xref: /linux/tools/perf/util/auxtrace.c (revision 7ccd2e6cecd5bb02a5a15f0dd7199d1e81380bda)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * auxtrace.c: AUX area trace support
4  * Copyright (c) 2013-2015, Intel Corporation.
5  */
6 
7 #include <inttypes.h>
8 #include <sys/types.h>
9 #include <sys/mman.h>
10 #include <stdbool.h>
11 #include <string.h>
12 #include <limits.h>
13 #include <errno.h>
14 
15 #include <linux/kernel.h>
16 #include <linux/perf_event.h>
17 #include <linux/types.h>
18 #include <linux/bitops.h>
19 #include <linux/log2.h>
20 #include <linux/string.h>
21 #include <linux/time64.h>
22 
23 #include <sys/param.h>
24 #include <stdlib.h>
25 #include <stdio.h>
26 #include <linux/list.h>
27 #include <linux/zalloc.h>
28 
29 #include "config.h"
30 #include "evlist.h"
31 #include "dso.h"
32 #include "map.h"
33 #include "pmu.h"
34 #include "evsel.h"
35 #include "evsel_config.h"
36 #include "symbol.h"
37 #include "util/perf_api_probe.h"
38 #include "util/synthetic-events.h"
39 #include "thread_map.h"
40 #include "asm/bug.h"
41 #include "auxtrace.h"
42 
43 #include <linux/hash.h>
44 
45 #include "event.h"
46 #include "record.h"
47 #include "session.h"
48 #include "debug.h"
49 #include <subcmd/parse-options.h>
50 
51 #include "cs-etm.h"
52 #include "intel-pt.h"
53 #include "intel-bts.h"
54 #include "arm-spe.h"
55 #include "hisi-ptt.h"
56 #include "s390-cpumsf.h"
57 #include "util/mmap.h"
58 #include "powerpc-vpadtl.h"
59 
60 #include <linux/ctype.h>
61 #include "symbol/kallsyms.h"
62 #include <internal/lib.h>
63 #include "util/sample.h"
64 
65 #define AUXTRACE_SYNTH_EVENT_ID_OFFSET	1000000000ULL
66 
67 /*
68  * Event IDs are allocated sequentially, so a big offset from any
69  * existing ID will reach a unused range.
70  */
71 u64 auxtrace_synth_id_range_start(struct evsel *evsel)
72 {
73 	u64 id = evsel->core.id[0] + AUXTRACE_SYNTH_EVENT_ID_OFFSET;
74 
75 	if (!id)
76 		id = 1;
77 
78 	return id;
79 }
80 
81 /*
82  * Make a group from 'leader' to 'last', requiring that the events were not
83  * already grouped to a different leader.
84  */
85 static int evlist__regroup(struct evlist *evlist, struct evsel *leader, struct evsel *last)
86 {
87 	struct evsel *evsel;
88 	bool grp;
89 
90 	if (!evsel__is_group_leader(leader))
91 		return -EINVAL;
92 
93 	grp = false;
94 	evlist__for_each_entry(evlist, evsel) {
95 		if (grp) {
96 			if (!(evsel__leader(evsel) == leader ||
97 			     (evsel__leader(evsel) == evsel &&
98 			      evsel->core.nr_members <= 1)))
99 				return -EINVAL;
100 		} else if (evsel == leader) {
101 			grp = true;
102 		}
103 		if (evsel == last)
104 			break;
105 	}
106 
107 	grp = false;
108 	evlist__for_each_entry(evlist, evsel) {
109 		if (grp) {
110 			if (!evsel__has_leader(evsel, leader)) {
111 				evsel__set_leader(evsel, leader);
112 				if (leader->core.nr_members < 1)
113 					leader->core.nr_members = 1;
114 				leader->core.nr_members += 1;
115 			}
116 		} else if (evsel == leader) {
117 			grp = true;
118 		}
119 		if (evsel == last)
120 			break;
121 	}
122 
123 	return 0;
124 }
125 
126 static bool auxtrace__dont_decode(struct perf_session *session)
127 {
128 	return !session->itrace_synth_opts ||
129 	       session->itrace_synth_opts->dont_decode;
130 }
131 
132 int auxtrace_mmap__mmap(struct auxtrace_mmap *mm,
133 			struct auxtrace_mmap_params *mp,
134 			void *userpg, int fd)
135 {
136 	struct perf_event_mmap_page *pc = userpg;
137 
138 	WARN_ONCE(mm->base, "Uninitialized auxtrace_mmap\n");
139 
140 	mm->userpg = userpg;
141 	mm->mask = mp->mask;
142 	mm->len = mp->len;
143 	mm->prev = 0;
144 	mm->idx = mp->idx;
145 	mm->tid = mp->tid;
146 	mm->cpu = mp->cpu.cpu;
147 
148 	if (!mp->len || !mp->mmap_needed) {
149 		mm->base = NULL;
150 		return 0;
151 	}
152 
153 	pc->aux_offset = mp->offset;
154 	pc->aux_size = mp->len;
155 
156 	mm->base = mmap(NULL, mp->len, mp->prot, MAP_SHARED, fd, mp->offset);
157 	if (mm->base == MAP_FAILED) {
158 		pr_debug2("failed to mmap AUX area\n");
159 		mm->base = NULL;
160 		return -1;
161 	}
162 
163 	return 0;
164 }
165 
166 void auxtrace_mmap__munmap(struct auxtrace_mmap *mm)
167 {
168 	if (mm->base) {
169 		munmap(mm->base, mm->len);
170 		mm->base = NULL;
171 	}
172 }
173 
174 void auxtrace_mmap_params__init(struct auxtrace_mmap_params *mp,
175 				off_t auxtrace_offset,
176 				unsigned int auxtrace_pages,
177 				bool auxtrace_overwrite)
178 {
179 	if (auxtrace_pages) {
180 		mp->offset = auxtrace_offset;
181 		mp->len = auxtrace_pages * (size_t)page_size;
182 		mp->mask = is_power_of_2(mp->len) ? mp->len - 1 : 0;
183 		mp->prot = PROT_READ | (auxtrace_overwrite ? 0 : PROT_WRITE);
184 		pr_debug2("AUX area mmap length %zu\n", mp->len);
185 	} else {
186 		mp->len = 0;
187 	}
188 }
189 
190 void auxtrace_mmap_params__set_idx(struct auxtrace_mmap_params *mp,
191 				   struct evlist *evlist,
192 				   struct evsel *evsel, int idx)
193 {
194 	bool per_cpu = !perf_cpu_map__has_any_cpu(evlist->core.user_requested_cpus);
195 
196 	mp->mmap_needed = evsel->needs_auxtrace_mmap;
197 
198 	if (!mp->mmap_needed)
199 		return;
200 
201 	mp->idx = idx;
202 
203 	if (per_cpu) {
204 		mp->cpu = perf_cpu_map__cpu(evlist->core.all_cpus, idx);
205 		mp->tid = perf_thread_map__pid(evlist->core.threads, 0);
206 	} else {
207 		mp->cpu.cpu = -1;
208 		mp->tid = perf_thread_map__pid(evlist->core.threads, idx);
209 	}
210 }
211 
212 #define AUXTRACE_INIT_NR_QUEUES	32
213 
214 static struct auxtrace_queue *auxtrace_alloc_queue_array(unsigned int nr_queues)
215 {
216 	struct auxtrace_queue *queue_array;
217 	unsigned int max_nr_queues, i;
218 
219 	max_nr_queues = UINT_MAX / sizeof(struct auxtrace_queue);
220 	if (nr_queues > max_nr_queues)
221 		return NULL;
222 
223 	queue_array = calloc(nr_queues, sizeof(struct auxtrace_queue));
224 	if (!queue_array)
225 		return NULL;
226 
227 	for (i = 0; i < nr_queues; i++) {
228 		INIT_LIST_HEAD(&queue_array[i].head);
229 		queue_array[i].priv = NULL;
230 	}
231 
232 	return queue_array;
233 }
234 
235 int auxtrace_queues__init_nr(struct auxtrace_queues *queues, int nr_queues)
236 {
237 	queues->nr_queues = nr_queues;
238 	queues->queue_array = auxtrace_alloc_queue_array(queues->nr_queues);
239 	if (!queues->queue_array)
240 		return -ENOMEM;
241 	return 0;
242 }
243 
244 int auxtrace_queues__init(struct auxtrace_queues *queues)
245 {
246 	return auxtrace_queues__init_nr(queues, AUXTRACE_INIT_NR_QUEUES);
247 }
248 
249 static int auxtrace_queues__grow(struct auxtrace_queues *queues,
250 				 unsigned int new_nr_queues)
251 {
252 	unsigned int nr_queues = queues->nr_queues;
253 	struct auxtrace_queue *queue_array;
254 	unsigned int i;
255 
256 	if (!nr_queues)
257 		nr_queues = AUXTRACE_INIT_NR_QUEUES;
258 
259 	while (nr_queues && nr_queues < new_nr_queues)
260 		nr_queues <<= 1;
261 
262 	if (nr_queues < queues->nr_queues || nr_queues < new_nr_queues)
263 		return -EINVAL;
264 
265 	queue_array = auxtrace_alloc_queue_array(nr_queues);
266 	if (!queue_array)
267 		return -ENOMEM;
268 
269 	for (i = 0; i < queues->nr_queues; i++) {
270 		list_splice_tail(&queues->queue_array[i].head,
271 				 &queue_array[i].head);
272 		queue_array[i].tid = queues->queue_array[i].tid;
273 		queue_array[i].cpu = queues->queue_array[i].cpu;
274 		queue_array[i].set = queues->queue_array[i].set;
275 		queue_array[i].priv = queues->queue_array[i].priv;
276 	}
277 
278 	queues->nr_queues = nr_queues;
279 	queues->queue_array = queue_array;
280 
281 	return 0;
282 }
283 
284 static void *auxtrace_copy_data(u64 size, struct perf_session *session)
285 {
286 	int fd = perf_data__fd(session->data);
287 	void *p;
288 	ssize_t ret;
289 
290 	if (size > SSIZE_MAX)
291 		return NULL;
292 
293 	p = malloc(size);
294 	if (!p)
295 		return NULL;
296 
297 	ret = readn(fd, p, size);
298 	if (ret != (ssize_t)size) {
299 		free(p);
300 		return NULL;
301 	}
302 
303 	return p;
304 }
305 
306 static int auxtrace_queues__queue_buffer(struct auxtrace_queues *queues,
307 					 unsigned int idx,
308 					 struct auxtrace_buffer *buffer)
309 {
310 	struct auxtrace_queue *queue;
311 	int err;
312 
313 	if (idx >= queues->nr_queues) {
314 		err = auxtrace_queues__grow(queues, idx + 1);
315 		if (err)
316 			return err;
317 	}
318 
319 	queue = &queues->queue_array[idx];
320 
321 	if (!queue->set) {
322 		queue->set = true;
323 		queue->tid = buffer->tid;
324 		queue->cpu = buffer->cpu.cpu;
325 	}
326 
327 	buffer->buffer_nr = queues->next_buffer_nr++;
328 
329 	list_add_tail(&buffer->list, &queue->head);
330 
331 	queues->new_data = true;
332 	queues->populated = true;
333 
334 	return 0;
335 }
336 
337 /* Limit buffers to 32MiB on 32-bit */
338 #define BUFFER_LIMIT_FOR_32_BIT (32 * 1024 * 1024)
339 
340 static int auxtrace_queues__split_buffer(struct auxtrace_queues *queues,
341 					 unsigned int idx,
342 					 struct auxtrace_buffer *buffer)
343 {
344 	u64 sz = buffer->size;
345 	bool consecutive = false;
346 	struct auxtrace_buffer *b;
347 	int err;
348 
349 	while (sz > BUFFER_LIMIT_FOR_32_BIT) {
350 		b = memdup(buffer, sizeof(struct auxtrace_buffer));
351 		if (!b)
352 			return -ENOMEM;
353 		b->size = BUFFER_LIMIT_FOR_32_BIT;
354 		b->consecutive = consecutive;
355 		err = auxtrace_queues__queue_buffer(queues, idx, b);
356 		if (err) {
357 			auxtrace_buffer__free(b);
358 			return err;
359 		}
360 		buffer->data_offset += BUFFER_LIMIT_FOR_32_BIT;
361 		sz -= BUFFER_LIMIT_FOR_32_BIT;
362 		consecutive = true;
363 	}
364 
365 	buffer->size = sz;
366 	buffer->consecutive = consecutive;
367 
368 	return 0;
369 }
370 
371 static bool filter_cpu(struct perf_session *session, struct perf_cpu cpu)
372 {
373 	unsigned long *cpu_bitmap = session->itrace_synth_opts->cpu_bitmap;
374 
375 	return cpu_bitmap && cpu.cpu >= 0 && cpu.cpu < MAX_NR_CPUS &&
376 	       !test_bit(cpu.cpu, cpu_bitmap);
377 }
378 
379 static int auxtrace_queues__add_buffer(struct auxtrace_queues *queues,
380 				       struct perf_session *session,
381 				       unsigned int idx,
382 				       struct auxtrace_buffer *buffer,
383 				       struct auxtrace_buffer **buffer_ptr)
384 {
385 	int err = -ENOMEM;
386 
387 	if (filter_cpu(session, buffer->cpu))
388 		return 0;
389 
390 	buffer = memdup(buffer, sizeof(*buffer));
391 	if (!buffer)
392 		return -ENOMEM;
393 
394 	if (session->one_mmap) {
395 		buffer->data = buffer->data_offset - session->one_mmap_offset +
396 			       session->one_mmap_addr;
397 	} else if (perf_data__is_pipe(session->data)) {
398 		buffer->data = auxtrace_copy_data(buffer->size, session);
399 		if (!buffer->data)
400 			goto out_free;
401 		buffer->data_needs_freeing = true;
402 	} else if (BITS_PER_LONG == 32 &&
403 		   buffer->size > BUFFER_LIMIT_FOR_32_BIT) {
404 		err = auxtrace_queues__split_buffer(queues, idx, buffer);
405 		if (err)
406 			goto out_free;
407 	}
408 
409 	err = auxtrace_queues__queue_buffer(queues, idx, buffer);
410 	if (err)
411 		goto out_free;
412 
413 	/* FIXME: Doesn't work for split buffer */
414 	if (buffer_ptr)
415 		*buffer_ptr = buffer;
416 
417 	return 0;
418 
419 out_free:
420 	auxtrace_buffer__free(buffer);
421 	return err;
422 }
423 
424 int auxtrace_queues__add_event(struct auxtrace_queues *queues,
425 			       struct perf_session *session,
426 			       union perf_event *event, off_t data_offset,
427 			       struct auxtrace_buffer **buffer_ptr)
428 {
429 	struct auxtrace_buffer buffer = {
430 		.pid = -1,
431 		.tid = event->auxtrace.tid,
432 		.cpu = { event->auxtrace.cpu },
433 		.data_offset = data_offset,
434 		.offset = event->auxtrace.offset,
435 		.reference = event->auxtrace.reference,
436 		.size = event->auxtrace.size,
437 	};
438 	unsigned int idx = event->auxtrace.idx;
439 
440 	return auxtrace_queues__add_buffer(queues, session, idx, &buffer,
441 					   buffer_ptr);
442 }
443 
444 static int auxtrace_queues__add_indexed_event(struct auxtrace_queues *queues,
445 					      struct perf_session *session,
446 					      off_t file_offset, size_t sz)
447 {
448 	union perf_event *event;
449 	int err;
450 	char buf[PERF_SAMPLE_MAX_SIZE];
451 
452 	err = perf_session__peek_event(session, file_offset, buf,
453 				       PERF_SAMPLE_MAX_SIZE, &event, NULL);
454 	if (err)
455 		return err;
456 
457 	if (event->header.type == PERF_RECORD_AUXTRACE) {
458 		if (event->header.size < sizeof(struct perf_record_auxtrace) ||
459 		    event->header.size != sz) {
460 			err = -EINVAL;
461 			goto out;
462 		}
463 		file_offset += event->header.size;
464 		err = auxtrace_queues__add_event(queues, session, event,
465 						 file_offset, NULL);
466 	}
467 out:
468 	return err;
469 }
470 
471 void auxtrace_queues__free(struct auxtrace_queues *queues)
472 {
473 	unsigned int i;
474 
475 	for (i = 0; i < queues->nr_queues; i++) {
476 		while (!list_empty(&queues->queue_array[i].head)) {
477 			struct auxtrace_buffer *buffer;
478 
479 			buffer = list_entry(queues->queue_array[i].head.next,
480 					    struct auxtrace_buffer, list);
481 			list_del_init(&buffer->list);
482 			auxtrace_buffer__free(buffer);
483 		}
484 	}
485 
486 	zfree(&queues->queue_array);
487 	queues->nr_queues = 0;
488 }
489 
490 static void auxtrace_heapify(struct auxtrace_heap_item *heap_array,
491 			     unsigned int pos, unsigned int queue_nr,
492 			     u64 ordinal)
493 {
494 	unsigned int parent;
495 
496 	while (pos) {
497 		parent = (pos - 1) >> 1;
498 		if (heap_array[parent].ordinal <= ordinal)
499 			break;
500 		heap_array[pos] = heap_array[parent];
501 		pos = parent;
502 	}
503 	heap_array[pos].queue_nr = queue_nr;
504 	heap_array[pos].ordinal = ordinal;
505 }
506 
507 int auxtrace_heap__add(struct auxtrace_heap *heap, unsigned int queue_nr,
508 		       u64 ordinal)
509 {
510 	struct auxtrace_heap_item *heap_array;
511 
512 	if (queue_nr >= heap->heap_sz) {
513 		unsigned int heap_sz = AUXTRACE_INIT_NR_QUEUES;
514 
515 		while (heap_sz <= queue_nr)
516 			heap_sz <<= 1;
517 		heap_array = realloc(heap->heap_array,
518 				     heap_sz * sizeof(struct auxtrace_heap_item));
519 		if (!heap_array)
520 			return -ENOMEM;
521 		heap->heap_array = heap_array;
522 		heap->heap_sz = heap_sz;
523 	}
524 
525 	auxtrace_heapify(heap->heap_array, heap->heap_cnt++, queue_nr, ordinal);
526 
527 	return 0;
528 }
529 
530 void auxtrace_heap__free(struct auxtrace_heap *heap)
531 {
532 	zfree(&heap->heap_array);
533 	heap->heap_cnt = 0;
534 	heap->heap_sz = 0;
535 }
536 
537 void auxtrace_heap__pop(struct auxtrace_heap *heap)
538 {
539 	unsigned int pos, last, heap_cnt = heap->heap_cnt;
540 	struct auxtrace_heap_item *heap_array;
541 
542 	if (!heap_cnt)
543 		return;
544 
545 	heap->heap_cnt -= 1;
546 
547 	heap_array = heap->heap_array;
548 
549 	pos = 0;
550 	while (1) {
551 		unsigned int left, right;
552 
553 		left = (pos << 1) + 1;
554 		if (left >= heap_cnt)
555 			break;
556 		right = left + 1;
557 		if (right >= heap_cnt) {
558 			heap_array[pos] = heap_array[left];
559 			return;
560 		}
561 		if (heap_array[left].ordinal < heap_array[right].ordinal) {
562 			heap_array[pos] = heap_array[left];
563 			pos = left;
564 		} else {
565 			heap_array[pos] = heap_array[right];
566 			pos = right;
567 		}
568 	}
569 
570 	last = heap_cnt - 1;
571 	auxtrace_heapify(heap_array, pos, heap_array[last].queue_nr,
572 			 heap_array[last].ordinal);
573 }
574 
575 size_t auxtrace_record__info_priv_size(struct auxtrace_record *itr,
576 				       struct evlist *evlist)
577 {
578 	if (itr)
579 		return itr->info_priv_size(itr, evlist);
580 	return 0;
581 }
582 
583 static int auxtrace_not_supported(void)
584 {
585 	pr_err("AUX area tracing is not supported on this architecture\n");
586 	return -EINVAL;
587 }
588 
589 int auxtrace_record__info_fill(struct auxtrace_record *itr,
590 			       struct perf_session *session,
591 			       struct perf_record_auxtrace_info *auxtrace_info,
592 			       size_t priv_size)
593 {
594 	if (itr)
595 		return itr->info_fill(itr, session, auxtrace_info, priv_size);
596 	return auxtrace_not_supported();
597 }
598 
599 void auxtrace_record__free(struct auxtrace_record *itr)
600 {
601 	if (itr)
602 		itr->free(itr);
603 }
604 
605 int auxtrace_record__snapshot_start(struct auxtrace_record *itr)
606 {
607 	if (itr && itr->snapshot_start)
608 		return itr->snapshot_start(itr);
609 	return 0;
610 }
611 
612 int auxtrace_record__snapshot_finish(struct auxtrace_record *itr, bool on_exit)
613 {
614 	if (!on_exit && itr && itr->snapshot_finish)
615 		return itr->snapshot_finish(itr);
616 	return 0;
617 }
618 
619 int auxtrace_record__find_snapshot(struct auxtrace_record *itr, int idx,
620 				   struct auxtrace_mmap *mm,
621 				   unsigned char *data, u64 *head, u64 *old)
622 {
623 	if (itr && itr->find_snapshot)
624 		return itr->find_snapshot(itr, idx, mm, data, head, old);
625 	return 0;
626 }
627 
628 int auxtrace_record__options(struct auxtrace_record *itr,
629 			     struct evlist *evlist,
630 			     struct record_opts *opts)
631 {
632 	if (itr) {
633 		itr->evlist = evlist;
634 		return itr->recording_options(itr, evlist, opts);
635 	}
636 	return 0;
637 }
638 
639 u64 auxtrace_record__reference(struct auxtrace_record *itr)
640 {
641 	if (itr)
642 		return itr->reference(itr);
643 	return 0;
644 }
645 
646 int auxtrace_parse_snapshot_options(struct auxtrace_record *itr,
647 				    struct record_opts *opts, const char *str)
648 {
649 	if (!str)
650 		return 0;
651 
652 	/* PMU-agnostic options */
653 	switch (*str) {
654 	case 'e':
655 		opts->auxtrace_snapshot_on_exit = true;
656 		str++;
657 		break;
658 	default:
659 		break;
660 	}
661 
662 	if (itr && itr->parse_snapshot_options)
663 		return itr->parse_snapshot_options(itr, opts, str);
664 
665 	pr_err("No AUX area tracing to snapshot\n");
666 	return -EINVAL;
667 }
668 
669 static int evlist__enable_event_idx(struct evlist *evlist, struct evsel *evsel, int idx)
670 {
671 	bool per_cpu_mmaps = !perf_cpu_map__has_any_cpu(evlist->core.user_requested_cpus);
672 
673 	if (per_cpu_mmaps) {
674 		struct perf_cpu evlist_cpu = perf_cpu_map__cpu(evlist->core.all_cpus, idx);
675 		int cpu_map_idx = perf_cpu_map__idx(evsel->core.cpus, evlist_cpu);
676 
677 		if (cpu_map_idx == -1)
678 			return -EINVAL;
679 		return perf_evsel__enable_cpu(&evsel->core, cpu_map_idx);
680 	}
681 
682 	return perf_evsel__enable_thread(&evsel->core, idx);
683 }
684 
685 int auxtrace_record__read_finish(struct auxtrace_record *itr, int idx)
686 {
687 	struct evsel *evsel;
688 
689 	if (!itr->evlist)
690 		return -EINVAL;
691 
692 	evlist__for_each_entry(itr->evlist, evsel) {
693 		if (evsel__is_aux_event(evsel)) {
694 			if (evsel->disabled)
695 				return 0;
696 			return evlist__enable_event_idx(itr->evlist, evsel, idx);
697 		}
698 	}
699 	return -EINVAL;
700 }
701 
702 /*
703  * Event record size is 16-bit which results in a maximum size of about 64KiB.
704  * Allow about 4KiB for the rest of the sample record, to give a maximum
705  * AUX area sample size of 60KiB.
706  */
707 #define MAX_AUX_SAMPLE_SIZE (60 * 1024)
708 
709 /* Arbitrary default size if no other default provided */
710 #define DEFAULT_AUX_SAMPLE_SIZE (4 * 1024)
711 
712 static int auxtrace_validate_aux_sample_size(struct evlist *evlist,
713 					     struct record_opts *opts)
714 {
715 	struct evsel *evsel;
716 	bool has_aux_leader = false;
717 	u32 sz;
718 
719 	evlist__for_each_entry(evlist, evsel) {
720 		sz = evsel->core.attr.aux_sample_size;
721 		if (evsel__is_group_leader(evsel)) {
722 			has_aux_leader = evsel__is_aux_event(evsel);
723 			if (sz) {
724 				if (has_aux_leader)
725 					pr_err("Cannot add AUX area sampling to an AUX area event\n");
726 				else
727 					pr_err("Cannot add AUX area sampling to a group leader\n");
728 				return -EINVAL;
729 			}
730 		}
731 		if (sz > MAX_AUX_SAMPLE_SIZE) {
732 			pr_err("AUX area sample size %u too big, max. %d\n",
733 			       sz, MAX_AUX_SAMPLE_SIZE);
734 			return -EINVAL;
735 		}
736 		if (sz) {
737 			if (!has_aux_leader) {
738 				pr_err("Cannot add AUX area sampling because group leader is not an AUX area event\n");
739 				return -EINVAL;
740 			}
741 			evsel__set_sample_bit(evsel, AUX);
742 			opts->auxtrace_sample_mode = true;
743 		} else {
744 			evsel__reset_sample_bit(evsel, AUX);
745 		}
746 	}
747 
748 	if (!opts->auxtrace_sample_mode) {
749 		pr_err("AUX area sampling requires an AUX area event group leader plus other events to which to add samples\n");
750 		return -EINVAL;
751 	}
752 
753 	if (!perf_can_aux_sample()) {
754 		pr_err("AUX area sampling is not supported by kernel\n");
755 		return -EINVAL;
756 	}
757 
758 	return 0;
759 }
760 
761 int auxtrace_parse_sample_options(struct auxtrace_record *itr,
762 				  struct evlist *evlist,
763 				  struct record_opts *opts, const char *str)
764 {
765 	struct evsel_config_term *term;
766 	struct evsel *aux_evsel;
767 	bool has_aux_sample_size = false;
768 	bool has_aux_leader = false;
769 	struct evsel *evsel;
770 	char *endptr;
771 	unsigned long sz;
772 
773 	if (!str)
774 		goto no_opt;
775 
776 	if (!itr) {
777 		pr_err("No AUX area event to sample\n");
778 		return -EINVAL;
779 	}
780 
781 	sz = strtoul(str, &endptr, 0);
782 	if (*endptr || sz > UINT_MAX) {
783 		pr_err("Bad AUX area sampling option: '%s'\n", str);
784 		return -EINVAL;
785 	}
786 
787 	if (!sz)
788 		sz = itr->default_aux_sample_size;
789 
790 	if (!sz)
791 		sz = DEFAULT_AUX_SAMPLE_SIZE;
792 
793 	/* Set aux_sample_size based on --aux-sample option */
794 	evlist__for_each_entry(evlist, evsel) {
795 		if (evsel__is_group_leader(evsel)) {
796 			has_aux_leader = evsel__is_aux_event(evsel);
797 		} else if (has_aux_leader) {
798 			evsel->core.attr.aux_sample_size = sz;
799 		}
800 	}
801 no_opt:
802 	aux_evsel = NULL;
803 	/* Override with aux_sample_size from config term */
804 	evlist__for_each_entry(evlist, evsel) {
805 		if (evsel__is_aux_event(evsel))
806 			aux_evsel = evsel;
807 		term = evsel__get_config_term(evsel, AUX_SAMPLE_SIZE);
808 		if (term) {
809 			has_aux_sample_size = true;
810 			evsel->core.attr.aux_sample_size = term->val.aux_sample_size;
811 			/* If possible, group with the AUX event */
812 			if (aux_evsel && evsel->core.attr.aux_sample_size)
813 				evlist__regroup(evlist, aux_evsel, evsel);
814 		}
815 	}
816 
817 	if (!str && !has_aux_sample_size)
818 		return 0;
819 
820 	if (!itr) {
821 		pr_err("No AUX area event to sample\n");
822 		return -EINVAL;
823 	}
824 
825 	return auxtrace_validate_aux_sample_size(evlist, opts);
826 }
827 
828 static struct aux_action_opt {
829 	const char *str;
830 	u32 aux_action;
831 	bool aux_event_opt;
832 } aux_action_opts[] = {
833 	{"start-paused", BIT(0), true},
834 	{"pause",        BIT(1), false},
835 	{"resume",       BIT(2), false},
836 	{.str = NULL},
837 };
838 
839 static const struct aux_action_opt *auxtrace_parse_aux_action_str(const char *str)
840 {
841 	const struct aux_action_opt *opt;
842 
843 	if (!str)
844 		return NULL;
845 
846 	for (opt = aux_action_opts; opt->str; opt++)
847 		if (!strcmp(str, opt->str))
848 			return opt;
849 
850 	return NULL;
851 }
852 
853 int auxtrace_parse_aux_action(struct evlist *evlist)
854 {
855 	struct evsel_config_term *term;
856 	struct evsel *aux_evsel = NULL;
857 	struct evsel *evsel;
858 
859 	evlist__for_each_entry(evlist, evsel) {
860 		bool is_aux_event = evsel__is_aux_event(evsel);
861 		const struct aux_action_opt *opt;
862 
863 		if (is_aux_event)
864 			aux_evsel = evsel;
865 		term = evsel__get_config_term(evsel, AUX_ACTION);
866 		if (!term) {
867 			if (evsel__get_config_term(evsel, AUX_OUTPUT))
868 				goto regroup;
869 			continue;
870 		}
871 		opt = auxtrace_parse_aux_action_str(term->val.str);
872 		if (!opt) {
873 			pr_err("Bad aux-action '%s'\n", term->val.str);
874 			return -EINVAL;
875 		}
876 		if (opt->aux_event_opt && !is_aux_event) {
877 			pr_err("aux-action '%s' can only be used with AUX area event\n",
878 			       term->val.str);
879 			return -EINVAL;
880 		}
881 		if (!opt->aux_event_opt && is_aux_event) {
882 			pr_err("aux-action '%s' cannot be used for AUX area event itself\n",
883 			       term->val.str);
884 			return -EINVAL;
885 		}
886 		evsel->core.attr.aux_action = opt->aux_action;
887 regroup:
888 		/* If possible, group with the AUX event */
889 		if (aux_evsel)
890 			evlist__regroup(evlist, aux_evsel, evsel);
891 		if (!evsel__is_aux_event(evsel__leader(evsel))) {
892 			pr_err("Events with aux-action must have AUX area event group leader\n");
893 			return -EINVAL;
894 		}
895 	}
896 
897 	return 0;
898 }
899 
900 /**
901  * auxtrace_record__init - Initialize an AUX area tracing record.
902  * @evlist: The list of events to check for AUX area tracing event.
903  * @err: Pointer to an integer to store return code.
904  *
905  * This function looks through the @evlist to determine which AUX area
906  * tracing hardware is being used and initializes the auxtrace_record
907  * structure.
908  *
909  * Return:
910  * a) A pointer to the struct auxtrace_record with @err = 0 on success.
911  * b) NULL with @err = 0 if no AUX area tracing event is found/supported
912  *    (not considered an error).
913  * c) NULL with non-zero @err on actual auxtrace_record__init failure.
914  */
915 struct auxtrace_record *__weak
916 auxtrace_record__init(struct evlist *evlist __maybe_unused, int *err)
917 {
918 	*err = 0;
919 	return NULL;
920 }
921 
922 static int auxtrace_index__alloc(struct list_head *head)
923 {
924 	struct auxtrace_index *auxtrace_index;
925 
926 	auxtrace_index = malloc(sizeof(struct auxtrace_index));
927 	if (!auxtrace_index)
928 		return -ENOMEM;
929 
930 	auxtrace_index->nr = 0;
931 	INIT_LIST_HEAD(&auxtrace_index->list);
932 
933 	list_add_tail(&auxtrace_index->list, head);
934 
935 	return 0;
936 }
937 
938 void auxtrace_index__free(struct list_head *head)
939 {
940 	struct auxtrace_index *auxtrace_index, *n;
941 
942 	list_for_each_entry_safe(auxtrace_index, n, head, list) {
943 		list_del_init(&auxtrace_index->list);
944 		free(auxtrace_index);
945 	}
946 }
947 
948 static struct auxtrace_index *auxtrace_index__last(struct list_head *head)
949 {
950 	struct auxtrace_index *auxtrace_index;
951 	int err;
952 
953 	if (list_empty(head)) {
954 		err = auxtrace_index__alloc(head);
955 		if (err)
956 			return NULL;
957 	}
958 
959 	auxtrace_index = list_entry(head->prev, struct auxtrace_index, list);
960 
961 	if (auxtrace_index->nr >= PERF_AUXTRACE_INDEX_ENTRY_COUNT) {
962 		err = auxtrace_index__alloc(head);
963 		if (err)
964 			return NULL;
965 		auxtrace_index = list_entry(head->prev, struct auxtrace_index,
966 					    list);
967 	}
968 
969 	return auxtrace_index;
970 }
971 
972 int auxtrace_index__auxtrace_event(struct list_head *head,
973 				   union perf_event *event, off_t file_offset)
974 {
975 	struct auxtrace_index *auxtrace_index;
976 	size_t nr;
977 
978 	auxtrace_index = auxtrace_index__last(head);
979 	if (!auxtrace_index)
980 		return -ENOMEM;
981 
982 	nr = auxtrace_index->nr;
983 	auxtrace_index->entries[nr].file_offset = file_offset;
984 	auxtrace_index->entries[nr].sz = event->header.size;
985 	auxtrace_index->nr += 1;
986 
987 	return 0;
988 }
989 
990 static int auxtrace_index__do_write(int fd,
991 				    struct auxtrace_index *auxtrace_index)
992 {
993 	struct auxtrace_index_entry ent;
994 	size_t i;
995 
996 	for (i = 0; i < auxtrace_index->nr; i++) {
997 		ent.file_offset = auxtrace_index->entries[i].file_offset;
998 		ent.sz = auxtrace_index->entries[i].sz;
999 		if (writen(fd, &ent, sizeof(ent)) != sizeof(ent))
1000 			return -errno;
1001 	}
1002 	return 0;
1003 }
1004 
1005 int auxtrace_index__write(int fd, struct list_head *head)
1006 {
1007 	struct auxtrace_index *auxtrace_index;
1008 	u64 total = 0;
1009 	int err;
1010 
1011 	list_for_each_entry(auxtrace_index, head, list)
1012 		total += auxtrace_index->nr;
1013 
1014 	if (writen(fd, &total, sizeof(total)) != sizeof(total))
1015 		return -errno;
1016 
1017 	list_for_each_entry(auxtrace_index, head, list) {
1018 		err = auxtrace_index__do_write(fd, auxtrace_index);
1019 		if (err)
1020 			return err;
1021 	}
1022 
1023 	return 0;
1024 }
1025 
1026 static int auxtrace_index__process_entry(int fd, struct list_head *head,
1027 					 bool needs_swap)
1028 {
1029 	struct auxtrace_index *auxtrace_index;
1030 	struct auxtrace_index_entry ent;
1031 	size_t nr;
1032 
1033 	if (readn(fd, &ent, sizeof(ent)) != sizeof(ent))
1034 		return -1;
1035 
1036 	auxtrace_index = auxtrace_index__last(head);
1037 	if (!auxtrace_index)
1038 		return -1;
1039 
1040 	nr = auxtrace_index->nr;
1041 	if (needs_swap) {
1042 		auxtrace_index->entries[nr].file_offset =
1043 						bswap_64(ent.file_offset);
1044 		auxtrace_index->entries[nr].sz = bswap_64(ent.sz);
1045 	} else {
1046 		auxtrace_index->entries[nr].file_offset = ent.file_offset;
1047 		auxtrace_index->entries[nr].sz = ent.sz;
1048 	}
1049 
1050 	auxtrace_index->nr = nr + 1;
1051 
1052 	return 0;
1053 }
1054 
1055 int auxtrace_index__process(int fd, u64 size, struct perf_session *session,
1056 			    bool needs_swap)
1057 {
1058 	struct list_head *head = &session->auxtrace_index;
1059 	u64 nr;
1060 
1061 	if (readn(fd, &nr, sizeof(u64)) != sizeof(u64))
1062 		return -1;
1063 
1064 	if (needs_swap)
1065 		nr = bswap_64(nr);
1066 
1067 	if (sizeof(u64) + nr * sizeof(struct auxtrace_index_entry) > size)
1068 		return -1;
1069 
1070 	while (nr--) {
1071 		int err;
1072 
1073 		err = auxtrace_index__process_entry(fd, head, needs_swap);
1074 		if (err)
1075 			return -1;
1076 	}
1077 
1078 	return 0;
1079 }
1080 
1081 static int auxtrace_queues__process_index_entry(struct auxtrace_queues *queues,
1082 						struct perf_session *session,
1083 						struct auxtrace_index_entry *ent)
1084 {
1085 	return auxtrace_queues__add_indexed_event(queues, session,
1086 						  ent->file_offset, ent->sz);
1087 }
1088 
1089 int auxtrace_queues__process_index(struct auxtrace_queues *queues,
1090 				   struct perf_session *session)
1091 {
1092 	struct auxtrace_index *auxtrace_index;
1093 	struct auxtrace_index_entry *ent;
1094 	size_t i;
1095 	int err;
1096 
1097 	if (auxtrace__dont_decode(session))
1098 		return 0;
1099 
1100 	list_for_each_entry(auxtrace_index, &session->auxtrace_index, list) {
1101 		for (i = 0; i < auxtrace_index->nr; i++) {
1102 			ent = &auxtrace_index->entries[i];
1103 			err = auxtrace_queues__process_index_entry(queues,
1104 								   session,
1105 								   ent);
1106 			if (err)
1107 				return err;
1108 		}
1109 	}
1110 	return 0;
1111 }
1112 
1113 struct auxtrace_buffer *auxtrace_buffer__next(struct auxtrace_queue *queue,
1114 					      struct auxtrace_buffer *buffer)
1115 {
1116 	if (buffer) {
1117 		if (list_is_last(&buffer->list, &queue->head))
1118 			return NULL;
1119 		return list_entry(buffer->list.next, struct auxtrace_buffer,
1120 				  list);
1121 	} else {
1122 		if (list_empty(&queue->head))
1123 			return NULL;
1124 		return list_entry(queue->head.next, struct auxtrace_buffer,
1125 				  list);
1126 	}
1127 }
1128 
1129 struct auxtrace_queue *auxtrace_queues__sample_queue(struct auxtrace_queues *queues,
1130 						     struct perf_sample *sample,
1131 						     struct perf_session *session)
1132 {
1133 	struct perf_sample_id *sid;
1134 	unsigned int idx;
1135 	u64 id;
1136 
1137 	id = sample->id;
1138 	if (!id)
1139 		return NULL;
1140 
1141 	sid = evlist__id2sid(session->evlist, id);
1142 	if (!sid)
1143 		return NULL;
1144 
1145 	idx = sid->idx;
1146 
1147 	if (idx >= queues->nr_queues)
1148 		return NULL;
1149 
1150 	return &queues->queue_array[idx];
1151 }
1152 
1153 int auxtrace_queues__add_sample(struct auxtrace_queues *queues,
1154 				struct perf_session *session,
1155 				struct perf_sample *sample, u64 data_offset,
1156 				u64 reference)
1157 {
1158 	struct auxtrace_buffer buffer = {
1159 		.pid = -1,
1160 		.data_offset = data_offset,
1161 		.reference = reference,
1162 		.size = sample->aux_sample.size,
1163 	};
1164 	struct perf_sample_id *sid;
1165 	u64 id = sample->id;
1166 	unsigned int idx;
1167 
1168 	if (!id)
1169 		return -EINVAL;
1170 
1171 	sid = evlist__id2sid(session->evlist, id);
1172 	if (!sid)
1173 		return -ENOENT;
1174 
1175 	idx = sid->idx;
1176 	buffer.tid = sid->tid;
1177 	buffer.cpu = sid->cpu;
1178 
1179 	return auxtrace_queues__add_buffer(queues, session, idx, &buffer, NULL);
1180 }
1181 
1182 struct queue_data {
1183 	bool samples;
1184 	bool events;
1185 };
1186 
1187 static int auxtrace_queue_data_cb(struct perf_session *session,
1188 				  union perf_event *event, u64 offset,
1189 				  void *data)
1190 {
1191 	struct queue_data *qd = data;
1192 	struct perf_sample sample;
1193 	int err;
1194 
1195 	if (qd->events && event->header.type == PERF_RECORD_AUXTRACE) {
1196 		if (event->header.size < sizeof(struct perf_record_auxtrace))
1197 			return -EINVAL;
1198 		offset += event->header.size;
1199 		return session->auxtrace->queue_data(session, NULL, event,
1200 						     offset);
1201 	}
1202 
1203 	if (!qd->samples || event->header.type != PERF_RECORD_SAMPLE)
1204 		return 0;
1205 
1206 	perf_sample__init(&sample, /*all=*/false);
1207 	err = evlist__parse_sample(session->evlist, event, &sample);
1208 	if (err)
1209 		goto out;
1210 
1211 	if (sample.aux_sample.size) {
1212 		offset += sample.aux_sample.data - (void *)event;
1213 
1214 		err = session->auxtrace->queue_data(session, &sample, NULL, offset);
1215 	}
1216 out:
1217 	perf_sample__exit(&sample);
1218 	return err;
1219 }
1220 
1221 int auxtrace_queue_data(struct perf_session *session, bool samples, bool events)
1222 {
1223 	struct queue_data qd = {
1224 		.samples = samples,
1225 		.events = events,
1226 	};
1227 
1228 	if (auxtrace__dont_decode(session))
1229 		return 0;
1230 
1231 	if (perf_data__is_pipe(session->data))
1232 		return 0;
1233 
1234 	if (!session->auxtrace || !session->auxtrace->queue_data)
1235 		return -EINVAL;
1236 
1237 	return perf_session__peek_events(session, session->header.data_offset,
1238 					 session->header.data_size,
1239 					 auxtrace_queue_data_cb, &qd);
1240 }
1241 
1242 void *auxtrace_buffer__get_data_rw(struct auxtrace_buffer *buffer, int fd, bool rw)
1243 {
1244 	int prot = rw ? PROT_READ | PROT_WRITE : PROT_READ;
1245 	size_t adj = buffer->data_offset & (page_size - 1);
1246 	size_t size = buffer->size + adj;
1247 	off_t file_offset = buffer->data_offset - adj;
1248 	void *addr;
1249 
1250 	if (buffer->data)
1251 		return buffer->data;
1252 
1253 	addr = mmap(NULL, size, prot, MAP_SHARED, fd, file_offset);
1254 	if (addr == MAP_FAILED)
1255 		return NULL;
1256 
1257 	buffer->mmap_addr = addr;
1258 	buffer->mmap_size = size;
1259 
1260 	buffer->data = addr + adj;
1261 
1262 	return buffer->data;
1263 }
1264 
1265 void auxtrace_buffer__put_data(struct auxtrace_buffer *buffer)
1266 {
1267 	if (!buffer->data || !buffer->mmap_addr)
1268 		return;
1269 	munmap(buffer->mmap_addr, buffer->mmap_size);
1270 	buffer->mmap_addr = NULL;
1271 	buffer->mmap_size = 0;
1272 	buffer->data = NULL;
1273 	buffer->use_data = NULL;
1274 }
1275 
1276 void auxtrace_buffer__drop_data(struct auxtrace_buffer *buffer)
1277 {
1278 	auxtrace_buffer__put_data(buffer);
1279 	if (buffer->data_needs_freeing) {
1280 		buffer->data_needs_freeing = false;
1281 		zfree(&buffer->data);
1282 		buffer->use_data = NULL;
1283 		buffer->size = 0;
1284 	}
1285 }
1286 
1287 void auxtrace_buffer__free(struct auxtrace_buffer *buffer)
1288 {
1289 	auxtrace_buffer__drop_data(buffer);
1290 	free(buffer);
1291 }
1292 
1293 void auxtrace_synth_guest_error(struct perf_record_auxtrace_error *auxtrace_error, int type,
1294 				int code, int cpu, pid_t pid, pid_t tid, u64 ip,
1295 				const char *msg, u64 timestamp,
1296 				pid_t machine_pid, int vcpu)
1297 {
1298 	size_t size;
1299 
1300 	memset(auxtrace_error, 0, sizeof(struct perf_record_auxtrace_error));
1301 
1302 	auxtrace_error->header.type = PERF_RECORD_AUXTRACE_ERROR;
1303 	auxtrace_error->type = type;
1304 	auxtrace_error->code = code;
1305 	auxtrace_error->cpu = cpu;
1306 	auxtrace_error->pid = pid;
1307 	auxtrace_error->tid = tid;
1308 	auxtrace_error->fmt = 1;
1309 	auxtrace_error->ip = ip;
1310 	auxtrace_error->time = timestamp;
1311 	strlcpy(auxtrace_error->msg, msg, MAX_AUXTRACE_ERROR_MSG);
1312 	if (machine_pid) {
1313 		auxtrace_error->fmt = 2;
1314 		auxtrace_error->machine_pid = machine_pid;
1315 		auxtrace_error->vcpu = vcpu;
1316 		size = sizeof(*auxtrace_error);
1317 	} else {
1318 		size = (void *)auxtrace_error->msg - (void *)auxtrace_error +
1319 		       strlen(auxtrace_error->msg) + 1;
1320 	}
1321 	auxtrace_error->header.size = PERF_ALIGN(size, sizeof(u64));
1322 }
1323 
1324 void auxtrace_synth_error(struct perf_record_auxtrace_error *auxtrace_error, int type,
1325 			  int code, int cpu, pid_t pid, pid_t tid, u64 ip,
1326 			  const char *msg, u64 timestamp)
1327 {
1328 	auxtrace_synth_guest_error(auxtrace_error, type, code, cpu, pid, tid,
1329 				   ip, msg, timestamp, 0, -1);
1330 }
1331 
1332 int perf_event__synthesize_auxtrace_info(struct auxtrace_record *itr,
1333 					 const struct perf_tool *tool,
1334 					 struct perf_session *session,
1335 					 perf_event__handler_t process)
1336 {
1337 	union perf_event *ev;
1338 	size_t priv_size;
1339 	int err;
1340 
1341 	pr_debug2("Synthesizing auxtrace information\n");
1342 	priv_size = auxtrace_record__info_priv_size(itr, session->evlist);
1343 	ev = zalloc(sizeof(struct perf_record_auxtrace_info) + priv_size);
1344 	if (!ev)
1345 		return -ENOMEM;
1346 
1347 	ev->auxtrace_info.header.type = PERF_RECORD_AUXTRACE_INFO;
1348 	ev->auxtrace_info.header.size = sizeof(struct perf_record_auxtrace_info) +
1349 					priv_size;
1350 	err = auxtrace_record__info_fill(itr, session, &ev->auxtrace_info,
1351 					 priv_size);
1352 	if (err)
1353 		goto out_free;
1354 
1355 	err = process(tool, ev, NULL, NULL);
1356 out_free:
1357 	free(ev);
1358 	return err;
1359 }
1360 
1361 static void unleader_evsel(struct evlist *evlist, struct evsel *leader)
1362 {
1363 	struct evsel *new_leader = NULL;
1364 	struct evsel *evsel;
1365 
1366 	/* Find new leader for the group */
1367 	evlist__for_each_entry(evlist, evsel) {
1368 		if (!evsel__has_leader(evsel, leader) || evsel == leader)
1369 			continue;
1370 		if (!new_leader)
1371 			new_leader = evsel;
1372 		evsel__set_leader(evsel, new_leader);
1373 	}
1374 
1375 	/* Update group information */
1376 	if (new_leader) {
1377 		zfree(&new_leader->group_name);
1378 		new_leader->group_name = leader->group_name;
1379 		leader->group_name = NULL;
1380 
1381 		new_leader->core.nr_members = leader->core.nr_members - 1;
1382 		leader->core.nr_members = 1;
1383 	}
1384 }
1385 
1386 static void unleader_auxtrace(struct perf_session *session)
1387 {
1388 	struct evsel *evsel;
1389 
1390 	evlist__for_each_entry(session->evlist, evsel) {
1391 		if (auxtrace__evsel_is_auxtrace(session, evsel) &&
1392 		    evsel__is_group_leader(evsel)) {
1393 			unleader_evsel(session->evlist, evsel);
1394 		}
1395 	}
1396 }
1397 
1398 int perf_event__process_auxtrace_info(const struct perf_tool *tool __maybe_unused,
1399 				      struct perf_session *session,
1400 				      union perf_event *event)
1401 {
1402 	enum auxtrace_type type = event->auxtrace_info.type;
1403 	int err;
1404 
1405 	if (dump_trace)
1406 		fprintf(stdout, " type: %u\n", type);
1407 
1408 	switch (type) {
1409 	case PERF_AUXTRACE_INTEL_PT:
1410 		err = intel_pt_process_auxtrace_info(event, session);
1411 		break;
1412 	case PERF_AUXTRACE_INTEL_BTS:
1413 		err = intel_bts_process_auxtrace_info(event, session);
1414 		break;
1415 	case PERF_AUXTRACE_ARM_SPE:
1416 		err = arm_spe_process_auxtrace_info(event, session);
1417 		break;
1418 	case PERF_AUXTRACE_CS_ETM:
1419 		err = cs_etm__process_auxtrace_info(event, session);
1420 		break;
1421 	case PERF_AUXTRACE_S390_CPUMSF:
1422 		err = s390_cpumsf_process_auxtrace_info(event, session);
1423 		break;
1424 	case PERF_AUXTRACE_HISI_PTT:
1425 		err = hisi_ptt_process_auxtrace_info(event, session);
1426 		break;
1427 	case PERF_AUXTRACE_VPA_DTL:
1428 		err = powerpc_vpadtl_process_auxtrace_info(event, session);
1429 		break;
1430 	case PERF_AUXTRACE_UNKNOWN:
1431 	default:
1432 		return -EINVAL;
1433 	}
1434 
1435 	if (err)
1436 		return err;
1437 
1438 	unleader_auxtrace(session);
1439 
1440 	return 0;
1441 }
1442 
1443 s64 perf_event__process_auxtrace(const struct perf_tool *tool __maybe_unused,
1444 				 struct perf_session *session,
1445 				 union perf_event *event)
1446 {
1447 	s64 err;
1448 
1449 	if (dump_trace)
1450 		fprintf(stdout, " size: %#"PRI_lx64"  offset: %#"PRI_lx64"  ref: %#"PRI_lx64"  idx: %u  tid: %d  cpu: %d\n",
1451 			event->auxtrace.size, event->auxtrace.offset,
1452 			event->auxtrace.reference, event->auxtrace.idx,
1453 			event->auxtrace.tid, event->auxtrace.cpu);
1454 
1455 	if (auxtrace__dont_decode(session))
1456 		return event->auxtrace.size;
1457 
1458 	if (!session->auxtrace || event->header.type != PERF_RECORD_AUXTRACE)
1459 		return -EINVAL;
1460 
1461 	err = session->auxtrace->process_auxtrace_event(session, event, session->tool);
1462 	if (err < 0)
1463 		return err;
1464 
1465 	return event->auxtrace.size;
1466 }
1467 
1468 #define PERF_ITRACE_DEFAULT_PERIOD_TYPE		PERF_ITRACE_PERIOD_NANOSECS
1469 #define PERF_ITRACE_DEFAULT_PERIOD		100000
1470 #define PERF_ITRACE_DEFAULT_CALLCHAIN_SZ	16
1471 #define PERF_ITRACE_MAX_CALLCHAIN_SZ		1024
1472 #define PERF_ITRACE_DEFAULT_LAST_BRANCH_SZ	64
1473 #define PERF_ITRACE_MAX_LAST_BRANCH_SZ		1024
1474 
1475 void itrace_synth_opts__set_default(struct itrace_synth_opts *synth_opts,
1476 				    bool no_sample)
1477 {
1478 	synth_opts->branches = true;
1479 	synth_opts->transactions = true;
1480 	synth_opts->ptwrites = true;
1481 	synth_opts->pwr_events = true;
1482 	synth_opts->other_events = true;
1483 	synth_opts->intr_events = true;
1484 	synth_opts->errors = true;
1485 	synth_opts->flc = true;
1486 	synth_opts->llc = true;
1487 	synth_opts->tlb = true;
1488 	synth_opts->mem = true;
1489 	synth_opts->remote_access = true;
1490 
1491 	if (no_sample) {
1492 		synth_opts->period_type = PERF_ITRACE_PERIOD_INSTRUCTIONS;
1493 		synth_opts->period = 1;
1494 		synth_opts->calls = true;
1495 	} else {
1496 		synth_opts->instructions = true;
1497 		synth_opts->cycles = true;
1498 		synth_opts->period_type = PERF_ITRACE_DEFAULT_PERIOD_TYPE;
1499 		synth_opts->period = PERF_ITRACE_DEFAULT_PERIOD;
1500 	}
1501 	synth_opts->callchain_sz = PERF_ITRACE_DEFAULT_CALLCHAIN_SZ;
1502 	synth_opts->last_branch_sz = PERF_ITRACE_DEFAULT_LAST_BRANCH_SZ;
1503 	synth_opts->initial_skip = 0;
1504 }
1505 
1506 static int get_flag(const char **ptr, unsigned int *flags)
1507 {
1508 	while (1) {
1509 		char c = **ptr;
1510 
1511 		if (c >= 'a' && c <= 'z') {
1512 			*flags |= 1 << (c - 'a');
1513 			++*ptr;
1514 			return 0;
1515 		} else if (c == ' ') {
1516 			++*ptr;
1517 			continue;
1518 		} else {
1519 			return -1;
1520 		}
1521 	}
1522 }
1523 
1524 static int get_flags(const char **ptr, unsigned int *plus_flags, unsigned int *minus_flags)
1525 {
1526 	while (1) {
1527 		switch (**ptr) {
1528 		case '+':
1529 			++*ptr;
1530 			if (get_flag(ptr, plus_flags))
1531 				return -1;
1532 			break;
1533 		case '-':
1534 			++*ptr;
1535 			if (get_flag(ptr, minus_flags))
1536 				return -1;
1537 			break;
1538 		case ' ':
1539 			++*ptr;
1540 			break;
1541 		default:
1542 			return 0;
1543 		}
1544 	}
1545 }
1546 
1547 #define ITRACE_DFLT_LOG_ON_ERROR_SZ 16384
1548 
1549 static unsigned int itrace_log_on_error_size(void)
1550 {
1551 	unsigned int sz = 0;
1552 
1553 	perf_config_scan("itrace.debug-log-buffer-size", "%u", &sz);
1554 	return sz ?: ITRACE_DFLT_LOG_ON_ERROR_SZ;
1555 }
1556 
1557 /*
1558  * Please check tools/perf/Documentation/perf-script.txt for information
1559  * about the options parsed here, which is introduced after this cset,
1560  * when support in 'perf script' for these options is introduced.
1561  */
1562 int itrace_do_parse_synth_opts(struct itrace_synth_opts *synth_opts,
1563 			       const char *str, int unset)
1564 {
1565 	const char *p;
1566 	char *endptr;
1567 	bool period_type_set = false;
1568 	bool period_set = false;
1569 	bool iy = false;
1570 
1571 	synth_opts->set = true;
1572 
1573 	if (unset) {
1574 		synth_opts->dont_decode = true;
1575 		return 0;
1576 	}
1577 
1578 	if (!str) {
1579 		itrace_synth_opts__set_default(synth_opts,
1580 					       synth_opts->default_no_sample);
1581 		return 0;
1582 	}
1583 
1584 	for (p = str; *p;) {
1585 		switch (*p++) {
1586 		case 'i':
1587 		case 'y':
1588 			iy = true;
1589 			if (p[-1] == 'y')
1590 				synth_opts->cycles = true;
1591 			else
1592 				synth_opts->instructions = true;
1593 			while (*p == ' ' || *p == ',')
1594 				p += 1;
1595 			if (isdigit(*p)) {
1596 				synth_opts->period = strtoull(p, &endptr, 10);
1597 				period_set = true;
1598 				p = endptr;
1599 				while (*p == ' ' || *p == ',')
1600 					p += 1;
1601 				switch (*p++) {
1602 				case 'i':
1603 					synth_opts->period_type =
1604 						PERF_ITRACE_PERIOD_INSTRUCTIONS;
1605 					period_type_set = true;
1606 					break;
1607 				case 't':
1608 					synth_opts->period_type =
1609 						PERF_ITRACE_PERIOD_TICKS;
1610 					period_type_set = true;
1611 					break;
1612 				case 'm':
1613 					synth_opts->period *= 1000;
1614 					/* Fall through */
1615 				case 'u':
1616 					synth_opts->period *= 1000;
1617 					/* Fall through */
1618 				case 'n':
1619 					if (*p++ != 's')
1620 						goto out_err;
1621 					synth_opts->period_type =
1622 						PERF_ITRACE_PERIOD_NANOSECS;
1623 					period_type_set = true;
1624 					break;
1625 				case '\0':
1626 					goto out;
1627 				default:
1628 					goto out_err;
1629 				}
1630 			}
1631 			break;
1632 		case 'b':
1633 			synth_opts->branches = true;
1634 			break;
1635 		case 'x':
1636 			synth_opts->transactions = true;
1637 			break;
1638 		case 'w':
1639 			synth_opts->ptwrites = true;
1640 			break;
1641 		case 'p':
1642 			synth_opts->pwr_events = true;
1643 			break;
1644 		case 'o':
1645 			synth_opts->other_events = true;
1646 			break;
1647 		case 'I':
1648 			synth_opts->intr_events = true;
1649 			break;
1650 		case 'e':
1651 			synth_opts->errors = true;
1652 			if (get_flags(&p, &synth_opts->error_plus_flags,
1653 				      &synth_opts->error_minus_flags))
1654 				goto out_err;
1655 			break;
1656 		case 'd':
1657 			synth_opts->log = true;
1658 			if (get_flags(&p, &synth_opts->log_plus_flags,
1659 				      &synth_opts->log_minus_flags))
1660 				goto out_err;
1661 			if (synth_opts->log_plus_flags & AUXTRACE_LOG_FLG_ON_ERROR)
1662 				synth_opts->log_on_error_size = itrace_log_on_error_size();
1663 			break;
1664 		case 'c':
1665 			synth_opts->branches = true;
1666 			synth_opts->calls = true;
1667 			break;
1668 		case 'r':
1669 			synth_opts->branches = true;
1670 			synth_opts->returns = true;
1671 			break;
1672 		case 'G':
1673 		case 'g':
1674 			if (p[-1] == 'G')
1675 				synth_opts->add_callchain = true;
1676 			else
1677 				synth_opts->callchain = true;
1678 			synth_opts->callchain_sz =
1679 					PERF_ITRACE_DEFAULT_CALLCHAIN_SZ;
1680 			while (*p == ' ' || *p == ',')
1681 				p += 1;
1682 			if (isdigit(*p)) {
1683 				unsigned int val;
1684 
1685 				val = strtoul(p, &endptr, 10);
1686 				p = endptr;
1687 				if (!val || val > PERF_ITRACE_MAX_CALLCHAIN_SZ)
1688 					goto out_err;
1689 				synth_opts->callchain_sz = val;
1690 			}
1691 			break;
1692 		case 'L':
1693 		case 'l':
1694 			if (p[-1] == 'L')
1695 				synth_opts->add_last_branch = true;
1696 			else
1697 				synth_opts->last_branch = true;
1698 			synth_opts->last_branch_sz =
1699 					PERF_ITRACE_DEFAULT_LAST_BRANCH_SZ;
1700 			while (*p == ' ' || *p == ',')
1701 				p += 1;
1702 			if (isdigit(*p)) {
1703 				unsigned int val;
1704 
1705 				val = strtoul(p, &endptr, 10);
1706 				p = endptr;
1707 				if (!val ||
1708 				    val > PERF_ITRACE_MAX_LAST_BRANCH_SZ)
1709 					goto out_err;
1710 				synth_opts->last_branch_sz = val;
1711 			}
1712 			break;
1713 		case 's':
1714 			synth_opts->initial_skip = strtoul(p, &endptr, 10);
1715 			if (p == endptr)
1716 				goto out_err;
1717 			p = endptr;
1718 			break;
1719 		case 'f':
1720 			synth_opts->flc = true;
1721 			break;
1722 		case 'm':
1723 			synth_opts->llc = true;
1724 			break;
1725 		case 't':
1726 			synth_opts->tlb = true;
1727 			break;
1728 		case 'a':
1729 			synth_opts->remote_access = true;
1730 			break;
1731 		case 'M':
1732 			synth_opts->mem = true;
1733 			break;
1734 		case 'q':
1735 			synth_opts->quick += 1;
1736 			break;
1737 		case 'A':
1738 			synth_opts->approx_ipc = true;
1739 			break;
1740 		case 'Z':
1741 			synth_opts->timeless_decoding = true;
1742 			break;
1743 		case 'T':
1744 			synth_opts->use_timestamp = true;
1745 			break;
1746 		case ' ':
1747 		case ',':
1748 			break;
1749 		default:
1750 			goto out_err;
1751 		}
1752 	}
1753 out:
1754 	if (iy) {
1755 		if (!period_type_set)
1756 			synth_opts->period_type =
1757 					PERF_ITRACE_DEFAULT_PERIOD_TYPE;
1758 		if (!period_set)
1759 			synth_opts->period = PERF_ITRACE_DEFAULT_PERIOD;
1760 	}
1761 
1762 	return 0;
1763 
1764 out_err:
1765 	pr_err("Bad Instruction Tracing options '%s'\n", str);
1766 	return -EINVAL;
1767 }
1768 
1769 int itrace_parse_synth_opts(const struct option *opt, const char *str, int unset)
1770 {
1771 	return itrace_do_parse_synth_opts(opt->value, str, unset);
1772 }
1773 
1774 static const char * const auxtrace_error_type_name[] = {
1775 	[PERF_AUXTRACE_ERROR_ITRACE] = "instruction trace",
1776 };
1777 
1778 static const char *auxtrace_error_name(unsigned int type)
1779 {
1780 	const char *error_type_name = NULL;
1781 
1782 	if (type < PERF_AUXTRACE_ERROR_MAX)
1783 		error_type_name = auxtrace_error_type_name[type];
1784 	if (!error_type_name)
1785 		error_type_name = "unknown AUX";
1786 	return error_type_name;
1787 }
1788 
1789 size_t perf_event__fprintf_auxtrace_error(union perf_event *event, FILE *fp)
1790 {
1791 	struct perf_record_auxtrace_error *e = &event->auxtrace_error;
1792 	unsigned long long nsecs = e->time;
1793 	const char *msg = e->msg;
1794 	int msg_max;
1795 	int ret;
1796 
1797 	ret = fprintf(fp, " %s error type %u",
1798 		      auxtrace_error_name(e->type), e->type);
1799 
1800 	if (e->fmt && nsecs) {
1801 		unsigned long secs = nsecs / NSEC_PER_SEC;
1802 
1803 		nsecs -= secs * NSEC_PER_SEC;
1804 		ret += fprintf(fp, " time %lu.%09llu", secs, nsecs);
1805 	} else {
1806 		ret += fprintf(fp, " time 0");
1807 	}
1808 
1809 	if (!e->fmt)
1810 		msg = (const char *)&e->time;
1811 
1812 	/* Bound msg to the bytes actually within the event, capped at the array size */
1813 	msg_max = (int)((void *)event + event->header.size - (void *)msg);
1814 	if (msg_max < 0)
1815 		msg_max = 0;
1816 	if (msg_max > (int)sizeof(e->msg))
1817 		msg_max = sizeof(e->msg);
1818 
1819 	/*
1820 	 * Unlike the swap path which downgrades fmt in place,
1821 	 * native-endian events are mmap'd read-only — check size
1822 	 * instead to avoid accessing machine_pid/vcpu OOB.
1823 	 */
1824 	if (e->fmt >= 2 &&
1825 	    event->header.size >= offsetof(typeof(event->auxtrace_error), vcpu) +
1826 				  sizeof(event->auxtrace_error.vcpu) &&
1827 	    e->machine_pid)
1828 		ret += fprintf(fp, " machine_pid %d vcpu %d", e->machine_pid, e->vcpu);
1829 
1830 	ret += fprintf(fp, " cpu %d pid %d tid %d ip %#"PRI_lx64" code %u: %.*s\n",
1831 		       e->cpu, e->pid, e->tid, e->ip, e->code, msg_max, msg);
1832 	return ret;
1833 }
1834 
1835 void perf_session__auxtrace_error_inc(struct perf_session *session,
1836 				      union perf_event *event)
1837 {
1838 	struct perf_record_auxtrace_error *e = &event->auxtrace_error;
1839 
1840 	if (e->type < PERF_AUXTRACE_ERROR_MAX)
1841 		session->evlist->stats.nr_auxtrace_errors[e->type] += 1;
1842 }
1843 
1844 void events_stats__auxtrace_error_warn(const struct events_stats *stats)
1845 {
1846 	int i;
1847 
1848 	for (i = 0; i < PERF_AUXTRACE_ERROR_MAX; i++) {
1849 		if (!stats->nr_auxtrace_errors[i])
1850 			continue;
1851 		ui__warning("%u %s errors\n",
1852 			    stats->nr_auxtrace_errors[i],
1853 			    auxtrace_error_name(i));
1854 	}
1855 }
1856 
1857 int perf_event__process_auxtrace_error(const struct perf_tool *tool __maybe_unused,
1858 				       struct perf_session *session,
1859 				       union perf_event *event)
1860 {
1861 	if (auxtrace__dont_decode(session))
1862 		return 0;
1863 
1864 	perf_event__fprintf_auxtrace_error(event, stdout);
1865 	return 0;
1866 }
1867 
1868 /*
1869  * In the compat mode kernel runs in 64-bit and perf tool runs in 32-bit mode,
1870  * 32-bit perf tool cannot access 64-bit value atomically, which might lead to
1871  * the issues caused by the below sequence on multiple CPUs: when perf tool
1872  * accesses either the load operation or the store operation for 64-bit value,
1873  * on some architectures the operation is divided into two instructions, one
1874  * is for accessing the low 32-bit value and another is for the high 32-bit;
1875  * thus these two user operations can give the kernel chances to access the
1876  * 64-bit value, and thus leads to the unexpected load values.
1877  *
1878  *   kernel (64-bit)                        user (32-bit)
1879  *
1880  *   if (LOAD ->aux_tail) { --,             LOAD ->aux_head_lo
1881  *       STORE $aux_data      |       ,--->
1882  *       FLUSH $aux_data      |       |     LOAD ->aux_head_hi
1883  *       STORE ->aux_head   --|-------`     smp_rmb()
1884  *   }                        |             LOAD $data
1885  *                            |             smp_mb()
1886  *                            |             STORE ->aux_tail_lo
1887  *                            `----------->
1888  *                                          STORE ->aux_tail_hi
1889  *
1890  * For this reason, it's impossible for the perf tool to work correctly when
1891  * the AUX head or tail is bigger than 4GB (more than 32 bits length); and we
1892  * can not simply limit the AUX ring buffer to less than 4GB, the reason is
1893  * the pointers can be increased monotonically, whatever the buffer size it is,
1894  * at the end the head and tail can be bigger than 4GB and carry out to the
1895  * high 32-bit.
1896  *
1897  * To mitigate the issues and improve the user experience, we can allow the
1898  * perf tool working in certain conditions and bail out with error if detect
1899  * any overflow cannot be handled.
1900  *
1901  * For reading the AUX head, it reads out the values for three times, and
1902  * compares the high 4 bytes of the values between the first time and the last
1903  * time, if there has no change for high 4 bytes injected by the kernel during
1904  * the user reading sequence, it's safe for use the second value.
1905  *
1906  * When compat_auxtrace_mmap__write_tail() detects any carrying in the high
1907  * 32 bits, it means there have two store operations in user space and it cannot
1908  * promise the atomicity for 64-bit write, so return '-1' in this case to tell
1909  * the caller an overflow error has happened.
1910  */
1911 u64 __weak compat_auxtrace_mmap__read_head(struct auxtrace_mmap *mm)
1912 {
1913 	struct perf_event_mmap_page *pc = mm->userpg;
1914 	u64 first, second, last;
1915 	u64 mask = (u64)(UINT32_MAX) << 32;
1916 
1917 	do {
1918 		first = READ_ONCE(pc->aux_head);
1919 		/* Ensure all reads are done after we read the head */
1920 		smp_rmb();
1921 		second = READ_ONCE(pc->aux_head);
1922 		/* Ensure all reads are done after we read the head */
1923 		smp_rmb();
1924 		last = READ_ONCE(pc->aux_head);
1925 	} while ((first & mask) != (last & mask));
1926 
1927 	return second;
1928 }
1929 
1930 int __weak compat_auxtrace_mmap__write_tail(struct auxtrace_mmap *mm, u64 tail)
1931 {
1932 	struct perf_event_mmap_page *pc = mm->userpg;
1933 	u64 mask = (u64)(UINT32_MAX) << 32;
1934 
1935 	if (tail & mask)
1936 		return -1;
1937 
1938 	/* Ensure all reads are done before we write the tail out */
1939 	smp_mb();
1940 	WRITE_ONCE(pc->aux_tail, tail);
1941 	return 0;
1942 }
1943 
1944 static int __auxtrace_mmap__read(struct mmap *map,
1945 				 struct auxtrace_record *itr, struct perf_env *env,
1946 				 const struct perf_tool *tool, process_auxtrace_t fn,
1947 				 bool snapshot, size_t snapshot_size)
1948 {
1949 	struct auxtrace_mmap *mm = &map->auxtrace_mmap;
1950 	u64 head, old = mm->prev, offset, ref;
1951 	unsigned char *data = mm->base;
1952 	size_t size, head_off, old_off, len1, len2, padding;
1953 	union perf_event ev;
1954 	void *data1, *data2;
1955 	int kernel_is_64_bit = perf_env__kernel_is_64_bit(env);
1956 
1957 	head = auxtrace_mmap__read_head(mm, kernel_is_64_bit);
1958 
1959 	if (snapshot &&
1960 	    auxtrace_record__find_snapshot(itr, mm->idx, mm, data, &head, &old))
1961 		return -1;
1962 
1963 	if (old == head)
1964 		return 0;
1965 
1966 	pr_debug3("auxtrace idx %d old %#"PRIx64" head %#"PRIx64" diff %#"PRIx64"\n",
1967 		  mm->idx, old, head, head - old);
1968 
1969 	if (mm->mask) {
1970 		head_off = head & mm->mask;
1971 		old_off = old & mm->mask;
1972 	} else {
1973 		head_off = head % mm->len;
1974 		old_off = old % mm->len;
1975 	}
1976 
1977 	if (head_off > old_off)
1978 		size = head_off - old_off;
1979 	else
1980 		size = mm->len - (old_off - head_off);
1981 
1982 	if (snapshot && size > snapshot_size)
1983 		size = snapshot_size;
1984 
1985 	ref = auxtrace_record__reference(itr);
1986 
1987 	if (head > old || size <= head || mm->mask) {
1988 		offset = head - size;
1989 	} else {
1990 		/*
1991 		 * When the buffer size is not a power of 2, 'head' wraps at the
1992 		 * highest multiple of the buffer size, so we have to subtract
1993 		 * the remainder here.
1994 		 */
1995 		u64 rem = (0ULL - mm->len) % mm->len;
1996 
1997 		offset = head - size - rem;
1998 	}
1999 
2000 	if (size > head_off) {
2001 		len1 = size - head_off;
2002 		data1 = &data[mm->len - len1];
2003 		len2 = head_off;
2004 		data2 = &data[0];
2005 	} else {
2006 		len1 = size;
2007 		data1 = &data[head_off - len1];
2008 		len2 = 0;
2009 		data2 = NULL;
2010 	}
2011 
2012 	if (itr->alignment) {
2013 		unsigned int unwanted = len1 % itr->alignment;
2014 
2015 		len1 -= unwanted;
2016 		size -= unwanted;
2017 	}
2018 
2019 	/* padding must be written by fn() e.g. record__process_auxtrace() */
2020 	padding = size & (PERF_AUXTRACE_RECORD_ALIGNMENT - 1);
2021 	if (padding)
2022 		padding = PERF_AUXTRACE_RECORD_ALIGNMENT - padding;
2023 
2024 	memset(&ev, 0, sizeof(ev));
2025 	ev.auxtrace.header.type = PERF_RECORD_AUXTRACE;
2026 	ev.auxtrace.header.size = sizeof(ev.auxtrace);
2027 	ev.auxtrace.size = size + padding;
2028 	ev.auxtrace.offset = offset;
2029 	ev.auxtrace.reference = ref;
2030 	ev.auxtrace.idx = mm->idx;
2031 	ev.auxtrace.tid = mm->tid;
2032 	ev.auxtrace.cpu = mm->cpu;
2033 
2034 	if (fn(tool, map, &ev, data1, len1, data2, len2))
2035 		return -1;
2036 
2037 	mm->prev = head;
2038 
2039 	if (!snapshot) {
2040 		int err;
2041 
2042 		err = auxtrace_mmap__write_tail(mm, head, kernel_is_64_bit);
2043 		if (err < 0)
2044 			return err;
2045 
2046 		if (itr->read_finish) {
2047 			err = itr->read_finish(itr, mm->idx);
2048 			if (err < 0)
2049 				return err;
2050 		}
2051 	}
2052 
2053 	return 1;
2054 }
2055 
2056 int auxtrace_mmap__read(struct mmap *map, struct auxtrace_record *itr,
2057 			struct perf_env *env, const struct perf_tool *tool,
2058 			process_auxtrace_t fn)
2059 {
2060 	return __auxtrace_mmap__read(map, itr, env, tool, fn, false, 0);
2061 }
2062 
2063 int auxtrace_mmap__read_snapshot(struct mmap *map,
2064 				 struct auxtrace_record *itr, struct perf_env *env,
2065 				 const struct perf_tool *tool, process_auxtrace_t fn,
2066 				 size_t snapshot_size)
2067 {
2068 	return __auxtrace_mmap__read(map, itr, env, tool, fn, true, snapshot_size);
2069 }
2070 
2071 /**
2072  * struct auxtrace_cache - hash table to implement a cache
2073  * @hashtable: the hashtable
2074  * @sz: hashtable size (number of hlists)
2075  * @entry_size: size of an entry
2076  * @limit: limit the number of entries to this maximum, when reached the cache
2077  *         is dropped and caching begins again with an empty cache
2078  * @cnt: current number of entries
2079  * @bits: hashtable size (@sz = 2^@bits)
2080  */
2081 struct auxtrace_cache {
2082 	struct hlist_head *hashtable;
2083 	size_t sz;
2084 	size_t entry_size;
2085 	size_t limit;
2086 	size_t cnt;
2087 	unsigned int bits;
2088 };
2089 
2090 struct auxtrace_cache *auxtrace_cache__new(unsigned int bits, size_t entry_size,
2091 					   unsigned int limit_percent)
2092 {
2093 	struct auxtrace_cache *c;
2094 	struct hlist_head *ht;
2095 	size_t sz, i;
2096 
2097 	c = zalloc(sizeof(struct auxtrace_cache));
2098 	if (!c)
2099 		return NULL;
2100 
2101 	sz = 1UL << bits;
2102 
2103 	ht = calloc(sz, sizeof(struct hlist_head));
2104 	if (!ht)
2105 		goto out_free;
2106 
2107 	for (i = 0; i < sz; i++)
2108 		INIT_HLIST_HEAD(&ht[i]);
2109 
2110 	c->hashtable = ht;
2111 	c->sz = sz;
2112 	c->entry_size = entry_size;
2113 	c->limit = (c->sz * limit_percent) / 100;
2114 	c->bits = bits;
2115 
2116 	return c;
2117 
2118 out_free:
2119 	free(c);
2120 	return NULL;
2121 }
2122 
2123 static void auxtrace_cache__drop(struct auxtrace_cache *c)
2124 {
2125 	struct auxtrace_cache_entry *entry;
2126 	struct hlist_node *tmp;
2127 	size_t i;
2128 
2129 	if (!c)
2130 		return;
2131 
2132 	for (i = 0; i < c->sz; i++) {
2133 		hlist_for_each_entry_safe(entry, tmp, &c->hashtable[i], hash) {
2134 			hlist_del(&entry->hash);
2135 			auxtrace_cache__free_entry(c, entry);
2136 		}
2137 	}
2138 
2139 	c->cnt = 0;
2140 }
2141 
2142 void auxtrace_cache__free(struct auxtrace_cache *c)
2143 {
2144 	if (!c)
2145 		return;
2146 
2147 	auxtrace_cache__drop(c);
2148 	zfree(&c->hashtable);
2149 	free(c);
2150 }
2151 
2152 void *auxtrace_cache__alloc_entry(struct auxtrace_cache *c)
2153 {
2154 	return malloc(c->entry_size);
2155 }
2156 
2157 void auxtrace_cache__free_entry(struct auxtrace_cache *c __maybe_unused,
2158 				void *entry)
2159 {
2160 	free(entry);
2161 }
2162 
2163 int auxtrace_cache__add(struct auxtrace_cache *c, u32 key,
2164 			struct auxtrace_cache_entry *entry)
2165 {
2166 	if (c->limit && ++c->cnt > c->limit)
2167 		auxtrace_cache__drop(c);
2168 
2169 	entry->key = key;
2170 	hlist_add_head(&entry->hash, &c->hashtable[hash_32(key, c->bits)]);
2171 
2172 	return 0;
2173 }
2174 
2175 static struct auxtrace_cache_entry *auxtrace_cache__rm(struct auxtrace_cache *c,
2176 						       u32 key)
2177 {
2178 	struct auxtrace_cache_entry *entry;
2179 	struct hlist_head *hlist;
2180 	struct hlist_node *n;
2181 
2182 	if (!c)
2183 		return NULL;
2184 
2185 	hlist = &c->hashtable[hash_32(key, c->bits)];
2186 	hlist_for_each_entry_safe(entry, n, hlist, hash) {
2187 		if (entry->key == key) {
2188 			hlist_del(&entry->hash);
2189 			return entry;
2190 		}
2191 	}
2192 
2193 	return NULL;
2194 }
2195 
2196 void auxtrace_cache__remove(struct auxtrace_cache *c, u32 key)
2197 {
2198 	struct auxtrace_cache_entry *entry = auxtrace_cache__rm(c, key);
2199 
2200 	auxtrace_cache__free_entry(c, entry);
2201 }
2202 
2203 void *auxtrace_cache__lookup(struct auxtrace_cache *c, u32 key)
2204 {
2205 	struct auxtrace_cache_entry *entry;
2206 	struct hlist_head *hlist;
2207 
2208 	if (!c)
2209 		return NULL;
2210 
2211 	hlist = &c->hashtable[hash_32(key, c->bits)];
2212 	hlist_for_each_entry(entry, hlist, hash) {
2213 		if (entry->key == key)
2214 			return entry;
2215 	}
2216 
2217 	return NULL;
2218 }
2219 
2220 static void addr_filter__free_str(struct addr_filter *filt)
2221 {
2222 	zfree(&filt->str);
2223 	filt->action   = NULL;
2224 	filt->sym_from = NULL;
2225 	filt->sym_to   = NULL;
2226 	filt->filename = NULL;
2227 }
2228 
2229 static struct addr_filter *addr_filter__new(void)
2230 {
2231 	struct addr_filter *filt = zalloc(sizeof(*filt));
2232 
2233 	if (filt)
2234 		INIT_LIST_HEAD(&filt->list);
2235 
2236 	return filt;
2237 }
2238 
2239 static void addr_filter__free(struct addr_filter *filt)
2240 {
2241 	if (filt)
2242 		addr_filter__free_str(filt);
2243 	free(filt);
2244 }
2245 
2246 static void addr_filters__add(struct addr_filters *filts,
2247 			      struct addr_filter *filt)
2248 {
2249 	list_add_tail(&filt->list, &filts->head);
2250 	filts->cnt += 1;
2251 }
2252 
2253 static void addr_filters__del(struct addr_filters *filts,
2254 			      struct addr_filter *filt)
2255 {
2256 	list_del_init(&filt->list);
2257 	filts->cnt -= 1;
2258 }
2259 
2260 void addr_filters__init(struct addr_filters *filts)
2261 {
2262 	INIT_LIST_HEAD(&filts->head);
2263 	filts->cnt = 0;
2264 }
2265 
2266 void addr_filters__exit(struct addr_filters *filts)
2267 {
2268 	struct addr_filter *filt, *n;
2269 
2270 	list_for_each_entry_safe(filt, n, &filts->head, list) {
2271 		addr_filters__del(filts, filt);
2272 		addr_filter__free(filt);
2273 	}
2274 }
2275 
2276 static int parse_num_or_str(char **inp, u64 *num, const char **str,
2277 			    const char *str_delim)
2278 {
2279 	*inp += strspn(*inp, " ");
2280 
2281 	if (isdigit(**inp)) {
2282 		char *endptr;
2283 
2284 		if (!num)
2285 			return -EINVAL;
2286 		errno = 0;
2287 		*num = strtoull(*inp, &endptr, 0);
2288 		if (errno)
2289 			return -errno;
2290 		if (endptr == *inp)
2291 			return -EINVAL;
2292 		*inp = endptr;
2293 	} else {
2294 		size_t n;
2295 
2296 		if (!str)
2297 			return -EINVAL;
2298 		*inp += strspn(*inp, " ");
2299 		*str = *inp;
2300 		n = strcspn(*inp, str_delim);
2301 		if (!n)
2302 			return -EINVAL;
2303 		*inp += n;
2304 		if (**inp) {
2305 			**inp = '\0';
2306 			*inp += 1;
2307 		}
2308 	}
2309 	return 0;
2310 }
2311 
2312 static int parse_action(struct addr_filter *filt)
2313 {
2314 	if (!strcmp(filt->action, "filter")) {
2315 		filt->start = true;
2316 		filt->range = true;
2317 	} else if (!strcmp(filt->action, "start")) {
2318 		filt->start = true;
2319 	} else if (!strcmp(filt->action, "stop")) {
2320 		filt->start = false;
2321 	} else if (!strcmp(filt->action, "tracestop")) {
2322 		filt->start = false;
2323 		filt->range = true;
2324 		filt->action += 5; /* Change 'tracestop' to 'stop' */
2325 	} else {
2326 		return -EINVAL;
2327 	}
2328 	return 0;
2329 }
2330 
2331 static int parse_sym_idx(char **inp, int *idx)
2332 {
2333 	*idx = -1;
2334 
2335 	*inp += strspn(*inp, " ");
2336 
2337 	if (**inp != '#')
2338 		return 0;
2339 
2340 	*inp += 1;
2341 
2342 	if (**inp == 'g' || **inp == 'G') {
2343 		*inp += 1;
2344 		*idx = 0;
2345 	} else {
2346 		unsigned long num;
2347 		char *endptr;
2348 
2349 		errno = 0;
2350 		num = strtoul(*inp, &endptr, 0);
2351 		if (errno)
2352 			return -errno;
2353 		if (endptr == *inp || num > INT_MAX)
2354 			return -EINVAL;
2355 		*inp = endptr;
2356 		*idx = num;
2357 	}
2358 
2359 	return 0;
2360 }
2361 
2362 static int parse_addr_size(char **inp, u64 *num, const char **str, int *idx)
2363 {
2364 	int err = parse_num_or_str(inp, num, str, " ");
2365 
2366 	if (!err && *str)
2367 		err = parse_sym_idx(inp, idx);
2368 
2369 	return err;
2370 }
2371 
2372 static int parse_one_filter(struct addr_filter *filt, const char **filter_inp)
2373 {
2374 	char *fstr;
2375 	int err;
2376 
2377 	filt->str = fstr = strdup(*filter_inp);
2378 	if (!fstr)
2379 		return -ENOMEM;
2380 
2381 	err = parse_num_or_str(&fstr, NULL, &filt->action, " ");
2382 	if (err)
2383 		goto out_err;
2384 
2385 	err = parse_action(filt);
2386 	if (err)
2387 		goto out_err;
2388 
2389 	err = parse_addr_size(&fstr, &filt->addr, &filt->sym_from,
2390 			      &filt->sym_from_idx);
2391 	if (err)
2392 		goto out_err;
2393 
2394 	fstr += strspn(fstr, " ");
2395 
2396 	if (*fstr == '/') {
2397 		fstr += 1;
2398 		err = parse_addr_size(&fstr, &filt->size, &filt->sym_to,
2399 				      &filt->sym_to_idx);
2400 		if (err)
2401 			goto out_err;
2402 		filt->range = true;
2403 	}
2404 
2405 	fstr += strspn(fstr, " ");
2406 
2407 	if (*fstr == '@') {
2408 		fstr += 1;
2409 		err = parse_num_or_str(&fstr, NULL, &filt->filename, " ,");
2410 		if (err)
2411 			goto out_err;
2412 	}
2413 
2414 	fstr += strspn(fstr, " ,");
2415 
2416 	*filter_inp += fstr - filt->str;
2417 
2418 	return 0;
2419 
2420 out_err:
2421 	addr_filter__free_str(filt);
2422 
2423 	return err;
2424 }
2425 
2426 int addr_filters__parse_bare_filter(struct addr_filters *filts,
2427 				    const char *filter)
2428 {
2429 	struct addr_filter *filt;
2430 	const char *fstr = filter;
2431 	int err;
2432 
2433 	while (*fstr) {
2434 		filt = addr_filter__new();
2435 		err = parse_one_filter(filt, &fstr);
2436 		if (err) {
2437 			addr_filter__free(filt);
2438 			addr_filters__exit(filts);
2439 			return err;
2440 		}
2441 		addr_filters__add(filts, filt);
2442 	}
2443 
2444 	return 0;
2445 }
2446 
2447 struct sym_args {
2448 	const char	*name;
2449 	u64		start;
2450 	u64		size;
2451 	int		idx;
2452 	int		cnt;
2453 	bool		started;
2454 	bool		global;
2455 	bool		selected;
2456 	bool		duplicate;
2457 	bool		near;
2458 };
2459 
2460 static bool kern_sym_name_match(const char *kname, const char *name)
2461 {
2462 	size_t n = strlen(name);
2463 
2464 	return !strcmp(kname, name) ||
2465 	       (!strncmp(kname, name, n) && kname[n] == '\t');
2466 }
2467 
2468 static bool kern_sym_match(struct sym_args *args, const char *name, char type)
2469 {
2470 	/* A function with the same name, and global or the n'th found or any */
2471 	return kallsyms__is_function(type) &&
2472 	       kern_sym_name_match(name, args->name) &&
2473 	       ((args->global && isupper(type)) ||
2474 		(args->selected && ++(args->cnt) == args->idx) ||
2475 		(!args->global && !args->selected));
2476 }
2477 
2478 static int find_kern_sym_cb(void *arg, const char *name, char type, u64 start)
2479 {
2480 	struct sym_args *args = arg;
2481 
2482 	if (args->started) {
2483 		if (!args->size)
2484 			args->size = start - args->start;
2485 		if (args->selected) {
2486 			if (args->size)
2487 				return 1;
2488 		} else if (kern_sym_match(args, name, type)) {
2489 			args->duplicate = true;
2490 			return 1;
2491 		}
2492 	} else if (kern_sym_match(args, name, type)) {
2493 		args->started = true;
2494 		args->start = start;
2495 	}
2496 
2497 	return 0;
2498 }
2499 
2500 static int print_kern_sym_cb(void *arg, const char *name, char type, u64 start)
2501 {
2502 	struct sym_args *args = arg;
2503 
2504 	if (kern_sym_match(args, name, type)) {
2505 		pr_err("#%d\t0x%"PRIx64"\t%c\t%s\n",
2506 		       ++args->cnt, start, type, name);
2507 		args->near = true;
2508 	} else if (args->near) {
2509 		args->near = false;
2510 		pr_err("\t\twhich is near\t\t%s\n", name);
2511 	}
2512 
2513 	return 0;
2514 }
2515 
2516 static int sym_not_found_error(const char *sym_name, int idx)
2517 {
2518 	if (idx > 0) {
2519 		pr_err("N'th occurrence (N=%d) of symbol '%s' not found.\n",
2520 		       idx, sym_name);
2521 	} else if (!idx) {
2522 		pr_err("Global symbol '%s' not found.\n", sym_name);
2523 	} else {
2524 		pr_err("Symbol '%s' not found.\n", sym_name);
2525 	}
2526 	pr_err("Note that symbols must be functions.\n");
2527 
2528 	return -EINVAL;
2529 }
2530 
2531 static int find_kern_sym(const char *sym_name, u64 *start, u64 *size, int idx)
2532 {
2533 	struct sym_args args = {
2534 		.name = sym_name,
2535 		.idx = idx,
2536 		.global = !idx,
2537 		.selected = idx > 0,
2538 	};
2539 	int err;
2540 
2541 	*start = 0;
2542 	*size = 0;
2543 
2544 	err = kallsyms__parse("/proc/kallsyms", &args, find_kern_sym_cb);
2545 	if (err < 0) {
2546 		pr_err("Failed to parse /proc/kallsyms\n");
2547 		return err;
2548 	}
2549 
2550 	if (args.duplicate) {
2551 		pr_err("Multiple kernel symbols with name '%s'\n", sym_name);
2552 		args.cnt = 0;
2553 		kallsyms__parse("/proc/kallsyms", &args, print_kern_sym_cb);
2554 		pr_err("Disambiguate symbol name by inserting #n after the name e.g. %s #2\n",
2555 		       sym_name);
2556 		pr_err("Or select a global symbol by inserting #0 or #g or #G\n");
2557 		return -EINVAL;
2558 	}
2559 
2560 	if (!args.started) {
2561 		pr_err("Kernel symbol lookup: ");
2562 		return sym_not_found_error(sym_name, idx);
2563 	}
2564 
2565 	*start = args.start;
2566 	*size = args.size;
2567 
2568 	return 0;
2569 }
2570 
2571 static int find_entire_kern_cb(void *arg, const char *name __maybe_unused,
2572 			       char type, u64 start)
2573 {
2574 	struct sym_args *args = arg;
2575 	u64 size;
2576 
2577 	if (!kallsyms__is_function(type))
2578 		return 0;
2579 
2580 	if (!args->started) {
2581 		args->started = true;
2582 		args->start = start;
2583 	}
2584 	/* Don't know exactly where the kernel ends, so we add a page */
2585 	size = round_up(start, page_size) + page_size - args->start;
2586 	if (size > args->size)
2587 		args->size = size;
2588 
2589 	return 0;
2590 }
2591 
2592 static int addr_filter__entire_kernel(struct addr_filter *filt)
2593 {
2594 	struct sym_args args = { .started = false };
2595 	int err;
2596 
2597 	err = kallsyms__parse("/proc/kallsyms", &args, find_entire_kern_cb);
2598 	if (err < 0 || !args.started) {
2599 		pr_err("Failed to parse /proc/kallsyms\n");
2600 		return err;
2601 	}
2602 
2603 	filt->addr = args.start;
2604 	filt->size = args.size;
2605 
2606 	return 0;
2607 }
2608 
2609 static int check_end_after_start(struct addr_filter *filt, u64 start, u64 size)
2610 {
2611 	if (start + size >= filt->addr)
2612 		return 0;
2613 
2614 	if (filt->sym_from) {
2615 		pr_err("Symbol '%s' (0x%"PRIx64") comes before '%s' (0x%"PRIx64")\n",
2616 		       filt->sym_to, start, filt->sym_from, filt->addr);
2617 	} else {
2618 		pr_err("Symbol '%s' (0x%"PRIx64") comes before address 0x%"PRIx64")\n",
2619 		       filt->sym_to, start, filt->addr);
2620 	}
2621 
2622 	return -EINVAL;
2623 }
2624 
2625 static int addr_filter__resolve_kernel_syms(struct addr_filter *filt)
2626 {
2627 	bool no_size = false;
2628 	u64 start, size;
2629 	int err;
2630 
2631 	if (symbol_conf.kptr_restrict) {
2632 		pr_err("Kernel addresses are restricted. Unable to resolve kernel symbols.\n");
2633 		return -EINVAL;
2634 	}
2635 
2636 	if (filt->sym_from && !strcmp(filt->sym_from, "*"))
2637 		return addr_filter__entire_kernel(filt);
2638 
2639 	if (filt->sym_from) {
2640 		err = find_kern_sym(filt->sym_from, &start, &size,
2641 				    filt->sym_from_idx);
2642 		if (err)
2643 			return err;
2644 		filt->addr = start;
2645 		if (filt->range && !filt->size && !filt->sym_to) {
2646 			filt->size = size;
2647 			no_size = !size;
2648 		}
2649 	}
2650 
2651 	if (filt->sym_to) {
2652 		err = find_kern_sym(filt->sym_to, &start, &size,
2653 				    filt->sym_to_idx);
2654 		if (err)
2655 			return err;
2656 
2657 		err = check_end_after_start(filt, start, size);
2658 		if (err)
2659 			return err;
2660 		filt->size = start + size - filt->addr;
2661 		no_size = !size;
2662 	}
2663 
2664 	/* The very last symbol in kallsyms does not imply a particular size */
2665 	if (no_size) {
2666 		pr_err("Cannot determine size of symbol '%s'\n",
2667 		       filt->sym_to ? filt->sym_to : filt->sym_from);
2668 		return -EINVAL;
2669 	}
2670 
2671 	return 0;
2672 }
2673 
2674 static struct dso *load_dso(const char *name)
2675 {
2676 	struct map *map;
2677 	struct dso *dso;
2678 
2679 	map = dso__new_map(name);
2680 	if (!map)
2681 		return NULL;
2682 
2683 	if (map__load(map) < 0)
2684 		pr_err("File '%s' not found or has no symbols.\n", name);
2685 
2686 	dso = dso__get(map__dso(map));
2687 
2688 	map__put(map);
2689 
2690 	return dso;
2691 }
2692 
2693 static bool dso_sym_match(struct symbol *sym, const char *name, int *cnt,
2694 			  int idx)
2695 {
2696 	/* Same name, and global or the n'th found or any */
2697 	return !arch__compare_symbol_names(name, sym->name) &&
2698 	       ((!idx && symbol__binding(sym) == STB_GLOBAL) ||
2699 		(idx > 0 && ++*cnt == idx) ||
2700 		idx < 0);
2701 }
2702 
2703 static void print_duplicate_syms(struct dso *dso, const char *sym_name)
2704 {
2705 	struct symbol *sym;
2706 	bool near = false;
2707 	int cnt = 0;
2708 
2709 	pr_err("Multiple symbols with name '%s'\n", sym_name);
2710 
2711 	sym = dso__first_symbol(dso);
2712 	while (sym) {
2713 		if (dso_sym_match(sym, sym_name, &cnt, -1)) {
2714 			pr_err("#%d\t0x%"PRIx64"\t%c\t%s\n",
2715 			       ++cnt, sym->start,
2716 			       symbol__binding(sym) == STB_GLOBAL ? 'g' :
2717 			       symbol__binding(sym) == STB_LOCAL  ? 'l' : 'w',
2718 			       sym->name);
2719 			near = true;
2720 		} else if (near) {
2721 			near = false;
2722 			pr_err("\t\twhich is near\t\t%s\n", sym->name);
2723 		}
2724 		sym = dso__next_symbol(sym);
2725 	}
2726 
2727 	pr_err("Disambiguate symbol name by inserting #n after the name e.g. %s #2\n",
2728 	       sym_name);
2729 	pr_err("Or select a global symbol by inserting #0 or #g or #G\n");
2730 }
2731 
2732 static int find_dso_sym(struct dso *dso, const char *sym_name, u64 *start,
2733 			u64 *size, int idx)
2734 {
2735 	struct symbol *sym;
2736 	int cnt = 0;
2737 
2738 	*start = 0;
2739 	*size = 0;
2740 
2741 	sym = dso__first_symbol(dso);
2742 	while (sym) {
2743 		if (*start) {
2744 			if (!*size)
2745 				*size = sym->start - *start;
2746 			if (idx > 0) {
2747 				if (*size)
2748 					return 0;
2749 			} else if (dso_sym_match(sym, sym_name, &cnt, idx)) {
2750 				print_duplicate_syms(dso, sym_name);
2751 				return -EINVAL;
2752 			}
2753 		} else if (dso_sym_match(sym, sym_name, &cnt, idx)) {
2754 			*start = sym->start;
2755 			*size = sym->end - sym->start;
2756 		}
2757 		sym = dso__next_symbol(sym);
2758 	}
2759 
2760 	if (!*start)
2761 		return sym_not_found_error(sym_name, idx);
2762 
2763 	return 0;
2764 }
2765 
2766 static int addr_filter__entire_dso(struct addr_filter *filt, struct dso *dso)
2767 {
2768 	if (dso__data_file_size(dso, NULL)) {
2769 		pr_err("Failed to determine filter for %s\nCannot determine file size.\n",
2770 		       filt->filename);
2771 		return -EINVAL;
2772 	}
2773 
2774 	filt->addr = 0;
2775 	filt->size = dso__data(dso)->file_size;
2776 
2777 	return 0;
2778 }
2779 
2780 static int addr_filter__resolve_syms(struct addr_filter *filt)
2781 {
2782 	u64 start, size;
2783 	struct dso *dso;
2784 	int err = 0;
2785 
2786 	if (!filt->sym_from && !filt->sym_to)
2787 		return 0;
2788 
2789 	if (!filt->filename)
2790 		return addr_filter__resolve_kernel_syms(filt);
2791 
2792 	dso = load_dso(filt->filename);
2793 	if (!dso) {
2794 		pr_err("Failed to load symbols from: %s\n", filt->filename);
2795 		return -EINVAL;
2796 	}
2797 
2798 	if (filt->sym_from && !strcmp(filt->sym_from, "*")) {
2799 		err = addr_filter__entire_dso(filt, dso);
2800 		goto put_dso;
2801 	}
2802 
2803 	if (filt->sym_from) {
2804 		err = find_dso_sym(dso, filt->sym_from, &start, &size,
2805 				   filt->sym_from_idx);
2806 		if (err)
2807 			goto put_dso;
2808 		filt->addr = start;
2809 		if (filt->range && !filt->size && !filt->sym_to)
2810 			filt->size = size;
2811 	}
2812 
2813 	if (filt->sym_to) {
2814 		err = find_dso_sym(dso, filt->sym_to, &start, &size,
2815 				   filt->sym_to_idx);
2816 		if (err)
2817 			goto put_dso;
2818 
2819 		err = check_end_after_start(filt, start, size);
2820 		if (err)
2821 			return err;
2822 
2823 		filt->size = start + size - filt->addr;
2824 	}
2825 
2826 put_dso:
2827 	dso__put(dso);
2828 
2829 	return err;
2830 }
2831 
2832 static char *addr_filter__to_str(struct addr_filter *filt)
2833 {
2834 	char filename_buf[PATH_MAX];
2835 	const char *at = "";
2836 	const char *fn = "";
2837 	char *filter;
2838 	int err;
2839 
2840 	if (filt->filename) {
2841 		at = "@";
2842 		fn = realpath(filt->filename, filename_buf);
2843 		if (!fn)
2844 			return NULL;
2845 	}
2846 
2847 	if (filt->range) {
2848 		err = asprintf(&filter, "%s 0x%"PRIx64"/0x%"PRIx64"%s%s",
2849 			       filt->action, filt->addr, filt->size, at, fn);
2850 	} else {
2851 		err = asprintf(&filter, "%s 0x%"PRIx64"%s%s",
2852 			       filt->action, filt->addr, at, fn);
2853 	}
2854 
2855 	return err < 0 ? NULL : filter;
2856 }
2857 
2858 static int parse_addr_filter(struct evsel *evsel, const char *filter,
2859 			     int max_nr)
2860 {
2861 	struct addr_filters filts;
2862 	struct addr_filter *filt;
2863 	int err;
2864 
2865 	addr_filters__init(&filts);
2866 
2867 	err = addr_filters__parse_bare_filter(&filts, filter);
2868 	if (err)
2869 		goto out_exit;
2870 
2871 	if (filts.cnt > max_nr) {
2872 		pr_err("Error: number of address filters (%d) exceeds maximum (%d)\n",
2873 		       filts.cnt, max_nr);
2874 		err = -EINVAL;
2875 		goto out_exit;
2876 	}
2877 
2878 	list_for_each_entry(filt, &filts.head, list) {
2879 		char *new_filter;
2880 
2881 		err = addr_filter__resolve_syms(filt);
2882 		if (err)
2883 			goto out_exit;
2884 
2885 		new_filter = addr_filter__to_str(filt);
2886 		if (!new_filter) {
2887 			err = -ENOMEM;
2888 			goto out_exit;
2889 		}
2890 
2891 		if (evsel__append_addr_filter(evsel, new_filter)) {
2892 			err = -ENOMEM;
2893 			goto out_exit;
2894 		}
2895 	}
2896 
2897 out_exit:
2898 	addr_filters__exit(&filts);
2899 
2900 	if (err) {
2901 		pr_err("Failed to parse address filter: '%s'\n", filter);
2902 		pr_err("Filter format is: filter|start|stop|tracestop <start symbol or address> [/ <end symbol or size>] [@<file name>]\n");
2903 		pr_err("Where multiple filters are separated by space or comma.\n");
2904 	}
2905 
2906 	return err;
2907 }
2908 
2909 static int evsel__nr_addr_filter(struct evsel *evsel)
2910 {
2911 	struct perf_pmu *pmu = evsel__find_pmu(evsel);
2912 	int nr_addr_filters = 0;
2913 
2914 	if (!pmu)
2915 		return 0;
2916 
2917 	perf_pmu__scan_file(pmu, "nr_addr_filters", "%d", &nr_addr_filters);
2918 
2919 	return nr_addr_filters;
2920 }
2921 
2922 int auxtrace_parse_filters(struct evlist *evlist)
2923 {
2924 	struct evsel *evsel;
2925 	char *filter;
2926 	int err, max_nr;
2927 
2928 	evlist__for_each_entry(evlist, evsel) {
2929 		filter = evsel->filter;
2930 		max_nr = evsel__nr_addr_filter(evsel);
2931 		if (!filter || !max_nr)
2932 			continue;
2933 		evsel->filter = NULL;
2934 		err = parse_addr_filter(evsel, filter, max_nr);
2935 		free(filter);
2936 		if (err)
2937 			return err;
2938 		pr_debug("Address filter: %s\n", evsel->filter);
2939 	}
2940 
2941 	return 0;
2942 }
2943 
2944 int auxtrace__process_event(struct perf_session *session, union perf_event *event,
2945 			    struct perf_sample *sample, const struct perf_tool *tool)
2946 {
2947 	if (!session->auxtrace)
2948 		return 0;
2949 
2950 	return session->auxtrace->process_event(session, event, sample, tool);
2951 }
2952 
2953 void auxtrace__dump_auxtrace_sample(struct perf_session *session,
2954 				    struct perf_sample *sample)
2955 {
2956 	if (!session->auxtrace || !session->auxtrace->dump_auxtrace_sample ||
2957 	    auxtrace__dont_decode(session))
2958 		return;
2959 
2960 	session->auxtrace->dump_auxtrace_sample(session, sample);
2961 }
2962 
2963 int auxtrace__flush_events(struct perf_session *session, const struct perf_tool *tool)
2964 {
2965 	if (!session->auxtrace)
2966 		return 0;
2967 
2968 	return session->auxtrace->flush_events(session, tool);
2969 }
2970 
2971 void auxtrace__free_events(struct perf_session *session)
2972 {
2973 	if (!session->auxtrace)
2974 		return;
2975 
2976 	return session->auxtrace->free_events(session);
2977 }
2978 
2979 void auxtrace__free(struct perf_session *session)
2980 {
2981 	if (!session->auxtrace)
2982 		return;
2983 
2984 	return session->auxtrace->free(session);
2985 }
2986 
2987 bool auxtrace__evsel_is_auxtrace(struct perf_session *session,
2988 				 struct evsel *evsel)
2989 {
2990 	if (!session->auxtrace || !session->auxtrace->evsel_is_auxtrace)
2991 		return false;
2992 
2993 	return session->auxtrace->evsel_is_auxtrace(session, evsel);
2994 }
2995