subr_acl_nfs4.c revision 197405
1/*-
2 * Copyright (c) 2008-2009 Edward Tomasz Napiera��a <trasz@FreeBSD.org>
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 *    notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 *    notice, this list of conditions and the following disclaimer in the
12 *    documentation and/or other materials provided with the distribution.
13 *
14 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24 * SUCH DAMAGE.
25 */
26
27/*
28 * ACL support routines specific to NFSv4 access control lists.  These are
29 * utility routines for code common across file systems implementing NFSv4
30 * ACLs.
31 */
32
33#ifdef _KERNEL
34#include <sys/cdefs.h>
35__FBSDID("$FreeBSD: head/sys/kern/subr_acl_nfs4.c 197405 2009-09-22 15:15:03Z trasz $");
36
37#include <sys/param.h>
38#include <sys/systm.h>
39#include <sys/mount.h>
40#include <sys/priv.h>
41#include <sys/vnode.h>
42#include <sys/errno.h>
43#include <sys/stat.h>
44#include <sys/acl.h>
45#else
46#include <errno.h>
47#include <assert.h>
48#include <sys/acl.h>
49#include <sys/stat.h>
50#define KASSERT(a, b) assert(a)
51#define CTASSERT(a)
52#endif /* _KERNEL */
53
54#ifdef _KERNEL
55
56static struct {
57	accmode_t accmode;
58	int mask;
59} accmode2mask[] = {{VREAD, ACL_READ_DATA},
60		    {VWRITE, ACL_WRITE_DATA},
61		    {VAPPEND, ACL_APPEND_DATA},
62		    {VEXEC, ACL_EXECUTE},
63		    {VREAD_NAMED_ATTRS, ACL_READ_NAMED_ATTRS},
64		    {VWRITE_NAMED_ATTRS, ACL_WRITE_NAMED_ATTRS},
65		    {VDELETE_CHILD, ACL_DELETE_CHILD},
66		    {VREAD_ATTRIBUTES, ACL_READ_ATTRIBUTES},
67		    {VWRITE_ATTRIBUTES, ACL_WRITE_ATTRIBUTES},
68		    {VDELETE, ACL_DELETE},
69		    {VREAD_ACL, ACL_READ_ACL},
70		    {VWRITE_ACL, ACL_WRITE_ACL},
71		    {VWRITE_OWNER, ACL_WRITE_OWNER},
72		    {VSYNCHRONIZE, ACL_SYNCHRONIZE},
73		    {0, 0}};
74
75static int
76_access_mask_from_accmode(accmode_t accmode)
77{
78	int access_mask = 0, i;
79
80	for (i = 0; accmode2mask[i].accmode != 0; i++) {
81		if (accmode & accmode2mask[i].accmode)
82			access_mask |= accmode2mask[i].mask;
83	}
84
85	return (access_mask);
86}
87
88/*
89 * Return 0, iff access is allowed, 1 otherwise.
90 */
91static int
92_acl_denies(const struct acl *aclp, int access_mask, struct ucred *cred,
93    int file_uid, int file_gid, int *denied_explicitly)
94{
95	int i;
96	const struct acl_entry *entry;
97
98	if (denied_explicitly != NULL)
99		*denied_explicitly = 0;
100
101	KASSERT(aclp->acl_cnt > 0, ("aclp->acl_cnt > 0"));
102	KASSERT(aclp->acl_cnt <= ACL_MAX_ENTRIES,
103	    ("aclp->acl_cnt <= ACL_MAX_ENTRIES"));
104
105	for (i = 0; i < aclp->acl_cnt; i++) {
106		entry = &(aclp->acl_entry[i]);
107
108		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW &&
109		    entry->ae_entry_type != ACL_ENTRY_TYPE_DENY)
110			continue;
111		if (entry->ae_flags & ACL_ENTRY_INHERIT_ONLY)
112			continue;
113		switch (entry->ae_tag) {
114		case ACL_USER_OBJ:
115			if (file_uid != cred->cr_uid)
116				continue;
117			break;
118		case ACL_USER:
119			if (entry->ae_id != cred->cr_uid)
120				continue;
121			break;
122		case ACL_GROUP_OBJ:
123			if (!groupmember(file_gid, cred))
124				continue;
125			break;
126		case ACL_GROUP:
127			if (!groupmember(entry->ae_id, cred))
128				continue;
129			break;
130		default:
131			KASSERT(entry->ae_tag == ACL_EVERYONE,
132			    ("entry->ae_tag == ACL_EVERYONE"));
133		}
134
135		if (entry->ae_entry_type == ACL_ENTRY_TYPE_DENY) {
136			if (entry->ae_perm & access_mask) {
137				if (denied_explicitly != NULL)
138					*denied_explicitly = 1;
139				return (1);
140			}
141		}
142
143		access_mask &= ~(entry->ae_perm);
144		if (access_mask == 0)
145			return (0);
146	}
147
148	return (1);
149}
150
151int
152vaccess_acl_nfs4(enum vtype type, uid_t file_uid, gid_t file_gid,
153    struct acl *aclp, accmode_t accmode, struct ucred *cred, int *privused)
154{
155	accmode_t priv_granted = 0;
156	int denied, explicitly_denied, access_mask, is_directory,
157	    must_be_owner = 0;
158
159	if (privused != NULL)
160		*privused = 0;
161
162	if (accmode & VADMIN)
163		must_be_owner = 1;
164
165	/*
166	 * Ignore VSYNCHRONIZE permission.
167	 */
168	accmode &= ~VSYNCHRONIZE;
169
170	access_mask = _access_mask_from_accmode(accmode);
171
172	if (type == VDIR)
173		is_directory = 1;
174	else
175		is_directory = 0;
176
177	/*
178	 * File owner is always allowed to read and write the ACL
179	 * and basic attributes.  This is to prevent a situation
180	 * where user would change ACL in a way that prevents him
181	 * from undoing the change.
182	 */
183	if (file_uid == cred->cr_uid)
184		access_mask &= ~(ACL_READ_ACL | ACL_WRITE_ACL |
185		    ACL_READ_ATTRIBUTES | ACL_WRITE_ATTRIBUTES);
186
187	/*
188	 * Ignore append permission for regular files; use write
189	 * permission instead.
190	 */
191	if (!is_directory && (access_mask & ACL_APPEND_DATA)) {
192		access_mask &= ~ACL_APPEND_DATA;
193		access_mask |= ACL_WRITE_DATA;
194	}
195
196	denied = _acl_denies(aclp, access_mask, cred, file_uid, file_gid,
197	    &explicitly_denied);
198
199	if (must_be_owner) {
200		if (file_uid != cred->cr_uid)
201			denied = EPERM;
202	}
203
204	if (!denied)
205		return (0);
206
207	/*
208	 * Access failed.  Iff it was not denied explicitly and
209	 * VEXPLICIT_DENY flag was specified, allow access.
210	 */
211	if ((accmode & VEXPLICIT_DENY) && explicitly_denied == 0)
212		return (0);
213
214	accmode &= ~VEXPLICIT_DENY;
215
216	/*
217	 * No match.  Try to use privileges, if there are any.
218	 */
219	if (is_directory) {
220		if ((accmode & VEXEC) && !priv_check_cred(cred,
221		    PRIV_VFS_LOOKUP, 0))
222			priv_granted |= VEXEC;
223	} else {
224		if ((accmode & VEXEC) && !priv_check_cred(cred,
225		    PRIV_VFS_EXEC, 0))
226			priv_granted |= VEXEC;
227	}
228
229	if ((accmode & VREAD) && !priv_check_cred(cred, PRIV_VFS_READ, 0))
230		priv_granted |= VREAD;
231
232	if ((accmode & (VWRITE | VAPPEND | VDELETE_CHILD)) &&
233	    !priv_check_cred(cred, PRIV_VFS_WRITE, 0))
234		priv_granted |= (VWRITE | VAPPEND | VDELETE_CHILD);
235
236	if ((accmode & VADMIN_PERMS) &&
237	    !priv_check_cred(cred, PRIV_VFS_ADMIN, 0))
238		priv_granted |= VADMIN_PERMS;
239
240	if ((accmode & VSTAT_PERMS) &&
241	    !priv_check_cred(cred, PRIV_VFS_STAT, 0))
242		priv_granted |= VSTAT_PERMS;
243
244	if ((accmode & priv_granted) == accmode) {
245		if (privused != NULL)
246			*privused = 1;
247
248		return (0);
249	}
250
251	if (accmode & (VADMIN_PERMS | VDELETE_CHILD | VDELETE))
252		denied = EPERM;
253	else
254		denied = EACCES;
255
256	return (denied);
257}
258#endif /* _KERNEL */
259
260static int
261_acl_entry_matches(struct acl_entry *entry, acl_tag_t tag, acl_perm_t perm,
262    acl_entry_type_t entry_type)
263{
264	if (entry->ae_tag != tag)
265		return (0);
266
267	if (entry->ae_id != ACL_UNDEFINED_ID)
268		return (0);
269
270	if (entry->ae_perm != perm)
271		return (0);
272
273	if (entry->ae_entry_type != entry_type)
274		return (0);
275
276	if (entry->ae_flags != 0)
277		return (0);
278
279	return (1);
280}
281
282static struct acl_entry *
283_acl_append(struct acl *aclp, acl_tag_t tag, acl_perm_t perm,
284    acl_entry_type_t entry_type)
285{
286	struct acl_entry *entry;
287
288	KASSERT(aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES,
289	    ("aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES"));
290
291	entry = &(aclp->acl_entry[aclp->acl_cnt]);
292	aclp->acl_cnt++;
293
294	entry->ae_tag = tag;
295	entry->ae_id = ACL_UNDEFINED_ID;
296	entry->ae_perm = perm;
297	entry->ae_entry_type = entry_type;
298	entry->ae_flags = 0;
299
300	return (entry);
301}
302
303static struct acl_entry *
304_acl_duplicate_entry(struct acl *aclp, int entry_index)
305{
306	int i;
307
308	KASSERT(aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES,
309	    ("aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES"));
310
311	for (i = aclp->acl_cnt; i > entry_index; i--)
312		aclp->acl_entry[i] = aclp->acl_entry[i - 1];
313
314	aclp->acl_cnt++;
315
316	return (&(aclp->acl_entry[entry_index + 1]));
317}
318
319void
320acl_nfs4_sync_acl_from_mode(struct acl *aclp, mode_t mode, int file_owner_id)
321{
322	int i, meets, must_append;
323	struct acl_entry *entry, *copy, *previous,
324	    *a1, *a2, *a3, *a4, *a5, *a6;
325	mode_t amode;
326	const int READ = 04;
327	const int WRITE = 02;
328	const int EXEC = 01;
329
330	KASSERT(aclp->acl_cnt >= 0, ("aclp->acl_cnt >= 0"));
331	KASSERT(aclp->acl_cnt <= ACL_MAX_ENTRIES,
332	    ("aclp->acl_cnt <= ACL_MAX_ENTRIES"));
333
334	/*
335	 * NFSv4 Minor Version 1, draft-ietf-nfsv4-minorversion1-03.txt
336	 *
337	 * 3.16.6.3. Applying a Mode to an Existing ACL
338	 */
339
340	/*
341	 * 1. For each ACE:
342	 */
343	for (i = 0; i < aclp->acl_cnt; i++) {
344		entry = &(aclp->acl_entry[i]);
345
346		/*
347		 * 1.1. If the type is neither ALLOW or DENY - skip.
348		 */
349		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW &&
350		    entry->ae_entry_type != ACL_ENTRY_TYPE_DENY)
351			continue;
352
353		/*
354		 * 1.2. If ACL_ENTRY_INHERIT_ONLY is set - skip.
355		 */
356		if (entry->ae_flags & ACL_ENTRY_INHERIT_ONLY)
357			continue;
358
359		/*
360		 * 1.3. If ACL_ENTRY_FILE_INHERIT or ACL_ENTRY_DIRECTORY_INHERIT
361		 *      are set:
362		 */
363		if (entry->ae_flags &
364		    (ACL_ENTRY_FILE_INHERIT | ACL_ENTRY_DIRECTORY_INHERIT)) {
365			/*
366			 * 1.3.1. A copy of the current ACE is made, and placed
367			 *        in the ACL immediately following the current
368			 *        ACE.
369			 */
370			copy = _acl_duplicate_entry(aclp, i);
371
372			/*
373			 * 1.3.2. In the first ACE, the flag
374			 *        ACL_ENTRY_INHERIT_ONLY is set.
375			 */
376			entry->ae_flags |= ACL_ENTRY_INHERIT_ONLY;
377
378			/*
379			 * 1.3.3. In the second ACE, the following flags
380			 *        are cleared:
381			 *        ACL_ENTRY_FILE_INHERIT,
382			 *        ACL_ENTRY_DIRECTORY_INHERIT,
383			 *        ACL_ENTRY_NO_PROPAGATE_INHERIT.
384			 */
385			copy->ae_flags &= ~(ACL_ENTRY_FILE_INHERIT |
386			    ACL_ENTRY_DIRECTORY_INHERIT |
387			    ACL_ENTRY_NO_PROPAGATE_INHERIT);
388
389			/*
390			 * The algorithm continues on with the second ACE.
391			 */
392			i++;
393			entry = copy;
394		}
395
396		/*
397		 * 1.4. If it's owner@, group@ or everyone@ entry, clear
398		 *      ACL_READ_DATA, ACL_WRITE_DATA, ACL_APPEND_DATA
399		 *      and ACL_EXECUTE.  Continue to the next entry.
400		 */
401		if (entry->ae_tag == ACL_USER_OBJ ||
402		    entry->ae_tag == ACL_GROUP_OBJ ||
403		    entry->ae_tag == ACL_EVERYONE) {
404			entry->ae_perm &= ~(ACL_READ_DATA | ACL_WRITE_DATA |
405			    ACL_APPEND_DATA | ACL_EXECUTE);
406			continue;
407		}
408
409		/*
410		 * 1.5. Otherwise, if the "who" field did not match one
411		 *      of OWNER@, GROUP@, EVERYONE@:
412		 *
413		 * 1.5.1. If the type is ALLOW, check the preceding ACE.
414		 *        If it does not meet all of the following criteria:
415		 */
416		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW)
417			continue;
418
419		meets = 0;
420		if (i > 0) {
421			meets = 1;
422			previous = &(aclp->acl_entry[i - 1]);
423
424			/*
425			 * 1.5.1.1. The type field is DENY,
426			 */
427			if (previous->ae_entry_type != ACL_ENTRY_TYPE_DENY)
428				meets = 0;
429
430			/*
431			 * 1.5.1.2. The "who" field is the same as the current
432			 *          ACE,
433			 *
434			 * 1.5.1.3. The flag bit ACE4_IDENTIFIER_GROUP
435			 *          is the same as it is in the current ACE,
436			 *          and no other flag bits are set,
437			 */
438			if (previous->ae_id != entry->ae_id ||
439			    previous->ae_tag != entry->ae_tag)
440				meets = 0;
441
442			if (previous->ae_flags)
443				meets = 0;
444
445			/*
446			 * 1.5.1.4. The mask bits are a subset of the mask bits
447			 *          of the current ACE, and are also subset of
448			 *          the following: ACL_READ_DATA,
449			 *          ACL_WRITE_DATA, ACL_APPEND_DATA, ACL_EXECUTE
450			 */
451			if (previous->ae_perm & ~(entry->ae_perm))
452				meets = 0;
453
454			if (previous->ae_perm & ~(ACL_READ_DATA |
455			    ACL_WRITE_DATA | ACL_APPEND_DATA | ACL_EXECUTE))
456				meets = 0;
457		}
458
459		if (!meets) {
460			/*
461		 	 * Then the ACE of type DENY, with a who equal
462			 * to the current ACE, flag bits equal to
463			 * (<current ACE flags> & <ACE_IDENTIFIER_GROUP>)
464			 * and no mask bits, is prepended.
465			 */
466			previous = entry;
467			entry = _acl_duplicate_entry(aclp, i);
468
469			/* Adjust counter, as we've just added an entry. */
470			i++;
471
472			previous->ae_tag = entry->ae_tag;
473			previous->ae_id = entry->ae_id;
474			previous->ae_flags = entry->ae_flags;
475			previous->ae_perm = 0;
476			previous->ae_entry_type = ACL_ENTRY_TYPE_DENY;
477		}
478
479		/*
480		 * 1.5.2. The following modifications are made to the prepended
481		 *        ACE.  The intent is to mask the following ACE
482		 *        to disallow ACL_READ_DATA, ACL_WRITE_DATA,
483		 *        ACL_APPEND_DATA, or ACL_EXECUTE, based upon the group
484		 *        permissions of the new mode.  As a special case,
485		 *        if the ACE matches the current owner of the file,
486		 *        the owner bits are used, rather than the group bits.
487		 *        This is reflected in the algorithm below.
488		 */
489		amode = mode >> 3;
490
491		/*
492		 * If ACE4_IDENTIFIER_GROUP is not set, and the "who" field
493		 * in ACE matches the owner of the file, we shift amode three
494		 * more bits, in order to have the owner permission bits
495		 * placed in the three low order bits of amode.
496		 */
497		if (entry->ae_tag == ACL_USER && entry->ae_id == file_owner_id)
498			amode = amode >> 3;
499
500		if (entry->ae_perm & ACL_READ_DATA) {
501			if (amode & READ)
502				previous->ae_perm &= ~ACL_READ_DATA;
503			else
504				previous->ae_perm |= ACL_READ_DATA;
505		}
506
507		if (entry->ae_perm & ACL_WRITE_DATA) {
508			if (amode & WRITE)
509				previous->ae_perm &= ~ACL_WRITE_DATA;
510			else
511				previous->ae_perm |= ACL_WRITE_DATA;
512		}
513
514		if (entry->ae_perm & ACL_APPEND_DATA) {
515			if (amode & WRITE)
516				previous->ae_perm &= ~ACL_APPEND_DATA;
517			else
518				previous->ae_perm |= ACL_APPEND_DATA;
519		}
520
521		if (entry->ae_perm & ACL_EXECUTE) {
522			if (amode & EXEC)
523				previous->ae_perm &= ~ACL_EXECUTE;
524			else
525				previous->ae_perm |= ACL_EXECUTE;
526		}
527
528		/*
529		 * 1.5.3. If ACE4_IDENTIFIER_GROUP is set in the flags
530		 *        of the ALLOW ace:
531		 *
532		 * XXX: This point is not there in the Falkner's draft.
533		 */
534		if (entry->ae_tag == ACL_GROUP &&
535		    entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW) {
536			mode_t extramode, ownermode;
537			extramode = (mode >> 3) & 07;
538			ownermode = mode >> 6;
539			extramode &= ~ownermode;
540
541			if (extramode) {
542				if (extramode & READ) {
543					entry->ae_perm &= ~ACL_READ_DATA;
544					previous->ae_perm &= ~ACL_READ_DATA;
545				}
546
547				if (extramode & WRITE) {
548					entry->ae_perm &=
549					    ~(ACL_WRITE_DATA | ACL_APPEND_DATA);
550					previous->ae_perm &=
551					    ~(ACL_WRITE_DATA | ACL_APPEND_DATA);
552				}
553
554				if (extramode & EXEC) {
555					entry->ae_perm &= ~ACL_EXECUTE;
556					previous->ae_perm &= ~ACL_EXECUTE;
557				}
558			}
559		}
560	}
561
562	/*
563	 * 2. If there at least six ACEs, the final six ACEs are examined.
564	 *    If they are not equal to what we want, append six ACEs.
565	 */
566	must_append = 0;
567	if (aclp->acl_cnt < 6) {
568		must_append = 1;
569	} else {
570		a6 = &(aclp->acl_entry[aclp->acl_cnt - 1]);
571		a5 = &(aclp->acl_entry[aclp->acl_cnt - 2]);
572		a4 = &(aclp->acl_entry[aclp->acl_cnt - 3]);
573		a3 = &(aclp->acl_entry[aclp->acl_cnt - 4]);
574		a2 = &(aclp->acl_entry[aclp->acl_cnt - 5]);
575		a1 = &(aclp->acl_entry[aclp->acl_cnt - 6]);
576
577		if (!_acl_entry_matches(a1, ACL_USER_OBJ, 0,
578		    ACL_ENTRY_TYPE_DENY))
579			must_append = 1;
580		if (!_acl_entry_matches(a2, ACL_USER_OBJ, ACL_WRITE_ACL |
581		    ACL_WRITE_OWNER | ACL_WRITE_ATTRIBUTES |
582		    ACL_WRITE_NAMED_ATTRS, ACL_ENTRY_TYPE_ALLOW))
583			must_append = 1;
584		if (!_acl_entry_matches(a3, ACL_GROUP_OBJ, 0,
585		    ACL_ENTRY_TYPE_DENY))
586			must_append = 1;
587		if (!_acl_entry_matches(a4, ACL_GROUP_OBJ, 0,
588		    ACL_ENTRY_TYPE_ALLOW))
589			must_append = 1;
590		if (!_acl_entry_matches(a5, ACL_EVERYONE, ACL_WRITE_ACL |
591		    ACL_WRITE_OWNER | ACL_WRITE_ATTRIBUTES |
592		    ACL_WRITE_NAMED_ATTRS, ACL_ENTRY_TYPE_DENY))
593			must_append = 1;
594		if (!_acl_entry_matches(a6, ACL_EVERYONE, ACL_READ_ACL |
595		    ACL_READ_ATTRIBUTES | ACL_READ_NAMED_ATTRS |
596		    ACL_SYNCHRONIZE, ACL_ENTRY_TYPE_ALLOW))
597			must_append = 1;
598	}
599
600	if (must_append) {
601		KASSERT(aclp->acl_cnt + 6 <= ACL_MAX_ENTRIES,
602		    ("aclp->acl_cnt <= ACL_MAX_ENTRIES"));
603
604		a1 = _acl_append(aclp, ACL_USER_OBJ, 0, ACL_ENTRY_TYPE_DENY);
605		a2 = _acl_append(aclp, ACL_USER_OBJ, ACL_WRITE_ACL |
606		    ACL_WRITE_OWNER | ACL_WRITE_ATTRIBUTES |
607		    ACL_WRITE_NAMED_ATTRS, ACL_ENTRY_TYPE_ALLOW);
608		a3 = _acl_append(aclp, ACL_GROUP_OBJ, 0, ACL_ENTRY_TYPE_DENY);
609		a4 = _acl_append(aclp, ACL_GROUP_OBJ, 0, ACL_ENTRY_TYPE_ALLOW);
610		a5 = _acl_append(aclp, ACL_EVERYONE, ACL_WRITE_ACL |
611		    ACL_WRITE_OWNER | ACL_WRITE_ATTRIBUTES |
612		    ACL_WRITE_NAMED_ATTRS, ACL_ENTRY_TYPE_DENY);
613		a6 = _acl_append(aclp, ACL_EVERYONE, ACL_READ_ACL |
614		    ACL_READ_ATTRIBUTES | ACL_READ_NAMED_ATTRS |
615		    ACL_SYNCHRONIZE, ACL_ENTRY_TYPE_ALLOW);
616
617		KASSERT(a1 != NULL && a2 != NULL && a3 != NULL && a4 != NULL &&
618		    a5 != NULL && a6 != NULL, ("couldn't append to ACL."));
619	}
620
621	/*
622	 * 3. The final six ACEs are adjusted according to the incoming mode.
623	 */
624	if (mode & S_IRUSR)
625		a2->ae_perm |= ACL_READ_DATA;
626	else
627		a1->ae_perm |= ACL_READ_DATA;
628	if (mode & S_IWUSR)
629		a2->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
630	else
631		a1->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
632	if (mode & S_IXUSR)
633		a2->ae_perm |= ACL_EXECUTE;
634	else
635		a1->ae_perm |= ACL_EXECUTE;
636
637	if (mode & S_IRGRP)
638		a4->ae_perm |= ACL_READ_DATA;
639	else
640		a3->ae_perm |= ACL_READ_DATA;
641	if (mode & S_IWGRP)
642		a4->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
643	else
644		a3->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
645	if (mode & S_IXGRP)
646		a4->ae_perm |= ACL_EXECUTE;
647	else
648		a3->ae_perm |= ACL_EXECUTE;
649
650	if (mode & S_IROTH)
651		a6->ae_perm |= ACL_READ_DATA;
652	else
653		a5->ae_perm |= ACL_READ_DATA;
654	if (mode & S_IWOTH)
655		a6->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
656	else
657		a5->ae_perm |= (ACL_WRITE_DATA | ACL_APPEND_DATA);
658	if (mode & S_IXOTH)
659		a6->ae_perm |= ACL_EXECUTE;
660	else
661		a5->ae_perm |= ACL_EXECUTE;
662}
663
664void
665acl_nfs4_sync_mode_from_acl(mode_t *_mode, const struct acl *aclp)
666{
667	int i;
668	mode_t old_mode = *_mode, mode = 0, seen = 0;
669	const struct acl_entry *entry;
670
671	KASSERT(aclp->acl_cnt > 0, ("aclp->acl_cnt > 0"));
672	KASSERT(aclp->acl_cnt <= ACL_MAX_ENTRIES,
673	    ("aclp->acl_cnt <= ACL_MAX_ENTRIES"));
674
675	/*
676	 * NFSv4 Minor Version 1, draft-ietf-nfsv4-minorversion1-03.txt
677	 *
678	 * 3.16.6.1. Recomputing mode upon SETATTR of ACL
679	 */
680
681	for (i = 0; i < aclp->acl_cnt; i++) {
682		entry = &(aclp->acl_entry[i]);
683
684		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW &&
685		    entry->ae_entry_type != ACL_ENTRY_TYPE_DENY)
686			continue;
687
688		if (entry->ae_flags & ACL_ENTRY_INHERIT_ONLY)
689			continue;
690
691		if (entry->ae_tag == ACL_USER_OBJ) {
692			if ((entry->ae_perm & ACL_READ_DATA) &&
693			    ((seen & S_IRUSR) == 0)) {
694				seen |= S_IRUSR;
695				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
696					mode |= S_IRUSR;
697			}
698			if ((entry->ae_perm & ACL_WRITE_DATA) &&
699			     ((seen & S_IWUSR) == 0)) {
700				seen |= S_IWUSR;
701				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
702					mode |= S_IWUSR;
703			}
704			if ((entry->ae_perm & ACL_EXECUTE) &&
705			    ((seen & S_IXUSR) == 0)) {
706				seen |= S_IXUSR;
707				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
708					mode |= S_IXUSR;
709			}
710		} else if (entry->ae_tag == ACL_GROUP_OBJ) {
711			if ((entry->ae_perm & ACL_READ_DATA) &&
712			    ((seen & S_IRGRP) == 0)) {
713				seen |= S_IRGRP;
714				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
715					mode |= S_IRGRP;
716			}
717			if ((entry->ae_perm & ACL_WRITE_DATA) &&
718			    ((seen & S_IWGRP) == 0)) {
719				seen |= S_IWGRP;
720				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
721					mode |= S_IWGRP;
722			}
723			if ((entry->ae_perm & ACL_EXECUTE) &&
724			    ((seen & S_IXGRP) == 0)) {
725				seen |= S_IXGRP;
726				if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
727					mode |= S_IXGRP;
728			}
729		} else if (entry->ae_tag == ACL_EVERYONE) {
730			if (entry->ae_perm & ACL_READ_DATA) {
731				if ((seen & S_IRUSR) == 0) {
732					seen |= S_IRUSR;
733					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
734						mode |= S_IRUSR;
735				}
736				if ((seen & S_IRGRP) == 0) {
737					seen |= S_IRGRP;
738					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
739						mode |= S_IRGRP;
740				}
741				if ((seen & S_IROTH) == 0) {
742					seen |= S_IROTH;
743					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
744						mode |= S_IROTH;
745				}
746			}
747			if (entry->ae_perm & ACL_WRITE_DATA) {
748				if ((seen & S_IWUSR) == 0) {
749					seen |= S_IWUSR;
750					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
751						mode |= S_IWUSR;
752				}
753				if ((seen & S_IWGRP) == 0) {
754					seen |= S_IWGRP;
755					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
756						mode |= S_IWGRP;
757				}
758				if ((seen & S_IWOTH) == 0) {
759					seen |= S_IWOTH;
760					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
761						mode |= S_IWOTH;
762				}
763			}
764			if (entry->ae_perm & ACL_EXECUTE) {
765				if ((seen & S_IXUSR) == 0) {
766					seen |= S_IXUSR;
767					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
768						mode |= S_IXUSR;
769				}
770				if ((seen & S_IXGRP) == 0) {
771					seen |= S_IXGRP;
772					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
773						mode |= S_IXGRP;
774				}
775				if ((seen & S_IXOTH) == 0) {
776					seen |= S_IXOTH;
777					if (entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
778						mode |= S_IXOTH;
779				}
780			}
781		}
782	}
783
784	*_mode = mode | (old_mode & ACL_PRESERVE_MASK);
785}
786
787void
788acl_nfs4_compute_inherited_acl(const struct acl *parent_aclp,
789    struct acl *child_aclp, mode_t mode, int file_owner_id,
790    int is_directory)
791{
792	int i, flags;
793	const struct acl_entry *parent_entry;
794	struct acl_entry *entry, *copy;
795
796	KASSERT(child_aclp->acl_cnt == 0, ("child_aclp->acl_cnt == 0"));
797	KASSERT(parent_aclp->acl_cnt > 0, ("parent_aclp->acl_cnt > 0"));
798	KASSERT(parent_aclp->acl_cnt <= ACL_MAX_ENTRIES,
799	    ("parent_aclp->acl_cnt <= ACL_MAX_ENTRIES"));
800
801	/*
802	 * NFSv4 Minor Version 1, draft-ietf-nfsv4-minorversion1-03.txt
803	 *
804	 * 3.16.6.2. Applying the mode given to CREATE or OPEN
805	 *           to an inherited ACL
806	 */
807
808	/*
809	 * 1. Form an ACL that is the concatenation of all inheritable ACEs.
810	 */
811	for (i = 0; i < parent_aclp->acl_cnt; i++) {
812		parent_entry = &(parent_aclp->acl_entry[i]);
813		flags = parent_entry->ae_flags;
814
815		/*
816		 * Entry is not inheritable at all.
817		 */
818		if ((flags & (ACL_ENTRY_DIRECTORY_INHERIT |
819		    ACL_ENTRY_FILE_INHERIT)) == 0)
820			continue;
821
822		/*
823		 * We're creating a file, but entry is not inheritable
824		 * by files.
825		 */
826		if (!is_directory && (flags & ACL_ENTRY_FILE_INHERIT) == 0)
827			continue;
828
829		/*
830		 * Entry is inheritable only by files, but has NO_PROPAGATE
831		 * flag set, and we're creating a directory, so it wouldn't
832		 * propagate to any file in that directory anyway.
833		 */
834		if (is_directory &&
835		    (flags & ACL_ENTRY_DIRECTORY_INHERIT) == 0 &&
836		    (flags & ACL_ENTRY_NO_PROPAGATE_INHERIT))
837			continue;
838
839		KASSERT(child_aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES,
840		    ("child_aclp->acl_cnt + 1 <= ACL_MAX_ENTRIES"));
841		child_aclp->acl_entry[child_aclp->acl_cnt] = *parent_entry;
842		child_aclp->acl_cnt++;
843	}
844
845	/*
846	 * 2. For each entry in the new ACL, adjust its flags, possibly
847	 *    creating two entries in place of one.
848	 */
849	for (i = 0; i < child_aclp->acl_cnt; i++) {
850		entry = &(child_aclp->acl_entry[i]);
851
852		/*
853		 * This is not in the specification, but SunOS
854		 * apparently does that.
855		 */
856		if (((entry->ae_flags & ACL_ENTRY_NO_PROPAGATE_INHERIT) ||
857		    !is_directory) &&
858		    entry->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
859			entry->ae_perm &= ~(ACL_WRITE_ACL | ACL_WRITE_OWNER);
860
861		/*
862		 * 2.A. If the ACL_ENTRY_NO_PROPAGATE_INHERIT is set, or if the object
863		 *      being created is not a directory, then clear the
864		 *      following flags: ACL_ENTRY_NO_PROPAGATE_INHERIT,
865		 *      ACL_ENTRY_FILE_INHERIT, ACL_ENTRY_DIRECTORY_INHERIT,
866		 *      ACL_ENTRY_INHERIT_ONLY.
867		 */
868		if (entry->ae_flags & ACL_ENTRY_NO_PROPAGATE_INHERIT ||
869		    !is_directory) {
870			entry->ae_flags &= ~(ACL_ENTRY_NO_PROPAGATE_INHERIT |
871			ACL_ENTRY_FILE_INHERIT | ACL_ENTRY_DIRECTORY_INHERIT |
872			ACL_ENTRY_INHERIT_ONLY);
873
874			/*
875			 * Continue on to the next ACE.
876			 */
877			continue;
878		}
879
880		/*
881		 * 2.B. If the object is a directory and ACL_ENTRY_FILE_INHERIT
882		 *      is set, but ACL_ENTRY_NO_PROPAGATE_INHERIT is not set, ensure
883		 *      that ACL_ENTRY_INHERIT_ONLY is set.  Continue to the
884		 *      next ACE.  Otherwise...
885		 */
886		/*
887		 * XXX: Read it again and make sure what does the "otherwise"
888		 *      apply to.
889		 */
890		if (is_directory &&
891		    (entry->ae_flags & ACL_ENTRY_FILE_INHERIT) &&
892		    ((entry->ae_flags & ACL_ENTRY_DIRECTORY_INHERIT) == 0)) {
893			entry->ae_flags |= ACL_ENTRY_INHERIT_ONLY;
894			continue;
895		}
896
897		/*
898		 * 2.C. If the type of the ACE is neither ALLOW nor deny,
899		 *      then continue.
900		 */
901		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW &&
902		    entry->ae_entry_type != ACL_ENTRY_TYPE_DENY)
903			continue;
904
905		/*
906		 * 2.D. Copy the original ACE into a second, adjacent ACE.
907		 */
908		copy = _acl_duplicate_entry(child_aclp, i);
909
910		/*
911		 * 2.E. On the first ACE, ensure that ACL_ENTRY_INHERIT_ONLY
912		 *      is set.
913		 */
914		entry->ae_flags |= ACL_ENTRY_INHERIT_ONLY;
915
916		/*
917		 * 2.F. On the second ACE, clear the following flags:
918		 *      ACL_ENTRY_NO_PROPAGATE_INHERIT, ACL_ENTRY_FILE_INHERIT,
919		 *      ACL_ENTRY_DIRECTORY_INHERIT, ACL_ENTRY_INHERIT_ONLY.
920		 */
921		copy->ae_flags &= ~(ACL_ENTRY_NO_PROPAGATE_INHERIT |
922		    ACL_ENTRY_FILE_INHERIT | ACL_ENTRY_DIRECTORY_INHERIT |
923		    ACL_ENTRY_INHERIT_ONLY);
924
925		/*
926		 * 2.G. On the second ACE, if the type is ALLOW,
927		 *      an implementation MAY clear the following
928		 *      mask bits: ACL_WRITE_ACL, ACL_WRITE_OWNER.
929		 */
930		if (copy->ae_entry_type == ACL_ENTRY_TYPE_ALLOW)
931			copy->ae_perm &= ~(ACL_WRITE_ACL | ACL_WRITE_OWNER);
932
933		/*
934		 * Increment the counter to skip the copied entry.
935		 */
936		i++;
937	}
938
939	/*
940	 * 3. To ensure that the mode is honored, apply the algorithm describe
941	 *    in Section 2.16.6.3, using the mode that is to be used for file
942	 *    creation.
943	 */
944	acl_nfs4_sync_acl_from_mode(child_aclp, mode, file_owner_id);
945}
946
947#ifdef _KERNEL
948static int
949_acls_are_equal(const struct acl *a, const struct acl *b)
950{
951	int i;
952	const struct acl_entry *entrya, *entryb;
953
954	if (a->acl_cnt != b->acl_cnt)
955		return (0);
956
957	for (i = 0; i < b->acl_cnt; i++) {
958		entrya = &(a->acl_entry[i]);
959		entryb = &(b->acl_entry[i]);
960
961		if (entrya->ae_tag != entryb->ae_tag ||
962		    entrya->ae_id != entryb->ae_id ||
963		    entrya->ae_perm != entryb->ae_perm ||
964		    entrya->ae_entry_type != entryb->ae_entry_type ||
965		    entrya->ae_flags != entryb->ae_flags)
966			return (0);
967	}
968
969	return (1);
970}
971
972/*
973 * This routine is used to determine whether to remove entry_type attribute
974 * that stores ACL contents.
975 */
976int
977acl_nfs4_is_trivial(const struct acl *aclp, int file_owner_id)
978{
979	int trivial;
980	mode_t tmpmode = 0;
981	struct acl *tmpaclp;
982
983	if (aclp->acl_cnt != 6)
984		return (0);
985
986	/*
987	 * Compute the mode from the ACL, then compute new ACL from that mode.
988	 * If the ACLs are identical, then the ACL is trivial.
989	 *
990	 * XXX: I guess there is a faster way to do this.  However, even
991	 *      this slow implementation significantly speeds things up
992	 *      for files that don't have any entry_type ACL entries - it's
993	 *      critical for performance to not use EA when they are not
994	 *      needed.
995	 */
996	tmpaclp = acl_alloc(M_WAITOK | M_ZERO);
997	acl_nfs4_sync_mode_from_acl(&tmpmode, aclp);
998	acl_nfs4_sync_acl_from_mode(tmpaclp, tmpmode, file_owner_id);
999	trivial = _acls_are_equal(aclp, tmpaclp);
1000	acl_free(tmpaclp);
1001
1002	return (trivial);
1003}
1004#endif /* _KERNEL */
1005
1006int
1007acl_nfs4_check(const struct acl *aclp, int is_directory)
1008{
1009	int i;
1010	const struct acl_entry *entry;
1011
1012	/*
1013	 * The spec doesn't seem to say anything about ACL validity.
1014	 * It seems there is not much to do here.  There is even no need
1015	 * to count "owner@" or "everyone@" (ACL_USER_OBJ and ACL_EVERYONE)
1016	 * entries, as there can be several of them and that's perfectly
1017	 * valid.  There can be none of them too.  Really.
1018	 */
1019
1020	if (aclp->acl_cnt > ACL_MAX_ENTRIES || aclp->acl_cnt <= 0)
1021		return (EINVAL);
1022
1023	for (i = 0; i < aclp->acl_cnt; i++) {
1024		entry = &(aclp->acl_entry[i]);
1025
1026		switch (entry->ae_tag) {
1027		case ACL_USER_OBJ:
1028		case ACL_GROUP_OBJ:
1029		case ACL_EVERYONE:
1030			if (entry->ae_id != ACL_UNDEFINED_ID)
1031				return (EINVAL);
1032			break;
1033
1034		case ACL_USER:
1035		case ACL_GROUP:
1036			if (entry->ae_id == ACL_UNDEFINED_ID)
1037				return (EINVAL);
1038			break;
1039
1040		default:
1041			return (EINVAL);
1042		}
1043
1044		if ((entry->ae_perm | ACL_NFS4_PERM_BITS) != ACL_NFS4_PERM_BITS)
1045			return (EINVAL);
1046
1047		/*
1048		 * Disallow ACL_ENTRY_TYPE_AUDIT and ACL_ENTRY_TYPE_ALARM for now.
1049		 */
1050		if (entry->ae_entry_type != ACL_ENTRY_TYPE_ALLOW &&
1051		    entry->ae_entry_type != ACL_ENTRY_TYPE_DENY)
1052			return (EINVAL);
1053
1054		if ((entry->ae_flags | ACL_FLAGS_BITS) != ACL_FLAGS_BITS)
1055			return (EINVAL);
1056
1057		/* Disallow unimplemented flags. */
1058		if (entry->ae_flags & (ACL_ENTRY_SUCCESSFUL_ACCESS |
1059		    ACL_ENTRY_FAILED_ACCESS))
1060			return (EINVAL);
1061
1062		/* Disallow flags not allowed for ordinary files. */
1063		if (!is_directory) {
1064			if (entry->ae_flags & (ACL_ENTRY_FILE_INHERIT |
1065			    ACL_ENTRY_DIRECTORY_INHERIT |
1066			    ACL_ENTRY_NO_PROPAGATE_INHERIT | ACL_ENTRY_INHERIT_ONLY))
1067				return (EINVAL);
1068		}
1069	}
1070
1071	return (0);
1072}
1073