriers */
4358 rb_irq_work_queue(&cpu_buffer->irq_work);
4359 }
4360
4361 if (cpu_buffer->last_pages_touch == local_read(&cpu_buffer->pages_touched))
4362 return;
4363
4364 if (cpu_buffer->reader_page == cpu_buffer->commit_page)
4365 return;
4366
4367 if (!cpu_buffer->irq_work.full_waiters_pending)
4368 return;
4369
4370 cpu_buffer->last_pages_touch = local_read(&cpu_buffer->pages_touched);
4371
4372 if (!full_hit(buffer, cpu_buffer->cpu, cpu_buffer->shortest_full))
4373 return;
4374
4375 cpu_buffer->irq_work.wakeup_full = true;
4376 cpu_buffer->irq_work.full_waiters_pending = false;
4377 /* irq_work_queue() supplies it's own memory barriers */
4378 rb_irq_work_queue(&cpu_buffer->irq_work);
4379 }
4380
4381 #ifdef CONFIG_RING_BUFFER_RECORD_RECURSION
4382 # define do_ring_buffer_record_recursion() \
4383 do_ftrace_record_recursion(_THIS_IP_, _RET_IP_)
4384 #else
4385 # define do_ring_buffer_record_recursion() do { } while (0)
4386 #endif
4387
4388 /*
4389 * The lock and unlock are done within a preempt disable section.
4390 * The current_context per_cpu variable can only be modified
4391 * by the current task between lock and unlock. But it can
4392 * be modified more than once via an interrupt. To pass this
4393 * information from the lock to the unlock without having to
4394 * access the 'in_interrupt()' functions again (which do show
4395 * a bit of overhead in something as critical as function tracing,
4396 * we use a bitmask trick.
4397 *
4398 * bit 1 = NMI context
4399 * bit 2 = IRQ context
4400 * bit 3 = SoftIRQ context
4401 * bit 4 = normal context.
4402 *
4403 * This works because this is the order of contexts that can
4404 * preempt other contexts. A SoftIRQ never preempts an IRQ
4405 * context.
4406 *
4407 * When the context is determined, the corresponding bit is
4408 * checked and set (if it was set, then a recursion of that context
4409 * happened).
4410 *
4411 * On unlock, we need to clear this bit. To do so, just subtract
4412 * 1 from the current_context and AND it to itself.
4413 *
4414 * (binary)
4415 * 101 - 1 = 100
4416 * 101 & 100 = 100 (clearing bit zero)
4417 *
4418 * 1010 - 1 = 1001
4419 * 1010 & 1001 = 1000 (clearing bit 1)
4420 *
4421 * The least significant bit can be cleared this way, and it
4422 * just so happens that it is the same bit corresponding to
4423 * the current context.
4424 *
4425 * Now the TRANSITION bit breaks the above slightly. The TRANSITION bit
4426 * is set when a recursion is detected at the current context, and if
4427 * the TRANSITION bit is already set, it will fail the recursion.
4428 * This is needed because there's a lag between the changing of
4429 * interrupt context and updating the preempt count. In this case,
4430 * a false positive will be found. To handle this, one extra recursion
4431 * is allowed, and this is done by the TRANSITION bit. If the TRANSITION
4432 * bit is already set, then it is considered a recursion and the function
4433 * ends. Otherwise, the TRANSITION bit is set, and that bit is returned.
4434 *
4435 * On the trace_recursive_unlock(), the TRANSITION bit will be the first
4436 * to be cleared. Even if it wasn't the context that set it. That is,
4437 * if an interrupt comes in while NORMAL bit is set and the ring buffer
4438 * is called before preempt_count() is updated, since the check will
4439 * be on the NORMAL bit, the TRANSITION bit will then be set. If an
4440 * NMI then comes in, it will set the NMI bit, but when the NMI code
4441 * does the trace_recursive_unlock() it will clear the TRANSITION bit
4442 * and leave the NMI bit set. But this is fine, because the interrupt
4443 * code that set the TRANSITION bit will then clear the NMI bit when it
4444 * calls trace_recursive_unlock(). If another NMI comes in, it will
4445 * set the TRANSITION bit and continue.
4446 *
4447 * Note: The TRANSITION bit only handles a single transition between context.
4448 */
4449
4450 static __always_inline bool
trace_recursive_lock(struct ring_buffer_per_cpu * cpu_buffer)4451 trace_recursive_lock(struct ring_buffer_per_cpu *cpu_buffer)
4452 {
4453 unsigned int val = cpu_buffer->current_context;
4454 int bit = interrupt_context_level();
4455
4456 bit = RB_CTX_NORMAL - bit;
4457
4458 if (unlikely(val & (1 << (bit + cpu_buffer->nest)))) {
4459 /*
4460 * It is possible that this was called by transitioning
4461 * between interrupt context, and preempt_count() has not
4462 * been updated yet. In this case, use the TRANSITION bit.
4463 */
4464 bit = RB_CTX_TRANSITION;
4465 if (val & (1 << (bit + cpu_buffer->nest))) {
4466 do_ring_buffer_record_recursion();
4467 return true;
4468 }
4469 }
4470
4471 val |= (1 << (bit + cpu_buffer->nest));
4472 cpu_buffer->current_context = val;
4473
4474 return false;
4475 }
4476
4477 static __always_inline void
trace_recursive_unlock(struct ring_buffer_per_cpu * cpu_buffer)4478 trace_recursive_unlock(struct ring_buffer_per_cpu *cpu_buffer)
4479 {
4480 cpu_buffer->current_context &=
4481 cpu_buffer->current_context - (1 << cpu_buffer->nest);
4482 }
4483
4484 /* The recursive locking above uses 5 bits */
4485 #define NESTED_BITS 5
4486
4487 /**
4488 * ring_buffer_nest_start - Allow to trace while nested
4489 * @buffer: The ring buffer to modify
4490 *
4491 * The ring buffer has a safety mechanism to prevent recursion.
4492 * But there may be a case where a trace needs to be done while
4493 * tracing something else. In this case, calling this function
4494 * will allow this function to nest within a currently active
4495 * ring_buffer_lock_reserve().
4496 *
4497 * Call this function before calling another ring_buffer_lock_reserve() and
4498 * call ring_buffer_nest_end() after the nested ring_buffer_unlock_commit().
4499 */
ring_buffer_nest_start(struct trace_buffer * buffer)4500 void ring_buffer_nest_start(struct trace_buffer *buffer)
4501 {
4502 struct ring_buffer_per_cpu *cpu_buffer;
4503 int cpu;
4504
4505 /* Enabled by ring_buffer_nest_end() */
4506 preempt_disable_notrace();
4507 cpu = raw_smp_processor_id();
4508 cpu_buffer = buffer->buffers[cpu];
4509 /* This is the shift value for the above recursive locking */
4510 cpu_buffer->nest += NESTED_BITS;
4511 }
4512
4513 /**
4514 * ring_buffer_nest_end - Allow to trace while nested
4515 * @buffer: The ring buffer to modify
4516 *
4517 * Must be called after ring_buffer_nest_start() and after the
4518 * ring_buffer_unlock_commit().
4519 */
ring_buffer_nest_end(struct trace_buffer * buffer)4520 void ring_buffer_nest_end(struct trace_buffer *buffer)
4521 {
4522 struct ring_buffer_per_cpu *cpu_buffer;
4523 int cpu;
4524
4525 /* disabled by ring_buffer_nest_start() */
4526 cpu = raw_smp_processor_id();
4527 cpu_buffer = buffer->buffers[cpu];
4528 /* This is the shift value for the above recursive locking */
4529 cpu_buffer->nest -= NESTED_BITS;
4530 preempt_enable_notrace();
4531 }
4532
4533 /**
4534 * ring_buffer_unlock_commit - commit a reserved
4535 * @buffer: The buffer to commit to
4536 *
4537 * This commits the data to the ring buffer, and releases any locks held.
4538 *
4539 * Must be paired with ring_buffer_lock_reserve.
4540 */
ring_buffer_unlock_commit(struct trace_buffer * buffer)4541 int ring_buffer_unlock_commit(struct trace_buffer *buffer)
4542 {
4543 struct ring_buffer_per_cpu *cpu_buffer;
4544 int cpu = raw_smp_processor_id();
4545
4546 cpu_buffer = buffer->buffers[cpu];
4547
4548 rb_commit(cpu_buffer);
4549
4550 rb_wakeups(buffer, cpu_buffer);
4551
4552 trace_recursive_unlock(cpu_buffer);
4553
4554 preempt_enable_notrace();
4555
4556 return 0;
4557 }
4558 EXPORT_SYMBOL_GPL(ring_buffer_unlock_commit);
4559
4560 /* Special value to validate all deltas on a page. */
4561 #define CHECK_FULL_PAGE 1L
4562
4563 #ifdef CONFIG_RING_BUFFER_VALIDATE_TIME_DELTAS
4564
show_irq_str(int bits)4565 static const char *show_irq_str(int bits)
4566 {
4567 static const char * type[] = {
4568 ".", // 0
4569 "s", // 1
4570 "h", // 2
4571 "Hs", // 3
4572 "n", // 4
4573 "Ns", // 5
4574 "Nh", // 6
4575 "NHs", // 7
4576 };
4577
4578 return type[bits];
4579 }
4580
4581 /* Assume this is a trace event */
show_flags(struct ring_buffer_event * event)4582 static const char *show_flags(struct ring_buffer_event *event)
4583 {
4584 struct trace_entry *entry;
4585 int bits = 0;
4586
4587 if (rb_event_data_length(event) - RB_EVNT_HDR_SIZE < sizeof(*entry))
4588 return "X";
4589
4590 entry = ring_buffer_event_data(event);
4591
4592 if (entry->flags & TRACE_FLAG_SOFTIRQ)
4593 bits |= 1;
4594
4595 if (entry->flags & TRACE_FLAG_HARDIRQ)
4596 bits |= 2;
4597
4598 if (entry->flags & TRACE_FLAG_NMI)
4599 bits |= 4;
4600
4601 return show_irq_str(bits);
4602 }
4603
show_irq(struct ring_buffer_event * event)4604 static const char *show_irq(struct ring_buffer_event *event)
4605 {
4606 struct trace_entry *entry;
4607
4608 if (rb_event_data_length(event) - RB_EVNT_HDR_SIZE < sizeof(*entry))
4609 return "";
4610
4611 entry = ring_buffer_event_data(event);
4612 if (entry->flags & TRACE_FLAG_IRQS_OFF)
4613 return "d";
4614 return "";
4615 }
4616
show_interrupt_level(void)4617 static const char *show_interrupt_level(void)
4618 {
4619 unsigned long pc = preempt_count();
4620 unsigned char level = 0;
4621
4622 if (pc & SOFTIRQ_OFFSET)
4623 level |= 1;
4624
4625 if (pc & HARDIRQ_MASK)
4626 level |= 2;
4627
4628 if (pc & NMI_MASK)
4629 level |= 4;
4630
4631 return show_irq_str(level);
4632 }
4633
dump_buffer_page(struct buffer_data_page * dpage,struct rb_event_info * info,unsigned long tail)4634 static void dump_buffer_page(struct buffer_data_page *dpage,
4635 struct rb_event_info *info,
4636 unsigned long tail)
4637 {
4638 struct ring_buffer_event *event;
4639 u64 ts, delta;
4640 int e;
4641
4642 ts = dpage->time_stamp;
4643 pr_warn(" [%lld] PAGE TIME STAMP\n", ts);
4644
4645 for (e = 0; e < tail; e += rb_event_length(event)) {
4646
4647 event = (struct ring_buffer_event *)(dpage->data + e);
4648
4649 switch (event->type_len) {
4650
4651 case RINGBUF_TYPE_TIME_EXTEND:
4652 delta = rb_event_time_stamp(event);
4653 ts += delta;
4654 pr_warn(" 0x%x: [%lld] delta:%lld TIME EXTEND\n",
4655 e, ts, delta);
4656 break;
4657
4658 case RINGBUF_TYPE_TIME_STAMP:
4659 delta = rb_event_time_stamp(event);
4660 ts = rb_fix_abs_ts(delta, ts);
4661 pr_warn(" 0x%x: [%lld] absolute:%lld TIME STAMP\n",
4662 e, ts, delta);
4663 break;
4664
4665 case RINGBUF_TYPE_PADDING:
4666 ts += event->time_delta;
4667 pr_warn(" 0x%x: [%lld] delta:%d PADDING\n",
4668 e, ts, event->time_delta);
4669 break;
4670
4671 case RINGBUF_TYPE_DATA:
4672 ts += event->time_delta;
4673 pr_warn(" 0x%x: [%lld] delta:%d %s%s\n",
4674 e, ts, event->time_delta,
4675 show_flags(event), show_irq(event));
4676 break;
4677
4678 default:
4679 break;
4680 }
4681 }
4682 pr_warn("expected end:0x%lx last event actually ended at:0x%x\n", tail, e);
4683 }
4684
4685 static DEFINE_PER_CPU(atomic_t, checking);
4686 static atomic_t ts_dump;
4687
4688 #define buffer_warn_return(fmt, ...) \
4689 do { \
4690 /* If another report is happening, ignore this one */ \
4691 if (atomic_inc_return(&ts_dump) != 1) { \
4692 atomic_dec(&ts_dump); \
4693 goto out; \
4694 } \
4695 atomic_inc(&cpu_buffer->record_disabled); \
4696 pr_warn(fmt, ##__VA_ARGS__); \
4697 dump_buffer_page(dpage, info, tail); \
4698 atomic_dec(&ts_dump); \
4699 /* There's some cases in boot up that this can happen */ \
4700 if (WARN_ON_ONCE(system_state != SYSTEM_BOOTING)) \
4701 /* Do not re-enable checking */ \
4702 return; \
4703 } while (0)
4704
4705 /*
4706 * Check if the current event time stamp matches the deltas on
4707 * the buffer page.
4708 */
check_buffer(struct ring_buffer_per_cpu * cpu_buffer,struct rb_event_info * info,unsigned long tail)4709 static void check_buffer(struct ring_buffer_per_cpu *cpu_buffer,
4710 struct rb_event_info *info,
4711 unsigned long tail)
4712 {
4713 struct buffer_data_page *dpage;
4714 u64 ts, delta;
4715 bool full = false;
4716 int ret;
4717
4718 dpage = info->tail_page->page;
4719
4720 if (tail == CHECK_FULL_PAGE) {
4721 full = true;
4722 tail = rb_data_page_commit(dpage);
4723 } else if (info->add_timestamp &
4724 (RB_ADD_STAMP_FORCE | RB_ADD_STAMP_ABSOLUTE)) {
4725 /* Ignore events with absolute time stamps */
4726 return;
4727 }
4728
4729 /*
4730 * Do not check the first event (skip possible extends too).
4731 * Also do not check if previous events have not been committed.
4732 */
4733 if (tail <= 8 || tail > rb_data_page_commit(dpage))
4734 return;
4735
4736 /*
4737 * If this interrupted another event,
4738 */
4739 if (atomic_inc_return(this_cpu_ptr(&checking)) != 1)
4740 goto out;
4741
4742 ret = rb_read_data_buffer(dpage, tail, cpu_buffer->cpu, &ts, &delta);
4743 if (ret < 0) {
4744 if (delta < ts) {
4745 buffer_warn_return("[CPU: %d]ABSOLUTE TIME WENT BACKWARDS: last ts: %lld absolute ts: %lld clock:%pS\n",
4746 cpu_buffer->cpu, ts, delta,
4747 cpu_buffer->buffer->clock);
4748 goto out;
4749 }
4750 }
4751 if ((full && ts > info->ts) ||
4752 (!full && ts + info->delta != info->ts)) {
4753 buffer_warn_return("[CPU: %d]TIME DOES NOT MATCH expected:%lld actual:%lld delta:%lld before:%lld after:%lld%s context:%s\ntrace clock:%pS",
4754 cpu_buffer->cpu,
4755 ts + info->delta, info->ts, info->delta,
4756 info->before, info->after,
4757 full ? " (full)" : "", show_interrupt_level(),
4758 cpu_buffer->buffer->clock);
4759 }
4760 out:
4761 atomic_dec(this_cpu_ptr(&checking));
4762 }
4763 #else
check_buffer(struct ring_buffer_per_cpu * cpu_buffer,struct rb_event_info * info,unsigned long tail)4764 static inline void check_buffer(struct ring_buffer_per_cpu *cpu_buffer,
4765 struct rb_event_info *info,
4766 unsigned long tail)
4767 {
4768 }
4769 #endif /* CONFIG_RING_BUFFER_VALIDATE_TIME_DELTAS */
4770
4771 static struct ring_buffer_event *
__rb_reserve_next(struct ring_buffer_per_cpu * cpu_buffer,struct rb_event_info * info)4772 __rb_reserve_next(struct ring_buffer_per_cpu *cpu_buffer,
4773 struct rb_event_info *info)
4774 {
4775 struct ring_buffer_event *event;
4776 struct buffer_page *tail_page;
4777 unsigned long tail, write, w;
4778
4779 /* Don't let the compiler play games with cpu_buffer->tail_page */
4780 tail_page = info->tail_page = READ_ONCE(cpu_buffer->tail_page);
4781
4782 /*A*/ w = local_read(&tail_page->write) & RB_WRITE_MASK;
4783 barrier();
4784 rb_time_read(&cpu_buffer->before_stamp, &info->before);
4785 rb_time_read(&cpu_buffer->write_stamp, &info->after);
4786 barrier();
4787 info->ts = rb_time_stamp(cpu_buffer->buffer);
4788
4789 if ((info->add_timestamp & RB_ADD_STAMP_ABSOLUTE)) {
4790 info->delta = info->ts;
4791 } else {
4792 /*
4793 * If interrupting an event time update, we may need an
4794 * absolute timestamp.
4795 * Don't bother if this is the start of a new page (w == 0).
4796 */
4797 if (!w) {
4798 /* Use the sub-buffer timestamp */
4799 info->delta = 0;
4800 } else if (unlikely(info->before != info->after)) {
4801 info->add_timestamp |= RB_ADD_STAMP_FORCE | RB_ADD_STAMP_EXTEND;
4802 info->length += RB_LEN_TIME_EXTEND;
4803 } else {
4804 info->delta = info->ts - info->after;
4805 if (unlikely(test_time_stamp(info->delta))) {
4806 info->add_timestamp |= RB_ADD_STAMP_EXTEND;
4807 info->length += RB_LEN_TIME_EXTEND;
4808 }
4809 }
4810 }
4811
4812 /*B*/ rb_time_set(&cpu_buffer->before_stamp, info->ts);
4813
4814 /*C*/ write = local_add_return(info->length, &tail_page->write);
4815
4816 /* set write to only the index of the write */
4817 write &= RB_WRITE_MASK;
4818
4819 tail = write - info->length;
4820
4821 /* See if we shot pass the end of this buffer page */
4822 if (unlikely(write > rb_page_capacity(tail_page))) {
4823 check_buffer(cpu_buffer, info, CHECK_FULL_PAGE);
4824 return rb_move_tail(cpu_buffer, tail, info);
4825 }
4826
4827 if (likely(tail == w)) {
4828 /* Nothing interrupted us between A and C */
4829 /*D*/ rb_time_set(&cpu_buffer->write_stamp, info->ts);
4830 /*
4831 * If something came in between C and D, the write stamp
4832 * may now not be in sync. But that's fine as the before_stamp
4833 * will be different and then next event will just be forced
4834 * to use an absolute timestamp.
4835 */
4836 if (likely(!(info->add_timestamp &
4837 (RB_ADD_STAMP_FORCE | RB_ADD_STAMP_ABSOLUTE))))
4838 /* This did not interrupt any time update */
4839 info->delta = info->ts - info->after;
4840 else
4841 /* Just use full timestamp for interrupting event */
4842 info->delta = info->ts;
4843 check_buffer(cpu_buffer, info, tail);
4844 } else {
4845 u64 ts;
4846 /* SLOW PATH - Interrupted between A and C */
4847
4848 /* Save the old before_stamp */
4849 rb_time_read(&cpu_buffer->before_stamp, &info->before);
4850
4851 /*
4852 * Read a new timestamp and update the before_stamp to make
4853 * the next event after this one force using an absolute
4854 * timestamp. This is in case an interrupt were to come in
4855 * between E and F.
4856 */
4857 ts = rb_time_stamp(cpu_buffer->buffer);
4858 rb_time_set(&cpu_buffer->before_stamp, ts);
4859
4860 barrier();
4861 /*E*/ rb_time_read(&cpu_buffer->write_stamp, &info->after);
4862 barrier();
4863 /*F*/ if (write == (local_read(&tail_page->write) & RB_WRITE_MASK) &&
4864 info->after == info->before && info->after < ts) {
4865 /*
4866 * Nothing came after this event between C and F, it is
4867 * safe to use info->after for the delta as it
4868 * matched info->before and is still valid.
4869 */
4870 info->delta = ts - info->after;
4871 } else {
4872 /*
4873 * Interrupted between C and F:
4874 * Lost the previous events time stamp. Just set the
4875 * delta to zero, and this will be the same time as
4876 * the event this event interrupted. And the events that
4877 * came after this will still be correct (as they would
4878 * have built their delta on the previous event.
4879 */
4880 info->delta = 0;
4881 }
4882 info->ts = ts;
4883 info->add_timestamp &= ~RB_ADD_STAMP_FORCE;
4884 }
4885
4886 /*
4887 * If this is the first commit on the page, then it has the same
4888 * timestamp as the page itself.
4889 */
4890 if (unlikely(!tail && !(info->add_timestamp &
4891 (RB_ADD_STAMP_FORCE | RB_ADD_STAMP_ABSOLUTE))))
4892 info->delta = 0;
4893
4894 /* We reserved something on the buffer */
4895
4896 event = __rb_page_index(tail_page, tail);
4897 rb_update_event(cpu_buffer, event, info);
4898
4899 local_inc(&tail_page->entries);
4900
4901 /*
4902 * If this is the first commit on the page, then update
4903 * its timestamp.
4904 */
4905 if (unlikely(!tail))
4906 tail_page->page->time_stamp = info->ts;
4907
4908 /* account for these added bytes */
4909 local_add(info->length, &cpu_buffer->entries_bytes);
4910
4911 return event;
4912 }
4913
4914 static __always_inline struct ring_buffer_event *
rb_reserve_next_event(struct trace_buffer * buffer,struct ring_buffer_per_cpu * cpu_buffer,unsigned long length)4915 rb_reserve_next_event(struct trace_buffer *buffer,
4916 struct ring_buffer_per_cpu *cpu_buffer,
4917 unsigned long length)
4918 {
4919 struct ring_buffer_event *event;
4920 struct rb_event_info info;
4921 int nr_loops = 0;
4922 int add_ts_default;
4923
4924 /*
4925 * ring buffer does cmpxchg as well as atomic64 operations
4926 * (which some archs use locking for atomic64), make sure this
4927 * is safe in NMI context
4928 */
4929 if ((!IS_ENABLED(CONFIG_ARCH_HAVE_NMI_SAFE_CMPXCHG) ||
4930 IS_ENABLED(CONFIG_GENERIC_ATOMIC64)) &&
4931 (unlikely(in_nmi()))) {
4932 return NULL;
4933 }
4934
4935 rb_start_commit(cpu_buffer);
4936 /* The commit page can not change after this */
4937
4938 #ifdef CONFIG_RING_BUFFER_ALLOW_SWAP
4939 /*
4940 * Due to the ability to swap a cpu buffer from a buffer
4941 * it is possible it was swapped before we committed.
4942 * (committing stops a swap). We check for it here and
4943 * if it happened, we have to fail the write.
4944 */
4945 barrier();
4946 if (unlikely(READ_ONCE(cpu_buffer->buffer) != buffer)) {
4947 local_dec(&cpu_buffer->committing);
4948 local_dec(&cpu_buffer->commits);
4949 return NULL;
4950 }
4951 #endif
4952
4953 info.length = rb_calculate_event_length(length);
4954
4955 if (ring_buffer_time_stamp_abs(cpu_buffer->buffer)) {
4956 add_ts_default = RB_ADD_STAMP_ABSOLUTE;
4957 info.length += RB_LEN_TIME_EXTEND;
4958 if (info.length > rb_subbuf_max_data_size(cpu_buffer->buffer))
4959 goto out_fail;
4960 } else {
4961 add_ts_default = RB_ADD_STAMP_NONE;
4962 }
4963
4964 again:
4965 info.add_timestamp = add_ts_default;
4966 info.delta = 0;
4967
4968 /*
4969 * We allow for interrupts to reenter here and do a trace.
4970 * If one does, it will cause this original code to loop
4971 * back here. Even with heavy interrupts happening, this
4972 * should only happen a few times in a row. If this happens
4973 * 1000 times in a row, there must be either an interrupt
4974 * storm or we have something buggy.
4975 * Bail!
4976 */
4977 if (RB_WARN_ON(cpu_buffer, ++nr_loops > 1000))
4978 goto out_fail;
4979
4980 event = __rb_reserve_next(cpu_buffer, &info);
4981
4982 if (unlikely(PTR_ERR(event) == -EAGAIN)) {
4983 if (info.add_timestamp & (RB_ADD_STAMP_FORCE | RB_ADD_STAMP_EXTEND))
4984 info.length -= RB_LEN_TIME_EXTEND;
4985 goto again;
4986 }
4987
4988 if (likely(event))
4989 return event;
4990 out_fail:
4991 rb_end_commit(cpu_buffer);
4992 return NULL;
4993 }
4994
4995 /**
4996 * ring_buffer_lock_reserve - reserve a part of the buffer
4997 * @buffer: the ring buffer to reserve from
4998 * @length: the length of the data to reserve (excluding event header)
4999 *
5000 * Returns a reserved event on the ring buffer to copy directly to.
5001 * The user of this interface will need to get the body to write into
5002 * and can use the ring_buffer_event_data() interface.
5003 *
5004 * The length is the length of the data needed, not the event length
5005 * which also includes the event header.
5006 *
5007 * Must be paired with ring_buffer_unlock_commit, unless NULL is returned.
5008 * If NULL is returned, then nothing has been allocated or locked.
5009 */
5010 struct ring_buffer_event *
ring_buffer_lock_reserve(struct trace_buffer * buffer,unsigned long length)5011 ring_buffer_lock_reserve(struct trace_buffer *buffer, unsigned long length)
5012 {
5013 struct ring_buffer_per_cpu *cpu_buffer;
5014 struct ring_buffer_event *event;
5015 int cpu;
5016
5017 /* If we are tracing schedule, we don't want to recurse */
5018 preempt_disable_notrace();
5019
5020 if (unlikely(atomic_read(&buffer->record_disabled)))
5021 goto out;
5022
5023 cpu = raw_smp_processor_id();
5024
5025 if (unlikely(!cpumask_test_cpu(cpu, buffer->cpumask)))
5026 goto out;
5027
5028 cpu_buffer = buffer->buffers[cpu];
5029
5030 if (unlikely(atomic_read(&cpu_buffer->record_disabled)))
5031 goto out;
5032
5033 if (unlikely(length > rb_subbuf_max_data_size(buffer)))
5034 goto out;
5035
5036 if (unlikely(trace_recursive_lock(cpu_buffer)))
5037 goto out;
5038
5039 event = rb_reserve_next_event(buffer, cpu_buffer, length);
5040 if (!event)
5041 goto out_unlock;
5042
5043 return event;
5044
5045 out_unlock:
5046 trace_recursive_unlock(cpu_buffer);
5047 out:
5048 preempt_enable_notrace();
5049 return NULL;
5050 }
5051 EXPORT_SYMBOL_GPL(ring_buffer_lock_reserve);
5052
5053 /*
5054 * Decrement the entries to the page that an event is on.
5055 * The event does not even need to exist, only the pointer
5056 * to the page it is on. This may only be called before the commit
5057 * takes place.
5058 */
5059 static inline void
rb_decrement_entry(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event)5060 rb_decrement_entry(struct ring_buffer_per_cpu *cpu_buffer,
5061 struct ring_buffer_event *event)
5062 {
5063 unsigned long addr = (unsigned long)event;
5064 struct buffer_page *bpage = cpu_buffer->commit_page;
5065 struct buffer_page *start;
5066
5067 addr = rb_subbuf_start(cpu_buffer->buffer, addr);
5068
5069 /* Do the likely case first */
5070 if (likely(bpage->page == (void *)addr)) {
5071 local_dec(&bpage->entries);
5072 return;
5073 }
5074
5075 /*
5076 * Because the commit page may be on the reader page we
5077 * start with the next page and check the end loop there.
5078 */
5079 rb_inc_page(&bpage);
5080 start = bpage;
5081 do {
5082 if (bpage->page == (void *)addr) {
5083 local_dec(&bpage->entries);
5084 return;
5085 }
5086 rb_inc_page(&bpage);
5087 } while (bpage != start);
5088
5089 /* commit not part of this buffer?? */
5090 RB_WARN_ON(cpu_buffer, 1);
5091 }
5092
5093 /**
5094 * ring_buffer_discard_commit - discard an event that has not been committed
5095 * @buffer: the ring buffer
5096 * @event: non committed event to discard
5097 *
5098 * Sometimes an event that is in the ring buffer needs to be ignored.
5099 * This function lets the user discard an event in the ring buffer
5100 * and then that event will not be read later.
5101 *
5102 * This function only works if it is called before the item has been
5103 * committed. It will try to free the event from the ring buffer
5104 * if another event has not been added behind it.
5105 *
5106 * If another event has been added behind it, it will set the event
5107 * up as discarded, and perform the commit.
5108 *
5109 * If this function is called, do not call ring_buffer_unlock_commit on
5110 * the event.
5111 */
ring_buffer_discard_commit(struct trace_buffer * buffer,struct ring_buffer_event * event)5112 void ring_buffer_discard_commit(struct trace_buffer *buffer,
5113 struct ring_buffer_event *event)
5114 {
5115 struct ring_buffer_per_cpu *cpu_buffer;
5116 int cpu;
5117
5118 /* The event is discarded regardless */
5119 rb_event_discard(event);
5120
5121 cpu = smp_processor_id();
5122 cpu_buffer = buffer->buffers[cpu];
5123
5124 /*
5125 * This must only be called if the event has not been
5126 * committed yet. Thus we can assume that preemption
5127 * is still disabled.
5128 */
5129 RB_WARN_ON(buffer, !local_read(&cpu_buffer->committing));
5130
5131 rb_decrement_entry(cpu_buffer, event);
5132 rb_try_to_discard(cpu_buffer, event);
5133 rb_end_commit(cpu_buffer);
5134
5135 trace_recursive_unlock(cpu_buffer);
5136
5137 preempt_enable_notrace();
5138
5139 }
5140 EXPORT_SYMBOL_GPL(ring_buffer_discard_commit);
5141
5142 /**
5143 * ring_buffer_write - write data to the buffer without reserving
5144 * @buffer: The ring buffer to write to.
5145 * @length: The length of the data being written (excluding the event header)
5146 * @data: The data to write to the buffer.
5147 *
5148 * This is like ring_buffer_lock_reserve and ring_buffer_unlock_commit as
5149 * one function. If you already have the data to write to the buffer, it
5150 * may be easier to simply call this function.
5151 *
5152 * Note, like ring_buffer_lock_reserve, the length is the length of the data
5153 * and not the length of the event which would hold the header.
5154 */
ring_buffer_write(struct trace_buffer * buffer,unsigned long length,void * data)5155 int ring_buffer_write(struct trace_buffer *buffer,
5156 unsigned long length,
5157 void *data)
5158 {
5159 struct ring_buffer_per_cpu *cpu_buffer;
5160 struct ring_buffer_event *event;
5161 void *body;
5162 int ret = -EBUSY;
5163 int cpu;
5164
5165 guard(preempt_notrace)();
5166
5167 if (atomic_read(&buffer->record_disabled))
5168 return -EBUSY;
5169
5170 cpu = raw_smp_processor_id();
5171
5172 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5173 return -EBUSY;
5174
5175 cpu_buffer = buffer->buffers[cpu];
5176
5177 if (atomic_read(&cpu_buffer->record_disabled))
5178 return -EBUSY;
5179
5180 if (length > rb_subbuf_max_data_size(buffer))
5181 return -EBUSY;
5182
5183 if (unlikely(trace_recursive_lock(cpu_buffer)))
5184 return -EBUSY;
5185
5186 event = rb_reserve_next_event(buffer, cpu_buffer, length);
5187 if (!event)
5188 goto out_unlock;
5189
5190 body = rb_event_data(event);
5191
5192 memcpy(body, data, length);
5193
5194 rb_commit(cpu_buffer);
5195
5196 rb_wakeups(buffer, cpu_buffer);
5197
5198 ret = 0;
5199
5200 out_unlock:
5201 trace_recursive_unlock(cpu_buffer);
5202 return ret;
5203 }
5204 EXPORT_SYMBOL_GPL(ring_buffer_write);
5205
5206 /*
5207 * The total entries in the ring buffer is the running counter
5208 * of entries entered into the ring buffer, minus the sum of
5209 * the entries read from the ring buffer and the number of
5210 * entries that were overwritten.
5211 */
5212 static inline unsigned long
rb_num_of_entries(struct ring_buffer_per_cpu * cpu_buffer)5213 rb_num_of_entries(struct ring_buffer_per_cpu *cpu_buffer)
5214 {
5215 return local_read(&cpu_buffer->entries) -
5216 (local_read(&cpu_buffer->overrun) + cpu_buffer->read);
5217 }
5218
rb_per_cpu_empty(struct ring_buffer_per_cpu * cpu_buffer)5219 static bool rb_per_cpu_empty(struct ring_buffer_per_cpu *cpu_buffer)
5220 {
5221 return !rb_num_of_entries(cpu_buffer);
5222 }
5223
5224 /**
5225 * ring_buffer_record_disable - stop all writes into the buffer
5226 * @buffer: The ring buffer to stop writes to.
5227 *
5228 * This prevents all writes to the buffer. Any attempt to write
5229 * to the buffer after this will fail and return NULL.
5230 *
5231 * The caller should call synchronize_rcu() after this.
5232 */
ring_buffer_record_disable(struct trace_buffer * buffer)5233 void ring_buffer_record_disable(struct trace_buffer *buffer)
5234 {
5235 atomic_inc(&buffer->record_disabled);
5236 }
5237 EXPORT_SYMBOL_GPL(ring_buffer_record_disable);
5238
5239 /**
5240 * ring_buffer_record_enable - enable writes to the buffer
5241 * @buffer: The ring buffer to enable writes
5242 *
5243 * Note, multiple disables will need the same number of enables
5244 * to truly enable the writing (much like preempt_disable).
5245 */
ring_buffer_record_enable(struct trace_buffer * buffer)5246 void ring_buffer_record_enable(struct trace_buffer *buffer)
5247 {
5248 atomic_dec(&buffer->record_disabled);
5249 }
5250 EXPORT_SYMBOL_GPL(ring_buffer_record_enable);
5251
5252 /**
5253 * ring_buffer_record_off - stop all writes into the buffer
5254 * @buffer: The ring buffer to stop writes to.
5255 *
5256 * This prevents all writes to the buffer. Any attempt to write
5257 * to the buffer after this will fail and return NULL.
5258 *
5259 * This is different than ring_buffer_record_disable() as
5260 * it works like an on/off switch, where as the disable() version
5261 * must be paired with a enable().
5262 */
ring_buffer_record_off(struct trace_buffer * buffer)5263 void ring_buffer_record_off(struct trace_buffer *buffer)
5264 {
5265 unsigned int rd;
5266 unsigned int new_rd;
5267
5268 rd = atomic_read(&buffer->record_disabled);
5269 do {
5270 new_rd = rd | RB_BUFFER_OFF;
5271 } while (!atomic_try_cmpxchg(&buffer->record_disabled, &rd, new_rd));
5272 }
5273 EXPORT_SYMBOL_GPL(ring_buffer_record_off);
5274
5275 /**
5276 * ring_buffer_record_on - restart writes into the buffer
5277 * @buffer: The ring buffer to start writes to.
5278 *
5279 * This enables all writes to the buffer that was disabled by
5280 * ring_buffer_record_off().
5281 *
5282 * This is different than ring_buffer_record_enable() as
5283 * it works like an on/off switch, where as the enable() version
5284 * must be paired with a disable().
5285 */
ring_buffer_record_on(struct trace_buffer * buffer)5286 void ring_buffer_record_on(struct trace_buffer *buffer)
5287 {
5288 unsigned int rd;
5289 unsigned int new_rd;
5290
5291 rd = atomic_read(&buffer->record_disabled);
5292 do {
5293 new_rd = rd & ~RB_BUFFER_OFF;
5294 } while (!atomic_try_cmpxchg(&buffer->record_disabled, &rd, new_rd));
5295 }
5296 EXPORT_SYMBOL_GPL(ring_buffer_record_on);
5297
5298 /**
5299 * ring_buffer_record_is_on - return true if the ring buffer can write
5300 * @buffer: The ring buffer to see if write is enabled
5301 *
5302 * Returns true if the ring buffer is in a state that it accepts writes.
5303 */
ring_buffer_record_is_on(struct trace_buffer * buffer)5304 bool ring_buffer_record_is_on(struct trace_buffer *buffer)
5305 {
5306 return !atomic_read(&buffer->record_disabled);
5307 }
5308
5309 /**
5310 * ring_buffer_record_is_set_on - return true if the ring buffer is set writable
5311 * @buffer: The ring buffer to see if write is set enabled
5312 *
5313 * Returns true if the ring buffer is set writable by ring_buffer_record_on().
5314 * Note that this does NOT mean it is in a writable state.
5315 *
5316 * It may return true when the ring buffer has been disabled by
5317 * ring_buffer_record_disable(), as that is a temporary disabling of
5318 * the ring buffer.
5319 */
ring_buffer_record_is_set_on(struct trace_buffer * buffer)5320 bool ring_buffer_record_is_set_on(struct trace_buffer *buffer)
5321 {
5322 return !(atomic_read(&buffer->record_disabled) & RB_BUFFER_OFF);
5323 }
5324
5325 /**
5326 * ring_buffer_record_is_on_cpu - return true if the ring buffer can write
5327 * @buffer: The ring buffer to see if write is enabled
5328 * @cpu: The CPU to test if the ring buffer can write too
5329 *
5330 * Returns true if the ring buffer is in a state that it accepts writes
5331 * for a particular CPU.
5332 */
ring_buffer_record_is_on_cpu(struct trace_buffer * buffer,int cpu)5333 bool ring_buffer_record_is_on_cpu(struct trace_buffer *buffer, int cpu)
5334 {
5335 struct ring_buffer_per_cpu *cpu_buffer;
5336
5337 cpu_buffer = buffer->buffers[cpu];
5338
5339 return ring_buffer_record_is_set_on(buffer) &&
5340 !atomic_read(&cpu_buffer->record_disabled);
5341 }
5342
5343 /**
5344 * ring_buffer_record_disable_cpu - stop all writes into the cpu_buffer
5345 * @buffer: The ring buffer to stop writes to.
5346 * @cpu: The CPU buffer to stop
5347 *
5348 * This prevents all writes to the buffer. Any attempt to write
5349 * to the buffer after this will fail and return NULL.
5350 *
5351 * The caller should call synchronize_rcu() after this.
5352 */
ring_buffer_record_disable_cpu(struct trace_buffer * buffer,int cpu)5353 void ring_buffer_record_disable_cpu(struct trace_buffer *buffer, int cpu)
5354 {
5355 struct ring_buffer_per_cpu *cpu_buffer;
5356
5357 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5358 return;
5359
5360 cpu_buffer = buffer->buffers[cpu];
5361 atomic_inc(&cpu_buffer->record_disabled);
5362 }
5363 EXPORT_SYMBOL_GPL(ring_buffer_record_disable_cpu);
5364
5365 /**
5366 * ring_buffer_record_enable_cpu - enable writes to the buffer
5367 * @buffer: The ring buffer to enable writes
5368 * @cpu: The CPU to enable.
5369 *
5370 * Note, multiple disables will need the same number of enables
5371 * to truly enable the writing (much like preempt_disable).
5372 */
ring_buffer_record_enable_cpu(struct trace_buffer * buffer,int cpu)5373 void ring_buffer_record_enable_cpu(struct trace_buffer *buffer, int cpu)
5374 {
5375 struct ring_buffer_per_cpu *cpu_buffer;
5376
5377 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5378 return;
5379
5380 cpu_buffer = buffer->buffers[cpu];
5381 atomic_dec(&cpu_buffer->record_disabled);
5382 }
5383 EXPORT_SYMBOL_GPL(ring_buffer_record_enable_cpu);
5384
5385 /**
5386 * ring_buffer_oldest_event_ts - get the oldest event timestamp from the buffer
5387 * @buffer: The ring buffer
5388 * @cpu: The per CPU buffer to read from.
5389 */
ring_buffer_oldest_event_ts(struct trace_buffer * buffer,int cpu)5390 u64 ring_buffer_oldest_event_ts(struct trace_buffer *buffer, int cpu)
5391 {
5392 unsigned long flags;
5393 struct ring_buffer_per_cpu *cpu_buffer;
5394 struct buffer_page *bpage;
5395 u64 ret = 0;
5396
5397 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5398 return 0;
5399
5400 cpu_buffer = buffer->buffers[cpu];
5401 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
5402 /*
5403 * if the tail is on reader_page, oldest time stamp is on the reader
5404 * page
5405 */
5406 if (cpu_buffer->tail_page == cpu_buffer->reader_page)
5407 bpage = cpu_buffer->reader_page;
5408 else
5409 bpage = rb_set_head_page(cpu_buffer);
5410 if (bpage)
5411 ret = bpage->page->time_stamp;
5412 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
5413
5414 return ret;
5415 }
5416 EXPORT_SYMBOL_GPL(ring_buffer_oldest_event_ts);
5417
5418 /**
5419 * ring_buffer_bytes_cpu - get the number of bytes unconsumed in a cpu buffer
5420 * @buffer: The ring buffer
5421 * @cpu: The per CPU buffer to read from.
5422 */
ring_buffer_bytes_cpu(struct trace_buffer * buffer,int cpu)5423 unsigned long ring_buffer_bytes_cpu(struct trace_buffer *buffer, int cpu)
5424 {
5425 struct ring_buffer_per_cpu *cpu_buffer;
5426 unsigned long ret;
5427
5428 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5429 return 0;
5430
5431 cpu_buffer = buffer->buffers[cpu];
5432 ret = local_read(&cpu_buffer->entries_bytes) - cpu_buffer->read_bytes;
5433
5434 return ret;
5435 }
5436 EXPORT_SYMBOL_GPL(ring_buffer_bytes_cpu);
5437
5438 /**
5439 * ring_buffer_entries_cpu - get the number of entries in a cpu buffer
5440 * @buffer: The ring buffer
5441 * @cpu: The per CPU buffer to get the entries from.
5442 */
ring_buffer_entries_cpu(struct trace_buffer * buffer,int cpu)5443 unsigned long ring_buffer_entries_cpu(struct trace_buffer *buffer, int cpu)
5444 {
5445 struct ring_buffer_per_cpu *cpu_buffer;
5446
5447 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5448 return 0;
5449
5450 cpu_buffer = buffer->buffers[cpu];
5451
5452 return rb_num_of_entries(cpu_buffer);
5453 }
5454 EXPORT_SYMBOL_GPL(ring_buffer_entries_cpu);
5455
5456 /**
5457 * ring_buffer_overrun_cpu - get the number of overruns caused by the ring
5458 * buffer wrapping around (only if RB_FL_OVERWRITE is on).
5459 * @buffer: The ring buffer
5460 * @cpu: The per CPU buffer to get the number of overruns from
5461 */
ring_buffer_overrun_cpu(struct trace_buffer * buffer,int cpu)5462 unsigned long ring_buffer_overrun_cpu(struct trace_buffer *buffer, int cpu)
5463 {
5464 struct ring_buffer_per_cpu *cpu_buffer;
5465 unsigned long ret;
5466
5467 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5468 return 0;
5469
5470 cpu_buffer = buffer->buffers[cpu];
5471 ret = local_read(&cpu_buffer->overrun);
5472
5473 return ret;
5474 }
5475 EXPORT_SYMBOL_GPL(ring_buffer_overrun_cpu);
5476
5477 /**
5478 * ring_buffer_commit_overrun_cpu - get the number of overruns caused by
5479 * commits failing due to the buffer wrapping around while there are uncommitted
5480 * events, such as during an interrupt storm.
5481 * @buffer: The ring buffer
5482 * @cpu: The per CPU buffer to get the number of overruns from
5483 */
5484 unsigned long
ring_buffer_commit_overrun_cpu(struct trace_buffer * buffer,int cpu)5485 ring_buffer_commit_overrun_cpu(struct trace_buffer *buffer, int cpu)
5486 {
5487 struct ring_buffer_per_cpu *cpu_buffer;
5488 unsigned long ret;
5489
5490 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5491 return 0;
5492
5493 cpu_buffer = buffer->buffers[cpu];
5494 ret = local_read(&cpu_buffer->commit_overrun);
5495
5496 return ret;
5497 }
5498 EXPORT_SYMBOL_GPL(ring_buffer_commit_overrun_cpu);
5499
5500 /**
5501 * ring_buffer_dropped_events_cpu - get the number of dropped events caused by
5502 * the ring buffer filling up (only if RB_FL_OVERWRITE is off).
5503 * @buffer: The ring buffer
5504 * @cpu: The per CPU buffer to get the number of overruns from
5505 */
5506 unsigned long
ring_buffer_dropped_events_cpu(struct trace_buffer * buffer,int cpu)5507 ring_buffer_dropped_events_cpu(struct trace_buffer *buffer, int cpu)
5508 {
5509 struct ring_buffer_per_cpu *cpu_buffer;
5510 unsigned long ret;
5511
5512 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5513 return 0;
5514
5515 cpu_buffer = buffer->buffers[cpu];
5516 ret = local_read(&cpu_buffer->dropped_events);
5517
5518 return ret;
5519 }
5520 EXPORT_SYMBOL_GPL(ring_buffer_dropped_events_cpu);
5521
5522 /**
5523 * ring_buffer_read_events_cpu - get the number of events successfully read
5524 * @buffer: The ring buffer
5525 * @cpu: The per CPU buffer to get the number of events read
5526 */
5527 unsigned long
ring_buffer_read_events_cpu(struct trace_buffer * buffer,int cpu)5528 ring_buffer_read_events_cpu(struct trace_buffer *buffer, int cpu)
5529 {
5530 struct ring_buffer_per_cpu *cpu_buffer;
5531
5532 if (!cpumask_test_cpu(cpu, buffer->cpumask))
5533 return 0;
5534
5535 cpu_buffer = buffer->buffers[cpu];
5536 return cpu_buffer->read;
5537 }
5538 EXPORT_SYMBOL_GPL(ring_buffer_read_events_cpu);
5539
5540 /**
5541 * ring_buffer_entries - get the number of entries in a buffer
5542 * @buffer: The ring buffer
5543 *
5544 * Returns the total number of entries in the ring buffer
5545 * (all CPU entries)
5546 */
ring_buffer_entries(struct trace_buffer * buffer)5547 unsigned long ring_buffer_entries(struct trace_buffer *buffer)
5548 {
5549 struct ring_buffer_per_cpu *cpu_buffer;
5550 unsigned long entries = 0;
5551 int cpu;
5552
5553 /* if you care about this being correct, lock the buffer */
5554 for_each_buffer_cpu(buffer, cpu) {
5555 cpu_buffer = buffer->buffers[cpu];
5556 entries += rb_num_of_entries(cpu_buffer);
5557 }
5558
5559 return entries;
5560 }
5561 EXPORT_SYMBOL_GPL(ring_buffer_entries);
5562
5563 /**
5564 * ring_buffer_overruns - get the number of overruns in buffer
5565 * @buffer: The ring buffer
5566 *
5567 * Returns the total number of overruns in the ring buffer
5568 * (all CPU entries)
5569 */
ring_buffer_overruns(struct trace_buffer * buffer)5570 unsigned long ring_buffer_overruns(struct trace_buffer *buffer)
5571 {
5572 struct ring_buffer_per_cpu *cpu_buffer;
5573 unsigned long overruns = 0;
5574 int cpu;
5575
5576 /* if you care about this being correct, lock the buffer */
5577 for_each_buffer_cpu(buffer, cpu) {
5578 cpu_buffer = buffer->buffers[cpu];
5579 overruns += local_read(&cpu_buffer->overrun);
5580 }
5581
5582 return overruns;
5583 }
5584 EXPORT_SYMBOL_GPL(ring_buffer_overruns);
5585
rb_read_remote_meta_page(struct ring_buffer_per_cpu * cpu_buffer)5586 static bool rb_read_remote_meta_page(struct ring_buffer_per_cpu *cpu_buffer)
5587 {
5588 local_set(&cpu_buffer->entries, READ_ONCE(cpu_buffer->meta_page->entries));
5589 local_set(&cpu_buffer->overrun, READ_ONCE(cpu_buffer->meta_page->overrun));
5590 local_set(&cpu_buffer->pages_touched, READ_ONCE(cpu_buffer->meta_page->pages_touched));
5591 local_set(&cpu_buffer->pages_lost, READ_ONCE(cpu_buffer->meta_page->pages_lost));
5592
5593 return rb_num_of_entries(cpu_buffer);
5594 }
5595
rb_update_remote_head(struct ring_buffer_per_cpu * cpu_buffer)5596 static void rb_update_remote_head(struct ring_buffer_per_cpu *cpu_buffer)
5597 {
5598 struct buffer_page *next, *orig;
5599 int retry = 3;
5600
5601 orig = next = cpu_buffer->head_page;
5602 rb_inc_page(&next);
5603
5604 /* Run after the writer */
5605 while (cpu_buffer->head_page->page->time_stamp > next->page->time_stamp) {
5606 rb_inc_page(&next);
5607
5608 rb_list_head_clear(cpu_buffer->head_page->list.prev);
5609 rb_inc_page(&cpu_buffer->head_page);
5610 rb_set_list_to_head(cpu_buffer->head_page->list.prev);
5611
5612 if (cpu_buffer->head_page == orig) {
5613 if (WARN_ON_ONCE(!(--retry)))
5614 return;
5615 }
5616 }
5617
5618 orig = cpu_buffer->commit_page = cpu_buffer->head_page;
5619 retry = 3;
5620
5621 while (cpu_buffer->commit_page->page->time_stamp < next->page->time_stamp) {
5622 rb_inc_page(&next);
5623 rb_inc_page(&cpu_buffer->commit_page);
5624
5625 if (cpu_buffer->commit_page == orig) {
5626 if (WARN_ON_ONCE(!(--retry)))
5627 return;
5628 }
5629 }
5630 }
5631
rb_iter_reset(struct ring_buffer_iter * iter)5632 static void rb_iter_reset(struct ring_buffer_iter *iter)
5633 {
5634 struct ring_buffer_per_cpu *cpu_buffer = iter->cpu_buffer;
5635
5636 if (cpu_buffer->remote) {
5637 rb_read_remote_meta_page(cpu_buffer);
5638 rb_update_remote_head(cpu_buffer);
5639 }
5640
5641 /* Iterator usage is expected to have record disabled */
5642 iter->head_page = cpu_buffer->reader_page;
5643 iter->head = cpu_buffer->reader_page->read;
5644 iter->next_event = iter->head;
5645 iter->missed_events = 0;
5646
5647 iter->cache_reader_page = iter->head_page;
5648 iter->cache_read = cpu_buffer->read;
5649 iter->cache_pages_removed = cpu_buffer->pages_removed;
5650
5651 if (iter->head) {
5652 iter->read_stamp = cpu_buffer->read_stamp;
5653 iter->page_stamp = cpu_buffer->reader_page->page->time_stamp;
5654 } else {
5655 iter->read_stamp = iter->head_page->page->time_stamp;
5656 iter->page_stamp = iter->read_stamp;
5657 }
5658 }
5659
5660 /**
5661 * ring_buffer_iter_reset - reset an iterator
5662 * @iter: The iterator to reset
5663 *
5664 * Resets the iterator, so that it will start from the beginning
5665 * again.
5666 */
ring_buffer_iter_reset(struct ring_buffer_iter * iter)5667 void ring_buffer_iter_reset(struct ring_buffer_iter *iter)
5668 {
5669 struct ring_buffer_per_cpu *cpu_buffer;
5670 unsigned long flags;
5671
5672 if (!iter)
5673 return;
5674
5675 cpu_buffer = iter->cpu_buffer;
5676
5677 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
5678 rb_iter_reset(iter);
5679 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
5680 }
5681 EXPORT_SYMBOL_GPL(ring_buffer_iter_reset);
5682
5683 /**
5684 * ring_buffer_iter_empty - check if an iterator has no more to read
5685 * @iter: The iterator to check
5686 */
ring_buffer_iter_empty(struct ring_buffer_iter * iter)5687 int ring_buffer_iter_empty(struct ring_buffer_iter *iter)
5688 {
5689 struct ring_buffer_per_cpu *cpu_buffer;
5690 struct buffer_page *reader;
5691 struct buffer_page *head_page;
5692 struct buffer_page *commit_page;
5693 struct buffer_page *curr_commit_page;
5694 unsigned commit;
5695 u64 curr_commit_ts;
5696 u64 commit_ts;
5697
5698 cpu_buffer = iter->cpu_buffer;
5699 reader = cpu_buffer->reader_page;
5700 head_page = cpu_buffer->head_page;
5701 commit_page = READ_ONCE(cpu_buffer->commit_page);
5702 commit_ts = commit_page->page->time_stamp;
5703
5704 /*
5705 * When the writer goes across pages, it issues a cmpxchg which
5706 * is a mb(), which will synchronize with the rmb here.
5707 * (see rb_tail_page_update())
5708 */
5709 smp_rmb();
5710 commit = rb_page_size(commit_page);
5711 /* We want to make sure that the commit page doesn't change */
5712 smp_rmb();
5713
5714 /* Make sure commit page didn't change */
5715 curr_commit_page = READ_ONCE(cpu_buffer->commit_page);
5716 curr_commit_ts = READ_ONCE(curr_commit_page->page->time_stamp);
5717
5718 /* If the commit page changed, then there's more data */
5719 if (curr_commit_page != commit_page ||
5720 curr_commit_ts != commit_ts)
5721 return 0;
5722
5723 /* Still racy, as it may return a false positive, but that's OK */
5724 return ((iter->head_page == commit_page && iter->head >= commit) ||
5725 (iter->head_page == reader && commit_page == head_page &&
5726 head_page->read == commit &&
5727 iter->head == rb_page_size(cpu_buffer->reader_page)));
5728 }
5729 EXPORT_SYMBOL_GPL(ring_buffer_iter_empty);
5730
5731 static void
rb_update_read_stamp(struct ring_buffer_per_cpu * cpu_buffer,struct ring_buffer_event * event)5732 rb_update_read_stamp(struct ring_buffer_per_cpu *cpu_buffer,
5733 struct ring_buffer_event *event)
5734 {
5735 u64 delta;
5736
5737 switch (event->type_len) {
5738 case RINGBUF_TYPE_PADDING:
5739 return;
5740
5741 case RINGBUF_TYPE_TIME_EXTEND:
5742 delta = rb_event_time_stamp(event);
5743 cpu_buffer->read_stamp += delta;
5744 return;
5745
5746 case RINGBUF_TYPE_TIME_STAMP:
5747 delta = rb_event_time_stamp(event);
5748 delta = rb_fix_abs_ts(delta, cpu_buffer->read_stamp);
5749 cpu_buffer->read_stamp = delta;
5750 return;
5751
5752 case RINGBUF_TYPE_DATA:
5753 cpu_buffer->read_stamp += event->time_delta;
5754 return;
5755
5756 default:
5757 RB_WARN_ON(cpu_buffer, 1);
5758 }
5759 }
5760
5761 static void
rb_update_iter_read_stamp(struct ring_buffer_iter * iter,struct ring_buffer_event * event)5762 rb_update_iter_read_stamp(struct ring_buffer_iter *iter,
5763 struct ring_buffer_event *event)
5764 {
5765 u64 delta;
5766
5767 switch (event->type_len) {
5768 case RINGBUF_TYPE_PADDING:
5769 return;
5770
5771 case RINGBUF_TYPE_TIME_EXTEND:
5772 delta = rb_event_time_stamp(event);
5773 iter->read_stamp += delta;
5774 return;
5775
5776 case RINGBUF_TYPE_TIME_STAMP:
5777 delta = rb_event_time_stamp(event);
5778 delta = rb_fix_abs_ts(delta, iter->read_stamp);
5779 iter->read_stamp = delta;
5780 return;
5781
5782 case RINGBUF_TYPE_DATA:
5783 iter->read_stamp += event->time_delta;
5784 return;
5785
5786 default:
5787 RB_WARN_ON(iter->cpu_buffer, 1);
5788 }
5789 }
5790
5791 static struct buffer_page *
__rb_get_reader_page_from_remote(struct ring_buffer_per_cpu * cpu_buffer)5792 __rb_get_reader_page_from_remote(struct ring_buffer_per_cpu *cpu_buffer)
5793 {
5794 struct buffer_page *new_reader, *prev_reader, *prev_head, *new_head, *last;
5795
5796 if (!rb_read_remote_meta_page(cpu_buffer))
5797 return NULL;
5798
5799 /* More to read on the reader page */
5800 if (cpu_buffer->reader_page->read < rb_page_size(cpu_buffer->reader_page)) {
5801 if (!cpu_buffer->reader_page->read)
5802 cpu_buffer->read_stamp = cpu_buffer->reader_page->page->time_stamp;
5803 return cpu_buffer->reader_page;
5804 }
5805
5806 prev_reader = cpu_buffer->subbuf_ids[cpu_buffer->meta_page->reader.id];
5807
5808 WARN_ON_ONCE(cpu_buffer->remote->swap_reader_page(cpu_buffer->cpu,
5809 cpu_buffer->remote->priv));
5810 /* nr_pages doesn't include the reader page */
5811 if (WARN_ON_ONCE(cpu_buffer->meta_page->reader.id > cpu_buffer->nr_pages))
5812 return NULL;
5813
5814 new_reader = cpu_buffer->subbuf_ids[cpu_buffer->meta_page->reader.id];
5815
5816 WARN_ON_ONCE(prev_reader == new_reader);
5817
5818 prev_head = new_reader; /* New reader was also the previous head */
5819 new_head = prev_head;
5820 rb_inc_page(&new_head);
5821 last = prev_head;
5822 rb_dec_page(&last);
5823
5824 /* Clear the old HEAD flag */
5825 rb_list_head_clear(cpu_buffer->head_page->list.prev);
5826
5827 prev_reader->list.next = prev_head->list.next;
5828 prev_reader->list.prev = prev_head->list.prev;
5829
5830 /* Swap prev_reader with new_reader */
5831 last->list.next = &prev_reader->list;
5832 new_head->list.prev = &prev_reader->list;
5833
5834 new_reader->list.prev = &new_reader->list;
5835 new_reader->list.next = &new_head->list;
5836
5837 /* Reactivate the HEAD flag */
5838 rb_set_list_to_head(&last->list);
5839
5840 cpu_buffer->head_page = new_head;
5841 cpu_buffer->reader_page = new_reader;
5842 cpu_buffer->reader_page->read = 0;
5843 cpu_buffer->pages = &new_head->list;
5844 cpu_buffer->read_stamp = new_reader->page->time_stamp;
5845 cpu_buffer->lost_events = cpu_buffer->meta_page->reader.lost_events;
5846
5847 return rb_page_size(cpu_buffer->reader_page) ? cpu_buffer->reader_page : NULL;
5848 }
5849
5850 static struct buffer_page *
__rb_get_reader_page(struct ring_buffer_per_cpu * cpu_buffer)5851 __rb_get_reader_page(struct ring_buffer_per_cpu *cpu_buffer)
5852 {
5853 int max_loops = cpu_buffer->ring_meta ? cpu_buffer->nr_pages : 3;
5854 struct buffer_page *reader = NULL;
5855 unsigned long overwrite;
5856 unsigned long flags;
5857 int missed_events = 0;
5858 int nr_loops = 0;
5859 bool ret;
5860
5861 local_irq_save(flags);
5862 arch_spin_lock(&cpu_buffer->lock);
5863
5864 again:
5865 /*
5866 * This should normally only loop twice. But because the
5867 * start of the reader inserts an empty page, it causes a
5868 * case where we will loop three times. There should be no
5869 * reason to loop four times unless the ring buffer is a
5870 * recovered persistent ring buffer. For persistent ring buffers,
5871 * invalid pages are reset during recovery, so there may be more
5872 * than 3 contiguous pages can be empty, but less than nr_pages.
5873 */
5874 if (RB_WARN_ON(cpu_buffer, ++nr_loops > max_loops)) {
5875 reader = NULL;
5876 goto out;
5877 }
5878
5879 reader = cpu_buffer->reader_page;
5880
5881 /* If there's more to read, return this page */
5882 if (cpu_buffer->reader_page->read < rb_page_size(reader))
5883 goto out;
5884
5885 /* Never should we have an index greater than the size */
5886 if (RB_WARN_ON(cpu_buffer,
5887 cpu_buffer->reader_page->read > rb_page_size(reader)))
5888 goto out;
5889
5890 /* check if we caught up to the tail */
5891 reader = NULL;
5892 if (cpu_buffer->commit_page == cpu_buffer->reader_page)
5893 goto out;
5894
5895 /* Don't bother swapping if the ring buffer is empty */
5896 if (rb_num_of_entries(cpu_buffer) == 0)
5897 goto out;
5898
5899 /*
5900 * Reset the reader page to size zero.
5901 */
5902 local_set(&cpu_buffer->reader_page->write, 0);
5903 local_set(&cpu_buffer->reader_page->entries, 0);
5904 rb_init_data_page(cpu_buffer->reader_page->page);
5905 cpu_buffer->reader_page->real_end = 0;
5906
5907 spin:
5908 /*
5909 * Splice the empty reader page into the list around the head.
5910 */
5911 reader = rb_set_head_page(cpu_buffer);
5912 if (!reader)
5913 goto out;
5914 cpu_buffer->reader_page->list.next = rb_list_head(reader->list.next);
5915 cpu_buffer->reader_page->list.prev = reader->list.prev;
5916
5917 /*
5918 * cpu_buffer->pages just needs to point to the buffer, it
5919 * has no specific buffer page to point to. Lets move it out
5920 * of our way so we don't accidentally swap it.
5921 */
5922 cpu_buffer->pages = reader->list.prev;
5923
5924 /* The reader page will be pointing to the new head */
5925 rb_set_list_to_head(&cpu_buffer->reader_page->list);
5926
5927 /*
5928 * We want to make sure we read the overruns after we set up our
5929 * pointers to the next object. The writer side does a
5930 * cmpxchg to cross pages which acts as the mb on the writer
5931 * side. Note, the reader will constantly fail the swap
5932 * while the writer is updating the pointers, so this
5933 * guarantees that the overwrite recorded here is the one we
5934 * want to compare with the last_overrun.
5935 */
5936 smp_mb();
5937 overwrite = local_read(&(cpu_buffer->overrun));
5938
5939 /*
5940 * Here's the tricky part.
5941 *
5942 * We need to move the pointer past the header page.
5943 * But we can only do that if a writer is not currently
5944 * moving it. The page before the header page has the
5945 * flag bit '1' set if it is pointing to the page we want.
5946 * but if the writer is in the process of moving it
5947 * then it will be '2' or already moved '0'.
5948 */
5949
5950 ret = rb_head_page_replace(reader, cpu_buffer->reader_page);
5951
5952 /*
5953 * If we did not convert it, then we must try again.
5954 */
5955 if (!ret)
5956 goto spin;
5957
5958 if (rb_page_commit(reader) & RB_MISSED_EVENTS)
5959 missed_events = -1;
5960
5961 if (cpu_buffer->ring_meta)
5962 rb_update_meta_reader(cpu_buffer, reader);
5963
5964 /*
5965 * Yay! We succeeded in replacing the page.
5966 *
5967 * Now make the new head point back to the reader page.
5968 */
5969 rb_list_head(reader->list.next)->prev = &cpu_buffer->reader_page->list;
5970 rb_inc_page(&cpu_buffer->head_page);
5971
5972 cpu_buffer->cnt++;
5973 local_inc(&cpu_buffer->pages_read);
5974
5975 /* Finally update the reader page to the new head */
5976 cpu_buffer->reader_page = reader;
5977 cpu_buffer->reader_page->read = 0;
5978
5979 if (overwrite != cpu_buffer->last_overrun) {
5980 cpu_buffer->lost_events = overwrite - cpu_buffer->last_overrun;
5981 cpu_buffer->last_overrun = overwrite;
5982 }
5983
5984 goto again;
5985
5986 out:
5987 /* Update the read_stamp on the first event */
5988 if (reader && reader->read == 0)
5989 cpu_buffer->read_stamp = reader->page->time_stamp;
5990
5991 arch_spin_unlock(&cpu_buffer->lock);
5992 local_irq_restore(flags);
5993
5994 /*
5995 * The writer has preempt disable, wait for it. But not forever
5996 * Although, 1 second is pretty much "forever"
5997 */
5998 #define USECS_WAIT 1000000
5999 for (nr_loops = 0; nr_loops < USECS_WAIT; nr_loops++) {
6000 /* If the write is past the end of page, a writer is still updating it */
6001 if (likely(!reader || rb_page_write(reader) <= rb_page_capacity(reader)))
6002 break;
6003
6004 udelay(1);
6005
6006 /* Get the latest version of the reader write value */
6007 smp_rmb();
6008 }
6009
6010 /* The writer is not moving forward? Something is wrong */
6011 if (RB_WARN_ON(cpu_buffer, nr_loops == USECS_WAIT))
6012 reader = NULL;
6013
6014 /*
6015 * Make sure we see any padding after the write update
6016 * (see rb_reset_tail()).
6017 *
6018 * In addition, a writer may be writing on the reader page
6019 * if the page has not been fully filled, so the read barrier
6020 * is also needed to make sure we see the content of what is
6021 * committed by the writer (see rb_set_commit_to_write()).
6022 */
6023 smp_rmb();
6024
6025 if (!cpu_buffer->lost_events)
6026 cpu_buffer->lost_events = missed_events;
6027
6028 return reader;
6029 }
6030
6031 static struct buffer_page *
rb_get_reader_page(struct ring_buffer_per_cpu * cpu_buffer)6032 rb_get_reader_page(struct ring_buffer_per_cpu *cpu_buffer)
6033 {
6034 return cpu_buffer->remote ? __rb_get_reader_page_from_remote(cpu_buffer) :
6035 __rb_get_reader_page(cpu_buffer);
6036 }
6037
rb_advance_reader(struct ring_buffer_per_cpu * cpu_buffer)6038 static void rb_advance_reader(struct ring_buffer_per_cpu *cpu_buffer)
6039 {
6040 struct ring_buffer_event *event;
6041 struct buffer_page *reader;
6042 unsigned length;
6043
6044 reader = rb_get_reader_page(cpu_buffer);
6045
6046 /* This function should not be called when buffer is empty */
6047 if (RB_WARN_ON(cpu_buffer, !reader))
6048 return;
6049
6050 event = rb_reader_event(cpu_buffer);
6051
6052 if (event->type_len <= RINGBUF_TYPE_DATA_TYPE_LEN_MAX)
6053 cpu_buffer->read++;
6054
6055 rb_update_read_stamp(cpu_buffer, event);
6056
6057 length = rb_event_length(event);
6058 cpu_buffer->reader_page->read += length;
6059 cpu_buffer->read_bytes += length;
6060 }
6061
rb_advance_iter(struct ring_buffer_iter * iter)6062 static void rb_advance_iter(struct ring_buffer_iter *iter)
6063 {
6064 struct ring_buffer_per_cpu *cpu_buffer;
6065
6066 cpu_buffer = iter->cpu_buffer;
6067
6068 /* If head == next_event then we need to jump to the next event */
6069 if (iter->head == iter->next_event) {
6070 /* If the event gets overwritten again, there's nothing to do */
6071 if (rb_iter_head_event(iter) == NULL)
6072 return;
6073 }
6074
6075 iter->head = iter->next_event;
6076
6077 /*
6078 * Check if we are at the end of the buffer.
6079 */
6080 if (iter->next_event >= rb_page_size(iter->head_page)) {
6081 /* discarded commits can make the page empty */
6082 if (iter->head_page == cpu_buffer->commit_page)
6083 return;
6084 rb_inc_iter(iter);
6085 return;
6086 }
6087
6088 rb_update_iter_read_stamp(iter, iter->event);
6089 }
6090
rb_lost_events(struct ring_buffer_per_cpu * cpu_buffer)6091 static int rb_lost_events(struct ring_buffer_per_cpu *cpu_buffer)
6092 {
6093 return cpu_buffer->lost_events;
6094 }
6095
6096 static struct ring_buffer_event *
rb_buffer_peek(struct ring_buffer_per_cpu * cpu_buffer,u64 * ts,unsigned long * lost_events)6097 rb_buffer_peek(struct ring_buffer_per_cpu *cpu_buffer, u64 *ts,
6098 unsigned long *lost_events)
6099 {
6100 struct ring_buffer_event *event;
6101 struct buffer_page *reader;
6102 int nr_loops = 0;
6103
6104 if (ts)
6105 *ts = 0;
6106 again:
6107 /*
6108 * We repeat when a time extend is encountered.
6109 * Since the time extend is always attached to a data event,
6110 * we should never loop more than once.
6111 * (We never hit the following condition more than twice).
6112 */
6113 if (RB_WARN_ON(cpu_buffer, ++nr_loops > 2))
6114 return NULL;
6115
6116 reader = rb_get_reader_page(cpu_buffer);
6117 if (!reader)
6118 return NULL;
6119
6120 event = rb_reader_event(cpu_buffer);
6121
6122 switch (event->type_len) {
6123 case RINGBUF_TYPE_PADDING:
6124 if (rb_null_event(event))
6125 RB_WARN_ON(cpu_buffer, 1);
6126 /*
6127 * Because the writer could be discarding every
6128 * event it creates (which would probably be bad)
6129 * if we were to go back to "again" then we may never
6130 * catch up, and will trigger the warn on, or lock
6131 * the box. Return the padding, and we will release
6132 * the current locks, and try again.
6133 */
6134 return event;
6135
6136 case RINGBUF_TYPE_TIME_EXTEND:
6137 /* Internal data, OK to advance */
6138 rb_advance_reader(cpu_buffer);
6139 goto again;
6140
6141 case RINGBUF_TYPE_TIME_STAMP:
6142 if (ts) {
6143 *ts = rb_event_time_stamp(event);
6144 *ts = rb_fix_abs_ts(*ts, reader->page->time_stamp);
6145 ring_buffer_normalize_time_stamp(cpu_buffer->buffer,
6146 cpu_buffer->cpu, ts);
6147 }
6148 /* Internal data, OK to advance */
6149 rb_advance_reader(cpu_buffer);
6150 goto again;
6151
6152 case RINGBUF_TYPE_DATA:
6153 if (ts && !(*ts)) {
6154 *ts = cpu_buffer->read_stamp + event->time_delta;
6155 ring_buffer_normalize_time_stamp(cpu_buffer->buffer,
6156 cpu_buffer->cpu, ts);
6157 }
6158 if (lost_events)
6159 *lost_events = rb_lost_events(cpu_buffer);
6160 return event;
6161
6162 default:
6163 RB_WARN_ON(cpu_buffer, 1);
6164 }
6165
6166 return NULL;
6167 }
6168 EXPORT_SYMBOL_GPL(ring_buffer_peek);
6169
6170 static struct ring_buffer_event *
rb_iter_peek(struct ring_buffer_iter * iter,u64 * ts)6171 rb_iter_peek(struct ring_buffer_iter *iter, u64 *ts)
6172 {
6173 struct trace_buffer *buffer;
6174 struct ring_buffer_per_cpu *cpu_buffer;
6175 struct ring_buffer_event *event;
6176 int nr_loops = 0;
6177 int max_loops;
6178
6179 if (ts)
6180 *ts = 0;
6181
6182 cpu_buffer = iter->cpu_buffer;
6183 buffer = cpu_buffer->buffer;
6184 max_loops = cpu_buffer->ring_meta ? cpu_buffer->nr_pages : 3;
6185
6186 /*
6187 * Check if someone performed a consuming read to the buffer
6188 * or removed some pages from the buffer. In these cases,
6189 * iterator was invalidated and we need to reset it.
6190 */
6191 if (unlikely(iter->cache_read != cpu_buffer->read ||
6192 iter->cache_reader_page != cpu_buffer->reader_page ||
6193 iter->cache_pages_removed != cpu_buffer->pages_removed))
6194 rb_iter_reset(iter);
6195
6196 again:
6197 if (ring_buffer_iter_empty(iter))
6198 return NULL;
6199
6200 /*
6201 * As the writer can mess with what the iterator is trying
6202 * to read, just give up if we fail to get an event after
6203 * three tries. The iterator is not as reliable when reading
6204 * the ring buffer with an active write as the consumer is.
6205 * Do not warn if the three failures is reached.
6206 */
6207 if (++nr_loops > max_loops)
6208 return NULL;
6209
6210 if (rb_per_cpu_empty(cpu_buffer))
6211 return NULL;
6212
6213 if (iter->head >= rb_page_size(iter->head_page)) {
6214 rb_inc_iter(iter);
6215 goto again;
6216 }
6217
6218 event = rb_iter_head_event(iter);
6219 if (!event)
6220 goto again;
6221
6222 switch (event->type_len) {
6223 case RINGBUF_TYPE_PADDING:
6224 if (rb_null_event(event)) {
6225 rb_inc_iter(iter);
6226 goto again;
6227 }
6228 rb_advance_iter(iter);
6229 return event;
6230
6231 case RINGBUF_TYPE_TIME_EXTEND:
6232 /* Internal data, OK to advance */
6233 rb_advance_iter(iter);
6234 goto again;
6235
6236 case RINGBUF_TYPE_TIME_STAMP:
6237 if (ts) {
6238 *ts = rb_event_time_stamp(event);
6239 *ts = rb_fix_abs_ts(*ts, iter->head_page->page->time_stamp);
6240 ring_buffer_normalize_time_stamp(cpu_buffer->buffer,
6241 cpu_buffer->cpu, ts);
6242 }
6243 /* Internal data, OK to advance */
6244 rb_advance_iter(iter);
6245 goto again;
6246
6247 case RINGBUF_TYPE_DATA:
6248 if (ts && !(*ts)) {
6249 *ts = iter->read_stamp + event->time_delta;
6250 ring_buffer_normalize_time_stamp(buffer,
6251 cpu_buffer->cpu, ts);
6252 }
6253 return event;
6254
6255 default:
6256 RB_WARN_ON(cpu_buffer, 1);
6257 }
6258
6259 return NULL;
6260 }
6261 EXPORT_SYMBOL_GPL(ring_buffer_iter_peek);
6262
rb_reader_lock(struct ring_buffer_per_cpu * cpu_buffer)6263 static inline bool rb_reader_lock(struct ring_buffer_per_cpu *cpu_buffer)
6264 {
6265 if (likely(!in_nmi())) {
6266 raw_spin_lock(&cpu_buffer->reader_lock);
6267 return true;
6268 }
6269
6270 /*
6271 * If an NMI die dumps out the content of the ring buffer
6272 * trylock must be used to prevent a deadlock if the NMI
6273 * preempted a task that holds the ring buffer locks. If
6274 * we get the lock then all is fine, if not, then continue
6275 * to do the read, but this can corrupt the ring buffer,
6276 * so it must be permanently disabled from future writes.
6277 * Reading from NMI is a oneshot deal.
6278 */
6279 if (raw_spin_trylock(&cpu_buffer->reader_lock))
6280 return true;
6281
6282 /* Continue without locking, but disable the ring buffer */
6283 atomic_inc(&cpu_buffer->record_disabled);
6284 return false;
6285 }
6286
6287 static inline void
rb_reader_unlock(struct ring_buffer_per_cpu * cpu_buffer,bool locked)6288 rb_reader_unlock(struct ring_buffer_per_cpu *cpu_buffer, bool locked)
6289 {
6290 if (likely(locked))
6291 raw_spin_unlock(&cpu_buffer->reader_lock);
6292 }
6293
6294 /**
6295 * ring_buffer_peek - peek at the next event to be read
6296 * @buffer: The ring buffer to read
6297 * @cpu: The cpu to peak at
6298 * @ts: The timestamp counter of this event.
6299 * @lost_events: a variable to store if events were lost (may be NULL)
6300 *
6301 * This will return the event that will be read next, but does
6302 * not consume the data.
6303 */
6304 struct ring_buffer_event *
ring_buffer_peek(struct trace_buffer * buffer,int cpu,u64 * ts,unsigned long * lost_events)6305 ring_buffer_peek(struct trace_buffer *buffer, int cpu, u64 *ts,
6306 unsigned long *lost_events)
6307 {
6308 struct ring_buffer_per_cpu *cpu_buffer = buffer->buffers[cpu];
6309 struct ring_buffer_event *event;
6310 unsigned long flags;
6311 bool dolock;
6312
6313 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6314 return NULL;
6315
6316 again:
6317 local_irq_save(flags);
6318 dolock = rb_reader_lock(cpu_buffer);
6319 event = rb_buffer_peek(cpu_buffer, ts, lost_events);
6320 if (event && event->type_len == RINGBUF_TYPE_PADDING)
6321 rb_advance_reader(cpu_buffer);
6322 rb_reader_unlock(cpu_buffer, dolock);
6323 local_irq_restore(flags);
6324
6325 if (event && event->type_len == RINGBUF_TYPE_PADDING)
6326 goto again;
6327
6328 return event;
6329 }
6330
6331 /** ring_buffer_iter_dropped - report if there are dropped events
6332 * @iter: The ring buffer iterator
6333 *
6334 * Returns true if there was dropped events since the last peek.
6335 */
ring_buffer_iter_dropped(struct ring_buffer_iter * iter)6336 bool ring_buffer_iter_dropped(struct ring_buffer_iter *iter)
6337 {
6338 return iter->missed_events != 0;
6339 }
6340 EXPORT_SYMBOL_GPL(ring_buffer_iter_dropped);
6341
6342 /**
6343 * ring_buffer_iter_peek - peek at the next event to be read
6344 * @iter: The ring buffer iterator
6345 * @ts: The timestamp counter of this event.
6346 *
6347 * This will return the event that will be read next, but does
6348 * not increment the iterator.
6349 */
6350 struct ring_buffer_event *
ring_buffer_iter_peek(struct ring_buffer_iter * iter,u64 * ts)6351 ring_buffer_iter_peek(struct ring_buffer_iter *iter, u64 *ts)
6352 {
6353 struct ring_buffer_per_cpu *cpu_buffer = iter->cpu_buffer;
6354 struct ring_buffer_event *event;
6355 unsigned long flags;
6356
6357 again:
6358 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
6359 event = rb_iter_peek(iter, ts);
6360 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
6361
6362 if (event && event->type_len == RINGBUF_TYPE_PADDING)
6363 goto again;
6364
6365 return event;
6366 }
6367
6368 /**
6369 * ring_buffer_consume - return an event and consume it
6370 * @buffer: The ring buffer to get the next event from
6371 * @cpu: the cpu to read the buffer from
6372 * @ts: a variable to store the timestamp (may be NULL)
6373 * @lost_events: a variable to store if events were lost (may be NULL)
6374 *
6375 * Returns the next event in the ring buffer, and that event is consumed.
6376 * Meaning, that sequential reads will keep returning a different event,
6377 * and eventually empty the ring buffer if the producer is slower.
6378 */
6379 struct ring_buffer_event *
ring_buffer_consume(struct trace_buffer * buffer,int cpu,u64 * ts,unsigned long * lost_events)6380 ring_buffer_consume(struct trace_buffer *buffer, int cpu, u64 *ts,
6381 unsigned long *lost_events)
6382 {
6383 struct ring_buffer_per_cpu *cpu_buffer;
6384 struct ring_buffer_event *event = NULL;
6385 unsigned long flags;
6386 bool dolock;
6387
6388 again:
6389 /* might be called in atomic */
6390 preempt_disable();
6391
6392 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6393 goto out;
6394
6395 cpu_buffer = buffer->buffers[cpu];
6396 local_irq_save(flags);
6397 dolock = rb_reader_lock(cpu_buffer);
6398
6399 event = rb_buffer_peek(cpu_buffer, ts, lost_events);
6400 if (event) {
6401 cpu_buffer->lost_events = 0;
6402 rb_advance_reader(cpu_buffer);
6403 }
6404
6405 rb_reader_unlock(cpu_buffer, dolock);
6406 local_irq_restore(flags);
6407
6408 out:
6409 preempt_enable();
6410
6411 if (event && event->type_len == RINGBUF_TYPE_PADDING)
6412 goto again;
6413
6414 return event;
6415 }
6416 EXPORT_SYMBOL_GPL(ring_buffer_consume);
6417
6418 /**
6419 * ring_buffer_read_start - start a non consuming read of the buffer
6420 * @buffer: The ring buffer to read from
6421 * @cpu: The cpu buffer to iterate over
6422 * @flags: gfp flags to use for memory allocation
6423 *
6424 * This creates an iterator to allow non-consuming iteration through
6425 * the buffer. If the buffer is disabled for writing, it will produce
6426 * the same information each time, but if the buffer is still writing
6427 * then the first hit of a write will cause the iteration to stop.
6428 *
6429 * Must be paired with ring_buffer_read_finish.
6430 */
6431 struct ring_buffer_iter *
ring_buffer_read_start(struct trace_buffer * buffer,int cpu,gfp_t flags)6432 ring_buffer_read_start(struct trace_buffer *buffer, int cpu, gfp_t flags)
6433 {
6434 struct ring_buffer_iter *iter __free(kfree) = kzalloc_obj(*iter, flags);
6435 struct ring_buffer_per_cpu *cpu_buffer;
6436
6437 if (!iter)
6438 return NULL;
6439
6440 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6441 return NULL;
6442
6443 cpu_buffer = buffer->buffers[cpu];
6444
6445 /*
6446 * Only KDB is using GFP_ATOMIC, for the others, lock the buffer to
6447 * prevent concurrent resizing.
6448 */
6449 if (gfpflags_allow_blocking(flags))
6450 mutex_lock(&buffer->mutex);
6451
6452 atomic_inc(&cpu_buffer->resize_disabled);
6453
6454 if (gfpflags_allow_blocking(flags))
6455 mutex_unlock(&buffer->mutex);
6456
6457 /* Holds the entire event: data and meta data. */
6458 iter->event_size = rb_page_capacity(READ_ONCE(cpu_buffer->reader_page));
6459 iter->event = kmalloc(iter->event_size, flags);
6460 if (!iter->event) {
6461 atomic_dec(&cpu_buffer->resize_disabled);
6462 return NULL;
6463 }
6464 iter->cpu_buffer = cpu_buffer;
6465
6466 guard(raw_spinlock_irqsave)(&cpu_buffer->reader_lock);
6467 arch_spin_lock(&cpu_buffer->lock);
6468 rb_iter_reset(iter);
6469 arch_spin_unlock(&cpu_buffer->lock);
6470
6471 return_ptr(iter);
6472 }
6473 EXPORT_SYMBOL_GPL(ring_buffer_read_start);
6474
6475 /**
6476 * ring_buffer_read_finish - finish reading the iterator of the buffer
6477 * @iter: The iterator retrieved by ring_buffer_start
6478 *
6479 * This re-enables resizing of the buffer, and frees the iterator.
6480 */
6481 void
ring_buffer_read_finish(struct ring_buffer_iter * iter)6482 ring_buffer_read_finish(struct ring_buffer_iter *iter)
6483 {
6484 struct ring_buffer_per_cpu *cpu_buffer = iter->cpu_buffer;
6485
6486 /* Use this opportunity to check the integrity of the ring buffer. */
6487 rb_check_pages(cpu_buffer);
6488
6489 atomic_dec(&cpu_buffer->resize_disabled);
6490 kfree(iter->event);
6491 kfree(iter);
6492 }
6493 EXPORT_SYMBOL_GPL(ring_buffer_read_finish);
6494
6495 /**
6496 * ring_buffer_iter_advance - advance the iterator to the next location
6497 * @iter: The ring buffer iterator
6498 *
6499 * Move the location of the iterator such that the next read will
6500 * be the next location of the iterator.
6501 */
ring_buffer_iter_advance(struct ring_buffer_iter * iter)6502 void ring_buffer_iter_advance(struct ring_buffer_iter *iter)
6503 {
6504 struct ring_buffer_per_cpu *cpu_buffer = iter->cpu_buffer;
6505 unsigned long flags;
6506
6507 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
6508 iter->missed_events = 0;
6509 rb_advance_iter(iter);
6510
6511 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
6512 }
6513 EXPORT_SYMBOL_GPL(ring_buffer_iter_advance);
6514
6515 /**
6516 * ring_buffer_size - return the size of the ring buffer (in bytes)
6517 * @buffer: The ring buffer.
6518 * @cpu: The CPU to get ring buffer size from.
6519 */
ring_buffer_size(struct trace_buffer * buffer,int cpu)6520 unsigned long ring_buffer_size(struct trace_buffer *buffer, int cpu)
6521 {
6522 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6523 return 0;
6524
6525 return rb_subbuf_capacity(buffer) * buffer->buffers[cpu]->nr_pages;
6526 }
6527 EXPORT_SYMBOL_GPL(ring_buffer_size);
6528
6529 /**
6530 * ring_buffer_max_event_size - return the max data size of an event
6531 * @buffer: The ring buffer.
6532 *
6533 * Returns the maximum size an event can be.
6534 */
ring_buffer_max_event_size(struct trace_buffer * buffer)6535 unsigned long ring_buffer_max_event_size(struct trace_buffer *buffer)
6536 {
6537 /* If abs timestamp is requested, events have a timestamp too */
6538 if (ring_buffer_time_stamp_abs(buffer))
6539 return rb_subbuf_max_data_size(buffer) - RB_LEN_TIME_EXTEND;
6540
6541 return rb_subbuf_max_data_size(buffer);
6542 }
6543 EXPORT_SYMBOL_GPL(ring_buffer_max_event_size);
6544
rb_clear_buffer_page(struct buffer_page * page)6545 static void rb_clear_buffer_page(struct buffer_page *page)
6546 {
6547 local_set(&page->write, 0);
6548 local_set(&page->entries, 0);
6549 rb_init_data_page(page->page);
6550 page->read = 0;
6551 }
6552
6553 /*
6554 * When the buffer is memory mapped to user space, each sub buffer
6555 * has a unique id that is used by the meta data to tell the user
6556 * where the current reader page is.
6557 *
6558 * For a normal allocated ring buffer, the id is saved in the buffer page
6559 * id field, and updated via this function.
6560 *
6561 * But for a fixed memory mapped buffer, the id is already assigned for
6562 * fixed memory ordering in the memory layout and can not be used. Instead
6563 * the index of where the page lies in the memory layout is used.
6564 *
6565 * For the normal pages, set the buffer page id with the passed in @id
6566 * value and return that.
6567 *
6568 * For fixed memory mapped pages, get the page index in the memory layout
6569 * and return that as the id.
6570 */
rb_page_id(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page * bpage,int id)6571 static int rb_page_id(struct ring_buffer_per_cpu *cpu_buffer,
6572 struct buffer_page *bpage, int id)
6573 {
6574 /*
6575 * For boot buffers, the id is the index,
6576 * otherwise, set the buffer page with this id
6577 */
6578 if (cpu_buffer->ring_meta)
6579 id = rb_meta_subbuf_idx(cpu_buffer->ring_meta, bpage->page);
6580 else
6581 bpage->id = id;
6582
6583 return id;
6584 }
6585
rb_update_meta_page(struct ring_buffer_per_cpu * cpu_buffer)6586 static void rb_update_meta_page(struct ring_buffer_per_cpu *cpu_buffer)
6587 {
6588 struct trace_buffer_meta *meta = cpu_buffer->meta_page;
6589
6590 if (!meta)
6591 return;
6592
6593 meta->reader.read = cpu_buffer->reader_page->read;
6594 meta->reader.id = rb_page_id(cpu_buffer, cpu_buffer->reader_page,
6595 cpu_buffer->reader_page->id);
6596
6597 meta->reader.lost_events = cpu_buffer->lost_events;
6598
6599 meta->entries = local_read(&cpu_buffer->entries);
6600 meta->overrun = local_read(&cpu_buffer->overrun);
6601 meta->read = cpu_buffer->read;
6602 meta->pages_lost = local_read(&cpu_buffer->pages_lost);
6603 meta->pages_touched = local_read(&cpu_buffer->pages_touched);
6604
6605 /* Some archs do not have data cache coherency between kernel and user-space */
6606 flush_kernel_vmap_range(cpu_buffer->meta_page, PAGE_SIZE);
6607 }
6608
6609 static void
rb_reset_cpu(struct ring_buffer_per_cpu * cpu_buffer)6610 rb_reset_cpu(struct ring_buffer_per_cpu *cpu_buffer)
6611 {
6612 struct buffer_page *page;
6613
6614 if (cpu_buffer->remote) {
6615 if (!cpu_buffer->remote->reset)
6616 return;
6617
6618 cpu_buffer->remote->reset(cpu_buffer->cpu, cpu_buffer->remote->priv);
6619 rb_read_remote_meta_page(cpu_buffer);
6620
6621 /* Read related values, not covered by the meta-page */
6622 local_set(&cpu_buffer->pages_read, 0);
6623 cpu_buffer->read = 0;
6624 cpu_buffer->read_bytes = 0;
6625 cpu_buffer->last_overrun = 0;
6626 cpu_buffer->reader_page->read = 0;
6627
6628 return;
6629 }
6630
6631 rb_head_page_deactivate(cpu_buffer);
6632
6633 cpu_buffer->head_page
6634 = list_entry(cpu_buffer->pages, struct buffer_page, list);
6635 rb_clear_buffer_page(cpu_buffer->head_page);
6636 list_for_each_entry(page, cpu_buffer->pages, list) {
6637 rb_clear_buffer_page(page);
6638 }
6639
6640 cpu_buffer->tail_page = cpu_buffer->head_page;
6641 cpu_buffer->commit_page = cpu_buffer->head_page;
6642
6643 INIT_LIST_HEAD(&cpu_buffer->reader_page->list);
6644 INIT_LIST_HEAD(&cpu_buffer->new_pages);
6645 rb_clear_buffer_page(cpu_buffer->reader_page);
6646
6647 local_set(&cpu_buffer->entries_bytes, 0);
6648 local_set(&cpu_buffer->overrun, 0);
6649 local_set(&cpu_buffer->commit_overrun, 0);
6650 local_set(&cpu_buffer->dropped_events, 0);
6651 local_set(&cpu_buffer->entries, 0);
6652 local_set(&cpu_buffer->committing, 0);
6653 local_set(&cpu_buffer->commits, 0);
6654 local_set(&cpu_buffer->pages_touched, 0);
6655 local_set(&cpu_buffer->pages_lost, 0);
6656 local_set(&cpu_buffer->pages_read, 0);
6657 cpu_buffer->last_pages_touch = 0;
6658 cpu_buffer->shortest_full = 0;
6659 cpu_buffer->read = 0;
6660 cpu_buffer->read_bytes = 0;
6661
6662 rb_time_set(&cpu_buffer->write_stamp, 0);
6663 rb_time_set(&cpu_buffer->before_stamp, 0);
6664
6665 memset(cpu_buffer->event_stamp, 0, sizeof(cpu_buffer->event_stamp));
6666
6667 cpu_buffer->lost_events = 0;
6668 cpu_buffer->last_overrun = 0;
6669
6670 rb_head_page_activate(cpu_buffer);
6671 cpu_buffer->pages_removed = 0;
6672
6673 rb_update_meta_page(cpu_buffer);
6674 if (cpu_buffer->ring_meta) {
6675 struct ring_buffer_cpu_meta *meta = cpu_buffer->ring_meta;
6676
6677 meta->commit_buffer = meta->head_buffer;
6678 }
6679 }
6680
6681 /* Must have disabled the cpu buffer then done a synchronize_rcu */
reset_disabled_cpu_buffer(struct ring_buffer_per_cpu * cpu_buffer)6682 static void reset_disabled_cpu_buffer(struct ring_buffer_per_cpu *cpu_buffer)
6683 {
6684 guard(raw_spinlock_irqsave)(&cpu_buffer->reader_lock);
6685
6686 if (RB_WARN_ON(cpu_buffer, local_read(&cpu_buffer->committing)))
6687 return;
6688
6689 arch_spin_lock(&cpu_buffer->lock);
6690
6691 rb_reset_cpu(cpu_buffer);
6692
6693 arch_spin_unlock(&cpu_buffer->lock);
6694 }
6695
6696 /**
6697 * ring_buffer_reset_cpu - reset a ring buffer per CPU buffer
6698 * @buffer: The ring buffer to reset a per cpu buffer of
6699 * @cpu: The CPU buffer to be reset
6700 */
ring_buffer_reset_cpu(struct trace_buffer * buffer,int cpu)6701 void ring_buffer_reset_cpu(struct trace_buffer *buffer, int cpu)
6702 {
6703 struct ring_buffer_per_cpu *cpu_buffer = buffer->buffers[cpu];
6704
6705 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6706 return;
6707
6708 /* prevent another thread from changing buffer sizes */
6709 mutex_lock(&buffer->mutex);
6710
6711 atomic_inc(&cpu_buffer->resize_disabled);
6712 atomic_inc(&cpu_buffer->record_disabled);
6713
6714 /* Make sure all commits have finished */
6715 synchronize_rcu();
6716
6717 reset_disabled_cpu_buffer(cpu_buffer);
6718
6719 atomic_dec(&cpu_buffer->record_disabled);
6720 atomic_dec(&cpu_buffer->resize_disabled);
6721
6722 mutex_unlock(&buffer->mutex);
6723 }
6724 EXPORT_SYMBOL_GPL(ring_buffer_reset_cpu);
6725
6726 /* Flag to ensure proper resetting of atomic variables */
6727 #define RESET_BIT (1 << 30)
6728
6729 /**
6730 * ring_buffer_reset_online_cpus - reset a ring buffer per CPU buffer
6731 * @buffer: The ring buffer to reset a per cpu buffer of
6732 */
ring_buffer_reset_online_cpus(struct trace_buffer * buffer)6733 void ring_buffer_reset_online_cpus(struct trace_buffer *buffer)
6734 {
6735 struct ring_buffer_per_cpu *cpu_buffer;
6736 int cpu;
6737
6738 /* prevent another thread from changing buffer sizes */
6739 mutex_lock(&buffer->mutex);
6740
6741 for_each_online_buffer_cpu(buffer, cpu) {
6742 cpu_buffer = buffer->buffers[cpu];
6743
6744 atomic_add(RESET_BIT, &cpu_buffer->resize_disabled);
6745 atomic_inc(&cpu_buffer->record_disabled);
6746 }
6747
6748 /* Make sure all commits have finished */
6749 synchronize_rcu();
6750
6751 for_each_buffer_cpu(buffer, cpu) {
6752 cpu_buffer = buffer->buffers[cpu];
6753
6754 /*
6755 * If a CPU came online during the synchronize_rcu(), then
6756 * ignore it.
6757 */
6758 if (!(atomic_read(&cpu_buffer->resize_disabled) & RESET_BIT))
6759 continue;
6760
6761 reset_disabled_cpu_buffer(cpu_buffer);
6762
6763 atomic_dec(&cpu_buffer->record_disabled);
6764 atomic_sub(RESET_BIT, &cpu_buffer->resize_disabled);
6765 }
6766
6767 mutex_unlock(&buffer->mutex);
6768 }
6769
6770 /**
6771 * ring_buffer_reset - reset a ring buffer
6772 * @buffer: The ring buffer to reset all cpu buffers
6773 */
ring_buffer_reset(struct trace_buffer * buffer)6774 void ring_buffer_reset(struct trace_buffer *buffer)
6775 {
6776 struct ring_buffer_per_cpu *cpu_buffer;
6777 int cpu;
6778
6779 /* prevent another thread from changing buffer sizes */
6780 mutex_lock(&buffer->mutex);
6781
6782 for_each_buffer_cpu(buffer, cpu) {
6783 cpu_buffer = buffer->buffers[cpu];
6784
6785 atomic_inc(&cpu_buffer->resize_disabled);
6786 atomic_inc(&cpu_buffer->record_disabled);
6787 }
6788
6789 /* Make sure all commits have finished */
6790 synchronize_rcu();
6791
6792 for_each_buffer_cpu(buffer, cpu) {
6793 cpu_buffer = buffer->buffers[cpu];
6794
6795 reset_disabled_cpu_buffer(cpu_buffer);
6796
6797 atomic_dec(&cpu_buffer->record_disabled);
6798 atomic_dec(&cpu_buffer->resize_disabled);
6799 }
6800
6801 mutex_unlock(&buffer->mutex);
6802 }
6803 EXPORT_SYMBOL_GPL(ring_buffer_reset);
6804
6805 /**
6806 * ring_buffer_empty - is the ring buffer empty?
6807 * @buffer: The ring buffer to test
6808 */
ring_buffer_empty(struct trace_buffer * buffer)6809 bool ring_buffer_empty(struct trace_buffer *buffer)
6810 {
6811 struct ring_buffer_per_cpu *cpu_buffer;
6812 unsigned long flags;
6813 bool dolock;
6814 bool ret;
6815 int cpu;
6816
6817 /* yes this is racy, but if you don't like the race, lock the buffer */
6818 for_each_buffer_cpu(buffer, cpu) {
6819 cpu_buffer = buffer->buffers[cpu];
6820 local_irq_save(flags);
6821 dolock = rb_reader_lock(cpu_buffer);
6822 ret = rb_per_cpu_empty(cpu_buffer);
6823 rb_reader_unlock(cpu_buffer, dolock);
6824 local_irq_restore(flags);
6825
6826 if (!ret)
6827 return false;
6828 }
6829
6830 return true;
6831 }
6832 EXPORT_SYMBOL_GPL(ring_buffer_empty);
6833
6834 /**
6835 * ring_buffer_empty_cpu - is a cpu buffer of a ring buffer empty?
6836 * @buffer: The ring buffer
6837 * @cpu: The CPU buffer to test
6838 */
ring_buffer_empty_cpu(struct trace_buffer * buffer,int cpu)6839 bool ring_buffer_empty_cpu(struct trace_buffer *buffer, int cpu)
6840 {
6841 struct ring_buffer_per_cpu *cpu_buffer;
6842 unsigned long flags;
6843 bool dolock;
6844 bool ret;
6845
6846 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6847 return true;
6848
6849 cpu_buffer = buffer->buffers[cpu];
6850 local_irq_save(flags);
6851 dolock = rb_reader_lock(cpu_buffer);
6852 ret = rb_per_cpu_empty(cpu_buffer);
6853 rb_reader_unlock(cpu_buffer, dolock);
6854 local_irq_restore(flags);
6855
6856 return ret;
6857 }
6858 EXPORT_SYMBOL_GPL(ring_buffer_empty_cpu);
6859
ring_buffer_poll_remote(struct trace_buffer * buffer,int cpu)6860 int ring_buffer_poll_remote(struct trace_buffer *buffer, int cpu)
6861 {
6862 struct ring_buffer_per_cpu *cpu_buffer;
6863
6864 if (cpu != RING_BUFFER_ALL_CPUS) {
6865 if (!cpumask_test_cpu(cpu, buffer->cpumask))
6866 return -EINVAL;
6867
6868 cpu_buffer = buffer->buffers[cpu];
6869
6870 guard(raw_spinlock)(&cpu_buffer->reader_lock);
6871 if (rb_read_remote_meta_page(cpu_buffer))
6872 rb_wakeups(buffer, cpu_buffer);
6873
6874 return 0;
6875 }
6876
6877 guard(cpus_read_lock)();
6878
6879 /*
6880 * Make sure all the ring buffers are up to date before we start reading
6881 * them.
6882 */
6883 for_each_buffer_cpu(buffer, cpu) {
6884 cpu_buffer = buffer->buffers[cpu];
6885
6886 guard(raw_spinlock)(&cpu_buffer->reader_lock);
6887 rb_read_remote_meta_page(cpu_buffer);
6888 }
6889
6890 for_each_buffer_cpu(buffer, cpu) {
6891 cpu_buffer = buffer->buffers[cpu];
6892
6893 if (rb_num_of_entries(cpu_buffer))
6894 rb_wakeups(buffer, cpu_buffer);
6895 }
6896
6897 return 0;
6898 }
6899
6900 #ifdef CONFIG_RING_BUFFER_ALLOW_SWAP
6901 /**
6902 * ring_buffer_swap_cpu - swap a CPU buffer between two ring buffers
6903 * @buffer_a: One buffer to swap with
6904 * @buffer_b: The other buffer to swap with
6905 * @cpu: the CPU of the buffers to swap
6906 *
6907 * This function is useful for tracers that want to take a "snapshot"
6908 * of a CPU buffer and has another back up buffer lying around.
6909 * it is expected that the tracer handles the cpu buffer not being
6910 * used at the moment.
6911 */
ring_buffer_swap_cpu(struct trace_buffer * buffer_a,struct trace_buffer * buffer_b,int cpu)6912 int ring_buffer_swap_cpu(struct trace_buffer *buffer_a,
6913 struct trace_buffer *buffer_b, int cpu)
6914 {
6915 struct ring_buffer_per_cpu *cpu_buffer_a;
6916 struct ring_buffer_per_cpu *cpu_buffer_b;
6917 int ret = -EBUSY;
6918
6919 if (!cpumask_test_cpu(cpu, buffer_a->cpumask) ||
6920 !cpumask_test_cpu(cpu, buffer_b->cpumask))
6921 return -EINVAL;
6922
6923 cpu_buffer_a = buffer_a->buffers[cpu];
6924 cpu_buffer_b = buffer_b->buffers[cpu];
6925
6926 /* It's up to the callers to not try to swap static buffers */
6927 if (WARN_ON_ONCE(rb_is_static(cpu_buffer_a) || rb_is_static(cpu_buffer_b)))
6928 return -EBUSY;
6929
6930 /* At least make sure the two buffers are somewhat the same */
6931 if (cpu_buffer_a->nr_pages != cpu_buffer_b->nr_pages)
6932 return -EINVAL;
6933
6934 if (buffer_a->subbuf_order != buffer_b->subbuf_order)
6935 return -EINVAL;
6936
6937 if (atomic_read(&buffer_a->record_disabled))
6938 return -EAGAIN;
6939
6940 if (atomic_read(&buffer_b->record_disabled))
6941 return -EAGAIN;
6942
6943 if (atomic_read(&cpu_buffer_a->record_disabled))
6944 return -EAGAIN;
6945
6946 if (atomic_read(&cpu_buffer_b->record_disabled))
6947 return -EAGAIN;
6948
6949 /*
6950 * We can't do a synchronize_rcu here because this
6951 * function can be called in atomic context.
6952 * Normally this will be called from the same CPU as cpu.
6953 * If not it's up to the caller to protect this.
6954 */
6955 atomic_inc(&cpu_buffer_a->record_disabled);
6956 atomic_inc(&cpu_buffer_b->record_disabled);
6957
6958 /* Do not swap if either buffer is in the process of writing */
6959 if (cpu_buffer_a->current_context)
6960 goto out_dec;
6961 if (cpu_buffer_b->current_context)
6962 goto out_dec;
6963
6964 /*
6965 * When resize is in progress, we cannot swap it because
6966 * it will mess the state of the cpu buffer.
6967 */
6968 if (atomic_read(&buffer_a->resizing))
6969 goto out_dec;
6970 if (atomic_read(&buffer_b->resizing))
6971 goto out_dec;
6972
6973 buffer_a->buffers[cpu] = cpu_buffer_b;
6974 buffer_b->buffers[cpu] = cpu_buffer_a;
6975
6976 cpu_buffer_b->buffer = buffer_a;
6977 cpu_buffer_a->buffer = buffer_b;
6978
6979 ret = 0;
6980
6981 out_dec:
6982 atomic_dec(&cpu_buffer_a->record_disabled);
6983 atomic_dec(&cpu_buffer_b->record_disabled);
6984 return ret;
6985 }
6986 EXPORT_SYMBOL_GPL(ring_buffer_swap_cpu);
6987 #endif /* CONFIG_RING_BUFFER_ALLOW_SWAP */
6988
6989 /**
6990 * ring_buffer_alloc_read_page - allocate a page to read from buffer
6991 * @buffer: the buffer to allocate for.
6992 * @cpu: the cpu buffer to allocate.
6993 *
6994 * This function is used in conjunction with ring_buffer_read_page.
6995 * When reading a full page from the ring buffer, these functions
6996 * can be used to speed up the process. The calling function should
6997 * allocate a few pages first with this function. Then when it
6998 * needs to get pages from the ring buffer, it passes the result
6999 * of this function into ring_buffer_read_page, which will swap
7000 * the page that was allocated, with the read page of the buffer.
7001 *
7002 * Returns:
7003 * The page allocated, or ERR_PTR
7004 */
7005 struct buffer_data_read_page *
ring_buffer_alloc_read_page(struct trace_buffer * buffer,int cpu)7006 ring_buffer_alloc_read_page(struct trace_buffer *buffer, int cpu)
7007 {
7008 struct ring_buffer_per_cpu *cpu_buffer;
7009 struct buffer_data_read_page *bpage = NULL;
7010 unsigned long flags;
7011
7012 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7013 return ERR_PTR(-ENODEV);
7014
7015 bpage = kzalloc_obj(*bpage);
7016 if (!bpage)
7017 return ERR_PTR(-ENOMEM);
7018
7019 bpage->order = buffer->subbuf_order;
7020 cpu_buffer = buffer->buffers[cpu];
7021 local_irq_save(flags);
7022 arch_spin_lock(&cpu_buffer->lock);
7023
7024 if (cpu_buffer->free_page.data) {
7025 *bpage = cpu_buffer->free_page;
7026 cpu_buffer->free_page.data = NULL;
7027 }
7028
7029 arch_spin_unlock(&cpu_buffer->lock);
7030 local_irq_restore(flags);
7031
7032 if (bpage->data) {
7033 rb_init_data_page(bpage->data);
7034 } else {
7035 bpage->data = alloc_cpu_data(cpu, bpage->order);
7036 if (!bpage->data) {
7037 kfree(bpage);
7038 return ERR_PTR(-ENOMEM);
7039 }
7040 }
7041
7042 return bpage;
7043 }
7044 EXPORT_SYMBOL_GPL(ring_buffer_alloc_read_page);
7045
7046 /**
7047 * ring_buffer_free_read_page - free an allocated read page
7048 * @buffer: the buffer the page was allocate for
7049 * @cpu: the cpu buffer the page came from
7050 * @data_page: the page to free
7051 *
7052 * Free a page allocated from ring_buffer_alloc_read_page.
7053 */
ring_buffer_free_read_page(struct trace_buffer * buffer,int cpu,struct buffer_data_read_page * data_page)7054 void ring_buffer_free_read_page(struct trace_buffer *buffer, int cpu,
7055 struct buffer_data_read_page *data_page)
7056 {
7057 struct ring_buffer_per_cpu *cpu_buffer;
7058 struct buffer_data_page *dpage = data_page->data;
7059 struct page *page = virt_to_page(dpage);
7060 unsigned long flags;
7061
7062 if (!buffer || !buffer->buffers || !buffer->buffers[cpu])
7063 return;
7064
7065 cpu_buffer = buffer->buffers[cpu];
7066
7067 /*
7068 * If the page is still in use someplace else, or order of the page
7069 * is different from the subbuffer order of the buffer -
7070 * we can't reuse it
7071 */
7072 if (page_ref_count(page) > 1 || data_page->order != buffer->subbuf_order)
7073 goto out;
7074
7075 local_irq_save(flags);
7076 arch_spin_lock(&cpu_buffer->lock);
7077
7078 if (!cpu_buffer->free_page.data) {
7079 cpu_buffer->free_page = *data_page;
7080 dpage = NULL;
7081 }
7082
7083 arch_spin_unlock(&cpu_buffer->lock);
7084 local_irq_restore(flags);
7085
7086 out:
7087 free_pages((unsigned long)dpage, data_page->order);
7088 kfree(data_page);
7089 }
7090 EXPORT_SYMBOL_GPL(ring_buffer_free_read_page);
7091
7092 /**
7093 * ring_buffer_read_page - extract a page from the ring buffer
7094 * @buffer: buffer to extract from
7095 * @data_page: the page to use allocated from ring_buffer_alloc_read_page
7096 * @len: amount to extract
7097 * @cpu: the cpu of the buffer to extract
7098 * @full: should the extraction only happen when the page is full.
7099 *
7100 * This function will pull out a page from the ring buffer and consume it.
7101 * @data_page must be the address of the variable that was returned
7102 * from ring_buffer_alloc_read_page. This is because the page might be used
7103 * to swap with a page in the ring buffer.
7104 *
7105 * for example:
7106 * rpage = ring_buffer_alloc_read_page(buffer, cpu);
7107 * if (IS_ERR(rpage))
7108 * return PTR_ERR(rpage);
7109 * ret = ring_buffer_read_page(buffer, rpage, len, cpu, 0);
7110 * if (ret >= 0)
7111 * process_page(ring_buffer_read_page_data(rpage), ret);
7112 * ring_buffer_free_read_page(buffer, cpu, rpage);
7113 *
7114 * When @full is set, the function will not return true unless
7115 * the writer is off the reader page.
7116 *
7117 * Note: it is up to the calling functions to handle sleeps and wakeups.
7118 * The ring buffer can be used anywhere in the kernel and can not
7119 * blindly call wake_up. The layer that uses the ring buffer must be
7120 * responsible for that.
7121 *
7122 * Returns:
7123 * >=0 if data has been transferred, returns the offset of consumed data.
7124 * <0 if no data has been transferred.
7125 */
ring_buffer_read_page(struct trace_buffer * buffer,struct buffer_data_read_page * data_page,size_t len,int cpu,int full)7126 int ring_buffer_read_page(struct trace_buffer *buffer,
7127 struct buffer_data_read_page *data_page,
7128 size_t len, int cpu, int full)
7129 {
7130 struct ring_buffer_per_cpu *cpu_buffer = buffer->buffers[cpu];
7131 struct ring_buffer_event *event;
7132 struct buffer_data_page *dpage;
7133 struct buffer_page *reader;
7134 long missed_events;
7135 unsigned int commit;
7136 unsigned int size;
7137 unsigned int read;
7138 u64 save_timestamp;
7139
7140 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7141 return -1;
7142
7143 /*
7144 * If len is not big enough to hold the page header, then
7145 * we can not copy anything.
7146 */
7147 if (len <= BUF_PAGE_HDR_SIZE)
7148 return -1;
7149
7150 len -= BUF_PAGE_HDR_SIZE;
7151
7152 if (!data_page || !data_page->data)
7153 return -1;
7154
7155 dpage = data_page->data;
7156 if (!dpage)
7157 return -1;
7158
7159 guard(raw_spinlock_irqsave)(&cpu_buffer->reader_lock);
7160
7161 if (data_page->order != cpu_buffer->reader_page->order)
7162 return -1;
7163
7164 reader = rb_get_reader_page(cpu_buffer);
7165 if (!reader)
7166 return -1;
7167
7168 event = rb_reader_event(cpu_buffer);
7169
7170 read = reader->read;
7171 commit = rb_page_commit(reader);
7172 size = rb_page_size(reader);
7173
7174 /* Check if any events were dropped */
7175 missed_events = cpu_buffer->lost_events;
7176
7177 /*
7178 * If this page has been partially read or
7179 * if len is not big enough to read the rest of the page or
7180 * a writer is still on the page, then
7181 * we must copy the data from the page to the buffer.
7182 * Otherwise, we can simply swap the page with the one passed in.
7183 */
7184 if (read || (len < (size - read)) ||
7185 cpu_buffer->reader_page == cpu_buffer->commit_page ||
7186 rb_is_static(cpu_buffer)) {
7187 struct buffer_data_page *rpage = cpu_buffer->reader_page->page;
7188 unsigned int rpos = read;
7189 unsigned int pos = 0;
7190 unsigned int event_size;
7191 unsigned int flags = 0;
7192
7193 /*
7194 * If a full page is expected, this can still be returned
7195 * if there's been a previous partial read and the
7196 * rest of the page can be read and the commit page is off
7197 * the reader page.
7198 */
7199 if (full &&
7200 (!read || (len < (size - read)) ||
7201 cpu_buffer->reader_page == cpu_buffer->commit_page))
7202 return -1;
7203
7204 if (len > (size - read))
7205 len = (size - read);
7206
7207 /* Always keep the time extend and data together */
7208 event_size = rb_event_ts_length(event);
7209
7210 if (len < event_size)
7211 return -1;
7212
7213 if (commit & RB_MISSED_EVENTS)
7214 flags = RB_MISSED_EVENTS;
7215
7216 /* save the current timestamp, since the user will need it */
7217 save_timestamp = cpu_buffer->read_stamp;
7218
7219 /* Need to copy one event at a time */
7220 do {
7221 /* We need the size of one event, because
7222 * rb_advance_reader only advances by one event,
7223 * whereas rb_event_ts_length may include the size of
7224 * one or two events.
7225 * We have already ensured there's enough space if this
7226 * is a time extend. */
7227 event_size = rb_event_length(event);
7228 memcpy(dpage->data + pos, rpage->data + rpos, event_size);
7229
7230 len -= event_size;
7231
7232 rb_advance_reader(cpu_buffer);
7233 rpos = reader->read;
7234 pos += event_size;
7235
7236 if (rpos >= size)
7237 break;
7238
7239 event = rb_reader_event(cpu_buffer);
7240 /* Always keep the time extend and data together */
7241 event_size = rb_event_ts_length(event);
7242 } while (len >= event_size);
7243
7244 /* update dpage */
7245 local_set(&dpage->commit, pos | flags);
7246 dpage->time_stamp = save_timestamp;
7247
7248 /* we copied everything to the beginning */
7249 read = 0;
7250 } else {
7251 /* update the entry counter */
7252 cpu_buffer->read += rb_page_entries(reader);
7253 cpu_buffer->read_bytes += rb_page_size(reader);
7254
7255 /* swap the pages */
7256 rb_init_data_page(dpage);
7257 dpage = reader->page;
7258 reader->page = data_page->data;
7259 local_set(&reader->write, 0);
7260 local_set(&reader->entries, 0);
7261 reader->read = 0;
7262 data_page->data = dpage;
7263 if (!missed_events && rb_data_page_commit(dpage) & RB_MISSED_EVENTS)
7264 missed_events = -1;
7265
7266 /*
7267 * Use the real_end for the data size,
7268 * This gives us a chance to store the lost events
7269 * on the page.
7270 */
7271 if (reader->real_end)
7272 local_set(&dpage->commit, reader->real_end);
7273 }
7274
7275 cpu_buffer->lost_events = 0;
7276
7277 size = rb_data_page_size(dpage);
7278 /*
7279 * Set a flag in the commit field if we lost events
7280 */
7281 if (missed_events) {
7282 /*
7283 * If there is room at the end of the page to save the
7284 * missed events, then record it there.
7285 */
7286 if (missed_events > 0 &&
7287 rb_page_capacity(reader) - size >= sizeof(missed_events)) {
7288 memcpy(&dpage->data[size], &missed_events,
7289 sizeof(missed_events));
7290 local_add(RB_MISSED_STORED, &dpage->commit);
7291 size += sizeof(missed_events);
7292 }
7293 /*
7294 * Note, for the persistent ring buffer, the RB_MISSED_EVENTS
7295 * may have been set in the main buffer via the verification code.
7296 * But here, dpage is a copy of that page and has not yet had
7297 * the RB_MISSED_EVENTS set. As for the normal buffers,
7298 * the main write buffer does not set these bits and it needs
7299 * to be set here.
7300 */
7301 local_add(RB_MISSED_EVENTS, &dpage->commit);
7302 }
7303
7304 /*
7305 * This page may be off to user land. Zero it out here.
7306 */
7307 if (size < rb_page_capacity(reader))
7308 memset(&dpage->data[size], 0, rb_page_capacity(reader) - size);
7309
7310 return read;
7311 }
7312 EXPORT_SYMBOL_GPL(ring_buffer_read_page);
7313
7314 /**
7315 * ring_buffer_read_page_data - get pointer to the data in the page.
7316 * @page: the page to get the data from
7317 *
7318 * Returns pointer to the actual data in this page.
7319 */
ring_buffer_read_page_data(struct buffer_data_read_page * page)7320 void *ring_buffer_read_page_data(struct buffer_data_read_page *page)
7321 {
7322 return page->data;
7323 }
7324 EXPORT_SYMBOL_GPL(ring_buffer_read_page_data);
7325
7326 /**
7327 * ring_buffer_subbuf_size_get - get size of the sub buffer.
7328 * @buffer: the buffer to get the sub buffer size from
7329 *
7330 * Returns size of the sub buffer, in bytes.
7331 */
ring_buffer_subbuf_size_get(struct trace_buffer * buffer)7332 int ring_buffer_subbuf_size_get(struct trace_buffer *buffer)
7333 {
7334 return rb_subbuf_size(buffer);
7335 }
7336 EXPORT_SYMBOL_GPL(ring_buffer_subbuf_size_get);
7337
7338 /**
7339 * ring_buffer_subbuf_order_get - get order of system sub pages in one buffer page.
7340 * @buffer: The ring_buffer to get the system sub page order from
7341 *
7342 * By default, one ring buffer sub page equals to one system page. This parameter
7343 * is configurable, per ring buffer. The size of the ring buffer sub page can be
7344 * extended, but must be an order of system page size.
7345 *
7346 * Returns the order of buffer sub page size, in system pages:
7347 * 0 means the sub buffer size is 1 system page and so forth.
7348 * In case of an error < 0 is returned.
7349 */
ring_buffer_subbuf_order_get(struct trace_buffer * buffer)7350 int ring_buffer_subbuf_order_get(struct trace_buffer *buffer)
7351 {
7352 if (!buffer)
7353 return -EINVAL;
7354
7355 return buffer->subbuf_order;
7356 }
7357 EXPORT_SYMBOL_GPL(ring_buffer_subbuf_order_get);
7358
7359 /**
7360 * ring_buffer_subbuf_order_set - set the size of ring buffer sub page.
7361 * @buffer: The ring_buffer to set the new page size.
7362 * @order: Order of the system pages in one sub buffer page
7363 *
7364 * By default, one ring buffer pages equals to one system page. This API can be
7365 * used to set new size of the ring buffer page. The size must be order of
7366 * system page size, that's why the input parameter @order is the order of
7367 * system pages that are allocated for one ring buffer page:
7368 * 0 - 1 system page
7369 * 1 - 2 system pages
7370 * 3 - 4 system pages
7371 * ...
7372 *
7373 * Returns 0 on success or < 0 in case of an error.
7374 */
ring_buffer_subbuf_order_set(struct trace_buffer * buffer,int order)7375 int ring_buffer_subbuf_order_set(struct trace_buffer *buffer, int order)
7376 {
7377 struct ring_buffer_per_cpu *cpu_buffer;
7378 struct buffer_page *bpage, *tmp;
7379 unsigned int old_capacity;
7380 int old_order;
7381 int nr_pages;
7382 int psize;
7383 int err;
7384 int cpu;
7385
7386 if (!buffer || order < 0)
7387 return -EINVAL;
7388
7389 psize = (1 << order) * PAGE_SIZE;
7390 if (psize <= BUF_PAGE_HDR_SIZE)
7391 return -EINVAL;
7392
7393 /* Size of a subbuf cannot be greater than the write counter */
7394 if (psize > RB_WRITE_MASK + 1)
7395 return -EINVAL;
7396
7397 /* prevent another thread from changing buffer sizes */
7398 guard(mutex)(&buffer->mutex);
7399
7400 old_order = buffer->subbuf_order;
7401 if (old_order == order)
7402 return 0;
7403
7404 old_capacity = rb_subbuf_capacity(buffer);
7405
7406 atomic_inc(&buffer->record_disabled);
7407
7408 /* Make sure all commits have finished */
7409 synchronize_rcu();
7410
7411 buffer->subbuf_order = order;
7412
7413 /* Make sure all new buffers are allocated, before deleting the old ones */
7414 for_each_buffer_cpu(buffer, cpu) {
7415
7416 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7417 continue;
7418
7419 cpu_buffer = buffer->buffers[cpu];
7420
7421 if (atomic_read(&cpu_buffer->resize_disabled)) {
7422 err = -EBUSY;
7423 goto error;
7424 }
7425
7426 /* Update the number of pages to match the new size */
7427 nr_pages = old_capacity * buffer->buffers[cpu]->nr_pages;
7428 nr_pages = DIV_ROUND_UP(nr_pages, rb_subbuf_capacity(buffer));
7429
7430 /* we need a minimum of two pages */
7431 if (nr_pages < 2)
7432 nr_pages = 2;
7433
7434 cpu_buffer->nr_pages_to_update = nr_pages;
7435
7436 /* Include the reader page */
7437 nr_pages++;
7438
7439 /* Allocate the new size buffer */
7440 INIT_LIST_HEAD(&cpu_buffer->new_pages);
7441 if (__rb_allocate_pages(cpu_buffer, nr_pages,
7442 &cpu_buffer->new_pages)) {
7443 /* not enough memory for new pages */
7444 err = -ENOMEM;
7445 goto error;
7446 }
7447 }
7448
7449 for_each_buffer_cpu(buffer, cpu) {
7450 struct buffer_data_read_page old_free_data_page;
7451 struct list_head old_pages;
7452 unsigned long flags;
7453
7454 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7455 continue;
7456
7457 cpu_buffer = buffer->buffers[cpu];
7458
7459 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7460
7461 /* Clear the head bit to make the link list normal to read */
7462 rb_head_page_deactivate(cpu_buffer);
7463
7464 /*
7465 * Collect buffers from the cpu_buffer pages list and the
7466 * reader_page on old_pages, so they can be freed later when not
7467 * under a spinlock. The pages list is a linked list with no
7468 * head, adding old_pages turns it into a regular list with
7469 * old_pages being the head.
7470 */
7471 list_add(&old_pages, cpu_buffer->pages);
7472 list_add(&cpu_buffer->reader_page->list, &old_pages);
7473
7474 /* One page was allocated for the reader page */
7475 cpu_buffer->reader_page = list_entry(cpu_buffer->new_pages.next,
7476 struct buffer_page, list);
7477 list_del_init(&cpu_buffer->reader_page->list);
7478
7479 /* Install the new pages, remove the head from the list */
7480 cpu_buffer->pages = cpu_buffer->new_pages.next;
7481 list_del_init(&cpu_buffer->new_pages);
7482 cpu_buffer->cnt++;
7483
7484 cpu_buffer->head_page
7485 = list_entry(cpu_buffer->pages, struct buffer_page, list);
7486 cpu_buffer->tail_page = cpu_buffer->commit_page = cpu_buffer->head_page;
7487
7488 cpu_buffer->nr_pages = cpu_buffer->nr_pages_to_update;
7489 cpu_buffer->nr_pages_to_update = 0;
7490
7491 arch_spin_lock(&cpu_buffer->lock);
7492 old_free_data_page = cpu_buffer->free_page;
7493 cpu_buffer->free_page.data = NULL;
7494 arch_spin_unlock(&cpu_buffer->lock);
7495
7496 rb_head_page_activate(cpu_buffer);
7497
7498 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7499
7500 /* Free old sub buffers */
7501 list_for_each_entry_safe(bpage, tmp, &old_pages, list) {
7502 list_del_init(&bpage->list);
7503 free_buffer_page(bpage);
7504 }
7505 free_pages((unsigned long)old_free_data_page.data, old_free_data_page.order);
7506
7507 rb_check_pages(cpu_buffer);
7508 }
7509
7510 atomic_dec(&buffer->record_disabled);
7511
7512 return 0;
7513
7514 error:
7515 buffer->subbuf_order = old_order;
7516
7517 atomic_dec(&buffer->record_disabled);
7518
7519 for_each_buffer_cpu(buffer, cpu) {
7520 cpu_buffer = buffer->buffers[cpu];
7521
7522 if (!cpu_buffer->nr_pages_to_update)
7523 continue;
7524
7525 list_for_each_entry_safe(bpage, tmp, &cpu_buffer->new_pages, list) {
7526 list_del_init(&bpage->list);
7527 free_buffer_page(bpage);
7528 }
7529 }
7530
7531 return err;
7532 }
7533 EXPORT_SYMBOL_GPL(ring_buffer_subbuf_order_set);
7534
rb_alloc_meta_page(struct ring_buffer_per_cpu * cpu_buffer)7535 static int rb_alloc_meta_page(struct ring_buffer_per_cpu *cpu_buffer)
7536 {
7537 struct page *page;
7538
7539 if (cpu_buffer->meta_page)
7540 return 0;
7541
7542 page = alloc_page(GFP_USER | __GFP_ZERO);
7543 if (!page)
7544 return -ENOMEM;
7545
7546 cpu_buffer->meta_page = page_to_virt(page);
7547
7548 return 0;
7549 }
7550
rb_free_meta_page(struct ring_buffer_per_cpu * cpu_buffer)7551 static void rb_free_meta_page(struct ring_buffer_per_cpu *cpu_buffer)
7552 {
7553 unsigned long addr = (unsigned long)cpu_buffer->meta_page;
7554
7555 free_page(addr);
7556 cpu_buffer->meta_page = NULL;
7557 }
7558
rb_setup_ids_meta_page(struct ring_buffer_per_cpu * cpu_buffer,struct buffer_page ** subbuf_ids)7559 static void rb_setup_ids_meta_page(struct ring_buffer_per_cpu *cpu_buffer,
7560 struct buffer_page **subbuf_ids)
7561 {
7562 struct trace_buffer_meta *meta = cpu_buffer->meta_page;
7563 unsigned int nr_subbufs = cpu_buffer->nr_pages + 1;
7564 struct buffer_page *first_subbuf, *subbuf;
7565 int cnt = 0;
7566 int id = 0;
7567
7568 id = rb_page_id(cpu_buffer, cpu_buffer->reader_page, id);
7569 subbuf_ids[id++] = cpu_buffer->reader_page;
7570 cnt++;
7571
7572 first_subbuf = subbuf = rb_set_head_page(cpu_buffer);
7573 do {
7574 id = rb_page_id(cpu_buffer, subbuf, id);
7575
7576 if (WARN_ON(id >= nr_subbufs))
7577 break;
7578
7579 subbuf_ids[id] = subbuf;
7580
7581 rb_inc_page(&subbuf);
7582 id++;
7583 cnt++;
7584 } while (subbuf != first_subbuf);
7585
7586 WARN_ON(cnt != nr_subbufs);
7587
7588 /* install subbuf ID to bpage translation */
7589 cpu_buffer->subbuf_ids = subbuf_ids;
7590
7591 meta->meta_struct_len = sizeof(*meta);
7592 meta->nr_subbufs = nr_subbufs;
7593 meta->subbuf_size = rb_subbuf_size(cpu_buffer->buffer);
7594 meta->meta_page_size = meta->subbuf_size;
7595
7596 rb_update_meta_page(cpu_buffer);
7597 }
7598
7599 static struct ring_buffer_per_cpu *
rb_get_mapped_buffer(struct trace_buffer * buffer,int cpu)7600 rb_get_mapped_buffer(struct trace_buffer *buffer, int cpu)
7601 {
7602 struct ring_buffer_per_cpu *cpu_buffer;
7603
7604 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7605 return ERR_PTR(-EINVAL);
7606
7607 cpu_buffer = buffer->buffers[cpu];
7608
7609 mutex_lock(&cpu_buffer->mapping_lock);
7610
7611 if (!cpu_buffer->user_mapped) {
7612 mutex_unlock(&cpu_buffer->mapping_lock);
7613 return ERR_PTR(-ENODEV);
7614 }
7615
7616 return cpu_buffer;
7617 }
7618
rb_put_mapped_buffer(struct ring_buffer_per_cpu * cpu_buffer)7619 static void rb_put_mapped_buffer(struct ring_buffer_per_cpu *cpu_buffer)
7620 {
7621 mutex_unlock(&cpu_buffer->mapping_lock);
7622 }
7623
7624 /*
7625 * Fast-path for rb_buffer_(un)map(). Called whenever the meta-page doesn't need
7626 * to be set-up or torn-down.
7627 */
__rb_inc_dec_mapped(struct ring_buffer_per_cpu * cpu_buffer,bool inc)7628 static int __rb_inc_dec_mapped(struct ring_buffer_per_cpu *cpu_buffer,
7629 bool inc)
7630 {
7631 unsigned long flags;
7632
7633 lockdep_assert_held(&cpu_buffer->mapping_lock);
7634
7635 if (inc && cpu_buffer->user_mapped == UINT_MAX)
7636 return -EBUSY;
7637
7638 if (WARN_ON(!inc && cpu_buffer->user_mapped == 0))
7639 return -EINVAL;
7640
7641 mutex_lock(&cpu_buffer->buffer->mutex);
7642 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7643
7644 if (inc)
7645 cpu_buffer->user_mapped++;
7646 else
7647 cpu_buffer->user_mapped--;
7648
7649 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7650 mutex_unlock(&cpu_buffer->buffer->mutex);
7651
7652 return 0;
7653 }
7654
7655 /*
7656 * +--------------+ pgoff == 0
7657 * | meta page |
7658 * +--------------+ pgoff == 1
7659 * | subbuffer 0 |
7660 * | |
7661 * +--------------+ pgoff == (1 + (1 << subbuf_order))
7662 * | subbuffer 1 |
7663 * | |
7664 * ...
7665 */
7666 #ifdef CONFIG_MMU
__rb_map_vma(struct ring_buffer_per_cpu * cpu_buffer,struct vm_area_struct * vma)7667 static int __rb_map_vma(struct ring_buffer_per_cpu *cpu_buffer,
7668 struct vm_area_struct *vma)
7669 {
7670 unsigned long nr_subbufs, nr_pages, nr_vma_pages, pgoff = vma->vm_pgoff;
7671 unsigned int subbuf_pages, subbuf_order;
7672 struct page **pages __free(kfree) = NULL;
7673 int p = 0, s = 0;
7674 int err;
7675
7676 /* Refuse MP_PRIVATE or writable mappings */
7677 if (vma->vm_flags & VM_WRITE || vma->vm_flags & VM_EXEC ||
7678 !(vma->vm_flags & VM_MAYSHARE))
7679 return -EPERM;
7680
7681 subbuf_order = cpu_buffer->buffer->subbuf_order;
7682 subbuf_pages = 1 << subbuf_order;
7683
7684 if (subbuf_order && pgoff % subbuf_pages)
7685 return -EINVAL;
7686
7687 /*
7688 * Make sure the mapping cannot become writable later. Also tell the VM
7689 * to not touch these pages (VM_DONTCOPY | VM_DONTEXPAND).
7690 */
7691 vm_flags_mod(vma, VM_DONTCOPY | VM_DONTEXPAND | VM_DONTDUMP,
7692 VM_MAYWRITE);
7693
7694 lockdep_assert_held(&cpu_buffer->mapping_lock);
7695
7696 nr_subbufs = cpu_buffer->nr_pages + 1; /* + reader-subbuf */
7697 nr_pages = ((nr_subbufs + 1) << subbuf_order); /* + meta-page */
7698 if (nr_pages <= pgoff)
7699 return -EINVAL;
7700
7701 nr_pages -= pgoff;
7702
7703 nr_vma_pages = vma_pages(vma);
7704 if (!nr_vma_pages || nr_vma_pages > nr_pages)
7705 return -EINVAL;
7706
7707 nr_pages = nr_vma_pages;
7708
7709 pages = kzalloc_objs(*pages, nr_pages);
7710 if (!pages)
7711 return -ENOMEM;
7712
7713 if (!pgoff) {
7714 unsigned long meta_page_padding;
7715
7716 pages[p++] = virt_to_page(cpu_buffer->meta_page);
7717
7718 /*
7719 * Pad with the zero-page to align the meta-page with the
7720 * sub-buffers.
7721 */
7722 meta_page_padding = subbuf_pages - 1;
7723 while (meta_page_padding-- && p < nr_pages) {
7724 unsigned long __maybe_unused zero_addr =
7725 vma->vm_start + (PAGE_SIZE * p);
7726
7727 pages[p++] = ZERO_PAGE(zero_addr);
7728 }
7729 } else {
7730 /* Skip the meta-page */
7731 pgoff -= subbuf_pages;
7732
7733 s += pgoff / subbuf_pages;
7734 }
7735
7736 while (p < nr_pages) {
7737 struct buffer_page *subbuf;
7738 struct page *page;
7739 int off = 0;
7740
7741 if (WARN_ON_ONCE(s >= nr_subbufs))
7742 return -EINVAL;
7743
7744 subbuf = cpu_buffer->subbuf_ids[s];
7745 page = virt_to_page((void *)subbuf->page);
7746
7747 for (; off < (1 << (subbuf_order)); off++, page++) {
7748 if (p >= nr_pages)
7749 break;
7750
7751 pages[p++] = page;
7752 }
7753 s++;
7754 }
7755
7756 err = vm_insert_pages(vma, vma->vm_start, pages, &nr_pages);
7757
7758 return err;
7759 }
7760 #else
__rb_map_vma(struct ring_buffer_per_cpu * cpu_buffer,struct vm_area_struct * vma)7761 static int __rb_map_vma(struct ring_buffer_per_cpu *cpu_buffer,
7762 struct vm_area_struct *vma)
7763 {
7764 return -EOPNOTSUPP;
7765 }
7766 #endif
7767
ring_buffer_map(struct trace_buffer * buffer,int cpu,struct vm_area_struct * vma)7768 int ring_buffer_map(struct trace_buffer *buffer, int cpu,
7769 struct vm_area_struct *vma)
7770 {
7771 struct ring_buffer_per_cpu *cpu_buffer;
7772 struct buffer_page **subbuf_ids;
7773 unsigned long flags;
7774 int err;
7775
7776 if (!cpumask_test_cpu(cpu, buffer->cpumask) || buffer->remote)
7777 return -EINVAL;
7778
7779 cpu_buffer = buffer->buffers[cpu];
7780
7781 guard(mutex)(&cpu_buffer->mapping_lock);
7782
7783 if (cpu_buffer->user_mapped) {
7784 err = __rb_map_vma(cpu_buffer, vma);
7785 if (!err)
7786 err = __rb_inc_dec_mapped(cpu_buffer, true);
7787 return err;
7788 }
7789
7790 /* prevent another thread from changing buffer/sub-buffer sizes */
7791 guard(mutex)(&buffer->mutex);
7792
7793 err = rb_alloc_meta_page(cpu_buffer);
7794 if (err)
7795 return err;
7796
7797 /* subbuf_ids includes the reader while nr_pages does not */
7798 subbuf_ids = kcalloc(cpu_buffer->nr_pages + 1, sizeof(*subbuf_ids), GFP_KERNEL);
7799 if (!subbuf_ids) {
7800 rb_free_meta_page(cpu_buffer);
7801 return -ENOMEM;
7802 }
7803
7804 atomic_inc(&cpu_buffer->resize_disabled);
7805
7806 /*
7807 * Lock all readers to block any subbuf swap until the subbuf IDs are
7808 * assigned.
7809 */
7810 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7811 rb_setup_ids_meta_page(cpu_buffer, subbuf_ids);
7812
7813 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7814
7815 err = __rb_map_vma(cpu_buffer, vma);
7816 if (!err) {
7817 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7818 /* This is the first time it is mapped by user */
7819 cpu_buffer->user_mapped = 1;
7820 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7821 } else {
7822 kfree(cpu_buffer->subbuf_ids);
7823 cpu_buffer->subbuf_ids = NULL;
7824 rb_free_meta_page(cpu_buffer);
7825 atomic_dec(&cpu_buffer->resize_disabled);
7826 }
7827
7828 return err;
7829 }
7830
7831 /*
7832 * This is called when a VMA is duplicated (e.g., on fork()) to increment
7833 * the user_mapped counter without remapping pages.
7834 */
ring_buffer_map_dup(struct trace_buffer * buffer,int cpu)7835 void ring_buffer_map_dup(struct trace_buffer *buffer, int cpu)
7836 {
7837 struct ring_buffer_per_cpu *cpu_buffer;
7838
7839 if (WARN_ON(!cpumask_test_cpu(cpu, buffer->cpumask)))
7840 return;
7841
7842 cpu_buffer = buffer->buffers[cpu];
7843
7844 guard(mutex)(&cpu_buffer->mapping_lock);
7845
7846 if (cpu_buffer->user_mapped)
7847 __rb_inc_dec_mapped(cpu_buffer, true);
7848 else
7849 WARN(1, "Unexpected buffer stat, it should be mapped");
7850 }
7851
ring_buffer_unmap(struct trace_buffer * buffer,int cpu)7852 int ring_buffer_unmap(struct trace_buffer *buffer, int cpu)
7853 {
7854 struct ring_buffer_per_cpu *cpu_buffer;
7855 unsigned long flags;
7856
7857 if (!cpumask_test_cpu(cpu, buffer->cpumask))
7858 return -EINVAL;
7859
7860 cpu_buffer = buffer->buffers[cpu];
7861
7862 guard(mutex)(&cpu_buffer->mapping_lock);
7863
7864 if (!cpu_buffer->user_mapped) {
7865 return -ENODEV;
7866 } else if (cpu_buffer->user_mapped > 1) {
7867 __rb_inc_dec_mapped(cpu_buffer, false);
7868 return 0;
7869 }
7870
7871 guard(mutex)(&buffer->mutex);
7872 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7873
7874 /* This is the last user space mapping */
7875 cpu_buffer->user_mapped = 0;
7876
7877 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7878
7879 kfree(cpu_buffer->subbuf_ids);
7880 cpu_buffer->subbuf_ids = NULL;
7881 rb_free_meta_page(cpu_buffer);
7882 atomic_dec(&cpu_buffer->resize_disabled);
7883
7884 return 0;
7885 }
7886
ring_buffer_map_get_reader(struct trace_buffer * buffer,int cpu)7887 int ring_buffer_map_get_reader(struct trace_buffer *buffer, int cpu)
7888 {
7889 struct ring_buffer_per_cpu *cpu_buffer;
7890 struct buffer_page *reader;
7891 unsigned long missed_events;
7892 unsigned long reader_size;
7893 unsigned long flags;
7894
7895 cpu_buffer = rb_get_mapped_buffer(buffer, cpu);
7896 if (IS_ERR(cpu_buffer))
7897 return (int)PTR_ERR(cpu_buffer);
7898
7899 raw_spin_lock_irqsave(&cpu_buffer->reader_lock, flags);
7900
7901 consume:
7902 if (rb_per_cpu_empty(cpu_buffer))
7903 goto out;
7904
7905 reader_size = rb_page_size(cpu_buffer->reader_page);
7906
7907 /*
7908 * There are data to be read on the current reader page, we can
7909 * return to the caller. But before that, we assume the latter will read
7910 * everything. Let's update the kernel reader accordingly.
7911 */
7912 if (cpu_buffer->reader_page->read < reader_size) {
7913 while (cpu_buffer->reader_page->read < reader_size)
7914 rb_advance_reader(cpu_buffer);
7915 goto out;
7916 }
7917
7918 /* Did the reader catch up with the writer? */
7919 if (cpu_buffer->reader_page == cpu_buffer->commit_page)
7920 goto out;
7921
7922 reader = rb_get_reader_page(cpu_buffer);
7923 if (WARN_ON(!reader))
7924 goto out;
7925
7926 /* Check if any events were dropped */
7927 missed_events = cpu_buffer->lost_events;
7928
7929 if (missed_events) {
7930 if (cpu_buffer->reader_page != cpu_buffer->commit_page) {
7931 struct buffer_data_page *dpage = reader->page;
7932 unsigned int commit;
7933 /*
7934 * Use the real_end for the data size,
7935 * This gives us a chance to store the lost events
7936 * on the page.
7937 */
7938 if (reader->real_end)
7939 local_set(&dpage->commit, reader->real_end);
7940 /*
7941 * If there is room at the end of the page to save the
7942 * missed events, then record it there.
7943 */
7944 commit = rb_page_size(reader);
7945 if (rb_page_capacity(reader) - commit >= sizeof(missed_events)) {
7946 memcpy(&dpage->data[commit], &missed_events,
7947 sizeof(missed_events));
7948 local_add(RB_MISSED_STORED, &dpage->commit);
7949 }
7950 local_add(RB_MISSED_EVENTS, &dpage->commit);
7951 } else if (!WARN_ONCE(cpu_buffer->reader_page == cpu_buffer->tail_page,
7952 "Reader on commit with %ld missed events",
7953 missed_events)) {
7954 /*
7955 * There shouldn't be any missed events if the tail_page
7956 * is on the reader page. But if the tail page is not on the
7957 * reader page and the commit_page is, that would mean that
7958 * there's a commit_overrun (an interrupt preempted an
7959 * addition of an event and then filled the buffer
7960 * with new events). In this case it's not an
7961 * error, but it should still be reported.
7962 *
7963 * TODO: Add missed events to the page for user space to know.
7964 */
7965 pr_info("Ring buffer [%d] commit overrun lost %ld events at timestamp:%lld\n",
7966 cpu, missed_events, cpu_buffer->reader_page->page->time_stamp);
7967 }
7968 }
7969
7970 cpu_buffer->lost_events = 0;
7971
7972 goto consume;
7973
7974 out:
7975 /* Some archs do not have data cache coherency between kernel and user-space */
7976 flush_kernel_vmap_range(cpu_buffer->reader_page->page,
7977 rb_subbuf_size(buffer));
7978
7979 rb_update_meta_page(cpu_buffer);
7980
7981 raw_spin_unlock_irqrestore(&cpu_buffer->reader_lock, flags);
7982 rb_put_mapped_buffer(cpu_buffer);
7983
7984 return 0;
7985 }
7986
rb_cpu_sync(void * data)7987 static void rb_cpu_sync(void *data)
7988 {
7989 /* Not really needed, but documents what is happening */
7990 smp_rmb();
7991 }
7992
7993 /*
7994 * We only allocate new buffers, never free them if the CPU goes down.
7995 * If we were to free the buffer, then the user would lose any trace that was in
7996 * the buffer.
7997 */
trace_rb_cpu_prepare(unsigned int cpu,struct hlist_node * node)7998 int trace_rb_cpu_prepare(unsigned int cpu, struct hlist_node *node)
7999 {
8000 struct trace_buffer *buffer;
8001 long nr_pages_same;
8002 int cpu_i;
8003 unsigned long nr_pages;
8004
8005 buffer = container_of(node, struct trace_buffer, node);
8006 if (cpumask_test_cpu(cpu, buffer->cpumask))
8007 return 0;
8008
8009 nr_pages = 0;
8010 nr_pages_same = 1;
8011 /* check if all cpu sizes are same */
8012 for_each_buffer_cpu(buffer, cpu_i) {
8013 /* fill in the size from first enabled cpu */
8014 if (nr_pages == 0)
8015 nr_pages = buffer->buffers[cpu_i]->nr_pages;
8016 if (nr_pages != buffer->buffers[cpu_i]->nr_pages) {
8017 nr_pages_same = 0;
8018 break;
8019 }
8020 }
8021 /* allocate minimum pages, user can later expand it */
8022 if (!nr_pages_same)
8023 nr_pages = 2;
8024 buffer->buffers[cpu] =
8025 rb_allocate_cpu_buffer(buffer, nr_pages, cpu);
8026 if (!buffer->buffers[cpu]) {
8027 WARN(1, "failed to allocate ring buffer on CPU %u\n",
8028 cpu);
8029 return -ENOMEM;
8030 }
8031
8032 /*
8033 * Ensure trace_buffer readers observe the newly allocated
8034 * ring_buffer_per_cpu before they check the cpumask. Instead of using a
8035 * read barrier for all readers, send an IPI.
8036 */
8037 if (unlikely(system_state == SYSTEM_RUNNING)) {
8038 on_each_cpu(rb_cpu_sync, NULL, 1);
8039 /* Not really needed, but documents what is happening */
8040 smp_wmb();
8041 }
8042
8043 cpumask_set_cpu(cpu, buffer->cpumask);
8044 return 0;
8045 }
8046
8047 #ifdef CONFIG_RING_BUFFER_STARTUP_TEST
8048 /*
8049 * This is a basic integrity check of the ring buffer.
8050 * Late in the boot cycle this test will run when configured in.
8051 * It will kick off a thread per CPU that will go into a loop
8052 * writing to the per cpu ring buffer various sizes of data.
8053 * Some of the data will be large items, some small.
8054 *
8055 * Another thread is created that goes into a spin, sending out
8056 * IPIs to the other CPUs to also write into the ring buffer.
8057 * this is to test the nesting ability of the buffer.
8058 *
8059 * Basic stats are recorded and reported. If something in the
8060 * ring buffer should happen that's not expected, a big warning
8061 * is displayed and all ring buffers are disabled.
8062 */
8063 static struct task_struct *rb_threads[NR_CPUS] __initdata;
8064
8065 struct rb_test_data {
8066 struct trace_buffer *buffer;
8067 unsigned long events;
8068 unsigned long bytes_written;
8069 unsigned long bytes_alloc;
8070 unsigned long bytes_dropped;
8071 unsigned long events_nested;
8072 unsigned long bytes_written_nested;
8073 unsigned long bytes_alloc_nested;
8074 unsigned long bytes_dropped_nested;
8075 int min_size_nested;
8076 int max_size_nested;
8077 int max_size;
8078 int min_size;
8079 int cpu;
8080 int cnt;
8081 };
8082
8083 static struct rb_test_data rb_data[NR_CPUS] __initdata;
8084
8085 /* 1 meg per cpu */
8086 #define RB_TEST_BUFFER_SIZE 1048576
8087
8088 static char rb_string[] __initdata =
8089 "abcdefghijklmnopqrstuvwxyz1234567890!@#$%^&*()?+\\"
8090 "?+|:';\",.<>/?abcdefghijklmnopqrstuvwxyz1234567890"
8091 "!@#$%^&*()?+\\?+|:';\",.<>/?abcdefghijklmnopqrstuv";
8092
8093 static bool rb_test_started __initdata;
8094
8095 struct rb_item {
8096 int size;
8097 char str[];
8098 };
8099
rb_write_something(struct rb_test_data * data,bool nested)8100 static __init int rb_write_something(struct rb_test_data *data, bool nested)
8101 {
8102 struct ring_buffer_event *event;
8103 struct rb_item *item;
8104 bool started;
8105 int event_len;
8106 int size;
8107 int len;
8108 int cnt;
8109
8110 /* Have nested writes different that what is written */
8111 cnt = data->cnt + (nested ? 27 : 0);
8112
8113 /* Multiply cnt by ~e, to make some unique increment */
8114 size = (cnt * 68 / 25) % (sizeof(rb_string) - 1);
8115
8116 len = size + sizeof(struct rb_item);
8117
8118 started = rb_test_started;
8119 /* read rb_test_started before checking buffer enabled */
8120 smp_rmb();
8121
8122 event = ring_buffer_lock_reserve(data->buffer, len);
8123 if (!event) {
8124 /* Ignore dropped events before test starts. */
8125 if (started) {
8126 if (nested)
8127 data->bytes_dropped_nested += len;
8128 else
8129 data->bytes_dropped += len;
8130 }
8131 return len;
8132 }
8133
8134 event_len = ring_buffer_event_length(event);
8135
8136 if (RB_WARN_ON(data->buffer, event_len < len))
8137 goto out;
8138
8139 item = ring_buffer_event_data(event);
8140 item->size = size;
8141 memcpy(item->str, rb_string, size);
8142
8143 if (nested) {
8144 data->bytes_alloc_nested += event_len;
8145 data->bytes_written_nested += len;
8146 data->events_nested++;
8147 if (!data->min_size_nested || len < data->min_size_nested)
8148 data->min_size_nested = len;
8149 if (len > data->max_size_nested)
8150 data->max_size_nested = len;
8151 } else {
8152 data->bytes_alloc += event_len;
8153 data->bytes_written += len;
8154 data->events++;
8155 if (!data->min_size || len < data->min_size)
8156 data->max_size = len;
8157 if (len > data->max_size)
8158 data->max_size = len;
8159 }
8160
8161 out:
8162 ring_buffer_unlock_commit(data->buffer);
8163
8164 return 0;
8165 }
8166
rb_test(void * arg)8167 static __init int rb_test(void *arg)
8168 {
8169 struct rb_test_data *data = arg;
8170
8171 while (!kthread_should_stop()) {
8172 rb_write_something(data, false);
8173 data->cnt++;
8174
8175 set_current_state(TASK_INTERRUPTIBLE);
8176 /* Now sleep between a min of 100-300us and a max of 1ms */
8177 usleep_range(((data->cnt % 3) + 1) * 100, 1000);
8178 }
8179
8180 return 0;
8181 }
8182
rb_ipi(void * ignore)8183 static __init void rb_ipi(void *ignore)
8184 {
8185 struct rb_test_data *data;
8186 int cpu = smp_processor_id();
8187
8188 data = &rb_data[cpu];
8189 rb_write_something(data, true);
8190 }
8191
rb_hammer_test(void * arg)8192 static __init int rb_hammer_test(void *arg)
8193 {
8194 while (!kthread_should_stop()) {
8195
8196 /* Send an IPI to all cpus to write data! */
8197 smp_call_function(rb_ipi, NULL, 1);
8198 /* No sleep, but for non preempt, let others run */
8199 schedule();
8200 }
8201
8202 return 0;
8203 }
8204
test_ringbuffer(void)8205 static __init int test_ringbuffer(void)
8206 {
8207 struct task_struct *rb_hammer;
8208 struct trace_buffer *buffer;
8209 int cpu;
8210 int ret = 0;
8211
8212 if (security_locked_down(LOCKDOWN_TRACEFS)) {
8213 pr_warn("Lockdown is enabled, skipping ring buffer tests\n");
8214 return 0;
8215 }
8216
8217 pr_info("Running ring buffer tests...\n");
8218
8219 buffer = ring_buffer_alloc(RB_TEST_BUFFER_SIZE, RB_FL_OVERWRITE);
8220 if (WARN_ON(!buffer))
8221 return 0;
8222
8223 /* Disable buffer so that threads can't write to it yet */
8224 ring_buffer_record_off(buffer);
8225
8226 for_each_online_cpu(cpu) {
8227 rb_data[cpu].buffer = buffer;
8228 rb_data[cpu].cpu = cpu;
8229 rb_data[cpu].cnt = cpu;
8230 rb_threads[cpu] = kthread_run_on_cpu(rb_test, &rb_data[cpu],
8231 cpu, "rbtester/%u");
8232 if (WARN_ON(IS_ERR(rb_threads[cpu]))) {
8233 pr_cont("FAILED\n");
8234 ret = PTR_ERR(rb_threads[cpu]);
8235 goto out_free;
8236 }
8237 }
8238
8239 /* Now create the rb hammer! */
8240 rb_hammer = kthread_run(rb_hammer_test, NULL, "rbhammer");
8241 if (WARN_ON(IS_ERR(rb_hammer))) {
8242 pr_cont("FAILED\n");
8243 ret = PTR_ERR(rb_hammer);
8244 goto out_free;
8245 }
8246
8247 ring_buffer_record_on(buffer);
8248 /*
8249 * Show buffer is enabled before setting rb_test_started.
8250 * Yes there's a small race window where events could be
8251 * dropped and the thread won't catch it. But when a ring
8252 * buffer gets enabled, there will always be some kind of
8253 * delay before other CPUs see it. Thus, we don't care about
8254 * those dropped events. We care about events dropped after
8255 * the threads see that the buffer is active.
8256 */
8257 smp_wmb();
8258 rb_test_started = true;
8259
8260 set_current_state(TASK_INTERRUPTIBLE);
8261 /* Just run for 10 seconds */
8262 schedule_timeout(10 * HZ);
8263
8264 kthread_stop(rb_hammer);
8265
8266 out_free:
8267 for_each_online_cpu(cpu) {
8268 if (IS_ERR_OR_NULL(rb_threads[cpu]))
8269 break;
8270 kthread_stop(rb_threads[cpu]);
8271 }
8272 if (ret) {
8273 ring_buffer_free(buffer);
8274 return ret;
8275 }
8276
8277 /* Report! */
8278 pr_info("finished\n");
8279 for_each_online_cpu(cpu) {
8280 struct ring_buffer_event *event;
8281 struct rb_test_data *data = &rb_data[cpu];
8282 struct rb_item *item;
8283 unsigned long total_events;
8284 unsigned long total_dropped;
8285 unsigned long total_written;
8286 unsigned long total_alloc;
8287 unsigned long total_read = 0;
8288 unsigned long total_size = 0;
8289 unsigned long total_len = 0;
8290 unsigned long total_lost = 0;
8291 unsigned long lost;
8292 int big_event_size;
8293 int small_event_size;
8294
8295 ret = -1;
8296
8297 total_events = data->events + data->events_nested;
8298 total_written = data->bytes_written + data->bytes_written_nested;
8299 total_alloc = data->bytes_alloc + data->bytes_alloc_nested;
8300 total_dropped = data->bytes_dropped + data->bytes_dropped_nested;
8301
8302 big_event_size = data->max_size + data->max_size_nested;
8303 small_event_size = data->min_size + data->min_size_nested;
8304
8305 pr_info("CPU %d:\n", cpu);
8306 pr_info(" events: %ld\n", total_events);
8307 pr_info(" dropped bytes: %ld\n", total_dropped);
8308 pr_info(" alloced bytes: %ld\n", total_alloc);
8309 pr_info(" written bytes: %ld\n", total_written);
8310 pr_info(" biggest event: %d\n", big_event_size);
8311 pr_info(" smallest event: %d\n", small_event_size);
8312
8313 if (RB_WARN_ON(buffer, total_dropped))
8314 break;
8315
8316 ret = 0;
8317
8318 while ((event = ring_buffer_consume(buffer, cpu, NULL, &lost))) {
8319 total_lost += lost;
8320 item = ring_buffer_event_data(event);
8321 total_len += ring_buffer_event_length(event);
8322 total_size += item->size + sizeof(struct rb_item);
8323 if (memcmp(&item->str[0], rb_string, item->size) != 0) {
8324 pr_info("FAILED!\n");
8325 pr_info("buffer had: %.*s\n", item->size, item->str);
8326 pr_info("expected: %.*s\n", item->size, rb_string);
8327 RB_WARN_ON(buffer, 1);
8328 ret = -1;
8329 break;
8330 }
8331 total_read++;
8332 }
8333 if (ret)
8334 break;
8335
8336 ret = -1;
8337
8338 pr_info(" read events: %ld\n", total_read);
8339 pr_info(" lost events: %ld\n", total_lost);
8340 pr_info(" total events: %ld\n", total_lost + total_read);
8341 pr_info(" recorded len bytes: %ld\n", total_len);
8342 pr_info(" recorded size bytes: %ld\n", total_size);
8343 if (total_lost) {
8344 pr_info(" With dropped events, record len and size may not match\n"
8345 " alloced and written from above\n");
8346 } else {
8347 if (RB_WARN_ON(buffer, total_len != total_alloc ||
8348 total_size != total_written))
8349 break;
8350 }
8351 if (RB_WARN_ON(buffer, total_lost + total_read != total_events))
8352 break;
8353
8354 ret = 0;
8355 }
8356 if (!ret)
8357 pr_info("Ring buffer PASSED!\n");
8358
8359 ring_buffer_free(buffer);
8360 return 0;
8361 }
8362
8363 late_initcall(test_ringbuffer);
8364 #endif /* CONFIG_RING_BUFFER_STARTUP_TEST */
8365