xref: /linux/kernel/kprobes.c (revision 7a39c732a22ec4a369af9e19fbe3d666ec83eec4)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  *  Kernel Probes (KProbes)
4  *
5  * Copyright (C) IBM Corporation, 2002, 2004
6  *
7  * 2002-Oct	Created by Vamsi Krishna S <vamsi_krishna@in.ibm.com> Kernel
8  *		Probes initial implementation (includes suggestions from
9  *		Rusty Russell).
10  * 2004-Aug	Updated by Prasanna S Panchamukhi <prasanna@in.ibm.com> with
11  *		hlists and exceptions notifier as suggested by Andi Kleen.
12  * 2004-July	Suparna Bhattacharya <suparna@in.ibm.com> added jumper probes
13  *		interface to access function arguments.
14  * 2004-Sep	Prasanna S Panchamukhi <prasanna@in.ibm.com> Changed Kprobes
15  *		exceptions notifier to be first on the priority list.
16  * 2005-May	Hien Nguyen <hien@us.ibm.com>, Jim Keniston
17  *		<jkenisto@us.ibm.com> and Prasanna S Panchamukhi
18  *		<prasanna@in.ibm.com> added function-return probes.
19  */
20 
21 #define pr_fmt(fmt) "kprobes: " fmt
22 
23 #include <linux/kprobes.h>
24 #include <linux/hash.h>
25 #include <linux/init.h>
26 #include <linux/slab.h>
27 #include <linux/stddef.h>
28 #include <linux/export.h>
29 #include <linux/kallsyms.h>
30 #include <linux/freezer.h>
31 #include <linux/seq_file.h>
32 #include <linux/debugfs.h>
33 #include <linux/sysctl.h>
34 #include <linux/kdebug.h>
35 #include <linux/kthread.h>
36 #include <linux/memory.h>
37 #include <linux/ftrace.h>
38 #include <linux/cpu.h>
39 #include <linux/jump_label.h>
40 #include <linux/static_call.h>
41 #include <linux/perf_event.h>
42 #include <linux/execmem.h>
43 #include <linux/cleanup.h>
44 #include <linux/wait.h>
45 #include <linux/wait_bit.h>
46 
47 #include <asm/sections.h>
48 #include <asm/cacheflush.h>
49 #include <asm/errno.h>
50 #include <linux/uaccess.h>
51 
52 #define KPROBE_HASH_BITS 6
53 #define KPROBE_TABLE_SIZE (1 << KPROBE_HASH_BITS)
54 
55 #if !defined(CONFIG_OPTPROBES) || !defined(CONFIG_SYSCTL)
56 #define kprobe_sysctls_init() do { } while (0)
57 #endif
58 
59 static int kprobes_initialized;
60 /* kprobe_table can be accessed by
61  * - Normal hlist traversal and RCU add/del under 'kprobe_mutex' is held.
62  * Or
63  * - RCU hlist traversal under disabling preempt (breakpoint handlers)
64  */
65 static struct hlist_head kprobe_table[KPROBE_TABLE_SIZE];
66 
67 /* NOTE: change this value only with 'kprobe_mutex' held */
68 static bool kprobes_all_disarmed;
69 
70 /* This protects 'kprobe_table' and 'optimizing_list' */
71 static DEFINE_MUTEX(kprobe_mutex);
72 static DEFINE_PER_CPU(struct kprobe *, kprobe_instance);
73 
74 kprobe_opcode_t * __weak kprobe_lookup_name(const char *name,
75 					unsigned int __unused)
76 {
77 	return ((kprobe_opcode_t *)(kallsyms_lookup_name(name)));
78 }
79 
80 /*
81  * Blacklist -- list of 'struct kprobe_blacklist_entry' to store info where
82  * kprobes can not probe.
83  */
84 static LIST_HEAD(kprobe_blacklist);
85 
86 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT
87 /*
88  * 'kprobe::ainsn.insn' points to the copy of the instruction to be
89  * single-stepped. x86_64, POWER4 and above have no-exec support and
90  * stepping on the instruction on a vmalloced/kmalloced/data page
91  * is a recipe for disaster
92  */
93 struct kprobe_insn_page {
94 	struct list_head list;
95 	kprobe_opcode_t *insns;		/* Page of instruction slots */
96 	struct kprobe_insn_cache *cache;
97 	int nused;
98 	int ngarbage;
99 	char slot_used[];
100 };
101 
102 static int slots_per_page(struct kprobe_insn_cache *c)
103 {
104 	return PAGE_SIZE/(c->insn_size * sizeof(kprobe_opcode_t));
105 }
106 
107 enum kprobe_slot_state {
108 	SLOT_CLEAN = 0,
109 	SLOT_DIRTY = 1,
110 	SLOT_USED = 2,
111 };
112 
113 void __weak *alloc_insn_page(void)
114 {
115 	/*
116 	 * Use execmem_alloc() so this page is within +/- 2GB of where the
117 	 * kernel image and loaded module images reside. This is required
118 	 * for most of the architectures.
119 	 * (e.g. x86-64 needs this to handle the %rip-relative fixups.)
120 	 */
121 	return execmem_alloc(EXECMEM_KPROBES, PAGE_SIZE);
122 }
123 
124 static void free_insn_page(void *page)
125 {
126 	execmem_free(page);
127 }
128 
129 struct kprobe_insn_cache kprobe_insn_slots = {
130 	.mutex = __MUTEX_INITIALIZER(kprobe_insn_slots.mutex),
131 	.alloc = alloc_insn_page,
132 	.free = free_insn_page,
133 	.sym = KPROBE_INSN_PAGE_SYM,
134 	.pages = LIST_HEAD_INIT(kprobe_insn_slots.pages),
135 	.insn_size = MAX_INSN_SIZE,
136 	.nr_garbage = 0,
137 };
138 static int collect_garbage_slots(struct kprobe_insn_cache *c);
139 
140 /**
141  * __get_insn_slot - Find a slot on an executable page for an instruction.
142  * @c: Pointer to kprobe instruction cache
143  *
144  * Description: Locates available slot on existing executable pages,
145  *              allocates an executable page if there's no room on existing ones.
146  * Return: Pointer to instruction slot on success, NULL on failure.
147  */
148 kprobe_opcode_t *__get_insn_slot(struct kprobe_insn_cache *c)
149 {
150 	struct kprobe_insn_page *kip;
151 
152 	/* Since the slot array is not protected by rcu, we need a mutex */
153 	guard(mutex)(&c->mutex);
154 	do {
155 		guard(rcu)();
156 		list_for_each_entry_rcu(kip, &c->pages, list) {
157 			if (kip->nused < slots_per_page(c)) {
158 				int i;
159 
160 				for (i = 0; i < slots_per_page(c); i++) {
161 					if (kip->slot_used[i] == SLOT_CLEAN) {
162 						kip->slot_used[i] = SLOT_USED;
163 						kip->nused++;
164 						return kip->insns + (i * c->insn_size);
165 					}
166 				}
167 				/* kip->nused is broken. Fix it. */
168 				kip->nused = slots_per_page(c);
169 				WARN_ON(1);
170 			}
171 		}
172 	/* If there are any garbage slots, collect it and try again. */
173 	} while (c->nr_garbage && collect_garbage_slots(c) == 0);
174 
175 	/* All out of space.  Need to allocate a new page. */
176 	kip = kmalloc_flex(*kip, slot_used, slots_per_page(c));
177 	if (!kip)
178 		return NULL;
179 
180 	kip->insns = c->alloc();
181 	if (!kip->insns) {
182 		kfree(kip);
183 		return NULL;
184 	}
185 	INIT_LIST_HEAD(&kip->list);
186 	memset(kip->slot_used, SLOT_CLEAN, slots_per_page(c));
187 	kip->slot_used[0] = SLOT_USED;
188 	kip->nused = 1;
189 	kip->ngarbage = 0;
190 	kip->cache = c;
191 	list_add_rcu(&kip->list, &c->pages);
192 
193 	/* Record the perf ksymbol register event after adding the page */
194 	perf_event_ksymbol(PERF_RECORD_KSYMBOL_TYPE_OOL, (unsigned long)kip->insns,
195 			   PAGE_SIZE, false, c->sym);
196 
197 	return kip->insns;
198 }
199 
200 /* Return true if all garbages are collected, otherwise false. */
201 static bool collect_one_slot(struct kprobe_insn_page *kip, int idx)
202 {
203 	kip->slot_used[idx] = SLOT_CLEAN;
204 	kip->nused--;
205 	if (kip->nused != 0)
206 		return false;
207 
208 	/*
209 	 * Page is no longer in use.  Free it unless
210 	 * it's the last one.  We keep the last one
211 	 * so as not to have to set it up again the
212 	 * next time somebody inserts a probe.
213 	 */
214 	if (!list_is_singular(&kip->list)) {
215 		/*
216 		 * Record perf ksymbol unregister event before removing
217 		 * the page.
218 		 */
219 		perf_event_ksymbol(PERF_RECORD_KSYMBOL_TYPE_OOL,
220 				   (unsigned long)kip->insns, PAGE_SIZE, true,
221 				   kip->cache->sym);
222 		list_del_rcu(&kip->list);
223 		synchronize_rcu();
224 		kip->cache->free(kip->insns);
225 		kfree(kip);
226 	}
227 	return true;
228 }
229 
230 static int collect_garbage_slots(struct kprobe_insn_cache *c)
231 {
232 	struct kprobe_insn_page *kip, *next;
233 
234 	/* Ensure no-one is interrupted on the garbages */
235 	synchronize_rcu();
236 
237 	list_for_each_entry_safe(kip, next, &c->pages, list) {
238 		int i;
239 
240 		if (kip->ngarbage == 0)
241 			continue;
242 		kip->ngarbage = 0;	/* we will collect all garbages */
243 		for (i = 0; i < slots_per_page(c); i++) {
244 			if (kip->slot_used[i] == SLOT_DIRTY && collect_one_slot(kip, i))
245 				break;
246 		}
247 	}
248 	c->nr_garbage = 0;
249 	return 0;
250 }
251 
252 static long __find_insn_page(struct kprobe_insn_cache *c,
253 	kprobe_opcode_t *slot, struct kprobe_insn_page **pkip)
254 {
255 	struct kprobe_insn_page *kip = NULL;
256 	long idx;
257 
258 	guard(rcu)();
259 	list_for_each_entry_rcu(kip, &c->pages, list) {
260 		idx = ((long)slot - (long)kip->insns) /
261 			(c->insn_size * sizeof(kprobe_opcode_t));
262 		if (idx >= 0 && idx < slots_per_page(c)) {
263 			*pkip = kip;
264 			return idx;
265 		}
266 	}
267 	/* Could not find this slot. */
268 	WARN_ON(1);
269 	*pkip = NULL;
270 	return -1;
271 }
272 
273 void __free_insn_slot(struct kprobe_insn_cache *c,
274 		      kprobe_opcode_t *slot, int dirty)
275 {
276 	struct kprobe_insn_page *kip = NULL;
277 	long idx;
278 
279 	guard(mutex)(&c->mutex);
280 	idx = __find_insn_page(c, slot, &kip);
281 	/* Mark and sweep: this may sleep */
282 	if (kip) {
283 		/* Check double free */
284 		WARN_ON(kip->slot_used[idx] != SLOT_USED);
285 		if (dirty) {
286 			kip->slot_used[idx] = SLOT_DIRTY;
287 			kip->ngarbage++;
288 			if (++c->nr_garbage > slots_per_page(c))
289 				collect_garbage_slots(c);
290 		} else {
291 			collect_one_slot(kip, idx);
292 		}
293 	}
294 }
295 
296 /*
297  * Check given address is on the page of kprobe instruction slots.
298  * This will be used for checking whether the address on a stack
299  * is on a text area or not.
300  */
301 bool __is_insn_slot_addr(struct kprobe_insn_cache *c, unsigned long addr)
302 {
303 	struct kprobe_insn_page *kip;
304 	bool ret = false;
305 
306 	rcu_read_lock();
307 	list_for_each_entry_rcu(kip, &c->pages, list) {
308 		if (addr >= (unsigned long)kip->insns &&
309 		    addr < (unsigned long)kip->insns + PAGE_SIZE) {
310 			ret = true;
311 			break;
312 		}
313 	}
314 	rcu_read_unlock();
315 
316 	return ret;
317 }
318 
319 int kprobe_cache_get_kallsym(struct kprobe_insn_cache *c, unsigned int *symnum,
320 			     unsigned long *value, char *type, char *sym)
321 {
322 	struct kprobe_insn_page *kip;
323 	int ret = -ERANGE;
324 
325 	rcu_read_lock();
326 	list_for_each_entry_rcu(kip, &c->pages, list) {
327 		if ((*symnum)--)
328 			continue;
329 		strscpy(sym, c->sym, KSYM_NAME_LEN);
330 		*type = 't';
331 		*value = (unsigned long)kip->insns;
332 		ret = 0;
333 		break;
334 	}
335 	rcu_read_unlock();
336 
337 	return ret;
338 }
339 
340 #ifdef CONFIG_OPTPROBES
341 void __weak *alloc_optinsn_page(void)
342 {
343 	return alloc_insn_page();
344 }
345 
346 void __weak free_optinsn_page(void *page)
347 {
348 	free_insn_page(page);
349 }
350 
351 /* For optimized_kprobe buffer */
352 struct kprobe_insn_cache kprobe_optinsn_slots = {
353 	.mutex = __MUTEX_INITIALIZER(kprobe_optinsn_slots.mutex),
354 	.alloc = alloc_optinsn_page,
355 	.free = free_optinsn_page,
356 	.sym = KPROBE_OPTINSN_PAGE_SYM,
357 	.pages = LIST_HEAD_INIT(kprobe_optinsn_slots.pages),
358 	/* .insn_size is initialized later */
359 	.nr_garbage = 0,
360 };
361 #endif /* CONFIG_OPTPROBES */
362 #endif /* __ARCH_WANT_KPROBES_INSN_SLOT */
363 
364 /* We have preemption disabled.. so it is safe to use __ versions */
365 static inline void set_kprobe_instance(struct kprobe *kp)
366 {
367 	__this_cpu_write(kprobe_instance, kp);
368 }
369 
370 static inline void reset_kprobe_instance(void)
371 {
372 	__this_cpu_write(kprobe_instance, NULL);
373 }
374 
375 /*
376  * This routine is called either:
377  *	- under the 'kprobe_mutex' - during kprobe_[un]register().
378  *				OR
379  *	- with preemption disabled - from architecture specific code.
380  */
381 struct kprobe *get_kprobe(void *addr)
382 {
383 	struct hlist_head *head;
384 	struct kprobe *p;
385 
386 	head = &kprobe_table[hash_ptr(addr, KPROBE_HASH_BITS)];
387 	hlist_for_each_entry_rcu(p, head, hlist,
388 				 lockdep_is_held(&kprobe_mutex)) {
389 		if (p->addr == addr)
390 			return p;
391 	}
392 
393 	return NULL;
394 }
395 NOKPROBE_SYMBOL(get_kprobe);
396 
397 static int aggr_pre_handler(struct kprobe *p, struct pt_regs *regs);
398 
399 /* Return true if 'p' is an aggregator */
400 static inline bool kprobe_aggrprobe(struct kprobe *p)
401 {
402 	return p->pre_handler == aggr_pre_handler;
403 }
404 
405 /* Return true if 'p' is unused */
406 static inline bool kprobe_unused(struct kprobe *p)
407 {
408 	return kprobe_aggrprobe(p) && kprobe_disabled(p) &&
409 	       list_empty(&p->list);
410 }
411 
412 /* Keep all fields in the kprobe consistent. */
413 static inline void copy_kprobe(struct kprobe *ap, struct kprobe *p)
414 {
415 	memcpy(&p->opcode, &ap->opcode, sizeof(kprobe_opcode_t));
416 	memcpy(&p->ainsn, &ap->ainsn, sizeof(struct arch_specific_insn));
417 }
418 
419 #ifdef CONFIG_OPTPROBES
420 /* NOTE: This is protected by 'kprobe_mutex'. */
421 static bool kprobes_allow_optimization;
422 
423 /*
424  * Call all 'kprobe::pre_handler' on the list, but ignores its return value.
425  * This must be called from arch-dep optimized caller.
426  */
427 void opt_pre_handler(struct kprobe *p, struct pt_regs *regs)
428 {
429 	struct kprobe *kp;
430 
431 	list_for_each_entry_rcu(kp, &p->list, list) {
432 		if (kp->pre_handler && likely(!kprobe_disabled(kp))) {
433 			set_kprobe_instance(kp);
434 			kp->pre_handler(kp, regs);
435 		}
436 		reset_kprobe_instance();
437 	}
438 }
439 NOKPROBE_SYMBOL(opt_pre_handler);
440 
441 /* Free optimized instructions and optimized_kprobe */
442 static void free_aggr_kprobe(struct kprobe *p)
443 {
444 	struct optimized_kprobe *op;
445 
446 	op = container_of(p, struct optimized_kprobe, kp);
447 	arch_remove_optimized_kprobe(op);
448 	arch_remove_kprobe(p);
449 	kfree(op);
450 }
451 
452 /* Return true if the kprobe is ready for optimization. */
453 static inline int kprobe_optready(struct kprobe *p)
454 {
455 	struct optimized_kprobe *op;
456 
457 	if (kprobe_aggrprobe(p)) {
458 		op = container_of(p, struct optimized_kprobe, kp);
459 		return arch_prepared_optinsn(&op->optinsn);
460 	}
461 
462 	return 0;
463 }
464 
465 /* Return true if the kprobe is disarmed. Note: p must be on hash list */
466 bool kprobe_disarmed(struct kprobe *p)
467 {
468 	struct optimized_kprobe *op;
469 
470 	/* If kprobe is not aggr/opt probe, just return kprobe is disabled */
471 	if (!kprobe_aggrprobe(p))
472 		return kprobe_disabled(p);
473 
474 	op = container_of(p, struct optimized_kprobe, kp);
475 
476 	return kprobe_disabled(p) && list_empty(&op->list);
477 }
478 
479 /* Return true if the probe is queued on (un)optimizing lists */
480 static bool kprobe_queued(struct kprobe *p)
481 {
482 	struct optimized_kprobe *op;
483 
484 	if (kprobe_aggrprobe(p)) {
485 		op = container_of(p, struct optimized_kprobe, kp);
486 		if (!list_empty(&op->list))
487 			return true;
488 	}
489 	return false;
490 }
491 
492 /*
493  * Return an optimized kprobe whose optimizing code replaces
494  * instructions including 'addr' (exclude breakpoint).
495  */
496 static struct kprobe *get_optimized_kprobe(kprobe_opcode_t *addr)
497 {
498 	int i;
499 	struct kprobe *p;
500 	struct optimized_kprobe *op;
501 
502 	/* Don't check i == 0, since that is a breakpoint case. */
503 	for (i = 1; i < MAX_OPTIMIZED_LENGTH / sizeof(kprobe_opcode_t); i++) {
504 		p = get_kprobe(addr - i);
505 		/* A disabled probe can have prepared, but inactive, optinsns. */
506 		if (!p || !kprobe_optready(p) || kprobe_disarmed(p))
507 			continue;
508 
509 		op = container_of(p, struct optimized_kprobe, kp);
510 		if (arch_within_optimized_kprobe(op, addr))
511 			return p;
512 	}
513 
514 	return NULL;
515 }
516 
517 /* Optimization staging list, protected by 'kprobe_mutex' */
518 static LIST_HEAD(optimizing_list);
519 static LIST_HEAD(unoptimizing_list);
520 static LIST_HEAD(freeing_list);
521 
522 static void optimize_kprobe(struct kprobe *p);
523 static struct task_struct *kprobe_optimizer_task;
524 static wait_queue_head_t kprobe_optimizer_wait;
525 static atomic_t optimizer_state;
526 enum {
527 	OPTIMIZER_ST_IDLE = 0,
528 	OPTIMIZER_ST_KICKED = 1,
529 	OPTIMIZER_ST_FLUSHING = 2,
530 };
531 
532 /* Bumped at the end of each kprobe_optimizer() pass, under 'kprobe_mutex' */
533 static unsigned long optimizer_passes;
534 
535 #define OPTIMIZE_DELAY 5
536 
537 /*
538  * Optimize (replace a breakpoint with a jump) kprobes listed on
539  * 'optimizing_list'.
540  */
541 static void do_optimize_kprobes(void)
542 {
543 	lockdep_assert_held(&text_mutex);
544 	/*
545 	 * The optimization/unoptimization refers 'online_cpus' via
546 	 * stop_machine() and cpu-hotplug modifies the 'online_cpus'.
547 	 * And same time, 'text_mutex' will be held in cpu-hotplug and here.
548 	 * This combination can cause a deadlock (cpu-hotplug tries to lock
549 	 * 'text_mutex' but stop_machine() can not be done because
550 	 * the 'online_cpus' has been changed)
551 	 * To avoid this deadlock, caller must have locked cpu-hotplug
552 	 * for preventing cpu-hotplug outside of 'text_mutex' locking.
553 	 */
554 	lockdep_assert_cpus_held();
555 
556 	/* Optimization never be done when disarmed */
557 	if (kprobes_all_disarmed || !kprobes_allow_optimization ||
558 	    list_empty(&optimizing_list))
559 		return;
560 
561 	arch_optimize_kprobes(&optimizing_list);
562 }
563 
564 /*
565  * Unoptimize (replace a jump with a breakpoint and remove the breakpoint
566  * if need) kprobes listed on 'unoptimizing_list'.
567  */
568 static void do_unoptimize_kprobes(void)
569 {
570 	struct optimized_kprobe *op, *tmp;
571 
572 	lockdep_assert_held(&text_mutex);
573 	/* See comment in do_optimize_kprobes() */
574 	lockdep_assert_cpus_held();
575 
576 	if (!list_empty(&unoptimizing_list))
577 		arch_unoptimize_kprobes(&unoptimizing_list, &freeing_list);
578 
579 	/* Loop on 'freeing_list' for disarming and removing from kprobe hash list */
580 	list_for_each_entry_safe(op, tmp, &freeing_list, list) {
581 		/* Switching from detour code to origin */
582 		op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED;
583 		/* Disarm probes if marked disabled and not gone */
584 		if (kprobe_disabled(&op->kp) && !kprobe_gone(&op->kp))
585 			arch_disarm_kprobe(&op->kp);
586 		if (kprobe_unused(&op->kp)) {
587 			/*
588 			 * Remove unused probes from hash list. After waiting
589 			 * for synchronization, these probes are reclaimed.
590 			 * (reclaiming is done by do_free_cleaned_kprobes().)
591 			 */
592 			hlist_del_rcu(&op->kp.hlist);
593 		} else
594 			list_del_init(&op->list);
595 	}
596 }
597 
598 /* Reclaim all kprobes on the 'freeing_list' */
599 static void do_free_cleaned_kprobes(void)
600 {
601 	struct optimized_kprobe *op, *tmp;
602 
603 	list_for_each_entry_safe(op, tmp, &freeing_list, list) {
604 		list_del_init(&op->list);
605 		if (WARN_ON_ONCE(!kprobe_unused(&op->kp))) {
606 			/*
607 			 * This must not happen, but if there is a kprobe
608 			 * still in use, keep it on kprobes hash list.
609 			 */
610 			continue;
611 		}
612 
613 		/*
614 		 * The aggregator was holding back another probe while it sat on the
615 		 * unoptimizing/freeing lists.  Now that the aggregator has been fully
616 		 * reverted we can safely retry the optimization of that sibling.
617 		 */
618 
619 		struct kprobe *_p = get_optimized_kprobe(op->kp.addr);
620 		if (unlikely(_p))
621 			optimize_kprobe(_p);
622 
623 		free_aggr_kprobe(&op->kp);
624 	}
625 }
626 
627 static void kick_kprobe_optimizer(void);
628 
629 /* Kprobe jump optimizer */
630 static void kprobe_optimizer(void)
631 {
632 	guard(mutex)(&kprobe_mutex);
633 
634 	scoped_guard(cpus_read_lock) {
635 		guard(mutex)(&text_mutex);
636 
637 		/*
638 		 * Step 1: Unoptimize kprobes and collect cleaned (unused and disarmed)
639 		 * kprobes before waiting for quiesence period.
640 		 */
641 		do_unoptimize_kprobes();
642 
643 		/*
644 		 * Step 2: Wait for quiesence period to ensure all potentially
645 		 * preempted tasks to have normally scheduled. Because optprobe
646 		 * may modify multiple instructions, there is a chance that Nth
647 		 * instruction is preempted. In that case, such tasks can return
648 		 * to 2nd-Nth byte of jump instruction. This wait is for avoiding it.
649 		 * Note that on non-preemptive kernel, this is transparently converted
650 		 * to synchronoze_sched() to wait for all interrupts to have completed.
651 		 */
652 		synchronize_rcu_tasks();
653 
654 		/* Step 3: Optimize kprobes after quiesence period */
655 		do_optimize_kprobes();
656 
657 		/* Step 4: Free cleaned kprobes after quiesence period */
658 		do_free_cleaned_kprobes();
659 	}
660 
661 	/* Step 5: Wake up flushers, and kick optimizer again if needed. */
662 	optimizer_passes++;
663 	wake_up_var_locked(&optimizer_passes, &kprobe_mutex);
664 
665 	if (!list_empty(&optimizing_list) || !list_empty(&unoptimizing_list))
666 		kick_kprobe_optimizer();	/*normal kick*/
667 }
668 
669 static int kprobe_optimizer_thread(void *data)
670 {
671 	while (!kthread_should_stop()) {
672 		/* To avoid hung_task, wait in interruptible state. */
673 		wait_event_interruptible(kprobe_optimizer_wait,
674 			   atomic_read(&optimizer_state) != OPTIMIZER_ST_IDLE ||
675 			   kthread_should_stop());
676 
677 		if (kthread_should_stop())
678 			break;
679 
680 		/*
681 		 * If it was a normal kick, wait for OPTIMIZE_DELAY.
682 		 * This wait can be interrupted by a flush request.
683 		 */
684 		if (atomic_read(&optimizer_state) == 1)
685 			wait_event_interruptible_timeout(
686 				kprobe_optimizer_wait,
687 				atomic_read(&optimizer_state) == OPTIMIZER_ST_FLUSHING ||
688 				kthread_should_stop(),
689 				OPTIMIZE_DELAY);
690 
691 		if (kthread_should_stop())
692 			break;
693 
694 		atomic_set(&optimizer_state, OPTIMIZER_ST_IDLE);
695 
696 		kprobe_optimizer();
697 	}
698 	return 0;
699 }
700 
701 /* Start optimizer after OPTIMIZE_DELAY passed */
702 static void kick_kprobe_optimizer(void)
703 {
704 	lockdep_assert_held(&kprobe_mutex);
705 	if (atomic_cmpxchg(&optimizer_state,
706 		OPTIMIZER_ST_IDLE, OPTIMIZER_ST_KICKED) == OPTIMIZER_ST_IDLE)
707 		wake_up(&kprobe_optimizer_wait);
708 }
709 
710 static void wait_for_kprobe_optimizer_locked(void)
711 {
712 	lockdep_assert_held(&kprobe_mutex);
713 
714 	while (!list_empty(&optimizing_list) || !list_empty(&unoptimizing_list)) {
715 		unsigned long passes = optimizer_passes;
716 
717 		/*
718 		 * Set state to OPTIMIZER_ST_FLUSHING and wake up the thread if it's
719 		 * idle. If it's already kicked, it will see the state change.
720 		 */
721 		if (atomic_xchg_acquire(&optimizer_state,
722 			OPTIMIZER_ST_FLUSHING) != OPTIMIZER_ST_FLUSHING)
723 			wake_up(&kprobe_optimizer_wait);
724 
725 		/*
726 		 * kprobe_optimizer() holds 'kprobe_mutex' for a whole pass, which
727 		 * this drops while sleeping, so a new count means a full pass ran.
728 		 */
729 		wait_var_event_mutex(&optimizer_passes,
730 				     optimizer_passes != passes, &kprobe_mutex);
731 	}
732 }
733 
734 /* Wait for completing optimization and unoptimization */
735 void wait_for_kprobe_optimizer(void)
736 {
737 	guard(mutex)(&kprobe_mutex);
738 
739 	wait_for_kprobe_optimizer_locked();
740 }
741 
742 bool optprobe_queued_unopt(struct optimized_kprobe *op)
743 {
744 	struct optimized_kprobe *_op;
745 
746 	list_for_each_entry(_op, &unoptimizing_list, list) {
747 		if (op == _op)
748 			return true;
749 	}
750 
751 	return false;
752 }
753 
754 /* Optimize kprobe if p is ready to be optimized */
755 static void optimize_kprobe(struct kprobe *p)
756 {
757 	struct optimized_kprobe *op;
758 
759 	/* Check if the kprobe is disabled or not ready for optimization. */
760 	if (!kprobe_optready(p) || !kprobes_allow_optimization ||
761 	    (kprobe_disabled(p) || kprobes_all_disarmed))
762 		return;
763 
764 	/* kprobes with 'post_handler' can not be optimized */
765 	if (p->post_handler)
766 		return;
767 
768 	op = container_of(p, struct optimized_kprobe, kp);
769 
770 	/* Check there is no other kprobes at the optimized instructions */
771 	if (arch_check_optimized_kprobe(op) < 0)
772 		return;
773 
774 	/* Check if it is already optimized. */
775 	if (op->kp.flags & KPROBE_FLAG_OPTIMIZED) {
776 		if (optprobe_queued_unopt(op)) {
777 			/* This is under unoptimizing. Just dequeue the probe */
778 			list_del_init(&op->list);
779 		}
780 		return;
781 	}
782 	op->kp.flags |= KPROBE_FLAG_OPTIMIZED;
783 
784 	/*
785 	 * On the 'unoptimizing_list' and 'optimizing_list',
786 	 * 'op' must have OPTIMIZED flag
787 	 */
788 	if (WARN_ON_ONCE(!list_empty(&op->list)))
789 		return;
790 
791 	list_add(&op->list, &optimizing_list);
792 	kick_kprobe_optimizer();
793 }
794 
795 /* Short cut to direct unoptimizing */
796 static void force_unoptimize_kprobe(struct optimized_kprobe *op)
797 {
798 	lockdep_assert_cpus_held();
799 	arch_unoptimize_kprobe(op);
800 	op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED;
801 }
802 
803 /* Unoptimize a kprobe if p is optimized */
804 static void unoptimize_kprobe(struct kprobe *p, bool force)
805 {
806 	struct optimized_kprobe *op;
807 
808 	if (!kprobe_aggrprobe(p) || kprobe_disarmed(p))
809 		return; /* This is not an optprobe nor optimized */
810 
811 	op = container_of(p, struct optimized_kprobe, kp);
812 	if (!kprobe_optimized(p))
813 		return;
814 
815 	if (!list_empty(&op->list)) {
816 		if (optprobe_queued_unopt(op)) {
817 			/* Queued in unoptimizing queue */
818 			if (force) {
819 				/*
820 				 * Forcibly unoptimize the kprobe here, and queue it
821 				 * in the freeing list for release afterwards.
822 				 */
823 				force_unoptimize_kprobe(op);
824 				list_move(&op->list, &freeing_list);
825 			}
826 		} else {
827 			/* Dequeue from the optimizing queue */
828 			list_del_init(&op->list);
829 			op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED;
830 		}
831 		return;
832 	}
833 
834 	/* Optimized kprobe case */
835 	if (force) {
836 		/* Forcibly update the code: this is a special case */
837 		force_unoptimize_kprobe(op);
838 	} else {
839 		list_add(&op->list, &unoptimizing_list);
840 		kick_kprobe_optimizer();
841 	}
842 }
843 
844 /* Cancel unoptimizing for reusing */
845 static int reuse_unused_kprobe(struct kprobe *ap)
846 {
847 	struct optimized_kprobe *op;
848 
849 	/*
850 	 * Unused kprobe MUST be on the way of delayed unoptimizing (means
851 	 * there is still a relative jump) and disabled.
852 	 */
853 	op = container_of(ap, struct optimized_kprobe, kp);
854 	WARN_ON_ONCE(list_empty(&op->list));
855 	/* Enable the probe again */
856 	ap->flags &= ~KPROBE_FLAG_DISABLED;
857 	/* Optimize it again. (remove from 'op->list') */
858 	if (!kprobe_optready(ap))
859 		return -EINVAL;
860 
861 	optimize_kprobe(ap);
862 	return 0;
863 }
864 
865 /* Remove optimized instructions */
866 static void kill_optimized_kprobe(struct kprobe *p)
867 {
868 	struct optimized_kprobe *op;
869 
870 	op = container_of(p, struct optimized_kprobe, kp);
871 	if (!list_empty(&op->list))
872 		/* Dequeue from the (un)optimization queue */
873 		list_del_init(&op->list);
874 	op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED;
875 
876 	if (kprobe_unused(p)) {
877 		/*
878 		 * Unused kprobe is on unoptimizing or freeing list. We move it
879 		 * to freeing_list and let the kprobe_optimizer() remove it from
880 		 * the kprobe hash list and free it.
881 		 */
882 		if (optprobe_queued_unopt(op))
883 			list_move(&op->list, &freeing_list);
884 	}
885 
886 	/* Don't touch the code, because it is already freed. */
887 	arch_remove_optimized_kprobe(op);
888 }
889 
890 static inline
891 void __prepare_optimized_kprobe(struct optimized_kprobe *op, struct kprobe *p)
892 {
893 	if (!kprobe_ftrace(p))
894 		arch_prepare_optimized_kprobe(op, p);
895 }
896 
897 /* Try to prepare optimized instructions */
898 static void prepare_optimized_kprobe(struct kprobe *p)
899 {
900 	struct optimized_kprobe *op;
901 
902 	op = container_of(p, struct optimized_kprobe, kp);
903 	__prepare_optimized_kprobe(op, p);
904 }
905 
906 /* Allocate new optimized_kprobe and try to prepare optimized instructions. */
907 static struct kprobe *alloc_aggr_kprobe(struct kprobe *p)
908 {
909 	struct optimized_kprobe *op;
910 
911 	op = kzalloc_obj(struct optimized_kprobe);
912 	if (!op)
913 		return NULL;
914 
915 	INIT_LIST_HEAD(&op->list);
916 	op->kp.addr = p->addr;
917 	__prepare_optimized_kprobe(op, p);
918 
919 	return &op->kp;
920 }
921 
922 static void init_aggr_kprobe(struct kprobe *ap, struct kprobe *p);
923 
924 /*
925  * Prepare an optimized_kprobe and optimize it.
926  * NOTE: 'p' must be a normal registered kprobe.
927  */
928 static void try_to_optimize_kprobe(struct kprobe *p)
929 {
930 	struct kprobe *ap;
931 	struct optimized_kprobe *op;
932 
933 	/* Impossible to optimize ftrace-based kprobe. */
934 	if (kprobe_ftrace(p))
935 		return;
936 
937 	/* For preparing optimization, jump_label_text_reserved() is called. */
938 	guard(cpus_read_lock)();
939 	guard(jump_label_lock)();
940 	guard(mutex)(&text_mutex);
941 
942 	ap = alloc_aggr_kprobe(p);
943 	if (!ap)
944 		return;
945 
946 	op = container_of(ap, struct optimized_kprobe, kp);
947 	if (!arch_prepared_optinsn(&op->optinsn)) {
948 		/* If failed to setup optimizing, fallback to kprobe. */
949 		arch_remove_optimized_kprobe(op);
950 		kfree(op);
951 		return;
952 	}
953 
954 	init_aggr_kprobe(ap, p);
955 	optimize_kprobe(ap);	/* This just kicks optimizer thread. */
956 }
957 
958 static void optimize_all_kprobes(void)
959 {
960 	struct hlist_head *head;
961 	struct kprobe *p;
962 	unsigned int i;
963 
964 	guard(mutex)(&kprobe_mutex);
965 	/* If optimization is already allowed, just return. */
966 	if (kprobes_allow_optimization)
967 		return;
968 
969 	cpus_read_lock();
970 	kprobes_allow_optimization = true;
971 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
972 		head = &kprobe_table[i];
973 		hlist_for_each_entry(p, head, hlist)
974 			if (!kprobe_disabled(p))
975 				optimize_kprobe(p);
976 	}
977 	cpus_read_unlock();
978 	pr_info("kprobe jump-optimization is enabled. All kprobes are optimized if possible.\n");
979 }
980 
981 #ifdef CONFIG_SYSCTL
982 static void unoptimize_all_kprobes(void)
983 {
984 	struct hlist_head *head;
985 	struct kprobe *p;
986 	unsigned int i;
987 
988 	guard(mutex)(&kprobe_mutex);
989 	/* If optimization is already prohibited, just return. */
990 	if (!kprobes_allow_optimization)
991 		return;
992 
993 	cpus_read_lock();
994 	kprobes_allow_optimization = false;
995 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
996 		head = &kprobe_table[i];
997 		hlist_for_each_entry(p, head, hlist) {
998 			if (!kprobe_disabled(p))
999 				unoptimize_kprobe(p, false);
1000 		}
1001 	}
1002 	cpus_read_unlock();
1003 	/* Wait for unoptimizing completion. */
1004 	wait_for_kprobe_optimizer_locked();
1005 	pr_info("kprobe jump-optimization is disabled. All kprobes are based on software breakpoint.\n");
1006 }
1007 
1008 static DEFINE_MUTEX(kprobe_sysctl_mutex);
1009 static int sysctl_kprobes_optimization;
1010 static int proc_kprobes_optimization_handler(const struct ctl_table *table,
1011 					     int write, void *buffer,
1012 					     size_t *length, loff_t *ppos)
1013 {
1014 	int ret;
1015 
1016 	guard(mutex)(&kprobe_sysctl_mutex);
1017 	sysctl_kprobes_optimization = kprobes_allow_optimization ? 1 : 0;
1018 	ret = proc_dointvec_minmax(table, write, buffer, length, ppos);
1019 
1020 	if (sysctl_kprobes_optimization)
1021 		optimize_all_kprobes();
1022 	else
1023 		unoptimize_all_kprobes();
1024 
1025 	return ret;
1026 }
1027 
1028 static const struct ctl_table kprobe_sysctls[] = {
1029 	{
1030 		.procname	= "kprobes-optimization",
1031 		.data		= &sysctl_kprobes_optimization,
1032 		.maxlen		= sizeof(int),
1033 		.mode		= 0644,
1034 		.proc_handler	= proc_kprobes_optimization_handler,
1035 		.extra1		= SYSCTL_ZERO,
1036 		.extra2		= SYSCTL_ONE,
1037 	},
1038 };
1039 
1040 static void __init kprobe_sysctls_init(void)
1041 {
1042 	register_sysctl_init("debug", kprobe_sysctls);
1043 }
1044 #endif /* CONFIG_SYSCTL */
1045 
1046 /* Put a breakpoint for a probe. */
1047 static void __arm_kprobe(struct kprobe *p)
1048 {
1049 	struct kprobe *_p;
1050 
1051 	lockdep_assert_held(&text_mutex);
1052 
1053 	/* Find the overlapping optimized kprobes. */
1054 	_p = get_optimized_kprobe(p->addr);
1055 	if (unlikely(_p))
1056 		/* Fallback to unoptimized kprobe */
1057 		unoptimize_kprobe(_p, true);
1058 
1059 	arch_arm_kprobe(p);
1060 	optimize_kprobe(p);	/* Try to optimize (add kprobe to a list) */
1061 }
1062 
1063 /* Remove the breakpoint of a probe. */
1064 static void __disarm_kprobe(struct kprobe *p, bool reopt)
1065 {
1066 	struct kprobe *_p;
1067 
1068 	lockdep_assert_held(&text_mutex);
1069 
1070 	/* Try to unoptimize */
1071 	unoptimize_kprobe(p, kprobes_all_disarmed);
1072 
1073 	if (!kprobe_queued(p)) {
1074 		arch_disarm_kprobe(p);
1075 		/* If another kprobe was blocked, re-optimize it. */
1076 		_p = get_optimized_kprobe(p->addr);
1077 		if (unlikely(_p) && reopt)
1078 			optimize_kprobe(_p);
1079 	}
1080 }
1081 
1082 static void __init init_optprobe(void)
1083 {
1084 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT
1085 	/* Init 'kprobe_optinsn_slots' for allocation */
1086 	kprobe_optinsn_slots.insn_size = MAX_OPTINSN_SIZE;
1087 #endif
1088 
1089 	init_waitqueue_head(&kprobe_optimizer_wait);
1090 	atomic_set(&optimizer_state, OPTIMIZER_ST_IDLE);
1091 	kprobe_optimizer_task = kthread_run(kprobe_optimizer_thread, NULL,
1092 					    "kprobe-optimizer");
1093 }
1094 #else /* !CONFIG_OPTPROBES */
1095 
1096 #define init_optprobe()				do {} while (0)
1097 #define optimize_kprobe(p)			do {} while (0)
1098 #define unoptimize_kprobe(p, f)			do {} while (0)
1099 #define kill_optimized_kprobe(p)		do {} while (0)
1100 #define prepare_optimized_kprobe(p)		do {} while (0)
1101 #define try_to_optimize_kprobe(p)		do {} while (0)
1102 #define __arm_kprobe(p)				arch_arm_kprobe(p)
1103 #define __disarm_kprobe(p, o)			arch_disarm_kprobe(p)
1104 #define kprobe_disarmed(p)			kprobe_disabled(p)
1105 #define wait_for_kprobe_optimizer_locked()			\
1106 	lockdep_assert_held(&kprobe_mutex)
1107 
1108 static int reuse_unused_kprobe(struct kprobe *ap)
1109 {
1110 	/*
1111 	 * If the optimized kprobe is NOT supported, the aggr kprobe is
1112 	 * released at the same time that the last aggregated kprobe is
1113 	 * unregistered.
1114 	 * Thus there should be no chance to reuse unused kprobe.
1115 	 */
1116 	WARN_ON_ONCE(1);
1117 	return -EINVAL;
1118 }
1119 
1120 static void free_aggr_kprobe(struct kprobe *p)
1121 {
1122 	arch_remove_kprobe(p);
1123 	kfree(p);
1124 }
1125 
1126 static struct kprobe *alloc_aggr_kprobe(struct kprobe *p)
1127 {
1128 	return kzalloc_obj(struct kprobe);
1129 }
1130 #endif /* CONFIG_OPTPROBES */
1131 
1132 #ifdef CONFIG_KPROBES_ON_FTRACE
1133 static struct ftrace_ops kprobe_ftrace_ops __read_mostly = {
1134 	.func = kprobe_ftrace_handler,
1135 	.flags = FTRACE_OPS_FL_SAVE_REGS,
1136 };
1137 
1138 static struct ftrace_ops kprobe_ipmodify_ops __read_mostly = {
1139 	.func = kprobe_ftrace_handler,
1140 	.flags = FTRACE_OPS_FL_SAVE_REGS | FTRACE_OPS_FL_IPMODIFY,
1141 };
1142 
1143 static int kprobe_ipmodify_enabled;
1144 static int kprobe_ftrace_enabled;
1145 bool kprobe_ftrace_disabled;
1146 
1147 static int __arm_kprobe_ftrace(struct kprobe *p, struct ftrace_ops *ops,
1148 			       int *cnt)
1149 {
1150 	int ret;
1151 
1152 	lockdep_assert_held(&kprobe_mutex);
1153 
1154 	ret = ftrace_set_filter_ip(ops, (unsigned long)p->addr, 0, 0);
1155 	if (ret < 0)
1156 		return ret;
1157 
1158 	if (*cnt == 0) {
1159 		ret = register_ftrace_function(ops);
1160 		if (ret < 0) {
1161 			/*
1162 			 * At this point, sinec ops is not registered, we should be sefe from
1163 			 * registering empty filter.
1164 			 */
1165 			ftrace_set_filter_ip(ops, (unsigned long)p->addr, 1, 0);
1166 			return ret;
1167 		}
1168 	}
1169 
1170 	(*cnt)++;
1171 	return ret;
1172 }
1173 
1174 static int arm_kprobe_ftrace(struct kprobe *p)
1175 {
1176 	bool ipmodify = (p->post_handler != NULL);
1177 
1178 	return __arm_kprobe_ftrace(p,
1179 		ipmodify ? &kprobe_ipmodify_ops : &kprobe_ftrace_ops,
1180 		ipmodify ? &kprobe_ipmodify_enabled : &kprobe_ftrace_enabled);
1181 }
1182 
1183 static int __disarm_kprobe_ftrace(struct kprobe *p, struct ftrace_ops *ops,
1184 				  int *cnt)
1185 {
1186 	int ret;
1187 
1188 	lockdep_assert_held(&kprobe_mutex);
1189 	if (unlikely(kprobe_ftrace_disabled)) {
1190 		/* Now ftrace is disabled forever, disarm is already done. */
1191 		return 0;
1192 	}
1193 
1194 	if (*cnt == 1) {
1195 		ret = unregister_ftrace_function(ops);
1196 		if (WARN(ret < 0, "Failed to unregister kprobe-ftrace (error %d)\n", ret))
1197 			return ret;
1198 	}
1199 
1200 	(*cnt)--;
1201 
1202 	ret = ftrace_set_filter_ip(ops, (unsigned long)p->addr, 1, 0);
1203 	WARN_ONCE(ret < 0, "Failed to disarm kprobe-ftrace at %pS (error %d)\n",
1204 		  p->addr, ret);
1205 	return ret;
1206 }
1207 
1208 static int disarm_kprobe_ftrace(struct kprobe *p)
1209 {
1210 	bool ipmodify = (p->post_handler != NULL);
1211 
1212 	return __disarm_kprobe_ftrace(p,
1213 		ipmodify ? &kprobe_ipmodify_ops : &kprobe_ftrace_ops,
1214 		ipmodify ? &kprobe_ipmodify_enabled : &kprobe_ftrace_enabled);
1215 }
1216 
1217 void kprobe_ftrace_kill(void)
1218 {
1219 	kprobe_ftrace_disabled = true;
1220 }
1221 #else	/* !CONFIG_KPROBES_ON_FTRACE */
1222 static inline int arm_kprobe_ftrace(struct kprobe *p)
1223 {
1224 	return -ENODEV;
1225 }
1226 
1227 static inline int disarm_kprobe_ftrace(struct kprobe *p)
1228 {
1229 	return -ENODEV;
1230 }
1231 #endif
1232 
1233 static int prepare_kprobe(struct kprobe *p)
1234 {
1235 	/* Must ensure p->addr is really on ftrace */
1236 	if (kprobe_ftrace(p))
1237 		return arch_prepare_kprobe_ftrace(p);
1238 
1239 	return arch_prepare_kprobe(p);
1240 }
1241 
1242 static int arm_kprobe(struct kprobe *kp)
1243 {
1244 	if (unlikely(kprobe_ftrace(kp)))
1245 		return arm_kprobe_ftrace(kp);
1246 
1247 	guard(cpus_read_lock)();
1248 	guard(mutex)(&text_mutex);
1249 	__arm_kprobe(kp);
1250 	return 0;
1251 }
1252 
1253 static int disarm_kprobe(struct kprobe *kp, bool reopt)
1254 {
1255 	if (unlikely(kprobe_ftrace(kp)))
1256 		return disarm_kprobe_ftrace(kp);
1257 
1258 	guard(cpus_read_lock)();
1259 	guard(mutex)(&text_mutex);
1260 	__disarm_kprobe(kp, reopt);
1261 	return 0;
1262 }
1263 
1264 /*
1265  * Aggregate handlers for multiple kprobes support - these handlers
1266  * take care of invoking the individual kprobe handlers on p->list
1267  */
1268 static int aggr_pre_handler(struct kprobe *p, struct pt_regs *regs)
1269 {
1270 	struct kprobe *kp;
1271 
1272 	list_for_each_entry_rcu(kp, &p->list, list) {
1273 		if (kp->pre_handler && likely(!kprobe_disabled(kp))) {
1274 			set_kprobe_instance(kp);
1275 			if (kp->pre_handler(kp, regs))
1276 				return 1;
1277 		}
1278 		reset_kprobe_instance();
1279 	}
1280 	return 0;
1281 }
1282 NOKPROBE_SYMBOL(aggr_pre_handler);
1283 
1284 static void aggr_post_handler(struct kprobe *p, struct pt_regs *regs,
1285 			      unsigned long flags)
1286 {
1287 	struct kprobe *kp;
1288 
1289 	list_for_each_entry_rcu(kp, &p->list, list) {
1290 		if (kp->post_handler && likely(!kprobe_disabled(kp))) {
1291 			set_kprobe_instance(kp);
1292 			kp->post_handler(kp, regs, flags);
1293 			reset_kprobe_instance();
1294 		}
1295 	}
1296 }
1297 NOKPROBE_SYMBOL(aggr_post_handler);
1298 
1299 /* Walks the list and increments 'nmissed' if 'p' has child probes. */
1300 void kprobes_inc_nmissed_count(struct kprobe *p)
1301 {
1302 	struct kprobe *kp;
1303 
1304 	if (!kprobe_aggrprobe(p)) {
1305 		p->nmissed++;
1306 	} else {
1307 		list_for_each_entry_rcu(kp, &p->list, list)
1308 			kp->nmissed++;
1309 	}
1310 }
1311 NOKPROBE_SYMBOL(kprobes_inc_nmissed_count);
1312 
1313 static struct kprobe kprobe_busy = {
1314 	.addr = (void *) get_kprobe,
1315 };
1316 
1317 void kprobe_busy_begin(void)
1318 {
1319 	struct kprobe_ctlblk *kcb;
1320 
1321 	preempt_disable();
1322 	__this_cpu_write(current_kprobe, &kprobe_busy);
1323 	kcb = get_kprobe_ctlblk();
1324 	kcb->kprobe_status = KPROBE_HIT_ACTIVE;
1325 }
1326 
1327 void kprobe_busy_end(void)
1328 {
1329 	__this_cpu_write(current_kprobe, NULL);
1330 	preempt_enable();
1331 }
1332 
1333 /* Add the new probe to 'ap->list'. */
1334 static int add_new_kprobe(struct kprobe *ap, struct kprobe *p)
1335 {
1336 	if (p->post_handler)
1337 		unoptimize_kprobe(ap, true);	/* Fall back to normal kprobe */
1338 
1339 	list_add_rcu(&p->list, &ap->list);
1340 	if (p->post_handler && !ap->post_handler)
1341 		ap->post_handler = aggr_post_handler;
1342 
1343 	return 0;
1344 }
1345 
1346 /*
1347  * Fill in the required fields of the aggregator kprobe. Replace the
1348  * earlier kprobe in the hlist with the aggregator kprobe.
1349  */
1350 static void init_aggr_kprobe(struct kprobe *ap, struct kprobe *p)
1351 {
1352 	/* Copy the insn slot of 'p' to 'ap'. */
1353 	copy_kprobe(p, ap);
1354 	flush_insn_slot(ap);
1355 	ap->addr = p->addr;
1356 	ap->flags = p->flags & ~KPROBE_FLAG_OPTIMIZED;
1357 	ap->pre_handler = aggr_pre_handler;
1358 	/* We don't care the kprobe which has gone. */
1359 	if (p->post_handler && !kprobe_gone(p))
1360 		ap->post_handler = aggr_post_handler;
1361 
1362 	INIT_LIST_HEAD(&ap->list);
1363 	INIT_HLIST_NODE(&ap->hlist);
1364 
1365 	list_add_rcu(&p->list, &ap->list);
1366 	hlist_replace_rcu(&p->hlist, &ap->hlist);
1367 }
1368 
1369 /*
1370  * This registers the second or subsequent kprobe at the same address.
1371  */
1372 static int register_aggr_kprobe(struct kprobe *orig_p, struct kprobe *p)
1373 {
1374 	int ret = 0;
1375 	struct kprobe *ap = orig_p;
1376 
1377 	scoped_guard(cpus_read_lock) {
1378 		/* For preparing optimization, jump_label_text_reserved() is called */
1379 		guard(jump_label_lock)();
1380 		guard(mutex)(&text_mutex);
1381 
1382 		if (!kprobe_aggrprobe(orig_p)) {
1383 			/* If 'orig_p' is not an 'aggr_kprobe', create new one. */
1384 			ap = alloc_aggr_kprobe(orig_p);
1385 			if (!ap)
1386 				return -ENOMEM;
1387 			init_aggr_kprobe(ap, orig_p);
1388 		} else if (kprobe_unused(ap)) {
1389 			/* This probe is going to die. Rescue it */
1390 			ret = reuse_unused_kprobe(ap);
1391 			if (ret)
1392 				return ret;
1393 		}
1394 
1395 		if (kprobe_gone(ap)) {
1396 			/*
1397 			 * Attempting to insert new probe at the same location that
1398 			 * had a probe in the module vaddr area which already
1399 			 * freed. So, the instruction slot has already been
1400 			 * released. We need a new slot for the new probe.
1401 			 */
1402 			ret = arch_prepare_kprobe(ap);
1403 			if (ret)
1404 				/*
1405 				 * Even if fail to allocate new slot, don't need to
1406 				 * free the 'ap'. It will be used next time, or
1407 				 * freed by unregister_kprobe().
1408 				 */
1409 				return ret;
1410 
1411 			/* Prepare optimized instructions if possible. */
1412 			prepare_optimized_kprobe(ap);
1413 
1414 			/*
1415 			 * Clear gone flag to prevent allocating new slot again, and
1416 			 * set disabled flag because it is not armed yet.
1417 			 */
1418 			ap->flags = (ap->flags & ~KPROBE_FLAG_GONE)
1419 					| KPROBE_FLAG_DISABLED;
1420 		}
1421 
1422 		/* Copy the insn slot of 'p' to 'ap'. */
1423 		copy_kprobe(ap, p);
1424 		ret = add_new_kprobe(ap, p);
1425 	}
1426 
1427 	if (ret == 0 && kprobe_disabled(ap) && !kprobe_disabled(p)) {
1428 		ap->flags &= ~KPROBE_FLAG_DISABLED;
1429 		if (!kprobes_all_disarmed) {
1430 			/* Arm the breakpoint again. */
1431 			ret = arm_kprobe(ap);
1432 			if (ret) {
1433 				ap->flags |= KPROBE_FLAG_DISABLED;
1434 				list_del_rcu(&p->list);
1435 				synchronize_rcu();
1436 			}
1437 		}
1438 	}
1439 	return ret;
1440 }
1441 
1442 bool __weak arch_within_kprobe_blacklist(unsigned long addr)
1443 {
1444 	/* The '__kprobes' functions and entry code must not be probed. */
1445 	return addr >= (unsigned long)__kprobes_text_start &&
1446 	       addr < (unsigned long)__kprobes_text_end;
1447 }
1448 
1449 static bool __within_kprobe_blacklist(unsigned long addr)
1450 {
1451 	struct kprobe_blacklist_entry *ent;
1452 
1453 	if (arch_within_kprobe_blacklist(addr))
1454 		return true;
1455 	/*
1456 	 * If 'kprobe_blacklist' is defined, check the address and
1457 	 * reject any probe registration in the prohibited area.
1458 	 * Note: this can return true during transition period where
1459 	 * (start_addr, end_addr) in the black list is shrinking
1460 	 * but old entry has not been removed yet. This is acceptable
1461 	 * because the worst case is that we reject more probes than
1462 	 * we should.
1463 	 */
1464 	guard(rcu)();
1465 	list_for_each_entry_rcu(ent, &kprobe_blacklist, list) {
1466 		if (addr >= ent->start_addr && addr < ent->end_addr)
1467 			return true;
1468 	}
1469 	return false;
1470 }
1471 
1472 bool within_kprobe_blacklist(unsigned long addr)
1473 {
1474 	char symname[KSYM_NAME_LEN], *p;
1475 
1476 	if (__within_kprobe_blacklist(addr))
1477 		return true;
1478 
1479 	/* Check if the address is on a suffixed-symbol */
1480 	if (!lookup_symbol_name(addr, symname)) {
1481 		p = strchr(symname, '.');
1482 		if (!p)
1483 			return false;
1484 		*p = '\0';
1485 		addr = (unsigned long)kprobe_lookup_name(symname, 0);
1486 		if (addr)
1487 			return __within_kprobe_blacklist(addr);
1488 	}
1489 	return false;
1490 }
1491 
1492 /*
1493  * arch_adjust_kprobe_addr - adjust the address
1494  * @addr: symbol base address
1495  * @offset: offset within the symbol
1496  * @on_func_entry: was this @addr+@offset on the function entry
1497  *
1498  * Typically returns @addr + @offset, except for special cases where the
1499  * function might be prefixed by a CFI landing pad, in that case any offset
1500  * inside the landing pad is mapped to the first 'real' instruction of the
1501  * symbol.
1502  *
1503  * Specifically, for things like IBT/BTI, skip the resp. ENDBR/BTI.C
1504  * instruction at +0.
1505  */
1506 kprobe_opcode_t *__weak arch_adjust_kprobe_addr(unsigned long addr,
1507 						unsigned long offset,
1508 						bool *on_func_entry)
1509 {
1510 	*on_func_entry = !offset;
1511 	return (kprobe_opcode_t *)(addr + offset);
1512 }
1513 
1514 /*
1515  * If 'symbol_name' is specified, look it up and add the 'offset'
1516  * to it. This way, we can specify a relative address to a symbol.
1517  * This returns encoded errors if it fails to look up symbol or invalid
1518  * combination of parameters.
1519  */
1520 static kprobe_opcode_t *
1521 _kprobe_addr(kprobe_opcode_t *addr, const char *symbol_name,
1522 	     unsigned long offset, bool *on_func_entry)
1523 {
1524 	if ((symbol_name && addr) || (!symbol_name && !addr))
1525 		return ERR_PTR(-EINVAL);
1526 
1527 	if (symbol_name) {
1528 		/*
1529 		 * Input: @sym + @offset
1530 		 * Output: @addr + @offset
1531 		 *
1532 		 * NOTE: kprobe_lookup_name() does *NOT* fold the offset
1533 		 *       argument into it's output!
1534 		 */
1535 		addr = kprobe_lookup_name(symbol_name, offset);
1536 		if (!addr)
1537 			return ERR_PTR(-ENOENT);
1538 	}
1539 
1540 	/*
1541 	 * So here we have @addr + @offset, displace it into a new
1542 	 * @addr' + @offset' where @addr' is the symbol start address.
1543 	 */
1544 	addr = (void *)addr + offset;
1545 	if (!kallsyms_lookup_size_offset((unsigned long)addr, NULL, &offset))
1546 		return ERR_PTR(-ENOENT);
1547 	addr = (void *)addr - offset;
1548 
1549 	/*
1550 	 * Then ask the architecture to re-combine them, taking care of
1551 	 * magical function entry details while telling us if this was indeed
1552 	 * at the start of the function.
1553 	 */
1554 	addr = arch_adjust_kprobe_addr((unsigned long)addr, offset, on_func_entry);
1555 	if (!addr)
1556 		return ERR_PTR(-EINVAL);
1557 
1558 	return addr;
1559 }
1560 
1561 static kprobe_opcode_t *kprobe_addr(struct kprobe *p)
1562 {
1563 	bool on_func_entry;
1564 
1565 	return _kprobe_addr(p->addr, p->symbol_name, p->offset, &on_func_entry);
1566 }
1567 
1568 /*
1569  * Check the 'p' is valid and return the aggregator kprobe
1570  * at the same address.
1571  */
1572 static struct kprobe *__get_valid_kprobe(struct kprobe *p)
1573 {
1574 	struct kprobe *ap, *list_p;
1575 
1576 	lockdep_assert_held(&kprobe_mutex);
1577 
1578 	ap = get_kprobe(p->addr);
1579 	if (unlikely(!ap))
1580 		return NULL;
1581 
1582 	if (p == ap)
1583 		return ap;
1584 
1585 	list_for_each_entry(list_p, &ap->list, list)
1586 		if (list_p == p)
1587 		/* kprobe p is a valid probe */
1588 			return ap;
1589 
1590 	return NULL;
1591 }
1592 
1593 /*
1594  * Warn and return error if the kprobe is being re-registered since
1595  * there must be a software bug.
1596  */
1597 static inline int warn_kprobe_rereg(struct kprobe *p)
1598 {
1599 	guard(mutex)(&kprobe_mutex);
1600 
1601 	if (WARN_ON_ONCE(__get_valid_kprobe(p)))
1602 		return -EINVAL;
1603 
1604 	return 0;
1605 }
1606 
1607 static int check_ftrace_location(struct kprobe *p)
1608 {
1609 	unsigned long addr = (unsigned long)p->addr;
1610 
1611 	if (ftrace_location(addr) == addr) {
1612 #ifdef CONFIG_KPROBES_ON_FTRACE
1613 		p->flags |= KPROBE_FLAG_FTRACE;
1614 #else
1615 		return -EINVAL;
1616 #endif
1617 	}
1618 	return 0;
1619 }
1620 
1621 static bool is_cfi_preamble_symbol(unsigned long addr)
1622 {
1623 	char symbuf[KSYM_NAME_LEN];
1624 
1625 	if (lookup_symbol_name(addr, symbuf))
1626 		return false;
1627 
1628 	return str_has_prefix(symbuf, "__cfi_") ||
1629 		str_has_prefix(symbuf, "__pfx_");
1630 }
1631 
1632 static int check_kprobe_address_safe(struct kprobe *p,
1633 				     struct module **probed_mod)
1634 {
1635 	int ret;
1636 
1637 	ret = check_ftrace_location(p);
1638 	if (ret)
1639 		return ret;
1640 
1641 	guard(jump_label_lock)();
1642 
1643 	/* Ensure the address is in a text area, and find a module if exists. */
1644 	*probed_mod = NULL;
1645 	if (!core_kernel_text((unsigned long) p->addr)) {
1646 		guard(rcu)();
1647 		*probed_mod = __module_text_address((unsigned long) p->addr);
1648 		if (!(*probed_mod))
1649 			return -EINVAL;
1650 
1651 		/*
1652 		 * We must hold a refcount of the probed module while updating
1653 		 * its code to prohibit unexpected unloading.
1654 		 */
1655 		if (unlikely(!try_module_get(*probed_mod)))
1656 			return -ENOENT;
1657 	}
1658 	/* Ensure it is not in reserved area. */
1659 	if (in_gate_area_no_mm((unsigned long) p->addr) ||
1660 	    within_kprobe_blacklist((unsigned long) p->addr) ||
1661 	    jump_label_text_reserved(p->addr, p->addr) ||
1662 	    static_call_text_reserved(p->addr, p->addr) ||
1663 	    find_bug((unsigned long)p->addr) ||
1664 	    is_cfi_preamble_symbol((unsigned long)p->addr)) {
1665 		module_put(*probed_mod);
1666 		return -EINVAL;
1667 	}
1668 
1669 	/* Get module refcount and reject __init functions for loaded modules. */
1670 	if (IS_ENABLED(CONFIG_MODULES) && *probed_mod) {
1671 		/*
1672 		 * If the module freed '.init.text', we couldn't insert
1673 		 * kprobes in there.
1674 		 */
1675 		if (within_module_init((unsigned long)p->addr, *probed_mod) &&
1676 		    !module_is_coming(*probed_mod)) {
1677 			module_put(*probed_mod);
1678 			return -ENOENT;
1679 		}
1680 	}
1681 
1682 	return 0;
1683 }
1684 
1685 static int __register_kprobe(struct kprobe *p)
1686 {
1687 	int ret;
1688 	struct kprobe *old_p;
1689 
1690 	guard(mutex)(&kprobe_mutex);
1691 
1692 	old_p = get_kprobe(p->addr);
1693 	if (old_p)
1694 		/* Since this may unoptimize 'old_p', locking 'text_mutex'. */
1695 		return register_aggr_kprobe(old_p, p);
1696 
1697 	scoped_guard(cpus_read_lock) {
1698 		/* Prevent text modification */
1699 		guard(mutex)(&text_mutex);
1700 		ret = prepare_kprobe(p);
1701 		if (ret)
1702 			return ret;
1703 	}
1704 
1705 	INIT_HLIST_NODE(&p->hlist);
1706 	hlist_add_head_rcu(&p->hlist,
1707 		       &kprobe_table[hash_ptr(p->addr, KPROBE_HASH_BITS)]);
1708 
1709 	if (!kprobes_all_disarmed && !kprobe_disabled(p)) {
1710 		ret = arm_kprobe(p);
1711 		if (ret) {
1712 			hlist_del_rcu(&p->hlist);
1713 			synchronize_rcu();
1714 		}
1715 	}
1716 
1717 	/* Try to optimize kprobe */
1718 	try_to_optimize_kprobe(p);
1719 	return 0;
1720 }
1721 
1722 int register_kprobe(struct kprobe *p)
1723 {
1724 	int ret;
1725 	struct module *probed_mod;
1726 	kprobe_opcode_t *addr;
1727 	bool on_func_entry;
1728 
1729 	/* Canonicalize probe address from symbol */
1730 	addr = _kprobe_addr(p->addr, p->symbol_name, p->offset, &on_func_entry);
1731 	if (IS_ERR(addr))
1732 		return PTR_ERR(addr);
1733 	p->addr = addr;
1734 
1735 	ret = warn_kprobe_rereg(p);
1736 	if (ret)
1737 		return ret;
1738 
1739 	/* User can pass only KPROBE_FLAG_DISABLED to register_kprobe */
1740 	p->flags &= KPROBE_FLAG_DISABLED;
1741 	if (on_func_entry)
1742 		p->flags |= KPROBE_FLAG_ON_FUNC_ENTRY;
1743 	p->nmissed = 0;
1744 	INIT_LIST_HEAD(&p->list);
1745 
1746 	ret = check_kprobe_address_safe(p, &probed_mod);
1747 	if (ret)
1748 		return ret;
1749 
1750 	ret = __register_kprobe(p);
1751 
1752 	if (probed_mod)
1753 		module_put(probed_mod);
1754 
1755 	return ret;
1756 }
1757 EXPORT_SYMBOL_GPL(register_kprobe);
1758 
1759 /* Check if all probes on the 'ap' are disabled. */
1760 static bool aggr_kprobe_disabled(struct kprobe *ap)
1761 {
1762 	struct kprobe *kp;
1763 
1764 	lockdep_assert_held(&kprobe_mutex);
1765 
1766 	list_for_each_entry(kp, &ap->list, list)
1767 		if (!kprobe_disabled(kp))
1768 			/*
1769 			 * Since there is an active probe on the list,
1770 			 * we can't disable this 'ap'.
1771 			 */
1772 			return false;
1773 
1774 	return true;
1775 }
1776 
1777 static struct kprobe *__disable_kprobe(struct kprobe *p)
1778 {
1779 	struct kprobe *orig_p;
1780 	int ret;
1781 
1782 	lockdep_assert_held(&kprobe_mutex);
1783 
1784 	/* Get an original kprobe for return */
1785 	orig_p = __get_valid_kprobe(p);
1786 	if (unlikely(orig_p == NULL))
1787 		return ERR_PTR(-EINVAL);
1788 
1789 	if (kprobe_disabled(p))
1790 		return orig_p;
1791 
1792 	/* Disable probe if it is a child probe */
1793 	if (p != orig_p)
1794 		p->flags |= KPROBE_FLAG_DISABLED;
1795 
1796 	/* Try to disarm and disable this/parent probe */
1797 	if (p == orig_p || aggr_kprobe_disabled(orig_p)) {
1798 		/*
1799 		 * Don't be lazy here.  Even if 'kprobes_all_disarmed'
1800 		 * is false, 'orig_p' might not have been armed yet.
1801 		 * Note arm_all_kprobes() __tries__ to arm all kprobes
1802 		 * on the best effort basis.
1803 		 */
1804 		if (!kprobes_all_disarmed && !kprobe_disabled(orig_p)) {
1805 			ret = disarm_kprobe(orig_p, true);
1806 			if (ret) {
1807 				p->flags &= ~KPROBE_FLAG_DISABLED;
1808 				return ERR_PTR(ret);
1809 			}
1810 		}
1811 		orig_p->flags |= KPROBE_FLAG_DISABLED;
1812 	}
1813 
1814 	return orig_p;
1815 }
1816 
1817 /*
1818  * Unregister a kprobe without a scheduler synchronization.
1819  */
1820 static int __unregister_kprobe_top(struct kprobe *p)
1821 {
1822 	struct kprobe *ap, *list_p;
1823 
1824 	/* Disable kprobe. This will disarm it if needed. */
1825 	ap = __disable_kprobe(p);
1826 	if (IS_ERR(ap))
1827 		return PTR_ERR(ap);
1828 
1829 	WARN_ON(ap != p && !kprobe_aggrprobe(ap));
1830 
1831 	/*
1832 	 * If the probe is an independent(and non-optimized) kprobe
1833 	 * (not an aggrprobe), the last kprobe on the aggrprobe, or
1834 	 * kprobe is already disarmed, just remove from the hash list.
1835 	 */
1836 	if (ap == p ||
1837 		(list_is_singular(&ap->list) && kprobe_disarmed(ap))) {
1838 		/*
1839 		 * !disarmed could be happen if the probe is under delayed
1840 		 * unoptimizing.
1841 		 */
1842 		hlist_del_rcu(&ap->hlist);
1843 		return 0;
1844 	}
1845 
1846 	/* If disabling probe has special handlers, update aggrprobe */
1847 	if (p->post_handler && !kprobe_gone(p)) {
1848 		list_for_each_entry(list_p, &ap->list, list) {
1849 			if ((list_p != p) && (list_p->post_handler))
1850 				break;
1851 		}
1852 		/* No other probe has post_handler */
1853 		if (list_entry_is_head(list_p, &ap->list, list)) {
1854 			/*
1855 			 * For the kprobe-on-ftrace case, we keep the
1856 			 * post_handler setting to identify this aggrprobe
1857 			 * armed with kprobe_ipmodify_ops.
1858 			 */
1859 			if (!kprobe_ftrace(ap))
1860 				ap->post_handler = NULL;
1861 		}
1862 	}
1863 
1864 	/*
1865 	 * Remove from the aggrprobe: this path will do nothing in
1866 	 * __unregister_kprobe_bottom().
1867 	 */
1868 	list_del_rcu(&p->list);
1869 	if (!kprobe_disabled(ap) && !kprobes_all_disarmed)
1870 		/*
1871 		 * Try to optimize this probe again, because post
1872 		 * handler may have been changed.
1873 		 */
1874 		optimize_kprobe(ap);
1875 	return 0;
1876 
1877 }
1878 
1879 static void __unregister_kprobe_bottom(struct kprobe *p)
1880 {
1881 	struct kprobe *ap;
1882 
1883 	if (list_empty(&p->list))
1884 		/* This is an independent kprobe */
1885 		arch_remove_kprobe(p);
1886 	else if (list_is_singular(&p->list)) {
1887 		/* This is the last child of an aggrprobe */
1888 		ap = list_entry(p->list.next, struct kprobe, list);
1889 		list_del(&p->list);
1890 		free_aggr_kprobe(ap);
1891 	}
1892 	/* Otherwise, do nothing. */
1893 }
1894 
1895 int register_kprobes(struct kprobe **kps, int num)
1896 {
1897 	int i, ret = 0;
1898 
1899 	if (num <= 0)
1900 		return -EINVAL;
1901 	for (i = 0; i < num; i++) {
1902 		ret = register_kprobe(kps[i]);
1903 		if (ret < 0) {
1904 			if (i > 0)
1905 				unregister_kprobes(kps, i);
1906 			break;
1907 		}
1908 	}
1909 	return ret;
1910 }
1911 EXPORT_SYMBOL_GPL(register_kprobes);
1912 
1913 void unregister_kprobe(struct kprobe *p)
1914 {
1915 	unregister_kprobes(&p, 1);
1916 }
1917 EXPORT_SYMBOL_GPL(unregister_kprobe);
1918 
1919 void unregister_kprobes(struct kprobe **kps, int num)
1920 {
1921 	int i;
1922 
1923 	if (num <= 0)
1924 		return;
1925 	scoped_guard(mutex, &kprobe_mutex) {
1926 		for (i = 0; i < num; i++)
1927 			if (__unregister_kprobe_top(kps[i]) < 0)
1928 				kps[i]->addr = NULL;
1929 	}
1930 	synchronize_rcu();
1931 	for (i = 0; i < num; i++)
1932 		if (kps[i]->addr)
1933 			__unregister_kprobe_bottom(kps[i]);
1934 }
1935 EXPORT_SYMBOL_GPL(unregister_kprobes);
1936 
1937 int __weak kprobe_exceptions_notify(struct notifier_block *self,
1938 					unsigned long val, void *data)
1939 {
1940 	return NOTIFY_DONE;
1941 }
1942 NOKPROBE_SYMBOL(kprobe_exceptions_notify);
1943 
1944 static struct notifier_block kprobe_exceptions_nb = {
1945 	.notifier_call = kprobe_exceptions_notify,
1946 	.priority = 0x7fffffff /* we need to be notified first */
1947 };
1948 
1949 #ifdef CONFIG_KRETPROBES
1950 
1951 #if !defined(CONFIG_KRETPROBE_ON_RETHOOK)
1952 
1953 /* callbacks for objpool of kretprobe instances */
1954 static int kretprobe_init_inst(void *nod, void *context)
1955 {
1956 	struct kretprobe_instance *ri = nod;
1957 
1958 	ri->rph = context;
1959 	return 0;
1960 }
1961 static int kretprobe_fini_pool(struct objpool_head *head, void *context)
1962 {
1963 	kfree(context);
1964 	return 0;
1965 }
1966 
1967 static void free_rp_inst_rcu(struct rcu_head *head)
1968 {
1969 	struct kretprobe_instance *ri = container_of(head, struct kretprobe_instance, rcu);
1970 	struct kretprobe_holder *rph = ri->rph;
1971 
1972 	objpool_drop(ri, &rph->pool);
1973 }
1974 NOKPROBE_SYMBOL(free_rp_inst_rcu);
1975 
1976 static void recycle_rp_inst(struct kretprobe_instance *ri)
1977 {
1978 	struct kretprobe *rp = get_kretprobe(ri);
1979 
1980 	if (likely(rp))
1981 		objpool_push(ri, &rp->rph->pool);
1982 	else
1983 		call_rcu(&ri->rcu, free_rp_inst_rcu);
1984 }
1985 NOKPROBE_SYMBOL(recycle_rp_inst);
1986 
1987 /*
1988  * This function is called from delayed_put_task_struct() when a task is
1989  * dead and cleaned up to recycle any kretprobe instances associated with
1990  * this task. These left over instances represent probed functions that
1991  * have been called but will never return.
1992  */
1993 void kprobe_flush_task(struct task_struct *tk)
1994 {
1995 	struct kretprobe_instance *ri;
1996 	struct llist_node *node;
1997 
1998 	/* Early boot, not yet initialized. */
1999 	if (unlikely(!kprobes_initialized))
2000 		return;
2001 
2002 	kprobe_busy_begin();
2003 
2004 	node = __llist_del_all(&tk->kretprobe_instances);
2005 	while (node) {
2006 		ri = container_of(node, struct kretprobe_instance, llist);
2007 		node = node->next;
2008 
2009 		recycle_rp_inst(ri);
2010 	}
2011 
2012 	kprobe_busy_end();
2013 }
2014 NOKPROBE_SYMBOL(kprobe_flush_task);
2015 
2016 static inline void free_rp_inst(struct kretprobe *rp)
2017 {
2018 	struct kretprobe_holder *rph = rp->rph;
2019 
2020 	if (!rph)
2021 		return;
2022 	rp->rph = NULL;
2023 	objpool_fini(&rph->pool);
2024 }
2025 
2026 /* This assumes the 'tsk' is the current task or the is not running. */
2027 static kprobe_opcode_t *__kretprobe_find_ret_addr(struct task_struct *tsk,
2028 						  struct llist_node **cur)
2029 {
2030 	struct kretprobe_instance *ri = NULL;
2031 	struct llist_node *node = *cur;
2032 
2033 	if (!node)
2034 		node = tsk->kretprobe_instances.first;
2035 	else
2036 		node = node->next;
2037 
2038 	while (node) {
2039 		ri = container_of(node, struct kretprobe_instance, llist);
2040 		if (ri->ret_addr != kretprobe_trampoline_addr()) {
2041 			*cur = node;
2042 			return ri->ret_addr;
2043 		}
2044 		node = node->next;
2045 	}
2046 	return NULL;
2047 }
2048 NOKPROBE_SYMBOL(__kretprobe_find_ret_addr);
2049 
2050 /**
2051  * kretprobe_find_ret_addr -- Find correct return address modified by kretprobe
2052  * @tsk: Target task
2053  * @fp: A frame pointer
2054  * @cur: a storage of the loop cursor llist_node pointer for next call
2055  *
2056  * Find the correct return address modified by a kretprobe on @tsk in unsigned
2057  * long type. If it finds the return address, this returns that address value,
2058  * or this returns 0.
2059  * The @tsk must be 'current' or a task which is not running. @fp is a hint
2060  * to get the currect return address - which is compared with the
2061  * kretprobe_instance::fp field. The @cur is a loop cursor for searching the
2062  * kretprobe return addresses on the @tsk. The '*@cur' should be NULL at the
2063  * first call, but '@cur' itself must NOT NULL.
2064  */
2065 unsigned long kretprobe_find_ret_addr(struct task_struct *tsk, void *fp,
2066 				      struct llist_node **cur)
2067 {
2068 	struct kretprobe_instance *ri;
2069 	kprobe_opcode_t *ret;
2070 
2071 	if (WARN_ON_ONCE(!cur))
2072 		return 0;
2073 
2074 	do {
2075 		ret = __kretprobe_find_ret_addr(tsk, cur);
2076 		if (!ret)
2077 			break;
2078 		ri = container_of(*cur, struct kretprobe_instance, llist);
2079 	} while (ri->fp != fp);
2080 
2081 	return (unsigned long)ret;
2082 }
2083 NOKPROBE_SYMBOL(kretprobe_find_ret_addr);
2084 
2085 void __weak arch_kretprobe_fixup_return(struct pt_regs *regs,
2086 					kprobe_opcode_t *correct_ret_addr)
2087 {
2088 	/*
2089 	 * Do nothing by default. Please fill this to update the fake return
2090 	 * address on the stack with the correct one on each arch if possible.
2091 	 */
2092 }
2093 
2094 unsigned long __kretprobe_trampoline_handler(struct pt_regs *regs,
2095 					     void *frame_pointer)
2096 {
2097 	struct kretprobe_instance *ri = NULL;
2098 	struct llist_node *first, *node = NULL;
2099 	kprobe_opcode_t *correct_ret_addr;
2100 	struct kretprobe *rp;
2101 
2102 	/* Find correct address and all nodes for this frame. */
2103 	correct_ret_addr = __kretprobe_find_ret_addr(current, &node);
2104 	if (!correct_ret_addr) {
2105 		pr_err("kretprobe: Return address not found, not execute handler. Maybe there is a bug in the kernel.\n");
2106 		BUG_ON(1);
2107 	}
2108 
2109 	/*
2110 	 * Set the return address as the instruction pointer, because if the
2111 	 * user handler calls stack_trace_save_regs() with this 'regs',
2112 	 * the stack trace will start from the instruction pointer.
2113 	 */
2114 	instruction_pointer_set(regs, (unsigned long)correct_ret_addr);
2115 
2116 	/* Run the user handler of the nodes. */
2117 	first = current->kretprobe_instances.first;
2118 	while (first) {
2119 		ri = container_of(first, struct kretprobe_instance, llist);
2120 
2121 		if (WARN_ON_ONCE(ri->fp != frame_pointer))
2122 			break;
2123 
2124 		rp = get_kretprobe(ri);
2125 		if (rp && rp->handler) {
2126 			struct kprobe *prev = kprobe_running();
2127 
2128 			__this_cpu_write(current_kprobe, &rp->kp);
2129 			ri->ret_addr = correct_ret_addr;
2130 			rp->handler(ri, regs);
2131 			__this_cpu_write(current_kprobe, prev);
2132 		}
2133 		if (first == node)
2134 			break;
2135 
2136 		first = first->next;
2137 	}
2138 
2139 	arch_kretprobe_fixup_return(regs, correct_ret_addr);
2140 
2141 	/* Unlink all nodes for this frame. */
2142 	first = current->kretprobe_instances.first;
2143 	current->kretprobe_instances.first = node->next;
2144 	node->next = NULL;
2145 
2146 	/* Recycle free instances. */
2147 	while (first) {
2148 		ri = container_of(first, struct kretprobe_instance, llist);
2149 		first = first->next;
2150 
2151 		recycle_rp_inst(ri);
2152 	}
2153 
2154 	return (unsigned long)correct_ret_addr;
2155 }
2156 NOKPROBE_SYMBOL(__kretprobe_trampoline_handler)
2157 
2158 /*
2159  * This kprobe pre_handler is registered with every kretprobe. When probe
2160  * hits it will set up the return probe.
2161  */
2162 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs)
2163 {
2164 	struct kretprobe *rp = container_of(p, struct kretprobe, kp);
2165 	struct kretprobe_holder *rph = rp->rph;
2166 	struct kretprobe_instance *ri;
2167 
2168 	ri = objpool_pop(&rph->pool);
2169 	if (!ri) {
2170 		rp->nmissed++;
2171 		return 0;
2172 	}
2173 
2174 	if (rp->entry_handler && rp->entry_handler(ri, regs)) {
2175 		objpool_push(ri, &rph->pool);
2176 		return 0;
2177 	}
2178 
2179 	arch_prepare_kretprobe(ri, regs);
2180 
2181 	__llist_add(&ri->llist, &current->kretprobe_instances);
2182 
2183 	return 0;
2184 }
2185 NOKPROBE_SYMBOL(pre_handler_kretprobe);
2186 #else /* CONFIG_KRETPROBE_ON_RETHOOK */
2187 /*
2188  * This kprobe pre_handler is registered with every kretprobe. When probe
2189  * hits it will set up the return probe.
2190  */
2191 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs)
2192 {
2193 	struct kretprobe *rp = container_of(p, struct kretprobe, kp);
2194 	struct kretprobe_instance *ri;
2195 	struct rethook_node *rhn;
2196 
2197 	rhn = rethook_try_get(rp->rh);
2198 	if (!rhn) {
2199 		rp->nmissed++;
2200 		return 0;
2201 	}
2202 
2203 	ri = container_of(rhn, struct kretprobe_instance, node);
2204 
2205 	if (rp->entry_handler && rp->entry_handler(ri, regs))
2206 		rethook_recycle(rhn);
2207 	else
2208 		rethook_hook(rhn, regs, kprobe_ftrace(p));
2209 
2210 	return 0;
2211 }
2212 NOKPROBE_SYMBOL(pre_handler_kretprobe);
2213 
2214 static void kretprobe_rethook_handler(struct rethook_node *rh, void *data,
2215 				      unsigned long ret_addr,
2216 				      struct pt_regs *regs)
2217 {
2218 	struct kretprobe *rp = (struct kretprobe *)data;
2219 	struct kretprobe_instance *ri;
2220 	struct kprobe_ctlblk *kcb;
2221 
2222 	/* The data must NOT be null. This means rethook data structure is broken. */
2223 	if (WARN_ON_ONCE(!data) || !rp->handler)
2224 		return;
2225 
2226 	__this_cpu_write(current_kprobe, &rp->kp);
2227 	kcb = get_kprobe_ctlblk();
2228 	kcb->kprobe_status = KPROBE_HIT_ACTIVE;
2229 
2230 	ri = container_of(rh, struct kretprobe_instance, node);
2231 	rp->handler(ri, regs);
2232 
2233 	__this_cpu_write(current_kprobe, NULL);
2234 }
2235 NOKPROBE_SYMBOL(kretprobe_rethook_handler);
2236 
2237 #endif /* !CONFIG_KRETPROBE_ON_RETHOOK */
2238 
2239 /**
2240  * kprobe_on_func_entry() -- check whether given address is function entry
2241  * @addr: Target address
2242  * @sym:  Target symbol name
2243  * @offset: The offset from the symbol or the address
2244  *
2245  * This checks whether the given @addr+@offset or @sym+@offset is on the
2246  * function entry address or not.
2247  * This returns 0 if it is the function entry, or -EINVAL if it is not.
2248  * And also it returns -ENOENT if it fails the symbol or address lookup.
2249  * Caller must pass @addr or @sym (either one must be NULL), or this
2250  * returns -EINVAL.
2251  */
2252 int kprobe_on_func_entry(kprobe_opcode_t *addr, const char *sym, unsigned long offset)
2253 {
2254 	bool on_func_entry;
2255 	kprobe_opcode_t *kp_addr = _kprobe_addr(addr, sym, offset, &on_func_entry);
2256 
2257 	if (IS_ERR(kp_addr))
2258 		return PTR_ERR(kp_addr);
2259 
2260 	if (!on_func_entry)
2261 		return -EINVAL;
2262 
2263 	return 0;
2264 }
2265 
2266 int register_kretprobe(struct kretprobe *rp)
2267 {
2268 	int ret;
2269 	int i;
2270 	void *addr;
2271 
2272 	ret = kprobe_on_func_entry(rp->kp.addr, rp->kp.symbol_name, rp->kp.offset);
2273 	if (ret)
2274 		return ret;
2275 
2276 	/* If only 'rp->kp.addr' is specified, check reregistering kprobes */
2277 	if (rp->kp.addr && warn_kprobe_rereg(&rp->kp))
2278 		return -EINVAL;
2279 
2280 	if (kretprobe_blacklist_size) {
2281 		addr = kprobe_addr(&rp->kp);
2282 		if (IS_ERR(addr))
2283 			return PTR_ERR(addr);
2284 
2285 		for (i = 0; kretprobe_blacklist[i].name != NULL; i++) {
2286 			if (kretprobe_blacklist[i].addr == addr)
2287 				return -EINVAL;
2288 		}
2289 	}
2290 
2291 	if (rp->data_size > KRETPROBE_MAX_DATA_SIZE)
2292 		return -E2BIG;
2293 
2294 	rp->kp.pre_handler = pre_handler_kretprobe;
2295 	rp->kp.post_handler = NULL;
2296 
2297 	/* Pre-allocate memory for max kretprobe instances */
2298 	if (rp->maxactive <= 0)
2299 		rp->maxactive = max_t(unsigned int, 10, 2*num_possible_cpus());
2300 
2301 #ifdef CONFIG_KRETPROBE_ON_RETHOOK
2302 	rp->rh = rethook_alloc((void *)rp, kretprobe_rethook_handler,
2303 				sizeof(struct kretprobe_instance) +
2304 				rp->data_size, rp->maxactive);
2305 	if (IS_ERR(rp->rh))
2306 		return PTR_ERR(rp->rh);
2307 
2308 	rp->nmissed = 0;
2309 	/* Establish function entry probe point */
2310 	ret = register_kprobe(&rp->kp);
2311 	if (ret != 0) {
2312 		rethook_free(rp->rh);
2313 		rp->rh = NULL;
2314 	}
2315 #else	/* !CONFIG_KRETPROBE_ON_RETHOOK */
2316 	rp->rph = kzalloc_obj(struct kretprobe_holder);
2317 	if (!rp->rph)
2318 		return -ENOMEM;
2319 
2320 	if (objpool_init(&rp->rph->pool, rp->maxactive, rp->data_size +
2321 			sizeof(struct kretprobe_instance), GFP_KERNEL,
2322 			rp->rph, kretprobe_init_inst, kretprobe_fini_pool)) {
2323 		kfree(rp->rph);
2324 		rp->rph = NULL;
2325 		return -ENOMEM;
2326 	}
2327 	rcu_assign_pointer(rp->rph->rp, rp);
2328 	rp->nmissed = 0;
2329 	/* Establish function entry probe point */
2330 	ret = register_kprobe(&rp->kp);
2331 	if (ret != 0)
2332 		free_rp_inst(rp);
2333 #endif
2334 	return ret;
2335 }
2336 EXPORT_SYMBOL_GPL(register_kretprobe);
2337 
2338 int register_kretprobes(struct kretprobe **rps, int num)
2339 {
2340 	int ret = 0, i;
2341 
2342 	if (num <= 0)
2343 		return -EINVAL;
2344 	for (i = 0; i < num; i++) {
2345 		ret = register_kretprobe(rps[i]);
2346 		if (ret < 0) {
2347 			if (i > 0)
2348 				unregister_kretprobes(rps, i);
2349 			break;
2350 		}
2351 	}
2352 	return ret;
2353 }
2354 EXPORT_SYMBOL_GPL(register_kretprobes);
2355 
2356 void unregister_kretprobe(struct kretprobe *rp)
2357 {
2358 	unregister_kretprobes(&rp, 1);
2359 }
2360 EXPORT_SYMBOL_GPL(unregister_kretprobe);
2361 
2362 void unregister_kretprobes(struct kretprobe **rps, int num)
2363 {
2364 	int i;
2365 
2366 	if (num <= 0)
2367 		return;
2368 	for (i = 0; i < num; i++) {
2369 		guard(mutex)(&kprobe_mutex);
2370 
2371 		if (__unregister_kprobe_top(&rps[i]->kp) < 0)
2372 			rps[i]->kp.addr = NULL;
2373 #ifdef CONFIG_KRETPROBE_ON_RETHOOK
2374 		rethook_free(rps[i]->rh);
2375 #else
2376 		rcu_assign_pointer(rps[i]->rph->rp, NULL);
2377 #endif
2378 	}
2379 
2380 	synchronize_rcu();
2381 	for (i = 0; i < num; i++) {
2382 		if (rps[i]->kp.addr) {
2383 			__unregister_kprobe_bottom(&rps[i]->kp);
2384 #ifndef CONFIG_KRETPROBE_ON_RETHOOK
2385 			free_rp_inst(rps[i]);
2386 #endif
2387 		}
2388 	}
2389 }
2390 EXPORT_SYMBOL_GPL(unregister_kretprobes);
2391 
2392 #else /* CONFIG_KRETPROBES */
2393 int register_kretprobe(struct kretprobe *rp)
2394 {
2395 	return -EOPNOTSUPP;
2396 }
2397 EXPORT_SYMBOL_GPL(register_kretprobe);
2398 
2399 int register_kretprobes(struct kretprobe **rps, int num)
2400 {
2401 	return -EOPNOTSUPP;
2402 }
2403 EXPORT_SYMBOL_GPL(register_kretprobes);
2404 
2405 void unregister_kretprobe(struct kretprobe *rp)
2406 {
2407 }
2408 EXPORT_SYMBOL_GPL(unregister_kretprobe);
2409 
2410 void unregister_kretprobes(struct kretprobe **rps, int num)
2411 {
2412 }
2413 EXPORT_SYMBOL_GPL(unregister_kretprobes);
2414 
2415 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs)
2416 {
2417 	return 0;
2418 }
2419 NOKPROBE_SYMBOL(pre_handler_kretprobe);
2420 
2421 #endif /* CONFIG_KRETPROBES */
2422 
2423 /* Set the kprobe gone and remove its instruction buffer. */
2424 static void kill_kprobe(struct kprobe *p)
2425 {
2426 	struct kprobe *kp;
2427 
2428 	lockdep_assert_held(&kprobe_mutex);
2429 
2430 	/*
2431 	 * The module is going away. We should disarm the kprobe which
2432 	 * is using ftrace, because ftrace framework is still available at
2433 	 * 'MODULE_STATE_GOING' notification.
2434 	 */
2435 	if (kprobe_ftrace(p) && !kprobe_disabled(p) && !kprobes_all_disarmed)
2436 		disarm_kprobe_ftrace(p);
2437 
2438 	p->flags |= KPROBE_FLAG_GONE;
2439 	if (kprobe_aggrprobe(p)) {
2440 		/*
2441 		 * If this is an aggr_kprobe, we have to list all the
2442 		 * chained probes and mark them GONE.
2443 		 */
2444 		list_for_each_entry(kp, &p->list, list)
2445 			kp->flags |= KPROBE_FLAG_GONE;
2446 		p->post_handler = NULL;
2447 		kill_optimized_kprobe(p);
2448 	}
2449 	/*
2450 	 * Here, we can remove insn_slot safely, because no thread calls
2451 	 * the original probed function (which will be freed soon) any more.
2452 	 */
2453 	arch_remove_kprobe(p);
2454 }
2455 
2456 /* Disable one kprobe */
2457 int disable_kprobe(struct kprobe *kp)
2458 {
2459 	struct kprobe *p;
2460 
2461 	guard(mutex)(&kprobe_mutex);
2462 
2463 	/* Disable this kprobe */
2464 	p = __disable_kprobe(kp);
2465 
2466 	return IS_ERR(p) ? PTR_ERR(p) : 0;
2467 }
2468 EXPORT_SYMBOL_GPL(disable_kprobe);
2469 
2470 /* Enable one kprobe */
2471 int enable_kprobe(struct kprobe *kp)
2472 {
2473 	int ret = 0;
2474 	struct kprobe *p;
2475 
2476 	guard(mutex)(&kprobe_mutex);
2477 
2478 	/* Check whether specified probe is valid. */
2479 	p = __get_valid_kprobe(kp);
2480 	if (unlikely(p == NULL))
2481 		return -EINVAL;
2482 
2483 	if (kprobe_gone(kp))
2484 		/* This kprobe has gone, we couldn't enable it. */
2485 		return -EINVAL;
2486 
2487 	if (p != kp)
2488 		kp->flags &= ~KPROBE_FLAG_DISABLED;
2489 
2490 	if (!kprobes_all_disarmed && kprobe_disabled(p)) {
2491 		p->flags &= ~KPROBE_FLAG_DISABLED;
2492 		ret = arm_kprobe(p);
2493 		if (ret) {
2494 			p->flags |= KPROBE_FLAG_DISABLED;
2495 			if (p != kp)
2496 				kp->flags |= KPROBE_FLAG_DISABLED;
2497 		}
2498 	}
2499 	return ret;
2500 }
2501 EXPORT_SYMBOL_GPL(enable_kprobe);
2502 
2503 /* Caller must NOT call this in usual path. This is only for critical case */
2504 void dump_kprobe(struct kprobe *kp)
2505 {
2506 	pr_err("Dump kprobe:\n.symbol_name = %s, .offset = %x, .addr = %pS\n",
2507 	       kp->symbol_name, kp->offset, kp->addr);
2508 }
2509 NOKPROBE_SYMBOL(dump_kprobe);
2510 
2511 int kprobe_add_ksym_blacklist(unsigned long entry)
2512 {
2513 	struct kprobe_blacklist_entry *ent;
2514 	unsigned long offset = 0, size = 0;
2515 
2516 	if (!kernel_text_address(entry) ||
2517 	    !kallsyms_lookup_size_offset(entry, &size, &offset))
2518 		return -EINVAL;
2519 
2520 	ent = kmalloc_obj(*ent);
2521 	if (!ent)
2522 		return -ENOMEM;
2523 	ent->start_addr = entry;
2524 	ent->end_addr = entry + size;
2525 	INIT_LIST_HEAD(&ent->list);
2526 	list_add_tail_rcu(&ent->list, &kprobe_blacklist);
2527 
2528 	return (int)size;
2529 }
2530 
2531 /* Add all symbols in given area into kprobe blacklist */
2532 int kprobe_add_area_blacklist(unsigned long start, unsigned long end)
2533 {
2534 	unsigned long entry;
2535 	int ret = 0;
2536 
2537 	for (entry = start; entry < end; entry += ret) {
2538 		ret = kprobe_add_ksym_blacklist(entry);
2539 		if (ret < 0)
2540 			return ret;
2541 		if (ret == 0)	/* In case of alias symbol */
2542 			ret = 1;
2543 	}
2544 	return 0;
2545 }
2546 
2547 int __weak arch_kprobe_get_kallsym(unsigned int *symnum, unsigned long *value,
2548 				   char *type, char *sym)
2549 {
2550 	return -ERANGE;
2551 }
2552 
2553 int kprobe_get_kallsym(unsigned int symnum, unsigned long *value, char *type,
2554 		       char *sym)
2555 {
2556 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT
2557 	if (!kprobe_cache_get_kallsym(&kprobe_insn_slots, &symnum, value, type, sym))
2558 		return 0;
2559 #ifdef CONFIG_OPTPROBES
2560 	if (!kprobe_cache_get_kallsym(&kprobe_optinsn_slots, &symnum, value, type, sym))
2561 		return 0;
2562 #endif
2563 #endif
2564 	if (!arch_kprobe_get_kallsym(&symnum, value, type, sym))
2565 		return 0;
2566 	return -ERANGE;
2567 }
2568 
2569 int __init __weak arch_populate_kprobe_blacklist(void)
2570 {
2571 	return 0;
2572 }
2573 
2574 /*
2575  * Lookup and populate the kprobe_blacklist.
2576  *
2577  * Unlike the kretprobe blacklist, we'll need to determine
2578  * the range of addresses that belong to the said functions,
2579  * since a kprobe need not necessarily be at the beginning
2580  * of a function.
2581  */
2582 static int __init populate_kprobe_blacklist(unsigned long *start,
2583 					     unsigned long *end)
2584 {
2585 	unsigned long entry;
2586 	unsigned long *iter;
2587 	int ret;
2588 
2589 	for (iter = start; iter < end; iter++) {
2590 		entry = (unsigned long)dereference_symbol_descriptor((void *)*iter);
2591 		ret = kprobe_add_ksym_blacklist(entry);
2592 		if (ret == -EINVAL)
2593 			continue;
2594 		if (ret < 0)
2595 			return ret;
2596 	}
2597 
2598 	/* Symbols in '__kprobes_text' are blacklisted */
2599 	ret = kprobe_add_area_blacklist((unsigned long)__kprobes_text_start,
2600 					(unsigned long)__kprobes_text_end);
2601 	if (ret)
2602 		return ret;
2603 
2604 	/* Symbols in 'noinstr' section are blacklisted */
2605 	ret = kprobe_add_area_blacklist((unsigned long)__noinstr_text_start,
2606 					(unsigned long)__noinstr_text_end);
2607 
2608 	return ret ? : arch_populate_kprobe_blacklist();
2609 }
2610 
2611 #ifdef CONFIG_MODULES
2612 /* Remove all symbols in given area from kprobe blacklist */
2613 static void kprobe_remove_area_blacklist(unsigned long start, unsigned long end)
2614 {
2615 	struct kprobe_blacklist_entry *ent, *n;
2616 
2617 	list_for_each_entry_safe(ent, n, &kprobe_blacklist, list) {
2618 		if (ent->start_addr < start || ent->start_addr >= end)
2619 			continue;
2620 		list_del_rcu(&ent->list);
2621 		kfree_rcu(ent, rcu);
2622 	}
2623 }
2624 
2625 static void kprobe_remove_ksym_blacklist(unsigned long entry)
2626 {
2627 	kprobe_remove_area_blacklist(entry, entry + 1);
2628 }
2629 
2630 static void add_module_kprobe_blacklist(struct module *mod)
2631 {
2632 	unsigned long start, end;
2633 	int i;
2634 
2635 	if (mod->kprobe_blacklist) {
2636 		for (i = 0; i < mod->num_kprobe_blacklist; i++)
2637 			kprobe_add_ksym_blacklist(mod->kprobe_blacklist[i]);
2638 	}
2639 
2640 	start = (unsigned long)mod->kprobes_text_start;
2641 	if (start) {
2642 		end = start + mod->kprobes_text_size;
2643 		kprobe_add_area_blacklist(start, end);
2644 	}
2645 
2646 	start = (unsigned long)mod->noinstr_text_start;
2647 	if (start) {
2648 		end = start + mod->noinstr_text_size;
2649 		kprobe_add_area_blacklist(start, end);
2650 	}
2651 }
2652 
2653 static void remove_module_kprobe_blacklist(struct module *mod)
2654 {
2655 	unsigned long start, end;
2656 	int i;
2657 
2658 	if (mod->kprobe_blacklist) {
2659 		for (i = 0; i < mod->num_kprobe_blacklist; i++)
2660 			kprobe_remove_ksym_blacklist(mod->kprobe_blacklist[i]);
2661 	}
2662 
2663 	start = (unsigned long)mod->kprobes_text_start;
2664 	if (start) {
2665 		end = start + mod->kprobes_text_size;
2666 		kprobe_remove_area_blacklist(start, end);
2667 	}
2668 
2669 	start = (unsigned long)mod->noinstr_text_start;
2670 	if (start) {
2671 		end = start + mod->noinstr_text_size;
2672 		kprobe_remove_area_blacklist(start, end);
2673 	}
2674 }
2675 
2676 /* Module notifier call back, checking kprobes on the module */
2677 static int kprobes_module_callback(struct notifier_block *nb,
2678 				   unsigned long val, void *data)
2679 {
2680 	struct module *mod = data;
2681 	struct hlist_head *head;
2682 	struct kprobe *p;
2683 	unsigned int i;
2684 	int checkcore = (val == MODULE_STATE_GOING);
2685 
2686 	guard(mutex)(&kprobe_mutex);
2687 
2688 	if (val == MODULE_STATE_COMING)
2689 		add_module_kprobe_blacklist(mod);
2690 
2691 	if (val != MODULE_STATE_GOING && val != MODULE_STATE_LIVE)
2692 		return NOTIFY_DONE;
2693 
2694 	/*
2695 	 * When 'MODULE_STATE_GOING' was notified, both of module '.text' and
2696 	 * '.init.text' sections would be freed. When 'MODULE_STATE_LIVE' was
2697 	 * notified, only '.init.text' section would be freed. We need to
2698 	 * disable kprobes which have been inserted in the sections.
2699 	 */
2700 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
2701 		head = &kprobe_table[i];
2702 		hlist_for_each_entry(p, head, hlist)
2703 			if (within_module_init((unsigned long)p->addr, mod) ||
2704 			    (checkcore &&
2705 			     within_module_core((unsigned long)p->addr, mod))) {
2706 				/*
2707 				 * The vaddr this probe is installed will soon
2708 				 * be vfreed buy not synced to disk. Hence,
2709 				 * disarming the breakpoint isn't needed.
2710 				 *
2711 				 * Note, this will also move any optimized probes
2712 				 * that are pending to be removed from their
2713 				 * corresponding lists to the 'freeing_list' and
2714 				 * will not be touched by the delayed
2715 				 * kprobe_optimizer() work handler.
2716 				 */
2717 				kill_kprobe(p);
2718 			}
2719 	}
2720 	if (val == MODULE_STATE_GOING)
2721 		remove_module_kprobe_blacklist(mod);
2722 	return NOTIFY_DONE;
2723 }
2724 
2725 static struct notifier_block kprobe_module_nb = {
2726 	.notifier_call = kprobes_module_callback,
2727 	.priority = 0
2728 };
2729 
2730 static int kprobe_register_module_notifier(void)
2731 {
2732 	return register_module_notifier(&kprobe_module_nb);
2733 }
2734 #else
2735 static int kprobe_register_module_notifier(void)
2736 {
2737 	return 0;
2738 }
2739 #endif /* CONFIG_MODULES */
2740 
2741 void kprobe_free_init_mem(void)
2742 {
2743 	void *start = (void *)(&__init_begin);
2744 	void *end = (void *)(&__init_end);
2745 	struct hlist_head *head;
2746 	struct kprobe *p;
2747 	int i;
2748 
2749 	guard(mutex)(&kprobe_mutex);
2750 
2751 	/* Kill all kprobes on initmem because the target code has been freed. */
2752 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
2753 		head = &kprobe_table[i];
2754 		hlist_for_each_entry(p, head, hlist) {
2755 			if (start <= (void *)p->addr && (void *)p->addr < end)
2756 				kill_kprobe(p);
2757 		}
2758 	}
2759 }
2760 
2761 static int __init init_kprobes(void)
2762 {
2763 	int i, err;
2764 
2765 	/* FIXME allocate the probe table, currently defined statically */
2766 	/* initialize all list heads */
2767 	for (i = 0; i < KPROBE_TABLE_SIZE; i++)
2768 		INIT_HLIST_HEAD(&kprobe_table[i]);
2769 
2770 	err = populate_kprobe_blacklist(__start_kprobe_blacklist,
2771 					__stop_kprobe_blacklist);
2772 	if (err)
2773 		pr_err("Failed to populate blacklist (error %d), kprobes not restricted, be careful using them!\n", err);
2774 
2775 	if (kretprobe_blacklist_size) {
2776 		/* lookup the function address from its name */
2777 		for (i = 0; kretprobe_blacklist[i].name != NULL; i++) {
2778 			kretprobe_blacklist[i].addr =
2779 				kprobe_lookup_name(kretprobe_blacklist[i].name, 0);
2780 			if (!kretprobe_blacklist[i].addr)
2781 				pr_err("Failed to lookup symbol '%s' for kretprobe blacklist. Maybe the target function is removed or renamed.\n",
2782 				       kretprobe_blacklist[i].name);
2783 		}
2784 	}
2785 
2786 	/* By default, kprobes are armed */
2787 	kprobes_all_disarmed = false;
2788 
2789 	/* Initialize the optimization infrastructure */
2790 	init_optprobe();
2791 
2792 	err = arch_init_kprobes();
2793 	if (!err)
2794 		err = register_die_notifier(&kprobe_exceptions_nb);
2795 	if (!err)
2796 		err = kprobe_register_module_notifier();
2797 
2798 	kprobes_initialized = (err == 0);
2799 	kprobe_sysctls_init();
2800 	return err;
2801 }
2802 early_initcall(init_kprobes);
2803 
2804 #if defined(CONFIG_OPTPROBES)
2805 static int __init init_optprobes(void)
2806 {
2807 	/*
2808 	 * Enable kprobe optimization - this kicks the optimizer which
2809 	 * depends on synchronize_rcu_tasks() and ksoftirqd, that is
2810 	 * not spawned in early initcall. So delay the optimization.
2811 	 */
2812 	optimize_all_kprobes();
2813 
2814 	return 0;
2815 }
2816 subsys_initcall(init_optprobes);
2817 #endif
2818 
2819 #ifdef CONFIG_DEBUG_FS
2820 static void report_probe(struct seq_file *pi, struct kprobe *p,
2821 		const char *sym, int offset, char *modname, struct kprobe *pp)
2822 {
2823 	char *kprobe_type;
2824 	void *addr = p->addr;
2825 
2826 	if (p->pre_handler == pre_handler_kretprobe)
2827 		kprobe_type = "r";
2828 	else
2829 		kprobe_type = "k";
2830 
2831 	if (!kallsyms_show_value(pi->file->f_cred))
2832 		addr = NULL;
2833 
2834 	if (sym)
2835 		seq_printf(pi, "%px  %s  %s+0x%x  %s ",
2836 			addr, kprobe_type, sym, offset,
2837 			(modname ? modname : " "));
2838 	else	/* try to use %pS */
2839 		seq_printf(pi, "%px  %s  %pS ",
2840 			addr, kprobe_type, p->addr);
2841 
2842 	if (!pp)
2843 		pp = p;
2844 	seq_printf(pi, "%s%s%s%s\n",
2845 		(kprobe_gone(p) ? "[GONE]" : ""),
2846 		((kprobe_disabled(p) && !kprobe_gone(p)) ?  "[DISABLED]" : ""),
2847 		(kprobe_optimized(pp) ? "[OPTIMIZED]" : ""),
2848 		(kprobe_ftrace(pp) ? "[FTRACE]" : ""));
2849 }
2850 
2851 static void *kprobe_seq_start(struct seq_file *f, loff_t *pos)
2852 {
2853 	return (*pos < KPROBE_TABLE_SIZE) ? pos : NULL;
2854 }
2855 
2856 static void *kprobe_seq_next(struct seq_file *f, void *v, loff_t *pos)
2857 {
2858 	(*pos)++;
2859 	if (*pos >= KPROBE_TABLE_SIZE)
2860 		return NULL;
2861 	return pos;
2862 }
2863 
2864 static void kprobe_seq_stop(struct seq_file *f, void *v)
2865 {
2866 	/* Nothing to do */
2867 }
2868 
2869 static int show_kprobe_addr(struct seq_file *pi, void *v)
2870 {
2871 	struct hlist_head *head;
2872 	struct kprobe *p, *kp;
2873 	const char *sym;
2874 	unsigned int i = *(loff_t *) v;
2875 	unsigned long offset = 0;
2876 	char *modname, namebuf[KSYM_NAME_LEN];
2877 
2878 	head = &kprobe_table[i];
2879 	preempt_disable();
2880 	hlist_for_each_entry_rcu(p, head, hlist) {
2881 		sym = kallsyms_lookup((unsigned long)p->addr, NULL,
2882 					&offset, &modname, namebuf);
2883 		if (kprobe_aggrprobe(p)) {
2884 			list_for_each_entry_rcu(kp, &p->list, list)
2885 				report_probe(pi, kp, sym, offset, modname, p);
2886 		} else
2887 			report_probe(pi, p, sym, offset, modname, NULL);
2888 	}
2889 	preempt_enable();
2890 	return 0;
2891 }
2892 
2893 static const struct seq_operations kprobes_sops = {
2894 	.start = kprobe_seq_start,
2895 	.next  = kprobe_seq_next,
2896 	.stop  = kprobe_seq_stop,
2897 	.show  = show_kprobe_addr
2898 };
2899 
2900 DEFINE_SEQ_ATTRIBUTE(kprobes);
2901 
2902 /* kprobes/blacklist -- shows which functions can not be probed */
2903 static void *kprobe_blacklist_seq_start(struct seq_file *m, loff_t *pos)
2904 {
2905 	mutex_lock(&kprobe_mutex);
2906 	return seq_list_start(&kprobe_blacklist, *pos);
2907 }
2908 
2909 static void *kprobe_blacklist_seq_next(struct seq_file *m, void *v, loff_t *pos)
2910 {
2911 	return seq_list_next(v, &kprobe_blacklist, pos);
2912 }
2913 
2914 static int kprobe_blacklist_seq_show(struct seq_file *m, void *v)
2915 {
2916 	struct kprobe_blacklist_entry *ent =
2917 		list_entry(v, struct kprobe_blacklist_entry, list);
2918 
2919 	/*
2920 	 * If '/proc/kallsyms' is not showing kernel address, we won't
2921 	 * show them here either.
2922 	 */
2923 	if (!kallsyms_show_value(m->file->f_cred))
2924 		seq_printf(m, "0x%px-0x%px\t%ps\n", NULL, NULL,
2925 			   (void *)ent->start_addr);
2926 	else
2927 		seq_printf(m, "0x%px-0x%px\t%ps\n", (void *)ent->start_addr,
2928 			   (void *)ent->end_addr, (void *)ent->start_addr);
2929 	return 0;
2930 }
2931 
2932 static void kprobe_blacklist_seq_stop(struct seq_file *f, void *v)
2933 {
2934 	mutex_unlock(&kprobe_mutex);
2935 }
2936 
2937 static const struct seq_operations kprobe_blacklist_sops = {
2938 	.start = kprobe_blacklist_seq_start,
2939 	.next  = kprobe_blacklist_seq_next,
2940 	.stop  = kprobe_blacklist_seq_stop,
2941 	.show  = kprobe_blacklist_seq_show,
2942 };
2943 DEFINE_SEQ_ATTRIBUTE(kprobe_blacklist);
2944 
2945 static int arm_all_kprobes(void)
2946 {
2947 	struct hlist_head *head;
2948 	struct kprobe *p;
2949 	unsigned int i, total = 0, errors = 0;
2950 	int err, ret = 0;
2951 
2952 	guard(mutex)(&kprobe_mutex);
2953 
2954 	/* If kprobes are armed, just return */
2955 	if (!kprobes_all_disarmed)
2956 		return 0;
2957 
2958 	/*
2959 	 * optimize_kprobe() called by arm_kprobe() checks
2960 	 * kprobes_all_disarmed, so set kprobes_all_disarmed before
2961 	 * arm_kprobe.
2962 	 */
2963 	kprobes_all_disarmed = false;
2964 	/* Arming kprobes doesn't optimize kprobe itself */
2965 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
2966 		head = &kprobe_table[i];
2967 		/* Arm all kprobes on a best-effort basis */
2968 		hlist_for_each_entry(p, head, hlist) {
2969 			if (!kprobe_disabled(p)) {
2970 				err = arm_kprobe(p);
2971 				if (err)  {
2972 					errors++;
2973 					ret = err;
2974 				}
2975 				total++;
2976 			}
2977 		}
2978 	}
2979 
2980 	if (errors)
2981 		pr_warn("Kprobes globally enabled, but failed to enable %d out of %d probes. Please check which kprobes are kept disabled via debugfs.\n",
2982 			errors, total);
2983 	else
2984 		pr_info("Kprobes globally enabled\n");
2985 
2986 	return ret;
2987 }
2988 
2989 static int disarm_all_kprobes(void)
2990 {
2991 	struct hlist_head *head;
2992 	struct kprobe *p;
2993 	unsigned int i, total = 0, errors = 0;
2994 	int err, ret = 0;
2995 
2996 	guard(mutex)(&kprobe_mutex);
2997 
2998 	/* If kprobes are already disarmed, just return */
2999 	if (kprobes_all_disarmed)
3000 		return 0;
3001 
3002 	kprobes_all_disarmed = true;
3003 
3004 	for (i = 0; i < KPROBE_TABLE_SIZE; i++) {
3005 		head = &kprobe_table[i];
3006 		/* Disarm all kprobes on a best-effort basis */
3007 		hlist_for_each_entry(p, head, hlist) {
3008 			if (!arch_trampoline_kprobe(p) && !kprobe_disabled(p)) {
3009 				err = disarm_kprobe(p, false);
3010 				if (err) {
3011 					errors++;
3012 					ret = err;
3013 				}
3014 				total++;
3015 			}
3016 		}
3017 	}
3018 
3019 	if (errors)
3020 		pr_warn("Kprobes globally disabled, but failed to disable %d out of %d probes. Please check which kprobes are kept enabled via debugfs.\n",
3021 			errors, total);
3022 	else
3023 		pr_info("Kprobes globally disabled\n");
3024 
3025 	/* Wait for disarming all kprobes by optimizer */
3026 	wait_for_kprobe_optimizer_locked();
3027 	return ret;
3028 }
3029 
3030 /*
3031  * XXX: The debugfs bool file interface doesn't allow for callbacks
3032  * when the bool state is switched. We can reuse that facility when
3033  * available
3034  */
3035 static ssize_t read_enabled_file_bool(struct file *file,
3036 	       char __user *user_buf, size_t count, loff_t *ppos)
3037 {
3038 	char buf[3];
3039 
3040 	if (!kprobes_all_disarmed)
3041 		buf[0] = '1';
3042 	else
3043 		buf[0] = '0';
3044 	buf[1] = '\n';
3045 	buf[2] = 0x00;
3046 	return simple_read_from_buffer(user_buf, count, ppos, buf, 2);
3047 }
3048 
3049 static ssize_t write_enabled_file_bool(struct file *file,
3050 	       const char __user *user_buf, size_t count, loff_t *ppos)
3051 {
3052 	bool enable;
3053 	int ret;
3054 
3055 	ret = kstrtobool_from_user(user_buf, count, &enable);
3056 	if (ret)
3057 		return ret;
3058 
3059 	ret = enable ? arm_all_kprobes() : disarm_all_kprobes();
3060 	if (ret)
3061 		return ret;
3062 
3063 	return count;
3064 }
3065 
3066 static const struct file_operations fops_kp = {
3067 	.read =         read_enabled_file_bool,
3068 	.write =        write_enabled_file_bool,
3069 	.llseek =	default_llseek,
3070 };
3071 
3072 static int __init debugfs_kprobe_init(void)
3073 {
3074 	struct dentry *dir;
3075 
3076 	dir = debugfs_create_dir("kprobes", NULL);
3077 
3078 	debugfs_create_file("list", 0400, dir, NULL, &kprobes_fops);
3079 
3080 	debugfs_create_file("enabled", 0600, dir, NULL, &fops_kp);
3081 
3082 	debugfs_create_file("blacklist", 0400, dir, NULL,
3083 			    &kprobe_blacklist_fops);
3084 
3085 	return 0;
3086 }
3087 
3088 late_initcall(debugfs_kprobe_init);
3089 #endif /* CONFIG_DEBUG_FS */
3090