xref: /linux/security/selinux/avc.c (revision 4253eb09d25bcfe44f6987b6f67c09f09d80a966)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Implementation of the kernel access vector cache (AVC).
4  *
5  * Authors:  Stephen Smalley, <stephen.smalley.work@gmail.com>
6  *	     James Morris <jmorris@redhat.com>
7  *
8  * Update:   KaiGai, Kohei <kaigai@ak.jp.nec.com>
9  *	Replaced the avc_lock spinlock by RCU.
10  *
11  * Copyright (C) 2003 Red Hat, Inc., James Morris <jmorris@redhat.com>
12  */
13 #include <linux/types.h>
14 #include <linux/stddef.h>
15 #include <linux/kernel.h>
16 #include <linux/slab.h>
17 #include <linux/fs.h>
18 #include <linux/dcache.h>
19 #include <linux/init.h>
20 #include <linux/skbuff.h>
21 #include <linux/percpu.h>
22 #include <linux/list.h>
23 #include <net/sock.h>
24 #include <linux/un.h>
25 #include <net/af_unix.h>
26 #include <linux/ip.h>
27 #include <linux/audit.h>
28 #include <linux/ipv6.h>
29 #include <net/ipv6.h>
30 #include "avc.h"
31 #include "avc_ss.h"
32 #include "classmap.h"
33 #include "hash.h"
34 
35 #define CREATE_TRACE_POINTS
36 #include <trace/events/avc.h>
37 
38 #define AVC_CACHE_SLOTS		(1 << CONFIG_SECURITY_SELINUX_AVC_HASH_BITS)
39 #define AVC_DEF_CACHE_THRESHOLD	AVC_CACHE_SLOTS
40 #define AVC_CACHE_RECLAIM	16
41 
42 #ifdef CONFIG_SECURITY_SELINUX_AVC_STATS
43 #define avc_cache_stats_incr(field)	this_cpu_inc(avc_cache_stats.field)
44 #else
45 #define avc_cache_stats_incr(field)	do {} while (0)
46 #endif
47 
48 struct avc_entry {
49 	u32			ssid;
50 	u32			tsid;
51 	u16			tclass;
52 	struct av_decision	avd;
53 	struct avc_xperms_node	*xp_node;
54 };
55 
56 struct avc_node {
57 	struct avc_entry	ae;
58 	struct hlist_node	list; /* anchored in avc_cache->slots[i] */
59 	struct rcu_head		rhead;
60 };
61 
62 struct avc_xperms_decision_node {
63 	struct extended_perms_decision xpd;
64 	struct list_head xpd_list; /* list of extended_perms_decision */
65 };
66 
67 struct avc_xperms_node {
68 	struct extended_perms xp;
69 	struct list_head xpd_head; /* list head of extended_perms_decision */
70 };
71 
72 struct avc_cache {
73 	struct hlist_head	slots[AVC_CACHE_SLOTS]; /* head for avc_node->list */
74 	spinlock_t		slots_lock[AVC_CACHE_SLOTS]; /* lock for writes */
75 	atomic_t		lru_hint;	/* LRU hint for reclaim scan */
76 	atomic_t		active_nodes;
77 	u32			latest_notif;	/* latest revocation notification */
78 };
79 
80 struct avc_callback_node {
81 	int (*callback) (u32 event);
82 	u32 events;
83 	struct avc_callback_node *next;
84 };
85 
86 #ifdef CONFIG_SECURITY_SELINUX_AVC_STATS
87 DEFINE_PER_CPU(struct avc_cache_stats, avc_cache_stats) = { 0 };
88 #endif
89 
90 struct selinux_avc {
91 	unsigned int avc_cache_threshold;
92 	struct avc_cache avc_cache;
93 };
94 
95 static struct selinux_avc selinux_avc;
96 
97 void selinux_avc_init(void)
98 {
99 	int i;
100 
101 	selinux_avc.avc_cache_threshold = AVC_DEF_CACHE_THRESHOLD;
102 	for (i = 0; i < AVC_CACHE_SLOTS; i++) {
103 		INIT_HLIST_HEAD(&selinux_avc.avc_cache.slots[i]);
104 		spin_lock_init(&selinux_avc.avc_cache.slots_lock[i]);
105 	}
106 	atomic_set(&selinux_avc.avc_cache.active_nodes, 0);
107 	atomic_set(&selinux_avc.avc_cache.lru_hint, 0);
108 }
109 
110 unsigned int avc_get_cache_threshold(void)
111 {
112 	return selinux_avc.avc_cache_threshold;
113 }
114 
115 void avc_set_cache_threshold(unsigned int cache_threshold)
116 {
117 	selinux_avc.avc_cache_threshold = cache_threshold;
118 }
119 
120 static struct avc_callback_node *avc_callbacks __ro_after_init;
121 static struct kmem_cache *avc_node_cachep __ro_after_init;
122 static struct kmem_cache *avc_xperms_data_cachep __ro_after_init;
123 static struct kmem_cache *avc_xperms_decision_cachep __ro_after_init;
124 static struct kmem_cache *avc_xperms_cachep __ro_after_init;
125 
126 static inline u32 avc_hash(u32 ssid, u32 tsid, u16 tclass)
127 {
128 	return av_hash(ssid, tsid, (u32)tclass, (u32)(AVC_CACHE_SLOTS - 1));
129 }
130 
131 /**
132  * avc_init - Initialize the AVC.
133  *
134  * Initialize the access vector cache.
135  */
136 void __init avc_init(void)
137 {
138 	avc_node_cachep = KMEM_CACHE(avc_node, SLAB_PANIC);
139 	avc_xperms_cachep = KMEM_CACHE(avc_xperms_node, SLAB_PANIC);
140 	avc_xperms_decision_cachep = KMEM_CACHE(avc_xperms_decision_node, SLAB_PANIC);
141 	avc_xperms_data_cachep = KMEM_CACHE(extended_perms_data, SLAB_PANIC);
142 }
143 
144 int avc_get_hash_stats(char *page)
145 {
146 	int i, chain_len, max_chain_len, slots_used;
147 	struct avc_node *node;
148 	struct hlist_head *head;
149 
150 	rcu_read_lock();
151 
152 	slots_used = 0;
153 	max_chain_len = 0;
154 	for (i = 0; i < AVC_CACHE_SLOTS; i++) {
155 		head = &selinux_avc.avc_cache.slots[i];
156 		if (!hlist_empty(head)) {
157 			slots_used++;
158 			chain_len = 0;
159 			hlist_for_each_entry_rcu(node, head, list)
160 				chain_len++;
161 			if (chain_len > max_chain_len)
162 				max_chain_len = chain_len;
163 		}
164 	}
165 
166 	rcu_read_unlock();
167 
168 	return scnprintf(page, PAGE_SIZE, "entries: %d\nbuckets used: %d/%d\n"
169 			 "longest chain: %d\n",
170 			 atomic_read(&selinux_avc.avc_cache.active_nodes),
171 			 slots_used, AVC_CACHE_SLOTS, max_chain_len);
172 }
173 
174 /*
175  * using a linked list for extended_perms_decision lookup because the list is
176  * always small. i.e. less than 5, typically 1
177  */
178 static struct extended_perms_decision *
179 avc_xperms_decision_lookup(u8 driver, u8 base_perm,
180 			   struct avc_xperms_node *xp_node)
181 {
182 	struct avc_xperms_decision_node *xpd_node;
183 
184 	list_for_each_entry(xpd_node, &xp_node->xpd_head, xpd_list) {
185 		if (xpd_node->xpd.driver == driver &&
186 		    xpd_node->xpd.base_perm == base_perm)
187 			return &xpd_node->xpd;
188 	}
189 	return NULL;
190 }
191 
192 static inline unsigned int
193 avc_xperms_has_perm(struct extended_perms_decision *xpd,
194 					u8 perm, u8 which)
195 {
196 	unsigned int rc = 0;
197 
198 	if ((which == XPERMS_ALLOWED) &&
199 			(xpd->used & XPERMS_ALLOWED))
200 		rc = security_xperm_test(xpd->allowed->p, perm);
201 	else if ((which == XPERMS_AUDITALLOW) &&
202 			(xpd->used & XPERMS_AUDITALLOW))
203 		rc = security_xperm_test(xpd->auditallow->p, perm);
204 	else if ((which == XPERMS_DONTAUDIT) &&
205 			(xpd->used & XPERMS_DONTAUDIT))
206 		rc = security_xperm_test(xpd->dontaudit->p, perm);
207 	return rc;
208 }
209 
210 static void avc_xperms_allow_perm(struct avc_xperms_node *xp_node,
211 				  u8 driver, u8 base_perm, u8 perm)
212 {
213 	struct extended_perms_decision *xpd;
214 	security_xperm_set(xp_node->xp.drivers.p, driver);
215 	xp_node->xp.base_perms |= base_perm;
216 	xpd = avc_xperms_decision_lookup(driver, base_perm, xp_node);
217 	if (xpd && xpd->allowed)
218 		security_xperm_set(xpd->allowed->p, perm);
219 }
220 
221 static void avc_xperms_decision_free(struct avc_xperms_decision_node *xpd_node)
222 {
223 	struct extended_perms_decision *xpd;
224 
225 	xpd = &xpd_node->xpd;
226 	if (xpd->allowed)
227 		kmem_cache_free(avc_xperms_data_cachep, xpd->allowed);
228 	if (xpd->auditallow)
229 		kmem_cache_free(avc_xperms_data_cachep, xpd->auditallow);
230 	if (xpd->dontaudit)
231 		kmem_cache_free(avc_xperms_data_cachep, xpd->dontaudit);
232 	kmem_cache_free(avc_xperms_decision_cachep, xpd_node);
233 }
234 
235 static void avc_xperms_free(struct avc_xperms_node *xp_node)
236 {
237 	struct avc_xperms_decision_node *xpd_node, *tmp;
238 
239 	if (!xp_node)
240 		return;
241 
242 	list_for_each_entry_safe(xpd_node, tmp, &xp_node->xpd_head, xpd_list) {
243 		list_del(&xpd_node->xpd_list);
244 		avc_xperms_decision_free(xpd_node);
245 	}
246 	kmem_cache_free(avc_xperms_cachep, xp_node);
247 }
248 
249 static void avc_copy_xperms_decision(struct extended_perms_decision *dest,
250 					struct extended_perms_decision *src)
251 {
252 	dest->base_perm = src->base_perm;
253 	dest->driver = src->driver;
254 	dest->used = src->used;
255 	if (dest->used & XPERMS_ALLOWED)
256 		memcpy(dest->allowed->p, src->allowed->p,
257 				sizeof(src->allowed->p));
258 	if (dest->used & XPERMS_AUDITALLOW)
259 		memcpy(dest->auditallow->p, src->auditallow->p,
260 				sizeof(src->auditallow->p));
261 	if (dest->used & XPERMS_DONTAUDIT)
262 		memcpy(dest->dontaudit->p, src->dontaudit->p,
263 				sizeof(src->dontaudit->p));
264 }
265 
266 /*
267  * similar to avc_copy_xperms_decision, but only copy decision
268  * information relevant to this perm
269  */
270 static inline void avc_quick_copy_xperms_decision(u8 perm,
271 			struct extended_perms_decision *dest,
272 			struct extended_perms_decision *src)
273 {
274 	/*
275 	 * compute index of the u32 of the 256 bits (8 u32s) that contain this
276 	 * command permission
277 	 */
278 	u8 i = perm >> 5;
279 
280 	dest->base_perm = src->base_perm;
281 	dest->used = src->used;
282 	if (dest->used & XPERMS_ALLOWED)
283 		dest->allowed->p[i] = src->allowed->p[i];
284 	if (dest->used & XPERMS_AUDITALLOW)
285 		dest->auditallow->p[i] = src->auditallow->p[i];
286 	if (dest->used & XPERMS_DONTAUDIT)
287 		dest->dontaudit->p[i] = src->dontaudit->p[i];
288 }
289 
290 static struct avc_xperms_decision_node
291 		*avc_xperms_decision_alloc(u8 which)
292 {
293 	struct avc_xperms_decision_node *xpd_node;
294 	struct extended_perms_decision *xpd;
295 
296 	xpd_node = kmem_cache_zalloc(avc_xperms_decision_cachep, GFP_NOWAIT);
297 	if (!xpd_node)
298 		return NULL;
299 
300 	xpd = &xpd_node->xpd;
301 	if (which & XPERMS_ALLOWED) {
302 		xpd->allowed = kmem_cache_zalloc(avc_xperms_data_cachep,
303 						 GFP_NOWAIT);
304 		if (!xpd->allowed)
305 			goto error;
306 	}
307 	if (which & XPERMS_AUDITALLOW) {
308 		xpd->auditallow = kmem_cache_zalloc(avc_xperms_data_cachep,
309 						    GFP_NOWAIT);
310 		if (!xpd->auditallow)
311 			goto error;
312 	}
313 	if (which & XPERMS_DONTAUDIT) {
314 		xpd->dontaudit = kmem_cache_zalloc(avc_xperms_data_cachep,
315 						   GFP_NOWAIT);
316 		if (!xpd->dontaudit)
317 			goto error;
318 	}
319 	return xpd_node;
320 error:
321 	avc_xperms_decision_free(xpd_node);
322 	return NULL;
323 }
324 
325 static int avc_add_xperms_decision(struct avc_node *node,
326 			struct extended_perms_decision *src)
327 {
328 	struct avc_xperms_decision_node *dest_xpd;
329 
330 	dest_xpd = avc_xperms_decision_alloc(src->used);
331 	if (!dest_xpd)
332 		return -ENOMEM;
333 	avc_copy_xperms_decision(&dest_xpd->xpd, src);
334 	list_add(&dest_xpd->xpd_list, &node->ae.xp_node->xpd_head);
335 	node->ae.xp_node->xp.len++;
336 	return 0;
337 }
338 
339 static struct avc_xperms_node *avc_xperms_alloc(void)
340 {
341 	struct avc_xperms_node *xp_node;
342 
343 	xp_node = kmem_cache_zalloc(avc_xperms_cachep, GFP_NOWAIT);
344 	if (!xp_node)
345 		return xp_node;
346 	INIT_LIST_HEAD(&xp_node->xpd_head);
347 	return xp_node;
348 }
349 
350 static int avc_xperms_populate(struct avc_node *node,
351 				struct avc_xperms_node *src)
352 {
353 	struct avc_xperms_node *dest;
354 	struct avc_xperms_decision_node *dest_xpd;
355 	struct avc_xperms_decision_node *src_xpd;
356 
357 	if (src->xp.len == 0)
358 		return 0;
359 	dest = avc_xperms_alloc();
360 	if (!dest)
361 		return -ENOMEM;
362 
363 	memcpy(dest->xp.drivers.p, src->xp.drivers.p, sizeof(dest->xp.drivers.p));
364 	dest->xp.len = src->xp.len;
365 	dest->xp.base_perms = src->xp.base_perms;
366 
367 	/* for each source xpd allocate a destination xpd and copy */
368 	list_for_each_entry(src_xpd, &src->xpd_head, xpd_list) {
369 		dest_xpd = avc_xperms_decision_alloc(src_xpd->xpd.used);
370 		if (!dest_xpd)
371 			goto error;
372 		avc_copy_xperms_decision(&dest_xpd->xpd, &src_xpd->xpd);
373 		list_add(&dest_xpd->xpd_list, &dest->xpd_head);
374 	}
375 	node->ae.xp_node = dest;
376 	return 0;
377 error:
378 	avc_xperms_free(dest);
379 	return -ENOMEM;
380 
381 }
382 
383 static inline u32 avc_xperms_audit_required(u32 requested,
384 					struct av_decision *avd,
385 					struct extended_perms_decision *xpd,
386 					u8 perm,
387 					int result,
388 					u32 *deniedp)
389 {
390 	u32 denied, audited;
391 
392 	denied = requested & ~avd->allowed;
393 	if (unlikely(denied)) {
394 		audited = denied & avd->auditdeny;
395 		if (audited && xpd) {
396 			if (avc_xperms_has_perm(xpd, perm, XPERMS_DONTAUDIT))
397 				audited = 0;
398 		}
399 	} else if (result) {
400 		audited = denied = requested;
401 	} else {
402 		audited = requested & avd->auditallow;
403 		if (audited && xpd) {
404 			if (!avc_xperms_has_perm(xpd, perm, XPERMS_AUDITALLOW))
405 				audited = 0;
406 		}
407 	}
408 
409 	*deniedp = denied;
410 	return audited;
411 }
412 
413 static inline int avc_xperms_audit(u32 ssid, u32 tsid, u16 tclass,
414 				   u32 requested, struct av_decision *avd,
415 				   struct extended_perms_decision *xpd,
416 				   u8 perm, int result,
417 				   struct common_audit_data *ad)
418 {
419 	u32 audited, denied;
420 
421 	audited = avc_xperms_audit_required(
422 			requested, avd, xpd, perm, result, &denied);
423 	if (likely(!audited))
424 		return 0;
425 	return slow_avc_audit(ssid, tsid, tclass, requested,
426 			audited, denied, result, ad);
427 }
428 
429 static void avc_node_free(struct rcu_head *rhead)
430 {
431 	struct avc_node *node = container_of(rhead, struct avc_node, rhead);
432 	avc_xperms_free(node->ae.xp_node);
433 	kmem_cache_free(avc_node_cachep, node);
434 	avc_cache_stats_incr(frees);
435 }
436 
437 static void avc_node_delete(struct avc_node *node)
438 {
439 	hlist_del_rcu(&node->list);
440 	call_rcu(&node->rhead, avc_node_free);
441 	atomic_dec(&selinux_avc.avc_cache.active_nodes);
442 }
443 
444 static void avc_node_kill(struct avc_node *node)
445 {
446 	avc_xperms_free(node->ae.xp_node);
447 	kmem_cache_free(avc_node_cachep, node);
448 	avc_cache_stats_incr(frees);
449 	atomic_dec(&selinux_avc.avc_cache.active_nodes);
450 }
451 
452 static void avc_node_replace(struct avc_node *new, struct avc_node *old)
453 {
454 	hlist_replace_rcu(&old->list, &new->list);
455 	call_rcu(&old->rhead, avc_node_free);
456 	atomic_dec(&selinux_avc.avc_cache.active_nodes);
457 }
458 
459 static inline int avc_reclaim_node(void)
460 {
461 	struct avc_node *node;
462 	int hvalue, try, ecx;
463 	unsigned long flags;
464 	struct hlist_head *head;
465 	spinlock_t *lock;
466 
467 	for (try = 0, ecx = 0; try < AVC_CACHE_SLOTS; try++) {
468 		hvalue = atomic_inc_return(&selinux_avc.avc_cache.lru_hint) &
469 			(AVC_CACHE_SLOTS - 1);
470 		head = &selinux_avc.avc_cache.slots[hvalue];
471 		lock = &selinux_avc.avc_cache.slots_lock[hvalue];
472 
473 		if (!spin_trylock_irqsave(lock, flags))
474 			continue;
475 
476 		rcu_read_lock();
477 		hlist_for_each_entry(node, head, list) {
478 			avc_node_delete(node);
479 			avc_cache_stats_incr(reclaims);
480 			ecx++;
481 			if (ecx >= AVC_CACHE_RECLAIM) {
482 				rcu_read_unlock();
483 				spin_unlock_irqrestore(lock, flags);
484 				goto out;
485 			}
486 		}
487 		rcu_read_unlock();
488 		spin_unlock_irqrestore(lock, flags);
489 	}
490 out:
491 	return ecx;
492 }
493 
494 static struct avc_node *avc_alloc_node(void)
495 {
496 	struct avc_node *node;
497 
498 	node = kmem_cache_zalloc(avc_node_cachep, GFP_NOWAIT);
499 	if (!node)
500 		return NULL;
501 
502 	INIT_HLIST_NODE(&node->list);
503 	avc_cache_stats_incr(allocations);
504 
505 	if (atomic_inc_return(&selinux_avc.avc_cache.active_nodes) >
506 	    selinux_avc.avc_cache_threshold)
507 		avc_reclaim_node();
508 
509 	return node;
510 }
511 
512 static void avc_node_populate(struct avc_node *node, u32 ssid, u32 tsid, u16 tclass, struct av_decision *avd)
513 {
514 	node->ae.ssid = ssid;
515 	node->ae.tsid = tsid;
516 	node->ae.tclass = tclass;
517 	memcpy(&node->ae.avd, avd, sizeof(node->ae.avd));
518 }
519 
520 static inline struct avc_node *avc_search_node(u32 ssid, u32 tsid, u16 tclass)
521 {
522 	struct avc_node *node, *ret = NULL;
523 	u32 hvalue;
524 	struct hlist_head *head;
525 
526 	hvalue = avc_hash(ssid, tsid, tclass);
527 	head = &selinux_avc.avc_cache.slots[hvalue];
528 	hlist_for_each_entry_rcu(node, head, list) {
529 		if (ssid == node->ae.ssid &&
530 		    tclass == node->ae.tclass &&
531 		    tsid == node->ae.tsid) {
532 			ret = node;
533 			break;
534 		}
535 	}
536 
537 	return ret;
538 }
539 
540 /**
541  * avc_lookup - Look up an AVC entry.
542  * @ssid: source security identifier
543  * @tsid: target security identifier
544  * @tclass: target security class
545  *
546  * Look up an AVC entry that is valid for the
547  * (@ssid, @tsid), interpreting the permissions
548  * based on @tclass.  If a valid AVC entry exists,
549  * then this function returns the avc_node.
550  * Otherwise, this function returns NULL.
551  */
552 static struct avc_node *avc_lookup(u32 ssid, u32 tsid, u16 tclass)
553 {
554 	struct avc_node *node;
555 
556 	avc_cache_stats_incr(lookups);
557 	node = avc_search_node(ssid, tsid, tclass);
558 
559 	if (node)
560 		return node;
561 
562 	avc_cache_stats_incr(misses);
563 	return NULL;
564 }
565 
566 static int avc_latest_notif_update(u32 seqno, int is_insert)
567 {
568 	int ret = 0;
569 	static DEFINE_SPINLOCK(notif_lock);
570 	unsigned long flag;
571 
572 	spin_lock_irqsave(&notif_lock, flag);
573 	if (is_insert) {
574 		if (seqno < selinux_avc.avc_cache.latest_notif) {
575 			pr_warn("SELinux: avc:  seqno %d < latest_notif %d\n",
576 			       seqno, selinux_avc.avc_cache.latest_notif);
577 			ret = -EAGAIN;
578 		}
579 	} else {
580 		if (seqno > selinux_avc.avc_cache.latest_notif)
581 			selinux_avc.avc_cache.latest_notif = seqno;
582 	}
583 	spin_unlock_irqrestore(&notif_lock, flag);
584 
585 	return ret;
586 }
587 
588 /**
589  * avc_insert - Insert an AVC entry.
590  * @ssid: source security identifier
591  * @tsid: target security identifier
592  * @tclass: target security class
593  * @avd: resulting av decision
594  * @xp_node: resulting extended permissions
595  *
596  * Insert an AVC entry for the SID pair
597  * (@ssid, @tsid) and class @tclass.
598  * The access vectors and the sequence number are
599  * normally provided by the security server in
600  * response to a security_compute_av() call.  If the
601  * sequence number @avd->seqno is not less than the latest
602  * revocation notification, then the function copies
603  * the access vectors into a cache entry.
604  */
605 static void avc_insert(u32 ssid, u32 tsid, u16 tclass,
606 		       struct av_decision *avd, struct avc_xperms_node *xp_node)
607 {
608 	struct avc_node *pos, *node = NULL;
609 	u32 hvalue;
610 	unsigned long flag;
611 	spinlock_t *lock;
612 	struct hlist_head *head;
613 
614 	if (avc_latest_notif_update(avd->seqno, 1))
615 		return;
616 
617 	node = avc_alloc_node();
618 	if (!node)
619 		return;
620 
621 	avc_node_populate(node, ssid, tsid, tclass, avd);
622 	if (avc_xperms_populate(node, xp_node)) {
623 		avc_node_kill(node);
624 		return;
625 	}
626 
627 	hvalue = avc_hash(ssid, tsid, tclass);
628 	head = &selinux_avc.avc_cache.slots[hvalue];
629 	lock = &selinux_avc.avc_cache.slots_lock[hvalue];
630 	spin_lock_irqsave(lock, flag);
631 	hlist_for_each_entry(pos, head, list) {
632 		if (pos->ae.ssid == ssid &&
633 			pos->ae.tsid == tsid &&
634 			pos->ae.tclass == tclass) {
635 			avc_node_replace(node, pos);
636 			goto found;
637 		}
638 	}
639 	hlist_add_head_rcu(&node->list, head);
640 found:
641 	spin_unlock_irqrestore(lock, flag);
642 }
643 
644 /**
645  * avc_audit_pre_callback - SELinux specific information
646  * will be called by generic audit code
647  * @ab: the audit buffer
648  * @a: audit_data
649  */
650 static void avc_audit_pre_callback(struct audit_buffer *ab, void *a)
651 {
652 	struct common_audit_data *ad = a;
653 	struct selinux_audit_data *sad = ad->selinux_audit_data;
654 	u32 av = sad->audited, perm;
655 	const char *const *perms;
656 	u32 i;
657 
658 	audit_log_format(ab, "avc:  %s ", sad->denied ? "denied" : "granted");
659 
660 	if (av == 0) {
661 		audit_log_format(ab, " null");
662 		return;
663 	}
664 
665 	perms = secclass_map[sad->tclass-1].perms;
666 
667 	audit_log_format(ab, " {");
668 	i = 0;
669 	perm = 1;
670 	while (i < (sizeof(av) * 8)) {
671 		if ((perm & av) && perms[i]) {
672 			audit_log_format(ab, " %s", perms[i]);
673 			av &= ~perm;
674 		}
675 		i++;
676 		perm <<= 1;
677 	}
678 
679 	if (av)
680 		audit_log_format(ab, " 0x%x", av);
681 
682 	audit_log_format(ab, " } for ");
683 }
684 
685 /**
686  * avc_audit_post_callback - SELinux specific information
687  * will be called by generic audit code
688  * @ab: the audit buffer
689  * @a: audit_data
690  */
691 static void avc_audit_post_callback(struct audit_buffer *ab, void *a)
692 {
693 	struct common_audit_data *ad = a;
694 	struct selinux_audit_data *sad = ad->selinux_audit_data;
695 	char *scontext = NULL;
696 	char *tcontext = NULL;
697 	const char *tclass = NULL;
698 	u32 scontext_len;
699 	u32 tcontext_len;
700 	int rc;
701 
702 	rc = security_sid_to_context(sad->ssid, &scontext,
703 				     &scontext_len);
704 	if (rc)
705 		audit_log_format(ab, " ssid=%d", sad->ssid);
706 	else
707 		audit_log_format(ab, " scontext=%s", scontext);
708 
709 	rc = security_sid_to_context(sad->tsid, &tcontext,
710 				     &tcontext_len);
711 	if (rc)
712 		audit_log_format(ab, " tsid=%d", sad->tsid);
713 	else
714 		audit_log_format(ab, " tcontext=%s", tcontext);
715 
716 	tclass = secclass_map[sad->tclass-1].name;
717 	audit_log_format(ab, " tclass=%s", tclass);
718 
719 	if (sad->denied)
720 		audit_log_format(ab, " permissive=%u", sad->result ? 0 : 1);
721 
722 	trace_selinux_audited(sad, scontext, tcontext, tclass);
723 	kfree(tcontext);
724 	kfree(scontext);
725 
726 	/* in case of invalid context report also the actual context string */
727 	rc = security_sid_to_context_inval(sad->ssid, &scontext,
728 					   &scontext_len);
729 	if (!rc && scontext) {
730 		if (scontext_len && scontext[scontext_len - 1] == '\0')
731 			scontext_len--;
732 		audit_log_format(ab, " srawcon=");
733 		audit_log_n_untrustedstring(ab, scontext, scontext_len);
734 		kfree(scontext);
735 	}
736 
737 	rc = security_sid_to_context_inval(sad->tsid, &scontext,
738 					   &scontext_len);
739 	if (!rc && scontext) {
740 		if (scontext_len && scontext[scontext_len - 1] == '\0')
741 			scontext_len--;
742 		audit_log_format(ab, " trawcon=");
743 		audit_log_n_untrustedstring(ab, scontext, scontext_len);
744 		kfree(scontext);
745 	}
746 }
747 
748 /*
749  * This is the slow part of avc audit with big stack footprint.
750  * Note that it is non-blocking and can be called from under
751  * rcu_read_lock().
752  */
753 noinline int slow_avc_audit(u32 ssid, u32 tsid, u16 tclass,
754 			    u32 requested, u32 audited, u32 denied, int result,
755 			    struct common_audit_data *a)
756 {
757 	struct common_audit_data stack_data;
758 	struct selinux_audit_data sad;
759 
760 	if (WARN_ON(!tclass || tclass >= ARRAY_SIZE(secclass_map)))
761 		return -EINVAL;
762 
763 	if (!a) {
764 		a = &stack_data;
765 		a->type = LSM_AUDIT_DATA_NONE;
766 	}
767 
768 	sad.tclass = tclass;
769 	sad.requested = requested;
770 	sad.ssid = ssid;
771 	sad.tsid = tsid;
772 	sad.audited = audited;
773 	sad.denied = denied;
774 	sad.result = result;
775 
776 	a->selinux_audit_data = &sad;
777 
778 	common_lsm_audit(a, avc_audit_pre_callback, avc_audit_post_callback);
779 	return 0;
780 }
781 
782 /**
783  * avc_add_callback - Register a callback for security events.
784  * @callback: callback function
785  * @events: security events
786  *
787  * Register a callback function for events in the set @events.
788  * Returns %0 on success or -%ENOMEM if insufficient memory
789  * exists to add the callback.
790  */
791 int __init avc_add_callback(int (*callback)(u32 event), u32 events)
792 {
793 	struct avc_callback_node *c;
794 	int rc = 0;
795 
796 	c = kmalloc_obj(*c);
797 	if (!c) {
798 		rc = -ENOMEM;
799 		goto out;
800 	}
801 
802 	c->callback = callback;
803 	c->events = events;
804 	c->next = avc_callbacks;
805 	avc_callbacks = c;
806 out:
807 	return rc;
808 }
809 
810 /**
811  * avc_update_node - Update an AVC entry
812  * @event : Updating event
813  * @perms : Permission mask bits
814  * @driver: xperm driver information
815  * @base_perm: the base permission associated with the extended permission
816  * @xperm: xperm permissions
817  * @ssid: AVC entry source sid
818  * @tsid: AVC entry target sid
819  * @tclass : AVC entry target object class
820  * @seqno : sequence number when decision was made
821  * @xpd: extended_perms_decision to be added to the node
822  * @flags: the AVC_* flags, e.g. AVC_EXTENDED_PERMS, or 0.
823  *
824  * if a valid AVC entry doesn't exist,this function returns -ENOENT.
825  * if kmalloc() called internal returns NULL, this function returns -ENOMEM.
826  * otherwise, this function updates the AVC entry. The original AVC-entry object
827  * will release later by RCU.
828  */
829 static int avc_update_node(u32 event, u32 perms, u8 driver, u8 base_perm,
830 			   u8 xperm, u32 ssid, u32 tsid, u16 tclass, u32 seqno,
831 			   struct extended_perms_decision *xpd, u32 flags)
832 {
833 	u32 hvalue;
834 	int rc = 0;
835 	unsigned long flag;
836 	struct avc_node *pos, *node, *orig = NULL;
837 	struct hlist_head *head;
838 	spinlock_t *lock;
839 
840 	node = avc_alloc_node();
841 	if (!node) {
842 		rc = -ENOMEM;
843 		goto out;
844 	}
845 
846 	/* Lock the target slot */
847 	hvalue = avc_hash(ssid, tsid, tclass);
848 
849 	head = &selinux_avc.avc_cache.slots[hvalue];
850 	lock = &selinux_avc.avc_cache.slots_lock[hvalue];
851 
852 	spin_lock_irqsave(lock, flag);
853 
854 	hlist_for_each_entry(pos, head, list) {
855 		if (ssid == pos->ae.ssid &&
856 		    tsid == pos->ae.tsid &&
857 		    tclass == pos->ae.tclass &&
858 		    seqno == pos->ae.avd.seqno){
859 			orig = pos;
860 			break;
861 		}
862 	}
863 
864 	if (!orig) {
865 		rc = -ENOENT;
866 		avc_node_kill(node);
867 		goto out_unlock;
868 	}
869 
870 	/*
871 	 * Copy and replace original node.
872 	 */
873 
874 	avc_node_populate(node, ssid, tsid, tclass, &orig->ae.avd);
875 
876 	if (orig->ae.xp_node) {
877 		rc = avc_xperms_populate(node, orig->ae.xp_node);
878 		if (rc) {
879 			avc_node_kill(node);
880 			goto out_unlock;
881 		}
882 	}
883 
884 	switch (event) {
885 	case AVC_CALLBACK_GRANT:
886 		node->ae.avd.allowed |= perms;
887 		if (node->ae.xp_node && (flags & AVC_EXTENDED_PERMS))
888 			avc_xperms_allow_perm(node->ae.xp_node, driver, base_perm, xperm);
889 		break;
890 	case AVC_CALLBACK_TRY_REVOKE:
891 	case AVC_CALLBACK_REVOKE:
892 		node->ae.avd.allowed &= ~perms;
893 		break;
894 	case AVC_CALLBACK_AUDITALLOW_ENABLE:
895 		node->ae.avd.auditallow |= perms;
896 		break;
897 	case AVC_CALLBACK_AUDITALLOW_DISABLE:
898 		node->ae.avd.auditallow &= ~perms;
899 		break;
900 	case AVC_CALLBACK_AUDITDENY_ENABLE:
901 		node->ae.avd.auditdeny |= perms;
902 		break;
903 	case AVC_CALLBACK_AUDITDENY_DISABLE:
904 		node->ae.avd.auditdeny &= ~perms;
905 		break;
906 	case AVC_CALLBACK_ADD_XPERMS:
907 		rc = avc_add_xperms_decision(node, xpd);
908 		if (rc) {
909 			avc_node_kill(node);
910 			goto out_unlock;
911 		}
912 		break;
913 	}
914 	avc_node_replace(node, orig);
915 out_unlock:
916 	spin_unlock_irqrestore(lock, flag);
917 out:
918 	return rc;
919 }
920 
921 /**
922  * avc_flush - Flush the cache
923  */
924 static void avc_flush(void)
925 {
926 	struct hlist_head *head;
927 	struct avc_node *node;
928 	spinlock_t *lock;
929 	unsigned long flag;
930 	int i;
931 
932 	for (i = 0; i < AVC_CACHE_SLOTS; i++) {
933 		head = &selinux_avc.avc_cache.slots[i];
934 		lock = &selinux_avc.avc_cache.slots_lock[i];
935 
936 		spin_lock_irqsave(lock, flag);
937 		/*
938 		 * With preemptible RCU, the outer spinlock does not
939 		 * prevent RCU grace periods from ending.
940 		 */
941 		rcu_read_lock();
942 		hlist_for_each_entry(node, head, list)
943 			avc_node_delete(node);
944 		rcu_read_unlock();
945 		spin_unlock_irqrestore(lock, flag);
946 	}
947 }
948 
949 /**
950  * avc_ss_reset - Flush the cache and revalidate migrated permissions.
951  * @seqno: policy sequence number
952  */
953 int avc_ss_reset(u32 seqno)
954 {
955 	struct avc_callback_node *c;
956 	int rc = 0, tmprc;
957 
958 	avc_flush();
959 
960 	for (c = avc_callbacks; c; c = c->next) {
961 		if (c->events & AVC_CALLBACK_RESET) {
962 			tmprc = c->callback(AVC_CALLBACK_RESET);
963 			/* save the first error encountered for the return
964 			   value and continue processing the callbacks */
965 			if (!rc)
966 				rc = tmprc;
967 		}
968 	}
969 
970 	avc_latest_notif_update(seqno, 0);
971 	return rc;
972 }
973 
974 /**
975  * avc_compute_av - Add an entry to the AVC based on the security policy
976  * @ssid: subject
977  * @tsid: object/target
978  * @tclass: object class
979  * @avd: access vector decision
980  * @xp_node: AVC extended permissions node
981  *
982  * Slow-path helper function for avc_has_perm_noaudit, when the avc_node lookup
983  * fails.  Don't inline this, since it's the slow-path and just results in a
984  * bigger stack frame.
985  */
986 static noinline void avc_compute_av(u32 ssid, u32 tsid, u16 tclass,
987 				    struct av_decision *avd,
988 				    struct avc_xperms_node *xp_node)
989 {
990 	INIT_LIST_HEAD(&xp_node->xpd_head);
991 	security_compute_av(ssid, tsid, tclass, avd, &xp_node->xp);
992 	avc_insert(ssid, tsid, tclass, avd, xp_node);
993 }
994 
995 static noinline int avc_denied(u32 ssid, u32 tsid, u16 tclass, u32 requested,
996 			       u8 driver, u8 base_perm, u8 xperm,
997 			       unsigned int flags, struct av_decision *avd)
998 {
999 	if (flags & AVC_STRICT)
1000 		return -EACCES;
1001 
1002 	if (enforcing_enabled() &&
1003 	    !(avd->flags & AVD_FLAGS_PERMISSIVE))
1004 		return -EACCES;
1005 
1006 	avc_update_node(AVC_CALLBACK_GRANT, requested, driver, base_perm,
1007 			xperm, ssid, tsid, tclass, avd->seqno, NULL, flags);
1008 	return 0;
1009 }
1010 
1011 /*
1012  * The avc extended permissions logic adds an additional 256 bits of
1013  * permissions to an avc node when extended permissions for that node are
1014  * specified in the avtab. If the additional 256 permissions is not adequate,
1015  * as-is the case with ioctls, then multiple may be chained together and the
1016  * driver field is used to specify which set contains the permission.
1017  */
1018 int avc_has_extended_perms(u32 ssid, u32 tsid, u16 tclass, u32 requested,
1019 			   u8 driver, u8 base_perm, u8 xperm,
1020 			   struct common_audit_data *ad)
1021 {
1022 	struct avc_node *node;
1023 	struct av_decision avd;
1024 	u32 denied;
1025 	struct extended_perms_decision local_xpd;
1026 	struct extended_perms_decision *xpd = NULL;
1027 	struct extended_perms_data allowed;
1028 	struct extended_perms_data auditallow;
1029 	struct extended_perms_data dontaudit;
1030 	struct avc_xperms_node local_xp_node;
1031 	struct avc_xperms_node *xp_node;
1032 	int rc = 0, rc2;
1033 
1034 	xp_node = &local_xp_node;
1035 	if (WARN_ON(!requested))
1036 		return -EACCES;
1037 
1038 	rcu_read_lock();
1039 
1040 	node = avc_lookup(ssid, tsid, tclass);
1041 	if (unlikely(!node)) {
1042 		avc_compute_av(ssid, tsid, tclass, &avd, xp_node);
1043 	} else {
1044 		memcpy(&avd, &node->ae.avd, sizeof(avd));
1045 		xp_node = node->ae.xp_node;
1046 	}
1047 	/* if extended permissions are not defined, only consider av_decision */
1048 	if (!xp_node || !xp_node->xp.len)
1049 		goto decision;
1050 
1051 	local_xpd.allowed = &allowed;
1052 	local_xpd.auditallow = &auditallow;
1053 	local_xpd.dontaudit = &dontaudit;
1054 
1055 	xpd = avc_xperms_decision_lookup(driver, base_perm, xp_node);
1056 	if (unlikely(!xpd)) {
1057 		/*
1058 		 * Compute the extended_perms_decision only if the driver
1059 		 * is flagged and the base permission is known.
1060 		 */
1061 		if (!security_xperm_test(xp_node->xp.drivers.p, driver) ||
1062 		    !(xp_node->xp.base_perms & base_perm)) {
1063 			avd.allowed &= ~requested;
1064 			goto decision;
1065 		}
1066 		rcu_read_unlock();
1067 		security_compute_xperms_decision(ssid, tsid, tclass, driver,
1068 						 base_perm, &local_xpd);
1069 		rcu_read_lock();
1070 		avc_update_node(AVC_CALLBACK_ADD_XPERMS, requested, driver,
1071 				base_perm, xperm, ssid, tsid, tclass, avd.seqno,
1072 				&local_xpd, 0);
1073 	} else {
1074 		avc_quick_copy_xperms_decision(xperm, &local_xpd, xpd);
1075 	}
1076 	xpd = &local_xpd;
1077 
1078 	if (!avc_xperms_has_perm(xpd, xperm, XPERMS_ALLOWED))
1079 		avd.allowed &= ~requested;
1080 
1081 decision:
1082 	denied = requested & ~(avd.allowed);
1083 	if (unlikely(denied))
1084 		rc = avc_denied(ssid, tsid, tclass, requested, driver,
1085 				base_perm, xperm, AVC_EXTENDED_PERMS, &avd);
1086 
1087 	rcu_read_unlock();
1088 
1089 	rc2 = avc_xperms_audit(ssid, tsid, tclass, requested,
1090 			&avd, xpd, xperm, rc, ad);
1091 	if (rc2)
1092 		return rc2;
1093 	return rc;
1094 }
1095 
1096 /**
1097  * avc_perm_nonode - Add an entry to the AVC
1098  * @ssid: subject
1099  * @tsid: object/target
1100  * @tclass: object class
1101  * @requested: requested permissions
1102  * @flags: AVC flags
1103  * @avd: access vector decision
1104  *
1105  * This is the "we have no node" part of avc_has_perm_noaudit(), which is
1106  * unlikely and needs extra stack space for the new node that we generate, so
1107  * don't inline it.
1108  */
1109 static noinline int avc_perm_nonode(u32 ssid, u32 tsid, u16 tclass,
1110 				    u32 requested, unsigned int flags,
1111 				    struct av_decision *avd)
1112 {
1113 	u32 denied;
1114 	struct avc_xperms_node xp_node;
1115 
1116 	avc_compute_av(ssid, tsid, tclass, avd, &xp_node);
1117 	denied = requested & ~(avd->allowed);
1118 	if (unlikely(denied))
1119 		return avc_denied(ssid, tsid, tclass, requested, 0, 0, 0,
1120 				  flags, avd);
1121 	return 0;
1122 }
1123 
1124 /**
1125  * avc_has_perm_noaudit - Check permissions but perform no auditing.
1126  * @ssid: source security identifier
1127  * @tsid: target security identifier
1128  * @tclass: target security class
1129  * @requested: requested permissions, interpreted based on @tclass
1130  * @flags:  AVC_STRICT or 0
1131  * @avd: access vector decisions
1132  *
1133  * Check the AVC to determine whether the @requested permissions are granted
1134  * for the SID pair (@ssid, @tsid), interpreting the permissions
1135  * based on @tclass, and call the security server on a cache miss to obtain
1136  * a new decision and add it to the cache.  Return a copy of the decisions
1137  * in @avd.  Return %0 if all @requested permissions are granted,
1138  * -%EACCES if any permissions are denied, or another -errno upon
1139  * other errors.  This function is typically called by avc_has_perm(),
1140  * but may also be called directly to separate permission checking from
1141  * auditing, e.g. in cases where a lock must be held for the check but
1142  * should be released for the auditing.
1143  */
1144 inline int avc_has_perm_noaudit(u32 ssid, u32 tsid,
1145 				u16 tclass, u32 requested,
1146 				unsigned int flags,
1147 				struct av_decision *avd)
1148 {
1149 	u32 denied;
1150 	struct avc_node *node;
1151 
1152 	if (WARN_ON(!requested))
1153 		return -EACCES;
1154 
1155 	rcu_read_lock();
1156 	node = avc_lookup(ssid, tsid, tclass);
1157 	if (unlikely(!node)) {
1158 		rcu_read_unlock();
1159 		return avc_perm_nonode(ssid, tsid, tclass, requested,
1160 				       flags, avd);
1161 	}
1162 	denied = requested & ~node->ae.avd.allowed;
1163 	memcpy(avd, &node->ae.avd, sizeof(*avd));
1164 	rcu_read_unlock();
1165 
1166 	if (unlikely(denied))
1167 		return avc_denied(ssid, tsid, tclass, requested, 0, 0, 0,
1168 				  flags, avd);
1169 	return 0;
1170 }
1171 
1172 /**
1173  * avc_has_perm - Check permissions and perform any appropriate auditing.
1174  * @ssid: source security identifier
1175  * @tsid: target security identifier
1176  * @tclass: target security class
1177  * @requested: requested permissions, interpreted based on @tclass
1178  * @auditdata: auxiliary audit data
1179  *
1180  * Check the AVC to determine whether the @requested permissions are granted
1181  * for the SID pair (@ssid, @tsid), interpreting the permissions
1182  * based on @tclass, and call the security server on a cache miss to obtain
1183  * a new decision and add it to the cache.  Audit the granting or denial of
1184  * permissions in accordance with the policy.  Return %0 if all @requested
1185  * permissions are granted, -%EACCES if any permissions are denied, or
1186  * another -errno upon other errors.
1187  */
1188 int avc_has_perm(u32 ssid, u32 tsid, u16 tclass,
1189 		 u32 requested, struct common_audit_data *auditdata)
1190 {
1191 	struct av_decision avd;
1192 	int rc, rc2;
1193 
1194 	rc = avc_has_perm_noaudit(ssid, tsid, tclass, requested, 0,
1195 				  &avd);
1196 
1197 	rc2 = avc_audit(ssid, tsid, tclass, requested, &avd, rc,
1198 			auditdata);
1199 	if (rc2)
1200 		return rc2;
1201 	return rc;
1202 }
1203 
1204 u32 avc_policy_seqno(void)
1205 {
1206 	return selinux_avc.avc_cache.latest_notif;
1207 }
1208