4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2013 by Delphix. All rights reserved.
27 #include <sys/types.h>
28 #include <sys/param.h>
30 #include <sys/systm.h>
31 #include <sys/sysmacros.h>
32 #include <sys/resource.h>
34 #include <sys/vnode.h>
39 #include <sys/cmn_err.h>
40 #include <sys/errno.h>
41 #include <sys/unistd.h>
43 #include <sys/fs/zfs.h>
45 #include <sys/policy.h>
46 #include <sys/zfs_znode.h>
47 #include <sys/zfs_fuid.h>
48 #include <sys/zfs_acl.h>
49 #include <sys/zfs_dir.h>
50 #include <sys/zfs_vfsops.h>
52 #include <sys/dnode.h>
55 #include <sys/trace_acl.h>
56 #include "fs/fs_subr.h"
58 #define ALLOW ACE_ACCESS_ALLOWED_ACE_TYPE
59 #define DENY ACE_ACCESS_DENIED_ACE_TYPE
60 #define MAX_ACE_TYPE ACE_SYSTEM_ALARM_CALLBACK_OBJECT_ACE_TYPE
61 #define MIN_ACE_TYPE ALLOW
63 #define OWNING_GROUP (ACE_GROUP|ACE_IDENTIFIER_GROUP)
64 #define EVERYONE_ALLOW_MASK (ACE_READ_ACL|ACE_READ_ATTRIBUTES | \
65 ACE_READ_NAMED_ATTRS|ACE_SYNCHRONIZE)
66 #define EVERYONE_DENY_MASK (ACE_WRITE_ACL|ACE_WRITE_OWNER | \
67 ACE_WRITE_ATTRIBUTES|ACE_WRITE_NAMED_ATTRS)
68 #define OWNER_ALLOW_MASK (ACE_WRITE_ACL | ACE_WRITE_OWNER | \
69 ACE_WRITE_ATTRIBUTES|ACE_WRITE_NAMED_ATTRS)
71 #define ZFS_CHECKED_MASKS (ACE_READ_ACL|ACE_READ_ATTRIBUTES|ACE_READ_DATA| \
72 ACE_READ_NAMED_ATTRS|ACE_WRITE_DATA|ACE_WRITE_ATTRIBUTES| \
73 ACE_WRITE_NAMED_ATTRS|ACE_APPEND_DATA|ACE_EXECUTE|ACE_WRITE_OWNER| \
74 ACE_WRITE_ACL|ACE_DELETE|ACE_DELETE_CHILD|ACE_SYNCHRONIZE)
76 #define WRITE_MASK_DATA (ACE_WRITE_DATA|ACE_APPEND_DATA|ACE_WRITE_NAMED_ATTRS)
77 #define WRITE_MASK_ATTRS (ACE_WRITE_ACL|ACE_WRITE_OWNER|ACE_WRITE_ATTRIBUTES| \
78 ACE_DELETE|ACE_DELETE_CHILD)
79 #define WRITE_MASK (WRITE_MASK_DATA|WRITE_MASK_ATTRS)
81 #define OGE_CLEAR (ACE_READ_DATA|ACE_LIST_DIRECTORY|ACE_WRITE_DATA| \
82 ACE_ADD_FILE|ACE_APPEND_DATA|ACE_ADD_SUBDIRECTORY|ACE_EXECUTE)
84 #define OKAY_MASK_BITS (ACE_READ_DATA|ACE_LIST_DIRECTORY|ACE_WRITE_DATA| \
85 ACE_ADD_FILE|ACE_APPEND_DATA|ACE_ADD_SUBDIRECTORY|ACE_EXECUTE)
87 #define ALL_INHERIT (ACE_FILE_INHERIT_ACE|ACE_DIRECTORY_INHERIT_ACE | \
88 ACE_NO_PROPAGATE_INHERIT_ACE|ACE_INHERIT_ONLY_ACE|ACE_INHERITED_ACE)
90 #define RESTRICTED_CLEAR (ACE_WRITE_ACL|ACE_WRITE_OWNER)
92 #define V4_ACL_WIDE_FLAGS (ZFS_ACL_AUTO_INHERIT|ZFS_ACL_DEFAULTED|\
95 #define ZFS_ACL_WIDE_FLAGS (V4_ACL_WIDE_FLAGS|ZFS_ACL_TRIVIAL|ZFS_INHERIT_ACE|\
98 #define ALL_MODE_EXECS (S_IXUSR | S_IXGRP | S_IXOTH)
101 zfs_ace_v0_get_type(void *acep
)
103 return (((zfs_oldace_t
*)acep
)->z_type
);
107 zfs_ace_v0_get_flags(void *acep
)
109 return (((zfs_oldace_t
*)acep
)->z_flags
);
113 zfs_ace_v0_get_mask(void *acep
)
115 return (((zfs_oldace_t
*)acep
)->z_access_mask
);
119 zfs_ace_v0_get_who(void *acep
)
121 return (((zfs_oldace_t
*)acep
)->z_fuid
);
125 zfs_ace_v0_set_type(void *acep
, uint16_t type
)
127 ((zfs_oldace_t
*)acep
)->z_type
= type
;
131 zfs_ace_v0_set_flags(void *acep
, uint16_t flags
)
133 ((zfs_oldace_t
*)acep
)->z_flags
= flags
;
137 zfs_ace_v0_set_mask(void *acep
, uint32_t mask
)
139 ((zfs_oldace_t
*)acep
)->z_access_mask
= mask
;
143 zfs_ace_v0_set_who(void *acep
, uint64_t who
)
145 ((zfs_oldace_t
*)acep
)->z_fuid
= who
;
150 zfs_ace_v0_size(void *acep
)
152 return (sizeof (zfs_oldace_t
));
156 zfs_ace_v0_abstract_size(void)
158 return (sizeof (zfs_oldace_t
));
162 zfs_ace_v0_mask_off(void)
164 return (offsetof(zfs_oldace_t
, z_access_mask
));
169 zfs_ace_v0_data(void *acep
, void **datap
)
175 static acl_ops_t zfs_acl_v0_ops
= {
178 zfs_ace_v0_get_flags
,
179 zfs_ace_v0_set_flags
,
185 zfs_ace_v0_abstract_size
,
191 zfs_ace_fuid_get_type(void *acep
)
193 return (((zfs_ace_hdr_t
*)acep
)->z_type
);
197 zfs_ace_fuid_get_flags(void *acep
)
199 return (((zfs_ace_hdr_t
*)acep
)->z_flags
);
203 zfs_ace_fuid_get_mask(void *acep
)
205 return (((zfs_ace_hdr_t
*)acep
)->z_access_mask
);
209 zfs_ace_fuid_get_who(void *args
)
212 zfs_ace_t
*acep
= args
;
214 entry_type
= acep
->z_hdr
.z_flags
& ACE_TYPE_FLAGS
;
216 if (entry_type
== ACE_OWNER
|| entry_type
== OWNING_GROUP
||
217 entry_type
== ACE_EVERYONE
)
219 return (((zfs_ace_t
*)acep
)->z_fuid
);
223 zfs_ace_fuid_set_type(void *acep
, uint16_t type
)
225 ((zfs_ace_hdr_t
*)acep
)->z_type
= type
;
229 zfs_ace_fuid_set_flags(void *acep
, uint16_t flags
)
231 ((zfs_ace_hdr_t
*)acep
)->z_flags
= flags
;
235 zfs_ace_fuid_set_mask(void *acep
, uint32_t mask
)
237 ((zfs_ace_hdr_t
*)acep
)->z_access_mask
= mask
;
241 zfs_ace_fuid_set_who(void *arg
, uint64_t who
)
243 zfs_ace_t
*acep
= arg
;
245 uint16_t entry_type
= acep
->z_hdr
.z_flags
& ACE_TYPE_FLAGS
;
247 if (entry_type
== ACE_OWNER
|| entry_type
== OWNING_GROUP
||
248 entry_type
== ACE_EVERYONE
)
254 zfs_ace_fuid_size(void *acep
)
256 zfs_ace_hdr_t
*zacep
= acep
;
259 switch (zacep
->z_type
) {
260 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
261 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
262 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
263 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
264 return (sizeof (zfs_object_ace_t
));
268 (((zfs_ace_hdr_t
*)acep
)->z_flags
& ACE_TYPE_FLAGS
);
269 if (entry_type
== ACE_OWNER
||
270 entry_type
== OWNING_GROUP
||
271 entry_type
== ACE_EVERYONE
)
272 return (sizeof (zfs_ace_hdr_t
));
275 return (sizeof (zfs_ace_t
));
280 zfs_ace_fuid_abstract_size(void)
282 return (sizeof (zfs_ace_hdr_t
));
286 zfs_ace_fuid_mask_off(void)
288 return (offsetof(zfs_ace_hdr_t
, z_access_mask
));
292 zfs_ace_fuid_data(void *acep
, void **datap
)
294 zfs_ace_t
*zacep
= acep
;
295 zfs_object_ace_t
*zobjp
;
297 switch (zacep
->z_hdr
.z_type
) {
298 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
299 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
300 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
301 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
303 *datap
= (caddr_t
)zobjp
+ sizeof (zfs_ace_t
);
304 return (sizeof (zfs_object_ace_t
) - sizeof (zfs_ace_t
));
311 static acl_ops_t zfs_acl_fuid_ops
= {
312 zfs_ace_fuid_get_mask
,
313 zfs_ace_fuid_set_mask
,
314 zfs_ace_fuid_get_flags
,
315 zfs_ace_fuid_set_flags
,
316 zfs_ace_fuid_get_type
,
317 zfs_ace_fuid_set_type
,
318 zfs_ace_fuid_get_who
,
319 zfs_ace_fuid_set_who
,
321 zfs_ace_fuid_abstract_size
,
322 zfs_ace_fuid_mask_off
,
327 * The following three functions are provided for compatibility with
328 * older ZPL version in order to determine if the file use to have
329 * an external ACL and what version of ACL previously existed on the
330 * file. Would really be nice to not need this, sigh.
333 zfs_external_acl(znode_t
*zp
)
335 zfs_acl_phys_t acl_phys
;
342 * Need to deal with a potential
343 * race where zfs_sa_upgrade could cause
344 * z_isa_sa to change.
346 * If the lookup fails then the state of z_is_sa should have
350 if ((error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_ZNODE_ACL(ZTOZSB(zp
)),
351 &acl_phys
, sizeof (acl_phys
))) == 0)
352 return (acl_phys
.z_acl_extern_obj
);
355 * after upgrade the SA_ZPL_ZNODE_ACL should have been
358 VERIFY(zp
->z_is_sa
&& error
== ENOENT
);
364 * Determine size of ACL in bytes
366 * This is more complicated than it should be since we have to deal
367 * with old external ACLs.
370 zfs_acl_znode_info(znode_t
*zp
, int *aclsize
, int *aclcount
,
371 zfs_acl_phys_t
*aclphys
)
373 zfs_sb_t
*zsb
= ZTOZSB(zp
);
378 ASSERT(MUTEX_HELD(&zp
->z_acl_lock
));
380 if ((error
= sa_size(zp
->z_sa_hdl
, SA_ZPL_DACL_ACES(zsb
),
384 if ((error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_DACL_COUNT(zsb
),
385 &acl_count
, sizeof (acl_count
))) != 0)
387 *aclcount
= acl_count
;
389 if ((error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_ZNODE_ACL(zsb
),
390 aclphys
, sizeof (*aclphys
))) != 0)
393 if (aclphys
->z_acl_version
== ZFS_ACL_VERSION_INITIAL
) {
394 *aclsize
= ZFS_ACL_SIZE(aclphys
->z_acl_size
);
395 *aclcount
= aclphys
->z_acl_size
;
397 *aclsize
= aclphys
->z_acl_size
;
398 *aclcount
= aclphys
->z_acl_count
;
405 zfs_znode_acl_version(znode_t
*zp
)
407 zfs_acl_phys_t acl_phys
;
410 return (ZFS_ACL_VERSION_FUID
);
415 * Need to deal with a potential
416 * race where zfs_sa_upgrade could cause
417 * z_isa_sa to change.
419 * If the lookup fails then the state of z_is_sa should have
422 if ((error
= sa_lookup(zp
->z_sa_hdl
,
423 SA_ZPL_ZNODE_ACL(ZTOZSB(zp
)),
424 &acl_phys
, sizeof (acl_phys
))) == 0)
425 return (acl_phys
.z_acl_version
);
428 * After upgrade SA_ZPL_ZNODE_ACL should have
431 VERIFY(zp
->z_is_sa
&& error
== ENOENT
);
432 return (ZFS_ACL_VERSION_FUID
);
438 zfs_acl_version(int version
)
440 if (version
< ZPL_VERSION_FUID
)
441 return (ZFS_ACL_VERSION_INITIAL
);
443 return (ZFS_ACL_VERSION_FUID
);
447 zfs_acl_version_zp(znode_t
*zp
)
449 return (zfs_acl_version(ZTOZSB(zp
)->z_version
));
453 zfs_acl_alloc(int vers
)
457 aclp
= kmem_zalloc(sizeof (zfs_acl_t
), KM_SLEEP
);
458 list_create(&aclp
->z_acl
, sizeof (zfs_acl_node_t
),
459 offsetof(zfs_acl_node_t
, z_next
));
460 aclp
->z_version
= vers
;
461 if (vers
== ZFS_ACL_VERSION_FUID
)
462 aclp
->z_ops
= &zfs_acl_fuid_ops
;
464 aclp
->z_ops
= &zfs_acl_v0_ops
;
469 zfs_acl_node_alloc(size_t bytes
)
471 zfs_acl_node_t
*aclnode
;
473 aclnode
= kmem_zalloc(sizeof (zfs_acl_node_t
), KM_SLEEP
);
475 aclnode
->z_acldata
= kmem_alloc(bytes
, KM_SLEEP
);
476 aclnode
->z_allocdata
= aclnode
->z_acldata
;
477 aclnode
->z_allocsize
= bytes
;
478 aclnode
->z_size
= bytes
;
485 zfs_acl_node_free(zfs_acl_node_t
*aclnode
)
487 if (aclnode
->z_allocsize
)
488 kmem_free(aclnode
->z_allocdata
, aclnode
->z_allocsize
);
489 kmem_free(aclnode
, sizeof (zfs_acl_node_t
));
493 zfs_acl_release_nodes(zfs_acl_t
*aclp
)
495 zfs_acl_node_t
*aclnode
;
497 while ((aclnode
= list_head(&aclp
->z_acl
))) {
498 list_remove(&aclp
->z_acl
, aclnode
);
499 zfs_acl_node_free(aclnode
);
501 aclp
->z_acl_count
= 0;
502 aclp
->z_acl_bytes
= 0;
506 zfs_acl_free(zfs_acl_t
*aclp
)
508 zfs_acl_release_nodes(aclp
);
509 list_destroy(&aclp
->z_acl
);
510 kmem_free(aclp
, sizeof (zfs_acl_t
));
514 zfs_acl_valid_ace_type(uint_t type
, uint_t flags
)
521 case ACE_SYSTEM_AUDIT_ACE_TYPE
:
522 case ACE_SYSTEM_ALARM_ACE_TYPE
:
523 entry_type
= flags
& ACE_TYPE_FLAGS
;
524 return (entry_type
== ACE_OWNER
||
525 entry_type
== OWNING_GROUP
||
526 entry_type
== ACE_EVERYONE
|| entry_type
== 0 ||
527 entry_type
== ACE_IDENTIFIER_GROUP
);
529 if (type
>= MIN_ACE_TYPE
&& type
<= MAX_ACE_TYPE
)
536 zfs_ace_valid(umode_t obj_mode
, zfs_acl_t
*aclp
, uint16_t type
, uint16_t iflags
)
539 * first check type of entry
542 if (!zfs_acl_valid_ace_type(type
, iflags
))
546 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
547 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
548 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
549 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
550 if (aclp
->z_version
< ZFS_ACL_VERSION_FUID
)
552 aclp
->z_hints
|= ZFS_ACL_OBJ_ACE
;
556 * next check inheritance level flags
559 if (S_ISDIR(obj_mode
) &&
560 (iflags
& (ACE_FILE_INHERIT_ACE
|ACE_DIRECTORY_INHERIT_ACE
)))
561 aclp
->z_hints
|= ZFS_INHERIT_ACE
;
563 if (iflags
& (ACE_INHERIT_ONLY_ACE
|ACE_NO_PROPAGATE_INHERIT_ACE
)) {
564 if ((iflags
& (ACE_FILE_INHERIT_ACE
|
565 ACE_DIRECTORY_INHERIT_ACE
)) == 0) {
574 zfs_acl_next_ace(zfs_acl_t
*aclp
, void *start
, uint64_t *who
,
575 uint32_t *access_mask
, uint16_t *iflags
, uint16_t *type
)
577 zfs_acl_node_t
*aclnode
;
582 aclnode
= list_head(&aclp
->z_acl
);
586 aclp
->z_next_ace
= aclnode
->z_acldata
;
587 aclp
->z_curr_node
= aclnode
;
588 aclnode
->z_ace_idx
= 0;
591 aclnode
= aclp
->z_curr_node
;
596 if (aclnode
->z_ace_idx
>= aclnode
->z_ace_count
) {
597 aclnode
= list_next(&aclp
->z_acl
, aclnode
);
601 aclp
->z_curr_node
= aclnode
;
602 aclnode
->z_ace_idx
= 0;
603 aclp
->z_next_ace
= aclnode
->z_acldata
;
607 if (aclnode
->z_ace_idx
< aclnode
->z_ace_count
) {
608 void *acep
= aclp
->z_next_ace
;
612 * Make sure we don't overstep our bounds
614 ace_size
= aclp
->z_ops
->ace_size(acep
);
616 if (((caddr_t
)acep
+ ace_size
) >
617 ((caddr_t
)aclnode
->z_acldata
+ aclnode
->z_size
)) {
621 *iflags
= aclp
->z_ops
->ace_flags_get(acep
);
622 *type
= aclp
->z_ops
->ace_type_get(acep
);
623 *access_mask
= aclp
->z_ops
->ace_mask_get(acep
);
624 *who
= aclp
->z_ops
->ace_who_get(acep
);
625 aclp
->z_next_ace
= (caddr_t
)aclp
->z_next_ace
+ ace_size
;
626 aclnode
->z_ace_idx
++;
628 return ((void *)acep
);
635 zfs_ace_walk(void *datap
, uint64_t cookie
, int aclcnt
,
636 uint16_t *flags
, uint16_t *type
, uint32_t *mask
)
638 zfs_acl_t
*aclp
= datap
;
639 zfs_ace_hdr_t
*acep
= (zfs_ace_hdr_t
*)(uintptr_t)cookie
;
642 acep
= zfs_acl_next_ace(aclp
, acep
, &who
, mask
,
644 return ((uint64_t)(uintptr_t)acep
);
648 * Copy ACE to internal ZFS format.
649 * While processing the ACL each ACE will be validated for correctness.
650 * ACE FUIDs will be created later.
653 zfs_copy_ace_2_fuid(zfs_sb_t
*zsb
, umode_t obj_mode
, zfs_acl_t
*aclp
,
654 void *datap
, zfs_ace_t
*z_acl
, uint64_t aclcnt
, size_t *size
,
655 zfs_fuid_info_t
**fuidp
, cred_t
*cr
)
659 zfs_ace_t
*aceptr
= z_acl
;
661 zfs_object_ace_t
*zobjacep
;
662 ace_object_t
*aceobjp
;
664 for (i
= 0; i
!= aclcnt
; i
++) {
665 aceptr
->z_hdr
.z_access_mask
= acep
->a_access_mask
;
666 aceptr
->z_hdr
.z_flags
= acep
->a_flags
;
667 aceptr
->z_hdr
.z_type
= acep
->a_type
;
668 entry_type
= aceptr
->z_hdr
.z_flags
& ACE_TYPE_FLAGS
;
669 if (entry_type
!= ACE_OWNER
&& entry_type
!= OWNING_GROUP
&&
670 entry_type
!= ACE_EVERYONE
) {
671 aceptr
->z_fuid
= zfs_fuid_create(zsb
, acep
->a_who
,
672 cr
, (entry_type
== 0) ?
673 ZFS_ACE_USER
: ZFS_ACE_GROUP
, fuidp
);
677 * Make sure ACE is valid
679 if (zfs_ace_valid(obj_mode
, aclp
, aceptr
->z_hdr
.z_type
,
680 aceptr
->z_hdr
.z_flags
) != B_TRUE
)
681 return (SET_ERROR(EINVAL
));
683 switch (acep
->a_type
) {
684 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
685 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
686 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
687 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
688 zobjacep
= (zfs_object_ace_t
*)aceptr
;
689 aceobjp
= (ace_object_t
*)acep
;
691 bcopy(aceobjp
->a_obj_type
, zobjacep
->z_object_type
,
692 sizeof (aceobjp
->a_obj_type
));
693 bcopy(aceobjp
->a_inherit_obj_type
,
694 zobjacep
->z_inherit_type
,
695 sizeof (aceobjp
->a_inherit_obj_type
));
696 acep
= (ace_t
*)((caddr_t
)acep
+ sizeof (ace_object_t
));
699 acep
= (ace_t
*)((caddr_t
)acep
+ sizeof (ace_t
));
702 aceptr
= (zfs_ace_t
*)((caddr_t
)aceptr
+
703 aclp
->z_ops
->ace_size(aceptr
));
706 *size
= (caddr_t
)aceptr
- (caddr_t
)z_acl
;
712 * Copy ZFS ACEs to fixed size ace_t layout
715 zfs_copy_fuid_2_ace(zfs_sb_t
*zsb
, zfs_acl_t
*aclp
, cred_t
*cr
,
716 void *datap
, int filter
)
719 uint32_t access_mask
;
720 uint16_t iflags
, type
;
721 zfs_ace_hdr_t
*zacep
= NULL
;
723 ace_object_t
*objacep
;
724 zfs_object_ace_t
*zobjacep
;
728 while ((zacep
= zfs_acl_next_ace(aclp
, zacep
,
729 &who
, &access_mask
, &iflags
, &type
))) {
732 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
733 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
734 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
735 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
739 zobjacep
= (zfs_object_ace_t
*)zacep
;
740 objacep
= (ace_object_t
*)acep
;
741 bcopy(zobjacep
->z_object_type
,
743 sizeof (zobjacep
->z_object_type
));
744 bcopy(zobjacep
->z_inherit_type
,
745 objacep
->a_inherit_obj_type
,
746 sizeof (zobjacep
->z_inherit_type
));
747 ace_size
= sizeof (ace_object_t
);
750 ace_size
= sizeof (ace_t
);
754 entry_type
= (iflags
& ACE_TYPE_FLAGS
);
755 if ((entry_type
!= ACE_OWNER
&&
756 entry_type
!= OWNING_GROUP
&&
757 entry_type
!= ACE_EVERYONE
)) {
758 acep
->a_who
= zfs_fuid_map_id(zsb
, who
,
759 cr
, (entry_type
& ACE_IDENTIFIER_GROUP
) ?
760 ZFS_ACE_GROUP
: ZFS_ACE_USER
);
762 acep
->a_who
= (uid_t
)(int64_t)who
;
764 acep
->a_access_mask
= access_mask
;
765 acep
->a_flags
= iflags
;
767 acep
= (ace_t
*)((caddr_t
)acep
+ ace_size
);
772 zfs_copy_ace_2_oldace(umode_t obj_mode
, zfs_acl_t
*aclp
, ace_t
*acep
,
773 zfs_oldace_t
*z_acl
, int aclcnt
, size_t *size
)
776 zfs_oldace_t
*aceptr
= z_acl
;
778 for (i
= 0; i
!= aclcnt
; i
++, aceptr
++) {
779 aceptr
->z_access_mask
= acep
[i
].a_access_mask
;
780 aceptr
->z_type
= acep
[i
].a_type
;
781 aceptr
->z_flags
= acep
[i
].a_flags
;
782 aceptr
->z_fuid
= acep
[i
].a_who
;
784 * Make sure ACE is valid
786 if (zfs_ace_valid(obj_mode
, aclp
, aceptr
->z_type
,
787 aceptr
->z_flags
) != B_TRUE
)
788 return (SET_ERROR(EINVAL
));
790 *size
= (caddr_t
)aceptr
- (caddr_t
)z_acl
;
795 * convert old ACL format to new
798 zfs_acl_xform(znode_t
*zp
, zfs_acl_t
*aclp
, cred_t
*cr
)
800 zfs_oldace_t
*oldaclp
;
802 uint16_t type
, iflags
;
803 uint32_t access_mask
;
806 zfs_acl_node_t
*newaclnode
;
808 ASSERT(aclp
->z_version
== ZFS_ACL_VERSION_INITIAL
);
810 * First create the ACE in a contiguous piece of memory
811 * for zfs_copy_ace_2_fuid().
813 * We only convert an ACL once, so this won't happen
816 oldaclp
= kmem_alloc(sizeof (zfs_oldace_t
) * aclp
->z_acl_count
,
819 while ((cookie
= zfs_acl_next_ace(aclp
, cookie
, &who
,
820 &access_mask
, &iflags
, &type
))) {
821 oldaclp
[i
].z_flags
= iflags
;
822 oldaclp
[i
].z_type
= type
;
823 oldaclp
[i
].z_fuid
= who
;
824 oldaclp
[i
++].z_access_mask
= access_mask
;
827 newaclnode
= zfs_acl_node_alloc(aclp
->z_acl_count
*
828 sizeof (zfs_object_ace_t
));
829 aclp
->z_ops
= &zfs_acl_fuid_ops
;
830 VERIFY(zfs_copy_ace_2_fuid(ZTOZSB(zp
), ZTOI(zp
)->i_mode
,
831 aclp
, oldaclp
, newaclnode
->z_acldata
, aclp
->z_acl_count
,
832 &newaclnode
->z_size
, NULL
, cr
) == 0);
833 newaclnode
->z_ace_count
= aclp
->z_acl_count
;
834 aclp
->z_version
= ZFS_ACL_VERSION
;
835 kmem_free(oldaclp
, aclp
->z_acl_count
* sizeof (zfs_oldace_t
));
838 * Release all previous ACL nodes
841 zfs_acl_release_nodes(aclp
);
843 list_insert_head(&aclp
->z_acl
, newaclnode
);
845 aclp
->z_acl_bytes
= newaclnode
->z_size
;
846 aclp
->z_acl_count
= newaclnode
->z_ace_count
;
851 * Convert unix access mask to v4 access mask
854 zfs_unix_to_v4(uint32_t access_mask
)
856 uint32_t new_mask
= 0;
858 if (access_mask
& S_IXOTH
)
859 new_mask
|= ACE_EXECUTE
;
860 if (access_mask
& S_IWOTH
)
861 new_mask
|= ACE_WRITE_DATA
;
862 if (access_mask
& S_IROTH
)
863 new_mask
|= ACE_READ_DATA
;
868 zfs_set_ace(zfs_acl_t
*aclp
, void *acep
, uint32_t access_mask
,
869 uint16_t access_type
, uint64_t fuid
, uint16_t entry_type
)
871 uint16_t type
= entry_type
& ACE_TYPE_FLAGS
;
873 aclp
->z_ops
->ace_mask_set(acep
, access_mask
);
874 aclp
->z_ops
->ace_type_set(acep
, access_type
);
875 aclp
->z_ops
->ace_flags_set(acep
, entry_type
);
876 if ((type
!= ACE_OWNER
&& type
!= OWNING_GROUP
&&
877 type
!= ACE_EVERYONE
))
878 aclp
->z_ops
->ace_who_set(acep
, fuid
);
882 * Determine mode of file based on ACL.
883 * Also, create FUIDs for any User/Group ACEs
886 zfs_mode_compute(uint64_t fmode
, zfs_acl_t
*aclp
,
887 uint64_t *pflags
, uint64_t fuid
, uint64_t fgid
)
892 zfs_ace_hdr_t
*acep
= NULL
;
894 uint16_t iflags
, type
;
895 uint32_t access_mask
;
896 boolean_t an_exec_denied
= B_FALSE
;
898 mode
= (fmode
& (S_IFMT
| S_ISUID
| S_ISGID
| S_ISVTX
));
900 while ((acep
= zfs_acl_next_ace(aclp
, acep
, &who
,
901 &access_mask
, &iflags
, &type
))) {
903 if (!zfs_acl_valid_ace_type(type
, iflags
))
906 entry_type
= (iflags
& ACE_TYPE_FLAGS
);
909 * Skip over owner@, group@ or everyone@ inherit only ACEs
911 if ((iflags
& ACE_INHERIT_ONLY_ACE
) &&
912 (entry_type
== ACE_OWNER
|| entry_type
== ACE_EVERYONE
||
913 entry_type
== OWNING_GROUP
))
916 if (entry_type
== ACE_OWNER
|| (entry_type
== 0 &&
918 if ((access_mask
& ACE_READ_DATA
) &&
919 (!(seen
& S_IRUSR
))) {
925 if ((access_mask
& ACE_WRITE_DATA
) &&
926 (!(seen
& S_IWUSR
))) {
932 if ((access_mask
& ACE_EXECUTE
) &&
933 (!(seen
& S_IXUSR
))) {
939 } else if (entry_type
== OWNING_GROUP
||
940 (entry_type
== ACE_IDENTIFIER_GROUP
&& who
== fgid
)) {
941 if ((access_mask
& ACE_READ_DATA
) &&
942 (!(seen
& S_IRGRP
))) {
948 if ((access_mask
& ACE_WRITE_DATA
) &&
949 (!(seen
& S_IWGRP
))) {
955 if ((access_mask
& ACE_EXECUTE
) &&
956 (!(seen
& S_IXGRP
))) {
962 } else if (entry_type
== ACE_EVERYONE
) {
963 if ((access_mask
& ACE_READ_DATA
)) {
964 if (!(seen
& S_IRUSR
)) {
970 if (!(seen
& S_IRGRP
)) {
976 if (!(seen
& S_IROTH
)) {
983 if ((access_mask
& ACE_WRITE_DATA
)) {
984 if (!(seen
& S_IWUSR
)) {
990 if (!(seen
& S_IWGRP
)) {
996 if (!(seen
& S_IWOTH
)) {
1003 if ((access_mask
& ACE_EXECUTE
)) {
1004 if (!(seen
& S_IXUSR
)) {
1006 if (type
== ALLOW
) {
1010 if (!(seen
& S_IXGRP
)) {
1012 if (type
== ALLOW
) {
1016 if (!(seen
& S_IXOTH
)) {
1018 if (type
== ALLOW
) {
1025 * Only care if this IDENTIFIER_GROUP or
1026 * USER ACE denies execute access to someone,
1027 * mode is not affected
1029 if ((access_mask
& ACE_EXECUTE
) && type
== DENY
)
1030 an_exec_denied
= B_TRUE
;
1035 * Failure to allow is effectively a deny, so execute permission
1036 * is denied if it was never mentioned or if we explicitly
1037 * weren't allowed it.
1039 if (!an_exec_denied
&&
1040 ((seen
& ALL_MODE_EXECS
) != ALL_MODE_EXECS
||
1041 (mode
& ALL_MODE_EXECS
) != ALL_MODE_EXECS
))
1042 an_exec_denied
= B_TRUE
;
1045 *pflags
&= ~ZFS_NO_EXECS_DENIED
;
1047 *pflags
|= ZFS_NO_EXECS_DENIED
;
1053 * Read an external acl object. If the intent is to modify, always
1054 * create a new acl and leave any cached acl in place.
1057 zfs_acl_node_read(znode_t
*zp
, boolean_t have_lock
, zfs_acl_t
**aclpp
,
1058 boolean_t will_modify
)
1063 zfs_acl_node_t
*aclnode
;
1064 zfs_acl_phys_t znode_acl
;
1067 boolean_t drop_lock
= B_FALSE
;
1069 ASSERT(MUTEX_HELD(&zp
->z_acl_lock
));
1071 if (zp
->z_acl_cached
&& !will_modify
) {
1072 *aclpp
= zp
->z_acl_cached
;
1077 * close race where znode could be upgrade while trying to
1078 * read the znode attributes.
1080 * But this could only happen if the file isn't already an SA
1083 if (!zp
->z_is_sa
&& !have_lock
) {
1084 mutex_enter(&zp
->z_lock
);
1087 version
= zfs_znode_acl_version(zp
);
1089 if ((error
= zfs_acl_znode_info(zp
, &aclsize
,
1090 &acl_count
, &znode_acl
)) != 0) {
1094 aclp
= zfs_acl_alloc(version
);
1096 aclp
->z_acl_count
= acl_count
;
1097 aclp
->z_acl_bytes
= aclsize
;
1099 aclnode
= zfs_acl_node_alloc(aclsize
);
1100 aclnode
->z_ace_count
= aclp
->z_acl_count
;
1101 aclnode
->z_size
= aclsize
;
1104 if (znode_acl
.z_acl_extern_obj
) {
1105 error
= dmu_read(ZTOZSB(zp
)->z_os
,
1106 znode_acl
.z_acl_extern_obj
, 0, aclnode
->z_size
,
1107 aclnode
->z_acldata
, DMU_READ_PREFETCH
);
1109 bcopy(znode_acl
.z_ace_data
, aclnode
->z_acldata
,
1113 error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_DACL_ACES(ZTOZSB(zp
)),
1114 aclnode
->z_acldata
, aclnode
->z_size
);
1119 zfs_acl_node_free(aclnode
);
1120 /* convert checksum errors into IO errors */
1121 if (error
== ECKSUM
)
1122 error
= SET_ERROR(EIO
);
1126 list_insert_head(&aclp
->z_acl
, aclnode
);
1130 zp
->z_acl_cached
= aclp
;
1133 mutex_exit(&zp
->z_lock
);
1139 zfs_acl_data_locator(void **dataptr
, uint32_t *length
, uint32_t buflen
,
1140 boolean_t start
, void *userdata
)
1142 zfs_acl_locator_cb_t
*cb
= (zfs_acl_locator_cb_t
*)userdata
;
1145 cb
->cb_acl_node
= list_head(&cb
->cb_aclp
->z_acl
);
1147 cb
->cb_acl_node
= list_next(&cb
->cb_aclp
->z_acl
,
1150 *dataptr
= cb
->cb_acl_node
->z_acldata
;
1151 *length
= cb
->cb_acl_node
->z_size
;
1155 zfs_acl_chown_setattr(znode_t
*zp
)
1160 if (ZTOZSB(zp
)->z_acl_type
== ZFS_ACLTYPE_POSIXACL
)
1163 ASSERT(MUTEX_HELD(&zp
->z_lock
));
1164 ASSERT(MUTEX_HELD(&zp
->z_acl_lock
));
1166 error
= zfs_acl_node_read(zp
, B_TRUE
, &aclp
, B_FALSE
);
1167 if (error
== 0 && aclp
->z_acl_count
> 0)
1168 zp
->z_mode
= zfs_mode_compute(zp
->z_mode
, aclp
,
1169 &zp
->z_pflags
, zp
->z_uid
, zp
->z_gid
);
1172 * Some ZFS implementations (ZEVO) create neither a ZNODE_ACL
1173 * nor a DACL_ACES SA in which case ENOENT is returned from
1174 * zfs_acl_node_read() when the SA can't be located.
1175 * Allow chown/chgrp to succeed in these cases rather than
1176 * returning an error that makes no sense in the context of
1179 if (error
== ENOENT
)
1186 acl_trivial_access_masks(mode_t mode
, uint32_t *allow0
, uint32_t *deny1
,
1187 uint32_t *deny2
, uint32_t *owner
, uint32_t *group
, uint32_t *everyone
)
1189 *deny1
= *deny2
= *allow0
= *group
= 0;
1191 if (!(mode
& S_IRUSR
) && (mode
& (S_IRGRP
|S_IROTH
)))
1192 *deny1
|= ACE_READ_DATA
;
1193 if (!(mode
& S_IWUSR
) && (mode
& (S_IWGRP
|S_IWOTH
)))
1194 *deny1
|= ACE_WRITE_DATA
;
1195 if (!(mode
& S_IXUSR
) && (mode
& (S_IXGRP
|S_IXOTH
)))
1196 *deny1
|= ACE_EXECUTE
;
1198 if (!(mode
& S_IRGRP
) && (mode
& S_IROTH
))
1199 *deny2
= ACE_READ_DATA
;
1200 if (!(mode
& S_IWGRP
) && (mode
& S_IWOTH
))
1201 *deny2
|= ACE_WRITE_DATA
;
1202 if (!(mode
& S_IXGRP
) && (mode
& S_IXOTH
))
1203 *deny2
|= ACE_EXECUTE
;
1205 if ((mode
& S_IRUSR
) && (!(mode
& S_IRGRP
) && (mode
& S_IROTH
)))
1206 *allow0
|= ACE_READ_DATA
;
1207 if ((mode
& S_IWUSR
) && (!(mode
& S_IWGRP
) && (mode
& S_IWOTH
)))
1208 *allow0
|= ACE_WRITE_DATA
;
1209 if ((mode
& S_IXUSR
) && (!(mode
& S_IXGRP
) && (mode
& S_IXOTH
)))
1210 *allow0
|= ACE_EXECUTE
;
1212 *owner
= ACE_WRITE_ATTRIBUTES
|ACE_WRITE_OWNER
|ACE_WRITE_ACL
|
1213 ACE_WRITE_NAMED_ATTRS
|ACE_READ_ACL
|ACE_READ_ATTRIBUTES
|
1214 ACE_READ_NAMED_ATTRS
|ACE_SYNCHRONIZE
;
1216 *owner
|= ACE_READ_DATA
;
1218 *owner
|= ACE_WRITE_DATA
|ACE_APPEND_DATA
;
1220 *owner
|= ACE_EXECUTE
;
1222 *group
= ACE_READ_ACL
|ACE_READ_ATTRIBUTES
| ACE_READ_NAMED_ATTRS
|
1225 *group
|= ACE_READ_DATA
;
1227 *group
|= ACE_WRITE_DATA
|ACE_APPEND_DATA
;
1229 *group
|= ACE_EXECUTE
;
1231 *everyone
= ACE_READ_ACL
|ACE_READ_ATTRIBUTES
| ACE_READ_NAMED_ATTRS
|
1234 *everyone
|= ACE_READ_DATA
;
1236 *everyone
|= ACE_WRITE_DATA
|ACE_APPEND_DATA
;
1238 *everyone
|= ACE_EXECUTE
;
1243 * determine whether an ace_t acl is trivial
1245 * Trivialness implies that the acl is composed of only
1246 * owner, group, everyone entries. ACL can't
1247 * have read_acl denied, and write_owner/write_acl/write_attributes
1248 * can only be owner@ entry.
1251 ace_trivial_common(void *acep
, int aclcnt
,
1252 uint64_t (*walk
)(void *, uint64_t, int aclcnt
,
1253 uint16_t *, uint16_t *, uint32_t *))
1258 uint64_t cookie
= 0;
1260 while ((cookie
= walk(acep
, cookie
, aclcnt
, &flags
, &type
, &mask
))) {
1261 switch (flags
& ACE_TYPE_FLAGS
) {
1263 case ACE_GROUP
|ACE_IDENTIFIER_GROUP
:
1270 if (flags
& (ACE_FILE_INHERIT_ACE
|
1271 ACE_DIRECTORY_INHERIT_ACE
|ACE_NO_PROPAGATE_INHERIT_ACE
|
1272 ACE_INHERIT_ONLY_ACE
))
1276 * Special check for some special bits
1278 * Don't allow anybody to deny reading basic
1279 * attributes or a files ACL.
1281 if ((mask
& (ACE_READ_ACL
|ACE_READ_ATTRIBUTES
)) &&
1282 (type
== ACE_ACCESS_DENIED_ACE_TYPE
))
1286 * Delete permissions are never set by default
1288 if (mask
& (ACE_DELETE
|ACE_DELETE_CHILD
))
1291 * only allow owner@ to have
1292 * write_acl/write_owner/write_attributes/write_xattr/
1294 if (type
== ACE_ACCESS_ALLOWED_ACE_TYPE
&&
1295 (!(flags
& ACE_OWNER
) && (mask
&
1296 (ACE_WRITE_OWNER
|ACE_WRITE_ACL
| ACE_WRITE_ATTRIBUTES
|
1297 ACE_WRITE_NAMED_ATTRS
))))
1306 * common code for setting ACLs.
1308 * This function is called from zfs_mode_update, zfs_perm_init, and zfs_setacl.
1309 * zfs_setacl passes a non-NULL inherit pointer (ihp) to indicate that it's
1310 * already checked the acl and knows whether to inherit.
1313 zfs_aclset_common(znode_t
*zp
, zfs_acl_t
*aclp
, cred_t
*cr
, dmu_tx_t
*tx
)
1316 zfs_sb_t
*zsb
= ZTOZSB(zp
);
1317 dmu_object_type_t otype
;
1318 zfs_acl_locator_cb_t locate
= { 0 };
1320 sa_bulk_attr_t bulk
[5];
1326 mode
= zfs_mode_compute(mode
, aclp
, &zp
->z_pflags
,
1327 zp
->z_uid
, zp
->z_gid
);
1330 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_MODE(zsb
), NULL
,
1331 &mode
, sizeof (mode
));
1332 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_FLAGS(zsb
), NULL
,
1333 &zp
->z_pflags
, sizeof (zp
->z_pflags
));
1334 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_CTIME(zsb
), NULL
,
1335 &ctime
, sizeof (ctime
));
1337 if (zp
->z_acl_cached
) {
1338 zfs_acl_free(zp
->z_acl_cached
);
1339 zp
->z_acl_cached
= NULL
;
1345 if (!zsb
->z_use_fuids
) {
1346 otype
= DMU_OT_OLDACL
;
1348 if ((aclp
->z_version
== ZFS_ACL_VERSION_INITIAL
) &&
1349 (zsb
->z_version
>= ZPL_VERSION_FUID
))
1350 zfs_acl_xform(zp
, aclp
, cr
);
1351 ASSERT(aclp
->z_version
>= ZFS_ACL_VERSION_FUID
);
1356 * Arrgh, we have to handle old on disk format
1357 * as well as newer (preferred) SA format.
1360 if (zp
->z_is_sa
) { /* the easy case, just update the ACL attribute */
1361 locate
.cb_aclp
= aclp
;
1362 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_DACL_ACES(zsb
),
1363 zfs_acl_data_locator
, &locate
, aclp
->z_acl_bytes
);
1364 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_DACL_COUNT(zsb
),
1365 NULL
, &aclp
->z_acl_count
, sizeof (uint64_t));
1366 } else { /* Painful legacy way */
1367 zfs_acl_node_t
*aclnode
;
1369 zfs_acl_phys_t acl_phys
;
1372 if ((error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_ZNODE_ACL(zsb
),
1373 &acl_phys
, sizeof (acl_phys
))) != 0)
1376 aoid
= acl_phys
.z_acl_extern_obj
;
1378 if (aclp
->z_acl_bytes
> ZFS_ACE_SPACE
) {
1380 * If ACL was previously external and we are now
1381 * converting to new ACL format then release old
1382 * ACL object and create a new one.
1385 aclp
->z_version
!= acl_phys
.z_acl_version
) {
1386 error
= dmu_object_free(zsb
->z_os
, aoid
, tx
);
1392 aoid
= dmu_object_alloc(zsb
->z_os
,
1393 otype
, aclp
->z_acl_bytes
,
1394 otype
== DMU_OT_ACL
?
1395 DMU_OT_SYSACL
: DMU_OT_NONE
,
1396 otype
== DMU_OT_ACL
?
1397 DN_MAX_BONUSLEN
: 0, tx
);
1399 (void) dmu_object_set_blocksize(zsb
->z_os
,
1400 aoid
, aclp
->z_acl_bytes
, 0, tx
);
1402 acl_phys
.z_acl_extern_obj
= aoid
;
1403 for (aclnode
= list_head(&aclp
->z_acl
); aclnode
;
1404 aclnode
= list_next(&aclp
->z_acl
, aclnode
)) {
1405 if (aclnode
->z_ace_count
== 0)
1407 dmu_write(zsb
->z_os
, aoid
, off
,
1408 aclnode
->z_size
, aclnode
->z_acldata
, tx
);
1409 off
+= aclnode
->z_size
;
1412 void *start
= acl_phys
.z_ace_data
;
1414 * Migrating back embedded?
1416 if (acl_phys
.z_acl_extern_obj
) {
1417 error
= dmu_object_free(zsb
->z_os
,
1418 acl_phys
.z_acl_extern_obj
, tx
);
1421 acl_phys
.z_acl_extern_obj
= 0;
1424 for (aclnode
= list_head(&aclp
->z_acl
); aclnode
;
1425 aclnode
= list_next(&aclp
->z_acl
, aclnode
)) {
1426 if (aclnode
->z_ace_count
== 0)
1428 bcopy(aclnode
->z_acldata
, start
,
1430 start
= (caddr_t
)start
+ aclnode
->z_size
;
1434 * If Old version then swap count/bytes to match old
1435 * layout of znode_acl_phys_t.
1437 if (aclp
->z_version
== ZFS_ACL_VERSION_INITIAL
) {
1438 acl_phys
.z_acl_size
= aclp
->z_acl_count
;
1439 acl_phys
.z_acl_count
= aclp
->z_acl_bytes
;
1441 acl_phys
.z_acl_size
= aclp
->z_acl_bytes
;
1442 acl_phys
.z_acl_count
= aclp
->z_acl_count
;
1444 acl_phys
.z_acl_version
= aclp
->z_version
;
1446 SA_ADD_BULK_ATTR(bulk
, count
, SA_ZPL_ZNODE_ACL(zsb
), NULL
,
1447 &acl_phys
, sizeof (acl_phys
));
1451 * Replace ACL wide bits, but first clear them.
1453 zp
->z_pflags
&= ~ZFS_ACL_WIDE_FLAGS
;
1455 zp
->z_pflags
|= aclp
->z_hints
;
1457 if (ace_trivial_common(aclp
, 0, zfs_ace_walk
) == 0)
1458 zp
->z_pflags
|= ZFS_ACL_TRIVIAL
;
1460 zfs_tstamp_update_setup(zp
, STATE_CHANGED
, NULL
, ctime
);
1461 return (sa_bulk_update(zp
->z_sa_hdl
, bulk
, count
, tx
));
1465 zfs_acl_chmod(zfs_sb_t
*zsb
, uint64_t mode
, zfs_acl_t
*aclp
)
1469 int new_count
, new_bytes
;
1472 uint16_t iflags
, type
;
1473 uint32_t access_mask
;
1474 zfs_acl_node_t
*newnode
;
1475 size_t abstract_size
= aclp
->z_ops
->ace_abstract_size();
1477 uint32_t owner
, group
, everyone
;
1478 uint32_t deny1
, deny2
, allow0
;
1480 new_count
= new_bytes
= 0;
1482 acl_trivial_access_masks((mode_t
)mode
, &allow0
, &deny1
, &deny2
,
1483 &owner
, &group
, &everyone
);
1485 newnode
= zfs_acl_node_alloc((abstract_size
* 6) + aclp
->z_acl_bytes
);
1487 zacep
= newnode
->z_acldata
;
1489 zfs_set_ace(aclp
, zacep
, allow0
, ALLOW
, -1, ACE_OWNER
);
1490 zacep
= (void *)((uintptr_t)zacep
+ abstract_size
);
1492 new_bytes
+= abstract_size
;
1495 zfs_set_ace(aclp
, zacep
, deny1
, DENY
, -1, ACE_OWNER
);
1496 zacep
= (void *)((uintptr_t)zacep
+ abstract_size
);
1498 new_bytes
+= abstract_size
;
1501 zfs_set_ace(aclp
, zacep
, deny2
, DENY
, -1, OWNING_GROUP
);
1502 zacep
= (void *)((uintptr_t)zacep
+ abstract_size
);
1504 new_bytes
+= abstract_size
;
1507 while ((acep
= zfs_acl_next_ace(aclp
, acep
, &who
, &access_mask
,
1509 uint16_t inherit_flags
;
1511 entry_type
= (iflags
& ACE_TYPE_FLAGS
);
1512 inherit_flags
= (iflags
& ALL_INHERIT
);
1514 if ((entry_type
== ACE_OWNER
|| entry_type
== ACE_EVERYONE
||
1515 (entry_type
== OWNING_GROUP
)) &&
1516 ((inherit_flags
& ACE_INHERIT_ONLY_ACE
) == 0)) {
1520 if ((type
!= ALLOW
&& type
!= DENY
) ||
1521 (inherit_flags
& ACE_INHERIT_ONLY_ACE
)) {
1523 aclp
->z_hints
|= ZFS_INHERIT_ACE
;
1525 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
1526 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
1527 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
1528 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
1529 aclp
->z_hints
|= ZFS_ACL_OBJ_ACE
;
1535 * Limit permissions to be no greater than
1538 if (zsb
->z_acl_inherit
== ZFS_ACL_RESTRICTED
) {
1539 if (!(mode
& S_IRGRP
))
1540 access_mask
&= ~ACE_READ_DATA
;
1541 if (!(mode
& S_IWGRP
))
1543 ~(ACE_WRITE_DATA
|ACE_APPEND_DATA
);
1544 if (!(mode
& S_IXGRP
))
1545 access_mask
&= ~ACE_EXECUTE
;
1547 ~(ACE_WRITE_OWNER
|ACE_WRITE_ACL
|
1548 ACE_WRITE_ATTRIBUTES
|ACE_WRITE_NAMED_ATTRS
);
1551 zfs_set_ace(aclp
, zacep
, access_mask
, type
, who
, iflags
);
1552 ace_size
= aclp
->z_ops
->ace_size(acep
);
1553 zacep
= (void *)((uintptr_t)zacep
+ ace_size
);
1555 new_bytes
+= ace_size
;
1557 zfs_set_ace(aclp
, zacep
, owner
, 0, -1, ACE_OWNER
);
1558 zacep
= (void *)((uintptr_t)zacep
+ abstract_size
);
1559 zfs_set_ace(aclp
, zacep
, group
, 0, -1, OWNING_GROUP
);
1560 zacep
= (void *)((uintptr_t)zacep
+ abstract_size
);
1561 zfs_set_ace(aclp
, zacep
, everyone
, 0, -1, ACE_EVERYONE
);
1564 new_bytes
+= abstract_size
* 3;
1565 zfs_acl_release_nodes(aclp
);
1566 aclp
->z_acl_count
= new_count
;
1567 aclp
->z_acl_bytes
= new_bytes
;
1568 newnode
->z_ace_count
= new_count
;
1569 newnode
->z_size
= new_bytes
;
1570 list_insert_tail(&aclp
->z_acl
, newnode
);
1574 zfs_acl_chmod_setattr(znode_t
*zp
, zfs_acl_t
**aclp
, uint64_t mode
)
1576 mutex_enter(&zp
->z_acl_lock
);
1577 mutex_enter(&zp
->z_lock
);
1578 *aclp
= zfs_acl_alloc(zfs_acl_version_zp(zp
));
1579 (*aclp
)->z_hints
= zp
->z_pflags
& V4_ACL_WIDE_FLAGS
;
1580 zfs_acl_chmod(ZTOZSB(zp
), mode
, *aclp
);
1581 mutex_exit(&zp
->z_lock
);
1582 mutex_exit(&zp
->z_acl_lock
);
1587 * strip off write_owner and write_acl
1590 zfs_restricted_update(zfs_sb_t
*zsb
, zfs_acl_t
*aclp
, void *acep
)
1592 uint32_t mask
= aclp
->z_ops
->ace_mask_get(acep
);
1594 if ((zsb
->z_acl_inherit
== ZFS_ACL_RESTRICTED
) &&
1595 (aclp
->z_ops
->ace_type_get(acep
) == ALLOW
)) {
1596 mask
&= ~RESTRICTED_CLEAR
;
1597 aclp
->z_ops
->ace_mask_set(acep
, mask
);
1602 * Should ACE be inherited?
1605 zfs_ace_can_use(umode_t obj_mode
, uint16_t acep_flags
)
1607 int iflags
= (acep_flags
& 0xf);
1609 if (S_ISDIR(obj_mode
) && (iflags
& ACE_DIRECTORY_INHERIT_ACE
))
1611 else if (iflags
& ACE_FILE_INHERIT_ACE
)
1612 return (!(S_ISDIR(obj_mode
) &&
1613 (iflags
& ACE_NO_PROPAGATE_INHERIT_ACE
)));
1618 * inherit inheritable ACEs from parent
1621 zfs_acl_inherit(zfs_sb_t
*zsb
, umode_t obj_mode
, zfs_acl_t
*paclp
,
1622 uint64_t mode
, boolean_t
*need_chmod
)
1626 zfs_acl_node_t
*aclnode
;
1627 zfs_acl_t
*aclp
= NULL
;
1629 uint32_t access_mask
;
1630 uint16_t iflags
, newflags
, type
;
1632 void *data1
, *data2
;
1633 size_t data1sz
, data2sz
;
1634 boolean_t vdir
= S_ISDIR(obj_mode
);
1635 boolean_t vreg
= S_ISREG(obj_mode
);
1636 boolean_t passthrough
, passthrough_x
, noallow
;
1639 zsb
->z_acl_inherit
== ZFS_ACL_PASSTHROUGH_X
;
1640 passthrough
= passthrough_x
||
1641 zsb
->z_acl_inherit
== ZFS_ACL_PASSTHROUGH
;
1643 zsb
->z_acl_inherit
== ZFS_ACL_NOALLOW
;
1645 *need_chmod
= B_TRUE
;
1647 aclp
= zfs_acl_alloc(paclp
->z_version
);
1648 if (zsb
->z_acl_inherit
== ZFS_ACL_DISCARD
|| S_ISLNK(obj_mode
))
1650 while ((pacep
= zfs_acl_next_ace(paclp
, pacep
, &who
,
1651 &access_mask
, &iflags
, &type
))) {
1654 * don't inherit bogus ACEs
1656 if (!zfs_acl_valid_ace_type(type
, iflags
))
1659 if (noallow
&& type
== ALLOW
)
1662 ace_size
= aclp
->z_ops
->ace_size(pacep
);
1664 if (!zfs_ace_can_use(obj_mode
, iflags
))
1668 * If owner@, group@, or everyone@ inheritable
1669 * then zfs_acl_chmod() isn't needed.
1672 ((iflags
& (ACE_OWNER
|ACE_EVERYONE
)) ||
1673 ((iflags
& OWNING_GROUP
) ==
1674 OWNING_GROUP
)) && (vreg
|| (vdir
&& (iflags
&
1675 ACE_DIRECTORY_INHERIT_ACE
)))) {
1676 *need_chmod
= B_FALSE
;
1679 if (!vdir
&& passthrough_x
&&
1680 ((mode
& (S_IXUSR
| S_IXGRP
| S_IXOTH
)) == 0)) {
1681 access_mask
&= ~ACE_EXECUTE
;
1684 aclnode
= zfs_acl_node_alloc(ace_size
);
1685 list_insert_tail(&aclp
->z_acl
, aclnode
);
1686 acep
= aclnode
->z_acldata
;
1688 zfs_set_ace(aclp
, acep
, access_mask
, type
,
1689 who
, iflags
|ACE_INHERITED_ACE
);
1692 * Copy special opaque data if any
1694 if ((data1sz
= paclp
->z_ops
->ace_data(pacep
, &data1
)) != 0) {
1695 VERIFY((data2sz
= aclp
->z_ops
->ace_data(acep
,
1696 &data2
)) == data1sz
);
1697 bcopy(data1
, data2
, data2sz
);
1700 aclp
->z_acl_count
++;
1701 aclnode
->z_ace_count
++;
1702 aclp
->z_acl_bytes
+= aclnode
->z_size
;
1703 newflags
= aclp
->z_ops
->ace_flags_get(acep
);
1706 aclp
->z_hints
|= ZFS_INHERIT_ACE
;
1708 if ((iflags
& ACE_NO_PROPAGATE_INHERIT_ACE
) || !vdir
) {
1709 newflags
&= ~ALL_INHERIT
;
1710 aclp
->z_ops
->ace_flags_set(acep
,
1711 newflags
|ACE_INHERITED_ACE
);
1712 zfs_restricted_update(zsb
, aclp
, acep
);
1719 * If only FILE_INHERIT is set then turn on
1722 if ((iflags
& (ACE_FILE_INHERIT_ACE
|
1723 ACE_DIRECTORY_INHERIT_ACE
)) == ACE_FILE_INHERIT_ACE
) {
1724 newflags
|= ACE_INHERIT_ONLY_ACE
;
1725 aclp
->z_ops
->ace_flags_set(acep
,
1726 newflags
|ACE_INHERITED_ACE
);
1728 newflags
&= ~ACE_INHERIT_ONLY_ACE
;
1729 aclp
->z_ops
->ace_flags_set(acep
,
1730 newflags
|ACE_INHERITED_ACE
);
1737 * Create file system object initial permissions
1738 * including inheritable ACEs.
1741 zfs_acl_ids_create(znode_t
*dzp
, int flag
, vattr_t
*vap
, cred_t
*cr
,
1742 vsecattr_t
*vsecp
, zfs_acl_ids_t
*acl_ids
)
1745 zfs_sb_t
*zsb
= ZTOZSB(dzp
);
1747 gid_t gid
= vap
->va_gid
;
1748 boolean_t need_chmod
= B_TRUE
;
1749 boolean_t inherited
= B_FALSE
;
1751 bzero(acl_ids
, sizeof (zfs_acl_ids_t
));
1752 acl_ids
->z_mode
= vap
->va_mode
;
1755 if ((error
= zfs_vsec_2_aclp(zsb
, vap
->va_mode
, vsecp
,
1756 cr
, &acl_ids
->z_fuidp
, &acl_ids
->z_aclp
)) != 0)
1759 acl_ids
->z_fuid
= vap
->va_uid
;
1760 acl_ids
->z_fgid
= vap
->va_gid
;
1763 * Determine uid and gid.
1765 if ((flag
& IS_ROOT_NODE
) || zsb
->z_replay
||
1766 ((flag
& IS_XATTR
) && (S_ISDIR(vap
->va_mode
)))) {
1767 acl_ids
->z_fuid
= zfs_fuid_create(zsb
, (uint64_t)vap
->va_uid
,
1768 cr
, ZFS_OWNER
, &acl_ids
->z_fuidp
);
1769 acl_ids
->z_fgid
= zfs_fuid_create(zsb
, (uint64_t)vap
->va_gid
,
1770 cr
, ZFS_GROUP
, &acl_ids
->z_fuidp
);
1773 acl_ids
->z_fuid
= zfs_fuid_create_cred(zsb
, ZFS_OWNER
,
1774 cr
, &acl_ids
->z_fuidp
);
1775 acl_ids
->z_fgid
= 0;
1776 if (vap
->va_mask
& AT_GID
) {
1777 acl_ids
->z_fgid
= zfs_fuid_create(zsb
,
1778 (uint64_t)vap
->va_gid
,
1779 cr
, ZFS_GROUP
, &acl_ids
->z_fuidp
);
1781 if (acl_ids
->z_fgid
!= dzp
->z_gid
&&
1782 !groupmember(vap
->va_gid
, cr
) &&
1783 secpolicy_vnode_create_gid(cr
) != 0)
1784 acl_ids
->z_fgid
= 0;
1786 if (acl_ids
->z_fgid
== 0) {
1787 if (dzp
->z_mode
& S_ISGID
) {
1791 acl_ids
->z_fgid
= dzp
->z_gid
;
1792 gid
= zfs_fuid_map_id(zsb
, acl_ids
->z_fgid
,
1795 if (zsb
->z_use_fuids
&&
1796 IS_EPHEMERAL(acl_ids
->z_fgid
)) {
1797 domain
= zfs_fuid_idx_domain(
1799 FUID_INDEX(acl_ids
->z_fgid
));
1800 rid
= FUID_RID(acl_ids
->z_fgid
);
1801 zfs_fuid_node_add(&acl_ids
->z_fuidp
,
1803 FUID_INDEX(acl_ids
->z_fgid
),
1804 acl_ids
->z_fgid
, ZFS_GROUP
);
1807 acl_ids
->z_fgid
= zfs_fuid_create_cred(zsb
,
1808 ZFS_GROUP
, cr
, &acl_ids
->z_fuidp
);
1813 #endif /* HAVE_KSID */
1816 * If we're creating a directory, and the parent directory has the
1817 * set-GID bit set, set in on the new directory.
1818 * Otherwise, if the user is neither privileged nor a member of the
1819 * file's new group, clear the file's set-GID bit.
1822 if (!(flag
& IS_ROOT_NODE
) && (dzp
->z_mode
& S_ISGID
) &&
1823 (S_ISDIR(vap
->va_mode
))) {
1824 acl_ids
->z_mode
|= S_ISGID
;
1826 if ((acl_ids
->z_mode
& S_ISGID
) &&
1827 secpolicy_vnode_setids_setgids(cr
, gid
) != 0)
1828 acl_ids
->z_mode
&= ~S_ISGID
;
1831 if (acl_ids
->z_aclp
== NULL
) {
1832 mutex_enter(&dzp
->z_acl_lock
);
1833 mutex_enter(&dzp
->z_lock
);
1834 if (!(flag
& IS_ROOT_NODE
) && (S_ISDIR(ZTOI(dzp
)->i_mode
) &&
1835 (dzp
->z_pflags
& ZFS_INHERIT_ACE
)) &&
1836 !(dzp
->z_pflags
& ZFS_XATTR
)) {
1837 VERIFY(0 == zfs_acl_node_read(dzp
, B_TRUE
,
1839 acl_ids
->z_aclp
= zfs_acl_inherit(zsb
,
1840 vap
->va_mode
, paclp
, acl_ids
->z_mode
, &need_chmod
);
1844 zfs_acl_alloc(zfs_acl_version_zp(dzp
));
1845 acl_ids
->z_aclp
->z_hints
|= ZFS_ACL_TRIVIAL
;
1847 mutex_exit(&dzp
->z_lock
);
1848 mutex_exit(&dzp
->z_acl_lock
);
1850 acl_ids
->z_aclp
->z_hints
|= S_ISDIR(vap
->va_mode
) ?
1851 ZFS_ACL_AUTO_INHERIT
: 0;
1852 zfs_acl_chmod(zsb
, acl_ids
->z_mode
, acl_ids
->z_aclp
);
1856 if (inherited
|| vsecp
) {
1857 acl_ids
->z_mode
= zfs_mode_compute(acl_ids
->z_mode
,
1858 acl_ids
->z_aclp
, &acl_ids
->z_aclp
->z_hints
,
1859 acl_ids
->z_fuid
, acl_ids
->z_fgid
);
1860 if (ace_trivial_common(acl_ids
->z_aclp
, 0, zfs_ace_walk
) == 0)
1861 acl_ids
->z_aclp
->z_hints
|= ZFS_ACL_TRIVIAL
;
1868 * Free ACL and fuid_infop, but not the acl_ids structure
1871 zfs_acl_ids_free(zfs_acl_ids_t
*acl_ids
)
1873 if (acl_ids
->z_aclp
)
1874 zfs_acl_free(acl_ids
->z_aclp
);
1875 if (acl_ids
->z_fuidp
)
1876 zfs_fuid_info_free(acl_ids
->z_fuidp
);
1877 acl_ids
->z_aclp
= NULL
;
1878 acl_ids
->z_fuidp
= NULL
;
1882 zfs_acl_ids_overquota(zfs_sb_t
*zsb
, zfs_acl_ids_t
*acl_ids
)
1884 return (zfs_fuid_overquota(zsb
, B_FALSE
, acl_ids
->z_fuid
) ||
1885 zfs_fuid_overquota(zsb
, B_TRUE
, acl_ids
->z_fgid
));
1889 * Retrieve a file's ACL
1892 zfs_getacl(znode_t
*zp
, vsecattr_t
*vsecp
, boolean_t skipaclchk
, cred_t
*cr
)
1900 mask
= vsecp
->vsa_mask
& (VSA_ACE
| VSA_ACECNT
|
1901 VSA_ACE_ACLFLAGS
| VSA_ACE_ALLTYPES
);
1904 return (SET_ERROR(ENOSYS
));
1906 if ((error
= zfs_zaccess(zp
, ACE_READ_ACL
, 0, skipaclchk
, cr
)))
1909 mutex_enter(&zp
->z_acl_lock
);
1911 error
= zfs_acl_node_read(zp
, B_FALSE
, &aclp
, B_FALSE
);
1913 mutex_exit(&zp
->z_acl_lock
);
1918 * Scan ACL to determine number of ACEs
1920 if ((zp
->z_pflags
& ZFS_ACL_OBJ_ACE
) && !(mask
& VSA_ACE_ALLTYPES
)) {
1923 uint32_t access_mask
;
1924 uint16_t type
, iflags
;
1926 while ((zacep
= zfs_acl_next_ace(aclp
, zacep
,
1927 &who
, &access_mask
, &iflags
, &type
))) {
1929 case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE
:
1930 case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE
:
1931 case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE
:
1932 case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE
:
1939 vsecp
->vsa_aclcnt
= count
;
1941 count
= (int)aclp
->z_acl_count
;
1943 if (mask
& VSA_ACECNT
) {
1944 vsecp
->vsa_aclcnt
= count
;
1947 if (mask
& VSA_ACE
) {
1950 aclsz
= count
* sizeof (ace_t
) +
1951 sizeof (ace_object_t
) * largeace
;
1953 vsecp
->vsa_aclentp
= kmem_alloc(aclsz
, KM_SLEEP
);
1954 vsecp
->vsa_aclentsz
= aclsz
;
1956 if (aclp
->z_version
== ZFS_ACL_VERSION_FUID
)
1957 zfs_copy_fuid_2_ace(ZTOZSB(zp
), aclp
, cr
,
1958 vsecp
->vsa_aclentp
, !(mask
& VSA_ACE_ALLTYPES
));
1960 zfs_acl_node_t
*aclnode
;
1961 void *start
= vsecp
->vsa_aclentp
;
1963 for (aclnode
= list_head(&aclp
->z_acl
); aclnode
;
1964 aclnode
= list_next(&aclp
->z_acl
, aclnode
)) {
1965 bcopy(aclnode
->z_acldata
, start
,
1967 start
= (caddr_t
)start
+ aclnode
->z_size
;
1969 ASSERT((caddr_t
)start
- (caddr_t
)vsecp
->vsa_aclentp
==
1973 if (mask
& VSA_ACE_ACLFLAGS
) {
1974 vsecp
->vsa_aclflags
= 0;
1975 if (zp
->z_pflags
& ZFS_ACL_DEFAULTED
)
1976 vsecp
->vsa_aclflags
|= ACL_DEFAULTED
;
1977 if (zp
->z_pflags
& ZFS_ACL_PROTECTED
)
1978 vsecp
->vsa_aclflags
|= ACL_PROTECTED
;
1979 if (zp
->z_pflags
& ZFS_ACL_AUTO_INHERIT
)
1980 vsecp
->vsa_aclflags
|= ACL_AUTO_INHERIT
;
1983 mutex_exit(&zp
->z_acl_lock
);
1989 zfs_vsec_2_aclp(zfs_sb_t
*zsb
, umode_t obj_mode
,
1990 vsecattr_t
*vsecp
, cred_t
*cr
, zfs_fuid_info_t
**fuidp
, zfs_acl_t
**zaclp
)
1993 zfs_acl_node_t
*aclnode
;
1994 int aclcnt
= vsecp
->vsa_aclcnt
;
1997 if (vsecp
->vsa_aclcnt
> MAX_ACL_ENTRIES
|| vsecp
->vsa_aclcnt
<= 0)
1998 return (SET_ERROR(EINVAL
));
2000 aclp
= zfs_acl_alloc(zfs_acl_version(zsb
->z_version
));
2003 aclnode
= zfs_acl_node_alloc(aclcnt
* sizeof (zfs_object_ace_t
));
2004 if (aclp
->z_version
== ZFS_ACL_VERSION_INITIAL
) {
2005 if ((error
= zfs_copy_ace_2_oldace(obj_mode
, aclp
,
2006 (ace_t
*)vsecp
->vsa_aclentp
, aclnode
->z_acldata
,
2007 aclcnt
, &aclnode
->z_size
)) != 0) {
2009 zfs_acl_node_free(aclnode
);
2013 if ((error
= zfs_copy_ace_2_fuid(zsb
, obj_mode
, aclp
,
2014 vsecp
->vsa_aclentp
, aclnode
->z_acldata
, aclcnt
,
2015 &aclnode
->z_size
, fuidp
, cr
)) != 0) {
2017 zfs_acl_node_free(aclnode
);
2021 aclp
->z_acl_bytes
= aclnode
->z_size
;
2022 aclnode
->z_ace_count
= aclcnt
;
2023 aclp
->z_acl_count
= aclcnt
;
2024 list_insert_head(&aclp
->z_acl
, aclnode
);
2027 * If flags are being set then add them to z_hints
2029 if (vsecp
->vsa_mask
& VSA_ACE_ACLFLAGS
) {
2030 if (vsecp
->vsa_aclflags
& ACL_PROTECTED
)
2031 aclp
->z_hints
|= ZFS_ACL_PROTECTED
;
2032 if (vsecp
->vsa_aclflags
& ACL_DEFAULTED
)
2033 aclp
->z_hints
|= ZFS_ACL_DEFAULTED
;
2034 if (vsecp
->vsa_aclflags
& ACL_AUTO_INHERIT
)
2035 aclp
->z_hints
|= ZFS_ACL_AUTO_INHERIT
;
2047 zfs_setacl(znode_t
*zp
, vsecattr_t
*vsecp
, boolean_t skipaclchk
, cred_t
*cr
)
2049 zfs_sb_t
*zsb
= ZTOZSB(zp
);
2050 zilog_t
*zilog
= zsb
->z_log
;
2051 ulong_t mask
= vsecp
->vsa_mask
& (VSA_ACE
| VSA_ACECNT
);
2055 zfs_fuid_info_t
*fuidp
= NULL
;
2056 boolean_t fuid_dirtied
;
2060 return (SET_ERROR(ENOSYS
));
2062 if (zp
->z_pflags
& ZFS_IMMUTABLE
)
2063 return (SET_ERROR(EPERM
));
2065 if ((error
= zfs_zaccess(zp
, ACE_WRITE_ACL
, 0, skipaclchk
, cr
)))
2068 error
= zfs_vsec_2_aclp(zsb
, ZTOI(zp
)->i_mode
, vsecp
, cr
, &fuidp
,
2074 * If ACL wide flags aren't being set then preserve any
2077 if (!(vsecp
->vsa_mask
& VSA_ACE_ACLFLAGS
)) {
2079 (zp
->z_pflags
& V4_ACL_WIDE_FLAGS
);
2082 mutex_enter(&zp
->z_acl_lock
);
2083 mutex_enter(&zp
->z_lock
);
2085 tx
= dmu_tx_create(zsb
->z_os
);
2087 dmu_tx_hold_sa(tx
, zp
->z_sa_hdl
, B_TRUE
);
2089 fuid_dirtied
= zsb
->z_fuid_dirty
;
2091 zfs_fuid_txhold(zsb
, tx
);
2094 * If old version and ACL won't fit in bonus and we aren't
2095 * upgrading then take out necessary DMU holds
2098 if ((acl_obj
= zfs_external_acl(zp
)) != 0) {
2099 if (zsb
->z_version
>= ZPL_VERSION_FUID
&&
2100 zfs_znode_acl_version(zp
) <= ZFS_ACL_VERSION_INITIAL
) {
2101 dmu_tx_hold_free(tx
, acl_obj
, 0,
2103 dmu_tx_hold_write(tx
, DMU_NEW_OBJECT
, 0,
2106 dmu_tx_hold_write(tx
, acl_obj
, 0, aclp
->z_acl_bytes
);
2108 } else if (!zp
->z_is_sa
&& aclp
->z_acl_bytes
> ZFS_ACE_SPACE
) {
2109 dmu_tx_hold_write(tx
, DMU_NEW_OBJECT
, 0, aclp
->z_acl_bytes
);
2112 zfs_sa_upgrade_txholds(tx
, zp
);
2113 error
= dmu_tx_assign(tx
, TXG_NOWAIT
);
2115 mutex_exit(&zp
->z_acl_lock
);
2116 mutex_exit(&zp
->z_lock
);
2118 if (error
== ERESTART
) {
2128 error
= zfs_aclset_common(zp
, aclp
, cr
, tx
);
2130 ASSERT(zp
->z_acl_cached
== NULL
);
2131 zp
->z_acl_cached
= aclp
;
2134 zfs_fuid_sync(zsb
, tx
);
2136 zfs_log_acl(zilog
, tx
, zp
, vsecp
, fuidp
);
2139 zfs_fuid_info_free(fuidp
);
2142 mutex_exit(&zp
->z_lock
);
2143 mutex_exit(&zp
->z_acl_lock
);
2149 * Check accesses of interest (AoI) against attributes of the dataset
2150 * such as read-only. Returns zero if no AoI conflict with dataset
2151 * attributes, otherwise an appropriate errno is returned.
2154 zfs_zaccess_dataset_check(znode_t
*zp
, uint32_t v4_mode
)
2156 if ((v4_mode
& WRITE_MASK
) && (zfs_is_readonly(ZTOZSB(zp
))) &&
2157 (!S_ISDEV(ZTOI(zp
)->i_mode
) ||
2158 (S_ISDEV(ZTOI(zp
)->i_mode
) && (v4_mode
& WRITE_MASK_ATTRS
)))) {
2159 return (SET_ERROR(EROFS
));
2163 * Only check for READONLY on non-directories.
2165 if ((v4_mode
& WRITE_MASK_DATA
) &&
2166 ((!S_ISDIR(ZTOI(zp
)->i_mode
) &&
2167 (zp
->z_pflags
& (ZFS_READONLY
| ZFS_IMMUTABLE
))) ||
2168 (S_ISDIR(ZTOI(zp
)->i_mode
) &&
2169 (zp
->z_pflags
& ZFS_IMMUTABLE
)))) {
2170 return (SET_ERROR(EPERM
));
2173 if ((v4_mode
& (ACE_DELETE
| ACE_DELETE_CHILD
)) &&
2174 (zp
->z_pflags
& ZFS_NOUNLINK
)) {
2175 return (SET_ERROR(EPERM
));
2178 if (((v4_mode
& (ACE_READ_DATA
|ACE_EXECUTE
)) &&
2179 (zp
->z_pflags
& ZFS_AV_QUARANTINED
))) {
2180 return (SET_ERROR(EACCES
));
2187 * The primary usage of this function is to loop through all of the
2188 * ACEs in the znode, determining what accesses of interest (AoI) to
2189 * the caller are allowed or denied. The AoI are expressed as bits in
2190 * the working_mode parameter. As each ACE is processed, bits covered
2191 * by that ACE are removed from the working_mode. This removal
2192 * facilitates two things. The first is that when the working mode is
2193 * empty (= 0), we know we've looked at all the AoI. The second is
2194 * that the ACE interpretation rules don't allow a later ACE to undo
2195 * something granted or denied by an earlier ACE. Removing the
2196 * discovered access or denial enforces this rule. At the end of
2197 * processing the ACEs, all AoI that were found to be denied are
2198 * placed into the working_mode, giving the caller a mask of denied
2199 * accesses. Returns:
2200 * 0 if all AoI granted
2201 * EACCESS if the denied mask is non-zero
2202 * other error if abnormal failure (e.g., IO error)
2204 * A secondary usage of the function is to determine if any of the
2205 * AoI are granted. If an ACE grants any access in
2206 * the working_mode, we immediately short circuit out of the function.
2207 * This mode is chosen by setting anyaccess to B_TRUE. The
2208 * working_mode is not a denied access mask upon exit if the function
2209 * is used in this manner.
2212 zfs_zaccess_aces_check(znode_t
*zp
, uint32_t *working_mode
,
2213 boolean_t anyaccess
, cred_t
*cr
)
2215 zfs_sb_t
*zsb
= ZTOZSB(zp
);
2218 uid_t uid
= crgetuid(cr
);
2220 uint16_t type
, iflags
;
2221 uint16_t entry_type
;
2222 uint32_t access_mask
;
2223 uint32_t deny_mask
= 0;
2224 zfs_ace_hdr_t
*acep
= NULL
;
2229 zfs_fuid_map_ids(zp
, cr
, &fowner
, &gowner
);
2231 mutex_enter(&zp
->z_acl_lock
);
2233 error
= zfs_acl_node_read(zp
, B_FALSE
, &aclp
, B_FALSE
);
2235 mutex_exit(&zp
->z_acl_lock
);
2239 ASSERT(zp
->z_acl_cached
);
2241 while ((acep
= zfs_acl_next_ace(aclp
, acep
, &who
, &access_mask
,
2243 uint32_t mask_matched
;
2245 if (!zfs_acl_valid_ace_type(type
, iflags
))
2248 if (S_ISDIR(ZTOI(zp
)->i_mode
) &&
2249 (iflags
& ACE_INHERIT_ONLY_ACE
))
2252 /* Skip ACE if it does not affect any AoI */
2253 mask_matched
= (access_mask
& *working_mode
);
2257 entry_type
= (iflags
& ACE_TYPE_FLAGS
);
2261 switch (entry_type
) {
2269 case ACE_IDENTIFIER_GROUP
:
2270 checkit
= zfs_groupmember(zsb
, who
, cr
);
2278 if (entry_type
== 0) {
2281 newid
= zfs_fuid_map_id(zsb
, who
, cr
,
2283 if (newid
!= IDMAP_WK_CREATOR_OWNER_UID
&&
2288 mutex_exit(&zp
->z_acl_lock
);
2289 return (SET_ERROR(EIO
));
2295 DTRACE_PROBE3(zfs__ace__denies
,
2297 zfs_ace_hdr_t
*, acep
,
2298 uint32_t, mask_matched
);
2299 deny_mask
|= mask_matched
;
2301 DTRACE_PROBE3(zfs__ace__allows
,
2303 zfs_ace_hdr_t
*, acep
,
2304 uint32_t, mask_matched
);
2306 mutex_exit(&zp
->z_acl_lock
);
2310 *working_mode
&= ~mask_matched
;
2314 if (*working_mode
== 0)
2318 mutex_exit(&zp
->z_acl_lock
);
2320 /* Put the found 'denies' back on the working mode */
2322 *working_mode
|= deny_mask
;
2323 return (SET_ERROR(EACCES
));
2324 } else if (*working_mode
) {
2332 * Return true if any access whatsoever granted, we don't actually
2333 * care what access is granted.
2336 zfs_has_access(znode_t
*zp
, cred_t
*cr
)
2338 uint32_t have
= ACE_ALL_PERMS
;
2340 if (zfs_zaccess_aces_check(zp
, &have
, B_TRUE
, cr
) != 0) {
2343 owner
= zfs_fuid_map_id(ZTOZSB(zp
), zp
->z_uid
, cr
, ZFS_OWNER
);
2344 return (secpolicy_vnode_any_access(cr
, ZTOI(zp
), owner
) == 0);
2350 zfs_zaccess_common(znode_t
*zp
, uint32_t v4_mode
, uint32_t *working_mode
,
2351 boolean_t
*check_privs
, boolean_t skipaclchk
, cred_t
*cr
)
2353 zfs_sb_t
*zsb
= ZTOZSB(zp
);
2356 *working_mode
= v4_mode
;
2357 *check_privs
= B_TRUE
;
2360 * Short circuit empty requests
2362 if (v4_mode
== 0 || zsb
->z_replay
) {
2367 if ((err
= zfs_zaccess_dataset_check(zp
, v4_mode
)) != 0) {
2368 *check_privs
= B_FALSE
;
2373 * The caller requested that the ACL check be skipped. This
2374 * would only happen if the caller checked VOP_ACCESS() with a
2375 * 32 bit ACE mask and already had the appropriate permissions.
2382 return (zfs_zaccess_aces_check(zp
, working_mode
, B_FALSE
, cr
));
2386 zfs_zaccess_append(znode_t
*zp
, uint32_t *working_mode
, boolean_t
*check_privs
,
2389 if (*working_mode
!= ACE_WRITE_DATA
)
2390 return (SET_ERROR(EACCES
));
2392 return (zfs_zaccess_common(zp
, ACE_APPEND_DATA
, working_mode
,
2393 check_privs
, B_FALSE
, cr
));
2397 zfs_fastaccesschk_execute(znode_t
*zdp
, cred_t
*cr
)
2399 boolean_t owner
= B_FALSE
;
2400 boolean_t groupmbr
= B_FALSE
;
2402 uid_t uid
= crgetuid(cr
);
2405 if (zdp
->z_pflags
& ZFS_AV_QUARANTINED
)
2406 return (SET_ERROR(EACCES
));
2408 is_attr
= ((zdp
->z_pflags
& ZFS_XATTR
) &&
2409 (S_ISDIR(ZTOI(zdp
)->i_mode
)));
2414 mutex_enter(&zdp
->z_acl_lock
);
2416 if (zdp
->z_pflags
& ZFS_NO_EXECS_DENIED
) {
2417 mutex_exit(&zdp
->z_acl_lock
);
2421 if (FUID_INDEX(zdp
->z_uid
) != 0 || FUID_INDEX(zdp
->z_gid
) != 0) {
2422 mutex_exit(&zdp
->z_acl_lock
);
2426 if (uid
== zdp
->z_uid
) {
2428 if (zdp
->z_mode
& S_IXUSR
) {
2429 mutex_exit(&zdp
->z_acl_lock
);
2432 mutex_exit(&zdp
->z_acl_lock
);
2436 if (groupmember(zdp
->z_gid
, cr
)) {
2438 if (zdp
->z_mode
& S_IXGRP
) {
2439 mutex_exit(&zdp
->z_acl_lock
);
2442 mutex_exit(&zdp
->z_acl_lock
);
2446 if (!owner
&& !groupmbr
) {
2447 if (zdp
->z_mode
& S_IXOTH
) {
2448 mutex_exit(&zdp
->z_acl_lock
);
2453 mutex_exit(&zdp
->z_acl_lock
);
2456 DTRACE_PROBE(zfs__fastpath__execute__access__miss
);
2457 ZFS_ENTER(ZTOZSB(zdp
));
2458 error
= zfs_zaccess(zdp
, ACE_EXECUTE
, 0, B_FALSE
, cr
);
2459 ZFS_EXIT(ZTOZSB(zdp
));
2464 * Determine whether Access should be granted/denied.
2466 * The least priv subsytem is always consulted as a basic privilege
2467 * can define any form of access.
2470 zfs_zaccess(znode_t
*zp
, int mode
, int flags
, boolean_t skipaclchk
, cred_t
*cr
)
2472 uint32_t working_mode
;
2474 boolean_t check_privs
;
2475 znode_t
*check_zp
= zp
;
2480 * If attribute then validate against base file
2482 if ((zp
->z_pflags
& ZFS_XATTR
) && S_ISDIR(ZTOI(zp
)->i_mode
)) {
2485 rw_enter(&zp
->z_xattr_lock
, RW_READER
);
2486 if (zp
->z_xattr_parent
) {
2487 check_zp
= zp
->z_xattr_parent
;
2488 rw_exit(&zp
->z_xattr_lock
);
2491 * Verify a lookup yields the same znode.
2493 ASSERT3S(sa_lookup(zp
->z_sa_hdl
, SA_ZPL_PARENT(
2494 ZTOZSB(zp
)), &parent
, sizeof (parent
)), ==, 0);
2495 ASSERT3U(check_zp
->z_id
, ==, parent
);
2497 rw_exit(&zp
->z_xattr_lock
);
2499 error
= sa_lookup(zp
->z_sa_hdl
, SA_ZPL_PARENT(
2500 ZTOZSB(zp
)), &parent
, sizeof (parent
));
2505 * Cache the lookup on the parent file znode as
2506 * zp->z_xattr_parent and hold a reference. This
2507 * effectively pins the parent in memory until all
2508 * child xattr znodes have been destroyed and
2509 * release their references in zfs_inode_destroy().
2511 error
= zfs_zget(ZTOZSB(zp
), parent
, &check_zp
);
2515 rw_enter(&zp
->z_xattr_lock
, RW_WRITER
);
2516 if (zp
->z_xattr_parent
== NULL
)
2517 zp
->z_xattr_parent
= check_zp
;
2518 rw_exit(&zp
->z_xattr_lock
);
2522 * fixup mode to map to xattr perms
2525 if (mode
& (ACE_WRITE_DATA
|ACE_APPEND_DATA
)) {
2526 mode
&= ~(ACE_WRITE_DATA
|ACE_APPEND_DATA
);
2527 mode
|= ACE_WRITE_NAMED_ATTRS
;
2530 if (mode
& (ACE_READ_DATA
|ACE_EXECUTE
)) {
2531 mode
&= ~(ACE_READ_DATA
|ACE_EXECUTE
);
2532 mode
|= ACE_READ_NAMED_ATTRS
;
2536 owner
= zfs_fuid_map_id(ZTOZSB(zp
), zp
->z_uid
, cr
, ZFS_OWNER
);
2538 * Map the bits required to the standard inode flags
2539 * S_IRUSR|S_IWUSR|S_IXUSR in the needed_bits. Map the bits
2540 * mapped by working_mode (currently missing) in missing_bits.
2541 * Call secpolicy_vnode_access2() with (needed_bits & ~checkmode),
2546 working_mode
= mode
;
2547 if ((working_mode
& (ACE_READ_ACL
|ACE_READ_ATTRIBUTES
)) &&
2548 owner
== crgetuid(cr
))
2549 working_mode
&= ~(ACE_READ_ACL
|ACE_READ_ATTRIBUTES
);
2551 if (working_mode
& (ACE_READ_DATA
|ACE_READ_NAMED_ATTRS
|
2552 ACE_READ_ACL
|ACE_READ_ATTRIBUTES
|ACE_SYNCHRONIZE
))
2553 needed_bits
|= S_IRUSR
;
2554 if (working_mode
& (ACE_WRITE_DATA
|ACE_WRITE_NAMED_ATTRS
|
2555 ACE_APPEND_DATA
|ACE_WRITE_ATTRIBUTES
|ACE_SYNCHRONIZE
))
2556 needed_bits
|= S_IWUSR
;
2557 if (working_mode
& ACE_EXECUTE
)
2558 needed_bits
|= S_IXUSR
;
2560 if ((error
= zfs_zaccess_common(check_zp
, mode
, &working_mode
,
2561 &check_privs
, skipaclchk
, cr
)) == 0) {
2562 return (secpolicy_vnode_access2(cr
, ZTOI(zp
), owner
,
2563 needed_bits
, needed_bits
));
2566 if (error
&& !check_privs
) {
2570 if (error
&& (flags
& V_APPEND
)) {
2571 error
= zfs_zaccess_append(zp
, &working_mode
, &check_privs
, cr
);
2574 if (error
&& check_privs
) {
2575 mode_t checkmode
= 0;
2578 * First check for implicit owner permission on
2579 * read_acl/read_attributes
2583 ASSERT(working_mode
!= 0);
2585 if ((working_mode
& (ACE_READ_ACL
|ACE_READ_ATTRIBUTES
) &&
2586 owner
== crgetuid(cr
)))
2587 working_mode
&= ~(ACE_READ_ACL
|ACE_READ_ATTRIBUTES
);
2589 if (working_mode
& (ACE_READ_DATA
|ACE_READ_NAMED_ATTRS
|
2590 ACE_READ_ACL
|ACE_READ_ATTRIBUTES
|ACE_SYNCHRONIZE
))
2591 checkmode
|= S_IRUSR
;
2592 if (working_mode
& (ACE_WRITE_DATA
|ACE_WRITE_NAMED_ATTRS
|
2593 ACE_APPEND_DATA
|ACE_WRITE_ATTRIBUTES
|ACE_SYNCHRONIZE
))
2594 checkmode
|= S_IWUSR
;
2595 if (working_mode
& ACE_EXECUTE
)
2596 checkmode
|= S_IXUSR
;
2598 error
= secpolicy_vnode_access2(cr
, ZTOI(check_zp
), owner
,
2599 needed_bits
& ~checkmode
, needed_bits
);
2601 if (error
== 0 && (working_mode
& ACE_WRITE_OWNER
))
2602 error
= secpolicy_vnode_chown(cr
, owner
);
2603 if (error
== 0 && (working_mode
& ACE_WRITE_ACL
))
2604 error
= secpolicy_vnode_setdac(cr
, owner
);
2606 if (error
== 0 && (working_mode
&
2607 (ACE_DELETE
|ACE_DELETE_CHILD
)))
2608 error
= secpolicy_vnode_remove(cr
);
2610 if (error
== 0 && (working_mode
& ACE_SYNCHRONIZE
)) {
2611 error
= secpolicy_vnode_chown(cr
, owner
);
2615 * See if any bits other than those already checked
2616 * for are still present. If so then return EACCES
2618 if (working_mode
& ~(ZFS_CHECKED_MASKS
)) {
2619 error
= SET_ERROR(EACCES
);
2622 } else if (error
== 0) {
2623 error
= secpolicy_vnode_access2(cr
, ZTOI(zp
), owner
,
2624 needed_bits
, needed_bits
);
2631 * Translate traditional unix S_IRUSR/S_IWUSR/S_IXUSR mode into
2632 * native ACL format and call zfs_zaccess()
2635 zfs_zaccess_rwx(znode_t
*zp
, mode_t mode
, int flags
, cred_t
*cr
)
2637 return (zfs_zaccess(zp
, zfs_unix_to_v4(mode
>> 6), flags
, B_FALSE
, cr
));
2641 * Access function for secpolicy_vnode_setattr
2644 zfs_zaccess_unix(znode_t
*zp
, mode_t mode
, cred_t
*cr
)
2646 int v4_mode
= zfs_unix_to_v4(mode
>> 6);
2648 return (zfs_zaccess(zp
, v4_mode
, 0, B_FALSE
, cr
));
2652 zfs_delete_final_check(znode_t
*zp
, znode_t
*dzp
,
2653 mode_t available_perms
, cred_t
*cr
)
2658 downer
= zfs_fuid_map_id(ZTOZSB(dzp
), dzp
->z_uid
, cr
, ZFS_OWNER
);
2660 error
= secpolicy_vnode_access2(cr
, ZTOI(dzp
),
2661 downer
, available_perms
, S_IWUSR
|S_IXUSR
);
2664 error
= zfs_sticky_remove_access(dzp
, zp
, cr
);
2670 * Determine whether Access should be granted/deny, without
2671 * consulting least priv subsystem.
2673 * The following chart is the recommended NFSv4 enforcement for
2674 * ability to delete an object.
2676 * -------------------------------------------------------
2677 * | Parent Dir | Target Object Permissions |
2679 * -------------------------------------------------------
2680 * | | ACL Allows | ACL Denies| Delete |
2681 * | | Delete | Delete | unspecified|
2682 * -------------------------------------------------------
2683 * | ACL Allows | Permit | Permit | Permit |
2684 * | DELETE_CHILD | |
2685 * -------------------------------------------------------
2686 * | ACL Denies | Permit | Deny | Deny |
2687 * | DELETE_CHILD | | | |
2688 * -------------------------------------------------------
2689 * | ACL specifies | | | |
2690 * | only allow | Permit | Permit | Permit |
2691 * | write and | | | |
2693 * -------------------------------------------------------
2694 * | ACL denies | | | |
2695 * | write and | Permit | Deny | Deny |
2697 * -------------------------------------------------------
2700 * No search privilege, can't even look up file?
2704 zfs_zaccess_delete(znode_t
*dzp
, znode_t
*zp
, cred_t
*cr
)
2706 uint32_t dzp_working_mode
= 0;
2707 uint32_t zp_working_mode
= 0;
2708 int dzp_error
, zp_error
;
2709 mode_t available_perms
;
2710 boolean_t dzpcheck_privs
= B_TRUE
;
2711 boolean_t zpcheck_privs
= B_TRUE
;
2714 * We want specific DELETE permissions to
2715 * take precedence over WRITE/EXECUTE. We don't
2716 * want an ACL such as this to mess us up.
2717 * user:joe:write_data:deny,user:joe:delete:allow
2719 * However, deny permissions may ultimately be overridden
2720 * by secpolicy_vnode_access().
2722 * We will ask for all of the necessary permissions and then
2723 * look at the working modes from the directory and target object
2724 * to determine what was found.
2727 if (zp
->z_pflags
& (ZFS_IMMUTABLE
| ZFS_NOUNLINK
))
2728 return (SET_ERROR(EPERM
));
2732 * If the directory permissions allow the delete, we are done.
2734 if ((dzp_error
= zfs_zaccess_common(dzp
, ACE_DELETE_CHILD
,
2735 &dzp_working_mode
, &dzpcheck_privs
, B_FALSE
, cr
)) == 0)
2739 * If target object has delete permission then we are done
2741 if ((zp_error
= zfs_zaccess_common(zp
, ACE_DELETE
, &zp_working_mode
,
2742 &zpcheck_privs
, B_FALSE
, cr
)) == 0)
2745 ASSERT(dzp_error
&& zp_error
);
2747 if (!dzpcheck_privs
)
2755 * If directory returns EACCES then delete_child was denied
2756 * due to deny delete_child. In this case send the request through
2757 * secpolicy_vnode_remove(). We don't use zfs_delete_final_check()
2758 * since that *could* allow the delete based on write/execute permission
2759 * and we want delete permissions to override write/execute.
2762 if (dzp_error
== EACCES
)
2763 return (secpolicy_vnode_remove(cr
));
2767 * only need to see if we have write/execute on directory.
2770 dzp_error
= zfs_zaccess_common(dzp
, ACE_EXECUTE
|ACE_WRITE_DATA
,
2771 &dzp_working_mode
, &dzpcheck_privs
, B_FALSE
, cr
);
2773 if (dzp_error
!= 0 && !dzpcheck_privs
)
2780 available_perms
= (dzp_working_mode
& ACE_WRITE_DATA
) ? 0 : S_IWUSR
;
2781 available_perms
|= (dzp_working_mode
& ACE_EXECUTE
) ? 0 : S_IXUSR
;
2783 return (zfs_delete_final_check(zp
, dzp
, available_perms
, cr
));
2788 zfs_zaccess_rename(znode_t
*sdzp
, znode_t
*szp
, znode_t
*tdzp
,
2789 znode_t
*tzp
, cred_t
*cr
)
2794 if (szp
->z_pflags
& ZFS_AV_QUARANTINED
)
2795 return (SET_ERROR(EACCES
));
2797 add_perm
= S_ISDIR(ZTOI(szp
)->i_mode
) ?
2798 ACE_ADD_SUBDIRECTORY
: ACE_ADD_FILE
;
2801 * Rename permissions are combination of delete permission +
2802 * add file/subdir permission.
2806 * first make sure we do the delete portion.
2808 * If that succeeds then check for add_file/add_subdir permissions
2811 if ((error
= zfs_zaccess_delete(sdzp
, szp
, cr
)))
2815 * If we have a tzp, see if we can delete it?
2818 if ((error
= zfs_zaccess_delete(tdzp
, tzp
, cr
)))
2823 * Now check for add permissions
2825 error
= zfs_zaccess(tdzp
, add_perm
, 0, B_FALSE
, cr
);