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v4.17
   1/* auditfilter.c -- filtering of audit events
   2 *
   3 * Copyright 2003-2004 Red Hat, Inc.
   4 * Copyright 2005 Hewlett-Packard Development Company, L.P.
   5 * Copyright 2005 IBM Corporation
   6 *
   7 * This program is free software; you can redistribute it and/or modify
   8 * it under the terms of the GNU General Public License as published by
   9 * the Free Software Foundation; either version 2 of the License, or
  10 * (at your option) any later version.
  11 *
  12 * This program is distributed in the hope that it will be useful,
  13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  15 * GNU General Public License for more details.
  16 *
  17 * You should have received a copy of the GNU General Public License
  18 * along with this program; if not, write to the Free Software
  19 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
  20 */
  21
  22#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  23
  24#include <linux/kernel.h>
  25#include <linux/audit.h>
  26#include <linux/kthread.h>
  27#include <linux/mutex.h>
  28#include <linux/fs.h>
  29#include <linux/namei.h>
  30#include <linux/netlink.h>
  31#include <linux/sched.h>
  32#include <linux/slab.h>
  33#include <linux/security.h>
  34#include <net/net_namespace.h>
  35#include <net/sock.h>
  36#include "audit.h"
  37
  38/*
  39 * Locking model:
  40 *
  41 * audit_filter_mutex:
  42 *		Synchronizes writes and blocking reads of audit's filterlist
  43 *		data.  Rcu is used to traverse the filterlist and access
  44 *		contents of structs audit_entry, audit_watch and opaque
  45 *		LSM rules during filtering.  If modified, these structures
  46 *		must be copied and replace their counterparts in the filterlist.
  47 *		An audit_parent struct is not accessed during filtering, so may
  48 *		be written directly provided audit_filter_mutex is held.
  49 */
  50
  51/* Audit filter lists, defined in <linux/audit.h> */
  52struct list_head audit_filter_list[AUDIT_NR_FILTERS] = {
  53	LIST_HEAD_INIT(audit_filter_list[0]),
  54	LIST_HEAD_INIT(audit_filter_list[1]),
  55	LIST_HEAD_INIT(audit_filter_list[2]),
  56	LIST_HEAD_INIT(audit_filter_list[3]),
  57	LIST_HEAD_INIT(audit_filter_list[4]),
  58	LIST_HEAD_INIT(audit_filter_list[5]),
  59	LIST_HEAD_INIT(audit_filter_list[6]),
  60#if AUDIT_NR_FILTERS != 7
  61#error Fix audit_filter_list initialiser
  62#endif
  63};
  64static struct list_head audit_rules_list[AUDIT_NR_FILTERS] = {
  65	LIST_HEAD_INIT(audit_rules_list[0]),
  66	LIST_HEAD_INIT(audit_rules_list[1]),
  67	LIST_HEAD_INIT(audit_rules_list[2]),
  68	LIST_HEAD_INIT(audit_rules_list[3]),
  69	LIST_HEAD_INIT(audit_rules_list[4]),
  70	LIST_HEAD_INIT(audit_rules_list[5]),
  71	LIST_HEAD_INIT(audit_rules_list[6]),
  72};
  73
  74DEFINE_MUTEX(audit_filter_mutex);
  75
  76static void audit_free_lsm_field(struct audit_field *f)
  77{
  78	switch (f->type) {
  79	case AUDIT_SUBJ_USER:
  80	case AUDIT_SUBJ_ROLE:
  81	case AUDIT_SUBJ_TYPE:
  82	case AUDIT_SUBJ_SEN:
  83	case AUDIT_SUBJ_CLR:
  84	case AUDIT_OBJ_USER:
  85	case AUDIT_OBJ_ROLE:
  86	case AUDIT_OBJ_TYPE:
  87	case AUDIT_OBJ_LEV_LOW:
  88	case AUDIT_OBJ_LEV_HIGH:
  89		kfree(f->lsm_str);
  90		security_audit_rule_free(f->lsm_rule);
  91	}
  92}
  93
  94static inline void audit_free_rule(struct audit_entry *e)
  95{
  96	int i;
  97	struct audit_krule *erule = &e->rule;
  98
  99	/* some rules don't have associated watches */
 100	if (erule->watch)
 101		audit_put_watch(erule->watch);
 102	if (erule->fields)
 103		for (i = 0; i < erule->field_count; i++)
 104			audit_free_lsm_field(&erule->fields[i]);
 
 
 
 105	kfree(erule->fields);
 106	kfree(erule->filterkey);
 107	kfree(e);
 108}
 109
 110void audit_free_rule_rcu(struct rcu_head *head)
 111{
 112	struct audit_entry *e = container_of(head, struct audit_entry, rcu);
 113	audit_free_rule(e);
 114}
 115
 116/* Initialize an audit filterlist entry. */
 117static inline struct audit_entry *audit_init_entry(u32 field_count)
 118{
 119	struct audit_entry *entry;
 120	struct audit_field *fields;
 121
 122	entry = kzalloc(sizeof(*entry), GFP_KERNEL);
 123	if (unlikely(!entry))
 124		return NULL;
 125
 126	fields = kcalloc(field_count, sizeof(*fields), GFP_KERNEL);
 127	if (unlikely(!fields)) {
 128		kfree(entry);
 129		return NULL;
 130	}
 131	entry->rule.fields = fields;
 132
 133	return entry;
 134}
 135
 136/* Unpack a filter field's string representation from user-space
 137 * buffer. */
 138char *audit_unpack_string(void **bufp, size_t *remain, size_t len)
 139{
 140	char *str;
 141
 142	if (!*bufp || (len == 0) || (len > *remain))
 143		return ERR_PTR(-EINVAL);
 144
 145	/* Of the currently implemented string fields, PATH_MAX
 146	 * defines the longest valid length.
 147	 */
 148	if (len > PATH_MAX)
 149		return ERR_PTR(-ENAMETOOLONG);
 150
 151	str = kmalloc(len + 1, GFP_KERNEL);
 152	if (unlikely(!str))
 153		return ERR_PTR(-ENOMEM);
 154
 155	memcpy(str, *bufp, len);
 156	str[len] = 0;
 157	*bufp += len;
 158	*remain -= len;
 159
 160	return str;
 161}
 162
 163/* Translate an inode field to kernel representation. */
 164static inline int audit_to_inode(struct audit_krule *krule,
 165				 struct audit_field *f)
 166{
 167	if (krule->listnr != AUDIT_FILTER_EXIT ||
 168	    krule->inode_f || krule->watch || krule->tree ||
 169	    (f->op != Audit_equal && f->op != Audit_not_equal))
 170		return -EINVAL;
 171
 172	krule->inode_f = f;
 173	return 0;
 174}
 175
 176static __u32 *classes[AUDIT_SYSCALL_CLASSES];
 177
 178int __init audit_register_class(int class, unsigned *list)
 179{
 180	__u32 *p = kcalloc(AUDIT_BITMASK_SIZE, sizeof(__u32), GFP_KERNEL);
 181	if (!p)
 182		return -ENOMEM;
 183	while (*list != ~0U) {
 184		unsigned n = *list++;
 185		if (n >= AUDIT_BITMASK_SIZE * 32 - AUDIT_SYSCALL_CLASSES) {
 186			kfree(p);
 187			return -EINVAL;
 188		}
 189		p[AUDIT_WORD(n)] |= AUDIT_BIT(n);
 190	}
 191	if (class >= AUDIT_SYSCALL_CLASSES || classes[class]) {
 192		kfree(p);
 193		return -EINVAL;
 194	}
 195	classes[class] = p;
 196	return 0;
 197}
 198
 199int audit_match_class(int class, unsigned syscall)
 200{
 201	if (unlikely(syscall >= AUDIT_BITMASK_SIZE * 32))
 202		return 0;
 203	if (unlikely(class >= AUDIT_SYSCALL_CLASSES || !classes[class]))
 204		return 0;
 205	return classes[class][AUDIT_WORD(syscall)] & AUDIT_BIT(syscall);
 206}
 207
 208#ifdef CONFIG_AUDITSYSCALL
 209static inline int audit_match_class_bits(int class, u32 *mask)
 210{
 211	int i;
 212
 213	if (classes[class]) {
 214		for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 215			if (mask[i] & classes[class][i])
 216				return 0;
 217	}
 218	return 1;
 219}
 220
 221static int audit_match_signal(struct audit_entry *entry)
 222{
 223	struct audit_field *arch = entry->rule.arch_f;
 224
 225	if (!arch) {
 226		/* When arch is unspecified, we must check both masks on biarch
 227		 * as syscall number alone is ambiguous. */
 228		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL,
 229					       entry->rule.mask) &&
 230			audit_match_class_bits(AUDIT_CLASS_SIGNAL_32,
 231					       entry->rule.mask));
 232	}
 233
 234	switch(audit_classify_arch(arch->val)) {
 235	case 0: /* native */
 236		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL,
 237					       entry->rule.mask));
 238	case 1: /* 32bit on biarch */
 239		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL_32,
 240					       entry->rule.mask));
 241	default:
 242		return 1;
 243	}
 244}
 245#endif
 246
 247/* Common user-space to kernel rule translation. */
 248static inline struct audit_entry *audit_to_entry_common(struct audit_rule_data *rule)
 249{
 250	unsigned listnr;
 251	struct audit_entry *entry;
 252	int i, err;
 253
 254	err = -EINVAL;
 255	listnr = rule->flags & ~AUDIT_FILTER_PREPEND;
 256	switch(listnr) {
 257	default:
 258		goto exit_err;
 259#ifdef CONFIG_AUDITSYSCALL
 260	case AUDIT_FILTER_ENTRY:
 261		pr_err("AUDIT_FILTER_ENTRY is deprecated\n");
 262		goto exit_err;
 263	case AUDIT_FILTER_EXIT:
 264	case AUDIT_FILTER_TASK:
 265#endif
 266	case AUDIT_FILTER_USER:
 267	case AUDIT_FILTER_TYPE:
 268	case AUDIT_FILTER_FS:
 269		;
 270	}
 271	if (unlikely(rule->action == AUDIT_POSSIBLE)) {
 272		pr_err("AUDIT_POSSIBLE is deprecated\n");
 273		goto exit_err;
 274	}
 275	if (rule->action != AUDIT_NEVER && rule->action != AUDIT_ALWAYS)
 276		goto exit_err;
 277	if (rule->field_count > AUDIT_MAX_FIELDS)
 278		goto exit_err;
 279
 280	err = -ENOMEM;
 281	entry = audit_init_entry(rule->field_count);
 282	if (!entry)
 283		goto exit_err;
 284
 285	entry->rule.flags = rule->flags & AUDIT_FILTER_PREPEND;
 286	entry->rule.listnr = listnr;
 287	entry->rule.action = rule->action;
 288	entry->rule.field_count = rule->field_count;
 289
 290	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 291		entry->rule.mask[i] = rule->mask[i];
 292
 293	for (i = 0; i < AUDIT_SYSCALL_CLASSES; i++) {
 294		int bit = AUDIT_BITMASK_SIZE * 32 - i - 1;
 295		__u32 *p = &entry->rule.mask[AUDIT_WORD(bit)];
 296		__u32 *class;
 297
 298		if (!(*p & AUDIT_BIT(bit)))
 299			continue;
 300		*p &= ~AUDIT_BIT(bit);
 301		class = classes[i];
 302		if (class) {
 303			int j;
 304			for (j = 0; j < AUDIT_BITMASK_SIZE; j++)
 305				entry->rule.mask[j] |= class[j];
 306		}
 307	}
 308
 309	return entry;
 310
 311exit_err:
 312	return ERR_PTR(err);
 313}
 314
 315static u32 audit_ops[] =
 316{
 317	[Audit_equal] = AUDIT_EQUAL,
 318	[Audit_not_equal] = AUDIT_NOT_EQUAL,
 319	[Audit_bitmask] = AUDIT_BIT_MASK,
 320	[Audit_bittest] = AUDIT_BIT_TEST,
 321	[Audit_lt] = AUDIT_LESS_THAN,
 322	[Audit_gt] = AUDIT_GREATER_THAN,
 323	[Audit_le] = AUDIT_LESS_THAN_OR_EQUAL,
 324	[Audit_ge] = AUDIT_GREATER_THAN_OR_EQUAL,
 325};
 326
 327static u32 audit_to_op(u32 op)
 328{
 329	u32 n;
 330	for (n = Audit_equal; n < Audit_bad && audit_ops[n] != op; n++)
 331		;
 332	return n;
 333}
 334
 335/* check if an audit field is valid */
 336static int audit_field_valid(struct audit_entry *entry, struct audit_field *f)
 337{
 338	switch(f->type) {
 339	case AUDIT_MSGTYPE:
 340		if (entry->rule.listnr != AUDIT_FILTER_TYPE &&
 341		    entry->rule.listnr != AUDIT_FILTER_USER)
 342			return -EINVAL;
 343		break;
 344	case AUDIT_FSTYPE:
 345		if (entry->rule.listnr != AUDIT_FILTER_FS)
 346			return -EINVAL;
 347		break;
 348	}
 349
 350	switch(entry->rule.listnr) {
 351	case AUDIT_FILTER_FS:
 352		switch(f->type) {
 353		case AUDIT_FSTYPE:
 354		case AUDIT_FILTERKEY:
 355			break;
 356		default:
 357			return -EINVAL;
 358		}
 359	}
 360
 361	switch(f->type) {
 362	default:
 363		return -EINVAL;
 364	case AUDIT_UID:
 365	case AUDIT_EUID:
 366	case AUDIT_SUID:
 367	case AUDIT_FSUID:
 368	case AUDIT_LOGINUID:
 369	case AUDIT_OBJ_UID:
 370	case AUDIT_GID:
 371	case AUDIT_EGID:
 372	case AUDIT_SGID:
 373	case AUDIT_FSGID:
 374	case AUDIT_OBJ_GID:
 375	case AUDIT_PID:
 376	case AUDIT_PERS:
 377	case AUDIT_MSGTYPE:
 378	case AUDIT_PPID:
 379	case AUDIT_DEVMAJOR:
 380	case AUDIT_DEVMINOR:
 381	case AUDIT_EXIT:
 382	case AUDIT_SUCCESS:
 383	case AUDIT_INODE:
 384	case AUDIT_SESSIONID:
 385		/* bit ops are only useful on syscall args */
 386		if (f->op == Audit_bitmask || f->op == Audit_bittest)
 387			return -EINVAL;
 388		break;
 389	case AUDIT_ARG0:
 390	case AUDIT_ARG1:
 391	case AUDIT_ARG2:
 392	case AUDIT_ARG3:
 393	case AUDIT_SUBJ_USER:
 394	case AUDIT_SUBJ_ROLE:
 395	case AUDIT_SUBJ_TYPE:
 396	case AUDIT_SUBJ_SEN:
 397	case AUDIT_SUBJ_CLR:
 398	case AUDIT_OBJ_USER:
 399	case AUDIT_OBJ_ROLE:
 400	case AUDIT_OBJ_TYPE:
 401	case AUDIT_OBJ_LEV_LOW:
 402	case AUDIT_OBJ_LEV_HIGH:
 403	case AUDIT_WATCH:
 404	case AUDIT_DIR:
 405	case AUDIT_FILTERKEY:
 406		break;
 407	case AUDIT_LOGINUID_SET:
 408		if ((f->val != 0) && (f->val != 1))
 409			return -EINVAL;
 410	/* FALL THROUGH */
 411	case AUDIT_ARCH:
 412	case AUDIT_FSTYPE:
 413		if (f->op != Audit_not_equal && f->op != Audit_equal)
 414			return -EINVAL;
 415		break;
 416	case AUDIT_PERM:
 417		if (f->val & ~15)
 418			return -EINVAL;
 419		break;
 420	case AUDIT_FILETYPE:
 421		if (f->val & ~S_IFMT)
 422			return -EINVAL;
 423		break;
 424	case AUDIT_FIELD_COMPARE:
 425		if (f->val > AUDIT_MAX_FIELD_COMPARE)
 426			return -EINVAL;
 427		break;
 428	case AUDIT_EXE:
 429		if (f->op != Audit_equal)
 430			return -EINVAL;
 431		if (entry->rule.listnr != AUDIT_FILTER_EXIT)
 432			return -EINVAL;
 433		break;
 434	}
 435	return 0;
 436}
 437
 438/* Translate struct audit_rule_data to kernel's rule representation. */
 439static struct audit_entry *audit_data_to_entry(struct audit_rule_data *data,
 440					       size_t datasz)
 441{
 442	int err = 0;
 443	struct audit_entry *entry;
 444	void *bufp;
 445	size_t remain = datasz - sizeof(struct audit_rule_data);
 446	int i;
 447	char *str;
 448	struct audit_fsnotify_mark *audit_mark;
 449
 450	entry = audit_to_entry_common(data);
 451	if (IS_ERR(entry))
 452		goto exit_nofree;
 453
 454	bufp = data->buf;
 
 455	for (i = 0; i < data->field_count; i++) {
 456		struct audit_field *f = &entry->rule.fields[i];
 457
 458		err = -EINVAL;
 459
 460		f->op = audit_to_op(data->fieldflags[i]);
 461		if (f->op == Audit_bad)
 462			goto exit_free;
 463
 464		f->type = data->fields[i];
 465		f->val = data->values[i];
 
 
 
 
 466
 467		/* Support legacy tests for a valid loginuid */
 468		if ((f->type == AUDIT_LOGINUID) && (f->val == AUDIT_UID_UNSET)) {
 469			f->type = AUDIT_LOGINUID_SET;
 470			f->val = 0;
 471			entry->rule.pflags |= AUDIT_LOGINUID_LEGACY;
 
 
 
 
 
 
 
 
 
 
 
 
 472		}
 473
 474		err = audit_field_valid(entry, f);
 475		if (err)
 476			goto exit_free;
 477
 478		err = -EINVAL;
 479		switch (f->type) {
 480		case AUDIT_LOGINUID:
 481		case AUDIT_UID:
 482		case AUDIT_EUID:
 483		case AUDIT_SUID:
 484		case AUDIT_FSUID:
 485		case AUDIT_OBJ_UID:
 486			f->uid = make_kuid(current_user_ns(), f->val);
 487			if (!uid_valid(f->uid))
 488				goto exit_free;
 489			break;
 490		case AUDIT_GID:
 491		case AUDIT_EGID:
 492		case AUDIT_SGID:
 493		case AUDIT_FSGID:
 494		case AUDIT_OBJ_GID:
 495			f->gid = make_kgid(current_user_ns(), f->val);
 496			if (!gid_valid(f->gid))
 497				goto exit_free;
 498			break;
 499		case AUDIT_ARCH:
 500			entry->rule.arch_f = f;
 501			break;
 502		case AUDIT_SUBJ_USER:
 503		case AUDIT_SUBJ_ROLE:
 504		case AUDIT_SUBJ_TYPE:
 505		case AUDIT_SUBJ_SEN:
 506		case AUDIT_SUBJ_CLR:
 507		case AUDIT_OBJ_USER:
 508		case AUDIT_OBJ_ROLE:
 509		case AUDIT_OBJ_TYPE:
 510		case AUDIT_OBJ_LEV_LOW:
 511		case AUDIT_OBJ_LEV_HIGH:
 512			str = audit_unpack_string(&bufp, &remain, f->val);
 513			if (IS_ERR(str))
 514				goto exit_free;
 515			entry->rule.buflen += f->val;
 516
 517			err = security_audit_rule_init(f->type, f->op, str,
 518						       (void **)&f->lsm_rule);
 519			/* Keep currently invalid fields around in case they
 520			 * become valid after a policy reload. */
 521			if (err == -EINVAL) {
 522				pr_warn("audit rule for LSM \'%s\' is invalid\n",
 523					str);
 524				err = 0;
 525			}
 526			if (err) {
 527				kfree(str);
 528				goto exit_free;
 529			} else
 530				f->lsm_str = str;
 531			break;
 532		case AUDIT_WATCH:
 533			str = audit_unpack_string(&bufp, &remain, f->val);
 534			if (IS_ERR(str))
 535				goto exit_free;
 536			entry->rule.buflen += f->val;
 537
 538			err = audit_to_watch(&entry->rule, str, f->val, f->op);
 539			if (err) {
 540				kfree(str);
 541				goto exit_free;
 542			}
 543			break;
 544		case AUDIT_DIR:
 545			str = audit_unpack_string(&bufp, &remain, f->val);
 546			if (IS_ERR(str))
 547				goto exit_free;
 548			entry->rule.buflen += f->val;
 549
 550			err = audit_make_tree(&entry->rule, str, f->op);
 551			kfree(str);
 552			if (err)
 553				goto exit_free;
 554			break;
 555		case AUDIT_INODE:
 556			err = audit_to_inode(&entry->rule, f);
 557			if (err)
 558				goto exit_free;
 559			break;
 560		case AUDIT_FILTERKEY:
 561			if (entry->rule.filterkey || f->val > AUDIT_MAX_KEY_LEN)
 562				goto exit_free;
 563			str = audit_unpack_string(&bufp, &remain, f->val);
 564			if (IS_ERR(str))
 565				goto exit_free;
 566			entry->rule.buflen += f->val;
 567			entry->rule.filterkey = str;
 568			break;
 569		case AUDIT_EXE:
 570			if (entry->rule.exe || f->val > PATH_MAX)
 571				goto exit_free;
 572			str = audit_unpack_string(&bufp, &remain, f->val);
 573			if (IS_ERR(str)) {
 574				err = PTR_ERR(str);
 575				goto exit_free;
 576			}
 577			entry->rule.buflen += f->val;
 578
 579			audit_mark = audit_alloc_mark(&entry->rule, str, f->val);
 580			if (IS_ERR(audit_mark)) {
 581				kfree(str);
 582				err = PTR_ERR(audit_mark);
 583				goto exit_free;
 584			}
 585			entry->rule.exe = audit_mark;
 586			break;
 587		}
 588	}
 589
 590	if (entry->rule.inode_f && entry->rule.inode_f->op == Audit_not_equal)
 591		entry->rule.inode_f = NULL;
 592
 593exit_nofree:
 594	return entry;
 595
 596exit_free:
 
 
 597	if (entry->rule.tree)
 598		audit_put_tree(entry->rule.tree); /* that's the temporary one */
 599	if (entry->rule.exe)
 600		audit_remove_mark(entry->rule.exe); /* that's the template one */
 601	audit_free_rule(entry);
 602	return ERR_PTR(err);
 603}
 604
 605/* Pack a filter field's string representation into data block. */
 606static inline size_t audit_pack_string(void **bufp, const char *str)
 607{
 608	size_t len = strlen(str);
 609
 610	memcpy(*bufp, str, len);
 611	*bufp += len;
 612
 613	return len;
 614}
 615
 616/* Translate kernel rule representation to struct audit_rule_data. */
 617static struct audit_rule_data *audit_krule_to_data(struct audit_krule *krule)
 618{
 619	struct audit_rule_data *data;
 620	void *bufp;
 621	int i;
 622
 623	data = kmalloc(sizeof(*data) + krule->buflen, GFP_KERNEL);
 624	if (unlikely(!data))
 625		return NULL;
 626	memset(data, 0, sizeof(*data));
 627
 628	data->flags = krule->flags | krule->listnr;
 629	data->action = krule->action;
 630	data->field_count = krule->field_count;
 631	bufp = data->buf;
 632	for (i = 0; i < data->field_count; i++) {
 633		struct audit_field *f = &krule->fields[i];
 634
 635		data->fields[i] = f->type;
 636		data->fieldflags[i] = audit_ops[f->op];
 637		switch(f->type) {
 638		case AUDIT_SUBJ_USER:
 639		case AUDIT_SUBJ_ROLE:
 640		case AUDIT_SUBJ_TYPE:
 641		case AUDIT_SUBJ_SEN:
 642		case AUDIT_SUBJ_CLR:
 643		case AUDIT_OBJ_USER:
 644		case AUDIT_OBJ_ROLE:
 645		case AUDIT_OBJ_TYPE:
 646		case AUDIT_OBJ_LEV_LOW:
 647		case AUDIT_OBJ_LEV_HIGH:
 648			data->buflen += data->values[i] =
 649				audit_pack_string(&bufp, f->lsm_str);
 650			break;
 651		case AUDIT_WATCH:
 652			data->buflen += data->values[i] =
 653				audit_pack_string(&bufp,
 654						  audit_watch_path(krule->watch));
 655			break;
 656		case AUDIT_DIR:
 657			data->buflen += data->values[i] =
 658				audit_pack_string(&bufp,
 659						  audit_tree_path(krule->tree));
 660			break;
 661		case AUDIT_FILTERKEY:
 662			data->buflen += data->values[i] =
 663				audit_pack_string(&bufp, krule->filterkey);
 664			break;
 665		case AUDIT_EXE:
 666			data->buflen += data->values[i] =
 667				audit_pack_string(&bufp, audit_mark_path(krule->exe));
 668			break;
 669		case AUDIT_LOGINUID_SET:
 670			if (krule->pflags & AUDIT_LOGINUID_LEGACY && !f->val) {
 671				data->fields[i] = AUDIT_LOGINUID;
 672				data->values[i] = AUDIT_UID_UNSET;
 673				break;
 674			}
 675			/* fallthrough if set */
 676		default:
 677			data->values[i] = f->val;
 678		}
 679	}
 680	for (i = 0; i < AUDIT_BITMASK_SIZE; i++) data->mask[i] = krule->mask[i];
 681
 682	return data;
 683}
 684
 685/* Compare two rules in kernel format.  Considered success if rules
 686 * don't match. */
 687static int audit_compare_rule(struct audit_krule *a, struct audit_krule *b)
 688{
 689	int i;
 690
 691	if (a->flags != b->flags ||
 692	    a->pflags != b->pflags ||
 693	    a->listnr != b->listnr ||
 694	    a->action != b->action ||
 695	    a->field_count != b->field_count)
 696		return 1;
 697
 698	for (i = 0; i < a->field_count; i++) {
 699		if (a->fields[i].type != b->fields[i].type ||
 700		    a->fields[i].op != b->fields[i].op)
 701			return 1;
 702
 703		switch(a->fields[i].type) {
 704		case AUDIT_SUBJ_USER:
 705		case AUDIT_SUBJ_ROLE:
 706		case AUDIT_SUBJ_TYPE:
 707		case AUDIT_SUBJ_SEN:
 708		case AUDIT_SUBJ_CLR:
 709		case AUDIT_OBJ_USER:
 710		case AUDIT_OBJ_ROLE:
 711		case AUDIT_OBJ_TYPE:
 712		case AUDIT_OBJ_LEV_LOW:
 713		case AUDIT_OBJ_LEV_HIGH:
 714			if (strcmp(a->fields[i].lsm_str, b->fields[i].lsm_str))
 715				return 1;
 716			break;
 717		case AUDIT_WATCH:
 718			if (strcmp(audit_watch_path(a->watch),
 719				   audit_watch_path(b->watch)))
 720				return 1;
 721			break;
 722		case AUDIT_DIR:
 723			if (strcmp(audit_tree_path(a->tree),
 724				   audit_tree_path(b->tree)))
 725				return 1;
 726			break;
 727		case AUDIT_FILTERKEY:
 728			/* both filterkeys exist based on above type compare */
 729			if (strcmp(a->filterkey, b->filterkey))
 730				return 1;
 731			break;
 732		case AUDIT_EXE:
 733			/* both paths exist based on above type compare */
 734			if (strcmp(audit_mark_path(a->exe),
 735				   audit_mark_path(b->exe)))
 736				return 1;
 737			break;
 738		case AUDIT_UID:
 739		case AUDIT_EUID:
 740		case AUDIT_SUID:
 741		case AUDIT_FSUID:
 742		case AUDIT_LOGINUID:
 743		case AUDIT_OBJ_UID:
 744			if (!uid_eq(a->fields[i].uid, b->fields[i].uid))
 745				return 1;
 746			break;
 747		case AUDIT_GID:
 748		case AUDIT_EGID:
 749		case AUDIT_SGID:
 750		case AUDIT_FSGID:
 751		case AUDIT_OBJ_GID:
 752			if (!gid_eq(a->fields[i].gid, b->fields[i].gid))
 753				return 1;
 754			break;
 755		default:
 756			if (a->fields[i].val != b->fields[i].val)
 757				return 1;
 758		}
 759	}
 760
 761	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 762		if (a->mask[i] != b->mask[i])
 763			return 1;
 764
 765	return 0;
 766}
 767
 768/* Duplicate LSM field information.  The lsm_rule is opaque, so must be
 769 * re-initialized. */
 770static inline int audit_dupe_lsm_field(struct audit_field *df,
 771					   struct audit_field *sf)
 772{
 773	int ret = 0;
 774	char *lsm_str;
 775
 776	/* our own copy of lsm_str */
 777	lsm_str = kstrdup(sf->lsm_str, GFP_KERNEL);
 778	if (unlikely(!lsm_str))
 779		return -ENOMEM;
 780	df->lsm_str = lsm_str;
 781
 782	/* our own (refreshed) copy of lsm_rule */
 783	ret = security_audit_rule_init(df->type, df->op, df->lsm_str,
 784				       (void **)&df->lsm_rule);
 785	/* Keep currently invalid fields around in case they
 786	 * become valid after a policy reload. */
 787	if (ret == -EINVAL) {
 788		pr_warn("audit rule for LSM \'%s\' is invalid\n",
 789			df->lsm_str);
 790		ret = 0;
 791	}
 792
 793	return ret;
 794}
 795
 796/* Duplicate an audit rule.  This will be a deep copy with the exception
 797 * of the watch - that pointer is carried over.  The LSM specific fields
 798 * will be updated in the copy.  The point is to be able to replace the old
 799 * rule with the new rule in the filterlist, then free the old rule.
 800 * The rlist element is undefined; list manipulations are handled apart from
 801 * the initial copy. */
 802struct audit_entry *audit_dupe_rule(struct audit_krule *old)
 803{
 804	u32 fcount = old->field_count;
 805	struct audit_entry *entry;
 806	struct audit_krule *new;
 807	char *fk;
 808	int i, err = 0;
 809
 810	entry = audit_init_entry(fcount);
 811	if (unlikely(!entry))
 812		return ERR_PTR(-ENOMEM);
 813
 814	new = &entry->rule;
 
 815	new->flags = old->flags;
 816	new->pflags = old->pflags;
 817	new->listnr = old->listnr;
 818	new->action = old->action;
 819	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 820		new->mask[i] = old->mask[i];
 821	new->prio = old->prio;
 822	new->buflen = old->buflen;
 823	new->inode_f = old->inode_f;
 824	new->field_count = old->field_count;
 825
 826	/*
 827	 * note that we are OK with not refcounting here; audit_match_tree()
 828	 * never dereferences tree and we can't get false positives there
 829	 * since we'd have to have rule gone from the list *and* removed
 830	 * before the chunks found by lookup had been allocated, i.e. before
 831	 * the beginning of list scan.
 832	 */
 833	new->tree = old->tree;
 834	memcpy(new->fields, old->fields, sizeof(struct audit_field) * fcount);
 835
 836	/* deep copy this information, updating the lsm_rule fields, because
 837	 * the originals will all be freed when the old rule is freed. */
 838	for (i = 0; i < fcount; i++) {
 839		switch (new->fields[i].type) {
 840		case AUDIT_SUBJ_USER:
 841		case AUDIT_SUBJ_ROLE:
 842		case AUDIT_SUBJ_TYPE:
 843		case AUDIT_SUBJ_SEN:
 844		case AUDIT_SUBJ_CLR:
 845		case AUDIT_OBJ_USER:
 846		case AUDIT_OBJ_ROLE:
 847		case AUDIT_OBJ_TYPE:
 848		case AUDIT_OBJ_LEV_LOW:
 849		case AUDIT_OBJ_LEV_HIGH:
 850			err = audit_dupe_lsm_field(&new->fields[i],
 851						       &old->fields[i]);
 852			break;
 853		case AUDIT_FILTERKEY:
 854			fk = kstrdup(old->filterkey, GFP_KERNEL);
 855			if (unlikely(!fk))
 856				err = -ENOMEM;
 857			else
 858				new->filterkey = fk;
 859			break;
 860		case AUDIT_EXE:
 861			err = audit_dupe_exe(new, old);
 862			break;
 863		}
 864		if (err) {
 865			if (new->exe)
 866				audit_remove_mark(new->exe);
 867			audit_free_rule(entry);
 868			return ERR_PTR(err);
 869		}
 870	}
 871
 872	if (old->watch) {
 873		audit_get_watch(old->watch);
 874		new->watch = old->watch;
 875	}
 876
 877	return entry;
 878}
 879
 880/* Find an existing audit rule.
 881 * Caller must hold audit_filter_mutex to prevent stale rule data. */
 882static struct audit_entry *audit_find_rule(struct audit_entry *entry,
 883					   struct list_head **p)
 884{
 885	struct audit_entry *e, *found = NULL;
 886	struct list_head *list;
 887	int h;
 888
 889	if (entry->rule.inode_f) {
 890		h = audit_hash_ino(entry->rule.inode_f->val);
 891		*p = list = &audit_inode_hash[h];
 892	} else if (entry->rule.watch) {
 893		/* we don't know the inode number, so must walk entire hash */
 894		for (h = 0; h < AUDIT_INODE_BUCKETS; h++) {
 895			list = &audit_inode_hash[h];
 896			list_for_each_entry(e, list, list)
 897				if (!audit_compare_rule(&entry->rule, &e->rule)) {
 898					found = e;
 899					goto out;
 900				}
 901		}
 902		goto out;
 903	} else {
 904		*p = list = &audit_filter_list[entry->rule.listnr];
 905	}
 906
 907	list_for_each_entry(e, list, list)
 908		if (!audit_compare_rule(&entry->rule, &e->rule)) {
 909			found = e;
 910			goto out;
 911		}
 912
 913out:
 914	return found;
 915}
 916
 917static u64 prio_low = ~0ULL/2;
 918static u64 prio_high = ~0ULL/2 - 1;
 919
 920/* Add rule to given filterlist if not a duplicate. */
 921static inline int audit_add_rule(struct audit_entry *entry)
 922{
 923	struct audit_entry *e;
 924	struct audit_watch *watch = entry->rule.watch;
 925	struct audit_tree *tree = entry->rule.tree;
 926	struct list_head *list;
 927	int err = 0;
 928#ifdef CONFIG_AUDITSYSCALL
 929	int dont_count = 0;
 930
 931	/* If any of these, don't count towards total */
 932	switch(entry->rule.listnr) {
 933	case AUDIT_FILTER_USER:
 934	case AUDIT_FILTER_TYPE:
 935	case AUDIT_FILTER_FS:
 936		dont_count = 1;
 937	}
 938#endif
 939
 940	mutex_lock(&audit_filter_mutex);
 941	e = audit_find_rule(entry, &list);
 942	if (e) {
 943		mutex_unlock(&audit_filter_mutex);
 944		err = -EEXIST;
 945		/* normally audit_add_tree_rule() will free it on failure */
 946		if (tree)
 947			audit_put_tree(tree);
 948		return err;
 949	}
 950
 951	if (watch) {
 952		/* audit_filter_mutex is dropped and re-taken during this call */
 953		err = audit_add_watch(&entry->rule, &list);
 954		if (err) {
 955			mutex_unlock(&audit_filter_mutex);
 956			/*
 957			 * normally audit_add_tree_rule() will free it
 958			 * on failure
 959			 */
 960			if (tree)
 961				audit_put_tree(tree);
 962			return err;
 963		}
 964	}
 965	if (tree) {
 966		err = audit_add_tree_rule(&entry->rule);
 967		if (err) {
 968			mutex_unlock(&audit_filter_mutex);
 969			return err;
 970		}
 971	}
 972
 973	entry->rule.prio = ~0ULL;
 974	if (entry->rule.listnr == AUDIT_FILTER_EXIT) {
 975		if (entry->rule.flags & AUDIT_FILTER_PREPEND)
 976			entry->rule.prio = ++prio_high;
 977		else
 978			entry->rule.prio = --prio_low;
 979	}
 980
 981	if (entry->rule.flags & AUDIT_FILTER_PREPEND) {
 982		list_add(&entry->rule.list,
 983			 &audit_rules_list[entry->rule.listnr]);
 984		list_add_rcu(&entry->list, list);
 985		entry->rule.flags &= ~AUDIT_FILTER_PREPEND;
 986	} else {
 987		list_add_tail(&entry->rule.list,
 988			      &audit_rules_list[entry->rule.listnr]);
 989		list_add_tail_rcu(&entry->list, list);
 990	}
 991#ifdef CONFIG_AUDITSYSCALL
 992	if (!dont_count)
 993		audit_n_rules++;
 994
 995	if (!audit_match_signal(entry))
 996		audit_signals++;
 997#endif
 998	mutex_unlock(&audit_filter_mutex);
 999
 
 
 
 
 
1000	return err;
1001}
1002
1003/* Remove an existing rule from filterlist. */
1004int audit_del_rule(struct audit_entry *entry)
1005{
1006	struct audit_entry  *e;
 
1007	struct audit_tree *tree = entry->rule.tree;
1008	struct list_head *list;
1009	int ret = 0;
1010#ifdef CONFIG_AUDITSYSCALL
1011	int dont_count = 0;
1012
1013	/* If any of these, don't count towards total */
1014	switch(entry->rule.listnr) {
1015	case AUDIT_FILTER_USER:
1016	case AUDIT_FILTER_TYPE:
1017	case AUDIT_FILTER_FS:
1018		dont_count = 1;
1019	}
1020#endif
1021
1022	mutex_lock(&audit_filter_mutex);
1023	e = audit_find_rule(entry, &list);
1024	if (!e) {
 
1025		ret = -ENOENT;
1026		goto out;
1027	}
1028
1029	if (e->rule.watch)
1030		audit_remove_watch_rule(&e->rule);
1031
1032	if (e->rule.tree)
1033		audit_remove_tree_rule(&e->rule);
1034
1035	if (e->rule.exe)
1036		audit_remove_mark_rule(&e->rule);
 
1037
1038#ifdef CONFIG_AUDITSYSCALL
1039	if (!dont_count)
1040		audit_n_rules--;
1041
1042	if (!audit_match_signal(entry))
1043		audit_signals--;
1044#endif
1045
1046	list_del_rcu(&e->list);
1047	list_del(&e->rule.list);
1048	call_rcu(&e->rcu, audit_free_rule_rcu);
1049
1050out:
1051	mutex_unlock(&audit_filter_mutex);
1052
 
 
 
1053	if (tree)
1054		audit_put_tree(tree);	/* that's the temporary one */
1055
1056	return ret;
1057}
1058
1059/* List rules using struct audit_rule_data. */
1060static void audit_list_rules(int seq, struct sk_buff_head *q)
1061{
1062	struct sk_buff *skb;
1063	struct audit_krule *r;
1064	int i;
1065
1066	/* This is a blocking read, so use audit_filter_mutex instead of rcu
1067	 * iterator to sync with list writers. */
1068	for (i=0; i<AUDIT_NR_FILTERS; i++) {
1069		list_for_each_entry(r, &audit_rules_list[i], list) {
1070			struct audit_rule_data *data;
1071
1072			data = audit_krule_to_data(r);
1073			if (unlikely(!data))
1074				break;
1075			skb = audit_make_reply(seq, AUDIT_LIST_RULES, 0, 1,
1076					       data,
1077					       sizeof(*data) + data->buflen);
1078			if (skb)
1079				skb_queue_tail(q, skb);
1080			kfree(data);
1081		}
1082	}
1083	skb = audit_make_reply(seq, AUDIT_LIST_RULES, 1, 1, NULL, 0);
1084	if (skb)
1085		skb_queue_tail(q, skb);
1086}
1087
1088/* Log rule additions and removals */
1089static void audit_log_rule_change(char *action, struct audit_krule *rule, int res)
1090{
1091	struct audit_buffer *ab;
1092	uid_t loginuid = from_kuid(&init_user_ns, audit_get_loginuid(current));
1093	unsigned int sessionid = audit_get_sessionid(current);
1094
1095	if (!audit_enabled)
1096		return;
1097
1098	ab = audit_log_start(NULL, GFP_KERNEL, AUDIT_CONFIG_CHANGE);
1099	if (!ab)
1100		return;
1101	audit_log_format(ab, "auid=%u ses=%u" ,loginuid, sessionid);
1102	audit_log_task_context(ab);
1103	audit_log_format(ab, " op=%s", action);
 
1104	audit_log_key(ab, rule->filterkey);
1105	audit_log_format(ab, " list=%d res=%d", rule->listnr, res);
1106	audit_log_end(ab);
1107}
1108
1109/**
1110 * audit_rule_change - apply all rules to the specified message type
1111 * @type: audit message type
 
1112 * @seq: netlink audit message sequence (serial) number
1113 * @data: payload data
1114 * @datasz: size of payload data
1115 */
1116int audit_rule_change(int type, int seq, void *data, size_t datasz)
 
1117{
1118	int err = 0;
1119	struct audit_entry *entry;
1120
1121	entry = audit_data_to_entry(data, datasz);
1122	if (IS_ERR(entry))
1123		return PTR_ERR(entry);
1124
1125	switch (type) {
1126	case AUDIT_ADD_RULE:
 
 
 
 
1127		err = audit_add_rule(entry);
1128		audit_log_rule_change("add_rule", &entry->rule, !err);
 
 
1129		break;
1130	case AUDIT_DEL_RULE:
 
 
 
 
1131		err = audit_del_rule(entry);
1132		audit_log_rule_change("remove_rule", &entry->rule, !err);
 
1133		break;
1134	default:
1135		err = -EINVAL;
1136		WARN_ON(1);
1137	}
1138
1139	if (err || type == AUDIT_DEL_RULE) {
1140		if (entry->rule.exe)
1141			audit_remove_mark(entry->rule.exe);
1142		audit_free_rule(entry);
1143	}
1144
1145	return err;
1146}
1147
1148/**
1149 * audit_list_rules_send - list the audit rules
1150 * @request_skb: skb of request we are replying to (used to target the reply)
1151 * @seq: netlink audit message sequence (serial) number
1152 */
1153int audit_list_rules_send(struct sk_buff *request_skb, int seq)
1154{
1155	u32 portid = NETLINK_CB(request_skb).portid;
1156	struct net *net = sock_net(NETLINK_CB(request_skb).sk);
1157	struct task_struct *tsk;
1158	struct audit_netlink_list *dest;
1159	int err = 0;
1160
1161	/* We can't just spew out the rules here because we might fill
1162	 * the available socket buffer space and deadlock waiting for
1163	 * auditctl to read from it... which isn't ever going to
1164	 * happen if we're actually running in the context of auditctl
1165	 * trying to _send_ the stuff */
1166
1167	dest = kmalloc(sizeof(struct audit_netlink_list), GFP_KERNEL);
1168	if (!dest)
1169		return -ENOMEM;
1170	dest->net = get_net(net);
1171	dest->portid = portid;
1172	skb_queue_head_init(&dest->q);
1173
1174	mutex_lock(&audit_filter_mutex);
1175	audit_list_rules(seq, &dest->q);
1176	mutex_unlock(&audit_filter_mutex);
1177
1178	tsk = kthread_run(audit_send_list, dest, "audit_send_list");
1179	if (IS_ERR(tsk)) {
1180		skb_queue_purge(&dest->q);
1181		kfree(dest);
1182		err = PTR_ERR(tsk);
1183	}
1184
1185	return err;
1186}
1187
1188int audit_comparator(u32 left, u32 op, u32 right)
1189{
1190	switch (op) {
1191	case Audit_equal:
1192		return (left == right);
1193	case Audit_not_equal:
1194		return (left != right);
1195	case Audit_lt:
1196		return (left < right);
1197	case Audit_le:
1198		return (left <= right);
1199	case Audit_gt:
1200		return (left > right);
1201	case Audit_ge:
1202		return (left >= right);
1203	case Audit_bitmask:
1204		return (left & right);
1205	case Audit_bittest:
1206		return ((left & right) == right);
1207	default:
1208		BUG();
1209		return 0;
1210	}
1211}
1212
1213int audit_uid_comparator(kuid_t left, u32 op, kuid_t right)
1214{
1215	switch (op) {
1216	case Audit_equal:
1217		return uid_eq(left, right);
1218	case Audit_not_equal:
1219		return !uid_eq(left, right);
1220	case Audit_lt:
1221		return uid_lt(left, right);
1222	case Audit_le:
1223		return uid_lte(left, right);
1224	case Audit_gt:
1225		return uid_gt(left, right);
1226	case Audit_ge:
1227		return uid_gte(left, right);
1228	case Audit_bitmask:
1229	case Audit_bittest:
1230	default:
1231		BUG();
1232		return 0;
1233	}
1234}
1235
1236int audit_gid_comparator(kgid_t left, u32 op, kgid_t right)
1237{
1238	switch (op) {
1239	case Audit_equal:
1240		return gid_eq(left, right);
1241	case Audit_not_equal:
1242		return !gid_eq(left, right);
1243	case Audit_lt:
1244		return gid_lt(left, right);
1245	case Audit_le:
1246		return gid_lte(left, right);
1247	case Audit_gt:
1248		return gid_gt(left, right);
1249	case Audit_ge:
1250		return gid_gte(left, right);
1251	case Audit_bitmask:
1252	case Audit_bittest:
1253	default:
1254		BUG();
1255		return 0;
1256	}
1257}
1258
1259/**
1260 * parent_len - find the length of the parent portion of a pathname
1261 * @path: pathname of which to determine length
1262 */
1263int parent_len(const char *path)
1264{
1265	int plen;
1266	const char *p;
1267
1268	plen = strlen(path);
1269
1270	if (plen == 0)
1271		return plen;
1272
1273	/* disregard trailing slashes */
1274	p = path + plen - 1;
1275	while ((*p == '/') && (p > path))
1276		p--;
1277
1278	/* walk backward until we find the next slash or hit beginning */
1279	while ((*p != '/') && (p > path))
1280		p--;
1281
1282	/* did we find a slash? Then increment to include it in path */
1283	if (*p == '/')
1284		p++;
1285
1286	return p - path;
1287}
1288
1289/**
1290 * audit_compare_dname_path - compare given dentry name with last component in
1291 * 			      given path. Return of 0 indicates a match.
1292 * @dname:	dentry name that we're comparing
1293 * @path:	full pathname that we're comparing
1294 * @parentlen:	length of the parent if known. Passing in AUDIT_NAME_FULL
1295 * 		here indicates that we must compute this value.
1296 */
1297int audit_compare_dname_path(const char *dname, const char *path, int parentlen)
1298{
1299	int dlen, pathlen;
1300	const char *p;
1301
1302	dlen = strlen(dname);
1303	pathlen = strlen(path);
1304	if (pathlen < dlen)
1305		return 1;
1306
1307	parentlen = parentlen == AUDIT_NAME_FULL ? parent_len(path) : parentlen;
1308	if (pathlen - parentlen != dlen)
1309		return 1;
1310
1311	p = path + parentlen;
1312
1313	return strncmp(p, dname, dlen);
1314}
1315
1316int audit_filter(int msgtype, unsigned int listtype)
 
1317{
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1318	struct audit_entry *e;
1319	int ret = 1; /* Audit by default */
 
 
1320
1321	rcu_read_lock();
1322	if (list_empty(&audit_filter_list[listtype]))
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1323		goto unlock_and_return;
1324	list_for_each_entry_rcu(e, &audit_filter_list[listtype], list) {
1325		int i, result = 0;
1326
 
 
 
1327		for (i = 0; i < e->rule.field_count; i++) {
1328			struct audit_field *f = &e->rule.fields[i];
1329			pid_t pid;
1330			u32 sid;
1331
1332			switch (f->type) {
1333			case AUDIT_PID:
1334				pid = task_pid_nr(current);
1335				result = audit_comparator(pid, f->op, f->val);
1336				break;
1337			case AUDIT_UID:
1338				result = audit_uid_comparator(current_uid(), f->op, f->uid);
1339				break;
1340			case AUDIT_GID:
1341				result = audit_gid_comparator(current_gid(), f->op, f->gid);
1342				break;
1343			case AUDIT_LOGINUID:
1344				result = audit_uid_comparator(audit_get_loginuid(current),
1345							      f->op, f->uid);
1346				break;
1347			case AUDIT_LOGINUID_SET:
1348				result = audit_comparator(audit_loginuid_set(current),
1349							  f->op, f->val);
1350				break;
1351			case AUDIT_MSGTYPE:
1352				result = audit_comparator(msgtype, f->op, f->val);
1353				break;
1354			case AUDIT_SUBJ_USER:
1355			case AUDIT_SUBJ_ROLE:
1356			case AUDIT_SUBJ_TYPE:
1357			case AUDIT_SUBJ_SEN:
1358			case AUDIT_SUBJ_CLR:
1359				if (f->lsm_rule) {
1360					security_task_getsecid(current, &sid);
1361					result = security_audit_rule_match(sid,
1362							f->type, f->op, f->lsm_rule, NULL);
1363				}
1364				break;
1365			default:
1366				goto unlock_and_return;
1367			}
1368			if (result < 0) /* error */
1369				goto unlock_and_return;
1370			if (!result)
1371				break;
1372		}
1373		if (result > 0) {
1374			if (e->rule.action == AUDIT_NEVER || listtype == AUDIT_FILTER_TYPE)
1375				ret = 0;
1376			break;
1377		}
 
 
1378	}
1379unlock_and_return:
1380	rcu_read_unlock();
1381	return ret;
1382}
1383
1384static int update_lsm_rule(struct audit_krule *r)
1385{
1386	struct audit_entry *entry = container_of(r, struct audit_entry, rule);
1387	struct audit_entry *nentry;
1388	int err = 0;
1389
1390	if (!security_audit_rule_known(r))
1391		return 0;
1392
1393	nentry = audit_dupe_rule(r);
1394	if (entry->rule.exe)
1395		audit_remove_mark(entry->rule.exe);
1396	if (IS_ERR(nentry)) {
1397		/* save the first error encountered for the
1398		 * return value */
1399		err = PTR_ERR(nentry);
1400		audit_panic("error updating LSM filters");
1401		if (r->watch)
1402			list_del(&r->rlist);
1403		list_del_rcu(&entry->list);
1404		list_del(&r->list);
1405	} else {
1406		if (r->watch || r->tree)
1407			list_replace_init(&r->rlist, &nentry->rule.rlist);
1408		list_replace_rcu(&entry->list, &nentry->list);
1409		list_replace(&r->list, &nentry->rule.list);
1410	}
1411	call_rcu(&entry->rcu, audit_free_rule_rcu);
1412
1413	return err;
1414}
1415
1416/* This function will re-initialize the lsm_rule field of all applicable rules.
1417 * It will traverse the filter lists serarching for rules that contain LSM
1418 * specific filter fields.  When such a rule is found, it is copied, the
1419 * LSM field is re-initialized, and the old rule is replaced with the
1420 * updated rule. */
1421int audit_update_lsm_rules(void)
1422{
1423	struct audit_krule *r, *n;
1424	int i, err = 0;
1425
1426	/* audit_filter_mutex synchronizes the writers */
1427	mutex_lock(&audit_filter_mutex);
1428
1429	for (i = 0; i < AUDIT_NR_FILTERS; i++) {
1430		list_for_each_entry_safe(r, n, &audit_rules_list[i], list) {
1431			int res = update_lsm_rule(r);
1432			if (!err)
1433				err = res;
1434		}
1435	}
1436	mutex_unlock(&audit_filter_mutex);
1437
1438	return err;
1439}
v3.15
   1/* auditfilter.c -- filtering of audit events
   2 *
   3 * Copyright 2003-2004 Red Hat, Inc.
   4 * Copyright 2005 Hewlett-Packard Development Company, L.P.
   5 * Copyright 2005 IBM Corporation
   6 *
   7 * This program is free software; you can redistribute it and/or modify
   8 * it under the terms of the GNU General Public License as published by
   9 * the Free Software Foundation; either version 2 of the License, or
  10 * (at your option) any later version.
  11 *
  12 * This program is distributed in the hope that it will be useful,
  13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  15 * GNU General Public License for more details.
  16 *
  17 * You should have received a copy of the GNU General Public License
  18 * along with this program; if not, write to the Free Software
  19 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
  20 */
  21
  22#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  23
  24#include <linux/kernel.h>
  25#include <linux/audit.h>
  26#include <linux/kthread.h>
  27#include <linux/mutex.h>
  28#include <linux/fs.h>
  29#include <linux/namei.h>
  30#include <linux/netlink.h>
  31#include <linux/sched.h>
  32#include <linux/slab.h>
  33#include <linux/security.h>
  34#include <net/net_namespace.h>
  35#include <net/sock.h>
  36#include "audit.h"
  37
  38/*
  39 * Locking model:
  40 *
  41 * audit_filter_mutex:
  42 * 		Synchronizes writes and blocking reads of audit's filterlist
  43 * 		data.  Rcu is used to traverse the filterlist and access
  44 * 		contents of structs audit_entry, audit_watch and opaque
  45 * 		LSM rules during filtering.  If modified, these structures
  46 * 		must be copied and replace their counterparts in the filterlist.
  47 * 		An audit_parent struct is not accessed during filtering, so may
  48 * 		be written directly provided audit_filter_mutex is held.
  49 */
  50
  51/* Audit filter lists, defined in <linux/audit.h> */
  52struct list_head audit_filter_list[AUDIT_NR_FILTERS] = {
  53	LIST_HEAD_INIT(audit_filter_list[0]),
  54	LIST_HEAD_INIT(audit_filter_list[1]),
  55	LIST_HEAD_INIT(audit_filter_list[2]),
  56	LIST_HEAD_INIT(audit_filter_list[3]),
  57	LIST_HEAD_INIT(audit_filter_list[4]),
  58	LIST_HEAD_INIT(audit_filter_list[5]),
  59#if AUDIT_NR_FILTERS != 6
 
  60#error Fix audit_filter_list initialiser
  61#endif
  62};
  63static struct list_head audit_rules_list[AUDIT_NR_FILTERS] = {
  64	LIST_HEAD_INIT(audit_rules_list[0]),
  65	LIST_HEAD_INIT(audit_rules_list[1]),
  66	LIST_HEAD_INIT(audit_rules_list[2]),
  67	LIST_HEAD_INIT(audit_rules_list[3]),
  68	LIST_HEAD_INIT(audit_rules_list[4]),
  69	LIST_HEAD_INIT(audit_rules_list[5]),
 
  70};
  71
  72DEFINE_MUTEX(audit_filter_mutex);
  73
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
  74static inline void audit_free_rule(struct audit_entry *e)
  75{
  76	int i;
  77	struct audit_krule *erule = &e->rule;
  78
  79	/* some rules don't have associated watches */
  80	if (erule->watch)
  81		audit_put_watch(erule->watch);
  82	if (erule->fields)
  83		for (i = 0; i < erule->field_count; i++) {
  84			struct audit_field *f = &erule->fields[i];
  85			kfree(f->lsm_str);
  86			security_audit_rule_free(f->lsm_rule);
  87		}
  88	kfree(erule->fields);
  89	kfree(erule->filterkey);
  90	kfree(e);
  91}
  92
  93void audit_free_rule_rcu(struct rcu_head *head)
  94{
  95	struct audit_entry *e = container_of(head, struct audit_entry, rcu);
  96	audit_free_rule(e);
  97}
  98
  99/* Initialize an audit filterlist entry. */
 100static inline struct audit_entry *audit_init_entry(u32 field_count)
 101{
 102	struct audit_entry *entry;
 103	struct audit_field *fields;
 104
 105	entry = kzalloc(sizeof(*entry), GFP_KERNEL);
 106	if (unlikely(!entry))
 107		return NULL;
 108
 109	fields = kzalloc(sizeof(*fields) * field_count, GFP_KERNEL);
 110	if (unlikely(!fields)) {
 111		kfree(entry);
 112		return NULL;
 113	}
 114	entry->rule.fields = fields;
 115
 116	return entry;
 117}
 118
 119/* Unpack a filter field's string representation from user-space
 120 * buffer. */
 121char *audit_unpack_string(void **bufp, size_t *remain, size_t len)
 122{
 123	char *str;
 124
 125	if (!*bufp || (len == 0) || (len > *remain))
 126		return ERR_PTR(-EINVAL);
 127
 128	/* Of the currently implemented string fields, PATH_MAX
 129	 * defines the longest valid length.
 130	 */
 131	if (len > PATH_MAX)
 132		return ERR_PTR(-ENAMETOOLONG);
 133
 134	str = kmalloc(len + 1, GFP_KERNEL);
 135	if (unlikely(!str))
 136		return ERR_PTR(-ENOMEM);
 137
 138	memcpy(str, *bufp, len);
 139	str[len] = 0;
 140	*bufp += len;
 141	*remain -= len;
 142
 143	return str;
 144}
 145
 146/* Translate an inode field to kernel respresentation. */
 147static inline int audit_to_inode(struct audit_krule *krule,
 148				 struct audit_field *f)
 149{
 150	if (krule->listnr != AUDIT_FILTER_EXIT ||
 151	    krule->watch || krule->inode_f || krule->tree ||
 152	    (f->op != Audit_equal && f->op != Audit_not_equal))
 153		return -EINVAL;
 154
 155	krule->inode_f = f;
 156	return 0;
 157}
 158
 159static __u32 *classes[AUDIT_SYSCALL_CLASSES];
 160
 161int __init audit_register_class(int class, unsigned *list)
 162{
 163	__u32 *p = kzalloc(AUDIT_BITMASK_SIZE * sizeof(__u32), GFP_KERNEL);
 164	if (!p)
 165		return -ENOMEM;
 166	while (*list != ~0U) {
 167		unsigned n = *list++;
 168		if (n >= AUDIT_BITMASK_SIZE * 32 - AUDIT_SYSCALL_CLASSES) {
 169			kfree(p);
 170			return -EINVAL;
 171		}
 172		p[AUDIT_WORD(n)] |= AUDIT_BIT(n);
 173	}
 174	if (class >= AUDIT_SYSCALL_CLASSES || classes[class]) {
 175		kfree(p);
 176		return -EINVAL;
 177	}
 178	classes[class] = p;
 179	return 0;
 180}
 181
 182int audit_match_class(int class, unsigned syscall)
 183{
 184	if (unlikely(syscall >= AUDIT_BITMASK_SIZE * 32))
 185		return 0;
 186	if (unlikely(class >= AUDIT_SYSCALL_CLASSES || !classes[class]))
 187		return 0;
 188	return classes[class][AUDIT_WORD(syscall)] & AUDIT_BIT(syscall);
 189}
 190
 191#ifdef CONFIG_AUDITSYSCALL
 192static inline int audit_match_class_bits(int class, u32 *mask)
 193{
 194	int i;
 195
 196	if (classes[class]) {
 197		for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 198			if (mask[i] & classes[class][i])
 199				return 0;
 200	}
 201	return 1;
 202}
 203
 204static int audit_match_signal(struct audit_entry *entry)
 205{
 206	struct audit_field *arch = entry->rule.arch_f;
 207
 208	if (!arch) {
 209		/* When arch is unspecified, we must check both masks on biarch
 210		 * as syscall number alone is ambiguous. */
 211		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL,
 212					       entry->rule.mask) &&
 213			audit_match_class_bits(AUDIT_CLASS_SIGNAL_32,
 214					       entry->rule.mask));
 215	}
 216
 217	switch(audit_classify_arch(arch->val)) {
 218	case 0: /* native */
 219		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL,
 220					       entry->rule.mask));
 221	case 1: /* 32bit on biarch */
 222		return (audit_match_class_bits(AUDIT_CLASS_SIGNAL_32,
 223					       entry->rule.mask));
 224	default:
 225		return 1;
 226	}
 227}
 228#endif
 229
 230/* Common user-space to kernel rule translation. */
 231static inline struct audit_entry *audit_to_entry_common(struct audit_rule_data *rule)
 232{
 233	unsigned listnr;
 234	struct audit_entry *entry;
 235	int i, err;
 236
 237	err = -EINVAL;
 238	listnr = rule->flags & ~AUDIT_FILTER_PREPEND;
 239	switch(listnr) {
 240	default:
 241		goto exit_err;
 242#ifdef CONFIG_AUDITSYSCALL
 243	case AUDIT_FILTER_ENTRY:
 244		if (rule->action == AUDIT_ALWAYS)
 245			goto exit_err;
 246	case AUDIT_FILTER_EXIT:
 247	case AUDIT_FILTER_TASK:
 248#endif
 249	case AUDIT_FILTER_USER:
 250	case AUDIT_FILTER_TYPE:
 
 251		;
 252	}
 253	if (unlikely(rule->action == AUDIT_POSSIBLE)) {
 254		pr_err("AUDIT_POSSIBLE is deprecated\n");
 255		goto exit_err;
 256	}
 257	if (rule->action != AUDIT_NEVER && rule->action != AUDIT_ALWAYS)
 258		goto exit_err;
 259	if (rule->field_count > AUDIT_MAX_FIELDS)
 260		goto exit_err;
 261
 262	err = -ENOMEM;
 263	entry = audit_init_entry(rule->field_count);
 264	if (!entry)
 265		goto exit_err;
 266
 267	entry->rule.flags = rule->flags & AUDIT_FILTER_PREPEND;
 268	entry->rule.listnr = listnr;
 269	entry->rule.action = rule->action;
 270	entry->rule.field_count = rule->field_count;
 271
 272	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 273		entry->rule.mask[i] = rule->mask[i];
 274
 275	for (i = 0; i < AUDIT_SYSCALL_CLASSES; i++) {
 276		int bit = AUDIT_BITMASK_SIZE * 32 - i - 1;
 277		__u32 *p = &entry->rule.mask[AUDIT_WORD(bit)];
 278		__u32 *class;
 279
 280		if (!(*p & AUDIT_BIT(bit)))
 281			continue;
 282		*p &= ~AUDIT_BIT(bit);
 283		class = classes[i];
 284		if (class) {
 285			int j;
 286			for (j = 0; j < AUDIT_BITMASK_SIZE; j++)
 287				entry->rule.mask[j] |= class[j];
 288		}
 289	}
 290
 291	return entry;
 292
 293exit_err:
 294	return ERR_PTR(err);
 295}
 296
 297static u32 audit_ops[] =
 298{
 299	[Audit_equal] = AUDIT_EQUAL,
 300	[Audit_not_equal] = AUDIT_NOT_EQUAL,
 301	[Audit_bitmask] = AUDIT_BIT_MASK,
 302	[Audit_bittest] = AUDIT_BIT_TEST,
 303	[Audit_lt] = AUDIT_LESS_THAN,
 304	[Audit_gt] = AUDIT_GREATER_THAN,
 305	[Audit_le] = AUDIT_LESS_THAN_OR_EQUAL,
 306	[Audit_ge] = AUDIT_GREATER_THAN_OR_EQUAL,
 307};
 308
 309static u32 audit_to_op(u32 op)
 310{
 311	u32 n;
 312	for (n = Audit_equal; n < Audit_bad && audit_ops[n] != op; n++)
 313		;
 314	return n;
 315}
 316
 317/* check if an audit field is valid */
 318static int audit_field_valid(struct audit_entry *entry, struct audit_field *f)
 319{
 320	switch(f->type) {
 321	case AUDIT_MSGTYPE:
 322		if (entry->rule.listnr != AUDIT_FILTER_TYPE &&
 323		    entry->rule.listnr != AUDIT_FILTER_USER)
 324			return -EINVAL;
 325		break;
 326	};
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 327
 328	switch(f->type) {
 329	default:
 330		return -EINVAL;
 331	case AUDIT_UID:
 332	case AUDIT_EUID:
 333	case AUDIT_SUID:
 334	case AUDIT_FSUID:
 335	case AUDIT_LOGINUID:
 336	case AUDIT_OBJ_UID:
 337	case AUDIT_GID:
 338	case AUDIT_EGID:
 339	case AUDIT_SGID:
 340	case AUDIT_FSGID:
 341	case AUDIT_OBJ_GID:
 342	case AUDIT_PID:
 343	case AUDIT_PERS:
 344	case AUDIT_MSGTYPE:
 345	case AUDIT_PPID:
 346	case AUDIT_DEVMAJOR:
 347	case AUDIT_DEVMINOR:
 348	case AUDIT_EXIT:
 349	case AUDIT_SUCCESS:
 350	case AUDIT_INODE:
 
 351		/* bit ops are only useful on syscall args */
 352		if (f->op == Audit_bitmask || f->op == Audit_bittest)
 353			return -EINVAL;
 354		break;
 355	case AUDIT_ARG0:
 356	case AUDIT_ARG1:
 357	case AUDIT_ARG2:
 358	case AUDIT_ARG3:
 359	case AUDIT_SUBJ_USER:
 360	case AUDIT_SUBJ_ROLE:
 361	case AUDIT_SUBJ_TYPE:
 362	case AUDIT_SUBJ_SEN:
 363	case AUDIT_SUBJ_CLR:
 364	case AUDIT_OBJ_USER:
 365	case AUDIT_OBJ_ROLE:
 366	case AUDIT_OBJ_TYPE:
 367	case AUDIT_OBJ_LEV_LOW:
 368	case AUDIT_OBJ_LEV_HIGH:
 369	case AUDIT_WATCH:
 370	case AUDIT_DIR:
 371	case AUDIT_FILTERKEY:
 372		break;
 373	case AUDIT_LOGINUID_SET:
 374		if ((f->val != 0) && (f->val != 1))
 375			return -EINVAL;
 376	/* FALL THROUGH */
 377	case AUDIT_ARCH:
 
 378		if (f->op != Audit_not_equal && f->op != Audit_equal)
 379			return -EINVAL;
 380		break;
 381	case AUDIT_PERM:
 382		if (f->val & ~15)
 383			return -EINVAL;
 384		break;
 385	case AUDIT_FILETYPE:
 386		if (f->val & ~S_IFMT)
 387			return -EINVAL;
 388		break;
 389	case AUDIT_FIELD_COMPARE:
 390		if (f->val > AUDIT_MAX_FIELD_COMPARE)
 391			return -EINVAL;
 392		break;
 393	};
 
 
 
 
 
 
 394	return 0;
 395}
 396
 397/* Translate struct audit_rule_data to kernel's rule respresentation. */
 398static struct audit_entry *audit_data_to_entry(struct audit_rule_data *data,
 399					       size_t datasz)
 400{
 401	int err = 0;
 402	struct audit_entry *entry;
 403	void *bufp;
 404	size_t remain = datasz - sizeof(struct audit_rule_data);
 405	int i;
 406	char *str;
 
 407
 408	entry = audit_to_entry_common(data);
 409	if (IS_ERR(entry))
 410		goto exit_nofree;
 411
 412	bufp = data->buf;
 413	entry->rule.vers_ops = 2;
 414	for (i = 0; i < data->field_count; i++) {
 415		struct audit_field *f = &entry->rule.fields[i];
 416
 417		err = -EINVAL;
 418
 419		f->op = audit_to_op(data->fieldflags[i]);
 420		if (f->op == Audit_bad)
 421			goto exit_free;
 422
 423		f->type = data->fields[i];
 424		f->val = data->values[i];
 425		f->uid = INVALID_UID;
 426		f->gid = INVALID_GID;
 427		f->lsm_str = NULL;
 428		f->lsm_rule = NULL;
 429
 430		/* Support legacy tests for a valid loginuid */
 431		if ((f->type == AUDIT_LOGINUID) && (f->val == AUDIT_UID_UNSET)) {
 432			f->type = AUDIT_LOGINUID_SET;
 433			f->val = 0;
 434		}
 435
 436		if ((f->type == AUDIT_PID) || (f->type == AUDIT_PPID)) {
 437			struct pid *pid;
 438			rcu_read_lock();
 439			pid = find_vpid(f->val);
 440			if (!pid) {
 441				rcu_read_unlock();
 442				err = -ESRCH;
 443				goto exit_free;
 444			}
 445			f->val = pid_nr(pid);
 446			rcu_read_unlock();
 447		}
 448
 449		err = audit_field_valid(entry, f);
 450		if (err)
 451			goto exit_free;
 452
 453		err = -EINVAL;
 454		switch (f->type) {
 455		case AUDIT_LOGINUID:
 456		case AUDIT_UID:
 457		case AUDIT_EUID:
 458		case AUDIT_SUID:
 459		case AUDIT_FSUID:
 460		case AUDIT_OBJ_UID:
 461			f->uid = make_kuid(current_user_ns(), f->val);
 462			if (!uid_valid(f->uid))
 463				goto exit_free;
 464			break;
 465		case AUDIT_GID:
 466		case AUDIT_EGID:
 467		case AUDIT_SGID:
 468		case AUDIT_FSGID:
 469		case AUDIT_OBJ_GID:
 470			f->gid = make_kgid(current_user_ns(), f->val);
 471			if (!gid_valid(f->gid))
 472				goto exit_free;
 473			break;
 474		case AUDIT_ARCH:
 475			entry->rule.arch_f = f;
 476			break;
 477		case AUDIT_SUBJ_USER:
 478		case AUDIT_SUBJ_ROLE:
 479		case AUDIT_SUBJ_TYPE:
 480		case AUDIT_SUBJ_SEN:
 481		case AUDIT_SUBJ_CLR:
 482		case AUDIT_OBJ_USER:
 483		case AUDIT_OBJ_ROLE:
 484		case AUDIT_OBJ_TYPE:
 485		case AUDIT_OBJ_LEV_LOW:
 486		case AUDIT_OBJ_LEV_HIGH:
 487			str = audit_unpack_string(&bufp, &remain, f->val);
 488			if (IS_ERR(str))
 489				goto exit_free;
 490			entry->rule.buflen += f->val;
 491
 492			err = security_audit_rule_init(f->type, f->op, str,
 493						       (void **)&f->lsm_rule);
 494			/* Keep currently invalid fields around in case they
 495			 * become valid after a policy reload. */
 496			if (err == -EINVAL) {
 497				pr_warn("audit rule for LSM \'%s\' is invalid\n",
 498					str);
 499				err = 0;
 500			}
 501			if (err) {
 502				kfree(str);
 503				goto exit_free;
 504			} else
 505				f->lsm_str = str;
 506			break;
 507		case AUDIT_WATCH:
 508			str = audit_unpack_string(&bufp, &remain, f->val);
 509			if (IS_ERR(str))
 510				goto exit_free;
 511			entry->rule.buflen += f->val;
 512
 513			err = audit_to_watch(&entry->rule, str, f->val, f->op);
 514			if (err) {
 515				kfree(str);
 516				goto exit_free;
 517			}
 518			break;
 519		case AUDIT_DIR:
 520			str = audit_unpack_string(&bufp, &remain, f->val);
 521			if (IS_ERR(str))
 522				goto exit_free;
 523			entry->rule.buflen += f->val;
 524
 525			err = audit_make_tree(&entry->rule, str, f->op);
 526			kfree(str);
 527			if (err)
 528				goto exit_free;
 529			break;
 530		case AUDIT_INODE:
 531			err = audit_to_inode(&entry->rule, f);
 532			if (err)
 533				goto exit_free;
 534			break;
 535		case AUDIT_FILTERKEY:
 536			if (entry->rule.filterkey || f->val > AUDIT_MAX_KEY_LEN)
 537				goto exit_free;
 538			str = audit_unpack_string(&bufp, &remain, f->val);
 539			if (IS_ERR(str))
 540				goto exit_free;
 541			entry->rule.buflen += f->val;
 542			entry->rule.filterkey = str;
 543			break;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 544		}
 545	}
 546
 547	if (entry->rule.inode_f && entry->rule.inode_f->op == Audit_not_equal)
 548		entry->rule.inode_f = NULL;
 549
 550exit_nofree:
 551	return entry;
 552
 553exit_free:
 554	if (entry->rule.watch)
 555		audit_put_watch(entry->rule.watch); /* matches initial get */
 556	if (entry->rule.tree)
 557		audit_put_tree(entry->rule.tree); /* that's the temporary one */
 
 
 558	audit_free_rule(entry);
 559	return ERR_PTR(err);
 560}
 561
 562/* Pack a filter field's string representation into data block. */
 563static inline size_t audit_pack_string(void **bufp, const char *str)
 564{
 565	size_t len = strlen(str);
 566
 567	memcpy(*bufp, str, len);
 568	*bufp += len;
 569
 570	return len;
 571}
 572
 573/* Translate kernel rule respresentation to struct audit_rule_data. */
 574static struct audit_rule_data *audit_krule_to_data(struct audit_krule *krule)
 575{
 576	struct audit_rule_data *data;
 577	void *bufp;
 578	int i;
 579
 580	data = kmalloc(sizeof(*data) + krule->buflen, GFP_KERNEL);
 581	if (unlikely(!data))
 582		return NULL;
 583	memset(data, 0, sizeof(*data));
 584
 585	data->flags = krule->flags | krule->listnr;
 586	data->action = krule->action;
 587	data->field_count = krule->field_count;
 588	bufp = data->buf;
 589	for (i = 0; i < data->field_count; i++) {
 590		struct audit_field *f = &krule->fields[i];
 591
 592		data->fields[i] = f->type;
 593		data->fieldflags[i] = audit_ops[f->op];
 594		switch(f->type) {
 595		case AUDIT_SUBJ_USER:
 596		case AUDIT_SUBJ_ROLE:
 597		case AUDIT_SUBJ_TYPE:
 598		case AUDIT_SUBJ_SEN:
 599		case AUDIT_SUBJ_CLR:
 600		case AUDIT_OBJ_USER:
 601		case AUDIT_OBJ_ROLE:
 602		case AUDIT_OBJ_TYPE:
 603		case AUDIT_OBJ_LEV_LOW:
 604		case AUDIT_OBJ_LEV_HIGH:
 605			data->buflen += data->values[i] =
 606				audit_pack_string(&bufp, f->lsm_str);
 607			break;
 608		case AUDIT_WATCH:
 609			data->buflen += data->values[i] =
 610				audit_pack_string(&bufp,
 611						  audit_watch_path(krule->watch));
 612			break;
 613		case AUDIT_DIR:
 614			data->buflen += data->values[i] =
 615				audit_pack_string(&bufp,
 616						  audit_tree_path(krule->tree));
 617			break;
 618		case AUDIT_FILTERKEY:
 619			data->buflen += data->values[i] =
 620				audit_pack_string(&bufp, krule->filterkey);
 621			break;
 
 
 
 
 
 
 
 
 
 
 
 622		default:
 623			data->values[i] = f->val;
 624		}
 625	}
 626	for (i = 0; i < AUDIT_BITMASK_SIZE; i++) data->mask[i] = krule->mask[i];
 627
 628	return data;
 629}
 630
 631/* Compare two rules in kernel format.  Considered success if rules
 632 * don't match. */
 633static int audit_compare_rule(struct audit_krule *a, struct audit_krule *b)
 634{
 635	int i;
 636
 637	if (a->flags != b->flags ||
 
 638	    a->listnr != b->listnr ||
 639	    a->action != b->action ||
 640	    a->field_count != b->field_count)
 641		return 1;
 642
 643	for (i = 0; i < a->field_count; i++) {
 644		if (a->fields[i].type != b->fields[i].type ||
 645		    a->fields[i].op != b->fields[i].op)
 646			return 1;
 647
 648		switch(a->fields[i].type) {
 649		case AUDIT_SUBJ_USER:
 650		case AUDIT_SUBJ_ROLE:
 651		case AUDIT_SUBJ_TYPE:
 652		case AUDIT_SUBJ_SEN:
 653		case AUDIT_SUBJ_CLR:
 654		case AUDIT_OBJ_USER:
 655		case AUDIT_OBJ_ROLE:
 656		case AUDIT_OBJ_TYPE:
 657		case AUDIT_OBJ_LEV_LOW:
 658		case AUDIT_OBJ_LEV_HIGH:
 659			if (strcmp(a->fields[i].lsm_str, b->fields[i].lsm_str))
 660				return 1;
 661			break;
 662		case AUDIT_WATCH:
 663			if (strcmp(audit_watch_path(a->watch),
 664				   audit_watch_path(b->watch)))
 665				return 1;
 666			break;
 667		case AUDIT_DIR:
 668			if (strcmp(audit_tree_path(a->tree),
 669				   audit_tree_path(b->tree)))
 670				return 1;
 671			break;
 672		case AUDIT_FILTERKEY:
 673			/* both filterkeys exist based on above type compare */
 674			if (strcmp(a->filterkey, b->filterkey))
 675				return 1;
 676			break;
 
 
 
 
 
 
 677		case AUDIT_UID:
 678		case AUDIT_EUID:
 679		case AUDIT_SUID:
 680		case AUDIT_FSUID:
 681		case AUDIT_LOGINUID:
 682		case AUDIT_OBJ_UID:
 683			if (!uid_eq(a->fields[i].uid, b->fields[i].uid))
 684				return 1;
 685			break;
 686		case AUDIT_GID:
 687		case AUDIT_EGID:
 688		case AUDIT_SGID:
 689		case AUDIT_FSGID:
 690		case AUDIT_OBJ_GID:
 691			if (!gid_eq(a->fields[i].gid, b->fields[i].gid))
 692				return 1;
 693			break;
 694		default:
 695			if (a->fields[i].val != b->fields[i].val)
 696				return 1;
 697		}
 698	}
 699
 700	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 701		if (a->mask[i] != b->mask[i])
 702			return 1;
 703
 704	return 0;
 705}
 706
 707/* Duplicate LSM field information.  The lsm_rule is opaque, so must be
 708 * re-initialized. */
 709static inline int audit_dupe_lsm_field(struct audit_field *df,
 710					   struct audit_field *sf)
 711{
 712	int ret = 0;
 713	char *lsm_str;
 714
 715	/* our own copy of lsm_str */
 716	lsm_str = kstrdup(sf->lsm_str, GFP_KERNEL);
 717	if (unlikely(!lsm_str))
 718		return -ENOMEM;
 719	df->lsm_str = lsm_str;
 720
 721	/* our own (refreshed) copy of lsm_rule */
 722	ret = security_audit_rule_init(df->type, df->op, df->lsm_str,
 723				       (void **)&df->lsm_rule);
 724	/* Keep currently invalid fields around in case they
 725	 * become valid after a policy reload. */
 726	if (ret == -EINVAL) {
 727		pr_warn("audit rule for LSM \'%s\' is invalid\n",
 728			df->lsm_str);
 729		ret = 0;
 730	}
 731
 732	return ret;
 733}
 734
 735/* Duplicate an audit rule.  This will be a deep copy with the exception
 736 * of the watch - that pointer is carried over.  The LSM specific fields
 737 * will be updated in the copy.  The point is to be able to replace the old
 738 * rule with the new rule in the filterlist, then free the old rule.
 739 * The rlist element is undefined; list manipulations are handled apart from
 740 * the initial copy. */
 741struct audit_entry *audit_dupe_rule(struct audit_krule *old)
 742{
 743	u32 fcount = old->field_count;
 744	struct audit_entry *entry;
 745	struct audit_krule *new;
 746	char *fk;
 747	int i, err = 0;
 748
 749	entry = audit_init_entry(fcount);
 750	if (unlikely(!entry))
 751		return ERR_PTR(-ENOMEM);
 752
 753	new = &entry->rule;
 754	new->vers_ops = old->vers_ops;
 755	new->flags = old->flags;
 
 756	new->listnr = old->listnr;
 757	new->action = old->action;
 758	for (i = 0; i < AUDIT_BITMASK_SIZE; i++)
 759		new->mask[i] = old->mask[i];
 760	new->prio = old->prio;
 761	new->buflen = old->buflen;
 762	new->inode_f = old->inode_f;
 763	new->field_count = old->field_count;
 764
 765	/*
 766	 * note that we are OK with not refcounting here; audit_match_tree()
 767	 * never dereferences tree and we can't get false positives there
 768	 * since we'd have to have rule gone from the list *and* removed
 769	 * before the chunks found by lookup had been allocated, i.e. before
 770	 * the beginning of list scan.
 771	 */
 772	new->tree = old->tree;
 773	memcpy(new->fields, old->fields, sizeof(struct audit_field) * fcount);
 774
 775	/* deep copy this information, updating the lsm_rule fields, because
 776	 * the originals will all be freed when the old rule is freed. */
 777	for (i = 0; i < fcount; i++) {
 778		switch (new->fields[i].type) {
 779		case AUDIT_SUBJ_USER:
 780		case AUDIT_SUBJ_ROLE:
 781		case AUDIT_SUBJ_TYPE:
 782		case AUDIT_SUBJ_SEN:
 783		case AUDIT_SUBJ_CLR:
 784		case AUDIT_OBJ_USER:
 785		case AUDIT_OBJ_ROLE:
 786		case AUDIT_OBJ_TYPE:
 787		case AUDIT_OBJ_LEV_LOW:
 788		case AUDIT_OBJ_LEV_HIGH:
 789			err = audit_dupe_lsm_field(&new->fields[i],
 790						       &old->fields[i]);
 791			break;
 792		case AUDIT_FILTERKEY:
 793			fk = kstrdup(old->filterkey, GFP_KERNEL);
 794			if (unlikely(!fk))
 795				err = -ENOMEM;
 796			else
 797				new->filterkey = fk;
 
 
 
 
 798		}
 799		if (err) {
 
 
 800			audit_free_rule(entry);
 801			return ERR_PTR(err);
 802		}
 803	}
 804
 805	if (old->watch) {
 806		audit_get_watch(old->watch);
 807		new->watch = old->watch;
 808	}
 809
 810	return entry;
 811}
 812
 813/* Find an existing audit rule.
 814 * Caller must hold audit_filter_mutex to prevent stale rule data. */
 815static struct audit_entry *audit_find_rule(struct audit_entry *entry,
 816					   struct list_head **p)
 817{
 818	struct audit_entry *e, *found = NULL;
 819	struct list_head *list;
 820	int h;
 821
 822	if (entry->rule.inode_f) {
 823		h = audit_hash_ino(entry->rule.inode_f->val);
 824		*p = list = &audit_inode_hash[h];
 825	} else if (entry->rule.watch) {
 826		/* we don't know the inode number, so must walk entire hash */
 827		for (h = 0; h < AUDIT_INODE_BUCKETS; h++) {
 828			list = &audit_inode_hash[h];
 829			list_for_each_entry(e, list, list)
 830				if (!audit_compare_rule(&entry->rule, &e->rule)) {
 831					found = e;
 832					goto out;
 833				}
 834		}
 835		goto out;
 836	} else {
 837		*p = list = &audit_filter_list[entry->rule.listnr];
 838	}
 839
 840	list_for_each_entry(e, list, list)
 841		if (!audit_compare_rule(&entry->rule, &e->rule)) {
 842			found = e;
 843			goto out;
 844		}
 845
 846out:
 847	return found;
 848}
 849
 850static u64 prio_low = ~0ULL/2;
 851static u64 prio_high = ~0ULL/2 - 1;
 852
 853/* Add rule to given filterlist if not a duplicate. */
 854static inline int audit_add_rule(struct audit_entry *entry)
 855{
 856	struct audit_entry *e;
 857	struct audit_watch *watch = entry->rule.watch;
 858	struct audit_tree *tree = entry->rule.tree;
 859	struct list_head *list;
 860	int err;
 861#ifdef CONFIG_AUDITSYSCALL
 862	int dont_count = 0;
 863
 864	/* If either of these, don't count towards total */
 865	if (entry->rule.listnr == AUDIT_FILTER_USER ||
 866		entry->rule.listnr == AUDIT_FILTER_TYPE)
 
 
 867		dont_count = 1;
 
 868#endif
 869
 870	mutex_lock(&audit_filter_mutex);
 871	e = audit_find_rule(entry, &list);
 872	if (e) {
 873		mutex_unlock(&audit_filter_mutex);
 874		err = -EEXIST;
 875		/* normally audit_add_tree_rule() will free it on failure */
 876		if (tree)
 877			audit_put_tree(tree);
 878		goto error;
 879	}
 880
 881	if (watch) {
 882		/* audit_filter_mutex is dropped and re-taken during this call */
 883		err = audit_add_watch(&entry->rule, &list);
 884		if (err) {
 885			mutex_unlock(&audit_filter_mutex);
 886			/*
 887			 * normally audit_add_tree_rule() will free it
 888			 * on failure
 889			 */
 890			if (tree)
 891				audit_put_tree(tree);
 892			goto error;
 893		}
 894	}
 895	if (tree) {
 896		err = audit_add_tree_rule(&entry->rule);
 897		if (err) {
 898			mutex_unlock(&audit_filter_mutex);
 899			goto error;
 900		}
 901	}
 902
 903	entry->rule.prio = ~0ULL;
 904	if (entry->rule.listnr == AUDIT_FILTER_EXIT) {
 905		if (entry->rule.flags & AUDIT_FILTER_PREPEND)
 906			entry->rule.prio = ++prio_high;
 907		else
 908			entry->rule.prio = --prio_low;
 909	}
 910
 911	if (entry->rule.flags & AUDIT_FILTER_PREPEND) {
 912		list_add(&entry->rule.list,
 913			 &audit_rules_list[entry->rule.listnr]);
 914		list_add_rcu(&entry->list, list);
 915		entry->rule.flags &= ~AUDIT_FILTER_PREPEND;
 916	} else {
 917		list_add_tail(&entry->rule.list,
 918			      &audit_rules_list[entry->rule.listnr]);
 919		list_add_tail_rcu(&entry->list, list);
 920	}
 921#ifdef CONFIG_AUDITSYSCALL
 922	if (!dont_count)
 923		audit_n_rules++;
 924
 925	if (!audit_match_signal(entry))
 926		audit_signals++;
 927#endif
 928	mutex_unlock(&audit_filter_mutex);
 929
 930 	return 0;
 931
 932error:
 933	if (watch)
 934		audit_put_watch(watch); /* tmp watch, matches initial get */
 935	return err;
 936}
 937
 938/* Remove an existing rule from filterlist. */
 939static inline int audit_del_rule(struct audit_entry *entry)
 940{
 941	struct audit_entry  *e;
 942	struct audit_watch *watch = entry->rule.watch;
 943	struct audit_tree *tree = entry->rule.tree;
 944	struct list_head *list;
 945	int ret = 0;
 946#ifdef CONFIG_AUDITSYSCALL
 947	int dont_count = 0;
 948
 949	/* If either of these, don't count towards total */
 950	if (entry->rule.listnr == AUDIT_FILTER_USER ||
 951		entry->rule.listnr == AUDIT_FILTER_TYPE)
 
 
 952		dont_count = 1;
 
 953#endif
 954
 955	mutex_lock(&audit_filter_mutex);
 956	e = audit_find_rule(entry, &list);
 957	if (!e) {
 958		mutex_unlock(&audit_filter_mutex);
 959		ret = -ENOENT;
 960		goto out;
 961	}
 962
 963	if (e->rule.watch)
 964		audit_remove_watch_rule(&e->rule);
 965
 966	if (e->rule.tree)
 967		audit_remove_tree_rule(&e->rule);
 968
 969	list_del_rcu(&e->list);
 970	list_del(&e->rule.list);
 971	call_rcu(&e->rcu, audit_free_rule_rcu);
 972
 973#ifdef CONFIG_AUDITSYSCALL
 974	if (!dont_count)
 975		audit_n_rules--;
 976
 977	if (!audit_match_signal(entry))
 978		audit_signals--;
 979#endif
 
 
 
 
 
 
 980	mutex_unlock(&audit_filter_mutex);
 981
 982out:
 983	if (watch)
 984		audit_put_watch(watch); /* match initial get */
 985	if (tree)
 986		audit_put_tree(tree);	/* that's the temporary one */
 987
 988	return ret;
 989}
 990
 991/* List rules using struct audit_rule_data. */
 992static void audit_list_rules(__u32 portid, int seq, struct sk_buff_head *q)
 993{
 994	struct sk_buff *skb;
 995	struct audit_krule *r;
 996	int i;
 997
 998	/* This is a blocking read, so use audit_filter_mutex instead of rcu
 999	 * iterator to sync with list writers. */
1000	for (i=0; i<AUDIT_NR_FILTERS; i++) {
1001		list_for_each_entry(r, &audit_rules_list[i], list) {
1002			struct audit_rule_data *data;
1003
1004			data = audit_krule_to_data(r);
1005			if (unlikely(!data))
1006				break;
1007			skb = audit_make_reply(portid, seq, AUDIT_LIST_RULES,
1008					       0, 1, data,
1009					       sizeof(*data) + data->buflen);
1010			if (skb)
1011				skb_queue_tail(q, skb);
1012			kfree(data);
1013		}
1014	}
1015	skb = audit_make_reply(portid, seq, AUDIT_LIST_RULES, 1, 1, NULL, 0);
1016	if (skb)
1017		skb_queue_tail(q, skb);
1018}
1019
1020/* Log rule additions and removals */
1021static void audit_log_rule_change(char *action, struct audit_krule *rule, int res)
1022{
1023	struct audit_buffer *ab;
1024	uid_t loginuid = from_kuid(&init_user_ns, audit_get_loginuid(current));
1025	unsigned int sessionid = audit_get_sessionid(current);
1026
1027	if (!audit_enabled)
1028		return;
1029
1030	ab = audit_log_start(NULL, GFP_KERNEL, AUDIT_CONFIG_CHANGE);
1031	if (!ab)
1032		return;
1033	audit_log_format(ab, "auid=%u ses=%u" ,loginuid, sessionid);
1034	audit_log_task_context(ab);
1035	audit_log_format(ab, " op=");
1036	audit_log_string(ab, action);
1037	audit_log_key(ab, rule->filterkey);
1038	audit_log_format(ab, " list=%d res=%d", rule->listnr, res);
1039	audit_log_end(ab);
1040}
1041
1042/**
1043 * audit_rule_change - apply all rules to the specified message type
1044 * @type: audit message type
1045 * @portid: target port id for netlink audit messages
1046 * @seq: netlink audit message sequence (serial) number
1047 * @data: payload data
1048 * @datasz: size of payload data
1049 */
1050int audit_rule_change(int type, __u32 portid, int seq, void *data,
1051			size_t datasz)
1052{
1053	int err = 0;
1054	struct audit_entry *entry;
1055
 
 
 
 
1056	switch (type) {
1057	case AUDIT_ADD_RULE:
1058		entry = audit_data_to_entry(data, datasz);
1059		if (IS_ERR(entry))
1060			return PTR_ERR(entry);
1061
1062		err = audit_add_rule(entry);
1063		audit_log_rule_change("add rule", &entry->rule, !err);
1064		if (err)
1065			audit_free_rule(entry);
1066		break;
1067	case AUDIT_DEL_RULE:
1068		entry = audit_data_to_entry(data, datasz);
1069		if (IS_ERR(entry))
1070			return PTR_ERR(entry);
1071
1072		err = audit_del_rule(entry);
1073		audit_log_rule_change("remove rule", &entry->rule, !err);
1074		audit_free_rule(entry);
1075		break;
1076	default:
1077		return -EINVAL;
 
 
 
 
 
 
 
1078	}
1079
1080	return err;
1081}
1082
1083/**
1084 * audit_list_rules_send - list the audit rules
1085 * @request_skb: skb of request we are replying to (used to target the reply)
1086 * @seq: netlink audit message sequence (serial) number
1087 */
1088int audit_list_rules_send(struct sk_buff *request_skb, int seq)
1089{
1090	u32 portid = NETLINK_CB(request_skb).portid;
1091	struct net *net = sock_net(NETLINK_CB(request_skb).sk);
1092	struct task_struct *tsk;
1093	struct audit_netlink_list *dest;
1094	int err = 0;
1095
1096	/* We can't just spew out the rules here because we might fill
1097	 * the available socket buffer space and deadlock waiting for
1098	 * auditctl to read from it... which isn't ever going to
1099	 * happen if we're actually running in the context of auditctl
1100	 * trying to _send_ the stuff */
1101
1102	dest = kmalloc(sizeof(struct audit_netlink_list), GFP_KERNEL);
1103	if (!dest)
1104		return -ENOMEM;
1105	dest->net = get_net(net);
1106	dest->portid = portid;
1107	skb_queue_head_init(&dest->q);
1108
1109	mutex_lock(&audit_filter_mutex);
1110	audit_list_rules(portid, seq, &dest->q);
1111	mutex_unlock(&audit_filter_mutex);
1112
1113	tsk = kthread_run(audit_send_list, dest, "audit_send_list");
1114	if (IS_ERR(tsk)) {
1115		skb_queue_purge(&dest->q);
1116		kfree(dest);
1117		err = PTR_ERR(tsk);
1118	}
1119
1120	return err;
1121}
1122
1123int audit_comparator(u32 left, u32 op, u32 right)
1124{
1125	switch (op) {
1126	case Audit_equal:
1127		return (left == right);
1128	case Audit_not_equal:
1129		return (left != right);
1130	case Audit_lt:
1131		return (left < right);
1132	case Audit_le:
1133		return (left <= right);
1134	case Audit_gt:
1135		return (left > right);
1136	case Audit_ge:
1137		return (left >= right);
1138	case Audit_bitmask:
1139		return (left & right);
1140	case Audit_bittest:
1141		return ((left & right) == right);
1142	default:
1143		BUG();
1144		return 0;
1145	}
1146}
1147
1148int audit_uid_comparator(kuid_t left, u32 op, kuid_t right)
1149{
1150	switch (op) {
1151	case Audit_equal:
1152		return uid_eq(left, right);
1153	case Audit_not_equal:
1154		return !uid_eq(left, right);
1155	case Audit_lt:
1156		return uid_lt(left, right);
1157	case Audit_le:
1158		return uid_lte(left, right);
1159	case Audit_gt:
1160		return uid_gt(left, right);
1161	case Audit_ge:
1162		return uid_gte(left, right);
1163	case Audit_bitmask:
1164	case Audit_bittest:
1165	default:
1166		BUG();
1167		return 0;
1168	}
1169}
1170
1171int audit_gid_comparator(kgid_t left, u32 op, kgid_t right)
1172{
1173	switch (op) {
1174	case Audit_equal:
1175		return gid_eq(left, right);
1176	case Audit_not_equal:
1177		return !gid_eq(left, right);
1178	case Audit_lt:
1179		return gid_lt(left, right);
1180	case Audit_le:
1181		return gid_lte(left, right);
1182	case Audit_gt:
1183		return gid_gt(left, right);
1184	case Audit_ge:
1185		return gid_gte(left, right);
1186	case Audit_bitmask:
1187	case Audit_bittest:
1188	default:
1189		BUG();
1190		return 0;
1191	}
1192}
1193
1194/**
1195 * parent_len - find the length of the parent portion of a pathname
1196 * @path: pathname of which to determine length
1197 */
1198int parent_len(const char *path)
1199{
1200	int plen;
1201	const char *p;
1202
1203	plen = strlen(path);
1204
1205	if (plen == 0)
1206		return plen;
1207
1208	/* disregard trailing slashes */
1209	p = path + plen - 1;
1210	while ((*p == '/') && (p > path))
1211		p--;
1212
1213	/* walk backward until we find the next slash or hit beginning */
1214	while ((*p != '/') && (p > path))
1215		p--;
1216
1217	/* did we find a slash? Then increment to include it in path */
1218	if (*p == '/')
1219		p++;
1220
1221	return p - path;
1222}
1223
1224/**
1225 * audit_compare_dname_path - compare given dentry name with last component in
1226 * 			      given path. Return of 0 indicates a match.
1227 * @dname:	dentry name that we're comparing
1228 * @path:	full pathname that we're comparing
1229 * @parentlen:	length of the parent if known. Passing in AUDIT_NAME_FULL
1230 * 		here indicates that we must compute this value.
1231 */
1232int audit_compare_dname_path(const char *dname, const char *path, int parentlen)
1233{
1234	int dlen, pathlen;
1235	const char *p;
1236
1237	dlen = strlen(dname);
1238	pathlen = strlen(path);
1239	if (pathlen < dlen)
1240		return 1;
1241
1242	parentlen = parentlen == AUDIT_NAME_FULL ? parent_len(path) : parentlen;
1243	if (pathlen - parentlen != dlen)
1244		return 1;
1245
1246	p = path + parentlen;
1247
1248	return strncmp(p, dname, dlen);
1249}
1250
1251static int audit_filter_user_rules(struct audit_krule *rule, int type,
1252				   enum audit_state *state)
1253{
1254	int i;
1255
1256	for (i = 0; i < rule->field_count; i++) {
1257		struct audit_field *f = &rule->fields[i];
1258		pid_t pid;
1259		int result = 0;
1260		u32 sid;
1261
1262		switch (f->type) {
1263		case AUDIT_PID:
1264			pid = task_pid_nr(current);
1265			result = audit_comparator(pid, f->op, f->val);
1266			break;
1267		case AUDIT_UID:
1268			result = audit_uid_comparator(current_uid(), f->op, f->uid);
1269			break;
1270		case AUDIT_GID:
1271			result = audit_gid_comparator(current_gid(), f->op, f->gid);
1272			break;
1273		case AUDIT_LOGINUID:
1274			result = audit_uid_comparator(audit_get_loginuid(current),
1275						  f->op, f->uid);
1276			break;
1277		case AUDIT_LOGINUID_SET:
1278			result = audit_comparator(audit_loginuid_set(current),
1279						  f->op, f->val);
1280			break;
1281		case AUDIT_MSGTYPE:
1282			result = audit_comparator(type, f->op, f->val);
1283			break;
1284		case AUDIT_SUBJ_USER:
1285		case AUDIT_SUBJ_ROLE:
1286		case AUDIT_SUBJ_TYPE:
1287		case AUDIT_SUBJ_SEN:
1288		case AUDIT_SUBJ_CLR:
1289			if (f->lsm_rule) {
1290				security_task_getsecid(current, &sid);
1291				result = security_audit_rule_match(sid,
1292								   f->type,
1293								   f->op,
1294								   f->lsm_rule,
1295								   NULL);
1296			}
1297			break;
1298		}
1299
1300		if (!result)
1301			return 0;
1302	}
1303	switch (rule->action) {
1304	case AUDIT_NEVER:    *state = AUDIT_DISABLED;	    break;
1305	case AUDIT_ALWAYS:   *state = AUDIT_RECORD_CONTEXT; break;
1306	}
1307	return 1;
1308}
1309
1310int audit_filter_user(int type)
1311{
1312	enum audit_state state = AUDIT_DISABLED;
1313	struct audit_entry *e;
1314	int rc, ret;
1315
1316	ret = 1; /* Audit by default */
1317
1318	rcu_read_lock();
1319	list_for_each_entry_rcu(e, &audit_filter_list[AUDIT_FILTER_USER], list) {
1320		rc = audit_filter_user_rules(&e->rule, type, &state);
1321		if (rc) {
1322			if (rc > 0 && state == AUDIT_DISABLED)
1323				ret = 0;
1324			break;
1325		}
1326	}
1327	rcu_read_unlock();
1328
1329	return ret;
1330}
1331
1332int audit_filter_type(int type)
1333{
1334	struct audit_entry *e;
1335	int result = 0;
1336
1337	rcu_read_lock();
1338	if (list_empty(&audit_filter_list[AUDIT_FILTER_TYPE]))
1339		goto unlock_and_return;
 
 
1340
1341	list_for_each_entry_rcu(e, &audit_filter_list[AUDIT_FILTER_TYPE],
1342				list) {
1343		int i;
1344		for (i = 0; i < e->rule.field_count; i++) {
1345			struct audit_field *f = &e->rule.fields[i];
1346			if (f->type == AUDIT_MSGTYPE) {
1347				result = audit_comparator(type, f->op, f->val);
1348				if (!result)
1349					break;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1350			}
 
 
 
 
 
 
 
 
 
1351		}
1352		if (result)
1353			goto unlock_and_return;
1354	}
1355unlock_and_return:
1356	rcu_read_unlock();
1357	return result;
1358}
1359
1360static int update_lsm_rule(struct audit_krule *r)
1361{
1362	struct audit_entry *entry = container_of(r, struct audit_entry, rule);
1363	struct audit_entry *nentry;
1364	int err = 0;
1365
1366	if (!security_audit_rule_known(r))
1367		return 0;
1368
1369	nentry = audit_dupe_rule(r);
 
 
1370	if (IS_ERR(nentry)) {
1371		/* save the first error encountered for the
1372		 * return value */
1373		err = PTR_ERR(nentry);
1374		audit_panic("error updating LSM filters");
1375		if (r->watch)
1376			list_del(&r->rlist);
1377		list_del_rcu(&entry->list);
1378		list_del(&r->list);
1379	} else {
1380		if (r->watch || r->tree)
1381			list_replace_init(&r->rlist, &nentry->rule.rlist);
1382		list_replace_rcu(&entry->list, &nentry->list);
1383		list_replace(&r->list, &nentry->rule.list);
1384	}
1385	call_rcu(&entry->rcu, audit_free_rule_rcu);
1386
1387	return err;
1388}
1389
1390/* This function will re-initialize the lsm_rule field of all applicable rules.
1391 * It will traverse the filter lists serarching for rules that contain LSM
1392 * specific filter fields.  When such a rule is found, it is copied, the
1393 * LSM field is re-initialized, and the old rule is replaced with the
1394 * updated rule. */
1395int audit_update_lsm_rules(void)
1396{
1397	struct audit_krule *r, *n;
1398	int i, err = 0;
1399
1400	/* audit_filter_mutex synchronizes the writers */
1401	mutex_lock(&audit_filter_mutex);
1402
1403	for (i = 0; i < AUDIT_NR_FILTERS; i++) {
1404		list_for_each_entry_safe(r, n, &audit_rules_list[i], list) {
1405			int res = update_lsm_rule(r);
1406			if (!err)
1407				err = res;
1408		}
1409	}
1410	mutex_unlock(&audit_filter_mutex);
1411
1412	return err;
1413}