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85c8721f 1/* auditsc.c -- System-call auditing support
1da177e4
LT
2 * Handles all system-call specific auditing features.
3 *
4 * Copyright 2003-2004 Red Hat Inc., Durham, North Carolina.
73241ccc 5 * Copyright 2005 Hewlett-Packard Development Company, L.P.
20ca73bc 6 * Copyright (C) 2005, 2006 IBM Corporation
1da177e4
LT
7 * All Rights Reserved.
8 *
9 * This program is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License as published by
11 * the Free Software Foundation; either version 2 of the License, or
12 * (at your option) any later version.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22 *
23 * Written by Rickard E. (Rik) Faith <faith@redhat.com>
24 *
25 * Many of the ideas implemented here are from Stephen C. Tweedie,
26 * especially the idea of avoiding a copy by using getname.
27 *
28 * The method for actual interception of syscall entry and exit (not in
29 * this file -- see entry.S) is based on a GPL'd patch written by
30 * okir@suse.de and Copyright 2003 SuSE Linux AG.
31 *
20ca73bc
GW
32 * POSIX message queue support added by George Wilson <ltcgcw@us.ibm.com>,
33 * 2006.
34 *
b63862f4
DK
35 * The support of additional filter rules compares (>, <, >=, <=) was
36 * added by Dustin Kirkland <dustin.kirkland@us.ibm.com>, 2005.
37 *
73241ccc
AG
38 * Modified by Amy Griffis <amy.griffis@hp.com> to collect additional
39 * filesystem information.
8c8570fb
DK
40 *
41 * Subject and object context labeling support added by <danjones@us.ibm.com>
42 * and <dustin.kirkland@us.ibm.com> for LSPP certification compliance.
1da177e4
LT
43 */
44
f952d10f
RGB
45#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
46
1da177e4 47#include <linux/init.h>
1da177e4 48#include <asm/types.h>
60063497 49#include <linux/atomic.h>
73241ccc
AG
50#include <linux/fs.h>
51#include <linux/namei.h>
1da177e4 52#include <linux/mm.h>
9984de1a 53#include <linux/export.h>
5a0e3ad6 54#include <linux/slab.h>
01116105 55#include <linux/mount.h>
3ec3b2fb 56#include <linux/socket.h>
20ca73bc 57#include <linux/mqueue.h>
1da177e4
LT
58#include <linux/audit.h>
59#include <linux/personality.h>
60#include <linux/time.h>
5bb289b5 61#include <linux/netlink.h>
f5561964 62#include <linux/compiler.h>
1da177e4 63#include <asm/unistd.h>
8c8570fb 64#include <linux/security.h>
fe7752ba 65#include <linux/list.h>
473ae30b 66#include <linux/binfmts.h>
a1f8e7f7 67#include <linux/highmem.h>
f46038ff 68#include <linux/syscalls.h>
84db564a 69#include <asm/syscall.h>
851f7ff5 70#include <linux/capability.h>
5ad4e53b 71#include <linux/fs_struct.h>
3dc1c1b2 72#include <linux/compat.h>
3f1c8250 73#include <linux/ctype.h>
fcf22d82 74#include <linux/string.h>
43761473 75#include <linux/uaccess.h>
9dd813c1 76#include <linux/fsnotify_backend.h>
fcf22d82 77#include <uapi/linux/limits.h>
1da177e4 78
fe7752ba 79#include "audit.h"
1da177e4 80
d7e7528b
EP
81/* flags stating the success for a syscall */
82#define AUDITSC_INVALID 0
83#define AUDITSC_SUCCESS 1
84#define AUDITSC_FAILURE 2
85
43761473
PM
86/* no execve audit message should be longer than this (userspace limits),
87 * see the note near the top of audit_log_execve_info() about this value */
de6bbd1d
EP
88#define MAX_EXECVE_AUDIT_LEN 7500
89
3f1c8250
WR
90/* max length to print of cmdline/proctitle value during audit */
91#define MAX_PROCTITLE_AUDIT_LEN 128
92
471a5c7c
AV
93/* number of audit rules */
94int audit_n_rules;
95
e54dc243
AG
96/* determines whether we collect data for signals sent */
97int audit_signals;
98
1da177e4
LT
99struct audit_aux_data {
100 struct audit_aux_data *next;
101 int type;
102};
103
104#define AUDIT_AUX_IPCPERM 0
105
e54dc243
AG
106/* Number of target pids per aux struct. */
107#define AUDIT_AUX_PIDS 16
108
e54dc243
AG
109struct audit_aux_data_pids {
110 struct audit_aux_data d;
111 pid_t target_pid[AUDIT_AUX_PIDS];
e1760bd5 112 kuid_t target_auid[AUDIT_AUX_PIDS];
cca080d9 113 kuid_t target_uid[AUDIT_AUX_PIDS];
4746ec5b 114 unsigned int target_sessionid[AUDIT_AUX_PIDS];
e54dc243 115 u32 target_sid[AUDIT_AUX_PIDS];
c2a7780e 116 char target_comm[AUDIT_AUX_PIDS][TASK_COMM_LEN];
e54dc243
AG
117 int pid_count;
118};
119
3fc689e9
EP
120struct audit_aux_data_bprm_fcaps {
121 struct audit_aux_data d;
122 struct audit_cap_data fcap;
123 unsigned int fcap_ver;
124 struct audit_cap_data old_pcap;
125 struct audit_cap_data new_pcap;
126};
127
74c3cbe3
AV
128struct audit_tree_refs {
129 struct audit_tree_refs *next;
130 struct audit_chunk *c[31];
131};
132
55669bfa
AV
133static int audit_match_perm(struct audit_context *ctx, int mask)
134{
c4bacefb 135 unsigned n;
1a61c88d 136 if (unlikely(!ctx))
137 return 0;
c4bacefb 138 n = ctx->major;
dbda4c0b 139
55669bfa
AV
140 switch (audit_classify_syscall(ctx->arch, n)) {
141 case 0: /* native */
142 if ((mask & AUDIT_PERM_WRITE) &&
143 audit_match_class(AUDIT_CLASS_WRITE, n))
144 return 1;
145 if ((mask & AUDIT_PERM_READ) &&
146 audit_match_class(AUDIT_CLASS_READ, n))
147 return 1;
148 if ((mask & AUDIT_PERM_ATTR) &&
149 audit_match_class(AUDIT_CLASS_CHATTR, n))
150 return 1;
151 return 0;
152 case 1: /* 32bit on biarch */
153 if ((mask & AUDIT_PERM_WRITE) &&
154 audit_match_class(AUDIT_CLASS_WRITE_32, n))
155 return 1;
156 if ((mask & AUDIT_PERM_READ) &&
157 audit_match_class(AUDIT_CLASS_READ_32, n))
158 return 1;
159 if ((mask & AUDIT_PERM_ATTR) &&
160 audit_match_class(AUDIT_CLASS_CHATTR_32, n))
161 return 1;
162 return 0;
163 case 2: /* open */
164 return mask & ACC_MODE(ctx->argv[1]);
165 case 3: /* openat */
166 return mask & ACC_MODE(ctx->argv[2]);
167 case 4: /* socketcall */
168 return ((mask & AUDIT_PERM_WRITE) && ctx->argv[0] == SYS_BIND);
169 case 5: /* execve */
170 return mask & AUDIT_PERM_EXEC;
171 default:
172 return 0;
173 }
174}
175
5ef30ee5 176static int audit_match_filetype(struct audit_context *ctx, int val)
8b67dca9 177{
5195d8e2 178 struct audit_names *n;
5ef30ee5 179 umode_t mode = (umode_t)val;
1a61c88d 180
181 if (unlikely(!ctx))
182 return 0;
183
5195d8e2 184 list_for_each_entry(n, &ctx->names_list, list) {
84cb777e 185 if ((n->ino != AUDIT_INO_UNSET) &&
5195d8e2 186 ((n->mode & S_IFMT) == mode))
5ef30ee5
EP
187 return 1;
188 }
5195d8e2 189
5ef30ee5 190 return 0;
8b67dca9
AV
191}
192
74c3cbe3
AV
193/*
194 * We keep a linked list of fixed-sized (31 pointer) arrays of audit_chunk *;
195 * ->first_trees points to its beginning, ->trees - to the current end of data.
196 * ->tree_count is the number of free entries in array pointed to by ->trees.
197 * Original condition is (NULL, NULL, 0); as soon as it grows we never revert to NULL,
198 * "empty" becomes (p, p, 31) afterwards. We don't shrink the list (and seriously,
199 * it's going to remain 1-element for almost any setup) until we free context itself.
200 * References in it _are_ dropped - at the same time we free/drop aux stuff.
201 */
202
679173b7
EP
203static void audit_set_auditable(struct audit_context *ctx)
204{
205 if (!ctx->prio) {
206 ctx->prio = 1;
207 ctx->current_state = AUDIT_RECORD_CONTEXT;
208 }
209}
210
74c3cbe3
AV
211static int put_tree_ref(struct audit_context *ctx, struct audit_chunk *chunk)
212{
213 struct audit_tree_refs *p = ctx->trees;
214 int left = ctx->tree_count;
215 if (likely(left)) {
216 p->c[--left] = chunk;
217 ctx->tree_count = left;
218 return 1;
219 }
220 if (!p)
221 return 0;
222 p = p->next;
223 if (p) {
224 p->c[30] = chunk;
225 ctx->trees = p;
226 ctx->tree_count = 30;
227 return 1;
228 }
229 return 0;
230}
231
232static int grow_tree_refs(struct audit_context *ctx)
233{
234 struct audit_tree_refs *p = ctx->trees;
235 ctx->trees = kzalloc(sizeof(struct audit_tree_refs), GFP_KERNEL);
236 if (!ctx->trees) {
237 ctx->trees = p;
238 return 0;
239 }
240 if (p)
241 p->next = ctx->trees;
242 else
243 ctx->first_trees = ctx->trees;
244 ctx->tree_count = 31;
245 return 1;
246}
74c3cbe3
AV
247
248static void unroll_tree_refs(struct audit_context *ctx,
249 struct audit_tree_refs *p, int count)
250{
74c3cbe3
AV
251 struct audit_tree_refs *q;
252 int n;
253 if (!p) {
254 /* we started with empty chain */
255 p = ctx->first_trees;
256 count = 31;
257 /* if the very first allocation has failed, nothing to do */
258 if (!p)
259 return;
260 }
261 n = count;
262 for (q = p; q != ctx->trees; q = q->next, n = 31) {
263 while (n--) {
264 audit_put_chunk(q->c[n]);
265 q->c[n] = NULL;
266 }
267 }
268 while (n-- > ctx->tree_count) {
269 audit_put_chunk(q->c[n]);
270 q->c[n] = NULL;
271 }
272 ctx->trees = p;
273 ctx->tree_count = count;
74c3cbe3
AV
274}
275
276static void free_tree_refs(struct audit_context *ctx)
277{
278 struct audit_tree_refs *p, *q;
279 for (p = ctx->first_trees; p; p = q) {
280 q = p->next;
281 kfree(p);
282 }
283}
284
285static int match_tree_refs(struct audit_context *ctx, struct audit_tree *tree)
286{
74c3cbe3
AV
287 struct audit_tree_refs *p;
288 int n;
289 if (!tree)
290 return 0;
291 /* full ones */
292 for (p = ctx->first_trees; p != ctx->trees; p = p->next) {
293 for (n = 0; n < 31; n++)
294 if (audit_tree_match(p->c[n], tree))
295 return 1;
296 }
297 /* partial */
298 if (p) {
299 for (n = ctx->tree_count; n < 31; n++)
300 if (audit_tree_match(p->c[n], tree))
301 return 1;
302 }
74c3cbe3
AV
303 return 0;
304}
305
ca57ec0f
EB
306static int audit_compare_uid(kuid_t uid,
307 struct audit_names *name,
308 struct audit_field *f,
309 struct audit_context *ctx)
b34b0393
EP
310{
311 struct audit_names *n;
b34b0393 312 int rc;
ca57ec0f 313
b34b0393 314 if (name) {
ca57ec0f 315 rc = audit_uid_comparator(uid, f->op, name->uid);
b34b0393
EP
316 if (rc)
317 return rc;
318 }
ca57ec0f 319
b34b0393
EP
320 if (ctx) {
321 list_for_each_entry(n, &ctx->names_list, list) {
ca57ec0f
EB
322 rc = audit_uid_comparator(uid, f->op, n->uid);
323 if (rc)
324 return rc;
325 }
326 }
327 return 0;
328}
b34b0393 329
ca57ec0f
EB
330static int audit_compare_gid(kgid_t gid,
331 struct audit_names *name,
332 struct audit_field *f,
333 struct audit_context *ctx)
334{
335 struct audit_names *n;
336 int rc;
337
338 if (name) {
339 rc = audit_gid_comparator(gid, f->op, name->gid);
340 if (rc)
341 return rc;
342 }
343
344 if (ctx) {
345 list_for_each_entry(n, &ctx->names_list, list) {
346 rc = audit_gid_comparator(gid, f->op, n->gid);
b34b0393
EP
347 if (rc)
348 return rc;
349 }
350 }
351 return 0;
352}
353
02d86a56
EP
354static int audit_field_compare(struct task_struct *tsk,
355 const struct cred *cred,
356 struct audit_field *f,
357 struct audit_context *ctx,
358 struct audit_names *name)
359{
02d86a56 360 switch (f->val) {
4a6633ed 361 /* process to file object comparisons */
02d86a56 362 case AUDIT_COMPARE_UID_TO_OBJ_UID:
ca57ec0f 363 return audit_compare_uid(cred->uid, name, f, ctx);
c9fe685f 364 case AUDIT_COMPARE_GID_TO_OBJ_GID:
ca57ec0f 365 return audit_compare_gid(cred->gid, name, f, ctx);
4a6633ed 366 case AUDIT_COMPARE_EUID_TO_OBJ_UID:
ca57ec0f 367 return audit_compare_uid(cred->euid, name, f, ctx);
4a6633ed 368 case AUDIT_COMPARE_EGID_TO_OBJ_GID:
ca57ec0f 369 return audit_compare_gid(cred->egid, name, f, ctx);
4a6633ed 370 case AUDIT_COMPARE_AUID_TO_OBJ_UID:
38f80590 371 return audit_compare_uid(audit_get_loginuid(tsk), name, f, ctx);
4a6633ed 372 case AUDIT_COMPARE_SUID_TO_OBJ_UID:
ca57ec0f 373 return audit_compare_uid(cred->suid, name, f, ctx);
4a6633ed 374 case AUDIT_COMPARE_SGID_TO_OBJ_GID:
ca57ec0f 375 return audit_compare_gid(cred->sgid, name, f, ctx);
4a6633ed 376 case AUDIT_COMPARE_FSUID_TO_OBJ_UID:
ca57ec0f 377 return audit_compare_uid(cred->fsuid, name, f, ctx);
4a6633ed 378 case AUDIT_COMPARE_FSGID_TO_OBJ_GID:
ca57ec0f 379 return audit_compare_gid(cred->fsgid, name, f, ctx);
10d68360
PM
380 /* uid comparisons */
381 case AUDIT_COMPARE_UID_TO_AUID:
38f80590
RGB
382 return audit_uid_comparator(cred->uid, f->op,
383 audit_get_loginuid(tsk));
10d68360 384 case AUDIT_COMPARE_UID_TO_EUID:
ca57ec0f 385 return audit_uid_comparator(cred->uid, f->op, cred->euid);
10d68360 386 case AUDIT_COMPARE_UID_TO_SUID:
ca57ec0f 387 return audit_uid_comparator(cred->uid, f->op, cred->suid);
10d68360 388 case AUDIT_COMPARE_UID_TO_FSUID:
ca57ec0f 389 return audit_uid_comparator(cred->uid, f->op, cred->fsuid);
10d68360
PM
390 /* auid comparisons */
391 case AUDIT_COMPARE_AUID_TO_EUID:
38f80590
RGB
392 return audit_uid_comparator(audit_get_loginuid(tsk), f->op,
393 cred->euid);
10d68360 394 case AUDIT_COMPARE_AUID_TO_SUID:
38f80590
RGB
395 return audit_uid_comparator(audit_get_loginuid(tsk), f->op,
396 cred->suid);
10d68360 397 case AUDIT_COMPARE_AUID_TO_FSUID:
38f80590
RGB
398 return audit_uid_comparator(audit_get_loginuid(tsk), f->op,
399 cred->fsuid);
10d68360
PM
400 /* euid comparisons */
401 case AUDIT_COMPARE_EUID_TO_SUID:
ca57ec0f 402 return audit_uid_comparator(cred->euid, f->op, cred->suid);
10d68360 403 case AUDIT_COMPARE_EUID_TO_FSUID:
ca57ec0f 404 return audit_uid_comparator(cred->euid, f->op, cred->fsuid);
10d68360
PM
405 /* suid comparisons */
406 case AUDIT_COMPARE_SUID_TO_FSUID:
ca57ec0f 407 return audit_uid_comparator(cred->suid, f->op, cred->fsuid);
10d68360
PM
408 /* gid comparisons */
409 case AUDIT_COMPARE_GID_TO_EGID:
ca57ec0f 410 return audit_gid_comparator(cred->gid, f->op, cred->egid);
10d68360 411 case AUDIT_COMPARE_GID_TO_SGID:
ca57ec0f 412 return audit_gid_comparator(cred->gid, f->op, cred->sgid);
10d68360 413 case AUDIT_COMPARE_GID_TO_FSGID:
ca57ec0f 414 return audit_gid_comparator(cred->gid, f->op, cred->fsgid);
10d68360
PM
415 /* egid comparisons */
416 case AUDIT_COMPARE_EGID_TO_SGID:
ca57ec0f 417 return audit_gid_comparator(cred->egid, f->op, cred->sgid);
10d68360 418 case AUDIT_COMPARE_EGID_TO_FSGID:
ca57ec0f 419 return audit_gid_comparator(cred->egid, f->op, cred->fsgid);
10d68360
PM
420 /* sgid comparison */
421 case AUDIT_COMPARE_SGID_TO_FSGID:
ca57ec0f 422 return audit_gid_comparator(cred->sgid, f->op, cred->fsgid);
02d86a56
EP
423 default:
424 WARN(1, "Missing AUDIT_COMPARE define. Report as a bug\n");
425 return 0;
426 }
427 return 0;
428}
429
f368c07d 430/* Determine if any context name data matches a rule's watch data */
1da177e4 431/* Compare a task_struct with an audit_rule. Return 1 on match, 0
f5629883
TJ
432 * otherwise.
433 *
434 * If task_creation is true, this is an explicit indication that we are
435 * filtering a task rule at task creation time. This and tsk == current are
436 * the only situations where tsk->cred may be accessed without an rcu read lock.
437 */
1da177e4 438static int audit_filter_rules(struct task_struct *tsk,
93315ed6 439 struct audit_krule *rule,
1da177e4 440 struct audit_context *ctx,
f368c07d 441 struct audit_names *name,
f5629883
TJ
442 enum audit_state *state,
443 bool task_creation)
1da177e4 444{
f5629883 445 const struct cred *cred;
5195d8e2 446 int i, need_sid = 1;
3dc7e315 447 u32 sid;
8fae4770 448 unsigned int sessionid;
3dc7e315 449
f5629883
TJ
450 cred = rcu_dereference_check(tsk->cred, tsk == current || task_creation);
451
1da177e4 452 for (i = 0; i < rule->field_count; i++) {
93315ed6 453 struct audit_field *f = &rule->fields[i];
5195d8e2 454 struct audit_names *n;
1da177e4 455 int result = 0;
f1dc4867 456 pid_t pid;
1da177e4 457
93315ed6 458 switch (f->type) {
1da177e4 459 case AUDIT_PID:
fa2bea2f 460 pid = task_tgid_nr(tsk);
f1dc4867 461 result = audit_comparator(pid, f->op, f->val);
1da177e4 462 break;
3c66251e 463 case AUDIT_PPID:
419c58f1
AV
464 if (ctx) {
465 if (!ctx->ppid)
c92cdeb4 466 ctx->ppid = task_ppid_nr(tsk);
3c66251e 467 result = audit_comparator(ctx->ppid, f->op, f->val);
419c58f1 468 }
3c66251e 469 break;
34d99af5
RGB
470 case AUDIT_EXE:
471 result = audit_exe_compare(tsk, rule->exe);
23bcc480
OM
472 if (f->op == Audit_not_equal)
473 result = !result;
34d99af5 474 break;
1da177e4 475 case AUDIT_UID:
ca57ec0f 476 result = audit_uid_comparator(cred->uid, f->op, f->uid);
1da177e4
LT
477 break;
478 case AUDIT_EUID:
ca57ec0f 479 result = audit_uid_comparator(cred->euid, f->op, f->uid);
1da177e4
LT
480 break;
481 case AUDIT_SUID:
ca57ec0f 482 result = audit_uid_comparator(cred->suid, f->op, f->uid);
1da177e4
LT
483 break;
484 case AUDIT_FSUID:
ca57ec0f 485 result = audit_uid_comparator(cred->fsuid, f->op, f->uid);
1da177e4
LT
486 break;
487 case AUDIT_GID:
ca57ec0f 488 result = audit_gid_comparator(cred->gid, f->op, f->gid);
37eebe39
MI
489 if (f->op == Audit_equal) {
490 if (!result)
af85d177 491 result = groups_search(cred->group_info, f->gid);
37eebe39
MI
492 } else if (f->op == Audit_not_equal) {
493 if (result)
af85d177 494 result = !groups_search(cred->group_info, f->gid);
37eebe39 495 }
1da177e4
LT
496 break;
497 case AUDIT_EGID:
ca57ec0f 498 result = audit_gid_comparator(cred->egid, f->op, f->gid);
37eebe39
MI
499 if (f->op == Audit_equal) {
500 if (!result)
af85d177 501 result = groups_search(cred->group_info, f->gid);
37eebe39
MI
502 } else if (f->op == Audit_not_equal) {
503 if (result)
af85d177 504 result = !groups_search(cred->group_info, f->gid);
37eebe39 505 }
1da177e4
LT
506 break;
507 case AUDIT_SGID:
ca57ec0f 508 result = audit_gid_comparator(cred->sgid, f->op, f->gid);
1da177e4
LT
509 break;
510 case AUDIT_FSGID:
ca57ec0f 511 result = audit_gid_comparator(cred->fsgid, f->op, f->gid);
1da177e4 512 break;
8fae4770 513 case AUDIT_SESSIONID:
5b713886 514 sessionid = audit_get_sessionid(tsk);
8fae4770
RGB
515 result = audit_comparator(sessionid, f->op, f->val);
516 break;
1da177e4 517 case AUDIT_PERS:
93315ed6 518 result = audit_comparator(tsk->personality, f->op, f->val);
1da177e4 519 break;
2fd6f58b 520 case AUDIT_ARCH:
9f8dbe9c 521 if (ctx)
93315ed6 522 result = audit_comparator(ctx->arch, f->op, f->val);
2fd6f58b 523 break;
1da177e4
LT
524
525 case AUDIT_EXIT:
526 if (ctx && ctx->return_valid)
93315ed6 527 result = audit_comparator(ctx->return_code, f->op, f->val);
1da177e4
LT
528 break;
529 case AUDIT_SUCCESS:
b01f2cc1 530 if (ctx && ctx->return_valid) {
93315ed6
AG
531 if (f->val)
532 result = audit_comparator(ctx->return_valid, f->op, AUDITSC_SUCCESS);
b01f2cc1 533 else
93315ed6 534 result = audit_comparator(ctx->return_valid, f->op, AUDITSC_FAILURE);
b01f2cc1 535 }
1da177e4
LT
536 break;
537 case AUDIT_DEVMAJOR:
16c174bd
EP
538 if (name) {
539 if (audit_comparator(MAJOR(name->dev), f->op, f->val) ||
540 audit_comparator(MAJOR(name->rdev), f->op, f->val))
541 ++result;
542 } else if (ctx) {
5195d8e2 543 list_for_each_entry(n, &ctx->names_list, list) {
16c174bd
EP
544 if (audit_comparator(MAJOR(n->dev), f->op, f->val) ||
545 audit_comparator(MAJOR(n->rdev), f->op, f->val)) {
1da177e4
LT
546 ++result;
547 break;
548 }
549 }
550 }
551 break;
552 case AUDIT_DEVMINOR:
16c174bd
EP
553 if (name) {
554 if (audit_comparator(MINOR(name->dev), f->op, f->val) ||
555 audit_comparator(MINOR(name->rdev), f->op, f->val))
556 ++result;
557 } else if (ctx) {
5195d8e2 558 list_for_each_entry(n, &ctx->names_list, list) {
16c174bd
EP
559 if (audit_comparator(MINOR(n->dev), f->op, f->val) ||
560 audit_comparator(MINOR(n->rdev), f->op, f->val)) {
1da177e4
LT
561 ++result;
562 break;
563 }
564 }
565 }
566 break;
567 case AUDIT_INODE:
f368c07d 568 if (name)
db510fc5 569 result = audit_comparator(name->ino, f->op, f->val);
f368c07d 570 else if (ctx) {
5195d8e2
EP
571 list_for_each_entry(n, &ctx->names_list, list) {
572 if (audit_comparator(n->ino, f->op, f->val)) {
1da177e4
LT
573 ++result;
574 break;
575 }
576 }
577 }
578 break;
efaffd6e
EP
579 case AUDIT_OBJ_UID:
580 if (name) {
ca57ec0f 581 result = audit_uid_comparator(name->uid, f->op, f->uid);
efaffd6e
EP
582 } else if (ctx) {
583 list_for_each_entry(n, &ctx->names_list, list) {
ca57ec0f 584 if (audit_uid_comparator(n->uid, f->op, f->uid)) {
efaffd6e
EP
585 ++result;
586 break;
587 }
588 }
589 }
590 break;
54d3218b
EP
591 case AUDIT_OBJ_GID:
592 if (name) {
ca57ec0f 593 result = audit_gid_comparator(name->gid, f->op, f->gid);
54d3218b
EP
594 } else if (ctx) {
595 list_for_each_entry(n, &ctx->names_list, list) {
ca57ec0f 596 if (audit_gid_comparator(n->gid, f->op, f->gid)) {
54d3218b
EP
597 ++result;
598 break;
599 }
600 }
601 }
602 break;
f368c07d 603 case AUDIT_WATCH:
ae7b8f41
EP
604 if (name)
605 result = audit_watch_compare(rule->watch, name->ino, name->dev);
f368c07d 606 break;
74c3cbe3
AV
607 case AUDIT_DIR:
608 if (ctx)
609 result = match_tree_refs(ctx, rule->tree);
610 break;
1da177e4 611 case AUDIT_LOGINUID:
38f80590
RGB
612 result = audit_uid_comparator(audit_get_loginuid(tsk),
613 f->op, f->uid);
1da177e4 614 break;
780a7654
EB
615 case AUDIT_LOGINUID_SET:
616 result = audit_comparator(audit_loginuid_set(tsk), f->op, f->val);
617 break;
3a6b9f85
DG
618 case AUDIT_SUBJ_USER:
619 case AUDIT_SUBJ_ROLE:
620 case AUDIT_SUBJ_TYPE:
621 case AUDIT_SUBJ_SEN:
622 case AUDIT_SUBJ_CLR:
3dc7e315
DG
623 /* NOTE: this may return negative values indicating
624 a temporary error. We simply treat this as a
625 match for now to avoid losing information that
626 may be wanted. An error message will also be
627 logged upon error */
04305e4a 628 if (f->lsm_rule) {
2ad312d2 629 if (need_sid) {
2a862b32 630 security_task_getsecid(tsk, &sid);
2ad312d2
SG
631 need_sid = 0;
632 }
d7a96f3a 633 result = security_audit_rule_match(sid, f->type,
90462a5b
RGB
634 f->op,
635 f->lsm_rule);
2ad312d2 636 }
3dc7e315 637 break;
6e5a2d1d
DG
638 case AUDIT_OBJ_USER:
639 case AUDIT_OBJ_ROLE:
640 case AUDIT_OBJ_TYPE:
641 case AUDIT_OBJ_LEV_LOW:
642 case AUDIT_OBJ_LEV_HIGH:
643 /* The above note for AUDIT_SUBJ_USER...AUDIT_SUBJ_CLR
644 also applies here */
04305e4a 645 if (f->lsm_rule) {
6e5a2d1d
DG
646 /* Find files that match */
647 if (name) {
d7a96f3a 648 result = security_audit_rule_match(
90462a5b
RGB
649 name->osid,
650 f->type,
651 f->op,
652 f->lsm_rule);
6e5a2d1d 653 } else if (ctx) {
5195d8e2 654 list_for_each_entry(n, &ctx->names_list, list) {
90462a5b
RGB
655 if (security_audit_rule_match(
656 n->osid,
657 f->type,
658 f->op,
659 f->lsm_rule)) {
6e5a2d1d
DG
660 ++result;
661 break;
662 }
663 }
664 }
665 /* Find ipc objects that match */
a33e6751
AV
666 if (!ctx || ctx->type != AUDIT_IPC)
667 break;
668 if (security_audit_rule_match(ctx->ipc.osid,
669 f->type, f->op,
90462a5b 670 f->lsm_rule))
a33e6751 671 ++result;
6e5a2d1d
DG
672 }
673 break;
1da177e4
LT
674 case AUDIT_ARG0:
675 case AUDIT_ARG1:
676 case AUDIT_ARG2:
677 case AUDIT_ARG3:
678 if (ctx)
93315ed6 679 result = audit_comparator(ctx->argv[f->type-AUDIT_ARG0], f->op, f->val);
1da177e4 680 break;
5adc8a6a
AG
681 case AUDIT_FILTERKEY:
682 /* ignore this field for filtering */
683 result = 1;
684 break;
55669bfa
AV
685 case AUDIT_PERM:
686 result = audit_match_perm(ctx, f->val);
687 break;
8b67dca9
AV
688 case AUDIT_FILETYPE:
689 result = audit_match_filetype(ctx, f->val);
690 break;
02d86a56
EP
691 case AUDIT_FIELD_COMPARE:
692 result = audit_field_compare(tsk, cred, f, ctx, name);
693 break;
1da177e4 694 }
f5629883 695 if (!result)
1da177e4
LT
696 return 0;
697 }
0590b933
AV
698
699 if (ctx) {
700 if (rule->prio <= ctx->prio)
701 return 0;
702 if (rule->filterkey) {
703 kfree(ctx->filterkey);
704 ctx->filterkey = kstrdup(rule->filterkey, GFP_ATOMIC);
705 }
706 ctx->prio = rule->prio;
707 }
1da177e4 708 switch (rule->action) {
66b12abc
PM
709 case AUDIT_NEVER:
710 *state = AUDIT_DISABLED;
711 break;
712 case AUDIT_ALWAYS:
713 *state = AUDIT_RECORD_CONTEXT;
714 break;
1da177e4
LT
715 }
716 return 1;
717}
718
719/* At process creation time, we can determine if system-call auditing is
720 * completely disabled for this task. Since we only have the task
721 * structure at this point, we can only check uid and gid.
722 */
e048e02c 723static enum audit_state audit_filter_task(struct task_struct *tsk, char **key)
1da177e4
LT
724{
725 struct audit_entry *e;
726 enum audit_state state;
727
728 rcu_read_lock();
0f45aa18 729 list_for_each_entry_rcu(e, &audit_filter_list[AUDIT_FILTER_TASK], list) {
f5629883
TJ
730 if (audit_filter_rules(tsk, &e->rule, NULL, NULL,
731 &state, true)) {
e048e02c
AV
732 if (state == AUDIT_RECORD_CONTEXT)
733 *key = kstrdup(e->rule.filterkey, GFP_ATOMIC);
1da177e4
LT
734 rcu_read_unlock();
735 return state;
736 }
737 }
738 rcu_read_unlock();
739 return AUDIT_BUILD_CONTEXT;
740}
741
a3c54931
AL
742static int audit_in_mask(const struct audit_krule *rule, unsigned long val)
743{
744 int word, bit;
745
746 if (val > 0xffffffff)
747 return false;
748
749 word = AUDIT_WORD(val);
750 if (word >= AUDIT_BITMASK_SIZE)
751 return false;
752
753 bit = AUDIT_BIT(val);
754
755 return rule->mask[word] & bit;
756}
757
1da177e4
LT
758/* At syscall entry and exit time, this filter is called if the
759 * audit_state is not low enough that auditing cannot take place, but is
23f32d18 760 * also not high enough that we already know we have to write an audit
b0dd25a8 761 * record (i.e., the state is AUDIT_SETUP_CONTEXT or AUDIT_BUILD_CONTEXT).
1da177e4
LT
762 */
763static enum audit_state audit_filter_syscall(struct task_struct *tsk,
764 struct audit_context *ctx,
765 struct list_head *list)
766{
767 struct audit_entry *e;
c3896495 768 enum audit_state state;
1da177e4 769
5b52330b 770 if (auditd_test_task(tsk))
f7056d64
DW
771 return AUDIT_DISABLED;
772
1da177e4 773 rcu_read_lock();
699c1868
RGB
774 list_for_each_entry_rcu(e, list, list) {
775 if (audit_in_mask(&e->rule, ctx->major) &&
776 audit_filter_rules(tsk, &e->rule, ctx, NULL,
777 &state, false)) {
778 rcu_read_unlock();
779 ctx->current_state = state;
780 return state;
f368c07d
AG
781 }
782 }
783 rcu_read_unlock();
784 return AUDIT_BUILD_CONTEXT;
785}
786
5195d8e2
EP
787/*
788 * Given an audit_name check the inode hash table to see if they match.
789 * Called holding the rcu read lock to protect the use of audit_inode_hash
790 */
791static int audit_filter_inode_name(struct task_struct *tsk,
792 struct audit_names *n,
793 struct audit_context *ctx) {
5195d8e2
EP
794 int h = audit_hash_ino((u32)n->ino);
795 struct list_head *list = &audit_inode_hash[h];
796 struct audit_entry *e;
797 enum audit_state state;
798
5195d8e2 799 list_for_each_entry_rcu(e, list, list) {
a3c54931 800 if (audit_in_mask(&e->rule, ctx->major) &&
5195d8e2
EP
801 audit_filter_rules(tsk, &e->rule, ctx, n, &state, false)) {
802 ctx->current_state = state;
803 return 1;
804 }
805 }
5195d8e2
EP
806 return 0;
807}
808
809/* At syscall exit time, this filter is called if any audit_names have been
f368c07d 810 * collected during syscall processing. We only check rules in sublists at hash
5195d8e2 811 * buckets applicable to the inode numbers in audit_names.
f368c07d
AG
812 * Regarding audit_state, same rules apply as for audit_filter_syscall().
813 */
0590b933 814void audit_filter_inodes(struct task_struct *tsk, struct audit_context *ctx)
f368c07d 815{
5195d8e2 816 struct audit_names *n;
f368c07d 817
5b52330b 818 if (auditd_test_task(tsk))
0590b933 819 return;
f368c07d
AG
820
821 rcu_read_lock();
f368c07d 822
5195d8e2
EP
823 list_for_each_entry(n, &ctx->names_list, list) {
824 if (audit_filter_inode_name(tsk, n, ctx))
825 break;
0f45aa18
DW
826 }
827 rcu_read_unlock();
0f45aa18
DW
828}
829
3f1c8250
WR
830static inline void audit_proctitle_free(struct audit_context *context)
831{
832 kfree(context->proctitle.value);
833 context->proctitle.value = NULL;
834 context->proctitle.len = 0;
835}
836
95e0b46f
LR
837static inline void audit_free_module(struct audit_context *context)
838{
839 if (context->type == AUDIT_KERN_MODULE) {
840 kfree(context->module.name);
841 context->module.name = NULL;
842 }
843}
1da177e4
LT
844static inline void audit_free_names(struct audit_context *context)
845{
5195d8e2 846 struct audit_names *n, *next;
1da177e4 847
5195d8e2
EP
848 list_for_each_entry_safe(n, next, &context->names_list, list) {
849 list_del(&n->list);
55422d0b
PM
850 if (n->name)
851 putname(n->name);
5195d8e2
EP
852 if (n->should_free)
853 kfree(n);
8c8570fb 854 }
1da177e4 855 context->name_count = 0;
44707fdf
JB
856 path_put(&context->pwd);
857 context->pwd.dentry = NULL;
858 context->pwd.mnt = NULL;
1da177e4
LT
859}
860
861static inline void audit_free_aux(struct audit_context *context)
862{
863 struct audit_aux_data *aux;
864
865 while ((aux = context->aux)) {
866 context->aux = aux->next;
867 kfree(aux);
868 }
e54dc243
AG
869 while ((aux = context->aux_pids)) {
870 context->aux_pids = aux->next;
871 kfree(aux);
872 }
1da177e4
LT
873}
874
1da177e4
LT
875static inline struct audit_context *audit_alloc_context(enum audit_state state)
876{
877 struct audit_context *context;
878
17c6ee70
RM
879 context = kzalloc(sizeof(*context), GFP_KERNEL);
880 if (!context)
1da177e4 881 return NULL;
e2c5adc8
AM
882 context->state = state;
883 context->prio = state == AUDIT_RECORD_CONTEXT ? ~0ULL : 0;
916d7576 884 INIT_LIST_HEAD(&context->killed_trees);
5195d8e2 885 INIT_LIST_HEAD(&context->names_list);
1da177e4
LT
886 return context;
887}
888
b0dd25a8
RD
889/**
890 * audit_alloc - allocate an audit context block for a task
891 * @tsk: task
892 *
893 * Filter on the task information and allocate a per-task audit context
1da177e4
LT
894 * if necessary. Doing so turns on system call auditing for the
895 * specified task. This is called from copy_process, so no lock is
b0dd25a8
RD
896 * needed.
897 */
1da177e4
LT
898int audit_alloc(struct task_struct *tsk)
899{
900 struct audit_context *context;
901 enum audit_state state;
e048e02c 902 char *key = NULL;
1da177e4 903
b593d384 904 if (likely(!audit_ever_enabled))
1da177e4
LT
905 return 0; /* Return if not auditing. */
906
e048e02c 907 state = audit_filter_task(tsk, &key);
d48d8051
ON
908 if (state == AUDIT_DISABLED) {
909 clear_tsk_thread_flag(tsk, TIF_SYSCALL_AUDIT);
1da177e4 910 return 0;
d48d8051 911 }
1da177e4
LT
912
913 if (!(context = audit_alloc_context(state))) {
e048e02c 914 kfree(key);
1da177e4
LT
915 audit_log_lost("out of memory in audit_alloc");
916 return -ENOMEM;
917 }
e048e02c 918 context->filterkey = key;
1da177e4 919
c0b0ae8a 920 audit_set_context(tsk, context);
1da177e4
LT
921 set_tsk_thread_flag(tsk, TIF_SYSCALL_AUDIT);
922 return 0;
923}
924
925static inline void audit_free_context(struct audit_context *context)
926{
95e0b46f 927 audit_free_module(context);
c62d773a
AV
928 audit_free_names(context);
929 unroll_tree_refs(context, NULL, 0);
930 free_tree_refs(context);
931 audit_free_aux(context);
932 kfree(context->filterkey);
933 kfree(context->sockaddr);
3f1c8250 934 audit_proctitle_free(context);
c62d773a 935 kfree(context);
1da177e4
LT
936}
937
e54dc243 938static int audit_log_pid_context(struct audit_context *context, pid_t pid,
cca080d9 939 kuid_t auid, kuid_t uid, unsigned int sessionid,
4746ec5b 940 u32 sid, char *comm)
e54dc243
AG
941{
942 struct audit_buffer *ab;
2a862b32 943 char *ctx = NULL;
e54dc243
AG
944 u32 len;
945 int rc = 0;
946
947 ab = audit_log_start(context, GFP_KERNEL, AUDIT_OBJ_PID);
948 if (!ab)
6246ccab 949 return rc;
e54dc243 950
e1760bd5
EB
951 audit_log_format(ab, "opid=%d oauid=%d ouid=%d oses=%d", pid,
952 from_kuid(&init_user_ns, auid),
cca080d9 953 from_kuid(&init_user_ns, uid), sessionid);
ad395abe
EP
954 if (sid) {
955 if (security_secid_to_secctx(sid, &ctx, &len)) {
956 audit_log_format(ab, " obj=(none)");
957 rc = 1;
958 } else {
959 audit_log_format(ab, " obj=%s", ctx);
960 security_release_secctx(ctx, len);
961 }
2a862b32 962 }
c2a7780e
EP
963 audit_log_format(ab, " ocomm=");
964 audit_log_untrustedstring(ab, comm);
e54dc243 965 audit_log_end(ab);
e54dc243
AG
966
967 return rc;
968}
969
43761473
PM
970static void audit_log_execve_info(struct audit_context *context,
971 struct audit_buffer **ab)
bdf4c48a 972{
43761473
PM
973 long len_max;
974 long len_rem;
975 long len_full;
976 long len_buf;
8443075e 977 long len_abuf = 0;
43761473
PM
978 long len_tmp;
979 bool require_data;
980 bool encode;
981 unsigned int iter;
982 unsigned int arg;
983 char *buf_head;
984 char *buf;
985 const char __user *p = (const char __user *)current->mm->arg_start;
986
987 /* NOTE: this buffer needs to be large enough to hold all the non-arg
988 * data we put in the audit record for this argument (see the
989 * code below) ... at this point in time 96 is plenty */
990 char abuf[96];
991
992 /* NOTE: we set MAX_EXECVE_AUDIT_LEN to a rather arbitrary limit, the
993 * current value of 7500 is not as important as the fact that it
994 * is less than 8k, a setting of 7500 gives us plenty of wiggle
995 * room if we go over a little bit in the logging below */
996 WARN_ON_ONCE(MAX_EXECVE_AUDIT_LEN > 7500);
997 len_max = MAX_EXECVE_AUDIT_LEN;
998
999 /* scratch buffer to hold the userspace args */
1000 buf_head = kmalloc(MAX_EXECVE_AUDIT_LEN + 1, GFP_KERNEL);
1001 if (!buf_head) {
1002 audit_panic("out of memory for argv string");
1003 return;
de6bbd1d 1004 }
43761473 1005 buf = buf_head;
040b3a2d 1006
43761473 1007 audit_log_format(*ab, "argc=%d", context->execve.argc);
040b3a2d 1008
43761473
PM
1009 len_rem = len_max;
1010 len_buf = 0;
1011 len_full = 0;
1012 require_data = true;
1013 encode = false;
1014 iter = 0;
1015 arg = 0;
de6bbd1d 1016 do {
43761473
PM
1017 /* NOTE: we don't ever want to trust this value for anything
1018 * serious, but the audit record format insists we
1019 * provide an argument length for really long arguments,
1020 * e.g. > MAX_EXECVE_AUDIT_LEN, so we have no choice but
1021 * to use strncpy_from_user() to obtain this value for
1022 * recording in the log, although we don't use it
1023 * anywhere here to avoid a double-fetch problem */
1024 if (len_full == 0)
1025 len_full = strnlen_user(p, MAX_ARG_STRLEN) - 1;
1026
1027 /* read more data from userspace */
1028 if (require_data) {
1029 /* can we make more room in the buffer? */
1030 if (buf != buf_head) {
1031 memmove(buf_head, buf, len_buf);
1032 buf = buf_head;
1033 }
1034
1035 /* fetch as much as we can of the argument */
1036 len_tmp = strncpy_from_user(&buf_head[len_buf], p,
1037 len_max - len_buf);
1038 if (len_tmp == -EFAULT) {
1039 /* unable to copy from userspace */
1040 send_sig(SIGKILL, current, 0);
1041 goto out;
1042 } else if (len_tmp == (len_max - len_buf)) {
1043 /* buffer is not large enough */
1044 require_data = true;
1045 /* NOTE: if we are going to span multiple
1046 * buffers force the encoding so we stand
1047 * a chance at a sane len_full value and
1048 * consistent record encoding */
1049 encode = true;
1050 len_full = len_full * 2;
1051 p += len_tmp;
1052 } else {
1053 require_data = false;
1054 if (!encode)
1055 encode = audit_string_contains_control(
1056 buf, len_tmp);
1057 /* try to use a trusted value for len_full */
1058 if (len_full < len_max)
1059 len_full = (encode ?
1060 len_tmp * 2 : len_tmp);
1061 p += len_tmp + 1;
1062 }
1063 len_buf += len_tmp;
1064 buf_head[len_buf] = '\0';
bdf4c48a 1065
43761473
PM
1066 /* length of the buffer in the audit record? */
1067 len_abuf = (encode ? len_buf * 2 : len_buf + 2);
bdf4c48a 1068 }
de6bbd1d 1069
43761473 1070 /* write as much as we can to the audit log */
ea956d8b 1071 if (len_buf >= 0) {
43761473
PM
1072 /* NOTE: some magic numbers here - basically if we
1073 * can't fit a reasonable amount of data into the
1074 * existing audit buffer, flush it and start with
1075 * a new buffer */
1076 if ((sizeof(abuf) + 8) > len_rem) {
1077 len_rem = len_max;
1078 audit_log_end(*ab);
1079 *ab = audit_log_start(context,
1080 GFP_KERNEL, AUDIT_EXECVE);
1081 if (!*ab)
1082 goto out;
1083 }
bdf4c48a 1084
43761473
PM
1085 /* create the non-arg portion of the arg record */
1086 len_tmp = 0;
1087 if (require_data || (iter > 0) ||
1088 ((len_abuf + sizeof(abuf)) > len_rem)) {
1089 if (iter == 0) {
1090 len_tmp += snprintf(&abuf[len_tmp],
1091 sizeof(abuf) - len_tmp,
1092 " a%d_len=%lu",
1093 arg, len_full);
1094 }
1095 len_tmp += snprintf(&abuf[len_tmp],
1096 sizeof(abuf) - len_tmp,
1097 " a%d[%d]=", arg, iter++);
1098 } else
1099 len_tmp += snprintf(&abuf[len_tmp],
1100 sizeof(abuf) - len_tmp,
1101 " a%d=", arg);
1102 WARN_ON(len_tmp >= sizeof(abuf));
1103 abuf[sizeof(abuf) - 1] = '\0';
1104
1105 /* log the arg in the audit record */
1106 audit_log_format(*ab, "%s", abuf);
1107 len_rem -= len_tmp;
1108 len_tmp = len_buf;
1109 if (encode) {
1110 if (len_abuf > len_rem)
1111 len_tmp = len_rem / 2; /* encoding */
1112 audit_log_n_hex(*ab, buf, len_tmp);
1113 len_rem -= len_tmp * 2;
1114 len_abuf -= len_tmp * 2;
1115 } else {
1116 if (len_abuf > len_rem)
1117 len_tmp = len_rem - 2; /* quotes */
1118 audit_log_n_string(*ab, buf, len_tmp);
1119 len_rem -= len_tmp + 2;
1120 /* don't subtract the "2" because we still need
1121 * to add quotes to the remaining string */
1122 len_abuf -= len_tmp;
1123 }
1124 len_buf -= len_tmp;
1125 buf += len_tmp;
1126 }
bdf4c48a 1127
43761473
PM
1128 /* ready to move to the next argument? */
1129 if ((len_buf == 0) && !require_data) {
1130 arg++;
1131 iter = 0;
1132 len_full = 0;
1133 require_data = true;
1134 encode = false;
1135 }
1136 } while (arg < context->execve.argc);
de6bbd1d 1137
43761473 1138 /* NOTE: the caller handles the final audit_log_end() call */
de6bbd1d 1139
43761473
PM
1140out:
1141 kfree(buf_head);
bdf4c48a
PZ
1142}
1143
2efa48fe
Y
1144static void audit_log_cap(struct audit_buffer *ab, char *prefix,
1145 kernel_cap_t *cap)
5f3d544f
RGB
1146{
1147 int i;
1148
1149 if (cap_isclear(*cap)) {
1150 audit_log_format(ab, " %s=0", prefix);
1151 return;
1152 }
1153 audit_log_format(ab, " %s=", prefix);
1154 CAP_FOR_EACH_U32(i)
1155 audit_log_format(ab, "%08x", cap->cap[CAP_LAST_U32 - i]);
1156}
1157
1158static void audit_log_fcaps(struct audit_buffer *ab, struct audit_names *name)
1159{
1160 if (name->fcap_ver == -1) {
1161 audit_log_format(ab, " cap_fe=? cap_fver=? cap_fp=? cap_fi=?");
1162 return;
1163 }
1164 audit_log_cap(ab, "cap_fp", &name->fcap.permitted);
1165 audit_log_cap(ab, "cap_fi", &name->fcap.inheritable);
1166 audit_log_format(ab, " cap_fe=%d cap_fver=%x cap_frootid=%d",
1167 name->fcap.fE, name->fcap_ver,
1168 from_kuid(&init_user_ns, name->fcap.rootid));
1169}
1170
a33e6751 1171static void show_special(struct audit_context *context, int *call_panic)
f3298dc4
AV
1172{
1173 struct audit_buffer *ab;
1174 int i;
1175
1176 ab = audit_log_start(context, GFP_KERNEL, context->type);
1177 if (!ab)
1178 return;
1179
1180 switch (context->type) {
1181 case AUDIT_SOCKETCALL: {
1182 int nargs = context->socketcall.nargs;
1183 audit_log_format(ab, "nargs=%d", nargs);
1184 for (i = 0; i < nargs; i++)
1185 audit_log_format(ab, " a%d=%lx", i,
1186 context->socketcall.args[i]);
1187 break; }
a33e6751
AV
1188 case AUDIT_IPC: {
1189 u32 osid = context->ipc.osid;
1190
2570ebbd 1191 audit_log_format(ab, "ouid=%u ogid=%u mode=%#ho",
cca080d9
EB
1192 from_kuid(&init_user_ns, context->ipc.uid),
1193 from_kgid(&init_user_ns, context->ipc.gid),
1194 context->ipc.mode);
a33e6751
AV
1195 if (osid) {
1196 char *ctx = NULL;
1197 u32 len;
1198 if (security_secid_to_secctx(osid, &ctx, &len)) {
1199 audit_log_format(ab, " osid=%u", osid);
1200 *call_panic = 1;
1201 } else {
1202 audit_log_format(ab, " obj=%s", ctx);
1203 security_release_secctx(ctx, len);
1204 }
1205 }
e816f370
AV
1206 if (context->ipc.has_perm) {
1207 audit_log_end(ab);
1208 ab = audit_log_start(context, GFP_KERNEL,
1209 AUDIT_IPC_SET_PERM);
0644ec0c
KC
1210 if (unlikely(!ab))
1211 return;
e816f370 1212 audit_log_format(ab,
2570ebbd 1213 "qbytes=%lx ouid=%u ogid=%u mode=%#ho",
e816f370
AV
1214 context->ipc.qbytes,
1215 context->ipc.perm_uid,
1216 context->ipc.perm_gid,
1217 context->ipc.perm_mode);
e816f370 1218 }
a33e6751 1219 break; }
fe8e52b9 1220 case AUDIT_MQ_OPEN:
564f6993 1221 audit_log_format(ab,
df0a4283 1222 "oflag=0x%x mode=%#ho mq_flags=0x%lx mq_maxmsg=%ld "
564f6993
AV
1223 "mq_msgsize=%ld mq_curmsgs=%ld",
1224 context->mq_open.oflag, context->mq_open.mode,
1225 context->mq_open.attr.mq_flags,
1226 context->mq_open.attr.mq_maxmsg,
1227 context->mq_open.attr.mq_msgsize,
1228 context->mq_open.attr.mq_curmsgs);
fe8e52b9
PM
1229 break;
1230 case AUDIT_MQ_SENDRECV:
c32c8af4
AV
1231 audit_log_format(ab,
1232 "mqdes=%d msg_len=%zd msg_prio=%u "
b9047726 1233 "abs_timeout_sec=%lld abs_timeout_nsec=%ld",
c32c8af4
AV
1234 context->mq_sendrecv.mqdes,
1235 context->mq_sendrecv.msg_len,
1236 context->mq_sendrecv.msg_prio,
b9047726 1237 (long long) context->mq_sendrecv.abs_timeout.tv_sec,
c32c8af4 1238 context->mq_sendrecv.abs_timeout.tv_nsec);
fe8e52b9
PM
1239 break;
1240 case AUDIT_MQ_NOTIFY:
20114f71
AV
1241 audit_log_format(ab, "mqdes=%d sigev_signo=%d",
1242 context->mq_notify.mqdes,
1243 context->mq_notify.sigev_signo);
fe8e52b9 1244 break;
7392906e
AV
1245 case AUDIT_MQ_GETSETATTR: {
1246 struct mq_attr *attr = &context->mq_getsetattr.mqstat;
1247 audit_log_format(ab,
1248 "mqdes=%d mq_flags=0x%lx mq_maxmsg=%ld mq_msgsize=%ld "
1249 "mq_curmsgs=%ld ",
1250 context->mq_getsetattr.mqdes,
1251 attr->mq_flags, attr->mq_maxmsg,
1252 attr->mq_msgsize, attr->mq_curmsgs);
1253 break; }
fe8e52b9 1254 case AUDIT_CAPSET:
57f71a0a
AV
1255 audit_log_format(ab, "pid=%d", context->capset.pid);
1256 audit_log_cap(ab, "cap_pi", &context->capset.cap.inheritable);
1257 audit_log_cap(ab, "cap_pp", &context->capset.cap.permitted);
1258 audit_log_cap(ab, "cap_pe", &context->capset.cap.effective);
7786f6b6 1259 audit_log_cap(ab, "cap_pa", &context->capset.cap.ambient);
fe8e52b9
PM
1260 break;
1261 case AUDIT_MMAP:
120a795d
AV
1262 audit_log_format(ab, "fd=%d flags=0x%x", context->mmap.fd,
1263 context->mmap.flags);
fe8e52b9
PM
1264 break;
1265 case AUDIT_EXECVE:
d9cfea91 1266 audit_log_execve_info(context, &ab);
fe8e52b9 1267 break;
ca86cad7
RGB
1268 case AUDIT_KERN_MODULE:
1269 audit_log_format(ab, "name=");
b305f7ed
YW
1270 if (context->module.name) {
1271 audit_log_untrustedstring(ab, context->module.name);
b305f7ed
YW
1272 } else
1273 audit_log_format(ab, "(null)");
1274
ca86cad7 1275 break;
f3298dc4
AV
1276 }
1277 audit_log_end(ab);
1278}
1279
3f1c8250
WR
1280static inline int audit_proctitle_rtrim(char *proctitle, int len)
1281{
1282 char *end = proctitle + len - 1;
1283 while (end > proctitle && !isprint(*end))
1284 end--;
1285
1286 /* catch the case where proctitle is only 1 non-print character */
1287 len = end - proctitle + 1;
1288 len -= isprint(proctitle[len-1]) == 0;
1289 return len;
1290}
1291
5f3d544f
RGB
1292/*
1293 * audit_log_name - produce AUDIT_PATH record from struct audit_names
1294 * @context: audit_context for the task
1295 * @n: audit_names structure with reportable details
1296 * @path: optional path to report instead of audit_names->name
1297 * @record_num: record number to report when handling a list of names
1298 * @call_panic: optional pointer to int that will be updated if secid fails
1299 */
1300static void audit_log_name(struct audit_context *context, struct audit_names *n,
1301 const struct path *path, int record_num, int *call_panic)
1302{
1303 struct audit_buffer *ab;
1304
1305 ab = audit_log_start(context, GFP_KERNEL, AUDIT_PATH);
1306 if (!ab)
1307 return;
1308
1309 audit_log_format(ab, "item=%d", record_num);
1310
1311 if (path)
1312 audit_log_d_path(ab, " name=", path);
1313 else if (n->name) {
1314 switch (n->name_len) {
1315 case AUDIT_NAME_FULL:
1316 /* log the full path */
1317 audit_log_format(ab, " name=");
1318 audit_log_untrustedstring(ab, n->name->name);
1319 break;
1320 case 0:
1321 /* name was specified as a relative path and the
1322 * directory component is the cwd
1323 */
1324 audit_log_d_path(ab, " name=", &context->pwd);
1325 break;
1326 default:
1327 /* log the name's directory component */
1328 audit_log_format(ab, " name=");
1329 audit_log_n_untrustedstring(ab, n->name->name,
1330 n->name_len);
1331 }
1332 } else
1333 audit_log_format(ab, " name=(null)");
1334
1335 if (n->ino != AUDIT_INO_UNSET)
1336 audit_log_format(ab, " inode=%lu dev=%02x:%02x mode=%#ho ouid=%u ogid=%u rdev=%02x:%02x",
1337 n->ino,
1338 MAJOR(n->dev),
1339 MINOR(n->dev),
1340 n->mode,
1341 from_kuid(&init_user_ns, n->uid),
1342 from_kgid(&init_user_ns, n->gid),
1343 MAJOR(n->rdev),
1344 MINOR(n->rdev));
1345 if (n->osid != 0) {
1346 char *ctx = NULL;
1347 u32 len;
1348
1349 if (security_secid_to_secctx(
1350 n->osid, &ctx, &len)) {
1351 audit_log_format(ab, " osid=%u", n->osid);
1352 if (call_panic)
1353 *call_panic = 2;
1354 } else {
1355 audit_log_format(ab, " obj=%s", ctx);
1356 security_release_secctx(ctx, len);
1357 }
1358 }
1359
1360 /* log the audit_names record type */
1361 switch (n->type) {
1362 case AUDIT_TYPE_NORMAL:
1363 audit_log_format(ab, " nametype=NORMAL");
1364 break;
1365 case AUDIT_TYPE_PARENT:
1366 audit_log_format(ab, " nametype=PARENT");
1367 break;
1368 case AUDIT_TYPE_CHILD_DELETE:
1369 audit_log_format(ab, " nametype=DELETE");
1370 break;
1371 case AUDIT_TYPE_CHILD_CREATE:
1372 audit_log_format(ab, " nametype=CREATE");
1373 break;
1374 default:
1375 audit_log_format(ab, " nametype=UNKNOWN");
1376 break;
1377 }
1378
1379 audit_log_fcaps(ab, n);
1380 audit_log_end(ab);
1381}
1382
2a1fe215 1383static void audit_log_proctitle(void)
3f1c8250
WR
1384{
1385 int res;
1386 char *buf;
1387 char *msg = "(null)";
1388 int len = strlen(msg);
2a1fe215 1389 struct audit_context *context = audit_context();
3f1c8250
WR
1390 struct audit_buffer *ab;
1391
2a1fe215
PM
1392 if (!context || context->dummy)
1393 return;
1394
3f1c8250
WR
1395 ab = audit_log_start(context, GFP_KERNEL, AUDIT_PROCTITLE);
1396 if (!ab)
1397 return; /* audit_panic or being filtered */
1398
1399 audit_log_format(ab, "proctitle=");
1400
1401 /* Not cached */
1402 if (!context->proctitle.value) {
1403 buf = kmalloc(MAX_PROCTITLE_AUDIT_LEN, GFP_KERNEL);
1404 if (!buf)
1405 goto out;
1406 /* Historically called this from procfs naming */
2a1fe215 1407 res = get_cmdline(current, buf, MAX_PROCTITLE_AUDIT_LEN);
3f1c8250
WR
1408 if (res == 0) {
1409 kfree(buf);
1410 goto out;
1411 }
1412 res = audit_proctitle_rtrim(buf, res);
1413 if (res == 0) {
1414 kfree(buf);
1415 goto out;
1416 }
1417 context->proctitle.value = buf;
1418 context->proctitle.len = res;
1419 }
1420 msg = context->proctitle.value;
1421 len = context->proctitle.len;
1422out:
1423 audit_log_n_untrustedstring(ab, msg, len);
1424 audit_log_end(ab);
1425}
1426
2a1fe215 1427static void audit_log_exit(void)
1da177e4 1428{
9c7aa6aa 1429 int i, call_panic = 0;
2a1fe215 1430 struct audit_context *context = audit_context();
1da177e4 1431 struct audit_buffer *ab;
7551ced3 1432 struct audit_aux_data *aux;
5195d8e2 1433 struct audit_names *n;
1da177e4 1434
2a1fe215 1435 context->personality = current->personality;
e495149b
AV
1436
1437 ab = audit_log_start(context, GFP_KERNEL, AUDIT_SYSCALL);
1da177e4
LT
1438 if (!ab)
1439 return; /* audit_panic has been called */
bccf6ae0
DW
1440 audit_log_format(ab, "arch=%x syscall=%d",
1441 context->arch, context->major);
1da177e4
LT
1442 if (context->personality != PER_LINUX)
1443 audit_log_format(ab, " per=%lx", context->personality);
1444 if (context->return_valid)
9f8dbe9c 1445 audit_log_format(ab, " success=%s exit=%ld",
2fd6f58b
DW
1446 (context->return_valid==AUDITSC_SUCCESS)?"yes":"no",
1447 context->return_code);
eb84a20e 1448
1da177e4 1449 audit_log_format(ab,
e23eb920
PM
1450 " a0=%lx a1=%lx a2=%lx a3=%lx items=%d",
1451 context->argv[0],
1452 context->argv[1],
1453 context->argv[2],
1454 context->argv[3],
1455 context->name_count);
eb84a20e 1456
2a1fe215 1457 audit_log_task_info(ab);
9d960985 1458 audit_log_key(ab, context->filterkey);
1da177e4 1459 audit_log_end(ab);
1da177e4 1460
7551ced3 1461 for (aux = context->aux; aux; aux = aux->next) {
c0404993 1462
e495149b 1463 ab = audit_log_start(context, GFP_KERNEL, aux->type);
1da177e4
LT
1464 if (!ab)
1465 continue; /* audit_panic has been called */
1466
1da177e4 1467 switch (aux->type) {
20ca73bc 1468
3fc689e9
EP
1469 case AUDIT_BPRM_FCAPS: {
1470 struct audit_aux_data_bprm_fcaps *axs = (void *)aux;
1471 audit_log_format(ab, "fver=%x", axs->fcap_ver);
1472 audit_log_cap(ab, "fp", &axs->fcap.permitted);
1473 audit_log_cap(ab, "fi", &axs->fcap.inheritable);
1474 audit_log_format(ab, " fe=%d", axs->fcap.fE);
1475 audit_log_cap(ab, "old_pp", &axs->old_pcap.permitted);
1476 audit_log_cap(ab, "old_pi", &axs->old_pcap.inheritable);
1477 audit_log_cap(ab, "old_pe", &axs->old_pcap.effective);
7786f6b6
RGB
1478 audit_log_cap(ab, "old_pa", &axs->old_pcap.ambient);
1479 audit_log_cap(ab, "pp", &axs->new_pcap.permitted);
1480 audit_log_cap(ab, "pi", &axs->new_pcap.inheritable);
1481 audit_log_cap(ab, "pe", &axs->new_pcap.effective);
1482 audit_log_cap(ab, "pa", &axs->new_pcap.ambient);
2fec30e2
RGB
1483 audit_log_format(ab, " frootid=%d",
1484 from_kuid(&init_user_ns,
1485 axs->fcap.rootid));
3fc689e9
EP
1486 break; }
1487
1da177e4
LT
1488 }
1489 audit_log_end(ab);
1da177e4
LT
1490 }
1491
f3298dc4 1492 if (context->type)
a33e6751 1493 show_special(context, &call_panic);
f3298dc4 1494
157cf649
AV
1495 if (context->fds[0] >= 0) {
1496 ab = audit_log_start(context, GFP_KERNEL, AUDIT_FD_PAIR);
1497 if (ab) {
1498 audit_log_format(ab, "fd0=%d fd1=%d",
1499 context->fds[0], context->fds[1]);
1500 audit_log_end(ab);
1501 }
1502 }
1503
4f6b434f
AV
1504 if (context->sockaddr_len) {
1505 ab = audit_log_start(context, GFP_KERNEL, AUDIT_SOCKADDR);
1506 if (ab) {
1507 audit_log_format(ab, "saddr=");
1508 audit_log_n_hex(ab, (void *)context->sockaddr,
1509 context->sockaddr_len);
1510 audit_log_end(ab);
1511 }
1512 }
1513
e54dc243
AG
1514 for (aux = context->aux_pids; aux; aux = aux->next) {
1515 struct audit_aux_data_pids *axs = (void *)aux;
e54dc243
AG
1516
1517 for (i = 0; i < axs->pid_count; i++)
1518 if (audit_log_pid_context(context, axs->target_pid[i],
c2a7780e
EP
1519 axs->target_auid[i],
1520 axs->target_uid[i],
4746ec5b 1521 axs->target_sessionid[i],
c2a7780e
EP
1522 axs->target_sid[i],
1523 axs->target_comm[i]))
e54dc243 1524 call_panic = 1;
a5cb013d
AV
1525 }
1526
e54dc243
AG
1527 if (context->target_pid &&
1528 audit_log_pid_context(context, context->target_pid,
c2a7780e 1529 context->target_auid, context->target_uid,
4746ec5b 1530 context->target_sessionid,
c2a7780e 1531 context->target_sid, context->target_comm))
e54dc243
AG
1532 call_panic = 1;
1533
44707fdf 1534 if (context->pwd.dentry && context->pwd.mnt) {
e495149b 1535 ab = audit_log_start(context, GFP_KERNEL, AUDIT_CWD);
8f37d47c 1536 if (ab) {
0b7a0fdb 1537 audit_log_d_path(ab, "cwd=", &context->pwd);
8f37d47c
DW
1538 audit_log_end(ab);
1539 }
1540 }
73241ccc 1541
5195d8e2 1542 i = 0;
79f6530c
JL
1543 list_for_each_entry(n, &context->names_list, list) {
1544 if (n->hidden)
1545 continue;
b24a30a7 1546 audit_log_name(context, n, NULL, i++, &call_panic);
79f6530c 1547 }
c0641f28 1548
2a1fe215 1549 audit_log_proctitle();
3f1c8250 1550
c0641f28
EP
1551 /* Send end of event record to help user space know we are finished */
1552 ab = audit_log_start(context, GFP_KERNEL, AUDIT_EOE);
1553 if (ab)
1554 audit_log_end(ab);
9c7aa6aa
SG
1555 if (call_panic)
1556 audit_panic("error converting sid to string");
1da177e4
LT
1557}
1558
b0dd25a8 1559/**
196a5085 1560 * __audit_free - free a per-task audit context
b0dd25a8
RD
1561 * @tsk: task whose audit context block to free
1562 *
fa84cb93 1563 * Called from copy_process and do_exit
b0dd25a8 1564 */
a4ff8dba 1565void __audit_free(struct task_struct *tsk)
1da177e4 1566{
2a1fe215 1567 struct audit_context *context = tsk->audit_context;
1da177e4 1568
56179a6e 1569 if (!context)
1da177e4
LT
1570 return;
1571
9e36a5d4
RGB
1572 if (!list_empty(&context->killed_trees))
1573 audit_kill_trees(context);
1574
2a1fe215
PM
1575 /* We are called either by do_exit() or the fork() error handling code;
1576 * in the former case tsk == current and in the latter tsk is a
1577 * random task_struct that doesn't doesn't have any meaningful data we
1578 * need to log via audit_log_exit().
1579 */
1580 if (tsk == current && !context->dummy && context->in_syscall) {
1581 context->return_valid = 0;
1582 context->return_code = 0;
1583
1584 audit_filter_syscall(tsk, context,
1585 &audit_filter_list[AUDIT_FILTER_EXIT]);
1586 audit_filter_inodes(tsk, context);
1587 if (context->current_state == AUDIT_RECORD_CONTEXT)
1588 audit_log_exit();
1589 }
1590
2a1fe215 1591 audit_set_context(tsk, NULL);
1da177e4
LT
1592 audit_free_context(context);
1593}
1594
b0dd25a8 1595/**
196a5085 1596 * __audit_syscall_entry - fill in an audit record at syscall entry
b0dd25a8
RD
1597 * @major: major syscall type (function)
1598 * @a1: additional syscall register 1
1599 * @a2: additional syscall register 2
1600 * @a3: additional syscall register 3
1601 * @a4: additional syscall register 4
1602 *
1603 * Fill in audit context at syscall entry. This only happens if the
1da177e4
LT
1604 * audit context was created when the task was created and the state or
1605 * filters demand the audit context be built. If the state from the
1606 * per-task filter or from the per-syscall filter is AUDIT_RECORD_CONTEXT,
1607 * then the record will be written at syscall exit time (otherwise, it
1608 * will only be written if another part of the kernel requests that it
b0dd25a8
RD
1609 * be written).
1610 */
b4f0d375
RGB
1611void __audit_syscall_entry(int major, unsigned long a1, unsigned long a2,
1612 unsigned long a3, unsigned long a4)
1da177e4 1613{
cdfb6b34 1614 struct audit_context *context = audit_context();
1da177e4
LT
1615 enum audit_state state;
1616
94d14e3e 1617 if (!audit_enabled || !context)
86a1c34a 1618 return;
1da177e4 1619
1da177e4
LT
1620 BUG_ON(context->in_syscall || context->name_count);
1621
1da177e4 1622 state = context->state;
5260ecc2
RGB
1623 if (state == AUDIT_DISABLED)
1624 return;
1625
d51374ad 1626 context->dummy = !audit_n_rules;
0590b933
AV
1627 if (!context->dummy && state == AUDIT_BUILD_CONTEXT) {
1628 context->prio = 0;
cdfb6b34 1629 if (auditd_test_task(current))
5260ecc2 1630 return;
0590b933 1631 }
1da177e4 1632
16add411 1633 context->arch = syscall_get_arch(current);
5260ecc2
RGB
1634 context->major = major;
1635 context->argv[0] = a1;
1636 context->argv[1] = a2;
1637 context->argv[2] = a3;
1638 context->argv[3] = a4;
ce625a80 1639 context->serial = 0;
1da177e4 1640 context->in_syscall = 1;
0590b933 1641 context->current_state = state;
419c58f1 1642 context->ppid = 0;
290e44b7 1643 ktime_get_coarse_real_ts64(&context->ctime);
1da177e4
LT
1644}
1645
b0dd25a8 1646/**
196a5085 1647 * __audit_syscall_exit - deallocate audit context after a system call
42ae610c
RD
1648 * @success: success value of the syscall
1649 * @return_code: return value of the syscall
b0dd25a8
RD
1650 *
1651 * Tear down after system call. If the audit context has been marked as
1da177e4 1652 * auditable (either because of the AUDIT_RECORD_CONTEXT state from
42ae610c 1653 * filtering, or because some other part of the kernel wrote an audit
1da177e4 1654 * message), then write out the syscall information. In call cases,
b0dd25a8
RD
1655 * free the names stored from getname().
1656 */
d7e7528b 1657void __audit_syscall_exit(int success, long return_code)
1da177e4
LT
1658{
1659 struct audit_context *context;
1660
2a1fe215 1661 context = audit_context();
56179a6e 1662 if (!context)
97e94c45 1663 return;
1da177e4 1664
9e36a5d4
RGB
1665 if (!list_empty(&context->killed_trees))
1666 audit_kill_trees(context);
1667
2a1fe215
PM
1668 if (!context->dummy && context->in_syscall) {
1669 if (success)
1670 context->return_valid = AUDITSC_SUCCESS;
1671 else
1672 context->return_valid = AUDITSC_FAILURE;
1673
1674 /*
1675 * we need to fix up the return code in the audit logs if the
1676 * actual return codes are later going to be fixed up by the
1677 * arch specific signal handlers
1678 *
1679 * This is actually a test for:
1680 * (rc == ERESTARTSYS ) || (rc == ERESTARTNOINTR) ||
1681 * (rc == ERESTARTNOHAND) || (rc == ERESTART_RESTARTBLOCK)
1682 *
1683 * but is faster than a bunch of ||
1684 */
1685 if (unlikely(return_code <= -ERESTARTSYS) &&
1686 (return_code >= -ERESTART_RESTARTBLOCK) &&
1687 (return_code != -ENOIOCTLCMD))
1688 context->return_code = -EINTR;
1689 else
1690 context->return_code = return_code;
1691
1692 audit_filter_syscall(current, context,
1693 &audit_filter_list[AUDIT_FILTER_EXIT]);
1694 audit_filter_inodes(current, context);
1695 if (context->current_state == AUDIT_RECORD_CONTEXT)
1696 audit_log_exit();
1697 }
1da177e4
LT
1698
1699 context->in_syscall = 0;
0590b933 1700 context->prio = context->state == AUDIT_RECORD_CONTEXT ? ~0ULL : 0;
2fd6f58b 1701
95e0b46f 1702 audit_free_module(context);
c62d773a
AV
1703 audit_free_names(context);
1704 unroll_tree_refs(context, NULL, 0);
1705 audit_free_aux(context);
1706 context->aux = NULL;
1707 context->aux_pids = NULL;
1708 context->target_pid = 0;
1709 context->target_sid = 0;
1710 context->sockaddr_len = 0;
1711 context->type = 0;
1712 context->fds[0] = -1;
1713 if (context->state != AUDIT_RECORD_CONTEXT) {
1714 kfree(context->filterkey);
1715 context->filterkey = NULL;
1da177e4 1716 }
1da177e4
LT
1717}
1718
74c3cbe3
AV
1719static inline void handle_one(const struct inode *inode)
1720{
74c3cbe3
AV
1721 struct audit_context *context;
1722 struct audit_tree_refs *p;
1723 struct audit_chunk *chunk;
1724 int count;
08991e83 1725 if (likely(!inode->i_fsnotify_marks))
74c3cbe3 1726 return;
cdfb6b34 1727 context = audit_context();
74c3cbe3
AV
1728 p = context->trees;
1729 count = context->tree_count;
1730 rcu_read_lock();
1731 chunk = audit_tree_lookup(inode);
1732 rcu_read_unlock();
1733 if (!chunk)
1734 return;
1735 if (likely(put_tree_ref(context, chunk)))
1736 return;
1737 if (unlikely(!grow_tree_refs(context))) {
f952d10f 1738 pr_warn("out of memory, audit has lost a tree reference\n");
74c3cbe3
AV
1739 audit_set_auditable(context);
1740 audit_put_chunk(chunk);
1741 unroll_tree_refs(context, p, count);
1742 return;
1743 }
1744 put_tree_ref(context, chunk);
74c3cbe3
AV
1745}
1746
1747static void handle_path(const struct dentry *dentry)
1748{
74c3cbe3
AV
1749 struct audit_context *context;
1750 struct audit_tree_refs *p;
1751 const struct dentry *d, *parent;
1752 struct audit_chunk *drop;
1753 unsigned long seq;
1754 int count;
1755
cdfb6b34 1756 context = audit_context();
74c3cbe3
AV
1757 p = context->trees;
1758 count = context->tree_count;
1759retry:
1760 drop = NULL;
1761 d = dentry;
1762 rcu_read_lock();
1763 seq = read_seqbegin(&rename_lock);
1764 for(;;) {
3b362157 1765 struct inode *inode = d_backing_inode(d);
08991e83 1766 if (inode && unlikely(inode->i_fsnotify_marks)) {
74c3cbe3
AV
1767 struct audit_chunk *chunk;
1768 chunk = audit_tree_lookup(inode);
1769 if (chunk) {
1770 if (unlikely(!put_tree_ref(context, chunk))) {
1771 drop = chunk;
1772 break;
1773 }
1774 }
1775 }
1776 parent = d->d_parent;
1777 if (parent == d)
1778 break;
1779 d = parent;
1780 }
1781 if (unlikely(read_seqretry(&rename_lock, seq) || drop)) { /* in this order */
1782 rcu_read_unlock();
1783 if (!drop) {
1784 /* just a race with rename */
1785 unroll_tree_refs(context, p, count);
1786 goto retry;
1787 }
1788 audit_put_chunk(drop);
1789 if (grow_tree_refs(context)) {
1790 /* OK, got more space */
1791 unroll_tree_refs(context, p, count);
1792 goto retry;
1793 }
1794 /* too bad */
f952d10f 1795 pr_warn("out of memory, audit has lost a tree reference\n");
74c3cbe3
AV
1796 unroll_tree_refs(context, p, count);
1797 audit_set_auditable(context);
1798 return;
1799 }
1800 rcu_read_unlock();
74c3cbe3
AV
1801}
1802
78e2e802
JL
1803static struct audit_names *audit_alloc_name(struct audit_context *context,
1804 unsigned char type)
5195d8e2
EP
1805{
1806 struct audit_names *aname;
1807
1808 if (context->name_count < AUDIT_NAMES) {
1809 aname = &context->preallocated_names[context->name_count];
1810 memset(aname, 0, sizeof(*aname));
1811 } else {
1812 aname = kzalloc(sizeof(*aname), GFP_NOFS);
1813 if (!aname)
1814 return NULL;
1815 aname->should_free = true;
1816 }
1817
84cb777e 1818 aname->ino = AUDIT_INO_UNSET;
78e2e802 1819 aname->type = type;
5195d8e2
EP
1820 list_add_tail(&aname->list, &context->names_list);
1821
1822 context->name_count++;
5195d8e2
EP
1823 return aname;
1824}
1825
7ac86265 1826/**
196a5085 1827 * __audit_reusename - fill out filename with info from existing entry
7ac86265
JL
1828 * @uptr: userland ptr to pathname
1829 *
1830 * Search the audit_names list for the current audit context. If there is an
1831 * existing entry with a matching "uptr" then return the filename
1832 * associated with that audit_name. If not, return NULL.
1833 */
1834struct filename *
1835__audit_reusename(const __user char *uptr)
1836{
cdfb6b34 1837 struct audit_context *context = audit_context();
7ac86265
JL
1838 struct audit_names *n;
1839
1840 list_for_each_entry(n, &context->names_list, list) {
1841 if (!n->name)
1842 continue;
55422d0b
PM
1843 if (n->name->uptr == uptr) {
1844 n->name->refcnt++;
7ac86265 1845 return n->name;
55422d0b 1846 }
7ac86265
JL
1847 }
1848 return NULL;
1849}
1850
b0dd25a8 1851/**
196a5085 1852 * __audit_getname - add a name to the list
b0dd25a8
RD
1853 * @name: name to add
1854 *
1855 * Add a name to the list of audit names for this context.
1856 * Called from fs/namei.c:getname().
1857 */
91a27b2a 1858void __audit_getname(struct filename *name)
1da177e4 1859{
cdfb6b34 1860 struct audit_context *context = audit_context();
5195d8e2 1861 struct audit_names *n;
1da177e4 1862
55422d0b 1863 if (!context->in_syscall)
1da177e4 1864 return;
91a27b2a 1865
78e2e802 1866 n = audit_alloc_name(context, AUDIT_TYPE_UNKNOWN);
5195d8e2
EP
1867 if (!n)
1868 return;
1869
1870 n->name = name;
1871 n->name_len = AUDIT_NAME_FULL;
adb5c247 1872 name->aname = n;
55422d0b 1873 name->refcnt++;
5195d8e2 1874
f7ad3c6b
MS
1875 if (!context->pwd.dentry)
1876 get_fs_pwd(current->fs, &context->pwd);
1da177e4
LT
1877}
1878
5f3d544f
RGB
1879static inline int audit_copy_fcaps(struct audit_names *name,
1880 const struct dentry *dentry)
1881{
1882 struct cpu_vfs_cap_data caps;
1883 int rc;
1884
1885 if (!dentry)
1886 return 0;
1887
1888 rc = get_vfs_caps_from_disk(dentry, &caps);
1889 if (rc)
1890 return rc;
1891
1892 name->fcap.permitted = caps.permitted;
1893 name->fcap.inheritable = caps.inheritable;
1894 name->fcap.fE = !!(caps.magic_etc & VFS_CAP_FLAGS_EFFECTIVE);
1895 name->fcap.rootid = caps.rootid;
1896 name->fcap_ver = (caps.magic_etc & VFS_CAP_REVISION_MASK) >>
1897 VFS_CAP_REVISION_SHIFT;
1898
1899 return 0;
1900}
1901
1902/* Copy inode data into an audit_names. */
2efa48fe
Y
1903static void audit_copy_inode(struct audit_names *name,
1904 const struct dentry *dentry,
1905 struct inode *inode, unsigned int flags)
5f3d544f
RGB
1906{
1907 name->ino = inode->i_ino;
1908 name->dev = inode->i_sb->s_dev;
1909 name->mode = inode->i_mode;
1910 name->uid = inode->i_uid;
1911 name->gid = inode->i_gid;
1912 name->rdev = inode->i_rdev;
1913 security_inode_getsecid(inode, &name->osid);
1914 if (flags & AUDIT_INODE_NOEVAL) {
1915 name->fcap_ver = -1;
1916 return;
1917 }
1918 audit_copy_fcaps(name, dentry);
1919}
1920
b0dd25a8 1921/**
bfcec708 1922 * __audit_inode - store the inode and device from a lookup
b0dd25a8 1923 * @name: name being audited
481968f4 1924 * @dentry: dentry being audited
79f6530c 1925 * @flags: attributes for this particular entry
b0dd25a8 1926 */
adb5c247 1927void __audit_inode(struct filename *name, const struct dentry *dentry,
79f6530c 1928 unsigned int flags)
1da177e4 1929{
cdfb6b34 1930 struct audit_context *context = audit_context();
d6335d77 1931 struct inode *inode = d_backing_inode(dentry);
5195d8e2 1932 struct audit_names *n;
79f6530c 1933 bool parent = flags & AUDIT_INODE_PARENT;
a252f56a
RGB
1934 struct audit_entry *e;
1935 struct list_head *list = &audit_filter_list[AUDIT_FILTER_FS];
1936 int i;
1da177e4
LT
1937
1938 if (!context->in_syscall)
1939 return;
5195d8e2 1940
a252f56a 1941 rcu_read_lock();
699c1868
RGB
1942 list_for_each_entry_rcu(e, list, list) {
1943 for (i = 0; i < e->rule.field_count; i++) {
1944 struct audit_field *f = &e->rule.fields[i];
1945
1946 if (f->type == AUDIT_FSTYPE
1947 && audit_comparator(inode->i_sb->s_magic,
1948 f->op, f->val)
1949 && e->rule.action == AUDIT_NEVER) {
1950 rcu_read_unlock();
1951 return;
a252f56a
RGB
1952 }
1953 }
1954 }
1955 rcu_read_unlock();
1956
9cec9d68
JL
1957 if (!name)
1958 goto out_alloc;
1959
adb5c247
JL
1960 /*
1961 * If we have a pointer to an audit_names entry already, then we can
1962 * just use it directly if the type is correct.
1963 */
1964 n = name->aname;
1965 if (n) {
1966 if (parent) {
1967 if (n->type == AUDIT_TYPE_PARENT ||
1968 n->type == AUDIT_TYPE_UNKNOWN)
1969 goto out;
1970 } else {
1971 if (n->type != AUDIT_TYPE_PARENT)
1972 goto out;
1973 }
1974 }
1975
5195d8e2 1976 list_for_each_entry_reverse(n, &context->names_list, list) {
57c59f58
PM
1977 if (n->ino) {
1978 /* valid inode number, use that for the comparison */
1979 if (n->ino != inode->i_ino ||
1980 n->dev != inode->i_sb->s_dev)
1981 continue;
1982 } else if (n->name) {
1983 /* inode number has not been set, check the name */
1984 if (strcmp(n->name->name, name->name))
1985 continue;
1986 } else
1987 /* no inode and no name (?!) ... this is odd ... */
bfcec708
JL
1988 continue;
1989
1990 /* match the correct record type */
1991 if (parent) {
1992 if (n->type == AUDIT_TYPE_PARENT ||
1993 n->type == AUDIT_TYPE_UNKNOWN)
1994 goto out;
1995 } else {
1996 if (n->type != AUDIT_TYPE_PARENT)
1997 goto out;
1998 }
1da177e4 1999 }
5195d8e2 2000
9cec9d68 2001out_alloc:
4a928436
PM
2002 /* unable to find an entry with both a matching name and type */
2003 n = audit_alloc_name(context, AUDIT_TYPE_UNKNOWN);
5195d8e2
EP
2004 if (!n)
2005 return;
fcf22d82 2006 if (name) {
fd3522fd 2007 n->name = name;
55422d0b 2008 name->refcnt++;
fcf22d82 2009 }
4a928436 2010
5195d8e2 2011out:
bfcec708 2012 if (parent) {
91a27b2a 2013 n->name_len = n->name ? parent_len(n->name->name) : AUDIT_NAME_FULL;
bfcec708 2014 n->type = AUDIT_TYPE_PARENT;
79f6530c
JL
2015 if (flags & AUDIT_INODE_HIDDEN)
2016 n->hidden = true;
bfcec708
JL
2017 } else {
2018 n->name_len = AUDIT_NAME_FULL;
2019 n->type = AUDIT_TYPE_NORMAL;
2020 }
74c3cbe3 2021 handle_path(dentry);
57d46577 2022 audit_copy_inode(n, dentry, inode, flags & AUDIT_INODE_NOEVAL);
73241ccc
AG
2023}
2024
9f45f5bf
AV
2025void __audit_file(const struct file *file)
2026{
2027 __audit_inode(NULL, file->f_path.dentry, 0);
2028}
2029
73241ccc 2030/**
c43a25ab 2031 * __audit_inode_child - collect inode info for created/removed objects
73d3ec5a 2032 * @parent: inode of dentry parent
c43a25ab 2033 * @dentry: dentry being audited
4fa6b5ec 2034 * @type: AUDIT_TYPE_* value that we're looking for
73241ccc
AG
2035 *
2036 * For syscalls that create or remove filesystem objects, audit_inode
2037 * can only collect information for the filesystem object's parent.
2038 * This call updates the audit context with the child's information.
2039 * Syscalls that create a new filesystem object must be hooked after
2040 * the object is created. Syscalls that remove a filesystem object
2041 * must be hooked prior, in order to capture the target inode during
2042 * unsuccessful attempts.
2043 */
d6335d77 2044void __audit_inode_child(struct inode *parent,
4fa6b5ec
JL
2045 const struct dentry *dentry,
2046 const unsigned char type)
73241ccc 2047{
cdfb6b34 2048 struct audit_context *context = audit_context();
d6335d77 2049 struct inode *inode = d_backing_inode(dentry);
795d673a 2050 const struct qstr *dname = &dentry->d_name;
4fa6b5ec 2051 struct audit_names *n, *found_parent = NULL, *found_child = NULL;
42d5e376
RGB
2052 struct audit_entry *e;
2053 struct list_head *list = &audit_filter_list[AUDIT_FILTER_FS];
2054 int i;
73241ccc
AG
2055
2056 if (!context->in_syscall)
2057 return;
2058
42d5e376 2059 rcu_read_lock();
699c1868
RGB
2060 list_for_each_entry_rcu(e, list, list) {
2061 for (i = 0; i < e->rule.field_count; i++) {
2062 struct audit_field *f = &e->rule.fields[i];
2063
2064 if (f->type == AUDIT_FSTYPE
2065 && audit_comparator(parent->i_sb->s_magic,
2066 f->op, f->val)
2067 && e->rule.action == AUDIT_NEVER) {
2068 rcu_read_unlock();
2069 return;
42d5e376
RGB
2070 }
2071 }
2072 }
2073 rcu_read_unlock();
2074
74c3cbe3
AV
2075 if (inode)
2076 handle_one(inode);
73241ccc 2077
4fa6b5ec 2078 /* look for a parent entry first */
5195d8e2 2079 list_for_each_entry(n, &context->names_list, list) {
57c59f58
PM
2080 if (!n->name ||
2081 (n->type != AUDIT_TYPE_PARENT &&
2082 n->type != AUDIT_TYPE_UNKNOWN))
5712e88f
AG
2083 continue;
2084
57c59f58
PM
2085 if (n->ino == parent->i_ino && n->dev == parent->i_sb->s_dev &&
2086 !audit_compare_dname_path(dname,
2087 n->name->name, n->name_len)) {
2088 if (n->type == AUDIT_TYPE_UNKNOWN)
2089 n->type = AUDIT_TYPE_PARENT;
4fa6b5ec
JL
2090 found_parent = n;
2091 break;
f368c07d 2092 }
5712e88f 2093 }
73241ccc 2094
4fa6b5ec 2095 /* is there a matching child entry? */
5195d8e2 2096 list_for_each_entry(n, &context->names_list, list) {
4fa6b5ec 2097 /* can only match entries that have a name */
57c59f58
PM
2098 if (!n->name ||
2099 (n->type != type && n->type != AUDIT_TYPE_UNKNOWN))
5712e88f
AG
2100 continue;
2101
795d673a 2102 if (!strcmp(dname->name, n->name->name) ||
91a27b2a 2103 !audit_compare_dname_path(dname, n->name->name,
4fa6b5ec
JL
2104 found_parent ?
2105 found_parent->name_len :
e3d6b07b 2106 AUDIT_NAME_FULL)) {
57c59f58
PM
2107 if (n->type == AUDIT_TYPE_UNKNOWN)
2108 n->type = type;
4fa6b5ec
JL
2109 found_child = n;
2110 break;
5712e88f 2111 }
ac9910ce 2112 }
5712e88f 2113
5712e88f 2114 if (!found_parent) {
4fa6b5ec
JL
2115 /* create a new, "anonymous" parent record */
2116 n = audit_alloc_name(context, AUDIT_TYPE_PARENT);
5195d8e2 2117 if (!n)
ac9910ce 2118 return;
57d46577 2119 audit_copy_inode(n, NULL, parent, 0);
73d3ec5a 2120 }
5712e88f
AG
2121
2122 if (!found_child) {
4fa6b5ec
JL
2123 found_child = audit_alloc_name(context, type);
2124 if (!found_child)
5712e88f 2125 return;
5712e88f
AG
2126
2127 /* Re-use the name belonging to the slot for a matching parent
2128 * directory. All names for this context are relinquished in
2129 * audit_free_names() */
2130 if (found_parent) {
4fa6b5ec
JL
2131 found_child->name = found_parent->name;
2132 found_child->name_len = AUDIT_NAME_FULL;
55422d0b 2133 found_child->name->refcnt++;
5712e88f 2134 }
5712e88f 2135 }
57c59f58 2136
4fa6b5ec 2137 if (inode)
57d46577 2138 audit_copy_inode(found_child, dentry, inode, 0);
4fa6b5ec 2139 else
84cb777e 2140 found_child->ino = AUDIT_INO_UNSET;
3e2efce0 2141}
50e437d5 2142EXPORT_SYMBOL_GPL(__audit_inode_child);
3e2efce0 2143
b0dd25a8
RD
2144/**
2145 * auditsc_get_stamp - get local copies of audit_context values
2146 * @ctx: audit_context for the task
2115bb25 2147 * @t: timespec64 to store time recorded in the audit_context
b0dd25a8
RD
2148 * @serial: serial value that is recorded in the audit_context
2149 *
2150 * Also sets the context as auditable.
2151 */
48887e63 2152int auditsc_get_stamp(struct audit_context *ctx,
2115bb25 2153 struct timespec64 *t, unsigned int *serial)
1da177e4 2154{
48887e63
AV
2155 if (!ctx->in_syscall)
2156 return 0;
ce625a80
DW
2157 if (!ctx->serial)
2158 ctx->serial = audit_serial();
bfb4496e
DW
2159 t->tv_sec = ctx->ctime.tv_sec;
2160 t->tv_nsec = ctx->ctime.tv_nsec;
2161 *serial = ctx->serial;
0590b933
AV
2162 if (!ctx->prio) {
2163 ctx->prio = 1;
2164 ctx->current_state = AUDIT_RECORD_CONTEXT;
2165 }
48887e63 2166 return 1;
1da177e4
LT
2167}
2168
20ca73bc
GW
2169/**
2170 * __audit_mq_open - record audit data for a POSIX MQ open
2171 * @oflag: open flag
2172 * @mode: mode bits
6b962559 2173 * @attr: queue attributes
20ca73bc 2174 *
20ca73bc 2175 */
df0a4283 2176void __audit_mq_open(int oflag, umode_t mode, struct mq_attr *attr)
20ca73bc 2177{
cdfb6b34 2178 struct audit_context *context = audit_context();
20ca73bc 2179
564f6993
AV
2180 if (attr)
2181 memcpy(&context->mq_open.attr, attr, sizeof(struct mq_attr));
2182 else
2183 memset(&context->mq_open.attr, 0, sizeof(struct mq_attr));
20ca73bc 2184
564f6993
AV
2185 context->mq_open.oflag = oflag;
2186 context->mq_open.mode = mode;
20ca73bc 2187
564f6993 2188 context->type = AUDIT_MQ_OPEN;
20ca73bc
GW
2189}
2190
2191/**
c32c8af4 2192 * __audit_mq_sendrecv - record audit data for a POSIX MQ timed send/receive
20ca73bc
GW
2193 * @mqdes: MQ descriptor
2194 * @msg_len: Message length
2195 * @msg_prio: Message priority
c32c8af4 2196 * @abs_timeout: Message timeout in absolute time
20ca73bc 2197 *
20ca73bc 2198 */
c32c8af4 2199void __audit_mq_sendrecv(mqd_t mqdes, size_t msg_len, unsigned int msg_prio,
b9047726 2200 const struct timespec64 *abs_timeout)
20ca73bc 2201{
cdfb6b34 2202 struct audit_context *context = audit_context();
b9047726 2203 struct timespec64 *p = &context->mq_sendrecv.abs_timeout;
20ca73bc 2204
c32c8af4 2205 if (abs_timeout)
b9047726 2206 memcpy(p, abs_timeout, sizeof(*p));
c32c8af4 2207 else
b9047726 2208 memset(p, 0, sizeof(*p));
20ca73bc 2209
c32c8af4
AV
2210 context->mq_sendrecv.mqdes = mqdes;
2211 context->mq_sendrecv.msg_len = msg_len;
2212 context->mq_sendrecv.msg_prio = msg_prio;
20ca73bc 2213
c32c8af4 2214 context->type = AUDIT_MQ_SENDRECV;
20ca73bc
GW
2215}
2216
2217/**
2218 * __audit_mq_notify - record audit data for a POSIX MQ notify
2219 * @mqdes: MQ descriptor
6b962559 2220 * @notification: Notification event
20ca73bc 2221 *
20ca73bc
GW
2222 */
2223
20114f71 2224void __audit_mq_notify(mqd_t mqdes, const struct sigevent *notification)
20ca73bc 2225{
cdfb6b34 2226 struct audit_context *context = audit_context();
20ca73bc 2227
20114f71
AV
2228 if (notification)
2229 context->mq_notify.sigev_signo = notification->sigev_signo;
2230 else
2231 context->mq_notify.sigev_signo = 0;
20ca73bc 2232
20114f71
AV
2233 context->mq_notify.mqdes = mqdes;
2234 context->type = AUDIT_MQ_NOTIFY;
20ca73bc
GW
2235}
2236
2237/**
2238 * __audit_mq_getsetattr - record audit data for a POSIX MQ get/set attribute
2239 * @mqdes: MQ descriptor
2240 * @mqstat: MQ flags
2241 *
20ca73bc 2242 */
7392906e 2243void __audit_mq_getsetattr(mqd_t mqdes, struct mq_attr *mqstat)
20ca73bc 2244{
cdfb6b34 2245 struct audit_context *context = audit_context();
7392906e
AV
2246 context->mq_getsetattr.mqdes = mqdes;
2247 context->mq_getsetattr.mqstat = *mqstat;
2248 context->type = AUDIT_MQ_GETSETATTR;
20ca73bc
GW
2249}
2250
b0dd25a8 2251/**
196a5085 2252 * __audit_ipc_obj - record audit data for ipc object
073115d6
SG
2253 * @ipcp: ipc permissions
2254 *
073115d6 2255 */
a33e6751 2256void __audit_ipc_obj(struct kern_ipc_perm *ipcp)
073115d6 2257{
cdfb6b34 2258 struct audit_context *context = audit_context();
a33e6751
AV
2259 context->ipc.uid = ipcp->uid;
2260 context->ipc.gid = ipcp->gid;
2261 context->ipc.mode = ipcp->mode;
e816f370 2262 context->ipc.has_perm = 0;
a33e6751
AV
2263 security_ipc_getsecid(ipcp, &context->ipc.osid);
2264 context->type = AUDIT_IPC;
073115d6
SG
2265}
2266
2267/**
196a5085 2268 * __audit_ipc_set_perm - record audit data for new ipc permissions
b0dd25a8
RD
2269 * @qbytes: msgq bytes
2270 * @uid: msgq user id
2271 * @gid: msgq group id
2272 * @mode: msgq mode (permissions)
2273 *
e816f370 2274 * Called only after audit_ipc_obj().
b0dd25a8 2275 */
2570ebbd 2276void __audit_ipc_set_perm(unsigned long qbytes, uid_t uid, gid_t gid, umode_t mode)
1da177e4 2277{
cdfb6b34 2278 struct audit_context *context = audit_context();
1da177e4 2279
e816f370
AV
2280 context->ipc.qbytes = qbytes;
2281 context->ipc.perm_uid = uid;
2282 context->ipc.perm_gid = gid;
2283 context->ipc.perm_mode = mode;
2284 context->ipc.has_perm = 1;
1da177e4 2285}
c2f0c7c3 2286
d9cfea91 2287void __audit_bprm(struct linux_binprm *bprm)
473ae30b 2288{
cdfb6b34 2289 struct audit_context *context = audit_context();
473ae30b 2290
d9cfea91
RGB
2291 context->type = AUDIT_EXECVE;
2292 context->execve.argc = bprm->argc;
473ae30b
AV
2293}
2294
2295
b0dd25a8 2296/**
196a5085 2297 * __audit_socketcall - record audit data for sys_socketcall
2950fa9d 2298 * @nargs: number of args, which should not be more than AUDITSC_ARGS.
b0dd25a8
RD
2299 * @args: args array
2300 *
b0dd25a8 2301 */
2950fa9d 2302int __audit_socketcall(int nargs, unsigned long *args)
3ec3b2fb 2303{
cdfb6b34 2304 struct audit_context *context = audit_context();
3ec3b2fb 2305
2950fa9d
CG
2306 if (nargs <= 0 || nargs > AUDITSC_ARGS || !args)
2307 return -EINVAL;
f3298dc4
AV
2308 context->type = AUDIT_SOCKETCALL;
2309 context->socketcall.nargs = nargs;
2310 memcpy(context->socketcall.args, args, nargs * sizeof(unsigned long));
2950fa9d 2311 return 0;
3ec3b2fb
DW
2312}
2313
db349509
AV
2314/**
2315 * __audit_fd_pair - record audit data for pipe and socketpair
2316 * @fd1: the first file descriptor
2317 * @fd2: the second file descriptor
2318 *
db349509 2319 */
157cf649 2320void __audit_fd_pair(int fd1, int fd2)
db349509 2321{
cdfb6b34 2322 struct audit_context *context = audit_context();
157cf649
AV
2323 context->fds[0] = fd1;
2324 context->fds[1] = fd2;
db349509
AV
2325}
2326
b0dd25a8 2327/**
196a5085 2328 * __audit_sockaddr - record audit data for sys_bind, sys_connect, sys_sendto
b0dd25a8
RD
2329 * @len: data length in user space
2330 * @a: data address in kernel space
2331 *
2332 * Returns 0 for success or NULL context or < 0 on error.
2333 */
07c49417 2334int __audit_sockaddr(int len, void *a)
3ec3b2fb 2335{
cdfb6b34 2336 struct audit_context *context = audit_context();
3ec3b2fb 2337
4f6b434f
AV
2338 if (!context->sockaddr) {
2339 void *p = kmalloc(sizeof(struct sockaddr_storage), GFP_KERNEL);
2340 if (!p)
2341 return -ENOMEM;
2342 context->sockaddr = p;
2343 }
3ec3b2fb 2344
4f6b434f
AV
2345 context->sockaddr_len = len;
2346 memcpy(context->sockaddr, a, len);
3ec3b2fb
DW
2347 return 0;
2348}
2349
a5cb013d
AV
2350void __audit_ptrace(struct task_struct *t)
2351{
cdfb6b34 2352 struct audit_context *context = audit_context();
a5cb013d 2353
fa2bea2f 2354 context->target_pid = task_tgid_nr(t);
c2a7780e 2355 context->target_auid = audit_get_loginuid(t);
c69e8d9c 2356 context->target_uid = task_uid(t);
4746ec5b 2357 context->target_sessionid = audit_get_sessionid(t);
2a862b32 2358 security_task_getsecid(t, &context->target_sid);
c2a7780e 2359 memcpy(context->target_comm, t->comm, TASK_COMM_LEN);
a5cb013d
AV
2360}
2361
b0dd25a8
RD
2362/**
2363 * audit_signal_info - record signal info for shutting down audit subsystem
2364 * @sig: signal value
2365 * @t: task being signaled
2366 *
2367 * If the audit subsystem is being terminated, record the task (pid)
2368 * and uid that is doing that.
2369 */
ab6434a1 2370int audit_signal_info(int sig, struct task_struct *t)
c2f0c7c3 2371{
e54dc243 2372 struct audit_aux_data_pids *axp;
cdfb6b34 2373 struct audit_context *ctx = audit_context();
38f80590 2374 kuid_t uid = current_uid(), auid, t_uid = task_uid(t);
e1396065 2375
ab6434a1
PM
2376 if (auditd_test_task(t) &&
2377 (sig == SIGTERM || sig == SIGHUP ||
2378 sig == SIGUSR1 || sig == SIGUSR2)) {
cdfb6b34 2379 audit_sig_pid = task_tgid_nr(current);
38f80590
RGB
2380 auid = audit_get_loginuid(current);
2381 if (uid_valid(auid))
2382 audit_sig_uid = auid;
ab6434a1
PM
2383 else
2384 audit_sig_uid = uid;
cdfb6b34 2385 security_task_getsecid(current, &audit_sig_sid);
c2f0c7c3 2386 }
e54dc243 2387
ab6434a1
PM
2388 if (!audit_signals || audit_dummy_context())
2389 return 0;
2390
e54dc243
AG
2391 /* optimize the common case by putting first signal recipient directly
2392 * in audit_context */
2393 if (!ctx->target_pid) {
f1dc4867 2394 ctx->target_pid = task_tgid_nr(t);
c2a7780e 2395 ctx->target_auid = audit_get_loginuid(t);
c69e8d9c 2396 ctx->target_uid = t_uid;
4746ec5b 2397 ctx->target_sessionid = audit_get_sessionid(t);
2a862b32 2398 security_task_getsecid(t, &ctx->target_sid);
c2a7780e 2399 memcpy(ctx->target_comm, t->comm, TASK_COMM_LEN);
e54dc243
AG
2400 return 0;
2401 }
2402
2403 axp = (void *)ctx->aux_pids;
2404 if (!axp || axp->pid_count == AUDIT_AUX_PIDS) {
2405 axp = kzalloc(sizeof(*axp), GFP_ATOMIC);
2406 if (!axp)
2407 return -ENOMEM;
2408
2409 axp->d.type = AUDIT_OBJ_PID;
2410 axp->d.next = ctx->aux_pids;
2411 ctx->aux_pids = (void *)axp;
2412 }
88ae704c 2413 BUG_ON(axp->pid_count >= AUDIT_AUX_PIDS);
e54dc243 2414
f1dc4867 2415 axp->target_pid[axp->pid_count] = task_tgid_nr(t);
c2a7780e 2416 axp->target_auid[axp->pid_count] = audit_get_loginuid(t);
c69e8d9c 2417 axp->target_uid[axp->pid_count] = t_uid;
4746ec5b 2418 axp->target_sessionid[axp->pid_count] = audit_get_sessionid(t);
2a862b32 2419 security_task_getsecid(t, &axp->target_sid[axp->pid_count]);
c2a7780e 2420 memcpy(axp->target_comm[axp->pid_count], t->comm, TASK_COMM_LEN);
e54dc243
AG
2421 axp->pid_count++;
2422
2423 return 0;
c2f0c7c3 2424}
0a4ff8c2 2425
3fc689e9
EP
2426/**
2427 * __audit_log_bprm_fcaps - store information about a loading bprm and relevant fcaps
d84f4f99
DH
2428 * @bprm: pointer to the bprm being processed
2429 * @new: the proposed new credentials
2430 * @old: the old credentials
3fc689e9
EP
2431 *
2432 * Simply check if the proc already has the caps given by the file and if not
2433 * store the priv escalation info for later auditing at the end of the syscall
2434 *
3fc689e9
EP
2435 * -Eric
2436 */
d84f4f99
DH
2437int __audit_log_bprm_fcaps(struct linux_binprm *bprm,
2438 const struct cred *new, const struct cred *old)
3fc689e9
EP
2439{
2440 struct audit_aux_data_bprm_fcaps *ax;
cdfb6b34 2441 struct audit_context *context = audit_context();
3fc689e9 2442 struct cpu_vfs_cap_data vcaps;
3fc689e9
EP
2443
2444 ax = kmalloc(sizeof(*ax), GFP_KERNEL);
2445 if (!ax)
d84f4f99 2446 return -ENOMEM;
3fc689e9
EP
2447
2448 ax->d.type = AUDIT_BPRM_FCAPS;
2449 ax->d.next = context->aux;
2450 context->aux = (void *)ax;
2451
f4a4a8b1 2452 get_vfs_caps_from_disk(bprm->file->f_path.dentry, &vcaps);
3fc689e9
EP
2453
2454 ax->fcap.permitted = vcaps.permitted;
2455 ax->fcap.inheritable = vcaps.inheritable;
2456 ax->fcap.fE = !!(vcaps.magic_etc & VFS_CAP_FLAGS_EFFECTIVE);
2fec30e2 2457 ax->fcap.rootid = vcaps.rootid;
3fc689e9
EP
2458 ax->fcap_ver = (vcaps.magic_etc & VFS_CAP_REVISION_MASK) >> VFS_CAP_REVISION_SHIFT;
2459
d84f4f99
DH
2460 ax->old_pcap.permitted = old->cap_permitted;
2461 ax->old_pcap.inheritable = old->cap_inheritable;
2462 ax->old_pcap.effective = old->cap_effective;
7786f6b6 2463 ax->old_pcap.ambient = old->cap_ambient;
3fc689e9 2464
d84f4f99
DH
2465 ax->new_pcap.permitted = new->cap_permitted;
2466 ax->new_pcap.inheritable = new->cap_inheritable;
2467 ax->new_pcap.effective = new->cap_effective;
7786f6b6 2468 ax->new_pcap.ambient = new->cap_ambient;
d84f4f99 2469 return 0;
3fc689e9
EP
2470}
2471
e68b75a0
EP
2472/**
2473 * __audit_log_capset - store information about the arguments to the capset syscall
d84f4f99
DH
2474 * @new: the new credentials
2475 * @old: the old (current) credentials
e68b75a0 2476 *
da3dae54 2477 * Record the arguments userspace sent to sys_capset for later printing by the
e68b75a0
EP
2478 * audit system if applicable
2479 */
ca24a23e 2480void __audit_log_capset(const struct cred *new, const struct cred *old)
e68b75a0 2481{
cdfb6b34 2482 struct audit_context *context = audit_context();
fa2bea2f 2483 context->capset.pid = task_tgid_nr(current);
57f71a0a
AV
2484 context->capset.cap.effective = new->cap_effective;
2485 context->capset.cap.inheritable = new->cap_effective;
2486 context->capset.cap.permitted = new->cap_permitted;
7786f6b6 2487 context->capset.cap.ambient = new->cap_ambient;
57f71a0a 2488 context->type = AUDIT_CAPSET;
e68b75a0
EP
2489}
2490
120a795d
AV
2491void __audit_mmap_fd(int fd, int flags)
2492{
cdfb6b34 2493 struct audit_context *context = audit_context();
120a795d
AV
2494 context->mmap.fd = fd;
2495 context->mmap.flags = flags;
2496 context->type = AUDIT_MMAP;
2497}
2498
ca86cad7
RGB
2499void __audit_log_kern_module(char *name)
2500{
cdfb6b34 2501 struct audit_context *context = audit_context();
ca86cad7 2502
b305f7ed
YW
2503 context->module.name = kstrdup(name, GFP_KERNEL);
2504 if (!context->module.name)
2505 audit_log_lost("out of memory in __audit_log_kern_module");
ca86cad7
RGB
2506 context->type = AUDIT_KERN_MODULE;
2507}
2508
de8cd83e
SG
2509void __audit_fanotify(unsigned int response)
2510{
cdfb6b34 2511 audit_log(audit_context(), GFP_KERNEL,
de8cd83e
SG
2512 AUDIT_FANOTIFY, "resp=%u", response);
2513}
2514
2d87a067
OM
2515void __audit_tk_injoffset(struct timespec64 offset)
2516{
2517 audit_log(audit_context(), GFP_KERNEL, AUDIT_TIME_INJOFFSET,
2518 "sec=%lli nsec=%li",
2519 (long long)offset.tv_sec, offset.tv_nsec);
2520}
2521
7e8eda73
OM
2522static void audit_log_ntp_val(const struct audit_ntp_data *ad,
2523 const char *op, enum audit_ntp_type type)
2524{
2525 const struct audit_ntp_val *val = &ad->vals[type];
2526
2527 if (val->newval == val->oldval)
2528 return;
2529
2530 audit_log(audit_context(), GFP_KERNEL, AUDIT_TIME_ADJNTPVAL,
2531 "op=%s old=%lli new=%lli", op, val->oldval, val->newval);
2532}
2533
2534void __audit_ntp_log(const struct audit_ntp_data *ad)
2535{
2536 audit_log_ntp_val(ad, "offset", AUDIT_NTP_OFFSET);
2537 audit_log_ntp_val(ad, "freq", AUDIT_NTP_FREQ);
2538 audit_log_ntp_val(ad, "status", AUDIT_NTP_STATUS);
2539 audit_log_ntp_val(ad, "tai", AUDIT_NTP_TAI);
2540 audit_log_ntp_val(ad, "tick", AUDIT_NTP_TICK);
2541 audit_log_ntp_val(ad, "adjust", AUDIT_NTP_ADJUST);
2542}
2543
7b9205bd 2544static void audit_log_task(struct audit_buffer *ab)
85e7bac3 2545{
cca080d9
EB
2546 kuid_t auid, uid;
2547 kgid_t gid;
85e7bac3 2548 unsigned int sessionid;
9eab339b 2549 char comm[sizeof(current->comm)];
85e7bac3
EP
2550
2551 auid = audit_get_loginuid(current);
2552 sessionid = audit_get_sessionid(current);
2553 current_uid_gid(&uid, &gid);
2554
2555 audit_log_format(ab, "auid=%u uid=%u gid=%u ses=%u",
cca080d9
EB
2556 from_kuid(&init_user_ns, auid),
2557 from_kuid(&init_user_ns, uid),
2558 from_kgid(&init_user_ns, gid),
2559 sessionid);
85e7bac3 2560 audit_log_task_context(ab);
fa2bea2f 2561 audit_log_format(ab, " pid=%d comm=", task_tgid_nr(current));
9eab339b 2562 audit_log_untrustedstring(ab, get_task_comm(comm, current));
4766b199 2563 audit_log_d_path_exe(ab, current->mm);
7b9205bd
KC
2564}
2565
0a4ff8c2
SG
2566/**
2567 * audit_core_dumps - record information about processes that end abnormally
6d9525b5 2568 * @signr: signal value
0a4ff8c2
SG
2569 *
2570 * If a process ends with a core dump, something fishy is going on and we
2571 * should record the event for investigation.
2572 */
2573void audit_core_dumps(long signr)
2574{
2575 struct audit_buffer *ab;
0a4ff8c2
SG
2576
2577 if (!audit_enabled)
2578 return;
2579
2580 if (signr == SIGQUIT) /* don't care for those */
2581 return;
2582
d87de4a8 2583 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_ANOM_ABEND);
0644ec0c
KC
2584 if (unlikely(!ab))
2585 return;
61c0ee87 2586 audit_log_task(ab);
89670aff 2587 audit_log_format(ab, " sig=%ld res=1", signr);
85e7bac3
EP
2588 audit_log_end(ab);
2589}
0a4ff8c2 2590
326bee02
TH
2591/**
2592 * audit_seccomp - record information about a seccomp action
2593 * @syscall: syscall number
2594 * @signr: signal value
2595 * @code: the seccomp action
2596 *
2597 * Record the information associated with a seccomp action. Event filtering for
2598 * seccomp actions that are not to be logged is done in seccomp_log().
2599 * Therefore, this function forces auditing independent of the audit_enabled
2600 * and dummy context state because seccomp actions should be logged even when
2601 * audit is not in use.
2602 */
2603void audit_seccomp(unsigned long syscall, long signr, int code)
85e7bac3
EP
2604{
2605 struct audit_buffer *ab;
2606
9b8753ff 2607 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_SECCOMP);
7b9205bd
KC
2608 if (unlikely(!ab))
2609 return;
2610 audit_log_task(ab);
84db564a 2611 audit_log_format(ab, " sig=%ld arch=%x syscall=%ld compat=%d ip=0x%lx code=0x%x",
16add411 2612 signr, syscall_get_arch(current), syscall,
efbc0fbf 2613 in_compat_syscall(), KSTK_EIP(current), code);
0a4ff8c2
SG
2614 audit_log_end(ab);
2615}
916d7576 2616
ea6eca77
TH
2617void audit_seccomp_actions_logged(const char *names, const char *old_names,
2618 int res)
2619{
2620 struct audit_buffer *ab;
2621
2622 if (!audit_enabled)
2623 return;
2624
8982a1fb 2625 ab = audit_log_start(audit_context(), GFP_KERNEL,
ea6eca77
TH
2626 AUDIT_CONFIG_CHANGE);
2627 if (unlikely(!ab))
2628 return;
2629
d0a3f18a
PM
2630 audit_log_format(ab,
2631 "op=seccomp-logging actions=%s old-actions=%s res=%d",
2632 names, old_names, res);
ea6eca77
TH
2633 audit_log_end(ab);
2634}
2635
916d7576
AV
2636struct list_head *audit_killed_trees(void)
2637{
cdfb6b34 2638 struct audit_context *ctx = audit_context();
916d7576
AV
2639 if (likely(!ctx || !ctx->in_syscall))
2640 return NULL;
2641 return &ctx->killed_trees;
2642}