1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* audit.c -- Auditing support 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 * 6 * Copyright 2003-2007 Red Hat Inc., Durham, North Carolina. 7 * All Rights Reserved. 8 * 9 * Written by Rickard E. (Rik) Faith <faith@redhat.com> 10 * 11 * Goals: 1) Integrate fully with Security Modules. 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 * 28 * Audit userspace, documentation, tests, and bug/issue trackers: 29 * https://github.com/linux-audit 30 */ 31 32 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 33 34 #include <linux/file.h> 35 #include <linux/hex.h> 36 #include <linux/init.h> 37 #include <linux/types.h> 38 #include <linux/atomic.h> 39 #include <linux/mm.h> 40 #include <linux/export.h> 41 #include <linux/slab.h> 42 #include <linux/err.h> 43 #include <linux/kthread.h> 44 #include <linux/kernel.h> 45 #include <linux/syscalls.h> 46 #include <linux/spinlock.h> 47 #include <linux/rcupdate.h> 48 #include <linux/mutex.h> 49 #include <linux/gfp.h> 50 #include <linux/pid.h> 51 52 #include <linux/audit.h> 53 54 #include <net/sock.h> 55 #include <net/netlink.h> 56 #include <linux/skbuff.h> 57 #include <linux/security.h> 58 #include <linux/lsm_hooks.h> 59 #include <linux/freezer.h> 60 #include <linux/pid_namespace.h> 61 #include <net/netns/generic.h> 62 #include <net/ip.h> 63 #include <net/ipv6.h> 64 #include <linux/sctp.h> 65 66 #include "audit.h" 67 68 /* No auditing will take place until audit_initialized == AUDIT_INITIALIZED. 69 * (Initialization happens after skb_init is called.) */ 70 #define AUDIT_DISABLED -1 71 #define AUDIT_UNINITIALIZED 0 72 #define AUDIT_INITIALIZED 1 73 static int audit_initialized = AUDIT_UNINITIALIZED; 74 75 u32 audit_enabled = AUDIT_OFF; 76 bool audit_ever_enabled = !!AUDIT_OFF; 77 78 EXPORT_SYMBOL_GPL(audit_enabled); 79 80 /* Default state when kernel boots without any parameters. */ 81 static u32 audit_default = AUDIT_OFF; 82 83 /* If auditing cannot proceed, audit_failure selects what happens. */ 84 static u32 audit_failure = AUDIT_FAIL_PRINTK; 85 86 /* private audit network namespace index */ 87 static unsigned int audit_net_id; 88 89 /* Number of modules that provide a security context. 90 List of lsms that provide a security context */ 91 static u32 audit_subj_secctx_cnt; 92 static u32 audit_obj_secctx_cnt; 93 static const struct lsm_id *audit_subj_lsms[MAX_LSM_COUNT]; 94 static const struct lsm_id *audit_obj_lsms[MAX_LSM_COUNT]; 95 96 /** 97 * struct audit_net - audit private network namespace data 98 * @sk: communication socket 99 */ 100 struct audit_net { 101 struct sock *sk; 102 }; 103 104 /** 105 * struct auditd_connection - kernel/auditd connection state 106 * @pid: auditd PID 107 * @portid: netlink portid 108 * @net: the associated network namespace 109 * @rcu: RCU head 110 * 111 * Description: 112 * This struct is RCU protected; you must either hold the RCU lock for reading 113 * or the associated spinlock for writing. 114 */ 115 struct auditd_connection { 116 struct pid *pid; 117 u32 portid; 118 struct net *net; 119 struct rcu_head rcu; 120 }; 121 static struct auditd_connection __rcu *auditd_conn; 122 static DEFINE_SPINLOCK(auditd_conn_lock); 123 124 /* If audit_rate_limit is non-zero, limit the rate of sending audit records 125 * to that number per second. This prevents DoS attacks, but results in 126 * audit records being dropped. */ 127 static u32 audit_rate_limit; 128 129 /* Number of outstanding audit_buffers allowed. 130 * When set to zero, this means unlimited. */ 131 static u32 audit_backlog_limit = 64; 132 #define AUDIT_BACKLOG_WAIT_TIME (60 * HZ) 133 static u32 audit_backlog_wait_time = AUDIT_BACKLOG_WAIT_TIME; 134 135 /* The identity of the user shutting down the audit system. */ 136 static kuid_t audit_sig_uid = INVALID_UID; 137 static pid_t audit_sig_pid = -1; 138 static struct lsm_prop audit_sig_lsm; 139 140 /* Records can be lost in several ways: 141 0) [suppressed in audit_alloc] 142 1) out of memory in audit_log_start [kmalloc of struct audit_buffer] 143 2) out of memory in audit_log_move [alloc_skb] 144 3) suppressed due to audit_rate_limit 145 4) suppressed due to audit_backlog_limit 146 */ 147 static atomic_t audit_lost = ATOMIC_INIT(0); 148 149 /* Monotonically increasing sum of time the kernel has spent 150 * waiting while the backlog limit is exceeded. 151 */ 152 static atomic_t audit_backlog_wait_time_actual = ATOMIC_INIT(0); 153 154 /* Hash for inode-based rules */ 155 struct list_head audit_inode_hash[AUDIT_INODE_BUCKETS]; 156 157 static struct kmem_cache *audit_buffer_cache; 158 159 /* queue msgs to send via kauditd_task */ 160 static struct sk_buff_head audit_queue; 161 /* queue msgs due to temporary unicast send problems */ 162 static struct sk_buff_head audit_retry_queue; 163 /* queue msgs waiting for new auditd connection */ 164 static struct sk_buff_head audit_hold_queue; 165 166 /* queue servicing thread */ 167 static struct task_struct *kauditd_task; 168 static DECLARE_WAIT_QUEUE_HEAD(kauditd_wait); 169 170 /* waitqueue for callers who are blocked on the audit backlog */ 171 static DECLARE_WAIT_QUEUE_HEAD(audit_backlog_wait); 172 173 static struct audit_features af = {.vers = AUDIT_FEATURE_VERSION, 174 .mask = -1, 175 .features = 0, 176 .lock = 0,}; 177 178 static char *audit_feature_names[2] = { 179 "only_unset_loginuid", 180 "loginuid_immutable", 181 }; 182 183 /** 184 * struct audit_ctl_mutex - serialize requests from userspace 185 * @lock: the mutex used for locking 186 * @owner: the task which owns the lock 187 * 188 * Description: 189 * This is the lock struct used to ensure we only process userspace requests 190 * in an orderly fashion. We can't simply use a mutex/lock here because we 191 * need to track lock ownership so we don't end up blocking the lock owner in 192 * audit_log_start() or similar. 193 */ 194 static struct audit_ctl_mutex { 195 struct mutex lock; 196 void *owner; 197 } audit_cmd_mutex; 198 199 /* AUDIT_BUFSIZ is the size of the temporary buffer used for formatting 200 * audit records. Since printk uses a 1024 byte buffer, this buffer 201 * should be at least that large. */ 202 #define AUDIT_BUFSIZ 1024 203 204 /* The audit_buffer is used when formatting an audit record. The caller 205 * locks briefly to get the record off the freelist or to allocate the 206 * buffer, and locks briefly to send the buffer to the netlink layer or 207 * to place it on a transmit queue. Multiple audit_buffers can be in 208 * use simultaneously. */ 209 struct audit_buffer { 210 struct sk_buff *skb; /* the skb for audit_log functions */ 211 struct sk_buff_head skb_list; /* formatted skbs, ready to send */ 212 struct audit_context *ctx; /* NULL or associated context */ 213 struct audit_stamp stamp; /* audit stamp for these records */ 214 gfp_t gfp_mask; 215 }; 216 217 struct audit_reply { 218 __u32 portid; 219 struct net *net; 220 struct sk_buff *skb; 221 }; 222 223 /** 224 * auditd_test_task - Check to see if a given task is an audit daemon 225 * @task: the task to check 226 * 227 * Description: 228 * Return 1 if the task is a registered audit daemon, 0 otherwise. 229 */ 230 int auditd_test_task(struct task_struct *task) 231 { 232 int rc; 233 struct auditd_connection *ac; 234 235 rcu_read_lock(); 236 ac = rcu_dereference(auditd_conn); 237 rc = (ac && ac->pid == task_tgid(task) ? 1 : 0); 238 rcu_read_unlock(); 239 240 return rc; 241 } 242 243 /** 244 * audit_ctl_lock - Take the audit control lock 245 */ 246 void audit_ctl_lock(void) 247 { 248 mutex_lock(&audit_cmd_mutex.lock); 249 audit_cmd_mutex.owner = current; 250 } 251 252 /** 253 * audit_ctl_unlock - Drop the audit control lock 254 */ 255 void audit_ctl_unlock(void) 256 { 257 audit_cmd_mutex.owner = NULL; 258 mutex_unlock(&audit_cmd_mutex.lock); 259 } 260 261 /** 262 * audit_ctl_owner_current - Test to see if the current task owns the lock 263 * 264 * Description: 265 * Return true if the current task owns the audit control lock, false if it 266 * doesn't own the lock. 267 */ 268 static bool audit_ctl_owner_current(void) 269 { 270 return (current == audit_cmd_mutex.owner); 271 } 272 273 /** 274 * auditd_pid_vnr - Return the auditd PID relative to the namespace 275 * 276 * Description: 277 * Returns the PID in relation to the namespace, 0 on failure. 278 */ 279 static pid_t auditd_pid_vnr(void) 280 { 281 pid_t pid; 282 const struct auditd_connection *ac; 283 284 rcu_read_lock(); 285 ac = rcu_dereference(auditd_conn); 286 if (!ac || !ac->pid) 287 pid = 0; 288 else 289 pid = pid_vnr(ac->pid); 290 rcu_read_unlock(); 291 292 return pid; 293 } 294 295 /** 296 * audit_cfg_lsm - Identify a security module as providing a secctx. 297 * @lsmid: LSM identity 298 * @flags: which contexts are provided 299 * 300 * Description: 301 * Increments the count of the security modules providing a secctx. 302 * If the LSM id is already in the list leave it alone. 303 */ 304 void audit_cfg_lsm(const struct lsm_id *lsmid, int flags) 305 { 306 int i; 307 308 if (flags & AUDIT_CFG_LSM_SECCTX_SUBJECT) { 309 for (i = 0 ; i < audit_subj_secctx_cnt; i++) 310 if (audit_subj_lsms[i] == lsmid) 311 return; 312 audit_subj_lsms[audit_subj_secctx_cnt++] = lsmid; 313 } 314 if (flags & AUDIT_CFG_LSM_SECCTX_OBJECT) { 315 for (i = 0 ; i < audit_obj_secctx_cnt; i++) 316 if (audit_obj_lsms[i] == lsmid) 317 return; 318 audit_obj_lsms[audit_obj_secctx_cnt++] = lsmid; 319 } 320 } 321 322 /** 323 * audit_get_sk - Return the audit socket for the given network namespace 324 * @net: the destination network namespace 325 * 326 * Description: 327 * Returns the sock pointer if valid, NULL otherwise. The caller must ensure 328 * that a reference is held for the network namespace while the sock is in use. 329 */ 330 static struct sock *audit_get_sk(const struct net *net) 331 { 332 struct audit_net *aunet; 333 334 if (!net) 335 return NULL; 336 337 aunet = net_generic(net, audit_net_id); 338 return aunet->sk; 339 } 340 341 void audit_panic(const char *message) 342 { 343 switch (audit_failure) { 344 case AUDIT_FAIL_SILENT: 345 break; 346 case AUDIT_FAIL_PRINTK: 347 if (printk_ratelimit()) 348 pr_err("%s\n", message); 349 break; 350 case AUDIT_FAIL_PANIC: 351 panic("audit: %s\n", message); 352 break; 353 } 354 } 355 356 static inline int audit_rate_check(void) 357 { 358 static unsigned long last_check; 359 static int messages; 360 static DEFINE_SPINLOCK(lock); 361 unsigned long flags; 362 unsigned long now; 363 int retval = 0; 364 365 if (!audit_rate_limit) 366 return 1; 367 368 spin_lock_irqsave(&lock, flags); 369 if (++messages < audit_rate_limit) { 370 retval = 1; 371 } else { 372 now = jiffies; 373 if (time_after(now, last_check + HZ)) { 374 last_check = now; 375 messages = 0; 376 retval = 1; 377 } 378 } 379 spin_unlock_irqrestore(&lock, flags); 380 381 return retval; 382 } 383 384 /** 385 * audit_log_lost - conditionally log lost audit message event 386 * @message: the message stating reason for lost audit message 387 * 388 * Emit at least 1 message per second, even if audit_rate_check is 389 * throttling. 390 * Always increment the lost messages counter. 391 */ 392 void audit_log_lost(const char *message) 393 { 394 static unsigned long last_msg; 395 static DEFINE_SPINLOCK(lock); 396 unsigned long flags; 397 unsigned long now; 398 int print; 399 400 atomic_inc(&audit_lost); 401 402 print = (audit_failure == AUDIT_FAIL_PANIC || !audit_rate_limit); 403 404 if (!print) { 405 spin_lock_irqsave(&lock, flags); 406 now = jiffies; 407 if (time_after(now, last_msg + HZ)) { 408 print = 1; 409 last_msg = now; 410 } 411 spin_unlock_irqrestore(&lock, flags); 412 } 413 414 if (print) { 415 if (printk_ratelimit()) 416 pr_warn("audit_lost=%u audit_rate_limit=%u audit_backlog_limit=%u\n", 417 atomic_read(&audit_lost), 418 audit_rate_limit, 419 audit_backlog_limit); 420 audit_panic(message); 421 } 422 } 423 424 static int audit_log_config_change(char *function_name, u32 new, u32 old, 425 int allow_changes) 426 { 427 struct audit_buffer *ab; 428 int rc = 0; 429 430 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_CONFIG_CHANGE); 431 if (unlikely(!ab)) 432 return rc; 433 audit_log_format(ab, "op=set %s=%u old=%u ", function_name, new, old); 434 audit_log_session_info(ab); 435 rc = audit_log_task_context(ab); 436 if (rc) 437 allow_changes = 0; /* Something weird, deny request */ 438 audit_log_format(ab, " res=%d", allow_changes); 439 audit_log_end(ab); 440 return rc; 441 } 442 443 static int audit_do_config_change(char *function_name, u32 *to_change, u32 new) 444 { 445 int allow_changes, rc = 0; 446 u32 old = *to_change; 447 448 /* check if we are locked */ 449 if (audit_enabled == AUDIT_LOCKED) 450 allow_changes = 0; 451 else 452 allow_changes = 1; 453 454 if (audit_enabled != AUDIT_OFF) { 455 rc = audit_log_config_change(function_name, new, old, allow_changes); 456 if (rc) 457 allow_changes = 0; 458 } 459 460 /* If we are allowed, make the change */ 461 if (allow_changes == 1) 462 *to_change = new; 463 /* Not allowed, update reason */ 464 else if (rc == 0) 465 rc = -EPERM; 466 return rc; 467 } 468 469 static int audit_set_rate_limit(u32 limit) 470 { 471 return audit_do_config_change("audit_rate_limit", &audit_rate_limit, limit); 472 } 473 474 static int audit_set_backlog_limit(u32 limit) 475 { 476 return audit_do_config_change("audit_backlog_limit", &audit_backlog_limit, limit); 477 } 478 479 static int audit_set_backlog_wait_time(u32 timeout) 480 { 481 return audit_do_config_change("audit_backlog_wait_time", 482 &audit_backlog_wait_time, timeout); 483 } 484 485 static int audit_set_enabled(u32 state) 486 { 487 int rc; 488 if (state > AUDIT_LOCKED) 489 return -EINVAL; 490 491 rc = audit_do_config_change("audit_enabled", &audit_enabled, state); 492 if (!rc) 493 audit_ever_enabled |= !!state; 494 495 return rc; 496 } 497 498 static int audit_set_failure(u32 state) 499 { 500 if (state != AUDIT_FAIL_SILENT 501 && state != AUDIT_FAIL_PRINTK 502 && state != AUDIT_FAIL_PANIC) 503 return -EINVAL; 504 505 return audit_do_config_change("audit_failure", &audit_failure, state); 506 } 507 508 /** 509 * auditd_conn_free - RCU helper to release an auditd connection struct 510 * @rcu: RCU head 511 * 512 * Description: 513 * Drop any references inside the auditd connection tracking struct and free 514 * the memory. 515 */ 516 static void auditd_conn_free(struct rcu_head *rcu) 517 { 518 struct auditd_connection *ac; 519 520 ac = container_of(rcu, struct auditd_connection, rcu); 521 put_pid(ac->pid); 522 put_net(ac->net); 523 kfree(ac); 524 } 525 526 /** 527 * auditd_set - Set/Reset the auditd connection state 528 * @pid: auditd PID 529 * @portid: auditd netlink portid 530 * @net: auditd network namespace pointer 531 * @skb: the netlink command from the audit daemon 532 * @ack: netlink ack flag, cleared if ack'd here 533 * 534 * Description: 535 * This function will obtain and drop network namespace references as 536 * necessary. Returns zero on success, negative values on failure. 537 */ 538 static int auditd_set(struct pid *pid, u32 portid, struct net *net, 539 struct sk_buff *skb, bool *ack) 540 { 541 unsigned long flags; 542 struct auditd_connection *ac_old, *ac_new; 543 struct nlmsghdr *nlh; 544 545 if (!pid || !net) 546 return -EINVAL; 547 548 ac_new = kzalloc_obj(*ac_new); 549 if (!ac_new) 550 return -ENOMEM; 551 ac_new->pid = get_pid(pid); 552 ac_new->portid = portid; 553 ac_new->net = get_net(net); 554 555 /* send the ack now to avoid a race with the queue backlog */ 556 if (*ack) { 557 nlh = nlmsg_hdr(skb); 558 netlink_ack(skb, nlh, 0, NULL); 559 *ack = false; 560 } 561 562 spin_lock_irqsave(&auditd_conn_lock, flags); 563 ac_old = rcu_dereference_protected(auditd_conn, 564 lockdep_is_held(&auditd_conn_lock)); 565 rcu_assign_pointer(auditd_conn, ac_new); 566 spin_unlock_irqrestore(&auditd_conn_lock, flags); 567 568 if (ac_old) 569 call_rcu(&ac_old->rcu, auditd_conn_free); 570 571 return 0; 572 } 573 574 /** 575 * kauditd_printk_skb - Print the audit record to the ring buffer 576 * @skb: audit record 577 * 578 * Whatever the reason, this packet may not make it to the auditd connection 579 * so write it via printk so the information isn't completely lost. 580 */ 581 static void kauditd_printk_skb(struct sk_buff *skb) 582 { 583 struct nlmsghdr *nlh = nlmsg_hdr(skb); 584 char *data = nlmsg_data(nlh); 585 586 if (nlh->nlmsg_type != AUDIT_EOE && printk_ratelimit()) 587 pr_notice("type=%d %s\n", nlh->nlmsg_type, data); 588 } 589 590 /** 591 * kauditd_rehold_skb - Handle a audit record send failure in the hold queue 592 * @skb: audit record 593 * @error: error code (unused) 594 * 595 * Description: 596 * This should only be used by the kauditd_thread when it fails to flush the 597 * hold queue. 598 */ 599 static void kauditd_rehold_skb(struct sk_buff *skb, __always_unused int error) 600 { 601 /* put the record back in the queue */ 602 skb_queue_tail(&audit_hold_queue, skb); 603 } 604 605 /** 606 * kauditd_hold_skb - Queue an audit record, waiting for auditd 607 * @skb: audit record 608 * @error: error code 609 * 610 * Description: 611 * Queue the audit record, waiting for an instance of auditd. When this 612 * function is called we haven't given up yet on sending the record, but things 613 * are not looking good. The first thing we want to do is try to write the 614 * record via printk and then see if we want to try and hold on to the record 615 * and queue it, if we have room. If we want to hold on to the record, but we 616 * don't have room, record a record lost message. 617 */ 618 static void kauditd_hold_skb(struct sk_buff *skb, int error) 619 { 620 /* at this point it is uncertain if we will ever send this to auditd so 621 * try to send the message via printk before we go any further */ 622 kauditd_printk_skb(skb); 623 624 /* can we just silently drop the message? */ 625 if (!audit_default) 626 goto drop; 627 628 /* the hold queue is only for when the daemon goes away completely, 629 * not -EAGAIN failures; if we are in a -EAGAIN state requeue the 630 * record on the retry queue unless it's full, in which case drop it 631 */ 632 if (error == -EAGAIN) { 633 if (!audit_backlog_limit || 634 skb_queue_len(&audit_retry_queue) < audit_backlog_limit) { 635 skb_queue_tail(&audit_retry_queue, skb); 636 return; 637 } 638 audit_log_lost("kauditd retry queue overflow"); 639 goto drop; 640 } 641 642 /* if we have room in the hold queue, queue the message */ 643 if (!audit_backlog_limit || 644 skb_queue_len(&audit_hold_queue) < audit_backlog_limit) { 645 skb_queue_tail(&audit_hold_queue, skb); 646 return; 647 } 648 649 /* we have no other options - drop the message */ 650 audit_log_lost("kauditd hold queue overflow"); 651 drop: 652 kfree_skb(skb); 653 } 654 655 /** 656 * kauditd_retry_skb - Queue an audit record, attempt to send again to auditd 657 * @skb: audit record 658 * @error: error code (unused) 659 * 660 * Description: 661 * Not as serious as kauditd_hold_skb() as we still have a connected auditd, 662 * but for some reason we are having problems sending it audit records so 663 * queue the given record and attempt to resend. 664 */ 665 static void kauditd_retry_skb(struct sk_buff *skb, __always_unused int error) 666 { 667 if (!audit_backlog_limit || 668 skb_queue_len(&audit_retry_queue) < audit_backlog_limit) { 669 skb_queue_tail(&audit_retry_queue, skb); 670 return; 671 } 672 673 /* we have to drop the record, send it via printk as a last effort */ 674 kauditd_printk_skb(skb); 675 audit_log_lost("kauditd retry queue overflow"); 676 kfree_skb(skb); 677 } 678 679 /** 680 * auditd_reset - Disconnect the auditd connection 681 * @ac: auditd connection state 682 * 683 * Description: 684 * Break the auditd/kauditd connection and move all the queued records into the 685 * hold queue in case auditd reconnects. It is important to note that the @ac 686 * pointer should never be dereferenced inside this function as it may be NULL 687 * or invalid, you can only compare the memory address! If @ac is NULL then 688 * the connection will always be reset. 689 */ 690 static void auditd_reset(const struct auditd_connection *ac) 691 { 692 unsigned long flags; 693 struct sk_buff *skb; 694 struct auditd_connection *ac_old; 695 696 /* if it isn't already broken, break the connection */ 697 spin_lock_irqsave(&auditd_conn_lock, flags); 698 ac_old = rcu_dereference_protected(auditd_conn, 699 lockdep_is_held(&auditd_conn_lock)); 700 if (ac && ac != ac_old) { 701 /* someone already registered a new auditd connection */ 702 spin_unlock_irqrestore(&auditd_conn_lock, flags); 703 return; 704 } 705 rcu_assign_pointer(auditd_conn, NULL); 706 spin_unlock_irqrestore(&auditd_conn_lock, flags); 707 708 if (ac_old) 709 call_rcu(&ac_old->rcu, auditd_conn_free); 710 711 /* flush the retry queue to the hold queue, but don't touch the main 712 * queue since we need to process that normally for multicast */ 713 while ((skb = skb_dequeue(&audit_retry_queue))) 714 kauditd_hold_skb(skb, -ECONNREFUSED); 715 } 716 717 /** 718 * auditd_send_unicast_skb - Send a record via unicast to auditd 719 * @skb: audit record 720 * 721 * Description: 722 * Send a skb to the audit daemon, returns positive/zero values on success and 723 * negative values on failure; in all cases the skb will be consumed by this 724 * function. If the send results in -ECONNREFUSED the connection with auditd 725 * will be reset. This function may sleep so callers should not hold any locks 726 * where this would cause a problem. 727 */ 728 static int auditd_send_unicast_skb(struct sk_buff *skb) 729 { 730 int rc; 731 u32 portid; 732 struct net *net; 733 struct sock *sk; 734 struct auditd_connection *ac; 735 736 /* NOTE: we can't call netlink_unicast while in the RCU section so 737 * take a reference to the network namespace and grab local 738 * copies of the namespace, the sock, and the portid; the 739 * namespace and sock aren't going to go away while we hold a 740 * reference and if the portid does become invalid after the RCU 741 * section netlink_unicast() should safely return an error */ 742 743 rcu_read_lock(); 744 ac = rcu_dereference(auditd_conn); 745 if (!ac) { 746 rcu_read_unlock(); 747 kfree_skb(skb); 748 rc = -ECONNREFUSED; 749 goto err; 750 } 751 net = get_net(ac->net); 752 sk = audit_get_sk(net); 753 portid = ac->portid; 754 rcu_read_unlock(); 755 756 rc = netlink_unicast(sk, skb, portid, 0); 757 put_net(net); 758 if (rc < 0) 759 goto err; 760 761 return rc; 762 763 err: 764 if (ac && rc == -ECONNREFUSED) 765 auditd_reset(ac); 766 return rc; 767 } 768 769 /** 770 * kauditd_send_queue - Helper for kauditd_thread to flush skb queues 771 * @sk: the sending sock 772 * @portid: the netlink destination 773 * @queue: the skb queue to process 774 * @retry_limit: limit on number of netlink unicast failures 775 * @skb_hook: per-skb hook for additional processing 776 * @err_hook: hook called if the skb fails the netlink unicast send 777 * 778 * Description: 779 * Run through the given queue and attempt to send the audit records to auditd, 780 * returns zero on success, negative values on failure. It is up to the caller 781 * to ensure that the @sk is valid for the duration of this function. 782 * 783 */ 784 static int kauditd_send_queue(struct sock *sk, u32 portid, 785 struct sk_buff_head *queue, 786 unsigned int retry_limit, 787 void (*skb_hook)(struct sk_buff *skb), 788 void (*err_hook)(struct sk_buff *skb, int error)) 789 { 790 int rc = 0; 791 struct sk_buff *skb = NULL; 792 struct sk_buff *skb_tail; 793 unsigned int failed = 0; 794 795 /* NOTE: kauditd_thread takes care of all our locking, we just use 796 * the netlink info passed to us (e.g. sk and portid) */ 797 798 skb_tail = skb_peek_tail(queue); 799 while ((skb != skb_tail) && (skb = skb_dequeue(queue))) { 800 /* call the skb_hook for each skb we touch */ 801 if (skb_hook) 802 (*skb_hook)(skb); 803 804 /* can we send to anyone via unicast? */ 805 if (!sk) { 806 if (err_hook) 807 (*err_hook)(skb, -ECONNREFUSED); 808 continue; 809 } 810 811 retry: 812 /* grab an extra skb reference in case of error */ 813 skb_get(skb); 814 rc = netlink_unicast(sk, skb, portid, 0); 815 if (rc < 0) { 816 /* send failed - try a few times unless fatal error */ 817 if (++failed >= retry_limit || 818 rc == -ECONNREFUSED || rc == -EPERM) { 819 sk = NULL; 820 if (err_hook) 821 (*err_hook)(skb, rc); 822 if (rc == -EAGAIN) 823 rc = 0; 824 /* continue to drain the queue */ 825 continue; 826 } else 827 goto retry; 828 } else { 829 /* skb sent - drop the extra reference and continue */ 830 consume_skb(skb); 831 failed = 0; 832 } 833 } 834 835 return (rc >= 0 ? 0 : rc); 836 } 837 838 /* 839 * kauditd_send_multicast_skb - Send a record to any multicast listeners 840 * @skb: audit record 841 * 842 * Description: 843 * Write a multicast message to anyone listening in the initial network 844 * namespace. This function doesn't consume an skb as might be expected since 845 * it has to copy it anyways. 846 */ 847 static void kauditd_send_multicast_skb(struct sk_buff *skb) 848 { 849 struct sk_buff *copy; 850 struct sock *sock = audit_get_sk(&init_net); 851 struct nlmsghdr *nlh; 852 853 /* NOTE: we are not taking an additional reference for init_net since 854 * we don't have to worry about it going away */ 855 856 if (!netlink_has_listeners(sock, AUDIT_NLGRP_READLOG)) 857 return; 858 859 /* 860 * The seemingly wasteful skb_copy() rather than bumping the refcount 861 * using skb_get() is necessary because non-standard mods are made to 862 * the skb by the original kaudit unicast socket send routine. The 863 * existing auditd daemon assumes this breakage. Fixing this would 864 * require co-ordinating a change in the established protocol between 865 * the kaudit kernel subsystem and the auditd userspace code. There is 866 * no reason for new multicast clients to continue with this 867 * non-compliance. 868 */ 869 copy = skb_copy(skb, GFP_KERNEL); 870 if (!copy) 871 return; 872 nlh = nlmsg_hdr(copy); 873 nlh->nlmsg_len = skb->len; 874 875 nlmsg_multicast(sock, copy, 0, AUDIT_NLGRP_READLOG, GFP_KERNEL); 876 } 877 878 /** 879 * kauditd_thread - Worker thread to send audit records to userspace 880 * @dummy: unused 881 */ 882 static int kauditd_thread(void *dummy) 883 { 884 int rc; 885 u32 portid = 0; 886 struct net *net = NULL; 887 struct sock *sk = NULL; 888 struct auditd_connection *ac; 889 890 #define UNICAST_RETRIES 5 891 892 set_freezable(); 893 while (!kthread_should_stop()) { 894 /* NOTE: see the lock comments in auditd_send_unicast_skb() */ 895 rcu_read_lock(); 896 ac = rcu_dereference(auditd_conn); 897 if (!ac) { 898 rcu_read_unlock(); 899 goto main_queue; 900 } 901 net = get_net(ac->net); 902 sk = audit_get_sk(net); 903 portid = ac->portid; 904 rcu_read_unlock(); 905 906 /* attempt to flush the hold queue */ 907 rc = kauditd_send_queue(sk, portid, 908 &audit_hold_queue, UNICAST_RETRIES, 909 NULL, kauditd_rehold_skb); 910 if (rc < 0) { 911 sk = NULL; 912 auditd_reset(ac); 913 goto main_queue; 914 } 915 916 /* attempt to flush the retry queue */ 917 rc = kauditd_send_queue(sk, portid, 918 &audit_retry_queue, UNICAST_RETRIES, 919 NULL, kauditd_hold_skb); 920 if (rc < 0) { 921 sk = NULL; 922 auditd_reset(ac); 923 goto main_queue; 924 } 925 926 main_queue: 927 /* process the main queue - do the multicast send and attempt 928 * unicast, dump failed record sends to the retry queue; if 929 * sk == NULL due to previous failures we will just do the 930 * multicast send and move the record to the hold queue */ 931 rc = kauditd_send_queue(sk, portid, &audit_queue, 1, 932 kauditd_send_multicast_skb, 933 (sk ? 934 kauditd_retry_skb : kauditd_hold_skb)); 935 if (ac && rc < 0) 936 auditd_reset(ac); 937 sk = NULL; 938 939 /* drop our netns reference, no auditd sends past this line */ 940 if (net) { 941 put_net(net); 942 net = NULL; 943 } 944 945 /* we have processed all the queues so wake everyone */ 946 wake_up(&audit_backlog_wait); 947 948 /* NOTE: we want to wake up if there is anything on the queue, 949 * regardless of if an auditd is connected, as we need to 950 * do the multicast send and rotate records from the 951 * main queue to the retry/hold queues */ 952 wait_event_freezable(kauditd_wait, 953 (skb_queue_len(&audit_queue) ? 1 : 0)); 954 } 955 956 return 0; 957 } 958 959 int audit_send_list_thread(void *_dest) 960 { 961 struct audit_netlink_list *dest = _dest; 962 struct sk_buff *skb; 963 struct sock *sk = audit_get_sk(dest->net); 964 965 /* wait for parent to finish and send an ACK */ 966 audit_ctl_lock(); 967 audit_ctl_unlock(); 968 969 while ((skb = __skb_dequeue(&dest->q)) != NULL) 970 netlink_unicast(sk, skb, dest->portid, 0); 971 972 put_net(dest->net); 973 kfree(dest); 974 975 return 0; 976 } 977 978 struct sk_buff *audit_make_reply(int seq, int type, int done, 979 int multi, const void *payload, int size) 980 { 981 struct sk_buff *skb; 982 struct nlmsghdr *nlh; 983 void *data; 984 int flags = multi ? NLM_F_MULTI : 0; 985 int t = done ? NLMSG_DONE : type; 986 987 skb = nlmsg_new(size, GFP_KERNEL); 988 if (!skb) 989 return NULL; 990 991 nlh = nlmsg_put(skb, 0, seq, t, size, flags); 992 if (!nlh) 993 goto out_kfree_skb; 994 data = nlmsg_data(nlh); 995 memcpy(data, payload, size); 996 return skb; 997 998 out_kfree_skb: 999 kfree_skb(skb); 1000 return NULL; 1001 } 1002 1003 static void audit_free_reply(struct audit_reply *reply) 1004 { 1005 if (!reply) 1006 return; 1007 1008 kfree_skb(reply->skb); 1009 if (reply->net) 1010 put_net(reply->net); 1011 kfree(reply); 1012 } 1013 1014 static int audit_send_reply_thread(void *arg) 1015 { 1016 struct audit_reply *reply = (struct audit_reply *)arg; 1017 1018 audit_ctl_lock(); 1019 audit_ctl_unlock(); 1020 1021 /* Ignore failure. It'll only happen if the sender goes away, 1022 because our timeout is set to infinite. */ 1023 netlink_unicast(audit_get_sk(reply->net), reply->skb, reply->portid, 0); 1024 reply->skb = NULL; 1025 audit_free_reply(reply); 1026 return 0; 1027 } 1028 1029 /** 1030 * audit_send_reply - send an audit reply message via netlink 1031 * @request_skb: skb of request we are replying to (used to target the reply) 1032 * @seq: sequence number 1033 * @type: audit message type 1034 * @done: done (last) flag 1035 * @multi: multi-part message flag 1036 * @payload: payload data 1037 * @size: payload size 1038 * 1039 * Allocates a skb, builds the netlink message, and sends it to the port id. 1040 */ 1041 static void audit_send_reply(struct sk_buff *request_skb, int seq, int type, int done, 1042 int multi, const void *payload, int size) 1043 { 1044 struct task_struct *tsk; 1045 struct audit_reply *reply; 1046 1047 reply = kzalloc_obj(*reply); 1048 if (!reply) 1049 return; 1050 1051 reply->skb = audit_make_reply(seq, type, done, multi, payload, size); 1052 if (!reply->skb) 1053 goto err; 1054 reply->net = get_net(sock_net(NETLINK_CB(request_skb).sk)); 1055 reply->portid = NETLINK_CB(request_skb).portid; 1056 1057 tsk = kthread_run(audit_send_reply_thread, reply, "audit_send_reply"); 1058 if (IS_ERR(tsk)) 1059 goto err; 1060 1061 return; 1062 1063 err: 1064 audit_free_reply(reply); 1065 } 1066 1067 /* 1068 * Check for appropriate CAP_AUDIT_ capabilities on incoming audit 1069 * control messages. 1070 */ 1071 static int audit_netlink_ok(struct sk_buff *skb, u16 msg_type) 1072 { 1073 int err = 0; 1074 1075 /* Only support initial user namespace for now. */ 1076 /* 1077 * We return ECONNREFUSED because it tricks userspace into thinking 1078 * that audit was not configured into the kernel. Lots of users 1079 * configure their PAM stack (because that's what the distro does) 1080 * to reject login if unable to send messages to audit. If we return 1081 * ECONNREFUSED the PAM stack thinks the kernel does not have audit 1082 * configured in and will let login proceed. If we return EPERM 1083 * userspace will reject all logins. This should be removed when we 1084 * support non init namespaces!! 1085 */ 1086 if (current_user_ns() != &init_user_ns) 1087 return -ECONNREFUSED; 1088 1089 switch (msg_type) { 1090 case AUDIT_LIST: 1091 case AUDIT_ADD: 1092 case AUDIT_DEL: 1093 return -EOPNOTSUPP; 1094 case AUDIT_GET: 1095 case AUDIT_SET: 1096 case AUDIT_GET_FEATURE: 1097 case AUDIT_SET_FEATURE: 1098 case AUDIT_LIST_RULES: 1099 case AUDIT_ADD_RULE: 1100 case AUDIT_DEL_RULE: 1101 case AUDIT_SIGNAL_INFO: 1102 case AUDIT_TTY_GET: 1103 case AUDIT_TTY_SET: 1104 case AUDIT_TRIM: 1105 case AUDIT_MAKE_EQUIV: 1106 /* Only support auditd and auditctl in initial pid namespace 1107 * for now. */ 1108 if (task_active_pid_ns(current) != &init_pid_ns) 1109 return -EPERM; 1110 1111 if (!netlink_capable(skb, CAP_AUDIT_CONTROL)) 1112 err = -EPERM; 1113 break; 1114 case AUDIT_USER: 1115 case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG: 1116 case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2: 1117 if (!netlink_capable(skb, CAP_AUDIT_WRITE)) 1118 err = -EPERM; 1119 break; 1120 default: /* bad msg */ 1121 err = -EINVAL; 1122 } 1123 1124 return err; 1125 } 1126 1127 static void audit_log_common_recv_msg(struct audit_context *context, 1128 struct audit_buffer **ab, u16 msg_type) 1129 { 1130 uid_t uid = from_kuid(&init_user_ns, current_uid()); 1131 pid_t pid = task_tgid_nr(current); 1132 1133 if (!audit_enabled && msg_type != AUDIT_USER_AVC) { 1134 *ab = NULL; 1135 return; 1136 } 1137 1138 *ab = audit_log_start(context, GFP_KERNEL, msg_type); 1139 if (unlikely(!*ab)) 1140 return; 1141 audit_log_format(*ab, "pid=%d uid=%u ", pid, uid); 1142 audit_log_session_info(*ab); 1143 audit_log_task_context(*ab); 1144 } 1145 1146 static inline void audit_log_user_recv_msg(struct audit_buffer **ab, 1147 u16 msg_type) 1148 { 1149 audit_log_common_recv_msg(NULL, ab, msg_type); 1150 } 1151 1152 static int is_audit_feature_set(int i) 1153 { 1154 return af.features & AUDIT_FEATURE_TO_MASK(i); 1155 } 1156 1157 static int audit_get_feature(struct sk_buff *skb) 1158 { 1159 u32 seq; 1160 1161 seq = nlmsg_hdr(skb)->nlmsg_seq; 1162 1163 audit_send_reply(skb, seq, AUDIT_GET_FEATURE, 0, 0, &af, sizeof(af)); 1164 1165 return 0; 1166 } 1167 1168 static void audit_log_feature_change(int which, u32 old_feature, u32 new_feature, 1169 u32 old_lock, u32 new_lock, int res) 1170 { 1171 struct audit_buffer *ab; 1172 1173 if (audit_enabled == AUDIT_OFF) 1174 return; 1175 1176 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_FEATURE_CHANGE); 1177 if (!ab) 1178 return; 1179 audit_log_task_info(ab); 1180 audit_log_format(ab, " feature=%s old=%u new=%u old_lock=%u new_lock=%u res=%d", 1181 audit_feature_names[which], !!old_feature, !!new_feature, 1182 !!old_lock, !!new_lock, res); 1183 audit_log_end(ab); 1184 } 1185 1186 static int audit_set_feature(struct audit_features *uaf) 1187 { 1188 int i; 1189 1190 BUILD_BUG_ON(AUDIT_LAST_FEATURE + 1 > ARRAY_SIZE(audit_feature_names)); 1191 1192 /* if there is ever a version 2 we should handle that here */ 1193 1194 for (i = 0; i <= AUDIT_LAST_FEATURE; i++) { 1195 u32 feature = AUDIT_FEATURE_TO_MASK(i); 1196 u32 old_feature, new_feature, old_lock, new_lock; 1197 1198 /* if we are not changing this feature, move along */ 1199 if (!(feature & uaf->mask)) 1200 continue; 1201 1202 old_feature = af.features & feature; 1203 new_feature = uaf->features & feature; 1204 new_lock = (uaf->lock | af.lock) & feature; 1205 old_lock = af.lock & feature; 1206 1207 /* are we changing a locked feature? */ 1208 if (old_lock && (new_feature != old_feature)) { 1209 audit_log_feature_change(i, old_feature, new_feature, 1210 old_lock, new_lock, 0); 1211 return -EPERM; 1212 } 1213 } 1214 /* nothing invalid, do the changes */ 1215 for (i = 0; i <= AUDIT_LAST_FEATURE; i++) { 1216 u32 feature = AUDIT_FEATURE_TO_MASK(i); 1217 u32 old_feature, new_feature, old_lock, new_lock; 1218 1219 /* if we are not changing this feature, move along */ 1220 if (!(feature & uaf->mask)) 1221 continue; 1222 1223 old_feature = af.features & feature; 1224 new_feature = uaf->features & feature; 1225 old_lock = af.lock & feature; 1226 new_lock = (uaf->lock | af.lock) & feature; 1227 1228 if (new_feature != old_feature) 1229 audit_log_feature_change(i, old_feature, new_feature, 1230 old_lock, new_lock, 1); 1231 1232 if (new_feature) 1233 af.features |= feature; 1234 else 1235 af.features &= ~feature; 1236 af.lock |= new_lock; 1237 } 1238 1239 return 0; 1240 } 1241 1242 static int audit_replace(struct pid *pid) 1243 { 1244 pid_t pvnr; 1245 struct sk_buff *skb; 1246 1247 pvnr = pid_vnr(pid); 1248 skb = audit_make_reply(0, AUDIT_REPLACE, 0, 0, &pvnr, sizeof(pvnr)); 1249 if (!skb) 1250 return -ENOMEM; 1251 return auditd_send_unicast_skb(skb); 1252 } 1253 1254 static int audit_receive_msg(struct sk_buff *skb, struct nlmsghdr *nlh, 1255 bool *ack) 1256 { 1257 u32 seq; 1258 void *data; 1259 int data_len; 1260 int err; 1261 struct audit_buffer *ab; 1262 u16 msg_type = nlh->nlmsg_type; 1263 struct audit_sig_info *sig_data; 1264 struct lsm_context lsmctx = { NULL, 0, 0 }; 1265 1266 err = audit_netlink_ok(skb, msg_type); 1267 if (err) 1268 return err; 1269 1270 seq = nlh->nlmsg_seq; 1271 data = nlmsg_data(nlh); 1272 data_len = nlmsg_len(nlh); 1273 1274 switch (msg_type) { 1275 case AUDIT_GET: { 1276 struct audit_status s; 1277 memset(&s, 0, sizeof(s)); 1278 s.enabled = audit_enabled; 1279 s.failure = audit_failure; 1280 /* NOTE: use pid_vnr() so the PID is relative to the current 1281 * namespace */ 1282 s.pid = auditd_pid_vnr(); 1283 s.rate_limit = audit_rate_limit; 1284 s.backlog_limit = audit_backlog_limit; 1285 s.lost = atomic_read(&audit_lost); 1286 s.backlog = skb_queue_len(&audit_queue); 1287 s.feature_bitmap = AUDIT_FEATURE_BITMAP_ALL; 1288 s.backlog_wait_time = audit_backlog_wait_time; 1289 s.backlog_wait_time_actual = atomic_read(&audit_backlog_wait_time_actual); 1290 audit_send_reply(skb, seq, AUDIT_GET, 0, 0, &s, sizeof(s)); 1291 break; 1292 } 1293 case AUDIT_SET: { 1294 struct audit_status s; 1295 memset(&s, 0, sizeof(s)); 1296 /* guard against past and future API changes */ 1297 memcpy(&s, data, min_t(size_t, sizeof(s), data_len)); 1298 if (s.mask & ~AUDIT_STATUS_ALL) 1299 return -EINVAL; 1300 if (s.mask & AUDIT_STATUS_ENABLED) { 1301 err = audit_set_enabled(s.enabled); 1302 if (err < 0) 1303 return err; 1304 } 1305 if (s.mask & AUDIT_STATUS_FAILURE) { 1306 err = audit_set_failure(s.failure); 1307 if (err < 0) 1308 return err; 1309 } 1310 if (s.mask & AUDIT_STATUS_PID) { 1311 /* NOTE: we are using the vnr PID functions below 1312 * because the s.pid value is relative to the 1313 * namespace of the caller; at present this 1314 * doesn't matter much since you can really only 1315 * run auditd from the initial pid namespace, but 1316 * something to keep in mind if this changes */ 1317 pid_t new_pid = s.pid; 1318 pid_t auditd_pid; 1319 struct pid *req_pid = task_tgid(current); 1320 1321 /* Sanity check - PID values must match. Setting 1322 * pid to 0 is how auditd ends auditing. */ 1323 if (new_pid && (new_pid != pid_vnr(req_pid))) 1324 return -EINVAL; 1325 1326 /* test the auditd connection */ 1327 audit_replace(req_pid); 1328 1329 auditd_pid = auditd_pid_vnr(); 1330 if (auditd_pid) { 1331 /* replacing a healthy auditd is not allowed */ 1332 if (new_pid) { 1333 audit_log_config_change("audit_pid", 1334 new_pid, auditd_pid, 0); 1335 return -EEXIST; 1336 } 1337 /* only current auditd can unregister itself */ 1338 if (pid_vnr(req_pid) != auditd_pid) { 1339 audit_log_config_change("audit_pid", 1340 new_pid, auditd_pid, 0); 1341 return -EACCES; 1342 } 1343 } 1344 1345 if (new_pid) { 1346 /* register a new auditd connection */ 1347 err = auditd_set(req_pid, 1348 NETLINK_CB(skb).portid, 1349 sock_net(NETLINK_CB(skb).sk), 1350 skb, ack); 1351 if (audit_enabled != AUDIT_OFF) 1352 audit_log_config_change("audit_pid", 1353 new_pid, 1354 auditd_pid, 1355 err ? 0 : 1); 1356 if (err) 1357 return err; 1358 1359 /* try to process any backlog */ 1360 wake_up_interruptible(&kauditd_wait); 1361 } else { 1362 if (audit_enabled != AUDIT_OFF) 1363 audit_log_config_change("audit_pid", 1364 new_pid, 1365 auditd_pid, 1); 1366 1367 /* unregister the auditd connection */ 1368 auditd_reset(NULL); 1369 } 1370 } 1371 if (s.mask & AUDIT_STATUS_RATE_LIMIT) { 1372 err = audit_set_rate_limit(s.rate_limit); 1373 if (err < 0) 1374 return err; 1375 } 1376 if (s.mask & AUDIT_STATUS_BACKLOG_LIMIT) { 1377 err = audit_set_backlog_limit(s.backlog_limit); 1378 if (err < 0) 1379 return err; 1380 } 1381 if (s.mask & AUDIT_STATUS_BACKLOG_WAIT_TIME) { 1382 if (sizeof(s) > (size_t)nlh->nlmsg_len) 1383 return -EINVAL; 1384 if (s.backlog_wait_time > 10*AUDIT_BACKLOG_WAIT_TIME) 1385 return -EINVAL; 1386 err = audit_set_backlog_wait_time(s.backlog_wait_time); 1387 if (err < 0) 1388 return err; 1389 } 1390 if (s.mask == AUDIT_STATUS_LOST) { 1391 u32 lost = atomic_xchg(&audit_lost, 0); 1392 1393 audit_log_config_change("lost", 0, lost, 1); 1394 return lost; 1395 } 1396 if (s.mask == AUDIT_STATUS_BACKLOG_WAIT_TIME_ACTUAL) { 1397 u32 actual = atomic_xchg(&audit_backlog_wait_time_actual, 0); 1398 1399 audit_log_config_change("backlog_wait_time_actual", 0, actual, 1); 1400 return actual; 1401 } 1402 break; 1403 } 1404 case AUDIT_GET_FEATURE: 1405 err = audit_get_feature(skb); 1406 if (err) 1407 return err; 1408 break; 1409 case AUDIT_SET_FEATURE: 1410 if (data_len < sizeof(struct audit_features)) 1411 return -EINVAL; 1412 err = audit_set_feature(data); 1413 if (err) 1414 return err; 1415 break; 1416 case AUDIT_USER: 1417 case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG: 1418 case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2: 1419 if (!audit_enabled && msg_type != AUDIT_USER_AVC) 1420 return 0; 1421 /* exit early if there isn't at least one character to print */ 1422 if (data_len < 2) 1423 return -EINVAL; 1424 1425 err = audit_filter(msg_type, AUDIT_FILTER_USER); 1426 if (err == 1) { /* match or error */ 1427 char *str = data; 1428 1429 err = 0; 1430 if (msg_type == AUDIT_USER_TTY) { 1431 err = tty_audit_push(); 1432 if (err) 1433 break; 1434 } 1435 audit_log_user_recv_msg(&ab, msg_type); 1436 if (msg_type != AUDIT_USER_TTY) { 1437 /* ensure NULL termination */ 1438 str[data_len - 1] = '\0'; 1439 audit_log_format(ab, " msg='%.*s'", 1440 AUDIT_MESSAGE_TEXT_MAX, 1441 str); 1442 } else { 1443 audit_log_format(ab, " data="); 1444 if (str[data_len - 1] == '\0') 1445 data_len--; 1446 audit_log_n_untrustedstring(ab, str, data_len); 1447 } 1448 audit_log_end(ab); 1449 } 1450 break; 1451 case AUDIT_ADD_RULE: 1452 case AUDIT_DEL_RULE: 1453 if (data_len < sizeof(struct audit_rule_data)) 1454 return -EINVAL; 1455 if (audit_enabled == AUDIT_LOCKED) { 1456 audit_log_common_recv_msg(audit_context(), &ab, 1457 AUDIT_CONFIG_CHANGE); 1458 audit_log_format(ab, " op=%s audit_enabled=%d res=0", 1459 msg_type == AUDIT_ADD_RULE ? 1460 "add_rule" : "remove_rule", 1461 audit_enabled); 1462 audit_log_end(ab); 1463 return -EPERM; 1464 } 1465 err = audit_rule_change(msg_type, seq, data, data_len); 1466 break; 1467 case AUDIT_LIST_RULES: 1468 err = audit_list_rules_send(skb, seq); 1469 break; 1470 case AUDIT_TRIM: 1471 if (audit_enabled == AUDIT_LOCKED) 1472 return -EPERM; 1473 audit_trim_trees(); 1474 audit_log_common_recv_msg(audit_context(), &ab, 1475 AUDIT_CONFIG_CHANGE); 1476 audit_log_format(ab, " op=trim res=1"); 1477 audit_log_end(ab); 1478 break; 1479 case AUDIT_MAKE_EQUIV: { 1480 void *bufp = data; 1481 u32 sizes[2]; 1482 size_t msglen = data_len; 1483 char *old, *new; 1484 1485 if (audit_enabled == AUDIT_LOCKED) 1486 return -EPERM; 1487 err = -EINVAL; 1488 if (msglen < 2 * sizeof(u32)) 1489 break; 1490 memcpy(sizes, bufp, 2 * sizeof(u32)); 1491 bufp += 2 * sizeof(u32); 1492 msglen -= 2 * sizeof(u32); 1493 old = audit_unpack_string(&bufp, &msglen, sizes[0]); 1494 if (IS_ERR(old)) { 1495 err = PTR_ERR(old); 1496 break; 1497 } 1498 new = audit_unpack_string(&bufp, &msglen, sizes[1]); 1499 if (IS_ERR(new)) { 1500 err = PTR_ERR(new); 1501 kfree(old); 1502 break; 1503 } 1504 /* OK, here comes... */ 1505 err = audit_tag_tree(old, new); 1506 1507 audit_log_common_recv_msg(audit_context(), &ab, 1508 AUDIT_CONFIG_CHANGE); 1509 audit_log_format(ab, " op=make_equiv old="); 1510 audit_log_untrustedstring(ab, old); 1511 audit_log_format(ab, " new="); 1512 audit_log_untrustedstring(ab, new); 1513 audit_log_format(ab, " res=%d", !err); 1514 audit_log_end(ab); 1515 kfree(old); 1516 kfree(new); 1517 break; 1518 } 1519 case AUDIT_SIGNAL_INFO: 1520 if (lsmprop_is_set(&audit_sig_lsm)) { 1521 err = security_lsmprop_to_secctx(&audit_sig_lsm, 1522 &lsmctx, LSM_ID_UNDEF); 1523 if (err < 0) 1524 return err; 1525 } 1526 sig_data = kmalloc_flex(*sig_data, ctx, lsmctx.len); 1527 if (!sig_data) { 1528 if (lsmprop_is_set(&audit_sig_lsm)) 1529 security_release_secctx(&lsmctx); 1530 return -ENOMEM; 1531 } 1532 sig_data->uid = from_kuid(&init_user_ns, audit_sig_uid); 1533 sig_data->pid = audit_sig_pid; 1534 if (lsmprop_is_set(&audit_sig_lsm)) { 1535 memcpy(sig_data->ctx, lsmctx.context, lsmctx.len); 1536 security_release_secctx(&lsmctx); 1537 } 1538 audit_send_reply(skb, seq, AUDIT_SIGNAL_INFO, 0, 0, 1539 sig_data, struct_size(sig_data, ctx, 1540 lsmctx.len)); 1541 kfree(sig_data); 1542 break; 1543 case AUDIT_TTY_GET: { 1544 struct audit_tty_status s; 1545 unsigned int t; 1546 1547 t = READ_ONCE(current->signal->audit_tty); 1548 s.enabled = t & AUDIT_TTY_ENABLE; 1549 s.log_passwd = !!(t & AUDIT_TTY_LOG_PASSWD); 1550 1551 audit_send_reply(skb, seq, AUDIT_TTY_GET, 0, 0, &s, sizeof(s)); 1552 break; 1553 } 1554 case AUDIT_TTY_SET: { 1555 struct audit_tty_status s, old; 1556 struct audit_buffer *ab; 1557 unsigned int t; 1558 1559 memset(&s, 0, sizeof(s)); 1560 /* guard against past and future API changes */ 1561 memcpy(&s, data, min_t(size_t, sizeof(s), data_len)); 1562 /* check if new data is valid */ 1563 if ((s.enabled != 0 && s.enabled != 1) || 1564 (s.log_passwd != 0 && s.log_passwd != 1)) 1565 err = -EINVAL; 1566 1567 if (err) 1568 t = READ_ONCE(current->signal->audit_tty); 1569 else { 1570 t = s.enabled | (-s.log_passwd & AUDIT_TTY_LOG_PASSWD); 1571 t = xchg(¤t->signal->audit_tty, t); 1572 } 1573 old.enabled = t & AUDIT_TTY_ENABLE; 1574 old.log_passwd = !!(t & AUDIT_TTY_LOG_PASSWD); 1575 1576 audit_log_common_recv_msg(audit_context(), &ab, 1577 AUDIT_CONFIG_CHANGE); 1578 audit_log_format(ab, " op=tty_set old-enabled=%d new-enabled=%d" 1579 " old-log_passwd=%d new-log_passwd=%d res=%d", 1580 old.enabled, s.enabled, old.log_passwd, 1581 s.log_passwd, !err); 1582 audit_log_end(ab); 1583 break; 1584 } 1585 default: 1586 err = -EINVAL; 1587 break; 1588 } 1589 1590 return err < 0 ? err : 0; 1591 } 1592 1593 /** 1594 * audit_receive - receive messages from a netlink control socket 1595 * @skb: the message buffer 1596 * 1597 * Parse the provided skb and deal with any messages that may be present, 1598 * malformed skbs are discarded. 1599 */ 1600 static void audit_receive(struct sk_buff *skb) 1601 { 1602 struct nlmsghdr *nlh; 1603 bool ack; 1604 /* 1605 * len MUST be signed for nlmsg_next to be able to dec it below 0 1606 * if the nlmsg_len was not aligned 1607 */ 1608 int len; 1609 int err; 1610 1611 nlh = nlmsg_hdr(skb); 1612 len = skb->len; 1613 1614 audit_ctl_lock(); 1615 while (nlmsg_ok(nlh, len)) { 1616 ack = nlh->nlmsg_flags & NLM_F_ACK; 1617 err = audit_receive_msg(skb, nlh, &ack); 1618 1619 /* send an ack if the user asked for one and audit_receive_msg 1620 * didn't already do it, or if there was an error. */ 1621 if (ack || err) 1622 netlink_ack(skb, nlh, err, NULL); 1623 1624 nlh = nlmsg_next(nlh, &len); 1625 } 1626 audit_ctl_unlock(); 1627 1628 /* can't block with the ctrl lock, so penalize the sender now */ 1629 if (audit_backlog_limit && 1630 (skb_queue_len(&audit_queue) > audit_backlog_limit)) { 1631 DECLARE_WAITQUEUE(wait, current); 1632 1633 /* wake kauditd to try and flush the queue */ 1634 wake_up_interruptible(&kauditd_wait); 1635 1636 add_wait_queue_exclusive(&audit_backlog_wait, &wait); 1637 set_current_state(TASK_UNINTERRUPTIBLE); 1638 schedule_timeout(audit_backlog_wait_time); 1639 remove_wait_queue(&audit_backlog_wait, &wait); 1640 } 1641 } 1642 1643 /* Log information about who is connecting to the audit multicast socket */ 1644 static void audit_log_multicast(int group, const char *op, int err) 1645 { 1646 const struct cred *cred; 1647 struct tty_struct *tty; 1648 char comm[sizeof(current->comm)]; 1649 struct audit_buffer *ab; 1650 1651 if (!audit_enabled) 1652 return; 1653 1654 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_EVENT_LISTENER); 1655 if (!ab) 1656 return; 1657 1658 cred = current_cred(); 1659 tty = audit_get_tty(); 1660 audit_log_format(ab, "pid=%u uid=%u auid=%u tty=%s ses=%u", 1661 task_tgid_nr(current), 1662 from_kuid(&init_user_ns, cred->uid), 1663 from_kuid(&init_user_ns, audit_get_loginuid(current)), 1664 tty ? tty_name(tty) : "(none)", 1665 audit_get_sessionid(current)); 1666 audit_put_tty(tty); 1667 audit_log_task_context(ab); /* subj= */ 1668 audit_log_format(ab, " comm="); 1669 audit_log_untrustedstring(ab, get_task_comm(comm, current)); 1670 audit_log_d_path_exe(ab, current->mm); /* exe= */ 1671 audit_log_format(ab, " nl-mcgrp=%d op=%s res=%d", group, op, !err); 1672 audit_log_end(ab); 1673 } 1674 1675 /* Run custom bind function on netlink socket group connect or bind requests. */ 1676 static int audit_multicast_bind(struct net *net, int group) 1677 { 1678 int err = 0; 1679 1680 if (!capable(CAP_AUDIT_READ)) 1681 err = -EPERM; 1682 audit_log_multicast(group, "connect", err); 1683 return err; 1684 } 1685 1686 static void audit_multicast_unbind(struct net *net, int group) 1687 { 1688 audit_log_multicast(group, "disconnect", 0); 1689 } 1690 1691 static int __net_init audit_net_init(struct net *net) 1692 { 1693 struct netlink_kernel_cfg cfg = { 1694 .input = audit_receive, 1695 .bind = audit_multicast_bind, 1696 .unbind = audit_multicast_unbind, 1697 .flags = NL_CFG_F_NONROOT_RECV, 1698 .groups = AUDIT_NLGRP_MAX, 1699 }; 1700 1701 struct audit_net *aunet = net_generic(net, audit_net_id); 1702 1703 aunet->sk = netlink_kernel_create(net, NETLINK_AUDIT, &cfg); 1704 if (aunet->sk == NULL) { 1705 audit_panic("cannot initialize netlink socket in namespace"); 1706 return -ENOMEM; 1707 } 1708 /* limit the timeout in case auditd is blocked/stopped */ 1709 aunet->sk->sk_sndtimeo = HZ / 10; 1710 1711 return 0; 1712 } 1713 1714 static void __net_exit audit_net_exit(struct net *net) 1715 { 1716 struct audit_net *aunet = net_generic(net, audit_net_id); 1717 1718 /* NOTE: you would think that we would want to check the auditd 1719 * connection and potentially reset it here if it lives in this 1720 * namespace, but since the auditd connection tracking struct holds a 1721 * reference to this namespace (see auditd_set()) we are only ever 1722 * going to get here after that connection has been released */ 1723 1724 netlink_kernel_release(aunet->sk); 1725 } 1726 1727 static struct pernet_operations audit_net_ops __net_initdata = { 1728 .init = audit_net_init, 1729 .exit = audit_net_exit, 1730 .id = &audit_net_id, 1731 .size = sizeof(struct audit_net), 1732 }; 1733 1734 /* Initialize audit support at boot time. */ 1735 static int __init audit_init(void) 1736 { 1737 int i; 1738 1739 if (audit_initialized == AUDIT_DISABLED) 1740 return 0; 1741 1742 audit_buffer_cache = KMEM_CACHE(audit_buffer, SLAB_PANIC); 1743 1744 skb_queue_head_init(&audit_queue); 1745 skb_queue_head_init(&audit_retry_queue); 1746 skb_queue_head_init(&audit_hold_queue); 1747 1748 for (i = 0; i < AUDIT_INODE_BUCKETS; i++) 1749 INIT_LIST_HEAD(&audit_inode_hash[i]); 1750 1751 mutex_init(&audit_cmd_mutex.lock); 1752 audit_cmd_mutex.owner = NULL; 1753 1754 pr_info("initializing netlink subsys (%s)\n", 1755 str_enabled_disabled(audit_default)); 1756 register_pernet_subsys(&audit_net_ops); 1757 1758 audit_initialized = AUDIT_INITIALIZED; 1759 1760 kauditd_task = kthread_run(kauditd_thread, NULL, "kauditd"); 1761 if (IS_ERR(kauditd_task)) { 1762 int err = PTR_ERR(kauditd_task); 1763 panic("audit: failed to start the kauditd thread (%d)\n", err); 1764 } 1765 1766 audit_log(NULL, GFP_KERNEL, AUDIT_KERNEL, 1767 "state=initialized audit_enabled=%u res=1", 1768 audit_enabled); 1769 1770 return 0; 1771 } 1772 postcore_initcall(audit_init); 1773 1774 /* 1775 * Process kernel command-line parameter at boot time. 1776 * audit={0|off} or audit={1|on}. 1777 */ 1778 static int __init audit_enable(char *str) 1779 { 1780 if (!strcasecmp(str, "off") || !strcmp(str, "0")) 1781 audit_default = AUDIT_OFF; 1782 else if (!strcasecmp(str, "on") || !strcmp(str, "1")) 1783 audit_default = AUDIT_ON; 1784 else { 1785 pr_err("audit: invalid 'audit' parameter value (%s)\n", str); 1786 audit_default = AUDIT_ON; 1787 } 1788 1789 if (audit_default == AUDIT_OFF) 1790 audit_initialized = AUDIT_DISABLED; 1791 if (audit_set_enabled(audit_default)) 1792 pr_err("audit: error setting audit state (%d)\n", 1793 audit_default); 1794 1795 pr_info("%s\n", audit_default ? 1796 "enabled (after initialization)" : "disabled (until reboot)"); 1797 1798 return 1; 1799 } 1800 __setup("audit=", audit_enable); 1801 1802 /* Process kernel command-line parameter at boot time. 1803 * audit_backlog_limit=<n> */ 1804 static int __init audit_backlog_limit_set(char *str) 1805 { 1806 u32 audit_backlog_limit_arg; 1807 1808 pr_info("audit_backlog_limit: "); 1809 if (kstrtouint(str, 0, &audit_backlog_limit_arg)) { 1810 pr_cont("using default of %u, unable to parse %s\n", 1811 audit_backlog_limit, str); 1812 return 1; 1813 } 1814 1815 audit_backlog_limit = audit_backlog_limit_arg; 1816 pr_cont("%d\n", audit_backlog_limit); 1817 1818 return 1; 1819 } 1820 __setup("audit_backlog_limit=", audit_backlog_limit_set); 1821 1822 static void audit_buffer_free(struct audit_buffer *ab) 1823 { 1824 struct sk_buff *skb; 1825 1826 if (!ab) 1827 return; 1828 1829 while ((skb = skb_dequeue(&ab->skb_list))) 1830 kfree_skb(skb); 1831 kmem_cache_free(audit_buffer_cache, ab); 1832 } 1833 1834 static struct audit_buffer *audit_buffer_alloc(struct audit_context *ctx, 1835 gfp_t gfp_mask, int type) 1836 { 1837 struct audit_buffer *ab; 1838 1839 ab = kmem_cache_alloc(audit_buffer_cache, gfp_mask); 1840 if (!ab) 1841 return NULL; 1842 1843 skb_queue_head_init(&ab->skb_list); 1844 1845 ab->skb = nlmsg_new(AUDIT_BUFSIZ, gfp_mask); 1846 if (!ab->skb) 1847 goto err; 1848 1849 skb_queue_tail(&ab->skb_list, ab->skb); 1850 1851 if (!nlmsg_put(ab->skb, 0, 0, type, 0, 0)) 1852 goto err; 1853 1854 ab->ctx = ctx; 1855 ab->gfp_mask = gfp_mask; 1856 1857 return ab; 1858 1859 err: 1860 audit_buffer_free(ab); 1861 return NULL; 1862 } 1863 1864 /** 1865 * audit_serial - compute a serial number for the audit record 1866 * 1867 * Compute a serial number for the audit record. Audit records are 1868 * written to user-space as soon as they are generated, so a complete 1869 * audit record may be written in several pieces. The timestamp of the 1870 * record and this serial number are used by the user-space tools to 1871 * determine which pieces belong to the same audit record. The 1872 * (timestamp,serial) tuple is unique for each syscall and is live from 1873 * syscall entry to syscall exit. 1874 * 1875 * NOTE: Another possibility is to store the formatted records off the 1876 * audit context (for those records that have a context), and emit them 1877 * all at syscall exit. However, this could delay the reporting of 1878 * significant errors until syscall exit (or never, if the system 1879 * halts). 1880 */ 1881 unsigned int audit_serial(void) 1882 { 1883 static atomic_t serial = ATOMIC_INIT(0); 1884 1885 return atomic_inc_return(&serial); 1886 } 1887 1888 static inline void audit_get_stamp(struct audit_context *ctx, 1889 struct audit_stamp *stamp) 1890 { 1891 if (!ctx || !auditsc_get_stamp(ctx, stamp)) { 1892 ktime_get_coarse_real_ts64(&stamp->ctime); 1893 stamp->serial = audit_serial(); 1894 } 1895 } 1896 1897 /** 1898 * audit_log_start - obtain an audit buffer 1899 * @ctx: audit_context (may be NULL) 1900 * @gfp_mask: type of allocation 1901 * @type: audit message type 1902 * 1903 * Returns audit_buffer pointer on success or NULL on error. 1904 * 1905 * Obtain an audit buffer. This routine does locking to obtain the 1906 * audit buffer, but then no locking is required for calls to 1907 * audit_log_*format. If the task (ctx) is a task that is currently in a 1908 * syscall, then the syscall is marked as auditable and an audit record 1909 * will be written at syscall exit. If there is no associated task, then 1910 * task context (ctx) should be NULL. 1911 */ 1912 struct audit_buffer *audit_log_start(struct audit_context *ctx, gfp_t gfp_mask, 1913 int type) 1914 { 1915 struct audit_buffer *ab; 1916 1917 if (audit_initialized != AUDIT_INITIALIZED) 1918 return NULL; 1919 1920 if (unlikely(!audit_filter(type, AUDIT_FILTER_EXCLUDE))) 1921 return NULL; 1922 1923 /* NOTE: don't ever fail/sleep on these two conditions: 1924 * 1. auditd generated record - since we need auditd to drain the 1925 * queue; also, when we are checking for auditd, compare PIDs using 1926 * task_tgid_vnr() since auditd_pid is set in audit_receive_msg() 1927 * using a PID anchored in the caller's namespace 1928 * 2. generator holding the audit_cmd_mutex - we don't want to block 1929 * while holding the mutex, although we do penalize the sender 1930 * later in audit_receive() when it is safe to block 1931 */ 1932 if (!(auditd_test_task(current) || audit_ctl_owner_current())) { 1933 long stime = audit_backlog_wait_time; 1934 1935 while (audit_backlog_limit && 1936 (skb_queue_len(&audit_queue) > audit_backlog_limit)) { 1937 /* wake kauditd to try and flush the queue */ 1938 wake_up_interruptible(&kauditd_wait); 1939 1940 /* sleep if we are allowed and we haven't exhausted our 1941 * backlog wait limit */ 1942 if (gfpflags_allow_blocking(gfp_mask) && (stime > 0)) { 1943 long rtime = stime; 1944 1945 DECLARE_WAITQUEUE(wait, current); 1946 1947 add_wait_queue_exclusive(&audit_backlog_wait, 1948 &wait); 1949 set_current_state(TASK_UNINTERRUPTIBLE); 1950 stime = schedule_timeout(rtime); 1951 atomic_add(rtime - stime, &audit_backlog_wait_time_actual); 1952 remove_wait_queue(&audit_backlog_wait, &wait); 1953 } else { 1954 if (audit_rate_check() && printk_ratelimit()) 1955 pr_warn("audit_backlog=%d > audit_backlog_limit=%d\n", 1956 skb_queue_len(&audit_queue), 1957 audit_backlog_limit); 1958 audit_log_lost("backlog limit exceeded"); 1959 return NULL; 1960 } 1961 } 1962 } 1963 1964 ab = audit_buffer_alloc(ctx, gfp_mask, type); 1965 if (!ab) { 1966 audit_log_lost("out of memory in audit_log_start"); 1967 return NULL; 1968 } 1969 1970 audit_get_stamp(ab->ctx, &ab->stamp); 1971 /* cancel dummy context to enable supporting records */ 1972 if (ctx) 1973 ctx->dummy = 0; 1974 audit_log_format(ab, "audit(%llu.%03lu:%u): ", 1975 (unsigned long long)ab->stamp.ctime.tv_sec, 1976 ab->stamp.ctime.tv_nsec/1000000, 1977 ab->stamp.serial); 1978 1979 return ab; 1980 } 1981 1982 /** 1983 * audit_expand - expand skb in the audit buffer 1984 * @ab: audit_buffer 1985 * @extra: space to add at tail of the skb 1986 * 1987 * Returns 0 (no space) on failed expansion, or available space if 1988 * successful. 1989 */ 1990 static inline int audit_expand(struct audit_buffer *ab, int extra) 1991 { 1992 struct sk_buff *skb = ab->skb; 1993 int oldtail = skb_tailroom(skb); 1994 int ret = pskb_expand_head(skb, 0, extra, ab->gfp_mask); 1995 int newtail = skb_tailroom(skb); 1996 1997 if (ret < 0) { 1998 audit_log_lost("out of memory in audit_expand"); 1999 return 0; 2000 } 2001 2002 skb->truesize += newtail - oldtail; 2003 return newtail; 2004 } 2005 2006 /* 2007 * Format an audit message into the audit buffer. If there isn't enough 2008 * room in the audit buffer, more room will be allocated and vsnprint 2009 * will be called a second time. Currently, we assume that a printk 2010 * can't format message larger than 1024 bytes, so we don't either. 2011 */ 2012 static __printf(2, 0) 2013 void audit_log_vformat(struct audit_buffer *ab, const char *fmt, va_list args) 2014 { 2015 int len, avail; 2016 struct sk_buff *skb; 2017 va_list args2; 2018 2019 if (!ab) 2020 return; 2021 2022 BUG_ON(!ab->skb); 2023 skb = ab->skb; 2024 avail = skb_tailroom(skb); 2025 if (avail == 0) { 2026 avail = audit_expand(ab, AUDIT_BUFSIZ); 2027 if (!avail) 2028 goto out; 2029 } 2030 va_copy(args2, args); 2031 len = vsnprintf(skb_tail_pointer(skb), avail, fmt, args); 2032 if (len >= avail) { 2033 /* The printk buffer is 1024 bytes long, so if we get 2034 * here and AUDIT_BUFSIZ is at least 1024, then we can 2035 * log everything that printk could have logged. */ 2036 avail = audit_expand(ab, 2037 max_t(unsigned, AUDIT_BUFSIZ, 1+len-avail)); 2038 if (!avail) 2039 goto out_va_end; 2040 len = vsnprintf(skb_tail_pointer(skb), avail, fmt, args2); 2041 } 2042 if (len > 0) 2043 skb_put(skb, len); 2044 out_va_end: 2045 va_end(args2); 2046 out: 2047 return; 2048 } 2049 2050 /** 2051 * audit_log_format - format a message into the audit buffer. 2052 * @ab: audit_buffer 2053 * @fmt: format string 2054 * @...: optional parameters matching @fmt string 2055 * 2056 * All the work is done in audit_log_vformat. 2057 */ 2058 void audit_log_format(struct audit_buffer *ab, const char *fmt, ...) 2059 { 2060 va_list args; 2061 2062 if (!ab) 2063 return; 2064 va_start(args, fmt); 2065 audit_log_vformat(ab, fmt, args); 2066 va_end(args); 2067 } 2068 2069 /** 2070 * audit_log_n_hex - convert a buffer to hex and append it to the audit skb 2071 * @ab: the audit_buffer 2072 * @buf: buffer to convert to hex 2073 * @len: length of @buf to be converted 2074 * 2075 * No return value; failure to expand is silently ignored. 2076 * 2077 * This function will take the passed buf and convert it into a string of 2078 * ascii hex digits. The new string is placed onto the skb. 2079 */ 2080 void audit_log_n_hex(struct audit_buffer *ab, const unsigned char *buf, 2081 size_t len) 2082 { 2083 int i, avail, new_len; 2084 unsigned char *ptr; 2085 struct sk_buff *skb; 2086 2087 if (!ab) 2088 return; 2089 2090 BUG_ON(!ab->skb); 2091 skb = ab->skb; 2092 avail = skb_tailroom(skb); 2093 new_len = len<<1; 2094 if (new_len >= avail) { 2095 /* Round the buffer request up to the next multiple */ 2096 new_len = AUDIT_BUFSIZ*(((new_len-avail)/AUDIT_BUFSIZ) + 1); 2097 avail = audit_expand(ab, new_len); 2098 if (!avail) 2099 return; 2100 } 2101 2102 ptr = skb_tail_pointer(skb); 2103 for (i = 0; i < len; i++) 2104 ptr = hex_byte_pack_upper(ptr, buf[i]); 2105 *ptr = 0; 2106 skb_put(skb, len << 1); /* new string is twice the old string */ 2107 } 2108 2109 /* 2110 * Format a string of no more than slen characters into the audit buffer, 2111 * enclosed in quote marks. 2112 */ 2113 void audit_log_n_string(struct audit_buffer *ab, const char *string, 2114 size_t slen) 2115 { 2116 int avail, new_len; 2117 unsigned char *ptr; 2118 struct sk_buff *skb; 2119 2120 if (!ab) 2121 return; 2122 2123 BUG_ON(!ab->skb); 2124 skb = ab->skb; 2125 avail = skb_tailroom(skb); 2126 new_len = slen + 3; /* enclosing quotes + null terminator */ 2127 if (new_len > avail) { 2128 avail = audit_expand(ab, new_len); 2129 if (!avail) 2130 return; 2131 } 2132 ptr = skb_tail_pointer(skb); 2133 *ptr++ = '"'; 2134 memcpy(ptr, string, slen); 2135 ptr += slen; 2136 *ptr++ = '"'; 2137 *ptr = 0; 2138 skb_put(skb, slen + 2); /* don't include null terminator */ 2139 } 2140 2141 /** 2142 * audit_string_contains_control - does a string need to be logged in hex 2143 * @string: string to be checked 2144 * @len: max length of the string to check 2145 */ 2146 bool audit_string_contains_control(const char *string, size_t len) 2147 { 2148 const unsigned char *p; 2149 for (p = string; p < (const unsigned char *)string + len; p++) { 2150 if (*p == '"' || *p < 0x21 || *p > 0x7e) 2151 return true; 2152 } 2153 return false; 2154 } 2155 2156 /** 2157 * audit_log_n_untrustedstring - log a string that may contain random characters 2158 * @ab: audit_buffer 2159 * @string: string to be logged 2160 * @len: length of string (not including trailing null) 2161 * 2162 * This code will escape a string that is passed to it if the string 2163 * contains a control character, unprintable character, double quote mark, 2164 * or a space. Unescaped strings will start and end with a double quote mark. 2165 * Strings that are escaped are printed in hex (2 digits per char). 2166 * 2167 * The caller specifies the number of characters in the string to log, which may 2168 * or may not be the entire string. 2169 */ 2170 void audit_log_n_untrustedstring(struct audit_buffer *ab, const char *string, 2171 size_t len) 2172 { 2173 if (audit_string_contains_control(string, len)) 2174 audit_log_n_hex(ab, string, len); 2175 else 2176 audit_log_n_string(ab, string, len); 2177 } 2178 2179 /** 2180 * audit_log_untrustedstring - log a string that may contain random characters 2181 * @ab: audit_buffer 2182 * @string: string to be logged 2183 * 2184 * Same as audit_log_n_untrustedstring(), except that strlen is used to 2185 * determine string length. 2186 */ 2187 void audit_log_untrustedstring(struct audit_buffer *ab, const char *string) 2188 { 2189 audit_log_n_untrustedstring(ab, string, strlen(string)); 2190 } 2191 2192 /* This is a helper-function to print the escaped d_path */ 2193 void audit_log_d_path(struct audit_buffer *ab, const char *prefix, 2194 const struct path *path) 2195 { 2196 char *p, *pathname; 2197 2198 if (prefix) 2199 audit_log_format(ab, "%s", prefix); 2200 2201 /* We will allow 11 spaces for ' (deleted)' to be appended */ 2202 pathname = kmalloc(PATH_MAX+11, ab->gfp_mask); 2203 if (!pathname) { 2204 audit_log_format(ab, "\"<no_memory>\""); 2205 return; 2206 } 2207 p = d_path(path, pathname, PATH_MAX+11); 2208 if (IS_ERR(p)) { /* Should never happen since we send PATH_MAX */ 2209 /* FIXME: can we save some information here? */ 2210 audit_log_format(ab, "\"<too_long>\""); 2211 } else 2212 audit_log_untrustedstring(ab, p); 2213 kfree(pathname); 2214 } 2215 2216 void audit_log_session_info(struct audit_buffer *ab) 2217 { 2218 unsigned int sessionid = audit_get_sessionid(current); 2219 uid_t auid = from_kuid(&init_user_ns, audit_get_loginuid(current)); 2220 2221 audit_log_format(ab, "auid=%u ses=%u", auid, sessionid); 2222 } 2223 2224 void audit_log_key(struct audit_buffer *ab, char *key) 2225 { 2226 audit_log_format(ab, " key="); 2227 if (key) 2228 audit_log_untrustedstring(ab, key); 2229 else 2230 audit_log_format(ab, "(null)"); 2231 } 2232 2233 /** 2234 * audit_buffer_aux_new - Add an aux record buffer to the skb list 2235 * @ab: audit_buffer 2236 * @type: message type 2237 * 2238 * Aux records are allocated and added to the skb list of 2239 * the "main" record. The ab->skb is reset to point to the 2240 * aux record on its creation. When the aux record in complete 2241 * ab->skb has to be reset to point to the "main" record. 2242 * This allows the audit_log_ functions to be ignorant of 2243 * which kind of record it is logging to. It also avoids adding 2244 * special data for aux records. 2245 * 2246 * On success ab->skb will point to the new aux record. 2247 * Returns 0 on success, -ENOMEM should allocation fail. 2248 */ 2249 static int audit_buffer_aux_new(struct audit_buffer *ab, int type) 2250 { 2251 WARN_ON(ab->skb != skb_peek(&ab->skb_list)); 2252 2253 ab->skb = nlmsg_new(AUDIT_BUFSIZ, ab->gfp_mask); 2254 if (!ab->skb) 2255 goto err; 2256 if (!nlmsg_put(ab->skb, 0, 0, type, 0, 0)) 2257 goto err; 2258 skb_queue_tail(&ab->skb_list, ab->skb); 2259 2260 audit_log_format(ab, "audit(%llu.%03lu:%u): ", 2261 (unsigned long long)ab->stamp.ctime.tv_sec, 2262 ab->stamp.ctime.tv_nsec/1000000, 2263 ab->stamp.serial); 2264 2265 return 0; 2266 2267 err: 2268 kfree_skb(ab->skb); 2269 ab->skb = skb_peek(&ab->skb_list); 2270 return -ENOMEM; 2271 } 2272 2273 /** 2274 * audit_buffer_aux_end - Switch back to the "main" record from an aux record 2275 * @ab: audit_buffer 2276 * 2277 * Restores the "main" audit record to ab->skb. 2278 */ 2279 static void audit_buffer_aux_end(struct audit_buffer *ab) 2280 { 2281 ab->skb = skb_peek(&ab->skb_list); 2282 } 2283 2284 /** 2285 * audit_log_subj_ctx - Add LSM subject information 2286 * @ab: audit_buffer 2287 * @prop: LSM subject properties. 2288 * 2289 * Add a subj= field and, if necessary, a AUDIT_MAC_TASK_CONTEXTS record. 2290 */ 2291 int audit_log_subj_ctx(struct audit_buffer *ab, struct lsm_prop *prop) 2292 { 2293 struct lsm_context ctx; 2294 char *space = ""; 2295 int error; 2296 int i; 2297 2298 security_current_getlsmprop_subj(prop); 2299 if (!lsmprop_is_set(prop)) 2300 return 0; 2301 2302 if (audit_subj_secctx_cnt < 2) { 2303 error = security_lsmprop_to_secctx(prop, &ctx, LSM_ID_UNDEF); 2304 if (error < 0) { 2305 if (error != -EINVAL) 2306 goto error_path; 2307 return 0; 2308 } 2309 audit_log_format(ab, " subj=%s", ctx.context); 2310 security_release_secctx(&ctx); 2311 return 0; 2312 } 2313 /* Multiple LSMs provide contexts. Include an aux record. */ 2314 audit_log_format(ab, " subj=?"); 2315 error = audit_buffer_aux_new(ab, AUDIT_MAC_TASK_CONTEXTS); 2316 if (error) 2317 goto error_path; 2318 2319 for (i = 0; i < audit_subj_secctx_cnt; i++) { 2320 error = security_lsmprop_to_secctx(prop, &ctx, 2321 audit_subj_lsms[i]->id); 2322 if (error < 0) { 2323 /* 2324 * Don't print anything. An LSM like BPF could 2325 * claim to support contexts, but only do so under 2326 * certain conditions. 2327 */ 2328 if (error == -EOPNOTSUPP) 2329 continue; 2330 if (error != -EINVAL) 2331 audit_panic("error in audit_log_subj_ctx"); 2332 } else { 2333 audit_log_format(ab, "%ssubj_%s=%s", space, 2334 audit_subj_lsms[i]->name, ctx.context); 2335 space = " "; 2336 security_release_secctx(&ctx); 2337 } 2338 } 2339 audit_buffer_aux_end(ab); 2340 return 0; 2341 2342 error_path: 2343 audit_panic("error in audit_log_subj_ctx"); 2344 return error; 2345 } 2346 EXPORT_SYMBOL(audit_log_subj_ctx); 2347 2348 int audit_log_task_context(struct audit_buffer *ab) 2349 { 2350 struct lsm_prop prop; 2351 2352 security_current_getlsmprop_subj(&prop); 2353 return audit_log_subj_ctx(ab, &prop); 2354 } 2355 EXPORT_SYMBOL(audit_log_task_context); 2356 2357 int audit_log_obj_ctx(struct audit_buffer *ab, struct lsm_prop *prop) 2358 { 2359 int i; 2360 int rc; 2361 int error = 0; 2362 char *space = ""; 2363 struct lsm_context ctx; 2364 2365 if (audit_obj_secctx_cnt < 2) { 2366 error = security_lsmprop_to_secctx(prop, &ctx, LSM_ID_UNDEF); 2367 if (error < 0) { 2368 if (error != -EINVAL) 2369 goto error_path; 2370 return error; 2371 } 2372 audit_log_format(ab, " obj=%s", ctx.context); 2373 security_release_secctx(&ctx); 2374 return 0; 2375 } 2376 audit_log_format(ab, " obj=?"); 2377 error = audit_buffer_aux_new(ab, AUDIT_MAC_OBJ_CONTEXTS); 2378 if (error) 2379 goto error_path; 2380 2381 for (i = 0; i < audit_obj_secctx_cnt; i++) { 2382 rc = security_lsmprop_to_secctx(prop, &ctx, 2383 audit_obj_lsms[i]->id); 2384 if (rc < 0) { 2385 audit_log_format(ab, "%sobj_%s=?", space, 2386 audit_obj_lsms[i]->name); 2387 if (rc != -EINVAL) 2388 audit_panic("error in audit_log_obj_ctx"); 2389 error = rc; 2390 } else { 2391 audit_log_format(ab, "%sobj_%s=%s", space, 2392 audit_obj_lsms[i]->name, ctx.context); 2393 security_release_secctx(&ctx); 2394 } 2395 space = " "; 2396 } 2397 2398 audit_buffer_aux_end(ab); 2399 return error; 2400 2401 error_path: 2402 audit_panic("error in audit_log_obj_ctx"); 2403 return error; 2404 } 2405 2406 void audit_log_d_path_exe(struct audit_buffer *ab, 2407 struct mm_struct *mm) 2408 { 2409 struct file *exe_file; 2410 2411 if (!mm) 2412 goto out_null; 2413 2414 exe_file = get_mm_exe_file(mm); 2415 if (!exe_file) 2416 goto out_null; 2417 2418 audit_log_d_path(ab, " exe=", &exe_file->f_path); 2419 fput(exe_file); 2420 return; 2421 out_null: 2422 audit_log_format(ab, " exe=(null)"); 2423 } 2424 2425 struct tty_struct *audit_get_tty(void) 2426 { 2427 struct tty_struct *tty = NULL; 2428 unsigned long flags; 2429 2430 spin_lock_irqsave(¤t->sighand->siglock, flags); 2431 if (current->signal) 2432 tty = tty_kref_get(current->signal->tty); 2433 spin_unlock_irqrestore(¤t->sighand->siglock, flags); 2434 return tty; 2435 } 2436 2437 void audit_put_tty(struct tty_struct *tty) 2438 { 2439 tty_kref_put(tty); 2440 } 2441 2442 void audit_log_task_info(struct audit_buffer *ab) 2443 { 2444 const struct cred *cred; 2445 char comm[sizeof(current->comm)]; 2446 struct tty_struct *tty; 2447 2448 if (!ab) 2449 return; 2450 2451 cred = current_cred(); 2452 tty = audit_get_tty(); 2453 audit_log_format(ab, 2454 " ppid=%d pid=%d auid=%u uid=%u gid=%u" 2455 " euid=%u suid=%u fsuid=%u" 2456 " egid=%u sgid=%u fsgid=%u tty=%s ses=%u", 2457 task_ppid_nr(current), 2458 task_tgid_nr(current), 2459 from_kuid(&init_user_ns, audit_get_loginuid(current)), 2460 from_kuid(&init_user_ns, cred->uid), 2461 from_kgid(&init_user_ns, cred->gid), 2462 from_kuid(&init_user_ns, cred->euid), 2463 from_kuid(&init_user_ns, cred->suid), 2464 from_kuid(&init_user_ns, cred->fsuid), 2465 from_kgid(&init_user_ns, cred->egid), 2466 from_kgid(&init_user_ns, cred->sgid), 2467 from_kgid(&init_user_ns, cred->fsgid), 2468 tty ? tty_name(tty) : "(none)", 2469 audit_get_sessionid(current)); 2470 audit_put_tty(tty); 2471 audit_log_format(ab, " comm="); 2472 audit_log_untrustedstring(ab, get_task_comm(comm, current)); 2473 audit_log_d_path_exe(ab, current->mm); 2474 audit_log_task_context(ab); 2475 } 2476 EXPORT_SYMBOL(audit_log_task_info); 2477 2478 /** 2479 * audit_log_path_denied - report a path restriction denial 2480 * @type: audit message type (AUDIT_ANOM_LINK, AUDIT_ANOM_CREAT, etc) 2481 * @operation: specific operation name 2482 */ 2483 void audit_log_path_denied(int type, const char *operation) 2484 { 2485 struct audit_buffer *ab; 2486 2487 if (!audit_enabled) 2488 return; 2489 2490 /* Generate log with subject, operation, outcome. */ 2491 ab = audit_log_start(audit_context(), GFP_KERNEL, type); 2492 if (!ab) 2493 return; 2494 audit_log_format(ab, "op=%s", operation); 2495 audit_log_task_info(ab); 2496 audit_log_format(ab, " res=0"); 2497 audit_log_end(ab); 2498 } 2499 2500 int audit_log_nf_skb(struct audit_buffer *ab, 2501 const struct sk_buff *skb, u8 nfproto) 2502 { 2503 /* find the IP protocol in the case of NFPROTO_BRIDGE */ 2504 if (nfproto == NFPROTO_BRIDGE) { 2505 switch (eth_hdr(skb)->h_proto) { 2506 case htons(ETH_P_IP): 2507 nfproto = NFPROTO_IPV4; 2508 break; 2509 case htons(ETH_P_IPV6): 2510 nfproto = NFPROTO_IPV6; 2511 break; 2512 default: 2513 goto unknown_proto; 2514 } 2515 } 2516 2517 switch (nfproto) { 2518 case NFPROTO_IPV4: { 2519 struct iphdr iph; 2520 const struct iphdr *ih; 2521 2522 ih = skb_header_pointer(skb, skb_network_offset(skb), 2523 sizeof(iph), &iph); 2524 if (!ih) 2525 return -ENOMEM; 2526 2527 switch (ih->protocol) { 2528 case IPPROTO_TCP: { 2529 struct tcphdr _tcph; 2530 const struct tcphdr *th; 2531 2532 th = skb_header_pointer(skb, skb_transport_offset(skb), 2533 sizeof(_tcph), &_tcph); 2534 if (!th) 2535 return -ENOMEM; 2536 2537 audit_log_format(ab, " saddr=%pI4 daddr=%pI4 proto=%hhu sport=%hu dport=%hu", 2538 &ih->saddr, &ih->daddr, ih->protocol, 2539 ntohs(th->source), ntohs(th->dest)); 2540 break; 2541 } 2542 case IPPROTO_UDP: 2543 case IPPROTO_UDPLITE: { 2544 struct udphdr _udph; 2545 const struct udphdr *uh; 2546 2547 uh = skb_header_pointer(skb, skb_transport_offset(skb), 2548 sizeof(_udph), &_udph); 2549 if (!uh) 2550 return -ENOMEM; 2551 2552 audit_log_format(ab, " saddr=%pI4 daddr=%pI4 proto=%hhu sport=%hu dport=%hu", 2553 &ih->saddr, &ih->daddr, ih->protocol, 2554 ntohs(uh->source), ntohs(uh->dest)); 2555 break; 2556 } 2557 case IPPROTO_SCTP: { 2558 struct sctphdr _sctph; 2559 const struct sctphdr *sh; 2560 2561 sh = skb_header_pointer(skb, skb_transport_offset(skb), 2562 sizeof(_sctph), &_sctph); 2563 if (!sh) 2564 return -ENOMEM; 2565 2566 audit_log_format(ab, " saddr=%pI4 daddr=%pI4 proto=%hhu sport=%hu dport=%hu", 2567 &ih->saddr, &ih->daddr, ih->protocol, 2568 ntohs(sh->source), ntohs(sh->dest)); 2569 break; 2570 } 2571 default: 2572 audit_log_format(ab, " saddr=%pI4 daddr=%pI4 proto=%hhu", 2573 &ih->saddr, &ih->daddr, ih->protocol); 2574 } 2575 2576 break; 2577 } 2578 case NFPROTO_IPV6: { 2579 struct ipv6hdr iph; 2580 const struct ipv6hdr *ih; 2581 u8 nexthdr; 2582 __be16 frag_off; 2583 2584 ih = skb_header_pointer(skb, skb_network_offset(skb), 2585 sizeof(iph), &iph); 2586 if (!ih) 2587 return -ENOMEM; 2588 2589 nexthdr = ih->nexthdr; 2590 ipv6_skip_exthdr(skb, skb_network_offset(skb) + sizeof(iph), 2591 &nexthdr, &frag_off); 2592 2593 switch (nexthdr) { 2594 case IPPROTO_TCP: { 2595 struct tcphdr _tcph; 2596 const struct tcphdr *th; 2597 2598 th = skb_header_pointer(skb, skb_transport_offset(skb), 2599 sizeof(_tcph), &_tcph); 2600 if (!th) 2601 return -ENOMEM; 2602 2603 audit_log_format(ab, " saddr=%pI6c daddr=%pI6c proto=%hhu sport=%hu dport=%hu", 2604 &ih->saddr, &ih->daddr, nexthdr, 2605 ntohs(th->source), ntohs(th->dest)); 2606 break; 2607 } 2608 case IPPROTO_UDP: 2609 case IPPROTO_UDPLITE: { 2610 struct udphdr _udph; 2611 const struct udphdr *uh; 2612 2613 uh = skb_header_pointer(skb, skb_transport_offset(skb), 2614 sizeof(_udph), &_udph); 2615 if (!uh) 2616 return -ENOMEM; 2617 2618 audit_log_format(ab, " saddr=%pI6c daddr=%pI6c proto=%hhu sport=%hu dport=%hu", 2619 &ih->saddr, &ih->daddr, nexthdr, 2620 ntohs(uh->source), ntohs(uh->dest)); 2621 break; 2622 } 2623 case IPPROTO_SCTP: { 2624 struct sctphdr _sctph; 2625 const struct sctphdr *sh; 2626 2627 sh = skb_header_pointer(skb, skb_transport_offset(skb), 2628 sizeof(_sctph), &_sctph); 2629 if (!sh) 2630 return -ENOMEM; 2631 2632 audit_log_format(ab, " saddr=%pI6c daddr=%pI6c proto=%hhu sport=%hu dport=%hu", 2633 &ih->saddr, &ih->daddr, nexthdr, 2634 ntohs(sh->source), ntohs(sh->dest)); 2635 break; 2636 } 2637 default: 2638 audit_log_format(ab, " saddr=%pI6c daddr=%pI6c proto=%hhu", 2639 &ih->saddr, &ih->daddr, nexthdr); 2640 } 2641 2642 break; 2643 } 2644 default: 2645 goto unknown_proto; 2646 } 2647 2648 return 0; 2649 2650 unknown_proto: 2651 audit_log_format(ab, " saddr=? daddr=? proto=?"); 2652 return -EPFNOSUPPORT; 2653 } 2654 EXPORT_SYMBOL(audit_log_nf_skb); 2655 2656 /* global counter which is incremented every time something logs in */ 2657 static atomic_t session_id = ATOMIC_INIT(0); 2658 2659 static int audit_set_loginuid_perm(kuid_t loginuid) 2660 { 2661 /* if we are unset, we don't need privs */ 2662 if (!audit_loginuid_set(current)) 2663 return 0; 2664 /* if AUDIT_FEATURE_LOGINUID_IMMUTABLE means never ever allow a change*/ 2665 if (is_audit_feature_set(AUDIT_FEATURE_LOGINUID_IMMUTABLE)) 2666 return -EPERM; 2667 /* it is set, you need permission */ 2668 if (!capable(CAP_AUDIT_CONTROL)) 2669 return -EPERM; 2670 /* reject if this is not an unset and we don't allow that */ 2671 if (is_audit_feature_set(AUDIT_FEATURE_ONLY_UNSET_LOGINUID) 2672 && uid_valid(loginuid)) 2673 return -EPERM; 2674 return 0; 2675 } 2676 2677 static void audit_log_set_loginuid(kuid_t koldloginuid, kuid_t kloginuid, 2678 unsigned int oldsessionid, 2679 unsigned int sessionid, int rc) 2680 { 2681 struct audit_buffer *ab; 2682 uid_t uid, oldloginuid, loginuid; 2683 struct tty_struct *tty; 2684 2685 if (!audit_enabled) 2686 return; 2687 2688 ab = audit_log_start(audit_context(), GFP_KERNEL, AUDIT_LOGIN); 2689 if (!ab) 2690 return; 2691 2692 uid = from_kuid(&init_user_ns, task_uid(current)); 2693 oldloginuid = from_kuid(&init_user_ns, koldloginuid); 2694 loginuid = from_kuid(&init_user_ns, kloginuid); 2695 tty = audit_get_tty(); 2696 2697 audit_log_format(ab, "pid=%d uid=%u", task_tgid_nr(current), uid); 2698 audit_log_task_context(ab); 2699 audit_log_format(ab, " old-auid=%u auid=%u tty=%s old-ses=%u ses=%u res=%d", 2700 oldloginuid, loginuid, tty ? tty_name(tty) : "(none)", 2701 oldsessionid, sessionid, !rc); 2702 audit_put_tty(tty); 2703 audit_log_end(ab); 2704 } 2705 2706 /** 2707 * audit_set_loginuid - set current task's loginuid 2708 * @loginuid: loginuid value 2709 * 2710 * Returns 0. 2711 * 2712 * Called (set) from fs/proc/base.c::proc_loginuid_write(). 2713 */ 2714 int audit_set_loginuid(kuid_t loginuid) 2715 { 2716 unsigned int oldsessionid, sessionid = AUDIT_SID_UNSET; 2717 kuid_t oldloginuid; 2718 int rc; 2719 2720 oldloginuid = audit_get_loginuid(current); 2721 oldsessionid = audit_get_sessionid(current); 2722 2723 rc = audit_set_loginuid_perm(loginuid); 2724 if (rc) 2725 goto out; 2726 2727 /* are we setting or clearing? */ 2728 if (uid_valid(loginuid)) { 2729 sessionid = (unsigned int)atomic_inc_return(&session_id); 2730 if (unlikely(sessionid == AUDIT_SID_UNSET)) 2731 sessionid = (unsigned int)atomic_inc_return(&session_id); 2732 } 2733 2734 current->sessionid = sessionid; 2735 current->loginuid = loginuid; 2736 out: 2737 audit_log_set_loginuid(oldloginuid, loginuid, oldsessionid, sessionid, rc); 2738 return rc; 2739 } 2740 2741 /** 2742 * audit_signal_info - record signal info for shutting down audit subsystem 2743 * @sig: signal value 2744 * @t: task being signaled 2745 * 2746 * If the audit subsystem is being terminated, record the task (pid) 2747 * and uid that is doing that. 2748 */ 2749 int audit_signal_info(int sig, struct task_struct *t) 2750 { 2751 kuid_t uid = current_uid(), auid; 2752 2753 if (auditd_test_task(t) && 2754 (sig == SIGTERM || sig == SIGHUP || 2755 sig == SIGUSR1 || sig == SIGUSR2)) { 2756 audit_sig_pid = task_tgid_nr(current); 2757 auid = audit_get_loginuid(current); 2758 if (uid_valid(auid)) 2759 audit_sig_uid = auid; 2760 else 2761 audit_sig_uid = uid; 2762 security_current_getlsmprop_subj(&audit_sig_lsm); 2763 } 2764 2765 return audit_signal_info_syscall(t); 2766 } 2767 2768 /** 2769 * __audit_log_end - enqueue one audit record 2770 * @skb: the buffer to send 2771 */ 2772 static void __audit_log_end(struct sk_buff *skb) 2773 { 2774 struct nlmsghdr *nlh; 2775 2776 if (audit_rate_check()) { 2777 /* setup the netlink header, see the comments in 2778 * kauditd_send_multicast_skb() for length quirks */ 2779 nlh = nlmsg_hdr(skb); 2780 nlh->nlmsg_len = skb->len - NLMSG_HDRLEN; 2781 2782 /* queue the netlink packet */ 2783 skb_queue_tail(&audit_queue, skb); 2784 } else { 2785 audit_log_lost("rate limit exceeded"); 2786 kfree_skb(skb); 2787 } 2788 } 2789 2790 /** 2791 * audit_log_end - end one audit record 2792 * @ab: the audit_buffer 2793 * 2794 * We can not do a netlink send inside an irq context because it blocks (last 2795 * arg, flags, is not set to MSG_DONTWAIT), so the audit buffer is placed on a 2796 * queue and a kthread is scheduled to remove them from the queue outside the 2797 * irq context. May be called in any context. 2798 */ 2799 void audit_log_end(struct audit_buffer *ab) 2800 { 2801 struct sk_buff *skb; 2802 2803 if (!ab) 2804 return; 2805 2806 while ((skb = skb_dequeue(&ab->skb_list))) 2807 __audit_log_end(skb); 2808 2809 /* poke the kauditd thread */ 2810 wake_up_interruptible(&kauditd_wait); 2811 2812 audit_buffer_free(ab); 2813 } 2814 2815 /** 2816 * audit_log - Log an audit record 2817 * @ctx: audit context 2818 * @gfp_mask: type of allocation 2819 * @type: audit message type 2820 * @fmt: format string to use 2821 * @...: variable parameters matching the format string 2822 * 2823 * This is a convenience function that calls audit_log_start, 2824 * audit_log_vformat, and audit_log_end. It may be called 2825 * in any context. 2826 */ 2827 void audit_log(struct audit_context *ctx, gfp_t gfp_mask, int type, 2828 const char *fmt, ...) 2829 { 2830 struct audit_buffer *ab; 2831 va_list args; 2832 2833 ab = audit_log_start(ctx, gfp_mask, type); 2834 if (ab) { 2835 va_start(args, fmt); 2836 audit_log_vformat(ab, fmt, args); 2837 va_end(args); 2838 audit_log_end(ab); 2839 } 2840 } 2841 2842 EXPORT_SYMBOL(audit_log_start); 2843 EXPORT_SYMBOL(audit_log_end); 2844 EXPORT_SYMBOL(audit_log_format); 2845 EXPORT_SYMBOL(audit_log); 2846