xref: /trueos/sys/cddl/contrib/opensolaris/uts/common/fs/zfs/zfs_acl.c (revision b1a2ed0140a28b679207ee64ccb39c28c290f9ed)
1 /*
2  * CDDL HEADER START
3  *
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.
7  *
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.
12  *
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]
18  *
19  * CDDL HEADER END
20  */
21 /*
22  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23  * Copyright 2011 Nexenta Systems, Inc.  All rights reserved.
24  * Copyright (c) 2013 by Delphix. All rights reserved.
25  */
26 
27 #include <sys/types.h>
28 #include <sys/param.h>
29 #include <sys/time.h>
30 #include <sys/systm.h>
31 #include <sys/sysmacros.h>
32 #include <sys/resource.h>
33 #include <sys/vfs.h>
34 #include <sys/vnode.h>
35 #include <sys/file.h>
36 #include <sys/stat.h>
37 #include <sys/kmem.h>
38 #include <sys/cmn_err.h>
39 #include <sys/errno.h>
40 #include <sys/unistd.h>
41 #include <sys/sdt.h>
42 #include <sys/fs/zfs.h>
43 #include <sys/policy.h>
44 #include <sys/zfs_znode.h>
45 #include <sys/zfs_fuid.h>
46 #include <sys/zfs_acl.h>
47 #include <sys/zfs_dir.h>
48 #include <sys/zfs_vfsops.h>
49 #include <sys/dmu.h>
50 #include <sys/dnode.h>
51 #include <sys/zap.h>
52 #include <sys/sa.h>
53 #include <acl/acl_common.h>
54 
55 #define	ALLOW	ACE_ACCESS_ALLOWED_ACE_TYPE
56 #define	DENY	ACE_ACCESS_DENIED_ACE_TYPE
57 #define	MAX_ACE_TYPE	ACE_SYSTEM_ALARM_CALLBACK_OBJECT_ACE_TYPE
58 #define	MIN_ACE_TYPE	ALLOW
59 
60 #define	OWNING_GROUP		(ACE_GROUP|ACE_IDENTIFIER_GROUP)
61 #define	EVERYONE_ALLOW_MASK (ACE_READ_ACL|ACE_READ_ATTRIBUTES | \
62     ACE_READ_NAMED_ATTRS|ACE_SYNCHRONIZE)
63 #define	EVERYONE_DENY_MASK (ACE_WRITE_ACL|ACE_WRITE_OWNER | \
64     ACE_WRITE_ATTRIBUTES|ACE_WRITE_NAMED_ATTRS)
65 #define	OWNER_ALLOW_MASK (ACE_WRITE_ACL | ACE_WRITE_OWNER | \
66     ACE_WRITE_ATTRIBUTES|ACE_WRITE_NAMED_ATTRS)
67 
68 #define	ZFS_CHECKED_MASKS (ACE_READ_ACL|ACE_READ_ATTRIBUTES|ACE_READ_DATA| \
69     ACE_READ_NAMED_ATTRS|ACE_WRITE_DATA|ACE_WRITE_ATTRIBUTES| \
70     ACE_WRITE_NAMED_ATTRS|ACE_APPEND_DATA|ACE_EXECUTE|ACE_WRITE_OWNER| \
71     ACE_WRITE_ACL|ACE_DELETE|ACE_DELETE_CHILD|ACE_SYNCHRONIZE)
72 
73 #define	WRITE_MASK_DATA (ACE_WRITE_DATA|ACE_APPEND_DATA|ACE_WRITE_NAMED_ATTRS)
74 #define	WRITE_MASK_ATTRS (ACE_WRITE_ACL|ACE_WRITE_OWNER|ACE_WRITE_ATTRIBUTES| \
75     ACE_DELETE|ACE_DELETE_CHILD)
76 #define	WRITE_MASK (WRITE_MASK_DATA|WRITE_MASK_ATTRS)
77 
78 #define	OGE_CLEAR	(ACE_READ_DATA|ACE_LIST_DIRECTORY|ACE_WRITE_DATA| \
79     ACE_ADD_FILE|ACE_APPEND_DATA|ACE_ADD_SUBDIRECTORY|ACE_EXECUTE)
80 
81 #define	OKAY_MASK_BITS (ACE_READ_DATA|ACE_LIST_DIRECTORY|ACE_WRITE_DATA| \
82     ACE_ADD_FILE|ACE_APPEND_DATA|ACE_ADD_SUBDIRECTORY|ACE_EXECUTE)
83 
84 #define	ALL_INHERIT	(ACE_FILE_INHERIT_ACE|ACE_DIRECTORY_INHERIT_ACE | \
85     ACE_NO_PROPAGATE_INHERIT_ACE|ACE_INHERIT_ONLY_ACE|ACE_INHERITED_ACE)
86 
87 #define	RESTRICTED_CLEAR	(ACE_WRITE_ACL|ACE_WRITE_OWNER)
88 
89 #define	V4_ACL_WIDE_FLAGS (ZFS_ACL_AUTO_INHERIT|ZFS_ACL_DEFAULTED|\
90     ZFS_ACL_PROTECTED)
91 
92 #define	ZFS_ACL_WIDE_FLAGS (V4_ACL_WIDE_FLAGS|ZFS_ACL_TRIVIAL|ZFS_INHERIT_ACE|\
93     ZFS_ACL_OBJ_ACE)
94 
95 #define	ALL_MODE_EXECS (S_IXUSR | S_IXGRP | S_IXOTH)
96 
97 static uint16_t
zfs_ace_v0_get_type(void * acep)98 zfs_ace_v0_get_type(void *acep)
99 {
100 	return (((zfs_oldace_t *)acep)->z_type);
101 }
102 
103 static uint16_t
zfs_ace_v0_get_flags(void * acep)104 zfs_ace_v0_get_flags(void *acep)
105 {
106 	return (((zfs_oldace_t *)acep)->z_flags);
107 }
108 
109 static uint32_t
zfs_ace_v0_get_mask(void * acep)110 zfs_ace_v0_get_mask(void *acep)
111 {
112 	return (((zfs_oldace_t *)acep)->z_access_mask);
113 }
114 
115 static uint64_t
zfs_ace_v0_get_who(void * acep)116 zfs_ace_v0_get_who(void *acep)
117 {
118 	return (((zfs_oldace_t *)acep)->z_fuid);
119 }
120 
121 static void
zfs_ace_v0_set_type(void * acep,uint16_t type)122 zfs_ace_v0_set_type(void *acep, uint16_t type)
123 {
124 	((zfs_oldace_t *)acep)->z_type = type;
125 }
126 
127 static void
zfs_ace_v0_set_flags(void * acep,uint16_t flags)128 zfs_ace_v0_set_flags(void *acep, uint16_t flags)
129 {
130 	((zfs_oldace_t *)acep)->z_flags = flags;
131 }
132 
133 static void
zfs_ace_v0_set_mask(void * acep,uint32_t mask)134 zfs_ace_v0_set_mask(void *acep, uint32_t mask)
135 {
136 	((zfs_oldace_t *)acep)->z_access_mask = mask;
137 }
138 
139 static void
zfs_ace_v0_set_who(void * acep,uint64_t who)140 zfs_ace_v0_set_who(void *acep, uint64_t who)
141 {
142 	((zfs_oldace_t *)acep)->z_fuid = who;
143 }
144 
145 /*ARGSUSED*/
146 static size_t
zfs_ace_v0_size(void * acep)147 zfs_ace_v0_size(void *acep)
148 {
149 	return (sizeof (zfs_oldace_t));
150 }
151 
152 static size_t
zfs_ace_v0_abstract_size(void)153 zfs_ace_v0_abstract_size(void)
154 {
155 	return (sizeof (zfs_oldace_t));
156 }
157 
158 static int
zfs_ace_v0_mask_off(void)159 zfs_ace_v0_mask_off(void)
160 {
161 	return (offsetof(zfs_oldace_t, z_access_mask));
162 }
163 
164 /*ARGSUSED*/
165 static int
zfs_ace_v0_data(void * acep,void ** datap)166 zfs_ace_v0_data(void *acep, void **datap)
167 {
168 	*datap = NULL;
169 	return (0);
170 }
171 
172 static acl_ops_t zfs_acl_v0_ops = {
173 	zfs_ace_v0_get_mask,
174 	zfs_ace_v0_set_mask,
175 	zfs_ace_v0_get_flags,
176 	zfs_ace_v0_set_flags,
177 	zfs_ace_v0_get_type,
178 	zfs_ace_v0_set_type,
179 	zfs_ace_v0_get_who,
180 	zfs_ace_v0_set_who,
181 	zfs_ace_v0_size,
182 	zfs_ace_v0_abstract_size,
183 	zfs_ace_v0_mask_off,
184 	zfs_ace_v0_data
185 };
186 
187 static uint16_t
zfs_ace_fuid_get_type(void * acep)188 zfs_ace_fuid_get_type(void *acep)
189 {
190 	return (((zfs_ace_hdr_t *)acep)->z_type);
191 }
192 
193 static uint16_t
zfs_ace_fuid_get_flags(void * acep)194 zfs_ace_fuid_get_flags(void *acep)
195 {
196 	return (((zfs_ace_hdr_t *)acep)->z_flags);
197 }
198 
199 static uint32_t
zfs_ace_fuid_get_mask(void * acep)200 zfs_ace_fuid_get_mask(void *acep)
201 {
202 	return (((zfs_ace_hdr_t *)acep)->z_access_mask);
203 }
204 
205 static uint64_t
zfs_ace_fuid_get_who(void * args)206 zfs_ace_fuid_get_who(void *args)
207 {
208 	uint16_t entry_type;
209 	zfs_ace_t *acep = args;
210 
211 	entry_type = acep->z_hdr.z_flags & ACE_TYPE_FLAGS;
212 
213 	if (entry_type == ACE_OWNER || entry_type == OWNING_GROUP ||
214 	    entry_type == ACE_EVERYONE)
215 		return (-1);
216 	return (((zfs_ace_t *)acep)->z_fuid);
217 }
218 
219 static void
zfs_ace_fuid_set_type(void * acep,uint16_t type)220 zfs_ace_fuid_set_type(void *acep, uint16_t type)
221 {
222 	((zfs_ace_hdr_t *)acep)->z_type = type;
223 }
224 
225 static void
zfs_ace_fuid_set_flags(void * acep,uint16_t flags)226 zfs_ace_fuid_set_flags(void *acep, uint16_t flags)
227 {
228 	((zfs_ace_hdr_t *)acep)->z_flags = flags;
229 }
230 
231 static void
zfs_ace_fuid_set_mask(void * acep,uint32_t mask)232 zfs_ace_fuid_set_mask(void *acep, uint32_t mask)
233 {
234 	((zfs_ace_hdr_t *)acep)->z_access_mask = mask;
235 }
236 
237 static void
zfs_ace_fuid_set_who(void * arg,uint64_t who)238 zfs_ace_fuid_set_who(void *arg, uint64_t who)
239 {
240 	zfs_ace_t *acep = arg;
241 
242 	uint16_t entry_type = acep->z_hdr.z_flags & ACE_TYPE_FLAGS;
243 
244 	if (entry_type == ACE_OWNER || entry_type == OWNING_GROUP ||
245 	    entry_type == ACE_EVERYONE)
246 		return;
247 	acep->z_fuid = who;
248 }
249 
250 static size_t
zfs_ace_fuid_size(void * acep)251 zfs_ace_fuid_size(void *acep)
252 {
253 	zfs_ace_hdr_t *zacep = acep;
254 	uint16_t entry_type;
255 
256 	switch (zacep->z_type) {
257 	case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
258 	case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
259 	case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
260 	case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
261 		return (sizeof (zfs_object_ace_t));
262 	case ALLOW:
263 	case DENY:
264 		entry_type =
265 		    (((zfs_ace_hdr_t *)acep)->z_flags & ACE_TYPE_FLAGS);
266 		if (entry_type == ACE_OWNER ||
267 		    entry_type == OWNING_GROUP ||
268 		    entry_type == ACE_EVERYONE)
269 			return (sizeof (zfs_ace_hdr_t));
270 		/*FALLTHROUGH*/
271 	default:
272 		return (sizeof (zfs_ace_t));
273 	}
274 }
275 
276 static size_t
zfs_ace_fuid_abstract_size(void)277 zfs_ace_fuid_abstract_size(void)
278 {
279 	return (sizeof (zfs_ace_hdr_t));
280 }
281 
282 static int
zfs_ace_fuid_mask_off(void)283 zfs_ace_fuid_mask_off(void)
284 {
285 	return (offsetof(zfs_ace_hdr_t, z_access_mask));
286 }
287 
288 static int
zfs_ace_fuid_data(void * acep,void ** datap)289 zfs_ace_fuid_data(void *acep, void **datap)
290 {
291 	zfs_ace_t *zacep = acep;
292 	zfs_object_ace_t *zobjp;
293 
294 	switch (zacep->z_hdr.z_type) {
295 	case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
296 	case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
297 	case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
298 	case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
299 		zobjp = acep;
300 		*datap = (caddr_t)zobjp + sizeof (zfs_ace_t);
301 		return (sizeof (zfs_object_ace_t) - sizeof (zfs_ace_t));
302 	default:
303 		*datap = NULL;
304 		return (0);
305 	}
306 }
307 
308 static acl_ops_t zfs_acl_fuid_ops = {
309 	zfs_ace_fuid_get_mask,
310 	zfs_ace_fuid_set_mask,
311 	zfs_ace_fuid_get_flags,
312 	zfs_ace_fuid_set_flags,
313 	zfs_ace_fuid_get_type,
314 	zfs_ace_fuid_set_type,
315 	zfs_ace_fuid_get_who,
316 	zfs_ace_fuid_set_who,
317 	zfs_ace_fuid_size,
318 	zfs_ace_fuid_abstract_size,
319 	zfs_ace_fuid_mask_off,
320 	zfs_ace_fuid_data
321 };
322 
323 /*
324  * The following three functions are provided for compatibility with
325  * older ZPL version in order to determine if the file use to have
326  * an external ACL and what version of ACL previously existed on the
327  * file.  Would really be nice to not need this, sigh.
328  */
329 uint64_t
zfs_external_acl(znode_t * zp)330 zfs_external_acl(znode_t *zp)
331 {
332 	zfs_acl_phys_t acl_phys;
333 	int error;
334 
335 	if (zp->z_is_sa)
336 		return (0);
337 
338 	/*
339 	 * Need to deal with a potential
340 	 * race where zfs_sa_upgrade could cause
341 	 * z_isa_sa to change.
342 	 *
343 	 * If the lookup fails then the state of z_is_sa should have
344 	 * changed.
345 	 */
346 
347 	if ((error = sa_lookup(zp->z_sa_hdl, SA_ZPL_ZNODE_ACL(zp->z_zfsvfs),
348 	    &acl_phys, sizeof (acl_phys))) == 0)
349 		return (acl_phys.z_acl_extern_obj);
350 	else {
351 		/*
352 		 * after upgrade the SA_ZPL_ZNODE_ACL should have been
353 		 * removed
354 		 */
355 		VERIFY(zp->z_is_sa && error == ENOENT);
356 		return (0);
357 	}
358 }
359 
360 /*
361  * Determine size of ACL in bytes
362  *
363  * This is more complicated than it should be since we have to deal
364  * with old external ACLs.
365  */
366 static int
zfs_acl_znode_info(znode_t * zp,int * aclsize,int * aclcount,zfs_acl_phys_t * aclphys)367 zfs_acl_znode_info(znode_t *zp, int *aclsize, int *aclcount,
368     zfs_acl_phys_t *aclphys)
369 {
370 	zfsvfs_t *zfsvfs = zp->z_zfsvfs;
371 	uint64_t acl_count;
372 	int size;
373 	int error;
374 
375 	ASSERT(MUTEX_HELD(&zp->z_acl_lock));
376 	if (zp->z_is_sa) {
377 		if ((error = sa_size(zp->z_sa_hdl, SA_ZPL_DACL_ACES(zfsvfs),
378 		    &size)) != 0)
379 			return (error);
380 		*aclsize = size;
381 		if ((error = sa_lookup(zp->z_sa_hdl, SA_ZPL_DACL_COUNT(zfsvfs),
382 		    &acl_count, sizeof (acl_count))) != 0)
383 			return (error);
384 		*aclcount = acl_count;
385 	} else {
386 		if ((error = sa_lookup(zp->z_sa_hdl, SA_ZPL_ZNODE_ACL(zfsvfs),
387 		    aclphys, sizeof (*aclphys))) != 0)
388 			return (error);
389 
390 		if (aclphys->z_acl_version == ZFS_ACL_VERSION_INITIAL) {
391 			*aclsize = ZFS_ACL_SIZE(aclphys->z_acl_size);
392 			*aclcount = aclphys->z_acl_size;
393 		} else {
394 			*aclsize = aclphys->z_acl_size;
395 			*aclcount = aclphys->z_acl_count;
396 		}
397 	}
398 	return (0);
399 }
400 
401 int
zfs_znode_acl_version(znode_t * zp)402 zfs_znode_acl_version(znode_t *zp)
403 {
404 	zfs_acl_phys_t acl_phys;
405 
406 	if (zp->z_is_sa)
407 		return (ZFS_ACL_VERSION_FUID);
408 	else {
409 		int error;
410 
411 		/*
412 		 * Need to deal with a potential
413 		 * race where zfs_sa_upgrade could cause
414 		 * z_isa_sa to change.
415 		 *
416 		 * If the lookup fails then the state of z_is_sa should have
417 		 * changed.
418 		 */
419 		if ((error = sa_lookup(zp->z_sa_hdl,
420 		    SA_ZPL_ZNODE_ACL(zp->z_zfsvfs),
421 		    &acl_phys, sizeof (acl_phys))) == 0)
422 			return (acl_phys.z_acl_version);
423 		else {
424 			/*
425 			 * After upgrade SA_ZPL_ZNODE_ACL should have
426 			 * been removed.
427 			 */
428 			VERIFY(zp->z_is_sa && error == ENOENT);
429 			return (ZFS_ACL_VERSION_FUID);
430 		}
431 	}
432 }
433 
434 static int
zfs_acl_version(int version)435 zfs_acl_version(int version)
436 {
437 	if (version < ZPL_VERSION_FUID)
438 		return (ZFS_ACL_VERSION_INITIAL);
439 	else
440 		return (ZFS_ACL_VERSION_FUID);
441 }
442 
443 static int
zfs_acl_version_zp(znode_t * zp)444 zfs_acl_version_zp(znode_t *zp)
445 {
446 	return (zfs_acl_version(zp->z_zfsvfs->z_version));
447 }
448 
449 zfs_acl_t *
zfs_acl_alloc(int vers)450 zfs_acl_alloc(int vers)
451 {
452 	zfs_acl_t *aclp;
453 
454 	aclp = kmem_zalloc(sizeof (zfs_acl_t), KM_SLEEP);
455 	list_create(&aclp->z_acl, sizeof (zfs_acl_node_t),
456 	    offsetof(zfs_acl_node_t, z_next));
457 	aclp->z_version = vers;
458 	if (vers == ZFS_ACL_VERSION_FUID)
459 		aclp->z_ops = zfs_acl_fuid_ops;
460 	else
461 		aclp->z_ops = zfs_acl_v0_ops;
462 	return (aclp);
463 }
464 
465 zfs_acl_node_t *
zfs_acl_node_alloc(size_t bytes)466 zfs_acl_node_alloc(size_t bytes)
467 {
468 	zfs_acl_node_t *aclnode;
469 
470 	aclnode = kmem_zalloc(sizeof (zfs_acl_node_t), KM_SLEEP);
471 	if (bytes) {
472 		aclnode->z_acldata = kmem_alloc(bytes, KM_SLEEP);
473 		aclnode->z_allocdata = aclnode->z_acldata;
474 		aclnode->z_allocsize = bytes;
475 		aclnode->z_size = bytes;
476 	}
477 
478 	return (aclnode);
479 }
480 
481 static void
zfs_acl_node_free(zfs_acl_node_t * aclnode)482 zfs_acl_node_free(zfs_acl_node_t *aclnode)
483 {
484 	if (aclnode->z_allocsize)
485 		kmem_free(aclnode->z_allocdata, aclnode->z_allocsize);
486 	kmem_free(aclnode, sizeof (zfs_acl_node_t));
487 }
488 
489 static void
zfs_acl_release_nodes(zfs_acl_t * aclp)490 zfs_acl_release_nodes(zfs_acl_t *aclp)
491 {
492 	zfs_acl_node_t *aclnode;
493 
494 	while (aclnode = list_head(&aclp->z_acl)) {
495 		list_remove(&aclp->z_acl, aclnode);
496 		zfs_acl_node_free(aclnode);
497 	}
498 	aclp->z_acl_count = 0;
499 	aclp->z_acl_bytes = 0;
500 }
501 
502 void
zfs_acl_free(zfs_acl_t * aclp)503 zfs_acl_free(zfs_acl_t *aclp)
504 {
505 	zfs_acl_release_nodes(aclp);
506 	list_destroy(&aclp->z_acl);
507 	kmem_free(aclp, sizeof (zfs_acl_t));
508 }
509 
510 static boolean_t
zfs_acl_valid_ace_type(uint_t type,uint_t flags)511 zfs_acl_valid_ace_type(uint_t type, uint_t flags)
512 {
513 	uint16_t entry_type;
514 
515 	switch (type) {
516 	case ALLOW:
517 	case DENY:
518 	case ACE_SYSTEM_AUDIT_ACE_TYPE:
519 	case ACE_SYSTEM_ALARM_ACE_TYPE:
520 		entry_type = flags & ACE_TYPE_FLAGS;
521 		return (entry_type == ACE_OWNER ||
522 		    entry_type == OWNING_GROUP ||
523 		    entry_type == ACE_EVERYONE || entry_type == 0 ||
524 		    entry_type == ACE_IDENTIFIER_GROUP);
525 	default:
526 		if (type >= MIN_ACE_TYPE && type <= MAX_ACE_TYPE)
527 			return (B_TRUE);
528 	}
529 	return (B_FALSE);
530 }
531 
532 static boolean_t
zfs_ace_valid(vtype_t obj_type,zfs_acl_t * aclp,uint16_t type,uint16_t iflags)533 zfs_ace_valid(vtype_t obj_type, zfs_acl_t *aclp, uint16_t type, uint16_t iflags)
534 {
535 	/*
536 	 * first check type of entry
537 	 */
538 
539 	if (!zfs_acl_valid_ace_type(type, iflags))
540 		return (B_FALSE);
541 
542 	switch (type) {
543 	case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
544 	case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
545 	case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
546 	case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
547 		if (aclp->z_version < ZFS_ACL_VERSION_FUID)
548 			return (B_FALSE);
549 		aclp->z_hints |= ZFS_ACL_OBJ_ACE;
550 	}
551 
552 	/*
553 	 * next check inheritance level flags
554 	 */
555 
556 	if (obj_type == VDIR &&
557 	    (iflags & (ACE_FILE_INHERIT_ACE|ACE_DIRECTORY_INHERIT_ACE)))
558 		aclp->z_hints |= ZFS_INHERIT_ACE;
559 
560 	if (iflags & (ACE_INHERIT_ONLY_ACE|ACE_NO_PROPAGATE_INHERIT_ACE)) {
561 		if ((iflags & (ACE_FILE_INHERIT_ACE|
562 		    ACE_DIRECTORY_INHERIT_ACE)) == 0) {
563 			return (B_FALSE);
564 		}
565 	}
566 
567 	return (B_TRUE);
568 }
569 
570 static void *
zfs_acl_next_ace(zfs_acl_t * aclp,void * start,uint64_t * who,uint32_t * access_mask,uint16_t * iflags,uint16_t * type)571 zfs_acl_next_ace(zfs_acl_t *aclp, void *start, uint64_t *who,
572     uint32_t *access_mask, uint16_t *iflags, uint16_t *type)
573 {
574 	zfs_acl_node_t *aclnode;
575 
576 	ASSERT(aclp);
577 
578 	if (start == NULL) {
579 		aclnode = list_head(&aclp->z_acl);
580 		if (aclnode == NULL)
581 			return (NULL);
582 
583 		aclp->z_next_ace = aclnode->z_acldata;
584 		aclp->z_curr_node = aclnode;
585 		aclnode->z_ace_idx = 0;
586 	}
587 
588 	aclnode = aclp->z_curr_node;
589 
590 	if (aclnode == NULL)
591 		return (NULL);
592 
593 	if (aclnode->z_ace_idx >= aclnode->z_ace_count) {
594 		aclnode = list_next(&aclp->z_acl, aclnode);
595 		if (aclnode == NULL)
596 			return (NULL);
597 		else {
598 			aclp->z_curr_node = aclnode;
599 			aclnode->z_ace_idx = 0;
600 			aclp->z_next_ace = aclnode->z_acldata;
601 		}
602 	}
603 
604 	if (aclnode->z_ace_idx < aclnode->z_ace_count) {
605 		void *acep = aclp->z_next_ace;
606 		size_t ace_size;
607 
608 		/*
609 		 * Make sure we don't overstep our bounds
610 		 */
611 		ace_size = aclp->z_ops.ace_size(acep);
612 
613 		if (((caddr_t)acep + ace_size) >
614 		    ((caddr_t)aclnode->z_acldata + aclnode->z_size)) {
615 			return (NULL);
616 		}
617 
618 		*iflags = aclp->z_ops.ace_flags_get(acep);
619 		*type = aclp->z_ops.ace_type_get(acep);
620 		*access_mask = aclp->z_ops.ace_mask_get(acep);
621 		*who = aclp->z_ops.ace_who_get(acep);
622 		aclp->z_next_ace = (caddr_t)aclp->z_next_ace + ace_size;
623 		aclnode->z_ace_idx++;
624 
625 		return ((void *)acep);
626 	}
627 	return (NULL);
628 }
629 
630 /*ARGSUSED*/
631 static uint64_t
zfs_ace_walk(void * datap,uint64_t cookie,int aclcnt,uint16_t * flags,uint16_t * type,uint32_t * mask)632 zfs_ace_walk(void *datap, uint64_t cookie, int aclcnt,
633     uint16_t *flags, uint16_t *type, uint32_t *mask)
634 {
635 	zfs_acl_t *aclp = datap;
636 	zfs_ace_hdr_t *acep = (zfs_ace_hdr_t *)(uintptr_t)cookie;
637 	uint64_t who;
638 
639 	acep = zfs_acl_next_ace(aclp, acep, &who, mask,
640 	    flags, type);
641 	return ((uint64_t)(uintptr_t)acep);
642 }
643 
644 static zfs_acl_node_t *
zfs_acl_curr_node(zfs_acl_t * aclp)645 zfs_acl_curr_node(zfs_acl_t *aclp)
646 {
647 	ASSERT(aclp->z_curr_node);
648 	return (aclp->z_curr_node);
649 }
650 
651 /*
652  * Copy ACE to internal ZFS format.
653  * While processing the ACL each ACE will be validated for correctness.
654  * ACE FUIDs will be created later.
655  */
656 int
zfs_copy_ace_2_fuid(zfsvfs_t * zfsvfs,vtype_t obj_type,zfs_acl_t * aclp,void * datap,zfs_ace_t * z_acl,uint64_t aclcnt,size_t * size,zfs_fuid_info_t ** fuidp,cred_t * cr)657 zfs_copy_ace_2_fuid(zfsvfs_t *zfsvfs, vtype_t obj_type, zfs_acl_t *aclp,
658     void *datap, zfs_ace_t *z_acl, uint64_t aclcnt, size_t *size,
659     zfs_fuid_info_t **fuidp, cred_t *cr)
660 {
661 	int i;
662 	uint16_t entry_type;
663 	zfs_ace_t *aceptr = z_acl;
664 	ace_t *acep = datap;
665 	zfs_object_ace_t *zobjacep;
666 	ace_object_t *aceobjp;
667 
668 	for (i = 0; i != aclcnt; i++) {
669 		aceptr->z_hdr.z_access_mask = acep->a_access_mask;
670 		aceptr->z_hdr.z_flags = acep->a_flags;
671 		aceptr->z_hdr.z_type = acep->a_type;
672 		entry_type = aceptr->z_hdr.z_flags & ACE_TYPE_FLAGS;
673 		if (entry_type != ACE_OWNER && entry_type != OWNING_GROUP &&
674 		    entry_type != ACE_EVERYONE) {
675 			aceptr->z_fuid = zfs_fuid_create(zfsvfs, acep->a_who,
676 			    cr, (entry_type == 0) ?
677 			    ZFS_ACE_USER : ZFS_ACE_GROUP, fuidp);
678 		}
679 
680 		/*
681 		 * Make sure ACE is valid
682 		 */
683 		if (zfs_ace_valid(obj_type, aclp, aceptr->z_hdr.z_type,
684 		    aceptr->z_hdr.z_flags) != B_TRUE)
685 			return (SET_ERROR(EINVAL));
686 
687 		switch (acep->a_type) {
688 		case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
689 		case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
690 		case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
691 		case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
692 			zobjacep = (zfs_object_ace_t *)aceptr;
693 			aceobjp = (ace_object_t *)acep;
694 
695 			bcopy(aceobjp->a_obj_type, zobjacep->z_object_type,
696 			    sizeof (aceobjp->a_obj_type));
697 			bcopy(aceobjp->a_inherit_obj_type,
698 			    zobjacep->z_inherit_type,
699 			    sizeof (aceobjp->a_inherit_obj_type));
700 			acep = (ace_t *)((caddr_t)acep + sizeof (ace_object_t));
701 			break;
702 		default:
703 			acep = (ace_t *)((caddr_t)acep + sizeof (ace_t));
704 		}
705 
706 		aceptr = (zfs_ace_t *)((caddr_t)aceptr +
707 		    aclp->z_ops.ace_size(aceptr));
708 	}
709 
710 	*size = (caddr_t)aceptr - (caddr_t)z_acl;
711 
712 	return (0);
713 }
714 
715 /*
716  * Copy ZFS ACEs to fixed size ace_t layout
717  */
718 static void
zfs_copy_fuid_2_ace(zfsvfs_t * zfsvfs,zfs_acl_t * aclp,cred_t * cr,void * datap,int filter)719 zfs_copy_fuid_2_ace(zfsvfs_t *zfsvfs, zfs_acl_t *aclp, cred_t *cr,
720     void *datap, int filter)
721 {
722 	uint64_t who;
723 	uint32_t access_mask;
724 	uint16_t iflags, type;
725 	zfs_ace_hdr_t *zacep = NULL;
726 	ace_t *acep = datap;
727 	ace_object_t *objacep;
728 	zfs_object_ace_t *zobjacep;
729 	size_t ace_size;
730 	uint16_t entry_type;
731 
732 	while (zacep = zfs_acl_next_ace(aclp, zacep,
733 	    &who, &access_mask, &iflags, &type)) {
734 
735 		switch (type) {
736 		case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
737 		case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
738 		case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
739 		case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
740 			if (filter) {
741 				continue;
742 			}
743 			zobjacep = (zfs_object_ace_t *)zacep;
744 			objacep = (ace_object_t *)acep;
745 			bcopy(zobjacep->z_object_type,
746 			    objacep->a_obj_type,
747 			    sizeof (zobjacep->z_object_type));
748 			bcopy(zobjacep->z_inherit_type,
749 			    objacep->a_inherit_obj_type,
750 			    sizeof (zobjacep->z_inherit_type));
751 			ace_size = sizeof (ace_object_t);
752 			break;
753 		default:
754 			ace_size = sizeof (ace_t);
755 			break;
756 		}
757 
758 		entry_type = (iflags & ACE_TYPE_FLAGS);
759 		if ((entry_type != ACE_OWNER &&
760 		    entry_type != OWNING_GROUP &&
761 		    entry_type != ACE_EVERYONE)) {
762 			acep->a_who = zfs_fuid_map_id(zfsvfs, who,
763 			    cr, (entry_type & ACE_IDENTIFIER_GROUP) ?
764 			    ZFS_ACE_GROUP : ZFS_ACE_USER);
765 		} else {
766 			acep->a_who = (uid_t)(int64_t)who;
767 		}
768 		acep->a_access_mask = access_mask;
769 		acep->a_flags = iflags;
770 		acep->a_type = type;
771 		acep = (ace_t *)((caddr_t)acep + ace_size);
772 	}
773 }
774 
775 static int
zfs_copy_ace_2_oldace(vtype_t obj_type,zfs_acl_t * aclp,ace_t * acep,zfs_oldace_t * z_acl,int aclcnt,size_t * size)776 zfs_copy_ace_2_oldace(vtype_t obj_type, zfs_acl_t *aclp, ace_t *acep,
777     zfs_oldace_t *z_acl, int aclcnt, size_t *size)
778 {
779 	int i;
780 	zfs_oldace_t *aceptr = z_acl;
781 
782 	for (i = 0; i != aclcnt; i++, aceptr++) {
783 		aceptr->z_access_mask = acep[i].a_access_mask;
784 		aceptr->z_type = acep[i].a_type;
785 		aceptr->z_flags = acep[i].a_flags;
786 		aceptr->z_fuid = acep[i].a_who;
787 		/*
788 		 * Make sure ACE is valid
789 		 */
790 		if (zfs_ace_valid(obj_type, aclp, aceptr->z_type,
791 		    aceptr->z_flags) != B_TRUE)
792 			return (SET_ERROR(EINVAL));
793 	}
794 	*size = (caddr_t)aceptr - (caddr_t)z_acl;
795 	return (0);
796 }
797 
798 /*
799  * convert old ACL format to new
800  */
801 void
zfs_acl_xform(znode_t * zp,zfs_acl_t * aclp,cred_t * cr)802 zfs_acl_xform(znode_t *zp, zfs_acl_t *aclp, cred_t *cr)
803 {
804 	zfs_oldace_t *oldaclp;
805 	int i;
806 	uint16_t type, iflags;
807 	uint32_t access_mask;
808 	uint64_t who;
809 	void *cookie = NULL;
810 	zfs_acl_node_t *newaclnode;
811 
812 	ASSERT(aclp->z_version == ZFS_ACL_VERSION_INITIAL);
813 	/*
814 	 * First create the ACE in a contiguous piece of memory
815 	 * for zfs_copy_ace_2_fuid().
816 	 *
817 	 * We only convert an ACL once, so this won't happen
818 	 * everytime.
819 	 */
820 	oldaclp = kmem_alloc(sizeof (zfs_oldace_t) * aclp->z_acl_count,
821 	    KM_SLEEP);
822 	i = 0;
823 	while (cookie = zfs_acl_next_ace(aclp, cookie, &who,
824 	    &access_mask, &iflags, &type)) {
825 		oldaclp[i].z_flags = iflags;
826 		oldaclp[i].z_type = type;
827 		oldaclp[i].z_fuid = who;
828 		oldaclp[i++].z_access_mask = access_mask;
829 	}
830 
831 	newaclnode = zfs_acl_node_alloc(aclp->z_acl_count *
832 	    sizeof (zfs_object_ace_t));
833 	aclp->z_ops = zfs_acl_fuid_ops;
834 	VERIFY(zfs_copy_ace_2_fuid(zp->z_zfsvfs, ZTOV(zp)->v_type, aclp,
835 	    oldaclp, newaclnode->z_acldata, aclp->z_acl_count,
836 	    &newaclnode->z_size, NULL, cr) == 0);
837 	newaclnode->z_ace_count = aclp->z_acl_count;
838 	aclp->z_version = ZFS_ACL_VERSION;
839 	kmem_free(oldaclp, aclp->z_acl_count * sizeof (zfs_oldace_t));
840 
841 	/*
842 	 * Release all previous ACL nodes
843 	 */
844 
845 	zfs_acl_release_nodes(aclp);
846 
847 	list_insert_head(&aclp->z_acl, newaclnode);
848 
849 	aclp->z_acl_bytes = newaclnode->z_size;
850 	aclp->z_acl_count = newaclnode->z_ace_count;
851 
852 }
853 
854 /*
855  * Convert unix access mask to v4 access mask
856  */
857 static uint32_t
zfs_unix_to_v4(uint32_t access_mask)858 zfs_unix_to_v4(uint32_t access_mask)
859 {
860 	uint32_t new_mask = 0;
861 
862 	if (access_mask & S_IXOTH)
863 		new_mask |= ACE_EXECUTE;
864 	if (access_mask & S_IWOTH)
865 		new_mask |= ACE_WRITE_DATA;
866 	if (access_mask & S_IROTH)
867 		new_mask |= ACE_READ_DATA;
868 	return (new_mask);
869 }
870 
871 static void
zfs_set_ace(zfs_acl_t * aclp,void * acep,uint32_t access_mask,uint16_t access_type,uint64_t fuid,uint16_t entry_type)872 zfs_set_ace(zfs_acl_t *aclp, void *acep, uint32_t access_mask,
873     uint16_t access_type, uint64_t fuid, uint16_t entry_type)
874 {
875 	uint16_t type = entry_type & ACE_TYPE_FLAGS;
876 
877 	aclp->z_ops.ace_mask_set(acep, access_mask);
878 	aclp->z_ops.ace_type_set(acep, access_type);
879 	aclp->z_ops.ace_flags_set(acep, entry_type);
880 	if ((type != ACE_OWNER && type != OWNING_GROUP &&
881 	    type != ACE_EVERYONE))
882 		aclp->z_ops.ace_who_set(acep, fuid);
883 }
884 
885 /*
886  * Determine mode of file based on ACL.
887  * Also, create FUIDs for any User/Group ACEs
888  */
889 uint64_t
zfs_mode_compute(uint64_t fmode,zfs_acl_t * aclp,uint64_t * pflags,uint64_t fuid,uint64_t fgid)890 zfs_mode_compute(uint64_t fmode, zfs_acl_t *aclp,
891     uint64_t *pflags, uint64_t fuid, uint64_t fgid)
892 {
893 	int		entry_type;
894 	mode_t		mode;
895 	mode_t		seen = 0;
896 	zfs_ace_hdr_t 	*acep = NULL;
897 	uint64_t	who;
898 	uint16_t	iflags, type;
899 	uint32_t	access_mask;
900 	boolean_t	an_exec_denied = B_FALSE;
901 
902 	mode = (fmode & (S_IFMT | S_ISUID | S_ISGID | S_ISVTX));
903 
904 	while (acep = zfs_acl_next_ace(aclp, acep, &who,
905 	    &access_mask, &iflags, &type)) {
906 
907 		if (!zfs_acl_valid_ace_type(type, iflags))
908 			continue;
909 
910 		entry_type = (iflags & ACE_TYPE_FLAGS);
911 
912 		/*
913 		 * Skip over owner@, group@ or everyone@ inherit only ACEs
914 		 */
915 		if ((iflags & ACE_INHERIT_ONLY_ACE) &&
916 		    (entry_type == ACE_OWNER || entry_type == ACE_EVERYONE ||
917 		    entry_type == OWNING_GROUP))
918 			continue;
919 
920 		if (entry_type == ACE_OWNER || (entry_type == 0 &&
921 		    who == fuid)) {
922 			if ((access_mask & ACE_READ_DATA) &&
923 			    (!(seen & S_IRUSR))) {
924 				seen |= S_IRUSR;
925 				if (type == ALLOW) {
926 					mode |= S_IRUSR;
927 				}
928 			}
929 			if ((access_mask & ACE_WRITE_DATA) &&
930 			    (!(seen & S_IWUSR))) {
931 				seen |= S_IWUSR;
932 				if (type == ALLOW) {
933 					mode |= S_IWUSR;
934 				}
935 			}
936 			if ((access_mask & ACE_EXECUTE) &&
937 			    (!(seen & S_IXUSR))) {
938 				seen |= S_IXUSR;
939 				if (type == ALLOW) {
940 					mode |= S_IXUSR;
941 				}
942 			}
943 		} else if (entry_type == OWNING_GROUP ||
944 		    (entry_type == ACE_IDENTIFIER_GROUP && who == fgid)) {
945 			if ((access_mask & ACE_READ_DATA) &&
946 			    (!(seen & S_IRGRP))) {
947 				seen |= S_IRGRP;
948 				if (type == ALLOW) {
949 					mode |= S_IRGRP;
950 				}
951 			}
952 			if ((access_mask & ACE_WRITE_DATA) &&
953 			    (!(seen & S_IWGRP))) {
954 				seen |= S_IWGRP;
955 				if (type == ALLOW) {
956 					mode |= S_IWGRP;
957 				}
958 			}
959 			if ((access_mask & ACE_EXECUTE) &&
960 			    (!(seen & S_IXGRP))) {
961 				seen |= S_IXGRP;
962 				if (type == ALLOW) {
963 					mode |= S_IXGRP;
964 				}
965 			}
966 		} else if (entry_type == ACE_EVERYONE) {
967 			if ((access_mask & ACE_READ_DATA)) {
968 				if (!(seen & S_IRUSR)) {
969 					seen |= S_IRUSR;
970 					if (type == ALLOW) {
971 						mode |= S_IRUSR;
972 					}
973 				}
974 				if (!(seen & S_IRGRP)) {
975 					seen |= S_IRGRP;
976 					if (type == ALLOW) {
977 						mode |= S_IRGRP;
978 					}
979 				}
980 				if (!(seen & S_IROTH)) {
981 					seen |= S_IROTH;
982 					if (type == ALLOW) {
983 						mode |= S_IROTH;
984 					}
985 				}
986 			}
987 			if ((access_mask & ACE_WRITE_DATA)) {
988 				if (!(seen & S_IWUSR)) {
989 					seen |= S_IWUSR;
990 					if (type == ALLOW) {
991 						mode |= S_IWUSR;
992 					}
993 				}
994 				if (!(seen & S_IWGRP)) {
995 					seen |= S_IWGRP;
996 					if (type == ALLOW) {
997 						mode |= S_IWGRP;
998 					}
999 				}
1000 				if (!(seen & S_IWOTH)) {
1001 					seen |= S_IWOTH;
1002 					if (type == ALLOW) {
1003 						mode |= S_IWOTH;
1004 					}
1005 				}
1006 			}
1007 			if ((access_mask & ACE_EXECUTE)) {
1008 				if (!(seen & S_IXUSR)) {
1009 					seen |= S_IXUSR;
1010 					if (type == ALLOW) {
1011 						mode |= S_IXUSR;
1012 					}
1013 				}
1014 				if (!(seen & S_IXGRP)) {
1015 					seen |= S_IXGRP;
1016 					if (type == ALLOW) {
1017 						mode |= S_IXGRP;
1018 					}
1019 				}
1020 				if (!(seen & S_IXOTH)) {
1021 					seen |= S_IXOTH;
1022 					if (type == ALLOW) {
1023 						mode |= S_IXOTH;
1024 					}
1025 				}
1026 			}
1027 		} else {
1028 			/*
1029 			 * Only care if this IDENTIFIER_GROUP or
1030 			 * USER ACE denies execute access to someone,
1031 			 * mode is not affected
1032 			 */
1033 			if ((access_mask & ACE_EXECUTE) && type == DENY)
1034 				an_exec_denied = B_TRUE;
1035 		}
1036 	}
1037 
1038 	/*
1039 	 * Failure to allow is effectively a deny, so execute permission
1040 	 * is denied if it was never mentioned or if we explicitly
1041 	 * weren't allowed it.
1042 	 */
1043 	if (!an_exec_denied &&
1044 	    ((seen & ALL_MODE_EXECS) != ALL_MODE_EXECS ||
1045 	    (mode & ALL_MODE_EXECS) != ALL_MODE_EXECS))
1046 		an_exec_denied = B_TRUE;
1047 
1048 	if (an_exec_denied)
1049 		*pflags &= ~ZFS_NO_EXECS_DENIED;
1050 	else
1051 		*pflags |= ZFS_NO_EXECS_DENIED;
1052 
1053 	return (mode);
1054 }
1055 
1056 /*
1057  * Read an external acl object.  If the intent is to modify, always
1058  * create a new acl and leave any cached acl in place.
1059  */
1060 static int
zfs_acl_node_read(znode_t * zp,boolean_t have_lock,zfs_acl_t ** aclpp,boolean_t will_modify)1061 zfs_acl_node_read(znode_t *zp, boolean_t have_lock, zfs_acl_t **aclpp,
1062     boolean_t will_modify)
1063 {
1064 	zfs_acl_t	*aclp;
1065 	int		aclsize;
1066 	int		acl_count;
1067 	zfs_acl_node_t	*aclnode;
1068 	zfs_acl_phys_t	znode_acl;
1069 	int		version;
1070 	int		error;
1071 	boolean_t	drop_lock = B_FALSE;
1072 
1073 	ASSERT(MUTEX_HELD(&zp->z_acl_lock));
1074 
1075 	if (zp->z_acl_cached && !will_modify) {
1076 		*aclpp = zp->z_acl_cached;
1077 		return (0);
1078 	}
1079 
1080 	/*
1081 	 * close race where znode could be upgrade while trying to
1082 	 * read the znode attributes.
1083 	 *
1084 	 * But this could only happen if the file isn't already an SA
1085 	 * znode
1086 	 */
1087 	if (!zp->z_is_sa && !have_lock) {
1088 		mutex_enter(&zp->z_lock);
1089 		drop_lock = B_TRUE;
1090 	}
1091 	version = zfs_znode_acl_version(zp);
1092 
1093 	if ((error = zfs_acl_znode_info(zp, &aclsize,
1094 	    &acl_count, &znode_acl)) != 0) {
1095 		goto done;
1096 	}
1097 
1098 	aclp = zfs_acl_alloc(version);
1099 
1100 	aclp->z_acl_count = acl_count;
1101 	aclp->z_acl_bytes = aclsize;
1102 
1103 	aclnode = zfs_acl_node_alloc(aclsize);
1104 	aclnode->z_ace_count = aclp->z_acl_count;
1105 	aclnode->z_size = aclsize;
1106 
1107 	if (!zp->z_is_sa) {
1108 		if (znode_acl.z_acl_extern_obj) {
1109 			error = dmu_read(zp->z_zfsvfs->z_os,
1110 			    znode_acl.z_acl_extern_obj, 0, aclnode->z_size,
1111 			    aclnode->z_acldata, DMU_READ_PREFETCH);
1112 		} else {
1113 			bcopy(znode_acl.z_ace_data, aclnode->z_acldata,
1114 			    aclnode->z_size);
1115 		}
1116 	} else {
1117 		error = sa_lookup(zp->z_sa_hdl, SA_ZPL_DACL_ACES(zp->z_zfsvfs),
1118 		    aclnode->z_acldata, aclnode->z_size);
1119 	}
1120 
1121 	if (error != 0) {
1122 		zfs_acl_free(aclp);
1123 		zfs_acl_node_free(aclnode);
1124 		/* convert checksum errors into IO errors */
1125 		if (error == ECKSUM)
1126 			error = SET_ERROR(EIO);
1127 		goto done;
1128 	}
1129 
1130 	list_insert_head(&aclp->z_acl, aclnode);
1131 
1132 	*aclpp = aclp;
1133 	if (!will_modify)
1134 		zp->z_acl_cached = aclp;
1135 done:
1136 	if (drop_lock)
1137 		mutex_exit(&zp->z_lock);
1138 	return (error);
1139 }
1140 
1141 /*ARGSUSED*/
1142 void
zfs_acl_data_locator(void ** dataptr,uint32_t * length,uint32_t buflen,boolean_t start,void * userdata)1143 zfs_acl_data_locator(void **dataptr, uint32_t *length, uint32_t buflen,
1144     boolean_t start, void *userdata)
1145 {
1146 	zfs_acl_locator_cb_t *cb = (zfs_acl_locator_cb_t *)userdata;
1147 
1148 	if (start) {
1149 		cb->cb_acl_node = list_head(&cb->cb_aclp->z_acl);
1150 	} else {
1151 		cb->cb_acl_node = list_next(&cb->cb_aclp->z_acl,
1152 		    cb->cb_acl_node);
1153 	}
1154 	*dataptr = cb->cb_acl_node->z_acldata;
1155 	*length = cb->cb_acl_node->z_size;
1156 }
1157 
1158 int
zfs_acl_chown_setattr(znode_t * zp)1159 zfs_acl_chown_setattr(znode_t *zp)
1160 {
1161 	int error;
1162 	zfs_acl_t *aclp;
1163 
1164 	ASSERT(MUTEX_HELD(&zp->z_lock));
1165 	ASSERT(MUTEX_HELD(&zp->z_acl_lock));
1166 
1167 	if ((error = zfs_acl_node_read(zp, B_TRUE, &aclp, B_FALSE)) == 0)
1168 		zp->z_mode = zfs_mode_compute(zp->z_mode, aclp,
1169 		    &zp->z_pflags, zp->z_uid, zp->z_gid);
1170 
1171 	/*
1172 	 * When neither a ZNODE_ACL nor a DACL_ACES SA is found, ENOENT
1173 	 * is returned from zfs_acl_node_read().  We allow chown/chgrp
1174 	 * to succeed in these cases as the caller do not expect ENOENT
1175 	 * in their context.
1176 	 */
1177 	if (error == ENOENT)
1178 		error = 0;
1179 
1180 	return (error);
1181 }
1182 
1183 /*
1184  * common code for setting ACLs.
1185  *
1186  * This function is called from zfs_mode_update, zfs_perm_init, and zfs_setacl.
1187  * zfs_setacl passes a non-NULL inherit pointer (ihp) to indicate that it's
1188  * already checked the acl and knows whether to inherit.
1189  */
1190 int
zfs_aclset_common(znode_t * zp,zfs_acl_t * aclp,cred_t * cr,dmu_tx_t * tx)1191 zfs_aclset_common(znode_t *zp, zfs_acl_t *aclp, cred_t *cr, dmu_tx_t *tx)
1192 {
1193 	int			error;
1194 	zfsvfs_t		*zfsvfs = zp->z_zfsvfs;
1195 	dmu_object_type_t	otype;
1196 	zfs_acl_locator_cb_t	locate = { 0 };
1197 	uint64_t		mode;
1198 	sa_bulk_attr_t		bulk[5];
1199 	uint64_t		ctime[2];
1200 	int			count = 0;
1201 
1202 	mode = zp->z_mode;
1203 
1204 	mode = zfs_mode_compute(mode, aclp, &zp->z_pflags,
1205 	    zp->z_uid, zp->z_gid);
1206 
1207 	zp->z_mode = mode;
1208 	SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_MODE(zfsvfs), NULL,
1209 	    &mode, sizeof (mode));
1210 	SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_FLAGS(zfsvfs), NULL,
1211 	    &zp->z_pflags, sizeof (zp->z_pflags));
1212 	SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_CTIME(zfsvfs), NULL,
1213 	    &ctime, sizeof (ctime));
1214 
1215 	if (zp->z_acl_cached) {
1216 		zfs_acl_free(zp->z_acl_cached);
1217 		zp->z_acl_cached = NULL;
1218 	}
1219 
1220 	/*
1221 	 * Upgrade needed?
1222 	 */
1223 	if (!zfsvfs->z_use_fuids) {
1224 		otype = DMU_OT_OLDACL;
1225 	} else {
1226 		if ((aclp->z_version == ZFS_ACL_VERSION_INITIAL) &&
1227 		    (zfsvfs->z_version >= ZPL_VERSION_FUID))
1228 			zfs_acl_xform(zp, aclp, cr);
1229 		ASSERT(aclp->z_version >= ZFS_ACL_VERSION_FUID);
1230 		otype = DMU_OT_ACL;
1231 	}
1232 
1233 	/*
1234 	 * Arrgh, we have to handle old on disk format
1235 	 * as well as newer (preferred) SA format.
1236 	 */
1237 
1238 	if (zp->z_is_sa) { /* the easy case, just update the ACL attribute */
1239 		locate.cb_aclp = aclp;
1240 		SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_DACL_ACES(zfsvfs),
1241 		    zfs_acl_data_locator, &locate, aclp->z_acl_bytes);
1242 		SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_DACL_COUNT(zfsvfs),
1243 		    NULL, &aclp->z_acl_count, sizeof (uint64_t));
1244 	} else { /* Painful legacy way */
1245 		zfs_acl_node_t *aclnode;
1246 		uint64_t off = 0;
1247 		zfs_acl_phys_t acl_phys;
1248 		uint64_t aoid;
1249 
1250 		if ((error = sa_lookup(zp->z_sa_hdl, SA_ZPL_ZNODE_ACL(zfsvfs),
1251 		    &acl_phys, sizeof (acl_phys))) != 0)
1252 			return (error);
1253 
1254 		aoid = acl_phys.z_acl_extern_obj;
1255 
1256 		if (aclp->z_acl_bytes > ZFS_ACE_SPACE) {
1257 			/*
1258 			 * If ACL was previously external and we are now
1259 			 * converting to new ACL format then release old
1260 			 * ACL object and create a new one.
1261 			 */
1262 			if (aoid &&
1263 			    aclp->z_version != acl_phys.z_acl_version) {
1264 				error = dmu_object_free(zfsvfs->z_os, aoid, tx);
1265 				if (error)
1266 					return (error);
1267 				aoid = 0;
1268 			}
1269 			if (aoid == 0) {
1270 				aoid = dmu_object_alloc(zfsvfs->z_os,
1271 				    otype, aclp->z_acl_bytes,
1272 				    otype == DMU_OT_ACL ?
1273 				    DMU_OT_SYSACL : DMU_OT_NONE,
1274 				    otype == DMU_OT_ACL ?
1275 				    DN_MAX_BONUSLEN : 0, tx);
1276 			} else {
1277 				(void) dmu_object_set_blocksize(zfsvfs->z_os,
1278 				    aoid, aclp->z_acl_bytes, 0, tx);
1279 			}
1280 			acl_phys.z_acl_extern_obj = aoid;
1281 			for (aclnode = list_head(&aclp->z_acl); aclnode;
1282 			    aclnode = list_next(&aclp->z_acl, aclnode)) {
1283 				if (aclnode->z_ace_count == 0)
1284 					continue;
1285 				dmu_write(zfsvfs->z_os, aoid, off,
1286 				    aclnode->z_size, aclnode->z_acldata, tx);
1287 				off += aclnode->z_size;
1288 			}
1289 		} else {
1290 			void *start = acl_phys.z_ace_data;
1291 			/*
1292 			 * Migrating back embedded?
1293 			 */
1294 			if (acl_phys.z_acl_extern_obj) {
1295 				error = dmu_object_free(zfsvfs->z_os,
1296 				    acl_phys.z_acl_extern_obj, tx);
1297 				if (error)
1298 					return (error);
1299 				acl_phys.z_acl_extern_obj = 0;
1300 			}
1301 
1302 			for (aclnode = list_head(&aclp->z_acl); aclnode;
1303 			    aclnode = list_next(&aclp->z_acl, aclnode)) {
1304 				if (aclnode->z_ace_count == 0)
1305 					continue;
1306 				bcopy(aclnode->z_acldata, start,
1307 				    aclnode->z_size);
1308 				start = (caddr_t)start + aclnode->z_size;
1309 			}
1310 		}
1311 		/*
1312 		 * If Old version then swap count/bytes to match old
1313 		 * layout of znode_acl_phys_t.
1314 		 */
1315 		if (aclp->z_version == ZFS_ACL_VERSION_INITIAL) {
1316 			acl_phys.z_acl_size = aclp->z_acl_count;
1317 			acl_phys.z_acl_count = aclp->z_acl_bytes;
1318 		} else {
1319 			acl_phys.z_acl_size = aclp->z_acl_bytes;
1320 			acl_phys.z_acl_count = aclp->z_acl_count;
1321 		}
1322 		acl_phys.z_acl_version = aclp->z_version;
1323 
1324 		SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_ZNODE_ACL(zfsvfs), NULL,
1325 		    &acl_phys, sizeof (acl_phys));
1326 	}
1327 
1328 	/*
1329 	 * Replace ACL wide bits, but first clear them.
1330 	 */
1331 	zp->z_pflags &= ~ZFS_ACL_WIDE_FLAGS;
1332 
1333 	zp->z_pflags |= aclp->z_hints;
1334 
1335 	if (ace_trivial_common(aclp, 0, zfs_ace_walk) == 0)
1336 		zp->z_pflags |= ZFS_ACL_TRIVIAL;
1337 
1338 	zfs_tstamp_update_setup(zp, STATE_CHANGED, NULL, ctime, B_TRUE);
1339 	return (sa_bulk_update(zp->z_sa_hdl, bulk, count, tx));
1340 }
1341 
1342 static void
zfs_acl_chmod(vtype_t vtype,uint64_t mode,boolean_t trim,zfs_acl_t * aclp)1343 zfs_acl_chmod(vtype_t vtype, uint64_t mode, boolean_t trim, zfs_acl_t *aclp)
1344 {
1345 	void		*acep = NULL;
1346 	uint64_t	who;
1347 	int		new_count, new_bytes;
1348 	int		ace_size;
1349 	int 		entry_type;
1350 	uint16_t	iflags, type;
1351 	uint32_t	access_mask;
1352 	zfs_acl_node_t	*newnode;
1353 	size_t 		abstract_size = aclp->z_ops.ace_abstract_size();
1354 	void 		*zacep;
1355 	boolean_t	isdir;
1356 	trivial_acl_t	masks;
1357 
1358 	new_count = new_bytes = 0;
1359 
1360 	isdir = (vtype == VDIR);
1361 
1362 	acl_trivial_access_masks((mode_t)mode, isdir, &masks);
1363 
1364 	newnode = zfs_acl_node_alloc((abstract_size * 6) + aclp->z_acl_bytes);
1365 
1366 	zacep = newnode->z_acldata;
1367 	if (masks.allow0) {
1368 		zfs_set_ace(aclp, zacep, masks.allow0, ALLOW, -1, ACE_OWNER);
1369 		zacep = (void *)((uintptr_t)zacep + abstract_size);
1370 		new_count++;
1371 		new_bytes += abstract_size;
1372 	}
1373 	if (masks.deny1) {
1374 		zfs_set_ace(aclp, zacep, masks.deny1, DENY, -1, ACE_OWNER);
1375 		zacep = (void *)((uintptr_t)zacep + abstract_size);
1376 		new_count++;
1377 		new_bytes += abstract_size;
1378 	}
1379 	if (masks.deny2) {
1380 		zfs_set_ace(aclp, zacep, masks.deny2, DENY, -1, OWNING_GROUP);
1381 		zacep = (void *)((uintptr_t)zacep + abstract_size);
1382 		new_count++;
1383 		new_bytes += abstract_size;
1384 	}
1385 
1386 	while (acep = zfs_acl_next_ace(aclp, acep, &who, &access_mask,
1387 	    &iflags, &type)) {
1388 		uint16_t inherit_flags;
1389 
1390 		entry_type = (iflags & ACE_TYPE_FLAGS);
1391 		inherit_flags = (iflags & ALL_INHERIT);
1392 
1393 		if ((entry_type == ACE_OWNER || entry_type == ACE_EVERYONE ||
1394 		    (entry_type == OWNING_GROUP)) &&
1395 		    ((inherit_flags & ACE_INHERIT_ONLY_ACE) == 0)) {
1396 			continue;
1397 		}
1398 
1399 		/*
1400 		 * If this ACL has any inheritable ACEs, mark that in
1401 		 * the hints (which are later masked into the pflags)
1402 		 * so create knows to do inheritance.
1403 		 */
1404 		if (isdir && (inherit_flags &
1405 		    (ACE_FILE_INHERIT_ACE|ACE_DIRECTORY_INHERIT_ACE)))
1406 			aclp->z_hints |= ZFS_INHERIT_ACE;
1407 
1408 		if ((type != ALLOW && type != DENY) ||
1409 		    (inherit_flags & ACE_INHERIT_ONLY_ACE)) {
1410 			switch (type) {
1411 			case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
1412 			case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
1413 			case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
1414 			case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
1415 				aclp->z_hints |= ZFS_ACL_OBJ_ACE;
1416 				break;
1417 			}
1418 		} else {
1419 
1420 			/*
1421 			 * Limit permissions to be no greater than
1422 			 * group permissions.
1423 			 * The "aclinherit" and "aclmode" properties
1424 			 * affect policy for create and chmod(2),
1425 			 * respectively.
1426 			 */
1427 			if ((type == ALLOW) && trim)
1428 				access_mask &= masks.group;
1429 		}
1430 		zfs_set_ace(aclp, zacep, access_mask, type, who, iflags);
1431 		ace_size = aclp->z_ops.ace_size(acep);
1432 		zacep = (void *)((uintptr_t)zacep + ace_size);
1433 		new_count++;
1434 		new_bytes += ace_size;
1435 	}
1436 	zfs_set_ace(aclp, zacep, masks.owner, 0, -1, ACE_OWNER);
1437 	zacep = (void *)((uintptr_t)zacep + abstract_size);
1438 	zfs_set_ace(aclp, zacep, masks.group, 0, -1, OWNING_GROUP);
1439 	zacep = (void *)((uintptr_t)zacep + abstract_size);
1440 	zfs_set_ace(aclp, zacep, masks.everyone, 0, -1, ACE_EVERYONE);
1441 
1442 	new_count += 3;
1443 	new_bytes += abstract_size * 3;
1444 	zfs_acl_release_nodes(aclp);
1445 	aclp->z_acl_count = new_count;
1446 	aclp->z_acl_bytes = new_bytes;
1447 	newnode->z_ace_count = new_count;
1448 	newnode->z_size = new_bytes;
1449 	list_insert_tail(&aclp->z_acl, newnode);
1450 }
1451 
1452 int
zfs_acl_chmod_setattr(znode_t * zp,zfs_acl_t ** aclp,uint64_t mode)1453 zfs_acl_chmod_setattr(znode_t *zp, zfs_acl_t **aclp, uint64_t mode)
1454 {
1455 	int error = 0;
1456 
1457 	mutex_enter(&zp->z_acl_lock);
1458 	mutex_enter(&zp->z_lock);
1459 	if (zp->z_zfsvfs->z_acl_mode == ZFS_ACL_DISCARD)
1460 		*aclp = zfs_acl_alloc(zfs_acl_version_zp(zp));
1461 	else
1462 		error = zfs_acl_node_read(zp, B_TRUE, aclp, B_TRUE);
1463 
1464 	if (error == 0) {
1465 		(*aclp)->z_hints = zp->z_pflags & V4_ACL_WIDE_FLAGS;
1466 		zfs_acl_chmod(ZTOV(zp)->v_type, mode,
1467 		    (zp->z_zfsvfs->z_acl_mode == ZFS_ACL_GROUPMASK), *aclp);
1468 	}
1469 	mutex_exit(&zp->z_lock);
1470 	mutex_exit(&zp->z_acl_lock);
1471 
1472 	return (error);
1473 }
1474 
1475 /*
1476  * strip off write_owner and write_acl
1477  */
1478 static void
zfs_restricted_update(zfsvfs_t * zfsvfs,zfs_acl_t * aclp,void * acep)1479 zfs_restricted_update(zfsvfs_t *zfsvfs, zfs_acl_t *aclp, void *acep)
1480 {
1481 	uint32_t mask = aclp->z_ops.ace_mask_get(acep);
1482 
1483 	if ((zfsvfs->z_acl_inherit == ZFS_ACL_RESTRICTED) &&
1484 	    (aclp->z_ops.ace_type_get(acep) == ALLOW)) {
1485 		mask &= ~RESTRICTED_CLEAR;
1486 		aclp->z_ops.ace_mask_set(acep, mask);
1487 	}
1488 }
1489 
1490 /*
1491  * Should ACE be inherited?
1492  */
1493 static int
zfs_ace_can_use(vtype_t vtype,uint16_t acep_flags)1494 zfs_ace_can_use(vtype_t vtype, uint16_t acep_flags)
1495 {
1496 	int	iflags = (acep_flags & 0xf);
1497 
1498 	if ((vtype == VDIR) && (iflags & ACE_DIRECTORY_INHERIT_ACE))
1499 		return (1);
1500 	else if (iflags & ACE_FILE_INHERIT_ACE)
1501 		return (!((vtype == VDIR) &&
1502 		    (iflags & ACE_NO_PROPAGATE_INHERIT_ACE)));
1503 	return (0);
1504 }
1505 
1506 /*
1507  * inherit inheritable ACEs from parent
1508  */
1509 static zfs_acl_t *
zfs_acl_inherit(zfsvfs_t * zfsvfs,vtype_t vtype,zfs_acl_t * paclp,uint64_t mode,boolean_t * need_chmod)1510 zfs_acl_inherit(zfsvfs_t *zfsvfs, vtype_t vtype, zfs_acl_t *paclp,
1511     uint64_t mode, boolean_t *need_chmod)
1512 {
1513 	void		*pacep;
1514 	void		*acep;
1515 	zfs_acl_node_t  *aclnode;
1516 	zfs_acl_t	*aclp = NULL;
1517 	uint64_t	who;
1518 	uint32_t	access_mask;
1519 	uint16_t	iflags, newflags, type;
1520 	size_t		ace_size;
1521 	void		*data1, *data2;
1522 	size_t		data1sz, data2sz;
1523 	boolean_t	vdir = vtype == VDIR;
1524 	boolean_t	vreg = vtype == VREG;
1525 	boolean_t	passthrough, passthrough_x, noallow;
1526 
1527 	passthrough_x =
1528 	    zfsvfs->z_acl_inherit == ZFS_ACL_PASSTHROUGH_X;
1529 	passthrough = passthrough_x ||
1530 	    zfsvfs->z_acl_inherit == ZFS_ACL_PASSTHROUGH;
1531 	noallow =
1532 	    zfsvfs->z_acl_inherit == ZFS_ACL_NOALLOW;
1533 
1534 	*need_chmod = B_TRUE;
1535 	pacep = NULL;
1536 	aclp = zfs_acl_alloc(paclp->z_version);
1537 	if (zfsvfs->z_acl_inherit == ZFS_ACL_DISCARD || vtype == VLNK)
1538 		return (aclp);
1539 	while (pacep = zfs_acl_next_ace(paclp, pacep, &who,
1540 	    &access_mask, &iflags, &type)) {
1541 
1542 		/*
1543 		 * don't inherit bogus ACEs
1544 		 */
1545 		if (!zfs_acl_valid_ace_type(type, iflags))
1546 			continue;
1547 
1548 		if (noallow && type == ALLOW)
1549 			continue;
1550 
1551 		ace_size = aclp->z_ops.ace_size(pacep);
1552 
1553 		if (!zfs_ace_can_use(vtype, iflags))
1554 			continue;
1555 
1556 		/*
1557 		 * If owner@, group@, or everyone@ inheritable
1558 		 * then zfs_acl_chmod() isn't needed.
1559 		 */
1560 		if (passthrough &&
1561 		    ((iflags & (ACE_OWNER|ACE_EVERYONE)) ||
1562 		    ((iflags & OWNING_GROUP) ==
1563 		    OWNING_GROUP)) && (vreg || (vdir && (iflags &
1564 		    ACE_DIRECTORY_INHERIT_ACE)))) {
1565 			*need_chmod = B_FALSE;
1566 		}
1567 
1568 		if (!vdir && passthrough_x &&
1569 		    ((mode & (S_IXUSR | S_IXGRP | S_IXOTH)) == 0)) {
1570 			access_mask &= ~ACE_EXECUTE;
1571 		}
1572 
1573 		aclnode = zfs_acl_node_alloc(ace_size);
1574 		list_insert_tail(&aclp->z_acl, aclnode);
1575 		acep = aclnode->z_acldata;
1576 
1577 		zfs_set_ace(aclp, acep, access_mask, type,
1578 		    who, iflags|ACE_INHERITED_ACE);
1579 
1580 		/*
1581 		 * Copy special opaque data if any
1582 		 */
1583 		if ((data1sz = paclp->z_ops.ace_data(pacep, &data1)) != 0) {
1584 			VERIFY((data2sz = aclp->z_ops.ace_data(acep,
1585 			    &data2)) == data1sz);
1586 			bcopy(data1, data2, data2sz);
1587 		}
1588 
1589 		aclp->z_acl_count++;
1590 		aclnode->z_ace_count++;
1591 		aclp->z_acl_bytes += aclnode->z_size;
1592 		newflags = aclp->z_ops.ace_flags_get(acep);
1593 
1594 		if (vdir)
1595 			aclp->z_hints |= ZFS_INHERIT_ACE;
1596 
1597 		if ((iflags & ACE_NO_PROPAGATE_INHERIT_ACE) || !vdir) {
1598 			newflags &= ~ALL_INHERIT;
1599 			aclp->z_ops.ace_flags_set(acep,
1600 			    newflags|ACE_INHERITED_ACE);
1601 			zfs_restricted_update(zfsvfs, aclp, acep);
1602 			continue;
1603 		}
1604 
1605 		ASSERT(vdir);
1606 
1607 		/*
1608 		 * If only FILE_INHERIT is set then turn on
1609 		 * inherit_only
1610 		 */
1611 		if ((iflags & (ACE_FILE_INHERIT_ACE |
1612 		    ACE_DIRECTORY_INHERIT_ACE)) == ACE_FILE_INHERIT_ACE) {
1613 			newflags |= ACE_INHERIT_ONLY_ACE;
1614 			aclp->z_ops.ace_flags_set(acep,
1615 			    newflags|ACE_INHERITED_ACE);
1616 		} else {
1617 			newflags &= ~ACE_INHERIT_ONLY_ACE;
1618 			aclp->z_ops.ace_flags_set(acep,
1619 			    newflags|ACE_INHERITED_ACE);
1620 		}
1621 	}
1622 	return (aclp);
1623 }
1624 
1625 /*
1626  * Create file system object initial permissions
1627  * including inheritable ACEs.
1628  */
1629 int
zfs_acl_ids_create(znode_t * dzp,int flag,vattr_t * vap,cred_t * cr,vsecattr_t * vsecp,zfs_acl_ids_t * acl_ids)1630 zfs_acl_ids_create(znode_t *dzp, int flag, vattr_t *vap, cred_t *cr,
1631     vsecattr_t *vsecp, zfs_acl_ids_t *acl_ids)
1632 {
1633 	int		error;
1634 	zfsvfs_t	*zfsvfs = dzp->z_zfsvfs;
1635 	zfs_acl_t	*paclp;
1636 	gid_t		gid;
1637 	boolean_t	need_chmod = B_TRUE;
1638 	boolean_t	inherited = B_FALSE;
1639 
1640 	bzero(acl_ids, sizeof (zfs_acl_ids_t));
1641 	acl_ids->z_mode = MAKEIMODE(vap->va_type, vap->va_mode);
1642 
1643 	if (vsecp)
1644 		if ((error = zfs_vsec_2_aclp(zfsvfs, vap->va_type, vsecp, cr,
1645 		    &acl_ids->z_fuidp, &acl_ids->z_aclp)) != 0)
1646 			return (error);
1647 	/*
1648 	 * Determine uid and gid.
1649 	 */
1650 	if ((flag & IS_ROOT_NODE) || zfsvfs->z_replay ||
1651 	    ((flag & IS_XATTR) && (vap->va_type == VDIR))) {
1652 		acl_ids->z_fuid = zfs_fuid_create(zfsvfs,
1653 		    (uint64_t)vap->va_uid, cr,
1654 		    ZFS_OWNER, &acl_ids->z_fuidp);
1655 		acl_ids->z_fgid = zfs_fuid_create(zfsvfs,
1656 		    (uint64_t)vap->va_gid, cr,
1657 		    ZFS_GROUP, &acl_ids->z_fuidp);
1658 		gid = vap->va_gid;
1659 	} else {
1660 		acl_ids->z_fuid = zfs_fuid_create_cred(zfsvfs, ZFS_OWNER,
1661 		    cr, &acl_ids->z_fuidp);
1662 		acl_ids->z_fgid = 0;
1663 		if (vap->va_mask & AT_GID)  {
1664 			acl_ids->z_fgid = zfs_fuid_create(zfsvfs,
1665 			    (uint64_t)vap->va_gid,
1666 			    cr, ZFS_GROUP, &acl_ids->z_fuidp);
1667 			gid = vap->va_gid;
1668 			if (acl_ids->z_fgid != dzp->z_gid &&
1669 			    !groupmember(vap->va_gid, cr) &&
1670 			    secpolicy_vnode_create_gid(cr) != 0)
1671 				acl_ids->z_fgid = 0;
1672 		}
1673 		if (acl_ids->z_fgid == 0) {
1674 			if (dzp->z_mode & S_ISGID) {
1675 				char		*domain;
1676 				uint32_t	rid;
1677 
1678 				acl_ids->z_fgid = dzp->z_gid;
1679 				gid = zfs_fuid_map_id(zfsvfs, acl_ids->z_fgid,
1680 				    cr, ZFS_GROUP);
1681 
1682 				if (zfsvfs->z_use_fuids &&
1683 				    IS_EPHEMERAL(acl_ids->z_fgid)) {
1684 					domain = zfs_fuid_idx_domain(
1685 					    &zfsvfs->z_fuid_idx,
1686 					    FUID_INDEX(acl_ids->z_fgid));
1687 					rid = FUID_RID(acl_ids->z_fgid);
1688 					zfs_fuid_node_add(&acl_ids->z_fuidp,
1689 					    domain, rid,
1690 					    FUID_INDEX(acl_ids->z_fgid),
1691 					    acl_ids->z_fgid, ZFS_GROUP);
1692 				}
1693 			} else {
1694 				acl_ids->z_fgid = zfs_fuid_create_cred(zfsvfs,
1695 				    ZFS_GROUP, cr, &acl_ids->z_fuidp);
1696 #ifdef __FreeBSD_kernel__
1697 				gid = acl_ids->z_fgid = dzp->z_gid;
1698 #else
1699 				gid = crgetgid(cr);
1700 #endif
1701 			}
1702 		}
1703 	}
1704 
1705 	/*
1706 	 * If we're creating a directory, and the parent directory has the
1707 	 * set-GID bit set, set in on the new directory.
1708 	 * Otherwise, if the user is neither privileged nor a member of the
1709 	 * file's new group, clear the file's set-GID bit.
1710 	 */
1711 
1712 	if (!(flag & IS_ROOT_NODE) && (dzp->z_mode & S_ISGID) &&
1713 	    (vap->va_type == VDIR)) {
1714 		acl_ids->z_mode |= S_ISGID;
1715 	} else {
1716 		if ((acl_ids->z_mode & S_ISGID) &&
1717 		    secpolicy_vnode_setids_setgids(ZTOV(dzp), cr, gid) != 0)
1718 			acl_ids->z_mode &= ~S_ISGID;
1719 	}
1720 
1721 	if (acl_ids->z_aclp == NULL) {
1722 		mutex_enter(&dzp->z_acl_lock);
1723 		mutex_enter(&dzp->z_lock);
1724 		if (!(flag & IS_ROOT_NODE) &&
1725 		    (dzp->z_pflags & ZFS_INHERIT_ACE) &&
1726 		    !(dzp->z_pflags & ZFS_XATTR)) {
1727 			VERIFY(0 == zfs_acl_node_read(dzp, B_TRUE,
1728 			    &paclp, B_FALSE));
1729 			acl_ids->z_aclp = zfs_acl_inherit(zfsvfs,
1730 			    vap->va_type, paclp, acl_ids->z_mode, &need_chmod);
1731 			inherited = B_TRUE;
1732 		} else {
1733 			acl_ids->z_aclp =
1734 			    zfs_acl_alloc(zfs_acl_version_zp(dzp));
1735 			acl_ids->z_aclp->z_hints |= ZFS_ACL_TRIVIAL;
1736 		}
1737 		mutex_exit(&dzp->z_lock);
1738 		mutex_exit(&dzp->z_acl_lock);
1739 		if (need_chmod) {
1740 			acl_ids->z_aclp->z_hints |= (vap->va_type == VDIR) ?
1741 			    ZFS_ACL_AUTO_INHERIT : 0;
1742 			zfs_acl_chmod(vap->va_type, acl_ids->z_mode,
1743 			    (zfsvfs->z_acl_inherit == ZFS_ACL_RESTRICTED),
1744 			    acl_ids->z_aclp);
1745 		}
1746 	}
1747 
1748 	if (inherited || vsecp) {
1749 		acl_ids->z_mode = zfs_mode_compute(acl_ids->z_mode,
1750 		    acl_ids->z_aclp, &acl_ids->z_aclp->z_hints,
1751 		    acl_ids->z_fuid, acl_ids->z_fgid);
1752 		if (ace_trivial_common(acl_ids->z_aclp, 0, zfs_ace_walk) == 0)
1753 			acl_ids->z_aclp->z_hints |= ZFS_ACL_TRIVIAL;
1754 	}
1755 
1756 	return (0);
1757 }
1758 
1759 /*
1760  * Free ACL and fuid_infop, but not the acl_ids structure
1761  */
1762 void
zfs_acl_ids_free(zfs_acl_ids_t * acl_ids)1763 zfs_acl_ids_free(zfs_acl_ids_t *acl_ids)
1764 {
1765 	if (acl_ids->z_aclp)
1766 		zfs_acl_free(acl_ids->z_aclp);
1767 	if (acl_ids->z_fuidp)
1768 		zfs_fuid_info_free(acl_ids->z_fuidp);
1769 	acl_ids->z_aclp = NULL;
1770 	acl_ids->z_fuidp = NULL;
1771 }
1772 
1773 boolean_t
zfs_acl_ids_overquota(zfsvfs_t * zfsvfs,zfs_acl_ids_t * acl_ids)1774 zfs_acl_ids_overquota(zfsvfs_t *zfsvfs, zfs_acl_ids_t *acl_ids)
1775 {
1776 	return (zfs_fuid_overquota(zfsvfs, B_FALSE, acl_ids->z_fuid) ||
1777 	    zfs_fuid_overquota(zfsvfs, B_TRUE, acl_ids->z_fgid));
1778 }
1779 
1780 /*
1781  * Retrieve a file's ACL
1782  */
1783 int
zfs_getacl(znode_t * zp,vsecattr_t * vsecp,boolean_t skipaclchk,cred_t * cr)1784 zfs_getacl(znode_t *zp, vsecattr_t *vsecp, boolean_t skipaclchk, cred_t *cr)
1785 {
1786 	zfs_acl_t	*aclp;
1787 	ulong_t		mask;
1788 	int		error;
1789 	int 		count = 0;
1790 	int		largeace = 0;
1791 
1792 	mask = vsecp->vsa_mask & (VSA_ACE | VSA_ACECNT |
1793 	    VSA_ACE_ACLFLAGS | VSA_ACE_ALLTYPES);
1794 
1795 	if (mask == 0)
1796 		return (SET_ERROR(ENOSYS));
1797 
1798 	if (error = zfs_zaccess(zp, ACE_READ_ACL, 0, skipaclchk, cr))
1799 		return (error);
1800 
1801 	mutex_enter(&zp->z_acl_lock);
1802 
1803 	error = zfs_acl_node_read(zp, B_FALSE, &aclp, B_FALSE);
1804 	if (error != 0) {
1805 		mutex_exit(&zp->z_acl_lock);
1806 		return (error);
1807 	}
1808 
1809 	/*
1810 	 * Scan ACL to determine number of ACEs
1811 	 */
1812 	if ((zp->z_pflags & ZFS_ACL_OBJ_ACE) && !(mask & VSA_ACE_ALLTYPES)) {
1813 		void *zacep = NULL;
1814 		uint64_t who;
1815 		uint32_t access_mask;
1816 		uint16_t type, iflags;
1817 
1818 		while (zacep = zfs_acl_next_ace(aclp, zacep,
1819 		    &who, &access_mask, &iflags, &type)) {
1820 			switch (type) {
1821 			case ACE_ACCESS_ALLOWED_OBJECT_ACE_TYPE:
1822 			case ACE_ACCESS_DENIED_OBJECT_ACE_TYPE:
1823 			case ACE_SYSTEM_AUDIT_OBJECT_ACE_TYPE:
1824 			case ACE_SYSTEM_ALARM_OBJECT_ACE_TYPE:
1825 				largeace++;
1826 				continue;
1827 			default:
1828 				count++;
1829 			}
1830 		}
1831 		vsecp->vsa_aclcnt = count;
1832 	} else
1833 		count = (int)aclp->z_acl_count;
1834 
1835 	if (mask & VSA_ACECNT) {
1836 		vsecp->vsa_aclcnt = count;
1837 	}
1838 
1839 	if (mask & VSA_ACE) {
1840 		size_t aclsz;
1841 
1842 		aclsz = count * sizeof (ace_t) +
1843 		    sizeof (ace_object_t) * largeace;
1844 
1845 		vsecp->vsa_aclentp = kmem_alloc(aclsz, KM_SLEEP);
1846 		vsecp->vsa_aclentsz = aclsz;
1847 
1848 		if (aclp->z_version == ZFS_ACL_VERSION_FUID)
1849 			zfs_copy_fuid_2_ace(zp->z_zfsvfs, aclp, cr,
1850 			    vsecp->vsa_aclentp, !(mask & VSA_ACE_ALLTYPES));
1851 		else {
1852 			zfs_acl_node_t *aclnode;
1853 			void *start = vsecp->vsa_aclentp;
1854 
1855 			for (aclnode = list_head(&aclp->z_acl); aclnode;
1856 			    aclnode = list_next(&aclp->z_acl, aclnode)) {
1857 				bcopy(aclnode->z_acldata, start,
1858 				    aclnode->z_size);
1859 				start = (caddr_t)start + aclnode->z_size;
1860 			}
1861 			ASSERT((caddr_t)start - (caddr_t)vsecp->vsa_aclentp ==
1862 			    aclp->z_acl_bytes);
1863 		}
1864 	}
1865 	if (mask & VSA_ACE_ACLFLAGS) {
1866 		vsecp->vsa_aclflags = 0;
1867 		if (zp->z_pflags & ZFS_ACL_DEFAULTED)
1868 			vsecp->vsa_aclflags |= ACL_DEFAULTED;
1869 		if (zp->z_pflags & ZFS_ACL_PROTECTED)
1870 			vsecp->vsa_aclflags |= ACL_PROTECTED;
1871 		if (zp->z_pflags & ZFS_ACL_AUTO_INHERIT)
1872 			vsecp->vsa_aclflags |= ACL_AUTO_INHERIT;
1873 	}
1874 
1875 	mutex_exit(&zp->z_acl_lock);
1876 
1877 	return (0);
1878 }
1879 
1880 int
zfs_vsec_2_aclp(zfsvfs_t * zfsvfs,vtype_t obj_type,vsecattr_t * vsecp,cred_t * cr,zfs_fuid_info_t ** fuidp,zfs_acl_t ** zaclp)1881 zfs_vsec_2_aclp(zfsvfs_t *zfsvfs, vtype_t obj_type,
1882     vsecattr_t *vsecp, cred_t *cr, zfs_fuid_info_t **fuidp, zfs_acl_t **zaclp)
1883 {
1884 	zfs_acl_t *aclp;
1885 	zfs_acl_node_t *aclnode;
1886 	int aclcnt = vsecp->vsa_aclcnt;
1887 	int error;
1888 
1889 	if (vsecp->vsa_aclcnt > MAX_ACL_ENTRIES || vsecp->vsa_aclcnt <= 0)
1890 		return (SET_ERROR(EINVAL));
1891 
1892 	aclp = zfs_acl_alloc(zfs_acl_version(zfsvfs->z_version));
1893 
1894 	aclp->z_hints = 0;
1895 	aclnode = zfs_acl_node_alloc(aclcnt * sizeof (zfs_object_ace_t));
1896 	if (aclp->z_version == ZFS_ACL_VERSION_INITIAL) {
1897 		if ((error = zfs_copy_ace_2_oldace(obj_type, aclp,
1898 		    (ace_t *)vsecp->vsa_aclentp, aclnode->z_acldata,
1899 		    aclcnt, &aclnode->z_size)) != 0) {
1900 			zfs_acl_free(aclp);
1901 			zfs_acl_node_free(aclnode);
1902 			return (error);
1903 		}
1904 	} else {
1905 		if ((error = zfs_copy_ace_2_fuid(zfsvfs, obj_type, aclp,
1906 		    vsecp->vsa_aclentp, aclnode->z_acldata, aclcnt,
1907 		    &aclnode->z_size, fuidp, cr)) != 0) {
1908 			zfs_acl_free(aclp);
1909 			zfs_acl_node_free(aclnode);
1910 			return (error);
1911 		}
1912 	}
1913 	aclp->z_acl_bytes = aclnode->z_size;
1914 	aclnode->z_ace_count = aclcnt;
1915 	aclp->z_acl_count = aclcnt;
1916 	list_insert_head(&aclp->z_acl, aclnode);
1917 
1918 	/*
1919 	 * If flags are being set then add them to z_hints
1920 	 */
1921 	if (vsecp->vsa_mask & VSA_ACE_ACLFLAGS) {
1922 		if (vsecp->vsa_aclflags & ACL_PROTECTED)
1923 			aclp->z_hints |= ZFS_ACL_PROTECTED;
1924 		if (vsecp->vsa_aclflags & ACL_DEFAULTED)
1925 			aclp->z_hints |= ZFS_ACL_DEFAULTED;
1926 		if (vsecp->vsa_aclflags & ACL_AUTO_INHERIT)
1927 			aclp->z_hints |= ZFS_ACL_AUTO_INHERIT;
1928 	}
1929 
1930 	*zaclp = aclp;
1931 
1932 	return (0);
1933 }
1934 
1935 /*
1936  * Set a file's ACL
1937  */
1938 int
zfs_setacl(znode_t * zp,vsecattr_t * vsecp,boolean_t skipaclchk,cred_t * cr)1939 zfs_setacl(znode_t *zp, vsecattr_t *vsecp, boolean_t skipaclchk, cred_t *cr)
1940 {
1941 	zfsvfs_t	*zfsvfs = zp->z_zfsvfs;
1942 	zilog_t		*zilog = zfsvfs->z_log;
1943 	ulong_t		mask = vsecp->vsa_mask & (VSA_ACE | VSA_ACECNT);
1944 	dmu_tx_t	*tx;
1945 	int		error;
1946 	zfs_acl_t	*aclp;
1947 	zfs_fuid_info_t	*fuidp = NULL;
1948 	boolean_t	fuid_dirtied;
1949 	uint64_t	acl_obj;
1950 
1951 	if (mask == 0)
1952 		return (SET_ERROR(ENOSYS));
1953 
1954 	if (zp->z_pflags & ZFS_IMMUTABLE)
1955 		return (SET_ERROR(EPERM));
1956 
1957 	if (error = zfs_zaccess(zp, ACE_WRITE_ACL, 0, skipaclchk, cr))
1958 		return (error);
1959 
1960 	error = zfs_vsec_2_aclp(zfsvfs, ZTOV(zp)->v_type, vsecp, cr, &fuidp,
1961 	    &aclp);
1962 	if (error)
1963 		return (error);
1964 
1965 	/*
1966 	 * If ACL wide flags aren't being set then preserve any
1967 	 * existing flags.
1968 	 */
1969 	if (!(vsecp->vsa_mask & VSA_ACE_ACLFLAGS)) {
1970 		aclp->z_hints |=
1971 		    (zp->z_pflags & V4_ACL_WIDE_FLAGS);
1972 	}
1973 top:
1974 	mutex_enter(&zp->z_acl_lock);
1975 	mutex_enter(&zp->z_lock);
1976 
1977 	tx = dmu_tx_create(zfsvfs->z_os);
1978 
1979 	dmu_tx_hold_sa(tx, zp->z_sa_hdl, B_TRUE);
1980 
1981 	fuid_dirtied = zfsvfs->z_fuid_dirty;
1982 	if (fuid_dirtied)
1983 		zfs_fuid_txhold(zfsvfs, tx);
1984 
1985 	/*
1986 	 * If old version and ACL won't fit in bonus and we aren't
1987 	 * upgrading then take out necessary DMU holds
1988 	 */
1989 
1990 	if ((acl_obj = zfs_external_acl(zp)) != 0) {
1991 		if (zfsvfs->z_version >= ZPL_VERSION_FUID &&
1992 		    zfs_znode_acl_version(zp) <= ZFS_ACL_VERSION_INITIAL) {
1993 			dmu_tx_hold_free(tx, acl_obj, 0,
1994 			    DMU_OBJECT_END);
1995 			dmu_tx_hold_write(tx, DMU_NEW_OBJECT, 0,
1996 			    aclp->z_acl_bytes);
1997 		} else {
1998 			dmu_tx_hold_write(tx, acl_obj, 0, aclp->z_acl_bytes);
1999 		}
2000 	} else if (!zp->z_is_sa && aclp->z_acl_bytes > ZFS_ACE_SPACE) {
2001 		dmu_tx_hold_write(tx, DMU_NEW_OBJECT, 0, aclp->z_acl_bytes);
2002 	}
2003 
2004 	zfs_sa_upgrade_txholds(tx, zp);
2005 	error = dmu_tx_assign(tx, TXG_NOWAIT);
2006 	if (error) {
2007 		mutex_exit(&zp->z_acl_lock);
2008 		mutex_exit(&zp->z_lock);
2009 
2010 		if (error == ERESTART) {
2011 			dmu_tx_wait(tx);
2012 			dmu_tx_abort(tx);
2013 			goto top;
2014 		}
2015 		dmu_tx_abort(tx);
2016 		zfs_acl_free(aclp);
2017 		return (error);
2018 	}
2019 
2020 	error = zfs_aclset_common(zp, aclp, cr, tx);
2021 	ASSERT(error == 0);
2022 	ASSERT(zp->z_acl_cached == NULL);
2023 	zp->z_acl_cached = aclp;
2024 
2025 	if (fuid_dirtied)
2026 		zfs_fuid_sync(zfsvfs, tx);
2027 
2028 	zfs_log_acl(zilog, tx, zp, vsecp, fuidp);
2029 
2030 	if (fuidp)
2031 		zfs_fuid_info_free(fuidp);
2032 	dmu_tx_commit(tx);
2033 done:
2034 	mutex_exit(&zp->z_lock);
2035 	mutex_exit(&zp->z_acl_lock);
2036 
2037 	return (error);
2038 }
2039 
2040 /*
2041  * Check accesses of interest (AoI) against attributes of the dataset
2042  * such as read-only.  Returns zero if no AoI conflict with dataset
2043  * attributes, otherwise an appropriate errno is returned.
2044  */
2045 static int
zfs_zaccess_dataset_check(znode_t * zp,uint32_t v4_mode)2046 zfs_zaccess_dataset_check(znode_t *zp, uint32_t v4_mode)
2047 {
2048 	if ((v4_mode & WRITE_MASK) &&
2049 	    (zp->z_zfsvfs->z_vfs->vfs_flag & VFS_RDONLY) &&
2050 	    (!IS_DEVVP(ZTOV(zp)) ||
2051 	    (IS_DEVVP(ZTOV(zp)) && (v4_mode & WRITE_MASK_ATTRS)))) {
2052 		return (SET_ERROR(EROFS));
2053 	}
2054 
2055 	/*
2056 	 * Only check for READONLY on non-directories.
2057 	 */
2058 	if ((v4_mode & WRITE_MASK_DATA) &&
2059 	    (((ZTOV(zp)->v_type != VDIR) &&
2060 	    (zp->z_pflags & (ZFS_READONLY | ZFS_IMMUTABLE))) ||
2061 	    (ZTOV(zp)->v_type == VDIR &&
2062 	    (zp->z_pflags & ZFS_IMMUTABLE)))) {
2063 		return (SET_ERROR(EPERM));
2064 	}
2065 
2066 #ifdef sun
2067 	if ((v4_mode & (ACE_DELETE | ACE_DELETE_CHILD)) &&
2068 	    (zp->z_pflags & ZFS_NOUNLINK)) {
2069 		return (SET_ERROR(EPERM));
2070 	}
2071 #else
2072 	/*
2073 	 * In FreeBSD we allow to modify directory's content is ZFS_NOUNLINK
2074 	 * (sunlnk) is set. We just don't allow directory removal, which is
2075 	 * handled in zfs_zaccess_delete().
2076 	 */
2077 	if ((v4_mode & ACE_DELETE) &&
2078 	    (zp->z_pflags & ZFS_NOUNLINK)) {
2079 		return (EPERM);
2080 	}
2081 #endif
2082 
2083 	if (((v4_mode & (ACE_READ_DATA|ACE_EXECUTE)) &&
2084 	    (zp->z_pflags & ZFS_AV_QUARANTINED))) {
2085 		return (SET_ERROR(EACCES));
2086 	}
2087 
2088 	return (0);
2089 }
2090 
2091 /*
2092  * The primary usage of this function is to loop through all of the
2093  * ACEs in the znode, determining what accesses of interest (AoI) to
2094  * the caller are allowed or denied.  The AoI are expressed as bits in
2095  * the working_mode parameter.  As each ACE is processed, bits covered
2096  * by that ACE are removed from the working_mode.  This removal
2097  * facilitates two things.  The first is that when the working mode is
2098  * empty (= 0), we know we've looked at all the AoI. The second is
2099  * that the ACE interpretation rules don't allow a later ACE to undo
2100  * something granted or denied by an earlier ACE.  Removing the
2101  * discovered access or denial enforces this rule.  At the end of
2102  * processing the ACEs, all AoI that were found to be denied are
2103  * placed into the working_mode, giving the caller a mask of denied
2104  * accesses.  Returns:
2105  *	0		if all AoI granted
2106  *	EACCESS 	if the denied mask is non-zero
2107  *	other error	if abnormal failure (e.g., IO error)
2108  *
2109  * A secondary usage of the function is to determine if any of the
2110  * AoI are granted.  If an ACE grants any access in
2111  * the working_mode, we immediately short circuit out of the function.
2112  * This mode is chosen by setting anyaccess to B_TRUE.  The
2113  * working_mode is not a denied access mask upon exit if the function
2114  * is used in this manner.
2115  */
2116 static int
zfs_zaccess_aces_check(znode_t * zp,uint32_t * working_mode,boolean_t anyaccess,cred_t * cr)2117 zfs_zaccess_aces_check(znode_t *zp, uint32_t *working_mode,
2118     boolean_t anyaccess, cred_t *cr)
2119 {
2120 	zfsvfs_t	*zfsvfs = zp->z_zfsvfs;
2121 	zfs_acl_t	*aclp;
2122 	int		error;
2123 	uid_t		uid = crgetuid(cr);
2124 	uint64_t 	who;
2125 	uint16_t	type, iflags;
2126 	uint16_t	entry_type;
2127 	uint32_t	access_mask;
2128 	uint32_t	deny_mask = 0;
2129 	zfs_ace_hdr_t	*acep = NULL;
2130 	boolean_t	checkit;
2131 	uid_t		gowner;
2132 	uid_t		fowner;
2133 
2134 	zfs_fuid_map_ids(zp, cr, &fowner, &gowner);
2135 
2136 	mutex_enter(&zp->z_acl_lock);
2137 
2138 	error = zfs_acl_node_read(zp, B_FALSE, &aclp, B_FALSE);
2139 	if (error != 0) {
2140 		mutex_exit(&zp->z_acl_lock);
2141 		return (error);
2142 	}
2143 
2144 	ASSERT(zp->z_acl_cached);
2145 
2146 	while (acep = zfs_acl_next_ace(aclp, acep, &who, &access_mask,
2147 	    &iflags, &type)) {
2148 		uint32_t mask_matched;
2149 
2150 		if (!zfs_acl_valid_ace_type(type, iflags))
2151 			continue;
2152 
2153 		if (ZTOV(zp)->v_type == VDIR && (iflags & ACE_INHERIT_ONLY_ACE))
2154 			continue;
2155 
2156 		/* Skip ACE if it does not affect any AoI */
2157 		mask_matched = (access_mask & *working_mode);
2158 		if (!mask_matched)
2159 			continue;
2160 
2161 		entry_type = (iflags & ACE_TYPE_FLAGS);
2162 
2163 		checkit = B_FALSE;
2164 
2165 		switch (entry_type) {
2166 		case ACE_OWNER:
2167 			if (uid == fowner)
2168 				checkit = B_TRUE;
2169 			break;
2170 		case OWNING_GROUP:
2171 			who = gowner;
2172 			/*FALLTHROUGH*/
2173 		case ACE_IDENTIFIER_GROUP:
2174 			checkit = zfs_groupmember(zfsvfs, who, cr);
2175 			break;
2176 		case ACE_EVERYONE:
2177 			checkit = B_TRUE;
2178 			break;
2179 
2180 		/* USER Entry */
2181 		default:
2182 			if (entry_type == 0) {
2183 				uid_t newid;
2184 
2185 				newid = zfs_fuid_map_id(zfsvfs, who, cr,
2186 				    ZFS_ACE_USER);
2187 				if (newid != IDMAP_WK_CREATOR_OWNER_UID &&
2188 				    uid == newid)
2189 					checkit = B_TRUE;
2190 				break;
2191 			} else {
2192 				mutex_exit(&zp->z_acl_lock);
2193 				return (SET_ERROR(EIO));
2194 			}
2195 		}
2196 
2197 		if (checkit) {
2198 			if (type == DENY) {
2199 				DTRACE_PROBE3(zfs__ace__denies,
2200 				    znode_t *, zp,
2201 				    zfs_ace_hdr_t *, acep,
2202 				    uint32_t, mask_matched);
2203 				deny_mask |= mask_matched;
2204 			} else {
2205 				DTRACE_PROBE3(zfs__ace__allows,
2206 				    znode_t *, zp,
2207 				    zfs_ace_hdr_t *, acep,
2208 				    uint32_t, mask_matched);
2209 				if (anyaccess) {
2210 					mutex_exit(&zp->z_acl_lock);
2211 					return (0);
2212 				}
2213 			}
2214 			*working_mode &= ~mask_matched;
2215 		}
2216 
2217 		/* Are we done? */
2218 		if (*working_mode == 0)
2219 			break;
2220 	}
2221 
2222 	mutex_exit(&zp->z_acl_lock);
2223 
2224 	/* Put the found 'denies' back on the working mode */
2225 	if (deny_mask) {
2226 		*working_mode |= deny_mask;
2227 		return (SET_ERROR(EACCES));
2228 	} else if (*working_mode) {
2229 		return (-1);
2230 	}
2231 
2232 	return (0);
2233 }
2234 
2235 /*
2236  * Return true if any access whatsoever granted, we don't actually
2237  * care what access is granted.
2238  */
2239 boolean_t
zfs_has_access(znode_t * zp,cred_t * cr)2240 zfs_has_access(znode_t *zp, cred_t *cr)
2241 {
2242 	uint32_t have = ACE_ALL_PERMS;
2243 
2244 	if (zfs_zaccess_aces_check(zp, &have, B_TRUE, cr) != 0) {
2245 		uid_t owner;
2246 
2247 		owner = zfs_fuid_map_id(zp->z_zfsvfs, zp->z_uid, cr, ZFS_OWNER);
2248 		return (secpolicy_vnode_any_access(cr, ZTOV(zp), owner) == 0);
2249 	}
2250 	return (B_TRUE);
2251 }
2252 
2253 static int
zfs_zaccess_common(znode_t * zp,uint32_t v4_mode,uint32_t * working_mode,boolean_t * check_privs,boolean_t skipaclchk,cred_t * cr)2254 zfs_zaccess_common(znode_t *zp, uint32_t v4_mode, uint32_t *working_mode,
2255     boolean_t *check_privs, boolean_t skipaclchk, cred_t *cr)
2256 {
2257 	zfsvfs_t *zfsvfs = zp->z_zfsvfs;
2258 	int err;
2259 
2260 	*working_mode = v4_mode;
2261 	*check_privs = B_TRUE;
2262 
2263 	/*
2264 	 * Short circuit empty requests
2265 	 */
2266 	if (v4_mode == 0 || zfsvfs->z_replay) {
2267 		*working_mode = 0;
2268 		return (0);
2269 	}
2270 
2271 	if ((err = zfs_zaccess_dataset_check(zp, v4_mode)) != 0) {
2272 		*check_privs = B_FALSE;
2273 		return (err);
2274 	}
2275 
2276 	/*
2277 	 * The caller requested that the ACL check be skipped.  This
2278 	 * would only happen if the caller checked VOP_ACCESS() with a
2279 	 * 32 bit ACE mask and already had the appropriate permissions.
2280 	 */
2281 	if (skipaclchk) {
2282 		*working_mode = 0;
2283 		return (0);
2284 	}
2285 
2286 	return (zfs_zaccess_aces_check(zp, working_mode, B_FALSE, cr));
2287 }
2288 
2289 static int
zfs_zaccess_append(znode_t * zp,uint32_t * working_mode,boolean_t * check_privs,cred_t * cr)2290 zfs_zaccess_append(znode_t *zp, uint32_t *working_mode, boolean_t *check_privs,
2291     cred_t *cr)
2292 {
2293 	if (*working_mode != ACE_WRITE_DATA)
2294 		return (SET_ERROR(EACCES));
2295 
2296 	return (zfs_zaccess_common(zp, ACE_APPEND_DATA, working_mode,
2297 	    check_privs, B_FALSE, cr));
2298 }
2299 
2300 int
zfs_fastaccesschk_execute(znode_t * zdp,cred_t * cr)2301 zfs_fastaccesschk_execute(znode_t *zdp, cred_t *cr)
2302 {
2303 	boolean_t owner = B_FALSE;
2304 	boolean_t groupmbr = B_FALSE;
2305 	boolean_t is_attr;
2306 	uid_t uid = crgetuid(cr);
2307 	int error;
2308 
2309 	if (zdp->z_pflags & ZFS_AV_QUARANTINED)
2310 		return (SET_ERROR(EACCES));
2311 
2312 	is_attr = ((zdp->z_pflags & ZFS_XATTR) &&
2313 	    (ZTOV(zdp)->v_type == VDIR));
2314 	if (is_attr)
2315 		goto slow;
2316 
2317 
2318 	mutex_enter(&zdp->z_acl_lock);
2319 
2320 	if (zdp->z_pflags & ZFS_NO_EXECS_DENIED) {
2321 		mutex_exit(&zdp->z_acl_lock);
2322 		return (0);
2323 	}
2324 
2325 	if (FUID_INDEX(zdp->z_uid) != 0 || FUID_INDEX(zdp->z_gid) != 0) {
2326 		mutex_exit(&zdp->z_acl_lock);
2327 		goto slow;
2328 	}
2329 
2330 	if (uid == zdp->z_uid) {
2331 		owner = B_TRUE;
2332 		if (zdp->z_mode & S_IXUSR) {
2333 			mutex_exit(&zdp->z_acl_lock);
2334 			return (0);
2335 		} else {
2336 			mutex_exit(&zdp->z_acl_lock);
2337 			goto slow;
2338 		}
2339 	}
2340 	if (groupmember(zdp->z_gid, cr)) {
2341 		groupmbr = B_TRUE;
2342 		if (zdp->z_mode & S_IXGRP) {
2343 			mutex_exit(&zdp->z_acl_lock);
2344 			return (0);
2345 		} else {
2346 			mutex_exit(&zdp->z_acl_lock);
2347 			goto slow;
2348 		}
2349 	}
2350 	if (!owner && !groupmbr) {
2351 		if (zdp->z_mode & S_IXOTH) {
2352 			mutex_exit(&zdp->z_acl_lock);
2353 			return (0);
2354 		}
2355 	}
2356 
2357 	mutex_exit(&zdp->z_acl_lock);
2358 
2359 slow:
2360 	DTRACE_PROBE(zfs__fastpath__execute__access__miss);
2361 	ZFS_ENTER(zdp->z_zfsvfs);
2362 	error = zfs_zaccess(zdp, ACE_EXECUTE, 0, B_FALSE, cr);
2363 	ZFS_EXIT(zdp->z_zfsvfs);
2364 	return (error);
2365 }
2366 
2367 /*
2368  * Determine whether Access should be granted/denied.
2369  *
2370  * The least priv subsytem is always consulted as a basic privilege
2371  * can define any form of access.
2372  */
2373 int
zfs_zaccess(znode_t * zp,int mode,int flags,boolean_t skipaclchk,cred_t * cr)2374 zfs_zaccess(znode_t *zp, int mode, int flags, boolean_t skipaclchk, cred_t *cr)
2375 {
2376 	uint32_t	working_mode;
2377 	int		error;
2378 	int		is_attr;
2379 	boolean_t 	check_privs;
2380 	znode_t		*xzp;
2381 	znode_t 	*check_zp = zp;
2382 	mode_t		needed_bits;
2383 	uid_t		owner;
2384 
2385 	is_attr = ((zp->z_pflags & ZFS_XATTR) && (ZTOV(zp)->v_type == VDIR));
2386 
2387 #ifdef __FreeBSD_kernel__
2388 	/*
2389 	 * In FreeBSD, we don't care about permissions of individual ADS.
2390 	 * Note that not checking them is not just an optimization - without
2391 	 * this shortcut, EA operations may bogusly fail with EACCES.
2392 	 */
2393 	if (zp->z_pflags & ZFS_XATTR)
2394 		return (0);
2395 #else
2396 	/*
2397 	 * If attribute then validate against base file
2398 	 */
2399 	if (is_attr) {
2400 		uint64_t	parent;
2401 
2402 		if ((error = sa_lookup(zp->z_sa_hdl,
2403 		    SA_ZPL_PARENT(zp->z_zfsvfs), &parent,
2404 		    sizeof (parent))) != 0)
2405 			return (error);
2406 
2407 		if ((error = zfs_zget(zp->z_zfsvfs,
2408 		    parent, &xzp)) != 0)	{
2409 			return (error);
2410 		}
2411 
2412 		check_zp = xzp;
2413 
2414 		/*
2415 		 * fixup mode to map to xattr perms
2416 		 */
2417 
2418 		if (mode & (ACE_WRITE_DATA|ACE_APPEND_DATA)) {
2419 			mode &= ~(ACE_WRITE_DATA|ACE_APPEND_DATA);
2420 			mode |= ACE_WRITE_NAMED_ATTRS;
2421 		}
2422 
2423 		if (mode & (ACE_READ_DATA|ACE_EXECUTE)) {
2424 			mode &= ~(ACE_READ_DATA|ACE_EXECUTE);
2425 			mode |= ACE_READ_NAMED_ATTRS;
2426 		}
2427 	}
2428 #endif
2429 
2430 	owner = zfs_fuid_map_id(zp->z_zfsvfs, zp->z_uid, cr, ZFS_OWNER);
2431 	/*
2432 	 * Map the bits required to the standard vnode flags VREAD|VWRITE|VEXEC
2433 	 * in needed_bits.  Map the bits mapped by working_mode (currently
2434 	 * missing) in missing_bits.
2435 	 * Call secpolicy_vnode_access2() with (needed_bits & ~checkmode),
2436 	 * needed_bits.
2437 	 */
2438 	needed_bits = 0;
2439 
2440 	working_mode = mode;
2441 	if ((working_mode & (ACE_READ_ACL|ACE_READ_ATTRIBUTES)) &&
2442 	    owner == crgetuid(cr))
2443 		working_mode &= ~(ACE_READ_ACL|ACE_READ_ATTRIBUTES);
2444 
2445 	if (working_mode & (ACE_READ_DATA|ACE_READ_NAMED_ATTRS|
2446 	    ACE_READ_ACL|ACE_READ_ATTRIBUTES|ACE_SYNCHRONIZE))
2447 		needed_bits |= VREAD;
2448 	if (working_mode & (ACE_WRITE_DATA|ACE_WRITE_NAMED_ATTRS|
2449 	    ACE_APPEND_DATA|ACE_WRITE_ATTRIBUTES|ACE_SYNCHRONIZE))
2450 		needed_bits |= VWRITE;
2451 	if (working_mode & ACE_EXECUTE)
2452 		needed_bits |= VEXEC;
2453 
2454 	if ((error = zfs_zaccess_common(check_zp, mode, &working_mode,
2455 	    &check_privs, skipaclchk, cr)) == 0) {
2456 		if (is_attr)
2457 			VN_RELE(ZTOV(xzp));
2458 		return (secpolicy_vnode_access2(cr, ZTOV(zp), owner,
2459 		    needed_bits, needed_bits));
2460 	}
2461 
2462 	if (error && !check_privs) {
2463 		if (is_attr)
2464 			VN_RELE(ZTOV(xzp));
2465 		return (error);
2466 	}
2467 
2468 	if (error && (flags & V_APPEND)) {
2469 		error = zfs_zaccess_append(zp, &working_mode, &check_privs, cr);
2470 	}
2471 
2472 	if (error && check_privs) {
2473 		mode_t		checkmode = 0;
2474 
2475 		/*
2476 		 * First check for implicit owner permission on
2477 		 * read_acl/read_attributes
2478 		 */
2479 
2480 		error = 0;
2481 		ASSERT(working_mode != 0);
2482 
2483 		if ((working_mode & (ACE_READ_ACL|ACE_READ_ATTRIBUTES) &&
2484 		    owner == crgetuid(cr)))
2485 			working_mode &= ~(ACE_READ_ACL|ACE_READ_ATTRIBUTES);
2486 
2487 		if (working_mode & (ACE_READ_DATA|ACE_READ_NAMED_ATTRS|
2488 		    ACE_READ_ACL|ACE_READ_ATTRIBUTES|ACE_SYNCHRONIZE))
2489 			checkmode |= VREAD;
2490 		if (working_mode & (ACE_WRITE_DATA|ACE_WRITE_NAMED_ATTRS|
2491 		    ACE_APPEND_DATA|ACE_WRITE_ATTRIBUTES|ACE_SYNCHRONIZE))
2492 			checkmode |= VWRITE;
2493 		if (working_mode & ACE_EXECUTE)
2494 			checkmode |= VEXEC;
2495 
2496 		error = secpolicy_vnode_access2(cr, ZTOV(check_zp), owner,
2497 		    needed_bits & ~checkmode, needed_bits);
2498 
2499 		if (error == 0 && (working_mode & ACE_WRITE_OWNER))
2500 			error = secpolicy_vnode_chown(ZTOV(check_zp), cr, owner);
2501 		if (error == 0 && (working_mode & ACE_WRITE_ACL))
2502 			error = secpolicy_vnode_setdac(ZTOV(check_zp), cr, owner);
2503 
2504 		if (error == 0 && (working_mode &
2505 		    (ACE_DELETE|ACE_DELETE_CHILD)))
2506 			error = secpolicy_vnode_remove(ZTOV(check_zp), cr);
2507 
2508 		if (error == 0 && (working_mode & ACE_SYNCHRONIZE)) {
2509 			error = secpolicy_vnode_chown(ZTOV(check_zp), cr, owner);
2510 		}
2511 		if (error == 0) {
2512 			/*
2513 			 * See if any bits other than those already checked
2514 			 * for are still present.  If so then return EACCES
2515 			 */
2516 			if (working_mode & ~(ZFS_CHECKED_MASKS)) {
2517 				error = SET_ERROR(EACCES);
2518 			}
2519 		}
2520 	} else if (error == 0) {
2521 		error = secpolicy_vnode_access2(cr, ZTOV(zp), owner,
2522 		    needed_bits, needed_bits);
2523 	}
2524 
2525 
2526 	if (is_attr)
2527 		VN_RELE(ZTOV(xzp));
2528 
2529 	return (error);
2530 }
2531 
2532 /*
2533  * Translate traditional unix VREAD/VWRITE/VEXEC mode into
2534  * native ACL format and call zfs_zaccess()
2535  */
2536 int
zfs_zaccess_rwx(znode_t * zp,mode_t mode,int flags,cred_t * cr)2537 zfs_zaccess_rwx(znode_t *zp, mode_t mode, int flags, cred_t *cr)
2538 {
2539 	return (zfs_zaccess(zp, zfs_unix_to_v4(mode >> 6), flags, B_FALSE, cr));
2540 }
2541 
2542 /*
2543  * Access function for secpolicy_vnode_setattr
2544  */
2545 int
zfs_zaccess_unix(znode_t * zp,mode_t mode,cred_t * cr)2546 zfs_zaccess_unix(znode_t *zp, mode_t mode, cred_t *cr)
2547 {
2548 	int v4_mode = zfs_unix_to_v4(mode >> 6);
2549 
2550 	return (zfs_zaccess(zp, v4_mode, 0, B_FALSE, cr));
2551 }
2552 
2553 static int
zfs_delete_final_check(znode_t * zp,znode_t * dzp,mode_t available_perms,cred_t * cr)2554 zfs_delete_final_check(znode_t *zp, znode_t *dzp,
2555     mode_t available_perms, cred_t *cr)
2556 {
2557 	int error;
2558 	uid_t downer;
2559 
2560 	downer = zfs_fuid_map_id(dzp->z_zfsvfs, dzp->z_uid, cr, ZFS_OWNER);
2561 
2562 	error = secpolicy_vnode_access2(cr, ZTOV(dzp),
2563 	    downer, available_perms, VWRITE|VEXEC);
2564 
2565 	if (error == 0)
2566 		error = zfs_sticky_remove_access(dzp, zp, cr);
2567 
2568 	return (error);
2569 }
2570 
2571 /*
2572  * Determine whether Access should be granted/deny, without
2573  * consulting least priv subsystem.
2574  *
2575  * The following chart is the recommended NFSv4 enforcement for
2576  * ability to delete an object.
2577  *
2578  *      -------------------------------------------------------
2579  *      |   Parent Dir  |           Target Object Permissions |
2580  *      |  permissions  |                                     |
2581  *      -------------------------------------------------------
2582  *      |               | ACL Allows | ACL Denies| Delete     |
2583  *      |               |  Delete    |  Delete   | unspecified|
2584  *      -------------------------------------------------------
2585  *      |  ACL Allows   | Permit     | Permit    | Permit     |
2586  *      |  DELETE_CHILD |                                     |
2587  *      -------------------------------------------------------
2588  *      |  ACL Denies   | Permit     | Deny      | Deny       |
2589  *      |  DELETE_CHILD |            |           |            |
2590  *      -------------------------------------------------------
2591  *      | ACL specifies |            |           |            |
2592  *      | only allow    | Permit     | Permit    | Permit     |
2593  *      | write and     |            |           |            |
2594  *      | execute       |            |           |            |
2595  *      -------------------------------------------------------
2596  *      | ACL denies    |            |           |            |
2597  *      | write and     | Permit     | Deny      | Deny       |
2598  *      | execute       |            |           |            |
2599  *      -------------------------------------------------------
2600  *         ^
2601  *         |
2602  *         No search privilege, can't even look up file?
2603  *
2604  */
2605 int
zfs_zaccess_delete(znode_t * dzp,znode_t * zp,cred_t * cr)2606 zfs_zaccess_delete(znode_t *dzp, znode_t *zp, cred_t *cr)
2607 {
2608 	uint32_t dzp_working_mode = 0;
2609 	uint32_t zp_working_mode = 0;
2610 	int dzp_error, zp_error;
2611 	mode_t available_perms;
2612 	boolean_t dzpcheck_privs = B_TRUE;
2613 	boolean_t zpcheck_privs = B_TRUE;
2614 
2615 	/*
2616 	 * We want specific DELETE permissions to
2617 	 * take precedence over WRITE/EXECUTE.  We don't
2618 	 * want an ACL such as this to mess us up.
2619 	 * user:joe:write_data:deny,user:joe:delete:allow
2620 	 *
2621 	 * However, deny permissions may ultimately be overridden
2622 	 * by secpolicy_vnode_access().
2623 	 *
2624 	 * We will ask for all of the necessary permissions and then
2625 	 * look at the working modes from the directory and target object
2626 	 * to determine what was found.
2627 	 */
2628 
2629 	if (zp->z_pflags & (ZFS_IMMUTABLE | ZFS_NOUNLINK))
2630 		return (SET_ERROR(EPERM));
2631 
2632 	/*
2633 	 * First row
2634 	 * If the directory permissions allow the delete, we are done.
2635 	 */
2636 	if ((dzp_error = zfs_zaccess_common(dzp, ACE_DELETE_CHILD,
2637 	    &dzp_working_mode, &dzpcheck_privs, B_FALSE, cr)) == 0)
2638 		return (0);
2639 
2640 	/*
2641 	 * If target object has delete permission then we are done
2642 	 */
2643 	if ((zp_error = zfs_zaccess_common(zp, ACE_DELETE, &zp_working_mode,
2644 	    &zpcheck_privs, B_FALSE, cr)) == 0)
2645 		return (0);
2646 
2647 	ASSERT(dzp_error && zp_error);
2648 
2649 	if (!dzpcheck_privs)
2650 		return (dzp_error);
2651 	if (!zpcheck_privs)
2652 		return (zp_error);
2653 
2654 	/*
2655 	 * Second row
2656 	 *
2657 	 * If directory returns EACCES then delete_child was denied
2658 	 * due to deny delete_child.  In this case send the request through
2659 	 * secpolicy_vnode_remove().  We don't use zfs_delete_final_check()
2660 	 * since that *could* allow the delete based on write/execute permission
2661 	 * and we want delete permissions to override write/execute.
2662 	 */
2663 
2664 	if (dzp_error == EACCES)
2665 		return (secpolicy_vnode_remove(ZTOV(dzp), cr));	/* XXXPJD: s/dzp/zp/ ? */
2666 
2667 	/*
2668 	 * Third Row
2669 	 * only need to see if we have write/execute on directory.
2670 	 */
2671 
2672 	dzp_error = zfs_zaccess_common(dzp, ACE_EXECUTE|ACE_WRITE_DATA,
2673 	    &dzp_working_mode, &dzpcheck_privs, B_FALSE, cr);
2674 
2675 	if (dzp_error != 0 && !dzpcheck_privs)
2676 		return (dzp_error);
2677 
2678 	/*
2679 	 * Fourth row
2680 	 */
2681 
2682 	available_perms = (dzp_working_mode & ACE_WRITE_DATA) ? 0 : VWRITE;
2683 	available_perms |= (dzp_working_mode & ACE_EXECUTE) ? 0 : VEXEC;
2684 
2685 	return (zfs_delete_final_check(zp, dzp, available_perms, cr));
2686 
2687 }
2688 
2689 int
zfs_zaccess_rename(znode_t * sdzp,znode_t * szp,znode_t * tdzp,znode_t * tzp,cred_t * cr)2690 zfs_zaccess_rename(znode_t *sdzp, znode_t *szp, znode_t *tdzp,
2691     znode_t *tzp, cred_t *cr)
2692 {
2693 	int add_perm;
2694 	int error;
2695 
2696 	if (szp->z_pflags & ZFS_AV_QUARANTINED)
2697 		return (SET_ERROR(EACCES));
2698 
2699 	add_perm = (ZTOV(szp)->v_type == VDIR) ?
2700 	    ACE_ADD_SUBDIRECTORY : ACE_ADD_FILE;
2701 
2702 	/*
2703 	 * Rename permissions are combination of delete permission +
2704 	 * add file/subdir permission.
2705 	 *
2706 	 * BSD operating systems also require write permission
2707 	 * on the directory being moved from one parent directory
2708 	 * to another.
2709 	 */
2710 	if (ZTOV(szp)->v_type == VDIR && ZTOV(sdzp) != ZTOV(tdzp)) {
2711 		if (error = zfs_zaccess(szp, ACE_WRITE_DATA, 0, B_FALSE, cr))
2712 			return (error);
2713 	}
2714 
2715 	/*
2716 	 * first make sure we do the delete portion.
2717 	 *
2718 	 * If that succeeds then check for add_file/add_subdir permissions
2719 	 */
2720 
2721 	if (error = zfs_zaccess_delete(sdzp, szp, cr))
2722 		return (error);
2723 
2724 	/*
2725 	 * If we have a tzp, see if we can delete it?
2726 	 */
2727 	if (tzp) {
2728 		if (error = zfs_zaccess_delete(tdzp, tzp, cr))
2729 			return (error);
2730 	}
2731 
2732 	/*
2733 	 * Now check for add permissions
2734 	 */
2735 	error = zfs_zaccess(tdzp, add_perm, 0, B_FALSE, cr);
2736 
2737 	return (error);
2738 }
2739