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lfs_cleanerd.c revision 1.55
      1  1.55  dholland /* $NetBSD: lfs_cleanerd.c,v 1.55 2015/10/15 06:25:04 dholland Exp $	 */
      2   1.1  perseant 
      3   1.1  perseant /*-
      4   1.1  perseant  * Copyright (c) 2005 The NetBSD Foundation, Inc.
      5   1.1  perseant  * All rights reserved.
      6   1.1  perseant  *
      7   1.1  perseant  * This code is derived from software contributed to The NetBSD Foundation
      8   1.1  perseant  * by Konrad E. Schroder <perseant (at) hhhh.org>.
      9   1.1  perseant  *
     10   1.1  perseant  * Redistribution and use in source and binary forms, with or without
     11   1.1  perseant  * modification, are permitted provided that the following conditions
     12   1.1  perseant  * are met:
     13   1.1  perseant  * 1. Redistributions of source code must retain the above copyright
     14   1.1  perseant  *    notice, this list of conditions and the following disclaimer.
     15   1.1  perseant  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1  perseant  *    notice, this list of conditions and the following disclaimer in the
     17   1.1  perseant  *    documentation and/or other materials provided with the distribution.
     18   1.1  perseant  *
     19   1.1  perseant  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.1  perseant  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.1  perseant  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.1  perseant  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.1  perseant  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.1  perseant  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.1  perseant  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.1  perseant  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.1  perseant  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.1  perseant  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.1  perseant  * POSSIBILITY OF SUCH DAMAGE.
     30   1.1  perseant  */
     31   1.1  perseant 
     32   1.1  perseant /*
     33   1.1  perseant  * The cleaner daemon for the NetBSD Log-structured File System.
     34   1.1  perseant  * Only tested for use with version 2 LFSs.
     35   1.1  perseant  */
     36   1.1  perseant 
     37   1.1  perseant #include <sys/syslog.h>
     38   1.1  perseant #include <sys/param.h>
     39   1.1  perseant #include <sys/mount.h>
     40   1.1  perseant #include <sys/stat.h>
     41   1.1  perseant #include <ufs/lfs/lfs.h>
     42   1.1  perseant 
     43   1.1  perseant #include <assert.h>
     44   1.1  perseant #include <err.h>
     45   1.1  perseant #include <errno.h>
     46   1.1  perseant #include <fcntl.h>
     47  1.24     pooka #include <semaphore.h>
     48   1.1  perseant #include <stdio.h>
     49   1.1  perseant #include <stdlib.h>
     50   1.1  perseant #include <string.h>
     51   1.1  perseant #include <unistd.h>
     52   1.1  perseant #include <time.h>
     53   1.1  perseant #include <util.h>
     54   1.1  perseant 
     55   1.1  perseant #include "bufcache.h"
     56   1.1  perseant #include "vnode.h"
     57   1.1  perseant #include "lfs_user.h"
     58   1.1  perseant #include "fdfs.h"
     59   1.1  perseant #include "cleaner.h"
     60  1.21     pooka #include "kernelops.h"
     61  1.21     pooka #include "mount_lfs.h"
     62   1.1  perseant 
     63   1.1  perseant /*
     64   1.1  perseant  * Global variables.
     65   1.1  perseant  */
     66   1.1  perseant /* XXX these top few should really be fs-specific */
     67   1.1  perseant int use_fs_idle;	/* Use fs idle rather than cpu idle time */
     68   1.1  perseant int use_bytes;		/* Use bytes written rather than segments cleaned */
     69  1.31     joerg double load_threshold;	/* How idle is idle (CPU idle) */
     70   1.1  perseant int atatime;		/* How many segments (bytes) to clean at a time */
     71   1.1  perseant 
     72   1.1  perseant int nfss;		/* Number of filesystems monitored by this cleanerd */
     73   1.1  perseant struct clfs **fsp;	/* Array of extended filesystem structures */
     74   1.1  perseant int segwait_timeout;	/* Time to wait in lfs_segwait() */
     75   1.1  perseant int do_quit;		/* Quit after one cleaning loop */
     76   1.1  perseant int do_coalesce;	/* Coalesce filesystem */
     77   1.1  perseant int do_small;		/* Use small writes through markv */
     78   1.1  perseant char *copylog_filename; /* File to use for fs debugging analysis */
     79   1.1  perseant int inval_segment;	/* Segment to invalidate */
     80   1.1  perseant int stat_report;	/* Report statistics for this period of cycles */
     81   1.1  perseant int debug;		/* Turn on debugging */
     82   1.1  perseant struct cleaner_stats {
     83   1.1  perseant 	double	util_tot;
     84   1.1  perseant 	double	util_sos;
     85   1.1  perseant 	off_t	bytes_read;
     86   1.1  perseant 	off_t	bytes_written;
     87   1.1  perseant 	off_t	segs_cleaned;
     88   1.1  perseant 	off_t	segs_empty;
     89   1.1  perseant 	off_t	segs_error;
     90   1.1  perseant } cleaner_stats;
     91   1.1  perseant 
     92   1.1  perseant extern u_int32_t cksum(void *, size_t);
     93   1.1  perseant extern u_int32_t lfs_sb_cksum(struct dlfs *);
     94   1.1  perseant extern u_int32_t lfs_cksum_part(void *, size_t, u_int32_t);
     95  1.33  dholland extern int ulfs_getlbns(struct lfs *, struct uvnode *, daddr_t, struct indir *, int *);
     96   1.1  perseant 
     97  1.44  dholland /* Ugh */
     98  1.44  dholland #define FSMNT_SIZE MAX(sizeof(((struct dlfs *)0)->dlfs_fsmnt), \
     99  1.44  dholland 			sizeof(((struct dlfs64 *)0)->dlfs_fsmnt))
    100  1.44  dholland 
    101  1.44  dholland 
    102   1.1  perseant /* Compat */
    103   1.1  perseant void pwarn(const char *unused, ...) { /* Does nothing */ };
    104   1.1  perseant 
    105   1.1  perseant /*
    106   1.1  perseant  * Log a message if debugging is turned on.
    107   1.1  perseant  */
    108   1.1  perseant void
    109  1.17     lukem dlog(const char *fmt, ...)
    110   1.1  perseant {
    111   1.1  perseant 	va_list ap;
    112   1.1  perseant 
    113   1.1  perseant 	if (debug == 0)
    114   1.1  perseant 		return;
    115   1.1  perseant 
    116   1.1  perseant 	va_start(ap, fmt);
    117   1.1  perseant 	vsyslog(LOG_DEBUG, fmt, ap);
    118   1.1  perseant 	va_end(ap);
    119   1.1  perseant }
    120   1.1  perseant 
    121   1.1  perseant /*
    122   1.1  perseant  * Remove the specified filesystem from the list, due to its having
    123   1.1  perseant  * become unmounted or other error condition.
    124   1.1  perseant  */
    125   1.1  perseant void
    126  1.16     lukem handle_error(struct clfs **cfsp, int n)
    127   1.1  perseant {
    128  1.40  dholland 	syslog(LOG_NOTICE, "%s: detaching cleaner", lfs_sb_getfsmnt(cfsp[n]));
    129  1.16     lukem 	free(cfsp[n]);
    130   1.1  perseant 	if (n != nfss - 1)
    131  1.16     lukem 		cfsp[n] = cfsp[nfss - 1];
    132   1.1  perseant 	--nfss;
    133   1.1  perseant }
    134   1.1  perseant 
    135   1.1  perseant /*
    136   1.1  perseant  * Reinitialize a filesystem if, e.g., its size changed.
    137   1.1  perseant  */
    138   1.1  perseant int
    139   1.1  perseant reinit_fs(struct clfs *fs)
    140   1.1  perseant {
    141  1.44  dholland 	char fsname[FSMNT_SIZE];
    142  1.40  dholland 
    143  1.44  dholland 	memcpy(fsname, lfs_sb_getfsmnt(fs), sizeof(fsname));
    144  1.40  dholland 	fsname[sizeof(fsname) - 1] = '\0';
    145   1.1  perseant 
    146  1.21     pooka 	kops.ko_close(fs->clfs_ifilefd);
    147  1.21     pooka 	kops.ko_close(fs->clfs_devfd);
    148   1.1  perseant 	fd_reclaim(fs->clfs_devvp);
    149   1.1  perseant 	fd_reclaim(fs->lfs_ivnode);
    150   1.1  perseant 	free(fs->clfs_dev);
    151   1.1  perseant 	free(fs->clfs_segtab);
    152   1.1  perseant 	free(fs->clfs_segtabp);
    153   1.1  perseant 
    154   1.1  perseant 	return init_fs(fs, fsname);
    155   1.1  perseant }
    156   1.1  perseant 
    157   1.1  perseant #ifdef REPAIR_ZERO_FINFO
    158   1.1  perseant /*
    159   1.1  perseant  * Use fsck's lfs routines to load the Ifile from an unmounted fs.
    160   1.1  perseant  * We interpret "fsname" as the name of the raw disk device.
    161   1.1  perseant  */
    162   1.1  perseant int
    163   1.1  perseant init_unmounted_fs(struct clfs *fs, char *fsname)
    164   1.1  perseant {
    165   1.1  perseant 	struct lfs *disc_fs;
    166   1.1  perseant 	int i;
    167   1.1  perseant 
    168   1.1  perseant 	fs->clfs_dev = fsname;
    169  1.21     pooka 	if ((fs->clfs_devfd = kops.ko_open(fs->clfs_dev, O_RDWR)) < 0) {
    170   1.1  perseant 		syslog(LOG_ERR, "couldn't open device %s read/write",
    171   1.1  perseant 		       fs->clfs_dev);
    172   1.1  perseant 		return -1;
    173   1.1  perseant 	}
    174   1.1  perseant 
    175   1.1  perseant 	disc_fs = lfs_init(fs->clfs_devfd, 0, 0, 0, 0);
    176   1.1  perseant 
    177   1.1  perseant 	fs->lfs_dlfs = disc_fs->lfs_dlfs; /* Structure copy */
    178   1.1  perseant 	strncpy(fs->lfs_fsmnt, fsname, MNAMELEN);
    179   1.1  perseant 	fs->lfs_ivnode = (struct uvnode *)disc_fs->lfs_ivnode;
    180   1.1  perseant 	fs->clfs_devvp = fd_vget(fs->clfs_devfd, fs->lfs_fsize, fs->lfs_ssize,
    181   1.1  perseant 				 atatime);
    182   1.1  perseant 
    183   1.1  perseant 	/* Allocate and clear segtab */
    184  1.40  dholland 	fs->clfs_segtab = (struct clfs_seguse *)malloc(lfs_sb_getnseg(fs) *
    185   1.1  perseant 						sizeof(*fs->clfs_segtab));
    186  1.40  dholland 	fs->clfs_segtabp = (struct clfs_seguse **)malloc(lfs_sb_getnseg(fs) *
    187   1.1  perseant 						sizeof(*fs->clfs_segtabp));
    188  1.40  dholland 	for (i = 0; i < lfs_sb_getnseg(fs); i++) {
    189   1.1  perseant 		fs->clfs_segtabp[i] = &(fs->clfs_segtab[i]);
    190   1.1  perseant 		fs->clfs_segtab[i].flags = 0x0;
    191   1.1  perseant 	}
    192   1.1  perseant 	syslog(LOG_NOTICE, "%s: unmounted cleaner starting", fsname);
    193   1.1  perseant 
    194   1.1  perseant 	return 0;
    195   1.1  perseant }
    196   1.1  perseant #endif
    197   1.1  perseant 
    198   1.1  perseant /*
    199   1.1  perseant  * Set up the file descriptors, including the Ifile descriptor.
    200   1.1  perseant  * If we can't get the Ifile, this is not an LFS (or the kernel is
    201   1.1  perseant  * too old to support the fcntl).
    202   1.1  perseant  * XXX Merge this and init_unmounted_fs, switching on whether
    203   1.1  perseant  * XXX "fsname" is a dir or a char special device.  Should
    204   1.1  perseant  * XXX also be able to read unmounted devices out of fstab, the way
    205   1.1  perseant  * XXX fsck does.
    206   1.1  perseant  */
    207   1.1  perseant int
    208   1.1  perseant init_fs(struct clfs *fs, char *fsname)
    209   1.1  perseant {
    210  1.44  dholland 	char mnttmp[FSMNT_SIZE];
    211   1.1  perseant 	struct statvfs sf;
    212   1.1  perseant 	int rootfd;
    213   1.1  perseant 	int i;
    214  1.23   mlelstv 	void *sbuf;
    215  1.27   mlelstv 	char *bn;
    216   1.1  perseant 
    217   1.1  perseant 	/*
    218   1.1  perseant 	 * Get the raw device from the block device.
    219   1.1  perseant 	 * XXX this is ugly.  Is there a way to discover the raw device
    220   1.1  perseant 	 * XXX for a given mount point?
    221   1.1  perseant 	 */
    222  1.21     pooka 	if (kops.ko_statvfs(fsname, &sf, ST_WAIT) < 0)
    223   1.1  perseant 		return -1;
    224   1.1  perseant 	fs->clfs_dev = malloc(strlen(sf.f_mntfromname) + 2);
    225   1.7  perseant 	if (fs->clfs_dev == NULL) {
    226   1.7  perseant 		syslog(LOG_ERR, "couldn't malloc device name string: %m");
    227   1.7  perseant 		return -1;
    228   1.7  perseant 	}
    229  1.27   mlelstv 	bn = strrchr(sf.f_mntfromname, '/');
    230  1.27   mlelstv 	bn = bn ? bn+1 : sf.f_mntfromname;
    231  1.27   mlelstv 	strlcpy(fs->clfs_dev, sf.f_mntfromname, bn - sf.f_mntfromname + 1);
    232  1.27   mlelstv 	strcat(fs->clfs_dev, "r");
    233  1.27   mlelstv 	strcat(fs->clfs_dev, bn);
    234  1.21     pooka 	if ((fs->clfs_devfd = kops.ko_open(fs->clfs_dev, O_RDONLY, 0)) < 0) {
    235   1.1  perseant 		syslog(LOG_ERR, "couldn't open device %s for reading",
    236   1.1  perseant 			fs->clfs_dev);
    237   1.1  perseant 		return -1;
    238   1.1  perseant 	}
    239   1.1  perseant 
    240   1.1  perseant 	/* Find the Ifile and open it */
    241  1.21     pooka 	if ((rootfd = kops.ko_open(fsname, O_RDONLY, 0)) < 0)
    242   1.1  perseant 		return -2;
    243  1.21     pooka 	if (kops.ko_fcntl(rootfd, LFCNIFILEFH, &fs->clfs_ifilefh) < 0)
    244   1.1  perseant 		return -3;
    245  1.21     pooka 	if ((fs->clfs_ifilefd = kops.ko_fhopen(&fs->clfs_ifilefh,
    246  1.10    martin 	    sizeof(fs->clfs_ifilefh), O_RDONLY)) < 0)
    247   1.1  perseant 		return -4;
    248  1.21     pooka 	kops.ko_close(rootfd);
    249   1.1  perseant 
    250  1.23   mlelstv 	sbuf = malloc(LFS_SBPAD);
    251  1.23   mlelstv 	if (sbuf == NULL) {
    252  1.23   mlelstv 		syslog(LOG_ERR, "couldn't malloc superblock buffer");
    253  1.23   mlelstv 		return -1;
    254  1.23   mlelstv 	}
    255  1.23   mlelstv 
    256   1.1  perseant 	/* Load in the superblock */
    257  1.23   mlelstv 	if (kops.ko_pread(fs->clfs_devfd, sbuf, LFS_SBPAD, LFS_LABELPAD) < 0) {
    258  1.23   mlelstv 		free(sbuf);
    259   1.1  perseant 		return -1;
    260  1.23   mlelstv 	}
    261  1.23   mlelstv 
    262  1.44  dholland 	__CTASSERT(sizeof(struct dlfs) == sizeof(struct dlfs64));
    263  1.44  dholland 	memcpy(&fs->lfs_dlfs_u, sbuf, sizeof(struct dlfs));
    264  1.23   mlelstv 	free(sbuf);
    265   1.1  perseant 
    266  1.44  dholland 	/* If it is not LFS, complain and exit! */
    267  1.55  dholland 	switch (fs->lfs_dlfs_u.u_32.dlfs_magic) {
    268  1.55  dholland 	    case LFS_MAGIC:
    269  1.55  dholland 		fs->lfs_is64 = false;
    270  1.55  dholland 		fs->lfs_dobyteswap = false;
    271  1.55  dholland 		break;
    272  1.55  dholland 	    case LFS_MAGIC_SWAPPED:
    273  1.55  dholland 		fs->lfs_is64 = false;
    274  1.55  dholland 		fs->lfs_dobyteswap = true;
    275  1.55  dholland 		break;
    276  1.55  dholland 	    case LFS64_MAGIC:
    277  1.55  dholland 		fs->lfs_is64 = true;
    278  1.55  dholland 		fs->lfs_dobyteswap = false;
    279  1.55  dholland 		break;
    280  1.55  dholland 	    case LFS64_MAGIC_SWAPPED:
    281  1.55  dholland 		fs->lfs_is64 = true;
    282  1.55  dholland 		fs->lfs_dobyteswap = true;
    283  1.55  dholland 		break;
    284  1.55  dholland 	    default:
    285  1.44  dholland 		syslog(LOG_ERR, "%s: not LFS", fsname);
    286  1.44  dholland 		return -1;
    287  1.44  dholland 	}
    288  1.53  dholland 	/* XXX: can this ever need to be set? does the cleaner even care? */
    289  1.53  dholland 	fs->lfs_hasolddirfmt = 0;
    290  1.44  dholland 
    291   1.1  perseant 	/* If this is not a version 2 filesystem, complain and exit */
    292  1.43  dholland 	if (lfs_sb_getversion(fs) != 2) {
    293   1.1  perseant 		syslog(LOG_ERR, "%s: not a version 2 LFS", fsname);
    294   1.1  perseant 		return -1;
    295   1.1  perseant 	}
    296   1.1  perseant 
    297   1.1  perseant 	/* Assume fsname is the mounted name */
    298  1.40  dholland 	strncpy(mnttmp, fsname, sizeof(mnttmp));
    299  1.40  dholland 	mnttmp[sizeof(mnttmp) - 1] = '\0';
    300  1.44  dholland 	lfs_sb_setfsmnt(fs, mnttmp);
    301   1.1  perseant 
    302   1.1  perseant 	/* Set up vnodes for Ifile and raw device */
    303  1.41  dholland 	fs->lfs_ivnode = fd_vget(fs->clfs_ifilefd, lfs_sb_getbsize(fs), 0, 0);
    304  1.41  dholland 	fs->clfs_devvp = fd_vget(fs->clfs_devfd, lfs_sb_getfsize(fs), lfs_sb_getssize(fs),
    305   1.1  perseant 				 atatime);
    306   1.1  perseant 
    307   1.1  perseant 	/* Allocate and clear segtab */
    308  1.40  dholland 	fs->clfs_segtab = (struct clfs_seguse *)malloc(lfs_sb_getnseg(fs) *
    309   1.1  perseant 						sizeof(*fs->clfs_segtab));
    310  1.40  dholland 	fs->clfs_segtabp = (struct clfs_seguse **)malloc(lfs_sb_getnseg(fs) *
    311   1.1  perseant 						sizeof(*fs->clfs_segtabp));
    312   1.7  perseant 	if (fs->clfs_segtab == NULL || fs->clfs_segtabp == NULL) {
    313   1.7  perseant 		syslog(LOG_ERR, "%s: couldn't malloc segment table: %m",
    314   1.7  perseant 			fs->clfs_dev);
    315   1.7  perseant 		return -1;
    316   1.7  perseant 	}
    317   1.7  perseant 
    318  1.40  dholland 	for (i = 0; i < lfs_sb_getnseg(fs); i++) {
    319   1.1  perseant 		fs->clfs_segtabp[i] = &(fs->clfs_segtab[i]);
    320   1.1  perseant 		fs->clfs_segtab[i].flags = 0x0;
    321   1.1  perseant 	}
    322   1.1  perseant 
    323   1.1  perseant 	syslog(LOG_NOTICE, "%s: attaching cleaner", fsname);
    324   1.1  perseant 	return 0;
    325   1.1  perseant }
    326   1.1  perseant 
    327   1.1  perseant /*
    328   1.1  perseant  * Invalidate all the currently held Ifile blocks so they will be
    329   1.1  perseant  * reread when we clean.  Check the size while we're at it, and
    330   1.1  perseant  * resize the buffer cache if necessary.
    331   1.1  perseant  */
    332   1.1  perseant void
    333   1.1  perseant reload_ifile(struct clfs *fs)
    334   1.1  perseant {
    335   1.1  perseant 	struct ubuf *bp;
    336   1.1  perseant 	struct stat st;
    337   1.1  perseant 	int ohashmax;
    338   1.1  perseant 	extern int hashmax;
    339   1.1  perseant 
    340   1.2  christos 	while ((bp = LIST_FIRST(&fs->lfs_ivnode->v_dirtyblkhd)) != NULL) {
    341   1.1  perseant 		bremfree(bp);
    342   1.1  perseant 		buf_destroy(bp);
    343   1.1  perseant 	}
    344   1.2  christos 	while ((bp = LIST_FIRST(&fs->lfs_ivnode->v_cleanblkhd)) != NULL) {
    345   1.1  perseant 		bremfree(bp);
    346   1.1  perseant 		buf_destroy(bp);
    347   1.1  perseant 	}
    348   1.1  perseant 
    349   1.1  perseant 	/* If Ifile is larger than buffer cache, rehash */
    350   1.1  perseant 	fstat(fs->clfs_ifilefd, &st);
    351  1.41  dholland 	if (st.st_size / lfs_sb_getbsize(fs) > hashmax) {
    352   1.1  perseant 		ohashmax = hashmax;
    353  1.41  dholland 		bufrehash(st.st_size / lfs_sb_getbsize(fs));
    354   1.1  perseant 		dlog("%s: resized buffer hash from %d to %d",
    355  1.40  dholland 		     lfs_sb_getfsmnt(fs), ohashmax, hashmax);
    356   1.1  perseant 	}
    357   1.1  perseant }
    358   1.1  perseant 
    359   1.1  perseant /*
    360   1.1  perseant  * Get IFILE entry for the given inode, store in ifpp.	The buffer
    361   1.1  perseant  * which contains that data is returned in bpp, and must be brelse()d
    362   1.1  perseant  * by the caller.
    363  1.47  dholland  *
    364  1.47  dholland  * XXX this is cutpaste of LFS_IENTRY from lfs.h; unify the two.
    365   1.1  perseant  */
    366   1.1  perseant void
    367   1.1  perseant lfs_ientry(IFILE **ifpp, struct clfs *fs, ino_t ino, struct ubuf **bpp)
    368   1.1  perseant {
    369  1.47  dholland 	IFILE64 *ifp64;
    370  1.47  dholland 	IFILE32 *ifp32;
    371  1.47  dholland 	IFILE_V1 *ifp_v1;
    372   1.1  perseant 	int error;
    373   1.1  perseant 
    374  1.39  dholland 	error = bread(fs->lfs_ivnode,
    375  1.39  dholland 		      ino / lfs_sb_getifpb(fs) + lfs_sb_getcleansz(fs) +
    376  1.41  dholland 		      lfs_sb_getsegtabsz(fs), lfs_sb_getbsize(fs), 0, bpp);
    377   1.8  perseant 	if (error)
    378   1.8  perseant 		syslog(LOG_ERR, "%s: ientry failed for ino %d",
    379  1.40  dholland 			lfs_sb_getfsmnt(fs), (int)ino);
    380  1.47  dholland 	if (fs->lfs_is64) {
    381  1.47  dholland 		ifp64 = (IFILE64 *)(*bpp)->b_data;
    382  1.47  dholland 		ifp64 += ino % lfs_sb_getifpb(fs);
    383  1.47  dholland 		*ifpp = (IFILE *)ifp64;
    384  1.47  dholland 	} else if (lfs_sb_getversion(fs) > 1) {
    385  1.47  dholland 		ifp32 = (IFILE32 *)(*bpp)->b_data;
    386  1.47  dholland 		ifp32 += ino % lfs_sb_getifpb(fs);
    387  1.47  dholland 		*ifpp = (IFILE *)ifp32;
    388  1.47  dholland 	} else {
    389  1.47  dholland 		ifp_v1 = (IFILE_V1 *)(*bpp)->b_data;
    390  1.47  dholland 		ifp_v1 += ino % lfs_sb_getifpb(fs);
    391  1.47  dholland 		*ifpp = (IFILE *)ifp_v1;
    392  1.47  dholland 	}
    393   1.1  perseant 	return;
    394   1.1  perseant }
    395   1.1  perseant 
    396   1.1  perseant #ifdef TEST_PATTERN
    397   1.1  perseant /*
    398  1.33  dholland  * Check ULFS_ROOTINO for file data.  The assumption is that we are running
    399   1.1  perseant  * the "twofiles" test with the rest of the filesystem empty.  Files
    400  1.33  dholland  * created by "twofiles" match the test pattern, but ULFS_ROOTINO and the
    401   1.1  perseant  * executable itself (assumed to be inode 3) should not match.
    402   1.1  perseant  */
    403   1.1  perseant static void
    404   1.1  perseant check_test_pattern(BLOCK_INFO *bip)
    405   1.1  perseant {
    406   1.1  perseant 	int j;
    407   1.1  perseant 	unsigned char *cp = bip->bi_bp;
    408   1.1  perseant 
    409   1.1  perseant 	/* Check inode sanity */
    410   1.1  perseant 	if (bip->bi_lbn == LFS_UNUSED_LBN) {
    411  1.33  dholland 		assert(((struct ulfs1_dinode *)bip->bi_bp)->di_inumber ==
    412   1.1  perseant 			bip->bi_inode);
    413   1.1  perseant 	}
    414   1.1  perseant 
    415   1.1  perseant 	/* These can have the test pattern and it's all good */
    416   1.1  perseant 	if (bip->bi_inode > 3)
    417   1.1  perseant 		return;
    418   1.1  perseant 
    419   1.1  perseant 	for (j = 0; j < bip->bi_size; j++) {
    420   1.1  perseant 		if (cp[j] != (j & 0xff))
    421   1.1  perseant 			break;
    422   1.1  perseant 	}
    423   1.1  perseant 	assert(j < bip->bi_size);
    424   1.1  perseant }
    425   1.1  perseant #endif /* TEST_PATTERN */
    426   1.1  perseant 
    427   1.1  perseant /*
    428   1.1  perseant  * Parse the partial segment at daddr, adding its information to
    429   1.1  perseant  * bip.	 Return the address of the next partial segment to read.
    430   1.1  perseant  */
    431  1.42  dholland static daddr_t
    432   1.1  perseant parse_pseg(struct clfs *fs, daddr_t daddr, BLOCK_INFO **bipp, int *bic)
    433   1.1  perseant {
    434   1.1  perseant 	SEGSUM *ssp;
    435   1.1  perseant 	IFILE *ifp;
    436   1.3  perseant 	BLOCK_INFO *bip, *nbip;
    437  1.42  dholland 	daddr_t idaddr, odaddr;
    438   1.1  perseant 	FINFO *fip;
    439  1.54  dholland 	IINFO *iip;
    440   1.1  perseant 	struct ubuf *ifbp;
    441  1.50  dholland 	union lfs_dinode *dip;
    442   1.1  perseant 	u_int32_t ck, vers;
    443   1.1  perseant 	int fic, inoc, obic;
    444  1.48  dholland 	size_t sumstart;
    445   1.1  perseant 	int i;
    446   1.6       mrg 	char *cp;
    447   1.1  perseant 
    448   1.1  perseant 	odaddr = daddr;
    449   1.1  perseant 	obic = *bic;
    450   1.1  perseant 	bip = *bipp;
    451   1.1  perseant 
    452   1.1  perseant 	/*
    453   1.1  perseant 	 * Retrieve the segment header, set up the SEGSUM pointer
    454   1.1  perseant 	 * as well as the first FINFO and inode address pointer.
    455   1.1  perseant 	 */
    456   1.1  perseant 	cp = fd_ptrget(fs->clfs_devvp, daddr);
    457   1.1  perseant 	ssp = (SEGSUM *)cp;
    458  1.54  dholland 	iip = SEGSUM_IINFOSTART(fs, cp);
    459  1.48  dholland 	fip = SEGSUM_FINFOBASE(fs, cp);
    460   1.1  perseant 
    461   1.1  perseant 	/*
    462   1.1  perseant 	 * Check segment header magic and checksum
    463   1.1  perseant 	 */
    464  1.48  dholland 	if (lfs_ss_getmagic(fs, ssp) != SS_MAGIC) {
    465  1.42  dholland 		syslog(LOG_WARNING, "%s: sumsum magic number bad at 0x%jx:"
    466  1.40  dholland 		       " read 0x%x, expected 0x%x", lfs_sb_getfsmnt(fs),
    467  1.48  dholland 		       (intmax_t)daddr, lfs_ss_getmagic(fs, ssp), SS_MAGIC);
    468   1.1  perseant 		return 0x0;
    469   1.1  perseant 	}
    470  1.48  dholland 	sumstart = lfs_ss_getsumstart(fs);
    471  1.48  dholland 	ck = cksum((char *)ssp + sumstart, lfs_sb_getsumsize(fs) - sumstart);
    472  1.48  dholland 	if (ck != lfs_ss_getsumsum(fs, ssp)) {
    473  1.42  dholland 		syslog(LOG_WARNING, "%s: sumsum checksum mismatch at 0x%jx:"
    474  1.40  dholland 		       " read 0x%x, computed 0x%x", lfs_sb_getfsmnt(fs),
    475  1.48  dholland 		       (intmax_t)daddr, lfs_ss_getsumsum(fs, ssp), ck);
    476   1.1  perseant 		return 0x0;
    477   1.1  perseant 	}
    478   1.1  perseant 
    479   1.1  perseant 	/* Initialize data sum */
    480   1.1  perseant 	ck = 0;
    481   1.1  perseant 
    482   1.1  perseant 	/* Point daddr at next block after segment summary */
    483   1.1  perseant 	++daddr;
    484   1.1  perseant 
    485   1.1  perseant 	/*
    486   1.1  perseant 	 * Loop over file info and inode pointers.  We always move daddr
    487   1.1  perseant 	 * forward here because we are also computing the data checksum
    488   1.1  perseant 	 * as we go.
    489   1.1  perseant 	 */
    490   1.1  perseant 	fic = inoc = 0;
    491  1.48  dholland 	while (fic < lfs_ss_getnfinfo(fs, ssp) || inoc < lfs_ss_getninos(fs, ssp)) {
    492   1.1  perseant 		/*
    493   1.3  perseant 		 * We must have either a file block or an inode block.
    494   1.3  perseant 		 * If we don't have either one, it's an error.
    495   1.3  perseant 		 */
    496  1.54  dholland 		if (fic >= lfs_ss_getnfinfo(fs, ssp) && lfs_ii_getblock(fs, iip) != daddr) {
    497  1.42  dholland 			syslog(LOG_WARNING, "%s: bad pseg at %jx (seg %d)",
    498  1.42  dholland 			       lfs_sb_getfsmnt(fs), (intmax_t)odaddr, lfs_dtosn(fs, odaddr));
    499   1.3  perseant 			*bipp = bip;
    500   1.3  perseant 			return 0x0;
    501   1.3  perseant 		}
    502   1.3  perseant 
    503   1.3  perseant 		/*
    504   1.1  perseant 		 * Note each inode from the inode blocks
    505   1.1  perseant 		 */
    506  1.54  dholland 		if (inoc < lfs_ss_getninos(fs, ssp) && lfs_ii_getblock(fs, iip) == daddr) {
    507   1.1  perseant 			cp = fd_ptrget(fs->clfs_devvp, daddr);
    508   1.1  perseant 			ck = lfs_cksum_part(cp, sizeof(u_int32_t), ck);
    509  1.40  dholland 			for (i = 0; i < lfs_sb_getinopb(fs); i++) {
    510  1.50  dholland 				dip = DINO_IN_BLOCK(fs, cp, i);
    511  1.50  dholland 				if (lfs_dino_getinumber(fs, dip) == 0)
    512   1.1  perseant 					break;
    513   1.1  perseant 
    514   1.1  perseant 				/*
    515   1.1  perseant 				 * Check currency before adding it
    516   1.1  perseant 				 */
    517   1.1  perseant #ifndef REPAIR_ZERO_FINFO
    518  1.50  dholland 				lfs_ientry(&ifp, fs, lfs_dino_getinumber(fs, dip), &ifbp);
    519  1.47  dholland 				idaddr = lfs_if_getdaddr(fs, ifp);
    520  1.13        ad 				brelse(ifbp, 0);
    521   1.1  perseant 				if (idaddr != daddr)
    522   1.1  perseant #endif
    523   1.1  perseant 					continue;
    524   1.1  perseant 
    525   1.1  perseant 				/*
    526   1.1  perseant 				 * A current inode.  Add it.
    527   1.1  perseant 				 */
    528   1.1  perseant 				++*bic;
    529   1.3  perseant 				nbip = (BLOCK_INFO *)realloc(bip, *bic *
    530   1.3  perseant 							     sizeof(*bip));
    531   1.3  perseant 				if (nbip)
    532   1.3  perseant 					bip = nbip;
    533   1.3  perseant 				else {
    534   1.3  perseant 					--*bic;
    535   1.3  perseant 					*bipp = bip;
    536   1.3  perseant 					return 0x0;
    537   1.3  perseant 				}
    538  1.50  dholland 				bip[*bic - 1].bi_inode = lfs_dino_getinumber(fs, dip);
    539   1.1  perseant 				bip[*bic - 1].bi_lbn = LFS_UNUSED_LBN;
    540   1.1  perseant 				bip[*bic - 1].bi_daddr = daddr;
    541  1.48  dholland 				bip[*bic - 1].bi_segcreate = lfs_ss_getcreate(fs, ssp);
    542  1.50  dholland 				bip[*bic - 1].bi_version = lfs_dino_getgen(fs, dip);
    543  1.50  dholland 				bip[*bic - 1].bi_bp = dip;
    544  1.50  dholland 				bip[*bic - 1].bi_size = DINOSIZE(fs);
    545   1.1  perseant 			}
    546   1.1  perseant 			inoc += i;
    547  1.40  dholland 			daddr += lfs_btofsb(fs, lfs_sb_getibsize(fs));
    548  1.54  dholland 			iip = NEXTLOWER_IINFO(fs, iip);
    549   1.1  perseant 			continue;
    550   1.1  perseant 		}
    551   1.1  perseant 
    552   1.1  perseant 		/*
    553   1.1  perseant 		 * Note each file block from the finfo blocks
    554   1.1  perseant 		 */
    555  1.48  dholland 		if (fic >= lfs_ss_getnfinfo(fs, ssp))
    556   1.1  perseant 			continue;
    557   1.1  perseant 
    558   1.1  perseant 		/* Count this finfo, whether or not we use it */
    559   1.1  perseant 		++fic;
    560   1.1  perseant 
    561   1.1  perseant 		/*
    562   1.1  perseant 		 * If this finfo has nblocks==0, it was written wrong.
    563   1.1  perseant 		 * Kernels with this problem always wrote this zero-sized
    564   1.1  perseant 		 * finfo last, so just ignore it.
    565   1.1  perseant 		 */
    566  1.49  dholland 		if (lfs_fi_getnblocks(fs, fip) == 0) {
    567   1.1  perseant #ifdef REPAIR_ZERO_FINFO
    568   1.1  perseant 			struct ubuf *nbp;
    569   1.1  perseant 			SEGSUM *nssp;
    570   1.1  perseant 
    571  1.42  dholland 			syslog(LOG_WARNING, "fixing short FINFO at %jx (seg %d)",
    572  1.42  dholland 			       (intmax_t)odaddr, lfs_dtosn(fs, odaddr));
    573  1.41  dholland 			bread(fs->clfs_devvp, odaddr, lfs_sb_getfsize(fs),
    574  1.38    chopps 			    0, &nbp);
    575   1.1  perseant 			nssp = (SEGSUM *)nbp->b_data;
    576   1.1  perseant 			--nssp->ss_nfinfo;
    577   1.1  perseant 			nssp->ss_sumsum = cksum(&nssp->ss_datasum,
    578  1.40  dholland 				lfs_sb_getsumsize(fs) - sizeof(nssp->ss_sumsum));
    579   1.1  perseant 			bwrite(nbp);
    580   1.1  perseant #endif
    581  1.42  dholland 			syslog(LOG_WARNING, "zero-length FINFO at %jx (seg %d)",
    582  1.42  dholland 			       (intmax_t)odaddr, lfs_dtosn(fs, odaddr));
    583   1.1  perseant 			continue;
    584   1.1  perseant 		}
    585   1.1  perseant 
    586   1.1  perseant 		/*
    587   1.1  perseant 		 * Check currency before adding blocks
    588   1.1  perseant 		 */
    589   1.1  perseant #ifdef REPAIR_ZERO_FINFO
    590   1.1  perseant 		vers = -1;
    591   1.1  perseant #else
    592  1.49  dholland 		lfs_ientry(&ifp, fs, lfs_fi_getino(fs, fip), &ifbp);
    593  1.47  dholland 		vers = lfs_if_getversion(fs, ifp);
    594  1.13        ad 		brelse(ifbp, 0);
    595   1.1  perseant #endif
    596  1.49  dholland 		if (vers != lfs_fi_getversion(fs, fip)) {
    597   1.1  perseant 			size_t size;
    598   1.1  perseant 
    599   1.1  perseant 			/* Read all the blocks from the data summary */
    600  1.49  dholland 			for (i = 0; i < lfs_fi_getnblocks(fs, fip); i++) {
    601  1.49  dholland 				size = (i == lfs_fi_getnblocks(fs, fip) - 1) ?
    602  1.49  dholland 					lfs_fi_getlastlength(fs, fip) : lfs_sb_getbsize(fs);
    603   1.1  perseant 				cp = fd_ptrget(fs->clfs_devvp, daddr);
    604   1.1  perseant 				ck = lfs_cksum_part(cp, sizeof(u_int32_t), ck);
    605  1.36  christos 				daddr += lfs_btofsb(fs, size);
    606   1.1  perseant 			}
    607  1.49  dholland 			fip = NEXT_FINFO(fs, fip);
    608   1.1  perseant 			continue;
    609   1.1  perseant 		}
    610   1.1  perseant 
    611   1.1  perseant 		/* Add all the blocks from the finfos (current or not) */
    612  1.49  dholland 		nbip = (BLOCK_INFO *)realloc(bip, (*bic + lfs_fi_getnblocks(fs, fip)) *
    613   1.3  perseant 					     sizeof(*bip));
    614   1.3  perseant 		if (nbip)
    615   1.3  perseant 			bip = nbip;
    616   1.3  perseant 		else {
    617   1.3  perseant 			*bipp = bip;
    618   1.3  perseant 			return 0x0;
    619   1.3  perseant 		}
    620   1.3  perseant 
    621  1.49  dholland 		for (i = 0; i < lfs_fi_getnblocks(fs, fip); i++) {
    622  1.49  dholland 			bip[*bic + i].bi_inode = lfs_fi_getino(fs, fip);
    623  1.49  dholland 			bip[*bic + i].bi_lbn = lfs_fi_getblock(fs, fip, i);
    624   1.1  perseant 			bip[*bic + i].bi_daddr = daddr;
    625  1.48  dholland 			bip[*bic + i].bi_segcreate = lfs_ss_getcreate(fs, ssp);
    626  1.49  dholland 			bip[*bic + i].bi_version = lfs_fi_getversion(fs, fip);
    627  1.49  dholland 			bip[*bic + i].bi_size = (i == lfs_fi_getnblocks(fs, fip) - 1) ?
    628  1.49  dholland 				lfs_fi_getlastlength(fs, fip) : lfs_sb_getbsize(fs);
    629   1.1  perseant 			cp = fd_ptrget(fs->clfs_devvp, daddr);
    630   1.1  perseant 			ck = lfs_cksum_part(cp, sizeof(u_int32_t), ck);
    631   1.1  perseant 			bip[*bic + i].bi_bp = cp;
    632  1.36  christos 			daddr += lfs_btofsb(fs, bip[*bic + i].bi_size);
    633   1.1  perseant 
    634   1.1  perseant #ifdef TEST_PATTERN
    635   1.1  perseant 			check_test_pattern(bip + *bic + i); /* XXXDEBUG */
    636   1.1  perseant #endif
    637   1.1  perseant 		}
    638  1.49  dholland 		*bic += lfs_fi_getnblocks(fs, fip);
    639  1.48  dholland 		fip = NEXT_FINFO(fs, fip);
    640   1.1  perseant 	}
    641   1.1  perseant 
    642   1.1  perseant #ifndef REPAIR_ZERO_FINFO
    643  1.48  dholland 	if (lfs_ss_getdatasum(fs, ssp) != ck) {
    644  1.42  dholland 		syslog(LOG_WARNING, "%s: data checksum bad at 0x%jx:"
    645  1.42  dholland 		       " read 0x%x, computed 0x%x", lfs_sb_getfsmnt(fs),
    646  1.42  dholland 		       (intmax_t)odaddr,
    647  1.48  dholland 		       lfs_ss_getdatasum(fs, ssp), ck);
    648   1.1  perseant 		*bic = obic;
    649   1.1  perseant 		return 0x0;
    650   1.1  perseant 	}
    651   1.1  perseant #endif
    652   1.1  perseant 
    653   1.1  perseant 	*bipp = bip;
    654   1.1  perseant 	return daddr;
    655   1.1  perseant }
    656   1.1  perseant 
    657   1.1  perseant static void
    658   1.1  perseant log_segment_read(struct clfs *fs, int sn)
    659   1.1  perseant {
    660   1.1  perseant         FILE *fp;
    661   1.1  perseant 	char *cp;
    662   1.1  perseant 
    663   1.1  perseant         /*
    664   1.1  perseant          * Write the segment read, and its contents, into a log file in
    665   1.1  perseant          * the current directory.  We don't need to log the location of
    666   1.1  perseant          * the segment, since that can be inferred from the segments up
    667   1.1  perseant 	 * to this point (ss_nextseg field of the previously written segment).
    668   1.1  perseant 	 *
    669   1.1  perseant 	 * We can use this info later to reconstruct the filesystem at any
    670   1.1  perseant 	 * given point in time for analysis, by replaying the log forward
    671   1.1  perseant 	 * indexed by the segment serial numbers; but it is not suitable
    672   1.1  perseant 	 * for everyday use since the copylog will be simply enormous.
    673   1.1  perseant          */
    674  1.36  christos 	cp = fd_ptrget(fs->clfs_devvp, lfs_sntod(fs, sn));
    675   1.1  perseant 
    676   1.1  perseant         fp = fopen(copylog_filename, "ab");
    677   1.1  perseant         if (fp != NULL) {
    678  1.41  dholland                 if (fwrite(cp, (size_t)lfs_sb_getssize(fs), 1, fp) != 1) {
    679   1.1  perseant                         perror("writing segment to copy log");
    680   1.1  perseant                 }
    681   1.1  perseant         }
    682   1.1  perseant         fclose(fp);
    683   1.1  perseant }
    684   1.1  perseant 
    685   1.1  perseant /*
    686   1.1  perseant  * Read a segment to populate the BLOCK_INFO structures.
    687   1.1  perseant  * Return the number of partial segments read and parsed.
    688   1.1  perseant  */
    689   1.1  perseant int
    690   1.1  perseant load_segment(struct clfs *fs, int sn, BLOCK_INFO **bipp, int *bic)
    691   1.1  perseant {
    692  1.42  dholland 	daddr_t daddr;
    693   1.1  perseant 	int i, npseg;
    694   1.1  perseant 
    695  1.36  christos 	daddr = lfs_sntod(fs, sn);
    696  1.36  christos 	if (daddr < lfs_btofsb(fs, LFS_LABELPAD))
    697  1.36  christos 		daddr = lfs_btofsb(fs, LFS_LABELPAD);
    698   1.1  perseant 	for (i = 0; i < LFS_MAXNUMSB; i++) {
    699  1.40  dholland 		if (lfs_sb_getsboff(fs, i) == daddr) {
    700  1.36  christos 			daddr += lfs_btofsb(fs, LFS_SBPAD);
    701   1.1  perseant 			break;
    702   1.1  perseant 		}
    703   1.1  perseant 	}
    704   1.1  perseant 
    705   1.1  perseant 	/* Preload the segment buffer */
    706  1.36  christos 	if (fd_preload(fs->clfs_devvp, lfs_sntod(fs, sn)) < 0)
    707   1.1  perseant 		return -1;
    708   1.1  perseant 
    709   1.1  perseant 	if (copylog_filename)
    710   1.1  perseant 		log_segment_read(fs, sn);
    711   1.1  perseant 
    712   1.1  perseant 	/* Note bytes read for stats */
    713   1.1  perseant 	cleaner_stats.segs_cleaned++;
    714  1.41  dholland 	cleaner_stats.bytes_read += lfs_sb_getssize(fs);
    715   1.1  perseant 	++fs->clfs_nactive;
    716   1.1  perseant 
    717   1.1  perseant 	npseg = 0;
    718  1.36  christos 	while(lfs_dtosn(fs, daddr) == sn &&
    719  1.41  dholland 	      lfs_dtosn(fs, daddr + lfs_btofsb(fs, lfs_sb_getbsize(fs))) == sn) {
    720   1.1  perseant 		daddr = parse_pseg(fs, daddr, bipp, bic);
    721   1.1  perseant 		if (daddr == 0x0) {
    722   1.1  perseant 			++cleaner_stats.segs_error;
    723   1.1  perseant 			break;
    724   1.1  perseant 		}
    725   1.1  perseant 		++npseg;
    726   1.1  perseant 	}
    727   1.1  perseant 
    728   1.1  perseant 	return npseg;
    729   1.1  perseant }
    730   1.1  perseant 
    731   1.1  perseant void
    732   1.1  perseant calc_cb(struct clfs *fs, int sn, struct clfs_seguse *t)
    733   1.1  perseant {
    734   1.1  perseant 	time_t now;
    735   1.1  perseant 	int64_t age, benefit, cost;
    736   1.1  perseant 
    737   1.1  perseant 	time(&now);
    738   1.1  perseant 	age = (now < t->lastmod ? 0 : now - t->lastmod);
    739   1.1  perseant 
    740   1.1  perseant 	/* Under no circumstances clean active or already-clean segments */
    741   1.1  perseant 	if ((t->flags & SEGUSE_ACTIVE) || !(t->flags & SEGUSE_DIRTY)) {
    742   1.1  perseant 		t->priority = 0;
    743   1.1  perseant 		return;
    744   1.1  perseant 	}
    745   1.1  perseant 
    746   1.1  perseant 	/*
    747   1.1  perseant 	 * If the segment is empty, there is no reason to clean it.
    748   1.1  perseant 	 * Clear its error condition, if any, since we are never going to
    749   1.1  perseant 	 * try to parse this one.
    750   1.1  perseant 	 */
    751   1.1  perseant 	if (t->nbytes == 0) {
    752   1.1  perseant 		t->flags &= ~SEGUSE_ERROR; /* Strip error once empty */
    753   1.1  perseant 		t->priority = 0;
    754   1.1  perseant 		return;
    755   1.1  perseant 	}
    756   1.1  perseant 
    757   1.1  perseant 	if (t->flags & SEGUSE_ERROR) {	/* No good if not already empty */
    758   1.1  perseant 		/* No benefit */
    759   1.1  perseant 		t->priority = 0;
    760   1.1  perseant 		return;
    761   1.1  perseant 	}
    762   1.1  perseant 
    763  1.41  dholland 	if (t->nbytes > lfs_sb_getssize(fs)) {
    764   1.1  perseant 		/* Another type of error */
    765   1.1  perseant 		syslog(LOG_WARNING, "segment %d: bad seguse count %d",
    766   1.1  perseant 		       sn, t->nbytes);
    767   1.1  perseant 		t->flags |= SEGUSE_ERROR;
    768   1.1  perseant 		t->priority = 0;
    769   1.1  perseant 		return;
    770   1.1  perseant 	}
    771   1.1  perseant 
    772   1.1  perseant 	/*
    773   1.1  perseant 	 * The non-degenerate case.  Use Rosenblum's cost-benefit algorithm.
    774   1.1  perseant 	 * Calculate the benefit from cleaning this segment (one segment,
    775   1.1  perseant 	 * minus fragmentation, dirty blocks and a segment summary block)
    776   1.1  perseant 	 * and weigh that against the cost (bytes read plus bytes written).
    777   1.1  perseant 	 * We count the summary headers as "dirty" to avoid cleaning very
    778   1.1  perseant 	 * old and very full segments.
    779   1.1  perseant 	 */
    780  1.41  dholland 	benefit = (int64_t)lfs_sb_getssize(fs) - t->nbytes -
    781  1.41  dholland 		  (t->nsums + 1) * lfs_sb_getfsize(fs);
    782  1.41  dholland 	if (lfs_sb_getbsize(fs) > lfs_sb_getfsize(fs)) /* fragmentation */
    783  1.41  dholland 		benefit -= (lfs_sb_getbsize(fs) / 2);
    784   1.1  perseant 	if (benefit <= 0) {
    785   1.1  perseant 		t->priority = 0;
    786   1.1  perseant 		return;
    787   1.1  perseant 	}
    788   1.1  perseant 
    789  1.41  dholland 	cost = lfs_sb_getssize(fs) + t->nbytes;
    790   1.1  perseant 	t->priority = (256 * benefit * age) / cost;
    791   1.1  perseant 
    792   1.1  perseant 	return;
    793   1.1  perseant }
    794   1.1  perseant 
    795   1.1  perseant /*
    796   1.1  perseant  * Comparator for BLOCK_INFO structures.  Anything not in one of the segments
    797   1.1  perseant  * we're looking at sorts higher; after that we sort first by inode number
    798   1.1  perseant  * and then by block number (unsigned, i.e., negative sorts higher) *but*
    799   1.1  perseant  * sort inodes before data blocks.
    800   1.1  perseant  */
    801   1.1  perseant static int
    802   1.1  perseant bi_comparator(const void *va, const void *vb)
    803   1.1  perseant {
    804  1.17     lukem 	const BLOCK_INFO *a, *b;
    805   1.1  perseant 
    806  1.17     lukem 	a = (const BLOCK_INFO *)va;
    807  1.17     lukem 	b = (const BLOCK_INFO *)vb;
    808   1.1  perseant 
    809   1.1  perseant 	/* Check for out-of-place block */
    810   1.1  perseant 	if (a->bi_segcreate == a->bi_daddr &&
    811   1.1  perseant 	    b->bi_segcreate != b->bi_daddr)
    812   1.1  perseant 		return -1;
    813   1.1  perseant 	if (a->bi_segcreate != a->bi_daddr &&
    814   1.1  perseant 	    b->bi_segcreate == b->bi_daddr)
    815   1.1  perseant 		return 1;
    816   1.1  perseant 	if (a->bi_size <= 0 && b->bi_size > 0)
    817   1.1  perseant 		return 1;
    818   1.1  perseant 	if (b->bi_size <= 0 && a->bi_size > 0)
    819   1.1  perseant 		return -1;
    820   1.1  perseant 
    821   1.1  perseant 	/* Check inode number */
    822   1.1  perseant 	if (a->bi_inode != b->bi_inode)
    823   1.1  perseant 		return a->bi_inode - b->bi_inode;
    824   1.1  perseant 
    825   1.1  perseant 	/* Check lbn */
    826   1.1  perseant 	if (a->bi_lbn == LFS_UNUSED_LBN) /* Inodes sort lower than blocks */
    827   1.1  perseant 		return -1;
    828   1.1  perseant 	if (b->bi_lbn == LFS_UNUSED_LBN)
    829   1.1  perseant 		return 1;
    830  1.45  dholland 	if ((u_int64_t)a->bi_lbn > (u_int64_t)b->bi_lbn)
    831   1.1  perseant 		return 1;
    832   1.1  perseant 	else
    833   1.1  perseant 		return -1;
    834   1.8  perseant 
    835   1.8  perseant 	return 0;
    836   1.1  perseant }
    837   1.1  perseant 
    838   1.1  perseant /*
    839   1.1  perseant  * Comparator for sort_segments: cost-benefit equation.
    840   1.1  perseant  */
    841   1.1  perseant static int
    842   1.1  perseant cb_comparator(const void *va, const void *vb)
    843   1.1  perseant {
    844  1.17     lukem 	const struct clfs_seguse *a, *b;
    845   1.1  perseant 
    846  1.17     lukem 	a = *(const struct clfs_seguse * const *)va;
    847  1.17     lukem 	b = *(const struct clfs_seguse * const *)vb;
    848   1.1  perseant 	return a->priority > b->priority ? -1 : 1;
    849   1.1  perseant }
    850   1.1  perseant 
    851   1.1  perseant void
    852  1.45  dholland toss_old_blocks(struct clfs *fs, BLOCK_INFO **bipp, blkcnt_t *bic, int *sizep)
    853   1.1  perseant {
    854  1.45  dholland 	blkcnt_t i;
    855  1.45  dholland 	int r;
    856   1.1  perseant 	BLOCK_INFO *bip = *bipp;
    857   1.1  perseant 	struct lfs_fcntl_markv /* {
    858   1.1  perseant 		BLOCK_INFO *blkiov;
    859   1.1  perseant 		int blkcnt;
    860   1.1  perseant 	} */ lim;
    861   1.1  perseant 
    862   1.3  perseant 	if (bic == 0 || bip == NULL)
    863   1.3  perseant 		return;
    864   1.3  perseant 
    865   1.1  perseant 	/*
    866   1.1  perseant 	 * Kludge: Store the disk address in segcreate so we know which
    867   1.1  perseant 	 * ones to toss.
    868   1.1  perseant 	 */
    869   1.1  perseant 	for (i = 0; i < *bic; i++)
    870   1.1  perseant 		bip[i].bi_segcreate = bip[i].bi_daddr;
    871   1.1  perseant 
    872  1.45  dholland 	/*
    873  1.45  dholland 	 * XXX: blkcnt_t is 64 bits, so *bic might overflow size_t
    874  1.45  dholland 	 * (the argument type of heapsort's number argument) on a
    875  1.45  dholland 	 * 32-bit platform. However, if so we won't have got this far
    876  1.45  dholland 	 * because we'll have failed trying to allocate the array. So
    877  1.45  dholland 	 * while *bic here might cause a 64->32 truncation, it's safe.
    878  1.45  dholland 	 */
    879   1.1  perseant 	/* Sort the blocks */
    880   1.1  perseant 	heapsort(bip, *bic, sizeof(BLOCK_INFO), bi_comparator);
    881   1.1  perseant 
    882   1.1  perseant 	/* Use bmapv to locate the blocks */
    883   1.1  perseant 	lim.blkiov = bip;
    884   1.1  perseant 	lim.blkcnt = *bic;
    885  1.21     pooka 	if ((r = kops.ko_fcntl(fs->clfs_ifilefd, LFCNBMAPV, &lim)) < 0) {
    886   1.1  perseant 		syslog(LOG_WARNING, "%s: bmapv returned %d (%m)",
    887  1.40  dholland 		       lfs_sb_getfsmnt(fs), r);
    888   1.1  perseant 		return;
    889   1.1  perseant 	}
    890   1.1  perseant 
    891   1.1  perseant 	/* Toss blocks not in this segment */
    892   1.1  perseant 	heapsort(bip, *bic, sizeof(BLOCK_INFO), bi_comparator);
    893   1.1  perseant 
    894   1.1  perseant 	/* Get rid of stale blocks */
    895   1.7  perseant 	if (sizep)
    896   1.7  perseant 		*sizep = 0;
    897   1.7  perseant 	for (i = 0; i < *bic; i++) {
    898   1.1  perseant 		if (bip[i].bi_segcreate != bip[i].bi_daddr)
    899   1.1  perseant 			break;
    900   1.7  perseant 		if (sizep)
    901   1.7  perseant 			*sizep += bip[i].bi_size;
    902   1.7  perseant 	}
    903  1.28  perseant 	*bic = i; /* XXX should we shrink bip? */
    904   1.1  perseant 	*bipp = bip;
    905   1.1  perseant 
    906   1.1  perseant 	return;
    907   1.1  perseant }
    908   1.1  perseant 
    909   1.1  perseant /*
    910   1.1  perseant  * Clean a segment and mark it invalid.
    911   1.1  perseant  */
    912   1.1  perseant int
    913   1.1  perseant invalidate_segment(struct clfs *fs, int sn)
    914   1.1  perseant {
    915   1.1  perseant 	BLOCK_INFO *bip;
    916   1.1  perseant 	int i, r, bic;
    917  1.45  dholland 	blkcnt_t widebic;
    918   1.1  perseant 	off_t nb;
    919   1.1  perseant 	double util;
    920   1.1  perseant 	struct lfs_fcntl_markv /* {
    921   1.1  perseant 		BLOCK_INFO *blkiov;
    922   1.1  perseant 		int blkcnt;
    923   1.1  perseant 	} */ lim;
    924   1.1  perseant 
    925  1.40  dholland 	dlog("%s: inval seg %d", lfs_sb_getfsmnt(fs), sn);
    926   1.1  perseant 
    927   1.1  perseant 	bip = NULL;
    928   1.1  perseant 	bic = 0;
    929   1.1  perseant 	fs->clfs_nactive = 0;
    930   1.7  perseant 	if (load_segment(fs, sn, &bip, &bic) <= 0)
    931   1.7  perseant 		return -1;
    932  1.45  dholland 	widebic = bic;
    933  1.45  dholland 	toss_old_blocks(fs, &bip, &widebic, NULL);
    934  1.45  dholland 	bic = widebic;
    935   1.1  perseant 
    936   1.1  perseant 	/* Record statistics */
    937   1.1  perseant 	for (i = nb = 0; i < bic; i++)
    938   1.1  perseant 		nb += bip[i].bi_size;
    939  1.41  dholland 	util = ((double)nb) / (fs->clfs_nactive * lfs_sb_getssize(fs));
    940   1.1  perseant 	cleaner_stats.util_tot += util;
    941   1.1  perseant 	cleaner_stats.util_sos += util * util;
    942   1.1  perseant 	cleaner_stats.bytes_written += nb;
    943   1.1  perseant 
    944   1.1  perseant 	/*
    945   1.1  perseant 	 * Use markv to move the blocks.
    946   1.1  perseant 	 */
    947   1.1  perseant 	lim.blkiov = bip;
    948   1.1  perseant 	lim.blkcnt = bic;
    949  1.21     pooka 	if ((r = kops.ko_fcntl(fs->clfs_ifilefd, LFCNMARKV, &lim)) < 0) {
    950   1.1  perseant 		syslog(LOG_WARNING, "%s: markv returned %d (%m) "
    951  1.40  dholland 		       "for seg %d", lfs_sb_getfsmnt(fs), r, sn);
    952   1.1  perseant 		return r;
    953   1.1  perseant 	}
    954   1.1  perseant 
    955   1.1  perseant 	/*
    956   1.1  perseant 	 * Finally call invalidate to invalidate the segment.
    957   1.1  perseant 	 */
    958  1.21     pooka 	if ((r = kops.ko_fcntl(fs->clfs_ifilefd, LFCNINVAL, &sn)) < 0) {
    959   1.1  perseant 		syslog(LOG_WARNING, "%s: inval returned %d (%m) "
    960  1.40  dholland 		       "for seg %d", lfs_sb_getfsmnt(fs), r, sn);
    961   1.1  perseant 		return r;
    962   1.1  perseant 	}
    963   1.1  perseant 
    964   1.1  perseant 	return 0;
    965   1.1  perseant }
    966   1.1  perseant 
    967   1.1  perseant /*
    968   1.1  perseant  * Check to see if the given ino/lbn pair is represented in the BLOCK_INFO
    969   1.1  perseant  * array we are sending to the kernel, or if the kernel will have to add it.
    970   1.1  perseant  * The kernel will only add each such pair once, though, so keep track of
    971   1.1  perseant  * previous requests in a separate "extra" BLOCK_INFO array.  Returns 1
    972   1.1  perseant  * if the block needs to be added, 0 if it is already represented.
    973   1.1  perseant  */
    974   1.1  perseant static int
    975  1.45  dholland check_or_add(ino_t ino, daddr_t lbn, BLOCK_INFO *bip, int bic, BLOCK_INFO **ebipp, int *ebicp)
    976   1.1  perseant {
    977   1.1  perseant 	BLOCK_INFO *t, *ebip = *ebipp;
    978   1.1  perseant 	int ebic = *ebicp;
    979   1.1  perseant 	int k;
    980   1.1  perseant 
    981   1.1  perseant 	for (k = 0; k < bic; k++) {
    982   1.1  perseant 		if (bip[k].bi_inode != ino)
    983   1.1  perseant 			break;
    984   1.1  perseant 		if (bip[k].bi_lbn == lbn) {
    985   1.1  perseant 			return 0;
    986   1.1  perseant 		}
    987   1.1  perseant 	}
    988   1.1  perseant 
    989   1.1  perseant 	/* Look on the list of extra blocks, too */
    990   1.1  perseant 	for (k = 0; k < ebic; k++) {
    991   1.1  perseant 		if (ebip[k].bi_inode == ino && ebip[k].bi_lbn == lbn) {
    992   1.1  perseant 			return 0;
    993   1.1  perseant 		}
    994   1.1  perseant 	}
    995   1.1  perseant 
    996   1.1  perseant 	++ebic;
    997   1.1  perseant 	t = realloc(ebip, ebic * sizeof(BLOCK_INFO));
    998   1.1  perseant 	if (t == NULL)
    999  1.28  perseant 		return 1; /* Note *ebicp is unchanged */
   1000   1.1  perseant 
   1001   1.1  perseant 	ebip = t;
   1002   1.1  perseant 	ebip[ebic - 1].bi_inode = ino;
   1003   1.1  perseant 	ebip[ebic - 1].bi_lbn = lbn;
   1004   1.1  perseant 
   1005   1.1  perseant 	*ebipp = ebip;
   1006   1.1  perseant 	*ebicp = ebic;
   1007   1.1  perseant 	return 1;
   1008   1.1  perseant }
   1009   1.1  perseant 
   1010   1.1  perseant /*
   1011   1.1  perseant  * Look for indirect blocks we will have to write which are not
   1012   1.1  perseant  * contained in this collection of blocks.  This constitutes
   1013   1.1  perseant  * a hidden cleaning cost, since we are unaware of it until we
   1014   1.1  perseant  * have already read the segments.  Return the total cost, and fill
   1015   1.1  perseant  * in *ifc with the part of that cost due to rewriting the Ifile.
   1016   1.1  perseant  */
   1017   1.1  perseant static off_t
   1018   1.1  perseant check_hidden_cost(struct clfs *fs, BLOCK_INFO *bip, int bic, off_t *ifc)
   1019   1.1  perseant {
   1020   1.1  perseant 	int start;
   1021  1.33  dholland 	struct indir in[ULFS_NIADDR + 1];
   1022   1.1  perseant 	int num;
   1023   1.1  perseant 	int i, j, ebic;
   1024   1.1  perseant 	BLOCK_INFO *ebip;
   1025  1.45  dholland 	daddr_t lbn;
   1026   1.1  perseant 
   1027   1.1  perseant 	start = 0;
   1028   1.1  perseant 	ebip = NULL;
   1029   1.1  perseant 	ebic = 0;
   1030   1.1  perseant 	for (i = 0; i < bic; i++) {
   1031   1.1  perseant 		if (i == 0 || bip[i].bi_inode != bip[start].bi_inode) {
   1032   1.1  perseant 			start = i;
   1033   1.1  perseant 			/*
   1034   1.1  perseant 			 * Look for IFILE blocks, unless this is the Ifile.
   1035   1.1  perseant 			 */
   1036  1.52  dholland 			if (bip[i].bi_inode != LFS_IFILE_INUM) {
   1037  1.39  dholland 				lbn = lfs_sb_getcleansz(fs) + bip[i].bi_inode /
   1038  1.39  dholland 							lfs_sb_getifpb(fs);
   1039  1.52  dholland 				*ifc += check_or_add(LFS_IFILE_INUM, lbn,
   1040   1.1  perseant 						     bip, bic, &ebip, &ebic);
   1041   1.1  perseant 			}
   1042   1.1  perseant 		}
   1043   1.1  perseant 		if (bip[i].bi_lbn == LFS_UNUSED_LBN)
   1044   1.1  perseant 			continue;
   1045  1.33  dholland 		if (bip[i].bi_lbn < ULFS_NDADDR)
   1046   1.5  perseant 			continue;
   1047   1.5  perseant 
   1048  1.45  dholland 		/* XXX the struct lfs cast is completely wrong/unsafe */
   1049  1.33  dholland 		ulfs_getlbns((struct lfs *)fs, NULL, (daddr_t)bip[i].bi_lbn, in, &num);
   1050   1.1  perseant 		for (j = 0; j < num; j++) {
   1051   1.1  perseant 			check_or_add(bip[i].bi_inode, in[j].in_lbn,
   1052   1.1  perseant 				     bip + start, bic - start, &ebip, &ebic);
   1053   1.1  perseant 		}
   1054   1.1  perseant 	}
   1055   1.1  perseant 	return ebic;
   1056   1.1  perseant }
   1057   1.1  perseant 
   1058   1.1  perseant /*
   1059   1.1  perseant  * Select segments to clean, add blocks from these segments to a cleaning
   1060   1.1  perseant  * list, and send this list through lfs_markv() to move them to new
   1061   1.1  perseant  * locations on disk.
   1062   1.1  perseant  */
   1063  1.46  dholland static int
   1064  1.46  dholland clean_fs(struct clfs *fs, const CLEANERINFO64 *cip)
   1065   1.1  perseant {
   1066   1.7  perseant 	int i, j, ngood, sn, bic, r, npos;
   1067  1.45  dholland 	blkcnt_t widebic;
   1068   1.7  perseant 	int bytes, totbytes;
   1069   1.1  perseant 	struct ubuf *bp;
   1070   1.1  perseant 	SEGUSE *sup;
   1071   1.1  perseant 	static BLOCK_INFO *bip;
   1072   1.1  perseant 	struct lfs_fcntl_markv /* {
   1073   1.1  perseant 		BLOCK_INFO *blkiov;
   1074   1.1  perseant 		int blkcnt;
   1075   1.1  perseant 	} */ lim;
   1076   1.1  perseant 	int mc;
   1077   1.1  perseant 	BLOCK_INFO *mbip;
   1078   1.1  perseant 	int inc;
   1079   1.1  perseant 	off_t nb;
   1080   1.1  perseant 	off_t goal;
   1081   1.1  perseant 	off_t extra, if_extra;
   1082   1.1  perseant 	double util;
   1083   1.1  perseant 
   1084   1.1  perseant 	/* Read the segment table into our private structure */
   1085   1.7  perseant 	npos = 0;
   1086  1.39  dholland 	for (i = 0; i < lfs_sb_getnseg(fs); i+= lfs_sb_getsepb(fs)) {
   1087  1.39  dholland 		bread(fs->lfs_ivnode,
   1088  1.39  dholland 		      lfs_sb_getcleansz(fs) + i / lfs_sb_getsepb(fs),
   1089  1.41  dholland 		      lfs_sb_getbsize(fs), 0, &bp);
   1090  1.39  dholland 		for (j = 0; j < lfs_sb_getsepb(fs) && i + j < lfs_sb_getnseg(fs); j++) {
   1091   1.1  perseant 			sup = ((SEGUSE *)bp->b_data) + j;
   1092   1.1  perseant 			fs->clfs_segtab[i + j].nbytes  = sup->su_nbytes;
   1093   1.1  perseant 			fs->clfs_segtab[i + j].nsums = sup->su_nsums;
   1094   1.1  perseant 			fs->clfs_segtab[i + j].lastmod = sup->su_lastmod;
   1095   1.1  perseant 			/* Keep error status but renew other flags */
   1096   1.1  perseant 			fs->clfs_segtab[i + j].flags  &= SEGUSE_ERROR;
   1097   1.1  perseant 			fs->clfs_segtab[i + j].flags  |= sup->su_flags;
   1098   1.1  perseant 
   1099   1.1  perseant 			/* Compute cost-benefit coefficient */
   1100   1.1  perseant 			calc_cb(fs, i + j, fs->clfs_segtab + i + j);
   1101   1.7  perseant 			if (fs->clfs_segtab[i + j].priority > 0)
   1102   1.7  perseant 				++npos;
   1103   1.1  perseant 		}
   1104  1.13        ad 		brelse(bp, 0);
   1105   1.1  perseant 	}
   1106   1.1  perseant 
   1107   1.1  perseant 	/* Sort segments based on cleanliness, fulness, and condition */
   1108  1.40  dholland 	heapsort(fs->clfs_segtabp, lfs_sb_getnseg(fs), sizeof(struct clfs_seguse *),
   1109   1.1  perseant 		 cb_comparator);
   1110   1.1  perseant 
   1111   1.1  perseant 	/* If no segment is cleanable, just return */
   1112   1.1  perseant 	if (fs->clfs_segtabp[0]->priority == 0) {
   1113  1.40  dholland 		dlog("%s: no segment cleanable", lfs_sb_getfsmnt(fs));
   1114   1.1  perseant 		return 0;
   1115   1.1  perseant 	}
   1116   1.1  perseant 
   1117   1.1  perseant 	/* Load some segments' blocks into bip */
   1118   1.1  perseant 	bic = 0;
   1119   1.1  perseant 	fs->clfs_nactive = 0;
   1120   1.1  perseant 	ngood = 0;
   1121   1.1  perseant 	if (use_bytes) {
   1122   1.1  perseant 		/* Set attainable goal */
   1123  1.41  dholland 		goal = lfs_sb_getssize(fs) * atatime;
   1124  1.41  dholland 		if (goal > (cip->clean - 1) * lfs_sb_getssize(fs) / 2)
   1125  1.41  dholland 			goal = MAX((cip->clean - 1) * lfs_sb_getssize(fs),
   1126  1.41  dholland 				   lfs_sb_getssize(fs)) / 2;
   1127   1.1  perseant 
   1128   1.7  perseant 		dlog("%s: cleaning with goal %" PRId64
   1129   1.7  perseant 		     " bytes (%d segs clean, %d cleanable)",
   1130  1.40  dholland 		     lfs_sb_getfsmnt(fs), goal, cip->clean, npos);
   1131   1.7  perseant 		syslog(LOG_INFO, "%s: cleaning with goal %" PRId64
   1132   1.7  perseant 		       " bytes (%d segs clean, %d cleanable)",
   1133  1.40  dholland 		       lfs_sb_getfsmnt(fs), goal, cip->clean, npos);
   1134   1.7  perseant 		totbytes = 0;
   1135  1.40  dholland 		for (i = 0; i < lfs_sb_getnseg(fs) && totbytes < goal; i++) {
   1136   1.1  perseant 			if (fs->clfs_segtabp[i]->priority == 0)
   1137   1.1  perseant 				break;
   1138   1.8  perseant 			/* Upper bound on number of segments at once */
   1139  1.41  dholland 			if (ngood * lfs_sb_getssize(fs) > 4 * goal)
   1140   1.8  perseant 				break;
   1141   1.1  perseant 			sn = (fs->clfs_segtabp[i] - fs->clfs_segtab);
   1142   1.1  perseant 			dlog("%s: add seg %d prio %" PRIu64
   1143   1.1  perseant 			     " containing %ld bytes",
   1144  1.40  dholland 			     lfs_sb_getfsmnt(fs), sn, fs->clfs_segtabp[i]->priority,
   1145   1.1  perseant 			     fs->clfs_segtabp[i]->nbytes);
   1146   1.7  perseant 			if ((r = load_segment(fs, sn, &bip, &bic)) > 0) {
   1147   1.1  perseant 				++ngood;
   1148  1.45  dholland 				widebic = bic;
   1149  1.45  dholland 				toss_old_blocks(fs, &bip, &widebic, &bytes);
   1150  1.45  dholland 				bic = widebic;
   1151   1.7  perseant 				totbytes += bytes;
   1152   1.7  perseant 			} else if (r == 0)
   1153   1.7  perseant 				fd_release(fs->clfs_devvp);
   1154   1.1  perseant 			else
   1155   1.1  perseant 				break;
   1156   1.1  perseant 		}
   1157   1.1  perseant 	} else {
   1158   1.1  perseant 		/* Set attainable goal */
   1159   1.1  perseant 		goal = atatime;
   1160   1.1  perseant 		if (goal > cip->clean - 1)
   1161   1.1  perseant 			goal = MAX(cip->clean - 1, 1);
   1162   1.1  perseant 
   1163   1.7  perseant 		dlog("%s: cleaning with goal %d segments (%d clean, %d cleanable)",
   1164  1.40  dholland 		       lfs_sb_getfsmnt(fs), (int)goal, cip->clean, npos);
   1165  1.40  dholland 		for (i = 0; i < lfs_sb_getnseg(fs) && ngood < goal; i++) {
   1166   1.1  perseant 			if (fs->clfs_segtabp[i]->priority == 0)
   1167   1.1  perseant 				break;
   1168   1.1  perseant 			sn = (fs->clfs_segtabp[i] - fs->clfs_segtab);
   1169   1.1  perseant 			dlog("%s: add seg %d prio %" PRIu64,
   1170  1.40  dholland 			     lfs_sb_getfsmnt(fs), sn, fs->clfs_segtabp[i]->priority);
   1171   1.1  perseant 			if ((r = load_segment(fs, sn, &bip, &bic)) > 0)
   1172   1.1  perseant 				++ngood;
   1173   1.7  perseant 			else if (r == 0)
   1174   1.7  perseant 				fd_release(fs->clfs_devvp);
   1175   1.7  perseant 			else
   1176   1.1  perseant 				break;
   1177   1.1  perseant 		}
   1178  1.45  dholland 		widebic = bic;
   1179  1.45  dholland 		toss_old_blocks(fs, &bip, &widebic, NULL);
   1180  1.45  dholland 		bic = widebic;
   1181   1.1  perseant 	}
   1182   1.1  perseant 
   1183   1.1  perseant 	/* If there is nothing to do, try again later. */
   1184   1.1  perseant 	if (bic == 0) {
   1185   1.3  perseant 		dlog("%s: no blocks to clean in %d cleanable segments",
   1186  1.40  dholland 		       lfs_sb_getfsmnt(fs), (int)ngood);
   1187   1.1  perseant 		fd_release_all(fs->clfs_devvp);
   1188   1.1  perseant 		return 0;
   1189   1.1  perseant 	}
   1190   1.1  perseant 
   1191   1.1  perseant 	/* Record statistics */
   1192   1.1  perseant 	for (i = nb = 0; i < bic; i++)
   1193   1.1  perseant 		nb += bip[i].bi_size;
   1194  1.41  dholland 	util = ((double)nb) / (fs->clfs_nactive * lfs_sb_getssize(fs));
   1195   1.1  perseant 	cleaner_stats.util_tot += util;
   1196   1.1  perseant 	cleaner_stats.util_sos += util * util;
   1197   1.1  perseant 	cleaner_stats.bytes_written += nb;
   1198   1.1  perseant 
   1199   1.1  perseant 	/*
   1200   1.1  perseant 	 * Check out our blocks to see if there are hidden cleaning costs.
   1201   1.1  perseant 	 * If there are, we might be cleaning ourselves deeper into a hole
   1202   1.1  perseant 	 * rather than doing anything useful.
   1203   1.1  perseant 	 * XXX do something about this.
   1204   1.1  perseant 	 */
   1205   1.1  perseant 	if_extra = 0;
   1206  1.41  dholland 	extra = lfs_sb_getbsize(fs) * (off_t)check_hidden_cost(fs, bip, bic, &if_extra);
   1207  1.41  dholland 	if_extra *= lfs_sb_getbsize(fs);
   1208   1.1  perseant 
   1209   1.1  perseant 	/*
   1210   1.1  perseant 	 * Use markv to move the blocks.
   1211   1.1  perseant 	 */
   1212   1.1  perseant 	if (do_small)
   1213  1.41  dholland 		inc = MAXPHYS / lfs_sb_getbsize(fs) - 1;
   1214   1.1  perseant 	else
   1215   1.1  perseant 		inc = LFS_MARKV_MAXBLKCNT / 2;
   1216   1.1  perseant 	for (mc = 0, mbip = bip; mc < bic; mc += inc, mbip += inc) {
   1217   1.1  perseant 		lim.blkiov = mbip;
   1218   1.1  perseant 		lim.blkcnt = (bic - mc > inc ? inc : bic - mc);
   1219   1.1  perseant #ifdef TEST_PATTERN
   1220   1.1  perseant 		dlog("checking blocks %d-%d", mc, mc + lim.blkcnt - 1);
   1221   1.1  perseant 		for (i = 0; i < lim.blkcnt; i++) {
   1222   1.1  perseant 			check_test_pattern(mbip + i);
   1223   1.1  perseant 		}
   1224   1.1  perseant #endif /* TEST_PATTERN */
   1225   1.1  perseant 		dlog("sending blocks %d-%d", mc, mc + lim.blkcnt - 1);
   1226  1.21     pooka 		if ((r = kops.ko_fcntl(fs->clfs_ifilefd, LFCNMARKV, &lim))<0) {
   1227  1.28  perseant 			int oerrno = errno;
   1228  1.28  perseant 			syslog(LOG_WARNING, "%s: markv returned %d (errno %d, %m)",
   1229  1.40  dholland 			       lfs_sb_getfsmnt(fs), r, errno);
   1230  1.28  perseant 			if (oerrno != EAGAIN && oerrno != ESHUTDOWN) {
   1231  1.28  perseant 				syslog(LOG_DEBUG, "%s: errno %d, returning",
   1232  1.40  dholland 				       lfs_sb_getfsmnt(fs), oerrno);
   1233   1.1  perseant 				fd_release_all(fs->clfs_devvp);
   1234   1.1  perseant 				return r;
   1235   1.1  perseant 			}
   1236  1.29  perseant 			if (oerrno == ESHUTDOWN) {
   1237  1.29  perseant 				syslog(LOG_NOTICE, "%s: filesystem unmounted",
   1238  1.40  dholland 				       lfs_sb_getfsmnt(fs));
   1239  1.29  perseant 				fd_release_all(fs->clfs_devvp);
   1240  1.29  perseant 				return r;
   1241  1.29  perseant 			}
   1242   1.1  perseant 		}
   1243   1.1  perseant 	}
   1244   1.1  perseant 
   1245   1.1  perseant 	/*
   1246   1.1  perseant 	 * Report progress (or lack thereof)
   1247   1.1  perseant 	 */
   1248   1.1  perseant 	syslog(LOG_INFO, "%s: wrote %" PRId64 " dirty + %"
   1249   1.1  perseant 	       PRId64 " supporting indirect + %"
   1250   1.1  perseant 	       PRId64 " supporting Ifile = %"
   1251   1.1  perseant 	       PRId64 " bytes to clean %d segs (%" PRId64 "%% recovery)",
   1252  1.40  dholland 	       lfs_sb_getfsmnt(fs), (int64_t)nb, (int64_t)(extra - if_extra),
   1253   1.3  perseant 	       (int64_t)if_extra, (int64_t)(nb + extra), ngood,
   1254   1.3  perseant 	       (ngood ? (int64_t)(100 - (100 * (nb + extra)) /
   1255  1.41  dholland 					 (ngood * lfs_sb_getssize(fs))) :
   1256   1.3  perseant 		(int64_t)0));
   1257  1.41  dholland 	if (nb + extra >= ngood * lfs_sb_getssize(fs))
   1258   1.1  perseant 		syslog(LOG_WARNING, "%s: cleaner not making forward progress",
   1259  1.40  dholland 		       lfs_sb_getfsmnt(fs));
   1260   1.1  perseant 
   1261   1.1  perseant 	/*
   1262   1.1  perseant 	 * Finally call reclaim to prompt cleaning of the segments.
   1263   1.1  perseant 	 */
   1264  1.21     pooka 	kops.ko_fcntl(fs->clfs_ifilefd, LFCNRECLAIM, NULL);
   1265   1.1  perseant 
   1266   1.1  perseant 	fd_release_all(fs->clfs_devvp);
   1267   1.1  perseant 	return 0;
   1268   1.1  perseant }
   1269   1.1  perseant 
   1270   1.1  perseant /*
   1271   1.1  perseant  * Read the cleanerinfo block and apply cleaning policy to determine whether
   1272   1.1  perseant  * the given filesystem needs to be cleaned.  Returns 1 if it does, 0 if it
   1273   1.1  perseant  * does not, or -1 on error.
   1274   1.1  perseant  */
   1275  1.46  dholland static int
   1276  1.46  dholland needs_cleaning(struct clfs *fs, CLEANERINFO64 *cip)
   1277   1.1  perseant {
   1278  1.46  dholland 	CLEANERINFO *cipu;
   1279   1.1  perseant 	struct ubuf *bp;
   1280   1.1  perseant 	struct stat st;
   1281   1.1  perseant 	daddr_t fsb_per_seg, max_free_segs;
   1282   1.1  perseant 	time_t now;
   1283   1.1  perseant 	double loadavg;
   1284   1.1  perseant 
   1285   1.1  perseant 	/* If this fs is "on hold", don't clean it. */
   1286   1.1  perseant 	if (fs->clfs_onhold)
   1287   1.1  perseant 		return 0;
   1288   1.1  perseant 
   1289   1.1  perseant 	/*
   1290   1.1  perseant 	 * Read the cleanerinfo block from the Ifile.  We don't want
   1291   1.1  perseant 	 * the cached information, so invalidate the buffer before
   1292   1.1  perseant 	 * handing it back.
   1293   1.1  perseant 	 */
   1294  1.41  dholland 	if (bread(fs->lfs_ivnode, 0, lfs_sb_getbsize(fs), 0, &bp)) {
   1295  1.40  dholland 		syslog(LOG_ERR, "%s: can't read inode", lfs_sb_getfsmnt(fs));
   1296   1.1  perseant 		return -1;
   1297   1.1  perseant 	}
   1298  1.46  dholland 	cipu = (CLEANERINFO *)bp->b_data;
   1299  1.46  dholland 	if (fs->lfs_is64) {
   1300  1.46  dholland 		/* Structure copy */
   1301  1.46  dholland 		*cip = cipu->u_64;
   1302  1.46  dholland 	} else {
   1303  1.46  dholland 		/* Copy the fields and promote to 64 bit */
   1304  1.46  dholland 		cip->clean = cipu->u_32.clean;
   1305  1.46  dholland 		cip->dirty = cipu->u_32.dirty;
   1306  1.46  dholland 		cip->bfree = cipu->u_32.bfree;
   1307  1.46  dholland 		cip->avail = cipu->u_32.avail;
   1308  1.46  dholland 		cip->free_head = cipu->u_32.free_head;
   1309  1.46  dholland 		cip->free_tail = cipu->u_32.free_tail;
   1310  1.46  dholland 		cip->flags = cipu->u_32.flags;
   1311  1.46  dholland 	}
   1312  1.13        ad 	brelse(bp, B_INVAL);
   1313  1.41  dholland 	cleaner_stats.bytes_read += lfs_sb_getbsize(fs);
   1314   1.1  perseant 
   1315   1.1  perseant 	/*
   1316   1.1  perseant 	 * If the number of segments changed under us, reinit.
   1317   1.1  perseant 	 * We don't have to start over from scratch, however,
   1318   1.1  perseant 	 * since we don't hold any buffers.
   1319   1.1  perseant 	 */
   1320  1.40  dholland 	if (lfs_sb_getnseg(fs) != cip->clean + cip->dirty) {
   1321   1.1  perseant 		if (reinit_fs(fs) < 0) {
   1322   1.1  perseant 			/* The normal case for unmount */
   1323  1.40  dholland 			syslog(LOG_NOTICE, "%s: filesystem unmounted", lfs_sb_getfsmnt(fs));
   1324   1.1  perseant 			return -1;
   1325   1.1  perseant 		}
   1326  1.40  dholland 		syslog(LOG_NOTICE, "%s: nsegs changed", lfs_sb_getfsmnt(fs));
   1327   1.1  perseant 	}
   1328   1.1  perseant 
   1329   1.1  perseant 	/* Compute theoretical "free segments" maximum based on usage */
   1330  1.36  christos 	fsb_per_seg = lfs_segtod(fs, 1);
   1331  1.40  dholland 	max_free_segs = MAX(cip->bfree, 0) / fsb_per_seg + lfs_sb_getminfreeseg(fs);
   1332   1.1  perseant 
   1333   1.1  perseant 	dlog("%s: bfree = %d, avail = %d, clean = %d/%d",
   1334  1.40  dholland 	     lfs_sb_getfsmnt(fs), cip->bfree, cip->avail, cip->clean,
   1335  1.40  dholland 	     lfs_sb_getnseg(fs));
   1336   1.1  perseant 
   1337   1.1  perseant 	/* If the writer is waiting on us, clean it */
   1338  1.40  dholland 	if (cip->clean <= lfs_sb_getminfreeseg(fs) ||
   1339  1.11  perseant 	    (cip->flags & LFS_CLEANER_MUST_CLEAN))
   1340   1.1  perseant 		return 1;
   1341   1.1  perseant 
   1342   1.1  perseant 	/* If there are enough segments, don't clean it */
   1343   1.1  perseant 	if (cip->bfree - cip->avail <= fsb_per_seg &&
   1344   1.1  perseant 	    cip->avail > fsb_per_seg)
   1345   1.1  perseant 		return 0;
   1346   1.1  perseant 
   1347   1.1  perseant 	/* If we are in dire straits, clean it */
   1348   1.1  perseant 	if (cip->bfree - cip->avail > fsb_per_seg &&
   1349   1.1  perseant 	    cip->avail <= fsb_per_seg)
   1350   1.1  perseant 		return 1;
   1351   1.1  perseant 
   1352   1.1  perseant 	/* If under busy threshold, clean regardless of load */
   1353   1.1  perseant 	if (cip->clean < max_free_segs * BUSY_LIM)
   1354   1.1  perseant 		return 1;
   1355   1.1  perseant 
   1356   1.1  perseant 	/* Check busy status; clean if idle and under idle limit */
   1357   1.1  perseant 	if (use_fs_idle) {
   1358   1.1  perseant 		/* Filesystem idle */
   1359   1.1  perseant 		time(&now);
   1360   1.1  perseant 		if (fstat(fs->clfs_ifilefd, &st) < 0) {
   1361   1.1  perseant 			syslog(LOG_ERR, "%s: failed to stat ifile",
   1362  1.40  dholland 			       lfs_sb_getfsmnt(fs));
   1363   1.1  perseant 			return -1;
   1364   1.1  perseant 		}
   1365   1.1  perseant 		if (now - st.st_mtime > segwait_timeout &&
   1366   1.1  perseant 		    cip->clean < max_free_segs * IDLE_LIM)
   1367   1.1  perseant 			return 1;
   1368   1.1  perseant 	} else {
   1369   1.1  perseant 		/* CPU idle - use one-minute load avg */
   1370   1.1  perseant 		if (getloadavg(&loadavg, 1) == -1) {
   1371   1.1  perseant 			syslog(LOG_ERR, "%s: failed to get load avg",
   1372  1.40  dholland 			       lfs_sb_getfsmnt(fs));
   1373   1.1  perseant 			return -1;
   1374   1.1  perseant 		}
   1375   1.1  perseant 		if (loadavg < load_threshold &&
   1376   1.1  perseant 		    cip->clean < max_free_segs * IDLE_LIM)
   1377   1.1  perseant 			return 1;
   1378   1.1  perseant 	}
   1379   1.1  perseant 
   1380   1.1  perseant 	return 0;
   1381   1.1  perseant }
   1382   1.1  perseant 
   1383   1.1  perseant /*
   1384   1.1  perseant  * Report statistics.  If the signal was SIGUSR2, clear the statistics too.
   1385   1.1  perseant  * If the signal was SIGINT, exit.
   1386   1.1  perseant  */
   1387   1.1  perseant static void
   1388   1.1  perseant sig_report(int sig)
   1389   1.1  perseant {
   1390   1.1  perseant 	double avg = 0.0, stddev;
   1391   1.1  perseant 
   1392   1.1  perseant 	avg = cleaner_stats.util_tot / MAX(cleaner_stats.segs_cleaned, 1.0);
   1393   1.1  perseant 	stddev = cleaner_stats.util_sos / MAX(cleaner_stats.segs_cleaned -
   1394   1.1  perseant 					      avg * avg, 1.0);
   1395   1.1  perseant 	syslog(LOG_INFO, "bytes read:	     %" PRId64, cleaner_stats.bytes_read);
   1396   1.1  perseant 	syslog(LOG_INFO, "bytes written:     %" PRId64, cleaner_stats.bytes_written);
   1397   1.1  perseant 	syslog(LOG_INFO, "segments cleaned:  %" PRId64, cleaner_stats.segs_cleaned);
   1398   1.1  perseant #if 0
   1399   1.1  perseant 	/* "Empty segments" is meaningless, since the kernel handles those */
   1400   1.1  perseant 	syslog(LOG_INFO, "empty segments:    %" PRId64, cleaner_stats.segs_empty);
   1401   1.1  perseant #endif
   1402   1.1  perseant 	syslog(LOG_INFO, "error segments:    %" PRId64, cleaner_stats.segs_error);
   1403   1.1  perseant 	syslog(LOG_INFO, "utilization total: %g", cleaner_stats.util_tot);
   1404   1.1  perseant 	syslog(LOG_INFO, "utilization sos:   %g", cleaner_stats.util_sos);
   1405   1.1  perseant 	syslog(LOG_INFO, "utilization avg:   %4.2f", avg);
   1406   1.1  perseant 	syslog(LOG_INFO, "utilization sdev:  %9.6f", stddev);
   1407   1.1  perseant 
   1408   1.1  perseant 	if (debug)
   1409   1.1  perseant 		bufstats();
   1410   1.1  perseant 
   1411   1.1  perseant 	if (sig == SIGUSR2)
   1412   1.1  perseant 		memset(&cleaner_stats, 0, sizeof(cleaner_stats));
   1413   1.1  perseant 	if (sig == SIGINT)
   1414   1.1  perseant 		exit(0);
   1415   1.1  perseant }
   1416   1.1  perseant 
   1417   1.1  perseant static void
   1418   1.1  perseant sig_exit(int sig)
   1419   1.1  perseant {
   1420   1.1  perseant 	exit(0);
   1421   1.1  perseant }
   1422   1.1  perseant 
   1423   1.1  perseant static void
   1424   1.1  perseant usage(void)
   1425   1.1  perseant {
   1426   1.1  perseant 	errx(1, "usage: lfs_cleanerd [-bcdfmqs] [-i segnum] [-l load] "
   1427   1.1  perseant 	     "[-n nsegs] [-r report_freq] [-t timeout] fs_name ...");
   1428   1.1  perseant }
   1429   1.1  perseant 
   1430  1.21     pooka #ifndef LFS_CLEANER_AS_LIB
   1431   1.1  perseant /*
   1432   1.1  perseant  * Main.
   1433   1.1  perseant  */
   1434   1.1  perseant int
   1435   1.1  perseant main(int argc, char **argv)
   1436   1.1  perseant {
   1437  1.21     pooka 
   1438  1.21     pooka 	return lfs_cleaner_main(argc, argv);
   1439  1.21     pooka }
   1440  1.21     pooka #endif
   1441  1.21     pooka 
   1442  1.21     pooka int
   1443  1.21     pooka lfs_cleaner_main(int argc, char **argv)
   1444  1.21     pooka {
   1445  1.19     pooka 	int i, opt, error, r, loopcount, nodetach;
   1446   1.1  perseant 	struct timeval tv;
   1447  1.37  christos #ifdef LFS_CLEANER_AS_LIB
   1448  1.24     pooka 	sem_t *semaddr = NULL;
   1449  1.37  christos #endif
   1450  1.46  dholland 	CLEANERINFO64 ci;
   1451   1.1  perseant #ifndef USE_CLIENT_SERVER
   1452   1.1  perseant 	char *cp, *pidname;
   1453   1.1  perseant #endif
   1454   1.1  perseant 
   1455  1.47  dholland #if defined(__GNUC__) && __GNUC__ >= 4 && __GNUC_MINOR__ == 8 && \
   1456  1.47  dholland     defined(__OPTIMIZE_SIZE__)
   1457  1.46  dholland 	/*
   1458  1.46  dholland 	 * XXX: Work around apparent bug with gcc 4.8 and -Os: it
   1459  1.46  dholland 	 * claims that ci.clean is uninitialized in clean_fs (at one
   1460  1.46  dholland 	 * of the several uses of it, which is neither the first nor
   1461  1.47  dholland 	 * last use) -- this doesn't happen with plain -O2.
   1462  1.46  dholland 	 *
   1463  1.46  dholland 	 * Hopefully in the future further rearrangements will allow
   1464  1.46  dholland 	 * removing this hack.
   1465  1.46  dholland 	 */
   1466  1.46  dholland 	ci.clean = 0;
   1467  1.46  dholland #endif
   1468  1.46  dholland 
   1469   1.1  perseant 	/*
   1470   1.1  perseant 	 * Set up defaults
   1471   1.1  perseant 	 */
   1472   1.1  perseant 	atatime	 = 1;
   1473   1.1  perseant 	segwait_timeout = 300; /* Five minutes */
   1474  1.31     joerg 	load_threshold	= 0.2;
   1475   1.1  perseant 	stat_report	= 0;
   1476   1.1  perseant 	inval_segment	= -1;
   1477   1.1  perseant 	copylog_filename = NULL;
   1478  1.19     pooka 	nodetach        = 0;
   1479   1.1  perseant 
   1480   1.1  perseant 	/*
   1481   1.1  perseant 	 * Parse command-line arguments
   1482   1.1  perseant 	 */
   1483  1.24     pooka 	while ((opt = getopt(argc, argv, "bC:cdDfi:l:mn:qr:sS:t:")) != -1) {
   1484   1.1  perseant 		switch (opt) {
   1485   1.1  perseant 		    case 'b':	/* Use bytes written, not segments read */
   1486   1.1  perseant 			    use_bytes = 1;
   1487   1.1  perseant 			    break;
   1488   1.1  perseant 		    case 'C':	/* copy log */
   1489   1.1  perseant 			    copylog_filename = optarg;
   1490   1.1  perseant 			    break;
   1491   1.1  perseant 		    case 'c':	/* Coalesce files */
   1492   1.1  perseant 			    do_coalesce++;
   1493   1.1  perseant 			    break;
   1494   1.1  perseant 		    case 'd':	/* Debug mode. */
   1495  1.19     pooka 			    nodetach++;
   1496   1.1  perseant 			    debug++;
   1497   1.1  perseant 			    break;
   1498  1.19     pooka 		    case 'D':	/* stay-on-foreground */
   1499  1.19     pooka 			    nodetach++;
   1500  1.19     pooka 			    break;
   1501   1.1  perseant 		    case 'f':	/* Use fs idle time rather than cpu idle */
   1502   1.1  perseant 			    use_fs_idle = 1;
   1503   1.1  perseant 			    break;
   1504   1.1  perseant 		    case 'i':	/* Invalidate this segment */
   1505   1.1  perseant 			    inval_segment = atoi(optarg);
   1506   1.1  perseant 			    break;
   1507   1.1  perseant 		    case 'l':	/* Load below which to clean */
   1508   1.1  perseant 			    load_threshold = atof(optarg);
   1509   1.1  perseant 			    break;
   1510   1.1  perseant 		    case 'm':	/* [compat only] */
   1511   1.1  perseant 			    break;
   1512   1.1  perseant 		    case 'n':	/* How many segs to clean at once */
   1513   1.1  perseant 			    atatime = atoi(optarg);
   1514   1.1  perseant 			    break;
   1515   1.1  perseant 		    case 'q':	/* Quit after one run */
   1516   1.1  perseant 			    do_quit = 1;
   1517   1.1  perseant 			    break;
   1518   1.1  perseant 		    case 'r':	/* Report every stat_report segments */
   1519   1.1  perseant 			    stat_report = atoi(optarg);
   1520   1.1  perseant 			    break;
   1521   1.1  perseant 		    case 's':	/* Small writes */
   1522   1.1  perseant 			    do_small = 1;
   1523   1.1  perseant 			    break;
   1524  1.37  christos #ifdef LFS_CLEANER_AS_LIB
   1525  1.24     pooka 		    case 'S':	/* semaphore */
   1526  1.24     pooka 			    semaddr = (void*)(uintptr_t)strtoull(optarg,NULL,0);
   1527  1.24     pooka 			    break;
   1528  1.37  christos #endif
   1529   1.1  perseant 		    case 't':	/* timeout */
   1530   1.1  perseant 			    segwait_timeout = atoi(optarg);
   1531   1.1  perseant 			    break;
   1532   1.1  perseant 		    default:
   1533   1.1  perseant 			    usage();
   1534   1.1  perseant 			    /* NOTREACHED */
   1535   1.1  perseant 		}
   1536   1.1  perseant 	}
   1537   1.1  perseant 	argc -= optind;
   1538   1.1  perseant 	argv += optind;
   1539   1.1  perseant 
   1540   1.1  perseant 	if (argc < 1)
   1541   1.1  perseant 		usage();
   1542   1.1  perseant 	if (inval_segment >= 0 && argc != 1) {
   1543   1.1  perseant 		errx(1, "lfs_cleanerd: may only specify one filesystem when "
   1544   1.1  perseant 		     "using -i flag");
   1545   1.1  perseant 	}
   1546   1.1  perseant 
   1547  1.12       tls 	if (do_coalesce) {
   1548  1.12       tls 		errx(1, "lfs_cleanerd: -c disabled due to reports of file "
   1549  1.12       tls 		     "corruption; you may re-enable it by rebuilding the "
   1550  1.12       tls 		     "cleaner");
   1551  1.12       tls 	}
   1552  1.12       tls 
   1553   1.1  perseant 	/*
   1554  1.19     pooka 	 * Set up daemon mode or foreground mode
   1555   1.1  perseant 	 */
   1556  1.19     pooka 	if (nodetach) {
   1557   1.1  perseant 		openlog("lfs_cleanerd", LOG_NDELAY | LOG_PID | LOG_PERROR,
   1558   1.1  perseant 			LOG_DAEMON);
   1559   1.1  perseant 		signal(SIGINT, sig_report);
   1560   1.1  perseant 	} else {
   1561   1.1  perseant 		if (daemon(0, 0) == -1)
   1562   1.1  perseant 			err(1, "lfs_cleanerd: couldn't become a daemon!");
   1563   1.1  perseant 		openlog("lfs_cleanerd", LOG_NDELAY | LOG_PID, LOG_DAEMON);
   1564   1.1  perseant 		signal(SIGINT, sig_exit);
   1565   1.1  perseant 	}
   1566   1.1  perseant 
   1567   1.1  perseant 	/*
   1568   1.1  perseant 	 * Look for an already-running master daemon.  If there is one,
   1569   1.1  perseant 	 * send it our filesystems to add to its list and exit.
   1570   1.1  perseant 	 * If there is none, become the master.
   1571   1.1  perseant 	 */
   1572   1.1  perseant #ifdef USE_CLIENT_SERVER
   1573   1.1  perseant 	try_to_become_master(argc, argv);
   1574   1.1  perseant #else
   1575   1.1  perseant 	/* XXX think about this */
   1576   1.1  perseant 	asprintf(&pidname, "lfs_cleanerd:m:%s", argv[0]);
   1577   1.1  perseant 	if (pidname == NULL) {
   1578   1.1  perseant 		syslog(LOG_ERR, "malloc failed: %m");
   1579   1.1  perseant 		exit(1);
   1580   1.1  perseant 	}
   1581   1.1  perseant 	for (cp = pidname; cp != NULL; cp = strchr(cp, '/'))
   1582   1.1  perseant 		*cp = '|';
   1583   1.1  perseant 	pidfile(pidname);
   1584   1.1  perseant #endif
   1585   1.1  perseant 
   1586   1.1  perseant 	/*
   1587   1.1  perseant 	 * Signals mean daemon should report its statistics
   1588   1.1  perseant 	 */
   1589   1.1  perseant 	memset(&cleaner_stats, 0, sizeof(cleaner_stats));
   1590   1.1  perseant 	signal(SIGUSR1, sig_report);
   1591   1.1  perseant 	signal(SIGUSR2, sig_report);
   1592   1.1  perseant 
   1593   1.1  perseant 	/*
   1594   1.1  perseant 	 * Start up buffer cache.  We only use this for the Ifile,
   1595   1.1  perseant 	 * and we will resize it if necessary, so it can start small.
   1596   1.1  perseant 	 */
   1597   1.1  perseant 	bufinit(4);
   1598   1.1  perseant 
   1599   1.1  perseant #ifdef REPAIR_ZERO_FINFO
   1600   1.1  perseant 	{
   1601   1.1  perseant 		BLOCK_INFO *bip = NULL;
   1602   1.1  perseant 		int bic = 0;
   1603   1.1  perseant 
   1604   1.1  perseant 		nfss = 1;
   1605   1.1  perseant 		fsp = (struct clfs **)malloc(sizeof(*fsp));
   1606   1.1  perseant 		fsp[0] = (struct clfs *)calloc(1, sizeof(**fsp));
   1607   1.1  perseant 
   1608   1.1  perseant 		if (init_unmounted_fs(fsp[0], argv[0]) < 0) {
   1609   1.1  perseant 			err(1, "init_unmounted_fs");
   1610   1.1  perseant 		}
   1611   1.1  perseant 		dlog("Filesystem has %d segments", fsp[0]->lfs_nseg);
   1612   1.1  perseant 		for (i = 0; i < fsp[0]->lfs_nseg; i++) {
   1613   1.1  perseant 			load_segment(fsp[0], i, &bip, &bic);
   1614   1.1  perseant 			bic = 0;
   1615   1.1  perseant 		}
   1616   1.1  perseant 		exit(0);
   1617   1.1  perseant 	}
   1618   1.1  perseant #endif
   1619   1.1  perseant 
   1620   1.1  perseant 	/*
   1621   1.1  perseant 	 * Initialize cleaning structures, open devices, etc.
   1622   1.1  perseant 	 */
   1623   1.1  perseant 	nfss = argc;
   1624   1.1  perseant 	fsp = (struct clfs **)malloc(nfss * sizeof(*fsp));
   1625   1.7  perseant 	if (fsp == NULL) {
   1626   1.7  perseant 		syslog(LOG_ERR, "couldn't allocate fs table: %m");
   1627   1.7  perseant 		exit(1);
   1628   1.7  perseant 	}
   1629   1.1  perseant 	for (i = 0; i < nfss; i++) {
   1630   1.1  perseant 		fsp[i] = (struct clfs *)calloc(1, sizeof(**fsp));
   1631   1.1  perseant 		if ((r = init_fs(fsp[i], argv[i])) < 0) {
   1632   1.1  perseant 			syslog(LOG_ERR, "%s: couldn't init: error code %d",
   1633   1.1  perseant 			       argv[i], r);
   1634   1.1  perseant 			handle_error(fsp, i);
   1635   1.1  perseant 			--i; /* Do the new #i over again */
   1636   1.1  perseant 		}
   1637   1.1  perseant 	}
   1638   1.1  perseant 
   1639   1.1  perseant 	/*
   1640   1.1  perseant 	 * If asked to coalesce, do so and exit.
   1641   1.1  perseant 	 */
   1642   1.1  perseant 	if (do_coalesce) {
   1643   1.1  perseant 		for (i = 0; i < nfss; i++)
   1644   1.1  perseant 			clean_all_inodes(fsp[i]);
   1645   1.1  perseant 		exit(0);
   1646   1.1  perseant 	}
   1647   1.1  perseant 
   1648   1.1  perseant 	/*
   1649   1.1  perseant 	 * If asked to invalidate a segment, do that and exit.
   1650   1.1  perseant 	 */
   1651   1.1  perseant 	if (inval_segment >= 0) {
   1652   1.1  perseant 		invalidate_segment(fsp[0], inval_segment);
   1653   1.1  perseant 		exit(0);
   1654   1.1  perseant 	}
   1655   1.1  perseant 
   1656   1.1  perseant 	/*
   1657   1.1  perseant 	 * Main cleaning loop.
   1658   1.1  perseant 	 */
   1659   1.1  perseant 	loopcount = 0;
   1660  1.25     pooka #ifdef LFS_CLEANER_AS_LIB
   1661  1.24     pooka 	if (semaddr)
   1662  1.24     pooka 		sem_post(semaddr);
   1663  1.25     pooka #endif
   1664  1.26     pooka 	error = 0;
   1665   1.1  perseant 	while (nfss > 0) {
   1666   1.1  perseant 		int cleaned_one;
   1667   1.1  perseant 		do {
   1668   1.1  perseant #ifdef USE_CLIENT_SERVER
   1669   1.1  perseant 			check_control_socket();
   1670   1.1  perseant #endif
   1671   1.1  perseant 			cleaned_one = 0;
   1672   1.1  perseant 			for (i = 0; i < nfss; i++) {
   1673   1.1  perseant 				if ((error = needs_cleaning(fsp[i], &ci)) < 0) {
   1674  1.28  perseant 					syslog(LOG_DEBUG, "%s: needs_cleaning returned %d",
   1675  1.28  perseant 					       getprogname(), error);
   1676   1.1  perseant 					handle_error(fsp, i);
   1677   1.1  perseant 					continue;
   1678   1.1  perseant 				}
   1679   1.1  perseant 				if (error == 0) /* No need to clean */
   1680   1.1  perseant 					continue;
   1681   1.1  perseant 
   1682   1.1  perseant 				reload_ifile(fsp[i]);
   1683  1.28  perseant 				if ((error = clean_fs(fsp[i], &ci)) < 0) {
   1684  1.28  perseant 					syslog(LOG_DEBUG, "%s: clean_fs returned %d",
   1685  1.28  perseant 					       getprogname(), error);
   1686   1.1  perseant 					handle_error(fsp, i);
   1687   1.1  perseant 					continue;
   1688   1.1  perseant 				}
   1689   1.1  perseant 				++cleaned_one;
   1690   1.1  perseant 			}
   1691   1.1  perseant 			++loopcount;
   1692   1.1  perseant 			if (stat_report && loopcount % stat_report == 0)
   1693   1.1  perseant 				sig_report(0);
   1694   1.1  perseant 			if (do_quit)
   1695   1.1  perseant 				exit(0);
   1696   1.1  perseant 		} while(cleaned_one);
   1697   1.1  perseant 		tv.tv_sec = segwait_timeout;
   1698   1.1  perseant 		tv.tv_usec = 0;
   1699  1.22     pooka 		/* XXX: why couldn't others work if fsp socket is shutdown? */
   1700  1.21     pooka 		error = kops.ko_fcntl(fsp[0]->clfs_ifilefd,LFCNSEGWAITALL,&tv);
   1701  1.22     pooka 		if (error) {
   1702  1.22     pooka 			if (errno == ESHUTDOWN) {
   1703  1.22     pooka 				for (i = 0; i < nfss; i++) {
   1704  1.28  perseant 					syslog(LOG_INFO, "%s: shutdown",
   1705  1.28  perseant 					       getprogname());
   1706  1.22     pooka 					handle_error(fsp, i);
   1707  1.22     pooka 					assert(nfss == 0);
   1708  1.22     pooka 				}
   1709  1.26     pooka 			} else {
   1710  1.26     pooka #ifdef LFS_CLEANER_AS_LIB
   1711  1.26     pooka 				error = ESHUTDOWN;
   1712  1.26     pooka 				break;
   1713  1.26     pooka #else
   1714  1.22     pooka 				err(1, "LFCNSEGWAITALL");
   1715  1.26     pooka #endif
   1716  1.26     pooka 			}
   1717  1.22     pooka 		}
   1718   1.1  perseant 	}
   1719   1.1  perseant 
   1720   1.1  perseant 	/* NOTREACHED */
   1721  1.26     pooka 	return error;
   1722   1.1  perseant }
   1723