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lfs_vnops.c revision 1.248.2.1
      1  1.248.2.1     rmind /*	$NetBSD: lfs_vnops.c,v 1.248.2.1 2013/08/28 23:59:38 rmind Exp $	*/
      2        1.2       cgd 
      3       1.22  perseant /*-
      4       1.84  perseant  * Copyright (c) 1999, 2000, 2001, 2002, 2003 The NetBSD Foundation, Inc.
      5       1.22  perseant  * All rights reserved.
      6       1.22  perseant  *
      7       1.22  perseant  * This code is derived from software contributed to The NetBSD Foundation
      8       1.22  perseant  * by Konrad E. Schroder <perseant (at) hhhh.org>.
      9       1.22  perseant  *
     10       1.22  perseant  * Redistribution and use in source and binary forms, with or without
     11       1.22  perseant  * modification, are permitted provided that the following conditions
     12       1.22  perseant  * are met:
     13       1.22  perseant  * 1. Redistributions of source code must retain the above copyright
     14       1.22  perseant  *    notice, this list of conditions and the following disclaimer.
     15       1.22  perseant  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.22  perseant  *    notice, this list of conditions and the following disclaimer in the
     17       1.22  perseant  *    documentation and/or other materials provided with the distribution.
     18       1.22  perseant  *
     19       1.22  perseant  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20       1.22  perseant  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21       1.22  perseant  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22       1.22  perseant  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23       1.22  perseant  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24       1.22  perseant  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25       1.22  perseant  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26       1.22  perseant  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27       1.22  perseant  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28       1.22  perseant  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29       1.22  perseant  * POSSIBILITY OF SUCH DAMAGE.
     30       1.22  perseant  */
     31        1.1   mycroft /*
     32       1.15      fvdl  * Copyright (c) 1986, 1989, 1991, 1993, 1995
     33        1.1   mycroft  *	The Regents of the University of California.  All rights reserved.
     34        1.1   mycroft  *
     35        1.1   mycroft  * Redistribution and use in source and binary forms, with or without
     36        1.1   mycroft  * modification, are permitted provided that the following conditions
     37        1.1   mycroft  * are met:
     38        1.1   mycroft  * 1. Redistributions of source code must retain the above copyright
     39        1.1   mycroft  *    notice, this list of conditions and the following disclaimer.
     40        1.1   mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     41        1.1   mycroft  *    notice, this list of conditions and the following disclaimer in the
     42        1.1   mycroft  *    documentation and/or other materials provided with the distribution.
     43      1.114       agc  * 3. Neither the name of the University nor the names of its contributors
     44        1.1   mycroft  *    may be used to endorse or promote products derived from this software
     45        1.1   mycroft  *    without specific prior written permission.
     46        1.1   mycroft  *
     47        1.1   mycroft  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     48        1.1   mycroft  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     49        1.1   mycroft  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     50        1.1   mycroft  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     51        1.1   mycroft  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     52        1.1   mycroft  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     53        1.1   mycroft  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     54        1.1   mycroft  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     55        1.1   mycroft  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     56        1.1   mycroft  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     57        1.1   mycroft  * SUCH DAMAGE.
     58        1.1   mycroft  *
     59       1.15      fvdl  *	@(#)lfs_vnops.c	8.13 (Berkeley) 6/10/95
     60        1.1   mycroft  */
     61       1.58     lukem 
     62       1.58     lukem #include <sys/cdefs.h>
     63  1.248.2.1     rmind __KERNEL_RCSID(0, "$NetBSD: lfs_vnops.c,v 1.248.2.1 2013/08/28 23:59:38 rmind Exp $");
     64      1.182    martin 
     65      1.183    martin #ifdef _KERNEL_OPT
     66      1.182    martin #include "opt_compat_netbsd.h"
     67      1.238       chs #include "opt_uvm_page_trkown.h"
     68      1.183    martin #endif
     69       1.17  sommerfe 
     70        1.1   mycroft #include <sys/param.h>
     71        1.1   mycroft #include <sys/systm.h>
     72        1.1   mycroft #include <sys/namei.h>
     73        1.1   mycroft #include <sys/resourcevar.h>
     74        1.1   mycroft #include <sys/kernel.h>
     75        1.1   mycroft #include <sys/file.h>
     76        1.1   mycroft #include <sys/stat.h>
     77        1.1   mycroft #include <sys/buf.h>
     78        1.1   mycroft #include <sys/proc.h>
     79        1.1   mycroft #include <sys/mount.h>
     80        1.1   mycroft #include <sys/vnode.h>
     81       1.19   thorpej #include <sys/pool.h>
     82       1.10  christos #include <sys/signalvar.h>
     83      1.176      elad #include <sys/kauth.h>
     84      1.179  perseant #include <sys/syslog.h>
     85      1.197   hannken #include <sys/fstrans.h>
     86        1.1   mycroft 
     87       1.12   mycroft #include <miscfs/fifofs/fifo.h>
     88       1.12   mycroft #include <miscfs/genfs/genfs.h>
     89        1.1   mycroft #include <miscfs/specfs/specdev.h>
     90        1.1   mycroft 
     91      1.244  dholland #include <ufs/lfs/ulfs_inode.h>
     92      1.244  dholland #include <ufs/lfs/ulfsmount.h>
     93      1.244  dholland #include <ufs/lfs/ulfs_bswap.h>
     94      1.244  dholland #include <ufs/lfs/ulfs_extern.h>
     95        1.1   mycroft 
     96       1.84  perseant #include <uvm/uvm.h>
     97       1.95  perseant #include <uvm/uvm_pmap.h>
     98       1.95  perseant #include <uvm/uvm_stat.h>
     99       1.95  perseant #include <uvm/uvm_pager.h>
    100       1.84  perseant 
    101        1.1   mycroft #include <ufs/lfs/lfs.h>
    102  1.248.2.1     rmind #include <ufs/lfs/lfs_kernel.h>
    103        1.1   mycroft #include <ufs/lfs/lfs_extern.h>
    104        1.1   mycroft 
    105       1.91      yamt extern pid_t lfs_writer_daemon;
    106      1.203  perseant int lfs_ignore_lazy_sync = 1;
    107      1.203  perseant 
    108  1.248.2.1     rmind static int lfs_openextattr(void *v);
    109  1.248.2.1     rmind static int lfs_closeextattr(void *v);
    110  1.248.2.1     rmind static int lfs_getextattr(void *v);
    111  1.248.2.1     rmind static int lfs_setextattr(void *v);
    112  1.248.2.1     rmind static int lfs_listextattr(void *v);
    113  1.248.2.1     rmind static int lfs_deleteextattr(void *v);
    114  1.248.2.1     rmind 
    115        1.1   mycroft /* Global vfs data structures for lfs. */
    116       1.51  perseant int (**lfs_vnodeop_p)(void *);
    117       1.50  jdolecek const struct vnodeopv_entry_desc lfs_vnodeop_entries[] = {
    118        1.1   mycroft 	{ &vop_default_desc, vn_default_error },
    119      1.245  dholland 	{ &vop_lookup_desc, ulfs_lookup },		/* lookup */
    120       1.22  perseant 	{ &vop_create_desc, lfs_create },		/* create */
    121      1.245  dholland 	{ &vop_whiteout_desc, ulfs_whiteout },		/* whiteout */
    122       1.22  perseant 	{ &vop_mknod_desc, lfs_mknod },			/* mknod */
    123      1.245  dholland 	{ &vop_open_desc, ulfs_open },			/* open */
    124        1.1   mycroft 	{ &vop_close_desc, lfs_close },			/* close */
    125      1.245  dholland 	{ &vop_access_desc, ulfs_access },		/* access */
    126        1.1   mycroft 	{ &vop_getattr_desc, lfs_getattr },		/* getattr */
    127       1.61  perseant 	{ &vop_setattr_desc, lfs_setattr },		/* setattr */
    128        1.1   mycroft 	{ &vop_read_desc, lfs_read },			/* read */
    129        1.1   mycroft 	{ &vop_write_desc, lfs_write },			/* write */
    130      1.245  dholland 	{ &vop_ioctl_desc, ulfs_ioctl },		/* ioctl */
    131       1.90  perseant 	{ &vop_fcntl_desc, lfs_fcntl },			/* fcntl */
    132      1.245  dholland 	{ &vop_poll_desc, ulfs_poll },			/* poll */
    133       1.68  jdolecek 	{ &vop_kqfilter_desc, genfs_kqfilter },		/* kqfilter */
    134      1.245  dholland 	{ &vop_revoke_desc, ulfs_revoke },		/* revoke */
    135       1.84  perseant 	{ &vop_mmap_desc, lfs_mmap },			/* mmap */
    136        1.1   mycroft 	{ &vop_fsync_desc, lfs_fsync },			/* fsync */
    137      1.245  dholland 	{ &vop_seek_desc, ulfs_seek },			/* seek */
    138       1.22  perseant 	{ &vop_remove_desc, lfs_remove },		/* remove */
    139       1.22  perseant 	{ &vop_link_desc, lfs_link },			/* link */
    140       1.22  perseant 	{ &vop_rename_desc, lfs_rename },		/* rename */
    141       1.22  perseant 	{ &vop_mkdir_desc, lfs_mkdir },			/* mkdir */
    142       1.22  perseant 	{ &vop_rmdir_desc, lfs_rmdir },			/* rmdir */
    143       1.22  perseant 	{ &vop_symlink_desc, lfs_symlink },		/* symlink */
    144      1.245  dholland 	{ &vop_readdir_desc, ulfs_readdir },		/* readdir */
    145      1.245  dholland 	{ &vop_readlink_desc, ulfs_readlink },		/* readlink */
    146      1.245  dholland 	{ &vop_abortop_desc, ulfs_abortop },		/* abortop */
    147       1.40  perseant 	{ &vop_inactive_desc, lfs_inactive },		/* inactive */
    148        1.1   mycroft 	{ &vop_reclaim_desc, lfs_reclaim },		/* reclaim */
    149      1.245  dholland 	{ &vop_lock_desc, ulfs_lock },			/* lock */
    150      1.245  dholland 	{ &vop_unlock_desc, ulfs_unlock },		/* unlock */
    151      1.245  dholland 	{ &vop_bmap_desc, ulfs_bmap },			/* bmap */
    152       1.94  perseant 	{ &vop_strategy_desc, lfs_strategy },		/* strategy */
    153      1.245  dholland 	{ &vop_print_desc, ulfs_print },		/* print */
    154      1.245  dholland 	{ &vop_islocked_desc, ulfs_islocked },		/* islocked */
    155      1.245  dholland 	{ &vop_pathconf_desc, ulfs_pathconf },		/* pathconf */
    156      1.245  dholland 	{ &vop_advlock_desc, ulfs_advlock },		/* advlock */
    157        1.1   mycroft 	{ &vop_bwrite_desc, lfs_bwrite },		/* bwrite */
    158       1.60       chs 	{ &vop_getpages_desc, lfs_getpages },		/* getpages */
    159       1.60       chs 	{ &vop_putpages_desc, lfs_putpages },		/* putpages */
    160  1.248.2.1     rmind 	{ &vop_openextattr_desc, lfs_openextattr },	/* openextattr */
    161  1.248.2.1     rmind 	{ &vop_closeextattr_desc, lfs_closeextattr },	/* closeextattr */
    162  1.248.2.1     rmind 	{ &vop_getextattr_desc, lfs_getextattr },	/* getextattr */
    163  1.248.2.1     rmind 	{ &vop_setextattr_desc, lfs_setextattr },	/* setextattr */
    164  1.248.2.1     rmind 	{ &vop_listextattr_desc, lfs_listextattr },	/* listextattr */
    165  1.248.2.1     rmind 	{ &vop_deleteextattr_desc, lfs_deleteextattr },	/* deleteextattr */
    166       1.53       chs 	{ NULL, NULL }
    167        1.1   mycroft };
    168       1.50  jdolecek const struct vnodeopv_desc lfs_vnodeop_opv_desc =
    169        1.1   mycroft 	{ &lfs_vnodeop_p, lfs_vnodeop_entries };
    170        1.1   mycroft 
    171       1.51  perseant int (**lfs_specop_p)(void *);
    172       1.50  jdolecek const struct vnodeopv_entry_desc lfs_specop_entries[] = {
    173        1.1   mycroft 	{ &vop_default_desc, vn_default_error },
    174        1.1   mycroft 	{ &vop_lookup_desc, spec_lookup },		/* lookup */
    175        1.1   mycroft 	{ &vop_create_desc, spec_create },		/* create */
    176        1.1   mycroft 	{ &vop_mknod_desc, spec_mknod },		/* mknod */
    177        1.1   mycroft 	{ &vop_open_desc, spec_open },			/* open */
    178       1.65  perseant 	{ &vop_close_desc, lfsspec_close },		/* close */
    179      1.245  dholland 	{ &vop_access_desc, ulfs_access },		/* access */
    180        1.1   mycroft 	{ &vop_getattr_desc, lfs_getattr },		/* getattr */
    181       1.61  perseant 	{ &vop_setattr_desc, lfs_setattr },		/* setattr */
    182      1.245  dholland 	{ &vop_read_desc, ulfsspec_read },		/* read */
    183      1.245  dholland 	{ &vop_write_desc, ulfsspec_write },		/* write */
    184        1.1   mycroft 	{ &vop_ioctl_desc, spec_ioctl },		/* ioctl */
    185      1.245  dholland 	{ &vop_fcntl_desc, ulfs_fcntl },		/* fcntl */
    186       1.13   mycroft 	{ &vop_poll_desc, spec_poll },			/* poll */
    187       1.68  jdolecek 	{ &vop_kqfilter_desc, spec_kqfilter },		/* kqfilter */
    188       1.15      fvdl 	{ &vop_revoke_desc, spec_revoke },		/* revoke */
    189        1.1   mycroft 	{ &vop_mmap_desc, spec_mmap },			/* mmap */
    190        1.1   mycroft 	{ &vop_fsync_desc, spec_fsync },		/* fsync */
    191        1.1   mycroft 	{ &vop_seek_desc, spec_seek },			/* seek */
    192        1.1   mycroft 	{ &vop_remove_desc, spec_remove },		/* remove */
    193        1.1   mycroft 	{ &vop_link_desc, spec_link },			/* link */
    194        1.1   mycroft 	{ &vop_rename_desc, spec_rename },		/* rename */
    195        1.1   mycroft 	{ &vop_mkdir_desc, spec_mkdir },		/* mkdir */
    196        1.1   mycroft 	{ &vop_rmdir_desc, spec_rmdir },		/* rmdir */
    197        1.1   mycroft 	{ &vop_symlink_desc, spec_symlink },		/* symlink */
    198        1.1   mycroft 	{ &vop_readdir_desc, spec_readdir },		/* readdir */
    199        1.1   mycroft 	{ &vop_readlink_desc, spec_readlink },		/* readlink */
    200        1.1   mycroft 	{ &vop_abortop_desc, spec_abortop },		/* abortop */
    201       1.40  perseant 	{ &vop_inactive_desc, lfs_inactive },		/* inactive */
    202        1.1   mycroft 	{ &vop_reclaim_desc, lfs_reclaim },		/* reclaim */
    203      1.245  dholland 	{ &vop_lock_desc, ulfs_lock },			/* lock */
    204      1.245  dholland 	{ &vop_unlock_desc, ulfs_unlock },		/* unlock */
    205        1.1   mycroft 	{ &vop_bmap_desc, spec_bmap },			/* bmap */
    206        1.1   mycroft 	{ &vop_strategy_desc, spec_strategy },		/* strategy */
    207      1.245  dholland 	{ &vop_print_desc, ulfs_print },		/* print */
    208      1.245  dholland 	{ &vop_islocked_desc, ulfs_islocked },		/* islocked */
    209        1.1   mycroft 	{ &vop_pathconf_desc, spec_pathconf },		/* pathconf */
    210        1.1   mycroft 	{ &vop_advlock_desc, spec_advlock },		/* advlock */
    211       1.28  perseant 	{ &vop_bwrite_desc, vn_bwrite },		/* bwrite */
    212       1.53       chs 	{ &vop_getpages_desc, spec_getpages },		/* getpages */
    213       1.53       chs 	{ &vop_putpages_desc, spec_putpages },		/* putpages */
    214  1.248.2.1     rmind 	{ &vop_openextattr_desc, lfs_openextattr },	/* openextattr */
    215  1.248.2.1     rmind 	{ &vop_closeextattr_desc, lfs_closeextattr },	/* closeextattr */
    216  1.248.2.1     rmind 	{ &vop_getextattr_desc, lfs_getextattr },	/* getextattr */
    217  1.248.2.1     rmind 	{ &vop_setextattr_desc, lfs_setextattr },	/* setextattr */
    218  1.248.2.1     rmind 	{ &vop_listextattr_desc, lfs_listextattr },	/* listextattr */
    219  1.248.2.1     rmind 	{ &vop_deleteextattr_desc, lfs_deleteextattr },	/* deleteextattr */
    220       1.53       chs 	{ NULL, NULL }
    221        1.1   mycroft };
    222       1.50  jdolecek const struct vnodeopv_desc lfs_specop_opv_desc =
    223        1.1   mycroft 	{ &lfs_specop_p, lfs_specop_entries };
    224        1.1   mycroft 
    225       1.51  perseant int (**lfs_fifoop_p)(void *);
    226       1.50  jdolecek const struct vnodeopv_entry_desc lfs_fifoop_entries[] = {
    227        1.1   mycroft 	{ &vop_default_desc, vn_default_error },
    228      1.227     pooka 	{ &vop_lookup_desc, vn_fifo_bypass },		/* lookup */
    229      1.227     pooka 	{ &vop_create_desc, vn_fifo_bypass },		/* create */
    230      1.227     pooka 	{ &vop_mknod_desc, vn_fifo_bypass },		/* mknod */
    231      1.227     pooka 	{ &vop_open_desc, vn_fifo_bypass },		/* open */
    232       1.65  perseant 	{ &vop_close_desc, lfsfifo_close },		/* close */
    233      1.245  dholland 	{ &vop_access_desc, ulfs_access },		/* access */
    234        1.1   mycroft 	{ &vop_getattr_desc, lfs_getattr },		/* getattr */
    235       1.61  perseant 	{ &vop_setattr_desc, lfs_setattr },		/* setattr */
    236      1.245  dholland 	{ &vop_read_desc, ulfsfifo_read },		/* read */
    237      1.245  dholland 	{ &vop_write_desc, ulfsfifo_write },		/* write */
    238      1.227     pooka 	{ &vop_ioctl_desc, vn_fifo_bypass },		/* ioctl */
    239      1.245  dholland 	{ &vop_fcntl_desc, ulfs_fcntl },		/* fcntl */
    240      1.227     pooka 	{ &vop_poll_desc, vn_fifo_bypass },		/* poll */
    241      1.227     pooka 	{ &vop_kqfilter_desc, vn_fifo_bypass },		/* kqfilter */
    242      1.227     pooka 	{ &vop_revoke_desc, vn_fifo_bypass },		/* revoke */
    243      1.227     pooka 	{ &vop_mmap_desc, vn_fifo_bypass },		/* mmap */
    244      1.227     pooka 	{ &vop_fsync_desc, vn_fifo_bypass },		/* fsync */
    245      1.227     pooka 	{ &vop_seek_desc, vn_fifo_bypass },		/* seek */
    246      1.227     pooka 	{ &vop_remove_desc, vn_fifo_bypass },		/* remove */
    247      1.227     pooka 	{ &vop_link_desc, vn_fifo_bypass },		/* link */
    248      1.227     pooka 	{ &vop_rename_desc, vn_fifo_bypass },		/* rename */
    249      1.227     pooka 	{ &vop_mkdir_desc, vn_fifo_bypass },		/* mkdir */
    250      1.227     pooka 	{ &vop_rmdir_desc, vn_fifo_bypass },		/* rmdir */
    251      1.227     pooka 	{ &vop_symlink_desc, vn_fifo_bypass },		/* symlink */
    252      1.227     pooka 	{ &vop_readdir_desc, vn_fifo_bypass },		/* readdir */
    253      1.227     pooka 	{ &vop_readlink_desc, vn_fifo_bypass },		/* readlink */
    254      1.227     pooka 	{ &vop_abortop_desc, vn_fifo_bypass },		/* abortop */
    255       1.40  perseant 	{ &vop_inactive_desc, lfs_inactive },		/* inactive */
    256        1.1   mycroft 	{ &vop_reclaim_desc, lfs_reclaim },		/* reclaim */
    257      1.245  dholland 	{ &vop_lock_desc, ulfs_lock },			/* lock */
    258      1.245  dholland 	{ &vop_unlock_desc, ulfs_unlock },		/* unlock */
    259      1.227     pooka 	{ &vop_bmap_desc, vn_fifo_bypass },		/* bmap */
    260      1.227     pooka 	{ &vop_strategy_desc, vn_fifo_bypass },		/* strategy */
    261      1.245  dholland 	{ &vop_print_desc, ulfs_print },		/* print */
    262      1.245  dholland 	{ &vop_islocked_desc, ulfs_islocked },		/* islocked */
    263      1.227     pooka 	{ &vop_pathconf_desc, vn_fifo_bypass },		/* pathconf */
    264      1.227     pooka 	{ &vop_advlock_desc, vn_fifo_bypass },		/* advlock */
    265        1.1   mycroft 	{ &vop_bwrite_desc, lfs_bwrite },		/* bwrite */
    266      1.227     pooka 	{ &vop_putpages_desc, vn_fifo_bypass },		/* putpages */
    267  1.248.2.1     rmind 	{ &vop_openextattr_desc, lfs_openextattr },	/* openextattr */
    268  1.248.2.1     rmind 	{ &vop_closeextattr_desc, lfs_closeextattr },	/* closeextattr */
    269  1.248.2.1     rmind 	{ &vop_getextattr_desc, lfs_getextattr },	/* getextattr */
    270  1.248.2.1     rmind 	{ &vop_setextattr_desc, lfs_setextattr },	/* setextattr */
    271  1.248.2.1     rmind 	{ &vop_listextattr_desc, lfs_listextattr },	/* listextattr */
    272  1.248.2.1     rmind 	{ &vop_deleteextattr_desc, lfs_deleteextattr },	/* deleteextattr */
    273       1.53       chs 	{ NULL, NULL }
    274        1.1   mycroft };
    275       1.50  jdolecek const struct vnodeopv_desc lfs_fifoop_opv_desc =
    276        1.1   mycroft 	{ &lfs_fifoop_p, lfs_fifoop_entries };
    277        1.1   mycroft 
    278      1.203  perseant static int check_dirty(struct lfs *, struct vnode *, off_t, off_t, off_t, int, int, struct vm_page **);
    279      1.134  perseant 
    280        1.1   mycroft #define	LFS_READWRITE
    281      1.244  dholland #include <ufs/lfs/ulfs_readwrite.c>
    282        1.1   mycroft #undef	LFS_READWRITE
    283        1.1   mycroft 
    284        1.1   mycroft /*
    285        1.1   mycroft  * Synch an open file.
    286        1.1   mycroft  */
    287        1.1   mycroft /* ARGSUSED */
    288       1.10  christos int
    289       1.51  perseant lfs_fsync(void *v)
    290       1.10  christos {
    291        1.1   mycroft 	struct vop_fsync_args /* {
    292        1.1   mycroft 		struct vnode *a_vp;
    293      1.176      elad 		kauth_cred_t a_cred;
    294       1.22  perseant 		int a_flags;
    295       1.49    toshii 		off_t offlo;
    296       1.49    toshii 		off_t offhi;
    297       1.10  christos 	} */ *ap = v;
    298       1.60       chs 	struct vnode *vp = ap->a_vp;
    299       1.84  perseant 	int error, wait;
    300      1.203  perseant 	struct inode *ip = VTOI(vp);
    301      1.203  perseant 	struct lfs *fs = ip->i_lfs;
    302       1.84  perseant 
    303      1.161  perseant 	/* If we're mounted read-only, don't try to sync. */
    304      1.203  perseant 	if (fs->lfs_ronly)
    305      1.161  perseant 		return 0;
    306      1.161  perseant 
    307      1.231   hannken 	/* If a removed vnode is being cleaned, no need to sync here. */
    308      1.231   hannken 	if ((ap->a_flags & FSYNC_RECLAIM) != 0 && ip->i_mode == 0)
    309      1.231   hannken 		return 0;
    310      1.231   hannken 
    311       1.86  perseant 	/*
    312      1.203  perseant 	 * Trickle sync simply adds this vnode to the pager list, as if
    313      1.203  perseant 	 * the pagedaemon had requested a pageout.
    314       1.86  perseant 	 */
    315       1.84  perseant 	if (ap->a_flags & FSYNC_LAZY) {
    316      1.203  perseant 		if (lfs_ignore_lazy_sync == 0) {
    317      1.214        ad 			mutex_enter(&lfs_lock);
    318      1.203  perseant 			if (!(ip->i_flags & IN_PAGING)) {
    319      1.203  perseant 				ip->i_flags |= IN_PAGING;
    320      1.203  perseant 				TAILQ_INSERT_TAIL(&fs->lfs_pchainhd, ip,
    321      1.203  perseant 						  i_lfs_pchain);
    322      1.203  perseant 			}
    323      1.203  perseant 			wakeup(&lfs_writer_daemon);
    324      1.214        ad 			mutex_exit(&lfs_lock);
    325      1.203  perseant 		}
    326       1.47  perseant 		return 0;
    327       1.84  perseant 	}
    328       1.47  perseant 
    329      1.175  perseant 	/*
    330      1.188  perseant 	 * If a vnode is bring cleaned, flush it out before we try to
    331      1.188  perseant 	 * reuse it.  This prevents the cleaner from writing files twice
    332      1.188  perseant 	 * in the same partial segment, causing an accounting underflow.
    333      1.188  perseant 	 */
    334      1.203  perseant 	if (ap->a_flags & FSYNC_RECLAIM && ip->i_flags & IN_CLEANING) {
    335      1.188  perseant 		lfs_vflush(vp);
    336      1.175  perseant 	}
    337      1.175  perseant 
    338       1.84  perseant 	wait = (ap->a_flags & FSYNC_WAIT);
    339      1.203  perseant 	do {
    340      1.235     rmind 		mutex_enter(vp->v_interlock);
    341      1.203  perseant 		error = VOP_PUTPAGES(vp, trunc_page(ap->a_offlo),
    342      1.203  perseant 				     round_page(ap->a_offhi),
    343      1.203  perseant 				     PGO_CLEANIT | (wait ? PGO_SYNCIO : 0));
    344      1.205  perseant 		if (error == EAGAIN) {
    345      1.214        ad 			mutex_enter(&lfs_lock);
    346      1.214        ad 			mtsleep(&fs->lfs_avail, PCATCH | PUSER, "lfs_fsync",
    347      1.214        ad 				hz / 100 + 1, &lfs_lock);
    348      1.214        ad 			mutex_exit(&lfs_lock);
    349      1.205  perseant 		}
    350      1.203  perseant 	} while (error == EAGAIN);
    351      1.103  perseant 	if (error)
    352      1.103  perseant 		return error;
    353      1.203  perseant 
    354      1.203  perseant 	if ((ap->a_flags & FSYNC_DATAONLY) == 0)
    355      1.203  perseant 		error = lfs_update(vp, NULL, NULL, wait ? UPDATE_WAIT : 0);
    356      1.203  perseant 
    357      1.133  wrstuden 	if (error == 0 && ap->a_flags & FSYNC_CACHE) {
    358      1.133  wrstuden 		int l = 0;
    359      1.203  perseant 		error = VOP_IOCTL(ip->i_devvp, DIOCCACHESYNC, &l, FWRITE,
    360      1.213     pooka 				  curlwp->l_cred);
    361      1.133  wrstuden 	}
    362      1.103  perseant 	if (wait && !VPISEMPTY(vp))
    363      1.203  perseant 		LFS_SET_UINO(ip, IN_MODIFIED);
    364       1.84  perseant 
    365       1.63  perseant 	return error;
    366        1.1   mycroft }
    367        1.1   mycroft 
    368        1.1   mycroft /*
    369      1.245  dholland  * Take IN_ADIROP off, then call ulfs_inactive.
    370       1.40  perseant  */
    371       1.40  perseant int
    372       1.51  perseant lfs_inactive(void *v)
    373       1.40  perseant {
    374       1.40  perseant 	struct vop_inactive_args /* {
    375       1.40  perseant 		struct vnode *a_vp;
    376       1.40  perseant 	} */ *ap = v;
    377       1.72      yamt 
    378       1.76      yamt 	lfs_unmark_vnode(ap->a_vp);
    379       1.76      yamt 
    380       1.97  perseant 	/*
    381       1.97  perseant 	 * The Ifile is only ever inactivated on unmount.
    382       1.97  perseant 	 * Streamline this process by not giving it more dirty blocks.
    383       1.97  perseant 	 */
    384       1.97  perseant 	if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM) {
    385      1.214        ad 		mutex_enter(&lfs_lock);
    386       1.97  perseant 		LFS_CLR_UINO(VTOI(ap->a_vp), IN_ALLMOD);
    387      1.214        ad 		mutex_exit(&lfs_lock);
    388      1.229   hannken 		VOP_UNLOCK(ap->a_vp);
    389       1.97  perseant 		return 0;
    390       1.97  perseant 	}
    391       1.97  perseant 
    392      1.239  perseant #ifdef DEBUG
    393      1.239  perseant 	/*
    394      1.239  perseant 	 * This might happen on unmount.
    395      1.239  perseant 	 * XXX If it happens at any other time, it should be a panic.
    396      1.239  perseant 	 */
    397      1.239  perseant 	if (ap->a_vp->v_uflag & VU_DIROP) {
    398      1.239  perseant 		struct inode *ip = VTOI(ap->a_vp);
    399      1.239  perseant 		printf("lfs_inactive: inactivating VU_DIROP? ino = %d\n", (int)ip->i_number);
    400      1.239  perseant 	}
    401      1.239  perseant #endif /* DIAGNOSTIC */
    402      1.239  perseant 
    403      1.245  dholland 	return ulfs_inactive(v);
    404       1.40  perseant }
    405       1.40  perseant 
    406  1.248.2.1     rmind int
    407      1.138  perseant lfs_set_dirop(struct vnode *dvp, struct vnode *vp)
    408       1.40  perseant {
    409       1.24  perseant 	struct lfs *fs;
    410       1.24  perseant 	int error;
    411       1.24  perseant 
    412      1.138  perseant 	KASSERT(VOP_ISLOCKED(dvp));
    413      1.138  perseant 	KASSERT(vp == NULL || VOP_ISLOCKED(vp));
    414       1.71      yamt 
    415      1.138  perseant 	fs = VTOI(dvp)->i_lfs;
    416      1.141  perseant 
    417      1.141  perseant 	ASSERT_NO_SEGLOCK(fs);
    418       1.44  perseant 	/*
    419      1.134  perseant 	 * LFS_NRESERVE calculates direct and indirect blocks as well
    420      1.134  perseant 	 * as an inode block; an overestimate in most cases.
    421       1.44  perseant 	 */
    422      1.138  perseant 	if ((error = lfs_reserve(fs, dvp, vp, LFS_NRESERVE(fs))) != 0)
    423       1.44  perseant 		return (error);
    424       1.70      yamt 
    425      1.214        ad     restart:
    426      1.214        ad 	mutex_enter(&lfs_lock);
    427      1.141  perseant 	if (fs->lfs_dirops == 0) {
    428      1.214        ad 		mutex_exit(&lfs_lock);
    429      1.138  perseant 		lfs_check(dvp, LFS_UNUSED_LBN, 0);
    430      1.214        ad 		mutex_enter(&lfs_lock);
    431      1.113      yamt 	}
    432      1.190  perseant 	while (fs->lfs_writer) {
    433      1.214        ad 		error = mtsleep(&fs->lfs_dirops, (PRIBIO + 1) | PCATCH,
    434      1.214        ad 		    "lfs_sdirop", 0, &lfs_lock);
    435      1.190  perseant 		if (error == EINTR) {
    436      1.214        ad 			mutex_exit(&lfs_lock);
    437      1.190  perseant 			goto unreserve;
    438      1.190  perseant 		}
    439      1.190  perseant 	}
    440      1.113      yamt 	if (lfs_dirvcount > LFS_MAX_DIROP && fs->lfs_dirops == 0) {
    441      1.113      yamt 		wakeup(&lfs_writer_daemon);
    442      1.214        ad 		mutex_exit(&lfs_lock);
    443      1.198        ad 		preempt();
    444      1.113      yamt 		goto restart;
    445      1.113      yamt 	}
    446       1.33  perseant 
    447      1.113      yamt 	if (lfs_dirvcount > LFS_MAX_DIROP) {
    448      1.136  perseant 		DLOG((DLOG_DIROP, "lfs_set_dirop: sleeping with dirops=%d, "
    449      1.136  perseant 		      "dirvcount=%d\n", fs->lfs_dirops, lfs_dirvcount));
    450      1.214        ad 		if ((error = mtsleep(&lfs_dirvcount,
    451      1.214        ad 		    PCATCH | PUSER | PNORELOCK, "lfs_maxdirop", 0,
    452      1.214        ad 		    &lfs_lock)) != 0) {
    453      1.113      yamt 			goto unreserve;
    454      1.113      yamt 		}
    455      1.113      yamt 		goto restart;
    456      1.135     perry 	}
    457      1.113      yamt 
    458      1.135     perry 	++fs->lfs_dirops;
    459      1.239  perseant 	/* fs->lfs_doifile = 1; */ /* XXX why? --ks */
    460      1.214        ad 	mutex_exit(&lfs_lock);
    461       1.24  perseant 
    462       1.46  perseant 	/* Hold a reference so SET_ENDOP will be happy */
    463      1.138  perseant 	vref(dvp);
    464      1.138  perseant 	if (vp) {
    465      1.138  perseant 		vref(vp);
    466      1.138  perseant 		MARK_VNODE(vp);
    467      1.138  perseant 	}
    468       1.46  perseant 
    469      1.138  perseant 	MARK_VNODE(dvp);
    470       1.24  perseant 	return 0;
    471       1.70      yamt 
    472      1.203  perseant   unreserve:
    473      1.138  perseant 	lfs_reserve(fs, dvp, vp, -LFS_NRESERVE(fs));
    474       1.70      yamt 	return error;
    475        1.1   mycroft }
    476        1.1   mycroft 
    477      1.138  perseant /*
    478      1.138  perseant  * Get a new vnode *before* adjusting the dirop count, to avoid a deadlock
    479      1.138  perseant  * in getnewvnode(), if we have a stacked filesystem mounted on top
    480      1.138  perseant  * of us.
    481      1.138  perseant  *
    482      1.138  perseant  * NB: this means we have to clear the new vnodes on error.  Fortunately
    483      1.138  perseant  * SET_ENDOP is there to do that for us.
    484      1.138  perseant  */
    485  1.248.2.1     rmind int
    486      1.138  perseant lfs_set_dirop_create(struct vnode *dvp, struct vnode **vpp)
    487      1.138  perseant {
    488      1.138  perseant 	int error;
    489      1.138  perseant 	struct lfs *fs;
    490      1.138  perseant 
    491      1.245  dholland 	fs = VFSTOULFS(dvp->v_mount)->um_lfs;
    492      1.141  perseant 	ASSERT_NO_SEGLOCK(fs);
    493      1.138  perseant 	if (fs->lfs_ronly)
    494      1.138  perseant 		return EROFS;
    495      1.235     rmind 	if (vpp == NULL) {
    496      1.235     rmind 		return lfs_set_dirop(dvp, NULL);
    497      1.235     rmind 	}
    498      1.235     rmind 	error = getnewvnode(VT_LFS, dvp->v_mount, lfs_vnodeop_p, NULL, vpp);
    499      1.235     rmind 	if (error) {
    500      1.138  perseant 		DLOG((DLOG_ALLOC, "lfs_set_dirop_create: dvp %p error %d\n",
    501      1.138  perseant 		      dvp, error));
    502      1.138  perseant 		return error;
    503      1.138  perseant 	}
    504      1.138  perseant 	if ((error = lfs_set_dirop(dvp, NULL)) != 0) {
    505      1.235     rmind 		ungetnewvnode(*vpp);
    506      1.235     rmind 		*vpp = NULL;
    507      1.138  perseant 		return error;
    508      1.138  perseant 	}
    509      1.138  perseant 	return 0;
    510        1.1   mycroft }
    511        1.1   mycroft 
    512      1.117      yamt void
    513      1.117      yamt lfs_mark_vnode(struct vnode *vp)
    514      1.117      yamt {
    515      1.117      yamt 	struct inode *ip = VTOI(vp);
    516      1.117      yamt 	struct lfs *fs = ip->i_lfs;
    517       1.37  perseant 
    518      1.214        ad 	mutex_enter(&lfs_lock);
    519      1.117      yamt 	if (!(ip->i_flag & IN_ADIROP)) {
    520      1.212        ad 		if (!(vp->v_uflag & VU_DIROP)) {
    521      1.240  perseant 			mutex_exit(&lfs_lock);
    522      1.235     rmind 			mutex_enter(vp->v_interlock);
    523      1.239  perseant 			if (lfs_vref(vp) != 0)
    524      1.239  perseant 				panic("lfs_mark_vnode: could not vref");
    525      1.240  perseant 			mutex_enter(&lfs_lock);
    526      1.117      yamt 			++lfs_dirvcount;
    527      1.173  perseant 			++fs->lfs_dirvcount;
    528      1.117      yamt 			TAILQ_INSERT_TAIL(&fs->lfs_dchainhd, ip, i_lfs_dchain);
    529      1.212        ad 			vp->v_uflag |= VU_DIROP;
    530      1.117      yamt 		}
    531      1.117      yamt 		++fs->lfs_nadirop;
    532      1.239  perseant 		ip->i_flag &= ~IN_CDIROP;
    533      1.117      yamt 		ip->i_flag |= IN_ADIROP;
    534      1.117      yamt 	} else
    535      1.212        ad 		KASSERT(vp->v_uflag & VU_DIROP);
    536      1.214        ad 	mutex_exit(&lfs_lock);
    537      1.117      yamt }
    538       1.40  perseant 
    539      1.117      yamt void
    540      1.117      yamt lfs_unmark_vnode(struct vnode *vp)
    541       1.40  perseant {
    542      1.117      yamt 	struct inode *ip = VTOI(vp);
    543       1.40  perseant 
    544      1.240  perseant 	mutex_enter(&lfs_lock);
    545      1.146  perseant 	if (ip && (ip->i_flag & IN_ADIROP)) {
    546      1.212        ad 		KASSERT(vp->v_uflag & VU_DIROP);
    547       1.40  perseant 		--ip->i_lfs->lfs_nadirop;
    548      1.117      yamt 		ip->i_flag &= ~IN_ADIROP;
    549      1.117      yamt 	}
    550      1.240  perseant 	mutex_exit(&lfs_lock);
    551       1.40  perseant }
    552       1.15      fvdl 
    553        1.1   mycroft int
    554       1.51  perseant lfs_symlink(void *v)
    555       1.10  christos {
    556        1.1   mycroft 	struct vop_symlink_args /* {
    557        1.1   mycroft 		struct vnode *a_dvp;
    558        1.1   mycroft 		struct vnode **a_vpp;
    559        1.1   mycroft 		struct componentname *a_cnp;
    560        1.1   mycroft 		struct vattr *a_vap;
    561        1.1   mycroft 		char *a_target;
    562       1.10  christos 	} */ *ap = v;
    563       1.37  perseant 	int error;
    564        1.1   mycroft 
    565      1.138  perseant 	if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
    566       1.34  perseant 		vput(ap->a_dvp);
    567       1.37  perseant 		return error;
    568       1.34  perseant 	}
    569      1.245  dholland 	error = ulfs_symlink(ap);
    570      1.138  perseant 	SET_ENDOP_CREATE_AP(ap, "symlink");
    571       1.37  perseant 	return (error);
    572        1.1   mycroft }
    573        1.1   mycroft 
    574        1.1   mycroft int
    575       1.51  perseant lfs_mknod(void *v)
    576       1.10  christos {
    577       1.22  perseant 	struct vop_mknod_args	/* {
    578        1.1   mycroft 		struct vnode *a_dvp;
    579        1.1   mycroft 		struct vnode **a_vpp;
    580        1.1   mycroft 		struct componentname *a_cnp;
    581        1.1   mycroft 		struct vattr *a_vap;
    582      1.203  perseant 	} */ *ap = v;
    583  1.248.2.1     rmind 	struct vattr *vap;
    584  1.248.2.1     rmind 	struct vnode **vpp;
    585       1.86  perseant 	struct inode *ip;
    586       1.86  perseant 	int error;
    587      1.135     perry 	struct mount	*mp;
    588       1.52     assar 	ino_t		ino;
    589      1.245  dholland 	struct ulfs_lookup_results *ulr;
    590      1.237  dholland 
    591  1.248.2.1     rmind 	vap = ap->a_vap;
    592  1.248.2.1     rmind 	vpp = ap->a_vpp;
    593  1.248.2.1     rmind 
    594      1.237  dholland 	/* XXX should handle this material another way */
    595      1.237  dholland 	ulr = &VTOI(ap->a_dvp)->i_crap;
    596      1.245  dholland 	ULFS_CHECK_CRAPCOUNTER(VTOI(ap->a_dvp));
    597        1.1   mycroft 
    598      1.138  perseant 	if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
    599       1.34  perseant 		vput(ap->a_dvp);
    600       1.28  perseant 		return error;
    601       1.34  perseant 	}
    602  1.248.2.1     rmind 
    603  1.248.2.1     rmind 	fstrans_start(ap->a_dvp->v_mount, FSTRANS_SHARED);
    604      1.245  dholland 	error = ulfs_makeinode(MAKEIMODE(vap->va_type, vap->va_mode),
    605      1.237  dholland 			      ap->a_dvp, ulr, vpp, ap->a_cnp);
    606       1.28  perseant 
    607       1.28  perseant 	/* Either way we're done with the dirop at this point */
    608      1.138  perseant 	SET_ENDOP_CREATE_AP(ap, "mknod");
    609       1.28  perseant 
    610  1.248.2.1     rmind 	if (error) {
    611  1.248.2.1     rmind 		fstrans_done(ap->a_dvp->v_mount);
    612  1.248.2.1     rmind 		*vpp = NULL;
    613       1.28  perseant 		return (error);
    614  1.248.2.1     rmind 	}
    615       1.28  perseant 
    616  1.248.2.1     rmind 	VN_KNOTE(ap->a_dvp, NOTE_WRITE);
    617       1.86  perseant 	ip = VTOI(*vpp);
    618       1.52     assar 	mp  = (*vpp)->v_mount;
    619       1.52     assar 	ino = ip->i_number;
    620       1.86  perseant 	ip->i_flag |= IN_ACCESS | IN_CHANGE | IN_UPDATE;
    621       1.86  perseant 	if (vap->va_rdev != VNOVAL) {
    622  1.248.2.1     rmind 		struct ulfsmount *ump = ip->i_ump;
    623  1.248.2.1     rmind 		struct lfs *fs = ip->i_lfs;
    624  1.248.2.1     rmind 		(void)fs; /* temporary: needed when LFS_EI is off */
    625       1.86  perseant 		/*
    626       1.86  perseant 		 * Want to be able to use this to make badblock
    627       1.86  perseant 		 * inodes, so don't truncate the dev number.
    628       1.86  perseant 		 */
    629  1.248.2.1     rmind 		if (ump->um_fstype == ULFS1)
    630  1.248.2.1     rmind 			ip->i_ffs1_rdev = ulfs_rw32(vap->va_rdev,
    631  1.248.2.1     rmind 			    ULFS_MPNEEDSWAP(fs));
    632  1.248.2.1     rmind 		else
    633  1.248.2.1     rmind 			ip->i_ffs2_rdev = ulfs_rw64(vap->va_rdev,
    634  1.248.2.1     rmind 			    ULFS_MPNEEDSWAP(fs));
    635       1.86  perseant 	}
    636      1.134  perseant 
    637       1.28  perseant 	/*
    638       1.28  perseant 	 * Call fsync to write the vnode so that we don't have to deal with
    639      1.212        ad 	 * flushing it when it's marked VU_DIROP|VI_XLOCK.
    640       1.28  perseant 	 *
    641       1.28  perseant 	 * XXX KS - If we can't flush we also can't call vgone(), so must
    642       1.28  perseant 	 * return.  But, that leaves this vnode in limbo, also not good.
    643       1.28  perseant 	 * Can this ever happen (barring hardware failure)?
    644       1.28  perseant 	 */
    645      1.213     pooka 	if ((error = VOP_FSYNC(*vpp, NOCRED, FSYNC_WAIT, 0, 0)) != 0) {
    646      1.153  christos 		panic("lfs_mknod: couldn't fsync (ino %llu)",
    647      1.203  perseant 		      (unsigned long long)ino);
    648      1.136  perseant 		/* return (error); */
    649       1.40  perseant 	}
    650       1.86  perseant 	/*
    651       1.86  perseant 	 * Remove vnode so that it will be reloaded by VFS_VGET and
    652       1.86  perseant 	 * checked to see if it is an alias of an existing entry in
    653       1.86  perseant 	 * the inode cache.
    654       1.86  perseant 	 */
    655       1.28  perseant 	/* Used to be vput, but that causes us to call VOP_INACTIVE twice. */
    656      1.134  perseant 
    657       1.86  perseant 	(*vpp)->v_type = VNON;
    658  1.248.2.1     rmind 	VOP_UNLOCK(*vpp);
    659       1.86  perseant 	vgone(*vpp);
    660      1.108   thorpej 	error = VFS_VGET(mp, ino, vpp);
    661      1.134  perseant 
    662  1.248.2.1     rmind 	fstrans_done(ap->a_dvp->v_mount);
    663       1.52     assar 	if (error != 0) {
    664       1.52     assar 		*vpp = NULL;
    665       1.52     assar 		return (error);
    666       1.52     assar 	}
    667       1.86  perseant 	return (0);
    668        1.1   mycroft }
    669        1.1   mycroft 
    670        1.1   mycroft int
    671       1.51  perseant lfs_create(void *v)
    672       1.10  christos {
    673       1.22  perseant 	struct vop_create_args	/* {
    674        1.1   mycroft 		struct vnode *a_dvp;
    675        1.1   mycroft 		struct vnode **a_vpp;
    676        1.1   mycroft 		struct componentname *a_cnp;
    677        1.1   mycroft 		struct vattr *a_vap;
    678       1.10  christos 	} */ *ap = v;
    679       1.37  perseant 	int error;
    680        1.1   mycroft 
    681      1.138  perseant 	if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
    682       1.34  perseant 		vput(ap->a_dvp);
    683       1.37  perseant 		return error;
    684       1.34  perseant 	}
    685      1.245  dholland 	error = ulfs_create(ap);
    686      1.138  perseant 	SET_ENDOP_CREATE_AP(ap, "create");
    687       1.37  perseant 	return (error);
    688       1.22  perseant }
    689       1.22  perseant 
    690       1.22  perseant int
    691       1.51  perseant lfs_mkdir(void *v)
    692       1.10  christos {
    693       1.22  perseant 	struct vop_mkdir_args	/* {
    694        1.1   mycroft 		struct vnode *a_dvp;
    695        1.1   mycroft 		struct vnode **a_vpp;
    696        1.1   mycroft 		struct componentname *a_cnp;
    697        1.1   mycroft 		struct vattr *a_vap;
    698       1.10  christos 	} */ *ap = v;
    699       1.37  perseant 	int error;
    700        1.1   mycroft 
    701      1.138  perseant 	if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
    702       1.34  perseant 		vput(ap->a_dvp);
    703       1.37  perseant 		return error;
    704       1.34  perseant 	}
    705      1.245  dholland 	error = ulfs_mkdir(ap);
    706      1.138  perseant 	SET_ENDOP_CREATE_AP(ap, "mkdir");
    707       1.37  perseant 	return (error);
    708        1.1   mycroft }
    709        1.1   mycroft 
    710        1.1   mycroft int
    711       1.51  perseant lfs_remove(void *v)
    712       1.10  christos {
    713       1.22  perseant 	struct vop_remove_args	/* {
    714        1.1   mycroft 		struct vnode *a_dvp;
    715        1.1   mycroft 		struct vnode *a_vp;
    716        1.1   mycroft 		struct componentname *a_cnp;
    717       1.10  christos 	} */ *ap = v;
    718       1.34  perseant 	struct vnode *dvp, *vp;
    719      1.188  perseant 	struct inode *ip;
    720       1.37  perseant 	int error;
    721       1.34  perseant 
    722       1.34  perseant 	dvp = ap->a_dvp;
    723       1.34  perseant 	vp = ap->a_vp;
    724      1.188  perseant 	ip = VTOI(vp);
    725      1.138  perseant 	if ((error = SET_DIROP_REMOVE(dvp, vp)) != 0) {
    726       1.34  perseant 		if (dvp == vp)
    727       1.34  perseant 			vrele(vp);
    728       1.34  perseant 		else
    729       1.34  perseant 			vput(vp);
    730       1.34  perseant 		vput(dvp);
    731       1.37  perseant 		return error;
    732       1.34  perseant 	}
    733      1.245  dholland 	error = ulfs_remove(ap);
    734      1.188  perseant 	if (ip->i_nlink == 0)
    735      1.188  perseant 		lfs_orphan(ip->i_lfs, ip->i_number);
    736      1.188  perseant 	SET_ENDOP_REMOVE(ip->i_lfs, dvp, ap->a_vp, "remove");
    737       1.37  perseant 	return (error);
    738        1.1   mycroft }
    739        1.1   mycroft 
    740        1.1   mycroft int
    741       1.51  perseant lfs_rmdir(void *v)
    742       1.10  christos {
    743       1.22  perseant 	struct vop_rmdir_args	/* {
    744        1.1   mycroft 		struct vnodeop_desc *a_desc;
    745        1.1   mycroft 		struct vnode *a_dvp;
    746        1.1   mycroft 		struct vnode *a_vp;
    747        1.1   mycroft 		struct componentname *a_cnp;
    748       1.10  christos 	} */ *ap = v;
    749       1.84  perseant 	struct vnode *vp;
    750      1.188  perseant 	struct inode *ip;
    751       1.37  perseant 	int error;
    752        1.1   mycroft 
    753       1.84  perseant 	vp = ap->a_vp;
    754      1.188  perseant 	ip = VTOI(vp);
    755      1.138  perseant 	if ((error = SET_DIROP_REMOVE(ap->a_dvp, ap->a_vp)) != 0) {
    756      1.194       chs 		if (ap->a_dvp == vp)
    757      1.194       chs 			vrele(ap->a_dvp);
    758      1.194       chs 		else
    759      1.194       chs 			vput(ap->a_dvp);
    760       1.84  perseant 		vput(vp);
    761       1.37  perseant 		return error;
    762       1.34  perseant 	}
    763      1.245  dholland 	error = ulfs_rmdir(ap);
    764      1.188  perseant 	if (ip->i_nlink == 0)
    765      1.188  perseant 		lfs_orphan(ip->i_lfs, ip->i_number);
    766      1.188  perseant 	SET_ENDOP_REMOVE(ip->i_lfs, ap->a_dvp, ap->a_vp, "rmdir");
    767       1.37  perseant 	return (error);
    768        1.1   mycroft }
    769        1.1   mycroft 
    770        1.1   mycroft int
    771       1.51  perseant lfs_link(void *v)
    772       1.10  christos {
    773       1.22  perseant 	struct vop_link_args	/* {
    774        1.9   mycroft 		struct vnode *a_dvp;
    775        1.1   mycroft 		struct vnode *a_vp;
    776        1.1   mycroft 		struct componentname *a_cnp;
    777       1.10  christos 	} */ *ap = v;
    778       1.37  perseant 	int error;
    779      1.138  perseant 	struct vnode **vpp = NULL;
    780        1.1   mycroft 
    781      1.138  perseant 	if ((error = SET_DIROP_CREATE(ap->a_dvp, vpp)) != 0) {
    782       1.34  perseant 		vput(ap->a_dvp);
    783       1.37  perseant 		return error;
    784       1.34  perseant 	}
    785      1.245  dholland 	error = ulfs_link(ap);
    786      1.138  perseant 	SET_ENDOP_CREATE(VTOI(ap->a_dvp)->i_lfs, ap->a_dvp, vpp, "link");
    787       1.37  perseant 	return (error);
    788        1.1   mycroft }
    789       1.22  perseant 
    790        1.1   mycroft /* XXX hack to avoid calling ITIMES in getattr */
    791        1.1   mycroft int
    792       1.51  perseant lfs_getattr(void *v)
    793       1.10  christos {
    794        1.1   mycroft 	struct vop_getattr_args /* {
    795        1.1   mycroft 		struct vnode *a_vp;
    796        1.1   mycroft 		struct vattr *a_vap;
    797      1.176      elad 		kauth_cred_t a_cred;
    798       1.10  christos 	} */ *ap = v;
    799       1.35  augustss 	struct vnode *vp = ap->a_vp;
    800       1.35  augustss 	struct inode *ip = VTOI(vp);
    801       1.35  augustss 	struct vattr *vap = ap->a_vap;
    802       1.51  perseant 	struct lfs *fs = ip->i_lfs;
    803  1.248.2.1     rmind 
    804  1.248.2.1     rmind 	fstrans_start(vp->v_mount, FSTRANS_SHARED);
    805        1.1   mycroft 	/*
    806        1.1   mycroft 	 * Copy from inode table
    807        1.1   mycroft 	 */
    808        1.1   mycroft 	vap->va_fsid = ip->i_dev;
    809        1.1   mycroft 	vap->va_fileid = ip->i_number;
    810      1.246  dholland 	vap->va_mode = ip->i_mode & ~LFS_IFMT;
    811      1.102      fvdl 	vap->va_nlink = ip->i_nlink;
    812      1.102      fvdl 	vap->va_uid = ip->i_uid;
    813      1.102      fvdl 	vap->va_gid = ip->i_gid;
    814      1.102      fvdl 	vap->va_rdev = (dev_t)ip->i_ffs1_rdev;
    815       1.55       chs 	vap->va_size = vp->v_size;
    816      1.102      fvdl 	vap->va_atime.tv_sec = ip->i_ffs1_atime;
    817      1.102      fvdl 	vap->va_atime.tv_nsec = ip->i_ffs1_atimensec;
    818      1.102      fvdl 	vap->va_mtime.tv_sec = ip->i_ffs1_mtime;
    819      1.102      fvdl 	vap->va_mtime.tv_nsec = ip->i_ffs1_mtimensec;
    820      1.102      fvdl 	vap->va_ctime.tv_sec = ip->i_ffs1_ctime;
    821      1.102      fvdl 	vap->va_ctime.tv_nsec = ip->i_ffs1_ctimensec;
    822      1.102      fvdl 	vap->va_flags = ip->i_flags;
    823      1.102      fvdl 	vap->va_gen = ip->i_gen;
    824        1.1   mycroft 	/* this doesn't belong here */
    825        1.1   mycroft 	if (vp->v_type == VBLK)
    826        1.1   mycroft 		vap->va_blocksize = BLKDEV_IOSIZE;
    827        1.1   mycroft 	else if (vp->v_type == VCHR)
    828        1.1   mycroft 		vap->va_blocksize = MAXBSIZE;
    829        1.1   mycroft 	else
    830        1.1   mycroft 		vap->va_blocksize = vp->v_mount->mnt_stat.f_iosize;
    831      1.248  christos 	vap->va_bytes = lfs_fsbtob(fs, (u_quad_t)ip->i_lfs_effnblks);
    832        1.1   mycroft 	vap->va_type = vp->v_type;
    833        1.1   mycroft 	vap->va_filerev = ip->i_modrev;
    834  1.248.2.1     rmind 	fstrans_done(vp->v_mount);
    835        1.1   mycroft 	return (0);
    836       1.61  perseant }
    837       1.61  perseant 
    838       1.61  perseant /*
    839       1.61  perseant  * Check to make sure the inode blocks won't choke the buffer
    840      1.245  dholland  * cache, then call ulfs_setattr as usual.
    841       1.61  perseant  */
    842       1.61  perseant int
    843       1.61  perseant lfs_setattr(void *v)
    844       1.61  perseant {
    845      1.149     skrll 	struct vop_setattr_args /* {
    846       1.61  perseant 		struct vnode *a_vp;
    847       1.61  perseant 		struct vattr *a_vap;
    848      1.176      elad 		kauth_cred_t a_cred;
    849       1.61  perseant 	} */ *ap = v;
    850       1.61  perseant 	struct vnode *vp = ap->a_vp;
    851       1.61  perseant 
    852       1.61  perseant 	lfs_check(vp, LFS_UNUSED_LBN, 0);
    853      1.245  dholland 	return ulfs_setattr(v);
    854        1.1   mycroft }
    855       1.22  perseant 
    856        1.1   mycroft /*
    857      1.179  perseant  * Release the block we hold on lfs_newseg wrapping.  Called on file close,
    858      1.188  perseant  * or explicitly from LFCNWRAPGO.  Called with the interlock held.
    859      1.179  perseant  */
    860      1.179  perseant static int
    861      1.193  christos lfs_wrapgo(struct lfs *fs, struct inode *ip, int waitfor)
    862      1.179  perseant {
    863      1.214        ad 	if (fs->lfs_stoplwp != curlwp)
    864      1.179  perseant 		return EBUSY;
    865      1.179  perseant 
    866      1.214        ad 	fs->lfs_stoplwp = NULL;
    867      1.214        ad 	cv_signal(&fs->lfs_stopcv);
    868      1.179  perseant 
    869      1.179  perseant 	KASSERT(fs->lfs_nowrap > 0);
    870      1.179  perseant 	if (fs->lfs_nowrap <= 0) {
    871      1.179  perseant 		return 0;
    872      1.179  perseant 	}
    873      1.179  perseant 
    874      1.179  perseant 	if (--fs->lfs_nowrap == 0) {
    875      1.179  perseant 		log(LOG_NOTICE, "%s: re-enabled log wrap\n", fs->lfs_fsmnt);
    876      1.188  perseant 		wakeup(&fs->lfs_wrappass);
    877      1.180  perseant 		lfs_wakeup_cleaner(fs);
    878      1.179  perseant 	}
    879      1.179  perseant 	if (waitfor) {
    880      1.214        ad 		mtsleep(&fs->lfs_nextseg, PCATCH | PUSER, "segment",
    881      1.214        ad 		    0, &lfs_lock);
    882      1.179  perseant 	}
    883      1.179  perseant 
    884      1.179  perseant 	return 0;
    885      1.179  perseant }
    886      1.179  perseant 
    887      1.179  perseant /*
    888  1.248.2.1     rmind  * Close called.
    889  1.248.2.1     rmind  *
    890  1.248.2.1     rmind  * Update the times on the inode.
    891        1.1   mycroft  */
    892        1.1   mycroft /* ARGSUSED */
    893        1.1   mycroft int
    894       1.51  perseant lfs_close(void *v)
    895       1.10  christos {
    896        1.1   mycroft 	struct vop_close_args /* {
    897        1.1   mycroft 		struct vnode *a_vp;
    898        1.1   mycroft 		int  a_fflag;
    899      1.176      elad 		kauth_cred_t a_cred;
    900       1.10  christos 	} */ *ap = v;
    901       1.35  augustss 	struct vnode *vp = ap->a_vp;
    902       1.35  augustss 	struct inode *ip = VTOI(vp);
    903      1.180  perseant 	struct lfs *fs = ip->i_lfs;
    904        1.1   mycroft 
    905      1.245  dholland 	if ((ip->i_number == ULFS_ROOTINO || ip->i_number == LFS_IFILE_INUM) &&
    906      1.214        ad 	    fs->lfs_stoplwp == curlwp) {
    907      1.214        ad 		mutex_enter(&lfs_lock);
    908      1.188  perseant 		log(LOG_NOTICE, "lfs_close: releasing log wrap control\n");
    909      1.180  perseant 		lfs_wrapgo(fs, ip, 0);
    910      1.214        ad 		mutex_exit(&lfs_lock);
    911      1.179  perseant 	}
    912      1.179  perseant 
    913       1.97  perseant 	if (vp == ip->i_lfs->lfs_ivnode &&
    914      1.119       dbj 	    vp->v_mount->mnt_iflag & IMNT_UNMOUNT)
    915       1.97  perseant 		return 0;
    916       1.97  perseant 
    917  1.248.2.1     rmind 	fstrans_start(vp->v_mount, FSTRANS_SHARED);
    918       1.97  perseant 	if (vp->v_usecount > 1 && vp != ip->i_lfs->lfs_ivnode) {
    919      1.154  christos 		LFS_ITIMES(ip, NULL, NULL, NULL);
    920        1.1   mycroft 	}
    921  1.248.2.1     rmind 	fstrans_done(vp->v_mount);
    922        1.1   mycroft 	return (0);
    923       1.65  perseant }
    924       1.65  perseant 
    925       1.65  perseant /*
    926       1.65  perseant  * Close wrapper for special devices.
    927       1.65  perseant  *
    928       1.65  perseant  * Update the times on the inode then do device close.
    929       1.65  perseant  */
    930       1.65  perseant int
    931       1.65  perseant lfsspec_close(void *v)
    932       1.65  perseant {
    933       1.65  perseant 	struct vop_close_args /* {
    934       1.65  perseant 		struct vnode	*a_vp;
    935       1.65  perseant 		int		a_fflag;
    936      1.176      elad 		kauth_cred_t	a_cred;
    937       1.65  perseant 	} */ *ap = v;
    938       1.65  perseant 	struct vnode	*vp;
    939       1.65  perseant 	struct inode	*ip;
    940       1.65  perseant 
    941       1.65  perseant 	vp = ap->a_vp;
    942       1.65  perseant 	ip = VTOI(vp);
    943       1.65  perseant 	if (vp->v_usecount > 1) {
    944      1.154  christos 		LFS_ITIMES(ip, NULL, NULL, NULL);
    945       1.65  perseant 	}
    946       1.65  perseant 	return (VOCALL (spec_vnodeop_p, VOFFSET(vop_close), ap));
    947       1.65  perseant }
    948       1.65  perseant 
    949       1.65  perseant /*
    950       1.65  perseant  * Close wrapper for fifo's.
    951       1.65  perseant  *
    952       1.65  perseant  * Update the times on the inode then do device close.
    953       1.65  perseant  */
    954       1.65  perseant int
    955       1.65  perseant lfsfifo_close(void *v)
    956       1.65  perseant {
    957       1.65  perseant 	struct vop_close_args /* {
    958       1.65  perseant 		struct vnode	*a_vp;
    959       1.65  perseant 		int		a_fflag;
    960      1.176      elad 		kauth_cred_	a_cred;
    961       1.65  perseant 	} */ *ap = v;
    962       1.65  perseant 	struct vnode	*vp;
    963       1.65  perseant 	struct inode	*ip;
    964       1.65  perseant 
    965       1.65  perseant 	vp = ap->a_vp;
    966       1.65  perseant 	ip = VTOI(vp);
    967       1.65  perseant 	if (ap->a_vp->v_usecount > 1) {
    968      1.154  christos 		LFS_ITIMES(ip, NULL, NULL, NULL);
    969       1.65  perseant 	}
    970       1.65  perseant 	return (VOCALL (fifo_vnodeop_p, VOFFSET(vop_close), ap));
    971        1.1   mycroft }
    972        1.1   mycroft 
    973        1.1   mycroft /*
    974       1.15      fvdl  * Reclaim an inode so that it can be used for other purposes.
    975        1.1   mycroft  */
    976        1.1   mycroft 
    977        1.1   mycroft int
    978       1.51  perseant lfs_reclaim(void *v)
    979       1.10  christos {
    980        1.1   mycroft 	struct vop_reclaim_args /* {
    981        1.1   mycroft 		struct vnode *a_vp;
    982       1.10  christos 	} */ *ap = v;
    983       1.15      fvdl 	struct vnode *vp = ap->a_vp;
    984       1.84  perseant 	struct inode *ip = VTOI(vp);
    985      1.203  perseant 	struct lfs *fs = ip->i_lfs;
    986        1.1   mycroft 	int error;
    987       1.77      yamt 
    988      1.231   hannken 	/*
    989      1.231   hannken 	 * The inode must be freed and updated before being removed
    990      1.231   hannken 	 * from its hash chain.  Other threads trying to gain a hold
    991      1.231   hannken 	 * on the inode will be stalled because it is locked (VI_XLOCK).
    992      1.231   hannken 	 */
    993      1.231   hannken 	if (ip->i_nlink <= 0 && (vp->v_mount->mnt_flag & MNT_RDONLY) == 0)
    994      1.231   hannken 		lfs_vfree(vp, ip->i_number, ip->i_omode);
    995      1.231   hannken 
    996      1.214        ad 	mutex_enter(&lfs_lock);
    997       1.84  perseant 	LFS_CLR_UINO(ip, IN_ALLMOD);
    998      1.214        ad 	mutex_exit(&lfs_lock);
    999      1.245  dholland 	if ((error = ulfs_reclaim(vp)))
   1000        1.1   mycroft 		return (error);
   1001      1.203  perseant 
   1002      1.203  perseant 	/*
   1003      1.203  perseant 	 * Take us off the paging and/or dirop queues if we were on them.
   1004      1.203  perseant 	 * We shouldn't be on them.
   1005      1.203  perseant 	 */
   1006      1.214        ad 	mutex_enter(&lfs_lock);
   1007      1.203  perseant 	if (ip->i_flags & IN_PAGING) {
   1008      1.203  perseant 		log(LOG_WARNING, "%s: reclaimed vnode is IN_PAGING\n",
   1009      1.203  perseant 		    fs->lfs_fsmnt);
   1010      1.203  perseant 		ip->i_flags &= ~IN_PAGING;
   1011      1.203  perseant 		TAILQ_REMOVE(&fs->lfs_pchainhd, ip, i_lfs_pchain);
   1012      1.203  perseant 	}
   1013      1.212        ad 	if (vp->v_uflag & VU_DIROP) {
   1014      1.212        ad 		panic("reclaimed vnode is VU_DIROP");
   1015      1.212        ad 		vp->v_uflag &= ~VU_DIROP;
   1016      1.203  perseant 		TAILQ_REMOVE(&fs->lfs_dchainhd, ip, i_lfs_dchain);
   1017      1.203  perseant 	}
   1018      1.214        ad 	mutex_exit(&lfs_lock);
   1019      1.203  perseant 
   1020      1.142  perseant 	pool_put(&lfs_dinode_pool, ip->i_din.ffs1_din);
   1021      1.145  perseant 	lfs_deregister_all(vp);
   1022       1.84  perseant 	pool_put(&lfs_inoext_pool, ip->inode_ext.lfs);
   1023       1.84  perseant 	ip->inode_ext.lfs = NULL;
   1024      1.199        ad 	genfs_node_destroy(vp);
   1025       1.19   thorpej 	pool_put(&lfs_inode_pool, vp->v_data);
   1026        1.1   mycroft 	vp->v_data = NULL;
   1027       1.94  perseant 	return (0);
   1028       1.94  perseant }
   1029       1.94  perseant 
   1030       1.94  perseant /*
   1031      1.101      yamt  * Read a block from a storage device.
   1032  1.248.2.1     rmind  *
   1033  1.248.2.1     rmind  * Calculate the logical to physical mapping if not done already,
   1034  1.248.2.1     rmind  * then call the device strategy routine.
   1035  1.248.2.1     rmind  *
   1036       1.94  perseant  * In order to avoid reading blocks that are in the process of being
   1037       1.94  perseant  * written by the cleaner---and hence are not mutexed by the normal
   1038       1.94  perseant  * buffer cache / page cache mechanisms---check for collisions before
   1039       1.94  perseant  * reading.
   1040       1.94  perseant  *
   1041      1.245  dholland  * We inline ulfs_strategy to make sure that the VOP_BMAP occurs *before*
   1042       1.94  perseant  * the active cleaner test.
   1043       1.94  perseant  *
   1044       1.94  perseant  * XXX This code assumes that lfs_markv makes synchronous checkpoints.
   1045       1.94  perseant  */
   1046       1.94  perseant int
   1047       1.94  perseant lfs_strategy(void *v)
   1048       1.94  perseant {
   1049       1.94  perseant 	struct vop_strategy_args /* {
   1050      1.128   hannken 		struct vnode *a_vp;
   1051       1.94  perseant 		struct buf *a_bp;
   1052       1.94  perseant 	} */ *ap = v;
   1053       1.94  perseant 	struct buf	*bp;
   1054       1.94  perseant 	struct lfs	*fs;
   1055       1.94  perseant 	struct vnode	*vp;
   1056       1.94  perseant 	struct inode	*ip;
   1057       1.94  perseant 	daddr_t		tbn;
   1058      1.239  perseant #define MAXLOOP 25
   1059      1.239  perseant 	int		i, sn, error, slept, loopcount;
   1060       1.94  perseant 
   1061       1.94  perseant 	bp = ap->a_bp;
   1062      1.128   hannken 	vp = ap->a_vp;
   1063       1.94  perseant 	ip = VTOI(vp);
   1064       1.94  perseant 	fs = ip->i_lfs;
   1065       1.94  perseant 
   1066      1.101      yamt 	/* lfs uses its strategy routine only for read */
   1067      1.101      yamt 	KASSERT(bp->b_flags & B_READ);
   1068      1.101      yamt 
   1069       1.94  perseant 	if (vp->v_type == VBLK || vp->v_type == VCHR)
   1070       1.94  perseant 		panic("lfs_strategy: spec");
   1071       1.94  perseant 	KASSERT(bp->b_bcount != 0);
   1072       1.94  perseant 	if (bp->b_blkno == bp->b_lblkno) {
   1073       1.94  perseant 		error = VOP_BMAP(vp, bp->b_lblkno, NULL, &bp->b_blkno,
   1074       1.94  perseant 				 NULL);
   1075       1.94  perseant 		if (error) {
   1076       1.94  perseant 			bp->b_error = error;
   1077      1.214        ad 			bp->b_resid = bp->b_bcount;
   1078       1.94  perseant 			biodone(bp);
   1079       1.94  perseant 			return (error);
   1080       1.94  perseant 		}
   1081       1.94  perseant 		if ((long)bp->b_blkno == -1) /* no valid data */
   1082       1.94  perseant 			clrbuf(bp);
   1083       1.94  perseant 	}
   1084       1.94  perseant 	if ((long)bp->b_blkno < 0) { /* block is not on disk */
   1085      1.214        ad 		bp->b_resid = bp->b_bcount;
   1086       1.94  perseant 		biodone(bp);
   1087       1.94  perseant 		return (0);
   1088       1.94  perseant 	}
   1089       1.94  perseant 
   1090       1.94  perseant 	slept = 1;
   1091      1.239  perseant 	loopcount = 0;
   1092      1.214        ad 	mutex_enter(&lfs_lock);
   1093      1.101      yamt 	while (slept && fs->lfs_seglock) {
   1094      1.214        ad 		mutex_exit(&lfs_lock);
   1095       1.94  perseant 		/*
   1096       1.94  perseant 		 * Look through list of intervals.
   1097       1.94  perseant 		 * There will only be intervals to look through
   1098       1.94  perseant 		 * if the cleaner holds the seglock.
   1099       1.94  perseant 		 * Since the cleaner is synchronous, we can trust
   1100       1.94  perseant 		 * the list of intervals to be current.
   1101       1.94  perseant 		 */
   1102      1.248  christos 		tbn = LFS_DBTOFSB(fs, bp->b_blkno);
   1103      1.248  christos 		sn = lfs_dtosn(fs, tbn);
   1104       1.94  perseant 		slept = 0;
   1105       1.94  perseant 		for (i = 0; i < fs->lfs_cleanind; i++) {
   1106      1.248  christos 			if (sn == lfs_dtosn(fs, fs->lfs_cleanint[i]) &&
   1107       1.94  perseant 			    tbn >= fs->lfs_cleanint[i]) {
   1108      1.136  perseant 				DLOG((DLOG_CLEAN,
   1109      1.136  perseant 				      "lfs_strategy: ino %d lbn %" PRId64
   1110      1.203  perseant 				      " ind %d sn %d fsb %" PRIx32
   1111      1.203  perseant 				      " given sn %d fsb %" PRIx64 "\n",
   1112      1.203  perseant 				      ip->i_number, bp->b_lblkno, i,
   1113      1.248  christos 				      lfs_dtosn(fs, fs->lfs_cleanint[i]),
   1114      1.203  perseant 				      fs->lfs_cleanint[i], sn, tbn));
   1115      1.136  perseant 				DLOG((DLOG_CLEAN,
   1116      1.136  perseant 				      "lfs_strategy: sleeping on ino %d lbn %"
   1117      1.136  perseant 				      PRId64 "\n", ip->i_number, bp->b_lblkno));
   1118      1.214        ad 				mutex_enter(&lfs_lock);
   1119      1.170  perseant 				if (LFS_SEGLOCK_HELD(fs) && fs->lfs_iocount) {
   1120      1.239  perseant 					/*
   1121      1.239  perseant 					 * Cleaner can't wait for itself.
   1122      1.239  perseant 					 * Instead, wait for the blocks
   1123      1.239  perseant 					 * to be written to disk.
   1124      1.239  perseant 					 * XXX we need pribio in the test
   1125      1.239  perseant 					 * XXX here.
   1126      1.239  perseant 					 */
   1127      1.239  perseant  					mtsleep(&fs->lfs_iocount,
   1128      1.239  perseant  						(PRIBIO + 1) | PNORELOCK,
   1129      1.239  perseant 						"clean2", hz/10 + 1,
   1130      1.239  perseant  						&lfs_lock);
   1131      1.170  perseant 					slept = 1;
   1132      1.239  perseant 					++loopcount;
   1133      1.170  perseant 					break;
   1134      1.170  perseant 				} else if (fs->lfs_seglock) {
   1135      1.214        ad 					mtsleep(&fs->lfs_seglock,
   1136      1.141  perseant 						(PRIBIO + 1) | PNORELOCK,
   1137      1.170  perseant 						"clean1", 0,
   1138      1.214        ad 						&lfs_lock);
   1139      1.167  perseant 					slept = 1;
   1140      1.167  perseant 					break;
   1141      1.167  perseant 				}
   1142      1.214        ad 				mutex_exit(&lfs_lock);
   1143       1.94  perseant 			}
   1144       1.94  perseant 		}
   1145      1.214        ad 		mutex_enter(&lfs_lock);
   1146      1.239  perseant 		if (loopcount > MAXLOOP) {
   1147      1.239  perseant 			printf("lfs_strategy: breaking out of clean2 loop\n");
   1148      1.239  perseant 			break;
   1149      1.239  perseant 		}
   1150       1.94  perseant 	}
   1151      1.214        ad 	mutex_exit(&lfs_lock);
   1152       1.94  perseant 
   1153       1.94  perseant 	vp = ip->i_devvp;
   1154  1.248.2.1     rmind 	return VOP_STRATEGY(vp, bp);
   1155       1.89  perseant }
   1156       1.89  perseant 
   1157      1.239  perseant /*
   1158      1.239  perseant  * Inline lfs_segwrite/lfs_writevnodes, but just for dirops.
   1159      1.239  perseant  * Technically this is a checkpoint (the on-disk state is valid)
   1160      1.239  perseant  * even though we are leaving out all the file data.
   1161      1.239  perseant  */
   1162      1.239  perseant int
   1163       1.92  perseant lfs_flush_dirops(struct lfs *fs)
   1164       1.92  perseant {
   1165       1.92  perseant 	struct inode *ip, *nip;
   1166       1.92  perseant 	struct vnode *vp;
   1167       1.92  perseant 	extern int lfs_dostats;
   1168       1.92  perseant 	struct segment *sp;
   1169      1.239  perseant 	int flags = 0;
   1170      1.239  perseant 	int error = 0;
   1171       1.92  perseant 
   1172      1.163  perseant 	ASSERT_MAYBE_SEGLOCK(fs);
   1173      1.171  perseant 	KASSERT(fs->lfs_nadirop == 0);
   1174      1.141  perseant 
   1175       1.92  perseant 	if (fs->lfs_ronly)
   1176      1.239  perseant 		return EROFS;
   1177       1.92  perseant 
   1178      1.214        ad 	mutex_enter(&lfs_lock);
   1179      1.141  perseant 	if (TAILQ_FIRST(&fs->lfs_dchainhd) == NULL) {
   1180      1.214        ad 		mutex_exit(&lfs_lock);
   1181      1.239  perseant 		return 0;
   1182      1.141  perseant 	} else
   1183      1.214        ad 		mutex_exit(&lfs_lock);
   1184       1.92  perseant 
   1185       1.92  perseant 	if (lfs_dostats)
   1186       1.92  perseant 		++lfs_stats.flush_invoked;
   1187       1.92  perseant 
   1188       1.92  perseant 	lfs_imtime(fs);
   1189      1.239  perseant 	lfs_seglock(fs, flags);
   1190       1.92  perseant 	sp = fs->lfs_sp;
   1191       1.92  perseant 
   1192       1.92  perseant 	/*
   1193       1.92  perseant 	 * lfs_writevnodes, optimized to get dirops out of the way.
   1194       1.92  perseant 	 * Only write dirops, and don't flush files' pages, only
   1195       1.92  perseant 	 * blocks from the directories.
   1196       1.92  perseant 	 *
   1197       1.92  perseant 	 * We don't need to vref these files because they are
   1198       1.92  perseant 	 * dirops and so hold an extra reference until the
   1199       1.92  perseant 	 * segunlock clears them of that status.
   1200       1.92  perseant 	 *
   1201       1.92  perseant 	 * We don't need to check for IN_ADIROP because we know that
   1202       1.92  perseant 	 * no dirops are active.
   1203       1.92  perseant 	 *
   1204       1.92  perseant 	 */
   1205      1.214        ad 	mutex_enter(&lfs_lock);
   1206       1.92  perseant 	for (ip = TAILQ_FIRST(&fs->lfs_dchainhd); ip != NULL; ip = nip) {
   1207       1.92  perseant 		nip = TAILQ_NEXT(ip, i_lfs_dchain);
   1208      1.214        ad 		mutex_exit(&lfs_lock);
   1209       1.92  perseant 		vp = ITOV(ip);
   1210       1.92  perseant 
   1211      1.171  perseant 		KASSERT((ip->i_flag & IN_ADIROP) == 0);
   1212      1.239  perseant 		KASSERT(vp->v_uflag & VU_DIROP);
   1213      1.239  perseant 		KASSERT(!(vp->v_iflag & VI_XLOCK));
   1214      1.171  perseant 
   1215       1.92  perseant 		/*
   1216       1.92  perseant 		 * All writes to directories come from dirops; all
   1217       1.92  perseant 		 * writes to files' direct blocks go through the page
   1218       1.92  perseant 		 * cache, which we're not touching.  Reads to files
   1219       1.92  perseant 		 * and/or directories will not be affected by writing
   1220       1.92  perseant 		 * directory blocks inodes and file inodes.  So we don't
   1221      1.239  perseant 		 * really need to lock.
   1222       1.92  perseant 		 */
   1223      1.214        ad 		if (vp->v_iflag & VI_XLOCK) {
   1224      1.214        ad 			mutex_enter(&lfs_lock);
   1225       1.92  perseant 			continue;
   1226      1.167  perseant 		}
   1227      1.228   hannken 		/* XXX see below
   1228      1.228   hannken 		 * waslocked = VOP_ISLOCKED(vp);
   1229      1.228   hannken 		 */
   1230       1.92  perseant 		if (vp->v_type != VREG &&
   1231       1.92  perseant 		    ((ip->i_flag & IN_ALLMOD) || !VPISEMPTY(vp))) {
   1232      1.239  perseant 			error = lfs_writefile(fs, sp, vp);
   1233       1.92  perseant 			if (!VPISEMPTY(vp) && !WRITEINPROG(vp) &&
   1234       1.92  perseant 			    !(ip->i_flag & IN_ALLMOD)) {
   1235      1.214        ad 			    	mutex_enter(&lfs_lock);
   1236       1.92  perseant 				LFS_SET_UINO(ip, IN_MODIFIED);
   1237      1.214        ad 			    	mutex_exit(&lfs_lock);
   1238       1.92  perseant 			}
   1239      1.239  perseant 			if (error && (sp->seg_flags & SEGM_SINGLE)) {
   1240      1.239  perseant 				mutex_enter(&lfs_lock);
   1241      1.239  perseant 				error = EAGAIN;
   1242      1.239  perseant 				break;
   1243      1.239  perseant 			}
   1244       1.92  perseant 		}
   1245      1.188  perseant 		KDASSERT(ip->i_number != LFS_IFILE_INUM);
   1246      1.239  perseant 		error = lfs_writeinode(fs, sp, ip);
   1247      1.214        ad 		mutex_enter(&lfs_lock);
   1248      1.239  perseant 		if (error && (sp->seg_flags & SEGM_SINGLE)) {
   1249      1.239  perseant 			error = EAGAIN;
   1250      1.239  perseant 			break;
   1251      1.239  perseant 		}
   1252      1.239  perseant 
   1253      1.228   hannken 		/*
   1254      1.239  perseant 		 * We might need to update these inodes again,
   1255      1.239  perseant 		 * for example, if they have data blocks to write.
   1256      1.239  perseant 		 * Make sure that after this flush, they are still
   1257      1.239  perseant 		 * marked IN_MODIFIED so that we don't forget to
   1258      1.239  perseant 		 * write them.
   1259      1.228   hannken 		 */
   1260      1.239  perseant 		/* XXX only for non-directories? --KS */
   1261      1.239  perseant 		LFS_SET_UINO(ip, IN_MODIFIED);
   1262       1.92  perseant 	}
   1263      1.214        ad 	mutex_exit(&lfs_lock);
   1264       1.92  perseant 	/* We've written all the dirops there are */
   1265       1.92  perseant 	((SEGSUM *)(sp->segsum))->ss_flags &= ~(SS_CONT);
   1266      1.170  perseant 	lfs_finalize_fs_seguse(fs);
   1267       1.92  perseant 	(void) lfs_writeseg(fs, sp);
   1268       1.92  perseant 	lfs_segunlock(fs);
   1269      1.239  perseant 
   1270      1.239  perseant 	return error;
   1271       1.92  perseant }
   1272       1.92  perseant 
   1273       1.89  perseant /*
   1274      1.164  perseant  * Flush all vnodes for which the pagedaemon has requested pageouts.
   1275      1.212        ad  * Skip over any files that are marked VU_DIROP (since lfs_flush_dirop()
   1276      1.164  perseant  * has just run, this would be an error).  If we have to skip a vnode
   1277      1.164  perseant  * for any reason, just skip it; if we have to wait for the cleaner,
   1278      1.164  perseant  * abort.  The writer daemon will call us again later.
   1279      1.164  perseant  */
   1280      1.239  perseant int
   1281      1.164  perseant lfs_flush_pchain(struct lfs *fs)
   1282      1.164  perseant {
   1283      1.164  perseant 	struct inode *ip, *nip;
   1284      1.164  perseant 	struct vnode *vp;
   1285      1.164  perseant 	extern int lfs_dostats;
   1286      1.164  perseant 	struct segment *sp;
   1287      1.239  perseant 	int error, error2;
   1288      1.164  perseant 
   1289      1.164  perseant 	ASSERT_NO_SEGLOCK(fs);
   1290      1.164  perseant 
   1291      1.164  perseant 	if (fs->lfs_ronly)
   1292      1.239  perseant 		return EROFS;
   1293      1.164  perseant 
   1294      1.214        ad 	mutex_enter(&lfs_lock);
   1295      1.164  perseant 	if (TAILQ_FIRST(&fs->lfs_pchainhd) == NULL) {
   1296      1.214        ad 		mutex_exit(&lfs_lock);
   1297      1.239  perseant 		return 0;
   1298      1.164  perseant 	} else
   1299      1.214        ad 		mutex_exit(&lfs_lock);
   1300      1.164  perseant 
   1301      1.164  perseant 	/* Get dirops out of the way */
   1302      1.239  perseant 	if ((error = lfs_flush_dirops(fs)) != 0)
   1303      1.239  perseant 		return error;
   1304      1.164  perseant 
   1305      1.164  perseant 	if (lfs_dostats)
   1306      1.164  perseant 		++lfs_stats.flush_invoked;
   1307      1.164  perseant 
   1308      1.164  perseant 	/*
   1309      1.164  perseant 	 * Inline lfs_segwrite/lfs_writevnodes, but just for pageouts.
   1310      1.164  perseant 	 */
   1311      1.164  perseant 	lfs_imtime(fs);
   1312      1.164  perseant 	lfs_seglock(fs, 0);
   1313      1.164  perseant 	sp = fs->lfs_sp;
   1314      1.164  perseant 
   1315      1.164  perseant 	/*
   1316      1.164  perseant 	 * lfs_writevnodes, optimized to clear pageout requests.
   1317      1.164  perseant 	 * Only write non-dirop files that are in the pageout queue.
   1318      1.164  perseant 	 * We're very conservative about what we write; we want to be
   1319      1.164  perseant 	 * fast and async.
   1320      1.164  perseant 	 */
   1321      1.214        ad 	mutex_enter(&lfs_lock);
   1322      1.214        ad     top:
   1323      1.164  perseant 	for (ip = TAILQ_FIRST(&fs->lfs_pchainhd); ip != NULL; ip = nip) {
   1324      1.164  perseant 		nip = TAILQ_NEXT(ip, i_lfs_pchain);
   1325      1.164  perseant 		vp = ITOV(ip);
   1326      1.164  perseant 
   1327      1.164  perseant 		if (!(ip->i_flags & IN_PAGING))
   1328      1.164  perseant 			goto top;
   1329      1.164  perseant 
   1330      1.235     rmind 		mutex_enter(vp->v_interlock);
   1331      1.214        ad 		if ((vp->v_iflag & VI_XLOCK) || (vp->v_uflag & VU_DIROP) != 0) {
   1332      1.235     rmind 			mutex_exit(vp->v_interlock);
   1333      1.164  perseant 			continue;
   1334      1.214        ad 		}
   1335      1.214        ad 		if (vp->v_type != VREG) {
   1336      1.235     rmind 			mutex_exit(vp->v_interlock);
   1337      1.164  perseant 			continue;
   1338      1.214        ad 		}
   1339      1.164  perseant 		if (lfs_vref(vp))
   1340      1.164  perseant 			continue;
   1341      1.214        ad 		mutex_exit(&lfs_lock);
   1342      1.169  perseant 
   1343      1.228   hannken 		if (vn_lock(vp, LK_EXCLUSIVE | LK_NOWAIT | LK_RETRY) != 0) {
   1344      1.165  perseant 			lfs_vunref(vp);
   1345      1.214        ad 			mutex_enter(&lfs_lock);
   1346      1.164  perseant 			continue;
   1347      1.165  perseant 		}
   1348      1.164  perseant 
   1349      1.164  perseant 		error = lfs_writefile(fs, sp, vp);
   1350      1.164  perseant 		if (!VPISEMPTY(vp) && !WRITEINPROG(vp) &&
   1351      1.164  perseant 		    !(ip->i_flag & IN_ALLMOD)) {
   1352      1.214        ad 		    	mutex_enter(&lfs_lock);
   1353      1.164  perseant 			LFS_SET_UINO(ip, IN_MODIFIED);
   1354      1.214        ad 		    	mutex_exit(&lfs_lock);
   1355      1.164  perseant 		}
   1356      1.188  perseant 		KDASSERT(ip->i_number != LFS_IFILE_INUM);
   1357      1.239  perseant 		error2 = lfs_writeinode(fs, sp, ip);
   1358      1.164  perseant 
   1359      1.229   hannken 		VOP_UNLOCK(vp);
   1360      1.164  perseant 		lfs_vunref(vp);
   1361      1.164  perseant 
   1362      1.239  perseant 		if (error == EAGAIN || error2 == EAGAIN) {
   1363      1.164  perseant 			lfs_writeseg(fs, sp);
   1364      1.214        ad 			mutex_enter(&lfs_lock);
   1365      1.164  perseant 			break;
   1366      1.164  perseant 		}
   1367      1.214        ad 		mutex_enter(&lfs_lock);
   1368      1.164  perseant 	}
   1369      1.214        ad 	mutex_exit(&lfs_lock);
   1370      1.164  perseant 	(void) lfs_writeseg(fs, sp);
   1371      1.164  perseant 	lfs_segunlock(fs);
   1372      1.239  perseant 
   1373      1.239  perseant 	return 0;
   1374      1.164  perseant }
   1375      1.164  perseant 
   1376      1.164  perseant /*
   1377       1.90  perseant  * Provide a fcntl interface to sys_lfs_{segwait,bmapv,markv}.
   1378       1.89  perseant  */
   1379       1.89  perseant int
   1380       1.90  perseant lfs_fcntl(void *v)
   1381       1.89  perseant {
   1382      1.137    simonb 	struct vop_fcntl_args /* {
   1383      1.137    simonb 		struct vnode *a_vp;
   1384      1.218  gmcgarry 		u_int a_command;
   1385      1.201  christos 		void * a_data;
   1386      1.137    simonb 		int  a_fflag;
   1387      1.176      elad 		kauth_cred_t a_cred;
   1388      1.137    simonb 	} */ *ap = v;
   1389      1.222  christos 	struct timeval tv;
   1390       1.89  perseant 	struct timeval *tvp;
   1391       1.89  perseant 	BLOCK_INFO *blkiov;
   1392       1.92  perseant 	CLEANERINFO *cip;
   1393      1.148  perseant 	SEGUSE *sup;
   1394       1.92  perseant 	int blkcnt, error, oclean;
   1395      1.181    martin 	size_t fh_size;
   1396       1.90  perseant 	struct lfs_fcntl_markv blkvp;
   1397      1.185        ad 	struct lwp *l;
   1398       1.89  perseant 	fsid_t *fsidp;
   1399       1.92  perseant 	struct lfs *fs;
   1400       1.92  perseant 	struct buf *bp;
   1401      1.134  perseant 	fhandle_t *fhp;
   1402       1.92  perseant 	daddr_t off;
   1403       1.89  perseant 
   1404       1.90  perseant 	/* Only respect LFS fcntls on fs root or Ifile */
   1405      1.245  dholland 	if (VTOI(ap->a_vp)->i_number != ULFS_ROOTINO &&
   1406       1.89  perseant 	    VTOI(ap->a_vp)->i_number != LFS_IFILE_INUM) {
   1407      1.245  dholland 		return ulfs_fcntl(v);
   1408       1.89  perseant 	}
   1409       1.89  perseant 
   1410      1.100  perseant 	/* Avoid locking a draining lock */
   1411      1.119       dbj 	if (ap->a_vp->v_mount->mnt_iflag & IMNT_UNMOUNT) {
   1412      1.100  perseant 		return ESHUTDOWN;
   1413      1.100  perseant 	}
   1414      1.100  perseant 
   1415      1.184  perseant 	/* LFS control and monitoring fcntls are available only to root */
   1416      1.213     pooka 	l = curlwp;
   1417      1.184  perseant 	if (((ap->a_command & 0xff00) >> 8) == 'L' &&
   1418      1.241      elad 	    (error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
   1419      1.241      elad 	     KAUTH_REQ_SYSTEM_LFS_FCNTL, NULL, NULL, NULL)) != 0)
   1420      1.184  perseant 		return (error);
   1421      1.184  perseant 
   1422      1.100  perseant 	fs = VTOI(ap->a_vp)->i_lfs;
   1423      1.131  christos 	fsidp = &ap->a_vp->v_mount->mnt_stat.f_fsidx;
   1424       1.89  perseant 
   1425      1.188  perseant 	error = 0;
   1426      1.218  gmcgarry 	switch ((int)ap->a_command) {
   1427      1.222  christos 	    case LFCNSEGWAITALL_COMPAT_50:
   1428      1.222  christos 	    case LFCNSEGWAITALL_COMPAT:
   1429      1.222  christos 		fsidp = NULL;
   1430      1.222  christos 		/* FALLSTHROUGH */
   1431      1.222  christos 	    case LFCNSEGWAIT_COMPAT_50:
   1432      1.222  christos 	    case LFCNSEGWAIT_COMPAT:
   1433      1.222  christos 		{
   1434      1.222  christos 			struct timeval50 *tvp50
   1435      1.222  christos 				= (struct timeval50 *)ap->a_data;
   1436      1.222  christos 			timeval50_to_timeval(tvp50, &tv);
   1437      1.222  christos 			tvp = &tv;
   1438      1.222  christos 		}
   1439      1.222  christos 		goto segwait_common;
   1440       1.90  perseant 	    case LFCNSEGWAITALL:
   1441      1.214        ad 		fsidp = NULL;
   1442      1.214        ad 		/* FALLSTHROUGH */
   1443       1.90  perseant 	    case LFCNSEGWAIT:
   1444      1.214        ad 		tvp = (struct timeval *)ap->a_data;
   1445      1.222  christos segwait_common:
   1446      1.214        ad 		mutex_enter(&lfs_lock);
   1447      1.214        ad 		++fs->lfs_sleepers;
   1448      1.214        ad 		mutex_exit(&lfs_lock);
   1449      1.214        ad 
   1450      1.214        ad 		error = lfs_segwait(fsidp, tvp);
   1451      1.214        ad 
   1452      1.214        ad 		mutex_enter(&lfs_lock);
   1453      1.214        ad 		if (--fs->lfs_sleepers == 0)
   1454      1.214        ad 			wakeup(&fs->lfs_sleepers);
   1455      1.214        ad 		mutex_exit(&lfs_lock);
   1456      1.214        ad 		return error;
   1457       1.89  perseant 
   1458       1.90  perseant 	    case LFCNBMAPV:
   1459       1.90  perseant 	    case LFCNMARKV:
   1460      1.214        ad 		blkvp = *(struct lfs_fcntl_markv *)ap->a_data;
   1461       1.89  perseant 
   1462      1.214        ad 		blkcnt = blkvp.blkcnt;
   1463      1.214        ad 		if ((u_int) blkcnt > LFS_MARKV_MAXBLKCNT)
   1464      1.214        ad 			return (EINVAL);
   1465      1.214        ad 		blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
   1466      1.214        ad 		if ((error = copyin(blkvp.blkiov, blkiov,
   1467      1.214        ad 		     blkcnt * sizeof(BLOCK_INFO))) != 0) {
   1468      1.214        ad 			lfs_free(fs, blkiov, LFS_NB_BLKIOV);
   1469      1.214        ad 			return error;
   1470      1.214        ad 		}
   1471      1.214        ad 
   1472      1.214        ad 		mutex_enter(&lfs_lock);
   1473      1.214        ad 		++fs->lfs_sleepers;
   1474      1.214        ad 		mutex_exit(&lfs_lock);
   1475      1.214        ad 		if (ap->a_command == LFCNBMAPV)
   1476      1.214        ad 			error = lfs_bmapv(l->l_proc, fsidp, blkiov, blkcnt);
   1477      1.214        ad 		else /* LFCNMARKV */
   1478      1.214        ad 			error = lfs_markv(l->l_proc, fsidp, blkiov, blkcnt);
   1479      1.214        ad 		if (error == 0)
   1480      1.214        ad 			error = copyout(blkiov, blkvp.blkiov,
   1481      1.214        ad 					blkcnt * sizeof(BLOCK_INFO));
   1482      1.214        ad 		mutex_enter(&lfs_lock);
   1483      1.214        ad 		if (--fs->lfs_sleepers == 0)
   1484      1.214        ad 			wakeup(&fs->lfs_sleepers);
   1485      1.214        ad 		mutex_exit(&lfs_lock);
   1486      1.214        ad 		lfs_free(fs, blkiov, LFS_NB_BLKIOV);
   1487      1.214        ad 		return error;
   1488       1.92  perseant 
   1489       1.92  perseant 	    case LFCNRECLAIM:
   1490      1.214        ad 		/*
   1491      1.214        ad 		 * Flush dirops and write Ifile, allowing empty segments
   1492      1.214        ad 		 * to be immediately reclaimed.
   1493      1.214        ad 		 */
   1494      1.214        ad 		lfs_writer_enter(fs, "pndirop");
   1495      1.214        ad 		off = fs->lfs_offset;
   1496      1.214        ad 		lfs_seglock(fs, SEGM_FORCE_CKP | SEGM_CKP);
   1497      1.214        ad 		lfs_flush_dirops(fs);
   1498      1.214        ad 		LFS_CLEANERINFO(cip, fs, bp);
   1499      1.214        ad 		oclean = cip->clean;
   1500      1.214        ad 		LFS_SYNC_CLEANERINFO(cip, fs, bp, 1);
   1501      1.214        ad 		lfs_segwrite(ap->a_vp->v_mount, SEGM_FORCE_CKP);
   1502      1.214        ad 		fs->lfs_sp->seg_flags |= SEGM_PROT;
   1503      1.214        ad 		lfs_segunlock(fs);
   1504      1.214        ad 		lfs_writer_leave(fs);
   1505       1.92  perseant 
   1506      1.136  perseant #ifdef DEBUG
   1507      1.214        ad 		LFS_CLEANERINFO(cip, fs, bp);
   1508      1.214        ad 		DLOG((DLOG_CLEAN, "lfs_fcntl: reclaim wrote %" PRId64
   1509      1.214        ad 		      " blocks, cleaned %" PRId32 " segments (activesb %d)\n",
   1510      1.214        ad 		      fs->lfs_offset - off, cip->clean - oclean,
   1511      1.214        ad 		      fs->lfs_activesb));
   1512      1.214        ad 		LFS_SYNC_CLEANERINFO(cip, fs, bp, 0);
   1513       1.92  perseant #endif
   1514       1.92  perseant 
   1515      1.214        ad 		return 0;
   1516       1.89  perseant 
   1517      1.182    martin 	    case LFCNIFILEFH_COMPAT:
   1518      1.214        ad 		/* Return the filehandle of the Ifile */
   1519      1.221      elad 		if ((error = kauth_authorize_system(l->l_cred,
   1520      1.221      elad 		    KAUTH_SYSTEM_FILEHANDLE, 0, NULL, NULL, NULL)) != 0)
   1521      1.214        ad 			return (error);
   1522      1.214        ad 		fhp = (struct fhandle *)ap->a_data;
   1523      1.214        ad 		fhp->fh_fsid = *fsidp;
   1524      1.214        ad 		fh_size = 16;	/* former VFS_MAXFIDSIZ */
   1525      1.214        ad 		return lfs_vptofh(fs->lfs_ivnode, &(fhp->fh_fid), &fh_size);
   1526      1.182    martin 
   1527      1.187    martin 	    case LFCNIFILEFH_COMPAT2:
   1528      1.134  perseant 	    case LFCNIFILEFH:
   1529      1.214        ad 		/* Return the filehandle of the Ifile */
   1530      1.214        ad 		fhp = (struct fhandle *)ap->a_data;
   1531      1.214        ad 		fhp->fh_fsid = *fsidp;
   1532      1.214        ad 		fh_size = sizeof(struct lfs_fhandle) -
   1533      1.214        ad 		    offsetof(fhandle_t, fh_fid);
   1534      1.214        ad 		return lfs_vptofh(fs->lfs_ivnode, &(fhp->fh_fid), &fh_size);
   1535      1.134  perseant 
   1536      1.148  perseant 	    case LFCNREWIND:
   1537      1.214        ad 		/* Move lfs_offset to the lowest-numbered segment */
   1538      1.214        ad 		return lfs_rewind(fs, *(int *)ap->a_data);
   1539      1.148  perseant 
   1540      1.148  perseant 	    case LFCNINVAL:
   1541      1.214        ad 		/* Mark a segment SEGUSE_INVAL */
   1542      1.214        ad 		LFS_SEGENTRY(sup, fs, *(int *)ap->a_data, bp);
   1543      1.214        ad 		if (sup->su_nbytes > 0) {
   1544      1.214        ad 			brelse(bp, 0);
   1545      1.214        ad 			lfs_unset_inval_all(fs);
   1546      1.214        ad 			return EBUSY;
   1547      1.214        ad 		}
   1548      1.214        ad 		sup->su_flags |= SEGUSE_INVAL;
   1549      1.236   hannken 		VOP_BWRITE(bp->b_vp, bp);
   1550      1.214        ad 		return 0;
   1551      1.148  perseant 
   1552      1.148  perseant 	    case LFCNRESIZE:
   1553      1.214        ad 		/* Resize the filesystem */
   1554      1.214        ad 		return lfs_resize_fs(fs, *(int *)ap->a_data);
   1555      1.148  perseant 
   1556      1.168  perseant 	    case LFCNWRAPSTOP:
   1557      1.179  perseant 	    case LFCNWRAPSTOP_COMPAT:
   1558      1.214        ad 		/*
   1559      1.214        ad 		 * Hold lfs_newseg at segment 0; if requested, sleep until
   1560      1.214        ad 		 * the filesystem wraps around.  To support external agents
   1561      1.214        ad 		 * (dump, fsck-based regression test) that need to look at
   1562      1.214        ad 		 * a snapshot of the filesystem, without necessarily
   1563      1.214        ad 		 * requiring that all fs activity stops.
   1564      1.214        ad 		 */
   1565      1.214        ad 		if (fs->lfs_stoplwp == curlwp)
   1566      1.214        ad 			return EALREADY;
   1567      1.214        ad 
   1568      1.214        ad 		mutex_enter(&lfs_lock);
   1569      1.214        ad 		while (fs->lfs_stoplwp != NULL)
   1570      1.214        ad 			cv_wait(&fs->lfs_stopcv, &lfs_lock);
   1571      1.214        ad 		fs->lfs_stoplwp = curlwp;
   1572      1.214        ad 		if (fs->lfs_nowrap == 0)
   1573      1.214        ad 			log(LOG_NOTICE, "%s: disabled log wrap\n", fs->lfs_fsmnt);
   1574      1.214        ad 		++fs->lfs_nowrap;
   1575      1.222  christos 		if (*(int *)ap->a_data == 1
   1576      1.224     pooka 		    || ap->a_command == LFCNWRAPSTOP_COMPAT) {
   1577      1.214        ad 			log(LOG_NOTICE, "LFCNSTOPWRAP waiting for log wrap\n");
   1578      1.214        ad 			error = mtsleep(&fs->lfs_nowrap, PCATCH | PUSER,
   1579      1.214        ad 				"segwrap", 0, &lfs_lock);
   1580      1.214        ad 			log(LOG_NOTICE, "LFCNSTOPWRAP done waiting\n");
   1581      1.214        ad 			if (error) {
   1582      1.214        ad 				lfs_wrapgo(fs, VTOI(ap->a_vp), 0);
   1583      1.214        ad 			}
   1584      1.214        ad 		}
   1585      1.214        ad 		mutex_exit(&lfs_lock);
   1586      1.214        ad 		return 0;
   1587      1.168  perseant 
   1588      1.168  perseant 	    case LFCNWRAPGO:
   1589      1.179  perseant 	    case LFCNWRAPGO_COMPAT:
   1590      1.214        ad 		/*
   1591      1.214        ad 		 * Having done its work, the agent wakes up the writer.
   1592      1.214        ad 		 * If the argument is 1, it sleeps until a new segment
   1593      1.214        ad 		 * is selected.
   1594      1.214        ad 		 */
   1595      1.214        ad 		mutex_enter(&lfs_lock);
   1596      1.214        ad 		error = lfs_wrapgo(fs, VTOI(ap->a_vp),
   1597      1.222  christos 				   ap->a_command == LFCNWRAPGO_COMPAT ? 1 :
   1598      1.222  christos 				    *((int *)ap->a_data));
   1599      1.214        ad 		mutex_exit(&lfs_lock);
   1600      1.214        ad 		return error;
   1601      1.168  perseant 
   1602      1.188  perseant 	    case LFCNWRAPPASS:
   1603      1.214        ad 		if ((VTOI(ap->a_vp)->i_lfs_iflags & LFSI_WRAPWAIT))
   1604      1.214        ad 			return EALREADY;
   1605      1.214        ad 		mutex_enter(&lfs_lock);
   1606      1.214        ad 		if (fs->lfs_stoplwp != curlwp) {
   1607      1.214        ad 			mutex_exit(&lfs_lock);
   1608      1.214        ad 			return EALREADY;
   1609      1.214        ad 		}
   1610      1.214        ad 		if (fs->lfs_nowrap == 0) {
   1611      1.214        ad 			mutex_exit(&lfs_lock);
   1612      1.214        ad 			return EBUSY;
   1613      1.214        ad 		}
   1614      1.214        ad 		fs->lfs_wrappass = 1;
   1615      1.214        ad 		wakeup(&fs->lfs_wrappass);
   1616      1.214        ad 		/* Wait for the log to wrap, if asked */
   1617      1.214        ad 		if (*(int *)ap->a_data) {
   1618      1.235     rmind 			mutex_enter(ap->a_vp->v_interlock);
   1619      1.239  perseant 			if (lfs_vref(ap->a_vp) != 0)
   1620      1.239  perseant 				panic("LFCNWRAPPASS: lfs_vref failed");
   1621      1.214        ad 			VTOI(ap->a_vp)->i_lfs_iflags |= LFSI_WRAPWAIT;
   1622      1.214        ad 			log(LOG_NOTICE, "LFCNPASS waiting for log wrap\n");
   1623      1.214        ad 			error = mtsleep(&fs->lfs_nowrap, PCATCH | PUSER,
   1624      1.214        ad 				"segwrap", 0, &lfs_lock);
   1625      1.214        ad 			log(LOG_NOTICE, "LFCNPASS done waiting\n");
   1626      1.214        ad 			VTOI(ap->a_vp)->i_lfs_iflags &= ~LFSI_WRAPWAIT;
   1627      1.214        ad 			lfs_vunref(ap->a_vp);
   1628      1.214        ad 		}
   1629      1.214        ad 		mutex_exit(&lfs_lock);
   1630      1.214        ad 		return error;
   1631      1.188  perseant 
   1632      1.188  perseant 	    case LFCNWRAPSTATUS:
   1633      1.214        ad 		mutex_enter(&lfs_lock);
   1634      1.214        ad 		*(int *)ap->a_data = fs->lfs_wrapstatus;
   1635      1.214        ad 		mutex_exit(&lfs_lock);
   1636      1.214        ad 		return 0;
   1637      1.188  perseant 
   1638       1.89  perseant 	    default:
   1639      1.245  dholland 		return ulfs_fcntl(v);
   1640       1.89  perseant 	}
   1641       1.89  perseant 	return 0;
   1642       1.60       chs }
   1643       1.60       chs 
   1644       1.60       chs int
   1645       1.60       chs lfs_getpages(void *v)
   1646       1.60       chs {
   1647       1.60       chs 	struct vop_getpages_args /* {
   1648       1.60       chs 		struct vnode *a_vp;
   1649       1.60       chs 		voff_t a_offset;
   1650       1.60       chs 		struct vm_page **a_m;
   1651       1.60       chs 		int *a_count;
   1652       1.60       chs 		int a_centeridx;
   1653       1.60       chs 		vm_prot_t a_access_type;
   1654       1.60       chs 		int a_advice;
   1655       1.60       chs 		int a_flags;
   1656       1.60       chs 	} */ *ap = v;
   1657       1.60       chs 
   1658       1.97  perseant 	if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM &&
   1659       1.97  perseant 	    (ap->a_access_type & VM_PROT_WRITE) != 0) {
   1660       1.97  perseant 		return EPERM;
   1661       1.97  perseant 	}
   1662       1.60       chs 	if ((ap->a_access_type & VM_PROT_WRITE) != 0) {
   1663      1.214        ad 		mutex_enter(&lfs_lock);
   1664       1.60       chs 		LFS_SET_UINO(VTOI(ap->a_vp), IN_MODIFIED);
   1665      1.214        ad 		mutex_exit(&lfs_lock);
   1666       1.60       chs 	}
   1667      1.115      yamt 
   1668      1.115      yamt 	/*
   1669      1.115      yamt 	 * we're relying on the fact that genfs_getpages() always read in
   1670      1.115      yamt 	 * entire filesystem blocks.
   1671      1.115      yamt 	 */
   1672       1.95  perseant 	return genfs_getpages(v);
   1673        1.1   mycroft }
   1674       1.84  perseant 
   1675      1.204  perseant /*
   1676      1.204  perseant  * Wait for a page to become unbusy, possibly printing diagnostic messages
   1677      1.204  perseant  * as well.
   1678      1.204  perseant  *
   1679      1.204  perseant  * Called with vp->v_interlock held; return with it held.
   1680      1.204  perseant  */
   1681      1.203  perseant static void
   1682      1.203  perseant wait_for_page(struct vnode *vp, struct vm_page *pg, const char *label)
   1683      1.203  perseant {
   1684      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   1685      1.203  perseant 	if ((pg->flags & PG_BUSY) == 0)
   1686      1.203  perseant 		return;		/* Nothing to wait for! */
   1687      1.203  perseant 
   1688      1.204  perseant #if defined(DEBUG) && defined(UVM_PAGE_TRKOWN)
   1689      1.203  perseant 	static struct vm_page *lastpg;
   1690      1.203  perseant 
   1691      1.203  perseant 	if (label != NULL && pg != lastpg) {
   1692      1.203  perseant 		if (pg->owner_tag) {
   1693      1.203  perseant 			printf("lfs_putpages[%d.%d]: %s: page %p owner %d.%d [%s]\n",
   1694      1.203  perseant 			       curproc->p_pid, curlwp->l_lid, label,
   1695      1.203  perseant 			       pg, pg->owner, pg->lowner, pg->owner_tag);
   1696      1.203  perseant 		} else {
   1697      1.203  perseant 			printf("lfs_putpages[%d.%d]: %s: page %p unowned?!\n",
   1698      1.203  perseant 			       curproc->p_pid, curlwp->l_lid, label, pg);
   1699      1.203  perseant 		}
   1700      1.203  perseant 	}
   1701      1.203  perseant 	lastpg = pg;
   1702      1.203  perseant #endif
   1703      1.203  perseant 
   1704      1.203  perseant 	pg->flags |= PG_WANTED;
   1705      1.235     rmind 	UVM_UNLOCK_AND_WAIT(pg, vp->v_interlock, 0, "lfsput", 0);
   1706      1.235     rmind 	mutex_enter(vp->v_interlock);
   1707      1.203  perseant }
   1708      1.203  perseant 
   1709      1.203  perseant /*
   1710      1.203  perseant  * This routine is called by lfs_putpages() when it can't complete the
   1711      1.203  perseant  * write because a page is busy.  This means that either (1) someone,
   1712      1.203  perseant  * possibly the pagedaemon, is looking at this page, and will give it up
   1713      1.203  perseant  * presently; or (2) we ourselves are holding the page busy in the
   1714      1.203  perseant  * process of being written (either gathered or actually on its way to
   1715      1.203  perseant  * disk).  We don't need to give up the segment lock, but we might need
   1716      1.203  perseant  * to call lfs_writeseg() to expedite the page's journey to disk.
   1717      1.204  perseant  *
   1718      1.204  perseant  * Called with vp->v_interlock held; return with it held.
   1719      1.203  perseant  */
   1720      1.203  perseant /* #define BUSYWAIT */
   1721      1.203  perseant static void
   1722      1.203  perseant write_and_wait(struct lfs *fs, struct vnode *vp, struct vm_page *pg,
   1723      1.203  perseant 	       int seglocked, const char *label)
   1724      1.203  perseant {
   1725      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   1726      1.203  perseant #ifndef BUSYWAIT
   1727      1.203  perseant 	struct inode *ip = VTOI(vp);
   1728      1.203  perseant 	struct segment *sp = fs->lfs_sp;
   1729      1.203  perseant 	int count = 0;
   1730      1.203  perseant 
   1731      1.203  perseant 	if (pg == NULL)
   1732      1.203  perseant 		return;
   1733      1.203  perseant 
   1734      1.226       eeh 	while (pg->flags & PG_BUSY &&
   1735      1.226       eeh 	    pg->uobject == &vp->v_uobj) {
   1736      1.235     rmind 		mutex_exit(vp->v_interlock);
   1737      1.203  perseant 		if (sp->cbpp - sp->bpp > 1) {
   1738      1.203  perseant 			/* Write gathered pages */
   1739      1.203  perseant 			lfs_updatemeta(sp);
   1740      1.203  perseant 			lfs_release_finfo(fs);
   1741      1.203  perseant 			(void) lfs_writeseg(fs, sp);
   1742      1.203  perseant 
   1743      1.203  perseant 			/*
   1744      1.203  perseant 			 * Reinitialize FIP
   1745      1.203  perseant 			 */
   1746      1.203  perseant 			KASSERT(sp->vp == vp);
   1747      1.203  perseant 			lfs_acquire_finfo(fs, ip->i_number,
   1748      1.203  perseant 					  ip->i_gen);
   1749      1.203  perseant 		}
   1750      1.204  perseant 		++count;
   1751      1.235     rmind 		mutex_enter(vp->v_interlock);
   1752      1.203  perseant 		wait_for_page(vp, pg, label);
   1753      1.203  perseant 	}
   1754      1.239  perseant 	if (label != NULL && count > 1) {
   1755      1.239  perseant 		DLOG((DLOG_PAGE, "lfs_putpages[%d]: %s: %sn = %d\n",
   1756      1.239  perseant 		      curproc->p_pid, label, (count > 0 ? "looping, " : ""),
   1757      1.239  perseant 		      count));
   1758      1.239  perseant 	}
   1759      1.203  perseant #else
   1760      1.203  perseant 	preempt(1);
   1761      1.203  perseant #endif
   1762      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   1763      1.203  perseant }
   1764      1.203  perseant 
   1765       1.84  perseant /*
   1766       1.84  perseant  * Make sure that for all pages in every block in the given range,
   1767       1.84  perseant  * either all are dirty or all are clean.  If any of the pages
   1768       1.84  perseant  * we've seen so far are dirty, put the vnode on the paging chain,
   1769       1.84  perseant  * and mark it IN_PAGING.
   1770      1.105  perseant  *
   1771      1.105  perseant  * If checkfirst != 0, don't check all the pages but return at the
   1772      1.105  perseant  * first dirty page.
   1773       1.84  perseant  */
   1774       1.84  perseant static int
   1775       1.84  perseant check_dirty(struct lfs *fs, struct vnode *vp,
   1776       1.84  perseant 	    off_t startoffset, off_t endoffset, off_t blkeof,
   1777      1.203  perseant 	    int flags, int checkfirst, struct vm_page **pgp)
   1778       1.84  perseant {
   1779       1.86  perseant 	int by_list;
   1780      1.122  christos 	struct vm_page *curpg = NULL; /* XXX: gcc */
   1781      1.122  christos 	struct vm_page *pgs[MAXBSIZE / PAGE_SIZE], *pg;
   1782      1.122  christos 	off_t soff = 0; /* XXX: gcc */
   1783       1.84  perseant 	voff_t off;
   1784      1.115      yamt 	int i;
   1785      1.115      yamt 	int nonexistent;
   1786      1.115      yamt 	int any_dirty;	/* number of dirty pages */
   1787      1.115      yamt 	int dirty;	/* number of dirty pages in a block */
   1788      1.115      yamt 	int tdirty;
   1789       1.84  perseant 	int pages_per_block = fs->lfs_bsize >> PAGE_SHIFT;
   1790      1.207        ad 	int pagedaemon = (curlwp == uvm.pagedaemon_lwp);
   1791       1.84  perseant 
   1792      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   1793      1.141  perseant 	ASSERT_MAYBE_SEGLOCK(fs);
   1794       1.84  perseant   top:
   1795       1.84  perseant 	by_list = (vp->v_uobj.uo_npages <=
   1796       1.84  perseant 		   ((endoffset - startoffset) >> PAGE_SHIFT) *
   1797      1.219      yamt 		   UVM_PAGE_TREE_PENALTY);
   1798       1.84  perseant 	any_dirty = 0;
   1799       1.84  perseant 
   1800       1.84  perseant 	if (by_list) {
   1801       1.84  perseant 		curpg = TAILQ_FIRST(&vp->v_uobj.memq);
   1802       1.84  perseant 	} else {
   1803       1.84  perseant 		soff = startoffset;
   1804       1.84  perseant 	}
   1805       1.84  perseant 	while (by_list || soff < MIN(blkeof, endoffset)) {
   1806       1.84  perseant 		if (by_list) {
   1807      1.115      yamt 			/*
   1808      1.138  perseant 			 * Find the first page in a block.  Skip
   1809      1.138  perseant 			 * blocks outside our area of interest or beyond
   1810      1.138  perseant 			 * the end of file.
   1811      1.115      yamt 			 */
   1812      1.234    martin 			KASSERT(curpg == NULL
   1813      1.234    martin 			    || (curpg->flags & PG_MARKER) == 0);
   1814       1.84  perseant 			if (pages_per_block > 1) {
   1815      1.138  perseant 				while (curpg &&
   1816      1.230   hannken 				    ((curpg->offset & fs->lfs_bmask) ||
   1817      1.230   hannken 				    curpg->offset >= vp->v_size ||
   1818      1.230   hannken 				    curpg->offset >= endoffset)) {
   1819      1.217        ad 					curpg = TAILQ_NEXT(curpg, listq.queue);
   1820      1.230   hannken 					KASSERT(curpg == NULL ||
   1821      1.230   hannken 					    (curpg->flags & PG_MARKER) == 0);
   1822      1.230   hannken 				}
   1823       1.84  perseant 			}
   1824       1.84  perseant 			if (curpg == NULL)
   1825       1.84  perseant 				break;
   1826       1.84  perseant 			soff = curpg->offset;
   1827       1.84  perseant 		}
   1828       1.84  perseant 
   1829       1.84  perseant 		/*
   1830       1.84  perseant 		 * Mark all pages in extended range busy; find out if any
   1831       1.84  perseant 		 * of them are dirty.
   1832       1.84  perseant 		 */
   1833       1.84  perseant 		nonexistent = dirty = 0;
   1834       1.84  perseant 		for (i = 0; i == 0 || i < pages_per_block; i++) {
   1835      1.239  perseant 			KASSERT(mutex_owned(vp->v_interlock));
   1836       1.84  perseant 			if (by_list && pages_per_block <= 1) {
   1837       1.84  perseant 				pgs[i] = pg = curpg;
   1838       1.84  perseant 			} else {
   1839       1.84  perseant 				off = soff + (i << PAGE_SHIFT);
   1840       1.84  perseant 				pgs[i] = pg = uvm_pagelookup(&vp->v_uobj, off);
   1841       1.84  perseant 				if (pg == NULL) {
   1842       1.84  perseant 					++nonexistent;
   1843       1.84  perseant 					continue;
   1844       1.84  perseant 				}
   1845       1.84  perseant 			}
   1846       1.84  perseant 			KASSERT(pg != NULL);
   1847      1.158  perseant 
   1848      1.158  perseant 			/*
   1849      1.177  perseant 			 * If we're holding the segment lock, we can deadlock
   1850      1.158  perseant 			 * against a process that has our page and is waiting
   1851      1.158  perseant 			 * for the cleaner, while the cleaner waits for the
   1852      1.158  perseant 			 * segment lock.  Just bail in that case.
   1853      1.158  perseant 			 */
   1854      1.159  perseant 			if ((pg->flags & PG_BUSY) &&
   1855      1.159  perseant 			    (pagedaemon || LFS_SEGLOCK_HELD(fs))) {
   1856      1.203  perseant 				if (i > 0)
   1857      1.159  perseant 					uvm_page_unbusy(pgs, i);
   1858      1.159  perseant 				DLOG((DLOG_PAGE, "lfs_putpages: avoiding 3-way or pagedaemon deadlock\n"));
   1859      1.203  perseant 				if (pgp)
   1860      1.203  perseant 					*pgp = pg;
   1861      1.239  perseant 				KASSERT(mutex_owned(vp->v_interlock));
   1862      1.159  perseant 				return -1;
   1863      1.158  perseant 			}
   1864      1.158  perseant 
   1865       1.84  perseant 			while (pg->flags & PG_BUSY) {
   1866      1.203  perseant 				wait_for_page(vp, pg, NULL);
   1867      1.239  perseant 				KASSERT(mutex_owned(vp->v_interlock));
   1868      1.203  perseant 				if (i > 0)
   1869      1.203  perseant 					uvm_page_unbusy(pgs, i);
   1870      1.239  perseant 				KASSERT(mutex_owned(vp->v_interlock));
   1871      1.203  perseant 				goto top;
   1872       1.84  perseant 			}
   1873       1.84  perseant 			pg->flags |= PG_BUSY;
   1874       1.84  perseant 			UVM_PAGE_OWN(pg, "lfs_putpages");
   1875       1.84  perseant 
   1876       1.84  perseant 			pmap_page_protect(pg, VM_PROT_NONE);
   1877       1.84  perseant 			tdirty = (pmap_clear_modify(pg) ||
   1878       1.84  perseant 				  (pg->flags & PG_CLEAN) == 0);
   1879       1.84  perseant 			dirty += tdirty;
   1880       1.84  perseant 		}
   1881       1.84  perseant 		if (pages_per_block > 0 && nonexistent >= pages_per_block) {
   1882       1.84  perseant 			if (by_list) {
   1883      1.217        ad 				curpg = TAILQ_NEXT(curpg, listq.queue);
   1884       1.84  perseant 			} else {
   1885       1.84  perseant 				soff += fs->lfs_bsize;
   1886       1.84  perseant 			}
   1887       1.84  perseant 			continue;
   1888       1.84  perseant 		}
   1889       1.84  perseant 
   1890       1.84  perseant 		any_dirty += dirty;
   1891       1.84  perseant 		KASSERT(nonexistent == 0);
   1892      1.239  perseant 		KASSERT(mutex_owned(vp->v_interlock));
   1893       1.84  perseant 
   1894       1.84  perseant 		/*
   1895       1.84  perseant 		 * If any are dirty make all dirty; unbusy them,
   1896       1.88  perseant 		 * but if we were asked to clean, wire them so that
   1897       1.88  perseant 		 * the pagedaemon doesn't bother us about them while
   1898       1.88  perseant 		 * they're on their way to disk.
   1899       1.84  perseant 		 */
   1900       1.84  perseant 		for (i = 0; i == 0 || i < pages_per_block; i++) {
   1901      1.239  perseant 			KASSERT(mutex_owned(vp->v_interlock));
   1902       1.84  perseant 			pg = pgs[i];
   1903       1.84  perseant 			KASSERT(!((pg->flags & PG_CLEAN) && (pg->flags & PG_DELWRI)));
   1904      1.239  perseant 			KASSERT(pg->flags & PG_BUSY);
   1905       1.84  perseant 			if (dirty) {
   1906       1.84  perseant 				pg->flags &= ~PG_CLEAN;
   1907       1.84  perseant 				if (flags & PGO_FREE) {
   1908       1.85      yamt 					/*
   1909       1.96  perseant 					 * Wire the page so that
   1910       1.96  perseant 					 * pdaemon doesn't see it again.
   1911       1.85      yamt 					 */
   1912      1.214        ad 					mutex_enter(&uvm_pageqlock);
   1913       1.85      yamt 					uvm_pagewire(pg);
   1914      1.214        ad 					mutex_exit(&uvm_pageqlock);
   1915       1.88  perseant 
   1916       1.84  perseant 					/* Suspended write flag */
   1917       1.84  perseant 					pg->flags |= PG_DELWRI;
   1918       1.84  perseant 				}
   1919       1.84  perseant 			}
   1920       1.84  perseant 			if (pg->flags & PG_WANTED)
   1921       1.84  perseant 				wakeup(pg);
   1922       1.84  perseant 			pg->flags &= ~(PG_WANTED|PG_BUSY);
   1923       1.85      yamt 			UVM_PAGE_OWN(pg, NULL);
   1924       1.84  perseant 		}
   1925       1.84  perseant 
   1926      1.103  perseant 		if (checkfirst && any_dirty)
   1927      1.130      yamt 			break;
   1928      1.103  perseant 
   1929       1.84  perseant 		if (by_list) {
   1930      1.217        ad 			curpg = TAILQ_NEXT(curpg, listq.queue);
   1931       1.84  perseant 		} else {
   1932       1.84  perseant 			soff += MAX(PAGE_SIZE, fs->lfs_bsize);
   1933       1.84  perseant 		}
   1934       1.84  perseant 	}
   1935       1.84  perseant 
   1936      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   1937       1.84  perseant 	return any_dirty;
   1938       1.84  perseant }
   1939       1.84  perseant 
   1940       1.84  perseant /*
   1941       1.84  perseant  * lfs_putpages functions like genfs_putpages except that
   1942      1.135     perry  *
   1943       1.84  perseant  * (1) It needs to bounds-check the incoming requests to ensure that
   1944       1.84  perseant  *     they are block-aligned; if they are not, expand the range and
   1945       1.84  perseant  *     do the right thing in case, e.g., the requested range is clean
   1946       1.84  perseant  *     but the expanded range is dirty.
   1947      1.178  perseant  *
   1948       1.84  perseant  * (2) It needs to explicitly send blocks to be written when it is done.
   1949      1.202  perseant  *     If VOP_PUTPAGES is called without the seglock held, we simply take
   1950      1.202  perseant  *     the seglock and let lfs_segunlock wait for us.
   1951      1.202  perseant  *     XXX There might be a bad situation if we have to flush a vnode while
   1952      1.202  perseant  *     XXX lfs_markv is in operation.  As of this writing we panic in this
   1953      1.202  perseant  *     XXX case.
   1954       1.84  perseant  *
   1955       1.84  perseant  * Assumptions:
   1956       1.84  perseant  *
   1957       1.84  perseant  * (1) The caller does not hold any pages in this vnode busy.  If it does,
   1958       1.84  perseant  *     there is a danger that when we expand the page range and busy the
   1959       1.84  perseant  *     pages we will deadlock.
   1960      1.178  perseant  *
   1961       1.84  perseant  * (2) We are called with vp->v_interlock held; we must return with it
   1962       1.84  perseant  *     released.
   1963      1.178  perseant  *
   1964       1.84  perseant  * (3) We don't absolutely have to free pages right away, provided that
   1965       1.84  perseant  *     the request does not have PGO_SYNCIO.  When the pagedaemon gives
   1966       1.84  perseant  *     us a request with PGO_FREE, we take the pages out of the paging
   1967       1.84  perseant  *     queue and wake up the writer, which will handle freeing them for us.
   1968       1.84  perseant  *
   1969       1.84  perseant  *     We ensure that for any filesystem block, all pages for that
   1970       1.84  perseant  *     block are either resident or not, even if those pages are higher
   1971       1.84  perseant  *     than EOF; that means that we will be getting requests to free
   1972       1.84  perseant  *     "unused" pages above EOF all the time, and should ignore them.
   1973      1.115      yamt  *
   1974      1.178  perseant  * (4) If we are called with PGO_LOCKED, the finfo array we are to write
   1975      1.178  perseant  *     into has been set up for us by lfs_writefile.  If not, we will
   1976      1.178  perseant  *     have to handle allocating and/or freeing an finfo entry.
   1977      1.178  perseant  *
   1978      1.115      yamt  * XXX note that we're (ab)using PGO_LOCKED as "seglock held".
   1979       1.84  perseant  */
   1980       1.84  perseant 
   1981      1.203  perseant /* How many times to loop before we should start to worry */
   1982      1.203  perseant #define TOOMANY 4
   1983      1.203  perseant 
   1984       1.84  perseant int
   1985       1.84  perseant lfs_putpages(void *v)
   1986       1.84  perseant {
   1987       1.84  perseant 	int error;
   1988       1.84  perseant 	struct vop_putpages_args /* {
   1989       1.84  perseant 		struct vnode *a_vp;
   1990       1.84  perseant 		voff_t a_offlo;
   1991       1.84  perseant 		voff_t a_offhi;
   1992       1.84  perseant 		int a_flags;
   1993       1.84  perseant 	} */ *ap = v;
   1994       1.84  perseant 	struct vnode *vp;
   1995       1.84  perseant 	struct inode *ip;
   1996       1.84  perseant 	struct lfs *fs;
   1997       1.84  perseant 	struct segment *sp;
   1998       1.84  perseant 	off_t origoffset, startoffset, endoffset, origendoffset, blkeof;
   1999       1.95  perseant 	off_t off, max_endoffset;
   2000      1.239  perseant 	bool seglocked, sync, pagedaemon, reclaim;
   2001      1.203  perseant 	struct vm_page *pg, *busypg;
   2002       1.84  perseant 	UVMHIST_FUNC("lfs_putpages"); UVMHIST_CALLED(ubchist);
   2003      1.239  perseant 	int oreclaim = 0;
   2004      1.239  perseant 	int donewriting = 0;
   2005      1.203  perseant #ifdef DEBUG
   2006      1.203  perseant 	int debug_n_again, debug_n_dirtyclean;
   2007      1.203  perseant #endif
   2008       1.84  perseant 
   2009       1.84  perseant 	vp = ap->a_vp;
   2010       1.84  perseant 	ip = VTOI(vp);
   2011       1.84  perseant 	fs = ip->i_lfs;
   2012      1.126      yamt 	sync = (ap->a_flags & PGO_SYNCIO) != 0;
   2013      1.239  perseant 	reclaim = (ap->a_flags & PGO_RECLAIM) != 0;
   2014      1.207        ad 	pagedaemon = (curlwp == uvm.pagedaemon_lwp);
   2015       1.84  perseant 
   2016      1.239  perseant 	KASSERT(mutex_owned(vp->v_interlock));
   2017      1.239  perseant 
   2018       1.84  perseant 	/* Putpages does nothing for metadata. */
   2019       1.84  perseant 	if (vp == fs->lfs_ivnode || vp->v_type != VREG) {
   2020      1.235     rmind 		mutex_exit(vp->v_interlock);
   2021       1.84  perseant 		return 0;
   2022       1.84  perseant 	}
   2023       1.84  perseant 
   2024       1.84  perseant 	/*
   2025       1.84  perseant 	 * If there are no pages, don't do anything.
   2026       1.84  perseant 	 */
   2027       1.84  perseant 	if (vp->v_uobj.uo_npages == 0) {
   2028      1.195  perseant 		if (TAILQ_EMPTY(&vp->v_uobj.memq) &&
   2029      1.212        ad 		    (vp->v_iflag & VI_ONWORKLST) &&
   2030      1.195  perseant 		    LIST_FIRST(&vp->v_dirtyblkhd) == NULL) {
   2031      1.212        ad 			vp->v_iflag &= ~VI_WRMAPDIRTY;
   2032      1.192   reinoud 			vn_syncer_remove_from_worklist(vp);
   2033      1.195  perseant 		}
   2034      1.235     rmind 		mutex_exit(vp->v_interlock);
   2035      1.164  perseant 
   2036      1.164  perseant 		/* Remove us from paging queue, if we were on it */
   2037      1.214        ad 		mutex_enter(&lfs_lock);
   2038      1.164  perseant 		if (ip->i_flags & IN_PAGING) {
   2039      1.164  perseant 			ip->i_flags &= ~IN_PAGING;
   2040      1.164  perseant 			TAILQ_REMOVE(&fs->lfs_pchainhd, ip, i_lfs_pchain);
   2041      1.164  perseant 		}
   2042      1.214        ad 		mutex_exit(&lfs_lock);
   2043      1.239  perseant 
   2044      1.239  perseant 		KASSERT(!mutex_owned(vp->v_interlock));
   2045       1.84  perseant 		return 0;
   2046       1.84  perseant 	}
   2047       1.84  perseant 
   2048      1.248  christos 	blkeof = lfs_blkroundup(fs, ip->i_size);
   2049       1.84  perseant 
   2050       1.84  perseant 	/*
   2051       1.84  perseant 	 * Ignore requests to free pages past EOF but in the same block
   2052      1.239  perseant 	 * as EOF, unless the vnode is being reclaimed or the request
   2053      1.239  perseant 	 * is synchronous.  (If the request is sync, it comes from
   2054      1.239  perseant 	 * lfs_truncate.)
   2055      1.239  perseant 	 *
   2056      1.239  perseant 	 * To avoid being flooded with this request, make these pages
   2057      1.239  perseant 	 * look "active".
   2058       1.84  perseant 	 */
   2059      1.239  perseant 	if (!sync && !reclaim &&
   2060      1.239  perseant 	    ap->a_offlo >= ip->i_size && ap->a_offlo < blkeof) {
   2061       1.84  perseant 		origoffset = ap->a_offlo;
   2062       1.95  perseant 		for (off = origoffset; off < blkeof; off += fs->lfs_bsize) {
   2063       1.95  perseant 			pg = uvm_pagelookup(&vp->v_uobj, off);
   2064       1.95  perseant 			KASSERT(pg != NULL);
   2065       1.95  perseant 			while (pg->flags & PG_BUSY) {
   2066       1.95  perseant 				pg->flags |= PG_WANTED;
   2067      1.235     rmind 				UVM_UNLOCK_AND_WAIT(pg, vp->v_interlock, 0,
   2068       1.95  perseant 						    "lfsput2", 0);
   2069      1.235     rmind 				mutex_enter(vp->v_interlock);
   2070       1.95  perseant 			}
   2071      1.214        ad 			mutex_enter(&uvm_pageqlock);
   2072       1.95  perseant 			uvm_pageactivate(pg);
   2073      1.214        ad 			mutex_exit(&uvm_pageqlock);
   2074       1.95  perseant 		}
   2075       1.84  perseant 		ap->a_offlo = blkeof;
   2076       1.84  perseant 		if (ap->a_offhi > 0 && ap->a_offhi <= ap->a_offlo) {
   2077      1.235     rmind 			mutex_exit(vp->v_interlock);
   2078       1.84  perseant 			return 0;
   2079       1.84  perseant 		}
   2080       1.84  perseant 	}
   2081       1.84  perseant 
   2082       1.84  perseant 	/*
   2083       1.84  perseant 	 * Extend page range to start and end at block boundaries.
   2084       1.84  perseant 	 * (For the purposes of VOP_PUTPAGES, fragments don't exist.)
   2085       1.84  perseant 	 */
   2086       1.86  perseant 	origoffset = ap->a_offlo;
   2087       1.84  perseant 	origendoffset = ap->a_offhi;
   2088       1.86  perseant 	startoffset = origoffset & ~(fs->lfs_bmask);
   2089       1.84  perseant 	max_endoffset = (trunc_page(LLONG_MAX) >> fs->lfs_bshift)
   2090       1.84  perseant 					       << fs->lfs_bshift;
   2091       1.84  perseant 
   2092       1.84  perseant 	if (origendoffset == 0 || ap->a_flags & PGO_ALLPAGES) {
   2093       1.86  perseant 		endoffset = max_endoffset;
   2094       1.84  perseant 		origendoffset = endoffset;
   2095       1.86  perseant 	} else {
   2096       1.84  perseant 		origendoffset = round_page(ap->a_offhi);
   2097      1.248  christos 		endoffset = round_page(lfs_blkroundup(fs, origendoffset));
   2098       1.84  perseant 	}
   2099       1.84  perseant 
   2100       1.84  perseant 	KASSERT(startoffset > 0 || endoffset >= startoffset);
   2101       1.84  perseant 	if (startoffset == endoffset) {
   2102       1.84  perseant 		/* Nothing to do, why were we called? */
   2103      1.235     rmind 		mutex_exit(vp->v_interlock);
   2104      1.136  perseant 		DLOG((DLOG_PAGE, "lfs_putpages: startoffset = endoffset = %"
   2105      1.136  perseant 		      PRId64 "\n", startoffset));
   2106       1.84  perseant 		return 0;
   2107       1.84  perseant 	}
   2108       1.84  perseant 
   2109       1.84  perseant 	ap->a_offlo = startoffset;
   2110       1.84  perseant 	ap->a_offhi = endoffset;
   2111       1.84  perseant 
   2112      1.203  perseant 	/*
   2113      1.203  perseant 	 * If not cleaning, just send the pages through genfs_putpages
   2114      1.203  perseant 	 * to be returned to the pool.
   2115      1.203  perseant 	 */
   2116      1.239  perseant 	if (!(ap->a_flags & PGO_CLEANIT)) {
   2117      1.239  perseant 		DLOG((DLOG_PAGE, "lfs_putpages: no cleanit vn %p ino %d (flags %x)\n",
   2118      1.239  perseant 		      vp, (int)ip->i_number, ap->a_flags));
   2119      1.239  perseant 		int r = genfs_putpages(v);
   2120      1.239  perseant 		KASSERT(!mutex_owned(vp->v_interlock));
   2121      1.239  perseant 		return r;
   2122      1.239  perseant 	}
   2123       1.84  perseant 
   2124      1.203  perseant 	/* Set PGO_BUSYFAIL to avoid deadlocks */
   2125      1.203  perseant 	ap->a_flags |= PGO_BUSYFAIL;
   2126      1.203  perseant 
   2127       1.84  perseant 	/*
   2128      1.203  perseant 	 * Likewise, if we are asked to clean but the pages are not
   2129      1.203  perseant 	 * dirty, we can just free them using genfs_putpages.
   2130       1.84  perseant 	 */
   2131      1.203  perseant #ifdef DEBUG
   2132      1.203  perseant 	debug_n_dirtyclean = 0;
   2133      1.203  perseant #endif
   2134      1.103  perseant 	do {
   2135      1.103  perseant 		int r;
   2136      1.239  perseant 		KASSERT(mutex_owned(vp->v_interlock));
   2137      1.103  perseant 
   2138      1.203  perseant 		/* Count the number of dirty pages */
   2139      1.158  perseant 		r = check_dirty(fs, vp, startoffset, endoffset, blkeof,
   2140      1.203  perseant 				ap->a_flags, 1, NULL);
   2141      1.158  perseant 		if (r < 0) {
   2142      1.203  perseant 			/* Pages are busy with another process */
   2143      1.235     rmind 			mutex_exit(vp->v_interlock);
   2144      1.158  perseant 			return EDEADLK;
   2145      1.158  perseant 		}
   2146      1.203  perseant 		if (r > 0) /* Some pages are dirty */
   2147      1.103  perseant 			break;
   2148      1.103  perseant 
   2149      1.134  perseant 		/*
   2150      1.134  perseant 		 * Sometimes pages are dirtied between the time that
   2151      1.134  perseant 		 * we check and the time we try to clean them.
   2152      1.134  perseant 		 * Instruct lfs_gop_write to return EDEADLK in this case
   2153      1.134  perseant 		 * so we can write them properly.
   2154      1.134  perseant 		 */
   2155      1.134  perseant 		ip->i_lfs_iflags |= LFSI_NO_GOP_WRITE;
   2156      1.206  perseant 		r = genfs_do_putpages(vp, startoffset, endoffset,
   2157      1.226       eeh 				       ap->a_flags & ~PGO_SYNCIO, &busypg);
   2158      1.134  perseant 		ip->i_lfs_iflags &= ~LFSI_NO_GOP_WRITE;
   2159      1.239  perseant 		if (r != EDEADLK) {
   2160      1.239  perseant 			KASSERT(!mutex_owned(vp->v_interlock));
   2161      1.239  perseant  			return r;
   2162      1.239  perseant 		}
   2163      1.103  perseant 
   2164      1.203  perseant 		/* One of the pages was busy.  Start over. */
   2165      1.235     rmind 		mutex_enter(vp->v_interlock);
   2166      1.203  perseant 		wait_for_page(vp, busypg, "dirtyclean");
   2167      1.203  perseant #ifdef DEBUG
   2168      1.203  perseant 		++debug_n_dirtyclean;
   2169      1.203  perseant #endif
   2170      1.103  perseant 	} while(1);
   2171      1.135     perry 
   2172      1.203  perseant #ifdef DEBUG
   2173      1.203  perseant 	if (debug_n_dirtyclean > TOOMANY)
   2174      1.239  perseant 		DLOG((DLOG_PAGE, "lfs_putpages: dirtyclean: looping, n = %d\n",
   2175      1.239  perseant 		      debug_n_dirtyclean));
   2176      1.203  perseant #endif
   2177      1.203  perseant 
   2178       1.84  perseant 	/*
   2179       1.84  perseant 	 * Dirty and asked to clean.
   2180       1.84  perseant 	 *
   2181       1.84  perseant 	 * Pagedaemon can't actually write LFS pages; wake up
   2182       1.84  perseant 	 * the writer to take care of that.  The writer will
   2183       1.84  perseant 	 * notice the pager inode queue and act on that.
   2184      1.232       eeh 	 *
   2185      1.232       eeh 	 * XXX We must drop the vp->interlock before taking the lfs_lock or we
   2186      1.232       eeh 	 * get a nasty deadlock with lfs_flush_pchain().
   2187       1.84  perseant 	 */
   2188       1.84  perseant 	if (pagedaemon) {
   2189      1.235     rmind 		mutex_exit(vp->v_interlock);
   2190      1.214        ad 		mutex_enter(&lfs_lock);
   2191      1.164  perseant 		if (!(ip->i_flags & IN_PAGING)) {
   2192      1.164  perseant 			ip->i_flags |= IN_PAGING;
   2193      1.164  perseant 			TAILQ_INSERT_TAIL(&fs->lfs_pchainhd, ip, i_lfs_pchain);
   2194      1.232       eeh 		}
   2195      1.164  perseant 		wakeup(&lfs_writer_daemon);
   2196      1.214        ad 		mutex_exit(&lfs_lock);
   2197      1.198        ad 		preempt();
   2198      1.239  perseant 		KASSERT(!mutex_owned(vp->v_interlock));
   2199       1.84  perseant 		return EWOULDBLOCK;
   2200       1.84  perseant 	}
   2201       1.84  perseant 
   2202       1.84  perseant 	/*
   2203       1.84  perseant 	 * If this is a file created in a recent dirop, we can't flush its
   2204       1.84  perseant 	 * inode until the dirop is complete.  Drain dirops, then flush the
   2205       1.84  perseant 	 * filesystem (taking care of any other pending dirops while we're
   2206       1.84  perseant 	 * at it).
   2207       1.84  perseant 	 */
   2208       1.84  perseant 	if ((ap->a_flags & (PGO_CLEANIT|PGO_LOCKED)) == PGO_CLEANIT &&
   2209      1.212        ad 	    (vp->v_uflag & VU_DIROP)) {
   2210      1.239  perseant 		DLOG((DLOG_PAGE, "lfs_putpages: flushing VU_DIROP\n"));
   2211      1.239  perseant 
   2212      1.239  perseant  		lfs_writer_enter(fs, "ppdirop");
   2213       1.84  perseant 
   2214      1.239  perseant 		/* Note if we hold the vnode locked */
   2215      1.239  perseant 		if (VOP_ISLOCKED(vp) == LK_EXCLUSIVE)
   2216      1.239  perseant 		{
   2217      1.239  perseant 		    DLOG((DLOG_PAGE, "lfs_putpages: dirop inode already locked\n"));
   2218      1.239  perseant 		} else {
   2219      1.239  perseant 		    DLOG((DLOG_PAGE, "lfs_putpages: dirop inode not locked\n"));
   2220      1.239  perseant 		}
   2221      1.235     rmind 		mutex_exit(vp->v_interlock);
   2222      1.135     perry 
   2223      1.214        ad 		mutex_enter(&lfs_lock);
   2224       1.84  perseant 		lfs_flush_fs(fs, sync ? SEGM_SYNC : 0);
   2225      1.214        ad 		mutex_exit(&lfs_lock);
   2226      1.135     perry 
   2227      1.235     rmind 		mutex_enter(vp->v_interlock);
   2228      1.111      yamt 		lfs_writer_leave(fs);
   2229       1.84  perseant 
   2230      1.239  perseant 		/* The flush will have cleaned out this vnode as well,
   2231      1.239  perseant 		   no need to do more to it. */
   2232       1.84  perseant 	}
   2233       1.84  perseant 
   2234       1.84  perseant 	/*
   2235       1.86  perseant 	 * This is it.	We are going to write some pages.  From here on
   2236       1.84  perseant 	 * down it's all just mechanics.
   2237       1.84  perseant 	 *
   2238      1.103  perseant 	 * Don't let genfs_putpages wait; lfs_segunlock will wait for us.
   2239       1.84  perseant 	 */
   2240       1.84  perseant 	ap->a_flags &= ~PGO_SYNCIO;
   2241       1.84  perseant 
   2242       1.84  perseant 	/*
   2243       1.84  perseant 	 * If we've already got the seglock, flush the node and return.
   2244       1.84  perseant 	 * The FIP has already been set up for us by lfs_writefile,
   2245       1.84  perseant 	 * and FIP cleanup and lfs_updatemeta will also be done there,
   2246       1.84  perseant 	 * unless genfs_putpages returns EDEADLK; then we must flush
   2247       1.84  perseant 	 * what we have, and correct FIP and segment header accounting.
   2248       1.84  perseant 	 */
   2249      1.203  perseant   get_seglock:
   2250      1.203  perseant 	/*
   2251      1.203  perseant 	 * If we are not called with the segment locked, lock it.
   2252      1.203  perseant 	 * Account for a new FIP in the segment header, and set sp->vp.
   2253      1.203  perseant 	 * (This should duplicate the setup at the top of lfs_writefile().)
   2254      1.203  perseant 	 */
   2255      1.126      yamt 	seglocked = (ap->a_flags & PGO_LOCKED) != 0;
   2256      1.126      yamt 	if (!seglocked) {
   2257      1.235     rmind 		mutex_exit(vp->v_interlock);
   2258      1.126      yamt 		error = lfs_seglock(fs, SEGM_PROT | (sync ? SEGM_SYNC : 0));
   2259      1.239  perseant 		if (error != 0) {
   2260      1.239  perseant 			KASSERT(!mutex_owned(vp->v_interlock));
   2261      1.239  perseant  			return error;
   2262      1.239  perseant 		}
   2263      1.235     rmind 		mutex_enter(vp->v_interlock);
   2264      1.203  perseant 		lfs_acquire_finfo(fs, ip->i_number, ip->i_gen);
   2265       1.84  perseant 	}
   2266       1.84  perseant 	sp = fs->lfs_sp;
   2267      1.120      yamt 	KASSERT(sp->vp == NULL);
   2268       1.84  perseant 	sp->vp = vp;
   2269      1.135     perry 
   2270      1.239  perseant 	/* Note segments written by reclaim; only for debugging */
   2271      1.239  perseant 	if ((vp->v_iflag & VI_XLOCK) != 0) {
   2272      1.239  perseant 		sp->seg_flags |= SEGM_RECLAIM;
   2273      1.239  perseant 		fs->lfs_reclino = ip->i_number;
   2274      1.239  perseant 	}
   2275      1.239  perseant 
   2276      1.203  perseant 	/*
   2277      1.203  perseant 	 * Ensure that the partial segment is marked SS_DIROP if this
   2278      1.203  perseant 	 * vnode is a DIROP.
   2279      1.203  perseant 	 */
   2280      1.212        ad 	if (!seglocked && vp->v_uflag & VU_DIROP)
   2281      1.203  perseant 		((SEGSUM *)(sp->segsum))->ss_flags |= (SS_DIROP|SS_CONT);
   2282      1.135     perry 
   2283       1.84  perseant 	/*
   2284      1.203  perseant 	 * Loop over genfs_putpages until all pages are gathered.
   2285       1.88  perseant 	 * genfs_putpages() drops the interlock, so reacquire it if necessary.
   2286      1.103  perseant 	 * Whenever we lose the interlock we have to rerun check_dirty, as
   2287      1.203  perseant 	 * well, since more pages might have been dirtied in our absence.
   2288       1.84  perseant 	 */
   2289      1.203  perseant #ifdef DEBUG
   2290      1.203  perseant 	debug_n_again = 0;
   2291      1.203  perseant #endif
   2292      1.203  perseant 	do {
   2293      1.203  perseant 		busypg = NULL;
   2294      1.239  perseant 		KASSERT(mutex_owned(vp->v_interlock));
   2295      1.203  perseant 		if (check_dirty(fs, vp, startoffset, endoffset, blkeof,
   2296      1.203  perseant 				ap->a_flags, 0, &busypg) < 0) {
   2297      1.235     rmind 			mutex_exit(vp->v_interlock);
   2298      1.239  perseant 			/* XXX why? --ks */
   2299      1.235     rmind 			mutex_enter(vp->v_interlock);
   2300      1.203  perseant 			write_and_wait(fs, vp, busypg, seglocked, NULL);
   2301      1.203  perseant 			if (!seglocked) {
   2302      1.235     rmind 				mutex_exit(vp->v_interlock);
   2303      1.203  perseant 				lfs_release_finfo(fs);
   2304      1.203  perseant 				lfs_segunlock(fs);
   2305      1.235     rmind 				mutex_enter(vp->v_interlock);
   2306      1.203  perseant 			}
   2307      1.208  perseant 			sp->vp = NULL;
   2308      1.203  perseant 			goto get_seglock;
   2309       1.88  perseant 		}
   2310      1.203  perseant 
   2311      1.203  perseant 		busypg = NULL;
   2312      1.239  perseant 		KASSERT(!mutex_owned(&uvm_pageqlock));
   2313      1.239  perseant 		oreclaim = (ap->a_flags & PGO_RECLAIM);
   2314      1.239  perseant 		ap->a_flags &= ~PGO_RECLAIM;
   2315      1.206  perseant 		error = genfs_do_putpages(vp, startoffset, endoffset,
   2316      1.203  perseant 					   ap->a_flags, &busypg);
   2317      1.239  perseant 		ap->a_flags |= oreclaim;
   2318      1.203  perseant 
   2319      1.203  perseant 		if (error == EDEADLK || error == EAGAIN) {
   2320      1.203  perseant 			DLOG((DLOG_PAGE, "lfs_putpages: genfs_putpages returned"
   2321      1.203  perseant 			      " %d ino %d off %x (seg %d)\n", error,
   2322      1.203  perseant 			      ip->i_number, fs->lfs_offset,
   2323      1.248  christos 			      lfs_dtosn(fs, fs->lfs_offset)));
   2324       1.84  perseant 
   2325      1.239  perseant 			if (oreclaim) {
   2326      1.239  perseant 				mutex_enter(vp->v_interlock);
   2327      1.239  perseant 				write_and_wait(fs, vp, busypg, seglocked, "again");
   2328      1.239  perseant 				mutex_exit(vp->v_interlock);
   2329      1.239  perseant 			} else {
   2330      1.239  perseant 				if ((sp->seg_flags & SEGM_SINGLE) &&
   2331      1.239  perseant 				    fs->lfs_curseg != fs->lfs_startseg)
   2332      1.239  perseant 					donewriting = 1;
   2333      1.239  perseant 			}
   2334      1.239  perseant 		} else if (error) {
   2335      1.239  perseant 			DLOG((DLOG_PAGE, "lfs_putpages: genfs_putpages returned"
   2336      1.239  perseant 			      " %d ino %d off %x (seg %d)\n", error,
   2337      1.239  perseant 			      (int)ip->i_number, fs->lfs_offset,
   2338      1.248  christos 			      lfs_dtosn(fs, fs->lfs_offset)));
   2339      1.167  perseant 		}
   2340      1.239  perseant 		/* genfs_do_putpages loses the interlock */
   2341      1.203  perseant #ifdef DEBUG
   2342      1.203  perseant 		++debug_n_again;
   2343      1.203  perseant #endif
   2344      1.239  perseant 		if (oreclaim && error == EAGAIN) {
   2345      1.239  perseant 			DLOG((DLOG_PAGE, "vp %p ino %d vi_flags %x a_flags %x avoiding vclean panic\n",
   2346      1.239  perseant 			      vp, (int)ip->i_number, vp->v_iflag, ap->a_flags));
   2347      1.239  perseant 			mutex_enter(vp->v_interlock);
   2348      1.239  perseant 		}
   2349      1.239  perseant 		if (error == EDEADLK)
   2350      1.239  perseant 			mutex_enter(vp->v_interlock);
   2351      1.239  perseant 	} while (error == EDEADLK || (oreclaim && error == EAGAIN));
   2352      1.203  perseant #ifdef DEBUG
   2353      1.203  perseant 	if (debug_n_again > TOOMANY)
   2354      1.239  perseant 		DLOG((DLOG_PAGE, "lfs_putpages: again: looping, n = %d\n", debug_n_again));
   2355      1.203  perseant #endif
   2356      1.103  perseant 
   2357      1.203  perseant 	KASSERT(sp != NULL && sp->vp == vp);
   2358      1.239  perseant 	if (!seglocked && !donewriting) {
   2359      1.178  perseant 		sp->vp = NULL;
   2360      1.126      yamt 
   2361      1.126      yamt 		/* Write indirect blocks as well */
   2362      1.126      yamt 		lfs_gather(fs, fs->lfs_sp, vp, lfs_match_indir);
   2363      1.126      yamt 		lfs_gather(fs, fs->lfs_sp, vp, lfs_match_dindir);
   2364      1.126      yamt 		lfs_gather(fs, fs->lfs_sp, vp, lfs_match_tindir);
   2365      1.120      yamt 
   2366      1.126      yamt 		KASSERT(sp->vp == NULL);
   2367      1.126      yamt 		sp->vp = vp;
   2368      1.126      yamt 	}
   2369       1.84  perseant 
   2370       1.84  perseant 	/*
   2371       1.84  perseant 	 * Blocks are now gathered into a segment waiting to be written.
   2372       1.84  perseant 	 * All that's left to do is update metadata, and write them.
   2373       1.84  perseant 	 */
   2374      1.120      yamt 	lfs_updatemeta(sp);
   2375      1.120      yamt 	KASSERT(sp->vp == vp);
   2376      1.120      yamt 	sp->vp = NULL;
   2377      1.126      yamt 
   2378      1.203  perseant 	/*
   2379      1.203  perseant 	 * If we were called from lfs_writefile, we don't need to clean up
   2380      1.203  perseant 	 * the FIP or unlock the segment lock.	We're done.
   2381      1.203  perseant 	 */
   2382      1.239  perseant 	if (seglocked) {
   2383      1.239  perseant 		KASSERT(!mutex_owned(vp->v_interlock));
   2384      1.126      yamt 		return error;
   2385      1.239  perseant 	}
   2386      1.120      yamt 
   2387      1.178  perseant 	/* Clean up FIP and send it to disk. */
   2388      1.178  perseant 	lfs_release_finfo(fs);
   2389       1.88  perseant 	lfs_writeseg(fs, fs->lfs_sp);
   2390       1.88  perseant 
   2391       1.84  perseant 	/*
   2392      1.203  perseant 	 * Remove us from paging queue if we wrote all our pages.
   2393      1.164  perseant 	 */
   2394      1.203  perseant 	if (origendoffset == 0 || ap->a_flags & PGO_ALLPAGES) {
   2395      1.214        ad 		mutex_enter(&lfs_lock);
   2396      1.203  perseant 		if (ip->i_flags & IN_PAGING) {
   2397      1.203  perseant 			ip->i_flags &= ~IN_PAGING;
   2398      1.203  perseant 			TAILQ_REMOVE(&fs->lfs_pchainhd, ip, i_lfs_pchain);
   2399      1.203  perseant 		}
   2400      1.214        ad 		mutex_exit(&lfs_lock);
   2401      1.164  perseant 	}
   2402      1.164  perseant 
   2403      1.164  perseant 	/*
   2404       1.84  perseant 	 * XXX - with the malloc/copy writeseg, the pages are freed by now
   2405       1.84  perseant 	 * even if we don't wait (e.g. if we hold a nested lock).  This
   2406       1.84  perseant 	 * will not be true if we stop using malloc/copy.
   2407       1.84  perseant 	 */
   2408       1.84  perseant 	KASSERT(fs->lfs_sp->seg_flags & SEGM_PROT);
   2409       1.84  perseant 	lfs_segunlock(fs);
   2410       1.84  perseant 
   2411       1.84  perseant 	/*
   2412       1.84  perseant 	 * Wait for v_numoutput to drop to zero.  The seglock should
   2413       1.84  perseant 	 * take care of this, but there is a slight possibility that
   2414       1.84  perseant 	 * aiodoned might not have got around to our buffers yet.
   2415       1.84  perseant 	 */
   2416       1.84  perseant 	if (sync) {
   2417      1.235     rmind 		mutex_enter(vp->v_interlock);
   2418       1.98  perseant 		while (vp->v_numoutput > 0) {
   2419      1.136  perseant 			DLOG((DLOG_PAGE, "lfs_putpages: ino %d sleeping on"
   2420      1.136  perseant 			      " num %d\n", ip->i_number, vp->v_numoutput));
   2421      1.235     rmind 			cv_wait(&vp->v_cv, vp->v_interlock);
   2422       1.84  perseant 		}
   2423      1.235     rmind 		mutex_exit(vp->v_interlock);
   2424       1.84  perseant 	}
   2425      1.239  perseant 	KASSERT(!mutex_owned(vp->v_interlock));
   2426       1.84  perseant 	return error;
   2427       1.84  perseant }
   2428       1.84  perseant 
   2429       1.84  perseant /*
   2430       1.84  perseant  * Return the last logical file offset that should be written for this file
   2431       1.86  perseant  * if we're doing a write that ends at "size".	If writing, we need to know
   2432       1.84  perseant  * about sizes on disk, i.e. fragments if there are any; if reading, we need
   2433       1.84  perseant  * to know about entire blocks.
   2434       1.84  perseant  */
   2435       1.84  perseant void
   2436       1.84  perseant lfs_gop_size(struct vnode *vp, off_t size, off_t *eobp, int flags)
   2437       1.84  perseant {
   2438       1.84  perseant 	struct inode *ip = VTOI(vp);
   2439      1.135     perry 	struct lfs *fs = ip->i_lfs;
   2440       1.84  perseant 	daddr_t olbn, nlbn;
   2441       1.84  perseant 
   2442      1.248  christos 	olbn = lfs_lblkno(fs, ip->i_size);
   2443      1.248  christos 	nlbn = lfs_lblkno(fs, size);
   2444      1.245  dholland 	if (!(flags & GOP_SIZE_MEM) && nlbn < ULFS_NDADDR && olbn <= nlbn) {
   2445      1.248  christos 		*eobp = lfs_fragroundup(fs, size);
   2446       1.86  perseant 	} else {
   2447      1.248  christos 		*eobp = lfs_blkroundup(fs, size);
   2448       1.86  perseant 	}
   2449       1.84  perseant }
   2450       1.84  perseant 
   2451       1.84  perseant #ifdef DEBUG
   2452       1.84  perseant void lfs_dump_vop(void *);
   2453       1.84  perseant 
   2454       1.84  perseant void
   2455       1.84  perseant lfs_dump_vop(void *v)
   2456       1.84  perseant {
   2457       1.86  perseant 	struct vop_putpages_args /* {
   2458       1.86  perseant 		struct vnode *a_vp;
   2459       1.86  perseant 		voff_t a_offlo;
   2460       1.86  perseant 		voff_t a_offhi;
   2461       1.86  perseant 		int a_flags;
   2462       1.86  perseant 	} */ *ap = v;
   2463       1.84  perseant 
   2464      1.106     ragge #ifdef DDB
   2465       1.84  perseant 	vfs_vnode_print(ap->a_vp, 0, printf);
   2466      1.106     ragge #endif
   2467      1.102      fvdl 	lfs_dump_dinode(VTOI(ap->a_vp)->i_din.ffs1_din);
   2468       1.84  perseant }
   2469       1.84  perseant #endif
   2470       1.84  perseant 
   2471       1.84  perseant int
   2472       1.84  perseant lfs_mmap(void *v)
   2473       1.84  perseant {
   2474       1.84  perseant 	struct vop_mmap_args /* {
   2475       1.86  perseant 		const struct vnodeop_desc *a_desc;
   2476       1.86  perseant 		struct vnode *a_vp;
   2477      1.209     pooka 		vm_prot_t a_prot;
   2478      1.176      elad 		kauth_cred_t a_cred;
   2479       1.84  perseant 	} */ *ap = v;
   2480       1.84  perseant 
   2481       1.84  perseant 	if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM)
   2482       1.84  perseant 		return EOPNOTSUPP;
   2483      1.245  dholland 	return ulfs_mmap(v);
   2484       1.84  perseant }
   2485  1.248.2.1     rmind 
   2486  1.248.2.1     rmind static int
   2487  1.248.2.1     rmind lfs_openextattr(void *v)
   2488  1.248.2.1     rmind {
   2489  1.248.2.1     rmind 	struct vop_openextattr_args /* {
   2490  1.248.2.1     rmind 		struct vnode *a_vp;
   2491  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2492  1.248.2.1     rmind 		struct proc *a_p;
   2493  1.248.2.1     rmind 	} */ *ap = v;
   2494  1.248.2.1     rmind 	struct inode *ip = VTOI(ap->a_vp);
   2495  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2496  1.248.2.1     rmind 	//struct lfs *fs = ip->i_lfs;
   2497  1.248.2.1     rmind 
   2498  1.248.2.1     rmind 	/* Not supported for ULFS1 file systems. */
   2499  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1)
   2500  1.248.2.1     rmind 		return (EOPNOTSUPP);
   2501  1.248.2.1     rmind 
   2502  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2503  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2504  1.248.2.1     rmind }
   2505  1.248.2.1     rmind 
   2506  1.248.2.1     rmind static int
   2507  1.248.2.1     rmind lfs_closeextattr(void *v)
   2508  1.248.2.1     rmind {
   2509  1.248.2.1     rmind 	struct vop_closeextattr_args /* {
   2510  1.248.2.1     rmind 		struct vnode *a_vp;
   2511  1.248.2.1     rmind 		int a_commit;
   2512  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2513  1.248.2.1     rmind 		struct proc *a_p;
   2514  1.248.2.1     rmind 	} */ *ap = v;
   2515  1.248.2.1     rmind 	struct inode *ip = VTOI(ap->a_vp);
   2516  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2517  1.248.2.1     rmind 	//struct lfs *fs = ip->i_lfs;
   2518  1.248.2.1     rmind 
   2519  1.248.2.1     rmind 	/* Not supported for ULFS1 file systems. */
   2520  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1)
   2521  1.248.2.1     rmind 		return (EOPNOTSUPP);
   2522  1.248.2.1     rmind 
   2523  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2524  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2525  1.248.2.1     rmind }
   2526  1.248.2.1     rmind 
   2527  1.248.2.1     rmind static int
   2528  1.248.2.1     rmind lfs_getextattr(void *v)
   2529  1.248.2.1     rmind {
   2530  1.248.2.1     rmind 	struct vop_getextattr_args /* {
   2531  1.248.2.1     rmind 		struct vnode *a_vp;
   2532  1.248.2.1     rmind 		int a_attrnamespace;
   2533  1.248.2.1     rmind 		const char *a_name;
   2534  1.248.2.1     rmind 		struct uio *a_uio;
   2535  1.248.2.1     rmind 		size_t *a_size;
   2536  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2537  1.248.2.1     rmind 		struct proc *a_p;
   2538  1.248.2.1     rmind 	} */ *ap = v;
   2539  1.248.2.1     rmind 	struct vnode *vp = ap->a_vp;
   2540  1.248.2.1     rmind 	struct inode *ip = VTOI(vp);
   2541  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2542  1.248.2.1     rmind 	//struct lfs *fs = ip->i_lfs;
   2543  1.248.2.1     rmind 	int error;
   2544  1.248.2.1     rmind 
   2545  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1) {
   2546  1.248.2.1     rmind #ifdef LFS_EXTATTR
   2547  1.248.2.1     rmind 		fstrans_start(vp->v_mount, FSTRANS_SHARED);
   2548  1.248.2.1     rmind 		error = ulfs_getextattr(ap);
   2549  1.248.2.1     rmind 		fstrans_done(vp->v_mount);
   2550  1.248.2.1     rmind #else
   2551  1.248.2.1     rmind 		error = EOPNOTSUPP;
   2552  1.248.2.1     rmind #endif
   2553  1.248.2.1     rmind 		return error;
   2554  1.248.2.1     rmind 	}
   2555  1.248.2.1     rmind 
   2556  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2557  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2558  1.248.2.1     rmind }
   2559  1.248.2.1     rmind 
   2560  1.248.2.1     rmind static int
   2561  1.248.2.1     rmind lfs_setextattr(void *v)
   2562  1.248.2.1     rmind {
   2563  1.248.2.1     rmind 	struct vop_setextattr_args /* {
   2564  1.248.2.1     rmind 		struct vnode *a_vp;
   2565  1.248.2.1     rmind 		int a_attrnamespace;
   2566  1.248.2.1     rmind 		const char *a_name;
   2567  1.248.2.1     rmind 		struct uio *a_uio;
   2568  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2569  1.248.2.1     rmind 		struct proc *a_p;
   2570  1.248.2.1     rmind 	} */ *ap = v;
   2571  1.248.2.1     rmind 	struct vnode *vp = ap->a_vp;
   2572  1.248.2.1     rmind 	struct inode *ip = VTOI(vp);
   2573  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2574  1.248.2.1     rmind 	//struct lfs *fs = ip->i_lfs;
   2575  1.248.2.1     rmind 	int error;
   2576  1.248.2.1     rmind 
   2577  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1) {
   2578  1.248.2.1     rmind #ifdef LFS_EXTATTR
   2579  1.248.2.1     rmind 		fstrans_start(vp->v_mount, FSTRANS_SHARED);
   2580  1.248.2.1     rmind 		error = ulfs_setextattr(ap);
   2581  1.248.2.1     rmind 		fstrans_done(vp->v_mount);
   2582  1.248.2.1     rmind #else
   2583  1.248.2.1     rmind 		error = EOPNOTSUPP;
   2584  1.248.2.1     rmind #endif
   2585  1.248.2.1     rmind 		return error;
   2586  1.248.2.1     rmind 	}
   2587  1.248.2.1     rmind 
   2588  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2589  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2590  1.248.2.1     rmind }
   2591  1.248.2.1     rmind 
   2592  1.248.2.1     rmind static int
   2593  1.248.2.1     rmind lfs_listextattr(void *v)
   2594  1.248.2.1     rmind {
   2595  1.248.2.1     rmind 	struct vop_listextattr_args /* {
   2596  1.248.2.1     rmind 		struct vnode *a_vp;
   2597  1.248.2.1     rmind 		int a_attrnamespace;
   2598  1.248.2.1     rmind 		struct uio *a_uio;
   2599  1.248.2.1     rmind 		size_t *a_size;
   2600  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2601  1.248.2.1     rmind 		struct proc *a_p;
   2602  1.248.2.1     rmind 	} */ *ap = v;
   2603  1.248.2.1     rmind 	struct vnode *vp = ap->a_vp;
   2604  1.248.2.1     rmind 	struct inode *ip = VTOI(vp);
   2605  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2606  1.248.2.1     rmind 	//struct lfs *fs = ip->i_lfs;
   2607  1.248.2.1     rmind 	int error;
   2608  1.248.2.1     rmind 
   2609  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1) {
   2610  1.248.2.1     rmind #ifdef LFS_EXTATTR
   2611  1.248.2.1     rmind 		fstrans_start(vp->v_mount, FSTRANS_SHARED);
   2612  1.248.2.1     rmind 		error = ulfs_listextattr(ap);
   2613  1.248.2.1     rmind 		fstrans_done(vp->v_mount);
   2614  1.248.2.1     rmind #else
   2615  1.248.2.1     rmind 		error = EOPNOTSUPP;
   2616  1.248.2.1     rmind #endif
   2617  1.248.2.1     rmind 		return error;
   2618  1.248.2.1     rmind 	}
   2619  1.248.2.1     rmind 
   2620  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2621  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2622  1.248.2.1     rmind }
   2623  1.248.2.1     rmind 
   2624  1.248.2.1     rmind static int
   2625  1.248.2.1     rmind lfs_deleteextattr(void *v)
   2626  1.248.2.1     rmind {
   2627  1.248.2.1     rmind 	struct vop_deleteextattr_args /* {
   2628  1.248.2.1     rmind 		struct vnode *a_vp;
   2629  1.248.2.1     rmind 		int a_attrnamespace;
   2630  1.248.2.1     rmind 		kauth_cred_t a_cred;
   2631  1.248.2.1     rmind 		struct proc *a_p;
   2632  1.248.2.1     rmind 	} */ *ap = v;
   2633  1.248.2.1     rmind 	struct vnode *vp = ap->a_vp;
   2634  1.248.2.1     rmind 	struct inode *ip = VTOI(vp);
   2635  1.248.2.1     rmind 	struct ulfsmount *ump = ip->i_ump;
   2636  1.248.2.1     rmind 	//struct fs *fs = ip->i_lfs;
   2637  1.248.2.1     rmind 	int error;
   2638  1.248.2.1     rmind 
   2639  1.248.2.1     rmind 	if (ump->um_fstype == ULFS1) {
   2640  1.248.2.1     rmind #ifdef LFS_EXTATTR
   2641  1.248.2.1     rmind 		fstrans_start(vp->v_mount, FSTRANS_SHARED);
   2642  1.248.2.1     rmind 		error = ulfs_deleteextattr(ap);
   2643  1.248.2.1     rmind 		fstrans_done(vp->v_mount);
   2644  1.248.2.1     rmind #else
   2645  1.248.2.1     rmind 		error = EOPNOTSUPP;
   2646  1.248.2.1     rmind #endif
   2647  1.248.2.1     rmind 		return error;
   2648  1.248.2.1     rmind 	}
   2649  1.248.2.1     rmind 
   2650  1.248.2.1     rmind 	/* XXX Not implemented for ULFS2 file systems. */
   2651  1.248.2.1     rmind 	return (EOPNOTSUPP);
   2652  1.248.2.1     rmind }
   2653