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1/*
2 * NSA Security-Enhanced Linux (SELinux) security module
3 *
4 * This file contains the SELinux hook function implementations.
5 *
6 * Authors: Stephen Smalley, <sds@epoch.ncsc.mil>
7 * Chris Vance, <cvance@nai.com>
8 * Wayne Salamon, <wsalamon@nai.com>
9 * James Morris <jmorris@redhat.com>
10 *
11 * Copyright (C) 2001,2002 Networks Associates Technology, Inc.
12 * Copyright (C) 2003-2008 Red Hat, Inc., James Morris <jmorris@redhat.com>
13 * Eric Paris <eparis@redhat.com>
14 * Copyright (C) 2004-2005 Trusted Computer Solutions, Inc.
15 * <dgoeddel@trustedcs.com>
16 * Copyright (C) 2006, 2007, 2009 Hewlett-Packard Development Company, L.P.
17 * Paul Moore <paul@paul-moore.com>
18 * Copyright (C) 2007 Hitachi Software Engineering Co., Ltd.
19 * Yuichi Nakamura <ynakam@hitachisoft.jp>
20 *
21 * This program is free software; you can redistribute it and/or modify
22 * it under the terms of the GNU General Public License version 2,
23 * as published by the Free Software Foundation.
24 */
25
26#include <linux/init.h>
27#include <linux/kd.h>
28#include <linux/kernel.h>
29#include <linux/tracehook.h>
30#include <linux/errno.h>
31#include <linux/sched.h>
32#include <linux/security.h>
33#include <linux/xattr.h>
34#include <linux/capability.h>
35#include <linux/unistd.h>
36#include <linux/mm.h>
37#include <linux/mman.h>
38#include <linux/slab.h>
39#include <linux/pagemap.h>
40#include <linux/proc_fs.h>
41#include <linux/swap.h>
42#include <linux/spinlock.h>
43#include <linux/syscalls.h>
44#include <linux/dcache.h>
45#include <linux/file.h>
46#include <linux/fdtable.h>
47#include <linux/namei.h>
48#include <linux/mount.h>
49#include <linux/netfilter_ipv4.h>
50#include <linux/netfilter_ipv6.h>
51#include <linux/tty.h>
52#include <net/icmp.h>
53#include <net/ip.h> /* for local_port_range[] */
54#include <net/sock.h>
55#include <net/tcp.h> /* struct or_callable used in sock_rcv_skb */
56#include <net/inet_connection_sock.h>
57#include <net/net_namespace.h>
58#include <net/netlabel.h>
59#include <linux/uaccess.h>
60#include <asm/ioctls.h>
61#include <linux/atomic.h>
62#include <linux/bitops.h>
63#include <linux/interrupt.h>
64#include <linux/netdevice.h> /* for network interface checks */
65#include <net/netlink.h>
66#include <linux/tcp.h>
67#include <linux/udp.h>
68#include <linux/dccp.h>
69#include <linux/quota.h>
70#include <linux/un.h> /* for Unix socket types */
71#include <net/af_unix.h> /* for Unix socket types */
72#include <linux/parser.h>
73#include <linux/nfs_mount.h>
74#include <net/ipv6.h>
75#include <linux/hugetlb.h>
76#include <linux/personality.h>
77#include <linux/audit.h>
78#include <linux/string.h>
79#include <linux/selinux.h>
80#include <linux/mutex.h>
81#include <linux/posix-timers.h>
82#include <linux/syslog.h>
83#include <linux/user_namespace.h>
84#include <linux/export.h>
85#include <linux/msg.h>
86#include <linux/shm.h>
87
88#include "avc.h"
89#include "objsec.h"
90#include "netif.h"
91#include "netnode.h"
92#include "netport.h"
93#include "xfrm.h"
94#include "netlabel.h"
95#include "audit.h"
96#include "avc_ss.h"
97
98extern struct security_operations *security_ops;
99
100/* SECMARK reference count */
101static atomic_t selinux_secmark_refcount = ATOMIC_INIT(0);
102
103#ifdef CONFIG_SECURITY_SELINUX_DEVELOP
104int selinux_enforcing;
105
106static int __init enforcing_setup(char *str)
107{
108 unsigned long enforcing;
109 if (!kstrtoul(str, 0, &enforcing))
110 selinux_enforcing = enforcing ? 1 : 0;
111 return 1;
112}
113__setup("enforcing=", enforcing_setup);
114#endif
115
116#ifdef CONFIG_SECURITY_SELINUX_BOOTPARAM
117int selinux_enabled = CONFIG_SECURITY_SELINUX_BOOTPARAM_VALUE;
118
119static int __init selinux_enabled_setup(char *str)
120{
121 unsigned long enabled;
122 if (!kstrtoul(str, 0, &enabled))
123 selinux_enabled = enabled ? 1 : 0;
124 return 1;
125}
126__setup("selinux=", selinux_enabled_setup);
127#else
128int selinux_enabled = 1;
129#endif
130
131static struct kmem_cache *sel_inode_cache;
132
133/**
134 * selinux_secmark_enabled - Check to see if SECMARK is currently enabled
135 *
136 * Description:
137 * This function checks the SECMARK reference counter to see if any SECMARK
138 * targets are currently configured, if the reference counter is greater than
139 * zero SECMARK is considered to be enabled. Returns true (1) if SECMARK is
140 * enabled, false (0) if SECMARK is disabled. If the always_check_network
141 * policy capability is enabled, SECMARK is always considered enabled.
142 *
143 */
144static int selinux_secmark_enabled(void)
145{
146 return (selinux_policycap_alwaysnetwork || atomic_read(&selinux_secmark_refcount));
147}
148
149/**
150 * selinux_peerlbl_enabled - Check to see if peer labeling is currently enabled
151 *
152 * Description:
153 * This function checks if NetLabel or labeled IPSEC is enabled. Returns true
154 * (1) if any are enabled or false (0) if neither are enabled. If the
155 * always_check_network policy capability is enabled, peer labeling
156 * is always considered enabled.
157 *
158 */
159static int selinux_peerlbl_enabled(void)
160{
161 return (selinux_policycap_alwaysnetwork || netlbl_enabled() || selinux_xfrm_enabled());
162}
163
164/*
165 * initialise the security for the init task
166 */
167static void cred_init_security(void)
168{
169 struct cred *cred = (struct cred *) current->real_cred;
170 struct task_security_struct *tsec;
171
172 tsec = kzalloc(sizeof(struct task_security_struct), GFP_KERNEL);
173 if (!tsec)
174 panic("SELinux: Failed to initialize initial task.\n");
175
176 tsec->osid = tsec->sid = SECINITSID_KERNEL;
177 cred->security = tsec;
178}
179
180/*
181 * get the security ID of a set of credentials
182 */
183static inline u32 cred_sid(const struct cred *cred)
184{
185 const struct task_security_struct *tsec;
186
187 tsec = cred->security;
188 return tsec->sid;
189}
190
191/*
192 * get the objective security ID of a task
193 */
194static inline u32 task_sid(const struct task_struct *task)
195{
196 u32 sid;
197
198 rcu_read_lock();
199 sid = cred_sid(__task_cred(task));
200 rcu_read_unlock();
201 return sid;
202}
203
204/*
205 * get the subjective security ID of the current task
206 */
207static inline u32 current_sid(void)
208{
209 const struct task_security_struct *tsec = current_security();
210
211 return tsec->sid;
212}
213
214/* Allocate and free functions for each kind of security blob. */
215
216static int inode_alloc_security(struct inode *inode)
217{
218 struct inode_security_struct *isec;
219 u32 sid = current_sid();
220
221 isec = kmem_cache_zalloc(sel_inode_cache, GFP_NOFS);
222 if (!isec)
223 return -ENOMEM;
224
225 mutex_init(&isec->lock);
226 INIT_LIST_HEAD(&isec->list);
227 isec->inode = inode;
228 isec->sid = SECINITSID_UNLABELED;
229 isec->sclass = SECCLASS_FILE;
230 isec->task_sid = sid;
231 inode->i_security = isec;
232
233 return 0;
234}
235
236static void inode_free_rcu(struct rcu_head *head)
237{
238 struct inode_security_struct *isec;
239
240 isec = container_of(head, struct inode_security_struct, rcu);
241 kmem_cache_free(sel_inode_cache, isec);
242}
243
244static void inode_free_security(struct inode *inode)
245{
246 struct inode_security_struct *isec = inode->i_security;
247 struct superblock_security_struct *sbsec = inode->i_sb->s_security;
248
249 spin_lock(&sbsec->isec_lock);
250 if (!list_empty(&isec->list))
251 list_del_init(&isec->list);
252 spin_unlock(&sbsec->isec_lock);
253
254 /*
255 * The inode may still be referenced in a path walk and
256 * a call to selinux_inode_permission() can be made
257 * after inode_free_security() is called. Ideally, the VFS
258 * wouldn't do this, but fixing that is a much harder
259 * job. For now, simply free the i_security via RCU, and
260 * leave the current inode->i_security pointer intact.
261 * The inode will be freed after the RCU grace period too.
262 */
263 call_rcu(&isec->rcu, inode_free_rcu);
264}
265
266static int file_alloc_security(struct file *file)
267{
268 struct file_security_struct *fsec;
269 u32 sid = current_sid();
270
271 fsec = kzalloc(sizeof(struct file_security_struct), GFP_KERNEL);
272 if (!fsec)
273 return -ENOMEM;
274
275 fsec->sid = sid;
276 fsec->fown_sid = sid;
277 file->f_security = fsec;
278
279 return 0;
280}
281
282static void file_free_security(struct file *file)
283{
284 struct file_security_struct *fsec = file->f_security;
285 file->f_security = NULL;
286 kfree(fsec);
287}
288
289static int superblock_alloc_security(struct super_block *sb)
290{
291 struct superblock_security_struct *sbsec;
292
293 sbsec = kzalloc(sizeof(struct superblock_security_struct), GFP_KERNEL);
294 if (!sbsec)
295 return -ENOMEM;
296
297 mutex_init(&sbsec->lock);
298 INIT_LIST_HEAD(&sbsec->isec_head);
299 spin_lock_init(&sbsec->isec_lock);
300 sbsec->sb = sb;
301 sbsec->sid = SECINITSID_UNLABELED;
302 sbsec->def_sid = SECINITSID_FILE;
303 sbsec->mntpoint_sid = SECINITSID_UNLABELED;
304 sb->s_security = sbsec;
305
306 return 0;
307}
308
309static void superblock_free_security(struct super_block *sb)
310{
311 struct superblock_security_struct *sbsec = sb->s_security;
312 sb->s_security = NULL;
313 kfree(sbsec);
314}
315
316/* The file system's label must be initialized prior to use. */
317
318static const char *labeling_behaviors[7] = {
319 "uses xattr",
320 "uses transition SIDs",
321 "uses task SIDs",
322 "uses genfs_contexts",
323 "not configured for labeling",
324 "uses mountpoint labeling",
325 "uses native labeling",
326};
327
328static int inode_doinit_with_dentry(struct inode *inode, struct dentry *opt_dentry);
329
330static inline int inode_doinit(struct inode *inode)
331{
332 return inode_doinit_with_dentry(inode, NULL);
333}
334
335enum {
336 Opt_error = -1,
337 Opt_context = 1,
338 Opt_fscontext = 2,
339 Opt_defcontext = 3,
340 Opt_rootcontext = 4,
341 Opt_labelsupport = 5,
342 Opt_nextmntopt = 6,
343};
344
345#define NUM_SEL_MNT_OPTS (Opt_nextmntopt - 1)
346
347static const match_table_t tokens = {
348 {Opt_context, CONTEXT_STR "%s"},
349 {Opt_fscontext, FSCONTEXT_STR "%s"},
350 {Opt_defcontext, DEFCONTEXT_STR "%s"},
351 {Opt_rootcontext, ROOTCONTEXT_STR "%s"},
352 {Opt_labelsupport, LABELSUPP_STR},
353 {Opt_error, NULL},
354};
355
356#define SEL_MOUNT_FAIL_MSG "SELinux: duplicate or incompatible mount options\n"
357
358static int may_context_mount_sb_relabel(u32 sid,
359 struct superblock_security_struct *sbsec,
360 const struct cred *cred)
361{
362 const struct task_security_struct *tsec = cred->security;
363 int rc;
364
365 rc = avc_has_perm(tsec->sid, sbsec->sid, SECCLASS_FILESYSTEM,
366 FILESYSTEM__RELABELFROM, NULL);
367 if (rc)
368 return rc;
369
370 rc = avc_has_perm(tsec->sid, sid, SECCLASS_FILESYSTEM,
371 FILESYSTEM__RELABELTO, NULL);
372 return rc;
373}
374
375static int may_context_mount_inode_relabel(u32 sid,
376 struct superblock_security_struct *sbsec,
377 const struct cred *cred)
378{
379 const struct task_security_struct *tsec = cred->security;
380 int rc;
381 rc = avc_has_perm(tsec->sid, sbsec->sid, SECCLASS_FILESYSTEM,
382 FILESYSTEM__RELABELFROM, NULL);
383 if (rc)
384 return rc;
385
386 rc = avc_has_perm(sid, sbsec->sid, SECCLASS_FILESYSTEM,
387 FILESYSTEM__ASSOCIATE, NULL);
388 return rc;
389}
390
391static int selinux_is_sblabel_mnt(struct super_block *sb)
392{
393 struct superblock_security_struct *sbsec = sb->s_security;
394
395 if (sbsec->behavior == SECURITY_FS_USE_XATTR ||
396 sbsec->behavior == SECURITY_FS_USE_TRANS ||
397 sbsec->behavior == SECURITY_FS_USE_TASK)
398 return 1;
399
400 /* Special handling for sysfs. Is genfs but also has setxattr handler*/
401 if (strncmp(sb->s_type->name, "sysfs", sizeof("sysfs")) == 0)
402 return 1;
403
404 /*
405 * Special handling for rootfs. Is genfs but supports
406 * setting SELinux context on in-core inodes.
407 */
408 if (strncmp(sb->s_type->name, "rootfs", sizeof("rootfs")) == 0)
409 return 1;
410
411 return 0;
412}
413
414static int sb_finish_set_opts(struct super_block *sb)
415{
416 struct superblock_security_struct *sbsec = sb->s_security;
417 struct dentry *root = sb->s_root;
418 struct inode *root_inode = root->d_inode;
419 int rc = 0;
420
421 if (sbsec->behavior == SECURITY_FS_USE_XATTR) {
422 /* Make sure that the xattr handler exists and that no
423 error other than -ENODATA is returned by getxattr on
424 the root directory. -ENODATA is ok, as this may be
425 the first boot of the SELinux kernel before we have
426 assigned xattr values to the filesystem. */
427 if (!root_inode->i_op->getxattr) {
428 printk(KERN_WARNING "SELinux: (dev %s, type %s) has no "
429 "xattr support\n", sb->s_id, sb->s_type->name);
430 rc = -EOPNOTSUPP;
431 goto out;
432 }
433 rc = root_inode->i_op->getxattr(root, XATTR_NAME_SELINUX, NULL, 0);
434 if (rc < 0 && rc != -ENODATA) {
435 if (rc == -EOPNOTSUPP)
436 printk(KERN_WARNING "SELinux: (dev %s, type "
437 "%s) has no security xattr handler\n",
438 sb->s_id, sb->s_type->name);
439 else
440 printk(KERN_WARNING "SELinux: (dev %s, type "
441 "%s) getxattr errno %d\n", sb->s_id,
442 sb->s_type->name, -rc);
443 goto out;
444 }
445 }
446
447 if (sbsec->behavior > ARRAY_SIZE(labeling_behaviors))
448 printk(KERN_ERR "SELinux: initialized (dev %s, type %s), unknown behavior\n",
449 sb->s_id, sb->s_type->name);
450 else
451 printk(KERN_DEBUG "SELinux: initialized (dev %s, type %s), %s\n",
452 sb->s_id, sb->s_type->name,
453 labeling_behaviors[sbsec->behavior-1]);
454
455 sbsec->flags |= SE_SBINITIALIZED;
456 if (selinux_is_sblabel_mnt(sb))
457 sbsec->flags |= SBLABEL_MNT;
458
459 /* Initialize the root inode. */
460 rc = inode_doinit_with_dentry(root_inode, root);
461
462 /* Initialize any other inodes associated with the superblock, e.g.
463 inodes created prior to initial policy load or inodes created
464 during get_sb by a pseudo filesystem that directly
465 populates itself. */
466 spin_lock(&sbsec->isec_lock);
467next_inode:
468 if (!list_empty(&sbsec->isec_head)) {
469 struct inode_security_struct *isec =
470 list_entry(sbsec->isec_head.next,
471 struct inode_security_struct, list);
472 struct inode *inode = isec->inode;
473 spin_unlock(&sbsec->isec_lock);
474 inode = igrab(inode);
475 if (inode) {
476 if (!IS_PRIVATE(inode))
477 inode_doinit(inode);
478 iput(inode);
479 }
480 spin_lock(&sbsec->isec_lock);
481 list_del_init(&isec->list);
482 goto next_inode;
483 }
484 spin_unlock(&sbsec->isec_lock);
485out:
486 return rc;
487}
488
489/*
490 * This function should allow an FS to ask what it's mount security
491 * options were so it can use those later for submounts, displaying
492 * mount options, or whatever.
493 */
494static int selinux_get_mnt_opts(const struct super_block *sb,
495 struct security_mnt_opts *opts)
496{
497 int rc = 0, i;
498 struct superblock_security_struct *sbsec = sb->s_security;
499 char *context = NULL;
500 u32 len;
501 char tmp;
502
503 security_init_mnt_opts(opts);
504
505 if (!(sbsec->flags & SE_SBINITIALIZED))
506 return -EINVAL;
507
508 if (!ss_initialized)
509 return -EINVAL;
510
511 /* make sure we always check enough bits to cover the mask */
512 BUILD_BUG_ON(SE_MNTMASK >= (1 << NUM_SEL_MNT_OPTS));
513
514 tmp = sbsec->flags & SE_MNTMASK;
515 /* count the number of mount options for this sb */
516 for (i = 0; i < NUM_SEL_MNT_OPTS; i++) {
517 if (tmp & 0x01)
518 opts->num_mnt_opts++;
519 tmp >>= 1;
520 }
521 /* Check if the Label support flag is set */
522 if (sbsec->flags & SBLABEL_MNT)
523 opts->num_mnt_opts++;
524
525 opts->mnt_opts = kcalloc(opts->num_mnt_opts, sizeof(char *), GFP_ATOMIC);
526 if (!opts->mnt_opts) {
527 rc = -ENOMEM;
528 goto out_free;
529 }
530
531 opts->mnt_opts_flags = kcalloc(opts->num_mnt_opts, sizeof(int), GFP_ATOMIC);
532 if (!opts->mnt_opts_flags) {
533 rc = -ENOMEM;
534 goto out_free;
535 }
536
537 i = 0;
538 if (sbsec->flags & FSCONTEXT_MNT) {
539 rc = security_sid_to_context(sbsec->sid, &context, &len);
540 if (rc)
541 goto out_free;
542 opts->mnt_opts[i] = context;
543 opts->mnt_opts_flags[i++] = FSCONTEXT_MNT;
544 }
545 if (sbsec->flags & CONTEXT_MNT) {
546 rc = security_sid_to_context(sbsec->mntpoint_sid, &context, &len);
547 if (rc)
548 goto out_free;
549 opts->mnt_opts[i] = context;
550 opts->mnt_opts_flags[i++] = CONTEXT_MNT;
551 }
552 if (sbsec->flags & DEFCONTEXT_MNT) {
553 rc = security_sid_to_context(sbsec->def_sid, &context, &len);
554 if (rc)
555 goto out_free;
556 opts->mnt_opts[i] = context;
557 opts->mnt_opts_flags[i++] = DEFCONTEXT_MNT;
558 }
559 if (sbsec->flags & ROOTCONTEXT_MNT) {
560 struct inode *root = sbsec->sb->s_root->d_inode;
561 struct inode_security_struct *isec = root->i_security;
562
563 rc = security_sid_to_context(isec->sid, &context, &len);
564 if (rc)
565 goto out_free;
566 opts->mnt_opts[i] = context;
567 opts->mnt_opts_flags[i++] = ROOTCONTEXT_MNT;
568 }
569 if (sbsec->flags & SBLABEL_MNT) {
570 opts->mnt_opts[i] = NULL;
571 opts->mnt_opts_flags[i++] = SBLABEL_MNT;
572 }
573
574 BUG_ON(i != opts->num_mnt_opts);
575
576 return 0;
577
578out_free:
579 security_free_mnt_opts(opts);
580 return rc;
581}
582
583static int bad_option(struct superblock_security_struct *sbsec, char flag,
584 u32 old_sid, u32 new_sid)
585{
586 char mnt_flags = sbsec->flags & SE_MNTMASK;
587
588 /* check if the old mount command had the same options */
589 if (sbsec->flags & SE_SBINITIALIZED)
590 if (!(sbsec->flags & flag) ||
591 (old_sid != new_sid))
592 return 1;
593
594 /* check if we were passed the same options twice,
595 * aka someone passed context=a,context=b
596 */
597 if (!(sbsec->flags & SE_SBINITIALIZED))
598 if (mnt_flags & flag)
599 return 1;
600 return 0;
601}
602
603/*
604 * Allow filesystems with binary mount data to explicitly set mount point
605 * labeling information.
606 */
607static int selinux_set_mnt_opts(struct super_block *sb,
608 struct security_mnt_opts *opts,
609 unsigned long kern_flags,
610 unsigned long *set_kern_flags)
611{
612 const struct cred *cred = current_cred();
613 int rc = 0, i;
614 struct superblock_security_struct *sbsec = sb->s_security;
615 const char *name = sb->s_type->name;
616 struct inode *inode = sbsec->sb->s_root->d_inode;
617 struct inode_security_struct *root_isec = inode->i_security;
618 u32 fscontext_sid = 0, context_sid = 0, rootcontext_sid = 0;
619 u32 defcontext_sid = 0;
620 char **mount_options = opts->mnt_opts;
621 int *flags = opts->mnt_opts_flags;
622 int num_opts = opts->num_mnt_opts;
623
624 mutex_lock(&sbsec->lock);
625
626 if (!ss_initialized) {
627 if (!num_opts) {
628 /* Defer initialization until selinux_complete_init,
629 after the initial policy is loaded and the security
630 server is ready to handle calls. */
631 goto out;
632 }
633 rc = -EINVAL;
634 printk(KERN_WARNING "SELinux: Unable to set superblock options "
635 "before the security server is initialized\n");
636 goto out;
637 }
638 if (kern_flags && !set_kern_flags) {
639 /* Specifying internal flags without providing a place to
640 * place the results is not allowed */
641 rc = -EINVAL;
642 goto out;
643 }
644
645 /*
646 * Binary mount data FS will come through this function twice. Once
647 * from an explicit call and once from the generic calls from the vfs.
648 * Since the generic VFS calls will not contain any security mount data
649 * we need to skip the double mount verification.
650 *
651 * This does open a hole in which we will not notice if the first
652 * mount using this sb set explict options and a second mount using
653 * this sb does not set any security options. (The first options
654 * will be used for both mounts)
655 */
656 if ((sbsec->flags & SE_SBINITIALIZED) && (sb->s_type->fs_flags & FS_BINARY_MOUNTDATA)
657 && (num_opts == 0))
658 goto out;
659
660 /*
661 * parse the mount options, check if they are valid sids.
662 * also check if someone is trying to mount the same sb more
663 * than once with different security options.
664 */
665 for (i = 0; i < num_opts; i++) {
666 u32 sid;
667
668 if (flags[i] == SBLABEL_MNT)
669 continue;
670 rc = security_context_to_sid(mount_options[i],
671 strlen(mount_options[i]), &sid, GFP_KERNEL);
672 if (rc) {
673 printk(KERN_WARNING "SELinux: security_context_to_sid"
674 "(%s) failed for (dev %s, type %s) errno=%d\n",
675 mount_options[i], sb->s_id, name, rc);
676 goto out;
677 }
678 switch (flags[i]) {
679 case FSCONTEXT_MNT:
680 fscontext_sid = sid;
681
682 if (bad_option(sbsec, FSCONTEXT_MNT, sbsec->sid,
683 fscontext_sid))
684 goto out_double_mount;
685
686 sbsec->flags |= FSCONTEXT_MNT;
687 break;
688 case CONTEXT_MNT:
689 context_sid = sid;
690
691 if (bad_option(sbsec, CONTEXT_MNT, sbsec->mntpoint_sid,
692 context_sid))
693 goto out_double_mount;
694
695 sbsec->flags |= CONTEXT_MNT;
696 break;
697 case ROOTCONTEXT_MNT:
698 rootcontext_sid = sid;
699
700 if (bad_option(sbsec, ROOTCONTEXT_MNT, root_isec->sid,
701 rootcontext_sid))
702 goto out_double_mount;
703
704 sbsec->flags |= ROOTCONTEXT_MNT;
705
706 break;
707 case DEFCONTEXT_MNT:
708 defcontext_sid = sid;
709
710 if (bad_option(sbsec, DEFCONTEXT_MNT, sbsec->def_sid,
711 defcontext_sid))
712 goto out_double_mount;
713
714 sbsec->flags |= DEFCONTEXT_MNT;
715
716 break;
717 default:
718 rc = -EINVAL;
719 goto out;
720 }
721 }
722
723 if (sbsec->flags & SE_SBINITIALIZED) {
724 /* previously mounted with options, but not on this attempt? */
725 if ((sbsec->flags & SE_MNTMASK) && !num_opts)
726 goto out_double_mount;
727 rc = 0;
728 goto out;
729 }
730
731 if (strcmp(sb->s_type->name, "proc") == 0)
732 sbsec->flags |= SE_SBPROC;
733
734 if (!sbsec->behavior) {
735 /*
736 * Determine the labeling behavior to use for this
737 * filesystem type.
738 */
739 rc = security_fs_use(sb);
740 if (rc) {
741 printk(KERN_WARNING
742 "%s: security_fs_use(%s) returned %d\n",
743 __func__, sb->s_type->name, rc);
744 goto out;
745 }
746 }
747 /* sets the context of the superblock for the fs being mounted. */
748 if (fscontext_sid) {
749 rc = may_context_mount_sb_relabel(fscontext_sid, sbsec, cred);
750 if (rc)
751 goto out;
752
753 sbsec->sid = fscontext_sid;
754 }
755
756 /*
757 * Switch to using mount point labeling behavior.
758 * sets the label used on all file below the mountpoint, and will set
759 * the superblock context if not already set.
760 */
761 if (kern_flags & SECURITY_LSM_NATIVE_LABELS && !context_sid) {
762 sbsec->behavior = SECURITY_FS_USE_NATIVE;
763 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
764 }
765
766 if (context_sid) {
767 if (!fscontext_sid) {
768 rc = may_context_mount_sb_relabel(context_sid, sbsec,
769 cred);
770 if (rc)
771 goto out;
772 sbsec->sid = context_sid;
773 } else {
774 rc = may_context_mount_inode_relabel(context_sid, sbsec,
775 cred);
776 if (rc)
777 goto out;
778 }
779 if (!rootcontext_sid)
780 rootcontext_sid = context_sid;
781
782 sbsec->mntpoint_sid = context_sid;
783 sbsec->behavior = SECURITY_FS_USE_MNTPOINT;
784 }
785
786 if (rootcontext_sid) {
787 rc = may_context_mount_inode_relabel(rootcontext_sid, sbsec,
788 cred);
789 if (rc)
790 goto out;
791
792 root_isec->sid = rootcontext_sid;
793 root_isec->initialized = 1;
794 }
795
796 if (defcontext_sid) {
797 if (sbsec->behavior != SECURITY_FS_USE_XATTR &&
798 sbsec->behavior != SECURITY_FS_USE_NATIVE) {
799 rc = -EINVAL;
800 printk(KERN_WARNING "SELinux: defcontext option is "
801 "invalid for this filesystem type\n");
802 goto out;
803 }
804
805 if (defcontext_sid != sbsec->def_sid) {
806 rc = may_context_mount_inode_relabel(defcontext_sid,
807 sbsec, cred);
808 if (rc)
809 goto out;
810 }
811
812 sbsec->def_sid = defcontext_sid;
813 }
814
815 rc = sb_finish_set_opts(sb);
816out:
817 mutex_unlock(&sbsec->lock);
818 return rc;
819out_double_mount:
820 rc = -EINVAL;
821 printk(KERN_WARNING "SELinux: mount invalid. Same superblock, different "
822 "security settings for (dev %s, type %s)\n", sb->s_id, name);
823 goto out;
824}
825
826static int selinux_cmp_sb_context(const struct super_block *oldsb,
827 const struct super_block *newsb)
828{
829 struct superblock_security_struct *old = oldsb->s_security;
830 struct superblock_security_struct *new = newsb->s_security;
831 char oldflags = old->flags & SE_MNTMASK;
832 char newflags = new->flags & SE_MNTMASK;
833
834 if (oldflags != newflags)
835 goto mismatch;
836 if ((oldflags & FSCONTEXT_MNT) && old->sid != new->sid)
837 goto mismatch;
838 if ((oldflags & CONTEXT_MNT) && old->mntpoint_sid != new->mntpoint_sid)
839 goto mismatch;
840 if ((oldflags & DEFCONTEXT_MNT) && old->def_sid != new->def_sid)
841 goto mismatch;
842 if (oldflags & ROOTCONTEXT_MNT) {
843 struct inode_security_struct *oldroot = oldsb->s_root->d_inode->i_security;
844 struct inode_security_struct *newroot = newsb->s_root->d_inode->i_security;
845 if (oldroot->sid != newroot->sid)
846 goto mismatch;
847 }
848 return 0;
849mismatch:
850 printk(KERN_WARNING "SELinux: mount invalid. Same superblock, "
851 "different security settings for (dev %s, "
852 "type %s)\n", newsb->s_id, newsb->s_type->name);
853 return -EBUSY;
854}
855
856static int selinux_sb_clone_mnt_opts(const struct super_block *oldsb,
857 struct super_block *newsb)
858{
859 const struct superblock_security_struct *oldsbsec = oldsb->s_security;
860 struct superblock_security_struct *newsbsec = newsb->s_security;
861
862 int set_fscontext = (oldsbsec->flags & FSCONTEXT_MNT);
863 int set_context = (oldsbsec->flags & CONTEXT_MNT);
864 int set_rootcontext = (oldsbsec->flags & ROOTCONTEXT_MNT);
865
866 /*
867 * if the parent was able to be mounted it clearly had no special lsm
868 * mount options. thus we can safely deal with this superblock later
869 */
870 if (!ss_initialized)
871 return 0;
872
873 /* how can we clone if the old one wasn't set up?? */
874 BUG_ON(!(oldsbsec->flags & SE_SBINITIALIZED));
875
876 /* if fs is reusing a sb, make sure that the contexts match */
877 if (newsbsec->flags & SE_SBINITIALIZED)
878 return selinux_cmp_sb_context(oldsb, newsb);
879
880 mutex_lock(&newsbsec->lock);
881
882 newsbsec->flags = oldsbsec->flags;
883
884 newsbsec->sid = oldsbsec->sid;
885 newsbsec->def_sid = oldsbsec->def_sid;
886 newsbsec->behavior = oldsbsec->behavior;
887
888 if (set_context) {
889 u32 sid = oldsbsec->mntpoint_sid;
890
891 if (!set_fscontext)
892 newsbsec->sid = sid;
893 if (!set_rootcontext) {
894 struct inode *newinode = newsb->s_root->d_inode;
895 struct inode_security_struct *newisec = newinode->i_security;
896 newisec->sid = sid;
897 }
898 newsbsec->mntpoint_sid = sid;
899 }
900 if (set_rootcontext) {
901 const struct inode *oldinode = oldsb->s_root->d_inode;
902 const struct inode_security_struct *oldisec = oldinode->i_security;
903 struct inode *newinode = newsb->s_root->d_inode;
904 struct inode_security_struct *newisec = newinode->i_security;
905
906 newisec->sid = oldisec->sid;
907 }
908
909 sb_finish_set_opts(newsb);
910 mutex_unlock(&newsbsec->lock);
911 return 0;
912}
913
914static int selinux_parse_opts_str(char *options,
915 struct security_mnt_opts *opts)
916{
917 char *p;
918 char *context = NULL, *defcontext = NULL;
919 char *fscontext = NULL, *rootcontext = NULL;
920 int rc, num_mnt_opts = 0;
921
922 opts->num_mnt_opts = 0;
923
924 /* Standard string-based options. */
925 while ((p = strsep(&options, "|")) != NULL) {
926 int token;
927 substring_t args[MAX_OPT_ARGS];
928
929 if (!*p)
930 continue;
931
932 token = match_token(p, tokens, args);
933
934 switch (token) {
935 case Opt_context:
936 if (context || defcontext) {
937 rc = -EINVAL;
938 printk(KERN_WARNING SEL_MOUNT_FAIL_MSG);
939 goto out_err;
940 }
941 context = match_strdup(&args[0]);
942 if (!context) {
943 rc = -ENOMEM;
944 goto out_err;
945 }
946 break;
947
948 case Opt_fscontext:
949 if (fscontext) {
950 rc = -EINVAL;
951 printk(KERN_WARNING SEL_MOUNT_FAIL_MSG);
952 goto out_err;
953 }
954 fscontext = match_strdup(&args[0]);
955 if (!fscontext) {
956 rc = -ENOMEM;
957 goto out_err;
958 }
959 break;
960
961 case Opt_rootcontext:
962 if (rootcontext) {
963 rc = -EINVAL;
964 printk(KERN_WARNING SEL_MOUNT_FAIL_MSG);
965 goto out_err;
966 }
967 rootcontext = match_strdup(&args[0]);
968 if (!rootcontext) {
969 rc = -ENOMEM;
970 goto out_err;
971 }
972 break;
973
974 case Opt_defcontext:
975 if (context || defcontext) {
976 rc = -EINVAL;
977 printk(KERN_WARNING SEL_MOUNT_FAIL_MSG);
978 goto out_err;
979 }
980 defcontext = match_strdup(&args[0]);
981 if (!defcontext) {
982 rc = -ENOMEM;
983 goto out_err;
984 }
985 break;
986 case Opt_labelsupport:
987 break;
988 default:
989 rc = -EINVAL;
990 printk(KERN_WARNING "SELinux: unknown mount option\n");
991 goto out_err;
992
993 }
994 }
995
996 rc = -ENOMEM;
997 opts->mnt_opts = kcalloc(NUM_SEL_MNT_OPTS, sizeof(char *), GFP_ATOMIC);
998 if (!opts->mnt_opts)
999 goto out_err;
1000
1001 opts->mnt_opts_flags = kcalloc(NUM_SEL_MNT_OPTS, sizeof(int), GFP_ATOMIC);
1002 if (!opts->mnt_opts_flags) {
1003 kfree(opts->mnt_opts);
1004 goto out_err;
1005 }
1006
1007 if (fscontext) {
1008 opts->mnt_opts[num_mnt_opts] = fscontext;
1009 opts->mnt_opts_flags[num_mnt_opts++] = FSCONTEXT_MNT;
1010 }
1011 if (context) {
1012 opts->mnt_opts[num_mnt_opts] = context;
1013 opts->mnt_opts_flags[num_mnt_opts++] = CONTEXT_MNT;
1014 }
1015 if (rootcontext) {
1016 opts->mnt_opts[num_mnt_opts] = rootcontext;
1017 opts->mnt_opts_flags[num_mnt_opts++] = ROOTCONTEXT_MNT;
1018 }
1019 if (defcontext) {
1020 opts->mnt_opts[num_mnt_opts] = defcontext;
1021 opts->mnt_opts_flags[num_mnt_opts++] = DEFCONTEXT_MNT;
1022 }
1023
1024 opts->num_mnt_opts = num_mnt_opts;
1025 return 0;
1026
1027out_err:
1028 kfree(context);
1029 kfree(defcontext);
1030 kfree(fscontext);
1031 kfree(rootcontext);
1032 return rc;
1033}
1034/*
1035 * string mount options parsing and call set the sbsec
1036 */
1037static int superblock_doinit(struct super_block *sb, void *data)
1038{
1039 int rc = 0;
1040 char *options = data;
1041 struct security_mnt_opts opts;
1042
1043 security_init_mnt_opts(&opts);
1044
1045 if (!data)
1046 goto out;
1047
1048 BUG_ON(sb->s_type->fs_flags & FS_BINARY_MOUNTDATA);
1049
1050 rc = selinux_parse_opts_str(options, &opts);
1051 if (rc)
1052 goto out_err;
1053
1054out:
1055 rc = selinux_set_mnt_opts(sb, &opts, 0, NULL);
1056
1057out_err:
1058 security_free_mnt_opts(&opts);
1059 return rc;
1060}
1061
1062static void selinux_write_opts(struct seq_file *m,
1063 struct security_mnt_opts *opts)
1064{
1065 int i;
1066 char *prefix;
1067
1068 for (i = 0; i < opts->num_mnt_opts; i++) {
1069 char *has_comma;
1070
1071 if (opts->mnt_opts[i])
1072 has_comma = strchr(opts->mnt_opts[i], ',');
1073 else
1074 has_comma = NULL;
1075
1076 switch (opts->mnt_opts_flags[i]) {
1077 case CONTEXT_MNT:
1078 prefix = CONTEXT_STR;
1079 break;
1080 case FSCONTEXT_MNT:
1081 prefix = FSCONTEXT_STR;
1082 break;
1083 case ROOTCONTEXT_MNT:
1084 prefix = ROOTCONTEXT_STR;
1085 break;
1086 case DEFCONTEXT_MNT:
1087 prefix = DEFCONTEXT_STR;
1088 break;
1089 case SBLABEL_MNT:
1090 seq_putc(m, ',');
1091 seq_puts(m, LABELSUPP_STR);
1092 continue;
1093 default:
1094 BUG();
1095 return;
1096 };
1097 /* we need a comma before each option */
1098 seq_putc(m, ',');
1099 seq_puts(m, prefix);
1100 if (has_comma)
1101 seq_putc(m, '\"');
1102 seq_puts(m, opts->mnt_opts[i]);
1103 if (has_comma)
1104 seq_putc(m, '\"');
1105 }
1106}
1107
1108static int selinux_sb_show_options(struct seq_file *m, struct super_block *sb)
1109{
1110 struct security_mnt_opts opts;
1111 int rc;
1112
1113 rc = selinux_get_mnt_opts(sb, &opts);
1114 if (rc) {
1115 /* before policy load we may get EINVAL, don't show anything */
1116 if (rc == -EINVAL)
1117 rc = 0;
1118 return rc;
1119 }
1120
1121 selinux_write_opts(m, &opts);
1122
1123 security_free_mnt_opts(&opts);
1124
1125 return rc;
1126}
1127
1128static inline u16 inode_mode_to_security_class(umode_t mode)
1129{
1130 switch (mode & S_IFMT) {
1131 case S_IFSOCK:
1132 return SECCLASS_SOCK_FILE;
1133 case S_IFLNK:
1134 return SECCLASS_LNK_FILE;
1135 case S_IFREG:
1136 return SECCLASS_FILE;
1137 case S_IFBLK:
1138 return SECCLASS_BLK_FILE;
1139 case S_IFDIR:
1140 return SECCLASS_DIR;
1141 case S_IFCHR:
1142 return SECCLASS_CHR_FILE;
1143 case S_IFIFO:
1144 return SECCLASS_FIFO_FILE;
1145
1146 }
1147
1148 return SECCLASS_FILE;
1149}
1150
1151static inline int default_protocol_stream(int protocol)
1152{
1153 return (protocol == IPPROTO_IP || protocol == IPPROTO_TCP);
1154}
1155
1156static inline int default_protocol_dgram(int protocol)
1157{
1158 return (protocol == IPPROTO_IP || protocol == IPPROTO_UDP);
1159}
1160
1161static inline u16 socket_type_to_security_class(int family, int type, int protocol)
1162{
1163 switch (family) {
1164 case PF_UNIX:
1165 switch (type) {
1166 case SOCK_STREAM:
1167 case SOCK_SEQPACKET:
1168 return SECCLASS_UNIX_STREAM_SOCKET;
1169 case SOCK_DGRAM:
1170 return SECCLASS_UNIX_DGRAM_SOCKET;
1171 }
1172 break;
1173 case PF_INET:
1174 case PF_INET6:
1175 switch (type) {
1176 case SOCK_STREAM:
1177 if (default_protocol_stream(protocol))
1178 return SECCLASS_TCP_SOCKET;
1179 else
1180 return SECCLASS_RAWIP_SOCKET;
1181 case SOCK_DGRAM:
1182 if (default_protocol_dgram(protocol))
1183 return SECCLASS_UDP_SOCKET;
1184 else
1185 return SECCLASS_RAWIP_SOCKET;
1186 case SOCK_DCCP:
1187 return SECCLASS_DCCP_SOCKET;
1188 default:
1189 return SECCLASS_RAWIP_SOCKET;
1190 }
1191 break;
1192 case PF_NETLINK:
1193 switch (protocol) {
1194 case NETLINK_ROUTE:
1195 return SECCLASS_NETLINK_ROUTE_SOCKET;
1196 case NETLINK_FIREWALL:
1197 return SECCLASS_NETLINK_FIREWALL_SOCKET;
1198 case NETLINK_SOCK_DIAG:
1199 return SECCLASS_NETLINK_TCPDIAG_SOCKET;
1200 case NETLINK_NFLOG:
1201 return SECCLASS_NETLINK_NFLOG_SOCKET;
1202 case NETLINK_XFRM:
1203 return SECCLASS_NETLINK_XFRM_SOCKET;
1204 case NETLINK_SELINUX:
1205 return SECCLASS_NETLINK_SELINUX_SOCKET;
1206 case NETLINK_AUDIT:
1207 return SECCLASS_NETLINK_AUDIT_SOCKET;
1208 case NETLINK_IP6_FW:
1209 return SECCLASS_NETLINK_IP6FW_SOCKET;
1210 case NETLINK_DNRTMSG:
1211 return SECCLASS_NETLINK_DNRT_SOCKET;
1212 case NETLINK_KOBJECT_UEVENT:
1213 return SECCLASS_NETLINK_KOBJECT_UEVENT_SOCKET;
1214 default:
1215 return SECCLASS_NETLINK_SOCKET;
1216 }
1217 case PF_PACKET:
1218 return SECCLASS_PACKET_SOCKET;
1219 case PF_KEY:
1220 return SECCLASS_KEY_SOCKET;
1221 case PF_APPLETALK:
1222 return SECCLASS_APPLETALK_SOCKET;
1223 }
1224
1225 return SECCLASS_SOCKET;
1226}
1227
1228#ifdef CONFIG_PROC_FS
1229static int selinux_proc_get_sid(struct dentry *dentry,
1230 u16 tclass,
1231 u32 *sid)
1232{
1233 int rc;
1234 char *buffer, *path;
1235
1236 buffer = (char *)__get_free_page(GFP_KERNEL);
1237 if (!buffer)
1238 return -ENOMEM;
1239
1240 path = dentry_path_raw(dentry, buffer, PAGE_SIZE);
1241 if (IS_ERR(path))
1242 rc = PTR_ERR(path);
1243 else {
1244 /* each process gets a /proc/PID/ entry. Strip off the
1245 * PID part to get a valid selinux labeling.
1246 * e.g. /proc/1/net/rpc/nfs -> /net/rpc/nfs */
1247 while (path[1] >= '0' && path[1] <= '9') {
1248 path[1] = '/';
1249 path++;
1250 }
1251 rc = security_genfs_sid("proc", path, tclass, sid);
1252 }
1253 free_page((unsigned long)buffer);
1254 return rc;
1255}
1256#else
1257static int selinux_proc_get_sid(struct dentry *dentry,
1258 u16 tclass,
1259 u32 *sid)
1260{
1261 return -EINVAL;
1262}
1263#endif
1264
1265/* The inode's security attributes must be initialized before first use. */
1266static int inode_doinit_with_dentry(struct inode *inode, struct dentry *opt_dentry)
1267{
1268 struct superblock_security_struct *sbsec = NULL;
1269 struct inode_security_struct *isec = inode->i_security;
1270 u32 sid;
1271 struct dentry *dentry;
1272#define INITCONTEXTLEN 255
1273 char *context = NULL;
1274 unsigned len = 0;
1275 int rc = 0;
1276
1277 if (isec->initialized)
1278 goto out;
1279
1280 mutex_lock(&isec->lock);
1281 if (isec->initialized)
1282 goto out_unlock;
1283
1284 sbsec = inode->i_sb->s_security;
1285 if (!(sbsec->flags & SE_SBINITIALIZED)) {
1286 /* Defer initialization until selinux_complete_init,
1287 after the initial policy is loaded and the security
1288 server is ready to handle calls. */
1289 spin_lock(&sbsec->isec_lock);
1290 if (list_empty(&isec->list))
1291 list_add(&isec->list, &sbsec->isec_head);
1292 spin_unlock(&sbsec->isec_lock);
1293 goto out_unlock;
1294 }
1295
1296 switch (sbsec->behavior) {
1297 case SECURITY_FS_USE_NATIVE:
1298 break;
1299 case SECURITY_FS_USE_XATTR:
1300 if (!inode->i_op->getxattr) {
1301 isec->sid = sbsec->def_sid;
1302 break;
1303 }
1304
1305 /* Need a dentry, since the xattr API requires one.
1306 Life would be simpler if we could just pass the inode. */
1307 if (opt_dentry) {
1308 /* Called from d_instantiate or d_splice_alias. */
1309 dentry = dget(opt_dentry);
1310 } else {
1311 /* Called from selinux_complete_init, try to find a dentry. */
1312 dentry = d_find_alias(inode);
1313 }
1314 if (!dentry) {
1315 /*
1316 * this is can be hit on boot when a file is accessed
1317 * before the policy is loaded. When we load policy we
1318 * may find inodes that have no dentry on the
1319 * sbsec->isec_head list. No reason to complain as these
1320 * will get fixed up the next time we go through
1321 * inode_doinit with a dentry, before these inodes could
1322 * be used again by userspace.
1323 */
1324 goto out_unlock;
1325 }
1326
1327 len = INITCONTEXTLEN;
1328 context = kmalloc(len+1, GFP_NOFS);
1329 if (!context) {
1330 rc = -ENOMEM;
1331 dput(dentry);
1332 goto out_unlock;
1333 }
1334 context[len] = '\0';
1335 rc = inode->i_op->getxattr(dentry, XATTR_NAME_SELINUX,
1336 context, len);
1337 if (rc == -ERANGE) {
1338 kfree(context);
1339
1340 /* Need a larger buffer. Query for the right size. */
1341 rc = inode->i_op->getxattr(dentry, XATTR_NAME_SELINUX,
1342 NULL, 0);
1343 if (rc < 0) {
1344 dput(dentry);
1345 goto out_unlock;
1346 }
1347 len = rc;
1348 context = kmalloc(len+1, GFP_NOFS);
1349 if (!context) {
1350 rc = -ENOMEM;
1351 dput(dentry);
1352 goto out_unlock;
1353 }
1354 context[len] = '\0';
1355 rc = inode->i_op->getxattr(dentry,
1356 XATTR_NAME_SELINUX,
1357 context, len);
1358 }
1359 dput(dentry);
1360 if (rc < 0) {
1361 if (rc != -ENODATA) {
1362 printk(KERN_WARNING "SELinux: %s: getxattr returned "
1363 "%d for dev=%s ino=%ld\n", __func__,
1364 -rc, inode->i_sb->s_id, inode->i_ino);
1365 kfree(context);
1366 goto out_unlock;
1367 }
1368 /* Map ENODATA to the default file SID */
1369 sid = sbsec->def_sid;
1370 rc = 0;
1371 } else {
1372 rc = security_context_to_sid_default(context, rc, &sid,
1373 sbsec->def_sid,
1374 GFP_NOFS);
1375 if (rc) {
1376 char *dev = inode->i_sb->s_id;
1377 unsigned long ino = inode->i_ino;
1378
1379 if (rc == -EINVAL) {
1380 if (printk_ratelimit())
1381 printk(KERN_NOTICE "SELinux: inode=%lu on dev=%s was found to have an invalid "
1382 "context=%s. This indicates you may need to relabel the inode or the "
1383 "filesystem in question.\n", ino, dev, context);
1384 } else {
1385 printk(KERN_WARNING "SELinux: %s: context_to_sid(%s) "
1386 "returned %d for dev=%s ino=%ld\n",
1387 __func__, context, -rc, dev, ino);
1388 }
1389 kfree(context);
1390 /* Leave with the unlabeled SID */
1391 rc = 0;
1392 break;
1393 }
1394 }
1395 kfree(context);
1396 isec->sid = sid;
1397 break;
1398 case SECURITY_FS_USE_TASK:
1399 isec->sid = isec->task_sid;
1400 break;
1401 case SECURITY_FS_USE_TRANS:
1402 /* Default to the fs SID. */
1403 isec->sid = sbsec->sid;
1404
1405 /* Try to obtain a transition SID. */
1406 isec->sclass = inode_mode_to_security_class(inode->i_mode);
1407 rc = security_transition_sid(isec->task_sid, sbsec->sid,
1408 isec->sclass, NULL, &sid);
1409 if (rc)
1410 goto out_unlock;
1411 isec->sid = sid;
1412 break;
1413 case SECURITY_FS_USE_MNTPOINT:
1414 isec->sid = sbsec->mntpoint_sid;
1415 break;
1416 default:
1417 /* Default to the fs superblock SID. */
1418 isec->sid = sbsec->sid;
1419
1420 if ((sbsec->flags & SE_SBPROC) && !S_ISLNK(inode->i_mode)) {
1421 /* We must have a dentry to determine the label on
1422 * procfs inodes */
1423 if (opt_dentry)
1424 /* Called from d_instantiate or
1425 * d_splice_alias. */
1426 dentry = dget(opt_dentry);
1427 else
1428 /* Called from selinux_complete_init, try to
1429 * find a dentry. */
1430 dentry = d_find_alias(inode);
1431 /*
1432 * This can be hit on boot when a file is accessed
1433 * before the policy is loaded. When we load policy we
1434 * may find inodes that have no dentry on the
1435 * sbsec->isec_head list. No reason to complain as
1436 * these will get fixed up the next time we go through
1437 * inode_doinit() with a dentry, before these inodes
1438 * could be used again by userspace.
1439 */
1440 if (!dentry)
1441 goto out_unlock;
1442 isec->sclass = inode_mode_to_security_class(inode->i_mode);
1443 rc = selinux_proc_get_sid(dentry, isec->sclass, &sid);
1444 dput(dentry);
1445 if (rc)
1446 goto out_unlock;
1447 isec->sid = sid;
1448 }
1449 break;
1450 }
1451
1452 isec->initialized = 1;
1453
1454out_unlock:
1455 mutex_unlock(&isec->lock);
1456out:
1457 if (isec->sclass == SECCLASS_FILE)
1458 isec->sclass = inode_mode_to_security_class(inode->i_mode);
1459 return rc;
1460}
1461
1462/* Convert a Linux signal to an access vector. */
1463static inline u32 signal_to_av(int sig)
1464{
1465 u32 perm = 0;
1466
1467 switch (sig) {
1468 case SIGCHLD:
1469 /* Commonly granted from child to parent. */
1470 perm = PROCESS__SIGCHLD;
1471 break;
1472 case SIGKILL:
1473 /* Cannot be caught or ignored */
1474 perm = PROCESS__SIGKILL;
1475 break;
1476 case SIGSTOP:
1477 /* Cannot be caught or ignored */
1478 perm = PROCESS__SIGSTOP;
1479 break;
1480 default:
1481 /* All other signals. */
1482 perm = PROCESS__SIGNAL;
1483 break;
1484 }
1485
1486 return perm;
1487}
1488
1489/*
1490 * Check permission between a pair of credentials
1491 * fork check, ptrace check, etc.
1492 */
1493static int cred_has_perm(const struct cred *actor,
1494 const struct cred *target,
1495 u32 perms)
1496{
1497 u32 asid = cred_sid(actor), tsid = cred_sid(target);
1498
1499 return avc_has_perm(asid, tsid, SECCLASS_PROCESS, perms, NULL);
1500}
1501
1502/*
1503 * Check permission between a pair of tasks, e.g. signal checks,
1504 * fork check, ptrace check, etc.
1505 * tsk1 is the actor and tsk2 is the target
1506 * - this uses the default subjective creds of tsk1
1507 */
1508static int task_has_perm(const struct task_struct *tsk1,
1509 const struct task_struct *tsk2,
1510 u32 perms)
1511{
1512 const struct task_security_struct *__tsec1, *__tsec2;
1513 u32 sid1, sid2;
1514
1515 rcu_read_lock();
1516 __tsec1 = __task_cred(tsk1)->security; sid1 = __tsec1->sid;
1517 __tsec2 = __task_cred(tsk2)->security; sid2 = __tsec2->sid;
1518 rcu_read_unlock();
1519 return avc_has_perm(sid1, sid2, SECCLASS_PROCESS, perms, NULL);
1520}
1521
1522/*
1523 * Check permission between current and another task, e.g. signal checks,
1524 * fork check, ptrace check, etc.
1525 * current is the actor and tsk2 is the target
1526 * - this uses current's subjective creds
1527 */
1528static int current_has_perm(const struct task_struct *tsk,
1529 u32 perms)
1530{
1531 u32 sid, tsid;
1532
1533 sid = current_sid();
1534 tsid = task_sid(tsk);
1535 return avc_has_perm(sid, tsid, SECCLASS_PROCESS, perms, NULL);
1536}
1537
1538#if CAP_LAST_CAP > 63
1539#error Fix SELinux to handle capabilities > 63.
1540#endif
1541
1542/* Check whether a task is allowed to use a capability. */
1543static int cred_has_capability(const struct cred *cred,
1544 int cap, int audit)
1545{
1546 struct common_audit_data ad;
1547 struct av_decision avd;
1548 u16 sclass;
1549 u32 sid = cred_sid(cred);
1550 u32 av = CAP_TO_MASK(cap);
1551 int rc;
1552
1553 ad.type = LSM_AUDIT_DATA_CAP;
1554 ad.u.cap = cap;
1555
1556 switch (CAP_TO_INDEX(cap)) {
1557 case 0:
1558 sclass = SECCLASS_CAPABILITY;
1559 break;
1560 case 1:
1561 sclass = SECCLASS_CAPABILITY2;
1562 break;
1563 default:
1564 printk(KERN_ERR
1565 "SELinux: out of range capability %d\n", cap);
1566 BUG();
1567 return -EINVAL;
1568 }
1569
1570 rc = avc_has_perm_noaudit(sid, sid, sclass, av, 0, &avd);
1571 if (audit == SECURITY_CAP_AUDIT) {
1572 int rc2 = avc_audit(sid, sid, sclass, av, &avd, rc, &ad);
1573 if (rc2)
1574 return rc2;
1575 }
1576 return rc;
1577}
1578
1579/* Check whether a task is allowed to use a system operation. */
1580static int task_has_system(struct task_struct *tsk,
1581 u32 perms)
1582{
1583 u32 sid = task_sid(tsk);
1584
1585 return avc_has_perm(sid, SECINITSID_KERNEL,
1586 SECCLASS_SYSTEM, perms, NULL);
1587}
1588
1589/* Check whether a task has a particular permission to an inode.
1590 The 'adp' parameter is optional and allows other audit
1591 data to be passed (e.g. the dentry). */
1592static int inode_has_perm(const struct cred *cred,
1593 struct inode *inode,
1594 u32 perms,
1595 struct common_audit_data *adp)
1596{
1597 struct inode_security_struct *isec;
1598 u32 sid;
1599
1600 validate_creds(cred);
1601
1602 if (unlikely(IS_PRIVATE(inode)))
1603 return 0;
1604
1605 sid = cred_sid(cred);
1606 isec = inode->i_security;
1607
1608 return avc_has_perm(sid, isec->sid, isec->sclass, perms, adp);
1609}
1610
1611/* Same as inode_has_perm, but pass explicit audit data containing
1612 the dentry to help the auditing code to more easily generate the
1613 pathname if needed. */
1614static inline int dentry_has_perm(const struct cred *cred,
1615 struct dentry *dentry,
1616 u32 av)
1617{
1618 struct inode *inode = dentry->d_inode;
1619 struct common_audit_data ad;
1620
1621 ad.type = LSM_AUDIT_DATA_DENTRY;
1622 ad.u.dentry = dentry;
1623 return inode_has_perm(cred, inode, av, &ad);
1624}
1625
1626/* Same as inode_has_perm, but pass explicit audit data containing
1627 the path to help the auditing code to more easily generate the
1628 pathname if needed. */
1629static inline int path_has_perm(const struct cred *cred,
1630 struct path *path,
1631 u32 av)
1632{
1633 struct inode *inode = path->dentry->d_inode;
1634 struct common_audit_data ad;
1635
1636 ad.type = LSM_AUDIT_DATA_PATH;
1637 ad.u.path = *path;
1638 return inode_has_perm(cred, inode, av, &ad);
1639}
1640
1641/* Same as path_has_perm, but uses the inode from the file struct. */
1642static inline int file_path_has_perm(const struct cred *cred,
1643 struct file *file,
1644 u32 av)
1645{
1646 struct common_audit_data ad;
1647
1648 ad.type = LSM_AUDIT_DATA_PATH;
1649 ad.u.path = file->f_path;
1650 return inode_has_perm(cred, file_inode(file), av, &ad);
1651}
1652
1653/* Check whether a task can use an open file descriptor to
1654 access an inode in a given way. Check access to the
1655 descriptor itself, and then use dentry_has_perm to
1656 check a particular permission to the file.
1657 Access to the descriptor is implicitly granted if it
1658 has the same SID as the process. If av is zero, then
1659 access to the file is not checked, e.g. for cases
1660 where only the descriptor is affected like seek. */
1661static int file_has_perm(const struct cred *cred,
1662 struct file *file,
1663 u32 av)
1664{
1665 struct file_security_struct *fsec = file->f_security;
1666 struct inode *inode = file_inode(file);
1667 struct common_audit_data ad;
1668 u32 sid = cred_sid(cred);
1669 int rc;
1670
1671 ad.type = LSM_AUDIT_DATA_PATH;
1672 ad.u.path = file->f_path;
1673
1674 if (sid != fsec->sid) {
1675 rc = avc_has_perm(sid, fsec->sid,
1676 SECCLASS_FD,
1677 FD__USE,
1678 &ad);
1679 if (rc)
1680 goto out;
1681 }
1682
1683 /* av is zero if only checking access to the descriptor. */
1684 rc = 0;
1685 if (av)
1686 rc = inode_has_perm(cred, inode, av, &ad);
1687
1688out:
1689 return rc;
1690}
1691
1692/* Check whether a task can create a file. */
1693static int may_create(struct inode *dir,
1694 struct dentry *dentry,
1695 u16 tclass)
1696{
1697 const struct task_security_struct *tsec = current_security();
1698 struct inode_security_struct *dsec;
1699 struct superblock_security_struct *sbsec;
1700 u32 sid, newsid;
1701 struct common_audit_data ad;
1702 int rc;
1703
1704 dsec = dir->i_security;
1705 sbsec = dir->i_sb->s_security;
1706
1707 sid = tsec->sid;
1708 newsid = tsec->create_sid;
1709
1710 ad.type = LSM_AUDIT_DATA_DENTRY;
1711 ad.u.dentry = dentry;
1712
1713 rc = avc_has_perm(sid, dsec->sid, SECCLASS_DIR,
1714 DIR__ADD_NAME | DIR__SEARCH,
1715 &ad);
1716 if (rc)
1717 return rc;
1718
1719 if (!newsid || !(sbsec->flags & SBLABEL_MNT)) {
1720 rc = security_transition_sid(sid, dsec->sid, tclass,
1721 &dentry->d_name, &newsid);
1722 if (rc)
1723 return rc;
1724 }
1725
1726 rc = avc_has_perm(sid, newsid, tclass, FILE__CREATE, &ad);
1727 if (rc)
1728 return rc;
1729
1730 return avc_has_perm(newsid, sbsec->sid,
1731 SECCLASS_FILESYSTEM,
1732 FILESYSTEM__ASSOCIATE, &ad);
1733}
1734
1735/* Check whether a task can create a key. */
1736static int may_create_key(u32 ksid,
1737 struct task_struct *ctx)
1738{
1739 u32 sid = task_sid(ctx);
1740
1741 return avc_has_perm(sid, ksid, SECCLASS_KEY, KEY__CREATE, NULL);
1742}
1743
1744#define MAY_LINK 0
1745#define MAY_UNLINK 1
1746#define MAY_RMDIR 2
1747
1748/* Check whether a task can link, unlink, or rmdir a file/directory. */
1749static int may_link(struct inode *dir,
1750 struct dentry *dentry,
1751 int kind)
1752
1753{
1754 struct inode_security_struct *dsec, *isec;
1755 struct common_audit_data ad;
1756 u32 sid = current_sid();
1757 u32 av;
1758 int rc;
1759
1760 dsec = dir->i_security;
1761 isec = dentry->d_inode->i_security;
1762
1763 ad.type = LSM_AUDIT_DATA_DENTRY;
1764 ad.u.dentry = dentry;
1765
1766 av = DIR__SEARCH;
1767 av |= (kind ? DIR__REMOVE_NAME : DIR__ADD_NAME);
1768 rc = avc_has_perm(sid, dsec->sid, SECCLASS_DIR, av, &ad);
1769 if (rc)
1770 return rc;
1771
1772 switch (kind) {
1773 case MAY_LINK:
1774 av = FILE__LINK;
1775 break;
1776 case MAY_UNLINK:
1777 av = FILE__UNLINK;
1778 break;
1779 case MAY_RMDIR:
1780 av = DIR__RMDIR;
1781 break;
1782 default:
1783 printk(KERN_WARNING "SELinux: %s: unrecognized kind %d\n",
1784 __func__, kind);
1785 return 0;
1786 }
1787
1788 rc = avc_has_perm(sid, isec->sid, isec->sclass, av, &ad);
1789 return rc;
1790}
1791
1792static inline int may_rename(struct inode *old_dir,
1793 struct dentry *old_dentry,
1794 struct inode *new_dir,
1795 struct dentry *new_dentry)
1796{
1797 struct inode_security_struct *old_dsec, *new_dsec, *old_isec, *new_isec;
1798 struct common_audit_data ad;
1799 u32 sid = current_sid();
1800 u32 av;
1801 int old_is_dir, new_is_dir;
1802 int rc;
1803
1804 old_dsec = old_dir->i_security;
1805 old_isec = old_dentry->d_inode->i_security;
1806 old_is_dir = S_ISDIR(old_dentry->d_inode->i_mode);
1807 new_dsec = new_dir->i_security;
1808
1809 ad.type = LSM_AUDIT_DATA_DENTRY;
1810
1811 ad.u.dentry = old_dentry;
1812 rc = avc_has_perm(sid, old_dsec->sid, SECCLASS_DIR,
1813 DIR__REMOVE_NAME | DIR__SEARCH, &ad);
1814 if (rc)
1815 return rc;
1816 rc = avc_has_perm(sid, old_isec->sid,
1817 old_isec->sclass, FILE__RENAME, &ad);
1818 if (rc)
1819 return rc;
1820 if (old_is_dir && new_dir != old_dir) {
1821 rc = avc_has_perm(sid, old_isec->sid,
1822 old_isec->sclass, DIR__REPARENT, &ad);
1823 if (rc)
1824 return rc;
1825 }
1826
1827 ad.u.dentry = new_dentry;
1828 av = DIR__ADD_NAME | DIR__SEARCH;
1829 if (new_dentry->d_inode)
1830 av |= DIR__REMOVE_NAME;
1831 rc = avc_has_perm(sid, new_dsec->sid, SECCLASS_DIR, av, &ad);
1832 if (rc)
1833 return rc;
1834 if (new_dentry->d_inode) {
1835 new_isec = new_dentry->d_inode->i_security;
1836 new_is_dir = S_ISDIR(new_dentry->d_inode->i_mode);
1837 rc = avc_has_perm(sid, new_isec->sid,
1838 new_isec->sclass,
1839 (new_is_dir ? DIR__RMDIR : FILE__UNLINK), &ad);
1840 if (rc)
1841 return rc;
1842 }
1843
1844 return 0;
1845}
1846
1847/* Check whether a task can perform a filesystem operation. */
1848static int superblock_has_perm(const struct cred *cred,
1849 struct super_block *sb,
1850 u32 perms,
1851 struct common_audit_data *ad)
1852{
1853 struct superblock_security_struct *sbsec;
1854 u32 sid = cred_sid(cred);
1855
1856 sbsec = sb->s_security;
1857 return avc_has_perm(sid, sbsec->sid, SECCLASS_FILESYSTEM, perms, ad);
1858}
1859
1860/* Convert a Linux mode and permission mask to an access vector. */
1861static inline u32 file_mask_to_av(int mode, int mask)
1862{
1863 u32 av = 0;
1864
1865 if (!S_ISDIR(mode)) {
1866 if (mask & MAY_EXEC)
1867 av |= FILE__EXECUTE;
1868 if (mask & MAY_READ)
1869 av |= FILE__READ;
1870
1871 if (mask & MAY_APPEND)
1872 av |= FILE__APPEND;
1873 else if (mask & MAY_WRITE)
1874 av |= FILE__WRITE;
1875
1876 } else {
1877 if (mask & MAY_EXEC)
1878 av |= DIR__SEARCH;
1879 if (mask & MAY_WRITE)
1880 av |= DIR__WRITE;
1881 if (mask & MAY_READ)
1882 av |= DIR__READ;
1883 }
1884
1885 return av;
1886}
1887
1888/* Convert a Linux file to an access vector. */
1889static inline u32 file_to_av(struct file *file)
1890{
1891 u32 av = 0;
1892
1893 if (file->f_mode & FMODE_READ)
1894 av |= FILE__READ;
1895 if (file->f_mode & FMODE_WRITE) {
1896 if (file->f_flags & O_APPEND)
1897 av |= FILE__APPEND;
1898 else
1899 av |= FILE__WRITE;
1900 }
1901 if (!av) {
1902 /*
1903 * Special file opened with flags 3 for ioctl-only use.
1904 */
1905 av = FILE__IOCTL;
1906 }
1907
1908 return av;
1909}
1910
1911/*
1912 * Convert a file to an access vector and include the correct open
1913 * open permission.
1914 */
1915static inline u32 open_file_to_av(struct file *file)
1916{
1917 u32 av = file_to_av(file);
1918
1919 if (selinux_policycap_openperm)
1920 av |= FILE__OPEN;
1921
1922 return av;
1923}
1924
1925/* Hook functions begin here. */
1926
1927static int selinux_ptrace_access_check(struct task_struct *child,
1928 unsigned int mode)
1929{
1930 int rc;
1931
1932 rc = cap_ptrace_access_check(child, mode);
1933 if (rc)
1934 return rc;
1935
1936 if (mode & PTRACE_MODE_READ) {
1937 u32 sid = current_sid();
1938 u32 csid = task_sid(child);
1939 return avc_has_perm(sid, csid, SECCLASS_FILE, FILE__READ, NULL);
1940 }
1941
1942 return current_has_perm(child, PROCESS__PTRACE);
1943}
1944
1945static int selinux_ptrace_traceme(struct task_struct *parent)
1946{
1947 int rc;
1948
1949 rc = cap_ptrace_traceme(parent);
1950 if (rc)
1951 return rc;
1952
1953 return task_has_perm(parent, current, PROCESS__PTRACE);
1954}
1955
1956static int selinux_capget(struct task_struct *target, kernel_cap_t *effective,
1957 kernel_cap_t *inheritable, kernel_cap_t *permitted)
1958{
1959 int error;
1960
1961 error = current_has_perm(target, PROCESS__GETCAP);
1962 if (error)
1963 return error;
1964
1965 return cap_capget(target, effective, inheritable, permitted);
1966}
1967
1968static int selinux_capset(struct cred *new, const struct cred *old,
1969 const kernel_cap_t *effective,
1970 const kernel_cap_t *inheritable,
1971 const kernel_cap_t *permitted)
1972{
1973 int error;
1974
1975 error = cap_capset(new, old,
1976 effective, inheritable, permitted);
1977 if (error)
1978 return error;
1979
1980 return cred_has_perm(old, new, PROCESS__SETCAP);
1981}
1982
1983/*
1984 * (This comment used to live with the selinux_task_setuid hook,
1985 * which was removed).
1986 *
1987 * Since setuid only affects the current process, and since the SELinux
1988 * controls are not based on the Linux identity attributes, SELinux does not
1989 * need to control this operation. However, SELinux does control the use of
1990 * the CAP_SETUID and CAP_SETGID capabilities using the capable hook.
1991 */
1992
1993static int selinux_capable(const struct cred *cred, struct user_namespace *ns,
1994 int cap, int audit)
1995{
1996 int rc;
1997
1998 rc = cap_capable(cred, ns, cap, audit);
1999 if (rc)
2000 return rc;
2001
2002 return cred_has_capability(cred, cap, audit);
2003}
2004
2005static int selinux_quotactl(int cmds, int type, int id, struct super_block *sb)
2006{
2007 const struct cred *cred = current_cred();
2008 int rc = 0;
2009
2010 if (!sb)
2011 return 0;
2012
2013 switch (cmds) {
2014 case Q_SYNC:
2015 case Q_QUOTAON:
2016 case Q_QUOTAOFF:
2017 case Q_SETINFO:
2018 case Q_SETQUOTA:
2019 rc = superblock_has_perm(cred, sb, FILESYSTEM__QUOTAMOD, NULL);
2020 break;
2021 case Q_GETFMT:
2022 case Q_GETINFO:
2023 case Q_GETQUOTA:
2024 rc = superblock_has_perm(cred, sb, FILESYSTEM__QUOTAGET, NULL);
2025 break;
2026 default:
2027 rc = 0; /* let the kernel handle invalid cmds */
2028 break;
2029 }
2030 return rc;
2031}
2032
2033static int selinux_quota_on(struct dentry *dentry)
2034{
2035 const struct cred *cred = current_cred();
2036
2037 return dentry_has_perm(cred, dentry, FILE__QUOTAON);
2038}
2039
2040static int selinux_syslog(int type)
2041{
2042 int rc;
2043
2044 switch (type) {
2045 case SYSLOG_ACTION_READ_ALL: /* Read last kernel messages */
2046 case SYSLOG_ACTION_SIZE_BUFFER: /* Return size of the log buffer */
2047 rc = task_has_system(current, SYSTEM__SYSLOG_READ);
2048 break;
2049 case SYSLOG_ACTION_CONSOLE_OFF: /* Disable logging to console */
2050 case SYSLOG_ACTION_CONSOLE_ON: /* Enable logging to console */
2051 /* Set level of messages printed to console */
2052 case SYSLOG_ACTION_CONSOLE_LEVEL:
2053 rc = task_has_system(current, SYSTEM__SYSLOG_CONSOLE);
2054 break;
2055 case SYSLOG_ACTION_CLOSE: /* Close log */
2056 case SYSLOG_ACTION_OPEN: /* Open log */
2057 case SYSLOG_ACTION_READ: /* Read from log */
2058 case SYSLOG_ACTION_READ_CLEAR: /* Read/clear last kernel messages */
2059 case SYSLOG_ACTION_CLEAR: /* Clear ring buffer */
2060 default:
2061 rc = task_has_system(current, SYSTEM__SYSLOG_MOD);
2062 break;
2063 }
2064 return rc;
2065}
2066
2067/*
2068 * Check that a process has enough memory to allocate a new virtual
2069 * mapping. 0 means there is enough memory for the allocation to
2070 * succeed and -ENOMEM implies there is not.
2071 *
2072 * Do not audit the selinux permission check, as this is applied to all
2073 * processes that allocate mappings.
2074 */
2075static int selinux_vm_enough_memory(struct mm_struct *mm, long pages)
2076{
2077 int rc, cap_sys_admin = 0;
2078
2079 rc = selinux_capable(current_cred(), &init_user_ns, CAP_SYS_ADMIN,
2080 SECURITY_CAP_NOAUDIT);
2081 if (rc == 0)
2082 cap_sys_admin = 1;
2083
2084 return __vm_enough_memory(mm, pages, cap_sys_admin);
2085}
2086
2087/* binprm security operations */
2088
2089static int selinux_bprm_set_creds(struct linux_binprm *bprm)
2090{
2091 const struct task_security_struct *old_tsec;
2092 struct task_security_struct *new_tsec;
2093 struct inode_security_struct *isec;
2094 struct common_audit_data ad;
2095 struct inode *inode = file_inode(bprm->file);
2096 int rc;
2097
2098 rc = cap_bprm_set_creds(bprm);
2099 if (rc)
2100 return rc;
2101
2102 /* SELinux context only depends on initial program or script and not
2103 * the script interpreter */
2104 if (bprm->cred_prepared)
2105 return 0;
2106
2107 old_tsec = current_security();
2108 new_tsec = bprm->cred->security;
2109 isec = inode->i_security;
2110
2111 /* Default to the current task SID. */
2112 new_tsec->sid = old_tsec->sid;
2113 new_tsec->osid = old_tsec->sid;
2114
2115 /* Reset fs, key, and sock SIDs on execve. */
2116 new_tsec->create_sid = 0;
2117 new_tsec->keycreate_sid = 0;
2118 new_tsec->sockcreate_sid = 0;
2119
2120 if (old_tsec->exec_sid) {
2121 new_tsec->sid = old_tsec->exec_sid;
2122 /* Reset exec SID on execve. */
2123 new_tsec->exec_sid = 0;
2124
2125 /*
2126 * Minimize confusion: if no_new_privs and a transition is
2127 * explicitly requested, then fail the exec.
2128 */
2129 if (bprm->unsafe & LSM_UNSAFE_NO_NEW_PRIVS)
2130 return -EPERM;
2131 } else {
2132 /* Check for a default transition on this program. */
2133 rc = security_transition_sid(old_tsec->sid, isec->sid,
2134 SECCLASS_PROCESS, NULL,
2135 &new_tsec->sid);
2136 if (rc)
2137 return rc;
2138 }
2139
2140 ad.type = LSM_AUDIT_DATA_PATH;
2141 ad.u.path = bprm->file->f_path;
2142
2143 if ((bprm->file->f_path.mnt->mnt_flags & MNT_NOSUID) ||
2144 (bprm->unsafe & LSM_UNSAFE_NO_NEW_PRIVS))
2145 new_tsec->sid = old_tsec->sid;
2146
2147 if (new_tsec->sid == old_tsec->sid) {
2148 rc = avc_has_perm(old_tsec->sid, isec->sid,
2149 SECCLASS_FILE, FILE__EXECUTE_NO_TRANS, &ad);
2150 if (rc)
2151 return rc;
2152 } else {
2153 /* Check permissions for the transition. */
2154 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2155 SECCLASS_PROCESS, PROCESS__TRANSITION, &ad);
2156 if (rc)
2157 return rc;
2158
2159 rc = avc_has_perm(new_tsec->sid, isec->sid,
2160 SECCLASS_FILE, FILE__ENTRYPOINT, &ad);
2161 if (rc)
2162 return rc;
2163
2164 /* Check for shared state */
2165 if (bprm->unsafe & LSM_UNSAFE_SHARE) {
2166 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2167 SECCLASS_PROCESS, PROCESS__SHARE,
2168 NULL);
2169 if (rc)
2170 return -EPERM;
2171 }
2172
2173 /* Make sure that anyone attempting to ptrace over a task that
2174 * changes its SID has the appropriate permit */
2175 if (bprm->unsafe &
2176 (LSM_UNSAFE_PTRACE | LSM_UNSAFE_PTRACE_CAP)) {
2177 struct task_struct *tracer;
2178 struct task_security_struct *sec;
2179 u32 ptsid = 0;
2180
2181 rcu_read_lock();
2182 tracer = ptrace_parent(current);
2183 if (likely(tracer != NULL)) {
2184 sec = __task_cred(tracer)->security;
2185 ptsid = sec->sid;
2186 }
2187 rcu_read_unlock();
2188
2189 if (ptsid != 0) {
2190 rc = avc_has_perm(ptsid, new_tsec->sid,
2191 SECCLASS_PROCESS,
2192 PROCESS__PTRACE, NULL);
2193 if (rc)
2194 return -EPERM;
2195 }
2196 }
2197
2198 /* Clear any possibly unsafe personality bits on exec: */
2199 bprm->per_clear |= PER_CLEAR_ON_SETID;
2200 }
2201
2202 return 0;
2203}
2204
2205static int selinux_bprm_secureexec(struct linux_binprm *bprm)
2206{
2207 const struct task_security_struct *tsec = current_security();
2208 u32 sid, osid;
2209 int atsecure = 0;
2210
2211 sid = tsec->sid;
2212 osid = tsec->osid;
2213
2214 if (osid != sid) {
2215 /* Enable secure mode for SIDs transitions unless
2216 the noatsecure permission is granted between
2217 the two SIDs, i.e. ahp returns 0. */
2218 atsecure = avc_has_perm(osid, sid,
2219 SECCLASS_PROCESS,
2220 PROCESS__NOATSECURE, NULL);
2221 }
2222
2223 return (atsecure || cap_bprm_secureexec(bprm));
2224}
2225
2226static int match_file(const void *p, struct file *file, unsigned fd)
2227{
2228 return file_has_perm(p, file, file_to_av(file)) ? fd + 1 : 0;
2229}
2230
2231/* Derived from fs/exec.c:flush_old_files. */
2232static inline void flush_unauthorized_files(const struct cred *cred,
2233 struct files_struct *files)
2234{
2235 struct file *file, *devnull = NULL;
2236 struct tty_struct *tty;
2237 int drop_tty = 0;
2238 unsigned n;
2239
2240 tty = get_current_tty();
2241 if (tty) {
2242 spin_lock(&tty_files_lock);
2243 if (!list_empty(&tty->tty_files)) {
2244 struct tty_file_private *file_priv;
2245
2246 /* Revalidate access to controlling tty.
2247 Use file_path_has_perm on the tty path directly
2248 rather than using file_has_perm, as this particular
2249 open file may belong to another process and we are
2250 only interested in the inode-based check here. */
2251 file_priv = list_first_entry(&tty->tty_files,
2252 struct tty_file_private, list);
2253 file = file_priv->file;
2254 if (file_path_has_perm(cred, file, FILE__READ | FILE__WRITE))
2255 drop_tty = 1;
2256 }
2257 spin_unlock(&tty_files_lock);
2258 tty_kref_put(tty);
2259 }
2260 /* Reset controlling tty. */
2261 if (drop_tty)
2262 no_tty();
2263
2264 /* Revalidate access to inherited open files. */
2265 n = iterate_fd(files, 0, match_file, cred);
2266 if (!n) /* none found? */
2267 return;
2268
2269 devnull = dentry_open(&selinux_null, O_RDWR, cred);
2270 if (IS_ERR(devnull))
2271 devnull = NULL;
2272 /* replace all the matching ones with this */
2273 do {
2274 replace_fd(n - 1, devnull, 0);
2275 } while ((n = iterate_fd(files, n, match_file, cred)) != 0);
2276 if (devnull)
2277 fput(devnull);
2278}
2279
2280/*
2281 * Prepare a process for imminent new credential changes due to exec
2282 */
2283static void selinux_bprm_committing_creds(struct linux_binprm *bprm)
2284{
2285 struct task_security_struct *new_tsec;
2286 struct rlimit *rlim, *initrlim;
2287 int rc, i;
2288
2289 new_tsec = bprm->cred->security;
2290 if (new_tsec->sid == new_tsec->osid)
2291 return;
2292
2293 /* Close files for which the new task SID is not authorized. */
2294 flush_unauthorized_files(bprm->cred, current->files);
2295
2296 /* Always clear parent death signal on SID transitions. */
2297 current->pdeath_signal = 0;
2298
2299 /* Check whether the new SID can inherit resource limits from the old
2300 * SID. If not, reset all soft limits to the lower of the current
2301 * task's hard limit and the init task's soft limit.
2302 *
2303 * Note that the setting of hard limits (even to lower them) can be
2304 * controlled by the setrlimit check. The inclusion of the init task's
2305 * soft limit into the computation is to avoid resetting soft limits
2306 * higher than the default soft limit for cases where the default is
2307 * lower than the hard limit, e.g. RLIMIT_CORE or RLIMIT_STACK.
2308 */
2309 rc = avc_has_perm(new_tsec->osid, new_tsec->sid, SECCLASS_PROCESS,
2310 PROCESS__RLIMITINH, NULL);
2311 if (rc) {
2312 /* protect against do_prlimit() */
2313 task_lock(current);
2314 for (i = 0; i < RLIM_NLIMITS; i++) {
2315 rlim = current->signal->rlim + i;
2316 initrlim = init_task.signal->rlim + i;
2317 rlim->rlim_cur = min(rlim->rlim_max, initrlim->rlim_cur);
2318 }
2319 task_unlock(current);
2320 update_rlimit_cpu(current, rlimit(RLIMIT_CPU));
2321 }
2322}
2323
2324/*
2325 * Clean up the process immediately after the installation of new credentials
2326 * due to exec
2327 */
2328static void selinux_bprm_committed_creds(struct linux_binprm *bprm)
2329{
2330 const struct task_security_struct *tsec = current_security();
2331 struct itimerval itimer;
2332 u32 osid, sid;
2333 int rc, i;
2334
2335 osid = tsec->osid;
2336 sid = tsec->sid;
2337
2338 if (sid == osid)
2339 return;
2340
2341 /* Check whether the new SID can inherit signal state from the old SID.
2342 * If not, clear itimers to avoid subsequent signal generation and
2343 * flush and unblock signals.
2344 *
2345 * This must occur _after_ the task SID has been updated so that any
2346 * kill done after the flush will be checked against the new SID.
2347 */
2348 rc = avc_has_perm(osid, sid, SECCLASS_PROCESS, PROCESS__SIGINH, NULL);
2349 if (rc) {
2350 memset(&itimer, 0, sizeof itimer);
2351 for (i = 0; i < 3; i++)
2352 do_setitimer(i, &itimer, NULL);
2353 spin_lock_irq(¤t->sighand->siglock);
2354 if (!(current->signal->flags & SIGNAL_GROUP_EXIT)) {
2355 __flush_signals(current);
2356 flush_signal_handlers(current, 1);
2357 sigemptyset(¤t->blocked);
2358 }
2359 spin_unlock_irq(¤t->sighand->siglock);
2360 }
2361
2362 /* Wake up the parent if it is waiting so that it can recheck
2363 * wait permission to the new task SID. */
2364 read_lock(&tasklist_lock);
2365 __wake_up_parent(current, current->real_parent);
2366 read_unlock(&tasklist_lock);
2367}
2368
2369/* superblock security operations */
2370
2371static int selinux_sb_alloc_security(struct super_block *sb)
2372{
2373 return superblock_alloc_security(sb);
2374}
2375
2376static void selinux_sb_free_security(struct super_block *sb)
2377{
2378 superblock_free_security(sb);
2379}
2380
2381static inline int match_prefix(char *prefix, int plen, char *option, int olen)
2382{
2383 if (plen > olen)
2384 return 0;
2385
2386 return !memcmp(prefix, option, plen);
2387}
2388
2389static inline int selinux_option(char *option, int len)
2390{
2391 return (match_prefix(CONTEXT_STR, sizeof(CONTEXT_STR)-1, option, len) ||
2392 match_prefix(FSCONTEXT_STR, sizeof(FSCONTEXT_STR)-1, option, len) ||
2393 match_prefix(DEFCONTEXT_STR, sizeof(DEFCONTEXT_STR)-1, option, len) ||
2394 match_prefix(ROOTCONTEXT_STR, sizeof(ROOTCONTEXT_STR)-1, option, len) ||
2395 match_prefix(LABELSUPP_STR, sizeof(LABELSUPP_STR)-1, option, len));
2396}
2397
2398static inline void take_option(char **to, char *from, int *first, int len)
2399{
2400 if (!*first) {
2401 **to = ',';
2402 *to += 1;
2403 } else
2404 *first = 0;
2405 memcpy(*to, from, len);
2406 *to += len;
2407}
2408
2409static inline void take_selinux_option(char **to, char *from, int *first,
2410 int len)
2411{
2412 int current_size = 0;
2413
2414 if (!*first) {
2415 **to = '|';
2416 *to += 1;
2417 } else
2418 *first = 0;
2419
2420 while (current_size < len) {
2421 if (*from != '"') {
2422 **to = *from;
2423 *to += 1;
2424 }
2425 from += 1;
2426 current_size += 1;
2427 }
2428}
2429
2430static int selinux_sb_copy_data(char *orig, char *copy)
2431{
2432 int fnosec, fsec, rc = 0;
2433 char *in_save, *in_curr, *in_end;
2434 char *sec_curr, *nosec_save, *nosec;
2435 int open_quote = 0;
2436
2437 in_curr = orig;
2438 sec_curr = copy;
2439
2440 nosec = (char *)get_zeroed_page(GFP_KERNEL);
2441 if (!nosec) {
2442 rc = -ENOMEM;
2443 goto out;
2444 }
2445
2446 nosec_save = nosec;
2447 fnosec = fsec = 1;
2448 in_save = in_end = orig;
2449
2450 do {
2451 if (*in_end == '"')
2452 open_quote = !open_quote;
2453 if ((*in_end == ',' && open_quote == 0) ||
2454 *in_end == '\0') {
2455 int len = in_end - in_curr;
2456
2457 if (selinux_option(in_curr, len))
2458 take_selinux_option(&sec_curr, in_curr, &fsec, len);
2459 else
2460 take_option(&nosec, in_curr, &fnosec, len);
2461
2462 in_curr = in_end + 1;
2463 }
2464 } while (*in_end++);
2465
2466 strcpy(in_save, nosec_save);
2467 free_page((unsigned long)nosec_save);
2468out:
2469 return rc;
2470}
2471
2472static int selinux_sb_remount(struct super_block *sb, void *data)
2473{
2474 int rc, i, *flags;
2475 struct security_mnt_opts opts;
2476 char *secdata, **mount_options;
2477 struct superblock_security_struct *sbsec = sb->s_security;
2478
2479 if (!(sbsec->flags & SE_SBINITIALIZED))
2480 return 0;
2481
2482 if (!data)
2483 return 0;
2484
2485 if (sb->s_type->fs_flags & FS_BINARY_MOUNTDATA)
2486 return 0;
2487
2488 security_init_mnt_opts(&opts);
2489 secdata = alloc_secdata();
2490 if (!secdata)
2491 return -ENOMEM;
2492 rc = selinux_sb_copy_data(data, secdata);
2493 if (rc)
2494 goto out_free_secdata;
2495
2496 rc = selinux_parse_opts_str(secdata, &opts);
2497 if (rc)
2498 goto out_free_secdata;
2499
2500 mount_options = opts.mnt_opts;
2501 flags = opts.mnt_opts_flags;
2502
2503 for (i = 0; i < opts.num_mnt_opts; i++) {
2504 u32 sid;
2505 size_t len;
2506
2507 if (flags[i] == SBLABEL_MNT)
2508 continue;
2509 len = strlen(mount_options[i]);
2510 rc = security_context_to_sid(mount_options[i], len, &sid,
2511 GFP_KERNEL);
2512 if (rc) {
2513 printk(KERN_WARNING "SELinux: security_context_to_sid"
2514 "(%s) failed for (dev %s, type %s) errno=%d\n",
2515 mount_options[i], sb->s_id, sb->s_type->name, rc);
2516 goto out_free_opts;
2517 }
2518 rc = -EINVAL;
2519 switch (flags[i]) {
2520 case FSCONTEXT_MNT:
2521 if (bad_option(sbsec, FSCONTEXT_MNT, sbsec->sid, sid))
2522 goto out_bad_option;
2523 break;
2524 case CONTEXT_MNT:
2525 if (bad_option(sbsec, CONTEXT_MNT, sbsec->mntpoint_sid, sid))
2526 goto out_bad_option;
2527 break;
2528 case ROOTCONTEXT_MNT: {
2529 struct inode_security_struct *root_isec;
2530 root_isec = sb->s_root->d_inode->i_security;
2531
2532 if (bad_option(sbsec, ROOTCONTEXT_MNT, root_isec->sid, sid))
2533 goto out_bad_option;
2534 break;
2535 }
2536 case DEFCONTEXT_MNT:
2537 if (bad_option(sbsec, DEFCONTEXT_MNT, sbsec->def_sid, sid))
2538 goto out_bad_option;
2539 break;
2540 default:
2541 goto out_free_opts;
2542 }
2543 }
2544
2545 rc = 0;
2546out_free_opts:
2547 security_free_mnt_opts(&opts);
2548out_free_secdata:
2549 free_secdata(secdata);
2550 return rc;
2551out_bad_option:
2552 printk(KERN_WARNING "SELinux: unable to change security options "
2553 "during remount (dev %s, type=%s)\n", sb->s_id,
2554 sb->s_type->name);
2555 goto out_free_opts;
2556}
2557
2558static int selinux_sb_kern_mount(struct super_block *sb, int flags, void *data)
2559{
2560 const struct cred *cred = current_cred();
2561 struct common_audit_data ad;
2562 int rc;
2563
2564 rc = superblock_doinit(sb, data);
2565 if (rc)
2566 return rc;
2567
2568 /* Allow all mounts performed by the kernel */
2569 if (flags & MS_KERNMOUNT)
2570 return 0;
2571
2572 ad.type = LSM_AUDIT_DATA_DENTRY;
2573 ad.u.dentry = sb->s_root;
2574 return superblock_has_perm(cred, sb, FILESYSTEM__MOUNT, &ad);
2575}
2576
2577static int selinux_sb_statfs(struct dentry *dentry)
2578{
2579 const struct cred *cred = current_cred();
2580 struct common_audit_data ad;
2581
2582 ad.type = LSM_AUDIT_DATA_DENTRY;
2583 ad.u.dentry = dentry->d_sb->s_root;
2584 return superblock_has_perm(cred, dentry->d_sb, FILESYSTEM__GETATTR, &ad);
2585}
2586
2587static int selinux_mount(const char *dev_name,
2588 struct path *path,
2589 const char *type,
2590 unsigned long flags,
2591 void *data)
2592{
2593 const struct cred *cred = current_cred();
2594
2595 if (flags & MS_REMOUNT)
2596 return superblock_has_perm(cred, path->dentry->d_sb,
2597 FILESYSTEM__REMOUNT, NULL);
2598 else
2599 return path_has_perm(cred, path, FILE__MOUNTON);
2600}
2601
2602static int selinux_umount(struct vfsmount *mnt, int flags)
2603{
2604 const struct cred *cred = current_cred();
2605
2606 return superblock_has_perm(cred, mnt->mnt_sb,
2607 FILESYSTEM__UNMOUNT, NULL);
2608}
2609
2610/* inode security operations */
2611
2612static int selinux_inode_alloc_security(struct inode *inode)
2613{
2614 return inode_alloc_security(inode);
2615}
2616
2617static void selinux_inode_free_security(struct inode *inode)
2618{
2619 inode_free_security(inode);
2620}
2621
2622static int selinux_dentry_init_security(struct dentry *dentry, int mode,
2623 struct qstr *name, void **ctx,
2624 u32 *ctxlen)
2625{
2626 const struct cred *cred = current_cred();
2627 struct task_security_struct *tsec;
2628 struct inode_security_struct *dsec;
2629 struct superblock_security_struct *sbsec;
2630 struct inode *dir = dentry->d_parent->d_inode;
2631 u32 newsid;
2632 int rc;
2633
2634 tsec = cred->security;
2635 dsec = dir->i_security;
2636 sbsec = dir->i_sb->s_security;
2637
2638 if (tsec->create_sid && sbsec->behavior != SECURITY_FS_USE_MNTPOINT) {
2639 newsid = tsec->create_sid;
2640 } else {
2641 rc = security_transition_sid(tsec->sid, dsec->sid,
2642 inode_mode_to_security_class(mode),
2643 name,
2644 &newsid);
2645 if (rc) {
2646 printk(KERN_WARNING
2647 "%s: security_transition_sid failed, rc=%d\n",
2648 __func__, -rc);
2649 return rc;
2650 }
2651 }
2652
2653 return security_sid_to_context(newsid, (char **)ctx, ctxlen);
2654}
2655
2656static int selinux_inode_init_security(struct inode *inode, struct inode *dir,
2657 const struct qstr *qstr,
2658 const char **name,
2659 void **value, size_t *len)
2660{
2661 const struct task_security_struct *tsec = current_security();
2662 struct inode_security_struct *dsec;
2663 struct superblock_security_struct *sbsec;
2664 u32 sid, newsid, clen;
2665 int rc;
2666 char *context;
2667
2668 dsec = dir->i_security;
2669 sbsec = dir->i_sb->s_security;
2670
2671 sid = tsec->sid;
2672 newsid = tsec->create_sid;
2673
2674 if ((sbsec->flags & SE_SBINITIALIZED) &&
2675 (sbsec->behavior == SECURITY_FS_USE_MNTPOINT))
2676 newsid = sbsec->mntpoint_sid;
2677 else if (!newsid || !(sbsec->flags & SBLABEL_MNT)) {
2678 rc = security_transition_sid(sid, dsec->sid,
2679 inode_mode_to_security_class(inode->i_mode),
2680 qstr, &newsid);
2681 if (rc) {
2682 printk(KERN_WARNING "%s: "
2683 "security_transition_sid failed, rc=%d (dev=%s "
2684 "ino=%ld)\n",
2685 __func__,
2686 -rc, inode->i_sb->s_id, inode->i_ino);
2687 return rc;
2688 }
2689 }
2690
2691 /* Possibly defer initialization to selinux_complete_init. */
2692 if (sbsec->flags & SE_SBINITIALIZED) {
2693 struct inode_security_struct *isec = inode->i_security;
2694 isec->sclass = inode_mode_to_security_class(inode->i_mode);
2695 isec->sid = newsid;
2696 isec->initialized = 1;
2697 }
2698
2699 if (!ss_initialized || !(sbsec->flags & SBLABEL_MNT))
2700 return -EOPNOTSUPP;
2701
2702 if (name)
2703 *name = XATTR_SELINUX_SUFFIX;
2704
2705 if (value && len) {
2706 rc = security_sid_to_context_force(newsid, &context, &clen);
2707 if (rc)
2708 return rc;
2709 *value = context;
2710 *len = clen;
2711 }
2712
2713 return 0;
2714}
2715
2716static int selinux_inode_create(struct inode *dir, struct dentry *dentry, umode_t mode)
2717{
2718 return may_create(dir, dentry, SECCLASS_FILE);
2719}
2720
2721static int selinux_inode_link(struct dentry *old_dentry, struct inode *dir, struct dentry *new_dentry)
2722{
2723 return may_link(dir, old_dentry, MAY_LINK);
2724}
2725
2726static int selinux_inode_unlink(struct inode *dir, struct dentry *dentry)
2727{
2728 return may_link(dir, dentry, MAY_UNLINK);
2729}
2730
2731static int selinux_inode_symlink(struct inode *dir, struct dentry *dentry, const char *name)
2732{
2733 return may_create(dir, dentry, SECCLASS_LNK_FILE);
2734}
2735
2736static int selinux_inode_mkdir(struct inode *dir, struct dentry *dentry, umode_t mask)
2737{
2738 return may_create(dir, dentry, SECCLASS_DIR);
2739}
2740
2741static int selinux_inode_rmdir(struct inode *dir, struct dentry *dentry)
2742{
2743 return may_link(dir, dentry, MAY_RMDIR);
2744}
2745
2746static int selinux_inode_mknod(struct inode *dir, struct dentry *dentry, umode_t mode, dev_t dev)
2747{
2748 return may_create(dir, dentry, inode_mode_to_security_class(mode));
2749}
2750
2751static int selinux_inode_rename(struct inode *old_inode, struct dentry *old_dentry,
2752 struct inode *new_inode, struct dentry *new_dentry)
2753{
2754 return may_rename(old_inode, old_dentry, new_inode, new_dentry);
2755}
2756
2757static int selinux_inode_readlink(struct dentry *dentry)
2758{
2759 const struct cred *cred = current_cred();
2760
2761 return dentry_has_perm(cred, dentry, FILE__READ);
2762}
2763
2764static int selinux_inode_follow_link(struct dentry *dentry, struct nameidata *nameidata)
2765{
2766 const struct cred *cred = current_cred();
2767
2768 return dentry_has_perm(cred, dentry, FILE__READ);
2769}
2770
2771static noinline int audit_inode_permission(struct inode *inode,
2772 u32 perms, u32 audited, u32 denied,
2773 unsigned flags)
2774{
2775 struct common_audit_data ad;
2776 struct inode_security_struct *isec = inode->i_security;
2777 int rc;
2778
2779 ad.type = LSM_AUDIT_DATA_INODE;
2780 ad.u.inode = inode;
2781
2782 rc = slow_avc_audit(current_sid(), isec->sid, isec->sclass, perms,
2783 audited, denied, &ad, flags);
2784 if (rc)
2785 return rc;
2786 return 0;
2787}
2788
2789static int selinux_inode_permission(struct inode *inode, int mask)
2790{
2791 const struct cred *cred = current_cred();
2792 u32 perms;
2793 bool from_access;
2794 unsigned flags = mask & MAY_NOT_BLOCK;
2795 struct inode_security_struct *isec;
2796 u32 sid;
2797 struct av_decision avd;
2798 int rc, rc2;
2799 u32 audited, denied;
2800
2801 from_access = mask & MAY_ACCESS;
2802 mask &= (MAY_READ|MAY_WRITE|MAY_EXEC|MAY_APPEND);
2803
2804 /* No permission to check. Existence test. */
2805 if (!mask)
2806 return 0;
2807
2808 validate_creds(cred);
2809
2810 if (unlikely(IS_PRIVATE(inode)))
2811 return 0;
2812
2813 perms = file_mask_to_av(inode->i_mode, mask);
2814
2815 sid = cred_sid(cred);
2816 isec = inode->i_security;
2817
2818 rc = avc_has_perm_noaudit(sid, isec->sid, isec->sclass, perms, 0, &avd);
2819 audited = avc_audit_required(perms, &avd, rc,
2820 from_access ? FILE__AUDIT_ACCESS : 0,
2821 &denied);
2822 if (likely(!audited))
2823 return rc;
2824
2825 rc2 = audit_inode_permission(inode, perms, audited, denied, flags);
2826 if (rc2)
2827 return rc2;
2828 return rc;
2829}
2830
2831static int selinux_inode_setattr(struct dentry *dentry, struct iattr *iattr)
2832{
2833 const struct cred *cred = current_cred();
2834 unsigned int ia_valid = iattr->ia_valid;
2835 __u32 av = FILE__WRITE;
2836
2837 /* ATTR_FORCE is just used for ATTR_KILL_S[UG]ID. */
2838 if (ia_valid & ATTR_FORCE) {
2839 ia_valid &= ~(ATTR_KILL_SUID | ATTR_KILL_SGID | ATTR_MODE |
2840 ATTR_FORCE);
2841 if (!ia_valid)
2842 return 0;
2843 }
2844
2845 if (ia_valid & (ATTR_MODE | ATTR_UID | ATTR_GID |
2846 ATTR_ATIME_SET | ATTR_MTIME_SET | ATTR_TIMES_SET))
2847 return dentry_has_perm(cred, dentry, FILE__SETATTR);
2848
2849 if (selinux_policycap_openperm && (ia_valid & ATTR_SIZE))
2850 av |= FILE__OPEN;
2851
2852 return dentry_has_perm(cred, dentry, av);
2853}
2854
2855static int selinux_inode_getattr(struct vfsmount *mnt, struct dentry *dentry)
2856{
2857 const struct cred *cred = current_cred();
2858 struct path path;
2859
2860 path.dentry = dentry;
2861 path.mnt = mnt;
2862
2863 return path_has_perm(cred, &path, FILE__GETATTR);
2864}
2865
2866static int selinux_inode_setotherxattr(struct dentry *dentry, const char *name)
2867{
2868 const struct cred *cred = current_cred();
2869
2870 if (!strncmp(name, XATTR_SECURITY_PREFIX,
2871 sizeof XATTR_SECURITY_PREFIX - 1)) {
2872 if (!strcmp(name, XATTR_NAME_CAPS)) {
2873 if (!capable(CAP_SETFCAP))
2874 return -EPERM;
2875 } else if (!capable(CAP_SYS_ADMIN)) {
2876 /* A different attribute in the security namespace.
2877 Restrict to administrator. */
2878 return -EPERM;
2879 }
2880 }
2881
2882 /* Not an attribute we recognize, so just check the
2883 ordinary setattr permission. */
2884 return dentry_has_perm(cred, dentry, FILE__SETATTR);
2885}
2886
2887static int selinux_inode_setxattr(struct dentry *dentry, const char *name,
2888 const void *value, size_t size, int flags)
2889{
2890 struct inode *inode = dentry->d_inode;
2891 struct inode_security_struct *isec = inode->i_security;
2892 struct superblock_security_struct *sbsec;
2893 struct common_audit_data ad;
2894 u32 newsid, sid = current_sid();
2895 int rc = 0;
2896
2897 if (strcmp(name, XATTR_NAME_SELINUX))
2898 return selinux_inode_setotherxattr(dentry, name);
2899
2900 sbsec = inode->i_sb->s_security;
2901 if (!(sbsec->flags & SBLABEL_MNT))
2902 return -EOPNOTSUPP;
2903
2904 if (!inode_owner_or_capable(inode))
2905 return -EPERM;
2906
2907 ad.type = LSM_AUDIT_DATA_DENTRY;
2908 ad.u.dentry = dentry;
2909
2910 rc = avc_has_perm(sid, isec->sid, isec->sclass,
2911 FILE__RELABELFROM, &ad);
2912 if (rc)
2913 return rc;
2914
2915 rc = security_context_to_sid(value, size, &newsid, GFP_KERNEL);
2916 if (rc == -EINVAL) {
2917 if (!capable(CAP_MAC_ADMIN)) {
2918 struct audit_buffer *ab;
2919 size_t audit_size;
2920 const char *str;
2921
2922 /* We strip a nul only if it is at the end, otherwise the
2923 * context contains a nul and we should audit that */
2924 if (value) {
2925 str = value;
2926 if (str[size - 1] == '\0')
2927 audit_size = size - 1;
2928 else
2929 audit_size = size;
2930 } else {
2931 str = "";
2932 audit_size = 0;
2933 }
2934 ab = audit_log_start(current->audit_context, GFP_ATOMIC, AUDIT_SELINUX_ERR);
2935 audit_log_format(ab, "op=setxattr invalid_context=");
2936 audit_log_n_untrustedstring(ab, value, audit_size);
2937 audit_log_end(ab);
2938
2939 return rc;
2940 }
2941 rc = security_context_to_sid_force(value, size, &newsid);
2942 }
2943 if (rc)
2944 return rc;
2945
2946 rc = avc_has_perm(sid, newsid, isec->sclass,
2947 FILE__RELABELTO, &ad);
2948 if (rc)
2949 return rc;
2950
2951 rc = security_validate_transition(isec->sid, newsid, sid,
2952 isec->sclass);
2953 if (rc)
2954 return rc;
2955
2956 return avc_has_perm(newsid,
2957 sbsec->sid,
2958 SECCLASS_FILESYSTEM,
2959 FILESYSTEM__ASSOCIATE,
2960 &ad);
2961}
2962
2963static void selinux_inode_post_setxattr(struct dentry *dentry, const char *name,
2964 const void *value, size_t size,
2965 int flags)
2966{
2967 struct inode *inode = dentry->d_inode;
2968 struct inode_security_struct *isec = inode->i_security;
2969 u32 newsid;
2970 int rc;
2971
2972 if (strcmp(name, XATTR_NAME_SELINUX)) {
2973 /* Not an attribute we recognize, so nothing to do. */
2974 return;
2975 }
2976
2977 rc = security_context_to_sid_force(value, size, &newsid);
2978 if (rc) {
2979 printk(KERN_ERR "SELinux: unable to map context to SID"
2980 "for (%s, %lu), rc=%d\n",
2981 inode->i_sb->s_id, inode->i_ino, -rc);
2982 return;
2983 }
2984
2985 isec->sclass = inode_mode_to_security_class(inode->i_mode);
2986 isec->sid = newsid;
2987 isec->initialized = 1;
2988
2989 return;
2990}
2991
2992static int selinux_inode_getxattr(struct dentry *dentry, const char *name)
2993{
2994 const struct cred *cred = current_cred();
2995
2996 return dentry_has_perm(cred, dentry, FILE__GETATTR);
2997}
2998
2999static int selinux_inode_listxattr(struct dentry *dentry)
3000{
3001 const struct cred *cred = current_cred();
3002
3003 return dentry_has_perm(cred, dentry, FILE__GETATTR);
3004}
3005
3006static int selinux_inode_removexattr(struct dentry *dentry, const char *name)
3007{
3008 if (strcmp(name, XATTR_NAME_SELINUX))
3009 return selinux_inode_setotherxattr(dentry, name);
3010
3011 /* No one is allowed to remove a SELinux security label.
3012 You can change the label, but all data must be labeled. */
3013 return -EACCES;
3014}
3015
3016/*
3017 * Copy the inode security context value to the user.
3018 *
3019 * Permission check is handled by selinux_inode_getxattr hook.
3020 */
3021static int selinux_inode_getsecurity(const struct inode *inode, const char *name, void **buffer, bool alloc)
3022{
3023 u32 size;
3024 int error;
3025 char *context = NULL;
3026 struct inode_security_struct *isec = inode->i_security;
3027
3028 if (strcmp(name, XATTR_SELINUX_SUFFIX))
3029 return -EOPNOTSUPP;
3030
3031 /*
3032 * If the caller has CAP_MAC_ADMIN, then get the raw context
3033 * value even if it is not defined by current policy; otherwise,
3034 * use the in-core value under current policy.
3035 * Use the non-auditing forms of the permission checks since
3036 * getxattr may be called by unprivileged processes commonly
3037 * and lack of permission just means that we fall back to the
3038 * in-core context value, not a denial.
3039 */
3040 error = selinux_capable(current_cred(), &init_user_ns, CAP_MAC_ADMIN,
3041 SECURITY_CAP_NOAUDIT);
3042 if (!error)
3043 error = security_sid_to_context_force(isec->sid, &context,
3044 &size);
3045 else
3046 error = security_sid_to_context(isec->sid, &context, &size);
3047 if (error)
3048 return error;
3049 error = size;
3050 if (alloc) {
3051 *buffer = context;
3052 goto out_nofree;
3053 }
3054 kfree(context);
3055out_nofree:
3056 return error;
3057}
3058
3059static int selinux_inode_setsecurity(struct inode *inode, const char *name,
3060 const void *value, size_t size, int flags)
3061{
3062 struct inode_security_struct *isec = inode->i_security;
3063 u32 newsid;
3064 int rc;
3065
3066 if (strcmp(name, XATTR_SELINUX_SUFFIX))
3067 return -EOPNOTSUPP;
3068
3069 if (!value || !size)
3070 return -EACCES;
3071
3072 rc = security_context_to_sid((void *)value, size, &newsid, GFP_KERNEL);
3073 if (rc)
3074 return rc;
3075
3076 isec->sclass = inode_mode_to_security_class(inode->i_mode);
3077 isec->sid = newsid;
3078 isec->initialized = 1;
3079 return 0;
3080}
3081
3082static int selinux_inode_listsecurity(struct inode *inode, char *buffer, size_t buffer_size)
3083{
3084 const int len = sizeof(XATTR_NAME_SELINUX);
3085 if (buffer && len <= buffer_size)
3086 memcpy(buffer, XATTR_NAME_SELINUX, len);
3087 return len;
3088}
3089
3090static void selinux_inode_getsecid(const struct inode *inode, u32 *secid)
3091{
3092 struct inode_security_struct *isec = inode->i_security;
3093 *secid = isec->sid;
3094}
3095
3096/* file security operations */
3097
3098static int selinux_revalidate_file_permission(struct file *file, int mask)
3099{
3100 const struct cred *cred = current_cred();
3101 struct inode *inode = file_inode(file);
3102
3103 /* file_mask_to_av won't add FILE__WRITE if MAY_APPEND is set */
3104 if ((file->f_flags & O_APPEND) && (mask & MAY_WRITE))
3105 mask |= MAY_APPEND;
3106
3107 return file_has_perm(cred, file,
3108 file_mask_to_av(inode->i_mode, mask));
3109}
3110
3111static int selinux_file_permission(struct file *file, int mask)
3112{
3113 struct inode *inode = file_inode(file);
3114 struct file_security_struct *fsec = file->f_security;
3115 struct inode_security_struct *isec = inode->i_security;
3116 u32 sid = current_sid();
3117
3118 if (!mask)
3119 /* No permission to check. Existence test. */
3120 return 0;
3121
3122 if (sid == fsec->sid && fsec->isid == isec->sid &&
3123 fsec->pseqno == avc_policy_seqno())
3124 /* No change since file_open check. */
3125 return 0;
3126
3127 return selinux_revalidate_file_permission(file, mask);
3128}
3129
3130static int selinux_file_alloc_security(struct file *file)
3131{
3132 return file_alloc_security(file);
3133}
3134
3135static void selinux_file_free_security(struct file *file)
3136{
3137 file_free_security(file);
3138}
3139
3140static int selinux_file_ioctl(struct file *file, unsigned int cmd,
3141 unsigned long arg)
3142{
3143 const struct cred *cred = current_cred();
3144 int error = 0;
3145
3146 switch (cmd) {
3147 case FIONREAD:
3148 /* fall through */
3149 case FIBMAP:
3150 /* fall through */
3151 case FIGETBSZ:
3152 /* fall through */
3153 case FS_IOC_GETFLAGS:
3154 /* fall through */
3155 case FS_IOC_GETVERSION:
3156 error = file_has_perm(cred, file, FILE__GETATTR);
3157 break;
3158
3159 case FS_IOC_SETFLAGS:
3160 /* fall through */
3161 case FS_IOC_SETVERSION:
3162 error = file_has_perm(cred, file, FILE__SETATTR);
3163 break;
3164
3165 /* sys_ioctl() checks */
3166 case FIONBIO:
3167 /* fall through */
3168 case FIOASYNC:
3169 error = file_has_perm(cred, file, 0);
3170 break;
3171
3172 case KDSKBENT:
3173 case KDSKBSENT:
3174 error = cred_has_capability(cred, CAP_SYS_TTY_CONFIG,
3175 SECURITY_CAP_AUDIT);
3176 break;
3177
3178 /* default case assumes that the command will go
3179 * to the file's ioctl() function.
3180 */
3181 default:
3182 error = file_has_perm(cred, file, FILE__IOCTL);
3183 }
3184 return error;
3185}
3186
3187static int default_noexec;
3188
3189static int file_map_prot_check(struct file *file, unsigned long prot, int shared)
3190{
3191 const struct cred *cred = current_cred();
3192 int rc = 0;
3193
3194 if (default_noexec &&
3195 (prot & PROT_EXEC) && (!file || (!shared && (prot & PROT_WRITE)))) {
3196 /*
3197 * We are making executable an anonymous mapping or a
3198 * private file mapping that will also be writable.
3199 * This has an additional check.
3200 */
3201 rc = cred_has_perm(cred, cred, PROCESS__EXECMEM);
3202 if (rc)
3203 goto error;
3204 }
3205
3206 if (file) {
3207 /* read access is always possible with a mapping */
3208 u32 av = FILE__READ;
3209
3210 /* write access only matters if the mapping is shared */
3211 if (shared && (prot & PROT_WRITE))
3212 av |= FILE__WRITE;
3213
3214 if (prot & PROT_EXEC)
3215 av |= FILE__EXECUTE;
3216
3217 return file_has_perm(cred, file, av);
3218 }
3219
3220error:
3221 return rc;
3222}
3223
3224static int selinux_mmap_addr(unsigned long addr)
3225{
3226 int rc;
3227
3228 /* do DAC check on address space usage */
3229 rc = cap_mmap_addr(addr);
3230 if (rc)
3231 return rc;
3232
3233 if (addr < CONFIG_LSM_MMAP_MIN_ADDR) {
3234 u32 sid = current_sid();
3235 rc = avc_has_perm(sid, sid, SECCLASS_MEMPROTECT,
3236 MEMPROTECT__MMAP_ZERO, NULL);
3237 }
3238
3239 return rc;
3240}
3241
3242static int selinux_mmap_file(struct file *file, unsigned long reqprot,
3243 unsigned long prot, unsigned long flags)
3244{
3245 if (selinux_checkreqprot)
3246 prot = reqprot;
3247
3248 return file_map_prot_check(file, prot,
3249 (flags & MAP_TYPE) == MAP_SHARED);
3250}
3251
3252static int selinux_file_mprotect(struct vm_area_struct *vma,
3253 unsigned long reqprot,
3254 unsigned long prot)
3255{
3256 const struct cred *cred = current_cred();
3257
3258 if (selinux_checkreqprot)
3259 prot = reqprot;
3260
3261 if (default_noexec &&
3262 (prot & PROT_EXEC) && !(vma->vm_flags & VM_EXEC)) {
3263 int rc = 0;
3264 if (vma->vm_start >= vma->vm_mm->start_brk &&
3265 vma->vm_end <= vma->vm_mm->brk) {
3266 rc = cred_has_perm(cred, cred, PROCESS__EXECHEAP);
3267 } else if (!vma->vm_file &&
3268 vma->vm_start <= vma->vm_mm->start_stack &&
3269 vma->vm_end >= vma->vm_mm->start_stack) {
3270 rc = current_has_perm(current, PROCESS__EXECSTACK);
3271 } else if (vma->vm_file && vma->anon_vma) {
3272 /*
3273 * We are making executable a file mapping that has
3274 * had some COW done. Since pages might have been
3275 * written, check ability to execute the possibly
3276 * modified content. This typically should only
3277 * occur for text relocations.
3278 */
3279 rc = file_has_perm(cred, vma->vm_file, FILE__EXECMOD);
3280 }
3281 if (rc)
3282 return rc;
3283 }
3284
3285 return file_map_prot_check(vma->vm_file, prot, vma->vm_flags&VM_SHARED);
3286}
3287
3288static int selinux_file_lock(struct file *file, unsigned int cmd)
3289{
3290 const struct cred *cred = current_cred();
3291
3292 return file_has_perm(cred, file, FILE__LOCK);
3293}
3294
3295static int selinux_file_fcntl(struct file *file, unsigned int cmd,
3296 unsigned long arg)
3297{
3298 const struct cred *cred = current_cred();
3299 int err = 0;
3300
3301 switch (cmd) {
3302 case F_SETFL:
3303 if ((file->f_flags & O_APPEND) && !(arg & O_APPEND)) {
3304 err = file_has_perm(cred, file, FILE__WRITE);
3305 break;
3306 }
3307 /* fall through */
3308 case F_SETOWN:
3309 case F_SETSIG:
3310 case F_GETFL:
3311 case F_GETOWN:
3312 case F_GETSIG:
3313 case F_GETOWNER_UIDS:
3314 /* Just check FD__USE permission */
3315 err = file_has_perm(cred, file, 0);
3316 break;
3317 case F_GETLK:
3318 case F_SETLK:
3319 case F_SETLKW:
3320 case F_OFD_GETLK:
3321 case F_OFD_SETLK:
3322 case F_OFD_SETLKW:
3323#if BITS_PER_LONG == 32
3324 case F_GETLK64:
3325 case F_SETLK64:
3326 case F_SETLKW64:
3327#endif
3328 err = file_has_perm(cred, file, FILE__LOCK);
3329 break;
3330 }
3331
3332 return err;
3333}
3334
3335static int selinux_file_set_fowner(struct file *file)
3336{
3337 struct file_security_struct *fsec;
3338
3339 fsec = file->f_security;
3340 fsec->fown_sid = current_sid();
3341
3342 return 0;
3343}
3344
3345static int selinux_file_send_sigiotask(struct task_struct *tsk,
3346 struct fown_struct *fown, int signum)
3347{
3348 struct file *file;
3349 u32 sid = task_sid(tsk);
3350 u32 perm;
3351 struct file_security_struct *fsec;
3352
3353 /* struct fown_struct is never outside the context of a struct file */
3354 file = container_of(fown, struct file, f_owner);
3355
3356 fsec = file->f_security;
3357
3358 if (!signum)
3359 perm = signal_to_av(SIGIO); /* as per send_sigio_to_task */
3360 else
3361 perm = signal_to_av(signum);
3362
3363 return avc_has_perm(fsec->fown_sid, sid,
3364 SECCLASS_PROCESS, perm, NULL);
3365}
3366
3367static int selinux_file_receive(struct file *file)
3368{
3369 const struct cred *cred = current_cred();
3370
3371 return file_has_perm(cred, file, file_to_av(file));
3372}
3373
3374static int selinux_file_open(struct file *file, const struct cred *cred)
3375{
3376 struct file_security_struct *fsec;
3377 struct inode_security_struct *isec;
3378
3379 fsec = file->f_security;
3380 isec = file_inode(file)->i_security;
3381 /*
3382 * Save inode label and policy sequence number
3383 * at open-time so that selinux_file_permission
3384 * can determine whether revalidation is necessary.
3385 * Task label is already saved in the file security
3386 * struct as its SID.
3387 */
3388 fsec->isid = isec->sid;
3389 fsec->pseqno = avc_policy_seqno();
3390 /*
3391 * Since the inode label or policy seqno may have changed
3392 * between the selinux_inode_permission check and the saving
3393 * of state above, recheck that access is still permitted.
3394 * Otherwise, access might never be revalidated against the
3395 * new inode label or new policy.
3396 * This check is not redundant - do not remove.
3397 */
3398 return file_path_has_perm(cred, file, open_file_to_av(file));
3399}
3400
3401/* task security operations */
3402
3403static int selinux_task_create(unsigned long clone_flags)
3404{
3405 return current_has_perm(current, PROCESS__FORK);
3406}
3407
3408/*
3409 * allocate the SELinux part of blank credentials
3410 */
3411static int selinux_cred_alloc_blank(struct cred *cred, gfp_t gfp)
3412{
3413 struct task_security_struct *tsec;
3414
3415 tsec = kzalloc(sizeof(struct task_security_struct), gfp);
3416 if (!tsec)
3417 return -ENOMEM;
3418
3419 cred->security = tsec;
3420 return 0;
3421}
3422
3423/*
3424 * detach and free the LSM part of a set of credentials
3425 */
3426static void selinux_cred_free(struct cred *cred)
3427{
3428 struct task_security_struct *tsec = cred->security;
3429
3430 /*
3431 * cred->security == NULL if security_cred_alloc_blank() or
3432 * security_prepare_creds() returned an error.
3433 */
3434 BUG_ON(cred->security && (unsigned long) cred->security < PAGE_SIZE);
3435 cred->security = (void *) 0x7UL;
3436 kfree(tsec);
3437}
3438
3439/*
3440 * prepare a new set of credentials for modification
3441 */
3442static int selinux_cred_prepare(struct cred *new, const struct cred *old,
3443 gfp_t gfp)
3444{
3445 const struct task_security_struct *old_tsec;
3446 struct task_security_struct *tsec;
3447
3448 old_tsec = old->security;
3449
3450 tsec = kmemdup(old_tsec, sizeof(struct task_security_struct), gfp);
3451 if (!tsec)
3452 return -ENOMEM;
3453
3454 new->security = tsec;
3455 return 0;
3456}
3457
3458/*
3459 * transfer the SELinux data to a blank set of creds
3460 */
3461static void selinux_cred_transfer(struct cred *new, const struct cred *old)
3462{
3463 const struct task_security_struct *old_tsec = old->security;
3464 struct task_security_struct *tsec = new->security;
3465
3466 *tsec = *old_tsec;
3467}
3468
3469/*
3470 * set the security data for a kernel service
3471 * - all the creation contexts are set to unlabelled
3472 */
3473static int selinux_kernel_act_as(struct cred *new, u32 secid)
3474{
3475 struct task_security_struct *tsec = new->security;
3476 u32 sid = current_sid();
3477 int ret;
3478
3479 ret = avc_has_perm(sid, secid,
3480 SECCLASS_KERNEL_SERVICE,
3481 KERNEL_SERVICE__USE_AS_OVERRIDE,
3482 NULL);
3483 if (ret == 0) {
3484 tsec->sid = secid;
3485 tsec->create_sid = 0;
3486 tsec->keycreate_sid = 0;
3487 tsec->sockcreate_sid = 0;
3488 }
3489 return ret;
3490}
3491
3492/*
3493 * set the file creation context in a security record to the same as the
3494 * objective context of the specified inode
3495 */
3496static int selinux_kernel_create_files_as(struct cred *new, struct inode *inode)
3497{
3498 struct inode_security_struct *isec = inode->i_security;
3499 struct task_security_struct *tsec = new->security;
3500 u32 sid = current_sid();
3501 int ret;
3502
3503 ret = avc_has_perm(sid, isec->sid,
3504 SECCLASS_KERNEL_SERVICE,
3505 KERNEL_SERVICE__CREATE_FILES_AS,
3506 NULL);
3507
3508 if (ret == 0)
3509 tsec->create_sid = isec->sid;
3510 return ret;
3511}
3512
3513static int selinux_kernel_module_request(char *kmod_name)
3514{
3515 u32 sid;
3516 struct common_audit_data ad;
3517
3518 sid = task_sid(current);
3519
3520 ad.type = LSM_AUDIT_DATA_KMOD;
3521 ad.u.kmod_name = kmod_name;
3522
3523 return avc_has_perm(sid, SECINITSID_KERNEL, SECCLASS_SYSTEM,
3524 SYSTEM__MODULE_REQUEST, &ad);
3525}
3526
3527static int selinux_task_setpgid(struct task_struct *p, pid_t pgid)
3528{
3529 return current_has_perm(p, PROCESS__SETPGID);
3530}
3531
3532static int selinux_task_getpgid(struct task_struct *p)
3533{
3534 return current_has_perm(p, PROCESS__GETPGID);
3535}
3536
3537static int selinux_task_getsid(struct task_struct *p)
3538{
3539 return current_has_perm(p, PROCESS__GETSESSION);
3540}
3541
3542static void selinux_task_getsecid(struct task_struct *p, u32 *secid)
3543{
3544 *secid = task_sid(p);
3545}
3546
3547static int selinux_task_setnice(struct task_struct *p, int nice)
3548{
3549 int rc;
3550
3551 rc = cap_task_setnice(p, nice);
3552 if (rc)
3553 return rc;
3554
3555 return current_has_perm(p, PROCESS__SETSCHED);
3556}
3557
3558static int selinux_task_setioprio(struct task_struct *p, int ioprio)
3559{
3560 int rc;
3561
3562 rc = cap_task_setioprio(p, ioprio);
3563 if (rc)
3564 return rc;
3565
3566 return current_has_perm(p, PROCESS__SETSCHED);
3567}
3568
3569static int selinux_task_getioprio(struct task_struct *p)
3570{
3571 return current_has_perm(p, PROCESS__GETSCHED);
3572}
3573
3574static int selinux_task_setrlimit(struct task_struct *p, unsigned int resource,
3575 struct rlimit *new_rlim)
3576{
3577 struct rlimit *old_rlim = p->signal->rlim + resource;
3578
3579 /* Control the ability to change the hard limit (whether
3580 lowering or raising it), so that the hard limit can
3581 later be used as a safe reset point for the soft limit
3582 upon context transitions. See selinux_bprm_committing_creds. */
3583 if (old_rlim->rlim_max != new_rlim->rlim_max)
3584 return current_has_perm(p, PROCESS__SETRLIMIT);
3585
3586 return 0;
3587}
3588
3589static int selinux_task_setscheduler(struct task_struct *p)
3590{
3591 int rc;
3592
3593 rc = cap_task_setscheduler(p);
3594 if (rc)
3595 return rc;
3596
3597 return current_has_perm(p, PROCESS__SETSCHED);
3598}
3599
3600static int selinux_task_getscheduler(struct task_struct *p)
3601{
3602 return current_has_perm(p, PROCESS__GETSCHED);
3603}
3604
3605static int selinux_task_movememory(struct task_struct *p)
3606{
3607 return current_has_perm(p, PROCESS__SETSCHED);
3608}
3609
3610static int selinux_task_kill(struct task_struct *p, struct siginfo *info,
3611 int sig, u32 secid)
3612{
3613 u32 perm;
3614 int rc;
3615
3616 if (!sig)
3617 perm = PROCESS__SIGNULL; /* null signal; existence test */
3618 else
3619 perm = signal_to_av(sig);
3620 if (secid)
3621 rc = avc_has_perm(secid, task_sid(p),
3622 SECCLASS_PROCESS, perm, NULL);
3623 else
3624 rc = current_has_perm(p, perm);
3625 return rc;
3626}
3627
3628static int selinux_task_wait(struct task_struct *p)
3629{
3630 return task_has_perm(p, current, PROCESS__SIGCHLD);
3631}
3632
3633static void selinux_task_to_inode(struct task_struct *p,
3634 struct inode *inode)
3635{
3636 struct inode_security_struct *isec = inode->i_security;
3637 u32 sid = task_sid(p);
3638
3639 isec->sid = sid;
3640 isec->initialized = 1;
3641}
3642
3643/* Returns error only if unable to parse addresses */
3644static int selinux_parse_skb_ipv4(struct sk_buff *skb,
3645 struct common_audit_data *ad, u8 *proto)
3646{
3647 int offset, ihlen, ret = -EINVAL;
3648 struct iphdr _iph, *ih;
3649
3650 offset = skb_network_offset(skb);
3651 ih = skb_header_pointer(skb, offset, sizeof(_iph), &_iph);
3652 if (ih == NULL)
3653 goto out;
3654
3655 ihlen = ih->ihl * 4;
3656 if (ihlen < sizeof(_iph))
3657 goto out;
3658
3659 ad->u.net->v4info.saddr = ih->saddr;
3660 ad->u.net->v4info.daddr = ih->daddr;
3661 ret = 0;
3662
3663 if (proto)
3664 *proto = ih->protocol;
3665
3666 switch (ih->protocol) {
3667 case IPPROTO_TCP: {
3668 struct tcphdr _tcph, *th;
3669
3670 if (ntohs(ih->frag_off) & IP_OFFSET)
3671 break;
3672
3673 offset += ihlen;
3674 th = skb_header_pointer(skb, offset, sizeof(_tcph), &_tcph);
3675 if (th == NULL)
3676 break;
3677
3678 ad->u.net->sport = th->source;
3679 ad->u.net->dport = th->dest;
3680 break;
3681 }
3682
3683 case IPPROTO_UDP: {
3684 struct udphdr _udph, *uh;
3685
3686 if (ntohs(ih->frag_off) & IP_OFFSET)
3687 break;
3688
3689 offset += ihlen;
3690 uh = skb_header_pointer(skb, offset, sizeof(_udph), &_udph);
3691 if (uh == NULL)
3692 break;
3693
3694 ad->u.net->sport = uh->source;
3695 ad->u.net->dport = uh->dest;
3696 break;
3697 }
3698
3699 case IPPROTO_DCCP: {
3700 struct dccp_hdr _dccph, *dh;
3701
3702 if (ntohs(ih->frag_off) & IP_OFFSET)
3703 break;
3704
3705 offset += ihlen;
3706 dh = skb_header_pointer(skb, offset, sizeof(_dccph), &_dccph);
3707 if (dh == NULL)
3708 break;
3709
3710 ad->u.net->sport = dh->dccph_sport;
3711 ad->u.net->dport = dh->dccph_dport;
3712 break;
3713 }
3714
3715 default:
3716 break;
3717 }
3718out:
3719 return ret;
3720}
3721
3722#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
3723
3724/* Returns error only if unable to parse addresses */
3725static int selinux_parse_skb_ipv6(struct sk_buff *skb,
3726 struct common_audit_data *ad, u8 *proto)
3727{
3728 u8 nexthdr;
3729 int ret = -EINVAL, offset;
3730 struct ipv6hdr _ipv6h, *ip6;
3731 __be16 frag_off;
3732
3733 offset = skb_network_offset(skb);
3734 ip6 = skb_header_pointer(skb, offset, sizeof(_ipv6h), &_ipv6h);
3735 if (ip6 == NULL)
3736 goto out;
3737
3738 ad->u.net->v6info.saddr = ip6->saddr;
3739 ad->u.net->v6info.daddr = ip6->daddr;
3740 ret = 0;
3741
3742 nexthdr = ip6->nexthdr;
3743 offset += sizeof(_ipv6h);
3744 offset = ipv6_skip_exthdr(skb, offset, &nexthdr, &frag_off);
3745 if (offset < 0)
3746 goto out;
3747
3748 if (proto)
3749 *proto = nexthdr;
3750
3751 switch (nexthdr) {
3752 case IPPROTO_TCP: {
3753 struct tcphdr _tcph, *th;
3754
3755 th = skb_header_pointer(skb, offset, sizeof(_tcph), &_tcph);
3756 if (th == NULL)
3757 break;
3758
3759 ad->u.net->sport = th->source;
3760 ad->u.net->dport = th->dest;
3761 break;
3762 }
3763
3764 case IPPROTO_UDP: {
3765 struct udphdr _udph, *uh;
3766
3767 uh = skb_header_pointer(skb, offset, sizeof(_udph), &_udph);
3768 if (uh == NULL)
3769 break;
3770
3771 ad->u.net->sport = uh->source;
3772 ad->u.net->dport = uh->dest;
3773 break;
3774 }
3775
3776 case IPPROTO_DCCP: {
3777 struct dccp_hdr _dccph, *dh;
3778
3779 dh = skb_header_pointer(skb, offset, sizeof(_dccph), &_dccph);
3780 if (dh == NULL)
3781 break;
3782
3783 ad->u.net->sport = dh->dccph_sport;
3784 ad->u.net->dport = dh->dccph_dport;
3785 break;
3786 }
3787
3788 /* includes fragments */
3789 default:
3790 break;
3791 }
3792out:
3793 return ret;
3794}
3795
3796#endif /* IPV6 */
3797
3798static int selinux_parse_skb(struct sk_buff *skb, struct common_audit_data *ad,
3799 char **_addrp, int src, u8 *proto)
3800{
3801 char *addrp;
3802 int ret;
3803
3804 switch (ad->u.net->family) {
3805 case PF_INET:
3806 ret = selinux_parse_skb_ipv4(skb, ad, proto);
3807 if (ret)
3808 goto parse_error;
3809 addrp = (char *)(src ? &ad->u.net->v4info.saddr :
3810 &ad->u.net->v4info.daddr);
3811 goto okay;
3812
3813#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
3814 case PF_INET6:
3815 ret = selinux_parse_skb_ipv6(skb, ad, proto);
3816 if (ret)
3817 goto parse_error;
3818 addrp = (char *)(src ? &ad->u.net->v6info.saddr :
3819 &ad->u.net->v6info.daddr);
3820 goto okay;
3821#endif /* IPV6 */
3822 default:
3823 addrp = NULL;
3824 goto okay;
3825 }
3826
3827parse_error:
3828 printk(KERN_WARNING
3829 "SELinux: failure in selinux_parse_skb(),"
3830 " unable to parse packet\n");
3831 return ret;
3832
3833okay:
3834 if (_addrp)
3835 *_addrp = addrp;
3836 return 0;
3837}
3838
3839/**
3840 * selinux_skb_peerlbl_sid - Determine the peer label of a packet
3841 * @skb: the packet
3842 * @family: protocol family
3843 * @sid: the packet's peer label SID
3844 *
3845 * Description:
3846 * Check the various different forms of network peer labeling and determine
3847 * the peer label/SID for the packet; most of the magic actually occurs in
3848 * the security server function security_net_peersid_cmp(). The function
3849 * returns zero if the value in @sid is valid (although it may be SECSID_NULL)
3850 * or -EACCES if @sid is invalid due to inconsistencies with the different
3851 * peer labels.
3852 *
3853 */
3854static int selinux_skb_peerlbl_sid(struct sk_buff *skb, u16 family, u32 *sid)
3855{
3856 int err;
3857 u32 xfrm_sid;
3858 u32 nlbl_sid;
3859 u32 nlbl_type;
3860
3861 err = selinux_xfrm_skb_sid(skb, &xfrm_sid);
3862 if (unlikely(err))
3863 return -EACCES;
3864 err = selinux_netlbl_skbuff_getsid(skb, family, &nlbl_type, &nlbl_sid);
3865 if (unlikely(err))
3866 return -EACCES;
3867
3868 err = security_net_peersid_resolve(nlbl_sid, nlbl_type, xfrm_sid, sid);
3869 if (unlikely(err)) {
3870 printk(KERN_WARNING
3871 "SELinux: failure in selinux_skb_peerlbl_sid(),"
3872 " unable to determine packet's peer label\n");
3873 return -EACCES;
3874 }
3875
3876 return 0;
3877}
3878
3879/**
3880 * selinux_conn_sid - Determine the child socket label for a connection
3881 * @sk_sid: the parent socket's SID
3882 * @skb_sid: the packet's SID
3883 * @conn_sid: the resulting connection SID
3884 *
3885 * If @skb_sid is valid then the user:role:type information from @sk_sid is
3886 * combined with the MLS information from @skb_sid in order to create
3887 * @conn_sid. If @skb_sid is not valid then then @conn_sid is simply a copy
3888 * of @sk_sid. Returns zero on success, negative values on failure.
3889 *
3890 */
3891static int selinux_conn_sid(u32 sk_sid, u32 skb_sid, u32 *conn_sid)
3892{
3893 int err = 0;
3894
3895 if (skb_sid != SECSID_NULL)
3896 err = security_sid_mls_copy(sk_sid, skb_sid, conn_sid);
3897 else
3898 *conn_sid = sk_sid;
3899
3900 return err;
3901}
3902
3903/* socket security operations */
3904
3905static int socket_sockcreate_sid(const struct task_security_struct *tsec,
3906 u16 secclass, u32 *socksid)
3907{
3908 if (tsec->sockcreate_sid > SECSID_NULL) {
3909 *socksid = tsec->sockcreate_sid;
3910 return 0;
3911 }
3912
3913 return security_transition_sid(tsec->sid, tsec->sid, secclass, NULL,
3914 socksid);
3915}
3916
3917static int sock_has_perm(struct task_struct *task, struct sock *sk, u32 perms)
3918{
3919 struct sk_security_struct *sksec = sk->sk_security;
3920 struct common_audit_data ad;
3921 struct lsm_network_audit net = {0,};
3922 u32 tsid = task_sid(task);
3923
3924 if (sksec->sid == SECINITSID_KERNEL)
3925 return 0;
3926
3927 ad.type = LSM_AUDIT_DATA_NET;
3928 ad.u.net = &net;
3929 ad.u.net->sk = sk;
3930
3931 return avc_has_perm(tsid, sksec->sid, sksec->sclass, perms, &ad);
3932}
3933
3934static int selinux_socket_create(int family, int type,
3935 int protocol, int kern)
3936{
3937 const struct task_security_struct *tsec = current_security();
3938 u32 newsid;
3939 u16 secclass;
3940 int rc;
3941
3942 if (kern)
3943 return 0;
3944
3945 secclass = socket_type_to_security_class(family, type, protocol);
3946 rc = socket_sockcreate_sid(tsec, secclass, &newsid);
3947 if (rc)
3948 return rc;
3949
3950 return avc_has_perm(tsec->sid, newsid, secclass, SOCKET__CREATE, NULL);
3951}
3952
3953static int selinux_socket_post_create(struct socket *sock, int family,
3954 int type, int protocol, int kern)
3955{
3956 const struct task_security_struct *tsec = current_security();
3957 struct inode_security_struct *isec = SOCK_INODE(sock)->i_security;
3958 struct sk_security_struct *sksec;
3959 int err = 0;
3960
3961 isec->sclass = socket_type_to_security_class(family, type, protocol);
3962
3963 if (kern)
3964 isec->sid = SECINITSID_KERNEL;
3965 else {
3966 err = socket_sockcreate_sid(tsec, isec->sclass, &(isec->sid));
3967 if (err)
3968 return err;
3969 }
3970
3971 isec->initialized = 1;
3972
3973 if (sock->sk) {
3974 sksec = sock->sk->sk_security;
3975 sksec->sid = isec->sid;
3976 sksec->sclass = isec->sclass;
3977 err = selinux_netlbl_socket_post_create(sock->sk, family);
3978 }
3979
3980 return err;
3981}
3982
3983/* Range of port numbers used to automatically bind.
3984 Need to determine whether we should perform a name_bind
3985 permission check between the socket and the port number. */
3986
3987static int selinux_socket_bind(struct socket *sock, struct sockaddr *address, int addrlen)
3988{
3989 struct sock *sk = sock->sk;
3990 u16 family;
3991 int err;
3992
3993 err = sock_has_perm(current, sk, SOCKET__BIND);
3994 if (err)
3995 goto out;
3996
3997 /*
3998 * If PF_INET or PF_INET6, check name_bind permission for the port.
3999 * Multiple address binding for SCTP is not supported yet: we just
4000 * check the first address now.
4001 */
4002 family = sk->sk_family;
4003 if (family == PF_INET || family == PF_INET6) {
4004 char *addrp;
4005 struct sk_security_struct *sksec = sk->sk_security;
4006 struct common_audit_data ad;
4007 struct lsm_network_audit net = {0,};
4008 struct sockaddr_in *addr4 = NULL;
4009 struct sockaddr_in6 *addr6 = NULL;
4010 unsigned short snum;
4011 u32 sid, node_perm;
4012
4013 if (family == PF_INET) {
4014 addr4 = (struct sockaddr_in *)address;
4015 snum = ntohs(addr4->sin_port);
4016 addrp = (char *)&addr4->sin_addr.s_addr;
4017 } else {
4018 addr6 = (struct sockaddr_in6 *)address;
4019 snum = ntohs(addr6->sin6_port);
4020 addrp = (char *)&addr6->sin6_addr.s6_addr;
4021 }
4022
4023 if (snum) {
4024 int low, high;
4025
4026 inet_get_local_port_range(sock_net(sk), &low, &high);
4027
4028 if (snum < max(PROT_SOCK, low) || snum > high) {
4029 err = sel_netport_sid(sk->sk_protocol,
4030 snum, &sid);
4031 if (err)
4032 goto out;
4033 ad.type = LSM_AUDIT_DATA_NET;
4034 ad.u.net = &net;
4035 ad.u.net->sport = htons(snum);
4036 ad.u.net->family = family;
4037 err = avc_has_perm(sksec->sid, sid,
4038 sksec->sclass,
4039 SOCKET__NAME_BIND, &ad);
4040 if (err)
4041 goto out;
4042 }
4043 }
4044
4045 switch (sksec->sclass) {
4046 case SECCLASS_TCP_SOCKET:
4047 node_perm = TCP_SOCKET__NODE_BIND;
4048 break;
4049
4050 case SECCLASS_UDP_SOCKET:
4051 node_perm = UDP_SOCKET__NODE_BIND;
4052 break;
4053
4054 case SECCLASS_DCCP_SOCKET:
4055 node_perm = DCCP_SOCKET__NODE_BIND;
4056 break;
4057
4058 default:
4059 node_perm = RAWIP_SOCKET__NODE_BIND;
4060 break;
4061 }
4062
4063 err = sel_netnode_sid(addrp, family, &sid);
4064 if (err)
4065 goto out;
4066
4067 ad.type = LSM_AUDIT_DATA_NET;
4068 ad.u.net = &net;
4069 ad.u.net->sport = htons(snum);
4070 ad.u.net->family = family;
4071
4072 if (family == PF_INET)
4073 ad.u.net->v4info.saddr = addr4->sin_addr.s_addr;
4074 else
4075 ad.u.net->v6info.saddr = addr6->sin6_addr;
4076
4077 err = avc_has_perm(sksec->sid, sid,
4078 sksec->sclass, node_perm, &ad);
4079 if (err)
4080 goto out;
4081 }
4082out:
4083 return err;
4084}
4085
4086static int selinux_socket_connect(struct socket *sock, struct sockaddr *address, int addrlen)
4087{
4088 struct sock *sk = sock->sk;
4089 struct sk_security_struct *sksec = sk->sk_security;
4090 int err;
4091
4092 err = sock_has_perm(current, sk, SOCKET__CONNECT);
4093 if (err)
4094 return err;
4095
4096 /*
4097 * If a TCP or DCCP socket, check name_connect permission for the port.
4098 */
4099 if (sksec->sclass == SECCLASS_TCP_SOCKET ||
4100 sksec->sclass == SECCLASS_DCCP_SOCKET) {
4101 struct common_audit_data ad;
4102 struct lsm_network_audit net = {0,};
4103 struct sockaddr_in *addr4 = NULL;
4104 struct sockaddr_in6 *addr6 = NULL;
4105 unsigned short snum;
4106 u32 sid, perm;
4107
4108 if (sk->sk_family == PF_INET) {
4109 addr4 = (struct sockaddr_in *)address;
4110 if (addrlen < sizeof(struct sockaddr_in))
4111 return -EINVAL;
4112 snum = ntohs(addr4->sin_port);
4113 } else {
4114 addr6 = (struct sockaddr_in6 *)address;
4115 if (addrlen < SIN6_LEN_RFC2133)
4116 return -EINVAL;
4117 snum = ntohs(addr6->sin6_port);
4118 }
4119
4120 err = sel_netport_sid(sk->sk_protocol, snum, &sid);
4121 if (err)
4122 goto out;
4123
4124 perm = (sksec->sclass == SECCLASS_TCP_SOCKET) ?
4125 TCP_SOCKET__NAME_CONNECT : DCCP_SOCKET__NAME_CONNECT;
4126
4127 ad.type = LSM_AUDIT_DATA_NET;
4128 ad.u.net = &net;
4129 ad.u.net->dport = htons(snum);
4130 ad.u.net->family = sk->sk_family;
4131 err = avc_has_perm(sksec->sid, sid, sksec->sclass, perm, &ad);
4132 if (err)
4133 goto out;
4134 }
4135
4136 err = selinux_netlbl_socket_connect(sk, address);
4137
4138out:
4139 return err;
4140}
4141
4142static int selinux_socket_listen(struct socket *sock, int backlog)
4143{
4144 return sock_has_perm(current, sock->sk, SOCKET__LISTEN);
4145}
4146
4147static int selinux_socket_accept(struct socket *sock, struct socket *newsock)
4148{
4149 int err;
4150 struct inode_security_struct *isec;
4151 struct inode_security_struct *newisec;
4152
4153 err = sock_has_perm(current, sock->sk, SOCKET__ACCEPT);
4154 if (err)
4155 return err;
4156
4157 newisec = SOCK_INODE(newsock)->i_security;
4158
4159 isec = SOCK_INODE(sock)->i_security;
4160 newisec->sclass = isec->sclass;
4161 newisec->sid = isec->sid;
4162 newisec->initialized = 1;
4163
4164 return 0;
4165}
4166
4167static int selinux_socket_sendmsg(struct socket *sock, struct msghdr *msg,
4168 int size)
4169{
4170 return sock_has_perm(current, sock->sk, SOCKET__WRITE);
4171}
4172
4173static int selinux_socket_recvmsg(struct socket *sock, struct msghdr *msg,
4174 int size, int flags)
4175{
4176 return sock_has_perm(current, sock->sk, SOCKET__READ);
4177}
4178
4179static int selinux_socket_getsockname(struct socket *sock)
4180{
4181 return sock_has_perm(current, sock->sk, SOCKET__GETATTR);
4182}
4183
4184static int selinux_socket_getpeername(struct socket *sock)
4185{
4186 return sock_has_perm(current, sock->sk, SOCKET__GETATTR);
4187}
4188
4189static int selinux_socket_setsockopt(struct socket *sock, int level, int optname)
4190{
4191 int err;
4192
4193 err = sock_has_perm(current, sock->sk, SOCKET__SETOPT);
4194 if (err)
4195 return err;
4196
4197 return selinux_netlbl_socket_setsockopt(sock, level, optname);
4198}
4199
4200static int selinux_socket_getsockopt(struct socket *sock, int level,
4201 int optname)
4202{
4203 return sock_has_perm(current, sock->sk, SOCKET__GETOPT);
4204}
4205
4206static int selinux_socket_shutdown(struct socket *sock, int how)
4207{
4208 return sock_has_perm(current, sock->sk, SOCKET__SHUTDOWN);
4209}
4210
4211static int selinux_socket_unix_stream_connect(struct sock *sock,
4212 struct sock *other,
4213 struct sock *newsk)
4214{
4215 struct sk_security_struct *sksec_sock = sock->sk_security;
4216 struct sk_security_struct *sksec_other = other->sk_security;
4217 struct sk_security_struct *sksec_new = newsk->sk_security;
4218 struct common_audit_data ad;
4219 struct lsm_network_audit net = {0,};
4220 int err;
4221
4222 ad.type = LSM_AUDIT_DATA_NET;
4223 ad.u.net = &net;
4224 ad.u.net->sk = other;
4225
4226 err = avc_has_perm(sksec_sock->sid, sksec_other->sid,
4227 sksec_other->sclass,
4228 UNIX_STREAM_SOCKET__CONNECTTO, &ad);
4229 if (err)
4230 return err;
4231
4232 /* server child socket */
4233 sksec_new->peer_sid = sksec_sock->sid;
4234 err = security_sid_mls_copy(sksec_other->sid, sksec_sock->sid,
4235 &sksec_new->sid);
4236 if (err)
4237 return err;
4238
4239 /* connecting socket */
4240 sksec_sock->peer_sid = sksec_new->sid;
4241
4242 return 0;
4243}
4244
4245static int selinux_socket_unix_may_send(struct socket *sock,
4246 struct socket *other)
4247{
4248 struct sk_security_struct *ssec = sock->sk->sk_security;
4249 struct sk_security_struct *osec = other->sk->sk_security;
4250 struct common_audit_data ad;
4251 struct lsm_network_audit net = {0,};
4252
4253 ad.type = LSM_AUDIT_DATA_NET;
4254 ad.u.net = &net;
4255 ad.u.net->sk = other->sk;
4256
4257 return avc_has_perm(ssec->sid, osec->sid, osec->sclass, SOCKET__SENDTO,
4258 &ad);
4259}
4260
4261static int selinux_inet_sys_rcv_skb(int ifindex, char *addrp, u16 family,
4262 u32 peer_sid,
4263 struct common_audit_data *ad)
4264{
4265 int err;
4266 u32 if_sid;
4267 u32 node_sid;
4268
4269 err = sel_netif_sid(ifindex, &if_sid);
4270 if (err)
4271 return err;
4272 err = avc_has_perm(peer_sid, if_sid,
4273 SECCLASS_NETIF, NETIF__INGRESS, ad);
4274 if (err)
4275 return err;
4276
4277 err = sel_netnode_sid(addrp, family, &node_sid);
4278 if (err)
4279 return err;
4280 return avc_has_perm(peer_sid, node_sid,
4281 SECCLASS_NODE, NODE__RECVFROM, ad);
4282}
4283
4284static int selinux_sock_rcv_skb_compat(struct sock *sk, struct sk_buff *skb,
4285 u16 family)
4286{
4287 int err = 0;
4288 struct sk_security_struct *sksec = sk->sk_security;
4289 u32 sk_sid = sksec->sid;
4290 struct common_audit_data ad;
4291 struct lsm_network_audit net = {0,};
4292 char *addrp;
4293
4294 ad.type = LSM_AUDIT_DATA_NET;
4295 ad.u.net = &net;
4296 ad.u.net->netif = skb->skb_iif;
4297 ad.u.net->family = family;
4298 err = selinux_parse_skb(skb, &ad, &addrp, 1, NULL);
4299 if (err)
4300 return err;
4301
4302 if (selinux_secmark_enabled()) {
4303 err = avc_has_perm(sk_sid, skb->secmark, SECCLASS_PACKET,
4304 PACKET__RECV, &ad);
4305 if (err)
4306 return err;
4307 }
4308
4309 err = selinux_netlbl_sock_rcv_skb(sksec, skb, family, &ad);
4310 if (err)
4311 return err;
4312 err = selinux_xfrm_sock_rcv_skb(sksec->sid, skb, &ad);
4313
4314 return err;
4315}
4316
4317static int selinux_socket_sock_rcv_skb(struct sock *sk, struct sk_buff *skb)
4318{
4319 int err;
4320 struct sk_security_struct *sksec = sk->sk_security;
4321 u16 family = sk->sk_family;
4322 u32 sk_sid = sksec->sid;
4323 struct common_audit_data ad;
4324 struct lsm_network_audit net = {0,};
4325 char *addrp;
4326 u8 secmark_active;
4327 u8 peerlbl_active;
4328
4329 if (family != PF_INET && family != PF_INET6)
4330 return 0;
4331
4332 /* Handle mapped IPv4 packets arriving via IPv6 sockets */
4333 if (family == PF_INET6 && skb->protocol == htons(ETH_P_IP))
4334 family = PF_INET;
4335
4336 /* If any sort of compatibility mode is enabled then handoff processing
4337 * to the selinux_sock_rcv_skb_compat() function to deal with the
4338 * special handling. We do this in an attempt to keep this function
4339 * as fast and as clean as possible. */
4340 if (!selinux_policycap_netpeer)
4341 return selinux_sock_rcv_skb_compat(sk, skb, family);
4342
4343 secmark_active = selinux_secmark_enabled();
4344 peerlbl_active = selinux_peerlbl_enabled();
4345 if (!secmark_active && !peerlbl_active)
4346 return 0;
4347
4348 ad.type = LSM_AUDIT_DATA_NET;
4349 ad.u.net = &net;
4350 ad.u.net->netif = skb->skb_iif;
4351 ad.u.net->family = family;
4352 err = selinux_parse_skb(skb, &ad, &addrp, 1, NULL);
4353 if (err)
4354 return err;
4355
4356 if (peerlbl_active) {
4357 u32 peer_sid;
4358
4359 err = selinux_skb_peerlbl_sid(skb, family, &peer_sid);
4360 if (err)
4361 return err;
4362 err = selinux_inet_sys_rcv_skb(skb->skb_iif, addrp, family,
4363 peer_sid, &ad);
4364 if (err) {
4365 selinux_netlbl_err(skb, err, 0);
4366 return err;
4367 }
4368 err = avc_has_perm(sk_sid, peer_sid, SECCLASS_PEER,
4369 PEER__RECV, &ad);
4370 if (err) {
4371 selinux_netlbl_err(skb, err, 0);
4372 return err;
4373 }
4374 }
4375
4376 if (secmark_active) {
4377 err = avc_has_perm(sk_sid, skb->secmark, SECCLASS_PACKET,
4378 PACKET__RECV, &ad);
4379 if (err)
4380 return err;
4381 }
4382
4383 return err;
4384}
4385
4386static int selinux_socket_getpeersec_stream(struct socket *sock, char __user *optval,
4387 int __user *optlen, unsigned len)
4388{
4389 int err = 0;
4390 char *scontext;
4391 u32 scontext_len;
4392 struct sk_security_struct *sksec = sock->sk->sk_security;
4393 u32 peer_sid = SECSID_NULL;
4394
4395 if (sksec->sclass == SECCLASS_UNIX_STREAM_SOCKET ||
4396 sksec->sclass == SECCLASS_TCP_SOCKET)
4397 peer_sid = sksec->peer_sid;
4398 if (peer_sid == SECSID_NULL)
4399 return -ENOPROTOOPT;
4400
4401 err = security_sid_to_context(peer_sid, &scontext, &scontext_len);
4402 if (err)
4403 return err;
4404
4405 if (scontext_len > len) {
4406 err = -ERANGE;
4407 goto out_len;
4408 }
4409
4410 if (copy_to_user(optval, scontext, scontext_len))
4411 err = -EFAULT;
4412
4413out_len:
4414 if (put_user(scontext_len, optlen))
4415 err = -EFAULT;
4416 kfree(scontext);
4417 return err;
4418}
4419
4420static int selinux_socket_getpeersec_dgram(struct socket *sock, struct sk_buff *skb, u32 *secid)
4421{
4422 u32 peer_secid = SECSID_NULL;
4423 u16 family;
4424
4425 if (skb && skb->protocol == htons(ETH_P_IP))
4426 family = PF_INET;
4427 else if (skb && skb->protocol == htons(ETH_P_IPV6))
4428 family = PF_INET6;
4429 else if (sock)
4430 family = sock->sk->sk_family;
4431 else
4432 goto out;
4433
4434 if (sock && family == PF_UNIX)
4435 selinux_inode_getsecid(SOCK_INODE(sock), &peer_secid);
4436 else if (skb)
4437 selinux_skb_peerlbl_sid(skb, family, &peer_secid);
4438
4439out:
4440 *secid = peer_secid;
4441 if (peer_secid == SECSID_NULL)
4442 return -EINVAL;
4443 return 0;
4444}
4445
4446static int selinux_sk_alloc_security(struct sock *sk, int family, gfp_t priority)
4447{
4448 struct sk_security_struct *sksec;
4449
4450 sksec = kzalloc(sizeof(*sksec), priority);
4451 if (!sksec)
4452 return -ENOMEM;
4453
4454 sksec->peer_sid = SECINITSID_UNLABELED;
4455 sksec->sid = SECINITSID_UNLABELED;
4456 selinux_netlbl_sk_security_reset(sksec);
4457 sk->sk_security = sksec;
4458
4459 return 0;
4460}
4461
4462static void selinux_sk_free_security(struct sock *sk)
4463{
4464 struct sk_security_struct *sksec = sk->sk_security;
4465
4466 sk->sk_security = NULL;
4467 selinux_netlbl_sk_security_free(sksec);
4468 kfree(sksec);
4469}
4470
4471static void selinux_sk_clone_security(const struct sock *sk, struct sock *newsk)
4472{
4473 struct sk_security_struct *sksec = sk->sk_security;
4474 struct sk_security_struct *newsksec = newsk->sk_security;
4475
4476 newsksec->sid = sksec->sid;
4477 newsksec->peer_sid = sksec->peer_sid;
4478 newsksec->sclass = sksec->sclass;
4479
4480 selinux_netlbl_sk_security_reset(newsksec);
4481}
4482
4483static void selinux_sk_getsecid(struct sock *sk, u32 *secid)
4484{
4485 if (!sk)
4486 *secid = SECINITSID_ANY_SOCKET;
4487 else {
4488 struct sk_security_struct *sksec = sk->sk_security;
4489
4490 *secid = sksec->sid;
4491 }
4492}
4493
4494static void selinux_sock_graft(struct sock *sk, struct socket *parent)
4495{
4496 struct inode_security_struct *isec = SOCK_INODE(parent)->i_security;
4497 struct sk_security_struct *sksec = sk->sk_security;
4498
4499 if (sk->sk_family == PF_INET || sk->sk_family == PF_INET6 ||
4500 sk->sk_family == PF_UNIX)
4501 isec->sid = sksec->sid;
4502 sksec->sclass = isec->sclass;
4503}
4504
4505static int selinux_inet_conn_request(struct sock *sk, struct sk_buff *skb,
4506 struct request_sock *req)
4507{
4508 struct sk_security_struct *sksec = sk->sk_security;
4509 int err;
4510 u16 family = req->rsk_ops->family;
4511 u32 connsid;
4512 u32 peersid;
4513
4514 err = selinux_skb_peerlbl_sid(skb, family, &peersid);
4515 if (err)
4516 return err;
4517 err = selinux_conn_sid(sksec->sid, peersid, &connsid);
4518 if (err)
4519 return err;
4520 req->secid = connsid;
4521 req->peer_secid = peersid;
4522
4523 return selinux_netlbl_inet_conn_request(req, family);
4524}
4525
4526static void selinux_inet_csk_clone(struct sock *newsk,
4527 const struct request_sock *req)
4528{
4529 struct sk_security_struct *newsksec = newsk->sk_security;
4530
4531 newsksec->sid = req->secid;
4532 newsksec->peer_sid = req->peer_secid;
4533 /* NOTE: Ideally, we should also get the isec->sid for the
4534 new socket in sync, but we don't have the isec available yet.
4535 So we will wait until sock_graft to do it, by which
4536 time it will have been created and available. */
4537
4538 /* We don't need to take any sort of lock here as we are the only
4539 * thread with access to newsksec */
4540 selinux_netlbl_inet_csk_clone(newsk, req->rsk_ops->family);
4541}
4542
4543static void selinux_inet_conn_established(struct sock *sk, struct sk_buff *skb)
4544{
4545 u16 family = sk->sk_family;
4546 struct sk_security_struct *sksec = sk->sk_security;
4547
4548 /* handle mapped IPv4 packets arriving via IPv6 sockets */
4549 if (family == PF_INET6 && skb->protocol == htons(ETH_P_IP))
4550 family = PF_INET;
4551
4552 selinux_skb_peerlbl_sid(skb, family, &sksec->peer_sid);
4553}
4554
4555static void selinux_skb_owned_by(struct sk_buff *skb, struct sock *sk)
4556{
4557 skb_set_owner_w(skb, sk);
4558}
4559
4560static int selinux_secmark_relabel_packet(u32 sid)
4561{
4562 const struct task_security_struct *__tsec;
4563 u32 tsid;
4564
4565 __tsec = current_security();
4566 tsid = __tsec->sid;
4567
4568 return avc_has_perm(tsid, sid, SECCLASS_PACKET, PACKET__RELABELTO, NULL);
4569}
4570
4571static void selinux_secmark_refcount_inc(void)
4572{
4573 atomic_inc(&selinux_secmark_refcount);
4574}
4575
4576static void selinux_secmark_refcount_dec(void)
4577{
4578 atomic_dec(&selinux_secmark_refcount);
4579}
4580
4581static void selinux_req_classify_flow(const struct request_sock *req,
4582 struct flowi *fl)
4583{
4584 fl->flowi_secid = req->secid;
4585}
4586
4587static int selinux_tun_dev_alloc_security(void **security)
4588{
4589 struct tun_security_struct *tunsec;
4590
4591 tunsec = kzalloc(sizeof(*tunsec), GFP_KERNEL);
4592 if (!tunsec)
4593 return -ENOMEM;
4594 tunsec->sid = current_sid();
4595
4596 *security = tunsec;
4597 return 0;
4598}
4599
4600static void selinux_tun_dev_free_security(void *security)
4601{
4602 kfree(security);
4603}
4604
4605static int selinux_tun_dev_create(void)
4606{
4607 u32 sid = current_sid();
4608
4609 /* we aren't taking into account the "sockcreate" SID since the socket
4610 * that is being created here is not a socket in the traditional sense,
4611 * instead it is a private sock, accessible only to the kernel, and
4612 * representing a wide range of network traffic spanning multiple
4613 * connections unlike traditional sockets - check the TUN driver to
4614 * get a better understanding of why this socket is special */
4615
4616 return avc_has_perm(sid, sid, SECCLASS_TUN_SOCKET, TUN_SOCKET__CREATE,
4617 NULL);
4618}
4619
4620static int selinux_tun_dev_attach_queue(void *security)
4621{
4622 struct tun_security_struct *tunsec = security;
4623
4624 return avc_has_perm(current_sid(), tunsec->sid, SECCLASS_TUN_SOCKET,
4625 TUN_SOCKET__ATTACH_QUEUE, NULL);
4626}
4627
4628static int selinux_tun_dev_attach(struct sock *sk, void *security)
4629{
4630 struct tun_security_struct *tunsec = security;
4631 struct sk_security_struct *sksec = sk->sk_security;
4632
4633 /* we don't currently perform any NetLabel based labeling here and it
4634 * isn't clear that we would want to do so anyway; while we could apply
4635 * labeling without the support of the TUN user the resulting labeled
4636 * traffic from the other end of the connection would almost certainly
4637 * cause confusion to the TUN user that had no idea network labeling
4638 * protocols were being used */
4639
4640 sksec->sid = tunsec->sid;
4641 sksec->sclass = SECCLASS_TUN_SOCKET;
4642
4643 return 0;
4644}
4645
4646static int selinux_tun_dev_open(void *security)
4647{
4648 struct tun_security_struct *tunsec = security;
4649 u32 sid = current_sid();
4650 int err;
4651
4652 err = avc_has_perm(sid, tunsec->sid, SECCLASS_TUN_SOCKET,
4653 TUN_SOCKET__RELABELFROM, NULL);
4654 if (err)
4655 return err;
4656 err = avc_has_perm(sid, sid, SECCLASS_TUN_SOCKET,
4657 TUN_SOCKET__RELABELTO, NULL);
4658 if (err)
4659 return err;
4660 tunsec->sid = sid;
4661
4662 return 0;
4663}
4664
4665static int selinux_nlmsg_perm(struct sock *sk, struct sk_buff *skb)
4666{
4667 int err = 0;
4668 u32 perm;
4669 struct nlmsghdr *nlh;
4670 struct sk_security_struct *sksec = sk->sk_security;
4671
4672 if (skb->len < NLMSG_HDRLEN) {
4673 err = -EINVAL;
4674 goto out;
4675 }
4676 nlh = nlmsg_hdr(skb);
4677
4678 err = selinux_nlmsg_lookup(sksec->sclass, nlh->nlmsg_type, &perm);
4679 if (err) {
4680 if (err == -EINVAL) {
4681 audit_log(current->audit_context, GFP_KERNEL, AUDIT_SELINUX_ERR,
4682 "SELinux: unrecognized netlink message"
4683 " type=%hu for sclass=%hu\n",
4684 nlh->nlmsg_type, sksec->sclass);
4685 if (!selinux_enforcing || security_get_allow_unknown())
4686 err = 0;
4687 }
4688
4689 /* Ignore */
4690 if (err == -ENOENT)
4691 err = 0;
4692 goto out;
4693 }
4694
4695 err = sock_has_perm(current, sk, perm);
4696out:
4697 return err;
4698}
4699
4700#ifdef CONFIG_NETFILTER
4701
4702static unsigned int selinux_ip_forward(struct sk_buff *skb, int ifindex,
4703 u16 family)
4704{
4705 int err;
4706 char *addrp;
4707 u32 peer_sid;
4708 struct common_audit_data ad;
4709 struct lsm_network_audit net = {0,};
4710 u8 secmark_active;
4711 u8 netlbl_active;
4712 u8 peerlbl_active;
4713
4714 if (!selinux_policycap_netpeer)
4715 return NF_ACCEPT;
4716
4717 secmark_active = selinux_secmark_enabled();
4718 netlbl_active = netlbl_enabled();
4719 peerlbl_active = selinux_peerlbl_enabled();
4720 if (!secmark_active && !peerlbl_active)
4721 return NF_ACCEPT;
4722
4723 if (selinux_skb_peerlbl_sid(skb, family, &peer_sid) != 0)
4724 return NF_DROP;
4725
4726 ad.type = LSM_AUDIT_DATA_NET;
4727 ad.u.net = &net;
4728 ad.u.net->netif = ifindex;
4729 ad.u.net->family = family;
4730 if (selinux_parse_skb(skb, &ad, &addrp, 1, NULL) != 0)
4731 return NF_DROP;
4732
4733 if (peerlbl_active) {
4734 err = selinux_inet_sys_rcv_skb(ifindex, addrp, family,
4735 peer_sid, &ad);
4736 if (err) {
4737 selinux_netlbl_err(skb, err, 1);
4738 return NF_DROP;
4739 }
4740 }
4741
4742 if (secmark_active)
4743 if (avc_has_perm(peer_sid, skb->secmark,
4744 SECCLASS_PACKET, PACKET__FORWARD_IN, &ad))
4745 return NF_DROP;
4746
4747 if (netlbl_active)
4748 /* we do this in the FORWARD path and not the POST_ROUTING
4749 * path because we want to make sure we apply the necessary
4750 * labeling before IPsec is applied so we can leverage AH
4751 * protection */
4752 if (selinux_netlbl_skbuff_setsid(skb, family, peer_sid) != 0)
4753 return NF_DROP;
4754
4755 return NF_ACCEPT;
4756}
4757
4758static unsigned int selinux_ipv4_forward(const struct nf_hook_ops *ops,
4759 struct sk_buff *skb,
4760 const struct net_device *in,
4761 const struct net_device *out,
4762 int (*okfn)(struct sk_buff *))
4763{
4764 return selinux_ip_forward(skb, in->ifindex, PF_INET);
4765}
4766
4767#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
4768static unsigned int selinux_ipv6_forward(const struct nf_hook_ops *ops,
4769 struct sk_buff *skb,
4770 const struct net_device *in,
4771 const struct net_device *out,
4772 int (*okfn)(struct sk_buff *))
4773{
4774 return selinux_ip_forward(skb, in->ifindex, PF_INET6);
4775}
4776#endif /* IPV6 */
4777
4778static unsigned int selinux_ip_output(struct sk_buff *skb,
4779 u16 family)
4780{
4781 struct sock *sk;
4782 u32 sid;
4783
4784 if (!netlbl_enabled())
4785 return NF_ACCEPT;
4786
4787 /* we do this in the LOCAL_OUT path and not the POST_ROUTING path
4788 * because we want to make sure we apply the necessary labeling
4789 * before IPsec is applied so we can leverage AH protection */
4790 sk = skb->sk;
4791 if (sk) {
4792 struct sk_security_struct *sksec;
4793
4794 if (sk->sk_state == TCP_LISTEN)
4795 /* if the socket is the listening state then this
4796 * packet is a SYN-ACK packet which means it needs to
4797 * be labeled based on the connection/request_sock and
4798 * not the parent socket. unfortunately, we can't
4799 * lookup the request_sock yet as it isn't queued on
4800 * the parent socket until after the SYN-ACK is sent.
4801 * the "solution" is to simply pass the packet as-is
4802 * as any IP option based labeling should be copied
4803 * from the initial connection request (in the IP
4804 * layer). it is far from ideal, but until we get a
4805 * security label in the packet itself this is the
4806 * best we can do. */
4807 return NF_ACCEPT;
4808
4809 /* standard practice, label using the parent socket */
4810 sksec = sk->sk_security;
4811 sid = sksec->sid;
4812 } else
4813 sid = SECINITSID_KERNEL;
4814 if (selinux_netlbl_skbuff_setsid(skb, family, sid) != 0)
4815 return NF_DROP;
4816
4817 return NF_ACCEPT;
4818}
4819
4820static unsigned int selinux_ipv4_output(const struct nf_hook_ops *ops,
4821 struct sk_buff *skb,
4822 const struct net_device *in,
4823 const struct net_device *out,
4824 int (*okfn)(struct sk_buff *))
4825{
4826 return selinux_ip_output(skb, PF_INET);
4827}
4828
4829static unsigned int selinux_ip_postroute_compat(struct sk_buff *skb,
4830 int ifindex,
4831 u16 family)
4832{
4833 struct sock *sk = skb->sk;
4834 struct sk_security_struct *sksec;
4835 struct common_audit_data ad;
4836 struct lsm_network_audit net = {0,};
4837 char *addrp;
4838 u8 proto;
4839
4840 if (sk == NULL)
4841 return NF_ACCEPT;
4842 sksec = sk->sk_security;
4843
4844 ad.type = LSM_AUDIT_DATA_NET;
4845 ad.u.net = &net;
4846 ad.u.net->netif = ifindex;
4847 ad.u.net->family = family;
4848 if (selinux_parse_skb(skb, &ad, &addrp, 0, &proto))
4849 return NF_DROP;
4850
4851 if (selinux_secmark_enabled())
4852 if (avc_has_perm(sksec->sid, skb->secmark,
4853 SECCLASS_PACKET, PACKET__SEND, &ad))
4854 return NF_DROP_ERR(-ECONNREFUSED);
4855
4856 if (selinux_xfrm_postroute_last(sksec->sid, skb, &ad, proto))
4857 return NF_DROP_ERR(-ECONNREFUSED);
4858
4859 return NF_ACCEPT;
4860}
4861
4862static unsigned int selinux_ip_postroute(struct sk_buff *skb, int ifindex,
4863 u16 family)
4864{
4865 u32 secmark_perm;
4866 u32 peer_sid;
4867 struct sock *sk;
4868 struct common_audit_data ad;
4869 struct lsm_network_audit net = {0,};
4870 char *addrp;
4871 u8 secmark_active;
4872 u8 peerlbl_active;
4873
4874 /* If any sort of compatibility mode is enabled then handoff processing
4875 * to the selinux_ip_postroute_compat() function to deal with the
4876 * special handling. We do this in an attempt to keep this function
4877 * as fast and as clean as possible. */
4878 if (!selinux_policycap_netpeer)
4879 return selinux_ip_postroute_compat(skb, ifindex, family);
4880
4881 secmark_active = selinux_secmark_enabled();
4882 peerlbl_active = selinux_peerlbl_enabled();
4883 if (!secmark_active && !peerlbl_active)
4884 return NF_ACCEPT;
4885
4886 sk = skb->sk;
4887
4888#ifdef CONFIG_XFRM
4889 /* If skb->dst->xfrm is non-NULL then the packet is undergoing an IPsec
4890 * packet transformation so allow the packet to pass without any checks
4891 * since we'll have another chance to perform access control checks
4892 * when the packet is on it's final way out.
4893 * NOTE: there appear to be some IPv6 multicast cases where skb->dst
4894 * is NULL, in this case go ahead and apply access control.
4895 * NOTE: if this is a local socket (skb->sk != NULL) that is in the
4896 * TCP listening state we cannot wait until the XFRM processing
4897 * is done as we will miss out on the SA label if we do;
4898 * unfortunately, this means more work, but it is only once per
4899 * connection. */
4900 if (skb_dst(skb) != NULL && skb_dst(skb)->xfrm != NULL &&
4901 !(sk != NULL && sk->sk_state == TCP_LISTEN))
4902 return NF_ACCEPT;
4903#endif
4904
4905 if (sk == NULL) {
4906 /* Without an associated socket the packet is either coming
4907 * from the kernel or it is being forwarded; check the packet
4908 * to determine which and if the packet is being forwarded
4909 * query the packet directly to determine the security label. */
4910 if (skb->skb_iif) {
4911 secmark_perm = PACKET__FORWARD_OUT;
4912 if (selinux_skb_peerlbl_sid(skb, family, &peer_sid))
4913 return NF_DROP;
4914 } else {
4915 secmark_perm = PACKET__SEND;
4916 peer_sid = SECINITSID_KERNEL;
4917 }
4918 } else if (sk->sk_state == TCP_LISTEN) {
4919 /* Locally generated packet but the associated socket is in the
4920 * listening state which means this is a SYN-ACK packet. In
4921 * this particular case the correct security label is assigned
4922 * to the connection/request_sock but unfortunately we can't
4923 * query the request_sock as it isn't queued on the parent
4924 * socket until after the SYN-ACK packet is sent; the only
4925 * viable choice is to regenerate the label like we do in
4926 * selinux_inet_conn_request(). See also selinux_ip_output()
4927 * for similar problems. */
4928 u32 skb_sid;
4929 struct sk_security_struct *sksec = sk->sk_security;
4930 if (selinux_skb_peerlbl_sid(skb, family, &skb_sid))
4931 return NF_DROP;
4932 /* At this point, if the returned skb peerlbl is SECSID_NULL
4933 * and the packet has been through at least one XFRM
4934 * transformation then we must be dealing with the "final"
4935 * form of labeled IPsec packet; since we've already applied
4936 * all of our access controls on this packet we can safely
4937 * pass the packet. */
4938 if (skb_sid == SECSID_NULL) {
4939 switch (family) {
4940 case PF_INET:
4941 if (IPCB(skb)->flags & IPSKB_XFRM_TRANSFORMED)
4942 return NF_ACCEPT;
4943 break;
4944 case PF_INET6:
4945 if (IP6CB(skb)->flags & IP6SKB_XFRM_TRANSFORMED)
4946 return NF_ACCEPT;
4947 default:
4948 return NF_DROP_ERR(-ECONNREFUSED);
4949 }
4950 }
4951 if (selinux_conn_sid(sksec->sid, skb_sid, &peer_sid))
4952 return NF_DROP;
4953 secmark_perm = PACKET__SEND;
4954 } else {
4955 /* Locally generated packet, fetch the security label from the
4956 * associated socket. */
4957 struct sk_security_struct *sksec = sk->sk_security;
4958 peer_sid = sksec->sid;
4959 secmark_perm = PACKET__SEND;
4960 }
4961
4962 ad.type = LSM_AUDIT_DATA_NET;
4963 ad.u.net = &net;
4964 ad.u.net->netif = ifindex;
4965 ad.u.net->family = family;
4966 if (selinux_parse_skb(skb, &ad, &addrp, 0, NULL))
4967 return NF_DROP;
4968
4969 if (secmark_active)
4970 if (avc_has_perm(peer_sid, skb->secmark,
4971 SECCLASS_PACKET, secmark_perm, &ad))
4972 return NF_DROP_ERR(-ECONNREFUSED);
4973
4974 if (peerlbl_active) {
4975 u32 if_sid;
4976 u32 node_sid;
4977
4978 if (sel_netif_sid(ifindex, &if_sid))
4979 return NF_DROP;
4980 if (avc_has_perm(peer_sid, if_sid,
4981 SECCLASS_NETIF, NETIF__EGRESS, &ad))
4982 return NF_DROP_ERR(-ECONNREFUSED);
4983
4984 if (sel_netnode_sid(addrp, family, &node_sid))
4985 return NF_DROP;
4986 if (avc_has_perm(peer_sid, node_sid,
4987 SECCLASS_NODE, NODE__SENDTO, &ad))
4988 return NF_DROP_ERR(-ECONNREFUSED);
4989 }
4990
4991 return NF_ACCEPT;
4992}
4993
4994static unsigned int selinux_ipv4_postroute(const struct nf_hook_ops *ops,
4995 struct sk_buff *skb,
4996 const struct net_device *in,
4997 const struct net_device *out,
4998 int (*okfn)(struct sk_buff *))
4999{
5000 return selinux_ip_postroute(skb, out->ifindex, PF_INET);
5001}
5002
5003#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
5004static unsigned int selinux_ipv6_postroute(const struct nf_hook_ops *ops,
5005 struct sk_buff *skb,
5006 const struct net_device *in,
5007 const struct net_device *out,
5008 int (*okfn)(struct sk_buff *))
5009{
5010 return selinux_ip_postroute(skb, out->ifindex, PF_INET6);
5011}
5012#endif /* IPV6 */
5013
5014#endif /* CONFIG_NETFILTER */
5015
5016static int selinux_netlink_send(struct sock *sk, struct sk_buff *skb)
5017{
5018 int err;
5019
5020 err = cap_netlink_send(sk, skb);
5021 if (err)
5022 return err;
5023
5024 return selinux_nlmsg_perm(sk, skb);
5025}
5026
5027static int ipc_alloc_security(struct task_struct *task,
5028 struct kern_ipc_perm *perm,
5029 u16 sclass)
5030{
5031 struct ipc_security_struct *isec;
5032 u32 sid;
5033
5034 isec = kzalloc(sizeof(struct ipc_security_struct), GFP_KERNEL);
5035 if (!isec)
5036 return -ENOMEM;
5037
5038 sid = task_sid(task);
5039 isec->sclass = sclass;
5040 isec->sid = sid;
5041 perm->security = isec;
5042
5043 return 0;
5044}
5045
5046static void ipc_free_security(struct kern_ipc_perm *perm)
5047{
5048 struct ipc_security_struct *isec = perm->security;
5049 perm->security = NULL;
5050 kfree(isec);
5051}
5052
5053static int msg_msg_alloc_security(struct msg_msg *msg)
5054{
5055 struct msg_security_struct *msec;
5056
5057 msec = kzalloc(sizeof(struct msg_security_struct), GFP_KERNEL);
5058 if (!msec)
5059 return -ENOMEM;
5060
5061 msec->sid = SECINITSID_UNLABELED;
5062 msg->security = msec;
5063
5064 return 0;
5065}
5066
5067static void msg_msg_free_security(struct msg_msg *msg)
5068{
5069 struct msg_security_struct *msec = msg->security;
5070
5071 msg->security = NULL;
5072 kfree(msec);
5073}
5074
5075static int ipc_has_perm(struct kern_ipc_perm *ipc_perms,
5076 u32 perms)
5077{
5078 struct ipc_security_struct *isec;
5079 struct common_audit_data ad;
5080 u32 sid = current_sid();
5081
5082 isec = ipc_perms->security;
5083
5084 ad.type = LSM_AUDIT_DATA_IPC;
5085 ad.u.ipc_id = ipc_perms->key;
5086
5087 return avc_has_perm(sid, isec->sid, isec->sclass, perms, &ad);
5088}
5089
5090static int selinux_msg_msg_alloc_security(struct msg_msg *msg)
5091{
5092 return msg_msg_alloc_security(msg);
5093}
5094
5095static void selinux_msg_msg_free_security(struct msg_msg *msg)
5096{
5097 msg_msg_free_security(msg);
5098}
5099
5100/* message queue security operations */
5101static int selinux_msg_queue_alloc_security(struct msg_queue *msq)
5102{
5103 struct ipc_security_struct *isec;
5104 struct common_audit_data ad;
5105 u32 sid = current_sid();
5106 int rc;
5107
5108 rc = ipc_alloc_security(current, &msq->q_perm, SECCLASS_MSGQ);
5109 if (rc)
5110 return rc;
5111
5112 isec = msq->q_perm.security;
5113
5114 ad.type = LSM_AUDIT_DATA_IPC;
5115 ad.u.ipc_id = msq->q_perm.key;
5116
5117 rc = avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
5118 MSGQ__CREATE, &ad);
5119 if (rc) {
5120 ipc_free_security(&msq->q_perm);
5121 return rc;
5122 }
5123 return 0;
5124}
5125
5126static void selinux_msg_queue_free_security(struct msg_queue *msq)
5127{
5128 ipc_free_security(&msq->q_perm);
5129}
5130
5131static int selinux_msg_queue_associate(struct msg_queue *msq, int msqflg)
5132{
5133 struct ipc_security_struct *isec;
5134 struct common_audit_data ad;
5135 u32 sid = current_sid();
5136
5137 isec = msq->q_perm.security;
5138
5139 ad.type = LSM_AUDIT_DATA_IPC;
5140 ad.u.ipc_id = msq->q_perm.key;
5141
5142 return avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
5143 MSGQ__ASSOCIATE, &ad);
5144}
5145
5146static int selinux_msg_queue_msgctl(struct msg_queue *msq, int cmd)
5147{
5148 int err;
5149 int perms;
5150
5151 switch (cmd) {
5152 case IPC_INFO:
5153 case MSG_INFO:
5154 /* No specific object, just general system-wide information. */
5155 return task_has_system(current, SYSTEM__IPC_INFO);
5156 case IPC_STAT:
5157 case MSG_STAT:
5158 perms = MSGQ__GETATTR | MSGQ__ASSOCIATE;
5159 break;
5160 case IPC_SET:
5161 perms = MSGQ__SETATTR;
5162 break;
5163 case IPC_RMID:
5164 perms = MSGQ__DESTROY;
5165 break;
5166 default:
5167 return 0;
5168 }
5169
5170 err = ipc_has_perm(&msq->q_perm, perms);
5171 return err;
5172}
5173
5174static int selinux_msg_queue_msgsnd(struct msg_queue *msq, struct msg_msg *msg, int msqflg)
5175{
5176 struct ipc_security_struct *isec;
5177 struct msg_security_struct *msec;
5178 struct common_audit_data ad;
5179 u32 sid = current_sid();
5180 int rc;
5181
5182 isec = msq->q_perm.security;
5183 msec = msg->security;
5184
5185 /*
5186 * First time through, need to assign label to the message
5187 */
5188 if (msec->sid == SECINITSID_UNLABELED) {
5189 /*
5190 * Compute new sid based on current process and
5191 * message queue this message will be stored in
5192 */
5193 rc = security_transition_sid(sid, isec->sid, SECCLASS_MSG,
5194 NULL, &msec->sid);
5195 if (rc)
5196 return rc;
5197 }
5198
5199 ad.type = LSM_AUDIT_DATA_IPC;
5200 ad.u.ipc_id = msq->q_perm.key;
5201
5202 /* Can this process write to the queue? */
5203 rc = avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
5204 MSGQ__WRITE, &ad);
5205 if (!rc)
5206 /* Can this process send the message */
5207 rc = avc_has_perm(sid, msec->sid, SECCLASS_MSG,
5208 MSG__SEND, &ad);
5209 if (!rc)
5210 /* Can the message be put in the queue? */
5211 rc = avc_has_perm(msec->sid, isec->sid, SECCLASS_MSGQ,
5212 MSGQ__ENQUEUE, &ad);
5213
5214 return rc;
5215}
5216
5217static int selinux_msg_queue_msgrcv(struct msg_queue *msq, struct msg_msg *msg,
5218 struct task_struct *target,
5219 long type, int mode)
5220{
5221 struct ipc_security_struct *isec;
5222 struct msg_security_struct *msec;
5223 struct common_audit_data ad;
5224 u32 sid = task_sid(target);
5225 int rc;
5226
5227 isec = msq->q_perm.security;
5228 msec = msg->security;
5229
5230 ad.type = LSM_AUDIT_DATA_IPC;
5231 ad.u.ipc_id = msq->q_perm.key;
5232
5233 rc = avc_has_perm(sid, isec->sid,
5234 SECCLASS_MSGQ, MSGQ__READ, &ad);
5235 if (!rc)
5236 rc = avc_has_perm(sid, msec->sid,
5237 SECCLASS_MSG, MSG__RECEIVE, &ad);
5238 return rc;
5239}
5240
5241/* Shared Memory security operations */
5242static int selinux_shm_alloc_security(struct shmid_kernel *shp)
5243{
5244 struct ipc_security_struct *isec;
5245 struct common_audit_data ad;
5246 u32 sid = current_sid();
5247 int rc;
5248
5249 rc = ipc_alloc_security(current, &shp->shm_perm, SECCLASS_SHM);
5250 if (rc)
5251 return rc;
5252
5253 isec = shp->shm_perm.security;
5254
5255 ad.type = LSM_AUDIT_DATA_IPC;
5256 ad.u.ipc_id = shp->shm_perm.key;
5257
5258 rc = avc_has_perm(sid, isec->sid, SECCLASS_SHM,
5259 SHM__CREATE, &ad);
5260 if (rc) {
5261 ipc_free_security(&shp->shm_perm);
5262 return rc;
5263 }
5264 return 0;
5265}
5266
5267static void selinux_shm_free_security(struct shmid_kernel *shp)
5268{
5269 ipc_free_security(&shp->shm_perm);
5270}
5271
5272static int selinux_shm_associate(struct shmid_kernel *shp, int shmflg)
5273{
5274 struct ipc_security_struct *isec;
5275 struct common_audit_data ad;
5276 u32 sid = current_sid();
5277
5278 isec = shp->shm_perm.security;
5279
5280 ad.type = LSM_AUDIT_DATA_IPC;
5281 ad.u.ipc_id = shp->shm_perm.key;
5282
5283 return avc_has_perm(sid, isec->sid, SECCLASS_SHM,
5284 SHM__ASSOCIATE, &ad);
5285}
5286
5287/* Note, at this point, shp is locked down */
5288static int selinux_shm_shmctl(struct shmid_kernel *shp, int cmd)
5289{
5290 int perms;
5291 int err;
5292
5293 switch (cmd) {
5294 case IPC_INFO:
5295 case SHM_INFO:
5296 /* No specific object, just general system-wide information. */
5297 return task_has_system(current, SYSTEM__IPC_INFO);
5298 case IPC_STAT:
5299 case SHM_STAT:
5300 perms = SHM__GETATTR | SHM__ASSOCIATE;
5301 break;
5302 case IPC_SET:
5303 perms = SHM__SETATTR;
5304 break;
5305 case SHM_LOCK:
5306 case SHM_UNLOCK:
5307 perms = SHM__LOCK;
5308 break;
5309 case IPC_RMID:
5310 perms = SHM__DESTROY;
5311 break;
5312 default:
5313 return 0;
5314 }
5315
5316 err = ipc_has_perm(&shp->shm_perm, perms);
5317 return err;
5318}
5319
5320static int selinux_shm_shmat(struct shmid_kernel *shp,
5321 char __user *shmaddr, int shmflg)
5322{
5323 u32 perms;
5324
5325 if (shmflg & SHM_RDONLY)
5326 perms = SHM__READ;
5327 else
5328 perms = SHM__READ | SHM__WRITE;
5329
5330 return ipc_has_perm(&shp->shm_perm, perms);
5331}
5332
5333/* Semaphore security operations */
5334static int selinux_sem_alloc_security(struct sem_array *sma)
5335{
5336 struct ipc_security_struct *isec;
5337 struct common_audit_data ad;
5338 u32 sid = current_sid();
5339 int rc;
5340
5341 rc = ipc_alloc_security(current, &sma->sem_perm, SECCLASS_SEM);
5342 if (rc)
5343 return rc;
5344
5345 isec = sma->sem_perm.security;
5346
5347 ad.type = LSM_AUDIT_DATA_IPC;
5348 ad.u.ipc_id = sma->sem_perm.key;
5349
5350 rc = avc_has_perm(sid, isec->sid, SECCLASS_SEM,
5351 SEM__CREATE, &ad);
5352 if (rc) {
5353 ipc_free_security(&sma->sem_perm);
5354 return rc;
5355 }
5356 return 0;
5357}
5358
5359static void selinux_sem_free_security(struct sem_array *sma)
5360{
5361 ipc_free_security(&sma->sem_perm);
5362}
5363
5364static int selinux_sem_associate(struct sem_array *sma, int semflg)
5365{
5366 struct ipc_security_struct *isec;
5367 struct common_audit_data ad;
5368 u32 sid = current_sid();
5369
5370 isec = sma->sem_perm.security;
5371
5372 ad.type = LSM_AUDIT_DATA_IPC;
5373 ad.u.ipc_id = sma->sem_perm.key;
5374
5375 return avc_has_perm(sid, isec->sid, SECCLASS_SEM,
5376 SEM__ASSOCIATE, &ad);
5377}
5378
5379/* Note, at this point, sma is locked down */
5380static int selinux_sem_semctl(struct sem_array *sma, int cmd)
5381{
5382 int err;
5383 u32 perms;
5384
5385 switch (cmd) {
5386 case IPC_INFO:
5387 case SEM_INFO:
5388 /* No specific object, just general system-wide information. */
5389 return task_has_system(current, SYSTEM__IPC_INFO);
5390 case GETPID:
5391 case GETNCNT:
5392 case GETZCNT:
5393 perms = SEM__GETATTR;
5394 break;
5395 case GETVAL:
5396 case GETALL:
5397 perms = SEM__READ;
5398 break;
5399 case SETVAL:
5400 case SETALL:
5401 perms = SEM__WRITE;
5402 break;
5403 case IPC_RMID:
5404 perms = SEM__DESTROY;
5405 break;
5406 case IPC_SET:
5407 perms = SEM__SETATTR;
5408 break;
5409 case IPC_STAT:
5410 case SEM_STAT:
5411 perms = SEM__GETATTR | SEM__ASSOCIATE;
5412 break;
5413 default:
5414 return 0;
5415 }
5416
5417 err = ipc_has_perm(&sma->sem_perm, perms);
5418 return err;
5419}
5420
5421static int selinux_sem_semop(struct sem_array *sma,
5422 struct sembuf *sops, unsigned nsops, int alter)
5423{
5424 u32 perms;
5425
5426 if (alter)
5427 perms = SEM__READ | SEM__WRITE;
5428 else
5429 perms = SEM__READ;
5430
5431 return ipc_has_perm(&sma->sem_perm, perms);
5432}
5433
5434static int selinux_ipc_permission(struct kern_ipc_perm *ipcp, short flag)
5435{
5436 u32 av = 0;
5437
5438 av = 0;
5439 if (flag & S_IRUGO)
5440 av |= IPC__UNIX_READ;
5441 if (flag & S_IWUGO)
5442 av |= IPC__UNIX_WRITE;
5443
5444 if (av == 0)
5445 return 0;
5446
5447 return ipc_has_perm(ipcp, av);
5448}
5449
5450static void selinux_ipc_getsecid(struct kern_ipc_perm *ipcp, u32 *secid)
5451{
5452 struct ipc_security_struct *isec = ipcp->security;
5453 *secid = isec->sid;
5454}
5455
5456static void selinux_d_instantiate(struct dentry *dentry, struct inode *inode)
5457{
5458 if (inode)
5459 inode_doinit_with_dentry(inode, dentry);
5460}
5461
5462static int selinux_getprocattr(struct task_struct *p,
5463 char *name, char **value)
5464{
5465 const struct task_security_struct *__tsec;
5466 u32 sid;
5467 int error;
5468 unsigned len;
5469
5470 if (current != p) {
5471 error = current_has_perm(p, PROCESS__GETATTR);
5472 if (error)
5473 return error;
5474 }
5475
5476 rcu_read_lock();
5477 __tsec = __task_cred(p)->security;
5478
5479 if (!strcmp(name, "current"))
5480 sid = __tsec->sid;
5481 else if (!strcmp(name, "prev"))
5482 sid = __tsec->osid;
5483 else if (!strcmp(name, "exec"))
5484 sid = __tsec->exec_sid;
5485 else if (!strcmp(name, "fscreate"))
5486 sid = __tsec->create_sid;
5487 else if (!strcmp(name, "keycreate"))
5488 sid = __tsec->keycreate_sid;
5489 else if (!strcmp(name, "sockcreate"))
5490 sid = __tsec->sockcreate_sid;
5491 else
5492 goto invalid;
5493 rcu_read_unlock();
5494
5495 if (!sid)
5496 return 0;
5497
5498 error = security_sid_to_context(sid, value, &len);
5499 if (error)
5500 return error;
5501 return len;
5502
5503invalid:
5504 rcu_read_unlock();
5505 return -EINVAL;
5506}
5507
5508static int selinux_setprocattr(struct task_struct *p,
5509 char *name, void *value, size_t size)
5510{
5511 struct task_security_struct *tsec;
5512 struct task_struct *tracer;
5513 struct cred *new;
5514 u32 sid = 0, ptsid;
5515 int error;
5516 char *str = value;
5517
5518 if (current != p) {
5519 /* SELinux only allows a process to change its own
5520 security attributes. */
5521 return -EACCES;
5522 }
5523
5524 /*
5525 * Basic control over ability to set these attributes at all.
5526 * current == p, but we'll pass them separately in case the
5527 * above restriction is ever removed.
5528 */
5529 if (!strcmp(name, "exec"))
5530 error = current_has_perm(p, PROCESS__SETEXEC);
5531 else if (!strcmp(name, "fscreate"))
5532 error = current_has_perm(p, PROCESS__SETFSCREATE);
5533 else if (!strcmp(name, "keycreate"))
5534 error = current_has_perm(p, PROCESS__SETKEYCREATE);
5535 else if (!strcmp(name, "sockcreate"))
5536 error = current_has_perm(p, PROCESS__SETSOCKCREATE);
5537 else if (!strcmp(name, "current"))
5538 error = current_has_perm(p, PROCESS__SETCURRENT);
5539 else
5540 error = -EINVAL;
5541 if (error)
5542 return error;
5543
5544 /* Obtain a SID for the context, if one was specified. */
5545 if (size && str[1] && str[1] != '\n') {
5546 if (str[size-1] == '\n') {
5547 str[size-1] = 0;
5548 size--;
5549 }
5550 error = security_context_to_sid(value, size, &sid, GFP_KERNEL);
5551 if (error == -EINVAL && !strcmp(name, "fscreate")) {
5552 if (!capable(CAP_MAC_ADMIN)) {
5553 struct audit_buffer *ab;
5554 size_t audit_size;
5555
5556 /* We strip a nul only if it is at the end, otherwise the
5557 * context contains a nul and we should audit that */
5558 if (str[size - 1] == '\0')
5559 audit_size = size - 1;
5560 else
5561 audit_size = size;
5562 ab = audit_log_start(current->audit_context, GFP_ATOMIC, AUDIT_SELINUX_ERR);
5563 audit_log_format(ab, "op=fscreate invalid_context=");
5564 audit_log_n_untrustedstring(ab, value, audit_size);
5565 audit_log_end(ab);
5566
5567 return error;
5568 }
5569 error = security_context_to_sid_force(value, size,
5570 &sid);
5571 }
5572 if (error)
5573 return error;
5574 }
5575
5576 new = prepare_creds();
5577 if (!new)
5578 return -ENOMEM;
5579
5580 /* Permission checking based on the specified context is
5581 performed during the actual operation (execve,
5582 open/mkdir/...), when we know the full context of the
5583 operation. See selinux_bprm_set_creds for the execve
5584 checks and may_create for the file creation checks. The
5585 operation will then fail if the context is not permitted. */
5586 tsec = new->security;
5587 if (!strcmp(name, "exec")) {
5588 tsec->exec_sid = sid;
5589 } else if (!strcmp(name, "fscreate")) {
5590 tsec->create_sid = sid;
5591 } else if (!strcmp(name, "keycreate")) {
5592 error = may_create_key(sid, p);
5593 if (error)
5594 goto abort_change;
5595 tsec->keycreate_sid = sid;
5596 } else if (!strcmp(name, "sockcreate")) {
5597 tsec->sockcreate_sid = sid;
5598 } else if (!strcmp(name, "current")) {
5599 error = -EINVAL;
5600 if (sid == 0)
5601 goto abort_change;
5602
5603 /* Only allow single threaded processes to change context */
5604 error = -EPERM;
5605 if (!current_is_single_threaded()) {
5606 error = security_bounded_transition(tsec->sid, sid);
5607 if (error)
5608 goto abort_change;
5609 }
5610
5611 /* Check permissions for the transition. */
5612 error = avc_has_perm(tsec->sid, sid, SECCLASS_PROCESS,
5613 PROCESS__DYNTRANSITION, NULL);
5614 if (error)
5615 goto abort_change;
5616
5617 /* Check for ptracing, and update the task SID if ok.
5618 Otherwise, leave SID unchanged and fail. */
5619 ptsid = 0;
5620 rcu_read_lock();
5621 tracer = ptrace_parent(p);
5622 if (tracer)
5623 ptsid = task_sid(tracer);
5624 rcu_read_unlock();
5625
5626 if (tracer) {
5627 error = avc_has_perm(ptsid, sid, SECCLASS_PROCESS,
5628 PROCESS__PTRACE, NULL);
5629 if (error)
5630 goto abort_change;
5631 }
5632
5633 tsec->sid = sid;
5634 } else {
5635 error = -EINVAL;
5636 goto abort_change;
5637 }
5638
5639 commit_creds(new);
5640 return size;
5641
5642abort_change:
5643 abort_creds(new);
5644 return error;
5645}
5646
5647static int selinux_ismaclabel(const char *name)
5648{
5649 return (strcmp(name, XATTR_SELINUX_SUFFIX) == 0);
5650}
5651
5652static int selinux_secid_to_secctx(u32 secid, char **secdata, u32 *seclen)
5653{
5654 return security_sid_to_context(secid, secdata, seclen);
5655}
5656
5657static int selinux_secctx_to_secid(const char *secdata, u32 seclen, u32 *secid)
5658{
5659 return security_context_to_sid(secdata, seclen, secid, GFP_KERNEL);
5660}
5661
5662static void selinux_release_secctx(char *secdata, u32 seclen)
5663{
5664 kfree(secdata);
5665}
5666
5667/*
5668 * called with inode->i_mutex locked
5669 */
5670static int selinux_inode_notifysecctx(struct inode *inode, void *ctx, u32 ctxlen)
5671{
5672 return selinux_inode_setsecurity(inode, XATTR_SELINUX_SUFFIX, ctx, ctxlen, 0);
5673}
5674
5675/*
5676 * called with inode->i_mutex locked
5677 */
5678static int selinux_inode_setsecctx(struct dentry *dentry, void *ctx, u32 ctxlen)
5679{
5680 return __vfs_setxattr_noperm(dentry, XATTR_NAME_SELINUX, ctx, ctxlen, 0);
5681}
5682
5683static int selinux_inode_getsecctx(struct inode *inode, void **ctx, u32 *ctxlen)
5684{
5685 int len = 0;
5686 len = selinux_inode_getsecurity(inode, XATTR_SELINUX_SUFFIX,
5687 ctx, true);
5688 if (len < 0)
5689 return len;
5690 *ctxlen = len;
5691 return 0;
5692}
5693#ifdef CONFIG_KEYS
5694
5695static int selinux_key_alloc(struct key *k, const struct cred *cred,
5696 unsigned long flags)
5697{
5698 const struct task_security_struct *tsec;
5699 struct key_security_struct *ksec;
5700
5701 ksec = kzalloc(sizeof(struct key_security_struct), GFP_KERNEL);
5702 if (!ksec)
5703 return -ENOMEM;
5704
5705 tsec = cred->security;
5706 if (tsec->keycreate_sid)
5707 ksec->sid = tsec->keycreate_sid;
5708 else
5709 ksec->sid = tsec->sid;
5710
5711 k->security = ksec;
5712 return 0;
5713}
5714
5715static void selinux_key_free(struct key *k)
5716{
5717 struct key_security_struct *ksec = k->security;
5718
5719 k->security = NULL;
5720 kfree(ksec);
5721}
5722
5723static int selinux_key_permission(key_ref_t key_ref,
5724 const struct cred *cred,
5725 key_perm_t perm)
5726{
5727 struct key *key;
5728 struct key_security_struct *ksec;
5729 u32 sid;
5730
5731 /* if no specific permissions are requested, we skip the
5732 permission check. No serious, additional covert channels
5733 appear to be created. */
5734 if (perm == 0)
5735 return 0;
5736
5737 sid = cred_sid(cred);
5738
5739 key = key_ref_to_ptr(key_ref);
5740 ksec = key->security;
5741
5742 return avc_has_perm(sid, ksec->sid, SECCLASS_KEY, perm, NULL);
5743}
5744
5745static int selinux_key_getsecurity(struct key *key, char **_buffer)
5746{
5747 struct key_security_struct *ksec = key->security;
5748 char *context = NULL;
5749 unsigned len;
5750 int rc;
5751
5752 rc = security_sid_to_context(ksec->sid, &context, &len);
5753 if (!rc)
5754 rc = len;
5755 *_buffer = context;
5756 return rc;
5757}
5758
5759#endif
5760
5761static struct security_operations selinux_ops = {
5762 .name = "selinux",
5763
5764 .ptrace_access_check = selinux_ptrace_access_check,
5765 .ptrace_traceme = selinux_ptrace_traceme,
5766 .capget = selinux_capget,
5767 .capset = selinux_capset,
5768 .capable = selinux_capable,
5769 .quotactl = selinux_quotactl,
5770 .quota_on = selinux_quota_on,
5771 .syslog = selinux_syslog,
5772 .vm_enough_memory = selinux_vm_enough_memory,
5773
5774 .netlink_send = selinux_netlink_send,
5775
5776 .bprm_set_creds = selinux_bprm_set_creds,
5777 .bprm_committing_creds = selinux_bprm_committing_creds,
5778 .bprm_committed_creds = selinux_bprm_committed_creds,
5779 .bprm_secureexec = selinux_bprm_secureexec,
5780
5781 .sb_alloc_security = selinux_sb_alloc_security,
5782 .sb_free_security = selinux_sb_free_security,
5783 .sb_copy_data = selinux_sb_copy_data,
5784 .sb_remount = selinux_sb_remount,
5785 .sb_kern_mount = selinux_sb_kern_mount,
5786 .sb_show_options = selinux_sb_show_options,
5787 .sb_statfs = selinux_sb_statfs,
5788 .sb_mount = selinux_mount,
5789 .sb_umount = selinux_umount,
5790 .sb_set_mnt_opts = selinux_set_mnt_opts,
5791 .sb_clone_mnt_opts = selinux_sb_clone_mnt_opts,
5792 .sb_parse_opts_str = selinux_parse_opts_str,
5793
5794 .dentry_init_security = selinux_dentry_init_security,
5795
5796 .inode_alloc_security = selinux_inode_alloc_security,
5797 .inode_free_security = selinux_inode_free_security,
5798 .inode_init_security = selinux_inode_init_security,
5799 .inode_create = selinux_inode_create,
5800 .inode_link = selinux_inode_link,
5801 .inode_unlink = selinux_inode_unlink,
5802 .inode_symlink = selinux_inode_symlink,
5803 .inode_mkdir = selinux_inode_mkdir,
5804 .inode_rmdir = selinux_inode_rmdir,
5805 .inode_mknod = selinux_inode_mknod,
5806 .inode_rename = selinux_inode_rename,
5807 .inode_readlink = selinux_inode_readlink,
5808 .inode_follow_link = selinux_inode_follow_link,
5809 .inode_permission = selinux_inode_permission,
5810 .inode_setattr = selinux_inode_setattr,
5811 .inode_getattr = selinux_inode_getattr,
5812 .inode_setxattr = selinux_inode_setxattr,
5813 .inode_post_setxattr = selinux_inode_post_setxattr,
5814 .inode_getxattr = selinux_inode_getxattr,
5815 .inode_listxattr = selinux_inode_listxattr,
5816 .inode_removexattr = selinux_inode_removexattr,
5817 .inode_getsecurity = selinux_inode_getsecurity,
5818 .inode_setsecurity = selinux_inode_setsecurity,
5819 .inode_listsecurity = selinux_inode_listsecurity,
5820 .inode_getsecid = selinux_inode_getsecid,
5821
5822 .file_permission = selinux_file_permission,
5823 .file_alloc_security = selinux_file_alloc_security,
5824 .file_free_security = selinux_file_free_security,
5825 .file_ioctl = selinux_file_ioctl,
5826 .mmap_file = selinux_mmap_file,
5827 .mmap_addr = selinux_mmap_addr,
5828 .file_mprotect = selinux_file_mprotect,
5829 .file_lock = selinux_file_lock,
5830 .file_fcntl = selinux_file_fcntl,
5831 .file_set_fowner = selinux_file_set_fowner,
5832 .file_send_sigiotask = selinux_file_send_sigiotask,
5833 .file_receive = selinux_file_receive,
5834
5835 .file_open = selinux_file_open,
5836
5837 .task_create = selinux_task_create,
5838 .cred_alloc_blank = selinux_cred_alloc_blank,
5839 .cred_free = selinux_cred_free,
5840 .cred_prepare = selinux_cred_prepare,
5841 .cred_transfer = selinux_cred_transfer,
5842 .kernel_act_as = selinux_kernel_act_as,
5843 .kernel_create_files_as = selinux_kernel_create_files_as,
5844 .kernel_module_request = selinux_kernel_module_request,
5845 .task_setpgid = selinux_task_setpgid,
5846 .task_getpgid = selinux_task_getpgid,
5847 .task_getsid = selinux_task_getsid,
5848 .task_getsecid = selinux_task_getsecid,
5849 .task_setnice = selinux_task_setnice,
5850 .task_setioprio = selinux_task_setioprio,
5851 .task_getioprio = selinux_task_getioprio,
5852 .task_setrlimit = selinux_task_setrlimit,
5853 .task_setscheduler = selinux_task_setscheduler,
5854 .task_getscheduler = selinux_task_getscheduler,
5855 .task_movememory = selinux_task_movememory,
5856 .task_kill = selinux_task_kill,
5857 .task_wait = selinux_task_wait,
5858 .task_to_inode = selinux_task_to_inode,
5859
5860 .ipc_permission = selinux_ipc_permission,
5861 .ipc_getsecid = selinux_ipc_getsecid,
5862
5863 .msg_msg_alloc_security = selinux_msg_msg_alloc_security,
5864 .msg_msg_free_security = selinux_msg_msg_free_security,
5865
5866 .msg_queue_alloc_security = selinux_msg_queue_alloc_security,
5867 .msg_queue_free_security = selinux_msg_queue_free_security,
5868 .msg_queue_associate = selinux_msg_queue_associate,
5869 .msg_queue_msgctl = selinux_msg_queue_msgctl,
5870 .msg_queue_msgsnd = selinux_msg_queue_msgsnd,
5871 .msg_queue_msgrcv = selinux_msg_queue_msgrcv,
5872
5873 .shm_alloc_security = selinux_shm_alloc_security,
5874 .shm_free_security = selinux_shm_free_security,
5875 .shm_associate = selinux_shm_associate,
5876 .shm_shmctl = selinux_shm_shmctl,
5877 .shm_shmat = selinux_shm_shmat,
5878
5879 .sem_alloc_security = selinux_sem_alloc_security,
5880 .sem_free_security = selinux_sem_free_security,
5881 .sem_associate = selinux_sem_associate,
5882 .sem_semctl = selinux_sem_semctl,
5883 .sem_semop = selinux_sem_semop,
5884
5885 .d_instantiate = selinux_d_instantiate,
5886
5887 .getprocattr = selinux_getprocattr,
5888 .setprocattr = selinux_setprocattr,
5889
5890 .ismaclabel = selinux_ismaclabel,
5891 .secid_to_secctx = selinux_secid_to_secctx,
5892 .secctx_to_secid = selinux_secctx_to_secid,
5893 .release_secctx = selinux_release_secctx,
5894 .inode_notifysecctx = selinux_inode_notifysecctx,
5895 .inode_setsecctx = selinux_inode_setsecctx,
5896 .inode_getsecctx = selinux_inode_getsecctx,
5897
5898 .unix_stream_connect = selinux_socket_unix_stream_connect,
5899 .unix_may_send = selinux_socket_unix_may_send,
5900
5901 .socket_create = selinux_socket_create,
5902 .socket_post_create = selinux_socket_post_create,
5903 .socket_bind = selinux_socket_bind,
5904 .socket_connect = selinux_socket_connect,
5905 .socket_listen = selinux_socket_listen,
5906 .socket_accept = selinux_socket_accept,
5907 .socket_sendmsg = selinux_socket_sendmsg,
5908 .socket_recvmsg = selinux_socket_recvmsg,
5909 .socket_getsockname = selinux_socket_getsockname,
5910 .socket_getpeername = selinux_socket_getpeername,
5911 .socket_getsockopt = selinux_socket_getsockopt,
5912 .socket_setsockopt = selinux_socket_setsockopt,
5913 .socket_shutdown = selinux_socket_shutdown,
5914 .socket_sock_rcv_skb = selinux_socket_sock_rcv_skb,
5915 .socket_getpeersec_stream = selinux_socket_getpeersec_stream,
5916 .socket_getpeersec_dgram = selinux_socket_getpeersec_dgram,
5917 .sk_alloc_security = selinux_sk_alloc_security,
5918 .sk_free_security = selinux_sk_free_security,
5919 .sk_clone_security = selinux_sk_clone_security,
5920 .sk_getsecid = selinux_sk_getsecid,
5921 .sock_graft = selinux_sock_graft,
5922 .inet_conn_request = selinux_inet_conn_request,
5923 .inet_csk_clone = selinux_inet_csk_clone,
5924 .inet_conn_established = selinux_inet_conn_established,
5925 .secmark_relabel_packet = selinux_secmark_relabel_packet,
5926 .secmark_refcount_inc = selinux_secmark_refcount_inc,
5927 .secmark_refcount_dec = selinux_secmark_refcount_dec,
5928 .req_classify_flow = selinux_req_classify_flow,
5929 .tun_dev_alloc_security = selinux_tun_dev_alloc_security,
5930 .tun_dev_free_security = selinux_tun_dev_free_security,
5931 .tun_dev_create = selinux_tun_dev_create,
5932 .tun_dev_attach_queue = selinux_tun_dev_attach_queue,
5933 .tun_dev_attach = selinux_tun_dev_attach,
5934 .tun_dev_open = selinux_tun_dev_open,
5935 .skb_owned_by = selinux_skb_owned_by,
5936
5937#ifdef CONFIG_SECURITY_NETWORK_XFRM
5938 .xfrm_policy_alloc_security = selinux_xfrm_policy_alloc,
5939 .xfrm_policy_clone_security = selinux_xfrm_policy_clone,
5940 .xfrm_policy_free_security = selinux_xfrm_policy_free,
5941 .xfrm_policy_delete_security = selinux_xfrm_policy_delete,
5942 .xfrm_state_alloc = selinux_xfrm_state_alloc,
5943 .xfrm_state_alloc_acquire = selinux_xfrm_state_alloc_acquire,
5944 .xfrm_state_free_security = selinux_xfrm_state_free,
5945 .xfrm_state_delete_security = selinux_xfrm_state_delete,
5946 .xfrm_policy_lookup = selinux_xfrm_policy_lookup,
5947 .xfrm_state_pol_flow_match = selinux_xfrm_state_pol_flow_match,
5948 .xfrm_decode_session = selinux_xfrm_decode_session,
5949#endif
5950
5951#ifdef CONFIG_KEYS
5952 .key_alloc = selinux_key_alloc,
5953 .key_free = selinux_key_free,
5954 .key_permission = selinux_key_permission,
5955 .key_getsecurity = selinux_key_getsecurity,
5956#endif
5957
5958#ifdef CONFIG_AUDIT
5959 .audit_rule_init = selinux_audit_rule_init,
5960 .audit_rule_known = selinux_audit_rule_known,
5961 .audit_rule_match = selinux_audit_rule_match,
5962 .audit_rule_free = selinux_audit_rule_free,
5963#endif
5964};
5965
5966static __init int selinux_init(void)
5967{
5968 if (!security_module_enable(&selinux_ops)) {
5969 selinux_enabled = 0;
5970 return 0;
5971 }
5972
5973 if (!selinux_enabled) {
5974 printk(KERN_INFO "SELinux: Disabled at boot.\n");
5975 return 0;
5976 }
5977
5978 printk(KERN_INFO "SELinux: Initializing.\n");
5979
5980 /* Set the security state for the initial task. */
5981 cred_init_security();
5982
5983 default_noexec = !(VM_DATA_DEFAULT_FLAGS & VM_EXEC);
5984
5985 sel_inode_cache = kmem_cache_create("selinux_inode_security",
5986 sizeof(struct inode_security_struct),
5987 0, SLAB_PANIC, NULL);
5988 avc_init();
5989
5990 if (register_security(&selinux_ops))
5991 panic("SELinux: Unable to register with kernel.\n");
5992
5993 if (selinux_enforcing)
5994 printk(KERN_DEBUG "SELinux: Starting in enforcing mode\n");
5995 else
5996 printk(KERN_DEBUG "SELinux: Starting in permissive mode\n");
5997
5998 return 0;
5999}
6000
6001static void delayed_superblock_init(struct super_block *sb, void *unused)
6002{
6003 superblock_doinit(sb, NULL);
6004}
6005
6006void selinux_complete_init(void)
6007{
6008 printk(KERN_DEBUG "SELinux: Completing initialization.\n");
6009
6010 /* Set up any superblocks initialized prior to the policy load. */
6011 printk(KERN_DEBUG "SELinux: Setting up existing superblocks.\n");
6012 iterate_supers(delayed_superblock_init, NULL);
6013}
6014
6015/* SELinux requires early initialization in order to label
6016 all processes and objects when they are created. */
6017security_initcall(selinux_init);
6018
6019#if defined(CONFIG_NETFILTER)
6020
6021static struct nf_hook_ops selinux_ipv4_ops[] = {
6022 {
6023 .hook = selinux_ipv4_postroute,
6024 .owner = THIS_MODULE,
6025 .pf = NFPROTO_IPV4,
6026 .hooknum = NF_INET_POST_ROUTING,
6027 .priority = NF_IP_PRI_SELINUX_LAST,
6028 },
6029 {
6030 .hook = selinux_ipv4_forward,
6031 .owner = THIS_MODULE,
6032 .pf = NFPROTO_IPV4,
6033 .hooknum = NF_INET_FORWARD,
6034 .priority = NF_IP_PRI_SELINUX_FIRST,
6035 },
6036 {
6037 .hook = selinux_ipv4_output,
6038 .owner = THIS_MODULE,
6039 .pf = NFPROTO_IPV4,
6040 .hooknum = NF_INET_LOCAL_OUT,
6041 .priority = NF_IP_PRI_SELINUX_FIRST,
6042 }
6043};
6044
6045#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
6046
6047static struct nf_hook_ops selinux_ipv6_ops[] = {
6048 {
6049 .hook = selinux_ipv6_postroute,
6050 .owner = THIS_MODULE,
6051 .pf = NFPROTO_IPV6,
6052 .hooknum = NF_INET_POST_ROUTING,
6053 .priority = NF_IP6_PRI_SELINUX_LAST,
6054 },
6055 {
6056 .hook = selinux_ipv6_forward,
6057 .owner = THIS_MODULE,
6058 .pf = NFPROTO_IPV6,
6059 .hooknum = NF_INET_FORWARD,
6060 .priority = NF_IP6_PRI_SELINUX_FIRST,
6061 }
6062};
6063
6064#endif /* IPV6 */
6065
6066static int __init selinux_nf_ip_init(void)
6067{
6068 int err = 0;
6069
6070 if (!selinux_enabled)
6071 goto out;
6072
6073 printk(KERN_DEBUG "SELinux: Registering netfilter hooks\n");
6074
6075 err = nf_register_hooks(selinux_ipv4_ops, ARRAY_SIZE(selinux_ipv4_ops));
6076 if (err)
6077 panic("SELinux: nf_register_hooks for IPv4: error %d\n", err);
6078
6079#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
6080 err = nf_register_hooks(selinux_ipv6_ops, ARRAY_SIZE(selinux_ipv6_ops));
6081 if (err)
6082 panic("SELinux: nf_register_hooks for IPv6: error %d\n", err);
6083#endif /* IPV6 */
6084
6085out:
6086 return err;
6087}
6088
6089__initcall(selinux_nf_ip_init);
6090
6091#ifdef CONFIG_SECURITY_SELINUX_DISABLE
6092static void selinux_nf_ip_exit(void)
6093{
6094 printk(KERN_DEBUG "SELinux: Unregistering netfilter hooks\n");
6095
6096 nf_unregister_hooks(selinux_ipv4_ops, ARRAY_SIZE(selinux_ipv4_ops));
6097#if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
6098 nf_unregister_hooks(selinux_ipv6_ops, ARRAY_SIZE(selinux_ipv6_ops));
6099#endif /* IPV6 */
6100}
6101#endif
6102
6103#else /* CONFIG_NETFILTER */
6104
6105#ifdef CONFIG_SECURITY_SELINUX_DISABLE
6106#define selinux_nf_ip_exit()
6107#endif
6108
6109#endif /* CONFIG_NETFILTER */
6110
6111#ifdef CONFIG_SECURITY_SELINUX_DISABLE
6112static int selinux_disabled;
6113
6114int selinux_disable(void)
6115{
6116 if (ss_initialized) {
6117 /* Not permitted after initial policy load. */
6118 return -EINVAL;
6119 }
6120
6121 if (selinux_disabled) {
6122 /* Only do this once. */
6123 return -EINVAL;
6124 }
6125
6126 printk(KERN_INFO "SELinux: Disabled at runtime.\n");
6127
6128 selinux_disabled = 1;
6129 selinux_enabled = 0;
6130
6131 reset_security_ops();
6132
6133 /* Try to destroy the avc node cache */
6134 avc_disable();
6135
6136 /* Unregister netfilter hooks. */
6137 selinux_nf_ip_exit();
6138
6139 /* Unregister selinuxfs. */
6140 exit_sel_fs();
6141
6142 return 0;
6143}
6144#endif
1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * Security-Enhanced Linux (SELinux) security module
4 *
5 * This file contains the SELinux hook function implementations.
6 *
7 * Authors: Stephen Smalley, <stephen.smalley.work@gmail.com>
8 * Chris Vance, <cvance@nai.com>
9 * Wayne Salamon, <wsalamon@nai.com>
10 * James Morris <jmorris@redhat.com>
11 *
12 * Copyright (C) 2001,2002 Networks Associates Technology, Inc.
13 * Copyright (C) 2003-2008 Red Hat, Inc., James Morris <jmorris@redhat.com>
14 * Eric Paris <eparis@redhat.com>
15 * Copyright (C) 2004-2005 Trusted Computer Solutions, Inc.
16 * <dgoeddel@trustedcs.com>
17 * Copyright (C) 2006, 2007, 2009 Hewlett-Packard Development Company, L.P.
18 * Paul Moore <paul@paul-moore.com>
19 * Copyright (C) 2007 Hitachi Software Engineering Co., Ltd.
20 * Yuichi Nakamura <ynakam@hitachisoft.jp>
21 * Copyright (C) 2016 Mellanox Technologies
22 */
23
24#include <linux/init.h>
25#include <linux/kd.h>
26#include <linux/kernel.h>
27#include <linux/kernel_read_file.h>
28#include <linux/errno.h>
29#include <linux/sched/signal.h>
30#include <linux/sched/task.h>
31#include <linux/lsm_hooks.h>
32#include <linux/xattr.h>
33#include <linux/capability.h>
34#include <linux/unistd.h>
35#include <linux/mm.h>
36#include <linux/mman.h>
37#include <linux/slab.h>
38#include <linux/pagemap.h>
39#include <linux/proc_fs.h>
40#include <linux/swap.h>
41#include <linux/spinlock.h>
42#include <linux/syscalls.h>
43#include <linux/dcache.h>
44#include <linux/file.h>
45#include <linux/fdtable.h>
46#include <linux/namei.h>
47#include <linux/mount.h>
48#include <linux/fs_context.h>
49#include <linux/fs_parser.h>
50#include <linux/netfilter_ipv4.h>
51#include <linux/netfilter_ipv6.h>
52#include <linux/tty.h>
53#include <net/icmp.h>
54#include <net/ip.h> /* for local_port_range[] */
55#include <net/tcp.h> /* struct or_callable used in sock_rcv_skb */
56#include <net/inet_connection_sock.h>
57#include <net/net_namespace.h>
58#include <net/netlabel.h>
59#include <linux/uaccess.h>
60#include <asm/ioctls.h>
61#include <linux/atomic.h>
62#include <linux/bitops.h>
63#include <linux/interrupt.h>
64#include <linux/netdevice.h> /* for network interface checks */
65#include <net/netlink.h>
66#include <linux/tcp.h>
67#include <linux/udp.h>
68#include <linux/dccp.h>
69#include <linux/sctp.h>
70#include <net/sctp/structs.h>
71#include <linux/quota.h>
72#include <linux/un.h> /* for Unix socket types */
73#include <net/af_unix.h> /* for Unix socket types */
74#include <linux/parser.h>
75#include <linux/nfs_mount.h>
76#include <net/ipv6.h>
77#include <linux/hugetlb.h>
78#include <linux/personality.h>
79#include <linux/audit.h>
80#include <linux/string.h>
81#include <linux/mutex.h>
82#include <linux/posix-timers.h>
83#include <linux/syslog.h>
84#include <linux/user_namespace.h>
85#include <linux/export.h>
86#include <linux/msg.h>
87#include <linux/shm.h>
88#include <uapi/linux/shm.h>
89#include <linux/bpf.h>
90#include <linux/kernfs.h>
91#include <linux/stringhash.h> /* for hashlen_string() */
92#include <uapi/linux/mount.h>
93#include <linux/fsnotify.h>
94#include <linux/fanotify.h>
95#include <linux/io_uring/cmd.h>
96#include <uapi/linux/lsm.h>
97
98#include "avc.h"
99#include "objsec.h"
100#include "netif.h"
101#include "netnode.h"
102#include "netport.h"
103#include "ibpkey.h"
104#include "xfrm.h"
105#include "netlabel.h"
106#include "audit.h"
107#include "avc_ss.h"
108
109#define SELINUX_INODE_INIT_XATTRS 1
110
111struct selinux_state selinux_state;
112
113/* SECMARK reference count */
114static atomic_t selinux_secmark_refcount = ATOMIC_INIT(0);
115
116#ifdef CONFIG_SECURITY_SELINUX_DEVELOP
117static int selinux_enforcing_boot __initdata;
118
119static int __init enforcing_setup(char *str)
120{
121 unsigned long enforcing;
122 if (!kstrtoul(str, 0, &enforcing))
123 selinux_enforcing_boot = enforcing ? 1 : 0;
124 return 1;
125}
126__setup("enforcing=", enforcing_setup);
127#else
128#define selinux_enforcing_boot 1
129#endif
130
131int selinux_enabled_boot __initdata = 1;
132#ifdef CONFIG_SECURITY_SELINUX_BOOTPARAM
133static int __init selinux_enabled_setup(char *str)
134{
135 unsigned long enabled;
136 if (!kstrtoul(str, 0, &enabled))
137 selinux_enabled_boot = enabled ? 1 : 0;
138 return 1;
139}
140__setup("selinux=", selinux_enabled_setup);
141#endif
142
143static int __init checkreqprot_setup(char *str)
144{
145 unsigned long checkreqprot;
146
147 if (!kstrtoul(str, 0, &checkreqprot)) {
148 if (checkreqprot)
149 pr_err("SELinux: checkreqprot set to 1 via kernel parameter. This is no longer supported.\n");
150 }
151 return 1;
152}
153__setup("checkreqprot=", checkreqprot_setup);
154
155/**
156 * selinux_secmark_enabled - Check to see if SECMARK is currently enabled
157 *
158 * Description:
159 * This function checks the SECMARK reference counter to see if any SECMARK
160 * targets are currently configured, if the reference counter is greater than
161 * zero SECMARK is considered to be enabled. Returns true (1) if SECMARK is
162 * enabled, false (0) if SECMARK is disabled. If the always_check_network
163 * policy capability is enabled, SECMARK is always considered enabled.
164 *
165 */
166static int selinux_secmark_enabled(void)
167{
168 return (selinux_policycap_alwaysnetwork() ||
169 atomic_read(&selinux_secmark_refcount));
170}
171
172/**
173 * selinux_peerlbl_enabled - Check to see if peer labeling is currently enabled
174 *
175 * Description:
176 * This function checks if NetLabel or labeled IPSEC is enabled. Returns true
177 * (1) if any are enabled or false (0) if neither are enabled. If the
178 * always_check_network policy capability is enabled, peer labeling
179 * is always considered enabled.
180 *
181 */
182static int selinux_peerlbl_enabled(void)
183{
184 return (selinux_policycap_alwaysnetwork() ||
185 netlbl_enabled() || selinux_xfrm_enabled());
186}
187
188static int selinux_netcache_avc_callback(u32 event)
189{
190 if (event == AVC_CALLBACK_RESET) {
191 sel_netif_flush();
192 sel_netnode_flush();
193 sel_netport_flush();
194 synchronize_net();
195 }
196 return 0;
197}
198
199static int selinux_lsm_notifier_avc_callback(u32 event)
200{
201 if (event == AVC_CALLBACK_RESET) {
202 sel_ib_pkey_flush();
203 call_blocking_lsm_notifier(LSM_POLICY_CHANGE, NULL);
204 }
205
206 return 0;
207}
208
209/*
210 * initialise the security for the init task
211 */
212static void cred_init_security(void)
213{
214 struct task_security_struct *tsec;
215
216 tsec = selinux_cred(unrcu_pointer(current->real_cred));
217 tsec->osid = tsec->sid = SECINITSID_KERNEL;
218}
219
220/*
221 * get the security ID of a set of credentials
222 */
223static inline u32 cred_sid(const struct cred *cred)
224{
225 const struct task_security_struct *tsec;
226
227 tsec = selinux_cred(cred);
228 return tsec->sid;
229}
230
231static void __ad_net_init(struct common_audit_data *ad,
232 struct lsm_network_audit *net,
233 int ifindex, struct sock *sk, u16 family)
234{
235 ad->type = LSM_AUDIT_DATA_NET;
236 ad->u.net = net;
237 net->netif = ifindex;
238 net->sk = sk;
239 net->family = family;
240}
241
242static void ad_net_init_from_sk(struct common_audit_data *ad,
243 struct lsm_network_audit *net,
244 struct sock *sk)
245{
246 __ad_net_init(ad, net, 0, sk, 0);
247}
248
249static void ad_net_init_from_iif(struct common_audit_data *ad,
250 struct lsm_network_audit *net,
251 int ifindex, u16 family)
252{
253 __ad_net_init(ad, net, ifindex, NULL, family);
254}
255
256/*
257 * get the objective security ID of a task
258 */
259static inline u32 task_sid_obj(const struct task_struct *task)
260{
261 u32 sid;
262
263 rcu_read_lock();
264 sid = cred_sid(__task_cred(task));
265 rcu_read_unlock();
266 return sid;
267}
268
269static int inode_doinit_with_dentry(struct inode *inode, struct dentry *opt_dentry);
270
271/*
272 * Try reloading inode security labels that have been marked as invalid. The
273 * @may_sleep parameter indicates when sleeping and thus reloading labels is
274 * allowed; when set to false, returns -ECHILD when the label is
275 * invalid. The @dentry parameter should be set to a dentry of the inode.
276 */
277static int __inode_security_revalidate(struct inode *inode,
278 struct dentry *dentry,
279 bool may_sleep)
280{
281 struct inode_security_struct *isec = selinux_inode(inode);
282
283 might_sleep_if(may_sleep);
284
285 if (selinux_initialized() &&
286 isec->initialized != LABEL_INITIALIZED) {
287 if (!may_sleep)
288 return -ECHILD;
289
290 /*
291 * Try reloading the inode security label. This will fail if
292 * @opt_dentry is NULL and no dentry for this inode can be
293 * found; in that case, continue using the old label.
294 */
295 inode_doinit_with_dentry(inode, dentry);
296 }
297 return 0;
298}
299
300static struct inode_security_struct *inode_security_novalidate(struct inode *inode)
301{
302 return selinux_inode(inode);
303}
304
305static struct inode_security_struct *inode_security_rcu(struct inode *inode, bool rcu)
306{
307 int error;
308
309 error = __inode_security_revalidate(inode, NULL, !rcu);
310 if (error)
311 return ERR_PTR(error);
312 return selinux_inode(inode);
313}
314
315/*
316 * Get the security label of an inode.
317 */
318static struct inode_security_struct *inode_security(struct inode *inode)
319{
320 __inode_security_revalidate(inode, NULL, true);
321 return selinux_inode(inode);
322}
323
324static struct inode_security_struct *backing_inode_security_novalidate(struct dentry *dentry)
325{
326 struct inode *inode = d_backing_inode(dentry);
327
328 return selinux_inode(inode);
329}
330
331/*
332 * Get the security label of a dentry's backing inode.
333 */
334static struct inode_security_struct *backing_inode_security(struct dentry *dentry)
335{
336 struct inode *inode = d_backing_inode(dentry);
337
338 __inode_security_revalidate(inode, dentry, true);
339 return selinux_inode(inode);
340}
341
342static void inode_free_security(struct inode *inode)
343{
344 struct inode_security_struct *isec = selinux_inode(inode);
345 struct superblock_security_struct *sbsec;
346
347 if (!isec)
348 return;
349 sbsec = selinux_superblock(inode->i_sb);
350 /*
351 * As not all inode security structures are in a list, we check for
352 * empty list outside of the lock to make sure that we won't waste
353 * time taking a lock doing nothing.
354 *
355 * The list_del_init() function can be safely called more than once.
356 * It should not be possible for this function to be called with
357 * concurrent list_add(), but for better safety against future changes
358 * in the code, we use list_empty_careful() here.
359 */
360 if (!list_empty_careful(&isec->list)) {
361 spin_lock(&sbsec->isec_lock);
362 list_del_init(&isec->list);
363 spin_unlock(&sbsec->isec_lock);
364 }
365}
366
367struct selinux_mnt_opts {
368 u32 fscontext_sid;
369 u32 context_sid;
370 u32 rootcontext_sid;
371 u32 defcontext_sid;
372};
373
374static void selinux_free_mnt_opts(void *mnt_opts)
375{
376 kfree(mnt_opts);
377}
378
379enum {
380 Opt_error = -1,
381 Opt_context = 0,
382 Opt_defcontext = 1,
383 Opt_fscontext = 2,
384 Opt_rootcontext = 3,
385 Opt_seclabel = 4,
386};
387
388#define A(s, has_arg) {#s, sizeof(#s) - 1, Opt_##s, has_arg}
389static const struct {
390 const char *name;
391 int len;
392 int opt;
393 bool has_arg;
394} tokens[] = {
395 A(context, true),
396 A(fscontext, true),
397 A(defcontext, true),
398 A(rootcontext, true),
399 A(seclabel, false),
400};
401#undef A
402
403static int match_opt_prefix(char *s, int l, char **arg)
404{
405 int i;
406
407 for (i = 0; i < ARRAY_SIZE(tokens); i++) {
408 size_t len = tokens[i].len;
409 if (len > l || memcmp(s, tokens[i].name, len))
410 continue;
411 if (tokens[i].has_arg) {
412 if (len == l || s[len] != '=')
413 continue;
414 *arg = s + len + 1;
415 } else if (len != l)
416 continue;
417 return tokens[i].opt;
418 }
419 return Opt_error;
420}
421
422#define SEL_MOUNT_FAIL_MSG "SELinux: duplicate or incompatible mount options\n"
423
424static int may_context_mount_sb_relabel(u32 sid,
425 struct superblock_security_struct *sbsec,
426 const struct cred *cred)
427{
428 const struct task_security_struct *tsec = selinux_cred(cred);
429 int rc;
430
431 rc = avc_has_perm(tsec->sid, sbsec->sid, SECCLASS_FILESYSTEM,
432 FILESYSTEM__RELABELFROM, NULL);
433 if (rc)
434 return rc;
435
436 rc = avc_has_perm(tsec->sid, sid, SECCLASS_FILESYSTEM,
437 FILESYSTEM__RELABELTO, NULL);
438 return rc;
439}
440
441static int may_context_mount_inode_relabel(u32 sid,
442 struct superblock_security_struct *sbsec,
443 const struct cred *cred)
444{
445 const struct task_security_struct *tsec = selinux_cred(cred);
446 int rc;
447 rc = avc_has_perm(tsec->sid, sbsec->sid, SECCLASS_FILESYSTEM,
448 FILESYSTEM__RELABELFROM, NULL);
449 if (rc)
450 return rc;
451
452 rc = avc_has_perm(sid, sbsec->sid, SECCLASS_FILESYSTEM,
453 FILESYSTEM__ASSOCIATE, NULL);
454 return rc;
455}
456
457static int selinux_is_genfs_special_handling(struct super_block *sb)
458{
459 /* Special handling. Genfs but also in-core setxattr handler */
460 return !strcmp(sb->s_type->name, "sysfs") ||
461 !strcmp(sb->s_type->name, "pstore") ||
462 !strcmp(sb->s_type->name, "debugfs") ||
463 !strcmp(sb->s_type->name, "tracefs") ||
464 !strcmp(sb->s_type->name, "rootfs") ||
465 (selinux_policycap_cgroupseclabel() &&
466 (!strcmp(sb->s_type->name, "cgroup") ||
467 !strcmp(sb->s_type->name, "cgroup2")));
468}
469
470static int selinux_is_sblabel_mnt(struct super_block *sb)
471{
472 struct superblock_security_struct *sbsec = selinux_superblock(sb);
473
474 /*
475 * IMPORTANT: Double-check logic in this function when adding a new
476 * SECURITY_FS_USE_* definition!
477 */
478 BUILD_BUG_ON(SECURITY_FS_USE_MAX != 7);
479
480 switch (sbsec->behavior) {
481 case SECURITY_FS_USE_XATTR:
482 case SECURITY_FS_USE_TRANS:
483 case SECURITY_FS_USE_TASK:
484 case SECURITY_FS_USE_NATIVE:
485 return 1;
486
487 case SECURITY_FS_USE_GENFS:
488 return selinux_is_genfs_special_handling(sb);
489
490 /* Never allow relabeling on context mounts */
491 case SECURITY_FS_USE_MNTPOINT:
492 case SECURITY_FS_USE_NONE:
493 default:
494 return 0;
495 }
496}
497
498static int sb_check_xattr_support(struct super_block *sb)
499{
500 struct superblock_security_struct *sbsec = selinux_superblock(sb);
501 struct dentry *root = sb->s_root;
502 struct inode *root_inode = d_backing_inode(root);
503 u32 sid;
504 int rc;
505
506 /*
507 * Make sure that the xattr handler exists and that no
508 * error other than -ENODATA is returned by getxattr on
509 * the root directory. -ENODATA is ok, as this may be
510 * the first boot of the SELinux kernel before we have
511 * assigned xattr values to the filesystem.
512 */
513 if (!(root_inode->i_opflags & IOP_XATTR)) {
514 pr_warn("SELinux: (dev %s, type %s) has no xattr support\n",
515 sb->s_id, sb->s_type->name);
516 goto fallback;
517 }
518
519 rc = __vfs_getxattr(root, root_inode, XATTR_NAME_SELINUX, NULL, 0);
520 if (rc < 0 && rc != -ENODATA) {
521 if (rc == -EOPNOTSUPP) {
522 pr_warn("SELinux: (dev %s, type %s) has no security xattr handler\n",
523 sb->s_id, sb->s_type->name);
524 goto fallback;
525 } else {
526 pr_warn("SELinux: (dev %s, type %s) getxattr errno %d\n",
527 sb->s_id, sb->s_type->name, -rc);
528 return rc;
529 }
530 }
531 return 0;
532
533fallback:
534 /* No xattr support - try to fallback to genfs if possible. */
535 rc = security_genfs_sid(sb->s_type->name, "/",
536 SECCLASS_DIR, &sid);
537 if (rc)
538 return -EOPNOTSUPP;
539
540 pr_warn("SELinux: (dev %s, type %s) falling back to genfs\n",
541 sb->s_id, sb->s_type->name);
542 sbsec->behavior = SECURITY_FS_USE_GENFS;
543 sbsec->sid = sid;
544 return 0;
545}
546
547static int sb_finish_set_opts(struct super_block *sb)
548{
549 struct superblock_security_struct *sbsec = selinux_superblock(sb);
550 struct dentry *root = sb->s_root;
551 struct inode *root_inode = d_backing_inode(root);
552 int rc = 0;
553
554 if (sbsec->behavior == SECURITY_FS_USE_XATTR) {
555 rc = sb_check_xattr_support(sb);
556 if (rc)
557 return rc;
558 }
559
560 sbsec->flags |= SE_SBINITIALIZED;
561
562 /*
563 * Explicitly set or clear SBLABEL_MNT. It's not sufficient to simply
564 * leave the flag untouched because sb_clone_mnt_opts might be handing
565 * us a superblock that needs the flag to be cleared.
566 */
567 if (selinux_is_sblabel_mnt(sb))
568 sbsec->flags |= SBLABEL_MNT;
569 else
570 sbsec->flags &= ~SBLABEL_MNT;
571
572 /* Initialize the root inode. */
573 rc = inode_doinit_with_dentry(root_inode, root);
574
575 /* Initialize any other inodes associated with the superblock, e.g.
576 inodes created prior to initial policy load or inodes created
577 during get_sb by a pseudo filesystem that directly
578 populates itself. */
579 spin_lock(&sbsec->isec_lock);
580 while (!list_empty(&sbsec->isec_head)) {
581 struct inode_security_struct *isec =
582 list_first_entry(&sbsec->isec_head,
583 struct inode_security_struct, list);
584 struct inode *inode = isec->inode;
585 list_del_init(&isec->list);
586 spin_unlock(&sbsec->isec_lock);
587 inode = igrab(inode);
588 if (inode) {
589 if (!IS_PRIVATE(inode))
590 inode_doinit_with_dentry(inode, NULL);
591 iput(inode);
592 }
593 spin_lock(&sbsec->isec_lock);
594 }
595 spin_unlock(&sbsec->isec_lock);
596 return rc;
597}
598
599static int bad_option(struct superblock_security_struct *sbsec, char flag,
600 u32 old_sid, u32 new_sid)
601{
602 char mnt_flags = sbsec->flags & SE_MNTMASK;
603
604 /* check if the old mount command had the same options */
605 if (sbsec->flags & SE_SBINITIALIZED)
606 if (!(sbsec->flags & flag) ||
607 (old_sid != new_sid))
608 return 1;
609
610 /* check if we were passed the same options twice,
611 * aka someone passed context=a,context=b
612 */
613 if (!(sbsec->flags & SE_SBINITIALIZED))
614 if (mnt_flags & flag)
615 return 1;
616 return 0;
617}
618
619/*
620 * Allow filesystems with binary mount data to explicitly set mount point
621 * labeling information.
622 */
623static int selinux_set_mnt_opts(struct super_block *sb,
624 void *mnt_opts,
625 unsigned long kern_flags,
626 unsigned long *set_kern_flags)
627{
628 const struct cred *cred = current_cred();
629 struct superblock_security_struct *sbsec = selinux_superblock(sb);
630 struct dentry *root = sb->s_root;
631 struct selinux_mnt_opts *opts = mnt_opts;
632 struct inode_security_struct *root_isec;
633 u32 fscontext_sid = 0, context_sid = 0, rootcontext_sid = 0;
634 u32 defcontext_sid = 0;
635 int rc = 0;
636
637 /*
638 * Specifying internal flags without providing a place to
639 * place the results is not allowed
640 */
641 if (kern_flags && !set_kern_flags)
642 return -EINVAL;
643
644 mutex_lock(&sbsec->lock);
645
646 if (!selinux_initialized()) {
647 if (!opts) {
648 /* Defer initialization until selinux_complete_init,
649 after the initial policy is loaded and the security
650 server is ready to handle calls. */
651 if (kern_flags & SECURITY_LSM_NATIVE_LABELS) {
652 sbsec->flags |= SE_SBNATIVE;
653 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
654 }
655 goto out;
656 }
657 rc = -EINVAL;
658 pr_warn("SELinux: Unable to set superblock options "
659 "before the security server is initialized\n");
660 goto out;
661 }
662
663 /*
664 * Binary mount data FS will come through this function twice. Once
665 * from an explicit call and once from the generic calls from the vfs.
666 * Since the generic VFS calls will not contain any security mount data
667 * we need to skip the double mount verification.
668 *
669 * This does open a hole in which we will not notice if the first
670 * mount using this sb set explicit options and a second mount using
671 * this sb does not set any security options. (The first options
672 * will be used for both mounts)
673 */
674 if ((sbsec->flags & SE_SBINITIALIZED) && (sb->s_type->fs_flags & FS_BINARY_MOUNTDATA)
675 && !opts)
676 goto out;
677
678 root_isec = backing_inode_security_novalidate(root);
679
680 /*
681 * parse the mount options, check if they are valid sids.
682 * also check if someone is trying to mount the same sb more
683 * than once with different security options.
684 */
685 if (opts) {
686 if (opts->fscontext_sid) {
687 fscontext_sid = opts->fscontext_sid;
688 if (bad_option(sbsec, FSCONTEXT_MNT, sbsec->sid,
689 fscontext_sid))
690 goto out_double_mount;
691 sbsec->flags |= FSCONTEXT_MNT;
692 }
693 if (opts->context_sid) {
694 context_sid = opts->context_sid;
695 if (bad_option(sbsec, CONTEXT_MNT, sbsec->mntpoint_sid,
696 context_sid))
697 goto out_double_mount;
698 sbsec->flags |= CONTEXT_MNT;
699 }
700 if (opts->rootcontext_sid) {
701 rootcontext_sid = opts->rootcontext_sid;
702 if (bad_option(sbsec, ROOTCONTEXT_MNT, root_isec->sid,
703 rootcontext_sid))
704 goto out_double_mount;
705 sbsec->flags |= ROOTCONTEXT_MNT;
706 }
707 if (opts->defcontext_sid) {
708 defcontext_sid = opts->defcontext_sid;
709 if (bad_option(sbsec, DEFCONTEXT_MNT, sbsec->def_sid,
710 defcontext_sid))
711 goto out_double_mount;
712 sbsec->flags |= DEFCONTEXT_MNT;
713 }
714 }
715
716 if (sbsec->flags & SE_SBINITIALIZED) {
717 /* previously mounted with options, but not on this attempt? */
718 if ((sbsec->flags & SE_MNTMASK) && !opts)
719 goto out_double_mount;
720 rc = 0;
721 goto out;
722 }
723
724 if (strcmp(sb->s_type->name, "proc") == 0)
725 sbsec->flags |= SE_SBPROC | SE_SBGENFS;
726
727 if (!strcmp(sb->s_type->name, "debugfs") ||
728 !strcmp(sb->s_type->name, "tracefs") ||
729 !strcmp(sb->s_type->name, "binder") ||
730 !strcmp(sb->s_type->name, "bpf") ||
731 !strcmp(sb->s_type->name, "pstore") ||
732 !strcmp(sb->s_type->name, "securityfs"))
733 sbsec->flags |= SE_SBGENFS;
734
735 if (!strcmp(sb->s_type->name, "sysfs") ||
736 !strcmp(sb->s_type->name, "cgroup") ||
737 !strcmp(sb->s_type->name, "cgroup2"))
738 sbsec->flags |= SE_SBGENFS | SE_SBGENFS_XATTR;
739
740 if (!sbsec->behavior) {
741 /*
742 * Determine the labeling behavior to use for this
743 * filesystem type.
744 */
745 rc = security_fs_use(sb);
746 if (rc) {
747 pr_warn("%s: security_fs_use(%s) returned %d\n",
748 __func__, sb->s_type->name, rc);
749 goto out;
750 }
751 }
752
753 /*
754 * If this is a user namespace mount and the filesystem type is not
755 * explicitly whitelisted, then no contexts are allowed on the command
756 * line and security labels must be ignored.
757 */
758 if (sb->s_user_ns != &init_user_ns &&
759 strcmp(sb->s_type->name, "tmpfs") &&
760 strcmp(sb->s_type->name, "ramfs") &&
761 strcmp(sb->s_type->name, "devpts") &&
762 strcmp(sb->s_type->name, "overlay")) {
763 if (context_sid || fscontext_sid || rootcontext_sid ||
764 defcontext_sid) {
765 rc = -EACCES;
766 goto out;
767 }
768 if (sbsec->behavior == SECURITY_FS_USE_XATTR) {
769 sbsec->behavior = SECURITY_FS_USE_MNTPOINT;
770 rc = security_transition_sid(current_sid(),
771 current_sid(),
772 SECCLASS_FILE, NULL,
773 &sbsec->mntpoint_sid);
774 if (rc)
775 goto out;
776 }
777 goto out_set_opts;
778 }
779
780 /* sets the context of the superblock for the fs being mounted. */
781 if (fscontext_sid) {
782 rc = may_context_mount_sb_relabel(fscontext_sid, sbsec, cred);
783 if (rc)
784 goto out;
785
786 sbsec->sid = fscontext_sid;
787 }
788
789 /*
790 * Switch to using mount point labeling behavior.
791 * sets the label used on all file below the mountpoint, and will set
792 * the superblock context if not already set.
793 */
794 if (sbsec->flags & SE_SBNATIVE) {
795 /*
796 * This means we are initializing a superblock that has been
797 * mounted before the SELinux was initialized and the
798 * filesystem requested native labeling. We had already
799 * returned SECURITY_LSM_NATIVE_LABELS in *set_kern_flags
800 * in the original mount attempt, so now we just need to set
801 * the SECURITY_FS_USE_NATIVE behavior.
802 */
803 sbsec->behavior = SECURITY_FS_USE_NATIVE;
804 } else if (kern_flags & SECURITY_LSM_NATIVE_LABELS && !context_sid) {
805 sbsec->behavior = SECURITY_FS_USE_NATIVE;
806 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
807 }
808
809 if (context_sid) {
810 if (!fscontext_sid) {
811 rc = may_context_mount_sb_relabel(context_sid, sbsec,
812 cred);
813 if (rc)
814 goto out;
815 sbsec->sid = context_sid;
816 } else {
817 rc = may_context_mount_inode_relabel(context_sid, sbsec,
818 cred);
819 if (rc)
820 goto out;
821 }
822 if (!rootcontext_sid)
823 rootcontext_sid = context_sid;
824
825 sbsec->mntpoint_sid = context_sid;
826 sbsec->behavior = SECURITY_FS_USE_MNTPOINT;
827 }
828
829 if (rootcontext_sid) {
830 rc = may_context_mount_inode_relabel(rootcontext_sid, sbsec,
831 cred);
832 if (rc)
833 goto out;
834
835 root_isec->sid = rootcontext_sid;
836 root_isec->initialized = LABEL_INITIALIZED;
837 }
838
839 if (defcontext_sid) {
840 if (sbsec->behavior != SECURITY_FS_USE_XATTR &&
841 sbsec->behavior != SECURITY_FS_USE_NATIVE) {
842 rc = -EINVAL;
843 pr_warn("SELinux: defcontext option is "
844 "invalid for this filesystem type\n");
845 goto out;
846 }
847
848 if (defcontext_sid != sbsec->def_sid) {
849 rc = may_context_mount_inode_relabel(defcontext_sid,
850 sbsec, cred);
851 if (rc)
852 goto out;
853 }
854
855 sbsec->def_sid = defcontext_sid;
856 }
857
858out_set_opts:
859 rc = sb_finish_set_opts(sb);
860out:
861 mutex_unlock(&sbsec->lock);
862 return rc;
863out_double_mount:
864 rc = -EINVAL;
865 pr_warn("SELinux: mount invalid. Same superblock, different "
866 "security settings for (dev %s, type %s)\n", sb->s_id,
867 sb->s_type->name);
868 goto out;
869}
870
871static int selinux_cmp_sb_context(const struct super_block *oldsb,
872 const struct super_block *newsb)
873{
874 struct superblock_security_struct *old = selinux_superblock(oldsb);
875 struct superblock_security_struct *new = selinux_superblock(newsb);
876 char oldflags = old->flags & SE_MNTMASK;
877 char newflags = new->flags & SE_MNTMASK;
878
879 if (oldflags != newflags)
880 goto mismatch;
881 if ((oldflags & FSCONTEXT_MNT) && old->sid != new->sid)
882 goto mismatch;
883 if ((oldflags & CONTEXT_MNT) && old->mntpoint_sid != new->mntpoint_sid)
884 goto mismatch;
885 if ((oldflags & DEFCONTEXT_MNT) && old->def_sid != new->def_sid)
886 goto mismatch;
887 if (oldflags & ROOTCONTEXT_MNT) {
888 struct inode_security_struct *oldroot = backing_inode_security(oldsb->s_root);
889 struct inode_security_struct *newroot = backing_inode_security(newsb->s_root);
890 if (oldroot->sid != newroot->sid)
891 goto mismatch;
892 }
893 return 0;
894mismatch:
895 pr_warn("SELinux: mount invalid. Same superblock, "
896 "different security settings for (dev %s, "
897 "type %s)\n", newsb->s_id, newsb->s_type->name);
898 return -EBUSY;
899}
900
901static int selinux_sb_clone_mnt_opts(const struct super_block *oldsb,
902 struct super_block *newsb,
903 unsigned long kern_flags,
904 unsigned long *set_kern_flags)
905{
906 int rc = 0;
907 const struct superblock_security_struct *oldsbsec =
908 selinux_superblock(oldsb);
909 struct superblock_security_struct *newsbsec = selinux_superblock(newsb);
910
911 int set_fscontext = (oldsbsec->flags & FSCONTEXT_MNT);
912 int set_context = (oldsbsec->flags & CONTEXT_MNT);
913 int set_rootcontext = (oldsbsec->flags & ROOTCONTEXT_MNT);
914
915 /*
916 * Specifying internal flags without providing a place to
917 * place the results is not allowed.
918 */
919 if (kern_flags && !set_kern_flags)
920 return -EINVAL;
921
922 mutex_lock(&newsbsec->lock);
923
924 /*
925 * if the parent was able to be mounted it clearly had no special lsm
926 * mount options. thus we can safely deal with this superblock later
927 */
928 if (!selinux_initialized()) {
929 if (kern_flags & SECURITY_LSM_NATIVE_LABELS) {
930 newsbsec->flags |= SE_SBNATIVE;
931 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
932 }
933 goto out;
934 }
935
936 /* how can we clone if the old one wasn't set up?? */
937 BUG_ON(!(oldsbsec->flags & SE_SBINITIALIZED));
938
939 /* if fs is reusing a sb, make sure that the contexts match */
940 if (newsbsec->flags & SE_SBINITIALIZED) {
941 mutex_unlock(&newsbsec->lock);
942 if ((kern_flags & SECURITY_LSM_NATIVE_LABELS) && !set_context)
943 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
944 return selinux_cmp_sb_context(oldsb, newsb);
945 }
946
947 newsbsec->flags = oldsbsec->flags;
948
949 newsbsec->sid = oldsbsec->sid;
950 newsbsec->def_sid = oldsbsec->def_sid;
951 newsbsec->behavior = oldsbsec->behavior;
952
953 if (newsbsec->behavior == SECURITY_FS_USE_NATIVE &&
954 !(kern_flags & SECURITY_LSM_NATIVE_LABELS) && !set_context) {
955 rc = security_fs_use(newsb);
956 if (rc)
957 goto out;
958 }
959
960 if (kern_flags & SECURITY_LSM_NATIVE_LABELS && !set_context) {
961 newsbsec->behavior = SECURITY_FS_USE_NATIVE;
962 *set_kern_flags |= SECURITY_LSM_NATIVE_LABELS;
963 }
964
965 if (set_context) {
966 u32 sid = oldsbsec->mntpoint_sid;
967
968 if (!set_fscontext)
969 newsbsec->sid = sid;
970 if (!set_rootcontext) {
971 struct inode_security_struct *newisec = backing_inode_security(newsb->s_root);
972 newisec->sid = sid;
973 }
974 newsbsec->mntpoint_sid = sid;
975 }
976 if (set_rootcontext) {
977 const struct inode_security_struct *oldisec = backing_inode_security(oldsb->s_root);
978 struct inode_security_struct *newisec = backing_inode_security(newsb->s_root);
979
980 newisec->sid = oldisec->sid;
981 }
982
983 sb_finish_set_opts(newsb);
984out:
985 mutex_unlock(&newsbsec->lock);
986 return rc;
987}
988
989/*
990 * NOTE: the caller is responsible for freeing the memory even if on error.
991 */
992static int selinux_add_opt(int token, const char *s, void **mnt_opts)
993{
994 struct selinux_mnt_opts *opts = *mnt_opts;
995 u32 *dst_sid;
996 int rc;
997
998 if (token == Opt_seclabel)
999 /* eaten and completely ignored */
1000 return 0;
1001 if (!s)
1002 return -EINVAL;
1003
1004 if (!selinux_initialized()) {
1005 pr_warn("SELinux: Unable to set superblock options before the security server is initialized\n");
1006 return -EINVAL;
1007 }
1008
1009 if (!opts) {
1010 opts = kzalloc(sizeof(*opts), GFP_KERNEL);
1011 if (!opts)
1012 return -ENOMEM;
1013 *mnt_opts = opts;
1014 }
1015
1016 switch (token) {
1017 case Opt_context:
1018 if (opts->context_sid || opts->defcontext_sid)
1019 goto err;
1020 dst_sid = &opts->context_sid;
1021 break;
1022 case Opt_fscontext:
1023 if (opts->fscontext_sid)
1024 goto err;
1025 dst_sid = &opts->fscontext_sid;
1026 break;
1027 case Opt_rootcontext:
1028 if (opts->rootcontext_sid)
1029 goto err;
1030 dst_sid = &opts->rootcontext_sid;
1031 break;
1032 case Opt_defcontext:
1033 if (opts->context_sid || opts->defcontext_sid)
1034 goto err;
1035 dst_sid = &opts->defcontext_sid;
1036 break;
1037 default:
1038 WARN_ON(1);
1039 return -EINVAL;
1040 }
1041 rc = security_context_str_to_sid(s, dst_sid, GFP_KERNEL);
1042 if (rc)
1043 pr_warn("SELinux: security_context_str_to_sid (%s) failed with errno=%d\n",
1044 s, rc);
1045 return rc;
1046
1047err:
1048 pr_warn(SEL_MOUNT_FAIL_MSG);
1049 return -EINVAL;
1050}
1051
1052static int show_sid(struct seq_file *m, u32 sid)
1053{
1054 char *context = NULL;
1055 u32 len;
1056 int rc;
1057
1058 rc = security_sid_to_context(sid, &context, &len);
1059 if (!rc) {
1060 bool has_comma = strchr(context, ',');
1061
1062 seq_putc(m, '=');
1063 if (has_comma)
1064 seq_putc(m, '\"');
1065 seq_escape(m, context, "\"\n\\");
1066 if (has_comma)
1067 seq_putc(m, '\"');
1068 }
1069 kfree(context);
1070 return rc;
1071}
1072
1073static int selinux_sb_show_options(struct seq_file *m, struct super_block *sb)
1074{
1075 struct superblock_security_struct *sbsec = selinux_superblock(sb);
1076 int rc;
1077
1078 if (!(sbsec->flags & SE_SBINITIALIZED))
1079 return 0;
1080
1081 if (!selinux_initialized())
1082 return 0;
1083
1084 if (sbsec->flags & FSCONTEXT_MNT) {
1085 seq_putc(m, ',');
1086 seq_puts(m, FSCONTEXT_STR);
1087 rc = show_sid(m, sbsec->sid);
1088 if (rc)
1089 return rc;
1090 }
1091 if (sbsec->flags & CONTEXT_MNT) {
1092 seq_putc(m, ',');
1093 seq_puts(m, CONTEXT_STR);
1094 rc = show_sid(m, sbsec->mntpoint_sid);
1095 if (rc)
1096 return rc;
1097 }
1098 if (sbsec->flags & DEFCONTEXT_MNT) {
1099 seq_putc(m, ',');
1100 seq_puts(m, DEFCONTEXT_STR);
1101 rc = show_sid(m, sbsec->def_sid);
1102 if (rc)
1103 return rc;
1104 }
1105 if (sbsec->flags & ROOTCONTEXT_MNT) {
1106 struct dentry *root = sb->s_root;
1107 struct inode_security_struct *isec = backing_inode_security(root);
1108 seq_putc(m, ',');
1109 seq_puts(m, ROOTCONTEXT_STR);
1110 rc = show_sid(m, isec->sid);
1111 if (rc)
1112 return rc;
1113 }
1114 if (sbsec->flags & SBLABEL_MNT) {
1115 seq_putc(m, ',');
1116 seq_puts(m, SECLABEL_STR);
1117 }
1118 return 0;
1119}
1120
1121static inline u16 inode_mode_to_security_class(umode_t mode)
1122{
1123 switch (mode & S_IFMT) {
1124 case S_IFSOCK:
1125 return SECCLASS_SOCK_FILE;
1126 case S_IFLNK:
1127 return SECCLASS_LNK_FILE;
1128 case S_IFREG:
1129 return SECCLASS_FILE;
1130 case S_IFBLK:
1131 return SECCLASS_BLK_FILE;
1132 case S_IFDIR:
1133 return SECCLASS_DIR;
1134 case S_IFCHR:
1135 return SECCLASS_CHR_FILE;
1136 case S_IFIFO:
1137 return SECCLASS_FIFO_FILE;
1138
1139 }
1140
1141 return SECCLASS_FILE;
1142}
1143
1144static inline int default_protocol_stream(int protocol)
1145{
1146 return (protocol == IPPROTO_IP || protocol == IPPROTO_TCP ||
1147 protocol == IPPROTO_MPTCP);
1148}
1149
1150static inline int default_protocol_dgram(int protocol)
1151{
1152 return (protocol == IPPROTO_IP || protocol == IPPROTO_UDP);
1153}
1154
1155static inline u16 socket_type_to_security_class(int family, int type, int protocol)
1156{
1157 bool extsockclass = selinux_policycap_extsockclass();
1158
1159 switch (family) {
1160 case PF_UNIX:
1161 switch (type) {
1162 case SOCK_STREAM:
1163 case SOCK_SEQPACKET:
1164 return SECCLASS_UNIX_STREAM_SOCKET;
1165 case SOCK_DGRAM:
1166 case SOCK_RAW:
1167 return SECCLASS_UNIX_DGRAM_SOCKET;
1168 }
1169 break;
1170 case PF_INET:
1171 case PF_INET6:
1172 switch (type) {
1173 case SOCK_STREAM:
1174 case SOCK_SEQPACKET:
1175 if (default_protocol_stream(protocol))
1176 return SECCLASS_TCP_SOCKET;
1177 else if (extsockclass && protocol == IPPROTO_SCTP)
1178 return SECCLASS_SCTP_SOCKET;
1179 else
1180 return SECCLASS_RAWIP_SOCKET;
1181 case SOCK_DGRAM:
1182 if (default_protocol_dgram(protocol))
1183 return SECCLASS_UDP_SOCKET;
1184 else if (extsockclass && (protocol == IPPROTO_ICMP ||
1185 protocol == IPPROTO_ICMPV6))
1186 return SECCLASS_ICMP_SOCKET;
1187 else
1188 return SECCLASS_RAWIP_SOCKET;
1189 case SOCK_DCCP:
1190 return SECCLASS_DCCP_SOCKET;
1191 default:
1192 return SECCLASS_RAWIP_SOCKET;
1193 }
1194 break;
1195 case PF_NETLINK:
1196 switch (protocol) {
1197 case NETLINK_ROUTE:
1198 return SECCLASS_NETLINK_ROUTE_SOCKET;
1199 case NETLINK_SOCK_DIAG:
1200 return SECCLASS_NETLINK_TCPDIAG_SOCKET;
1201 case NETLINK_NFLOG:
1202 return SECCLASS_NETLINK_NFLOG_SOCKET;
1203 case NETLINK_XFRM:
1204 return SECCLASS_NETLINK_XFRM_SOCKET;
1205 case NETLINK_SELINUX:
1206 return SECCLASS_NETLINK_SELINUX_SOCKET;
1207 case NETLINK_ISCSI:
1208 return SECCLASS_NETLINK_ISCSI_SOCKET;
1209 case NETLINK_AUDIT:
1210 return SECCLASS_NETLINK_AUDIT_SOCKET;
1211 case NETLINK_FIB_LOOKUP:
1212 return SECCLASS_NETLINK_FIB_LOOKUP_SOCKET;
1213 case NETLINK_CONNECTOR:
1214 return SECCLASS_NETLINK_CONNECTOR_SOCKET;
1215 case NETLINK_NETFILTER:
1216 return SECCLASS_NETLINK_NETFILTER_SOCKET;
1217 case NETLINK_DNRTMSG:
1218 return SECCLASS_NETLINK_DNRT_SOCKET;
1219 case NETLINK_KOBJECT_UEVENT:
1220 return SECCLASS_NETLINK_KOBJECT_UEVENT_SOCKET;
1221 case NETLINK_GENERIC:
1222 return SECCLASS_NETLINK_GENERIC_SOCKET;
1223 case NETLINK_SCSITRANSPORT:
1224 return SECCLASS_NETLINK_SCSITRANSPORT_SOCKET;
1225 case NETLINK_RDMA:
1226 return SECCLASS_NETLINK_RDMA_SOCKET;
1227 case NETLINK_CRYPTO:
1228 return SECCLASS_NETLINK_CRYPTO_SOCKET;
1229 default:
1230 return SECCLASS_NETLINK_SOCKET;
1231 }
1232 case PF_PACKET:
1233 return SECCLASS_PACKET_SOCKET;
1234 case PF_KEY:
1235 return SECCLASS_KEY_SOCKET;
1236 case PF_APPLETALK:
1237 return SECCLASS_APPLETALK_SOCKET;
1238 }
1239
1240 if (extsockclass) {
1241 switch (family) {
1242 case PF_AX25:
1243 return SECCLASS_AX25_SOCKET;
1244 case PF_IPX:
1245 return SECCLASS_IPX_SOCKET;
1246 case PF_NETROM:
1247 return SECCLASS_NETROM_SOCKET;
1248 case PF_ATMPVC:
1249 return SECCLASS_ATMPVC_SOCKET;
1250 case PF_X25:
1251 return SECCLASS_X25_SOCKET;
1252 case PF_ROSE:
1253 return SECCLASS_ROSE_SOCKET;
1254 case PF_DECnet:
1255 return SECCLASS_DECNET_SOCKET;
1256 case PF_ATMSVC:
1257 return SECCLASS_ATMSVC_SOCKET;
1258 case PF_RDS:
1259 return SECCLASS_RDS_SOCKET;
1260 case PF_IRDA:
1261 return SECCLASS_IRDA_SOCKET;
1262 case PF_PPPOX:
1263 return SECCLASS_PPPOX_SOCKET;
1264 case PF_LLC:
1265 return SECCLASS_LLC_SOCKET;
1266 case PF_CAN:
1267 return SECCLASS_CAN_SOCKET;
1268 case PF_TIPC:
1269 return SECCLASS_TIPC_SOCKET;
1270 case PF_BLUETOOTH:
1271 return SECCLASS_BLUETOOTH_SOCKET;
1272 case PF_IUCV:
1273 return SECCLASS_IUCV_SOCKET;
1274 case PF_RXRPC:
1275 return SECCLASS_RXRPC_SOCKET;
1276 case PF_ISDN:
1277 return SECCLASS_ISDN_SOCKET;
1278 case PF_PHONET:
1279 return SECCLASS_PHONET_SOCKET;
1280 case PF_IEEE802154:
1281 return SECCLASS_IEEE802154_SOCKET;
1282 case PF_CAIF:
1283 return SECCLASS_CAIF_SOCKET;
1284 case PF_ALG:
1285 return SECCLASS_ALG_SOCKET;
1286 case PF_NFC:
1287 return SECCLASS_NFC_SOCKET;
1288 case PF_VSOCK:
1289 return SECCLASS_VSOCK_SOCKET;
1290 case PF_KCM:
1291 return SECCLASS_KCM_SOCKET;
1292 case PF_QIPCRTR:
1293 return SECCLASS_QIPCRTR_SOCKET;
1294 case PF_SMC:
1295 return SECCLASS_SMC_SOCKET;
1296 case PF_XDP:
1297 return SECCLASS_XDP_SOCKET;
1298 case PF_MCTP:
1299 return SECCLASS_MCTP_SOCKET;
1300#if PF_MAX > 46
1301#error New address family defined, please update this function.
1302#endif
1303 }
1304 }
1305
1306 return SECCLASS_SOCKET;
1307}
1308
1309static int selinux_genfs_get_sid(struct dentry *dentry,
1310 u16 tclass,
1311 u16 flags,
1312 u32 *sid)
1313{
1314 int rc;
1315 struct super_block *sb = dentry->d_sb;
1316 char *buffer, *path;
1317
1318 buffer = (char *)__get_free_page(GFP_KERNEL);
1319 if (!buffer)
1320 return -ENOMEM;
1321
1322 path = dentry_path_raw(dentry, buffer, PAGE_SIZE);
1323 if (IS_ERR(path))
1324 rc = PTR_ERR(path);
1325 else {
1326 if (flags & SE_SBPROC) {
1327 /* each process gets a /proc/PID/ entry. Strip off the
1328 * PID part to get a valid selinux labeling.
1329 * e.g. /proc/1/net/rpc/nfs -> /net/rpc/nfs */
1330 while (path[1] >= '0' && path[1] <= '9') {
1331 path[1] = '/';
1332 path++;
1333 }
1334 }
1335 rc = security_genfs_sid(sb->s_type->name,
1336 path, tclass, sid);
1337 if (rc == -ENOENT) {
1338 /* No match in policy, mark as unlabeled. */
1339 *sid = SECINITSID_UNLABELED;
1340 rc = 0;
1341 }
1342 }
1343 free_page((unsigned long)buffer);
1344 return rc;
1345}
1346
1347static int inode_doinit_use_xattr(struct inode *inode, struct dentry *dentry,
1348 u32 def_sid, u32 *sid)
1349{
1350#define INITCONTEXTLEN 255
1351 char *context;
1352 unsigned int len;
1353 int rc;
1354
1355 len = INITCONTEXTLEN;
1356 context = kmalloc(len + 1, GFP_NOFS);
1357 if (!context)
1358 return -ENOMEM;
1359
1360 context[len] = '\0';
1361 rc = __vfs_getxattr(dentry, inode, XATTR_NAME_SELINUX, context, len);
1362 if (rc == -ERANGE) {
1363 kfree(context);
1364
1365 /* Need a larger buffer. Query for the right size. */
1366 rc = __vfs_getxattr(dentry, inode, XATTR_NAME_SELINUX, NULL, 0);
1367 if (rc < 0)
1368 return rc;
1369
1370 len = rc;
1371 context = kmalloc(len + 1, GFP_NOFS);
1372 if (!context)
1373 return -ENOMEM;
1374
1375 context[len] = '\0';
1376 rc = __vfs_getxattr(dentry, inode, XATTR_NAME_SELINUX,
1377 context, len);
1378 }
1379 if (rc < 0) {
1380 kfree(context);
1381 if (rc != -ENODATA) {
1382 pr_warn("SELinux: %s: getxattr returned %d for dev=%s ino=%ld\n",
1383 __func__, -rc, inode->i_sb->s_id, inode->i_ino);
1384 return rc;
1385 }
1386 *sid = def_sid;
1387 return 0;
1388 }
1389
1390 rc = security_context_to_sid_default(context, rc, sid,
1391 def_sid, GFP_NOFS);
1392 if (rc) {
1393 char *dev = inode->i_sb->s_id;
1394 unsigned long ino = inode->i_ino;
1395
1396 if (rc == -EINVAL) {
1397 pr_notice_ratelimited("SELinux: inode=%lu on dev=%s was found to have an invalid context=%s. This indicates you may need to relabel the inode or the filesystem in question.\n",
1398 ino, dev, context);
1399 } else {
1400 pr_warn("SELinux: %s: context_to_sid(%s) returned %d for dev=%s ino=%ld\n",
1401 __func__, context, -rc, dev, ino);
1402 }
1403 }
1404 kfree(context);
1405 return 0;
1406}
1407
1408/* The inode's security attributes must be initialized before first use. */
1409static int inode_doinit_with_dentry(struct inode *inode, struct dentry *opt_dentry)
1410{
1411 struct superblock_security_struct *sbsec = NULL;
1412 struct inode_security_struct *isec = selinux_inode(inode);
1413 u32 task_sid, sid = 0;
1414 u16 sclass;
1415 struct dentry *dentry;
1416 int rc = 0;
1417
1418 if (isec->initialized == LABEL_INITIALIZED)
1419 return 0;
1420
1421 spin_lock(&isec->lock);
1422 if (isec->initialized == LABEL_INITIALIZED)
1423 goto out_unlock;
1424
1425 if (isec->sclass == SECCLASS_FILE)
1426 isec->sclass = inode_mode_to_security_class(inode->i_mode);
1427
1428 sbsec = selinux_superblock(inode->i_sb);
1429 if (!(sbsec->flags & SE_SBINITIALIZED)) {
1430 /* Defer initialization until selinux_complete_init,
1431 after the initial policy is loaded and the security
1432 server is ready to handle calls. */
1433 spin_lock(&sbsec->isec_lock);
1434 if (list_empty(&isec->list))
1435 list_add(&isec->list, &sbsec->isec_head);
1436 spin_unlock(&sbsec->isec_lock);
1437 goto out_unlock;
1438 }
1439
1440 sclass = isec->sclass;
1441 task_sid = isec->task_sid;
1442 sid = isec->sid;
1443 isec->initialized = LABEL_PENDING;
1444 spin_unlock(&isec->lock);
1445
1446 switch (sbsec->behavior) {
1447 /*
1448 * In case of SECURITY_FS_USE_NATIVE we need to re-fetch the labels
1449 * via xattr when called from delayed_superblock_init().
1450 */
1451 case SECURITY_FS_USE_NATIVE:
1452 case SECURITY_FS_USE_XATTR:
1453 if (!(inode->i_opflags & IOP_XATTR)) {
1454 sid = sbsec->def_sid;
1455 break;
1456 }
1457 /* Need a dentry, since the xattr API requires one.
1458 Life would be simpler if we could just pass the inode. */
1459 if (opt_dentry) {
1460 /* Called from d_instantiate or d_splice_alias. */
1461 dentry = dget(opt_dentry);
1462 } else {
1463 /*
1464 * Called from selinux_complete_init, try to find a dentry.
1465 * Some filesystems really want a connected one, so try
1466 * that first. We could split SECURITY_FS_USE_XATTR in
1467 * two, depending upon that...
1468 */
1469 dentry = d_find_alias(inode);
1470 if (!dentry)
1471 dentry = d_find_any_alias(inode);
1472 }
1473 if (!dentry) {
1474 /*
1475 * this is can be hit on boot when a file is accessed
1476 * before the policy is loaded. When we load policy we
1477 * may find inodes that have no dentry on the
1478 * sbsec->isec_head list. No reason to complain as these
1479 * will get fixed up the next time we go through
1480 * inode_doinit with a dentry, before these inodes could
1481 * be used again by userspace.
1482 */
1483 goto out_invalid;
1484 }
1485
1486 rc = inode_doinit_use_xattr(inode, dentry, sbsec->def_sid,
1487 &sid);
1488 dput(dentry);
1489 if (rc)
1490 goto out;
1491 break;
1492 case SECURITY_FS_USE_TASK:
1493 sid = task_sid;
1494 break;
1495 case SECURITY_FS_USE_TRANS:
1496 /* Default to the fs SID. */
1497 sid = sbsec->sid;
1498
1499 /* Try to obtain a transition SID. */
1500 rc = security_transition_sid(task_sid, sid,
1501 sclass, NULL, &sid);
1502 if (rc)
1503 goto out;
1504 break;
1505 case SECURITY_FS_USE_MNTPOINT:
1506 sid = sbsec->mntpoint_sid;
1507 break;
1508 default:
1509 /* Default to the fs superblock SID. */
1510 sid = sbsec->sid;
1511
1512 if ((sbsec->flags & SE_SBGENFS) &&
1513 (!S_ISLNK(inode->i_mode) ||
1514 selinux_policycap_genfs_seclabel_symlinks())) {
1515 /* We must have a dentry to determine the label on
1516 * procfs inodes */
1517 if (opt_dentry) {
1518 /* Called from d_instantiate or
1519 * d_splice_alias. */
1520 dentry = dget(opt_dentry);
1521 } else {
1522 /* Called from selinux_complete_init, try to
1523 * find a dentry. Some filesystems really want
1524 * a connected one, so try that first.
1525 */
1526 dentry = d_find_alias(inode);
1527 if (!dentry)
1528 dentry = d_find_any_alias(inode);
1529 }
1530 /*
1531 * This can be hit on boot when a file is accessed
1532 * before the policy is loaded. When we load policy we
1533 * may find inodes that have no dentry on the
1534 * sbsec->isec_head list. No reason to complain as
1535 * these will get fixed up the next time we go through
1536 * inode_doinit() with a dentry, before these inodes
1537 * could be used again by userspace.
1538 */
1539 if (!dentry)
1540 goto out_invalid;
1541 rc = selinux_genfs_get_sid(dentry, sclass,
1542 sbsec->flags, &sid);
1543 if (rc) {
1544 dput(dentry);
1545 goto out;
1546 }
1547
1548 if ((sbsec->flags & SE_SBGENFS_XATTR) &&
1549 (inode->i_opflags & IOP_XATTR)) {
1550 rc = inode_doinit_use_xattr(inode, dentry,
1551 sid, &sid);
1552 if (rc) {
1553 dput(dentry);
1554 goto out;
1555 }
1556 }
1557 dput(dentry);
1558 }
1559 break;
1560 }
1561
1562out:
1563 spin_lock(&isec->lock);
1564 if (isec->initialized == LABEL_PENDING) {
1565 if (rc) {
1566 isec->initialized = LABEL_INVALID;
1567 goto out_unlock;
1568 }
1569 isec->initialized = LABEL_INITIALIZED;
1570 isec->sid = sid;
1571 }
1572
1573out_unlock:
1574 spin_unlock(&isec->lock);
1575 return rc;
1576
1577out_invalid:
1578 spin_lock(&isec->lock);
1579 if (isec->initialized == LABEL_PENDING) {
1580 isec->initialized = LABEL_INVALID;
1581 isec->sid = sid;
1582 }
1583 spin_unlock(&isec->lock);
1584 return 0;
1585}
1586
1587/* Convert a Linux signal to an access vector. */
1588static inline u32 signal_to_av(int sig)
1589{
1590 u32 perm = 0;
1591
1592 switch (sig) {
1593 case SIGCHLD:
1594 /* Commonly granted from child to parent. */
1595 perm = PROCESS__SIGCHLD;
1596 break;
1597 case SIGKILL:
1598 /* Cannot be caught or ignored */
1599 perm = PROCESS__SIGKILL;
1600 break;
1601 case SIGSTOP:
1602 /* Cannot be caught or ignored */
1603 perm = PROCESS__SIGSTOP;
1604 break;
1605 default:
1606 /* All other signals. */
1607 perm = PROCESS__SIGNAL;
1608 break;
1609 }
1610
1611 return perm;
1612}
1613
1614#if CAP_LAST_CAP > 63
1615#error Fix SELinux to handle capabilities > 63.
1616#endif
1617
1618/* Check whether a task is allowed to use a capability. */
1619static int cred_has_capability(const struct cred *cred,
1620 int cap, unsigned int opts, bool initns)
1621{
1622 struct common_audit_data ad;
1623 struct av_decision avd;
1624 u16 sclass;
1625 u32 sid = cred_sid(cred);
1626 u32 av = CAP_TO_MASK(cap);
1627 int rc;
1628
1629 ad.type = LSM_AUDIT_DATA_CAP;
1630 ad.u.cap = cap;
1631
1632 switch (CAP_TO_INDEX(cap)) {
1633 case 0:
1634 sclass = initns ? SECCLASS_CAPABILITY : SECCLASS_CAP_USERNS;
1635 break;
1636 case 1:
1637 sclass = initns ? SECCLASS_CAPABILITY2 : SECCLASS_CAP2_USERNS;
1638 break;
1639 default:
1640 pr_err("SELinux: out of range capability %d\n", cap);
1641 BUG();
1642 return -EINVAL;
1643 }
1644
1645 rc = avc_has_perm_noaudit(sid, sid, sclass, av, 0, &avd);
1646 if (!(opts & CAP_OPT_NOAUDIT)) {
1647 int rc2 = avc_audit(sid, sid, sclass, av, &avd, rc, &ad);
1648 if (rc2)
1649 return rc2;
1650 }
1651 return rc;
1652}
1653
1654/* Check whether a task has a particular permission to an inode.
1655 The 'adp' parameter is optional and allows other audit
1656 data to be passed (e.g. the dentry). */
1657static int inode_has_perm(const struct cred *cred,
1658 struct inode *inode,
1659 u32 perms,
1660 struct common_audit_data *adp)
1661{
1662 struct inode_security_struct *isec;
1663 u32 sid;
1664
1665 if (unlikely(IS_PRIVATE(inode)))
1666 return 0;
1667
1668 sid = cred_sid(cred);
1669 isec = selinux_inode(inode);
1670
1671 return avc_has_perm(sid, isec->sid, isec->sclass, perms, adp);
1672}
1673
1674/* Same as inode_has_perm, but pass explicit audit data containing
1675 the dentry to help the auditing code to more easily generate the
1676 pathname if needed. */
1677static inline int dentry_has_perm(const struct cred *cred,
1678 struct dentry *dentry,
1679 u32 av)
1680{
1681 struct inode *inode = d_backing_inode(dentry);
1682 struct common_audit_data ad;
1683
1684 ad.type = LSM_AUDIT_DATA_DENTRY;
1685 ad.u.dentry = dentry;
1686 __inode_security_revalidate(inode, dentry, true);
1687 return inode_has_perm(cred, inode, av, &ad);
1688}
1689
1690/* Same as inode_has_perm, but pass explicit audit data containing
1691 the path to help the auditing code to more easily generate the
1692 pathname if needed. */
1693static inline int path_has_perm(const struct cred *cred,
1694 const struct path *path,
1695 u32 av)
1696{
1697 struct inode *inode = d_backing_inode(path->dentry);
1698 struct common_audit_data ad;
1699
1700 ad.type = LSM_AUDIT_DATA_PATH;
1701 ad.u.path = *path;
1702 __inode_security_revalidate(inode, path->dentry, true);
1703 return inode_has_perm(cred, inode, av, &ad);
1704}
1705
1706/* Same as path_has_perm, but uses the inode from the file struct. */
1707static inline int file_path_has_perm(const struct cred *cred,
1708 struct file *file,
1709 u32 av)
1710{
1711 struct common_audit_data ad;
1712
1713 ad.type = LSM_AUDIT_DATA_FILE;
1714 ad.u.file = file;
1715 return inode_has_perm(cred, file_inode(file), av, &ad);
1716}
1717
1718#ifdef CONFIG_BPF_SYSCALL
1719static int bpf_fd_pass(const struct file *file, u32 sid);
1720#endif
1721
1722/* Check whether a task can use an open file descriptor to
1723 access an inode in a given way. Check access to the
1724 descriptor itself, and then use dentry_has_perm to
1725 check a particular permission to the file.
1726 Access to the descriptor is implicitly granted if it
1727 has the same SID as the process. If av is zero, then
1728 access to the file is not checked, e.g. for cases
1729 where only the descriptor is affected like seek. */
1730static int file_has_perm(const struct cred *cred,
1731 struct file *file,
1732 u32 av)
1733{
1734 struct file_security_struct *fsec = selinux_file(file);
1735 struct inode *inode = file_inode(file);
1736 struct common_audit_data ad;
1737 u32 sid = cred_sid(cred);
1738 int rc;
1739
1740 ad.type = LSM_AUDIT_DATA_FILE;
1741 ad.u.file = file;
1742
1743 if (sid != fsec->sid) {
1744 rc = avc_has_perm(sid, fsec->sid,
1745 SECCLASS_FD,
1746 FD__USE,
1747 &ad);
1748 if (rc)
1749 goto out;
1750 }
1751
1752#ifdef CONFIG_BPF_SYSCALL
1753 rc = bpf_fd_pass(file, cred_sid(cred));
1754 if (rc)
1755 return rc;
1756#endif
1757
1758 /* av is zero if only checking access to the descriptor. */
1759 rc = 0;
1760 if (av)
1761 rc = inode_has_perm(cred, inode, av, &ad);
1762
1763out:
1764 return rc;
1765}
1766
1767/*
1768 * Determine the label for an inode that might be unioned.
1769 */
1770static int
1771selinux_determine_inode_label(const struct task_security_struct *tsec,
1772 struct inode *dir,
1773 const struct qstr *name, u16 tclass,
1774 u32 *_new_isid)
1775{
1776 const struct superblock_security_struct *sbsec =
1777 selinux_superblock(dir->i_sb);
1778
1779 if ((sbsec->flags & SE_SBINITIALIZED) &&
1780 (sbsec->behavior == SECURITY_FS_USE_MNTPOINT)) {
1781 *_new_isid = sbsec->mntpoint_sid;
1782 } else if ((sbsec->flags & SBLABEL_MNT) &&
1783 tsec->create_sid) {
1784 *_new_isid = tsec->create_sid;
1785 } else {
1786 const struct inode_security_struct *dsec = inode_security(dir);
1787 return security_transition_sid(tsec->sid,
1788 dsec->sid, tclass,
1789 name, _new_isid);
1790 }
1791
1792 return 0;
1793}
1794
1795/* Check whether a task can create a file. */
1796static int may_create(struct inode *dir,
1797 struct dentry *dentry,
1798 u16 tclass)
1799{
1800 const struct task_security_struct *tsec = selinux_cred(current_cred());
1801 struct inode_security_struct *dsec;
1802 struct superblock_security_struct *sbsec;
1803 u32 sid, newsid;
1804 struct common_audit_data ad;
1805 int rc;
1806
1807 dsec = inode_security(dir);
1808 sbsec = selinux_superblock(dir->i_sb);
1809
1810 sid = tsec->sid;
1811
1812 ad.type = LSM_AUDIT_DATA_DENTRY;
1813 ad.u.dentry = dentry;
1814
1815 rc = avc_has_perm(sid, dsec->sid, SECCLASS_DIR,
1816 DIR__ADD_NAME | DIR__SEARCH,
1817 &ad);
1818 if (rc)
1819 return rc;
1820
1821 rc = selinux_determine_inode_label(tsec, dir, &dentry->d_name, tclass,
1822 &newsid);
1823 if (rc)
1824 return rc;
1825
1826 rc = avc_has_perm(sid, newsid, tclass, FILE__CREATE, &ad);
1827 if (rc)
1828 return rc;
1829
1830 return avc_has_perm(newsid, sbsec->sid,
1831 SECCLASS_FILESYSTEM,
1832 FILESYSTEM__ASSOCIATE, &ad);
1833}
1834
1835#define MAY_LINK 0
1836#define MAY_UNLINK 1
1837#define MAY_RMDIR 2
1838
1839/* Check whether a task can link, unlink, or rmdir a file/directory. */
1840static int may_link(struct inode *dir,
1841 struct dentry *dentry,
1842 int kind)
1843
1844{
1845 struct inode_security_struct *dsec, *isec;
1846 struct common_audit_data ad;
1847 u32 sid = current_sid();
1848 u32 av;
1849 int rc;
1850
1851 dsec = inode_security(dir);
1852 isec = backing_inode_security(dentry);
1853
1854 ad.type = LSM_AUDIT_DATA_DENTRY;
1855 ad.u.dentry = dentry;
1856
1857 av = DIR__SEARCH;
1858 av |= (kind ? DIR__REMOVE_NAME : DIR__ADD_NAME);
1859 rc = avc_has_perm(sid, dsec->sid, SECCLASS_DIR, av, &ad);
1860 if (rc)
1861 return rc;
1862
1863 switch (kind) {
1864 case MAY_LINK:
1865 av = FILE__LINK;
1866 break;
1867 case MAY_UNLINK:
1868 av = FILE__UNLINK;
1869 break;
1870 case MAY_RMDIR:
1871 av = DIR__RMDIR;
1872 break;
1873 default:
1874 pr_warn("SELinux: %s: unrecognized kind %d\n",
1875 __func__, kind);
1876 return 0;
1877 }
1878
1879 rc = avc_has_perm(sid, isec->sid, isec->sclass, av, &ad);
1880 return rc;
1881}
1882
1883static inline int may_rename(struct inode *old_dir,
1884 struct dentry *old_dentry,
1885 struct inode *new_dir,
1886 struct dentry *new_dentry)
1887{
1888 struct inode_security_struct *old_dsec, *new_dsec, *old_isec, *new_isec;
1889 struct common_audit_data ad;
1890 u32 sid = current_sid();
1891 u32 av;
1892 int old_is_dir, new_is_dir;
1893 int rc;
1894
1895 old_dsec = inode_security(old_dir);
1896 old_isec = backing_inode_security(old_dentry);
1897 old_is_dir = d_is_dir(old_dentry);
1898 new_dsec = inode_security(new_dir);
1899
1900 ad.type = LSM_AUDIT_DATA_DENTRY;
1901
1902 ad.u.dentry = old_dentry;
1903 rc = avc_has_perm(sid, old_dsec->sid, SECCLASS_DIR,
1904 DIR__REMOVE_NAME | DIR__SEARCH, &ad);
1905 if (rc)
1906 return rc;
1907 rc = avc_has_perm(sid, old_isec->sid,
1908 old_isec->sclass, FILE__RENAME, &ad);
1909 if (rc)
1910 return rc;
1911 if (old_is_dir && new_dir != old_dir) {
1912 rc = avc_has_perm(sid, old_isec->sid,
1913 old_isec->sclass, DIR__REPARENT, &ad);
1914 if (rc)
1915 return rc;
1916 }
1917
1918 ad.u.dentry = new_dentry;
1919 av = DIR__ADD_NAME | DIR__SEARCH;
1920 if (d_is_positive(new_dentry))
1921 av |= DIR__REMOVE_NAME;
1922 rc = avc_has_perm(sid, new_dsec->sid, SECCLASS_DIR, av, &ad);
1923 if (rc)
1924 return rc;
1925 if (d_is_positive(new_dentry)) {
1926 new_isec = backing_inode_security(new_dentry);
1927 new_is_dir = d_is_dir(new_dentry);
1928 rc = avc_has_perm(sid, new_isec->sid,
1929 new_isec->sclass,
1930 (new_is_dir ? DIR__RMDIR : FILE__UNLINK), &ad);
1931 if (rc)
1932 return rc;
1933 }
1934
1935 return 0;
1936}
1937
1938/* Check whether a task can perform a filesystem operation. */
1939static int superblock_has_perm(const struct cred *cred,
1940 const struct super_block *sb,
1941 u32 perms,
1942 struct common_audit_data *ad)
1943{
1944 struct superblock_security_struct *sbsec;
1945 u32 sid = cred_sid(cred);
1946
1947 sbsec = selinux_superblock(sb);
1948 return avc_has_perm(sid, sbsec->sid, SECCLASS_FILESYSTEM, perms, ad);
1949}
1950
1951/* Convert a Linux mode and permission mask to an access vector. */
1952static inline u32 file_mask_to_av(int mode, int mask)
1953{
1954 u32 av = 0;
1955
1956 if (!S_ISDIR(mode)) {
1957 if (mask & MAY_EXEC)
1958 av |= FILE__EXECUTE;
1959 if (mask & MAY_READ)
1960 av |= FILE__READ;
1961
1962 if (mask & MAY_APPEND)
1963 av |= FILE__APPEND;
1964 else if (mask & MAY_WRITE)
1965 av |= FILE__WRITE;
1966
1967 } else {
1968 if (mask & MAY_EXEC)
1969 av |= DIR__SEARCH;
1970 if (mask & MAY_WRITE)
1971 av |= DIR__WRITE;
1972 if (mask & MAY_READ)
1973 av |= DIR__READ;
1974 }
1975
1976 return av;
1977}
1978
1979/* Convert a Linux file to an access vector. */
1980static inline u32 file_to_av(const struct file *file)
1981{
1982 u32 av = 0;
1983
1984 if (file->f_mode & FMODE_READ)
1985 av |= FILE__READ;
1986 if (file->f_mode & FMODE_WRITE) {
1987 if (file->f_flags & O_APPEND)
1988 av |= FILE__APPEND;
1989 else
1990 av |= FILE__WRITE;
1991 }
1992 if (!av) {
1993 /*
1994 * Special file opened with flags 3 for ioctl-only use.
1995 */
1996 av = FILE__IOCTL;
1997 }
1998
1999 return av;
2000}
2001
2002/*
2003 * Convert a file to an access vector and include the correct
2004 * open permission.
2005 */
2006static inline u32 open_file_to_av(struct file *file)
2007{
2008 u32 av = file_to_av(file);
2009 struct inode *inode = file_inode(file);
2010
2011 if (selinux_policycap_openperm() &&
2012 inode->i_sb->s_magic != SOCKFS_MAGIC)
2013 av |= FILE__OPEN;
2014
2015 return av;
2016}
2017
2018/* Hook functions begin here. */
2019
2020static int selinux_binder_set_context_mgr(const struct cred *mgr)
2021{
2022 return avc_has_perm(current_sid(), cred_sid(mgr), SECCLASS_BINDER,
2023 BINDER__SET_CONTEXT_MGR, NULL);
2024}
2025
2026static int selinux_binder_transaction(const struct cred *from,
2027 const struct cred *to)
2028{
2029 u32 mysid = current_sid();
2030 u32 fromsid = cred_sid(from);
2031 u32 tosid = cred_sid(to);
2032 int rc;
2033
2034 if (mysid != fromsid) {
2035 rc = avc_has_perm(mysid, fromsid, SECCLASS_BINDER,
2036 BINDER__IMPERSONATE, NULL);
2037 if (rc)
2038 return rc;
2039 }
2040
2041 return avc_has_perm(fromsid, tosid,
2042 SECCLASS_BINDER, BINDER__CALL, NULL);
2043}
2044
2045static int selinux_binder_transfer_binder(const struct cred *from,
2046 const struct cred *to)
2047{
2048 return avc_has_perm(cred_sid(from), cred_sid(to),
2049 SECCLASS_BINDER, BINDER__TRANSFER,
2050 NULL);
2051}
2052
2053static int selinux_binder_transfer_file(const struct cred *from,
2054 const struct cred *to,
2055 const struct file *file)
2056{
2057 u32 sid = cred_sid(to);
2058 struct file_security_struct *fsec = selinux_file(file);
2059 struct dentry *dentry = file->f_path.dentry;
2060 struct inode_security_struct *isec;
2061 struct common_audit_data ad;
2062 int rc;
2063
2064 ad.type = LSM_AUDIT_DATA_PATH;
2065 ad.u.path = file->f_path;
2066
2067 if (sid != fsec->sid) {
2068 rc = avc_has_perm(sid, fsec->sid,
2069 SECCLASS_FD,
2070 FD__USE,
2071 &ad);
2072 if (rc)
2073 return rc;
2074 }
2075
2076#ifdef CONFIG_BPF_SYSCALL
2077 rc = bpf_fd_pass(file, sid);
2078 if (rc)
2079 return rc;
2080#endif
2081
2082 if (unlikely(IS_PRIVATE(d_backing_inode(dentry))))
2083 return 0;
2084
2085 isec = backing_inode_security(dentry);
2086 return avc_has_perm(sid, isec->sid, isec->sclass, file_to_av(file),
2087 &ad);
2088}
2089
2090static int selinux_ptrace_access_check(struct task_struct *child,
2091 unsigned int mode)
2092{
2093 u32 sid = current_sid();
2094 u32 csid = task_sid_obj(child);
2095
2096 if (mode & PTRACE_MODE_READ)
2097 return avc_has_perm(sid, csid, SECCLASS_FILE, FILE__READ,
2098 NULL);
2099
2100 return avc_has_perm(sid, csid, SECCLASS_PROCESS, PROCESS__PTRACE,
2101 NULL);
2102}
2103
2104static int selinux_ptrace_traceme(struct task_struct *parent)
2105{
2106 return avc_has_perm(task_sid_obj(parent), task_sid_obj(current),
2107 SECCLASS_PROCESS, PROCESS__PTRACE, NULL);
2108}
2109
2110static int selinux_capget(const struct task_struct *target, kernel_cap_t *effective,
2111 kernel_cap_t *inheritable, kernel_cap_t *permitted)
2112{
2113 return avc_has_perm(current_sid(), task_sid_obj(target),
2114 SECCLASS_PROCESS, PROCESS__GETCAP, NULL);
2115}
2116
2117static int selinux_capset(struct cred *new, const struct cred *old,
2118 const kernel_cap_t *effective,
2119 const kernel_cap_t *inheritable,
2120 const kernel_cap_t *permitted)
2121{
2122 return avc_has_perm(cred_sid(old), cred_sid(new), SECCLASS_PROCESS,
2123 PROCESS__SETCAP, NULL);
2124}
2125
2126/*
2127 * (This comment used to live with the selinux_task_setuid hook,
2128 * which was removed).
2129 *
2130 * Since setuid only affects the current process, and since the SELinux
2131 * controls are not based on the Linux identity attributes, SELinux does not
2132 * need to control this operation. However, SELinux does control the use of
2133 * the CAP_SETUID and CAP_SETGID capabilities using the capable hook.
2134 */
2135
2136static int selinux_capable(const struct cred *cred, struct user_namespace *ns,
2137 int cap, unsigned int opts)
2138{
2139 return cred_has_capability(cred, cap, opts, ns == &init_user_ns);
2140}
2141
2142static int selinux_quotactl(int cmds, int type, int id, const struct super_block *sb)
2143{
2144 const struct cred *cred = current_cred();
2145 int rc = 0;
2146
2147 if (!sb)
2148 return 0;
2149
2150 switch (cmds) {
2151 case Q_SYNC:
2152 case Q_QUOTAON:
2153 case Q_QUOTAOFF:
2154 case Q_SETINFO:
2155 case Q_SETQUOTA:
2156 case Q_XQUOTAOFF:
2157 case Q_XQUOTAON:
2158 case Q_XSETQLIM:
2159 rc = superblock_has_perm(cred, sb, FILESYSTEM__QUOTAMOD, NULL);
2160 break;
2161 case Q_GETFMT:
2162 case Q_GETINFO:
2163 case Q_GETQUOTA:
2164 case Q_XGETQUOTA:
2165 case Q_XGETQSTAT:
2166 case Q_XGETQSTATV:
2167 case Q_XGETNEXTQUOTA:
2168 rc = superblock_has_perm(cred, sb, FILESYSTEM__QUOTAGET, NULL);
2169 break;
2170 default:
2171 rc = 0; /* let the kernel handle invalid cmds */
2172 break;
2173 }
2174 return rc;
2175}
2176
2177static int selinux_quota_on(struct dentry *dentry)
2178{
2179 const struct cred *cred = current_cred();
2180
2181 return dentry_has_perm(cred, dentry, FILE__QUOTAON);
2182}
2183
2184static int selinux_syslog(int type)
2185{
2186 switch (type) {
2187 case SYSLOG_ACTION_READ_ALL: /* Read last kernel messages */
2188 case SYSLOG_ACTION_SIZE_BUFFER: /* Return size of the log buffer */
2189 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
2190 SECCLASS_SYSTEM, SYSTEM__SYSLOG_READ, NULL);
2191 case SYSLOG_ACTION_CONSOLE_OFF: /* Disable logging to console */
2192 case SYSLOG_ACTION_CONSOLE_ON: /* Enable logging to console */
2193 /* Set level of messages printed to console */
2194 case SYSLOG_ACTION_CONSOLE_LEVEL:
2195 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
2196 SECCLASS_SYSTEM, SYSTEM__SYSLOG_CONSOLE,
2197 NULL);
2198 }
2199 /* All other syslog types */
2200 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
2201 SECCLASS_SYSTEM, SYSTEM__SYSLOG_MOD, NULL);
2202}
2203
2204/*
2205 * Check that a process has enough memory to allocate a new virtual
2206 * mapping. 0 means there is enough memory for the allocation to
2207 * succeed and -ENOMEM implies there is not.
2208 *
2209 * Do not audit the selinux permission check, as this is applied to all
2210 * processes that allocate mappings.
2211 */
2212static int selinux_vm_enough_memory(struct mm_struct *mm, long pages)
2213{
2214 int rc, cap_sys_admin = 0;
2215
2216 rc = cred_has_capability(current_cred(), CAP_SYS_ADMIN,
2217 CAP_OPT_NOAUDIT, true);
2218 if (rc == 0)
2219 cap_sys_admin = 1;
2220
2221 return cap_sys_admin;
2222}
2223
2224/* binprm security operations */
2225
2226static u32 ptrace_parent_sid(void)
2227{
2228 u32 sid = 0;
2229 struct task_struct *tracer;
2230
2231 rcu_read_lock();
2232 tracer = ptrace_parent(current);
2233 if (tracer)
2234 sid = task_sid_obj(tracer);
2235 rcu_read_unlock();
2236
2237 return sid;
2238}
2239
2240static int check_nnp_nosuid(const struct linux_binprm *bprm,
2241 const struct task_security_struct *old_tsec,
2242 const struct task_security_struct *new_tsec)
2243{
2244 int nnp = (bprm->unsafe & LSM_UNSAFE_NO_NEW_PRIVS);
2245 int nosuid = !mnt_may_suid(bprm->file->f_path.mnt);
2246 int rc;
2247 u32 av;
2248
2249 if (!nnp && !nosuid)
2250 return 0; /* neither NNP nor nosuid */
2251
2252 if (new_tsec->sid == old_tsec->sid)
2253 return 0; /* No change in credentials */
2254
2255 /*
2256 * If the policy enables the nnp_nosuid_transition policy capability,
2257 * then we permit transitions under NNP or nosuid if the
2258 * policy allows the corresponding permission between
2259 * the old and new contexts.
2260 */
2261 if (selinux_policycap_nnp_nosuid_transition()) {
2262 av = 0;
2263 if (nnp)
2264 av |= PROCESS2__NNP_TRANSITION;
2265 if (nosuid)
2266 av |= PROCESS2__NOSUID_TRANSITION;
2267 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2268 SECCLASS_PROCESS2, av, NULL);
2269 if (!rc)
2270 return 0;
2271 }
2272
2273 /*
2274 * We also permit NNP or nosuid transitions to bounded SIDs,
2275 * i.e. SIDs that are guaranteed to only be allowed a subset
2276 * of the permissions of the current SID.
2277 */
2278 rc = security_bounded_transition(old_tsec->sid,
2279 new_tsec->sid);
2280 if (!rc)
2281 return 0;
2282
2283 /*
2284 * On failure, preserve the errno values for NNP vs nosuid.
2285 * NNP: Operation not permitted for caller.
2286 * nosuid: Permission denied to file.
2287 */
2288 if (nnp)
2289 return -EPERM;
2290 return -EACCES;
2291}
2292
2293static int selinux_bprm_creds_for_exec(struct linux_binprm *bprm)
2294{
2295 const struct task_security_struct *old_tsec;
2296 struct task_security_struct *new_tsec;
2297 struct inode_security_struct *isec;
2298 struct common_audit_data ad;
2299 struct inode *inode = file_inode(bprm->file);
2300 int rc;
2301
2302 /* SELinux context only depends on initial program or script and not
2303 * the script interpreter */
2304
2305 old_tsec = selinux_cred(current_cred());
2306 new_tsec = selinux_cred(bprm->cred);
2307 isec = inode_security(inode);
2308
2309 /* Default to the current task SID. */
2310 new_tsec->sid = old_tsec->sid;
2311 new_tsec->osid = old_tsec->sid;
2312
2313 /* Reset fs, key, and sock SIDs on execve. */
2314 new_tsec->create_sid = 0;
2315 new_tsec->keycreate_sid = 0;
2316 new_tsec->sockcreate_sid = 0;
2317
2318 /*
2319 * Before policy is loaded, label any task outside kernel space
2320 * as SECINITSID_INIT, so that any userspace tasks surviving from
2321 * early boot end up with a label different from SECINITSID_KERNEL
2322 * (if the policy chooses to set SECINITSID_INIT != SECINITSID_KERNEL).
2323 */
2324 if (!selinux_initialized()) {
2325 new_tsec->sid = SECINITSID_INIT;
2326 /* also clear the exec_sid just in case */
2327 new_tsec->exec_sid = 0;
2328 return 0;
2329 }
2330
2331 if (old_tsec->exec_sid) {
2332 new_tsec->sid = old_tsec->exec_sid;
2333 /* Reset exec SID on execve. */
2334 new_tsec->exec_sid = 0;
2335
2336 /* Fail on NNP or nosuid if not an allowed transition. */
2337 rc = check_nnp_nosuid(bprm, old_tsec, new_tsec);
2338 if (rc)
2339 return rc;
2340 } else {
2341 /* Check for a default transition on this program. */
2342 rc = security_transition_sid(old_tsec->sid,
2343 isec->sid, SECCLASS_PROCESS, NULL,
2344 &new_tsec->sid);
2345 if (rc)
2346 return rc;
2347
2348 /*
2349 * Fallback to old SID on NNP or nosuid if not an allowed
2350 * transition.
2351 */
2352 rc = check_nnp_nosuid(bprm, old_tsec, new_tsec);
2353 if (rc)
2354 new_tsec->sid = old_tsec->sid;
2355 }
2356
2357 ad.type = LSM_AUDIT_DATA_FILE;
2358 ad.u.file = bprm->file;
2359
2360 if (new_tsec->sid == old_tsec->sid) {
2361 rc = avc_has_perm(old_tsec->sid, isec->sid,
2362 SECCLASS_FILE, FILE__EXECUTE_NO_TRANS, &ad);
2363 if (rc)
2364 return rc;
2365 } else {
2366 /* Check permissions for the transition. */
2367 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2368 SECCLASS_PROCESS, PROCESS__TRANSITION, &ad);
2369 if (rc)
2370 return rc;
2371
2372 rc = avc_has_perm(new_tsec->sid, isec->sid,
2373 SECCLASS_FILE, FILE__ENTRYPOINT, &ad);
2374 if (rc)
2375 return rc;
2376
2377 /* Check for shared state */
2378 if (bprm->unsafe & LSM_UNSAFE_SHARE) {
2379 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2380 SECCLASS_PROCESS, PROCESS__SHARE,
2381 NULL);
2382 if (rc)
2383 return -EPERM;
2384 }
2385
2386 /* Make sure that anyone attempting to ptrace over a task that
2387 * changes its SID has the appropriate permit */
2388 if (bprm->unsafe & LSM_UNSAFE_PTRACE) {
2389 u32 ptsid = ptrace_parent_sid();
2390 if (ptsid != 0) {
2391 rc = avc_has_perm(ptsid, new_tsec->sid,
2392 SECCLASS_PROCESS,
2393 PROCESS__PTRACE, NULL);
2394 if (rc)
2395 return -EPERM;
2396 }
2397 }
2398
2399 /* Clear any possibly unsafe personality bits on exec: */
2400 bprm->per_clear |= PER_CLEAR_ON_SETID;
2401
2402 /* Enable secure mode for SIDs transitions unless
2403 the noatsecure permission is granted between
2404 the two SIDs, i.e. ahp returns 0. */
2405 rc = avc_has_perm(old_tsec->sid, new_tsec->sid,
2406 SECCLASS_PROCESS, PROCESS__NOATSECURE,
2407 NULL);
2408 bprm->secureexec |= !!rc;
2409 }
2410
2411 return 0;
2412}
2413
2414static int match_file(const void *p, struct file *file, unsigned fd)
2415{
2416 return file_has_perm(p, file, file_to_av(file)) ? fd + 1 : 0;
2417}
2418
2419/* Derived from fs/exec.c:flush_old_files. */
2420static inline void flush_unauthorized_files(const struct cred *cred,
2421 struct files_struct *files)
2422{
2423 struct file *file, *devnull = NULL;
2424 struct tty_struct *tty;
2425 int drop_tty = 0;
2426 unsigned n;
2427
2428 tty = get_current_tty();
2429 if (tty) {
2430 spin_lock(&tty->files_lock);
2431 if (!list_empty(&tty->tty_files)) {
2432 struct tty_file_private *file_priv;
2433
2434 /* Revalidate access to controlling tty.
2435 Use file_path_has_perm on the tty path directly
2436 rather than using file_has_perm, as this particular
2437 open file may belong to another process and we are
2438 only interested in the inode-based check here. */
2439 file_priv = list_first_entry(&tty->tty_files,
2440 struct tty_file_private, list);
2441 file = file_priv->file;
2442 if (file_path_has_perm(cred, file, FILE__READ | FILE__WRITE))
2443 drop_tty = 1;
2444 }
2445 spin_unlock(&tty->files_lock);
2446 tty_kref_put(tty);
2447 }
2448 /* Reset controlling tty. */
2449 if (drop_tty)
2450 no_tty();
2451
2452 /* Revalidate access to inherited open files. */
2453 n = iterate_fd(files, 0, match_file, cred);
2454 if (!n) /* none found? */
2455 return;
2456
2457 devnull = dentry_open(&selinux_null, O_RDWR, cred);
2458 if (IS_ERR(devnull))
2459 devnull = NULL;
2460 /* replace all the matching ones with this */
2461 do {
2462 replace_fd(n - 1, devnull, 0);
2463 } while ((n = iterate_fd(files, n, match_file, cred)) != 0);
2464 if (devnull)
2465 fput(devnull);
2466}
2467
2468/*
2469 * Prepare a process for imminent new credential changes due to exec
2470 */
2471static void selinux_bprm_committing_creds(const struct linux_binprm *bprm)
2472{
2473 struct task_security_struct *new_tsec;
2474 struct rlimit *rlim, *initrlim;
2475 int rc, i;
2476
2477 new_tsec = selinux_cred(bprm->cred);
2478 if (new_tsec->sid == new_tsec->osid)
2479 return;
2480
2481 /* Close files for which the new task SID is not authorized. */
2482 flush_unauthorized_files(bprm->cred, current->files);
2483
2484 /* Always clear parent death signal on SID transitions. */
2485 current->pdeath_signal = 0;
2486
2487 /* Check whether the new SID can inherit resource limits from the old
2488 * SID. If not, reset all soft limits to the lower of the current
2489 * task's hard limit and the init task's soft limit.
2490 *
2491 * Note that the setting of hard limits (even to lower them) can be
2492 * controlled by the setrlimit check. The inclusion of the init task's
2493 * soft limit into the computation is to avoid resetting soft limits
2494 * higher than the default soft limit for cases where the default is
2495 * lower than the hard limit, e.g. RLIMIT_CORE or RLIMIT_STACK.
2496 */
2497 rc = avc_has_perm(new_tsec->osid, new_tsec->sid, SECCLASS_PROCESS,
2498 PROCESS__RLIMITINH, NULL);
2499 if (rc) {
2500 /* protect against do_prlimit() */
2501 task_lock(current);
2502 for (i = 0; i < RLIM_NLIMITS; i++) {
2503 rlim = current->signal->rlim + i;
2504 initrlim = init_task.signal->rlim + i;
2505 rlim->rlim_cur = min(rlim->rlim_max, initrlim->rlim_cur);
2506 }
2507 task_unlock(current);
2508 if (IS_ENABLED(CONFIG_POSIX_TIMERS))
2509 update_rlimit_cpu(current, rlimit(RLIMIT_CPU));
2510 }
2511}
2512
2513/*
2514 * Clean up the process immediately after the installation of new credentials
2515 * due to exec
2516 */
2517static void selinux_bprm_committed_creds(const struct linux_binprm *bprm)
2518{
2519 const struct task_security_struct *tsec = selinux_cred(current_cred());
2520 u32 osid, sid;
2521 int rc;
2522
2523 osid = tsec->osid;
2524 sid = tsec->sid;
2525
2526 if (sid == osid)
2527 return;
2528
2529 /* Check whether the new SID can inherit signal state from the old SID.
2530 * If not, clear itimers to avoid subsequent signal generation and
2531 * flush and unblock signals.
2532 *
2533 * This must occur _after_ the task SID has been updated so that any
2534 * kill done after the flush will be checked against the new SID.
2535 */
2536 rc = avc_has_perm(osid, sid, SECCLASS_PROCESS, PROCESS__SIGINH, NULL);
2537 if (rc) {
2538 clear_itimer();
2539
2540 spin_lock_irq(&unrcu_pointer(current->sighand)->siglock);
2541 if (!fatal_signal_pending(current)) {
2542 flush_sigqueue(¤t->pending);
2543 flush_sigqueue(¤t->signal->shared_pending);
2544 flush_signal_handlers(current, 1);
2545 sigemptyset(¤t->blocked);
2546 recalc_sigpending();
2547 }
2548 spin_unlock_irq(&unrcu_pointer(current->sighand)->siglock);
2549 }
2550
2551 /* Wake up the parent if it is waiting so that it can recheck
2552 * wait permission to the new task SID. */
2553 read_lock(&tasklist_lock);
2554 __wake_up_parent(current, unrcu_pointer(current->real_parent));
2555 read_unlock(&tasklist_lock);
2556}
2557
2558/* superblock security operations */
2559
2560static int selinux_sb_alloc_security(struct super_block *sb)
2561{
2562 struct superblock_security_struct *sbsec = selinux_superblock(sb);
2563
2564 mutex_init(&sbsec->lock);
2565 INIT_LIST_HEAD(&sbsec->isec_head);
2566 spin_lock_init(&sbsec->isec_lock);
2567 sbsec->sid = SECINITSID_UNLABELED;
2568 sbsec->def_sid = SECINITSID_FILE;
2569 sbsec->mntpoint_sid = SECINITSID_UNLABELED;
2570
2571 return 0;
2572}
2573
2574static inline int opt_len(const char *s)
2575{
2576 bool open_quote = false;
2577 int len;
2578 char c;
2579
2580 for (len = 0; (c = s[len]) != '\0'; len++) {
2581 if (c == '"')
2582 open_quote = !open_quote;
2583 if (c == ',' && !open_quote)
2584 break;
2585 }
2586 return len;
2587}
2588
2589static int selinux_sb_eat_lsm_opts(char *options, void **mnt_opts)
2590{
2591 char *from = options;
2592 char *to = options;
2593 bool first = true;
2594 int rc;
2595
2596 while (1) {
2597 int len = opt_len(from);
2598 int token;
2599 char *arg = NULL;
2600
2601 token = match_opt_prefix(from, len, &arg);
2602
2603 if (token != Opt_error) {
2604 char *p, *q;
2605
2606 /* strip quotes */
2607 if (arg) {
2608 for (p = q = arg; p < from + len; p++) {
2609 char c = *p;
2610 if (c != '"')
2611 *q++ = c;
2612 }
2613 arg = kmemdup_nul(arg, q - arg, GFP_KERNEL);
2614 if (!arg) {
2615 rc = -ENOMEM;
2616 goto free_opt;
2617 }
2618 }
2619 rc = selinux_add_opt(token, arg, mnt_opts);
2620 kfree(arg);
2621 arg = NULL;
2622 if (unlikely(rc)) {
2623 goto free_opt;
2624 }
2625 } else {
2626 if (!first) { // copy with preceding comma
2627 from--;
2628 len++;
2629 }
2630 if (to != from)
2631 memmove(to, from, len);
2632 to += len;
2633 first = false;
2634 }
2635 if (!from[len])
2636 break;
2637 from += len + 1;
2638 }
2639 *to = '\0';
2640 return 0;
2641
2642free_opt:
2643 if (*mnt_opts) {
2644 selinux_free_mnt_opts(*mnt_opts);
2645 *mnt_opts = NULL;
2646 }
2647 return rc;
2648}
2649
2650static int selinux_sb_mnt_opts_compat(struct super_block *sb, void *mnt_opts)
2651{
2652 struct selinux_mnt_opts *opts = mnt_opts;
2653 struct superblock_security_struct *sbsec = selinux_superblock(sb);
2654
2655 /*
2656 * Superblock not initialized (i.e. no options) - reject if any
2657 * options specified, otherwise accept.
2658 */
2659 if (!(sbsec->flags & SE_SBINITIALIZED))
2660 return opts ? 1 : 0;
2661
2662 /*
2663 * Superblock initialized and no options specified - reject if
2664 * superblock has any options set, otherwise accept.
2665 */
2666 if (!opts)
2667 return (sbsec->flags & SE_MNTMASK) ? 1 : 0;
2668
2669 if (opts->fscontext_sid) {
2670 if (bad_option(sbsec, FSCONTEXT_MNT, sbsec->sid,
2671 opts->fscontext_sid))
2672 return 1;
2673 }
2674 if (opts->context_sid) {
2675 if (bad_option(sbsec, CONTEXT_MNT, sbsec->mntpoint_sid,
2676 opts->context_sid))
2677 return 1;
2678 }
2679 if (opts->rootcontext_sid) {
2680 struct inode_security_struct *root_isec;
2681
2682 root_isec = backing_inode_security(sb->s_root);
2683 if (bad_option(sbsec, ROOTCONTEXT_MNT, root_isec->sid,
2684 opts->rootcontext_sid))
2685 return 1;
2686 }
2687 if (opts->defcontext_sid) {
2688 if (bad_option(sbsec, DEFCONTEXT_MNT, sbsec->def_sid,
2689 opts->defcontext_sid))
2690 return 1;
2691 }
2692 return 0;
2693}
2694
2695static int selinux_sb_remount(struct super_block *sb, void *mnt_opts)
2696{
2697 struct selinux_mnt_opts *opts = mnt_opts;
2698 struct superblock_security_struct *sbsec = selinux_superblock(sb);
2699
2700 if (!(sbsec->flags & SE_SBINITIALIZED))
2701 return 0;
2702
2703 if (!opts)
2704 return 0;
2705
2706 if (opts->fscontext_sid) {
2707 if (bad_option(sbsec, FSCONTEXT_MNT, sbsec->sid,
2708 opts->fscontext_sid))
2709 goto out_bad_option;
2710 }
2711 if (opts->context_sid) {
2712 if (bad_option(sbsec, CONTEXT_MNT, sbsec->mntpoint_sid,
2713 opts->context_sid))
2714 goto out_bad_option;
2715 }
2716 if (opts->rootcontext_sid) {
2717 struct inode_security_struct *root_isec;
2718 root_isec = backing_inode_security(sb->s_root);
2719 if (bad_option(sbsec, ROOTCONTEXT_MNT, root_isec->sid,
2720 opts->rootcontext_sid))
2721 goto out_bad_option;
2722 }
2723 if (opts->defcontext_sid) {
2724 if (bad_option(sbsec, DEFCONTEXT_MNT, sbsec->def_sid,
2725 opts->defcontext_sid))
2726 goto out_bad_option;
2727 }
2728 return 0;
2729
2730out_bad_option:
2731 pr_warn("SELinux: unable to change security options "
2732 "during remount (dev %s, type=%s)\n", sb->s_id,
2733 sb->s_type->name);
2734 return -EINVAL;
2735}
2736
2737static int selinux_sb_kern_mount(const struct super_block *sb)
2738{
2739 const struct cred *cred = current_cred();
2740 struct common_audit_data ad;
2741
2742 ad.type = LSM_AUDIT_DATA_DENTRY;
2743 ad.u.dentry = sb->s_root;
2744 return superblock_has_perm(cred, sb, FILESYSTEM__MOUNT, &ad);
2745}
2746
2747static int selinux_sb_statfs(struct dentry *dentry)
2748{
2749 const struct cred *cred = current_cred();
2750 struct common_audit_data ad;
2751
2752 ad.type = LSM_AUDIT_DATA_DENTRY;
2753 ad.u.dentry = dentry->d_sb->s_root;
2754 return superblock_has_perm(cred, dentry->d_sb, FILESYSTEM__GETATTR, &ad);
2755}
2756
2757static int selinux_mount(const char *dev_name,
2758 const struct path *path,
2759 const char *type,
2760 unsigned long flags,
2761 void *data)
2762{
2763 const struct cred *cred = current_cred();
2764
2765 if (flags & MS_REMOUNT)
2766 return superblock_has_perm(cred, path->dentry->d_sb,
2767 FILESYSTEM__REMOUNT, NULL);
2768 else
2769 return path_has_perm(cred, path, FILE__MOUNTON);
2770}
2771
2772static int selinux_move_mount(const struct path *from_path,
2773 const struct path *to_path)
2774{
2775 const struct cred *cred = current_cred();
2776
2777 return path_has_perm(cred, to_path, FILE__MOUNTON);
2778}
2779
2780static int selinux_umount(struct vfsmount *mnt, int flags)
2781{
2782 const struct cred *cred = current_cred();
2783
2784 return superblock_has_perm(cred, mnt->mnt_sb,
2785 FILESYSTEM__UNMOUNT, NULL);
2786}
2787
2788static int selinux_fs_context_submount(struct fs_context *fc,
2789 struct super_block *reference)
2790{
2791 const struct superblock_security_struct *sbsec = selinux_superblock(reference);
2792 struct selinux_mnt_opts *opts;
2793
2794 /*
2795 * Ensure that fc->security remains NULL when no options are set
2796 * as expected by selinux_set_mnt_opts().
2797 */
2798 if (!(sbsec->flags & (FSCONTEXT_MNT|CONTEXT_MNT|DEFCONTEXT_MNT)))
2799 return 0;
2800
2801 opts = kzalloc(sizeof(*opts), GFP_KERNEL);
2802 if (!opts)
2803 return -ENOMEM;
2804
2805 if (sbsec->flags & FSCONTEXT_MNT)
2806 opts->fscontext_sid = sbsec->sid;
2807 if (sbsec->flags & CONTEXT_MNT)
2808 opts->context_sid = sbsec->mntpoint_sid;
2809 if (sbsec->flags & DEFCONTEXT_MNT)
2810 opts->defcontext_sid = sbsec->def_sid;
2811 fc->security = opts;
2812 return 0;
2813}
2814
2815static int selinux_fs_context_dup(struct fs_context *fc,
2816 struct fs_context *src_fc)
2817{
2818 const struct selinux_mnt_opts *src = src_fc->security;
2819
2820 if (!src)
2821 return 0;
2822
2823 fc->security = kmemdup(src, sizeof(*src), GFP_KERNEL);
2824 return fc->security ? 0 : -ENOMEM;
2825}
2826
2827static const struct fs_parameter_spec selinux_fs_parameters[] = {
2828 fsparam_string(CONTEXT_STR, Opt_context),
2829 fsparam_string(DEFCONTEXT_STR, Opt_defcontext),
2830 fsparam_string(FSCONTEXT_STR, Opt_fscontext),
2831 fsparam_string(ROOTCONTEXT_STR, Opt_rootcontext),
2832 fsparam_flag (SECLABEL_STR, Opt_seclabel),
2833 {}
2834};
2835
2836static int selinux_fs_context_parse_param(struct fs_context *fc,
2837 struct fs_parameter *param)
2838{
2839 struct fs_parse_result result;
2840 int opt;
2841
2842 opt = fs_parse(fc, selinux_fs_parameters, param, &result);
2843 if (opt < 0)
2844 return opt;
2845
2846 return selinux_add_opt(opt, param->string, &fc->security);
2847}
2848
2849/* inode security operations */
2850
2851static int selinux_inode_alloc_security(struct inode *inode)
2852{
2853 struct inode_security_struct *isec = selinux_inode(inode);
2854 u32 sid = current_sid();
2855
2856 spin_lock_init(&isec->lock);
2857 INIT_LIST_HEAD(&isec->list);
2858 isec->inode = inode;
2859 isec->sid = SECINITSID_UNLABELED;
2860 isec->sclass = SECCLASS_FILE;
2861 isec->task_sid = sid;
2862 isec->initialized = LABEL_INVALID;
2863
2864 return 0;
2865}
2866
2867static void selinux_inode_free_security(struct inode *inode)
2868{
2869 inode_free_security(inode);
2870}
2871
2872static int selinux_dentry_init_security(struct dentry *dentry, int mode,
2873 const struct qstr *name,
2874 const char **xattr_name, void **ctx,
2875 u32 *ctxlen)
2876{
2877 u32 newsid;
2878 int rc;
2879
2880 rc = selinux_determine_inode_label(selinux_cred(current_cred()),
2881 d_inode(dentry->d_parent), name,
2882 inode_mode_to_security_class(mode),
2883 &newsid);
2884 if (rc)
2885 return rc;
2886
2887 if (xattr_name)
2888 *xattr_name = XATTR_NAME_SELINUX;
2889
2890 return security_sid_to_context(newsid, (char **)ctx,
2891 ctxlen);
2892}
2893
2894static int selinux_dentry_create_files_as(struct dentry *dentry, int mode,
2895 struct qstr *name,
2896 const struct cred *old,
2897 struct cred *new)
2898{
2899 u32 newsid;
2900 int rc;
2901 struct task_security_struct *tsec;
2902
2903 rc = selinux_determine_inode_label(selinux_cred(old),
2904 d_inode(dentry->d_parent), name,
2905 inode_mode_to_security_class(mode),
2906 &newsid);
2907 if (rc)
2908 return rc;
2909
2910 tsec = selinux_cred(new);
2911 tsec->create_sid = newsid;
2912 return 0;
2913}
2914
2915static int selinux_inode_init_security(struct inode *inode, struct inode *dir,
2916 const struct qstr *qstr,
2917 struct xattr *xattrs, int *xattr_count)
2918{
2919 const struct task_security_struct *tsec = selinux_cred(current_cred());
2920 struct superblock_security_struct *sbsec;
2921 struct xattr *xattr = lsm_get_xattr_slot(xattrs, xattr_count);
2922 u32 newsid, clen;
2923 u16 newsclass;
2924 int rc;
2925 char *context;
2926
2927 sbsec = selinux_superblock(dir->i_sb);
2928
2929 newsid = tsec->create_sid;
2930 newsclass = inode_mode_to_security_class(inode->i_mode);
2931 rc = selinux_determine_inode_label(tsec, dir, qstr, newsclass, &newsid);
2932 if (rc)
2933 return rc;
2934
2935 /* Possibly defer initialization to selinux_complete_init. */
2936 if (sbsec->flags & SE_SBINITIALIZED) {
2937 struct inode_security_struct *isec = selinux_inode(inode);
2938 isec->sclass = newsclass;
2939 isec->sid = newsid;
2940 isec->initialized = LABEL_INITIALIZED;
2941 }
2942
2943 if (!selinux_initialized() ||
2944 !(sbsec->flags & SBLABEL_MNT))
2945 return -EOPNOTSUPP;
2946
2947 if (xattr) {
2948 rc = security_sid_to_context_force(newsid,
2949 &context, &clen);
2950 if (rc)
2951 return rc;
2952 xattr->value = context;
2953 xattr->value_len = clen;
2954 xattr->name = XATTR_SELINUX_SUFFIX;
2955 }
2956
2957 return 0;
2958}
2959
2960static int selinux_inode_init_security_anon(struct inode *inode,
2961 const struct qstr *name,
2962 const struct inode *context_inode)
2963{
2964 const struct task_security_struct *tsec = selinux_cred(current_cred());
2965 struct common_audit_data ad;
2966 struct inode_security_struct *isec;
2967 int rc;
2968
2969 if (unlikely(!selinux_initialized()))
2970 return 0;
2971
2972 isec = selinux_inode(inode);
2973
2974 /*
2975 * We only get here once per ephemeral inode. The inode has
2976 * been initialized via inode_alloc_security but is otherwise
2977 * untouched.
2978 */
2979
2980 if (context_inode) {
2981 struct inode_security_struct *context_isec =
2982 selinux_inode(context_inode);
2983 if (context_isec->initialized != LABEL_INITIALIZED) {
2984 pr_err("SELinux: context_inode is not initialized\n");
2985 return -EACCES;
2986 }
2987
2988 isec->sclass = context_isec->sclass;
2989 isec->sid = context_isec->sid;
2990 } else {
2991 isec->sclass = SECCLASS_ANON_INODE;
2992 rc = security_transition_sid(
2993 tsec->sid, tsec->sid,
2994 isec->sclass, name, &isec->sid);
2995 if (rc)
2996 return rc;
2997 }
2998
2999 isec->initialized = LABEL_INITIALIZED;
3000 /*
3001 * Now that we've initialized security, check whether we're
3002 * allowed to actually create this type of anonymous inode.
3003 */
3004
3005 ad.type = LSM_AUDIT_DATA_ANONINODE;
3006 ad.u.anonclass = name ? (const char *)name->name : "?";
3007
3008 return avc_has_perm(tsec->sid,
3009 isec->sid,
3010 isec->sclass,
3011 FILE__CREATE,
3012 &ad);
3013}
3014
3015static int selinux_inode_create(struct inode *dir, struct dentry *dentry, umode_t mode)
3016{
3017 return may_create(dir, dentry, SECCLASS_FILE);
3018}
3019
3020static int selinux_inode_link(struct dentry *old_dentry, struct inode *dir, struct dentry *new_dentry)
3021{
3022 return may_link(dir, old_dentry, MAY_LINK);
3023}
3024
3025static int selinux_inode_unlink(struct inode *dir, struct dentry *dentry)
3026{
3027 return may_link(dir, dentry, MAY_UNLINK);
3028}
3029
3030static int selinux_inode_symlink(struct inode *dir, struct dentry *dentry, const char *name)
3031{
3032 return may_create(dir, dentry, SECCLASS_LNK_FILE);
3033}
3034
3035static int selinux_inode_mkdir(struct inode *dir, struct dentry *dentry, umode_t mask)
3036{
3037 return may_create(dir, dentry, SECCLASS_DIR);
3038}
3039
3040static int selinux_inode_rmdir(struct inode *dir, struct dentry *dentry)
3041{
3042 return may_link(dir, dentry, MAY_RMDIR);
3043}
3044
3045static int selinux_inode_mknod(struct inode *dir, struct dentry *dentry, umode_t mode, dev_t dev)
3046{
3047 return may_create(dir, dentry, inode_mode_to_security_class(mode));
3048}
3049
3050static int selinux_inode_rename(struct inode *old_inode, struct dentry *old_dentry,
3051 struct inode *new_inode, struct dentry *new_dentry)
3052{
3053 return may_rename(old_inode, old_dentry, new_inode, new_dentry);
3054}
3055
3056static int selinux_inode_readlink(struct dentry *dentry)
3057{
3058 const struct cred *cred = current_cred();
3059
3060 return dentry_has_perm(cred, dentry, FILE__READ);
3061}
3062
3063static int selinux_inode_follow_link(struct dentry *dentry, struct inode *inode,
3064 bool rcu)
3065{
3066 const struct cred *cred = current_cred();
3067 struct common_audit_data ad;
3068 struct inode_security_struct *isec;
3069 u32 sid;
3070
3071 ad.type = LSM_AUDIT_DATA_DENTRY;
3072 ad.u.dentry = dentry;
3073 sid = cred_sid(cred);
3074 isec = inode_security_rcu(inode, rcu);
3075 if (IS_ERR(isec))
3076 return PTR_ERR(isec);
3077
3078 return avc_has_perm(sid, isec->sid, isec->sclass, FILE__READ, &ad);
3079}
3080
3081static noinline int audit_inode_permission(struct inode *inode,
3082 u32 perms, u32 audited, u32 denied,
3083 int result)
3084{
3085 struct common_audit_data ad;
3086 struct inode_security_struct *isec = selinux_inode(inode);
3087
3088 ad.type = LSM_AUDIT_DATA_INODE;
3089 ad.u.inode = inode;
3090
3091 return slow_avc_audit(current_sid(), isec->sid, isec->sclass, perms,
3092 audited, denied, result, &ad);
3093}
3094
3095static int selinux_inode_permission(struct inode *inode, int mask)
3096{
3097 const struct cred *cred = current_cred();
3098 u32 perms;
3099 bool from_access;
3100 bool no_block = mask & MAY_NOT_BLOCK;
3101 struct inode_security_struct *isec;
3102 u32 sid;
3103 struct av_decision avd;
3104 int rc, rc2;
3105 u32 audited, denied;
3106
3107 from_access = mask & MAY_ACCESS;
3108 mask &= (MAY_READ|MAY_WRITE|MAY_EXEC|MAY_APPEND);
3109
3110 /* No permission to check. Existence test. */
3111 if (!mask)
3112 return 0;
3113
3114 if (unlikely(IS_PRIVATE(inode)))
3115 return 0;
3116
3117 perms = file_mask_to_av(inode->i_mode, mask);
3118
3119 sid = cred_sid(cred);
3120 isec = inode_security_rcu(inode, no_block);
3121 if (IS_ERR(isec))
3122 return PTR_ERR(isec);
3123
3124 rc = avc_has_perm_noaudit(sid, isec->sid, isec->sclass, perms, 0,
3125 &avd);
3126 audited = avc_audit_required(perms, &avd, rc,
3127 from_access ? FILE__AUDIT_ACCESS : 0,
3128 &denied);
3129 if (likely(!audited))
3130 return rc;
3131
3132 rc2 = audit_inode_permission(inode, perms, audited, denied, rc);
3133 if (rc2)
3134 return rc2;
3135 return rc;
3136}
3137
3138static int selinux_inode_setattr(struct mnt_idmap *idmap, struct dentry *dentry,
3139 struct iattr *iattr)
3140{
3141 const struct cred *cred = current_cred();
3142 struct inode *inode = d_backing_inode(dentry);
3143 unsigned int ia_valid = iattr->ia_valid;
3144 __u32 av = FILE__WRITE;
3145
3146 /* ATTR_FORCE is just used for ATTR_KILL_S[UG]ID. */
3147 if (ia_valid & ATTR_FORCE) {
3148 ia_valid &= ~(ATTR_KILL_SUID | ATTR_KILL_SGID | ATTR_MODE |
3149 ATTR_FORCE);
3150 if (!ia_valid)
3151 return 0;
3152 }
3153
3154 if (ia_valid & (ATTR_MODE | ATTR_UID | ATTR_GID |
3155 ATTR_ATIME_SET | ATTR_MTIME_SET | ATTR_TIMES_SET))
3156 return dentry_has_perm(cred, dentry, FILE__SETATTR);
3157
3158 if (selinux_policycap_openperm() &&
3159 inode->i_sb->s_magic != SOCKFS_MAGIC &&
3160 (ia_valid & ATTR_SIZE) &&
3161 !(ia_valid & ATTR_FILE))
3162 av |= FILE__OPEN;
3163
3164 return dentry_has_perm(cred, dentry, av);
3165}
3166
3167static int selinux_inode_getattr(const struct path *path)
3168{
3169 return path_has_perm(current_cred(), path, FILE__GETATTR);
3170}
3171
3172static bool has_cap_mac_admin(bool audit)
3173{
3174 const struct cred *cred = current_cred();
3175 unsigned int opts = audit ? CAP_OPT_NONE : CAP_OPT_NOAUDIT;
3176
3177 if (cap_capable(cred, &init_user_ns, CAP_MAC_ADMIN, opts))
3178 return false;
3179 if (cred_has_capability(cred, CAP_MAC_ADMIN, opts, true))
3180 return false;
3181 return true;
3182}
3183
3184static int selinux_inode_setxattr(struct mnt_idmap *idmap,
3185 struct dentry *dentry, const char *name,
3186 const void *value, size_t size, int flags)
3187{
3188 struct inode *inode = d_backing_inode(dentry);
3189 struct inode_security_struct *isec;
3190 struct superblock_security_struct *sbsec;
3191 struct common_audit_data ad;
3192 u32 newsid, sid = current_sid();
3193 int rc = 0;
3194
3195 if (strcmp(name, XATTR_NAME_SELINUX)) {
3196 rc = cap_inode_setxattr(dentry, name, value, size, flags);
3197 if (rc)
3198 return rc;
3199
3200 /* Not an attribute we recognize, so just check the
3201 ordinary setattr permission. */
3202 return dentry_has_perm(current_cred(), dentry, FILE__SETATTR);
3203 }
3204
3205 if (!selinux_initialized())
3206 return (inode_owner_or_capable(idmap, inode) ? 0 : -EPERM);
3207
3208 sbsec = selinux_superblock(inode->i_sb);
3209 if (!(sbsec->flags & SBLABEL_MNT))
3210 return -EOPNOTSUPP;
3211
3212 if (!inode_owner_or_capable(idmap, inode))
3213 return -EPERM;
3214
3215 ad.type = LSM_AUDIT_DATA_DENTRY;
3216 ad.u.dentry = dentry;
3217
3218 isec = backing_inode_security(dentry);
3219 rc = avc_has_perm(sid, isec->sid, isec->sclass,
3220 FILE__RELABELFROM, &ad);
3221 if (rc)
3222 return rc;
3223
3224 rc = security_context_to_sid(value, size, &newsid,
3225 GFP_KERNEL);
3226 if (rc == -EINVAL) {
3227 if (!has_cap_mac_admin(true)) {
3228 struct audit_buffer *ab;
3229 size_t audit_size;
3230
3231 /* We strip a nul only if it is at the end, otherwise the
3232 * context contains a nul and we should audit that */
3233 if (value) {
3234 const char *str = value;
3235
3236 if (str[size - 1] == '\0')
3237 audit_size = size - 1;
3238 else
3239 audit_size = size;
3240 } else {
3241 audit_size = 0;
3242 }
3243 ab = audit_log_start(audit_context(),
3244 GFP_ATOMIC, AUDIT_SELINUX_ERR);
3245 if (!ab)
3246 return rc;
3247 audit_log_format(ab, "op=setxattr invalid_context=");
3248 audit_log_n_untrustedstring(ab, value, audit_size);
3249 audit_log_end(ab);
3250
3251 return rc;
3252 }
3253 rc = security_context_to_sid_force(value,
3254 size, &newsid);
3255 }
3256 if (rc)
3257 return rc;
3258
3259 rc = avc_has_perm(sid, newsid, isec->sclass,
3260 FILE__RELABELTO, &ad);
3261 if (rc)
3262 return rc;
3263
3264 rc = security_validate_transition(isec->sid, newsid,
3265 sid, isec->sclass);
3266 if (rc)
3267 return rc;
3268
3269 return avc_has_perm(newsid,
3270 sbsec->sid,
3271 SECCLASS_FILESYSTEM,
3272 FILESYSTEM__ASSOCIATE,
3273 &ad);
3274}
3275
3276static int selinux_inode_set_acl(struct mnt_idmap *idmap,
3277 struct dentry *dentry, const char *acl_name,
3278 struct posix_acl *kacl)
3279{
3280 return dentry_has_perm(current_cred(), dentry, FILE__SETATTR);
3281}
3282
3283static int selinux_inode_get_acl(struct mnt_idmap *idmap,
3284 struct dentry *dentry, const char *acl_name)
3285{
3286 return dentry_has_perm(current_cred(), dentry, FILE__GETATTR);
3287}
3288
3289static int selinux_inode_remove_acl(struct mnt_idmap *idmap,
3290 struct dentry *dentry, const char *acl_name)
3291{
3292 return dentry_has_perm(current_cred(), dentry, FILE__SETATTR);
3293}
3294
3295static void selinux_inode_post_setxattr(struct dentry *dentry, const char *name,
3296 const void *value, size_t size,
3297 int flags)
3298{
3299 struct inode *inode = d_backing_inode(dentry);
3300 struct inode_security_struct *isec;
3301 u32 newsid;
3302 int rc;
3303
3304 if (strcmp(name, XATTR_NAME_SELINUX)) {
3305 /* Not an attribute we recognize, so nothing to do. */
3306 return;
3307 }
3308
3309 if (!selinux_initialized()) {
3310 /* If we haven't even been initialized, then we can't validate
3311 * against a policy, so leave the label as invalid. It may
3312 * resolve to a valid label on the next revalidation try if
3313 * we've since initialized.
3314 */
3315 return;
3316 }
3317
3318 rc = security_context_to_sid_force(value, size,
3319 &newsid);
3320 if (rc) {
3321 pr_err("SELinux: unable to map context to SID"
3322 "for (%s, %lu), rc=%d\n",
3323 inode->i_sb->s_id, inode->i_ino, -rc);
3324 return;
3325 }
3326
3327 isec = backing_inode_security(dentry);
3328 spin_lock(&isec->lock);
3329 isec->sclass = inode_mode_to_security_class(inode->i_mode);
3330 isec->sid = newsid;
3331 isec->initialized = LABEL_INITIALIZED;
3332 spin_unlock(&isec->lock);
3333}
3334
3335static int selinux_inode_getxattr(struct dentry *dentry, const char *name)
3336{
3337 const struct cred *cred = current_cred();
3338
3339 return dentry_has_perm(cred, dentry, FILE__GETATTR);
3340}
3341
3342static int selinux_inode_listxattr(struct dentry *dentry)
3343{
3344 const struct cred *cred = current_cred();
3345
3346 return dentry_has_perm(cred, dentry, FILE__GETATTR);
3347}
3348
3349static int selinux_inode_removexattr(struct mnt_idmap *idmap,
3350 struct dentry *dentry, const char *name)
3351{
3352 if (strcmp(name, XATTR_NAME_SELINUX)) {
3353 int rc = cap_inode_removexattr(idmap, dentry, name);
3354 if (rc)
3355 return rc;
3356
3357 /* Not an attribute we recognize, so just check the
3358 ordinary setattr permission. */
3359 return dentry_has_perm(current_cred(), dentry, FILE__SETATTR);
3360 }
3361
3362 if (!selinux_initialized())
3363 return 0;
3364
3365 /* No one is allowed to remove a SELinux security label.
3366 You can change the label, but all data must be labeled. */
3367 return -EACCES;
3368}
3369
3370static int selinux_path_notify(const struct path *path, u64 mask,
3371 unsigned int obj_type)
3372{
3373 int ret;
3374 u32 perm;
3375
3376 struct common_audit_data ad;
3377
3378 ad.type = LSM_AUDIT_DATA_PATH;
3379 ad.u.path = *path;
3380
3381 /*
3382 * Set permission needed based on the type of mark being set.
3383 * Performs an additional check for sb watches.
3384 */
3385 switch (obj_type) {
3386 case FSNOTIFY_OBJ_TYPE_VFSMOUNT:
3387 perm = FILE__WATCH_MOUNT;
3388 break;
3389 case FSNOTIFY_OBJ_TYPE_SB:
3390 perm = FILE__WATCH_SB;
3391 ret = superblock_has_perm(current_cred(), path->dentry->d_sb,
3392 FILESYSTEM__WATCH, &ad);
3393 if (ret)
3394 return ret;
3395 break;
3396 case FSNOTIFY_OBJ_TYPE_INODE:
3397 perm = FILE__WATCH;
3398 break;
3399 default:
3400 return -EINVAL;
3401 }
3402
3403 /* blocking watches require the file:watch_with_perm permission */
3404 if (mask & (ALL_FSNOTIFY_PERM_EVENTS))
3405 perm |= FILE__WATCH_WITH_PERM;
3406
3407 /* watches on read-like events need the file:watch_reads permission */
3408 if (mask & (FS_ACCESS | FS_ACCESS_PERM | FS_CLOSE_NOWRITE))
3409 perm |= FILE__WATCH_READS;
3410
3411 return path_has_perm(current_cred(), path, perm);
3412}
3413
3414/*
3415 * Copy the inode security context value to the user.
3416 *
3417 * Permission check is handled by selinux_inode_getxattr hook.
3418 */
3419static int selinux_inode_getsecurity(struct mnt_idmap *idmap,
3420 struct inode *inode, const char *name,
3421 void **buffer, bool alloc)
3422{
3423 u32 size;
3424 int error;
3425 char *context = NULL;
3426 struct inode_security_struct *isec;
3427
3428 /*
3429 * If we're not initialized yet, then we can't validate contexts, so
3430 * just let vfs_getxattr fall back to using the on-disk xattr.
3431 */
3432 if (!selinux_initialized() ||
3433 strcmp(name, XATTR_SELINUX_SUFFIX))
3434 return -EOPNOTSUPP;
3435
3436 /*
3437 * If the caller has CAP_MAC_ADMIN, then get the raw context
3438 * value even if it is not defined by current policy; otherwise,
3439 * use the in-core value under current policy.
3440 * Use the non-auditing forms of the permission checks since
3441 * getxattr may be called by unprivileged processes commonly
3442 * and lack of permission just means that we fall back to the
3443 * in-core context value, not a denial.
3444 */
3445 isec = inode_security(inode);
3446 if (has_cap_mac_admin(false))
3447 error = security_sid_to_context_force(isec->sid, &context,
3448 &size);
3449 else
3450 error = security_sid_to_context(isec->sid,
3451 &context, &size);
3452 if (error)
3453 return error;
3454 error = size;
3455 if (alloc) {
3456 *buffer = context;
3457 goto out_nofree;
3458 }
3459 kfree(context);
3460out_nofree:
3461 return error;
3462}
3463
3464static int selinux_inode_setsecurity(struct inode *inode, const char *name,
3465 const void *value, size_t size, int flags)
3466{
3467 struct inode_security_struct *isec = inode_security_novalidate(inode);
3468 struct superblock_security_struct *sbsec;
3469 u32 newsid;
3470 int rc;
3471
3472 if (strcmp(name, XATTR_SELINUX_SUFFIX))
3473 return -EOPNOTSUPP;
3474
3475 sbsec = selinux_superblock(inode->i_sb);
3476 if (!(sbsec->flags & SBLABEL_MNT))
3477 return -EOPNOTSUPP;
3478
3479 if (!value || !size)
3480 return -EACCES;
3481
3482 rc = security_context_to_sid(value, size, &newsid,
3483 GFP_KERNEL);
3484 if (rc)
3485 return rc;
3486
3487 spin_lock(&isec->lock);
3488 isec->sclass = inode_mode_to_security_class(inode->i_mode);
3489 isec->sid = newsid;
3490 isec->initialized = LABEL_INITIALIZED;
3491 spin_unlock(&isec->lock);
3492 return 0;
3493}
3494
3495static int selinux_inode_listsecurity(struct inode *inode, char *buffer, size_t buffer_size)
3496{
3497 const int len = sizeof(XATTR_NAME_SELINUX);
3498
3499 if (!selinux_initialized())
3500 return 0;
3501
3502 if (buffer && len <= buffer_size)
3503 memcpy(buffer, XATTR_NAME_SELINUX, len);
3504 return len;
3505}
3506
3507static void selinux_inode_getsecid(struct inode *inode, u32 *secid)
3508{
3509 struct inode_security_struct *isec = inode_security_novalidate(inode);
3510 *secid = isec->sid;
3511}
3512
3513static int selinux_inode_copy_up(struct dentry *src, struct cred **new)
3514{
3515 u32 sid;
3516 struct task_security_struct *tsec;
3517 struct cred *new_creds = *new;
3518
3519 if (new_creds == NULL) {
3520 new_creds = prepare_creds();
3521 if (!new_creds)
3522 return -ENOMEM;
3523 }
3524
3525 tsec = selinux_cred(new_creds);
3526 /* Get label from overlay inode and set it in create_sid */
3527 selinux_inode_getsecid(d_inode(src), &sid);
3528 tsec->create_sid = sid;
3529 *new = new_creds;
3530 return 0;
3531}
3532
3533static int selinux_inode_copy_up_xattr(const char *name)
3534{
3535 /* The copy_up hook above sets the initial context on an inode, but we
3536 * don't then want to overwrite it by blindly copying all the lower
3537 * xattrs up. Instead, filter out SELinux-related xattrs following
3538 * policy load.
3539 */
3540 if (selinux_initialized() && strcmp(name, XATTR_NAME_SELINUX) == 0)
3541 return 1; /* Discard */
3542 /*
3543 * Any other attribute apart from SELINUX is not claimed, supported
3544 * by selinux.
3545 */
3546 return -EOPNOTSUPP;
3547}
3548
3549/* kernfs node operations */
3550
3551static int selinux_kernfs_init_security(struct kernfs_node *kn_dir,
3552 struct kernfs_node *kn)
3553{
3554 const struct task_security_struct *tsec = selinux_cred(current_cred());
3555 u32 parent_sid, newsid, clen;
3556 int rc;
3557 char *context;
3558
3559 rc = kernfs_xattr_get(kn_dir, XATTR_NAME_SELINUX, NULL, 0);
3560 if (rc == -ENODATA)
3561 return 0;
3562 else if (rc < 0)
3563 return rc;
3564
3565 clen = (u32)rc;
3566 context = kmalloc(clen, GFP_KERNEL);
3567 if (!context)
3568 return -ENOMEM;
3569
3570 rc = kernfs_xattr_get(kn_dir, XATTR_NAME_SELINUX, context, clen);
3571 if (rc < 0) {
3572 kfree(context);
3573 return rc;
3574 }
3575
3576 rc = security_context_to_sid(context, clen, &parent_sid,
3577 GFP_KERNEL);
3578 kfree(context);
3579 if (rc)
3580 return rc;
3581
3582 if (tsec->create_sid) {
3583 newsid = tsec->create_sid;
3584 } else {
3585 u16 secclass = inode_mode_to_security_class(kn->mode);
3586 struct qstr q;
3587
3588 q.name = kn->name;
3589 q.hash_len = hashlen_string(kn_dir, kn->name);
3590
3591 rc = security_transition_sid(tsec->sid,
3592 parent_sid, secclass, &q,
3593 &newsid);
3594 if (rc)
3595 return rc;
3596 }
3597
3598 rc = security_sid_to_context_force(newsid,
3599 &context, &clen);
3600 if (rc)
3601 return rc;
3602
3603 rc = kernfs_xattr_set(kn, XATTR_NAME_SELINUX, context, clen,
3604 XATTR_CREATE);
3605 kfree(context);
3606 return rc;
3607}
3608
3609
3610/* file security operations */
3611
3612static int selinux_revalidate_file_permission(struct file *file, int mask)
3613{
3614 const struct cred *cred = current_cred();
3615 struct inode *inode = file_inode(file);
3616
3617 /* file_mask_to_av won't add FILE__WRITE if MAY_APPEND is set */
3618 if ((file->f_flags & O_APPEND) && (mask & MAY_WRITE))
3619 mask |= MAY_APPEND;
3620
3621 return file_has_perm(cred, file,
3622 file_mask_to_av(inode->i_mode, mask));
3623}
3624
3625static int selinux_file_permission(struct file *file, int mask)
3626{
3627 struct inode *inode = file_inode(file);
3628 struct file_security_struct *fsec = selinux_file(file);
3629 struct inode_security_struct *isec;
3630 u32 sid = current_sid();
3631
3632 if (!mask)
3633 /* No permission to check. Existence test. */
3634 return 0;
3635
3636 isec = inode_security(inode);
3637 if (sid == fsec->sid && fsec->isid == isec->sid &&
3638 fsec->pseqno == avc_policy_seqno())
3639 /* No change since file_open check. */
3640 return 0;
3641
3642 return selinux_revalidate_file_permission(file, mask);
3643}
3644
3645static int selinux_file_alloc_security(struct file *file)
3646{
3647 struct file_security_struct *fsec = selinux_file(file);
3648 u32 sid = current_sid();
3649
3650 fsec->sid = sid;
3651 fsec->fown_sid = sid;
3652
3653 return 0;
3654}
3655
3656/*
3657 * Check whether a task has the ioctl permission and cmd
3658 * operation to an inode.
3659 */
3660static int ioctl_has_perm(const struct cred *cred, struct file *file,
3661 u32 requested, u16 cmd)
3662{
3663 struct common_audit_data ad;
3664 struct file_security_struct *fsec = selinux_file(file);
3665 struct inode *inode = file_inode(file);
3666 struct inode_security_struct *isec;
3667 struct lsm_ioctlop_audit ioctl;
3668 u32 ssid = cred_sid(cred);
3669 int rc;
3670 u8 driver = cmd >> 8;
3671 u8 xperm = cmd & 0xff;
3672
3673 ad.type = LSM_AUDIT_DATA_IOCTL_OP;
3674 ad.u.op = &ioctl;
3675 ad.u.op->cmd = cmd;
3676 ad.u.op->path = file->f_path;
3677
3678 if (ssid != fsec->sid) {
3679 rc = avc_has_perm(ssid, fsec->sid,
3680 SECCLASS_FD,
3681 FD__USE,
3682 &ad);
3683 if (rc)
3684 goto out;
3685 }
3686
3687 if (unlikely(IS_PRIVATE(inode)))
3688 return 0;
3689
3690 isec = inode_security(inode);
3691 rc = avc_has_extended_perms(ssid, isec->sid, isec->sclass,
3692 requested, driver, xperm, &ad);
3693out:
3694 return rc;
3695}
3696
3697static int selinux_file_ioctl(struct file *file, unsigned int cmd,
3698 unsigned long arg)
3699{
3700 const struct cred *cred = current_cred();
3701 int error = 0;
3702
3703 switch (cmd) {
3704 case FIONREAD:
3705 case FIBMAP:
3706 case FIGETBSZ:
3707 case FS_IOC_GETFLAGS:
3708 case FS_IOC_GETVERSION:
3709 error = file_has_perm(cred, file, FILE__GETATTR);
3710 break;
3711
3712 case FS_IOC_SETFLAGS:
3713 case FS_IOC_SETVERSION:
3714 error = file_has_perm(cred, file, FILE__SETATTR);
3715 break;
3716
3717 /* sys_ioctl() checks */
3718 case FIONBIO:
3719 case FIOASYNC:
3720 error = file_has_perm(cred, file, 0);
3721 break;
3722
3723 case KDSKBENT:
3724 case KDSKBSENT:
3725 error = cred_has_capability(cred, CAP_SYS_TTY_CONFIG,
3726 CAP_OPT_NONE, true);
3727 break;
3728
3729 case FIOCLEX:
3730 case FIONCLEX:
3731 if (!selinux_policycap_ioctl_skip_cloexec())
3732 error = ioctl_has_perm(cred, file, FILE__IOCTL, (u16) cmd);
3733 break;
3734
3735 /* default case assumes that the command will go
3736 * to the file's ioctl() function.
3737 */
3738 default:
3739 error = ioctl_has_perm(cred, file, FILE__IOCTL, (u16) cmd);
3740 }
3741 return error;
3742}
3743
3744static int selinux_file_ioctl_compat(struct file *file, unsigned int cmd,
3745 unsigned long arg)
3746{
3747 /*
3748 * If we are in a 64-bit kernel running 32-bit userspace, we need to
3749 * make sure we don't compare 32-bit flags to 64-bit flags.
3750 */
3751 switch (cmd) {
3752 case FS_IOC32_GETFLAGS:
3753 cmd = FS_IOC_GETFLAGS;
3754 break;
3755 case FS_IOC32_SETFLAGS:
3756 cmd = FS_IOC_SETFLAGS;
3757 break;
3758 case FS_IOC32_GETVERSION:
3759 cmd = FS_IOC_GETVERSION;
3760 break;
3761 case FS_IOC32_SETVERSION:
3762 cmd = FS_IOC_SETVERSION;
3763 break;
3764 default:
3765 break;
3766 }
3767
3768 return selinux_file_ioctl(file, cmd, arg);
3769}
3770
3771static int default_noexec __ro_after_init;
3772
3773static int file_map_prot_check(struct file *file, unsigned long prot, int shared)
3774{
3775 const struct cred *cred = current_cred();
3776 u32 sid = cred_sid(cred);
3777 int rc = 0;
3778
3779 if (default_noexec &&
3780 (prot & PROT_EXEC) && (!file || IS_PRIVATE(file_inode(file)) ||
3781 (!shared && (prot & PROT_WRITE)))) {
3782 /*
3783 * We are making executable an anonymous mapping or a
3784 * private file mapping that will also be writable.
3785 * This has an additional check.
3786 */
3787 rc = avc_has_perm(sid, sid, SECCLASS_PROCESS,
3788 PROCESS__EXECMEM, NULL);
3789 if (rc)
3790 goto error;
3791 }
3792
3793 if (file) {
3794 /* read access is always possible with a mapping */
3795 u32 av = FILE__READ;
3796
3797 /* write access only matters if the mapping is shared */
3798 if (shared && (prot & PROT_WRITE))
3799 av |= FILE__WRITE;
3800
3801 if (prot & PROT_EXEC)
3802 av |= FILE__EXECUTE;
3803
3804 return file_has_perm(cred, file, av);
3805 }
3806
3807error:
3808 return rc;
3809}
3810
3811static int selinux_mmap_addr(unsigned long addr)
3812{
3813 int rc = 0;
3814
3815 if (addr < CONFIG_LSM_MMAP_MIN_ADDR) {
3816 u32 sid = current_sid();
3817 rc = avc_has_perm(sid, sid, SECCLASS_MEMPROTECT,
3818 MEMPROTECT__MMAP_ZERO, NULL);
3819 }
3820
3821 return rc;
3822}
3823
3824static int selinux_mmap_file(struct file *file,
3825 unsigned long reqprot __always_unused,
3826 unsigned long prot, unsigned long flags)
3827{
3828 struct common_audit_data ad;
3829 int rc;
3830
3831 if (file) {
3832 ad.type = LSM_AUDIT_DATA_FILE;
3833 ad.u.file = file;
3834 rc = inode_has_perm(current_cred(), file_inode(file),
3835 FILE__MAP, &ad);
3836 if (rc)
3837 return rc;
3838 }
3839
3840 return file_map_prot_check(file, prot,
3841 (flags & MAP_TYPE) == MAP_SHARED);
3842}
3843
3844static int selinux_file_mprotect(struct vm_area_struct *vma,
3845 unsigned long reqprot __always_unused,
3846 unsigned long prot)
3847{
3848 const struct cred *cred = current_cred();
3849 u32 sid = cred_sid(cred);
3850
3851 if (default_noexec &&
3852 (prot & PROT_EXEC) && !(vma->vm_flags & VM_EXEC)) {
3853 int rc = 0;
3854 if (vma_is_initial_heap(vma)) {
3855 rc = avc_has_perm(sid, sid, SECCLASS_PROCESS,
3856 PROCESS__EXECHEAP, NULL);
3857 } else if (!vma->vm_file && (vma_is_initial_stack(vma) ||
3858 vma_is_stack_for_current(vma))) {
3859 rc = avc_has_perm(sid, sid, SECCLASS_PROCESS,
3860 PROCESS__EXECSTACK, NULL);
3861 } else if (vma->vm_file && vma->anon_vma) {
3862 /*
3863 * We are making executable a file mapping that has
3864 * had some COW done. Since pages might have been
3865 * written, check ability to execute the possibly
3866 * modified content. This typically should only
3867 * occur for text relocations.
3868 */
3869 rc = file_has_perm(cred, vma->vm_file, FILE__EXECMOD);
3870 }
3871 if (rc)
3872 return rc;
3873 }
3874
3875 return file_map_prot_check(vma->vm_file, prot, vma->vm_flags&VM_SHARED);
3876}
3877
3878static int selinux_file_lock(struct file *file, unsigned int cmd)
3879{
3880 const struct cred *cred = current_cred();
3881
3882 return file_has_perm(cred, file, FILE__LOCK);
3883}
3884
3885static int selinux_file_fcntl(struct file *file, unsigned int cmd,
3886 unsigned long arg)
3887{
3888 const struct cred *cred = current_cred();
3889 int err = 0;
3890
3891 switch (cmd) {
3892 case F_SETFL:
3893 if ((file->f_flags & O_APPEND) && !(arg & O_APPEND)) {
3894 err = file_has_perm(cred, file, FILE__WRITE);
3895 break;
3896 }
3897 fallthrough;
3898 case F_SETOWN:
3899 case F_SETSIG:
3900 case F_GETFL:
3901 case F_GETOWN:
3902 case F_GETSIG:
3903 case F_GETOWNER_UIDS:
3904 /* Just check FD__USE permission */
3905 err = file_has_perm(cred, file, 0);
3906 break;
3907 case F_GETLK:
3908 case F_SETLK:
3909 case F_SETLKW:
3910 case F_OFD_GETLK:
3911 case F_OFD_SETLK:
3912 case F_OFD_SETLKW:
3913#if BITS_PER_LONG == 32
3914 case F_GETLK64:
3915 case F_SETLK64:
3916 case F_SETLKW64:
3917#endif
3918 err = file_has_perm(cred, file, FILE__LOCK);
3919 break;
3920 }
3921
3922 return err;
3923}
3924
3925static void selinux_file_set_fowner(struct file *file)
3926{
3927 struct file_security_struct *fsec;
3928
3929 fsec = selinux_file(file);
3930 fsec->fown_sid = current_sid();
3931}
3932
3933static int selinux_file_send_sigiotask(struct task_struct *tsk,
3934 struct fown_struct *fown, int signum)
3935{
3936 struct file *file;
3937 u32 sid = task_sid_obj(tsk);
3938 u32 perm;
3939 struct file_security_struct *fsec;
3940
3941 /* struct fown_struct is never outside the context of a struct file */
3942 file = container_of(fown, struct file, f_owner);
3943
3944 fsec = selinux_file(file);
3945
3946 if (!signum)
3947 perm = signal_to_av(SIGIO); /* as per send_sigio_to_task */
3948 else
3949 perm = signal_to_av(signum);
3950
3951 return avc_has_perm(fsec->fown_sid, sid,
3952 SECCLASS_PROCESS, perm, NULL);
3953}
3954
3955static int selinux_file_receive(struct file *file)
3956{
3957 const struct cred *cred = current_cred();
3958
3959 return file_has_perm(cred, file, file_to_av(file));
3960}
3961
3962static int selinux_file_open(struct file *file)
3963{
3964 struct file_security_struct *fsec;
3965 struct inode_security_struct *isec;
3966
3967 fsec = selinux_file(file);
3968 isec = inode_security(file_inode(file));
3969 /*
3970 * Save inode label and policy sequence number
3971 * at open-time so that selinux_file_permission
3972 * can determine whether revalidation is necessary.
3973 * Task label is already saved in the file security
3974 * struct as its SID.
3975 */
3976 fsec->isid = isec->sid;
3977 fsec->pseqno = avc_policy_seqno();
3978 /*
3979 * Since the inode label or policy seqno may have changed
3980 * between the selinux_inode_permission check and the saving
3981 * of state above, recheck that access is still permitted.
3982 * Otherwise, access might never be revalidated against the
3983 * new inode label or new policy.
3984 * This check is not redundant - do not remove.
3985 */
3986 return file_path_has_perm(file->f_cred, file, open_file_to_av(file));
3987}
3988
3989/* task security operations */
3990
3991static int selinux_task_alloc(struct task_struct *task,
3992 unsigned long clone_flags)
3993{
3994 u32 sid = current_sid();
3995
3996 return avc_has_perm(sid, sid, SECCLASS_PROCESS, PROCESS__FORK, NULL);
3997}
3998
3999/*
4000 * prepare a new set of credentials for modification
4001 */
4002static int selinux_cred_prepare(struct cred *new, const struct cred *old,
4003 gfp_t gfp)
4004{
4005 const struct task_security_struct *old_tsec = selinux_cred(old);
4006 struct task_security_struct *tsec = selinux_cred(new);
4007
4008 *tsec = *old_tsec;
4009 return 0;
4010}
4011
4012/*
4013 * transfer the SELinux data to a blank set of creds
4014 */
4015static void selinux_cred_transfer(struct cred *new, const struct cred *old)
4016{
4017 const struct task_security_struct *old_tsec = selinux_cred(old);
4018 struct task_security_struct *tsec = selinux_cred(new);
4019
4020 *tsec = *old_tsec;
4021}
4022
4023static void selinux_cred_getsecid(const struct cred *c, u32 *secid)
4024{
4025 *secid = cred_sid(c);
4026}
4027
4028/*
4029 * set the security data for a kernel service
4030 * - all the creation contexts are set to unlabelled
4031 */
4032static int selinux_kernel_act_as(struct cred *new, u32 secid)
4033{
4034 struct task_security_struct *tsec = selinux_cred(new);
4035 u32 sid = current_sid();
4036 int ret;
4037
4038 ret = avc_has_perm(sid, secid,
4039 SECCLASS_KERNEL_SERVICE,
4040 KERNEL_SERVICE__USE_AS_OVERRIDE,
4041 NULL);
4042 if (ret == 0) {
4043 tsec->sid = secid;
4044 tsec->create_sid = 0;
4045 tsec->keycreate_sid = 0;
4046 tsec->sockcreate_sid = 0;
4047 }
4048 return ret;
4049}
4050
4051/*
4052 * set the file creation context in a security record to the same as the
4053 * objective context of the specified inode
4054 */
4055static int selinux_kernel_create_files_as(struct cred *new, struct inode *inode)
4056{
4057 struct inode_security_struct *isec = inode_security(inode);
4058 struct task_security_struct *tsec = selinux_cred(new);
4059 u32 sid = current_sid();
4060 int ret;
4061
4062 ret = avc_has_perm(sid, isec->sid,
4063 SECCLASS_KERNEL_SERVICE,
4064 KERNEL_SERVICE__CREATE_FILES_AS,
4065 NULL);
4066
4067 if (ret == 0)
4068 tsec->create_sid = isec->sid;
4069 return ret;
4070}
4071
4072static int selinux_kernel_module_request(char *kmod_name)
4073{
4074 struct common_audit_data ad;
4075
4076 ad.type = LSM_AUDIT_DATA_KMOD;
4077 ad.u.kmod_name = kmod_name;
4078
4079 return avc_has_perm(current_sid(), SECINITSID_KERNEL, SECCLASS_SYSTEM,
4080 SYSTEM__MODULE_REQUEST, &ad);
4081}
4082
4083static int selinux_kernel_module_from_file(struct file *file)
4084{
4085 struct common_audit_data ad;
4086 struct inode_security_struct *isec;
4087 struct file_security_struct *fsec;
4088 u32 sid = current_sid();
4089 int rc;
4090
4091 /* init_module */
4092 if (file == NULL)
4093 return avc_has_perm(sid, sid, SECCLASS_SYSTEM,
4094 SYSTEM__MODULE_LOAD, NULL);
4095
4096 /* finit_module */
4097
4098 ad.type = LSM_AUDIT_DATA_FILE;
4099 ad.u.file = file;
4100
4101 fsec = selinux_file(file);
4102 if (sid != fsec->sid) {
4103 rc = avc_has_perm(sid, fsec->sid, SECCLASS_FD, FD__USE, &ad);
4104 if (rc)
4105 return rc;
4106 }
4107
4108 isec = inode_security(file_inode(file));
4109 return avc_has_perm(sid, isec->sid, SECCLASS_SYSTEM,
4110 SYSTEM__MODULE_LOAD, &ad);
4111}
4112
4113static int selinux_kernel_read_file(struct file *file,
4114 enum kernel_read_file_id id,
4115 bool contents)
4116{
4117 int rc = 0;
4118
4119 switch (id) {
4120 case READING_MODULE:
4121 rc = selinux_kernel_module_from_file(contents ? file : NULL);
4122 break;
4123 default:
4124 break;
4125 }
4126
4127 return rc;
4128}
4129
4130static int selinux_kernel_load_data(enum kernel_load_data_id id, bool contents)
4131{
4132 int rc = 0;
4133
4134 switch (id) {
4135 case LOADING_MODULE:
4136 rc = selinux_kernel_module_from_file(NULL);
4137 break;
4138 default:
4139 break;
4140 }
4141
4142 return rc;
4143}
4144
4145static int selinux_task_setpgid(struct task_struct *p, pid_t pgid)
4146{
4147 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4148 PROCESS__SETPGID, NULL);
4149}
4150
4151static int selinux_task_getpgid(struct task_struct *p)
4152{
4153 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4154 PROCESS__GETPGID, NULL);
4155}
4156
4157static int selinux_task_getsid(struct task_struct *p)
4158{
4159 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4160 PROCESS__GETSESSION, NULL);
4161}
4162
4163static void selinux_current_getsecid_subj(u32 *secid)
4164{
4165 *secid = current_sid();
4166}
4167
4168static void selinux_task_getsecid_obj(struct task_struct *p, u32 *secid)
4169{
4170 *secid = task_sid_obj(p);
4171}
4172
4173static int selinux_task_setnice(struct task_struct *p, int nice)
4174{
4175 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4176 PROCESS__SETSCHED, NULL);
4177}
4178
4179static int selinux_task_setioprio(struct task_struct *p, int ioprio)
4180{
4181 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4182 PROCESS__SETSCHED, NULL);
4183}
4184
4185static int selinux_task_getioprio(struct task_struct *p)
4186{
4187 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4188 PROCESS__GETSCHED, NULL);
4189}
4190
4191static int selinux_task_prlimit(const struct cred *cred, const struct cred *tcred,
4192 unsigned int flags)
4193{
4194 u32 av = 0;
4195
4196 if (!flags)
4197 return 0;
4198 if (flags & LSM_PRLIMIT_WRITE)
4199 av |= PROCESS__SETRLIMIT;
4200 if (flags & LSM_PRLIMIT_READ)
4201 av |= PROCESS__GETRLIMIT;
4202 return avc_has_perm(cred_sid(cred), cred_sid(tcred),
4203 SECCLASS_PROCESS, av, NULL);
4204}
4205
4206static int selinux_task_setrlimit(struct task_struct *p, unsigned int resource,
4207 struct rlimit *new_rlim)
4208{
4209 struct rlimit *old_rlim = p->signal->rlim + resource;
4210
4211 /* Control the ability to change the hard limit (whether
4212 lowering or raising it), so that the hard limit can
4213 later be used as a safe reset point for the soft limit
4214 upon context transitions. See selinux_bprm_committing_creds. */
4215 if (old_rlim->rlim_max != new_rlim->rlim_max)
4216 return avc_has_perm(current_sid(), task_sid_obj(p),
4217 SECCLASS_PROCESS, PROCESS__SETRLIMIT, NULL);
4218
4219 return 0;
4220}
4221
4222static int selinux_task_setscheduler(struct task_struct *p)
4223{
4224 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4225 PROCESS__SETSCHED, NULL);
4226}
4227
4228static int selinux_task_getscheduler(struct task_struct *p)
4229{
4230 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4231 PROCESS__GETSCHED, NULL);
4232}
4233
4234static int selinux_task_movememory(struct task_struct *p)
4235{
4236 return avc_has_perm(current_sid(), task_sid_obj(p), SECCLASS_PROCESS,
4237 PROCESS__SETSCHED, NULL);
4238}
4239
4240static int selinux_task_kill(struct task_struct *p, struct kernel_siginfo *info,
4241 int sig, const struct cred *cred)
4242{
4243 u32 secid;
4244 u32 perm;
4245
4246 if (!sig)
4247 perm = PROCESS__SIGNULL; /* null signal; existence test */
4248 else
4249 perm = signal_to_av(sig);
4250 if (!cred)
4251 secid = current_sid();
4252 else
4253 secid = cred_sid(cred);
4254 return avc_has_perm(secid, task_sid_obj(p), SECCLASS_PROCESS, perm, NULL);
4255}
4256
4257static void selinux_task_to_inode(struct task_struct *p,
4258 struct inode *inode)
4259{
4260 struct inode_security_struct *isec = selinux_inode(inode);
4261 u32 sid = task_sid_obj(p);
4262
4263 spin_lock(&isec->lock);
4264 isec->sclass = inode_mode_to_security_class(inode->i_mode);
4265 isec->sid = sid;
4266 isec->initialized = LABEL_INITIALIZED;
4267 spin_unlock(&isec->lock);
4268}
4269
4270static int selinux_userns_create(const struct cred *cred)
4271{
4272 u32 sid = current_sid();
4273
4274 return avc_has_perm(sid, sid, SECCLASS_USER_NAMESPACE,
4275 USER_NAMESPACE__CREATE, NULL);
4276}
4277
4278/* Returns error only if unable to parse addresses */
4279static int selinux_parse_skb_ipv4(struct sk_buff *skb,
4280 struct common_audit_data *ad, u8 *proto)
4281{
4282 int offset, ihlen, ret = -EINVAL;
4283 struct iphdr _iph, *ih;
4284
4285 offset = skb_network_offset(skb);
4286 ih = skb_header_pointer(skb, offset, sizeof(_iph), &_iph);
4287 if (ih == NULL)
4288 goto out;
4289
4290 ihlen = ih->ihl * 4;
4291 if (ihlen < sizeof(_iph))
4292 goto out;
4293
4294 ad->u.net->v4info.saddr = ih->saddr;
4295 ad->u.net->v4info.daddr = ih->daddr;
4296 ret = 0;
4297
4298 if (proto)
4299 *proto = ih->protocol;
4300
4301 switch (ih->protocol) {
4302 case IPPROTO_TCP: {
4303 struct tcphdr _tcph, *th;
4304
4305 if (ntohs(ih->frag_off) & IP_OFFSET)
4306 break;
4307
4308 offset += ihlen;
4309 th = skb_header_pointer(skb, offset, sizeof(_tcph), &_tcph);
4310 if (th == NULL)
4311 break;
4312
4313 ad->u.net->sport = th->source;
4314 ad->u.net->dport = th->dest;
4315 break;
4316 }
4317
4318 case IPPROTO_UDP: {
4319 struct udphdr _udph, *uh;
4320
4321 if (ntohs(ih->frag_off) & IP_OFFSET)
4322 break;
4323
4324 offset += ihlen;
4325 uh = skb_header_pointer(skb, offset, sizeof(_udph), &_udph);
4326 if (uh == NULL)
4327 break;
4328
4329 ad->u.net->sport = uh->source;
4330 ad->u.net->dport = uh->dest;
4331 break;
4332 }
4333
4334 case IPPROTO_DCCP: {
4335 struct dccp_hdr _dccph, *dh;
4336
4337 if (ntohs(ih->frag_off) & IP_OFFSET)
4338 break;
4339
4340 offset += ihlen;
4341 dh = skb_header_pointer(skb, offset, sizeof(_dccph), &_dccph);
4342 if (dh == NULL)
4343 break;
4344
4345 ad->u.net->sport = dh->dccph_sport;
4346 ad->u.net->dport = dh->dccph_dport;
4347 break;
4348 }
4349
4350#if IS_ENABLED(CONFIG_IP_SCTP)
4351 case IPPROTO_SCTP: {
4352 struct sctphdr _sctph, *sh;
4353
4354 if (ntohs(ih->frag_off) & IP_OFFSET)
4355 break;
4356
4357 offset += ihlen;
4358 sh = skb_header_pointer(skb, offset, sizeof(_sctph), &_sctph);
4359 if (sh == NULL)
4360 break;
4361
4362 ad->u.net->sport = sh->source;
4363 ad->u.net->dport = sh->dest;
4364 break;
4365 }
4366#endif
4367 default:
4368 break;
4369 }
4370out:
4371 return ret;
4372}
4373
4374#if IS_ENABLED(CONFIG_IPV6)
4375
4376/* Returns error only if unable to parse addresses */
4377static int selinux_parse_skb_ipv6(struct sk_buff *skb,
4378 struct common_audit_data *ad, u8 *proto)
4379{
4380 u8 nexthdr;
4381 int ret = -EINVAL, offset;
4382 struct ipv6hdr _ipv6h, *ip6;
4383 __be16 frag_off;
4384
4385 offset = skb_network_offset(skb);
4386 ip6 = skb_header_pointer(skb, offset, sizeof(_ipv6h), &_ipv6h);
4387 if (ip6 == NULL)
4388 goto out;
4389
4390 ad->u.net->v6info.saddr = ip6->saddr;
4391 ad->u.net->v6info.daddr = ip6->daddr;
4392 ret = 0;
4393
4394 nexthdr = ip6->nexthdr;
4395 offset += sizeof(_ipv6h);
4396 offset = ipv6_skip_exthdr(skb, offset, &nexthdr, &frag_off);
4397 if (offset < 0)
4398 goto out;
4399
4400 if (proto)
4401 *proto = nexthdr;
4402
4403 switch (nexthdr) {
4404 case IPPROTO_TCP: {
4405 struct tcphdr _tcph, *th;
4406
4407 th = skb_header_pointer(skb, offset, sizeof(_tcph), &_tcph);
4408 if (th == NULL)
4409 break;
4410
4411 ad->u.net->sport = th->source;
4412 ad->u.net->dport = th->dest;
4413 break;
4414 }
4415
4416 case IPPROTO_UDP: {
4417 struct udphdr _udph, *uh;
4418
4419 uh = skb_header_pointer(skb, offset, sizeof(_udph), &_udph);
4420 if (uh == NULL)
4421 break;
4422
4423 ad->u.net->sport = uh->source;
4424 ad->u.net->dport = uh->dest;
4425 break;
4426 }
4427
4428 case IPPROTO_DCCP: {
4429 struct dccp_hdr _dccph, *dh;
4430
4431 dh = skb_header_pointer(skb, offset, sizeof(_dccph), &_dccph);
4432 if (dh == NULL)
4433 break;
4434
4435 ad->u.net->sport = dh->dccph_sport;
4436 ad->u.net->dport = dh->dccph_dport;
4437 break;
4438 }
4439
4440#if IS_ENABLED(CONFIG_IP_SCTP)
4441 case IPPROTO_SCTP: {
4442 struct sctphdr _sctph, *sh;
4443
4444 sh = skb_header_pointer(skb, offset, sizeof(_sctph), &_sctph);
4445 if (sh == NULL)
4446 break;
4447
4448 ad->u.net->sport = sh->source;
4449 ad->u.net->dport = sh->dest;
4450 break;
4451 }
4452#endif
4453 /* includes fragments */
4454 default:
4455 break;
4456 }
4457out:
4458 return ret;
4459}
4460
4461#endif /* IPV6 */
4462
4463static int selinux_parse_skb(struct sk_buff *skb, struct common_audit_data *ad,
4464 char **_addrp, int src, u8 *proto)
4465{
4466 char *addrp;
4467 int ret;
4468
4469 switch (ad->u.net->family) {
4470 case PF_INET:
4471 ret = selinux_parse_skb_ipv4(skb, ad, proto);
4472 if (ret)
4473 goto parse_error;
4474 addrp = (char *)(src ? &ad->u.net->v4info.saddr :
4475 &ad->u.net->v4info.daddr);
4476 goto okay;
4477
4478#if IS_ENABLED(CONFIG_IPV6)
4479 case PF_INET6:
4480 ret = selinux_parse_skb_ipv6(skb, ad, proto);
4481 if (ret)
4482 goto parse_error;
4483 addrp = (char *)(src ? &ad->u.net->v6info.saddr :
4484 &ad->u.net->v6info.daddr);
4485 goto okay;
4486#endif /* IPV6 */
4487 default:
4488 addrp = NULL;
4489 goto okay;
4490 }
4491
4492parse_error:
4493 pr_warn(
4494 "SELinux: failure in selinux_parse_skb(),"
4495 " unable to parse packet\n");
4496 return ret;
4497
4498okay:
4499 if (_addrp)
4500 *_addrp = addrp;
4501 return 0;
4502}
4503
4504/**
4505 * selinux_skb_peerlbl_sid - Determine the peer label of a packet
4506 * @skb: the packet
4507 * @family: protocol family
4508 * @sid: the packet's peer label SID
4509 *
4510 * Description:
4511 * Check the various different forms of network peer labeling and determine
4512 * the peer label/SID for the packet; most of the magic actually occurs in
4513 * the security server function security_net_peersid_cmp(). The function
4514 * returns zero if the value in @sid is valid (although it may be SECSID_NULL)
4515 * or -EACCES if @sid is invalid due to inconsistencies with the different
4516 * peer labels.
4517 *
4518 */
4519static int selinux_skb_peerlbl_sid(struct sk_buff *skb, u16 family, u32 *sid)
4520{
4521 int err;
4522 u32 xfrm_sid;
4523 u32 nlbl_sid;
4524 u32 nlbl_type;
4525
4526 err = selinux_xfrm_skb_sid(skb, &xfrm_sid);
4527 if (unlikely(err))
4528 return -EACCES;
4529 err = selinux_netlbl_skbuff_getsid(skb, family, &nlbl_type, &nlbl_sid);
4530 if (unlikely(err))
4531 return -EACCES;
4532
4533 err = security_net_peersid_resolve(nlbl_sid,
4534 nlbl_type, xfrm_sid, sid);
4535 if (unlikely(err)) {
4536 pr_warn(
4537 "SELinux: failure in selinux_skb_peerlbl_sid(),"
4538 " unable to determine packet's peer label\n");
4539 return -EACCES;
4540 }
4541
4542 return 0;
4543}
4544
4545/**
4546 * selinux_conn_sid - Determine the child socket label for a connection
4547 * @sk_sid: the parent socket's SID
4548 * @skb_sid: the packet's SID
4549 * @conn_sid: the resulting connection SID
4550 *
4551 * If @skb_sid is valid then the user:role:type information from @sk_sid is
4552 * combined with the MLS information from @skb_sid in order to create
4553 * @conn_sid. If @skb_sid is not valid then @conn_sid is simply a copy
4554 * of @sk_sid. Returns zero on success, negative values on failure.
4555 *
4556 */
4557static int selinux_conn_sid(u32 sk_sid, u32 skb_sid, u32 *conn_sid)
4558{
4559 int err = 0;
4560
4561 if (skb_sid != SECSID_NULL)
4562 err = security_sid_mls_copy(sk_sid, skb_sid,
4563 conn_sid);
4564 else
4565 *conn_sid = sk_sid;
4566
4567 return err;
4568}
4569
4570/* socket security operations */
4571
4572static int socket_sockcreate_sid(const struct task_security_struct *tsec,
4573 u16 secclass, u32 *socksid)
4574{
4575 if (tsec->sockcreate_sid > SECSID_NULL) {
4576 *socksid = tsec->sockcreate_sid;
4577 return 0;
4578 }
4579
4580 return security_transition_sid(tsec->sid, tsec->sid,
4581 secclass, NULL, socksid);
4582}
4583
4584static int sock_has_perm(struct sock *sk, u32 perms)
4585{
4586 struct sk_security_struct *sksec = sk->sk_security;
4587 struct common_audit_data ad;
4588 struct lsm_network_audit net;
4589
4590 if (sksec->sid == SECINITSID_KERNEL)
4591 return 0;
4592
4593 /*
4594 * Before POLICYDB_CAP_USERSPACE_INITIAL_CONTEXT, sockets that
4595 * inherited the kernel context from early boot used to be skipped
4596 * here, so preserve that behavior unless the capability is set.
4597 *
4598 * By setting the capability the policy signals that it is ready
4599 * for this quirk to be fixed. Note that sockets created by a kernel
4600 * thread or a usermode helper executed without a transition will
4601 * still be skipped in this check regardless of the policycap
4602 * setting.
4603 */
4604 if (!selinux_policycap_userspace_initial_context() &&
4605 sksec->sid == SECINITSID_INIT)
4606 return 0;
4607
4608 ad_net_init_from_sk(&ad, &net, sk);
4609
4610 return avc_has_perm(current_sid(), sksec->sid, sksec->sclass, perms,
4611 &ad);
4612}
4613
4614static int selinux_socket_create(int family, int type,
4615 int protocol, int kern)
4616{
4617 const struct task_security_struct *tsec = selinux_cred(current_cred());
4618 u32 newsid;
4619 u16 secclass;
4620 int rc;
4621
4622 if (kern)
4623 return 0;
4624
4625 secclass = socket_type_to_security_class(family, type, protocol);
4626 rc = socket_sockcreate_sid(tsec, secclass, &newsid);
4627 if (rc)
4628 return rc;
4629
4630 return avc_has_perm(tsec->sid, newsid, secclass, SOCKET__CREATE, NULL);
4631}
4632
4633static int selinux_socket_post_create(struct socket *sock, int family,
4634 int type, int protocol, int kern)
4635{
4636 const struct task_security_struct *tsec = selinux_cred(current_cred());
4637 struct inode_security_struct *isec = inode_security_novalidate(SOCK_INODE(sock));
4638 struct sk_security_struct *sksec;
4639 u16 sclass = socket_type_to_security_class(family, type, protocol);
4640 u32 sid = SECINITSID_KERNEL;
4641 int err = 0;
4642
4643 if (!kern) {
4644 err = socket_sockcreate_sid(tsec, sclass, &sid);
4645 if (err)
4646 return err;
4647 }
4648
4649 isec->sclass = sclass;
4650 isec->sid = sid;
4651 isec->initialized = LABEL_INITIALIZED;
4652
4653 if (sock->sk) {
4654 sksec = sock->sk->sk_security;
4655 sksec->sclass = sclass;
4656 sksec->sid = sid;
4657 /* Allows detection of the first association on this socket */
4658 if (sksec->sclass == SECCLASS_SCTP_SOCKET)
4659 sksec->sctp_assoc_state = SCTP_ASSOC_UNSET;
4660
4661 err = selinux_netlbl_socket_post_create(sock->sk, family);
4662 }
4663
4664 return err;
4665}
4666
4667static int selinux_socket_socketpair(struct socket *socka,
4668 struct socket *sockb)
4669{
4670 struct sk_security_struct *sksec_a = socka->sk->sk_security;
4671 struct sk_security_struct *sksec_b = sockb->sk->sk_security;
4672
4673 sksec_a->peer_sid = sksec_b->sid;
4674 sksec_b->peer_sid = sksec_a->sid;
4675
4676 return 0;
4677}
4678
4679/* Range of port numbers used to automatically bind.
4680 Need to determine whether we should perform a name_bind
4681 permission check between the socket and the port number. */
4682
4683static int selinux_socket_bind(struct socket *sock, struct sockaddr *address, int addrlen)
4684{
4685 struct sock *sk = sock->sk;
4686 struct sk_security_struct *sksec = sk->sk_security;
4687 u16 family;
4688 int err;
4689
4690 err = sock_has_perm(sk, SOCKET__BIND);
4691 if (err)
4692 goto out;
4693
4694 /* If PF_INET or PF_INET6, check name_bind permission for the port. */
4695 family = sk->sk_family;
4696 if (family == PF_INET || family == PF_INET6) {
4697 char *addrp;
4698 struct common_audit_data ad;
4699 struct lsm_network_audit net = {0,};
4700 struct sockaddr_in *addr4 = NULL;
4701 struct sockaddr_in6 *addr6 = NULL;
4702 u16 family_sa;
4703 unsigned short snum;
4704 u32 sid, node_perm;
4705
4706 /*
4707 * sctp_bindx(3) calls via selinux_sctp_bind_connect()
4708 * that validates multiple binding addresses. Because of this
4709 * need to check address->sa_family as it is possible to have
4710 * sk->sk_family = PF_INET6 with addr->sa_family = AF_INET.
4711 */
4712 if (addrlen < offsetofend(struct sockaddr, sa_family))
4713 return -EINVAL;
4714 family_sa = address->sa_family;
4715 switch (family_sa) {
4716 case AF_UNSPEC:
4717 case AF_INET:
4718 if (addrlen < sizeof(struct sockaddr_in))
4719 return -EINVAL;
4720 addr4 = (struct sockaddr_in *)address;
4721 if (family_sa == AF_UNSPEC) {
4722 if (family == PF_INET6) {
4723 /* Length check from inet6_bind_sk() */
4724 if (addrlen < SIN6_LEN_RFC2133)
4725 return -EINVAL;
4726 /* Family check from __inet6_bind() */
4727 goto err_af;
4728 }
4729 /* see __inet_bind(), we only want to allow
4730 * AF_UNSPEC if the address is INADDR_ANY
4731 */
4732 if (addr4->sin_addr.s_addr != htonl(INADDR_ANY))
4733 goto err_af;
4734 family_sa = AF_INET;
4735 }
4736 snum = ntohs(addr4->sin_port);
4737 addrp = (char *)&addr4->sin_addr.s_addr;
4738 break;
4739 case AF_INET6:
4740 if (addrlen < SIN6_LEN_RFC2133)
4741 return -EINVAL;
4742 addr6 = (struct sockaddr_in6 *)address;
4743 snum = ntohs(addr6->sin6_port);
4744 addrp = (char *)&addr6->sin6_addr.s6_addr;
4745 break;
4746 default:
4747 goto err_af;
4748 }
4749
4750 ad.type = LSM_AUDIT_DATA_NET;
4751 ad.u.net = &net;
4752 ad.u.net->sport = htons(snum);
4753 ad.u.net->family = family_sa;
4754
4755 if (snum) {
4756 int low, high;
4757
4758 inet_get_local_port_range(sock_net(sk), &low, &high);
4759
4760 if (inet_port_requires_bind_service(sock_net(sk), snum) ||
4761 snum < low || snum > high) {
4762 err = sel_netport_sid(sk->sk_protocol,
4763 snum, &sid);
4764 if (err)
4765 goto out;
4766 err = avc_has_perm(sksec->sid, sid,
4767 sksec->sclass,
4768 SOCKET__NAME_BIND, &ad);
4769 if (err)
4770 goto out;
4771 }
4772 }
4773
4774 switch (sksec->sclass) {
4775 case SECCLASS_TCP_SOCKET:
4776 node_perm = TCP_SOCKET__NODE_BIND;
4777 break;
4778
4779 case SECCLASS_UDP_SOCKET:
4780 node_perm = UDP_SOCKET__NODE_BIND;
4781 break;
4782
4783 case SECCLASS_DCCP_SOCKET:
4784 node_perm = DCCP_SOCKET__NODE_BIND;
4785 break;
4786
4787 case SECCLASS_SCTP_SOCKET:
4788 node_perm = SCTP_SOCKET__NODE_BIND;
4789 break;
4790
4791 default:
4792 node_perm = RAWIP_SOCKET__NODE_BIND;
4793 break;
4794 }
4795
4796 err = sel_netnode_sid(addrp, family_sa, &sid);
4797 if (err)
4798 goto out;
4799
4800 if (family_sa == AF_INET)
4801 ad.u.net->v4info.saddr = addr4->sin_addr.s_addr;
4802 else
4803 ad.u.net->v6info.saddr = addr6->sin6_addr;
4804
4805 err = avc_has_perm(sksec->sid, sid,
4806 sksec->sclass, node_perm, &ad);
4807 if (err)
4808 goto out;
4809 }
4810out:
4811 return err;
4812err_af:
4813 /* Note that SCTP services expect -EINVAL, others -EAFNOSUPPORT. */
4814 if (sksec->sclass == SECCLASS_SCTP_SOCKET)
4815 return -EINVAL;
4816 return -EAFNOSUPPORT;
4817}
4818
4819/* This supports connect(2) and SCTP connect services such as sctp_connectx(3)
4820 * and sctp_sendmsg(3) as described in Documentation/security/SCTP.rst
4821 */
4822static int selinux_socket_connect_helper(struct socket *sock,
4823 struct sockaddr *address, int addrlen)
4824{
4825 struct sock *sk = sock->sk;
4826 struct sk_security_struct *sksec = sk->sk_security;
4827 int err;
4828
4829 err = sock_has_perm(sk, SOCKET__CONNECT);
4830 if (err)
4831 return err;
4832 if (addrlen < offsetofend(struct sockaddr, sa_family))
4833 return -EINVAL;
4834
4835 /* connect(AF_UNSPEC) has special handling, as it is a documented
4836 * way to disconnect the socket
4837 */
4838 if (address->sa_family == AF_UNSPEC)
4839 return 0;
4840
4841 /*
4842 * If a TCP, DCCP or SCTP socket, check name_connect permission
4843 * for the port.
4844 */
4845 if (sksec->sclass == SECCLASS_TCP_SOCKET ||
4846 sksec->sclass == SECCLASS_DCCP_SOCKET ||
4847 sksec->sclass == SECCLASS_SCTP_SOCKET) {
4848 struct common_audit_data ad;
4849 struct lsm_network_audit net = {0,};
4850 struct sockaddr_in *addr4 = NULL;
4851 struct sockaddr_in6 *addr6 = NULL;
4852 unsigned short snum;
4853 u32 sid, perm;
4854
4855 /* sctp_connectx(3) calls via selinux_sctp_bind_connect()
4856 * that validates multiple connect addresses. Because of this
4857 * need to check address->sa_family as it is possible to have
4858 * sk->sk_family = PF_INET6 with addr->sa_family = AF_INET.
4859 */
4860 switch (address->sa_family) {
4861 case AF_INET:
4862 addr4 = (struct sockaddr_in *)address;
4863 if (addrlen < sizeof(struct sockaddr_in))
4864 return -EINVAL;
4865 snum = ntohs(addr4->sin_port);
4866 break;
4867 case AF_INET6:
4868 addr6 = (struct sockaddr_in6 *)address;
4869 if (addrlen < SIN6_LEN_RFC2133)
4870 return -EINVAL;
4871 snum = ntohs(addr6->sin6_port);
4872 break;
4873 default:
4874 /* Note that SCTP services expect -EINVAL, whereas
4875 * others expect -EAFNOSUPPORT.
4876 */
4877 if (sksec->sclass == SECCLASS_SCTP_SOCKET)
4878 return -EINVAL;
4879 else
4880 return -EAFNOSUPPORT;
4881 }
4882
4883 err = sel_netport_sid(sk->sk_protocol, snum, &sid);
4884 if (err)
4885 return err;
4886
4887 switch (sksec->sclass) {
4888 case SECCLASS_TCP_SOCKET:
4889 perm = TCP_SOCKET__NAME_CONNECT;
4890 break;
4891 case SECCLASS_DCCP_SOCKET:
4892 perm = DCCP_SOCKET__NAME_CONNECT;
4893 break;
4894 case SECCLASS_SCTP_SOCKET:
4895 perm = SCTP_SOCKET__NAME_CONNECT;
4896 break;
4897 }
4898
4899 ad.type = LSM_AUDIT_DATA_NET;
4900 ad.u.net = &net;
4901 ad.u.net->dport = htons(snum);
4902 ad.u.net->family = address->sa_family;
4903 err = avc_has_perm(sksec->sid, sid, sksec->sclass, perm, &ad);
4904 if (err)
4905 return err;
4906 }
4907
4908 return 0;
4909}
4910
4911/* Supports connect(2), see comments in selinux_socket_connect_helper() */
4912static int selinux_socket_connect(struct socket *sock,
4913 struct sockaddr *address, int addrlen)
4914{
4915 int err;
4916 struct sock *sk = sock->sk;
4917
4918 err = selinux_socket_connect_helper(sock, address, addrlen);
4919 if (err)
4920 return err;
4921
4922 return selinux_netlbl_socket_connect(sk, address);
4923}
4924
4925static int selinux_socket_listen(struct socket *sock, int backlog)
4926{
4927 return sock_has_perm(sock->sk, SOCKET__LISTEN);
4928}
4929
4930static int selinux_socket_accept(struct socket *sock, struct socket *newsock)
4931{
4932 int err;
4933 struct inode_security_struct *isec;
4934 struct inode_security_struct *newisec;
4935 u16 sclass;
4936 u32 sid;
4937
4938 err = sock_has_perm(sock->sk, SOCKET__ACCEPT);
4939 if (err)
4940 return err;
4941
4942 isec = inode_security_novalidate(SOCK_INODE(sock));
4943 spin_lock(&isec->lock);
4944 sclass = isec->sclass;
4945 sid = isec->sid;
4946 spin_unlock(&isec->lock);
4947
4948 newisec = inode_security_novalidate(SOCK_INODE(newsock));
4949 newisec->sclass = sclass;
4950 newisec->sid = sid;
4951 newisec->initialized = LABEL_INITIALIZED;
4952
4953 return 0;
4954}
4955
4956static int selinux_socket_sendmsg(struct socket *sock, struct msghdr *msg,
4957 int size)
4958{
4959 return sock_has_perm(sock->sk, SOCKET__WRITE);
4960}
4961
4962static int selinux_socket_recvmsg(struct socket *sock, struct msghdr *msg,
4963 int size, int flags)
4964{
4965 return sock_has_perm(sock->sk, SOCKET__READ);
4966}
4967
4968static int selinux_socket_getsockname(struct socket *sock)
4969{
4970 return sock_has_perm(sock->sk, SOCKET__GETATTR);
4971}
4972
4973static int selinux_socket_getpeername(struct socket *sock)
4974{
4975 return sock_has_perm(sock->sk, SOCKET__GETATTR);
4976}
4977
4978static int selinux_socket_setsockopt(struct socket *sock, int level, int optname)
4979{
4980 int err;
4981
4982 err = sock_has_perm(sock->sk, SOCKET__SETOPT);
4983 if (err)
4984 return err;
4985
4986 return selinux_netlbl_socket_setsockopt(sock, level, optname);
4987}
4988
4989static int selinux_socket_getsockopt(struct socket *sock, int level,
4990 int optname)
4991{
4992 return sock_has_perm(sock->sk, SOCKET__GETOPT);
4993}
4994
4995static int selinux_socket_shutdown(struct socket *sock, int how)
4996{
4997 return sock_has_perm(sock->sk, SOCKET__SHUTDOWN);
4998}
4999
5000static int selinux_socket_unix_stream_connect(struct sock *sock,
5001 struct sock *other,
5002 struct sock *newsk)
5003{
5004 struct sk_security_struct *sksec_sock = sock->sk_security;
5005 struct sk_security_struct *sksec_other = other->sk_security;
5006 struct sk_security_struct *sksec_new = newsk->sk_security;
5007 struct common_audit_data ad;
5008 struct lsm_network_audit net;
5009 int err;
5010
5011 ad_net_init_from_sk(&ad, &net, other);
5012
5013 err = avc_has_perm(sksec_sock->sid, sksec_other->sid,
5014 sksec_other->sclass,
5015 UNIX_STREAM_SOCKET__CONNECTTO, &ad);
5016 if (err)
5017 return err;
5018
5019 /* server child socket */
5020 sksec_new->peer_sid = sksec_sock->sid;
5021 err = security_sid_mls_copy(sksec_other->sid,
5022 sksec_sock->sid, &sksec_new->sid);
5023 if (err)
5024 return err;
5025
5026 /* connecting socket */
5027 sksec_sock->peer_sid = sksec_new->sid;
5028
5029 return 0;
5030}
5031
5032static int selinux_socket_unix_may_send(struct socket *sock,
5033 struct socket *other)
5034{
5035 struct sk_security_struct *ssec = sock->sk->sk_security;
5036 struct sk_security_struct *osec = other->sk->sk_security;
5037 struct common_audit_data ad;
5038 struct lsm_network_audit net;
5039
5040 ad_net_init_from_sk(&ad, &net, other->sk);
5041
5042 return avc_has_perm(ssec->sid, osec->sid, osec->sclass, SOCKET__SENDTO,
5043 &ad);
5044}
5045
5046static int selinux_inet_sys_rcv_skb(struct net *ns, int ifindex,
5047 char *addrp, u16 family, u32 peer_sid,
5048 struct common_audit_data *ad)
5049{
5050 int err;
5051 u32 if_sid;
5052 u32 node_sid;
5053
5054 err = sel_netif_sid(ns, ifindex, &if_sid);
5055 if (err)
5056 return err;
5057 err = avc_has_perm(peer_sid, if_sid,
5058 SECCLASS_NETIF, NETIF__INGRESS, ad);
5059 if (err)
5060 return err;
5061
5062 err = sel_netnode_sid(addrp, family, &node_sid);
5063 if (err)
5064 return err;
5065 return avc_has_perm(peer_sid, node_sid,
5066 SECCLASS_NODE, NODE__RECVFROM, ad);
5067}
5068
5069static int selinux_sock_rcv_skb_compat(struct sock *sk, struct sk_buff *skb,
5070 u16 family)
5071{
5072 int err = 0;
5073 struct sk_security_struct *sksec = sk->sk_security;
5074 u32 sk_sid = sksec->sid;
5075 struct common_audit_data ad;
5076 struct lsm_network_audit net;
5077 char *addrp;
5078
5079 ad_net_init_from_iif(&ad, &net, skb->skb_iif, family);
5080 err = selinux_parse_skb(skb, &ad, &addrp, 1, NULL);
5081 if (err)
5082 return err;
5083
5084 if (selinux_secmark_enabled()) {
5085 err = avc_has_perm(sk_sid, skb->secmark, SECCLASS_PACKET,
5086 PACKET__RECV, &ad);
5087 if (err)
5088 return err;
5089 }
5090
5091 err = selinux_netlbl_sock_rcv_skb(sksec, skb, family, &ad);
5092 if (err)
5093 return err;
5094 err = selinux_xfrm_sock_rcv_skb(sksec->sid, skb, &ad);
5095
5096 return err;
5097}
5098
5099static int selinux_socket_sock_rcv_skb(struct sock *sk, struct sk_buff *skb)
5100{
5101 int err, peerlbl_active, secmark_active;
5102 struct sk_security_struct *sksec = sk->sk_security;
5103 u16 family = sk->sk_family;
5104 u32 sk_sid = sksec->sid;
5105 struct common_audit_data ad;
5106 struct lsm_network_audit net;
5107 char *addrp;
5108
5109 if (family != PF_INET && family != PF_INET6)
5110 return 0;
5111
5112 /* Handle mapped IPv4 packets arriving via IPv6 sockets */
5113 if (family == PF_INET6 && skb->protocol == htons(ETH_P_IP))
5114 family = PF_INET;
5115
5116 /* If any sort of compatibility mode is enabled then handoff processing
5117 * to the selinux_sock_rcv_skb_compat() function to deal with the
5118 * special handling. We do this in an attempt to keep this function
5119 * as fast and as clean as possible. */
5120 if (!selinux_policycap_netpeer())
5121 return selinux_sock_rcv_skb_compat(sk, skb, family);
5122
5123 secmark_active = selinux_secmark_enabled();
5124 peerlbl_active = selinux_peerlbl_enabled();
5125 if (!secmark_active && !peerlbl_active)
5126 return 0;
5127
5128 ad_net_init_from_iif(&ad, &net, skb->skb_iif, family);
5129 err = selinux_parse_skb(skb, &ad, &addrp, 1, NULL);
5130 if (err)
5131 return err;
5132
5133 if (peerlbl_active) {
5134 u32 peer_sid;
5135
5136 err = selinux_skb_peerlbl_sid(skb, family, &peer_sid);
5137 if (err)
5138 return err;
5139 err = selinux_inet_sys_rcv_skb(sock_net(sk), skb->skb_iif,
5140 addrp, family, peer_sid, &ad);
5141 if (err) {
5142 selinux_netlbl_err(skb, family, err, 0);
5143 return err;
5144 }
5145 err = avc_has_perm(sk_sid, peer_sid, SECCLASS_PEER,
5146 PEER__RECV, &ad);
5147 if (err) {
5148 selinux_netlbl_err(skb, family, err, 0);
5149 return err;
5150 }
5151 }
5152
5153 if (secmark_active) {
5154 err = avc_has_perm(sk_sid, skb->secmark, SECCLASS_PACKET,
5155 PACKET__RECV, &ad);
5156 if (err)
5157 return err;
5158 }
5159
5160 return err;
5161}
5162
5163static int selinux_socket_getpeersec_stream(struct socket *sock,
5164 sockptr_t optval, sockptr_t optlen,
5165 unsigned int len)
5166{
5167 int err = 0;
5168 char *scontext = NULL;
5169 u32 scontext_len;
5170 struct sk_security_struct *sksec = sock->sk->sk_security;
5171 u32 peer_sid = SECSID_NULL;
5172
5173 if (sksec->sclass == SECCLASS_UNIX_STREAM_SOCKET ||
5174 sksec->sclass == SECCLASS_TCP_SOCKET ||
5175 sksec->sclass == SECCLASS_SCTP_SOCKET)
5176 peer_sid = sksec->peer_sid;
5177 if (peer_sid == SECSID_NULL)
5178 return -ENOPROTOOPT;
5179
5180 err = security_sid_to_context(peer_sid, &scontext,
5181 &scontext_len);
5182 if (err)
5183 return err;
5184 if (scontext_len > len) {
5185 err = -ERANGE;
5186 goto out_len;
5187 }
5188
5189 if (copy_to_sockptr(optval, scontext, scontext_len))
5190 err = -EFAULT;
5191out_len:
5192 if (copy_to_sockptr(optlen, &scontext_len, sizeof(scontext_len)))
5193 err = -EFAULT;
5194 kfree(scontext);
5195 return err;
5196}
5197
5198static int selinux_socket_getpeersec_dgram(struct socket *sock,
5199 struct sk_buff *skb, u32 *secid)
5200{
5201 u32 peer_secid = SECSID_NULL;
5202 u16 family;
5203
5204 if (skb && skb->protocol == htons(ETH_P_IP))
5205 family = PF_INET;
5206 else if (skb && skb->protocol == htons(ETH_P_IPV6))
5207 family = PF_INET6;
5208 else if (sock)
5209 family = sock->sk->sk_family;
5210 else {
5211 *secid = SECSID_NULL;
5212 return -EINVAL;
5213 }
5214
5215 if (sock && family == PF_UNIX) {
5216 struct inode_security_struct *isec;
5217 isec = inode_security_novalidate(SOCK_INODE(sock));
5218 peer_secid = isec->sid;
5219 } else if (skb)
5220 selinux_skb_peerlbl_sid(skb, family, &peer_secid);
5221
5222 *secid = peer_secid;
5223 if (peer_secid == SECSID_NULL)
5224 return -ENOPROTOOPT;
5225 return 0;
5226}
5227
5228static int selinux_sk_alloc_security(struct sock *sk, int family, gfp_t priority)
5229{
5230 struct sk_security_struct *sksec;
5231
5232 sksec = kzalloc(sizeof(*sksec), priority);
5233 if (!sksec)
5234 return -ENOMEM;
5235
5236 sksec->peer_sid = SECINITSID_UNLABELED;
5237 sksec->sid = SECINITSID_UNLABELED;
5238 sksec->sclass = SECCLASS_SOCKET;
5239 selinux_netlbl_sk_security_reset(sksec);
5240 sk->sk_security = sksec;
5241
5242 return 0;
5243}
5244
5245static void selinux_sk_free_security(struct sock *sk)
5246{
5247 struct sk_security_struct *sksec = sk->sk_security;
5248
5249 sk->sk_security = NULL;
5250 selinux_netlbl_sk_security_free(sksec);
5251 kfree(sksec);
5252}
5253
5254static void selinux_sk_clone_security(const struct sock *sk, struct sock *newsk)
5255{
5256 struct sk_security_struct *sksec = sk->sk_security;
5257 struct sk_security_struct *newsksec = newsk->sk_security;
5258
5259 newsksec->sid = sksec->sid;
5260 newsksec->peer_sid = sksec->peer_sid;
5261 newsksec->sclass = sksec->sclass;
5262
5263 selinux_netlbl_sk_security_reset(newsksec);
5264}
5265
5266static void selinux_sk_getsecid(const struct sock *sk, u32 *secid)
5267{
5268 if (!sk)
5269 *secid = SECINITSID_ANY_SOCKET;
5270 else {
5271 const struct sk_security_struct *sksec = sk->sk_security;
5272
5273 *secid = sksec->sid;
5274 }
5275}
5276
5277static void selinux_sock_graft(struct sock *sk, struct socket *parent)
5278{
5279 struct inode_security_struct *isec =
5280 inode_security_novalidate(SOCK_INODE(parent));
5281 struct sk_security_struct *sksec = sk->sk_security;
5282
5283 if (sk->sk_family == PF_INET || sk->sk_family == PF_INET6 ||
5284 sk->sk_family == PF_UNIX)
5285 isec->sid = sksec->sid;
5286 sksec->sclass = isec->sclass;
5287}
5288
5289/*
5290 * Determines peer_secid for the asoc and updates socket's peer label
5291 * if it's the first association on the socket.
5292 */
5293static int selinux_sctp_process_new_assoc(struct sctp_association *asoc,
5294 struct sk_buff *skb)
5295{
5296 struct sock *sk = asoc->base.sk;
5297 u16 family = sk->sk_family;
5298 struct sk_security_struct *sksec = sk->sk_security;
5299 struct common_audit_data ad;
5300 struct lsm_network_audit net;
5301 int err;
5302
5303 /* handle mapped IPv4 packets arriving via IPv6 sockets */
5304 if (family == PF_INET6 && skb->protocol == htons(ETH_P_IP))
5305 family = PF_INET;
5306
5307 if (selinux_peerlbl_enabled()) {
5308 asoc->peer_secid = SECSID_NULL;
5309
5310 /* This will return peer_sid = SECSID_NULL if there are
5311 * no peer labels, see security_net_peersid_resolve().
5312 */
5313 err = selinux_skb_peerlbl_sid(skb, family, &asoc->peer_secid);
5314 if (err)
5315 return err;
5316
5317 if (asoc->peer_secid == SECSID_NULL)
5318 asoc->peer_secid = SECINITSID_UNLABELED;
5319 } else {
5320 asoc->peer_secid = SECINITSID_UNLABELED;
5321 }
5322
5323 if (sksec->sctp_assoc_state == SCTP_ASSOC_UNSET) {
5324 sksec->sctp_assoc_state = SCTP_ASSOC_SET;
5325
5326 /* Here as first association on socket. As the peer SID
5327 * was allowed by peer recv (and the netif/node checks),
5328 * then it is approved by policy and used as the primary
5329 * peer SID for getpeercon(3).
5330 */
5331 sksec->peer_sid = asoc->peer_secid;
5332 } else if (sksec->peer_sid != asoc->peer_secid) {
5333 /* Other association peer SIDs are checked to enforce
5334 * consistency among the peer SIDs.
5335 */
5336 ad_net_init_from_sk(&ad, &net, asoc->base.sk);
5337 err = avc_has_perm(sksec->peer_sid, asoc->peer_secid,
5338 sksec->sclass, SCTP_SOCKET__ASSOCIATION,
5339 &ad);
5340 if (err)
5341 return err;
5342 }
5343 return 0;
5344}
5345
5346/* Called whenever SCTP receives an INIT or COOKIE ECHO chunk. This
5347 * happens on an incoming connect(2), sctp_connectx(3) or
5348 * sctp_sendmsg(3) (with no association already present).
5349 */
5350static int selinux_sctp_assoc_request(struct sctp_association *asoc,
5351 struct sk_buff *skb)
5352{
5353 struct sk_security_struct *sksec = asoc->base.sk->sk_security;
5354 u32 conn_sid;
5355 int err;
5356
5357 if (!selinux_policycap_extsockclass())
5358 return 0;
5359
5360 err = selinux_sctp_process_new_assoc(asoc, skb);
5361 if (err)
5362 return err;
5363
5364 /* Compute the MLS component for the connection and store
5365 * the information in asoc. This will be used by SCTP TCP type
5366 * sockets and peeled off connections as they cause a new
5367 * socket to be generated. selinux_sctp_sk_clone() will then
5368 * plug this into the new socket.
5369 */
5370 err = selinux_conn_sid(sksec->sid, asoc->peer_secid, &conn_sid);
5371 if (err)
5372 return err;
5373
5374 asoc->secid = conn_sid;
5375
5376 /* Set any NetLabel labels including CIPSO/CALIPSO options. */
5377 return selinux_netlbl_sctp_assoc_request(asoc, skb);
5378}
5379
5380/* Called when SCTP receives a COOKIE ACK chunk as the final
5381 * response to an association request (initited by us).
5382 */
5383static int selinux_sctp_assoc_established(struct sctp_association *asoc,
5384 struct sk_buff *skb)
5385{
5386 struct sk_security_struct *sksec = asoc->base.sk->sk_security;
5387
5388 if (!selinux_policycap_extsockclass())
5389 return 0;
5390
5391 /* Inherit secid from the parent socket - this will be picked up
5392 * by selinux_sctp_sk_clone() if the association gets peeled off
5393 * into a new socket.
5394 */
5395 asoc->secid = sksec->sid;
5396
5397 return selinux_sctp_process_new_assoc(asoc, skb);
5398}
5399
5400/* Check if sctp IPv4/IPv6 addresses are valid for binding or connecting
5401 * based on their @optname.
5402 */
5403static int selinux_sctp_bind_connect(struct sock *sk, int optname,
5404 struct sockaddr *address,
5405 int addrlen)
5406{
5407 int len, err = 0, walk_size = 0;
5408 void *addr_buf;
5409 struct sockaddr *addr;
5410 struct socket *sock;
5411
5412 if (!selinux_policycap_extsockclass())
5413 return 0;
5414
5415 /* Process one or more addresses that may be IPv4 or IPv6 */
5416 sock = sk->sk_socket;
5417 addr_buf = address;
5418
5419 while (walk_size < addrlen) {
5420 if (walk_size + sizeof(sa_family_t) > addrlen)
5421 return -EINVAL;
5422
5423 addr = addr_buf;
5424 switch (addr->sa_family) {
5425 case AF_UNSPEC:
5426 case AF_INET:
5427 len = sizeof(struct sockaddr_in);
5428 break;
5429 case AF_INET6:
5430 len = sizeof(struct sockaddr_in6);
5431 break;
5432 default:
5433 return -EINVAL;
5434 }
5435
5436 if (walk_size + len > addrlen)
5437 return -EINVAL;
5438
5439 err = -EINVAL;
5440 switch (optname) {
5441 /* Bind checks */
5442 case SCTP_PRIMARY_ADDR:
5443 case SCTP_SET_PEER_PRIMARY_ADDR:
5444 case SCTP_SOCKOPT_BINDX_ADD:
5445 err = selinux_socket_bind(sock, addr, len);
5446 break;
5447 /* Connect checks */
5448 case SCTP_SOCKOPT_CONNECTX:
5449 case SCTP_PARAM_SET_PRIMARY:
5450 case SCTP_PARAM_ADD_IP:
5451 case SCTP_SENDMSG_CONNECT:
5452 err = selinux_socket_connect_helper(sock, addr, len);
5453 if (err)
5454 return err;
5455
5456 /* As selinux_sctp_bind_connect() is called by the
5457 * SCTP protocol layer, the socket is already locked,
5458 * therefore selinux_netlbl_socket_connect_locked()
5459 * is called here. The situations handled are:
5460 * sctp_connectx(3), sctp_sendmsg(3), sendmsg(2),
5461 * whenever a new IP address is added or when a new
5462 * primary address is selected.
5463 * Note that an SCTP connect(2) call happens before
5464 * the SCTP protocol layer and is handled via
5465 * selinux_socket_connect().
5466 */
5467 err = selinux_netlbl_socket_connect_locked(sk, addr);
5468 break;
5469 }
5470
5471 if (err)
5472 return err;
5473
5474 addr_buf += len;
5475 walk_size += len;
5476 }
5477
5478 return 0;
5479}
5480
5481/* Called whenever a new socket is created by accept(2) or sctp_peeloff(3). */
5482static void selinux_sctp_sk_clone(struct sctp_association *asoc, struct sock *sk,
5483 struct sock *newsk)
5484{
5485 struct sk_security_struct *sksec = sk->sk_security;
5486 struct sk_security_struct *newsksec = newsk->sk_security;
5487
5488 /* If policy does not support SECCLASS_SCTP_SOCKET then call
5489 * the non-sctp clone version.
5490 */
5491 if (!selinux_policycap_extsockclass())
5492 return selinux_sk_clone_security(sk, newsk);
5493
5494 newsksec->sid = asoc->secid;
5495 newsksec->peer_sid = asoc->peer_secid;
5496 newsksec->sclass = sksec->sclass;
5497 selinux_netlbl_sctp_sk_clone(sk, newsk);
5498}
5499
5500static int selinux_mptcp_add_subflow(struct sock *sk, struct sock *ssk)
5501{
5502 struct sk_security_struct *ssksec = ssk->sk_security;
5503 struct sk_security_struct *sksec = sk->sk_security;
5504
5505 ssksec->sclass = sksec->sclass;
5506 ssksec->sid = sksec->sid;
5507
5508 /* replace the existing subflow label deleting the existing one
5509 * and re-recreating a new label using the updated context
5510 */
5511 selinux_netlbl_sk_security_free(ssksec);
5512 return selinux_netlbl_socket_post_create(ssk, ssk->sk_family);
5513}
5514
5515static int selinux_inet_conn_request(const struct sock *sk, struct sk_buff *skb,
5516 struct request_sock *req)
5517{
5518 struct sk_security_struct *sksec = sk->sk_security;
5519 int err;
5520 u16 family = req->rsk_ops->family;
5521 u32 connsid;
5522 u32 peersid;
5523
5524 err = selinux_skb_peerlbl_sid(skb, family, &peersid);
5525 if (err)
5526 return err;
5527 err = selinux_conn_sid(sksec->sid, peersid, &connsid);
5528 if (err)
5529 return err;
5530 req->secid = connsid;
5531 req->peer_secid = peersid;
5532
5533 return selinux_netlbl_inet_conn_request(req, family);
5534}
5535
5536static void selinux_inet_csk_clone(struct sock *newsk,
5537 const struct request_sock *req)
5538{
5539 struct sk_security_struct *newsksec = newsk->sk_security;
5540
5541 newsksec->sid = req->secid;
5542 newsksec->peer_sid = req->peer_secid;
5543 /* NOTE: Ideally, we should also get the isec->sid for the
5544 new socket in sync, but we don't have the isec available yet.
5545 So we will wait until sock_graft to do it, by which
5546 time it will have been created and available. */
5547
5548 /* We don't need to take any sort of lock here as we are the only
5549 * thread with access to newsksec */
5550 selinux_netlbl_inet_csk_clone(newsk, req->rsk_ops->family);
5551}
5552
5553static void selinux_inet_conn_established(struct sock *sk, struct sk_buff *skb)
5554{
5555 u16 family = sk->sk_family;
5556 struct sk_security_struct *sksec = sk->sk_security;
5557
5558 /* handle mapped IPv4 packets arriving via IPv6 sockets */
5559 if (family == PF_INET6 && skb->protocol == htons(ETH_P_IP))
5560 family = PF_INET;
5561
5562 selinux_skb_peerlbl_sid(skb, family, &sksec->peer_sid);
5563}
5564
5565static int selinux_secmark_relabel_packet(u32 sid)
5566{
5567 const struct task_security_struct *tsec;
5568 u32 tsid;
5569
5570 tsec = selinux_cred(current_cred());
5571 tsid = tsec->sid;
5572
5573 return avc_has_perm(tsid, sid, SECCLASS_PACKET, PACKET__RELABELTO,
5574 NULL);
5575}
5576
5577static void selinux_secmark_refcount_inc(void)
5578{
5579 atomic_inc(&selinux_secmark_refcount);
5580}
5581
5582static void selinux_secmark_refcount_dec(void)
5583{
5584 atomic_dec(&selinux_secmark_refcount);
5585}
5586
5587static void selinux_req_classify_flow(const struct request_sock *req,
5588 struct flowi_common *flic)
5589{
5590 flic->flowic_secid = req->secid;
5591}
5592
5593static int selinux_tun_dev_alloc_security(void **security)
5594{
5595 struct tun_security_struct *tunsec;
5596
5597 tunsec = kzalloc(sizeof(*tunsec), GFP_KERNEL);
5598 if (!tunsec)
5599 return -ENOMEM;
5600 tunsec->sid = current_sid();
5601
5602 *security = tunsec;
5603 return 0;
5604}
5605
5606static void selinux_tun_dev_free_security(void *security)
5607{
5608 kfree(security);
5609}
5610
5611static int selinux_tun_dev_create(void)
5612{
5613 u32 sid = current_sid();
5614
5615 /* we aren't taking into account the "sockcreate" SID since the socket
5616 * that is being created here is not a socket in the traditional sense,
5617 * instead it is a private sock, accessible only to the kernel, and
5618 * representing a wide range of network traffic spanning multiple
5619 * connections unlike traditional sockets - check the TUN driver to
5620 * get a better understanding of why this socket is special */
5621
5622 return avc_has_perm(sid, sid, SECCLASS_TUN_SOCKET, TUN_SOCKET__CREATE,
5623 NULL);
5624}
5625
5626static int selinux_tun_dev_attach_queue(void *security)
5627{
5628 struct tun_security_struct *tunsec = security;
5629
5630 return avc_has_perm(current_sid(), tunsec->sid, SECCLASS_TUN_SOCKET,
5631 TUN_SOCKET__ATTACH_QUEUE, NULL);
5632}
5633
5634static int selinux_tun_dev_attach(struct sock *sk, void *security)
5635{
5636 struct tun_security_struct *tunsec = security;
5637 struct sk_security_struct *sksec = sk->sk_security;
5638
5639 /* we don't currently perform any NetLabel based labeling here and it
5640 * isn't clear that we would want to do so anyway; while we could apply
5641 * labeling without the support of the TUN user the resulting labeled
5642 * traffic from the other end of the connection would almost certainly
5643 * cause confusion to the TUN user that had no idea network labeling
5644 * protocols were being used */
5645
5646 sksec->sid = tunsec->sid;
5647 sksec->sclass = SECCLASS_TUN_SOCKET;
5648
5649 return 0;
5650}
5651
5652static int selinux_tun_dev_open(void *security)
5653{
5654 struct tun_security_struct *tunsec = security;
5655 u32 sid = current_sid();
5656 int err;
5657
5658 err = avc_has_perm(sid, tunsec->sid, SECCLASS_TUN_SOCKET,
5659 TUN_SOCKET__RELABELFROM, NULL);
5660 if (err)
5661 return err;
5662 err = avc_has_perm(sid, sid, SECCLASS_TUN_SOCKET,
5663 TUN_SOCKET__RELABELTO, NULL);
5664 if (err)
5665 return err;
5666 tunsec->sid = sid;
5667
5668 return 0;
5669}
5670
5671#ifdef CONFIG_NETFILTER
5672
5673static unsigned int selinux_ip_forward(void *priv, struct sk_buff *skb,
5674 const struct nf_hook_state *state)
5675{
5676 int ifindex;
5677 u16 family;
5678 char *addrp;
5679 u32 peer_sid;
5680 struct common_audit_data ad;
5681 struct lsm_network_audit net;
5682 int secmark_active, peerlbl_active;
5683
5684 if (!selinux_policycap_netpeer())
5685 return NF_ACCEPT;
5686
5687 secmark_active = selinux_secmark_enabled();
5688 peerlbl_active = selinux_peerlbl_enabled();
5689 if (!secmark_active && !peerlbl_active)
5690 return NF_ACCEPT;
5691
5692 family = state->pf;
5693 if (selinux_skb_peerlbl_sid(skb, family, &peer_sid) != 0)
5694 return NF_DROP;
5695
5696 ifindex = state->in->ifindex;
5697 ad_net_init_from_iif(&ad, &net, ifindex, family);
5698 if (selinux_parse_skb(skb, &ad, &addrp, 1, NULL) != 0)
5699 return NF_DROP;
5700
5701 if (peerlbl_active) {
5702 int err;
5703
5704 err = selinux_inet_sys_rcv_skb(state->net, ifindex,
5705 addrp, family, peer_sid, &ad);
5706 if (err) {
5707 selinux_netlbl_err(skb, family, err, 1);
5708 return NF_DROP;
5709 }
5710 }
5711
5712 if (secmark_active)
5713 if (avc_has_perm(peer_sid, skb->secmark,
5714 SECCLASS_PACKET, PACKET__FORWARD_IN, &ad))
5715 return NF_DROP;
5716
5717 if (netlbl_enabled())
5718 /* we do this in the FORWARD path and not the POST_ROUTING
5719 * path because we want to make sure we apply the necessary
5720 * labeling before IPsec is applied so we can leverage AH
5721 * protection */
5722 if (selinux_netlbl_skbuff_setsid(skb, family, peer_sid) != 0)
5723 return NF_DROP;
5724
5725 return NF_ACCEPT;
5726}
5727
5728static unsigned int selinux_ip_output(void *priv, struct sk_buff *skb,
5729 const struct nf_hook_state *state)
5730{
5731 struct sock *sk;
5732 u32 sid;
5733
5734 if (!netlbl_enabled())
5735 return NF_ACCEPT;
5736
5737 /* we do this in the LOCAL_OUT path and not the POST_ROUTING path
5738 * because we want to make sure we apply the necessary labeling
5739 * before IPsec is applied so we can leverage AH protection */
5740 sk = skb->sk;
5741 if (sk) {
5742 struct sk_security_struct *sksec;
5743
5744 if (sk_listener(sk))
5745 /* if the socket is the listening state then this
5746 * packet is a SYN-ACK packet which means it needs to
5747 * be labeled based on the connection/request_sock and
5748 * not the parent socket. unfortunately, we can't
5749 * lookup the request_sock yet as it isn't queued on
5750 * the parent socket until after the SYN-ACK is sent.
5751 * the "solution" is to simply pass the packet as-is
5752 * as any IP option based labeling should be copied
5753 * from the initial connection request (in the IP
5754 * layer). it is far from ideal, but until we get a
5755 * security label in the packet itself this is the
5756 * best we can do. */
5757 return NF_ACCEPT;
5758
5759 /* standard practice, label using the parent socket */
5760 sksec = sk->sk_security;
5761 sid = sksec->sid;
5762 } else
5763 sid = SECINITSID_KERNEL;
5764 if (selinux_netlbl_skbuff_setsid(skb, state->pf, sid) != 0)
5765 return NF_DROP;
5766
5767 return NF_ACCEPT;
5768}
5769
5770
5771static unsigned int selinux_ip_postroute_compat(struct sk_buff *skb,
5772 const struct nf_hook_state *state)
5773{
5774 struct sock *sk;
5775 struct sk_security_struct *sksec;
5776 struct common_audit_data ad;
5777 struct lsm_network_audit net;
5778 u8 proto = 0;
5779
5780 sk = skb_to_full_sk(skb);
5781 if (sk == NULL)
5782 return NF_ACCEPT;
5783 sksec = sk->sk_security;
5784
5785 ad_net_init_from_iif(&ad, &net, state->out->ifindex, state->pf);
5786 if (selinux_parse_skb(skb, &ad, NULL, 0, &proto))
5787 return NF_DROP;
5788
5789 if (selinux_secmark_enabled())
5790 if (avc_has_perm(sksec->sid, skb->secmark,
5791 SECCLASS_PACKET, PACKET__SEND, &ad))
5792 return NF_DROP_ERR(-ECONNREFUSED);
5793
5794 if (selinux_xfrm_postroute_last(sksec->sid, skb, &ad, proto))
5795 return NF_DROP_ERR(-ECONNREFUSED);
5796
5797 return NF_ACCEPT;
5798}
5799
5800static unsigned int selinux_ip_postroute(void *priv,
5801 struct sk_buff *skb,
5802 const struct nf_hook_state *state)
5803{
5804 u16 family;
5805 u32 secmark_perm;
5806 u32 peer_sid;
5807 int ifindex;
5808 struct sock *sk;
5809 struct common_audit_data ad;
5810 struct lsm_network_audit net;
5811 char *addrp;
5812 int secmark_active, peerlbl_active;
5813
5814 /* If any sort of compatibility mode is enabled then handoff processing
5815 * to the selinux_ip_postroute_compat() function to deal with the
5816 * special handling. We do this in an attempt to keep this function
5817 * as fast and as clean as possible. */
5818 if (!selinux_policycap_netpeer())
5819 return selinux_ip_postroute_compat(skb, state);
5820
5821 secmark_active = selinux_secmark_enabled();
5822 peerlbl_active = selinux_peerlbl_enabled();
5823 if (!secmark_active && !peerlbl_active)
5824 return NF_ACCEPT;
5825
5826 sk = skb_to_full_sk(skb);
5827
5828#ifdef CONFIG_XFRM
5829 /* If skb->dst->xfrm is non-NULL then the packet is undergoing an IPsec
5830 * packet transformation so allow the packet to pass without any checks
5831 * since we'll have another chance to perform access control checks
5832 * when the packet is on it's final way out.
5833 * NOTE: there appear to be some IPv6 multicast cases where skb->dst
5834 * is NULL, in this case go ahead and apply access control.
5835 * NOTE: if this is a local socket (skb->sk != NULL) that is in the
5836 * TCP listening state we cannot wait until the XFRM processing
5837 * is done as we will miss out on the SA label if we do;
5838 * unfortunately, this means more work, but it is only once per
5839 * connection. */
5840 if (skb_dst(skb) != NULL && skb_dst(skb)->xfrm != NULL &&
5841 !(sk && sk_listener(sk)))
5842 return NF_ACCEPT;
5843#endif
5844
5845 family = state->pf;
5846 if (sk == NULL) {
5847 /* Without an associated socket the packet is either coming
5848 * from the kernel or it is being forwarded; check the packet
5849 * to determine which and if the packet is being forwarded
5850 * query the packet directly to determine the security label. */
5851 if (skb->skb_iif) {
5852 secmark_perm = PACKET__FORWARD_OUT;
5853 if (selinux_skb_peerlbl_sid(skb, family, &peer_sid))
5854 return NF_DROP;
5855 } else {
5856 secmark_perm = PACKET__SEND;
5857 peer_sid = SECINITSID_KERNEL;
5858 }
5859 } else if (sk_listener(sk)) {
5860 /* Locally generated packet but the associated socket is in the
5861 * listening state which means this is a SYN-ACK packet. In
5862 * this particular case the correct security label is assigned
5863 * to the connection/request_sock but unfortunately we can't
5864 * query the request_sock as it isn't queued on the parent
5865 * socket until after the SYN-ACK packet is sent; the only
5866 * viable choice is to regenerate the label like we do in
5867 * selinux_inet_conn_request(). See also selinux_ip_output()
5868 * for similar problems. */
5869 u32 skb_sid;
5870 struct sk_security_struct *sksec;
5871
5872 sksec = sk->sk_security;
5873 if (selinux_skb_peerlbl_sid(skb, family, &skb_sid))
5874 return NF_DROP;
5875 /* At this point, if the returned skb peerlbl is SECSID_NULL
5876 * and the packet has been through at least one XFRM
5877 * transformation then we must be dealing with the "final"
5878 * form of labeled IPsec packet; since we've already applied
5879 * all of our access controls on this packet we can safely
5880 * pass the packet. */
5881 if (skb_sid == SECSID_NULL) {
5882 switch (family) {
5883 case PF_INET:
5884 if (IPCB(skb)->flags & IPSKB_XFRM_TRANSFORMED)
5885 return NF_ACCEPT;
5886 break;
5887 case PF_INET6:
5888 if (IP6CB(skb)->flags & IP6SKB_XFRM_TRANSFORMED)
5889 return NF_ACCEPT;
5890 break;
5891 default:
5892 return NF_DROP_ERR(-ECONNREFUSED);
5893 }
5894 }
5895 if (selinux_conn_sid(sksec->sid, skb_sid, &peer_sid))
5896 return NF_DROP;
5897 secmark_perm = PACKET__SEND;
5898 } else {
5899 /* Locally generated packet, fetch the security label from the
5900 * associated socket. */
5901 struct sk_security_struct *sksec = sk->sk_security;
5902 peer_sid = sksec->sid;
5903 secmark_perm = PACKET__SEND;
5904 }
5905
5906 ifindex = state->out->ifindex;
5907 ad_net_init_from_iif(&ad, &net, ifindex, family);
5908 if (selinux_parse_skb(skb, &ad, &addrp, 0, NULL))
5909 return NF_DROP;
5910
5911 if (secmark_active)
5912 if (avc_has_perm(peer_sid, skb->secmark,
5913 SECCLASS_PACKET, secmark_perm, &ad))
5914 return NF_DROP_ERR(-ECONNREFUSED);
5915
5916 if (peerlbl_active) {
5917 u32 if_sid;
5918 u32 node_sid;
5919
5920 if (sel_netif_sid(state->net, ifindex, &if_sid))
5921 return NF_DROP;
5922 if (avc_has_perm(peer_sid, if_sid,
5923 SECCLASS_NETIF, NETIF__EGRESS, &ad))
5924 return NF_DROP_ERR(-ECONNREFUSED);
5925
5926 if (sel_netnode_sid(addrp, family, &node_sid))
5927 return NF_DROP;
5928 if (avc_has_perm(peer_sid, node_sid,
5929 SECCLASS_NODE, NODE__SENDTO, &ad))
5930 return NF_DROP_ERR(-ECONNREFUSED);
5931 }
5932
5933 return NF_ACCEPT;
5934}
5935#endif /* CONFIG_NETFILTER */
5936
5937static int selinux_netlink_send(struct sock *sk, struct sk_buff *skb)
5938{
5939 int rc = 0;
5940 unsigned int msg_len;
5941 unsigned int data_len = skb->len;
5942 unsigned char *data = skb->data;
5943 struct nlmsghdr *nlh;
5944 struct sk_security_struct *sksec = sk->sk_security;
5945 u16 sclass = sksec->sclass;
5946 u32 perm;
5947
5948 while (data_len >= nlmsg_total_size(0)) {
5949 nlh = (struct nlmsghdr *)data;
5950
5951 /* NOTE: the nlmsg_len field isn't reliably set by some netlink
5952 * users which means we can't reject skb's with bogus
5953 * length fields; our solution is to follow what
5954 * netlink_rcv_skb() does and simply skip processing at
5955 * messages with length fields that are clearly junk
5956 */
5957 if (nlh->nlmsg_len < NLMSG_HDRLEN || nlh->nlmsg_len > data_len)
5958 return 0;
5959
5960 rc = selinux_nlmsg_lookup(sclass, nlh->nlmsg_type, &perm);
5961 if (rc == 0) {
5962 rc = sock_has_perm(sk, perm);
5963 if (rc)
5964 return rc;
5965 } else if (rc == -EINVAL) {
5966 /* -EINVAL is a missing msg/perm mapping */
5967 pr_warn_ratelimited("SELinux: unrecognized netlink"
5968 " message: protocol=%hu nlmsg_type=%hu sclass=%s"
5969 " pid=%d comm=%s\n",
5970 sk->sk_protocol, nlh->nlmsg_type,
5971 secclass_map[sclass - 1].name,
5972 task_pid_nr(current), current->comm);
5973 if (enforcing_enabled() &&
5974 !security_get_allow_unknown())
5975 return rc;
5976 rc = 0;
5977 } else if (rc == -ENOENT) {
5978 /* -ENOENT is a missing socket/class mapping, ignore */
5979 rc = 0;
5980 } else {
5981 return rc;
5982 }
5983
5984 /* move to the next message after applying netlink padding */
5985 msg_len = NLMSG_ALIGN(nlh->nlmsg_len);
5986 if (msg_len >= data_len)
5987 return 0;
5988 data_len -= msg_len;
5989 data += msg_len;
5990 }
5991
5992 return rc;
5993}
5994
5995static void ipc_init_security(struct ipc_security_struct *isec, u16 sclass)
5996{
5997 isec->sclass = sclass;
5998 isec->sid = current_sid();
5999}
6000
6001static int ipc_has_perm(struct kern_ipc_perm *ipc_perms,
6002 u32 perms)
6003{
6004 struct ipc_security_struct *isec;
6005 struct common_audit_data ad;
6006 u32 sid = current_sid();
6007
6008 isec = selinux_ipc(ipc_perms);
6009
6010 ad.type = LSM_AUDIT_DATA_IPC;
6011 ad.u.ipc_id = ipc_perms->key;
6012
6013 return avc_has_perm(sid, isec->sid, isec->sclass, perms, &ad);
6014}
6015
6016static int selinux_msg_msg_alloc_security(struct msg_msg *msg)
6017{
6018 struct msg_security_struct *msec;
6019
6020 msec = selinux_msg_msg(msg);
6021 msec->sid = SECINITSID_UNLABELED;
6022
6023 return 0;
6024}
6025
6026/* message queue security operations */
6027static int selinux_msg_queue_alloc_security(struct kern_ipc_perm *msq)
6028{
6029 struct ipc_security_struct *isec;
6030 struct common_audit_data ad;
6031 u32 sid = current_sid();
6032
6033 isec = selinux_ipc(msq);
6034 ipc_init_security(isec, SECCLASS_MSGQ);
6035
6036 ad.type = LSM_AUDIT_DATA_IPC;
6037 ad.u.ipc_id = msq->key;
6038
6039 return avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
6040 MSGQ__CREATE, &ad);
6041}
6042
6043static int selinux_msg_queue_associate(struct kern_ipc_perm *msq, int msqflg)
6044{
6045 struct ipc_security_struct *isec;
6046 struct common_audit_data ad;
6047 u32 sid = current_sid();
6048
6049 isec = selinux_ipc(msq);
6050
6051 ad.type = LSM_AUDIT_DATA_IPC;
6052 ad.u.ipc_id = msq->key;
6053
6054 return avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
6055 MSGQ__ASSOCIATE, &ad);
6056}
6057
6058static int selinux_msg_queue_msgctl(struct kern_ipc_perm *msq, int cmd)
6059{
6060 u32 perms;
6061
6062 switch (cmd) {
6063 case IPC_INFO:
6064 case MSG_INFO:
6065 /* No specific object, just general system-wide information. */
6066 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
6067 SECCLASS_SYSTEM, SYSTEM__IPC_INFO, NULL);
6068 case IPC_STAT:
6069 case MSG_STAT:
6070 case MSG_STAT_ANY:
6071 perms = MSGQ__GETATTR | MSGQ__ASSOCIATE;
6072 break;
6073 case IPC_SET:
6074 perms = MSGQ__SETATTR;
6075 break;
6076 case IPC_RMID:
6077 perms = MSGQ__DESTROY;
6078 break;
6079 default:
6080 return 0;
6081 }
6082
6083 return ipc_has_perm(msq, perms);
6084}
6085
6086static int selinux_msg_queue_msgsnd(struct kern_ipc_perm *msq, struct msg_msg *msg, int msqflg)
6087{
6088 struct ipc_security_struct *isec;
6089 struct msg_security_struct *msec;
6090 struct common_audit_data ad;
6091 u32 sid = current_sid();
6092 int rc;
6093
6094 isec = selinux_ipc(msq);
6095 msec = selinux_msg_msg(msg);
6096
6097 /*
6098 * First time through, need to assign label to the message
6099 */
6100 if (msec->sid == SECINITSID_UNLABELED) {
6101 /*
6102 * Compute new sid based on current process and
6103 * message queue this message will be stored in
6104 */
6105 rc = security_transition_sid(sid, isec->sid,
6106 SECCLASS_MSG, NULL, &msec->sid);
6107 if (rc)
6108 return rc;
6109 }
6110
6111 ad.type = LSM_AUDIT_DATA_IPC;
6112 ad.u.ipc_id = msq->key;
6113
6114 /* Can this process write to the queue? */
6115 rc = avc_has_perm(sid, isec->sid, SECCLASS_MSGQ,
6116 MSGQ__WRITE, &ad);
6117 if (!rc)
6118 /* Can this process send the message */
6119 rc = avc_has_perm(sid, msec->sid, SECCLASS_MSG,
6120 MSG__SEND, &ad);
6121 if (!rc)
6122 /* Can the message be put in the queue? */
6123 rc = avc_has_perm(msec->sid, isec->sid, SECCLASS_MSGQ,
6124 MSGQ__ENQUEUE, &ad);
6125
6126 return rc;
6127}
6128
6129static int selinux_msg_queue_msgrcv(struct kern_ipc_perm *msq, struct msg_msg *msg,
6130 struct task_struct *target,
6131 long type, int mode)
6132{
6133 struct ipc_security_struct *isec;
6134 struct msg_security_struct *msec;
6135 struct common_audit_data ad;
6136 u32 sid = task_sid_obj(target);
6137 int rc;
6138
6139 isec = selinux_ipc(msq);
6140 msec = selinux_msg_msg(msg);
6141
6142 ad.type = LSM_AUDIT_DATA_IPC;
6143 ad.u.ipc_id = msq->key;
6144
6145 rc = avc_has_perm(sid, isec->sid,
6146 SECCLASS_MSGQ, MSGQ__READ, &ad);
6147 if (!rc)
6148 rc = avc_has_perm(sid, msec->sid,
6149 SECCLASS_MSG, MSG__RECEIVE, &ad);
6150 return rc;
6151}
6152
6153/* Shared Memory security operations */
6154static int selinux_shm_alloc_security(struct kern_ipc_perm *shp)
6155{
6156 struct ipc_security_struct *isec;
6157 struct common_audit_data ad;
6158 u32 sid = current_sid();
6159
6160 isec = selinux_ipc(shp);
6161 ipc_init_security(isec, SECCLASS_SHM);
6162
6163 ad.type = LSM_AUDIT_DATA_IPC;
6164 ad.u.ipc_id = shp->key;
6165
6166 return avc_has_perm(sid, isec->sid, SECCLASS_SHM,
6167 SHM__CREATE, &ad);
6168}
6169
6170static int selinux_shm_associate(struct kern_ipc_perm *shp, int shmflg)
6171{
6172 struct ipc_security_struct *isec;
6173 struct common_audit_data ad;
6174 u32 sid = current_sid();
6175
6176 isec = selinux_ipc(shp);
6177
6178 ad.type = LSM_AUDIT_DATA_IPC;
6179 ad.u.ipc_id = shp->key;
6180
6181 return avc_has_perm(sid, isec->sid, SECCLASS_SHM,
6182 SHM__ASSOCIATE, &ad);
6183}
6184
6185/* Note, at this point, shp is locked down */
6186static int selinux_shm_shmctl(struct kern_ipc_perm *shp, int cmd)
6187{
6188 u32 perms;
6189
6190 switch (cmd) {
6191 case IPC_INFO:
6192 case SHM_INFO:
6193 /* No specific object, just general system-wide information. */
6194 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
6195 SECCLASS_SYSTEM, SYSTEM__IPC_INFO, NULL);
6196 case IPC_STAT:
6197 case SHM_STAT:
6198 case SHM_STAT_ANY:
6199 perms = SHM__GETATTR | SHM__ASSOCIATE;
6200 break;
6201 case IPC_SET:
6202 perms = SHM__SETATTR;
6203 break;
6204 case SHM_LOCK:
6205 case SHM_UNLOCK:
6206 perms = SHM__LOCK;
6207 break;
6208 case IPC_RMID:
6209 perms = SHM__DESTROY;
6210 break;
6211 default:
6212 return 0;
6213 }
6214
6215 return ipc_has_perm(shp, perms);
6216}
6217
6218static int selinux_shm_shmat(struct kern_ipc_perm *shp,
6219 char __user *shmaddr, int shmflg)
6220{
6221 u32 perms;
6222
6223 if (shmflg & SHM_RDONLY)
6224 perms = SHM__READ;
6225 else
6226 perms = SHM__READ | SHM__WRITE;
6227
6228 return ipc_has_perm(shp, perms);
6229}
6230
6231/* Semaphore security operations */
6232static int selinux_sem_alloc_security(struct kern_ipc_perm *sma)
6233{
6234 struct ipc_security_struct *isec;
6235 struct common_audit_data ad;
6236 u32 sid = current_sid();
6237
6238 isec = selinux_ipc(sma);
6239 ipc_init_security(isec, SECCLASS_SEM);
6240
6241 ad.type = LSM_AUDIT_DATA_IPC;
6242 ad.u.ipc_id = sma->key;
6243
6244 return avc_has_perm(sid, isec->sid, SECCLASS_SEM,
6245 SEM__CREATE, &ad);
6246}
6247
6248static int selinux_sem_associate(struct kern_ipc_perm *sma, int semflg)
6249{
6250 struct ipc_security_struct *isec;
6251 struct common_audit_data ad;
6252 u32 sid = current_sid();
6253
6254 isec = selinux_ipc(sma);
6255
6256 ad.type = LSM_AUDIT_DATA_IPC;
6257 ad.u.ipc_id = sma->key;
6258
6259 return avc_has_perm(sid, isec->sid, SECCLASS_SEM,
6260 SEM__ASSOCIATE, &ad);
6261}
6262
6263/* Note, at this point, sma is locked down */
6264static int selinux_sem_semctl(struct kern_ipc_perm *sma, int cmd)
6265{
6266 int err;
6267 u32 perms;
6268
6269 switch (cmd) {
6270 case IPC_INFO:
6271 case SEM_INFO:
6272 /* No specific object, just general system-wide information. */
6273 return avc_has_perm(current_sid(), SECINITSID_KERNEL,
6274 SECCLASS_SYSTEM, SYSTEM__IPC_INFO, NULL);
6275 case GETPID:
6276 case GETNCNT:
6277 case GETZCNT:
6278 perms = SEM__GETATTR;
6279 break;
6280 case GETVAL:
6281 case GETALL:
6282 perms = SEM__READ;
6283 break;
6284 case SETVAL:
6285 case SETALL:
6286 perms = SEM__WRITE;
6287 break;
6288 case IPC_RMID:
6289 perms = SEM__DESTROY;
6290 break;
6291 case IPC_SET:
6292 perms = SEM__SETATTR;
6293 break;
6294 case IPC_STAT:
6295 case SEM_STAT:
6296 case SEM_STAT_ANY:
6297 perms = SEM__GETATTR | SEM__ASSOCIATE;
6298 break;
6299 default:
6300 return 0;
6301 }
6302
6303 err = ipc_has_perm(sma, perms);
6304 return err;
6305}
6306
6307static int selinux_sem_semop(struct kern_ipc_perm *sma,
6308 struct sembuf *sops, unsigned nsops, int alter)
6309{
6310 u32 perms;
6311
6312 if (alter)
6313 perms = SEM__READ | SEM__WRITE;
6314 else
6315 perms = SEM__READ;
6316
6317 return ipc_has_perm(sma, perms);
6318}
6319
6320static int selinux_ipc_permission(struct kern_ipc_perm *ipcp, short flag)
6321{
6322 u32 av = 0;
6323
6324 av = 0;
6325 if (flag & S_IRUGO)
6326 av |= IPC__UNIX_READ;
6327 if (flag & S_IWUGO)
6328 av |= IPC__UNIX_WRITE;
6329
6330 if (av == 0)
6331 return 0;
6332
6333 return ipc_has_perm(ipcp, av);
6334}
6335
6336static void selinux_ipc_getsecid(struct kern_ipc_perm *ipcp, u32 *secid)
6337{
6338 struct ipc_security_struct *isec = selinux_ipc(ipcp);
6339 *secid = isec->sid;
6340}
6341
6342static void selinux_d_instantiate(struct dentry *dentry, struct inode *inode)
6343{
6344 if (inode)
6345 inode_doinit_with_dentry(inode, dentry);
6346}
6347
6348static int selinux_lsm_getattr(unsigned int attr, struct task_struct *p,
6349 char **value)
6350{
6351 const struct task_security_struct *__tsec;
6352 u32 sid;
6353 int error;
6354 unsigned len;
6355
6356 rcu_read_lock();
6357 __tsec = selinux_cred(__task_cred(p));
6358
6359 if (current != p) {
6360 error = avc_has_perm(current_sid(), __tsec->sid,
6361 SECCLASS_PROCESS, PROCESS__GETATTR, NULL);
6362 if (error)
6363 goto bad;
6364 }
6365
6366 switch (attr) {
6367 case LSM_ATTR_CURRENT:
6368 sid = __tsec->sid;
6369 break;
6370 case LSM_ATTR_PREV:
6371 sid = __tsec->osid;
6372 break;
6373 case LSM_ATTR_EXEC:
6374 sid = __tsec->exec_sid;
6375 break;
6376 case LSM_ATTR_FSCREATE:
6377 sid = __tsec->create_sid;
6378 break;
6379 case LSM_ATTR_KEYCREATE:
6380 sid = __tsec->keycreate_sid;
6381 break;
6382 case LSM_ATTR_SOCKCREATE:
6383 sid = __tsec->sockcreate_sid;
6384 break;
6385 default:
6386 error = -EOPNOTSUPP;
6387 goto bad;
6388 }
6389 rcu_read_unlock();
6390
6391 if (!sid)
6392 return 0;
6393
6394 error = security_sid_to_context(sid, value, &len);
6395 if (error)
6396 return error;
6397 return len;
6398
6399bad:
6400 rcu_read_unlock();
6401 return error;
6402}
6403
6404static int selinux_lsm_setattr(u64 attr, void *value, size_t size)
6405{
6406 struct task_security_struct *tsec;
6407 struct cred *new;
6408 u32 mysid = current_sid(), sid = 0, ptsid;
6409 int error;
6410 char *str = value;
6411
6412 /*
6413 * Basic control over ability to set these attributes at all.
6414 */
6415 switch (attr) {
6416 case LSM_ATTR_EXEC:
6417 error = avc_has_perm(mysid, mysid, SECCLASS_PROCESS,
6418 PROCESS__SETEXEC, NULL);
6419 break;
6420 case LSM_ATTR_FSCREATE:
6421 error = avc_has_perm(mysid, mysid, SECCLASS_PROCESS,
6422 PROCESS__SETFSCREATE, NULL);
6423 break;
6424 case LSM_ATTR_KEYCREATE:
6425 error = avc_has_perm(mysid, mysid, SECCLASS_PROCESS,
6426 PROCESS__SETKEYCREATE, NULL);
6427 break;
6428 case LSM_ATTR_SOCKCREATE:
6429 error = avc_has_perm(mysid, mysid, SECCLASS_PROCESS,
6430 PROCESS__SETSOCKCREATE, NULL);
6431 break;
6432 case LSM_ATTR_CURRENT:
6433 error = avc_has_perm(mysid, mysid, SECCLASS_PROCESS,
6434 PROCESS__SETCURRENT, NULL);
6435 break;
6436 default:
6437 error = -EOPNOTSUPP;
6438 break;
6439 }
6440 if (error)
6441 return error;
6442
6443 /* Obtain a SID for the context, if one was specified. */
6444 if (size && str[0] && str[0] != '\n') {
6445 if (str[size-1] == '\n') {
6446 str[size-1] = 0;
6447 size--;
6448 }
6449 error = security_context_to_sid(value, size,
6450 &sid, GFP_KERNEL);
6451 if (error == -EINVAL && attr == LSM_ATTR_FSCREATE) {
6452 if (!has_cap_mac_admin(true)) {
6453 struct audit_buffer *ab;
6454 size_t audit_size;
6455
6456 /* We strip a nul only if it is at the end,
6457 * otherwise the context contains a nul and
6458 * we should audit that */
6459 if (str[size - 1] == '\0')
6460 audit_size = size - 1;
6461 else
6462 audit_size = size;
6463 ab = audit_log_start(audit_context(),
6464 GFP_ATOMIC,
6465 AUDIT_SELINUX_ERR);
6466 if (!ab)
6467 return error;
6468 audit_log_format(ab, "op=fscreate invalid_context=");
6469 audit_log_n_untrustedstring(ab, value,
6470 audit_size);
6471 audit_log_end(ab);
6472
6473 return error;
6474 }
6475 error = security_context_to_sid_force(value, size,
6476 &sid);
6477 }
6478 if (error)
6479 return error;
6480 }
6481
6482 new = prepare_creds();
6483 if (!new)
6484 return -ENOMEM;
6485
6486 /* Permission checking based on the specified context is
6487 performed during the actual operation (execve,
6488 open/mkdir/...), when we know the full context of the
6489 operation. See selinux_bprm_creds_for_exec for the execve
6490 checks and may_create for the file creation checks. The
6491 operation will then fail if the context is not permitted. */
6492 tsec = selinux_cred(new);
6493 if (attr == LSM_ATTR_EXEC) {
6494 tsec->exec_sid = sid;
6495 } else if (attr == LSM_ATTR_FSCREATE) {
6496 tsec->create_sid = sid;
6497 } else if (attr == LSM_ATTR_KEYCREATE) {
6498 if (sid) {
6499 error = avc_has_perm(mysid, sid,
6500 SECCLASS_KEY, KEY__CREATE, NULL);
6501 if (error)
6502 goto abort_change;
6503 }
6504 tsec->keycreate_sid = sid;
6505 } else if (attr == LSM_ATTR_SOCKCREATE) {
6506 tsec->sockcreate_sid = sid;
6507 } else if (attr == LSM_ATTR_CURRENT) {
6508 error = -EINVAL;
6509 if (sid == 0)
6510 goto abort_change;
6511
6512 if (!current_is_single_threaded()) {
6513 error = security_bounded_transition(tsec->sid, sid);
6514 if (error)
6515 goto abort_change;
6516 }
6517
6518 /* Check permissions for the transition. */
6519 error = avc_has_perm(tsec->sid, sid, SECCLASS_PROCESS,
6520 PROCESS__DYNTRANSITION, NULL);
6521 if (error)
6522 goto abort_change;
6523
6524 /* Check for ptracing, and update the task SID if ok.
6525 Otherwise, leave SID unchanged and fail. */
6526 ptsid = ptrace_parent_sid();
6527 if (ptsid != 0) {
6528 error = avc_has_perm(ptsid, sid, SECCLASS_PROCESS,
6529 PROCESS__PTRACE, NULL);
6530 if (error)
6531 goto abort_change;
6532 }
6533
6534 tsec->sid = sid;
6535 } else {
6536 error = -EINVAL;
6537 goto abort_change;
6538 }
6539
6540 commit_creds(new);
6541 return size;
6542
6543abort_change:
6544 abort_creds(new);
6545 return error;
6546}
6547
6548/**
6549 * selinux_getselfattr - Get SELinux current task attributes
6550 * @attr: the requested attribute
6551 * @ctx: buffer to receive the result
6552 * @size: buffer size (input), buffer size used (output)
6553 * @flags: unused
6554 *
6555 * Fill the passed user space @ctx with the details of the requested
6556 * attribute.
6557 *
6558 * Returns the number of attributes on success, an error code otherwise.
6559 * There will only ever be one attribute.
6560 */
6561static int selinux_getselfattr(unsigned int attr, struct lsm_ctx __user *ctx,
6562 u32 *size, u32 flags)
6563{
6564 int rc;
6565 char *val = NULL;
6566 int val_len;
6567
6568 val_len = selinux_lsm_getattr(attr, current, &val);
6569 if (val_len < 0)
6570 return val_len;
6571 rc = lsm_fill_user_ctx(ctx, size, val, val_len, LSM_ID_SELINUX, 0);
6572 kfree(val);
6573 return (!rc ? 1 : rc);
6574}
6575
6576static int selinux_setselfattr(unsigned int attr, struct lsm_ctx *ctx,
6577 u32 size, u32 flags)
6578{
6579 int rc;
6580
6581 rc = selinux_lsm_setattr(attr, ctx->ctx, ctx->ctx_len);
6582 if (rc > 0)
6583 return 0;
6584 return rc;
6585}
6586
6587static int selinux_getprocattr(struct task_struct *p,
6588 const char *name, char **value)
6589{
6590 unsigned int attr = lsm_name_to_attr(name);
6591 int rc;
6592
6593 if (attr) {
6594 rc = selinux_lsm_getattr(attr, p, value);
6595 if (rc != -EOPNOTSUPP)
6596 return rc;
6597 }
6598
6599 return -EINVAL;
6600}
6601
6602static int selinux_setprocattr(const char *name, void *value, size_t size)
6603{
6604 int attr = lsm_name_to_attr(name);
6605
6606 if (attr)
6607 return selinux_lsm_setattr(attr, value, size);
6608 return -EINVAL;
6609}
6610
6611static int selinux_ismaclabel(const char *name)
6612{
6613 return (strcmp(name, XATTR_SELINUX_SUFFIX) == 0);
6614}
6615
6616static int selinux_secid_to_secctx(u32 secid, char **secdata, u32 *seclen)
6617{
6618 return security_sid_to_context(secid,
6619 secdata, seclen);
6620}
6621
6622static int selinux_secctx_to_secid(const char *secdata, u32 seclen, u32 *secid)
6623{
6624 return security_context_to_sid(secdata, seclen,
6625 secid, GFP_KERNEL);
6626}
6627
6628static void selinux_release_secctx(char *secdata, u32 seclen)
6629{
6630 kfree(secdata);
6631}
6632
6633static void selinux_inode_invalidate_secctx(struct inode *inode)
6634{
6635 struct inode_security_struct *isec = selinux_inode(inode);
6636
6637 spin_lock(&isec->lock);
6638 isec->initialized = LABEL_INVALID;
6639 spin_unlock(&isec->lock);
6640}
6641
6642/*
6643 * called with inode->i_mutex locked
6644 */
6645static int selinux_inode_notifysecctx(struct inode *inode, void *ctx, u32 ctxlen)
6646{
6647 int rc = selinux_inode_setsecurity(inode, XATTR_SELINUX_SUFFIX,
6648 ctx, ctxlen, 0);
6649 /* Do not return error when suppressing label (SBLABEL_MNT not set). */
6650 return rc == -EOPNOTSUPP ? 0 : rc;
6651}
6652
6653/*
6654 * called with inode->i_mutex locked
6655 */
6656static int selinux_inode_setsecctx(struct dentry *dentry, void *ctx, u32 ctxlen)
6657{
6658 return __vfs_setxattr_noperm(&nop_mnt_idmap, dentry, XATTR_NAME_SELINUX,
6659 ctx, ctxlen, 0);
6660}
6661
6662static int selinux_inode_getsecctx(struct inode *inode, void **ctx, u32 *ctxlen)
6663{
6664 int len = 0;
6665 len = selinux_inode_getsecurity(&nop_mnt_idmap, inode,
6666 XATTR_SELINUX_SUFFIX, ctx, true);
6667 if (len < 0)
6668 return len;
6669 *ctxlen = len;
6670 return 0;
6671}
6672#ifdef CONFIG_KEYS
6673
6674static int selinux_key_alloc(struct key *k, const struct cred *cred,
6675 unsigned long flags)
6676{
6677 const struct task_security_struct *tsec;
6678 struct key_security_struct *ksec;
6679
6680 ksec = kzalloc(sizeof(struct key_security_struct), GFP_KERNEL);
6681 if (!ksec)
6682 return -ENOMEM;
6683
6684 tsec = selinux_cred(cred);
6685 if (tsec->keycreate_sid)
6686 ksec->sid = tsec->keycreate_sid;
6687 else
6688 ksec->sid = tsec->sid;
6689
6690 k->security = ksec;
6691 return 0;
6692}
6693
6694static void selinux_key_free(struct key *k)
6695{
6696 struct key_security_struct *ksec = k->security;
6697
6698 k->security = NULL;
6699 kfree(ksec);
6700}
6701
6702static int selinux_key_permission(key_ref_t key_ref,
6703 const struct cred *cred,
6704 enum key_need_perm need_perm)
6705{
6706 struct key *key;
6707 struct key_security_struct *ksec;
6708 u32 perm, sid;
6709
6710 switch (need_perm) {
6711 case KEY_NEED_VIEW:
6712 perm = KEY__VIEW;
6713 break;
6714 case KEY_NEED_READ:
6715 perm = KEY__READ;
6716 break;
6717 case KEY_NEED_WRITE:
6718 perm = KEY__WRITE;
6719 break;
6720 case KEY_NEED_SEARCH:
6721 perm = KEY__SEARCH;
6722 break;
6723 case KEY_NEED_LINK:
6724 perm = KEY__LINK;
6725 break;
6726 case KEY_NEED_SETATTR:
6727 perm = KEY__SETATTR;
6728 break;
6729 case KEY_NEED_UNLINK:
6730 case KEY_SYSADMIN_OVERRIDE:
6731 case KEY_AUTHTOKEN_OVERRIDE:
6732 case KEY_DEFER_PERM_CHECK:
6733 return 0;
6734 default:
6735 WARN_ON(1);
6736 return -EPERM;
6737
6738 }
6739
6740 sid = cred_sid(cred);
6741 key = key_ref_to_ptr(key_ref);
6742 ksec = key->security;
6743
6744 return avc_has_perm(sid, ksec->sid, SECCLASS_KEY, perm, NULL);
6745}
6746
6747static int selinux_key_getsecurity(struct key *key, char **_buffer)
6748{
6749 struct key_security_struct *ksec = key->security;
6750 char *context = NULL;
6751 unsigned len;
6752 int rc;
6753
6754 rc = security_sid_to_context(ksec->sid,
6755 &context, &len);
6756 if (!rc)
6757 rc = len;
6758 *_buffer = context;
6759 return rc;
6760}
6761
6762#ifdef CONFIG_KEY_NOTIFICATIONS
6763static int selinux_watch_key(struct key *key)
6764{
6765 struct key_security_struct *ksec = key->security;
6766 u32 sid = current_sid();
6767
6768 return avc_has_perm(sid, ksec->sid, SECCLASS_KEY, KEY__VIEW, NULL);
6769}
6770#endif
6771#endif
6772
6773#ifdef CONFIG_SECURITY_INFINIBAND
6774static int selinux_ib_pkey_access(void *ib_sec, u64 subnet_prefix, u16 pkey_val)
6775{
6776 struct common_audit_data ad;
6777 int err;
6778 u32 sid = 0;
6779 struct ib_security_struct *sec = ib_sec;
6780 struct lsm_ibpkey_audit ibpkey;
6781
6782 err = sel_ib_pkey_sid(subnet_prefix, pkey_val, &sid);
6783 if (err)
6784 return err;
6785
6786 ad.type = LSM_AUDIT_DATA_IBPKEY;
6787 ibpkey.subnet_prefix = subnet_prefix;
6788 ibpkey.pkey = pkey_val;
6789 ad.u.ibpkey = &ibpkey;
6790 return avc_has_perm(sec->sid, sid,
6791 SECCLASS_INFINIBAND_PKEY,
6792 INFINIBAND_PKEY__ACCESS, &ad);
6793}
6794
6795static int selinux_ib_endport_manage_subnet(void *ib_sec, const char *dev_name,
6796 u8 port_num)
6797{
6798 struct common_audit_data ad;
6799 int err;
6800 u32 sid = 0;
6801 struct ib_security_struct *sec = ib_sec;
6802 struct lsm_ibendport_audit ibendport;
6803
6804 err = security_ib_endport_sid(dev_name, port_num,
6805 &sid);
6806
6807 if (err)
6808 return err;
6809
6810 ad.type = LSM_AUDIT_DATA_IBENDPORT;
6811 ibendport.dev_name = dev_name;
6812 ibendport.port = port_num;
6813 ad.u.ibendport = &ibendport;
6814 return avc_has_perm(sec->sid, sid,
6815 SECCLASS_INFINIBAND_ENDPORT,
6816 INFINIBAND_ENDPORT__MANAGE_SUBNET, &ad);
6817}
6818
6819static int selinux_ib_alloc_security(void **ib_sec)
6820{
6821 struct ib_security_struct *sec;
6822
6823 sec = kzalloc(sizeof(*sec), GFP_KERNEL);
6824 if (!sec)
6825 return -ENOMEM;
6826 sec->sid = current_sid();
6827
6828 *ib_sec = sec;
6829 return 0;
6830}
6831
6832static void selinux_ib_free_security(void *ib_sec)
6833{
6834 kfree(ib_sec);
6835}
6836#endif
6837
6838#ifdef CONFIG_BPF_SYSCALL
6839static int selinux_bpf(int cmd, union bpf_attr *attr,
6840 unsigned int size)
6841{
6842 u32 sid = current_sid();
6843 int ret;
6844
6845 switch (cmd) {
6846 case BPF_MAP_CREATE:
6847 ret = avc_has_perm(sid, sid, SECCLASS_BPF, BPF__MAP_CREATE,
6848 NULL);
6849 break;
6850 case BPF_PROG_LOAD:
6851 ret = avc_has_perm(sid, sid, SECCLASS_BPF, BPF__PROG_LOAD,
6852 NULL);
6853 break;
6854 default:
6855 ret = 0;
6856 break;
6857 }
6858
6859 return ret;
6860}
6861
6862static u32 bpf_map_fmode_to_av(fmode_t fmode)
6863{
6864 u32 av = 0;
6865
6866 if (fmode & FMODE_READ)
6867 av |= BPF__MAP_READ;
6868 if (fmode & FMODE_WRITE)
6869 av |= BPF__MAP_WRITE;
6870 return av;
6871}
6872
6873/* This function will check the file pass through unix socket or binder to see
6874 * if it is a bpf related object. And apply corresponding checks on the bpf
6875 * object based on the type. The bpf maps and programs, not like other files and
6876 * socket, are using a shared anonymous inode inside the kernel as their inode.
6877 * So checking that inode cannot identify if the process have privilege to
6878 * access the bpf object and that's why we have to add this additional check in
6879 * selinux_file_receive and selinux_binder_transfer_files.
6880 */
6881static int bpf_fd_pass(const struct file *file, u32 sid)
6882{
6883 struct bpf_security_struct *bpfsec;
6884 struct bpf_prog *prog;
6885 struct bpf_map *map;
6886 int ret;
6887
6888 if (file->f_op == &bpf_map_fops) {
6889 map = file->private_data;
6890 bpfsec = map->security;
6891 ret = avc_has_perm(sid, bpfsec->sid, SECCLASS_BPF,
6892 bpf_map_fmode_to_av(file->f_mode), NULL);
6893 if (ret)
6894 return ret;
6895 } else if (file->f_op == &bpf_prog_fops) {
6896 prog = file->private_data;
6897 bpfsec = prog->aux->security;
6898 ret = avc_has_perm(sid, bpfsec->sid, SECCLASS_BPF,
6899 BPF__PROG_RUN, NULL);
6900 if (ret)
6901 return ret;
6902 }
6903 return 0;
6904}
6905
6906static int selinux_bpf_map(struct bpf_map *map, fmode_t fmode)
6907{
6908 u32 sid = current_sid();
6909 struct bpf_security_struct *bpfsec;
6910
6911 bpfsec = map->security;
6912 return avc_has_perm(sid, bpfsec->sid, SECCLASS_BPF,
6913 bpf_map_fmode_to_av(fmode), NULL);
6914}
6915
6916static int selinux_bpf_prog(struct bpf_prog *prog)
6917{
6918 u32 sid = current_sid();
6919 struct bpf_security_struct *bpfsec;
6920
6921 bpfsec = prog->aux->security;
6922 return avc_has_perm(sid, bpfsec->sid, SECCLASS_BPF,
6923 BPF__PROG_RUN, NULL);
6924}
6925
6926static int selinux_bpf_map_create(struct bpf_map *map, union bpf_attr *attr,
6927 struct bpf_token *token)
6928{
6929 struct bpf_security_struct *bpfsec;
6930
6931 bpfsec = kzalloc(sizeof(*bpfsec), GFP_KERNEL);
6932 if (!bpfsec)
6933 return -ENOMEM;
6934
6935 bpfsec->sid = current_sid();
6936 map->security = bpfsec;
6937
6938 return 0;
6939}
6940
6941static void selinux_bpf_map_free(struct bpf_map *map)
6942{
6943 struct bpf_security_struct *bpfsec = map->security;
6944
6945 map->security = NULL;
6946 kfree(bpfsec);
6947}
6948
6949static int selinux_bpf_prog_load(struct bpf_prog *prog, union bpf_attr *attr,
6950 struct bpf_token *token)
6951{
6952 struct bpf_security_struct *bpfsec;
6953
6954 bpfsec = kzalloc(sizeof(*bpfsec), GFP_KERNEL);
6955 if (!bpfsec)
6956 return -ENOMEM;
6957
6958 bpfsec->sid = current_sid();
6959 prog->aux->security = bpfsec;
6960
6961 return 0;
6962}
6963
6964static void selinux_bpf_prog_free(struct bpf_prog *prog)
6965{
6966 struct bpf_security_struct *bpfsec = prog->aux->security;
6967
6968 prog->aux->security = NULL;
6969 kfree(bpfsec);
6970}
6971
6972static int selinux_bpf_token_create(struct bpf_token *token, union bpf_attr *attr,
6973 struct path *path)
6974{
6975 struct bpf_security_struct *bpfsec;
6976
6977 bpfsec = kzalloc(sizeof(*bpfsec), GFP_KERNEL);
6978 if (!bpfsec)
6979 return -ENOMEM;
6980
6981 bpfsec->sid = current_sid();
6982 token->security = bpfsec;
6983
6984 return 0;
6985}
6986
6987static void selinux_bpf_token_free(struct bpf_token *token)
6988{
6989 struct bpf_security_struct *bpfsec = token->security;
6990
6991 token->security = NULL;
6992 kfree(bpfsec);
6993}
6994#endif
6995
6996struct lsm_blob_sizes selinux_blob_sizes __ro_after_init = {
6997 .lbs_cred = sizeof(struct task_security_struct),
6998 .lbs_file = sizeof(struct file_security_struct),
6999 .lbs_inode = sizeof(struct inode_security_struct),
7000 .lbs_ipc = sizeof(struct ipc_security_struct),
7001 .lbs_msg_msg = sizeof(struct msg_security_struct),
7002 .lbs_superblock = sizeof(struct superblock_security_struct),
7003 .lbs_xattr_count = SELINUX_INODE_INIT_XATTRS,
7004};
7005
7006#ifdef CONFIG_PERF_EVENTS
7007static int selinux_perf_event_open(struct perf_event_attr *attr, int type)
7008{
7009 u32 requested, sid = current_sid();
7010
7011 if (type == PERF_SECURITY_OPEN)
7012 requested = PERF_EVENT__OPEN;
7013 else if (type == PERF_SECURITY_CPU)
7014 requested = PERF_EVENT__CPU;
7015 else if (type == PERF_SECURITY_KERNEL)
7016 requested = PERF_EVENT__KERNEL;
7017 else if (type == PERF_SECURITY_TRACEPOINT)
7018 requested = PERF_EVENT__TRACEPOINT;
7019 else
7020 return -EINVAL;
7021
7022 return avc_has_perm(sid, sid, SECCLASS_PERF_EVENT,
7023 requested, NULL);
7024}
7025
7026static int selinux_perf_event_alloc(struct perf_event *event)
7027{
7028 struct perf_event_security_struct *perfsec;
7029
7030 perfsec = kzalloc(sizeof(*perfsec), GFP_KERNEL);
7031 if (!perfsec)
7032 return -ENOMEM;
7033
7034 perfsec->sid = current_sid();
7035 event->security = perfsec;
7036
7037 return 0;
7038}
7039
7040static void selinux_perf_event_free(struct perf_event *event)
7041{
7042 struct perf_event_security_struct *perfsec = event->security;
7043
7044 event->security = NULL;
7045 kfree(perfsec);
7046}
7047
7048static int selinux_perf_event_read(struct perf_event *event)
7049{
7050 struct perf_event_security_struct *perfsec = event->security;
7051 u32 sid = current_sid();
7052
7053 return avc_has_perm(sid, perfsec->sid,
7054 SECCLASS_PERF_EVENT, PERF_EVENT__READ, NULL);
7055}
7056
7057static int selinux_perf_event_write(struct perf_event *event)
7058{
7059 struct perf_event_security_struct *perfsec = event->security;
7060 u32 sid = current_sid();
7061
7062 return avc_has_perm(sid, perfsec->sid,
7063 SECCLASS_PERF_EVENT, PERF_EVENT__WRITE, NULL);
7064}
7065#endif
7066
7067#ifdef CONFIG_IO_URING
7068/**
7069 * selinux_uring_override_creds - check the requested cred override
7070 * @new: the target creds
7071 *
7072 * Check to see if the current task is allowed to override it's credentials
7073 * to service an io_uring operation.
7074 */
7075static int selinux_uring_override_creds(const struct cred *new)
7076{
7077 return avc_has_perm(current_sid(), cred_sid(new),
7078 SECCLASS_IO_URING, IO_URING__OVERRIDE_CREDS, NULL);
7079}
7080
7081/**
7082 * selinux_uring_sqpoll - check if a io_uring polling thread can be created
7083 *
7084 * Check to see if the current task is allowed to create a new io_uring
7085 * kernel polling thread.
7086 */
7087static int selinux_uring_sqpoll(void)
7088{
7089 u32 sid = current_sid();
7090
7091 return avc_has_perm(sid, sid,
7092 SECCLASS_IO_URING, IO_URING__SQPOLL, NULL);
7093}
7094
7095/**
7096 * selinux_uring_cmd - check if IORING_OP_URING_CMD is allowed
7097 * @ioucmd: the io_uring command structure
7098 *
7099 * Check to see if the current domain is allowed to execute an
7100 * IORING_OP_URING_CMD against the device/file specified in @ioucmd.
7101 *
7102 */
7103static int selinux_uring_cmd(struct io_uring_cmd *ioucmd)
7104{
7105 struct file *file = ioucmd->file;
7106 struct inode *inode = file_inode(file);
7107 struct inode_security_struct *isec = selinux_inode(inode);
7108 struct common_audit_data ad;
7109
7110 ad.type = LSM_AUDIT_DATA_FILE;
7111 ad.u.file = file;
7112
7113 return avc_has_perm(current_sid(), isec->sid,
7114 SECCLASS_IO_URING, IO_URING__CMD, &ad);
7115}
7116#endif /* CONFIG_IO_URING */
7117
7118static const struct lsm_id selinux_lsmid = {
7119 .name = "selinux",
7120 .id = LSM_ID_SELINUX,
7121};
7122
7123/*
7124 * IMPORTANT NOTE: When adding new hooks, please be careful to keep this order:
7125 * 1. any hooks that don't belong to (2.) or (3.) below,
7126 * 2. hooks that both access structures allocated by other hooks, and allocate
7127 * structures that can be later accessed by other hooks (mostly "cloning"
7128 * hooks),
7129 * 3. hooks that only allocate structures that can be later accessed by other
7130 * hooks ("allocating" hooks).
7131 *
7132 * Please follow block comment delimiters in the list to keep this order.
7133 */
7134static struct security_hook_list selinux_hooks[] __ro_after_init = {
7135 LSM_HOOK_INIT(binder_set_context_mgr, selinux_binder_set_context_mgr),
7136 LSM_HOOK_INIT(binder_transaction, selinux_binder_transaction),
7137 LSM_HOOK_INIT(binder_transfer_binder, selinux_binder_transfer_binder),
7138 LSM_HOOK_INIT(binder_transfer_file, selinux_binder_transfer_file),
7139
7140 LSM_HOOK_INIT(ptrace_access_check, selinux_ptrace_access_check),
7141 LSM_HOOK_INIT(ptrace_traceme, selinux_ptrace_traceme),
7142 LSM_HOOK_INIT(capget, selinux_capget),
7143 LSM_HOOK_INIT(capset, selinux_capset),
7144 LSM_HOOK_INIT(capable, selinux_capable),
7145 LSM_HOOK_INIT(quotactl, selinux_quotactl),
7146 LSM_HOOK_INIT(quota_on, selinux_quota_on),
7147 LSM_HOOK_INIT(syslog, selinux_syslog),
7148 LSM_HOOK_INIT(vm_enough_memory, selinux_vm_enough_memory),
7149
7150 LSM_HOOK_INIT(netlink_send, selinux_netlink_send),
7151
7152 LSM_HOOK_INIT(bprm_creds_for_exec, selinux_bprm_creds_for_exec),
7153 LSM_HOOK_INIT(bprm_committing_creds, selinux_bprm_committing_creds),
7154 LSM_HOOK_INIT(bprm_committed_creds, selinux_bprm_committed_creds),
7155
7156 LSM_HOOK_INIT(sb_free_mnt_opts, selinux_free_mnt_opts),
7157 LSM_HOOK_INIT(sb_mnt_opts_compat, selinux_sb_mnt_opts_compat),
7158 LSM_HOOK_INIT(sb_remount, selinux_sb_remount),
7159 LSM_HOOK_INIT(sb_kern_mount, selinux_sb_kern_mount),
7160 LSM_HOOK_INIT(sb_show_options, selinux_sb_show_options),
7161 LSM_HOOK_INIT(sb_statfs, selinux_sb_statfs),
7162 LSM_HOOK_INIT(sb_mount, selinux_mount),
7163 LSM_HOOK_INIT(sb_umount, selinux_umount),
7164 LSM_HOOK_INIT(sb_set_mnt_opts, selinux_set_mnt_opts),
7165 LSM_HOOK_INIT(sb_clone_mnt_opts, selinux_sb_clone_mnt_opts),
7166
7167 LSM_HOOK_INIT(move_mount, selinux_move_mount),
7168
7169 LSM_HOOK_INIT(dentry_init_security, selinux_dentry_init_security),
7170 LSM_HOOK_INIT(dentry_create_files_as, selinux_dentry_create_files_as),
7171
7172 LSM_HOOK_INIT(inode_free_security, selinux_inode_free_security),
7173 LSM_HOOK_INIT(inode_init_security, selinux_inode_init_security),
7174 LSM_HOOK_INIT(inode_init_security_anon, selinux_inode_init_security_anon),
7175 LSM_HOOK_INIT(inode_create, selinux_inode_create),
7176 LSM_HOOK_INIT(inode_link, selinux_inode_link),
7177 LSM_HOOK_INIT(inode_unlink, selinux_inode_unlink),
7178 LSM_HOOK_INIT(inode_symlink, selinux_inode_symlink),
7179 LSM_HOOK_INIT(inode_mkdir, selinux_inode_mkdir),
7180 LSM_HOOK_INIT(inode_rmdir, selinux_inode_rmdir),
7181 LSM_HOOK_INIT(inode_mknod, selinux_inode_mknod),
7182 LSM_HOOK_INIT(inode_rename, selinux_inode_rename),
7183 LSM_HOOK_INIT(inode_readlink, selinux_inode_readlink),
7184 LSM_HOOK_INIT(inode_follow_link, selinux_inode_follow_link),
7185 LSM_HOOK_INIT(inode_permission, selinux_inode_permission),
7186 LSM_HOOK_INIT(inode_setattr, selinux_inode_setattr),
7187 LSM_HOOK_INIT(inode_getattr, selinux_inode_getattr),
7188 LSM_HOOK_INIT(inode_setxattr, selinux_inode_setxattr),
7189 LSM_HOOK_INIT(inode_post_setxattr, selinux_inode_post_setxattr),
7190 LSM_HOOK_INIT(inode_getxattr, selinux_inode_getxattr),
7191 LSM_HOOK_INIT(inode_listxattr, selinux_inode_listxattr),
7192 LSM_HOOK_INIT(inode_removexattr, selinux_inode_removexattr),
7193 LSM_HOOK_INIT(inode_set_acl, selinux_inode_set_acl),
7194 LSM_HOOK_INIT(inode_get_acl, selinux_inode_get_acl),
7195 LSM_HOOK_INIT(inode_remove_acl, selinux_inode_remove_acl),
7196 LSM_HOOK_INIT(inode_getsecurity, selinux_inode_getsecurity),
7197 LSM_HOOK_INIT(inode_setsecurity, selinux_inode_setsecurity),
7198 LSM_HOOK_INIT(inode_listsecurity, selinux_inode_listsecurity),
7199 LSM_HOOK_INIT(inode_getsecid, selinux_inode_getsecid),
7200 LSM_HOOK_INIT(inode_copy_up, selinux_inode_copy_up),
7201 LSM_HOOK_INIT(inode_copy_up_xattr, selinux_inode_copy_up_xattr),
7202 LSM_HOOK_INIT(path_notify, selinux_path_notify),
7203
7204 LSM_HOOK_INIT(kernfs_init_security, selinux_kernfs_init_security),
7205
7206 LSM_HOOK_INIT(file_permission, selinux_file_permission),
7207 LSM_HOOK_INIT(file_alloc_security, selinux_file_alloc_security),
7208 LSM_HOOK_INIT(file_ioctl, selinux_file_ioctl),
7209 LSM_HOOK_INIT(file_ioctl_compat, selinux_file_ioctl_compat),
7210 LSM_HOOK_INIT(mmap_file, selinux_mmap_file),
7211 LSM_HOOK_INIT(mmap_addr, selinux_mmap_addr),
7212 LSM_HOOK_INIT(file_mprotect, selinux_file_mprotect),
7213 LSM_HOOK_INIT(file_lock, selinux_file_lock),
7214 LSM_HOOK_INIT(file_fcntl, selinux_file_fcntl),
7215 LSM_HOOK_INIT(file_set_fowner, selinux_file_set_fowner),
7216 LSM_HOOK_INIT(file_send_sigiotask, selinux_file_send_sigiotask),
7217 LSM_HOOK_INIT(file_receive, selinux_file_receive),
7218
7219 LSM_HOOK_INIT(file_open, selinux_file_open),
7220
7221 LSM_HOOK_INIT(task_alloc, selinux_task_alloc),
7222 LSM_HOOK_INIT(cred_prepare, selinux_cred_prepare),
7223 LSM_HOOK_INIT(cred_transfer, selinux_cred_transfer),
7224 LSM_HOOK_INIT(cred_getsecid, selinux_cred_getsecid),
7225 LSM_HOOK_INIT(kernel_act_as, selinux_kernel_act_as),
7226 LSM_HOOK_INIT(kernel_create_files_as, selinux_kernel_create_files_as),
7227 LSM_HOOK_INIT(kernel_module_request, selinux_kernel_module_request),
7228 LSM_HOOK_INIT(kernel_load_data, selinux_kernel_load_data),
7229 LSM_HOOK_INIT(kernel_read_file, selinux_kernel_read_file),
7230 LSM_HOOK_INIT(task_setpgid, selinux_task_setpgid),
7231 LSM_HOOK_INIT(task_getpgid, selinux_task_getpgid),
7232 LSM_HOOK_INIT(task_getsid, selinux_task_getsid),
7233 LSM_HOOK_INIT(current_getsecid_subj, selinux_current_getsecid_subj),
7234 LSM_HOOK_INIT(task_getsecid_obj, selinux_task_getsecid_obj),
7235 LSM_HOOK_INIT(task_setnice, selinux_task_setnice),
7236 LSM_HOOK_INIT(task_setioprio, selinux_task_setioprio),
7237 LSM_HOOK_INIT(task_getioprio, selinux_task_getioprio),
7238 LSM_HOOK_INIT(task_prlimit, selinux_task_prlimit),
7239 LSM_HOOK_INIT(task_setrlimit, selinux_task_setrlimit),
7240 LSM_HOOK_INIT(task_setscheduler, selinux_task_setscheduler),
7241 LSM_HOOK_INIT(task_getscheduler, selinux_task_getscheduler),
7242 LSM_HOOK_INIT(task_movememory, selinux_task_movememory),
7243 LSM_HOOK_INIT(task_kill, selinux_task_kill),
7244 LSM_HOOK_INIT(task_to_inode, selinux_task_to_inode),
7245 LSM_HOOK_INIT(userns_create, selinux_userns_create),
7246
7247 LSM_HOOK_INIT(ipc_permission, selinux_ipc_permission),
7248 LSM_HOOK_INIT(ipc_getsecid, selinux_ipc_getsecid),
7249
7250 LSM_HOOK_INIT(msg_queue_associate, selinux_msg_queue_associate),
7251 LSM_HOOK_INIT(msg_queue_msgctl, selinux_msg_queue_msgctl),
7252 LSM_HOOK_INIT(msg_queue_msgsnd, selinux_msg_queue_msgsnd),
7253 LSM_HOOK_INIT(msg_queue_msgrcv, selinux_msg_queue_msgrcv),
7254
7255 LSM_HOOK_INIT(shm_associate, selinux_shm_associate),
7256 LSM_HOOK_INIT(shm_shmctl, selinux_shm_shmctl),
7257 LSM_HOOK_INIT(shm_shmat, selinux_shm_shmat),
7258
7259 LSM_HOOK_INIT(sem_associate, selinux_sem_associate),
7260 LSM_HOOK_INIT(sem_semctl, selinux_sem_semctl),
7261 LSM_HOOK_INIT(sem_semop, selinux_sem_semop),
7262
7263 LSM_HOOK_INIT(d_instantiate, selinux_d_instantiate),
7264
7265 LSM_HOOK_INIT(getselfattr, selinux_getselfattr),
7266 LSM_HOOK_INIT(setselfattr, selinux_setselfattr),
7267 LSM_HOOK_INIT(getprocattr, selinux_getprocattr),
7268 LSM_HOOK_INIT(setprocattr, selinux_setprocattr),
7269
7270 LSM_HOOK_INIT(ismaclabel, selinux_ismaclabel),
7271 LSM_HOOK_INIT(secctx_to_secid, selinux_secctx_to_secid),
7272 LSM_HOOK_INIT(release_secctx, selinux_release_secctx),
7273 LSM_HOOK_INIT(inode_invalidate_secctx, selinux_inode_invalidate_secctx),
7274 LSM_HOOK_INIT(inode_notifysecctx, selinux_inode_notifysecctx),
7275 LSM_HOOK_INIT(inode_setsecctx, selinux_inode_setsecctx),
7276
7277 LSM_HOOK_INIT(unix_stream_connect, selinux_socket_unix_stream_connect),
7278 LSM_HOOK_INIT(unix_may_send, selinux_socket_unix_may_send),
7279
7280 LSM_HOOK_INIT(socket_create, selinux_socket_create),
7281 LSM_HOOK_INIT(socket_post_create, selinux_socket_post_create),
7282 LSM_HOOK_INIT(socket_socketpair, selinux_socket_socketpair),
7283 LSM_HOOK_INIT(socket_bind, selinux_socket_bind),
7284 LSM_HOOK_INIT(socket_connect, selinux_socket_connect),
7285 LSM_HOOK_INIT(socket_listen, selinux_socket_listen),
7286 LSM_HOOK_INIT(socket_accept, selinux_socket_accept),
7287 LSM_HOOK_INIT(socket_sendmsg, selinux_socket_sendmsg),
7288 LSM_HOOK_INIT(socket_recvmsg, selinux_socket_recvmsg),
7289 LSM_HOOK_INIT(socket_getsockname, selinux_socket_getsockname),
7290 LSM_HOOK_INIT(socket_getpeername, selinux_socket_getpeername),
7291 LSM_HOOK_INIT(socket_getsockopt, selinux_socket_getsockopt),
7292 LSM_HOOK_INIT(socket_setsockopt, selinux_socket_setsockopt),
7293 LSM_HOOK_INIT(socket_shutdown, selinux_socket_shutdown),
7294 LSM_HOOK_INIT(socket_sock_rcv_skb, selinux_socket_sock_rcv_skb),
7295 LSM_HOOK_INIT(socket_getpeersec_stream,
7296 selinux_socket_getpeersec_stream),
7297 LSM_HOOK_INIT(socket_getpeersec_dgram, selinux_socket_getpeersec_dgram),
7298 LSM_HOOK_INIT(sk_free_security, selinux_sk_free_security),
7299 LSM_HOOK_INIT(sk_clone_security, selinux_sk_clone_security),
7300 LSM_HOOK_INIT(sk_getsecid, selinux_sk_getsecid),
7301 LSM_HOOK_INIT(sock_graft, selinux_sock_graft),
7302 LSM_HOOK_INIT(sctp_assoc_request, selinux_sctp_assoc_request),
7303 LSM_HOOK_INIT(sctp_sk_clone, selinux_sctp_sk_clone),
7304 LSM_HOOK_INIT(sctp_bind_connect, selinux_sctp_bind_connect),
7305 LSM_HOOK_INIT(sctp_assoc_established, selinux_sctp_assoc_established),
7306 LSM_HOOK_INIT(mptcp_add_subflow, selinux_mptcp_add_subflow),
7307 LSM_HOOK_INIT(inet_conn_request, selinux_inet_conn_request),
7308 LSM_HOOK_INIT(inet_csk_clone, selinux_inet_csk_clone),
7309 LSM_HOOK_INIT(inet_conn_established, selinux_inet_conn_established),
7310 LSM_HOOK_INIT(secmark_relabel_packet, selinux_secmark_relabel_packet),
7311 LSM_HOOK_INIT(secmark_refcount_inc, selinux_secmark_refcount_inc),
7312 LSM_HOOK_INIT(secmark_refcount_dec, selinux_secmark_refcount_dec),
7313 LSM_HOOK_INIT(req_classify_flow, selinux_req_classify_flow),
7314 LSM_HOOK_INIT(tun_dev_free_security, selinux_tun_dev_free_security),
7315 LSM_HOOK_INIT(tun_dev_create, selinux_tun_dev_create),
7316 LSM_HOOK_INIT(tun_dev_attach_queue, selinux_tun_dev_attach_queue),
7317 LSM_HOOK_INIT(tun_dev_attach, selinux_tun_dev_attach),
7318 LSM_HOOK_INIT(tun_dev_open, selinux_tun_dev_open),
7319#ifdef CONFIG_SECURITY_INFINIBAND
7320 LSM_HOOK_INIT(ib_pkey_access, selinux_ib_pkey_access),
7321 LSM_HOOK_INIT(ib_endport_manage_subnet,
7322 selinux_ib_endport_manage_subnet),
7323 LSM_HOOK_INIT(ib_free_security, selinux_ib_free_security),
7324#endif
7325#ifdef CONFIG_SECURITY_NETWORK_XFRM
7326 LSM_HOOK_INIT(xfrm_policy_free_security, selinux_xfrm_policy_free),
7327 LSM_HOOK_INIT(xfrm_policy_delete_security, selinux_xfrm_policy_delete),
7328 LSM_HOOK_INIT(xfrm_state_free_security, selinux_xfrm_state_free),
7329 LSM_HOOK_INIT(xfrm_state_delete_security, selinux_xfrm_state_delete),
7330 LSM_HOOK_INIT(xfrm_policy_lookup, selinux_xfrm_policy_lookup),
7331 LSM_HOOK_INIT(xfrm_state_pol_flow_match,
7332 selinux_xfrm_state_pol_flow_match),
7333 LSM_HOOK_INIT(xfrm_decode_session, selinux_xfrm_decode_session),
7334#endif
7335
7336#ifdef CONFIG_KEYS
7337 LSM_HOOK_INIT(key_free, selinux_key_free),
7338 LSM_HOOK_INIT(key_permission, selinux_key_permission),
7339 LSM_HOOK_INIT(key_getsecurity, selinux_key_getsecurity),
7340#ifdef CONFIG_KEY_NOTIFICATIONS
7341 LSM_HOOK_INIT(watch_key, selinux_watch_key),
7342#endif
7343#endif
7344
7345#ifdef CONFIG_AUDIT
7346 LSM_HOOK_INIT(audit_rule_known, selinux_audit_rule_known),
7347 LSM_HOOK_INIT(audit_rule_match, selinux_audit_rule_match),
7348 LSM_HOOK_INIT(audit_rule_free, selinux_audit_rule_free),
7349#endif
7350
7351#ifdef CONFIG_BPF_SYSCALL
7352 LSM_HOOK_INIT(bpf, selinux_bpf),
7353 LSM_HOOK_INIT(bpf_map, selinux_bpf_map),
7354 LSM_HOOK_INIT(bpf_prog, selinux_bpf_prog),
7355 LSM_HOOK_INIT(bpf_map_free, selinux_bpf_map_free),
7356 LSM_HOOK_INIT(bpf_prog_free, selinux_bpf_prog_free),
7357 LSM_HOOK_INIT(bpf_token_free, selinux_bpf_token_free),
7358#endif
7359
7360#ifdef CONFIG_PERF_EVENTS
7361 LSM_HOOK_INIT(perf_event_open, selinux_perf_event_open),
7362 LSM_HOOK_INIT(perf_event_free, selinux_perf_event_free),
7363 LSM_HOOK_INIT(perf_event_read, selinux_perf_event_read),
7364 LSM_HOOK_INIT(perf_event_write, selinux_perf_event_write),
7365#endif
7366
7367#ifdef CONFIG_IO_URING
7368 LSM_HOOK_INIT(uring_override_creds, selinux_uring_override_creds),
7369 LSM_HOOK_INIT(uring_sqpoll, selinux_uring_sqpoll),
7370 LSM_HOOK_INIT(uring_cmd, selinux_uring_cmd),
7371#endif
7372
7373 /*
7374 * PUT "CLONING" (ACCESSING + ALLOCATING) HOOKS HERE
7375 */
7376 LSM_HOOK_INIT(fs_context_submount, selinux_fs_context_submount),
7377 LSM_HOOK_INIT(fs_context_dup, selinux_fs_context_dup),
7378 LSM_HOOK_INIT(fs_context_parse_param, selinux_fs_context_parse_param),
7379 LSM_HOOK_INIT(sb_eat_lsm_opts, selinux_sb_eat_lsm_opts),
7380#ifdef CONFIG_SECURITY_NETWORK_XFRM
7381 LSM_HOOK_INIT(xfrm_policy_clone_security, selinux_xfrm_policy_clone),
7382#endif
7383
7384 /*
7385 * PUT "ALLOCATING" HOOKS HERE
7386 */
7387 LSM_HOOK_INIT(msg_msg_alloc_security, selinux_msg_msg_alloc_security),
7388 LSM_HOOK_INIT(msg_queue_alloc_security,
7389 selinux_msg_queue_alloc_security),
7390 LSM_HOOK_INIT(shm_alloc_security, selinux_shm_alloc_security),
7391 LSM_HOOK_INIT(sb_alloc_security, selinux_sb_alloc_security),
7392 LSM_HOOK_INIT(inode_alloc_security, selinux_inode_alloc_security),
7393 LSM_HOOK_INIT(sem_alloc_security, selinux_sem_alloc_security),
7394 LSM_HOOK_INIT(secid_to_secctx, selinux_secid_to_secctx),
7395 LSM_HOOK_INIT(inode_getsecctx, selinux_inode_getsecctx),
7396 LSM_HOOK_INIT(sk_alloc_security, selinux_sk_alloc_security),
7397 LSM_HOOK_INIT(tun_dev_alloc_security, selinux_tun_dev_alloc_security),
7398#ifdef CONFIG_SECURITY_INFINIBAND
7399 LSM_HOOK_INIT(ib_alloc_security, selinux_ib_alloc_security),
7400#endif
7401#ifdef CONFIG_SECURITY_NETWORK_XFRM
7402 LSM_HOOK_INIT(xfrm_policy_alloc_security, selinux_xfrm_policy_alloc),
7403 LSM_HOOK_INIT(xfrm_state_alloc, selinux_xfrm_state_alloc),
7404 LSM_HOOK_INIT(xfrm_state_alloc_acquire,
7405 selinux_xfrm_state_alloc_acquire),
7406#endif
7407#ifdef CONFIG_KEYS
7408 LSM_HOOK_INIT(key_alloc, selinux_key_alloc),
7409#endif
7410#ifdef CONFIG_AUDIT
7411 LSM_HOOK_INIT(audit_rule_init, selinux_audit_rule_init),
7412#endif
7413#ifdef CONFIG_BPF_SYSCALL
7414 LSM_HOOK_INIT(bpf_map_create, selinux_bpf_map_create),
7415 LSM_HOOK_INIT(bpf_prog_load, selinux_bpf_prog_load),
7416 LSM_HOOK_INIT(bpf_token_create, selinux_bpf_token_create),
7417#endif
7418#ifdef CONFIG_PERF_EVENTS
7419 LSM_HOOK_INIT(perf_event_alloc, selinux_perf_event_alloc),
7420#endif
7421};
7422
7423static __init int selinux_init(void)
7424{
7425 pr_info("SELinux: Initializing.\n");
7426
7427 memset(&selinux_state, 0, sizeof(selinux_state));
7428 enforcing_set(selinux_enforcing_boot);
7429 selinux_avc_init();
7430 mutex_init(&selinux_state.status_lock);
7431 mutex_init(&selinux_state.policy_mutex);
7432
7433 /* Set the security state for the initial task. */
7434 cred_init_security();
7435
7436 default_noexec = !(VM_DATA_DEFAULT_FLAGS & VM_EXEC);
7437 if (!default_noexec)
7438 pr_notice("SELinux: virtual memory is executable by default\n");
7439
7440 avc_init();
7441
7442 avtab_cache_init();
7443
7444 ebitmap_cache_init();
7445
7446 hashtab_cache_init();
7447
7448 security_add_hooks(selinux_hooks, ARRAY_SIZE(selinux_hooks),
7449 &selinux_lsmid);
7450
7451 if (avc_add_callback(selinux_netcache_avc_callback, AVC_CALLBACK_RESET))
7452 panic("SELinux: Unable to register AVC netcache callback\n");
7453
7454 if (avc_add_callback(selinux_lsm_notifier_avc_callback, AVC_CALLBACK_RESET))
7455 panic("SELinux: Unable to register AVC LSM notifier callback\n");
7456
7457 if (selinux_enforcing_boot)
7458 pr_debug("SELinux: Starting in enforcing mode\n");
7459 else
7460 pr_debug("SELinux: Starting in permissive mode\n");
7461
7462 fs_validate_description("selinux", selinux_fs_parameters);
7463
7464 return 0;
7465}
7466
7467static void delayed_superblock_init(struct super_block *sb, void *unused)
7468{
7469 selinux_set_mnt_opts(sb, NULL, 0, NULL);
7470}
7471
7472void selinux_complete_init(void)
7473{
7474 pr_debug("SELinux: Completing initialization.\n");
7475
7476 /* Set up any superblocks initialized prior to the policy load. */
7477 pr_debug("SELinux: Setting up existing superblocks.\n");
7478 iterate_supers(delayed_superblock_init, NULL);
7479}
7480
7481/* SELinux requires early initialization in order to label
7482 all processes and objects when they are created. */
7483DEFINE_LSM(selinux) = {
7484 .name = "selinux",
7485 .flags = LSM_FLAG_LEGACY_MAJOR | LSM_FLAG_EXCLUSIVE,
7486 .enabled = &selinux_enabled_boot,
7487 .blobs = &selinux_blob_sizes,
7488 .init = selinux_init,
7489};
7490
7491#if defined(CONFIG_NETFILTER)
7492static const struct nf_hook_ops selinux_nf_ops[] = {
7493 {
7494 .hook = selinux_ip_postroute,
7495 .pf = NFPROTO_IPV4,
7496 .hooknum = NF_INET_POST_ROUTING,
7497 .priority = NF_IP_PRI_SELINUX_LAST,
7498 },
7499 {
7500 .hook = selinux_ip_forward,
7501 .pf = NFPROTO_IPV4,
7502 .hooknum = NF_INET_FORWARD,
7503 .priority = NF_IP_PRI_SELINUX_FIRST,
7504 },
7505 {
7506 .hook = selinux_ip_output,
7507 .pf = NFPROTO_IPV4,
7508 .hooknum = NF_INET_LOCAL_OUT,
7509 .priority = NF_IP_PRI_SELINUX_FIRST,
7510 },
7511#if IS_ENABLED(CONFIG_IPV6)
7512 {
7513 .hook = selinux_ip_postroute,
7514 .pf = NFPROTO_IPV6,
7515 .hooknum = NF_INET_POST_ROUTING,
7516 .priority = NF_IP6_PRI_SELINUX_LAST,
7517 },
7518 {
7519 .hook = selinux_ip_forward,
7520 .pf = NFPROTO_IPV6,
7521 .hooknum = NF_INET_FORWARD,
7522 .priority = NF_IP6_PRI_SELINUX_FIRST,
7523 },
7524 {
7525 .hook = selinux_ip_output,
7526 .pf = NFPROTO_IPV6,
7527 .hooknum = NF_INET_LOCAL_OUT,
7528 .priority = NF_IP6_PRI_SELINUX_FIRST,
7529 },
7530#endif /* IPV6 */
7531};
7532
7533static int __net_init selinux_nf_register(struct net *net)
7534{
7535 return nf_register_net_hooks(net, selinux_nf_ops,
7536 ARRAY_SIZE(selinux_nf_ops));
7537}
7538
7539static void __net_exit selinux_nf_unregister(struct net *net)
7540{
7541 nf_unregister_net_hooks(net, selinux_nf_ops,
7542 ARRAY_SIZE(selinux_nf_ops));
7543}
7544
7545static struct pernet_operations selinux_net_ops = {
7546 .init = selinux_nf_register,
7547 .exit = selinux_nf_unregister,
7548};
7549
7550static int __init selinux_nf_ip_init(void)
7551{
7552 int err;
7553
7554 if (!selinux_enabled_boot)
7555 return 0;
7556
7557 pr_debug("SELinux: Registering netfilter hooks\n");
7558
7559 err = register_pernet_subsys(&selinux_net_ops);
7560 if (err)
7561 panic("SELinux: register_pernet_subsys: error %d\n", err);
7562
7563 return 0;
7564}
7565__initcall(selinux_nf_ip_init);
7566#endif /* CONFIG_NETFILTER */