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1 /*
2 * jump label support
3 *
4 * Copyright (C) 2009 Jason Baron <jbaron@redhat.com>
5 * Copyright (C) 2011 Peter Zijlstra
6 *
7 */
8 #include <linux/memory.h>
9 #include <linux/uaccess.h>
10 #include <linux/module.h>
11 #include <linux/list.h>
12 #include <linux/slab.h>
13 #include <linux/sort.h>
14 #include <linux/err.h>
15 #include <linux/static_key.h>
16 #include <linux/jump_label_ratelimit.h>
17 #include <linux/bug.h>
18 #include <linux/cpu.h>
19 #include <asm/sections.h>
20
21 /* mutex to protect coming/going of the the jump_label table */
22 static DEFINE_MUTEX(jump_label_mutex);
23
24 void jump_label_lock(void)
25 {
26 mutex_lock(&jump_label_mutex);
27 }
28
29 void jump_label_unlock(void)
30 {
31 mutex_unlock(&jump_label_mutex);
32 }
33
34 static int jump_label_cmp(const void *a, const void *b)
35 {
36 const struct jump_entry *jea = a;
37 const struct jump_entry *jeb = b;
38
39 if (jump_entry_key(jea) < jump_entry_key(jeb))
40 return -1;
41
42 if (jump_entry_key(jea) > jump_entry_key(jeb))
43 return 1;
44
45 return 0;
46 }
47
48 static void jump_label_swap(void *a, void *b, int size)
49 {
50 long delta = (unsigned long)a - (unsigned long)b;
51 struct jump_entry *jea = a;
52 struct jump_entry *jeb = b;
53 struct jump_entry tmp = *jea;
54
55 jea->code = jeb->code - delta;
56 jea->target = jeb->target - delta;
57 jea->key = jeb->key - delta;
58
59 jeb->code = tmp.code + delta;
60 jeb->target = tmp.target + delta;
61 jeb->key = tmp.key + delta;
62 }
63
64 static void
65 jump_label_sort_entries(struct jump_entry *start, struct jump_entry *stop)
66 {
67 unsigned long size;
68 void *swapfn = NULL;
69
70 if (IS_ENABLED(CONFIG_HAVE_ARCH_JUMP_LABEL_RELATIVE))
71 swapfn = jump_label_swap;
72
73 size = (((unsigned long)stop - (unsigned long)start)
74 / sizeof(struct jump_entry));
75 sort(start, size, sizeof(struct jump_entry), jump_label_cmp, swapfn);
76 }
77
78 static void jump_label_update(struct static_key *key);
79
80 /*
81 * There are similar definitions for the !CONFIG_JUMP_LABEL case in jump_label.h.
82 * The use of 'atomic_read()' requires atomic.h and its problematic for some
83 * kernel headers such as kernel.h and others. Since static_key_count() is not
84 * used in the branch statements as it is for the !CONFIG_JUMP_LABEL case its ok
85 * to have it be a function here. Similarly, for 'static_key_enable()' and
86 * 'static_key_disable()', which require bug.h. This should allow jump_label.h
87 * to be included from most/all places for CONFIG_JUMP_LABEL.
88 */
89 int static_key_count(struct static_key *key)
90 {
91 /*
92 * -1 means the first static_key_slow_inc() is in progress.
93 * static_key_enabled() must return true, so return 1 here.
94 */
95 int n = atomic_read(&key->enabled);
96
97 return n >= 0 ? n : 1;
98 }
99 EXPORT_SYMBOL_GPL(static_key_count);
100
101 void static_key_slow_inc_cpuslocked(struct static_key *key)
102 {
103 int v, v1;
104
105 STATIC_KEY_CHECK_USE(key);
106 lockdep_assert_cpus_held();
107
108 /*
109 * Careful if we get concurrent static_key_slow_inc() calls;
110 * later calls must wait for the first one to _finish_ the
111 * jump_label_update() process. At the same time, however,
112 * the jump_label_update() call below wants to see
113 * static_key_enabled(&key) for jumps to be updated properly.
114 *
115 * So give a special meaning to negative key->enabled: it sends
116 * static_key_slow_inc() down the slow path, and it is non-zero
117 * so it counts as "enabled" in jump_label_update(). Note that
118 * atomic_inc_unless_negative() checks >= 0, so roll our own.
119 */
120 for (v = atomic_read(&key->enabled); v > 0; v = v1) {
121 v1 = atomic_cmpxchg(&key->enabled, v, v + 1);
122 if (likely(v1 == v))
123 return;
124 }
125
126 jump_label_lock();
127 if (atomic_read(&key->enabled) == 0) {
128 atomic_set(&key->enabled, -1);
129 jump_label_update(key);
130 /*
131 * Ensure that if the above cmpxchg loop observes our positive
132 * value, it must also observe all the text changes.
133 */
134 atomic_set_release(&key->enabled, 1);
135 } else {
136 atomic_inc(&key->enabled);
137 }
138 jump_label_unlock();
139 }
140
141 void static_key_slow_inc(struct static_key *key)
142 {
143 cpus_read_lock();
144 static_key_slow_inc_cpuslocked(key);
145 cpus_read_unlock();
146 }
147 EXPORT_SYMBOL_GPL(static_key_slow_inc);
148
149 void static_key_enable_cpuslocked(struct static_key *key)
150 {
151 STATIC_KEY_CHECK_USE(key);
152 lockdep_assert_cpus_held();
153
154 if (atomic_read(&key->enabled) > 0) {
155 WARN_ON_ONCE(atomic_read(&key->enabled) != 1);
156 return;
157 }
158
159 jump_label_lock();
160 if (atomic_read(&key->enabled) == 0) {
161 atomic_set(&key->enabled, -1);
162 jump_label_update(key);
163 /*
164 * See static_key_slow_inc().
165 */
166 atomic_set_release(&key->enabled, 1);
167 }
168 jump_label_unlock();
169 }
170 EXPORT_SYMBOL_GPL(static_key_enable_cpuslocked);
171
172 void static_key_enable(struct static_key *key)
173 {
174 cpus_read_lock();
175 static_key_enable_cpuslocked(key);
176 cpus_read_unlock();
177 }
178 EXPORT_SYMBOL_GPL(static_key_enable);
179
180 void static_key_disable_cpuslocked(struct static_key *key)
181 {
182 STATIC_KEY_CHECK_USE(key);
183 lockdep_assert_cpus_held();
184
185 if (atomic_read(&key->enabled) != 1) {
186 WARN_ON_ONCE(atomic_read(&key->enabled) != 0);
187 return;
188 }
189
190 jump_label_lock();
191 if (atomic_cmpxchg(&key->enabled, 1, 0))
192 jump_label_update(key);
193 jump_label_unlock();
194 }
195 EXPORT_SYMBOL_GPL(static_key_disable_cpuslocked);
196
197 void static_key_disable(struct static_key *key)
198 {
199 cpus_read_lock();
200 static_key_disable_cpuslocked(key);
201 cpus_read_unlock();
202 }
203 EXPORT_SYMBOL_GPL(static_key_disable);
204
205 static void __static_key_slow_dec_cpuslocked(struct static_key *key,
206 unsigned long rate_limit,
207 struct delayed_work *work)
208 {
209 int val;
210
211 lockdep_assert_cpus_held();
212
213 /*
214 * The negative count check is valid even when a negative
215 * key->enabled is in use by static_key_slow_inc(); a
216 * __static_key_slow_dec() before the first static_key_slow_inc()
217 * returns is unbalanced, because all other static_key_slow_inc()
218 * instances block while the update is in progress.
219 */
220 val = atomic_fetch_add_unless(&key->enabled, -1, 1);
221 if (val != 1) {
222 WARN(val < 0, "jump label: negative count!\n");
223 return;
224 }
225
226 jump_label_lock();
227 if (atomic_dec_and_test(&key->enabled)) {
228 if (rate_limit) {
229 atomic_inc(&key->enabled);
230 schedule_delayed_work(work, rate_limit);
231 } else {
232 jump_label_update(key);
233 }
234 }
235 jump_label_unlock();
236 }
237
238 static void __static_key_slow_dec(struct static_key *key,
239 unsigned long rate_limit,
240 struct delayed_work *work)
241 {
242 cpus_read_lock();
243 __static_key_slow_dec_cpuslocked(key, rate_limit, work);
244 cpus_read_unlock();
245 }
246
247 static void jump_label_update_timeout(struct work_struct *work)
248 {
249 struct static_key_deferred *key =
250 container_of(work, struct static_key_deferred, work.work);
251 __static_key_slow_dec(&key->key, 0, NULL);
252 }
253
254 void static_key_slow_dec(struct static_key *key)
255 {
256 STATIC_KEY_CHECK_USE(key);
257 __static_key_slow_dec(key, 0, NULL);
258 }
259 EXPORT_SYMBOL_GPL(static_key_slow_dec);
260
261 void static_key_slow_dec_cpuslocked(struct static_key *key)
262 {
263 STATIC_KEY_CHECK_USE(key);
264 __static_key_slow_dec_cpuslocked(key, 0, NULL);
265 }
266
267 void static_key_slow_dec_deferred(struct static_key_deferred *key)
268 {
269 STATIC_KEY_CHECK_USE(key);
270 __static_key_slow_dec(&key->key, key->timeout, &key->work);
271 }
272 EXPORT_SYMBOL_GPL(static_key_slow_dec_deferred);
273
274 void static_key_deferred_flush(struct static_key_deferred *key)
275 {
276 STATIC_KEY_CHECK_USE(key);
277 flush_delayed_work(&key->work);
278 }
279 EXPORT_SYMBOL_GPL(static_key_deferred_flush);
280
281 void jump_label_rate_limit(struct static_key_deferred *key,
282 unsigned long rl)
283 {
284 STATIC_KEY_CHECK_USE(key);
285 key->timeout = rl;
286 INIT_DELAYED_WORK(&key->work, jump_label_update_timeout);
287 }
288 EXPORT_SYMBOL_GPL(jump_label_rate_limit);
289
290 static int addr_conflict(struct jump_entry *entry, void *start, void *end)
291 {
292 if (jump_entry_code(entry) <= (unsigned long)end &&
293 jump_entry_code(entry) + JUMP_LABEL_NOP_SIZE > (unsigned long)start)
294 return 1;
295
296 return 0;
297 }
298
299 static int __jump_label_text_reserved(struct jump_entry *iter_start,
300 struct jump_entry *iter_stop, void *start, void *end)
301 {
302 struct jump_entry *iter;
303
304 iter = iter_start;
305 while (iter < iter_stop) {
306 if (addr_conflict(iter, start, end))
307 return 1;
308 iter++;
309 }
310
311 return 0;
312 }
313
314 /*
315 * Update code which is definitely not currently executing.
316 * Architectures which need heavyweight synchronization to modify
317 * running code can override this to make the non-live update case
318 * cheaper.
319 */
320 void __weak __init_or_module arch_jump_label_transform_static(struct jump_entry *entry,
321 enum jump_label_type type)
322 {
323 arch_jump_label_transform(entry, type);
324 }
325
326 static inline struct jump_entry *static_key_entries(struct static_key *key)
327 {
328 WARN_ON_ONCE(key->type & JUMP_TYPE_LINKED);
329 return (struct jump_entry *)(key->type & ~JUMP_TYPE_MASK);
330 }
331
332 static inline bool static_key_type(struct static_key *key)
333 {
334 return key->type & JUMP_TYPE_TRUE;
335 }
336
337 static inline bool static_key_linked(struct static_key *key)
338 {
339 return key->type & JUMP_TYPE_LINKED;
340 }
341
342 static inline void static_key_clear_linked(struct static_key *key)
343 {
344 key->type &= ~JUMP_TYPE_LINKED;
345 }
346
347 static inline void static_key_set_linked(struct static_key *key)
348 {
349 key->type |= JUMP_TYPE_LINKED;
350 }
351
352 /***
353 * A 'struct static_key' uses a union such that it either points directly
354 * to a table of 'struct jump_entry' or to a linked list of modules which in
355 * turn point to 'struct jump_entry' tables.
356 *
357 * The two lower bits of the pointer are used to keep track of which pointer
358 * type is in use and to store the initial branch direction, we use an access
359 * function which preserves these bits.
360 */
361 static void static_key_set_entries(struct static_key *key,
362 struct jump_entry *entries)
363 {
364 unsigned long type;
365
366 WARN_ON_ONCE((unsigned long)entries & JUMP_TYPE_MASK);
367 type = key->type & JUMP_TYPE_MASK;
368 key->entries = entries;
369 key->type |= type;
370 }
371
372 static enum jump_label_type jump_label_type(struct jump_entry *entry)
373 {
374 struct static_key *key = jump_entry_key(entry);
375 bool enabled = static_key_enabled(key);
376 bool branch = jump_entry_is_branch(entry);
377
378 /* See the comment in linux/jump_label.h */
379 return enabled ^ branch;
380 }
381
382 static void __jump_label_update(struct static_key *key,
383 struct jump_entry *entry,
384 struct jump_entry *stop,
385 bool init)
386 {
387 for (; (entry < stop) && (jump_entry_key(entry) == key); entry++) {
388 /*
389 * An entry->code of 0 indicates an entry which has been
390 * disabled because it was in an init text area.
391 */
392 if (init || !jump_entry_is_init(entry)) {
393 if (kernel_text_address(jump_entry_code(entry)))
394 arch_jump_label_transform(entry, jump_label_type(entry));
395 else
396 WARN_ONCE(1, "can't patch jump_label at %pS",
397 (void *)jump_entry_code(entry));
398 }
399 }
400 }
401
402 void __init jump_label_init(void)
403 {
404 struct jump_entry *iter_start = __start___jump_table;
405 struct jump_entry *iter_stop = __stop___jump_table;
406 struct static_key *key = NULL;
407 struct jump_entry *iter;
408
409 /*
410 * Since we are initializing the static_key.enabled field with
411 * with the 'raw' int values (to avoid pulling in atomic.h) in
412 * jump_label.h, let's make sure that is safe. There are only two
413 * cases to check since we initialize to 0 or 1.
414 */
415 BUILD_BUG_ON((int)ATOMIC_INIT(0) != 0);
416 BUILD_BUG_ON((int)ATOMIC_INIT(1) != 1);
417
418 if (static_key_initialized)
419 return;
420
421 cpus_read_lock();
422 jump_label_lock();
423 jump_label_sort_entries(iter_start, iter_stop);
424
425 for (iter = iter_start; iter < iter_stop; iter++) {
426 struct static_key *iterk;
427
428 /* rewrite NOPs */
429 if (jump_label_type(iter) == JUMP_LABEL_NOP)
430 arch_jump_label_transform_static(iter, JUMP_LABEL_NOP);
431
432 if (init_section_contains((void *)jump_entry_code(iter), 1))
433 jump_entry_set_init(iter);
434
435 iterk = jump_entry_key(iter);
436 if (iterk == key)
437 continue;
438
439 key = iterk;
440 static_key_set_entries(key, iter);
441 }
442 static_key_initialized = true;
443 jump_label_unlock();
444 cpus_read_unlock();
445 }
446
447 #ifdef CONFIG_MODULES
448
449 static enum jump_label_type jump_label_init_type(struct jump_entry *entry)
450 {
451 struct static_key *key = jump_entry_key(entry);
452 bool type = static_key_type(key);
453 bool branch = jump_entry_is_branch(entry);
454
455 /* See the comment in linux/jump_label.h */
456 return type ^ branch;
457 }
458
459 struct static_key_mod {
460 struct static_key_mod *next;
461 struct jump_entry *entries;
462 struct module *mod;
463 };
464
465 static inline struct static_key_mod *static_key_mod(struct static_key *key)
466 {
467 WARN_ON_ONCE(!static_key_linked(key));
468 return (struct static_key_mod *)(key->type & ~JUMP_TYPE_MASK);
469 }
470
471 /***
472 * key->type and key->next are the same via union.
473 * This sets key->next and preserves the type bits.
474 *
475 * See additional comments above static_key_set_entries().
476 */
477 static void static_key_set_mod(struct static_key *key,
478 struct static_key_mod *mod)
479 {
480 unsigned long type;
481
482 WARN_ON_ONCE((unsigned long)mod & JUMP_TYPE_MASK);
483 type = key->type & JUMP_TYPE_MASK;
484 key->next = mod;
485 key->type |= type;
486 }
487
488 static int __jump_label_mod_text_reserved(void *start, void *end)
489 {
490 struct module *mod;
491
492 preempt_disable();
493 mod = __module_text_address((unsigned long)start);
494 WARN_ON_ONCE(__module_text_address((unsigned long)end) != mod);
495 preempt_enable();
496
497 if (!mod)
498 return 0;
499
500
501 return __jump_label_text_reserved(mod->jump_entries,
502 mod->jump_entries + mod->num_jump_entries,
503 start, end);
504 }
505
506 static void __jump_label_mod_update(struct static_key *key)
507 {
508 struct static_key_mod *mod;
509
510 for (mod = static_key_mod(key); mod; mod = mod->next) {
511 struct jump_entry *stop;
512 struct module *m;
513
514 /*
515 * NULL if the static_key is defined in a module
516 * that does not use it
517 */
518 if (!mod->entries)
519 continue;
520
521 m = mod->mod;
522 if (!m)
523 stop = __stop___jump_table;
524 else
525 stop = m->jump_entries + m->num_jump_entries;
526 __jump_label_update(key, mod->entries, stop,
527 m && m->state == MODULE_STATE_COMING);
528 }
529 }
530
531 /***
532 * apply_jump_label_nops - patch module jump labels with arch_get_jump_label_nop()
533 * @mod: module to patch
534 *
535 * Allow for run-time selection of the optimal nops. Before the module
536 * loads patch these with arch_get_jump_label_nop(), which is specified by
537 * the arch specific jump label code.
538 */
539 void jump_label_apply_nops(struct module *mod)
540 {
541 struct jump_entry *iter_start = mod->jump_entries;
542 struct jump_entry *iter_stop = iter_start + mod->num_jump_entries;
543 struct jump_entry *iter;
544
545 /* if the module doesn't have jump label entries, just return */
546 if (iter_start == iter_stop)
547 return;
548
549 for (iter = iter_start; iter < iter_stop; iter++) {
550 /* Only write NOPs for arch_branch_static(). */
551 if (jump_label_init_type(iter) == JUMP_LABEL_NOP)
552 arch_jump_label_transform_static(iter, JUMP_LABEL_NOP);
553 }
554 }
555
556 static int jump_label_add_module(struct module *mod)
557 {
558 struct jump_entry *iter_start = mod->jump_entries;
559 struct jump_entry *iter_stop = iter_start + mod->num_jump_entries;
560 struct jump_entry *iter;
561 struct static_key *key = NULL;
562 struct static_key_mod *jlm, *jlm2;
563
564 /* if the module doesn't have jump label entries, just return */
565 if (iter_start == iter_stop)
566 return 0;
567
568 jump_label_sort_entries(iter_start, iter_stop);
569
570 for (iter = iter_start; iter < iter_stop; iter++) {
571 struct static_key *iterk;
572
573 if (within_module_init(jump_entry_code(iter), mod))
574 jump_entry_set_init(iter);
575
576 iterk = jump_entry_key(iter);
577 if (iterk == key)
578 continue;
579
580 key = iterk;
581 if (within_module((unsigned long)key, mod)) {
582 static_key_set_entries(key, iter);
583 continue;
584 }
585 jlm = kzalloc(sizeof(struct static_key_mod), GFP_KERNEL);
586 if (!jlm)
587 return -ENOMEM;
588 if (!static_key_linked(key)) {
589 jlm2 = kzalloc(sizeof(struct static_key_mod),
590 GFP_KERNEL);
591 if (!jlm2) {
592 kfree(jlm);
593 return -ENOMEM;
594 }
595 preempt_disable();
596 jlm2->mod = __module_address((unsigned long)key);
597 preempt_enable();
598 jlm2->entries = static_key_entries(key);
599 jlm2->next = NULL;
600 static_key_set_mod(key, jlm2);
601 static_key_set_linked(key);
602 }
603 jlm->mod = mod;
604 jlm->entries = iter;
605 jlm->next = static_key_mod(key);
606 static_key_set_mod(key, jlm);
607 static_key_set_linked(key);
608
609 /* Only update if we've changed from our initial state */
610 if (jump_label_type(iter) != jump_label_init_type(iter))
611 __jump_label_update(key, iter, iter_stop, true);
612 }
613
614 return 0;
615 }
616
617 static void jump_label_del_module(struct module *mod)
618 {
619 struct jump_entry *iter_start = mod->jump_entries;
620 struct jump_entry *iter_stop = iter_start + mod->num_jump_entries;
621 struct jump_entry *iter;
622 struct static_key *key = NULL;
623 struct static_key_mod *jlm, **prev;
624
625 for (iter = iter_start; iter < iter_stop; iter++) {
626 if (jump_entry_key(iter) == key)
627 continue;
628
629 key = jump_entry_key(iter);
630
631 if (within_module((unsigned long)key, mod))
632 continue;
633
634 /* No memory during module load */
635 if (WARN_ON(!static_key_linked(key)))
636 continue;
637
638 prev = &key->next;
639 jlm = static_key_mod(key);
640
641 while (jlm && jlm->mod != mod) {
642 prev = &jlm->next;
643 jlm = jlm->next;
644 }
645
646 /* No memory during module load */
647 if (WARN_ON(!jlm))
648 continue;
649
650 if (prev == &key->next)
651 static_key_set_mod(key, jlm->next);
652 else
653 *prev = jlm->next;
654
655 kfree(jlm);
656
657 jlm = static_key_mod(key);
658 /* if only one etry is left, fold it back into the static_key */
659 if (jlm->next == NULL) {
660 static_key_set_entries(key, jlm->entries);
661 static_key_clear_linked(key);
662 kfree(jlm);
663 }
664 }
665 }
666
667 static int
668 jump_label_module_notify(struct notifier_block *self, unsigned long val,
669 void *data)
670 {
671 struct module *mod = data;
672 int ret = 0;
673
674 cpus_read_lock();
675 jump_label_lock();
676
677 switch (val) {
678 case MODULE_STATE_COMING:
679 ret = jump_label_add_module(mod);
680 if (ret) {
681 WARN(1, "Failed to allocate memory: jump_label may not work properly.\n");
682 jump_label_del_module(mod);
683 }
684 break;
685 case MODULE_STATE_GOING:
686 jump_label_del_module(mod);
687 break;
688 }
689
690 jump_label_unlock();
691 cpus_read_unlock();
692
693 return notifier_from_errno(ret);
694 }
695
696 static struct notifier_block jump_label_module_nb = {
697 .notifier_call = jump_label_module_notify,
698 .priority = 1, /* higher than tracepoints */
699 };
700
701 static __init int jump_label_init_module(void)
702 {
703 return register_module_notifier(&jump_label_module_nb);
704 }
705 early_initcall(jump_label_init_module);
706
707 #endif /* CONFIG_MODULES */
708
709 /***
710 * jump_label_text_reserved - check if addr range is reserved
711 * @start: start text addr
712 * @end: end text addr
713 *
714 * checks if the text addr located between @start and @end
715 * overlaps with any of the jump label patch addresses. Code
716 * that wants to modify kernel text should first verify that
717 * it does not overlap with any of the jump label addresses.
718 * Caller must hold jump_label_mutex.
719 *
720 * returns 1 if there is an overlap, 0 otherwise
721 */
722 int jump_label_text_reserved(void *start, void *end)
723 {
724 int ret = __jump_label_text_reserved(__start___jump_table,
725 __stop___jump_table, start, end);
726
727 if (ret)
728 return ret;
729
730 #ifdef CONFIG_MODULES
731 ret = __jump_label_mod_text_reserved(start, end);
732 #endif
733 return ret;
734 }
735
736 static void jump_label_update(struct static_key *key)
737 {
738 struct jump_entry *stop = __stop___jump_table;
739 struct jump_entry *entry;
740 #ifdef CONFIG_MODULES
741 struct module *mod;
742
743 if (static_key_linked(key)) {
744 __jump_label_mod_update(key);
745 return;
746 }
747
748 preempt_disable();
749 mod = __module_address((unsigned long)key);
750 if (mod)
751 stop = mod->jump_entries + mod->num_jump_entries;
752 preempt_enable();
753 #endif
754 entry = static_key_entries(key);
755 /* if there are no users, entry can be NULL */
756 if (entry)
757 __jump_label_update(key, entry, stop,
758 system_state < SYSTEM_RUNNING);
759 }
760
761 #ifdef CONFIG_STATIC_KEYS_SELFTEST
762 static DEFINE_STATIC_KEY_TRUE(sk_true);
763 static DEFINE_STATIC_KEY_FALSE(sk_false);
764
765 static __init int jump_label_test(void)
766 {
767 int i;
768
769 for (i = 0; i < 2; i++) {
770 WARN_ON(static_key_enabled(&sk_true.key) != true);
771 WARN_ON(static_key_enabled(&sk_false.key) != false);
772
773 WARN_ON(!static_branch_likely(&sk_true));
774 WARN_ON(!static_branch_unlikely(&sk_true));
775 WARN_ON(static_branch_likely(&sk_false));
776 WARN_ON(static_branch_unlikely(&sk_false));
777
778 static_branch_disable(&sk_true);
779 static_branch_enable(&sk_false);
780
781 WARN_ON(static_key_enabled(&sk_true.key) == true);
782 WARN_ON(static_key_enabled(&sk_false.key) == false);
783
784 WARN_ON(static_branch_likely(&sk_true));
785 WARN_ON(static_branch_unlikely(&sk_true));
786 WARN_ON(!static_branch_likely(&sk_false));
787 WARN_ON(!static_branch_unlikely(&sk_false));
788
789 static_branch_enable(&sk_true);
790 static_branch_disable(&sk_false);
791 }
792
793 return 0;
794 }
795 early_initcall(jump_label_test);
796 #endif /* STATIC_KEYS_SELFTEST */