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1a59d1b8 1// SPDX-License-Identifier: GPL-2.0-or-later
85c8721f 2/* audit.c -- Auditing support
1da177e4
LT
3 * Gateway between the kernel (e.g., selinux) and the user-space audit daemon.
4 * System-call specific features have moved to auditsc.c
5 *
6a01b07f 6 * Copyright 2003-2007 Red Hat Inc., Durham, North Carolina.
1da177e4
LT
7 * All Rights Reserved.
8 *
1da177e4
LT
9 * Written by Rickard E. (Rik) Faith <faith@redhat.com>
10 *
d7a96f3a 11 * Goals: 1) Integrate fully with Security Modules.
1da177e4
LT
12 * 2) Minimal run-time overhead:
13 * a) Minimal when syscall auditing is disabled (audit_enable=0).
14 * b) Small when syscall auditing is enabled and no audit record
15 * is generated (defer as much work as possible to record
16 * generation time):
17 * i) context is allocated,
18 * ii) names from getname are stored without a copy, and
19 * iii) inode information stored from path_lookup.
20 * 3) Ability to disable syscall auditing at boot time (audit=0).
21 * 4) Usable by other parts of the kernel (if audit_log* is called,
22 * then a syscall record will be generated automatically for the
23 * current syscall).
24 * 5) Netlink interface to user-space.
25 * 6) Support low-overhead kernel-based filtering to minimize the
26 * information that must be passed to user-space.
27 *
d590dca6
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28 * Audit userspace, documentation, tests, and bug/issue trackers:
29 * https://github.com/linux-audit
1da177e4
LT
30 */
31
d957f7b7
JP
32#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
33
5b282552 34#include <linux/file.h>
1da177e4 35#include <linux/init.h>
7153e402 36#include <linux/types.h>
60063497 37#include <linux/atomic.h>
1da177e4 38#include <linux/mm.h>
9984de1a 39#include <linux/export.h>
5a0e3ad6 40#include <linux/slab.h>
b7d11258
DW
41#include <linux/err.h>
42#include <linux/kthread.h>
46e959ea 43#include <linux/kernel.h>
b24a30a7 44#include <linux/syscalls.h>
5b52330b
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45#include <linux/spinlock.h>
46#include <linux/rcupdate.h>
47#include <linux/mutex.h>
48#include <linux/gfp.h>
b6c7c115 49#include <linux/pid.h>
1da177e4
LT
50
51#include <linux/audit.h>
52
53#include <net/sock.h>
93315ed6 54#include <net/netlink.h>
1da177e4 55#include <linux/skbuff.h>
131ad62d
MDF
56#ifdef CONFIG_SECURITY
57#include <linux/security.h>
58#endif
7dfb7103 59#include <linux/freezer.h>
34e36d8e 60#include <linux/pid_namespace.h>
33faba7f 61#include <net/netns/generic.h>
3dc7e315
DG
62
63#include "audit.h"
1da177e4 64
a3f07114 65/* No auditing will take place until audit_initialized == AUDIT_INITIALIZED.
1da177e4 66 * (Initialization happens after skb_init is called.) */
a3f07114
EP
67#define AUDIT_DISABLED -1
68#define AUDIT_UNINITIALIZED 0
69#define AUDIT_INITIALIZED 1
ba59eae7 70static int audit_initialized = AUDIT_UNINITIALIZED;
1da177e4 71
173743dd 72u32 audit_enabled = AUDIT_OFF;
b3b4fdf6 73bool audit_ever_enabled = !!AUDIT_OFF;
1da177e4 74
ae9d67af
JE
75EXPORT_SYMBOL_GPL(audit_enabled);
76
1da177e4 77/* Default state when kernel boots without any parameters. */
173743dd 78static u32 audit_default = AUDIT_OFF;
1da177e4
LT
79
80/* If auditing cannot proceed, audit_failure selects what happens. */
3e1d0bb6 81static u32 audit_failure = AUDIT_FAIL_PRINTK;
1da177e4 82
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83/* private audit network namespace index */
84static unsigned int audit_net_id;
85
86/**
87 * struct audit_net - audit private network namespace data
88 * @sk: communication socket
89 */
90struct audit_net {
91 struct sock *sk;
92};
93
94/**
95 * struct auditd_connection - kernel/auditd connection state
96 * @pid: auditd PID
97 * @portid: netlink portid
98 * @net: the associated network namespace
48d0e023 99 * @rcu: RCU head
5b52330b
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100 *
101 * Description:
102 * This struct is RCU protected; you must either hold the RCU lock for reading
48d0e023 103 * or the associated spinlock for writing.
75c0371a 104 */
cb5172d9 105struct auditd_connection {
b6c7c115 106 struct pid *pid;
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107 u32 portid;
108 struct net *net;
48d0e023 109 struct rcu_head rcu;
cb5172d9
AG
110};
111static struct auditd_connection __rcu *auditd_conn;
48d0e023 112static DEFINE_SPINLOCK(auditd_conn_lock);
1da177e4 113
b0dd25a8 114/* If audit_rate_limit is non-zero, limit the rate of sending audit records
1da177e4
LT
115 * to that number per second. This prevents DoS attacks, but results in
116 * audit records being dropped. */
3e1d0bb6 117static u32 audit_rate_limit;
1da177e4 118
40c0775e
RGB
119/* Number of outstanding audit_buffers allowed.
120 * When set to zero, this means unlimited. */
3e1d0bb6 121static u32 audit_backlog_limit = 64;
e789e561 122#define AUDIT_BACKLOG_WAIT_TIME (60 * HZ)
3e1d0bb6 123static u32 audit_backlog_wait_time = AUDIT_BACKLOG_WAIT_TIME;
1da177e4 124
c2f0c7c3 125/* The identity of the user shutting down the audit system. */
6b87024f
JI
126static kuid_t audit_sig_uid = INVALID_UID;
127static pid_t audit_sig_pid = -1;
ab9c17a8 128struct lsmblob audit_sig_lsm;
c2f0c7c3 129
1da177e4
LT
130/* Records can be lost in several ways:
131 0) [suppressed in audit_alloc]
132 1) out of memory in audit_log_start [kmalloc of struct audit_buffer]
133 2) out of memory in audit_log_move [alloc_skb]
134 3) suppressed due to audit_rate_limit
135 4) suppressed due to audit_backlog_limit
136*/
92c82e8a 137static atomic_t audit_lost = ATOMIC_INIT(0);
1da177e4 138
b43870c7
ME
139/* Monotonically increasing sum of time the kernel has spent
140 * waiting while the backlog limit is exceeded.
141 */
142static atomic_t audit_backlog_wait_time_actual = ATOMIC_INIT(0);
143
f368c07d
AG
144/* Hash for inode-based rules */
145struct list_head audit_inode_hash[AUDIT_INODE_BUCKETS];
146
8cc96382 147static struct kmem_cache *audit_buffer_cache;
1da177e4 148
c6480207 149/* queue msgs to send via kauditd_task */
af8b824f 150static struct sk_buff_head audit_queue;
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151/* queue msgs due to temporary unicast send problems */
152static struct sk_buff_head audit_retry_queue;
153/* queue msgs waiting for new auditd connection */
af8b824f 154static struct sk_buff_head audit_hold_queue;
c6480207
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155
156/* queue servicing thread */
b7d11258
DW
157static struct task_struct *kauditd_task;
158static DECLARE_WAIT_QUEUE_HEAD(kauditd_wait);
c6480207
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159
160/* waitqueue for callers who are blocked on the audit backlog */
9ad9ad38 161static DECLARE_WAIT_QUEUE_HEAD(audit_backlog_wait);
1da177e4 162
b0fed402
EP
163static struct audit_features af = {.vers = AUDIT_FEATURE_VERSION,
164 .mask = -1,
165 .features = 0,
166 .lock = 0,};
167
21b85c31 168static char *audit_feature_names[2] = {
d040e5af 169 "only_unset_loginuid",
21b85c31 170 "loginuid_immutable",
b0fed402
EP
171};
172
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173/**
174 * struct audit_ctl_mutex - serialize requests from userspace
175 * @lock: the mutex used for locking
176 * @owner: the task which owns the lock
177 *
178 * Description:
179 * This is the lock struct used to ensure we only process userspace requests
180 * in an orderly fashion. We can't simply use a mutex/lock here because we
181 * need to track lock ownership so we don't end up blocking the lock owner in
182 * audit_log_start() or similar.
183 */
184static struct audit_ctl_mutex {
185 struct mutex lock;
186 void *owner;
187} audit_cmd_mutex;
1da177e4
LT
188
189/* AUDIT_BUFSIZ is the size of the temporary buffer used for formatting
190 * audit records. Since printk uses a 1024 byte buffer, this buffer
191 * should be at least that large. */
192#define AUDIT_BUFSIZ 1024
193
1da177e4
LT
194/* The audit_buffer is used when formatting an audit record. The caller
195 * locks briefly to get the record off the freelist or to allocate the
196 * buffer, and locks briefly to send the buffer to the netlink layer or
197 * to place it on a transmit queue. Multiple audit_buffers can be in
198 * use simultaneously. */
199struct audit_buffer {
8fc6115c 200 struct sk_buff *skb; /* formatted skb ready to send */
1da177e4 201 struct audit_context *ctx; /* NULL or associated context */
9796fdd8 202 gfp_t gfp_mask;
1da177e4
LT
203};
204
f09ac9db 205struct audit_reply {
f9441639 206 __u32 portid;
638a0fd2 207 struct net *net;
f09ac9db
EP
208 struct sk_buff *skb;
209};
210
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211/**
212 * auditd_test_task - Check to see if a given task is an audit daemon
213 * @task: the task to check
214 *
215 * Description:
216 * Return 1 if the task is a registered audit daemon, 0 otherwise.
217 */
b6c7c115 218int auditd_test_task(struct task_struct *task)
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219{
220 int rc;
48d0e023 221 struct auditd_connection *ac;
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222
223 rcu_read_lock();
48d0e023
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224 ac = rcu_dereference(auditd_conn);
225 rc = (ac && ac->pid == task_tgid(task) ? 1 : 0);
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226 rcu_read_unlock();
227
228 return rc;
229}
230
ce423631
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231/**
232 * audit_ctl_lock - Take the audit control lock
233 */
234void audit_ctl_lock(void)
235{
236 mutex_lock(&audit_cmd_mutex.lock);
237 audit_cmd_mutex.owner = current;
238}
239
240/**
241 * audit_ctl_unlock - Drop the audit control lock
242 */
243void audit_ctl_unlock(void)
244{
245 audit_cmd_mutex.owner = NULL;
246 mutex_unlock(&audit_cmd_mutex.lock);
247}
248
249/**
250 * audit_ctl_owner_current - Test to see if the current task owns the lock
251 *
252 * Description:
253 * Return true if the current task owns the audit control lock, false if it
254 * doesn't own the lock.
255 */
256static bool audit_ctl_owner_current(void)
257{
258 return (current == audit_cmd_mutex.owner);
259}
260
b6c7c115
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261/**
262 * auditd_pid_vnr - Return the auditd PID relative to the namespace
b6c7c115
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263 *
264 * Description:
48d0e023 265 * Returns the PID in relation to the namespace, 0 on failure.
b6c7c115 266 */
48d0e023 267static pid_t auditd_pid_vnr(void)
b6c7c115
PM
268{
269 pid_t pid;
48d0e023 270 const struct auditd_connection *ac;
b6c7c115
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271
272 rcu_read_lock();
48d0e023
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273 ac = rcu_dereference(auditd_conn);
274 if (!ac || !ac->pid)
b6c7c115
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275 pid = 0;
276 else
48d0e023 277 pid = pid_vnr(ac->pid);
b6c7c115
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278 rcu_read_unlock();
279
280 return pid;
281}
282
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283/**
284 * audit_get_sk - Return the audit socket for the given network namespace
285 * @net: the destination network namespace
286 *
287 * Description:
288 * Returns the sock pointer if valid, NULL otherwise. The caller must ensure
289 * that a reference is held for the network namespace while the sock is in use.
290 */
291static struct sock *audit_get_sk(const struct net *net)
292{
293 struct audit_net *aunet;
294
295 if (!net)
296 return NULL;
297
298 aunet = net_generic(net, audit_net_id);
299 return aunet->sk;
300}
301
8c8570fb 302void audit_panic(const char *message)
1da177e4 303{
d957f7b7 304 switch (audit_failure) {
1da177e4
LT
305 case AUDIT_FAIL_SILENT:
306 break;
307 case AUDIT_FAIL_PRINTK:
320f1b1e 308 if (printk_ratelimit())
d957f7b7 309 pr_err("%s\n", message);
1da177e4
LT
310 break;
311 case AUDIT_FAIL_PANIC:
5b52330b 312 panic("audit: %s\n", message);
1da177e4
LT
313 break;
314 }
315}
316
317static inline int audit_rate_check(void)
318{
319 static unsigned long last_check = 0;
320 static int messages = 0;
321 static DEFINE_SPINLOCK(lock);
322 unsigned long flags;
323 unsigned long now;
324 unsigned long elapsed;
325 int retval = 0;
326
327 if (!audit_rate_limit) return 1;
328
329 spin_lock_irqsave(&lock, flags);
330 if (++messages < audit_rate_limit) {
331 retval = 1;
332 } else {
333 now = jiffies;
334 elapsed = now - last_check;
335 if (elapsed > HZ) {
336 last_check = now;
337 messages = 0;
338 retval = 1;
339 }
340 }
341 spin_unlock_irqrestore(&lock, flags);
342
343 return retval;
344}
345
b0dd25a8
RD
346/**
347 * audit_log_lost - conditionally log lost audit message event
348 * @message: the message stating reason for lost audit message
349 *
350 * Emit at least 1 message per second, even if audit_rate_check is
351 * throttling.
352 * Always increment the lost messages counter.
353*/
1da177e4
LT
354void audit_log_lost(const char *message)
355{
356 static unsigned long last_msg = 0;
357 static DEFINE_SPINLOCK(lock);
358 unsigned long flags;
359 unsigned long now;
360 int print;
361
362 atomic_inc(&audit_lost);
363
364 print = (audit_failure == AUDIT_FAIL_PANIC || !audit_rate_limit);
365
366 if (!print) {
367 spin_lock_irqsave(&lock, flags);
368 now = jiffies;
369 if (now - last_msg > HZ) {
370 print = 1;
371 last_msg = now;
372 }
373 spin_unlock_irqrestore(&lock, flags);
374 }
375
376 if (print) {
320f1b1e 377 if (printk_ratelimit())
3e1d0bb6 378 pr_warn("audit_lost=%u audit_rate_limit=%u audit_backlog_limit=%u\n",
320f1b1e
EP
379 atomic_read(&audit_lost),
380 audit_rate_limit,
381 audit_backlog_limit);
1da177e4
LT
382 audit_panic(message);
383 }
1da177e4
LT
384}
385
3e1d0bb6 386static int audit_log_config_change(char *function_name, u32 new, u32 old,
2532386f 387 int allow_changes)
1da177e4 388{
1a6b9f23
EP
389 struct audit_buffer *ab;
390 int rc = 0;
ce29b682 391
626abcd1 392 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_CONFIG_CHANGE);
0644ec0c
KC
393 if (unlikely(!ab))
394 return rc;
53fc7a01 395 audit_log_format(ab, "op=set %s=%u old=%u ", function_name, new, old);
4d3fb709 396 audit_log_session_info(ab);
f5c2b5f7 397 rc = audit_log_task_context(ab, NULL);
b122c376
EP
398 if (rc)
399 allow_changes = 0; /* Something weird, deny request */
1a6b9f23 400 audit_log_format(ab, " res=%d", allow_changes);
f5c2b5f7 401 audit_log_lsm(NULL, false);
1a6b9f23 402 audit_log_end(ab);
6a01b07f 403 return rc;
1da177e4
LT
404}
405
3e1d0bb6 406static int audit_do_config_change(char *function_name, u32 *to_change, u32 new)
1da177e4 407{
3e1d0bb6
JP
408 int allow_changes, rc = 0;
409 u32 old = *to_change;
6a01b07f
SG
410
411 /* check if we are locked */
1a6b9f23
EP
412 if (audit_enabled == AUDIT_LOCKED)
413 allow_changes = 0;
6a01b07f 414 else
1a6b9f23 415 allow_changes = 1;
ce29b682 416
1a6b9f23 417 if (audit_enabled != AUDIT_OFF) {
dc9eb698 418 rc = audit_log_config_change(function_name, new, old, allow_changes);
1a6b9f23
EP
419 if (rc)
420 allow_changes = 0;
6a01b07f 421 }
6a01b07f
SG
422
423 /* If we are allowed, make the change */
1a6b9f23
EP
424 if (allow_changes == 1)
425 *to_change = new;
6a01b07f
SG
426 /* Not allowed, update reason */
427 else if (rc == 0)
428 rc = -EPERM;
429 return rc;
1da177e4
LT
430}
431
3e1d0bb6 432static int audit_set_rate_limit(u32 limit)
1da177e4 433{
dc9eb698 434 return audit_do_config_change("audit_rate_limit", &audit_rate_limit, limit);
1a6b9f23 435}
ce29b682 436
3e1d0bb6 437static int audit_set_backlog_limit(u32 limit)
1a6b9f23 438{
dc9eb698 439 return audit_do_config_change("audit_backlog_limit", &audit_backlog_limit, limit);
1a6b9f23 440}
6a01b07f 441
3e1d0bb6 442static int audit_set_backlog_wait_time(u32 timeout)
51cc83f0
RGB
443{
444 return audit_do_config_change("audit_backlog_wait_time",
31975424 445 &audit_backlog_wait_time, timeout);
51cc83f0
RGB
446}
447
3e1d0bb6 448static int audit_set_enabled(u32 state)
1a6b9f23 449{
b593d384 450 int rc;
724e7bfc 451 if (state > AUDIT_LOCKED)
1a6b9f23 452 return -EINVAL;
6a01b07f 453
dc9eb698 454 rc = audit_do_config_change("audit_enabled", &audit_enabled, state);
b593d384
EP
455 if (!rc)
456 audit_ever_enabled |= !!state;
457
458 return rc;
1da177e4
LT
459}
460
3e1d0bb6 461static int audit_set_failure(u32 state)
1da177e4 462{
1da177e4
LT
463 if (state != AUDIT_FAIL_SILENT
464 && state != AUDIT_FAIL_PRINTK
465 && state != AUDIT_FAIL_PANIC)
466 return -EINVAL;
ce29b682 467
dc9eb698 468 return audit_do_config_change("audit_failure", &audit_failure, state);
1da177e4
LT
469}
470
48d0e023
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471/**
472 * auditd_conn_free - RCU helper to release an auditd connection struct
473 * @rcu: RCU head
474 *
475 * Description:
476 * Drop any references inside the auditd connection tracking struct and free
477 * the memory.
478 */
447a5647
JP
479static void auditd_conn_free(struct rcu_head *rcu)
480{
48d0e023
PM
481 struct auditd_connection *ac;
482
483 ac = container_of(rcu, struct auditd_connection, rcu);
484 put_pid(ac->pid);
485 put_net(ac->net);
486 kfree(ac);
447a5647 487}
48d0e023 488
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489/**
490 * auditd_set - Set/Reset the auditd connection state
491 * @pid: auditd PID
492 * @portid: auditd netlink portid
493 * @net: auditd network namespace pointer
494 *
495 * Description:
496 * This function will obtain and drop network namespace references as
48d0e023 497 * necessary. Returns zero on success, negative values on failure.
5b52330b 498 */
48d0e023 499static int auditd_set(struct pid *pid, u32 portid, struct net *net)
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500{
501 unsigned long flags;
48d0e023 502 struct auditd_connection *ac_old, *ac_new;
5b52330b 503
48d0e023
PM
504 if (!pid || !net)
505 return -EINVAL;
506
507 ac_new = kzalloc(sizeof(*ac_new), GFP_KERNEL);
508 if (!ac_new)
509 return -ENOMEM;
510 ac_new->pid = get_pid(pid);
511 ac_new->portid = portid;
512 ac_new->net = get_net(net);
513
514 spin_lock_irqsave(&auditd_conn_lock, flags);
515 ac_old = rcu_dereference_protected(auditd_conn,
516 lockdep_is_held(&auditd_conn_lock));
517 rcu_assign_pointer(auditd_conn, ac_new);
518 spin_unlock_irqrestore(&auditd_conn_lock, flags);
519
520 if (ac_old)
521 call_rcu(&ac_old->rcu, auditd_conn_free);
522
523 return 0;
5b52330b
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524}
525
5b52330b 526/**
cbb52621 527 * kauditd_printk_skb - Print the audit record to the ring buffer
5b52330b
PM
528 * @skb: audit record
529 *
530 * Whatever the reason, this packet may not make it to the auditd connection
531 * so write it via printk so the information isn't completely lost.
038cbcf6 532 */
af8b824f 533static void kauditd_printk_skb(struct sk_buff *skb)
038cbcf6
EP
534{
535 struct nlmsghdr *nlh = nlmsg_hdr(skb);
c64e66c6 536 char *data = nlmsg_data(nlh);
038cbcf6 537
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538 if (nlh->nlmsg_type != AUDIT_EOE && printk_ratelimit())
539 pr_notice("type=%d %s\n", nlh->nlmsg_type, data);
540}
541
542/**
543 * kauditd_rehold_skb - Handle a audit record send failure in the hold queue
544 * @skb: audit record
545 *
546 * Description:
547 * This should only be used by the kauditd_thread when it fails to flush the
548 * hold queue.
549 */
550static void kauditd_rehold_skb(struct sk_buff *skb)
551{
552 /* put the record back in the queue at the same place */
553 skb_queue_head(&audit_hold_queue, skb);
c6480207
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554}
555
556/**
557 * kauditd_hold_skb - Queue an audit record, waiting for auditd
558 * @skb: audit record
559 *
560 * Description:
561 * Queue the audit record, waiting for an instance of auditd. When this
562 * function is called we haven't given up yet on sending the record, but things
563 * are not looking good. The first thing we want to do is try to write the
564 * record via printk and then see if we want to try and hold on to the record
565 * and queue it, if we have room. If we want to hold on to the record, but we
566 * don't have room, record a record lost message.
567 */
568static void kauditd_hold_skb(struct sk_buff *skb)
569{
570 /* at this point it is uncertain if we will ever send this to auditd so
571 * try to send the message via printk before we go any further */
572 kauditd_printk_skb(skb);
573
574 /* can we just silently drop the message? */
575 if (!audit_default) {
576 kfree_skb(skb);
577 return;
578 }
579
580 /* if we have room, queue the message */
581 if (!audit_backlog_limit ||
582 skb_queue_len(&audit_hold_queue) < audit_backlog_limit) {
583 skb_queue_tail(&audit_hold_queue, skb);
584 return;
585 }
038cbcf6 586
c6480207
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587 /* we have no other options - drop the message */
588 audit_log_lost("kauditd hold queue overflow");
589 kfree_skb(skb);
038cbcf6
EP
590}
591
c6480207
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592/**
593 * kauditd_retry_skb - Queue an audit record, attempt to send again to auditd
594 * @skb: audit record
595 *
596 * Description:
597 * Not as serious as kauditd_hold_skb() as we still have a connected auditd,
598 * but for some reason we are having problems sending it audit records so
599 * queue the given record and attempt to resend.
600 */
601static void kauditd_retry_skb(struct sk_buff *skb)
f3d357b0 602{
c6480207
PM
603 /* NOTE: because records should only live in the retry queue for a
604 * short period of time, before either being sent or moved to the hold
605 * queue, we don't currently enforce a limit on this queue */
606 skb_queue_tail(&audit_retry_queue, skb);
607}
32a1dbae 608
264d5096
PM
609/**
610 * auditd_reset - Disconnect the auditd connection
c81be52a 611 * @ac: auditd connection state
264d5096
PM
612 *
613 * Description:
614 * Break the auditd/kauditd connection and move all the queued records into the
c81be52a
PM
615 * hold queue in case auditd reconnects. It is important to note that the @ac
616 * pointer should never be dereferenced inside this function as it may be NULL
617 * or invalid, you can only compare the memory address! If @ac is NULL then
618 * the connection will always be reset.
264d5096 619 */
c81be52a 620static void auditd_reset(const struct auditd_connection *ac)
264d5096 621{
48d0e023 622 unsigned long flags;
264d5096 623 struct sk_buff *skb;
48d0e023 624 struct auditd_connection *ac_old;
264d5096
PM
625
626 /* if it isn't already broken, break the connection */
48d0e023
PM
627 spin_lock_irqsave(&auditd_conn_lock, flags);
628 ac_old = rcu_dereference_protected(auditd_conn,
629 lockdep_is_held(&auditd_conn_lock));
c81be52a
PM
630 if (ac && ac != ac_old) {
631 /* someone already registered a new auditd connection */
632 spin_unlock_irqrestore(&auditd_conn_lock, flags);
633 return;
634 }
48d0e023
PM
635 rcu_assign_pointer(auditd_conn, NULL);
636 spin_unlock_irqrestore(&auditd_conn_lock, flags);
637
638 if (ac_old)
639 call_rcu(&ac_old->rcu, auditd_conn_free);
264d5096 640
cd33f5f2
PM
641 /* flush the retry queue to the hold queue, but don't touch the main
642 * queue since we need to process that normally for multicast */
264d5096
PM
643 while ((skb = skb_dequeue(&audit_retry_queue)))
644 kauditd_hold_skb(skb);
264d5096
PM
645}
646
c6480207 647/**
5b52330b
PM
648 * auditd_send_unicast_skb - Send a record via unicast to auditd
649 * @skb: audit record
c6480207
PM
650 *
651 * Description:
5b52330b
PM
652 * Send a skb to the audit daemon, returns positive/zero values on success and
653 * negative values on failure; in all cases the skb will be consumed by this
654 * function. If the send results in -ECONNREFUSED the connection with auditd
655 * will be reset. This function may sleep so callers should not hold any locks
656 * where this would cause a problem.
c6480207 657 */
5b52330b 658static int auditd_send_unicast_skb(struct sk_buff *skb)
c6480207 659{
5b52330b
PM
660 int rc;
661 u32 portid;
662 struct net *net;
663 struct sock *sk;
48d0e023 664 struct auditd_connection *ac;
5b52330b
PM
665
666 /* NOTE: we can't call netlink_unicast while in the RCU section so
667 * take a reference to the network namespace and grab local
668 * copies of the namespace, the sock, and the portid; the
669 * namespace and sock aren't going to go away while we hold a
670 * reference and if the portid does become invalid after the RCU
671 * section netlink_unicast() should safely return an error */
672
673 rcu_read_lock();
48d0e023
PM
674 ac = rcu_dereference(auditd_conn);
675 if (!ac) {
5b52330b 676 rcu_read_unlock();
b0659ae5 677 kfree_skb(skb);
5b52330b
PM
678 rc = -ECONNREFUSED;
679 goto err;
533c7b69 680 }
48d0e023 681 net = get_net(ac->net);
5b52330b 682 sk = audit_get_sk(net);
48d0e023 683 portid = ac->portid;
5b52330b 684 rcu_read_unlock();
c6480207 685
5b52330b
PM
686 rc = netlink_unicast(sk, skb, portid, 0);
687 put_net(net);
688 if (rc < 0)
689 goto err;
690
691 return rc;
692
693err:
c81be52a
PM
694 if (ac && rc == -ECONNREFUSED)
695 auditd_reset(ac);
5b52330b 696 return rc;
c6480207
PM
697}
698
699/**
5b52330b
PM
700 * kauditd_send_queue - Helper for kauditd_thread to flush skb queues
701 * @sk: the sending sock
702 * @portid: the netlink destination
703 * @queue: the skb queue to process
704 * @retry_limit: limit on number of netlink unicast failures
705 * @skb_hook: per-skb hook for additional processing
706 * @err_hook: hook called if the skb fails the netlink unicast send
707 *
708 * Description:
709 * Run through the given queue and attempt to send the audit records to auditd,
710 * returns zero on success, negative values on failure. It is up to the caller
711 * to ensure that the @sk is valid for the duration of this function.
712 *
c6480207 713 */
5b52330b
PM
714static int kauditd_send_queue(struct sock *sk, u32 portid,
715 struct sk_buff_head *queue,
716 unsigned int retry_limit,
717 void (*skb_hook)(struct sk_buff *skb),
718 void (*err_hook)(struct sk_buff *skb))
c6480207 719{
5b52330b
PM
720 int rc = 0;
721 struct sk_buff *skb;
722 static unsigned int failed = 0;
32a1dbae 723
5b52330b
PM
724 /* NOTE: kauditd_thread takes care of all our locking, we just use
725 * the netlink info passed to us (e.g. sk and portid) */
726
727 while ((skb = skb_dequeue(queue))) {
728 /* call the skb_hook for each skb we touch */
729 if (skb_hook)
730 (*skb_hook)(skb);
731
732 /* can we send to anyone via unicast? */
733 if (!sk) {
734 if (err_hook)
735 (*err_hook)(skb);
736 continue;
737 }
6c54e789 738
5b52330b
PM
739 /* grab an extra skb reference in case of error */
740 skb_get(skb);
741 rc = netlink_unicast(sk, skb, portid, 0);
742 if (rc < 0) {
743 /* fatal failure for our queue flush attempt? */
744 if (++failed >= retry_limit ||
745 rc == -ECONNREFUSED || rc == -EPERM) {
746 /* yes - error processing for the queue */
747 sk = NULL;
748 if (err_hook)
749 (*err_hook)(skb);
750 if (!skb_hook)
751 goto out;
752 /* keep processing with the skb_hook */
753 continue;
754 } else
755 /* no - requeue to preserve ordering */
756 skb_queue_head(queue, skb);
757 } else {
758 /* it worked - drop the extra reference and continue */
759 consume_skb(skb);
760 failed = 0;
761 }
c6480207
PM
762 }
763
5b52330b
PM
764out:
765 return (rc >= 0 ? 0 : rc);
f3d357b0
EP
766}
767
451f9216 768/*
c6480207
PM
769 * kauditd_send_multicast_skb - Send a record to any multicast listeners
770 * @skb: audit record
451f9216 771 *
c6480207 772 * Description:
5b52330b
PM
773 * Write a multicast message to anyone listening in the initial network
774 * namespace. This function doesn't consume an skb as might be expected since
775 * it has to copy it anyways.
451f9216 776 */
c6480207 777static void kauditd_send_multicast_skb(struct sk_buff *skb)
451f9216 778{
c6480207 779 struct sk_buff *copy;
5b52330b 780 struct sock *sock = audit_get_sk(&init_net);
c6480207 781 struct nlmsghdr *nlh;
451f9216 782
5b52330b
PM
783 /* NOTE: we are not taking an additional reference for init_net since
784 * we don't have to worry about it going away */
785
7f74ecd7
RGB
786 if (!netlink_has_listeners(sock, AUDIT_NLGRP_READLOG))
787 return;
788
451f9216
RGB
789 /*
790 * The seemingly wasteful skb_copy() rather than bumping the refcount
791 * using skb_get() is necessary because non-standard mods are made to
792 * the skb by the original kaudit unicast socket send routine. The
793 * existing auditd daemon assumes this breakage. Fixing this would
794 * require co-ordinating a change in the established protocol between
795 * the kaudit kernel subsystem and the auditd userspace code. There is
796 * no reason for new multicast clients to continue with this
797 * non-compliance.
798 */
c6480207 799 copy = skb_copy(skb, GFP_KERNEL);
451f9216
RGB
800 if (!copy)
801 return;
c6480207
PM
802 nlh = nlmsg_hdr(copy);
803 nlh->nlmsg_len = skb->len;
451f9216 804
c6480207 805 nlmsg_multicast(sock, copy, 0, AUDIT_NLGRP_READLOG, GFP_KERNEL);
451f9216
RGB
806}
807
c6480207 808/**
5b52330b
PM
809 * kauditd_thread - Worker thread to send audit records to userspace
810 * @dummy: unused
b551d1d9 811 */
97a41e26 812static int kauditd_thread(void *dummy)
b7d11258 813{
c6480207 814 int rc;
5b52330b
PM
815 u32 portid = 0;
816 struct net *net = NULL;
817 struct sock *sk = NULL;
48d0e023 818 struct auditd_connection *ac;
4aa83872 819
c6480207 820#define UNICAST_RETRIES 5
c6480207 821
83144186 822 set_freezable();
4899b8b1 823 while (!kthread_should_stop()) {
5b52330b
PM
824 /* NOTE: see the lock comments in auditd_send_unicast_skb() */
825 rcu_read_lock();
48d0e023
PM
826 ac = rcu_dereference(auditd_conn);
827 if (!ac) {
5b52330b
PM
828 rcu_read_unlock();
829 goto main_queue;
830 }
48d0e023 831 net = get_net(ac->net);
5b52330b 832 sk = audit_get_sk(net);
48d0e023 833 portid = ac->portid;
5b52330b 834 rcu_read_unlock();
c6480207
PM
835
836 /* attempt to flush the hold queue */
5b52330b
PM
837 rc = kauditd_send_queue(sk, portid,
838 &audit_hold_queue, UNICAST_RETRIES,
839 NULL, kauditd_rehold_skb);
c34c78df 840 if (rc < 0) {
5b52330b 841 sk = NULL;
c81be52a 842 auditd_reset(ac);
5b52330b 843 goto main_queue;
c6480207 844 }
f3d357b0 845
c6480207 846 /* attempt to flush the retry queue */
5b52330b
PM
847 rc = kauditd_send_queue(sk, portid,
848 &audit_retry_queue, UNICAST_RETRIES,
849 NULL, kauditd_hold_skb);
c34c78df 850 if (rc < 0) {
5b52330b 851 sk = NULL;
c81be52a 852 auditd_reset(ac);
5b52330b 853 goto main_queue;
c6480207 854 }
db897319 855
5b52330b
PM
856main_queue:
857 /* process the main queue - do the multicast send and attempt
858 * unicast, dump failed record sends to the retry queue; if
859 * sk == NULL due to previous failures we will just do the
c81be52a 860 * multicast send and move the record to the hold queue */
264d5096
PM
861 rc = kauditd_send_queue(sk, portid, &audit_queue, 1,
862 kauditd_send_multicast_skb,
c81be52a
PM
863 (sk ?
864 kauditd_retry_skb : kauditd_hold_skb));
865 if (ac && rc < 0)
866 auditd_reset(ac);
264d5096 867 sk = NULL;
5b52330b
PM
868
869 /* drop our netns reference, no auditd sends past this line */
870 if (net) {
871 put_net(net);
872 net = NULL;
3320c513 873 }
5b52330b
PM
874
875 /* we have processed all the queues so wake everyone */
876 wake_up(&audit_backlog_wait);
877
878 /* NOTE: we want to wake up if there is anything on the queue,
879 * regardless of if an auditd is connected, as we need to
880 * do the multicast send and rotate records from the
881 * main queue to the retry/hold queues */
882 wait_event_freezable(kauditd_wait,
883 (skb_queue_len(&audit_queue) ? 1 : 0));
b7d11258 884 }
c6480207 885
4899b8b1 886 return 0;
b7d11258
DW
887}
888
3054d067 889int audit_send_list_thread(void *_dest)
9044e6bc
AV
890{
891 struct audit_netlink_list *dest = _dest;
9044e6bc 892 struct sk_buff *skb;
5b52330b 893 struct sock *sk = audit_get_sk(dest->net);
9044e6bc
AV
894
895 /* wait for parent to finish and send an ACK */
ce423631
PM
896 audit_ctl_lock();
897 audit_ctl_unlock();
9044e6bc
AV
898
899 while ((skb = __skb_dequeue(&dest->q)) != NULL)
5b52330b 900 netlink_unicast(sk, skb, dest->portid, 0);
9044e6bc 901
5b52330b 902 put_net(dest->net);
9044e6bc
AV
903 kfree(dest);
904
905 return 0;
906}
907
45a0642b 908struct sk_buff *audit_make_reply(int seq, int type, int done,
b8800aa5 909 int multi, const void *payload, int size)
9044e6bc
AV
910{
911 struct sk_buff *skb;
912 struct nlmsghdr *nlh;
9044e6bc
AV
913 void *data;
914 int flags = multi ? NLM_F_MULTI : 0;
915 int t = done ? NLMSG_DONE : type;
916
ee080e6c 917 skb = nlmsg_new(size, GFP_KERNEL);
9044e6bc
AV
918 if (!skb)
919 return NULL;
920
45a0642b 921 nlh = nlmsg_put(skb, 0, seq, t, size, flags);
c64e66c6
DM
922 if (!nlh)
923 goto out_kfree_skb;
924 data = nlmsg_data(nlh);
9044e6bc
AV
925 memcpy(data, payload, size);
926 return skb;
927
c64e66c6
DM
928out_kfree_skb:
929 kfree_skb(skb);
9044e6bc
AV
930 return NULL;
931}
932
a48b284b
PM
933static void audit_free_reply(struct audit_reply *reply)
934{
935 if (!reply)
936 return;
937
c0720351 938 kfree_skb(reply->skb);
a48b284b
PM
939 if (reply->net)
940 put_net(reply->net);
941 kfree(reply);
942}
943
f09ac9db
EP
944static int audit_send_reply_thread(void *arg)
945{
946 struct audit_reply *reply = (struct audit_reply *)arg;
947
ce423631
PM
948 audit_ctl_lock();
949 audit_ctl_unlock();
f09ac9db
EP
950
951 /* Ignore failure. It'll only happen if the sender goes away,
952 because our timeout is set to infinite. */
a48b284b
PM
953 netlink_unicast(audit_get_sk(reply->net), reply->skb, reply->portid, 0);
954 reply->skb = NULL;
955 audit_free_reply(reply);
f09ac9db
EP
956 return 0;
957}
c6480207 958
b0dd25a8
RD
959/**
960 * audit_send_reply - send an audit reply message via netlink
d211f177 961 * @request_skb: skb of request we are replying to (used to target the reply)
b0dd25a8
RD
962 * @seq: sequence number
963 * @type: audit message type
964 * @done: done (last) flag
965 * @multi: multi-part message flag
966 * @payload: payload data
967 * @size: payload size
968 *
a48b284b 969 * Allocates a skb, builds the netlink message, and sends it to the port id.
b0dd25a8 970 */
6f285b19 971static void audit_send_reply(struct sk_buff *request_skb, int seq, int type, int done,
f9441639 972 int multi, const void *payload, int size)
1da177e4 973{
f09ac9db 974 struct task_struct *tsk;
a48b284b 975 struct audit_reply *reply;
f09ac9db 976
a48b284b 977 reply = kzalloc(sizeof(*reply), GFP_KERNEL);
f09ac9db
EP
978 if (!reply)
979 return;
980
a48b284b
PM
981 reply->skb = audit_make_reply(seq, type, done, multi, payload, size);
982 if (!reply->skb)
983 goto err;
984 reply->net = get_net(sock_net(NETLINK_CB(request_skb).sk));
45a0642b 985 reply->portid = NETLINK_CB(request_skb).portid;
f09ac9db
EP
986
987 tsk = kthread_run(audit_send_reply_thread, reply, "audit_send_reply");
a48b284b
PM
988 if (IS_ERR(tsk))
989 goto err;
990
991 return;
992
993err:
994 audit_free_reply(reply);
1da177e4
LT
995}
996
997/*
998 * Check for appropriate CAP_AUDIT_ capabilities on incoming audit
999 * control messages.
1000 */
c7bdb545 1001static int audit_netlink_ok(struct sk_buff *skb, u16 msg_type)
1da177e4
LT
1002{
1003 int err = 0;
1004
5a3cb3b6 1005 /* Only support initial user namespace for now. */
aa4af831
EP
1006 /*
1007 * We return ECONNREFUSED because it tricks userspace into thinking
1008 * that audit was not configured into the kernel. Lots of users
1009 * configure their PAM stack (because that's what the distro does)
1010 * to reject login if unable to send messages to audit. If we return
1011 * ECONNREFUSED the PAM stack thinks the kernel does not have audit
1012 * configured in and will let login proceed. If we return EPERM
1013 * userspace will reject all logins. This should be removed when we
1014 * support non init namespaces!!
1015 */
0b747172 1016 if (current_user_ns() != &init_user_ns)
aa4af831 1017 return -ECONNREFUSED;
34e36d8e 1018
1da177e4 1019 switch (msg_type) {
1da177e4 1020 case AUDIT_LIST:
1da177e4
LT
1021 case AUDIT_ADD:
1022 case AUDIT_DEL:
18900909
EP
1023 return -EOPNOTSUPP;
1024 case AUDIT_GET:
1025 case AUDIT_SET:
b0fed402
EP
1026 case AUDIT_GET_FEATURE:
1027 case AUDIT_SET_FEATURE:
18900909
EP
1028 case AUDIT_LIST_RULES:
1029 case AUDIT_ADD_RULE:
93315ed6 1030 case AUDIT_DEL_RULE:
c2f0c7c3 1031 case AUDIT_SIGNAL_INFO:
522ed776
MT
1032 case AUDIT_TTY_GET:
1033 case AUDIT_TTY_SET:
74c3cbe3
AV
1034 case AUDIT_TRIM:
1035 case AUDIT_MAKE_EQUIV:
5a3cb3b6
RGB
1036 /* Only support auditd and auditctl in initial pid namespace
1037 * for now. */
5985de67 1038 if (task_active_pid_ns(current) != &init_pid_ns)
5a3cb3b6
RGB
1039 return -EPERM;
1040
90f62cf3 1041 if (!netlink_capable(skb, CAP_AUDIT_CONTROL))
1da177e4
LT
1042 err = -EPERM;
1043 break;
05474106 1044 case AUDIT_USER:
039b6b3e
RD
1045 case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG:
1046 case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2:
90f62cf3 1047 if (!netlink_capable(skb, CAP_AUDIT_WRITE))
1da177e4
LT
1048 err = -EPERM;
1049 break;
1050 default: /* bad msg */
1051 err = -EINVAL;
1052 }
1053
1054 return err;
1055}
1056
626abcd1
RGB
1057static void audit_log_common_recv_msg(struct audit_context *context,
1058 struct audit_buffer **ab, u16 msg_type)
50397bd1 1059{
dc9eb698 1060 uid_t uid = from_kuid(&init_user_ns, current_uid());
f1dc4867 1061 pid_t pid = task_tgid_nr(current);
50397bd1 1062
0868a5e1 1063 if (!audit_enabled && msg_type != AUDIT_USER_AVC) {
50397bd1 1064 *ab = NULL;
233a6866 1065 return;
50397bd1
EP
1066 }
1067
626abcd1 1068 *ab = audit_log_start(context, GFP_KERNEL, msg_type);
0644ec0c 1069 if (unlikely(!*ab))
233a6866 1070 return;
a2c97da1 1071 audit_log_format(*ab, "pid=%d uid=%u ", pid, uid);
4d3fb709 1072 audit_log_session_info(*ab);
f5c2b5f7 1073 audit_log_task_context(*ab, NULL);
50397bd1
EP
1074}
1075
626abcd1
RGB
1076static inline void audit_log_user_recv_msg(struct audit_buffer **ab,
1077 u16 msg_type)
1078{
f5c2b5f7
CS
1079 struct audit_context *context;
1080
1081 if (!lsm_multiple_contexts()) {
1082 audit_log_common_recv_msg(NULL, ab, msg_type);
1083 return;
1084 }
1085
1086 context = audit_context();
1087 if (context) {
1088 if (!context->in_syscall)
1089 audit_stamp_context(context);
1090 audit_log_common_recv_msg(context, ab, msg_type);
1091 return;
1092 }
1093
1094 audit_alloc(current);
1095 context = audit_context();
1096
1097 audit_log_common_recv_msg(context, ab, msg_type);
626abcd1
RGB
1098}
1099
b0fed402
EP
1100int is_audit_feature_set(int i)
1101{
1102 return af.features & AUDIT_FEATURE_TO_MASK(i);
1103}
1104
1105
1106static int audit_get_feature(struct sk_buff *skb)
1107{
1108 u32 seq;
1109
1110 seq = nlmsg_hdr(skb)->nlmsg_seq;
1111
9ef91514 1112 audit_send_reply(skb, seq, AUDIT_GET_FEATURE, 0, 0, &af, sizeof(af));
b0fed402
EP
1113
1114 return 0;
1115}
1116
1117static void audit_log_feature_change(int which, u32 old_feature, u32 new_feature,
1118 u32 old_lock, u32 new_lock, int res)
1119{
1120 struct audit_buffer *ab;
1121
b6c50fe0
G
1122 if (audit_enabled == AUDIT_OFF)
1123 return;
2a1fe215 1124
cdfb6b34 1125 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_FEATURE_CHANGE);
23138ead
RGB
1126 if (!ab)
1127 return;
2a1fe215 1128 audit_log_task_info(ab);
897f1acb 1129 audit_log_format(ab, " feature=%s old=%u new=%u old_lock=%u new_lock=%u res=%d",
b0fed402
EP
1130 audit_feature_names[which], !!old_feature, !!new_feature,
1131 !!old_lock, !!new_lock, res);
1132 audit_log_end(ab);
1133}
1134
75612528 1135static int audit_set_feature(struct audit_features *uaf)
b0fed402 1136{
b0fed402
EP
1137 int i;
1138
6eed9b26 1139 BUILD_BUG_ON(AUDIT_LAST_FEATURE + 1 > ARRAY_SIZE(audit_feature_names));
b0fed402
EP
1140
1141 /* if there is ever a version 2 we should handle that here */
1142
1143 for (i = 0; i <= AUDIT_LAST_FEATURE; i++) {
1144 u32 feature = AUDIT_FEATURE_TO_MASK(i);
1145 u32 old_feature, new_feature, old_lock, new_lock;
1146
1147 /* if we are not changing this feature, move along */
1148 if (!(feature & uaf->mask))
1149 continue;
1150
1151 old_feature = af.features & feature;
1152 new_feature = uaf->features & feature;
1153 new_lock = (uaf->lock | af.lock) & feature;
1154 old_lock = af.lock & feature;
1155
1156 /* are we changing a locked feature? */
4547b3bc 1157 if (old_lock && (new_feature != old_feature)) {
b0fed402
EP
1158 audit_log_feature_change(i, old_feature, new_feature,
1159 old_lock, new_lock, 0);
1160 return -EPERM;
1161 }
1162 }
1163 /* nothing invalid, do the changes */
1164 for (i = 0; i <= AUDIT_LAST_FEATURE; i++) {
1165 u32 feature = AUDIT_FEATURE_TO_MASK(i);
1166 u32 old_feature, new_feature, old_lock, new_lock;
1167
1168 /* if we are not changing this feature, move along */
1169 if (!(feature & uaf->mask))
1170 continue;
1171
1172 old_feature = af.features & feature;
1173 new_feature = uaf->features & feature;
1174 old_lock = af.lock & feature;
1175 new_lock = (uaf->lock | af.lock) & feature;
1176
1177 if (new_feature != old_feature)
1178 audit_log_feature_change(i, old_feature, new_feature,
1179 old_lock, new_lock, 1);
1180
1181 if (new_feature)
1182 af.features |= feature;
1183 else
1184 af.features &= ~feature;
1185 af.lock |= new_lock;
1186 }
1187
1188 return 0;
1189}
1190
b6c7c115 1191static int audit_replace(struct pid *pid)
133e1e5a 1192{
b6c7c115 1193 pid_t pvnr;
5b52330b 1194 struct sk_buff *skb;
133e1e5a 1195
b6c7c115
PM
1196 pvnr = pid_vnr(pid);
1197 skb = audit_make_reply(0, AUDIT_REPLACE, 0, 0, &pvnr, sizeof(pvnr));
133e1e5a
RGB
1198 if (!skb)
1199 return -ENOMEM;
5b52330b 1200 return auditd_send_unicast_skb(skb);
133e1e5a
RGB
1201}
1202
1da177e4
LT
1203static int audit_receive_msg(struct sk_buff *skb, struct nlmsghdr *nlh)
1204{
dc9eb698 1205 u32 seq;
1da177e4 1206 void *data;
75612528 1207 int data_len;
1da177e4 1208 int err;
c0404993 1209 struct audit_buffer *ab;
1da177e4 1210 u16 msg_type = nlh->nlmsg_type;
e1396065 1211 struct audit_sig_info *sig_data;
1da177e4 1212
c7bdb545 1213 err = audit_netlink_ok(skb, msg_type);
1da177e4
LT
1214 if (err)
1215 return err;
1216
1da177e4 1217 seq = nlh->nlmsg_seq;
c64e66c6 1218 data = nlmsg_data(nlh);
75612528 1219 data_len = nlmsg_len(nlh);
1da177e4
LT
1220
1221 switch (msg_type) {
09f883a9
RGB
1222 case AUDIT_GET: {
1223 struct audit_status s;
1224 memset(&s, 0, sizeof(s));
b43870c7
ME
1225 s.enabled = audit_enabled;
1226 s.failure = audit_failure;
b6c7c115
PM
1227 /* NOTE: use pid_vnr() so the PID is relative to the current
1228 * namespace */
b43870c7
ME
1229 s.pid = auditd_pid_vnr();
1230 s.rate_limit = audit_rate_limit;
1231 s.backlog_limit = audit_backlog_limit;
1232 s.lost = atomic_read(&audit_lost);
1233 s.backlog = skb_queue_len(&audit_queue);
1234 s.feature_bitmap = AUDIT_FEATURE_BITMAP_ALL;
1235 s.backlog_wait_time = audit_backlog_wait_time;
1236 s.backlog_wait_time_actual = atomic_read(&audit_backlog_wait_time_actual);
6f285b19 1237 audit_send_reply(skb, seq, AUDIT_GET, 0, 0, &s, sizeof(s));
1da177e4 1238 break;
09f883a9
RGB
1239 }
1240 case AUDIT_SET: {
1241 struct audit_status s;
1242 memset(&s, 0, sizeof(s));
1243 /* guard against past and future API changes */
75612528 1244 memcpy(&s, data, min_t(size_t, sizeof(s), data_len));
09f883a9
RGB
1245 if (s.mask & AUDIT_STATUS_ENABLED) {
1246 err = audit_set_enabled(s.enabled);
20c6aaa3 1247 if (err < 0)
1248 return err;
1da177e4 1249 }
09f883a9
RGB
1250 if (s.mask & AUDIT_STATUS_FAILURE) {
1251 err = audit_set_failure(s.failure);
20c6aaa3 1252 if (err < 0)
1253 return err;
1da177e4 1254 }
09f883a9 1255 if (s.mask & AUDIT_STATUS_PID) {
b6c7c115
PM
1256 /* NOTE: we are using the vnr PID functions below
1257 * because the s.pid value is relative to the
1258 * namespace of the caller; at present this
1259 * doesn't matter much since you can really only
1260 * run auditd from the initial pid namespace, but
1261 * something to keep in mind if this changes */
1262 pid_t new_pid = s.pid;
5b52330b 1263 pid_t auditd_pid;
b6c7c115
PM
1264 struct pid *req_pid = task_tgid(current);
1265
33e8a907
SG
1266 /* Sanity check - PID values must match. Setting
1267 * pid to 0 is how auditd ends auditing. */
1268 if (new_pid && (new_pid != pid_vnr(req_pid)))
b6c7c115 1269 return -EINVAL;
1a6b9f23 1270
5b52330b 1271 /* test the auditd connection */
b6c7c115 1272 audit_replace(req_pid);
5b52330b 1273
48d0e023 1274 auditd_pid = auditd_pid_vnr();
33e8a907
SG
1275 if (auditd_pid) {
1276 /* replacing a healthy auditd is not allowed */
1277 if (new_pid) {
1278 audit_log_config_change("audit_pid",
1279 new_pid, auditd_pid, 0);
1280 return -EEXIST;
1281 }
1282 /* only current auditd can unregister itself */
1283 if (pid_vnr(req_pid) != auditd_pid) {
1284 audit_log_config_change("audit_pid",
1285 new_pid, auditd_pid, 0);
1286 return -EACCES;
1287 }
935c9e7f 1288 }
5b52330b 1289
533c7b69 1290 if (new_pid) {
5b52330b 1291 /* register a new auditd connection */
48d0e023
PM
1292 err = auditd_set(req_pid,
1293 NETLINK_CB(skb).portid,
1294 sock_net(NETLINK_CB(skb).sk));
1295 if (audit_enabled != AUDIT_OFF)
1296 audit_log_config_change("audit_pid",
1297 new_pid,
1298 auditd_pid,
1299 err ? 0 : 1);
1300 if (err)
1301 return err;
1302
5b52330b
PM
1303 /* try to process any backlog */
1304 wake_up_interruptible(&kauditd_wait);
48d0e023
PM
1305 } else {
1306 if (audit_enabled != AUDIT_OFF)
1307 audit_log_config_change("audit_pid",
1308 new_pid,
1309 auditd_pid, 1);
1310
5b52330b 1311 /* unregister the auditd connection */
c81be52a 1312 auditd_reset(NULL);
48d0e023 1313 }
1da177e4 1314 }
09f883a9
RGB
1315 if (s.mask & AUDIT_STATUS_RATE_LIMIT) {
1316 err = audit_set_rate_limit(s.rate_limit);
20c6aaa3 1317 if (err < 0)
1318 return err;
1319 }
51cc83f0 1320 if (s.mask & AUDIT_STATUS_BACKLOG_LIMIT) {
09f883a9 1321 err = audit_set_backlog_limit(s.backlog_limit);
51cc83f0
RGB
1322 if (err < 0)
1323 return err;
1324 }
3f0c5fad
EP
1325 if (s.mask & AUDIT_STATUS_BACKLOG_WAIT_TIME) {
1326 if (sizeof(s) > (size_t)nlh->nlmsg_len)
1327 return -EINVAL;
724e7bfc 1328 if (s.backlog_wait_time > 10*AUDIT_BACKLOG_WAIT_TIME)
3f0c5fad
EP
1329 return -EINVAL;
1330 err = audit_set_backlog_wait_time(s.backlog_wait_time);
1331 if (err < 0)
1332 return err;
51cc83f0 1333 }
92c82e8a
RGB
1334 if (s.mask == AUDIT_STATUS_LOST) {
1335 u32 lost = atomic_xchg(&audit_lost, 0);
1336
1337 audit_log_config_change("lost", 0, lost, 1);
1338 return lost;
1339 }
b43870c7
ME
1340 if (s.mask == AUDIT_STATUS_BACKLOG_WAIT_TIME_ACTUAL) {
1341 u32 actual = atomic_xchg(&audit_backlog_wait_time_actual, 0);
1342
1343 audit_log_config_change("backlog_wait_time_actual", 0, actual, 1);
1344 return actual;
1345 }
1da177e4 1346 break;
09f883a9 1347 }
b0fed402
EP
1348 case AUDIT_GET_FEATURE:
1349 err = audit_get_feature(skb);
1350 if (err)
1351 return err;
1352 break;
1353 case AUDIT_SET_FEATURE:
75612528
PM
1354 if (data_len < sizeof(struct audit_features))
1355 return -EINVAL;
1356 err = audit_set_feature(data);
b0fed402
EP
1357 if (err)
1358 return err;
1359 break;
05474106 1360 case AUDIT_USER:
039b6b3e
RD
1361 case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG:
1362 case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2:
4a4cd633
DW
1363 if (!audit_enabled && msg_type != AUDIT_USER_AVC)
1364 return 0;
763dafc5
PM
1365 /* exit early if there isn't at least one character to print */
1366 if (data_len < 2)
1367 return -EINVAL;
4a4cd633 1368
86b2efbe 1369 err = audit_filter(msg_type, AUDIT_FILTER_USER);
724e4fcc 1370 if (err == 1) { /* match or error */
75612528
PM
1371 char *str = data;
1372
4a4cd633 1373 err = 0;
522ed776 1374 if (msg_type == AUDIT_USER_TTY) {
37282a77 1375 err = tty_audit_push();
522ed776
MT
1376 if (err)
1377 break;
1378 }
626abcd1 1379 audit_log_user_recv_msg(&ab, msg_type);
75612528
PM
1380 if (msg_type != AUDIT_USER_TTY) {
1381 /* ensure NULL termination */
1382 str[data_len - 1] = '\0';
b50eba7e
RGB
1383 audit_log_format(ab, " msg='%.*s'",
1384 AUDIT_MESSAGE_TEXT_MAX,
75612528
PM
1385 str);
1386 } else {
f7616102 1387 audit_log_format(ab, " data=");
75612528
PM
1388 if (data_len > 0 && str[data_len - 1] == '\0')
1389 data_len--;
1390 audit_log_n_untrustedstring(ab, str, data_len);
4a4cd633 1391 }
50397bd1 1392 audit_log_end(ab);
f5c2b5f7 1393 audit_log_lsm(NULL, false);
0f45aa18 1394 }
1da177e4 1395 break;
93315ed6
AG
1396 case AUDIT_ADD_RULE:
1397 case AUDIT_DEL_RULE:
75612528 1398 if (data_len < sizeof(struct audit_rule_data))
93315ed6 1399 return -EINVAL;
1a6b9f23 1400 if (audit_enabled == AUDIT_LOCKED) {
626abcd1
RGB
1401 audit_log_common_recv_msg(audit_context(), &ab,
1402 AUDIT_CONFIG_CHANGE);
53fc7a01
RGB
1403 audit_log_format(ab, " op=%s audit_enabled=%d res=0",
1404 msg_type == AUDIT_ADD_RULE ?
1405 "add_rule" : "remove_rule",
1406 audit_enabled);
50397bd1 1407 audit_log_end(ab);
6a01b07f
SG
1408 return -EPERM;
1409 }
75612528 1410 err = audit_rule_change(msg_type, seq, data, data_len);
1da177e4 1411 break;
ce0d9f04 1412 case AUDIT_LIST_RULES:
6f285b19 1413 err = audit_list_rules_send(skb, seq);
ce0d9f04 1414 break;
74c3cbe3
AV
1415 case AUDIT_TRIM:
1416 audit_trim_trees();
626abcd1
RGB
1417 audit_log_common_recv_msg(audit_context(), &ab,
1418 AUDIT_CONFIG_CHANGE);
74c3cbe3
AV
1419 audit_log_format(ab, " op=trim res=1");
1420 audit_log_end(ab);
1421 break;
1422 case AUDIT_MAKE_EQUIV: {
1423 void *bufp = data;
1424 u32 sizes[2];
75612528 1425 size_t msglen = data_len;
74c3cbe3
AV
1426 char *old, *new;
1427
1428 err = -EINVAL;
7719e437 1429 if (msglen < 2 * sizeof(u32))
74c3cbe3
AV
1430 break;
1431 memcpy(sizes, bufp, 2 * sizeof(u32));
1432 bufp += 2 * sizeof(u32);
7719e437
HH
1433 msglen -= 2 * sizeof(u32);
1434 old = audit_unpack_string(&bufp, &msglen, sizes[0]);
74c3cbe3
AV
1435 if (IS_ERR(old)) {
1436 err = PTR_ERR(old);
1437 break;
1438 }
7719e437 1439 new = audit_unpack_string(&bufp, &msglen, sizes[1]);
74c3cbe3
AV
1440 if (IS_ERR(new)) {
1441 err = PTR_ERR(new);
1442 kfree(old);
1443 break;
1444 }
1445 /* OK, here comes... */
1446 err = audit_tag_tree(old, new);
1447
626abcd1
RGB
1448 audit_log_common_recv_msg(audit_context(), &ab,
1449 AUDIT_CONFIG_CHANGE);
74c3cbe3
AV
1450 audit_log_format(ab, " op=make_equiv old=");
1451 audit_log_untrustedstring(ab, old);
1452 audit_log_format(ab, " new=");
1453 audit_log_untrustedstring(ab, new);
1454 audit_log_format(ab, " res=%d", !err);
1455 audit_log_end(ab);
1456 kfree(old);
1457 kfree(new);
1458 break;
1459 }
ba9f64e1
CS
1460 case AUDIT_SIGNAL_INFO: {
1461 struct lsmcontext context = { };
1462 int len = 0;
1463
ab9c17a8 1464 if (lsmblob_is_set(&audit_sig_lsm)) {
ba9f64e1 1465 err = security_secid_to_secctx(&audit_sig_lsm,
f5c2b5f7 1466 &context, LSMBLOB_FIRST);
939cbf26
EP
1467 if (err)
1468 return err;
1469 }
ba9f64e1 1470 sig_data = kmalloc(sizeof(*sig_data) + context.len, GFP_KERNEL);
e1396065 1471 if (!sig_data) {
ba9f64e1
CS
1472 if (lsmblob_is_set(&audit_sig_lsm))
1473 security_release_secctx(&context);
e1396065
AV
1474 return -ENOMEM;
1475 }
cca080d9 1476 sig_data->uid = from_kuid(&init_user_ns, audit_sig_uid);
e1396065 1477 sig_data->pid = audit_sig_pid;
ab9c17a8 1478 if (lsmblob_is_set(&audit_sig_lsm)) {
ba9f64e1
CS
1479 len = context.len;
1480 memcpy(sig_data->ctx, context.context, len);
1481 security_release_secctx(&context);
939cbf26 1482 }
6f285b19
EB
1483 audit_send_reply(skb, seq, AUDIT_SIGNAL_INFO, 0, 0,
1484 sig_data, sizeof(*sig_data) + len);
e1396065 1485 kfree(sig_data);
c2f0c7c3 1486 break;
ba9f64e1 1487 }
522ed776
MT
1488 case AUDIT_TTY_GET: {
1489 struct audit_tty_status s;
2e28d38a 1490 unsigned int t;
8aa14b64 1491
2e28d38a
PH
1492 t = READ_ONCE(current->signal->audit_tty);
1493 s.enabled = t & AUDIT_TTY_ENABLE;
1494 s.log_passwd = !!(t & AUDIT_TTY_LOG_PASSWD);
8aa14b64 1495
6f285b19 1496 audit_send_reply(skb, seq, AUDIT_TTY_GET, 0, 0, &s, sizeof(s));
522ed776
MT
1497 break;
1498 }
1499 case AUDIT_TTY_SET: {
a06e56b2 1500 struct audit_tty_status s, old;
a06e56b2 1501 struct audit_buffer *ab;
2e28d38a 1502 unsigned int t;
0e23bacc
EP
1503
1504 memset(&s, 0, sizeof(s));
1505 /* guard against past and future API changes */
75612528 1506 memcpy(&s, data, min_t(size_t, sizeof(s), data_len));
0e23bacc
EP
1507 /* check if new data is valid */
1508 if ((s.enabled != 0 && s.enabled != 1) ||
1509 (s.log_passwd != 0 && s.log_passwd != 1))
1510 err = -EINVAL;
a06e56b2 1511
2e28d38a
PH
1512 if (err)
1513 t = READ_ONCE(current->signal->audit_tty);
1514 else {
1515 t = s.enabled | (-s.log_passwd & AUDIT_TTY_LOG_PASSWD);
1516 t = xchg(&current->signal->audit_tty, t);
0e23bacc 1517 }
2e28d38a
PH
1518 old.enabled = t & AUDIT_TTY_ENABLE;
1519 old.log_passwd = !!(t & AUDIT_TTY_LOG_PASSWD);
522ed776 1520
626abcd1
RGB
1521 audit_log_common_recv_msg(audit_context(), &ab,
1522 AUDIT_CONFIG_CHANGE);
1ce319f1
EP
1523 audit_log_format(ab, " op=tty_set old-enabled=%d new-enabled=%d"
1524 " old-log_passwd=%d new-log_passwd=%d res=%d",
1525 old.enabled, s.enabled, old.log_passwd,
1526 s.log_passwd, !err);
a06e56b2 1527 audit_log_end(ab);
522ed776
MT
1528 break;
1529 }
1da177e4
LT
1530 default:
1531 err = -EINVAL;
1532 break;
1533 }
1534
1535 return err < 0 ? err : 0;
1536}
1537
a9d16208
PM
1538/**
1539 * audit_receive - receive messages from a netlink control socket
1540 * @skb: the message buffer
1541 *
1542 * Parse the provided skb and deal with any messages that may be present,
1543 * malformed skbs are discarded.
b0dd25a8 1544 */
a9d16208 1545static void audit_receive(struct sk_buff *skb)
1da177e4 1546{
ea7ae60b
EP
1547 struct nlmsghdr *nlh;
1548 /*
94191213 1549 * len MUST be signed for nlmsg_next to be able to dec it below 0
ea7ae60b
EP
1550 * if the nlmsg_len was not aligned
1551 */
1552 int len;
1553 int err;
1554
1555 nlh = nlmsg_hdr(skb);
1556 len = skb->len;
1557
ce423631 1558 audit_ctl_lock();
94191213 1559 while (nlmsg_ok(nlh, len)) {
ea7ae60b
EP
1560 err = audit_receive_msg(skb, nlh);
1561 /* if err or if this message says it wants a response */
1562 if (err || (nlh->nlmsg_flags & NLM_F_ACK))
2d4bc933 1563 netlink_ack(skb, nlh, err, NULL);
ea7ae60b 1564
2851da57 1565 nlh = nlmsg_next(nlh, &len);
1da177e4 1566 }
ce423631 1567 audit_ctl_unlock();
1da177e4
LT
1568}
1569
9d2161be
RGB
1570/* Log information about who is connecting to the audit multicast socket */
1571static void audit_log_multicast(int group, const char *op, int err)
1572{
1573 const struct cred *cred;
1574 struct tty_struct *tty;
1575 char comm[sizeof(current->comm)];
1576 struct audit_buffer *ab;
1577
1578 if (!audit_enabled)
1579 return;
1580
1581 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_EVENT_LISTENER);
1582 if (!ab)
1583 return;
1584
1585 cred = current_cred();
1586 tty = audit_get_tty();
1587 audit_log_format(ab, "pid=%u uid=%u auid=%u tty=%s ses=%u",
1588 task_pid_nr(current),
1589 from_kuid(&init_user_ns, cred->uid),
1590 from_kuid(&init_user_ns, audit_get_loginuid(current)),
1591 tty ? tty_name(tty) : "(none)",
1592 audit_get_sessionid(current));
1593 audit_put_tty(tty);
f5c2b5f7 1594 audit_log_task_context(ab, NULL); /* subj= */
9d2161be
RGB
1595 audit_log_format(ab, " comm=");
1596 audit_log_untrustedstring(ab, get_task_comm(comm, current));
1597 audit_log_d_path_exe(ab, current->mm); /* exe= */
1598 audit_log_format(ab, " nl-mcgrp=%d op=%s res=%d", group, op, !err);
1599 audit_log_end(ab);
1600}
1601
3a101b8d 1602/* Run custom bind function on netlink socket group connect or bind requests. */
9d2161be 1603static int audit_multicast_bind(struct net *net, int group)
3a101b8d 1604{
9d2161be
RGB
1605 int err = 0;
1606
3a101b8d 1607 if (!capable(CAP_AUDIT_READ))
9d2161be
RGB
1608 err = -EPERM;
1609 audit_log_multicast(group, "connect", err);
1610 return err;
1611}
3a101b8d 1612
9d2161be
RGB
1613static void audit_multicast_unbind(struct net *net, int group)
1614{
1615 audit_log_multicast(group, "disconnect", 0);
3a101b8d
RGB
1616}
1617
33faba7f 1618static int __net_init audit_net_init(struct net *net)
1da177e4 1619{
a31f2d17
PNA
1620 struct netlink_kernel_cfg cfg = {
1621 .input = audit_receive,
9d2161be
RGB
1622 .bind = audit_multicast_bind,
1623 .unbind = audit_multicast_unbind,
451f9216
RGB
1624 .flags = NL_CFG_F_NONROOT_RECV,
1625 .groups = AUDIT_NLGRP_MAX,
a31f2d17 1626 };
f368c07d 1627
33faba7f
RGB
1628 struct audit_net *aunet = net_generic(net, audit_net_id);
1629
5b52330b
PM
1630 aunet->sk = netlink_kernel_create(net, NETLINK_AUDIT, &cfg);
1631 if (aunet->sk == NULL) {
33faba7f 1632 audit_panic("cannot initialize netlink socket in namespace");
11ee39eb
G
1633 return -ENOMEM;
1634 }
5b52330b
PM
1635 aunet->sk->sk_sndtimeo = MAX_SCHEDULE_TIMEOUT;
1636
33faba7f
RGB
1637 return 0;
1638}
1639
1640static void __net_exit audit_net_exit(struct net *net)
1641{
1642 struct audit_net *aunet = net_generic(net, audit_net_id);
5b52330b 1643
48d0e023
PM
1644 /* NOTE: you would think that we would want to check the auditd
1645 * connection and potentially reset it here if it lives in this
1646 * namespace, but since the auditd connection tracking struct holds a
1647 * reference to this namespace (see auditd_set()) we are only ever
1648 * going to get here after that connection has been released */
33faba7f 1649
5b52330b 1650 netlink_kernel_release(aunet->sk);
33faba7f
RGB
1651}
1652
8626877b 1653static struct pernet_operations audit_net_ops __net_initdata = {
33faba7f
RGB
1654 .init = audit_net_init,
1655 .exit = audit_net_exit,
1656 .id = &audit_net_id,
1657 .size = sizeof(struct audit_net),
1658};
1659
1660/* Initialize audit support at boot time. */
1661static int __init audit_init(void)
1662{
1663 int i;
1664
a3f07114
EP
1665 if (audit_initialized == AUDIT_DISABLED)
1666 return 0;
1667
8cc96382
PM
1668 audit_buffer_cache = kmem_cache_create("audit_buffer",
1669 sizeof(struct audit_buffer),
1670 0, SLAB_PANIC, NULL);
1da177e4 1671
af8b824f 1672 skb_queue_head_init(&audit_queue);
c6480207 1673 skb_queue_head_init(&audit_retry_queue);
af8b824f 1674 skb_queue_head_init(&audit_hold_queue);
3dc7e315 1675
f368c07d
AG
1676 for (i = 0; i < AUDIT_INODE_BUCKETS; i++)
1677 INIT_LIST_HEAD(&audit_inode_hash[i]);
f368c07d 1678
ce423631
PM
1679 mutex_init(&audit_cmd_mutex.lock);
1680 audit_cmd_mutex.owner = NULL;
1681
5b52330b
PM
1682 pr_info("initializing netlink subsys (%s)\n",
1683 audit_default ? "enabled" : "disabled");
1684 register_pernet_subsys(&audit_net_ops);
1685
1686 audit_initialized = AUDIT_INITIALIZED;
5b52330b 1687
6c925564
PM
1688 kauditd_task = kthread_run(kauditd_thread, NULL, "kauditd");
1689 if (IS_ERR(kauditd_task)) {
1690 int err = PTR_ERR(kauditd_task);
1691 panic("audit: failed to start the kauditd thread (%d)\n", err);
1692 }
1693
7c397d01
SG
1694 audit_log(NULL, GFP_KERNEL, AUDIT_KERNEL,
1695 "state=initialized audit_enabled=%u res=1",
1696 audit_enabled);
6c925564 1697
1da177e4
LT
1698 return 0;
1699}
be4104ab 1700postcore_initcall(audit_init);
1da177e4 1701
11dd2666
GE
1702/*
1703 * Process kernel command-line parameter at boot time.
1704 * audit={0|off} or audit={1|on}.
1705 */
1da177e4
LT
1706static int __init audit_enable(char *str)
1707{
11dd2666
GE
1708 if (!strcasecmp(str, "off") || !strcmp(str, "0"))
1709 audit_default = AUDIT_OFF;
1710 else if (!strcasecmp(str, "on") || !strcmp(str, "1"))
1711 audit_default = AUDIT_ON;
1712 else {
1713 pr_err("audit: invalid 'audit' parameter value (%s)\n", str);
1714 audit_default = AUDIT_ON;
1715 }
80ab4df6
PM
1716
1717 if (audit_default == AUDIT_OFF)
a3f07114 1718 audit_initialized = AUDIT_DISABLED;
5d842a5b 1719 if (audit_set_enabled(audit_default))
11dd2666
GE
1720 pr_err("audit: error setting audit state (%d)\n",
1721 audit_default);
a3f07114 1722
d957f7b7 1723 pr_info("%s\n", audit_default ?
d3ca0344 1724 "enabled (after initialization)" : "disabled (until reboot)");
a3f07114 1725
9b41046c 1726 return 1;
1da177e4 1727}
1da177e4
LT
1728__setup("audit=", audit_enable);
1729
f910fde7
RGB
1730/* Process kernel command-line parameter at boot time.
1731 * audit_backlog_limit=<n> */
1732static int __init audit_backlog_limit_set(char *str)
1733{
3e1d0bb6 1734 u32 audit_backlog_limit_arg;
d957f7b7 1735
f910fde7 1736 pr_info("audit_backlog_limit: ");
3e1d0bb6
JP
1737 if (kstrtouint(str, 0, &audit_backlog_limit_arg)) {
1738 pr_cont("using default of %u, unable to parse %s\n",
d957f7b7 1739 audit_backlog_limit, str);
f910fde7
RGB
1740 return 1;
1741 }
3e1d0bb6
JP
1742
1743 audit_backlog_limit = audit_backlog_limit_arg;
d957f7b7 1744 pr_cont("%d\n", audit_backlog_limit);
f910fde7
RGB
1745
1746 return 1;
1747}
1748__setup("audit_backlog_limit=", audit_backlog_limit_set);
1749
16e1904e
CW
1750static void audit_buffer_free(struct audit_buffer *ab)
1751{
8fc6115c
CW
1752 if (!ab)
1753 return;
1754
d865e573 1755 kfree_skb(ab->skb);
8cc96382 1756 kmem_cache_free(audit_buffer_cache, ab);
16e1904e
CW
1757}
1758
8cc96382
PM
1759static struct audit_buffer *audit_buffer_alloc(struct audit_context *ctx,
1760 gfp_t gfp_mask, int type)
16e1904e 1761{
8cc96382 1762 struct audit_buffer *ab;
8fc6115c 1763
8cc96382
PM
1764 ab = kmem_cache_alloc(audit_buffer_cache, gfp_mask);
1765 if (!ab)
1766 return NULL;
ee080e6c
EP
1767
1768 ab->skb = nlmsg_new(AUDIT_BUFSIZ, gfp_mask);
1769 if (!ab->skb)
c64e66c6 1770 goto err;
8cc96382
PM
1771 if (!nlmsg_put(ab->skb, 0, 0, type, 0, 0))
1772 goto err;
ee080e6c 1773
8cc96382
PM
1774 ab->ctx = ctx;
1775 ab->gfp_mask = gfp_mask;
ee080e6c 1776
16e1904e 1777 return ab;
ee080e6c 1778
8fc6115c
CW
1779err:
1780 audit_buffer_free(ab);
1781 return NULL;
16e1904e 1782}
1da177e4 1783
b0dd25a8
RD
1784/**
1785 * audit_serial - compute a serial number for the audit record
1786 *
1787 * Compute a serial number for the audit record. Audit records are
bfb4496e
DW
1788 * written to user-space as soon as they are generated, so a complete
1789 * audit record may be written in several pieces. The timestamp of the
1790 * record and this serial number are used by the user-space tools to
1791 * determine which pieces belong to the same audit record. The
1792 * (timestamp,serial) tuple is unique for each syscall and is live from
1793 * syscall entry to syscall exit.
1794 *
bfb4496e
DW
1795 * NOTE: Another possibility is to store the formatted records off the
1796 * audit context (for those records that have a context), and emit them
1797 * all at syscall exit. However, this could delay the reporting of
1798 * significant errors until syscall exit (or never, if the system
b0dd25a8
RD
1799 * halts).
1800 */
bfb4496e
DW
1801unsigned int audit_serial(void)
1802{
01478d7d 1803 static atomic_t serial = ATOMIC_INIT(0);
d5b454f2 1804
6b321184 1805 return atomic_inc_return(&serial);
bfb4496e
DW
1806}
1807
5600b892 1808static inline void audit_get_stamp(struct audit_context *ctx,
2115bb25 1809 struct timespec64 *t, unsigned int *serial)
bfb4496e 1810{
48887e63 1811 if (!ctx || !auditsc_get_stamp(ctx, t, serial)) {
290e44b7 1812 ktime_get_coarse_real_ts64(t);
bfb4496e
DW
1813 *serial = audit_serial();
1814 }
1815}
1816
b0dd25a8
RD
1817/**
1818 * audit_log_start - obtain an audit buffer
1819 * @ctx: audit_context (may be NULL)
1820 * @gfp_mask: type of allocation
1821 * @type: audit message type
1822 *
1823 * Returns audit_buffer pointer on success or NULL on error.
1824 *
1825 * Obtain an audit buffer. This routine does locking to obtain the
1826 * audit buffer, but then no locking is required for calls to
1827 * audit_log_*format. If the task (ctx) is a task that is currently in a
1828 * syscall, then the syscall is marked as auditable and an audit record
1829 * will be written at syscall exit. If there is no associated task, then
1830 * task context (ctx) should be NULL.
1831 */
9796fdd8 1832struct audit_buffer *audit_log_start(struct audit_context *ctx, gfp_t gfp_mask,
9ad9ad38 1833 int type)
1da177e4 1834{
31975424 1835 struct audit_buffer *ab;
2115bb25 1836 struct timespec64 t;
3f649ab7 1837 unsigned int serial;
1da177e4 1838
a3f07114 1839 if (audit_initialized != AUDIT_INITIALIZED)
1da177e4
LT
1840 return NULL;
1841
d904ac03 1842 if (unlikely(!audit_filter(type, AUDIT_FILTER_EXCLUDE)))
c8edc80c
DK
1843 return NULL;
1844
5b52330b 1845 /* NOTE: don't ever fail/sleep on these two conditions:
a09cfa47
PM
1846 * 1. auditd generated record - since we need auditd to drain the
1847 * queue; also, when we are checking for auditd, compare PIDs using
1848 * task_tgid_vnr() since auditd_pid is set in audit_receive_msg()
1849 * using a PID anchored in the caller's namespace
5b52330b
PM
1850 * 2. generator holding the audit_cmd_mutex - we don't want to block
1851 * while holding the mutex */
ce423631 1852 if (!(auditd_test_task(current) || audit_ctl_owner_current())) {
5b52330b 1853 long stime = audit_backlog_wait_time;
31975424
PM
1854
1855 while (audit_backlog_limit &&
1856 (skb_queue_len(&audit_queue) > audit_backlog_limit)) {
1857 /* wake kauditd to try and flush the queue */
1858 wake_up_interruptible(&kauditd_wait);
9ad9ad38 1859
31975424
PM
1860 /* sleep if we are allowed and we haven't exhausted our
1861 * backlog wait limit */
5b52330b 1862 if (gfpflags_allow_blocking(gfp_mask) && (stime > 0)) {
b43870c7
ME
1863 long rtime = stime;
1864
31975424
PM
1865 DECLARE_WAITQUEUE(wait, current);
1866
1867 add_wait_queue_exclusive(&audit_backlog_wait,
1868 &wait);
1869 set_current_state(TASK_UNINTERRUPTIBLE);
b43870c7
ME
1870 stime = schedule_timeout(rtime);
1871 atomic_add(rtime - stime, &audit_backlog_wait_time_actual);
31975424
PM
1872 remove_wait_queue(&audit_backlog_wait, &wait);
1873 } else {
1874 if (audit_rate_check() && printk_ratelimit())
1875 pr_warn("audit_backlog=%d > audit_backlog_limit=%d\n",
1876 skb_queue_len(&audit_queue),
1877 audit_backlog_limit);
1878 audit_log_lost("backlog limit exceeded");
1879 return NULL;
8ac1c8d5 1880 }
9ad9ad38 1881 }
fb19b4c6
DW
1882 }
1883
9ad9ad38 1884 ab = audit_buffer_alloc(ctx, gfp_mask, type);
1da177e4
LT
1885 if (!ab) {
1886 audit_log_lost("out of memory in audit_log_start");
1887 return NULL;
1888 }
1889
bfb4496e 1890 audit_get_stamp(ab->ctx, &t, &serial);
6d915476
RGB
1891 /* cancel dummy context to enable supporting records */
1892 if (ctx)
1893 ctx->dummy = 0;
19fa7b31
CS
1894 if (type == AUDIT_MAC_TASK_CONTEXTS && ab->ctx &&
1895 ab->ctx->serial == 0) {
f5c2b5f7
CS
1896 audit_stamp_context(ab->ctx);
1897 audit_get_stamp(ab->ctx, &t, &serial);
1898 }
2115bb25
DD
1899 audit_log_format(ab, "audit(%llu.%03lu:%u): ",
1900 (unsigned long long)t.tv_sec, t.tv_nsec/1000000, serial);
31975424 1901
1da177e4
LT
1902 return ab;
1903}
1904
8fc6115c 1905/**
5ac52f33 1906 * audit_expand - expand skb in the audit buffer
8fc6115c 1907 * @ab: audit_buffer
b0dd25a8 1908 * @extra: space to add at tail of the skb
8fc6115c
CW
1909 *
1910 * Returns 0 (no space) on failed expansion, or available space if
1911 * successful.
1912 */
e3b926b4 1913static inline int audit_expand(struct audit_buffer *ab, int extra)
8fc6115c 1914{
5ac52f33 1915 struct sk_buff *skb = ab->skb;
406a1d86
HX
1916 int oldtail = skb_tailroom(skb);
1917 int ret = pskb_expand_head(skb, 0, extra, ab->gfp_mask);
1918 int newtail = skb_tailroom(skb);
1919
5ac52f33
CW
1920 if (ret < 0) {
1921 audit_log_lost("out of memory in audit_expand");
8fc6115c 1922 return 0;
5ac52f33 1923 }
406a1d86
HX
1924
1925 skb->truesize += newtail - oldtail;
1926 return newtail;
8fc6115c 1927}
1da177e4 1928
b0dd25a8
RD
1929/*
1930 * Format an audit message into the audit buffer. If there isn't enough
1da177e4
LT
1931 * room in the audit buffer, more room will be allocated and vsnprint
1932 * will be called a second time. Currently, we assume that a printk
b0dd25a8
RD
1933 * can't format message larger than 1024 bytes, so we don't either.
1934 */
1da177e4
LT
1935static void audit_log_vformat(struct audit_buffer *ab, const char *fmt,
1936 va_list args)
1937{
1938 int len, avail;
5ac52f33 1939 struct sk_buff *skb;
eecb0a73 1940 va_list args2;
1da177e4
LT
1941
1942 if (!ab)
1943 return;
1944
5ac52f33
CW
1945 BUG_ON(!ab->skb);
1946 skb = ab->skb;
1947 avail = skb_tailroom(skb);
1948 if (avail == 0) {
e3b926b4 1949 avail = audit_expand(ab, AUDIT_BUFSIZ);
8fc6115c
CW
1950 if (!avail)
1951 goto out;
1da177e4 1952 }
eecb0a73 1953 va_copy(args2, args);
27a884dc 1954 len = vsnprintf(skb_tail_pointer(skb), avail, fmt, args);
1da177e4
LT
1955 if (len >= avail) {
1956 /* The printk buffer is 1024 bytes long, so if we get
1957 * here and AUDIT_BUFSIZ is at least 1024, then we can
1958 * log everything that printk could have logged. */
b0dd25a8
RD
1959 avail = audit_expand(ab,
1960 max_t(unsigned, AUDIT_BUFSIZ, 1+len-avail));
8fc6115c 1961 if (!avail)
a0e86bd4 1962 goto out_va_end;
27a884dc 1963 len = vsnprintf(skb_tail_pointer(skb), avail, fmt, args2);
1da177e4 1964 }
168b7173
SG
1965 if (len > 0)
1966 skb_put(skb, len);
a0e86bd4
JJ
1967out_va_end:
1968 va_end(args2);
8fc6115c
CW
1969out:
1970 return;
1da177e4
LT
1971}
1972
b0dd25a8
RD
1973/**
1974 * audit_log_format - format a message into the audit buffer.
1975 * @ab: audit_buffer
1976 * @fmt: format string
1977 * @...: optional parameters matching @fmt string
1978 *
1979 * All the work is done in audit_log_vformat.
1980 */
1da177e4
LT
1981void audit_log_format(struct audit_buffer *ab, const char *fmt, ...)
1982{
1983 va_list args;
1984
1985 if (!ab)
1986 return;
1987 va_start(args, fmt);
1988 audit_log_vformat(ab, fmt, args);
1989 va_end(args);
1990}
1991
b0dd25a8 1992/**
196a5085 1993 * audit_log_n_hex - convert a buffer to hex and append it to the audit skb
b0dd25a8
RD
1994 * @ab: the audit_buffer
1995 * @buf: buffer to convert to hex
1996 * @len: length of @buf to be converted
1997 *
1998 * No return value; failure to expand is silently ignored.
1999 *
2000 * This function will take the passed buf and convert it into a string of
2001 * ascii hex digits. The new string is placed onto the skb.
2002 */
b556f8ad 2003void audit_log_n_hex(struct audit_buffer *ab, const unsigned char *buf,
168b7173 2004 size_t len)
83c7d091 2005{
168b7173
SG
2006 int i, avail, new_len;
2007 unsigned char *ptr;
2008 struct sk_buff *skb;
168b7173 2009
8ef2d304
AG
2010 if (!ab)
2011 return;
2012
168b7173
SG
2013 BUG_ON(!ab->skb);
2014 skb = ab->skb;
2015 avail = skb_tailroom(skb);
2016 new_len = len<<1;
2017 if (new_len >= avail) {
2018 /* Round the buffer request up to the next multiple */
2019 new_len = AUDIT_BUFSIZ*(((new_len-avail)/AUDIT_BUFSIZ) + 1);
2020 avail = audit_expand(ab, new_len);
2021 if (!avail)
2022 return;
2023 }
83c7d091 2024
27a884dc 2025 ptr = skb_tail_pointer(skb);
b8dbc324
JP
2026 for (i = 0; i < len; i++)
2027 ptr = hex_byte_pack_upper(ptr, buf[i]);
168b7173
SG
2028 *ptr = 0;
2029 skb_put(skb, len << 1); /* new string is twice the old string */
83c7d091
DW
2030}
2031
9c937dcc
AG
2032/*
2033 * Format a string of no more than slen characters into the audit buffer,
2034 * enclosed in quote marks.
2035 */
b556f8ad
EP
2036void audit_log_n_string(struct audit_buffer *ab, const char *string,
2037 size_t slen)
9c937dcc
AG
2038{
2039 int avail, new_len;
2040 unsigned char *ptr;
2041 struct sk_buff *skb;
2042
8ef2d304
AG
2043 if (!ab)
2044 return;
2045
9c937dcc
AG
2046 BUG_ON(!ab->skb);
2047 skb = ab->skb;
2048 avail = skb_tailroom(skb);
2049 new_len = slen + 3; /* enclosing quotes + null terminator */
2050 if (new_len > avail) {
2051 avail = audit_expand(ab, new_len);
2052 if (!avail)
2053 return;
2054 }
27a884dc 2055 ptr = skb_tail_pointer(skb);
9c937dcc
AG
2056 *ptr++ = '"';
2057 memcpy(ptr, string, slen);
2058 ptr += slen;
2059 *ptr++ = '"';
2060 *ptr = 0;
2061 skb_put(skb, slen + 2); /* don't include null terminator */
2062}
2063
de6bbd1d
EP
2064/**
2065 * audit_string_contains_control - does a string need to be logged in hex
f706d5d2
DJ
2066 * @string: string to be checked
2067 * @len: max length of the string to check
de6bbd1d 2068 */
9fcf836b 2069bool audit_string_contains_control(const char *string, size_t len)
de6bbd1d
EP
2070{
2071 const unsigned char *p;
b3897f56 2072 for (p = string; p < (const unsigned char *)string + len; p++) {
1d6c9649 2073 if (*p == '"' || *p < 0x21 || *p > 0x7e)
9fcf836b 2074 return true;
de6bbd1d 2075 }
9fcf836b 2076 return false;
de6bbd1d
EP
2077}
2078
b0dd25a8 2079/**
522ed776 2080 * audit_log_n_untrustedstring - log a string that may contain random characters
b0dd25a8 2081 * @ab: audit_buffer
f706d5d2 2082 * @len: length of string (not including trailing null)
b0dd25a8
RD
2083 * @string: string to be logged
2084 *
2085 * This code will escape a string that is passed to it if the string
2086 * contains a control character, unprintable character, double quote mark,
168b7173 2087 * or a space. Unescaped strings will start and end with a double quote mark.
b0dd25a8 2088 * Strings that are escaped are printed in hex (2 digits per char).
9c937dcc
AG
2089 *
2090 * The caller specifies the number of characters in the string to log, which may
2091 * or may not be the entire string.
b0dd25a8 2092 */
b556f8ad
EP
2093void audit_log_n_untrustedstring(struct audit_buffer *ab, const char *string,
2094 size_t len)
83c7d091 2095{
de6bbd1d 2096 if (audit_string_contains_control(string, len))
b556f8ad 2097 audit_log_n_hex(ab, string, len);
de6bbd1d 2098 else
b556f8ad 2099 audit_log_n_string(ab, string, len);
83c7d091
DW
2100}
2101
9c937dcc 2102/**
522ed776 2103 * audit_log_untrustedstring - log a string that may contain random characters
9c937dcc
AG
2104 * @ab: audit_buffer
2105 * @string: string to be logged
2106 *
522ed776 2107 * Same as audit_log_n_untrustedstring(), except that strlen is used to
9c937dcc
AG
2108 * determine string length.
2109 */
de6bbd1d 2110void audit_log_untrustedstring(struct audit_buffer *ab, const char *string)
9c937dcc 2111{
b556f8ad 2112 audit_log_n_untrustedstring(ab, string, strlen(string));
9c937dcc
AG
2113}
2114
168b7173 2115/* This is a helper-function to print the escaped d_path */
1da177e4 2116void audit_log_d_path(struct audit_buffer *ab, const char *prefix,
66b3fad3 2117 const struct path *path)
1da177e4 2118{
44707fdf 2119 char *p, *pathname;
1da177e4 2120
8fc6115c 2121 if (prefix)
c158a35c 2122 audit_log_format(ab, "%s", prefix);
1da177e4 2123
168b7173 2124 /* We will allow 11 spaces for ' (deleted)' to be appended */
44707fdf
JB
2125 pathname = kmalloc(PATH_MAX+11, ab->gfp_mask);
2126 if (!pathname) {
f1d9b23c 2127 audit_log_format(ab, "\"<no_memory>\"");
168b7173 2128 return;
1da177e4 2129 }
cf28b486 2130 p = d_path(path, pathname, PATH_MAX+11);
168b7173
SG
2131 if (IS_ERR(p)) { /* Should never happen since we send PATH_MAX */
2132 /* FIXME: can we save some information here? */
f1d9b23c 2133 audit_log_format(ab, "\"<too_long>\"");
5600b892 2134 } else
168b7173 2135 audit_log_untrustedstring(ab, p);
44707fdf 2136 kfree(pathname);
1da177e4
LT
2137}
2138
4d3fb709
EP
2139void audit_log_session_info(struct audit_buffer *ab)
2140{
4440e854 2141 unsigned int sessionid = audit_get_sessionid(current);
4d3fb709
EP
2142 uid_t auid = from_kuid(&init_user_ns, audit_get_loginuid(current));
2143
a2c97da1 2144 audit_log_format(ab, "auid=%u ses=%u", auid, sessionid);
4d3fb709
EP
2145}
2146
9d960985
EP
2147void audit_log_key(struct audit_buffer *ab, char *key)
2148{
2149 audit_log_format(ab, " key=");
2150 if (key)
2151 audit_log_untrustedstring(ab, key);
2152 else
2153 audit_log_format(ab, "(null)");
2154}
2155
f5c2b5f7 2156int audit_log_task_context(struct audit_buffer *ab, struct lsmblob *blob)
b24a30a7 2157{
f5c2b5f7 2158 int i;
b24a30a7 2159 int error;
f5c2b5f7
CS
2160 struct lsmblob localblob;
2161 struct lsmcontext lsmdata;
b24a30a7 2162
f5c2b5f7
CS
2163 /*
2164 * If there is more than one security module that has a
2165 * subject "context" it's necessary to put the subject data
2166 * into a separate record to maintain compatibility.
2167 */
2168 if (lsm_multiple_contexts()) {
2169 audit_log_format(ab, " subj=?");
b24a30a7 2170 return 0;
f5c2b5f7 2171 }
b24a30a7 2172
f5c2b5f7
CS
2173 if (blob == NULL) {
2174 security_task_getsecid(current, &localblob);
2175 if (!lsmblob_is_set(&localblob)) {
2176 audit_log_format(ab, " subj=?");
2177 return 0;
2178 }
2179 blob = &localblob;
b24a30a7
EP
2180 }
2181
f5c2b5f7
CS
2182 for (i = 0; i < LSMBLOB_ENTRIES; i++) {
2183 if (blob->secid[i] == 0)
2184 continue;
2185 error = security_secid_to_secctx(blob, &lsmdata, i);
2186 if (error && error != -EINVAL) {
2187 audit_panic("error in audit_log_task_context");
2188 return error;
2189 }
b24a30a7 2190
f5c2b5f7
CS
2191 audit_log_format(ab, " subj=%s", lsmdata.context);
2192 security_release_secctx(&lsmdata);
2193 break;
2194 }
2195
2196 return 0;
b24a30a7
EP
2197}
2198EXPORT_SYMBOL(audit_log_task_context);
2199
b2f933b2
CS
2200int audit_log_object_context(struct audit_buffer *ab,
2201 struct lsmblob *blob)
2202{
2203 int i;
2204 int error;
2205 bool sep = false;
2206 struct lsmcontext lsmdata;
2207 struct audit_buffer *lsmab = NULL;
2208 struct audit_context *context = NULL;
2209
2210 /*
2211 * If there is more than one security module that has a
2212 * object "context" it's necessary to put the object data
2213 * into a separate record to maintain compatibility.
2214 */
2215 if (lsm_multiple_contexts()) {
2216 audit_log_format(ab, " obj=?");
2217 context = ab->ctx;
2218 if (context)
2219 lsmab = audit_log_start(context, GFP_KERNEL,
2220 AUDIT_MAC_OBJ_CONTEXTS);
2221 }
2222
2223 for (i = 0; i < LSMBLOB_ENTRIES; i++) {
2224 if (blob->secid[i] == 0)
2225 continue;
2226 error = security_secid_to_secctx(blob, &lsmdata, i);
2227 if (error && error != -EINVAL) {
2228 audit_panic("error in audit_log_object_context");
2229 return error;
2230 }
2231
2232 if (context) {
2233 audit_log_format(lsmab, "%sobj_%s=%s",
2234 sep ? " " : "",
2235 security_lsm_slot_name(i),
2236 lsmdata.context);
2237 sep = true;
2238 } else
2239 audit_log_format(ab, " obj=%s", lsmdata.context);
2240
2241 security_release_secctx(&lsmdata);
2242 if (!context)
2243 break;
2244 }
2245
2246 if (context)
2247 audit_log_end(lsmab);
2248
2249 return 0;
2250}
2251EXPORT_SYMBOL(audit_log_object_context);
2252
4766b199
DB
2253void audit_log_d_path_exe(struct audit_buffer *ab,
2254 struct mm_struct *mm)
2255{
5b282552
DB
2256 struct file *exe_file;
2257
2258 if (!mm)
2259 goto out_null;
4766b199 2260
5b282552
DB
2261 exe_file = get_mm_exe_file(mm);
2262 if (!exe_file)
2263 goto out_null;
2264
2265 audit_log_d_path(ab, " exe=", &exe_file->f_path);
2266 fput(exe_file);
2267 return;
2268out_null:
2269 audit_log_format(ab, " exe=(null)");
4766b199
DB
2270}
2271
2a1fe215 2272struct tty_struct *audit_get_tty(void)
3f5be2da
RGB
2273{
2274 struct tty_struct *tty = NULL;
2275 unsigned long flags;
2276
2a1fe215
PM
2277 spin_lock_irqsave(&current->sighand->siglock, flags);
2278 if (current->signal)
2279 tty = tty_kref_get(current->signal->tty);
2280 spin_unlock_irqrestore(&current->sighand->siglock, flags);
3f5be2da
RGB
2281 return tty;
2282}
2283
2284void audit_put_tty(struct tty_struct *tty)
2285{
2286 tty_kref_put(tty);
2287}
2288
2a1fe215 2289void audit_log_task_info(struct audit_buffer *ab)
b24a30a7
EP
2290{
2291 const struct cred *cred;
2a1fe215 2292 char comm[sizeof(current->comm)];
db0a6fb5 2293 struct tty_struct *tty;
b24a30a7
EP
2294
2295 if (!ab)
2296 return;
2297
b24a30a7 2298 cred = current_cred();
2a1fe215 2299 tty = audit_get_tty();
b24a30a7 2300 audit_log_format(ab,
c92cdeb4 2301 " ppid=%d pid=%d auid=%u uid=%u gid=%u"
b24a30a7 2302 " euid=%u suid=%u fsuid=%u"
2f2ad101 2303 " egid=%u sgid=%u fsgid=%u tty=%s ses=%u",
2a1fe215
PM
2304 task_ppid_nr(current),
2305 task_tgid_nr(current),
2306 from_kuid(&init_user_ns, audit_get_loginuid(current)),
b24a30a7
EP
2307 from_kuid(&init_user_ns, cred->uid),
2308 from_kgid(&init_user_ns, cred->gid),
2309 from_kuid(&init_user_ns, cred->euid),
2310 from_kuid(&init_user_ns, cred->suid),
2311 from_kuid(&init_user_ns, cred->fsuid),
2312 from_kgid(&init_user_ns, cred->egid),
2313 from_kgid(&init_user_ns, cred->sgid),
2314 from_kgid(&init_user_ns, cred->fsgid),
db0a6fb5 2315 tty ? tty_name(tty) : "(none)",
2a1fe215 2316 audit_get_sessionid(current));
db0a6fb5 2317 audit_put_tty(tty);
b24a30a7 2318 audit_log_format(ab, " comm=");
2a1fe215
PM
2319 audit_log_untrustedstring(ab, get_task_comm(comm, current));
2320 audit_log_d_path_exe(ab, current->mm);
f5c2b5f7 2321 audit_log_task_context(ab, NULL);
b24a30a7
EP
2322}
2323EXPORT_SYMBOL(audit_log_task_info);
2324
a51d9eaa 2325/**
245d7369
KC
2326 * audit_log_path_denied - report a path restriction denial
2327 * @type: audit message type (AUDIT_ANOM_LINK, AUDIT_ANOM_CREAT, etc)
2328 * @operation: specific operation name
a51d9eaa 2329 */
245d7369 2330void audit_log_path_denied(int type, const char *operation)
a51d9eaa
KC
2331{
2332 struct audit_buffer *ab;
b24a30a7 2333
15564ff0 2334 if (!audit_enabled || audit_dummy_context())
b24a30a7 2335 return;
a51d9eaa 2336
245d7369
KC
2337 /* Generate log with subject, operation, outcome. */
2338 ab = audit_log_start(audit_context(), GFP_KERNEL, type);
d1c7d97a 2339 if (!ab)
45b578fe 2340 return;
b24a30a7 2341 audit_log_format(ab, "op=%s", operation);
2a1fe215 2342 audit_log_task_info(ab);
b24a30a7 2343 audit_log_format(ab, " res=0");
a51d9eaa
KC
2344 audit_log_end(ab);
2345}
2346
4b7d248b
RGB
2347/* global counter which is incremented every time something logs in */
2348static atomic_t session_id = ATOMIC_INIT(0);
2349
2350static int audit_set_loginuid_perm(kuid_t loginuid)
2351{
2352 /* if we are unset, we don't need privs */
2353 if (!audit_loginuid_set(current))
2354 return 0;
2355 /* if AUDIT_FEATURE_LOGINUID_IMMUTABLE means never ever allow a change*/
2356 if (is_audit_feature_set(AUDIT_FEATURE_LOGINUID_IMMUTABLE))
2357 return -EPERM;
2358 /* it is set, you need permission */
2359 if (!capable(CAP_AUDIT_CONTROL))
2360 return -EPERM;
2361 /* reject if this is not an unset and we don't allow that */
2362 if (is_audit_feature_set(AUDIT_FEATURE_ONLY_UNSET_LOGINUID)
2363 && uid_valid(loginuid))
2364 return -EPERM;
2365 return 0;
2366}
2367
2368static void audit_log_set_loginuid(kuid_t koldloginuid, kuid_t kloginuid,
2369 unsigned int oldsessionid,
2370 unsigned int sessionid, int rc)
2371{
2372 struct audit_buffer *ab;
2373 uid_t uid, oldloginuid, loginuid;
2374 struct tty_struct *tty;
2375
2376 if (!audit_enabled)
2377 return;
2378
f5c2b5f7 2379 audit_stamp_context(audit_context());
73e65b88 2380 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_LOGIN);
4b7d248b
RGB
2381 if (!ab)
2382 return;
2383
2384 uid = from_kuid(&init_user_ns, task_uid(current));
2385 oldloginuid = from_kuid(&init_user_ns, koldloginuid);
2386 loginuid = from_kuid(&init_user_ns, kloginuid),
2387 tty = audit_get_tty();
2388
2389 audit_log_format(ab, "pid=%d uid=%u", task_tgid_nr(current), uid);
f5c2b5f7 2390 audit_log_task_context(ab, NULL);
4b7d248b
RGB
2391 audit_log_format(ab, " old-auid=%u auid=%u tty=%s old-ses=%u ses=%u res=%d",
2392 oldloginuid, loginuid, tty ? tty_name(tty) : "(none)",
2393 oldsessionid, sessionid, !rc);
2394 audit_put_tty(tty);
f5c2b5f7 2395 audit_log_lsm(NULL, true);
4b7d248b
RGB
2396 audit_log_end(ab);
2397}
2398
2399/**
2400 * audit_set_loginuid - set current task's loginuid
2401 * @loginuid: loginuid value
2402 *
2403 * Returns 0.
2404 *
2405 * Called (set) from fs/proc/base.c::proc_loginuid_write().
2406 */
2407int audit_set_loginuid(kuid_t loginuid)
2408{
2409 unsigned int oldsessionid, sessionid = AUDIT_SID_UNSET;
2410 kuid_t oldloginuid;
2411 int rc;
2412
2413 oldloginuid = audit_get_loginuid(current);
2414 oldsessionid = audit_get_sessionid(current);
2415
2416 rc = audit_set_loginuid_perm(loginuid);
2417 if (rc)
2418 goto out;
2419
2420 /* are we setting or clearing? */
2421 if (uid_valid(loginuid)) {
2422 sessionid = (unsigned int)atomic_inc_return(&session_id);
2423 if (unlikely(sessionid == AUDIT_SID_UNSET))
2424 sessionid = (unsigned int)atomic_inc_return(&session_id);
2425 }
2426
2427 current->sessionid = sessionid;
2428 current->loginuid = loginuid;
2429out:
2430 audit_log_set_loginuid(oldloginuid, loginuid, oldsessionid, sessionid, rc);
2431 return rc;
2432}
2433
b48345aa
RGB
2434/**
2435 * audit_signal_info - record signal info for shutting down audit subsystem
2436 * @sig: signal value
2437 * @t: task being signaled
2438 *
2439 * If the audit subsystem is being terminated, record the task (pid)
2440 * and uid that is doing that.
2441 */
2442int audit_signal_info(int sig, struct task_struct *t)
2443{
2444 kuid_t uid = current_uid(), auid;
2445
2446 if (auditd_test_task(t) &&
2447 (sig == SIGTERM || sig == SIGHUP ||
2448 sig == SIGUSR1 || sig == SIGUSR2)) {
2449 audit_sig_pid = task_tgid_nr(current);
2450 auid = audit_get_loginuid(current);
2451 if (uid_valid(auid))
2452 audit_sig_uid = auid;
2453 else
2454 audit_sig_uid = uid;
ab9c17a8 2455 security_task_getsecid(current, &audit_sig_lsm);
b48345aa
RGB
2456 }
2457
2458 return audit_signal_info_syscall(t);
2459}
2460
b0dd25a8
RD
2461/**
2462 * audit_log_end - end one audit record
2463 * @ab: the audit_buffer
2464 *
4aa83872
PM
2465 * We can not do a netlink send inside an irq context because it blocks (last
2466 * arg, flags, is not set to MSG_DONTWAIT), so the audit buffer is placed on a
2467 * queue and a tasklet is scheduled to remove them from the queue outside the
2468 * irq context. May be called in any context.
b0dd25a8 2469 */
b7d11258 2470void audit_log_end(struct audit_buffer *ab)
1da177e4 2471{
5b52330b
PM
2472 struct sk_buff *skb;
2473 struct nlmsghdr *nlh;
2474
1da177e4
LT
2475 if (!ab)
2476 return;
5b52330b
PM
2477
2478 if (audit_rate_check()) {
2479 skb = ab->skb;
f3d357b0 2480 ab->skb = NULL;
5b52330b
PM
2481
2482 /* setup the netlink header, see the comments in
2483 * kauditd_send_multicast_skb() for length quirks */
2484 nlh = nlmsg_hdr(skb);
2485 nlh->nlmsg_len = skb->len - NLMSG_HDRLEN;
2486
2487 /* queue the netlink packet and poke the kauditd thread */
2488 skb_queue_tail(&audit_queue, skb);
2489 wake_up_interruptible(&kauditd_wait);
2490 } else
2491 audit_log_lost("rate limit exceeded");
2492
16e1904e 2493 audit_buffer_free(ab);
1da177e4
LT
2494}
2495
b0dd25a8
RD
2496/**
2497 * audit_log - Log an audit record
2498 * @ctx: audit context
2499 * @gfp_mask: type of allocation
2500 * @type: audit message type
2501 * @fmt: format string to use
2502 * @...: variable parameters matching the format string
2503 *
2504 * This is a convenience function that calls audit_log_start,
2505 * audit_log_vformat, and audit_log_end. It may be called
2506 * in any context.
2507 */
5600b892 2508void audit_log(struct audit_context *ctx, gfp_t gfp_mask, int type,
9ad9ad38 2509 const char *fmt, ...)
1da177e4
LT
2510{
2511 struct audit_buffer *ab;
2512 va_list args;
2513
9ad9ad38 2514 ab = audit_log_start(ctx, gfp_mask, type);
1da177e4
LT
2515 if (ab) {
2516 va_start(args, fmt);
2517 audit_log_vformat(ab, fmt, args);
2518 va_end(args);
2519 audit_log_end(ab);
2520 }
2521}
bf45da97 2522
2523EXPORT_SYMBOL(audit_log_start);
2524EXPORT_SYMBOL(audit_log_end);
2525EXPORT_SYMBOL(audit_log_format);
2526EXPORT_SYMBOL(audit_log);