cifsacl.c 34.6 KB
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/*
 *   fs/cifs/cifsacl.c
 *
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 *   Copyright (C) International Business Machines  Corp., 2007,2008
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 *   Author(s): Steve French (sfrench@us.ibm.com)
 *
 *   Contains the routines for mapping CIFS/NTFS ACLs
 *
 *   This library is free software; you can redistribute it and/or modify
 *   it under the terms of the GNU Lesser General Public License as published
 *   by the Free Software Foundation; either version 2.1 of the License, or
 *   (at your option) any later version.
 *
 *   This library is distributed in the hope that it will be useful,
 *   but WITHOUT ANY WARRANTY; without even the implied warranty of
 *   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See
 *   the GNU Lesser General Public License for more details.
 *
 *   You should have received a copy of the GNU Lesser General Public License
 *   along with this library; if not, write to the Free Software
 *   Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
 */

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#include <linux/fs.h>
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#include <linux/slab.h>
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#include <linux/string.h>
#include <linux/keyctl.h>
#include <linux/key-type.h>
#include <keys/user-type.h>
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#include "cifspdu.h"
#include "cifsglob.h"
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#include "cifsacl.h"
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#include "cifsproto.h"
#include "cifs_debug.h"

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/* security id for everyone/world system group */
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static const struct cifs_sid sid_everyone = {
	1, 1, {0, 0, 0, 0, 0, 1}, {0} };
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/* security id for Authenticated Users system group */
static const struct cifs_sid sid_authusers = {
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	1, 1, {0, 0, 0, 0, 0, 5}, {__constant_cpu_to_le32(11)} };
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/* group users */
S
Steve French 已提交
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static const struct cifs_sid sid_user = {1, 2 , {0, 0, 0, 0, 0, 5}, {} };
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const struct cred *root_cred;

static void
shrink_idmap_tree(struct rb_root *root, int nr_to_scan, int *nr_rem,
			int *nr_del)
{
	struct rb_node *node;
	struct rb_node *tmp;
	struct cifs_sid_id *psidid;

	node = rb_first(root);
	while (node) {
		tmp = node;
		node = rb_next(tmp);
		psidid = rb_entry(tmp, struct cifs_sid_id, rbnode);
		if (nr_to_scan == 0 || *nr_del == nr_to_scan)
			++(*nr_rem);
		else {
			if (time_after(jiffies, psidid->time + SID_MAP_EXPIRE)
						&& psidid->refcount == 0) {
				rb_erase(tmp, root);
				++(*nr_del);
			} else
				++(*nr_rem);
		}
	}
}
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/*
 * Run idmap cache shrinker.
 */
static int
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cifs_idmap_shrinker(struct shrinker *shrink, struct shrink_control *sc)
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{
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	int nr_to_scan = sc->nr_to_scan;
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	int nr_del = 0;
	int nr_rem = 0;
	struct rb_root *root;

	root = &uidtree;
	spin_lock(&siduidlock);
	shrink_idmap_tree(root, nr_to_scan, &nr_rem, &nr_del);
	spin_unlock(&siduidlock);

	root = &gidtree;
	spin_lock(&sidgidlock);
	shrink_idmap_tree(root, nr_to_scan, &nr_rem, &nr_del);
	spin_unlock(&sidgidlock);

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	root = &siduidtree;
	spin_lock(&uidsidlock);
	shrink_idmap_tree(root, nr_to_scan, &nr_rem, &nr_del);
	spin_unlock(&uidsidlock);

	root = &sidgidtree;
	spin_lock(&gidsidlock);
	shrink_idmap_tree(root, nr_to_scan, &nr_rem, &nr_del);
	spin_unlock(&gidsidlock);

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	return nr_rem;
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}

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static void
sid_rb_insert(struct rb_root *root, unsigned long cid,
		struct cifs_sid_id **psidid, char *typestr)
{
	char *strptr;
	struct rb_node *node = root->rb_node;
	struct rb_node *parent = NULL;
	struct rb_node **linkto = &(root->rb_node);
	struct cifs_sid_id *lsidid;

	while (node) {
		lsidid = rb_entry(node, struct cifs_sid_id, rbnode);
		parent = node;
		if (cid > lsidid->id) {
			linkto = &(node->rb_left);
			node = node->rb_left;
		}
		if (cid < lsidid->id) {
			linkto = &(node->rb_right);
			node = node->rb_right;
		}
	}

	(*psidid)->id = cid;
	(*psidid)->time = jiffies - (SID_MAP_RETRY + 1);
	(*psidid)->refcount = 0;

	sprintf((*psidid)->sidstr, "%s", typestr);
	strptr = (*psidid)->sidstr + strlen((*psidid)->sidstr);
	sprintf(strptr, "%ld", cid);

	clear_bit(SID_ID_PENDING, &(*psidid)->state);
	clear_bit(SID_ID_MAPPED, &(*psidid)->state);

	rb_link_node(&(*psidid)->rbnode, parent, linkto);
	rb_insert_color(&(*psidid)->rbnode, root);
}

static struct cifs_sid_id *
sid_rb_search(struct rb_root *root, unsigned long cid)
{
	struct rb_node *node = root->rb_node;
	struct cifs_sid_id *lsidid;

	while (node) {
		lsidid = rb_entry(node, struct cifs_sid_id, rbnode);
		if (cid > lsidid->id)
			node = node->rb_left;
		else if (cid < lsidid->id)
			node = node->rb_right;
		else /* node found */
			return lsidid;
	}

	return NULL;
}

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static struct shrinker cifs_shrinker = {
	.shrink = cifs_idmap_shrinker,
	.seeks = DEFAULT_SEEKS,
};

static int
cifs_idmap_key_instantiate(struct key *key, const void *data, size_t datalen)
{
	char *payload;

	payload = kmalloc(datalen, GFP_KERNEL);
	if (!payload)
		return -ENOMEM;

	memcpy(payload, data, datalen);
	key->payload.data = payload;
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	key->datalen = datalen;
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	return 0;
}

static inline void
cifs_idmap_key_destroy(struct key *key)
{
	kfree(key->payload.data);
}

struct key_type cifs_idmap_key_type = {
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	.name        = "cifs.idmap",
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	.instantiate = cifs_idmap_key_instantiate,
	.destroy     = cifs_idmap_key_destroy,
	.describe    = user_describe,
	.match       = user_match,
};

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static void
sid_to_str(struct cifs_sid *sidptr, char *sidstr)
{
	int i;
	unsigned long saval;
	char *strptr;

	strptr = sidstr;

	sprintf(strptr, "%s", "S");
	strptr = sidstr + strlen(sidstr);

	sprintf(strptr, "-%d", sidptr->revision);
	strptr = sidstr + strlen(sidstr);

	for (i = 0; i < 6; ++i) {
		if (sidptr->authority[i]) {
			sprintf(strptr, "-%d", sidptr->authority[i]);
			strptr = sidstr + strlen(sidstr);
		}
	}

	for (i = 0; i < sidptr->num_subauth; ++i) {
		saval = le32_to_cpu(sidptr->sub_auth[i]);
		sprintf(strptr, "-%ld", saval);
		strptr = sidstr + strlen(sidstr);
	}
}

static void
id_rb_insert(struct rb_root *root, struct cifs_sid *sidptr,
		struct cifs_sid_id **psidid, char *typestr)
{
	int rc;
	char *strptr;
	struct rb_node *node = root->rb_node;
	struct rb_node *parent = NULL;
	struct rb_node **linkto = &(root->rb_node);
	struct cifs_sid_id *lsidid;

	while (node) {
		lsidid = rb_entry(node, struct cifs_sid_id, rbnode);
		parent = node;
		rc = compare_sids(sidptr, &((lsidid)->sid));
		if (rc > 0) {
			linkto = &(node->rb_left);
			node = node->rb_left;
		} else if (rc < 0) {
			linkto = &(node->rb_right);
			node = node->rb_right;
		}
	}

	memcpy(&(*psidid)->sid, sidptr, sizeof(struct cifs_sid));
	(*psidid)->time = jiffies - (SID_MAP_RETRY + 1);
	(*psidid)->refcount = 0;

	sprintf((*psidid)->sidstr, "%s", typestr);
	strptr = (*psidid)->sidstr + strlen((*psidid)->sidstr);
	sid_to_str(&(*psidid)->sid, strptr);

	clear_bit(SID_ID_PENDING, &(*psidid)->state);
	clear_bit(SID_ID_MAPPED, &(*psidid)->state);

	rb_link_node(&(*psidid)->rbnode, parent, linkto);
	rb_insert_color(&(*psidid)->rbnode, root);
}

static struct cifs_sid_id *
id_rb_search(struct rb_root *root, struct cifs_sid *sidptr)
{
	int rc;
	struct rb_node *node = root->rb_node;
	struct cifs_sid_id *lsidid;

	while (node) {
		lsidid = rb_entry(node, struct cifs_sid_id, rbnode);
		rc = compare_sids(sidptr, &((lsidid)->sid));
		if (rc > 0) {
			node = node->rb_left;
		} else if (rc < 0) {
			node = node->rb_right;
		} else /* node found */
			return lsidid;
	}

	return NULL;
}

static int
sidid_pending_wait(void *unused)
{
	schedule();
	return signal_pending(current) ? -ERESTARTSYS : 0;
}

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static int
id_to_sid(unsigned long cid, uint sidtype, struct cifs_sid *ssid)
{
	int rc = 0;
	struct key *sidkey;
	const struct cred *saved_cred;
	struct cifs_sid *lsid;
	struct cifs_sid_id *psidid, *npsidid;
	struct rb_root *cidtree;
	spinlock_t *cidlock;

	if (sidtype == SIDOWNER) {
		cidlock = &siduidlock;
		cidtree = &uidtree;
	} else if (sidtype == SIDGROUP) {
		cidlock = &sidgidlock;
		cidtree = &gidtree;
	} else
		return -EINVAL;

	spin_lock(cidlock);
	psidid = sid_rb_search(cidtree, cid);

	if (!psidid) { /* node does not exist, allocate one & attempt adding */
		spin_unlock(cidlock);
		npsidid = kzalloc(sizeof(struct cifs_sid_id), GFP_KERNEL);
		if (!npsidid)
			return -ENOMEM;

		npsidid->sidstr = kmalloc(SIDLEN, GFP_KERNEL);
		if (!npsidid->sidstr) {
			kfree(npsidid);
			return -ENOMEM;
		}

		spin_lock(cidlock);
		psidid = sid_rb_search(cidtree, cid);
		if (psidid) { /* node happened to get inserted meanwhile */
			++psidid->refcount;
			spin_unlock(cidlock);
			kfree(npsidid->sidstr);
			kfree(npsidid);
		} else {
			psidid = npsidid;
			sid_rb_insert(cidtree, cid, &psidid,
					sidtype == SIDOWNER ? "oi:" : "gi:");
			++psidid->refcount;
			spin_unlock(cidlock);
		}
	} else {
		++psidid->refcount;
		spin_unlock(cidlock);
	}

	/*
	 * If we are here, it is safe to access psidid and its fields
	 * since a reference was taken earlier while holding the spinlock.
	 * A reference on the node is put without holding the spinlock
	 * and it is OK to do so in this case, shrinker will not erase
	 * this node until all references are put and we do not access
	 * any fields of the node after a reference is put .
	 */
	if (test_bit(SID_ID_MAPPED, &psidid->state)) {
		memcpy(ssid, &psidid->sid, sizeof(struct cifs_sid));
		psidid->time = jiffies; /* update ts for accessing */
		goto id_sid_out;
	}

	if (time_after(psidid->time + SID_MAP_RETRY, jiffies)) {
		rc = -EINVAL;
		goto id_sid_out;
	}

	if (!test_and_set_bit(SID_ID_PENDING, &psidid->state)) {
		saved_cred = override_creds(root_cred);
		sidkey = request_key(&cifs_idmap_key_type, psidid->sidstr, "");
		if (IS_ERR(sidkey)) {
			rc = -EINVAL;
			cFYI(1, "%s: Can't map and id to a SID", __func__);
		} else {
			lsid = (struct cifs_sid *)sidkey->payload.data;
			memcpy(&psidid->sid, lsid,
				sidkey->datalen < sizeof(struct cifs_sid) ?
				sidkey->datalen : sizeof(struct cifs_sid));
			memcpy(ssid, &psidid->sid,
				sidkey->datalen < sizeof(struct cifs_sid) ?
				sidkey->datalen : sizeof(struct cifs_sid));
			set_bit(SID_ID_MAPPED, &psidid->state);
			key_put(sidkey);
			kfree(psidid->sidstr);
		}
		psidid->time = jiffies; /* update ts for accessing */
		revert_creds(saved_cred);
		clear_bit(SID_ID_PENDING, &psidid->state);
		wake_up_bit(&psidid->state, SID_ID_PENDING);
	} else {
		rc = wait_on_bit(&psidid->state, SID_ID_PENDING,
				sidid_pending_wait, TASK_INTERRUPTIBLE);
		if (rc) {
			cFYI(1, "%s: sidid_pending_wait interrupted %d",
					__func__, rc);
			--psidid->refcount;
			return rc;
		}
		if (test_bit(SID_ID_MAPPED, &psidid->state))
			memcpy(ssid, &psidid->sid, sizeof(struct cifs_sid));
		else
			rc = -EINVAL;
	}
id_sid_out:
	--psidid->refcount;
	return rc;
}

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static int
sid_to_id(struct cifs_sb_info *cifs_sb, struct cifs_sid *psid,
		struct cifs_fattr *fattr, uint sidtype)
{
	int rc;
	unsigned long cid;
	struct key *idkey;
	const struct cred *saved_cred;
	struct cifs_sid_id *psidid, *npsidid;
	struct rb_root *cidtree;
	spinlock_t *cidlock;

	if (sidtype == SIDOWNER) {
		cid = cifs_sb->mnt_uid; /* default uid, in case upcall fails */
		cidlock = &siduidlock;
		cidtree = &uidtree;
	} else if (sidtype == SIDGROUP) {
		cid = cifs_sb->mnt_gid; /* default gid, in case upcall fails */
		cidlock = &sidgidlock;
		cidtree = &gidtree;
	} else
		return -ENOENT;

	spin_lock(cidlock);
	psidid = id_rb_search(cidtree, psid);

	if (!psidid) { /* node does not exist, allocate one & attempt adding */
		spin_unlock(cidlock);
		npsidid = kzalloc(sizeof(struct cifs_sid_id), GFP_KERNEL);
		if (!npsidid)
			return -ENOMEM;

		npsidid->sidstr = kmalloc(SIDLEN, GFP_KERNEL);
		if (!npsidid->sidstr) {
			kfree(npsidid);
			return -ENOMEM;
		}

		spin_lock(cidlock);
		psidid = id_rb_search(cidtree, psid);
		if (psidid) { /* node happened to get inserted meanwhile */
			++psidid->refcount;
			spin_unlock(cidlock);
			kfree(npsidid->sidstr);
			kfree(npsidid);
		} else {
			psidid = npsidid;
			id_rb_insert(cidtree, psid, &psidid,
					sidtype == SIDOWNER ? "os:" : "gs:");
			++psidid->refcount;
			spin_unlock(cidlock);
		}
	} else {
		++psidid->refcount;
		spin_unlock(cidlock);
	}

	/*
	 * If we are here, it is safe to access psidid and its fields
	 * since a reference was taken earlier while holding the spinlock.
	 * A reference on the node is put without holding the spinlock
	 * and it is OK to do so in this case, shrinker will not erase
	 * this node until all references are put and we do not access
	 * any fields of the node after a reference is put .
	 */
	if (test_bit(SID_ID_MAPPED, &psidid->state)) {
		cid = psidid->id;
		psidid->time = jiffies; /* update ts for accessing */
		goto sid_to_id_out;
	}

	if (time_after(psidid->time + SID_MAP_RETRY, jiffies))
		goto sid_to_id_out;

	if (!test_and_set_bit(SID_ID_PENDING, &psidid->state)) {
		saved_cred = override_creds(root_cred);
		idkey = request_key(&cifs_idmap_key_type, psidid->sidstr, "");
		if (IS_ERR(idkey))
			cFYI(1, "%s: Can't map SID to an id", __func__);
		else {
			cid = *(unsigned long *)idkey->payload.value;
			psidid->id = cid;
			set_bit(SID_ID_MAPPED, &psidid->state);
			key_put(idkey);
			kfree(psidid->sidstr);
		}
		revert_creds(saved_cred);
		psidid->time = jiffies; /* update ts for accessing */
		clear_bit(SID_ID_PENDING, &psidid->state);
		wake_up_bit(&psidid->state, SID_ID_PENDING);
	} else {
		rc = wait_on_bit(&psidid->state, SID_ID_PENDING,
				sidid_pending_wait, TASK_INTERRUPTIBLE);
		if (rc) {
			cFYI(1, "%s: sidid_pending_wait interrupted %d",
					__func__, rc);
			--psidid->refcount; /* decremented without spinlock */
			return rc;
		}
		if (test_bit(SID_ID_MAPPED, &psidid->state))
			cid = psidid->id;
	}

sid_to_id_out:
	--psidid->refcount; /* decremented without spinlock */
	if (sidtype == SIDOWNER)
		fattr->cf_uid = cid;
	else
		fattr->cf_gid = cid;

	return 0;
}

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int
init_cifs_idmap(void)
{
	struct cred *cred;
	struct key *keyring;
	int ret;

	cFYI(1, "Registering the %s key type\n", cifs_idmap_key_type.name);

	/* create an override credential set with a special thread keyring in
	 * which requests are cached
	 *
	 * this is used to prevent malicious redirections from being installed
	 * with add_key().
	 */
	cred = prepare_kernel_cred(NULL);
	if (!cred)
		return -ENOMEM;

	keyring = key_alloc(&key_type_keyring, ".cifs_idmap", 0, 0, cred,
			    (KEY_POS_ALL & ~KEY_POS_SETATTR) |
			    KEY_USR_VIEW | KEY_USR_READ,
			    KEY_ALLOC_NOT_IN_QUOTA);
	if (IS_ERR(keyring)) {
		ret = PTR_ERR(keyring);
		goto failed_put_cred;
	}

	ret = key_instantiate_and_link(keyring, NULL, 0, NULL, NULL);
	if (ret < 0)
		goto failed_put_key;

	ret = register_key_type(&cifs_idmap_key_type);
	if (ret < 0)
		goto failed_put_key;

	/* instruct request_key() to use this special keyring as a cache for
	 * the results it looks up */
	cred->thread_keyring = keyring;
	cred->jit_keyring = KEY_REQKEY_DEFL_THREAD_KEYRING;
	root_cred = cred;

	spin_lock_init(&siduidlock);
	uidtree = RB_ROOT;
	spin_lock_init(&sidgidlock);
	gidtree = RB_ROOT;

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	spin_lock_init(&uidsidlock);
	siduidtree = RB_ROOT;
	spin_lock_init(&gidsidlock);
	sidgidtree = RB_ROOT;
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	register_shrinker(&cifs_shrinker);

	cFYI(1, "cifs idmap keyring: %d\n", key_serial(keyring));
	return 0;

failed_put_key:
	key_put(keyring);
failed_put_cred:
	put_cred(cred);
	return ret;
}

void
exit_cifs_idmap(void)
{
	key_revoke(root_cred->thread_keyring);
	unregister_key_type(&cifs_idmap_key_type);
	put_cred(root_cred);
	unregister_shrinker(&cifs_shrinker);
	cFYI(1, "Unregistered %s key type\n", cifs_idmap_key_type.name);
}

void
cifs_destroy_idmaptrees(void)
{
	struct rb_root *root;
	struct rb_node *node;

	root = &uidtree;
	spin_lock(&siduidlock);
	while ((node = rb_first(root)))
		rb_erase(node, root);
	spin_unlock(&siduidlock);

	root = &gidtree;
	spin_lock(&sidgidlock);
	while ((node = rb_first(root)))
		rb_erase(node, root);
	spin_unlock(&sidgidlock);
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	root = &siduidtree;
	spin_lock(&uidsidlock);
	while ((node = rb_first(root)))
		rb_erase(node, root);
	spin_unlock(&uidsidlock);

	root = &sidgidtree;
	spin_lock(&gidsidlock);
	while ((node = rb_first(root)))
		rb_erase(node, root);
	spin_unlock(&gidsidlock);
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}
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/* if the two SIDs (roughly equivalent to a UUID for a user or group) are
   the same returns 1, if they do not match returns 0 */
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int compare_sids(const struct cifs_sid *ctsid, const struct cifs_sid *cwsid)
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{
	int i;
	int num_subauth, num_sat, num_saw;

	if ((!ctsid) || (!cwsid))
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		return 1;
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	/* compare the revision */
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	if (ctsid->revision != cwsid->revision) {
		if (ctsid->revision > cwsid->revision)
			return 1;
		else
			return -1;
	}
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	/* compare all of the six auth values */
	for (i = 0; i < 6; ++i) {
645 646 647 648 649 650
		if (ctsid->authority[i] != cwsid->authority[i]) {
			if (ctsid->authority[i] > cwsid->authority[i])
				return 1;
			else
				return -1;
		}
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	}

	/* compare all of the subauth values if any */
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	num_sat = ctsid->num_subauth;
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	num_saw = cwsid->num_subauth;
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	num_subauth = num_sat < num_saw ? num_sat : num_saw;
	if (num_subauth) {
		for (i = 0; i < num_subauth; ++i) {
659
			if (ctsid->sub_auth[i] != cwsid->sub_auth[i]) {
660 661
				if (le32_to_cpu(ctsid->sub_auth[i]) >
					le32_to_cpu(cwsid->sub_auth[i]))
662 663 664 665
					return 1;
				else
					return -1;
			}
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		}
	}

669
	return 0; /* sids compare/match */
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}

672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712

/* copy ntsd, owner sid, and group sid from a security descriptor to another */
static void copy_sec_desc(const struct cifs_ntsd *pntsd,
				struct cifs_ntsd *pnntsd, __u32 sidsoffset)
{
	int i;

	struct cifs_sid *owner_sid_ptr, *group_sid_ptr;
	struct cifs_sid *nowner_sid_ptr, *ngroup_sid_ptr;

	/* copy security descriptor control portion */
	pnntsd->revision = pntsd->revision;
	pnntsd->type = pntsd->type;
	pnntsd->dacloffset = cpu_to_le32(sizeof(struct cifs_ntsd));
	pnntsd->sacloffset = 0;
	pnntsd->osidoffset = cpu_to_le32(sidsoffset);
	pnntsd->gsidoffset = cpu_to_le32(sidsoffset + sizeof(struct cifs_sid));

	/* copy owner sid */
	owner_sid_ptr = (struct cifs_sid *)((char *)pntsd +
				le32_to_cpu(pntsd->osidoffset));
	nowner_sid_ptr = (struct cifs_sid *)((char *)pnntsd + sidsoffset);

	nowner_sid_ptr->revision = owner_sid_ptr->revision;
	nowner_sid_ptr->num_subauth = owner_sid_ptr->num_subauth;
	for (i = 0; i < 6; i++)
		nowner_sid_ptr->authority[i] = owner_sid_ptr->authority[i];
	for (i = 0; i < 5; i++)
		nowner_sid_ptr->sub_auth[i] = owner_sid_ptr->sub_auth[i];

	/* copy group sid */
	group_sid_ptr = (struct cifs_sid *)((char *)pntsd +
				le32_to_cpu(pntsd->gsidoffset));
	ngroup_sid_ptr = (struct cifs_sid *)((char *)pnntsd + sidsoffset +
					sizeof(struct cifs_sid));

	ngroup_sid_ptr->revision = group_sid_ptr->revision;
	ngroup_sid_ptr->num_subauth = group_sid_ptr->num_subauth;
	for (i = 0; i < 6; i++)
		ngroup_sid_ptr->authority[i] = group_sid_ptr->authority[i];
	for (i = 0; i < 5; i++)
713
		ngroup_sid_ptr->sub_auth[i] = group_sid_ptr->sub_auth[i];
714 715 716 717 718

	return;
}


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/*
   change posix mode to reflect permissions
   pmode is the existing mode (we only want to overwrite part of this
   bits to set can be: S_IRWXU, S_IRWXG or S_IRWXO ie 00700 or 00070 or 00007
*/
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static void access_flags_to_mode(__le32 ace_flags, int type, umode_t *pmode,
725
				 umode_t *pbits_to_set)
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{
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	__u32 flags = le32_to_cpu(ace_flags);
728
	/* the order of ACEs is important.  The canonical order is to begin with
729
	   DENY entries followed by ALLOW, otherwise an allow entry could be
730
	   encountered first, making the subsequent deny entry like "dead code"
731
	   which would be superflous since Windows stops when a match is made
732 733 734 735 736
	   for the operation you are trying to perform for your user */

	/* For deny ACEs we change the mask so that subsequent allow access
	   control entries do not turn on the bits we are denying */
	if (type == ACCESS_DENIED) {
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		if (flags & GENERIC_ALL)
738
			*pbits_to_set &= ~S_IRWXUGO;
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		if ((flags & GENERIC_WRITE) ||
			((flags & FILE_WRITE_RIGHTS) == FILE_WRITE_RIGHTS))
742
			*pbits_to_set &= ~S_IWUGO;
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		if ((flags & GENERIC_READ) ||
			((flags & FILE_READ_RIGHTS) == FILE_READ_RIGHTS))
745
			*pbits_to_set &= ~S_IRUGO;
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		if ((flags & GENERIC_EXECUTE) ||
			((flags & FILE_EXEC_RIGHTS) == FILE_EXEC_RIGHTS))
748 749 750
			*pbits_to_set &= ~S_IXUGO;
		return;
	} else if (type != ACCESS_ALLOWED) {
751
		cERROR(1, "unknown access control type %d", type);
752 753 754
		return;
	}
	/* else ACCESS_ALLOWED type */
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	if (flags & GENERIC_ALL) {
757
		*pmode |= (S_IRWXUGO & (*pbits_to_set));
758
		cFYI(DBG2, "all perms");
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		return;
	}
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	if ((flags & GENERIC_WRITE) ||
			((flags & FILE_WRITE_RIGHTS) == FILE_WRITE_RIGHTS))
763
		*pmode |= (S_IWUGO & (*pbits_to_set));
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	if ((flags & GENERIC_READ) ||
			((flags & FILE_READ_RIGHTS) == FILE_READ_RIGHTS))
766
		*pmode |= (S_IRUGO & (*pbits_to_set));
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	if ((flags & GENERIC_EXECUTE) ||
			((flags & FILE_EXEC_RIGHTS) == FILE_EXEC_RIGHTS))
769
		*pmode |= (S_IXUGO & (*pbits_to_set));
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771
	cFYI(DBG2, "access flags 0x%x mode now 0x%x", flags, *pmode);
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772 773 774
	return;
}

775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799
/*
   Generate access flags to reflect permissions mode is the existing mode.
   This function is called for every ACE in the DACL whose SID matches
   with either owner or group or everyone.
*/

static void mode_to_access_flags(umode_t mode, umode_t bits_to_use,
				__u32 *pace_flags)
{
	/* reset access mask */
	*pace_flags = 0x0;

	/* bits to use are either S_IRWXU or S_IRWXG or S_IRWXO */
	mode &= bits_to_use;

	/* check for R/W/X UGO since we do not know whose flags
	   is this but we have cleared all the bits sans RWX for
	   either user or group or other as per bits_to_use */
	if (mode & S_IRUGO)
		*pace_flags |= SET_FILE_READ_RIGHTS;
	if (mode & S_IWUGO)
		*pace_flags |= SET_FILE_WRITE_RIGHTS;
	if (mode & S_IXUGO)
		*pace_flags |= SET_FILE_EXEC_RIGHTS;

800
	cFYI(DBG2, "mode: 0x%x, access flags now 0x%x", mode, *pace_flags);
801 802 803
	return;
}

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static __u16 fill_ace_for_sid(struct cifs_ace *pntace,
805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827
			const struct cifs_sid *psid, __u64 nmode, umode_t bits)
{
	int i;
	__u16 size = 0;
	__u32 access_req = 0;

	pntace->type = ACCESS_ALLOWED;
	pntace->flags = 0x0;
	mode_to_access_flags(nmode, bits, &access_req);
	if (!access_req)
		access_req = SET_MINIMUM_RIGHTS;
	pntace->access_req = cpu_to_le32(access_req);

	pntace->sid.revision = psid->revision;
	pntace->sid.num_subauth = psid->num_subauth;
	for (i = 0; i < 6; i++)
		pntace->sid.authority[i] = psid->authority[i];
	for (i = 0; i < psid->num_subauth; i++)
		pntace->sid.sub_auth[i] = psid->sub_auth[i];

	size = 1 + 1 + 2 + 4 + 1 + 1 + 6 + (psid->num_subauth * 4);
	pntace->size = cpu_to_le16(size);

828
	return size;
829 830
}

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832 833
#ifdef CONFIG_CIFS_DEBUG2
static void dump_ace(struct cifs_ace *pace, char *end_of_acl)
834 835 836 837
{
	int num_subauth;

	/* validate that we do not go past end of acl */
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838

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839
	if (le16_to_cpu(pace->size) < 16) {
840
		cERROR(1, "ACE too small %d", le16_to_cpu(pace->size));
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841 842 843 844
		return;
	}

	if (end_of_acl < (char *)pace + le16_to_cpu(pace->size)) {
845
		cERROR(1, "ACL too small to parse ACE");
846
		return;
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847
	}
848

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849
	num_subauth = pace->sid.num_subauth;
850
	if (num_subauth) {
851
		int i;
852
		cFYI(1, "ACE revision %d num_auth %d type %d flags %d size %d",
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			pace->sid.revision, pace->sid.num_subauth, pace->type,
854
			pace->flags, le16_to_cpu(pace->size));
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		for (i = 0; i < num_subauth; ++i) {
856 857
			cFYI(1, "ACE sub_auth[%d]: 0x%x", i,
				le32_to_cpu(pace->sid.sub_auth[i]));
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		}

		/* BB add length check to make sure that we do not have huge
			num auths and therefore go off the end */
	}

	return;
}
866
#endif
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868

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static void parse_dacl(struct cifs_acl *pdacl, char *end_of_acl,
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		       struct cifs_sid *pownersid, struct cifs_sid *pgrpsid,
871
		       struct cifs_fattr *fattr)
872 873 874 875 876 877 878 879 880
{
	int i;
	int num_aces = 0;
	int acl_size;
	char *acl_base;
	struct cifs_ace **ppace;

	/* BB need to add parm so we can store the SID BB */

881 882 883
	if (!pdacl) {
		/* no DACL in the security descriptor, set
		   all the permissions for user/group/other */
884
		fattr->cf_mode |= S_IRWXUGO;
885 886 887
		return;
	}

888
	/* validate that we do not go past end of acl */
889
	if (end_of_acl < (char *)pdacl + le16_to_cpu(pdacl->size)) {
890
		cERROR(1, "ACL too small to parse DACL");
891 892 893
		return;
	}

894
	cFYI(DBG2, "DACL revision %d size %d num aces %d",
895
		le16_to_cpu(pdacl->revision), le16_to_cpu(pdacl->size),
896
		le32_to_cpu(pdacl->num_aces));
897

898 899 900
	/* reset rwx permissions for user/group/other.
	   Also, if num_aces is 0 i.e. DACL has no ACEs,
	   user/group/other have no permissions */
901
	fattr->cf_mode &= ~(S_IRWXUGO);
902

903 904 905
	acl_base = (char *)pdacl;
	acl_size = sizeof(struct cifs_acl);

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	num_aces = le32_to_cpu(pdacl->num_aces);
907
	if (num_aces  > 0) {
908 909
		umode_t user_mask = S_IRWXU;
		umode_t group_mask = S_IRWXG;
910
		umode_t other_mask = S_IRWXU | S_IRWXG | S_IRWXO;
911

912 913
		ppace = kmalloc(num_aces * sizeof(struct cifs_ace *),
				GFP_KERNEL);
914 915 916 917
		if (!ppace) {
			cERROR(1, "DACL memory allocation error");
			return;
		}
918 919

		for (i = 0; i < num_aces; ++i) {
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			ppace[i] = (struct cifs_ace *) (acl_base + acl_size);
921 922 923
#ifdef CONFIG_CIFS_DEBUG2
			dump_ace(ppace[i], end_of_acl);
#endif
924
			if (compare_sids(&(ppace[i]->sid), pownersid) == 0)
925
				access_flags_to_mode(ppace[i]->access_req,
926
						     ppace[i]->type,
927
						     &fattr->cf_mode,
928
						     &user_mask);
929
			if (compare_sids(&(ppace[i]->sid), pgrpsid) == 0)
930
				access_flags_to_mode(ppace[i]->access_req,
931
						     ppace[i]->type,
932
						     &fattr->cf_mode,
933
						     &group_mask);
934
			if (compare_sids(&(ppace[i]->sid), &sid_everyone) == 0)
935
				access_flags_to_mode(ppace[i]->access_req,
936
						     ppace[i]->type,
937
						     &fattr->cf_mode,
938
						     &other_mask);
939
			if (compare_sids(&(ppace[i]->sid), &sid_authusers) == 0)
940 941 942 943 944
				access_flags_to_mode(ppace[i]->access_req,
						     ppace[i]->type,
						     &fattr->cf_mode,
						     &other_mask);

945

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946
/*			memcpy((void *)(&(cifscred->aces[i])),
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947 948
				(void *)ppace[i],
				sizeof(struct cifs_ace)); */
949

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950 951
			acl_base = (char *)ppace[i];
			acl_size = le16_to_cpu(ppace[i]->size);
952 953 954 955 956 957 958 959
		}

		kfree(ppace);
	}

	return;
}

960

961 962 963
static int set_chmod_dacl(struct cifs_acl *pndacl, struct cifs_sid *pownersid,
			struct cifs_sid *pgrpsid, __u64 nmode)
{
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	u16 size = 0;
965 966 967 968 969 970 971 972 973 974 975 976
	struct cifs_acl *pnndacl;

	pnndacl = (struct cifs_acl *)((char *)pndacl + sizeof(struct cifs_acl));

	size += fill_ace_for_sid((struct cifs_ace *) ((char *)pnndacl + size),
					pownersid, nmode, S_IRWXU);
	size += fill_ace_for_sid((struct cifs_ace *)((char *)pnndacl + size),
					pgrpsid, nmode, S_IRWXG);
	size += fill_ace_for_sid((struct cifs_ace *)((char *)pnndacl + size),
					 &sid_everyone, nmode, S_IRWXO);

	pndacl->size = cpu_to_le16(size + sizeof(struct cifs_acl));
977
	pndacl->num_aces = cpu_to_le32(3);
978

979
	return 0;
980 981 982
}


983 984 985 986
static int parse_sid(struct cifs_sid *psid, char *end_of_acl)
{
	/* BB need to add parm so we can store the SID BB */

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	/* validate that we do not go past end of ACL - sid must be at least 8
	   bytes long (assuming no sub-auths - e.g. the null SID */
	if (end_of_acl < (char *)psid + 8) {
990
		cERROR(1, "ACL too small to parse SID %p", psid);
991 992
		return -EINVAL;
	}
993

994
	if (psid->num_subauth) {
995
#ifdef CONFIG_CIFS_DEBUG2
996
		int i;
997 998
		cFYI(1, "SID revision %d num_auth %d",
			psid->revision, psid->num_subauth);
999

1000
		for (i = 0; i < psid->num_subauth; i++) {
1001 1002
			cFYI(1, "SID sub_auth[%d]: 0x%x ", i,
				le32_to_cpu(psid->sub_auth[i]));
1003 1004
		}

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		/* BB add length check to make sure that we do not have huge
1006
			num auths and therefore go off the end */
1007 1008
		cFYI(1, "RID 0x%x",
			le32_to_cpu(psid->sub_auth[psid->num_subauth-1]));
1009
#endif
1010 1011
	}

1012 1013 1014
	return 0;
}

1015

1016
/* Convert CIFS ACL to POSIX form */
1017 1018
static int parse_sec_desc(struct cifs_sb_info *cifs_sb,
		struct cifs_ntsd *pntsd, int acl_len, struct cifs_fattr *fattr)
1019
{
1020
	int rc = 0;
1021 1022 1023
	struct cifs_sid *owner_sid_ptr, *group_sid_ptr;
	struct cifs_acl *dacl_ptr; /* no need for SACL ptr */
	char *end_of_acl = ((char *)pntsd) + acl_len;
1024
	__u32 dacloffset;
1025

1026
	if (pntsd == NULL)
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1027 1028
		return -EIO;

1029
	owner_sid_ptr = (struct cifs_sid *)((char *)pntsd +
1030
				le32_to_cpu(pntsd->osidoffset));
1031
	group_sid_ptr = (struct cifs_sid *)((char *)pntsd +
1032
				le32_to_cpu(pntsd->gsidoffset));
1033
	dacloffset = le32_to_cpu(pntsd->dacloffset);
1034
	dacl_ptr = (struct cifs_acl *)((char *)pntsd + dacloffset);
1035
	cFYI(DBG2, "revision %d type 0x%x ooffset 0x%x goffset 0x%x "
1036
		 "sacloffset 0x%x dacloffset 0x%x",
1037 1038
		 pntsd->revision, pntsd->type, le32_to_cpu(pntsd->osidoffset),
		 le32_to_cpu(pntsd->gsidoffset),
1039
		 le32_to_cpu(pntsd->sacloffset), dacloffset);
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/*	cifs_dump_mem("owner_sid: ", owner_sid_ptr, 64); */
1041
	rc = parse_sid(owner_sid_ptr, end_of_acl);
1042 1043 1044 1045 1046 1047 1048
	if (rc) {
		cFYI(1, "%s: Error %d parsing Owner SID", __func__, rc);
		return rc;
	}
	rc = sid_to_id(cifs_sb, owner_sid_ptr, fattr, SIDOWNER);
	if (rc) {
		cFYI(1, "%s: Error %d mapping Owner SID to uid", __func__, rc);
1049
		return rc;
1050
	}
1051 1052

	rc = parse_sid(group_sid_ptr, end_of_acl);
1053 1054
	if (rc) {
		cFYI(1, "%s: Error %d mapping Owner SID to gid", __func__, rc);
1055
		return rc;
1056 1057 1058 1059 1060 1061
	}
	rc = sid_to_id(cifs_sb, group_sid_ptr, fattr, SIDGROUP);
	if (rc) {
		cFYI(1, "%s: Error %d mapping Group SID to gid", __func__, rc);
		return rc;
	}
1062

1063 1064
	if (dacloffset)
		parse_dacl(dacl_ptr, end_of_acl, owner_sid_ptr,
1065
			   group_sid_ptr, fattr);
1066
	else
1067
		cFYI(1, "no ACL"); /* BB grant all or default perms? */
1068

1069 1070 1071
/*	cifscred->uid = owner_sid_ptr->rid;
	cifscred->gid = group_sid_ptr->rid;
	memcpy((void *)(&(cifscred->osid)), (void *)owner_sid_ptr,
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			sizeof(struct cifs_sid));
1073
	memcpy((void *)(&(cifscred->gsid)), (void *)group_sid_ptr,
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1074
			sizeof(struct cifs_sid)); */
1075

1076
	return rc;
1077
}
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1078 1079


1080 1081
/* Convert permission bits from mode to equivalent CIFS ACL */
static int build_sec_desc(struct cifs_ntsd *pntsd, struct cifs_ntsd *pnntsd,
1082
				struct inode *inode, __u64 nmode)
1083 1084 1085 1086 1087 1088 1089 1090 1091 1092
{
	int rc = 0;
	__u32 dacloffset;
	__u32 ndacloffset;
	__u32 sidsoffset;
	struct cifs_sid *owner_sid_ptr, *group_sid_ptr;
	struct cifs_acl *dacl_ptr = NULL;  /* no need for SACL ptr */
	struct cifs_acl *ndacl_ptr = NULL; /* no need for SACL ptr */

	if ((inode == NULL) || (pntsd == NULL) || (pnntsd == NULL))
1093
		return -EIO;
1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115

	owner_sid_ptr = (struct cifs_sid *)((char *)pntsd +
				le32_to_cpu(pntsd->osidoffset));
	group_sid_ptr = (struct cifs_sid *)((char *)pntsd +
				le32_to_cpu(pntsd->gsidoffset));

	dacloffset = le32_to_cpu(pntsd->dacloffset);
	dacl_ptr = (struct cifs_acl *)((char *)pntsd + dacloffset);

	ndacloffset = sizeof(struct cifs_ntsd);
	ndacl_ptr = (struct cifs_acl *)((char *)pnntsd + ndacloffset);
	ndacl_ptr->revision = dacl_ptr->revision;
	ndacl_ptr->size = 0;
	ndacl_ptr->num_aces = 0;

	rc = set_chmod_dacl(ndacl_ptr, owner_sid_ptr, group_sid_ptr, nmode);

	sidsoffset = ndacloffset + le16_to_cpu(ndacl_ptr->size);

	/* copy security descriptor control portion and owner and group sid */
	copy_sec_desc(pntsd, pnntsd, sidsoffset);

1116
	return rc;
1117 1118
}

1119 1120
static struct cifs_ntsd *get_cifs_acl_by_fid(struct cifs_sb_info *cifs_sb,
		__u16 fid, u32 *pacllen)
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1121 1122
{
	struct cifs_ntsd *pntsd = NULL;
1123
	int xid, rc;
1124 1125 1126
	struct tcon_link *tlink = cifs_sb_tlink(cifs_sb);

	if (IS_ERR(tlink))
1127
		return ERR_CAST(tlink);
S
Steve French 已提交
1128

1129
	xid = GetXid();
1130
	rc = CIFSSMBGetCIFSACL(xid, tlink_tcon(tlink), fid, &pntsd, pacllen);
1131
	FreeXid(xid);
S
Steve French 已提交
1132

1133
	cifs_put_tlink(tlink);
S
Steve French 已提交
1134

1135 1136 1137
	cFYI(1, "%s: rc = %d ACL len %d", __func__, rc, *pacllen);
	if (rc)
		return ERR_PTR(rc);
1138 1139
	return pntsd;
}
1140

1141 1142 1143 1144 1145
static struct cifs_ntsd *get_cifs_acl_by_path(struct cifs_sb_info *cifs_sb,
		const char *path, u32 *pacllen)
{
	struct cifs_ntsd *pntsd = NULL;
	int oplock = 0;
1146
	int xid, rc, create_options = 0;
1147
	__u16 fid;
1148
	struct cifs_tcon *tcon;
1149 1150 1151
	struct tcon_link *tlink = cifs_sb_tlink(cifs_sb);

	if (IS_ERR(tlink))
1152
		return ERR_CAST(tlink);
S
Steve French 已提交
1153

1154
	tcon = tlink_tcon(tlink);
1155 1156
	xid = GetXid();

1157 1158 1159 1160 1161 1162
	if (backup_cred(cifs_sb))
		create_options |= CREATE_OPEN_BACKUP_INTENT;

	rc = CIFSSMBOpen(xid, tcon, path, FILE_OPEN, READ_CONTROL,
			create_options, &fid, &oplock, NULL, cifs_sb->local_nls,
			cifs_sb->mnt_cifs_flags & CIFS_MOUNT_MAP_SPECIAL_CHR);
1163 1164 1165
	if (!rc) {
		rc = CIFSSMBGetCIFSACL(xid, tcon, fid, &pntsd, pacllen);
		CIFSSMBClose(xid, tcon, fid);
S
Steve French 已提交
1166 1167
	}

1168
	cifs_put_tlink(tlink);
1169
	FreeXid(xid);
1170 1171 1172 1173

	cFYI(1, "%s: rc = %d ACL len %d", __func__, rc, *pacllen);
	if (rc)
		return ERR_PTR(rc);
1174 1175 1176
	return pntsd;
}

1177
/* Retrieve an ACL from the server */
1178
struct cifs_ntsd *get_cifs_acl(struct cifs_sb_info *cifs_sb,
1179 1180 1181 1182 1183 1184 1185
				      struct inode *inode, const char *path,
				      u32 *pacllen)
{
	struct cifs_ntsd *pntsd = NULL;
	struct cifsFileInfo *open_file = NULL;

	if (inode)
1186
		open_file = find_readable_file(CIFS_I(inode), true);
1187 1188 1189 1190
	if (!open_file)
		return get_cifs_acl_by_path(cifs_sb, path, pacllen);

	pntsd = get_cifs_acl_by_fid(cifs_sb, open_file->netfid, pacllen);
1191
	cifsFileInfo_put(open_file);
1192 1193 1194
	return pntsd;
}

1195 1196 1197 1198
static int set_cifs_acl_by_path(struct cifs_sb_info *cifs_sb, const char *path,
		struct cifs_ntsd *pnntsd, u32 acllen)
{
	int oplock = 0;
1199
	int xid, rc, create_options = 0;
1200
	__u16 fid;
1201
	struct cifs_tcon *tcon;
1202
	struct tcon_link *tlink = cifs_sb_tlink(cifs_sb);
1203

1204 1205 1206 1207
	if (IS_ERR(tlink))
		return PTR_ERR(tlink);

	tcon = tlink_tcon(tlink);
1208 1209
	xid = GetXid();

1210 1211 1212 1213
	if (backup_cred(cifs_sb))
		create_options |= CREATE_OPEN_BACKUP_INTENT;

	rc = CIFSSMBOpen(xid, tcon, path, FILE_OPEN, WRITE_DAC, create_options,
1214 1215 1216
			 &fid, &oplock, NULL, cifs_sb->local_nls,
			 cifs_sb->mnt_cifs_flags & CIFS_MOUNT_MAP_SPECIAL_CHR);
	if (rc) {
1217
		cERROR(1, "Unable to open file to set ACL");
1218
		goto out;
1219 1220
	}

1221
	rc = CIFSSMBSetCIFSACL(xid, tcon, fid, pnntsd, acllen);
1222
	cFYI(DBG2, "SetCIFSACL rc = %d", rc);
1223

1224 1225
	CIFSSMBClose(xid, tcon, fid);
out:
1226
	FreeXid(xid);
1227
	cifs_put_tlink(tlink);
1228 1229
	return rc;
}
1230

1231
/* Set an ACL on the server */
1232
int set_cifs_acl(struct cifs_ntsd *pnntsd, __u32 acllen,
1233 1234 1235 1236
				struct inode *inode, const char *path)
{
	struct cifs_sb_info *cifs_sb = CIFS_SB(inode->i_sb);

1237
	cFYI(DBG2, "set ACL for %s from mode 0x%x", path, inode->i_mode);
1238

1239
	return set_cifs_acl_by_path(cifs_sb, path, pnntsd, acllen);
1240 1241
}

1242
/* Translate the CIFS ACL (simlar to NTFS ACL) for a file into mode bits */
1243
int
1244 1245
cifs_acl_to_fattr(struct cifs_sb_info *cifs_sb, struct cifs_fattr *fattr,
		  struct inode *inode, const char *path, const __u16 *pfid)
1246 1247 1248 1249 1250
{
	struct cifs_ntsd *pntsd = NULL;
	u32 acllen = 0;
	int rc = 0;

1251
	cFYI(DBG2, "converting ACL to mode for %s", path);
1252 1253 1254 1255 1256

	if (pfid)
		pntsd = get_cifs_acl_by_fid(cifs_sb, *pfid, &acllen);
	else
		pntsd = get_cifs_acl(cifs_sb, inode, path, &acllen);
1257 1258

	/* if we can retrieve the ACL, now parse Access Control Entries, ACEs */
1259 1260 1261 1262
	if (IS_ERR(pntsd)) {
		rc = PTR_ERR(pntsd);
		cERROR(1, "%s: error %d getting sec desc", __func__, rc);
	} else {
1263
		rc = parse_sec_desc(cifs_sb, pntsd, acllen, fattr);
1264 1265 1266 1267
		kfree(pntsd);
		if (rc)
			cERROR(1, "parse sec desc failed rc = %d", rc);
	}
1268

1269
	return rc;
S
Steve French 已提交
1270
}
1271

1272
/* Convert mode bits to an ACL so we can update the ACL on the server */
1273
int mode_to_cifs_acl(struct inode *inode, const char *path, __u64 nmode)
1274 1275
{
	int rc = 0;
1276
	__u32 secdesclen = 0;
1277 1278
	struct cifs_ntsd *pntsd = NULL; /* acl obtained from server */
	struct cifs_ntsd *pnntsd = NULL; /* modified acl to be sent to server */
1279

1280
	cFYI(DBG2, "set ACL from mode for %s", path);
1281 1282

	/* Get the security descriptor */
1283
	pntsd = get_cifs_acl(CIFS_SB(inode->i_sb), inode, path, &secdesclen);
1284

1285 1286
	/* Add three ACEs for owner, group, everyone getting rid of
	   other ACEs as chmod disables ACEs and set the security descriptor */
1287

1288 1289 1290 1291
	if (IS_ERR(pntsd)) {
		rc = PTR_ERR(pntsd);
		cERROR(1, "%s: error %d getting sec desc", __func__, rc);
	} else {
1292 1293 1294
		/* allocate memory for the smb header,
		   set security descriptor request security descriptor
		   parameters, and secuirty descriptor itself */
1295

1296 1297 1298
		secdesclen = secdesclen < DEFSECDESCLEN ?
					DEFSECDESCLEN : secdesclen;
		pnntsd = kmalloc(secdesclen, GFP_KERNEL);
1299
		if (!pnntsd) {
1300
			cERROR(1, "Unable to allocate security descriptor");
1301
			kfree(pntsd);
1302
			return -ENOMEM;
1303
		}
1304

1305
		rc = build_sec_desc(pntsd, pnntsd, inode, nmode);
1306

1307
		cFYI(DBG2, "build_sec_desc rc: %d", rc);
1308 1309 1310

		if (!rc) {
			/* Set the security descriptor */
1311
			rc = set_cifs_acl(pnntsd, secdesclen, inode, path);
1312
			cFYI(DBG2, "set_cifs_acl rc: %d", rc);
1313 1314 1315 1316 1317 1318
		}

		kfree(pnntsd);
		kfree(pntsd);
	}

1319
	return rc;
1320
}