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layer_vnops.c revision 1.50.8.1
      1  1.50.8.1   msaitoh /*	$NetBSD: layer_vnops.c,v 1.50.8.1 2012/11/18 18:36:58 msaitoh Exp $	*/
      2       1.1  wrstuden 
      3       1.1  wrstuden /*
      4       1.1  wrstuden  * Copyright (c) 1999 National Aeronautics & Space Administration
      5       1.1  wrstuden  * All rights reserved.
      6       1.1  wrstuden  *
      7       1.1  wrstuden  * This software was written by William Studenmund of the
      8       1.6       wiz  * Numerical Aerospace Simulation Facility, NASA Ames Research Center.
      9       1.1  wrstuden  *
     10       1.1  wrstuden  * Redistribution and use in source and binary forms, with or without
     11       1.1  wrstuden  * modification, are permitted provided that the following conditions
     12       1.1  wrstuden  * are met:
     13       1.1  wrstuden  * 1. Redistributions of source code must retain the above copyright
     14       1.1  wrstuden  *    notice, this list of conditions and the following disclaimer.
     15       1.1  wrstuden  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.1  wrstuden  *    notice, this list of conditions and the following disclaimer in the
     17       1.1  wrstuden  *    documentation and/or other materials provided with the distribution.
     18       1.2     soren  * 3. Neither the name of the National Aeronautics & Space Administration
     19       1.1  wrstuden  *    nor the names of its contributors may be used to endorse or promote
     20       1.1  wrstuden  *    products derived from this software without specific prior written
     21       1.1  wrstuden  *    permission.
     22       1.1  wrstuden  *
     23       1.1  wrstuden  * THIS SOFTWARE IS PROVIDED BY THE NATIONAL AERONAUTICS & SPACE ADMINISTRATION
     24       1.1  wrstuden  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     25       1.1  wrstuden  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     26       1.1  wrstuden  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE ADMINISTRATION OR CONTRIB-
     27       1.1  wrstuden  * UTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY,
     28       1.1  wrstuden  * OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     29       1.1  wrstuden  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     30       1.1  wrstuden  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     31       1.1  wrstuden  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     32       1.1  wrstuden  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     33       1.1  wrstuden  * POSSIBILITY OF SUCH DAMAGE.
     34       1.1  wrstuden  */
     35      1.42     rmind 
     36       1.1  wrstuden /*
     37       1.1  wrstuden  * Copyright (c) 1992, 1993
     38       1.1  wrstuden  *	The Regents of the University of California.  All rights reserved.
     39       1.1  wrstuden  *
     40       1.1  wrstuden  * This code is derived from software contributed to Berkeley by
     41       1.1  wrstuden  * John Heidemann of the UCLA Ficus project.
     42       1.1  wrstuden  *
     43       1.1  wrstuden  * Redistribution and use in source and binary forms, with or without
     44       1.1  wrstuden  * modification, are permitted provided that the following conditions
     45       1.1  wrstuden  * are met:
     46       1.1  wrstuden  * 1. Redistributions of source code must retain the above copyright
     47       1.1  wrstuden  *    notice, this list of conditions and the following disclaimer.
     48       1.1  wrstuden  * 2. Redistributions in binary form must reproduce the above copyright
     49       1.1  wrstuden  *    notice, this list of conditions and the following disclaimer in the
     50       1.1  wrstuden  *    documentation and/or other materials provided with the distribution.
     51      1.11       agc  * 3. Neither the name of the University nor the names of its contributors
     52       1.1  wrstuden  *    may be used to endorse or promote products derived from this software
     53       1.1  wrstuden  *    without specific prior written permission.
     54       1.1  wrstuden  *
     55       1.1  wrstuden  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     56       1.1  wrstuden  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     57       1.1  wrstuden  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     58       1.1  wrstuden  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     59       1.1  wrstuden  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     60       1.1  wrstuden  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     61       1.1  wrstuden  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     62       1.1  wrstuden  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     63       1.1  wrstuden  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     64       1.1  wrstuden  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     65       1.1  wrstuden  * SUCH DAMAGE.
     66       1.1  wrstuden  *
     67       1.1  wrstuden  *	@(#)null_vnops.c	8.6 (Berkeley) 5/27/95
     68       1.1  wrstuden  *
     69       1.1  wrstuden  * Ancestors:
     70       1.1  wrstuden  *	@(#)lofs_vnops.c	1.2 (Berkeley) 6/18/92
     71      1.31     enami  *	Id: lofs_vnops.c,v 1.11 1992/05/30 10:05:43 jsp Exp jsp
     72       1.1  wrstuden  *	...and...
     73       1.1  wrstuden  *	@(#)null_vnodeops.c 1.20 92/07/07 UCLA Ficus project
     74       1.1  wrstuden  */
     75       1.1  wrstuden 
     76       1.1  wrstuden /*
     77      1.42     rmind  * Generic layer vnode operations.
     78       1.1  wrstuden  *
     79      1.42     rmind  * The layer.h, layer_extern.h, layer_vfs.c, and layer_vnops.c files provide
     80      1.42     rmind  * the core implementation of stacked file-systems.
     81       1.1  wrstuden  *
     82      1.42     rmind  * The layerfs duplicates a portion of the file system name space under
     83      1.42     rmind  * a new name.  In this respect, it is similar to the loopback file system.
     84      1.42     rmind  * It differs from the loopback fs in two respects: it is implemented using
     85      1.42     rmind  * a stackable layers technique, and it is "layerfs-nodes" stack above all
     86      1.42     rmind  * lower-layer vnodes, not just over directory vnodes.
     87      1.42     rmind  *
     88      1.42     rmind  * OPERATION OF LAYERFS
     89      1.42     rmind  *
     90      1.42     rmind  * The layerfs is the minimum file system layer, bypassing all possible
     91      1.42     rmind  * operations to the lower layer for processing there.  The majority of its
     92      1.42     rmind  * activity centers on the bypass routine, through which nearly all vnode
     93      1.42     rmind  * operations pass.
     94      1.42     rmind  *
     95      1.42     rmind  * The bypass routine accepts arbitrary vnode operations for handling by
     96      1.42     rmind  * the lower layer.  It begins by examining vnode operation arguments and
     97      1.42     rmind  * replacing any layered nodes by their lower-layer equivalents.  It then
     98      1.42     rmind  * invokes an operation on the lower layer.  Finally, it replaces the
     99      1.42     rmind  * layered nodes in the arguments and, if a vnode is returned by the
    100      1.42     rmind  * operation, stacks a layered node on top of the returned vnode.
    101       1.1  wrstuden  *
    102       1.1  wrstuden  * The bypass routine in this file, layer_bypass(), is suitable for use
    103       1.1  wrstuden  * by many different layered filesystems. It can be used by multiple
    104       1.1  wrstuden  * filesystems simultaneously. Alternatively, a layered fs may provide
    105       1.1  wrstuden  * its own bypass routine, in which case layer_bypass() should be used as
    106       1.1  wrstuden  * a model. For instance, the main functionality provided by umapfs, the user
    107       1.1  wrstuden  * identity mapping file system, is handled by a custom bypass routine.
    108       1.1  wrstuden  *
    109       1.1  wrstuden  * Typically a layered fs registers its selected bypass routine as the
    110       1.1  wrstuden  * default vnode operation in its vnodeopv_entry_desc table. Additionally
    111       1.1  wrstuden  * the filesystem must store the bypass entry point in the layerm_bypass
    112       1.1  wrstuden  * field of struct layer_mount. All other layer routines in this file will
    113      1.42     rmind  * use the layerm_bypass() routine.
    114       1.1  wrstuden  *
    115       1.1  wrstuden  * Although the bypass routine handles most operations outright, a number
    116      1.42     rmind  * of operations are special cased and handled by the layerfs.  For instance,
    117      1.42     rmind  * layer_getattr() must change the fsid being returned.  While layer_lock()
    118      1.42     rmind  * and layer_unlock() must handle any locking for the current vnode as well
    119      1.42     rmind  * as pass the lock request down.  layer_inactive() and layer_reclaim() are
    120      1.42     rmind  * not bypassed so that they can handle freeing layerfs-specific data.  Also,
    121      1.42     rmind  * certain vnode operations (create, mknod, remove, link, rename, mkdir,
    122      1.42     rmind  * rmdir, and symlink) change the locking state within the operation.  Ideally
    123      1.42     rmind  * these operations should not change the lock state, but should be changed
    124      1.42     rmind  * to let the caller of the function unlock them.  Otherwise, all intermediate
    125      1.42     rmind  * vnode layers (such as union, umapfs, etc) must catch these functions to do
    126       1.1  wrstuden  * the necessary locking at their layer.
    127       1.1  wrstuden  *
    128      1.42     rmind  * INSTANTIATING VNODE STACKS
    129       1.1  wrstuden  *
    130      1.42     rmind  * Mounting associates "layerfs-nodes" stack and lower layer, in effect
    131      1.42     rmind  * stacking two VFSes.  The initial mount creates a single vnode stack for
    132      1.42     rmind  * the root of the new layerfs.  All other vnode stacks are created as a
    133      1.42     rmind  * result of vnode operations on this or other layerfs vnode stacks.
    134       1.1  wrstuden  *
    135      1.42     rmind  * New vnode stacks come into existence as a result of an operation which
    136      1.42     rmind  * returns a vnode.  The bypass routine stacks a layerfs-node above the new
    137       1.1  wrstuden  * vnode before returning it to the caller.
    138       1.1  wrstuden  *
    139      1.42     rmind  * For example, imagine mounting a null layer with:
    140       1.1  wrstuden  *
    141      1.42     rmind  *	"mount_null /usr/include /dev/layer/null"
    142       1.1  wrstuden  *
    143      1.42     rmind  * Changing directory to /dev/layer/null will assign the root layerfs-node,
    144      1.42     rmind  * which was created when the null layer was mounted).  Now consider opening
    145      1.42     rmind  * "sys".  A layer_lookup() would be performed on the root layerfs-node.
    146      1.42     rmind  * This operation would bypass through to the lower layer which would return
    147      1.42     rmind  * a vnode representing the UFS "sys".  Then, layer_bypass() builds a
    148      1.42     rmind  * layerfs-node aliasing the UFS "sys" and returns this to the caller.
    149      1.42     rmind  * Later operations on the layerfs-node "sys" will repeat this process when
    150      1.42     rmind  * constructing other vnode stacks.
    151       1.1  wrstuden  *
    152       1.1  wrstuden  * INVOKING OPERATIONS ON LOWER LAYERS
    153       1.1  wrstuden  *
    154      1.42     rmind  * There are two techniques to invoke operations on a lower layer when the
    155      1.42     rmind  * operation cannot be completely bypassed.  Each method is appropriate in
    156      1.42     rmind  * different situations.  In both cases, it is the responsibility of the
    157      1.42     rmind  * aliasing layer to make the operation arguments "correct" for the lower
    158      1.42     rmind  * layer by mapping any vnode arguments to the lower layer.
    159      1.42     rmind  *
    160      1.42     rmind  * The first approach is to call the aliasing layer's bypass routine.  This
    161      1.42     rmind  * method is most suitable when you wish to invoke the operation currently
    162      1.42     rmind  * being handled on the lower layer.  It has the advantage that the bypass
    163      1.42     rmind  * routine already must do argument mapping.  An example of this is
    164      1.42     rmind  * layer_getattr().
    165      1.42     rmind  *
    166      1.42     rmind  * A second approach is to directly invoke vnode operations on the lower
    167      1.42     rmind  * layer with the VOP_OPERATIONNAME interface.  The advantage of this method
    168      1.42     rmind  * is that it is easy to invoke arbitrary operations on the lower layer.
    169      1.42     rmind  * The disadvantage is that vnode's arguments must be manually mapped.
    170       1.1  wrstuden  */
    171       1.8     lukem 
    172       1.8     lukem #include <sys/cdefs.h>
    173  1.50.8.1   msaitoh __KERNEL_RCSID(0, "$NetBSD: layer_vnops.c,v 1.50.8.1 2012/11/18 18:36:58 msaitoh Exp $");
    174       1.1  wrstuden 
    175       1.1  wrstuden #include <sys/param.h>
    176       1.1  wrstuden #include <sys/systm.h>
    177       1.1  wrstuden #include <sys/proc.h>
    178       1.1  wrstuden #include <sys/time.h>
    179       1.1  wrstuden #include <sys/vnode.h>
    180       1.1  wrstuden #include <sys/mount.h>
    181       1.1  wrstuden #include <sys/namei.h>
    182      1.34        ad #include <sys/kmem.h>
    183       1.1  wrstuden #include <sys/buf.h>
    184      1.27      elad #include <sys/kauth.h>
    185      1.27      elad 
    186       1.1  wrstuden #include <miscfs/genfs/layer.h>
    187       1.1  wrstuden #include <miscfs/genfs/layer_extern.h>
    188       1.1  wrstuden #include <miscfs/genfs/genfs.h>
    189      1.50   hannken #include <miscfs/specfs/specdev.h>
    190       1.1  wrstuden 
    191       1.1  wrstuden /*
    192       1.1  wrstuden  * This is the 08-June-99 bypass routine, based on the 10-Apr-92 bypass
    193       1.1  wrstuden  *		routine by John Heidemann.
    194       1.1  wrstuden  *	The new element for this version is that the whole nullfs
    195      1.40   hannken  * system gained the concept of locks on the lower node.
    196       1.1  wrstuden  *    The 10-Apr-92 version was optimized for speed, throwing away some
    197       1.1  wrstuden  * safety checks.  It should still always work, but it's not as
    198       1.1  wrstuden  * robust to programmer errors.
    199       1.1  wrstuden  *
    200       1.1  wrstuden  * In general, we map all vnodes going down and unmap them on the way back.
    201       1.1  wrstuden  *
    202       1.1  wrstuden  * Also, some BSD vnode operations have the side effect of vrele'ing
    203       1.1  wrstuden  * their arguments.  With stacking, the reference counts are held
    204       1.1  wrstuden  * by the upper node, not the lower one, so we must handle these
    205       1.1  wrstuden  * side-effects here.  This is not of concern in Sun-derived systems
    206       1.1  wrstuden  * since there are no such side-effects.
    207       1.1  wrstuden  *
    208       1.1  wrstuden  * New for the 08-June-99 version: we also handle operations which unlock
    209       1.1  wrstuden  * the passed-in node (typically they vput the node).
    210       1.1  wrstuden  *
    211       1.1  wrstuden  * This makes the following assumptions:
    212       1.1  wrstuden  * - only one returned vpp
    213       1.1  wrstuden  * - no INOUT vpp's (Sun's vop_open has one of these)
    214       1.1  wrstuden  * - the vnode operation vector of the first vnode should be used
    215       1.1  wrstuden  *   to determine what implementation of the op should be invoked
    216       1.1  wrstuden  * - all mapped vnodes are of our vnode-type (NEEDSWORK:
    217       1.1  wrstuden  *   problems on rmdir'ing mount points and renaming?)
    218      1.24     perry  */
    219       1.1  wrstuden int
    220      1.38       dsl layer_bypass(void *v)
    221       1.1  wrstuden {
    222       1.1  wrstuden 	struct vop_generic_args /* {
    223       1.1  wrstuden 		struct vnodeop_desc *a_desc;
    224       1.1  wrstuden 		<other random data follows, presumably>
    225       1.1  wrstuden 	} */ *ap = v;
    226      1.25   xtraeme 	int (**our_vnodeop_p)(void *);
    227       1.3  augustss 	struct vnode **this_vp_p;
    228      1.40   hannken 	int error;
    229       1.1  wrstuden 	struct vnode *old_vps[VDESC_MAX_VPS], *vp0;
    230       1.1  wrstuden 	struct vnode **vps_p[VDESC_MAX_VPS];
    231       1.1  wrstuden 	struct vnode ***vppp;
    232      1.33    dyoung 	struct mount *mp;
    233       1.1  wrstuden 	struct vnodeop_desc *descp = ap->a_desc;
    234       1.1  wrstuden 	int reles, i, flags;
    235       1.1  wrstuden 
    236      1.37    plunky #ifdef DIAGNOSTIC
    237       1.1  wrstuden 	/*
    238       1.1  wrstuden 	 * We require at least one vp.
    239       1.1  wrstuden 	 */
    240       1.1  wrstuden 	if (descp->vdesc_vp_offsets == NULL ||
    241       1.1  wrstuden 	    descp->vdesc_vp_offsets[0] == VDESC_NO_OFFSET)
    242      1.20      yamt 		panic("%s: no vp's in map.\n", __func__);
    243       1.1  wrstuden #endif
    244       1.1  wrstuden 
    245      1.20      yamt 	vps_p[0] =
    246      1.20      yamt 	    VOPARG_OFFSETTO(struct vnode**, descp->vdesc_vp_offsets[0], ap);
    247       1.1  wrstuden 	vp0 = *vps_p[0];
    248      1.33    dyoung 	mp = vp0->v_mount;
    249      1.33    dyoung 	flags = MOUNTTOLAYERMOUNT(mp)->layerm_flags;
    250       1.1  wrstuden 	our_vnodeop_p = vp0->v_op;
    251       1.1  wrstuden 
    252       1.1  wrstuden 	if (flags & LAYERFS_MBYPASSDEBUG)
    253      1.20      yamt 		printf("%s: %s\n", __func__, descp->vdesc_name);
    254       1.1  wrstuden 
    255       1.1  wrstuden 	/*
    256       1.1  wrstuden 	 * Map the vnodes going in.
    257       1.1  wrstuden 	 * Later, we'll invoke the operation based on
    258       1.1  wrstuden 	 * the first mapped vnode's operation vector.
    259       1.1  wrstuden 	 */
    260       1.1  wrstuden 	reles = descp->vdesc_flags;
    261       1.1  wrstuden 	for (i = 0; i < VDESC_MAX_VPS; reles >>= 1, i++) {
    262       1.1  wrstuden 		if (descp->vdesc_vp_offsets[i] == VDESC_NO_OFFSET)
    263       1.1  wrstuden 			break;   /* bail out at end of list */
    264      1.24     perry 		vps_p[i] = this_vp_p =
    265      1.20      yamt 		    VOPARG_OFFSETTO(struct vnode**, descp->vdesc_vp_offsets[i],
    266      1.20      yamt 		    ap);
    267       1.1  wrstuden 		/*
    268       1.1  wrstuden 		 * We're not guaranteed that any but the first vnode
    269       1.1  wrstuden 		 * are of our type.  Check for and don't map any
    270       1.1  wrstuden 		 * that aren't.  (We must always map first vp or vclean fails.)
    271       1.1  wrstuden 		 */
    272       1.1  wrstuden 		if (i && (*this_vp_p == NULL ||
    273       1.1  wrstuden 		    (*this_vp_p)->v_op != our_vnodeop_p)) {
    274       1.1  wrstuden 			old_vps[i] = NULL;
    275       1.1  wrstuden 		} else {
    276       1.1  wrstuden 			old_vps[i] = *this_vp_p;
    277       1.1  wrstuden 			*(vps_p[i]) = LAYERVPTOLOWERVP(*this_vp_p);
    278       1.1  wrstuden 			/*
    279       1.1  wrstuden 			 * XXX - Several operations have the side effect
    280       1.1  wrstuden 			 * of vrele'ing their vp's.  We must account for
    281       1.1  wrstuden 			 * that.  (This should go away in the future.)
    282       1.1  wrstuden 			 */
    283       1.1  wrstuden 			if (reles & VDESC_VP0_WILLRELE)
    284      1.39     pooka 				vref(*this_vp_p);
    285       1.1  wrstuden 		}
    286       1.1  wrstuden 	}
    287       1.1  wrstuden 
    288       1.1  wrstuden 	/*
    289       1.1  wrstuden 	 * Call the operation on the lower layer
    290       1.1  wrstuden 	 * with the modified argument structure.
    291       1.1  wrstuden 	 */
    292       1.1  wrstuden 	error = VCALL(*vps_p[0], descp->vdesc_offset, ap);
    293       1.1  wrstuden 
    294       1.1  wrstuden 	/*
    295       1.1  wrstuden 	 * Maintain the illusion of call-by-value
    296       1.1  wrstuden 	 * by restoring vnodes in the argument structure
    297       1.1  wrstuden 	 * to their original value.
    298       1.1  wrstuden 	 */
    299       1.1  wrstuden 	reles = descp->vdesc_flags;
    300       1.1  wrstuden 	for (i = 0; i < VDESC_MAX_VPS; reles >>= 1, i++) {
    301       1.1  wrstuden 		if (descp->vdesc_vp_offsets[i] == VDESC_NO_OFFSET)
    302       1.1  wrstuden 			break;   /* bail out at end of list */
    303       1.1  wrstuden 		if (old_vps[i]) {
    304       1.1  wrstuden 			*(vps_p[i]) = old_vps[i];
    305       1.1  wrstuden 			if (reles & VDESC_VP0_WILLRELE)
    306       1.1  wrstuden 				vrele(*(vps_p[i]));
    307       1.1  wrstuden 		}
    308       1.1  wrstuden 	}
    309       1.1  wrstuden 
    310       1.1  wrstuden 	/*
    311       1.1  wrstuden 	 * Map the possible out-going vpp
    312       1.1  wrstuden 	 * (Assumes that the lower layer always returns
    313       1.1  wrstuden 	 * a VREF'ed vpp unless it gets an error.)
    314       1.1  wrstuden 	 */
    315      1.47     rmind 	if (descp->vdesc_vpp_offset != VDESC_NO_OFFSET && !error) {
    316       1.1  wrstuden 		vppp = VOPARG_OFFSETTO(struct vnode***,
    317      1.20      yamt 				 descp->vdesc_vpp_offset, ap);
    318       1.1  wrstuden 		/*
    319       1.1  wrstuden 		 * Only vop_lookup, vop_create, vop_makedir, vop_bmap,
    320       1.7     assar 		 * vop_mknod, and vop_symlink return vpp's. vop_bmap
    321       1.1  wrstuden 		 * doesn't call bypass as the lower vpp is fine (we're just
    322      1.20      yamt 		 * going to do i/o on it). vop_lookup doesn't call bypass
    323       1.1  wrstuden 		 * as a lookup on "." would generate a locking error.
    324       1.1  wrstuden 		 * So all the calls which get us here have a locked vpp. :-)
    325       1.1  wrstuden 		 */
    326      1.33    dyoung 		error = layer_node_create(mp, **vppp, *vppp);
    327      1.19      yamt 		if (error) {
    328      1.19      yamt 			vput(**vppp);
    329      1.19      yamt 			**vppp = NULL;
    330      1.19      yamt 		}
    331       1.1  wrstuden 	}
    332      1.42     rmind 	return error;
    333       1.1  wrstuden }
    334       1.1  wrstuden 
    335       1.1  wrstuden /*
    336       1.1  wrstuden  * We have to carry on the locking protocol on the layer vnodes
    337       1.1  wrstuden  * as we progress through the tree. We also have to enforce read-only
    338       1.1  wrstuden  * if this layer is mounted read-only.
    339       1.1  wrstuden  */
    340       1.1  wrstuden int
    341      1.38       dsl layer_lookup(void *v)
    342       1.1  wrstuden {
    343       1.1  wrstuden 	struct vop_lookup_args /* {
    344       1.1  wrstuden 		struct vnodeop_desc *a_desc;
    345       1.1  wrstuden 		struct vnode * a_dvp;
    346       1.1  wrstuden 		struct vnode ** a_vpp;
    347       1.1  wrstuden 		struct componentname * a_cnp;
    348       1.1  wrstuden 	} */ *ap = v;
    349       1.1  wrstuden 	struct componentname *cnp = ap->a_cnp;
    350      1.29       chs 	struct vnode *dvp, *lvp, *ldvp;
    351      1.42     rmind 	int error, flags = cnp->cn_flags;
    352       1.1  wrstuden 
    353       1.1  wrstuden 	dvp = ap->a_dvp;
    354       1.1  wrstuden 
    355       1.1  wrstuden 	if ((flags & ISLASTCN) && (dvp->v_mount->mnt_flag & MNT_RDONLY) &&
    356  1.50.8.1   msaitoh 	    (cnp->cn_nameiop == DELETE || cnp->cn_nameiop == RENAME)) {
    357  1.50.8.1   msaitoh 		*ap->a_vpp = NULL;
    358      1.42     rmind 		return EROFS;
    359  1.50.8.1   msaitoh 	}
    360       1.1  wrstuden 
    361       1.1  wrstuden 	ldvp = LAYERVPTOLOWERVP(dvp);
    362       1.1  wrstuden 	ap->a_dvp = ldvp;
    363       1.1  wrstuden 	error = VCALL(ldvp, ap->a_desc->vdesc_offset, ap);
    364      1.29       chs 	lvp = *ap->a_vpp;
    365      1.18      yamt 	*ap->a_vpp = NULL;
    366       1.1  wrstuden 
    367       1.1  wrstuden 	if (error == EJUSTRETURN && (flags & ISLASTCN) &&
    368       1.1  wrstuden 	    (dvp->v_mount->mnt_flag & MNT_RDONLY) &&
    369       1.1  wrstuden 	    (cnp->cn_nameiop == CREATE || cnp->cn_nameiop == RENAME))
    370       1.1  wrstuden 		error = EROFS;
    371      1.29       chs 
    372       1.1  wrstuden 	/*
    373      1.24     perry 	 * We must do the same locking and unlocking at this layer as
    374      1.29       chs 	 * is done in the layers below us.
    375       1.1  wrstuden 	 */
    376      1.29       chs 	if (ldvp == lvp) {
    377       1.1  wrstuden 		/*
    378      1.36  dholland 		 * Got the same object back, because we looked up ".",
    379      1.36  dholland 		 * or ".." in the root node of a mount point.
    380      1.36  dholland 		 * So we make another reference to dvp and return it.
    381       1.1  wrstuden 		 */
    382      1.39     pooka 		vref(dvp);
    383       1.1  wrstuden 		*ap->a_vpp = dvp;
    384      1.29       chs 		vrele(lvp);
    385      1.29       chs 	} else if (lvp != NULL) {
    386      1.42     rmind 		/* Note: dvp, ldvp and lvp are all locked. */
    387      1.29       chs 		error = layer_node_create(dvp->v_mount, lvp, ap->a_vpp);
    388      1.19      yamt 		if (error) {
    389      1.29       chs 			vput(lvp);
    390      1.19      yamt 		}
    391       1.1  wrstuden 	}
    392      1.42     rmind 	return error;
    393       1.1  wrstuden }
    394       1.1  wrstuden 
    395       1.1  wrstuden /*
    396       1.1  wrstuden  * Setattr call. Disallow write attempts if the layer is mounted read-only.
    397       1.1  wrstuden  */
    398       1.1  wrstuden int
    399      1.38       dsl layer_setattr(void *v)
    400       1.1  wrstuden {
    401       1.1  wrstuden 	struct vop_setattr_args /* {
    402       1.1  wrstuden 		struct vnodeop_desc *a_desc;
    403       1.1  wrstuden 		struct vnode *a_vp;
    404       1.1  wrstuden 		struct vattr *a_vap;
    405      1.27      elad 		kauth_cred_t a_cred;
    406      1.26  christos 		struct lwp *a_l;
    407       1.1  wrstuden 	} */ *ap = v;
    408       1.1  wrstuden 	struct vnode *vp = ap->a_vp;
    409       1.1  wrstuden 	struct vattr *vap = ap->a_vap;
    410       1.1  wrstuden 
    411       1.1  wrstuden   	if ((vap->va_flags != VNOVAL || vap->va_uid != (uid_t)VNOVAL ||
    412       1.1  wrstuden 	    vap->va_gid != (gid_t)VNOVAL || vap->va_atime.tv_sec != VNOVAL ||
    413       1.1  wrstuden 	    vap->va_mtime.tv_sec != VNOVAL || vap->va_mode != (mode_t)VNOVAL) &&
    414       1.1  wrstuden 	    (vp->v_mount->mnt_flag & MNT_RDONLY))
    415      1.42     rmind 		return EROFS;
    416       1.1  wrstuden 	if (vap->va_size != VNOVAL) {
    417       1.1  wrstuden  		switch (vp->v_type) {
    418       1.1  wrstuden  		case VDIR:
    419      1.42     rmind  			return EISDIR;
    420       1.1  wrstuden  		case VCHR:
    421       1.1  wrstuden  		case VBLK:
    422       1.1  wrstuden  		case VSOCK:
    423       1.1  wrstuden  		case VFIFO:
    424      1.42     rmind 			return 0;
    425       1.1  wrstuden 		case VREG:
    426       1.1  wrstuden 		case VLNK:
    427       1.1  wrstuden  		default:
    428       1.1  wrstuden 			/*
    429       1.1  wrstuden 			 * Disallow write attempts if the filesystem is
    430       1.1  wrstuden 			 * mounted read-only.
    431       1.1  wrstuden 			 */
    432       1.1  wrstuden 			if (vp->v_mount->mnt_flag & MNT_RDONLY)
    433      1.42     rmind 				return EROFS;
    434       1.1  wrstuden 		}
    435       1.1  wrstuden 	}
    436      1.42     rmind 	return LAYERFS_DO_BYPASS(vp, ap);
    437       1.1  wrstuden }
    438       1.1  wrstuden 
    439       1.1  wrstuden /*
    440       1.1  wrstuden  *  We handle getattr only to change the fsid.
    441       1.1  wrstuden  */
    442       1.1  wrstuden int
    443      1.38       dsl layer_getattr(void *v)
    444       1.1  wrstuden {
    445       1.1  wrstuden 	struct vop_getattr_args /* {
    446       1.1  wrstuden 		struct vnode *a_vp;
    447       1.1  wrstuden 		struct vattr *a_vap;
    448      1.27      elad 		kauth_cred_t a_cred;
    449      1.26  christos 		struct lwp *a_l;
    450       1.1  wrstuden 	} */ *ap = v;
    451       1.1  wrstuden 	struct vnode *vp = ap->a_vp;
    452       1.1  wrstuden 	int error;
    453       1.1  wrstuden 
    454      1.42     rmind 	error = LAYERFS_DO_BYPASS(vp, ap);
    455      1.42     rmind 	if (error) {
    456      1.42     rmind 		return error;
    457      1.42     rmind 	}
    458       1.1  wrstuden 	/* Requires that arguments be restored. */
    459      1.15  christos 	ap->a_vap->va_fsid = vp->v_mount->mnt_stat.f_fsidx.__fsid_val[0];
    460      1.42     rmind 	return 0;
    461       1.1  wrstuden }
    462       1.1  wrstuden 
    463       1.1  wrstuden int
    464      1.38       dsl layer_access(void *v)
    465       1.1  wrstuden {
    466       1.1  wrstuden 	struct vop_access_args /* {
    467       1.1  wrstuden 		struct vnode *a_vp;
    468       1.1  wrstuden 		int  a_mode;
    469      1.27      elad 		kauth_cred_t a_cred;
    470      1.26  christos 		struct lwp *a_l;
    471       1.1  wrstuden 	} */ *ap = v;
    472       1.1  wrstuden 	struct vnode *vp = ap->a_vp;
    473       1.1  wrstuden 	mode_t mode = ap->a_mode;
    474       1.1  wrstuden 
    475       1.1  wrstuden 	/*
    476       1.1  wrstuden 	 * Disallow write attempts on read-only layers;
    477       1.1  wrstuden 	 * unless the file is a socket, fifo, or a block or
    478       1.1  wrstuden 	 * character device resident on the file system.
    479       1.1  wrstuden 	 */
    480       1.1  wrstuden 	if (mode & VWRITE) {
    481       1.1  wrstuden 		switch (vp->v_type) {
    482       1.1  wrstuden 		case VDIR:
    483       1.1  wrstuden 		case VLNK:
    484       1.1  wrstuden 		case VREG:
    485       1.1  wrstuden 			if (vp->v_mount->mnt_flag & MNT_RDONLY)
    486      1.42     rmind 				return EROFS;
    487       1.1  wrstuden 			break;
    488       1.1  wrstuden 		default:
    489       1.1  wrstuden 			break;
    490       1.1  wrstuden 		}
    491       1.1  wrstuden 	}
    492      1.42     rmind 	return LAYERFS_DO_BYPASS(vp, ap);
    493       1.1  wrstuden }
    494       1.1  wrstuden 
    495       1.1  wrstuden /*
    496       1.1  wrstuden  * We must handle open to be able to catch MNT_NODEV and friends.
    497       1.1  wrstuden  */
    498       1.1  wrstuden int
    499      1.38       dsl layer_open(void *v)
    500       1.1  wrstuden {
    501      1.42     rmind 	struct vop_open_args /* {
    502      1.42     rmind 		const struct vnodeop_desc *a_desc;
    503      1.42     rmind 		struct vnode *a_vp;
    504      1.42     rmind 		int a_mode;
    505      1.42     rmind 		kauth_cred_t a_cred;
    506      1.42     rmind 	} */ *ap = v;
    507       1.1  wrstuden 	struct vnode *vp = ap->a_vp;
    508       1.1  wrstuden 	enum vtype lower_type = LAYERVPTOLOWERVP(vp)->v_type;
    509       1.1  wrstuden 
    510       1.1  wrstuden 	if (((lower_type == VBLK) || (lower_type == VCHR)) &&
    511       1.1  wrstuden 	    (vp->v_mount->mnt_flag & MNT_NODEV))
    512       1.1  wrstuden 		return ENXIO;
    513       1.1  wrstuden 
    514       1.1  wrstuden 	return LAYERFS_DO_BYPASS(vp, ap);
    515       1.1  wrstuden }
    516       1.1  wrstuden 
    517       1.1  wrstuden /*
    518       1.1  wrstuden  * If vinvalbuf is calling us, it's a "shallow fsync" -- don't bother
    519       1.1  wrstuden  * syncing the underlying vnodes, since they'll be fsync'ed when
    520      1.42     rmind  * reclaimed; otherwise, pass it through to the underlying layer.
    521       1.1  wrstuden  *
    522       1.1  wrstuden  * XXX Do we still need to worry about shallow fsync?
    523       1.1  wrstuden  */
    524       1.1  wrstuden int
    525      1.38       dsl layer_fsync(void *v)
    526       1.1  wrstuden {
    527       1.1  wrstuden 	struct vop_fsync_args /* {
    528       1.1  wrstuden 		struct vnode *a_vp;
    529      1.27      elad 		kauth_cred_t a_cred;
    530       1.1  wrstuden 		int  a_flags;
    531       1.4      fvdl 		off_t offlo;
    532       1.4      fvdl 		off_t offhi;
    533      1.26  christos 		struct lwp *a_l;
    534       1.1  wrstuden 	} */ *ap = v;
    535      1.50   hannken 	int error;
    536       1.1  wrstuden 
    537       1.1  wrstuden 	if (ap->a_flags & FSYNC_RECLAIM) {
    538       1.1  wrstuden 		return 0;
    539       1.1  wrstuden 	}
    540      1.50   hannken 	if (ap->a_vp->v_type == VBLK || ap->a_vp->v_type == VCHR) {
    541      1.50   hannken 		error = spec_fsync(v);
    542      1.50   hannken 		if (error)
    543      1.50   hannken 			return error;
    544      1.50   hannken 	}
    545      1.42     rmind 	return LAYERFS_DO_BYPASS(ap->a_vp, ap);
    546       1.1  wrstuden }
    547       1.1  wrstuden 
    548       1.1  wrstuden int
    549      1.38       dsl layer_inactive(void *v)
    550       1.1  wrstuden {
    551       1.1  wrstuden 	struct vop_inactive_args /* {
    552       1.1  wrstuden 		struct vnode *a_vp;
    553      1.34        ad 		bool *a_recycle;
    554       1.1  wrstuden 	} */ *ap = v;
    555       1.5     enami 	struct vnode *vp = ap->a_vp;
    556       1.1  wrstuden 
    557       1.1  wrstuden 	/*
    558      1.44   hannken 	 * If we did a remove, don't cache the node.
    559      1.34        ad 	 */
    560      1.44   hannken 	*ap->a_recycle = ((VTOLAYER(vp)->layer_flags & LAYERFS_REMOVED) != 0);
    561      1.34        ad 
    562      1.34        ad 	/*
    563       1.1  wrstuden 	 * Do nothing (and _don't_ bypass).
    564       1.1  wrstuden 	 * Wait to vrele lowervp until reclaim,
    565       1.1  wrstuden 	 * so that until then our layer_node is in the
    566       1.1  wrstuden 	 * cache and reusable.
    567       1.1  wrstuden 	 *
    568       1.1  wrstuden 	 * NEEDSWORK: Someday, consider inactive'ing
    569       1.1  wrstuden 	 * the lowervp and then trying to reactivate it
    570       1.1  wrstuden 	 * with capabilities (v_id)
    571       1.1  wrstuden 	 * like they do in the name lookup cache code.
    572       1.1  wrstuden 	 * That's too much work for now.
    573       1.1  wrstuden 	 */
    574      1.41   hannken 	VOP_UNLOCK(vp);
    575      1.42     rmind 	return 0;
    576       1.1  wrstuden }
    577       1.1  wrstuden 
    578       1.1  wrstuden int
    579      1.38       dsl layer_remove(void *v)
    580      1.16  wrstuden {
    581      1.16  wrstuden 	struct vop_remove_args /* {
    582      1.16  wrstuden 		struct vonde		*a_dvp;
    583      1.16  wrstuden 		struct vnode		*a_vp;
    584      1.16  wrstuden 		struct componentname	*a_cnp;
    585      1.16  wrstuden 	} */ *ap = v;
    586      1.42     rmind 	struct vnode *vp = ap->a_vp;
    587      1.42     rmind 	int error;
    588      1.16  wrstuden 
    589      1.16  wrstuden 	vref(vp);
    590      1.42     rmind 	error = LAYERFS_DO_BYPASS(vp, ap);
    591      1.42     rmind 	if (error == 0) {
    592      1.16  wrstuden 		VTOLAYER(vp)->layer_flags |= LAYERFS_REMOVED;
    593      1.42     rmind 	}
    594      1.16  wrstuden 	vrele(vp);
    595      1.16  wrstuden 
    596      1.42     rmind 	return error;
    597      1.16  wrstuden }
    598      1.16  wrstuden 
    599      1.16  wrstuden int
    600      1.38       dsl layer_rename(void *v)
    601      1.17      yamt {
    602      1.17      yamt 	struct vop_rename_args  /* {
    603      1.17      yamt 		struct vnode		*a_fdvp;
    604      1.17      yamt 		struct vnode		*a_fvp;
    605      1.17      yamt 		struct componentname	*a_fcnp;
    606      1.17      yamt 		struct vnode		*a_tdvp;
    607      1.17      yamt 		struct vnode		*a_tvp;
    608      1.17      yamt 		struct componentname	*a_tcnp;
    609      1.17      yamt 	} */ *ap = v;
    610      1.42     rmind 	struct vnode *fdvp = ap->a_fdvp, *tvp;
    611      1.17      yamt 	int error;
    612      1.17      yamt 
    613      1.17      yamt 	tvp = ap->a_tvp;
    614      1.17      yamt 	if (tvp) {
    615      1.17      yamt 		if (tvp->v_mount != fdvp->v_mount)
    616      1.17      yamt 			tvp = NULL;
    617      1.17      yamt 		else
    618      1.17      yamt 			vref(tvp);
    619      1.17      yamt 	}
    620      1.17      yamt 	error = LAYERFS_DO_BYPASS(fdvp, ap);
    621      1.17      yamt 	if (tvp) {
    622      1.17      yamt 		if (error == 0)
    623      1.17      yamt 			VTOLAYER(tvp)->layer_flags |= LAYERFS_REMOVED;
    624      1.17      yamt 		vrele(tvp);
    625      1.17      yamt 	}
    626      1.42     rmind 	return error;
    627      1.17      yamt }
    628      1.17      yamt 
    629      1.17      yamt int
    630      1.38       dsl layer_rmdir(void *v)
    631      1.23   hannken {
    632      1.23   hannken 	struct vop_rmdir_args /* {
    633      1.23   hannken 		struct vnode		*a_dvp;
    634      1.23   hannken 		struct vnode		*a_vp;
    635      1.23   hannken 		struct componentname	*a_cnp;
    636      1.23   hannken 	} */ *ap = v;
    637      1.23   hannken 	int		error;
    638      1.23   hannken 	struct vnode	*vp = ap->a_vp;
    639      1.23   hannken 
    640      1.23   hannken 	vref(vp);
    641      1.42     rmind 	error = LAYERFS_DO_BYPASS(vp, ap);
    642      1.42     rmind 	if (error == 0) {
    643      1.23   hannken 		VTOLAYER(vp)->layer_flags |= LAYERFS_REMOVED;
    644      1.42     rmind 	}
    645      1.23   hannken 	vrele(vp);
    646      1.23   hannken 
    647      1.42     rmind 	return error;
    648      1.23   hannken }
    649      1.23   hannken 
    650      1.23   hannken int
    651      1.45   hannken layer_revoke(void *v)
    652      1.45   hannken {
    653      1.45   hannken         struct vop_revoke_args /* {
    654      1.45   hannken 		struct vnode *a_vp;
    655      1.45   hannken 		int a_flags;
    656      1.45   hannken 	} */ *ap = v;
    657      1.45   hannken 	struct vnode *vp = ap->a_vp;
    658      1.45   hannken 	struct vnode *lvp = LAYERVPTOLOWERVP(vp);
    659      1.46   hannken 	int error;
    660      1.45   hannken 
    661      1.45   hannken 	/*
    662      1.45   hannken 	 * We will most likely end up in vclean which uses the v_usecount
    663      1.46   hannken 	 * to determine if a vnode is active.  Take an extra reference on
    664      1.46   hannken 	 * the lower vnode so it will always close and inactivate.
    665      1.45   hannken 	 */
    666      1.46   hannken 	vref(lvp);
    667      1.45   hannken 	error = LAYERFS_DO_BYPASS(vp, ap);
    668      1.46   hannken 	vrele(lvp);
    669      1.45   hannken 
    670      1.45   hannken 	return error;
    671      1.45   hannken }
    672      1.45   hannken 
    673      1.45   hannken int
    674      1.38       dsl layer_reclaim(void *v)
    675       1.1  wrstuden {
    676       1.1  wrstuden 	struct vop_reclaim_args /* {
    677       1.1  wrstuden 		struct vnode *a_vp;
    678      1.26  christos 		struct lwp *a_l;
    679       1.1  wrstuden 	} */ *ap = v;
    680       1.1  wrstuden 	struct vnode *vp = ap->a_vp;
    681       1.1  wrstuden 	struct layer_mount *lmp = MOUNTTOLAYERMOUNT(vp->v_mount);
    682       1.1  wrstuden 	struct layer_node *xp = VTOLAYER(vp);
    683       1.1  wrstuden 	struct vnode *lowervp = xp->layer_lowervp;
    684       1.1  wrstuden 
    685       1.1  wrstuden 	/*
    686       1.1  wrstuden 	 * Note: in vop_reclaim, the node's struct lock has been
    687       1.1  wrstuden 	 * decomissioned, so we have to be careful about calling
    688      1.34        ad 	 * VOP's on ourself.  We must be careful as VXLOCK is set.
    689       1.1  wrstuden 	 */
    690      1.42     rmind 	if (vp == lmp->layerm_rootvp) {
    691       1.1  wrstuden 		/*
    692       1.1  wrstuden 		 * Oops! We no longer have a root node. Most likely reason is
    693       1.1  wrstuden 		 * that someone forcably unmunted the underlying fs.
    694       1.1  wrstuden 		 *
    695       1.1  wrstuden 		 * Now getting the root vnode will fail. We're dead. :-(
    696       1.1  wrstuden 		 */
    697       1.1  wrstuden 		lmp->layerm_rootvp = NULL;
    698       1.1  wrstuden 	}
    699      1.42     rmind 	/* After this assignment, this node will not be re-used. */
    700       1.1  wrstuden 	xp->layer_lowervp = NULL;
    701      1.32        ad 	mutex_enter(&lmp->layerm_hashlock);
    702       1.1  wrstuden 	LIST_REMOVE(xp, layer_hash);
    703      1.32        ad 	mutex_exit(&lmp->layerm_hashlock);
    704      1.34        ad 	kmem_free(vp->v_data, lmp->layerm_size);
    705       1.1  wrstuden 	vp->v_data = NULL;
    706      1.29       chs 	vrele(lowervp);
    707      1.34        ad 
    708      1.42     rmind 	return 0;
    709       1.1  wrstuden }
    710       1.1  wrstuden 
    711       1.1  wrstuden /*
    712       1.1  wrstuden  * We just feed the returned vnode up to the caller - there's no need
    713       1.1  wrstuden  * to build a layer node on top of the node on which we're going to do
    714       1.1  wrstuden  * i/o. :-)
    715       1.1  wrstuden  */
    716       1.1  wrstuden int
    717      1.38       dsl layer_bmap(void *v)
    718       1.1  wrstuden {
    719       1.1  wrstuden 	struct vop_bmap_args /* {
    720       1.1  wrstuden 		struct vnode *a_vp;
    721       1.1  wrstuden 		daddr_t  a_bn;
    722       1.1  wrstuden 		struct vnode **a_vpp;
    723       1.1  wrstuden 		daddr_t *a_bnp;
    724       1.1  wrstuden 		int *a_runp;
    725       1.1  wrstuden 	} */ *ap = v;
    726       1.1  wrstuden 	struct vnode *vp;
    727       1.1  wrstuden 
    728      1.42     rmind 	vp = LAYERVPTOLOWERVP(ap->a_vp);
    729      1.42     rmind 	ap->a_vp = vp;
    730       1.1  wrstuden 
    731      1.42     rmind 	return VCALL(vp, ap->a_desc->vdesc_offset, ap);
    732       1.1  wrstuden }
    733       1.1  wrstuden 
    734       1.1  wrstuden int
    735      1.38       dsl layer_print(void *v)
    736       1.1  wrstuden {
    737       1.1  wrstuden 	struct vop_print_args /* {
    738       1.1  wrstuden 		struct vnode *a_vp;
    739       1.1  wrstuden 	} */ *ap = v;
    740       1.3  augustss 	struct vnode *vp = ap->a_vp;
    741       1.1  wrstuden 	printf ("\ttag VT_LAYERFS, vp=%p, lowervp=%p\n", vp, LAYERVPTOLOWERVP(vp));
    742      1.42     rmind 	return 0;
    743       1.1  wrstuden }
    744       1.1  wrstuden 
    745      1.10       chs int
    746      1.38       dsl layer_getpages(void *v)
    747      1.10       chs {
    748      1.10       chs 	struct vop_getpages_args /* {
    749      1.10       chs 		struct vnode *a_vp;
    750      1.10       chs 		voff_t a_offset;
    751      1.10       chs 		struct vm_page **a_m;
    752      1.10       chs 		int *a_count;
    753      1.10       chs 		int a_centeridx;
    754      1.10       chs 		vm_prot_t a_access_type;
    755      1.10       chs 		int a_advice;
    756      1.10       chs 		int a_flags;
    757      1.10       chs 	} */ *ap = v;
    758      1.10       chs 	struct vnode *vp = ap->a_vp;
    759      1.10       chs 
    760      1.48     rmind 	KASSERT(mutex_owned(vp->v_interlock));
    761      1.10       chs 
    762      1.10       chs 	if (ap->a_flags & PGO_LOCKED) {
    763      1.10       chs 		return EBUSY;
    764      1.10       chs 	}
    765      1.10       chs 	ap->a_vp = LAYERVPTOLOWERVP(vp);
    766      1.48     rmind 	KASSERT(vp->v_interlock == ap->a_vp->v_interlock);
    767      1.48     rmind 
    768      1.48     rmind 	/* Just pass the request on to the underlying layer. */
    769      1.48     rmind 	return VCALL(ap->a_vp, VOFFSET(vop_getpages), ap);
    770      1.10       chs }
    771      1.10       chs 
    772      1.10       chs int
    773      1.38       dsl layer_putpages(void *v)
    774      1.10       chs {
    775      1.10       chs 	struct vop_putpages_args /* {
    776      1.10       chs 		struct vnode *a_vp;
    777      1.10       chs 		voff_t a_offlo;
    778      1.10       chs 		voff_t a_offhi;
    779      1.10       chs 		int a_flags;
    780      1.10       chs 	} */ *ap = v;
    781      1.10       chs 	struct vnode *vp = ap->a_vp;
    782      1.10       chs 
    783      1.48     rmind 	KASSERT(mutex_owned(vp->v_interlock));
    784      1.10       chs 
    785      1.10       chs 	ap->a_vp = LAYERVPTOLOWERVP(vp);
    786      1.48     rmind 	KASSERT(vp->v_interlock == ap->a_vp->v_interlock);
    787      1.48     rmind 
    788      1.30       chs 	if (ap->a_flags & PGO_RECLAIM) {
    789      1.48     rmind 		mutex_exit(vp->v_interlock);
    790      1.30       chs 		return 0;
    791      1.30       chs 	}
    792      1.48     rmind 
    793      1.48     rmind 	/* Just pass the request on to the underlying layer. */
    794      1.48     rmind 	return VCALL(ap->a_vp, VOFFSET(vop_putpages), ap);
    795       1.1  wrstuden }
    796