xref: /linux/mm/kfence/core.c (revision 918e25291ce95ef26c288234b088e9d433ecd94e)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * KFENCE guarded object allocator and fault handling.
4  *
5  * Copyright (C) 2020, Google LLC.
6  */
7 
8 #define pr_fmt(fmt) "kfence: " fmt
9 
10 #include <linux/atomic.h>
11 #include <linux/bug.h>
12 #include <linux/debugfs.h>
13 #include <linux/hash.h>
14 #include <linux/irq_work.h>
15 #include <linux/jhash.h>
16 #include <linux/kasan-enabled.h>
17 #include <linux/kcsan-checks.h>
18 #include <linux/kfence.h>
19 #include <linux/kmemleak.h>
20 #include <linux/list.h>
21 #include <linux/lockdep.h>
22 #include <linux/log2.h>
23 #include <linux/memblock.h>
24 #include <linux/moduleparam.h>
25 #include <linux/nodemask.h>
26 #include <linux/notifier.h>
27 #include <linux/panic_notifier.h>
28 #include <linux/random.h>
29 #include <linux/rcupdate.h>
30 #include <linux/reboot.h>
31 #include <linux/sched/clock.h>
32 #include <linux/seq_file.h>
33 #include <linux/slab.h>
34 #include <linux/spinlock.h>
35 #include <linux/string.h>
36 
37 #include <asm/kfence.h>
38 
39 #include "kfence.h"
40 
41 /* Disables KFENCE on the first warning assuming an irrecoverable error. */
42 #define KFENCE_WARN_ON(cond)                                                   \
43 	({                                                                     \
44 		const bool __cond = WARN_ON(cond);                             \
45 		if (unlikely(__cond)) {                                        \
46 			WRITE_ONCE(kfence_enabled, false);                     \
47 			disabled_by_warn = true;                               \
48 		}                                                              \
49 		__cond;                                                        \
50 	})
51 
52 /* === Data ================================================================= */
53 
54 bool kfence_enabled __read_mostly;
55 static bool disabled_by_warn __read_mostly;
56 
57 unsigned long kfence_sample_interval __read_mostly = CONFIG_KFENCE_SAMPLE_INTERVAL;
58 EXPORT_SYMBOL_GPL(kfence_sample_interval); /* Export for test modules. */
59 
60 #ifdef MODULE_PARAM_PREFIX
61 #undef MODULE_PARAM_PREFIX
62 #endif
63 #define MODULE_PARAM_PREFIX "kfence."
64 
65 static int kfence_enable_late(void);
param_set_sample_interval(const char * val,const struct kernel_param * kp)66 static int param_set_sample_interval(const char *val, const struct kernel_param *kp)
67 {
68 	unsigned long num;
69 	int ret = kstrtoul(val, 0, &num);
70 
71 	if (ret < 0)
72 		return ret;
73 
74 	/* Using 0 to indicate KFENCE is disabled. */
75 	if (!num && READ_ONCE(kfence_enabled)) {
76 		pr_info("disabled\n");
77 		WRITE_ONCE(kfence_enabled, false);
78 	}
79 
80 	if (num && kasan_hw_tags_enabled()) {
81 		pr_info("disabled as KASAN HW tags are enabled\n");
82 		return -EINVAL;
83 	}
84 
85 	*((unsigned long *)kp->arg) = num;
86 
87 	if (num && !READ_ONCE(kfence_enabled) && system_state != SYSTEM_BOOTING)
88 		return disabled_by_warn ? -EINVAL : kfence_enable_late();
89 	return 0;
90 }
91 
param_get_sample_interval(char * buffer,const struct kernel_param * kp)92 static int param_get_sample_interval(char *buffer, const struct kernel_param *kp)
93 {
94 	if (!READ_ONCE(kfence_enabled))
95 		return sprintf(buffer, "0\n");
96 
97 	return param_get_ulong(buffer, kp);
98 }
99 
100 static const struct kernel_param_ops sample_interval_param_ops = {
101 	.set = param_set_sample_interval,
102 	.get = param_get_sample_interval,
103 };
104 module_param_cb(sample_interval, &sample_interval_param_ops, &kfence_sample_interval, 0600);
105 
106 /* Pool usage% threshold when currently covered allocations are skipped. */
107 static unsigned long kfence_skip_covered_thresh __read_mostly = 75;
108 module_param_named(skip_covered_thresh, kfence_skip_covered_thresh, ulong, 0644);
109 
110 /* Allocation burst count: number of excess KFENCE allocations per sample. */
111 static unsigned int kfence_burst __read_mostly;
112 module_param_named(burst, kfence_burst, uint, 0644);
113 
114 /* If true, use a deferrable timer. */
115 static bool kfence_deferrable __read_mostly = IS_ENABLED(CONFIG_KFENCE_DEFERRABLE);
116 module_param_named(deferrable, kfence_deferrable, bool, 0444);
117 
118 /* If true, check all canary bytes on panic. */
119 static bool kfence_check_on_panic __read_mostly;
120 module_param_named(check_on_panic, kfence_check_on_panic, bool, 0444);
121 
122 /* The pool of pages used for guard pages and objects. */
123 char *__kfence_pool __read_mostly;
124 EXPORT_SYMBOL(__kfence_pool); /* Export for test modules. */
125 
126 /*
127  * Per-object metadata, with one-to-one mapping of object metadata to
128  * backing pages (in __kfence_pool).
129  */
130 static_assert(CONFIG_KFENCE_NUM_OBJECTS > 0);
131 struct kfence_metadata *kfence_metadata __read_mostly;
132 
133 /*
134  * If kfence_metadata is not NULL, it may be accessed by kfence_shutdown_cache().
135  * So introduce kfence_metadata_init to initialize metadata, and then make
136  * kfence_metadata visible after initialization is successful. This prevents
137  * potential UAF or access to uninitialized metadata.
138  */
139 static struct kfence_metadata *kfence_metadata_init __read_mostly;
140 
141 /* Freelist with available objects. */
142 DEFINE_RAW_SPINLOCK(kfence_freelist_lock); /* Lock protecting freelist. */
143 static struct list_head kfence_freelist __guarded_by(&kfence_freelist_lock) = LIST_HEAD_INIT(kfence_freelist);
144 
145 /*
146  * The static key to set up a KFENCE allocation; or if static keys are not used
147  * to gate allocations, to avoid a load and compare if KFENCE is disabled.
148  */
149 DEFINE_STATIC_KEY_FALSE(kfence_allocation_key);
150 
151 /* Gates the allocation, ensuring only one succeeds in a given period. */
152 atomic_t kfence_allocation_gate = ATOMIC_INIT(1);
153 
154 /*
155  * A Counting Bloom filter of allocation coverage: limits currently covered
156  * allocations of the same source filling up the pool.
157  *
158  * Assuming a range of 15%-85% unique allocations in the pool at any point in
159  * time, the below parameters provide a probablity of 0.02-0.33 for false
160  * positive hits respectively:
161  *
162  *	P(alloc_traces) = (1 - e^(-HNUM * (alloc_traces / SIZE)) ^ HNUM
163  */
164 #define ALLOC_COVERED_HNUM	2
165 #define ALLOC_COVERED_ORDER	(const_ilog2(CONFIG_KFENCE_NUM_OBJECTS) + 2)
166 #define ALLOC_COVERED_SIZE	(1 << ALLOC_COVERED_ORDER)
167 #define ALLOC_COVERED_HNEXT(h)	hash_32(h, ALLOC_COVERED_ORDER)
168 #define ALLOC_COVERED_MASK	(ALLOC_COVERED_SIZE - 1)
169 static atomic_t alloc_covered[ALLOC_COVERED_SIZE];
170 
171 /* Stack depth used to determine uniqueness of an allocation. */
172 #define UNIQUE_ALLOC_STACK_DEPTH ((size_t)8)
173 
174 /*
175  * Randomness for stack hashes, making the same collisions across reboots and
176  * different machines less likely.
177  */
178 static u32 stack_hash_seed __ro_after_init;
179 
180 /* Statistics counters for debugfs. */
181 enum kfence_counter_id {
182 	KFENCE_COUNTER_ALLOCATED,
183 	KFENCE_COUNTER_ALLOCS,
184 	KFENCE_COUNTER_FREES,
185 	KFENCE_COUNTER_ZOMBIES,
186 	KFENCE_COUNTER_BUGS,
187 	KFENCE_COUNTER_SKIP_INCOMPAT,
188 	KFENCE_COUNTER_SKIP_CAPACITY,
189 	KFENCE_COUNTER_SKIP_COVERED,
190 	KFENCE_COUNTER_COUNT,
191 };
192 static atomic_long_t counters[KFENCE_COUNTER_COUNT];
193 static const char *const counter_names[] = {
194 	[KFENCE_COUNTER_ALLOCATED]	= "currently allocated",
195 	[KFENCE_COUNTER_ALLOCS]		= "total allocations",
196 	[KFENCE_COUNTER_FREES]		= "total frees",
197 	[KFENCE_COUNTER_ZOMBIES]	= "zombie allocations",
198 	[KFENCE_COUNTER_BUGS]		= "total bugs",
199 	[KFENCE_COUNTER_SKIP_INCOMPAT]	= "skipped allocations (incompatible)",
200 	[KFENCE_COUNTER_SKIP_CAPACITY]	= "skipped allocations (capacity)",
201 	[KFENCE_COUNTER_SKIP_COVERED]	= "skipped allocations (covered)",
202 };
203 static_assert(ARRAY_SIZE(counter_names) == KFENCE_COUNTER_COUNT);
204 
205 /* === Internals ============================================================ */
206 
should_skip_covered(void)207 static inline bool should_skip_covered(void)
208 {
209 	unsigned long thresh = (CONFIG_KFENCE_NUM_OBJECTS * kfence_skip_covered_thresh) / 100;
210 
211 	return atomic_long_read(&counters[KFENCE_COUNTER_ALLOCATED]) > thresh;
212 }
213 
get_alloc_stack_hash(unsigned long * stack_entries,size_t num_entries)214 static u32 get_alloc_stack_hash(unsigned long *stack_entries, size_t num_entries)
215 {
216 	num_entries = min(num_entries, UNIQUE_ALLOC_STACK_DEPTH);
217 	num_entries = filter_irq_stacks(stack_entries, num_entries);
218 	return jhash(stack_entries, num_entries * sizeof(stack_entries[0]), stack_hash_seed);
219 }
220 
221 /*
222  * Adds (or subtracts) count @val for allocation stack trace hash
223  * @alloc_stack_hash from Counting Bloom filter.
224  */
alloc_covered_add(u32 alloc_stack_hash,int val)225 static void alloc_covered_add(u32 alloc_stack_hash, int val)
226 {
227 	int i;
228 
229 	for (i = 0; i < ALLOC_COVERED_HNUM; i++) {
230 		atomic_add(val, &alloc_covered[alloc_stack_hash & ALLOC_COVERED_MASK]);
231 		alloc_stack_hash = ALLOC_COVERED_HNEXT(alloc_stack_hash);
232 	}
233 }
234 
235 /*
236  * Returns true if the allocation stack trace hash @alloc_stack_hash is
237  * currently contained (non-zero count) in Counting Bloom filter.
238  */
alloc_covered_contains(u32 alloc_stack_hash)239 static bool alloc_covered_contains(u32 alloc_stack_hash)
240 {
241 	int i;
242 
243 	for (i = 0; i < ALLOC_COVERED_HNUM; i++) {
244 		if (!atomic_read(&alloc_covered[alloc_stack_hash & ALLOC_COVERED_MASK]))
245 			return false;
246 		alloc_stack_hash = ALLOC_COVERED_HNEXT(alloc_stack_hash);
247 	}
248 
249 	return true;
250 }
251 
kfence_protect(unsigned long addr)252 static bool kfence_protect(unsigned long addr)
253 {
254 	return !KFENCE_WARN_ON(!kfence_protect_page(ALIGN_DOWN(addr, PAGE_SIZE), true));
255 }
256 
kfence_unprotect(unsigned long addr)257 static bool kfence_unprotect(unsigned long addr)
258 {
259 	return !KFENCE_WARN_ON(!kfence_protect_page(ALIGN_DOWN(addr, PAGE_SIZE), false));
260 }
261 
metadata_to_pageaddr(const struct kfence_metadata * meta)262 static inline unsigned long metadata_to_pageaddr(const struct kfence_metadata *meta)
263 	__must_hold(&meta->lock)
264 {
265 	unsigned long offset = (meta - kfence_metadata + 1) * PAGE_SIZE * 2;
266 	unsigned long pageaddr = (unsigned long)&__kfence_pool[offset];
267 
268 	/* The checks do not affect performance; only called from slow-paths. */
269 
270 	/* Only call with a pointer into kfence_metadata. */
271 	if (KFENCE_WARN_ON(meta < kfence_metadata ||
272 			   meta >= kfence_metadata + CONFIG_KFENCE_NUM_OBJECTS))
273 		return 0;
274 
275 	/*
276 	 * This metadata object only ever maps to 1 page; verify that the stored
277 	 * address is in the expected range.
278 	 */
279 	if (KFENCE_WARN_ON(ALIGN_DOWN(meta->addr, PAGE_SIZE) != pageaddr))
280 		return 0;
281 
282 	return pageaddr;
283 }
284 
kfence_obj_allocated(const struct kfence_metadata * meta)285 static inline bool kfence_obj_allocated(const struct kfence_metadata *meta)
286 {
287 	enum kfence_object_state state = READ_ONCE(meta->state);
288 
289 	return state == KFENCE_OBJECT_ALLOCATED || state == KFENCE_OBJECT_RCU_FREEING;
290 }
291 
292 /*
293  * Update the object's metadata state, including updating the alloc/free stacks
294  * depending on the state transition.
295  */
296 static noinline void
metadata_update_state(struct kfence_metadata * meta,enum kfence_object_state next,unsigned long * stack_entries,size_t num_stack_entries)297 metadata_update_state(struct kfence_metadata *meta, enum kfence_object_state next,
298 		      unsigned long *stack_entries, size_t num_stack_entries)
299 	__must_hold(&meta->lock)
300 {
301 	struct kfence_track *track =
302 		next == KFENCE_OBJECT_ALLOCATED ? &meta->alloc_track : &meta->free_track;
303 
304 	lockdep_assert_held(&meta->lock);
305 
306 	/* Stack has been saved when calling rcu, skip. */
307 	if (READ_ONCE(meta->state) == KFENCE_OBJECT_RCU_FREEING)
308 		goto out;
309 
310 	if (stack_entries) {
311 		memcpy(track->stack_entries, stack_entries,
312 		       num_stack_entries * sizeof(stack_entries[0]));
313 	} else {
314 		/*
315 		 * Skip over 1 (this) functions; noinline ensures we do not
316 		 * accidentally skip over the caller by never inlining.
317 		 */
318 		num_stack_entries = stack_trace_save(track->stack_entries, KFENCE_STACK_DEPTH, 1);
319 	}
320 	track->num_stack_entries = num_stack_entries;
321 	track->pid = task_pid_nr(current);
322 	track->cpu = raw_smp_processor_id();
323 	track->ts_nsec = local_clock(); /* Same source as printk timestamps. */
324 
325 out:
326 	/*
327 	 * Pairs with READ_ONCE() in
328 	 *	kfence_shutdown_cache(),
329 	 *	kfence_handle_page_fault().
330 	 */
331 	WRITE_ONCE(meta->state, next);
332 }
333 
334 #ifdef CONFIG_KMSAN
335 #define check_canary_attributes noinline __no_kmsan_checks
336 #else
337 #define check_canary_attributes inline
338 #endif
339 
340 /* Check canary byte at @addr. */
check_canary_byte(u8 * addr)341 static check_canary_attributes bool check_canary_byte(u8 *addr)
342 {
343 	struct kfence_metadata *meta;
344 	enum kfence_fault fault;
345 	unsigned long flags;
346 
347 	if (likely(*addr == KFENCE_CANARY_PATTERN_U8(addr)))
348 		return true;
349 
350 	atomic_long_inc(&counters[KFENCE_COUNTER_BUGS]);
351 
352 	meta = addr_to_metadata((unsigned long)addr);
353 	raw_spin_lock_irqsave(&meta->lock, flags);
354 	fault = kfence_report_error((unsigned long)addr, false, NULL, meta, KFENCE_ERROR_CORRUPTION);
355 	raw_spin_unlock_irqrestore(&meta->lock, flags);
356 	kfence_handle_fault(fault);
357 
358 	return false;
359 }
360 
set_canary(const struct kfence_metadata * meta)361 static inline void set_canary(const struct kfence_metadata *meta)
362 {
363 	const unsigned long pageaddr = ALIGN_DOWN(meta->addr, PAGE_SIZE);
364 	unsigned long addr = pageaddr;
365 
366 	/*
367 	 * The canary may be written to part of the object memory, but it does
368 	 * not affect it. The user should initialize the object before using it.
369 	 */
370 	for (; addr < meta->addr; addr += sizeof(u64))
371 		*((u64 *)addr) = KFENCE_CANARY_PATTERN_U64;
372 
373 	addr = ALIGN_DOWN(meta->addr + meta->size, sizeof(u64));
374 	for (; addr - pageaddr < PAGE_SIZE; addr += sizeof(u64))
375 		*((u64 *)addr) = KFENCE_CANARY_PATTERN_U64;
376 }
377 
378 static check_canary_attributes void
check_canary(const struct kfence_metadata * meta)379 check_canary(const struct kfence_metadata *meta)
380 {
381 	const unsigned long pageaddr = ALIGN_DOWN(meta->addr, PAGE_SIZE);
382 	unsigned long addr = pageaddr;
383 
384 	/*
385 	 * We'll iterate over each canary byte per-side until a corrupted byte
386 	 * is found. However, we'll still iterate over the canary bytes to the
387 	 * right of the object even if there was an error in the canary bytes to
388 	 * the left of the object. Specifically, if check_canary_byte()
389 	 * generates an error, showing both sides might give more clues as to
390 	 * what the error is about when displaying which bytes were corrupted.
391 	 */
392 
393 	/* Apply to left of object. */
394 	for (; meta->addr - addr >= sizeof(u64); addr += sizeof(u64)) {
395 		if (unlikely(*((u64 *)addr) != KFENCE_CANARY_PATTERN_U64))
396 			break;
397 	}
398 
399 	/*
400 	 * If the canary is corrupted in a certain 64 bytes, or the canary
401 	 * memory cannot be completely covered by multiple consecutive 64 bytes,
402 	 * it needs to be checked one by one.
403 	 */
404 	for (; addr < meta->addr; addr++) {
405 		if (unlikely(!check_canary_byte((u8 *)addr)))
406 			break;
407 	}
408 
409 	/* Apply to right of object. */
410 	for (addr = meta->addr + meta->size; addr % sizeof(u64) != 0; addr++) {
411 		if (unlikely(!check_canary_byte((u8 *)addr)))
412 			return;
413 	}
414 	for (; addr - pageaddr < PAGE_SIZE; addr += sizeof(u64)) {
415 		if (unlikely(*((u64 *)addr) != KFENCE_CANARY_PATTERN_U64)) {
416 
417 			for (; addr - pageaddr < PAGE_SIZE; addr++) {
418 				if (!check_canary_byte((u8 *)addr))
419 					return;
420 			}
421 		}
422 	}
423 }
424 
kfence_guarded_alloc(struct kmem_cache * cache,size_t size,gfp_t gfp,unsigned long * stack_entries,size_t num_stack_entries,u32 alloc_stack_hash)425 static void *kfence_guarded_alloc(struct kmem_cache *cache, size_t size, gfp_t gfp,
426 				  unsigned long *stack_entries, size_t num_stack_entries,
427 				  u32 alloc_stack_hash)
428 {
429 	struct kfence_metadata *meta = NULL;
430 	unsigned long flags;
431 	struct slab *slab;
432 	void *addr;
433 	const bool random_right_allocate = get_random_u32_below(2);
434 	const bool random_fault = CONFIG_KFENCE_STRESS_TEST_FAULTS &&
435 				  !get_random_u32_below(CONFIG_KFENCE_STRESS_TEST_FAULTS);
436 
437 	/* Try to obtain a free object. */
438 	raw_spin_lock_irqsave(&kfence_freelist_lock, flags);
439 	if (!list_empty(&kfence_freelist)) {
440 		meta = list_entry(kfence_freelist.next, struct kfence_metadata, list);
441 		list_del_init(&meta->list);
442 	}
443 	raw_spin_unlock_irqrestore(&kfence_freelist_lock, flags);
444 	if (!meta) {
445 		atomic_long_inc(&counters[KFENCE_COUNTER_SKIP_CAPACITY]);
446 		return NULL;
447 	}
448 
449 	if (unlikely(!raw_spin_trylock_irqsave(&meta->lock, flags))) {
450 		/*
451 		 * This is extremely unlikely -- we are reporting on a
452 		 * use-after-free, which locked meta->lock, and the reporting
453 		 * code via printk calls kmalloc() which ends up in
454 		 * kfence_alloc() and tries to grab the same object that we're
455 		 * reporting on. While it has never been observed, lockdep does
456 		 * report that there is a possibility of deadlock. Fix it by
457 		 * using trylock and bailing out gracefully.
458 		 */
459 		raw_spin_lock_irqsave(&kfence_freelist_lock, flags);
460 		/* Put the object back on the freelist. */
461 		list_add_tail(&meta->list, &kfence_freelist);
462 		raw_spin_unlock_irqrestore(&kfence_freelist_lock, flags);
463 
464 		return NULL;
465 	}
466 
467 	meta->addr = metadata_to_pageaddr(meta);
468 	/* Unprotect if we're reusing this page. */
469 	if (meta->state == KFENCE_OBJECT_FREED)
470 		kfence_unprotect(meta->addr);
471 
472 	/*
473 	 * Note: for allocations made before RNG initialization, will always
474 	 * return zero. We still benefit from enabling KFENCE as early as
475 	 * possible, even when the RNG is not yet available, as this will allow
476 	 * KFENCE to detect bugs due to earlier allocations. The only downside
477 	 * is that the out-of-bounds accesses detected are deterministic for
478 	 * such allocations.
479 	 */
480 	if (random_right_allocate) {
481 		/* Allocate on the "right" side, re-calculate address. */
482 		meta->addr += PAGE_SIZE - size;
483 		meta->addr = ALIGN_DOWN(meta->addr, cache->align);
484 	}
485 
486 	addr = (void *)meta->addr;
487 
488 	/* Update remaining metadata. */
489 	metadata_update_state(meta, KFENCE_OBJECT_ALLOCATED, stack_entries, num_stack_entries);
490 	/* Pairs with READ_ONCE() in kfence_shutdown_cache(). */
491 	WRITE_ONCE(meta->cache, cache);
492 	meta->size = size;
493 	meta->alloc_stack_hash = alloc_stack_hash;
494 	raw_spin_unlock_irqrestore(&meta->lock, flags);
495 
496 	alloc_covered_add(alloc_stack_hash, 1);
497 
498 	/* Set required slab fields. */
499 	slab = virt_to_slab(addr);
500 	slab->slab_cache = cache;
501 	slab->objects = 1;
502 
503 	/* Memory initialization. */
504 	set_canary(meta);
505 
506 	/*
507 	 * We check slab_want_init_on_alloc() ourselves, rather than letting
508 	 * slab do the initialization, as otherwise it might overwrite KFENCE's
509 	 * redzone.
510 	 */
511 	if (unlikely(slab_want_init_on_alloc(gfp, cache)))
512 		memzero_explicit(addr, size);
513 	if (cache->ctor)
514 		cache->ctor(addr);
515 
516 	if (random_fault)
517 		kfence_protect(meta->addr); /* Random "faults" by protecting the object. */
518 
519 	atomic_long_inc(&counters[KFENCE_COUNTER_ALLOCATED]);
520 	atomic_long_inc(&counters[KFENCE_COUNTER_ALLOCS]);
521 
522 	return addr;
523 }
524 
kfence_guarded_free(void * addr,struct kfence_metadata * meta,bool zombie)525 static void kfence_guarded_free(void *addr, struct kfence_metadata *meta, bool zombie)
526 {
527 	struct kcsan_scoped_access assert_page_exclusive;
528 	u32 alloc_stack_hash;
529 	unsigned long flags;
530 	bool init;
531 
532 	raw_spin_lock_irqsave(&meta->lock, flags);
533 
534 	if (!kfence_obj_allocated(meta) || meta->addr != (unsigned long)addr) {
535 		enum kfence_fault fault;
536 
537 		/* Invalid or double-free, bail out. */
538 		atomic_long_inc(&counters[KFENCE_COUNTER_BUGS]);
539 		fault = kfence_report_error((unsigned long)addr, false, NULL, meta,
540 					    KFENCE_ERROR_INVALID_FREE);
541 		raw_spin_unlock_irqrestore(&meta->lock, flags);
542 		kfence_handle_fault(fault);
543 		return;
544 	}
545 
546 	/* Detect racy use-after-free, or incorrect reallocation of this page by KFENCE. */
547 	kcsan_begin_scoped_access((void *)ALIGN_DOWN((unsigned long)addr, PAGE_SIZE), PAGE_SIZE,
548 				  KCSAN_ACCESS_SCOPED | KCSAN_ACCESS_WRITE | KCSAN_ACCESS_ASSERT,
549 				  &assert_page_exclusive);
550 
551 	if (CONFIG_KFENCE_STRESS_TEST_FAULTS)
552 		kfence_unprotect((unsigned long)addr); /* To check canary bytes. */
553 
554 	/* Restore page protection if there was an OOB access. */
555 	if (meta->unprotected_page) {
556 		memzero_explicit((void *)ALIGN_DOWN(meta->unprotected_page, PAGE_SIZE), PAGE_SIZE);
557 		kfence_protect(meta->unprotected_page);
558 		meta->unprotected_page = 0;
559 	}
560 
561 	/* Mark the object as freed. */
562 	metadata_update_state(meta, KFENCE_OBJECT_FREED, NULL, 0);
563 	init = slab_want_init_on_free(meta->cache);
564 	alloc_stack_hash = meta->alloc_stack_hash;
565 	raw_spin_unlock_irqrestore(&meta->lock, flags);
566 
567 	alloc_covered_add(alloc_stack_hash, -1);
568 
569 	/* Check canary bytes for memory corruption. */
570 	check_canary(meta);
571 
572 	/*
573 	 * Clear memory if init-on-free is set. While we protect the page, the
574 	 * data is still there, and after a use-after-free is detected, we
575 	 * unprotect the page, so the data is still accessible.
576 	 */
577 	if (!zombie && unlikely(init))
578 		memzero_explicit(addr, meta->size);
579 
580 	/* Protect to detect use-after-frees. */
581 	kfence_protect((unsigned long)addr);
582 
583 	kcsan_end_scoped_access(&assert_page_exclusive);
584 	if (!zombie) {
585 		/* Add it to the tail of the freelist for reuse. */
586 		raw_spin_lock_irqsave(&kfence_freelist_lock, flags);
587 		KFENCE_WARN_ON(!list_empty(&meta->list));
588 		list_add_tail(&meta->list, &kfence_freelist);
589 		raw_spin_unlock_irqrestore(&kfence_freelist_lock, flags);
590 
591 		atomic_long_dec(&counters[KFENCE_COUNTER_ALLOCATED]);
592 		atomic_long_inc(&counters[KFENCE_COUNTER_FREES]);
593 	} else {
594 		/* See kfence_shutdown_cache(). */
595 		atomic_long_inc(&counters[KFENCE_COUNTER_ZOMBIES]);
596 	}
597 }
598 
rcu_guarded_free(struct rcu_head * h)599 static void rcu_guarded_free(struct rcu_head *h)
600 {
601 	struct kfence_metadata *meta = container_of(h, struct kfence_metadata, rcu_head);
602 
603 	kfence_guarded_free((void *)meta->addr, meta, false);
604 }
605 
606 /*
607  * Initialization of the KFENCE pool after its allocation.
608  * Returns 0 on success; otherwise returns the address up to
609  * which partial initialization succeeded.
610  */
kfence_init_pool(void)611 static unsigned long kfence_init_pool(void)
612 	__context_unsafe(/* constructor */)
613 {
614 	unsigned long addr, start_pfn;
615 	int i, rand;
616 
617 	if (!arch_kfence_init_pool())
618 		return (unsigned long)__kfence_pool;
619 
620 	addr = (unsigned long)__kfence_pool;
621 	start_pfn = PHYS_PFN(virt_to_phys(__kfence_pool));
622 
623 	/*
624 	 * Set up object pages: they must have PGTY_slab set to avoid freeing
625 	 * them as real pages.
626 	 *
627 	 * We also want to avoid inserting kfence_free() in the kfree()
628 	 * fast-path in SLUB, and therefore need to ensure kfree() correctly
629 	 * enters __slab_free() slow-path.
630 	 */
631 	for (i = 0; i < KFENCE_POOL_SIZE / PAGE_SIZE; i++) {
632 		struct page *page;
633 
634 		if (!i || (i % 2))
635 			continue;
636 
637 		page = pfn_to_page(start_pfn + i);
638 		__SetPageSlab(page);
639 	}
640 
641 	/*
642 	 * Protect the first 2 pages. The first page is mostly unnecessary, and
643 	 * merely serves as an extended guard page. However, adding one
644 	 * additional page in the beginning gives us an even number of pages,
645 	 * which simplifies the mapping of address to metadata index.
646 	 */
647 	for (i = 0; i < 2; i++) {
648 		if (unlikely(!kfence_protect(addr)))
649 			return addr;
650 
651 		addr += PAGE_SIZE;
652 	}
653 
654 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
655 		struct kfence_metadata *meta = &kfence_metadata_init[i];
656 
657 		/* Initialize metadata. */
658 		INIT_LIST_HEAD(&meta->list);
659 		raw_spin_lock_init(&meta->lock);
660 		meta->state = KFENCE_OBJECT_UNUSED;
661 		/* Use addr to randomize the freelist. */
662 		meta->addr = i;
663 
664 		/* Protect the right redzone. */
665 		if (unlikely(!kfence_protect(addr + 2 * i * PAGE_SIZE + PAGE_SIZE)))
666 			goto reset_slab;
667 	}
668 
669 	for (i = CONFIG_KFENCE_NUM_OBJECTS; i > 0; i--) {
670 		rand = get_random_u32_below(i);
671 		swap(kfence_metadata_init[i - 1].addr, kfence_metadata_init[rand].addr);
672 	}
673 
674 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
675 		struct kfence_metadata *meta_1 = &kfence_metadata_init[i];
676 		struct kfence_metadata *meta_2 = &kfence_metadata_init[meta_1->addr];
677 
678 		list_add_tail(&meta_2->list, &kfence_freelist);
679 	}
680 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
681 		kfence_metadata_init[i].addr = addr;
682 		addr += 2 * PAGE_SIZE;
683 	}
684 
685 	/*
686 	 * Make kfence_metadata visible only when initialization is successful.
687 	 * Otherwise, if the initialization fails and kfence_metadata is freed,
688 	 * it may cause UAF in kfence_shutdown_cache().
689 	 */
690 	smp_store_release(&kfence_metadata, kfence_metadata_init);
691 	return 0;
692 
693 reset_slab:
694 	addr += 2 * i * PAGE_SIZE;
695 	for (i = 0; i < KFENCE_POOL_SIZE / PAGE_SIZE; i++) {
696 		struct page *page;
697 
698 		if (!i || (i % 2))
699 			continue;
700 
701 		page = pfn_to_page(start_pfn + i);
702 		__ClearPageSlab(page);
703 	}
704 
705 	return addr;
706 }
707 
kfence_init_pool_early(void)708 static bool __init kfence_init_pool_early(void)
709 {
710 	unsigned long addr;
711 
712 	if (!__kfence_pool)
713 		return false;
714 
715 	addr = kfence_init_pool();
716 
717 	if (!addr) {
718 		/*
719 		 * The pool is live and will never be deallocated from this point on.
720 		 * Ignore the pool object from the kmemleak phys object tree, as it would
721 		 * otherwise overlap with allocations returned by kfence_alloc(), which
722 		 * are registered with kmemleak through the slab post-alloc hook.
723 		 */
724 		kmemleak_ignore_phys(__pa(__kfence_pool));
725 		return true;
726 	}
727 
728 	/*
729 	 * Only release unprotected pages, and do not try to go back and change
730 	 * page attributes due to risk of failing to do so as well. If changing
731 	 * page attributes for some pages fails, it is very likely that it also
732 	 * fails for the first page, and therefore expect addr==__kfence_pool in
733 	 * most failure cases.
734 	 */
735 	memblock_free((void *)addr, KFENCE_POOL_SIZE - (addr - (unsigned long)__kfence_pool));
736 	__kfence_pool = NULL;
737 
738 	memblock_free(kfence_metadata_init, KFENCE_METADATA_SIZE);
739 	kfence_metadata_init = NULL;
740 
741 	return false;
742 }
743 
744 /* === DebugFS Interface ==================================================== */
745 
stats_show(struct seq_file * seq,void * v)746 static int stats_show(struct seq_file *seq, void *v)
747 {
748 	int i;
749 
750 	seq_printf(seq, "enabled: %i\n", READ_ONCE(kfence_enabled));
751 	for (i = 0; i < KFENCE_COUNTER_COUNT; i++)
752 		seq_printf(seq, "%s: %ld\n", counter_names[i], atomic_long_read(&counters[i]));
753 
754 	return 0;
755 }
756 DEFINE_SHOW_ATTRIBUTE(stats);
757 
758 /*
759  * debugfs seq_file operations for /sys/kernel/debug/kfence/objects.
760  * start_object() and next_object() return the object index + 1, because NULL is used
761  * to stop iteration.
762  */
start_object(struct seq_file * seq,loff_t * pos)763 static void *start_object(struct seq_file *seq, loff_t *pos)
764 {
765 	if (*pos < CONFIG_KFENCE_NUM_OBJECTS)
766 		return (void *)((long)*pos + 1);
767 	return NULL;
768 }
769 
stop_object(struct seq_file * seq,void * v)770 static void stop_object(struct seq_file *seq, void *v)
771 {
772 }
773 
next_object(struct seq_file * seq,void * v,loff_t * pos)774 static void *next_object(struct seq_file *seq, void *v, loff_t *pos)
775 {
776 	++*pos;
777 	if (*pos < CONFIG_KFENCE_NUM_OBJECTS)
778 		return (void *)((long)*pos + 1);
779 	return NULL;
780 }
781 
show_object(struct seq_file * seq,void * v)782 static int show_object(struct seq_file *seq, void *v)
783 {
784 	struct kfence_metadata *meta = &kfence_metadata[(long)v - 1];
785 	unsigned long flags;
786 
787 	raw_spin_lock_irqsave(&meta->lock, flags);
788 	kfence_print_object(seq, meta);
789 	raw_spin_unlock_irqrestore(&meta->lock, flags);
790 	seq_puts(seq, "---------------------------------\n");
791 
792 	return 0;
793 }
794 
795 static const struct seq_operations objects_sops = {
796 	.start = start_object,
797 	.next = next_object,
798 	.stop = stop_object,
799 	.show = show_object,
800 };
801 DEFINE_SEQ_ATTRIBUTE(objects);
802 
kfence_debugfs_init(void)803 static int kfence_debugfs_init(void)
804 {
805 	struct dentry *kfence_dir;
806 
807 	if (!READ_ONCE(kfence_enabled))
808 		return 0;
809 
810 	kfence_dir = debugfs_create_dir("kfence", NULL);
811 	debugfs_create_file("stats", 0444, kfence_dir, NULL, &stats_fops);
812 	debugfs_create_file("objects", 0400, kfence_dir, NULL, &objects_fops);
813 	return 0;
814 }
815 
816 late_initcall(kfence_debugfs_init);
817 
818 /* === Panic Notifier ====================================================== */
819 
kfence_check_all_canary(void)820 static void kfence_check_all_canary(void)
821 {
822 	int i;
823 
824 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
825 		struct kfence_metadata *meta = &kfence_metadata[i];
826 
827 		if (kfence_obj_allocated(meta))
828 			check_canary(meta);
829 	}
830 }
831 
kfence_check_canary_callback(struct notifier_block * nb,unsigned long reason,void * arg)832 static int kfence_check_canary_callback(struct notifier_block *nb,
833 					unsigned long reason, void *arg)
834 {
835 	if (READ_ONCE(kfence_enabled))
836 		kfence_check_all_canary();
837 	return NOTIFY_OK;
838 }
839 
840 static struct notifier_block kfence_check_canary_notifier = {
841 	.notifier_call = kfence_check_canary_callback,
842 };
843 
844 /* === Allocation Gate Timer ================================================ */
845 
846 static struct delayed_work kfence_timer;
847 
848 #ifdef CONFIG_KFENCE_STATIC_KEYS
849 /* Wait queue to wake up allocation-gate timer task. */
850 static DECLARE_WAIT_QUEUE_HEAD(allocation_wait);
851 
kfence_reboot_callback(struct notifier_block * nb,unsigned long action,void * data)852 static int kfence_reboot_callback(struct notifier_block *nb,
853 				  unsigned long action, void *data)
854 {
855 	/*
856 	 * Disable kfence to avoid static keys IPI synchronization during
857 	 * late shutdown/kexec
858 	 */
859 	WRITE_ONCE(kfence_enabled, false);
860 	/* Cancel any pending timer work */
861 	cancel_delayed_work(&kfence_timer);
862 	/*
863 	 * Wake up any blocked toggle_allocation_gate() so it can complete
864 	 * early while the system is still able to handle IPIs.
865 	 */
866 	wake_up(&allocation_wait);
867 
868 	return NOTIFY_OK;
869 }
870 
871 static struct notifier_block kfence_reboot_notifier = {
872 	.notifier_call = kfence_reboot_callback,
873 	.priority = INT_MAX, /* Run early to stop timers ASAP */
874 };
875 
wake_up_kfence_timer(struct irq_work * work)876 static void wake_up_kfence_timer(struct irq_work *work)
877 {
878 	wake_up(&allocation_wait);
879 }
880 static DEFINE_IRQ_WORK(wake_up_kfence_timer_work, wake_up_kfence_timer);
881 #endif
882 
883 /*
884  * Set up delayed work, which will enable and disable the static key. We need to
885  * use a work queue (rather than a simple timer), since enabling and disabling a
886  * static key cannot be done from an interrupt.
887  *
888  * Note: Toggling a static branch currently causes IPIs, and here we'll end up
889  * with a total of 2 IPIs to all CPUs. If this ends up a problem in future (with
890  * more aggressive sampling intervals), we could get away with a variant that
891  * avoids IPIs, at the cost of not immediately capturing allocations if the
892  * instructions remain cached.
893  */
toggle_allocation_gate(struct work_struct * work)894 static void toggle_allocation_gate(struct work_struct *work)
895 {
896 	if (!READ_ONCE(kfence_enabled))
897 		return;
898 
899 	atomic_set(&kfence_allocation_gate, -kfence_burst);
900 #ifdef CONFIG_KFENCE_STATIC_KEYS
901 	/* Enable static key, and await allocation to happen. */
902 	static_branch_enable(&kfence_allocation_key);
903 
904 	wait_event_idle(allocation_wait,
905 			atomic_read(&kfence_allocation_gate) > 0 ||
906 			!READ_ONCE(kfence_enabled));
907 
908 	/* Disable static key and reset timer. */
909 	static_branch_disable(&kfence_allocation_key);
910 #endif
911 	queue_delayed_work(system_dfl_wq, &kfence_timer,
912 			   msecs_to_jiffies(kfence_sample_interval));
913 }
914 
915 /* === Public interface ===================================================== */
916 
kfence_alloc_pool_and_metadata(void)917 void __init kfence_alloc_pool_and_metadata(void)
918 {
919 	if (!kfence_sample_interval)
920 		return;
921 
922 	/*
923 	 * If KASAN hardware tags are enabled, disable KFENCE, because it
924 	 * does not support MTE yet.
925 	 */
926 	if (kasan_hw_tags_enabled()) {
927 		pr_info("disabled as KASAN HW tags are enabled\n");
928 		if (__kfence_pool) {
929 			memblock_free(__kfence_pool, KFENCE_POOL_SIZE);
930 			__kfence_pool = NULL;
931 		}
932 		kfence_sample_interval = 0;
933 		return;
934 	}
935 
936 	/*
937 	 * If the pool has already been initialized by arch, there is no need to
938 	 * re-allocate the memory pool.
939 	 */
940 	if (!__kfence_pool)
941 		__kfence_pool = memblock_alloc(KFENCE_POOL_SIZE, PAGE_SIZE);
942 
943 	if (!__kfence_pool) {
944 		pr_err("failed to allocate pool\n");
945 		return;
946 	}
947 
948 	/* The memory allocated by memblock has been zeroed out. */
949 	kfence_metadata_init = memblock_alloc(KFENCE_METADATA_SIZE, PAGE_SIZE);
950 	if (!kfence_metadata_init) {
951 		pr_err("failed to allocate metadata\n");
952 		memblock_free(__kfence_pool, KFENCE_POOL_SIZE);
953 		__kfence_pool = NULL;
954 	}
955 }
956 
kfence_init_enable(void)957 static void kfence_init_enable(void)
958 {
959 	if (!IS_ENABLED(CONFIG_KFENCE_STATIC_KEYS))
960 		static_branch_enable(&kfence_allocation_key);
961 
962 	if (kfence_deferrable)
963 		INIT_DEFERRABLE_WORK(&kfence_timer, toggle_allocation_gate);
964 	else
965 		INIT_DELAYED_WORK(&kfence_timer, toggle_allocation_gate);
966 
967 	if (kfence_check_on_panic)
968 		atomic_notifier_chain_register(&panic_notifier_list, &kfence_check_canary_notifier);
969 
970 #ifdef CONFIG_KFENCE_STATIC_KEYS
971 	register_reboot_notifier(&kfence_reboot_notifier);
972 #endif
973 
974 	WRITE_ONCE(kfence_enabled, true);
975 	queue_delayed_work(system_dfl_wq, &kfence_timer, 0);
976 
977 	pr_info("initialized - using %lu bytes for %d objects at 0x%p-0x%p\n", KFENCE_POOL_SIZE,
978 		CONFIG_KFENCE_NUM_OBJECTS, (void *)__kfence_pool,
979 		(void *)(__kfence_pool + KFENCE_POOL_SIZE));
980 }
981 
kfence_init(void)982 void __init kfence_init(void)
983 {
984 	stack_hash_seed = get_random_u32();
985 
986 	/* Setting kfence_sample_interval to 0 on boot disables KFENCE. */
987 	if (!kfence_sample_interval)
988 		return;
989 
990 	if (!kfence_init_pool_early()) {
991 		pr_err("%s failed\n", __func__);
992 		return;
993 	}
994 
995 	kfence_init_enable();
996 }
997 
kfence_init_late(void)998 static int kfence_init_late(void)
999 {
1000 	const unsigned long nr_pages_pool = KFENCE_POOL_SIZE / PAGE_SIZE;
1001 	const unsigned long nr_pages_meta = KFENCE_METADATA_SIZE / PAGE_SIZE;
1002 	unsigned long addr = (unsigned long)__kfence_pool;
1003 	unsigned long free_size = KFENCE_POOL_SIZE;
1004 	int err = -ENOMEM;
1005 
1006 #ifdef CONFIG_CONTIG_ALLOC
1007 	struct page *pages;
1008 
1009 	pages = alloc_contig_pages(nr_pages_pool, GFP_KERNEL | __GFP_SKIP_KASAN,
1010 				   first_online_node, NULL);
1011 	if (!pages)
1012 		return -ENOMEM;
1013 
1014 	__kfence_pool = page_to_virt(pages);
1015 	pages = alloc_contig_pages(nr_pages_meta, GFP_KERNEL | __GFP_SKIP_KASAN,
1016 				   first_online_node, NULL);
1017 	if (pages)
1018 		kfence_metadata_init = page_to_virt(pages);
1019 #else
1020 	if (nr_pages_pool > MAX_ORDER_NR_PAGES ||
1021 	    nr_pages_meta > MAX_ORDER_NR_PAGES) {
1022 		pr_warn("KFENCE_NUM_OBJECTS too large for buddy allocator\n");
1023 		return -EINVAL;
1024 	}
1025 
1026 	__kfence_pool = alloc_pages_exact(KFENCE_POOL_SIZE,
1027 					  GFP_KERNEL | __GFP_SKIP_KASAN);
1028 	if (!__kfence_pool)
1029 		return -ENOMEM;
1030 
1031 	kfence_metadata_init = alloc_pages_exact(KFENCE_METADATA_SIZE,
1032 						 GFP_KERNEL | __GFP_SKIP_KASAN);
1033 #endif
1034 
1035 	if (!kfence_metadata_init)
1036 		goto free_pool;
1037 
1038 	memzero_explicit(kfence_metadata_init, KFENCE_METADATA_SIZE);
1039 	addr = kfence_init_pool();
1040 	if (!addr) {
1041 		kfence_init_enable();
1042 		kfence_debugfs_init();
1043 		return 0;
1044 	}
1045 
1046 	pr_err("%s failed\n", __func__);
1047 	free_size = KFENCE_POOL_SIZE - (addr - (unsigned long)__kfence_pool);
1048 	err = -EBUSY;
1049 
1050 #ifdef CONFIG_CONTIG_ALLOC
1051 	free_contig_range(page_to_pfn(virt_to_page((void *)kfence_metadata_init)),
1052 			  nr_pages_meta);
1053 free_pool:
1054 	free_contig_range(page_to_pfn(virt_to_page((void *)addr)),
1055 			  free_size / PAGE_SIZE);
1056 #else
1057 	free_pages_exact((void *)kfence_metadata_init, KFENCE_METADATA_SIZE);
1058 free_pool:
1059 	free_pages_exact((void *)addr, free_size);
1060 #endif
1061 
1062 	kfence_metadata_init = NULL;
1063 	__kfence_pool = NULL;
1064 	return err;
1065 }
1066 
kfence_enable_late(void)1067 static int kfence_enable_late(void)
1068 {
1069 	if (!__kfence_pool)
1070 		return kfence_init_late();
1071 
1072 	WRITE_ONCE(kfence_enabled, true);
1073 	queue_delayed_work(system_dfl_wq, &kfence_timer, 0);
1074 	pr_info("re-enabled\n");
1075 	return 0;
1076 }
1077 
kfence_shutdown_cache(struct kmem_cache * s)1078 void kfence_shutdown_cache(struct kmem_cache *s)
1079 {
1080 	unsigned long flags;
1081 	struct kfence_metadata *meta;
1082 	int i;
1083 
1084 	/* Pairs with release in kfence_init_pool(). */
1085 	if (!smp_load_acquire(&kfence_metadata))
1086 		return;
1087 
1088 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
1089 		bool in_use;
1090 
1091 		meta = &kfence_metadata[i];
1092 
1093 		/*
1094 		 * If we observe some inconsistent cache and state pair where we
1095 		 * should have returned false here, cache destruction is racing
1096 		 * with either kmem_cache_alloc() or kmem_cache_free(). Taking
1097 		 * the lock will not help, as different critical section
1098 		 * serialization will have the same outcome.
1099 		 */
1100 		if (READ_ONCE(meta->cache) != s || !kfence_obj_allocated(meta))
1101 			continue;
1102 
1103 		raw_spin_lock_irqsave(&meta->lock, flags);
1104 		in_use = meta->cache == s && kfence_obj_allocated(meta);
1105 		raw_spin_unlock_irqrestore(&meta->lock, flags);
1106 
1107 		if (in_use) {
1108 			/*
1109 			 * This cache still has allocations, and we should not
1110 			 * release them back into the freelist so they can still
1111 			 * safely be used and retain the kernel's default
1112 			 * behaviour of keeping the allocations alive (leak the
1113 			 * cache); however, they effectively become "zombie
1114 			 * allocations" as the KFENCE objects are the only ones
1115 			 * still in use and the owning cache is being destroyed.
1116 			 *
1117 			 * We mark them freed, so that any subsequent use shows
1118 			 * more useful error messages that will include stack
1119 			 * traces of the user of the object, the original
1120 			 * allocation, and caller to shutdown_cache().
1121 			 */
1122 			kfence_guarded_free((void *)meta->addr, meta, /*zombie=*/true);
1123 		}
1124 	}
1125 
1126 	for (i = 0; i < CONFIG_KFENCE_NUM_OBJECTS; i++) {
1127 		meta = &kfence_metadata[i];
1128 
1129 		/* See above. */
1130 		if (READ_ONCE(meta->cache) != s || READ_ONCE(meta->state) != KFENCE_OBJECT_FREED)
1131 			continue;
1132 
1133 		raw_spin_lock_irqsave(&meta->lock, flags);
1134 		if (meta->cache == s && meta->state == KFENCE_OBJECT_FREED)
1135 			meta->cache = NULL;
1136 		raw_spin_unlock_irqrestore(&meta->lock, flags);
1137 	}
1138 }
1139 
__kfence_alloc(struct kmem_cache * s,size_t size,gfp_t flags)1140 void *__kfence_alloc(struct kmem_cache *s, size_t size, gfp_t flags)
1141 {
1142 	unsigned long stack_entries[KFENCE_STACK_DEPTH];
1143 	size_t num_stack_entries;
1144 	u32 alloc_stack_hash;
1145 	int allocation_gate;
1146 
1147 	/*
1148 	 * Perform size check before switching kfence_allocation_gate, so that
1149 	 * we don't disable KFENCE without making an allocation.
1150 	 */
1151 	if (size > PAGE_SIZE) {
1152 		atomic_long_inc(&counters[KFENCE_COUNTER_SKIP_INCOMPAT]);
1153 		return NULL;
1154 	}
1155 
1156 	/*
1157 	 * Skip allocations from non-default zones, including DMA. We cannot
1158 	 * guarantee that pages in the KFENCE pool will have the requested
1159 	 * properties (e.g. reside in DMAable memory).
1160 	 */
1161 	if ((flags & GFP_ZONEMASK) ||
1162 	    ((flags & __GFP_THISNODE) && num_online_nodes() > 1) ||
1163 	    (s->flags & (SLAB_CACHE_DMA | SLAB_CACHE_DMA32))) {
1164 		atomic_long_inc(&counters[KFENCE_COUNTER_SKIP_INCOMPAT]);
1165 		return NULL;
1166 	}
1167 
1168 	/*
1169 	 * Skip allocations for this slab, if KFENCE has been disabled for
1170 	 * this slab.
1171 	 */
1172 	if (s->flags & SLAB_SKIP_KFENCE)
1173 		return NULL;
1174 
1175 	allocation_gate = atomic_inc_return(&kfence_allocation_gate);
1176 	if (allocation_gate > 1)
1177 		return NULL;
1178 #ifdef CONFIG_KFENCE_STATIC_KEYS
1179 	/*
1180 	 * waitqueue_active() is fully ordered after the update of
1181 	 * kfence_allocation_gate per atomic_inc_return().
1182 	 */
1183 	if (allocation_gate == 1 && waitqueue_active(&allocation_wait)) {
1184 		/*
1185 		 * Calling wake_up() here may deadlock when allocations happen
1186 		 * from within timer code. Use an irq_work to defer it.
1187 		 */
1188 		irq_work_queue(&wake_up_kfence_timer_work);
1189 	}
1190 #endif
1191 
1192 	if (!READ_ONCE(kfence_enabled))
1193 		return NULL;
1194 
1195 	num_stack_entries = stack_trace_save(stack_entries, KFENCE_STACK_DEPTH, 0);
1196 
1197 	/*
1198 	 * Do expensive check for coverage of allocation in slow-path after
1199 	 * allocation_gate has already become non-zero, even though it might
1200 	 * mean not making any allocation within a given sample interval.
1201 	 *
1202 	 * This ensures reasonable allocation coverage when the pool is almost
1203 	 * full, including avoiding long-lived allocations of the same source
1204 	 * filling up the pool (e.g. pagecache allocations).
1205 	 */
1206 	alloc_stack_hash = get_alloc_stack_hash(stack_entries, num_stack_entries);
1207 	if (should_skip_covered() && alloc_covered_contains(alloc_stack_hash)) {
1208 		atomic_long_inc(&counters[KFENCE_COUNTER_SKIP_COVERED]);
1209 		return NULL;
1210 	}
1211 
1212 	return kfence_guarded_alloc(s, size, flags, stack_entries, num_stack_entries,
1213 				    alloc_stack_hash);
1214 }
1215 
kfence_ksize(const void * addr)1216 size_t kfence_ksize(const void *addr)
1217 {
1218 	const struct kfence_metadata *meta = addr_to_metadata((unsigned long)addr);
1219 
1220 	/*
1221 	 * Read locklessly -- if there is a race with __kfence_alloc(), this is
1222 	 * either a use-after-free or invalid access.
1223 	 */
1224 	return meta ? meta->size : 0;
1225 }
1226 
kfence_object_start(const void * addr)1227 void *kfence_object_start(const void *addr)
1228 {
1229 	const struct kfence_metadata *meta = addr_to_metadata((unsigned long)addr);
1230 
1231 	/*
1232 	 * Read locklessly -- if there is a race with __kfence_alloc(), this is
1233 	 * either a use-after-free or invalid access.
1234 	 */
1235 	return meta ? (void *)meta->addr : NULL;
1236 }
1237 
__kfence_free(void * addr)1238 void __kfence_free(void *addr)
1239 {
1240 	struct kfence_metadata *meta = addr_to_metadata((unsigned long)addr);
1241 
1242 	/*
1243 	 * If the objects of the cache are SLAB_TYPESAFE_BY_RCU, defer freeing
1244 	 * the object, as the object page may be recycled for other-typed
1245 	 * objects once it has been freed. meta->cache may be NULL if the cache
1246 	 * was destroyed.
1247 	 * Save the stack trace here so that reports show where the user freed
1248 	 * the object.
1249 	 */
1250 	if (unlikely(meta->cache && (meta->cache->flags & SLAB_TYPESAFE_BY_RCU))) {
1251 		unsigned long flags;
1252 
1253 		raw_spin_lock_irqsave(&meta->lock, flags);
1254 		metadata_update_state(meta, KFENCE_OBJECT_RCU_FREEING, NULL, 0);
1255 		raw_spin_unlock_irqrestore(&meta->lock, flags);
1256 		call_rcu(&meta->rcu_head, rcu_guarded_free);
1257 	} else {
1258 		kfence_guarded_free(addr, meta, false);
1259 	}
1260 }
1261 
kfence_handle_page_fault(unsigned long addr,bool is_write,struct pt_regs * regs)1262 bool kfence_handle_page_fault(unsigned long addr, bool is_write, struct pt_regs *regs)
1263 {
1264 	const int page_index = (addr - (unsigned long)__kfence_pool) / PAGE_SIZE;
1265 	struct kfence_metadata *to_report = NULL;
1266 	unsigned long unprotected_page = 0;
1267 	enum kfence_error_type error_type;
1268 	enum kfence_fault fault;
1269 	unsigned long flags;
1270 
1271 	if (!is_kfence_address((void *)addr))
1272 		return false;
1273 
1274 	if (!READ_ONCE(kfence_enabled)) /* If disabled at runtime ... */
1275 		return kfence_unprotect(addr); /* ... unprotect and proceed. */
1276 
1277 	atomic_long_inc(&counters[KFENCE_COUNTER_BUGS]);
1278 
1279 	if (page_index % 2) {
1280 		/* This is a redzone, report a buffer overflow. */
1281 		struct kfence_metadata *meta;
1282 		int distance = 0;
1283 
1284 		meta = addr_to_metadata(addr - PAGE_SIZE);
1285 		if (meta && kfence_obj_allocated(meta)) {
1286 			to_report = meta;
1287 			/* Data race ok; distance calculation approximate. */
1288 			distance = addr - data_race(meta->addr + meta->size);
1289 		}
1290 
1291 		meta = addr_to_metadata(addr + PAGE_SIZE);
1292 		if (meta && kfence_obj_allocated(meta)) {
1293 			/* Data race ok; distance calculation approximate. */
1294 			if (!to_report || distance > data_race(meta->addr) - addr)
1295 				to_report = meta;
1296 		}
1297 
1298 		if (!to_report)
1299 			goto out;
1300 
1301 		error_type = KFENCE_ERROR_OOB;
1302 		unprotected_page = addr;
1303 
1304 		/*
1305 		 * If the object was freed before we took the look we can still
1306 		 * report this as an OOB -- the report will simply show the
1307 		 * stacktrace of the free as well.
1308 		 */
1309 	} else {
1310 		to_report = addr_to_metadata(addr);
1311 		if (!to_report)
1312 			goto out;
1313 
1314 		error_type = KFENCE_ERROR_UAF;
1315 		/*
1316 		 * We may race with __kfence_alloc(), and it is possible that a
1317 		 * freed object may be reallocated. We simply report this as a
1318 		 * use-after-free, with the stack trace showing the place where
1319 		 * the object was re-allocated.
1320 		 */
1321 	}
1322 
1323 out:
1324 	if (to_report) {
1325 		raw_spin_lock_irqsave(&to_report->lock, flags);
1326 		to_report->unprotected_page = unprotected_page;
1327 		fault = kfence_report_error(addr, is_write, regs, to_report, error_type);
1328 		raw_spin_unlock_irqrestore(&to_report->lock, flags);
1329 	} else {
1330 		/* This may be a UAF or OOB access, but we can't be sure. */
1331 		fault = kfence_report_error(addr, is_write, regs, NULL, KFENCE_ERROR_INVALID);
1332 	}
1333 
1334 	kfence_handle_fault(fault);
1335 
1336 	return kfence_unprotect(addr); /* Unprotect and let access proceed. */
1337 }
1338