1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (c) 2021, Microsoft Corporation.
4 *
5 * Authors:
6 * Beau Belgrave <beaub@linux.microsoft.com>
7 */
8
9 #include <linux/bitmap.h>
10 #include <linux/cdev.h>
11 #include <linux/hashtable.h>
12 #include <linux/list.h>
13 #include <linux/io.h>
14 #include <linux/uio.h>
15 #include <linux/ioctl.h>
16 #include <linux/jhash.h>
17 #include <linux/refcount.h>
18 #include <linux/trace_events.h>
19 #include <linux/tracefs.h>
20 #include <linux/types.h>
21 #include <linux/uaccess.h>
22 #include <linux/highmem.h>
23 #include <linux/init.h>
24 #include <linux/user_events.h>
25 #include "trace_dynevent.h"
26 #include "trace_output.h"
27 #include "trace.h"
28
29 #define USER_EVENTS_PREFIX_LEN (sizeof(USER_EVENTS_PREFIX)-1)
30
31 #define FIELD_DEPTH_TYPE 0
32 #define FIELD_DEPTH_NAME 1
33 #define FIELD_DEPTH_SIZE 2
34
35 /* Limit how long of an event name plus args within the subsystem. */
36 #define MAX_EVENT_DESC 512
37 #define EVENT_NAME(user_event) ((user_event)->reg_name)
38 #define EVENT_TP_NAME(user_event) ((user_event)->tracepoint.name)
39 #define MAX_FIELD_ARRAY_SIZE 1024
40
41 /*
42 * Internal bits (kernel side only) to keep track of connected probes:
43 * These are used when status is requested in text form about an event. These
44 * bits are compared against an internal byte on the event to determine which
45 * probes to print out to the user.
46 *
47 * These do not reflect the mapped bytes between the user and kernel space.
48 */
49 #define EVENT_STATUS_FTRACE BIT(0)
50 #define EVENT_STATUS_PERF BIT(1)
51 #define EVENT_STATUS_OTHER BIT(7)
52
53 /*
54 * Stores the system name, tables, and locks for a group of events. This
55 * allows isolation for events by various means.
56 */
57 struct user_event_group {
58 char *system_name;
59 char *system_multi_name;
60 struct hlist_node node;
61 struct mutex reg_mutex;
62 DECLARE_HASHTABLE(register_table, 8);
63 /* ID that moves forward within the group for multi-event names */
64 u64 multi_id;
65 };
66
67 /* Group for init_user_ns mapping, top-most group */
68 static struct user_event_group *init_group;
69
70 /* Max allowed events for the whole system */
71 static unsigned int max_user_events = 32768;
72
73 /* Current number of events on the whole system */
74 static unsigned int current_user_events;
75
76 /*
77 * Stores per-event properties, as users register events
78 * within a file a user_event might be created if it does not
79 * already exist. These are globally used and their lifetime
80 * is tied to the refcnt member. These cannot go away until the
81 * refcnt reaches one.
82 */
83 struct user_event {
84 struct user_event_group *group;
85 char *reg_name;
86 struct tracepoint tracepoint;
87 struct trace_event_call call;
88 struct trace_event_class class;
89 struct dyn_event devent;
90 struct hlist_node node;
91 struct list_head fields;
92 struct list_head validators;
93 struct work_struct put_work;
94 refcount_t refcnt;
95 int min_size;
96 int reg_flags;
97 char status;
98 };
99
100 /*
101 * Stores per-mm/event properties that enable an address to be
102 * updated properly for each task. As tasks are forked, we use
103 * these to track enablement sites that are tied to an event.
104 */
105 struct user_event_enabler {
106 struct list_head mm_enablers_link;
107 struct user_event *event;
108 unsigned long addr;
109
110 /* Track enable bit, flags, etc. Aligned for bitops. */
111 unsigned long values;
112
113 /* Defer the event put and enabler free past an RCU grace period. */
114 struct rcu_work put_rwork;
115 };
116
117 /* Bits 0-5 are for the bit to update upon enable/disable (0-63 allowed) */
118 #define ENABLE_VAL_BIT_MASK 0x3F
119
120 /* Bit 6 is for faulting status of enablement */
121 #define ENABLE_VAL_FAULTING_BIT 6
122
123 /* Bit 7 is for freeing status of enablement */
124 #define ENABLE_VAL_FREEING_BIT 7
125
126 /* Bit 8 is for marking 32-bit on 64-bit */
127 #define ENABLE_VAL_32_ON_64_BIT 8
128
129 #define ENABLE_VAL_COMPAT_MASK (1 << ENABLE_VAL_32_ON_64_BIT)
130
131 /* Only duplicate the bit and compat values */
132 #define ENABLE_VAL_DUP_MASK (ENABLE_VAL_BIT_MASK | ENABLE_VAL_COMPAT_MASK)
133
134 #define ENABLE_BITOPS(e) (&(e)->values)
135
136 #define ENABLE_BIT(e) ((int)((e)->values & ENABLE_VAL_BIT_MASK))
137
138 #define EVENT_MULTI_FORMAT(f) ((f) & USER_EVENT_REG_MULTI_FORMAT)
139
140 /* Used for asynchronous faulting in of pages */
141 struct user_event_enabler_fault {
142 struct work_struct work;
143 struct user_event_mm *mm;
144 struct user_event_enabler *enabler;
145 int attempt;
146 };
147
148 static struct kmem_cache *fault_cache;
149
150 /* Global list of memory descriptors using user_events */
151 static LIST_HEAD(user_event_mms);
152 static DEFINE_SPINLOCK(user_event_mms_lock);
153
154 /*
155 * Stores per-file events references, as users register events
156 * within a file this structure is modified and freed via RCU.
157 * The lifetime of this struct is tied to the lifetime of the file.
158 * These are not shared and only accessible by the file that created it.
159 */
160 struct user_event_refs {
161 struct rcu_head rcu;
162 int count;
163 struct user_event *events[];
164 };
165
166 struct user_event_file_info {
167 struct user_event_group *group;
168 struct user_event_refs *refs;
169 };
170
171 #define VALIDATOR_ENSURE_NULL (1 << 0)
172 #define VALIDATOR_REL (1 << 1)
173
174 struct user_event_validator {
175 struct list_head user_event_link;
176 int offset;
177 int flags;
178 };
179
align_addr_bit(unsigned long * addr,int * bit,unsigned long * flags)180 static inline void align_addr_bit(unsigned long *addr, int *bit,
181 unsigned long *flags)
182 {
183 if (IS_ALIGNED(*addr, sizeof(long))) {
184 #ifdef __BIG_ENDIAN
185 /* 32 bit on BE 64 bit requires a 32 bit offset when aligned. */
186 if (test_bit(ENABLE_VAL_32_ON_64_BIT, flags))
187 *bit += 32;
188 #endif
189 return;
190 }
191
192 *addr = ALIGN_DOWN(*addr, sizeof(long));
193
194 /*
195 * We only support 32 and 64 bit values. The only time we need
196 * to align is a 32 bit value on a 64 bit kernel, which on LE
197 * is always 32 bits, and on BE requires no change when unaligned.
198 */
199 #ifdef __LITTLE_ENDIAN
200 *bit += 32;
201 #endif
202 }
203
204 typedef void (*user_event_func_t) (struct user_event *user, struct iov_iter *i,
205 void *tpdata, bool *faulted);
206
207 static int user_event_parse(struct user_event_group *group, char *name,
208 char *args, char *flags,
209 struct user_event **newuser, int reg_flags);
210
211 static struct user_event_mm *user_event_mm_get(struct user_event_mm *mm);
212 static struct user_event_mm *user_event_mm_get_all(struct user_event *user);
213 static void user_event_mm_put(struct user_event_mm *mm);
214 static int destroy_user_event(struct user_event *user);
215 static bool user_fields_match(struct user_event *user, int argc,
216 const char **argv);
217
user_event_key(char * name)218 static u32 user_event_key(char *name)
219 {
220 return jhash(name, strlen(name), 0);
221 }
222
user_event_capable(u16 reg_flags)223 static bool user_event_capable(u16 reg_flags)
224 {
225 /* Persistent events require CAP_PERFMON / CAP_SYS_ADMIN */
226 if (reg_flags & USER_EVENT_REG_PERSIST) {
227 if (!perfmon_capable())
228 return false;
229 }
230
231 return true;
232 }
233
user_event_get(struct user_event * user)234 static struct user_event *user_event_get(struct user_event *user)
235 {
236 refcount_inc(&user->refcnt);
237
238 return user;
239 }
240
delayed_destroy_user_event(struct work_struct * work)241 static void delayed_destroy_user_event(struct work_struct *work)
242 {
243 struct user_event *user = container_of(
244 work, struct user_event, put_work);
245
246 mutex_lock(&event_mutex);
247
248 if (!refcount_dec_and_test(&user->refcnt))
249 goto out;
250
251 if (destroy_user_event(user)) {
252 /*
253 * The only reason this would fail here is if we cannot
254 * update the visibility of the event. In this case the
255 * event stays in the hashtable, waiting for someone to
256 * attempt to delete it later.
257 */
258 pr_warn("user_events: Unable to delete event\n");
259 refcount_set(&user->refcnt, 1);
260 }
261 out:
262 mutex_unlock(&event_mutex);
263 }
264
user_event_put(struct user_event * user,bool locked)265 static void user_event_put(struct user_event *user, bool locked)
266 {
267 bool delete;
268
269 if (unlikely(!user))
270 return;
271
272 /*
273 * When the event is not enabled for auto-delete there will always
274 * be at least 1 reference to the event. During the event creation
275 * we initially set the refcnt to 2 to achieve this. In those cases
276 * the caller must acquire event_mutex and after decrement check if
277 * the refcnt is 1, meaning this is the last reference. When auto
278 * delete is enabled, there will only be 1 ref, IE: refcnt will be
279 * only set to 1 during creation to allow the below checks to go
280 * through upon the last put. The last put must always be done with
281 * the event mutex held.
282 */
283 if (!locked) {
284 lockdep_assert_not_held(&event_mutex);
285 delete = refcount_dec_and_mutex_lock(&user->refcnt, &event_mutex);
286 } else {
287 lockdep_assert_held(&event_mutex);
288 delete = refcount_dec_and_test(&user->refcnt);
289 }
290
291 if (!delete)
292 return;
293
294 /*
295 * We now have the event_mutex in all cases, which ensures that
296 * no new references will be taken until event_mutex is released.
297 * New references come through find_user_event(), which requires
298 * the event_mutex to be held.
299 */
300
301 if (user->reg_flags & USER_EVENT_REG_PERSIST) {
302 /* We should not get here when persist flag is set */
303 pr_alert("BUG: Auto-delete engaged on persistent event\n");
304 goto out;
305 }
306
307 /*
308 * Unfortunately we have to attempt the actual destroy in a work
309 * queue. This is because not all cases handle a trace_event_call
310 * being removed within the class->reg() operation for unregister.
311 */
312 INIT_WORK(&user->put_work, delayed_destroy_user_event);
313
314 /*
315 * Since the event is still in the hashtable, we have to re-inc
316 * the ref count to 1. This count will be decremented and checked
317 * in the work queue to ensure it's still the last ref. This is
318 * needed because a user-process could register the same event in
319 * between the time of event_mutex release and the work queue
320 * running the delayed destroy. If we removed the item now from
321 * the hashtable, this would result in a timing window where a
322 * user process would fail a register because the trace_event_call
323 * register would fail in the tracing layers.
324 */
325 refcount_set(&user->refcnt, 1);
326
327 if (WARN_ON_ONCE(!schedule_work(&user->put_work))) {
328 /*
329 * If we fail we must wait for an admin to attempt delete or
330 * another register/close of the event, whichever is first.
331 */
332 pr_warn("user_events: Unable to queue delayed destroy\n");
333 }
334 out:
335 /* Ensure if we didn't have event_mutex before we unlock it */
336 if (!locked)
337 mutex_unlock(&event_mutex);
338 }
339
user_event_group_destroy(struct user_event_group * group)340 static void user_event_group_destroy(struct user_event_group *group)
341 {
342 kfree(group->system_name);
343 kfree(group->system_multi_name);
344 kfree(group);
345 }
346
user_event_group_system_name(void)347 static char *user_event_group_system_name(void)
348 {
349 char *system_name;
350 int len = sizeof(USER_EVENTS_SYSTEM) + 1;
351
352 system_name = kmalloc(len, GFP_KERNEL);
353
354 if (!system_name)
355 return NULL;
356
357 snprintf(system_name, len, "%s", USER_EVENTS_SYSTEM);
358
359 return system_name;
360 }
361
user_event_group_system_multi_name(void)362 static char *user_event_group_system_multi_name(void)
363 {
364 return kstrdup(USER_EVENTS_MULTI_SYSTEM, GFP_KERNEL);
365 }
366
current_user_event_group(void)367 static struct user_event_group *current_user_event_group(void)
368 {
369 return init_group;
370 }
371
user_event_group_create(void)372 static struct user_event_group *user_event_group_create(void)
373 {
374 struct user_event_group *group;
375
376 group = kzalloc_obj(*group);
377
378 if (!group)
379 return NULL;
380
381 group->system_name = user_event_group_system_name();
382
383 if (!group->system_name)
384 goto error;
385
386 group->system_multi_name = user_event_group_system_multi_name();
387
388 if (!group->system_multi_name)
389 goto error;
390
391 mutex_init(&group->reg_mutex);
392 hash_init(group->register_table);
393
394 return group;
395 error:
396 if (group)
397 user_event_group_destroy(group);
398
399 return NULL;
400 };
401
delayed_user_event_enabler_put(struct work_struct * work)402 static void delayed_user_event_enabler_put(struct work_struct *work)
403 {
404 struct user_event_enabler *enabler = container_of(to_rcu_work(work),
405 struct user_event_enabler, put_rwork);
406
407 /* No longer tracking the event via the enabler */
408 user_event_put(enabler->event, false);
409
410 /* Run from queue_rcu_work(), the RCU grace period has elapsed */
411 kfree(enabler);
412 }
413
user_event_enabler_destroy(struct user_event_enabler * enabler)414 static void user_event_enabler_destroy(struct user_event_enabler *enabler)
415 {
416 list_del_rcu(&enabler->mm_enablers_link);
417
418 /*
419 * The enabler is removed from an RCU-traversed list
420 * (user_event_mm_dup() walks mm->enablers under rcu_read_lock() only),
421 * and readers there dereference enabler->event and take a new ref on
422 * it. Both the put of that event reference and the free of the enabler
423 * therefore have to wait for a grace period so no reader can be looking
424 * at the enabler or racing the last put of its event.
425 *
426 * The put itself must not run in RCU context: when it drops the last
427 * reference user_event_put() takes event_mutex, which cannot be taken
428 * from a softirq/RCU callback. Defer both to a work item scheduled
429 * after a grace period via queue_rcu_work().
430 */
431 INIT_RCU_WORK(&enabler->put_rwork, delayed_user_event_enabler_put);
432 queue_rcu_work(system_percpu_wq, &enabler->put_rwork);
433 }
434
user_event_mm_fault_in(struct user_event_mm * mm,unsigned long uaddr,int attempt)435 static int user_event_mm_fault_in(struct user_event_mm *mm, unsigned long uaddr,
436 int attempt)
437 {
438 bool unlocked;
439 int ret;
440
441 /*
442 * Normally this is low, ensure that it cannot be taken advantage of by
443 * bad user processes to cause excessive looping.
444 */
445 if (attempt > 10)
446 return -EFAULT;
447
448 mmap_read_lock(mm->mm);
449
450 /* Ensure MM has tasks, cannot use after exit_mm() */
451 if (refcount_read(&mm->tasks) == 0) {
452 ret = -ENOENT;
453 goto out;
454 }
455
456 ret = fixup_user_fault(mm->mm, uaddr, FAULT_FLAG_WRITE | FAULT_FLAG_REMOTE,
457 &unlocked);
458 out:
459 mmap_read_unlock(mm->mm);
460
461 return ret;
462 }
463
464 static int user_event_enabler_write(struct user_event_mm *mm,
465 struct user_event_enabler *enabler,
466 bool fixup_fault, int *attempt);
467
user_event_enabler_fault_fixup(struct work_struct * work)468 static void user_event_enabler_fault_fixup(struct work_struct *work)
469 {
470 struct user_event_enabler_fault *fault = container_of(
471 work, struct user_event_enabler_fault, work);
472 struct user_event_enabler *enabler = fault->enabler;
473 struct user_event_mm *mm = fault->mm;
474 unsigned long uaddr = enabler->addr;
475 int attempt = fault->attempt;
476 int ret;
477
478 ret = user_event_mm_fault_in(mm, uaddr, attempt);
479
480 if (ret && ret != -ENOENT) {
481 struct user_event *user = enabler->event;
482
483 pr_warn("user_events: Fault for mm: 0x%p @ 0x%llx event: %s\n",
484 mm->mm, (unsigned long long)uaddr, EVENT_NAME(user));
485 }
486
487 /* Prevent state changes from racing */
488 mutex_lock(&event_mutex);
489
490 /* User asked for enabler to be removed during fault */
491 if (test_bit(ENABLE_VAL_FREEING_BIT, ENABLE_BITOPS(enabler))) {
492 user_event_enabler_destroy(enabler);
493 goto out;
494 }
495
496 /*
497 * If we managed to get the page, re-issue the write. We do not
498 * want to get into a possible infinite loop, which is why we only
499 * attempt again directly if the page came in. If we couldn't get
500 * the page here, then we will try again the next time the event is
501 * enabled/disabled.
502 */
503 clear_bit(ENABLE_VAL_FAULTING_BIT, ENABLE_BITOPS(enabler));
504
505 if (!ret) {
506 mmap_read_lock(mm->mm);
507 user_event_enabler_write(mm, enabler, true, &attempt);
508 mmap_read_unlock(mm->mm);
509 }
510 out:
511 mutex_unlock(&event_mutex);
512
513 /* In all cases we no longer need the mm or fault */
514 user_event_mm_put(mm);
515 kmem_cache_free(fault_cache, fault);
516 }
517
user_event_enabler_queue_fault(struct user_event_mm * mm,struct user_event_enabler * enabler,int attempt)518 static bool user_event_enabler_queue_fault(struct user_event_mm *mm,
519 struct user_event_enabler *enabler,
520 int attempt)
521 {
522 struct user_event_enabler_fault *fault;
523
524 fault = kmem_cache_zalloc(fault_cache, GFP_NOWAIT);
525
526 if (!fault)
527 return false;
528
529 INIT_WORK(&fault->work, user_event_enabler_fault_fixup);
530 fault->mm = user_event_mm_get(mm);
531 fault->enabler = enabler;
532 fault->attempt = attempt;
533
534 /* Don't try to queue in again while we have a pending fault */
535 set_bit(ENABLE_VAL_FAULTING_BIT, ENABLE_BITOPS(enabler));
536
537 if (!schedule_work(&fault->work)) {
538 /* Allow another attempt later */
539 clear_bit(ENABLE_VAL_FAULTING_BIT, ENABLE_BITOPS(enabler));
540
541 user_event_mm_put(mm);
542 kmem_cache_free(fault_cache, fault);
543
544 return false;
545 }
546
547 return true;
548 }
549
user_event_enabler_write(struct user_event_mm * mm,struct user_event_enabler * enabler,bool fixup_fault,int * attempt)550 static int user_event_enabler_write(struct user_event_mm *mm,
551 struct user_event_enabler *enabler,
552 bool fixup_fault, int *attempt)
553 {
554 unsigned long uaddr = enabler->addr;
555 unsigned long *ptr;
556 struct page *page;
557 void *kaddr;
558 int bit = ENABLE_BIT(enabler);
559 int ret;
560
561 lockdep_assert_held(&event_mutex);
562 mmap_assert_locked(mm->mm);
563
564 *attempt += 1;
565
566 /* Ensure MM has tasks, cannot use after exit_mm() */
567 if (refcount_read(&mm->tasks) == 0)
568 return -ENOENT;
569
570 if (unlikely(test_bit(ENABLE_VAL_FAULTING_BIT, ENABLE_BITOPS(enabler)) ||
571 test_bit(ENABLE_VAL_FREEING_BIT, ENABLE_BITOPS(enabler))))
572 return -EBUSY;
573
574 align_addr_bit(&uaddr, &bit, ENABLE_BITOPS(enabler));
575
576 ret = pin_user_pages_remote(mm->mm, uaddr, 1, FOLL_WRITE | FOLL_NOFAULT,
577 &page, NULL);
578
579 if (unlikely(ret <= 0)) {
580 if (!fixup_fault)
581 return -EFAULT;
582
583 if (!user_event_enabler_queue_fault(mm, enabler, *attempt))
584 pr_warn("user_events: Unable to queue fault handler\n");
585
586 return -EFAULT;
587 }
588
589 kaddr = kmap_local_page(page);
590 ptr = kaddr + (uaddr & ~PAGE_MASK);
591
592 /* Update bit atomically, user tracers must be atomic as well */
593 if (enabler->event && enabler->event->status)
594 set_bit(bit, ptr);
595 else
596 clear_bit(bit, ptr);
597
598 kunmap_local(kaddr);
599 unpin_user_pages_dirty_lock(&page, 1, true);
600
601 return 0;
602 }
603
user_event_enabler_exists(struct user_event_mm * mm,unsigned long uaddr,unsigned char bit)604 static bool user_event_enabler_exists(struct user_event_mm *mm,
605 unsigned long uaddr, unsigned char bit)
606 {
607 struct user_event_enabler *enabler;
608
609 list_for_each_entry(enabler, &mm->enablers, mm_enablers_link) {
610 if (enabler->addr == uaddr && ENABLE_BIT(enabler) == bit)
611 return true;
612 }
613
614 return false;
615 }
616
user_event_enabler_update(struct user_event * user)617 static void user_event_enabler_update(struct user_event *user)
618 {
619 struct user_event_enabler *enabler;
620 struct user_event_mm *next;
621 struct user_event_mm *mm;
622 int attempt;
623
624 lockdep_assert_held(&event_mutex);
625
626 /*
627 * We need to build a one-shot list of all the mms that have an
628 * enabler for the user_event passed in. This list is only valid
629 * while holding the event_mutex. The only reason for this is due
630 * to the global mm list being RCU protected and we use methods
631 * which can wait (mmap_read_lock and pin_user_pages_remote).
632 *
633 * NOTE: user_event_mm_get_all() increments the ref count of each
634 * mm that is added to the list to prevent removal timing windows.
635 * We must always put each mm after they are used, which may wait.
636 */
637 mm = user_event_mm_get_all(user);
638
639 while (mm) {
640 next = mm->next;
641 mmap_read_lock(mm->mm);
642
643 list_for_each_entry(enabler, &mm->enablers, mm_enablers_link) {
644 if (enabler->event == user) {
645 attempt = 0;
646 user_event_enabler_write(mm, enabler, true, &attempt);
647 }
648 }
649
650 mmap_read_unlock(mm->mm);
651 user_event_mm_put(mm);
652 mm = next;
653 }
654 }
655
user_event_enabler_dup(struct user_event_enabler * orig,struct user_event_mm * mm)656 static bool user_event_enabler_dup(struct user_event_enabler *orig,
657 struct user_event_mm *mm)
658 {
659 struct user_event_enabler *enabler;
660
661 /* Skip pending frees */
662 if (unlikely(test_bit(ENABLE_VAL_FREEING_BIT, ENABLE_BITOPS(orig))))
663 return true;
664
665 enabler = kzalloc_obj(*enabler, GFP_NOWAIT | __GFP_ACCOUNT);
666
667 if (!enabler)
668 return false;
669
670 enabler->event = user_event_get(orig->event);
671 enabler->addr = orig->addr;
672
673 /* Only dup part of value (ignore future flags, etc) */
674 enabler->values = orig->values & ENABLE_VAL_DUP_MASK;
675
676 /* Enablers not exposed yet, RCU not required */
677 list_add(&enabler->mm_enablers_link, &mm->enablers);
678
679 return true;
680 }
681
user_event_mm_get(struct user_event_mm * mm)682 static struct user_event_mm *user_event_mm_get(struct user_event_mm *mm)
683 {
684 refcount_inc(&mm->refcnt);
685
686 return mm;
687 }
688
user_event_mm_get_all(struct user_event * user)689 static struct user_event_mm *user_event_mm_get_all(struct user_event *user)
690 {
691 struct user_event_mm *found = NULL;
692 struct user_event_enabler *enabler;
693 struct user_event_mm *mm;
694
695 /*
696 * We use the mm->next field to build a one-shot list from the global
697 * RCU protected list. To build this list the event_mutex must be held.
698 * This lets us build a list without requiring allocs that could fail
699 * when user based events are most wanted for diagnostics.
700 */
701 lockdep_assert_held(&event_mutex);
702
703 /*
704 * We do not want to block fork/exec while enablements are being
705 * updated, so we use RCU to walk the current tasks that have used
706 * user_events ABI for 1 or more events. Each enabler found in each
707 * task that matches the event being updated has a write to reflect
708 * the kernel state back into the process. Waits/faults must not occur
709 * during this. So we scan the list under RCU for all the mm that have
710 * the event within it. This is needed because mm_read_lock() can wait.
711 * Each user mm returned has a ref inc to handle remove RCU races.
712 */
713 rcu_read_lock();
714
715 list_for_each_entry_rcu(mm, &user_event_mms, mms_link) {
716 list_for_each_entry_rcu(enabler, &mm->enablers, mm_enablers_link) {
717 if (enabler->event == user) {
718 mm->next = found;
719 found = user_event_mm_get(mm);
720 break;
721 }
722 }
723 }
724
725 rcu_read_unlock();
726
727 return found;
728 }
729
user_event_mm_alloc(struct task_struct * t)730 static struct user_event_mm *user_event_mm_alloc(struct task_struct *t)
731 {
732 struct user_event_mm *user_mm;
733
734 user_mm = kzalloc_obj(*user_mm, GFP_KERNEL_ACCOUNT);
735
736 if (!user_mm)
737 return NULL;
738
739 user_mm->mm = t->mm;
740 INIT_LIST_HEAD(&user_mm->enablers);
741 refcount_set(&user_mm->refcnt, 1);
742 refcount_set(&user_mm->tasks, 1);
743
744 /*
745 * The lifetime of the memory descriptor can slightly outlast
746 * the task lifetime if a ref to the user_event_mm is taken
747 * between list_del_rcu() and call_rcu(). Therefore we need
748 * to take a reference to it to ensure it can live this long
749 * under this corner case. This can also occur in clones that
750 * outlast the parent.
751 */
752 mmgrab(user_mm->mm);
753
754 return user_mm;
755 }
756
user_event_mm_attach(struct user_event_mm * user_mm,struct task_struct * t)757 static void user_event_mm_attach(struct user_event_mm *user_mm, struct task_struct *t)
758 {
759 unsigned long flags;
760
761 spin_lock_irqsave(&user_event_mms_lock, flags);
762 list_add_rcu(&user_mm->mms_link, &user_event_mms);
763 spin_unlock_irqrestore(&user_event_mms_lock, flags);
764
765 t->user_event_mm = user_mm;
766 }
767
current_user_event_mm(void)768 static struct user_event_mm *current_user_event_mm(void)
769 {
770 struct user_event_mm *user_mm = current->user_event_mm;
771
772 if (user_mm)
773 goto inc;
774
775 user_mm = user_event_mm_alloc(current);
776
777 if (!user_mm)
778 goto error;
779
780 user_event_mm_attach(user_mm, current);
781 inc:
782 refcount_inc(&user_mm->refcnt);
783 error:
784 return user_mm;
785 }
786
user_event_mm_destroy(struct user_event_mm * mm)787 static void user_event_mm_destroy(struct user_event_mm *mm)
788 {
789 struct user_event_enabler *enabler, *next;
790
791 list_for_each_entry_safe(enabler, next, &mm->enablers, mm_enablers_link)
792 user_event_enabler_destroy(enabler);
793
794 mmdrop(mm->mm);
795 kfree(mm);
796 }
797
user_event_mm_put(struct user_event_mm * mm)798 static void user_event_mm_put(struct user_event_mm *mm)
799 {
800 if (mm && refcount_dec_and_test(&mm->refcnt))
801 user_event_mm_destroy(mm);
802 }
803
delayed_user_event_mm_put(struct work_struct * work)804 static void delayed_user_event_mm_put(struct work_struct *work)
805 {
806 struct user_event_mm *mm;
807
808 mm = container_of(to_rcu_work(work), struct user_event_mm, put_rwork);
809 user_event_mm_put(mm);
810 }
811
user_event_mm_remove(struct task_struct * t)812 void user_event_mm_remove(struct task_struct *t)
813 {
814 struct user_event_mm *mm;
815 unsigned long flags;
816
817 might_sleep();
818
819 mm = t->user_event_mm;
820 t->user_event_mm = NULL;
821
822 /* Clone will increment the tasks, only remove if last clone */
823 if (!refcount_dec_and_test(&mm->tasks))
824 return;
825
826 /* Remove the mm from the list, so it can no longer be enabled */
827 spin_lock_irqsave(&user_event_mms_lock, flags);
828 list_del_rcu(&mm->mms_link);
829 spin_unlock_irqrestore(&user_event_mms_lock, flags);
830
831 /*
832 * We need to wait for currently occurring writes to stop within
833 * the mm. This is required since exit_mm() snaps the current rss
834 * stats and clears them. On the final mmdrop(), check_mm() will
835 * report a bug if these increment.
836 *
837 * All writes/pins are done under mmap_read lock, take the write
838 * lock to ensure in-progress faults have completed. Faults that
839 * are pending but yet to run will check the task count and skip
840 * the fault since the mm is going away.
841 */
842 mmap_write_lock(mm->mm);
843 mmap_write_unlock(mm->mm);
844
845 /*
846 * Put for mm must be done after RCU delay to handle new refs in
847 * between the list_del_rcu() and now. This ensures any get refs
848 * during rcu_read_lock() are accounted for during list removal.
849 *
850 * CPU A | CPU B
851 * ---------------------------------------------------------------
852 * user_event_mm_remove() | rcu_read_lock();
853 * list_del_rcu() | list_for_each_entry_rcu();
854 * call_rcu() | refcount_inc();
855 * . | rcu_read_unlock();
856 * schedule_work() | .
857 * user_event_mm_put() | .
858 *
859 * mmdrop() cannot be called in the softirq context of call_rcu()
860 * so we use a work queue after call_rcu() to run within.
861 */
862 INIT_RCU_WORK(&mm->put_rwork, delayed_user_event_mm_put);
863 queue_rcu_work(system_percpu_wq, &mm->put_rwork);
864 }
865
user_event_mm_dup(struct task_struct * t,struct user_event_mm * old_mm)866 void user_event_mm_dup(struct task_struct *t, struct user_event_mm *old_mm)
867 {
868 struct user_event_mm *mm = user_event_mm_alloc(t);
869 struct user_event_enabler *enabler;
870
871 if (!mm)
872 return;
873
874 rcu_read_lock();
875
876 list_for_each_entry_rcu(enabler, &old_mm->enablers, mm_enablers_link) {
877 if (!user_event_enabler_dup(enabler, mm))
878 goto error;
879 }
880
881 rcu_read_unlock();
882
883 user_event_mm_attach(mm, t);
884 return;
885 error:
886 rcu_read_unlock();
887 user_event_mm_destroy(mm);
888 }
889
current_user_event_enabler_exists(unsigned long uaddr,unsigned char bit)890 static bool current_user_event_enabler_exists(unsigned long uaddr,
891 unsigned char bit)
892 {
893 struct user_event_mm *user_mm = current_user_event_mm();
894 bool exists;
895
896 if (!user_mm)
897 return false;
898
899 exists = user_event_enabler_exists(user_mm, uaddr, bit);
900
901 user_event_mm_put(user_mm);
902
903 return exists;
904 }
905
906 static struct user_event_enabler
user_event_enabler_create(struct user_reg * reg,struct user_event * user,int * write_result)907 *user_event_enabler_create(struct user_reg *reg, struct user_event *user,
908 int *write_result)
909 {
910 struct user_event_enabler *enabler;
911 struct user_event_mm *user_mm;
912 unsigned long uaddr = (unsigned long)reg->enable_addr;
913 int attempt = 0;
914
915 user_mm = current_user_event_mm();
916
917 if (!user_mm)
918 return NULL;
919
920 enabler = kzalloc_obj(*enabler, GFP_KERNEL_ACCOUNT);
921
922 if (!enabler)
923 goto out;
924
925 enabler->event = user;
926 enabler->addr = uaddr;
927 enabler->values = reg->enable_bit;
928
929 #if BITS_PER_LONG >= 64
930 if (reg->enable_size == 4)
931 set_bit(ENABLE_VAL_32_ON_64_BIT, ENABLE_BITOPS(enabler));
932 #endif
933
934 retry:
935 /* Prevents state changes from racing with new enablers */
936 mutex_lock(&event_mutex);
937
938 /* Attempt to reflect the current state within the process */
939 mmap_read_lock(user_mm->mm);
940 *write_result = user_event_enabler_write(user_mm, enabler, false,
941 &attempt);
942 mmap_read_unlock(user_mm->mm);
943
944 /*
945 * If the write works, then we will track the enabler. A ref to the
946 * underlying user_event is held by the enabler to prevent it going
947 * away while the enabler is still in use by a process. The ref is
948 * removed when the enabler is destroyed. This means a event cannot
949 * be forcefully deleted from the system until all tasks using it
950 * exit or run exec(), which includes forks and clones.
951 */
952 if (!*write_result) {
953 user_event_get(user);
954 list_add_rcu(&enabler->mm_enablers_link, &user_mm->enablers);
955 }
956
957 mutex_unlock(&event_mutex);
958
959 if (*write_result) {
960 /* Attempt to fault-in and retry if it worked */
961 if (!user_event_mm_fault_in(user_mm, uaddr, attempt))
962 goto retry;
963
964 kfree(enabler);
965 enabler = NULL;
966 }
967 out:
968 user_event_mm_put(user_mm);
969
970 return enabler;
971 }
972
973 static __always_inline __must_check
user_event_last_ref(struct user_event * user)974 bool user_event_last_ref(struct user_event *user)
975 {
976 int last = 0;
977
978 if (user->reg_flags & USER_EVENT_REG_PERSIST)
979 last = 1;
980
981 return refcount_read(&user->refcnt) == last;
982 }
983
984 static __always_inline __must_check
copy_nofault(void * addr,size_t bytes,struct iov_iter * i)985 size_t copy_nofault(void *addr, size_t bytes, struct iov_iter *i)
986 {
987 size_t ret;
988
989 pagefault_disable();
990
991 ret = copy_from_iter_nocache(addr, bytes, i);
992
993 pagefault_enable();
994
995 return ret;
996 }
997
user_event_get_fields(struct trace_event_call * call)998 static struct list_head *user_event_get_fields(struct trace_event_call *call)
999 {
1000 struct user_event *user = (struct user_event *)call->data;
1001
1002 return &user->fields;
1003 }
1004
1005 /*
1006 * Parses a register command for user_events
1007 * Format: event_name[:FLAG1[,FLAG2...]] [field1[;field2...]]
1008 *
1009 * Example event named 'test' with a 20 char 'msg' field with an unsigned int
1010 * 'id' field after:
1011 * test char[20] msg;unsigned int id
1012 *
1013 * NOTE: Offsets are from the user data perspective, they are not from the
1014 * trace_entry/buffer perspective. We automatically add the common properties
1015 * sizes to the offset for the user.
1016 *
1017 * Upon success user_event has its ref count increased by 1.
1018 */
user_event_parse_cmd(struct user_event_group * group,char * raw_command,struct user_event ** newuser,int reg_flags)1019 static int user_event_parse_cmd(struct user_event_group *group,
1020 char *raw_command, struct user_event **newuser,
1021 int reg_flags)
1022 {
1023 char *name = raw_command;
1024 char *args = strpbrk(name, " ");
1025 char *flags;
1026
1027 if (args)
1028 *args++ = '\0';
1029
1030 flags = strpbrk(name, ":");
1031
1032 if (flags)
1033 *flags++ = '\0';
1034
1035 return user_event_parse(group, name, args, flags, newuser, reg_flags);
1036 }
1037
user_field_array_size(const char * type)1038 static int user_field_array_size(const char *type)
1039 {
1040 const char *start = strchr(type, '[');
1041 char val[8];
1042 char *bracket;
1043 int size = 0;
1044
1045 if (start == NULL)
1046 return -EINVAL;
1047
1048 if (strscpy(val, start + 1, sizeof(val)) <= 0)
1049 return -EINVAL;
1050
1051 bracket = strchr(val, ']');
1052
1053 if (!bracket)
1054 return -EINVAL;
1055
1056 *bracket = '\0';
1057
1058 if (kstrtouint(val, 0, &size))
1059 return -EINVAL;
1060
1061 if (size > MAX_FIELD_ARRAY_SIZE)
1062 return -EINVAL;
1063
1064 return size;
1065 }
1066
user_field_size(const char * type)1067 static int user_field_size(const char *type)
1068 {
1069 /* long is not allowed from a user, since it's ambiguous in size */
1070 if (strcmp(type, "s64") == 0)
1071 return sizeof(s64);
1072 if (strcmp(type, "u64") == 0)
1073 return sizeof(u64);
1074 if (strcmp(type, "s32") == 0)
1075 return sizeof(s32);
1076 if (strcmp(type, "u32") == 0)
1077 return sizeof(u32);
1078 if (strcmp(type, "int") == 0)
1079 return sizeof(int);
1080 if (strcmp(type, "unsigned int") == 0)
1081 return sizeof(unsigned int);
1082 if (strcmp(type, "s16") == 0)
1083 return sizeof(s16);
1084 if (strcmp(type, "u16") == 0)
1085 return sizeof(u16);
1086 if (strcmp(type, "short") == 0)
1087 return sizeof(short);
1088 if (strcmp(type, "unsigned short") == 0)
1089 return sizeof(unsigned short);
1090 if (strcmp(type, "s8") == 0)
1091 return sizeof(s8);
1092 if (strcmp(type, "u8") == 0)
1093 return sizeof(u8);
1094 if (strcmp(type, "char") == 0)
1095 return sizeof(char);
1096 if (strcmp(type, "unsigned char") == 0)
1097 return sizeof(unsigned char);
1098 if (str_has_prefix(type, "char["))
1099 return user_field_array_size(type);
1100 if (str_has_prefix(type, "unsigned char["))
1101 return user_field_array_size(type);
1102 if (str_has_prefix(type, "__data_loc "))
1103 return sizeof(u32);
1104 if (str_has_prefix(type, "__rel_loc "))
1105 return sizeof(u32);
1106
1107 /* Unknown basic type, error */
1108 return -EINVAL;
1109 }
1110
user_event_destroy_validators(struct user_event * user)1111 static void user_event_destroy_validators(struct user_event *user)
1112 {
1113 struct user_event_validator *validator, *next;
1114 struct list_head *head = &user->validators;
1115
1116 list_for_each_entry_safe(validator, next, head, user_event_link) {
1117 list_del(&validator->user_event_link);
1118 kfree(validator);
1119 }
1120 }
1121
user_event_destroy_fields(struct user_event * user)1122 static void user_event_destroy_fields(struct user_event *user)
1123 {
1124 struct ftrace_event_field *field, *next;
1125 struct list_head *head = &user->fields;
1126
1127 list_for_each_entry_safe(field, next, head, link) {
1128 list_del(&field->link);
1129 kfree(field);
1130 }
1131 }
1132
user_event_add_field(struct user_event * user,const char * type,const char * name,int offset,int size,int is_signed,int filter_type)1133 static int user_event_add_field(struct user_event *user, const char *type,
1134 const char *name, int offset, int size,
1135 int is_signed, int filter_type)
1136 {
1137 struct user_event_validator *validator;
1138 struct ftrace_event_field *field;
1139 int validator_flags = 0;
1140
1141 field = kmalloc_obj(*field, GFP_KERNEL_ACCOUNT);
1142
1143 if (!field)
1144 return -ENOMEM;
1145
1146 if (str_has_prefix(type, "__data_loc "))
1147 goto add_validator;
1148
1149 if (str_has_prefix(type, "__rel_loc ")) {
1150 validator_flags |= VALIDATOR_REL;
1151 goto add_validator;
1152 }
1153
1154 goto add_field;
1155
1156 add_validator:
1157 if (strstr(type, "char") != NULL)
1158 validator_flags |= VALIDATOR_ENSURE_NULL;
1159
1160 validator = kmalloc_obj(*validator, GFP_KERNEL_ACCOUNT);
1161
1162 if (!validator) {
1163 kfree(field);
1164 return -ENOMEM;
1165 }
1166
1167 validator->flags = validator_flags;
1168 validator->offset = offset;
1169
1170 /* Want sequential access when validating */
1171 list_add_tail(&validator->user_event_link, &user->validators);
1172
1173 add_field:
1174 field->type = type;
1175 field->name = name;
1176 field->offset = offset;
1177 field->size = size;
1178 field->is_signed = is_signed;
1179 field->filter_type = filter_type;
1180
1181 if (filter_type == FILTER_OTHER)
1182 field->filter_type = filter_assign_type(type);
1183
1184 list_add(&field->link, &user->fields);
1185
1186 /*
1187 * Min size from user writes that are required, this does not include
1188 * the size of trace_entry (common fields).
1189 */
1190 user->min_size = (offset + size) - sizeof(struct trace_entry);
1191
1192 return 0;
1193 }
1194
1195 /*
1196 * Parses the values of a field within the description
1197 * Format: type name [size]
1198 */
user_event_parse_field(char * field,struct user_event * user,u32 * offset)1199 static int user_event_parse_field(char *field, struct user_event *user,
1200 u32 *offset)
1201 {
1202 char *part, *type, *name;
1203 u32 depth = 0, saved_offset = *offset;
1204 int len, size = -EINVAL;
1205 bool is_struct = false;
1206
1207 field = skip_spaces(field);
1208
1209 if (*field == '\0')
1210 return 0;
1211
1212 /* Handle types that have a space within */
1213 len = str_has_prefix(field, "unsigned ");
1214 if (len)
1215 goto skip_next;
1216
1217 len = str_has_prefix(field, "struct ");
1218 if (len) {
1219 is_struct = true;
1220 goto skip_next;
1221 }
1222
1223 len = str_has_prefix(field, "__data_loc unsigned ");
1224 if (len)
1225 goto skip_next;
1226
1227 len = str_has_prefix(field, "__data_loc ");
1228 if (len)
1229 goto skip_next;
1230
1231 len = str_has_prefix(field, "__rel_loc unsigned ");
1232 if (len)
1233 goto skip_next;
1234
1235 len = str_has_prefix(field, "__rel_loc ");
1236 if (len)
1237 goto skip_next;
1238
1239 goto parse;
1240 skip_next:
1241 type = field;
1242 field = strpbrk(field + len, " ");
1243
1244 if (field == NULL)
1245 return -EINVAL;
1246
1247 *field++ = '\0';
1248 depth++;
1249 parse:
1250 name = NULL;
1251
1252 while ((part = strsep(&field, " ")) != NULL) {
1253 switch (depth++) {
1254 case FIELD_DEPTH_TYPE:
1255 type = part;
1256 break;
1257 case FIELD_DEPTH_NAME:
1258 name = part;
1259 break;
1260 case FIELD_DEPTH_SIZE:
1261 if (!is_struct)
1262 return -EINVAL;
1263
1264 if (kstrtou32(part, 10, &size))
1265 return -EINVAL;
1266 break;
1267 default:
1268 return -EINVAL;
1269 }
1270 }
1271
1272 if (depth < FIELD_DEPTH_SIZE || !name)
1273 return -EINVAL;
1274
1275 if (depth == FIELD_DEPTH_SIZE)
1276 size = user_field_size(type);
1277
1278 if (size == 0)
1279 return -EINVAL;
1280
1281 if (size < 0)
1282 return size;
1283
1284 *offset = saved_offset + size;
1285
1286 return user_event_add_field(user, type, name, saved_offset, size,
1287 type[0] != 'u', FILTER_OTHER);
1288 }
1289
user_event_parse_fields(struct user_event * user,char * args)1290 static int user_event_parse_fields(struct user_event *user, char *args)
1291 {
1292 char *field;
1293 u32 offset = sizeof(struct trace_entry);
1294 int ret = -EINVAL;
1295
1296 if (args == NULL)
1297 return 0;
1298
1299 while ((field = strsep(&args, ";")) != NULL) {
1300 ret = user_event_parse_field(field, user, &offset);
1301
1302 if (ret)
1303 break;
1304 }
1305
1306 return ret;
1307 }
1308
1309 static struct trace_event_fields user_event_fields_array[1];
1310
user_field_format(const char * type)1311 static const char *user_field_format(const char *type)
1312 {
1313 if (strcmp(type, "s64") == 0)
1314 return "%lld";
1315 if (strcmp(type, "u64") == 0)
1316 return "%llu";
1317 if (strcmp(type, "s32") == 0)
1318 return "%d";
1319 if (strcmp(type, "u32") == 0)
1320 return "%u";
1321 if (strcmp(type, "int") == 0)
1322 return "%d";
1323 if (strcmp(type, "unsigned int") == 0)
1324 return "%u";
1325 if (strcmp(type, "s16") == 0)
1326 return "%d";
1327 if (strcmp(type, "u16") == 0)
1328 return "%u";
1329 if (strcmp(type, "short") == 0)
1330 return "%d";
1331 if (strcmp(type, "unsigned short") == 0)
1332 return "%u";
1333 if (strcmp(type, "s8") == 0)
1334 return "%d";
1335 if (strcmp(type, "u8") == 0)
1336 return "%u";
1337 if (strcmp(type, "char") == 0)
1338 return "%d";
1339 if (strcmp(type, "unsigned char") == 0)
1340 return "%u";
1341 if (strstr(type, "char[") != NULL)
1342 return "%s";
1343
1344 /* Unknown, likely struct, allowed treat as 64-bit */
1345 return "%llu";
1346 }
1347
user_field_is_dyn_string(const char * type,const char ** str_func)1348 static bool user_field_is_dyn_string(const char *type, const char **str_func)
1349 {
1350 if (str_has_prefix(type, "__data_loc ")) {
1351 *str_func = "__get_str";
1352 goto check;
1353 }
1354
1355 if (str_has_prefix(type, "__rel_loc ")) {
1356 *str_func = "__get_rel_str";
1357 goto check;
1358 }
1359
1360 return false;
1361 check:
1362 return strstr(type, "char") != NULL;
1363 }
1364
1365 #define LEN_OR_ZERO (len ? len - pos : 0)
user_dyn_field_set_string(int argc,const char ** argv,int * iout,char * buf,int len,bool * colon)1366 static int user_dyn_field_set_string(int argc, const char **argv, int *iout,
1367 char *buf, int len, bool *colon)
1368 {
1369 int pos = 0, i = *iout;
1370
1371 *colon = false;
1372
1373 for (; i < argc; ++i) {
1374 if (i != *iout)
1375 pos += snprintf(buf + pos, LEN_OR_ZERO, " ");
1376
1377 pos += snprintf(buf + pos, LEN_OR_ZERO, "%s", argv[i]);
1378
1379 if (strchr(argv[i], ';')) {
1380 ++i;
1381 *colon = true;
1382 break;
1383 }
1384 }
1385
1386 /* Actual set, advance i */
1387 if (len != 0)
1388 *iout = i;
1389
1390 return pos + 1;
1391 }
1392
user_field_set_string(struct ftrace_event_field * field,char * buf,int len,bool colon)1393 static int user_field_set_string(struct ftrace_event_field *field,
1394 char *buf, int len, bool colon)
1395 {
1396 int pos = 0;
1397
1398 pos += snprintf(buf + pos, LEN_OR_ZERO, "%s", field->type);
1399 pos += snprintf(buf + pos, LEN_OR_ZERO, " ");
1400 pos += snprintf(buf + pos, LEN_OR_ZERO, "%s", field->name);
1401
1402 if (str_has_prefix(field->type, "struct "))
1403 pos += snprintf(buf + pos, LEN_OR_ZERO, " %d", field->size);
1404
1405 if (colon)
1406 pos += snprintf(buf + pos, LEN_OR_ZERO, ";");
1407
1408 return pos + 1;
1409 }
1410
user_event_set_print_fmt(struct user_event * user,char * buf,int len)1411 static int user_event_set_print_fmt(struct user_event *user, char *buf, int len)
1412 {
1413 struct ftrace_event_field *field;
1414 struct list_head *head = &user->fields;
1415 int pos = 0, depth = 0;
1416 const char *str_func;
1417
1418 pos += snprintf(buf + pos, LEN_OR_ZERO, "\"");
1419
1420 list_for_each_entry_reverse(field, head, link) {
1421 if (depth != 0)
1422 pos += snprintf(buf + pos, LEN_OR_ZERO, " ");
1423
1424 pos += snprintf(buf + pos, LEN_OR_ZERO, "%s=%s",
1425 field->name, user_field_format(field->type));
1426
1427 depth++;
1428 }
1429
1430 pos += snprintf(buf + pos, LEN_OR_ZERO, "\"");
1431
1432 list_for_each_entry_reverse(field, head, link) {
1433 if (user_field_is_dyn_string(field->type, &str_func))
1434 pos += snprintf(buf + pos, LEN_OR_ZERO,
1435 ", %s(%s)", str_func, field->name);
1436 else
1437 pos += snprintf(buf + pos, LEN_OR_ZERO,
1438 ", REC->%s", field->name);
1439 }
1440
1441 return pos + 1;
1442 }
1443 #undef LEN_OR_ZERO
1444
user_event_create_print_fmt(struct user_event * user)1445 static int user_event_create_print_fmt(struct user_event *user)
1446 {
1447 char *print_fmt;
1448 int len;
1449
1450 len = user_event_set_print_fmt(user, NULL, 0);
1451
1452 print_fmt = kmalloc(len, GFP_KERNEL_ACCOUNT);
1453
1454 if (!print_fmt)
1455 return -ENOMEM;
1456
1457 user_event_set_print_fmt(user, print_fmt, len);
1458
1459 user->call.print_fmt = print_fmt;
1460
1461 return 0;
1462 }
1463
user_event_print_trace(struct trace_iterator * iter,int flags,struct trace_event * event)1464 static enum print_line_t user_event_print_trace(struct trace_iterator *iter,
1465 int flags,
1466 struct trace_event *event)
1467 {
1468 return print_event_fields(iter, event);
1469 }
1470
1471 static struct trace_event_functions user_event_funcs = {
1472 .trace = user_event_print_trace,
1473 };
1474
user_event_set_call_visible(struct user_event * user,bool visible)1475 static int user_event_set_call_visible(struct user_event *user, bool visible)
1476 {
1477 CLASS(prepare_creds, cred)();
1478 if (!cred)
1479 return -ENOMEM;
1480
1481 /*
1482 * While by default tracefs is locked down, systems can be configured
1483 * to allow user_event files to be less locked down. The extreme case
1484 * being "other" has read/write access to user_events_data/status.
1485 *
1486 * When not locked down, processes may not have permissions to
1487 * add/remove calls themselves to tracefs. We need to temporarily
1488 * switch to root file permission to allow for this scenario.
1489 */
1490 cred->fsuid = GLOBAL_ROOT_UID;
1491
1492 scoped_with_creds(cred) {
1493 if (visible)
1494 return trace_add_event_call(&user->call);
1495
1496 return trace_remove_event_call(&user->call);
1497 }
1498 }
1499
destroy_user_event(struct user_event * user)1500 static int destroy_user_event(struct user_event *user)
1501 {
1502 int ret = 0;
1503
1504 lockdep_assert_held(&event_mutex);
1505
1506 /* Must destroy fields before call removal */
1507 user_event_destroy_fields(user);
1508
1509 ret = user_event_set_call_visible(user, false);
1510
1511 if (ret)
1512 return ret;
1513
1514 dyn_event_remove(&user->devent);
1515 hash_del(&user->node);
1516
1517 user_event_destroy_validators(user);
1518
1519 /* If we have different names, both must be freed */
1520 if (EVENT_NAME(user) != EVENT_TP_NAME(user))
1521 kfree(EVENT_TP_NAME(user));
1522
1523 kfree(user->call.print_fmt);
1524 kfree(EVENT_NAME(user));
1525 kfree(user);
1526
1527 if (current_user_events > 0)
1528 current_user_events--;
1529 else
1530 pr_alert("BUG: Bad current_user_events\n");
1531
1532 return ret;
1533 }
1534
find_user_event(struct user_event_group * group,char * name,int argc,const char ** argv,u32 flags,u32 * outkey)1535 static struct user_event *find_user_event(struct user_event_group *group,
1536 char *name, int argc, const char **argv,
1537 u32 flags, u32 *outkey)
1538 {
1539 struct user_event *user;
1540 u32 key = user_event_key(name);
1541
1542 *outkey = key;
1543
1544 hash_for_each_possible(group->register_table, user, node, key) {
1545 /*
1546 * Single-format events shouldn't return multi-format
1547 * events. Callers expect the underlying tracepoint to match
1548 * the name exactly in these cases. Only check like-formats.
1549 */
1550 if (EVENT_MULTI_FORMAT(flags) != EVENT_MULTI_FORMAT(user->reg_flags))
1551 continue;
1552
1553 if (strcmp(EVENT_NAME(user), name))
1554 continue;
1555
1556 if (user_fields_match(user, argc, argv))
1557 return user_event_get(user);
1558
1559 /* Scan others if this is a multi-format event */
1560 if (EVENT_MULTI_FORMAT(flags))
1561 continue;
1562
1563 return ERR_PTR(-EADDRINUSE);
1564 }
1565
1566 return NULL;
1567 }
1568
user_event_validate(struct user_event * user,void * data,int len)1569 static int user_event_validate(struct user_event *user, void *data, int len)
1570 {
1571 struct list_head *head = &user->validators;
1572 struct user_event_validator *validator;
1573 void *pos, *end = data + len;
1574 u32 loc, offset, size;
1575
1576 list_for_each_entry(validator, head, user_event_link) {
1577 pos = data + validator->offset;
1578
1579 /* Already done min_size check, no bounds check here */
1580 loc = *(u32 *)pos;
1581 offset = loc & 0xffff;
1582 size = loc >> 16;
1583
1584 if (likely(validator->flags & VALIDATOR_REL))
1585 pos += offset + sizeof(loc);
1586 else
1587 pos = data + offset;
1588
1589 pos += size;
1590
1591 if (unlikely(pos > end))
1592 return -EFAULT;
1593
1594 if (likely(validator->flags & VALIDATOR_ENSURE_NULL))
1595 if (unlikely(*(char *)(pos - 1) != '\0'))
1596 return -EFAULT;
1597 }
1598
1599 return 0;
1600 }
1601
1602 /*
1603 * Writes the user supplied payload out to a trace file.
1604 */
user_event_ftrace(struct user_event * user,struct iov_iter * i,void * tpdata,bool * faulted)1605 static void user_event_ftrace(struct user_event *user, struct iov_iter *i,
1606 void *tpdata, bool *faulted)
1607 {
1608 struct trace_event_file *file;
1609 struct trace_entry *entry;
1610 struct trace_event_buffer event_buffer;
1611 size_t size = sizeof(*entry) + i->count;
1612
1613 file = (struct trace_event_file *)tpdata;
1614
1615 if (!file ||
1616 !(file->flags & EVENT_FILE_FL_ENABLED) ||
1617 trace_trigger_soft_disabled(file))
1618 return;
1619
1620 /* Allocates and fills trace_entry, + 1 of this is data payload */
1621 entry = trace_event_buffer_reserve(&event_buffer, file, size);
1622
1623 if (unlikely(!entry))
1624 return;
1625
1626 if (unlikely(i->count != 0 && !copy_nofault(entry + 1, i->count, i)))
1627 goto discard;
1628
1629 if (!list_empty(&user->validators) &&
1630 unlikely(user_event_validate(user, entry, size)))
1631 goto discard;
1632
1633 trace_event_buffer_commit(&event_buffer);
1634
1635 return;
1636 discard:
1637 *faulted = true;
1638 __trace_event_discard_commit(event_buffer.buffer,
1639 event_buffer.event);
1640 }
1641
1642 #ifdef CONFIG_PERF_EVENTS
1643 /*
1644 * Writes the user supplied payload out to perf ring buffer.
1645 */
user_event_perf(struct user_event * user,struct iov_iter * i,void * tpdata,bool * faulted)1646 static void user_event_perf(struct user_event *user, struct iov_iter *i,
1647 void *tpdata, bool *faulted)
1648 {
1649 struct hlist_head *perf_head;
1650
1651 perf_head = this_cpu_ptr(user->call.perf_events);
1652
1653 if (perf_head && !hlist_empty(perf_head)) {
1654 struct trace_entry *perf_entry;
1655 struct pt_regs *regs;
1656 size_t size = sizeof(*perf_entry) + i->count;
1657 int context;
1658
1659 perf_entry = perf_trace_buf_alloc(ALIGN(size, 8),
1660 ®s, &context);
1661
1662 if (unlikely(!perf_entry))
1663 return;
1664
1665 perf_fetch_caller_regs(regs);
1666
1667 if (unlikely(i->count != 0 && !copy_nofault(perf_entry + 1, i->count, i)))
1668 goto discard;
1669
1670 if (!list_empty(&user->validators) &&
1671 unlikely(user_event_validate(user, perf_entry, size)))
1672 goto discard;
1673
1674 perf_trace_buf_submit(perf_entry, size, context,
1675 user->call.event.type, 1, regs,
1676 perf_head, NULL);
1677
1678 return;
1679 discard:
1680 *faulted = true;
1681 perf_swevent_put_recursion_context(context);
1682 }
1683 }
1684 #endif
1685
1686 /*
1687 * Update the enabled bit among all user processes.
1688 */
update_enable_bit_for(struct user_event * user)1689 static void update_enable_bit_for(struct user_event *user)
1690 {
1691 struct tracepoint *tp = &user->tracepoint;
1692 char status = 0;
1693
1694 if (static_key_enabled(&tp->key)) {
1695 struct tracepoint_func *probe_func_ptr;
1696 user_event_func_t probe_func;
1697
1698 rcu_read_lock_sched();
1699
1700 probe_func_ptr = rcu_dereference_sched(tp->funcs);
1701
1702 if (probe_func_ptr) {
1703 do {
1704 probe_func = probe_func_ptr->func;
1705
1706 if (probe_func == user_event_ftrace)
1707 status |= EVENT_STATUS_FTRACE;
1708 #ifdef CONFIG_PERF_EVENTS
1709 else if (probe_func == user_event_perf)
1710 status |= EVENT_STATUS_PERF;
1711 #endif
1712 else
1713 status |= EVENT_STATUS_OTHER;
1714 } while ((++probe_func_ptr)->func);
1715 }
1716
1717 rcu_read_unlock_sched();
1718 }
1719
1720 user->status = status;
1721
1722 user_event_enabler_update(user);
1723 }
1724
1725 /*
1726 * Register callback for our events from tracing sub-systems.
1727 */
user_event_reg(struct trace_event_call * call,enum trace_reg type,void * data)1728 static int user_event_reg(struct trace_event_call *call,
1729 enum trace_reg type,
1730 void *data)
1731 {
1732 struct user_event *user = (struct user_event *)call->data;
1733 int ret = 0;
1734
1735 if (!user)
1736 return -ENOENT;
1737
1738 switch (type) {
1739 case TRACE_REG_REGISTER:
1740 ret = tracepoint_probe_register(call->tp,
1741 call->class->probe,
1742 data);
1743 if (!ret)
1744 goto inc;
1745 break;
1746
1747 case TRACE_REG_UNREGISTER:
1748 tracepoint_probe_unregister(call->tp,
1749 call->class->probe,
1750 data);
1751 goto dec;
1752
1753 #ifdef CONFIG_PERF_EVENTS
1754 case TRACE_REG_PERF_REGISTER:
1755 ret = tracepoint_probe_register(call->tp,
1756 call->class->perf_probe,
1757 data);
1758 if (!ret)
1759 goto inc;
1760 break;
1761
1762 case TRACE_REG_PERF_UNREGISTER:
1763 tracepoint_probe_unregister(call->tp,
1764 call->class->perf_probe,
1765 data);
1766 goto dec;
1767
1768 case TRACE_REG_PERF_OPEN:
1769 case TRACE_REG_PERF_CLOSE:
1770 case TRACE_REG_PERF_ADD:
1771 case TRACE_REG_PERF_DEL:
1772 break;
1773 #endif
1774 }
1775
1776 return ret;
1777 inc:
1778 user_event_get(user);
1779 update_enable_bit_for(user);
1780 return 0;
1781 dec:
1782 update_enable_bit_for(user);
1783 user_event_put(user, true);
1784 return 0;
1785 }
1786
user_event_create(const char * raw_command)1787 static int user_event_create(const char *raw_command)
1788 {
1789 struct user_event_group *group;
1790 struct user_event *user;
1791 char *name;
1792 int ret;
1793
1794 if (!str_has_prefix(raw_command, USER_EVENTS_PREFIX))
1795 return -ECANCELED;
1796
1797 raw_command += USER_EVENTS_PREFIX_LEN;
1798 raw_command = skip_spaces(raw_command);
1799
1800 name = kstrdup(raw_command, GFP_KERNEL_ACCOUNT);
1801
1802 if (!name)
1803 return -ENOMEM;
1804
1805 group = current_user_event_group();
1806
1807 if (!group) {
1808 kfree(name);
1809 return -ENOENT;
1810 }
1811
1812 mutex_lock(&group->reg_mutex);
1813
1814 /* Dyn events persist, otherwise they would cleanup immediately */
1815 ret = user_event_parse_cmd(group, name, &user, USER_EVENT_REG_PERSIST);
1816
1817 if (!ret)
1818 user_event_put(user, false);
1819
1820 mutex_unlock(&group->reg_mutex);
1821
1822 if (ret)
1823 kfree(name);
1824
1825 return ret;
1826 }
1827
user_event_show(struct seq_file * m,struct dyn_event * ev)1828 static int user_event_show(struct seq_file *m, struct dyn_event *ev)
1829 {
1830 struct user_event *user = container_of(ev, struct user_event, devent);
1831 struct ftrace_event_field *field;
1832 struct list_head *head;
1833 int depth = 0;
1834
1835 seq_printf(m, "%s%s", USER_EVENTS_PREFIX, EVENT_NAME(user));
1836
1837 head = trace_get_fields(&user->call);
1838
1839 list_for_each_entry_reverse(field, head, link) {
1840 if (depth == 0)
1841 seq_putc(m, ' ');
1842 else
1843 seq_puts(m, "; ");
1844
1845 seq_printf(m, "%s %s", field->type, field->name);
1846
1847 if (str_has_prefix(field->type, "struct "))
1848 seq_printf(m, " %d", field->size);
1849
1850 depth++;
1851 }
1852
1853 seq_putc(m, '\n');
1854
1855 return 0;
1856 }
1857
user_event_is_busy(struct dyn_event * ev)1858 static bool user_event_is_busy(struct dyn_event *ev)
1859 {
1860 struct user_event *user = container_of(ev, struct user_event, devent);
1861
1862 return !user_event_last_ref(user);
1863 }
1864
user_event_free(struct dyn_event * ev)1865 static int user_event_free(struct dyn_event *ev)
1866 {
1867 struct user_event *user = container_of(ev, struct user_event, devent);
1868
1869 if (!user_event_last_ref(user))
1870 return -EBUSY;
1871
1872 if (!user_event_capable(user->reg_flags))
1873 return -EPERM;
1874
1875 return destroy_user_event(user);
1876 }
1877
user_field_match(struct ftrace_event_field * field,int argc,const char ** argv,int * iout)1878 static bool user_field_match(struct ftrace_event_field *field, int argc,
1879 const char **argv, int *iout)
1880 {
1881 char *field_name = NULL, *dyn_field_name = NULL;
1882 bool colon = false, match = false;
1883 int dyn_len, len;
1884
1885 if (*iout >= argc)
1886 return false;
1887
1888 dyn_len = user_dyn_field_set_string(argc, argv, iout, dyn_field_name,
1889 0, &colon);
1890
1891 len = user_field_set_string(field, field_name, 0, colon);
1892
1893 if (dyn_len != len)
1894 return false;
1895
1896 dyn_field_name = kmalloc(dyn_len, GFP_KERNEL);
1897 field_name = kmalloc(len, GFP_KERNEL);
1898
1899 if (!dyn_field_name || !field_name)
1900 goto out;
1901
1902 user_dyn_field_set_string(argc, argv, iout, dyn_field_name,
1903 dyn_len, &colon);
1904
1905 user_field_set_string(field, field_name, len, colon);
1906
1907 match = strcmp(dyn_field_name, field_name) == 0;
1908 out:
1909 kfree(dyn_field_name);
1910 kfree(field_name);
1911
1912 return match;
1913 }
1914
user_fields_match(struct user_event * user,int argc,const char ** argv)1915 static bool user_fields_match(struct user_event *user, int argc,
1916 const char **argv)
1917 {
1918 struct ftrace_event_field *field;
1919 struct list_head *head = &user->fields;
1920 int i = 0;
1921
1922 if (argc == 0)
1923 return list_empty(head);
1924
1925 list_for_each_entry_reverse(field, head, link) {
1926 if (!user_field_match(field, argc, argv, &i))
1927 return false;
1928 }
1929
1930 if (i != argc)
1931 return false;
1932
1933 return true;
1934 }
1935
user_event_match(const char * system,const char * event,int argc,const char ** argv,struct dyn_event * ev)1936 static bool user_event_match(const char *system, const char *event,
1937 int argc, const char **argv, struct dyn_event *ev)
1938 {
1939 struct user_event *user = container_of(ev, struct user_event, devent);
1940 bool match;
1941
1942 match = strcmp(EVENT_NAME(user), event) == 0;
1943
1944 if (match && system) {
1945 match = strcmp(system, user->group->system_name) == 0 ||
1946 strcmp(system, user->group->system_multi_name) == 0;
1947 }
1948
1949 if (match)
1950 match = user_fields_match(user, argc, argv);
1951
1952 return match;
1953 }
1954
1955 static struct dyn_event_operations user_event_dops = {
1956 .create = user_event_create,
1957 .show = user_event_show,
1958 .is_busy = user_event_is_busy,
1959 .free = user_event_free,
1960 .match = user_event_match,
1961 };
1962
user_event_trace_register(struct user_event * user)1963 static int user_event_trace_register(struct user_event *user)
1964 {
1965 int ret;
1966
1967 ret = register_trace_event(&user->call.event);
1968
1969 if (!ret)
1970 return -ENODEV;
1971
1972 ret = user_event_set_call_visible(user, true);
1973
1974 if (ret)
1975 unregister_trace_event(&user->call.event);
1976
1977 return ret;
1978 }
1979
user_event_set_tp_name(struct user_event * user)1980 static int user_event_set_tp_name(struct user_event *user)
1981 {
1982 lockdep_assert_held(&user->group->reg_mutex);
1983
1984 if (EVENT_MULTI_FORMAT(user->reg_flags)) {
1985 char *multi_name;
1986
1987 multi_name = kasprintf(GFP_KERNEL_ACCOUNT, "%s.%llx",
1988 user->reg_name, user->group->multi_id);
1989
1990 if (!multi_name)
1991 return -ENOMEM;
1992
1993 user->call.name = multi_name;
1994 user->tracepoint.name = multi_name;
1995
1996 /* Inc to ensure unique multi-event name next time */
1997 user->group->multi_id++;
1998 } else {
1999 /* Non Multi-format uses register name */
2000 user->call.name = user->reg_name;
2001 user->tracepoint.name = user->reg_name;
2002 }
2003
2004 return 0;
2005 }
2006
2007 /*
2008 * Counts how many ';' without a trailing space are in the args.
2009 */
count_semis_no_space(char * args)2010 static int count_semis_no_space(char *args)
2011 {
2012 int count = 0;
2013
2014 while ((args = strchr(args, ';'))) {
2015 args++;
2016
2017 if (!isspace(*args))
2018 count++;
2019 }
2020
2021 return count;
2022 }
2023
2024 /*
2025 * Copies the arguments while ensuring all ';' have a trailing space.
2026 */
insert_space_after_semis(char * args,int count)2027 static char *insert_space_after_semis(char *args, int count)
2028 {
2029 char *fixed, *pos;
2030 int len;
2031
2032 len = strlen(args) + count;
2033 fixed = kmalloc(len + 1, GFP_KERNEL);
2034
2035 if (!fixed)
2036 return NULL;
2037
2038 pos = fixed;
2039
2040 /* Insert a space after ';' if there is no trailing space. */
2041 while (*args) {
2042 *pos = *args++;
2043
2044 if (*pos++ == ';' && !isspace(*args))
2045 *pos++ = ' ';
2046 }
2047
2048 *pos = '\0';
2049
2050 return fixed;
2051 }
2052
user_event_argv_split(char * args,int * argc)2053 static char **user_event_argv_split(char *args, int *argc)
2054 {
2055 char **split;
2056 char *fixed;
2057 int count;
2058
2059 /* Count how many ';' without a trailing space */
2060 count = count_semis_no_space(args);
2061
2062 /* No fixup is required */
2063 if (!count)
2064 return argv_split(GFP_KERNEL, args, argc);
2065
2066 /* We must fixup 'field;field' to 'field; field' */
2067 fixed = insert_space_after_semis(args, count);
2068
2069 if (!fixed)
2070 return NULL;
2071
2072 /* We do a normal split afterwards */
2073 split = argv_split(GFP_KERNEL, fixed, argc);
2074
2075 /* We can free since argv_split makes a copy */
2076 kfree(fixed);
2077
2078 return split;
2079 }
2080
2081 /*
2082 * Parses the event name, arguments and flags then registers if successful.
2083 * The name buffer lifetime is owned by this method for success cases only.
2084 * Upon success the returned user_event has its ref count increased by 1.
2085 */
user_event_parse(struct user_event_group * group,char * name,char * args,char * flags,struct user_event ** newuser,int reg_flags)2086 static int user_event_parse(struct user_event_group *group, char *name,
2087 char *args, char *flags,
2088 struct user_event **newuser, int reg_flags)
2089 {
2090 struct user_event *user;
2091 char **argv = NULL;
2092 int argc = 0;
2093 int ret;
2094 u32 key;
2095
2096 /* Currently don't support any text based flags */
2097 if (flags != NULL)
2098 return -EINVAL;
2099
2100 if (!user_event_capable(reg_flags))
2101 return -EPERM;
2102
2103 if (args) {
2104 argv = user_event_argv_split(args, &argc);
2105
2106 if (!argv)
2107 return -ENOMEM;
2108 }
2109
2110 /* Prevent dyn_event from racing */
2111 mutex_lock(&event_mutex);
2112 user = find_user_event(group, name, argc, (const char **)argv,
2113 reg_flags, &key);
2114 mutex_unlock(&event_mutex);
2115
2116 if (argv)
2117 argv_free(argv);
2118
2119 if (IS_ERR(user))
2120 return PTR_ERR(user);
2121
2122 if (user) {
2123 *newuser = user;
2124 /*
2125 * Name is allocated by caller, free it since it already exists.
2126 * Caller only worries about failure cases for freeing.
2127 */
2128 kfree(name);
2129
2130 return 0;
2131 }
2132
2133 user = kzalloc_obj(*user, GFP_KERNEL_ACCOUNT);
2134
2135 if (!user)
2136 return -ENOMEM;
2137
2138 INIT_LIST_HEAD(&user->class.fields);
2139 INIT_LIST_HEAD(&user->fields);
2140 INIT_LIST_HEAD(&user->validators);
2141
2142 user->group = group;
2143 user->reg_name = name;
2144 user->reg_flags = reg_flags;
2145
2146 ret = user_event_set_tp_name(user);
2147
2148 if (ret)
2149 goto put_user;
2150
2151 ret = user_event_parse_fields(user, args);
2152
2153 if (ret)
2154 goto put_user;
2155
2156 ret = user_event_create_print_fmt(user);
2157
2158 if (ret)
2159 goto put_user;
2160
2161 user->call.data = user;
2162 user->call.class = &user->class;
2163 user->call.flags = TRACE_EVENT_FL_TRACEPOINT;
2164 user->call.tp = &user->tracepoint;
2165 user->call.event.funcs = &user_event_funcs;
2166
2167 if (EVENT_MULTI_FORMAT(user->reg_flags))
2168 user->class.system = group->system_multi_name;
2169 else
2170 user->class.system = group->system_name;
2171
2172 user->class.fields_array = user_event_fields_array;
2173 user->class.get_fields = user_event_get_fields;
2174 user->class.reg = user_event_reg;
2175 user->class.probe = user_event_ftrace;
2176 #ifdef CONFIG_PERF_EVENTS
2177 user->class.perf_probe = user_event_perf;
2178 #endif
2179
2180 mutex_lock(&event_mutex);
2181
2182 if (current_user_events >= max_user_events) {
2183 ret = -EMFILE;
2184 goto put_user_lock;
2185 }
2186
2187 ret = user_event_trace_register(user);
2188
2189 if (ret)
2190 goto put_user_lock;
2191
2192 if (user->reg_flags & USER_EVENT_REG_PERSIST) {
2193 /* Ensure we track self ref and caller ref (2) */
2194 refcount_set(&user->refcnt, 2);
2195 } else {
2196 /* Ensure we track only caller ref (1) */
2197 refcount_set(&user->refcnt, 1);
2198 }
2199
2200 dyn_event_init(&user->devent, &user_event_dops);
2201 dyn_event_add(&user->devent, &user->call);
2202 hash_add(group->register_table, &user->node, key);
2203 current_user_events++;
2204
2205 mutex_unlock(&event_mutex);
2206
2207 *newuser = user;
2208 return 0;
2209 put_user_lock:
2210 mutex_unlock(&event_mutex);
2211 put_user:
2212 user_event_destroy_fields(user);
2213 user_event_destroy_validators(user);
2214 kfree(user->call.print_fmt);
2215
2216 /* Caller frees reg_name on error, but not multi-name */
2217 if (EVENT_NAME(user) != EVENT_TP_NAME(user))
2218 kfree(EVENT_TP_NAME(user));
2219
2220 kfree(user);
2221 return ret;
2222 }
2223
2224 /*
2225 * Deletes previously created events if they are no longer being used.
2226 */
delete_user_event(struct user_event_group * group,char * name)2227 static int delete_user_event(struct user_event_group *group, char *name)
2228 {
2229 struct user_event *user;
2230 struct hlist_node *tmp;
2231 u32 key = user_event_key(name);
2232 int ret = -ENOENT;
2233
2234 /* Attempt to delete all event(s) with the name passed in */
2235 hash_for_each_possible_safe(group->register_table, user, tmp, node, key) {
2236 if (strcmp(EVENT_NAME(user), name))
2237 continue;
2238
2239 if (!user_event_last_ref(user))
2240 return -EBUSY;
2241
2242 if (!user_event_capable(user->reg_flags))
2243 return -EPERM;
2244
2245 ret = destroy_user_event(user);
2246
2247 if (ret)
2248 goto out;
2249 }
2250 out:
2251 return ret;
2252 }
2253
2254 /*
2255 * Validates the user payload and writes via iterator.
2256 */
user_events_write_core(struct file * file,struct iov_iter * i)2257 static ssize_t user_events_write_core(struct file *file, struct iov_iter *i)
2258 {
2259 struct user_event_file_info *info = file->private_data;
2260 struct user_event_refs *refs;
2261 struct user_event *user = NULL;
2262 struct tracepoint *tp;
2263 ssize_t ret = i->count;
2264 int idx;
2265
2266 if (unlikely(copy_from_iter(&idx, sizeof(idx), i) != sizeof(idx)))
2267 return -EFAULT;
2268
2269 if (idx < 0)
2270 return -EINVAL;
2271
2272 rcu_read_lock_sched();
2273
2274 refs = rcu_dereference_sched(info->refs);
2275
2276 /*
2277 * The refs->events array is protected by RCU, and new items may be
2278 * added. But the user retrieved from indexing into the events array
2279 * shall be immutable while the file is opened.
2280 */
2281 if (likely(refs && idx < refs->count))
2282 user = refs->events[idx];
2283
2284 rcu_read_unlock_sched();
2285
2286 if (unlikely(user == NULL))
2287 return -ENOENT;
2288
2289 if (unlikely(i->count < user->min_size))
2290 return -EINVAL;
2291
2292 tp = &user->tracepoint;
2293
2294 /*
2295 * It's possible key.enabled disables after this check, however
2296 * we don't mind if a few events are included in this condition.
2297 */
2298 if (likely(static_key_enabled(&tp->key))) {
2299 struct tracepoint_func *probe_func_ptr;
2300 user_event_func_t probe_func;
2301 struct iov_iter copy;
2302 void *tpdata;
2303 bool faulted;
2304
2305 if (unlikely(fault_in_iov_iter_readable(i, i->count)))
2306 return -EFAULT;
2307
2308 faulted = false;
2309
2310 rcu_read_lock_sched();
2311
2312 probe_func_ptr = rcu_dereference_sched(tp->funcs);
2313
2314 if (probe_func_ptr) {
2315 do {
2316 copy = *i;
2317 probe_func = probe_func_ptr->func;
2318 tpdata = probe_func_ptr->data;
2319 probe_func(user, ©, tpdata, &faulted);
2320 } while ((++probe_func_ptr)->func);
2321 }
2322
2323 rcu_read_unlock_sched();
2324
2325 if (unlikely(faulted))
2326 return -EFAULT;
2327 } else
2328 return -EBADF;
2329
2330 return ret;
2331 }
2332
user_events_open(struct inode * node,struct file * file)2333 static int user_events_open(struct inode *node, struct file *file)
2334 {
2335 struct user_event_group *group;
2336 struct user_event_file_info *info;
2337
2338 group = current_user_event_group();
2339
2340 if (!group)
2341 return -ENOENT;
2342
2343 info = kzalloc_obj(*info, GFP_KERNEL_ACCOUNT);
2344
2345 if (!info)
2346 return -ENOMEM;
2347
2348 info->group = group;
2349
2350 file->private_data = info;
2351
2352 return 0;
2353 }
2354
user_events_write(struct file * file,const char __user * ubuf,size_t count,loff_t * ppos)2355 static ssize_t user_events_write(struct file *file, const char __user *ubuf,
2356 size_t count, loff_t *ppos)
2357 {
2358 struct iov_iter i;
2359
2360 if (unlikely(*ppos != 0))
2361 return -EFAULT;
2362
2363 if (unlikely(import_ubuf(ITER_SOURCE, (char __user *)ubuf, count, &i)))
2364 return -EFAULT;
2365
2366 return user_events_write_core(file, &i);
2367 }
2368
user_events_write_iter(struct kiocb * kp,struct iov_iter * i)2369 static ssize_t user_events_write_iter(struct kiocb *kp, struct iov_iter *i)
2370 {
2371 return user_events_write_core(kp->ki_filp, i);
2372 }
2373
user_events_ref_add(struct user_event_file_info * info,struct user_event * user)2374 static int user_events_ref_add(struct user_event_file_info *info,
2375 struct user_event *user)
2376 {
2377 struct user_event_group *group = info->group;
2378 struct user_event_refs *refs, *new_refs;
2379 int i, size, count = 0;
2380
2381 refs = rcu_dereference_protected(info->refs,
2382 lockdep_is_held(&group->reg_mutex));
2383
2384 if (refs) {
2385 count = refs->count;
2386
2387 for (i = 0; i < count; ++i)
2388 if (refs->events[i] == user)
2389 return i;
2390 }
2391
2392 size = struct_size(refs, events, count + 1);
2393
2394 new_refs = kzalloc(size, GFP_KERNEL_ACCOUNT);
2395
2396 if (!new_refs)
2397 return -ENOMEM;
2398
2399 new_refs->count = count + 1;
2400
2401 for (i = 0; i < count; ++i)
2402 new_refs->events[i] = refs->events[i];
2403
2404 new_refs->events[i] = user_event_get(user);
2405
2406 rcu_assign_pointer(info->refs, new_refs);
2407
2408 if (refs)
2409 kfree_rcu(refs, rcu);
2410
2411 return i;
2412 }
2413
user_reg_get(struct user_reg __user * ureg,struct user_reg * kreg)2414 static long user_reg_get(struct user_reg __user *ureg, struct user_reg *kreg)
2415 {
2416 u32 size;
2417 long ret;
2418
2419 ret = get_user(size, &ureg->size);
2420
2421 if (ret)
2422 return ret;
2423
2424 if (size > PAGE_SIZE)
2425 return -E2BIG;
2426
2427 if (size < offsetofend(struct user_reg, write_index))
2428 return -EINVAL;
2429
2430 ret = copy_struct_from_user(kreg, sizeof(*kreg), ureg, size);
2431
2432 if (ret)
2433 return ret;
2434
2435 /* Ensure only valid flags */
2436 if (kreg->flags & ~(USER_EVENT_REG_MAX-1))
2437 return -EINVAL;
2438
2439 /* Ensure supported size */
2440 switch (kreg->enable_size) {
2441 case 4:
2442 /* 32-bit */
2443 break;
2444 #if BITS_PER_LONG >= 64
2445 case 8:
2446 /* 64-bit */
2447 break;
2448 #endif
2449 default:
2450 return -EINVAL;
2451 }
2452
2453 /* Ensure natural alignment */
2454 if (kreg->enable_addr % kreg->enable_size)
2455 return -EINVAL;
2456
2457 /* Ensure bit range for size */
2458 if (kreg->enable_bit > (kreg->enable_size * BITS_PER_BYTE) - 1)
2459 return -EINVAL;
2460
2461 /* Ensure accessible */
2462 if (!access_ok((const void __user *)(uintptr_t)kreg->enable_addr,
2463 kreg->enable_size))
2464 return -EFAULT;
2465
2466 kreg->size = size;
2467
2468 return 0;
2469 }
2470
2471 /*
2472 * Registers a user_event on behalf of a user process.
2473 */
user_events_ioctl_reg(struct user_event_file_info * info,unsigned long uarg)2474 static long user_events_ioctl_reg(struct user_event_file_info *info,
2475 unsigned long uarg)
2476 {
2477 struct user_reg __user *ureg = (struct user_reg __user *)uarg;
2478 struct user_reg reg;
2479 struct user_event *user;
2480 struct user_event_enabler *enabler;
2481 char *name;
2482 long ret;
2483 int write_result;
2484
2485 ret = user_reg_get(ureg, ®);
2486
2487 if (ret)
2488 return ret;
2489
2490 /*
2491 * Prevent users from using the same address and bit multiple times
2492 * within the same mm address space. This can cause unexpected behavior
2493 * for user processes that is far easier to debug if this is explicitly
2494 * an error upon registering.
2495 */
2496 if (current_user_event_enabler_exists((unsigned long)reg.enable_addr,
2497 reg.enable_bit))
2498 return -EADDRINUSE;
2499
2500 name = strndup_user((const char __user *)(uintptr_t)reg.name_args,
2501 MAX_EVENT_DESC);
2502
2503 if (IS_ERR(name)) {
2504 ret = PTR_ERR(name);
2505 return ret;
2506 }
2507
2508 ret = user_event_parse_cmd(info->group, name, &user, reg.flags);
2509
2510 if (ret) {
2511 kfree(name);
2512 return ret;
2513 }
2514
2515 ret = user_events_ref_add(info, user);
2516
2517 /* No longer need parse ref, ref_add either worked or not */
2518 user_event_put(user, false);
2519
2520 /* Positive number is index and valid */
2521 if (ret < 0)
2522 return ret;
2523
2524 /*
2525 * user_events_ref_add succeeded:
2526 * At this point we have a user_event, it's lifetime is bound by the
2527 * reference count, not this file. If anything fails, the user_event
2528 * still has a reference until the file is released. During release
2529 * any remaining references (from user_events_ref_add) are decremented.
2530 *
2531 * Attempt to create an enabler, which too has a lifetime tied in the
2532 * same way for the event. Once the task that caused the enabler to be
2533 * created exits or issues exec() then the enablers it has created
2534 * will be destroyed and the ref to the event will be decremented.
2535 */
2536 enabler = user_event_enabler_create(®, user, &write_result);
2537
2538 if (!enabler)
2539 return -ENOMEM;
2540
2541 /* Write failed/faulted, give error back to caller */
2542 if (write_result)
2543 return write_result;
2544
2545 put_user((u32)ret, &ureg->write_index);
2546
2547 return 0;
2548 }
2549
2550 /*
2551 * Deletes a user_event on behalf of a user process.
2552 */
user_events_ioctl_del(struct user_event_file_info * info,unsigned long uarg)2553 static long user_events_ioctl_del(struct user_event_file_info *info,
2554 unsigned long uarg)
2555 {
2556 void __user *ubuf = (void __user *)uarg;
2557 char *name;
2558 long ret;
2559
2560 name = strndup_user(ubuf, MAX_EVENT_DESC);
2561
2562 if (IS_ERR(name))
2563 return PTR_ERR(name);
2564
2565 /* event_mutex prevents dyn_event from racing */
2566 mutex_lock(&event_mutex);
2567 ret = delete_user_event(info->group, name);
2568 mutex_unlock(&event_mutex);
2569
2570 kfree(name);
2571
2572 return ret;
2573 }
2574
user_unreg_get(struct user_unreg __user * ureg,struct user_unreg * kreg)2575 static long user_unreg_get(struct user_unreg __user *ureg,
2576 struct user_unreg *kreg)
2577 {
2578 u32 size;
2579 long ret;
2580
2581 ret = get_user(size, &ureg->size);
2582
2583 if (ret)
2584 return ret;
2585
2586 if (size > PAGE_SIZE)
2587 return -E2BIG;
2588
2589 if (size < offsetofend(struct user_unreg, disable_addr))
2590 return -EINVAL;
2591
2592 ret = copy_struct_from_user(kreg, sizeof(*kreg), ureg, size);
2593
2594 /* Ensure no reserved values, since we don't support any yet */
2595 if (kreg->__reserved || kreg->__reserved2)
2596 return -EINVAL;
2597
2598 return ret;
2599 }
2600
user_event_mm_clear_bit(struct user_event_mm * user_mm,unsigned long uaddr,unsigned char bit,unsigned long flags)2601 static int user_event_mm_clear_bit(struct user_event_mm *user_mm,
2602 unsigned long uaddr, unsigned char bit,
2603 unsigned long flags)
2604 {
2605 struct user_event_enabler enabler;
2606 int result;
2607 int attempt = 0;
2608
2609 memset(&enabler, 0, sizeof(enabler));
2610 enabler.addr = uaddr;
2611 enabler.values = bit | flags;
2612 retry:
2613 /* Prevents state changes from racing with new enablers */
2614 mutex_lock(&event_mutex);
2615
2616 /* Force the bit to be cleared, since no event is attached */
2617 mmap_read_lock(user_mm->mm);
2618 result = user_event_enabler_write(user_mm, &enabler, false, &attempt);
2619 mmap_read_unlock(user_mm->mm);
2620
2621 mutex_unlock(&event_mutex);
2622
2623 if (result) {
2624 /* Attempt to fault-in and retry if it worked */
2625 if (!user_event_mm_fault_in(user_mm, uaddr, attempt))
2626 goto retry;
2627 }
2628
2629 return result;
2630 }
2631
2632 /*
2633 * Unregisters an enablement address/bit within a task/user mm.
2634 */
user_events_ioctl_unreg(unsigned long uarg)2635 static long user_events_ioctl_unreg(unsigned long uarg)
2636 {
2637 struct user_unreg __user *ureg = (struct user_unreg __user *)uarg;
2638 struct user_event_mm *mm = current->user_event_mm;
2639 struct user_event_enabler *enabler, *next;
2640 struct user_unreg reg;
2641 unsigned long flags;
2642 long ret;
2643
2644 ret = user_unreg_get(ureg, ®);
2645
2646 if (ret)
2647 return ret;
2648
2649 if (!mm)
2650 return -ENOENT;
2651
2652 flags = 0;
2653 ret = -ENOENT;
2654
2655 /*
2656 * Flags freeing and faulting are used to indicate if the enabler is in
2657 * use at all. When faulting is set a page-fault is occurring asyncly.
2658 * During async fault if freeing is set, the enabler will be destroyed.
2659 * If no async fault is happening, we can destroy it now since we hold
2660 * the event_mutex during these checks.
2661 */
2662 mutex_lock(&event_mutex);
2663
2664 list_for_each_entry_safe(enabler, next, &mm->enablers, mm_enablers_link) {
2665 if (enabler->addr == reg.disable_addr &&
2666 ENABLE_BIT(enabler) == reg.disable_bit) {
2667 set_bit(ENABLE_VAL_FREEING_BIT, ENABLE_BITOPS(enabler));
2668
2669 /* We must keep compat flags for the clear */
2670 flags |= enabler->values & ENABLE_VAL_COMPAT_MASK;
2671
2672 if (!test_bit(ENABLE_VAL_FAULTING_BIT, ENABLE_BITOPS(enabler)))
2673 user_event_enabler_destroy(enabler);
2674
2675 /* Removed at least one */
2676 ret = 0;
2677 }
2678 }
2679
2680 mutex_unlock(&event_mutex);
2681
2682 /* Ensure bit is now cleared for user, regardless of event status */
2683 if (!ret)
2684 ret = user_event_mm_clear_bit(mm, reg.disable_addr,
2685 reg.disable_bit, flags);
2686
2687 return ret;
2688 }
2689
2690 /*
2691 * Handles the ioctl from user mode to register or alter operations.
2692 */
user_events_ioctl(struct file * file,unsigned int cmd,unsigned long uarg)2693 static long user_events_ioctl(struct file *file, unsigned int cmd,
2694 unsigned long uarg)
2695 {
2696 struct user_event_file_info *info = file->private_data;
2697 struct user_event_group *group = info->group;
2698 long ret = -ENOTTY;
2699
2700 switch (cmd) {
2701 case DIAG_IOCSREG:
2702 mutex_lock(&group->reg_mutex);
2703 ret = user_events_ioctl_reg(info, uarg);
2704 mutex_unlock(&group->reg_mutex);
2705 break;
2706
2707 case DIAG_IOCSDEL:
2708 mutex_lock(&group->reg_mutex);
2709 ret = user_events_ioctl_del(info, uarg);
2710 mutex_unlock(&group->reg_mutex);
2711 break;
2712
2713 case DIAG_IOCSUNREG:
2714 mutex_lock(&group->reg_mutex);
2715 ret = user_events_ioctl_unreg(uarg);
2716 mutex_unlock(&group->reg_mutex);
2717 break;
2718 }
2719
2720 return ret;
2721 }
2722
2723 /*
2724 * Handles the final close of the file from user mode.
2725 */
user_events_release(struct inode * node,struct file * file)2726 static int user_events_release(struct inode *node, struct file *file)
2727 {
2728 struct user_event_file_info *info = file->private_data;
2729 struct user_event_group *group;
2730 struct user_event_refs *refs;
2731 int i;
2732
2733 if (!info)
2734 return -EINVAL;
2735
2736 group = info->group;
2737
2738 /*
2739 * Ensure refs cannot change under any situation by taking the
2740 * register mutex during the final freeing of the references.
2741 */
2742 mutex_lock(&group->reg_mutex);
2743
2744 refs = info->refs;
2745
2746 if (!refs)
2747 goto out;
2748
2749 /*
2750 * The lifetime of refs has reached an end, it's tied to this file.
2751 * The underlying user_events are ref counted, and cannot be freed.
2752 * After this decrement, the user_events may be freed elsewhere.
2753 */
2754 for (i = 0; i < refs->count; ++i)
2755 user_event_put(refs->events[i], false);
2756
2757 out:
2758 file->private_data = NULL;
2759
2760 mutex_unlock(&group->reg_mutex);
2761
2762 kfree(refs);
2763 kfree(info);
2764
2765 return 0;
2766 }
2767
2768 static const struct file_operations user_data_fops = {
2769 .open = user_events_open,
2770 .write = user_events_write,
2771 .write_iter = user_events_write_iter,
2772 .unlocked_ioctl = user_events_ioctl,
2773 .release = user_events_release,
2774 };
2775
user_seq_start(struct seq_file * m,loff_t * pos)2776 static void *user_seq_start(struct seq_file *m, loff_t *pos)
2777 {
2778 if (*pos)
2779 return NULL;
2780
2781 return (void *)1;
2782 }
2783
user_seq_next(struct seq_file * m,void * p,loff_t * pos)2784 static void *user_seq_next(struct seq_file *m, void *p, loff_t *pos)
2785 {
2786 ++*pos;
2787 return NULL;
2788 }
2789
user_seq_stop(struct seq_file * m,void * p)2790 static void user_seq_stop(struct seq_file *m, void *p)
2791 {
2792 }
2793
user_seq_show(struct seq_file * m,void * p)2794 static int user_seq_show(struct seq_file *m, void *p)
2795 {
2796 struct user_event_group *group = m->private;
2797 struct user_event *user;
2798 char status;
2799 int i, active = 0, busy = 0;
2800
2801 if (!group)
2802 return -EINVAL;
2803
2804 mutex_lock(&group->reg_mutex);
2805
2806 hash_for_each(group->register_table, i, user, node) {
2807 status = user->status;
2808
2809 seq_puts(m, EVENT_TP_NAME(user));
2810
2811 if (status != 0) {
2812 seq_puts(m, " # Used by");
2813 if (status & EVENT_STATUS_FTRACE)
2814 seq_puts(m, " ftrace");
2815 if (status & EVENT_STATUS_PERF)
2816 seq_puts(m, " perf");
2817 if (status & EVENT_STATUS_OTHER)
2818 seq_puts(m, " other");
2819 busy++;
2820 }
2821
2822 seq_putc(m, '\n');
2823 active++;
2824 }
2825
2826 mutex_unlock(&group->reg_mutex);
2827
2828 seq_putc(m, '\n');
2829 seq_printf(m, "Active: %d\n", active);
2830 seq_printf(m, "Busy: %d\n", busy);
2831
2832 return 0;
2833 }
2834
2835 static const struct seq_operations user_seq_ops = {
2836 .start = user_seq_start,
2837 .next = user_seq_next,
2838 .stop = user_seq_stop,
2839 .show = user_seq_show,
2840 };
2841
user_status_open(struct inode * node,struct file * file)2842 static int user_status_open(struct inode *node, struct file *file)
2843 {
2844 struct user_event_group *group;
2845 int ret;
2846
2847 group = current_user_event_group();
2848
2849 if (!group)
2850 return -ENOENT;
2851
2852 ret = seq_open(file, &user_seq_ops);
2853
2854 if (!ret) {
2855 /* Chain group to seq_file */
2856 struct seq_file *m = file->private_data;
2857
2858 m->private = group;
2859 }
2860
2861 return ret;
2862 }
2863
2864 static const struct file_operations user_status_fops = {
2865 .open = user_status_open,
2866 .read = seq_read,
2867 .llseek = seq_lseek,
2868 .release = seq_release,
2869 };
2870
2871 /*
2872 * Creates a set of tracefs files to allow user mode interactions.
2873 */
create_user_tracefs(void)2874 static int create_user_tracefs(void)
2875 {
2876 struct dentry *edata, *emmap;
2877
2878 edata = tracefs_create_file("user_events_data", TRACE_MODE_WRITE,
2879 NULL, NULL, &user_data_fops);
2880
2881 if (!edata) {
2882 pr_warn("Could not create tracefs 'user_events_data' entry\n");
2883 goto err;
2884 }
2885
2886 emmap = tracefs_create_file("user_events_status", TRACE_MODE_READ,
2887 NULL, NULL, &user_status_fops);
2888
2889 if (!emmap) {
2890 tracefs_remove(edata);
2891 pr_warn("Could not create tracefs 'user_events_mmap' entry\n");
2892 goto err;
2893 }
2894
2895 return 0;
2896 err:
2897 return -ENODEV;
2898 }
2899
set_max_user_events_sysctl(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)2900 static int set_max_user_events_sysctl(const struct ctl_table *table, int write,
2901 void *buffer, size_t *lenp, loff_t *ppos)
2902 {
2903 int ret;
2904
2905 mutex_lock(&event_mutex);
2906
2907 ret = proc_douintvec(table, write, buffer, lenp, ppos);
2908
2909 mutex_unlock(&event_mutex);
2910
2911 return ret;
2912 }
2913
2914 static const struct ctl_table user_event_sysctls[] = {
2915 {
2916 .procname = "user_events_max",
2917 .data = &max_user_events,
2918 .maxlen = sizeof(unsigned int),
2919 .mode = 0644,
2920 .proc_handler = set_max_user_events_sysctl,
2921 },
2922 };
2923
trace_events_user_init(void)2924 static int __init trace_events_user_init(void)
2925 {
2926 int ret;
2927
2928 fault_cache = KMEM_CACHE(user_event_enabler_fault, 0);
2929
2930 if (!fault_cache)
2931 return -ENOMEM;
2932
2933 init_group = user_event_group_create();
2934
2935 if (!init_group) {
2936 kmem_cache_destroy(fault_cache);
2937 return -ENOMEM;
2938 }
2939
2940 ret = create_user_tracefs();
2941
2942 if (ret) {
2943 pr_warn("user_events could not register with tracefs\n");
2944 user_event_group_destroy(init_group);
2945 kmem_cache_destroy(fault_cache);
2946 init_group = NULL;
2947 return ret;
2948 }
2949
2950 if (dyn_event_register(&user_event_dops))
2951 pr_warn("user_events could not register with dyn_events\n");
2952
2953 register_sysctl_init("kernel", user_event_sysctls);
2954
2955 return 0;
2956 }
2957
2958 fs_initcall(trace_events_user_init);
2959