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CommitLineData
1da177e4
LT
1/*
2 * Implementation of the kernel access vector cache (AVC).
3 *
4 * Authors: Stephen Smalley, <sds@epoch.ncsc.mil>
95fff33b 5 * James Morris <jmorris@redhat.com>
1da177e4
LT
6 *
7 * Update: KaiGai, Kohei <kaigai@ak.jp.nec.com>
95fff33b 8 * Replaced the avc_lock spinlock by RCU.
1da177e4
LT
9 *
10 * Copyright (C) 2003 Red Hat, Inc., James Morris <jmorris@redhat.com>
11 *
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License version 2,
95fff33b 14 * as published by the Free Software Foundation.
1da177e4
LT
15 */
16#include <linux/types.h>
17#include <linux/stddef.h>
18#include <linux/kernel.h>
19#include <linux/slab.h>
20#include <linux/fs.h>
21#include <linux/dcache.h>
22#include <linux/init.h>
23#include <linux/skbuff.h>
24#include <linux/percpu.h>
25#include <net/sock.h>
26#include <linux/un.h>
27#include <net/af_unix.h>
28#include <linux/ip.h>
29#include <linux/audit.h>
30#include <linux/ipv6.h>
31#include <net/ipv6.h>
32#include "avc.h"
33#include "avc_ss.h"
c6d3aaa4 34#include "classmap.h"
5c458998 35
1da177e4
LT
36#define AVC_CACHE_SLOTS 512
37#define AVC_DEF_CACHE_THRESHOLD 512
38#define AVC_CACHE_RECLAIM 16
39
40#ifdef CONFIG_SECURITY_SELINUX_AVC_STATS
044aea9b 41#define avc_cache_stats_incr(field) this_cpu_inc(avc_cache_stats.field)
1da177e4
LT
42#else
43#define avc_cache_stats_incr(field) do {} while (0)
44#endif
45
46struct avc_entry {
47 u32 ssid;
48 u32 tsid;
49 u16 tclass;
50 struct av_decision avd;
1da177e4
LT
51};
52
53struct avc_node {
54 struct avc_entry ae;
26036651 55 struct hlist_node list; /* anchored in avc_cache->slots[i] */
95fff33b 56 struct rcu_head rhead;
1da177e4
LT
57};
58
59struct avc_cache {
26036651 60 struct hlist_head slots[AVC_CACHE_SLOTS]; /* head for avc_node->list */
1da177e4
LT
61 spinlock_t slots_lock[AVC_CACHE_SLOTS]; /* lock for writes */
62 atomic_t lru_hint; /* LRU hint for reclaim scan */
63 atomic_t active_nodes;
64 u32 latest_notif; /* latest revocation notification */
65};
66
67struct avc_callback_node {
68 int (*callback) (u32 event, u32 ssid, u32 tsid,
95fff33b
EP
69 u16 tclass, u32 perms,
70 u32 *out_retained);
1da177e4
LT
71 u32 events;
72 u32 ssid;
73 u32 tsid;
74 u16 tclass;
75 u32 perms;
76 struct avc_callback_node *next;
77};
78
79/* Exported via selinufs */
80unsigned int avc_cache_threshold = AVC_DEF_CACHE_THRESHOLD;
81
82#ifdef CONFIG_SECURITY_SELINUX_AVC_STATS
83DEFINE_PER_CPU(struct avc_cache_stats, avc_cache_stats) = { 0 };
84#endif
85
86static struct avc_cache avc_cache;
87static struct avc_callback_node *avc_callbacks;
e18b890b 88static struct kmem_cache *avc_node_cachep;
1da177e4
LT
89
90static inline int avc_hash(u32 ssid, u32 tsid, u16 tclass)
91{
92 return (ssid ^ (tsid<<2) ^ (tclass<<4)) & (AVC_CACHE_SLOTS - 1);
93}
94
95/**
96 * avc_dump_av - Display an access vector in human-readable form.
97 * @tclass: target security class
98 * @av: access vector
99 */
44c2d9bd 100static void avc_dump_av(struct audit_buffer *ab, u16 tclass, u32 av)
1da177e4 101{
c6d3aaa4
SS
102 const char **perms;
103 int i, perm;
1da177e4
LT
104
105 if (av == 0) {
106 audit_log_format(ab, " null");
107 return;
108 }
109
c6d3aaa4 110 perms = secclass_map[tclass-1].perms;
1da177e4
LT
111
112 audit_log_format(ab, " {");
113 i = 0;
114 perm = 1;
c6d3aaa4 115 while (i < (sizeof(av) * 8)) {
0bce9527 116 if ((perm & av) && perms[i]) {
c6d3aaa4 117 audit_log_format(ab, " %s", perms[i]);
1da177e4
LT
118 av &= ~perm;
119 }
120 i++;
121 perm <<= 1;
122 }
123
1da177e4
LT
124 if (av)
125 audit_log_format(ab, " 0x%x", av);
126
127 audit_log_format(ab, " }");
128}
129
130/**
131 * avc_dump_query - Display a SID pair and a class in human-readable form.
132 * @ssid: source security identifier
133 * @tsid: target security identifier
134 * @tclass: target security class
135 */
136static void avc_dump_query(struct audit_buffer *ab, u32 ssid, u32 tsid, u16 tclass)
137{
138 int rc;
139 char *scontext;
140 u32 scontext_len;
141
95fff33b 142 rc = security_sid_to_context(ssid, &scontext, &scontext_len);
1da177e4
LT
143 if (rc)
144 audit_log_format(ab, "ssid=%d", ssid);
145 else {
146 audit_log_format(ab, "scontext=%s", scontext);
147 kfree(scontext);
148 }
149
150 rc = security_sid_to_context(tsid, &scontext, &scontext_len);
151 if (rc)
152 audit_log_format(ab, " tsid=%d", tsid);
153 else {
154 audit_log_format(ab, " tcontext=%s", scontext);
155 kfree(scontext);
156 }
a764ae4b 157
c6d3aaa4
SS
158 BUG_ON(tclass >= ARRAY_SIZE(secclass_map));
159 audit_log_format(ab, " tclass=%s", secclass_map[tclass-1].name);
1da177e4
LT
160}
161
162/**
163 * avc_init - Initialize the AVC.
164 *
165 * Initialize the access vector cache.
166 */
167void __init avc_init(void)
168{
169 int i;
170
171 for (i = 0; i < AVC_CACHE_SLOTS; i++) {
26036651 172 INIT_HLIST_HEAD(&avc_cache.slots[i]);
1da177e4
LT
173 spin_lock_init(&avc_cache.slots_lock[i]);
174 }
175 atomic_set(&avc_cache.active_nodes, 0);
176 atomic_set(&avc_cache.lru_hint, 0);
177
178 avc_node_cachep = kmem_cache_create("avc_node", sizeof(struct avc_node),
20c2df83 179 0, SLAB_PANIC, NULL);
1da177e4 180
9ad9ad38 181 audit_log(current->audit_context, GFP_KERNEL, AUDIT_KERNEL, "AVC INITIALIZED\n");
1da177e4
LT
182}
183
184int avc_get_hash_stats(char *page)
185{
186 int i, chain_len, max_chain_len, slots_used;
187 struct avc_node *node;
26036651 188 struct hlist_head *head;
1da177e4
LT
189
190 rcu_read_lock();
191
192 slots_used = 0;
193 max_chain_len = 0;
194 for (i = 0; i < AVC_CACHE_SLOTS; i++) {
edf3d1ae 195 head = &avc_cache.slots[i];
26036651
EP
196 if (!hlist_empty(head)) {
197 struct hlist_node *next;
198
1da177e4
LT
199 slots_used++;
200 chain_len = 0;
26036651 201 hlist_for_each_entry_rcu(node, next, head, list)
1da177e4
LT
202 chain_len++;
203 if (chain_len > max_chain_len)
204 max_chain_len = chain_len;
205 }
206 }
207
208 rcu_read_unlock();
209
210 return scnprintf(page, PAGE_SIZE, "entries: %d\nbuckets used: %d/%d\n"
211 "longest chain: %d\n",
212 atomic_read(&avc_cache.active_nodes),
213 slots_used, AVC_CACHE_SLOTS, max_chain_len);
214}
215
216static void avc_node_free(struct rcu_head *rhead)
217{
218 struct avc_node *node = container_of(rhead, struct avc_node, rhead);
219 kmem_cache_free(avc_node_cachep, node);
220 avc_cache_stats_incr(frees);
221}
222
223static void avc_node_delete(struct avc_node *node)
224{
26036651 225 hlist_del_rcu(&node->list);
1da177e4
LT
226 call_rcu(&node->rhead, avc_node_free);
227 atomic_dec(&avc_cache.active_nodes);
228}
229
230static void avc_node_kill(struct avc_node *node)
231{
232 kmem_cache_free(avc_node_cachep, node);
233 avc_cache_stats_incr(frees);
234 atomic_dec(&avc_cache.active_nodes);
235}
236
237static void avc_node_replace(struct avc_node *new, struct avc_node *old)
238{
26036651 239 hlist_replace_rcu(&old->list, &new->list);
1da177e4
LT
240 call_rcu(&old->rhead, avc_node_free);
241 atomic_dec(&avc_cache.active_nodes);
242}
243
244static inline int avc_reclaim_node(void)
245{
246 struct avc_node *node;
247 int hvalue, try, ecx;
248 unsigned long flags;
26036651
EP
249 struct hlist_head *head;
250 struct hlist_node *next;
edf3d1ae 251 spinlock_t *lock;
1da177e4 252
95fff33b 253 for (try = 0, ecx = 0; try < AVC_CACHE_SLOTS; try++) {
1da177e4 254 hvalue = atomic_inc_return(&avc_cache.lru_hint) & (AVC_CACHE_SLOTS - 1);
edf3d1ae
EP
255 head = &avc_cache.slots[hvalue];
256 lock = &avc_cache.slots_lock[hvalue];
1da177e4 257
edf3d1ae 258 if (!spin_trylock_irqsave(lock, flags))
1da177e4
LT
259 continue;
260
61844250 261 rcu_read_lock();
26036651 262 hlist_for_each_entry(node, next, head, list) {
906d27d9
EP
263 avc_node_delete(node);
264 avc_cache_stats_incr(reclaims);
265 ecx++;
266 if (ecx >= AVC_CACHE_RECLAIM) {
267 rcu_read_unlock();
edf3d1ae 268 spin_unlock_irqrestore(lock, flags);
906d27d9 269 goto out;
1da177e4
LT
270 }
271 }
61844250 272 rcu_read_unlock();
edf3d1ae 273 spin_unlock_irqrestore(lock, flags);
1da177e4
LT
274 }
275out:
276 return ecx;
277}
278
279static struct avc_node *avc_alloc_node(void)
280{
281 struct avc_node *node;
282
c3762229 283 node = kmem_cache_zalloc(avc_node_cachep, GFP_ATOMIC);
1da177e4
LT
284 if (!node)
285 goto out;
286
26036651 287 INIT_HLIST_NODE(&node->list);
1da177e4
LT
288 avc_cache_stats_incr(allocations);
289
290 if (atomic_inc_return(&avc_cache.active_nodes) > avc_cache_threshold)
291 avc_reclaim_node();
292
293out:
294 return node;
295}
296
21193dcd 297static void avc_node_populate(struct avc_node *node, u32 ssid, u32 tsid, u16 tclass, struct av_decision *avd)
1da177e4
LT
298{
299 node->ae.ssid = ssid;
300 node->ae.tsid = tsid;
301 node->ae.tclass = tclass;
21193dcd 302 memcpy(&node->ae.avd, avd, sizeof(node->ae.avd));
1da177e4
LT
303}
304
305static inline struct avc_node *avc_search_node(u32 ssid, u32 tsid, u16 tclass)
306{
307 struct avc_node *node, *ret = NULL;
308 int hvalue;
26036651
EP
309 struct hlist_head *head;
310 struct hlist_node *next;
1da177e4
LT
311
312 hvalue = avc_hash(ssid, tsid, tclass);
edf3d1ae 313 head = &avc_cache.slots[hvalue];
26036651 314 hlist_for_each_entry_rcu(node, next, head, list) {
1da177e4
LT
315 if (ssid == node->ae.ssid &&
316 tclass == node->ae.tclass &&
317 tsid == node->ae.tsid) {
318 ret = node;
319 break;
320 }
321 }
322
1da177e4
LT
323 return ret;
324}
325
326/**
327 * avc_lookup - Look up an AVC entry.
328 * @ssid: source security identifier
329 * @tsid: target security identifier
330 * @tclass: target security class
1da177e4
LT
331 *
332 * Look up an AVC entry that is valid for the
1da177e4
LT
333 * (@ssid, @tsid), interpreting the permissions
334 * based on @tclass. If a valid AVC entry exists,
6382dc33 335 * then this function returns the avc_node.
1da177e4
LT
336 * Otherwise, this function returns NULL.
337 */
f1c6381a 338static struct avc_node *avc_lookup(u32 ssid, u32 tsid, u16 tclass)
1da177e4
LT
339{
340 struct avc_node *node;
341
342 avc_cache_stats_incr(lookups);
343 node = avc_search_node(ssid, tsid, tclass);
344
f1c6381a 345 if (node)
1da177e4 346 avc_cache_stats_incr(hits);
f1c6381a
EP
347 else
348 avc_cache_stats_incr(misses);
1da177e4 349
1da177e4
LT
350 return node;
351}
352
353static int avc_latest_notif_update(int seqno, int is_insert)
354{
355 int ret = 0;
356 static DEFINE_SPINLOCK(notif_lock);
357 unsigned long flag;
358
359 spin_lock_irqsave(&notif_lock, flag);
360 if (is_insert) {
361 if (seqno < avc_cache.latest_notif) {
744ba35e 362 printk(KERN_WARNING "SELinux: avc: seqno %d < latest_notif %d\n",
1da177e4
LT
363 seqno, avc_cache.latest_notif);
364 ret = -EAGAIN;
365 }
366 } else {
367 if (seqno > avc_cache.latest_notif)
368 avc_cache.latest_notif = seqno;
369 }
370 spin_unlock_irqrestore(&notif_lock, flag);
371
372 return ret;
373}
374
375/**
376 * avc_insert - Insert an AVC entry.
377 * @ssid: source security identifier
378 * @tsid: target security identifier
379 * @tclass: target security class
21193dcd 380 * @avd: resulting av decision
1da177e4
LT
381 *
382 * Insert an AVC entry for the SID pair
383 * (@ssid, @tsid) and class @tclass.
384 * The access vectors and the sequence number are
385 * normally provided by the security server in
386 * response to a security_compute_av() call. If the
21193dcd 387 * sequence number @avd->seqno is not less than the latest
1da177e4
LT
388 * revocation notification, then the function copies
389 * the access vectors into a cache entry, returns
390 * avc_node inserted. Otherwise, this function returns NULL.
391 */
21193dcd 392static struct avc_node *avc_insert(u32 ssid, u32 tsid, u16 tclass, struct av_decision *avd)
1da177e4
LT
393{
394 struct avc_node *pos, *node = NULL;
395 int hvalue;
396 unsigned long flag;
397
21193dcd 398 if (avc_latest_notif_update(avd->seqno, 1))
1da177e4
LT
399 goto out;
400
401 node = avc_alloc_node();
402 if (node) {
26036651
EP
403 struct hlist_head *head;
404 struct hlist_node *next;
edf3d1ae
EP
405 spinlock_t *lock;
406
1da177e4 407 hvalue = avc_hash(ssid, tsid, tclass);
21193dcd 408 avc_node_populate(node, ssid, tsid, tclass, avd);
1da177e4 409
edf3d1ae
EP
410 head = &avc_cache.slots[hvalue];
411 lock = &avc_cache.slots_lock[hvalue];
412
413 spin_lock_irqsave(lock, flag);
26036651 414 hlist_for_each_entry(pos, next, head, list) {
1da177e4
LT
415 if (pos->ae.ssid == ssid &&
416 pos->ae.tsid == tsid &&
417 pos->ae.tclass == tclass) {
95fff33b 418 avc_node_replace(node, pos);
1da177e4
LT
419 goto found;
420 }
421 }
26036651 422 hlist_add_head_rcu(&node->list, head);
1da177e4 423found:
edf3d1ae 424 spin_unlock_irqrestore(lock, flag);
1da177e4
LT
425 }
426out:
427 return node;
428}
429
2bf49690
TL
430/**
431 * avc_audit_pre_callback - SELinux specific information
432 * will be called by generic audit code
433 * @ab: the audit buffer
434 * @a: audit_data
435 */
436static void avc_audit_pre_callback(struct audit_buffer *ab, void *a)
1da177e4 437{
2bf49690
TL
438 struct common_audit_data *ad = a;
439 audit_log_format(ab, "avc: %s ",
440 ad->selinux_audit_data.denied ? "denied" : "granted");
441 avc_dump_av(ab, ad->selinux_audit_data.tclass,
442 ad->selinux_audit_data.audited);
443 audit_log_format(ab, " for ");
1da177e4
LT
444}
445
2bf49690
TL
446/**
447 * avc_audit_post_callback - SELinux specific information
448 * will be called by generic audit code
449 * @ab: the audit buffer
450 * @a: audit_data
451 */
452static void avc_audit_post_callback(struct audit_buffer *ab, void *a)
1da177e4 453{
2bf49690
TL
454 struct common_audit_data *ad = a;
455 audit_log_format(ab, " ");
456 avc_dump_query(ab, ad->selinux_audit_data.ssid,
457 ad->selinux_audit_data.tsid,
458 ad->selinux_audit_data.tclass);
1da177e4
LT
459}
460
461/**
462 * avc_audit - Audit the granting or denial of permissions.
463 * @ssid: source security identifier
464 * @tsid: target security identifier
465 * @tclass: target security class
466 * @requested: requested permissions
467 * @avd: access vector decisions
468 * @result: result from avc_has_perm_noaudit
469 * @a: auxiliary audit data
9ade0cf4 470 * @flags: VFS walk flags
1da177e4
LT
471 *
472 * Audit the granting or denial of permissions in accordance
473 * with the policy. This function is typically called by
474 * avc_has_perm() after a permission check, but can also be
475 * called directly by callers who use avc_has_perm_noaudit()
476 * in order to separate the permission check from the auditing.
477 * For example, this separation is useful when the permission check must
478 * be performed under a lock, to allow the lock to be released
479 * before calling the auditing code.
480 */
9ade0cf4 481int avc_audit(u32 ssid, u32 tsid,
95fff33b 482 u16 tclass, u32 requested,
9ade0cf4
EP
483 struct av_decision *avd, int result, struct common_audit_data *a,
484 unsigned flags)
1da177e4 485{
2bf49690 486 struct common_audit_data stack_data;
be940d62 487 u32 denied, audited;
be940d62 488 denied = requested & ~avd->allowed;
b782e0a6 489 if (denied) {
b6cac5a3 490 audited = denied & avd->auditdeny;
b782e0a6
EP
491 /*
492 * a->selinux_audit_data.auditdeny is TRICKY! Setting a bit in
493 * this field means that ANY denials should NOT be audited if
494 * the policy contains an explicit dontaudit rule for that
495 * permission. Take notice that this is unrelated to the
496 * actual permissions that were denied. As an example lets
497 * assume:
498 *
499 * denied == READ
500 * avd.auditdeny & ACCESS == 0 (not set means explicit rule)
501 * selinux_audit_data.auditdeny & ACCESS == 1
502 *
503 * We will NOT audit the denial even though the denied
504 * permission was READ and the auditdeny checks were for
505 * ACCESS
506 */
507 if (a &&
508 a->selinux_audit_data.auditdeny &&
509 !(a->selinux_audit_data.auditdeny & avd->auditdeny))
510 audited = 0;
511 } else if (result)
be940d62 512 audited = denied = requested;
b6cac5a3
SS
513 else
514 audited = requested & avd->auditallow;
515 if (!audited)
9ade0cf4
EP
516 return 0;
517
2bf49690
TL
518 if (!a) {
519 a = &stack_data;
cb84aa9b 520 COMMON_AUDIT_DATA_INIT(a, NONE);
be940d62 521 }
9ade0cf4
EP
522
523 /*
524 * When in a RCU walk do the audit on the RCU retry. This is because
525 * the collection of the dname in an inode audit message is not RCU
526 * safe. Note this may drop some audits when the situation changes
527 * during retry. However this is logically just as if the operation
528 * happened a little later.
529 */
530 if ((a->type == LSM_AUDIT_DATA_FS) &&
531 (flags & IPERM_FLAG_RCU))
532 return -ECHILD;
533
2bf49690
TL
534 a->selinux_audit_data.tclass = tclass;
535 a->selinux_audit_data.requested = requested;
536 a->selinux_audit_data.ssid = ssid;
537 a->selinux_audit_data.tsid = tsid;
538 a->selinux_audit_data.audited = audited;
539 a->selinux_audit_data.denied = denied;
540 a->lsm_pre_audit = avc_audit_pre_callback;
541 a->lsm_post_audit = avc_audit_post_callback;
542 common_lsm_audit(a);
9ade0cf4 543 return 0;
1da177e4
LT
544}
545
546/**
547 * avc_add_callback - Register a callback for security events.
548 * @callback: callback function
549 * @events: security events
550 * @ssid: source security identifier or %SECSID_WILD
551 * @tsid: target security identifier or %SECSID_WILD
552 * @tclass: target security class
553 * @perms: permissions
554 *
555 * Register a callback function for events in the set @events
6382dc33 556 * related to the SID pair (@ssid, @tsid)
1da177e4
LT
557 * and the permissions @perms, interpreting
558 * @perms based on @tclass. Returns %0 on success or
559 * -%ENOMEM if insufficient memory exists to add the callback.
560 */
561int avc_add_callback(int (*callback)(u32 event, u32 ssid, u32 tsid,
95fff33b
EP
562 u16 tclass, u32 perms,
563 u32 *out_retained),
564 u32 events, u32 ssid, u32 tsid,
565 u16 tclass, u32 perms)
1da177e4
LT
566{
567 struct avc_callback_node *c;
568 int rc = 0;
569
570 c = kmalloc(sizeof(*c), GFP_ATOMIC);
571 if (!c) {
572 rc = -ENOMEM;
573 goto out;
574 }
575
576 c->callback = callback;
577 c->events = events;
578 c->ssid = ssid;
579 c->tsid = tsid;
580 c->perms = perms;
581 c->next = avc_callbacks;
582 avc_callbacks = c;
583out:
584 return rc;
585}
586
587static inline int avc_sidcmp(u32 x, u32 y)
588{
589 return (x == y || x == SECSID_WILD || y == SECSID_WILD);
590}
591
592/**
593 * avc_update_node Update an AVC entry
594 * @event : Updating event
595 * @perms : Permission mask bits
596 * @ssid,@tsid,@tclass : identifier of an AVC entry
a5dda683 597 * @seqno : sequence number when decision was made
1da177e4
LT
598 *
599 * if a valid AVC entry doesn't exist,this function returns -ENOENT.
600 * if kmalloc() called internal returns NULL, this function returns -ENOMEM.
6382dc33 601 * otherwise, this function updates the AVC entry. The original AVC-entry object
1da177e4
LT
602 * will release later by RCU.
603 */
a5dda683
EP
604static int avc_update_node(u32 event, u32 perms, u32 ssid, u32 tsid, u16 tclass,
605 u32 seqno)
1da177e4
LT
606{
607 int hvalue, rc = 0;
608 unsigned long flag;
609 struct avc_node *pos, *node, *orig = NULL;
26036651
EP
610 struct hlist_head *head;
611 struct hlist_node *next;
edf3d1ae 612 spinlock_t *lock;
1da177e4
LT
613
614 node = avc_alloc_node();
615 if (!node) {
616 rc = -ENOMEM;
617 goto out;
618 }
619
620 /* Lock the target slot */
621 hvalue = avc_hash(ssid, tsid, tclass);
1da177e4 622
edf3d1ae
EP
623 head = &avc_cache.slots[hvalue];
624 lock = &avc_cache.slots_lock[hvalue];
625
626 spin_lock_irqsave(lock, flag);
627
26036651 628 hlist_for_each_entry(pos, next, head, list) {
95fff33b
EP
629 if (ssid == pos->ae.ssid &&
630 tsid == pos->ae.tsid &&
a5dda683
EP
631 tclass == pos->ae.tclass &&
632 seqno == pos->ae.avd.seqno){
1da177e4
LT
633 orig = pos;
634 break;
635 }
636 }
637
638 if (!orig) {
639 rc = -ENOENT;
640 avc_node_kill(node);
641 goto out_unlock;
642 }
643
644 /*
645 * Copy and replace original node.
646 */
647
21193dcd 648 avc_node_populate(node, ssid, tsid, tclass, &orig->ae.avd);
1da177e4
LT
649
650 switch (event) {
651 case AVC_CALLBACK_GRANT:
652 node->ae.avd.allowed |= perms;
653 break;
654 case AVC_CALLBACK_TRY_REVOKE:
655 case AVC_CALLBACK_REVOKE:
656 node->ae.avd.allowed &= ~perms;
657 break;
658 case AVC_CALLBACK_AUDITALLOW_ENABLE:
659 node->ae.avd.auditallow |= perms;
660 break;
661 case AVC_CALLBACK_AUDITALLOW_DISABLE:
662 node->ae.avd.auditallow &= ~perms;
663 break;
664 case AVC_CALLBACK_AUDITDENY_ENABLE:
665 node->ae.avd.auditdeny |= perms;
666 break;
667 case AVC_CALLBACK_AUDITDENY_DISABLE:
668 node->ae.avd.auditdeny &= ~perms;
669 break;
670 }
671 avc_node_replace(node, orig);
672out_unlock:
edf3d1ae 673 spin_unlock_irqrestore(lock, flag);
1da177e4
LT
674out:
675 return rc;
676}
677
678/**
008574b1 679 * avc_flush - Flush the cache
1da177e4 680 */
008574b1 681static void avc_flush(void)
1da177e4 682{
26036651
EP
683 struct hlist_head *head;
684 struct hlist_node *next;
008574b1 685 struct avc_node *node;
edf3d1ae 686 spinlock_t *lock;
008574b1
EP
687 unsigned long flag;
688 int i;
1da177e4
LT
689
690 for (i = 0; i < AVC_CACHE_SLOTS; i++) {
edf3d1ae
EP
691 head = &avc_cache.slots[i];
692 lock = &avc_cache.slots_lock[i];
693
694 spin_lock_irqsave(lock, flag);
61844250
PM
695 /*
696 * With preemptable RCU, the outer spinlock does not
697 * prevent RCU grace periods from ending.
698 */
699 rcu_read_lock();
26036651 700 hlist_for_each_entry(node, next, head, list)
1da177e4 701 avc_node_delete(node);
61844250 702 rcu_read_unlock();
edf3d1ae 703 spin_unlock_irqrestore(lock, flag);
1da177e4 704 }
008574b1
EP
705}
706
707/**
708 * avc_ss_reset - Flush the cache and revalidate migrated permissions.
709 * @seqno: policy sequence number
710 */
711int avc_ss_reset(u32 seqno)
712{
713 struct avc_callback_node *c;
714 int rc = 0, tmprc;
715
716 avc_flush();
1da177e4
LT
717
718 for (c = avc_callbacks; c; c = c->next) {
719 if (c->events & AVC_CALLBACK_RESET) {
376bd9cb 720 tmprc = c->callback(AVC_CALLBACK_RESET,
95fff33b 721 0, 0, 0, 0, NULL);
376bd9cb
DG
722 /* save the first error encountered for the return
723 value and continue processing the callbacks */
724 if (!rc)
725 rc = tmprc;
1da177e4
LT
726 }
727 }
728
729 avc_latest_notif_update(seqno, 0);
1da177e4
LT
730 return rc;
731}
732
733/**
734 * avc_has_perm_noaudit - Check permissions but perform no auditing.
735 * @ssid: source security identifier
736 * @tsid: target security identifier
737 * @tclass: target security class
738 * @requested: requested permissions, interpreted based on @tclass
2c3c05db 739 * @flags: AVC_STRICT or 0
1da177e4
LT
740 * @avd: access vector decisions
741 *
742 * Check the AVC to determine whether the @requested permissions are granted
743 * for the SID pair (@ssid, @tsid), interpreting the permissions
744 * based on @tclass, and call the security server on a cache miss to obtain
745 * a new decision and add it to the cache. Return a copy of the decisions
746 * in @avd. Return %0 if all @requested permissions are granted,
747 * -%EACCES if any permissions are denied, or another -errno upon
748 * other errors. This function is typically called by avc_has_perm(),
749 * but may also be called directly to separate permission checking from
750 * auditing, e.g. in cases where a lock must be held for the check but
751 * should be released for the auditing.
752 */
753int avc_has_perm_noaudit(u32 ssid, u32 tsid,
2c3c05db
SS
754 u16 tclass, u32 requested,
755 unsigned flags,
21193dcd 756 struct av_decision *in_avd)
1da177e4
LT
757{
758 struct avc_node *node;
21193dcd 759 struct av_decision avd_entry, *avd;
1da177e4
LT
760 int rc = 0;
761 u32 denied;
762
eda4f69c
EP
763 BUG_ON(!requested);
764
1da177e4
LT
765 rcu_read_lock();
766
f1c6381a 767 node = avc_lookup(ssid, tsid, tclass);
1da177e4
LT
768 if (!node) {
769 rcu_read_unlock();
21193dcd
EP
770
771 if (in_avd)
772 avd = in_avd;
773 else
774 avd = &avd_entry;
775
19439d05 776 security_compute_av(ssid, tsid, tclass, avd);
1da177e4 777 rcu_read_lock();
21193dcd
EP
778 node = avc_insert(ssid, tsid, tclass, avd);
779 } else {
780 if (in_avd)
781 memcpy(in_avd, &node->ae.avd, sizeof(*in_avd));
782 avd = &node->ae.avd;
1da177e4
LT
783 }
784
21193dcd 785 denied = requested & ~(avd->allowed);
1da177e4 786
eda4f69c 787 if (denied) {
64dbf074 788 if (flags & AVC_STRICT)
1da177e4 789 rc = -EACCES;
8a6f83af 790 else if (!selinux_enforcing || (avd->flags & AVD_FLAGS_PERMISSIVE))
64dbf074 791 avc_update_node(AVC_CALLBACK_GRANT, requested, ssid,
21193dcd 792 tsid, tclass, avd->seqno);
1da177e4 793 else
64dbf074 794 rc = -EACCES;
1da177e4
LT
795 }
796
797 rcu_read_unlock();
1da177e4
LT
798 return rc;
799}
800
801/**
802 * avc_has_perm - Check permissions and perform any appropriate auditing.
803 * @ssid: source security identifier
804 * @tsid: target security identifier
805 * @tclass: target security class
806 * @requested: requested permissions, interpreted based on @tclass
807 * @auditdata: auxiliary audit data
9ade0cf4 808 * @flags: VFS walk flags
1da177e4
LT
809 *
810 * Check the AVC to determine whether the @requested permissions are granted
811 * for the SID pair (@ssid, @tsid), interpreting the permissions
812 * based on @tclass, and call the security server on a cache miss to obtain
813 * a new decision and add it to the cache. Audit the granting or denial of
814 * permissions in accordance with the policy. Return %0 if all @requested
815 * permissions are granted, -%EACCES if any permissions are denied, or
816 * another -errno upon other errors.
817 */
9ade0cf4
EP
818int avc_has_perm_flags(u32 ssid, u32 tsid, u16 tclass,
819 u32 requested, struct common_audit_data *auditdata,
820 unsigned flags)
1da177e4
LT
821{
822 struct av_decision avd;
9ade0cf4 823 int rc, rc2;
1da177e4 824
2c3c05db 825 rc = avc_has_perm_noaudit(ssid, tsid, tclass, requested, 0, &avd);
9ade0cf4
EP
826
827 rc2 = avc_audit(ssid, tsid, tclass, requested, &avd, rc, auditdata,
828 flags);
829 if (rc2)
830 return rc2;
1da177e4
LT
831 return rc;
832}
788e7dd4
YN
833
834u32 avc_policy_seqno(void)
835{
836 return avc_cache.latest_notif;
837}
89c86576
TL
838
839void avc_disable(void)
840{
5224ee08
EP
841 /*
842 * If you are looking at this because you have realized that we are
843 * not destroying the avc_node_cachep it might be easy to fix, but
844 * I don't know the memory barrier semantics well enough to know. It's
845 * possible that some other task dereferenced security_ops when
846 * it still pointed to selinux operations. If that is the case it's
847 * possible that it is about to use the avc and is about to need the
848 * avc_node_cachep. I know I could wrap the security.c security_ops call
849 * in an rcu_lock, but seriously, it's not worth it. Instead I just flush
850 * the cache and get that memory back.
851 */
852 if (avc_node_cachep) {
853 avc_flush();
854 /* kmem_cache_destroy(avc_node_cachep); */
855 }
89c86576 856}